babylon.max.js 5.2 MB

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  1. (function universalModuleDefinition(root, factory) {
  2. var amdDependencies = [];
  3. var CANNON = root.CANNON || this.CANNON;
  4. var OIMO = root.OIMO || this.OIMO;
  5. var earcut = root.earcut || this.earcut;
  6. if(typeof exports === 'object' && typeof module === 'object') {
  7. try { CANNON = CANNON || require("cannon"); } catch(e) {}
  8. try { OIMO = OIMO || require("oimo"); } catch(e) {}
  9. try { earcut = earcut || require("earcut"); } catch(e) {}
  10. module.exports = factory(CANNON,OIMO,earcut);
  11. } else if(typeof define === 'function' && define.amd) {
  12. if(require.specified && require.specified("cannon")) amdDependencies.push("cannon");
  13. if(require.specified && require.specified("oimo")) amdDependencies.push("oimo");
  14. if(require.specified && require.specified("earcut")) amdDependencies.push("earcut");
  15. define("babylonjs", amdDependencies, factory);
  16. } else if(typeof exports === 'object') {
  17. try { CANNON = CANNON || require("cannon"); } catch(e) {}
  18. try { OIMO = OIMO || require("oimo"); } catch(e) {}
  19. try { earcut = earcut || require("earcut"); } catch(e) {}
  20. exports["babylonjs"] = factory(CANNON,OIMO,earcut);
  21. } else {
  22. root["BABYLON"] = factory(CANNON,OIMO,earcut);
  23. }
  24. })(this, function(CANNON,OIMO,earcut) {
  25. CANNON = CANNON || this.CANNON;
  26. OIMO = OIMO || this.OIMO;
  27. earcut = earcut || this.earcut;
  28. var __decorate=this&&this.__decorate||function(e,t,r,c){var o,f=arguments.length,n=f<3?t:null===c?c=Object.getOwnPropertyDescriptor(t,r):c;if("object"==typeof Reflect&&"function"==typeof Reflect.decorate)n=Reflect.decorate(e,t,r,c);else for(var l=e.length-1;l>=0;l--)(o=e[l])&&(n=(f<3?o(n):f>3?o(t,r,n):o(t,r))||n);return f>3&&n&&Object.defineProperty(t,r,n),n};
  29. var __extends=this&&this.__extends||function(){var t=Object.setPrototypeOf||{__proto__:[]}instanceof Array&&function(t,o){t.__proto__=o}||function(t,o){for(var n in o)o.hasOwnProperty(n)&&(t[n]=o[n])};return function(o,n){function r(){this.constructor=o}t(o,n),o.prototype=null===n?Object.create(n):(r.prototype=n.prototype,new r)}}();
  30. var BABYLON;
  31. (function (BABYLON) {
  32. /**
  33. * EffectFallbacks can be used to add fallbacks (properties to disable) to certain properties when desired to improve performance.
  34. * (Eg. Start at high quality with reflection and fog, if fps is low, remove reflection, if still low remove fog)
  35. */
  36. var EffectFallbacks = /** @class */ (function () {
  37. function EffectFallbacks() {
  38. this._defines = {};
  39. this._currentRank = 32;
  40. this._maxRank = -1;
  41. }
  42. /**
  43. * Removes the fallback from the bound mesh.
  44. */
  45. EffectFallbacks.prototype.unBindMesh = function () {
  46. this._mesh = null;
  47. };
  48. /**
  49. * Adds a fallback on the specified property.
  50. * @param rank The rank of the fallback (Lower ranks will be fallbacked to first)
  51. * @param define The name of the define in the shader
  52. */
  53. EffectFallbacks.prototype.addFallback = function (rank, define) {
  54. if (!this._defines[rank]) {
  55. if (rank < this._currentRank) {
  56. this._currentRank = rank;
  57. }
  58. if (rank > this._maxRank) {
  59. this._maxRank = rank;
  60. }
  61. this._defines[rank] = new Array();
  62. }
  63. this._defines[rank].push(define);
  64. };
  65. /**
  66. * Sets the mesh to use CPU skinning when needing to fallback.
  67. * @param rank The rank of the fallback (Lower ranks will be fallbacked to first)
  68. * @param mesh The mesh to use the fallbacks.
  69. */
  70. EffectFallbacks.prototype.addCPUSkinningFallback = function (rank, mesh) {
  71. this._mesh = mesh;
  72. if (rank < this._currentRank) {
  73. this._currentRank = rank;
  74. }
  75. if (rank > this._maxRank) {
  76. this._maxRank = rank;
  77. }
  78. };
  79. Object.defineProperty(EffectFallbacks.prototype, "isMoreFallbacks", {
  80. /**
  81. * Checks to see if more fallbacks are still availible.
  82. */
  83. get: function () {
  84. return this._currentRank <= this._maxRank;
  85. },
  86. enumerable: true,
  87. configurable: true
  88. });
  89. /**
  90. * Removes the defines that shoould be removed when falling back.
  91. * @param currentDefines defines the current define statements for the shader.
  92. * @param effect defines the current effect we try to compile
  93. * @returns The resulting defines with defines of the current rank removed.
  94. */
  95. EffectFallbacks.prototype.reduce = function (currentDefines, effect) {
  96. // First we try to switch to CPU skinning
  97. if (this._mesh && this._mesh.computeBonesUsingShaders && this._mesh.numBoneInfluencers > 0 && this._mesh.material) {
  98. this._mesh.computeBonesUsingShaders = false;
  99. currentDefines = currentDefines.replace("#define NUM_BONE_INFLUENCERS " + this._mesh.numBoneInfluencers, "#define NUM_BONE_INFLUENCERS 0");
  100. effect._bonesComputationForcedToCPU = true;
  101. var scene = this._mesh.getScene();
  102. for (var index = 0; index < scene.meshes.length; index++) {
  103. var otherMesh = scene.meshes[index];
  104. if (!otherMesh.material) {
  105. continue;
  106. }
  107. if (!otherMesh.computeBonesUsingShaders || otherMesh.numBoneInfluencers === 0) {
  108. continue;
  109. }
  110. if (otherMesh.material.getEffect() === effect) {
  111. otherMesh.computeBonesUsingShaders = false;
  112. }
  113. else if (otherMesh.subMeshes) {
  114. for (var _i = 0, _a = otherMesh.subMeshes; _i < _a.length; _i++) {
  115. var subMesh = _a[_i];
  116. var subMeshEffect = subMesh.effect;
  117. if (subMeshEffect === effect) {
  118. otherMesh.computeBonesUsingShaders = false;
  119. break;
  120. }
  121. }
  122. }
  123. }
  124. }
  125. else {
  126. var currentFallbacks = this._defines[this._currentRank];
  127. if (currentFallbacks) {
  128. for (var index = 0; index < currentFallbacks.length; index++) {
  129. currentDefines = currentDefines.replace("#define " + currentFallbacks[index], "");
  130. }
  131. }
  132. this._currentRank++;
  133. }
  134. return currentDefines;
  135. };
  136. return EffectFallbacks;
  137. }());
  138. BABYLON.EffectFallbacks = EffectFallbacks;
  139. /**
  140. * Options to be used when creating an effect.
  141. */
  142. var EffectCreationOptions = /** @class */ (function () {
  143. function EffectCreationOptions() {
  144. }
  145. return EffectCreationOptions;
  146. }());
  147. BABYLON.EffectCreationOptions = EffectCreationOptions;
  148. /**
  149. * Effect containing vertex and fragment shader that can be executed on an object.
  150. */
  151. var Effect = /** @class */ (function () {
  152. /**
  153. * Instantiates an effect.
  154. * An effect can be used to create/manage/execute vertex and fragment shaders.
  155. * @param baseName Name of the effect.
  156. * @param attributesNamesOrOptions List of attribute names that will be passed to the shader or set of all options to create the effect.
  157. * @param uniformsNamesOrEngine List of uniform variable names that will be passed to the shader or the engine that will be used to render effect.
  158. * @param samplers List of sampler variables that will be passed to the shader.
  159. * @param engine Engine to be used to render the effect
  160. * @param defines Define statements to be added to the shader.
  161. * @param fallbacks Possible fallbacks for this effect to improve performance when needed.
  162. * @param onCompiled Callback that will be called when the shader is compiled.
  163. * @param onError Callback that will be called if an error occurs during shader compilation.
  164. * @param indexParameters Parameters to be used with Babylons include syntax to iterate over an array (eg. {lights: 10})
  165. */
  166. function Effect(baseName, attributesNamesOrOptions, uniformsNamesOrEngine, samplers, engine, defines, fallbacks, onCompiled, onError, indexParameters) {
  167. if (samplers === void 0) { samplers = null; }
  168. if (defines === void 0) { defines = null; }
  169. if (fallbacks === void 0) { fallbacks = null; }
  170. if (onCompiled === void 0) { onCompiled = null; }
  171. if (onError === void 0) { onError = null; }
  172. var _this = this;
  173. /**
  174. * Unique ID of the effect.
  175. */
  176. this.uniqueId = 0;
  177. /**
  178. * Observable that will be called when the shader is compiled.
  179. */
  180. this.onCompileObservable = new BABYLON.Observable();
  181. /**
  182. * Observable that will be called if an error occurs during shader compilation.
  183. */
  184. this.onErrorObservable = new BABYLON.Observable();
  185. /** @hidden */
  186. this._bonesComputationForcedToCPU = false;
  187. this._uniformBuffersNames = {};
  188. this._isReady = false;
  189. this._compilationError = "";
  190. this.name = baseName;
  191. if (attributesNamesOrOptions.attributes) {
  192. var options = attributesNamesOrOptions;
  193. this._engine = uniformsNamesOrEngine;
  194. this._attributesNames = options.attributes;
  195. this._uniformsNames = options.uniformsNames.concat(options.samplers);
  196. this._samplers = options.samplers.slice();
  197. this.defines = options.defines;
  198. this.onError = options.onError;
  199. this.onCompiled = options.onCompiled;
  200. this._fallbacks = options.fallbacks;
  201. this._indexParameters = options.indexParameters;
  202. this._transformFeedbackVaryings = options.transformFeedbackVaryings;
  203. if (options.uniformBuffersNames) {
  204. for (var i = 0; i < options.uniformBuffersNames.length; i++) {
  205. this._uniformBuffersNames[options.uniformBuffersNames[i]] = i;
  206. }
  207. }
  208. }
  209. else {
  210. this._engine = engine;
  211. this.defines = defines;
  212. this._uniformsNames = uniformsNamesOrEngine.concat(samplers);
  213. this._samplers = samplers ? samplers.slice() : [];
  214. this._attributesNames = attributesNamesOrOptions;
  215. this.onError = onError;
  216. this.onCompiled = onCompiled;
  217. this._indexParameters = indexParameters;
  218. this._fallbacks = fallbacks;
  219. }
  220. this.uniqueId = Effect._uniqueIdSeed++;
  221. var vertexSource;
  222. var fragmentSource;
  223. if (baseName.vertexElement) {
  224. vertexSource = document.getElementById(baseName.vertexElement);
  225. if (!vertexSource) {
  226. vertexSource = baseName.vertexElement;
  227. }
  228. }
  229. else {
  230. vertexSource = baseName.vertex || baseName;
  231. }
  232. if (baseName.fragmentElement) {
  233. fragmentSource = document.getElementById(baseName.fragmentElement);
  234. if (!fragmentSource) {
  235. fragmentSource = baseName.fragmentElement;
  236. }
  237. }
  238. else {
  239. fragmentSource = baseName.fragment || baseName;
  240. }
  241. this._loadVertexShader(vertexSource, function (vertexCode) {
  242. _this._processIncludes(vertexCode, function (vertexCodeWithIncludes) {
  243. _this._processShaderConversion(vertexCodeWithIncludes, false, function (migratedVertexCode) {
  244. _this._loadFragmentShader(fragmentSource, function (fragmentCode) {
  245. _this._processIncludes(fragmentCode, function (fragmentCodeWithIncludes) {
  246. _this._processShaderConversion(fragmentCodeWithIncludes, true, function (migratedFragmentCode) {
  247. if (baseName) {
  248. var vertex = baseName.vertexElement || baseName.vertex || baseName;
  249. var fragment = baseName.fragmentElement || baseName.fragment || baseName;
  250. _this._vertexSourceCode = "#define SHADER_NAME vertex:" + vertex + "\n" + migratedVertexCode;
  251. _this._fragmentSourceCode = "#define SHADER_NAME fragment:" + fragment + "\n" + migratedFragmentCode;
  252. }
  253. else {
  254. _this._vertexSourceCode = migratedVertexCode;
  255. _this._fragmentSourceCode = migratedFragmentCode;
  256. }
  257. _this._prepareEffect();
  258. });
  259. });
  260. });
  261. });
  262. });
  263. });
  264. }
  265. Object.defineProperty(Effect.prototype, "onBindObservable", {
  266. /**
  267. * Observable that will be called when effect is bound.
  268. */
  269. get: function () {
  270. if (!this._onBindObservable) {
  271. this._onBindObservable = new BABYLON.Observable();
  272. }
  273. return this._onBindObservable;
  274. },
  275. enumerable: true,
  276. configurable: true
  277. });
  278. Object.defineProperty(Effect.prototype, "key", {
  279. /**
  280. * Unique key for this effect
  281. */
  282. get: function () {
  283. return this._key;
  284. },
  285. enumerable: true,
  286. configurable: true
  287. });
  288. /**
  289. * If the effect has been compiled and prepared.
  290. * @returns if the effect is compiled and prepared.
  291. */
  292. Effect.prototype.isReady = function () {
  293. return this._isReady;
  294. };
  295. /**
  296. * The engine the effect was initialized with.
  297. * @returns the engine.
  298. */
  299. Effect.prototype.getEngine = function () {
  300. return this._engine;
  301. };
  302. /**
  303. * The compiled webGL program for the effect
  304. * @returns the webGL program.
  305. */
  306. Effect.prototype.getProgram = function () {
  307. return this._program;
  308. };
  309. /**
  310. * The set of names of attribute variables for the shader.
  311. * @returns An array of attribute names.
  312. */
  313. Effect.prototype.getAttributesNames = function () {
  314. return this._attributesNames;
  315. };
  316. /**
  317. * Returns the attribute at the given index.
  318. * @param index The index of the attribute.
  319. * @returns The location of the attribute.
  320. */
  321. Effect.prototype.getAttributeLocation = function (index) {
  322. return this._attributes[index];
  323. };
  324. /**
  325. * Returns the attribute based on the name of the variable.
  326. * @param name of the attribute to look up.
  327. * @returns the attribute location.
  328. */
  329. Effect.prototype.getAttributeLocationByName = function (name) {
  330. var index = this._attributesNames.indexOf(name);
  331. return this._attributes[index];
  332. };
  333. /**
  334. * The number of attributes.
  335. * @returns the numnber of attributes.
  336. */
  337. Effect.prototype.getAttributesCount = function () {
  338. return this._attributes.length;
  339. };
  340. /**
  341. * Gets the index of a uniform variable.
  342. * @param uniformName of the uniform to look up.
  343. * @returns the index.
  344. */
  345. Effect.prototype.getUniformIndex = function (uniformName) {
  346. return this._uniformsNames.indexOf(uniformName);
  347. };
  348. /**
  349. * Returns the attribute based on the name of the variable.
  350. * @param uniformName of the uniform to look up.
  351. * @returns the location of the uniform.
  352. */
  353. Effect.prototype.getUniform = function (uniformName) {
  354. return this._uniforms[this._uniformsNames.indexOf(uniformName)];
  355. };
  356. /**
  357. * Returns an array of sampler variable names
  358. * @returns The array of sampler variable neames.
  359. */
  360. Effect.prototype.getSamplers = function () {
  361. return this._samplers;
  362. };
  363. /**
  364. * The error from the last compilation.
  365. * @returns the error string.
  366. */
  367. Effect.prototype.getCompilationError = function () {
  368. return this._compilationError;
  369. };
  370. /**
  371. * Adds a callback to the onCompiled observable and call the callback imediatly if already ready.
  372. * @param func The callback to be used.
  373. */
  374. Effect.prototype.executeWhenCompiled = function (func) {
  375. if (this.isReady()) {
  376. func(this);
  377. return;
  378. }
  379. this.onCompileObservable.add(function (effect) {
  380. func(effect);
  381. });
  382. };
  383. /** @hidden */
  384. Effect.prototype._loadVertexShader = function (vertex, callback) {
  385. if (BABYLON.Tools.IsWindowObjectExist()) {
  386. // DOM element ?
  387. if (vertex instanceof HTMLElement) {
  388. var vertexCode = BABYLON.Tools.GetDOMTextContent(vertex);
  389. callback(vertexCode);
  390. return;
  391. }
  392. }
  393. // Base64 encoded ?
  394. if (vertex.substr(0, 7) === "base64:") {
  395. var vertexBinary = window.atob(vertex.substr(7));
  396. callback(vertexBinary);
  397. return;
  398. }
  399. // Is in local store ?
  400. if (Effect.ShadersStore[vertex + "VertexShader"]) {
  401. callback(Effect.ShadersStore[vertex + "VertexShader"]);
  402. return;
  403. }
  404. var vertexShaderUrl;
  405. if (vertex[0] === "." || vertex[0] === "/" || vertex.indexOf("http") > -1) {
  406. vertexShaderUrl = vertex;
  407. }
  408. else {
  409. vertexShaderUrl = BABYLON.Engine.ShadersRepository + vertex;
  410. }
  411. // Vertex shader
  412. this._engine._loadFile(vertexShaderUrl + ".vertex.fx", callback);
  413. };
  414. /** @hidden */
  415. Effect.prototype._loadFragmentShader = function (fragment, callback) {
  416. if (BABYLON.Tools.IsWindowObjectExist()) {
  417. // DOM element ?
  418. if (fragment instanceof HTMLElement) {
  419. var fragmentCode = BABYLON.Tools.GetDOMTextContent(fragment);
  420. callback(fragmentCode);
  421. return;
  422. }
  423. }
  424. // Base64 encoded ?
  425. if (fragment.substr(0, 7) === "base64:") {
  426. var fragmentBinary = window.atob(fragment.substr(7));
  427. callback(fragmentBinary);
  428. return;
  429. }
  430. // Is in local store ?
  431. if (Effect.ShadersStore[fragment + "PixelShader"]) {
  432. callback(Effect.ShadersStore[fragment + "PixelShader"]);
  433. return;
  434. }
  435. if (Effect.ShadersStore[fragment + "FragmentShader"]) {
  436. callback(Effect.ShadersStore[fragment + "FragmentShader"]);
  437. return;
  438. }
  439. var fragmentShaderUrl;
  440. if (fragment[0] === "." || fragment[0] === "/" || fragment.indexOf("http") > -1) {
  441. fragmentShaderUrl = fragment;
  442. }
  443. else {
  444. fragmentShaderUrl = BABYLON.Engine.ShadersRepository + fragment;
  445. }
  446. // Fragment shader
  447. this._engine._loadFile(fragmentShaderUrl + ".fragment.fx", callback);
  448. };
  449. /** @hidden */
  450. Effect.prototype._dumpShadersSource = function (vertexCode, fragmentCode, defines) {
  451. // Rebuild shaders source code
  452. var shaderVersion = (this._engine.webGLVersion > 1) ? "#version 300 es\n#define WEBGL2 \n" : "";
  453. var prefix = shaderVersion + (defines ? defines + "\n" : "");
  454. vertexCode = prefix + vertexCode;
  455. fragmentCode = prefix + fragmentCode;
  456. // Number lines of shaders source code
  457. var i = 2;
  458. var regex = /\n/gm;
  459. var formattedVertexCode = "\n1\t" + vertexCode.replace(regex, function () { return "\n" + (i++) + "\t"; });
  460. i = 2;
  461. var formattedFragmentCode = "\n1\t" + fragmentCode.replace(regex, function () { return "\n" + (i++) + "\t"; });
  462. // Dump shaders name and formatted source code
  463. if (this.name.vertexElement) {
  464. BABYLON.Tools.Error("Vertex shader: " + this.name.vertexElement + formattedVertexCode);
  465. BABYLON.Tools.Error("Fragment shader: " + this.name.fragmentElement + formattedFragmentCode);
  466. }
  467. else if (this.name.vertex) {
  468. BABYLON.Tools.Error("Vertex shader: " + this.name.vertex + formattedVertexCode);
  469. BABYLON.Tools.Error("Fragment shader: " + this.name.fragment + formattedFragmentCode);
  470. }
  471. else {
  472. BABYLON.Tools.Error("Vertex shader: " + this.name + formattedVertexCode);
  473. BABYLON.Tools.Error("Fragment shader: " + this.name + formattedFragmentCode);
  474. }
  475. };
  476. ;
  477. Effect.prototype._processShaderConversion = function (sourceCode, isFragment, callback) {
  478. var preparedSourceCode = this._processPrecision(sourceCode);
  479. if (this._engine.webGLVersion == 1) {
  480. callback(preparedSourceCode);
  481. return;
  482. }
  483. // Already converted
  484. if (preparedSourceCode.indexOf("#version 3") !== -1) {
  485. callback(preparedSourceCode.replace("#version 300 es", ""));
  486. return;
  487. }
  488. var hasDrawBuffersExtension = preparedSourceCode.search(/#extension.+GL_EXT_draw_buffers.+require/) !== -1;
  489. // Remove extensions
  490. // #extension GL_OES_standard_derivatives : enable
  491. // #extension GL_EXT_shader_texture_lod : enable
  492. // #extension GL_EXT_frag_depth : enable
  493. // #extension GL_EXT_draw_buffers : require
  494. var regex = /#extension.+(GL_OES_standard_derivatives|GL_EXT_shader_texture_lod|GL_EXT_frag_depth|GL_EXT_draw_buffers).+(enable|require)/g;
  495. var result = preparedSourceCode.replace(regex, "");
  496. // Migrate to GLSL v300
  497. result = result.replace(/varying(?![\n\r])\s/g, isFragment ? "in " : "out ");
  498. result = result.replace(/attribute[ \t]/g, "in ");
  499. result = result.replace(/[ \t]attribute/g, " in");
  500. if (isFragment) {
  501. result = result.replace(/texture2DLodEXT\s*\(/g, "textureLod(");
  502. result = result.replace(/textureCubeLodEXT\s*\(/g, "textureLod(");
  503. result = result.replace(/texture2D\s*\(/g, "texture(");
  504. result = result.replace(/textureCube\s*\(/g, "texture(");
  505. result = result.replace(/gl_FragDepthEXT/g, "gl_FragDepth");
  506. result = result.replace(/gl_FragColor/g, "glFragColor");
  507. result = result.replace(/gl_FragData/g, "glFragData");
  508. result = result.replace(/void\s+?main\s*\(/g, (hasDrawBuffersExtension ? "" : "out vec4 glFragColor;\n") + "void main(");
  509. }
  510. callback(result);
  511. };
  512. Effect.prototype._processIncludes = function (sourceCode, callback) {
  513. var _this = this;
  514. var regex = /#include<(.+)>(\((.*)\))*(\[(.*)\])*/g;
  515. var match = regex.exec(sourceCode);
  516. var returnValue = new String(sourceCode);
  517. while (match != null) {
  518. var includeFile = match[1];
  519. // Uniform declaration
  520. if (includeFile.indexOf("__decl__") !== -1) {
  521. includeFile = includeFile.replace(/__decl__/, "");
  522. if (this._engine.supportsUniformBuffers) {
  523. includeFile = includeFile.replace(/Vertex/, "Ubo");
  524. includeFile = includeFile.replace(/Fragment/, "Ubo");
  525. }
  526. includeFile = includeFile + "Declaration";
  527. }
  528. if (Effect.IncludesShadersStore[includeFile]) {
  529. // Substitution
  530. var includeContent = Effect.IncludesShadersStore[includeFile];
  531. if (match[2]) {
  532. var splits = match[3].split(",");
  533. for (var index = 0; index < splits.length; index += 2) {
  534. var source = new RegExp(splits[index], "g");
  535. var dest = splits[index + 1];
  536. includeContent = includeContent.replace(source, dest);
  537. }
  538. }
  539. if (match[4]) {
  540. var indexString = match[5];
  541. if (indexString.indexOf("..") !== -1) {
  542. var indexSplits = indexString.split("..");
  543. var minIndex = parseInt(indexSplits[0]);
  544. var maxIndex = parseInt(indexSplits[1]);
  545. var sourceIncludeContent = includeContent.slice(0);
  546. includeContent = "";
  547. if (isNaN(maxIndex)) {
  548. maxIndex = this._indexParameters[indexSplits[1]];
  549. }
  550. for (var i = minIndex; i < maxIndex; i++) {
  551. if (!this._engine.supportsUniformBuffers) {
  552. // Ubo replacement
  553. sourceIncludeContent = sourceIncludeContent.replace(/light\{X\}.(\w*)/g, function (str, p1) {
  554. return p1 + "{X}";
  555. });
  556. }
  557. includeContent += sourceIncludeContent.replace(/\{X\}/g, i.toString()) + "\n";
  558. }
  559. }
  560. else {
  561. if (!this._engine.supportsUniformBuffers) {
  562. // Ubo replacement
  563. includeContent = includeContent.replace(/light\{X\}.(\w*)/g, function (str, p1) {
  564. return p1 + "{X}";
  565. });
  566. }
  567. includeContent = includeContent.replace(/\{X\}/g, indexString);
  568. }
  569. }
  570. // Replace
  571. returnValue = returnValue.replace(match[0], includeContent);
  572. }
  573. else {
  574. var includeShaderUrl = BABYLON.Engine.ShadersRepository + "ShadersInclude/" + includeFile + ".fx";
  575. this._engine._loadFile(includeShaderUrl, function (fileContent) {
  576. Effect.IncludesShadersStore[includeFile] = fileContent;
  577. _this._processIncludes(returnValue, callback);
  578. });
  579. return;
  580. }
  581. match = regex.exec(sourceCode);
  582. }
  583. callback(returnValue);
  584. };
  585. Effect.prototype._processPrecision = function (source) {
  586. if (source.indexOf("precision highp float") === -1) {
  587. if (!this._engine.getCaps().highPrecisionShaderSupported) {
  588. source = "precision mediump float;\n" + source;
  589. }
  590. else {
  591. source = "precision highp float;\n" + source;
  592. }
  593. }
  594. else {
  595. if (!this._engine.getCaps().highPrecisionShaderSupported) { // Moving highp to mediump
  596. source = source.replace("precision highp float", "precision mediump float");
  597. }
  598. }
  599. return source;
  600. };
  601. /**
  602. * Recompiles the webGL program
  603. * @param vertexSourceCode The source code for the vertex shader.
  604. * @param fragmentSourceCode The source code for the fragment shader.
  605. * @param onCompiled Callback called when completed.
  606. * @param onError Callback called on error.
  607. * @hidden
  608. */
  609. Effect.prototype._rebuildProgram = function (vertexSourceCode, fragmentSourceCode, onCompiled, onError) {
  610. var _this = this;
  611. this._isReady = false;
  612. this._vertexSourceCodeOverride = vertexSourceCode;
  613. this._fragmentSourceCodeOverride = fragmentSourceCode;
  614. this.onError = function (effect, error) {
  615. if (onError) {
  616. onError(error);
  617. }
  618. };
  619. this.onCompiled = function () {
  620. var scenes = _this.getEngine().scenes;
  621. for (var i = 0; i < scenes.length; i++) {
  622. scenes[i].markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  623. }
  624. if (onCompiled) {
  625. onCompiled(_this._program);
  626. }
  627. };
  628. this._fallbacks = null;
  629. this._prepareEffect();
  630. };
  631. /**
  632. * Gets the uniform locations of the the specified variable names
  633. * @param names THe names of the variables to lookup.
  634. * @returns Array of locations in the same order as variable names.
  635. */
  636. Effect.prototype.getSpecificUniformLocations = function (names) {
  637. var engine = this._engine;
  638. return engine.getUniforms(this._program, names);
  639. };
  640. /**
  641. * Prepares the effect
  642. * @hidden
  643. */
  644. Effect.prototype._prepareEffect = function () {
  645. var attributesNames = this._attributesNames;
  646. var defines = this.defines;
  647. var fallbacks = this._fallbacks;
  648. this._valueCache = {};
  649. var previousProgram = this._program;
  650. try {
  651. var engine = this._engine;
  652. if (this._vertexSourceCodeOverride && this._fragmentSourceCodeOverride) {
  653. this._program = engine.createRawShaderProgram(this._vertexSourceCodeOverride, this._fragmentSourceCodeOverride, undefined, this._transformFeedbackVaryings);
  654. }
  655. else {
  656. this._program = engine.createShaderProgram(this._vertexSourceCode, this._fragmentSourceCode, defines, undefined, this._transformFeedbackVaryings);
  657. }
  658. this._program.__SPECTOR_rebuildProgram = this._rebuildProgram.bind(this);
  659. if (engine.supportsUniformBuffers) {
  660. for (var name in this._uniformBuffersNames) {
  661. this.bindUniformBlock(name, this._uniformBuffersNames[name]);
  662. }
  663. }
  664. this._uniforms = engine.getUniforms(this._program, this._uniformsNames);
  665. this._attributes = engine.getAttributes(this._program, attributesNames);
  666. var index;
  667. for (index = 0; index < this._samplers.length; index++) {
  668. var sampler = this.getUniform(this._samplers[index]);
  669. if (sampler == null) {
  670. this._samplers.splice(index, 1);
  671. index--;
  672. }
  673. }
  674. engine.bindSamplers(this);
  675. this._compilationError = "";
  676. this._isReady = true;
  677. if (this.onCompiled) {
  678. this.onCompiled(this);
  679. }
  680. this.onCompileObservable.notifyObservers(this);
  681. this.onCompileObservable.clear();
  682. // Unbind mesh reference in fallbacks
  683. if (this._fallbacks) {
  684. this._fallbacks.unBindMesh();
  685. }
  686. if (previousProgram) {
  687. this.getEngine()._deleteProgram(previousProgram);
  688. }
  689. }
  690. catch (e) {
  691. this._compilationError = e.message;
  692. // Let's go through fallbacks then
  693. BABYLON.Tools.Error("Unable to compile effect:");
  694. BABYLON.Tools.Error("Uniforms: " + this._uniformsNames.map(function (uniform) {
  695. return " " + uniform;
  696. }));
  697. BABYLON.Tools.Error("Attributes: " + attributesNames.map(function (attribute) {
  698. return " " + attribute;
  699. }));
  700. BABYLON.Tools.Error("Error: " + this._compilationError);
  701. if (previousProgram) {
  702. this._program = previousProgram;
  703. this._isReady = true;
  704. if (this.onError) {
  705. this.onError(this, this._compilationError);
  706. }
  707. this.onErrorObservable.notifyObservers(this);
  708. }
  709. if (fallbacks && fallbacks.isMoreFallbacks) {
  710. BABYLON.Tools.Error("Trying next fallback.");
  711. this.defines = fallbacks.reduce(this.defines, this);
  712. this._prepareEffect();
  713. }
  714. else { // Sorry we did everything we can
  715. if (this.onError) {
  716. this.onError(this, this._compilationError);
  717. }
  718. this.onErrorObservable.notifyObservers(this);
  719. this.onErrorObservable.clear();
  720. // Unbind mesh reference in fallbacks
  721. if (this._fallbacks) {
  722. this._fallbacks.unBindMesh();
  723. }
  724. }
  725. }
  726. };
  727. Object.defineProperty(Effect.prototype, "isSupported", {
  728. /**
  729. * Checks if the effect is supported. (Must be called after compilation)
  730. */
  731. get: function () {
  732. return this._compilationError === "";
  733. },
  734. enumerable: true,
  735. configurable: true
  736. });
  737. /**
  738. * Binds a texture to the engine to be used as output of the shader.
  739. * @param channel Name of the output variable.
  740. * @param texture Texture to bind.
  741. * @hidden
  742. */
  743. Effect.prototype._bindTexture = function (channel, texture) {
  744. this._engine._bindTexture(this._samplers.indexOf(channel), texture);
  745. };
  746. /**
  747. * Sets a texture on the engine to be used in the shader.
  748. * @param channel Name of the sampler variable.
  749. * @param texture Texture to set.
  750. */
  751. Effect.prototype.setTexture = function (channel, texture) {
  752. this._engine.setTexture(this._samplers.indexOf(channel), this.getUniform(channel), texture);
  753. };
  754. /**
  755. * Sets a depth stencil texture from a render target on the engine to be used in the shader.
  756. * @param channel Name of the sampler variable.
  757. * @param texture Texture to set.
  758. */
  759. Effect.prototype.setDepthStencilTexture = function (channel, texture) {
  760. this._engine.setDepthStencilTexture(this._samplers.indexOf(channel), this.getUniform(channel), texture);
  761. };
  762. /**
  763. * Sets an array of textures on the engine to be used in the shader.
  764. * @param channel Name of the variable.
  765. * @param textures Textures to set.
  766. */
  767. Effect.prototype.setTextureArray = function (channel, textures) {
  768. if (this._samplers.indexOf(channel + "Ex") === -1) {
  769. var initialPos = this._samplers.indexOf(channel);
  770. for (var index = 1; index < textures.length; index++) {
  771. this._samplers.splice(initialPos + index, 0, channel + "Ex");
  772. }
  773. }
  774. this._engine.setTextureArray(this._samplers.indexOf(channel), this.getUniform(channel), textures);
  775. };
  776. /**
  777. * Sets a texture to be the input of the specified post process. (To use the output, pass in the next post process in the pipeline)
  778. * @param channel Name of the sampler variable.
  779. * @param postProcess Post process to get the input texture from.
  780. */
  781. Effect.prototype.setTextureFromPostProcess = function (channel, postProcess) {
  782. this._engine.setTextureFromPostProcess(this._samplers.indexOf(channel), postProcess);
  783. };
  784. /**
  785. * (Warning! setTextureFromPostProcessOutput may be desired instead)
  786. * Sets the input texture of the passed in post process to be input of this effect. (To use the output of the passed in post process use setTextureFromPostProcessOutput)
  787. * @param channel Name of the sampler variable.
  788. * @param postProcess Post process to get the output texture from.
  789. */
  790. Effect.prototype.setTextureFromPostProcessOutput = function (channel, postProcess) {
  791. this._engine.setTextureFromPostProcessOutput(this._samplers.indexOf(channel), postProcess);
  792. };
  793. /** @hidden */
  794. Effect.prototype._cacheMatrix = function (uniformName, matrix) {
  795. var cache = this._valueCache[uniformName];
  796. var flag = matrix.updateFlag;
  797. if (cache !== undefined && cache === flag) {
  798. return false;
  799. }
  800. this._valueCache[uniformName] = flag;
  801. return true;
  802. };
  803. /** @hidden */
  804. Effect.prototype._cacheFloat2 = function (uniformName, x, y) {
  805. var cache = this._valueCache[uniformName];
  806. if (!cache) {
  807. cache = [x, y];
  808. this._valueCache[uniformName] = cache;
  809. return true;
  810. }
  811. var changed = false;
  812. if (cache[0] !== x) {
  813. cache[0] = x;
  814. changed = true;
  815. }
  816. if (cache[1] !== y) {
  817. cache[1] = y;
  818. changed = true;
  819. }
  820. return changed;
  821. };
  822. /** @hidden */
  823. Effect.prototype._cacheFloat3 = function (uniformName, x, y, z) {
  824. var cache = this._valueCache[uniformName];
  825. if (!cache) {
  826. cache = [x, y, z];
  827. this._valueCache[uniformName] = cache;
  828. return true;
  829. }
  830. var changed = false;
  831. if (cache[0] !== x) {
  832. cache[0] = x;
  833. changed = true;
  834. }
  835. if (cache[1] !== y) {
  836. cache[1] = y;
  837. changed = true;
  838. }
  839. if (cache[2] !== z) {
  840. cache[2] = z;
  841. changed = true;
  842. }
  843. return changed;
  844. };
  845. /** @hidden */
  846. Effect.prototype._cacheFloat4 = function (uniformName, x, y, z, w) {
  847. var cache = this._valueCache[uniformName];
  848. if (!cache) {
  849. cache = [x, y, z, w];
  850. this._valueCache[uniformName] = cache;
  851. return true;
  852. }
  853. var changed = false;
  854. if (cache[0] !== x) {
  855. cache[0] = x;
  856. changed = true;
  857. }
  858. if (cache[1] !== y) {
  859. cache[1] = y;
  860. changed = true;
  861. }
  862. if (cache[2] !== z) {
  863. cache[2] = z;
  864. changed = true;
  865. }
  866. if (cache[3] !== w) {
  867. cache[3] = w;
  868. changed = true;
  869. }
  870. return changed;
  871. };
  872. /**
  873. * Binds a buffer to a uniform.
  874. * @param buffer Buffer to bind.
  875. * @param name Name of the uniform variable to bind to.
  876. */
  877. Effect.prototype.bindUniformBuffer = function (buffer, name) {
  878. var bufferName = this._uniformBuffersNames[name];
  879. if (bufferName === undefined || Effect._baseCache[bufferName] === buffer) {
  880. return;
  881. }
  882. Effect._baseCache[bufferName] = buffer;
  883. this._engine.bindUniformBufferBase(buffer, bufferName);
  884. };
  885. /**
  886. * Binds block to a uniform.
  887. * @param blockName Name of the block to bind.
  888. * @param index Index to bind.
  889. */
  890. Effect.prototype.bindUniformBlock = function (blockName, index) {
  891. this._engine.bindUniformBlock(this._program, blockName, index);
  892. };
  893. /**
  894. * Sets an interger value on a uniform variable.
  895. * @param uniformName Name of the variable.
  896. * @param value Value to be set.
  897. * @returns this effect.
  898. */
  899. Effect.prototype.setInt = function (uniformName, value) {
  900. var cache = this._valueCache[uniformName];
  901. if (cache !== undefined && cache === value)
  902. return this;
  903. this._valueCache[uniformName] = value;
  904. this._engine.setInt(this.getUniform(uniformName), value);
  905. return this;
  906. };
  907. /**
  908. * Sets an int array on a uniform variable.
  909. * @param uniformName Name of the variable.
  910. * @param array array to be set.
  911. * @returns this effect.
  912. */
  913. Effect.prototype.setIntArray = function (uniformName, array) {
  914. this._valueCache[uniformName] = null;
  915. this._engine.setIntArray(this.getUniform(uniformName), array);
  916. return this;
  917. };
  918. /**
  919. * Sets an int array 2 on a uniform variable. (Array is specified as single array eg. [1,2,3,4] will result in [[1,2],[3,4]] in the shader)
  920. * @param uniformName Name of the variable.
  921. * @param array array to be set.
  922. * @returns this effect.
  923. */
  924. Effect.prototype.setIntArray2 = function (uniformName, array) {
  925. this._valueCache[uniformName] = null;
  926. this._engine.setIntArray2(this.getUniform(uniformName), array);
  927. return this;
  928. };
  929. /**
  930. * Sets an int array 3 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6] will result in [[1,2,3],[4,5,6]] in the shader)
  931. * @param uniformName Name of the variable.
  932. * @param array array to be set.
  933. * @returns this effect.
  934. */
  935. Effect.prototype.setIntArray3 = function (uniformName, array) {
  936. this._valueCache[uniformName] = null;
  937. this._engine.setIntArray3(this.getUniform(uniformName), array);
  938. return this;
  939. };
  940. /**
  941. * Sets an int array 4 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6,7,8] will result in [[1,2,3,4],[5,6,7,8]] in the shader)
  942. * @param uniformName Name of the variable.
  943. * @param array array to be set.
  944. * @returns this effect.
  945. */
  946. Effect.prototype.setIntArray4 = function (uniformName, array) {
  947. this._valueCache[uniformName] = null;
  948. this._engine.setIntArray4(this.getUniform(uniformName), array);
  949. return this;
  950. };
  951. /**
  952. * Sets an float array on a uniform variable.
  953. * @param uniformName Name of the variable.
  954. * @param array array to be set.
  955. * @returns this effect.
  956. */
  957. Effect.prototype.setFloatArray = function (uniformName, array) {
  958. this._valueCache[uniformName] = null;
  959. this._engine.setFloatArray(this.getUniform(uniformName), array);
  960. return this;
  961. };
  962. /**
  963. * Sets an float array 2 on a uniform variable. (Array is specified as single array eg. [1,2,3,4] will result in [[1,2],[3,4]] in the shader)
  964. * @param uniformName Name of the variable.
  965. * @param array array to be set.
  966. * @returns this effect.
  967. */
  968. Effect.prototype.setFloatArray2 = function (uniformName, array) {
  969. this._valueCache[uniformName] = null;
  970. this._engine.setFloatArray2(this.getUniform(uniformName), array);
  971. return this;
  972. };
  973. /**
  974. * Sets an float array 3 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6] will result in [[1,2,3],[4,5,6]] in the shader)
  975. * @param uniformName Name of the variable.
  976. * @param array array to be set.
  977. * @returns this effect.
  978. */
  979. Effect.prototype.setFloatArray3 = function (uniformName, array) {
  980. this._valueCache[uniformName] = null;
  981. this._engine.setFloatArray3(this.getUniform(uniformName), array);
  982. return this;
  983. };
  984. /**
  985. * Sets an float array 4 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6,7,8] will result in [[1,2,3,4],[5,6,7,8]] in the shader)
  986. * @param uniformName Name of the variable.
  987. * @param array array to be set.
  988. * @returns this effect.
  989. */
  990. Effect.prototype.setFloatArray4 = function (uniformName, array) {
  991. this._valueCache[uniformName] = null;
  992. this._engine.setFloatArray4(this.getUniform(uniformName), array);
  993. return this;
  994. };
  995. /**
  996. * Sets an array on a uniform variable.
  997. * @param uniformName Name of the variable.
  998. * @param array array to be set.
  999. * @returns this effect.
  1000. */
  1001. Effect.prototype.setArray = function (uniformName, array) {
  1002. this._valueCache[uniformName] = null;
  1003. this._engine.setArray(this.getUniform(uniformName), array);
  1004. return this;
  1005. };
  1006. /**
  1007. * Sets an array 2 on a uniform variable. (Array is specified as single array eg. [1,2,3,4] will result in [[1,2],[3,4]] in the shader)
  1008. * @param uniformName Name of the variable.
  1009. * @param array array to be set.
  1010. * @returns this effect.
  1011. */
  1012. Effect.prototype.setArray2 = function (uniformName, array) {
  1013. this._valueCache[uniformName] = null;
  1014. this._engine.setArray2(this.getUniform(uniformName), array);
  1015. return this;
  1016. };
  1017. /**
  1018. * Sets an array 3 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6] will result in [[1,2,3],[4,5,6]] in the shader)
  1019. * @param uniformName Name of the variable.
  1020. * @param array array to be set.
  1021. * @returns this effect.
  1022. */
  1023. Effect.prototype.setArray3 = function (uniformName, array) {
  1024. this._valueCache[uniformName] = null;
  1025. this._engine.setArray3(this.getUniform(uniformName), array);
  1026. return this;
  1027. };
  1028. /**
  1029. * Sets an array 4 on a uniform variable. (Array is specified as single array eg. [1,2,3,4,5,6,7,8] will result in [[1,2,3,4],[5,6,7,8]] in the shader)
  1030. * @param uniformName Name of the variable.
  1031. * @param array array to be set.
  1032. * @returns this effect.
  1033. */
  1034. Effect.prototype.setArray4 = function (uniformName, array) {
  1035. this._valueCache[uniformName] = null;
  1036. this._engine.setArray4(this.getUniform(uniformName), array);
  1037. return this;
  1038. };
  1039. /**
  1040. * Sets matrices on a uniform variable.
  1041. * @param uniformName Name of the variable.
  1042. * @param matrices matrices to be set.
  1043. * @returns this effect.
  1044. */
  1045. Effect.prototype.setMatrices = function (uniformName, matrices) {
  1046. if (!matrices) {
  1047. return this;
  1048. }
  1049. this._valueCache[uniformName] = null;
  1050. this._engine.setMatrices(this.getUniform(uniformName), matrices);
  1051. return this;
  1052. };
  1053. /**
  1054. * Sets matrix on a uniform variable.
  1055. * @param uniformName Name of the variable.
  1056. * @param matrix matrix to be set.
  1057. * @returns this effect.
  1058. */
  1059. Effect.prototype.setMatrix = function (uniformName, matrix) {
  1060. if (this._cacheMatrix(uniformName, matrix)) {
  1061. this._engine.setMatrix(this.getUniform(uniformName), matrix);
  1062. }
  1063. return this;
  1064. };
  1065. /**
  1066. * Sets a 3x3 matrix on a uniform variable. (Speicified as [1,2,3,4,5,6,7,8,9] will result in [1,2,3][4,5,6][7,8,9] matrix)
  1067. * @param uniformName Name of the variable.
  1068. * @param matrix matrix to be set.
  1069. * @returns this effect.
  1070. */
  1071. Effect.prototype.setMatrix3x3 = function (uniformName, matrix) {
  1072. this._valueCache[uniformName] = null;
  1073. this._engine.setMatrix3x3(this.getUniform(uniformName), matrix);
  1074. return this;
  1075. };
  1076. /**
  1077. * Sets a 2x2 matrix on a uniform variable. (Speicified as [1,2,3,4] will result in [1,2][3,4] matrix)
  1078. * @param uniformName Name of the variable.
  1079. * @param matrix matrix to be set.
  1080. * @returns this effect.
  1081. */
  1082. Effect.prototype.setMatrix2x2 = function (uniformName, matrix) {
  1083. this._valueCache[uniformName] = null;
  1084. this._engine.setMatrix2x2(this.getUniform(uniformName), matrix);
  1085. return this;
  1086. };
  1087. /**
  1088. * Sets a float on a uniform variable.
  1089. * @param uniformName Name of the variable.
  1090. * @param value value to be set.
  1091. * @returns this effect.
  1092. */
  1093. Effect.prototype.setFloat = function (uniformName, value) {
  1094. var cache = this._valueCache[uniformName];
  1095. if (cache !== undefined && cache === value)
  1096. return this;
  1097. this._valueCache[uniformName] = value;
  1098. this._engine.setFloat(this.getUniform(uniformName), value);
  1099. return this;
  1100. };
  1101. /**
  1102. * Sets a boolean on a uniform variable.
  1103. * @param uniformName Name of the variable.
  1104. * @param bool value to be set.
  1105. * @returns this effect.
  1106. */
  1107. Effect.prototype.setBool = function (uniformName, bool) {
  1108. var cache = this._valueCache[uniformName];
  1109. if (cache !== undefined && cache === bool)
  1110. return this;
  1111. this._valueCache[uniformName] = bool;
  1112. this._engine.setBool(this.getUniform(uniformName), bool ? 1 : 0);
  1113. return this;
  1114. };
  1115. /**
  1116. * Sets a Vector2 on a uniform variable.
  1117. * @param uniformName Name of the variable.
  1118. * @param vector2 vector2 to be set.
  1119. * @returns this effect.
  1120. */
  1121. Effect.prototype.setVector2 = function (uniformName, vector2) {
  1122. if (this._cacheFloat2(uniformName, vector2.x, vector2.y)) {
  1123. this._engine.setFloat2(this.getUniform(uniformName), vector2.x, vector2.y);
  1124. }
  1125. return this;
  1126. };
  1127. /**
  1128. * Sets a float2 on a uniform variable.
  1129. * @param uniformName Name of the variable.
  1130. * @param x First float in float2.
  1131. * @param y Second float in float2.
  1132. * @returns this effect.
  1133. */
  1134. Effect.prototype.setFloat2 = function (uniformName, x, y) {
  1135. if (this._cacheFloat2(uniformName, x, y)) {
  1136. this._engine.setFloat2(this.getUniform(uniformName), x, y);
  1137. }
  1138. return this;
  1139. };
  1140. /**
  1141. * Sets a Vector3 on a uniform variable.
  1142. * @param uniformName Name of the variable.
  1143. * @param vector3 Value to be set.
  1144. * @returns this effect.
  1145. */
  1146. Effect.prototype.setVector3 = function (uniformName, vector3) {
  1147. if (this._cacheFloat3(uniformName, vector3.x, vector3.y, vector3.z)) {
  1148. this._engine.setFloat3(this.getUniform(uniformName), vector3.x, vector3.y, vector3.z);
  1149. }
  1150. return this;
  1151. };
  1152. /**
  1153. * Sets a float3 on a uniform variable.
  1154. * @param uniformName Name of the variable.
  1155. * @param x First float in float3.
  1156. * @param y Second float in float3.
  1157. * @param z Third float in float3.
  1158. * @returns this effect.
  1159. */
  1160. Effect.prototype.setFloat3 = function (uniformName, x, y, z) {
  1161. if (this._cacheFloat3(uniformName, x, y, z)) {
  1162. this._engine.setFloat3(this.getUniform(uniformName), x, y, z);
  1163. }
  1164. return this;
  1165. };
  1166. /**
  1167. * Sets a Vector4 on a uniform variable.
  1168. * @param uniformName Name of the variable.
  1169. * @param vector4 Value to be set.
  1170. * @returns this effect.
  1171. */
  1172. Effect.prototype.setVector4 = function (uniformName, vector4) {
  1173. if (this._cacheFloat4(uniformName, vector4.x, vector4.y, vector4.z, vector4.w)) {
  1174. this._engine.setFloat4(this.getUniform(uniformName), vector4.x, vector4.y, vector4.z, vector4.w);
  1175. }
  1176. return this;
  1177. };
  1178. /**
  1179. * Sets a float4 on a uniform variable.
  1180. * @param uniformName Name of the variable.
  1181. * @param x First float in float4.
  1182. * @param y Second float in float4.
  1183. * @param z Third float in float4.
  1184. * @param w Fourth float in float4.
  1185. * @returns this effect.
  1186. */
  1187. Effect.prototype.setFloat4 = function (uniformName, x, y, z, w) {
  1188. if (this._cacheFloat4(uniformName, x, y, z, w)) {
  1189. this._engine.setFloat4(this.getUniform(uniformName), x, y, z, w);
  1190. }
  1191. return this;
  1192. };
  1193. /**
  1194. * Sets a Color3 on a uniform variable.
  1195. * @param uniformName Name of the variable.
  1196. * @param color3 Value to be set.
  1197. * @returns this effect.
  1198. */
  1199. Effect.prototype.setColor3 = function (uniformName, color3) {
  1200. if (this._cacheFloat3(uniformName, color3.r, color3.g, color3.b)) {
  1201. this._engine.setColor3(this.getUniform(uniformName), color3);
  1202. }
  1203. return this;
  1204. };
  1205. /**
  1206. * Sets a Color4 on a uniform variable.
  1207. * @param uniformName Name of the variable.
  1208. * @param color3 Value to be set.
  1209. * @param alpha Alpha value to be set.
  1210. * @returns this effect.
  1211. */
  1212. Effect.prototype.setColor4 = function (uniformName, color3, alpha) {
  1213. if (this._cacheFloat4(uniformName, color3.r, color3.g, color3.b, alpha)) {
  1214. this._engine.setColor4(this.getUniform(uniformName), color3, alpha);
  1215. }
  1216. return this;
  1217. };
  1218. /**
  1219. * Sets a Color4 on a uniform variable
  1220. * @param uniformName defines the name of the variable
  1221. * @param color4 defines the value to be set
  1222. * @returns this effect.
  1223. */
  1224. Effect.prototype.setDirectColor4 = function (uniformName, color4) {
  1225. if (this._cacheFloat4(uniformName, color4.r, color4.g, color4.b, color4.a)) {
  1226. this._engine.setDirectColor4(this.getUniform(uniformName), color4);
  1227. }
  1228. return this;
  1229. };
  1230. /**
  1231. * This function will add a new shader to the shader store
  1232. * @param name the name of the shader
  1233. * @param pixelShader optional pixel shader content
  1234. * @param vertexShader optional vertex shader content
  1235. */
  1236. Effect.RegisterShader = function (name, pixelShader, vertexShader) {
  1237. if (pixelShader) {
  1238. Effect.ShadersStore[name + "PixelShader"] = pixelShader;
  1239. }
  1240. if (vertexShader) {
  1241. Effect.ShadersStore[name + "VertexShader"] = vertexShader;
  1242. }
  1243. };
  1244. /**
  1245. * Resets the cache of effects.
  1246. */
  1247. Effect.ResetCache = function () {
  1248. Effect._baseCache = {};
  1249. };
  1250. Effect._uniqueIdSeed = 0;
  1251. Effect._baseCache = {};
  1252. /**
  1253. * Store of each shader (The can be looked up using effect.key)
  1254. */
  1255. Effect.ShadersStore = {};
  1256. /**
  1257. * Store of each included file for a shader (The can be looked up using effect.key)
  1258. */
  1259. Effect.IncludesShadersStore = {};
  1260. return Effect;
  1261. }());
  1262. BABYLON.Effect = Effect;
  1263. })(BABYLON || (BABYLON = {}));
  1264. //# sourceMappingURL=babylon.effect.js.map
  1265. //# sourceMappingURL=babylon.types.js.map
  1266. var BABYLON;
  1267. (function (BABYLON) {
  1268. var KeyboardEventTypes = /** @class */ (function () {
  1269. function KeyboardEventTypes() {
  1270. }
  1271. Object.defineProperty(KeyboardEventTypes, "KEYDOWN", {
  1272. get: function () {
  1273. return KeyboardEventTypes._KEYDOWN;
  1274. },
  1275. enumerable: true,
  1276. configurable: true
  1277. });
  1278. Object.defineProperty(KeyboardEventTypes, "KEYUP", {
  1279. get: function () {
  1280. return KeyboardEventTypes._KEYUP;
  1281. },
  1282. enumerable: true,
  1283. configurable: true
  1284. });
  1285. KeyboardEventTypes._KEYDOWN = 0x01;
  1286. KeyboardEventTypes._KEYUP = 0x02;
  1287. return KeyboardEventTypes;
  1288. }());
  1289. BABYLON.KeyboardEventTypes = KeyboardEventTypes;
  1290. var KeyboardInfo = /** @class */ (function () {
  1291. function KeyboardInfo(type, event) {
  1292. this.type = type;
  1293. this.event = event;
  1294. }
  1295. return KeyboardInfo;
  1296. }());
  1297. BABYLON.KeyboardInfo = KeyboardInfo;
  1298. /**
  1299. * This class is used to store keyboard related info for the onPreKeyboardObservable event.
  1300. * Set the skipOnKeyboardObservable property to true if you want the engine to stop any process after this event is triggered, even not calling onKeyboardObservable
  1301. */
  1302. var KeyboardInfoPre = /** @class */ (function (_super) {
  1303. __extends(KeyboardInfoPre, _super);
  1304. function KeyboardInfoPre(type, event) {
  1305. var _this = _super.call(this, type, event) || this;
  1306. _this.skipOnPointerObservable = false;
  1307. return _this;
  1308. }
  1309. return KeyboardInfoPre;
  1310. }(KeyboardInfo));
  1311. BABYLON.KeyboardInfoPre = KeyboardInfoPre;
  1312. })(BABYLON || (BABYLON = {}));
  1313. //# sourceMappingURL=babylon.keyboardEvents.js.map
  1314. var BABYLON;
  1315. (function (BABYLON) {
  1316. var PointerEventTypes = /** @class */ (function () {
  1317. function PointerEventTypes() {
  1318. }
  1319. Object.defineProperty(PointerEventTypes, "POINTERDOWN", {
  1320. get: function () {
  1321. return PointerEventTypes._POINTERDOWN;
  1322. },
  1323. enumerable: true,
  1324. configurable: true
  1325. });
  1326. Object.defineProperty(PointerEventTypes, "POINTERUP", {
  1327. get: function () {
  1328. return PointerEventTypes._POINTERUP;
  1329. },
  1330. enumerable: true,
  1331. configurable: true
  1332. });
  1333. Object.defineProperty(PointerEventTypes, "POINTERMOVE", {
  1334. get: function () {
  1335. return PointerEventTypes._POINTERMOVE;
  1336. },
  1337. enumerable: true,
  1338. configurable: true
  1339. });
  1340. Object.defineProperty(PointerEventTypes, "POINTERWHEEL", {
  1341. get: function () {
  1342. return PointerEventTypes._POINTERWHEEL;
  1343. },
  1344. enumerable: true,
  1345. configurable: true
  1346. });
  1347. Object.defineProperty(PointerEventTypes, "POINTERPICK", {
  1348. get: function () {
  1349. return PointerEventTypes._POINTERPICK;
  1350. },
  1351. enumerable: true,
  1352. configurable: true
  1353. });
  1354. Object.defineProperty(PointerEventTypes, "POINTERTAP", {
  1355. get: function () {
  1356. return PointerEventTypes._POINTERTAP;
  1357. },
  1358. enumerable: true,
  1359. configurable: true
  1360. });
  1361. Object.defineProperty(PointerEventTypes, "POINTERDOUBLETAP", {
  1362. get: function () {
  1363. return PointerEventTypes._POINTERDOUBLETAP;
  1364. },
  1365. enumerable: true,
  1366. configurable: true
  1367. });
  1368. PointerEventTypes._POINTERDOWN = 0x01;
  1369. PointerEventTypes._POINTERUP = 0x02;
  1370. PointerEventTypes._POINTERMOVE = 0x04;
  1371. PointerEventTypes._POINTERWHEEL = 0x08;
  1372. PointerEventTypes._POINTERPICK = 0x10;
  1373. PointerEventTypes._POINTERTAP = 0x20;
  1374. PointerEventTypes._POINTERDOUBLETAP = 0x40;
  1375. return PointerEventTypes;
  1376. }());
  1377. BABYLON.PointerEventTypes = PointerEventTypes;
  1378. var PointerInfoBase = /** @class */ (function () {
  1379. function PointerInfoBase(type, event) {
  1380. this.type = type;
  1381. this.event = event;
  1382. }
  1383. return PointerInfoBase;
  1384. }());
  1385. BABYLON.PointerInfoBase = PointerInfoBase;
  1386. /**
  1387. * This class is used to store pointer related info for the onPrePointerObservable event.
  1388. * Set the skipOnPointerObservable property to true if you want the engine to stop any process after this event is triggered, even not calling onPointerObservable
  1389. */
  1390. var PointerInfoPre = /** @class */ (function (_super) {
  1391. __extends(PointerInfoPre, _super);
  1392. function PointerInfoPre(type, event, localX, localY) {
  1393. var _this = _super.call(this, type, event) || this;
  1394. /**
  1395. * Ray from a pointer if availible (eg. 6dof controller)
  1396. */
  1397. _this.ray = null;
  1398. _this.skipOnPointerObservable = false;
  1399. _this.localPosition = new BABYLON.Vector2(localX, localY);
  1400. return _this;
  1401. }
  1402. return PointerInfoPre;
  1403. }(PointerInfoBase));
  1404. BABYLON.PointerInfoPre = PointerInfoPre;
  1405. /**
  1406. * This type contains all the data related to a pointer event in Babylon.js.
  1407. * The event member is an instance of PointerEvent for all types except PointerWheel and is of type MouseWheelEvent when type equals PointerWheel. The different event types can be found in the PointerEventTypes class.
  1408. */
  1409. var PointerInfo = /** @class */ (function (_super) {
  1410. __extends(PointerInfo, _super);
  1411. function PointerInfo(type, event, pickInfo) {
  1412. var _this = _super.call(this, type, event) || this;
  1413. _this.pickInfo = pickInfo;
  1414. return _this;
  1415. }
  1416. return PointerInfo;
  1417. }(PointerInfoBase));
  1418. BABYLON.PointerInfo = PointerInfo;
  1419. })(BABYLON || (BABYLON = {}));
  1420. //# sourceMappingURL=babylon.pointerEvents.js.map
  1421. var BABYLON;
  1422. (function (BABYLON) {
  1423. BABYLON.ToGammaSpace = 1 / 2.2;
  1424. BABYLON.ToLinearSpace = 2.2;
  1425. BABYLON.Epsilon = 0.001;
  1426. /**
  1427. * Class used to hold a RBG color
  1428. */
  1429. var Color3 = /** @class */ (function () {
  1430. /**
  1431. * Creates a new Color3 object from red, green, blue values, all between 0 and 1
  1432. * @param r defines the red component (between 0 and 1, default is 0)
  1433. * @param g defines the green component (between 0 and 1, default is 0)
  1434. * @param b defines the blue component (between 0 and 1, default is 0)
  1435. */
  1436. function Color3(
  1437. /**
  1438. * Defines the red component (between 0 and 1, default is 0)
  1439. */
  1440. r,
  1441. /**
  1442. * Defines the green component (between 0 and 1, default is 0)
  1443. */
  1444. g,
  1445. /**
  1446. * Defines the blue component (between 0 and 1, default is 0)
  1447. */
  1448. b) {
  1449. if (r === void 0) { r = 0; }
  1450. if (g === void 0) { g = 0; }
  1451. if (b === void 0) { b = 0; }
  1452. this.r = r;
  1453. this.g = g;
  1454. this.b = b;
  1455. }
  1456. /**
  1457. * Creates a string with the Color3 current values
  1458. * @returns the string representation of the Color3 object
  1459. */
  1460. Color3.prototype.toString = function () {
  1461. return "{R: " + this.r + " G:" + this.g + " B:" + this.b + "}";
  1462. };
  1463. /**
  1464. * Returns the string "Color3"
  1465. * @returns "Color3"
  1466. */
  1467. Color3.prototype.getClassName = function () {
  1468. return "Color3";
  1469. };
  1470. /**
  1471. * Compute the Color3 hash code
  1472. * @returns an unique number that can be used to hash Color3 objects
  1473. */
  1474. Color3.prototype.getHashCode = function () {
  1475. var hash = this.r || 0;
  1476. hash = (hash * 397) ^ (this.g || 0);
  1477. hash = (hash * 397) ^ (this.b || 0);
  1478. return hash;
  1479. };
  1480. // Operators
  1481. /**
  1482. * Stores in the given array from the given starting index the red, green, blue values as successive elements
  1483. * @param array defines the array where to store the r,g,b components
  1484. * @param index defines an optional index in the target array to define where to start storing values
  1485. * @returns the current Color3 object
  1486. */
  1487. Color3.prototype.toArray = function (array, index) {
  1488. if (index === undefined) {
  1489. index = 0;
  1490. }
  1491. array[index] = this.r;
  1492. array[index + 1] = this.g;
  1493. array[index + 2] = this.b;
  1494. return this;
  1495. };
  1496. /**
  1497. * Returns a new {BABYLON.Color4} object from the current Color3 and the given alpha
  1498. * @param alpha defines the alpha component on the new {BABYLON.Color4} object (default is 1)
  1499. * @returns a new {BABYLON.Color4} object
  1500. */
  1501. Color3.prototype.toColor4 = function (alpha) {
  1502. if (alpha === void 0) { alpha = 1; }
  1503. return new Color4(this.r, this.g, this.b, alpha);
  1504. };
  1505. /**
  1506. * Returns a new array populated with 3 numeric elements : red, green and blue values
  1507. * @returns the new array
  1508. */
  1509. Color3.prototype.asArray = function () {
  1510. var result = new Array();
  1511. this.toArray(result, 0);
  1512. return result;
  1513. };
  1514. /**
  1515. * Returns the luminance value
  1516. * @returns a float value
  1517. */
  1518. Color3.prototype.toLuminance = function () {
  1519. return this.r * 0.3 + this.g * 0.59 + this.b * 0.11;
  1520. };
  1521. /**
  1522. * Multiply each Color3 rgb values by the given Color3 rgb values in a new Color3 object
  1523. * @param otherColor defines the second operand
  1524. * @returns the new Color3 object
  1525. */
  1526. Color3.prototype.multiply = function (otherColor) {
  1527. return new Color3(this.r * otherColor.r, this.g * otherColor.g, this.b * otherColor.b);
  1528. };
  1529. /**
  1530. * Multiply the rgb values of the Color3 and the given Color3 and stores the result in the object "result"
  1531. * @param otherColor defines the second operand
  1532. * @param result defines the Color3 object where to store the result
  1533. * @returns the current Color3
  1534. */
  1535. Color3.prototype.multiplyToRef = function (otherColor, result) {
  1536. result.r = this.r * otherColor.r;
  1537. result.g = this.g * otherColor.g;
  1538. result.b = this.b * otherColor.b;
  1539. return this;
  1540. };
  1541. /**
  1542. * Determines equality between Color3 objects
  1543. * @param otherColor defines the second operand
  1544. * @returns true if the rgb values are equal to the given ones
  1545. */
  1546. Color3.prototype.equals = function (otherColor) {
  1547. return otherColor && this.r === otherColor.r && this.g === otherColor.g && this.b === otherColor.b;
  1548. };
  1549. /**
  1550. * Determines equality between the current Color3 object and a set of r,b,g values
  1551. * @param r defines the red component to check
  1552. * @param g defines the green component to check
  1553. * @param b defines the blue component to check
  1554. * @returns true if the rgb values are equal to the given ones
  1555. */
  1556. Color3.prototype.equalsFloats = function (r, g, b) {
  1557. return this.r === r && this.g === g && this.b === b;
  1558. };
  1559. /**
  1560. * Multiplies in place each rgb value by scale
  1561. * @param scale defines the scaling factor
  1562. * @returns the updated Color3
  1563. */
  1564. Color3.prototype.scale = function (scale) {
  1565. return new Color3(this.r * scale, this.g * scale, this.b * scale);
  1566. };
  1567. /**
  1568. * Multiplies the rgb values by scale and stores the result into "result"
  1569. * @param scale defines the scaling factor
  1570. * @param result defines the Color3 object where to store the result
  1571. * @returns the unmodified current Color3
  1572. */
  1573. Color3.prototype.scaleToRef = function (scale, result) {
  1574. result.r = this.r * scale;
  1575. result.g = this.g * scale;
  1576. result.b = this.b * scale;
  1577. return this;
  1578. };
  1579. /**
  1580. * Scale the current Color3 values by a factor and add the result to a given Color3
  1581. * @param scale defines the scale factor
  1582. * @param result defines color to store the result into
  1583. * @returns the unmodified current Color3
  1584. */
  1585. Color3.prototype.scaleAndAddToRef = function (scale, result) {
  1586. result.r += this.r * scale;
  1587. result.g += this.g * scale;
  1588. result.b += this.b * scale;
  1589. return this;
  1590. };
  1591. /**
  1592. * Clamps the rgb values by the min and max values and stores the result into "result"
  1593. * @param min defines minimum clamping value (default is 0)
  1594. * @param max defines maximum clamping value (default is 1)
  1595. * @param result defines color to store the result into
  1596. * @returns the original Color3
  1597. */
  1598. Color3.prototype.clampToRef = function (min, max, result) {
  1599. if (min === void 0) { min = 0; }
  1600. if (max === void 0) { max = 1; }
  1601. result.r = BABYLON.Scalar.Clamp(this.r, min, max);
  1602. result.g = BABYLON.Scalar.Clamp(this.g, min, max);
  1603. result.b = BABYLON.Scalar.Clamp(this.b, min, max);
  1604. return this;
  1605. };
  1606. /**
  1607. * Creates a new Color3 set with the added values of the current Color3 and of the given one
  1608. * @param otherColor defines the second operand
  1609. * @returns the new Color3
  1610. */
  1611. Color3.prototype.add = function (otherColor) {
  1612. return new Color3(this.r + otherColor.r, this.g + otherColor.g, this.b + otherColor.b);
  1613. };
  1614. /**
  1615. * Stores the result of the addition of the current Color3 and given one rgb values into "result"
  1616. * @param otherColor defines the second operand
  1617. * @param result defines Color3 object to store the result into
  1618. * @returns the unmodified current Color3
  1619. */
  1620. Color3.prototype.addToRef = function (otherColor, result) {
  1621. result.r = this.r + otherColor.r;
  1622. result.g = this.g + otherColor.g;
  1623. result.b = this.b + otherColor.b;
  1624. return this;
  1625. };
  1626. /**
  1627. * Returns a new Color3 set with the subtracted values of the given one from the current Color3
  1628. * @param otherColor defines the second operand
  1629. * @returns the new Color3
  1630. */
  1631. Color3.prototype.subtract = function (otherColor) {
  1632. return new Color3(this.r - otherColor.r, this.g - otherColor.g, this.b - otherColor.b);
  1633. };
  1634. /**
  1635. * Stores the result of the subtraction of given one from the current Color3 rgb values into "result"
  1636. * @param otherColor defines the second operand
  1637. * @param result defines Color3 object to store the result into
  1638. * @returns the unmodified current Color3
  1639. */
  1640. Color3.prototype.subtractToRef = function (otherColor, result) {
  1641. result.r = this.r - otherColor.r;
  1642. result.g = this.g - otherColor.g;
  1643. result.b = this.b - otherColor.b;
  1644. return this;
  1645. };
  1646. /**
  1647. * Copy the current object
  1648. * @returns a new Color3 copied the current one
  1649. */
  1650. Color3.prototype.clone = function () {
  1651. return new Color3(this.r, this.g, this.b);
  1652. };
  1653. /**
  1654. * Copies the rgb values from the source in the current Color3
  1655. * @param source defines the source Color3 object
  1656. * @returns the updated Color3 object
  1657. */
  1658. Color3.prototype.copyFrom = function (source) {
  1659. this.r = source.r;
  1660. this.g = source.g;
  1661. this.b = source.b;
  1662. return this;
  1663. };
  1664. /**
  1665. * Updates the Color3 rgb values from the given floats
  1666. * @param r defines the red component to read from
  1667. * @param g defines the green component to read from
  1668. * @param b defines the blue component to read from
  1669. * @returns the current Color3 object
  1670. */
  1671. Color3.prototype.copyFromFloats = function (r, g, b) {
  1672. this.r = r;
  1673. this.g = g;
  1674. this.b = b;
  1675. return this;
  1676. };
  1677. /**
  1678. * Updates the Color3 rgb values from the given floats
  1679. * @param r defines the red component to read from
  1680. * @param g defines the green component to read from
  1681. * @param b defines the blue component to read from
  1682. * @returns the current Color3 object
  1683. */
  1684. Color3.prototype.set = function (r, g, b) {
  1685. return this.copyFromFloats(r, g, b);
  1686. };
  1687. /**
  1688. * Compute the Color3 hexadecimal code as a string
  1689. * @returns a string containing the hexadecimal representation of the Color3 object
  1690. */
  1691. Color3.prototype.toHexString = function () {
  1692. var intR = (this.r * 255) | 0;
  1693. var intG = (this.g * 255) | 0;
  1694. var intB = (this.b * 255) | 0;
  1695. return "#" + BABYLON.Scalar.ToHex(intR) + BABYLON.Scalar.ToHex(intG) + BABYLON.Scalar.ToHex(intB);
  1696. };
  1697. /**
  1698. * Computes a new Color3 converted from the current one to linear space
  1699. * @returns a new Color3 object
  1700. */
  1701. Color3.prototype.toLinearSpace = function () {
  1702. var convertedColor = new Color3();
  1703. this.toLinearSpaceToRef(convertedColor);
  1704. return convertedColor;
  1705. };
  1706. /**
  1707. * Converts the Color3 values to linear space and stores the result in "convertedColor"
  1708. * @param convertedColor defines the Color3 object where to store the linear space version
  1709. * @returns the unmodified Color3
  1710. */
  1711. Color3.prototype.toLinearSpaceToRef = function (convertedColor) {
  1712. convertedColor.r = Math.pow(this.r, BABYLON.ToLinearSpace);
  1713. convertedColor.g = Math.pow(this.g, BABYLON.ToLinearSpace);
  1714. convertedColor.b = Math.pow(this.b, BABYLON.ToLinearSpace);
  1715. return this;
  1716. };
  1717. /**
  1718. * Computes a new Color3 converted from the current one to gamma space
  1719. * @returns a new Color3 object
  1720. */
  1721. Color3.prototype.toGammaSpace = function () {
  1722. var convertedColor = new Color3();
  1723. this.toGammaSpaceToRef(convertedColor);
  1724. return convertedColor;
  1725. };
  1726. /**
  1727. * Converts the Color3 values to gamma space and stores the result in "convertedColor"
  1728. * @param convertedColor defines the Color3 object where to store the gamma space version
  1729. * @returns the unmodified Color3
  1730. */
  1731. Color3.prototype.toGammaSpaceToRef = function (convertedColor) {
  1732. convertedColor.r = Math.pow(this.r, BABYLON.ToGammaSpace);
  1733. convertedColor.g = Math.pow(this.g, BABYLON.ToGammaSpace);
  1734. convertedColor.b = Math.pow(this.b, BABYLON.ToGammaSpace);
  1735. return this;
  1736. };
  1737. // Statics
  1738. /**
  1739. * Creates a new Color3 from the string containing valid hexadecimal values
  1740. * @param hex defines a string containing valid hexadecimal values
  1741. * @returns a new Color3 object
  1742. */
  1743. Color3.FromHexString = function (hex) {
  1744. if (hex.substring(0, 1) !== "#" || hex.length !== 7) {
  1745. return new Color3(0, 0, 0);
  1746. }
  1747. var r = parseInt(hex.substring(1, 3), 16);
  1748. var g = parseInt(hex.substring(3, 5), 16);
  1749. var b = parseInt(hex.substring(5, 7), 16);
  1750. return Color3.FromInts(r, g, b);
  1751. };
  1752. /**
  1753. * Creates a new Vector3 from the starting index of the given array
  1754. * @param array defines the source array
  1755. * @param offset defines an offset in the source array
  1756. * @returns a new Color3 object
  1757. */
  1758. Color3.FromArray = function (array, offset) {
  1759. if (offset === void 0) { offset = 0; }
  1760. return new Color3(array[offset], array[offset + 1], array[offset + 2]);
  1761. };
  1762. /**
  1763. * Creates a new Color3 from integer values (< 256)
  1764. * @param r defines the red component to read from (value between 0 and 255)
  1765. * @param g defines the green component to read from (value between 0 and 255)
  1766. * @param b defines the blue component to read from (value between 0 and 255)
  1767. * @returns a new Color3 object
  1768. */
  1769. Color3.FromInts = function (r, g, b) {
  1770. return new Color3(r / 255.0, g / 255.0, b / 255.0);
  1771. };
  1772. /**
  1773. * Creates a new Color3 with values linearly interpolated of "amount" between the start Color3 and the end Color3
  1774. * @param start defines the start Color3 value
  1775. * @param end defines the end Color3 value
  1776. * @param amount defines the gradient value between start and end
  1777. * @returns a new Color3 object
  1778. */
  1779. Color3.Lerp = function (start, end, amount) {
  1780. var r = start.r + ((end.r - start.r) * amount);
  1781. var g = start.g + ((end.g - start.g) * amount);
  1782. var b = start.b + ((end.b - start.b) * amount);
  1783. return new Color3(r, g, b);
  1784. };
  1785. /**
  1786. * Returns a Color3 value containing a red color
  1787. * @returns a new Color3 object
  1788. */
  1789. Color3.Red = function () { return new Color3(1, 0, 0); };
  1790. /**
  1791. * Returns a Color3 value containing a green color
  1792. * @returns a new Color3 object
  1793. */
  1794. Color3.Green = function () { return new Color3(0, 1, 0); };
  1795. /**
  1796. * Returns a Color3 value containing a blue color
  1797. * @returns a new Color3 object
  1798. */
  1799. Color3.Blue = function () { return new Color3(0, 0, 1); };
  1800. /**
  1801. * Returns a Color3 value containing a black color
  1802. * @returns a new Color3 object
  1803. */
  1804. Color3.Black = function () { return new Color3(0, 0, 0); };
  1805. /**
  1806. * Returns a Color3 value containing a white color
  1807. * @returns a new Color3 object
  1808. */
  1809. Color3.White = function () { return new Color3(1, 1, 1); };
  1810. /**
  1811. * Returns a Color3 value containing a purple color
  1812. * @returns a new Color3 object
  1813. */
  1814. Color3.Purple = function () { return new Color3(0.5, 0, 0.5); };
  1815. /**
  1816. * Returns a Color3 value containing a magenta color
  1817. * @returns a new Color3 object
  1818. */
  1819. Color3.Magenta = function () { return new Color3(1, 0, 1); };
  1820. /**
  1821. * Returns a Color3 value containing a yellow color
  1822. * @returns a new Color3 object
  1823. */
  1824. Color3.Yellow = function () { return new Color3(1, 1, 0); };
  1825. /**
  1826. * Returns a Color3 value containing a gray color
  1827. * @returns a new Color3 object
  1828. */
  1829. Color3.Gray = function () { return new Color3(0.5, 0.5, 0.5); };
  1830. /**
  1831. * Returns a Color3 value containing a teal color
  1832. * @returns a new Color3 object
  1833. */
  1834. Color3.Teal = function () { return new Color3(0, 1.0, 1.0); };
  1835. /**
  1836. * Returns a Color3 value containing a random color
  1837. * @returns a new Color3 object
  1838. */
  1839. Color3.Random = function () { return new Color3(Math.random(), Math.random(), Math.random()); };
  1840. return Color3;
  1841. }());
  1842. BABYLON.Color3 = Color3;
  1843. /**
  1844. * Class used to hold a RBGA color
  1845. */
  1846. var Color4 = /** @class */ (function () {
  1847. /**
  1848. * Creates a new Color4 object from red, green, blue values, all between 0 and 1
  1849. * @param r defines the red component (between 0 and 1, default is 0)
  1850. * @param g defines the green component (between 0 and 1, default is 0)
  1851. * @param b defines the blue component (between 0 and 1, default is 0)
  1852. * @param a defines the alpha component (between 0 and 1, default is 1)
  1853. */
  1854. function Color4(
  1855. /**
  1856. * Defines the red component (between 0 and 1, default is 0)
  1857. */
  1858. r,
  1859. /**
  1860. * Defines the green component (between 0 and 1, default is 0)
  1861. */
  1862. g,
  1863. /**
  1864. * Defines the blue component (between 0 and 1, default is 0)
  1865. */
  1866. b,
  1867. /**
  1868. * Defines the alpha component (between 0 and 1, default is 1)
  1869. */
  1870. a) {
  1871. if (r === void 0) { r = 0; }
  1872. if (g === void 0) { g = 0; }
  1873. if (b === void 0) { b = 0; }
  1874. if (a === void 0) { a = 1; }
  1875. this.r = r;
  1876. this.g = g;
  1877. this.b = b;
  1878. this.a = a;
  1879. }
  1880. // Operators
  1881. /**
  1882. * Adds in place the given Color4 values to the current Color4 object
  1883. * @param right defines the second operand
  1884. * @returns the current updated Color4 object
  1885. */
  1886. Color4.prototype.addInPlace = function (right) {
  1887. this.r += right.r;
  1888. this.g += right.g;
  1889. this.b += right.b;
  1890. this.a += right.a;
  1891. return this;
  1892. };
  1893. /**
  1894. * Creates a new array populated with 4 numeric elements : red, green, blue, alpha values
  1895. * @returns the new array
  1896. */
  1897. Color4.prototype.asArray = function () {
  1898. var result = new Array();
  1899. this.toArray(result, 0);
  1900. return result;
  1901. };
  1902. /**
  1903. * Stores from the starting index in the given array the Color4 successive values
  1904. * @param array defines the array where to store the r,g,b components
  1905. * @param index defines an optional index in the target array to define where to start storing values
  1906. * @returns the current Color4 object
  1907. */
  1908. Color4.prototype.toArray = function (array, index) {
  1909. if (index === undefined) {
  1910. index = 0;
  1911. }
  1912. array[index] = this.r;
  1913. array[index + 1] = this.g;
  1914. array[index + 2] = this.b;
  1915. array[index + 3] = this.a;
  1916. return this;
  1917. };
  1918. /**
  1919. * Creates a new Color4 set with the added values of the current Color4 and of the given one
  1920. * @param right defines the second operand
  1921. * @returns a new Color4 object
  1922. */
  1923. Color4.prototype.add = function (right) {
  1924. return new Color4(this.r + right.r, this.g + right.g, this.b + right.b, this.a + right.a);
  1925. };
  1926. /**
  1927. * Creates a new Color4 set with the subtracted values of the given one from the current Color4
  1928. * @param right defines the second operand
  1929. * @returns a new Color4 object
  1930. */
  1931. Color4.prototype.subtract = function (right) {
  1932. return new Color4(this.r - right.r, this.g - right.g, this.b - right.b, this.a - right.a);
  1933. };
  1934. /**
  1935. * Subtracts the given ones from the current Color4 values and stores the results in "result"
  1936. * @param right defines the second operand
  1937. * @param result defines the Color4 object where to store the result
  1938. * @returns the current Color4 object
  1939. */
  1940. Color4.prototype.subtractToRef = function (right, result) {
  1941. result.r = this.r - right.r;
  1942. result.g = this.g - right.g;
  1943. result.b = this.b - right.b;
  1944. result.a = this.a - right.a;
  1945. return this;
  1946. };
  1947. /**
  1948. * Creates a new Color4 with the current Color4 values multiplied by scale
  1949. * @param scale defines the scaling factor to apply
  1950. * @returns a new Color4 object
  1951. */
  1952. Color4.prototype.scale = function (scale) {
  1953. return new Color4(this.r * scale, this.g * scale, this.b * scale, this.a * scale);
  1954. };
  1955. /**
  1956. * Multiplies the current Color4 values by scale and stores the result in "result"
  1957. * @param scale defines the scaling factor to apply
  1958. * @param result defines the Color4 object where to store the result
  1959. * @returns the current unmodified Color4
  1960. */
  1961. Color4.prototype.scaleToRef = function (scale, result) {
  1962. result.r = this.r * scale;
  1963. result.g = this.g * scale;
  1964. result.b = this.b * scale;
  1965. result.a = this.a * scale;
  1966. return this;
  1967. };
  1968. /**
  1969. * Scale the current Color4 values by a factor and add the result to a given Color4
  1970. * @param scale defines the scale factor
  1971. * @param result defines the Color4 object where to store the result
  1972. * @returns the unmodified current Color4
  1973. */
  1974. Color4.prototype.scaleAndAddToRef = function (scale, result) {
  1975. result.r += this.r * scale;
  1976. result.g += this.g * scale;
  1977. result.b += this.b * scale;
  1978. result.a += this.a * scale;
  1979. return this;
  1980. };
  1981. /**
  1982. * Clamps the rgb values by the min and max values and stores the result into "result"
  1983. * @param min defines minimum clamping value (default is 0)
  1984. * @param max defines maximum clamping value (default is 1)
  1985. * @param result defines color to store the result into.
  1986. * @returns the cuurent Color4
  1987. */
  1988. Color4.prototype.clampToRef = function (min, max, result) {
  1989. if (min === void 0) { min = 0; }
  1990. if (max === void 0) { max = 1; }
  1991. result.r = BABYLON.Scalar.Clamp(this.r, min, max);
  1992. result.g = BABYLON.Scalar.Clamp(this.g, min, max);
  1993. result.b = BABYLON.Scalar.Clamp(this.b, min, max);
  1994. result.a = BABYLON.Scalar.Clamp(this.a, min, max);
  1995. return this;
  1996. };
  1997. /**
  1998. * Multipy an Color4 value by another and return a new Color4 object
  1999. * @param color defines the Color4 value to multiply by
  2000. * @returns a new Color4 object
  2001. */
  2002. Color4.prototype.multiply = function (color) {
  2003. return new Color4(this.r * color.r, this.g * color.g, this.b * color.b, this.a * color.a);
  2004. };
  2005. /**
  2006. * Multipy a Color4 value by another and push the result in a reference value
  2007. * @param color defines the Color4 value to multiply by
  2008. * @param result defines the Color4 to fill the result in
  2009. * @returns the result Color4
  2010. */
  2011. Color4.prototype.multiplyToRef = function (color, result) {
  2012. result.r = this.r * color.r;
  2013. result.g = this.g * color.g;
  2014. result.b = this.b * color.b;
  2015. result.a = this.a * color.a;
  2016. return result;
  2017. };
  2018. /**
  2019. * Creates a string with the Color4 current values
  2020. * @returns the string representation of the Color4 object
  2021. */
  2022. Color4.prototype.toString = function () {
  2023. return "{R: " + this.r + " G:" + this.g + " B:" + this.b + " A:" + this.a + "}";
  2024. };
  2025. /**
  2026. * Returns the string "Color4"
  2027. * @returns "Color4"
  2028. */
  2029. Color4.prototype.getClassName = function () {
  2030. return "Color4";
  2031. };
  2032. /**
  2033. * Compute the Color4 hash code
  2034. * @returns an unique number that can be used to hash Color4 objects
  2035. */
  2036. Color4.prototype.getHashCode = function () {
  2037. var hash = this.r || 0;
  2038. hash = (hash * 397) ^ (this.g || 0);
  2039. hash = (hash * 397) ^ (this.b || 0);
  2040. hash = (hash * 397) ^ (this.a || 0);
  2041. return hash;
  2042. };
  2043. /**
  2044. * Creates a new Color4 copied from the current one
  2045. * @returns a new Color4 object
  2046. */
  2047. Color4.prototype.clone = function () {
  2048. return new Color4(this.r, this.g, this.b, this.a);
  2049. };
  2050. /**
  2051. * Copies the given Color4 values into the current one
  2052. * @param source defines the source Color4 object
  2053. * @returns the current updated Color4 object
  2054. */
  2055. Color4.prototype.copyFrom = function (source) {
  2056. this.r = source.r;
  2057. this.g = source.g;
  2058. this.b = source.b;
  2059. this.a = source.a;
  2060. return this;
  2061. };
  2062. /**
  2063. * Copies the given float values into the current one
  2064. * @param r defines the red component to read from
  2065. * @param g defines the green component to read from
  2066. * @param b defines the blue component to read from
  2067. * @param a defines the alpha component to read from
  2068. * @returns the current updated Color4 object
  2069. */
  2070. Color4.prototype.copyFromFloats = function (r, g, b, a) {
  2071. this.r = r;
  2072. this.g = g;
  2073. this.b = b;
  2074. this.a = a;
  2075. return this;
  2076. };
  2077. /**
  2078. * Copies the given float values into the current one
  2079. * @param r defines the red component to read from
  2080. * @param g defines the green component to read from
  2081. * @param b defines the blue component to read from
  2082. * @param a defines the alpha component to read from
  2083. * @returns the current updated Color4 object
  2084. */
  2085. Color4.prototype.set = function (r, g, b, a) {
  2086. return this.copyFromFloats(r, g, b, a);
  2087. };
  2088. /**
  2089. * Compute the Color4 hexadecimal code as a string
  2090. * @returns a string containing the hexadecimal representation of the Color4 object
  2091. */
  2092. Color4.prototype.toHexString = function () {
  2093. var intR = (this.r * 255) | 0;
  2094. var intG = (this.g * 255) | 0;
  2095. var intB = (this.b * 255) | 0;
  2096. var intA = (this.a * 255) | 0;
  2097. return "#" + BABYLON.Scalar.ToHex(intR) + BABYLON.Scalar.ToHex(intG) + BABYLON.Scalar.ToHex(intB) + BABYLON.Scalar.ToHex(intA);
  2098. };
  2099. /**
  2100. * Computes a new Color4 converted from the current one to linear space
  2101. * @returns a new Color4 object
  2102. */
  2103. Color4.prototype.toLinearSpace = function () {
  2104. var convertedColor = new Color4();
  2105. this.toLinearSpaceToRef(convertedColor);
  2106. return convertedColor;
  2107. };
  2108. /**
  2109. * Converts the Color4 values to linear space and stores the result in "convertedColor"
  2110. * @param convertedColor defines the Color4 object where to store the linear space version
  2111. * @returns the unmodified Color4
  2112. */
  2113. Color4.prototype.toLinearSpaceToRef = function (convertedColor) {
  2114. convertedColor.r = Math.pow(this.r, BABYLON.ToLinearSpace);
  2115. convertedColor.g = Math.pow(this.g, BABYLON.ToLinearSpace);
  2116. convertedColor.b = Math.pow(this.b, BABYLON.ToLinearSpace);
  2117. convertedColor.a = this.a;
  2118. return this;
  2119. };
  2120. /**
  2121. * Computes a new Color4 converted from the current one to gamma space
  2122. * @returns a new Color4 object
  2123. */
  2124. Color4.prototype.toGammaSpace = function () {
  2125. var convertedColor = new Color4();
  2126. this.toGammaSpaceToRef(convertedColor);
  2127. return convertedColor;
  2128. };
  2129. /**
  2130. * Converts the Color4 values to gamma space and stores the result in "convertedColor"
  2131. * @param convertedColor defines the Color4 object where to store the gamma space version
  2132. * @returns the unmodified Color4
  2133. */
  2134. Color4.prototype.toGammaSpaceToRef = function (convertedColor) {
  2135. convertedColor.r = Math.pow(this.r, BABYLON.ToGammaSpace);
  2136. convertedColor.g = Math.pow(this.g, BABYLON.ToGammaSpace);
  2137. convertedColor.b = Math.pow(this.b, BABYLON.ToGammaSpace);
  2138. convertedColor.a = this.a;
  2139. return this;
  2140. };
  2141. // Statics
  2142. /**
  2143. * Creates a new Color4 from the string containing valid hexadecimal values
  2144. * @param hex defines a string containing valid hexadecimal values
  2145. * @returns a new Color4 object
  2146. */
  2147. Color4.FromHexString = function (hex) {
  2148. if (hex.substring(0, 1) !== "#" || hex.length !== 9) {
  2149. return new Color4(0.0, 0.0, 0.0, 0.0);
  2150. }
  2151. var r = parseInt(hex.substring(1, 3), 16);
  2152. var g = parseInt(hex.substring(3, 5), 16);
  2153. var b = parseInt(hex.substring(5, 7), 16);
  2154. var a = parseInt(hex.substring(7, 9), 16);
  2155. return Color4.FromInts(r, g, b, a);
  2156. };
  2157. /**
  2158. * Creates a new Color4 object set with the linearly interpolated values of "amount" between the left Color4 object and the right Color4 object
  2159. * @param left defines the start value
  2160. * @param right defines the end value
  2161. * @param amount defines the gradient factor
  2162. * @returns a new Color4 object
  2163. */
  2164. Color4.Lerp = function (left, right, amount) {
  2165. var result = new Color4(0.0, 0.0, 0.0, 0.0);
  2166. Color4.LerpToRef(left, right, amount, result);
  2167. return result;
  2168. };
  2169. /**
  2170. * Set the given "result" with the linearly interpolated values of "amount" between the left Color4 object and the right Color4 object
  2171. * @param left defines the start value
  2172. * @param right defines the end value
  2173. * @param amount defines the gradient factor
  2174. * @param result defines the Color4 object where to store data
  2175. */
  2176. Color4.LerpToRef = function (left, right, amount, result) {
  2177. result.r = left.r + (right.r - left.r) * amount;
  2178. result.g = left.g + (right.g - left.g) * amount;
  2179. result.b = left.b + (right.b - left.b) * amount;
  2180. result.a = left.a + (right.a - left.a) * amount;
  2181. };
  2182. /**
  2183. * Creates a new Color4 from the starting index element of the given array
  2184. * @param array defines the source array to read from
  2185. * @param offset defines the offset in the source array
  2186. * @returns a new Color4 object
  2187. */
  2188. Color4.FromArray = function (array, offset) {
  2189. if (offset === void 0) { offset = 0; }
  2190. return new Color4(array[offset], array[offset + 1], array[offset + 2], array[offset + 3]);
  2191. };
  2192. /**
  2193. * Creates a new Color3 from integer values (< 256)
  2194. * @param r defines the red component to read from (value between 0 and 255)
  2195. * @param g defines the green component to read from (value between 0 and 255)
  2196. * @param b defines the blue component to read from (value between 0 and 255)
  2197. * @param a defines the alpha component to read from (value between 0 and 255)
  2198. * @returns a new Color3 object
  2199. */
  2200. Color4.FromInts = function (r, g, b, a) {
  2201. return new Color4(r / 255.0, g / 255.0, b / 255.0, a / 255.0);
  2202. };
  2203. /**
  2204. * Check the content of a given array and convert it to an array containing RGBA data
  2205. * If the original array was already containing count * 4 values then it is returned directly
  2206. * @param colors defines the array to check
  2207. * @param count defines the number of RGBA data to expect
  2208. * @returns an array containing count * 4 values (RGBA)
  2209. */
  2210. Color4.CheckColors4 = function (colors, count) {
  2211. // Check if color3 was used
  2212. if (colors.length === count * 3) {
  2213. var colors4 = [];
  2214. for (var index = 0; index < colors.length; index += 3) {
  2215. var newIndex = (index / 3) * 4;
  2216. colors4[newIndex] = colors[index];
  2217. colors4[newIndex + 1] = colors[index + 1];
  2218. colors4[newIndex + 2] = colors[index + 2];
  2219. colors4[newIndex + 3] = 1.0;
  2220. }
  2221. return colors4;
  2222. }
  2223. return colors;
  2224. };
  2225. return Color4;
  2226. }());
  2227. BABYLON.Color4 = Color4;
  2228. /**
  2229. * Class representing a vector containing 2 coordinates
  2230. */
  2231. var Vector2 = /** @class */ (function () {
  2232. /**
  2233. * Creates a new Vector2 from the given x and y coordinates
  2234. * @param x defines the first coordinate
  2235. * @param y defines the second coordinate
  2236. */
  2237. function Vector2(
  2238. /** defines the first coordinate */
  2239. x,
  2240. /** defines the second coordinate */
  2241. y) {
  2242. if (x === void 0) { x = 0; }
  2243. if (y === void 0) { y = 0; }
  2244. this.x = x;
  2245. this.y = y;
  2246. }
  2247. /**
  2248. * Gets a string with the Vector2 coordinates
  2249. * @returns a string with the Vector2 coordinates
  2250. */
  2251. Vector2.prototype.toString = function () {
  2252. return "{X: " + this.x + " Y:" + this.y + "}";
  2253. };
  2254. /**
  2255. * Gets class name
  2256. * @returns the string "Vector2"
  2257. */
  2258. Vector2.prototype.getClassName = function () {
  2259. return "Vector2";
  2260. };
  2261. /**
  2262. * Gets current vector hash code
  2263. * @returns the Vector2 hash code as a number
  2264. */
  2265. Vector2.prototype.getHashCode = function () {
  2266. var hash = this.x || 0;
  2267. hash = (hash * 397) ^ (this.y || 0);
  2268. return hash;
  2269. };
  2270. // Operators
  2271. /**
  2272. * Sets the Vector2 coordinates in the given array or Float32Array from the given index.
  2273. * @param array defines the source array
  2274. * @param index defines the offset in source array
  2275. * @returns the current Vector2
  2276. */
  2277. Vector2.prototype.toArray = function (array, index) {
  2278. if (index === void 0) { index = 0; }
  2279. array[index] = this.x;
  2280. array[index + 1] = this.y;
  2281. return this;
  2282. };
  2283. /**
  2284. * Copy the current vector to an array
  2285. * @returns a new array with 2 elements: the Vector2 coordinates.
  2286. */
  2287. Vector2.prototype.asArray = function () {
  2288. var result = new Array();
  2289. this.toArray(result, 0);
  2290. return result;
  2291. };
  2292. /**
  2293. * Sets the Vector2 coordinates with the given Vector2 coordinates
  2294. * @param source defines the source Vector2
  2295. * @returns the current updated Vector2
  2296. */
  2297. Vector2.prototype.copyFrom = function (source) {
  2298. this.x = source.x;
  2299. this.y = source.y;
  2300. return this;
  2301. };
  2302. /**
  2303. * Sets the Vector2 coordinates with the given floats
  2304. * @param x defines the first coordinate
  2305. * @param y defines the second coordinate
  2306. * @returns the current updated Vector2
  2307. */
  2308. Vector2.prototype.copyFromFloats = function (x, y) {
  2309. this.x = x;
  2310. this.y = y;
  2311. return this;
  2312. };
  2313. /**
  2314. * Sets the Vector2 coordinates with the given floats
  2315. * @param x defines the first coordinate
  2316. * @param y defines the second coordinate
  2317. * @returns the current updated Vector2
  2318. */
  2319. Vector2.prototype.set = function (x, y) {
  2320. return this.copyFromFloats(x, y);
  2321. };
  2322. /**
  2323. * Add another vector with the current one
  2324. * @param otherVector defines the other vector
  2325. * @returns a new Vector2 set with the addition of the current Vector2 and the given one coordinates
  2326. */
  2327. Vector2.prototype.add = function (otherVector) {
  2328. return new Vector2(this.x + otherVector.x, this.y + otherVector.y);
  2329. };
  2330. /**
  2331. * Sets the "result" coordinates with the addition of the current Vector2 and the given one coordinates
  2332. * @param otherVector defines the other vector
  2333. * @param result defines the target vector
  2334. * @returns the unmodified current Vector2
  2335. */
  2336. Vector2.prototype.addToRef = function (otherVector, result) {
  2337. result.x = this.x + otherVector.x;
  2338. result.y = this.y + otherVector.y;
  2339. return this;
  2340. };
  2341. /**
  2342. * Set the Vector2 coordinates by adding the given Vector2 coordinates
  2343. * @param otherVector defines the other vector
  2344. * @returns the current updated Vector2
  2345. */
  2346. Vector2.prototype.addInPlace = function (otherVector) {
  2347. this.x += otherVector.x;
  2348. this.y += otherVector.y;
  2349. return this;
  2350. };
  2351. /**
  2352. * Gets a new Vector2 by adding the current Vector2 coordinates to the given Vector3 x, y coordinates
  2353. * @param otherVector defines the other vector
  2354. * @returns a new Vector2
  2355. */
  2356. Vector2.prototype.addVector3 = function (otherVector) {
  2357. return new Vector2(this.x + otherVector.x, this.y + otherVector.y);
  2358. };
  2359. /**
  2360. * Gets a new Vector2 set with the subtracted coordinates of the given one from the current Vector2
  2361. * @param otherVector defines the other vector
  2362. * @returns a new Vector2
  2363. */
  2364. Vector2.prototype.subtract = function (otherVector) {
  2365. return new Vector2(this.x - otherVector.x, this.y - otherVector.y);
  2366. };
  2367. /**
  2368. * Sets the "result" coordinates with the subtraction of the given one from the current Vector2 coordinates.
  2369. * @param otherVector defines the other vector
  2370. * @param result defines the target vector
  2371. * @returns the unmodified current Vector2
  2372. */
  2373. Vector2.prototype.subtractToRef = function (otherVector, result) {
  2374. result.x = this.x - otherVector.x;
  2375. result.y = this.y - otherVector.y;
  2376. return this;
  2377. };
  2378. /**
  2379. * Sets the current Vector2 coordinates by subtracting from it the given one coordinates
  2380. * @param otherVector defines the other vector
  2381. * @returns the current updated Vector2
  2382. */
  2383. Vector2.prototype.subtractInPlace = function (otherVector) {
  2384. this.x -= otherVector.x;
  2385. this.y -= otherVector.y;
  2386. return this;
  2387. };
  2388. /**
  2389. * Multiplies in place the current Vector2 coordinates by the given ones
  2390. * @param otherVector defines the other vector
  2391. * @returns the current updated Vector2
  2392. */
  2393. Vector2.prototype.multiplyInPlace = function (otherVector) {
  2394. this.x *= otherVector.x;
  2395. this.y *= otherVector.y;
  2396. return this;
  2397. };
  2398. /**
  2399. * Returns a new Vector2 set with the multiplication of the current Vector2 and the given one coordinates
  2400. * @param otherVector defines the other vector
  2401. * @returns a new Vector2
  2402. */
  2403. Vector2.prototype.multiply = function (otherVector) {
  2404. return new Vector2(this.x * otherVector.x, this.y * otherVector.y);
  2405. };
  2406. /**
  2407. * Sets "result" coordinates with the multiplication of the current Vector2 and the given one coordinates
  2408. * @param otherVector defines the other vector
  2409. * @param result defines the target vector
  2410. * @returns the unmodified current Vector2
  2411. */
  2412. Vector2.prototype.multiplyToRef = function (otherVector, result) {
  2413. result.x = this.x * otherVector.x;
  2414. result.y = this.y * otherVector.y;
  2415. return this;
  2416. };
  2417. /**
  2418. * Gets a new Vector2 set with the Vector2 coordinates multiplied by the given floats
  2419. * @param x defines the first coordinate
  2420. * @param y defines the second coordinate
  2421. * @returns a new Vector2
  2422. */
  2423. Vector2.prototype.multiplyByFloats = function (x, y) {
  2424. return new Vector2(this.x * x, this.y * y);
  2425. };
  2426. /**
  2427. * Returns a new Vector2 set with the Vector2 coordinates divided by the given one coordinates
  2428. * @param otherVector defines the other vector
  2429. * @returns a new Vector2
  2430. */
  2431. Vector2.prototype.divide = function (otherVector) {
  2432. return new Vector2(this.x / otherVector.x, this.y / otherVector.y);
  2433. };
  2434. /**
  2435. * Sets the "result" coordinates with the Vector2 divided by the given one coordinates
  2436. * @param otherVector defines the other vector
  2437. * @param result defines the target vector
  2438. * @returns the unmodified current Vector2
  2439. */
  2440. Vector2.prototype.divideToRef = function (otherVector, result) {
  2441. result.x = this.x / otherVector.x;
  2442. result.y = this.y / otherVector.y;
  2443. return this;
  2444. };
  2445. /**
  2446. * Divides the current Vector2 coordinates by the given ones
  2447. * @param otherVector defines the other vector
  2448. * @returns the current updated Vector2
  2449. */
  2450. Vector2.prototype.divideInPlace = function (otherVector) {
  2451. return this.divideToRef(otherVector, this);
  2452. };
  2453. /**
  2454. * Gets a new Vector2 with current Vector2 negated coordinates
  2455. * @returns a new Vector2
  2456. */
  2457. Vector2.prototype.negate = function () {
  2458. return new Vector2(-this.x, -this.y);
  2459. };
  2460. /**
  2461. * Multiply the Vector2 coordinates by scale
  2462. * @param scale defines the scaling factor
  2463. * @returns the current updated Vector2
  2464. */
  2465. Vector2.prototype.scaleInPlace = function (scale) {
  2466. this.x *= scale;
  2467. this.y *= scale;
  2468. return this;
  2469. };
  2470. /**
  2471. * Returns a new Vector2 scaled by "scale" from the current Vector2
  2472. * @param scale defines the scaling factor
  2473. * @returns a new Vector2
  2474. */
  2475. Vector2.prototype.scale = function (scale) {
  2476. var result = new Vector2(0, 0);
  2477. this.scaleToRef(scale, result);
  2478. return result;
  2479. };
  2480. /**
  2481. * Scale the current Vector2 values by a factor to a given Vector2
  2482. * @param scale defines the scale factor
  2483. * @param result defines the Vector2 object where to store the result
  2484. * @returns the unmodified current Vector2
  2485. */
  2486. Vector2.prototype.scaleToRef = function (scale, result) {
  2487. result.x = this.x * scale;
  2488. result.y = this.y * scale;
  2489. return this;
  2490. };
  2491. /**
  2492. * Scale the current Vector2 values by a factor and add the result to a given Vector2
  2493. * @param scale defines the scale factor
  2494. * @param result defines the Vector2 object where to store the result
  2495. * @returns the unmodified current Vector2
  2496. */
  2497. Vector2.prototype.scaleAndAddToRef = function (scale, result) {
  2498. result.x += this.x * scale;
  2499. result.y += this.y * scale;
  2500. return this;
  2501. };
  2502. /**
  2503. * Gets a boolean if two vectors are equals
  2504. * @param otherVector defines the other vector
  2505. * @returns true if the given vector coordinates strictly equal the current Vector2 ones
  2506. */
  2507. Vector2.prototype.equals = function (otherVector) {
  2508. return otherVector && this.x === otherVector.x && this.y === otherVector.y;
  2509. };
  2510. /**
  2511. * Gets a boolean if two vectors are equals (using an epsilon value)
  2512. * @param otherVector defines the other vector
  2513. * @param epsilon defines the minimal distance to consider equality
  2514. * @returns true if the given vector coordinates are close to the current ones by a distance of epsilon.
  2515. */
  2516. Vector2.prototype.equalsWithEpsilon = function (otherVector, epsilon) {
  2517. if (epsilon === void 0) { epsilon = BABYLON.Epsilon; }
  2518. return otherVector && BABYLON.Scalar.WithinEpsilon(this.x, otherVector.x, epsilon) && BABYLON.Scalar.WithinEpsilon(this.y, otherVector.y, epsilon);
  2519. };
  2520. /**
  2521. * Gets a new Vector2 from current Vector2 floored values
  2522. * @returns a new Vector2
  2523. */
  2524. Vector2.prototype.floor = function () {
  2525. return new Vector2(Math.floor(this.x), Math.floor(this.y));
  2526. };
  2527. /**
  2528. * Gets a new Vector2 from current Vector2 floored values
  2529. * @returns a new Vector2
  2530. */
  2531. Vector2.prototype.fract = function () {
  2532. return new Vector2(this.x - Math.floor(this.x), this.y - Math.floor(this.y));
  2533. };
  2534. // Properties
  2535. /**
  2536. * Gets the length of the vector
  2537. * @returns the vector length (float)
  2538. */
  2539. Vector2.prototype.length = function () {
  2540. return Math.sqrt(this.x * this.x + this.y * this.y);
  2541. };
  2542. /**
  2543. * Gets the vector squared length
  2544. * @returns the vector squared length (float)
  2545. */
  2546. Vector2.prototype.lengthSquared = function () {
  2547. return (this.x * this.x + this.y * this.y);
  2548. };
  2549. // Methods
  2550. /**
  2551. * Normalize the vector
  2552. * @returns the current updated Vector2
  2553. */
  2554. Vector2.prototype.normalize = function () {
  2555. var len = this.length();
  2556. if (len === 0)
  2557. return this;
  2558. var num = 1.0 / len;
  2559. this.x *= num;
  2560. this.y *= num;
  2561. return this;
  2562. };
  2563. /**
  2564. * Gets a new Vector2 copied from the Vector2
  2565. * @returns a new Vector2
  2566. */
  2567. Vector2.prototype.clone = function () {
  2568. return new Vector2(this.x, this.y);
  2569. };
  2570. // Statics
  2571. /**
  2572. * Gets a new Vector2(0, 0)
  2573. * @returns a new Vector2
  2574. */
  2575. Vector2.Zero = function () {
  2576. return new Vector2(0, 0);
  2577. };
  2578. /**
  2579. * Gets a new Vector2(1, 1)
  2580. * @returns a new Vector2
  2581. */
  2582. Vector2.One = function () {
  2583. return new Vector2(1, 1);
  2584. };
  2585. /**
  2586. * Gets a new Vector2 set from the given index element of the given array
  2587. * @param array defines the data source
  2588. * @param offset defines the offset in the data source
  2589. * @returns a new Vector2
  2590. */
  2591. Vector2.FromArray = function (array, offset) {
  2592. if (offset === void 0) { offset = 0; }
  2593. return new Vector2(array[offset], array[offset + 1]);
  2594. };
  2595. /**
  2596. * Sets "result" from the given index element of the given array
  2597. * @param array defines the data source
  2598. * @param offset defines the offset in the data source
  2599. * @param result defines the target vector
  2600. */
  2601. Vector2.FromArrayToRef = function (array, offset, result) {
  2602. result.x = array[offset];
  2603. result.y = array[offset + 1];
  2604. };
  2605. /**
  2606. * Gets a new Vector2 located for "amount" (float) on the CatmullRom spline defined by the given four Vector2
  2607. * @param value1 defines 1st point of control
  2608. * @param value2 defines 2nd point of control
  2609. * @param value3 defines 3rd point of control
  2610. * @param value4 defines 4th point of control
  2611. * @param amount defines the interpolation factor
  2612. * @returns a new Vector2
  2613. */
  2614. Vector2.CatmullRom = function (value1, value2, value3, value4, amount) {
  2615. var squared = amount * amount;
  2616. var cubed = amount * squared;
  2617. var x = 0.5 * ((((2.0 * value2.x) + ((-value1.x + value3.x) * amount)) +
  2618. (((((2.0 * value1.x) - (5.0 * value2.x)) + (4.0 * value3.x)) - value4.x) * squared)) +
  2619. ((((-value1.x + (3.0 * value2.x)) - (3.0 * value3.x)) + value4.x) * cubed));
  2620. var y = 0.5 * ((((2.0 * value2.y) + ((-value1.y + value3.y) * amount)) +
  2621. (((((2.0 * value1.y) - (5.0 * value2.y)) + (4.0 * value3.y)) - value4.y) * squared)) +
  2622. ((((-value1.y + (3.0 * value2.y)) - (3.0 * value3.y)) + value4.y) * cubed));
  2623. return new Vector2(x, y);
  2624. };
  2625. /**
  2626. * Returns a new Vector2 set with same the coordinates than "value" ones if the vector "value" is in the square defined by "min" and "max".
  2627. * If a coordinate of "value" is lower than "min" coordinates, the returned Vector2 is given this "min" coordinate.
  2628. * If a coordinate of "value" is greater than "max" coordinates, the returned Vector2 is given this "max" coordinate
  2629. * @param value defines the value to clamp
  2630. * @param min defines the lower limit
  2631. * @param max defines the upper limit
  2632. * @returns a new Vector2
  2633. */
  2634. Vector2.Clamp = function (value, min, max) {
  2635. var x = value.x;
  2636. x = (x > max.x) ? max.x : x;
  2637. x = (x < min.x) ? min.x : x;
  2638. var y = value.y;
  2639. y = (y > max.y) ? max.y : y;
  2640. y = (y < min.y) ? min.y : y;
  2641. return new Vector2(x, y);
  2642. };
  2643. /**
  2644. * Returns a new Vector2 located for "amount" (float) on the Hermite spline defined by the vectors "value1", "value3", "tangent1", "tangent2"
  2645. * @param value1 defines the 1st control point
  2646. * @param tangent1 defines the outgoing tangent
  2647. * @param value2 defines the 2nd control point
  2648. * @param tangent2 defines the incoming tangent
  2649. * @param amount defines the interpolation factor
  2650. * @returns a new Vector2
  2651. */
  2652. Vector2.Hermite = function (value1, tangent1, value2, tangent2, amount) {
  2653. var squared = amount * amount;
  2654. var cubed = amount * squared;
  2655. var part1 = ((2.0 * cubed) - (3.0 * squared)) + 1.0;
  2656. var part2 = (-2.0 * cubed) + (3.0 * squared);
  2657. var part3 = (cubed - (2.0 * squared)) + amount;
  2658. var part4 = cubed - squared;
  2659. var x = (((value1.x * part1) + (value2.x * part2)) + (tangent1.x * part3)) + (tangent2.x * part4);
  2660. var y = (((value1.y * part1) + (value2.y * part2)) + (tangent1.y * part3)) + (tangent2.y * part4);
  2661. return new Vector2(x, y);
  2662. };
  2663. /**
  2664. * Returns a new Vector2 located for "amount" (float) on the linear interpolation between the vector "start" adn the vector "end".
  2665. * @param start defines the start vector
  2666. * @param end defines the end vector
  2667. * @param amount defines the interpolation factor
  2668. * @returns a new Vector2
  2669. */
  2670. Vector2.Lerp = function (start, end, amount) {
  2671. var x = start.x + ((end.x - start.x) * amount);
  2672. var y = start.y + ((end.y - start.y) * amount);
  2673. return new Vector2(x, y);
  2674. };
  2675. /**
  2676. * Gets the dot product of the vector "left" and the vector "right"
  2677. * @param left defines first vector
  2678. * @param right defines second vector
  2679. * @returns the dot product (float)
  2680. */
  2681. Vector2.Dot = function (left, right) {
  2682. return left.x * right.x + left.y * right.y;
  2683. };
  2684. /**
  2685. * Returns a new Vector2 equal to the normalized given vector
  2686. * @param vector defines the vector to normalize
  2687. * @returns a new Vector2
  2688. */
  2689. Vector2.Normalize = function (vector) {
  2690. var newVector = vector.clone();
  2691. newVector.normalize();
  2692. return newVector;
  2693. };
  2694. /**
  2695. * Gets a new Vector2 set with the minimal coordinate values from the "left" and "right" vectors
  2696. * @param left defines 1st vector
  2697. * @param right defines 2nd vector
  2698. * @returns a new Vector2
  2699. */
  2700. Vector2.Minimize = function (left, right) {
  2701. var x = (left.x < right.x) ? left.x : right.x;
  2702. var y = (left.y < right.y) ? left.y : right.y;
  2703. return new Vector2(x, y);
  2704. };
  2705. /**
  2706. * Gets a new Vecto2 set with the maximal coordinate values from the "left" and "right" vectors
  2707. * @param left defines 1st vector
  2708. * @param right defines 2nd vector
  2709. * @returns a new Vector2
  2710. */
  2711. Vector2.Maximize = function (left, right) {
  2712. var x = (left.x > right.x) ? left.x : right.x;
  2713. var y = (left.y > right.y) ? left.y : right.y;
  2714. return new Vector2(x, y);
  2715. };
  2716. /**
  2717. * Gets a new Vector2 set with the transformed coordinates of the given vector by the given transformation matrix
  2718. * @param vector defines the vector to transform
  2719. * @param transformation defines the matrix to apply
  2720. * @returns a new Vector2
  2721. */
  2722. Vector2.Transform = function (vector, transformation) {
  2723. var r = Vector2.Zero();
  2724. Vector2.TransformToRef(vector, transformation, r);
  2725. return r;
  2726. };
  2727. /**
  2728. * Transforms the given vector coordinates by the given transformation matrix and stores the result in the vector "result" coordinates
  2729. * @param vector defines the vector to transform
  2730. * @param transformation defines the matrix to apply
  2731. * @param result defines the target vector
  2732. */
  2733. Vector2.TransformToRef = function (vector, transformation, result) {
  2734. var x = (vector.x * transformation.m[0]) + (vector.y * transformation.m[4]) + transformation.m[12];
  2735. var y = (vector.x * transformation.m[1]) + (vector.y * transformation.m[5]) + transformation.m[13];
  2736. result.x = x;
  2737. result.y = y;
  2738. };
  2739. /**
  2740. * Determines if a given vector is included in a triangle
  2741. * @param p defines the vector to test
  2742. * @param p0 defines 1st triangle point
  2743. * @param p1 defines 2nd triangle point
  2744. * @param p2 defines 3rd triangle point
  2745. * @returns true if the point "p" is in the triangle defined by the vertors "p0", "p1", "p2"
  2746. */
  2747. Vector2.PointInTriangle = function (p, p0, p1, p2) {
  2748. var a = 1 / 2 * (-p1.y * p2.x + p0.y * (-p1.x + p2.x) + p0.x * (p1.y - p2.y) + p1.x * p2.y);
  2749. var sign = a < 0 ? -1 : 1;
  2750. var s = (p0.y * p2.x - p0.x * p2.y + (p2.y - p0.y) * p.x + (p0.x - p2.x) * p.y) * sign;
  2751. var t = (p0.x * p1.y - p0.y * p1.x + (p0.y - p1.y) * p.x + (p1.x - p0.x) * p.y) * sign;
  2752. return s > 0 && t > 0 && (s + t) < 2 * a * sign;
  2753. };
  2754. /**
  2755. * Gets the distance between the vectors "value1" and "value2"
  2756. * @param value1 defines first vector
  2757. * @param value2 defines second vector
  2758. * @returns the distance between vectors
  2759. */
  2760. Vector2.Distance = function (value1, value2) {
  2761. return Math.sqrt(Vector2.DistanceSquared(value1, value2));
  2762. };
  2763. /**
  2764. * Returns the squared distance between the vectors "value1" and "value2"
  2765. * @param value1 defines first vector
  2766. * @param value2 defines second vector
  2767. * @returns the squared distance between vectors
  2768. */
  2769. Vector2.DistanceSquared = function (value1, value2) {
  2770. var x = value1.x - value2.x;
  2771. var y = value1.y - value2.y;
  2772. return (x * x) + (y * y);
  2773. };
  2774. /**
  2775. * Gets a new Vector2 located at the center of the vectors "value1" and "value2"
  2776. * @param value1 defines first vector
  2777. * @param value2 defines second vector
  2778. * @returns a new Vector2
  2779. */
  2780. Vector2.Center = function (value1, value2) {
  2781. var center = value1.add(value2);
  2782. center.scaleInPlace(0.5);
  2783. return center;
  2784. };
  2785. /**
  2786. * Gets the shortest distance (float) between the point "p" and the segment defined by the two points "segA" and "segB".
  2787. * @param p defines the middle point
  2788. * @param segA defines one point of the segment
  2789. * @param segB defines the other point of the segment
  2790. * @returns the shortest distance
  2791. */
  2792. Vector2.DistanceOfPointFromSegment = function (p, segA, segB) {
  2793. var l2 = Vector2.DistanceSquared(segA, segB);
  2794. if (l2 === 0.0) {
  2795. return Vector2.Distance(p, segA);
  2796. }
  2797. var v = segB.subtract(segA);
  2798. var t = Math.max(0, Math.min(1, Vector2.Dot(p.subtract(segA), v) / l2));
  2799. var proj = segA.add(v.multiplyByFloats(t, t));
  2800. return Vector2.Distance(p, proj);
  2801. };
  2802. return Vector2;
  2803. }());
  2804. BABYLON.Vector2 = Vector2;
  2805. /**
  2806. * Classed used to store (x,y,z) vector representation
  2807. * A Vector3 is the main object used in 3D geometry
  2808. * It can represent etiher the coordinates of a point the space, either a direction
  2809. * Reminder: Babylon.js uses a left handed forward facing system
  2810. */
  2811. var Vector3 = /** @class */ (function () {
  2812. /**
  2813. * Creates a new Vector3 object from the given x, y, z (floats) coordinates.
  2814. * @param x defines the first coordinates (on X axis)
  2815. * @param y defines the second coordinates (on Y axis)
  2816. * @param z defines the third coordinates (on Z axis)
  2817. */
  2818. function Vector3(
  2819. /**
  2820. * Defines the first coordinates (on X axis)
  2821. */
  2822. x,
  2823. /**
  2824. * Defines the second coordinates (on Y axis)
  2825. */
  2826. y,
  2827. /**
  2828. * Defines the third coordinates (on Z axis)
  2829. */
  2830. z) {
  2831. if (x === void 0) { x = 0; }
  2832. if (y === void 0) { y = 0; }
  2833. if (z === void 0) { z = 0; }
  2834. this.x = x;
  2835. this.y = y;
  2836. this.z = z;
  2837. }
  2838. /**
  2839. * Creates a string representation of the Vector3
  2840. * @returns a string with the Vector3 coordinates.
  2841. */
  2842. Vector3.prototype.toString = function () {
  2843. return "{X: " + this.x + " Y:" + this.y + " Z:" + this.z + "}";
  2844. };
  2845. /**
  2846. * Gets the class name
  2847. * @returns the string "Vector3"
  2848. */
  2849. Vector3.prototype.getClassName = function () {
  2850. return "Vector3";
  2851. };
  2852. /**
  2853. * Creates the Vector3 hash code
  2854. * @returns a number which tends to be unique between Vector3 instances
  2855. */
  2856. Vector3.prototype.getHashCode = function () {
  2857. var hash = this.x || 0;
  2858. hash = (hash * 397) ^ (this.y || 0);
  2859. hash = (hash * 397) ^ (this.z || 0);
  2860. return hash;
  2861. };
  2862. // Operators
  2863. /**
  2864. * Creates an array containing three elements : the coordinates of the Vector3
  2865. * @returns a new array of numbers
  2866. */
  2867. Vector3.prototype.asArray = function () {
  2868. var result = [];
  2869. this.toArray(result, 0);
  2870. return result;
  2871. };
  2872. /**
  2873. * Populates the given array or Float32Array from the given index with the successive coordinates of the Vector3
  2874. * @param array defines the destination array
  2875. * @param index defines the offset in the destination array
  2876. * @returns the current Vector3
  2877. */
  2878. Vector3.prototype.toArray = function (array, index) {
  2879. if (index === void 0) { index = 0; }
  2880. array[index] = this.x;
  2881. array[index + 1] = this.y;
  2882. array[index + 2] = this.z;
  2883. return this;
  2884. };
  2885. /**
  2886. * Converts the current Vector3 into a quaternion (considering that the Vector3 contains Euler angles representation of a rotation)
  2887. * @returns a new Quaternion object, computed from the Vector3 coordinates
  2888. */
  2889. Vector3.prototype.toQuaternion = function () {
  2890. return BABYLON.Quaternion.RotationYawPitchRoll(this.x, this.y, this.z);
  2891. };
  2892. /**
  2893. * Adds the given vector to the current Vector3
  2894. * @param otherVector defines the second operand
  2895. * @returns the current updated Vector3
  2896. */
  2897. Vector3.prototype.addInPlace = function (otherVector) {
  2898. this.x += otherVector.x;
  2899. this.y += otherVector.y;
  2900. this.z += otherVector.z;
  2901. return this;
  2902. };
  2903. /**
  2904. * Gets a new Vector3, result of the addition the current Vector3 and the given vector
  2905. * @param otherVector defines the second operand
  2906. * @returns the resulting Vector3
  2907. */
  2908. Vector3.prototype.add = function (otherVector) {
  2909. return new Vector3(this.x + otherVector.x, this.y + otherVector.y, this.z + otherVector.z);
  2910. };
  2911. /**
  2912. * Adds the current Vector3 to the given one and stores the result in the vector "result"
  2913. * @param otherVector defines the second operand
  2914. * @param result defines the Vector3 object where to store the result
  2915. * @returns the current Vector3
  2916. */
  2917. Vector3.prototype.addToRef = function (otherVector, result) {
  2918. result.x = this.x + otherVector.x;
  2919. result.y = this.y + otherVector.y;
  2920. result.z = this.z + otherVector.z;
  2921. return this;
  2922. };
  2923. /**
  2924. * Subtract the given vector from the current Vector3
  2925. * @param otherVector defines the second operand
  2926. * @returns the current updated Vector3
  2927. */
  2928. Vector3.prototype.subtractInPlace = function (otherVector) {
  2929. this.x -= otherVector.x;
  2930. this.y -= otherVector.y;
  2931. this.z -= otherVector.z;
  2932. return this;
  2933. };
  2934. /**
  2935. * Returns a new Vector3, result of the subtraction of the given vector from the current Vector3
  2936. * @param otherVector defines the second operand
  2937. * @returns the resulting Vector3
  2938. */
  2939. Vector3.prototype.subtract = function (otherVector) {
  2940. return new Vector3(this.x - otherVector.x, this.y - otherVector.y, this.z - otherVector.z);
  2941. };
  2942. /**
  2943. * Subtracts the given vector from the current Vector3 and stores the result in the vector "result".
  2944. * @param otherVector defines the second operand
  2945. * @param result defines the Vector3 object where to store the result
  2946. * @returns the current Vector3
  2947. */
  2948. Vector3.prototype.subtractToRef = function (otherVector, result) {
  2949. result.x = this.x - otherVector.x;
  2950. result.y = this.y - otherVector.y;
  2951. result.z = this.z - otherVector.z;
  2952. return this;
  2953. };
  2954. /**
  2955. * Returns a new Vector3 set with the subtraction of the given floats from the current Vector3 coordinates
  2956. * @param x defines the x coordinate of the operand
  2957. * @param y defines the y coordinate of the operand
  2958. * @param z defines the z coordinate of the operand
  2959. * @returns the resulting Vector3
  2960. */
  2961. Vector3.prototype.subtractFromFloats = function (x, y, z) {
  2962. return new Vector3(this.x - x, this.y - y, this.z - z);
  2963. };
  2964. /**
  2965. * Subtracts the given floats from the current Vector3 coordinates and set the given vector "result" with this result
  2966. * @param x defines the x coordinate of the operand
  2967. * @param y defines the y coordinate of the operand
  2968. * @param z defines the z coordinate of the operand
  2969. * @param result defines the Vector3 object where to store the result
  2970. * @returns the current Vector3
  2971. */
  2972. Vector3.prototype.subtractFromFloatsToRef = function (x, y, z, result) {
  2973. result.x = this.x - x;
  2974. result.y = this.y - y;
  2975. result.z = this.z - z;
  2976. return this;
  2977. };
  2978. /**
  2979. * Gets a new Vector3 set with the current Vector3 negated coordinates
  2980. * @returns a new Vector3
  2981. */
  2982. Vector3.prototype.negate = function () {
  2983. return new Vector3(-this.x, -this.y, -this.z);
  2984. };
  2985. /**
  2986. * Multiplies the Vector3 coordinates by the float "scale"
  2987. * @param scale defines the multiplier factor
  2988. * @returns the current updated Vector3
  2989. */
  2990. Vector3.prototype.scaleInPlace = function (scale) {
  2991. this.x *= scale;
  2992. this.y *= scale;
  2993. this.z *= scale;
  2994. return this;
  2995. };
  2996. /**
  2997. * Returns a new Vector3 set with the current Vector3 coordinates multiplied by the float "scale"
  2998. * @param scale defines the multiplier factor
  2999. * @returns a new Vector3
  3000. */
  3001. Vector3.prototype.scale = function (scale) {
  3002. return new Vector3(this.x * scale, this.y * scale, this.z * scale);
  3003. };
  3004. /**
  3005. * Multiplies the current Vector3 coordinates by the float "scale" and stores the result in the given vector "result" coordinates
  3006. * @param scale defines the multiplier factor
  3007. * @param result defines the Vector3 object where to store the result
  3008. * @returns the current Vector3
  3009. */
  3010. Vector3.prototype.scaleToRef = function (scale, result) {
  3011. result.x = this.x * scale;
  3012. result.y = this.y * scale;
  3013. result.z = this.z * scale;
  3014. return this;
  3015. };
  3016. /**
  3017. * Scale the current Vector3 values by a factor and add the result to a given Vector3
  3018. * @param scale defines the scale factor
  3019. * @param result defines the Vector3 object where to store the result
  3020. * @returns the unmodified current Vector3
  3021. */
  3022. Vector3.prototype.scaleAndAddToRef = function (scale, result) {
  3023. result.x += this.x * scale;
  3024. result.y += this.y * scale;
  3025. result.z += this.z * scale;
  3026. return this;
  3027. };
  3028. /**
  3029. * Returns true if the current Vector3 and the given vector coordinates are strictly equal
  3030. * @param otherVector defines the second operand
  3031. * @returns true if both vectors are equals
  3032. */
  3033. Vector3.prototype.equals = function (otherVector) {
  3034. return otherVector && this.x === otherVector.x && this.y === otherVector.y && this.z === otherVector.z;
  3035. };
  3036. /**
  3037. * Returns true if the current Vector3 and the given vector coordinates are distant less than epsilon
  3038. * @param otherVector defines the second operand
  3039. * @param epsilon defines the minimal distance to define values as equals
  3040. * @returns true if both vectors are distant less than epsilon
  3041. */
  3042. Vector3.prototype.equalsWithEpsilon = function (otherVector, epsilon) {
  3043. if (epsilon === void 0) { epsilon = BABYLON.Epsilon; }
  3044. return otherVector && BABYLON.Scalar.WithinEpsilon(this.x, otherVector.x, epsilon) && BABYLON.Scalar.WithinEpsilon(this.y, otherVector.y, epsilon) && BABYLON.Scalar.WithinEpsilon(this.z, otherVector.z, epsilon);
  3045. };
  3046. /**
  3047. * Returns true if the current Vector3 coordinates equals the given floats
  3048. * @param x defines the x coordinate of the operand
  3049. * @param y defines the y coordinate of the operand
  3050. * @param z defines the z coordinate of the operand
  3051. * @returns true if both vectors are equals
  3052. */
  3053. Vector3.prototype.equalsToFloats = function (x, y, z) {
  3054. return this.x === x && this.y === y && this.z === z;
  3055. };
  3056. /**
  3057. * Multiplies the current Vector3 coordinates by the given ones
  3058. * @param otherVector defines the second operand
  3059. * @returns the current updated Vector3
  3060. */
  3061. Vector3.prototype.multiplyInPlace = function (otherVector) {
  3062. this.x *= otherVector.x;
  3063. this.y *= otherVector.y;
  3064. this.z *= otherVector.z;
  3065. return this;
  3066. };
  3067. /**
  3068. * Returns a new Vector3, result of the multiplication of the current Vector3 by the given vector
  3069. * @param otherVector defines the second operand
  3070. * @returns the new Vector3
  3071. */
  3072. Vector3.prototype.multiply = function (otherVector) {
  3073. return new Vector3(this.x * otherVector.x, this.y * otherVector.y, this.z * otherVector.z);
  3074. };
  3075. /**
  3076. * Multiplies the current Vector3 by the given one and stores the result in the given vector "result"
  3077. * @param otherVector defines the second operand
  3078. * @param result defines the Vector3 object where to store the result
  3079. * @returns the current Vector3
  3080. */
  3081. Vector3.prototype.multiplyToRef = function (otherVector, result) {
  3082. result.x = this.x * otherVector.x;
  3083. result.y = this.y * otherVector.y;
  3084. result.z = this.z * otherVector.z;
  3085. return this;
  3086. };
  3087. /**
  3088. * Returns a new Vector3 set with the result of the mulliplication of the current Vector3 coordinates by the given floats
  3089. * @param x defines the x coordinate of the operand
  3090. * @param y defines the y coordinate of the operand
  3091. * @param z defines the z coordinate of the operand
  3092. * @returns the new Vector3
  3093. */
  3094. Vector3.prototype.multiplyByFloats = function (x, y, z) {
  3095. return new Vector3(this.x * x, this.y * y, this.z * z);
  3096. };
  3097. /**
  3098. * Returns a new Vector3 set with the result of the division of the current Vector3 coordinates by the given ones
  3099. * @param otherVector defines the second operand
  3100. * @returns the new Vector3
  3101. */
  3102. Vector3.prototype.divide = function (otherVector) {
  3103. return new Vector3(this.x / otherVector.x, this.y / otherVector.y, this.z / otherVector.z);
  3104. };
  3105. /**
  3106. * Divides the current Vector3 coordinates by the given ones and stores the result in the given vector "result"
  3107. * @param otherVector defines the second operand
  3108. * @param result defines the Vector3 object where to store the result
  3109. * @returns the current Vector3
  3110. */
  3111. Vector3.prototype.divideToRef = function (otherVector, result) {
  3112. result.x = this.x / otherVector.x;
  3113. result.y = this.y / otherVector.y;
  3114. result.z = this.z / otherVector.z;
  3115. return this;
  3116. };
  3117. /**
  3118. * Divides the current Vector3 coordinates by the given ones.
  3119. * @param otherVector defines the second operand
  3120. * @returns the current updated Vector3
  3121. */
  3122. Vector3.prototype.divideInPlace = function (otherVector) {
  3123. return this.divideToRef(otherVector, this);
  3124. };
  3125. /**
  3126. * Updates the current Vector3 with the minimal coordinate values between its and the given vector ones
  3127. * @param other defines the second operand
  3128. * @returns the current updated Vector3
  3129. */
  3130. Vector3.prototype.minimizeInPlace = function (other) {
  3131. if (other.x < this.x)
  3132. this.x = other.x;
  3133. if (other.y < this.y)
  3134. this.y = other.y;
  3135. if (other.z < this.z)
  3136. this.z = other.z;
  3137. return this;
  3138. };
  3139. /**
  3140. * Updates the current Vector3 with the maximal coordinate values between its and the given vector ones.
  3141. * @param other defines the second operand
  3142. * @returns the current updated Vector3
  3143. */
  3144. Vector3.prototype.maximizeInPlace = function (other) {
  3145. if (other.x > this.x)
  3146. this.x = other.x;
  3147. if (other.y > this.y)
  3148. this.y = other.y;
  3149. if (other.z > this.z)
  3150. this.z = other.z;
  3151. return this;
  3152. };
  3153. Object.defineProperty(Vector3.prototype, "isNonUniform", {
  3154. /**
  3155. * Gets a boolean indicating that the vector is non uniform meaning x, y or z are not all the same
  3156. */
  3157. get: function () {
  3158. var absX = Math.abs(this.x);
  3159. var absY = Math.abs(this.y);
  3160. if (absX !== absY) {
  3161. return true;
  3162. }
  3163. var absZ = Math.abs(this.z);
  3164. if (absX !== absZ) {
  3165. return true;
  3166. }
  3167. if (absY !== absZ) {
  3168. return true;
  3169. }
  3170. return false;
  3171. },
  3172. enumerable: true,
  3173. configurable: true
  3174. });
  3175. /**
  3176. * Gets a new Vector3 from current Vector3 floored values
  3177. * @returns a new Vector3
  3178. */
  3179. Vector3.prototype.floor = function () {
  3180. return new Vector3(Math.floor(this.x), Math.floor(this.y), Math.floor(this.z));
  3181. };
  3182. /**
  3183. * Gets a new Vector3 from current Vector3 floored values
  3184. * @returns a new Vector3
  3185. */
  3186. Vector3.prototype.fract = function () {
  3187. return new Vector3(this.x - Math.floor(this.x), this.y - Math.floor(this.y), this.z - Math.floor(this.z));
  3188. };
  3189. // Properties
  3190. /**
  3191. * Gets the length of the Vector3
  3192. * @returns the length of the Vecto3
  3193. */
  3194. Vector3.prototype.length = function () {
  3195. return Math.sqrt(this.x * this.x + this.y * this.y + this.z * this.z);
  3196. };
  3197. /**
  3198. * Gets the squared length of the Vector3
  3199. * @returns squared length of the Vector3
  3200. */
  3201. Vector3.prototype.lengthSquared = function () {
  3202. return (this.x * this.x + this.y * this.y + this.z * this.z);
  3203. };
  3204. /**
  3205. * Normalize the current Vector3.
  3206. * Please note that this is an in place operation.
  3207. * @returns the current updated Vector3
  3208. */
  3209. Vector3.prototype.normalize = function () {
  3210. var len = this.length();
  3211. if (len === 0 || len === 1.0)
  3212. return this;
  3213. var num = 1.0 / len;
  3214. this.x *= num;
  3215. this.y *= num;
  3216. this.z *= num;
  3217. return this;
  3218. };
  3219. /**
  3220. * Normalize the current Vector3 to a new vector
  3221. * @returns the new Vector3
  3222. */
  3223. Vector3.prototype.normalizeToNew = function () {
  3224. var normalized = new Vector3(0, 0, 0);
  3225. this.normalizeToRef(normalized);
  3226. return normalized;
  3227. };
  3228. /**
  3229. * Normalize the current Vector3 to the reference
  3230. * @param reference define the Vector3 to update
  3231. * @returns the updated Vector3
  3232. */
  3233. Vector3.prototype.normalizeToRef = function (reference) {
  3234. var len = this.length();
  3235. if (len === 0 || len === 1.0) {
  3236. reference.set(this.x, this.y, this.z);
  3237. return reference;
  3238. }
  3239. var scale = 1.0 / len;
  3240. this.scaleToRef(scale, reference);
  3241. return reference;
  3242. };
  3243. /**
  3244. * Creates a new Vector3 copied from the current Vector3
  3245. * @returns the new Vector3
  3246. */
  3247. Vector3.prototype.clone = function () {
  3248. return new Vector3(this.x, this.y, this.z);
  3249. };
  3250. /**
  3251. * Copies the given vector coordinates to the current Vector3 ones
  3252. * @param source defines the source Vector3
  3253. * @returns the current updated Vector3
  3254. */
  3255. Vector3.prototype.copyFrom = function (source) {
  3256. this.x = source.x;
  3257. this.y = source.y;
  3258. this.z = source.z;
  3259. return this;
  3260. };
  3261. /**
  3262. * Copies the given floats to the current Vector3 coordinates
  3263. * @param x defines the x coordinate of the operand
  3264. * @param y defines the y coordinate of the operand
  3265. * @param z defines the z coordinate of the operand
  3266. * @returns the current updated Vector3
  3267. */
  3268. Vector3.prototype.copyFromFloats = function (x, y, z) {
  3269. this.x = x;
  3270. this.y = y;
  3271. this.z = z;
  3272. return this;
  3273. };
  3274. /**
  3275. * Copies the given floats to the current Vector3 coordinates
  3276. * @param x defines the x coordinate of the operand
  3277. * @param y defines the y coordinate of the operand
  3278. * @param z defines the z coordinate of the operand
  3279. * @returns the current updated Vector3
  3280. */
  3281. Vector3.prototype.set = function (x, y, z) {
  3282. return this.copyFromFloats(x, y, z);
  3283. };
  3284. // Statics
  3285. /**
  3286. * Get the clip factor between two vectors
  3287. * @param vector0 defines the first operand
  3288. * @param vector1 defines the second operand
  3289. * @param axis defines the axis to use
  3290. * @param size defines the size along the axis
  3291. * @returns the clip factor
  3292. */
  3293. Vector3.GetClipFactor = function (vector0, vector1, axis, size) {
  3294. var d0 = Vector3.Dot(vector0, axis) - size;
  3295. var d1 = Vector3.Dot(vector1, axis) - size;
  3296. var s = d0 / (d0 - d1);
  3297. return s;
  3298. };
  3299. /**
  3300. * Get angle between two vectors
  3301. * @param vector0 angle between vector0 and vector1
  3302. * @param vector1 angle between vector0 and vector1
  3303. * @param normal direction of the normal
  3304. * @return the angle between vector0 and vector1
  3305. */
  3306. Vector3.GetAngleBetweenVectors = function (vector0, vector1, normal) {
  3307. var v0 = vector0.clone().normalize();
  3308. var v1 = vector1.clone().normalize();
  3309. var dot = Vector3.Dot(v0, v1);
  3310. var n = Vector3.Cross(v0, v1);
  3311. if (Vector3.Dot(n, normal) > 0) {
  3312. return Math.acos(dot);
  3313. }
  3314. return -Math.acos(dot);
  3315. };
  3316. /**
  3317. * Returns a new Vector3 set from the index "offset" of the given array
  3318. * @param array defines the source array
  3319. * @param offset defines the offset in the source array
  3320. * @returns the new Vector3
  3321. */
  3322. Vector3.FromArray = function (array, offset) {
  3323. if (!offset) {
  3324. offset = 0;
  3325. }
  3326. return new Vector3(array[offset], array[offset + 1], array[offset + 2]);
  3327. };
  3328. /**
  3329. * Returns a new Vector3 set from the index "offset" of the given Float32Array
  3330. * This function is deprecated. Use FromArray instead
  3331. * @param array defines the source array
  3332. * @param offset defines the offset in the source array
  3333. * @returns the new Vector3
  3334. */
  3335. Vector3.FromFloatArray = function (array, offset) {
  3336. return Vector3.FromArray(array, offset);
  3337. };
  3338. /**
  3339. * Sets the given vector "result" with the element values from the index "offset" of the given array
  3340. * @param array defines the source array
  3341. * @param offset defines the offset in the source array
  3342. * @param result defines the Vector3 where to store the result
  3343. */
  3344. Vector3.FromArrayToRef = function (array, offset, result) {
  3345. result.x = array[offset];
  3346. result.y = array[offset + 1];
  3347. result.z = array[offset + 2];
  3348. };
  3349. /**
  3350. * Sets the given vector "result" with the element values from the index "offset" of the given Float32Array
  3351. * This function is deprecated. Use FromArrayToRef instead.
  3352. * @param array defines the source array
  3353. * @param offset defines the offset in the source array
  3354. * @param result defines the Vector3 where to store the result
  3355. */
  3356. Vector3.FromFloatArrayToRef = function (array, offset, result) {
  3357. return Vector3.FromArrayToRef(array, offset, result);
  3358. };
  3359. /**
  3360. * Sets the given vector "result" with the given floats.
  3361. * @param x defines the x coordinate of the source
  3362. * @param y defines the y coordinate of the source
  3363. * @param z defines the z coordinate of the source
  3364. * @param result defines the Vector3 where to store the result
  3365. */
  3366. Vector3.FromFloatsToRef = function (x, y, z, result) {
  3367. result.x = x;
  3368. result.y = y;
  3369. result.z = z;
  3370. };
  3371. /**
  3372. * Returns a new Vector3 set to (0.0, 0.0, 0.0)
  3373. * @returns a new empty Vector3
  3374. */
  3375. Vector3.Zero = function () {
  3376. return new Vector3(0.0, 0.0, 0.0);
  3377. };
  3378. /**
  3379. * Returns a new Vector3 set to (1.0, 1.0, 1.0)
  3380. * @returns a new unit Vector3
  3381. */
  3382. Vector3.One = function () {
  3383. return new Vector3(1.0, 1.0, 1.0);
  3384. };
  3385. /**
  3386. * Returns a new Vector3 set to (0.0, 1.0, 0.0)
  3387. * @returns a new up Vector3
  3388. */
  3389. Vector3.Up = function () {
  3390. return new Vector3(0.0, 1.0, 0.0);
  3391. };
  3392. /**
  3393. * Returns a new Vector3 set to (0.0, -1.0, 0.0)
  3394. * @returns a new down Vector3
  3395. */
  3396. Vector3.Down = function () {
  3397. return new Vector3(0.0, -1.0, 0.0);
  3398. };
  3399. /**
  3400. * Returns a new Vector3 set to (0.0, 0.0, 1.0)
  3401. * @returns a new forward Vector3
  3402. */
  3403. Vector3.Forward = function () {
  3404. return new Vector3(0.0, 0.0, 1.0);
  3405. };
  3406. /**
  3407. * Returns a new Vector3 set to (1.0, 0.0, 0.0)
  3408. * @returns a new right Vector3
  3409. */
  3410. Vector3.Right = function () {
  3411. return new Vector3(1.0, 0.0, 0.0);
  3412. };
  3413. /**
  3414. * Returns a new Vector3 set to (-1.0, 0.0, 0.0)
  3415. * @returns a new left Vector3
  3416. */
  3417. Vector3.Left = function () {
  3418. return new Vector3(-1.0, 0.0, 0.0);
  3419. };
  3420. /**
  3421. * Returns a new Vector3 set with the result of the transformation by the given matrix of the given vector.
  3422. * This method computes tranformed coordinates only, not transformed direction vectors (ie. it takes translation in account)
  3423. * @param vector defines the Vector3 to transform
  3424. * @param transformation defines the transformation matrix
  3425. * @returns the transformed Vector3
  3426. */
  3427. Vector3.TransformCoordinates = function (vector, transformation) {
  3428. var result = Vector3.Zero();
  3429. Vector3.TransformCoordinatesToRef(vector, transformation, result);
  3430. return result;
  3431. };
  3432. /**
  3433. * Sets the given vector "result" coordinates with the result of the transformation by the given matrix of the given vector
  3434. * This method computes tranformed coordinates only, not transformed direction vectors (ie. it takes translation in account)
  3435. * @param vector defines the Vector3 to transform
  3436. * @param transformation defines the transformation matrix
  3437. * @param result defines the Vector3 where to store the result
  3438. */
  3439. Vector3.TransformCoordinatesToRef = function (vector, transformation, result) {
  3440. var x = (vector.x * transformation.m[0]) + (vector.y * transformation.m[4]) + (vector.z * transformation.m[8]) + transformation.m[12];
  3441. var y = (vector.x * transformation.m[1]) + (vector.y * transformation.m[5]) + (vector.z * transformation.m[9]) + transformation.m[13];
  3442. var z = (vector.x * transformation.m[2]) + (vector.y * transformation.m[6]) + (vector.z * transformation.m[10]) + transformation.m[14];
  3443. var w = (vector.x * transformation.m[3]) + (vector.y * transformation.m[7]) + (vector.z * transformation.m[11]) + transformation.m[15];
  3444. result.x = x / w;
  3445. result.y = y / w;
  3446. result.z = z / w;
  3447. };
  3448. /**
  3449. * Sets the given vector "result" coordinates with the result of the transformation by the given matrix of the given floats (x, y, z)
  3450. * This method computes tranformed coordinates only, not transformed direction vectors
  3451. * @param x define the x coordinate of the source vector
  3452. * @param y define the y coordinate of the source vector
  3453. * @param z define the z coordinate of the source vector
  3454. * @param transformation defines the transformation matrix
  3455. * @param result defines the Vector3 where to store the result
  3456. */
  3457. Vector3.TransformCoordinatesFromFloatsToRef = function (x, y, z, transformation, result) {
  3458. var rx = (x * transformation.m[0]) + (y * transformation.m[4]) + (z * transformation.m[8]) + transformation.m[12];
  3459. var ry = (x * transformation.m[1]) + (y * transformation.m[5]) + (z * transformation.m[9]) + transformation.m[13];
  3460. var rz = (x * transformation.m[2]) + (y * transformation.m[6]) + (z * transformation.m[10]) + transformation.m[14];
  3461. var rw = (x * transformation.m[3]) + (y * transformation.m[7]) + (z * transformation.m[11]) + transformation.m[15];
  3462. result.x = rx / rw;
  3463. result.y = ry / rw;
  3464. result.z = rz / rw;
  3465. };
  3466. /**
  3467. * Returns a new Vector3 set with the result of the normal transformation by the given matrix of the given vector
  3468. * This methods computes transformed normalized direction vectors only (ie. it does not apply translation)
  3469. * @param vector defines the Vector3 to transform
  3470. * @param transformation defines the transformation matrix
  3471. * @returns the new Vector3
  3472. */
  3473. Vector3.TransformNormal = function (vector, transformation) {
  3474. var result = Vector3.Zero();
  3475. Vector3.TransformNormalToRef(vector, transformation, result);
  3476. return result;
  3477. };
  3478. /**
  3479. * Sets the given vector "result" with the result of the normal transformation by the given matrix of the given vector
  3480. * This methods computes transformed normalized direction vectors only (ie. it does not apply translation)
  3481. * @param vector defines the Vector3 to transform
  3482. * @param transformation defines the transformation matrix
  3483. * @param result defines the Vector3 where to store the result
  3484. */
  3485. Vector3.TransformNormalToRef = function (vector, transformation, result) {
  3486. var x = (vector.x * transformation.m[0]) + (vector.y * transformation.m[4]) + (vector.z * transformation.m[8]);
  3487. var y = (vector.x * transformation.m[1]) + (vector.y * transformation.m[5]) + (vector.z * transformation.m[9]);
  3488. var z = (vector.x * transformation.m[2]) + (vector.y * transformation.m[6]) + (vector.z * transformation.m[10]);
  3489. result.x = x;
  3490. result.y = y;
  3491. result.z = z;
  3492. };
  3493. /**
  3494. * Sets the given vector "result" with the result of the normal transformation by the given matrix of the given floats (x, y, z)
  3495. * This methods computes transformed normalized direction vectors only (ie. it does not apply translation)
  3496. * @param x define the x coordinate of the source vector
  3497. * @param y define the y coordinate of the source vector
  3498. * @param z define the z coordinate of the source vector
  3499. * @param transformation defines the transformation matrix
  3500. * @param result defines the Vector3 where to store the result
  3501. */
  3502. Vector3.TransformNormalFromFloatsToRef = function (x, y, z, transformation, result) {
  3503. result.x = (x * transformation.m[0]) + (y * transformation.m[4]) + (z * transformation.m[8]);
  3504. result.y = (x * transformation.m[1]) + (y * transformation.m[5]) + (z * transformation.m[9]);
  3505. result.z = (x * transformation.m[2]) + (y * transformation.m[6]) + (z * transformation.m[10]);
  3506. };
  3507. /**
  3508. * Returns a new Vector3 located for "amount" on the CatmullRom interpolation spline defined by the vectors "value1", "value2", "value3", "value4"
  3509. * @param value1 defines the first control point
  3510. * @param value2 defines the second control point
  3511. * @param value3 defines the third control point
  3512. * @param value4 defines the fourth control point
  3513. * @param amount defines the amount on the spline to use
  3514. * @returns the new Vector3
  3515. */
  3516. Vector3.CatmullRom = function (value1, value2, value3, value4, amount) {
  3517. var squared = amount * amount;
  3518. var cubed = amount * squared;
  3519. var x = 0.5 * ((((2.0 * value2.x) + ((-value1.x + value3.x) * amount)) +
  3520. (((((2.0 * value1.x) - (5.0 * value2.x)) + (4.0 * value3.x)) - value4.x) * squared)) +
  3521. ((((-value1.x + (3.0 * value2.x)) - (3.0 * value3.x)) + value4.x) * cubed));
  3522. var y = 0.5 * ((((2.0 * value2.y) + ((-value1.y + value3.y) * amount)) +
  3523. (((((2.0 * value1.y) - (5.0 * value2.y)) + (4.0 * value3.y)) - value4.y) * squared)) +
  3524. ((((-value1.y + (3.0 * value2.y)) - (3.0 * value3.y)) + value4.y) * cubed));
  3525. var z = 0.5 * ((((2.0 * value2.z) + ((-value1.z + value3.z) * amount)) +
  3526. (((((2.0 * value1.z) - (5.0 * value2.z)) + (4.0 * value3.z)) - value4.z) * squared)) +
  3527. ((((-value1.z + (3.0 * value2.z)) - (3.0 * value3.z)) + value4.z) * cubed));
  3528. return new Vector3(x, y, z);
  3529. };
  3530. /**
  3531. * Returns a new Vector3 set with the coordinates of "value", if the vector "value" is in the cube defined by the vectors "min" and "max"
  3532. * If a coordinate value of "value" is lower than one of the "min" coordinate, then this "value" coordinate is set with the "min" one
  3533. * If a coordinate value of "value" is greater than one of the "max" coordinate, then this "value" coordinate is set with the "max" one
  3534. * @param value defines the current value
  3535. * @param min defines the lower range value
  3536. * @param max defines the upper range value
  3537. * @returns the new Vector3
  3538. */
  3539. Vector3.Clamp = function (value, min, max) {
  3540. var x = value.x;
  3541. x = (x > max.x) ? max.x : x;
  3542. x = (x < min.x) ? min.x : x;
  3543. var y = value.y;
  3544. y = (y > max.y) ? max.y : y;
  3545. y = (y < min.y) ? min.y : y;
  3546. var z = value.z;
  3547. z = (z > max.z) ? max.z : z;
  3548. z = (z < min.z) ? min.z : z;
  3549. return new Vector3(x, y, z);
  3550. };
  3551. /**
  3552. * Returns a new Vector3 located for "amount" (float) on the Hermite interpolation spline defined by the vectors "value1", "tangent1", "value2", "tangent2"
  3553. * @param value1 defines the first control point
  3554. * @param tangent1 defines the first tangent vector
  3555. * @param value2 defines the second control point
  3556. * @param tangent2 defines the second tangent vector
  3557. * @param amount defines the amount on the interpolation spline (between 0 and 1)
  3558. * @returns the new Vector3
  3559. */
  3560. Vector3.Hermite = function (value1, tangent1, value2, tangent2, amount) {
  3561. var squared = amount * amount;
  3562. var cubed = amount * squared;
  3563. var part1 = ((2.0 * cubed) - (3.0 * squared)) + 1.0;
  3564. var part2 = (-2.0 * cubed) + (3.0 * squared);
  3565. var part3 = (cubed - (2.0 * squared)) + amount;
  3566. var part4 = cubed - squared;
  3567. var x = (((value1.x * part1) + (value2.x * part2)) + (tangent1.x * part3)) + (tangent2.x * part4);
  3568. var y = (((value1.y * part1) + (value2.y * part2)) + (tangent1.y * part3)) + (tangent2.y * part4);
  3569. var z = (((value1.z * part1) + (value2.z * part2)) + (tangent1.z * part3)) + (tangent2.z * part4);
  3570. return new Vector3(x, y, z);
  3571. };
  3572. /**
  3573. * Returns a new Vector3 located for "amount" (float) on the linear interpolation between the vectors "start" and "end"
  3574. * @param start defines the start value
  3575. * @param end defines the end value
  3576. * @param amount max defines amount between both (between 0 and 1)
  3577. * @returns the new Vector3
  3578. */
  3579. Vector3.Lerp = function (start, end, amount) {
  3580. var result = new Vector3(0, 0, 0);
  3581. Vector3.LerpToRef(start, end, amount, result);
  3582. return result;
  3583. };
  3584. /**
  3585. * Sets the given vector "result" with the result of the linear interpolation from the vector "start" for "amount" to the vector "end"
  3586. * @param start defines the start value
  3587. * @param end defines the end value
  3588. * @param amount max defines amount between both (between 0 and 1)
  3589. * @param result defines the Vector3 where to store the result
  3590. */
  3591. Vector3.LerpToRef = function (start, end, amount, result) {
  3592. result.x = start.x + ((end.x - start.x) * amount);
  3593. result.y = start.y + ((end.y - start.y) * amount);
  3594. result.z = start.z + ((end.z - start.z) * amount);
  3595. };
  3596. /**
  3597. * Returns the dot product (float) between the vectors "left" and "right"
  3598. * @param left defines the left operand
  3599. * @param right defines the right operand
  3600. * @returns the dot product
  3601. */
  3602. Vector3.Dot = function (left, right) {
  3603. return (left.x * right.x + left.y * right.y + left.z * right.z);
  3604. };
  3605. /**
  3606. * Returns a new Vector3 as the cross product of the vectors "left" and "right"
  3607. * The cross product is then orthogonal to both "left" and "right"
  3608. * @param left defines the left operand
  3609. * @param right defines the right operand
  3610. * @returns the cross product
  3611. */
  3612. Vector3.Cross = function (left, right) {
  3613. var result = Vector3.Zero();
  3614. Vector3.CrossToRef(left, right, result);
  3615. return result;
  3616. };
  3617. /**
  3618. * Sets the given vector "result" with the cross product of "left" and "right"
  3619. * The cross product is then orthogonal to both "left" and "right"
  3620. * @param left defines the left operand
  3621. * @param right defines the right operand
  3622. * @param result defines the Vector3 where to store the result
  3623. */
  3624. Vector3.CrossToRef = function (left, right, result) {
  3625. MathTmp.Vector3[0].x = left.y * right.z - left.z * right.y;
  3626. MathTmp.Vector3[0].y = left.z * right.x - left.x * right.z;
  3627. MathTmp.Vector3[0].z = left.x * right.y - left.y * right.x;
  3628. result.copyFrom(MathTmp.Vector3[0]);
  3629. };
  3630. /**
  3631. * Returns a new Vector3 as the normalization of the given vector
  3632. * @param vector defines the Vector3 to normalize
  3633. * @returns the new Vector3
  3634. */
  3635. Vector3.Normalize = function (vector) {
  3636. var result = Vector3.Zero();
  3637. Vector3.NormalizeToRef(vector, result);
  3638. return result;
  3639. };
  3640. /**
  3641. * Sets the given vector "result" with the normalization of the given first vector
  3642. * @param vector defines the Vector3 to normalize
  3643. * @param result defines the Vector3 where to store the result
  3644. */
  3645. Vector3.NormalizeToRef = function (vector, result) {
  3646. result.copyFrom(vector);
  3647. result.normalize();
  3648. };
  3649. /**
  3650. * Project a Vector3 onto screen space
  3651. * @param vector defines the Vector3 to project
  3652. * @param world defines the world matrix to use
  3653. * @param transform defines the transform (view x projection) matrix to use
  3654. * @param viewport defines the screen viewport to use
  3655. * @returns the new Vector3
  3656. */
  3657. Vector3.Project = function (vector, world, transform, viewport) {
  3658. var cw = viewport.width;
  3659. var ch = viewport.height;
  3660. var cx = viewport.x;
  3661. var cy = viewport.y;
  3662. var viewportMatrix = Vector3._viewportMatrixCache ? Vector3._viewportMatrixCache : (Vector3._viewportMatrixCache = new Matrix());
  3663. Matrix.FromValuesToRef(cw / 2.0, 0, 0, 0, 0, -ch / 2.0, 0, 0, 0, 0, 0.5, 0, cx + cw / 2.0, ch / 2.0 + cy, 0.5, 1, viewportMatrix);
  3664. var matrix = MathTmp.Matrix[0];
  3665. world.multiplyToRef(transform, matrix);
  3666. matrix.multiplyToRef(viewportMatrix, matrix);
  3667. return Vector3.TransformCoordinates(vector, matrix);
  3668. };
  3669. /**
  3670. * Unproject from screen space to object space
  3671. * @param source defines the screen space Vector3 to use
  3672. * @param viewportWidth defines the current width of the viewport
  3673. * @param viewportHeight defines the current height of the viewport
  3674. * @param world defines the world matrix to use (can be set to Identity to go to world space)
  3675. * @param transform defines the transform (view x projection) matrix to use
  3676. * @returns the new Vector3
  3677. */
  3678. Vector3.UnprojectFromTransform = function (source, viewportWidth, viewportHeight, world, transform) {
  3679. var matrix = MathTmp.Matrix[0];
  3680. world.multiplyToRef(transform, matrix);
  3681. matrix.invert();
  3682. source.x = source.x / viewportWidth * 2 - 1;
  3683. source.y = -(source.y / viewportHeight * 2 - 1);
  3684. var vector = Vector3.TransformCoordinates(source, matrix);
  3685. var num = source.x * matrix.m[3] + source.y * matrix.m[7] + source.z * matrix.m[11] + matrix.m[15];
  3686. if (BABYLON.Scalar.WithinEpsilon(num, 1.0)) {
  3687. vector = vector.scale(1.0 / num);
  3688. }
  3689. return vector;
  3690. };
  3691. /**
  3692. * Unproject from screen space to object space
  3693. * @param source defines the screen space Vector3 to use
  3694. * @param viewportWidth defines the current width of the viewport
  3695. * @param viewportHeight defines the current height of the viewport
  3696. * @param world defines the world matrix to use (can be set to Identity to go to world space)
  3697. * @param view defines the view matrix to use
  3698. * @param projection defines the projection matrix to use
  3699. * @returns the new Vector3
  3700. */
  3701. Vector3.Unproject = function (source, viewportWidth, viewportHeight, world, view, projection) {
  3702. var result = Vector3.Zero();
  3703. Vector3.UnprojectToRef(source, viewportWidth, viewportHeight, world, view, projection, result);
  3704. return result;
  3705. };
  3706. /**
  3707. * Unproject from screen space to object space
  3708. * @param source defines the screen space Vector3 to use
  3709. * @param viewportWidth defines the current width of the viewport
  3710. * @param viewportHeight defines the current height of the viewport
  3711. * @param world defines the world matrix to use (can be set to Identity to go to world space)
  3712. * @param view defines the view matrix to use
  3713. * @param projection defines the projection matrix to use
  3714. * @param result defines the Vector3 where to store the result
  3715. */
  3716. Vector3.UnprojectToRef = function (source, viewportWidth, viewportHeight, world, view, projection, result) {
  3717. Vector3.UnprojectFloatsToRef(source.x, source.y, source.z, viewportWidth, viewportHeight, world, view, projection, result);
  3718. };
  3719. /**
  3720. * Unproject from screen space to object space
  3721. * @param sourceX defines the screen space x coordinate to use
  3722. * @param sourceY defines the screen space y coordinate to use
  3723. * @param sourceZ defines the screen space z coordinate to use
  3724. * @param viewportWidth defines the current width of the viewport
  3725. * @param viewportHeight defines the current height of the viewport
  3726. * @param world defines the world matrix to use (can be set to Identity to go to world space)
  3727. * @param view defines the view matrix to use
  3728. * @param projection defines the projection matrix to use
  3729. * @param result defines the Vector3 where to store the result
  3730. */
  3731. Vector3.UnprojectFloatsToRef = function (sourceX, sourceY, sourceZ, viewportWidth, viewportHeight, world, view, projection, result) {
  3732. var matrix = MathTmp.Matrix[0];
  3733. world.multiplyToRef(view, matrix);
  3734. matrix.multiplyToRef(projection, matrix);
  3735. matrix.invert();
  3736. var screenSource = MathTmp.Vector3[0];
  3737. screenSource.x = sourceX / viewportWidth * 2 - 1;
  3738. screenSource.y = -(sourceY / viewportHeight * 2 - 1);
  3739. screenSource.z = 2 * sourceZ - 1.0;
  3740. Vector3.TransformCoordinatesToRef(screenSource, matrix, result);
  3741. var num = screenSource.x * matrix.m[3] + screenSource.y * matrix.m[7] + screenSource.z * matrix.m[11] + matrix.m[15];
  3742. if (BABYLON.Scalar.WithinEpsilon(num, 1.0)) {
  3743. result.scaleInPlace(1.0 / num);
  3744. }
  3745. };
  3746. /**
  3747. * Gets the minimal coordinate values between two Vector3
  3748. * @param left defines the first operand
  3749. * @param right defines the second operand
  3750. * @returns the new Vector3
  3751. */
  3752. Vector3.Minimize = function (left, right) {
  3753. var min = left.clone();
  3754. min.minimizeInPlace(right);
  3755. return min;
  3756. };
  3757. /**
  3758. * Gets the maximal coordinate values between two Vector3
  3759. * @param left defines the first operand
  3760. * @param right defines the second operand
  3761. * @returns the new Vector3
  3762. */
  3763. Vector3.Maximize = function (left, right) {
  3764. var max = left.clone();
  3765. max.maximizeInPlace(right);
  3766. return max;
  3767. };
  3768. /**
  3769. * Returns the distance between the vectors "value1" and "value2"
  3770. * @param value1 defines the first operand
  3771. * @param value2 defines the second operand
  3772. * @returns the distance
  3773. */
  3774. Vector3.Distance = function (value1, value2) {
  3775. return Math.sqrt(Vector3.DistanceSquared(value1, value2));
  3776. };
  3777. /**
  3778. * Returns the squared distance between the vectors "value1" and "value2"
  3779. * @param value1 defines the first operand
  3780. * @param value2 defines the second operand
  3781. * @returns the squared distance
  3782. */
  3783. Vector3.DistanceSquared = function (value1, value2) {
  3784. var x = value1.x - value2.x;
  3785. var y = value1.y - value2.y;
  3786. var z = value1.z - value2.z;
  3787. return (x * x) + (y * y) + (z * z);
  3788. };
  3789. /**
  3790. * Returns a new Vector3 located at the center between "value1" and "value2"
  3791. * @param value1 defines the first operand
  3792. * @param value2 defines the second operand
  3793. * @returns the new Vector3
  3794. */
  3795. Vector3.Center = function (value1, value2) {
  3796. var center = value1.add(value2);
  3797. center.scaleInPlace(0.5);
  3798. return center;
  3799. };
  3800. /**
  3801. * Given three orthogonal normalized left-handed oriented Vector3 axis in space (target system),
  3802. * RotationFromAxis() returns the rotation Euler angles (ex : rotation.x, rotation.y, rotation.z) to apply
  3803. * to something in order to rotate it from its local system to the given target system
  3804. * Note: axis1, axis2 and axis3 are normalized during this operation
  3805. * @param axis1 defines the first axis
  3806. * @param axis2 defines the second axis
  3807. * @param axis3 defines the third axis
  3808. * @returns a new Vector3
  3809. */
  3810. Vector3.RotationFromAxis = function (axis1, axis2, axis3) {
  3811. var rotation = Vector3.Zero();
  3812. Vector3.RotationFromAxisToRef(axis1, axis2, axis3, rotation);
  3813. return rotation;
  3814. };
  3815. /**
  3816. * The same than RotationFromAxis but updates the given ref Vector3 parameter instead of returning a new Vector3
  3817. * @param axis1 defines the first axis
  3818. * @param axis2 defines the second axis
  3819. * @param axis3 defines the third axis
  3820. * @param ref defines the Vector3 where to store the result
  3821. */
  3822. Vector3.RotationFromAxisToRef = function (axis1, axis2, axis3, ref) {
  3823. var quat = MathTmp.Quaternion[0];
  3824. Quaternion.RotationQuaternionFromAxisToRef(axis1, axis2, axis3, quat);
  3825. quat.toEulerAnglesToRef(ref);
  3826. };
  3827. return Vector3;
  3828. }());
  3829. BABYLON.Vector3 = Vector3;
  3830. //Vector4 class created for EulerAngle class conversion to Quaternion
  3831. var Vector4 = /** @class */ (function () {
  3832. /**
  3833. * Creates a Vector4 object from the given floats.
  3834. */
  3835. function Vector4(x, y, z, w) {
  3836. this.x = x;
  3837. this.y = y;
  3838. this.z = z;
  3839. this.w = w;
  3840. }
  3841. /**
  3842. * Returns the string with the Vector4 coordinates.
  3843. */
  3844. Vector4.prototype.toString = function () {
  3845. return "{X: " + this.x + " Y:" + this.y + " Z:" + this.z + " W:" + this.w + "}";
  3846. };
  3847. /**
  3848. * Returns the string "Vector4".
  3849. */
  3850. Vector4.prototype.getClassName = function () {
  3851. return "Vector4";
  3852. };
  3853. /**
  3854. * Returns the Vector4 hash code.
  3855. */
  3856. Vector4.prototype.getHashCode = function () {
  3857. var hash = this.x || 0;
  3858. hash = (hash * 397) ^ (this.y || 0);
  3859. hash = (hash * 397) ^ (this.z || 0);
  3860. hash = (hash * 397) ^ (this.w || 0);
  3861. return hash;
  3862. };
  3863. // Operators
  3864. /**
  3865. * Returns a new array populated with 4 elements : the Vector4 coordinates.
  3866. */
  3867. Vector4.prototype.asArray = function () {
  3868. var result = new Array();
  3869. this.toArray(result, 0);
  3870. return result;
  3871. };
  3872. /**
  3873. * Populates the given array from the given index with the Vector4 coordinates.
  3874. * Returns the Vector4.
  3875. */
  3876. Vector4.prototype.toArray = function (array, index) {
  3877. if (index === undefined) {
  3878. index = 0;
  3879. }
  3880. array[index] = this.x;
  3881. array[index + 1] = this.y;
  3882. array[index + 2] = this.z;
  3883. array[index + 3] = this.w;
  3884. return this;
  3885. };
  3886. /**
  3887. * Adds the given vector to the current Vector4.
  3888. * Returns the updated Vector4.
  3889. */
  3890. Vector4.prototype.addInPlace = function (otherVector) {
  3891. this.x += otherVector.x;
  3892. this.y += otherVector.y;
  3893. this.z += otherVector.z;
  3894. this.w += otherVector.w;
  3895. return this;
  3896. };
  3897. /**
  3898. * Returns a new Vector4 as the result of the addition of the current Vector4 and the given one.
  3899. */
  3900. Vector4.prototype.add = function (otherVector) {
  3901. return new Vector4(this.x + otherVector.x, this.y + otherVector.y, this.z + otherVector.z, this.w + otherVector.w);
  3902. };
  3903. /**
  3904. * Updates the given vector "result" with the result of the addition of the current Vector4 and the given one.
  3905. * Returns the current Vector4.
  3906. */
  3907. Vector4.prototype.addToRef = function (otherVector, result) {
  3908. result.x = this.x + otherVector.x;
  3909. result.y = this.y + otherVector.y;
  3910. result.z = this.z + otherVector.z;
  3911. result.w = this.w + otherVector.w;
  3912. return this;
  3913. };
  3914. /**
  3915. * Subtract in place the given vector from the current Vector4.
  3916. * Returns the updated Vector4.
  3917. */
  3918. Vector4.prototype.subtractInPlace = function (otherVector) {
  3919. this.x -= otherVector.x;
  3920. this.y -= otherVector.y;
  3921. this.z -= otherVector.z;
  3922. this.w -= otherVector.w;
  3923. return this;
  3924. };
  3925. /**
  3926. * Returns a new Vector4 with the result of the subtraction of the given vector from the current Vector4.
  3927. */
  3928. Vector4.prototype.subtract = function (otherVector) {
  3929. return new Vector4(this.x - otherVector.x, this.y - otherVector.y, this.z - otherVector.z, this.w - otherVector.w);
  3930. };
  3931. /**
  3932. * Sets the given vector "result" with the result of the subtraction of the given vector from the current Vector4.
  3933. * Returns the current Vector4.
  3934. */
  3935. Vector4.prototype.subtractToRef = function (otherVector, result) {
  3936. result.x = this.x - otherVector.x;
  3937. result.y = this.y - otherVector.y;
  3938. result.z = this.z - otherVector.z;
  3939. result.w = this.w - otherVector.w;
  3940. return this;
  3941. };
  3942. /**
  3943. * Returns a new Vector4 set with the result of the subtraction of the given floats from the current Vector4 coordinates.
  3944. */
  3945. Vector4.prototype.subtractFromFloats = function (x, y, z, w) {
  3946. return new Vector4(this.x - x, this.y - y, this.z - z, this.w - w);
  3947. };
  3948. /**
  3949. * Sets the given vector "result" set with the result of the subtraction of the given floats from the current Vector4 coordinates.
  3950. * Returns the current Vector4.
  3951. */
  3952. Vector4.prototype.subtractFromFloatsToRef = function (x, y, z, w, result) {
  3953. result.x = this.x - x;
  3954. result.y = this.y - y;
  3955. result.z = this.z - z;
  3956. result.w = this.w - w;
  3957. return this;
  3958. };
  3959. /**
  3960. * Returns a new Vector4 set with the current Vector4 negated coordinates.
  3961. */
  3962. Vector4.prototype.negate = function () {
  3963. return new Vector4(-this.x, -this.y, -this.z, -this.w);
  3964. };
  3965. /**
  3966. * Multiplies the current Vector4 coordinates by scale (float).
  3967. * Returns the updated Vector4.
  3968. */
  3969. Vector4.prototype.scaleInPlace = function (scale) {
  3970. this.x *= scale;
  3971. this.y *= scale;
  3972. this.z *= scale;
  3973. this.w *= scale;
  3974. return this;
  3975. };
  3976. /**
  3977. * Returns a new Vector4 set with the current Vector4 coordinates multiplied by scale (float).
  3978. */
  3979. Vector4.prototype.scale = function (scale) {
  3980. return new Vector4(this.x * scale, this.y * scale, this.z * scale, this.w * scale);
  3981. };
  3982. /**
  3983. * Sets the given vector "result" with the current Vector4 coordinates multiplied by scale (float).
  3984. * Returns the current Vector4.
  3985. */
  3986. Vector4.prototype.scaleToRef = function (scale, result) {
  3987. result.x = this.x * scale;
  3988. result.y = this.y * scale;
  3989. result.z = this.z * scale;
  3990. result.w = this.w * scale;
  3991. return this;
  3992. };
  3993. /**
  3994. * Scale the current Vector4 values by a factor and add the result to a given Vector4
  3995. * @param scale defines the scale factor
  3996. * @param result defines the Vector4 object where to store the result
  3997. * @returns the unmodified current Vector4
  3998. */
  3999. Vector4.prototype.scaleAndAddToRef = function (scale, result) {
  4000. result.x += this.x * scale;
  4001. result.y += this.y * scale;
  4002. result.z += this.z * scale;
  4003. result.w += this.w * scale;
  4004. return this;
  4005. };
  4006. /**
  4007. * Boolean : True if the current Vector4 coordinates are stricly equal to the given ones.
  4008. */
  4009. Vector4.prototype.equals = function (otherVector) {
  4010. return otherVector && this.x === otherVector.x && this.y === otherVector.y && this.z === otherVector.z && this.w === otherVector.w;
  4011. };
  4012. /**
  4013. * Boolean : True if the current Vector4 coordinates are each beneath the distance "epsilon" from the given vector ones.
  4014. */
  4015. Vector4.prototype.equalsWithEpsilon = function (otherVector, epsilon) {
  4016. if (epsilon === void 0) { epsilon = BABYLON.Epsilon; }
  4017. return otherVector
  4018. && BABYLON.Scalar.WithinEpsilon(this.x, otherVector.x, epsilon)
  4019. && BABYLON.Scalar.WithinEpsilon(this.y, otherVector.y, epsilon)
  4020. && BABYLON.Scalar.WithinEpsilon(this.z, otherVector.z, epsilon)
  4021. && BABYLON.Scalar.WithinEpsilon(this.w, otherVector.w, epsilon);
  4022. };
  4023. /**
  4024. * Boolean : True if the given floats are strictly equal to the current Vector4 coordinates.
  4025. */
  4026. Vector4.prototype.equalsToFloats = function (x, y, z, w) {
  4027. return this.x === x && this.y === y && this.z === z && this.w === w;
  4028. };
  4029. /**
  4030. * Multiplies in place the current Vector4 by the given one.
  4031. * Returns the updated Vector4.
  4032. */
  4033. Vector4.prototype.multiplyInPlace = function (otherVector) {
  4034. this.x *= otherVector.x;
  4035. this.y *= otherVector.y;
  4036. this.z *= otherVector.z;
  4037. this.w *= otherVector.w;
  4038. return this;
  4039. };
  4040. /**
  4041. * Returns a new Vector4 set with the multiplication result of the current Vector4 and the given one.
  4042. */
  4043. Vector4.prototype.multiply = function (otherVector) {
  4044. return new Vector4(this.x * otherVector.x, this.y * otherVector.y, this.z * otherVector.z, this.w * otherVector.w);
  4045. };
  4046. /**
  4047. * Updates the given vector "result" with the multiplication result of the current Vector4 and the given one.
  4048. * Returns the current Vector4.
  4049. */
  4050. Vector4.prototype.multiplyToRef = function (otherVector, result) {
  4051. result.x = this.x * otherVector.x;
  4052. result.y = this.y * otherVector.y;
  4053. result.z = this.z * otherVector.z;
  4054. result.w = this.w * otherVector.w;
  4055. return this;
  4056. };
  4057. /**
  4058. * Returns a new Vector4 set with the multiplication result of the given floats and the current Vector4 coordinates.
  4059. */
  4060. Vector4.prototype.multiplyByFloats = function (x, y, z, w) {
  4061. return new Vector4(this.x * x, this.y * y, this.z * z, this.w * w);
  4062. };
  4063. /**
  4064. * Returns a new Vector4 set with the division result of the current Vector4 by the given one.
  4065. */
  4066. Vector4.prototype.divide = function (otherVector) {
  4067. return new Vector4(this.x / otherVector.x, this.y / otherVector.y, this.z / otherVector.z, this.w / otherVector.w);
  4068. };
  4069. /**
  4070. * Updates the given vector "result" with the division result of the current Vector4 by the given one.
  4071. * Returns the current Vector4.
  4072. */
  4073. Vector4.prototype.divideToRef = function (otherVector, result) {
  4074. result.x = this.x / otherVector.x;
  4075. result.y = this.y / otherVector.y;
  4076. result.z = this.z / otherVector.z;
  4077. result.w = this.w / otherVector.w;
  4078. return this;
  4079. };
  4080. /**
  4081. * Divides the current Vector3 coordinates by the given ones.
  4082. * @returns the updated Vector3.
  4083. */
  4084. Vector4.prototype.divideInPlace = function (otherVector) {
  4085. return this.divideToRef(otherVector, this);
  4086. };
  4087. /**
  4088. * Updates the Vector4 coordinates with the minimum values between its own and the given vector ones
  4089. * @param other defines the second operand
  4090. * @returns the current updated Vector4
  4091. */
  4092. Vector4.prototype.minimizeInPlace = function (other) {
  4093. if (other.x < this.x)
  4094. this.x = other.x;
  4095. if (other.y < this.y)
  4096. this.y = other.y;
  4097. if (other.z < this.z)
  4098. this.z = other.z;
  4099. if (other.w < this.w)
  4100. this.w = other.w;
  4101. return this;
  4102. };
  4103. /**
  4104. * Updates the Vector4 coordinates with the maximum values between its own and the given vector ones
  4105. * @param other defines the second operand
  4106. * @returns the current updated Vector4
  4107. */
  4108. Vector4.prototype.maximizeInPlace = function (other) {
  4109. if (other.x > this.x)
  4110. this.x = other.x;
  4111. if (other.y > this.y)
  4112. this.y = other.y;
  4113. if (other.z > this.z)
  4114. this.z = other.z;
  4115. if (other.w > this.w)
  4116. this.w = other.w;
  4117. return this;
  4118. };
  4119. /**
  4120. * Gets a new Vector4 from current Vector4 floored values
  4121. * @returns a new Vector4
  4122. */
  4123. Vector4.prototype.floor = function () {
  4124. return new Vector4(Math.floor(this.x), Math.floor(this.y), Math.floor(this.z), Math.floor(this.w));
  4125. };
  4126. /**
  4127. * Gets a new Vector4 from current Vector3 floored values
  4128. * @returns a new Vector4
  4129. */
  4130. Vector4.prototype.fract = function () {
  4131. return new Vector4(this.x - Math.floor(this.x), this.y - Math.floor(this.y), this.z - Math.floor(this.z), this.w - Math.floor(this.w));
  4132. };
  4133. // Properties
  4134. /**
  4135. * Returns the Vector4 length (float).
  4136. */
  4137. Vector4.prototype.length = function () {
  4138. return Math.sqrt(this.x * this.x + this.y * this.y + this.z * this.z + this.w * this.w);
  4139. };
  4140. /**
  4141. * Returns the Vector4 squared length (float).
  4142. */
  4143. Vector4.prototype.lengthSquared = function () {
  4144. return (this.x * this.x + this.y * this.y + this.z * this.z + this.w * this.w);
  4145. };
  4146. // Methods
  4147. /**
  4148. * Normalizes in place the Vector4.
  4149. * Returns the updated Vector4.
  4150. */
  4151. Vector4.prototype.normalize = function () {
  4152. var len = this.length();
  4153. if (len === 0)
  4154. return this;
  4155. var num = 1.0 / len;
  4156. this.x *= num;
  4157. this.y *= num;
  4158. this.z *= num;
  4159. this.w *= num;
  4160. return this;
  4161. };
  4162. /**
  4163. * Returns a new Vector3 from the Vector4 (x, y, z) coordinates.
  4164. */
  4165. Vector4.prototype.toVector3 = function () {
  4166. return new Vector3(this.x, this.y, this.z);
  4167. };
  4168. /**
  4169. * Returns a new Vector4 copied from the current one.
  4170. */
  4171. Vector4.prototype.clone = function () {
  4172. return new Vector4(this.x, this.y, this.z, this.w);
  4173. };
  4174. /**
  4175. * Updates the current Vector4 with the given one coordinates.
  4176. * Returns the updated Vector4.
  4177. */
  4178. Vector4.prototype.copyFrom = function (source) {
  4179. this.x = source.x;
  4180. this.y = source.y;
  4181. this.z = source.z;
  4182. this.w = source.w;
  4183. return this;
  4184. };
  4185. /**
  4186. * Updates the current Vector4 coordinates with the given floats.
  4187. * Returns the updated Vector4.
  4188. */
  4189. Vector4.prototype.copyFromFloats = function (x, y, z, w) {
  4190. this.x = x;
  4191. this.y = y;
  4192. this.z = z;
  4193. this.w = w;
  4194. return this;
  4195. };
  4196. /**
  4197. * Updates the current Vector4 coordinates with the given floats.
  4198. * Returns the updated Vector4.
  4199. */
  4200. Vector4.prototype.set = function (x, y, z, w) {
  4201. return this.copyFromFloats(x, y, z, w);
  4202. };
  4203. // Statics
  4204. /**
  4205. * Returns a new Vector4 set from the starting index of the given array.
  4206. */
  4207. Vector4.FromArray = function (array, offset) {
  4208. if (!offset) {
  4209. offset = 0;
  4210. }
  4211. return new Vector4(array[offset], array[offset + 1], array[offset + 2], array[offset + 3]);
  4212. };
  4213. /**
  4214. * Updates the given vector "result" from the starting index of the given array.
  4215. */
  4216. Vector4.FromArrayToRef = function (array, offset, result) {
  4217. result.x = array[offset];
  4218. result.y = array[offset + 1];
  4219. result.z = array[offset + 2];
  4220. result.w = array[offset + 3];
  4221. };
  4222. /**
  4223. * Updates the given vector "result" from the starting index of the given Float32Array.
  4224. */
  4225. Vector4.FromFloatArrayToRef = function (array, offset, result) {
  4226. Vector4.FromArrayToRef(array, offset, result);
  4227. };
  4228. /**
  4229. * Updates the given vector "result" coordinates from the given floats.
  4230. */
  4231. Vector4.FromFloatsToRef = function (x, y, z, w, result) {
  4232. result.x = x;
  4233. result.y = y;
  4234. result.z = z;
  4235. result.w = w;
  4236. };
  4237. /**
  4238. * Returns a new Vector4 set to (0.0, 0.0, 0.0, 0.0)
  4239. */
  4240. Vector4.Zero = function () {
  4241. return new Vector4(0.0, 0.0, 0.0, 0.0);
  4242. };
  4243. /**
  4244. * Returns a new Vector4 set to (1.0, 1.0, 1.0, 1.0)
  4245. */
  4246. Vector4.One = function () {
  4247. return new Vector4(1.0, 1.0, 1.0, 1.0);
  4248. };
  4249. /**
  4250. * Returns a new normalized Vector4 from the given one.
  4251. */
  4252. Vector4.Normalize = function (vector) {
  4253. var result = Vector4.Zero();
  4254. Vector4.NormalizeToRef(vector, result);
  4255. return result;
  4256. };
  4257. /**
  4258. * Updates the given vector "result" from the normalization of the given one.
  4259. */
  4260. Vector4.NormalizeToRef = function (vector, result) {
  4261. result.copyFrom(vector);
  4262. result.normalize();
  4263. };
  4264. Vector4.Minimize = function (left, right) {
  4265. var min = left.clone();
  4266. min.minimizeInPlace(right);
  4267. return min;
  4268. };
  4269. Vector4.Maximize = function (left, right) {
  4270. var max = left.clone();
  4271. max.maximizeInPlace(right);
  4272. return max;
  4273. };
  4274. /**
  4275. * Returns the distance (float) between the vectors "value1" and "value2".
  4276. */
  4277. Vector4.Distance = function (value1, value2) {
  4278. return Math.sqrt(Vector4.DistanceSquared(value1, value2));
  4279. };
  4280. /**
  4281. * Returns the squared distance (float) between the vectors "value1" and "value2".
  4282. */
  4283. Vector4.DistanceSquared = function (value1, value2) {
  4284. var x = value1.x - value2.x;
  4285. var y = value1.y - value2.y;
  4286. var z = value1.z - value2.z;
  4287. var w = value1.w - value2.w;
  4288. return (x * x) + (y * y) + (z * z) + (w * w);
  4289. };
  4290. /**
  4291. * Returns a new Vector4 located at the center between the vectors "value1" and "value2".
  4292. */
  4293. Vector4.Center = function (value1, value2) {
  4294. var center = value1.add(value2);
  4295. center.scaleInPlace(0.5);
  4296. return center;
  4297. };
  4298. /**
  4299. * Returns a new Vector4 set with the result of the normal transformation by the given matrix of the given vector.
  4300. * This methods computes transformed normalized direction vectors only.
  4301. */
  4302. Vector4.TransformNormal = function (vector, transformation) {
  4303. var result = Vector4.Zero();
  4304. Vector4.TransformNormalToRef(vector, transformation, result);
  4305. return result;
  4306. };
  4307. /**
  4308. * Sets the given vector "result" with the result of the normal transformation by the given matrix of the given vector.
  4309. * This methods computes transformed normalized direction vectors only.
  4310. */
  4311. Vector4.TransformNormalToRef = function (vector, transformation, result) {
  4312. var x = (vector.x * transformation.m[0]) + (vector.y * transformation.m[4]) + (vector.z * transformation.m[8]);
  4313. var y = (vector.x * transformation.m[1]) + (vector.y * transformation.m[5]) + (vector.z * transformation.m[9]);
  4314. var z = (vector.x * transformation.m[2]) + (vector.y * transformation.m[6]) + (vector.z * transformation.m[10]);
  4315. result.x = x;
  4316. result.y = y;
  4317. result.z = z;
  4318. result.w = vector.w;
  4319. };
  4320. /**
  4321. * Sets the given vector "result" with the result of the normal transformation by the given matrix of the given floats (x, y, z, w).
  4322. * This methods computes transformed normalized direction vectors only.
  4323. */
  4324. Vector4.TransformNormalFromFloatsToRef = function (x, y, z, w, transformation, result) {
  4325. result.x = (x * transformation.m[0]) + (y * transformation.m[4]) + (z * transformation.m[8]);
  4326. result.y = (x * transformation.m[1]) + (y * transformation.m[5]) + (z * transformation.m[9]);
  4327. result.z = (x * transformation.m[2]) + (y * transformation.m[6]) + (z * transformation.m[10]);
  4328. result.w = w;
  4329. };
  4330. return Vector4;
  4331. }());
  4332. BABYLON.Vector4 = Vector4;
  4333. var Size = /** @class */ (function () {
  4334. /**
  4335. * Creates a Size object from the given width and height (floats).
  4336. */
  4337. function Size(width, height) {
  4338. this.width = width;
  4339. this.height = height;
  4340. }
  4341. // Returns a string with the Size width and height.
  4342. Size.prototype.toString = function () {
  4343. return "{W: " + this.width + ", H: " + this.height + "}";
  4344. };
  4345. /**
  4346. * Returns the string "Size"
  4347. */
  4348. Size.prototype.getClassName = function () {
  4349. return "Size";
  4350. };
  4351. /**
  4352. * Returns the Size hash code.
  4353. */
  4354. Size.prototype.getHashCode = function () {
  4355. var hash = this.width || 0;
  4356. hash = (hash * 397) ^ (this.height || 0);
  4357. return hash;
  4358. };
  4359. /**
  4360. * Updates the current size from the given one.
  4361. * Returns the updated Size.
  4362. */
  4363. Size.prototype.copyFrom = function (src) {
  4364. this.width = src.width;
  4365. this.height = src.height;
  4366. };
  4367. /**
  4368. * Updates in place the current Size from the given floats.
  4369. * Returns the updated Size.
  4370. */
  4371. Size.prototype.copyFromFloats = function (width, height) {
  4372. this.width = width;
  4373. this.height = height;
  4374. return this;
  4375. };
  4376. /**
  4377. * Updates in place the current Size from the given floats.
  4378. * Returns the updated Size.
  4379. */
  4380. Size.prototype.set = function (width, height) {
  4381. return this.copyFromFloats(width, height);
  4382. };
  4383. /**
  4384. * Returns a new Size set with the multiplication result of the current Size and the given floats.
  4385. */
  4386. Size.prototype.multiplyByFloats = function (w, h) {
  4387. return new Size(this.width * w, this.height * h);
  4388. };
  4389. /**
  4390. * Returns a new Size copied from the given one.
  4391. */
  4392. Size.prototype.clone = function () {
  4393. return new Size(this.width, this.height);
  4394. };
  4395. /**
  4396. * Boolean : True if the current Size and the given one width and height are strictly equal.
  4397. */
  4398. Size.prototype.equals = function (other) {
  4399. if (!other) {
  4400. return false;
  4401. }
  4402. return (this.width === other.width) && (this.height === other.height);
  4403. };
  4404. Object.defineProperty(Size.prototype, "surface", {
  4405. /**
  4406. * Returns the surface of the Size : width * height (float).
  4407. */
  4408. get: function () {
  4409. return this.width * this.height;
  4410. },
  4411. enumerable: true,
  4412. configurable: true
  4413. });
  4414. /**
  4415. * Returns a new Size set to (0.0, 0.0)
  4416. */
  4417. Size.Zero = function () {
  4418. return new Size(0.0, 0.0);
  4419. };
  4420. /**
  4421. * Returns a new Size set as the addition result of the current Size and the given one.
  4422. */
  4423. Size.prototype.add = function (otherSize) {
  4424. var r = new Size(this.width + otherSize.width, this.height + otherSize.height);
  4425. return r;
  4426. };
  4427. /**
  4428. * Returns a new Size set as the subtraction result of the given one from the current Size.
  4429. */
  4430. Size.prototype.subtract = function (otherSize) {
  4431. var r = new Size(this.width - otherSize.width, this.height - otherSize.height);
  4432. return r;
  4433. };
  4434. /**
  4435. * Returns a new Size set at the linear interpolation "amount" between "start" and "end".
  4436. */
  4437. Size.Lerp = function (start, end, amount) {
  4438. var w = start.width + ((end.width - start.width) * amount);
  4439. var h = start.height + ((end.height - start.height) * amount);
  4440. return new Size(w, h);
  4441. };
  4442. return Size;
  4443. }());
  4444. BABYLON.Size = Size;
  4445. /**
  4446. * Class used to store quaternion data
  4447. * @see https://en.wikipedia.org/wiki/Quaternion
  4448. * @see http://doc.babylonjs.com/features/position,_rotation,_scaling
  4449. */
  4450. var Quaternion = /** @class */ (function () {
  4451. /**
  4452. * Creates a new Quaternion from the given floats
  4453. * @param x defines the first component (0 by default)
  4454. * @param y defines the second component (0 by default)
  4455. * @param z defines the third component (0 by default)
  4456. * @param w defines the fourth component (1.0 by default)
  4457. */
  4458. function Quaternion(
  4459. /** defines the first component (0 by default) */
  4460. x,
  4461. /** defines the second component (0 by default) */
  4462. y,
  4463. /** defines the third component (0 by default) */
  4464. z,
  4465. /** defines the fourth component (1.0 by default) */
  4466. w) {
  4467. if (x === void 0) { x = 0.0; }
  4468. if (y === void 0) { y = 0.0; }
  4469. if (z === void 0) { z = 0.0; }
  4470. if (w === void 0) { w = 1.0; }
  4471. this.x = x;
  4472. this.y = y;
  4473. this.z = z;
  4474. this.w = w;
  4475. }
  4476. /**
  4477. * Gets a string representation for the current quaternion
  4478. * @returns a string with the Quaternion coordinates
  4479. */
  4480. Quaternion.prototype.toString = function () {
  4481. return "{X: " + this.x + " Y:" + this.y + " Z:" + this.z + " W:" + this.w + "}";
  4482. };
  4483. /**
  4484. * Gets the class name of the quaternion
  4485. * @returns the string "Quaternion"
  4486. */
  4487. Quaternion.prototype.getClassName = function () {
  4488. return "Quaternion";
  4489. };
  4490. /**
  4491. * Gets a hash code for this quaternion
  4492. * @returns the quaternion hash code
  4493. */
  4494. Quaternion.prototype.getHashCode = function () {
  4495. var hash = this.x || 0;
  4496. hash = (hash * 397) ^ (this.y || 0);
  4497. hash = (hash * 397) ^ (this.z || 0);
  4498. hash = (hash * 397) ^ (this.w || 0);
  4499. return hash;
  4500. };
  4501. /**
  4502. * Copy the quaternion to an array
  4503. * @returns a new array populated with 4 elements from the quaternion coordinates
  4504. */
  4505. Quaternion.prototype.asArray = function () {
  4506. return [this.x, this.y, this.z, this.w];
  4507. };
  4508. /**
  4509. * Check if two quaternions are equals
  4510. * @param otherQuaternion defines the second operand
  4511. * @return true if the current quaternion and the given one coordinates are strictly equals
  4512. */
  4513. Quaternion.prototype.equals = function (otherQuaternion) {
  4514. return otherQuaternion && this.x === otherQuaternion.x && this.y === otherQuaternion.y && this.z === otherQuaternion.z && this.w === otherQuaternion.w;
  4515. };
  4516. /**
  4517. * Clone the current quaternion
  4518. * @returns a new quaternion copied from the current one
  4519. */
  4520. Quaternion.prototype.clone = function () {
  4521. return new Quaternion(this.x, this.y, this.z, this.w);
  4522. };
  4523. /**
  4524. * Copy a quaternion to the current one
  4525. * @param other defines the other quaternion
  4526. * @returns the updated current quaternion
  4527. */
  4528. Quaternion.prototype.copyFrom = function (other) {
  4529. this.x = other.x;
  4530. this.y = other.y;
  4531. this.z = other.z;
  4532. this.w = other.w;
  4533. return this;
  4534. };
  4535. /**
  4536. * Updates the current quaternion with the given float coordinates
  4537. * @param x defines the x coordinate
  4538. * @param y defines the y coordinate
  4539. * @param z defines the z coordinate
  4540. * @param w defines the w coordinate
  4541. * @returns the updated current quaternion
  4542. */
  4543. Quaternion.prototype.copyFromFloats = function (x, y, z, w) {
  4544. this.x = x;
  4545. this.y = y;
  4546. this.z = z;
  4547. this.w = w;
  4548. return this;
  4549. };
  4550. /**
  4551. * Updates the current quaternion from the given float coordinates
  4552. * @param x defines the x coordinate
  4553. * @param y defines the y coordinate
  4554. * @param z defines the z coordinate
  4555. * @param w defines the w coordinate
  4556. * @returns the updated current quaternion
  4557. */
  4558. Quaternion.prototype.set = function (x, y, z, w) {
  4559. return this.copyFromFloats(x, y, z, w);
  4560. };
  4561. /**
  4562. * Adds two quaternions
  4563. * @param other defines the second operand
  4564. * @returns a new quaternion as the addition result of the given one and the current quaternion
  4565. */
  4566. Quaternion.prototype.add = function (other) {
  4567. return new Quaternion(this.x + other.x, this.y + other.y, this.z + other.z, this.w + other.w);
  4568. };
  4569. /**
  4570. * Add a quaternion to the current one
  4571. * @param other defines the quaternion to add
  4572. * @returns the current quaternion
  4573. */
  4574. Quaternion.prototype.addInPlace = function (other) {
  4575. this.x += other.x;
  4576. this.y += other.y;
  4577. this.z += other.z;
  4578. this.w += other.w;
  4579. return this;
  4580. };
  4581. /**
  4582. * Subtract two quaternions
  4583. * @param other defines the second operand
  4584. * @returns a new quaternion as the subtraction result of the given one from the current one
  4585. */
  4586. Quaternion.prototype.subtract = function (other) {
  4587. return new Quaternion(this.x - other.x, this.y - other.y, this.z - other.z, this.w - other.w);
  4588. };
  4589. /**
  4590. * Multiplies the current quaternion by a scale factor
  4591. * @param value defines the scale factor
  4592. * @returns a new quaternion set by multiplying the current quaternion coordinates by the float "scale"
  4593. */
  4594. Quaternion.prototype.scale = function (value) {
  4595. return new Quaternion(this.x * value, this.y * value, this.z * value, this.w * value);
  4596. };
  4597. /**
  4598. * Scale the current quaternion values by a factor and stores the result to a given quaternion
  4599. * @param scale defines the scale factor
  4600. * @param result defines the Quaternion object where to store the result
  4601. * @returns the unmodified current quaternion
  4602. */
  4603. Quaternion.prototype.scaleToRef = function (scale, result) {
  4604. result.x = this.x * scale;
  4605. result.y = this.y * scale;
  4606. result.z = this.z * scale;
  4607. result.w = this.w * scale;
  4608. return this;
  4609. };
  4610. /**
  4611. * Multiplies in place the current quaternion by a scale factor
  4612. * @param value defines the scale factor
  4613. * @returns the current modified quaternion
  4614. */
  4615. Quaternion.prototype.scaleInPlace = function (value) {
  4616. this.x *= value;
  4617. this.y *= value;
  4618. this.z *= value;
  4619. this.w *= value;
  4620. return this;
  4621. };
  4622. /**
  4623. * Scale the current quaternion values by a factor and add the result to a given quaternion
  4624. * @param scale defines the scale factor
  4625. * @param result defines the Quaternion object where to store the result
  4626. * @returns the unmodified current quaternion
  4627. */
  4628. Quaternion.prototype.scaleAndAddToRef = function (scale, result) {
  4629. result.x += this.x * scale;
  4630. result.y += this.y * scale;
  4631. result.z += this.z * scale;
  4632. result.w += this.w * scale;
  4633. return this;
  4634. };
  4635. /**
  4636. * Multiplies two quaternions
  4637. * @param q1 defines the second operand
  4638. * @returns a new quaternion set as the multiplication result of the current one with the given one "q1"
  4639. */
  4640. Quaternion.prototype.multiply = function (q1) {
  4641. var result = new Quaternion(0, 0, 0, 1.0);
  4642. this.multiplyToRef(q1, result);
  4643. return result;
  4644. };
  4645. /**
  4646. * Sets the given "result" as the the multiplication result of the current one with the given one "q1"
  4647. * @param q1 defines the second operand
  4648. * @param result defines the target quaternion
  4649. * @returns the current quaternion
  4650. */
  4651. Quaternion.prototype.multiplyToRef = function (q1, result) {
  4652. var x = this.x * q1.w + this.y * q1.z - this.z * q1.y + this.w * q1.x;
  4653. var y = -this.x * q1.z + this.y * q1.w + this.z * q1.x + this.w * q1.y;
  4654. var z = this.x * q1.y - this.y * q1.x + this.z * q1.w + this.w * q1.z;
  4655. var w = -this.x * q1.x - this.y * q1.y - this.z * q1.z + this.w * q1.w;
  4656. result.copyFromFloats(x, y, z, w);
  4657. return this;
  4658. };
  4659. /**
  4660. * Updates the current quaternion with the multiplication of itself with the given one "q1"
  4661. * @param q1 defines the second operand
  4662. * @returns the currentupdated quaternion
  4663. */
  4664. Quaternion.prototype.multiplyInPlace = function (q1) {
  4665. this.multiplyToRef(q1, this);
  4666. return this;
  4667. };
  4668. /**
  4669. * Conjugates (1-q) the current quaternion and stores the result in the given quaternion
  4670. * @param ref defines the target quaternion
  4671. * @returns the current quaternion
  4672. */
  4673. Quaternion.prototype.conjugateToRef = function (ref) {
  4674. ref.copyFromFloats(-this.x, -this.y, -this.z, this.w);
  4675. return this;
  4676. };
  4677. /**
  4678. * Conjugates in place (1-q) the current quaternion
  4679. * @returns the current updated quaternion
  4680. */
  4681. Quaternion.prototype.conjugateInPlace = function () {
  4682. this.x *= -1;
  4683. this.y *= -1;
  4684. this.z *= -1;
  4685. return this;
  4686. };
  4687. /**
  4688. * Conjugates in place (1-q) the current quaternion
  4689. * @returns a new quaternion
  4690. */
  4691. Quaternion.prototype.conjugate = function () {
  4692. var result = new Quaternion(-this.x, -this.y, -this.z, this.w);
  4693. return result;
  4694. };
  4695. /**
  4696. * Gets length of current quaternion
  4697. * @returns the quaternion length (float)
  4698. */
  4699. Quaternion.prototype.length = function () {
  4700. return Math.sqrt((this.x * this.x) + (this.y * this.y) + (this.z * this.z) + (this.w * this.w));
  4701. };
  4702. /**
  4703. * Normalize in place the current quaternion
  4704. * @returns the current updated quaternion
  4705. */
  4706. Quaternion.prototype.normalize = function () {
  4707. var length = 1.0 / this.length();
  4708. this.x *= length;
  4709. this.y *= length;
  4710. this.z *= length;
  4711. this.w *= length;
  4712. return this;
  4713. };
  4714. /**
  4715. * Returns a new Vector3 set with the Euler angles translated from the current quaternion
  4716. * @param order is a reserved parameter and is ignore for now
  4717. * @returns a new Vector3 containing the Euler angles
  4718. */
  4719. Quaternion.prototype.toEulerAngles = function (order) {
  4720. if (order === void 0) { order = "YZX"; }
  4721. var result = Vector3.Zero();
  4722. this.toEulerAnglesToRef(result, order);
  4723. return result;
  4724. };
  4725. /**
  4726. * Sets the given vector3 "result" with the Euler angles translated from the current quaternion
  4727. * @param result defines the vector which will be filled with the Euler angles
  4728. * @param order is a reserved parameter and is ignore for now
  4729. * @returns the current unchanged quaternion
  4730. */
  4731. Quaternion.prototype.toEulerAnglesToRef = function (result, order) {
  4732. if (order === void 0) { order = "YZX"; }
  4733. var qz = this.z;
  4734. var qx = this.x;
  4735. var qy = this.y;
  4736. var qw = this.w;
  4737. var sqw = qw * qw;
  4738. var sqz = qz * qz;
  4739. var sqx = qx * qx;
  4740. var sqy = qy * qy;
  4741. var zAxisY = qy * qz - qx * qw;
  4742. var limit = .4999999;
  4743. if (zAxisY < -limit) {
  4744. result.y = 2 * Math.atan2(qy, qw);
  4745. result.x = Math.PI / 2;
  4746. result.z = 0;
  4747. }
  4748. else if (zAxisY > limit) {
  4749. result.y = 2 * Math.atan2(qy, qw);
  4750. result.x = -Math.PI / 2;
  4751. result.z = 0;
  4752. }
  4753. else {
  4754. result.z = Math.atan2(2.0 * (qx * qy + qz * qw), (-sqz - sqx + sqy + sqw));
  4755. result.x = Math.asin(-2.0 * (qz * qy - qx * qw));
  4756. result.y = Math.atan2(2.0 * (qz * qx + qy * qw), (sqz - sqx - sqy + sqw));
  4757. }
  4758. return this;
  4759. };
  4760. /**
  4761. * Updates the given rotation matrix with the current quaternion values
  4762. * @param result defines the target matrix
  4763. * @returns the current unchanged quaternion
  4764. */
  4765. Quaternion.prototype.toRotationMatrix = function (result) {
  4766. var xx = this.x * this.x;
  4767. var yy = this.y * this.y;
  4768. var zz = this.z * this.z;
  4769. var xy = this.x * this.y;
  4770. var zw = this.z * this.w;
  4771. var zx = this.z * this.x;
  4772. var yw = this.y * this.w;
  4773. var yz = this.y * this.z;
  4774. var xw = this.x * this.w;
  4775. result.m[0] = 1.0 - (2.0 * (yy + zz));
  4776. result.m[1] = 2.0 * (xy + zw);
  4777. result.m[2] = 2.0 * (zx - yw);
  4778. result.m[3] = 0;
  4779. result.m[4] = 2.0 * (xy - zw);
  4780. result.m[5] = 1.0 - (2.0 * (zz + xx));
  4781. result.m[6] = 2.0 * (yz + xw);
  4782. result.m[7] = 0;
  4783. result.m[8] = 2.0 * (zx + yw);
  4784. result.m[9] = 2.0 * (yz - xw);
  4785. result.m[10] = 1.0 - (2.0 * (yy + xx));
  4786. result.m[11] = 0;
  4787. result.m[12] = 0;
  4788. result.m[13] = 0;
  4789. result.m[14] = 0;
  4790. result.m[15] = 1.0;
  4791. result._markAsUpdated();
  4792. return this;
  4793. };
  4794. /**
  4795. * Updates the current quaternion from the given rotation matrix values
  4796. * @param matrix defines the source matrix
  4797. * @returns the current updated quaternion
  4798. */
  4799. Quaternion.prototype.fromRotationMatrix = function (matrix) {
  4800. Quaternion.FromRotationMatrixToRef(matrix, this);
  4801. return this;
  4802. };
  4803. // Statics
  4804. /**
  4805. * Creates a new quaternion from a rotation matrix
  4806. * @param matrix defines the source matrix
  4807. * @returns a new quaternion created from the given rotation matrix values
  4808. */
  4809. Quaternion.FromRotationMatrix = function (matrix) {
  4810. var result = new Quaternion();
  4811. Quaternion.FromRotationMatrixToRef(matrix, result);
  4812. return result;
  4813. };
  4814. /**
  4815. * Updates the given quaternion with the given rotation matrix values
  4816. * @param matrix defines the source matrix
  4817. * @param result defines the target quaternion
  4818. */
  4819. Quaternion.FromRotationMatrixToRef = function (matrix, result) {
  4820. var data = matrix.m;
  4821. var m11 = data[0], m12 = data[4], m13 = data[8];
  4822. var m21 = data[1], m22 = data[5], m23 = data[9];
  4823. var m31 = data[2], m32 = data[6], m33 = data[10];
  4824. var trace = m11 + m22 + m33;
  4825. var s;
  4826. if (trace > 0) {
  4827. s = 0.5 / Math.sqrt(trace + 1.0);
  4828. result.w = 0.25 / s;
  4829. result.x = (m32 - m23) * s;
  4830. result.y = (m13 - m31) * s;
  4831. result.z = (m21 - m12) * s;
  4832. }
  4833. else if (m11 > m22 && m11 > m33) {
  4834. s = 2.0 * Math.sqrt(1.0 + m11 - m22 - m33);
  4835. result.w = (m32 - m23) / s;
  4836. result.x = 0.25 * s;
  4837. result.y = (m12 + m21) / s;
  4838. result.z = (m13 + m31) / s;
  4839. }
  4840. else if (m22 > m33) {
  4841. s = 2.0 * Math.sqrt(1.0 + m22 - m11 - m33);
  4842. result.w = (m13 - m31) / s;
  4843. result.x = (m12 + m21) / s;
  4844. result.y = 0.25 * s;
  4845. result.z = (m23 + m32) / s;
  4846. }
  4847. else {
  4848. s = 2.0 * Math.sqrt(1.0 + m33 - m11 - m22);
  4849. result.w = (m21 - m12) / s;
  4850. result.x = (m13 + m31) / s;
  4851. result.y = (m23 + m32) / s;
  4852. result.z = 0.25 * s;
  4853. }
  4854. };
  4855. /**
  4856. * Returns the dot product (float) between the quaternions "left" and "right"
  4857. * @param left defines the left operand
  4858. * @param right defines the right operand
  4859. * @returns the dot product
  4860. */
  4861. Quaternion.Dot = function (left, right) {
  4862. return (left.x * right.x + left.y * right.y + left.z * right.z + left.w * right.w);
  4863. };
  4864. /**
  4865. * Checks if the two quaternions are close to each other
  4866. * @param quat0 defines the first quaternion to check
  4867. * @param quat1 defines the second quaternion to check
  4868. * @returns true if the two quaternions are close to each other
  4869. */
  4870. Quaternion.AreClose = function (quat0, quat1) {
  4871. var dot = Quaternion.Dot(quat0, quat1);
  4872. return dot >= 0;
  4873. };
  4874. /**
  4875. * Creates an empty quaternion
  4876. * @returns a new quaternion set to (0.0, 0.0, 0.0)
  4877. */
  4878. Quaternion.Zero = function () {
  4879. return new Quaternion(0.0, 0.0, 0.0, 0.0);
  4880. };
  4881. /**
  4882. * Inverse a given quaternion
  4883. * @param q defines the source quaternion
  4884. * @returns a new quaternion as the inverted current quaternion
  4885. */
  4886. Quaternion.Inverse = function (q) {
  4887. return new Quaternion(-q.x, -q.y, -q.z, q.w);
  4888. };
  4889. /**
  4890. * Creates an identity quaternion
  4891. * @returns the identity quaternion
  4892. */
  4893. Quaternion.Identity = function () {
  4894. return new Quaternion(0.0, 0.0, 0.0, 1.0);
  4895. };
  4896. /**
  4897. * Gets a boolean indicating if the given quaternion is identity
  4898. * @param quaternion defines the quaternion to check
  4899. * @returns true if the quaternion is identity
  4900. */
  4901. Quaternion.IsIdentity = function (quaternion) {
  4902. return quaternion && quaternion.x === 0 && quaternion.y === 0 && quaternion.z === 0 && quaternion.w === 1;
  4903. };
  4904. /**
  4905. * Creates a quaternion from a rotation around an axis
  4906. * @param axis defines the axis to use
  4907. * @param angle defines the angle to use
  4908. * @returns a new quaternion created from the given axis (Vector3) and angle in radians (float)
  4909. */
  4910. Quaternion.RotationAxis = function (axis, angle) {
  4911. return Quaternion.RotationAxisToRef(axis, angle, new Quaternion());
  4912. };
  4913. /**
  4914. * Creates a rotation around an axis and stores it into the given quaternion
  4915. * @param axis defines the axis to use
  4916. * @param angle defines the angle to use
  4917. * @param result defines the target quaternion
  4918. * @returns the target quaternion
  4919. */
  4920. Quaternion.RotationAxisToRef = function (axis, angle, result) {
  4921. var sin = Math.sin(angle / 2);
  4922. axis.normalize();
  4923. result.w = Math.cos(angle / 2);
  4924. result.x = axis.x * sin;
  4925. result.y = axis.y * sin;
  4926. result.z = axis.z * sin;
  4927. return result;
  4928. };
  4929. /**
  4930. * Creates a new quaternion from data stored into an array
  4931. * @param array defines the data source
  4932. * @param offset defines the offset in the source array where the data starts
  4933. * @returns a new quaternion
  4934. */
  4935. Quaternion.FromArray = function (array, offset) {
  4936. if (!offset) {
  4937. offset = 0;
  4938. }
  4939. return new Quaternion(array[offset], array[offset + 1], array[offset + 2], array[offset + 3]);
  4940. };
  4941. /**
  4942. * Creates a new quaternion from the given Euler float angles (y, x, z)
  4943. * @param yaw defines the rotation around Y axis
  4944. * @param pitch defines the rotation around X axis
  4945. * @param roll defines the rotation around Z axis
  4946. * @returns the new quaternion
  4947. */
  4948. Quaternion.RotationYawPitchRoll = function (yaw, pitch, roll) {
  4949. var q = new Quaternion();
  4950. Quaternion.RotationYawPitchRollToRef(yaw, pitch, roll, q);
  4951. return q;
  4952. };
  4953. /**
  4954. * Creates a new rotation from the given Euler float angles (y, x, z) and stores it in the target quaternion
  4955. * @param yaw defines the rotation around Y axis
  4956. * @param pitch defines the rotation around X axis
  4957. * @param roll defines the rotation around Z axis
  4958. * @param result defines the target quaternion
  4959. */
  4960. Quaternion.RotationYawPitchRollToRef = function (yaw, pitch, roll, result) {
  4961. // Produces a quaternion from Euler angles in the z-y-x orientation (Tait-Bryan angles)
  4962. var halfRoll = roll * 0.5;
  4963. var halfPitch = pitch * 0.5;
  4964. var halfYaw = yaw * 0.5;
  4965. var sinRoll = Math.sin(halfRoll);
  4966. var cosRoll = Math.cos(halfRoll);
  4967. var sinPitch = Math.sin(halfPitch);
  4968. var cosPitch = Math.cos(halfPitch);
  4969. var sinYaw = Math.sin(halfYaw);
  4970. var cosYaw = Math.cos(halfYaw);
  4971. result.x = (cosYaw * sinPitch * cosRoll) + (sinYaw * cosPitch * sinRoll);
  4972. result.y = (sinYaw * cosPitch * cosRoll) - (cosYaw * sinPitch * sinRoll);
  4973. result.z = (cosYaw * cosPitch * sinRoll) - (sinYaw * sinPitch * cosRoll);
  4974. result.w = (cosYaw * cosPitch * cosRoll) + (sinYaw * sinPitch * sinRoll);
  4975. };
  4976. /**
  4977. * Creates a new quaternion from the given Euler float angles expressed in z-x-z orientation
  4978. * @param alpha defines the rotation around first axis
  4979. * @param beta defines the rotation around second axis
  4980. * @param gamma defines the rotation around third axis
  4981. * @returns the new quaternion
  4982. */
  4983. Quaternion.RotationAlphaBetaGamma = function (alpha, beta, gamma) {
  4984. var result = new Quaternion();
  4985. Quaternion.RotationAlphaBetaGammaToRef(alpha, beta, gamma, result);
  4986. return result;
  4987. };
  4988. /**
  4989. * Creates a new quaternion from the given Euler float angles expressed in z-x-z orientation and stores it in the target quaternion
  4990. * @param alpha defines the rotation around first axis
  4991. * @param beta defines the rotation around second axis
  4992. * @param gamma defines the rotation around third axis
  4993. * @param result defines the target quaternion
  4994. */
  4995. Quaternion.RotationAlphaBetaGammaToRef = function (alpha, beta, gamma, result) {
  4996. // Produces a quaternion from Euler angles in the z-x-z orientation
  4997. var halfGammaPlusAlpha = (gamma + alpha) * 0.5;
  4998. var halfGammaMinusAlpha = (gamma - alpha) * 0.5;
  4999. var halfBeta = beta * 0.5;
  5000. result.x = Math.cos(halfGammaMinusAlpha) * Math.sin(halfBeta);
  5001. result.y = Math.sin(halfGammaMinusAlpha) * Math.sin(halfBeta);
  5002. result.z = Math.sin(halfGammaPlusAlpha) * Math.cos(halfBeta);
  5003. result.w = Math.cos(halfGammaPlusAlpha) * Math.cos(halfBeta);
  5004. };
  5005. /**
  5006. * Creates a new quaternion containing the rotation value to reach the target (axis1, axis2, axis3) orientation as a rotated XYZ system (axis1, axis2 and axis3 are normalized during this operation)
  5007. * @param axis1 defines the first axis
  5008. * @param axis2 defines the second axis
  5009. * @param axis3 defines the third axis
  5010. * @returns the new quaternion
  5011. */
  5012. Quaternion.RotationQuaternionFromAxis = function (axis1, axis2, axis3) {
  5013. var quat = new Quaternion(0.0, 0.0, 0.0, 0.0);
  5014. Quaternion.RotationQuaternionFromAxisToRef(axis1, axis2, axis3, quat);
  5015. return quat;
  5016. };
  5017. /**
  5018. * Creates a rotation value to reach the target (axis1, axis2, axis3) orientation as a rotated XYZ system (axis1, axis2 and axis3 are normalized during this operation) and stores it in the target quaternion
  5019. * @param axis1 defines the first axis
  5020. * @param axis2 defines the second axis
  5021. * @param axis3 defines the third axis
  5022. * @param ref defines the target quaternion
  5023. */
  5024. Quaternion.RotationQuaternionFromAxisToRef = function (axis1, axis2, axis3, ref) {
  5025. var rotMat = MathTmp.Matrix[0];
  5026. Matrix.FromXYZAxesToRef(axis1.normalize(), axis2.normalize(), axis3.normalize(), rotMat);
  5027. Quaternion.FromRotationMatrixToRef(rotMat, ref);
  5028. };
  5029. /**
  5030. * Interpolates between two quaternions
  5031. * @param left defines first quaternion
  5032. * @param right defines second quaternion
  5033. * @param amount defines the gradient to use
  5034. * @returns the new interpolated quaternion
  5035. */
  5036. Quaternion.Slerp = function (left, right, amount) {
  5037. var result = Quaternion.Identity();
  5038. Quaternion.SlerpToRef(left, right, amount, result);
  5039. return result;
  5040. };
  5041. /**
  5042. * Interpolates between two quaternions and stores it into a target quaternion
  5043. * @param left defines first quaternion
  5044. * @param right defines second quaternion
  5045. * @param amount defines the gradient to use
  5046. * @param result defines the target quaternion
  5047. */
  5048. Quaternion.SlerpToRef = function (left, right, amount, result) {
  5049. var num2;
  5050. var num3;
  5051. var num4 = (((left.x * right.x) + (left.y * right.y)) + (left.z * right.z)) + (left.w * right.w);
  5052. var flag = false;
  5053. if (num4 < 0) {
  5054. flag = true;
  5055. num4 = -num4;
  5056. }
  5057. if (num4 > 0.999999) {
  5058. num3 = 1 - amount;
  5059. num2 = flag ? -amount : amount;
  5060. }
  5061. else {
  5062. var num5 = Math.acos(num4);
  5063. var num6 = (1.0 / Math.sin(num5));
  5064. num3 = (Math.sin((1.0 - amount) * num5)) * num6;
  5065. num2 = flag ? ((-Math.sin(amount * num5)) * num6) : ((Math.sin(amount * num5)) * num6);
  5066. }
  5067. result.x = (num3 * left.x) + (num2 * right.x);
  5068. result.y = (num3 * left.y) + (num2 * right.y);
  5069. result.z = (num3 * left.z) + (num2 * right.z);
  5070. result.w = (num3 * left.w) + (num2 * right.w);
  5071. };
  5072. /**
  5073. * Interpolate between two quaternions using Hermite interpolation
  5074. * @param value1 defines first quaternion
  5075. * @param tangent1 defines the incoming tangent
  5076. * @param value2 defines second quaternion
  5077. * @param tangent2 defines the outgoing tangent
  5078. * @param amount defines the target quaternion
  5079. * @returns the new interpolated quaternion
  5080. */
  5081. Quaternion.Hermite = function (value1, tangent1, value2, tangent2, amount) {
  5082. var squared = amount * amount;
  5083. var cubed = amount * squared;
  5084. var part1 = ((2.0 * cubed) - (3.0 * squared)) + 1.0;
  5085. var part2 = (-2.0 * cubed) + (3.0 * squared);
  5086. var part3 = (cubed - (2.0 * squared)) + amount;
  5087. var part4 = cubed - squared;
  5088. var x = (((value1.x * part1) + (value2.x * part2)) + (tangent1.x * part3)) + (tangent2.x * part4);
  5089. var y = (((value1.y * part1) + (value2.y * part2)) + (tangent1.y * part3)) + (tangent2.y * part4);
  5090. var z = (((value1.z * part1) + (value2.z * part2)) + (tangent1.z * part3)) + (tangent2.z * part4);
  5091. var w = (((value1.w * part1) + (value2.w * part2)) + (tangent1.w * part3)) + (tangent2.w * part4);
  5092. return new Quaternion(x, y, z, w);
  5093. };
  5094. return Quaternion;
  5095. }());
  5096. BABYLON.Quaternion = Quaternion;
  5097. /**
  5098. * Class used to store matrix data (4x4)
  5099. */
  5100. var Matrix = /** @class */ (function () {
  5101. /**
  5102. * Creates an empty matrix (filled with zeros)
  5103. */
  5104. function Matrix() {
  5105. this._isIdentity = false;
  5106. this._isIdentityDirty = true;
  5107. /**
  5108. * Gets or sets the internal data of the matrix
  5109. */
  5110. this.m = new Float32Array(16);
  5111. this._markAsUpdated();
  5112. }
  5113. /** @hidden */
  5114. Matrix.prototype._markAsUpdated = function () {
  5115. this.updateFlag = Matrix._updateFlagSeed++;
  5116. this._isIdentityDirty = true;
  5117. };
  5118. // Properties
  5119. /**
  5120. * Check if the current matrix is indentity
  5121. * @param considerAsTextureMatrix defines if the current matrix must be considered as a texture matrix (3x2)
  5122. * @returns true is the matrix is the identity matrix
  5123. */
  5124. Matrix.prototype.isIdentity = function (considerAsTextureMatrix) {
  5125. if (considerAsTextureMatrix === void 0) { considerAsTextureMatrix = false; }
  5126. if (this._isIdentityDirty) {
  5127. this._isIdentityDirty = false;
  5128. if (this.m[0] !== 1.0 || this.m[5] !== 1.0 || this.m[15] !== 1.0) {
  5129. this._isIdentity = false;
  5130. }
  5131. else if (this.m[1] !== 0.0 || this.m[2] !== 0.0 || this.m[3] !== 0.0 ||
  5132. this.m[4] !== 0.0 || this.m[6] !== 0.0 || this.m[7] !== 0.0 ||
  5133. this.m[8] !== 0.0 || this.m[9] !== 0.0 || this.m[11] !== 0.0 ||
  5134. this.m[12] !== 0.0 || this.m[13] !== 0.0 || this.m[14] !== 0.0) {
  5135. this._isIdentity = false;
  5136. }
  5137. else {
  5138. this._isIdentity = true;
  5139. }
  5140. if (!considerAsTextureMatrix && this.m[10] !== 1.0) {
  5141. this._isIdentity = false;
  5142. }
  5143. }
  5144. return this._isIdentity;
  5145. };
  5146. /**
  5147. * Gets the determinant of the matrix
  5148. * @returns the matrix determinant
  5149. */
  5150. Matrix.prototype.determinant = function () {
  5151. var temp1 = (this.m[10] * this.m[15]) - (this.m[11] * this.m[14]);
  5152. var temp2 = (this.m[9] * this.m[15]) - (this.m[11] * this.m[13]);
  5153. var temp3 = (this.m[9] * this.m[14]) - (this.m[10] * this.m[13]);
  5154. var temp4 = (this.m[8] * this.m[15]) - (this.m[11] * this.m[12]);
  5155. var temp5 = (this.m[8] * this.m[14]) - (this.m[10] * this.m[12]);
  5156. var temp6 = (this.m[8] * this.m[13]) - (this.m[9] * this.m[12]);
  5157. return ((((this.m[0] * (((this.m[5] * temp1) - (this.m[6] * temp2)) + (this.m[7] * temp3))) - (this.m[1] * (((this.m[4] * temp1) -
  5158. (this.m[6] * temp4)) + (this.m[7] * temp5)))) + (this.m[2] * (((this.m[4] * temp2) - (this.m[5] * temp4)) + (this.m[7] * temp6)))) -
  5159. (this.m[3] * (((this.m[4] * temp3) - (this.m[5] * temp5)) + (this.m[6] * temp6))));
  5160. };
  5161. // Methods
  5162. /**
  5163. * Returns the matrix as a Float32Array
  5164. * @returns the matrix underlying array
  5165. */
  5166. Matrix.prototype.toArray = function () {
  5167. return this.m;
  5168. };
  5169. /**
  5170. * Returns the matrix as a Float32Array
  5171. * @returns the matrix underlying array.
  5172. */
  5173. Matrix.prototype.asArray = function () {
  5174. return this.toArray();
  5175. };
  5176. /**
  5177. * Inverts the current matrix in place
  5178. * @returns the current inverted matrix
  5179. */
  5180. Matrix.prototype.invert = function () {
  5181. this.invertToRef(this);
  5182. return this;
  5183. };
  5184. /**
  5185. * Sets all the matrix elements to zero
  5186. * @returns the current matrix
  5187. */
  5188. Matrix.prototype.reset = function () {
  5189. for (var index = 0; index < 16; index++) {
  5190. this.m[index] = 0.0;
  5191. }
  5192. this._markAsUpdated();
  5193. return this;
  5194. };
  5195. /**
  5196. * Adds the current matrix with a second one
  5197. * @param other defines the matrix to add
  5198. * @returns a new matrix as the addition of the current matrix and the given one
  5199. */
  5200. Matrix.prototype.add = function (other) {
  5201. var result = new Matrix();
  5202. this.addToRef(other, result);
  5203. return result;
  5204. };
  5205. /**
  5206. * Sets the given matrix "result" to the addition of the current matrix and the given one
  5207. * @param other defines the matrix to add
  5208. * @param result defines the target matrix
  5209. * @returns the current matrix
  5210. */
  5211. Matrix.prototype.addToRef = function (other, result) {
  5212. for (var index = 0; index < 16; index++) {
  5213. result.m[index] = this.m[index] + other.m[index];
  5214. }
  5215. result._markAsUpdated();
  5216. return this;
  5217. };
  5218. /**
  5219. * Adds in place the given matrix to the current matrix
  5220. * @param other defines the second operand
  5221. * @returns the current updated matrix
  5222. */
  5223. Matrix.prototype.addToSelf = function (other) {
  5224. for (var index = 0; index < 16; index++) {
  5225. this.m[index] += other.m[index];
  5226. }
  5227. this._markAsUpdated();
  5228. return this;
  5229. };
  5230. /**
  5231. * Sets the given matrix to the current inverted Matrix
  5232. * @param other defines the target matrix
  5233. * @returns the unmodified current matrix
  5234. */
  5235. Matrix.prototype.invertToRef = function (other) {
  5236. var l1 = this.m[0];
  5237. var l2 = this.m[1];
  5238. var l3 = this.m[2];
  5239. var l4 = this.m[3];
  5240. var l5 = this.m[4];
  5241. var l6 = this.m[5];
  5242. var l7 = this.m[6];
  5243. var l8 = this.m[7];
  5244. var l9 = this.m[8];
  5245. var l10 = this.m[9];
  5246. var l11 = this.m[10];
  5247. var l12 = this.m[11];
  5248. var l13 = this.m[12];
  5249. var l14 = this.m[13];
  5250. var l15 = this.m[14];
  5251. var l16 = this.m[15];
  5252. var l17 = (l11 * l16) - (l12 * l15);
  5253. var l18 = (l10 * l16) - (l12 * l14);
  5254. var l19 = (l10 * l15) - (l11 * l14);
  5255. var l20 = (l9 * l16) - (l12 * l13);
  5256. var l21 = (l9 * l15) - (l11 * l13);
  5257. var l22 = (l9 * l14) - (l10 * l13);
  5258. var l23 = ((l6 * l17) - (l7 * l18)) + (l8 * l19);
  5259. var l24 = -(((l5 * l17) - (l7 * l20)) + (l8 * l21));
  5260. var l25 = ((l5 * l18) - (l6 * l20)) + (l8 * l22);
  5261. var l26 = -(((l5 * l19) - (l6 * l21)) + (l7 * l22));
  5262. var l27 = 1.0 / ((((l1 * l23) + (l2 * l24)) + (l3 * l25)) + (l4 * l26));
  5263. var l28 = (l7 * l16) - (l8 * l15);
  5264. var l29 = (l6 * l16) - (l8 * l14);
  5265. var l30 = (l6 * l15) - (l7 * l14);
  5266. var l31 = (l5 * l16) - (l8 * l13);
  5267. var l32 = (l5 * l15) - (l7 * l13);
  5268. var l33 = (l5 * l14) - (l6 * l13);
  5269. var l34 = (l7 * l12) - (l8 * l11);
  5270. var l35 = (l6 * l12) - (l8 * l10);
  5271. var l36 = (l6 * l11) - (l7 * l10);
  5272. var l37 = (l5 * l12) - (l8 * l9);
  5273. var l38 = (l5 * l11) - (l7 * l9);
  5274. var l39 = (l5 * l10) - (l6 * l9);
  5275. other.m[0] = l23 * l27;
  5276. other.m[4] = l24 * l27;
  5277. other.m[8] = l25 * l27;
  5278. other.m[12] = l26 * l27;
  5279. other.m[1] = -(((l2 * l17) - (l3 * l18)) + (l4 * l19)) * l27;
  5280. other.m[5] = (((l1 * l17) - (l3 * l20)) + (l4 * l21)) * l27;
  5281. other.m[9] = -(((l1 * l18) - (l2 * l20)) + (l4 * l22)) * l27;
  5282. other.m[13] = (((l1 * l19) - (l2 * l21)) + (l3 * l22)) * l27;
  5283. other.m[2] = (((l2 * l28) - (l3 * l29)) + (l4 * l30)) * l27;
  5284. other.m[6] = -(((l1 * l28) - (l3 * l31)) + (l4 * l32)) * l27;
  5285. other.m[10] = (((l1 * l29) - (l2 * l31)) + (l4 * l33)) * l27;
  5286. other.m[14] = -(((l1 * l30) - (l2 * l32)) + (l3 * l33)) * l27;
  5287. other.m[3] = -(((l2 * l34) - (l3 * l35)) + (l4 * l36)) * l27;
  5288. other.m[7] = (((l1 * l34) - (l3 * l37)) + (l4 * l38)) * l27;
  5289. other.m[11] = -(((l1 * l35) - (l2 * l37)) + (l4 * l39)) * l27;
  5290. other.m[15] = (((l1 * l36) - (l2 * l38)) + (l3 * l39)) * l27;
  5291. other._markAsUpdated();
  5292. return this;
  5293. };
  5294. /**
  5295. * Inserts the translation vector (using 3 floats) in the current matrix
  5296. * @param x defines the 1st component of the translation
  5297. * @param y defines the 2nd component of the translation
  5298. * @param z defines the 3rd component of the translation
  5299. * @returns the current updated matrix
  5300. */
  5301. Matrix.prototype.setTranslationFromFloats = function (x, y, z) {
  5302. this.m[12] = x;
  5303. this.m[13] = y;
  5304. this.m[14] = z;
  5305. this._markAsUpdated();
  5306. return this;
  5307. };
  5308. /**
  5309. * Inserts the translation vector in the current matrix
  5310. * @param vector3 defines the translation to insert
  5311. * @returns the current updated matrix
  5312. */
  5313. Matrix.prototype.setTranslation = function (vector3) {
  5314. this.m[12] = vector3.x;
  5315. this.m[13] = vector3.y;
  5316. this.m[14] = vector3.z;
  5317. this._markAsUpdated();
  5318. return this;
  5319. };
  5320. /**
  5321. * Gets the translation value of the current matrix
  5322. * @returns a new Vector3 as the extracted translation from the matrix
  5323. */
  5324. Matrix.prototype.getTranslation = function () {
  5325. return new Vector3(this.m[12], this.m[13], this.m[14]);
  5326. };
  5327. /**
  5328. * Fill a Vector3 with the extracted translation from the matrix
  5329. * @param result defines the Vector3 where to store the translation
  5330. * @returns the current matrix
  5331. */
  5332. Matrix.prototype.getTranslationToRef = function (result) {
  5333. result.x = this.m[12];
  5334. result.y = this.m[13];
  5335. result.z = this.m[14];
  5336. return this;
  5337. };
  5338. /**
  5339. * Remove rotation and scaling part from the matrix
  5340. * @returns the updated matrix
  5341. */
  5342. Matrix.prototype.removeRotationAndScaling = function () {
  5343. this.setRowFromFloats(0, 1, 0, 0, 0);
  5344. this.setRowFromFloats(1, 0, 1, 0, 0);
  5345. this.setRowFromFloats(2, 0, 0, 1, 0);
  5346. return this;
  5347. };
  5348. /**
  5349. * Multiply two matrices
  5350. * @param other defines the second operand
  5351. * @returns a new matrix set with the multiplication result of the current Matrix and the given one
  5352. */
  5353. Matrix.prototype.multiply = function (other) {
  5354. var result = new Matrix();
  5355. this.multiplyToRef(other, result);
  5356. return result;
  5357. };
  5358. /**
  5359. * Copy the current matrix from the given one
  5360. * @param other defines the source matrix
  5361. * @returns the current updated matrix
  5362. */
  5363. Matrix.prototype.copyFrom = function (other) {
  5364. for (var index = 0; index < 16; index++) {
  5365. this.m[index] = other.m[index];
  5366. }
  5367. this._markAsUpdated();
  5368. return this;
  5369. };
  5370. /**
  5371. * Populates the given array from the starting index with the current matrix values
  5372. * @param array defines the target array
  5373. * @param offset defines the offset in the target array where to start storing values
  5374. * @returns the current matrix
  5375. */
  5376. Matrix.prototype.copyToArray = function (array, offset) {
  5377. if (offset === void 0) { offset = 0; }
  5378. for (var index = 0; index < 16; index++) {
  5379. array[offset + index] = this.m[index];
  5380. }
  5381. return this;
  5382. };
  5383. /**
  5384. * Sets the given matrix "result" with the multiplication result of the current Matrix and the given one
  5385. * @param other defines the second operand
  5386. * @param result defines the matrix where to store the multiplication
  5387. * @returns the current matrix
  5388. */
  5389. Matrix.prototype.multiplyToRef = function (other, result) {
  5390. this.multiplyToArray(other, result.m, 0);
  5391. result._markAsUpdated();
  5392. return this;
  5393. };
  5394. /**
  5395. * Sets the Float32Array "result" from the given index "offset" with the multiplication of the current matrix and the given one
  5396. * @param other defines the second operand
  5397. * @param result defines the array where to store the multiplication
  5398. * @param offset defines the offset in the target array where to start storing values
  5399. * @returns the current matrix
  5400. */
  5401. Matrix.prototype.multiplyToArray = function (other, result, offset) {
  5402. var tm0 = this.m[0];
  5403. var tm1 = this.m[1];
  5404. var tm2 = this.m[2];
  5405. var tm3 = this.m[3];
  5406. var tm4 = this.m[4];
  5407. var tm5 = this.m[5];
  5408. var tm6 = this.m[6];
  5409. var tm7 = this.m[7];
  5410. var tm8 = this.m[8];
  5411. var tm9 = this.m[9];
  5412. var tm10 = this.m[10];
  5413. var tm11 = this.m[11];
  5414. var tm12 = this.m[12];
  5415. var tm13 = this.m[13];
  5416. var tm14 = this.m[14];
  5417. var tm15 = this.m[15];
  5418. var om0 = other.m[0];
  5419. var om1 = other.m[1];
  5420. var om2 = other.m[2];
  5421. var om3 = other.m[3];
  5422. var om4 = other.m[4];
  5423. var om5 = other.m[5];
  5424. var om6 = other.m[6];
  5425. var om7 = other.m[7];
  5426. var om8 = other.m[8];
  5427. var om9 = other.m[9];
  5428. var om10 = other.m[10];
  5429. var om11 = other.m[11];
  5430. var om12 = other.m[12];
  5431. var om13 = other.m[13];
  5432. var om14 = other.m[14];
  5433. var om15 = other.m[15];
  5434. result[offset] = tm0 * om0 + tm1 * om4 + tm2 * om8 + tm3 * om12;
  5435. result[offset + 1] = tm0 * om1 + tm1 * om5 + tm2 * om9 + tm3 * om13;
  5436. result[offset + 2] = tm0 * om2 + tm1 * om6 + tm2 * om10 + tm3 * om14;
  5437. result[offset + 3] = tm0 * om3 + tm1 * om7 + tm2 * om11 + tm3 * om15;
  5438. result[offset + 4] = tm4 * om0 + tm5 * om4 + tm6 * om8 + tm7 * om12;
  5439. result[offset + 5] = tm4 * om1 + tm5 * om5 + tm6 * om9 + tm7 * om13;
  5440. result[offset + 6] = tm4 * om2 + tm5 * om6 + tm6 * om10 + tm7 * om14;
  5441. result[offset + 7] = tm4 * om3 + tm5 * om7 + tm6 * om11 + tm7 * om15;
  5442. result[offset + 8] = tm8 * om0 + tm9 * om4 + tm10 * om8 + tm11 * om12;
  5443. result[offset + 9] = tm8 * om1 + tm9 * om5 + tm10 * om9 + tm11 * om13;
  5444. result[offset + 10] = tm8 * om2 + tm9 * om6 + tm10 * om10 + tm11 * om14;
  5445. result[offset + 11] = tm8 * om3 + tm9 * om7 + tm10 * om11 + tm11 * om15;
  5446. result[offset + 12] = tm12 * om0 + tm13 * om4 + tm14 * om8 + tm15 * om12;
  5447. result[offset + 13] = tm12 * om1 + tm13 * om5 + tm14 * om9 + tm15 * om13;
  5448. result[offset + 14] = tm12 * om2 + tm13 * om6 + tm14 * om10 + tm15 * om14;
  5449. result[offset + 15] = tm12 * om3 + tm13 * om7 + tm14 * om11 + tm15 * om15;
  5450. return this;
  5451. };
  5452. /**
  5453. * Check equality between this matrix and a second one
  5454. * @param value defines the second matrix to compare
  5455. * @returns true is the current matrix and the given one values are strictly equal
  5456. */
  5457. Matrix.prototype.equals = function (value) {
  5458. return value &&
  5459. (this.m[0] === value.m[0] && this.m[1] === value.m[1] && this.m[2] === value.m[2] && this.m[3] === value.m[3] &&
  5460. this.m[4] === value.m[4] && this.m[5] === value.m[5] && this.m[6] === value.m[6] && this.m[7] === value.m[7] &&
  5461. this.m[8] === value.m[8] && this.m[9] === value.m[9] && this.m[10] === value.m[10] && this.m[11] === value.m[11] &&
  5462. this.m[12] === value.m[12] && this.m[13] === value.m[13] && this.m[14] === value.m[14] && this.m[15] === value.m[15]);
  5463. };
  5464. /**
  5465. * Clone the current matrix
  5466. * @returns a new matrix from the current matrix
  5467. */
  5468. Matrix.prototype.clone = function () {
  5469. return Matrix.FromValues(this.m[0], this.m[1], this.m[2], this.m[3], this.m[4], this.m[5], this.m[6], this.m[7], this.m[8], this.m[9], this.m[10], this.m[11], this.m[12], this.m[13], this.m[14], this.m[15]);
  5470. };
  5471. /**
  5472. * Returns the name of the current matrix class
  5473. * @returns the string "Matrix"
  5474. */
  5475. Matrix.prototype.getClassName = function () {
  5476. return "Matrix";
  5477. };
  5478. /**
  5479. * Gets the hash code of the current matrix
  5480. * @returns the hash code
  5481. */
  5482. Matrix.prototype.getHashCode = function () {
  5483. var hash = this.m[0] || 0;
  5484. for (var i = 1; i < 16; i++) {
  5485. hash = (hash * 397) ^ (this.m[i] || 0);
  5486. }
  5487. return hash;
  5488. };
  5489. /**
  5490. * Decomposes the current Matrix into a translation, rotation and scaling components
  5491. * @param scale defines the scale vector3 given as a reference to update
  5492. * @param rotation defines the rotation quaternion given as a reference to update
  5493. * @param translation defines the translation vector3 given as a reference to update
  5494. * @returns true if operation was successful
  5495. */
  5496. Matrix.prototype.decompose = function (scale, rotation, translation) {
  5497. if (translation) {
  5498. translation.x = this.m[12];
  5499. translation.y = this.m[13];
  5500. translation.z = this.m[14];
  5501. }
  5502. scale = scale || MathTmp.Vector3[0];
  5503. scale.x = Math.sqrt(this.m[0] * this.m[0] + this.m[1] * this.m[1] + this.m[2] * this.m[2]);
  5504. scale.y = Math.sqrt(this.m[4] * this.m[4] + this.m[5] * this.m[5] + this.m[6] * this.m[6]);
  5505. scale.z = Math.sqrt(this.m[8] * this.m[8] + this.m[9] * this.m[9] + this.m[10] * this.m[10]);
  5506. if (this.determinant() <= 0) {
  5507. scale.y *= -1;
  5508. }
  5509. if (scale.x === 0 || scale.y === 0 || scale.z === 0) {
  5510. if (rotation) {
  5511. rotation.x = 0;
  5512. rotation.y = 0;
  5513. rotation.z = 0;
  5514. rotation.w = 1;
  5515. }
  5516. return false;
  5517. }
  5518. if (rotation) {
  5519. Matrix.FromValuesToRef(this.m[0] / scale.x, this.m[1] / scale.x, this.m[2] / scale.x, 0, this.m[4] / scale.y, this.m[5] / scale.y, this.m[6] / scale.y, 0, this.m[8] / scale.z, this.m[9] / scale.z, this.m[10] / scale.z, 0, 0, 0, 0, 1, MathTmp.Matrix[0]);
  5520. Quaternion.FromRotationMatrixToRef(MathTmp.Matrix[0], rotation);
  5521. }
  5522. return true;
  5523. };
  5524. /**
  5525. * Gets specific row of the matrix
  5526. * @param index defines the number of the row to get
  5527. * @returns the index-th row of the current matrix as a new Vector4
  5528. */
  5529. Matrix.prototype.getRow = function (index) {
  5530. if (index < 0 || index > 3) {
  5531. return null;
  5532. }
  5533. var i = index * 4;
  5534. return new Vector4(this.m[i + 0], this.m[i + 1], this.m[i + 2], this.m[i + 3]);
  5535. };
  5536. /**
  5537. * Sets the index-th row of the current matrix to the vector4 values
  5538. * @param index defines the number of the row to set
  5539. * @param row defines the target vector4
  5540. * @returns the updated current matrix
  5541. */
  5542. Matrix.prototype.setRow = function (index, row) {
  5543. if (index < 0 || index > 3) {
  5544. return this;
  5545. }
  5546. var i = index * 4;
  5547. this.m[i + 0] = row.x;
  5548. this.m[i + 1] = row.y;
  5549. this.m[i + 2] = row.z;
  5550. this.m[i + 3] = row.w;
  5551. this._markAsUpdated();
  5552. return this;
  5553. };
  5554. /**
  5555. * Compute the transpose of the matrix
  5556. * @returns the new transposed matrix
  5557. */
  5558. Matrix.prototype.transpose = function () {
  5559. return Matrix.Transpose(this);
  5560. };
  5561. /**
  5562. * Compute the transpose of the matrix and store it in a given matrix
  5563. * @param result defines the target matrix
  5564. * @returns the current matrix
  5565. */
  5566. Matrix.prototype.transposeToRef = function (result) {
  5567. Matrix.TransposeToRef(this, result);
  5568. return this;
  5569. };
  5570. /**
  5571. * Sets the index-th row of the current matrix with the given 4 x float values
  5572. * @param index defines the row index
  5573. * @param x defines the x component to set
  5574. * @param y defines the y component to set
  5575. * @param z defines the z component to set
  5576. * @param w defines the w component to set
  5577. * @returns the updated current matrix
  5578. */
  5579. Matrix.prototype.setRowFromFloats = function (index, x, y, z, w) {
  5580. if (index < 0 || index > 3) {
  5581. return this;
  5582. }
  5583. var i = index * 4;
  5584. this.m[i + 0] = x;
  5585. this.m[i + 1] = y;
  5586. this.m[i + 2] = z;
  5587. this.m[i + 3] = w;
  5588. this._markAsUpdated();
  5589. return this;
  5590. };
  5591. /**
  5592. * Compute a new matrix set with the current matrix values multiplied by scale (float)
  5593. * @param scale defines the scale factor
  5594. * @returns a new matrix
  5595. */
  5596. Matrix.prototype.scale = function (scale) {
  5597. var result = new Matrix();
  5598. this.scaleToRef(scale, result);
  5599. return result;
  5600. };
  5601. /**
  5602. * Scale the current matrix values by a factor to a given result matrix
  5603. * @param scale defines the scale factor
  5604. * @param result defines the matrix to store the result
  5605. * @returns the current matrix
  5606. */
  5607. Matrix.prototype.scaleToRef = function (scale, result) {
  5608. for (var index = 0; index < 16; index++) {
  5609. result.m[index] = this.m[index] * scale;
  5610. }
  5611. result._markAsUpdated();
  5612. return this;
  5613. };
  5614. /**
  5615. * Scale the current matrix values by a factor and add the result to a given matrix
  5616. * @param scale defines the scale factor
  5617. * @param result defines the Matrix to store the result
  5618. * @returns the current matrix
  5619. */
  5620. Matrix.prototype.scaleAndAddToRef = function (scale, result) {
  5621. for (var index = 0; index < 16; index++) {
  5622. result.m[index] += this.m[index] * scale;
  5623. }
  5624. result._markAsUpdated();
  5625. return this;
  5626. };
  5627. /**
  5628. * Writes to the given matrix a normal matrix, computed from this one (using values from identity matrix for fourth row and column).
  5629. * @param ref matrix to store the result
  5630. */
  5631. Matrix.prototype.toNormalMatrix = function (ref) {
  5632. this.invertToRef(ref);
  5633. ref.transpose();
  5634. var m = ref.m;
  5635. Matrix.FromValuesToRef(m[0], m[1], m[2], 0, m[4], m[5], m[6], 0, m[8], m[9], m[10], 0, 0, 0, 0, 1, ref);
  5636. };
  5637. /**
  5638. * Gets only rotation part of the current matrix
  5639. * @returns a new matrix sets to the extracted rotation matrix from the current one
  5640. */
  5641. Matrix.prototype.getRotationMatrix = function () {
  5642. var result = Matrix.Identity();
  5643. this.getRotationMatrixToRef(result);
  5644. return result;
  5645. };
  5646. /**
  5647. * Extracts the rotation matrix from the current one and sets it as the given "result"
  5648. * @param result defines the target matrix to store data to
  5649. * @returns the current matrix
  5650. */
  5651. Matrix.prototype.getRotationMatrixToRef = function (result) {
  5652. var m = this.m;
  5653. var sx = Math.sqrt(m[0] * m[0] + m[1] * m[1] + m[2] * m[2]);
  5654. var sy = Math.sqrt(m[4] * m[4] + m[5] * m[5] + m[6] * m[6]);
  5655. var sz = Math.sqrt(m[8] * m[8] + m[9] * m[9] + m[10] * m[10]);
  5656. if (this.determinant() <= 0) {
  5657. sy *= -1;
  5658. }
  5659. if (sx === 0 || sy === 0 || sz === 0) {
  5660. Matrix.IdentityToRef(result);
  5661. }
  5662. else {
  5663. Matrix.FromValuesToRef(m[0] / sx, m[1] / sx, m[2] / sx, 0, m[4] / sy, m[5] / sy, m[6] / sy, 0, m[8] / sz, m[9] / sz, m[10] / sz, 0, 0, 0, 0, 1, result);
  5664. }
  5665. return this;
  5666. };
  5667. // Statics
  5668. /**
  5669. * Creates a matrix from an array
  5670. * @param array defines the source array
  5671. * @param offset defines an offset in the source array
  5672. * @returns a new Matrix set from the starting index of the given array
  5673. */
  5674. Matrix.FromArray = function (array, offset) {
  5675. var result = new Matrix();
  5676. if (!offset) {
  5677. offset = 0;
  5678. }
  5679. Matrix.FromArrayToRef(array, offset, result);
  5680. return result;
  5681. };
  5682. /**
  5683. * Copy the content of an array into a given matrix
  5684. * @param array defines the source array
  5685. * @param offset defines an offset in the source array
  5686. * @param result defines the target matrix
  5687. */
  5688. Matrix.FromArrayToRef = function (array, offset, result) {
  5689. for (var index = 0; index < 16; index++) {
  5690. result.m[index] = array[index + offset];
  5691. }
  5692. result._markAsUpdated();
  5693. };
  5694. /**
  5695. * Stores an array into a matrix after having multiplied each component by a given factor
  5696. * @param array defines the source array
  5697. * @param offset defines the offset in the source array
  5698. * @param scale defines the scaling factor
  5699. * @param result defines the target matrix
  5700. */
  5701. Matrix.FromFloat32ArrayToRefScaled = function (array, offset, scale, result) {
  5702. for (var index = 0; index < 16; index++) {
  5703. result.m[index] = array[index + offset] * scale;
  5704. }
  5705. result._markAsUpdated();
  5706. };
  5707. /**
  5708. * Stores a list of values (16) inside a given matrix
  5709. * @param initialM11 defines 1st value of 1st row
  5710. * @param initialM12 defines 2nd value of 1st row
  5711. * @param initialM13 defines 3rd value of 1st row
  5712. * @param initialM14 defines 4th value of 1st row
  5713. * @param initialM21 defines 1st value of 2nd row
  5714. * @param initialM22 defines 2nd value of 2nd row
  5715. * @param initialM23 defines 3rd value of 2nd row
  5716. * @param initialM24 defines 4th value of 2nd row
  5717. * @param initialM31 defines 1st value of 3rd row
  5718. * @param initialM32 defines 2nd value of 3rd row
  5719. * @param initialM33 defines 3rd value of 3rd row
  5720. * @param initialM34 defines 4th value of 3rd row
  5721. * @param initialM41 defines 1st value of 4th row
  5722. * @param initialM42 defines 2nd value of 4th row
  5723. * @param initialM43 defines 3rd value of 4th row
  5724. * @param initialM44 defines 4th value of 4th row
  5725. * @param result defines the target matrix
  5726. */
  5727. Matrix.FromValuesToRef = function (initialM11, initialM12, initialM13, initialM14, initialM21, initialM22, initialM23, initialM24, initialM31, initialM32, initialM33, initialM34, initialM41, initialM42, initialM43, initialM44, result) {
  5728. result.m[0] = initialM11;
  5729. result.m[1] = initialM12;
  5730. result.m[2] = initialM13;
  5731. result.m[3] = initialM14;
  5732. result.m[4] = initialM21;
  5733. result.m[5] = initialM22;
  5734. result.m[6] = initialM23;
  5735. result.m[7] = initialM24;
  5736. result.m[8] = initialM31;
  5737. result.m[9] = initialM32;
  5738. result.m[10] = initialM33;
  5739. result.m[11] = initialM34;
  5740. result.m[12] = initialM41;
  5741. result.m[13] = initialM42;
  5742. result.m[14] = initialM43;
  5743. result.m[15] = initialM44;
  5744. result._markAsUpdated();
  5745. };
  5746. Object.defineProperty(Matrix, "IdentityReadOnly", {
  5747. /**
  5748. * Gets an identity matrix that must not be updated
  5749. */
  5750. get: function () {
  5751. return Matrix._identityReadOnly;
  5752. },
  5753. enumerable: true,
  5754. configurable: true
  5755. });
  5756. /**
  5757. * Creates new matrix from a list of values (16)
  5758. * @param initialM11 defines 1st value of 1st row
  5759. * @param initialM12 defines 2nd value of 1st row
  5760. * @param initialM13 defines 3rd value of 1st row
  5761. * @param initialM14 defines 4th value of 1st row
  5762. * @param initialM21 defines 1st value of 2nd row
  5763. * @param initialM22 defines 2nd value of 2nd row
  5764. * @param initialM23 defines 3rd value of 2nd row
  5765. * @param initialM24 defines 4th value of 2nd row
  5766. * @param initialM31 defines 1st value of 3rd row
  5767. * @param initialM32 defines 2nd value of 3rd row
  5768. * @param initialM33 defines 3rd value of 3rd row
  5769. * @param initialM34 defines 4th value of 3rd row
  5770. * @param initialM41 defines 1st value of 4th row
  5771. * @param initialM42 defines 2nd value of 4th row
  5772. * @param initialM43 defines 3rd value of 4th row
  5773. * @param initialM44 defines 4th value of 4th row
  5774. * @returns the new matrix
  5775. */
  5776. Matrix.FromValues = function (initialM11, initialM12, initialM13, initialM14, initialM21, initialM22, initialM23, initialM24, initialM31, initialM32, initialM33, initialM34, initialM41, initialM42, initialM43, initialM44) {
  5777. var result = new Matrix();
  5778. result.m[0] = initialM11;
  5779. result.m[1] = initialM12;
  5780. result.m[2] = initialM13;
  5781. result.m[3] = initialM14;
  5782. result.m[4] = initialM21;
  5783. result.m[5] = initialM22;
  5784. result.m[6] = initialM23;
  5785. result.m[7] = initialM24;
  5786. result.m[8] = initialM31;
  5787. result.m[9] = initialM32;
  5788. result.m[10] = initialM33;
  5789. result.m[11] = initialM34;
  5790. result.m[12] = initialM41;
  5791. result.m[13] = initialM42;
  5792. result.m[14] = initialM43;
  5793. result.m[15] = initialM44;
  5794. return result;
  5795. };
  5796. /**
  5797. * Creates a new matrix composed by merging scale (vector3), rotation (quaternion) and translation (vector3)
  5798. * @param scale defines the scale vector3
  5799. * @param rotation defines the rotation quaternion
  5800. * @param translation defines the translation vector3
  5801. * @returns a new matrix
  5802. */
  5803. Matrix.Compose = function (scale, rotation, translation) {
  5804. var result = Matrix.Identity();
  5805. Matrix.ComposeToRef(scale, rotation, translation, result);
  5806. return result;
  5807. };
  5808. /**
  5809. * Sets a matrix to a value composed by merging scale (vector3), rotation (quaternion) and translation (vector3)
  5810. * @param scale defines the scale vector3
  5811. * @param rotation defines the rotation quaternion
  5812. * @param translation defines the translation vector3
  5813. * @param result defines the target matrix
  5814. */
  5815. Matrix.ComposeToRef = function (scale, rotation, translation, result) {
  5816. Matrix.FromValuesToRef(scale.x, 0, 0, 0, 0, scale.y, 0, 0, 0, 0, scale.z, 0, 0, 0, 0, 1, MathTmp.Matrix[1]);
  5817. rotation.toRotationMatrix(MathTmp.Matrix[0]);
  5818. MathTmp.Matrix[1].multiplyToRef(MathTmp.Matrix[0], result);
  5819. result.setTranslation(translation);
  5820. };
  5821. /**
  5822. * Creates a new identity matrix
  5823. * @returns a new identity matrix
  5824. */
  5825. Matrix.Identity = function () {
  5826. return Matrix.FromValues(1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0);
  5827. };
  5828. /**
  5829. * Creates a new identity matrix and stores the result in a given matrix
  5830. * @param result defines the target matrix
  5831. */
  5832. Matrix.IdentityToRef = function (result) {
  5833. Matrix.FromValuesToRef(1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0, result);
  5834. };
  5835. /**
  5836. * Creates a new zero matrix
  5837. * @returns a new zero matrix
  5838. */
  5839. Matrix.Zero = function () {
  5840. return Matrix.FromValues(0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0);
  5841. };
  5842. /**
  5843. * Creates a new rotation matrix for "angle" radians around the X axis
  5844. * @param angle defines the angle (in radians) to use
  5845. * @return the new matrix
  5846. */
  5847. Matrix.RotationX = function (angle) {
  5848. var result = new Matrix();
  5849. Matrix.RotationXToRef(angle, result);
  5850. return result;
  5851. };
  5852. /**
  5853. * Creates a new matrix as the invert of a given matrix
  5854. * @param source defines the source matrix
  5855. * @returns the new matrix
  5856. */
  5857. Matrix.Invert = function (source) {
  5858. var result = new Matrix();
  5859. source.invertToRef(result);
  5860. return result;
  5861. };
  5862. /**
  5863. * Creates a new rotation matrix for "angle" radians around the X axis and stores it in a given matrix
  5864. * @param angle defines the angle (in radians) to use
  5865. * @param result defines the target matrix
  5866. */
  5867. Matrix.RotationXToRef = function (angle, result) {
  5868. var s = Math.sin(angle);
  5869. var c = Math.cos(angle);
  5870. result.m[0] = 1.0;
  5871. result.m[15] = 1.0;
  5872. result.m[5] = c;
  5873. result.m[10] = c;
  5874. result.m[9] = -s;
  5875. result.m[6] = s;
  5876. result.m[1] = 0.0;
  5877. result.m[2] = 0.0;
  5878. result.m[3] = 0.0;
  5879. result.m[4] = 0.0;
  5880. result.m[7] = 0.0;
  5881. result.m[8] = 0.0;
  5882. result.m[11] = 0.0;
  5883. result.m[12] = 0.0;
  5884. result.m[13] = 0.0;
  5885. result.m[14] = 0.0;
  5886. result._markAsUpdated();
  5887. };
  5888. /**
  5889. * Creates a new rotation matrix for "angle" radians around the Y axis
  5890. * @param angle defines the angle (in radians) to use
  5891. * @return the new matrix
  5892. */
  5893. Matrix.RotationY = function (angle) {
  5894. var result = new Matrix();
  5895. Matrix.RotationYToRef(angle, result);
  5896. return result;
  5897. };
  5898. /**
  5899. * Creates a new rotation matrix for "angle" radians around the Y axis and stores it in a given matrix
  5900. * @param angle defines the angle (in radians) to use
  5901. * @param result defines the target matrix
  5902. */
  5903. Matrix.RotationYToRef = function (angle, result) {
  5904. var s = Math.sin(angle);
  5905. var c = Math.cos(angle);
  5906. result.m[5] = 1.0;
  5907. result.m[15] = 1.0;
  5908. result.m[0] = c;
  5909. result.m[2] = -s;
  5910. result.m[8] = s;
  5911. result.m[10] = c;
  5912. result.m[1] = 0.0;
  5913. result.m[3] = 0.0;
  5914. result.m[4] = 0.0;
  5915. result.m[6] = 0.0;
  5916. result.m[7] = 0.0;
  5917. result.m[9] = 0.0;
  5918. result.m[11] = 0.0;
  5919. result.m[12] = 0.0;
  5920. result.m[13] = 0.0;
  5921. result.m[14] = 0.0;
  5922. result._markAsUpdated();
  5923. };
  5924. /**
  5925. * Creates a new rotation matrix for "angle" radians around the Z axis
  5926. * @param angle defines the angle (in radians) to use
  5927. * @return the new matrix
  5928. */
  5929. Matrix.RotationZ = function (angle) {
  5930. var result = new Matrix();
  5931. Matrix.RotationZToRef(angle, result);
  5932. return result;
  5933. };
  5934. /**
  5935. * Creates a new rotation matrix for "angle" radians around the Z axis and stores it in a given matrix
  5936. * @param angle defines the angle (in radians) to use
  5937. * @param result defines the target matrix
  5938. */
  5939. Matrix.RotationZToRef = function (angle, result) {
  5940. var s = Math.sin(angle);
  5941. var c = Math.cos(angle);
  5942. result.m[10] = 1.0;
  5943. result.m[15] = 1.0;
  5944. result.m[0] = c;
  5945. result.m[1] = s;
  5946. result.m[4] = -s;
  5947. result.m[5] = c;
  5948. result.m[2] = 0.0;
  5949. result.m[3] = 0.0;
  5950. result.m[6] = 0.0;
  5951. result.m[7] = 0.0;
  5952. result.m[8] = 0.0;
  5953. result.m[9] = 0.0;
  5954. result.m[11] = 0.0;
  5955. result.m[12] = 0.0;
  5956. result.m[13] = 0.0;
  5957. result.m[14] = 0.0;
  5958. result._markAsUpdated();
  5959. };
  5960. /**
  5961. * Creates a new rotation matrix for "angle" radians around the given axis
  5962. * @param axis defines the axis to use
  5963. * @param angle defines the angle (in radians) to use
  5964. * @return the new matrix
  5965. */
  5966. Matrix.RotationAxis = function (axis, angle) {
  5967. var result = Matrix.Zero();
  5968. Matrix.RotationAxisToRef(axis, angle, result);
  5969. return result;
  5970. };
  5971. /**
  5972. * Creates a new rotation matrix for "angle" radians around the given axis and stores it in a given matrix
  5973. * @param axis defines the axis to use
  5974. * @param angle defines the angle (in radians) to use
  5975. * @param result defines the target matrix
  5976. */
  5977. Matrix.RotationAxisToRef = function (axis, angle, result) {
  5978. var s = Math.sin(-angle);
  5979. var c = Math.cos(-angle);
  5980. var c1 = 1 - c;
  5981. axis.normalize();
  5982. result.m[0] = (axis.x * axis.x) * c1 + c;
  5983. result.m[1] = (axis.x * axis.y) * c1 - (axis.z * s);
  5984. result.m[2] = (axis.x * axis.z) * c1 + (axis.y * s);
  5985. result.m[3] = 0.0;
  5986. result.m[4] = (axis.y * axis.x) * c1 + (axis.z * s);
  5987. result.m[5] = (axis.y * axis.y) * c1 + c;
  5988. result.m[6] = (axis.y * axis.z) * c1 - (axis.x * s);
  5989. result.m[7] = 0.0;
  5990. result.m[8] = (axis.z * axis.x) * c1 - (axis.y * s);
  5991. result.m[9] = (axis.z * axis.y) * c1 + (axis.x * s);
  5992. result.m[10] = (axis.z * axis.z) * c1 + c;
  5993. result.m[11] = 0.0;
  5994. result.m[15] = 1.0;
  5995. result._markAsUpdated();
  5996. };
  5997. /**
  5998. * Creates a rotation matrix
  5999. * @param yaw defines the yaw angle in radians (Y axis)
  6000. * @param pitch defines the pitch angle in radians (X axis)
  6001. * @param roll defines the roll angle in radians (X axis)
  6002. * @returns the new rotation matrix
  6003. */
  6004. Matrix.RotationYawPitchRoll = function (yaw, pitch, roll) {
  6005. var result = new Matrix();
  6006. Matrix.RotationYawPitchRollToRef(yaw, pitch, roll, result);
  6007. return result;
  6008. };
  6009. /**
  6010. * Creates a rotation matrix and stores it in a given matrix
  6011. * @param yaw defines the yaw angle in radians (Y axis)
  6012. * @param pitch defines the pitch angle in radians (X axis)
  6013. * @param roll defines the roll angle in radians (X axis)
  6014. * @param result defines the target matrix
  6015. */
  6016. Matrix.RotationYawPitchRollToRef = function (yaw, pitch, roll, result) {
  6017. Quaternion.RotationYawPitchRollToRef(yaw, pitch, roll, this._tempQuaternion);
  6018. this._tempQuaternion.toRotationMatrix(result);
  6019. };
  6020. /**
  6021. * Creates a scaling matrix
  6022. * @param x defines the scale factor on X axis
  6023. * @param y defines the scale factor on Y axis
  6024. * @param z defines the scale factor on Z axis
  6025. * @returns the new matrix
  6026. */
  6027. Matrix.Scaling = function (x, y, z) {
  6028. var result = Matrix.Zero();
  6029. Matrix.ScalingToRef(x, y, z, result);
  6030. return result;
  6031. };
  6032. /**
  6033. * Creates a scaling matrix and stores it in a given matrix
  6034. * @param x defines the scale factor on X axis
  6035. * @param y defines the scale factor on Y axis
  6036. * @param z defines the scale factor on Z axis
  6037. * @param result defines the target matrix
  6038. */
  6039. Matrix.ScalingToRef = function (x, y, z, result) {
  6040. result.m[0] = x;
  6041. result.m[1] = 0.0;
  6042. result.m[2] = 0.0;
  6043. result.m[3] = 0.0;
  6044. result.m[4] = 0.0;
  6045. result.m[5] = y;
  6046. result.m[6] = 0.0;
  6047. result.m[7] = 0.0;
  6048. result.m[8] = 0.0;
  6049. result.m[9] = 0.0;
  6050. result.m[10] = z;
  6051. result.m[11] = 0.0;
  6052. result.m[12] = 0.0;
  6053. result.m[13] = 0.0;
  6054. result.m[14] = 0.0;
  6055. result.m[15] = 1.0;
  6056. result._markAsUpdated();
  6057. };
  6058. /**
  6059. * Creates a translation matrix
  6060. * @param x defines the translation on X axis
  6061. * @param y defines the translation on Y axis
  6062. * @param z defines the translationon Z axis
  6063. * @returns the new matrix
  6064. */
  6065. Matrix.Translation = function (x, y, z) {
  6066. var result = Matrix.Identity();
  6067. Matrix.TranslationToRef(x, y, z, result);
  6068. return result;
  6069. };
  6070. /**
  6071. * Creates a translation matrix and stores it in a given matrix
  6072. * @param x defines the translation on X axis
  6073. * @param y defines the translation on Y axis
  6074. * @param z defines the translationon Z axis
  6075. * @param result defines the target matrix
  6076. */
  6077. Matrix.TranslationToRef = function (x, y, z, result) {
  6078. Matrix.FromValuesToRef(1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, x, y, z, 1.0, result);
  6079. };
  6080. /**
  6081. * Returns a new Matrix whose values are the interpolated values for "gradient" (float) between the ones of the matrices "startValue" and "endValue".
  6082. * @param startValue defines the start value
  6083. * @param endValue defines the end value
  6084. * @param gradient defines the gradient factor
  6085. * @returns the new matrix
  6086. */
  6087. Matrix.Lerp = function (startValue, endValue, gradient) {
  6088. var result = Matrix.Zero();
  6089. Matrix.LerpToRef(startValue, endValue, gradient, result);
  6090. return result;
  6091. };
  6092. /**
  6093. * Set the given matrix "result" as the interpolated values for "gradient" (float) between the ones of the matrices "startValue" and "endValue".
  6094. * @param startValue defines the start value
  6095. * @param endValue defines the end value
  6096. * @param gradient defines the gradient factor
  6097. * @param result defines the Matrix object where to store data
  6098. */
  6099. Matrix.LerpToRef = function (startValue, endValue, gradient, result) {
  6100. for (var index = 0; index < 16; index++) {
  6101. result.m[index] = startValue.m[index] * (1.0 - gradient) + endValue.m[index] * gradient;
  6102. }
  6103. result._markAsUpdated();
  6104. };
  6105. /**
  6106. * Builds a new matrix whose values are computed by:
  6107. * * decomposing the the "startValue" and "endValue" matrices into their respective scale, rotation and translation matrices
  6108. * * interpolating for "gradient" (float) the values between each of these decomposed matrices between the start and the end
  6109. * * recomposing a new matrix from these 3 interpolated scale, rotation and translation matrices
  6110. * @param startValue defines the first matrix
  6111. * @param endValue defines the second matrix
  6112. * @param gradient defines the gradient between the two matrices
  6113. * @returns the new matrix
  6114. */
  6115. Matrix.DecomposeLerp = function (startValue, endValue, gradient) {
  6116. var result = Matrix.Zero();
  6117. Matrix.DecomposeLerpToRef(startValue, endValue, gradient, result);
  6118. return result;
  6119. };
  6120. /**
  6121. * Update a matrix to values which are computed by:
  6122. * * decomposing the the "startValue" and "endValue" matrices into their respective scale, rotation and translation matrices
  6123. * * interpolating for "gradient" (float) the values between each of these decomposed matrices between the start and the end
  6124. * * recomposing a new matrix from these 3 interpolated scale, rotation and translation matrices
  6125. * @param startValue defines the first matrix
  6126. * @param endValue defines the second matrix
  6127. * @param gradient defines the gradient between the two matrices
  6128. * @param result defines the target matrix
  6129. */
  6130. Matrix.DecomposeLerpToRef = function (startValue, endValue, gradient, result) {
  6131. var startScale = MathTmp.Vector3[0];
  6132. var startRotation = MathTmp.Quaternion[0];
  6133. var startTranslation = MathTmp.Vector3[1];
  6134. startValue.decompose(startScale, startRotation, startTranslation);
  6135. var endScale = MathTmp.Vector3[2];
  6136. var endRotation = MathTmp.Quaternion[1];
  6137. var endTranslation = MathTmp.Vector3[3];
  6138. endValue.decompose(endScale, endRotation, endTranslation);
  6139. var resultScale = MathTmp.Vector3[4];
  6140. Vector3.LerpToRef(startScale, endScale, gradient, resultScale);
  6141. var resultRotation = MathTmp.Quaternion[2];
  6142. Quaternion.SlerpToRef(startRotation, endRotation, gradient, resultRotation);
  6143. var resultTranslation = MathTmp.Vector3[5];
  6144. Vector3.LerpToRef(startTranslation, endTranslation, gradient, resultTranslation);
  6145. Matrix.ComposeToRef(resultScale, resultRotation, resultTranslation, result);
  6146. };
  6147. /**
  6148. * Gets a new rotation matrix used to rotate an entity so as it looks at the target vector3, from the eye vector3 position, the up vector3 being oriented like "up"
  6149. * This function works in left handed mode
  6150. * @param eye defines the final position of the entity
  6151. * @param target defines where the entity should look at
  6152. * @param up defines the up vector for the entity
  6153. * @returns the new matrix
  6154. */
  6155. Matrix.LookAtLH = function (eye, target, up) {
  6156. var result = Matrix.Zero();
  6157. Matrix.LookAtLHToRef(eye, target, up, result);
  6158. return result;
  6159. };
  6160. /**
  6161. * Sets the given "result" Matrix to a rotation matrix used to rotate an entity so that it looks at the target vector3, from the eye vector3 position, the up vector3 being oriented like "up".
  6162. * This function works in left handed mode
  6163. * @param eye defines the final position of the entity
  6164. * @param target defines where the entity should look at
  6165. * @param up defines the up vector for the entity
  6166. * @param result defines the target matrix
  6167. */
  6168. Matrix.LookAtLHToRef = function (eye, target, up, result) {
  6169. // Z axis
  6170. target.subtractToRef(eye, this._zAxis);
  6171. this._zAxis.normalize();
  6172. // X axis
  6173. Vector3.CrossToRef(up, this._zAxis, this._xAxis);
  6174. if (this._xAxis.lengthSquared() === 0) {
  6175. this._xAxis.x = 1.0;
  6176. }
  6177. else {
  6178. this._xAxis.normalize();
  6179. }
  6180. // Y axis
  6181. Vector3.CrossToRef(this._zAxis, this._xAxis, this._yAxis);
  6182. this._yAxis.normalize();
  6183. // Eye angles
  6184. var ex = -Vector3.Dot(this._xAxis, eye);
  6185. var ey = -Vector3.Dot(this._yAxis, eye);
  6186. var ez = -Vector3.Dot(this._zAxis, eye);
  6187. return Matrix.FromValuesToRef(this._xAxis.x, this._yAxis.x, this._zAxis.x, 0, this._xAxis.y, this._yAxis.y, this._zAxis.y, 0, this._xAxis.z, this._yAxis.z, this._zAxis.z, 0, ex, ey, ez, 1, result);
  6188. };
  6189. /**
  6190. * Gets a new rotation matrix used to rotate an entity so as it looks at the target vector3, from the eye vector3 position, the up vector3 being oriented like "up"
  6191. * This function works in right handed mode
  6192. * @param eye defines the final position of the entity
  6193. * @param target defines where the entity should look at
  6194. * @param up defines the up vector for the entity
  6195. * @returns the new matrix
  6196. */
  6197. Matrix.LookAtRH = function (eye, target, up) {
  6198. var result = Matrix.Zero();
  6199. Matrix.LookAtRHToRef(eye, target, up, result);
  6200. return result;
  6201. };
  6202. /**
  6203. * Sets the given "result" Matrix to a rotation matrix used to rotate an entity so that it looks at the target vector3, from the eye vector3 position, the up vector3 being oriented like "up".
  6204. * This function works in right handed mode
  6205. * @param eye defines the final position of the entity
  6206. * @param target defines where the entity should look at
  6207. * @param up defines the up vector for the entity
  6208. * @param result defines the target matrix
  6209. */
  6210. Matrix.LookAtRHToRef = function (eye, target, up, result) {
  6211. // Z axis
  6212. eye.subtractToRef(target, this._zAxis);
  6213. this._zAxis.normalize();
  6214. // X axis
  6215. Vector3.CrossToRef(up, this._zAxis, this._xAxis);
  6216. if (this._xAxis.lengthSquared() === 0) {
  6217. this._xAxis.x = 1.0;
  6218. }
  6219. else {
  6220. this._xAxis.normalize();
  6221. }
  6222. // Y axis
  6223. Vector3.CrossToRef(this._zAxis, this._xAxis, this._yAxis);
  6224. this._yAxis.normalize();
  6225. // Eye angles
  6226. var ex = -Vector3.Dot(this._xAxis, eye);
  6227. var ey = -Vector3.Dot(this._yAxis, eye);
  6228. var ez = -Vector3.Dot(this._zAxis, eye);
  6229. return Matrix.FromValuesToRef(this._xAxis.x, this._yAxis.x, this._zAxis.x, 0, this._xAxis.y, this._yAxis.y, this._zAxis.y, 0, this._xAxis.z, this._yAxis.z, this._zAxis.z, 0, ex, ey, ez, 1, result);
  6230. };
  6231. /**
  6232. * Create a left-handed orthographic projection matrix
  6233. * @param width defines the viewport width
  6234. * @param height defines the viewport height
  6235. * @param znear defines the near clip plane
  6236. * @param zfar defines the far clip plane
  6237. * @returns a new matrix as a left-handed orthographic projection matrix
  6238. */
  6239. Matrix.OrthoLH = function (width, height, znear, zfar) {
  6240. var matrix = Matrix.Zero();
  6241. Matrix.OrthoLHToRef(width, height, znear, zfar, matrix);
  6242. return matrix;
  6243. };
  6244. /**
  6245. * Store a left-handed orthographic projection to a given matrix
  6246. * @param width defines the viewport width
  6247. * @param height defines the viewport height
  6248. * @param znear defines the near clip plane
  6249. * @param zfar defines the far clip plane
  6250. * @param result defines the target matrix
  6251. */
  6252. Matrix.OrthoLHToRef = function (width, height, znear, zfar, result) {
  6253. var n = znear;
  6254. var f = zfar;
  6255. var a = 2.0 / width;
  6256. var b = 2.0 / height;
  6257. var c = 2.0 / (f - n);
  6258. var d = -(f + n) / (f - n);
  6259. Matrix.FromValuesToRef(a, 0.0, 0.0, 0.0, 0.0, b, 0.0, 0.0, 0.0, 0.0, c, 0.0, 0.0, 0.0, d, 1.0, result);
  6260. };
  6261. /**
  6262. * Create a left-handed orthographic projection matrix
  6263. * @param left defines the viewport left coordinate
  6264. * @param right defines the viewport right coordinate
  6265. * @param bottom defines the viewport bottom coordinate
  6266. * @param top defines the viewport top coordinate
  6267. * @param znear defines the near clip plane
  6268. * @param zfar defines the far clip plane
  6269. * @returns a new matrix as a left-handed orthographic projection matrix
  6270. */
  6271. Matrix.OrthoOffCenterLH = function (left, right, bottom, top, znear, zfar) {
  6272. var matrix = Matrix.Zero();
  6273. Matrix.OrthoOffCenterLHToRef(left, right, bottom, top, znear, zfar, matrix);
  6274. return matrix;
  6275. };
  6276. /**
  6277. * Stores a left-handed orthographic projection into a given matrix
  6278. * @param left defines the viewport left coordinate
  6279. * @param right defines the viewport right coordinate
  6280. * @param bottom defines the viewport bottom coordinate
  6281. * @param top defines the viewport top coordinate
  6282. * @param znear defines the near clip plane
  6283. * @param zfar defines the far clip plane
  6284. * @param result defines the target matrix
  6285. */
  6286. Matrix.OrthoOffCenterLHToRef = function (left, right, bottom, top, znear, zfar, result) {
  6287. var n = znear;
  6288. var f = zfar;
  6289. var a = 2.0 / (right - left);
  6290. var b = 2.0 / (top - bottom);
  6291. var c = 2.0 / (f - n);
  6292. var d = -(f + n) / (f - n);
  6293. var i0 = (left + right) / (left - right);
  6294. var i1 = (top + bottom) / (bottom - top);
  6295. Matrix.FromValuesToRef(a, 0.0, 0.0, 0.0, 0.0, b, 0.0, 0.0, 0.0, 0.0, c, 0.0, i0, i1, d, 1.0, result);
  6296. };
  6297. /**
  6298. * Creates a right-handed orthographic projection matrix
  6299. * @param left defines the viewport left coordinate
  6300. * @param right defines the viewport right coordinate
  6301. * @param bottom defines the viewport bottom coordinate
  6302. * @param top defines the viewport top coordinate
  6303. * @param znear defines the near clip plane
  6304. * @param zfar defines the far clip plane
  6305. * @returns a new matrix as a right-handed orthographic projection matrix
  6306. */
  6307. Matrix.OrthoOffCenterRH = function (left, right, bottom, top, znear, zfar) {
  6308. var matrix = Matrix.Zero();
  6309. Matrix.OrthoOffCenterRHToRef(left, right, bottom, top, znear, zfar, matrix);
  6310. return matrix;
  6311. };
  6312. /**
  6313. * Stores a right-handed orthographic projection into a given matrix
  6314. * @param left defines the viewport left coordinate
  6315. * @param right defines the viewport right coordinate
  6316. * @param bottom defines the viewport bottom coordinate
  6317. * @param top defines the viewport top coordinate
  6318. * @param znear defines the near clip plane
  6319. * @param zfar defines the far clip plane
  6320. * @param result defines the target matrix
  6321. */
  6322. Matrix.OrthoOffCenterRHToRef = function (left, right, bottom, top, znear, zfar, result) {
  6323. Matrix.OrthoOffCenterLHToRef(left, right, bottom, top, znear, zfar, result);
  6324. result.m[10] *= -1.0;
  6325. };
  6326. /**
  6327. * Creates a left-handed perspective projection matrix
  6328. * @param width defines the viewport width
  6329. * @param height defines the viewport height
  6330. * @param znear defines the near clip plane
  6331. * @param zfar defines the far clip plane
  6332. * @returns a new matrix as a left-handed perspective projection matrix
  6333. */
  6334. Matrix.PerspectiveLH = function (width, height, znear, zfar) {
  6335. var matrix = Matrix.Zero();
  6336. var n = znear;
  6337. var f = zfar;
  6338. var a = 2.0 * n / width;
  6339. var b = 2.0 * n / height;
  6340. var c = (f + n) / (f - n);
  6341. var d = -2.0 * f * n / (f - n);
  6342. Matrix.FromValuesToRef(a, 0.0, 0.0, 0.0, 0.0, b, 0.0, 0.0, 0.0, 0.0, c, 1.0, 0.0, 0.0, d, 0.0, matrix);
  6343. return matrix;
  6344. };
  6345. /**
  6346. * Creates a left-handed perspective projection matrix
  6347. * @param fov defines the horizontal field of view
  6348. * @param aspect defines the aspect ratio
  6349. * @param znear defines the near clip plane
  6350. * @param zfar defines the far clip plane
  6351. * @returns a new matrix as a left-handed perspective projection matrix
  6352. */
  6353. Matrix.PerspectiveFovLH = function (fov, aspect, znear, zfar) {
  6354. var matrix = Matrix.Zero();
  6355. Matrix.PerspectiveFovLHToRef(fov, aspect, znear, zfar, matrix);
  6356. return matrix;
  6357. };
  6358. /**
  6359. * Stores a left-handed perspective projection into a given matrix
  6360. * @param fov defines the horizontal field of view
  6361. * @param aspect defines the aspect ratio
  6362. * @param znear defines the near clip plane
  6363. * @param zfar defines the far clip plane
  6364. * @param result defines the target matrix
  6365. * @param isVerticalFovFixed defines it the fov is vertically fixed (default) or horizontally
  6366. */
  6367. Matrix.PerspectiveFovLHToRef = function (fov, aspect, znear, zfar, result, isVerticalFovFixed) {
  6368. if (isVerticalFovFixed === void 0) { isVerticalFovFixed = true; }
  6369. var n = znear;
  6370. var f = zfar;
  6371. var t = 1.0 / (Math.tan(fov * 0.5));
  6372. var a = isVerticalFovFixed ? (t / aspect) : t;
  6373. var b = isVerticalFovFixed ? t : (t * aspect);
  6374. var c = (f + n) / (f - n);
  6375. var d = -2.0 * f * n / (f - n);
  6376. Matrix.FromValuesToRef(a, 0.0, 0.0, 0.0, 0.0, b, 0.0, 0.0, 0.0, 0.0, c, 1.0, 0.0, 0.0, d, 0.0, result);
  6377. };
  6378. /**
  6379. * Creates a right-handed perspective projection matrix
  6380. * @param fov defines the horizontal field of view
  6381. * @param aspect defines the aspect ratio
  6382. * @param znear defines the near clip plane
  6383. * @param zfar defines the far clip plane
  6384. * @returns a new matrix as a right-handed perspective projection matrix
  6385. */
  6386. Matrix.PerspectiveFovRH = function (fov, aspect, znear, zfar) {
  6387. var matrix = Matrix.Zero();
  6388. Matrix.PerspectiveFovRHToRef(fov, aspect, znear, zfar, matrix);
  6389. return matrix;
  6390. };
  6391. /**
  6392. * Stores a right-handed perspective projection into a given matrix
  6393. * @param fov defines the horizontal field of view
  6394. * @param aspect defines the aspect ratio
  6395. * @param znear defines the near clip plane
  6396. * @param zfar defines the far clip plane
  6397. * @param result defines the target matrix
  6398. * @param isVerticalFovFixed defines it the fov is vertically fixed (default) or horizontally
  6399. */
  6400. Matrix.PerspectiveFovRHToRef = function (fov, aspect, znear, zfar, result, isVerticalFovFixed) {
  6401. //alternatively this could be expressed as:
  6402. // m = PerspectiveFovLHToRef
  6403. // m[10] *= -1.0;
  6404. // m[11] *= -1.0;
  6405. if (isVerticalFovFixed === void 0) { isVerticalFovFixed = true; }
  6406. var n = znear;
  6407. var f = zfar;
  6408. var t = 1.0 / (Math.tan(fov * 0.5));
  6409. var a = isVerticalFovFixed ? (t / aspect) : t;
  6410. var b = isVerticalFovFixed ? t : (t * aspect);
  6411. var c = -(f + n) / (f - n);
  6412. var d = -2 * f * n / (f - n);
  6413. Matrix.FromValuesToRef(a, 0.0, 0.0, 0.0, 0.0, b, 0.0, 0.0, 0.0, 0.0, c, -1.0, 0.0, 0.0, d, 0.0, result);
  6414. };
  6415. /**
  6416. * Stores a perspective projection for WebVR info a given matrix
  6417. * @param fov defines the field of view
  6418. * @param znear defines the near clip plane
  6419. * @param zfar defines the far clip plane
  6420. * @param result defines the target matrix
  6421. * @param rightHanded defines if the matrix must be in right-handed mode (false by default)
  6422. */
  6423. Matrix.PerspectiveFovWebVRToRef = function (fov, znear, zfar, result, rightHanded) {
  6424. if (rightHanded === void 0) { rightHanded = false; }
  6425. var rightHandedFactor = rightHanded ? -1 : 1;
  6426. var upTan = Math.tan(fov.upDegrees * Math.PI / 180.0);
  6427. var downTan = Math.tan(fov.downDegrees * Math.PI / 180.0);
  6428. var leftTan = Math.tan(fov.leftDegrees * Math.PI / 180.0);
  6429. var rightTan = Math.tan(fov.rightDegrees * Math.PI / 180.0);
  6430. var xScale = 2.0 / (leftTan + rightTan);
  6431. var yScale = 2.0 / (upTan + downTan);
  6432. result.m[0] = xScale;
  6433. result.m[1] = result.m[2] = result.m[3] = result.m[4] = 0.0;
  6434. result.m[5] = yScale;
  6435. result.m[6] = result.m[7] = 0.0;
  6436. result.m[8] = ((leftTan - rightTan) * xScale * 0.5);
  6437. result.m[9] = -((upTan - downTan) * yScale * 0.5);
  6438. result.m[10] = -zfar / (znear - zfar);
  6439. result.m[11] = 1.0 * rightHandedFactor;
  6440. result.m[12] = result.m[13] = result.m[15] = 0.0;
  6441. result.m[14] = -(2.0 * zfar * znear) / (zfar - znear);
  6442. result._markAsUpdated();
  6443. };
  6444. /**
  6445. * Computes a complete transformation matrix
  6446. * @param viewport defines the viewport to use
  6447. * @param world defines the world matrix
  6448. * @param view defines the view matrix
  6449. * @param projection defines the projection matrix
  6450. * @param zmin defines the near clip plane
  6451. * @param zmax defines the far clip plane
  6452. * @returns the transformation matrix
  6453. */
  6454. Matrix.GetFinalMatrix = function (viewport, world, view, projection, zmin, zmax) {
  6455. var cw = viewport.width;
  6456. var ch = viewport.height;
  6457. var cx = viewport.x;
  6458. var cy = viewport.y;
  6459. var viewportMatrix = Matrix.FromValues(cw / 2.0, 0.0, 0.0, 0.0, 0.0, -ch / 2.0, 0.0, 0.0, 0.0, 0.0, zmax - zmin, 0.0, cx + cw / 2.0, ch / 2.0 + cy, zmin, 1);
  6460. return world.multiply(view).multiply(projection).multiply(viewportMatrix);
  6461. };
  6462. /**
  6463. * Extracts a 2x2 matrix from a given matrix and store the result in a Float32Array
  6464. * @param matrix defines the matrix to use
  6465. * @returns a new Float32Array array with 4 elements : the 2x2 matrix extracted from the given matrix
  6466. */
  6467. Matrix.GetAsMatrix2x2 = function (matrix) {
  6468. return new Float32Array([
  6469. matrix.m[0], matrix.m[1],
  6470. matrix.m[4], matrix.m[5]
  6471. ]);
  6472. };
  6473. /**
  6474. * Extracts a 3x3 matrix from a given matrix and store the result in a Float32Array
  6475. * @param matrix defines the matrix to use
  6476. * @returns a new Float32Array array with 9 elements : the 3x3 matrix extracted from the given matrix
  6477. */
  6478. Matrix.GetAsMatrix3x3 = function (matrix) {
  6479. return new Float32Array([
  6480. matrix.m[0], matrix.m[1], matrix.m[2],
  6481. matrix.m[4], matrix.m[5], matrix.m[6],
  6482. matrix.m[8], matrix.m[9], matrix.m[10]
  6483. ]);
  6484. };
  6485. /**
  6486. * Compute the transpose of a given matrix
  6487. * @param matrix defines the matrix to transpose
  6488. * @returns the new matrix
  6489. */
  6490. Matrix.Transpose = function (matrix) {
  6491. var result = new Matrix();
  6492. Matrix.TransposeToRef(matrix, result);
  6493. return result;
  6494. };
  6495. /**
  6496. * Compute the transpose of a matrix and store it in a target matrix
  6497. * @param matrix defines the matrix to transpose
  6498. * @param result defines the target matrix
  6499. */
  6500. Matrix.TransposeToRef = function (matrix, result) {
  6501. result.m[0] = matrix.m[0];
  6502. result.m[1] = matrix.m[4];
  6503. result.m[2] = matrix.m[8];
  6504. result.m[3] = matrix.m[12];
  6505. result.m[4] = matrix.m[1];
  6506. result.m[5] = matrix.m[5];
  6507. result.m[6] = matrix.m[9];
  6508. result.m[7] = matrix.m[13];
  6509. result.m[8] = matrix.m[2];
  6510. result.m[9] = matrix.m[6];
  6511. result.m[10] = matrix.m[10];
  6512. result.m[11] = matrix.m[14];
  6513. result.m[12] = matrix.m[3];
  6514. result.m[13] = matrix.m[7];
  6515. result.m[14] = matrix.m[11];
  6516. result.m[15] = matrix.m[15];
  6517. };
  6518. /**
  6519. * Computes a reflection matrix from a plane
  6520. * @param plane defines the reflection plane
  6521. * @returns a new matrix
  6522. */
  6523. Matrix.Reflection = function (plane) {
  6524. var matrix = new Matrix();
  6525. Matrix.ReflectionToRef(plane, matrix);
  6526. return matrix;
  6527. };
  6528. /**
  6529. * Computes a reflection matrix from a plane
  6530. * @param plane defines the reflection plane
  6531. * @param result defines the target matrix
  6532. */
  6533. Matrix.ReflectionToRef = function (plane, result) {
  6534. plane.normalize();
  6535. var x = plane.normal.x;
  6536. var y = plane.normal.y;
  6537. var z = plane.normal.z;
  6538. var temp = -2 * x;
  6539. var temp2 = -2 * y;
  6540. var temp3 = -2 * z;
  6541. result.m[0] = (temp * x) + 1;
  6542. result.m[1] = temp2 * x;
  6543. result.m[2] = temp3 * x;
  6544. result.m[3] = 0.0;
  6545. result.m[4] = temp * y;
  6546. result.m[5] = (temp2 * y) + 1;
  6547. result.m[6] = temp3 * y;
  6548. result.m[7] = 0.0;
  6549. result.m[8] = temp * z;
  6550. result.m[9] = temp2 * z;
  6551. result.m[10] = (temp3 * z) + 1;
  6552. result.m[11] = 0.0;
  6553. result.m[12] = temp * plane.d;
  6554. result.m[13] = temp2 * plane.d;
  6555. result.m[14] = temp3 * plane.d;
  6556. result.m[15] = 1.0;
  6557. result._markAsUpdated();
  6558. };
  6559. /**
  6560. * Sets the given matrix as a rotation matrix composed from the 3 left handed axes
  6561. * @param xaxis defines the value of the 1st axis
  6562. * @param yaxis defines the value of the 2nd axis
  6563. * @param zaxis defines the value of the 3rd axis
  6564. * @param result defines the target matrix
  6565. */
  6566. Matrix.FromXYZAxesToRef = function (xaxis, yaxis, zaxis, result) {
  6567. result.m[0] = xaxis.x;
  6568. result.m[1] = xaxis.y;
  6569. result.m[2] = xaxis.z;
  6570. result.m[3] = 0.0;
  6571. result.m[4] = yaxis.x;
  6572. result.m[5] = yaxis.y;
  6573. result.m[6] = yaxis.z;
  6574. result.m[7] = 0.0;
  6575. result.m[8] = zaxis.x;
  6576. result.m[9] = zaxis.y;
  6577. result.m[10] = zaxis.z;
  6578. result.m[11] = 0.0;
  6579. result.m[12] = 0.0;
  6580. result.m[13] = 0.0;
  6581. result.m[14] = 0.0;
  6582. result.m[15] = 1.0;
  6583. result._markAsUpdated();
  6584. };
  6585. /**
  6586. * Creates a rotation matrix from a quaternion and stores it in a target matrix
  6587. * @param quat defines the quaternion to use
  6588. * @param result defines the target matrix
  6589. */
  6590. Matrix.FromQuaternionToRef = function (quat, result) {
  6591. var xx = quat.x * quat.x;
  6592. var yy = quat.y * quat.y;
  6593. var zz = quat.z * quat.z;
  6594. var xy = quat.x * quat.y;
  6595. var zw = quat.z * quat.w;
  6596. var zx = quat.z * quat.x;
  6597. var yw = quat.y * quat.w;
  6598. var yz = quat.y * quat.z;
  6599. var xw = quat.x * quat.w;
  6600. result.m[0] = 1.0 - (2.0 * (yy + zz));
  6601. result.m[1] = 2.0 * (xy + zw);
  6602. result.m[2] = 2.0 * (zx - yw);
  6603. result.m[3] = 0.0;
  6604. result.m[4] = 2.0 * (xy - zw);
  6605. result.m[5] = 1.0 - (2.0 * (zz + xx));
  6606. result.m[6] = 2.0 * (yz + xw);
  6607. result.m[7] = 0.0;
  6608. result.m[8] = 2.0 * (zx + yw);
  6609. result.m[9] = 2.0 * (yz - xw);
  6610. result.m[10] = 1.0 - (2.0 * (yy + xx));
  6611. result.m[11] = 0.0;
  6612. result.m[12] = 0.0;
  6613. result.m[13] = 0.0;
  6614. result.m[14] = 0.0;
  6615. result.m[15] = 1.0;
  6616. result._markAsUpdated();
  6617. };
  6618. Matrix._tempQuaternion = new Quaternion();
  6619. Matrix._xAxis = Vector3.Zero();
  6620. Matrix._yAxis = Vector3.Zero();
  6621. Matrix._zAxis = Vector3.Zero();
  6622. Matrix._updateFlagSeed = 0;
  6623. Matrix._identityReadOnly = Matrix.Identity();
  6624. return Matrix;
  6625. }());
  6626. BABYLON.Matrix = Matrix;
  6627. var Plane = /** @class */ (function () {
  6628. /**
  6629. * Creates a Plane object according to the given floats a, b, c, d and the plane equation : ax + by + cz + d = 0
  6630. */
  6631. function Plane(a, b, c, d) {
  6632. this.normal = new Vector3(a, b, c);
  6633. this.d = d;
  6634. }
  6635. /**
  6636. * Returns the plane coordinates as a new array of 4 elements [a, b, c, d].
  6637. */
  6638. Plane.prototype.asArray = function () {
  6639. return [this.normal.x, this.normal.y, this.normal.z, this.d];
  6640. };
  6641. // Methods
  6642. /**
  6643. * Returns a new plane copied from the current Plane.
  6644. */
  6645. Plane.prototype.clone = function () {
  6646. return new Plane(this.normal.x, this.normal.y, this.normal.z, this.d);
  6647. };
  6648. /**
  6649. * Returns the string "Plane".
  6650. */
  6651. Plane.prototype.getClassName = function () {
  6652. return "Plane";
  6653. };
  6654. /**
  6655. * Returns the Plane hash code.
  6656. */
  6657. Plane.prototype.getHashCode = function () {
  6658. var hash = this.normal.getHashCode();
  6659. hash = (hash * 397) ^ (this.d || 0);
  6660. return hash;
  6661. };
  6662. /**
  6663. * Normalize the current Plane in place.
  6664. * Returns the updated Plane.
  6665. */
  6666. Plane.prototype.normalize = function () {
  6667. var norm = (Math.sqrt((this.normal.x * this.normal.x) + (this.normal.y * this.normal.y) + (this.normal.z * this.normal.z)));
  6668. var magnitude = 0.0;
  6669. if (norm !== 0) {
  6670. magnitude = 1.0 / norm;
  6671. }
  6672. this.normal.x *= magnitude;
  6673. this.normal.y *= magnitude;
  6674. this.normal.z *= magnitude;
  6675. this.d *= magnitude;
  6676. return this;
  6677. };
  6678. /**
  6679. * Returns a new Plane as the result of the transformation of the current Plane by the given matrix.
  6680. */
  6681. Plane.prototype.transform = function (transformation) {
  6682. var transposedMatrix = Matrix.Transpose(transformation);
  6683. var x = this.normal.x;
  6684. var y = this.normal.y;
  6685. var z = this.normal.z;
  6686. var d = this.d;
  6687. var normalX = (((x * transposedMatrix.m[0]) + (y * transposedMatrix.m[1])) + (z * transposedMatrix.m[2])) + (d * transposedMatrix.m[3]);
  6688. var normalY = (((x * transposedMatrix.m[4]) + (y * transposedMatrix.m[5])) + (z * transposedMatrix.m[6])) + (d * transposedMatrix.m[7]);
  6689. var normalZ = (((x * transposedMatrix.m[8]) + (y * transposedMatrix.m[9])) + (z * transposedMatrix.m[10])) + (d * transposedMatrix.m[11]);
  6690. var finalD = (((x * transposedMatrix.m[12]) + (y * transposedMatrix.m[13])) + (z * transposedMatrix.m[14])) + (d * transposedMatrix.m[15]);
  6691. return new Plane(normalX, normalY, normalZ, finalD);
  6692. };
  6693. /**
  6694. * Returns the dot product (float) of the point coordinates and the plane normal.
  6695. */
  6696. Plane.prototype.dotCoordinate = function (point) {
  6697. return ((((this.normal.x * point.x) + (this.normal.y * point.y)) + (this.normal.z * point.z)) + this.d);
  6698. };
  6699. /**
  6700. * Updates the current Plane from the plane defined by the three given points.
  6701. * Returns the updated Plane.
  6702. */
  6703. Plane.prototype.copyFromPoints = function (point1, point2, point3) {
  6704. var x1 = point2.x - point1.x;
  6705. var y1 = point2.y - point1.y;
  6706. var z1 = point2.z - point1.z;
  6707. var x2 = point3.x - point1.x;
  6708. var y2 = point3.y - point1.y;
  6709. var z2 = point3.z - point1.z;
  6710. var yz = (y1 * z2) - (z1 * y2);
  6711. var xz = (z1 * x2) - (x1 * z2);
  6712. var xy = (x1 * y2) - (y1 * x2);
  6713. var pyth = (Math.sqrt((yz * yz) + (xz * xz) + (xy * xy)));
  6714. var invPyth;
  6715. if (pyth !== 0) {
  6716. invPyth = 1.0 / pyth;
  6717. }
  6718. else {
  6719. invPyth = 0.0;
  6720. }
  6721. this.normal.x = yz * invPyth;
  6722. this.normal.y = xz * invPyth;
  6723. this.normal.z = xy * invPyth;
  6724. this.d = -((this.normal.x * point1.x) + (this.normal.y * point1.y) + (this.normal.z * point1.z));
  6725. return this;
  6726. };
  6727. /**
  6728. * Boolean : True is the vector "direction" is the same side than the plane normal.
  6729. */
  6730. Plane.prototype.isFrontFacingTo = function (direction, epsilon) {
  6731. var dot = Vector3.Dot(this.normal, direction);
  6732. return (dot <= epsilon);
  6733. };
  6734. /**
  6735. * Returns the signed distance (float) from the given point to the Plane.
  6736. */
  6737. Plane.prototype.signedDistanceTo = function (point) {
  6738. return Vector3.Dot(point, this.normal) + this.d;
  6739. };
  6740. // Statics
  6741. /**
  6742. * Returns a new Plane from the given array.
  6743. */
  6744. Plane.FromArray = function (array) {
  6745. return new Plane(array[0], array[1], array[2], array[3]);
  6746. };
  6747. /**
  6748. * Returns a new Plane defined by the three given points.
  6749. */
  6750. Plane.FromPoints = function (point1, point2, point3) {
  6751. var result = new Plane(0.0, 0.0, 0.0, 0.0);
  6752. result.copyFromPoints(point1, point2, point3);
  6753. return result;
  6754. };
  6755. /**
  6756. * Returns a new Plane the normal vector to this plane at the given origin point.
  6757. * Note : the vector "normal" is updated because normalized.
  6758. */
  6759. Plane.FromPositionAndNormal = function (origin, normal) {
  6760. var result = new Plane(0.0, 0.0, 0.0, 0.0);
  6761. normal.normalize();
  6762. result.normal = normal;
  6763. result.d = -(normal.x * origin.x + normal.y * origin.y + normal.z * origin.z);
  6764. return result;
  6765. };
  6766. /**
  6767. * Returns the signed distance between the plane defined by the normal vector at the "origin"" point and the given other point.
  6768. */
  6769. Plane.SignedDistanceToPlaneFromPositionAndNormal = function (origin, normal, point) {
  6770. var d = -(normal.x * origin.x + normal.y * origin.y + normal.z * origin.z);
  6771. return Vector3.Dot(point, normal) + d;
  6772. };
  6773. return Plane;
  6774. }());
  6775. BABYLON.Plane = Plane;
  6776. var Viewport = /** @class */ (function () {
  6777. /**
  6778. * Creates a Viewport object located at (x, y) and sized (width, height).
  6779. */
  6780. function Viewport(x, y, width, height) {
  6781. this.x = x;
  6782. this.y = y;
  6783. this.width = width;
  6784. this.height = height;
  6785. }
  6786. Viewport.prototype.toGlobal = function (renderWidthOrEngine, renderHeight) {
  6787. if (renderWidthOrEngine.getRenderWidth) {
  6788. var engine = renderWidthOrEngine;
  6789. return this.toGlobal(engine.getRenderWidth(), engine.getRenderHeight());
  6790. }
  6791. var renderWidth = renderWidthOrEngine;
  6792. return new Viewport(this.x * renderWidth, this.y * renderHeight, this.width * renderWidth, this.height * renderHeight);
  6793. };
  6794. /**
  6795. * Returns a new Viewport copied from the current one.
  6796. */
  6797. Viewport.prototype.clone = function () {
  6798. return new Viewport(this.x, this.y, this.width, this.height);
  6799. };
  6800. return Viewport;
  6801. }());
  6802. BABYLON.Viewport = Viewport;
  6803. var Frustum = /** @class */ (function () {
  6804. function Frustum() {
  6805. }
  6806. /**
  6807. * Returns a new array of 6 Frustum planes computed by the given transformation matrix.
  6808. */
  6809. Frustum.GetPlanes = function (transform) {
  6810. var frustumPlanes = [];
  6811. for (var index = 0; index < 6; index++) {
  6812. frustumPlanes.push(new Plane(0.0, 0.0, 0.0, 0.0));
  6813. }
  6814. Frustum.GetPlanesToRef(transform, frustumPlanes);
  6815. return frustumPlanes;
  6816. };
  6817. Frustum.GetNearPlaneToRef = function (transform, frustumPlane) {
  6818. frustumPlane.normal.x = transform.m[3] + transform.m[2];
  6819. frustumPlane.normal.y = transform.m[7] + transform.m[6];
  6820. frustumPlane.normal.z = transform.m[11] + transform.m[10];
  6821. frustumPlane.d = transform.m[15] + transform.m[14];
  6822. frustumPlane.normalize();
  6823. };
  6824. Frustum.GetFarPlaneToRef = function (transform, frustumPlane) {
  6825. frustumPlane.normal.x = transform.m[3] - transform.m[2];
  6826. frustumPlane.normal.y = transform.m[7] - transform.m[6];
  6827. frustumPlane.normal.z = transform.m[11] - transform.m[10];
  6828. frustumPlane.d = transform.m[15] - transform.m[14];
  6829. frustumPlane.normalize();
  6830. };
  6831. Frustum.GetLeftPlaneToRef = function (transform, frustumPlane) {
  6832. frustumPlane.normal.x = transform.m[3] + transform.m[0];
  6833. frustumPlane.normal.y = transform.m[7] + transform.m[4];
  6834. frustumPlane.normal.z = transform.m[11] + transform.m[8];
  6835. frustumPlane.d = transform.m[15] + transform.m[12];
  6836. frustumPlane.normalize();
  6837. };
  6838. Frustum.GetRightPlaneToRef = function (transform, frustumPlane) {
  6839. frustumPlane.normal.x = transform.m[3] - transform.m[0];
  6840. frustumPlane.normal.y = transform.m[7] - transform.m[4];
  6841. frustumPlane.normal.z = transform.m[11] - transform.m[8];
  6842. frustumPlane.d = transform.m[15] - transform.m[12];
  6843. frustumPlane.normalize();
  6844. };
  6845. Frustum.GetTopPlaneToRef = function (transform, frustumPlane) {
  6846. frustumPlane.normal.x = transform.m[3] - transform.m[1];
  6847. frustumPlane.normal.y = transform.m[7] - transform.m[5];
  6848. frustumPlane.normal.z = transform.m[11] - transform.m[9];
  6849. frustumPlane.d = transform.m[15] - transform.m[13];
  6850. frustumPlane.normalize();
  6851. };
  6852. Frustum.GetBottomPlaneToRef = function (transform, frustumPlane) {
  6853. frustumPlane.normal.x = transform.m[3] + transform.m[1];
  6854. frustumPlane.normal.y = transform.m[7] + transform.m[5];
  6855. frustumPlane.normal.z = transform.m[11] + transform.m[9];
  6856. frustumPlane.d = transform.m[15] + transform.m[13];
  6857. frustumPlane.normalize();
  6858. };
  6859. /**
  6860. * Sets the given array "frustumPlanes" with the 6 Frustum planes computed by the given transformation matrix.
  6861. */
  6862. Frustum.GetPlanesToRef = function (transform, frustumPlanes) {
  6863. // Near
  6864. Frustum.GetNearPlaneToRef(transform, frustumPlanes[0]);
  6865. // Far
  6866. Frustum.GetFarPlaneToRef(transform, frustumPlanes[1]);
  6867. // Left
  6868. Frustum.GetLeftPlaneToRef(transform, frustumPlanes[2]);
  6869. // Right
  6870. Frustum.GetRightPlaneToRef(transform, frustumPlanes[3]);
  6871. // Top
  6872. Frustum.GetTopPlaneToRef(transform, frustumPlanes[4]);
  6873. // Bottom
  6874. Frustum.GetBottomPlaneToRef(transform, frustumPlanes[5]);
  6875. };
  6876. return Frustum;
  6877. }());
  6878. BABYLON.Frustum = Frustum;
  6879. /** Defines supported spaces */
  6880. var Space;
  6881. (function (Space) {
  6882. /** Local (object) space */
  6883. Space[Space["LOCAL"] = 0] = "LOCAL";
  6884. /** World space */
  6885. Space[Space["WORLD"] = 1] = "WORLD";
  6886. /** Bone space */
  6887. Space[Space["BONE"] = 2] = "BONE";
  6888. })(Space = BABYLON.Space || (BABYLON.Space = {}));
  6889. /** Defines the 3 main axes */
  6890. var Axis = /** @class */ (function () {
  6891. function Axis() {
  6892. }
  6893. /** X axis */
  6894. Axis.X = new Vector3(1.0, 0.0, 0.0);
  6895. /** Y axis */
  6896. Axis.Y = new Vector3(0.0, 1.0, 0.0);
  6897. /** Z axis */
  6898. Axis.Z = new Vector3(0.0, 0.0, 1.0);
  6899. return Axis;
  6900. }());
  6901. BABYLON.Axis = Axis;
  6902. ;
  6903. var BezierCurve = /** @class */ (function () {
  6904. function BezierCurve() {
  6905. }
  6906. /**
  6907. * Returns the cubic Bezier interpolated value (float) at "t" (float) from the given x1, y1, x2, y2 floats.
  6908. */
  6909. BezierCurve.interpolate = function (t, x1, y1, x2, y2) {
  6910. // Extract X (which is equal to time here)
  6911. var f0 = 1 - 3 * x2 + 3 * x1;
  6912. var f1 = 3 * x2 - 6 * x1;
  6913. var f2 = 3 * x1;
  6914. var refinedT = t;
  6915. for (var i = 0; i < 5; i++) {
  6916. var refinedT2 = refinedT * refinedT;
  6917. var refinedT3 = refinedT2 * refinedT;
  6918. var x = f0 * refinedT3 + f1 * refinedT2 + f2 * refinedT;
  6919. var slope = 1.0 / (3.0 * f0 * refinedT2 + 2.0 * f1 * refinedT + f2);
  6920. refinedT -= (x - t) * slope;
  6921. refinedT = Math.min(1, Math.max(0, refinedT));
  6922. }
  6923. // Resolve cubic bezier for the given x
  6924. return 3 * Math.pow(1 - refinedT, 2) * refinedT * y1 +
  6925. 3 * (1 - refinedT) * Math.pow(refinedT, 2) * y2 +
  6926. Math.pow(refinedT, 3);
  6927. };
  6928. return BezierCurve;
  6929. }());
  6930. BABYLON.BezierCurve = BezierCurve;
  6931. /**
  6932. * Defines potential orientation for back face culling
  6933. */
  6934. var Orientation;
  6935. (function (Orientation) {
  6936. /**
  6937. * Clockwise
  6938. */
  6939. Orientation[Orientation["CW"] = 0] = "CW";
  6940. /** Counter clockwise */
  6941. Orientation[Orientation["CCW"] = 1] = "CCW";
  6942. })(Orientation = BABYLON.Orientation || (BABYLON.Orientation = {}));
  6943. /**
  6944. * Defines angle representation
  6945. */
  6946. var Angle = /** @class */ (function () {
  6947. /**
  6948. * Creates an Angle object of "radians" radians (float).
  6949. */
  6950. function Angle(radians) {
  6951. this._radians = radians;
  6952. if (this._radians < 0.0)
  6953. this._radians += (2.0 * Math.PI);
  6954. }
  6955. /**
  6956. * Get value in degrees
  6957. * @returns the Angle value in degrees (float)
  6958. */
  6959. Angle.prototype.degrees = function () {
  6960. return this._radians * 180.0 / Math.PI;
  6961. };
  6962. /**
  6963. * Get value in radians
  6964. * @returns the Angle value in radians (float)
  6965. */
  6966. Angle.prototype.radians = function () {
  6967. return this._radians;
  6968. };
  6969. /**
  6970. * Gets a new Angle object valued with the angle value in radians between the two given vectors
  6971. * @param a defines first vector
  6972. * @param b defines second vector
  6973. * @returns a new Angle
  6974. */
  6975. Angle.BetweenTwoPoints = function (a, b) {
  6976. var delta = b.subtract(a);
  6977. var theta = Math.atan2(delta.y, delta.x);
  6978. return new Angle(theta);
  6979. };
  6980. /**
  6981. * Gets a new Angle object from the given float in radians
  6982. * @param radians defines the angle value in radians
  6983. * @returns a new Angle
  6984. */
  6985. Angle.FromRadians = function (radians) {
  6986. return new Angle(radians);
  6987. };
  6988. /**
  6989. * Gets a new Angle object from the given float in degrees
  6990. * @param degrees defines the angle value in degrees
  6991. * @returns a new Angle
  6992. */
  6993. Angle.FromDegrees = function (degrees) {
  6994. return new Angle(degrees * Math.PI / 180.0);
  6995. };
  6996. return Angle;
  6997. }());
  6998. BABYLON.Angle = Angle;
  6999. var Arc2 = /** @class */ (function () {
  7000. /**
  7001. * Creates an Arc object from the three given points : start, middle and end.
  7002. */
  7003. function Arc2(startPoint, midPoint, endPoint) {
  7004. this.startPoint = startPoint;
  7005. this.midPoint = midPoint;
  7006. this.endPoint = endPoint;
  7007. var temp = Math.pow(midPoint.x, 2) + Math.pow(midPoint.y, 2);
  7008. var startToMid = (Math.pow(startPoint.x, 2) + Math.pow(startPoint.y, 2) - temp) / 2.;
  7009. var midToEnd = (temp - Math.pow(endPoint.x, 2) - Math.pow(endPoint.y, 2)) / 2.;
  7010. var det = (startPoint.x - midPoint.x) * (midPoint.y - endPoint.y) - (midPoint.x - endPoint.x) * (startPoint.y - midPoint.y);
  7011. this.centerPoint = new Vector2((startToMid * (midPoint.y - endPoint.y) - midToEnd * (startPoint.y - midPoint.y)) / det, ((startPoint.x - midPoint.x) * midToEnd - (midPoint.x - endPoint.x) * startToMid) / det);
  7012. this.radius = this.centerPoint.subtract(this.startPoint).length();
  7013. this.startAngle = Angle.BetweenTwoPoints(this.centerPoint, this.startPoint);
  7014. var a1 = this.startAngle.degrees();
  7015. var a2 = Angle.BetweenTwoPoints(this.centerPoint, this.midPoint).degrees();
  7016. var a3 = Angle.BetweenTwoPoints(this.centerPoint, this.endPoint).degrees();
  7017. // angles correction
  7018. if (a2 - a1 > +180.0)
  7019. a2 -= 360.0;
  7020. if (a2 - a1 < -180.0)
  7021. a2 += 360.0;
  7022. if (a3 - a2 > +180.0)
  7023. a3 -= 360.0;
  7024. if (a3 - a2 < -180.0)
  7025. a3 += 360.0;
  7026. this.orientation = (a2 - a1) < 0 ? Orientation.CW : Orientation.CCW;
  7027. this.angle = Angle.FromDegrees(this.orientation === Orientation.CW ? a1 - a3 : a3 - a1);
  7028. }
  7029. return Arc2;
  7030. }());
  7031. BABYLON.Arc2 = Arc2;
  7032. var Path2 = /** @class */ (function () {
  7033. /**
  7034. * Creates a Path2 object from the starting 2D coordinates x and y.
  7035. */
  7036. function Path2(x, y) {
  7037. this._points = new Array();
  7038. this._length = 0.0;
  7039. this.closed = false;
  7040. this._points.push(new Vector2(x, y));
  7041. }
  7042. /**
  7043. * Adds a new segment until the given coordinates (x, y) to the current Path2.
  7044. * Returns the updated Path2.
  7045. */
  7046. Path2.prototype.addLineTo = function (x, y) {
  7047. if (this.closed) {
  7048. return this;
  7049. }
  7050. var newPoint = new Vector2(x, y);
  7051. var previousPoint = this._points[this._points.length - 1];
  7052. this._points.push(newPoint);
  7053. this._length += newPoint.subtract(previousPoint).length();
  7054. return this;
  7055. };
  7056. /**
  7057. * Adds _numberOfSegments_ segments according to the arc definition (middle point coordinates, end point coordinates, the arc start point being the current Path2 last point) to the current Path2.
  7058. * Returns the updated Path2.
  7059. */
  7060. Path2.prototype.addArcTo = function (midX, midY, endX, endY, numberOfSegments) {
  7061. if (numberOfSegments === void 0) { numberOfSegments = 36; }
  7062. if (this.closed) {
  7063. return this;
  7064. }
  7065. var startPoint = this._points[this._points.length - 1];
  7066. var midPoint = new Vector2(midX, midY);
  7067. var endPoint = new Vector2(endX, endY);
  7068. var arc = new Arc2(startPoint, midPoint, endPoint);
  7069. var increment = arc.angle.radians() / numberOfSegments;
  7070. if (arc.orientation === Orientation.CW)
  7071. increment *= -1;
  7072. var currentAngle = arc.startAngle.radians() + increment;
  7073. for (var i = 0; i < numberOfSegments; i++) {
  7074. var x = Math.cos(currentAngle) * arc.radius + arc.centerPoint.x;
  7075. var y = Math.sin(currentAngle) * arc.radius + arc.centerPoint.y;
  7076. this.addLineTo(x, y);
  7077. currentAngle += increment;
  7078. }
  7079. return this;
  7080. };
  7081. /**
  7082. * Closes the Path2.
  7083. * Returns the Path2.
  7084. */
  7085. Path2.prototype.close = function () {
  7086. this.closed = true;
  7087. return this;
  7088. };
  7089. /**
  7090. * Returns the Path2 total length (float).
  7091. */
  7092. Path2.prototype.length = function () {
  7093. var result = this._length;
  7094. if (!this.closed) {
  7095. var lastPoint = this._points[this._points.length - 1];
  7096. var firstPoint = this._points[0];
  7097. result += (firstPoint.subtract(lastPoint).length());
  7098. }
  7099. return result;
  7100. };
  7101. /**
  7102. * Returns the Path2 internal array of points.
  7103. */
  7104. Path2.prototype.getPoints = function () {
  7105. return this._points;
  7106. };
  7107. /**
  7108. * Returns a new Vector2 located at a percentage of the Path2 total length on this path.
  7109. */
  7110. Path2.prototype.getPointAtLengthPosition = function (normalizedLengthPosition) {
  7111. if (normalizedLengthPosition < 0 || normalizedLengthPosition > 1) {
  7112. return Vector2.Zero();
  7113. }
  7114. var lengthPosition = normalizedLengthPosition * this.length();
  7115. var previousOffset = 0;
  7116. for (var i = 0; i < this._points.length; i++) {
  7117. var j = (i + 1) % this._points.length;
  7118. var a = this._points[i];
  7119. var b = this._points[j];
  7120. var bToA = b.subtract(a);
  7121. var nextOffset = (bToA.length() + previousOffset);
  7122. if (lengthPosition >= previousOffset && lengthPosition <= nextOffset) {
  7123. var dir = bToA.normalize();
  7124. var localOffset = lengthPosition - previousOffset;
  7125. return new Vector2(a.x + (dir.x * localOffset), a.y + (dir.y * localOffset));
  7126. }
  7127. previousOffset = nextOffset;
  7128. }
  7129. return Vector2.Zero();
  7130. };
  7131. /**
  7132. * Returns a new Path2 starting at the coordinates (x, y).
  7133. */
  7134. Path2.StartingAt = function (x, y) {
  7135. return new Path2(x, y);
  7136. };
  7137. return Path2;
  7138. }());
  7139. BABYLON.Path2 = Path2;
  7140. var Path3D = /** @class */ (function () {
  7141. /**
  7142. * new Path3D(path, normal, raw)
  7143. * Creates a Path3D. A Path3D is a logical math object, so not a mesh.
  7144. * please read the description in the tutorial : http://doc.babylonjs.com/tutorials/How_to_use_Path3D
  7145. * path : an array of Vector3, the curve axis of the Path3D
  7146. * normal (optional) : Vector3, the first wanted normal to the curve. Ex (0, 1, 0) for a vertical normal.
  7147. * raw (optional, default false) : boolean, if true the returned Path3D isn't normalized. Useful to depict path acceleration or speed.
  7148. */
  7149. function Path3D(path, firstNormal, raw) {
  7150. if (firstNormal === void 0) { firstNormal = null; }
  7151. this.path = path;
  7152. this._curve = new Array();
  7153. this._distances = new Array();
  7154. this._tangents = new Array();
  7155. this._normals = new Array();
  7156. this._binormals = new Array();
  7157. for (var p = 0; p < path.length; p++) {
  7158. this._curve[p] = path[p].clone(); // hard copy
  7159. }
  7160. this._raw = raw || false;
  7161. this._compute(firstNormal);
  7162. }
  7163. /**
  7164. * Returns the Path3D array of successive Vector3 designing its curve.
  7165. */
  7166. Path3D.prototype.getCurve = function () {
  7167. return this._curve;
  7168. };
  7169. /**
  7170. * Returns an array populated with tangent vectors on each Path3D curve point.
  7171. */
  7172. Path3D.prototype.getTangents = function () {
  7173. return this._tangents;
  7174. };
  7175. /**
  7176. * Returns an array populated with normal vectors on each Path3D curve point.
  7177. */
  7178. Path3D.prototype.getNormals = function () {
  7179. return this._normals;
  7180. };
  7181. /**
  7182. * Returns an array populated with binormal vectors on each Path3D curve point.
  7183. */
  7184. Path3D.prototype.getBinormals = function () {
  7185. return this._binormals;
  7186. };
  7187. /**
  7188. * Returns an array populated with distances (float) of the i-th point from the first curve point.
  7189. */
  7190. Path3D.prototype.getDistances = function () {
  7191. return this._distances;
  7192. };
  7193. /**
  7194. * Forces the Path3D tangent, normal, binormal and distance recomputation.
  7195. * Returns the same object updated.
  7196. */
  7197. Path3D.prototype.update = function (path, firstNormal) {
  7198. if (firstNormal === void 0) { firstNormal = null; }
  7199. for (var p = 0; p < path.length; p++) {
  7200. this._curve[p].x = path[p].x;
  7201. this._curve[p].y = path[p].y;
  7202. this._curve[p].z = path[p].z;
  7203. }
  7204. this._compute(firstNormal);
  7205. return this;
  7206. };
  7207. // private function compute() : computes tangents, normals and binormals
  7208. Path3D.prototype._compute = function (firstNormal) {
  7209. var l = this._curve.length;
  7210. // first and last tangents
  7211. this._tangents[0] = this._getFirstNonNullVector(0);
  7212. if (!this._raw) {
  7213. this._tangents[0].normalize();
  7214. }
  7215. this._tangents[l - 1] = this._curve[l - 1].subtract(this._curve[l - 2]);
  7216. if (!this._raw) {
  7217. this._tangents[l - 1].normalize();
  7218. }
  7219. // normals and binormals at first point : arbitrary vector with _normalVector()
  7220. var tg0 = this._tangents[0];
  7221. var pp0 = this._normalVector(this._curve[0], tg0, firstNormal);
  7222. this._normals[0] = pp0;
  7223. if (!this._raw) {
  7224. this._normals[0].normalize();
  7225. }
  7226. this._binormals[0] = Vector3.Cross(tg0, this._normals[0]);
  7227. if (!this._raw) {
  7228. this._binormals[0].normalize();
  7229. }
  7230. this._distances[0] = 0.0;
  7231. // normals and binormals : next points
  7232. var prev; // previous vector (segment)
  7233. var cur; // current vector (segment)
  7234. var curTang; // current tangent
  7235. // previous normal
  7236. var prevBinor; // previous binormal
  7237. for (var i = 1; i < l; i++) {
  7238. // tangents
  7239. prev = this._getLastNonNullVector(i);
  7240. if (i < l - 1) {
  7241. cur = this._getFirstNonNullVector(i);
  7242. this._tangents[i] = prev.add(cur);
  7243. this._tangents[i].normalize();
  7244. }
  7245. this._distances[i] = this._distances[i - 1] + prev.length();
  7246. // normals and binormals
  7247. // http://www.cs.cmu.edu/afs/andrew/scs/cs/15-462/web/old/asst2camera.html
  7248. curTang = this._tangents[i];
  7249. prevBinor = this._binormals[i - 1];
  7250. this._normals[i] = Vector3.Cross(prevBinor, curTang);
  7251. if (!this._raw) {
  7252. this._normals[i].normalize();
  7253. }
  7254. this._binormals[i] = Vector3.Cross(curTang, this._normals[i]);
  7255. if (!this._raw) {
  7256. this._binormals[i].normalize();
  7257. }
  7258. }
  7259. };
  7260. // private function getFirstNonNullVector(index)
  7261. // returns the first non null vector from index : curve[index + N].subtract(curve[index])
  7262. Path3D.prototype._getFirstNonNullVector = function (index) {
  7263. var i = 1;
  7264. var nNVector = this._curve[index + i].subtract(this._curve[index]);
  7265. while (nNVector.length() === 0 && index + i + 1 < this._curve.length) {
  7266. i++;
  7267. nNVector = this._curve[index + i].subtract(this._curve[index]);
  7268. }
  7269. return nNVector;
  7270. };
  7271. // private function getLastNonNullVector(index)
  7272. // returns the last non null vector from index : curve[index].subtract(curve[index - N])
  7273. Path3D.prototype._getLastNonNullVector = function (index) {
  7274. var i = 1;
  7275. var nLVector = this._curve[index].subtract(this._curve[index - i]);
  7276. while (nLVector.length() === 0 && index > i + 1) {
  7277. i++;
  7278. nLVector = this._curve[index].subtract(this._curve[index - i]);
  7279. }
  7280. return nLVector;
  7281. };
  7282. // private function normalVector(v0, vt, va) :
  7283. // returns an arbitrary point in the plane defined by the point v0 and the vector vt orthogonal to this plane
  7284. // if va is passed, it returns the va projection on the plane orthogonal to vt at the point v0
  7285. Path3D.prototype._normalVector = function (v0, vt, va) {
  7286. var normal0;
  7287. var tgl = vt.length();
  7288. if (tgl === 0.0) {
  7289. tgl = 1.0;
  7290. }
  7291. if (va === undefined || va === null) {
  7292. var point;
  7293. if (!BABYLON.Scalar.WithinEpsilon(Math.abs(vt.y) / tgl, 1.0, BABYLON.Epsilon)) { // search for a point in the plane
  7294. point = new Vector3(0.0, -1.0, 0.0);
  7295. }
  7296. else if (!BABYLON.Scalar.WithinEpsilon(Math.abs(vt.x) / tgl, 1.0, BABYLON.Epsilon)) {
  7297. point = new Vector3(1.0, 0.0, 0.0);
  7298. }
  7299. else if (!BABYLON.Scalar.WithinEpsilon(Math.abs(vt.z) / tgl, 1.0, BABYLON.Epsilon)) {
  7300. point = new Vector3(0.0, 0.0, 1.0);
  7301. }
  7302. else {
  7303. point = Vector3.Zero();
  7304. }
  7305. normal0 = Vector3.Cross(vt, point);
  7306. }
  7307. else {
  7308. normal0 = Vector3.Cross(vt, va);
  7309. Vector3.CrossToRef(normal0, vt, normal0);
  7310. }
  7311. normal0.normalize();
  7312. return normal0;
  7313. };
  7314. return Path3D;
  7315. }());
  7316. BABYLON.Path3D = Path3D;
  7317. var Curve3 = /** @class */ (function () {
  7318. /**
  7319. * A Curve3 object is a logical object, so not a mesh, to handle curves in the 3D geometric space.
  7320. * A Curve3 is designed from a series of successive Vector3.
  7321. * Tuto : http://doc.babylonjs.com/tutorials/How_to_use_Curve3#curve3-object
  7322. */
  7323. function Curve3(points) {
  7324. this._length = 0.0;
  7325. this._points = points;
  7326. this._length = this._computeLength(points);
  7327. }
  7328. /**
  7329. * Returns a Curve3 object along a Quadratic Bezier curve : http://doc.babylonjs.com/tutorials/How_to_use_Curve3#quadratic-bezier-curve
  7330. * @param v0 (Vector3) the origin point of the Quadratic Bezier
  7331. * @param v1 (Vector3) the control point
  7332. * @param v2 (Vector3) the end point of the Quadratic Bezier
  7333. * @param nbPoints (integer) the wanted number of points in the curve
  7334. */
  7335. Curve3.CreateQuadraticBezier = function (v0, v1, v2, nbPoints) {
  7336. nbPoints = nbPoints > 2 ? nbPoints : 3;
  7337. var bez = new Array();
  7338. var equation = function (t, val0, val1, val2) {
  7339. var res = (1.0 - t) * (1.0 - t) * val0 + 2.0 * t * (1.0 - t) * val1 + t * t * val2;
  7340. return res;
  7341. };
  7342. for (var i = 0; i <= nbPoints; i++) {
  7343. bez.push(new Vector3(equation(i / nbPoints, v0.x, v1.x, v2.x), equation(i / nbPoints, v0.y, v1.y, v2.y), equation(i / nbPoints, v0.z, v1.z, v2.z)));
  7344. }
  7345. return new Curve3(bez);
  7346. };
  7347. /**
  7348. * Returns a Curve3 object along a Cubic Bezier curve : http://doc.babylonjs.com/tutorials/How_to_use_Curve3#cubic-bezier-curve
  7349. * @param v0 (Vector3) the origin point of the Cubic Bezier
  7350. * @param v1 (Vector3) the first control point
  7351. * @param v2 (Vector3) the second control point
  7352. * @param v3 (Vector3) the end point of the Cubic Bezier
  7353. * @param nbPoints (integer) the wanted number of points in the curve
  7354. */
  7355. Curve3.CreateCubicBezier = function (v0, v1, v2, v3, nbPoints) {
  7356. nbPoints = nbPoints > 3 ? nbPoints : 4;
  7357. var bez = new Array();
  7358. var equation = function (t, val0, val1, val2, val3) {
  7359. var res = (1.0 - t) * (1.0 - t) * (1.0 - t) * val0 + 3.0 * t * (1.0 - t) * (1.0 - t) * val1 + 3.0 * t * t * (1.0 - t) * val2 + t * t * t * val3;
  7360. return res;
  7361. };
  7362. for (var i = 0; i <= nbPoints; i++) {
  7363. bez.push(new Vector3(equation(i / nbPoints, v0.x, v1.x, v2.x, v3.x), equation(i / nbPoints, v0.y, v1.y, v2.y, v3.y), equation(i / nbPoints, v0.z, v1.z, v2.z, v3.z)));
  7364. }
  7365. return new Curve3(bez);
  7366. };
  7367. /**
  7368. * Returns a Curve3 object along a Hermite Spline curve : http://doc.babylonjs.com/tutorials/How_to_use_Curve3#hermite-spline
  7369. * @param p1 (Vector3) the origin point of the Hermite Spline
  7370. * @param t1 (Vector3) the tangent vector at the origin point
  7371. * @param p2 (Vector3) the end point of the Hermite Spline
  7372. * @param t2 (Vector3) the tangent vector at the end point
  7373. * @param nbPoints (integer) the wanted number of points in the curve
  7374. */
  7375. Curve3.CreateHermiteSpline = function (p1, t1, p2, t2, nbPoints) {
  7376. var hermite = new Array();
  7377. var step = 1.0 / nbPoints;
  7378. for (var i = 0; i <= nbPoints; i++) {
  7379. hermite.push(Vector3.Hermite(p1, t1, p2, t2, i * step));
  7380. }
  7381. return new Curve3(hermite);
  7382. };
  7383. /**
  7384. * Returns a Curve3 object along a CatmullRom Spline curve :
  7385. * @param points (array of Vector3) the points the spline must pass through. At least, four points required
  7386. * @param nbPoints (integer) the wanted number of points between each curve control points
  7387. * @param closed (boolean) optional with default false, when true forms a closed loop from the points
  7388. */
  7389. Curve3.CreateCatmullRomSpline = function (points, nbPoints, closed) {
  7390. var catmullRom = new Array();
  7391. var step = 1.0 / nbPoints;
  7392. var amount = 0.0;
  7393. if (closed) {
  7394. var pointsCount = points.length;
  7395. for (var i = 0; i < pointsCount; i++) {
  7396. amount = 0;
  7397. for (var c = 0; c < nbPoints; c++) {
  7398. catmullRom.push(Vector3.CatmullRom(points[i % pointsCount], points[(i + 1) % pointsCount], points[(i + 2) % pointsCount], points[(i + 3) % pointsCount], amount));
  7399. amount += step;
  7400. }
  7401. }
  7402. catmullRom.push(catmullRom[0]);
  7403. }
  7404. else {
  7405. var totalPoints = new Array();
  7406. totalPoints.push(points[0].clone());
  7407. Array.prototype.push.apply(totalPoints, points);
  7408. totalPoints.push(points[points.length - 1].clone());
  7409. for (var i = 0; i < totalPoints.length - 3; i++) {
  7410. amount = 0;
  7411. for (var c = 0; c < nbPoints; c++) {
  7412. catmullRom.push(Vector3.CatmullRom(totalPoints[i], totalPoints[i + 1], totalPoints[i + 2], totalPoints[i + 3], amount));
  7413. amount += step;
  7414. }
  7415. }
  7416. i--;
  7417. catmullRom.push(Vector3.CatmullRom(totalPoints[i], totalPoints[i + 1], totalPoints[i + 2], totalPoints[i + 3], amount));
  7418. }
  7419. return new Curve3(catmullRom);
  7420. };
  7421. /**
  7422. * Returns the Curve3 stored array of successive Vector3
  7423. */
  7424. Curve3.prototype.getPoints = function () {
  7425. return this._points;
  7426. };
  7427. /**
  7428. * Returns the computed length (float) of the curve.
  7429. */
  7430. Curve3.prototype.length = function () {
  7431. return this._length;
  7432. };
  7433. /**
  7434. * Returns a new instance of Curve3 object : var curve = curveA.continue(curveB);
  7435. * This new Curve3 is built by translating and sticking the curveB at the end of the curveA.
  7436. * curveA and curveB keep unchanged.
  7437. */
  7438. Curve3.prototype.continue = function (curve) {
  7439. var lastPoint = this._points[this._points.length - 1];
  7440. var continuedPoints = this._points.slice();
  7441. var curvePoints = curve.getPoints();
  7442. for (var i = 1; i < curvePoints.length; i++) {
  7443. continuedPoints.push(curvePoints[i].subtract(curvePoints[0]).add(lastPoint));
  7444. }
  7445. var continuedCurve = new Curve3(continuedPoints);
  7446. return continuedCurve;
  7447. };
  7448. Curve3.prototype._computeLength = function (path) {
  7449. var l = 0;
  7450. for (var i = 1; i < path.length; i++) {
  7451. l += (path[i].subtract(path[i - 1])).length();
  7452. }
  7453. return l;
  7454. };
  7455. return Curve3;
  7456. }());
  7457. BABYLON.Curve3 = Curve3;
  7458. // Vertex formats
  7459. var PositionNormalVertex = /** @class */ (function () {
  7460. function PositionNormalVertex(position, normal) {
  7461. if (position === void 0) { position = Vector3.Zero(); }
  7462. if (normal === void 0) { normal = Vector3.Up(); }
  7463. this.position = position;
  7464. this.normal = normal;
  7465. }
  7466. PositionNormalVertex.prototype.clone = function () {
  7467. return new PositionNormalVertex(this.position.clone(), this.normal.clone());
  7468. };
  7469. return PositionNormalVertex;
  7470. }());
  7471. BABYLON.PositionNormalVertex = PositionNormalVertex;
  7472. var PositionNormalTextureVertex = /** @class */ (function () {
  7473. function PositionNormalTextureVertex(position, normal, uv) {
  7474. if (position === void 0) { position = Vector3.Zero(); }
  7475. if (normal === void 0) { normal = Vector3.Up(); }
  7476. if (uv === void 0) { uv = Vector2.Zero(); }
  7477. this.position = position;
  7478. this.normal = normal;
  7479. this.uv = uv;
  7480. }
  7481. PositionNormalTextureVertex.prototype.clone = function () {
  7482. return new PositionNormalTextureVertex(this.position.clone(), this.normal.clone(), this.uv.clone());
  7483. };
  7484. return PositionNormalTextureVertex;
  7485. }());
  7486. BABYLON.PositionNormalTextureVertex = PositionNormalTextureVertex;
  7487. // Temporary pre-allocated objects for engine internal use
  7488. // usage in any internal function :
  7489. // var tmp = Tmp.Vector3[0]; <= gets access to the first pre-created Vector3
  7490. // There's a Tmp array per object type : int, float, Vector2, Vector3, Vector4, Quaternion, Matrix
  7491. var Tmp = /** @class */ (function () {
  7492. function Tmp() {
  7493. }
  7494. Tmp.Color3 = [Color3.Black(), Color3.Black(), Color3.Black()];
  7495. Tmp.Color4 = [new Color4(0, 0, 0, 0), new Color4(0, 0, 0, 0)];
  7496. Tmp.Vector2 = [Vector2.Zero(), Vector2.Zero(), Vector2.Zero()]; // 3 temp Vector2 at once should be enough
  7497. Tmp.Vector3 = [Vector3.Zero(), Vector3.Zero(), Vector3.Zero(),
  7498. Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero()]; // 9 temp Vector3 at once should be enough
  7499. Tmp.Vector4 = [Vector4.Zero(), Vector4.Zero(), Vector4.Zero()]; // 3 temp Vector4 at once should be enough
  7500. Tmp.Quaternion = [Quaternion.Zero(), Quaternion.Zero()]; // 2 temp Quaternion at once should be enough
  7501. Tmp.Matrix = [Matrix.Zero(), Matrix.Zero(),
  7502. Matrix.Zero(), Matrix.Zero(),
  7503. Matrix.Zero(), Matrix.Zero(),
  7504. Matrix.Zero(), Matrix.Zero()]; // 6 temp Matrices at once should be enough
  7505. return Tmp;
  7506. }());
  7507. BABYLON.Tmp = Tmp;
  7508. // Same as Tmp but not exported to keep it only for math functions to avoid conflicts
  7509. var MathTmp = /** @class */ (function () {
  7510. function MathTmp() {
  7511. }
  7512. MathTmp.Vector3 = [Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero(), Vector3.Zero()];
  7513. MathTmp.Matrix = [Matrix.Zero(), Matrix.Zero()];
  7514. MathTmp.Quaternion = [Quaternion.Zero(), Quaternion.Zero(), Quaternion.Zero()];
  7515. return MathTmp;
  7516. }());
  7517. })(BABYLON || (BABYLON = {}));
  7518. //# sourceMappingURL=babylon.math.js.map
  7519. var BABYLON;
  7520. (function (BABYLON) {
  7521. var Scalar = /** @class */ (function () {
  7522. function Scalar() {
  7523. }
  7524. /**
  7525. * Boolean : true if the absolute difference between a and b is lower than epsilon (default = 1.401298E-45)
  7526. */
  7527. Scalar.WithinEpsilon = function (a, b, epsilon) {
  7528. if (epsilon === void 0) { epsilon = 1.401298E-45; }
  7529. var num = a - b;
  7530. return -epsilon <= num && num <= epsilon;
  7531. };
  7532. /**
  7533. * Returns a string : the upper case translation of the number i to hexadecimal.
  7534. */
  7535. Scalar.ToHex = function (i) {
  7536. var str = i.toString(16);
  7537. if (i <= 15) {
  7538. return ("0" + str).toUpperCase();
  7539. }
  7540. return str.toUpperCase();
  7541. };
  7542. /**
  7543. * Returns -1 if value is negative and +1 is value is positive.
  7544. * Returns the value itself if it's equal to zero.
  7545. */
  7546. Scalar.Sign = function (value) {
  7547. value = +value; // convert to a number
  7548. if (value === 0 || isNaN(value))
  7549. return value;
  7550. return value > 0 ? 1 : -1;
  7551. };
  7552. /**
  7553. * Returns the value itself if it's between min and max.
  7554. * Returns min if the value is lower than min.
  7555. * Returns max if the value is greater than max.
  7556. */
  7557. Scalar.Clamp = function (value, min, max) {
  7558. if (min === void 0) { min = 0; }
  7559. if (max === void 0) { max = 1; }
  7560. return Math.min(max, Math.max(min, value));
  7561. };
  7562. /**
  7563. * Returns the log2 of value.
  7564. */
  7565. Scalar.Log2 = function (value) {
  7566. return Math.log(value) * Math.LOG2E;
  7567. };
  7568. /**
  7569. * Loops the value, so that it is never larger than length and never smaller than 0.
  7570. *
  7571. * This is similar to the modulo operator but it works with floating point numbers.
  7572. * For example, using 3.0 for t and 2.5 for length, the result would be 0.5.
  7573. * With t = 5 and length = 2.5, the result would be 0.0.
  7574. * Note, however, that the behaviour is not defined for negative numbers as it is for the modulo operator
  7575. */
  7576. Scalar.Repeat = function (value, length) {
  7577. return value - Math.floor(value / length) * length;
  7578. };
  7579. /**
  7580. * Normalize the value between 0.0 and 1.0 using min and max values
  7581. */
  7582. Scalar.Normalize = function (value, min, max) {
  7583. return (value - min) / (max - min);
  7584. };
  7585. /**
  7586. * Denormalize the value from 0.0 and 1.0 using min and max values
  7587. */
  7588. Scalar.Denormalize = function (normalized, min, max) {
  7589. return (normalized * (max - min) + min);
  7590. };
  7591. /**
  7592. * Calculates the shortest difference between two given angles given in degrees.
  7593. */
  7594. Scalar.DeltaAngle = function (current, target) {
  7595. var num = Scalar.Repeat(target - current, 360.0);
  7596. if (num > 180.0) {
  7597. num -= 360.0;
  7598. }
  7599. return num;
  7600. };
  7601. /**
  7602. * PingPongs the value t, so that it is never larger than length and never smaller than 0.
  7603. *
  7604. * The returned value will move back and forth between 0 and length
  7605. */
  7606. Scalar.PingPong = function (tx, length) {
  7607. var t = Scalar.Repeat(tx, length * 2.0);
  7608. return length - Math.abs(t - length);
  7609. };
  7610. /**
  7611. * Interpolates between min and max with smoothing at the limits.
  7612. *
  7613. * This function interpolates between min and max in a similar way to Lerp. However, the interpolation will gradually speed up
  7614. * from the start and slow down toward the end. This is useful for creating natural-looking animation, fading and other transitions.
  7615. */
  7616. Scalar.SmoothStep = function (from, to, tx) {
  7617. var t = Scalar.Clamp(tx);
  7618. t = -2.0 * t * t * t + 3.0 * t * t;
  7619. return to * t + from * (1.0 - t);
  7620. };
  7621. /**
  7622. * Moves a value current towards target.
  7623. *
  7624. * This is essentially the same as Mathf.Lerp but instead the function will ensure that the speed never exceeds maxDelta.
  7625. * Negative values of maxDelta pushes the value away from target.
  7626. */
  7627. Scalar.MoveTowards = function (current, target, maxDelta) {
  7628. var result = 0;
  7629. if (Math.abs(target - current) <= maxDelta) {
  7630. result = target;
  7631. }
  7632. else {
  7633. result = current + Scalar.Sign(target - current) * maxDelta;
  7634. }
  7635. return result;
  7636. };
  7637. /**
  7638. * Same as MoveTowards but makes sure the values interpolate correctly when they wrap around 360 degrees.
  7639. *
  7640. * Variables current and target are assumed to be in degrees. For optimization reasons, negative values of maxDelta
  7641. * are not supported and may cause oscillation. To push current away from a target angle, add 180 to that angle instead.
  7642. */
  7643. Scalar.MoveTowardsAngle = function (current, target, maxDelta) {
  7644. var num = Scalar.DeltaAngle(current, target);
  7645. var result = 0;
  7646. if (-maxDelta < num && num < maxDelta) {
  7647. result = target;
  7648. }
  7649. else {
  7650. target = current + num;
  7651. result = Scalar.MoveTowards(current, target, maxDelta);
  7652. }
  7653. return result;
  7654. };
  7655. /**
  7656. * Creates a new scalar with values linearly interpolated of "amount" between the start scalar and the end scalar.
  7657. */
  7658. Scalar.Lerp = function (start, end, amount) {
  7659. return start + ((end - start) * amount);
  7660. };
  7661. /**
  7662. * Same as Lerp but makes sure the values interpolate correctly when they wrap around 360 degrees.
  7663. * The parameter t is clamped to the range [0, 1]. Variables a and b are assumed to be in degrees.
  7664. */
  7665. Scalar.LerpAngle = function (start, end, amount) {
  7666. var num = Scalar.Repeat(end - start, 360.0);
  7667. if (num > 180.0) {
  7668. num -= 360.0;
  7669. }
  7670. return start + num * Scalar.Clamp(amount);
  7671. };
  7672. /**
  7673. * Calculates the linear parameter t that produces the interpolant value within the range [a, b].
  7674. */
  7675. Scalar.InverseLerp = function (a, b, value) {
  7676. var result = 0;
  7677. if (a != b) {
  7678. result = Scalar.Clamp((value - a) / (b - a));
  7679. }
  7680. else {
  7681. result = 0.0;
  7682. }
  7683. return result;
  7684. };
  7685. /**
  7686. * Returns a new scalar located for "amount" (float) on the Hermite spline defined by the scalars "value1", "value3", "tangent1", "tangent2".
  7687. */
  7688. Scalar.Hermite = function (value1, tangent1, value2, tangent2, amount) {
  7689. var squared = amount * amount;
  7690. var cubed = amount * squared;
  7691. var part1 = ((2.0 * cubed) - (3.0 * squared)) + 1.0;
  7692. var part2 = (-2.0 * cubed) + (3.0 * squared);
  7693. var part3 = (cubed - (2.0 * squared)) + amount;
  7694. var part4 = cubed - squared;
  7695. return (((value1 * part1) + (value2 * part2)) + (tangent1 * part3)) + (tangent2 * part4);
  7696. };
  7697. /**
  7698. * Returns a random float number between and min and max values
  7699. */
  7700. Scalar.RandomRange = function (min, max) {
  7701. if (min === max)
  7702. return min;
  7703. return ((Math.random() * (max - min)) + min);
  7704. };
  7705. /**
  7706. * This function returns percentage of a number in a given range.
  7707. *
  7708. * RangeToPercent(40,20,60) will return 0.5 (50%)
  7709. * RangeToPercent(34,0,100) will return 0.34 (34%)
  7710. */
  7711. Scalar.RangeToPercent = function (number, min, max) {
  7712. return ((number - min) / (max - min));
  7713. };
  7714. /**
  7715. * This function returns number that corresponds to the percentage in a given range.
  7716. *
  7717. * PercentToRange(0.34,0,100) will return 34.
  7718. */
  7719. Scalar.PercentToRange = function (percent, min, max) {
  7720. return ((max - min) * percent + min);
  7721. };
  7722. /**
  7723. * Returns the angle converted to equivalent value between -Math.PI and Math.PI radians.
  7724. * @param angle The angle to normalize in radian.
  7725. * @return The converted angle.
  7726. */
  7727. Scalar.NormalizeRadians = function (angle) {
  7728. // More precise but slower version kept for reference.
  7729. // angle = angle % Tools.TwoPi;
  7730. // angle = (angle + Tools.TwoPi) % Tools.TwoPi;
  7731. //if (angle > Math.PI) {
  7732. // angle -= Tools.TwoPi;
  7733. //}
  7734. angle -= (Scalar.TwoPi * Math.floor((angle + Math.PI) / Scalar.TwoPi));
  7735. return angle;
  7736. };
  7737. /**
  7738. * Two pi constants convenient for computation.
  7739. */
  7740. Scalar.TwoPi = Math.PI * 2;
  7741. return Scalar;
  7742. }());
  7743. BABYLON.Scalar = Scalar;
  7744. })(BABYLON || (BABYLON = {}));
  7745. //# sourceMappingURL=babylon.math.scalar.js.map
  7746. //# sourceMappingURL=babylon.mixins.js.map
  7747. // Type definitions for WebGL 2, Editor's Draft Fri Feb 24 16:10:18 2017 -0800
  7748. // Project: https://www.khronos.org/registry/webgl/specs/latest/2.0/
  7749. // Definitions by: Nico Kemnitz <https://github.com/nkemnitz/>
  7750. // Definitions: https://github.com/DefinitelyTyped/DefinitelyTyped
  7751. //# sourceMappingURL=babylon.webgl2.js.map
  7752. var BABYLON;
  7753. (function (BABYLON) {
  7754. var __decoratorInitialStore = {};
  7755. var __mergedStore = {};
  7756. var _copySource = function (creationFunction, source, instanciate) {
  7757. var destination = creationFunction();
  7758. // Tags
  7759. if (BABYLON.Tags) {
  7760. BABYLON.Tags.AddTagsTo(destination, source.tags);
  7761. }
  7762. var classStore = getMergedStore(destination);
  7763. // Properties
  7764. for (var property in classStore) {
  7765. var propertyDescriptor = classStore[property];
  7766. var sourceProperty = source[property];
  7767. var propertyType = propertyDescriptor.type;
  7768. if (sourceProperty !== undefined && sourceProperty !== null) {
  7769. switch (propertyType) {
  7770. case 0: // Value
  7771. case 6: // Mesh reference
  7772. case 11: // Camera reference
  7773. destination[property] = sourceProperty;
  7774. break;
  7775. case 1: // Texture
  7776. destination[property] = (instanciate || sourceProperty.isRenderTarget) ? sourceProperty : sourceProperty.clone();
  7777. break;
  7778. case 2: // Color3
  7779. case 3: // FresnelParameters
  7780. case 4: // Vector2
  7781. case 5: // Vector3
  7782. case 7: // Color Curves
  7783. case 10: // Quaternion
  7784. destination[property] = instanciate ? sourceProperty : sourceProperty.clone();
  7785. break;
  7786. }
  7787. }
  7788. }
  7789. return destination;
  7790. };
  7791. function getDirectStore(target) {
  7792. var classKey = target.getClassName();
  7793. if (!__decoratorInitialStore[classKey]) {
  7794. __decoratorInitialStore[classKey] = {};
  7795. }
  7796. return __decoratorInitialStore[classKey];
  7797. }
  7798. /**
  7799. * Return the list of properties flagged as serializable
  7800. * @param target: host object
  7801. */
  7802. function getMergedStore(target) {
  7803. var classKey = target.getClassName();
  7804. if (__mergedStore[classKey]) {
  7805. return __mergedStore[classKey];
  7806. }
  7807. __mergedStore[classKey] = {};
  7808. var store = __mergedStore[classKey];
  7809. var currentTarget = target;
  7810. var currentKey = classKey;
  7811. while (currentKey) {
  7812. var initialStore = __decoratorInitialStore[currentKey];
  7813. for (var property in initialStore) {
  7814. store[property] = initialStore[property];
  7815. }
  7816. var parent_1 = void 0;
  7817. var done = false;
  7818. do {
  7819. parent_1 = Object.getPrototypeOf(currentTarget);
  7820. if (!parent_1.getClassName) {
  7821. done = true;
  7822. break;
  7823. }
  7824. if (parent_1.getClassName() !== currentKey) {
  7825. break;
  7826. }
  7827. currentTarget = parent_1;
  7828. } while (parent_1);
  7829. if (done) {
  7830. break;
  7831. }
  7832. currentKey = parent_1.getClassName();
  7833. currentTarget = parent_1;
  7834. }
  7835. return store;
  7836. }
  7837. function generateSerializableMember(type, sourceName) {
  7838. return function (target, propertyKey) {
  7839. var classStore = getDirectStore(target);
  7840. if (!classStore[propertyKey]) {
  7841. classStore[propertyKey] = { type: type, sourceName: sourceName };
  7842. }
  7843. };
  7844. }
  7845. function generateExpandMember(setCallback, targetKey) {
  7846. if (targetKey === void 0) { targetKey = null; }
  7847. return function (target, propertyKey) {
  7848. var key = targetKey || ("_" + propertyKey);
  7849. Object.defineProperty(target, propertyKey, {
  7850. get: function () {
  7851. return this[key];
  7852. },
  7853. set: function (value) {
  7854. if (this[key] === value) {
  7855. return;
  7856. }
  7857. this[key] = value;
  7858. target[setCallback].apply(this);
  7859. },
  7860. enumerable: true,
  7861. configurable: true
  7862. });
  7863. };
  7864. }
  7865. function expandToProperty(callback, targetKey) {
  7866. if (targetKey === void 0) { targetKey = null; }
  7867. return generateExpandMember(callback, targetKey);
  7868. }
  7869. BABYLON.expandToProperty = expandToProperty;
  7870. function serialize(sourceName) {
  7871. return generateSerializableMember(0, sourceName); // value member
  7872. }
  7873. BABYLON.serialize = serialize;
  7874. function serializeAsTexture(sourceName) {
  7875. return generateSerializableMember(1, sourceName); // texture member
  7876. }
  7877. BABYLON.serializeAsTexture = serializeAsTexture;
  7878. function serializeAsColor3(sourceName) {
  7879. return generateSerializableMember(2, sourceName); // color3 member
  7880. }
  7881. BABYLON.serializeAsColor3 = serializeAsColor3;
  7882. function serializeAsFresnelParameters(sourceName) {
  7883. return generateSerializableMember(3, sourceName); // fresnel parameters member
  7884. }
  7885. BABYLON.serializeAsFresnelParameters = serializeAsFresnelParameters;
  7886. function serializeAsVector2(sourceName) {
  7887. return generateSerializableMember(4, sourceName); // vector2 member
  7888. }
  7889. BABYLON.serializeAsVector2 = serializeAsVector2;
  7890. function serializeAsVector3(sourceName) {
  7891. return generateSerializableMember(5, sourceName); // vector3 member
  7892. }
  7893. BABYLON.serializeAsVector3 = serializeAsVector3;
  7894. function serializeAsMeshReference(sourceName) {
  7895. return generateSerializableMember(6, sourceName); // mesh reference member
  7896. }
  7897. BABYLON.serializeAsMeshReference = serializeAsMeshReference;
  7898. function serializeAsColorCurves(sourceName) {
  7899. return generateSerializableMember(7, sourceName); // color curves
  7900. }
  7901. BABYLON.serializeAsColorCurves = serializeAsColorCurves;
  7902. function serializeAsColor4(sourceName) {
  7903. return generateSerializableMember(8, sourceName); // color 4
  7904. }
  7905. BABYLON.serializeAsColor4 = serializeAsColor4;
  7906. function serializeAsImageProcessingConfiguration(sourceName) {
  7907. return generateSerializableMember(9, sourceName); // image processing
  7908. }
  7909. BABYLON.serializeAsImageProcessingConfiguration = serializeAsImageProcessingConfiguration;
  7910. function serializeAsQuaternion(sourceName) {
  7911. return generateSerializableMember(10, sourceName); // quaternion member
  7912. }
  7913. BABYLON.serializeAsQuaternion = serializeAsQuaternion;
  7914. /**
  7915. * Decorator used to define property that can be serialized as reference to a camera
  7916. * @param sourceName defines the name of the property to decorate
  7917. */
  7918. function serializeAsCameraReference(sourceName) {
  7919. return generateSerializableMember(11, sourceName); // camera reference member
  7920. }
  7921. BABYLON.serializeAsCameraReference = serializeAsCameraReference;
  7922. var SerializationHelper = /** @class */ (function () {
  7923. function SerializationHelper() {
  7924. }
  7925. SerializationHelper.Serialize = function (entity, serializationObject) {
  7926. if (!serializationObject) {
  7927. serializationObject = {};
  7928. }
  7929. // Tags
  7930. if (BABYLON.Tags) {
  7931. serializationObject.tags = BABYLON.Tags.GetTags(entity);
  7932. }
  7933. var serializedProperties = getMergedStore(entity);
  7934. // Properties
  7935. for (var property in serializedProperties) {
  7936. var propertyDescriptor = serializedProperties[property];
  7937. var targetPropertyName = propertyDescriptor.sourceName || property;
  7938. var propertyType = propertyDescriptor.type;
  7939. var sourceProperty = entity[property];
  7940. if (sourceProperty !== undefined && sourceProperty !== null) {
  7941. switch (propertyType) {
  7942. case 0: // Value
  7943. serializationObject[targetPropertyName] = sourceProperty;
  7944. break;
  7945. case 1: // Texture
  7946. serializationObject[targetPropertyName] = sourceProperty.serialize();
  7947. break;
  7948. case 2: // Color3
  7949. serializationObject[targetPropertyName] = sourceProperty.asArray();
  7950. break;
  7951. case 3: // FresnelParameters
  7952. serializationObject[targetPropertyName] = sourceProperty.serialize();
  7953. break;
  7954. case 4: // Vector2
  7955. serializationObject[targetPropertyName] = sourceProperty.asArray();
  7956. break;
  7957. case 5: // Vector3
  7958. serializationObject[targetPropertyName] = sourceProperty.asArray();
  7959. break;
  7960. case 6: // Mesh reference
  7961. serializationObject[targetPropertyName] = sourceProperty.id;
  7962. break;
  7963. case 7: // Color Curves
  7964. serializationObject[targetPropertyName] = sourceProperty.serialize();
  7965. break;
  7966. case 8: // Color 4
  7967. serializationObject[targetPropertyName] = sourceProperty.asArray();
  7968. break;
  7969. case 9: // Image Processing
  7970. serializationObject[targetPropertyName] = sourceProperty.serialize();
  7971. break;
  7972. case 10: // Quaternion
  7973. serializationObject[targetPropertyName] = sourceProperty.asArray();
  7974. break;
  7975. case 11: // Camera reference
  7976. serializationObject[targetPropertyName] = sourceProperty.id;
  7977. break;
  7978. }
  7979. }
  7980. }
  7981. return serializationObject;
  7982. };
  7983. SerializationHelper.Parse = function (creationFunction, source, scene, rootUrl) {
  7984. if (rootUrl === void 0) { rootUrl = null; }
  7985. var destination = creationFunction();
  7986. if (!rootUrl) {
  7987. rootUrl = "";
  7988. }
  7989. // Tags
  7990. if (BABYLON.Tags) {
  7991. BABYLON.Tags.AddTagsTo(destination, source.tags);
  7992. }
  7993. var classStore = getMergedStore(destination);
  7994. // Properties
  7995. for (var property in classStore) {
  7996. var propertyDescriptor = classStore[property];
  7997. var sourceProperty = source[propertyDescriptor.sourceName || property];
  7998. var propertyType = propertyDescriptor.type;
  7999. if (sourceProperty !== undefined && sourceProperty !== null) {
  8000. var dest = destination;
  8001. switch (propertyType) {
  8002. case 0: // Value
  8003. dest[property] = sourceProperty;
  8004. break;
  8005. case 1: // Texture
  8006. if (scene) {
  8007. dest[property] = BABYLON.Texture.Parse(sourceProperty, scene, rootUrl);
  8008. }
  8009. break;
  8010. case 2: // Color3
  8011. dest[property] = BABYLON.Color3.FromArray(sourceProperty);
  8012. break;
  8013. case 3: // FresnelParameters
  8014. dest[property] = BABYLON.FresnelParameters.Parse(sourceProperty);
  8015. break;
  8016. case 4: // Vector2
  8017. dest[property] = BABYLON.Vector2.FromArray(sourceProperty);
  8018. break;
  8019. case 5: // Vector3
  8020. dest[property] = BABYLON.Vector3.FromArray(sourceProperty);
  8021. break;
  8022. case 6: // Mesh reference
  8023. if (scene) {
  8024. dest[property] = scene.getLastMeshByID(sourceProperty);
  8025. }
  8026. break;
  8027. case 7: // Color Curves
  8028. dest[property] = BABYLON.ColorCurves.Parse(sourceProperty);
  8029. break;
  8030. case 8: // Color 4
  8031. dest[property] = BABYLON.Color4.FromArray(sourceProperty);
  8032. break;
  8033. case 9: // Image Processing
  8034. dest[property] = BABYLON.ImageProcessingConfiguration.Parse(sourceProperty);
  8035. break;
  8036. case 10: // Quaternion
  8037. dest[property] = BABYLON.Quaternion.FromArray(sourceProperty);
  8038. break;
  8039. case 11: // Camera reference
  8040. if (scene) {
  8041. dest[property] = scene.getCameraByID(sourceProperty);
  8042. }
  8043. break;
  8044. }
  8045. }
  8046. }
  8047. return destination;
  8048. };
  8049. SerializationHelper.Clone = function (creationFunction, source) {
  8050. return _copySource(creationFunction, source, false);
  8051. };
  8052. SerializationHelper.Instanciate = function (creationFunction, source) {
  8053. return _copySource(creationFunction, source, true);
  8054. };
  8055. return SerializationHelper;
  8056. }());
  8057. BABYLON.SerializationHelper = SerializationHelper;
  8058. })(BABYLON || (BABYLON = {}));
  8059. //# sourceMappingURL=babylon.decorators.js.map
  8060. var BABYLON;
  8061. (function (BABYLON) {
  8062. /**
  8063. * Wrapper class for promise with external resolve and reject.
  8064. */
  8065. var Deferred = /** @class */ (function () {
  8066. /**
  8067. * Constructor for this deferred object.
  8068. */
  8069. function Deferred() {
  8070. var _this = this;
  8071. this.promise = new Promise(function (resolve, reject) {
  8072. _this._resolve = resolve;
  8073. _this._reject = reject;
  8074. });
  8075. }
  8076. Object.defineProperty(Deferred.prototype, "resolve", {
  8077. /**
  8078. * The resolve method of the promise associated with this deferred object.
  8079. */
  8080. get: function () {
  8081. return this._resolve;
  8082. },
  8083. enumerable: true,
  8084. configurable: true
  8085. });
  8086. Object.defineProperty(Deferred.prototype, "reject", {
  8087. /**
  8088. * The reject method of the promise associated with this deferred object.
  8089. */
  8090. get: function () {
  8091. return this._reject;
  8092. },
  8093. enumerable: true,
  8094. configurable: true
  8095. });
  8096. return Deferred;
  8097. }());
  8098. BABYLON.Deferred = Deferred;
  8099. })(BABYLON || (BABYLON = {}));
  8100. //# sourceMappingURL=babylon.deferred.js.map
  8101. var BABYLON;
  8102. (function (BABYLON) {
  8103. /**
  8104. * A class serves as a medium between the observable and its observers
  8105. */
  8106. var EventState = /** @class */ (function () {
  8107. /**
  8108. * Create a new EventState
  8109. * @param mask defines the mask associated with this state
  8110. * @param skipNextObservers defines a flag which will instruct the observable to skip following observers when set to true
  8111. * @param target defines the original target of the state
  8112. * @param currentTarget defines the current target of the state
  8113. */
  8114. function EventState(mask, skipNextObservers, target, currentTarget) {
  8115. if (skipNextObservers === void 0) { skipNextObservers = false; }
  8116. this.initalize(mask, skipNextObservers, target, currentTarget);
  8117. }
  8118. /**
  8119. * Initialize the current event state
  8120. * @param mask defines the mask associated with this state
  8121. * @param skipNextObservers defines a flag which will instruct the observable to skip following observers when set to true
  8122. * @param target defines the original target of the state
  8123. * @param currentTarget defines the current target of the state
  8124. * @returns the current event state
  8125. */
  8126. EventState.prototype.initalize = function (mask, skipNextObservers, target, currentTarget) {
  8127. if (skipNextObservers === void 0) { skipNextObservers = false; }
  8128. this.mask = mask;
  8129. this.skipNextObservers = skipNextObservers;
  8130. this.target = target;
  8131. this.currentTarget = currentTarget;
  8132. return this;
  8133. };
  8134. return EventState;
  8135. }());
  8136. BABYLON.EventState = EventState;
  8137. /**
  8138. * Represent an Observer registered to a given Observable object.
  8139. */
  8140. var Observer = /** @class */ (function () {
  8141. /**
  8142. * Creates a new observer
  8143. * @param callback defines the callback to call when the observer is notified
  8144. * @param mask defines the mask of the observer (used to filter notifications)
  8145. * @param scope defines the current scope used to restore the JS context
  8146. */
  8147. function Observer(
  8148. /**
  8149. * Defines the callback to call when the observer is notified
  8150. */
  8151. callback,
  8152. /**
  8153. * Defines the mask of the observer (used to filter notifications)
  8154. */
  8155. mask,
  8156. /**
  8157. * Defines the current scope used to restore the JS context
  8158. */
  8159. scope) {
  8160. if (scope === void 0) { scope = null; }
  8161. this.callback = callback;
  8162. this.mask = mask;
  8163. this.scope = scope;
  8164. /** @hidden */
  8165. this._willBeUnregistered = false;
  8166. /**
  8167. * Gets or sets a property defining that the observer as to be unregistered after the next notification
  8168. */
  8169. this.unregisterOnNextCall = false;
  8170. }
  8171. return Observer;
  8172. }());
  8173. BABYLON.Observer = Observer;
  8174. /**
  8175. * Represent a list of observers registered to multiple Observables object.
  8176. */
  8177. var MultiObserver = /** @class */ (function () {
  8178. function MultiObserver() {
  8179. }
  8180. /**
  8181. * Release associated resources
  8182. */
  8183. MultiObserver.prototype.dispose = function () {
  8184. if (this._observers && this._observables) {
  8185. for (var index = 0; index < this._observers.length; index++) {
  8186. this._observables[index].remove(this._observers[index]);
  8187. }
  8188. }
  8189. this._observers = null;
  8190. this._observables = null;
  8191. };
  8192. /**
  8193. * Raise a callback when one of the observable will notify
  8194. * @param observables defines a list of observables to watch
  8195. * @param callback defines the callback to call on notification
  8196. * @param mask defines the mask used to filter notifications
  8197. * @param scope defines the current scope used to restore the JS context
  8198. * @returns the new MultiObserver
  8199. */
  8200. MultiObserver.Watch = function (observables, callback, mask, scope) {
  8201. if (mask === void 0) { mask = -1; }
  8202. if (scope === void 0) { scope = null; }
  8203. var result = new MultiObserver();
  8204. result._observers = new Array();
  8205. result._observables = observables;
  8206. for (var _i = 0, observables_1 = observables; _i < observables_1.length; _i++) {
  8207. var observable = observables_1[_i];
  8208. var observer = observable.add(callback, mask, false, scope);
  8209. if (observer) {
  8210. result._observers.push(observer);
  8211. }
  8212. }
  8213. return result;
  8214. };
  8215. return MultiObserver;
  8216. }());
  8217. BABYLON.MultiObserver = MultiObserver;
  8218. /**
  8219. * The Observable class is a simple implementation of the Observable pattern.
  8220. *
  8221. * There's one slight particularity though: a given Observable can notify its observer using a particular mask value, only the Observers registered with this mask value will be notified.
  8222. * This enable a more fine grained execution without having to rely on multiple different Observable objects.
  8223. * For instance you may have a given Observable that have four different types of notifications: Move (mask = 0x01), Stop (mask = 0x02), Turn Right (mask = 0X04), Turn Left (mask = 0X08).
  8224. * A given observer can register itself with only Move and Stop (mask = 0x03), then it will only be notified when one of these two occurs and will never be for Turn Left/Right.
  8225. */
  8226. var Observable = /** @class */ (function () {
  8227. /**
  8228. * Creates a new observable
  8229. * @param onObserverAdded defines a callback to call when a new observer is added
  8230. */
  8231. function Observable(onObserverAdded) {
  8232. this._observers = new Array();
  8233. this._eventState = new EventState(0);
  8234. if (onObserverAdded) {
  8235. this._onObserverAdded = onObserverAdded;
  8236. }
  8237. }
  8238. /**
  8239. * Create a new Observer with the specified callback
  8240. * @param callback the callback that will be executed for that Observer
  8241. * @param mask the mask used to filter observers
  8242. * @param insertFirst if true the callback will be inserted at the first position, hence executed before the others ones. If false (default behavior) the callback will be inserted at the last position, executed after all the others already present.
  8243. * @param scope optional scope for the callback to be called from
  8244. * @param unregisterOnFirstCall defines if the observer as to be unregistered after the next notification
  8245. * @returns the new observer created for the callback
  8246. */
  8247. Observable.prototype.add = function (callback, mask, insertFirst, scope, unregisterOnFirstCall) {
  8248. if (mask === void 0) { mask = -1; }
  8249. if (insertFirst === void 0) { insertFirst = false; }
  8250. if (scope === void 0) { scope = null; }
  8251. if (unregisterOnFirstCall === void 0) { unregisterOnFirstCall = false; }
  8252. if (!callback) {
  8253. return null;
  8254. }
  8255. var observer = new Observer(callback, mask, scope);
  8256. observer.unregisterOnNextCall = unregisterOnFirstCall;
  8257. if (insertFirst) {
  8258. this._observers.unshift(observer);
  8259. }
  8260. else {
  8261. this._observers.push(observer);
  8262. }
  8263. if (this._onObserverAdded) {
  8264. this._onObserverAdded(observer);
  8265. }
  8266. return observer;
  8267. };
  8268. /**
  8269. * Create a new Observer with the specified callback and unregisters after the next notification
  8270. * @param callback the callback that will be executed for that Observer
  8271. * @returns the new observer created for the callback
  8272. */
  8273. Observable.prototype.addOnce = function (callback) {
  8274. return this.add(callback, undefined, undefined, undefined, true);
  8275. };
  8276. /**
  8277. * Remove an Observer from the Observable object
  8278. * @param observer the instance of the Observer to remove
  8279. * @returns false if it doesn't belong to this Observable
  8280. */
  8281. Observable.prototype.remove = function (observer) {
  8282. if (!observer) {
  8283. return false;
  8284. }
  8285. var index = this._observers.indexOf(observer);
  8286. if (index !== -1) {
  8287. this._deferUnregister(observer);
  8288. return true;
  8289. }
  8290. return false;
  8291. };
  8292. /**
  8293. * Remove a callback from the Observable object
  8294. * @param callback the callback to remove
  8295. * @param scope optional scope. If used only the callbacks with this scope will be removed
  8296. * @returns false if it doesn't belong to this Observable
  8297. */
  8298. Observable.prototype.removeCallback = function (callback, scope) {
  8299. for (var index = 0; index < this._observers.length; index++) {
  8300. if (this._observers[index].callback === callback && (!scope || scope === this._observers[index].scope)) {
  8301. this._deferUnregister(this._observers[index]);
  8302. return true;
  8303. }
  8304. }
  8305. return false;
  8306. };
  8307. Observable.prototype._deferUnregister = function (observer) {
  8308. var _this = this;
  8309. observer.unregisterOnNextCall = false;
  8310. observer._willBeUnregistered = true;
  8311. BABYLON.Tools.SetImmediate(function () {
  8312. _this._remove(observer);
  8313. });
  8314. };
  8315. // This should only be called when not iterating over _observers to avoid callback skipping.
  8316. // Removes an observer from the _observer Array.
  8317. Observable.prototype._remove = function (observer) {
  8318. if (!observer) {
  8319. return false;
  8320. }
  8321. var index = this._observers.indexOf(observer);
  8322. if (index !== -1) {
  8323. this._observers.splice(index, 1);
  8324. return true;
  8325. }
  8326. return false;
  8327. };
  8328. /**
  8329. * Notify all Observers by calling their respective callback with the given data
  8330. * Will return true if all observers were executed, false if an observer set skipNextObservers to true, then prevent the subsequent ones to execute
  8331. * @param eventData defines the data to send to all observers
  8332. * @param mask defines the mask of the current notification (observers with incompatible mask (ie mask & observer.mask === 0) will not be notified)
  8333. * @param target defines the original target of the state
  8334. * @param currentTarget defines the current target of the state
  8335. * @returns false if the complete observer chain was not processed (because one observer set the skipNextObservers to true)
  8336. */
  8337. Observable.prototype.notifyObservers = function (eventData, mask, target, currentTarget) {
  8338. if (mask === void 0) { mask = -1; }
  8339. if (!this._observers.length) {
  8340. return true;
  8341. }
  8342. var state = this._eventState;
  8343. state.mask = mask;
  8344. state.target = target;
  8345. state.currentTarget = currentTarget;
  8346. state.skipNextObservers = false;
  8347. state.lastReturnValue = eventData;
  8348. for (var _i = 0, _a = this._observers; _i < _a.length; _i++) {
  8349. var obs = _a[_i];
  8350. if (obs._willBeUnregistered) {
  8351. continue;
  8352. }
  8353. if (obs.mask & mask) {
  8354. if (obs.scope) {
  8355. state.lastReturnValue = obs.callback.apply(obs.scope, [eventData, state]);
  8356. }
  8357. else {
  8358. state.lastReturnValue = obs.callback(eventData, state);
  8359. }
  8360. if (obs.unregisterOnNextCall) {
  8361. this._deferUnregister(obs);
  8362. }
  8363. }
  8364. if (state.skipNextObservers) {
  8365. return false;
  8366. }
  8367. }
  8368. return true;
  8369. };
  8370. /**
  8371. * Calling this will execute each callback, expecting it to be a promise or return a value.
  8372. * If at any point in the chain one function fails, the promise will fail and the execution will not continue.
  8373. * This is useful when a chain of events (sometimes async events) is needed to initialize a certain object
  8374. * and it is crucial that all callbacks will be executed.
  8375. * The order of the callbacks is kept, callbacks are not executed parallel.
  8376. *
  8377. * @param eventData The data to be sent to each callback
  8378. * @param mask is used to filter observers defaults to -1
  8379. * @param target defines the callback target (see EventState)
  8380. * @param currentTarget defines he current object in the bubbling phase
  8381. * @returns {Promise<T>} will return a Promise than resolves when all callbacks executed successfully.
  8382. */
  8383. Observable.prototype.notifyObserversWithPromise = function (eventData, mask, target, currentTarget) {
  8384. var _this = this;
  8385. if (mask === void 0) { mask = -1; }
  8386. // create an empty promise
  8387. var p = Promise.resolve(eventData);
  8388. // no observers? return this promise.
  8389. if (!this._observers.length) {
  8390. return p;
  8391. }
  8392. var state = this._eventState;
  8393. state.mask = mask;
  8394. state.target = target;
  8395. state.currentTarget = currentTarget;
  8396. state.skipNextObservers = false;
  8397. // execute one callback after another (not using Promise.all, the order is important)
  8398. this._observers.forEach(function (obs) {
  8399. if (state.skipNextObservers) {
  8400. return;
  8401. }
  8402. if (obs._willBeUnregistered) {
  8403. return;
  8404. }
  8405. if (obs.mask & mask) {
  8406. if (obs.scope) {
  8407. p = p.then(function (lastReturnedValue) {
  8408. state.lastReturnValue = lastReturnedValue;
  8409. return obs.callback.apply(obs.scope, [eventData, state]);
  8410. });
  8411. }
  8412. else {
  8413. p = p.then(function (lastReturnedValue) {
  8414. state.lastReturnValue = lastReturnedValue;
  8415. return obs.callback(eventData, state);
  8416. });
  8417. }
  8418. if (obs.unregisterOnNextCall) {
  8419. _this._deferUnregister(obs);
  8420. }
  8421. }
  8422. });
  8423. // return the eventData
  8424. return p.then(function () { return eventData; });
  8425. };
  8426. /**
  8427. * Notify a specific observer
  8428. * @param observer defines the observer to notify
  8429. * @param eventData defines the data to be sent to each callback
  8430. * @param mask is used to filter observers defaults to -1
  8431. */
  8432. Observable.prototype.notifyObserver = function (observer, eventData, mask) {
  8433. if (mask === void 0) { mask = -1; }
  8434. var state = this._eventState;
  8435. state.mask = mask;
  8436. state.skipNextObservers = false;
  8437. observer.callback(eventData, state);
  8438. };
  8439. /**
  8440. * Gets a boolean indicating if the observable has at least one observer
  8441. * @returns true is the Observable has at least one Observer registered
  8442. */
  8443. Observable.prototype.hasObservers = function () {
  8444. return this._observers.length > 0;
  8445. };
  8446. /**
  8447. * Clear the list of observers
  8448. */
  8449. Observable.prototype.clear = function () {
  8450. this._observers = new Array();
  8451. this._onObserverAdded = null;
  8452. };
  8453. /**
  8454. * Clone the current observable
  8455. * @returns a new observable
  8456. */
  8457. Observable.prototype.clone = function () {
  8458. var result = new Observable();
  8459. result._observers = this._observers.slice(0);
  8460. return result;
  8461. };
  8462. /**
  8463. * Does this observable handles observer registered with a given mask
  8464. * @param mask defines the mask to be tested
  8465. * @return whether or not one observer registered with the given mask is handeled
  8466. **/
  8467. Observable.prototype.hasSpecificMask = function (mask) {
  8468. if (mask === void 0) { mask = -1; }
  8469. for (var _i = 0, _a = this._observers; _i < _a.length; _i++) {
  8470. var obs = _a[_i];
  8471. if (obs.mask & mask || obs.mask === mask) {
  8472. return true;
  8473. }
  8474. }
  8475. return false;
  8476. };
  8477. return Observable;
  8478. }());
  8479. BABYLON.Observable = Observable;
  8480. })(BABYLON || (BABYLON = {}));
  8481. //# sourceMappingURL=babylon.observable.js.map
  8482. var BABYLON;
  8483. (function (BABYLON) {
  8484. /**
  8485. * Defines an GC Friendly array where the backfield array do not shrink to prevent over allocations.
  8486. */
  8487. var SmartArray = /** @class */ (function () {
  8488. /**
  8489. * Instantiates a Smart Array.
  8490. * @param capacity defines the default capacity of the array.
  8491. */
  8492. function SmartArray(capacity) {
  8493. /**
  8494. * The active length of the array.
  8495. */
  8496. this.length = 0;
  8497. this.data = new Array(capacity);
  8498. this._id = SmartArray._GlobalId++;
  8499. }
  8500. /**
  8501. * Pushes a value at the end of the active data.
  8502. * @param value defines the object to push in the array.
  8503. */
  8504. SmartArray.prototype.push = function (value) {
  8505. this.data[this.length++] = value;
  8506. if (this.length > this.data.length) {
  8507. this.data.length *= 2;
  8508. }
  8509. };
  8510. /**
  8511. * Iterates over the active data and apply the lambda to them.
  8512. * @param func defines the action to apply on each value.
  8513. */
  8514. SmartArray.prototype.forEach = function (func) {
  8515. for (var index = 0; index < this.length; index++) {
  8516. func(this.data[index]);
  8517. }
  8518. };
  8519. /**
  8520. * Sorts the full sets of data.
  8521. * @param compareFn defines the comparison function to apply.
  8522. */
  8523. SmartArray.prototype.sort = function (compareFn) {
  8524. this.data.sort(compareFn);
  8525. };
  8526. /**
  8527. * Resets the active data to an empty array.
  8528. */
  8529. SmartArray.prototype.reset = function () {
  8530. this.length = 0;
  8531. };
  8532. /**
  8533. * Releases all the data from the array as well as the array.
  8534. */
  8535. SmartArray.prototype.dispose = function () {
  8536. this.reset();
  8537. if (this.data) {
  8538. this.data.length = 0;
  8539. this.data = [];
  8540. }
  8541. };
  8542. /**
  8543. * Concats the active data with a given array.
  8544. * @param array defines the data to concatenate with.
  8545. */
  8546. SmartArray.prototype.concat = function (array) {
  8547. if (array.length === 0) {
  8548. return;
  8549. }
  8550. if (this.length + array.length > this.data.length) {
  8551. this.data.length = (this.length + array.length) * 2;
  8552. }
  8553. for (var index = 0; index < array.length; index++) {
  8554. this.data[this.length++] = (array.data || array)[index];
  8555. }
  8556. };
  8557. /**
  8558. * Returns the position of a value in the active data.
  8559. * @param value defines the value to find the index for
  8560. * @returns the index if found in the active data otherwise -1
  8561. */
  8562. SmartArray.prototype.indexOf = function (value) {
  8563. var position = this.data.indexOf(value);
  8564. if (position >= this.length) {
  8565. return -1;
  8566. }
  8567. return position;
  8568. };
  8569. /**
  8570. * Returns whether an element is part of the active data.
  8571. * @param value defines the value to look for
  8572. * @returns true if found in the active data otherwise false
  8573. */
  8574. SmartArray.prototype.contains = function (value) {
  8575. return this.indexOf(value) !== -1;
  8576. };
  8577. // Statics
  8578. SmartArray._GlobalId = 0;
  8579. return SmartArray;
  8580. }());
  8581. BABYLON.SmartArray = SmartArray;
  8582. /**
  8583. * Defines an GC Friendly array where the backfield array do not shrink to prevent over allocations.
  8584. * The data in this array can only be present once
  8585. */
  8586. var SmartArrayNoDuplicate = /** @class */ (function (_super) {
  8587. __extends(SmartArrayNoDuplicate, _super);
  8588. function SmartArrayNoDuplicate() {
  8589. var _this = _super !== null && _super.apply(this, arguments) || this;
  8590. _this._duplicateId = 0;
  8591. return _this;
  8592. }
  8593. /**
  8594. * Pushes a value at the end of the active data.
  8595. * THIS DOES NOT PREVENT DUPPLICATE DATA
  8596. * @param value defines the object to push in the array.
  8597. */
  8598. SmartArrayNoDuplicate.prototype.push = function (value) {
  8599. _super.prototype.push.call(this, value);
  8600. if (!value.__smartArrayFlags) {
  8601. value.__smartArrayFlags = {};
  8602. }
  8603. value.__smartArrayFlags[this._id] = this._duplicateId;
  8604. };
  8605. /**
  8606. * Pushes a value at the end of the active data.
  8607. * If the data is already present, it won t be added again
  8608. * @param value defines the object to push in the array.
  8609. * @returns true if added false if it was already present
  8610. */
  8611. SmartArrayNoDuplicate.prototype.pushNoDuplicate = function (value) {
  8612. if (value.__smartArrayFlags && value.__smartArrayFlags[this._id] === this._duplicateId) {
  8613. return false;
  8614. }
  8615. this.push(value);
  8616. return true;
  8617. };
  8618. /**
  8619. * Resets the active data to an empty array.
  8620. */
  8621. SmartArrayNoDuplicate.prototype.reset = function () {
  8622. _super.prototype.reset.call(this);
  8623. this._duplicateId++;
  8624. };
  8625. /**
  8626. * Concats the active data with a given array.
  8627. * This ensures no dupplicate will be present in the result.
  8628. * @param array defines the data to concatenate with.
  8629. */
  8630. SmartArrayNoDuplicate.prototype.concatWithNoDuplicate = function (array) {
  8631. if (array.length === 0) {
  8632. return;
  8633. }
  8634. if (this.length + array.length > this.data.length) {
  8635. this.data.length = (this.length + array.length) * 2;
  8636. }
  8637. for (var index = 0; index < array.length; index++) {
  8638. var item = (array.data || array)[index];
  8639. this.pushNoDuplicate(item);
  8640. }
  8641. };
  8642. return SmartArrayNoDuplicate;
  8643. }(SmartArray));
  8644. BABYLON.SmartArrayNoDuplicate = SmartArrayNoDuplicate;
  8645. })(BABYLON || (BABYLON = {}));
  8646. //# sourceMappingURL=babylon.smartArray.js.map
  8647. var BABYLON;
  8648. (function (BABYLON) {
  8649. /** Class used to store color gradient */
  8650. var ColorGradient = /** @class */ (function () {
  8651. function ColorGradient() {
  8652. }
  8653. /**
  8654. * Will get a color picked randomly between color1 and color2.
  8655. * If color2 is undefined then color1 will be used
  8656. * @param result defines the target Color4 to store the result in
  8657. */
  8658. ColorGradient.prototype.getColorToRef = function (result) {
  8659. if (!this.color2) {
  8660. result.copyFrom(this.color1);
  8661. return;
  8662. }
  8663. BABYLON.Color4.LerpToRef(this.color1, this.color2, Math.random(), result);
  8664. };
  8665. return ColorGradient;
  8666. }());
  8667. BABYLON.ColorGradient = ColorGradient;
  8668. /** Class used to store factor gradient */
  8669. var FactorGradient = /** @class */ (function () {
  8670. function FactorGradient() {
  8671. }
  8672. /**
  8673. * Will get a number picked randomly between factor1 and factor2.
  8674. * If factor2 is undefined then factor1 will be used
  8675. * @returns the picked number
  8676. */
  8677. FactorGradient.prototype.getFactor = function () {
  8678. if (this.factor2 === undefined) {
  8679. return this.factor1;
  8680. }
  8681. return BABYLON.Scalar.Lerp(this.factor1, this.factor2, Math.random());
  8682. };
  8683. return FactorGradient;
  8684. }());
  8685. BABYLON.FactorGradient = FactorGradient;
  8686. // See https://stackoverflow.com/questions/12915412/how-do-i-extend-a-host-object-e-g-error-in-typescript
  8687. // and https://github.com/Microsoft/TypeScript/wiki/Breaking-Changes#extending-built-ins-like-error-array-and-map-may-no-longer-work
  8688. var LoadFileError = /** @class */ (function (_super) {
  8689. __extends(LoadFileError, _super);
  8690. function LoadFileError(message, request) {
  8691. var _this = _super.call(this, message) || this;
  8692. _this.request = request;
  8693. _this.name = "LoadFileError";
  8694. LoadFileError._setPrototypeOf(_this, LoadFileError.prototype);
  8695. return _this;
  8696. }
  8697. // Polyfill for Object.setPrototypeOf if necessary.
  8698. LoadFileError._setPrototypeOf = Object.setPrototypeOf || (function (o, proto) { o.__proto__ = proto; return o; });
  8699. return LoadFileError;
  8700. }(Error));
  8701. BABYLON.LoadFileError = LoadFileError;
  8702. var RetryStrategy = /** @class */ (function () {
  8703. function RetryStrategy() {
  8704. }
  8705. RetryStrategy.ExponentialBackoff = function (maxRetries, baseInterval) {
  8706. if (maxRetries === void 0) { maxRetries = 3; }
  8707. if (baseInterval === void 0) { baseInterval = 500; }
  8708. return function (url, request, retryIndex) {
  8709. if (request.status !== 0 || retryIndex >= maxRetries || url.indexOf("file:") !== -1) {
  8710. return -1;
  8711. }
  8712. return Math.pow(2, retryIndex) * baseInterval;
  8713. };
  8714. };
  8715. return RetryStrategy;
  8716. }());
  8717. BABYLON.RetryStrategy = RetryStrategy;
  8718. // Screenshots
  8719. var screenshotCanvas;
  8720. var cloneValue = function (source, destinationObject) {
  8721. if (!source)
  8722. return null;
  8723. if (source instanceof BABYLON.Mesh) {
  8724. return null;
  8725. }
  8726. if (source instanceof BABYLON.SubMesh) {
  8727. return source.clone(destinationObject);
  8728. }
  8729. else if (source.clone) {
  8730. return source.clone();
  8731. }
  8732. return null;
  8733. };
  8734. var Tools = /** @class */ (function () {
  8735. function Tools() {
  8736. }
  8737. /**
  8738. * Read the content of a byte array at a specified coordinates (taking in account wrapping)
  8739. * @param u defines the coordinate on X axis
  8740. * @param v defines the coordinate on Y axis
  8741. * @param width defines the width of the source data
  8742. * @param height defines the height of the source data
  8743. * @param pixels defines the source byte array
  8744. * @param color defines the output color
  8745. */
  8746. Tools.FetchToRef = function (u, v, width, height, pixels, color) {
  8747. var wrappedU = ((Math.abs(u) * width) % width) | 0;
  8748. var wrappedV = ((Math.abs(v) * height) % height) | 0;
  8749. var position = (wrappedU + wrappedV * width) * 4;
  8750. color.r = pixels[position] / 255;
  8751. color.g = pixels[position + 1] / 255;
  8752. color.b = pixels[position + 2] / 255;
  8753. color.a = pixels[position + 3] / 255;
  8754. };
  8755. /**
  8756. * Interpolates between a and b via alpha
  8757. * @param a The lower value (returned when alpha = 0)
  8758. * @param b The upper value (returned when alpha = 1)
  8759. * @param alpha The interpolation-factor
  8760. * @return The mixed value
  8761. */
  8762. Tools.Mix = function (a, b, alpha) {
  8763. return a * (1 - alpha) + b * alpha;
  8764. };
  8765. Tools.Instantiate = function (className) {
  8766. if (Tools.RegisteredExternalClasses && Tools.RegisteredExternalClasses[className]) {
  8767. return Tools.RegisteredExternalClasses[className];
  8768. }
  8769. var arr = className.split(".");
  8770. var fn = (window || this);
  8771. for (var i = 0, len = arr.length; i < len; i++) {
  8772. fn = fn[arr[i]];
  8773. }
  8774. if (typeof fn !== "function") {
  8775. return null;
  8776. }
  8777. return fn;
  8778. };
  8779. /**
  8780. * Provides a slice function that will work even on IE
  8781. * @param data defines the array to slice
  8782. * @param start defines the start of the data (optional)
  8783. * @param end defines the end of the data (optional)
  8784. * @returns the new sliced array
  8785. */
  8786. Tools.Slice = function (data, start, end) {
  8787. if (data.slice) {
  8788. return data.slice(start, end);
  8789. }
  8790. return Array.prototype.slice.call(data, start, end);
  8791. };
  8792. Tools.SetImmediate = function (action) {
  8793. if (Tools.IsWindowObjectExist() && window.setImmediate) {
  8794. window.setImmediate(action);
  8795. }
  8796. else {
  8797. setTimeout(action, 1);
  8798. }
  8799. };
  8800. Tools.IsExponentOfTwo = function (value) {
  8801. var count = 1;
  8802. do {
  8803. count *= 2;
  8804. } while (count < value);
  8805. return count === value;
  8806. };
  8807. /**
  8808. * Returns the nearest 32-bit single precision float representation of a Number
  8809. * @param value A Number. If the parameter is of a different type, it will get converted
  8810. * to a number or to NaN if it cannot be converted
  8811. * @returns number
  8812. */
  8813. Tools.FloatRound = function (value) {
  8814. if (Math.fround) {
  8815. return Math.fround(value);
  8816. }
  8817. return (Tools._tmpFloatArray[0] = value);
  8818. };
  8819. /**
  8820. * Find the next highest power of two.
  8821. * @param x Number to start search from.
  8822. * @return Next highest power of two.
  8823. */
  8824. Tools.CeilingPOT = function (x) {
  8825. x--;
  8826. x |= x >> 1;
  8827. x |= x >> 2;
  8828. x |= x >> 4;
  8829. x |= x >> 8;
  8830. x |= x >> 16;
  8831. x++;
  8832. return x;
  8833. };
  8834. /**
  8835. * Find the next lowest power of two.
  8836. * @param x Number to start search from.
  8837. * @return Next lowest power of two.
  8838. */
  8839. Tools.FloorPOT = function (x) {
  8840. x = x | (x >> 1);
  8841. x = x | (x >> 2);
  8842. x = x | (x >> 4);
  8843. x = x | (x >> 8);
  8844. x = x | (x >> 16);
  8845. return x - (x >> 1);
  8846. };
  8847. /**
  8848. * Find the nearest power of two.
  8849. * @param x Number to start search from.
  8850. * @return Next nearest power of two.
  8851. */
  8852. Tools.NearestPOT = function (x) {
  8853. var c = Tools.CeilingPOT(x);
  8854. var f = Tools.FloorPOT(x);
  8855. return (c - x) > (x - f) ? f : c;
  8856. };
  8857. Tools.GetExponentOfTwo = function (value, max, mode) {
  8858. if (mode === void 0) { mode = BABYLON.Engine.SCALEMODE_NEAREST; }
  8859. var pot;
  8860. switch (mode) {
  8861. case BABYLON.Engine.SCALEMODE_FLOOR:
  8862. pot = Tools.FloorPOT(value);
  8863. break;
  8864. case BABYLON.Engine.SCALEMODE_NEAREST:
  8865. pot = Tools.NearestPOT(value);
  8866. break;
  8867. case BABYLON.Engine.SCALEMODE_CEILING:
  8868. default:
  8869. pot = Tools.CeilingPOT(value);
  8870. break;
  8871. }
  8872. return Math.min(pot, max);
  8873. };
  8874. Tools.GetFilename = function (path) {
  8875. var index = path.lastIndexOf("/");
  8876. if (index < 0)
  8877. return path;
  8878. return path.substring(index + 1);
  8879. };
  8880. /**
  8881. * Extracts the "folder" part of a path (everything before the filename).
  8882. * @param uri The URI to extract the info from
  8883. * @param returnUnchangedIfNoSlash Do not touch the URI if no slashes are present
  8884. * @returns The "folder" part of the path
  8885. */
  8886. Tools.GetFolderPath = function (uri, returnUnchangedIfNoSlash) {
  8887. if (returnUnchangedIfNoSlash === void 0) { returnUnchangedIfNoSlash = false; }
  8888. var index = uri.lastIndexOf("/");
  8889. if (index < 0) {
  8890. if (returnUnchangedIfNoSlash) {
  8891. return uri;
  8892. }
  8893. return "";
  8894. }
  8895. return uri.substring(0, index + 1);
  8896. };
  8897. Tools.GetDOMTextContent = function (element) {
  8898. var result = "";
  8899. var child = element.firstChild;
  8900. while (child) {
  8901. if (child.nodeType === 3) {
  8902. result += child.textContent;
  8903. }
  8904. child = child.nextSibling;
  8905. }
  8906. return result;
  8907. };
  8908. Tools.ToDegrees = function (angle) {
  8909. return angle * 180 / Math.PI;
  8910. };
  8911. Tools.ToRadians = function (angle) {
  8912. return angle * Math.PI / 180;
  8913. };
  8914. Tools.EncodeArrayBufferTobase64 = function (buffer) {
  8915. var keyStr = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/=";
  8916. var output = "";
  8917. var chr1, chr2, chr3, enc1, enc2, enc3, enc4;
  8918. var i = 0;
  8919. var bytes = new Uint8Array(buffer);
  8920. while (i < bytes.length) {
  8921. chr1 = bytes[i++];
  8922. chr2 = i < bytes.length ? bytes[i++] : Number.NaN; // Not sure if the index
  8923. chr3 = i < bytes.length ? bytes[i++] : Number.NaN; // checks are needed here
  8924. enc1 = chr1 >> 2;
  8925. enc2 = ((chr1 & 3) << 4) | (chr2 >> 4);
  8926. enc3 = ((chr2 & 15) << 2) | (chr3 >> 6);
  8927. enc4 = chr3 & 63;
  8928. if (isNaN(chr2)) {
  8929. enc3 = enc4 = 64;
  8930. }
  8931. else if (isNaN(chr3)) {
  8932. enc4 = 64;
  8933. }
  8934. output += keyStr.charAt(enc1) + keyStr.charAt(enc2) +
  8935. keyStr.charAt(enc3) + keyStr.charAt(enc4);
  8936. }
  8937. return "data:image/png;base64," + output;
  8938. };
  8939. Tools.ExtractMinAndMaxIndexed = function (positions, indices, indexStart, indexCount, bias) {
  8940. if (bias === void 0) { bias = null; }
  8941. var minimum = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  8942. var maximum = new BABYLON.Vector3(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE);
  8943. for (var index = indexStart; index < indexStart + indexCount; index++) {
  8944. var current = new BABYLON.Vector3(positions[indices[index] * 3], positions[indices[index] * 3 + 1], positions[indices[index] * 3 + 2]);
  8945. minimum = BABYLON.Vector3.Minimize(current, minimum);
  8946. maximum = BABYLON.Vector3.Maximize(current, maximum);
  8947. }
  8948. if (bias) {
  8949. minimum.x -= minimum.x * bias.x + bias.y;
  8950. minimum.y -= minimum.y * bias.x + bias.y;
  8951. minimum.z -= minimum.z * bias.x + bias.y;
  8952. maximum.x += maximum.x * bias.x + bias.y;
  8953. maximum.y += maximum.y * bias.x + bias.y;
  8954. maximum.z += maximum.z * bias.x + bias.y;
  8955. }
  8956. return {
  8957. minimum: minimum,
  8958. maximum: maximum
  8959. };
  8960. };
  8961. Tools.ExtractMinAndMax = function (positions, start, count, bias, stride) {
  8962. if (bias === void 0) { bias = null; }
  8963. var minimum = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  8964. var maximum = new BABYLON.Vector3(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE);
  8965. if (!stride) {
  8966. stride = 3;
  8967. }
  8968. for (var index = start; index < start + count; index++) {
  8969. var current = new BABYLON.Vector3(positions[index * stride], positions[index * stride + 1], positions[index * stride + 2]);
  8970. minimum = BABYLON.Vector3.Minimize(current, minimum);
  8971. maximum = BABYLON.Vector3.Maximize(current, maximum);
  8972. }
  8973. if (bias) {
  8974. minimum.x -= minimum.x * bias.x + bias.y;
  8975. minimum.y -= minimum.y * bias.x + bias.y;
  8976. minimum.z -= minimum.z * bias.x + bias.y;
  8977. maximum.x += maximum.x * bias.x + bias.y;
  8978. maximum.y += maximum.y * bias.x + bias.y;
  8979. maximum.z += maximum.z * bias.x + bias.y;
  8980. }
  8981. return {
  8982. minimum: minimum,
  8983. maximum: maximum
  8984. };
  8985. };
  8986. Tools.Vector2ArrayFeeder = function (array) {
  8987. return function (index) {
  8988. var isFloatArray = (array.BYTES_PER_ELEMENT !== undefined);
  8989. var length = isFloatArray ? array.length / 2 : array.length;
  8990. if (index >= length) {
  8991. return null;
  8992. }
  8993. if (isFloatArray) {
  8994. var fa = array;
  8995. return new BABYLON.Vector2(fa[index * 2 + 0], fa[index * 2 + 1]);
  8996. }
  8997. var a = array;
  8998. return a[index];
  8999. };
  9000. };
  9001. Tools.ExtractMinAndMaxVector2 = function (feeder, bias) {
  9002. if (bias === void 0) { bias = null; }
  9003. var minimum = new BABYLON.Vector2(Number.MAX_VALUE, Number.MAX_VALUE);
  9004. var maximum = new BABYLON.Vector2(-Number.MAX_VALUE, -Number.MAX_VALUE);
  9005. var i = 0;
  9006. var cur = feeder(i++);
  9007. while (cur) {
  9008. minimum = BABYLON.Vector2.Minimize(cur, minimum);
  9009. maximum = BABYLON.Vector2.Maximize(cur, maximum);
  9010. cur = feeder(i++);
  9011. }
  9012. if (bias) {
  9013. minimum.x -= minimum.x * bias.x + bias.y;
  9014. minimum.y -= minimum.y * bias.x + bias.y;
  9015. maximum.x += maximum.x * bias.x + bias.y;
  9016. maximum.y += maximum.y * bias.x + bias.y;
  9017. }
  9018. return {
  9019. minimum: minimum,
  9020. maximum: maximum
  9021. };
  9022. };
  9023. Tools.MakeArray = function (obj, allowsNullUndefined) {
  9024. if (allowsNullUndefined !== true && (obj === undefined || obj == null))
  9025. return null;
  9026. return Array.isArray(obj) ? obj : [obj];
  9027. };
  9028. // Misc.
  9029. Tools.GetPointerPrefix = function () {
  9030. var eventPrefix = "pointer";
  9031. // Check if pointer events are supported
  9032. if (Tools.IsWindowObjectExist() && !window.PointerEvent && !navigator.pointerEnabled) {
  9033. eventPrefix = "mouse";
  9034. }
  9035. return eventPrefix;
  9036. };
  9037. /**
  9038. * @param func - the function to be called
  9039. * @param requester - the object that will request the next frame. Falls back to window.
  9040. */
  9041. Tools.QueueNewFrame = function (func, requester) {
  9042. if (!Tools.IsWindowObjectExist()) {
  9043. return setTimeout(func, 16);
  9044. }
  9045. if (!requester) {
  9046. requester = window;
  9047. }
  9048. if (requester.requestAnimationFrame) {
  9049. return requester.requestAnimationFrame(func);
  9050. }
  9051. else if (requester.msRequestAnimationFrame) {
  9052. return requester.msRequestAnimationFrame(func);
  9053. }
  9054. else if (requester.webkitRequestAnimationFrame) {
  9055. return requester.webkitRequestAnimationFrame(func);
  9056. }
  9057. else if (requester.mozRequestAnimationFrame) {
  9058. return requester.mozRequestAnimationFrame(func);
  9059. }
  9060. else if (requester.oRequestAnimationFrame) {
  9061. return requester.oRequestAnimationFrame(func);
  9062. }
  9063. else {
  9064. return window.setTimeout(func, 16);
  9065. }
  9066. };
  9067. Tools.RequestFullscreen = function (element) {
  9068. var requestFunction = element.requestFullscreen || element.msRequestFullscreen || element.webkitRequestFullscreen || element.mozRequestFullScreen;
  9069. if (!requestFunction)
  9070. return;
  9071. requestFunction.call(element);
  9072. };
  9073. Tools.ExitFullscreen = function () {
  9074. if (document.exitFullscreen) {
  9075. document.exitFullscreen();
  9076. }
  9077. else if (document.mozCancelFullScreen) {
  9078. document.mozCancelFullScreen();
  9079. }
  9080. else if (document.webkitCancelFullScreen) {
  9081. document.webkitCancelFullScreen();
  9082. }
  9083. else if (document.msCancelFullScreen) {
  9084. document.msCancelFullScreen();
  9085. }
  9086. };
  9087. Tools.SetCorsBehavior = function (url, element) {
  9088. if (url && url.indexOf("data:") === 0) {
  9089. return;
  9090. }
  9091. if (Tools.CorsBehavior) {
  9092. if (typeof (Tools.CorsBehavior) === 'string' || Tools.CorsBehavior instanceof String) {
  9093. element.crossOrigin = Tools.CorsBehavior;
  9094. }
  9095. else {
  9096. var result = Tools.CorsBehavior(url);
  9097. if (result) {
  9098. element.crossOrigin = result;
  9099. }
  9100. }
  9101. }
  9102. };
  9103. // External files
  9104. Tools.CleanUrl = function (url) {
  9105. url = url.replace(/#/mg, "%23");
  9106. return url;
  9107. };
  9108. /**
  9109. * Loads an image as an HTMLImageElement.
  9110. * @param input url string, ArrayBuffer, or Blob to load
  9111. * @param onLoad callback called when the image successfully loads
  9112. * @param onError callback called when the image fails to load
  9113. * @param database database for caching
  9114. * @returns the HTMLImageElement of the loaded image
  9115. */
  9116. Tools.LoadImage = function (input, onLoad, onError, database) {
  9117. var url;
  9118. var usingObjectURL = false;
  9119. if (input instanceof ArrayBuffer) {
  9120. url = URL.createObjectURL(new Blob([input]));
  9121. usingObjectURL = true;
  9122. }
  9123. else if (input instanceof Blob) {
  9124. url = URL.createObjectURL(input);
  9125. usingObjectURL = true;
  9126. }
  9127. else {
  9128. url = Tools.CleanUrl(input);
  9129. url = Tools.PreprocessUrl(input);
  9130. }
  9131. var img = new Image();
  9132. Tools.SetCorsBehavior(url, img);
  9133. var loadHandler = function () {
  9134. if (usingObjectURL && img.src) {
  9135. URL.revokeObjectURL(img.src);
  9136. }
  9137. img.removeEventListener("load", loadHandler);
  9138. img.removeEventListener("error", errorHandler);
  9139. onLoad(img);
  9140. };
  9141. var errorHandler = function (err) {
  9142. if (usingObjectURL && img.src) {
  9143. URL.revokeObjectURL(img.src);
  9144. }
  9145. img.removeEventListener("load", loadHandler);
  9146. img.removeEventListener("error", errorHandler);
  9147. Tools.Error("Error while trying to load image: " + input);
  9148. if (onError) {
  9149. onError("Error while trying to load image: " + input, err);
  9150. }
  9151. };
  9152. img.addEventListener("load", loadHandler);
  9153. img.addEventListener("error", errorHandler);
  9154. var noIndexedDB = function () {
  9155. img.src = url;
  9156. };
  9157. var loadFromIndexedDB = function () {
  9158. if (database) {
  9159. database.loadImageFromDB(url, img);
  9160. }
  9161. };
  9162. //ANY database to do!
  9163. if (url.substr(0, 5) !== "data:" && database && database.enableTexturesOffline && BABYLON.Database.IsUASupportingBlobStorage) {
  9164. database.openAsync(loadFromIndexedDB, noIndexedDB);
  9165. }
  9166. else {
  9167. if (url.indexOf("file:") !== -1) {
  9168. var textureName = decodeURIComponent(url.substring(5).toLowerCase());
  9169. if (BABYLON.FilesInput.FilesToLoad[textureName]) {
  9170. try {
  9171. var blobURL;
  9172. try {
  9173. blobURL = URL.createObjectURL(BABYLON.FilesInput.FilesToLoad[textureName]);
  9174. }
  9175. catch (ex) {
  9176. // Chrome doesn't support oneTimeOnly parameter
  9177. blobURL = URL.createObjectURL(BABYLON.FilesInput.FilesToLoad[textureName]);
  9178. }
  9179. img.src = blobURL;
  9180. usingObjectURL = true;
  9181. }
  9182. catch (e) {
  9183. img.src = "";
  9184. }
  9185. return img;
  9186. }
  9187. }
  9188. noIndexedDB();
  9189. }
  9190. return img;
  9191. };
  9192. Tools.LoadFile = function (url, onSuccess, onProgress, database, useArrayBuffer, onError) {
  9193. url = Tools.CleanUrl(url);
  9194. url = Tools.PreprocessUrl(url);
  9195. // If file and file input are set
  9196. if (url.indexOf("file:") !== -1) {
  9197. var fileName = decodeURIComponent(url.substring(5).toLowerCase());
  9198. if (BABYLON.FilesInput.FilesToLoad[fileName]) {
  9199. return Tools.ReadFile(BABYLON.FilesInput.FilesToLoad[fileName], onSuccess, onProgress, useArrayBuffer);
  9200. }
  9201. }
  9202. var loadUrl = Tools.BaseUrl + url;
  9203. var aborted = false;
  9204. var fileRequest = {
  9205. onCompleteObservable: new BABYLON.Observable(),
  9206. abort: function () { return aborted = true; },
  9207. };
  9208. var requestFile = function () {
  9209. var request = new XMLHttpRequest();
  9210. var retryHandle = null;
  9211. fileRequest.abort = function () {
  9212. aborted = true;
  9213. if (request.readyState !== (XMLHttpRequest.DONE || 4)) {
  9214. request.abort();
  9215. }
  9216. if (retryHandle !== null) {
  9217. clearTimeout(retryHandle);
  9218. retryHandle = null;
  9219. }
  9220. };
  9221. var retryLoop = function (retryIndex) {
  9222. request.open('GET', loadUrl, true);
  9223. if (useArrayBuffer) {
  9224. request.responseType = "arraybuffer";
  9225. }
  9226. if (onProgress) {
  9227. request.addEventListener("progress", onProgress);
  9228. }
  9229. var onLoadEnd = function () {
  9230. request.removeEventListener("loadend", onLoadEnd);
  9231. fileRequest.onCompleteObservable.notifyObservers(fileRequest);
  9232. fileRequest.onCompleteObservable.clear();
  9233. };
  9234. request.addEventListener("loadend", onLoadEnd);
  9235. var onReadyStateChange = function () {
  9236. if (aborted) {
  9237. return;
  9238. }
  9239. // In case of undefined state in some browsers.
  9240. if (request.readyState === (XMLHttpRequest.DONE || 4)) {
  9241. // Some browsers have issues where onreadystatechange can be called multiple times with the same value.
  9242. request.removeEventListener("readystatechange", onReadyStateChange);
  9243. if ((request.status >= 200 && request.status < 300) || (request.status === 0 && (!Tools.IsWindowObjectExist() || Tools.IsFileURL()))) {
  9244. onSuccess(!useArrayBuffer ? request.responseText : request.response, request.responseURL);
  9245. return;
  9246. }
  9247. var retryStrategy = Tools.DefaultRetryStrategy;
  9248. if (retryStrategy) {
  9249. var waitTime = retryStrategy(loadUrl, request, retryIndex);
  9250. if (waitTime !== -1) {
  9251. // Prevent the request from completing for retry.
  9252. request.removeEventListener("loadend", onLoadEnd);
  9253. request = new XMLHttpRequest();
  9254. retryHandle = setTimeout(function () { return retryLoop(retryIndex + 1); }, waitTime);
  9255. return;
  9256. }
  9257. }
  9258. var e = new LoadFileError("Error status: " + request.status + " " + request.statusText + " - Unable to load " + loadUrl, request);
  9259. if (onError) {
  9260. onError(request, e);
  9261. }
  9262. else {
  9263. throw e;
  9264. }
  9265. }
  9266. };
  9267. request.addEventListener("readystatechange", onReadyStateChange);
  9268. request.send();
  9269. };
  9270. retryLoop(0);
  9271. };
  9272. // Caching all files
  9273. if (database && database.enableSceneOffline) {
  9274. var noIndexedDB_1 = function (request) {
  9275. if (request && request.status > 400) {
  9276. if (onError) {
  9277. onError(request);
  9278. }
  9279. }
  9280. else {
  9281. if (!aborted) {
  9282. requestFile();
  9283. }
  9284. }
  9285. };
  9286. var loadFromIndexedDB = function () {
  9287. // TODO: database needs to support aborting and should return a IFileRequest
  9288. if (aborted) {
  9289. return;
  9290. }
  9291. if (database) {
  9292. database.loadFileFromDB(url, function (data) {
  9293. if (!aborted) {
  9294. onSuccess(data);
  9295. }
  9296. fileRequest.onCompleteObservable.notifyObservers(fileRequest);
  9297. }, onProgress ? function (event) {
  9298. if (!aborted) {
  9299. onProgress(event);
  9300. }
  9301. } : undefined, noIndexedDB_1, useArrayBuffer);
  9302. }
  9303. };
  9304. database.openAsync(loadFromIndexedDB, noIndexedDB_1);
  9305. }
  9306. else {
  9307. requestFile();
  9308. }
  9309. return fileRequest;
  9310. };
  9311. /**
  9312. * Load a script (identified by an url). When the url returns, the
  9313. * content of this file is added into a new script element, attached to the DOM (body element)
  9314. */
  9315. Tools.LoadScript = function (scriptUrl, onSuccess, onError) {
  9316. if (!Tools.IsWindowObjectExist()) {
  9317. return;
  9318. }
  9319. var head = document.getElementsByTagName('head')[0];
  9320. var script = document.createElement('script');
  9321. script.type = 'text/javascript';
  9322. script.src = scriptUrl;
  9323. script.onload = function () {
  9324. if (onSuccess) {
  9325. onSuccess();
  9326. }
  9327. };
  9328. script.onerror = function (e) {
  9329. if (onError) {
  9330. onError("Unable to load script '" + scriptUrl + "'", e);
  9331. }
  9332. };
  9333. head.appendChild(script);
  9334. };
  9335. Tools.ReadFileAsDataURL = function (fileToLoad, callback, progressCallback) {
  9336. var reader = new FileReader();
  9337. var request = {
  9338. onCompleteObservable: new BABYLON.Observable(),
  9339. abort: function () { return reader.abort(); },
  9340. };
  9341. reader.onloadend = function (e) {
  9342. request.onCompleteObservable.notifyObservers(request);
  9343. };
  9344. reader.onload = function (e) {
  9345. //target doesn't have result from ts 1.3
  9346. callback(e.target['result']);
  9347. };
  9348. reader.onprogress = progressCallback;
  9349. reader.readAsDataURL(fileToLoad);
  9350. return request;
  9351. };
  9352. Tools.ReadFile = function (fileToLoad, callback, progressCallBack, useArrayBuffer) {
  9353. var reader = new FileReader();
  9354. var request = {
  9355. onCompleteObservable: new BABYLON.Observable(),
  9356. abort: function () { return reader.abort(); },
  9357. };
  9358. reader.onloadend = function (e) { return request.onCompleteObservable.notifyObservers(request); };
  9359. reader.onerror = function (e) {
  9360. Tools.Log("Error while reading file: " + fileToLoad.name);
  9361. callback(JSON.stringify({ autoClear: true, clearColor: [1, 0, 0], ambientColor: [0, 0, 0], gravity: [0, -9.807, 0], meshes: [], cameras: [], lights: [] }));
  9362. };
  9363. reader.onload = function (e) {
  9364. //target doesn't have result from ts 1.3
  9365. callback(e.target['result']);
  9366. };
  9367. if (progressCallBack) {
  9368. reader.onprogress = progressCallBack;
  9369. }
  9370. if (!useArrayBuffer) {
  9371. // Asynchronous read
  9372. reader.readAsText(fileToLoad);
  9373. }
  9374. else {
  9375. reader.readAsArrayBuffer(fileToLoad);
  9376. }
  9377. return request;
  9378. };
  9379. //returns a downloadable url to a file content.
  9380. Tools.FileAsURL = function (content) {
  9381. var fileBlob = new Blob([content]);
  9382. var url = window.URL || window.webkitURL;
  9383. var link = url.createObjectURL(fileBlob);
  9384. return link;
  9385. };
  9386. // Misc.
  9387. Tools.Format = function (value, decimals) {
  9388. if (decimals === void 0) { decimals = 2; }
  9389. return value.toFixed(decimals);
  9390. };
  9391. Tools.CheckExtends = function (v, min, max) {
  9392. if (v.x < min.x)
  9393. min.x = v.x;
  9394. if (v.y < min.y)
  9395. min.y = v.y;
  9396. if (v.z < min.z)
  9397. min.z = v.z;
  9398. if (v.x > max.x)
  9399. max.x = v.x;
  9400. if (v.y > max.y)
  9401. max.y = v.y;
  9402. if (v.z > max.z)
  9403. max.z = v.z;
  9404. };
  9405. Tools.DeepCopy = function (source, destination, doNotCopyList, mustCopyList) {
  9406. for (var prop in source) {
  9407. if (prop[0] === "_" && (!mustCopyList || mustCopyList.indexOf(prop) === -1)) {
  9408. continue;
  9409. }
  9410. if (doNotCopyList && doNotCopyList.indexOf(prop) !== -1) {
  9411. continue;
  9412. }
  9413. var sourceValue = source[prop];
  9414. var typeOfSourceValue = typeof sourceValue;
  9415. if (typeOfSourceValue === "function") {
  9416. continue;
  9417. }
  9418. try {
  9419. if (typeOfSourceValue === "object") {
  9420. if (sourceValue instanceof Array) {
  9421. destination[prop] = [];
  9422. if (sourceValue.length > 0) {
  9423. if (typeof sourceValue[0] == "object") {
  9424. for (var index = 0; index < sourceValue.length; index++) {
  9425. var clonedValue = cloneValue(sourceValue[index], destination);
  9426. if (destination[prop].indexOf(clonedValue) === -1) { // Test if auto inject was not done
  9427. destination[prop].push(clonedValue);
  9428. }
  9429. }
  9430. }
  9431. else {
  9432. destination[prop] = sourceValue.slice(0);
  9433. }
  9434. }
  9435. }
  9436. else {
  9437. destination[prop] = cloneValue(sourceValue, destination);
  9438. }
  9439. }
  9440. else {
  9441. destination[prop] = sourceValue;
  9442. }
  9443. }
  9444. catch (e) {
  9445. // Just ignore error (it could be because of a read-only property)
  9446. }
  9447. }
  9448. };
  9449. Tools.IsEmpty = function (obj) {
  9450. for (var i in obj) {
  9451. if (obj.hasOwnProperty(i)) {
  9452. return false;
  9453. }
  9454. }
  9455. return true;
  9456. };
  9457. Tools.RegisterTopRootEvents = function (events) {
  9458. for (var index = 0; index < events.length; index++) {
  9459. var event = events[index];
  9460. window.addEventListener(event.name, event.handler, false);
  9461. try {
  9462. if (window.parent) {
  9463. window.parent.addEventListener(event.name, event.handler, false);
  9464. }
  9465. }
  9466. catch (e) {
  9467. // Silently fails...
  9468. }
  9469. }
  9470. };
  9471. Tools.UnregisterTopRootEvents = function (events) {
  9472. for (var index = 0; index < events.length; index++) {
  9473. var event = events[index];
  9474. window.removeEventListener(event.name, event.handler);
  9475. try {
  9476. if (window.parent) {
  9477. window.parent.removeEventListener(event.name, event.handler);
  9478. }
  9479. }
  9480. catch (e) {
  9481. // Silently fails...
  9482. }
  9483. }
  9484. };
  9485. Tools.DumpFramebuffer = function (width, height, engine, successCallback, mimeType, fileName) {
  9486. if (mimeType === void 0) { mimeType = "image/png"; }
  9487. // Read the contents of the framebuffer
  9488. var numberOfChannelsByLine = width * 4;
  9489. var halfHeight = height / 2;
  9490. //Reading datas from WebGL
  9491. var data = engine.readPixels(0, 0, width, height);
  9492. //To flip image on Y axis.
  9493. for (var i = 0; i < halfHeight; i++) {
  9494. for (var j = 0; j < numberOfChannelsByLine; j++) {
  9495. var currentCell = j + i * numberOfChannelsByLine;
  9496. var targetLine = height - i - 1;
  9497. var targetCell = j + targetLine * numberOfChannelsByLine;
  9498. var temp = data[currentCell];
  9499. data[currentCell] = data[targetCell];
  9500. data[targetCell] = temp;
  9501. }
  9502. }
  9503. // Create a 2D canvas to store the result
  9504. if (!screenshotCanvas) {
  9505. screenshotCanvas = document.createElement('canvas');
  9506. }
  9507. screenshotCanvas.width = width;
  9508. screenshotCanvas.height = height;
  9509. var context = screenshotCanvas.getContext('2d');
  9510. if (context) {
  9511. // Copy the pixels to a 2D canvas
  9512. var imageData = context.createImageData(width, height);
  9513. var castData = (imageData.data);
  9514. castData.set(data);
  9515. context.putImageData(imageData, 0, 0);
  9516. Tools.EncodeScreenshotCanvasData(successCallback, mimeType, fileName);
  9517. }
  9518. };
  9519. /**
  9520. * Converts the canvas data to blob.
  9521. * This acts as a polyfill for browsers not supporting the to blob function.
  9522. * @param canvas Defines the canvas to extract the data from
  9523. * @param successCallback Defines the callback triggered once the data are available
  9524. * @param mimeType Defines the mime type of the result
  9525. */
  9526. Tools.ToBlob = function (canvas, successCallback, mimeType) {
  9527. if (mimeType === void 0) { mimeType = "image/png"; }
  9528. // We need HTMLCanvasElement.toBlob for HD screenshots
  9529. if (!canvas.toBlob) {
  9530. // low performance polyfill based on toDataURL (https://developer.mozilla.org/en-US/docs/Web/API/HTMLCanvasElement/toBlob)
  9531. canvas.toBlob = function (callback, type, quality) {
  9532. var _this = this;
  9533. setTimeout(function () {
  9534. var binStr = atob(_this.toDataURL(type, quality).split(',')[1]), len = binStr.length, arr = new Uint8Array(len);
  9535. for (var i = 0; i < len; i++) {
  9536. arr[i] = binStr.charCodeAt(i);
  9537. }
  9538. callback(new Blob([arr]));
  9539. });
  9540. };
  9541. }
  9542. canvas.toBlob(function (blob) {
  9543. successCallback(blob);
  9544. }, mimeType);
  9545. };
  9546. /**
  9547. * Encodes the canvas data to base 64 or automatically download the result if filename is defined
  9548. * @param successCallback Defines the callback triggered once the data are available
  9549. * @param mimeType Defines the mime type of the result
  9550. * @param fileName The filename to download. If present, the result will automatically be downloaded
  9551. */
  9552. Tools.EncodeScreenshotCanvasData = function (successCallback, mimeType, fileName) {
  9553. if (mimeType === void 0) { mimeType = "image/png"; }
  9554. if (successCallback) {
  9555. var base64Image = screenshotCanvas.toDataURL(mimeType);
  9556. successCallback(base64Image);
  9557. }
  9558. else {
  9559. this.ToBlob(screenshotCanvas, function (blob) {
  9560. //Creating a link if the browser have the download attribute on the a tag, to automatically start download generated image.
  9561. if (("download" in document.createElement("a"))) {
  9562. if (!fileName) {
  9563. var date = new Date();
  9564. var stringDate = (date.getFullYear() + "-" + (date.getMonth() + 1)).slice(2) + "-" + date.getDate() + "_" + date.getHours() + "-" + ('0' + date.getMinutes()).slice(-2);
  9565. fileName = "screenshot_" + stringDate + ".png";
  9566. }
  9567. Tools.Download(blob, fileName);
  9568. }
  9569. else {
  9570. var url = URL.createObjectURL(blob);
  9571. var newWindow = window.open("");
  9572. if (!newWindow)
  9573. return;
  9574. var img = newWindow.document.createElement("img");
  9575. img.onload = function () {
  9576. // no longer need to read the blob so it's revoked
  9577. URL.revokeObjectURL(url);
  9578. };
  9579. img.src = url;
  9580. newWindow.document.body.appendChild(img);
  9581. }
  9582. }, mimeType);
  9583. }
  9584. };
  9585. /**
  9586. * Downloads a blob in the browser
  9587. * @param blob defines the blob to download
  9588. * @param fileName defines the name of the downloaded file
  9589. */
  9590. Tools.Download = function (blob, fileName) {
  9591. if (navigator && navigator.msSaveBlob) {
  9592. navigator.msSaveBlob(blob, fileName);
  9593. return;
  9594. }
  9595. var url = window.URL.createObjectURL(blob);
  9596. var a = document.createElement("a");
  9597. document.body.appendChild(a);
  9598. a.style.display = "none";
  9599. a.href = url;
  9600. a.download = fileName;
  9601. a.addEventListener("click", function () {
  9602. if (a.parentElement) {
  9603. a.parentElement.removeChild(a);
  9604. }
  9605. });
  9606. a.click();
  9607. window.URL.revokeObjectURL(url);
  9608. };
  9609. Tools.CreateScreenshot = function (engine, camera, size, successCallback, mimeType) {
  9610. if (mimeType === void 0) { mimeType = "image/png"; }
  9611. var width;
  9612. var height;
  9613. // If a precision value is specified
  9614. if (size.precision) {
  9615. width = Math.round(engine.getRenderWidth() * size.precision);
  9616. height = Math.round(width / engine.getAspectRatio(camera));
  9617. }
  9618. else if (size.width && size.height) {
  9619. width = size.width;
  9620. height = size.height;
  9621. }
  9622. //If passing only width, computing height to keep display canvas ratio.
  9623. else if (size.width && !size.height) {
  9624. width = size.width;
  9625. height = Math.round(width / engine.getAspectRatio(camera));
  9626. }
  9627. //If passing only height, computing width to keep display canvas ratio.
  9628. else if (size.height && !size.width) {
  9629. height = size.height;
  9630. width = Math.round(height * engine.getAspectRatio(camera));
  9631. }
  9632. //Assuming here that "size" parameter is a number
  9633. else if (!isNaN(size)) {
  9634. height = size;
  9635. width = size;
  9636. }
  9637. else {
  9638. Tools.Error("Invalid 'size' parameter !");
  9639. return;
  9640. }
  9641. if (!screenshotCanvas) {
  9642. screenshotCanvas = document.createElement('canvas');
  9643. }
  9644. screenshotCanvas.width = width;
  9645. screenshotCanvas.height = height;
  9646. var renderContext = screenshotCanvas.getContext("2d");
  9647. var ratio = engine.getRenderWidth() / engine.getRenderHeight();
  9648. var newWidth = width;
  9649. var newHeight = newWidth / ratio;
  9650. if (newHeight > height) {
  9651. newHeight = height;
  9652. newWidth = newHeight * ratio;
  9653. }
  9654. var offsetX = Math.max(0, width - newWidth) / 2;
  9655. var offsetY = Math.max(0, height - newHeight) / 2;
  9656. var renderingCanvas = engine.getRenderingCanvas();
  9657. if (renderContext && renderingCanvas) {
  9658. renderContext.drawImage(renderingCanvas, offsetX, offsetY, newWidth, newHeight);
  9659. }
  9660. Tools.EncodeScreenshotCanvasData(successCallback, mimeType);
  9661. };
  9662. /**
  9663. * Generates an image screenshot from the specified camera.
  9664. *
  9665. * @param engine The engine to use for rendering
  9666. * @param camera The camera to use for rendering
  9667. * @param size This parameter can be set to a single number or to an object with the
  9668. * following (optional) properties: precision, width, height. If a single number is passed,
  9669. * it will be used for both width and height. If an object is passed, the screenshot size
  9670. * will be derived from the parameters. The precision property is a multiplier allowing
  9671. * rendering at a higher or lower resolution.
  9672. * @param successCallback The callback receives a single parameter which contains the
  9673. * screenshot as a string of base64-encoded characters. This string can be assigned to the
  9674. * src parameter of an <img> to display it.
  9675. * @param mimeType The MIME type of the screenshot image (default: image/png).
  9676. * Check your browser for supported MIME types.
  9677. * @param samples Texture samples (default: 1)
  9678. * @param antialiasing Whether antialiasing should be turned on or not (default: false)
  9679. * @param fileName A name for for the downloaded file.
  9680. * @constructor
  9681. */
  9682. Tools.CreateScreenshotUsingRenderTarget = function (engine, camera, size, successCallback, mimeType, samples, antialiasing, fileName) {
  9683. if (mimeType === void 0) { mimeType = "image/png"; }
  9684. if (samples === void 0) { samples = 1; }
  9685. if (antialiasing === void 0) { antialiasing = false; }
  9686. var width;
  9687. var height;
  9688. //If a precision value is specified
  9689. if (size.precision) {
  9690. width = Math.round(engine.getRenderWidth() * size.precision);
  9691. height = Math.round(width / engine.getAspectRatio(camera));
  9692. size = { width: width, height: height };
  9693. }
  9694. else if (size.width && size.height) {
  9695. width = size.width;
  9696. height = size.height;
  9697. }
  9698. //If passing only width, computing height to keep display canvas ratio.
  9699. else if (size.width && !size.height) {
  9700. width = size.width;
  9701. height = Math.round(width / engine.getAspectRatio(camera));
  9702. size = { width: width, height: height };
  9703. }
  9704. //If passing only height, computing width to keep display canvas ratio.
  9705. else if (size.height && !size.width) {
  9706. height = size.height;
  9707. width = Math.round(height * engine.getAspectRatio(camera));
  9708. size = { width: width, height: height };
  9709. }
  9710. //Assuming here that "size" parameter is a number
  9711. else if (!isNaN(size)) {
  9712. height = size;
  9713. width = size;
  9714. }
  9715. else {
  9716. Tools.Error("Invalid 'size' parameter !");
  9717. return;
  9718. }
  9719. var scene = camera.getScene();
  9720. var previousCamera = null;
  9721. if (scene.activeCamera !== camera) {
  9722. previousCamera = scene.activeCamera;
  9723. scene.activeCamera = camera;
  9724. }
  9725. //At this point size can be a number, or an object (according to engine.prototype.createRenderTargetTexture method)
  9726. var texture = new BABYLON.RenderTargetTexture("screenShot", size, scene, false, false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT, false, BABYLON.Texture.NEAREST_SAMPLINGMODE);
  9727. texture.renderList = null;
  9728. texture.samples = samples;
  9729. if (antialiasing) {
  9730. texture.addPostProcess(new BABYLON.FxaaPostProcess('antialiasing', 1.0, scene.activeCamera));
  9731. }
  9732. texture.onAfterRenderObservable.add(function () {
  9733. Tools.DumpFramebuffer(width, height, engine, successCallback, mimeType, fileName);
  9734. });
  9735. scene.incrementRenderId();
  9736. scene.resetCachedMaterial();
  9737. texture.render(true);
  9738. texture.dispose();
  9739. if (previousCamera) {
  9740. scene.activeCamera = previousCamera;
  9741. }
  9742. camera.getProjectionMatrix(true); // Force cache refresh;
  9743. };
  9744. // XHR response validator for local file scenario
  9745. Tools.ValidateXHRData = function (xhr, dataType) {
  9746. // 1 for text (.babylon, manifest and shaders), 2 for TGA, 4 for DDS, 7 for all
  9747. if (dataType === void 0) { dataType = 7; }
  9748. try {
  9749. if (dataType & 1) {
  9750. if (xhr.responseText && xhr.responseText.length > 0) {
  9751. return true;
  9752. }
  9753. else if (dataType === 1) {
  9754. return false;
  9755. }
  9756. }
  9757. if (dataType & 2) {
  9758. // Check header width and height since there is no "TGA" magic number
  9759. var tgaHeader = BABYLON.TGATools.GetTGAHeader(xhr.response);
  9760. if (tgaHeader.width && tgaHeader.height && tgaHeader.width > 0 && tgaHeader.height > 0) {
  9761. return true;
  9762. }
  9763. else if (dataType === 2) {
  9764. return false;
  9765. }
  9766. }
  9767. if (dataType & 4) {
  9768. // Check for the "DDS" magic number
  9769. var ddsHeader = new Uint8Array(xhr.response, 0, 3);
  9770. if (ddsHeader[0] === 68 && ddsHeader[1] === 68 && ddsHeader[2] === 83) {
  9771. return true;
  9772. }
  9773. else {
  9774. return false;
  9775. }
  9776. }
  9777. }
  9778. catch (e) {
  9779. // Global protection
  9780. }
  9781. return false;
  9782. };
  9783. /**
  9784. * Implementation from http://stackoverflow.com/questions/105034/how-to-create-a-guid-uuid-in-javascript/2117523#answer-2117523
  9785. * Be aware Math.random() could cause collisions, but:
  9786. * "All but 6 of the 128 bits of the ID are randomly generated, which means that for any two ids, there's a 1 in 2^^122 (or 5.3x10^^36) chance they'll collide"
  9787. */
  9788. Tools.RandomId = function () {
  9789. return 'xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx'.replace(/[xy]/g, function (c) {
  9790. var r = Math.random() * 16 | 0, v = c === 'x' ? r : (r & 0x3 | 0x8);
  9791. return v.toString(16);
  9792. });
  9793. };
  9794. /**
  9795. * Test if the given uri is a base64 string.
  9796. * @param uri The uri to test
  9797. * @return True if the uri is a base64 string or false otherwise.
  9798. */
  9799. Tools.IsBase64 = function (uri) {
  9800. return uri.length < 5 ? false : uri.substr(0, 5) === "data:";
  9801. };
  9802. /**
  9803. * Decode the given base64 uri.
  9804. * @param uri The uri to decode
  9805. * @return The decoded base64 data.
  9806. */
  9807. Tools.DecodeBase64 = function (uri) {
  9808. var decodedString = atob(uri.split(",")[1]);
  9809. var bufferLength = decodedString.length;
  9810. var bufferView = new Uint8Array(new ArrayBuffer(bufferLength));
  9811. for (var i = 0; i < bufferLength; i++) {
  9812. bufferView[i] = decodedString.charCodeAt(i);
  9813. }
  9814. return bufferView.buffer;
  9815. };
  9816. Object.defineProperty(Tools, "NoneLogLevel", {
  9817. get: function () {
  9818. return Tools._NoneLogLevel;
  9819. },
  9820. enumerable: true,
  9821. configurable: true
  9822. });
  9823. Object.defineProperty(Tools, "MessageLogLevel", {
  9824. get: function () {
  9825. return Tools._MessageLogLevel;
  9826. },
  9827. enumerable: true,
  9828. configurable: true
  9829. });
  9830. Object.defineProperty(Tools, "WarningLogLevel", {
  9831. get: function () {
  9832. return Tools._WarningLogLevel;
  9833. },
  9834. enumerable: true,
  9835. configurable: true
  9836. });
  9837. Object.defineProperty(Tools, "ErrorLogLevel", {
  9838. get: function () {
  9839. return Tools._ErrorLogLevel;
  9840. },
  9841. enumerable: true,
  9842. configurable: true
  9843. });
  9844. Object.defineProperty(Tools, "AllLogLevel", {
  9845. get: function () {
  9846. return Tools._MessageLogLevel | Tools._WarningLogLevel | Tools._ErrorLogLevel;
  9847. },
  9848. enumerable: true,
  9849. configurable: true
  9850. });
  9851. Tools._AddLogEntry = function (entry) {
  9852. Tools._LogCache = entry + Tools._LogCache;
  9853. if (Tools.OnNewCacheEntry) {
  9854. Tools.OnNewCacheEntry(entry);
  9855. }
  9856. };
  9857. Tools._FormatMessage = function (message) {
  9858. var padStr = function (i) { return (i < 10) ? "0" + i : "" + i; };
  9859. var date = new Date();
  9860. return "[" + padStr(date.getHours()) + ":" + padStr(date.getMinutes()) + ":" + padStr(date.getSeconds()) + "]: " + message;
  9861. };
  9862. Tools._LogDisabled = function (message) {
  9863. // nothing to do
  9864. };
  9865. Tools._LogEnabled = function (message) {
  9866. var formattedMessage = Tools._FormatMessage(message);
  9867. console.log("BJS - " + formattedMessage);
  9868. var entry = "<div style='color:white'>" + formattedMessage + "</div><br>";
  9869. Tools._AddLogEntry(entry);
  9870. };
  9871. Tools._WarnDisabled = function (message) {
  9872. // nothing to do
  9873. };
  9874. Tools._WarnEnabled = function (message) {
  9875. var formattedMessage = Tools._FormatMessage(message);
  9876. console.warn("BJS - " + formattedMessage);
  9877. var entry = "<div style='color:orange'>" + formattedMessage + "</div><br>";
  9878. Tools._AddLogEntry(entry);
  9879. };
  9880. Tools._ErrorDisabled = function (message) {
  9881. // nothing to do
  9882. };
  9883. Tools._ErrorEnabled = function (message) {
  9884. Tools.errorsCount++;
  9885. var formattedMessage = Tools._FormatMessage(message);
  9886. console.error("BJS - " + formattedMessage);
  9887. var entry = "<div style='color:red'>" + formattedMessage + "</div><br>";
  9888. Tools._AddLogEntry(entry);
  9889. };
  9890. Object.defineProperty(Tools, "LogCache", {
  9891. get: function () {
  9892. return Tools._LogCache;
  9893. },
  9894. enumerable: true,
  9895. configurable: true
  9896. });
  9897. Tools.ClearLogCache = function () {
  9898. Tools._LogCache = "";
  9899. Tools.errorsCount = 0;
  9900. };
  9901. Object.defineProperty(Tools, "LogLevels", {
  9902. set: function (level) {
  9903. if ((level & Tools.MessageLogLevel) === Tools.MessageLogLevel) {
  9904. Tools.Log = Tools._LogEnabled;
  9905. }
  9906. else {
  9907. Tools.Log = Tools._LogDisabled;
  9908. }
  9909. if ((level & Tools.WarningLogLevel) === Tools.WarningLogLevel) {
  9910. Tools.Warn = Tools._WarnEnabled;
  9911. }
  9912. else {
  9913. Tools.Warn = Tools._WarnDisabled;
  9914. }
  9915. if ((level & Tools.ErrorLogLevel) === Tools.ErrorLogLevel) {
  9916. Tools.Error = Tools._ErrorEnabled;
  9917. }
  9918. else {
  9919. Tools.Error = Tools._ErrorDisabled;
  9920. }
  9921. },
  9922. enumerable: true,
  9923. configurable: true
  9924. });
  9925. /**
  9926. * Check if the loaded document was accessed via `file:`-Protocol.
  9927. * @returns boolean
  9928. */
  9929. Tools.IsFileURL = function () {
  9930. return location.protocol === "file:";
  9931. };
  9932. Tools.IsWindowObjectExist = function () {
  9933. return (typeof window) !== "undefined";
  9934. };
  9935. Object.defineProperty(Tools, "PerformanceNoneLogLevel", {
  9936. get: function () {
  9937. return Tools._PerformanceNoneLogLevel;
  9938. },
  9939. enumerable: true,
  9940. configurable: true
  9941. });
  9942. Object.defineProperty(Tools, "PerformanceUserMarkLogLevel", {
  9943. get: function () {
  9944. return Tools._PerformanceUserMarkLogLevel;
  9945. },
  9946. enumerable: true,
  9947. configurable: true
  9948. });
  9949. Object.defineProperty(Tools, "PerformanceConsoleLogLevel", {
  9950. get: function () {
  9951. return Tools._PerformanceConsoleLogLevel;
  9952. },
  9953. enumerable: true,
  9954. configurable: true
  9955. });
  9956. Object.defineProperty(Tools, "PerformanceLogLevel", {
  9957. set: function (level) {
  9958. if ((level & Tools.PerformanceUserMarkLogLevel) === Tools.PerformanceUserMarkLogLevel) {
  9959. Tools.StartPerformanceCounter = Tools._StartUserMark;
  9960. Tools.EndPerformanceCounter = Tools._EndUserMark;
  9961. return;
  9962. }
  9963. if ((level & Tools.PerformanceConsoleLogLevel) === Tools.PerformanceConsoleLogLevel) {
  9964. Tools.StartPerformanceCounter = Tools._StartPerformanceConsole;
  9965. Tools.EndPerformanceCounter = Tools._EndPerformanceConsole;
  9966. return;
  9967. }
  9968. Tools.StartPerformanceCounter = Tools._StartPerformanceCounterDisabled;
  9969. Tools.EndPerformanceCounter = Tools._EndPerformanceCounterDisabled;
  9970. },
  9971. enumerable: true,
  9972. configurable: true
  9973. });
  9974. Tools._StartPerformanceCounterDisabled = function (counterName, condition) {
  9975. };
  9976. Tools._EndPerformanceCounterDisabled = function (counterName, condition) {
  9977. };
  9978. Tools._StartUserMark = function (counterName, condition) {
  9979. if (condition === void 0) { condition = true; }
  9980. if (!Tools._performance) {
  9981. if (!Tools.IsWindowObjectExist()) {
  9982. return;
  9983. }
  9984. Tools._performance = window.performance;
  9985. }
  9986. if (!condition || !Tools._performance.mark) {
  9987. return;
  9988. }
  9989. Tools._performance.mark(counterName + "-Begin");
  9990. };
  9991. Tools._EndUserMark = function (counterName, condition) {
  9992. if (condition === void 0) { condition = true; }
  9993. if (!condition || !Tools._performance.mark) {
  9994. return;
  9995. }
  9996. Tools._performance.mark(counterName + "-End");
  9997. Tools._performance.measure(counterName, counterName + "-Begin", counterName + "-End");
  9998. };
  9999. Tools._StartPerformanceConsole = function (counterName, condition) {
  10000. if (condition === void 0) { condition = true; }
  10001. if (!condition) {
  10002. return;
  10003. }
  10004. Tools._StartUserMark(counterName, condition);
  10005. if (console.time) {
  10006. console.time(counterName);
  10007. }
  10008. };
  10009. Tools._EndPerformanceConsole = function (counterName, condition) {
  10010. if (condition === void 0) { condition = true; }
  10011. if (!condition) {
  10012. return;
  10013. }
  10014. Tools._EndUserMark(counterName, condition);
  10015. if (console.time) {
  10016. console.timeEnd(counterName);
  10017. }
  10018. };
  10019. Object.defineProperty(Tools, "Now", {
  10020. get: function () {
  10021. if (Tools.IsWindowObjectExist() && window.performance && window.performance.now) {
  10022. return window.performance.now();
  10023. }
  10024. return Date.now();
  10025. },
  10026. enumerable: true,
  10027. configurable: true
  10028. });
  10029. /**
  10030. * This method will return the name of the class used to create the instance of the given object.
  10031. * It will works only on Javascript basic data types (number, string, ...) and instance of class declared with the @className decorator.
  10032. * @param object the object to get the class name from
  10033. * @return the name of the class, will be "object" for a custom data type not using the @className decorator
  10034. */
  10035. Tools.GetClassName = function (object, isType) {
  10036. if (isType === void 0) { isType = false; }
  10037. var name = null;
  10038. if (!isType && object.getClassName) {
  10039. name = object.getClassName();
  10040. }
  10041. else {
  10042. if (object instanceof Object) {
  10043. var classObj = isType ? object : Object.getPrototypeOf(object);
  10044. name = classObj.constructor["__bjsclassName__"];
  10045. }
  10046. if (!name) {
  10047. name = typeof object;
  10048. }
  10049. }
  10050. return name;
  10051. };
  10052. Tools.First = function (array, predicate) {
  10053. for (var _i = 0, array_1 = array; _i < array_1.length; _i++) {
  10054. var el = array_1[_i];
  10055. if (predicate(el)) {
  10056. return el;
  10057. }
  10058. }
  10059. return null;
  10060. };
  10061. /**
  10062. * This method will return the name of the full name of the class, including its owning module (if any).
  10063. * It will works only on Javascript basic data types (number, string, ...) and instance of class declared with the @className decorator or implementing a method getClassName():string (in which case the module won't be specified).
  10064. * @param object the object to get the class name from
  10065. * @return a string that can have two forms: "moduleName.className" if module was specified when the class' Name was registered or "className" if there was not module specified.
  10066. */
  10067. Tools.getFullClassName = function (object, isType) {
  10068. if (isType === void 0) { isType = false; }
  10069. var className = null;
  10070. var moduleName = null;
  10071. if (!isType && object.getClassName) {
  10072. className = object.getClassName();
  10073. }
  10074. else {
  10075. if (object instanceof Object) {
  10076. var classObj = isType ? object : Object.getPrototypeOf(object);
  10077. className = classObj.constructor["__bjsclassName__"];
  10078. moduleName = classObj.constructor["__bjsmoduleName__"];
  10079. }
  10080. if (!className) {
  10081. className = typeof object;
  10082. }
  10083. }
  10084. if (!className) {
  10085. return null;
  10086. }
  10087. return ((moduleName != null) ? (moduleName + ".") : "") + className;
  10088. };
  10089. /**
  10090. * This method can be used with hashCodeFromStream when your input is an array of values that are either: number, string, boolean or custom type implementing the getHashCode():number method.
  10091. * @param array
  10092. */
  10093. Tools.arrayOrStringFeeder = function (array) {
  10094. return function (index) {
  10095. if (index >= array.length) {
  10096. return null;
  10097. }
  10098. var val = array.charCodeAt ? array.charCodeAt(index) : array[index];
  10099. if (val && val.getHashCode) {
  10100. val = val.getHashCode();
  10101. }
  10102. if (typeof val === "string") {
  10103. return Tools.hashCodeFromStream(Tools.arrayOrStringFeeder(val));
  10104. }
  10105. return val;
  10106. };
  10107. };
  10108. /**
  10109. * Compute the hashCode of a stream of number
  10110. * To compute the HashCode on a string or an Array of data types implementing the getHashCode() method, use the arrayOrStringFeeder method.
  10111. * @param feeder a callback that will be called until it returns null, each valid returned values will be used to compute the hash code.
  10112. * @return the hash code computed
  10113. */
  10114. Tools.hashCodeFromStream = function (feeder) {
  10115. // Based from here: http://stackoverflow.com/a/7616484/802124
  10116. var hash = 0;
  10117. var index = 0;
  10118. var chr = feeder(index++);
  10119. while (chr != null) {
  10120. hash = ((hash << 5) - hash) + chr;
  10121. hash |= 0; // Convert to 32bit integer
  10122. chr = feeder(index++);
  10123. }
  10124. return hash;
  10125. };
  10126. /**
  10127. * Returns a promise that resolves after the given amount of time.
  10128. * @param delay Number of milliseconds to delay
  10129. * @returns Promise that resolves after the given amount of time
  10130. */
  10131. Tools.DelayAsync = function (delay) {
  10132. return new Promise(function (resolve) {
  10133. setTimeout(function () {
  10134. resolve();
  10135. }, delay);
  10136. });
  10137. };
  10138. /**
  10139. * Gets the current gradient from an array of IValueGradient
  10140. * @param ratio defines the current ratio to get
  10141. * @param gradients defines the array of IValueGradient
  10142. * @param updateFunc defines the callback function used to get the final value from the selected gradients
  10143. */
  10144. Tools.GetCurrentGradient = function (ratio, gradients, updateFunc) {
  10145. for (var gradientIndex = 0; gradientIndex < gradients.length - 1; gradientIndex++) {
  10146. var currentGradient = gradients[gradientIndex];
  10147. var nextGradient = gradients[gradientIndex + 1];
  10148. if (ratio >= currentGradient.gradient && ratio <= nextGradient.gradient) {
  10149. var scale = (ratio - currentGradient.gradient) / (nextGradient.gradient - currentGradient.gradient);
  10150. updateFunc(currentGradient, nextGradient, scale);
  10151. return;
  10152. }
  10153. }
  10154. // Use last index if over
  10155. var lastIndex = gradients.length - 1;
  10156. updateFunc(gradients[lastIndex], gradients[lastIndex], 1.0);
  10157. };
  10158. Tools.BaseUrl = "";
  10159. Tools.DefaultRetryStrategy = RetryStrategy.ExponentialBackoff();
  10160. /**
  10161. * Default behaviour for cors in the application.
  10162. * It can be a string if the expected behavior is identical in the entire app.
  10163. * Or a callback to be able to set it per url or on a group of them (in case of Video source for instance)
  10164. */
  10165. Tools.CorsBehavior = "anonymous";
  10166. Tools.UseFallbackTexture = true;
  10167. /**
  10168. * Use this object to register external classes like custom textures or material
  10169. * to allow the laoders to instantiate them
  10170. */
  10171. Tools.RegisteredExternalClasses = {};
  10172. // Used in case of a texture loading problem
  10173. Tools.fallbackTexture = "data:image/jpg;base64,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";
  10174. Tools._tmpFloatArray = new Float32Array(1);
  10175. Tools.PreprocessUrl = function (url) {
  10176. return url;
  10177. };
  10178. // Logs
  10179. Tools._NoneLogLevel = 0;
  10180. Tools._MessageLogLevel = 1;
  10181. Tools._WarningLogLevel = 2;
  10182. Tools._ErrorLogLevel = 4;
  10183. Tools._LogCache = "";
  10184. Tools.errorsCount = 0;
  10185. Tools.Log = Tools._LogEnabled;
  10186. Tools.Warn = Tools._WarnEnabled;
  10187. Tools.Error = Tools._ErrorEnabled;
  10188. // Performances
  10189. Tools._PerformanceNoneLogLevel = 0;
  10190. Tools._PerformanceUserMarkLogLevel = 1;
  10191. Tools._PerformanceConsoleLogLevel = 2;
  10192. Tools.StartPerformanceCounter = Tools._StartPerformanceCounterDisabled;
  10193. Tools.EndPerformanceCounter = Tools._EndPerformanceCounterDisabled;
  10194. return Tools;
  10195. }());
  10196. BABYLON.Tools = Tools;
  10197. /**
  10198. * This class is used to track a performance counter which is number based.
  10199. * The user has access to many properties which give statistics of different nature
  10200. *
  10201. * The implementer can track two kinds of Performance Counter: time and count
  10202. * For time you can optionally call fetchNewFrame() to notify the start of a new frame to monitor, then call beginMonitoring() to start and endMonitoring() to record the lapsed time. endMonitoring takes a newFrame parameter for you to specify if the monitored time should be set for a new frame or accumulated to the current frame being monitored.
  10203. * For count you first have to call fetchNewFrame() to notify the start of a new frame to monitor, then call addCount() how many time required to increment the count value you monitor.
  10204. */
  10205. var PerfCounter = /** @class */ (function () {
  10206. function PerfCounter() {
  10207. this._startMonitoringTime = 0;
  10208. this._min = 0;
  10209. this._max = 0;
  10210. this._average = 0;
  10211. this._lastSecAverage = 0;
  10212. this._current = 0;
  10213. this._totalValueCount = 0;
  10214. this._totalAccumulated = 0;
  10215. this._lastSecAccumulated = 0;
  10216. this._lastSecTime = 0;
  10217. this._lastSecValueCount = 0;
  10218. }
  10219. Object.defineProperty(PerfCounter.prototype, "min", {
  10220. /**
  10221. * Returns the smallest value ever
  10222. */
  10223. get: function () {
  10224. return this._min;
  10225. },
  10226. enumerable: true,
  10227. configurable: true
  10228. });
  10229. Object.defineProperty(PerfCounter.prototype, "max", {
  10230. /**
  10231. * Returns the biggest value ever
  10232. */
  10233. get: function () {
  10234. return this._max;
  10235. },
  10236. enumerable: true,
  10237. configurable: true
  10238. });
  10239. Object.defineProperty(PerfCounter.prototype, "average", {
  10240. /**
  10241. * Returns the average value since the performance counter is running
  10242. */
  10243. get: function () {
  10244. return this._average;
  10245. },
  10246. enumerable: true,
  10247. configurable: true
  10248. });
  10249. Object.defineProperty(PerfCounter.prototype, "lastSecAverage", {
  10250. /**
  10251. * Returns the average value of the last second the counter was monitored
  10252. */
  10253. get: function () {
  10254. return this._lastSecAverage;
  10255. },
  10256. enumerable: true,
  10257. configurable: true
  10258. });
  10259. Object.defineProperty(PerfCounter.prototype, "current", {
  10260. /**
  10261. * Returns the current value
  10262. */
  10263. get: function () {
  10264. return this._current;
  10265. },
  10266. enumerable: true,
  10267. configurable: true
  10268. });
  10269. Object.defineProperty(PerfCounter.prototype, "total", {
  10270. get: function () {
  10271. return this._totalAccumulated;
  10272. },
  10273. enumerable: true,
  10274. configurable: true
  10275. });
  10276. Object.defineProperty(PerfCounter.prototype, "count", {
  10277. get: function () {
  10278. return this._totalValueCount;
  10279. },
  10280. enumerable: true,
  10281. configurable: true
  10282. });
  10283. /**
  10284. * Call this method to start monitoring a new frame.
  10285. * This scenario is typically used when you accumulate monitoring time many times for a single frame, you call this method at the start of the frame, then beginMonitoring to start recording and endMonitoring(false) to accumulated the recorded time to the PerfCounter or addCount() to accumulate a monitored count.
  10286. */
  10287. PerfCounter.prototype.fetchNewFrame = function () {
  10288. this._totalValueCount++;
  10289. this._current = 0;
  10290. this._lastSecValueCount++;
  10291. };
  10292. /**
  10293. * Call this method to monitor a count of something (e.g. mesh drawn in viewport count)
  10294. * @param newCount the count value to add to the monitored count
  10295. * @param fetchResult true when it's the last time in the frame you add to the counter and you wish to update the statistics properties (min/max/average), false if you only want to update statistics.
  10296. */
  10297. PerfCounter.prototype.addCount = function (newCount, fetchResult) {
  10298. if (!PerfCounter.Enabled) {
  10299. return;
  10300. }
  10301. this._current += newCount;
  10302. if (fetchResult) {
  10303. this._fetchResult();
  10304. }
  10305. };
  10306. /**
  10307. * Start monitoring this performance counter
  10308. */
  10309. PerfCounter.prototype.beginMonitoring = function () {
  10310. if (!PerfCounter.Enabled) {
  10311. return;
  10312. }
  10313. this._startMonitoringTime = Tools.Now;
  10314. };
  10315. /**
  10316. * Compute the time lapsed since the previous beginMonitoring() call.
  10317. * @param newFrame true by default to fetch the result and monitor a new frame, if false the time monitored will be added to the current frame counter
  10318. */
  10319. PerfCounter.prototype.endMonitoring = function (newFrame) {
  10320. if (newFrame === void 0) { newFrame = true; }
  10321. if (!PerfCounter.Enabled) {
  10322. return;
  10323. }
  10324. if (newFrame) {
  10325. this.fetchNewFrame();
  10326. }
  10327. var currentTime = Tools.Now;
  10328. this._current = currentTime - this._startMonitoringTime;
  10329. if (newFrame) {
  10330. this._fetchResult();
  10331. }
  10332. };
  10333. PerfCounter.prototype._fetchResult = function () {
  10334. this._totalAccumulated += this._current;
  10335. this._lastSecAccumulated += this._current;
  10336. // Min/Max update
  10337. this._min = Math.min(this._min, this._current);
  10338. this._max = Math.max(this._max, this._current);
  10339. this._average = this._totalAccumulated / this._totalValueCount;
  10340. // Reset last sec?
  10341. var now = Tools.Now;
  10342. if ((now - this._lastSecTime) > 1000) {
  10343. this._lastSecAverage = this._lastSecAccumulated / this._lastSecValueCount;
  10344. this._lastSecTime = now;
  10345. this._lastSecAccumulated = 0;
  10346. this._lastSecValueCount = 0;
  10347. }
  10348. };
  10349. PerfCounter.Enabled = true;
  10350. return PerfCounter;
  10351. }());
  10352. BABYLON.PerfCounter = PerfCounter;
  10353. /**
  10354. * Use this className as a decorator on a given class definition to add it a name and optionally its module.
  10355. * You can then use the Tools.getClassName(obj) on an instance to retrieve its class name.
  10356. * This method is the only way to get it done in all cases, even if the .js file declaring the class is minified
  10357. * @param name The name of the class, case should be preserved
  10358. * @param module The name of the Module hosting the class, optional, but strongly recommended to specify if possible. Case should be preserved.
  10359. */
  10360. function className(name, module) {
  10361. return function (target) {
  10362. target["__bjsclassName__"] = name;
  10363. target["__bjsmoduleName__"] = (module != null) ? module : null;
  10364. };
  10365. }
  10366. BABYLON.className = className;
  10367. /**
  10368. * An implementation of a loop for asynchronous functions.
  10369. */
  10370. var AsyncLoop = /** @class */ (function () {
  10371. /**
  10372. * Constroctor.
  10373. * @param iterations the number of iterations.
  10374. * @param _fn the function to run each iteration
  10375. * @param _successCallback the callback that will be called upon succesful execution
  10376. * @param offset starting offset.
  10377. */
  10378. function AsyncLoop(iterations, _fn, _successCallback, offset) {
  10379. if (offset === void 0) { offset = 0; }
  10380. this.iterations = iterations;
  10381. this._fn = _fn;
  10382. this._successCallback = _successCallback;
  10383. this.index = offset - 1;
  10384. this._done = false;
  10385. }
  10386. /**
  10387. * Execute the next iteration. Must be called after the last iteration was finished.
  10388. */
  10389. AsyncLoop.prototype.executeNext = function () {
  10390. if (!this._done) {
  10391. if (this.index + 1 < this.iterations) {
  10392. ++this.index;
  10393. this._fn(this);
  10394. }
  10395. else {
  10396. this.breakLoop();
  10397. }
  10398. }
  10399. };
  10400. /**
  10401. * Break the loop and run the success callback.
  10402. */
  10403. AsyncLoop.prototype.breakLoop = function () {
  10404. this._done = true;
  10405. this._successCallback();
  10406. };
  10407. /**
  10408. * Helper function
  10409. */
  10410. AsyncLoop.Run = function (iterations, _fn, _successCallback, offset) {
  10411. if (offset === void 0) { offset = 0; }
  10412. var loop = new AsyncLoop(iterations, _fn, _successCallback, offset);
  10413. loop.executeNext();
  10414. return loop;
  10415. };
  10416. /**
  10417. * A for-loop that will run a given number of iterations synchronous and the rest async.
  10418. * @param iterations total number of iterations
  10419. * @param syncedIterations number of synchronous iterations in each async iteration.
  10420. * @param fn the function to call each iteration.
  10421. * @param callback a success call back that will be called when iterating stops.
  10422. * @param breakFunction a break condition (optional)
  10423. * @param timeout timeout settings for the setTimeout function. default - 0.
  10424. * @constructor
  10425. */
  10426. AsyncLoop.SyncAsyncForLoop = function (iterations, syncedIterations, fn, callback, breakFunction, timeout) {
  10427. if (timeout === void 0) { timeout = 0; }
  10428. AsyncLoop.Run(Math.ceil(iterations / syncedIterations), function (loop) {
  10429. if (breakFunction && breakFunction())
  10430. loop.breakLoop();
  10431. else {
  10432. setTimeout(function () {
  10433. for (var i = 0; i < syncedIterations; ++i) {
  10434. var iteration = (loop.index * syncedIterations) + i;
  10435. if (iteration >= iterations)
  10436. break;
  10437. fn(iteration);
  10438. if (breakFunction && breakFunction()) {
  10439. loop.breakLoop();
  10440. break;
  10441. }
  10442. }
  10443. loop.executeNext();
  10444. }, timeout);
  10445. }
  10446. }, callback);
  10447. };
  10448. return AsyncLoop;
  10449. }());
  10450. BABYLON.AsyncLoop = AsyncLoop;
  10451. })(BABYLON || (BABYLON = {}));
  10452. //# sourceMappingURL=babylon.tools.js.map
  10453. var BABYLON;
  10454. (function (BABYLON) {
  10455. var PromiseStates;
  10456. (function (PromiseStates) {
  10457. PromiseStates[PromiseStates["Pending"] = 0] = "Pending";
  10458. PromiseStates[PromiseStates["Fulfilled"] = 1] = "Fulfilled";
  10459. PromiseStates[PromiseStates["Rejected"] = 2] = "Rejected";
  10460. })(PromiseStates || (PromiseStates = {}));
  10461. var FulFillmentAgregator = /** @class */ (function () {
  10462. function FulFillmentAgregator() {
  10463. this.count = 0;
  10464. this.target = 0;
  10465. this.results = [];
  10466. }
  10467. return FulFillmentAgregator;
  10468. }());
  10469. var InternalPromise = /** @class */ (function () {
  10470. function InternalPromise(resolver) {
  10471. var _this = this;
  10472. this._state = PromiseStates.Pending;
  10473. this._children = new Array();
  10474. this._rejectWasConsumed = false;
  10475. if (!resolver) {
  10476. return;
  10477. }
  10478. try {
  10479. resolver(function (value) {
  10480. _this._resolve(value);
  10481. }, function (reason) {
  10482. _this._reject(reason);
  10483. });
  10484. }
  10485. catch (e) {
  10486. this._reject(e);
  10487. }
  10488. }
  10489. Object.defineProperty(InternalPromise.prototype, "_result", {
  10490. get: function () {
  10491. return this._resultValue;
  10492. },
  10493. set: function (value) {
  10494. this._resultValue = value;
  10495. if (this._parent && this._parent._result === undefined) {
  10496. this._parent._result = value;
  10497. }
  10498. },
  10499. enumerable: true,
  10500. configurable: true
  10501. });
  10502. InternalPromise.prototype.catch = function (onRejected) {
  10503. return this.then(undefined, onRejected);
  10504. };
  10505. InternalPromise.prototype.then = function (onFulfilled, onRejected) {
  10506. var _this = this;
  10507. var newPromise = new InternalPromise();
  10508. newPromise._onFulfilled = onFulfilled;
  10509. newPromise._onRejected = onRejected;
  10510. // Composition
  10511. this._children.push(newPromise);
  10512. newPromise._parent = this;
  10513. if (this._state !== PromiseStates.Pending) {
  10514. BABYLON.Tools.SetImmediate(function () {
  10515. if (_this._state === PromiseStates.Fulfilled || _this._rejectWasConsumed) {
  10516. var returnedValue = newPromise._resolve(_this._result);
  10517. if (returnedValue !== undefined && returnedValue !== null) {
  10518. if (returnedValue._state !== undefined) {
  10519. var returnedPromise = returnedValue;
  10520. newPromise._children.push(returnedPromise);
  10521. returnedPromise._parent = newPromise;
  10522. newPromise = returnedPromise;
  10523. }
  10524. else {
  10525. newPromise._result = returnedValue;
  10526. }
  10527. }
  10528. }
  10529. else {
  10530. newPromise._reject(_this._reason);
  10531. }
  10532. });
  10533. }
  10534. return newPromise;
  10535. };
  10536. InternalPromise.prototype._moveChildren = function (children) {
  10537. var _this = this;
  10538. var _a;
  10539. (_a = this._children).push.apply(_a, children.splice(0, children.length));
  10540. this._children.forEach(function (child) {
  10541. child._parent = _this;
  10542. });
  10543. if (this._state === PromiseStates.Fulfilled) {
  10544. for (var _i = 0, _b = this._children; _i < _b.length; _i++) {
  10545. var child = _b[_i];
  10546. child._resolve(this._result);
  10547. }
  10548. }
  10549. else if (this._state === PromiseStates.Rejected) {
  10550. for (var _c = 0, _d = this._children; _c < _d.length; _c++) {
  10551. var child = _d[_c];
  10552. child._reject(this._reason);
  10553. }
  10554. }
  10555. };
  10556. InternalPromise.prototype._resolve = function (value) {
  10557. try {
  10558. this._state = PromiseStates.Fulfilled;
  10559. var returnedValue = null;
  10560. if (this._onFulfilled) {
  10561. returnedValue = this._onFulfilled(value);
  10562. }
  10563. if (returnedValue !== undefined && returnedValue !== null) {
  10564. if (returnedValue._state !== undefined) {
  10565. // Transmit children
  10566. var returnedPromise = returnedValue;
  10567. returnedPromise._parent = this;
  10568. returnedPromise._moveChildren(this._children);
  10569. value = returnedPromise._result;
  10570. }
  10571. else {
  10572. value = returnedValue;
  10573. }
  10574. }
  10575. this._result = value;
  10576. for (var _i = 0, _a = this._children; _i < _a.length; _i++) {
  10577. var child = _a[_i];
  10578. child._resolve(value);
  10579. }
  10580. this._children.length = 0;
  10581. delete this._onFulfilled;
  10582. delete this._onRejected;
  10583. }
  10584. catch (e) {
  10585. this._reject(e, true);
  10586. }
  10587. };
  10588. InternalPromise.prototype._reject = function (reason, onLocalThrow) {
  10589. if (onLocalThrow === void 0) { onLocalThrow = false; }
  10590. this._state = PromiseStates.Rejected;
  10591. this._reason = reason;
  10592. if (this._onRejected && !onLocalThrow) {
  10593. try {
  10594. this._onRejected(reason);
  10595. this._rejectWasConsumed = true;
  10596. }
  10597. catch (e) {
  10598. reason = e;
  10599. }
  10600. }
  10601. for (var _i = 0, _a = this._children; _i < _a.length; _i++) {
  10602. var child = _a[_i];
  10603. if (this._rejectWasConsumed) {
  10604. child._resolve(null);
  10605. }
  10606. else {
  10607. child._reject(reason);
  10608. }
  10609. }
  10610. this._children.length = 0;
  10611. delete this._onFulfilled;
  10612. delete this._onRejected;
  10613. };
  10614. InternalPromise.resolve = function (value) {
  10615. var newPromise = new InternalPromise();
  10616. newPromise._resolve(value);
  10617. return newPromise;
  10618. };
  10619. InternalPromise._RegisterForFulfillment = function (promise, agregator, index) {
  10620. promise.then(function (value) {
  10621. agregator.results[index] = value;
  10622. agregator.count++;
  10623. if (agregator.count === agregator.target) {
  10624. agregator.rootPromise._resolve(agregator.results);
  10625. }
  10626. return null;
  10627. }, function (reason) {
  10628. if (agregator.rootPromise._state !== PromiseStates.Rejected) {
  10629. agregator.rootPromise._reject(reason);
  10630. }
  10631. });
  10632. };
  10633. InternalPromise.all = function (promises) {
  10634. var newPromise = new InternalPromise();
  10635. var agregator = new FulFillmentAgregator();
  10636. agregator.target = promises.length;
  10637. agregator.rootPromise = newPromise;
  10638. if (promises.length) {
  10639. for (var index = 0; index < promises.length; index++) {
  10640. InternalPromise._RegisterForFulfillment(promises[index], agregator, index);
  10641. }
  10642. }
  10643. else {
  10644. newPromise._resolve([]);
  10645. }
  10646. return newPromise;
  10647. };
  10648. InternalPromise.race = function (promises) {
  10649. var newPromise = new InternalPromise();
  10650. if (promises.length) {
  10651. for (var _i = 0, promises_1 = promises; _i < promises_1.length; _i++) {
  10652. var promise = promises_1[_i];
  10653. promise.then(function (value) {
  10654. if (newPromise) {
  10655. newPromise._resolve(value);
  10656. newPromise = null;
  10657. }
  10658. return null;
  10659. }, function (reason) {
  10660. if (newPromise) {
  10661. newPromise._reject(reason);
  10662. newPromise = null;
  10663. }
  10664. });
  10665. }
  10666. }
  10667. return newPromise;
  10668. };
  10669. return InternalPromise;
  10670. }());
  10671. /**
  10672. * Helper class that provides a small promise polyfill
  10673. */
  10674. var PromisePolyfill = /** @class */ (function () {
  10675. function PromisePolyfill() {
  10676. }
  10677. /**
  10678. * Static function used to check if the polyfill is required
  10679. * If this is the case then the function will inject the polyfill to window.Promise
  10680. * @param force defines a boolean used to force the injection (mostly for testing purposes)
  10681. */
  10682. PromisePolyfill.Apply = function (force) {
  10683. if (force === void 0) { force = false; }
  10684. if (force || typeof Promise === 'undefined') {
  10685. var root = window;
  10686. root.Promise = InternalPromise;
  10687. }
  10688. };
  10689. return PromisePolyfill;
  10690. }());
  10691. BABYLON.PromisePolyfill = PromisePolyfill;
  10692. })(BABYLON || (BABYLON = {}));
  10693. //# sourceMappingURL=babylon.promise.js.map
  10694. /// <reference path="../../../dist/preview release/babylon.d.ts" />
  10695. var BABYLON;
  10696. (function (BABYLON) {
  10697. /**
  10698. * Helper class to push actions to a pool of workers.
  10699. */
  10700. var WorkerPool = /** @class */ (function () {
  10701. /**
  10702. * Constructor
  10703. * @param workers Array of workers to use for actions
  10704. */
  10705. function WorkerPool(workers) {
  10706. this._pendingActions = new Array();
  10707. this._workerInfos = workers.map(function (worker) { return ({
  10708. worker: worker,
  10709. active: false
  10710. }); });
  10711. }
  10712. /**
  10713. * Terminates all workers and clears any pending actions.
  10714. */
  10715. WorkerPool.prototype.dispose = function () {
  10716. for (var _i = 0, _a = this._workerInfos; _i < _a.length; _i++) {
  10717. var workerInfo = _a[_i];
  10718. workerInfo.worker.terminate();
  10719. }
  10720. delete this._workerInfos;
  10721. delete this._pendingActions;
  10722. };
  10723. /**
  10724. * Pushes an action to the worker pool. If all the workers are active, the action will be
  10725. * pended until a worker has completed its action.
  10726. * @param action The action to perform. Call onComplete when the action is complete.
  10727. */
  10728. WorkerPool.prototype.push = function (action) {
  10729. for (var _i = 0, _a = this._workerInfos; _i < _a.length; _i++) {
  10730. var workerInfo = _a[_i];
  10731. if (!workerInfo.active) {
  10732. this._execute(workerInfo, action);
  10733. return;
  10734. }
  10735. }
  10736. this._pendingActions.push(action);
  10737. };
  10738. WorkerPool.prototype._execute = function (workerInfo, action) {
  10739. var _this = this;
  10740. workerInfo.active = true;
  10741. action(workerInfo.worker, function () {
  10742. workerInfo.active = false;
  10743. var nextAction = _this._pendingActions.shift();
  10744. if (nextAction) {
  10745. _this._execute(workerInfo, nextAction);
  10746. }
  10747. });
  10748. };
  10749. return WorkerPool;
  10750. }());
  10751. BABYLON.WorkerPool = WorkerPool;
  10752. })(BABYLON || (BABYLON = {}));
  10753. //# sourceMappingURL=babylon.workerPool.js.map
  10754. var BABYLON;
  10755. (function (BABYLON) {
  10756. /**
  10757. * @hidden
  10758. **/
  10759. var _AlphaState = /** @class */ (function () {
  10760. /**
  10761. * Initializes the state.
  10762. */
  10763. function _AlphaState() {
  10764. this._isAlphaBlendDirty = false;
  10765. this._isBlendFunctionParametersDirty = false;
  10766. this._isBlendEquationParametersDirty = false;
  10767. this._isBlendConstantsDirty = false;
  10768. this._alphaBlend = false;
  10769. this._blendFunctionParameters = new Array(4);
  10770. this._blendEquationParameters = new Array(2);
  10771. this._blendConstants = new Array(4);
  10772. this.reset();
  10773. }
  10774. Object.defineProperty(_AlphaState.prototype, "isDirty", {
  10775. get: function () {
  10776. return this._isAlphaBlendDirty || this._isBlendFunctionParametersDirty;
  10777. },
  10778. enumerable: true,
  10779. configurable: true
  10780. });
  10781. Object.defineProperty(_AlphaState.prototype, "alphaBlend", {
  10782. get: function () {
  10783. return this._alphaBlend;
  10784. },
  10785. set: function (value) {
  10786. if (this._alphaBlend === value) {
  10787. return;
  10788. }
  10789. this._alphaBlend = value;
  10790. this._isAlphaBlendDirty = true;
  10791. },
  10792. enumerable: true,
  10793. configurable: true
  10794. });
  10795. _AlphaState.prototype.setAlphaBlendConstants = function (r, g, b, a) {
  10796. if (this._blendConstants[0] === r &&
  10797. this._blendConstants[1] === g &&
  10798. this._blendConstants[2] === b &&
  10799. this._blendConstants[3] === a) {
  10800. return;
  10801. }
  10802. this._blendConstants[0] = r;
  10803. this._blendConstants[1] = g;
  10804. this._blendConstants[2] = b;
  10805. this._blendConstants[3] = a;
  10806. this._isBlendConstantsDirty = true;
  10807. };
  10808. _AlphaState.prototype.setAlphaBlendFunctionParameters = function (value0, value1, value2, value3) {
  10809. if (this._blendFunctionParameters[0] === value0 &&
  10810. this._blendFunctionParameters[1] === value1 &&
  10811. this._blendFunctionParameters[2] === value2 &&
  10812. this._blendFunctionParameters[3] === value3) {
  10813. return;
  10814. }
  10815. this._blendFunctionParameters[0] = value0;
  10816. this._blendFunctionParameters[1] = value1;
  10817. this._blendFunctionParameters[2] = value2;
  10818. this._blendFunctionParameters[3] = value3;
  10819. this._isBlendFunctionParametersDirty = true;
  10820. };
  10821. _AlphaState.prototype.setAlphaEquationParameters = function (rgb, alpha) {
  10822. if (this._blendEquationParameters[0] === rgb &&
  10823. this._blendEquationParameters[1] === alpha) {
  10824. return;
  10825. }
  10826. this._blendEquationParameters[0] = rgb;
  10827. this._blendEquationParameters[1] = alpha;
  10828. this._isBlendEquationParametersDirty = true;
  10829. };
  10830. _AlphaState.prototype.reset = function () {
  10831. this._alphaBlend = false;
  10832. this._blendFunctionParameters[0] = null;
  10833. this._blendFunctionParameters[1] = null;
  10834. this._blendFunctionParameters[2] = null;
  10835. this._blendFunctionParameters[3] = null;
  10836. this._blendEquationParameters[0] = null;
  10837. this._blendEquationParameters[1] = null;
  10838. this._blendConstants[0] = null;
  10839. this._blendConstants[1] = null;
  10840. this._blendConstants[2] = null;
  10841. this._blendConstants[3] = null;
  10842. this._isAlphaBlendDirty = true;
  10843. this._isBlendFunctionParametersDirty = false;
  10844. this._isBlendEquationParametersDirty = false;
  10845. this._isBlendConstantsDirty = false;
  10846. };
  10847. _AlphaState.prototype.apply = function (gl) {
  10848. if (!this.isDirty) {
  10849. return;
  10850. }
  10851. // Alpha blend
  10852. if (this._isAlphaBlendDirty) {
  10853. if (this._alphaBlend) {
  10854. gl.enable(gl.BLEND);
  10855. }
  10856. else {
  10857. gl.disable(gl.BLEND);
  10858. }
  10859. this._isAlphaBlendDirty = false;
  10860. }
  10861. // Alpha function
  10862. if (this._isBlendFunctionParametersDirty) {
  10863. gl.blendFuncSeparate(this._blendFunctionParameters[0], this._blendFunctionParameters[1], this._blendFunctionParameters[2], this._blendFunctionParameters[3]);
  10864. this._isBlendFunctionParametersDirty = false;
  10865. }
  10866. // Alpha equation
  10867. if (this._isBlendEquationParametersDirty) {
  10868. gl.blendEquationSeparate(this._isBlendEquationParametersDirty[0], this._isBlendEquationParametersDirty[1]);
  10869. this._isBlendEquationParametersDirty = false;
  10870. }
  10871. // Constants
  10872. if (this._isBlendConstantsDirty) {
  10873. gl.blendColor(this._blendConstants[0], this._blendConstants[1], this._blendConstants[2], this._blendConstants[3]);
  10874. this._isBlendConstantsDirty = false;
  10875. }
  10876. };
  10877. return _AlphaState;
  10878. }());
  10879. BABYLON._AlphaState = _AlphaState;
  10880. })(BABYLON || (BABYLON = {}));
  10881. //# sourceMappingURL=babylon.alphaCullingState.js.map
  10882. var BABYLON;
  10883. (function (BABYLON) {
  10884. /**
  10885. * @hidden
  10886. **/
  10887. var _DepthCullingState = /** @class */ (function () {
  10888. /**
  10889. * Initializes the state.
  10890. */
  10891. function _DepthCullingState() {
  10892. this._isDepthTestDirty = false;
  10893. this._isDepthMaskDirty = false;
  10894. this._isDepthFuncDirty = false;
  10895. this._isCullFaceDirty = false;
  10896. this._isCullDirty = false;
  10897. this._isZOffsetDirty = false;
  10898. this._isFrontFaceDirty = false;
  10899. this.reset();
  10900. }
  10901. Object.defineProperty(_DepthCullingState.prototype, "isDirty", {
  10902. get: function () {
  10903. return this._isDepthFuncDirty || this._isDepthTestDirty || this._isDepthMaskDirty || this._isCullFaceDirty || this._isCullDirty || this._isZOffsetDirty || this._isFrontFaceDirty;
  10904. },
  10905. enumerable: true,
  10906. configurable: true
  10907. });
  10908. Object.defineProperty(_DepthCullingState.prototype, "zOffset", {
  10909. get: function () {
  10910. return this._zOffset;
  10911. },
  10912. set: function (value) {
  10913. if (this._zOffset === value) {
  10914. return;
  10915. }
  10916. this._zOffset = value;
  10917. this._isZOffsetDirty = true;
  10918. },
  10919. enumerable: true,
  10920. configurable: true
  10921. });
  10922. Object.defineProperty(_DepthCullingState.prototype, "cullFace", {
  10923. get: function () {
  10924. return this._cullFace;
  10925. },
  10926. set: function (value) {
  10927. if (this._cullFace === value) {
  10928. return;
  10929. }
  10930. this._cullFace = value;
  10931. this._isCullFaceDirty = true;
  10932. },
  10933. enumerable: true,
  10934. configurable: true
  10935. });
  10936. Object.defineProperty(_DepthCullingState.prototype, "cull", {
  10937. get: function () {
  10938. return this._cull;
  10939. },
  10940. set: function (value) {
  10941. if (this._cull === value) {
  10942. return;
  10943. }
  10944. this._cull = value;
  10945. this._isCullDirty = true;
  10946. },
  10947. enumerable: true,
  10948. configurable: true
  10949. });
  10950. Object.defineProperty(_DepthCullingState.prototype, "depthFunc", {
  10951. get: function () {
  10952. return this._depthFunc;
  10953. },
  10954. set: function (value) {
  10955. if (this._depthFunc === value) {
  10956. return;
  10957. }
  10958. this._depthFunc = value;
  10959. this._isDepthFuncDirty = true;
  10960. },
  10961. enumerable: true,
  10962. configurable: true
  10963. });
  10964. Object.defineProperty(_DepthCullingState.prototype, "depthMask", {
  10965. get: function () {
  10966. return this._depthMask;
  10967. },
  10968. set: function (value) {
  10969. if (this._depthMask === value) {
  10970. return;
  10971. }
  10972. this._depthMask = value;
  10973. this._isDepthMaskDirty = true;
  10974. },
  10975. enumerable: true,
  10976. configurable: true
  10977. });
  10978. Object.defineProperty(_DepthCullingState.prototype, "depthTest", {
  10979. get: function () {
  10980. return this._depthTest;
  10981. },
  10982. set: function (value) {
  10983. if (this._depthTest === value) {
  10984. return;
  10985. }
  10986. this._depthTest = value;
  10987. this._isDepthTestDirty = true;
  10988. },
  10989. enumerable: true,
  10990. configurable: true
  10991. });
  10992. Object.defineProperty(_DepthCullingState.prototype, "frontFace", {
  10993. get: function () {
  10994. return this._frontFace;
  10995. },
  10996. set: function (value) {
  10997. if (this._frontFace === value) {
  10998. return;
  10999. }
  11000. this._frontFace = value;
  11001. this._isFrontFaceDirty = true;
  11002. },
  11003. enumerable: true,
  11004. configurable: true
  11005. });
  11006. _DepthCullingState.prototype.reset = function () {
  11007. this._depthMask = true;
  11008. this._depthTest = true;
  11009. this._depthFunc = null;
  11010. this._cullFace = null;
  11011. this._cull = null;
  11012. this._zOffset = 0;
  11013. this._frontFace = null;
  11014. this._isDepthTestDirty = true;
  11015. this._isDepthMaskDirty = true;
  11016. this._isDepthFuncDirty = false;
  11017. this._isCullFaceDirty = false;
  11018. this._isCullDirty = false;
  11019. this._isZOffsetDirty = false;
  11020. this._isFrontFaceDirty = false;
  11021. };
  11022. _DepthCullingState.prototype.apply = function (gl) {
  11023. if (!this.isDirty) {
  11024. return;
  11025. }
  11026. // Cull
  11027. if (this._isCullDirty) {
  11028. if (this.cull) {
  11029. gl.enable(gl.CULL_FACE);
  11030. }
  11031. else {
  11032. gl.disable(gl.CULL_FACE);
  11033. }
  11034. this._isCullDirty = false;
  11035. }
  11036. // Cull face
  11037. if (this._isCullFaceDirty) {
  11038. gl.cullFace(this.cullFace);
  11039. this._isCullFaceDirty = false;
  11040. }
  11041. // Depth mask
  11042. if (this._isDepthMaskDirty) {
  11043. gl.depthMask(this.depthMask);
  11044. this._isDepthMaskDirty = false;
  11045. }
  11046. // Depth test
  11047. if (this._isDepthTestDirty) {
  11048. if (this.depthTest) {
  11049. gl.enable(gl.DEPTH_TEST);
  11050. }
  11051. else {
  11052. gl.disable(gl.DEPTH_TEST);
  11053. }
  11054. this._isDepthTestDirty = false;
  11055. }
  11056. // Depth func
  11057. if (this._isDepthFuncDirty) {
  11058. gl.depthFunc(this.depthFunc);
  11059. this._isDepthFuncDirty = false;
  11060. }
  11061. // zOffset
  11062. if (this._isZOffsetDirty) {
  11063. if (this.zOffset) {
  11064. gl.enable(gl.POLYGON_OFFSET_FILL);
  11065. gl.polygonOffset(this.zOffset, 0);
  11066. }
  11067. else {
  11068. gl.disable(gl.POLYGON_OFFSET_FILL);
  11069. }
  11070. this._isZOffsetDirty = false;
  11071. }
  11072. // Front face
  11073. if (this._isFrontFaceDirty) {
  11074. gl.frontFace(this.frontFace);
  11075. this._isFrontFaceDirty = false;
  11076. }
  11077. };
  11078. return _DepthCullingState;
  11079. }());
  11080. BABYLON._DepthCullingState = _DepthCullingState;
  11081. })(BABYLON || (BABYLON = {}));
  11082. //# sourceMappingURL=babylon.depthCullingState.js.map
  11083. var BABYLON;
  11084. (function (BABYLON) {
  11085. /**
  11086. * @hidden
  11087. **/
  11088. var _StencilState = /** @class */ (function () {
  11089. function _StencilState() {
  11090. this._isStencilTestDirty = false;
  11091. this._isStencilMaskDirty = false;
  11092. this._isStencilFuncDirty = false;
  11093. this._isStencilOpDirty = false;
  11094. this.reset();
  11095. }
  11096. Object.defineProperty(_StencilState.prototype, "isDirty", {
  11097. get: function () {
  11098. return this._isStencilTestDirty || this._isStencilMaskDirty || this._isStencilFuncDirty || this._isStencilOpDirty;
  11099. },
  11100. enumerable: true,
  11101. configurable: true
  11102. });
  11103. Object.defineProperty(_StencilState.prototype, "stencilFunc", {
  11104. get: function () {
  11105. return this._stencilFunc;
  11106. },
  11107. set: function (value) {
  11108. if (this._stencilFunc === value) {
  11109. return;
  11110. }
  11111. this._stencilFunc = value;
  11112. this._isStencilFuncDirty = true;
  11113. },
  11114. enumerable: true,
  11115. configurable: true
  11116. });
  11117. Object.defineProperty(_StencilState.prototype, "stencilFuncRef", {
  11118. get: function () {
  11119. return this._stencilFuncRef;
  11120. },
  11121. set: function (value) {
  11122. if (this._stencilFuncRef === value) {
  11123. return;
  11124. }
  11125. this._stencilFuncRef = value;
  11126. this._isStencilFuncDirty = true;
  11127. },
  11128. enumerable: true,
  11129. configurable: true
  11130. });
  11131. Object.defineProperty(_StencilState.prototype, "stencilFuncMask", {
  11132. get: function () {
  11133. return this._stencilFuncMask;
  11134. },
  11135. set: function (value) {
  11136. if (this._stencilFuncMask === value) {
  11137. return;
  11138. }
  11139. this._stencilFuncMask = value;
  11140. this._isStencilFuncDirty = true;
  11141. },
  11142. enumerable: true,
  11143. configurable: true
  11144. });
  11145. Object.defineProperty(_StencilState.prototype, "stencilOpStencilFail", {
  11146. get: function () {
  11147. return this._stencilOpStencilFail;
  11148. },
  11149. set: function (value) {
  11150. if (this._stencilOpStencilFail === value) {
  11151. return;
  11152. }
  11153. this._stencilOpStencilFail = value;
  11154. this._isStencilOpDirty = true;
  11155. },
  11156. enumerable: true,
  11157. configurable: true
  11158. });
  11159. Object.defineProperty(_StencilState.prototype, "stencilOpDepthFail", {
  11160. get: function () {
  11161. return this._stencilOpDepthFail;
  11162. },
  11163. set: function (value) {
  11164. if (this._stencilOpDepthFail === value) {
  11165. return;
  11166. }
  11167. this._stencilOpDepthFail = value;
  11168. this._isStencilOpDirty = true;
  11169. },
  11170. enumerable: true,
  11171. configurable: true
  11172. });
  11173. Object.defineProperty(_StencilState.prototype, "stencilOpStencilDepthPass", {
  11174. get: function () {
  11175. return this._stencilOpStencilDepthPass;
  11176. },
  11177. set: function (value) {
  11178. if (this._stencilOpStencilDepthPass === value) {
  11179. return;
  11180. }
  11181. this._stencilOpStencilDepthPass = value;
  11182. this._isStencilOpDirty = true;
  11183. },
  11184. enumerable: true,
  11185. configurable: true
  11186. });
  11187. Object.defineProperty(_StencilState.prototype, "stencilMask", {
  11188. get: function () {
  11189. return this._stencilMask;
  11190. },
  11191. set: function (value) {
  11192. if (this._stencilMask === value) {
  11193. return;
  11194. }
  11195. this._stencilMask = value;
  11196. this._isStencilMaskDirty = true;
  11197. },
  11198. enumerable: true,
  11199. configurable: true
  11200. });
  11201. Object.defineProperty(_StencilState.prototype, "stencilTest", {
  11202. get: function () {
  11203. return this._stencilTest;
  11204. },
  11205. set: function (value) {
  11206. if (this._stencilTest === value) {
  11207. return;
  11208. }
  11209. this._stencilTest = value;
  11210. this._isStencilTestDirty = true;
  11211. },
  11212. enumerable: true,
  11213. configurable: true
  11214. });
  11215. _StencilState.prototype.reset = function () {
  11216. this._stencilTest = false;
  11217. this._stencilMask = 0xFF;
  11218. this._stencilFunc = BABYLON.Engine.ALWAYS;
  11219. this._stencilFuncRef = 1;
  11220. this._stencilFuncMask = 0xFF;
  11221. this._stencilOpStencilFail = BABYLON.Engine.KEEP;
  11222. this._stencilOpDepthFail = BABYLON.Engine.KEEP;
  11223. this._stencilOpStencilDepthPass = BABYLON.Engine.REPLACE;
  11224. this._isStencilTestDirty = true;
  11225. this._isStencilMaskDirty = true;
  11226. this._isStencilFuncDirty = true;
  11227. this._isStencilOpDirty = true;
  11228. };
  11229. _StencilState.prototype.apply = function (gl) {
  11230. if (!this.isDirty) {
  11231. return;
  11232. }
  11233. // Stencil test
  11234. if (this._isStencilTestDirty) {
  11235. if (this.stencilTest) {
  11236. gl.enable(gl.STENCIL_TEST);
  11237. }
  11238. else {
  11239. gl.disable(gl.STENCIL_TEST);
  11240. }
  11241. this._isStencilTestDirty = false;
  11242. }
  11243. // Stencil mask
  11244. if (this._isStencilMaskDirty) {
  11245. gl.stencilMask(this.stencilMask);
  11246. this._isStencilMaskDirty = false;
  11247. }
  11248. // Stencil func
  11249. if (this._isStencilFuncDirty) {
  11250. gl.stencilFunc(this.stencilFunc, this.stencilFuncRef, this.stencilFuncMask);
  11251. this._isStencilFuncDirty = false;
  11252. }
  11253. // Stencil op
  11254. if (this._isStencilOpDirty) {
  11255. gl.stencilOp(this.stencilOpStencilFail, this.stencilOpDepthFail, this.stencilOpStencilDepthPass);
  11256. this._isStencilOpDirty = false;
  11257. }
  11258. };
  11259. return _StencilState;
  11260. }());
  11261. BABYLON._StencilState = _StencilState;
  11262. })(BABYLON || (BABYLON = {}));
  11263. //# sourceMappingURL=babylon.stencilState.js.map
  11264. var __assign = (this && this.__assign) || function () {
  11265. __assign = Object.assign || function(t) {
  11266. for (var s, i = 1, n = arguments.length; i < n; i++) {
  11267. s = arguments[i];
  11268. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  11269. t[p] = s[p];
  11270. }
  11271. return t;
  11272. };
  11273. return __assign.apply(this, arguments);
  11274. };
  11275. var BABYLON;
  11276. (function (BABYLON) {
  11277. /**
  11278. * Keeps track of all the buffer info used in engine.
  11279. */
  11280. var BufferPointer = /** @class */ (function () {
  11281. function BufferPointer() {
  11282. }
  11283. return BufferPointer;
  11284. }());
  11285. /**
  11286. * Interface for attribute information associated with buffer instanciation
  11287. */
  11288. var InstancingAttributeInfo = /** @class */ (function () {
  11289. function InstancingAttributeInfo() {
  11290. }
  11291. return InstancingAttributeInfo;
  11292. }());
  11293. BABYLON.InstancingAttributeInfo = InstancingAttributeInfo;
  11294. /**
  11295. * Define options used to create a render target texture
  11296. */
  11297. var RenderTargetCreationOptions = /** @class */ (function () {
  11298. function RenderTargetCreationOptions() {
  11299. }
  11300. return RenderTargetCreationOptions;
  11301. }());
  11302. BABYLON.RenderTargetCreationOptions = RenderTargetCreationOptions;
  11303. /**
  11304. * Define options used to create a depth texture
  11305. */
  11306. var DepthTextureCreationOptions = /** @class */ (function () {
  11307. function DepthTextureCreationOptions() {
  11308. }
  11309. return DepthTextureCreationOptions;
  11310. }());
  11311. BABYLON.DepthTextureCreationOptions = DepthTextureCreationOptions;
  11312. /**
  11313. * Class used to describe the capabilities of the engine relatively to the current browser
  11314. */
  11315. var EngineCapabilities = /** @class */ (function () {
  11316. function EngineCapabilities() {
  11317. }
  11318. return EngineCapabilities;
  11319. }());
  11320. BABYLON.EngineCapabilities = EngineCapabilities;
  11321. /**
  11322. * The engine class is responsible for interfacing with all lower-level APIs such as WebGL and Audio
  11323. */
  11324. var Engine = /** @class */ (function () {
  11325. /**
  11326. * Creates a new engine
  11327. * @param canvasOrContext defines the canvas or WebGL context to use for rendering. If you provide a WebGL context, Babylon.js will not hook events on the canvas (like pointers, keyboards, etc...) so no event observables will be available. This is mostly used when Babylon.js is used as a plugin on a system which alreay used the WebGL context
  11328. * @param antialias defines enable antialiasing (default: false)
  11329. * @param options defines further options to be sent to the getContext() function
  11330. * @param adaptToDeviceRatio defines whether to adapt to the device's viewport characteristics (default: false)
  11331. */
  11332. function Engine(canvasOrContext, antialias, options, adaptToDeviceRatio) {
  11333. if (adaptToDeviceRatio === void 0) { adaptToDeviceRatio = false; }
  11334. var _this = this;
  11335. // Public members
  11336. /**
  11337. * Gets or sets a boolean that indicates if textures must be forced to power of 2 size even if not required
  11338. */
  11339. this.forcePOTTextures = false;
  11340. /**
  11341. * Gets a boolean indicating if the engine is currently rendering in fullscreen mode
  11342. */
  11343. this.isFullscreen = false;
  11344. /**
  11345. * Gets a boolean indicating if the pointer is currently locked
  11346. */
  11347. this.isPointerLock = false;
  11348. /**
  11349. * Gets or sets a boolean indicating if back faces must be culled (true by default)
  11350. */
  11351. this.cullBackFaces = true;
  11352. /**
  11353. * Gets or sets a boolean indicating if the engine must keep rendering even if the window is not in foregroun
  11354. */
  11355. this.renderEvenInBackground = true;
  11356. /**
  11357. * Gets or sets a boolean indicating that cache can be kept between frames
  11358. */
  11359. this.preventCacheWipeBetweenFrames = false;
  11360. /**
  11361. * Gets or sets a boolean to enable/disable IndexedDB support and avoid XHR on .manifest
  11362. **/
  11363. this.enableOfflineSupport = false;
  11364. /**
  11365. * Gets or sets a boolean to enable/disable checking manifest if IndexedDB support is enabled (Babylon.js will always consider the database is up to date)
  11366. **/
  11367. this.disableManifestCheck = false;
  11368. /**
  11369. * Gets the list of created scenes
  11370. */
  11371. this.scenes = new Array();
  11372. /**
  11373. * Gets the list of created postprocesses
  11374. */
  11375. this.postProcesses = new Array();
  11376. /** Gets or sets a boolean indicating if the engine should validate programs after compilation */
  11377. this.validateShaderPrograms = false;
  11378. // Observables
  11379. /**
  11380. * Observable event triggered each time the rendering canvas is resized
  11381. */
  11382. this.onResizeObservable = new BABYLON.Observable();
  11383. /**
  11384. * Observable event triggered each time the canvas loses focus
  11385. */
  11386. this.onCanvasBlurObservable = new BABYLON.Observable();
  11387. /**
  11388. * Observable event triggered each time the canvas gains focus
  11389. */
  11390. this.onCanvasFocusObservable = new BABYLON.Observable();
  11391. /**
  11392. * Observable event triggered each time the canvas receives pointerout event
  11393. */
  11394. this.onCanvasPointerOutObservable = new BABYLON.Observable();
  11395. /**
  11396. * Observable event triggered before each texture is initialized
  11397. */
  11398. this.onBeforeTextureInitObservable = new BABYLON.Observable();
  11399. //WebVR
  11400. this._vrDisplay = undefined;
  11401. this._vrSupported = false;
  11402. this._vrExclusivePointerMode = false;
  11403. // Uniform buffers list
  11404. /**
  11405. * Gets or sets a boolean indicating that uniform buffers must be disabled even if they are supported
  11406. */
  11407. this.disableUniformBuffers = false;
  11408. /** @hidden */
  11409. this._uniformBuffers = new Array();
  11410. // Observables
  11411. /**
  11412. * Observable raised when the engine begins a new frame
  11413. */
  11414. this.onBeginFrameObservable = new BABYLON.Observable();
  11415. /**
  11416. * Observable raised when the engine ends the current frame
  11417. */
  11418. this.onEndFrameObservable = new BABYLON.Observable();
  11419. /**
  11420. * Observable raised when the engine is about to compile a shader
  11421. */
  11422. this.onBeforeShaderCompilationObservable = new BABYLON.Observable();
  11423. /**
  11424. * Observable raised when the engine has jsut compiled a shader
  11425. */
  11426. this.onAfterShaderCompilationObservable = new BABYLON.Observable();
  11427. this._windowIsBackground = false;
  11428. this._webGLVersion = 1.0;
  11429. /** @hidden */
  11430. this._badOS = false;
  11431. /** @hidden */
  11432. this._badDesktopOS = false;
  11433. /**
  11434. * Gets or sets a value indicating if we want to disable texture binding optmization.
  11435. * This could be required on some buggy drivers which wants to have textures bound in a progressive order.
  11436. * By default Babylon.js will try to let textures bound where they are and only update the samplers to point where the texture is
  11437. */
  11438. this.disableTextureBindingOptimization = false;
  11439. /**
  11440. * Observable signaled when VR display mode changes
  11441. */
  11442. this.onVRDisplayChangedObservable = new BABYLON.Observable();
  11443. /**
  11444. * Observable signaled when VR request present is complete
  11445. */
  11446. this.onVRRequestPresentComplete = new BABYLON.Observable();
  11447. /**
  11448. * Observable signaled when VR request present starts
  11449. */
  11450. this.onVRRequestPresentStart = new BABYLON.Observable();
  11451. this._colorWrite = true;
  11452. /** @hidden */
  11453. this._drawCalls = new BABYLON.PerfCounter();
  11454. /** @hidden */
  11455. this._textureCollisions = new BABYLON.PerfCounter();
  11456. this._renderingQueueLaunched = false;
  11457. this._activeRenderLoops = new Array();
  11458. // Deterministic lockstepMaxSteps
  11459. this._deterministicLockstep = false;
  11460. this._lockstepMaxSteps = 4;
  11461. // Lost context
  11462. /**
  11463. * Observable signaled when a context lost event is raised
  11464. */
  11465. this.onContextLostObservable = new BABYLON.Observable();
  11466. /**
  11467. * Observable signaled when a context restored event is raised
  11468. */
  11469. this.onContextRestoredObservable = new BABYLON.Observable();
  11470. this._contextWasLost = false;
  11471. this._doNotHandleContextLost = false;
  11472. // FPS
  11473. this._performanceMonitor = new BABYLON.PerformanceMonitor();
  11474. this._fps = 60;
  11475. this._deltaTime = 0;
  11476. /**
  11477. * Turn this value on if you want to pause FPS computation when in background
  11478. */
  11479. this.disablePerformanceMonitorInBackground = false;
  11480. // States
  11481. /** @hidden */
  11482. this._depthCullingState = new BABYLON._DepthCullingState();
  11483. /** @hidden */
  11484. this._stencilState = new BABYLON._StencilState();
  11485. /** @hidden */
  11486. this._alphaState = new BABYLON._AlphaState();
  11487. /** @hidden */
  11488. this._alphaMode = Engine.ALPHA_DISABLE;
  11489. // Cache
  11490. this._internalTexturesCache = new Array();
  11491. /** @hidden */
  11492. this._activeChannel = 0;
  11493. this._currentTextureChannel = -1;
  11494. /** @hidden */
  11495. this._boundTexturesCache = {};
  11496. this._compiledEffects = {};
  11497. this._vertexAttribArraysEnabled = [];
  11498. this._uintIndicesCurrentlySet = false;
  11499. this._currentBoundBuffer = new Array();
  11500. /** @hidden */
  11501. this._currentFramebuffer = null;
  11502. this._currentBufferPointers = new Array();
  11503. this._currentInstanceLocations = new Array();
  11504. this._currentInstanceBuffers = new Array();
  11505. this._firstBoundInternalTextureTracker = new BABYLON.DummyInternalTextureTracker();
  11506. this._lastBoundInternalTextureTracker = new BABYLON.DummyInternalTextureTracker();
  11507. this._vaoRecordInProgress = false;
  11508. this._mustWipeVertexAttributes = false;
  11509. this._nextFreeTextureSlots = new Array();
  11510. this._maxSimultaneousTextures = 0;
  11511. this._activeRequests = new Array();
  11512. // Hardware supported Compressed Textures
  11513. this._texturesSupported = new Array();
  11514. /**
  11515. * Defines whether the engine has been created with the premultipliedAlpha option on or not.
  11516. */
  11517. this.premultipliedAlpha = true;
  11518. this._viewportCached = new BABYLON.Vector4(0, 0, 0, 0);
  11519. this._onVRFullScreenTriggered = function () {
  11520. if (_this._vrDisplay && _this._vrDisplay.isPresenting) {
  11521. //get the old size before we change
  11522. _this._oldSize = new BABYLON.Size(_this.getRenderWidth(), _this.getRenderHeight());
  11523. _this._oldHardwareScaleFactor = _this.getHardwareScalingLevel();
  11524. //get the width and height, change the render size
  11525. var leftEye = _this._vrDisplay.getEyeParameters('left');
  11526. _this.setHardwareScalingLevel(1);
  11527. _this.setSize(leftEye.renderWidth * 2, leftEye.renderHeight);
  11528. }
  11529. else {
  11530. _this.setHardwareScalingLevel(_this._oldHardwareScaleFactor);
  11531. _this.setSize(_this._oldSize.width, _this._oldSize.height);
  11532. }
  11533. };
  11534. this._unpackFlipYCached = null;
  11535. /**
  11536. * In case you are sharing the context with other applications, it might
  11537. * be interested to not cache the unpack flip y state to ensure a consistent
  11538. * value would be set.
  11539. */
  11540. this.enableUnpackFlipYCached = true;
  11541. this._boundUniforms = {};
  11542. // Register promises
  11543. BABYLON.PromisePolyfill.Apply();
  11544. var canvas = null;
  11545. Engine.Instances.push(this);
  11546. if (!canvasOrContext) {
  11547. return;
  11548. }
  11549. options = options || {};
  11550. if (canvasOrContext.getContext) {
  11551. canvas = canvasOrContext;
  11552. this._renderingCanvas = canvas;
  11553. if (antialias != null) {
  11554. options.antialias = antialias;
  11555. }
  11556. if (options.deterministicLockstep === undefined) {
  11557. options.deterministicLockstep = false;
  11558. }
  11559. if (options.lockstepMaxSteps === undefined) {
  11560. options.lockstepMaxSteps = 4;
  11561. }
  11562. if (options.preserveDrawingBuffer === undefined) {
  11563. options.preserveDrawingBuffer = false;
  11564. }
  11565. if (options.audioEngine === undefined) {
  11566. options.audioEngine = true;
  11567. }
  11568. if (options.stencil === undefined) {
  11569. options.stencil = true;
  11570. }
  11571. if (options.premultipliedAlpha === false) {
  11572. this.premultipliedAlpha = false;
  11573. }
  11574. this._deterministicLockstep = options.deterministicLockstep;
  11575. this._lockstepMaxSteps = options.lockstepMaxSteps;
  11576. this._doNotHandleContextLost = options.doNotHandleContextLost ? true : false;
  11577. // Exceptions
  11578. if (navigator && navigator.userAgent) {
  11579. var ua = navigator.userAgent;
  11580. for (var _i = 0, _a = Engine.ExceptionList; _i < _a.length; _i++) {
  11581. var exception = _a[_i];
  11582. var key = exception.key;
  11583. var targets = exception.targets;
  11584. if (ua.indexOf(key) > -1) {
  11585. if (exception.capture && exception.captureConstraint) {
  11586. var capture = exception.capture;
  11587. var constraint = exception.captureConstraint;
  11588. var regex = new RegExp(capture);
  11589. var matches = regex.exec(ua);
  11590. if (matches && matches.length > 0) {
  11591. var capturedValue = parseInt(matches[matches.length - 1]);
  11592. if (capturedValue >= constraint) {
  11593. continue;
  11594. }
  11595. }
  11596. }
  11597. for (var _b = 0, targets_1 = targets; _b < targets_1.length; _b++) {
  11598. var target = targets_1[_b];
  11599. switch (target) {
  11600. case "uniformBuffer":
  11601. this.disableUniformBuffers = true;
  11602. break;
  11603. case "textureBindingOptimization":
  11604. this.disableTextureBindingOptimization = true;
  11605. break;
  11606. }
  11607. }
  11608. }
  11609. }
  11610. }
  11611. // GL
  11612. if (!options.disableWebGL2Support) {
  11613. try {
  11614. this._gl = (canvas.getContext("webgl2", options) || canvas.getContext("experimental-webgl2", options));
  11615. if (this._gl) {
  11616. this._webGLVersion = 2.0;
  11617. }
  11618. }
  11619. catch (e) {
  11620. // Do nothing
  11621. }
  11622. }
  11623. if (!this._gl) {
  11624. if (!canvas) {
  11625. throw new Error("The provided canvas is null or undefined.");
  11626. }
  11627. try {
  11628. this._gl = (canvas.getContext("webgl", options) || canvas.getContext("experimental-webgl", options));
  11629. }
  11630. catch (e) {
  11631. throw new Error("WebGL not supported");
  11632. }
  11633. }
  11634. if (!this._gl) {
  11635. throw new Error("WebGL not supported");
  11636. }
  11637. this._onCanvasFocus = function () {
  11638. _this.onCanvasFocusObservable.notifyObservers(_this);
  11639. };
  11640. this._onCanvasBlur = function () {
  11641. _this.onCanvasBlurObservable.notifyObservers(_this);
  11642. };
  11643. canvas.addEventListener("focus", this._onCanvasFocus);
  11644. canvas.addEventListener("blur", this._onCanvasBlur);
  11645. this._onBlur = function () {
  11646. if (_this.disablePerformanceMonitorInBackground) {
  11647. _this._performanceMonitor.disable();
  11648. }
  11649. _this._windowIsBackground = true;
  11650. };
  11651. this._onFocus = function () {
  11652. if (_this.disablePerformanceMonitorInBackground) {
  11653. _this._performanceMonitor.enable();
  11654. }
  11655. _this._windowIsBackground = false;
  11656. };
  11657. this._onCanvasPointerOut = function (ev) {
  11658. _this.onCanvasPointerOutObservable.notifyObservers(ev);
  11659. };
  11660. window.addEventListener("blur", this._onBlur);
  11661. window.addEventListener("focus", this._onFocus);
  11662. canvas.addEventListener("pointerout", this._onCanvasPointerOut);
  11663. // Context lost
  11664. if (!this._doNotHandleContextLost) {
  11665. this._onContextLost = function (evt) {
  11666. evt.preventDefault();
  11667. _this._contextWasLost = true;
  11668. BABYLON.Tools.Warn("WebGL context lost.");
  11669. _this.onContextLostObservable.notifyObservers(_this);
  11670. };
  11671. this._onContextRestored = function (evt) {
  11672. // Adding a timeout to avoid race condition at browser level
  11673. setTimeout(function () {
  11674. // Rebuild gl context
  11675. _this._initGLContext();
  11676. // Rebuild effects
  11677. _this._rebuildEffects();
  11678. // Rebuild textures
  11679. _this._rebuildInternalTextures();
  11680. // Rebuild buffers
  11681. _this._rebuildBuffers();
  11682. // Cache
  11683. _this.wipeCaches(true);
  11684. BABYLON.Tools.Warn("WebGL context successfully restored.");
  11685. _this.onContextRestoredObservable.notifyObservers(_this);
  11686. _this._contextWasLost = false;
  11687. }, 0);
  11688. };
  11689. canvas.addEventListener("webglcontextlost", this._onContextLost, false);
  11690. canvas.addEventListener("webglcontextrestored", this._onContextRestored, false);
  11691. }
  11692. }
  11693. else {
  11694. this._gl = canvasOrContext;
  11695. this._renderingCanvas = this._gl.canvas;
  11696. if (this._gl.renderbufferStorageMultisample) {
  11697. this._webGLVersion = 2.0;
  11698. }
  11699. options.stencil = this._gl.getContextAttributes().stencil;
  11700. }
  11701. // Viewport
  11702. var limitDeviceRatio = options.limitDeviceRatio || window.devicePixelRatio || 1.0;
  11703. this._hardwareScalingLevel = adaptToDeviceRatio ? 1.0 / Math.min(limitDeviceRatio, window.devicePixelRatio || 1.0) : 1.0;
  11704. this.resize();
  11705. this._isStencilEnable = options.stencil ? true : false;
  11706. this._initGLContext();
  11707. if (canvas) {
  11708. // Fullscreen
  11709. this._onFullscreenChange = function () {
  11710. if (document.fullscreen !== undefined) {
  11711. _this.isFullscreen = document.fullscreen;
  11712. }
  11713. else if (document.mozFullScreen !== undefined) {
  11714. _this.isFullscreen = document.mozFullScreen;
  11715. }
  11716. else if (document.webkitIsFullScreen !== undefined) {
  11717. _this.isFullscreen = document.webkitIsFullScreen;
  11718. }
  11719. else if (document.msIsFullScreen !== undefined) {
  11720. _this.isFullscreen = document.msIsFullScreen;
  11721. }
  11722. // Pointer lock
  11723. if (_this.isFullscreen && _this._pointerLockRequested && canvas) {
  11724. canvas.requestPointerLock = canvas.requestPointerLock ||
  11725. canvas.msRequestPointerLock ||
  11726. canvas.mozRequestPointerLock ||
  11727. canvas.webkitRequestPointerLock;
  11728. if (canvas.requestPointerLock) {
  11729. canvas.requestPointerLock();
  11730. }
  11731. }
  11732. };
  11733. document.addEventListener("fullscreenchange", this._onFullscreenChange, false);
  11734. document.addEventListener("mozfullscreenchange", this._onFullscreenChange, false);
  11735. document.addEventListener("webkitfullscreenchange", this._onFullscreenChange, false);
  11736. document.addEventListener("msfullscreenchange", this._onFullscreenChange, false);
  11737. // Pointer lock
  11738. this._onPointerLockChange = function () {
  11739. _this.isPointerLock = (document.mozPointerLockElement === canvas ||
  11740. document.webkitPointerLockElement === canvas ||
  11741. document.msPointerLockElement === canvas ||
  11742. document.pointerLockElement === canvas);
  11743. };
  11744. document.addEventListener("pointerlockchange", this._onPointerLockChange, false);
  11745. document.addEventListener("mspointerlockchange", this._onPointerLockChange, false);
  11746. document.addEventListener("mozpointerlockchange", this._onPointerLockChange, false);
  11747. document.addEventListener("webkitpointerlockchange", this._onPointerLockChange, false);
  11748. this._onVRDisplayPointerRestricted = function () {
  11749. if (canvas) {
  11750. canvas.requestPointerLock();
  11751. }
  11752. };
  11753. this._onVRDisplayPointerUnrestricted = function () {
  11754. document.exitPointerLock();
  11755. };
  11756. window.addEventListener('vrdisplaypointerrestricted', this._onVRDisplayPointerRestricted, false);
  11757. window.addEventListener('vrdisplaypointerunrestricted', this._onVRDisplayPointerUnrestricted, false);
  11758. }
  11759. if (options.audioEngine && BABYLON.AudioEngine && !Engine.audioEngine) {
  11760. Engine.audioEngine = new BABYLON.AudioEngine();
  11761. }
  11762. // Prepare buffer pointers
  11763. for (var i = 0; i < this._caps.maxVertexAttribs; i++) {
  11764. this._currentBufferPointers[i] = new BufferPointer();
  11765. }
  11766. this._linkTrackers(this._firstBoundInternalTextureTracker, this._lastBoundInternalTextureTracker);
  11767. // Load WebVR Devices
  11768. if (options.autoEnableWebVR) {
  11769. this.initWebVR();
  11770. }
  11771. // Detect if we are running on a faulty buggy OS.
  11772. this._badOS = /iPad/i.test(navigator.userAgent) || /iPhone/i.test(navigator.userAgent);
  11773. // Detect if we are running on a faulty buggy desktop OS.
  11774. this._badDesktopOS = /^((?!chrome|android).)*safari/i.test(navigator.userAgent);
  11775. console.log("Babylon.js engine (v" + Engine.Version + ") launched");
  11776. this.enableOfflineSupport = (BABYLON.Database !== undefined);
  11777. }
  11778. Object.defineProperty(Engine, "LastCreatedEngine", {
  11779. /**
  11780. * Gets the latest created engine
  11781. */
  11782. get: function () {
  11783. if (Engine.Instances.length === 0) {
  11784. return null;
  11785. }
  11786. return Engine.Instances[Engine.Instances.length - 1];
  11787. },
  11788. enumerable: true,
  11789. configurable: true
  11790. });
  11791. Object.defineProperty(Engine, "LastCreatedScene", {
  11792. /**
  11793. * Gets the latest created scene
  11794. */
  11795. get: function () {
  11796. var lastCreatedEngine = Engine.LastCreatedEngine;
  11797. if (!lastCreatedEngine) {
  11798. return null;
  11799. }
  11800. if (lastCreatedEngine.scenes.length === 0) {
  11801. return null;
  11802. }
  11803. return lastCreatedEngine.scenes[lastCreatedEngine.scenes.length - 1];
  11804. },
  11805. enumerable: true,
  11806. configurable: true
  11807. });
  11808. /**
  11809. * Will flag all materials in all scenes in all engines as dirty to trigger new shader compilation
  11810. * @param flag defines which part of the materials must be marked as dirty
  11811. * @param predicate defines a predicate used to filter which materials should be affected
  11812. */
  11813. Engine.MarkAllMaterialsAsDirty = function (flag, predicate) {
  11814. for (var engineIndex = 0; engineIndex < Engine.Instances.length; engineIndex++) {
  11815. var engine = Engine.Instances[engineIndex];
  11816. for (var sceneIndex = 0; sceneIndex < engine.scenes.length; sceneIndex++) {
  11817. engine.scenes[sceneIndex].markAllMaterialsAsDirty(flag, predicate);
  11818. }
  11819. }
  11820. };
  11821. Object.defineProperty(Engine, "Version", {
  11822. /**
  11823. * Returns the current version of the framework
  11824. */
  11825. get: function () {
  11826. return "3.3.0-beta.5";
  11827. },
  11828. enumerable: true,
  11829. configurable: true
  11830. });
  11831. Object.defineProperty(Engine.prototype, "isInVRExclusivePointerMode", {
  11832. /**
  11833. * Gets a boolean indicating that the engine is currently in VR exclusive mode for the pointers
  11834. * @see https://docs.microsoft.com/en-us/microsoft-edge/webvr/essentials#mouse-input
  11835. */
  11836. get: function () {
  11837. return this._vrExclusivePointerMode;
  11838. },
  11839. enumerable: true,
  11840. configurable: true
  11841. });
  11842. Object.defineProperty(Engine.prototype, "supportsUniformBuffers", {
  11843. /**
  11844. * Gets a boolean indicating that the engine supports uniform buffers
  11845. * @see http://doc.babylonjs.com/features/webgl2#uniform-buffer-objets
  11846. */
  11847. get: function () {
  11848. return this.webGLVersion > 1 && !this.disableUniformBuffers;
  11849. },
  11850. enumerable: true,
  11851. configurable: true
  11852. });
  11853. Object.defineProperty(Engine.prototype, "needPOTTextures", {
  11854. /**
  11855. * Gets a boolean indicating that only power of 2 textures are supported
  11856. * Please note that you can still use non power of 2 textures but in this case the engine will forcefully convert them
  11857. */
  11858. get: function () {
  11859. return this._webGLVersion < 2 || this.forcePOTTextures;
  11860. },
  11861. enumerable: true,
  11862. configurable: true
  11863. });
  11864. Object.defineProperty(Engine.prototype, "doNotHandleContextLost", {
  11865. /**
  11866. * Gets or sets a boolean indicating if resources should be retained to be able to handle context lost events
  11867. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#handling-webgl-context-lost
  11868. */
  11869. get: function () {
  11870. return this._doNotHandleContextLost;
  11871. },
  11872. set: function (value) {
  11873. this._doNotHandleContextLost = value;
  11874. },
  11875. enumerable: true,
  11876. configurable: true
  11877. });
  11878. Object.defineProperty(Engine.prototype, "performanceMonitor", {
  11879. /**
  11880. * Gets the performance monitor attached to this engine
  11881. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#engineinstrumentation
  11882. */
  11883. get: function () {
  11884. return this._performanceMonitor;
  11885. },
  11886. enumerable: true,
  11887. configurable: true
  11888. });
  11889. Object.defineProperty(Engine.prototype, "texturesSupported", {
  11890. /**
  11891. * Gets the list of texture formats supported
  11892. */
  11893. get: function () {
  11894. return this._texturesSupported;
  11895. },
  11896. enumerable: true,
  11897. configurable: true
  11898. });
  11899. Object.defineProperty(Engine.prototype, "textureFormatInUse", {
  11900. /**
  11901. * Gets the list of texture formats in use
  11902. */
  11903. get: function () {
  11904. return this._textureFormatInUse;
  11905. },
  11906. enumerable: true,
  11907. configurable: true
  11908. });
  11909. Object.defineProperty(Engine.prototype, "currentViewport", {
  11910. /**
  11911. * Gets the current viewport
  11912. */
  11913. get: function () {
  11914. return this._cachedViewport;
  11915. },
  11916. enumerable: true,
  11917. configurable: true
  11918. });
  11919. Object.defineProperty(Engine.prototype, "emptyTexture", {
  11920. /**
  11921. * Gets the default empty texture
  11922. */
  11923. get: function () {
  11924. if (!this._emptyTexture) {
  11925. this._emptyTexture = this.createRawTexture(new Uint8Array(4), 1, 1, Engine.TEXTUREFORMAT_RGBA, false, false, Engine.TEXTURE_NEAREST_SAMPLINGMODE);
  11926. }
  11927. return this._emptyTexture;
  11928. },
  11929. enumerable: true,
  11930. configurable: true
  11931. });
  11932. Object.defineProperty(Engine.prototype, "emptyTexture3D", {
  11933. /**
  11934. * Gets the default empty 3D texture
  11935. */
  11936. get: function () {
  11937. if (!this._emptyTexture3D) {
  11938. this._emptyTexture3D = this.createRawTexture3D(new Uint8Array(4), 1, 1, 1, Engine.TEXTUREFORMAT_RGBA, false, false, Engine.TEXTURE_NEAREST_SAMPLINGMODE);
  11939. }
  11940. return this._emptyTexture3D;
  11941. },
  11942. enumerable: true,
  11943. configurable: true
  11944. });
  11945. Object.defineProperty(Engine.prototype, "emptyCubeTexture", {
  11946. /**
  11947. * Gets the default empty cube texture
  11948. */
  11949. get: function () {
  11950. if (!this._emptyCubeTexture) {
  11951. var faceData = new Uint8Array(4);
  11952. var cubeData = [faceData, faceData, faceData, faceData, faceData, faceData];
  11953. this._emptyCubeTexture = this.createRawCubeTexture(cubeData, 1, Engine.TEXTUREFORMAT_RGBA, Engine.TEXTURETYPE_UNSIGNED_INT, false, false, Engine.TEXTURE_NEAREST_SAMPLINGMODE);
  11954. }
  11955. return this._emptyCubeTexture;
  11956. },
  11957. enumerable: true,
  11958. configurable: true
  11959. });
  11960. Engine.prototype._rebuildInternalTextures = function () {
  11961. var currentState = this._internalTexturesCache.slice(); // Do a copy because the rebuild will add proxies
  11962. for (var _i = 0, currentState_1 = currentState; _i < currentState_1.length; _i++) {
  11963. var internalTexture = currentState_1[_i];
  11964. internalTexture._rebuild();
  11965. }
  11966. };
  11967. Engine.prototype._rebuildEffects = function () {
  11968. for (var key in this._compiledEffects) {
  11969. var effect = this._compiledEffects[key];
  11970. effect._prepareEffect();
  11971. }
  11972. BABYLON.Effect.ResetCache();
  11973. };
  11974. Engine.prototype._rebuildBuffers = function () {
  11975. // Index / Vertex
  11976. for (var _i = 0, _a = this.scenes; _i < _a.length; _i++) {
  11977. var scene = _a[_i];
  11978. scene.resetCachedMaterial();
  11979. scene._rebuildGeometries();
  11980. scene._rebuildTextures();
  11981. }
  11982. // Uniforms
  11983. for (var _b = 0, _c = this._uniformBuffers; _b < _c.length; _b++) {
  11984. var uniformBuffer = _c[_b];
  11985. uniformBuffer._rebuild();
  11986. }
  11987. };
  11988. Engine.prototype._initGLContext = function () {
  11989. // Caps
  11990. this._caps = new EngineCapabilities();
  11991. this._caps.maxTexturesImageUnits = this._gl.getParameter(this._gl.MAX_TEXTURE_IMAGE_UNITS);
  11992. this._caps.maxCombinedTexturesImageUnits = this._gl.getParameter(this._gl.MAX_COMBINED_TEXTURE_IMAGE_UNITS);
  11993. this._caps.maxVertexTextureImageUnits = this._gl.getParameter(this._gl.MAX_VERTEX_TEXTURE_IMAGE_UNITS);
  11994. this._caps.maxTextureSize = this._gl.getParameter(this._gl.MAX_TEXTURE_SIZE);
  11995. this._caps.maxCubemapTextureSize = this._gl.getParameter(this._gl.MAX_CUBE_MAP_TEXTURE_SIZE);
  11996. this._caps.maxRenderTextureSize = this._gl.getParameter(this._gl.MAX_RENDERBUFFER_SIZE);
  11997. this._caps.maxVertexAttribs = this._gl.getParameter(this._gl.MAX_VERTEX_ATTRIBS);
  11998. this._caps.maxVaryingVectors = this._gl.getParameter(this._gl.MAX_VARYING_VECTORS);
  11999. this._caps.maxFragmentUniformVectors = this._gl.getParameter(this._gl.MAX_FRAGMENT_UNIFORM_VECTORS);
  12000. this._caps.maxVertexUniformVectors = this._gl.getParameter(this._gl.MAX_VERTEX_UNIFORM_VECTORS);
  12001. // Infos
  12002. this._glVersion = this._gl.getParameter(this._gl.VERSION);
  12003. var rendererInfo = this._gl.getExtension("WEBGL_debug_renderer_info");
  12004. if (rendererInfo != null) {
  12005. this._glRenderer = this._gl.getParameter(rendererInfo.UNMASKED_RENDERER_WEBGL);
  12006. this._glVendor = this._gl.getParameter(rendererInfo.UNMASKED_VENDOR_WEBGL);
  12007. }
  12008. if (!this._glVendor) {
  12009. this._glVendor = "Unknown vendor";
  12010. }
  12011. if (!this._glRenderer) {
  12012. this._glRenderer = "Unknown renderer";
  12013. }
  12014. // Constants
  12015. this._gl.HALF_FLOAT_OES = 0x8D61; // Half floating-point type (16-bit).
  12016. if (this._gl.RGBA16F !== 0x881A) {
  12017. this._gl.RGBA16F = 0x881A; // RGBA 16-bit floating-point color-renderable internal sized format.
  12018. }
  12019. if (this._gl.RGBA32F !== 0x8814) {
  12020. this._gl.RGBA32F = 0x8814; // RGBA 32-bit floating-point color-renderable internal sized format.
  12021. }
  12022. if (this._gl.DEPTH24_STENCIL8 !== 35056) {
  12023. this._gl.DEPTH24_STENCIL8 = 35056;
  12024. }
  12025. // Extensions
  12026. this._caps.standardDerivatives = this._webGLVersion > 1 || (this._gl.getExtension('OES_standard_derivatives') !== null);
  12027. this._caps.astc = this._gl.getExtension('WEBGL_compressed_texture_astc') || this._gl.getExtension('WEBKIT_WEBGL_compressed_texture_astc');
  12028. this._caps.s3tc = this._gl.getExtension('WEBGL_compressed_texture_s3tc') || this._gl.getExtension('WEBKIT_WEBGL_compressed_texture_s3tc');
  12029. this._caps.pvrtc = this._gl.getExtension('WEBGL_compressed_texture_pvrtc') || this._gl.getExtension('WEBKIT_WEBGL_compressed_texture_pvrtc');
  12030. this._caps.etc1 = this._gl.getExtension('WEBGL_compressed_texture_etc1') || this._gl.getExtension('WEBKIT_WEBGL_compressed_texture_etc1');
  12031. this._caps.etc2 = this._gl.getExtension('WEBGL_compressed_texture_etc') || this._gl.getExtension('WEBKIT_WEBGL_compressed_texture_etc') ||
  12032. this._gl.getExtension('WEBGL_compressed_texture_es3_0'); // also a requirement of OpenGL ES 3
  12033. this._caps.textureAnisotropicFilterExtension = this._gl.getExtension('EXT_texture_filter_anisotropic') || this._gl.getExtension('WEBKIT_EXT_texture_filter_anisotropic') || this._gl.getExtension('MOZ_EXT_texture_filter_anisotropic');
  12034. this._caps.maxAnisotropy = this._caps.textureAnisotropicFilterExtension ? this._gl.getParameter(this._caps.textureAnisotropicFilterExtension.MAX_TEXTURE_MAX_ANISOTROPY_EXT) : 0;
  12035. this._caps.uintIndices = this._webGLVersion > 1 || this._gl.getExtension('OES_element_index_uint') !== null;
  12036. this._caps.fragmentDepthSupported = this._webGLVersion > 1 || this._gl.getExtension('EXT_frag_depth') !== null;
  12037. this._caps.highPrecisionShaderSupported = true;
  12038. this._caps.timerQuery = this._gl.getExtension('EXT_disjoint_timer_query_webgl2') || this._gl.getExtension("EXT_disjoint_timer_query");
  12039. if (this._caps.timerQuery) {
  12040. if (this._webGLVersion === 1) {
  12041. this._gl.getQuery = this._caps.timerQuery.getQueryEXT.bind(this._caps.timerQuery);
  12042. }
  12043. this._caps.canUseTimestampForTimerQuery = this._gl.getQuery(this._caps.timerQuery.TIMESTAMP_EXT, this._caps.timerQuery.QUERY_COUNTER_BITS_EXT) > 0;
  12044. }
  12045. // Checks if some of the format renders first to allow the use of webgl inspector.
  12046. this._caps.colorBufferFloat = this._webGLVersion > 1 && this._gl.getExtension('EXT_color_buffer_float');
  12047. this._caps.textureFloat = (this._webGLVersion > 1 || this._gl.getExtension('OES_texture_float')) ? true : false;
  12048. this._caps.textureFloatLinearFiltering = this._caps.textureFloat && this._gl.getExtension('OES_texture_float_linear') ? true : false;
  12049. this._caps.textureFloatRender = this._caps.textureFloat && this._canRenderToFloatFramebuffer() ? true : false;
  12050. this._caps.textureHalfFloat = (this._webGLVersion > 1 || this._gl.getExtension('OES_texture_half_float')) ? true : false;
  12051. this._caps.textureHalfFloatLinearFiltering = (this._webGLVersion > 1 || (this._caps.textureHalfFloat && this._gl.getExtension('OES_texture_half_float_linear'))) ? true : false;
  12052. if (this._webGLVersion > 1) {
  12053. this._gl.HALF_FLOAT_OES = 0x140B;
  12054. }
  12055. this._caps.textureHalfFloatRender = this._caps.textureHalfFloat && this._canRenderToHalfFloatFramebuffer();
  12056. this._caps.textureLOD = (this._webGLVersion > 1 || this._gl.getExtension('EXT_shader_texture_lod')) ? true : false;
  12057. // Draw buffers
  12058. if (this._webGLVersion > 1) {
  12059. this._caps.drawBuffersExtension = true;
  12060. }
  12061. else {
  12062. var drawBuffersExtension = this._gl.getExtension('WEBGL_draw_buffers');
  12063. if (drawBuffersExtension !== null) {
  12064. this._caps.drawBuffersExtension = true;
  12065. this._gl.drawBuffers = drawBuffersExtension.drawBuffersWEBGL.bind(drawBuffersExtension);
  12066. this._gl.DRAW_FRAMEBUFFER = this._gl.FRAMEBUFFER;
  12067. for (var i = 0; i < 16; i++) {
  12068. this._gl["COLOR_ATTACHMENT" + i + "_WEBGL"] = drawBuffersExtension["COLOR_ATTACHMENT" + i + "_WEBGL"];
  12069. }
  12070. }
  12071. else {
  12072. this._caps.drawBuffersExtension = false;
  12073. }
  12074. }
  12075. // Depth Texture
  12076. if (this._webGLVersion > 1) {
  12077. this._caps.depthTextureExtension = true;
  12078. }
  12079. else {
  12080. var depthTextureExtension = this._gl.getExtension('WEBGL_depth_texture');
  12081. if (depthTextureExtension != null) {
  12082. this._caps.depthTextureExtension = true;
  12083. this._gl.UNSIGNED_INT_24_8 = depthTextureExtension.UNSIGNED_INT_24_8_WEBGL;
  12084. }
  12085. }
  12086. // Vertex array object
  12087. if (this._webGLVersion > 1) {
  12088. this._caps.vertexArrayObject = true;
  12089. }
  12090. else {
  12091. var vertexArrayObjectExtension = this._gl.getExtension('OES_vertex_array_object');
  12092. if (vertexArrayObjectExtension != null) {
  12093. this._caps.vertexArrayObject = true;
  12094. this._gl.createVertexArray = vertexArrayObjectExtension.createVertexArrayOES.bind(vertexArrayObjectExtension);
  12095. this._gl.bindVertexArray = vertexArrayObjectExtension.bindVertexArrayOES.bind(vertexArrayObjectExtension);
  12096. this._gl.deleteVertexArray = vertexArrayObjectExtension.deleteVertexArrayOES.bind(vertexArrayObjectExtension);
  12097. }
  12098. else {
  12099. this._caps.vertexArrayObject = false;
  12100. }
  12101. }
  12102. // Instances count
  12103. if (this._webGLVersion > 1) {
  12104. this._caps.instancedArrays = true;
  12105. }
  12106. else {
  12107. var instanceExtension = this._gl.getExtension('ANGLE_instanced_arrays');
  12108. if (instanceExtension != null) {
  12109. this._caps.instancedArrays = true;
  12110. this._gl.drawArraysInstanced = instanceExtension.drawArraysInstancedANGLE.bind(instanceExtension);
  12111. this._gl.drawElementsInstanced = instanceExtension.drawElementsInstancedANGLE.bind(instanceExtension);
  12112. this._gl.vertexAttribDivisor = instanceExtension.vertexAttribDivisorANGLE.bind(instanceExtension);
  12113. }
  12114. else {
  12115. this._caps.instancedArrays = false;
  12116. }
  12117. }
  12118. // Intelligently add supported compressed formats in order to check for.
  12119. // Check for ASTC support first as it is most powerful and to be very cross platform.
  12120. // Next PVRTC & DXT, which are probably superior to ETC1/2.
  12121. // Likely no hardware which supports both PVR & DXT, so order matters little.
  12122. // ETC2 is newer and handles ETC1 (no alpha capability), so check for first.
  12123. if (this._caps.astc)
  12124. this.texturesSupported.push('-astc.ktx');
  12125. if (this._caps.s3tc)
  12126. this.texturesSupported.push('-dxt.ktx');
  12127. if (this._caps.pvrtc)
  12128. this.texturesSupported.push('-pvrtc.ktx');
  12129. if (this._caps.etc2)
  12130. this.texturesSupported.push('-etc2.ktx');
  12131. if (this._caps.etc1)
  12132. this.texturesSupported.push('-etc1.ktx');
  12133. if (this._gl.getShaderPrecisionFormat) {
  12134. var highp = this._gl.getShaderPrecisionFormat(this._gl.FRAGMENT_SHADER, this._gl.HIGH_FLOAT);
  12135. if (highp) {
  12136. this._caps.highPrecisionShaderSupported = highp.precision !== 0;
  12137. }
  12138. }
  12139. // Depth buffer
  12140. this.setDepthBuffer(true);
  12141. this.setDepthFunctionToLessOrEqual();
  12142. this.setDepthWrite(true);
  12143. // Texture maps
  12144. this._maxSimultaneousTextures = this._caps.maxCombinedTexturesImageUnits;
  12145. for (var slot = 0; slot < this._maxSimultaneousTextures; slot++) {
  12146. this._nextFreeTextureSlots.push(slot);
  12147. }
  12148. };
  12149. Object.defineProperty(Engine.prototype, "webGLVersion", {
  12150. /**
  12151. * Gets version of the current webGL context
  12152. */
  12153. get: function () {
  12154. return this._webGLVersion;
  12155. },
  12156. enumerable: true,
  12157. configurable: true
  12158. });
  12159. Object.defineProperty(Engine.prototype, "isStencilEnable", {
  12160. /**
  12161. * Returns true if the stencil buffer has been enabled through the creation option of the context.
  12162. */
  12163. get: function () {
  12164. return this._isStencilEnable;
  12165. },
  12166. enumerable: true,
  12167. configurable: true
  12168. });
  12169. Engine.prototype._prepareWorkingCanvas = function () {
  12170. if (this._workingCanvas) {
  12171. return;
  12172. }
  12173. this._workingCanvas = document.createElement("canvas");
  12174. var context = this._workingCanvas.getContext("2d");
  12175. if (context) {
  12176. this._workingContext = context;
  12177. }
  12178. };
  12179. /**
  12180. * Reset the texture cache to empty state
  12181. */
  12182. Engine.prototype.resetTextureCache = function () {
  12183. for (var key in this._boundTexturesCache) {
  12184. if (!this._boundTexturesCache.hasOwnProperty(key)) {
  12185. continue;
  12186. }
  12187. var boundTexture = this._boundTexturesCache[key];
  12188. if (boundTexture) {
  12189. this._removeDesignatedSlot(boundTexture);
  12190. }
  12191. this._boundTexturesCache[key] = null;
  12192. }
  12193. if (!this.disableTextureBindingOptimization) {
  12194. this._nextFreeTextureSlots = [];
  12195. for (var slot = 0; slot < this._maxSimultaneousTextures; slot++) {
  12196. this._nextFreeTextureSlots.push(slot);
  12197. }
  12198. }
  12199. this._currentTextureChannel = -1;
  12200. };
  12201. /**
  12202. * Gets a boolean indicating that the engine is running in deterministic lock step mode
  12203. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  12204. * @returns true if engine is in deterministic lock step mode
  12205. */
  12206. Engine.prototype.isDeterministicLockStep = function () {
  12207. return this._deterministicLockstep;
  12208. };
  12209. /**
  12210. * Gets the max steps when engine is running in deterministic lock step
  12211. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  12212. * @returns the max steps
  12213. */
  12214. Engine.prototype.getLockstepMaxSteps = function () {
  12215. return this._lockstepMaxSteps;
  12216. };
  12217. /**
  12218. * Gets an object containing information about the current webGL context
  12219. * @returns an object containing the vender, the renderer and the version of the current webGL context
  12220. */
  12221. Engine.prototype.getGlInfo = function () {
  12222. return {
  12223. vendor: this._glVendor,
  12224. renderer: this._glRenderer,
  12225. version: this._glVersion
  12226. };
  12227. };
  12228. /**
  12229. * Gets current aspect ratio
  12230. * @param camera defines the camera to use to get the aspect ratio
  12231. * @param useScreen defines if screen size must be used (or the current render target if any)
  12232. * @returns a number defining the aspect ratio
  12233. */
  12234. Engine.prototype.getAspectRatio = function (camera, useScreen) {
  12235. if (useScreen === void 0) { useScreen = false; }
  12236. var viewport = camera.viewport;
  12237. return (this.getRenderWidth(useScreen) * viewport.width) / (this.getRenderHeight(useScreen) * viewport.height);
  12238. };
  12239. /**
  12240. * Gets current screen aspect ratio
  12241. * @returns a number defining the aspect ratio
  12242. */
  12243. Engine.prototype.getScreenAspectRatio = function () {
  12244. return (this.getRenderWidth(true)) / (this.getRenderHeight(true));
  12245. };
  12246. /**
  12247. * Gets the current render width
  12248. * @param useScreen defines if screen size must be used (or the current render target if any)
  12249. * @returns a number defining the current render width
  12250. */
  12251. Engine.prototype.getRenderWidth = function (useScreen) {
  12252. if (useScreen === void 0) { useScreen = false; }
  12253. if (!useScreen && this._currentRenderTarget) {
  12254. return this._currentRenderTarget.width;
  12255. }
  12256. return this._gl.drawingBufferWidth;
  12257. };
  12258. /**
  12259. * Gets the current render height
  12260. * @param useScreen defines if screen size must be used (or the current render target if any)
  12261. * @returns a number defining the current render height
  12262. */
  12263. Engine.prototype.getRenderHeight = function (useScreen) {
  12264. if (useScreen === void 0) { useScreen = false; }
  12265. if (!useScreen && this._currentRenderTarget) {
  12266. return this._currentRenderTarget.height;
  12267. }
  12268. return this._gl.drawingBufferHeight;
  12269. };
  12270. /**
  12271. * Gets the HTML canvas attached with the current webGL context
  12272. * @returns a HTML canvas
  12273. */
  12274. Engine.prototype.getRenderingCanvas = function () {
  12275. return this._renderingCanvas;
  12276. };
  12277. /**
  12278. * Gets the client rect of the HTML canvas attached with the current webGL context
  12279. * @returns a client rectanglee
  12280. */
  12281. Engine.prototype.getRenderingCanvasClientRect = function () {
  12282. if (!this._renderingCanvas) {
  12283. return null;
  12284. }
  12285. return this._renderingCanvas.getBoundingClientRect();
  12286. };
  12287. /**
  12288. * Defines the hardware scaling level.
  12289. * By default the hardware scaling level is computed from the window device ratio.
  12290. * if level = 1 then the engine will render at the exact resolution of the canvas. If level = 0.5 then the engine will render at twice the size of the canvas.
  12291. * @param level defines the level to use
  12292. */
  12293. Engine.prototype.setHardwareScalingLevel = function (level) {
  12294. this._hardwareScalingLevel = level;
  12295. this.resize();
  12296. };
  12297. /**
  12298. * Gets the current hardware scaling level.
  12299. * By default the hardware scaling level is computed from the window device ratio.
  12300. * if level = 1 then the engine will render at the exact resolution of the canvas. If level = 0.5 then the engine will render at twice the size of the canvas.
  12301. * @returns a number indicating the current hardware scaling level
  12302. */
  12303. Engine.prototype.getHardwareScalingLevel = function () {
  12304. return this._hardwareScalingLevel;
  12305. };
  12306. /**
  12307. * Gets the list of loaded textures
  12308. * @returns an array containing all loaded textures
  12309. */
  12310. Engine.prototype.getLoadedTexturesCache = function () {
  12311. return this._internalTexturesCache;
  12312. };
  12313. /**
  12314. * Gets the object containing all engine capabilities
  12315. * @returns the EngineCapabilities object
  12316. */
  12317. Engine.prototype.getCaps = function () {
  12318. return this._caps;
  12319. };
  12320. Object.defineProperty(Engine.prototype, "drawCalls", {
  12321. /** @hidden */
  12322. get: function () {
  12323. BABYLON.Tools.Warn("drawCalls is deprecated. Please use SceneInstrumentation class");
  12324. return 0;
  12325. },
  12326. enumerable: true,
  12327. configurable: true
  12328. });
  12329. Object.defineProperty(Engine.prototype, "drawCallsPerfCounter", {
  12330. /** @hidden */
  12331. get: function () {
  12332. BABYLON.Tools.Warn("drawCallsPerfCounter is deprecated. Please use SceneInstrumentation class");
  12333. return null;
  12334. },
  12335. enumerable: true,
  12336. configurable: true
  12337. });
  12338. /**
  12339. * Gets the current depth function
  12340. * @returns a number defining the depth function
  12341. */
  12342. Engine.prototype.getDepthFunction = function () {
  12343. return this._depthCullingState.depthFunc;
  12344. };
  12345. /**
  12346. * Sets the current depth function
  12347. * @param depthFunc defines the function to use
  12348. */
  12349. Engine.prototype.setDepthFunction = function (depthFunc) {
  12350. this._depthCullingState.depthFunc = depthFunc;
  12351. };
  12352. /**
  12353. * Sets the current depth function to GREATER
  12354. */
  12355. Engine.prototype.setDepthFunctionToGreater = function () {
  12356. this._depthCullingState.depthFunc = this._gl.GREATER;
  12357. };
  12358. /**
  12359. * Sets the current depth function to GEQUAL
  12360. */
  12361. Engine.prototype.setDepthFunctionToGreaterOrEqual = function () {
  12362. this._depthCullingState.depthFunc = this._gl.GEQUAL;
  12363. };
  12364. /**
  12365. * Sets the current depth function to LESS
  12366. */
  12367. Engine.prototype.setDepthFunctionToLess = function () {
  12368. this._depthCullingState.depthFunc = this._gl.LESS;
  12369. };
  12370. /**
  12371. * Sets the current depth function to LEQUAL
  12372. */
  12373. Engine.prototype.setDepthFunctionToLessOrEqual = function () {
  12374. this._depthCullingState.depthFunc = this._gl.LEQUAL;
  12375. };
  12376. /**
  12377. * Gets a boolean indicating if stencil buffer is enabled
  12378. * @returns the current stencil buffer state
  12379. */
  12380. Engine.prototype.getStencilBuffer = function () {
  12381. return this._stencilState.stencilTest;
  12382. };
  12383. /**
  12384. * Enable or disable the stencil buffer
  12385. * @param enable defines if the stencil buffer must be enabled or disabled
  12386. */
  12387. Engine.prototype.setStencilBuffer = function (enable) {
  12388. this._stencilState.stencilTest = enable;
  12389. };
  12390. /**
  12391. * Gets the current stencil mask
  12392. * @returns a number defining the new stencil mask to use
  12393. */
  12394. Engine.prototype.getStencilMask = function () {
  12395. return this._stencilState.stencilMask;
  12396. };
  12397. /**
  12398. * Sets the current stencil mask
  12399. * @param mask defines the new stencil mask to use
  12400. */
  12401. Engine.prototype.setStencilMask = function (mask) {
  12402. this._stencilState.stencilMask = mask;
  12403. };
  12404. /**
  12405. * Gets the current stencil function
  12406. * @returns a number defining the stencil function to use
  12407. */
  12408. Engine.prototype.getStencilFunction = function () {
  12409. return this._stencilState.stencilFunc;
  12410. };
  12411. /**
  12412. * Gets the current stencil reference value
  12413. * @returns a number defining the stencil reference value to use
  12414. */
  12415. Engine.prototype.getStencilFunctionReference = function () {
  12416. return this._stencilState.stencilFuncRef;
  12417. };
  12418. /**
  12419. * Gets the current stencil mask
  12420. * @returns a number defining the stencil mask to use
  12421. */
  12422. Engine.prototype.getStencilFunctionMask = function () {
  12423. return this._stencilState.stencilFuncMask;
  12424. };
  12425. /**
  12426. * Sets the current stencil function
  12427. * @param stencilFunc defines the new stencil function to use
  12428. */
  12429. Engine.prototype.setStencilFunction = function (stencilFunc) {
  12430. this._stencilState.stencilFunc = stencilFunc;
  12431. };
  12432. /**
  12433. * Sets the current stencil reference
  12434. * @param reference defines the new stencil reference to use
  12435. */
  12436. Engine.prototype.setStencilFunctionReference = function (reference) {
  12437. this._stencilState.stencilFuncRef = reference;
  12438. };
  12439. /**
  12440. * Sets the current stencil mask
  12441. * @param mask defines the new stencil mask to use
  12442. */
  12443. Engine.prototype.setStencilFunctionMask = function (mask) {
  12444. this._stencilState.stencilFuncMask = mask;
  12445. };
  12446. /**
  12447. * Gets the current stencil operation when stencil fails
  12448. * @returns a number defining stencil operation to use when stencil fails
  12449. */
  12450. Engine.prototype.getStencilOperationFail = function () {
  12451. return this._stencilState.stencilOpStencilFail;
  12452. };
  12453. /**
  12454. * Gets the current stencil operation when depth fails
  12455. * @returns a number defining stencil operation to use when depth fails
  12456. */
  12457. Engine.prototype.getStencilOperationDepthFail = function () {
  12458. return this._stencilState.stencilOpDepthFail;
  12459. };
  12460. /**
  12461. * Gets the current stencil operation when stencil passes
  12462. * @returns a number defining stencil operation to use when stencil passes
  12463. */
  12464. Engine.prototype.getStencilOperationPass = function () {
  12465. return this._stencilState.stencilOpStencilDepthPass;
  12466. };
  12467. /**
  12468. * Sets the stencil operation to use when stencil fails
  12469. * @param operation defines the stencil operation to use when stencil fails
  12470. */
  12471. Engine.prototype.setStencilOperationFail = function (operation) {
  12472. this._stencilState.stencilOpStencilFail = operation;
  12473. };
  12474. /**
  12475. * Sets the stencil operation to use when depth fails
  12476. * @param operation defines the stencil operation to use when depth fails
  12477. */
  12478. Engine.prototype.setStencilOperationDepthFail = function (operation) {
  12479. this._stencilState.stencilOpDepthFail = operation;
  12480. };
  12481. /**
  12482. * Sets the stencil operation to use when stencil passes
  12483. * @param operation defines the stencil operation to use when stencil passes
  12484. */
  12485. Engine.prototype.setStencilOperationPass = function (operation) {
  12486. this._stencilState.stencilOpStencilDepthPass = operation;
  12487. };
  12488. /**
  12489. * Sets a boolean indicating if the dithering state is enabled or disabled
  12490. * @param value defines the dithering state
  12491. */
  12492. Engine.prototype.setDitheringState = function (value) {
  12493. if (value) {
  12494. this._gl.enable(this._gl.DITHER);
  12495. }
  12496. else {
  12497. this._gl.disable(this._gl.DITHER);
  12498. }
  12499. };
  12500. /**
  12501. * Sets a boolean indicating if the rasterizer state is enabled or disabled
  12502. * @param value defines the rasterizer state
  12503. */
  12504. Engine.prototype.setRasterizerState = function (value) {
  12505. if (value) {
  12506. this._gl.disable(this._gl.RASTERIZER_DISCARD);
  12507. }
  12508. else {
  12509. this._gl.enable(this._gl.RASTERIZER_DISCARD);
  12510. }
  12511. };
  12512. /**
  12513. * stop executing a render loop function and remove it from the execution array
  12514. * @param renderFunction defines the function to be removed. If not provided all functions will be removed.
  12515. */
  12516. Engine.prototype.stopRenderLoop = function (renderFunction) {
  12517. if (!renderFunction) {
  12518. this._activeRenderLoops = [];
  12519. return;
  12520. }
  12521. var index = this._activeRenderLoops.indexOf(renderFunction);
  12522. if (index >= 0) {
  12523. this._activeRenderLoops.splice(index, 1);
  12524. }
  12525. };
  12526. /** @hidden */
  12527. Engine.prototype._renderLoop = function () {
  12528. if (!this._contextWasLost) {
  12529. var shouldRender = true;
  12530. if (!this.renderEvenInBackground && this._windowIsBackground) {
  12531. shouldRender = false;
  12532. }
  12533. if (shouldRender) {
  12534. // Start new frame
  12535. this.beginFrame();
  12536. for (var index = 0; index < this._activeRenderLoops.length; index++) {
  12537. var renderFunction = this._activeRenderLoops[index];
  12538. renderFunction();
  12539. }
  12540. // Present
  12541. this.endFrame();
  12542. }
  12543. }
  12544. if (this._activeRenderLoops.length > 0) {
  12545. // Register new frame
  12546. var requester = null;
  12547. if (this._vrDisplay && this._vrDisplay.isPresenting)
  12548. requester = this._vrDisplay;
  12549. this._frameHandler = BABYLON.Tools.QueueNewFrame(this._bindedRenderFunction, requester);
  12550. }
  12551. else {
  12552. this._renderingQueueLaunched = false;
  12553. }
  12554. };
  12555. /**
  12556. * Register and execute a render loop. The engine can have more than one render function
  12557. * @param renderFunction defines the function to continuously execute
  12558. */
  12559. Engine.prototype.runRenderLoop = function (renderFunction) {
  12560. if (this._activeRenderLoops.indexOf(renderFunction) !== -1) {
  12561. return;
  12562. }
  12563. this._activeRenderLoops.push(renderFunction);
  12564. if (!this._renderingQueueLaunched) {
  12565. this._renderingQueueLaunched = true;
  12566. this._bindedRenderFunction = this._renderLoop.bind(this);
  12567. this._frameHandler = BABYLON.Tools.QueueNewFrame(this._bindedRenderFunction);
  12568. }
  12569. };
  12570. /**
  12571. * Toggle full screen mode
  12572. * @param requestPointerLock defines if a pointer lock should be requested from the user
  12573. * @param options defines an option object to be sent to the requestFullscreen function
  12574. */
  12575. Engine.prototype.switchFullscreen = function (requestPointerLock) {
  12576. if (this.isFullscreen) {
  12577. BABYLON.Tools.ExitFullscreen();
  12578. }
  12579. else {
  12580. this._pointerLockRequested = requestPointerLock;
  12581. if (this._renderingCanvas) {
  12582. BABYLON.Tools.RequestFullscreen(this._renderingCanvas);
  12583. }
  12584. }
  12585. };
  12586. /**
  12587. * Clear the current render buffer or the current render target (if any is set up)
  12588. * @param color defines the color to use
  12589. * @param backBuffer defines if the back buffer must be cleared
  12590. * @param depth defines if the depth buffer must be cleared
  12591. * @param stencil defines if the stencil buffer must be cleared
  12592. */
  12593. Engine.prototype.clear = function (color, backBuffer, depth, stencil) {
  12594. if (stencil === void 0) { stencil = false; }
  12595. this.applyStates();
  12596. var mode = 0;
  12597. if (backBuffer && color) {
  12598. this._gl.clearColor(color.r, color.g, color.b, color.a !== undefined ? color.a : 1.0);
  12599. mode |= this._gl.COLOR_BUFFER_BIT;
  12600. }
  12601. if (depth) {
  12602. this._gl.clearDepth(1.0);
  12603. mode |= this._gl.DEPTH_BUFFER_BIT;
  12604. }
  12605. if (stencil) {
  12606. this._gl.clearStencil(0);
  12607. mode |= this._gl.STENCIL_BUFFER_BIT;
  12608. }
  12609. this._gl.clear(mode);
  12610. };
  12611. /**
  12612. * Executes a scissor clear (ie. a clear on a specific portion of the screen)
  12613. * @param x defines the x-coordinate of the top left corner of the clear rectangle
  12614. * @param y defines the y-coordinate of the corner of the clear rectangle
  12615. * @param width defines the width of the clear rectangle
  12616. * @param height defines the height of the clear rectangle
  12617. * @param clearColor defines the clear color
  12618. */
  12619. Engine.prototype.scissorClear = function (x, y, width, height, clearColor) {
  12620. var gl = this._gl;
  12621. // Save state
  12622. var curScissor = gl.getParameter(gl.SCISSOR_TEST);
  12623. var curScissorBox = gl.getParameter(gl.SCISSOR_BOX);
  12624. // Change state
  12625. gl.enable(gl.SCISSOR_TEST);
  12626. gl.scissor(x, y, width, height);
  12627. // Clear
  12628. this.clear(clearColor, true, true, true);
  12629. // Restore state
  12630. gl.scissor(curScissorBox[0], curScissorBox[1], curScissorBox[2], curScissorBox[3]);
  12631. if (curScissor === true) {
  12632. gl.enable(gl.SCISSOR_TEST);
  12633. }
  12634. else {
  12635. gl.disable(gl.SCISSOR_TEST);
  12636. }
  12637. };
  12638. /** @hidden */
  12639. Engine.prototype._viewport = function (x, y, width, height) {
  12640. if (x !== this._viewportCached.x ||
  12641. y !== this._viewportCached.y ||
  12642. width !== this._viewportCached.z ||
  12643. height !== this._viewportCached.w) {
  12644. this._viewportCached.x = x;
  12645. this._viewportCached.y = y;
  12646. this._viewportCached.z = width;
  12647. this._viewportCached.w = height;
  12648. this._gl.viewport(x, y, width, height);
  12649. }
  12650. };
  12651. /**
  12652. * Set the WebGL's viewport
  12653. * @param viewport defines the viewport element to be used
  12654. * @param requiredWidth defines the width required for rendering. If not provided the rendering canvas' width is used
  12655. * @param requiredHeight defines the height required for rendering. If not provided the rendering canvas' height is used
  12656. */
  12657. Engine.prototype.setViewport = function (viewport, requiredWidth, requiredHeight) {
  12658. var width = requiredWidth || this.getRenderWidth();
  12659. var height = requiredHeight || this.getRenderHeight();
  12660. var x = viewport.x || 0;
  12661. var y = viewport.y || 0;
  12662. this._cachedViewport = viewport;
  12663. this._viewport(x * width, y * height, width * viewport.width, height * viewport.height);
  12664. };
  12665. /**
  12666. * Directly set the WebGL Viewport
  12667. * @param x defines the x coordinate of the viewport (in screen space)
  12668. * @param y defines the y coordinate of the viewport (in screen space)
  12669. * @param width defines the width of the viewport (in screen space)
  12670. * @param height defines the height of the viewport (in screen space)
  12671. * @return the current viewport Object (if any) that is being replaced by this call. You can restore this viewport later on to go back to the original state
  12672. */
  12673. Engine.prototype.setDirectViewport = function (x, y, width, height) {
  12674. var currentViewport = this._cachedViewport;
  12675. this._cachedViewport = null;
  12676. this._viewport(x, y, width, height);
  12677. return currentViewport;
  12678. };
  12679. /**
  12680. * Begin a new frame
  12681. */
  12682. Engine.prototype.beginFrame = function () {
  12683. this.onBeginFrameObservable.notifyObservers(this);
  12684. this._measureFps();
  12685. };
  12686. /**
  12687. * Enf the current frame
  12688. */
  12689. Engine.prototype.endFrame = function () {
  12690. // Force a flush in case we are using a bad OS.
  12691. if (this._badOS) {
  12692. this.flushFramebuffer();
  12693. }
  12694. // Submit frame to the vr device, if enabled
  12695. if (this._vrDisplay && this._vrDisplay.isPresenting) {
  12696. // TODO: We should only submit the frame if we read frameData successfully.
  12697. this._vrDisplay.submitFrame();
  12698. }
  12699. this.onEndFrameObservable.notifyObservers(this);
  12700. };
  12701. /**
  12702. * Resize the view according to the canvas' size
  12703. */
  12704. Engine.prototype.resize = function () {
  12705. // We're not resizing the size of the canvas while in VR mode & presenting
  12706. if (!(this._vrDisplay && this._vrDisplay.isPresenting)) {
  12707. var width = this._renderingCanvas ? this._renderingCanvas.clientWidth : window.innerWidth;
  12708. var height = this._renderingCanvas ? this._renderingCanvas.clientHeight : window.innerHeight;
  12709. this.setSize(width / this._hardwareScalingLevel, height / this._hardwareScalingLevel);
  12710. }
  12711. };
  12712. /**
  12713. * Force a specific size of the canvas
  12714. * @param width defines the new canvas' width
  12715. * @param height defines the new canvas' height
  12716. */
  12717. Engine.prototype.setSize = function (width, height) {
  12718. if (!this._renderingCanvas) {
  12719. return;
  12720. }
  12721. if (this._renderingCanvas.width === width && this._renderingCanvas.height === height) {
  12722. return;
  12723. }
  12724. this._renderingCanvas.width = width;
  12725. this._renderingCanvas.height = height;
  12726. for (var index = 0; index < this.scenes.length; index++) {
  12727. var scene = this.scenes[index];
  12728. for (var camIndex = 0; camIndex < scene.cameras.length; camIndex++) {
  12729. var cam = scene.cameras[camIndex];
  12730. cam._currentRenderId = 0;
  12731. }
  12732. }
  12733. if (this.onResizeObservable.hasObservers) {
  12734. this.onResizeObservable.notifyObservers(this);
  12735. }
  12736. };
  12737. // WebVR functions
  12738. /**
  12739. * Gets a boolean indicating if a webVR device was detected
  12740. * @returns true if a webVR device was detected
  12741. */
  12742. Engine.prototype.isVRDevicePresent = function () {
  12743. return !!this._vrDisplay;
  12744. };
  12745. /**
  12746. * Gets the current webVR device
  12747. * @returns the current webVR device (or null)
  12748. */
  12749. Engine.prototype.getVRDevice = function () {
  12750. return this._vrDisplay;
  12751. };
  12752. /**
  12753. * Initializes a webVR display and starts listening to display change events
  12754. * The onVRDisplayChangedObservable will be notified upon these changes
  12755. * @returns The onVRDisplayChangedObservable
  12756. */
  12757. Engine.prototype.initWebVR = function () {
  12758. this.initWebVRAsync();
  12759. return this.onVRDisplayChangedObservable;
  12760. };
  12761. /**
  12762. * Initializes a webVR display and starts listening to display change events
  12763. * The onVRDisplayChangedObservable will be notified upon these changes
  12764. * @returns A promise containing a VRDisplay and if vr is supported
  12765. */
  12766. Engine.prototype.initWebVRAsync = function () {
  12767. var _this = this;
  12768. var notifyObservers = function () {
  12769. var eventArgs = {
  12770. vrDisplay: _this._vrDisplay,
  12771. vrSupported: _this._vrSupported
  12772. };
  12773. _this.onVRDisplayChangedObservable.notifyObservers(eventArgs);
  12774. _this._webVRInitPromise = new Promise(function (res) { res(eventArgs); });
  12775. };
  12776. if (!this._onVrDisplayConnect) {
  12777. this._onVrDisplayConnect = function (event) {
  12778. _this._vrDisplay = event.display;
  12779. notifyObservers();
  12780. };
  12781. this._onVrDisplayDisconnect = function () {
  12782. _this._vrDisplay.cancelAnimationFrame(_this._frameHandler);
  12783. _this._vrDisplay = undefined;
  12784. _this._frameHandler = BABYLON.Tools.QueueNewFrame(_this._bindedRenderFunction);
  12785. notifyObservers();
  12786. };
  12787. this._onVrDisplayPresentChange = function () {
  12788. _this._vrExclusivePointerMode = _this._vrDisplay && _this._vrDisplay.isPresenting;
  12789. };
  12790. window.addEventListener('vrdisplayconnect', this._onVrDisplayConnect);
  12791. window.addEventListener('vrdisplaydisconnect', this._onVrDisplayDisconnect);
  12792. window.addEventListener('vrdisplaypresentchange', this._onVrDisplayPresentChange);
  12793. }
  12794. this._webVRInitPromise = this._webVRInitPromise || this._getVRDisplaysAsync();
  12795. this._webVRInitPromise.then(notifyObservers);
  12796. return this._webVRInitPromise;
  12797. };
  12798. /**
  12799. * Call this function to switch to webVR mode
  12800. * Will do nothing if webVR is not supported or if there is no webVR device
  12801. * @see http://doc.babylonjs.com/how_to/webvr_camera
  12802. */
  12803. Engine.prototype.enableVR = function () {
  12804. var _this = this;
  12805. if (this._vrDisplay && !this._vrDisplay.isPresenting) {
  12806. var onResolved = function () {
  12807. _this.onVRRequestPresentComplete.notifyObservers(true);
  12808. _this._onVRFullScreenTriggered();
  12809. };
  12810. var onRejected = function () {
  12811. _this.onVRRequestPresentComplete.notifyObservers(false);
  12812. };
  12813. this.onVRRequestPresentStart.notifyObservers(this);
  12814. this._vrDisplay.requestPresent([{ source: this.getRenderingCanvas() }]).then(onResolved).catch(onRejected);
  12815. }
  12816. };
  12817. /**
  12818. * Call this function to leave webVR mode
  12819. * Will do nothing if webVR is not supported or if there is no webVR device
  12820. * @see http://doc.babylonjs.com/how_to/webvr_camera
  12821. */
  12822. Engine.prototype.disableVR = function () {
  12823. if (this._vrDisplay && this._vrDisplay.isPresenting) {
  12824. this._vrDisplay.exitPresent().then(this._onVRFullScreenTriggered).catch(this._onVRFullScreenTriggered);
  12825. }
  12826. };
  12827. Engine.prototype._getVRDisplaysAsync = function () {
  12828. var _this = this;
  12829. return new Promise(function (res, rej) {
  12830. if (navigator.getVRDisplays) {
  12831. navigator.getVRDisplays().then(function (devices) {
  12832. _this._vrSupported = true;
  12833. // note that devices may actually be an empty array. This is fine;
  12834. // we expect this._vrDisplay to be undefined in this case.
  12835. _this._vrDisplay = devices[0];
  12836. res({
  12837. vrDisplay: _this._vrDisplay,
  12838. vrSupported: _this._vrSupported
  12839. });
  12840. });
  12841. }
  12842. else {
  12843. _this._vrDisplay = undefined;
  12844. _this._vrSupported = false;
  12845. res({
  12846. vrDisplay: _this._vrDisplay,
  12847. vrSupported: _this._vrSupported
  12848. });
  12849. }
  12850. });
  12851. };
  12852. /**
  12853. * Binds the frame buffer to the specified texture.
  12854. * @param texture The texture to render to or null for the default canvas
  12855. * @param faceIndex The face of the texture to render to in case of cube texture
  12856. * @param requiredWidth The width of the target to render to
  12857. * @param requiredHeight The height of the target to render to
  12858. * @param forceFullscreenViewport Forces the viewport to be the entire texture/screen if true
  12859. * @param depthStencilTexture The depth stencil texture to use to render
  12860. * @param lodLevel defines le lod level to bind to the frame buffer
  12861. */
  12862. Engine.prototype.bindFramebuffer = function (texture, faceIndex, requiredWidth, requiredHeight, forceFullscreenViewport, depthStencilTexture, lodLevel) {
  12863. if (lodLevel === void 0) { lodLevel = 0; }
  12864. if (this._currentRenderTarget) {
  12865. this.unBindFramebuffer(this._currentRenderTarget);
  12866. }
  12867. this._currentRenderTarget = texture;
  12868. this.bindUnboundFramebuffer(texture._MSAAFramebuffer ? texture._MSAAFramebuffer : texture._framebuffer);
  12869. var gl = this._gl;
  12870. if (texture.isCube) {
  12871. if (faceIndex === undefined) {
  12872. faceIndex = 0;
  12873. }
  12874. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, texture._webGLTexture, lodLevel);
  12875. if (depthStencilTexture) {
  12876. if (depthStencilTexture._generateStencilBuffer) {
  12877. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_STENCIL_ATTACHMENT, gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, depthStencilTexture._webGLTexture, lodLevel);
  12878. }
  12879. else {
  12880. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_ATTACHMENT, gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, depthStencilTexture._webGLTexture, lodLevel);
  12881. }
  12882. }
  12883. }
  12884. if (this._cachedViewport && !forceFullscreenViewport) {
  12885. this.setViewport(this._cachedViewport, requiredWidth, requiredHeight);
  12886. }
  12887. else {
  12888. if (!requiredWidth) {
  12889. requiredWidth = texture.width;
  12890. if (lodLevel) {
  12891. requiredWidth = requiredWidth / Math.pow(2, lodLevel);
  12892. }
  12893. }
  12894. if (!requiredHeight) {
  12895. requiredHeight = texture.height;
  12896. if (lodLevel) {
  12897. requiredHeight = requiredHeight / Math.pow(2, lodLevel);
  12898. }
  12899. }
  12900. this._viewport(0, 0, requiredWidth, requiredHeight);
  12901. }
  12902. this.wipeCaches();
  12903. };
  12904. Engine.prototype.bindUnboundFramebuffer = function (framebuffer) {
  12905. if (this._currentFramebuffer !== framebuffer) {
  12906. this._gl.bindFramebuffer(this._gl.FRAMEBUFFER, framebuffer);
  12907. this._currentFramebuffer = framebuffer;
  12908. }
  12909. };
  12910. /**
  12911. * Unbind the current render target texture from the webGL context
  12912. * @param texture defines the render target texture to unbind
  12913. * @param disableGenerateMipMaps defines a boolean indicating that mipmaps must not be generated
  12914. * @param onBeforeUnbind defines a function which will be called before the effective unbind
  12915. */
  12916. Engine.prototype.unBindFramebuffer = function (texture, disableGenerateMipMaps, onBeforeUnbind) {
  12917. if (disableGenerateMipMaps === void 0) { disableGenerateMipMaps = false; }
  12918. this._currentRenderTarget = null;
  12919. // If MSAA, we need to bitblt back to main texture
  12920. var gl = this._gl;
  12921. if (texture._MSAAFramebuffer) {
  12922. gl.bindFramebuffer(gl.READ_FRAMEBUFFER, texture._MSAAFramebuffer);
  12923. gl.bindFramebuffer(gl.DRAW_FRAMEBUFFER, texture._framebuffer);
  12924. gl.blitFramebuffer(0, 0, texture.width, texture.height, 0, 0, texture.width, texture.height, gl.COLOR_BUFFER_BIT, gl.NEAREST);
  12925. }
  12926. if (texture.generateMipMaps && !disableGenerateMipMaps && !texture.isCube) {
  12927. this._bindTextureDirectly(gl.TEXTURE_2D, texture, true);
  12928. gl.generateMipmap(gl.TEXTURE_2D);
  12929. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  12930. }
  12931. if (onBeforeUnbind) {
  12932. if (texture._MSAAFramebuffer) {
  12933. // Bind the correct framebuffer
  12934. this.bindUnboundFramebuffer(texture._framebuffer);
  12935. }
  12936. onBeforeUnbind();
  12937. }
  12938. this.bindUnboundFramebuffer(null);
  12939. };
  12940. /**
  12941. * Unbind a list of render target textures from the webGL context
  12942. * This is used only when drawBuffer extension or webGL2 are active
  12943. * @param textures defines the render target textures to unbind
  12944. * @param disableGenerateMipMaps defines a boolean indicating that mipmaps must not be generated
  12945. * @param onBeforeUnbind defines a function which will be called before the effective unbind
  12946. */
  12947. Engine.prototype.unBindMultiColorAttachmentFramebuffer = function (textures, disableGenerateMipMaps, onBeforeUnbind) {
  12948. if (disableGenerateMipMaps === void 0) { disableGenerateMipMaps = false; }
  12949. this._currentRenderTarget = null;
  12950. // If MSAA, we need to bitblt back to main texture
  12951. var gl = this._gl;
  12952. if (textures[0]._MSAAFramebuffer) {
  12953. gl.bindFramebuffer(gl.READ_FRAMEBUFFER, textures[0]._MSAAFramebuffer);
  12954. gl.bindFramebuffer(gl.DRAW_FRAMEBUFFER, textures[0]._framebuffer);
  12955. var attachments = textures[0]._attachments;
  12956. if (!attachments) {
  12957. attachments = new Array(textures.length);
  12958. textures[0]._attachments = attachments;
  12959. }
  12960. for (var i = 0; i < textures.length; i++) {
  12961. var texture = textures[i];
  12962. for (var j = 0; j < attachments.length; j++) {
  12963. attachments[j] = gl.NONE;
  12964. }
  12965. attachments[i] = gl[this.webGLVersion > 1 ? "COLOR_ATTACHMENT" + i : "COLOR_ATTACHMENT" + i + "_WEBGL"];
  12966. gl.readBuffer(attachments[i]);
  12967. gl.drawBuffers(attachments);
  12968. gl.blitFramebuffer(0, 0, texture.width, texture.height, 0, 0, texture.width, texture.height, gl.COLOR_BUFFER_BIT, gl.NEAREST);
  12969. }
  12970. for (var i = 0; i < attachments.length; i++) {
  12971. attachments[i] = gl[this.webGLVersion > 1 ? "COLOR_ATTACHMENT" + i : "COLOR_ATTACHMENT" + i + "_WEBGL"];
  12972. }
  12973. gl.drawBuffers(attachments);
  12974. }
  12975. for (var i = 0; i < textures.length; i++) {
  12976. var texture = textures[i];
  12977. if (texture.generateMipMaps && !disableGenerateMipMaps && !texture.isCube) {
  12978. this._bindTextureDirectly(gl.TEXTURE_2D, texture);
  12979. gl.generateMipmap(gl.TEXTURE_2D);
  12980. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  12981. }
  12982. }
  12983. if (onBeforeUnbind) {
  12984. if (textures[0]._MSAAFramebuffer) {
  12985. // Bind the correct framebuffer
  12986. this.bindUnboundFramebuffer(textures[0]._framebuffer);
  12987. }
  12988. onBeforeUnbind();
  12989. }
  12990. this.bindUnboundFramebuffer(null);
  12991. };
  12992. /**
  12993. * Force the mipmap generation for the given render target texture
  12994. * @param texture defines the render target texture to use
  12995. */
  12996. Engine.prototype.generateMipMapsForCubemap = function (texture) {
  12997. if (texture.generateMipMaps) {
  12998. var gl = this._gl;
  12999. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  13000. gl.generateMipmap(gl.TEXTURE_CUBE_MAP);
  13001. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  13002. }
  13003. };
  13004. /**
  13005. * Force a webGL flush (ie. a flush of all waiting webGL commands)
  13006. */
  13007. Engine.prototype.flushFramebuffer = function () {
  13008. this._gl.flush();
  13009. };
  13010. /**
  13011. * Unbind the current render target and bind the default framebuffer
  13012. */
  13013. Engine.prototype.restoreDefaultFramebuffer = function () {
  13014. if (this._currentRenderTarget) {
  13015. this.unBindFramebuffer(this._currentRenderTarget);
  13016. }
  13017. else {
  13018. this.bindUnboundFramebuffer(null);
  13019. }
  13020. if (this._cachedViewport) {
  13021. this.setViewport(this._cachedViewport);
  13022. }
  13023. this.wipeCaches();
  13024. };
  13025. // UBOs
  13026. /**
  13027. * Create an uniform buffer
  13028. * @see http://doc.babylonjs.com/features/webgl2#uniform-buffer-objets
  13029. * @param elements defines the content of the uniform buffer
  13030. * @returns the webGL uniform buffer
  13031. */
  13032. Engine.prototype.createUniformBuffer = function (elements) {
  13033. var ubo = this._gl.createBuffer();
  13034. if (!ubo) {
  13035. throw new Error("Unable to create uniform buffer");
  13036. }
  13037. this.bindUniformBuffer(ubo);
  13038. if (elements instanceof Float32Array) {
  13039. this._gl.bufferData(this._gl.UNIFORM_BUFFER, elements, this._gl.STATIC_DRAW);
  13040. }
  13041. else {
  13042. this._gl.bufferData(this._gl.UNIFORM_BUFFER, new Float32Array(elements), this._gl.STATIC_DRAW);
  13043. }
  13044. this.bindUniformBuffer(null);
  13045. ubo.references = 1;
  13046. return ubo;
  13047. };
  13048. /**
  13049. * Create a dynamic uniform buffer
  13050. * @see http://doc.babylonjs.com/features/webgl2#uniform-buffer-objets
  13051. * @param elements defines the content of the uniform buffer
  13052. * @returns the webGL uniform buffer
  13053. */
  13054. Engine.prototype.createDynamicUniformBuffer = function (elements) {
  13055. var ubo = this._gl.createBuffer();
  13056. if (!ubo) {
  13057. throw new Error("Unable to create dynamic uniform buffer");
  13058. }
  13059. this.bindUniformBuffer(ubo);
  13060. if (elements instanceof Float32Array) {
  13061. this._gl.bufferData(this._gl.UNIFORM_BUFFER, elements, this._gl.DYNAMIC_DRAW);
  13062. }
  13063. else {
  13064. this._gl.bufferData(this._gl.UNIFORM_BUFFER, new Float32Array(elements), this._gl.DYNAMIC_DRAW);
  13065. }
  13066. this.bindUniformBuffer(null);
  13067. ubo.references = 1;
  13068. return ubo;
  13069. };
  13070. /**
  13071. * Update an existing uniform buffer
  13072. * @see http://doc.babylonjs.com/features/webgl2#uniform-buffer-objets
  13073. * @param uniformBuffer defines the target uniform buffer
  13074. * @param elements defines the content to update
  13075. * @param offset defines the offset in the uniform buffer where update should start
  13076. * @param count defines the size of the data to update
  13077. */
  13078. Engine.prototype.updateUniformBuffer = function (uniformBuffer, elements, offset, count) {
  13079. this.bindUniformBuffer(uniformBuffer);
  13080. if (offset === undefined) {
  13081. offset = 0;
  13082. }
  13083. if (count === undefined) {
  13084. if (elements instanceof Float32Array) {
  13085. this._gl.bufferSubData(this._gl.UNIFORM_BUFFER, offset, elements);
  13086. }
  13087. else {
  13088. this._gl.bufferSubData(this._gl.UNIFORM_BUFFER, offset, new Float32Array(elements));
  13089. }
  13090. }
  13091. else {
  13092. if (elements instanceof Float32Array) {
  13093. this._gl.bufferSubData(this._gl.UNIFORM_BUFFER, 0, elements.subarray(offset, offset + count));
  13094. }
  13095. else {
  13096. this._gl.bufferSubData(this._gl.UNIFORM_BUFFER, 0, new Float32Array(elements).subarray(offset, offset + count));
  13097. }
  13098. }
  13099. this.bindUniformBuffer(null);
  13100. };
  13101. // VBOs
  13102. Engine.prototype._resetVertexBufferBinding = function () {
  13103. this.bindArrayBuffer(null);
  13104. this._cachedVertexBuffers = null;
  13105. };
  13106. /**
  13107. * Creates a vertex buffer
  13108. * @param data the data for the vertex buffer
  13109. * @returns the new WebGL static buffer
  13110. */
  13111. Engine.prototype.createVertexBuffer = function (data) {
  13112. var vbo = this._gl.createBuffer();
  13113. if (!vbo) {
  13114. throw new Error("Unable to create vertex buffer");
  13115. }
  13116. this.bindArrayBuffer(vbo);
  13117. if (data instanceof Array) {
  13118. this._gl.bufferData(this._gl.ARRAY_BUFFER, new Float32Array(data), this._gl.STATIC_DRAW);
  13119. }
  13120. else {
  13121. this._gl.bufferData(this._gl.ARRAY_BUFFER, data, this._gl.STATIC_DRAW);
  13122. }
  13123. this._resetVertexBufferBinding();
  13124. vbo.references = 1;
  13125. return vbo;
  13126. };
  13127. /**
  13128. * Creates a dynamic vertex buffer
  13129. * @param data the data for the dynamic vertex buffer
  13130. * @returns the new WebGL dynamic buffer
  13131. */
  13132. Engine.prototype.createDynamicVertexBuffer = function (data) {
  13133. var vbo = this._gl.createBuffer();
  13134. if (!vbo) {
  13135. throw new Error("Unable to create dynamic vertex buffer");
  13136. }
  13137. this.bindArrayBuffer(vbo);
  13138. if (data instanceof Array) {
  13139. this._gl.bufferData(this._gl.ARRAY_BUFFER, new Float32Array(data), this._gl.DYNAMIC_DRAW);
  13140. }
  13141. else {
  13142. this._gl.bufferData(this._gl.ARRAY_BUFFER, data, this._gl.DYNAMIC_DRAW);
  13143. }
  13144. this._resetVertexBufferBinding();
  13145. vbo.references = 1;
  13146. return vbo;
  13147. };
  13148. /**
  13149. * Update a dynamic index buffer
  13150. * @param indexBuffer defines the target index buffer
  13151. * @param indices defines the data to update
  13152. * @param offset defines the offset in the target index buffer where update should start
  13153. */
  13154. Engine.prototype.updateDynamicIndexBuffer = function (indexBuffer, indices, offset) {
  13155. if (offset === void 0) { offset = 0; }
  13156. // Force cache update
  13157. this._currentBoundBuffer[this._gl.ELEMENT_ARRAY_BUFFER] = null;
  13158. this.bindIndexBuffer(indexBuffer);
  13159. var arrayBuffer;
  13160. if (indices instanceof Uint16Array || indices instanceof Uint32Array) {
  13161. arrayBuffer = indices;
  13162. }
  13163. else {
  13164. arrayBuffer = indexBuffer.is32Bits ? new Uint32Array(indices) : new Uint16Array(indices);
  13165. }
  13166. this._gl.bufferData(this._gl.ELEMENT_ARRAY_BUFFER, arrayBuffer, this._gl.DYNAMIC_DRAW);
  13167. this._resetIndexBufferBinding();
  13168. };
  13169. /**
  13170. * Updates a dynamic vertex buffer.
  13171. * @param vertexBuffer the vertex buffer to update
  13172. * @param data the data used to update the vertex buffer
  13173. * @param byteOffset the byte offset of the data
  13174. * @param byteLength the byte length of the data
  13175. */
  13176. Engine.prototype.updateDynamicVertexBuffer = function (vertexBuffer, data, byteOffset, byteLength) {
  13177. this.bindArrayBuffer(vertexBuffer);
  13178. if (byteOffset === undefined) {
  13179. byteOffset = 0;
  13180. }
  13181. if (byteLength === undefined) {
  13182. if (data instanceof Array) {
  13183. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, byteOffset, new Float32Array(data));
  13184. }
  13185. else {
  13186. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, byteOffset, data);
  13187. }
  13188. }
  13189. else {
  13190. if (data instanceof Array) {
  13191. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, 0, new Float32Array(data).subarray(byteOffset, byteOffset + byteLength));
  13192. }
  13193. else {
  13194. if (data instanceof ArrayBuffer) {
  13195. data = new Uint8Array(data, byteOffset, byteLength);
  13196. }
  13197. else {
  13198. data = new Uint8Array(data.buffer, data.byteOffset + byteOffset, byteLength);
  13199. }
  13200. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, 0, data);
  13201. }
  13202. }
  13203. this._resetVertexBufferBinding();
  13204. };
  13205. Engine.prototype._resetIndexBufferBinding = function () {
  13206. this.bindIndexBuffer(null);
  13207. this._cachedIndexBuffer = null;
  13208. };
  13209. /**
  13210. * Creates a new index buffer
  13211. * @param indices defines the content of the index buffer
  13212. * @param updatable defines if the index buffer must be updatable
  13213. * @returns a new webGL buffer
  13214. */
  13215. Engine.prototype.createIndexBuffer = function (indices, updatable) {
  13216. var vbo = this._gl.createBuffer();
  13217. if (!vbo) {
  13218. throw new Error("Unable to create index buffer");
  13219. }
  13220. this.bindIndexBuffer(vbo);
  13221. // Check for 32 bits indices
  13222. var arrayBuffer;
  13223. var need32Bits = false;
  13224. if (indices instanceof Uint16Array) {
  13225. arrayBuffer = indices;
  13226. }
  13227. else {
  13228. //check 32 bit support
  13229. if (this._caps.uintIndices) {
  13230. if (indices instanceof Uint32Array) {
  13231. arrayBuffer = indices;
  13232. need32Bits = true;
  13233. }
  13234. else {
  13235. //number[] or Int32Array, check if 32 bit is necessary
  13236. for (var index = 0; index < indices.length; index++) {
  13237. if (indices[index] > 65535) {
  13238. need32Bits = true;
  13239. break;
  13240. }
  13241. }
  13242. arrayBuffer = need32Bits ? new Uint32Array(indices) : new Uint16Array(indices);
  13243. }
  13244. }
  13245. else {
  13246. //no 32 bit support, force conversion to 16 bit (values greater 16 bit are lost)
  13247. arrayBuffer = new Uint16Array(indices);
  13248. }
  13249. }
  13250. this._gl.bufferData(this._gl.ELEMENT_ARRAY_BUFFER, arrayBuffer, updatable ? this._gl.DYNAMIC_DRAW : this._gl.STATIC_DRAW);
  13251. this._resetIndexBufferBinding();
  13252. vbo.references = 1;
  13253. vbo.is32Bits = need32Bits;
  13254. return vbo;
  13255. };
  13256. /**
  13257. * Bind a webGL buffer to the webGL context
  13258. * @param buffer defines the buffer to bind
  13259. */
  13260. Engine.prototype.bindArrayBuffer = function (buffer) {
  13261. if (!this._vaoRecordInProgress) {
  13262. this._unbindVertexArrayObject();
  13263. }
  13264. this.bindBuffer(buffer, this._gl.ARRAY_BUFFER);
  13265. };
  13266. /**
  13267. * Bind an uniform buffer to the current webGL context
  13268. * @param buffer defines the buffer to bind
  13269. */
  13270. Engine.prototype.bindUniformBuffer = function (buffer) {
  13271. this._gl.bindBuffer(this._gl.UNIFORM_BUFFER, buffer);
  13272. };
  13273. /**
  13274. * Bind a buffer to the current webGL context at a given location
  13275. * @param buffer defines the buffer to bind
  13276. * @param location defines the index where to bind the buffer
  13277. */
  13278. Engine.prototype.bindUniformBufferBase = function (buffer, location) {
  13279. this._gl.bindBufferBase(this._gl.UNIFORM_BUFFER, location, buffer);
  13280. };
  13281. /**
  13282. * Bind a specific block at a given index in a specific shader program
  13283. * @param shaderProgram defines the shader program
  13284. * @param blockName defines the block name
  13285. * @param index defines the index where to bind the block
  13286. */
  13287. Engine.prototype.bindUniformBlock = function (shaderProgram, blockName, index) {
  13288. var uniformLocation = this._gl.getUniformBlockIndex(shaderProgram, blockName);
  13289. this._gl.uniformBlockBinding(shaderProgram, uniformLocation, index);
  13290. };
  13291. ;
  13292. Engine.prototype.bindIndexBuffer = function (buffer) {
  13293. if (!this._vaoRecordInProgress) {
  13294. this._unbindVertexArrayObject();
  13295. }
  13296. this.bindBuffer(buffer, this._gl.ELEMENT_ARRAY_BUFFER);
  13297. };
  13298. Engine.prototype.bindBuffer = function (buffer, target) {
  13299. if (this._vaoRecordInProgress || this._currentBoundBuffer[target] !== buffer) {
  13300. this._gl.bindBuffer(target, buffer);
  13301. this._currentBoundBuffer[target] = buffer;
  13302. }
  13303. };
  13304. /**
  13305. * update the bound buffer with the given data
  13306. * @param data defines the data to update
  13307. */
  13308. Engine.prototype.updateArrayBuffer = function (data) {
  13309. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, 0, data);
  13310. };
  13311. Engine.prototype._vertexAttribPointer = function (buffer, indx, size, type, normalized, stride, offset) {
  13312. var pointer = this._currentBufferPointers[indx];
  13313. var changed = false;
  13314. if (!pointer.active) {
  13315. changed = true;
  13316. pointer.active = true;
  13317. pointer.index = indx;
  13318. pointer.size = size;
  13319. pointer.type = type;
  13320. pointer.normalized = normalized;
  13321. pointer.stride = stride;
  13322. pointer.offset = offset;
  13323. pointer.buffer = buffer;
  13324. }
  13325. else {
  13326. if (pointer.buffer !== buffer) {
  13327. pointer.buffer = buffer;
  13328. changed = true;
  13329. }
  13330. if (pointer.size !== size) {
  13331. pointer.size = size;
  13332. changed = true;
  13333. }
  13334. if (pointer.type !== type) {
  13335. pointer.type = type;
  13336. changed = true;
  13337. }
  13338. if (pointer.normalized !== normalized) {
  13339. pointer.normalized = normalized;
  13340. changed = true;
  13341. }
  13342. if (pointer.stride !== stride) {
  13343. pointer.stride = stride;
  13344. changed = true;
  13345. }
  13346. if (pointer.offset !== offset) {
  13347. pointer.offset = offset;
  13348. changed = true;
  13349. }
  13350. }
  13351. if (changed || this._vaoRecordInProgress) {
  13352. this.bindArrayBuffer(buffer);
  13353. this._gl.vertexAttribPointer(indx, size, type, normalized, stride, offset);
  13354. }
  13355. };
  13356. Engine.prototype._bindIndexBufferWithCache = function (indexBuffer) {
  13357. if (indexBuffer == null) {
  13358. return;
  13359. }
  13360. if (this._cachedIndexBuffer !== indexBuffer) {
  13361. this._cachedIndexBuffer = indexBuffer;
  13362. this.bindIndexBuffer(indexBuffer);
  13363. this._uintIndicesCurrentlySet = indexBuffer.is32Bits;
  13364. }
  13365. };
  13366. Engine.prototype._bindVertexBuffersAttributes = function (vertexBuffers, effect) {
  13367. var attributes = effect.getAttributesNames();
  13368. if (!this._vaoRecordInProgress) {
  13369. this._unbindVertexArrayObject();
  13370. }
  13371. this.unbindAllAttributes();
  13372. for (var index = 0; index < attributes.length; index++) {
  13373. var order = effect.getAttributeLocation(index);
  13374. if (order >= 0) {
  13375. var vertexBuffer = vertexBuffers[attributes[index]];
  13376. if (!vertexBuffer) {
  13377. continue;
  13378. }
  13379. this._gl.enableVertexAttribArray(order);
  13380. if (!this._vaoRecordInProgress) {
  13381. this._vertexAttribArraysEnabled[order] = true;
  13382. }
  13383. var buffer = vertexBuffer.getBuffer();
  13384. if (buffer) {
  13385. this._vertexAttribPointer(buffer, order, vertexBuffer.getSize(), vertexBuffer.type, vertexBuffer.normalized, vertexBuffer.byteStride, vertexBuffer.byteOffset);
  13386. if (vertexBuffer.getIsInstanced()) {
  13387. this._gl.vertexAttribDivisor(order, vertexBuffer.getInstanceDivisor());
  13388. if (!this._vaoRecordInProgress) {
  13389. this._currentInstanceLocations.push(order);
  13390. this._currentInstanceBuffers.push(buffer);
  13391. }
  13392. }
  13393. }
  13394. }
  13395. }
  13396. };
  13397. /**
  13398. * Records a vertex array object
  13399. * @see http://doc.babylonjs.com/features/webgl2#vertex-array-objects
  13400. * @param vertexBuffers defines the list of vertex buffers to store
  13401. * @param indexBuffer defines the index buffer to store
  13402. * @param effect defines the effect to store
  13403. * @returns the new vertex array object
  13404. */
  13405. Engine.prototype.recordVertexArrayObject = function (vertexBuffers, indexBuffer, effect) {
  13406. var vao = this._gl.createVertexArray();
  13407. this._vaoRecordInProgress = true;
  13408. this._gl.bindVertexArray(vao);
  13409. this._mustWipeVertexAttributes = true;
  13410. this._bindVertexBuffersAttributes(vertexBuffers, effect);
  13411. this.bindIndexBuffer(indexBuffer);
  13412. this._vaoRecordInProgress = false;
  13413. this._gl.bindVertexArray(null);
  13414. return vao;
  13415. };
  13416. /**
  13417. * Bind a specific vertex array object
  13418. * @see http://doc.babylonjs.com/features/webgl2#vertex-array-objects
  13419. * @param vertexArrayObject defines the vertex array object to bind
  13420. * @param indexBuffer defines the index buffer to bind
  13421. */
  13422. Engine.prototype.bindVertexArrayObject = function (vertexArrayObject, indexBuffer) {
  13423. if (this._cachedVertexArrayObject !== vertexArrayObject) {
  13424. this._cachedVertexArrayObject = vertexArrayObject;
  13425. this._gl.bindVertexArray(vertexArrayObject);
  13426. this._cachedVertexBuffers = null;
  13427. this._cachedIndexBuffer = null;
  13428. this._uintIndicesCurrentlySet = indexBuffer != null && indexBuffer.is32Bits;
  13429. this._mustWipeVertexAttributes = true;
  13430. }
  13431. };
  13432. /**
  13433. * Bind webGl buffers directly to the webGL context
  13434. * @param vertexBuffer defines the vertex buffer to bind
  13435. * @param indexBuffer defines the index buffer to bind
  13436. * @param vertexDeclaration defines the vertex declaration to use with the vertex buffer
  13437. * @param vertexStrideSize defines the vertex stride of the vertex buffer
  13438. * @param effect defines the effect associated with the vertex buffer
  13439. */
  13440. Engine.prototype.bindBuffersDirectly = function (vertexBuffer, indexBuffer, vertexDeclaration, vertexStrideSize, effect) {
  13441. if (this._cachedVertexBuffers !== vertexBuffer || this._cachedEffectForVertexBuffers !== effect) {
  13442. this._cachedVertexBuffers = vertexBuffer;
  13443. this._cachedEffectForVertexBuffers = effect;
  13444. var attributesCount = effect.getAttributesCount();
  13445. this._unbindVertexArrayObject();
  13446. this.unbindAllAttributes();
  13447. var offset = 0;
  13448. for (var index = 0; index < attributesCount; index++) {
  13449. if (index < vertexDeclaration.length) {
  13450. var order = effect.getAttributeLocation(index);
  13451. if (order >= 0) {
  13452. this._gl.enableVertexAttribArray(order);
  13453. this._vertexAttribArraysEnabled[order] = true;
  13454. this._vertexAttribPointer(vertexBuffer, order, vertexDeclaration[index], this._gl.FLOAT, false, vertexStrideSize, offset);
  13455. }
  13456. offset += vertexDeclaration[index] * 4;
  13457. }
  13458. }
  13459. }
  13460. this._bindIndexBufferWithCache(indexBuffer);
  13461. };
  13462. Engine.prototype._unbindVertexArrayObject = function () {
  13463. if (!this._cachedVertexArrayObject) {
  13464. return;
  13465. }
  13466. this._cachedVertexArrayObject = null;
  13467. this._gl.bindVertexArray(null);
  13468. };
  13469. /**
  13470. * Bind a list of vertex buffers to the webGL context
  13471. * @param vertexBuffers defines the list of vertex buffers to bind
  13472. * @param indexBuffer defines the index buffer to bind
  13473. * @param effect defines the effect associated with the vertex buffers
  13474. */
  13475. Engine.prototype.bindBuffers = function (vertexBuffers, indexBuffer, effect) {
  13476. if (this._cachedVertexBuffers !== vertexBuffers || this._cachedEffectForVertexBuffers !== effect) {
  13477. this._cachedVertexBuffers = vertexBuffers;
  13478. this._cachedEffectForVertexBuffers = effect;
  13479. this._bindVertexBuffersAttributes(vertexBuffers, effect);
  13480. }
  13481. this._bindIndexBufferWithCache(indexBuffer);
  13482. };
  13483. /**
  13484. * Unbind all instance attributes
  13485. */
  13486. Engine.prototype.unbindInstanceAttributes = function () {
  13487. var boundBuffer;
  13488. for (var i = 0, ul = this._currentInstanceLocations.length; i < ul; i++) {
  13489. var instancesBuffer = this._currentInstanceBuffers[i];
  13490. if (boundBuffer != instancesBuffer && instancesBuffer.references) {
  13491. boundBuffer = instancesBuffer;
  13492. this.bindArrayBuffer(instancesBuffer);
  13493. }
  13494. var offsetLocation = this._currentInstanceLocations[i];
  13495. this._gl.vertexAttribDivisor(offsetLocation, 0);
  13496. }
  13497. this._currentInstanceBuffers.length = 0;
  13498. this._currentInstanceLocations.length = 0;
  13499. };
  13500. /**
  13501. * Release and free the memory of a vertex array object
  13502. * @param vao defines the vertex array object to delete
  13503. */
  13504. Engine.prototype.releaseVertexArrayObject = function (vao) {
  13505. this._gl.deleteVertexArray(vao);
  13506. };
  13507. /** @hidden */
  13508. Engine.prototype._releaseBuffer = function (buffer) {
  13509. buffer.references--;
  13510. if (buffer.references === 0) {
  13511. this._gl.deleteBuffer(buffer);
  13512. return true;
  13513. }
  13514. return false;
  13515. };
  13516. /**
  13517. * Creates a webGL buffer to use with instanciation
  13518. * @param capacity defines the size of the buffer
  13519. * @returns the webGL buffer
  13520. */
  13521. Engine.prototype.createInstancesBuffer = function (capacity) {
  13522. var buffer = this._gl.createBuffer();
  13523. if (!buffer) {
  13524. throw new Error("Unable to create instance buffer");
  13525. }
  13526. buffer.capacity = capacity;
  13527. this.bindArrayBuffer(buffer);
  13528. this._gl.bufferData(this._gl.ARRAY_BUFFER, capacity, this._gl.DYNAMIC_DRAW);
  13529. return buffer;
  13530. };
  13531. /**
  13532. * Delete a webGL buffer used with instanciation
  13533. * @param buffer defines the webGL buffer to delete
  13534. */
  13535. Engine.prototype.deleteInstancesBuffer = function (buffer) {
  13536. this._gl.deleteBuffer(buffer);
  13537. };
  13538. /**
  13539. * Update the content of a webGL buffer used with instanciation and bind it to the webGL context
  13540. * @param instancesBuffer defines the webGL buffer to update and bind
  13541. * @param data defines the data to store in the buffer
  13542. * @param offsetLocations defines the offsets or attributes information used to determine where data must be stored in the buffer
  13543. */
  13544. Engine.prototype.updateAndBindInstancesBuffer = function (instancesBuffer, data, offsetLocations) {
  13545. this.bindArrayBuffer(instancesBuffer);
  13546. if (data) {
  13547. this._gl.bufferSubData(this._gl.ARRAY_BUFFER, 0, data);
  13548. }
  13549. if (offsetLocations[0].index !== undefined) {
  13550. var stride = 0;
  13551. for (var i = 0; i < offsetLocations.length; i++) {
  13552. var ai = offsetLocations[i];
  13553. stride += ai.attributeSize * 4;
  13554. }
  13555. for (var i = 0; i < offsetLocations.length; i++) {
  13556. var ai = offsetLocations[i];
  13557. if (!this._vertexAttribArraysEnabled[ai.index]) {
  13558. this._gl.enableVertexAttribArray(ai.index);
  13559. this._vertexAttribArraysEnabled[ai.index] = true;
  13560. }
  13561. this._vertexAttribPointer(instancesBuffer, ai.index, ai.attributeSize, ai.attribyteType || this._gl.FLOAT, ai.normalized || false, stride, ai.offset);
  13562. this._gl.vertexAttribDivisor(ai.index, 1);
  13563. this._currentInstanceLocations.push(ai.index);
  13564. this._currentInstanceBuffers.push(instancesBuffer);
  13565. }
  13566. }
  13567. else {
  13568. for (var index = 0; index < 4; index++) {
  13569. var offsetLocation = offsetLocations[index];
  13570. if (!this._vertexAttribArraysEnabled[offsetLocation]) {
  13571. this._gl.enableVertexAttribArray(offsetLocation);
  13572. this._vertexAttribArraysEnabled[offsetLocation] = true;
  13573. }
  13574. this._vertexAttribPointer(instancesBuffer, offsetLocation, 4, this._gl.FLOAT, false, 64, index * 16);
  13575. this._gl.vertexAttribDivisor(offsetLocation, 1);
  13576. this._currentInstanceLocations.push(offsetLocation);
  13577. this._currentInstanceBuffers.push(instancesBuffer);
  13578. }
  13579. }
  13580. };
  13581. /**
  13582. * Apply all cached states (depth, culling, stencil and alpha)
  13583. */
  13584. Engine.prototype.applyStates = function () {
  13585. this._depthCullingState.apply(this._gl);
  13586. this._stencilState.apply(this._gl);
  13587. this._alphaState.apply(this._gl);
  13588. };
  13589. /**
  13590. * Send a draw order
  13591. * @param useTriangles defines if triangles must be used to draw (else wireframe will be used)
  13592. * @param indexStart defines the starting index
  13593. * @param indexCount defines the number of index to draw
  13594. * @param instancesCount defines the number of instances to draw (if instanciation is enabled)
  13595. */
  13596. Engine.prototype.draw = function (useTriangles, indexStart, indexCount, instancesCount) {
  13597. this.drawElementsType(useTriangles ? BABYLON.Material.TriangleFillMode : BABYLON.Material.WireFrameFillMode, indexStart, indexCount, instancesCount);
  13598. };
  13599. /**
  13600. * Draw a list of points
  13601. * @param verticesStart defines the index of first vertex to draw
  13602. * @param verticesCount defines the count of vertices to draw
  13603. * @param instancesCount defines the number of instances to draw (if instanciation is enabled)
  13604. */
  13605. Engine.prototype.drawPointClouds = function (verticesStart, verticesCount, instancesCount) {
  13606. this.drawArraysType(BABYLON.Material.PointFillMode, verticesStart, verticesCount, instancesCount);
  13607. };
  13608. /**
  13609. * Draw a list of unindexed primitives
  13610. * @param useTriangles defines if triangles must be used to draw (else wireframe will be used)
  13611. * @param verticesStart defines the index of first vertex to draw
  13612. * @param verticesCount defines the count of vertices to draw
  13613. * @param instancesCount defines the number of instances to draw (if instanciation is enabled)
  13614. */
  13615. Engine.prototype.drawUnIndexed = function (useTriangles, verticesStart, verticesCount, instancesCount) {
  13616. this.drawArraysType(useTriangles ? BABYLON.Material.TriangleFillMode : BABYLON.Material.WireFrameFillMode, verticesStart, verticesCount, instancesCount);
  13617. };
  13618. /**
  13619. * Draw a list of indexed primitives
  13620. * @param fillMode defines the primitive to use
  13621. * @param indexStart defines the starting index
  13622. * @param indexCount defines the number of index to draw
  13623. * @param instancesCount defines the number of instances to draw (if instanciation is enabled)
  13624. */
  13625. Engine.prototype.drawElementsType = function (fillMode, indexStart, indexCount, instancesCount) {
  13626. // Apply states
  13627. this.applyStates();
  13628. this._drawCalls.addCount(1, false);
  13629. // Render
  13630. var drawMode = this._drawMode(fillMode);
  13631. var indexFormat = this._uintIndicesCurrentlySet ? this._gl.UNSIGNED_INT : this._gl.UNSIGNED_SHORT;
  13632. var mult = this._uintIndicesCurrentlySet ? 4 : 2;
  13633. if (instancesCount) {
  13634. this._gl.drawElementsInstanced(drawMode, indexCount, indexFormat, indexStart * mult, instancesCount);
  13635. }
  13636. else {
  13637. this._gl.drawElements(drawMode, indexCount, indexFormat, indexStart * mult);
  13638. }
  13639. };
  13640. /**
  13641. * Draw a list of unindexed primitives
  13642. * @param fillMode defines the primitive to use
  13643. * @param verticesStart defines the index of first vertex to draw
  13644. * @param verticesCount defines the count of vertices to draw
  13645. * @param instancesCount defines the number of instances to draw (if instanciation is enabled)
  13646. */
  13647. Engine.prototype.drawArraysType = function (fillMode, verticesStart, verticesCount, instancesCount) {
  13648. // Apply states
  13649. this.applyStates();
  13650. this._drawCalls.addCount(1, false);
  13651. var drawMode = this._drawMode(fillMode);
  13652. if (instancesCount) {
  13653. this._gl.drawArraysInstanced(drawMode, verticesStart, verticesCount, instancesCount);
  13654. }
  13655. else {
  13656. this._gl.drawArrays(drawMode, verticesStart, verticesCount);
  13657. }
  13658. };
  13659. Engine.prototype._drawMode = function (fillMode) {
  13660. switch (fillMode) {
  13661. // Triangle views
  13662. case BABYLON.Material.TriangleFillMode:
  13663. return this._gl.TRIANGLES;
  13664. case BABYLON.Material.PointFillMode:
  13665. return this._gl.POINTS;
  13666. case BABYLON.Material.WireFrameFillMode:
  13667. return this._gl.LINES;
  13668. // Draw modes
  13669. case BABYLON.Material.PointListDrawMode:
  13670. return this._gl.POINTS;
  13671. case BABYLON.Material.LineListDrawMode:
  13672. return this._gl.LINES;
  13673. case BABYLON.Material.LineLoopDrawMode:
  13674. return this._gl.LINE_LOOP;
  13675. case BABYLON.Material.LineStripDrawMode:
  13676. return this._gl.LINE_STRIP;
  13677. case BABYLON.Material.TriangleStripDrawMode:
  13678. return this._gl.TRIANGLE_STRIP;
  13679. case BABYLON.Material.TriangleFanDrawMode:
  13680. return this._gl.TRIANGLE_FAN;
  13681. default:
  13682. return this._gl.TRIANGLES;
  13683. }
  13684. };
  13685. // Shaders
  13686. /** @hidden */
  13687. Engine.prototype._releaseEffect = function (effect) {
  13688. if (this._compiledEffects[effect._key]) {
  13689. delete this._compiledEffects[effect._key];
  13690. this._deleteProgram(effect.getProgram());
  13691. }
  13692. };
  13693. /** @hidden */
  13694. Engine.prototype._deleteProgram = function (program) {
  13695. if (program) {
  13696. program.__SPECTOR_rebuildProgram = null;
  13697. if (program.transformFeedback) {
  13698. this.deleteTransformFeedback(program.transformFeedback);
  13699. program.transformFeedback = null;
  13700. }
  13701. this._gl.deleteProgram(program);
  13702. }
  13703. };
  13704. /**
  13705. * Create a new effect (used to store vertex/fragment shaders)
  13706. * @param baseName defines the base name of the effect (The name of file without .fragment.fx or .vertex.fx)
  13707. * @param attributesNamesOrOptions defines either a list of attribute names or an EffectCreationOptions object
  13708. * @param uniformsNamesOrEngine defines either a list of uniform names or the engine to use
  13709. * @param samplers defines an array of string used to represent textures
  13710. * @param defines defines the string containing the defines to use to compile the shaders
  13711. * @param fallbacks defines the list of potential fallbacks to use if shader conmpilation fails
  13712. * @param onCompiled defines a function to call when the effect creation is successful
  13713. * @param onError defines a function to call when the effect creation has failed
  13714. * @param indexParameters defines an object containing the index values to use to compile shaders (like the maximum number of simultaneous lights)
  13715. * @returns the new Effect
  13716. */
  13717. Engine.prototype.createEffect = function (baseName, attributesNamesOrOptions, uniformsNamesOrEngine, samplers, defines, fallbacks, onCompiled, onError, indexParameters) {
  13718. var vertex = baseName.vertexElement || baseName.vertex || baseName;
  13719. var fragment = baseName.fragmentElement || baseName.fragment || baseName;
  13720. var name = vertex + "+" + fragment + "@" + (defines ? defines : attributesNamesOrOptions.defines);
  13721. if (this._compiledEffects[name]) {
  13722. var compiledEffect = this._compiledEffects[name];
  13723. if (onCompiled && compiledEffect.isReady()) {
  13724. onCompiled(compiledEffect);
  13725. }
  13726. return compiledEffect;
  13727. }
  13728. var effect = new BABYLON.Effect(baseName, attributesNamesOrOptions, uniformsNamesOrEngine, samplers, this, defines, fallbacks, onCompiled, onError, indexParameters);
  13729. effect._key = name;
  13730. this._compiledEffects[name] = effect;
  13731. return effect;
  13732. };
  13733. Engine.prototype._compileShader = function (source, type, defines, shaderVersion) {
  13734. return this._compileRawShader(shaderVersion + (defines ? defines + "\n" : "") + source, type);
  13735. };
  13736. ;
  13737. Engine.prototype._compileRawShader = function (source, type) {
  13738. var gl = this._gl;
  13739. var shader = gl.createShader(type === "vertex" ? gl.VERTEX_SHADER : gl.FRAGMENT_SHADER);
  13740. gl.shaderSource(shader, source);
  13741. gl.compileShader(shader);
  13742. if (!gl.getShaderParameter(shader, gl.COMPILE_STATUS)) {
  13743. var log = gl.getShaderInfoLog(shader);
  13744. if (log) {
  13745. throw new Error(log);
  13746. }
  13747. }
  13748. if (!shader) {
  13749. throw new Error("Something went wrong while compile the shader.");
  13750. }
  13751. return shader;
  13752. };
  13753. ;
  13754. /**
  13755. * Directly creates a webGL program
  13756. * @param vertexCode defines the vertex shader code to use
  13757. * @param fragmentCode defines the fragment shader code to use
  13758. * @param context defines the webGL context to use (if not set, the current one will be used)
  13759. * @param transformFeedbackVaryings defines the list of transform feedback varyings to use
  13760. * @returns the new webGL program
  13761. */
  13762. Engine.prototype.createRawShaderProgram = function (vertexCode, fragmentCode, context, transformFeedbackVaryings) {
  13763. if (transformFeedbackVaryings === void 0) { transformFeedbackVaryings = null; }
  13764. context = context || this._gl;
  13765. var vertexShader = this._compileRawShader(vertexCode, "vertex");
  13766. var fragmentShader = this._compileRawShader(fragmentCode, "fragment");
  13767. return this._createShaderProgram(vertexShader, fragmentShader, context, transformFeedbackVaryings);
  13768. };
  13769. /**
  13770. * Creates a webGL program
  13771. * @param vertexCode defines the vertex shader code to use
  13772. * @param fragmentCode defines the fragment shader code to use
  13773. * @param defines defines the string containing the defines to use to compile the shaders
  13774. * @param context defines the webGL context to use (if not set, the current one will be used)
  13775. * @param transformFeedbackVaryings defines the list of transform feedback varyings to use
  13776. * @returns the new webGL program
  13777. */
  13778. Engine.prototype.createShaderProgram = function (vertexCode, fragmentCode, defines, context, transformFeedbackVaryings) {
  13779. if (transformFeedbackVaryings === void 0) { transformFeedbackVaryings = null; }
  13780. context = context || this._gl;
  13781. this.onBeforeShaderCompilationObservable.notifyObservers(this);
  13782. var shaderVersion = (this._webGLVersion > 1) ? "#version 300 es\n#define WEBGL2 \n" : "";
  13783. var vertexShader = this._compileShader(vertexCode, "vertex", defines, shaderVersion);
  13784. var fragmentShader = this._compileShader(fragmentCode, "fragment", defines, shaderVersion);
  13785. var program = this._createShaderProgram(vertexShader, fragmentShader, context, transformFeedbackVaryings);
  13786. this.onAfterShaderCompilationObservable.notifyObservers(this);
  13787. return program;
  13788. };
  13789. Engine.prototype._createShaderProgram = function (vertexShader, fragmentShader, context, transformFeedbackVaryings) {
  13790. if (transformFeedbackVaryings === void 0) { transformFeedbackVaryings = null; }
  13791. var shaderProgram = context.createProgram();
  13792. if (!shaderProgram) {
  13793. throw new Error("Unable to create program");
  13794. }
  13795. context.attachShader(shaderProgram, vertexShader);
  13796. context.attachShader(shaderProgram, fragmentShader);
  13797. if (this.webGLVersion > 1 && transformFeedbackVaryings) {
  13798. var transformFeedback = this.createTransformFeedback();
  13799. this.bindTransformFeedback(transformFeedback);
  13800. this.setTranformFeedbackVaryings(shaderProgram, transformFeedbackVaryings);
  13801. shaderProgram.transformFeedback = transformFeedback;
  13802. }
  13803. context.linkProgram(shaderProgram);
  13804. if (this.webGLVersion > 1 && transformFeedbackVaryings) {
  13805. this.bindTransformFeedback(null);
  13806. }
  13807. var linked = context.getProgramParameter(shaderProgram, context.LINK_STATUS);
  13808. if (!linked) {
  13809. var error = context.getProgramInfoLog(shaderProgram);
  13810. if (error) {
  13811. throw new Error(error);
  13812. }
  13813. }
  13814. if (this.validateShaderPrograms) {
  13815. context.validateProgram(shaderProgram);
  13816. var validated = context.getProgramParameter(shaderProgram, context.VALIDATE_STATUS);
  13817. if (!validated) {
  13818. var error = context.getProgramInfoLog(shaderProgram);
  13819. if (error) {
  13820. throw new Error(error);
  13821. }
  13822. }
  13823. }
  13824. context.deleteShader(vertexShader);
  13825. context.deleteShader(fragmentShader);
  13826. return shaderProgram;
  13827. };
  13828. /**
  13829. * Gets the list of webGL uniform locations associated with a specific program based on a list of uniform names
  13830. * @param shaderProgram defines the webGL program to use
  13831. * @param uniformsNames defines the list of uniform names
  13832. * @returns an array of webGL uniform locations
  13833. */
  13834. Engine.prototype.getUniforms = function (shaderProgram, uniformsNames) {
  13835. var results = new Array();
  13836. for (var index = 0; index < uniformsNames.length; index++) {
  13837. results.push(this._gl.getUniformLocation(shaderProgram, uniformsNames[index]));
  13838. }
  13839. return results;
  13840. };
  13841. /**
  13842. * Gets the lsit of active attributes for a given webGL program
  13843. * @param shaderProgram defines the webGL program to use
  13844. * @param attributesNames defines the list of attribute names to get
  13845. * @returns an array of indices indicating the offset of each attribute
  13846. */
  13847. Engine.prototype.getAttributes = function (shaderProgram, attributesNames) {
  13848. var results = [];
  13849. for (var index = 0; index < attributesNames.length; index++) {
  13850. try {
  13851. results.push(this._gl.getAttribLocation(shaderProgram, attributesNames[index]));
  13852. }
  13853. catch (e) {
  13854. results.push(-1);
  13855. }
  13856. }
  13857. return results;
  13858. };
  13859. /**
  13860. * Activates an effect, mkaing it the current one (ie. the one used for rendering)
  13861. * @param effect defines the effect to activate
  13862. */
  13863. Engine.prototype.enableEffect = function (effect) {
  13864. if (!effect || effect === this._currentEffect) {
  13865. return;
  13866. }
  13867. // Use program
  13868. this.bindSamplers(effect);
  13869. this._currentEffect = effect;
  13870. if (effect.onBind) {
  13871. effect.onBind(effect);
  13872. }
  13873. if (effect._onBindObservable) {
  13874. effect._onBindObservable.notifyObservers(effect);
  13875. }
  13876. };
  13877. /**
  13878. * Set the value of an uniform to an array of int32
  13879. * @param uniform defines the webGL uniform location where to store the value
  13880. * @param array defines the array of int32 to store
  13881. */
  13882. Engine.prototype.setIntArray = function (uniform, array) {
  13883. if (!uniform)
  13884. return;
  13885. this._gl.uniform1iv(uniform, array);
  13886. };
  13887. /**
  13888. * Set the value of an uniform to an array of int32 (stored as vec2)
  13889. * @param uniform defines the webGL uniform location where to store the value
  13890. * @param array defines the array of int32 to store
  13891. */
  13892. Engine.prototype.setIntArray2 = function (uniform, array) {
  13893. if (!uniform || array.length % 2 !== 0)
  13894. return;
  13895. this._gl.uniform2iv(uniform, array);
  13896. };
  13897. /**
  13898. * Set the value of an uniform to an array of int32 (stored as vec3)
  13899. * @param uniform defines the webGL uniform location where to store the value
  13900. * @param array defines the array of int32 to store
  13901. */
  13902. Engine.prototype.setIntArray3 = function (uniform, array) {
  13903. if (!uniform || array.length % 3 !== 0)
  13904. return;
  13905. this._gl.uniform3iv(uniform, array);
  13906. };
  13907. /**
  13908. * Set the value of an uniform to an array of int32 (stored as vec4)
  13909. * @param uniform defines the webGL uniform location where to store the value
  13910. * @param array defines the array of int32 to store
  13911. */
  13912. Engine.prototype.setIntArray4 = function (uniform, array) {
  13913. if (!uniform || array.length % 4 !== 0)
  13914. return;
  13915. this._gl.uniform4iv(uniform, array);
  13916. };
  13917. /**
  13918. * Set the value of an uniform to an array of float32
  13919. * @param uniform defines the webGL uniform location where to store the value
  13920. * @param array defines the array of float32 to store
  13921. */
  13922. Engine.prototype.setFloatArray = function (uniform, array) {
  13923. if (!uniform)
  13924. return;
  13925. this._gl.uniform1fv(uniform, array);
  13926. };
  13927. /**
  13928. * Set the value of an uniform to an array of float32 (stored as vec2)
  13929. * @param uniform defines the webGL uniform location where to store the value
  13930. * @param array defines the array of float32 to store
  13931. */
  13932. Engine.prototype.setFloatArray2 = function (uniform, array) {
  13933. if (!uniform || array.length % 2 !== 0)
  13934. return;
  13935. this._gl.uniform2fv(uniform, array);
  13936. };
  13937. /**
  13938. * Set the value of an uniform to an array of float32 (stored as vec3)
  13939. * @param uniform defines the webGL uniform location where to store the value
  13940. * @param array defines the array of float32 to store
  13941. */
  13942. Engine.prototype.setFloatArray3 = function (uniform, array) {
  13943. if (!uniform || array.length % 3 !== 0)
  13944. return;
  13945. this._gl.uniform3fv(uniform, array);
  13946. };
  13947. /**
  13948. * Set the value of an uniform to an array of float32 (stored as vec4)
  13949. * @param uniform defines the webGL uniform location where to store the value
  13950. * @param array defines the array of float32 to store
  13951. */
  13952. Engine.prototype.setFloatArray4 = function (uniform, array) {
  13953. if (!uniform || array.length % 4 !== 0)
  13954. return;
  13955. this._gl.uniform4fv(uniform, array);
  13956. };
  13957. /**
  13958. * Set the value of an uniform to an array of number
  13959. * @param uniform defines the webGL uniform location where to store the value
  13960. * @param array defines the array of number to store
  13961. */
  13962. Engine.prototype.setArray = function (uniform, array) {
  13963. if (!uniform)
  13964. return;
  13965. this._gl.uniform1fv(uniform, array);
  13966. };
  13967. /**
  13968. * Set the value of an uniform to an array of number (stored as vec2)
  13969. * @param uniform defines the webGL uniform location where to store the value
  13970. * @param array defines the array of number to store
  13971. */
  13972. Engine.prototype.setArray2 = function (uniform, array) {
  13973. if (!uniform || array.length % 2 !== 0)
  13974. return;
  13975. this._gl.uniform2fv(uniform, array);
  13976. };
  13977. /**
  13978. * Set the value of an uniform to an array of number (stored as vec3)
  13979. * @param uniform defines the webGL uniform location where to store the value
  13980. * @param array defines the array of number to store
  13981. */
  13982. Engine.prototype.setArray3 = function (uniform, array) {
  13983. if (!uniform || array.length % 3 !== 0)
  13984. return;
  13985. this._gl.uniform3fv(uniform, array);
  13986. };
  13987. /**
  13988. * Set the value of an uniform to an array of number (stored as vec4)
  13989. * @param uniform defines the webGL uniform location where to store the value
  13990. * @param array defines the array of number to store
  13991. */
  13992. Engine.prototype.setArray4 = function (uniform, array) {
  13993. if (!uniform || array.length % 4 !== 0)
  13994. return;
  13995. this._gl.uniform4fv(uniform, array);
  13996. };
  13997. /**
  13998. * Set the value of an uniform to an array of float32 (stored as matrices)
  13999. * @param uniform defines the webGL uniform location where to store the value
  14000. * @param matrices defines the array of float32 to store
  14001. */
  14002. Engine.prototype.setMatrices = function (uniform, matrices) {
  14003. if (!uniform)
  14004. return;
  14005. this._gl.uniformMatrix4fv(uniform, false, matrices);
  14006. };
  14007. /**
  14008. * Set the value of an uniform to a matrix
  14009. * @param uniform defines the webGL uniform location where to store the value
  14010. * @param matrix defines the matrix to store
  14011. */
  14012. Engine.prototype.setMatrix = function (uniform, matrix) {
  14013. if (!uniform)
  14014. return;
  14015. this._gl.uniformMatrix4fv(uniform, false, matrix.toArray());
  14016. };
  14017. /**
  14018. * Set the value of an uniform to a matrix (3x3)
  14019. * @param uniform defines the webGL uniform location where to store the value
  14020. * @param matrix defines the Float32Array representing the 3x3 matrix to store
  14021. */
  14022. Engine.prototype.setMatrix3x3 = function (uniform, matrix) {
  14023. if (!uniform)
  14024. return;
  14025. this._gl.uniformMatrix3fv(uniform, false, matrix);
  14026. };
  14027. /**
  14028. * Set the value of an uniform to a matrix (2x2)
  14029. * @param uniform defines the webGL uniform location where to store the value
  14030. * @param matrix defines the Float32Array representing the 2x2 matrix to store
  14031. */
  14032. Engine.prototype.setMatrix2x2 = function (uniform, matrix) {
  14033. if (!uniform)
  14034. return;
  14035. this._gl.uniformMatrix2fv(uniform, false, matrix);
  14036. };
  14037. /**
  14038. * Set the value of an uniform to a number (int)
  14039. * @param uniform defines the webGL uniform location where to store the value
  14040. * @param value defines the int number to store
  14041. */
  14042. Engine.prototype.setInt = function (uniform, value) {
  14043. if (!uniform)
  14044. return;
  14045. this._gl.uniform1i(uniform, value);
  14046. };
  14047. /**
  14048. * Set the value of an uniform to a number (float)
  14049. * @param uniform defines the webGL uniform location where to store the value
  14050. * @param value defines the float number to store
  14051. */
  14052. Engine.prototype.setFloat = function (uniform, value) {
  14053. if (!uniform)
  14054. return;
  14055. this._gl.uniform1f(uniform, value);
  14056. };
  14057. /**
  14058. * Set the value of an uniform to a vec2
  14059. * @param uniform defines the webGL uniform location where to store the value
  14060. * @param x defines the 1st component of the value
  14061. * @param y defines the 2nd component of the value
  14062. */
  14063. Engine.prototype.setFloat2 = function (uniform, x, y) {
  14064. if (!uniform)
  14065. return;
  14066. this._gl.uniform2f(uniform, x, y);
  14067. };
  14068. /**
  14069. * Set the value of an uniform to a vec3
  14070. * @param uniform defines the webGL uniform location where to store the value
  14071. * @param x defines the 1st component of the value
  14072. * @param y defines the 2nd component of the value
  14073. * @param z defines the 3rd component of the value
  14074. */
  14075. Engine.prototype.setFloat3 = function (uniform, x, y, z) {
  14076. if (!uniform)
  14077. return;
  14078. this._gl.uniform3f(uniform, x, y, z);
  14079. };
  14080. /**
  14081. * Set the value of an uniform to a boolean
  14082. * @param uniform defines the webGL uniform location where to store the value
  14083. * @param bool defines the boolean to store
  14084. */
  14085. Engine.prototype.setBool = function (uniform, bool) {
  14086. if (!uniform)
  14087. return;
  14088. this._gl.uniform1i(uniform, bool);
  14089. };
  14090. /**
  14091. * Set the value of an uniform to a vec4
  14092. * @param uniform defines the webGL uniform location where to store the value
  14093. * @param x defines the 1st component of the value
  14094. * @param y defines the 2nd component of the value
  14095. * @param z defines the 3rd component of the value
  14096. * @param w defines the 4th component of the value
  14097. */
  14098. Engine.prototype.setFloat4 = function (uniform, x, y, z, w) {
  14099. if (!uniform)
  14100. return;
  14101. this._gl.uniform4f(uniform, x, y, z, w);
  14102. };
  14103. /**
  14104. * Set the value of an uniform to a Color3
  14105. * @param uniform defines the webGL uniform location where to store the value
  14106. * @param color3 defines the color to store
  14107. */
  14108. Engine.prototype.setColor3 = function (uniform, color3) {
  14109. if (!uniform)
  14110. return;
  14111. this._gl.uniform3f(uniform, color3.r, color3.g, color3.b);
  14112. };
  14113. /**
  14114. * Set the value of an uniform to a Color3 and an alpha value
  14115. * @param uniform defines the webGL uniform location where to store the value
  14116. * @param color3 defines the color to store
  14117. * @param alpha defines the alpha component to store
  14118. */
  14119. Engine.prototype.setColor4 = function (uniform, color3, alpha) {
  14120. if (!uniform)
  14121. return;
  14122. this._gl.uniform4f(uniform, color3.r, color3.g, color3.b, alpha);
  14123. };
  14124. /**
  14125. * Sets a Color4 on a uniform variable
  14126. * @param uniform defines the uniform location
  14127. * @param color4 defines the value to be set
  14128. */
  14129. Engine.prototype.setDirectColor4 = function (uniform, color4) {
  14130. if (!uniform)
  14131. return;
  14132. this._gl.uniform4f(uniform, color4.r, color4.g, color4.b, color4.a);
  14133. };
  14134. // States
  14135. /**
  14136. * Set various states to the webGL context
  14137. * @param culling defines backface culling state
  14138. * @param zOffset defines the value to apply to zOffset (0 by default)
  14139. * @param force defines if states must be applied even if cache is up to date
  14140. * @param reverseSide defines if culling must be reversed (CCW instead of CW and CW instead of CCW)
  14141. */
  14142. Engine.prototype.setState = function (culling, zOffset, force, reverseSide) {
  14143. if (zOffset === void 0) { zOffset = 0; }
  14144. if (reverseSide === void 0) { reverseSide = false; }
  14145. // Culling
  14146. if (this._depthCullingState.cull !== culling || force) {
  14147. this._depthCullingState.cull = culling;
  14148. }
  14149. // Cull face
  14150. var cullFace = this.cullBackFaces ? this._gl.BACK : this._gl.FRONT;
  14151. if (this._depthCullingState.cullFace !== cullFace || force) {
  14152. this._depthCullingState.cullFace = cullFace;
  14153. }
  14154. // Z offset
  14155. this.setZOffset(zOffset);
  14156. // Front face
  14157. var frontFace = reverseSide ? this._gl.CW : this._gl.CCW;
  14158. if (this._depthCullingState.frontFace !== frontFace || force) {
  14159. this._depthCullingState.frontFace = frontFace;
  14160. }
  14161. };
  14162. /**
  14163. * Set the z offset to apply to current rendering
  14164. * @param value defines the offset to apply
  14165. */
  14166. Engine.prototype.setZOffset = function (value) {
  14167. this._depthCullingState.zOffset = value;
  14168. };
  14169. /**
  14170. * Gets the current value of the zOffset
  14171. * @returns the current zOffset state
  14172. */
  14173. Engine.prototype.getZOffset = function () {
  14174. return this._depthCullingState.zOffset;
  14175. };
  14176. /**
  14177. * Enable or disable depth buffering
  14178. * @param enable defines the state to set
  14179. */
  14180. Engine.prototype.setDepthBuffer = function (enable) {
  14181. this._depthCullingState.depthTest = enable;
  14182. };
  14183. /**
  14184. * Gets a boolean indicating if depth writing is enabled
  14185. * @returns the current depth writing state
  14186. */
  14187. Engine.prototype.getDepthWrite = function () {
  14188. return this._depthCullingState.depthMask;
  14189. };
  14190. /**
  14191. * Enable or disable depth writing
  14192. * @param enable defines the state to set
  14193. */
  14194. Engine.prototype.setDepthWrite = function (enable) {
  14195. this._depthCullingState.depthMask = enable;
  14196. };
  14197. /**
  14198. * Enable or disable color writing
  14199. * @param enable defines the state to set
  14200. */
  14201. Engine.prototype.setColorWrite = function (enable) {
  14202. this._gl.colorMask(enable, enable, enable, enable);
  14203. this._colorWrite = enable;
  14204. };
  14205. /**
  14206. * Gets a boolean indicating if color writing is enabled
  14207. * @returns the current color writing state
  14208. */
  14209. Engine.prototype.getColorWrite = function () {
  14210. return this._colorWrite;
  14211. };
  14212. /**
  14213. * Sets alpha constants used by some alpha blending modes
  14214. * @param r defines the red component
  14215. * @param g defines the green component
  14216. * @param b defines the blue component
  14217. * @param a defines the alpha component
  14218. */
  14219. Engine.prototype.setAlphaConstants = function (r, g, b, a) {
  14220. this._alphaState.setAlphaBlendConstants(r, g, b, a);
  14221. };
  14222. /**
  14223. * Sets the current alpha mode
  14224. * @param mode defines the mode to use (one of the BABYLON.Engine.ALPHA_XXX)
  14225. * @param noDepthWriteChange defines if depth writing state should remains unchanged (false by default)
  14226. * @see http://doc.babylonjs.com/resources/transparency_and_how_meshes_are_rendered
  14227. */
  14228. Engine.prototype.setAlphaMode = function (mode, noDepthWriteChange) {
  14229. if (noDepthWriteChange === void 0) { noDepthWriteChange = false; }
  14230. if (this._alphaMode === mode) {
  14231. return;
  14232. }
  14233. switch (mode) {
  14234. case Engine.ALPHA_DISABLE:
  14235. this._alphaState.alphaBlend = false;
  14236. break;
  14237. case Engine.ALPHA_PREMULTIPLIED:
  14238. this._alphaState.setAlphaBlendFunctionParameters(this._gl.ONE, this._gl.ONE_MINUS_SRC_ALPHA, this._gl.ONE, this._gl.ONE);
  14239. this._alphaState.alphaBlend = true;
  14240. break;
  14241. case Engine.ALPHA_PREMULTIPLIED_PORTERDUFF:
  14242. this._alphaState.setAlphaBlendFunctionParameters(this._gl.ONE, this._gl.ONE_MINUS_SRC_ALPHA, this._gl.ONE, this._gl.ONE_MINUS_SRC_ALPHA);
  14243. this._alphaState.alphaBlend = true;
  14244. break;
  14245. case Engine.ALPHA_COMBINE:
  14246. this._alphaState.setAlphaBlendFunctionParameters(this._gl.SRC_ALPHA, this._gl.ONE_MINUS_SRC_ALPHA, this._gl.ONE, this._gl.ONE);
  14247. this._alphaState.alphaBlend = true;
  14248. break;
  14249. case Engine.ALPHA_ONEONE:
  14250. this._alphaState.setAlphaBlendFunctionParameters(this._gl.ONE, this._gl.ONE, this._gl.ZERO, this._gl.ONE);
  14251. this._alphaState.alphaBlend = true;
  14252. break;
  14253. case Engine.ALPHA_ADD:
  14254. this._alphaState.setAlphaBlendFunctionParameters(this._gl.SRC_ALPHA, this._gl.ONE, this._gl.ZERO, this._gl.ONE);
  14255. this._alphaState.alphaBlend = true;
  14256. break;
  14257. case Engine.ALPHA_SUBTRACT:
  14258. this._alphaState.setAlphaBlendFunctionParameters(this._gl.ZERO, this._gl.ONE_MINUS_SRC_COLOR, this._gl.ONE, this._gl.ONE);
  14259. this._alphaState.alphaBlend = true;
  14260. break;
  14261. case Engine.ALPHA_MULTIPLY:
  14262. this._alphaState.setAlphaBlendFunctionParameters(this._gl.DST_COLOR, this._gl.ZERO, this._gl.ONE, this._gl.ONE);
  14263. this._alphaState.alphaBlend = true;
  14264. break;
  14265. case Engine.ALPHA_MAXIMIZED:
  14266. this._alphaState.setAlphaBlendFunctionParameters(this._gl.SRC_ALPHA, this._gl.ONE_MINUS_SRC_COLOR, this._gl.ONE, this._gl.ONE);
  14267. this._alphaState.alphaBlend = true;
  14268. break;
  14269. case Engine.ALPHA_INTERPOLATE:
  14270. this._alphaState.setAlphaBlendFunctionParameters(this._gl.CONSTANT_COLOR, this._gl.ONE_MINUS_CONSTANT_COLOR, this._gl.CONSTANT_ALPHA, this._gl.ONE_MINUS_CONSTANT_ALPHA);
  14271. this._alphaState.alphaBlend = true;
  14272. break;
  14273. case Engine.ALPHA_SCREENMODE:
  14274. this._alphaState.setAlphaBlendFunctionParameters(this._gl.ONE, this._gl.ONE_MINUS_SRC_COLOR, this._gl.ONE, this._gl.ONE_MINUS_SRC_ALPHA);
  14275. this._alphaState.alphaBlend = true;
  14276. break;
  14277. }
  14278. if (!noDepthWriteChange) {
  14279. this.setDepthWrite(mode === Engine.ALPHA_DISABLE);
  14280. }
  14281. this._alphaMode = mode;
  14282. };
  14283. /**
  14284. * Gets the current alpha mode
  14285. * @see http://doc.babylonjs.com/resources/transparency_and_how_meshes_are_rendered
  14286. * @returns the current alpha mode
  14287. */
  14288. Engine.prototype.getAlphaMode = function () {
  14289. return this._alphaMode;
  14290. };
  14291. // Textures
  14292. /**
  14293. * Clears the list of texture accessible through engine.
  14294. * This can help preventing texture load conflict due to name collision.
  14295. */
  14296. Engine.prototype.clearInternalTexturesCache = function () {
  14297. this._internalTexturesCache = [];
  14298. };
  14299. /**
  14300. * Force the entire cache to be cleared
  14301. * You should not have to use this function unless your engine needs to share the webGL context with another engine
  14302. * @param bruteForce defines a boolean to force clearing ALL caches (including stencil, detoh and alpha states)
  14303. */
  14304. Engine.prototype.wipeCaches = function (bruteForce) {
  14305. if (this.preventCacheWipeBetweenFrames && !bruteForce) {
  14306. return;
  14307. }
  14308. this._currentEffect = null;
  14309. this._viewportCached.x = 0;
  14310. this._viewportCached.y = 0;
  14311. this._viewportCached.z = 0;
  14312. this._viewportCached.w = 0;
  14313. if (bruteForce) {
  14314. this.resetTextureCache();
  14315. this._currentProgram = null;
  14316. this._stencilState.reset();
  14317. this._depthCullingState.reset();
  14318. this.setDepthFunctionToLessOrEqual();
  14319. this._alphaState.reset();
  14320. this._unpackFlipYCached = null;
  14321. }
  14322. this._resetVertexBufferBinding();
  14323. this._cachedIndexBuffer = null;
  14324. this._cachedEffectForVertexBuffers = null;
  14325. this._unbindVertexArrayObject();
  14326. this.bindIndexBuffer(null);
  14327. };
  14328. /**
  14329. * Set the compressed texture format to use, based on the formats you have, and the formats
  14330. * supported by the hardware / browser.
  14331. *
  14332. * Khronos Texture Container (.ktx) files are used to support this. This format has the
  14333. * advantage of being specifically designed for OpenGL. Header elements directly correspond
  14334. * to API arguments needed to compressed textures. This puts the burden on the container
  14335. * generator to house the arcane code for determining these for current & future formats.
  14336. *
  14337. * for description see https://www.khronos.org/opengles/sdk/tools/KTX/
  14338. * for file layout see https://www.khronos.org/opengles/sdk/tools/KTX/file_format_spec/
  14339. *
  14340. * Note: The result of this call is not taken into account when a texture is base64.
  14341. *
  14342. * @param formatsAvailable defines the list of those format families you have created
  14343. * on your server. Syntax: '-' + format family + '.ktx'. (Case and order do not matter.)
  14344. *
  14345. * Current families are astc, dxt, pvrtc, etc2, & etc1.
  14346. * @returns The extension selected.
  14347. */
  14348. Engine.prototype.setTextureFormatToUse = function (formatsAvailable) {
  14349. for (var i = 0, len1 = this.texturesSupported.length; i < len1; i++) {
  14350. for (var j = 0, len2 = formatsAvailable.length; j < len2; j++) {
  14351. if (this._texturesSupported[i] === formatsAvailable[j].toLowerCase()) {
  14352. return this._textureFormatInUse = this._texturesSupported[i];
  14353. }
  14354. }
  14355. }
  14356. // actively set format to nothing, to allow this to be called more than once
  14357. // and possibly fail the 2nd time
  14358. this._textureFormatInUse = null;
  14359. return null;
  14360. };
  14361. Engine.prototype._getSamplingParameters = function (samplingMode, generateMipMaps) {
  14362. var gl = this._gl;
  14363. var magFilter = gl.NEAREST;
  14364. var minFilter = gl.NEAREST;
  14365. switch (samplingMode) {
  14366. case Engine.TEXTURE_BILINEAR_SAMPLINGMODE:
  14367. magFilter = gl.LINEAR;
  14368. if (generateMipMaps) {
  14369. minFilter = gl.LINEAR_MIPMAP_NEAREST;
  14370. }
  14371. else {
  14372. minFilter = gl.LINEAR;
  14373. }
  14374. break;
  14375. case Engine.TEXTURE_TRILINEAR_SAMPLINGMODE:
  14376. magFilter = gl.LINEAR;
  14377. if (generateMipMaps) {
  14378. minFilter = gl.LINEAR_MIPMAP_LINEAR;
  14379. }
  14380. else {
  14381. minFilter = gl.LINEAR;
  14382. }
  14383. break;
  14384. case Engine.TEXTURE_NEAREST_SAMPLINGMODE:
  14385. magFilter = gl.NEAREST;
  14386. if (generateMipMaps) {
  14387. minFilter = gl.NEAREST_MIPMAP_LINEAR;
  14388. }
  14389. else {
  14390. minFilter = gl.NEAREST;
  14391. }
  14392. break;
  14393. case Engine.TEXTURE_NEAREST_NEAREST_MIPNEAREST:
  14394. magFilter = gl.NEAREST;
  14395. if (generateMipMaps) {
  14396. minFilter = gl.NEAREST_MIPMAP_NEAREST;
  14397. }
  14398. else {
  14399. minFilter = gl.NEAREST;
  14400. }
  14401. break;
  14402. case Engine.TEXTURE_NEAREST_LINEAR_MIPNEAREST:
  14403. magFilter = gl.NEAREST;
  14404. if (generateMipMaps) {
  14405. minFilter = gl.LINEAR_MIPMAP_NEAREST;
  14406. }
  14407. else {
  14408. minFilter = gl.LINEAR;
  14409. }
  14410. break;
  14411. case Engine.TEXTURE_NEAREST_LINEAR_MIPLINEAR:
  14412. magFilter = gl.NEAREST;
  14413. if (generateMipMaps) {
  14414. minFilter = gl.LINEAR_MIPMAP_LINEAR;
  14415. }
  14416. else {
  14417. minFilter = gl.LINEAR;
  14418. }
  14419. break;
  14420. case Engine.TEXTURE_NEAREST_LINEAR:
  14421. magFilter = gl.NEAREST;
  14422. minFilter = gl.LINEAR;
  14423. break;
  14424. case Engine.TEXTURE_NEAREST_NEAREST:
  14425. magFilter = gl.NEAREST;
  14426. minFilter = gl.NEAREST;
  14427. break;
  14428. case Engine.TEXTURE_LINEAR_NEAREST_MIPNEAREST:
  14429. magFilter = gl.LINEAR;
  14430. if (generateMipMaps) {
  14431. minFilter = gl.NEAREST_MIPMAP_NEAREST;
  14432. }
  14433. else {
  14434. minFilter = gl.NEAREST;
  14435. }
  14436. break;
  14437. case Engine.TEXTURE_LINEAR_NEAREST_MIPLINEAR:
  14438. magFilter = gl.LINEAR;
  14439. if (generateMipMaps) {
  14440. minFilter = gl.NEAREST_MIPMAP_LINEAR;
  14441. }
  14442. else {
  14443. minFilter = gl.NEAREST;
  14444. }
  14445. break;
  14446. case Engine.TEXTURE_LINEAR_LINEAR:
  14447. magFilter = gl.LINEAR;
  14448. minFilter = gl.LINEAR;
  14449. break;
  14450. case Engine.TEXTURE_LINEAR_NEAREST:
  14451. magFilter = gl.LINEAR;
  14452. minFilter = gl.NEAREST;
  14453. break;
  14454. }
  14455. return {
  14456. min: minFilter,
  14457. mag: magFilter
  14458. };
  14459. };
  14460. Engine.prototype._partialLoadImg = function (url, index, loadedImages, scene, onfinish, onErrorCallBack) {
  14461. if (onErrorCallBack === void 0) { onErrorCallBack = null; }
  14462. var img;
  14463. var onload = function () {
  14464. loadedImages[index] = img;
  14465. loadedImages._internalCount++;
  14466. if (scene) {
  14467. scene._removePendingData(img);
  14468. }
  14469. if (loadedImages._internalCount === 6) {
  14470. onfinish(loadedImages);
  14471. }
  14472. };
  14473. var onerror = function (message, exception) {
  14474. if (scene) {
  14475. scene._removePendingData(img);
  14476. }
  14477. if (onErrorCallBack) {
  14478. onErrorCallBack(message, exception);
  14479. }
  14480. };
  14481. img = BABYLON.Tools.LoadImage(url, onload, onerror, scene ? scene.database : null);
  14482. if (scene) {
  14483. scene._addPendingData(img);
  14484. }
  14485. };
  14486. Engine.prototype._cascadeLoadImgs = function (rootUrl, scene, onfinish, files, onError) {
  14487. if (onError === void 0) { onError = null; }
  14488. var loadedImages = [];
  14489. loadedImages._internalCount = 0;
  14490. for (var index = 0; index < 6; index++) {
  14491. this._partialLoadImg(files[index], index, loadedImages, scene, onfinish, onError);
  14492. }
  14493. };
  14494. ;
  14495. /** @hidden */
  14496. Engine.prototype._createTexture = function () {
  14497. var texture = this._gl.createTexture();
  14498. if (!texture) {
  14499. throw new Error("Unable to create texture");
  14500. }
  14501. return texture;
  14502. };
  14503. /**
  14504. * Usually called from BABYLON.Texture.ts.
  14505. * Passed information to create a WebGLTexture
  14506. * @param urlArg defines a value which contains one of the following:
  14507. * * A conventional http URL, e.g. 'http://...' or 'file://...'
  14508. * * A base64 string of in-line texture data, e.g. 'data:image/jpg;base64,/...'
  14509. * * An indicator that data being passed using the buffer parameter, e.g. 'data:mytexture.jpg'
  14510. * @param noMipmap defines a boolean indicating that no mipmaps shall be generated. Ignored for compressed textures. They must be in the file
  14511. * @param invertY when true, image is flipped when loaded. You probably want true. Ignored for compressed textures. Must be flipped in the file
  14512. * @param scene needed for loading to the correct scene
  14513. * @param samplingMode mode with should be used sample / access the texture (Default: BABYLON.Texture.TRILINEAR_SAMPLINGMODE)
  14514. * @param onLoad optional callback to be called upon successful completion
  14515. * @param onError optional callback to be called upon failure
  14516. * @param buffer a source of a file previously fetched as either a base64 string, an ArrayBuffer (compressed or image format), HTMLImageElement (image format), or a Blob
  14517. * @param fallback an internal argument in case the function must be called again, due to etc1 not having alpha capabilities
  14518. * @param format internal format. Default: RGB when extension is '.jpg' else RGBA. Ignored for compressed textures
  14519. * @param forcedExtension defines the extension to use to pick the right loader
  14520. * @returns a InternalTexture for assignment back into BABYLON.Texture
  14521. */
  14522. Engine.prototype.createTexture = function (urlArg, noMipmap, invertY, scene, samplingMode, onLoad, onError, buffer, fallback, format, forcedExtension) {
  14523. var _this = this;
  14524. if (samplingMode === void 0) { samplingMode = Engine.TEXTURE_TRILINEAR_SAMPLINGMODE; }
  14525. if (onLoad === void 0) { onLoad = null; }
  14526. if (onError === void 0) { onError = null; }
  14527. if (buffer === void 0) { buffer = null; }
  14528. if (fallback === void 0) { fallback = null; }
  14529. if (format === void 0) { format = null; }
  14530. if (forcedExtension === void 0) { forcedExtension = null; }
  14531. var url = String(urlArg); // assign a new string, so that the original is still available in case of fallback
  14532. var fromData = url.substr(0, 5) === "data:";
  14533. var fromBlob = url.substr(0, 5) === "blob:";
  14534. var isBase64 = fromData && url.indexOf("base64") !== -1;
  14535. var texture = fallback ? fallback : new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_URL);
  14536. // establish the file extension, if possible
  14537. var lastDot = url.lastIndexOf('.');
  14538. var extension = forcedExtension ? forcedExtension : (lastDot > -1 ? url.substring(lastDot).toLowerCase() : "");
  14539. var loader = null;
  14540. for (var _i = 0, _a = Engine._TextureLoaders; _i < _a.length; _i++) {
  14541. var availableLoader = _a[_i];
  14542. if (availableLoader.canLoad(extension, this._textureFormatInUse, fallback, isBase64, buffer ? true : false)) {
  14543. loader = availableLoader;
  14544. break;
  14545. }
  14546. }
  14547. if (loader) {
  14548. url = loader.transformUrl(url, this._textureFormatInUse);
  14549. }
  14550. if (scene) {
  14551. scene._addPendingData(texture);
  14552. }
  14553. texture.url = url;
  14554. texture.generateMipMaps = !noMipmap;
  14555. texture.samplingMode = samplingMode;
  14556. texture.invertY = invertY;
  14557. if (!this._doNotHandleContextLost) {
  14558. // Keep a link to the buffer only if we plan to handle context lost
  14559. texture._buffer = buffer;
  14560. }
  14561. var onLoadObserver = null;
  14562. if (onLoad && !fallback) {
  14563. onLoadObserver = texture.onLoadedObservable.add(onLoad);
  14564. }
  14565. if (!fallback)
  14566. this._internalTexturesCache.push(texture);
  14567. var onInternalError = function (message, exception) {
  14568. if (scene) {
  14569. scene._removePendingData(texture);
  14570. }
  14571. var customFallback = false;
  14572. if (loader) {
  14573. var fallbackUrl = loader.getFallbackTextureUrl(url, _this._textureFormatInUse);
  14574. if (fallbackUrl) {
  14575. // Add Back
  14576. customFallback = true;
  14577. _this.createTexture(urlArg, noMipmap, invertY, scene, samplingMode, null, onError, buffer, texture);
  14578. }
  14579. }
  14580. if (!customFallback) {
  14581. if (onLoadObserver) {
  14582. texture.onLoadedObservable.remove(onLoadObserver);
  14583. }
  14584. if (BABYLON.Tools.UseFallbackTexture) {
  14585. _this.createTexture(BABYLON.Tools.fallbackTexture, noMipmap, invertY, scene, samplingMode, null, onError, buffer, texture);
  14586. }
  14587. }
  14588. if (onError) {
  14589. onError(message || "Unknown error", exception);
  14590. }
  14591. };
  14592. // processing for non-image formats
  14593. if (loader) {
  14594. var callback = function (data) {
  14595. loader.loadData(data, texture, function (width, height, loadMipmap, isCompressed, done) {
  14596. _this._prepareWebGLTexture(texture, scene, width, height, invertY, !loadMipmap, isCompressed, function () {
  14597. done();
  14598. return false;
  14599. }, samplingMode);
  14600. });
  14601. };
  14602. if (!buffer) {
  14603. this._loadFile(url, callback, undefined, scene ? scene.database : undefined, true, function (request, exception) {
  14604. onInternalError("Unable to load " + (request ? request.responseURL : url, exception));
  14605. });
  14606. }
  14607. else {
  14608. callback(buffer);
  14609. }
  14610. }
  14611. else {
  14612. var onload = function (img) {
  14613. if (fromBlob && !_this._doNotHandleContextLost) {
  14614. // We need to store the image if we need to rebuild the texture
  14615. // in case of a webgl context lost
  14616. texture._buffer = img;
  14617. }
  14618. _this._prepareWebGLTexture(texture, scene, img.width, img.height, invertY, noMipmap, false, function (potWidth, potHeight, continuationCallback) {
  14619. var gl = _this._gl;
  14620. var isPot = (img.width === potWidth && img.height === potHeight);
  14621. var internalFormat = format ? _this._getInternalFormat(format) : ((extension === ".jpg") ? gl.RGB : gl.RGBA);
  14622. if (isPot) {
  14623. gl.texImage2D(gl.TEXTURE_2D, 0, internalFormat, internalFormat, gl.UNSIGNED_BYTE, img);
  14624. return false;
  14625. }
  14626. var maxTextureSize = _this._caps.maxTextureSize;
  14627. if (img.width > maxTextureSize || img.height > maxTextureSize) {
  14628. _this._prepareWorkingCanvas();
  14629. if (!_this._workingCanvas || !_this._workingContext) {
  14630. return false;
  14631. }
  14632. _this._workingCanvas.width = potWidth;
  14633. _this._workingCanvas.height = potHeight;
  14634. _this._workingContext.drawImage(img, 0, 0, img.width, img.height, 0, 0, potWidth, potHeight);
  14635. gl.texImage2D(gl.TEXTURE_2D, 0, internalFormat, internalFormat, gl.UNSIGNED_BYTE, _this._workingCanvas);
  14636. texture.width = potWidth;
  14637. texture.height = potHeight;
  14638. return false;
  14639. }
  14640. else {
  14641. // Using shaders when possible to rescale because canvas.drawImage is lossy
  14642. var source_1 = new BABYLON.InternalTexture(_this, BABYLON.InternalTexture.DATASOURCE_TEMP);
  14643. _this._bindTextureDirectly(gl.TEXTURE_2D, source_1, true);
  14644. gl.texImage2D(gl.TEXTURE_2D, 0, internalFormat, internalFormat, gl.UNSIGNED_BYTE, img);
  14645. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, gl.LINEAR);
  14646. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, gl.LINEAR);
  14647. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  14648. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  14649. _this._rescaleTexture(source_1, texture, scene, internalFormat, function () {
  14650. _this._releaseTexture(source_1);
  14651. _this._bindTextureDirectly(gl.TEXTURE_2D, texture, true);
  14652. continuationCallback();
  14653. });
  14654. }
  14655. return true;
  14656. }, samplingMode);
  14657. };
  14658. if (!fromData || isBase64) {
  14659. if (buffer instanceof HTMLImageElement) {
  14660. onload(buffer);
  14661. }
  14662. else {
  14663. BABYLON.Tools.LoadImage(url, onload, onInternalError, scene ? scene.database : null);
  14664. }
  14665. }
  14666. else if (typeof buffer === "string" || buffer instanceof ArrayBuffer || buffer instanceof Blob) {
  14667. BABYLON.Tools.LoadImage(buffer, onload, onInternalError, scene ? scene.database : null);
  14668. }
  14669. else {
  14670. onload(buffer);
  14671. }
  14672. }
  14673. return texture;
  14674. };
  14675. Engine.prototype._rescaleTexture = function (source, destination, scene, internalFormat, onComplete) {
  14676. var _this = this;
  14677. var rtt = this.createRenderTargetTexture({
  14678. width: destination.width,
  14679. height: destination.height,
  14680. }, {
  14681. generateMipMaps: false,
  14682. type: Engine.TEXTURETYPE_UNSIGNED_INT,
  14683. samplingMode: Engine.TEXTURE_BILINEAR_SAMPLINGMODE,
  14684. generateDepthBuffer: false,
  14685. generateStencilBuffer: false
  14686. });
  14687. if (!this._rescalePostProcess) {
  14688. this._rescalePostProcess = new BABYLON.PassPostProcess("rescale", 1, null, Engine.TEXTURE_BILINEAR_SAMPLINGMODE, this, false, Engine.TEXTURETYPE_UNSIGNED_INT);
  14689. }
  14690. this._rescalePostProcess.getEffect().executeWhenCompiled(function () {
  14691. _this._rescalePostProcess.onApply = function (effect) {
  14692. effect._bindTexture("textureSampler", source);
  14693. };
  14694. var hostingScene = scene;
  14695. if (!hostingScene) {
  14696. hostingScene = _this.scenes[_this.scenes.length - 1];
  14697. }
  14698. hostingScene.postProcessManager.directRender([_this._rescalePostProcess], rtt, true);
  14699. _this._bindTextureDirectly(_this._gl.TEXTURE_2D, destination, true);
  14700. _this._gl.copyTexImage2D(_this._gl.TEXTURE_2D, 0, internalFormat, 0, 0, destination.width, destination.height, 0);
  14701. _this.unBindFramebuffer(rtt);
  14702. _this._releaseTexture(rtt);
  14703. if (onComplete) {
  14704. onComplete();
  14705. }
  14706. });
  14707. };
  14708. /**
  14709. * Update a raw texture
  14710. * @param texture defines the texture to update
  14711. * @param data defines the data to store in the texture
  14712. * @param format defines the format of the data
  14713. * @param invertY defines if data must be stored with Y axis inverted
  14714. * @param compression defines the compression used (null by default)
  14715. * @param type defines the type fo the data (BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT by default)
  14716. */
  14717. Engine.prototype.updateRawTexture = function (texture, data, format, invertY, compression, type) {
  14718. if (compression === void 0) { compression = null; }
  14719. if (type === void 0) { type = Engine.TEXTURETYPE_UNSIGNED_INT; }
  14720. if (!texture) {
  14721. return;
  14722. }
  14723. // babylon's internalSizedFomat but gl's texImage2D internalFormat
  14724. var internalSizedFomat = this._getRGBABufferInternalSizedFormat(type, format);
  14725. // babylon's internalFormat but gl's texImage2D format
  14726. var internalFormat = this._getInternalFormat(format);
  14727. var textureType = this._getWebGLTextureType(type);
  14728. this._bindTextureDirectly(this._gl.TEXTURE_2D, texture, true);
  14729. this._unpackFlipY(invertY === undefined ? true : (invertY ? true : false));
  14730. if (!this._doNotHandleContextLost) {
  14731. texture._bufferView = data;
  14732. texture.format = format;
  14733. texture.type = type;
  14734. texture.invertY = invertY;
  14735. texture._compression = compression;
  14736. }
  14737. if (texture.width % 4 !== 0) {
  14738. this._gl.pixelStorei(this._gl.UNPACK_ALIGNMENT, 1);
  14739. }
  14740. if (compression && data) {
  14741. this._gl.compressedTexImage2D(this._gl.TEXTURE_2D, 0, this.getCaps().s3tc[compression], texture.width, texture.height, 0, data);
  14742. }
  14743. else {
  14744. this._gl.texImage2D(this._gl.TEXTURE_2D, 0, internalSizedFomat, texture.width, texture.height, 0, internalFormat, textureType, data);
  14745. }
  14746. if (texture.generateMipMaps) {
  14747. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  14748. }
  14749. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14750. // this.resetTextureCache();
  14751. texture.isReady = true;
  14752. };
  14753. /**
  14754. * Creates a raw texture
  14755. * @param data defines the data to store in the texture
  14756. * @param width defines the width of the texture
  14757. * @param height defines the height of the texture
  14758. * @param format defines the format of the data
  14759. * @param generateMipMaps defines if the engine should generate the mip levels
  14760. * @param invertY defines if data must be stored with Y axis inverted
  14761. * @param samplingMode defines the required sampling mode (BABYLON.Texture.NEAREST_SAMPLINGMODE by default)
  14762. * @param compression defines the compression used (null by default)
  14763. * @param type defines the type fo the data (BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT by default)
  14764. * @returns the raw texture inside an InternalTexture
  14765. */
  14766. Engine.prototype.createRawTexture = function (data, width, height, format, generateMipMaps, invertY, samplingMode, compression, type) {
  14767. if (compression === void 0) { compression = null; }
  14768. if (type === void 0) { type = Engine.TEXTURETYPE_UNSIGNED_INT; }
  14769. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_RAW);
  14770. texture.baseWidth = width;
  14771. texture.baseHeight = height;
  14772. texture.width = width;
  14773. texture.height = height;
  14774. texture.format = format;
  14775. texture.generateMipMaps = generateMipMaps;
  14776. texture.samplingMode = samplingMode;
  14777. texture.invertY = invertY;
  14778. texture._compression = compression;
  14779. texture.type = type;
  14780. if (!this._doNotHandleContextLost) {
  14781. texture._bufferView = data;
  14782. }
  14783. this.updateRawTexture(texture, data, format, invertY, compression, type);
  14784. this._bindTextureDirectly(this._gl.TEXTURE_2D, texture, true);
  14785. // Filters
  14786. var filters = this._getSamplingParameters(samplingMode, generateMipMaps);
  14787. this._gl.texParameteri(this._gl.TEXTURE_2D, this._gl.TEXTURE_MAG_FILTER, filters.mag);
  14788. this._gl.texParameteri(this._gl.TEXTURE_2D, this._gl.TEXTURE_MIN_FILTER, filters.min);
  14789. if (generateMipMaps) {
  14790. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  14791. }
  14792. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14793. this._internalTexturesCache.push(texture);
  14794. return texture;
  14795. };
  14796. /** @hidden */
  14797. Engine.prototype._unpackFlipY = function (value) {
  14798. if (this._unpackFlipYCached !== value) {
  14799. this._gl.pixelStorei(this._gl.UNPACK_FLIP_Y_WEBGL, value ? 1 : 0);
  14800. if (this.enableUnpackFlipYCached) {
  14801. this._unpackFlipYCached = value;
  14802. }
  14803. }
  14804. };
  14805. /** @hidden */
  14806. Engine.prototype._getUnpackAlignement = function () {
  14807. return this._gl.getParameter(this._gl.UNPACK_ALIGNMENT);
  14808. };
  14809. /**
  14810. * Creates a dynamic texture
  14811. * @param width defines the width of the texture
  14812. * @param height defines the height of the texture
  14813. * @param generateMipMaps defines if the engine should generate the mip levels
  14814. * @param samplingMode defines the required sampling mode (BABYLON.Texture.NEAREST_SAMPLINGMODE by default)
  14815. * @returns the dynamic texture inside an InternalTexture
  14816. */
  14817. Engine.prototype.createDynamicTexture = function (width, height, generateMipMaps, samplingMode) {
  14818. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_DYNAMIC);
  14819. texture.baseWidth = width;
  14820. texture.baseHeight = height;
  14821. if (generateMipMaps) {
  14822. width = this.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(width, this._caps.maxTextureSize) : width;
  14823. height = this.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(height, this._caps.maxTextureSize) : height;
  14824. }
  14825. // this.resetTextureCache();
  14826. texture.width = width;
  14827. texture.height = height;
  14828. texture.isReady = false;
  14829. texture.generateMipMaps = generateMipMaps;
  14830. texture.samplingMode = samplingMode;
  14831. this.updateTextureSamplingMode(samplingMode, texture);
  14832. this._internalTexturesCache.push(texture);
  14833. return texture;
  14834. };
  14835. /**
  14836. * Update the sampling mode of a given texture
  14837. * @param samplingMode defines the required sampling mode
  14838. * @param texture defines the texture to update
  14839. */
  14840. Engine.prototype.updateTextureSamplingMode = function (samplingMode, texture) {
  14841. var filters = this._getSamplingParameters(samplingMode, texture.generateMipMaps);
  14842. if (texture.isCube) {
  14843. this._setTextureParameterInteger(this._gl.TEXTURE_CUBE_MAP, this._gl.TEXTURE_MAG_FILTER, filters.mag, texture);
  14844. this._setTextureParameterInteger(this._gl.TEXTURE_CUBE_MAP, this._gl.TEXTURE_MIN_FILTER, filters.min);
  14845. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, null);
  14846. }
  14847. else if (texture.is3D) {
  14848. this._setTextureParameterInteger(this._gl.TEXTURE_3D, this._gl.TEXTURE_MAG_FILTER, filters.mag, texture);
  14849. this._setTextureParameterInteger(this._gl.TEXTURE_3D, this._gl.TEXTURE_MIN_FILTER, filters.min);
  14850. this._bindTextureDirectly(this._gl.TEXTURE_3D, null);
  14851. }
  14852. else {
  14853. this._setTextureParameterInteger(this._gl.TEXTURE_2D, this._gl.TEXTURE_MAG_FILTER, filters.mag, texture);
  14854. this._setTextureParameterInteger(this._gl.TEXTURE_2D, this._gl.TEXTURE_MIN_FILTER, filters.min);
  14855. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14856. }
  14857. texture.samplingMode = samplingMode;
  14858. };
  14859. /**
  14860. * Update the content of a dynamic texture
  14861. * @param texture defines the texture to update
  14862. * @param canvas defines the canvas containing the source
  14863. * @param invertY defines if data must be stored with Y axis inverted
  14864. * @param premulAlpha defines if alpha is stored as premultiplied
  14865. * @param format defines the format of the data
  14866. */
  14867. Engine.prototype.updateDynamicTexture = function (texture, canvas, invertY, premulAlpha, format) {
  14868. if (premulAlpha === void 0) { premulAlpha = false; }
  14869. if (!texture) {
  14870. return;
  14871. }
  14872. this._bindTextureDirectly(this._gl.TEXTURE_2D, texture, true);
  14873. this._unpackFlipY(invertY);
  14874. if (premulAlpha) {
  14875. this._gl.pixelStorei(this._gl.UNPACK_PREMULTIPLY_ALPHA_WEBGL, 1);
  14876. }
  14877. var internalFormat = format ? this._getInternalFormat(format) : this._gl.RGBA;
  14878. this._gl.texImage2D(this._gl.TEXTURE_2D, 0, internalFormat, internalFormat, this._gl.UNSIGNED_BYTE, canvas);
  14879. if (texture.generateMipMaps) {
  14880. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  14881. }
  14882. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14883. if (premulAlpha) {
  14884. this._gl.pixelStorei(this._gl.UNPACK_PREMULTIPLY_ALPHA_WEBGL, 0);
  14885. }
  14886. texture.isReady = true;
  14887. };
  14888. /**
  14889. * Update a video texture
  14890. * @param texture defines the texture to update
  14891. * @param video defines the video element to use
  14892. * @param invertY defines if data must be stored with Y axis inverted
  14893. */
  14894. Engine.prototype.updateVideoTexture = function (texture, video, invertY) {
  14895. if (!texture || texture._isDisabled) {
  14896. return;
  14897. }
  14898. var wasPreviouslyBound = this._bindTextureDirectly(this._gl.TEXTURE_2D, texture, true);
  14899. this._unpackFlipY(!invertY); // Video are upside down by default
  14900. try {
  14901. // Testing video texture support
  14902. if (this._videoTextureSupported === undefined) {
  14903. this._gl.texImage2D(this._gl.TEXTURE_2D, 0, this._gl.RGBA, this._gl.RGBA, this._gl.UNSIGNED_BYTE, video);
  14904. if (this._gl.getError() !== 0) {
  14905. this._videoTextureSupported = false;
  14906. }
  14907. else {
  14908. this._videoTextureSupported = true;
  14909. }
  14910. }
  14911. // Copy video through the current working canvas if video texture is not supported
  14912. if (!this._videoTextureSupported) {
  14913. if (!texture._workingCanvas) {
  14914. texture._workingCanvas = document.createElement("canvas");
  14915. var context = texture._workingCanvas.getContext("2d");
  14916. if (!context) {
  14917. throw new Error("Unable to get 2d context");
  14918. }
  14919. texture._workingContext = context;
  14920. texture._workingCanvas.width = texture.width;
  14921. texture._workingCanvas.height = texture.height;
  14922. }
  14923. texture._workingContext.drawImage(video, 0, 0, video.videoWidth, video.videoHeight, 0, 0, texture.width, texture.height);
  14924. this._gl.texImage2D(this._gl.TEXTURE_2D, 0, this._gl.RGBA, this._gl.RGBA, this._gl.UNSIGNED_BYTE, texture._workingCanvas);
  14925. }
  14926. else {
  14927. this._gl.texImage2D(this._gl.TEXTURE_2D, 0, this._gl.RGBA, this._gl.RGBA, this._gl.UNSIGNED_BYTE, video);
  14928. }
  14929. if (texture.generateMipMaps) {
  14930. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  14931. }
  14932. if (!wasPreviouslyBound) {
  14933. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14934. }
  14935. // this.resetTextureCache();
  14936. texture.isReady = true;
  14937. }
  14938. catch (ex) {
  14939. // Something unexpected
  14940. // Let's disable the texture
  14941. texture._isDisabled = true;
  14942. }
  14943. };
  14944. /**
  14945. * Updates a depth texture Comparison Mode and Function.
  14946. * If the comparison Function is equal to 0, the mode will be set to none.
  14947. * Otherwise, this only works in webgl 2 and requires a shadow sampler in the shader.
  14948. * @param texture The texture to set the comparison function for
  14949. * @param comparisonFunction The comparison function to set, 0 if no comparison required
  14950. */
  14951. Engine.prototype.updateTextureComparisonFunction = function (texture, comparisonFunction) {
  14952. if (this.webGLVersion === 1) {
  14953. BABYLON.Tools.Error("WebGL 1 does not support texture comparison.");
  14954. return;
  14955. }
  14956. var gl = this._gl;
  14957. if (texture.isCube) {
  14958. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, texture, true);
  14959. if (comparisonFunction === 0) {
  14960. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_COMPARE_FUNC, Engine.LEQUAL);
  14961. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_COMPARE_MODE, gl.NONE);
  14962. }
  14963. else {
  14964. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_COMPARE_FUNC, comparisonFunction);
  14965. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_COMPARE_MODE, gl.COMPARE_REF_TO_TEXTURE);
  14966. }
  14967. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, null);
  14968. }
  14969. else {
  14970. this._bindTextureDirectly(this._gl.TEXTURE_2D, texture, true);
  14971. if (comparisonFunction === 0) {
  14972. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_COMPARE_FUNC, Engine.LEQUAL);
  14973. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_COMPARE_MODE, gl.NONE);
  14974. }
  14975. else {
  14976. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_COMPARE_FUNC, comparisonFunction);
  14977. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_COMPARE_MODE, gl.COMPARE_REF_TO_TEXTURE);
  14978. }
  14979. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  14980. }
  14981. texture._comparisonFunction = comparisonFunction;
  14982. };
  14983. Engine.prototype._setupDepthStencilTexture = function (internalTexture, size, generateStencil, bilinearFiltering, comparisonFunction) {
  14984. var width = size.width || size;
  14985. var height = size.height || size;
  14986. internalTexture.baseWidth = width;
  14987. internalTexture.baseHeight = height;
  14988. internalTexture.width = width;
  14989. internalTexture.height = height;
  14990. internalTexture.isReady = true;
  14991. internalTexture.samples = 1;
  14992. internalTexture.generateMipMaps = false;
  14993. internalTexture._generateDepthBuffer = true;
  14994. internalTexture._generateStencilBuffer = generateStencil;
  14995. internalTexture.samplingMode = bilinearFiltering ? Engine.TEXTURE_BILINEAR_SAMPLINGMODE : Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  14996. internalTexture.type = Engine.TEXTURETYPE_UNSIGNED_INT;
  14997. internalTexture._comparisonFunction = comparisonFunction;
  14998. var gl = this._gl;
  14999. var target = internalTexture.isCube ? gl.TEXTURE_CUBE_MAP : gl.TEXTURE_2D;
  15000. var samplingParameters = this._getSamplingParameters(internalTexture.samplingMode, false);
  15001. gl.texParameteri(target, gl.TEXTURE_MAG_FILTER, samplingParameters.mag);
  15002. gl.texParameteri(target, gl.TEXTURE_MIN_FILTER, samplingParameters.min);
  15003. gl.texParameteri(target, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15004. gl.texParameteri(target, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15005. if (comparisonFunction === 0) {
  15006. gl.texParameteri(target, gl.TEXTURE_COMPARE_FUNC, Engine.LEQUAL);
  15007. gl.texParameteri(target, gl.TEXTURE_COMPARE_MODE, gl.NONE);
  15008. }
  15009. else {
  15010. gl.texParameteri(target, gl.TEXTURE_COMPARE_FUNC, comparisonFunction);
  15011. gl.texParameteri(target, gl.TEXTURE_COMPARE_MODE, gl.COMPARE_REF_TO_TEXTURE);
  15012. }
  15013. };
  15014. /**
  15015. * Creates a depth stencil texture.
  15016. * This is only available in WebGL 2 or with the depth texture extension available.
  15017. * @param size The size of face edge in the texture.
  15018. * @param options The options defining the texture.
  15019. * @returns The texture
  15020. */
  15021. Engine.prototype.createDepthStencilTexture = function (size, options) {
  15022. if (options.isCube) {
  15023. var width = size.width || size;
  15024. return this._createDepthStencilCubeTexture(width, options);
  15025. }
  15026. else {
  15027. return this._createDepthStencilTexture(size, options);
  15028. }
  15029. };
  15030. /**
  15031. * Creates a depth stencil texture.
  15032. * This is only available in WebGL 2 or with the depth texture extension available.
  15033. * @param size The size of face edge in the texture.
  15034. * @param options The options defining the texture.
  15035. * @returns The texture
  15036. */
  15037. Engine.prototype._createDepthStencilTexture = function (size, options) {
  15038. var internalTexture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_DEPTHTEXTURE);
  15039. if (!this._caps.depthTextureExtension) {
  15040. BABYLON.Tools.Error("Depth texture is not supported by your browser or hardware.");
  15041. return internalTexture;
  15042. }
  15043. var internalOptions = __assign({ bilinearFiltering: false, comparisonFunction: 0, generateStencil: false }, options);
  15044. var gl = this._gl;
  15045. this._bindTextureDirectly(gl.TEXTURE_2D, internalTexture, true);
  15046. this._setupDepthStencilTexture(internalTexture, size, internalOptions.generateStencil, internalOptions.bilinearFiltering, internalOptions.comparisonFunction);
  15047. if (this.webGLVersion > 1) {
  15048. if (internalOptions.generateStencil) {
  15049. gl.texImage2D(gl.TEXTURE_2D, 0, gl.DEPTH24_STENCIL8, internalTexture.width, internalTexture.height, 0, gl.DEPTH_STENCIL, gl.UNSIGNED_INT_24_8, null);
  15050. }
  15051. else {
  15052. gl.texImage2D(gl.TEXTURE_2D, 0, gl.DEPTH_COMPONENT24, internalTexture.width, internalTexture.height, 0, gl.DEPTH_COMPONENT, gl.UNSIGNED_INT, null);
  15053. }
  15054. }
  15055. else {
  15056. if (internalOptions.generateStencil) {
  15057. gl.texImage2D(gl.TEXTURE_2D, 0, gl.DEPTH_STENCIL, internalTexture.width, internalTexture.height, 0, gl.DEPTH_STENCIL, gl.UNSIGNED_INT_24_8, null);
  15058. }
  15059. else {
  15060. gl.texImage2D(gl.TEXTURE_2D, 0, gl.DEPTH_COMPONENT, internalTexture.width, internalTexture.height, 0, gl.DEPTH_COMPONENT, gl.UNSIGNED_INT, null);
  15061. }
  15062. }
  15063. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  15064. return internalTexture;
  15065. };
  15066. /**
  15067. * Creates a depth stencil cube texture.
  15068. * This is only available in WebGL 2.
  15069. * @param size The size of face edge in the cube texture.
  15070. * @param options The options defining the cube texture.
  15071. * @returns The cube texture
  15072. */
  15073. Engine.prototype._createDepthStencilCubeTexture = function (size, options) {
  15074. var internalTexture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_UNKNOWN);
  15075. internalTexture.isCube = true;
  15076. if (this.webGLVersion === 1) {
  15077. BABYLON.Tools.Error("Depth cube texture is not supported by WebGL 1.");
  15078. return internalTexture;
  15079. }
  15080. var internalOptions = __assign({ bilinearFiltering: false, comparisonFunction: 0, generateStencil: false }, options);
  15081. var gl = this._gl;
  15082. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, internalTexture, true);
  15083. this._setupDepthStencilTexture(internalTexture, size, internalOptions.generateStencil, internalOptions.bilinearFiltering, internalOptions.comparisonFunction);
  15084. // Create the depth/stencil buffer
  15085. for (var face = 0; face < 6; face++) {
  15086. if (internalOptions.generateStencil) {
  15087. gl.texImage2D(gl.TEXTURE_CUBE_MAP_POSITIVE_X + face, 0, gl.DEPTH24_STENCIL8, size, size, 0, gl.DEPTH_STENCIL, gl.UNSIGNED_INT_24_8, null);
  15088. }
  15089. else {
  15090. gl.texImage2D(gl.TEXTURE_CUBE_MAP_POSITIVE_X + face, 0, gl.DEPTH_COMPONENT24, size, size, 0, gl.DEPTH_COMPONENT, gl.UNSIGNED_INT, null);
  15091. }
  15092. }
  15093. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15094. return internalTexture;
  15095. };
  15096. /**
  15097. * Sets the frame buffer Depth / Stencil attachement of the render target to the defined depth stencil texture.
  15098. * @param renderTarget The render target to set the frame buffer for
  15099. */
  15100. Engine.prototype.setFrameBufferDepthStencilTexture = function (renderTarget) {
  15101. // Create the framebuffer
  15102. var internalTexture = renderTarget.getInternalTexture();
  15103. if (!internalTexture || !internalTexture._framebuffer || !renderTarget.depthStencilTexture) {
  15104. return;
  15105. }
  15106. var gl = this._gl;
  15107. var depthStencilTexture = renderTarget.depthStencilTexture;
  15108. this.bindUnboundFramebuffer(internalTexture._framebuffer);
  15109. if (depthStencilTexture.isCube) {
  15110. if (depthStencilTexture._generateStencilBuffer) {
  15111. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_STENCIL_ATTACHMENT, gl.TEXTURE_CUBE_MAP_POSITIVE_X, depthStencilTexture._webGLTexture, 0);
  15112. }
  15113. else {
  15114. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_ATTACHMENT, gl.TEXTURE_CUBE_MAP_POSITIVE_X, depthStencilTexture._webGLTexture, 0);
  15115. }
  15116. }
  15117. else {
  15118. if (depthStencilTexture._generateStencilBuffer) {
  15119. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_STENCIL_ATTACHMENT, gl.TEXTURE_2D, depthStencilTexture._webGLTexture, 0);
  15120. }
  15121. else {
  15122. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_ATTACHMENT, gl.TEXTURE_2D, depthStencilTexture._webGLTexture, 0);
  15123. }
  15124. }
  15125. this.bindUnboundFramebuffer(null);
  15126. };
  15127. /**
  15128. * Creates a new render target texture
  15129. * @param size defines the size of the texture
  15130. * @param options defines the options used to create the texture
  15131. * @returns a new render target texture stored in an InternalTexture
  15132. */
  15133. Engine.prototype.createRenderTargetTexture = function (size, options) {
  15134. var fullOptions = new RenderTargetCreationOptions();
  15135. if (options !== undefined && typeof options === "object") {
  15136. fullOptions.generateMipMaps = options.generateMipMaps;
  15137. fullOptions.generateDepthBuffer = options.generateDepthBuffer === undefined ? true : options.generateDepthBuffer;
  15138. fullOptions.generateStencilBuffer = fullOptions.generateDepthBuffer && options.generateStencilBuffer;
  15139. fullOptions.type = options.type === undefined ? Engine.TEXTURETYPE_UNSIGNED_INT : options.type;
  15140. fullOptions.samplingMode = options.samplingMode === undefined ? Engine.TEXTURE_TRILINEAR_SAMPLINGMODE : options.samplingMode;
  15141. fullOptions.format = options.format === undefined ? Engine.TEXTUREFORMAT_RGBA : options.format;
  15142. }
  15143. else {
  15144. fullOptions.generateMipMaps = options;
  15145. fullOptions.generateDepthBuffer = true;
  15146. fullOptions.generateStencilBuffer = false;
  15147. fullOptions.type = Engine.TEXTURETYPE_UNSIGNED_INT;
  15148. fullOptions.samplingMode = Engine.TEXTURE_TRILINEAR_SAMPLINGMODE;
  15149. fullOptions.format = Engine.TEXTUREFORMAT_RGBA;
  15150. }
  15151. if (fullOptions.type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloatLinearFiltering) {
  15152. // if floating point linear (gl.FLOAT) then force to NEAREST_SAMPLINGMODE
  15153. fullOptions.samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15154. }
  15155. else if (fullOptions.type === Engine.TEXTURETYPE_HALF_FLOAT && !this._caps.textureHalfFloatLinearFiltering) {
  15156. // if floating point linear (HALF_FLOAT) then force to NEAREST_SAMPLINGMODE
  15157. fullOptions.samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15158. }
  15159. var gl = this._gl;
  15160. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_RENDERTARGET);
  15161. this._bindTextureDirectly(gl.TEXTURE_2D, texture, true);
  15162. var width = size.width || size;
  15163. var height = size.height || size;
  15164. var filters = this._getSamplingParameters(fullOptions.samplingMode, fullOptions.generateMipMaps ? true : false);
  15165. if (fullOptions.type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloat) {
  15166. fullOptions.type = Engine.TEXTURETYPE_UNSIGNED_INT;
  15167. BABYLON.Tools.Warn("Float textures are not supported. Render target forced to TEXTURETYPE_UNSIGNED_BYTE type");
  15168. }
  15169. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, filters.mag);
  15170. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, filters.min);
  15171. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15172. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15173. gl.texImage2D(gl.TEXTURE_2D, 0, this._getRGBABufferInternalSizedFormat(fullOptions.type, fullOptions.format), width, height, 0, this._getInternalFormat(fullOptions.format), this._getWebGLTextureType(fullOptions.type), null);
  15174. // Create the framebuffer
  15175. var currentFrameBuffer = this._currentFramebuffer;
  15176. var framebuffer = gl.createFramebuffer();
  15177. this.bindUnboundFramebuffer(framebuffer);
  15178. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.TEXTURE_2D, texture._webGLTexture, 0);
  15179. texture._depthStencilBuffer = this._setupFramebufferDepthAttachments(fullOptions.generateStencilBuffer ? true : false, fullOptions.generateDepthBuffer, width, height);
  15180. if (fullOptions.generateMipMaps) {
  15181. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  15182. }
  15183. // Unbind
  15184. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  15185. gl.bindRenderbuffer(gl.RENDERBUFFER, null);
  15186. this.bindUnboundFramebuffer(currentFrameBuffer);
  15187. texture._framebuffer = framebuffer;
  15188. texture.baseWidth = width;
  15189. texture.baseHeight = height;
  15190. texture.width = width;
  15191. texture.height = height;
  15192. texture.isReady = true;
  15193. texture.samples = 1;
  15194. texture.generateMipMaps = fullOptions.generateMipMaps ? true : false;
  15195. texture.samplingMode = fullOptions.samplingMode;
  15196. texture.type = fullOptions.type;
  15197. texture.format = fullOptions.format;
  15198. texture._generateDepthBuffer = fullOptions.generateDepthBuffer;
  15199. texture._generateStencilBuffer = fullOptions.generateStencilBuffer ? true : false;
  15200. // this.resetTextureCache();
  15201. this._internalTexturesCache.push(texture);
  15202. return texture;
  15203. };
  15204. /**
  15205. * Create a multi render target texture
  15206. * @see http://doc.babylonjs.com/features/webgl2#multiple-render-target
  15207. * @param size defines the size of the texture
  15208. * @param options defines the creation options
  15209. * @returns the cube texture as an InternalTexture
  15210. */
  15211. Engine.prototype.createMultipleRenderTarget = function (size, options) {
  15212. var generateMipMaps = false;
  15213. var generateDepthBuffer = true;
  15214. var generateStencilBuffer = false;
  15215. var generateDepthTexture = false;
  15216. var textureCount = 1;
  15217. var defaultType = Engine.TEXTURETYPE_UNSIGNED_INT;
  15218. var defaultSamplingMode = Engine.TEXTURE_TRILINEAR_SAMPLINGMODE;
  15219. var types = new Array();
  15220. var samplingModes = new Array();
  15221. if (options !== undefined) {
  15222. generateMipMaps = options.generateMipMaps === undefined ? false : options.generateMipMaps;
  15223. generateDepthBuffer = options.generateDepthBuffer === undefined ? true : options.generateDepthBuffer;
  15224. generateStencilBuffer = options.generateStencilBuffer === undefined ? false : options.generateStencilBuffer;
  15225. generateDepthTexture = options.generateDepthTexture === undefined ? false : options.generateDepthTexture;
  15226. textureCount = options.textureCount || 1;
  15227. if (options.types) {
  15228. types = options.types;
  15229. }
  15230. if (options.samplingModes) {
  15231. samplingModes = options.samplingModes;
  15232. }
  15233. }
  15234. var gl = this._gl;
  15235. // Create the framebuffer
  15236. var framebuffer = gl.createFramebuffer();
  15237. this.bindUnboundFramebuffer(framebuffer);
  15238. var width = size.width || size;
  15239. var height = size.height || size;
  15240. var textures = [];
  15241. var attachments = [];
  15242. var depthStencilBuffer = this._setupFramebufferDepthAttachments(generateStencilBuffer, generateDepthBuffer, width, height);
  15243. for (var i = 0; i < textureCount; i++) {
  15244. var samplingMode = samplingModes[i] || defaultSamplingMode;
  15245. var type = types[i] || defaultType;
  15246. if (type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloatLinearFiltering) {
  15247. // if floating point linear (gl.FLOAT) then force to NEAREST_SAMPLINGMODE
  15248. samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15249. }
  15250. else if (type === Engine.TEXTURETYPE_HALF_FLOAT && !this._caps.textureHalfFloatLinearFiltering) {
  15251. // if floating point linear (HALF_FLOAT) then force to NEAREST_SAMPLINGMODE
  15252. samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15253. }
  15254. var filters = this._getSamplingParameters(samplingMode, generateMipMaps);
  15255. if (type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloat) {
  15256. type = Engine.TEXTURETYPE_UNSIGNED_INT;
  15257. BABYLON.Tools.Warn("Float textures are not supported. Render target forced to TEXTURETYPE_UNSIGNED_BYTE type");
  15258. }
  15259. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_MULTIRENDERTARGET);
  15260. var attachment = gl[this.webGLVersion > 1 ? "COLOR_ATTACHMENT" + i : "COLOR_ATTACHMENT" + i + "_WEBGL"];
  15261. textures.push(texture);
  15262. attachments.push(attachment);
  15263. gl.activeTexture(gl["TEXTURE" + i]);
  15264. gl.bindTexture(gl.TEXTURE_2D, texture._webGLTexture);
  15265. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, filters.mag);
  15266. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, filters.min);
  15267. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15268. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15269. gl.texImage2D(gl.TEXTURE_2D, 0, this._getRGBABufferInternalSizedFormat(type), width, height, 0, gl.RGBA, this._getWebGLTextureType(type), null);
  15270. gl.framebufferTexture2D(gl.DRAW_FRAMEBUFFER, attachment, gl.TEXTURE_2D, texture._webGLTexture, 0);
  15271. if (generateMipMaps) {
  15272. this._gl.generateMipmap(this._gl.TEXTURE_2D);
  15273. }
  15274. // Unbind
  15275. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  15276. texture._framebuffer = framebuffer;
  15277. texture._depthStencilBuffer = depthStencilBuffer;
  15278. texture.baseWidth = width;
  15279. texture.baseHeight = height;
  15280. texture.width = width;
  15281. texture.height = height;
  15282. texture.isReady = true;
  15283. texture.samples = 1;
  15284. texture.generateMipMaps = generateMipMaps;
  15285. texture.samplingMode = samplingMode;
  15286. texture.type = type;
  15287. texture._generateDepthBuffer = generateDepthBuffer;
  15288. texture._generateStencilBuffer = generateStencilBuffer;
  15289. texture._attachments = attachments;
  15290. this._internalTexturesCache.push(texture);
  15291. }
  15292. if (generateDepthTexture && this._caps.depthTextureExtension) {
  15293. // Depth texture
  15294. var depthTexture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_MULTIRENDERTARGET);
  15295. gl.activeTexture(gl.TEXTURE0);
  15296. gl.bindTexture(gl.TEXTURE_2D, depthTexture._webGLTexture);
  15297. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, gl.NEAREST);
  15298. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, gl.NEAREST);
  15299. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15300. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15301. gl.texImage2D(gl.TEXTURE_2D, 0, this.webGLVersion < 2 ? gl.DEPTH_COMPONENT : gl.DEPTH_COMPONENT16, width, height, 0, gl.DEPTH_COMPONENT, gl.UNSIGNED_SHORT, null);
  15302. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.DEPTH_ATTACHMENT, gl.TEXTURE_2D, depthTexture._webGLTexture, 0);
  15303. depthTexture._framebuffer = framebuffer;
  15304. depthTexture.baseWidth = width;
  15305. depthTexture.baseHeight = height;
  15306. depthTexture.width = width;
  15307. depthTexture.height = height;
  15308. depthTexture.isReady = true;
  15309. depthTexture.samples = 1;
  15310. depthTexture.generateMipMaps = generateMipMaps;
  15311. depthTexture.samplingMode = gl.NEAREST;
  15312. depthTexture._generateDepthBuffer = generateDepthBuffer;
  15313. depthTexture._generateStencilBuffer = generateStencilBuffer;
  15314. textures.push(depthTexture);
  15315. this._internalTexturesCache.push(depthTexture);
  15316. }
  15317. gl.drawBuffers(attachments);
  15318. gl.bindRenderbuffer(gl.RENDERBUFFER, null);
  15319. this.bindUnboundFramebuffer(null);
  15320. this.resetTextureCache();
  15321. return textures;
  15322. };
  15323. Engine.prototype._setupFramebufferDepthAttachments = function (generateStencilBuffer, generateDepthBuffer, width, height, samples) {
  15324. if (samples === void 0) { samples = 1; }
  15325. var depthStencilBuffer = null;
  15326. var gl = this._gl;
  15327. // Create the depth/stencil buffer
  15328. if (generateStencilBuffer) {
  15329. depthStencilBuffer = gl.createRenderbuffer();
  15330. gl.bindRenderbuffer(gl.RENDERBUFFER, depthStencilBuffer);
  15331. if (samples > 1) {
  15332. gl.renderbufferStorageMultisample(gl.RENDERBUFFER, samples, gl.DEPTH24_STENCIL8, width, height);
  15333. }
  15334. else {
  15335. gl.renderbufferStorage(gl.RENDERBUFFER, gl.DEPTH_STENCIL, width, height);
  15336. }
  15337. gl.framebufferRenderbuffer(gl.FRAMEBUFFER, gl.DEPTH_STENCIL_ATTACHMENT, gl.RENDERBUFFER, depthStencilBuffer);
  15338. }
  15339. else if (generateDepthBuffer) {
  15340. depthStencilBuffer = gl.createRenderbuffer();
  15341. gl.bindRenderbuffer(gl.RENDERBUFFER, depthStencilBuffer);
  15342. if (samples > 1) {
  15343. gl.renderbufferStorageMultisample(gl.RENDERBUFFER, samples, gl.DEPTH_COMPONENT16, width, height);
  15344. }
  15345. else {
  15346. gl.renderbufferStorage(gl.RENDERBUFFER, gl.DEPTH_COMPONENT16, width, height);
  15347. }
  15348. gl.framebufferRenderbuffer(gl.FRAMEBUFFER, gl.DEPTH_ATTACHMENT, gl.RENDERBUFFER, depthStencilBuffer);
  15349. }
  15350. return depthStencilBuffer;
  15351. };
  15352. /**
  15353. * Updates the sample count of a render target texture
  15354. * @see http://doc.babylonjs.com/features/webgl2#multisample-render-targets
  15355. * @param texture defines the texture to update
  15356. * @param samples defines the sample count to set
  15357. * @returns the effective sample count (could be 0 if multisample render targets are not supported)
  15358. */
  15359. Engine.prototype.updateRenderTargetTextureSampleCount = function (texture, samples) {
  15360. if (this.webGLVersion < 2 || !texture) {
  15361. return 1;
  15362. }
  15363. if (texture.samples === samples) {
  15364. return samples;
  15365. }
  15366. var gl = this._gl;
  15367. samples = Math.min(samples, gl.getParameter(gl.MAX_SAMPLES));
  15368. // Dispose previous render buffers
  15369. if (texture._depthStencilBuffer) {
  15370. gl.deleteRenderbuffer(texture._depthStencilBuffer);
  15371. texture._depthStencilBuffer = null;
  15372. }
  15373. if (texture._MSAAFramebuffer) {
  15374. gl.deleteFramebuffer(texture._MSAAFramebuffer);
  15375. texture._MSAAFramebuffer = null;
  15376. }
  15377. if (texture._MSAARenderBuffer) {
  15378. gl.deleteRenderbuffer(texture._MSAARenderBuffer);
  15379. texture._MSAARenderBuffer = null;
  15380. }
  15381. if (samples > 1) {
  15382. var framebuffer = gl.createFramebuffer();
  15383. if (!framebuffer) {
  15384. throw new Error("Unable to create multi sampled framebuffer");
  15385. }
  15386. texture._MSAAFramebuffer = framebuffer;
  15387. this.bindUnboundFramebuffer(texture._MSAAFramebuffer);
  15388. var colorRenderbuffer = gl.createRenderbuffer();
  15389. if (!colorRenderbuffer) {
  15390. throw new Error("Unable to create multi sampled framebuffer");
  15391. }
  15392. gl.bindRenderbuffer(gl.RENDERBUFFER, colorRenderbuffer);
  15393. gl.renderbufferStorageMultisample(gl.RENDERBUFFER, samples, this._getRGBAMultiSampleBufferFormat(texture.type), texture.width, texture.height);
  15394. gl.framebufferRenderbuffer(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.RENDERBUFFER, colorRenderbuffer);
  15395. texture._MSAARenderBuffer = colorRenderbuffer;
  15396. }
  15397. else {
  15398. this.bindUnboundFramebuffer(texture._framebuffer);
  15399. }
  15400. texture.samples = samples;
  15401. texture._depthStencilBuffer = this._setupFramebufferDepthAttachments(texture._generateStencilBuffer, texture._generateDepthBuffer, texture.width, texture.height, samples);
  15402. gl.bindRenderbuffer(gl.RENDERBUFFER, null);
  15403. this.bindUnboundFramebuffer(null);
  15404. return samples;
  15405. };
  15406. /**
  15407. * Update the sample count for a given multiple render target texture
  15408. * @see http://doc.babylonjs.com/features/webgl2#multisample-render-targets
  15409. * @param textures defines the textures to update
  15410. * @param samples defines the sample count to set
  15411. * @returns the effective sample count (could be 0 if multisample render targets are not supported)
  15412. */
  15413. Engine.prototype.updateMultipleRenderTargetTextureSampleCount = function (textures, samples) {
  15414. if (this.webGLVersion < 2 || !textures || textures.length == 0) {
  15415. return 1;
  15416. }
  15417. if (textures[0].samples === samples) {
  15418. return samples;
  15419. }
  15420. var gl = this._gl;
  15421. samples = Math.min(samples, gl.getParameter(gl.MAX_SAMPLES));
  15422. // Dispose previous render buffers
  15423. if (textures[0]._depthStencilBuffer) {
  15424. gl.deleteRenderbuffer(textures[0]._depthStencilBuffer);
  15425. textures[0]._depthStencilBuffer = null;
  15426. }
  15427. if (textures[0]._MSAAFramebuffer) {
  15428. gl.deleteFramebuffer(textures[0]._MSAAFramebuffer);
  15429. textures[0]._MSAAFramebuffer = null;
  15430. }
  15431. for (var i = 0; i < textures.length; i++) {
  15432. if (textures[i]._MSAARenderBuffer) {
  15433. gl.deleteRenderbuffer(textures[i]._MSAARenderBuffer);
  15434. textures[i]._MSAARenderBuffer = null;
  15435. }
  15436. }
  15437. if (samples > 1) {
  15438. var framebuffer = gl.createFramebuffer();
  15439. if (!framebuffer) {
  15440. throw new Error("Unable to create multi sampled framebuffer");
  15441. }
  15442. this.bindUnboundFramebuffer(framebuffer);
  15443. var depthStencilBuffer = this._setupFramebufferDepthAttachments(textures[0]._generateStencilBuffer, textures[0]._generateDepthBuffer, textures[0].width, textures[0].height, samples);
  15444. var attachments = [];
  15445. for (var i = 0; i < textures.length; i++) {
  15446. var texture = textures[i];
  15447. var attachment = gl[this.webGLVersion > 1 ? "COLOR_ATTACHMENT" + i : "COLOR_ATTACHMENT" + i + "_WEBGL"];
  15448. var colorRenderbuffer = gl.createRenderbuffer();
  15449. if (!colorRenderbuffer) {
  15450. throw new Error("Unable to create multi sampled framebuffer");
  15451. }
  15452. gl.bindRenderbuffer(gl.RENDERBUFFER, colorRenderbuffer);
  15453. gl.renderbufferStorageMultisample(gl.RENDERBUFFER, samples, this._getRGBAMultiSampleBufferFormat(texture.type), texture.width, texture.height);
  15454. gl.framebufferRenderbuffer(gl.FRAMEBUFFER, attachment, gl.RENDERBUFFER, colorRenderbuffer);
  15455. texture._MSAAFramebuffer = framebuffer;
  15456. texture._MSAARenderBuffer = colorRenderbuffer;
  15457. texture.samples = samples;
  15458. texture._depthStencilBuffer = depthStencilBuffer;
  15459. gl.bindRenderbuffer(gl.RENDERBUFFER, null);
  15460. attachments.push(attachment);
  15461. }
  15462. gl.drawBuffers(attachments);
  15463. }
  15464. else {
  15465. this.bindUnboundFramebuffer(textures[0]._framebuffer);
  15466. }
  15467. this.bindUnboundFramebuffer(null);
  15468. return samples;
  15469. };
  15470. /** @hidden */
  15471. Engine.prototype._uploadCompressedDataToTextureDirectly = function (texture, internalFormat, width, height, data, faceIndex, lod) {
  15472. if (faceIndex === void 0) { faceIndex = 0; }
  15473. if (lod === void 0) { lod = 0; }
  15474. var gl = this._gl;
  15475. var target = gl.TEXTURE_2D;
  15476. if (texture.isCube) {
  15477. target = gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex;
  15478. }
  15479. this._gl.compressedTexImage2D(target, lod, internalFormat, width, height, 0, data);
  15480. };
  15481. /** @hidden */
  15482. Engine.prototype._uploadDataToTextureDirectly = function (texture, imageData, faceIndex, lod) {
  15483. if (faceIndex === void 0) { faceIndex = 0; }
  15484. if (lod === void 0) { lod = 0; }
  15485. var gl = this._gl;
  15486. var textureType = this._getWebGLTextureType(texture.type);
  15487. var format = this._getInternalFormat(texture.format);
  15488. var internalFormat = this._getRGBABufferInternalSizedFormat(texture.type, format);
  15489. this._unpackFlipY(texture.invertY);
  15490. var target = gl.TEXTURE_2D;
  15491. if (texture.isCube) {
  15492. target = gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex;
  15493. }
  15494. var lodMaxWidth = Math.round(BABYLON.Scalar.Log2(texture.width));
  15495. var lodMaxHeight = Math.round(BABYLON.Scalar.Log2(texture.height));
  15496. var width = Math.pow(2, Math.max(lodMaxWidth - lod, 0));
  15497. var height = Math.pow(2, Math.max(lodMaxHeight - lod, 0));
  15498. gl.texImage2D(target, lod, internalFormat, width, height, 0, format, textureType, imageData);
  15499. };
  15500. /** @hidden */
  15501. Engine.prototype._uploadArrayBufferViewToTexture = function (texture, imageData, faceIndex, lod) {
  15502. if (faceIndex === void 0) { faceIndex = 0; }
  15503. if (lod === void 0) { lod = 0; }
  15504. var gl = this._gl;
  15505. var bindTarget = texture.isCube ? gl.TEXTURE_CUBE_MAP : gl.TEXTURE_2D;
  15506. this._bindTextureDirectly(bindTarget, texture, true);
  15507. this._uploadDataToTextureDirectly(texture, imageData, faceIndex, lod);
  15508. this._bindTextureDirectly(bindTarget, null, true);
  15509. };
  15510. /** @hidden */
  15511. Engine.prototype._uploadImageToTexture = function (texture, image, faceIndex, lod) {
  15512. if (faceIndex === void 0) { faceIndex = 0; }
  15513. if (lod === void 0) { lod = 0; }
  15514. var gl = this._gl;
  15515. var textureType = this._getWebGLTextureType(texture.type);
  15516. var format = this._getInternalFormat(texture.format);
  15517. var internalFormat = this._getRGBABufferInternalSizedFormat(texture.type, format);
  15518. var bindTarget = texture.isCube ? gl.TEXTURE_CUBE_MAP : gl.TEXTURE_2D;
  15519. this._bindTextureDirectly(bindTarget, texture, true);
  15520. this._unpackFlipY(texture.invertY);
  15521. var target = gl.TEXTURE_2D;
  15522. if (texture.isCube) {
  15523. target = gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex;
  15524. }
  15525. gl.texImage2D(target, lod, internalFormat, format, textureType, image);
  15526. this._bindTextureDirectly(bindTarget, null, true);
  15527. };
  15528. /**
  15529. * Creates a new render target cube texture
  15530. * @param size defines the size of the texture
  15531. * @param options defines the options used to create the texture
  15532. * @returns a new render target cube texture stored in an InternalTexture
  15533. */
  15534. Engine.prototype.createRenderTargetCubeTexture = function (size, options) {
  15535. var fullOptions = __assign({ generateMipMaps: true, generateDepthBuffer: true, generateStencilBuffer: false, type: Engine.TEXTURETYPE_UNSIGNED_INT, samplingMode: Engine.TEXTURE_TRILINEAR_SAMPLINGMODE, format: Engine.TEXTUREFORMAT_RGBA }, options);
  15536. fullOptions.generateStencilBuffer = fullOptions.generateDepthBuffer && fullOptions.generateStencilBuffer;
  15537. if (fullOptions.type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloatLinearFiltering) {
  15538. // if floating point linear (gl.FLOAT) then force to NEAREST_SAMPLINGMODE
  15539. fullOptions.samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15540. }
  15541. else if (fullOptions.type === Engine.TEXTURETYPE_HALF_FLOAT && !this._caps.textureHalfFloatLinearFiltering) {
  15542. // if floating point linear (HALF_FLOAT) then force to NEAREST_SAMPLINGMODE
  15543. fullOptions.samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15544. }
  15545. var gl = this._gl;
  15546. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_RENDERTARGET);
  15547. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  15548. var filters = this._getSamplingParameters(fullOptions.samplingMode, fullOptions.generateMipMaps);
  15549. if (fullOptions.type === Engine.TEXTURETYPE_FLOAT && !this._caps.textureFloat) {
  15550. fullOptions.type = Engine.TEXTURETYPE_UNSIGNED_INT;
  15551. BABYLON.Tools.Warn("Float textures are not supported. Cube render target forced to TEXTURETYPE_UNESIGNED_BYTE type");
  15552. }
  15553. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MAG_FILTER, filters.mag);
  15554. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MIN_FILTER, filters.min);
  15555. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15556. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15557. for (var face = 0; face < 6; face++) {
  15558. gl.texImage2D((gl.TEXTURE_CUBE_MAP_POSITIVE_X + face), 0, this._getRGBABufferInternalSizedFormat(fullOptions.type, fullOptions.format), size, size, 0, this._getInternalFormat(fullOptions.format), this._getWebGLTextureType(fullOptions.type), null);
  15559. }
  15560. // Create the framebuffer
  15561. var framebuffer = gl.createFramebuffer();
  15562. this.bindUnboundFramebuffer(framebuffer);
  15563. texture._depthStencilBuffer = this._setupFramebufferDepthAttachments(fullOptions.generateStencilBuffer, fullOptions.generateDepthBuffer, size, size);
  15564. // MipMaps
  15565. if (fullOptions.generateMipMaps) {
  15566. gl.generateMipmap(gl.TEXTURE_CUBE_MAP);
  15567. }
  15568. // Unbind
  15569. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15570. gl.bindRenderbuffer(gl.RENDERBUFFER, null);
  15571. this.bindUnboundFramebuffer(null);
  15572. texture._framebuffer = framebuffer;
  15573. texture.width = size;
  15574. texture.height = size;
  15575. texture.isReady = true;
  15576. texture.isCube = true;
  15577. texture.samples = 1;
  15578. texture.generateMipMaps = fullOptions.generateMipMaps;
  15579. texture.samplingMode = fullOptions.samplingMode;
  15580. texture.type = fullOptions.type;
  15581. texture.format = fullOptions.format;
  15582. texture._generateDepthBuffer = fullOptions.generateDepthBuffer;
  15583. texture._generateStencilBuffer = fullOptions.generateStencilBuffer;
  15584. this._internalTexturesCache.push(texture);
  15585. return texture;
  15586. };
  15587. /**
  15588. * Create a cube texture from prefiltered data (ie. the mipmaps contain ready to use data for PBR reflection)
  15589. * @param rootUrl defines the url where the file to load is located
  15590. * @param scene defines the current scene
  15591. * @param lodScale defines scale to apply to the mip map selection
  15592. * @param lodOffset defines offset to apply to the mip map selection
  15593. * @param onLoad defines an optional callback raised when the texture is loaded
  15594. * @param onError defines an optional callback raised if there is an issue to load the texture
  15595. * @param format defines the format of the data
  15596. * @param forcedExtension defines the extension to use to pick the right loader
  15597. * @param createPolynomials defines wheter or not to create polynomails harmonics for the texture
  15598. * @returns the cube texture as an InternalTexture
  15599. */
  15600. Engine.prototype.createPrefilteredCubeTexture = function (rootUrl, scene, lodScale, lodOffset, onLoad, onError, format, forcedExtension, createPolynomials) {
  15601. var _this = this;
  15602. if (onLoad === void 0) { onLoad = null; }
  15603. if (onError === void 0) { onError = null; }
  15604. if (forcedExtension === void 0) { forcedExtension = null; }
  15605. if (createPolynomials === void 0) { createPolynomials = true; }
  15606. var callback = function (loadData) {
  15607. if (!loadData) {
  15608. if (onLoad) {
  15609. onLoad(null);
  15610. }
  15611. return;
  15612. }
  15613. var texture = loadData.texture;
  15614. if (!createPolynomials) {
  15615. texture._sphericalPolynomial = new BABYLON.SphericalPolynomial();
  15616. }
  15617. else if (loadData.info.sphericalPolynomial) {
  15618. texture._sphericalPolynomial = loadData.info.sphericalPolynomial;
  15619. }
  15620. texture._dataSource = BABYLON.InternalTexture.DATASOURCE_CUBEPREFILTERED;
  15621. if (_this._caps.textureLOD) {
  15622. // Do not add extra process if texture lod is supported.
  15623. if (onLoad) {
  15624. onLoad(texture);
  15625. }
  15626. return;
  15627. }
  15628. var mipSlices = 3;
  15629. var gl = _this._gl;
  15630. var width = loadData.width;
  15631. if (!width) {
  15632. return;
  15633. }
  15634. var textures = [];
  15635. for (var i = 0; i < mipSlices; i++) {
  15636. //compute LOD from even spacing in smoothness (matching shader calculation)
  15637. var smoothness = i / (mipSlices - 1);
  15638. var roughness = 1 - smoothness;
  15639. var minLODIndex = lodOffset; // roughness = 0
  15640. var maxLODIndex = BABYLON.Scalar.Log2(width) * lodScale + lodOffset; // roughness = 1
  15641. var lodIndex = minLODIndex + (maxLODIndex - minLODIndex) * roughness;
  15642. var mipmapIndex = Math.round(Math.min(Math.max(lodIndex, 0), maxLODIndex));
  15643. var glTextureFromLod = new BABYLON.InternalTexture(_this, BABYLON.InternalTexture.DATASOURCE_TEMP);
  15644. glTextureFromLod.type = texture.type;
  15645. glTextureFromLod.format = texture.format;
  15646. glTextureFromLod.width = Math.pow(2, Math.max(BABYLON.Scalar.Log2(width) - mipmapIndex, 0));
  15647. glTextureFromLod.height = glTextureFromLod.width;
  15648. glTextureFromLod.isCube = true;
  15649. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, glTextureFromLod, true);
  15650. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MAG_FILTER, gl.LINEAR);
  15651. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MIN_FILTER, gl.LINEAR);
  15652. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15653. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15654. if (loadData.isDDS) {
  15655. var info = loadData.info;
  15656. var data = loadData.data;
  15657. _this._unpackFlipY(info.isCompressed);
  15658. BABYLON.DDSTools.UploadDDSLevels(_this, glTextureFromLod, data, info, true, 6, mipmapIndex);
  15659. }
  15660. else {
  15661. BABYLON.Tools.Warn("DDS is the only prefiltered cube map supported so far.");
  15662. }
  15663. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15664. // Wrap in a base texture for easy binding.
  15665. var lodTexture = new BABYLON.BaseTexture(scene);
  15666. lodTexture.isCube = true;
  15667. lodTexture._texture = glTextureFromLod;
  15668. glTextureFromLod.isReady = true;
  15669. textures.push(lodTexture);
  15670. }
  15671. texture._lodTextureHigh = textures[2];
  15672. texture._lodTextureMid = textures[1];
  15673. texture._lodTextureLow = textures[0];
  15674. if (onLoad) {
  15675. onLoad(texture);
  15676. }
  15677. };
  15678. return this.createCubeTexture(rootUrl, scene, null, false, callback, onError, format, forcedExtension, createPolynomials, lodScale, lodOffset);
  15679. };
  15680. /**
  15681. * Creates a cube texture
  15682. * @param rootUrl defines the url where the files to load is located
  15683. * @param scene defines the current scene
  15684. * @param files defines the list of files to load (1 per face)
  15685. * @param noMipmap defines a boolean indicating that no mipmaps shall be generated (false by default)
  15686. * @param onLoad defines an optional callback raised when the texture is loaded
  15687. * @param onError defines an optional callback raised if there is an issue to load the texture
  15688. * @param format defines the format of the data
  15689. * @param forcedExtension defines the extension to use to pick the right loader
  15690. * @param createPolynomials if a polynomial sphere should be created for the cube texture
  15691. * @param lodScale defines the scale applied to environment texture. This manages the range of LOD level used for IBL according to the roughness
  15692. * @param lodOffset defines the offset applied to environment texture. This manages first LOD level used for IBL according to the roughness
  15693. * @param fallback defines texture to use while falling back when (compressed) texture file not found.
  15694. * @returns the cube texture as an InternalTexture
  15695. */
  15696. Engine.prototype.createCubeTexture = function (rootUrl, scene, files, noMipmap, onLoad, onError, format, forcedExtension, createPolynomials, lodScale, lodOffset, fallback) {
  15697. var _this = this;
  15698. if (onLoad === void 0) { onLoad = null; }
  15699. if (onError === void 0) { onError = null; }
  15700. if (forcedExtension === void 0) { forcedExtension = null; }
  15701. if (createPolynomials === void 0) { createPolynomials = false; }
  15702. if (lodScale === void 0) { lodScale = 0; }
  15703. if (lodOffset === void 0) { lodOffset = 0; }
  15704. if (fallback === void 0) { fallback = null; }
  15705. var gl = this._gl;
  15706. var texture = fallback ? fallback : new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_CUBE);
  15707. texture.isCube = true;
  15708. texture.url = rootUrl;
  15709. texture.generateMipMaps = !noMipmap;
  15710. texture._lodGenerationScale = lodScale;
  15711. texture._lodGenerationOffset = lodOffset;
  15712. if (!this._doNotHandleContextLost) {
  15713. texture._extension = forcedExtension;
  15714. texture._files = files;
  15715. }
  15716. var lastDot = rootUrl.lastIndexOf('.');
  15717. var extension = forcedExtension ? forcedExtension : (lastDot > -1 ? rootUrl.substring(lastDot).toLowerCase() : "");
  15718. var loader = null;
  15719. for (var _i = 0, _a = Engine._TextureLoaders; _i < _a.length; _i++) {
  15720. var availableLoader = _a[_i];
  15721. if (availableLoader.canLoad(extension, this._textureFormatInUse, fallback, false, false)) {
  15722. loader = availableLoader;
  15723. break;
  15724. }
  15725. }
  15726. var onInternalError = function (request, exception) {
  15727. if (loader) {
  15728. var fallbackUrl = loader.getFallbackTextureUrl(rootUrl, _this._textureFormatInUse);
  15729. if (fallbackUrl) {
  15730. _this.createCubeTexture(fallbackUrl, scene, files, noMipmap, onLoad, onError, format, extension, createPolynomials, lodScale, lodOffset, texture);
  15731. }
  15732. }
  15733. if (onError && request) {
  15734. onError(request.status + " " + request.statusText, exception);
  15735. }
  15736. };
  15737. if (loader) {
  15738. rootUrl = loader.transformUrl(rootUrl, this._textureFormatInUse);
  15739. var onloaddata = function (data) {
  15740. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  15741. loader.loadCubeData(data, texture, createPolynomials, onLoad, onError);
  15742. };
  15743. if (files && files.length === 6) {
  15744. if (loader.supportCascades) {
  15745. this._cascadeLoadFiles(scene, onloaddata, files, onError);
  15746. }
  15747. else if (onError) {
  15748. onError("Textures type does not support cascades.");
  15749. }
  15750. }
  15751. else {
  15752. this._loadFile(rootUrl, onloaddata, undefined, undefined, true, onInternalError);
  15753. }
  15754. }
  15755. else {
  15756. if (!files) {
  15757. throw new Error("Cannot load cubemap because files were not defined");
  15758. }
  15759. this._cascadeLoadImgs(rootUrl, scene, function (imgs) {
  15760. var width = _this.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(imgs[0].width, _this._caps.maxCubemapTextureSize) : imgs[0].width;
  15761. var height = width;
  15762. _this._prepareWorkingCanvas();
  15763. if (!_this._workingCanvas || !_this._workingContext) {
  15764. return;
  15765. }
  15766. _this._workingCanvas.width = width;
  15767. _this._workingCanvas.height = height;
  15768. var faces = [
  15769. gl.TEXTURE_CUBE_MAP_POSITIVE_X, gl.TEXTURE_CUBE_MAP_POSITIVE_Y, gl.TEXTURE_CUBE_MAP_POSITIVE_Z,
  15770. gl.TEXTURE_CUBE_MAP_NEGATIVE_X, gl.TEXTURE_CUBE_MAP_NEGATIVE_Y, gl.TEXTURE_CUBE_MAP_NEGATIVE_Z
  15771. ];
  15772. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  15773. _this._unpackFlipY(false);
  15774. var internalFormat = format ? _this._getInternalFormat(format) : _this._gl.RGBA;
  15775. for (var index = 0; index < faces.length; index++) {
  15776. _this._workingContext.drawImage(imgs[index], 0, 0, imgs[index].width, imgs[index].height, 0, 0, width, height);
  15777. gl.texImage2D(faces[index], 0, internalFormat, internalFormat, gl.UNSIGNED_BYTE, _this._workingCanvas);
  15778. }
  15779. if (!noMipmap) {
  15780. gl.generateMipmap(gl.TEXTURE_CUBE_MAP);
  15781. }
  15782. _this._setCubeMapTextureParams(!noMipmap);
  15783. texture.width = width;
  15784. texture.height = height;
  15785. texture.isReady = true;
  15786. if (format) {
  15787. texture.format = format;
  15788. }
  15789. texture.onLoadedObservable.notifyObservers(texture);
  15790. texture.onLoadedObservable.clear();
  15791. if (onLoad) {
  15792. onLoad();
  15793. }
  15794. }, files, onError);
  15795. }
  15796. this._internalTexturesCache.push(texture);
  15797. return texture;
  15798. };
  15799. /**
  15800. * @hidden
  15801. */
  15802. Engine.prototype._setCubeMapTextureParams = function (loadMipmap) {
  15803. var gl = this._gl;
  15804. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MAG_FILTER, gl.LINEAR);
  15805. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MIN_FILTER, loadMipmap ? gl.LINEAR_MIPMAP_LINEAR : gl.LINEAR);
  15806. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15807. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15808. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15809. // this.resetTextureCache();
  15810. };
  15811. /**
  15812. * Update a raw cube texture
  15813. * @param texture defines the texture to udpdate
  15814. * @param data defines the data to store
  15815. * @param format defines the data format
  15816. * @param type defines the type fo the data (BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT by default)
  15817. * @param invertY defines if data must be stored with Y axis inverted
  15818. * @param compression defines the compression used (null by default)
  15819. * @param level defines which level of the texture to update
  15820. */
  15821. Engine.prototype.updateRawCubeTexture = function (texture, data, format, type, invertY, compression, level) {
  15822. if (compression === void 0) { compression = null; }
  15823. if (level === void 0) { level = 0; }
  15824. texture._bufferViewArray = data;
  15825. texture.format = format;
  15826. texture.type = type;
  15827. texture.invertY = invertY;
  15828. texture._compression = compression;
  15829. var gl = this._gl;
  15830. var textureType = this._getWebGLTextureType(type);
  15831. var internalFormat = this._getInternalFormat(format);
  15832. var internalSizedFomat = this._getRGBABufferInternalSizedFormat(type);
  15833. var needConversion = false;
  15834. if (internalFormat === gl.RGB) {
  15835. internalFormat = gl.RGBA;
  15836. needConversion = true;
  15837. }
  15838. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  15839. this._unpackFlipY(invertY === undefined ? true : (invertY ? true : false));
  15840. if (texture.width % 4 !== 0) {
  15841. gl.pixelStorei(gl.UNPACK_ALIGNMENT, 1);
  15842. }
  15843. // Data are known to be in +X +Y +Z -X -Y -Z
  15844. for (var faceIndex = 0; faceIndex < 6; faceIndex++) {
  15845. var faceData = data[faceIndex];
  15846. if (compression) {
  15847. gl.compressedTexImage2D(gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, level, (this.getCaps().s3tc)[compression], texture.width, texture.height, 0, faceData);
  15848. }
  15849. else {
  15850. if (needConversion) {
  15851. faceData = this._convertRGBtoRGBATextureData(faceData, texture.width, texture.height, type);
  15852. }
  15853. gl.texImage2D(gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, level, internalSizedFomat, texture.width, texture.height, 0, internalFormat, textureType, faceData);
  15854. }
  15855. }
  15856. var isPot = !this.needPOTTextures || (BABYLON.Tools.IsExponentOfTwo(texture.width) && BABYLON.Tools.IsExponentOfTwo(texture.height));
  15857. if (isPot && texture.generateMipMaps && level === 0) {
  15858. this._gl.generateMipmap(this._gl.TEXTURE_CUBE_MAP);
  15859. }
  15860. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, null);
  15861. // this.resetTextureCache();
  15862. texture.isReady = true;
  15863. };
  15864. /**
  15865. * Creates a new raw cube texture
  15866. * @param data defines the array of data to use to create each face
  15867. * @param size defines the size of the textures
  15868. * @param format defines the format of the data
  15869. * @param type defines the type of the data (like BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT)
  15870. * @param generateMipMaps defines if the engine should generate the mip levels
  15871. * @param invertY defines if data must be stored with Y axis inverted
  15872. * @param samplingMode defines the required sampling mode (like BABYLON.Texture.NEAREST_SAMPLINGMODE)
  15873. * @param compression defines the compression used (null by default)
  15874. * @returns the cube texture as an InternalTexture
  15875. */
  15876. Engine.prototype.createRawCubeTexture = function (data, size, format, type, generateMipMaps, invertY, samplingMode, compression) {
  15877. if (compression === void 0) { compression = null; }
  15878. var gl = this._gl;
  15879. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_CUBERAW);
  15880. texture.isCube = true;
  15881. texture.format = format;
  15882. texture.type = type;
  15883. if (!this._doNotHandleContextLost) {
  15884. texture._bufferViewArray = data;
  15885. }
  15886. var textureType = this._getWebGLTextureType(type);
  15887. var internalFormat = this._getInternalFormat(format);
  15888. if (internalFormat === gl.RGB) {
  15889. internalFormat = gl.RGBA;
  15890. }
  15891. // Mipmap generation needs a sized internal format that is both color-renderable and texture-filterable
  15892. if (textureType === gl.FLOAT && !this._caps.textureFloatLinearFiltering) {
  15893. generateMipMaps = false;
  15894. samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15895. BABYLON.Tools.Warn("Float texture filtering is not supported. Mipmap generation and sampling mode are forced to false and TEXTURE_NEAREST_SAMPLINGMODE, respectively.");
  15896. }
  15897. else if (textureType === this._gl.HALF_FLOAT_OES && !this._caps.textureHalfFloatLinearFiltering) {
  15898. generateMipMaps = false;
  15899. samplingMode = Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  15900. BABYLON.Tools.Warn("Half float texture filtering is not supported. Mipmap generation and sampling mode are forced to false and TEXTURE_NEAREST_SAMPLINGMODE, respectively.");
  15901. }
  15902. else if (textureType === gl.FLOAT && !this._caps.textureFloatRender) {
  15903. generateMipMaps = false;
  15904. BABYLON.Tools.Warn("Render to float textures is not supported. Mipmap generation forced to false.");
  15905. }
  15906. else if (textureType === gl.HALF_FLOAT && !this._caps.colorBufferFloat) {
  15907. generateMipMaps = false;
  15908. BABYLON.Tools.Warn("Render to half float textures is not supported. Mipmap generation forced to false.");
  15909. }
  15910. var width = size;
  15911. var height = width;
  15912. texture.width = width;
  15913. texture.height = height;
  15914. // Double check on POT to generate Mips.
  15915. var isPot = !this.needPOTTextures || (BABYLON.Tools.IsExponentOfTwo(texture.width) && BABYLON.Tools.IsExponentOfTwo(texture.height));
  15916. if (!isPot) {
  15917. generateMipMaps = false;
  15918. }
  15919. // Upload data if needed. The texture won't be ready until then.
  15920. if (data) {
  15921. this.updateRawCubeTexture(texture, data, format, type, invertY, compression);
  15922. }
  15923. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, texture, true);
  15924. // Filters
  15925. if (data && generateMipMaps) {
  15926. this._gl.generateMipmap(this._gl.TEXTURE_CUBE_MAP);
  15927. }
  15928. var filters = this._getSamplingParameters(samplingMode, generateMipMaps);
  15929. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MAG_FILTER, filters.mag);
  15930. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_MIN_FILTER, filters.min);
  15931. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_S, gl.CLAMP_TO_EDGE);
  15932. gl.texParameteri(gl.TEXTURE_CUBE_MAP, gl.TEXTURE_WRAP_T, gl.CLAMP_TO_EDGE);
  15933. this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15934. texture.generateMipMaps = generateMipMaps;
  15935. return texture;
  15936. };
  15937. /**
  15938. * Creates a new raw cube texture from a specified url
  15939. * @param url defines the url where the data is located
  15940. * @param scene defines the current scene
  15941. * @param size defines the size of the textures
  15942. * @param format defines the format of the data
  15943. * @param type defines the type fo the data (like BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT)
  15944. * @param noMipmap defines if the engine should avoid generating the mip levels
  15945. * @param callback defines a callback used to extract texture data from loaded data
  15946. * @param mipmapGenerator defines to provide an optional tool to generate mip levels
  15947. * @param onLoad defines a callback called when texture is loaded
  15948. * @param onError defines a callback called if there is an error
  15949. * @param samplingMode defines the required sampling mode (like BABYLON.Texture.NEAREST_SAMPLINGMODE)
  15950. * @param invertY defines if data must be stored with Y axis inverted
  15951. * @returns the cube texture as an InternalTexture
  15952. */
  15953. Engine.prototype.createRawCubeTextureFromUrl = function (url, scene, size, format, type, noMipmap, callback, mipmapGenerator, onLoad, onError, samplingMode, invertY) {
  15954. var _this = this;
  15955. if (onLoad === void 0) { onLoad = null; }
  15956. if (onError === void 0) { onError = null; }
  15957. if (samplingMode === void 0) { samplingMode = Engine.TEXTURE_TRILINEAR_SAMPLINGMODE; }
  15958. if (invertY === void 0) { invertY = false; }
  15959. var gl = this._gl;
  15960. var texture = this.createRawCubeTexture(null, size, format, type, !noMipmap, invertY, samplingMode);
  15961. scene._addPendingData(texture);
  15962. texture.url = url;
  15963. this._internalTexturesCache.push(texture);
  15964. var onerror = function (request, exception) {
  15965. scene._removePendingData(texture);
  15966. if (onError && request) {
  15967. onError(request.status + " " + request.statusText, exception);
  15968. }
  15969. };
  15970. var internalCallback = function (data) {
  15971. var width = texture.width;
  15972. var faceDataArrays = callback(data);
  15973. if (!faceDataArrays) {
  15974. return;
  15975. }
  15976. if (mipmapGenerator) {
  15977. var textureType = _this._getWebGLTextureType(type);
  15978. var internalFormat = _this._getInternalFormat(format);
  15979. var internalSizedFomat = _this._getRGBABufferInternalSizedFormat(type);
  15980. var needConversion = false;
  15981. if (internalFormat === gl.RGB) {
  15982. internalFormat = gl.RGBA;
  15983. needConversion = true;
  15984. }
  15985. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, texture, true);
  15986. _this._unpackFlipY(false);
  15987. var mipData = mipmapGenerator(faceDataArrays);
  15988. for (var level = 0; level < mipData.length; level++) {
  15989. var mipSize = width >> level;
  15990. for (var faceIndex = 0; faceIndex < 6; faceIndex++) {
  15991. var mipFaceData = mipData[level][faceIndex];
  15992. if (needConversion) {
  15993. mipFaceData = _this._convertRGBtoRGBATextureData(mipFaceData, mipSize, mipSize, type);
  15994. }
  15995. gl.texImage2D(faceIndex, level, internalSizedFomat, mipSize, mipSize, 0, internalFormat, textureType, mipFaceData);
  15996. }
  15997. }
  15998. _this._bindTextureDirectly(gl.TEXTURE_CUBE_MAP, null);
  15999. }
  16000. else {
  16001. _this.updateRawCubeTexture(texture, faceDataArrays, format, type, invertY);
  16002. }
  16003. texture.isReady = true;
  16004. // this.resetTextureCache();
  16005. scene._removePendingData(texture);
  16006. if (onLoad) {
  16007. onLoad();
  16008. }
  16009. };
  16010. this._loadFile(url, function (data) {
  16011. internalCallback(data);
  16012. }, undefined, scene.database, true, onerror);
  16013. return texture;
  16014. };
  16015. ;
  16016. /**
  16017. * Update a raw 3D texture
  16018. * @param texture defines the texture to update
  16019. * @param data defines the data to store
  16020. * @param format defines the data format
  16021. * @param invertY defines if data must be stored with Y axis inverted
  16022. * @param compression defines the used compression (can be null)
  16023. * @param textureType defines the texture Type (Engine.TEXTURETYPE_UNSIGNED_INT, Engine.TEXTURETYPE_FLOAT...)
  16024. */
  16025. Engine.prototype.updateRawTexture3D = function (texture, data, format, invertY, compression, textureType) {
  16026. if (compression === void 0) { compression = null; }
  16027. if (textureType === void 0) { textureType = Engine.TEXTURETYPE_UNSIGNED_INT; }
  16028. var internalType = this._getWebGLTextureType(textureType);
  16029. var internalFormat = this._getInternalFormat(format);
  16030. var internalSizedFomat = this._getRGBABufferInternalSizedFormat(textureType, format);
  16031. this._bindTextureDirectly(this._gl.TEXTURE_3D, texture, true);
  16032. this._unpackFlipY(invertY === undefined ? true : (invertY ? true : false));
  16033. if (!this._doNotHandleContextLost) {
  16034. texture._bufferView = data;
  16035. texture.format = format;
  16036. texture.invertY = invertY;
  16037. texture._compression = compression;
  16038. }
  16039. if (texture.width % 4 !== 0) {
  16040. this._gl.pixelStorei(this._gl.UNPACK_ALIGNMENT, 1);
  16041. }
  16042. if (compression && data) {
  16043. this._gl.compressedTexImage3D(this._gl.TEXTURE_3D, 0, this.getCaps().s3tc[compression], texture.width, texture.height, texture.depth, 0, data);
  16044. }
  16045. else {
  16046. this._gl.texImage3D(this._gl.TEXTURE_3D, 0, internalSizedFomat, texture.width, texture.height, texture.depth, 0, internalFormat, internalType, data);
  16047. }
  16048. if (texture.generateMipMaps) {
  16049. this._gl.generateMipmap(this._gl.TEXTURE_3D);
  16050. }
  16051. this._bindTextureDirectly(this._gl.TEXTURE_3D, null);
  16052. // this.resetTextureCache();
  16053. texture.isReady = true;
  16054. };
  16055. /**
  16056. * Creates a new raw 3D texture
  16057. * @param data defines the data used to create the texture
  16058. * @param width defines the width of the texture
  16059. * @param height defines the height of the texture
  16060. * @param depth defines the depth of the texture
  16061. * @param format defines the format of the texture
  16062. * @param generateMipMaps defines if the engine must generate mip levels
  16063. * @param invertY defines if data must be stored with Y axis inverted
  16064. * @param samplingMode defines the required sampling mode (like BABYLON.Texture.NEAREST_SAMPLINGMODE)
  16065. * @param compression defines the compressed used (can be null)
  16066. * @param textureType defines the compressed used (can be null)
  16067. * @returns a new raw 3D texture (stored in an InternalTexture)
  16068. */
  16069. Engine.prototype.createRawTexture3D = function (data, width, height, depth, format, generateMipMaps, invertY, samplingMode, compression, textureType) {
  16070. if (compression === void 0) { compression = null; }
  16071. if (textureType === void 0) { textureType = Engine.TEXTURETYPE_UNSIGNED_INT; }
  16072. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_RAW3D);
  16073. texture.baseWidth = width;
  16074. texture.baseHeight = height;
  16075. texture.baseDepth = depth;
  16076. texture.width = width;
  16077. texture.height = height;
  16078. texture.depth = depth;
  16079. texture.format = format;
  16080. texture.type = textureType;
  16081. texture.generateMipMaps = generateMipMaps;
  16082. texture.samplingMode = samplingMode;
  16083. texture.is3D = true;
  16084. if (!this._doNotHandleContextLost) {
  16085. texture._bufferView = data;
  16086. }
  16087. this.updateRawTexture3D(texture, data, format, invertY, compression, textureType);
  16088. this._bindTextureDirectly(this._gl.TEXTURE_3D, texture, true);
  16089. // Filters
  16090. var filters = this._getSamplingParameters(samplingMode, generateMipMaps);
  16091. this._gl.texParameteri(this._gl.TEXTURE_3D, this._gl.TEXTURE_MAG_FILTER, filters.mag);
  16092. this._gl.texParameteri(this._gl.TEXTURE_3D, this._gl.TEXTURE_MIN_FILTER, filters.min);
  16093. if (generateMipMaps) {
  16094. this._gl.generateMipmap(this._gl.TEXTURE_3D);
  16095. }
  16096. this._bindTextureDirectly(this._gl.TEXTURE_3D, null);
  16097. this._internalTexturesCache.push(texture);
  16098. return texture;
  16099. };
  16100. Engine.prototype._prepareWebGLTextureContinuation = function (texture, scene, noMipmap, isCompressed, samplingMode) {
  16101. var gl = this._gl;
  16102. if (!gl) {
  16103. return;
  16104. }
  16105. var filters = this._getSamplingParameters(samplingMode, !noMipmap);
  16106. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, filters.mag);
  16107. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, filters.min);
  16108. if (!noMipmap && !isCompressed) {
  16109. gl.generateMipmap(gl.TEXTURE_2D);
  16110. }
  16111. this._bindTextureDirectly(gl.TEXTURE_2D, null);
  16112. // this.resetTextureCache();
  16113. if (scene) {
  16114. scene._removePendingData(texture);
  16115. }
  16116. texture.onLoadedObservable.notifyObservers(texture);
  16117. texture.onLoadedObservable.clear();
  16118. };
  16119. Engine.prototype._prepareWebGLTexture = function (texture, scene, width, height, invertY, noMipmap, isCompressed, processFunction, samplingMode) {
  16120. var _this = this;
  16121. if (samplingMode === void 0) { samplingMode = Engine.TEXTURE_TRILINEAR_SAMPLINGMODE; }
  16122. var maxTextureSize = this.getCaps().maxTextureSize;
  16123. var potWidth = Math.min(maxTextureSize, this.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(width, maxTextureSize) : width);
  16124. var potHeight = Math.min(maxTextureSize, this.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(height, maxTextureSize) : height);
  16125. var gl = this._gl;
  16126. if (!gl) {
  16127. return;
  16128. }
  16129. if (!texture._webGLTexture) {
  16130. // this.resetTextureCache();
  16131. if (scene) {
  16132. scene._removePendingData(texture);
  16133. }
  16134. return;
  16135. }
  16136. this._bindTextureDirectly(gl.TEXTURE_2D, texture, true);
  16137. this._unpackFlipY(invertY === undefined ? true : (invertY ? true : false));
  16138. texture.baseWidth = width;
  16139. texture.baseHeight = height;
  16140. texture.width = potWidth;
  16141. texture.height = potHeight;
  16142. texture.isReady = true;
  16143. if (processFunction(potWidth, potHeight, function () {
  16144. _this._prepareWebGLTextureContinuation(texture, scene, noMipmap, isCompressed, samplingMode);
  16145. })) {
  16146. // Returning as texture needs extra async steps
  16147. return;
  16148. }
  16149. this._prepareWebGLTextureContinuation(texture, scene, noMipmap, isCompressed, samplingMode);
  16150. };
  16151. Engine.prototype._convertRGBtoRGBATextureData = function (rgbData, width, height, textureType) {
  16152. // Create new RGBA data container.
  16153. var rgbaData;
  16154. if (textureType === Engine.TEXTURETYPE_FLOAT) {
  16155. rgbaData = new Float32Array(width * height * 4);
  16156. }
  16157. else {
  16158. rgbaData = new Uint32Array(width * height * 4);
  16159. }
  16160. // Convert each pixel.
  16161. for (var x = 0; x < width; x++) {
  16162. for (var y = 0; y < height; y++) {
  16163. var index = (y * width + x) * 3;
  16164. var newIndex = (y * width + x) * 4;
  16165. // Map Old Value to new value.
  16166. rgbaData[newIndex + 0] = rgbData[index + 0];
  16167. rgbaData[newIndex + 1] = rgbData[index + 1];
  16168. rgbaData[newIndex + 2] = rgbData[index + 2];
  16169. // Add fully opaque alpha channel.
  16170. rgbaData[newIndex + 3] = 1;
  16171. }
  16172. }
  16173. return rgbaData;
  16174. };
  16175. /** @hidden */
  16176. Engine.prototype._releaseFramebufferObjects = function (texture) {
  16177. var gl = this._gl;
  16178. if (texture._framebuffer) {
  16179. gl.deleteFramebuffer(texture._framebuffer);
  16180. texture._framebuffer = null;
  16181. }
  16182. if (texture._depthStencilBuffer) {
  16183. gl.deleteRenderbuffer(texture._depthStencilBuffer);
  16184. texture._depthStencilBuffer = null;
  16185. }
  16186. if (texture._MSAAFramebuffer) {
  16187. gl.deleteFramebuffer(texture._MSAAFramebuffer);
  16188. texture._MSAAFramebuffer = null;
  16189. }
  16190. if (texture._MSAARenderBuffer) {
  16191. gl.deleteRenderbuffer(texture._MSAARenderBuffer);
  16192. texture._MSAARenderBuffer = null;
  16193. }
  16194. };
  16195. /** @hidden */
  16196. Engine.prototype._releaseTexture = function (texture) {
  16197. var gl = this._gl;
  16198. this._releaseFramebufferObjects(texture);
  16199. gl.deleteTexture(texture._webGLTexture);
  16200. // Unbind channels
  16201. this.unbindAllTextures();
  16202. var index = this._internalTexturesCache.indexOf(texture);
  16203. if (index !== -1) {
  16204. this._internalTexturesCache.splice(index, 1);
  16205. }
  16206. // Integrated fixed lod samplers.
  16207. if (texture._lodTextureHigh) {
  16208. texture._lodTextureHigh.dispose();
  16209. }
  16210. if (texture._lodTextureMid) {
  16211. texture._lodTextureMid.dispose();
  16212. }
  16213. if (texture._lodTextureLow) {
  16214. texture._lodTextureLow.dispose();
  16215. }
  16216. // Set output texture of post process to null if the texture has been released/disposed
  16217. this.scenes.forEach(function (scene) {
  16218. scene.postProcesses.forEach(function (postProcess) {
  16219. if (postProcess._outputTexture == texture) {
  16220. postProcess._outputTexture = null;
  16221. }
  16222. });
  16223. scene.cameras.forEach(function (camera) {
  16224. camera._postProcesses.forEach(function (postProcess) {
  16225. if (postProcess) {
  16226. if (postProcess._outputTexture == texture) {
  16227. postProcess._outputTexture = null;
  16228. }
  16229. }
  16230. });
  16231. });
  16232. });
  16233. };
  16234. Engine.prototype.setProgram = function (program) {
  16235. if (this._currentProgram !== program) {
  16236. this._gl.useProgram(program);
  16237. this._currentProgram = program;
  16238. }
  16239. };
  16240. /**
  16241. * Binds an effect to the webGL context
  16242. * @param effect defines the effect to bind
  16243. */
  16244. Engine.prototype.bindSamplers = function (effect) {
  16245. this.setProgram(effect.getProgram());
  16246. var samplers = effect.getSamplers();
  16247. for (var index = 0; index < samplers.length; index++) {
  16248. var uniform = effect.getUniform(samplers[index]);
  16249. if (uniform) {
  16250. this._boundUniforms[index] = uniform;
  16251. }
  16252. }
  16253. this._currentEffect = null;
  16254. };
  16255. Engine.prototype._moveBoundTextureOnTop = function (internalTexture) {
  16256. if (this.disableTextureBindingOptimization || this._lastBoundInternalTextureTracker.previous === internalTexture) {
  16257. return;
  16258. }
  16259. // Remove
  16260. this._linkTrackers(internalTexture.previous, internalTexture.next);
  16261. // Bind last to it
  16262. this._linkTrackers(this._lastBoundInternalTextureTracker.previous, internalTexture);
  16263. // Bind to dummy
  16264. this._linkTrackers(internalTexture, this._lastBoundInternalTextureTracker);
  16265. };
  16266. Engine.prototype._getCorrectTextureChannel = function (channel, internalTexture) {
  16267. if (!internalTexture) {
  16268. return -1;
  16269. }
  16270. internalTexture._initialSlot = channel;
  16271. if (this.disableTextureBindingOptimization) { // We want texture sampler ID === texture channel
  16272. if (channel !== internalTexture._designatedSlot) {
  16273. this._textureCollisions.addCount(1, false);
  16274. }
  16275. }
  16276. else {
  16277. if (channel !== internalTexture._designatedSlot) {
  16278. if (internalTexture._designatedSlot > -1) { // Texture is already assigned to a slot
  16279. return internalTexture._designatedSlot;
  16280. }
  16281. else {
  16282. // No slot for this texture, let's pick a new one (if we find a free slot)
  16283. if (this._nextFreeTextureSlots.length) {
  16284. return this._nextFreeTextureSlots[0];
  16285. }
  16286. // We need to recycle the oldest bound texture, sorry.
  16287. this._textureCollisions.addCount(1, false);
  16288. return this._removeDesignatedSlot(this._firstBoundInternalTextureTracker.next);
  16289. }
  16290. }
  16291. }
  16292. return channel;
  16293. };
  16294. Engine.prototype._linkTrackers = function (previous, next) {
  16295. previous.next = next;
  16296. next.previous = previous;
  16297. };
  16298. Engine.prototype._removeDesignatedSlot = function (internalTexture) {
  16299. var currentSlot = internalTexture._designatedSlot;
  16300. if (currentSlot === -1) {
  16301. return -1;
  16302. }
  16303. internalTexture._designatedSlot = -1;
  16304. if (this.disableTextureBindingOptimization) {
  16305. return -1;
  16306. }
  16307. // Remove from bound list
  16308. this._linkTrackers(internalTexture.previous, internalTexture.next);
  16309. // Free the slot
  16310. this._boundTexturesCache[currentSlot] = null;
  16311. this._nextFreeTextureSlots.push(currentSlot);
  16312. return currentSlot;
  16313. };
  16314. Engine.prototype._activateCurrentTexture = function () {
  16315. if (this._currentTextureChannel !== this._activeChannel) {
  16316. this._gl.activeTexture(this._gl.TEXTURE0 + this._activeChannel);
  16317. this._currentTextureChannel = this._activeChannel;
  16318. }
  16319. };
  16320. /** @hidden */
  16321. Engine.prototype._bindTextureDirectly = function (target, texture, forTextureDataUpdate, force) {
  16322. if (forTextureDataUpdate === void 0) { forTextureDataUpdate = false; }
  16323. if (force === void 0) { force = false; }
  16324. var wasPreviouslyBound = false;
  16325. if (forTextureDataUpdate && texture && texture._designatedSlot > -1) {
  16326. this._activeChannel = texture._designatedSlot;
  16327. }
  16328. var currentTextureBound = this._boundTexturesCache[this._activeChannel];
  16329. var isTextureForRendering = texture && texture._initialSlot > -1;
  16330. if (currentTextureBound !== texture || force) {
  16331. if (currentTextureBound) {
  16332. this._removeDesignatedSlot(currentTextureBound);
  16333. }
  16334. this._activateCurrentTexture();
  16335. this._gl.bindTexture(target, texture ? texture._webGLTexture : null);
  16336. this._boundTexturesCache[this._activeChannel] = texture;
  16337. if (texture) {
  16338. if (!this.disableTextureBindingOptimization) {
  16339. var slotIndex = this._nextFreeTextureSlots.indexOf(this._activeChannel);
  16340. if (slotIndex > -1) {
  16341. this._nextFreeTextureSlots.splice(slotIndex, 1);
  16342. }
  16343. this._linkTrackers(this._lastBoundInternalTextureTracker.previous, texture);
  16344. this._linkTrackers(texture, this._lastBoundInternalTextureTracker);
  16345. }
  16346. texture._designatedSlot = this._activeChannel;
  16347. }
  16348. }
  16349. else if (forTextureDataUpdate) {
  16350. wasPreviouslyBound = true;
  16351. this._activateCurrentTexture();
  16352. }
  16353. if (isTextureForRendering && !forTextureDataUpdate) {
  16354. this._bindSamplerUniformToChannel(texture._initialSlot, this._activeChannel);
  16355. }
  16356. return wasPreviouslyBound;
  16357. };
  16358. /** @hidden */
  16359. Engine.prototype._bindTexture = function (channel, texture) {
  16360. if (channel < 0) {
  16361. return;
  16362. }
  16363. if (texture) {
  16364. channel = this._getCorrectTextureChannel(channel, texture);
  16365. }
  16366. this._activeChannel = channel;
  16367. this._bindTextureDirectly(this._gl.TEXTURE_2D, texture);
  16368. };
  16369. /**
  16370. * Sets a texture to the webGL context from a postprocess
  16371. * @param channel defines the channel to use
  16372. * @param postProcess defines the source postprocess
  16373. */
  16374. Engine.prototype.setTextureFromPostProcess = function (channel, postProcess) {
  16375. this._bindTexture(channel, postProcess ? postProcess._textures.data[postProcess._currentRenderTextureInd] : null);
  16376. };
  16377. /**
  16378. * Binds the output of the passed in post process to the texture channel specified
  16379. * @param channel The channel the texture should be bound to
  16380. * @param postProcess The post process which's output should be bound
  16381. */
  16382. Engine.prototype.setTextureFromPostProcessOutput = function (channel, postProcess) {
  16383. this._bindTexture(channel, postProcess ? postProcess._outputTexture : null);
  16384. };
  16385. /**
  16386. * Unbind all textures from the webGL context
  16387. */
  16388. Engine.prototype.unbindAllTextures = function () {
  16389. for (var channel = 0; channel < this._maxSimultaneousTextures; channel++) {
  16390. this._activeChannel = channel;
  16391. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  16392. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, null);
  16393. if (this.webGLVersion > 1) {
  16394. this._bindTextureDirectly(this._gl.TEXTURE_3D, null);
  16395. }
  16396. }
  16397. };
  16398. /**
  16399. * Sets a texture to the according uniform.
  16400. * @param channel The texture channel
  16401. * @param uniform The uniform to set
  16402. * @param texture The texture to apply
  16403. */
  16404. Engine.prototype.setTexture = function (channel, uniform, texture) {
  16405. if (channel < 0) {
  16406. return;
  16407. }
  16408. if (uniform) {
  16409. this._boundUniforms[channel] = uniform;
  16410. }
  16411. this._setTexture(channel, texture);
  16412. };
  16413. /**
  16414. * Sets a depth stencil texture from a render target to the according uniform.
  16415. * @param channel The texture channel
  16416. * @param uniform The uniform to set
  16417. * @param texture The render target texture containing the depth stencil texture to apply
  16418. */
  16419. Engine.prototype.setDepthStencilTexture = function (channel, uniform, texture) {
  16420. if (channel < 0) {
  16421. return;
  16422. }
  16423. if (uniform) {
  16424. this._boundUniforms[channel] = uniform;
  16425. }
  16426. if (!texture || !texture.depthStencilTexture) {
  16427. this._setTexture(channel, null);
  16428. }
  16429. else {
  16430. this._setTexture(channel, texture, false, true);
  16431. }
  16432. };
  16433. Engine.prototype._bindSamplerUniformToChannel = function (sourceSlot, destination) {
  16434. var uniform = this._boundUniforms[sourceSlot];
  16435. if (uniform._currentState === destination) {
  16436. return;
  16437. }
  16438. this._gl.uniform1i(uniform, destination);
  16439. uniform._currentState = destination;
  16440. };
  16441. Engine.prototype._getTextureWrapMode = function (mode) {
  16442. switch (mode) {
  16443. case Engine.TEXTURE_WRAP_ADDRESSMODE:
  16444. return this._gl.REPEAT;
  16445. case Engine.TEXTURE_CLAMP_ADDRESSMODE:
  16446. return this._gl.CLAMP_TO_EDGE;
  16447. case Engine.TEXTURE_MIRROR_ADDRESSMODE:
  16448. return this._gl.MIRRORED_REPEAT;
  16449. }
  16450. return this._gl.REPEAT;
  16451. };
  16452. Engine.prototype._setTexture = function (channel, texture, isPartOfTextureArray, depthStencilTexture) {
  16453. if (isPartOfTextureArray === void 0) { isPartOfTextureArray = false; }
  16454. if (depthStencilTexture === void 0) { depthStencilTexture = false; }
  16455. // Not ready?
  16456. if (!texture) {
  16457. if (this._boundTexturesCache[channel] != null) {
  16458. this._activeChannel = channel;
  16459. this._bindTextureDirectly(this._gl.TEXTURE_2D, null);
  16460. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, null);
  16461. if (this.webGLVersion > 1) {
  16462. this._bindTextureDirectly(this._gl.TEXTURE_3D, null);
  16463. }
  16464. }
  16465. return false;
  16466. }
  16467. // Video
  16468. if (texture.video) {
  16469. this._activeChannel = channel;
  16470. texture.update();
  16471. }
  16472. else if (texture.delayLoadState === Engine.DELAYLOADSTATE_NOTLOADED) { // Delay loading
  16473. texture.delayLoad();
  16474. return false;
  16475. }
  16476. var internalTexture;
  16477. if (depthStencilTexture) {
  16478. internalTexture = texture.depthStencilTexture;
  16479. }
  16480. else if (texture.isReady()) {
  16481. internalTexture = texture.getInternalTexture();
  16482. }
  16483. else if (texture.isCube) {
  16484. internalTexture = this.emptyCubeTexture;
  16485. }
  16486. else if (texture.is3D) {
  16487. internalTexture = this.emptyTexture3D;
  16488. }
  16489. else {
  16490. internalTexture = this.emptyTexture;
  16491. }
  16492. if (!isPartOfTextureArray) {
  16493. channel = this._getCorrectTextureChannel(channel, internalTexture);
  16494. }
  16495. var needToBind = true;
  16496. if (this._boundTexturesCache[channel] === internalTexture) {
  16497. this._moveBoundTextureOnTop(internalTexture);
  16498. if (!isPartOfTextureArray) {
  16499. this._bindSamplerUniformToChannel(internalTexture._initialSlot, channel);
  16500. }
  16501. needToBind = false;
  16502. }
  16503. this._activeChannel = channel;
  16504. if (internalTexture && internalTexture.is3D) {
  16505. if (needToBind) {
  16506. this._bindTextureDirectly(this._gl.TEXTURE_3D, internalTexture, isPartOfTextureArray);
  16507. }
  16508. if (internalTexture && internalTexture._cachedWrapU !== texture.wrapU) {
  16509. internalTexture._cachedWrapU = texture.wrapU;
  16510. this._setTextureParameterInteger(this._gl.TEXTURE_3D, this._gl.TEXTURE_WRAP_S, this._getTextureWrapMode(texture.wrapU), internalTexture);
  16511. }
  16512. if (internalTexture && internalTexture._cachedWrapV !== texture.wrapV) {
  16513. internalTexture._cachedWrapV = texture.wrapV;
  16514. this._setTextureParameterInteger(this._gl.TEXTURE_3D, this._gl.TEXTURE_WRAP_T, this._getTextureWrapMode(texture.wrapV), internalTexture);
  16515. }
  16516. if (internalTexture && internalTexture._cachedWrapR !== texture.wrapR) {
  16517. internalTexture._cachedWrapR = texture.wrapR;
  16518. this._setTextureParameterInteger(this._gl.TEXTURE_3D, this._gl.TEXTURE_WRAP_R, this._getTextureWrapMode(texture.wrapR), internalTexture);
  16519. }
  16520. this._setAnisotropicLevel(this._gl.TEXTURE_3D, texture);
  16521. }
  16522. else if (internalTexture && internalTexture.isCube) {
  16523. if (needToBind) {
  16524. this._bindTextureDirectly(this._gl.TEXTURE_CUBE_MAP, internalTexture, isPartOfTextureArray);
  16525. }
  16526. if (internalTexture._cachedCoordinatesMode !== texture.coordinatesMode) {
  16527. internalTexture._cachedCoordinatesMode = texture.coordinatesMode;
  16528. // CUBIC_MODE and SKYBOX_MODE both require CLAMP_TO_EDGE. All other modes use REPEAT.
  16529. var textureWrapMode = (texture.coordinatesMode !== Engine.TEXTURE_CUBIC_MODE && texture.coordinatesMode !== Engine.TEXTURE_SKYBOX_MODE) ? this._gl.REPEAT : this._gl.CLAMP_TO_EDGE;
  16530. this._setTextureParameterInteger(this._gl.TEXTURE_CUBE_MAP, this._gl.TEXTURE_WRAP_S, textureWrapMode, internalTexture);
  16531. this._setTextureParameterInteger(this._gl.TEXTURE_CUBE_MAP, this._gl.TEXTURE_WRAP_T, textureWrapMode);
  16532. }
  16533. this._setAnisotropicLevel(this._gl.TEXTURE_CUBE_MAP, texture);
  16534. }
  16535. else {
  16536. if (needToBind) {
  16537. this._bindTextureDirectly(this._gl.TEXTURE_2D, internalTexture, isPartOfTextureArray);
  16538. }
  16539. if (internalTexture && internalTexture._cachedWrapU !== texture.wrapU) {
  16540. internalTexture._cachedWrapU = texture.wrapU;
  16541. this._setTextureParameterInteger(this._gl.TEXTURE_2D, this._gl.TEXTURE_WRAP_S, this._getTextureWrapMode(texture.wrapU), internalTexture);
  16542. }
  16543. if (internalTexture && internalTexture._cachedWrapV !== texture.wrapV) {
  16544. internalTexture._cachedWrapV = texture.wrapV;
  16545. this._setTextureParameterInteger(this._gl.TEXTURE_2D, this._gl.TEXTURE_WRAP_T, this._getTextureWrapMode(texture.wrapV), internalTexture);
  16546. }
  16547. this._setAnisotropicLevel(this._gl.TEXTURE_2D, texture);
  16548. }
  16549. return true;
  16550. };
  16551. /**
  16552. * Sets an array of texture to the webGL context
  16553. * @param channel defines the channel where the texture array must be set
  16554. * @param uniform defines the associated uniform location
  16555. * @param textures defines the array of textures to bind
  16556. */
  16557. Engine.prototype.setTextureArray = function (channel, uniform, textures) {
  16558. if (channel < 0 || !uniform) {
  16559. return;
  16560. }
  16561. if (!this._textureUnits || this._textureUnits.length !== textures.length) {
  16562. this._textureUnits = new Int32Array(textures.length);
  16563. }
  16564. for (var i = 0; i < textures.length; i++) {
  16565. this._textureUnits[i] = this._getCorrectTextureChannel(channel + i, textures[i].getInternalTexture());
  16566. }
  16567. this._gl.uniform1iv(uniform, this._textureUnits);
  16568. for (var index = 0; index < textures.length; index++) {
  16569. this._setTexture(this._textureUnits[index], textures[index], true);
  16570. }
  16571. };
  16572. /** @hidden */
  16573. Engine.prototype._setAnisotropicLevel = function (target, texture) {
  16574. var internalTexture = texture.getInternalTexture();
  16575. if (!internalTexture) {
  16576. return;
  16577. }
  16578. var anisotropicFilterExtension = this._caps.textureAnisotropicFilterExtension;
  16579. var value = texture.anisotropicFilteringLevel;
  16580. if (internalTexture.samplingMode !== Engine.TEXTURE_LINEAR_LINEAR_MIPNEAREST
  16581. && internalTexture.samplingMode !== Engine.TEXTURE_LINEAR_LINEAR_MIPLINEAR
  16582. && internalTexture.samplingMode !== Engine.TEXTURE_LINEAR_LINEAR) {
  16583. value = 1; // Forcing the anisotropic to 1 because else webgl will force filters to linear
  16584. }
  16585. if (anisotropicFilterExtension && internalTexture._cachedAnisotropicFilteringLevel !== value) {
  16586. this._setTextureParameterFloat(target, anisotropicFilterExtension.TEXTURE_MAX_ANISOTROPY_EXT, Math.min(value, this._caps.maxAnisotropy), internalTexture);
  16587. internalTexture._cachedAnisotropicFilteringLevel = value;
  16588. }
  16589. };
  16590. Engine.prototype._setTextureParameterFloat = function (target, parameter, value, texture) {
  16591. this._bindTextureDirectly(target, texture, true, true);
  16592. this._gl.texParameterf(target, parameter, value);
  16593. };
  16594. Engine.prototype._setTextureParameterInteger = function (target, parameter, value, texture) {
  16595. if (texture) {
  16596. this._bindTextureDirectly(target, texture, true, true);
  16597. }
  16598. this._gl.texParameteri(target, parameter, value);
  16599. };
  16600. /**
  16601. * Reads pixels from the current frame buffer. Please note that this function can be slow
  16602. * @param x defines the x coordinate of the rectangle where pixels must be read
  16603. * @param y defines the y coordinate of the rectangle where pixels must be read
  16604. * @param width defines the width of the rectangle where pixels must be read
  16605. * @param height defines the height of the rectangle where pixels must be read
  16606. * @returns a Uint8Array containing RGBA colors
  16607. */
  16608. Engine.prototype.readPixels = function (x, y, width, height) {
  16609. var data = new Uint8Array(height * width * 4);
  16610. this._gl.readPixels(x, y, width, height, this._gl.RGBA, this._gl.UNSIGNED_BYTE, data);
  16611. return data;
  16612. };
  16613. /**
  16614. * Add an externaly attached data from its key.
  16615. * This method call will fail and return false, if such key already exists.
  16616. * If you don't care and just want to get the data no matter what, use the more convenient getOrAddExternalDataWithFactory() method.
  16617. * @param key the unique key that identifies the data
  16618. * @param data the data object to associate to the key for this Engine instance
  16619. * @return true if no such key were already present and the data was added successfully, false otherwise
  16620. */
  16621. Engine.prototype.addExternalData = function (key, data) {
  16622. if (!this._externalData) {
  16623. this._externalData = new BABYLON.StringDictionary();
  16624. }
  16625. return this._externalData.add(key, data);
  16626. };
  16627. /**
  16628. * Get an externaly attached data from its key
  16629. * @param key the unique key that identifies the data
  16630. * @return the associated data, if present (can be null), or undefined if not present
  16631. */
  16632. Engine.prototype.getExternalData = function (key) {
  16633. if (!this._externalData) {
  16634. this._externalData = new BABYLON.StringDictionary();
  16635. }
  16636. return this._externalData.get(key);
  16637. };
  16638. /**
  16639. * Get an externaly attached data from its key, create it using a factory if it's not already present
  16640. * @param key the unique key that identifies the data
  16641. * @param factory the factory that will be called to create the instance if and only if it doesn't exists
  16642. * @return the associated data, can be null if the factory returned null.
  16643. */
  16644. Engine.prototype.getOrAddExternalDataWithFactory = function (key, factory) {
  16645. if (!this._externalData) {
  16646. this._externalData = new BABYLON.StringDictionary();
  16647. }
  16648. return this._externalData.getOrAddWithFactory(key, factory);
  16649. };
  16650. /**
  16651. * Remove an externaly attached data from the Engine instance
  16652. * @param key the unique key that identifies the data
  16653. * @return true if the data was successfully removed, false if it doesn't exist
  16654. */
  16655. Engine.prototype.removeExternalData = function (key) {
  16656. if (!this._externalData) {
  16657. this._externalData = new BABYLON.StringDictionary();
  16658. }
  16659. return this._externalData.remove(key);
  16660. };
  16661. /**
  16662. * Unbind all vertex attributes from the webGL context
  16663. */
  16664. Engine.prototype.unbindAllAttributes = function () {
  16665. if (this._mustWipeVertexAttributes) {
  16666. this._mustWipeVertexAttributes = false;
  16667. for (var i = 0; i < this._caps.maxVertexAttribs; i++) {
  16668. this._gl.disableVertexAttribArray(i);
  16669. this._vertexAttribArraysEnabled[i] = false;
  16670. this._currentBufferPointers[i].active = false;
  16671. }
  16672. return;
  16673. }
  16674. for (var i = 0, ul = this._vertexAttribArraysEnabled.length; i < ul; i++) {
  16675. if (i >= this._caps.maxVertexAttribs || !this._vertexAttribArraysEnabled[i]) {
  16676. continue;
  16677. }
  16678. this._gl.disableVertexAttribArray(i);
  16679. this._vertexAttribArraysEnabled[i] = false;
  16680. this._currentBufferPointers[i].active = false;
  16681. }
  16682. };
  16683. /**
  16684. * Force the engine to release all cached effects. This means that next effect compilation will have to be done completely even if a similar effect was already compiled
  16685. */
  16686. Engine.prototype.releaseEffects = function () {
  16687. for (var name in this._compiledEffects) {
  16688. this._deleteProgram(this._compiledEffects[name]._program);
  16689. }
  16690. this._compiledEffects = {};
  16691. };
  16692. /**
  16693. * Dispose and release all associated resources
  16694. */
  16695. Engine.prototype.dispose = function () {
  16696. this.hideLoadingUI();
  16697. this.stopRenderLoop();
  16698. // Release postProcesses
  16699. while (this.postProcesses.length) {
  16700. this.postProcesses[0].dispose();
  16701. }
  16702. // Empty texture
  16703. if (this._emptyTexture) {
  16704. this._releaseTexture(this._emptyTexture);
  16705. this._emptyTexture = null;
  16706. }
  16707. if (this._emptyCubeTexture) {
  16708. this._releaseTexture(this._emptyCubeTexture);
  16709. this._emptyCubeTexture = null;
  16710. }
  16711. // Rescale PP
  16712. if (this._rescalePostProcess) {
  16713. this._rescalePostProcess.dispose();
  16714. }
  16715. // Release scenes
  16716. while (this.scenes.length) {
  16717. this.scenes[0].dispose();
  16718. }
  16719. // Release audio engine
  16720. if (Engine.audioEngine) {
  16721. Engine.audioEngine.dispose();
  16722. }
  16723. // Release effects
  16724. this.releaseEffects();
  16725. // Unbind
  16726. this.unbindAllAttributes();
  16727. this._boundUniforms = [];
  16728. if (this._dummyFramebuffer) {
  16729. this._gl.deleteFramebuffer(this._dummyFramebuffer);
  16730. }
  16731. //WebVR
  16732. this.disableVR();
  16733. // Events
  16734. if (BABYLON.Tools.IsWindowObjectExist()) {
  16735. window.removeEventListener("blur", this._onBlur);
  16736. window.removeEventListener("focus", this._onFocus);
  16737. window.removeEventListener('vrdisplaypointerrestricted', this._onVRDisplayPointerRestricted);
  16738. window.removeEventListener('vrdisplaypointerunrestricted', this._onVRDisplayPointerUnrestricted);
  16739. if (this._renderingCanvas) {
  16740. this._renderingCanvas.removeEventListener("focus", this._onCanvasFocus);
  16741. this._renderingCanvas.removeEventListener("blur", this._onCanvasBlur);
  16742. this._renderingCanvas.removeEventListener("pointerout", this._onCanvasPointerOut);
  16743. if (!this._doNotHandleContextLost) {
  16744. this._renderingCanvas.removeEventListener("webglcontextlost", this._onContextLost);
  16745. this._renderingCanvas.removeEventListener("webglcontextrestored", this._onContextRestored);
  16746. }
  16747. }
  16748. document.removeEventListener("fullscreenchange", this._onFullscreenChange);
  16749. document.removeEventListener("mozfullscreenchange", this._onFullscreenChange);
  16750. document.removeEventListener("webkitfullscreenchange", this._onFullscreenChange);
  16751. document.removeEventListener("msfullscreenchange", this._onFullscreenChange);
  16752. document.removeEventListener("pointerlockchange", this._onPointerLockChange);
  16753. document.removeEventListener("mspointerlockchange", this._onPointerLockChange);
  16754. document.removeEventListener("mozpointerlockchange", this._onPointerLockChange);
  16755. document.removeEventListener("webkitpointerlockchange", this._onPointerLockChange);
  16756. if (this._onVrDisplayConnect) {
  16757. window.removeEventListener('vrdisplayconnect', this._onVrDisplayConnect);
  16758. if (this._onVrDisplayDisconnect) {
  16759. window.removeEventListener('vrdisplaydisconnect', this._onVrDisplayDisconnect);
  16760. }
  16761. if (this._onVrDisplayPresentChange) {
  16762. window.removeEventListener('vrdisplaypresentchange', this._onVrDisplayPresentChange);
  16763. }
  16764. this._onVrDisplayConnect = null;
  16765. this._onVrDisplayDisconnect = null;
  16766. }
  16767. }
  16768. // Remove from Instances
  16769. var index = Engine.Instances.indexOf(this);
  16770. if (index >= 0) {
  16771. Engine.Instances.splice(index, 1);
  16772. }
  16773. this._workingCanvas = null;
  16774. this._workingContext = null;
  16775. this._currentBufferPointers = [];
  16776. this._renderingCanvas = null;
  16777. this._currentProgram = null;
  16778. this._bindedRenderFunction = null;
  16779. this.onResizeObservable.clear();
  16780. this.onCanvasBlurObservable.clear();
  16781. this.onCanvasFocusObservable.clear();
  16782. this.onCanvasPointerOutObservable.clear();
  16783. this.onBeginFrameObservable.clear();
  16784. this.onEndFrameObservable.clear();
  16785. BABYLON.Effect.ResetCache();
  16786. // Abort active requests
  16787. for (var _i = 0, _a = this._activeRequests; _i < _a.length; _i++) {
  16788. var request = _a[_i];
  16789. request.abort();
  16790. }
  16791. };
  16792. // Loading screen
  16793. /**
  16794. * Display the loading screen
  16795. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16796. */
  16797. Engine.prototype.displayLoadingUI = function () {
  16798. if (!BABYLON.Tools.IsWindowObjectExist()) {
  16799. return;
  16800. }
  16801. var loadingScreen = this.loadingScreen;
  16802. if (loadingScreen) {
  16803. loadingScreen.displayLoadingUI();
  16804. }
  16805. };
  16806. /**
  16807. * Hide the loading screen
  16808. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16809. */
  16810. Engine.prototype.hideLoadingUI = function () {
  16811. if (!BABYLON.Tools.IsWindowObjectExist()) {
  16812. return;
  16813. }
  16814. var loadingScreen = this.loadingScreen;
  16815. if (loadingScreen) {
  16816. loadingScreen.hideLoadingUI();
  16817. }
  16818. };
  16819. Object.defineProperty(Engine.prototype, "loadingScreen", {
  16820. /**
  16821. * Gets the current loading screen object
  16822. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16823. */
  16824. get: function () {
  16825. if (!this._loadingScreen && BABYLON.DefaultLoadingScreen && this._renderingCanvas)
  16826. this._loadingScreen = new BABYLON.DefaultLoadingScreen(this._renderingCanvas);
  16827. return this._loadingScreen;
  16828. },
  16829. /**
  16830. * Sets the current loading screen object
  16831. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16832. */
  16833. set: function (loadingScreen) {
  16834. this._loadingScreen = loadingScreen;
  16835. },
  16836. enumerable: true,
  16837. configurable: true
  16838. });
  16839. Object.defineProperty(Engine.prototype, "loadingUIText", {
  16840. /**
  16841. * Sets the current loading screen text
  16842. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16843. */
  16844. set: function (text) {
  16845. this.loadingScreen.loadingUIText = text;
  16846. },
  16847. enumerable: true,
  16848. configurable: true
  16849. });
  16850. Object.defineProperty(Engine.prototype, "loadingUIBackgroundColor", {
  16851. /**
  16852. * Sets the current loading screen background color
  16853. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  16854. */
  16855. set: function (color) {
  16856. this.loadingScreen.loadingUIBackgroundColor = color;
  16857. },
  16858. enumerable: true,
  16859. configurable: true
  16860. });
  16861. /**
  16862. * Attach a new callback raised when context lost event is fired
  16863. * @param callback defines the callback to call
  16864. */
  16865. Engine.prototype.attachContextLostEvent = function (callback) {
  16866. if (this._renderingCanvas) {
  16867. this._renderingCanvas.addEventListener("webglcontextlost", callback, false);
  16868. }
  16869. };
  16870. /**
  16871. * Attach a new callback raised when context restored event is fired
  16872. * @param callback defines the callback to call
  16873. */
  16874. Engine.prototype.attachContextRestoredEvent = function (callback) {
  16875. if (this._renderingCanvas) {
  16876. this._renderingCanvas.addEventListener("webglcontextrestored", callback, false);
  16877. }
  16878. };
  16879. /**
  16880. * Gets the source code of the vertex shader associated with a specific webGL program
  16881. * @param program defines the program to use
  16882. * @returns a string containing the source code of the vertex shader associated with the program
  16883. */
  16884. Engine.prototype.getVertexShaderSource = function (program) {
  16885. var shaders = this._gl.getAttachedShaders(program);
  16886. if (!shaders) {
  16887. return null;
  16888. }
  16889. return this._gl.getShaderSource(shaders[0]);
  16890. };
  16891. /**
  16892. * Gets the source code of the fragment shader associated with a specific webGL program
  16893. * @param program defines the program to use
  16894. * @returns a string containing the source code of the fragment shader associated with the program
  16895. */
  16896. Engine.prototype.getFragmentShaderSource = function (program) {
  16897. var shaders = this._gl.getAttachedShaders(program);
  16898. if (!shaders) {
  16899. return null;
  16900. }
  16901. return this._gl.getShaderSource(shaders[1]);
  16902. };
  16903. /**
  16904. * Get the current error code of the webGL context
  16905. * @returns the error code
  16906. * @see https://developer.mozilla.org/en-US/docs/Web/API/WebGLRenderingContext/getError
  16907. */
  16908. Engine.prototype.getError = function () {
  16909. return this._gl.getError();
  16910. };
  16911. // FPS
  16912. /**
  16913. * Gets the current framerate
  16914. * @returns a number representing the framerate
  16915. */
  16916. Engine.prototype.getFps = function () {
  16917. return this._fps;
  16918. };
  16919. /**
  16920. * Gets the time spent between current and previous frame
  16921. * @returns a number representing the delta time in ms
  16922. */
  16923. Engine.prototype.getDeltaTime = function () {
  16924. return this._deltaTime;
  16925. };
  16926. Engine.prototype._measureFps = function () {
  16927. this._performanceMonitor.sampleFrame();
  16928. this._fps = this._performanceMonitor.averageFPS;
  16929. this._deltaTime = this._performanceMonitor.instantaneousFrameTime || 0;
  16930. };
  16931. /** @hidden */
  16932. Engine.prototype._readTexturePixels = function (texture, width, height, faceIndex, level) {
  16933. if (faceIndex === void 0) { faceIndex = -1; }
  16934. if (level === void 0) { level = 0; }
  16935. var gl = this._gl;
  16936. if (!this._dummyFramebuffer) {
  16937. var dummy = gl.createFramebuffer();
  16938. if (!dummy) {
  16939. throw new Error("Unable to create dummy framebuffer");
  16940. }
  16941. this._dummyFramebuffer = dummy;
  16942. }
  16943. gl.bindFramebuffer(gl.FRAMEBUFFER, this._dummyFramebuffer);
  16944. if (faceIndex > -1) {
  16945. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.TEXTURE_CUBE_MAP_POSITIVE_X + faceIndex, texture._webGLTexture, level);
  16946. }
  16947. else {
  16948. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.TEXTURE_2D, texture._webGLTexture, level);
  16949. }
  16950. var readType = (texture.type !== undefined) ? this._getWebGLTextureType(texture.type) : gl.UNSIGNED_BYTE;
  16951. var buffer;
  16952. switch (readType) {
  16953. case gl.UNSIGNED_BYTE:
  16954. buffer = new Uint8Array(4 * width * height);
  16955. readType = gl.UNSIGNED_BYTE;
  16956. break;
  16957. default:
  16958. buffer = new Float32Array(4 * width * height);
  16959. readType = gl.FLOAT;
  16960. break;
  16961. }
  16962. gl.readPixels(0, 0, width, height, gl.RGBA, readType, buffer);
  16963. gl.bindFramebuffer(gl.FRAMEBUFFER, this._currentFramebuffer);
  16964. return buffer;
  16965. };
  16966. Engine.prototype._canRenderToFloatFramebuffer = function () {
  16967. if (this._webGLVersion > 1) {
  16968. return this._caps.colorBufferFloat;
  16969. }
  16970. return this._canRenderToFramebuffer(Engine.TEXTURETYPE_FLOAT);
  16971. };
  16972. Engine.prototype._canRenderToHalfFloatFramebuffer = function () {
  16973. if (this._webGLVersion > 1) {
  16974. return this._caps.colorBufferFloat;
  16975. }
  16976. return this._canRenderToFramebuffer(Engine.TEXTURETYPE_HALF_FLOAT);
  16977. };
  16978. // Thank you : http://stackoverflow.com/questions/28827511/webgl-ios-render-to-floating-point-texture
  16979. Engine.prototype._canRenderToFramebuffer = function (type) {
  16980. var gl = this._gl;
  16981. //clear existing errors
  16982. while (gl.getError() !== gl.NO_ERROR) { }
  16983. var successful = true;
  16984. var texture = gl.createTexture();
  16985. gl.bindTexture(gl.TEXTURE_2D, texture);
  16986. gl.texImage2D(gl.TEXTURE_2D, 0, this._getRGBABufferInternalSizedFormat(type), 1, 1, 0, gl.RGBA, this._getWebGLTextureType(type), null);
  16987. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MIN_FILTER, gl.NEAREST);
  16988. gl.texParameteri(gl.TEXTURE_2D, gl.TEXTURE_MAG_FILTER, gl.NEAREST);
  16989. var fb = gl.createFramebuffer();
  16990. gl.bindFramebuffer(gl.FRAMEBUFFER, fb);
  16991. gl.framebufferTexture2D(gl.FRAMEBUFFER, gl.COLOR_ATTACHMENT0, gl.TEXTURE_2D, texture, 0);
  16992. var status = gl.checkFramebufferStatus(gl.FRAMEBUFFER);
  16993. successful = successful && (status === gl.FRAMEBUFFER_COMPLETE);
  16994. successful = successful && (gl.getError() === gl.NO_ERROR);
  16995. //try render by clearing frame buffer's color buffer
  16996. if (successful) {
  16997. gl.clear(gl.COLOR_BUFFER_BIT);
  16998. successful = successful && (gl.getError() === gl.NO_ERROR);
  16999. }
  17000. //try reading from frame to ensure render occurs (just creating the FBO is not sufficient to determine if rendering is supported)
  17001. if (successful) {
  17002. //in practice it's sufficient to just read from the backbuffer rather than handle potentially issues reading from the texture
  17003. gl.bindFramebuffer(gl.FRAMEBUFFER, null);
  17004. var readFormat = gl.RGBA;
  17005. var readType = gl.UNSIGNED_BYTE;
  17006. var buffer = new Uint8Array(4);
  17007. gl.readPixels(0, 0, 1, 1, readFormat, readType, buffer);
  17008. successful = successful && (gl.getError() === gl.NO_ERROR);
  17009. }
  17010. //clean up
  17011. gl.deleteTexture(texture);
  17012. gl.deleteFramebuffer(fb);
  17013. gl.bindFramebuffer(gl.FRAMEBUFFER, null);
  17014. //clear accumulated errors
  17015. while (!successful && (gl.getError() !== gl.NO_ERROR)) { }
  17016. return successful;
  17017. };
  17018. /** @hidden */
  17019. Engine.prototype._getWebGLTextureType = function (type) {
  17020. if (this._webGLVersion === 1) {
  17021. switch (type) {
  17022. case Engine.TEXTURETYPE_FLOAT:
  17023. return this._gl.FLOAT;
  17024. case Engine.TEXTURETYPE_HALF_FLOAT:
  17025. return this._gl.HALF_FLOAT_OES;
  17026. case Engine.TEXTURETYPE_UNSIGNED_BYTE:
  17027. return this._gl.UNSIGNED_BYTE;
  17028. }
  17029. return this._gl.UNSIGNED_BYTE;
  17030. }
  17031. switch (type) {
  17032. case Engine.TEXTURETYPE_BYTE:
  17033. return this._gl.BYTE;
  17034. case Engine.TEXTURETYPE_UNSIGNED_BYTE:
  17035. return this._gl.UNSIGNED_BYTE;
  17036. case Engine.TEXTURETYPE_SHORT:
  17037. return this._gl.SHORT;
  17038. case Engine.TEXTURETYPE_UNSIGNED_SHORT:
  17039. return this._gl.UNSIGNED_SHORT;
  17040. case Engine.TEXTURETYPE_INT:
  17041. return this._gl.INT;
  17042. case Engine.TEXTURETYPE_UNSIGNED_INTEGER: // Refers to UNSIGNED_INT
  17043. return this._gl.UNSIGNED_INT;
  17044. case Engine.TEXTURETYPE_FLOAT:
  17045. return this._gl.FLOAT;
  17046. case Engine.TEXTURETYPE_HALF_FLOAT:
  17047. return this._gl.HALF_FLOAT;
  17048. case Engine.TEXTURETYPE_UNSIGNED_SHORT_4_4_4_4:
  17049. return this._gl.UNSIGNED_SHORT_4_4_4_4;
  17050. case Engine.TEXTURETYPE_UNSIGNED_SHORT_5_5_5_1:
  17051. return this._gl.UNSIGNED_SHORT_5_5_5_1;
  17052. case Engine.TEXTURETYPE_UNSIGNED_SHORT_5_6_5:
  17053. return this._gl.UNSIGNED_SHORT_5_6_5;
  17054. case Engine.TEXTURETYPE_UNSIGNED_INT_2_10_10_10_REV:
  17055. return this._gl.UNSIGNED_INT_2_10_10_10_REV;
  17056. case Engine.TEXTURETYPE_UNSIGNED_INT_24_8:
  17057. return this._gl.UNSIGNED_INT_24_8;
  17058. case Engine.TEXTURETYPE_UNSIGNED_INT_10F_11F_11F_REV:
  17059. return this._gl.UNSIGNED_INT_10F_11F_11F_REV;
  17060. case Engine.TEXTURETYPE_UNSIGNED_INT_5_9_9_9_REV:
  17061. return this._gl.UNSIGNED_INT_5_9_9_9_REV;
  17062. case Engine.TEXTURETYPE_FLOAT_32_UNSIGNED_INT_24_8_REV:
  17063. return this._gl.FLOAT_32_UNSIGNED_INT_24_8_REV;
  17064. }
  17065. return this._gl.UNSIGNED_BYTE;
  17066. };
  17067. ;
  17068. Engine.prototype._getInternalFormat = function (format) {
  17069. var internalFormat = this._gl.RGBA;
  17070. switch (format) {
  17071. case Engine.TEXTUREFORMAT_ALPHA:
  17072. internalFormat = this._gl.ALPHA;
  17073. break;
  17074. case Engine.TEXTUREFORMAT_LUMINANCE:
  17075. internalFormat = this._gl.LUMINANCE;
  17076. break;
  17077. case Engine.TEXTUREFORMAT_LUMINANCE_ALPHA:
  17078. internalFormat = this._gl.LUMINANCE_ALPHA;
  17079. break;
  17080. case Engine.TEXTUREFORMAT_RED:
  17081. internalFormat = this._gl.RED;
  17082. break;
  17083. case Engine.TEXTUREFORMAT_RG:
  17084. internalFormat = this._gl.RG;
  17085. break;
  17086. case Engine.TEXTUREFORMAT_RGB:
  17087. internalFormat = this._gl.RGB;
  17088. break;
  17089. case Engine.TEXTUREFORMAT_RGBA:
  17090. internalFormat = this._gl.RGBA;
  17091. break;
  17092. }
  17093. if (this._webGLVersion > 1) {
  17094. switch (format) {
  17095. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17096. internalFormat = this._gl.RED_INTEGER;
  17097. break;
  17098. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17099. internalFormat = this._gl.RG_INTEGER;
  17100. break;
  17101. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17102. internalFormat = this._gl.RGB_INTEGER;
  17103. break;
  17104. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17105. internalFormat = this._gl.RGBA_INTEGER;
  17106. break;
  17107. }
  17108. }
  17109. return internalFormat;
  17110. };
  17111. /** @hidden */
  17112. Engine.prototype._getRGBABufferInternalSizedFormat = function (type, format) {
  17113. if (this._webGLVersion === 1) {
  17114. if (format !== undefined) {
  17115. switch (format) {
  17116. case Engine.TEXTUREFORMAT_ALPHA:
  17117. return this._gl.ALPHA;
  17118. case Engine.TEXTUREFORMAT_LUMINANCE:
  17119. return this._gl.LUMINANCE;
  17120. case Engine.TEXTUREFORMAT_LUMINANCE_ALPHA:
  17121. return this._gl.LUMINANCE_ALPHA;
  17122. }
  17123. }
  17124. return this._gl.RGBA;
  17125. }
  17126. switch (type) {
  17127. case Engine.TEXTURETYPE_BYTE:
  17128. switch (format) {
  17129. case Engine.TEXTUREFORMAT_RED:
  17130. return this._gl.R8_SNORM;
  17131. case Engine.TEXTUREFORMAT_RG:
  17132. return this._gl.RG8_SNORM;
  17133. case Engine.TEXTUREFORMAT_RGB:
  17134. return this._gl.RGB8_SNORM;
  17135. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17136. return this._gl.R8I;
  17137. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17138. return this._gl.RG8I;
  17139. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17140. return this._gl.RGB8I;
  17141. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17142. return this._gl.RGBA8I;
  17143. default:
  17144. return this._gl.RGBA8_SNORM;
  17145. }
  17146. case Engine.TEXTURETYPE_UNSIGNED_BYTE:
  17147. switch (format) {
  17148. case Engine.TEXTUREFORMAT_RED:
  17149. return this._gl.R8;
  17150. case Engine.TEXTUREFORMAT_RG:
  17151. return this._gl.RG8;
  17152. case Engine.TEXTUREFORMAT_RGB:
  17153. return this._gl.RGB8; // By default. Other possibilities are RGB565, SRGB8.
  17154. case Engine.TEXTUREFORMAT_RGBA:
  17155. return this._gl.RGBA8; // By default. Other possibilities are RGB5_A1, RGBA4, SRGB8_ALPHA8.
  17156. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17157. return this._gl.R8UI;
  17158. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17159. return this._gl.RG8UI;
  17160. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17161. return this._gl.RGB8UI;
  17162. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17163. return this._gl.RGBA8UI;
  17164. default:
  17165. return this._gl.RGBA8;
  17166. }
  17167. case Engine.TEXTURETYPE_SHORT:
  17168. switch (format) {
  17169. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17170. return this._gl.R16I;
  17171. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17172. return this._gl.RG16I;
  17173. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17174. return this._gl.RGB16I;
  17175. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17176. return this._gl.RGBA16I;
  17177. default:
  17178. return this._gl.RGBA16I;
  17179. }
  17180. case Engine.TEXTURETYPE_UNSIGNED_SHORT:
  17181. switch (format) {
  17182. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17183. return this._gl.R16UI;
  17184. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17185. return this._gl.RG16UI;
  17186. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17187. return this._gl.RGB16UI;
  17188. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17189. return this._gl.RGBA16UI;
  17190. default:
  17191. return this._gl.RGBA16UI;
  17192. }
  17193. case Engine.TEXTURETYPE_INT:
  17194. switch (format) {
  17195. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17196. return this._gl.R32I;
  17197. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17198. return this._gl.RG32I;
  17199. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17200. return this._gl.RGB32I;
  17201. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17202. return this._gl.RGBA32I;
  17203. default:
  17204. return this._gl.RGBA32I;
  17205. }
  17206. case Engine.TEXTURETYPE_UNSIGNED_INTEGER: // Refers to UNSIGNED_INT
  17207. switch (format) {
  17208. case Engine.TEXTUREFORMAT_RED_INTEGER:
  17209. return this._gl.R32UI;
  17210. case Engine.TEXTUREFORMAT_RG_INTEGER:
  17211. return this._gl.RG32UI;
  17212. case Engine.TEXTUREFORMAT_RGB_INTEGER:
  17213. return this._gl.RGB32UI;
  17214. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17215. return this._gl.RGBA32UI;
  17216. default:
  17217. return this._gl.RGBA32UI;
  17218. }
  17219. case Engine.TEXTURETYPE_FLOAT:
  17220. switch (format) {
  17221. case Engine.TEXTUREFORMAT_RED:
  17222. return this._gl.R32F; // By default. Other possibility is R16F.
  17223. case Engine.TEXTUREFORMAT_RG:
  17224. return this._gl.RG32F; // By default. Other possibility is RG16F.
  17225. case Engine.TEXTUREFORMAT_RGB:
  17226. return this._gl.RGB32F; // By default. Other possibilities are RGB16F, R11F_G11F_B10F, RGB9_E5.
  17227. case Engine.TEXTUREFORMAT_RGBA:
  17228. return this._gl.RGBA32F; // By default. Other possibility is RGBA16F.
  17229. default:
  17230. return this._gl.RGBA32F;
  17231. }
  17232. case Engine.TEXTURETYPE_HALF_FLOAT:
  17233. switch (format) {
  17234. case Engine.TEXTUREFORMAT_RED:
  17235. return this._gl.R16F;
  17236. case Engine.TEXTUREFORMAT_RG:
  17237. return this._gl.RG16F;
  17238. case Engine.TEXTUREFORMAT_RGB:
  17239. return this._gl.RGB16F; // By default. Other possibilities are R11F_G11F_B10F, RGB9_E5.
  17240. case Engine.TEXTUREFORMAT_RGBA:
  17241. return this._gl.RGBA16F;
  17242. default:
  17243. return this._gl.RGBA16F;
  17244. }
  17245. case Engine.TEXTURETYPE_UNSIGNED_SHORT_5_6_5:
  17246. return this._gl.RGB565;
  17247. case Engine.TEXTURETYPE_UNSIGNED_INT_10F_11F_11F_REV:
  17248. return this._gl.R11F_G11F_B10F;
  17249. case Engine.TEXTURETYPE_UNSIGNED_INT_5_9_9_9_REV:
  17250. return this._gl.RGB9_E5;
  17251. case Engine.TEXTURETYPE_UNSIGNED_SHORT_4_4_4_4:
  17252. return this._gl.RGBA4;
  17253. case Engine.TEXTURETYPE_UNSIGNED_SHORT_5_5_5_1:
  17254. return this._gl.RGB5_A1;
  17255. case Engine.TEXTURETYPE_UNSIGNED_INT_2_10_10_10_REV:
  17256. switch (format) {
  17257. case Engine.TEXTUREFORMAT_RGBA:
  17258. return this._gl.RGB10_A2; // By default. Other possibility is RGB5_A1.
  17259. case Engine.TEXTUREFORMAT_RGBA_INTEGER:
  17260. return this._gl.RGB10_A2UI;
  17261. default:
  17262. return this._gl.RGB10_A2;
  17263. }
  17264. }
  17265. return this._gl.RGBA8;
  17266. };
  17267. ;
  17268. /** @hidden */
  17269. Engine.prototype._getRGBAMultiSampleBufferFormat = function (type) {
  17270. if (type === Engine.TEXTURETYPE_FLOAT) {
  17271. return this._gl.RGBA32F;
  17272. }
  17273. else if (type === Engine.TEXTURETYPE_HALF_FLOAT) {
  17274. return this._gl.RGBA16F;
  17275. }
  17276. return this._gl.RGBA8;
  17277. };
  17278. ;
  17279. /** @hidden */
  17280. Engine.prototype._loadFile = function (url, onSuccess, onProgress, database, useArrayBuffer, onError) {
  17281. var _this = this;
  17282. var request = BABYLON.Tools.LoadFile(url, onSuccess, onProgress, database, useArrayBuffer, onError);
  17283. this._activeRequests.push(request);
  17284. request.onCompleteObservable.add(function (request) {
  17285. _this._activeRequests.splice(_this._activeRequests.indexOf(request), 1);
  17286. });
  17287. return request;
  17288. };
  17289. /** @hidden */
  17290. Engine.prototype._loadFileAsync = function (url, database, useArrayBuffer) {
  17291. var _this = this;
  17292. return new Promise(function (resolve, reject) {
  17293. _this._loadFile(url, function (data) {
  17294. resolve(data);
  17295. }, undefined, database, useArrayBuffer, function (request, exception) {
  17296. reject(exception);
  17297. });
  17298. });
  17299. };
  17300. Engine.prototype._partialLoadFile = function (url, index, loadedFiles, scene, onfinish, onErrorCallBack) {
  17301. if (onErrorCallBack === void 0) { onErrorCallBack = null; }
  17302. var onload = function (data) {
  17303. loadedFiles[index] = data;
  17304. loadedFiles._internalCount++;
  17305. if (loadedFiles._internalCount === 6) {
  17306. onfinish(loadedFiles);
  17307. }
  17308. };
  17309. var onerror = function (request, exception) {
  17310. if (onErrorCallBack && request) {
  17311. onErrorCallBack(request.status + " " + request.statusText, exception);
  17312. }
  17313. };
  17314. this._loadFile(url, onload, undefined, undefined, true, onerror);
  17315. };
  17316. Engine.prototype._cascadeLoadFiles = function (scene, onfinish, files, onError) {
  17317. if (onError === void 0) { onError = null; }
  17318. var loadedFiles = [];
  17319. loadedFiles._internalCount = 0;
  17320. for (var index = 0; index < 6; index++) {
  17321. this._partialLoadFile(files[index], index, loadedFiles, scene, onfinish, onError);
  17322. }
  17323. };
  17324. // Statics
  17325. /**
  17326. * Gets a boolean indicating if the engine can be instanciated (ie. if a webGL context can be found)
  17327. * @returns true if the engine can be created
  17328. * @ignorenaming
  17329. */
  17330. Engine.isSupported = function () {
  17331. try {
  17332. var tempcanvas = document.createElement("canvas");
  17333. var gl = tempcanvas.getContext("webgl") || tempcanvas.getContext("experimental-webgl");
  17334. return gl != null && !!window.WebGLRenderingContext;
  17335. }
  17336. catch (e) {
  17337. return false;
  17338. }
  17339. };
  17340. /** Use this array to turn off some WebGL2 features on known buggy browsers version */
  17341. Engine.ExceptionList = [
  17342. { key: "Chrome/63.0", capture: "63\\.0\\.3239\\.(\\d+)", captureConstraint: 108, targets: ["uniformBuffer"] },
  17343. { key: "Firefox/58", capture: null, captureConstraint: null, targets: ["uniformBuffer"] },
  17344. { key: "Firefox/59", capture: null, captureConstraint: null, targets: ["uniformBuffer"] },
  17345. { key: "Macintosh", capture: null, captureConstraint: null, targets: ["textureBindingOptimization"] },
  17346. { key: "iPhone", capture: null, captureConstraint: null, targets: ["textureBindingOptimization"] },
  17347. { key: "iPad", capture: null, captureConstraint: null, targets: ["textureBindingOptimization"] }
  17348. ];
  17349. /** Gets the list of created engines */
  17350. Engine.Instances = new Array();
  17351. /**
  17352. * Hidden
  17353. */
  17354. Engine._TextureLoaders = [];
  17355. // Const statics
  17356. /** Defines that alpha blending is disabled */
  17357. Engine.ALPHA_DISABLE = 0;
  17358. /** Defines that alpha blending to SRC ALPHA * SRC + DEST */
  17359. Engine.ALPHA_ADD = 1;
  17360. /** Defines that alpha blending to SRC ALPHA * SRC + (1 - SRC ALPHA) * DEST */
  17361. Engine.ALPHA_COMBINE = 2;
  17362. /** Defines that alpha blending to DEST - SRC * DEST */
  17363. Engine.ALPHA_SUBTRACT = 3;
  17364. /** Defines that alpha blending to SRC * DEST */
  17365. Engine.ALPHA_MULTIPLY = 4;
  17366. /** Defines that alpha blending to SRC ALPHA * SRC + (1 - SRC) * DEST */
  17367. Engine.ALPHA_MAXIMIZED = 5;
  17368. /** Defines that alpha blending to SRC + DEST */
  17369. Engine.ALPHA_ONEONE = 6;
  17370. /** Defines that alpha blending to SRC + (1 - SRC ALPHA) * DEST */
  17371. Engine.ALPHA_PREMULTIPLIED = 7;
  17372. /**
  17373. * Defines that alpha blending to SRC + (1 - SRC ALPHA) * DEST
  17374. * Alpha will be set to (1 - SRC ALPHA) * DEST ALPHA
  17375. */
  17376. Engine.ALPHA_PREMULTIPLIED_PORTERDUFF = 8;
  17377. /** Defines that alpha blending to CST * SRC + (1 - CST) * DEST */
  17378. Engine.ALPHA_INTERPOLATE = 9;
  17379. /**
  17380. * Defines that alpha blending to SRC + (1 - SRC) * DEST
  17381. * Alpha will be set to SRC ALPHA + (1 - SRC ALPHA) * DEST ALPHA
  17382. */
  17383. Engine.ALPHA_SCREENMODE = 10;
  17384. /** Defines that the ressource is not delayed*/
  17385. Engine.DELAYLOADSTATE_NONE = 0;
  17386. /** Defines that the ressource was successfully delay loaded */
  17387. Engine.DELAYLOADSTATE_LOADED = 1;
  17388. /** Defines that the ressource is currently delay loading */
  17389. Engine.DELAYLOADSTATE_LOADING = 2;
  17390. /** Defines that the ressource is delayed and has not started loading */
  17391. Engine.DELAYLOADSTATE_NOTLOADED = 4;
  17392. // Depht or Stencil test Constants.
  17393. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will never pass. i.e. Nothing will be drawn */
  17394. Engine.NEVER = 0x0200;
  17395. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will always pass. i.e. Pixels will be drawn in the order they are drawn */
  17396. Engine.ALWAYS = 0x0207;
  17397. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is less than the stored value */
  17398. Engine.LESS = 0x0201;
  17399. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is equals to the stored value */
  17400. Engine.EQUAL = 0x0202;
  17401. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is less than or equal to the stored value */
  17402. Engine.LEQUAL = 0x0203;
  17403. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is greater than the stored value */
  17404. Engine.GREATER = 0x0204;
  17405. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is greater than or equal to the stored value */
  17406. Engine.GEQUAL = 0x0206;
  17407. /** Passed to depthFunction or stencilFunction to specify depth or stencil tests will pass if the new depth value is not equal to the stored value */
  17408. Engine.NOTEQUAL = 0x0205;
  17409. // Stencil Actions Constants.
  17410. /** Passed to stencilOperation to specify that stencil value must be kept */
  17411. Engine.KEEP = 0x1E00;
  17412. /** Passed to stencilOperation to specify that stencil value must be replaced */
  17413. Engine.REPLACE = 0x1E01;
  17414. /** Passed to stencilOperation to specify that stencil value must be incremented */
  17415. Engine.INCR = 0x1E02;
  17416. /** Passed to stencilOperation to specify that stencil value must be decremented */
  17417. Engine.DECR = 0x1E03;
  17418. /** Passed to stencilOperation to specify that stencil value must be inverted */
  17419. Engine.INVERT = 0x150A;
  17420. /** Passed to stencilOperation to specify that stencil value must be incremented with wrapping */
  17421. Engine.INCR_WRAP = 0x8507;
  17422. /** Passed to stencilOperation to specify that stencil value must be decremented with wrapping */
  17423. Engine.DECR_WRAP = 0x8508;
  17424. /** Texture is not repeating outside of 0..1 UVs */
  17425. Engine.TEXTURE_CLAMP_ADDRESSMODE = 0;
  17426. /** Texture is repeating outside of 0..1 UVs */
  17427. Engine.TEXTURE_WRAP_ADDRESSMODE = 1;
  17428. /** Texture is repeating and mirrored */
  17429. Engine.TEXTURE_MIRROR_ADDRESSMODE = 2;
  17430. /** ALPHA */
  17431. Engine.TEXTUREFORMAT_ALPHA = 0;
  17432. /** LUMINANCE */
  17433. Engine.TEXTUREFORMAT_LUMINANCE = 1;
  17434. /** LUMINANCE_ALPHA */
  17435. Engine.TEXTUREFORMAT_LUMINANCE_ALPHA = 2;
  17436. /** RGB */
  17437. Engine.TEXTUREFORMAT_RGB = 4;
  17438. /** RGBA */
  17439. Engine.TEXTUREFORMAT_RGBA = 5;
  17440. /** RED */
  17441. Engine.TEXTUREFORMAT_RED = 6;
  17442. /** RED (2nd reference) */
  17443. Engine.TEXTUREFORMAT_R = 6;
  17444. /** RG */
  17445. Engine.TEXTUREFORMAT_RG = 7;
  17446. /** RED_INTEGER */
  17447. Engine.TEXTUREFORMAT_RED_INTEGER = 8;
  17448. /** RED_INTEGER (2nd reference) */
  17449. Engine.TEXTUREFORMAT_R_INTEGER = 8;
  17450. /** RG_INTEGER */
  17451. Engine.TEXTUREFORMAT_RG_INTEGER = 9;
  17452. /** RGB_INTEGER */
  17453. Engine.TEXTUREFORMAT_RGB_INTEGER = 10;
  17454. /** RGBA_INTEGER */
  17455. Engine.TEXTUREFORMAT_RGBA_INTEGER = 11;
  17456. /** UNSIGNED_BYTE */
  17457. Engine.TEXTURETYPE_UNSIGNED_BYTE = 0;
  17458. /** UNSIGNED_BYTE (2nd reference) */
  17459. Engine.TEXTURETYPE_UNSIGNED_INT = 0;
  17460. /** FLOAT */
  17461. Engine.TEXTURETYPE_FLOAT = 1;
  17462. /** HALF_FLOAT */
  17463. Engine.TEXTURETYPE_HALF_FLOAT = 2;
  17464. /** BYTE */
  17465. Engine.TEXTURETYPE_BYTE = 3;
  17466. /** SHORT */
  17467. Engine.TEXTURETYPE_SHORT = 4;
  17468. /** UNSIGNED_SHORT */
  17469. Engine.TEXTURETYPE_UNSIGNED_SHORT = 5;
  17470. /** INT */
  17471. Engine.TEXTURETYPE_INT = 6;
  17472. /** UNSIGNED_INT */
  17473. Engine.TEXTURETYPE_UNSIGNED_INTEGER = 7;
  17474. /** UNSIGNED_SHORT_4_4_4_4 */
  17475. Engine.TEXTURETYPE_UNSIGNED_SHORT_4_4_4_4 = 8;
  17476. /** UNSIGNED_SHORT_5_5_5_1 */
  17477. Engine.TEXTURETYPE_UNSIGNED_SHORT_5_5_5_1 = 9;
  17478. /** UNSIGNED_SHORT_5_6_5 */
  17479. Engine.TEXTURETYPE_UNSIGNED_SHORT_5_6_5 = 10;
  17480. /** UNSIGNED_INT_2_10_10_10_REV */
  17481. Engine.TEXTURETYPE_UNSIGNED_INT_2_10_10_10_REV = 11;
  17482. /** UNSIGNED_INT_24_8 */
  17483. Engine.TEXTURETYPE_UNSIGNED_INT_24_8 = 12;
  17484. /** UNSIGNED_INT_10F_11F_11F_REV */
  17485. Engine.TEXTURETYPE_UNSIGNED_INT_10F_11F_11F_REV = 13;
  17486. /** UNSIGNED_INT_5_9_9_9_REV */
  17487. Engine.TEXTURETYPE_UNSIGNED_INT_5_9_9_9_REV = 14;
  17488. /** FLOAT_32_UNSIGNED_INT_24_8_REV */
  17489. Engine.TEXTURETYPE_FLOAT_32_UNSIGNED_INT_24_8_REV = 15;
  17490. /** nearest is mag = nearest and min = nearest and mip = linear */
  17491. Engine.TEXTURE_NEAREST_SAMPLINGMODE = 1;
  17492. /** Bilinear is mag = linear and min = linear and mip = nearest */
  17493. Engine.TEXTURE_BILINEAR_SAMPLINGMODE = 2;
  17494. /** Trilinear is mag = linear and min = linear and mip = linear */
  17495. Engine.TEXTURE_TRILINEAR_SAMPLINGMODE = 3;
  17496. /** nearest is mag = nearest and min = nearest and mip = linear */
  17497. Engine.TEXTURE_NEAREST_NEAREST_MIPLINEAR = 1;
  17498. /** Bilinear is mag = linear and min = linear and mip = nearest */
  17499. Engine.TEXTURE_LINEAR_LINEAR_MIPNEAREST = 2;
  17500. /** Trilinear is mag = linear and min = linear and mip = linear */
  17501. Engine.TEXTURE_LINEAR_LINEAR_MIPLINEAR = 3;
  17502. /** mag = nearest and min = nearest and mip = nearest */
  17503. Engine.TEXTURE_NEAREST_NEAREST_MIPNEAREST = 4;
  17504. /** mag = nearest and min = linear and mip = nearest */
  17505. Engine.TEXTURE_NEAREST_LINEAR_MIPNEAREST = 5;
  17506. /** mag = nearest and min = linear and mip = linear */
  17507. Engine.TEXTURE_NEAREST_LINEAR_MIPLINEAR = 6;
  17508. /** mag = nearest and min = linear and mip = none */
  17509. Engine.TEXTURE_NEAREST_LINEAR = 7;
  17510. /** mag = nearest and min = nearest and mip = none */
  17511. Engine.TEXTURE_NEAREST_NEAREST = 8;
  17512. /** mag = linear and min = nearest and mip = nearest */
  17513. Engine.TEXTURE_LINEAR_NEAREST_MIPNEAREST = 9;
  17514. /** mag = linear and min = nearest and mip = linear */
  17515. Engine.TEXTURE_LINEAR_NEAREST_MIPLINEAR = 10;
  17516. /** mag = linear and min = linear and mip = none */
  17517. Engine.TEXTURE_LINEAR_LINEAR = 11;
  17518. /** mag = linear and min = nearest and mip = none */
  17519. Engine.TEXTURE_LINEAR_NEAREST = 12;
  17520. /** Explicit coordinates mode */
  17521. Engine.TEXTURE_EXPLICIT_MODE = 0;
  17522. /** Spherical coordinates mode */
  17523. Engine.TEXTURE_SPHERICAL_MODE = 1;
  17524. /** Planar coordinates mode */
  17525. Engine.TEXTURE_PLANAR_MODE = 2;
  17526. /** Cubic coordinates mode */
  17527. Engine.TEXTURE_CUBIC_MODE = 3;
  17528. /** Projection coordinates mode */
  17529. Engine.TEXTURE_PROJECTION_MODE = 4;
  17530. /** Skybox coordinates mode */
  17531. Engine.TEXTURE_SKYBOX_MODE = 5;
  17532. /** Inverse Cubic coordinates mode */
  17533. Engine.TEXTURE_INVCUBIC_MODE = 6;
  17534. /** Equirectangular coordinates mode */
  17535. Engine.TEXTURE_EQUIRECTANGULAR_MODE = 7;
  17536. /** Equirectangular Fixed coordinates mode */
  17537. Engine.TEXTURE_FIXED_EQUIRECTANGULAR_MODE = 8;
  17538. /** Equirectangular Fixed Mirrored coordinates mode */
  17539. Engine.TEXTURE_FIXED_EQUIRECTANGULAR_MIRRORED_MODE = 9;
  17540. // Texture rescaling mode
  17541. /** Defines that texture rescaling will use a floor to find the closer power of 2 size */
  17542. Engine.SCALEMODE_FLOOR = 1;
  17543. /** Defines that texture rescaling will look for the nearest power of 2 size */
  17544. Engine.SCALEMODE_NEAREST = 2;
  17545. /** Defines that texture rescaling will use a ceil to find the closer power of 2 size */
  17546. Engine.SCALEMODE_CEILING = 3;
  17547. // Updatable statics so stick with vars here
  17548. /**
  17549. * Gets or sets the epsilon value used by collision engine
  17550. */
  17551. Engine.CollisionsEpsilon = 0.001;
  17552. /**
  17553. * Gets or sets the relative url used to load code if using the engine in non-minified mode
  17554. */
  17555. Engine.CodeRepository = "src/";
  17556. /**
  17557. * Gets or sets the relative url used to load shaders if using the engine in non-minified mode
  17558. */
  17559. Engine.ShadersRepository = "src/Shaders/";
  17560. return Engine;
  17561. }());
  17562. BABYLON.Engine = Engine;
  17563. })(BABYLON || (BABYLON = {}));
  17564. //# sourceMappingURL=babylon.engine.js.map
  17565. var BABYLON;
  17566. (function (BABYLON) {
  17567. /**
  17568. * Node is the basic class for all scene objects (Mesh, Light Camera).
  17569. */
  17570. var Node = /** @class */ (function () {
  17571. /**
  17572. * Creates a new Node
  17573. * @param {string} name - the name and id to be given to this node
  17574. * @param {BABYLON.Scene} the scene this node will be added to
  17575. */
  17576. function Node(name, scene) {
  17577. if (scene === void 0) { scene = null; }
  17578. /**
  17579. * Gets or sets a string used to store user defined state for the node
  17580. */
  17581. this.state = "";
  17582. /**
  17583. * Gets or sets an object used to store user defined information for the node
  17584. */
  17585. this.metadata = null;
  17586. /**
  17587. * Gets or sets a boolean used to define if the node must be serialized
  17588. */
  17589. this.doNotSerialize = false;
  17590. /** @hidden */
  17591. this._isDisposed = false;
  17592. /**
  17593. * Gets a list of Animations associated with the node
  17594. */
  17595. this.animations = new Array();
  17596. this._ranges = {};
  17597. this._isEnabled = true;
  17598. this._isReady = true;
  17599. /** @hidden */
  17600. this._currentRenderId = -1;
  17601. this._parentRenderId = -1;
  17602. this._childRenderId = -1;
  17603. this._animationPropertiesOverride = null;
  17604. /**
  17605. * An event triggered when the mesh is disposed
  17606. */
  17607. this.onDisposeObservable = new BABYLON.Observable();
  17608. // Behaviors
  17609. this._behaviors = new Array();
  17610. this.name = name;
  17611. this.id = name;
  17612. this._scene = (scene || BABYLON.Engine.LastCreatedScene);
  17613. this.uniqueId = this._scene.getUniqueId();
  17614. this._initCache();
  17615. this._scene.rootNodes.push(this);
  17616. }
  17617. /**
  17618. * Add a new node constructor
  17619. * @param type defines the type name of the node to construct
  17620. * @param constructorFunc defines the constructor function
  17621. */
  17622. Node.AddNodeConstructor = function (type, constructorFunc) {
  17623. this._NodeConstructors[type] = constructorFunc;
  17624. };
  17625. /**
  17626. * Returns a node constructor based on type name
  17627. * @param type defines the type name
  17628. * @param name defines the new node name
  17629. * @param scene defines the hosting scene
  17630. * @param options defines optional options to transmit to constructors
  17631. * @returns the new constructor or null
  17632. */
  17633. Node.Construct = function (type, name, scene, options) {
  17634. var constructorFunc = this._NodeConstructors[type];
  17635. if (!constructorFunc) {
  17636. return null;
  17637. }
  17638. return constructorFunc(name, scene, options);
  17639. };
  17640. /**
  17641. * Gets a boolean indicating if the node has been disposed
  17642. * @returns true if the node was disposed
  17643. */
  17644. Node.prototype.isDisposed = function () {
  17645. return this._isDisposed;
  17646. };
  17647. Object.defineProperty(Node.prototype, "parent", {
  17648. get: function () {
  17649. return this._parentNode;
  17650. },
  17651. /**
  17652. * Gets or sets the parent of the node
  17653. */
  17654. set: function (parent) {
  17655. if (this._parentNode === parent) {
  17656. return;
  17657. }
  17658. var previousParentNode = this._parentNode;
  17659. // Remove self from list of children of parent
  17660. if (this._parentNode && this._parentNode._children !== undefined && this._parentNode._children !== null) {
  17661. var index = this._parentNode._children.indexOf(this);
  17662. if (index !== -1) {
  17663. this._parentNode._children.splice(index, 1);
  17664. }
  17665. if (!parent) {
  17666. // Need to add this node to the rootNodes
  17667. this._scene.rootNodes.push(this);
  17668. }
  17669. }
  17670. // Store new parent
  17671. this._parentNode = parent;
  17672. // Add as child to new parent
  17673. if (this._parentNode) {
  17674. if (this._parentNode._children === undefined || this._parentNode._children === null) {
  17675. this._parentNode._children = new Array();
  17676. }
  17677. this._parentNode._children.push(this);
  17678. if (!previousParentNode) {
  17679. // Need to remove from rootNodes
  17680. var rootNodeIndex = this._scene.rootNodes.indexOf(this);
  17681. if (rootNodeIndex > -1) {
  17682. this._scene.rootNodes.splice(rootNodeIndex, 1);
  17683. }
  17684. }
  17685. }
  17686. },
  17687. enumerable: true,
  17688. configurable: true
  17689. });
  17690. Object.defineProperty(Node.prototype, "animationPropertiesOverride", {
  17691. /**
  17692. * Gets or sets the animation properties override
  17693. */
  17694. get: function () {
  17695. if (!this._animationPropertiesOverride) {
  17696. return this._scene.animationPropertiesOverride;
  17697. }
  17698. return this._animationPropertiesOverride;
  17699. },
  17700. set: function (value) {
  17701. this._animationPropertiesOverride = value;
  17702. },
  17703. enumerable: true,
  17704. configurable: true
  17705. });
  17706. /**
  17707. * Gets a string idenfifying the name of the class
  17708. * @returns "Node" string
  17709. */
  17710. Node.prototype.getClassName = function () {
  17711. return "Node";
  17712. };
  17713. Object.defineProperty(Node.prototype, "onDispose", {
  17714. /**
  17715. * Sets a callback that will be raised when the node will be disposed
  17716. */
  17717. set: function (callback) {
  17718. if (this._onDisposeObserver) {
  17719. this.onDisposeObservable.remove(this._onDisposeObserver);
  17720. }
  17721. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  17722. },
  17723. enumerable: true,
  17724. configurable: true
  17725. });
  17726. /**
  17727. * Gets the scene of the node
  17728. * @returns a {BABYLON.Scene}
  17729. */
  17730. Node.prototype.getScene = function () {
  17731. return this._scene;
  17732. };
  17733. /**
  17734. * Gets the engine of the node
  17735. * @returns a {BABYLON.Engine}
  17736. */
  17737. Node.prototype.getEngine = function () {
  17738. return this._scene.getEngine();
  17739. };
  17740. /**
  17741. * Attach a behavior to the node
  17742. * @see http://doc.babylonjs.com/features/behaviour
  17743. * @param behavior defines the behavior to attach
  17744. * @returns the current Node
  17745. */
  17746. Node.prototype.addBehavior = function (behavior) {
  17747. var _this = this;
  17748. var index = this._behaviors.indexOf(behavior);
  17749. if (index !== -1) {
  17750. return this;
  17751. }
  17752. behavior.init();
  17753. if (this._scene.isLoading) {
  17754. // We defer the attach when the scene will be loaded
  17755. this._scene.onDataLoadedObservable.addOnce(function () {
  17756. behavior.attach(_this);
  17757. });
  17758. }
  17759. else {
  17760. behavior.attach(this);
  17761. }
  17762. this._behaviors.push(behavior);
  17763. return this;
  17764. };
  17765. /**
  17766. * Remove an attached behavior
  17767. * @see http://doc.babylonjs.com/features/behaviour
  17768. * @param behavior defines the behavior to attach
  17769. * @returns the current Node
  17770. */
  17771. Node.prototype.removeBehavior = function (behavior) {
  17772. var index = this._behaviors.indexOf(behavior);
  17773. if (index === -1) {
  17774. return this;
  17775. }
  17776. this._behaviors[index].detach();
  17777. this._behaviors.splice(index, 1);
  17778. return this;
  17779. };
  17780. Object.defineProperty(Node.prototype, "behaviors", {
  17781. /**
  17782. * Gets the list of attached behaviors
  17783. * @see http://doc.babylonjs.com/features/behaviour
  17784. */
  17785. get: function () {
  17786. return this._behaviors;
  17787. },
  17788. enumerable: true,
  17789. configurable: true
  17790. });
  17791. /**
  17792. * Gets an attached behavior by name
  17793. * @param name defines the name of the behavior to look for
  17794. * @see http://doc.babylonjs.com/features/behaviour
  17795. * @returns null if behavior was not found else the requested behavior
  17796. */
  17797. Node.prototype.getBehaviorByName = function (name) {
  17798. for (var _i = 0, _a = this._behaviors; _i < _a.length; _i++) {
  17799. var behavior = _a[_i];
  17800. if (behavior.name === name) {
  17801. return behavior;
  17802. }
  17803. }
  17804. return null;
  17805. };
  17806. /**
  17807. * Returns the world matrix of the node
  17808. * @returns a matrix containing the node's world matrix
  17809. */
  17810. Node.prototype.getWorldMatrix = function () {
  17811. return BABYLON.Matrix.Identity();
  17812. };
  17813. /** @hidden */
  17814. Node.prototype._getWorldMatrixDeterminant = function () {
  17815. return 1;
  17816. };
  17817. // override it in derived class if you add new variables to the cache
  17818. // and call the parent class method
  17819. /** @hidden */
  17820. Node.prototype._initCache = function () {
  17821. this._cache = {};
  17822. this._cache.parent = undefined;
  17823. };
  17824. /** @hidden */
  17825. Node.prototype.updateCache = function (force) {
  17826. if (!force && this.isSynchronized())
  17827. return;
  17828. this._cache.parent = this.parent;
  17829. this._updateCache();
  17830. };
  17831. // override it in derived class if you add new variables to the cache
  17832. // and call the parent class method if !ignoreParentClass
  17833. /** @hidden */
  17834. Node.prototype._updateCache = function (ignoreParentClass) {
  17835. };
  17836. // override it in derived class if you add new variables to the cache
  17837. /** @hidden */
  17838. Node.prototype._isSynchronized = function () {
  17839. return true;
  17840. };
  17841. /** @hidden */
  17842. Node.prototype._markSyncedWithParent = function () {
  17843. if (this.parent) {
  17844. this._parentRenderId = this.parent._childRenderId;
  17845. }
  17846. };
  17847. /** @hidden */
  17848. Node.prototype.isSynchronizedWithParent = function () {
  17849. if (!this.parent) {
  17850. return true;
  17851. }
  17852. if (this._parentRenderId !== this.parent._childRenderId) {
  17853. return false;
  17854. }
  17855. return this.parent.isSynchronized();
  17856. };
  17857. /** @hidden */
  17858. Node.prototype.isSynchronized = function (updateCache) {
  17859. var check = this.hasNewParent();
  17860. check = check || !this.isSynchronizedWithParent();
  17861. check = check || !this._isSynchronized();
  17862. if (updateCache)
  17863. this.updateCache(true);
  17864. return !check;
  17865. };
  17866. /** @hidden */
  17867. Node.prototype.hasNewParent = function () {
  17868. if (this._cache.parent === this.parent)
  17869. return false;
  17870. this._cache.parent = this.parent;
  17871. return true;
  17872. };
  17873. /**
  17874. * Is this node ready to be used/rendered
  17875. * @param completeCheck defines if a complete check (including materials and lights) has to be done (false by default)
  17876. * @return true if the node is ready
  17877. */
  17878. Node.prototype.isReady = function (completeCheck) {
  17879. if (completeCheck === void 0) { completeCheck = false; }
  17880. return this._isReady;
  17881. };
  17882. /**
  17883. * Is this node enabled?
  17884. * If the node has a parent, all ancestors will be checked and false will be returned if any are false (not enabled), otherwise will return true
  17885. * @param checkAncestors indicates if this method should check the ancestors. The default is to check the ancestors. If set to false, the method will return the value of this node without checking ancestors
  17886. * @return whether this node (and its parent) is enabled
  17887. */
  17888. Node.prototype.isEnabled = function (checkAncestors) {
  17889. if (checkAncestors === void 0) { checkAncestors = true; }
  17890. if (checkAncestors === false) {
  17891. return this._isEnabled;
  17892. }
  17893. if (this._isEnabled === false) {
  17894. return false;
  17895. }
  17896. if (this.parent !== undefined && this.parent !== null) {
  17897. return this.parent.isEnabled(checkAncestors);
  17898. }
  17899. return true;
  17900. };
  17901. /**
  17902. * Set the enabled state of this node
  17903. * @param value defines the new enabled state
  17904. */
  17905. Node.prototype.setEnabled = function (value) {
  17906. this._isEnabled = value;
  17907. };
  17908. /**
  17909. * Is this node a descendant of the given node?
  17910. * The function will iterate up the hierarchy until the ancestor was found or no more parents defined
  17911. * @param ancestor defines the parent node to inspect
  17912. * @returns a boolean indicating if this node is a descendant of the given node
  17913. */
  17914. Node.prototype.isDescendantOf = function (ancestor) {
  17915. if (this.parent) {
  17916. if (this.parent === ancestor) {
  17917. return true;
  17918. }
  17919. return this.parent.isDescendantOf(ancestor);
  17920. }
  17921. return false;
  17922. };
  17923. /** @hidden */
  17924. Node.prototype._getDescendants = function (results, directDescendantsOnly, predicate) {
  17925. if (directDescendantsOnly === void 0) { directDescendantsOnly = false; }
  17926. if (!this._children) {
  17927. return;
  17928. }
  17929. for (var index = 0; index < this._children.length; index++) {
  17930. var item = this._children[index];
  17931. if (!predicate || predicate(item)) {
  17932. results.push(item);
  17933. }
  17934. if (!directDescendantsOnly) {
  17935. item._getDescendants(results, false, predicate);
  17936. }
  17937. }
  17938. };
  17939. /**
  17940. * Will return all nodes that have this node as ascendant
  17941. * @param directDescendantsOnly defines if true only direct descendants of 'this' will be considered, if false direct and also indirect (children of children, an so on in a recursive manner) descendants of 'this' will be considered
  17942. * @param predicate defines an optional predicate that will be called on every evaluated child, the predicate must return true for a given child to be part of the result, otherwise it will be ignored
  17943. * @return all children nodes of all types
  17944. */
  17945. Node.prototype.getDescendants = function (directDescendantsOnly, predicate) {
  17946. var results = new Array();
  17947. this._getDescendants(results, directDescendantsOnly, predicate);
  17948. return results;
  17949. };
  17950. /**
  17951. * Get all child-meshes of this node
  17952. * @param directDescendantsOnly defines if true only direct descendants of 'this' will be considered, if false direct and also indirect (children of children, an so on in a recursive manner) descendants of 'this' will be considered
  17953. * @param predicate defines an optional predicate that will be called on every evaluated child, the predicate must return true for a given child to be part of the result, otherwise it will be ignored
  17954. * @returns an array of {BABYLON.AbstractMesh}
  17955. */
  17956. Node.prototype.getChildMeshes = function (directDescendantsOnly, predicate) {
  17957. var results = [];
  17958. this._getDescendants(results, directDescendantsOnly, function (node) {
  17959. return ((!predicate || predicate(node)) && (node instanceof BABYLON.AbstractMesh));
  17960. });
  17961. return results;
  17962. };
  17963. /**
  17964. * Get all child-transformNodes of this node
  17965. * @param directDescendantsOnly defines if true only direct descendants of 'this' will be considered, if false direct and also indirect (children of children, an so on in a recursive manner) descendants of 'this' will be considered
  17966. * @param predicate defines an optional predicate that will be called on every evaluated child, the predicate must return true for a given child to be part of the result, otherwise it will be ignored
  17967. * @returns an array of {BABYLON.TransformNode}
  17968. */
  17969. Node.prototype.getChildTransformNodes = function (directDescendantsOnly, predicate) {
  17970. var results = [];
  17971. this._getDescendants(results, directDescendantsOnly, function (node) {
  17972. return ((!predicate || predicate(node)) && (node instanceof BABYLON.TransformNode));
  17973. });
  17974. return results;
  17975. };
  17976. /**
  17977. * Get all direct children of this node
  17978. * @param predicate defines an optional predicate that will be called on every evaluated child, the predicate must return true for a given child to be part of the result, otherwise it will be ignored
  17979. * @returns an array of {BABYLON.Node}
  17980. */
  17981. Node.prototype.getChildren = function (predicate) {
  17982. if (!predicate) {
  17983. return this._children;
  17984. }
  17985. return this.getDescendants(true, predicate);
  17986. };
  17987. /** @hidden */
  17988. Node.prototype._setReady = function (state) {
  17989. if (state === this._isReady) {
  17990. return;
  17991. }
  17992. if (!state) {
  17993. this._isReady = false;
  17994. return;
  17995. }
  17996. if (this.onReady) {
  17997. this.onReady(this);
  17998. }
  17999. this._isReady = true;
  18000. };
  18001. /**
  18002. * Get an animation by name
  18003. * @param name defines the name of the animation to look for
  18004. * @returns null if not found else the requested animation
  18005. */
  18006. Node.prototype.getAnimationByName = function (name) {
  18007. for (var i = 0; i < this.animations.length; i++) {
  18008. var animation = this.animations[i];
  18009. if (animation.name === name) {
  18010. return animation;
  18011. }
  18012. }
  18013. return null;
  18014. };
  18015. /**
  18016. * Creates an animation range for this node
  18017. * @param name defines the name of the range
  18018. * @param from defines the starting key
  18019. * @param to defines the end key
  18020. */
  18021. Node.prototype.createAnimationRange = function (name, from, to) {
  18022. // check name not already in use
  18023. if (!this._ranges[name]) {
  18024. this._ranges[name] = new BABYLON.AnimationRange(name, from, to);
  18025. for (var i = 0, nAnimations = this.animations.length; i < nAnimations; i++) {
  18026. if (this.animations[i]) {
  18027. this.animations[i].createRange(name, from, to);
  18028. }
  18029. }
  18030. }
  18031. };
  18032. /**
  18033. * Delete a specific animation range
  18034. * @param name defines the name of the range to delete
  18035. * @param deleteFrames defines if animation frames from the range must be deleted as well
  18036. */
  18037. Node.prototype.deleteAnimationRange = function (name, deleteFrames) {
  18038. if (deleteFrames === void 0) { deleteFrames = true; }
  18039. for (var i = 0, nAnimations = this.animations.length; i < nAnimations; i++) {
  18040. if (this.animations[i]) {
  18041. this.animations[i].deleteRange(name, deleteFrames);
  18042. }
  18043. }
  18044. this._ranges[name] = null; // said much faster than 'delete this._range[name]'
  18045. };
  18046. /**
  18047. * Get an animation range by name
  18048. * @param name defines the name of the animation range to look for
  18049. * @returns null if not found else the requested animation range
  18050. */
  18051. Node.prototype.getAnimationRange = function (name) {
  18052. return this._ranges[name];
  18053. };
  18054. /**
  18055. * Will start the animation sequence
  18056. * @param name defines the range frames for animation sequence
  18057. * @param loop defines if the animation should loop (false by default)
  18058. * @param speedRatio defines the speed factor in which to run the animation (1 by default)
  18059. * @param onAnimationEnd defines a function to be executed when the animation ended (undefined by default)
  18060. * @returns the object created for this animation. If range does not exist, it will return null
  18061. */
  18062. Node.prototype.beginAnimation = function (name, loop, speedRatio, onAnimationEnd) {
  18063. var range = this.getAnimationRange(name);
  18064. if (!range) {
  18065. return null;
  18066. }
  18067. return this._scene.beginAnimation(this, range.from, range.to, loop, speedRatio, onAnimationEnd);
  18068. };
  18069. /**
  18070. * Serialize animation ranges into a JSON compatible object
  18071. * @returns serialization object
  18072. */
  18073. Node.prototype.serializeAnimationRanges = function () {
  18074. var serializationRanges = [];
  18075. for (var name in this._ranges) {
  18076. var localRange = this._ranges[name];
  18077. if (!localRange) {
  18078. continue;
  18079. }
  18080. var range = {};
  18081. range.name = name;
  18082. range.from = localRange.from;
  18083. range.to = localRange.to;
  18084. serializationRanges.push(range);
  18085. }
  18086. return serializationRanges;
  18087. };
  18088. /**
  18089. * Computes the world matrix of the node
  18090. * @param force defines if the cache version should be invalidated forcing the world matrix to be created from scratch
  18091. * @returns the world matrix
  18092. */
  18093. Node.prototype.computeWorldMatrix = function (force) {
  18094. return BABYLON.Matrix.Identity();
  18095. };
  18096. /**
  18097. * Releases resources associated with this node.
  18098. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  18099. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  18100. */
  18101. Node.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  18102. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  18103. if (!doNotRecurse) {
  18104. var nodes = this.getDescendants(true);
  18105. for (var _i = 0, nodes_1 = nodes; _i < nodes_1.length; _i++) {
  18106. var node = nodes_1[_i];
  18107. node.dispose(doNotRecurse, disposeMaterialAndTextures);
  18108. }
  18109. }
  18110. else {
  18111. var transformNodes = this.getChildTransformNodes(true);
  18112. for (var _a = 0, transformNodes_1 = transformNodes; _a < transformNodes_1.length; _a++) {
  18113. var transformNode = transformNodes_1[_a];
  18114. transformNode.parent = null;
  18115. transformNode.computeWorldMatrix(true);
  18116. }
  18117. }
  18118. if (!this.parent) {
  18119. var rootNodeIndex = this._scene.rootNodes.indexOf(this);
  18120. if (rootNodeIndex > -1) {
  18121. this._scene.rootNodes.splice(rootNodeIndex, 1);
  18122. }
  18123. }
  18124. else {
  18125. this.parent = null;
  18126. }
  18127. // Callback
  18128. this.onDisposeObservable.notifyObservers(this);
  18129. this.onDisposeObservable.clear();
  18130. // Behaviors
  18131. for (var _b = 0, _c = this._behaviors; _b < _c.length; _b++) {
  18132. var behavior = _c[_b];
  18133. behavior.detach();
  18134. }
  18135. this._behaviors = [];
  18136. this._isDisposed = true;
  18137. };
  18138. /**
  18139. * Parse animation range data from a serialization object and store them into a given node
  18140. * @param node defines where to store the animation ranges
  18141. * @param parsedNode defines the serialization object to read data from
  18142. * @param scene defines the hosting scene
  18143. */
  18144. Node.ParseAnimationRanges = function (node, parsedNode, scene) {
  18145. if (parsedNode.ranges) {
  18146. for (var index = 0; index < parsedNode.ranges.length; index++) {
  18147. var data = parsedNode.ranges[index];
  18148. node.createAnimationRange(data.name, data.from, data.to);
  18149. }
  18150. }
  18151. };
  18152. Node._NodeConstructors = {};
  18153. __decorate([
  18154. BABYLON.serialize()
  18155. ], Node.prototype, "name", void 0);
  18156. __decorate([
  18157. BABYLON.serialize()
  18158. ], Node.prototype, "id", void 0);
  18159. __decorate([
  18160. BABYLON.serialize()
  18161. ], Node.prototype, "uniqueId", void 0);
  18162. __decorate([
  18163. BABYLON.serialize()
  18164. ], Node.prototype, "state", void 0);
  18165. __decorate([
  18166. BABYLON.serialize()
  18167. ], Node.prototype, "metadata", void 0);
  18168. return Node;
  18169. }());
  18170. BABYLON.Node = Node;
  18171. })(BABYLON || (BABYLON = {}));
  18172. //# sourceMappingURL=babylon.node.js.map
  18173. var BABYLON;
  18174. (function (BABYLON) {
  18175. // This matrix is used as a value to reset the bounding box.
  18176. var _identityMatrix = BABYLON.Matrix.Identity();
  18177. var _tempRadiusVector = new BABYLON.Vector3(0, 0, 0);
  18178. var BoundingSphere = /** @class */ (function () {
  18179. /**
  18180. * Creates a new bounding sphere
  18181. * @param min defines the minimum vector (in local space)
  18182. * @param max defines the maximum vector (in local space)
  18183. */
  18184. function BoundingSphere(min, max) {
  18185. this.center = BABYLON.Vector3.Zero();
  18186. this.centerWorld = BABYLON.Vector3.Zero();
  18187. this.reConstruct(min, max);
  18188. }
  18189. /**
  18190. * Recreates the entire bounding sphere from scratch
  18191. * @param min defines the new minimum vector (in local space)
  18192. * @param max defines the new maximum vector (in local space)
  18193. */
  18194. BoundingSphere.prototype.reConstruct = function (min, max) {
  18195. this.minimum = min.clone();
  18196. this.maximum = max.clone();
  18197. var distance = BABYLON.Vector3.Distance(min, max);
  18198. BABYLON.Vector3.LerpToRef(min, max, 0.5, this.center);
  18199. this.radius = distance * 0.5;
  18200. this.centerWorld.set(0, 0, 0);
  18201. this._update(_identityMatrix);
  18202. };
  18203. /**
  18204. * Scale the current bounding sphere by applying a scale factor
  18205. * @param factor defines the scale factor to apply
  18206. * @returns the current bounding box
  18207. */
  18208. BoundingSphere.prototype.scale = function (factor) {
  18209. var newRadius = this.radius * factor;
  18210. _tempRadiusVector.set(newRadius, newRadius, newRadius);
  18211. var min = this.center.subtract(_tempRadiusVector);
  18212. var max = this.center.add(_tempRadiusVector);
  18213. this.reConstruct(min, max);
  18214. return this;
  18215. };
  18216. // Methods
  18217. /** @hidden */
  18218. BoundingSphere.prototype._update = function (world) {
  18219. BABYLON.Vector3.TransformCoordinatesToRef(this.center, world, this.centerWorld);
  18220. BABYLON.Vector3.TransformNormalFromFloatsToRef(1.0, 1.0, 1.0, world, _tempRadiusVector);
  18221. this.radiusWorld = Math.max(Math.abs(_tempRadiusVector.x), Math.abs(_tempRadiusVector.y), Math.abs(_tempRadiusVector.z)) * this.radius;
  18222. };
  18223. BoundingSphere.prototype.isInFrustum = function (frustumPlanes) {
  18224. for (var i = 0; i < 6; i++) {
  18225. if (frustumPlanes[i].dotCoordinate(this.centerWorld) <= -this.radiusWorld)
  18226. return false;
  18227. }
  18228. return true;
  18229. };
  18230. BoundingSphere.prototype.intersectsPoint = function (point) {
  18231. var x = this.centerWorld.x - point.x;
  18232. var y = this.centerWorld.y - point.y;
  18233. var z = this.centerWorld.z - point.z;
  18234. var distance = Math.sqrt((x * x) + (y * y) + (z * z));
  18235. if (this.radiusWorld < distance)
  18236. return false;
  18237. return true;
  18238. };
  18239. // Statics
  18240. BoundingSphere.Intersects = function (sphere0, sphere1) {
  18241. var x = sphere0.centerWorld.x - sphere1.centerWorld.x;
  18242. var y = sphere0.centerWorld.y - sphere1.centerWorld.y;
  18243. var z = sphere0.centerWorld.z - sphere1.centerWorld.z;
  18244. var distance = Math.sqrt((x * x) + (y * y) + (z * z));
  18245. if (sphere0.radiusWorld + sphere1.radiusWorld < distance)
  18246. return false;
  18247. return true;
  18248. };
  18249. return BoundingSphere;
  18250. }());
  18251. BABYLON.BoundingSphere = BoundingSphere;
  18252. })(BABYLON || (BABYLON = {}));
  18253. //# sourceMappingURL=babylon.boundingSphere.js.map
  18254. var BABYLON;
  18255. (function (BABYLON) {
  18256. var BoundingBox = /** @class */ (function () {
  18257. /**
  18258. * Creates a new bounding box
  18259. * @param min defines the minimum vector (in local space)
  18260. * @param max defines the maximum vector (in local space)
  18261. */
  18262. function BoundingBox(min, max) {
  18263. this.vectorsWorld = new Array();
  18264. this.reConstruct(min, max);
  18265. }
  18266. // Methods
  18267. /**
  18268. * Recreates the entire bounding box from scratch
  18269. * @param min defines the new minimum vector (in local space)
  18270. * @param max defines the new maximum vector (in local space)
  18271. */
  18272. BoundingBox.prototype.reConstruct = function (min, max) {
  18273. this.minimum = min.clone();
  18274. this.maximum = max.clone();
  18275. // Bounding vectors
  18276. this.vectors = [
  18277. this.minimum.clone(),
  18278. this.maximum.clone(),
  18279. this.minimum.clone(),
  18280. this.minimum.clone(),
  18281. this.minimum.clone(),
  18282. this.maximum.clone(),
  18283. this.maximum.clone(),
  18284. this.maximum.clone()
  18285. ];
  18286. this.vectors[2].x = this.maximum.x;
  18287. this.vectors[3].y = this.maximum.y;
  18288. this.vectors[4].z = this.maximum.z;
  18289. this.vectors[5].z = this.minimum.z;
  18290. this.vectors[6].x = this.minimum.x;
  18291. this.vectors[7].y = this.minimum.y;
  18292. // OBB
  18293. this.center = this.maximum.add(this.minimum).scale(0.5);
  18294. this.extendSize = this.maximum.subtract(this.minimum).scale(0.5);
  18295. this.directions = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  18296. // World
  18297. for (var index = 0; index < this.vectors.length; index++) {
  18298. this.vectorsWorld[index] = BABYLON.Vector3.Zero();
  18299. }
  18300. this.minimumWorld = BABYLON.Vector3.Zero();
  18301. this.maximumWorld = BABYLON.Vector3.Zero();
  18302. this.centerWorld = BABYLON.Vector3.Zero();
  18303. this.extendSizeWorld = BABYLON.Vector3.Zero();
  18304. this._update(this._worldMatrix || BABYLON.Matrix.Identity());
  18305. };
  18306. /**
  18307. * Scale the current bounding box by applying a scale factor
  18308. * @param factor defines the scale factor to apply
  18309. * @returns the current bounding box
  18310. */
  18311. BoundingBox.prototype.scale = function (factor) {
  18312. var diff = this.maximum.subtract(this.minimum);
  18313. var distance = diff.length() * factor;
  18314. diff.normalize();
  18315. var newRadius = diff.scale(distance / 2);
  18316. var min = this.center.subtract(newRadius);
  18317. var max = this.center.add(newRadius);
  18318. this.reConstruct(min, max);
  18319. return this;
  18320. };
  18321. BoundingBox.prototype.getWorldMatrix = function () {
  18322. return this._worldMatrix;
  18323. };
  18324. BoundingBox.prototype.setWorldMatrix = function (matrix) {
  18325. this._worldMatrix.copyFrom(matrix);
  18326. return this;
  18327. };
  18328. /** @hidden */
  18329. BoundingBox.prototype._update = function (world) {
  18330. BABYLON.Vector3.FromFloatsToRef(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE, this.minimumWorld);
  18331. BABYLON.Vector3.FromFloatsToRef(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE, this.maximumWorld);
  18332. for (var index = 0; index < this.vectors.length; index++) {
  18333. var v = this.vectorsWorld[index];
  18334. BABYLON.Vector3.TransformCoordinatesToRef(this.vectors[index], world, v);
  18335. if (v.x < this.minimumWorld.x)
  18336. this.minimumWorld.x = v.x;
  18337. if (v.y < this.minimumWorld.y)
  18338. this.minimumWorld.y = v.y;
  18339. if (v.z < this.minimumWorld.z)
  18340. this.minimumWorld.z = v.z;
  18341. if (v.x > this.maximumWorld.x)
  18342. this.maximumWorld.x = v.x;
  18343. if (v.y > this.maximumWorld.y)
  18344. this.maximumWorld.y = v.y;
  18345. if (v.z > this.maximumWorld.z)
  18346. this.maximumWorld.z = v.z;
  18347. }
  18348. // Extend
  18349. this.maximumWorld.subtractToRef(this.minimumWorld, this.extendSizeWorld);
  18350. this.extendSizeWorld.scaleInPlace(0.5);
  18351. // OBB
  18352. this.maximumWorld.addToRef(this.minimumWorld, this.centerWorld);
  18353. this.centerWorld.scaleInPlace(0.5);
  18354. BABYLON.Vector3.FromFloatArrayToRef(world.m, 0, this.directions[0]);
  18355. BABYLON.Vector3.FromFloatArrayToRef(world.m, 4, this.directions[1]);
  18356. BABYLON.Vector3.FromFloatArrayToRef(world.m, 8, this.directions[2]);
  18357. this._worldMatrix = world;
  18358. };
  18359. BoundingBox.prototype.isInFrustum = function (frustumPlanes) {
  18360. return BoundingBox.IsInFrustum(this.vectorsWorld, frustumPlanes);
  18361. };
  18362. BoundingBox.prototype.isCompletelyInFrustum = function (frustumPlanes) {
  18363. return BoundingBox.IsCompletelyInFrustum(this.vectorsWorld, frustumPlanes);
  18364. };
  18365. BoundingBox.prototype.intersectsPoint = function (point) {
  18366. var delta = -BABYLON.Epsilon;
  18367. if (this.maximumWorld.x - point.x < delta || delta > point.x - this.minimumWorld.x)
  18368. return false;
  18369. if (this.maximumWorld.y - point.y < delta || delta > point.y - this.minimumWorld.y)
  18370. return false;
  18371. if (this.maximumWorld.z - point.z < delta || delta > point.z - this.minimumWorld.z)
  18372. return false;
  18373. return true;
  18374. };
  18375. BoundingBox.prototype.intersectsSphere = function (sphere) {
  18376. return BoundingBox.IntersectsSphere(this.minimumWorld, this.maximumWorld, sphere.centerWorld, sphere.radiusWorld);
  18377. };
  18378. BoundingBox.prototype.intersectsMinMax = function (min, max) {
  18379. if (this.maximumWorld.x < min.x || this.minimumWorld.x > max.x)
  18380. return false;
  18381. if (this.maximumWorld.y < min.y || this.minimumWorld.y > max.y)
  18382. return false;
  18383. if (this.maximumWorld.z < min.z || this.minimumWorld.z > max.z)
  18384. return false;
  18385. return true;
  18386. };
  18387. // Statics
  18388. BoundingBox.Intersects = function (box0, box1) {
  18389. if (box0.maximumWorld.x < box1.minimumWorld.x || box0.minimumWorld.x > box1.maximumWorld.x)
  18390. return false;
  18391. if (box0.maximumWorld.y < box1.minimumWorld.y || box0.minimumWorld.y > box1.maximumWorld.y)
  18392. return false;
  18393. if (box0.maximumWorld.z < box1.minimumWorld.z || box0.minimumWorld.z > box1.maximumWorld.z)
  18394. return false;
  18395. return true;
  18396. };
  18397. BoundingBox.IntersectsSphere = function (minPoint, maxPoint, sphereCenter, sphereRadius) {
  18398. var vector = BABYLON.Vector3.Clamp(sphereCenter, minPoint, maxPoint);
  18399. var num = BABYLON.Vector3.DistanceSquared(sphereCenter, vector);
  18400. return (num <= (sphereRadius * sphereRadius));
  18401. };
  18402. BoundingBox.IsCompletelyInFrustum = function (boundingVectors, frustumPlanes) {
  18403. for (var p = 0; p < 6; p++) {
  18404. for (var i = 0; i < 8; i++) {
  18405. if (frustumPlanes[p].dotCoordinate(boundingVectors[i]) < 0) {
  18406. return false;
  18407. }
  18408. }
  18409. }
  18410. return true;
  18411. };
  18412. BoundingBox.IsInFrustum = function (boundingVectors, frustumPlanes) {
  18413. for (var p = 0; p < 6; p++) {
  18414. var inCount = 8;
  18415. for (var i = 0; i < 8; i++) {
  18416. if (frustumPlanes[p].dotCoordinate(boundingVectors[i]) < 0) {
  18417. --inCount;
  18418. }
  18419. else {
  18420. break;
  18421. }
  18422. }
  18423. if (inCount === 0)
  18424. return false;
  18425. }
  18426. return true;
  18427. };
  18428. return BoundingBox;
  18429. }());
  18430. BABYLON.BoundingBox = BoundingBox;
  18431. })(BABYLON || (BABYLON = {}));
  18432. //# sourceMappingURL=babylon.boundingBox.js.map
  18433. var BABYLON;
  18434. (function (BABYLON) {
  18435. var computeBoxExtents = function (axis, box) {
  18436. var p = BABYLON.Vector3.Dot(box.centerWorld, axis);
  18437. var r0 = Math.abs(BABYLON.Vector3.Dot(box.directions[0], axis)) * box.extendSize.x;
  18438. var r1 = Math.abs(BABYLON.Vector3.Dot(box.directions[1], axis)) * box.extendSize.y;
  18439. var r2 = Math.abs(BABYLON.Vector3.Dot(box.directions[2], axis)) * box.extendSize.z;
  18440. var r = r0 + r1 + r2;
  18441. return {
  18442. min: p - r,
  18443. max: p + r
  18444. };
  18445. };
  18446. var extentsOverlap = function (min0, max0, min1, max1) { return !(min0 > max1 || min1 > max0); };
  18447. var axisOverlap = function (axis, box0, box1) {
  18448. var result0 = computeBoxExtents(axis, box0);
  18449. var result1 = computeBoxExtents(axis, box1);
  18450. return extentsOverlap(result0.min, result0.max, result1.min, result1.max);
  18451. };
  18452. var BoundingInfo = /** @class */ (function () {
  18453. function BoundingInfo(minimum, maximum) {
  18454. this.minimum = minimum;
  18455. this.maximum = maximum;
  18456. this._isLocked = false;
  18457. this.boundingBox = new BABYLON.BoundingBox(minimum, maximum);
  18458. this.boundingSphere = new BABYLON.BoundingSphere(minimum, maximum);
  18459. }
  18460. Object.defineProperty(BoundingInfo.prototype, "isLocked", {
  18461. get: function () {
  18462. return this._isLocked;
  18463. },
  18464. set: function (value) {
  18465. this._isLocked = value;
  18466. },
  18467. enumerable: true,
  18468. configurable: true
  18469. });
  18470. // Methods
  18471. BoundingInfo.prototype.update = function (world) {
  18472. if (this._isLocked) {
  18473. return;
  18474. }
  18475. this.boundingBox._update(world);
  18476. this.boundingSphere._update(world);
  18477. };
  18478. /**
  18479. * Recreate the bounding info to be centered around a specific point given a specific extend.
  18480. * @param center New center of the bounding info
  18481. * @param extend New extend of the bounding info
  18482. */
  18483. BoundingInfo.prototype.centerOn = function (center, extend) {
  18484. this.minimum = center.subtract(extend);
  18485. this.maximum = center.add(extend);
  18486. this.boundingBox = new BABYLON.BoundingBox(this.minimum, this.maximum);
  18487. this.boundingSphere = new BABYLON.BoundingSphere(this.minimum, this.maximum);
  18488. return this;
  18489. };
  18490. /**
  18491. * Scale the current bounding info by applying a scale factor
  18492. * @param factor defines the scale factor to apply
  18493. * @returns the current bounding info
  18494. */
  18495. BoundingInfo.prototype.scale = function (factor) {
  18496. this.boundingBox.scale(factor);
  18497. this.boundingSphere.scale(factor);
  18498. return this;
  18499. };
  18500. /**
  18501. * Returns `true` if the bounding info is within the frustum defined by the passed array of planes.
  18502. * @param frustumPlanes defines the frustum to test
  18503. * @param strategy defines the strategy to use for the culling (default is BABYLON.Scene.CULLINGSTRATEGY_STANDARD)
  18504. * @returns true if the bounding info is in the frustum planes
  18505. */
  18506. BoundingInfo.prototype.isInFrustum = function (frustumPlanes, strategy) {
  18507. if (strategy === void 0) { strategy = BABYLON.AbstractMesh.CULLINGSTRATEGY_STANDARD; }
  18508. if (!this.boundingSphere.isInFrustum(frustumPlanes)) {
  18509. return false;
  18510. }
  18511. if (strategy === BABYLON.AbstractMesh.CULLINGSTRATEGY_BOUNDINGSPHERE_ONLY) {
  18512. return true;
  18513. }
  18514. return this.boundingBox.isInFrustum(frustumPlanes);
  18515. };
  18516. Object.defineProperty(BoundingInfo.prototype, "diagonalLength", {
  18517. /**
  18518. * Gets the world distance between the min and max points of the bounding box
  18519. */
  18520. get: function () {
  18521. var boundingBox = this.boundingBox;
  18522. var size = boundingBox.maximumWorld.subtract(boundingBox.minimumWorld);
  18523. return size.length();
  18524. },
  18525. enumerable: true,
  18526. configurable: true
  18527. });
  18528. BoundingInfo.prototype.isCompletelyInFrustum = function (frustumPlanes) {
  18529. return this.boundingBox.isCompletelyInFrustum(frustumPlanes);
  18530. };
  18531. /** @hidden */
  18532. BoundingInfo.prototype._checkCollision = function (collider) {
  18533. return collider._canDoCollision(this.boundingSphere.centerWorld, this.boundingSphere.radiusWorld, this.boundingBox.minimumWorld, this.boundingBox.maximumWorld);
  18534. };
  18535. BoundingInfo.prototype.intersectsPoint = function (point) {
  18536. if (!this.boundingSphere.centerWorld) {
  18537. return false;
  18538. }
  18539. if (!this.boundingSphere.intersectsPoint(point)) {
  18540. return false;
  18541. }
  18542. if (!this.boundingBox.intersectsPoint(point)) {
  18543. return false;
  18544. }
  18545. return true;
  18546. };
  18547. BoundingInfo.prototype.intersects = function (boundingInfo, precise) {
  18548. if (!this.boundingSphere.centerWorld || !boundingInfo.boundingSphere.centerWorld) {
  18549. return false;
  18550. }
  18551. if (!BABYLON.BoundingSphere.Intersects(this.boundingSphere, boundingInfo.boundingSphere)) {
  18552. return false;
  18553. }
  18554. if (!BABYLON.BoundingBox.Intersects(this.boundingBox, boundingInfo.boundingBox)) {
  18555. return false;
  18556. }
  18557. if (!precise) {
  18558. return true;
  18559. }
  18560. var box0 = this.boundingBox;
  18561. var box1 = boundingInfo.boundingBox;
  18562. if (!axisOverlap(box0.directions[0], box0, box1))
  18563. return false;
  18564. if (!axisOverlap(box0.directions[1], box0, box1))
  18565. return false;
  18566. if (!axisOverlap(box0.directions[2], box0, box1))
  18567. return false;
  18568. if (!axisOverlap(box1.directions[0], box0, box1))
  18569. return false;
  18570. if (!axisOverlap(box1.directions[1], box0, box1))
  18571. return false;
  18572. if (!axisOverlap(box1.directions[2], box0, box1))
  18573. return false;
  18574. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[0], box1.directions[0]), box0, box1))
  18575. return false;
  18576. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[0], box1.directions[1]), box0, box1))
  18577. return false;
  18578. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[0], box1.directions[2]), box0, box1))
  18579. return false;
  18580. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[1], box1.directions[0]), box0, box1))
  18581. return false;
  18582. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[1], box1.directions[1]), box0, box1))
  18583. return false;
  18584. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[1], box1.directions[2]), box0, box1))
  18585. return false;
  18586. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[2], box1.directions[0]), box0, box1))
  18587. return false;
  18588. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[2], box1.directions[1]), box0, box1))
  18589. return false;
  18590. if (!axisOverlap(BABYLON.Vector3.Cross(box0.directions[2], box1.directions[2]), box0, box1))
  18591. return false;
  18592. return true;
  18593. };
  18594. return BoundingInfo;
  18595. }());
  18596. BABYLON.BoundingInfo = BoundingInfo;
  18597. })(BABYLON || (BABYLON = {}));
  18598. //# sourceMappingURL=babylon.boundingInfo.js.map
  18599. var BABYLON;
  18600. (function (BABYLON) {
  18601. var TransformNode = /** @class */ (function (_super) {
  18602. __extends(TransformNode, _super);
  18603. function TransformNode(name, scene, isPure) {
  18604. if (scene === void 0) { scene = null; }
  18605. if (isPure === void 0) { isPure = true; }
  18606. var _this = _super.call(this, name, scene) || this;
  18607. _this._forward = new BABYLON.Vector3(0, 0, 1);
  18608. _this._forwardInverted = new BABYLON.Vector3(0, 0, -1);
  18609. _this._up = new BABYLON.Vector3(0, 1, 0);
  18610. _this._right = new BABYLON.Vector3(1, 0, 0);
  18611. _this._rightInverted = new BABYLON.Vector3(-1, 0, 0);
  18612. // Properties
  18613. _this._rotation = BABYLON.Vector3.Zero();
  18614. _this._scaling = BABYLON.Vector3.One();
  18615. _this._isDirty = false;
  18616. /**
  18617. * Set the billboard mode. Default is 0.
  18618. *
  18619. * | Value | Type | Description |
  18620. * | --- | --- | --- |
  18621. * | 0 | BILLBOARDMODE_NONE | |
  18622. * | 1 | BILLBOARDMODE_X | |
  18623. * | 2 | BILLBOARDMODE_Y | |
  18624. * | 4 | BILLBOARDMODE_Z | |
  18625. * | 7 | BILLBOARDMODE_ALL | |
  18626. *
  18627. */
  18628. _this.billboardMode = TransformNode.BILLBOARDMODE_NONE;
  18629. _this.scalingDeterminant = 1;
  18630. _this.infiniteDistance = false;
  18631. /**
  18632. * Gets or sets a boolean indicating that non uniform scaling (when at least one component is different from others) should be ignored.
  18633. * By default the system will update normals to compensate
  18634. */
  18635. _this.ignoreNonUniformScaling = false;
  18636. _this.position = BABYLON.Vector3.Zero();
  18637. _this._localWorld = BABYLON.Matrix.Zero();
  18638. /** @hidden */
  18639. _this._worldMatrix = BABYLON.Matrix.Zero();
  18640. /** @hidden */
  18641. _this._worldMatrixDeterminant = 0;
  18642. _this._absolutePosition = BABYLON.Vector3.Zero();
  18643. _this._pivotMatrix = BABYLON.Matrix.Identity();
  18644. _this._postMultiplyPivotMatrix = false;
  18645. _this._isWorldMatrixFrozen = false;
  18646. /**
  18647. * An event triggered after the world matrix is updated
  18648. */
  18649. _this.onAfterWorldMatrixUpdateObservable = new BABYLON.Observable();
  18650. _this._nonUniformScaling = false;
  18651. if (isPure) {
  18652. _this.getScene().addTransformNode(_this);
  18653. }
  18654. return _this;
  18655. }
  18656. /**
  18657. * Gets a string identifying the name of the class
  18658. * @returns "TransformNode" string
  18659. */
  18660. TransformNode.prototype.getClassName = function () {
  18661. return "TransformNode";
  18662. };
  18663. Object.defineProperty(TransformNode.prototype, "rotation", {
  18664. /**
  18665. * Rotation property : a Vector3 depicting the rotation value in radians around each local axis X, Y, Z.
  18666. * If rotation quaternion is set, this Vector3 will (almost always) be the Zero vector!
  18667. * Default : (0.0, 0.0, 0.0)
  18668. */
  18669. get: function () {
  18670. return this._rotation;
  18671. },
  18672. set: function (newRotation) {
  18673. this._rotation = newRotation;
  18674. },
  18675. enumerable: true,
  18676. configurable: true
  18677. });
  18678. Object.defineProperty(TransformNode.prototype, "scaling", {
  18679. /**
  18680. * Scaling property : a Vector3 depicting the mesh scaling along each local axis X, Y, Z.
  18681. * Default : (1.0, 1.0, 1.0)
  18682. */
  18683. get: function () {
  18684. return this._scaling;
  18685. },
  18686. /**
  18687. * Scaling property : a Vector3 depicting the mesh scaling along each local axis X, Y, Z.
  18688. * Default : (1.0, 1.0, 1.0)
  18689. */
  18690. set: function (newScaling) {
  18691. this._scaling = newScaling;
  18692. },
  18693. enumerable: true,
  18694. configurable: true
  18695. });
  18696. Object.defineProperty(TransformNode.prototype, "rotationQuaternion", {
  18697. /**
  18698. * Rotation Quaternion property : this a Quaternion object depicting the mesh rotation by using a unit quaternion.
  18699. * It's null by default.
  18700. * If set, only the rotationQuaternion is then used to compute the mesh rotation and its property `.rotation\ is then ignored and set to (0.0, 0.0, 0.0)
  18701. */
  18702. get: function () {
  18703. return this._rotationQuaternion;
  18704. },
  18705. set: function (quaternion) {
  18706. this._rotationQuaternion = quaternion;
  18707. //reset the rotation vector.
  18708. if (quaternion && this.rotation.length()) {
  18709. this.rotation.copyFromFloats(0.0, 0.0, 0.0);
  18710. }
  18711. },
  18712. enumerable: true,
  18713. configurable: true
  18714. });
  18715. Object.defineProperty(TransformNode.prototype, "forward", {
  18716. /**
  18717. * The forward direction of that transform in world space.
  18718. */
  18719. get: function () {
  18720. return BABYLON.Vector3.Normalize(BABYLON.Vector3.TransformNormal(this.getScene().useRightHandedSystem ? this._forwardInverted : this._forward, this.getWorldMatrix()));
  18721. },
  18722. enumerable: true,
  18723. configurable: true
  18724. });
  18725. Object.defineProperty(TransformNode.prototype, "up", {
  18726. /**
  18727. * The up direction of that transform in world space.
  18728. */
  18729. get: function () {
  18730. return BABYLON.Vector3.Normalize(BABYLON.Vector3.TransformNormal(this._up, this.getWorldMatrix()));
  18731. },
  18732. enumerable: true,
  18733. configurable: true
  18734. });
  18735. Object.defineProperty(TransformNode.prototype, "right", {
  18736. /**
  18737. * The right direction of that transform in world space.
  18738. */
  18739. get: function () {
  18740. return BABYLON.Vector3.Normalize(BABYLON.Vector3.TransformNormal(this.getScene().useRightHandedSystem ? this._rightInverted : this._right, this.getWorldMatrix()));
  18741. },
  18742. enumerable: true,
  18743. configurable: true
  18744. });
  18745. /**
  18746. * Returns the latest update of the World matrix
  18747. * Returns a Matrix.
  18748. */
  18749. TransformNode.prototype.getWorldMatrix = function () {
  18750. if (this._currentRenderId !== this.getScene().getRenderId()) {
  18751. this.computeWorldMatrix();
  18752. }
  18753. return this._worldMatrix;
  18754. };
  18755. /** @hidden */
  18756. TransformNode.prototype._getWorldMatrixDeterminant = function () {
  18757. return this._worldMatrixDeterminant;
  18758. };
  18759. Object.defineProperty(TransformNode.prototype, "worldMatrixFromCache", {
  18760. /**
  18761. * Returns directly the latest state of the mesh World matrix.
  18762. * A Matrix is returned.
  18763. */
  18764. get: function () {
  18765. return this._worldMatrix;
  18766. },
  18767. enumerable: true,
  18768. configurable: true
  18769. });
  18770. /**
  18771. * Copies the parameter passed Matrix into the mesh Pose matrix.
  18772. * Returns the TransformNode.
  18773. */
  18774. TransformNode.prototype.updatePoseMatrix = function (matrix) {
  18775. this._poseMatrix.copyFrom(matrix);
  18776. return this;
  18777. };
  18778. /**
  18779. * Returns the mesh Pose matrix.
  18780. * Returned object : Matrix
  18781. */
  18782. TransformNode.prototype.getPoseMatrix = function () {
  18783. return this._poseMatrix;
  18784. };
  18785. /** @hidden */
  18786. TransformNode.prototype._isSynchronized = function () {
  18787. if (this._isDirty) {
  18788. return false;
  18789. }
  18790. if (this.billboardMode !== this._cache.billboardMode || this.billboardMode !== TransformNode.BILLBOARDMODE_NONE)
  18791. return false;
  18792. if (this._cache.pivotMatrixUpdated) {
  18793. return false;
  18794. }
  18795. if (this.infiniteDistance) {
  18796. return false;
  18797. }
  18798. if (!this._cache.position.equals(this.position))
  18799. return false;
  18800. if (this._rotationQuaternion) {
  18801. if (!this._cache.rotationQuaternion.equals(this._rotationQuaternion))
  18802. return false;
  18803. }
  18804. if (!this._cache.rotation.equals(this.rotation))
  18805. return false;
  18806. if (!this._cache.scaling.equals(this.scaling))
  18807. return false;
  18808. return true;
  18809. };
  18810. /** @hidden */
  18811. TransformNode.prototype._initCache = function () {
  18812. _super.prototype._initCache.call(this);
  18813. this._cache.localMatrixUpdated = false;
  18814. this._cache.position = BABYLON.Vector3.Zero();
  18815. this._cache.scaling = BABYLON.Vector3.Zero();
  18816. this._cache.rotation = BABYLON.Vector3.Zero();
  18817. this._cache.rotationQuaternion = new BABYLON.Quaternion(0, 0, 0, 0);
  18818. this._cache.billboardMode = -1;
  18819. };
  18820. TransformNode.prototype.markAsDirty = function (property) {
  18821. if (property === "rotation") {
  18822. this.rotationQuaternion = null;
  18823. }
  18824. this._currentRenderId = Number.MAX_VALUE;
  18825. this._isDirty = true;
  18826. return this;
  18827. };
  18828. Object.defineProperty(TransformNode.prototype, "absolutePosition", {
  18829. /**
  18830. * Returns the current mesh absolute position.
  18831. * Returns a Vector3.
  18832. */
  18833. get: function () {
  18834. return this._absolutePosition;
  18835. },
  18836. enumerable: true,
  18837. configurable: true
  18838. });
  18839. /**
  18840. * Sets a new matrix to apply before all other transformation
  18841. * @param matrix defines the transform matrix
  18842. * @returns the current TransformNode
  18843. */
  18844. TransformNode.prototype.setPreTransformMatrix = function (matrix) {
  18845. return this.setPivotMatrix(matrix, false);
  18846. };
  18847. /**
  18848. * Sets a new pivot matrix to the current node
  18849. * @param matrix defines the new pivot matrix to use
  18850. * @param postMultiplyPivotMatrix defines if the pivot matrix must be cancelled in the world matrix. When this parameter is set to true (default), the inverse of the pivot matrix is also applied at the end to cancel the transformation effect
  18851. * @returns the current TransformNode
  18852. */
  18853. TransformNode.prototype.setPivotMatrix = function (matrix, postMultiplyPivotMatrix) {
  18854. if (postMultiplyPivotMatrix === void 0) { postMultiplyPivotMatrix = true; }
  18855. this._pivotMatrix = matrix.clone();
  18856. this._cache.pivotMatrixUpdated = true;
  18857. this._postMultiplyPivotMatrix = postMultiplyPivotMatrix;
  18858. if (this._postMultiplyPivotMatrix) {
  18859. if (!this._pivotMatrixInverse) {
  18860. this._pivotMatrixInverse = BABYLON.Matrix.Invert(this._pivotMatrix);
  18861. }
  18862. else {
  18863. this._pivotMatrix.invertToRef(this._pivotMatrixInverse);
  18864. }
  18865. }
  18866. return this;
  18867. };
  18868. /**
  18869. * Returns the mesh pivot matrix.
  18870. * Default : Identity.
  18871. * A Matrix is returned.
  18872. */
  18873. TransformNode.prototype.getPivotMatrix = function () {
  18874. return this._pivotMatrix;
  18875. };
  18876. /**
  18877. * Prevents the World matrix to be computed any longer.
  18878. * Returns the TransformNode.
  18879. */
  18880. TransformNode.prototype.freezeWorldMatrix = function () {
  18881. this._isWorldMatrixFrozen = false; // no guarantee world is not already frozen, switch off temporarily
  18882. this.computeWorldMatrix(true);
  18883. this._isWorldMatrixFrozen = true;
  18884. return this;
  18885. };
  18886. /**
  18887. * Allows back the World matrix computation.
  18888. * Returns the TransformNode.
  18889. */
  18890. TransformNode.prototype.unfreezeWorldMatrix = function () {
  18891. this._isWorldMatrixFrozen = false;
  18892. this.computeWorldMatrix(true);
  18893. return this;
  18894. };
  18895. Object.defineProperty(TransformNode.prototype, "isWorldMatrixFrozen", {
  18896. /**
  18897. * True if the World matrix has been frozen.
  18898. * Returns a boolean.
  18899. */
  18900. get: function () {
  18901. return this._isWorldMatrixFrozen;
  18902. },
  18903. enumerable: true,
  18904. configurable: true
  18905. });
  18906. /**
  18907. * Retuns the mesh absolute position in the World.
  18908. * Returns a Vector3.
  18909. */
  18910. TransformNode.prototype.getAbsolutePosition = function () {
  18911. this.computeWorldMatrix();
  18912. return this._absolutePosition;
  18913. };
  18914. /**
  18915. * Sets the mesh absolute position in the World from a Vector3 or an Array(3).
  18916. * Returns the TransformNode.
  18917. */
  18918. TransformNode.prototype.setAbsolutePosition = function (absolutePosition) {
  18919. if (!absolutePosition) {
  18920. return this;
  18921. }
  18922. var absolutePositionX;
  18923. var absolutePositionY;
  18924. var absolutePositionZ;
  18925. if (absolutePosition.x === undefined) {
  18926. if (arguments.length < 3) {
  18927. return this;
  18928. }
  18929. absolutePositionX = arguments[0];
  18930. absolutePositionY = arguments[1];
  18931. absolutePositionZ = arguments[2];
  18932. }
  18933. else {
  18934. absolutePositionX = absolutePosition.x;
  18935. absolutePositionY = absolutePosition.y;
  18936. absolutePositionZ = absolutePosition.z;
  18937. }
  18938. if (this.parent) {
  18939. var invertParentWorldMatrix = this.parent.getWorldMatrix().clone();
  18940. invertParentWorldMatrix.invert();
  18941. var worldPosition = new BABYLON.Vector3(absolutePositionX, absolutePositionY, absolutePositionZ);
  18942. this.position = BABYLON.Vector3.TransformCoordinates(worldPosition, invertParentWorldMatrix);
  18943. }
  18944. else {
  18945. this.position.x = absolutePositionX;
  18946. this.position.y = absolutePositionY;
  18947. this.position.z = absolutePositionZ;
  18948. }
  18949. return this;
  18950. };
  18951. /**
  18952. * Sets the mesh position in its local space.
  18953. * Returns the TransformNode.
  18954. */
  18955. TransformNode.prototype.setPositionWithLocalVector = function (vector3) {
  18956. this.computeWorldMatrix();
  18957. this.position = BABYLON.Vector3.TransformNormal(vector3, this._localWorld);
  18958. return this;
  18959. };
  18960. /**
  18961. * Returns the mesh position in the local space from the current World matrix values.
  18962. * Returns a new Vector3.
  18963. */
  18964. TransformNode.prototype.getPositionExpressedInLocalSpace = function () {
  18965. this.computeWorldMatrix();
  18966. var invLocalWorldMatrix = this._localWorld.clone();
  18967. invLocalWorldMatrix.invert();
  18968. return BABYLON.Vector3.TransformNormal(this.position, invLocalWorldMatrix);
  18969. };
  18970. /**
  18971. * Translates the mesh along the passed Vector3 in its local space.
  18972. * Returns the TransformNode.
  18973. */
  18974. TransformNode.prototype.locallyTranslate = function (vector3) {
  18975. this.computeWorldMatrix(true);
  18976. this.position = BABYLON.Vector3.TransformCoordinates(vector3, this._localWorld);
  18977. return this;
  18978. };
  18979. /**
  18980. * Orients a mesh towards a target point. Mesh must be drawn facing user.
  18981. * @param targetPoint the position (must be in same space as current mesh) to look at
  18982. * @param yawCor optional yaw (y-axis) correction in radians
  18983. * @param pitchCor optional pitch (x-axis) correction in radians
  18984. * @param rollCor optional roll (z-axis) correction in radians
  18985. * @param space the choosen space of the target
  18986. * @returns the TransformNode.
  18987. */
  18988. TransformNode.prototype.lookAt = function (targetPoint, yawCor, pitchCor, rollCor, space) {
  18989. if (yawCor === void 0) { yawCor = 0; }
  18990. if (pitchCor === void 0) { pitchCor = 0; }
  18991. if (rollCor === void 0) { rollCor = 0; }
  18992. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  18993. var dv = TransformNode._lookAtVectorCache;
  18994. var pos = space === BABYLON.Space.LOCAL ? this.position : this.getAbsolutePosition();
  18995. targetPoint.subtractToRef(pos, dv);
  18996. var yaw = -Math.atan2(dv.z, dv.x) - Math.PI / 2;
  18997. var len = Math.sqrt(dv.x * dv.x + dv.z * dv.z);
  18998. var pitch = Math.atan2(dv.y, len);
  18999. if (this.rotationQuaternion) {
  19000. BABYLON.Quaternion.RotationYawPitchRollToRef(yaw + yawCor, pitch + pitchCor, rollCor, this.rotationQuaternion);
  19001. }
  19002. else {
  19003. this.rotation.x = pitch + pitchCor;
  19004. this.rotation.y = yaw + yawCor;
  19005. this.rotation.z = rollCor;
  19006. }
  19007. return this;
  19008. };
  19009. /**
  19010. * Returns a new Vector3 what is the localAxis, expressed in the mesh local space, rotated like the mesh.
  19011. * This Vector3 is expressed in the World space.
  19012. */
  19013. TransformNode.prototype.getDirection = function (localAxis) {
  19014. var result = BABYLON.Vector3.Zero();
  19015. this.getDirectionToRef(localAxis, result);
  19016. return result;
  19017. };
  19018. /**
  19019. * Sets the Vector3 "result" as the rotated Vector3 "localAxis" in the same rotation than the mesh.
  19020. * localAxis is expressed in the mesh local space.
  19021. * result is computed in the Wordl space from the mesh World matrix.
  19022. * Returns the TransformNode.
  19023. */
  19024. TransformNode.prototype.getDirectionToRef = function (localAxis, result) {
  19025. BABYLON.Vector3.TransformNormalToRef(localAxis, this.getWorldMatrix(), result);
  19026. return this;
  19027. };
  19028. /**
  19029. * Sets a new pivot point to the current node
  19030. * @param point defines the new pivot point to use
  19031. * @param space defines if the point is in world or local space (local by default)
  19032. * @returns the current TransformNode
  19033. */
  19034. TransformNode.prototype.setPivotPoint = function (point, space) {
  19035. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  19036. if (this.getScene().getRenderId() == 0) {
  19037. this.computeWorldMatrix(true);
  19038. }
  19039. var wm = this.getWorldMatrix();
  19040. if (space == BABYLON.Space.WORLD) {
  19041. var tmat = BABYLON.Tmp.Matrix[0];
  19042. wm.invertToRef(tmat);
  19043. point = BABYLON.Vector3.TransformCoordinates(point, tmat);
  19044. }
  19045. return this.setPivotMatrix(BABYLON.Matrix.Translation(-point.x, -point.y, -point.z), true);
  19046. };
  19047. /**
  19048. * Returns a new Vector3 set with the mesh pivot point coordinates in the local space.
  19049. */
  19050. TransformNode.prototype.getPivotPoint = function () {
  19051. var point = BABYLON.Vector3.Zero();
  19052. this.getPivotPointToRef(point);
  19053. return point;
  19054. };
  19055. /**
  19056. * Sets the passed Vector3 "result" with the coordinates of the mesh pivot point in the local space.
  19057. * Returns the TransformNode.
  19058. */
  19059. TransformNode.prototype.getPivotPointToRef = function (result) {
  19060. result.x = -this._pivotMatrix.m[12];
  19061. result.y = -this._pivotMatrix.m[13];
  19062. result.z = -this._pivotMatrix.m[14];
  19063. return this;
  19064. };
  19065. /**
  19066. * Returns a new Vector3 set with the mesh pivot point World coordinates.
  19067. */
  19068. TransformNode.prototype.getAbsolutePivotPoint = function () {
  19069. var point = BABYLON.Vector3.Zero();
  19070. this.getAbsolutePivotPointToRef(point);
  19071. return point;
  19072. };
  19073. /**
  19074. * Sets the Vector3 "result" coordinates with the mesh pivot point World coordinates.
  19075. * Returns the TransformNode.
  19076. */
  19077. TransformNode.prototype.getAbsolutePivotPointToRef = function (result) {
  19078. result.x = this._pivotMatrix.m[12];
  19079. result.y = this._pivotMatrix.m[13];
  19080. result.z = this._pivotMatrix.m[14];
  19081. this.getPivotPointToRef(result);
  19082. BABYLON.Vector3.TransformCoordinatesToRef(result, this.getWorldMatrix(), result);
  19083. return this;
  19084. };
  19085. /**
  19086. * Defines the passed node as the parent of the current node.
  19087. * The node will remain exactly where it is and its position / rotation will be updated accordingly
  19088. * Returns the TransformNode.
  19089. */
  19090. TransformNode.prototype.setParent = function (node) {
  19091. if (!node && !this.parent) {
  19092. return this;
  19093. }
  19094. if (!node) {
  19095. var rotation = BABYLON.Tmp.Quaternion[0];
  19096. var position = BABYLON.Tmp.Vector3[0];
  19097. var scale = BABYLON.Tmp.Vector3[1];
  19098. if (this.parent && this.parent.computeWorldMatrix) {
  19099. this.parent.computeWorldMatrix(true);
  19100. }
  19101. this.computeWorldMatrix(true);
  19102. this.getWorldMatrix().decompose(scale, rotation, position);
  19103. if (this.rotationQuaternion) {
  19104. this.rotationQuaternion.copyFrom(rotation);
  19105. }
  19106. else {
  19107. rotation.toEulerAnglesToRef(this.rotation);
  19108. }
  19109. this.scaling.x = scale.x;
  19110. this.scaling.y = scale.y;
  19111. this.scaling.z = scale.z;
  19112. this.position.x = position.x;
  19113. this.position.y = position.y;
  19114. this.position.z = position.z;
  19115. }
  19116. else {
  19117. var rotation = BABYLON.Tmp.Quaternion[0];
  19118. var position = BABYLON.Tmp.Vector3[0];
  19119. var scale = BABYLON.Tmp.Vector3[1];
  19120. var diffMatrix = BABYLON.Tmp.Matrix[0];
  19121. var invParentMatrix = BABYLON.Tmp.Matrix[1];
  19122. this.computeWorldMatrix(true);
  19123. node.computeWorldMatrix(true);
  19124. node.getWorldMatrix().invertToRef(invParentMatrix);
  19125. this.getWorldMatrix().multiplyToRef(invParentMatrix, diffMatrix);
  19126. diffMatrix.decompose(scale, rotation, position);
  19127. if (this.rotationQuaternion) {
  19128. this.rotationQuaternion.copyFrom(rotation);
  19129. }
  19130. else {
  19131. rotation.toEulerAnglesToRef(this.rotation);
  19132. }
  19133. this.position.x = position.x;
  19134. this.position.y = position.y;
  19135. this.position.z = position.z;
  19136. this.scaling.x = scale.x;
  19137. this.scaling.y = scale.y;
  19138. this.scaling.z = scale.z;
  19139. }
  19140. this.parent = node;
  19141. return this;
  19142. };
  19143. Object.defineProperty(TransformNode.prototype, "nonUniformScaling", {
  19144. get: function () {
  19145. return this._nonUniformScaling;
  19146. },
  19147. enumerable: true,
  19148. configurable: true
  19149. });
  19150. /** @hidden */
  19151. TransformNode.prototype._updateNonUniformScalingState = function (value) {
  19152. if (this._nonUniformScaling === value) {
  19153. return false;
  19154. }
  19155. this._nonUniformScaling = value;
  19156. return true;
  19157. };
  19158. /**
  19159. * Attach the current TransformNode to another TransformNode associated with a bone
  19160. * @param bone Bone affecting the TransformNode
  19161. * @param affectedTransformNode TransformNode associated with the bone
  19162. */
  19163. TransformNode.prototype.attachToBone = function (bone, affectedTransformNode) {
  19164. this._transformToBoneReferal = affectedTransformNode;
  19165. this.parent = bone;
  19166. if (bone.getWorldMatrix().determinant() < 0) {
  19167. this.scalingDeterminant *= -1;
  19168. }
  19169. return this;
  19170. };
  19171. TransformNode.prototype.detachFromBone = function () {
  19172. if (!this.parent) {
  19173. return this;
  19174. }
  19175. if (this.parent.getWorldMatrix().determinant() < 0) {
  19176. this.scalingDeterminant *= -1;
  19177. }
  19178. this._transformToBoneReferal = null;
  19179. this.parent = null;
  19180. return this;
  19181. };
  19182. /**
  19183. * Rotates the mesh around the axis vector for the passed angle (amount) expressed in radians, in the given space.
  19184. * space (default LOCAL) can be either BABYLON.Space.LOCAL, either BABYLON.Space.WORLD.
  19185. * Note that the property `rotationQuaternion` is then automatically updated and the property `rotation` is set to (0,0,0) and no longer used.
  19186. * The passed axis is also normalized.
  19187. * Returns the TransformNode.
  19188. */
  19189. TransformNode.prototype.rotate = function (axis, amount, space) {
  19190. axis.normalize();
  19191. if (!this.rotationQuaternion) {
  19192. this.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this.rotation.y, this.rotation.x, this.rotation.z);
  19193. this.rotation = BABYLON.Vector3.Zero();
  19194. }
  19195. var rotationQuaternion;
  19196. if (!space || space === BABYLON.Space.LOCAL) {
  19197. rotationQuaternion = BABYLON.Quaternion.RotationAxisToRef(axis, amount, TransformNode._rotationAxisCache);
  19198. this.rotationQuaternion.multiplyToRef(rotationQuaternion, this.rotationQuaternion);
  19199. }
  19200. else {
  19201. if (this.parent) {
  19202. var invertParentWorldMatrix = this.parent.getWorldMatrix().clone();
  19203. invertParentWorldMatrix.invert();
  19204. axis = BABYLON.Vector3.TransformNormal(axis, invertParentWorldMatrix);
  19205. }
  19206. rotationQuaternion = BABYLON.Quaternion.RotationAxisToRef(axis, amount, TransformNode._rotationAxisCache);
  19207. rotationQuaternion.multiplyToRef(this.rotationQuaternion, this.rotationQuaternion);
  19208. }
  19209. return this;
  19210. };
  19211. /**
  19212. * Rotates the mesh around the axis vector for the passed angle (amount) expressed in radians, in world space.
  19213. * Note that the property `rotationQuaternion` is then automatically updated and the property `rotation` is set to (0,0,0) and no longer used.
  19214. * The passed axis is also normalized.
  19215. * Returns the TransformNode.
  19216. * Method is based on http://www.euclideanspace.com/maths/geometry/affine/aroundPoint/index.htm
  19217. */
  19218. TransformNode.prototype.rotateAround = function (point, axis, amount) {
  19219. axis.normalize();
  19220. if (!this.rotationQuaternion) {
  19221. this.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this.rotation.y, this.rotation.x, this.rotation.z);
  19222. this.rotation.copyFromFloats(0, 0, 0);
  19223. }
  19224. point.subtractToRef(this.position, BABYLON.Tmp.Vector3[0]);
  19225. BABYLON.Matrix.TranslationToRef(BABYLON.Tmp.Vector3[0].x, BABYLON.Tmp.Vector3[0].y, BABYLON.Tmp.Vector3[0].z, BABYLON.Tmp.Matrix[0]);
  19226. BABYLON.Tmp.Matrix[0].invertToRef(BABYLON.Tmp.Matrix[2]);
  19227. BABYLON.Matrix.RotationAxisToRef(axis, amount, BABYLON.Tmp.Matrix[1]);
  19228. BABYLON.Tmp.Matrix[2].multiplyToRef(BABYLON.Tmp.Matrix[1], BABYLON.Tmp.Matrix[2]);
  19229. BABYLON.Tmp.Matrix[2].multiplyToRef(BABYLON.Tmp.Matrix[0], BABYLON.Tmp.Matrix[2]);
  19230. BABYLON.Tmp.Matrix[2].decompose(BABYLON.Tmp.Vector3[0], BABYLON.Tmp.Quaternion[0], BABYLON.Tmp.Vector3[1]);
  19231. this.position.addInPlace(BABYLON.Tmp.Vector3[1]);
  19232. BABYLON.Tmp.Quaternion[0].multiplyToRef(this.rotationQuaternion, this.rotationQuaternion);
  19233. return this;
  19234. };
  19235. /**
  19236. * Translates the mesh along the axis vector for the passed distance in the given space.
  19237. * space (default LOCAL) can be either BABYLON.Space.LOCAL, either BABYLON.Space.WORLD.
  19238. * Returns the TransformNode.
  19239. */
  19240. TransformNode.prototype.translate = function (axis, distance, space) {
  19241. var displacementVector = axis.scale(distance);
  19242. if (!space || space === BABYLON.Space.LOCAL) {
  19243. var tempV3 = this.getPositionExpressedInLocalSpace().add(displacementVector);
  19244. this.setPositionWithLocalVector(tempV3);
  19245. }
  19246. else {
  19247. this.setAbsolutePosition(this.getAbsolutePosition().add(displacementVector));
  19248. }
  19249. return this;
  19250. };
  19251. /**
  19252. * Adds a rotation step to the mesh current rotation.
  19253. * x, y, z are Euler angles expressed in radians.
  19254. * This methods updates the current mesh rotation, either mesh.rotation, either mesh.rotationQuaternion if it's set.
  19255. * This means this rotation is made in the mesh local space only.
  19256. * It's useful to set a custom rotation order different from the BJS standard one YXZ.
  19257. * Example : this rotates the mesh first around its local X axis, then around its local Z axis, finally around its local Y axis.
  19258. * ```javascript
  19259. * mesh.addRotation(x1, 0, 0).addRotation(0, 0, z2).addRotation(0, 0, y3);
  19260. * ```
  19261. * Note that `addRotation()` accumulates the passed rotation values to the current ones and computes the .rotation or .rotationQuaternion updated values.
  19262. * Under the hood, only quaternions are used. So it's a little faster is you use .rotationQuaternion because it doesn't need to translate them back to Euler angles.
  19263. * Returns the TransformNode.
  19264. */
  19265. TransformNode.prototype.addRotation = function (x, y, z) {
  19266. var rotationQuaternion;
  19267. if (this.rotationQuaternion) {
  19268. rotationQuaternion = this.rotationQuaternion;
  19269. }
  19270. else {
  19271. rotationQuaternion = BABYLON.Tmp.Quaternion[1];
  19272. BABYLON.Quaternion.RotationYawPitchRollToRef(this.rotation.y, this.rotation.x, this.rotation.z, rotationQuaternion);
  19273. }
  19274. var accumulation = BABYLON.Tmp.Quaternion[0];
  19275. BABYLON.Quaternion.RotationYawPitchRollToRef(y, x, z, accumulation);
  19276. rotationQuaternion.multiplyInPlace(accumulation);
  19277. if (!this.rotationQuaternion) {
  19278. rotationQuaternion.toEulerAnglesToRef(this.rotation);
  19279. }
  19280. return this;
  19281. };
  19282. /**
  19283. * Computes the mesh World matrix and returns it.
  19284. * If the mesh world matrix is frozen, this computation does nothing more than returning the last frozen values.
  19285. * If the parameter `force` is let to `false` (default), the current cached World matrix is returned.
  19286. * If the parameter `force`is set to `true`, the actual computation is done.
  19287. * Returns the mesh World Matrix.
  19288. */
  19289. TransformNode.prototype.computeWorldMatrix = function (force) {
  19290. if (this._isWorldMatrixFrozen) {
  19291. return this._worldMatrix;
  19292. }
  19293. if (!force && this.isSynchronized(true)) {
  19294. this._currentRenderId = this.getScene().getRenderId();
  19295. return this._worldMatrix;
  19296. }
  19297. this._cache.position.copyFrom(this.position);
  19298. this._cache.scaling.copyFrom(this.scaling);
  19299. this._cache.pivotMatrixUpdated = false;
  19300. this._cache.billboardMode = this.billboardMode;
  19301. this._currentRenderId = this.getScene().getRenderId();
  19302. this._childRenderId = this.getScene().getRenderId();
  19303. this._isDirty = false;
  19304. // Scaling
  19305. BABYLON.Matrix.ScalingToRef(this.scaling.x * this.scalingDeterminant, this.scaling.y * this.scalingDeterminant, this.scaling.z * this.scalingDeterminant, BABYLON.Tmp.Matrix[1]);
  19306. // Rotation
  19307. //rotate, if quaternion is set and rotation was used
  19308. if (this.rotationQuaternion) {
  19309. var len = this.rotation.length();
  19310. if (len) {
  19311. this.rotationQuaternion.multiplyInPlace(BABYLON.Quaternion.RotationYawPitchRoll(this.rotation.y, this.rotation.x, this.rotation.z));
  19312. this.rotation.copyFromFloats(0, 0, 0);
  19313. }
  19314. }
  19315. if (this.rotationQuaternion) {
  19316. this.rotationQuaternion.toRotationMatrix(BABYLON.Tmp.Matrix[0]);
  19317. this._cache.rotationQuaternion.copyFrom(this.rotationQuaternion);
  19318. }
  19319. else {
  19320. BABYLON.Matrix.RotationYawPitchRollToRef(this.rotation.y, this.rotation.x, this.rotation.z, BABYLON.Tmp.Matrix[0]);
  19321. this._cache.rotation.copyFrom(this.rotation);
  19322. }
  19323. // Translation
  19324. var camera = this.getScene().activeCamera;
  19325. if (this.infiniteDistance && !this.parent && camera) {
  19326. var cameraWorldMatrix = camera.getWorldMatrix();
  19327. var cameraGlobalPosition = new BABYLON.Vector3(cameraWorldMatrix.m[12], cameraWorldMatrix.m[13], cameraWorldMatrix.m[14]);
  19328. BABYLON.Matrix.TranslationToRef(this.position.x + cameraGlobalPosition.x, this.position.y + cameraGlobalPosition.y, this.position.z + cameraGlobalPosition.z, BABYLON.Tmp.Matrix[2]);
  19329. }
  19330. else {
  19331. BABYLON.Matrix.TranslationToRef(this.position.x, this.position.y, this.position.z, BABYLON.Tmp.Matrix[2]);
  19332. }
  19333. // Composing transformations
  19334. this._pivotMatrix.multiplyToRef(BABYLON.Tmp.Matrix[1], BABYLON.Tmp.Matrix[4]);
  19335. BABYLON.Tmp.Matrix[4].multiplyToRef(BABYLON.Tmp.Matrix[0], BABYLON.Tmp.Matrix[5]);
  19336. // Billboarding (testing PG:http://www.babylonjs-playground.com/#UJEIL#13)
  19337. if (this.billboardMode !== TransformNode.BILLBOARDMODE_NONE && camera) {
  19338. if ((this.billboardMode & TransformNode.BILLBOARDMODE_ALL) !== TransformNode.BILLBOARDMODE_ALL) {
  19339. // Need to decompose each rotation here
  19340. var currentPosition = BABYLON.Tmp.Vector3[3];
  19341. if (this.parent && this.parent.getWorldMatrix) {
  19342. if (this._transformToBoneReferal) {
  19343. this.parent.getWorldMatrix().multiplyToRef(this._transformToBoneReferal.getWorldMatrix(), BABYLON.Tmp.Matrix[6]);
  19344. BABYLON.Vector3.TransformCoordinatesToRef(this.position, BABYLON.Tmp.Matrix[6], currentPosition);
  19345. }
  19346. else {
  19347. BABYLON.Vector3.TransformCoordinatesToRef(this.position, this.parent.getWorldMatrix(), currentPosition);
  19348. }
  19349. }
  19350. else {
  19351. currentPosition.copyFrom(this.position);
  19352. }
  19353. currentPosition.subtractInPlace(camera.globalPosition);
  19354. var finalEuler = BABYLON.Tmp.Vector3[4].copyFromFloats(0, 0, 0);
  19355. if ((this.billboardMode & TransformNode.BILLBOARDMODE_X) === TransformNode.BILLBOARDMODE_X) {
  19356. finalEuler.x = Math.atan2(-currentPosition.y, currentPosition.z);
  19357. }
  19358. if ((this.billboardMode & TransformNode.BILLBOARDMODE_Y) === TransformNode.BILLBOARDMODE_Y) {
  19359. finalEuler.y = Math.atan2(currentPosition.x, currentPosition.z);
  19360. }
  19361. if ((this.billboardMode & TransformNode.BILLBOARDMODE_Z) === TransformNode.BILLBOARDMODE_Z) {
  19362. finalEuler.z = Math.atan2(currentPosition.y, currentPosition.x);
  19363. }
  19364. BABYLON.Matrix.RotationYawPitchRollToRef(finalEuler.y, finalEuler.x, finalEuler.z, BABYLON.Tmp.Matrix[0]);
  19365. }
  19366. else {
  19367. BABYLON.Tmp.Matrix[1].copyFrom(camera.getViewMatrix());
  19368. BABYLON.Tmp.Matrix[1].setTranslationFromFloats(0, 0, 0);
  19369. BABYLON.Tmp.Matrix[1].invertToRef(BABYLON.Tmp.Matrix[0]);
  19370. }
  19371. BABYLON.Tmp.Matrix[1].copyFrom(BABYLON.Tmp.Matrix[5]);
  19372. BABYLON.Tmp.Matrix[1].multiplyToRef(BABYLON.Tmp.Matrix[0], BABYLON.Tmp.Matrix[5]);
  19373. }
  19374. // Post multiply inverse of pivotMatrix
  19375. if (this._postMultiplyPivotMatrix) {
  19376. BABYLON.Tmp.Matrix[5].multiplyToRef(this._pivotMatrixInverse, BABYLON.Tmp.Matrix[5]);
  19377. }
  19378. // Local world
  19379. BABYLON.Tmp.Matrix[5].multiplyToRef(BABYLON.Tmp.Matrix[2], this._localWorld);
  19380. // Parent
  19381. if (this.parent && this.parent.getWorldMatrix) {
  19382. if (this.billboardMode !== TransformNode.BILLBOARDMODE_NONE) {
  19383. if (this._transformToBoneReferal) {
  19384. this.parent.getWorldMatrix().multiplyToRef(this._transformToBoneReferal.getWorldMatrix(), BABYLON.Tmp.Matrix[6]);
  19385. BABYLON.Tmp.Matrix[5].copyFrom(BABYLON.Tmp.Matrix[6]);
  19386. }
  19387. else {
  19388. BABYLON.Tmp.Matrix[5].copyFrom(this.parent.getWorldMatrix());
  19389. }
  19390. this._localWorld.getTranslationToRef(BABYLON.Tmp.Vector3[5]);
  19391. BABYLON.Vector3.TransformCoordinatesToRef(BABYLON.Tmp.Vector3[5], BABYLON.Tmp.Matrix[5], BABYLON.Tmp.Vector3[5]);
  19392. this._worldMatrix.copyFrom(this._localWorld);
  19393. this._worldMatrix.setTranslation(BABYLON.Tmp.Vector3[5]);
  19394. }
  19395. else {
  19396. if (this._transformToBoneReferal) {
  19397. this._localWorld.multiplyToRef(this.parent.getWorldMatrix(), BABYLON.Tmp.Matrix[6]);
  19398. BABYLON.Tmp.Matrix[6].multiplyToRef(this._transformToBoneReferal.getWorldMatrix(), this._worldMatrix);
  19399. }
  19400. else {
  19401. this._localWorld.multiplyToRef(this.parent.getWorldMatrix(), this._worldMatrix);
  19402. }
  19403. }
  19404. this._markSyncedWithParent();
  19405. }
  19406. else {
  19407. this._worldMatrix.copyFrom(this._localWorld);
  19408. }
  19409. // Normal matrix
  19410. if (!this.ignoreNonUniformScaling) {
  19411. if (this.scaling.isNonUniform) {
  19412. this._updateNonUniformScalingState(true);
  19413. }
  19414. else if (this.parent && this.parent._nonUniformScaling) {
  19415. this._updateNonUniformScalingState(this.parent._nonUniformScaling);
  19416. }
  19417. else {
  19418. this._updateNonUniformScalingState(false);
  19419. }
  19420. }
  19421. else {
  19422. this._updateNonUniformScalingState(false);
  19423. }
  19424. this._afterComputeWorldMatrix();
  19425. // Absolute position
  19426. this._absolutePosition.copyFromFloats(this._worldMatrix.m[12], this._worldMatrix.m[13], this._worldMatrix.m[14]);
  19427. // Callbacks
  19428. this.onAfterWorldMatrixUpdateObservable.notifyObservers(this);
  19429. if (!this._poseMatrix) {
  19430. this._poseMatrix = BABYLON.Matrix.Invert(this._worldMatrix);
  19431. }
  19432. // Cache the determinant
  19433. this._worldMatrixDeterminant = this._worldMatrix.determinant();
  19434. return this._worldMatrix;
  19435. };
  19436. TransformNode.prototype._afterComputeWorldMatrix = function () {
  19437. };
  19438. /**
  19439. * If you'd like to be called back after the mesh position, rotation or scaling has been updated.
  19440. * @param func: callback function to add
  19441. *
  19442. * Returns the TransformNode.
  19443. */
  19444. TransformNode.prototype.registerAfterWorldMatrixUpdate = function (func) {
  19445. this.onAfterWorldMatrixUpdateObservable.add(func);
  19446. return this;
  19447. };
  19448. /**
  19449. * Removes a registered callback function.
  19450. * Returns the TransformNode.
  19451. */
  19452. TransformNode.prototype.unregisterAfterWorldMatrixUpdate = function (func) {
  19453. this.onAfterWorldMatrixUpdateObservable.removeCallback(func);
  19454. return this;
  19455. };
  19456. /**
  19457. * Clone the current transform node
  19458. * Returns the new transform node
  19459. * @param name Name of the new clone
  19460. * @param newParent New parent for the clone
  19461. * @param doNotCloneChildren Do not clone children hierarchy
  19462. */
  19463. TransformNode.prototype.clone = function (name, newParent, doNotCloneChildren) {
  19464. var _this = this;
  19465. var result = BABYLON.SerializationHelper.Clone(function () { return new TransformNode(name, _this.getScene()); }, this);
  19466. result.name = name;
  19467. result.id = name;
  19468. if (newParent) {
  19469. result.parent = newParent;
  19470. }
  19471. if (!doNotCloneChildren) {
  19472. // Children
  19473. var directDescendants = this.getDescendants(true);
  19474. for (var index = 0; index < directDescendants.length; index++) {
  19475. var child = directDescendants[index];
  19476. if (child.clone) {
  19477. child.clone(name + "." + child.name, result);
  19478. }
  19479. }
  19480. }
  19481. return result;
  19482. };
  19483. TransformNode.prototype.serialize = function (currentSerializationObject) {
  19484. var serializationObject = BABYLON.SerializationHelper.Serialize(this, currentSerializationObject);
  19485. serializationObject.type = this.getClassName();
  19486. // Parent
  19487. if (this.parent) {
  19488. serializationObject.parentId = this.parent.id;
  19489. }
  19490. if (BABYLON.Tags && BABYLON.Tags.HasTags(this)) {
  19491. serializationObject.tags = BABYLON.Tags.GetTags(this);
  19492. }
  19493. serializationObject.localMatrix = this.getPivotMatrix().asArray();
  19494. serializationObject.isEnabled = this.isEnabled();
  19495. // Parent
  19496. if (this.parent) {
  19497. serializationObject.parentId = this.parent.id;
  19498. }
  19499. return serializationObject;
  19500. };
  19501. // Statics
  19502. /**
  19503. * Returns a new TransformNode object parsed from the source provided.
  19504. * The parameter `parsedMesh` is the source.
  19505. * The parameter `rootUrl` is a string, it's the root URL to prefix the `delayLoadingFile` property with
  19506. */
  19507. TransformNode.Parse = function (parsedTransformNode, scene, rootUrl) {
  19508. var transformNode = BABYLON.SerializationHelper.Parse(function () { return new TransformNode(parsedTransformNode.name, scene); }, parsedTransformNode, scene, rootUrl);
  19509. if (BABYLON.Tags) {
  19510. BABYLON.Tags.AddTagsTo(transformNode, parsedTransformNode.tags);
  19511. }
  19512. if (parsedTransformNode.localMatrix) {
  19513. transformNode.setPreTransformMatrix(BABYLON.Matrix.FromArray(parsedTransformNode.localMatrix));
  19514. }
  19515. else if (parsedTransformNode.pivotMatrix) {
  19516. transformNode.setPivotMatrix(BABYLON.Matrix.FromArray(parsedTransformNode.pivotMatrix));
  19517. }
  19518. transformNode.setEnabled(parsedTransformNode.isEnabled);
  19519. // Parent
  19520. if (parsedTransformNode.parentId) {
  19521. transformNode._waitingParentId = parsedTransformNode.parentId;
  19522. }
  19523. return transformNode;
  19524. };
  19525. /**
  19526. * Releases resources associated with this transform node.
  19527. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  19528. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  19529. */
  19530. TransformNode.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  19531. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  19532. // Animations
  19533. this.getScene().stopAnimation(this);
  19534. // Remove from scene
  19535. this.getScene().removeTransformNode(this);
  19536. this.onAfterWorldMatrixUpdateObservable.clear();
  19537. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  19538. };
  19539. // Statics
  19540. TransformNode.BILLBOARDMODE_NONE = 0;
  19541. TransformNode.BILLBOARDMODE_X = 1;
  19542. TransformNode.BILLBOARDMODE_Y = 2;
  19543. TransformNode.BILLBOARDMODE_Z = 4;
  19544. TransformNode.BILLBOARDMODE_ALL = 7;
  19545. TransformNode._lookAtVectorCache = new BABYLON.Vector3(0, 0, 0);
  19546. TransformNode._rotationAxisCache = new BABYLON.Quaternion();
  19547. __decorate([
  19548. BABYLON.serializeAsVector3()
  19549. ], TransformNode.prototype, "_rotation", void 0);
  19550. __decorate([
  19551. BABYLON.serializeAsQuaternion()
  19552. ], TransformNode.prototype, "_rotationQuaternion", void 0);
  19553. __decorate([
  19554. BABYLON.serializeAsVector3()
  19555. ], TransformNode.prototype, "_scaling", void 0);
  19556. __decorate([
  19557. BABYLON.serialize()
  19558. ], TransformNode.prototype, "billboardMode", void 0);
  19559. __decorate([
  19560. BABYLON.serialize()
  19561. ], TransformNode.prototype, "scalingDeterminant", void 0);
  19562. __decorate([
  19563. BABYLON.serialize()
  19564. ], TransformNode.prototype, "infiniteDistance", void 0);
  19565. __decorate([
  19566. BABYLON.serialize()
  19567. ], TransformNode.prototype, "ignoreNonUniformScaling", void 0);
  19568. __decorate([
  19569. BABYLON.serializeAsVector3()
  19570. ], TransformNode.prototype, "position", void 0);
  19571. return TransformNode;
  19572. }(BABYLON.Node));
  19573. BABYLON.TransformNode = TransformNode;
  19574. })(BABYLON || (BABYLON = {}));
  19575. //# sourceMappingURL=babylon.transformNode.js.map
  19576. var BABYLON;
  19577. (function (BABYLON) {
  19578. /**
  19579. * Class used to store all common mesh properties
  19580. */
  19581. var AbstractMesh = /** @class */ (function (_super) {
  19582. __extends(AbstractMesh, _super);
  19583. // Constructor
  19584. /**
  19585. * Creates a new AbstractMesh
  19586. * @param name defines the name of the mesh
  19587. * @param scene defines the hosting scene
  19588. */
  19589. function AbstractMesh(name, scene) {
  19590. if (scene === void 0) { scene = null; }
  19591. var _this = _super.call(this, name, scene, false) || this;
  19592. _this._facetNb = 0; // facet number
  19593. _this._partitioningSubdivisions = 10; // number of subdivisions per axis in the partioning space
  19594. _this._partitioningBBoxRatio = 1.01; // the partioning array space is by default 1% bigger than the bounding box
  19595. _this._facetDataEnabled = false; // is the facet data feature enabled on this mesh ?
  19596. _this._facetParameters = {}; // keep a reference to the object parameters to avoid memory re-allocation
  19597. _this._bbSize = BABYLON.Vector3.Zero(); // bbox size approximated for facet data
  19598. _this._subDiv = {
  19599. max: 1,
  19600. X: 1,
  19601. Y: 1,
  19602. Z: 1
  19603. };
  19604. _this._facetDepthSort = false; // is the facet depth sort to be computed
  19605. _this._facetDepthSortEnabled = false; // is the facet depth sort initialized
  19606. /** Gets ot sets the culling strategy to use to find visible meshes */
  19607. _this.cullingStrategy = AbstractMesh.CULLINGSTRATEGY_STANDARD;
  19608. // Events
  19609. /**
  19610. * An event triggered when this mesh collides with another one
  19611. */
  19612. _this.onCollideObservable = new BABYLON.Observable();
  19613. /**
  19614. * An event triggered when the collision's position changes
  19615. */
  19616. _this.onCollisionPositionChangeObservable = new BABYLON.Observable();
  19617. /**
  19618. * An event triggered when material is changed
  19619. */
  19620. _this.onMaterialChangedObservable = new BABYLON.Observable();
  19621. // Properties
  19622. /**
  19623. * Gets or sets the orientation for POV movement & rotation
  19624. */
  19625. _this.definedFacingForward = true;
  19626. /**
  19627. * This property determines the type of occlusion query algorithm to run in WebGl, you can use:
  19628. * * AbstractMesh.OCCLUSION_ALGORITHM_TYPE_ACCURATE which is mapped to GL_ANY_SAMPLES_PASSED.
  19629. * * AbstractMesh.OCCLUSION_ALGORITHM_TYPE_CONSERVATIVE (Default Value) which is mapped to GL_ANY_SAMPLES_PASSED_CONSERVATIVE which is a false positive algorithm that is faster than GL_ANY_SAMPLES_PASSED but less accurate.
  19630. * @see http://doc.babylonjs.com/features/occlusionquery
  19631. */
  19632. _this.occlusionQueryAlgorithmType = AbstractMesh.OCCLUSION_ALGORITHM_TYPE_CONSERVATIVE;
  19633. /**
  19634. * This property is responsible for starting the occlusion query within the Mesh or not, this property is also used to determine what should happen when the occlusionRetryCount is reached. It has supports 3 values:
  19635. * * OCCLUSION_TYPE_NONE (Default Value): this option means no occlusion query whith the Mesh.
  19636. * * OCCLUSION_TYPE_OPTIMISTIC: this option is means use occlusion query and if occlusionRetryCount is reached and the query is broken show the mesh.
  19637. * * OCCLUSION_TYPE_STRICT: this option is means use occlusion query and if occlusionRetryCount is reached and the query is broken restore the last state of the mesh occlusion if the mesh was visible then show the mesh if was hidden then hide don't show.
  19638. * @see http://doc.babylonjs.com/features/occlusionquery
  19639. */
  19640. _this.occlusionType = AbstractMesh.OCCLUSION_TYPE_NONE;
  19641. /**
  19642. * This number indicates the number of allowed retries before stop the occlusion query, this is useful if the occlusion query is taking long time before to the query result is retireved, the query result indicates if the object is visible within the scene or not and based on that Babylon.Js engine decideds to show or hide the object.
  19643. * The default value is -1 which means don't break the query and wait till the result
  19644. * @see http://doc.babylonjs.com/features/occlusionquery
  19645. */
  19646. _this.occlusionRetryCount = -1;
  19647. /** @hidden */
  19648. _this._occlusionInternalRetryCounter = 0;
  19649. /** @hidden */
  19650. _this._isOccluded = false;
  19651. /** @hidden */
  19652. _this._isOcclusionQueryInProgress = false;
  19653. _this._visibility = 1.0;
  19654. /** Gets or sets the alpha index used to sort transparent meshes
  19655. * @see http://doc.babylonjs.com/resources/transparency_and_how_meshes_are_rendered#alpha-index
  19656. */
  19657. _this.alphaIndex = Number.MAX_VALUE;
  19658. /**
  19659. * Gets or sets a boolean indicating if the mesh is visible (renderable). Default is true
  19660. */
  19661. _this.isVisible = true;
  19662. /**
  19663. * Gets or sets a boolean indicating if the mesh can be picked (by scene.pick for instance or through actions). Default is true
  19664. */
  19665. _this.isPickable = true;
  19666. /** Gets or sets a boolean indicating that bounding boxes of subMeshes must be rendered as well (false by default) */
  19667. _this.showSubMeshesBoundingBox = false;
  19668. /** Gets or sets a boolean indicating if the mesh must be considered as a ray blocker for lens flares (false by default)
  19669. * @see http://doc.babylonjs.com/how_to/how_to_use_lens_flares
  19670. */
  19671. _this.isBlocker = false;
  19672. /**
  19673. * Gets or sets a boolean indicating that pointer move events must be supported on this mesh (false by default)
  19674. */
  19675. _this.enablePointerMoveEvents = false;
  19676. /**
  19677. * Specifies the rendering group id for this mesh (0 by default)
  19678. * @see http://doc.babylonjs.com/resources/transparency_and_how_meshes_are_rendered#rendering-groups
  19679. */
  19680. _this.renderingGroupId = 0;
  19681. _this._receiveShadows = false;
  19682. /** Defines color to use when rendering outline */
  19683. _this.outlineColor = BABYLON.Color3.Red();
  19684. /** Define width to use when rendering outline */
  19685. _this.outlineWidth = 0.02;
  19686. /** Defines color to use when rendering overlay */
  19687. _this.overlayColor = BABYLON.Color3.Red();
  19688. /** Defines alpha to use when rendering overlay */
  19689. _this.overlayAlpha = 0.5;
  19690. _this._hasVertexAlpha = false;
  19691. _this._useVertexColors = true;
  19692. _this._computeBonesUsingShaders = true;
  19693. _this._numBoneInfluencers = 4;
  19694. _this._applyFog = true;
  19695. /** Gets or sets a boolean indicating that internal octree (if available) can be used to boost submeshes selection (true by default) */
  19696. _this.useOctreeForRenderingSelection = true;
  19697. /** Gets or sets a boolean indicating that internal octree (if available) can be used to boost submeshes picking (true by default) */
  19698. _this.useOctreeForPicking = true;
  19699. /** Gets or sets a boolean indicating that internal octree (if available) can be used to boost submeshes collision (true by default) */
  19700. _this.useOctreeForCollisions = true;
  19701. _this._layerMask = 0x0FFFFFFF;
  19702. /**
  19703. * True if the mesh must be rendered in any case (this will shortcut the frustum clipping phase)
  19704. */
  19705. _this.alwaysSelectAsActiveMesh = false;
  19706. /**
  19707. * Gets or sets the current action manager
  19708. * @see http://doc.babylonjs.com/how_to/how_to_use_actions
  19709. */
  19710. _this.actionManager = null;
  19711. /**
  19712. * Gets or sets impostor used for physic simulation
  19713. * @see http://doc.babylonjs.com/features/physics_engine
  19714. */
  19715. _this.physicsImpostor = null;
  19716. // Collisions
  19717. _this._checkCollisions = false;
  19718. _this._collisionMask = -1;
  19719. _this._collisionGroup = -1;
  19720. /**
  19721. * Gets or sets the ellipsoid used to impersonate this mesh when using collision engine (default is (0.5, 1, 0.5))
  19722. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  19723. */
  19724. _this.ellipsoid = new BABYLON.Vector3(0.5, 1, 0.5);
  19725. /**
  19726. * Gets or sets the ellipsoid offset used to impersonate this mesh when using collision engine (default is (0, 0, 0))
  19727. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  19728. */
  19729. _this.ellipsoidOffset = new BABYLON.Vector3(0, 0, 0);
  19730. _this._oldPositionForCollisions = new BABYLON.Vector3(0, 0, 0);
  19731. _this._diffPositionForCollisions = new BABYLON.Vector3(0, 0, 0);
  19732. // Edges
  19733. /**
  19734. * Defines edge width used when edgesRenderer is enabled
  19735. * @see https://www.babylonjs-playground.com/#10OJSG#13
  19736. */
  19737. _this.edgesWidth = 1;
  19738. /**
  19739. * Defines edge color used when edgesRenderer is enabled
  19740. * @see https://www.babylonjs-playground.com/#10OJSG#13
  19741. */
  19742. _this.edgesColor = new BABYLON.Color4(1, 0, 0, 1);
  19743. // Cache
  19744. _this._collisionsTransformMatrix = BABYLON.Matrix.Zero();
  19745. _this._collisionsScalingMatrix = BABYLON.Matrix.Zero();
  19746. /** @hidden */
  19747. _this._renderId = 0;
  19748. /** @hidden */
  19749. _this._intersectionsInProgress = new Array();
  19750. /** @hidden */
  19751. _this._unIndexed = false;
  19752. /** @hidden */
  19753. _this._lightSources = new Array();
  19754. /**
  19755. * An event triggered when the mesh is rebuilt.
  19756. */
  19757. _this.onRebuildObservable = new BABYLON.Observable();
  19758. _this._onCollisionPositionChange = function (collisionId, newPosition, collidedMesh) {
  19759. if (collidedMesh === void 0) { collidedMesh = null; }
  19760. //TODO move this to the collision coordinator!
  19761. if (_this.getScene().workerCollisions)
  19762. newPosition.multiplyInPlace(_this._collider._radius);
  19763. newPosition.subtractToRef(_this._oldPositionForCollisions, _this._diffPositionForCollisions);
  19764. if (_this._diffPositionForCollisions.length() > BABYLON.Engine.CollisionsEpsilon) {
  19765. _this.position.addInPlace(_this._diffPositionForCollisions);
  19766. }
  19767. if (collidedMesh) {
  19768. _this.onCollideObservable.notifyObservers(collidedMesh);
  19769. }
  19770. _this.onCollisionPositionChangeObservable.notifyObservers(_this.position);
  19771. };
  19772. _this.getScene().addMesh(_this);
  19773. _this._resyncLightSources();
  19774. return _this;
  19775. }
  19776. Object.defineProperty(AbstractMesh, "BILLBOARDMODE_NONE", {
  19777. /**
  19778. * No billboard
  19779. */
  19780. get: function () {
  19781. return BABYLON.TransformNode.BILLBOARDMODE_NONE;
  19782. },
  19783. enumerable: true,
  19784. configurable: true
  19785. });
  19786. Object.defineProperty(AbstractMesh, "BILLBOARDMODE_X", {
  19787. /** Billboard on X axis */
  19788. get: function () {
  19789. return BABYLON.TransformNode.BILLBOARDMODE_X;
  19790. },
  19791. enumerable: true,
  19792. configurable: true
  19793. });
  19794. Object.defineProperty(AbstractMesh, "BILLBOARDMODE_Y", {
  19795. /** Billboard on Y axis */
  19796. get: function () {
  19797. return BABYLON.TransformNode.BILLBOARDMODE_Y;
  19798. },
  19799. enumerable: true,
  19800. configurable: true
  19801. });
  19802. Object.defineProperty(AbstractMesh, "BILLBOARDMODE_Z", {
  19803. /** Billboard on Z axis */
  19804. get: function () {
  19805. return BABYLON.TransformNode.BILLBOARDMODE_Z;
  19806. },
  19807. enumerable: true,
  19808. configurable: true
  19809. });
  19810. Object.defineProperty(AbstractMesh, "BILLBOARDMODE_ALL", {
  19811. /** Billboard on all axes */
  19812. get: function () {
  19813. return BABYLON.TransformNode.BILLBOARDMODE_ALL;
  19814. },
  19815. enumerable: true,
  19816. configurable: true
  19817. });
  19818. Object.defineProperty(AbstractMesh.prototype, "facetNb", {
  19819. /**
  19820. * Gets the number of facets in the mesh
  19821. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#what-is-a-mesh-facet
  19822. */
  19823. get: function () {
  19824. return this._facetNb;
  19825. },
  19826. enumerable: true,
  19827. configurable: true
  19828. });
  19829. Object.defineProperty(AbstractMesh.prototype, "partitioningSubdivisions", {
  19830. /**
  19831. * Gets or set the number (integer) of subdivisions per axis in the partioning space
  19832. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#tweaking-the-partitioning
  19833. */
  19834. get: function () {
  19835. return this._partitioningSubdivisions;
  19836. },
  19837. set: function (nb) {
  19838. this._partitioningSubdivisions = nb;
  19839. },
  19840. enumerable: true,
  19841. configurable: true
  19842. });
  19843. Object.defineProperty(AbstractMesh.prototype, "partitioningBBoxRatio", {
  19844. /**
  19845. * The ratio (float) to apply to the bouding box size to set to the partioning space.
  19846. * Ex : 1.01 (default) the partioning space is 1% bigger than the bounding box
  19847. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#tweaking-the-partitioning
  19848. */
  19849. get: function () {
  19850. return this._partitioningBBoxRatio;
  19851. },
  19852. set: function (ratio) {
  19853. this._partitioningBBoxRatio = ratio;
  19854. },
  19855. enumerable: true,
  19856. configurable: true
  19857. });
  19858. Object.defineProperty(AbstractMesh.prototype, "mustDepthSortFacets", {
  19859. /**
  19860. * Gets or sets a boolean indicating that the facets must be depth sorted on next call to `updateFacetData()`.
  19861. * Works only for updatable meshes.
  19862. * Doesn't work with multi-materials
  19863. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#facet-depth-sort
  19864. */
  19865. get: function () {
  19866. return this._facetDepthSort;
  19867. },
  19868. set: function (sort) {
  19869. this._facetDepthSort = sort;
  19870. },
  19871. enumerable: true,
  19872. configurable: true
  19873. });
  19874. Object.defineProperty(AbstractMesh.prototype, "facetDepthSortFrom", {
  19875. /**
  19876. * The location (Vector3) where the facet depth sort must be computed from.
  19877. * By default, the active camera position.
  19878. * Used only when facet depth sort is enabled
  19879. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#facet-depth-sort
  19880. */
  19881. get: function () {
  19882. return this._facetDepthSortFrom;
  19883. },
  19884. set: function (location) {
  19885. this._facetDepthSortFrom = location;
  19886. },
  19887. enumerable: true,
  19888. configurable: true
  19889. });
  19890. Object.defineProperty(AbstractMesh.prototype, "isFacetDataEnabled", {
  19891. /**
  19892. * gets a boolean indicating if facetData is enabled
  19893. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata#what-is-a-mesh-facet
  19894. */
  19895. get: function () {
  19896. return this._facetDataEnabled;
  19897. },
  19898. enumerable: true,
  19899. configurable: true
  19900. });
  19901. /** @hidden */
  19902. AbstractMesh.prototype._updateNonUniformScalingState = function (value) {
  19903. if (!_super.prototype._updateNonUniformScalingState.call(this, value)) {
  19904. return false;
  19905. }
  19906. this._markSubMeshesAsMiscDirty();
  19907. return true;
  19908. };
  19909. Object.defineProperty(AbstractMesh.prototype, "onCollide", {
  19910. /** Set a function to call when this mesh collides with another one */
  19911. set: function (callback) {
  19912. if (this._onCollideObserver) {
  19913. this.onCollideObservable.remove(this._onCollideObserver);
  19914. }
  19915. this._onCollideObserver = this.onCollideObservable.add(callback);
  19916. },
  19917. enumerable: true,
  19918. configurable: true
  19919. });
  19920. Object.defineProperty(AbstractMesh.prototype, "onCollisionPositionChange", {
  19921. /** Set a function to call when the collision's position changes */
  19922. set: function (callback) {
  19923. if (this._onCollisionPositionChangeObserver) {
  19924. this.onCollisionPositionChangeObservable.remove(this._onCollisionPositionChangeObserver);
  19925. }
  19926. this._onCollisionPositionChangeObserver = this.onCollisionPositionChangeObservable.add(callback);
  19927. },
  19928. enumerable: true,
  19929. configurable: true
  19930. });
  19931. Object.defineProperty(AbstractMesh.prototype, "isOccluded", {
  19932. /**
  19933. * Gets or sets whether the mesh is occluded or not, it is used also to set the intial state of the mesh to be occluded or not
  19934. * @see http://doc.babylonjs.com/features/occlusionquery
  19935. */
  19936. get: function () {
  19937. return this._isOccluded;
  19938. },
  19939. set: function (value) {
  19940. this._isOccluded = value;
  19941. },
  19942. enumerable: true,
  19943. configurable: true
  19944. });
  19945. Object.defineProperty(AbstractMesh.prototype, "isOcclusionQueryInProgress", {
  19946. /**
  19947. * Flag to check the progress status of the query
  19948. * @see http://doc.babylonjs.com/features/occlusionquery
  19949. */
  19950. get: function () {
  19951. return this._isOcclusionQueryInProgress;
  19952. },
  19953. enumerable: true,
  19954. configurable: true
  19955. });
  19956. Object.defineProperty(AbstractMesh.prototype, "visibility", {
  19957. /**
  19958. * Gets or sets mesh visibility between 0 and 1 (default is 1)
  19959. */
  19960. get: function () {
  19961. return this._visibility;
  19962. },
  19963. /**
  19964. * Gets or sets mesh visibility between 0 and 1 (default is 1)
  19965. */
  19966. set: function (value) {
  19967. if (this._visibility === value) {
  19968. return;
  19969. }
  19970. this._visibility = value;
  19971. this._markSubMeshesAsMiscDirty();
  19972. },
  19973. enumerable: true,
  19974. configurable: true
  19975. });
  19976. Object.defineProperty(AbstractMesh.prototype, "material", {
  19977. /** Gets or sets current material */
  19978. get: function () {
  19979. return this._material;
  19980. },
  19981. set: function (value) {
  19982. if (this._material === value) {
  19983. return;
  19984. }
  19985. this._material = value;
  19986. if (this.onMaterialChangedObservable.hasObservers) {
  19987. this.onMaterialChangedObservable.notifyObservers(this);
  19988. }
  19989. if (!this.subMeshes) {
  19990. return;
  19991. }
  19992. this._unBindEffect();
  19993. },
  19994. enumerable: true,
  19995. configurable: true
  19996. });
  19997. Object.defineProperty(AbstractMesh.prototype, "receiveShadows", {
  19998. /**
  19999. * Gets or sets a boolean indicating that this mesh can receive realtime shadows
  20000. * @see http://doc.babylonjs.com/babylon101/shadows
  20001. */
  20002. get: function () {
  20003. return this._receiveShadows;
  20004. },
  20005. set: function (value) {
  20006. if (this._receiveShadows === value) {
  20007. return;
  20008. }
  20009. this._receiveShadows = value;
  20010. this._markSubMeshesAsLightDirty();
  20011. },
  20012. enumerable: true,
  20013. configurable: true
  20014. });
  20015. Object.defineProperty(AbstractMesh.prototype, "hasVertexAlpha", {
  20016. /** Gets or sets a boolean indicating that this mesh contains vertex color data with alpha values */
  20017. get: function () {
  20018. return this._hasVertexAlpha;
  20019. },
  20020. set: function (value) {
  20021. if (this._hasVertexAlpha === value) {
  20022. return;
  20023. }
  20024. this._hasVertexAlpha = value;
  20025. this._markSubMeshesAsAttributesDirty();
  20026. this._markSubMeshesAsMiscDirty();
  20027. },
  20028. enumerable: true,
  20029. configurable: true
  20030. });
  20031. Object.defineProperty(AbstractMesh.prototype, "useVertexColors", {
  20032. /** Gets or sets a boolean indicating that this mesh needs to use vertex color data to render (if this kind of vertex data is available in the geometry) */
  20033. get: function () {
  20034. return this._useVertexColors;
  20035. },
  20036. set: function (value) {
  20037. if (this._useVertexColors === value) {
  20038. return;
  20039. }
  20040. this._useVertexColors = value;
  20041. this._markSubMeshesAsAttributesDirty();
  20042. },
  20043. enumerable: true,
  20044. configurable: true
  20045. });
  20046. Object.defineProperty(AbstractMesh.prototype, "computeBonesUsingShaders", {
  20047. /**
  20048. * Gets or sets a boolean indicating that bone animations must be computed by the CPU (false by default)
  20049. */
  20050. get: function () {
  20051. return this._computeBonesUsingShaders;
  20052. },
  20053. set: function (value) {
  20054. if (this._computeBonesUsingShaders === value) {
  20055. return;
  20056. }
  20057. this._computeBonesUsingShaders = value;
  20058. this._markSubMeshesAsAttributesDirty();
  20059. },
  20060. enumerable: true,
  20061. configurable: true
  20062. });
  20063. Object.defineProperty(AbstractMesh.prototype, "numBoneInfluencers", {
  20064. /** Gets or sets the number of allowed bone influences per vertex (4 by default) */
  20065. get: function () {
  20066. return this._numBoneInfluencers;
  20067. },
  20068. set: function (value) {
  20069. if (this._numBoneInfluencers === value) {
  20070. return;
  20071. }
  20072. this._numBoneInfluencers = value;
  20073. this._markSubMeshesAsAttributesDirty();
  20074. },
  20075. enumerable: true,
  20076. configurable: true
  20077. });
  20078. Object.defineProperty(AbstractMesh.prototype, "applyFog", {
  20079. /** Gets or sets a boolean indicating that this mesh will allow fog to be rendered on it (true by default) */
  20080. get: function () {
  20081. return this._applyFog;
  20082. },
  20083. set: function (value) {
  20084. if (this._applyFog === value) {
  20085. return;
  20086. }
  20087. this._applyFog = value;
  20088. this._markSubMeshesAsMiscDirty();
  20089. },
  20090. enumerable: true,
  20091. configurable: true
  20092. });
  20093. Object.defineProperty(AbstractMesh.prototype, "layerMask", {
  20094. /**
  20095. * Gets or sets the current layer mask (default is 0x0FFFFFFF)
  20096. * @see http://doc.babylonjs.com/how_to/layermasks_and_multi-cam_textures
  20097. */
  20098. get: function () {
  20099. return this._layerMask;
  20100. },
  20101. set: function (value) {
  20102. if (value === this._layerMask) {
  20103. return;
  20104. }
  20105. this._layerMask = value;
  20106. this._resyncLightSources();
  20107. },
  20108. enumerable: true,
  20109. configurable: true
  20110. });
  20111. Object.defineProperty(AbstractMesh.prototype, "collisionMask", {
  20112. /**
  20113. * Gets or sets a collision mask used to mask collisions (default is -1).
  20114. * A collision between A and B will happen if A.collisionGroup & b.collisionMask !== 0
  20115. */
  20116. get: function () {
  20117. return this._collisionMask;
  20118. },
  20119. set: function (mask) {
  20120. this._collisionMask = !isNaN(mask) ? mask : -1;
  20121. },
  20122. enumerable: true,
  20123. configurable: true
  20124. });
  20125. Object.defineProperty(AbstractMesh.prototype, "collisionGroup", {
  20126. /**
  20127. * Gets or sets the current collision group mask (-1 by default).
  20128. * A collision between A and B will happen if A.collisionGroup & b.collisionMask !== 0
  20129. */
  20130. get: function () {
  20131. return this._collisionGroup;
  20132. },
  20133. set: function (mask) {
  20134. this._collisionGroup = !isNaN(mask) ? mask : -1;
  20135. },
  20136. enumerable: true,
  20137. configurable: true
  20138. });
  20139. Object.defineProperty(AbstractMesh.prototype, "_positions", {
  20140. /** @hidden */
  20141. get: function () {
  20142. return null;
  20143. },
  20144. enumerable: true,
  20145. configurable: true
  20146. });
  20147. Object.defineProperty(AbstractMesh.prototype, "skeleton", {
  20148. get: function () {
  20149. return this._skeleton;
  20150. },
  20151. /**
  20152. * Gets or sets a skeleton to apply skining transformations
  20153. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons
  20154. */
  20155. set: function (value) {
  20156. if (this._skeleton && this._skeleton.needInitialSkinMatrix) {
  20157. this._skeleton._unregisterMeshWithPoseMatrix(this);
  20158. }
  20159. if (value && value.needInitialSkinMatrix) {
  20160. value._registerMeshWithPoseMatrix(this);
  20161. }
  20162. this._skeleton = value;
  20163. if (!this._skeleton) {
  20164. this._bonesTransformMatrices = null;
  20165. }
  20166. this._markSubMeshesAsAttributesDirty();
  20167. },
  20168. enumerable: true,
  20169. configurable: true
  20170. });
  20171. /**
  20172. * Returns the string "AbstractMesh"
  20173. * @returns "AbstractMesh"
  20174. */
  20175. AbstractMesh.prototype.getClassName = function () {
  20176. return "AbstractMesh";
  20177. };
  20178. /**
  20179. * Gets a string representation of the current mesh
  20180. * @param fullDetails defines a boolean indicating if full details must be included
  20181. * @returns a string representation of the current mesh
  20182. */
  20183. AbstractMesh.prototype.toString = function (fullDetails) {
  20184. var ret = "Name: " + this.name + ", isInstance: " + (this instanceof BABYLON.InstancedMesh ? "YES" : "NO");
  20185. ret += ", # of submeshes: " + (this.subMeshes ? this.subMeshes.length : 0);
  20186. if (this._skeleton) {
  20187. ret += ", skeleton: " + this._skeleton.name;
  20188. }
  20189. if (fullDetails) {
  20190. ret += ", billboard mode: " + (["NONE", "X", "Y", null, "Z", null, null, "ALL"])[this.billboardMode];
  20191. ret += ", freeze wrld mat: " + (this._isWorldMatrixFrozen || this._waitingFreezeWorldMatrix ? "YES" : "NO");
  20192. }
  20193. return ret;
  20194. };
  20195. /** @hidden */
  20196. AbstractMesh.prototype._rebuild = function () {
  20197. this.onRebuildObservable.notifyObservers(this);
  20198. if (this._occlusionQuery) {
  20199. this._occlusionQuery = null;
  20200. }
  20201. if (!this.subMeshes) {
  20202. return;
  20203. }
  20204. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  20205. var subMesh = _a[_i];
  20206. subMesh._rebuild();
  20207. }
  20208. };
  20209. /** @hidden */
  20210. AbstractMesh.prototype._resyncLightSources = function () {
  20211. this._lightSources.length = 0;
  20212. for (var _i = 0, _a = this.getScene().lights; _i < _a.length; _i++) {
  20213. var light = _a[_i];
  20214. if (!light.isEnabled()) {
  20215. continue;
  20216. }
  20217. if (light.canAffectMesh(this)) {
  20218. this._lightSources.push(light);
  20219. }
  20220. }
  20221. this._markSubMeshesAsLightDirty();
  20222. };
  20223. /** @hidden */
  20224. AbstractMesh.prototype._resyncLighSource = function (light) {
  20225. var isIn = light.isEnabled() && light.canAffectMesh(this);
  20226. var index = this._lightSources.indexOf(light);
  20227. if (index === -1) {
  20228. if (!isIn) {
  20229. return;
  20230. }
  20231. this._lightSources.push(light);
  20232. }
  20233. else {
  20234. if (isIn) {
  20235. return;
  20236. }
  20237. this._lightSources.splice(index, 1);
  20238. }
  20239. this._markSubMeshesAsLightDirty();
  20240. };
  20241. /** @hidden */
  20242. AbstractMesh.prototype._unBindEffect = function () {
  20243. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  20244. var subMesh = _a[_i];
  20245. subMesh.setEffect(null);
  20246. }
  20247. };
  20248. /** @hidden */
  20249. AbstractMesh.prototype._removeLightSource = function (light) {
  20250. var index = this._lightSources.indexOf(light);
  20251. if (index === -1) {
  20252. return;
  20253. }
  20254. this._lightSources.splice(index, 1);
  20255. this._markSubMeshesAsLightDirty();
  20256. };
  20257. AbstractMesh.prototype._markSubMeshesAsDirty = function (func) {
  20258. if (!this.subMeshes) {
  20259. return;
  20260. }
  20261. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  20262. var subMesh = _a[_i];
  20263. if (subMesh._materialDefines) {
  20264. func(subMesh._materialDefines);
  20265. }
  20266. }
  20267. };
  20268. /** @hidden */
  20269. AbstractMesh.prototype._markSubMeshesAsLightDirty = function () {
  20270. this._markSubMeshesAsDirty(function (defines) { return defines.markAsLightDirty(); });
  20271. };
  20272. /** @hidden */
  20273. AbstractMesh.prototype._markSubMeshesAsAttributesDirty = function () {
  20274. this._markSubMeshesAsDirty(function (defines) { return defines.markAsAttributesDirty(); });
  20275. };
  20276. /** @hidden */
  20277. AbstractMesh.prototype._markSubMeshesAsMiscDirty = function () {
  20278. if (!this.subMeshes) {
  20279. return;
  20280. }
  20281. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  20282. var subMesh = _a[_i];
  20283. var material = subMesh.getMaterial();
  20284. if (material) {
  20285. material.markAsDirty(BABYLON.Material.MiscDirtyFlag);
  20286. }
  20287. }
  20288. };
  20289. Object.defineProperty(AbstractMesh.prototype, "scaling", {
  20290. /**
  20291. * Gets or sets a Vector3 depicting the mesh scaling along each local axis X, Y, Z. Default is (1.0, 1.0, 1.0)
  20292. */
  20293. get: function () {
  20294. return this._scaling;
  20295. },
  20296. set: function (newScaling) {
  20297. this._scaling = newScaling;
  20298. if (this.physicsImpostor) {
  20299. this.physicsImpostor.forceUpdate();
  20300. }
  20301. },
  20302. enumerable: true,
  20303. configurable: true
  20304. });
  20305. Object.defineProperty(AbstractMesh.prototype, "isBlocked", {
  20306. // Methods
  20307. /**
  20308. * Returns true if the mesh is blocked. Implemented by child classes
  20309. */
  20310. get: function () {
  20311. return false;
  20312. },
  20313. enumerable: true,
  20314. configurable: true
  20315. });
  20316. /**
  20317. * Returns the mesh itself by default. Implemented by child classes
  20318. * @param camera defines the camera to use to pick the right LOD level
  20319. * @returns the currentAbstractMesh
  20320. */
  20321. AbstractMesh.prototype.getLOD = function (camera) {
  20322. return this;
  20323. };
  20324. /**
  20325. * Returns 0 by default. Implemented by child classes
  20326. * @returns an integer
  20327. */
  20328. AbstractMesh.prototype.getTotalVertices = function () {
  20329. return 0;
  20330. };
  20331. /**
  20332. * Returns null by default. Implemented by child classes
  20333. * @returns null
  20334. */
  20335. AbstractMesh.prototype.getIndices = function () {
  20336. return null;
  20337. };
  20338. /**
  20339. * Returns the array of the requested vertex data kind. Implemented by child classes
  20340. * @param kind defines the vertex data kind to use
  20341. * @returns null
  20342. */
  20343. AbstractMesh.prototype.getVerticesData = function (kind) {
  20344. return null;
  20345. };
  20346. /**
  20347. * Sets the vertex data of the mesh geometry for the requested `kind`.
  20348. * If the mesh has no geometry, a new Geometry object is set to the mesh and then passed this vertex data.
  20349. * Note that a new underlying VertexBuffer object is created each call.
  20350. * If the `kind` is the `PositionKind`, the mesh BoundingInfo is renewed, so the bounding box and sphere, and the mesh World Matrix is recomputed.
  20351. * @param kind defines vertex data kind:
  20352. * * BABYLON.VertexBuffer.PositionKind
  20353. * * BABYLON.VertexBuffer.UVKind
  20354. * * BABYLON.VertexBuffer.UV2Kind
  20355. * * BABYLON.VertexBuffer.UV3Kind
  20356. * * BABYLON.VertexBuffer.UV4Kind
  20357. * * BABYLON.VertexBuffer.UV5Kind
  20358. * * BABYLON.VertexBuffer.UV6Kind
  20359. * * BABYLON.VertexBuffer.ColorKind
  20360. * * BABYLON.VertexBuffer.MatricesIndicesKind
  20361. * * BABYLON.VertexBuffer.MatricesIndicesExtraKind
  20362. * * BABYLON.VertexBuffer.MatricesWeightsKind
  20363. * * BABYLON.VertexBuffer.MatricesWeightsExtraKind
  20364. * @param data defines the data source
  20365. * @param updatable defines if the data must be flagged as updatable (or static)
  20366. * @param stride defines the vertex stride (size of an entire vertex). Can be null and in this case will be deduced from vertex data kind
  20367. * @returns the current mesh
  20368. */
  20369. AbstractMesh.prototype.setVerticesData = function (kind, data, updatable, stride) {
  20370. return this;
  20371. };
  20372. /**
  20373. * Updates the existing vertex data of the mesh geometry for the requested `kind`.
  20374. * If the mesh has no geometry, it is simply returned as it is.
  20375. * @param kind defines vertex data kind:
  20376. * * BABYLON.VertexBuffer.PositionKind
  20377. * * BABYLON.VertexBuffer.UVKind
  20378. * * BABYLON.VertexBuffer.UV2Kind
  20379. * * BABYLON.VertexBuffer.UV3Kind
  20380. * * BABYLON.VertexBuffer.UV4Kind
  20381. * * BABYLON.VertexBuffer.UV5Kind
  20382. * * BABYLON.VertexBuffer.UV6Kind
  20383. * * BABYLON.VertexBuffer.ColorKind
  20384. * * BABYLON.VertexBuffer.MatricesIndicesKind
  20385. * * BABYLON.VertexBuffer.MatricesIndicesExtraKind
  20386. * * BABYLON.VertexBuffer.MatricesWeightsKind
  20387. * * BABYLON.VertexBuffer.MatricesWeightsExtraKind
  20388. * @param data defines the data source
  20389. * @param updateExtends If `kind` is `PositionKind` and if `updateExtends` is true, the mesh BoundingInfo is renewed, so the bounding box and sphere, and the mesh World Matrix is recomputed
  20390. * @param makeItUnique If true, a new global geometry is created from this data and is set to the mesh
  20391. * @returns the current mesh
  20392. */
  20393. AbstractMesh.prototype.updateVerticesData = function (kind, data, updateExtends, makeItUnique) {
  20394. return this;
  20395. };
  20396. /**
  20397. * Sets the mesh indices,
  20398. * If the mesh has no geometry, a new Geometry object is created and set to the mesh.
  20399. * @param indices Expects an array populated with integers or a typed array (Int32Array, Uint32Array, Uint16Array)
  20400. * @param totalVertices Defines the total number of vertices
  20401. * @returns the current mesh
  20402. */
  20403. AbstractMesh.prototype.setIndices = function (indices, totalVertices) {
  20404. return this;
  20405. };
  20406. /**
  20407. * Gets a boolean indicating if specific vertex data is present
  20408. * @param kind defines the vertex data kind to use
  20409. * @returns true is data kind is present
  20410. */
  20411. AbstractMesh.prototype.isVerticesDataPresent = function (kind) {
  20412. return false;
  20413. };
  20414. /**
  20415. * Returns the mesh BoundingInfo object or creates a new one and returns if it was undefined
  20416. * @returns a BoundingInfo
  20417. */
  20418. AbstractMesh.prototype.getBoundingInfo = function () {
  20419. if (this._masterMesh) {
  20420. return this._masterMesh.getBoundingInfo();
  20421. }
  20422. if (!this._boundingInfo) {
  20423. // this._boundingInfo is being created here
  20424. this._updateBoundingInfo();
  20425. }
  20426. // cannot be null.
  20427. return this._boundingInfo;
  20428. };
  20429. /**
  20430. * Uniformly scales the mesh to fit inside of a unit cube (1 X 1 X 1 units)
  20431. * @param includeDescendants Use the hierarchy's bounding box instead of the mesh's bounding box
  20432. * @returns the current mesh
  20433. */
  20434. AbstractMesh.prototype.normalizeToUnitCube = function (includeDescendants) {
  20435. if (includeDescendants === void 0) { includeDescendants = true; }
  20436. var boundingVectors = this.getHierarchyBoundingVectors(includeDescendants);
  20437. var sizeVec = boundingVectors.max.subtract(boundingVectors.min);
  20438. var maxDimension = Math.max(sizeVec.x, sizeVec.y, sizeVec.z);
  20439. if (maxDimension === 0) {
  20440. return this;
  20441. }
  20442. var scale = 1 / maxDimension;
  20443. this.scaling.scaleInPlace(scale);
  20444. return this;
  20445. };
  20446. /**
  20447. * Overwrite the current bounding info
  20448. * @param boundingInfo defines the new bounding info
  20449. * @returns the current mesh
  20450. */
  20451. AbstractMesh.prototype.setBoundingInfo = function (boundingInfo) {
  20452. this._boundingInfo = boundingInfo;
  20453. return this;
  20454. };
  20455. Object.defineProperty(AbstractMesh.prototype, "useBones", {
  20456. /** Gets a boolean indicating if this mesh has skinning data and an attached skeleton */
  20457. get: function () {
  20458. return (this.skeleton && this.getScene().skeletonsEnabled && this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesIndicesKind) && this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesWeightsKind));
  20459. },
  20460. enumerable: true,
  20461. configurable: true
  20462. });
  20463. /** @hidden */
  20464. AbstractMesh.prototype._preActivate = function () {
  20465. };
  20466. /** @hidden */
  20467. AbstractMesh.prototype._preActivateForIntermediateRendering = function (renderId) {
  20468. };
  20469. /** @hidden */
  20470. AbstractMesh.prototype._activate = function (renderId) {
  20471. this._renderId = renderId;
  20472. };
  20473. /**
  20474. * Gets the current world matrix
  20475. * @returns a Matrix
  20476. */
  20477. AbstractMesh.prototype.getWorldMatrix = function () {
  20478. if (this._masterMesh) {
  20479. return this._masterMesh.getWorldMatrix();
  20480. }
  20481. return _super.prototype.getWorldMatrix.call(this);
  20482. };
  20483. /** @hidden */
  20484. AbstractMesh.prototype._getWorldMatrixDeterminant = function () {
  20485. if (this._masterMesh) {
  20486. return this._masterMesh._getWorldMatrixDeterminant();
  20487. }
  20488. return _super.prototype._getWorldMatrixDeterminant.call(this);
  20489. };
  20490. // ================================== Point of View Movement =================================
  20491. /**
  20492. * Perform relative position change from the point of view of behind the front of the mesh.
  20493. * This is performed taking into account the meshes current rotation, so you do not have to care.
  20494. * Supports definition of mesh facing forward or backward
  20495. * @param amountRight defines the distance on the right axis
  20496. * @param amountUp defines the distance on the up axis
  20497. * @param amountForward defines the distance on the forward axis
  20498. * @returns the current mesh
  20499. */
  20500. AbstractMesh.prototype.movePOV = function (amountRight, amountUp, amountForward) {
  20501. this.position.addInPlace(this.calcMovePOV(amountRight, amountUp, amountForward));
  20502. return this;
  20503. };
  20504. /**
  20505. * Calculate relative position change from the point of view of behind the front of the mesh.
  20506. * This is performed taking into account the meshes current rotation, so you do not have to care.
  20507. * Supports definition of mesh facing forward or backward
  20508. * @param amountRight defines the distance on the right axis
  20509. * @param amountUp defines the distance on the up axis
  20510. * @param amountForward defines the distance on the forward axis
  20511. * @returns the new displacement vector
  20512. */
  20513. AbstractMesh.prototype.calcMovePOV = function (amountRight, amountUp, amountForward) {
  20514. var rotMatrix = new BABYLON.Matrix();
  20515. var rotQuaternion = (this.rotationQuaternion) ? this.rotationQuaternion : BABYLON.Quaternion.RotationYawPitchRoll(this.rotation.y, this.rotation.x, this.rotation.z);
  20516. rotQuaternion.toRotationMatrix(rotMatrix);
  20517. var translationDelta = BABYLON.Vector3.Zero();
  20518. var defForwardMult = this.definedFacingForward ? -1 : 1;
  20519. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(amountRight * defForwardMult, amountUp, amountForward * defForwardMult, rotMatrix, translationDelta);
  20520. return translationDelta;
  20521. };
  20522. // ================================== Point of View Rotation =================================
  20523. /**
  20524. * Perform relative rotation change from the point of view of behind the front of the mesh.
  20525. * Supports definition of mesh facing forward or backward
  20526. * @param flipBack defines the flip
  20527. * @param twirlClockwise defines the twirl
  20528. * @param tiltRight defines the tilt
  20529. * @returns the current mesh
  20530. */
  20531. AbstractMesh.prototype.rotatePOV = function (flipBack, twirlClockwise, tiltRight) {
  20532. this.rotation.addInPlace(this.calcRotatePOV(flipBack, twirlClockwise, tiltRight));
  20533. return this;
  20534. };
  20535. /**
  20536. * Calculate relative rotation change from the point of view of behind the front of the mesh.
  20537. * Supports definition of mesh facing forward or backward.
  20538. * @param flipBack defines the flip
  20539. * @param twirlClockwise defines the twirl
  20540. * @param tiltRight defines the tilt
  20541. * @returns the new rotation vector
  20542. */
  20543. AbstractMesh.prototype.calcRotatePOV = function (flipBack, twirlClockwise, tiltRight) {
  20544. var defForwardMult = this.definedFacingForward ? 1 : -1;
  20545. return new BABYLON.Vector3(flipBack * defForwardMult, twirlClockwise, tiltRight * defForwardMult);
  20546. };
  20547. /**
  20548. * Return the minimum and maximum world vectors of the entire hierarchy under current mesh
  20549. * @param includeDescendants Include bounding info from descendants as well (true by default)
  20550. * @param predicate defines a callback function that can be customize to filter what meshes should be included in the list used to compute the bounding vectors
  20551. * @returns the new bounding vectors
  20552. */
  20553. AbstractMesh.prototype.getHierarchyBoundingVectors = function (includeDescendants, predicate) {
  20554. if (includeDescendants === void 0) { includeDescendants = true; }
  20555. if (predicate === void 0) { predicate = null; }
  20556. // Ensures that all world matrix will be recomputed.
  20557. this.getScene().incrementRenderId();
  20558. this.computeWorldMatrix(true);
  20559. var min;
  20560. var max;
  20561. var boundingInfo = this.getBoundingInfo();
  20562. if (!this.subMeshes) {
  20563. min = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  20564. max = new BABYLON.Vector3(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE);
  20565. }
  20566. else {
  20567. min = boundingInfo.boundingBox.minimumWorld;
  20568. max = boundingInfo.boundingBox.maximumWorld;
  20569. }
  20570. if (includeDescendants) {
  20571. var descendants = this.getDescendants(false);
  20572. for (var _i = 0, descendants_1 = descendants; _i < descendants_1.length; _i++) {
  20573. var descendant = descendants_1[_i];
  20574. var childMesh = descendant;
  20575. childMesh.computeWorldMatrix(true);
  20576. // Filters meshes based on custom predicate function.
  20577. if (predicate && !predicate(childMesh)) {
  20578. continue;
  20579. }
  20580. //make sure we have the needed params to get mix and max
  20581. if (!childMesh.getBoundingInfo || childMesh.getTotalVertices() === 0) {
  20582. continue;
  20583. }
  20584. var childBoundingInfo = childMesh.getBoundingInfo();
  20585. var boundingBox = childBoundingInfo.boundingBox;
  20586. var minBox = boundingBox.minimumWorld;
  20587. var maxBox = boundingBox.maximumWorld;
  20588. BABYLON.Tools.CheckExtends(minBox, min, max);
  20589. BABYLON.Tools.CheckExtends(maxBox, min, max);
  20590. }
  20591. }
  20592. return {
  20593. min: min,
  20594. max: max
  20595. };
  20596. };
  20597. /** @hidden */
  20598. AbstractMesh.prototype._updateBoundingInfo = function () {
  20599. this._boundingInfo = this._boundingInfo || new BABYLON.BoundingInfo(this.absolutePosition, this.absolutePosition);
  20600. this._boundingInfo.update(this.worldMatrixFromCache);
  20601. this._updateSubMeshesBoundingInfo(this.worldMatrixFromCache);
  20602. return this;
  20603. };
  20604. /** @hidden */
  20605. AbstractMesh.prototype._updateSubMeshesBoundingInfo = function (matrix) {
  20606. if (!this.subMeshes) {
  20607. return this;
  20608. }
  20609. for (var subIndex = 0; subIndex < this.subMeshes.length; subIndex++) {
  20610. var subMesh = this.subMeshes[subIndex];
  20611. if (!subMesh.IsGlobal) {
  20612. subMesh.updateBoundingInfo(matrix);
  20613. }
  20614. }
  20615. return this;
  20616. };
  20617. /** @hidden */
  20618. AbstractMesh.prototype._afterComputeWorldMatrix = function () {
  20619. // Bounding info
  20620. this._updateBoundingInfo();
  20621. };
  20622. /**
  20623. * Returns `true` if the mesh is within the frustum defined by the passed array of planes.
  20624. * A mesh is in the frustum if its bounding box intersects the frustum
  20625. * @param frustumPlanes defines the frustum to test
  20626. * @returns true if the mesh is in the frustum planes
  20627. */
  20628. AbstractMesh.prototype.isInFrustum = function (frustumPlanes) {
  20629. return this._boundingInfo !== null && this._boundingInfo.isInFrustum(frustumPlanes, this.cullingStrategy);
  20630. };
  20631. /**
  20632. * Returns `true` if the mesh is completely in the frustum defined be the passed array of planes.
  20633. * A mesh is completely in the frustum if its bounding box it completely inside the frustum.
  20634. * @param frustumPlanes defines the frustum to test
  20635. * @returns true if the mesh is completely in the frustum planes
  20636. */
  20637. AbstractMesh.prototype.isCompletelyInFrustum = function (frustumPlanes) {
  20638. return this._boundingInfo !== null && this._boundingInfo.isCompletelyInFrustum(frustumPlanes);
  20639. };
  20640. /**
  20641. * True if the mesh intersects another mesh or a SolidParticle object
  20642. * @param mesh defines a target mesh or SolidParticle to test
  20643. * @param precise Unless the parameter `precise` is set to `true` the intersection is computed according to Axis Aligned Bounding Boxes (AABB), else according to OBB (Oriented BBoxes)
  20644. * @param includeDescendants Can be set to true to test if the mesh defined in parameters intersects with the current mesh or any child meshes
  20645. * @returns true if there is an intersection
  20646. */
  20647. AbstractMesh.prototype.intersectsMesh = function (mesh, precise, includeDescendants) {
  20648. if (precise === void 0) { precise = false; }
  20649. if (!this._boundingInfo || !mesh._boundingInfo) {
  20650. return false;
  20651. }
  20652. if (this._boundingInfo.intersects(mesh._boundingInfo, precise)) {
  20653. return true;
  20654. }
  20655. if (includeDescendants) {
  20656. for (var _i = 0, _a = this.getChildMeshes(); _i < _a.length; _i++) {
  20657. var child = _a[_i];
  20658. if (child.intersectsMesh(mesh, precise, true)) {
  20659. return true;
  20660. }
  20661. }
  20662. }
  20663. return false;
  20664. };
  20665. /**
  20666. * Returns true if the passed point (Vector3) is inside the mesh bounding box
  20667. * @param point defines the point to test
  20668. * @returns true if there is an intersection
  20669. */
  20670. AbstractMesh.prototype.intersectsPoint = function (point) {
  20671. if (!this._boundingInfo) {
  20672. return false;
  20673. }
  20674. return this._boundingInfo.intersectsPoint(point);
  20675. };
  20676. /**
  20677. * Gets the current physics impostor
  20678. * @see http://doc.babylonjs.com/features/physics_engine
  20679. * @returns a physics impostor or null
  20680. */
  20681. AbstractMesh.prototype.getPhysicsImpostor = function () {
  20682. return this.physicsImpostor;
  20683. };
  20684. /**
  20685. * Gets the position of the current mesh in camera space
  20686. * @param camera defines the camera to use
  20687. * @returns a position
  20688. */
  20689. AbstractMesh.prototype.getPositionInCameraSpace = function (camera) {
  20690. if (camera === void 0) { camera = null; }
  20691. if (!camera) {
  20692. camera = this.getScene().activeCamera;
  20693. }
  20694. return BABYLON.Vector3.TransformCoordinates(this.absolutePosition, camera.getViewMatrix());
  20695. };
  20696. /**
  20697. * Returns the distance from the mesh to the active camera
  20698. * @param camera defines the camera to use
  20699. * @returns the distance
  20700. */
  20701. AbstractMesh.prototype.getDistanceToCamera = function (camera) {
  20702. if (camera === void 0) { camera = null; }
  20703. if (!camera) {
  20704. camera = this.getScene().activeCamera;
  20705. }
  20706. return this.absolutePosition.subtract(camera.position).length();
  20707. };
  20708. /**
  20709. * Apply a physic impulse to the mesh
  20710. * @param force defines the force to apply
  20711. * @param contactPoint defines where to apply the force
  20712. * @returns the current mesh
  20713. * @see http://doc.babylonjs.com/how_to/using_the_physics_engine
  20714. */
  20715. AbstractMesh.prototype.applyImpulse = function (force, contactPoint) {
  20716. if (!this.physicsImpostor) {
  20717. return this;
  20718. }
  20719. this.physicsImpostor.applyImpulse(force, contactPoint);
  20720. return this;
  20721. };
  20722. /**
  20723. * Creates a physic joint between two meshes
  20724. * @param otherMesh defines the other mesh to use
  20725. * @param pivot1 defines the pivot to use on this mesh
  20726. * @param pivot2 defines the pivot to use on the other mesh
  20727. * @param options defines additional options (can be plugin dependent)
  20728. * @returns the current mesh
  20729. * @see https://www.babylonjs-playground.com/#0BS5U0#0
  20730. */
  20731. AbstractMesh.prototype.setPhysicsLinkWith = function (otherMesh, pivot1, pivot2, options) {
  20732. if (!this.physicsImpostor || !otherMesh.physicsImpostor) {
  20733. return this;
  20734. }
  20735. this.physicsImpostor.createJoint(otherMesh.physicsImpostor, BABYLON.PhysicsJoint.HingeJoint, {
  20736. mainPivot: pivot1,
  20737. connectedPivot: pivot2,
  20738. nativeParams: options
  20739. });
  20740. return this;
  20741. };
  20742. Object.defineProperty(AbstractMesh.prototype, "checkCollisions", {
  20743. // Collisions
  20744. /**
  20745. * Gets or sets a boolean indicating that this mesh can be used in the collision engine
  20746. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  20747. */
  20748. get: function () {
  20749. return this._checkCollisions;
  20750. },
  20751. set: function (collisionEnabled) {
  20752. this._checkCollisions = collisionEnabled;
  20753. if (this.getScene().workerCollisions) {
  20754. this.getScene().collisionCoordinator.onMeshUpdated(this);
  20755. }
  20756. },
  20757. enumerable: true,
  20758. configurable: true
  20759. });
  20760. Object.defineProperty(AbstractMesh.prototype, "collider", {
  20761. /**
  20762. * Gets Collider object used to compute collisions (not physics)
  20763. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  20764. */
  20765. get: function () {
  20766. return this._collider;
  20767. },
  20768. enumerable: true,
  20769. configurable: true
  20770. });
  20771. /**
  20772. * Move the mesh using collision engine
  20773. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  20774. * @param displacement defines the requested displacement vector
  20775. * @returns the current mesh
  20776. */
  20777. AbstractMesh.prototype.moveWithCollisions = function (displacement) {
  20778. var globalPosition = this.getAbsolutePosition();
  20779. globalPosition.addToRef(this.ellipsoidOffset, this._oldPositionForCollisions);
  20780. if (!this._collider) {
  20781. this._collider = new BABYLON.Collider();
  20782. }
  20783. this._collider._radius = this.ellipsoid;
  20784. this.getScene().collisionCoordinator.getNewPosition(this._oldPositionForCollisions, displacement, this._collider, 3, this, this._onCollisionPositionChange, this.uniqueId);
  20785. return this;
  20786. };
  20787. // Collisions
  20788. /** @hidden */
  20789. AbstractMesh.prototype._collideForSubMesh = function (subMesh, transformMatrix, collider) {
  20790. this._generatePointsArray();
  20791. if (!this._positions) {
  20792. return this;
  20793. }
  20794. // Transformation
  20795. if (!subMesh._lastColliderWorldVertices || !subMesh._lastColliderTransformMatrix.equals(transformMatrix)) {
  20796. subMesh._lastColliderTransformMatrix = transformMatrix.clone();
  20797. subMesh._lastColliderWorldVertices = [];
  20798. subMesh._trianglePlanes = [];
  20799. var start = subMesh.verticesStart;
  20800. var end = (subMesh.verticesStart + subMesh.verticesCount);
  20801. for (var i = start; i < end; i++) {
  20802. subMesh._lastColliderWorldVertices.push(BABYLON.Vector3.TransformCoordinates(this._positions[i], transformMatrix));
  20803. }
  20804. }
  20805. // Collide
  20806. collider._collide(subMesh._trianglePlanes, subMesh._lastColliderWorldVertices, this.getIndices(), subMesh.indexStart, subMesh.indexStart + subMesh.indexCount, subMesh.verticesStart, !!subMesh.getMaterial());
  20807. if (collider.collisionFound) {
  20808. collider.collidedMesh = this;
  20809. }
  20810. return this;
  20811. };
  20812. /** @hidden */
  20813. AbstractMesh.prototype._processCollisionsForSubMeshes = function (collider, transformMatrix) {
  20814. var subMeshes = this._scene.getCollidingSubMeshCandidates(this, collider);
  20815. var len = subMeshes.length;
  20816. for (var index = 0; index < len; index++) {
  20817. var subMesh = subMeshes.data[index];
  20818. // Bounding test
  20819. if (len > 1 && !subMesh._checkCollision(collider))
  20820. continue;
  20821. this._collideForSubMesh(subMesh, transformMatrix, collider);
  20822. }
  20823. return this;
  20824. };
  20825. /** @hidden */
  20826. AbstractMesh.prototype._checkCollision = function (collider) {
  20827. // Bounding box test
  20828. if (!this._boundingInfo || !this._boundingInfo._checkCollision(collider))
  20829. return this;
  20830. // Transformation matrix
  20831. BABYLON.Matrix.ScalingToRef(1.0 / collider._radius.x, 1.0 / collider._radius.y, 1.0 / collider._radius.z, this._collisionsScalingMatrix);
  20832. this.worldMatrixFromCache.multiplyToRef(this._collisionsScalingMatrix, this._collisionsTransformMatrix);
  20833. this._processCollisionsForSubMeshes(collider, this._collisionsTransformMatrix);
  20834. return this;
  20835. };
  20836. // Picking
  20837. /** @hidden */
  20838. AbstractMesh.prototype._generatePointsArray = function () {
  20839. return false;
  20840. };
  20841. /**
  20842. * Checks if the passed Ray intersects with the mesh
  20843. * @param ray defines the ray to use
  20844. * @param fastCheck defines if fast mode (but less precise) must be used (false by default)
  20845. * @returns the picking info
  20846. * @see http://doc.babylonjs.com/babylon101/intersect_collisions_-_mesh
  20847. */
  20848. AbstractMesh.prototype.intersects = function (ray, fastCheck) {
  20849. var pickingInfo = new BABYLON.PickingInfo();
  20850. if (!this.subMeshes || !this._boundingInfo || !ray.intersectsSphere(this._boundingInfo.boundingSphere) || !ray.intersectsBox(this._boundingInfo.boundingBox)) {
  20851. return pickingInfo;
  20852. }
  20853. if (!this._generatePointsArray()) {
  20854. return pickingInfo;
  20855. }
  20856. var intersectInfo = null;
  20857. var subMeshes = this._scene.getIntersectingSubMeshCandidates(this, ray);
  20858. var len = subMeshes.length;
  20859. for (var index = 0; index < len; index++) {
  20860. var subMesh = subMeshes.data[index];
  20861. // Bounding test
  20862. if (len > 1 && !subMesh.canIntersects(ray))
  20863. continue;
  20864. var currentIntersectInfo = subMesh.intersects(ray, this._positions, this.getIndices(), fastCheck);
  20865. if (currentIntersectInfo) {
  20866. if (fastCheck || !intersectInfo || currentIntersectInfo.distance < intersectInfo.distance) {
  20867. intersectInfo = currentIntersectInfo;
  20868. intersectInfo.subMeshId = index;
  20869. if (fastCheck) {
  20870. break;
  20871. }
  20872. }
  20873. }
  20874. }
  20875. if (intersectInfo) {
  20876. // Get picked point
  20877. var world = this.getWorldMatrix();
  20878. var worldOrigin = BABYLON.Vector3.TransformCoordinates(ray.origin, world);
  20879. var direction = ray.direction.clone();
  20880. direction = direction.scale(intersectInfo.distance);
  20881. var worldDirection = BABYLON.Vector3.TransformNormal(direction, world);
  20882. var pickedPoint = worldOrigin.add(worldDirection);
  20883. // Return result
  20884. pickingInfo.hit = true;
  20885. pickingInfo.distance = BABYLON.Vector3.Distance(worldOrigin, pickedPoint);
  20886. pickingInfo.pickedPoint = pickedPoint;
  20887. pickingInfo.pickedMesh = this;
  20888. pickingInfo.bu = intersectInfo.bu || 0;
  20889. pickingInfo.bv = intersectInfo.bv || 0;
  20890. pickingInfo.faceId = intersectInfo.faceId;
  20891. pickingInfo.subMeshId = intersectInfo.subMeshId;
  20892. return pickingInfo;
  20893. }
  20894. return pickingInfo;
  20895. };
  20896. /**
  20897. * Clones the current mesh
  20898. * @param name defines the mesh name
  20899. * @param newParent defines the new mesh parent
  20900. * @param doNotCloneChildren defines a boolean indicating that children must not be cloned (false by default)
  20901. * @returns the new mesh
  20902. */
  20903. AbstractMesh.prototype.clone = function (name, newParent, doNotCloneChildren) {
  20904. return null;
  20905. };
  20906. /**
  20907. * Disposes all the submeshes of the current meshnp
  20908. * @returns the current mesh
  20909. */
  20910. AbstractMesh.prototype.releaseSubMeshes = function () {
  20911. if (this.subMeshes) {
  20912. while (this.subMeshes.length) {
  20913. this.subMeshes[0].dispose();
  20914. }
  20915. }
  20916. else {
  20917. this.subMeshes = new Array();
  20918. }
  20919. return this;
  20920. };
  20921. /**
  20922. * Releases resources associated with this abstract mesh.
  20923. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  20924. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  20925. */
  20926. AbstractMesh.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  20927. var _this = this;
  20928. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  20929. var index;
  20930. // Smart Array Retainers.
  20931. this.getScene().freeActiveMeshes();
  20932. this.getScene().freeRenderingGroups();
  20933. // Action manager
  20934. if (this.actionManager !== undefined && this.actionManager !== null) {
  20935. this.actionManager.dispose();
  20936. this.actionManager = null;
  20937. }
  20938. // Skeleton
  20939. this._skeleton = null;
  20940. // Physics
  20941. if (this.physicsImpostor) {
  20942. this.physicsImpostor.dispose( /*!doNotRecurse*/);
  20943. }
  20944. // Intersections in progress
  20945. for (index = 0; index < this._intersectionsInProgress.length; index++) {
  20946. var other = this._intersectionsInProgress[index];
  20947. var pos = other._intersectionsInProgress.indexOf(this);
  20948. other._intersectionsInProgress.splice(pos, 1);
  20949. }
  20950. this._intersectionsInProgress = [];
  20951. // Lights
  20952. var lights = this.getScene().lights;
  20953. lights.forEach(function (light) {
  20954. var meshIndex = light.includedOnlyMeshes.indexOf(_this);
  20955. if (meshIndex !== -1) {
  20956. light.includedOnlyMeshes.splice(meshIndex, 1);
  20957. }
  20958. meshIndex = light.excludedMeshes.indexOf(_this);
  20959. if (meshIndex !== -1) {
  20960. light.excludedMeshes.splice(meshIndex, 1);
  20961. }
  20962. // Shadow generators
  20963. var generator = light.getShadowGenerator();
  20964. if (generator) {
  20965. var shadowMap = generator.getShadowMap();
  20966. if (shadowMap && shadowMap.renderList) {
  20967. meshIndex = shadowMap.renderList.indexOf(_this);
  20968. if (meshIndex !== -1) {
  20969. shadowMap.renderList.splice(meshIndex, 1);
  20970. }
  20971. }
  20972. }
  20973. });
  20974. // SubMeshes
  20975. if (this.getClassName() !== "InstancedMesh") {
  20976. this.releaseSubMeshes();
  20977. }
  20978. // Query
  20979. var engine = this.getScene().getEngine();
  20980. if (this._occlusionQuery) {
  20981. this._isOcclusionQueryInProgress = false;
  20982. engine.deleteQuery(this._occlusionQuery);
  20983. this._occlusionQuery = null;
  20984. }
  20985. // Engine
  20986. engine.wipeCaches();
  20987. // Remove from scene
  20988. this.getScene().removeMesh(this);
  20989. if (disposeMaterialAndTextures) {
  20990. if (this.material) {
  20991. this.material.dispose(false, true);
  20992. }
  20993. }
  20994. if (!doNotRecurse) {
  20995. // Particles
  20996. for (index = 0; index < this.getScene().particleSystems.length; index++) {
  20997. if (this.getScene().particleSystems[index].emitter === this) {
  20998. this.getScene().particleSystems[index].dispose();
  20999. index--;
  21000. }
  21001. }
  21002. }
  21003. // facet data
  21004. if (this._facetDataEnabled) {
  21005. this.disableFacetData();
  21006. }
  21007. this.onAfterWorldMatrixUpdateObservable.clear();
  21008. this.onCollideObservable.clear();
  21009. this.onCollisionPositionChangeObservable.clear();
  21010. this.onRebuildObservable.clear();
  21011. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  21012. };
  21013. /**
  21014. * Adds the passed mesh as a child to the current mesh
  21015. * @param mesh defines the child mesh
  21016. * @returns the current mesh
  21017. */
  21018. AbstractMesh.prototype.addChild = function (mesh) {
  21019. mesh.setParent(this);
  21020. return this;
  21021. };
  21022. /**
  21023. * Removes the passed mesh from the current mesh children list
  21024. * @param mesh defines the child mesh
  21025. * @returns the current mesh
  21026. */
  21027. AbstractMesh.prototype.removeChild = function (mesh) {
  21028. mesh.setParent(null);
  21029. return this;
  21030. };
  21031. // Facet data
  21032. /** @hidden */
  21033. AbstractMesh.prototype._initFacetData = function () {
  21034. if (!this._facetNormals) {
  21035. this._facetNormals = new Array();
  21036. }
  21037. if (!this._facetPositions) {
  21038. this._facetPositions = new Array();
  21039. }
  21040. if (!this._facetPartitioning) {
  21041. this._facetPartitioning = new Array();
  21042. }
  21043. this._facetNb = (this.getIndices().length / 3) | 0;
  21044. this._partitioningSubdivisions = (this._partitioningSubdivisions) ? this._partitioningSubdivisions : 10; // default nb of partitioning subdivisions = 10
  21045. this._partitioningBBoxRatio = (this._partitioningBBoxRatio) ? this._partitioningBBoxRatio : 1.01; // default ratio 1.01 = the partitioning is 1% bigger than the bounding box
  21046. for (var f = 0; f < this._facetNb; f++) {
  21047. this._facetNormals[f] = BABYLON.Vector3.Zero();
  21048. this._facetPositions[f] = BABYLON.Vector3.Zero();
  21049. }
  21050. this._facetDataEnabled = true;
  21051. return this;
  21052. };
  21053. /**
  21054. * Updates the mesh facetData arrays and the internal partitioning when the mesh is morphed or updated.
  21055. * This method can be called within the render loop.
  21056. * You don't need to call this method by yourself in the render loop when you update/morph a mesh with the methods CreateXXX() as they automatically manage this computation
  21057. * @returns the current mesh
  21058. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21059. */
  21060. AbstractMesh.prototype.updateFacetData = function () {
  21061. if (!this._facetDataEnabled) {
  21062. this._initFacetData();
  21063. }
  21064. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  21065. var indices = this.getIndices();
  21066. var normals = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  21067. var bInfo = this.getBoundingInfo();
  21068. if (this._facetDepthSort && !this._facetDepthSortEnabled) {
  21069. // init arrays, matrix and sort function on first call
  21070. this._facetDepthSortEnabled = true;
  21071. if (indices instanceof Uint16Array) {
  21072. this._depthSortedIndices = new Uint16Array(indices);
  21073. }
  21074. else if (indices instanceof Uint32Array) {
  21075. this._depthSortedIndices = new Uint32Array(indices);
  21076. }
  21077. else {
  21078. var needs32bits = false;
  21079. for (var i = 0; i < indices.length; i++) {
  21080. if (indices[i] > 65535) {
  21081. needs32bits = true;
  21082. break;
  21083. }
  21084. }
  21085. if (needs32bits) {
  21086. this._depthSortedIndices = new Uint32Array(indices);
  21087. }
  21088. else {
  21089. this._depthSortedIndices = new Uint16Array(indices);
  21090. }
  21091. }
  21092. this._facetDepthSortFunction = function (f1, f2) {
  21093. return (f2.sqDistance - f1.sqDistance);
  21094. };
  21095. if (!this._facetDepthSortFrom) {
  21096. var camera = this.getScene().activeCamera;
  21097. this._facetDepthSortFrom = (camera) ? camera.position : BABYLON.Vector3.Zero();
  21098. }
  21099. this._depthSortedFacets = [];
  21100. for (var f = 0; f < this._facetNb; f++) {
  21101. var depthSortedFacet = { ind: f * 3, sqDistance: 0.0 };
  21102. this._depthSortedFacets.push(depthSortedFacet);
  21103. }
  21104. this._invertedMatrix = BABYLON.Matrix.Identity();
  21105. this._facetDepthSortOrigin = BABYLON.Vector3.Zero();
  21106. }
  21107. this._bbSize.x = (bInfo.maximum.x - bInfo.minimum.x > BABYLON.Epsilon) ? bInfo.maximum.x - bInfo.minimum.x : BABYLON.Epsilon;
  21108. this._bbSize.y = (bInfo.maximum.y - bInfo.minimum.y > BABYLON.Epsilon) ? bInfo.maximum.y - bInfo.minimum.y : BABYLON.Epsilon;
  21109. this._bbSize.z = (bInfo.maximum.z - bInfo.minimum.z > BABYLON.Epsilon) ? bInfo.maximum.z - bInfo.minimum.z : BABYLON.Epsilon;
  21110. var bbSizeMax = (this._bbSize.x > this._bbSize.y) ? this._bbSize.x : this._bbSize.y;
  21111. bbSizeMax = (bbSizeMax > this._bbSize.z) ? bbSizeMax : this._bbSize.z;
  21112. this._subDiv.max = this._partitioningSubdivisions;
  21113. this._subDiv.X = Math.floor(this._subDiv.max * this._bbSize.x / bbSizeMax); // adjust the number of subdivisions per axis
  21114. this._subDiv.Y = Math.floor(this._subDiv.max * this._bbSize.y / bbSizeMax); // according to each bbox size per axis
  21115. this._subDiv.Z = Math.floor(this._subDiv.max * this._bbSize.z / bbSizeMax);
  21116. this._subDiv.X = this._subDiv.X < 1 ? 1 : this._subDiv.X; // at least one subdivision
  21117. this._subDiv.Y = this._subDiv.Y < 1 ? 1 : this._subDiv.Y;
  21118. this._subDiv.Z = this._subDiv.Z < 1 ? 1 : this._subDiv.Z;
  21119. // set the parameters for ComputeNormals()
  21120. this._facetParameters.facetNormals = this.getFacetLocalNormals();
  21121. this._facetParameters.facetPositions = this.getFacetLocalPositions();
  21122. this._facetParameters.facetPartitioning = this.getFacetLocalPartitioning();
  21123. this._facetParameters.bInfo = bInfo;
  21124. this._facetParameters.bbSize = this._bbSize;
  21125. this._facetParameters.subDiv = this._subDiv;
  21126. this._facetParameters.ratio = this.partitioningBBoxRatio;
  21127. this._facetParameters.depthSort = this._facetDepthSort;
  21128. if (this._facetDepthSort && this._facetDepthSortEnabled) {
  21129. this.computeWorldMatrix(true);
  21130. this._worldMatrix.invertToRef(this._invertedMatrix);
  21131. BABYLON.Vector3.TransformCoordinatesToRef(this._facetDepthSortFrom, this._invertedMatrix, this._facetDepthSortOrigin);
  21132. this._facetParameters.distanceTo = this._facetDepthSortOrigin;
  21133. }
  21134. this._facetParameters.depthSortedFacets = this._depthSortedFacets;
  21135. BABYLON.VertexData.ComputeNormals(positions, indices, normals, this._facetParameters);
  21136. if (this._facetDepthSort && this._facetDepthSortEnabled) {
  21137. this._depthSortedFacets.sort(this._facetDepthSortFunction);
  21138. var l = (this._depthSortedIndices.length / 3) | 0;
  21139. for (var f = 0; f < l; f++) {
  21140. var sind = this._depthSortedFacets[f].ind;
  21141. this._depthSortedIndices[f * 3] = indices[sind];
  21142. this._depthSortedIndices[f * 3 + 1] = indices[sind + 1];
  21143. this._depthSortedIndices[f * 3 + 2] = indices[sind + 2];
  21144. }
  21145. this.updateIndices(this._depthSortedIndices);
  21146. }
  21147. return this;
  21148. };
  21149. /**
  21150. * Returns the facetLocalNormals array.
  21151. * The normals are expressed in the mesh local spac
  21152. * @returns an array of Vector3
  21153. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21154. */
  21155. AbstractMesh.prototype.getFacetLocalNormals = function () {
  21156. if (!this._facetNormals) {
  21157. this.updateFacetData();
  21158. }
  21159. return this._facetNormals;
  21160. };
  21161. /**
  21162. * Returns the facetLocalPositions array.
  21163. * The facet positions are expressed in the mesh local space
  21164. * @returns an array of Vector3
  21165. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21166. */
  21167. AbstractMesh.prototype.getFacetLocalPositions = function () {
  21168. if (!this._facetPositions) {
  21169. this.updateFacetData();
  21170. }
  21171. return this._facetPositions;
  21172. };
  21173. /**
  21174. * Returns the facetLocalPartioning array
  21175. * @returns an array of array of numbers
  21176. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21177. */
  21178. AbstractMesh.prototype.getFacetLocalPartitioning = function () {
  21179. if (!this._facetPartitioning) {
  21180. this.updateFacetData();
  21181. }
  21182. return this._facetPartitioning;
  21183. };
  21184. /**
  21185. * Returns the i-th facet position in the world system.
  21186. * This method allocates a new Vector3 per call
  21187. * @param i defines the facet index
  21188. * @returns a new Vector3
  21189. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21190. */
  21191. AbstractMesh.prototype.getFacetPosition = function (i) {
  21192. var pos = BABYLON.Vector3.Zero();
  21193. this.getFacetPositionToRef(i, pos);
  21194. return pos;
  21195. };
  21196. /**
  21197. * Sets the reference Vector3 with the i-th facet position in the world system
  21198. * @param i defines the facet index
  21199. * @param ref defines the target vector
  21200. * @returns the current mesh
  21201. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21202. */
  21203. AbstractMesh.prototype.getFacetPositionToRef = function (i, ref) {
  21204. var localPos = (this.getFacetLocalPositions())[i];
  21205. var world = this.getWorldMatrix();
  21206. BABYLON.Vector3.TransformCoordinatesToRef(localPos, world, ref);
  21207. return this;
  21208. };
  21209. /**
  21210. * Returns the i-th facet normal in the world system.
  21211. * This method allocates a new Vector3 per call
  21212. * @param i defines the facet index
  21213. * @returns a new Vector3
  21214. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21215. */
  21216. AbstractMesh.prototype.getFacetNormal = function (i) {
  21217. var norm = BABYLON.Vector3.Zero();
  21218. this.getFacetNormalToRef(i, norm);
  21219. return norm;
  21220. };
  21221. /**
  21222. * Sets the reference Vector3 with the i-th facet normal in the world system
  21223. * @param i defines the facet index
  21224. * @param ref defines the target vector
  21225. * @returns the current mesh
  21226. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21227. */
  21228. AbstractMesh.prototype.getFacetNormalToRef = function (i, ref) {
  21229. var localNorm = (this.getFacetLocalNormals())[i];
  21230. BABYLON.Vector3.TransformNormalToRef(localNorm, this.getWorldMatrix(), ref);
  21231. return this;
  21232. };
  21233. /**
  21234. * Returns the facets (in an array) in the same partitioning block than the one the passed coordinates are located (expressed in the mesh local system)
  21235. * @param x defines x coordinate
  21236. * @param y defines y coordinate
  21237. * @param z defines z coordinate
  21238. * @returns the array of facet indexes
  21239. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21240. */
  21241. AbstractMesh.prototype.getFacetsAtLocalCoordinates = function (x, y, z) {
  21242. var bInfo = this.getBoundingInfo();
  21243. var ox = Math.floor((x - bInfo.minimum.x * this._partitioningBBoxRatio) * this._subDiv.X * this._partitioningBBoxRatio / this._bbSize.x);
  21244. var oy = Math.floor((y - bInfo.minimum.y * this._partitioningBBoxRatio) * this._subDiv.Y * this._partitioningBBoxRatio / this._bbSize.y);
  21245. var oz = Math.floor((z - bInfo.minimum.z * this._partitioningBBoxRatio) * this._subDiv.Z * this._partitioningBBoxRatio / this._bbSize.z);
  21246. if (ox < 0 || ox > this._subDiv.max || oy < 0 || oy > this._subDiv.max || oz < 0 || oz > this._subDiv.max) {
  21247. return null;
  21248. }
  21249. return this._facetPartitioning[ox + this._subDiv.max * oy + this._subDiv.max * this._subDiv.max * oz];
  21250. };
  21251. /**
  21252. * Returns the closest mesh facet index at (x,y,z) World coordinates, null if not found
  21253. * @param projected sets as the (x,y,z) world projection on the facet
  21254. * @param checkFace if true (default false), only the facet "facing" to (x,y,z) or only the ones "turning their backs", according to the parameter "facing" are returned
  21255. * @param facing if facing and checkFace are true, only the facet "facing" to (x, y, z) are returned : positive dot (x, y, z) * facet position. If facing si false and checkFace is true, only the facet "turning their backs" to (x, y, z) are returned : negative dot (x, y, z) * facet position
  21256. * @param x defines x coordinate
  21257. * @param y defines y coordinate
  21258. * @param z defines z coordinate
  21259. * @returns the face index if found (or null instead)
  21260. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21261. */
  21262. AbstractMesh.prototype.getClosestFacetAtCoordinates = function (x, y, z, projected, checkFace, facing) {
  21263. if (checkFace === void 0) { checkFace = false; }
  21264. if (facing === void 0) { facing = true; }
  21265. var world = this.getWorldMatrix();
  21266. var invMat = BABYLON.Tmp.Matrix[5];
  21267. world.invertToRef(invMat);
  21268. var invVect = BABYLON.Tmp.Vector3[8];
  21269. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(x, y, z, invMat, invVect); // transform (x,y,z) to coordinates in the mesh local space
  21270. var closest = this.getClosestFacetAtLocalCoordinates(invVect.x, invVect.y, invVect.z, projected, checkFace, facing);
  21271. if (projected) {
  21272. // tranform the local computed projected vector to world coordinates
  21273. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(projected.x, projected.y, projected.z, world, projected);
  21274. }
  21275. return closest;
  21276. };
  21277. /**
  21278. * Returns the closest mesh facet index at (x,y,z) local coordinates, null if not found
  21279. * @param projected sets as the (x,y,z) local projection on the facet
  21280. * @param checkFace if true (default false), only the facet "facing" to (x,y,z) or only the ones "turning their backs", according to the parameter "facing" are returned
  21281. * @param facing if facing and checkFace are true, only the facet "facing" to (x, y, z) are returned : positive dot (x, y, z) * facet position. If facing si false and checkFace is true, only the facet "turning their backs" to (x, y, z) are returned : negative dot (x, y, z) * facet position
  21282. * @param x defines x coordinate
  21283. * @param y defines y coordinate
  21284. * @param z defines z coordinate
  21285. * @returns the face index if found (or null instead)
  21286. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21287. */
  21288. AbstractMesh.prototype.getClosestFacetAtLocalCoordinates = function (x, y, z, projected, checkFace, facing) {
  21289. if (checkFace === void 0) { checkFace = false; }
  21290. if (facing === void 0) { facing = true; }
  21291. var closest = null;
  21292. var tmpx = 0.0;
  21293. var tmpy = 0.0;
  21294. var tmpz = 0.0;
  21295. var d = 0.0; // tmp dot facet normal * facet position
  21296. var t0 = 0.0;
  21297. var projx = 0.0;
  21298. var projy = 0.0;
  21299. var projz = 0.0;
  21300. // Get all the facets in the same partitioning block than (x, y, z)
  21301. var facetPositions = this.getFacetLocalPositions();
  21302. var facetNormals = this.getFacetLocalNormals();
  21303. var facetsInBlock = this.getFacetsAtLocalCoordinates(x, y, z);
  21304. if (!facetsInBlock) {
  21305. return null;
  21306. }
  21307. // Get the closest facet to (x, y, z)
  21308. var shortest = Number.MAX_VALUE; // init distance vars
  21309. var tmpDistance = shortest;
  21310. var fib; // current facet in the block
  21311. var norm; // current facet normal
  21312. var p0; // current facet barycenter position
  21313. // loop on all the facets in the current partitioning block
  21314. for (var idx = 0; idx < facetsInBlock.length; idx++) {
  21315. fib = facetsInBlock[idx];
  21316. norm = facetNormals[fib];
  21317. p0 = facetPositions[fib];
  21318. d = (x - p0.x) * norm.x + (y - p0.y) * norm.y + (z - p0.z) * norm.z;
  21319. if (!checkFace || (checkFace && facing && d >= 0.0) || (checkFace && !facing && d <= 0.0)) {
  21320. // compute (x,y,z) projection on the facet = (projx, projy, projz)
  21321. d = norm.x * p0.x + norm.y * p0.y + norm.z * p0.z;
  21322. t0 = -(norm.x * x + norm.y * y + norm.z * z - d) / (norm.x * norm.x + norm.y * norm.y + norm.z * norm.z);
  21323. projx = x + norm.x * t0;
  21324. projy = y + norm.y * t0;
  21325. projz = z + norm.z * t0;
  21326. tmpx = projx - x;
  21327. tmpy = projy - y;
  21328. tmpz = projz - z;
  21329. tmpDistance = tmpx * tmpx + tmpy * tmpy + tmpz * tmpz; // compute length between (x, y, z) and its projection on the facet
  21330. if (tmpDistance < shortest) { // just keep the closest facet to (x, y, z)
  21331. shortest = tmpDistance;
  21332. closest = fib;
  21333. if (projected) {
  21334. projected.x = projx;
  21335. projected.y = projy;
  21336. projected.z = projz;
  21337. }
  21338. }
  21339. }
  21340. }
  21341. return closest;
  21342. };
  21343. /**
  21344. * Returns the object "parameter" set with all the expected parameters for facetData computation by ComputeNormals()
  21345. * @returns the parameters
  21346. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21347. */
  21348. AbstractMesh.prototype.getFacetDataParameters = function () {
  21349. return this._facetParameters;
  21350. };
  21351. /**
  21352. * Disables the feature FacetData and frees the related memory
  21353. * @returns the current mesh
  21354. * @see http://doc.babylonjs.com/how_to/how_to_use_facetdata
  21355. */
  21356. AbstractMesh.prototype.disableFacetData = function () {
  21357. if (this._facetDataEnabled) {
  21358. this._facetDataEnabled = false;
  21359. this._facetPositions = new Array();
  21360. this._facetNormals = new Array();
  21361. this._facetPartitioning = new Array();
  21362. this._facetParameters = null;
  21363. this._depthSortedIndices = new Uint32Array(0);
  21364. }
  21365. return this;
  21366. };
  21367. /**
  21368. * Updates the AbstractMesh indices array
  21369. * @param indices defines the data source
  21370. * @returns the current mesh
  21371. */
  21372. AbstractMesh.prototype.updateIndices = function (indices) {
  21373. return this;
  21374. };
  21375. /**
  21376. * Creates new normals data for the mesh
  21377. * @param updatable defines if the normal vertex buffer must be flagged as updatable
  21378. * @returns the current mesh
  21379. */
  21380. AbstractMesh.prototype.createNormals = function (updatable) {
  21381. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  21382. var indices = this.getIndices();
  21383. var normals;
  21384. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  21385. normals = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  21386. }
  21387. else {
  21388. normals = [];
  21389. }
  21390. BABYLON.VertexData.ComputeNormals(positions, indices, normals, { useRightHandedSystem: this.getScene().useRightHandedSystem });
  21391. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, normals, updatable);
  21392. return this;
  21393. };
  21394. /**
  21395. * Align the mesh with a normal
  21396. * @param normal defines the normal to use
  21397. * @param upDirection can be used to redefined the up vector to use (will use the (0, 1, 0) by default)
  21398. * @returns the current mesh
  21399. */
  21400. AbstractMesh.prototype.alignWithNormal = function (normal, upDirection) {
  21401. if (!upDirection) {
  21402. upDirection = BABYLON.Axis.Y;
  21403. }
  21404. var axisX = BABYLON.Tmp.Vector3[0];
  21405. var axisZ = BABYLON.Tmp.Vector3[1];
  21406. BABYLON.Vector3.CrossToRef(upDirection, normal, axisZ);
  21407. BABYLON.Vector3.CrossToRef(normal, axisZ, axisX);
  21408. if (this.rotationQuaternion) {
  21409. BABYLON.Quaternion.RotationQuaternionFromAxisToRef(axisX, normal, axisZ, this.rotationQuaternion);
  21410. }
  21411. else {
  21412. BABYLON.Vector3.RotationFromAxisToRef(axisX, normal, axisZ, this.rotation);
  21413. }
  21414. return this;
  21415. };
  21416. /** @hidden */
  21417. AbstractMesh.prototype._checkOcclusionQuery = function () {
  21418. this._isOccluded = false;
  21419. };
  21420. /** No occlusion */
  21421. AbstractMesh.OCCLUSION_TYPE_NONE = 0;
  21422. /** Occlusion set to optimisitic */
  21423. AbstractMesh.OCCLUSION_TYPE_OPTIMISTIC = 1;
  21424. /** Occlusion set to strict */
  21425. AbstractMesh.OCCLUSION_TYPE_STRICT = 2;
  21426. /** Use an accurante occlusion algorithm */
  21427. AbstractMesh.OCCLUSION_ALGORITHM_TYPE_ACCURATE = 0;
  21428. /** Use a conservative occlusion algorithm */
  21429. AbstractMesh.OCCLUSION_ALGORITHM_TYPE_CONSERVATIVE = 1;
  21430. /** Default culling strategy with bounding box and bounding sphere and then frustum culling */
  21431. AbstractMesh.CULLINGSTRATEGY_STANDARD = 0;
  21432. /** Culling strategy with bounding sphere only and then frustum culling */
  21433. AbstractMesh.CULLINGSTRATEGY_BOUNDINGSPHERE_ONLY = 1;
  21434. return AbstractMesh;
  21435. }(BABYLON.TransformNode));
  21436. BABYLON.AbstractMesh = AbstractMesh;
  21437. })(BABYLON || (BABYLON = {}));
  21438. //# sourceMappingURL=babylon.abstractMesh.js.map
  21439. var BABYLON;
  21440. (function (BABYLON) {
  21441. /**
  21442. * Base class of all the lights in Babylon. It groups all the generic information about lights.
  21443. * Lights are used, as you would expect, to affect how meshes are seen, in terms of both illumination and colour.
  21444. * All meshes allow light to pass through them unless shadow generation is activated. The default number of lights allowed is four but this can be increased.
  21445. */
  21446. var Light = /** @class */ (function (_super) {
  21447. __extends(Light, _super);
  21448. /**
  21449. * Creates a Light object in the scene.
  21450. * Documentation : http://doc.babylonjs.com/tutorials/lights
  21451. * @param name The firendly name of the light
  21452. * @param scene The scene the light belongs too
  21453. */
  21454. function Light(name, scene) {
  21455. var _this = _super.call(this, name, scene) || this;
  21456. /**
  21457. * Diffuse gives the basic color to an object.
  21458. */
  21459. _this.diffuse = new BABYLON.Color3(1.0, 1.0, 1.0);
  21460. /**
  21461. * Specular produces a highlight color on an object.
  21462. * Note: This is note affecting PBR materials.
  21463. */
  21464. _this.specular = new BABYLON.Color3(1.0, 1.0, 1.0);
  21465. /**
  21466. * Defines the falloff type for this light. This lets overrriding how punctual light are
  21467. * falling off base on range or angle.
  21468. * This can be set to any values in Light.FALLOFF_x.
  21469. *
  21470. * Note: This is only usefull for PBR Materials at the moment. This could be extended if required to
  21471. * other types of materials.
  21472. */
  21473. _this.falloffType = Light.FALLOFF_DEFAULT;
  21474. /**
  21475. * Strength of the light.
  21476. * Note: By default it is define in the framework own unit.
  21477. * Note: In PBR materials the intensityMode can be use to chose what unit the intensity is defined in.
  21478. */
  21479. _this.intensity = 1.0;
  21480. _this._range = Number.MAX_VALUE;
  21481. _this._inverseSquaredRange = 0;
  21482. /**
  21483. * Cached photometric scale default to 1.0 as the automatic intensity mode defaults to 1.0 for every type
  21484. * of light.
  21485. */
  21486. _this._photometricScale = 1.0;
  21487. _this._intensityMode = Light.INTENSITYMODE_AUTOMATIC;
  21488. _this._radius = 0.00001;
  21489. /**
  21490. * Defines the rendering priority of the lights. It can help in case of fallback or number of lights
  21491. * exceeding the number allowed of the materials.
  21492. */
  21493. _this.renderPriority = 0;
  21494. _this._shadowEnabled = true;
  21495. _this._excludeWithLayerMask = 0;
  21496. _this._includeOnlyWithLayerMask = 0;
  21497. _this._lightmapMode = 0;
  21498. /**
  21499. * @hidden Internal use only.
  21500. */
  21501. _this._excludedMeshesIds = new Array();
  21502. /**
  21503. * @hidden Internal use only.
  21504. */
  21505. _this._includedOnlyMeshesIds = new Array();
  21506. _this.getScene().addLight(_this);
  21507. _this._uniformBuffer = new BABYLON.UniformBuffer(_this.getScene().getEngine());
  21508. _this._buildUniformLayout();
  21509. _this.includedOnlyMeshes = new Array();
  21510. _this.excludedMeshes = new Array();
  21511. _this._resyncMeshes();
  21512. return _this;
  21513. }
  21514. Object.defineProperty(Light.prototype, "range", {
  21515. /**
  21516. * Defines how far from the source the light is impacting in scene units.
  21517. * Note: Unused in PBR material as the distance light falloff is defined following the inverse squared falloff.
  21518. */
  21519. get: function () {
  21520. return this._range;
  21521. },
  21522. /**
  21523. * Defines how far from the source the light is impacting in scene units.
  21524. * Note: Unused in PBR material as the distance light falloff is defined following the inverse squared falloff.
  21525. */
  21526. set: function (value) {
  21527. this._range = value;
  21528. this._inverseSquaredRange = 1.0 / (this.range * this.range);
  21529. },
  21530. enumerable: true,
  21531. configurable: true
  21532. });
  21533. Object.defineProperty(Light.prototype, "intensityMode", {
  21534. /**
  21535. * Gets the photometric scale used to interpret the intensity.
  21536. * This is only relevant with PBR Materials where the light intensity can be defined in a physical way.
  21537. */
  21538. get: function () {
  21539. return this._intensityMode;
  21540. },
  21541. /**
  21542. * Sets the photometric scale used to interpret the intensity.
  21543. * This is only relevant with PBR Materials where the light intensity can be defined in a physical way.
  21544. */
  21545. set: function (value) {
  21546. this._intensityMode = value;
  21547. this._computePhotometricScale();
  21548. },
  21549. enumerable: true,
  21550. configurable: true
  21551. });
  21552. ;
  21553. ;
  21554. Object.defineProperty(Light.prototype, "radius", {
  21555. /**
  21556. * Gets the light radius used by PBR Materials to simulate soft area lights.
  21557. */
  21558. get: function () {
  21559. return this._radius;
  21560. },
  21561. /**
  21562. * sets the light radius used by PBR Materials to simulate soft area lights.
  21563. */
  21564. set: function (value) {
  21565. this._radius = value;
  21566. this._computePhotometricScale();
  21567. },
  21568. enumerable: true,
  21569. configurable: true
  21570. });
  21571. ;
  21572. ;
  21573. Object.defineProperty(Light.prototype, "shadowEnabled", {
  21574. /**
  21575. * Gets wether or not the shadows are enabled for this light. This can help turning off/on shadow without detaching
  21576. * the current shadow generator.
  21577. */
  21578. get: function () {
  21579. return this._shadowEnabled;
  21580. },
  21581. /**
  21582. * Sets wether or not the shadows are enabled for this light. This can help turning off/on shadow without detaching
  21583. * the current shadow generator.
  21584. */
  21585. set: function (value) {
  21586. if (this._shadowEnabled === value) {
  21587. return;
  21588. }
  21589. this._shadowEnabled = value;
  21590. this._markMeshesAsLightDirty();
  21591. },
  21592. enumerable: true,
  21593. configurable: true
  21594. });
  21595. Object.defineProperty(Light.prototype, "includedOnlyMeshes", {
  21596. /**
  21597. * Gets the only meshes impacted by this light.
  21598. */
  21599. get: function () {
  21600. return this._includedOnlyMeshes;
  21601. },
  21602. /**
  21603. * Sets the only meshes impacted by this light.
  21604. */
  21605. set: function (value) {
  21606. this._includedOnlyMeshes = value;
  21607. this._hookArrayForIncludedOnly(value);
  21608. },
  21609. enumerable: true,
  21610. configurable: true
  21611. });
  21612. Object.defineProperty(Light.prototype, "excludedMeshes", {
  21613. /**
  21614. * Gets the meshes not impacted by this light.
  21615. */
  21616. get: function () {
  21617. return this._excludedMeshes;
  21618. },
  21619. /**
  21620. * Sets the meshes not impacted by this light.
  21621. */
  21622. set: function (value) {
  21623. this._excludedMeshes = value;
  21624. this._hookArrayForExcluded(value);
  21625. },
  21626. enumerable: true,
  21627. configurable: true
  21628. });
  21629. Object.defineProperty(Light.prototype, "excludeWithLayerMask", {
  21630. /**
  21631. * Gets the layer id use to find what meshes are not impacted by the light.
  21632. * Inactive if 0
  21633. */
  21634. get: function () {
  21635. return this._excludeWithLayerMask;
  21636. },
  21637. /**
  21638. * Sets the layer id use to find what meshes are not impacted by the light.
  21639. * Inactive if 0
  21640. */
  21641. set: function (value) {
  21642. this._excludeWithLayerMask = value;
  21643. this._resyncMeshes();
  21644. },
  21645. enumerable: true,
  21646. configurable: true
  21647. });
  21648. Object.defineProperty(Light.prototype, "includeOnlyWithLayerMask", {
  21649. /**
  21650. * Gets the layer id use to find what meshes are impacted by the light.
  21651. * Inactive if 0
  21652. */
  21653. get: function () {
  21654. return this._includeOnlyWithLayerMask;
  21655. },
  21656. /**
  21657. * Sets the layer id use to find what meshes are impacted by the light.
  21658. * Inactive if 0
  21659. */
  21660. set: function (value) {
  21661. this._includeOnlyWithLayerMask = value;
  21662. this._resyncMeshes();
  21663. },
  21664. enumerable: true,
  21665. configurable: true
  21666. });
  21667. Object.defineProperty(Light.prototype, "lightmapMode", {
  21668. /**
  21669. * Gets the lightmap mode of this light (should be one of the constants defined by Light.LIGHTMAP_x)
  21670. */
  21671. get: function () {
  21672. return this._lightmapMode;
  21673. },
  21674. /**
  21675. * Sets the lightmap mode of this light (should be one of the constants defined by Light.LIGHTMAP_x)
  21676. */
  21677. set: function (value) {
  21678. if (this._lightmapMode === value) {
  21679. return;
  21680. }
  21681. this._lightmapMode = value;
  21682. this._markMeshesAsLightDirty();
  21683. },
  21684. enumerable: true,
  21685. configurable: true
  21686. });
  21687. /**
  21688. * Returns the string "Light".
  21689. * @returns the class name
  21690. */
  21691. Light.prototype.getClassName = function () {
  21692. return "Light";
  21693. };
  21694. /**
  21695. * Converts the light information to a readable string for debug purpose.
  21696. * @param fullDetails Supports for multiple levels of logging within scene loading
  21697. * @returns the human readable light info
  21698. */
  21699. Light.prototype.toString = function (fullDetails) {
  21700. var ret = "Name: " + this.name;
  21701. ret += ", type: " + (["Point", "Directional", "Spot", "Hemispheric"])[this.getTypeID()];
  21702. if (this.animations) {
  21703. for (var i = 0; i < this.animations.length; i++) {
  21704. ret += ", animation[0]: " + this.animations[i].toString(fullDetails);
  21705. }
  21706. }
  21707. if (fullDetails) {
  21708. }
  21709. return ret;
  21710. };
  21711. /**
  21712. * Set the enabled state of this node.
  21713. * @param value - the new enabled state
  21714. */
  21715. Light.prototype.setEnabled = function (value) {
  21716. _super.prototype.setEnabled.call(this, value);
  21717. this._resyncMeshes();
  21718. };
  21719. /**
  21720. * Returns the Light associated shadow generator if any.
  21721. * @return the associated shadow generator.
  21722. */
  21723. Light.prototype.getShadowGenerator = function () {
  21724. return this._shadowGenerator;
  21725. };
  21726. /**
  21727. * Returns a Vector3, the absolute light position in the World.
  21728. * @returns the world space position of the light
  21729. */
  21730. Light.prototype.getAbsolutePosition = function () {
  21731. return BABYLON.Vector3.Zero();
  21732. };
  21733. /**
  21734. * Specifies if the light will affect the passed mesh.
  21735. * @param mesh The mesh to test against the light
  21736. * @return true the mesh is affected otherwise, false.
  21737. */
  21738. Light.prototype.canAffectMesh = function (mesh) {
  21739. if (!mesh) {
  21740. return true;
  21741. }
  21742. if (this.includedOnlyMeshes && this.includedOnlyMeshes.length > 0 && this.includedOnlyMeshes.indexOf(mesh) === -1) {
  21743. return false;
  21744. }
  21745. if (this.excludedMeshes && this.excludedMeshes.length > 0 && this.excludedMeshes.indexOf(mesh) !== -1) {
  21746. return false;
  21747. }
  21748. if (this.includeOnlyWithLayerMask !== 0 && (this.includeOnlyWithLayerMask & mesh.layerMask) === 0) {
  21749. return false;
  21750. }
  21751. if (this.excludeWithLayerMask !== 0 && this.excludeWithLayerMask & mesh.layerMask) {
  21752. return false;
  21753. }
  21754. return true;
  21755. };
  21756. /**
  21757. * Computes and Returns the light World matrix.
  21758. * @returns the world matrix
  21759. */
  21760. Light.prototype.getWorldMatrix = function () {
  21761. this._currentRenderId = this.getScene().getRenderId();
  21762. this._childRenderId = this._currentRenderId;
  21763. var worldMatrix = this._getWorldMatrix();
  21764. if (this.parent && this.parent.getWorldMatrix) {
  21765. if (!this._parentedWorldMatrix) {
  21766. this._parentedWorldMatrix = BABYLON.Matrix.Identity();
  21767. }
  21768. worldMatrix.multiplyToRef(this.parent.getWorldMatrix(), this._parentedWorldMatrix);
  21769. this._markSyncedWithParent();
  21770. return this._parentedWorldMatrix;
  21771. }
  21772. return worldMatrix;
  21773. };
  21774. /**
  21775. * Sort function to order lights for rendering.
  21776. * @param a First Light object to compare to second.
  21777. * @param b Second Light object to compare first.
  21778. * @return -1 to reduce's a's index relative to be, 0 for no change, 1 to increase a's index relative to b.
  21779. */
  21780. Light.CompareLightsPriority = function (a, b) {
  21781. //shadow-casting lights have priority over non-shadow-casting lights
  21782. //the renderPrioirty is a secondary sort criterion
  21783. if (a.shadowEnabled !== b.shadowEnabled) {
  21784. return (b.shadowEnabled ? 1 : 0) - (a.shadowEnabled ? 1 : 0);
  21785. }
  21786. return b.renderPriority - a.renderPriority;
  21787. };
  21788. /**
  21789. * Releases resources associated with this node.
  21790. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  21791. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  21792. */
  21793. Light.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  21794. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  21795. if (this._shadowGenerator) {
  21796. this._shadowGenerator.dispose();
  21797. this._shadowGenerator = null;
  21798. }
  21799. // Animations
  21800. this.getScene().stopAnimation(this);
  21801. // Remove from meshes
  21802. for (var _i = 0, _a = this.getScene().meshes; _i < _a.length; _i++) {
  21803. var mesh = _a[_i];
  21804. mesh._removeLightSource(this);
  21805. }
  21806. this._uniformBuffer.dispose();
  21807. // Remove from scene
  21808. this.getScene().removeLight(this);
  21809. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  21810. };
  21811. /**
  21812. * Returns the light type ID (integer).
  21813. * @returns The light Type id as a constant defines in Light.LIGHTTYPEID_x
  21814. */
  21815. Light.prototype.getTypeID = function () {
  21816. return 0;
  21817. };
  21818. /**
  21819. * Returns the intensity scaled by the Photometric Scale according to the light type and intensity mode.
  21820. * @returns the scaled intensity in intensity mode unit
  21821. */
  21822. Light.prototype.getScaledIntensity = function () {
  21823. return this._photometricScale * this.intensity;
  21824. };
  21825. /**
  21826. * Returns a new Light object, named "name", from the current one.
  21827. * @param name The name of the cloned light
  21828. * @returns the new created light
  21829. */
  21830. Light.prototype.clone = function (name) {
  21831. var constructor = Light.GetConstructorFromName(this.getTypeID(), name, this.getScene());
  21832. if (!constructor) {
  21833. return null;
  21834. }
  21835. return BABYLON.SerializationHelper.Clone(constructor, this);
  21836. };
  21837. /**
  21838. * Serializes the current light into a Serialization object.
  21839. * @returns the serialized object.
  21840. */
  21841. Light.prototype.serialize = function () {
  21842. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  21843. // Type
  21844. serializationObject.type = this.getTypeID();
  21845. // Parent
  21846. if (this.parent) {
  21847. serializationObject.parentId = this.parent.id;
  21848. }
  21849. // Inclusion / exclusions
  21850. if (this.excludedMeshes.length > 0) {
  21851. serializationObject.excludedMeshesIds = [];
  21852. this.excludedMeshes.forEach(function (mesh) {
  21853. serializationObject.excludedMeshesIds.push(mesh.id);
  21854. });
  21855. }
  21856. if (this.includedOnlyMeshes.length > 0) {
  21857. serializationObject.includedOnlyMeshesIds = [];
  21858. this.includedOnlyMeshes.forEach(function (mesh) {
  21859. serializationObject.includedOnlyMeshesIds.push(mesh.id);
  21860. });
  21861. }
  21862. // Animations
  21863. BABYLON.Animation.AppendSerializedAnimations(this, serializationObject);
  21864. serializationObject.ranges = this.serializeAnimationRanges();
  21865. return serializationObject;
  21866. };
  21867. /**
  21868. * Creates a new typed light from the passed type (integer) : point light = 0, directional light = 1, spot light = 2, hemispheric light = 3.
  21869. * This new light is named "name" and added to the passed scene.
  21870. * @param type Type according to the types available in Light.LIGHTTYPEID_x
  21871. * @param name The friendly name of the light
  21872. * @param scene The scene the new light will belong to
  21873. * @returns the constructor function
  21874. */
  21875. Light.GetConstructorFromName = function (type, name, scene) {
  21876. var constructorFunc = BABYLON.Node.Construct("Light_Type_" + type, name, scene);
  21877. if (constructorFunc) {
  21878. return constructorFunc;
  21879. }
  21880. // Default to no light for none present once.
  21881. return null;
  21882. };
  21883. /**
  21884. * Parses the passed "parsedLight" and returns a new instanced Light from this parsing.
  21885. * @param parsedLight The JSON representation of the light
  21886. * @param scene The scene to create the parsed light in
  21887. * @returns the created light after parsing
  21888. */
  21889. Light.Parse = function (parsedLight, scene) {
  21890. var constructor = Light.GetConstructorFromName(parsedLight.type, parsedLight.name, scene);
  21891. if (!constructor) {
  21892. return null;
  21893. }
  21894. var light = BABYLON.SerializationHelper.Parse(constructor, parsedLight, scene);
  21895. // Inclusion / exclusions
  21896. if (parsedLight.excludedMeshesIds) {
  21897. light._excludedMeshesIds = parsedLight.excludedMeshesIds;
  21898. }
  21899. if (parsedLight.includedOnlyMeshesIds) {
  21900. light._includedOnlyMeshesIds = parsedLight.includedOnlyMeshesIds;
  21901. }
  21902. // Parent
  21903. if (parsedLight.parentId) {
  21904. light._waitingParentId = parsedLight.parentId;
  21905. }
  21906. // Animations
  21907. if (parsedLight.animations) {
  21908. for (var animationIndex = 0; animationIndex < parsedLight.animations.length; animationIndex++) {
  21909. var parsedAnimation = parsedLight.animations[animationIndex];
  21910. light.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  21911. }
  21912. BABYLON.Node.ParseAnimationRanges(light, parsedLight, scene);
  21913. }
  21914. if (parsedLight.autoAnimate) {
  21915. scene.beginAnimation(light, parsedLight.autoAnimateFrom, parsedLight.autoAnimateTo, parsedLight.autoAnimateLoop, parsedLight.autoAnimateSpeed || 1.0);
  21916. }
  21917. return light;
  21918. };
  21919. Light.prototype._hookArrayForExcluded = function (array) {
  21920. var _this = this;
  21921. var oldPush = array.push;
  21922. array.push = function () {
  21923. var items = [];
  21924. for (var _i = 0; _i < arguments.length; _i++) {
  21925. items[_i] = arguments[_i];
  21926. }
  21927. var result = oldPush.apply(array, items);
  21928. for (var _a = 0, items_1 = items; _a < items_1.length; _a++) {
  21929. var item = items_1[_a];
  21930. item._resyncLighSource(_this);
  21931. }
  21932. return result;
  21933. };
  21934. var oldSplice = array.splice;
  21935. array.splice = function (index, deleteCount) {
  21936. var deleted = oldSplice.apply(array, [index, deleteCount]);
  21937. for (var _i = 0, deleted_1 = deleted; _i < deleted_1.length; _i++) {
  21938. var item = deleted_1[_i];
  21939. item._resyncLighSource(_this);
  21940. }
  21941. return deleted;
  21942. };
  21943. for (var _i = 0, array_1 = array; _i < array_1.length; _i++) {
  21944. var item = array_1[_i];
  21945. item._resyncLighSource(this);
  21946. }
  21947. };
  21948. Light.prototype._hookArrayForIncludedOnly = function (array) {
  21949. var _this = this;
  21950. var oldPush = array.push;
  21951. array.push = function () {
  21952. var items = [];
  21953. for (var _i = 0; _i < arguments.length; _i++) {
  21954. items[_i] = arguments[_i];
  21955. }
  21956. var result = oldPush.apply(array, items);
  21957. _this._resyncMeshes();
  21958. return result;
  21959. };
  21960. var oldSplice = array.splice;
  21961. array.splice = function (index, deleteCount) {
  21962. var deleted = oldSplice.apply(array, [index, deleteCount]);
  21963. _this._resyncMeshes();
  21964. return deleted;
  21965. };
  21966. this._resyncMeshes();
  21967. };
  21968. Light.prototype._resyncMeshes = function () {
  21969. for (var _i = 0, _a = this.getScene().meshes; _i < _a.length; _i++) {
  21970. var mesh = _a[_i];
  21971. mesh._resyncLighSource(this);
  21972. }
  21973. };
  21974. /**
  21975. * Forces the meshes to update their light related information in their rendering used effects
  21976. * @hidden Internal Use Only
  21977. */
  21978. Light.prototype._markMeshesAsLightDirty = function () {
  21979. for (var _i = 0, _a = this.getScene().meshes; _i < _a.length; _i++) {
  21980. var mesh = _a[_i];
  21981. if (mesh._lightSources.indexOf(this) !== -1) {
  21982. mesh._markSubMeshesAsLightDirty();
  21983. }
  21984. }
  21985. };
  21986. /**
  21987. * Recomputes the cached photometric scale if needed.
  21988. */
  21989. Light.prototype._computePhotometricScale = function () {
  21990. this._photometricScale = this._getPhotometricScale();
  21991. this.getScene().resetCachedMaterial();
  21992. };
  21993. /**
  21994. * Returns the Photometric Scale according to the light type and intensity mode.
  21995. */
  21996. Light.prototype._getPhotometricScale = function () {
  21997. var photometricScale = 0.0;
  21998. var lightTypeID = this.getTypeID();
  21999. //get photometric mode
  22000. var photometricMode = this.intensityMode;
  22001. if (photometricMode === Light.INTENSITYMODE_AUTOMATIC) {
  22002. if (lightTypeID === Light.LIGHTTYPEID_DIRECTIONALLIGHT) {
  22003. photometricMode = Light.INTENSITYMODE_ILLUMINANCE;
  22004. }
  22005. else {
  22006. photometricMode = Light.INTENSITYMODE_LUMINOUSINTENSITY;
  22007. }
  22008. }
  22009. //compute photometric scale
  22010. switch (lightTypeID) {
  22011. case Light.LIGHTTYPEID_POINTLIGHT:
  22012. case Light.LIGHTTYPEID_SPOTLIGHT:
  22013. switch (photometricMode) {
  22014. case Light.INTENSITYMODE_LUMINOUSPOWER:
  22015. photometricScale = 1.0 / (4.0 * Math.PI);
  22016. break;
  22017. case Light.INTENSITYMODE_LUMINOUSINTENSITY:
  22018. photometricScale = 1.0;
  22019. break;
  22020. case Light.INTENSITYMODE_LUMINANCE:
  22021. photometricScale = this.radius * this.radius;
  22022. break;
  22023. }
  22024. break;
  22025. case Light.LIGHTTYPEID_DIRECTIONALLIGHT:
  22026. switch (photometricMode) {
  22027. case Light.INTENSITYMODE_ILLUMINANCE:
  22028. photometricScale = 1.0;
  22029. break;
  22030. case Light.INTENSITYMODE_LUMINANCE:
  22031. // When radius (and therefore solid angle) is non-zero a directional lights brightness can be specified via central (peak) luminance.
  22032. // For a directional light the 'radius' defines the angular radius (in radians) rather than world-space radius (e.g. in metres).
  22033. var apexAngleRadians = this.radius;
  22034. // Impose a minimum light angular size to avoid the light becoming an infinitely small angular light source (i.e. a dirac delta function).
  22035. apexAngleRadians = Math.max(apexAngleRadians, 0.001);
  22036. var solidAngle = 2.0 * Math.PI * (1.0 - Math.cos(apexAngleRadians));
  22037. photometricScale = solidAngle;
  22038. break;
  22039. }
  22040. break;
  22041. case Light.LIGHTTYPEID_HEMISPHERICLIGHT:
  22042. // No fall off in hemisperic light.
  22043. photometricScale = 1.0;
  22044. break;
  22045. }
  22046. return photometricScale;
  22047. };
  22048. /**
  22049. * Reorder the light in the scene according to their defined priority.
  22050. * @hidden Internal Use Only
  22051. */
  22052. Light.prototype._reorderLightsInScene = function () {
  22053. var scene = this.getScene();
  22054. if (this._renderPriority != 0) {
  22055. scene.requireLightSorting = true;
  22056. }
  22057. this.getScene().sortLightsByPriority();
  22058. };
  22059. /**
  22060. * Falloff Default: light is falling off following the material specification:
  22061. * standard material is using standard falloff whereas pbr material can request special falloff per materials.
  22062. */
  22063. Light.FALLOFF_DEFAULT = 0;
  22064. /**
  22065. * Falloff Physical: light is falling off following the inverse squared distance law.
  22066. */
  22067. Light.FALLOFF_PHYSICAL = 1;
  22068. /**
  22069. * Falloff gltf: light is falling off as described in the gltf moving to PBR document
  22070. * to enhance interoperability with other engines.
  22071. */
  22072. Light.FALLOFF_GLTF = 2;
  22073. /**
  22074. * Falloff Standard: light is falling off like in the standard material
  22075. * to enhance interoperability with other materials.
  22076. */
  22077. Light.FALLOFF_STANDARD = 3;
  22078. //lightmapMode Consts
  22079. /**
  22080. * If every light affecting the material is in this lightmapMode,
  22081. * material.lightmapTexture adds or multiplies
  22082. * (depends on material.useLightmapAsShadowmap)
  22083. * after every other light calculations.
  22084. */
  22085. Light.LIGHTMAP_DEFAULT = 0;
  22086. /**
  22087. * material.lightmapTexture as only diffuse lighting from this light
  22088. * adds only specular lighting from this light
  22089. * adds dynamic shadows
  22090. */
  22091. Light.LIGHTMAP_SPECULAR = 1;
  22092. /**
  22093. * material.lightmapTexture as only lighting
  22094. * no light calculation from this light
  22095. * only adds dynamic shadows from this light
  22096. */
  22097. Light.LIGHTMAP_SHADOWSONLY = 2;
  22098. // Intensity Mode Consts
  22099. /**
  22100. * Each light type uses the default quantity according to its type:
  22101. * point/spot lights use luminous intensity
  22102. * directional lights use illuminance
  22103. */
  22104. Light.INTENSITYMODE_AUTOMATIC = 0;
  22105. /**
  22106. * lumen (lm)
  22107. */
  22108. Light.INTENSITYMODE_LUMINOUSPOWER = 1;
  22109. /**
  22110. * candela (lm/sr)
  22111. */
  22112. Light.INTENSITYMODE_LUMINOUSINTENSITY = 2;
  22113. /**
  22114. * lux (lm/m^2)
  22115. */
  22116. Light.INTENSITYMODE_ILLUMINANCE = 3;
  22117. /**
  22118. * nit (cd/m^2)
  22119. */
  22120. Light.INTENSITYMODE_LUMINANCE = 4;
  22121. // Light types ids const.
  22122. /**
  22123. * Light type const id of the point light.
  22124. */
  22125. Light.LIGHTTYPEID_POINTLIGHT = 0;
  22126. /**
  22127. * Light type const id of the directional light.
  22128. */
  22129. Light.LIGHTTYPEID_DIRECTIONALLIGHT = 1;
  22130. /**
  22131. * Light type const id of the spot light.
  22132. */
  22133. Light.LIGHTTYPEID_SPOTLIGHT = 2;
  22134. /**
  22135. * Light type const id of the hemispheric light.
  22136. */
  22137. Light.LIGHTTYPEID_HEMISPHERICLIGHT = 3;
  22138. __decorate([
  22139. BABYLON.serializeAsColor3()
  22140. ], Light.prototype, "diffuse", void 0);
  22141. __decorate([
  22142. BABYLON.serializeAsColor3()
  22143. ], Light.prototype, "specular", void 0);
  22144. __decorate([
  22145. BABYLON.serialize()
  22146. ], Light.prototype, "falloffType", void 0);
  22147. __decorate([
  22148. BABYLON.serialize()
  22149. ], Light.prototype, "intensity", void 0);
  22150. __decorate([
  22151. BABYLON.serialize()
  22152. ], Light.prototype, "range", null);
  22153. __decorate([
  22154. BABYLON.serialize()
  22155. ], Light.prototype, "intensityMode", null);
  22156. __decorate([
  22157. BABYLON.serialize()
  22158. ], Light.prototype, "radius", null);
  22159. __decorate([
  22160. BABYLON.serialize()
  22161. ], Light.prototype, "_renderPriority", void 0);
  22162. __decorate([
  22163. BABYLON.expandToProperty("_reorderLightsInScene")
  22164. ], Light.prototype, "renderPriority", void 0);
  22165. __decorate([
  22166. BABYLON.serialize("shadowEnabled")
  22167. ], Light.prototype, "_shadowEnabled", void 0);
  22168. __decorate([
  22169. BABYLON.serialize("excludeWithLayerMask")
  22170. ], Light.prototype, "_excludeWithLayerMask", void 0);
  22171. __decorate([
  22172. BABYLON.serialize("includeOnlyWithLayerMask")
  22173. ], Light.prototype, "_includeOnlyWithLayerMask", void 0);
  22174. __decorate([
  22175. BABYLON.serialize("lightmapMode")
  22176. ], Light.prototype, "_lightmapMode", void 0);
  22177. return Light;
  22178. }(BABYLON.Node));
  22179. BABYLON.Light = Light;
  22180. })(BABYLON || (BABYLON = {}));
  22181. //# sourceMappingURL=babylon.light.js.map
  22182. var BABYLON;
  22183. (function (BABYLON) {
  22184. var Camera = /** @class */ (function (_super) {
  22185. __extends(Camera, _super);
  22186. function Camera(name, position, scene, setActiveOnSceneIfNoneActive) {
  22187. if (setActiveOnSceneIfNoneActive === void 0) { setActiveOnSceneIfNoneActive = true; }
  22188. var _this = _super.call(this, name, scene) || this;
  22189. /**
  22190. * The vector the camera should consider as up.
  22191. * (default is Vector3(0, 1, 0) aka Vector3.Up())
  22192. */
  22193. _this.upVector = BABYLON.Vector3.Up();
  22194. _this.orthoLeft = null;
  22195. _this.orthoRight = null;
  22196. _this.orthoBottom = null;
  22197. _this.orthoTop = null;
  22198. /**
  22199. * FOV is set in Radians. (default is 0.8)
  22200. */
  22201. _this.fov = 0.8;
  22202. _this.minZ = 1;
  22203. _this.maxZ = 10000.0;
  22204. _this.inertia = 0.9;
  22205. _this.mode = Camera.PERSPECTIVE_CAMERA;
  22206. _this.isIntermediate = false;
  22207. _this.viewport = new BABYLON.Viewport(0, 0, 1.0, 1.0);
  22208. /**
  22209. * Restricts the camera to viewing objects with the same layerMask.
  22210. * A camera with a layerMask of 1 will render mesh.layerMask & camera.layerMask!== 0
  22211. */
  22212. _this.layerMask = 0x0FFFFFFF;
  22213. /**
  22214. * fovMode sets the camera frustum bounds to the viewport bounds. (default is FOVMODE_VERTICAL_FIXED)
  22215. */
  22216. _this.fovMode = Camera.FOVMODE_VERTICAL_FIXED;
  22217. // Camera rig members
  22218. _this.cameraRigMode = Camera.RIG_MODE_NONE;
  22219. /** @hidden */
  22220. _this._rigCameras = new Array();
  22221. _this._webvrViewMatrix = BABYLON.Matrix.Identity();
  22222. /** @hidden */
  22223. _this._skipRendering = false;
  22224. _this.customRenderTargets = new Array();
  22225. // Observables
  22226. _this.onViewMatrixChangedObservable = new BABYLON.Observable();
  22227. _this.onProjectionMatrixChangedObservable = new BABYLON.Observable();
  22228. _this.onAfterCheckInputsObservable = new BABYLON.Observable();
  22229. _this.onRestoreStateObservable = new BABYLON.Observable();
  22230. // Cache
  22231. _this._computedViewMatrix = BABYLON.Matrix.Identity();
  22232. _this._projectionMatrix = new BABYLON.Matrix();
  22233. _this._doNotComputeProjectionMatrix = false;
  22234. _this._worldMatrix = BABYLON.Matrix.Identity();
  22235. _this._postProcesses = new Array();
  22236. _this._transformMatrix = BABYLON.Matrix.Zero();
  22237. _this._activeMeshes = new BABYLON.SmartArray(256);
  22238. _this._globalPosition = BABYLON.Vector3.Zero();
  22239. _this._refreshFrustumPlanes = true;
  22240. _this.getScene().addCamera(_this);
  22241. if (setActiveOnSceneIfNoneActive && !_this.getScene().activeCamera) {
  22242. _this.getScene().activeCamera = _this;
  22243. }
  22244. _this.position = position;
  22245. return _this;
  22246. }
  22247. Object.defineProperty(Camera, "PERSPECTIVE_CAMERA", {
  22248. get: function () {
  22249. return Camera._PERSPECTIVE_CAMERA;
  22250. },
  22251. enumerable: true,
  22252. configurable: true
  22253. });
  22254. Object.defineProperty(Camera, "ORTHOGRAPHIC_CAMERA", {
  22255. get: function () {
  22256. return Camera._ORTHOGRAPHIC_CAMERA;
  22257. },
  22258. enumerable: true,
  22259. configurable: true
  22260. });
  22261. Object.defineProperty(Camera, "FOVMODE_VERTICAL_FIXED", {
  22262. /**
  22263. * This is the default FOV mode for perspective cameras.
  22264. * This setting aligns the upper and lower bounds of the viewport to the upper and lower bounds of the camera frustum.
  22265. *
  22266. */
  22267. get: function () {
  22268. return Camera._FOVMODE_VERTICAL_FIXED;
  22269. },
  22270. enumerable: true,
  22271. configurable: true
  22272. });
  22273. Object.defineProperty(Camera, "FOVMODE_HORIZONTAL_FIXED", {
  22274. /**
  22275. * This setting aligns the left and right bounds of the viewport to the left and right bounds of the camera frustum.
  22276. *
  22277. */
  22278. get: function () {
  22279. return Camera._FOVMODE_HORIZONTAL_FIXED;
  22280. },
  22281. enumerable: true,
  22282. configurable: true
  22283. });
  22284. Object.defineProperty(Camera, "RIG_MODE_NONE", {
  22285. get: function () {
  22286. return Camera._RIG_MODE_NONE;
  22287. },
  22288. enumerable: true,
  22289. configurable: true
  22290. });
  22291. Object.defineProperty(Camera, "RIG_MODE_STEREOSCOPIC_ANAGLYPH", {
  22292. get: function () {
  22293. return Camera._RIG_MODE_STEREOSCOPIC_ANAGLYPH;
  22294. },
  22295. enumerable: true,
  22296. configurable: true
  22297. });
  22298. Object.defineProperty(Camera, "RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL", {
  22299. get: function () {
  22300. return Camera._RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL;
  22301. },
  22302. enumerable: true,
  22303. configurable: true
  22304. });
  22305. Object.defineProperty(Camera, "RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED", {
  22306. get: function () {
  22307. return Camera._RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED;
  22308. },
  22309. enumerable: true,
  22310. configurable: true
  22311. });
  22312. Object.defineProperty(Camera, "RIG_MODE_STEREOSCOPIC_OVERUNDER", {
  22313. get: function () {
  22314. return Camera._RIG_MODE_STEREOSCOPIC_OVERUNDER;
  22315. },
  22316. enumerable: true,
  22317. configurable: true
  22318. });
  22319. Object.defineProperty(Camera, "RIG_MODE_VR", {
  22320. get: function () {
  22321. return Camera._RIG_MODE_VR;
  22322. },
  22323. enumerable: true,
  22324. configurable: true
  22325. });
  22326. Object.defineProperty(Camera, "RIG_MODE_WEBVR", {
  22327. get: function () {
  22328. return Camera._RIG_MODE_WEBVR;
  22329. },
  22330. enumerable: true,
  22331. configurable: true
  22332. });
  22333. /**
  22334. * Store current camera state (fov, position, etc..)
  22335. */
  22336. Camera.prototype.storeState = function () {
  22337. this._stateStored = true;
  22338. this._storedFov = this.fov;
  22339. return this;
  22340. };
  22341. /**
  22342. * Restores the camera state values if it has been stored. You must call storeState() first
  22343. */
  22344. Camera.prototype._restoreStateValues = function () {
  22345. if (!this._stateStored) {
  22346. return false;
  22347. }
  22348. this.fov = this._storedFov;
  22349. return true;
  22350. };
  22351. /**
  22352. * Restored camera state. You must call storeState() first
  22353. */
  22354. Camera.prototype.restoreState = function () {
  22355. if (this._restoreStateValues()) {
  22356. this.onRestoreStateObservable.notifyObservers(this);
  22357. return true;
  22358. }
  22359. return false;
  22360. };
  22361. Camera.prototype.getClassName = function () {
  22362. return "Camera";
  22363. };
  22364. /**
  22365. * @param {boolean} fullDetails - support for multiple levels of logging within scene loading
  22366. */
  22367. Camera.prototype.toString = function (fullDetails) {
  22368. var ret = "Name: " + this.name;
  22369. ret += ", type: " + this.getClassName();
  22370. if (this.animations) {
  22371. for (var i = 0; i < this.animations.length; i++) {
  22372. ret += ", animation[0]: " + this.animations[i].toString(fullDetails);
  22373. }
  22374. }
  22375. if (fullDetails) {
  22376. }
  22377. return ret;
  22378. };
  22379. Object.defineProperty(Camera.prototype, "globalPosition", {
  22380. get: function () {
  22381. return this._globalPosition;
  22382. },
  22383. enumerable: true,
  22384. configurable: true
  22385. });
  22386. Camera.prototype.getActiveMeshes = function () {
  22387. return this._activeMeshes;
  22388. };
  22389. Camera.prototype.isActiveMesh = function (mesh) {
  22390. return (this._activeMeshes.indexOf(mesh) !== -1);
  22391. };
  22392. /**
  22393. * Is this camera ready to be used/rendered
  22394. * @param completeCheck defines if a complete check (including post processes) has to be done (false by default)
  22395. * @return true if the camera is ready
  22396. */
  22397. Camera.prototype.isReady = function (completeCheck) {
  22398. if (completeCheck === void 0) { completeCheck = false; }
  22399. if (completeCheck) {
  22400. for (var _i = 0, _a = this._postProcesses; _i < _a.length; _i++) {
  22401. var pp = _a[_i];
  22402. if (pp && !pp.isReady()) {
  22403. return false;
  22404. }
  22405. }
  22406. }
  22407. return _super.prototype.isReady.call(this, completeCheck);
  22408. };
  22409. //Cache
  22410. /** @hidden */
  22411. Camera.prototype._initCache = function () {
  22412. _super.prototype._initCache.call(this);
  22413. this._cache.position = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  22414. this._cache.upVector = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  22415. this._cache.mode = undefined;
  22416. this._cache.minZ = undefined;
  22417. this._cache.maxZ = undefined;
  22418. this._cache.fov = undefined;
  22419. this._cache.fovMode = undefined;
  22420. this._cache.aspectRatio = undefined;
  22421. this._cache.orthoLeft = undefined;
  22422. this._cache.orthoRight = undefined;
  22423. this._cache.orthoBottom = undefined;
  22424. this._cache.orthoTop = undefined;
  22425. this._cache.renderWidth = undefined;
  22426. this._cache.renderHeight = undefined;
  22427. };
  22428. /** @hidden */
  22429. Camera.prototype._updateCache = function (ignoreParentClass) {
  22430. if (!ignoreParentClass) {
  22431. _super.prototype._updateCache.call(this);
  22432. }
  22433. this._cache.position.copyFrom(this.position);
  22434. this._cache.upVector.copyFrom(this.upVector);
  22435. };
  22436. // Synchronized
  22437. /** @hidden */
  22438. Camera.prototype._isSynchronized = function () {
  22439. return this._isSynchronizedViewMatrix() && this._isSynchronizedProjectionMatrix();
  22440. };
  22441. /** @hidden */
  22442. Camera.prototype._isSynchronizedViewMatrix = function () {
  22443. if (!_super.prototype._isSynchronized.call(this))
  22444. return false;
  22445. return this._cache.position.equals(this.position)
  22446. && this._cache.upVector.equals(this.upVector)
  22447. && this.isSynchronizedWithParent();
  22448. };
  22449. /** @hidden */
  22450. Camera.prototype._isSynchronizedProjectionMatrix = function () {
  22451. var check = this._cache.mode === this.mode
  22452. && this._cache.minZ === this.minZ
  22453. && this._cache.maxZ === this.maxZ;
  22454. if (!check) {
  22455. return false;
  22456. }
  22457. var engine = this.getEngine();
  22458. if (this.mode === Camera.PERSPECTIVE_CAMERA) {
  22459. check = this._cache.fov === this.fov
  22460. && this._cache.fovMode === this.fovMode
  22461. && this._cache.aspectRatio === engine.getAspectRatio(this);
  22462. }
  22463. else {
  22464. check = this._cache.orthoLeft === this.orthoLeft
  22465. && this._cache.orthoRight === this.orthoRight
  22466. && this._cache.orthoBottom === this.orthoBottom
  22467. && this._cache.orthoTop === this.orthoTop
  22468. && this._cache.renderWidth === engine.getRenderWidth()
  22469. && this._cache.renderHeight === engine.getRenderHeight();
  22470. }
  22471. return check;
  22472. };
  22473. // Controls
  22474. Camera.prototype.attachControl = function (element, noPreventDefault) {
  22475. };
  22476. Camera.prototype.detachControl = function (element) {
  22477. };
  22478. Camera.prototype.update = function () {
  22479. this._checkInputs();
  22480. if (this.cameraRigMode !== Camera.RIG_MODE_NONE) {
  22481. this._updateRigCameras();
  22482. }
  22483. };
  22484. /** @hidden */
  22485. Camera.prototype._checkInputs = function () {
  22486. this.onAfterCheckInputsObservable.notifyObservers(this);
  22487. };
  22488. Object.defineProperty(Camera.prototype, "rigCameras", {
  22489. get: function () {
  22490. return this._rigCameras;
  22491. },
  22492. enumerable: true,
  22493. configurable: true
  22494. });
  22495. Object.defineProperty(Camera.prototype, "rigPostProcess", {
  22496. get: function () {
  22497. return this._rigPostProcess;
  22498. },
  22499. enumerable: true,
  22500. configurable: true
  22501. });
  22502. /**
  22503. * Internal, gets the first post proces.
  22504. * @returns the first post process to be run on this camera.
  22505. */
  22506. Camera.prototype._getFirstPostProcess = function () {
  22507. for (var ppIndex = 0; ppIndex < this._postProcesses.length; ppIndex++) {
  22508. if (this._postProcesses[ppIndex] !== null) {
  22509. return this._postProcesses[ppIndex];
  22510. }
  22511. }
  22512. return null;
  22513. };
  22514. Camera.prototype._cascadePostProcessesToRigCams = function () {
  22515. // invalidate framebuffer
  22516. var firstPostProcess = this._getFirstPostProcess();
  22517. if (firstPostProcess) {
  22518. firstPostProcess.markTextureDirty();
  22519. }
  22520. // glue the rigPostProcess to the end of the user postprocesses & assign to each sub-camera
  22521. for (var i = 0, len = this._rigCameras.length; i < len; i++) {
  22522. var cam = this._rigCameras[i];
  22523. var rigPostProcess = cam._rigPostProcess;
  22524. // for VR rig, there does not have to be a post process
  22525. if (rigPostProcess) {
  22526. var isPass = rigPostProcess instanceof BABYLON.PassPostProcess;
  22527. if (isPass) {
  22528. // any rig which has a PassPostProcess for rig[0], cannot be isIntermediate when there are also user postProcesses
  22529. cam.isIntermediate = this._postProcesses.length === 0;
  22530. }
  22531. cam._postProcesses = this._postProcesses.slice(0).concat(rigPostProcess);
  22532. rigPostProcess.markTextureDirty();
  22533. }
  22534. else {
  22535. cam._postProcesses = this._postProcesses.slice(0);
  22536. }
  22537. }
  22538. };
  22539. Camera.prototype.attachPostProcess = function (postProcess, insertAt) {
  22540. if (insertAt === void 0) { insertAt = null; }
  22541. if (!postProcess.isReusable() && this._postProcesses.indexOf(postProcess) > -1) {
  22542. BABYLON.Tools.Error("You're trying to reuse a post process not defined as reusable.");
  22543. return 0;
  22544. }
  22545. if (insertAt == null || insertAt < 0) {
  22546. this._postProcesses.push(postProcess);
  22547. }
  22548. else if (this._postProcesses[insertAt] === null) {
  22549. this._postProcesses[insertAt] = postProcess;
  22550. }
  22551. else {
  22552. this._postProcesses.splice(insertAt, 0, postProcess);
  22553. }
  22554. this._cascadePostProcessesToRigCams(); // also ensures framebuffer invalidated
  22555. return this._postProcesses.indexOf(postProcess);
  22556. };
  22557. Camera.prototype.detachPostProcess = function (postProcess) {
  22558. var idx = this._postProcesses.indexOf(postProcess);
  22559. if (idx !== -1) {
  22560. this._postProcesses[idx] = null;
  22561. }
  22562. this._cascadePostProcessesToRigCams(); // also ensures framebuffer invalidated
  22563. };
  22564. Camera.prototype.getWorldMatrix = function () {
  22565. if (this._isSynchronizedViewMatrix()) {
  22566. return this._worldMatrix;
  22567. }
  22568. // Getting the the view matrix will also compute the world matrix.
  22569. this.getViewMatrix();
  22570. return this._worldMatrix;
  22571. };
  22572. /** @hidden */
  22573. Camera.prototype._getViewMatrix = function () {
  22574. return BABYLON.Matrix.Identity();
  22575. };
  22576. Camera.prototype.getViewMatrix = function (force) {
  22577. if (!force && this._isSynchronizedViewMatrix()) {
  22578. return this._computedViewMatrix;
  22579. }
  22580. this.updateCache();
  22581. this._computedViewMatrix = this._getViewMatrix();
  22582. this._currentRenderId = this.getScene().getRenderId();
  22583. this._childRenderId = this._currentRenderId;
  22584. this._refreshFrustumPlanes = true;
  22585. if (this._cameraRigParams && this._cameraRigParams.vrPreViewMatrix) {
  22586. this._computedViewMatrix.multiplyToRef(this._cameraRigParams.vrPreViewMatrix, this._computedViewMatrix);
  22587. }
  22588. this.onViewMatrixChangedObservable.notifyObservers(this);
  22589. this._computedViewMatrix.invertToRef(this._worldMatrix);
  22590. return this._computedViewMatrix;
  22591. };
  22592. Camera.prototype.freezeProjectionMatrix = function (projection) {
  22593. this._doNotComputeProjectionMatrix = true;
  22594. if (projection !== undefined) {
  22595. this._projectionMatrix = projection;
  22596. }
  22597. };
  22598. ;
  22599. Camera.prototype.unfreezeProjectionMatrix = function () {
  22600. this._doNotComputeProjectionMatrix = false;
  22601. };
  22602. ;
  22603. Camera.prototype.getProjectionMatrix = function (force) {
  22604. if (this._doNotComputeProjectionMatrix || (!force && this._isSynchronizedProjectionMatrix())) {
  22605. return this._projectionMatrix;
  22606. }
  22607. // Cache
  22608. this._cache.mode = this.mode;
  22609. this._cache.minZ = this.minZ;
  22610. this._cache.maxZ = this.maxZ;
  22611. // Matrix
  22612. this._refreshFrustumPlanes = true;
  22613. var engine = this.getEngine();
  22614. var scene = this.getScene();
  22615. if (this.mode === Camera.PERSPECTIVE_CAMERA) {
  22616. this._cache.fov = this.fov;
  22617. this._cache.fovMode = this.fovMode;
  22618. this._cache.aspectRatio = engine.getAspectRatio(this);
  22619. if (this.minZ <= 0) {
  22620. this.minZ = 0.1;
  22621. }
  22622. if (scene.useRightHandedSystem) {
  22623. BABYLON.Matrix.PerspectiveFovRHToRef(this.fov, engine.getAspectRatio(this), this.minZ, this.maxZ, this._projectionMatrix, this.fovMode === Camera.FOVMODE_VERTICAL_FIXED);
  22624. }
  22625. else {
  22626. BABYLON.Matrix.PerspectiveFovLHToRef(this.fov, engine.getAspectRatio(this), this.minZ, this.maxZ, this._projectionMatrix, this.fovMode === Camera.FOVMODE_VERTICAL_FIXED);
  22627. }
  22628. }
  22629. else {
  22630. var halfWidth = engine.getRenderWidth() / 2.0;
  22631. var halfHeight = engine.getRenderHeight() / 2.0;
  22632. if (scene.useRightHandedSystem) {
  22633. BABYLON.Matrix.OrthoOffCenterRHToRef(this.orthoLeft || -halfWidth, this.orthoRight || halfWidth, this.orthoBottom || -halfHeight, this.orthoTop || halfHeight, this.minZ, this.maxZ, this._projectionMatrix);
  22634. }
  22635. else {
  22636. BABYLON.Matrix.OrthoOffCenterLHToRef(this.orthoLeft || -halfWidth, this.orthoRight || halfWidth, this.orthoBottom || -halfHeight, this.orthoTop || halfHeight, this.minZ, this.maxZ, this._projectionMatrix);
  22637. }
  22638. this._cache.orthoLeft = this.orthoLeft;
  22639. this._cache.orthoRight = this.orthoRight;
  22640. this._cache.orthoBottom = this.orthoBottom;
  22641. this._cache.orthoTop = this.orthoTop;
  22642. this._cache.renderWidth = engine.getRenderWidth();
  22643. this._cache.renderHeight = engine.getRenderHeight();
  22644. }
  22645. this.onProjectionMatrixChangedObservable.notifyObservers(this);
  22646. return this._projectionMatrix;
  22647. };
  22648. /**
  22649. * Gets the transformation matrix (ie. the multiplication of view by projection matrices)
  22650. * @returns a Matrix
  22651. */
  22652. Camera.prototype.getTransformationMatrix = function () {
  22653. this._computedViewMatrix.multiplyToRef(this._projectionMatrix, this._transformMatrix);
  22654. return this._transformMatrix;
  22655. };
  22656. Camera.prototype.updateFrustumPlanes = function () {
  22657. if (!this._refreshFrustumPlanes) {
  22658. return;
  22659. }
  22660. this.getTransformationMatrix();
  22661. if (!this._frustumPlanes) {
  22662. this._frustumPlanes = BABYLON.Frustum.GetPlanes(this._transformMatrix);
  22663. }
  22664. else {
  22665. BABYLON.Frustum.GetPlanesToRef(this._transformMatrix, this._frustumPlanes);
  22666. }
  22667. this._refreshFrustumPlanes = false;
  22668. };
  22669. Camera.prototype.isInFrustum = function (target) {
  22670. this.updateFrustumPlanes();
  22671. return target.isInFrustum(this._frustumPlanes);
  22672. };
  22673. Camera.prototype.isCompletelyInFrustum = function (target) {
  22674. this.updateFrustumPlanes();
  22675. return target.isCompletelyInFrustum(this._frustumPlanes);
  22676. };
  22677. Camera.prototype.getForwardRay = function (length, transform, origin) {
  22678. if (length === void 0) { length = 100; }
  22679. if (!transform) {
  22680. transform = this.getWorldMatrix();
  22681. }
  22682. if (!origin) {
  22683. origin = this.position;
  22684. }
  22685. var forward = new BABYLON.Vector3(0, 0, 1);
  22686. var forwardWorld = BABYLON.Vector3.TransformNormal(forward, transform);
  22687. var direction = BABYLON.Vector3.Normalize(forwardWorld);
  22688. return new BABYLON.Ray(origin, direction, length);
  22689. };
  22690. /**
  22691. * Releases resources associated with this node.
  22692. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  22693. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  22694. */
  22695. Camera.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  22696. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  22697. // Observables
  22698. this.onViewMatrixChangedObservable.clear();
  22699. this.onProjectionMatrixChangedObservable.clear();
  22700. this.onAfterCheckInputsObservable.clear();
  22701. this.onRestoreStateObservable.clear();
  22702. // Inputs
  22703. if (this.inputs) {
  22704. this.inputs.clear();
  22705. }
  22706. // Animations
  22707. this.getScene().stopAnimation(this);
  22708. // Remove from scene
  22709. this.getScene().removeCamera(this);
  22710. while (this._rigCameras.length > 0) {
  22711. var camera = this._rigCameras.pop();
  22712. if (camera) {
  22713. camera.dispose();
  22714. }
  22715. }
  22716. // Postprocesses
  22717. if (this._rigPostProcess) {
  22718. this._rigPostProcess.dispose(this);
  22719. this._rigPostProcess = null;
  22720. this._postProcesses = [];
  22721. }
  22722. else if (this.cameraRigMode !== Camera.RIG_MODE_NONE) {
  22723. this._rigPostProcess = null;
  22724. this._postProcesses = [];
  22725. }
  22726. else {
  22727. var i = this._postProcesses.length;
  22728. while (--i >= 0) {
  22729. var postProcess = this._postProcesses[i];
  22730. if (postProcess) {
  22731. postProcess.dispose(this);
  22732. }
  22733. }
  22734. }
  22735. // Render targets
  22736. var i = this.customRenderTargets.length;
  22737. while (--i >= 0) {
  22738. this.customRenderTargets[i].dispose();
  22739. }
  22740. this.customRenderTargets = [];
  22741. // Active Meshes
  22742. this._activeMeshes.dispose();
  22743. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  22744. };
  22745. Object.defineProperty(Camera.prototype, "leftCamera", {
  22746. // ---- Camera rigs section ----
  22747. get: function () {
  22748. if (this._rigCameras.length < 1) {
  22749. return null;
  22750. }
  22751. return this._rigCameras[0];
  22752. },
  22753. enumerable: true,
  22754. configurable: true
  22755. });
  22756. Object.defineProperty(Camera.prototype, "rightCamera", {
  22757. get: function () {
  22758. if (this._rigCameras.length < 2) {
  22759. return null;
  22760. }
  22761. return this._rigCameras[1];
  22762. },
  22763. enumerable: true,
  22764. configurable: true
  22765. });
  22766. Camera.prototype.getLeftTarget = function () {
  22767. if (this._rigCameras.length < 1) {
  22768. return null;
  22769. }
  22770. return this._rigCameras[0].getTarget();
  22771. };
  22772. Camera.prototype.getRightTarget = function () {
  22773. if (this._rigCameras.length < 2) {
  22774. return null;
  22775. }
  22776. return this._rigCameras[1].getTarget();
  22777. };
  22778. Camera.prototype.setCameraRigMode = function (mode, rigParams) {
  22779. if (this.cameraRigMode === mode) {
  22780. return;
  22781. }
  22782. while (this._rigCameras.length > 0) {
  22783. var camera = this._rigCameras.pop();
  22784. if (camera) {
  22785. camera.dispose();
  22786. }
  22787. }
  22788. this.cameraRigMode = mode;
  22789. this._cameraRigParams = {};
  22790. //we have to implement stereo camera calcultating left and right viewpoints from interaxialDistance and target,
  22791. //not from a given angle as it is now, but until that complete code rewriting provisional stereoHalfAngle value is introduced
  22792. this._cameraRigParams.interaxialDistance = rigParams.interaxialDistance || 0.0637;
  22793. this._cameraRigParams.stereoHalfAngle = BABYLON.Tools.ToRadians(this._cameraRigParams.interaxialDistance / 0.0637);
  22794. // create the rig cameras, unless none
  22795. if (this.cameraRigMode !== Camera.RIG_MODE_NONE) {
  22796. var leftCamera = this.createRigCamera(this.name + "_L", 0);
  22797. var rightCamera = this.createRigCamera(this.name + "_R", 1);
  22798. if (leftCamera && rightCamera) {
  22799. this._rigCameras.push(leftCamera);
  22800. this._rigCameras.push(rightCamera);
  22801. }
  22802. }
  22803. switch (this.cameraRigMode) {
  22804. case Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH:
  22805. this._rigCameras[0]._rigPostProcess = new BABYLON.PassPostProcess(this.name + "_passthru", 1.0, this._rigCameras[0]);
  22806. this._rigCameras[1]._rigPostProcess = new BABYLON.AnaglyphPostProcess(this.name + "_anaglyph", 1.0, this._rigCameras);
  22807. break;
  22808. case Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL:
  22809. case Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED:
  22810. case Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER:
  22811. var isStereoscopicHoriz = this.cameraRigMode === Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL || this.cameraRigMode === Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED;
  22812. this._rigCameras[0]._rigPostProcess = new BABYLON.PassPostProcess(this.name + "_passthru", 1.0, this._rigCameras[0]);
  22813. this._rigCameras[1]._rigPostProcess = new BABYLON.StereoscopicInterlacePostProcess(this.name + "_stereoInterlace", this._rigCameras, isStereoscopicHoriz);
  22814. break;
  22815. case Camera.RIG_MODE_VR:
  22816. var metrics = rigParams.vrCameraMetrics || BABYLON.VRCameraMetrics.GetDefault();
  22817. this._rigCameras[0]._cameraRigParams.vrMetrics = metrics;
  22818. this._rigCameras[0].viewport = new BABYLON.Viewport(0, 0, 0.5, 1.0);
  22819. this._rigCameras[0]._cameraRigParams.vrWorkMatrix = new BABYLON.Matrix();
  22820. this._rigCameras[0]._cameraRigParams.vrHMatrix = metrics.leftHMatrix;
  22821. this._rigCameras[0]._cameraRigParams.vrPreViewMatrix = metrics.leftPreViewMatrix;
  22822. this._rigCameras[0].getProjectionMatrix = this._rigCameras[0]._getVRProjectionMatrix;
  22823. this._rigCameras[1]._cameraRigParams.vrMetrics = metrics;
  22824. this._rigCameras[1].viewport = new BABYLON.Viewport(0.5, 0, 0.5, 1.0);
  22825. this._rigCameras[1]._cameraRigParams.vrWorkMatrix = new BABYLON.Matrix();
  22826. this._rigCameras[1]._cameraRigParams.vrHMatrix = metrics.rightHMatrix;
  22827. this._rigCameras[1]._cameraRigParams.vrPreViewMatrix = metrics.rightPreViewMatrix;
  22828. this._rigCameras[1].getProjectionMatrix = this._rigCameras[1]._getVRProjectionMatrix;
  22829. if (metrics.compensateDistortion) {
  22830. this._rigCameras[0]._rigPostProcess = new BABYLON.VRDistortionCorrectionPostProcess("VR_Distort_Compensation_Left", this._rigCameras[0], false, metrics);
  22831. this._rigCameras[1]._rigPostProcess = new BABYLON.VRDistortionCorrectionPostProcess("VR_Distort_Compensation_Right", this._rigCameras[1], true, metrics);
  22832. }
  22833. break;
  22834. case Camera.RIG_MODE_WEBVR:
  22835. if (rigParams.vrDisplay) {
  22836. var leftEye = rigParams.vrDisplay.getEyeParameters('left');
  22837. var rightEye = rigParams.vrDisplay.getEyeParameters('right');
  22838. //Left eye
  22839. this._rigCameras[0].viewport = new BABYLON.Viewport(0, 0, 0.5, 1.0);
  22840. this._rigCameras[0].setCameraRigParameter("left", true);
  22841. //leaving this for future reference
  22842. this._rigCameras[0].setCameraRigParameter("specs", rigParams.specs);
  22843. this._rigCameras[0].setCameraRigParameter("eyeParameters", leftEye);
  22844. this._rigCameras[0].setCameraRigParameter("frameData", rigParams.frameData);
  22845. this._rigCameras[0].setCameraRigParameter("parentCamera", rigParams.parentCamera);
  22846. this._rigCameras[0]._cameraRigParams.vrWorkMatrix = new BABYLON.Matrix();
  22847. this._rigCameras[0].getProjectionMatrix = this._getWebVRProjectionMatrix;
  22848. this._rigCameras[0].parent = this;
  22849. this._rigCameras[0]._getViewMatrix = this._getWebVRViewMatrix;
  22850. //Right eye
  22851. this._rigCameras[1].viewport = new BABYLON.Viewport(0.5, 0, 0.5, 1.0);
  22852. this._rigCameras[1].setCameraRigParameter('eyeParameters', rightEye);
  22853. this._rigCameras[1].setCameraRigParameter("specs", rigParams.specs);
  22854. this._rigCameras[1].setCameraRigParameter("frameData", rigParams.frameData);
  22855. this._rigCameras[1].setCameraRigParameter("parentCamera", rigParams.parentCamera);
  22856. this._rigCameras[1]._cameraRigParams.vrWorkMatrix = new BABYLON.Matrix();
  22857. this._rigCameras[1].getProjectionMatrix = this._getWebVRProjectionMatrix;
  22858. this._rigCameras[1].parent = this;
  22859. this._rigCameras[1]._getViewMatrix = this._getWebVRViewMatrix;
  22860. if (Camera.UseAlternateWebVRRendering) {
  22861. this._rigCameras[1]._skipRendering = true;
  22862. this._rigCameras[0]._alternateCamera = this._rigCameras[1];
  22863. }
  22864. }
  22865. break;
  22866. }
  22867. this._cascadePostProcessesToRigCams();
  22868. this.update();
  22869. };
  22870. Camera.prototype._getVRProjectionMatrix = function () {
  22871. BABYLON.Matrix.PerspectiveFovLHToRef(this._cameraRigParams.vrMetrics.aspectRatioFov, this._cameraRigParams.vrMetrics.aspectRatio, this.minZ, this.maxZ, this._cameraRigParams.vrWorkMatrix);
  22872. this._cameraRigParams.vrWorkMatrix.multiplyToRef(this._cameraRigParams.vrHMatrix, this._projectionMatrix);
  22873. return this._projectionMatrix;
  22874. };
  22875. Camera.prototype._updateCameraRotationMatrix = function () {
  22876. //Here for WebVR
  22877. };
  22878. Camera.prototype._updateWebVRCameraRotationMatrix = function () {
  22879. //Here for WebVR
  22880. };
  22881. /**
  22882. * This function MUST be overwritten by the different WebVR cameras available.
  22883. * The context in which it is running is the RIG camera. So 'this' is the TargetCamera, left or right.
  22884. */
  22885. Camera.prototype._getWebVRProjectionMatrix = function () {
  22886. return BABYLON.Matrix.Identity();
  22887. };
  22888. /**
  22889. * This function MUST be overwritten by the different WebVR cameras available.
  22890. * The context in which it is running is the RIG camera. So 'this' is the TargetCamera, left or right.
  22891. */
  22892. Camera.prototype._getWebVRViewMatrix = function () {
  22893. return BABYLON.Matrix.Identity();
  22894. };
  22895. Camera.prototype.setCameraRigParameter = function (name, value) {
  22896. if (!this._cameraRigParams) {
  22897. this._cameraRigParams = {};
  22898. }
  22899. this._cameraRigParams[name] = value;
  22900. //provisionnally:
  22901. if (name === "interaxialDistance") {
  22902. this._cameraRigParams.stereoHalfAngle = BABYLON.Tools.ToRadians(value / 0.0637);
  22903. }
  22904. };
  22905. /**
  22906. * needs to be overridden by children so sub has required properties to be copied
  22907. */
  22908. Camera.prototype.createRigCamera = function (name, cameraIndex) {
  22909. return null;
  22910. };
  22911. /**
  22912. * May need to be overridden by children
  22913. * @hidden
  22914. */
  22915. Camera.prototype._updateRigCameras = function () {
  22916. for (var i = 0; i < this._rigCameras.length; i++) {
  22917. this._rigCameras[i].minZ = this.minZ;
  22918. this._rigCameras[i].maxZ = this.maxZ;
  22919. this._rigCameras[i].fov = this.fov;
  22920. }
  22921. // only update viewport when ANAGLYPH
  22922. if (this.cameraRigMode === Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH) {
  22923. this._rigCameras[0].viewport = this._rigCameras[1].viewport = this.viewport;
  22924. }
  22925. };
  22926. /** @hidden */
  22927. Camera.prototype._setupInputs = function () {
  22928. };
  22929. Camera.prototype.serialize = function () {
  22930. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  22931. // Type
  22932. serializationObject.type = this.getClassName();
  22933. // Parent
  22934. if (this.parent) {
  22935. serializationObject.parentId = this.parent.id;
  22936. }
  22937. if (this.inputs) {
  22938. this.inputs.serialize(serializationObject);
  22939. }
  22940. // Animations
  22941. BABYLON.Animation.AppendSerializedAnimations(this, serializationObject);
  22942. serializationObject.ranges = this.serializeAnimationRanges();
  22943. return serializationObject;
  22944. };
  22945. Camera.prototype.clone = function (name) {
  22946. return BABYLON.SerializationHelper.Clone(Camera.GetConstructorFromName(this.getClassName(), name, this.getScene(), this.interaxialDistance, this.isStereoscopicSideBySide), this);
  22947. };
  22948. Camera.prototype.getDirection = function (localAxis) {
  22949. var result = BABYLON.Vector3.Zero();
  22950. this.getDirectionToRef(localAxis, result);
  22951. return result;
  22952. };
  22953. Camera.prototype.getDirectionToRef = function (localAxis, result) {
  22954. BABYLON.Vector3.TransformNormalToRef(localAxis, this.getWorldMatrix(), result);
  22955. };
  22956. Camera.GetConstructorFromName = function (type, name, scene, interaxial_distance, isStereoscopicSideBySide) {
  22957. if (interaxial_distance === void 0) { interaxial_distance = 0; }
  22958. if (isStereoscopicSideBySide === void 0) { isStereoscopicSideBySide = true; }
  22959. var constructorFunc = BABYLON.Node.Construct(type, name, scene, {
  22960. interaxial_distance: interaxial_distance,
  22961. isStereoscopicSideBySide: isStereoscopicSideBySide
  22962. });
  22963. if (constructorFunc) {
  22964. return constructorFunc;
  22965. }
  22966. // Default to universal camera
  22967. return function () { return new BABYLON.UniversalCamera(name, BABYLON.Vector3.Zero(), scene); };
  22968. };
  22969. Camera.prototype.computeWorldMatrix = function () {
  22970. return this.getWorldMatrix();
  22971. };
  22972. Camera.Parse = function (parsedCamera, scene) {
  22973. var type = parsedCamera.type;
  22974. var construct = Camera.GetConstructorFromName(type, parsedCamera.name, scene, parsedCamera.interaxial_distance, parsedCamera.isStereoscopicSideBySide);
  22975. var camera = BABYLON.SerializationHelper.Parse(construct, parsedCamera, scene);
  22976. // Parent
  22977. if (parsedCamera.parentId) {
  22978. camera._waitingParentId = parsedCamera.parentId;
  22979. }
  22980. //If camera has an input manager, let it parse inputs settings
  22981. if (camera.inputs) {
  22982. camera.inputs.parse(parsedCamera);
  22983. camera._setupInputs();
  22984. }
  22985. if (camera.setPosition) { // need to force position
  22986. camera.position.copyFromFloats(0, 0, 0);
  22987. camera.setPosition(BABYLON.Vector3.FromArray(parsedCamera.position));
  22988. }
  22989. // Target
  22990. if (parsedCamera.target) {
  22991. if (camera.setTarget) {
  22992. camera.setTarget(BABYLON.Vector3.FromArray(parsedCamera.target));
  22993. }
  22994. }
  22995. // Apply 3d rig, when found
  22996. if (parsedCamera.cameraRigMode) {
  22997. var rigParams = (parsedCamera.interaxial_distance) ? { interaxialDistance: parsedCamera.interaxial_distance } : {};
  22998. camera.setCameraRigMode(parsedCamera.cameraRigMode, rigParams);
  22999. }
  23000. // Animations
  23001. if (parsedCamera.animations) {
  23002. for (var animationIndex = 0; animationIndex < parsedCamera.animations.length; animationIndex++) {
  23003. var parsedAnimation = parsedCamera.animations[animationIndex];
  23004. camera.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  23005. }
  23006. BABYLON.Node.ParseAnimationRanges(camera, parsedCamera, scene);
  23007. }
  23008. if (parsedCamera.autoAnimate) {
  23009. scene.beginAnimation(camera, parsedCamera.autoAnimateFrom, parsedCamera.autoAnimateTo, parsedCamera.autoAnimateLoop, parsedCamera.autoAnimateSpeed || 1.0);
  23010. }
  23011. return camera;
  23012. };
  23013. // Statics
  23014. Camera._PERSPECTIVE_CAMERA = 0;
  23015. Camera._ORTHOGRAPHIC_CAMERA = 1;
  23016. Camera._FOVMODE_VERTICAL_FIXED = 0;
  23017. Camera._FOVMODE_HORIZONTAL_FIXED = 1;
  23018. Camera._RIG_MODE_NONE = 0;
  23019. Camera._RIG_MODE_STEREOSCOPIC_ANAGLYPH = 10;
  23020. Camera._RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL = 11;
  23021. Camera._RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED = 12;
  23022. Camera._RIG_MODE_STEREOSCOPIC_OVERUNDER = 13;
  23023. Camera._RIG_MODE_VR = 20;
  23024. Camera._RIG_MODE_WEBVR = 21;
  23025. Camera.ForceAttachControlToAlwaysPreventDefault = false;
  23026. Camera.UseAlternateWebVRRendering = false;
  23027. __decorate([
  23028. BABYLON.serializeAsVector3()
  23029. ], Camera.prototype, "position", void 0);
  23030. __decorate([
  23031. BABYLON.serializeAsVector3()
  23032. ], Camera.prototype, "upVector", void 0);
  23033. __decorate([
  23034. BABYLON.serialize()
  23035. ], Camera.prototype, "orthoLeft", void 0);
  23036. __decorate([
  23037. BABYLON.serialize()
  23038. ], Camera.prototype, "orthoRight", void 0);
  23039. __decorate([
  23040. BABYLON.serialize()
  23041. ], Camera.prototype, "orthoBottom", void 0);
  23042. __decorate([
  23043. BABYLON.serialize()
  23044. ], Camera.prototype, "orthoTop", void 0);
  23045. __decorate([
  23046. BABYLON.serialize()
  23047. ], Camera.prototype, "fov", void 0);
  23048. __decorate([
  23049. BABYLON.serialize()
  23050. ], Camera.prototype, "minZ", void 0);
  23051. __decorate([
  23052. BABYLON.serialize()
  23053. ], Camera.prototype, "maxZ", void 0);
  23054. __decorate([
  23055. BABYLON.serialize()
  23056. ], Camera.prototype, "inertia", void 0);
  23057. __decorate([
  23058. BABYLON.serialize()
  23059. ], Camera.prototype, "mode", void 0);
  23060. __decorate([
  23061. BABYLON.serialize()
  23062. ], Camera.prototype, "layerMask", void 0);
  23063. __decorate([
  23064. BABYLON.serialize()
  23065. ], Camera.prototype, "fovMode", void 0);
  23066. __decorate([
  23067. BABYLON.serialize()
  23068. ], Camera.prototype, "cameraRigMode", void 0);
  23069. __decorate([
  23070. BABYLON.serialize()
  23071. ], Camera.prototype, "interaxialDistance", void 0);
  23072. __decorate([
  23073. BABYLON.serialize()
  23074. ], Camera.prototype, "isStereoscopicSideBySide", void 0);
  23075. return Camera;
  23076. }(BABYLON.Node));
  23077. BABYLON.Camera = Camera;
  23078. })(BABYLON || (BABYLON = {}));
  23079. //# sourceMappingURL=babylon.camera.js.map
  23080. var BABYLON;
  23081. (function (BABYLON) {
  23082. var RenderingManager = /** @class */ (function () {
  23083. function RenderingManager(scene) {
  23084. /**
  23085. * @hidden
  23086. */
  23087. this._useSceneAutoClearSetup = false;
  23088. this._renderingGroups = new Array();
  23089. this._autoClearDepthStencil = {};
  23090. this._customOpaqueSortCompareFn = {};
  23091. this._customAlphaTestSortCompareFn = {};
  23092. this._customTransparentSortCompareFn = {};
  23093. this._renderingGroupInfo = new BABYLON.RenderingGroupInfo();
  23094. this._scene = scene;
  23095. for (var i = RenderingManager.MIN_RENDERINGGROUPS; i < RenderingManager.MAX_RENDERINGGROUPS; i++) {
  23096. this._autoClearDepthStencil[i] = { autoClear: true, depth: true, stencil: true };
  23097. }
  23098. }
  23099. RenderingManager.prototype._clearDepthStencilBuffer = function (depth, stencil) {
  23100. if (depth === void 0) { depth = true; }
  23101. if (stencil === void 0) { stencil = true; }
  23102. if (this._depthStencilBufferAlreadyCleaned) {
  23103. return;
  23104. }
  23105. this._scene.getEngine().clear(null, false, depth, stencil);
  23106. this._depthStencilBufferAlreadyCleaned = true;
  23107. };
  23108. RenderingManager.prototype.render = function (customRenderFunction, activeMeshes, renderParticles, renderSprites) {
  23109. // Update the observable context (not null as it only goes away on dispose)
  23110. var info = this._renderingGroupInfo;
  23111. info.scene = this._scene;
  23112. info.camera = this._scene.activeCamera;
  23113. // Dispatch sprites
  23114. if (this._scene.spriteManagers && renderSprites) {
  23115. for (var index = 0; index < this._scene.spriteManagers.length; index++) {
  23116. var manager = this._scene.spriteManagers[index];
  23117. this.dispatchSprites(manager);
  23118. }
  23119. }
  23120. // Render
  23121. for (var index = RenderingManager.MIN_RENDERINGGROUPS; index < RenderingManager.MAX_RENDERINGGROUPS; index++) {
  23122. this._depthStencilBufferAlreadyCleaned = index === RenderingManager.MIN_RENDERINGGROUPS;
  23123. var renderingGroup = this._renderingGroups[index];
  23124. if (!renderingGroup)
  23125. continue;
  23126. var renderingGroupMask = Math.pow(2, index);
  23127. info.renderingGroupId = index;
  23128. // Before Observable
  23129. this._scene.onBeforeRenderingGroupObservable.notifyObservers(info, renderingGroupMask);
  23130. // Clear depth/stencil if needed
  23131. if (RenderingManager.AUTOCLEAR) {
  23132. var autoClear = this._useSceneAutoClearSetup ?
  23133. this._scene.getAutoClearDepthStencilSetup(index) :
  23134. this._autoClearDepthStencil[index];
  23135. if (autoClear && autoClear.autoClear) {
  23136. this._clearDepthStencilBuffer(autoClear.depth, autoClear.stencil);
  23137. }
  23138. }
  23139. // Render
  23140. for (var _i = 0, _a = this._scene._beforeRenderingGroupDrawStage; _i < _a.length; _i++) {
  23141. var step = _a[_i];
  23142. step.action(index);
  23143. }
  23144. renderingGroup.render(customRenderFunction, renderSprites, renderParticles, activeMeshes);
  23145. for (var _b = 0, _c = this._scene._afterRenderingGroupDrawStage; _b < _c.length; _b++) {
  23146. var step = _c[_b];
  23147. step.action(index);
  23148. }
  23149. // After Observable
  23150. this._scene.onAfterRenderingGroupObservable.notifyObservers(info, renderingGroupMask);
  23151. }
  23152. };
  23153. RenderingManager.prototype.reset = function () {
  23154. for (var index = RenderingManager.MIN_RENDERINGGROUPS; index < RenderingManager.MAX_RENDERINGGROUPS; index++) {
  23155. var renderingGroup = this._renderingGroups[index];
  23156. if (renderingGroup) {
  23157. renderingGroup.prepare();
  23158. }
  23159. }
  23160. };
  23161. RenderingManager.prototype.dispose = function () {
  23162. this.freeRenderingGroups();
  23163. this._renderingGroups.length = 0;
  23164. this._renderingGroupInfo = null;
  23165. };
  23166. /**
  23167. * Clear the info related to rendering groups preventing retention points during dispose.
  23168. */
  23169. RenderingManager.prototype.freeRenderingGroups = function () {
  23170. for (var index = RenderingManager.MIN_RENDERINGGROUPS; index < RenderingManager.MAX_RENDERINGGROUPS; index++) {
  23171. var renderingGroup = this._renderingGroups[index];
  23172. if (renderingGroup) {
  23173. renderingGroup.dispose();
  23174. }
  23175. }
  23176. };
  23177. RenderingManager.prototype._prepareRenderingGroup = function (renderingGroupId) {
  23178. if (this._renderingGroups[renderingGroupId] === undefined) {
  23179. this._renderingGroups[renderingGroupId] = new BABYLON.RenderingGroup(renderingGroupId, this._scene, this._customOpaqueSortCompareFn[renderingGroupId], this._customAlphaTestSortCompareFn[renderingGroupId], this._customTransparentSortCompareFn[renderingGroupId]);
  23180. }
  23181. };
  23182. RenderingManager.prototype.dispatchSprites = function (spriteManager) {
  23183. var renderingGroupId = spriteManager.renderingGroupId || 0;
  23184. this._prepareRenderingGroup(renderingGroupId);
  23185. this._renderingGroups[renderingGroupId].dispatchSprites(spriteManager);
  23186. };
  23187. RenderingManager.prototype.dispatchParticles = function (particleSystem) {
  23188. var renderingGroupId = particleSystem.renderingGroupId || 0;
  23189. this._prepareRenderingGroup(renderingGroupId);
  23190. this._renderingGroups[renderingGroupId].dispatchParticles(particleSystem);
  23191. };
  23192. /**
  23193. * @param subMesh The submesh to dispatch
  23194. * @param [mesh] Optional reference to the submeshes's mesh. Provide if you have an exiting reference to improve performance.
  23195. * @param [material] Optional reference to the submeshes's material. Provide if you have an exiting reference to improve performance.
  23196. */
  23197. RenderingManager.prototype.dispatch = function (subMesh, mesh, material) {
  23198. if (mesh === undefined) {
  23199. mesh = subMesh.getMesh();
  23200. }
  23201. var renderingGroupId = mesh.renderingGroupId || 0;
  23202. this._prepareRenderingGroup(renderingGroupId);
  23203. this._renderingGroups[renderingGroupId].dispatch(subMesh, mesh, material);
  23204. };
  23205. /**
  23206. * Overrides the default sort function applied in the renderging group to prepare the meshes.
  23207. * This allowed control for front to back rendering or reversly depending of the special needs.
  23208. *
  23209. * @param renderingGroupId The rendering group id corresponding to its index
  23210. * @param opaqueSortCompareFn The opaque queue comparison function use to sort.
  23211. * @param alphaTestSortCompareFn The alpha test queue comparison function use to sort.
  23212. * @param transparentSortCompareFn The transparent queue comparison function use to sort.
  23213. */
  23214. RenderingManager.prototype.setRenderingOrder = function (renderingGroupId, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn) {
  23215. if (opaqueSortCompareFn === void 0) { opaqueSortCompareFn = null; }
  23216. if (alphaTestSortCompareFn === void 0) { alphaTestSortCompareFn = null; }
  23217. if (transparentSortCompareFn === void 0) { transparentSortCompareFn = null; }
  23218. this._customOpaqueSortCompareFn[renderingGroupId] = opaqueSortCompareFn;
  23219. this._customAlphaTestSortCompareFn[renderingGroupId] = alphaTestSortCompareFn;
  23220. this._customTransparentSortCompareFn[renderingGroupId] = transparentSortCompareFn;
  23221. if (this._renderingGroups[renderingGroupId]) {
  23222. var group = this._renderingGroups[renderingGroupId];
  23223. group.opaqueSortCompareFn = this._customOpaqueSortCompareFn[renderingGroupId];
  23224. group.alphaTestSortCompareFn = this._customAlphaTestSortCompareFn[renderingGroupId];
  23225. group.transparentSortCompareFn = this._customTransparentSortCompareFn[renderingGroupId];
  23226. }
  23227. };
  23228. /**
  23229. * Specifies whether or not the stencil and depth buffer are cleared between two rendering groups.
  23230. *
  23231. * @param renderingGroupId The rendering group id corresponding to its index
  23232. * @param autoClearDepthStencil Automatically clears depth and stencil between groups if true.
  23233. * @param depth Automatically clears depth between groups if true and autoClear is true.
  23234. * @param stencil Automatically clears stencil between groups if true and autoClear is true.
  23235. */
  23236. RenderingManager.prototype.setRenderingAutoClearDepthStencil = function (renderingGroupId, autoClearDepthStencil, depth, stencil) {
  23237. if (depth === void 0) { depth = true; }
  23238. if (stencil === void 0) { stencil = true; }
  23239. this._autoClearDepthStencil[renderingGroupId] = {
  23240. autoClear: autoClearDepthStencil,
  23241. depth: depth,
  23242. stencil: stencil
  23243. };
  23244. };
  23245. /**
  23246. * Gets the current auto clear configuration for one rendering group of the rendering
  23247. * manager.
  23248. * @param index the rendering group index to get the information for
  23249. * @returns The auto clear setup for the requested rendering group
  23250. */
  23251. RenderingManager.prototype.getAutoClearDepthStencilSetup = function (index) {
  23252. return this._autoClearDepthStencil[index];
  23253. };
  23254. /**
  23255. * The max id used for rendering groups (not included)
  23256. */
  23257. RenderingManager.MAX_RENDERINGGROUPS = 4;
  23258. /**
  23259. * The min id used for rendering groups (included)
  23260. */
  23261. RenderingManager.MIN_RENDERINGGROUPS = 0;
  23262. /**
  23263. * Used to globally prevent autoclearing scenes.
  23264. */
  23265. RenderingManager.AUTOCLEAR = true;
  23266. return RenderingManager;
  23267. }());
  23268. BABYLON.RenderingManager = RenderingManager;
  23269. })(BABYLON || (BABYLON = {}));
  23270. //# sourceMappingURL=babylon.renderingManager.js.map
  23271. var BABYLON;
  23272. (function (BABYLON) {
  23273. var RenderingGroup = /** @class */ (function () {
  23274. /**
  23275. * Creates a new rendering group.
  23276. * @param index The rendering group index
  23277. * @param opaqueSortCompareFn The opaque sort comparison function. If null no order is applied
  23278. * @param alphaTestSortCompareFn The alpha test sort comparison function. If null no order is applied
  23279. * @param transparentSortCompareFn The transparent sort comparison function. If null back to front + alpha index sort is applied
  23280. */
  23281. function RenderingGroup(index, scene, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn) {
  23282. if (opaqueSortCompareFn === void 0) { opaqueSortCompareFn = null; }
  23283. if (alphaTestSortCompareFn === void 0) { alphaTestSortCompareFn = null; }
  23284. if (transparentSortCompareFn === void 0) { transparentSortCompareFn = null; }
  23285. this.index = index;
  23286. this._opaqueSubMeshes = new BABYLON.SmartArray(256);
  23287. this._transparentSubMeshes = new BABYLON.SmartArray(256);
  23288. this._alphaTestSubMeshes = new BABYLON.SmartArray(256);
  23289. this._depthOnlySubMeshes = new BABYLON.SmartArray(256);
  23290. this._particleSystems = new BABYLON.SmartArray(256);
  23291. this._spriteManagers = new BABYLON.SmartArray(256);
  23292. this._edgesRenderers = new BABYLON.SmartArray(16);
  23293. this._scene = scene;
  23294. this.opaqueSortCompareFn = opaqueSortCompareFn;
  23295. this.alphaTestSortCompareFn = alphaTestSortCompareFn;
  23296. this.transparentSortCompareFn = transparentSortCompareFn;
  23297. }
  23298. Object.defineProperty(RenderingGroup.prototype, "opaqueSortCompareFn", {
  23299. /**
  23300. * Set the opaque sort comparison function.
  23301. * If null the sub meshes will be render in the order they were created
  23302. */
  23303. set: function (value) {
  23304. this._opaqueSortCompareFn = value;
  23305. if (value) {
  23306. this._renderOpaque = this.renderOpaqueSorted;
  23307. }
  23308. else {
  23309. this._renderOpaque = RenderingGroup.renderUnsorted;
  23310. }
  23311. },
  23312. enumerable: true,
  23313. configurable: true
  23314. });
  23315. Object.defineProperty(RenderingGroup.prototype, "alphaTestSortCompareFn", {
  23316. /**
  23317. * Set the alpha test sort comparison function.
  23318. * If null the sub meshes will be render in the order they were created
  23319. */
  23320. set: function (value) {
  23321. this._alphaTestSortCompareFn = value;
  23322. if (value) {
  23323. this._renderAlphaTest = this.renderAlphaTestSorted;
  23324. }
  23325. else {
  23326. this._renderAlphaTest = RenderingGroup.renderUnsorted;
  23327. }
  23328. },
  23329. enumerable: true,
  23330. configurable: true
  23331. });
  23332. Object.defineProperty(RenderingGroup.prototype, "transparentSortCompareFn", {
  23333. /**
  23334. * Set the transparent sort comparison function.
  23335. * If null the sub meshes will be render in the order they were created
  23336. */
  23337. set: function (value) {
  23338. if (value) {
  23339. this._transparentSortCompareFn = value;
  23340. }
  23341. else {
  23342. this._transparentSortCompareFn = RenderingGroup.defaultTransparentSortCompare;
  23343. }
  23344. this._renderTransparent = this.renderTransparentSorted;
  23345. },
  23346. enumerable: true,
  23347. configurable: true
  23348. });
  23349. /**
  23350. * Render all the sub meshes contained in the group.
  23351. * @param customRenderFunction Used to override the default render behaviour of the group.
  23352. * @returns true if rendered some submeshes.
  23353. */
  23354. RenderingGroup.prototype.render = function (customRenderFunction, renderSprites, renderParticles, activeMeshes) {
  23355. if (customRenderFunction) {
  23356. customRenderFunction(this._opaqueSubMeshes, this._alphaTestSubMeshes, this._transparentSubMeshes, this._depthOnlySubMeshes);
  23357. return;
  23358. }
  23359. var engine = this._scene.getEngine();
  23360. // Depth only
  23361. if (this._depthOnlySubMeshes.length !== 0) {
  23362. engine.setColorWrite(false);
  23363. this._renderAlphaTest(this._depthOnlySubMeshes);
  23364. engine.setColorWrite(true);
  23365. }
  23366. // Opaque
  23367. if (this._opaqueSubMeshes.length !== 0) {
  23368. this._renderOpaque(this._opaqueSubMeshes);
  23369. }
  23370. // Alpha test
  23371. if (this._alphaTestSubMeshes.length !== 0) {
  23372. this._renderAlphaTest(this._alphaTestSubMeshes);
  23373. }
  23374. var stencilState = engine.getStencilBuffer();
  23375. engine.setStencilBuffer(false);
  23376. // Sprites
  23377. if (renderSprites) {
  23378. this._renderSprites();
  23379. }
  23380. // Particles
  23381. if (renderParticles) {
  23382. this._renderParticles(activeMeshes);
  23383. }
  23384. if (this.onBeforeTransparentRendering) {
  23385. this.onBeforeTransparentRendering();
  23386. }
  23387. // Transparent
  23388. if (this._transparentSubMeshes.length !== 0) {
  23389. this._renderTransparent(this._transparentSubMeshes);
  23390. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  23391. }
  23392. // Set back stencil to false in case it changes before the edge renderer.
  23393. engine.setStencilBuffer(false);
  23394. // Edges
  23395. if (this._edgesRenderers.length) {
  23396. for (var edgesRendererIndex = 0; edgesRendererIndex < this._edgesRenderers.length; edgesRendererIndex++) {
  23397. this._edgesRenderers.data[edgesRendererIndex].render();
  23398. }
  23399. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  23400. }
  23401. // Restore Stencil state.
  23402. engine.setStencilBuffer(stencilState);
  23403. };
  23404. /**
  23405. * Renders the opaque submeshes in the order from the opaqueSortCompareFn.
  23406. * @param subMeshes The submeshes to render
  23407. */
  23408. RenderingGroup.prototype.renderOpaqueSorted = function (subMeshes) {
  23409. return RenderingGroup.renderSorted(subMeshes, this._opaqueSortCompareFn, this._scene.activeCamera, false);
  23410. };
  23411. /**
  23412. * Renders the opaque submeshes in the order from the alphatestSortCompareFn.
  23413. * @param subMeshes The submeshes to render
  23414. */
  23415. RenderingGroup.prototype.renderAlphaTestSorted = function (subMeshes) {
  23416. return RenderingGroup.renderSorted(subMeshes, this._alphaTestSortCompareFn, this._scene.activeCamera, false);
  23417. };
  23418. /**
  23419. * Renders the opaque submeshes in the order from the transparentSortCompareFn.
  23420. * @param subMeshes The submeshes to render
  23421. */
  23422. RenderingGroup.prototype.renderTransparentSorted = function (subMeshes) {
  23423. return RenderingGroup.renderSorted(subMeshes, this._transparentSortCompareFn, this._scene.activeCamera, true);
  23424. };
  23425. /**
  23426. * Renders the submeshes in a specified order.
  23427. * @param subMeshes The submeshes to sort before render
  23428. * @param sortCompareFn The comparison function use to sort
  23429. * @param cameraPosition The camera position use to preprocess the submeshes to help sorting
  23430. * @param transparent Specifies to activate blending if true
  23431. */
  23432. RenderingGroup.renderSorted = function (subMeshes, sortCompareFn, camera, transparent) {
  23433. var subIndex = 0;
  23434. var subMesh;
  23435. var cameraPosition = camera ? camera.globalPosition : BABYLON.Vector3.Zero();
  23436. for (; subIndex < subMeshes.length; subIndex++) {
  23437. subMesh = subMeshes.data[subIndex];
  23438. subMesh._alphaIndex = subMesh.getMesh().alphaIndex;
  23439. subMesh._distanceToCamera = subMesh.getBoundingInfo().boundingSphere.centerWorld.subtract(cameraPosition).length();
  23440. }
  23441. var sortedArray = subMeshes.data.slice(0, subMeshes.length);
  23442. if (sortCompareFn) {
  23443. sortedArray.sort(sortCompareFn);
  23444. }
  23445. for (subIndex = 0; subIndex < sortedArray.length; subIndex++) {
  23446. subMesh = sortedArray[subIndex];
  23447. if (transparent) {
  23448. var material = subMesh.getMaterial();
  23449. if (material && material.needDepthPrePass) {
  23450. var engine = material.getScene().getEngine();
  23451. engine.setColorWrite(false);
  23452. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  23453. subMesh.render(false);
  23454. engine.setColorWrite(true);
  23455. }
  23456. }
  23457. subMesh.render(transparent);
  23458. }
  23459. };
  23460. /**
  23461. * Renders the submeshes in the order they were dispatched (no sort applied).
  23462. * @param subMeshes The submeshes to render
  23463. */
  23464. RenderingGroup.renderUnsorted = function (subMeshes) {
  23465. for (var subIndex = 0; subIndex < subMeshes.length; subIndex++) {
  23466. var submesh = subMeshes.data[subIndex];
  23467. submesh.render(false);
  23468. }
  23469. };
  23470. /**
  23471. * Build in function which can be applied to ensure meshes of a special queue (opaque, alpha test, transparent)
  23472. * are rendered back to front if in the same alpha index.
  23473. *
  23474. * @param a The first submesh
  23475. * @param b The second submesh
  23476. * @returns The result of the comparison
  23477. */
  23478. RenderingGroup.defaultTransparentSortCompare = function (a, b) {
  23479. // Alpha index first
  23480. if (a._alphaIndex > b._alphaIndex) {
  23481. return 1;
  23482. }
  23483. if (a._alphaIndex < b._alphaIndex) {
  23484. return -1;
  23485. }
  23486. // Then distance to camera
  23487. return RenderingGroup.backToFrontSortCompare(a, b);
  23488. };
  23489. /**
  23490. * Build in function which can be applied to ensure meshes of a special queue (opaque, alpha test, transparent)
  23491. * are rendered back to front.
  23492. *
  23493. * @param a The first submesh
  23494. * @param b The second submesh
  23495. * @returns The result of the comparison
  23496. */
  23497. RenderingGroup.backToFrontSortCompare = function (a, b) {
  23498. // Then distance to camera
  23499. if (a._distanceToCamera < b._distanceToCamera) {
  23500. return 1;
  23501. }
  23502. if (a._distanceToCamera > b._distanceToCamera) {
  23503. return -1;
  23504. }
  23505. return 0;
  23506. };
  23507. /**
  23508. * Build in function which can be applied to ensure meshes of a special queue (opaque, alpha test, transparent)
  23509. * are rendered front to back (prevent overdraw).
  23510. *
  23511. * @param a The first submesh
  23512. * @param b The second submesh
  23513. * @returns The result of the comparison
  23514. */
  23515. RenderingGroup.frontToBackSortCompare = function (a, b) {
  23516. // Then distance to camera
  23517. if (a._distanceToCamera < b._distanceToCamera) {
  23518. return -1;
  23519. }
  23520. if (a._distanceToCamera > b._distanceToCamera) {
  23521. return 1;
  23522. }
  23523. return 0;
  23524. };
  23525. /**
  23526. * Resets the different lists of submeshes to prepare a new frame.
  23527. */
  23528. RenderingGroup.prototype.prepare = function () {
  23529. this._opaqueSubMeshes.reset();
  23530. this._transparentSubMeshes.reset();
  23531. this._alphaTestSubMeshes.reset();
  23532. this._depthOnlySubMeshes.reset();
  23533. this._particleSystems.reset();
  23534. this._spriteManagers.reset();
  23535. this._edgesRenderers.reset();
  23536. };
  23537. RenderingGroup.prototype.dispose = function () {
  23538. this._opaqueSubMeshes.dispose();
  23539. this._transparentSubMeshes.dispose();
  23540. this._alphaTestSubMeshes.dispose();
  23541. this._depthOnlySubMeshes.dispose();
  23542. this._particleSystems.dispose();
  23543. this._spriteManagers.dispose();
  23544. this._edgesRenderers.dispose();
  23545. };
  23546. /**
  23547. * Inserts the submesh in its correct queue depending on its material.
  23548. * @param subMesh The submesh to dispatch
  23549. * @param [mesh] Optional reference to the submeshes's mesh. Provide if you have an exiting reference to improve performance.
  23550. * @param [material] Optional reference to the submeshes's material. Provide if you have an exiting reference to improve performance.
  23551. */
  23552. RenderingGroup.prototype.dispatch = function (subMesh, mesh, material) {
  23553. // Get mesh and materials if not provided
  23554. if (mesh === undefined) {
  23555. mesh = subMesh.getMesh();
  23556. }
  23557. if (material === undefined) {
  23558. material = subMesh.getMaterial();
  23559. }
  23560. if (material === null || material === undefined) {
  23561. return;
  23562. }
  23563. if (material.needAlphaBlendingForMesh(mesh)) { // Transparent
  23564. this._transparentSubMeshes.push(subMesh);
  23565. }
  23566. else if (material.needAlphaTesting()) { // Alpha test
  23567. if (material.needDepthPrePass) {
  23568. this._depthOnlySubMeshes.push(subMesh);
  23569. }
  23570. this._alphaTestSubMeshes.push(subMesh);
  23571. }
  23572. else {
  23573. if (material.needDepthPrePass) {
  23574. this._depthOnlySubMeshes.push(subMesh);
  23575. }
  23576. this._opaqueSubMeshes.push(subMesh); // Opaque
  23577. }
  23578. if (mesh._edgesRenderer && mesh._edgesRenderer.isEnabled) {
  23579. this._edgesRenderers.push(mesh._edgesRenderer);
  23580. }
  23581. };
  23582. RenderingGroup.prototype.dispatchSprites = function (spriteManager) {
  23583. this._spriteManagers.push(spriteManager);
  23584. };
  23585. RenderingGroup.prototype.dispatchParticles = function (particleSystem) {
  23586. this._particleSystems.push(particleSystem);
  23587. };
  23588. RenderingGroup.prototype._renderParticles = function (activeMeshes) {
  23589. if (this._particleSystems.length === 0) {
  23590. return;
  23591. }
  23592. // Particles
  23593. var activeCamera = this._scene.activeCamera;
  23594. this._scene.onBeforeParticlesRenderingObservable.notifyObservers(this._scene);
  23595. for (var particleIndex = 0; particleIndex < this._particleSystems.length; particleIndex++) {
  23596. var particleSystem = this._particleSystems.data[particleIndex];
  23597. if ((activeCamera && activeCamera.layerMask & particleSystem.layerMask) === 0) {
  23598. continue;
  23599. }
  23600. var emitter = particleSystem.emitter;
  23601. if (!emitter.position || !activeMeshes || activeMeshes.indexOf(emitter) !== -1) {
  23602. this._scene._activeParticles.addCount(particleSystem.render(), false);
  23603. }
  23604. }
  23605. this._scene.onAfterParticlesRenderingObservable.notifyObservers(this._scene);
  23606. };
  23607. RenderingGroup.prototype._renderSprites = function () {
  23608. if (!this._scene.spritesEnabled || this._spriteManagers.length === 0) {
  23609. return;
  23610. }
  23611. // Sprites
  23612. var activeCamera = this._scene.activeCamera;
  23613. this._scene.onBeforeSpritesRenderingObservable.notifyObservers(this._scene);
  23614. for (var id = 0; id < this._spriteManagers.length; id++) {
  23615. var spriteManager = this._spriteManagers.data[id];
  23616. if (((activeCamera && activeCamera.layerMask & spriteManager.layerMask) !== 0)) {
  23617. spriteManager.render();
  23618. }
  23619. }
  23620. this._scene.onAfterSpritesRenderingObservable.notifyObservers(this._scene);
  23621. };
  23622. return RenderingGroup;
  23623. }());
  23624. BABYLON.RenderingGroup = RenderingGroup;
  23625. })(BABYLON || (BABYLON = {}));
  23626. //# sourceMappingURL=babylon.renderingGroup.js.map
  23627. var BABYLON;
  23628. (function (BABYLON) {
  23629. /**
  23630. * Groups all the scene component constants in one place to ease maintenance.
  23631. * @hidden
  23632. */
  23633. var SceneComponentConstants = /** @class */ (function () {
  23634. function SceneComponentConstants() {
  23635. }
  23636. SceneComponentConstants.NAME_EFFECTLAYER = "EffectLayer";
  23637. SceneComponentConstants.NAME_LAYER = "Layer";
  23638. SceneComponentConstants.NAME_LENSFLARESYSTEM = "LensFlareSystem";
  23639. SceneComponentConstants.NAME_BOUNDINGBOXRENDERER = "BoundingBoxRenderer";
  23640. SceneComponentConstants.NAME_PARTICLESYSTEM = "ParticleSystem";
  23641. SceneComponentConstants.NAME_GAMEPAD = "Gamepad";
  23642. SceneComponentConstants.NAME_SIMPLIFICATIONQUEUE = "SimplificationQueue";
  23643. SceneComponentConstants.NAME_GEOMETRYBUFFERRENDERER = "GeometryBufferRenderer";
  23644. SceneComponentConstants.NAME_DEPTHRENDERER = "DepthRenderer";
  23645. SceneComponentConstants.NAME_POSTPROCESSRENDERPIPELINEMANAGER = "PostProcessRenderPipelineManager";
  23646. SceneComponentConstants.NAME_SPRITE = "Sprite";
  23647. SceneComponentConstants.NAME_OUTLINERENDERER = "Outline";
  23648. SceneComponentConstants.NAME_PROCEDURALTEXTURE = "ProceduralTexture";
  23649. SceneComponentConstants.NAME_SHADOWGENERATOR = "ShadowGenerator";
  23650. SceneComponentConstants.NAME_OCTREE = "Octree";
  23651. SceneComponentConstants.STEP_ISREADYFORMESH_EFFECTLAYER = 0;
  23652. SceneComponentConstants.STEP_BEFOREEVALUATEACTIVEMESH_BOUNDINGBOXRENDERER = 0;
  23653. SceneComponentConstants.STEP_EVALUATESUBMESH_BOUNDINGBOXRENDERER = 0;
  23654. SceneComponentConstants.STEP_ACTIVEMESH_BOUNDINGBOXRENDERER = 0;
  23655. SceneComponentConstants.STEP_CAMERADRAWRENDERTARGET_EFFECTLAYER = 1;
  23656. SceneComponentConstants.STEP_BEFORECAMERADRAW_EFFECTLAYER = 0;
  23657. SceneComponentConstants.STEP_BEFORECAMERADRAW_LAYER = 1;
  23658. SceneComponentConstants.STEP_BEFORERENDERINGMESH_OUTLINE = 0;
  23659. SceneComponentConstants.STEP_AFTERRENDERINGMESH_OUTLINE = 0;
  23660. SceneComponentConstants.STEP_AFTERRENDERINGGROUPDRAW_EFFECTLAYER_DRAW = 0;
  23661. SceneComponentConstants.STEP_BEFORECAMERAUPDATE_SIMPLIFICATIONQUEUE = 0;
  23662. SceneComponentConstants.STEP_BEFORECAMERAUPDATE_GAMEPAD = 1;
  23663. SceneComponentConstants.STEP_BEFORECLEAR_PROCEDURALTEXTURE = 0;
  23664. SceneComponentConstants.STEP_AFTERCAMERADRAW_EFFECTLAYER = 0;
  23665. SceneComponentConstants.STEP_AFTERCAMERADRAW_LENSFLARESYSTEM = 1;
  23666. SceneComponentConstants.STEP_AFTERCAMERADRAW_BOUNDINGBOXRENDERER = 2;
  23667. SceneComponentConstants.STEP_AFTERCAMERADRAW_EFFECTLAYER_DRAW = 3;
  23668. SceneComponentConstants.STEP_AFTERCAMERADRAW_LAYER = 4;
  23669. SceneComponentConstants.STEP_GATHERRENDERTARGETS_SHADOWGENERATOR = 0;
  23670. SceneComponentConstants.STEP_GATHERRENDERTARGETS_GEOMETRYBUFFERRENDERER = 1;
  23671. SceneComponentConstants.STEP_GATHERRENDERTARGETS_DEPTHRENDERER = 2;
  23672. SceneComponentConstants.STEP_GATHERRENDERTARGETS_POSTPROCESSRENDERPIPELINEMANAGER = 3;
  23673. SceneComponentConstants.STEP_POINTERMOVE_SPRITE = 0;
  23674. SceneComponentConstants.STEP_POINTERDOWN_SPRITE = 0;
  23675. SceneComponentConstants.STEP_POINTERUP_SPRITE = 0;
  23676. return SceneComponentConstants;
  23677. }());
  23678. BABYLON.SceneComponentConstants = SceneComponentConstants;
  23679. /**
  23680. * Repressentation of a stage in the scene (Basically a list of ordered steps)
  23681. * @hidden
  23682. */
  23683. var Stage = /** @class */ (function (_super) {
  23684. __extends(Stage, _super);
  23685. /**
  23686. * Hide ctor from the rest of the world.
  23687. * @param items The items to add.
  23688. */
  23689. function Stage(items) {
  23690. return _super.apply(this, items) || this;
  23691. }
  23692. /**
  23693. * Creates a new Stage.
  23694. * @returns A new instance of a Stage
  23695. */
  23696. Stage.Create = function () {
  23697. return Object.create(Stage.prototype);
  23698. };
  23699. /**
  23700. * Registers a step in an ordered way in the targeted stage.
  23701. * @param index Defines the position to register the step in
  23702. * @param component Defines the component attached to the step
  23703. * @param action Defines the action to launch during the step
  23704. */
  23705. Stage.prototype.registerStep = function (index, component, action) {
  23706. var i = 0;
  23707. var maxIndex = Number.MAX_VALUE;
  23708. for (; i < this.length && i < maxIndex; i++) {
  23709. var step = this[i];
  23710. maxIndex = step.index;
  23711. }
  23712. this.splice(i, 0, { index: index, component: component, action: action.bind(component) });
  23713. };
  23714. /**
  23715. * Clears all the steps from the stage.
  23716. */
  23717. Stage.prototype.clear = function () {
  23718. this.length = 0;
  23719. };
  23720. return Stage;
  23721. }(Array));
  23722. BABYLON.Stage = Stage;
  23723. })(BABYLON || (BABYLON = {}));
  23724. //# sourceMappingURL=babylon.sceneComponent.js.map
  23725. var BABYLON;
  23726. (function (BABYLON) {
  23727. /**
  23728. * Base class of the scene acting as a container for the different elements composing a scene.
  23729. * This class is dynamically extended by the different components of the scene increasing
  23730. * flexibility and reducing coupling
  23731. */
  23732. var AbstractScene = /** @class */ (function () {
  23733. function AbstractScene() {
  23734. /**
  23735. * Gets the list of root nodes (ie. nodes with no parent)
  23736. */
  23737. this.rootNodes = new Array();
  23738. /** All of the cameras added to this scene
  23739. * @see http://doc.babylonjs.com/babylon101/cameras
  23740. */
  23741. this.cameras = new Array();
  23742. /**
  23743. * All of the lights added to this scene
  23744. * @see http://doc.babylonjs.com/babylon101/lights
  23745. */
  23746. this.lights = new Array();
  23747. /**
  23748. * All of the (abstract) meshes added to this scene
  23749. */
  23750. this.meshes = new Array();
  23751. /**
  23752. * The list of skeletons added to the scene
  23753. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons
  23754. */
  23755. this.skeletons = new Array();
  23756. /**
  23757. * All of the particle systems added to this scene
  23758. * @see http://doc.babylonjs.com/babylon101/particles
  23759. */
  23760. this.particleSystems = new Array();
  23761. /**
  23762. * Gets a list of Animations associated with the scene
  23763. */
  23764. this.animations = [];
  23765. /**
  23766. * All of the animation groups added to this scene
  23767. * @see http://doc.babylonjs.com/how_to/group
  23768. */
  23769. this.animationGroups = new Array();
  23770. /**
  23771. * All of the multi-materials added to this scene
  23772. * @see http://doc.babylonjs.com/how_to/multi_materials
  23773. */
  23774. this.multiMaterials = new Array();
  23775. /**
  23776. * All of the materials added to this scene
  23777. * @see http://doc.babylonjs.com/babylon101/materials
  23778. */
  23779. this.materials = new Array();
  23780. /**
  23781. * The list of morph target managers added to the scene
  23782. * @see http://doc.babylonjs.com/how_to/how_to_dynamically_morph_a_mesh
  23783. */
  23784. this.morphTargetManagers = new Array();
  23785. /**
  23786. * The list of geometries used in the scene.
  23787. */
  23788. this.geometries = new Array();
  23789. /**
  23790. * All of the tranform nodes added to this scene
  23791. * @see http://doc.babylonjs.com/how_to/transformnode
  23792. */
  23793. this.transformNodes = new Array();
  23794. /**
  23795. * ActionManagers available on the scene.
  23796. */
  23797. this.actionManagers = new Array();
  23798. /**
  23799. * Sounds to keep.
  23800. */
  23801. this.sounds = new Array();
  23802. /**
  23803. * Textures to keep.
  23804. */
  23805. this.textures = new Array();
  23806. }
  23807. /**
  23808. * Adds a parser in the list of available ones
  23809. * @param name Defines the name of the parser
  23810. * @param parser Defines the parser to add
  23811. */
  23812. AbstractScene.AddParser = function (name, parser) {
  23813. this._BabylonFileParsers[name] = parser;
  23814. };
  23815. /**
  23816. * Gets a general parser from the list of avaialble ones
  23817. * @param name Defines the name of the parser
  23818. * @returns the requested parser or null
  23819. */
  23820. AbstractScene.GetParser = function (name) {
  23821. if (this._BabylonFileParsers[name]) {
  23822. return this._BabylonFileParsers[name];
  23823. }
  23824. return null;
  23825. };
  23826. /**
  23827. * Adds n individual parser in the list of available ones
  23828. * @param name Defines the name of the parser
  23829. * @param parser Defines the parser to add
  23830. */
  23831. AbstractScene.AddIndividualParser = function (name, parser) {
  23832. this._IndividualBabylonFileParsers[name] = parser;
  23833. };
  23834. /**
  23835. * Gets an individual parser from the list of avaialble ones
  23836. * @param name Defines the name of the parser
  23837. * @returns the requested parser or null
  23838. */
  23839. AbstractScene.GetIndividualParser = function (name) {
  23840. if (this._IndividualBabylonFileParsers[name]) {
  23841. return this._IndividualBabylonFileParsers[name];
  23842. }
  23843. return null;
  23844. };
  23845. /**
  23846. * Parser json data and populate both a scene and its associated container object
  23847. * @param jsonData Defines the data to parse
  23848. * @param scene Defines the scene to parse the data for
  23849. * @param container Defines the container attached to the parsing sequence
  23850. * @param rootUrl Defines the root url of the data
  23851. */
  23852. AbstractScene.Parse = function (jsonData, scene, container, rootUrl) {
  23853. for (var parserName in this._BabylonFileParsers) {
  23854. if (this._BabylonFileParsers.hasOwnProperty(parserName)) {
  23855. this._BabylonFileParsers[parserName](jsonData, scene, container, rootUrl);
  23856. }
  23857. }
  23858. };
  23859. /**
  23860. * Stores the list of available parsers in the application.
  23861. */
  23862. AbstractScene._BabylonFileParsers = {};
  23863. /**
  23864. * Stores the list of available individual parsers in the application.
  23865. */
  23866. AbstractScene._IndividualBabylonFileParsers = {};
  23867. return AbstractScene;
  23868. }());
  23869. BABYLON.AbstractScene = AbstractScene;
  23870. })(BABYLON || (BABYLON = {}));
  23871. //# sourceMappingURL=babylon.abstractScene.js.map
  23872. var BABYLON;
  23873. (function (BABYLON) {
  23874. /** @hidden */
  23875. var ClickInfo = /** @class */ (function () {
  23876. function ClickInfo() {
  23877. this._singleClick = false;
  23878. this._doubleClick = false;
  23879. this._hasSwiped = false;
  23880. this._ignore = false;
  23881. }
  23882. Object.defineProperty(ClickInfo.prototype, "singleClick", {
  23883. get: function () {
  23884. return this._singleClick;
  23885. },
  23886. set: function (b) {
  23887. this._singleClick = b;
  23888. },
  23889. enumerable: true,
  23890. configurable: true
  23891. });
  23892. Object.defineProperty(ClickInfo.prototype, "doubleClick", {
  23893. get: function () {
  23894. return this._doubleClick;
  23895. },
  23896. set: function (b) {
  23897. this._doubleClick = b;
  23898. },
  23899. enumerable: true,
  23900. configurable: true
  23901. });
  23902. Object.defineProperty(ClickInfo.prototype, "hasSwiped", {
  23903. get: function () {
  23904. return this._hasSwiped;
  23905. },
  23906. set: function (b) {
  23907. this._hasSwiped = b;
  23908. },
  23909. enumerable: true,
  23910. configurable: true
  23911. });
  23912. Object.defineProperty(ClickInfo.prototype, "ignore", {
  23913. get: function () {
  23914. return this._ignore;
  23915. },
  23916. set: function (b) {
  23917. this._ignore = b;
  23918. },
  23919. enumerable: true,
  23920. configurable: true
  23921. });
  23922. return ClickInfo;
  23923. }());
  23924. /**
  23925. * This class is used by the onRenderingGroupObservable
  23926. */
  23927. var RenderingGroupInfo = /** @class */ (function () {
  23928. function RenderingGroupInfo() {
  23929. }
  23930. return RenderingGroupInfo;
  23931. }());
  23932. BABYLON.RenderingGroupInfo = RenderingGroupInfo;
  23933. /**
  23934. * Represents a scene to be rendered by the engine.
  23935. * @see http://doc.babylonjs.com/features/scene
  23936. */
  23937. var Scene = /** @class */ (function (_super) {
  23938. __extends(Scene, _super);
  23939. /**
  23940. * Creates a new Scene
  23941. * @param engine defines the engine to use to render this scene
  23942. */
  23943. function Scene(engine) {
  23944. var _this = _super.call(this) || this;
  23945. // Members
  23946. /**
  23947. * Gets or sets a boolean that indicates if the scene must clear the render buffer before rendering a frame
  23948. */
  23949. _this.autoClear = true;
  23950. /**
  23951. * Gets or sets a boolean that indicates if the scene must clear the depth and stencil buffers before rendering a frame
  23952. */
  23953. _this.autoClearDepthAndStencil = true;
  23954. /**
  23955. * Defines the color used to clear the render buffer (Default is (0.2, 0.2, 0.3, 1.0))
  23956. */
  23957. _this.clearColor = new BABYLON.Color4(0.2, 0.2, 0.3, 1.0);
  23958. /**
  23959. * Defines the color used to simulate the ambient color (Default is (0, 0, 0))
  23960. */
  23961. _this.ambientColor = new BABYLON.Color3(0, 0, 0);
  23962. _this._forceWireframe = false;
  23963. _this._forcePointsCloud = false;
  23964. /**
  23965. * Gets or sets a boolean indicating if animations are enabled
  23966. */
  23967. _this.animationsEnabled = true;
  23968. _this._animationPropertiesOverride = null;
  23969. /**
  23970. * Gets or sets a boolean indicating if a constant deltatime has to be used
  23971. * This is mostly useful for testing purposes when you do not want the animations to scale with the framerate
  23972. */
  23973. _this.useConstantAnimationDeltaTime = false;
  23974. /**
  23975. * Gets or sets a boolean indicating if the scene must keep the meshUnderPointer property updated
  23976. * Please note that it requires to run a ray cast through the scene on every frame
  23977. */
  23978. _this.constantlyUpdateMeshUnderPointer = false;
  23979. /**
  23980. * Defines the HTML cursor to use when hovering over interactive elements
  23981. */
  23982. _this.hoverCursor = "pointer";
  23983. /**
  23984. * Defines the HTML default cursor to use (empty by default)
  23985. */
  23986. _this.defaultCursor = "";
  23987. /**
  23988. * This is used to call preventDefault() on pointer down
  23989. * in order to block unwanted artifacts like system double clicks
  23990. */
  23991. _this.preventDefaultOnPointerDown = true;
  23992. // Metadata
  23993. /**
  23994. * Gets or sets user defined metadata
  23995. */
  23996. _this.metadata = null;
  23997. /**
  23998. * Use this array to add regular expressions used to disable offline support for specific urls
  23999. */
  24000. _this.disableOfflineSupportExceptionRules = new Array();
  24001. /**
  24002. * An event triggered when the scene is disposed.
  24003. */
  24004. _this.onDisposeObservable = new BABYLON.Observable();
  24005. _this._onDisposeObserver = null;
  24006. /**
  24007. * An event triggered before rendering the scene (right after animations and physics)
  24008. */
  24009. _this.onBeforeRenderObservable = new BABYLON.Observable();
  24010. _this._onBeforeRenderObserver = null;
  24011. /**
  24012. * An event triggered after rendering the scene
  24013. */
  24014. _this.onAfterRenderObservable = new BABYLON.Observable();
  24015. _this._onAfterRenderObserver = null;
  24016. /**
  24017. * An event triggered before animating the scene
  24018. */
  24019. _this.onBeforeAnimationsObservable = new BABYLON.Observable();
  24020. /**
  24021. * An event triggered after animations processing
  24022. */
  24023. _this.onAfterAnimationsObservable = new BABYLON.Observable();
  24024. /**
  24025. * An event triggered before draw calls are ready to be sent
  24026. */
  24027. _this.onBeforeDrawPhaseObservable = new BABYLON.Observable();
  24028. /**
  24029. * An event triggered after draw calls have been sent
  24030. */
  24031. _this.onAfterDrawPhaseObservable = new BABYLON.Observable();
  24032. /**
  24033. * An event triggered when physic simulation is about to be run
  24034. */
  24035. _this.onBeforePhysicsObservable = new BABYLON.Observable();
  24036. /**
  24037. * An event triggered when physic simulation has been done
  24038. */
  24039. _this.onAfterPhysicsObservable = new BABYLON.Observable();
  24040. /**
  24041. * An event triggered when the scene is ready
  24042. */
  24043. _this.onReadyObservable = new BABYLON.Observable();
  24044. /**
  24045. * An event triggered before rendering a camera
  24046. */
  24047. _this.onBeforeCameraRenderObservable = new BABYLON.Observable();
  24048. _this._onBeforeCameraRenderObserver = null;
  24049. /**
  24050. * An event triggered after rendering a camera
  24051. */
  24052. _this.onAfterCameraRenderObservable = new BABYLON.Observable();
  24053. _this._onAfterCameraRenderObserver = null;
  24054. /**
  24055. * An event triggered when active meshes evaluation is about to start
  24056. */
  24057. _this.onBeforeActiveMeshesEvaluationObservable = new BABYLON.Observable();
  24058. /**
  24059. * An event triggered when active meshes evaluation is done
  24060. */
  24061. _this.onAfterActiveMeshesEvaluationObservable = new BABYLON.Observable();
  24062. /**
  24063. * An event triggered when particles rendering is about to start
  24064. * Note: This event can be trigger more than once per frame (because particles can be rendered by render target textures as well)
  24065. */
  24066. _this.onBeforeParticlesRenderingObservable = new BABYLON.Observable();
  24067. /**
  24068. * An event triggered when particles rendering is done
  24069. * Note: This event can be trigger more than once per frame (because particles can be rendered by render target textures as well)
  24070. */
  24071. _this.onAfterParticlesRenderingObservable = new BABYLON.Observable();
  24072. /**
  24073. * An event triggered when SceneLoader.Append or SceneLoader.Load or SceneLoader.ImportMesh were successfully executed
  24074. */
  24075. _this.onDataLoadedObservable = new BABYLON.Observable();
  24076. /**
  24077. * An event triggered when a camera is created
  24078. */
  24079. _this.onNewCameraAddedObservable = new BABYLON.Observable();
  24080. /**
  24081. * An event triggered when a camera is removed
  24082. */
  24083. _this.onCameraRemovedObservable = new BABYLON.Observable();
  24084. /**
  24085. * An event triggered when a light is created
  24086. */
  24087. _this.onNewLightAddedObservable = new BABYLON.Observable();
  24088. /**
  24089. * An event triggered when a light is removed
  24090. */
  24091. _this.onLightRemovedObservable = new BABYLON.Observable();
  24092. /**
  24093. * An event triggered when a geometry is created
  24094. */
  24095. _this.onNewGeometryAddedObservable = new BABYLON.Observable();
  24096. /**
  24097. * An event triggered when a geometry is removed
  24098. */
  24099. _this.onGeometryRemovedObservable = new BABYLON.Observable();
  24100. /**
  24101. * An event triggered when a transform node is created
  24102. */
  24103. _this.onNewTransformNodeAddedObservable = new BABYLON.Observable();
  24104. /**
  24105. * An event triggered when a transform node is removed
  24106. */
  24107. _this.onTransformNodeRemovedObservable = new BABYLON.Observable();
  24108. /**
  24109. * An event triggered when a mesh is created
  24110. */
  24111. _this.onNewMeshAddedObservable = new BABYLON.Observable();
  24112. /**
  24113. * An event triggered when a mesh is removed
  24114. */
  24115. _this.onMeshRemovedObservable = new BABYLON.Observable();
  24116. /**
  24117. * An event triggered when render targets are about to be rendered
  24118. * Can happen multiple times per frame.
  24119. */
  24120. _this.onBeforeRenderTargetsRenderObservable = new BABYLON.Observable();
  24121. /**
  24122. * An event triggered when render targets were rendered.
  24123. * Can happen multiple times per frame.
  24124. */
  24125. _this.onAfterRenderTargetsRenderObservable = new BABYLON.Observable();
  24126. /**
  24127. * An event triggered before calculating deterministic simulation step
  24128. */
  24129. _this.onBeforeStepObservable = new BABYLON.Observable();
  24130. /**
  24131. * An event triggered after calculating deterministic simulation step
  24132. */
  24133. _this.onAfterStepObservable = new BABYLON.Observable();
  24134. /**
  24135. * This Observable will be triggered before rendering each renderingGroup of each rendered camera.
  24136. * The RenderinGroupInfo class contains all the information about the context in which the observable is called
  24137. * If you wish to register an Observer only for a given set of renderingGroup, use the mask with a combination of the renderingGroup index elevated to the power of two (1 for renderingGroup 0, 2 for renderingrOup1, 4 for 2 and 8 for 3)
  24138. */
  24139. _this.onBeforeRenderingGroupObservable = new BABYLON.Observable();
  24140. /**
  24141. * This Observable will be triggered after rendering each renderingGroup of each rendered camera.
  24142. * The RenderinGroupInfo class contains all the information about the context in which the observable is called
  24143. * If you wish to register an Observer only for a given set of renderingGroup, use the mask with a combination of the renderingGroup index elevated to the power of two (1 for renderingGroup 0, 2 for renderingrOup1, 4 for 2 and 8 for 3)
  24144. */
  24145. _this.onAfterRenderingGroupObservable = new BABYLON.Observable();
  24146. /**
  24147. * This Observable will when a mesh has been imported into the scene.
  24148. */
  24149. _this.onMeshImportedObservable = new BABYLON.Observable();
  24150. // Animations
  24151. _this._registeredForLateAnimationBindings = new BABYLON.SmartArrayNoDuplicate(256);
  24152. /**
  24153. * This observable event is triggered when any ponter event is triggered. It is registered during Scene.attachControl() and it is called BEFORE the 3D engine process anything (mesh/sprite picking for instance).
  24154. * You have the possibility to skip the process and the call to onPointerObservable by setting PointerInfoPre.skipOnPointerObservable to true
  24155. */
  24156. _this.onPrePointerObservable = new BABYLON.Observable();
  24157. /**
  24158. * Observable event triggered each time an input event is received from the rendering canvas
  24159. */
  24160. _this.onPointerObservable = new BABYLON.Observable();
  24161. _this._meshPickProceed = false;
  24162. _this._currentPickResult = null;
  24163. _this._previousPickResult = null;
  24164. _this._totalPointersPressed = 0;
  24165. _this._doubleClickOccured = false;
  24166. /** Define this parameter if you are using multiple cameras and you want to specify which one should be used for pointer position */
  24167. _this.cameraToUseForPointers = null;
  24168. _this._pointerX = 0;
  24169. _this._pointerY = 0;
  24170. _this._startingPointerPosition = new BABYLON.Vector2(0, 0);
  24171. _this._previousStartingPointerPosition = new BABYLON.Vector2(0, 0);
  24172. _this._startingPointerTime = 0;
  24173. _this._previousStartingPointerTime = 0;
  24174. _this._pointerCaptures = {};
  24175. // Deterministic lockstep
  24176. _this._timeAccumulator = 0;
  24177. _this._currentStepId = 0;
  24178. _this._currentInternalStep = 0;
  24179. // Keyboard
  24180. /**
  24181. * This observable event is triggered when any keyboard event si raised and registered during Scene.attachControl()
  24182. * You have the possibility to skip the process and the call to onKeyboardObservable by setting KeyboardInfoPre.skipOnPointerObservable to true
  24183. */
  24184. _this.onPreKeyboardObservable = new BABYLON.Observable();
  24185. /**
  24186. * Observable event triggered each time an keyboard event is received from the hosting window
  24187. */
  24188. _this.onKeyboardObservable = new BABYLON.Observable();
  24189. // Coordinates system
  24190. _this._useRightHandedSystem = false;
  24191. // Fog
  24192. _this._fogEnabled = true;
  24193. _this._fogMode = Scene.FOGMODE_NONE;
  24194. /**
  24195. * Gets or sets the fog color to use
  24196. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24197. */
  24198. _this.fogColor = new BABYLON.Color3(0.2, 0.2, 0.3);
  24199. /**
  24200. * Gets or sets the fog density to use
  24201. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24202. */
  24203. _this.fogDensity = 0.1;
  24204. /**
  24205. * Gets or sets the fog start distance to use
  24206. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24207. */
  24208. _this.fogStart = 0;
  24209. /**
  24210. * Gets or sets the fog end distance to use
  24211. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24212. */
  24213. _this.fogEnd = 1000.0;
  24214. // Lights
  24215. _this._shadowsEnabled = true;
  24216. _this._lightsEnabled = true;
  24217. /** All of the active cameras added to this scene. */
  24218. _this.activeCameras = new Array();
  24219. // Textures
  24220. _this._texturesEnabled = true;
  24221. // Particles
  24222. /**
  24223. * Gets or sets a boolean indicating if particles are enabled on this scene
  24224. */
  24225. _this.particlesEnabled = true;
  24226. // Sprites
  24227. /**
  24228. * Gets or sets a boolean indicating if sprites are enabled on this scene
  24229. */
  24230. _this.spritesEnabled = true;
  24231. // Skeletons
  24232. _this._skeletonsEnabled = true;
  24233. // Lens flares
  24234. /**
  24235. * Gets or sets a boolean indicating if lens flares are enabled on this scene
  24236. */
  24237. _this.lensFlaresEnabled = true;
  24238. // Collisions
  24239. /**
  24240. * Gets or sets a boolean indicating if collisions are enabled on this scene
  24241. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  24242. */
  24243. _this.collisionsEnabled = true;
  24244. /**
  24245. * Defines the gravity applied to this scene (used only for collisions)
  24246. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity
  24247. */
  24248. _this.gravity = new BABYLON.Vector3(0, -9.807, 0);
  24249. // Postprocesses
  24250. /**
  24251. * Gets or sets a boolean indicating if postprocesses are enabled on this scene
  24252. */
  24253. _this.postProcessesEnabled = true;
  24254. /**
  24255. * The list of postprocesses added to the scene
  24256. */
  24257. _this.postProcesses = new Array();
  24258. // Customs render targets
  24259. /**
  24260. * Gets or sets a boolean indicating if render targets are enabled on this scene
  24261. */
  24262. _this.renderTargetsEnabled = true;
  24263. /**
  24264. * Gets or sets a boolean indicating if next render targets must be dumped as image for debugging purposes
  24265. * We recommend not using it and instead rely on Spector.js: http://spector.babylonjs.com
  24266. */
  24267. _this.dumpNextRenderTargets = false;
  24268. /**
  24269. * The list of user defined render targets added to the scene
  24270. */
  24271. _this.customRenderTargets = new Array();
  24272. /**
  24273. * Gets the list of meshes imported to the scene through SceneLoader
  24274. */
  24275. _this.importedMeshesFiles = new Array();
  24276. // Probes
  24277. /**
  24278. * Gets or sets a boolean indicating if probes are enabled on this scene
  24279. */
  24280. _this.probesEnabled = true;
  24281. _this._meshesForIntersections = new BABYLON.SmartArrayNoDuplicate(256);
  24282. // Procedural textures
  24283. /**
  24284. * Gets or sets a boolean indicating if procedural textures are enabled on this scene
  24285. */
  24286. _this.proceduralTexturesEnabled = true;
  24287. /**
  24288. * The list of sound tracks added to the scene
  24289. * @see http://doc.babylonjs.com/how_to/playing_sounds_and_music
  24290. */
  24291. _this.soundTracks = new Array();
  24292. _this._audioEnabled = true;
  24293. _this._headphone = false;
  24294. // Performance counters
  24295. _this._totalVertices = new BABYLON.PerfCounter();
  24296. /** @hidden */
  24297. _this._activeIndices = new BABYLON.PerfCounter();
  24298. /** @hidden */
  24299. _this._activeParticles = new BABYLON.PerfCounter();
  24300. /** @hidden */
  24301. _this._activeBones = new BABYLON.PerfCounter();
  24302. _this._animationTime = 0;
  24303. /**
  24304. * Gets or sets a general scale for animation speed
  24305. * @see https://www.babylonjs-playground.com/#IBU2W7#3
  24306. */
  24307. _this.animationTimeScale = 1;
  24308. _this._renderId = 0;
  24309. _this._executeWhenReadyTimeoutId = -1;
  24310. _this._intermediateRendering = false;
  24311. _this._viewUpdateFlag = -1;
  24312. _this._projectionUpdateFlag = -1;
  24313. _this._alternateViewUpdateFlag = -1;
  24314. _this._alternateProjectionUpdateFlag = -1;
  24315. /** @hidden */
  24316. _this._toBeDisposed = new BABYLON.SmartArray(256);
  24317. _this._activeRequests = new Array();
  24318. _this._pendingData = new Array();
  24319. _this._isDisposed = false;
  24320. /**
  24321. * Gets or sets a boolean indicating that all submeshes of active meshes must be rendered
  24322. * Use this boolean to avoid computing frustum clipping on submeshes (This could help when you are CPU bound)
  24323. */
  24324. _this.dispatchAllSubMeshesOfActiveMeshes = false;
  24325. _this._activeMeshes = new BABYLON.SmartArray(256);
  24326. _this._processedMaterials = new BABYLON.SmartArray(256);
  24327. _this._renderTargets = new BABYLON.SmartArrayNoDuplicate(256);
  24328. /** @hidden */
  24329. _this._activeParticleSystems = new BABYLON.SmartArray(256);
  24330. _this._activeSkeletons = new BABYLON.SmartArrayNoDuplicate(32);
  24331. _this._softwareSkinnedMeshes = new BABYLON.SmartArrayNoDuplicate(32);
  24332. /** @hidden */
  24333. _this._activeAnimatables = new Array();
  24334. _this._transformMatrix = BABYLON.Matrix.Zero();
  24335. _this._useAlternateCameraConfiguration = false;
  24336. _this._alternateRendering = false;
  24337. /**
  24338. * Gets or sets a boolean indicating if lights must be sorted by priority (off by default)
  24339. * This is useful if there are more lights that the maximum simulteanous authorized
  24340. */
  24341. _this.requireLightSorting = false;
  24342. /**
  24343. * @hidden
  24344. * Backing store of defined scene components.
  24345. */
  24346. _this._components = [];
  24347. /**
  24348. * @hidden
  24349. * Backing store of defined scene components.
  24350. */
  24351. _this._serializableComponents = [];
  24352. /**
  24353. * List of components to register on the next registration step.
  24354. */
  24355. _this._transientComponents = [];
  24356. /**
  24357. * @hidden
  24358. * Defines the actions happening before camera updates.
  24359. */
  24360. _this._beforeCameraUpdateStage = BABYLON.Stage.Create();
  24361. /**
  24362. * @hidden
  24363. * Defines the actions happening before clear the canvas.
  24364. */
  24365. _this._beforeClearStage = BABYLON.Stage.Create();
  24366. /**
  24367. * @hidden
  24368. * Defines the actions happening before camera updates.
  24369. */
  24370. _this._gatherRenderTargetsStage = BABYLON.Stage.Create();
  24371. /**
  24372. * @hidden
  24373. * Defines the actions happening during the per mesh ready checks.
  24374. */
  24375. _this._isReadyForMeshStage = BABYLON.Stage.Create();
  24376. /**
  24377. * @hidden
  24378. * Defines the actions happening before evaluate active mesh checks.
  24379. */
  24380. _this._beforeEvaluateActiveMeshStage = BABYLON.Stage.Create();
  24381. /**
  24382. * @hidden
  24383. * Defines the actions happening during the evaluate sub mesh checks.
  24384. */
  24385. _this._evaluateSubMeshStage = BABYLON.Stage.Create();
  24386. /**
  24387. * @hidden
  24388. * Defines the actions happening during the active mesh stage.
  24389. */
  24390. _this._activeMeshStage = BABYLON.Stage.Create();
  24391. /**
  24392. * @hidden
  24393. * Defines the actions happening during the per camera render target step.
  24394. */
  24395. _this._cameraDrawRenderTargetStage = BABYLON.Stage.Create();
  24396. /**
  24397. * @hidden
  24398. * Defines the actions happening just before the active camera is drawing.
  24399. */
  24400. _this._beforeCameraDrawStage = BABYLON.Stage.Create();
  24401. /**
  24402. * @hidden
  24403. * Defines the actions happening just before a rendering group is drawing.
  24404. */
  24405. _this._beforeRenderingGroupDrawStage = BABYLON.Stage.Create();
  24406. /**
  24407. * @hidden
  24408. * Defines the actions happening just before a mesh is drawing.
  24409. */
  24410. _this._beforeRenderingMeshStage = BABYLON.Stage.Create();
  24411. /**
  24412. * @hidden
  24413. * Defines the actions happening just after a mesh has been drawn.
  24414. */
  24415. _this._afterRenderingMeshStage = BABYLON.Stage.Create();
  24416. /**
  24417. * @hidden
  24418. * Defines the actions happening just after a rendering group has been drawn.
  24419. */
  24420. _this._afterRenderingGroupDrawStage = BABYLON.Stage.Create();
  24421. /**
  24422. * @hidden
  24423. * Defines the actions happening just after the active camera has been drawn.
  24424. */
  24425. _this._afterCameraDrawStage = BABYLON.Stage.Create();
  24426. /**
  24427. * @hidden
  24428. * Defines the actions happening when a pointer move event happens.
  24429. */
  24430. _this._pointerMoveStage = BABYLON.Stage.Create();
  24431. /**
  24432. * @hidden
  24433. * Defines the actions happening when a pointer down event happens.
  24434. */
  24435. _this._pointerDownStage = BABYLON.Stage.Create();
  24436. /**
  24437. * @hidden
  24438. * Defines the actions happening when a pointer up event happens.
  24439. */
  24440. _this._pointerUpStage = BABYLON.Stage.Create();
  24441. _this._defaultMeshCandidates = {
  24442. data: [],
  24443. length: 0
  24444. };
  24445. _this._defaultSubMeshCandidates = {
  24446. data: [],
  24447. length: 0
  24448. };
  24449. _this._activeMeshesFrozen = false;
  24450. /** @hidden */
  24451. _this._allowPostProcessClearColor = true;
  24452. _this._tempPickingRay = BABYLON.Ray ? BABYLON.Ray.Zero() : null;
  24453. /** Gets or sets a boolean blocking all the calls to markAllMaterialsAsDirty (ie. the materials won't be updated if they are out of sync) */
  24454. _this.blockMaterialDirtyMechanism = false;
  24455. _this._engine = engine || BABYLON.Engine.LastCreatedEngine;
  24456. _this._engine.scenes.push(_this);
  24457. _this._uid = null;
  24458. _this._renderingManager = new BABYLON.RenderingManager(_this);
  24459. if (BABYLON.PostProcessManager) {
  24460. _this.postProcessManager = new BABYLON.PostProcessManager(_this);
  24461. }
  24462. if (BABYLON.Tools.IsWindowObjectExist()) {
  24463. _this.attachControl();
  24464. }
  24465. //collision coordinator initialization. For now legacy per default.
  24466. _this.workerCollisions = false; //(!!Worker && (!!BABYLON.CollisionWorker || BABYLON.WorkerIncluded));
  24467. // Uniform Buffer
  24468. _this._createUbo();
  24469. // Default Image processing definition
  24470. if (BABYLON.ImageProcessingConfiguration) {
  24471. _this._imageProcessingConfiguration = new BABYLON.ImageProcessingConfiguration();
  24472. }
  24473. _this.setDefaultCandidateProviders();
  24474. return _this;
  24475. }
  24476. Object.defineProperty(Scene.prototype, "environmentTexture", {
  24477. /**
  24478. * Texture used in all pbr material as the reflection texture.
  24479. * As in the majority of the scene they are the same (exception for multi room and so on),
  24480. * this is easier to reference from here than from all the materials.
  24481. */
  24482. get: function () {
  24483. return this._environmentTexture;
  24484. },
  24485. /**
  24486. * Texture used in all pbr material as the reflection texture.
  24487. * As in the majority of the scene they are the same (exception for multi room and so on),
  24488. * this is easier to set here than in all the materials.
  24489. */
  24490. set: function (value) {
  24491. if (this._environmentTexture === value) {
  24492. return;
  24493. }
  24494. this._environmentTexture = value;
  24495. this.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  24496. },
  24497. enumerable: true,
  24498. configurable: true
  24499. });
  24500. Object.defineProperty(Scene.prototype, "imageProcessingConfiguration", {
  24501. /**
  24502. * Default image processing configuration used either in the rendering
  24503. * Forward main pass or through the imageProcessingPostProcess if present.
  24504. * As in the majority of the scene they are the same (exception for multi camera),
  24505. * this is easier to reference from here than from all the materials and post process.
  24506. *
  24507. * No setter as we it is a shared configuration, you can set the values instead.
  24508. */
  24509. get: function () {
  24510. return this._imageProcessingConfiguration;
  24511. },
  24512. enumerable: true,
  24513. configurable: true
  24514. });
  24515. Object.defineProperty(Scene.prototype, "forceWireframe", {
  24516. get: function () {
  24517. return this._forceWireframe;
  24518. },
  24519. /**
  24520. * Gets or sets a boolean indicating if all rendering must be done in wireframe
  24521. */
  24522. set: function (value) {
  24523. if (this._forceWireframe === value) {
  24524. return;
  24525. }
  24526. this._forceWireframe = value;
  24527. this.markAllMaterialsAsDirty(BABYLON.Material.MiscDirtyFlag);
  24528. },
  24529. enumerable: true,
  24530. configurable: true
  24531. });
  24532. Object.defineProperty(Scene.prototype, "forcePointsCloud", {
  24533. get: function () {
  24534. return this._forcePointsCloud;
  24535. },
  24536. /**
  24537. * Gets or sets a boolean indicating if all rendering must be done in point cloud
  24538. */
  24539. set: function (value) {
  24540. if (this._forcePointsCloud === value) {
  24541. return;
  24542. }
  24543. this._forcePointsCloud = value;
  24544. this.markAllMaterialsAsDirty(BABYLON.Material.MiscDirtyFlag);
  24545. },
  24546. enumerable: true,
  24547. configurable: true
  24548. });
  24549. Object.defineProperty(Scene.prototype, "animationPropertiesOverride", {
  24550. /**
  24551. * Gets or sets the animation properties override
  24552. */
  24553. get: function () {
  24554. return this._animationPropertiesOverride;
  24555. },
  24556. set: function (value) {
  24557. this._animationPropertiesOverride = value;
  24558. },
  24559. enumerable: true,
  24560. configurable: true
  24561. });
  24562. Object.defineProperty(Scene.prototype, "onDispose", {
  24563. /** Sets a function to be executed when this scene is disposed. */
  24564. set: function (callback) {
  24565. if (this._onDisposeObserver) {
  24566. this.onDisposeObservable.remove(this._onDisposeObserver);
  24567. }
  24568. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  24569. },
  24570. enumerable: true,
  24571. configurable: true
  24572. });
  24573. Object.defineProperty(Scene.prototype, "beforeRender", {
  24574. /** Sets a function to be executed before rendering this scene */
  24575. set: function (callback) {
  24576. if (this._onBeforeRenderObserver) {
  24577. this.onBeforeRenderObservable.remove(this._onBeforeRenderObserver);
  24578. }
  24579. if (callback) {
  24580. this._onBeforeRenderObserver = this.onBeforeRenderObservable.add(callback);
  24581. }
  24582. },
  24583. enumerable: true,
  24584. configurable: true
  24585. });
  24586. Object.defineProperty(Scene.prototype, "afterRender", {
  24587. /** Sets a function to be executed after rendering this scene */
  24588. set: function (callback) {
  24589. if (this._onAfterRenderObserver) {
  24590. this.onAfterRenderObservable.remove(this._onAfterRenderObserver);
  24591. }
  24592. if (callback) {
  24593. this._onAfterRenderObserver = this.onAfterRenderObservable.add(callback);
  24594. }
  24595. },
  24596. enumerable: true,
  24597. configurable: true
  24598. });
  24599. Object.defineProperty(Scene.prototype, "beforeCameraRender", {
  24600. /** Sets a function to be executed before rendering a camera*/
  24601. set: function (callback) {
  24602. if (this._onBeforeCameraRenderObserver) {
  24603. this.onBeforeCameraRenderObservable.remove(this._onBeforeCameraRenderObserver);
  24604. }
  24605. this._onBeforeCameraRenderObserver = this.onBeforeCameraRenderObservable.add(callback);
  24606. },
  24607. enumerable: true,
  24608. configurable: true
  24609. });
  24610. Object.defineProperty(Scene.prototype, "afterCameraRender", {
  24611. /** Sets a function to be executed after rendering a camera*/
  24612. set: function (callback) {
  24613. if (this._onAfterCameraRenderObserver) {
  24614. this.onAfterCameraRenderObservable.remove(this._onAfterCameraRenderObserver);
  24615. }
  24616. this._onAfterCameraRenderObserver = this.onAfterCameraRenderObservable.add(callback);
  24617. },
  24618. enumerable: true,
  24619. configurable: true
  24620. });
  24621. Object.defineProperty(Scene.prototype, "unTranslatedPointer", {
  24622. /**
  24623. * Gets the pointer coordinates without any translation (ie. straight out of the pointer event)
  24624. */
  24625. get: function () {
  24626. return new BABYLON.Vector2(this._unTranslatedPointerX, this._unTranslatedPointerY);
  24627. },
  24628. enumerable: true,
  24629. configurable: true
  24630. });
  24631. Object.defineProperty(Scene.prototype, "useRightHandedSystem", {
  24632. get: function () {
  24633. return this._useRightHandedSystem;
  24634. },
  24635. /**
  24636. * Gets or sets a boolean indicating if the scene must use right-handed coordinates system
  24637. */
  24638. set: function (value) {
  24639. if (this._useRightHandedSystem === value) {
  24640. return;
  24641. }
  24642. this._useRightHandedSystem = value;
  24643. this.markAllMaterialsAsDirty(BABYLON.Material.MiscDirtyFlag);
  24644. },
  24645. enumerable: true,
  24646. configurable: true
  24647. });
  24648. /**
  24649. * Sets the step Id used by deterministic lock step
  24650. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  24651. * @param newStepId defines the step Id
  24652. */
  24653. Scene.prototype.setStepId = function (newStepId) {
  24654. this._currentStepId = newStepId;
  24655. };
  24656. ;
  24657. /**
  24658. * Gets the step Id used by deterministic lock step
  24659. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  24660. * @returns the step Id
  24661. */
  24662. Scene.prototype.getStepId = function () {
  24663. return this._currentStepId;
  24664. };
  24665. ;
  24666. /**
  24667. * Gets the internal step used by deterministic lock step
  24668. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  24669. * @returns the internal step
  24670. */
  24671. Scene.prototype.getInternalStep = function () {
  24672. return this._currentInternalStep;
  24673. };
  24674. ;
  24675. Object.defineProperty(Scene.prototype, "fogEnabled", {
  24676. get: function () {
  24677. return this._fogEnabled;
  24678. },
  24679. /**
  24680. * Gets or sets a boolean indicating if fog is enabled on this scene
  24681. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24682. */
  24683. set: function (value) {
  24684. if (this._fogEnabled === value) {
  24685. return;
  24686. }
  24687. this._fogEnabled = value;
  24688. this.markAllMaterialsAsDirty(BABYLON.Material.MiscDirtyFlag);
  24689. },
  24690. enumerable: true,
  24691. configurable: true
  24692. });
  24693. Object.defineProperty(Scene.prototype, "fogMode", {
  24694. get: function () {
  24695. return this._fogMode;
  24696. },
  24697. /**
  24698. * Gets or sets the fog mode to use
  24699. * @see http://doc.babylonjs.com/babylon101/environment#fog
  24700. */
  24701. set: function (value) {
  24702. if (this._fogMode === value) {
  24703. return;
  24704. }
  24705. this._fogMode = value;
  24706. this.markAllMaterialsAsDirty(BABYLON.Material.MiscDirtyFlag);
  24707. },
  24708. enumerable: true,
  24709. configurable: true
  24710. });
  24711. Object.defineProperty(Scene.prototype, "shadowsEnabled", {
  24712. get: function () {
  24713. return this._shadowsEnabled;
  24714. },
  24715. /**
  24716. * Gets or sets a boolean indicating if shadows are enabled on this scene
  24717. */
  24718. set: function (value) {
  24719. if (this._shadowsEnabled === value) {
  24720. return;
  24721. }
  24722. this._shadowsEnabled = value;
  24723. this.markAllMaterialsAsDirty(BABYLON.Material.LightDirtyFlag);
  24724. },
  24725. enumerable: true,
  24726. configurable: true
  24727. });
  24728. Object.defineProperty(Scene.prototype, "lightsEnabled", {
  24729. get: function () {
  24730. return this._lightsEnabled;
  24731. },
  24732. /**
  24733. * Gets or sets a boolean indicating if lights are enabled on this scene
  24734. */
  24735. set: function (value) {
  24736. if (this._lightsEnabled === value) {
  24737. return;
  24738. }
  24739. this._lightsEnabled = value;
  24740. this.markAllMaterialsAsDirty(BABYLON.Material.LightDirtyFlag);
  24741. },
  24742. enumerable: true,
  24743. configurable: true
  24744. });
  24745. Object.defineProperty(Scene.prototype, "defaultMaterial", {
  24746. /** The default material used on meshes when no material is affected */
  24747. get: function () {
  24748. if (!this._defaultMaterial) {
  24749. this._defaultMaterial = new BABYLON.StandardMaterial("default material", this);
  24750. }
  24751. return this._defaultMaterial;
  24752. },
  24753. /** The default material used on meshes when no material is affected */
  24754. set: function (value) {
  24755. this._defaultMaterial = value;
  24756. },
  24757. enumerable: true,
  24758. configurable: true
  24759. });
  24760. Object.defineProperty(Scene.prototype, "texturesEnabled", {
  24761. get: function () {
  24762. return this._texturesEnabled;
  24763. },
  24764. /**
  24765. * Gets or sets a boolean indicating if textures are enabled on this scene
  24766. */
  24767. set: function (value) {
  24768. if (this._texturesEnabled === value) {
  24769. return;
  24770. }
  24771. this._texturesEnabled = value;
  24772. this.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  24773. },
  24774. enumerable: true,
  24775. configurable: true
  24776. });
  24777. Object.defineProperty(Scene.prototype, "skeletonsEnabled", {
  24778. get: function () {
  24779. return this._skeletonsEnabled;
  24780. },
  24781. /**
  24782. * Gets or sets a boolean indicating if skeletons are enabled on this scene
  24783. */
  24784. set: function (value) {
  24785. if (this._skeletonsEnabled === value) {
  24786. return;
  24787. }
  24788. this._skeletonsEnabled = value;
  24789. this.markAllMaterialsAsDirty(BABYLON.Material.AttributesDirtyFlag);
  24790. },
  24791. enumerable: true,
  24792. configurable: true
  24793. });
  24794. Object.defineProperty(Scene.prototype, "mainSoundTrack", {
  24795. /**
  24796. * Gets the main soundtrack associated with the scene
  24797. */
  24798. get: function () {
  24799. if (!this._mainSoundTrack) {
  24800. this._mainSoundTrack = new BABYLON.SoundTrack(this, { mainTrack: true });
  24801. }
  24802. return this._mainSoundTrack;
  24803. },
  24804. enumerable: true,
  24805. configurable: true
  24806. });
  24807. Object.defineProperty(Scene.prototype, "_isAlternateRenderingEnabled", {
  24808. /** @hidden */
  24809. get: function () {
  24810. return this._alternateRendering;
  24811. },
  24812. enumerable: true,
  24813. configurable: true
  24814. });
  24815. Object.defineProperty(Scene.prototype, "frustumPlanes", {
  24816. /**
  24817. * Gets the list of frustum planes (built from the active camera)
  24818. */
  24819. get: function () {
  24820. return this._frustumPlanes;
  24821. },
  24822. enumerable: true,
  24823. configurable: true
  24824. });
  24825. /**
  24826. * Registers the transient components if needed.
  24827. */
  24828. Scene.prototype._registerTransientComponents = function () {
  24829. // Register components that have been associated lately to the scene.
  24830. if (this._transientComponents.length > 0) {
  24831. for (var _i = 0, _a = this._transientComponents; _i < _a.length; _i++) {
  24832. var component = _a[_i];
  24833. component.register();
  24834. }
  24835. this._transientComponents = [];
  24836. }
  24837. };
  24838. /**
  24839. * @hidden
  24840. * Add a component to the scene.
  24841. * Note that the ccomponent could be registered on th next frame if this is called after
  24842. * the register component stage.
  24843. * @param component Defines the component to add to the scene
  24844. */
  24845. Scene.prototype._addComponent = function (component) {
  24846. this._components.push(component);
  24847. this._transientComponents.push(component);
  24848. var serializableComponent = component;
  24849. if (serializableComponent.addFromContainer) {
  24850. this._serializableComponents.push(serializableComponent);
  24851. }
  24852. };
  24853. /**
  24854. * @hidden
  24855. * Gets a component from the scene.
  24856. * @param name defines the name of the component to retrieve
  24857. * @returns the component or null if not present
  24858. */
  24859. Scene.prototype._getComponent = function (name) {
  24860. for (var _i = 0, _a = this._components; _i < _a.length; _i++) {
  24861. var component = _a[_i];
  24862. if (component.name === name) {
  24863. return component;
  24864. }
  24865. }
  24866. return null;
  24867. };
  24868. /**
  24869. * @hidden
  24870. */
  24871. Scene.prototype._getDefaultMeshCandidates = function () {
  24872. this._defaultMeshCandidates.data = this.meshes;
  24873. this._defaultMeshCandidates.length = this.meshes.length;
  24874. return this._defaultMeshCandidates;
  24875. };
  24876. /**
  24877. * @hidden
  24878. */
  24879. Scene.prototype._getDefaultSubMeshCandidates = function (mesh) {
  24880. this._defaultSubMeshCandidates.data = mesh.subMeshes;
  24881. this._defaultSubMeshCandidates.length = mesh.subMeshes.length;
  24882. return this._defaultSubMeshCandidates;
  24883. };
  24884. /**
  24885. * Sets the default candidate providers for the scene.
  24886. * This sets the getActiveMeshCandidates, getActiveSubMeshCandidates, getIntersectingSubMeshCandidates
  24887. * and getCollidingSubMeshCandidates to their default function
  24888. */
  24889. Scene.prototype.setDefaultCandidateProviders = function () {
  24890. this.getActiveMeshCandidates = this._getDefaultMeshCandidates.bind(this);
  24891. this.getActiveSubMeshCandidates = this._getDefaultSubMeshCandidates.bind(this);
  24892. this.getIntersectingSubMeshCandidates = this._getDefaultSubMeshCandidates.bind(this);
  24893. this.getCollidingSubMeshCandidates = this._getDefaultSubMeshCandidates.bind(this);
  24894. };
  24895. Object.defineProperty(Scene.prototype, "workerCollisions", {
  24896. /**
  24897. * Gets a boolean indicating if collisions are processed on a web worker
  24898. * @see http://doc.babylonjs.com/babylon101/cameras,_mesh_collisions_and_gravity#web-worker-based-collision-system-since-21
  24899. */
  24900. get: function () {
  24901. return this._workerCollisions;
  24902. },
  24903. set: function (enabled) {
  24904. if (!BABYLON.CollisionCoordinatorLegacy) {
  24905. return;
  24906. }
  24907. enabled = (enabled && !!Worker && !!BABYLON.CollisionWorker);
  24908. this._workerCollisions = enabled;
  24909. if (this.collisionCoordinator) {
  24910. this.collisionCoordinator.destroy();
  24911. }
  24912. this.collisionCoordinator = enabled ? new BABYLON.CollisionCoordinatorWorker() : new BABYLON.CollisionCoordinatorLegacy();
  24913. this.collisionCoordinator.init(this);
  24914. },
  24915. enumerable: true,
  24916. configurable: true
  24917. });
  24918. Object.defineProperty(Scene.prototype, "meshUnderPointer", {
  24919. /**
  24920. * Gets the mesh that is currently under the pointer
  24921. */
  24922. get: function () {
  24923. return this._pointerOverMesh;
  24924. },
  24925. enumerable: true,
  24926. configurable: true
  24927. });
  24928. Object.defineProperty(Scene.prototype, "pointerX", {
  24929. /**
  24930. * Gets the current on-screen X position of the pointer
  24931. */
  24932. get: function () {
  24933. return this._pointerX;
  24934. },
  24935. enumerable: true,
  24936. configurable: true
  24937. });
  24938. Object.defineProperty(Scene.prototype, "pointerY", {
  24939. /**
  24940. * Gets the current on-screen Y position of the pointer
  24941. */
  24942. get: function () {
  24943. return this._pointerY;
  24944. },
  24945. enumerable: true,
  24946. configurable: true
  24947. });
  24948. /**
  24949. * Gets the cached material (ie. the latest rendered one)
  24950. * @returns the cached material
  24951. */
  24952. Scene.prototype.getCachedMaterial = function () {
  24953. return this._cachedMaterial;
  24954. };
  24955. /**
  24956. * Gets the cached effect (ie. the latest rendered one)
  24957. * @returns the cached effect
  24958. */
  24959. Scene.prototype.getCachedEffect = function () {
  24960. return this._cachedEffect;
  24961. };
  24962. /**
  24963. * Gets the cached visibility state (ie. the latest rendered one)
  24964. * @returns the cached visibility state
  24965. */
  24966. Scene.prototype.getCachedVisibility = function () {
  24967. return this._cachedVisibility;
  24968. };
  24969. /**
  24970. * Gets a boolean indicating if the current material / effect / visibility must be bind again
  24971. * @param material defines the current material
  24972. * @param effect defines the current effect
  24973. * @param visibility defines the current visibility state
  24974. * @returns true if one parameter is not cached
  24975. */
  24976. Scene.prototype.isCachedMaterialInvalid = function (material, effect, visibility) {
  24977. if (visibility === void 0) { visibility = 1; }
  24978. return this._cachedEffect !== effect || this._cachedMaterial !== material || this._cachedVisibility !== visibility;
  24979. };
  24980. /**
  24981. * Gets the engine associated with the scene
  24982. * @returns an Engine
  24983. */
  24984. Scene.prototype.getEngine = function () {
  24985. return this._engine;
  24986. };
  24987. /**
  24988. * Gets the total number of vertices rendered per frame
  24989. * @returns the total number of vertices rendered per frame
  24990. */
  24991. Scene.prototype.getTotalVertices = function () {
  24992. return this._totalVertices.current;
  24993. };
  24994. Object.defineProperty(Scene.prototype, "totalVerticesPerfCounter", {
  24995. /**
  24996. * Gets the performance counter for total vertices
  24997. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#instrumentation
  24998. */
  24999. get: function () {
  25000. return this._totalVertices;
  25001. },
  25002. enumerable: true,
  25003. configurable: true
  25004. });
  25005. /**
  25006. * Gets the total number of active indices rendered per frame (You can deduce the number of rendered triangles by dividing this number by 3)
  25007. * @returns the total number of active indices rendered per frame
  25008. */
  25009. Scene.prototype.getActiveIndices = function () {
  25010. return this._activeIndices.current;
  25011. };
  25012. Object.defineProperty(Scene.prototype, "totalActiveIndicesPerfCounter", {
  25013. /**
  25014. * Gets the performance counter for active indices
  25015. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#instrumentation
  25016. */
  25017. get: function () {
  25018. return this._activeIndices;
  25019. },
  25020. enumerable: true,
  25021. configurable: true
  25022. });
  25023. /**
  25024. * Gets the total number of active particles rendered per frame
  25025. * @returns the total number of active particles rendered per frame
  25026. */
  25027. Scene.prototype.getActiveParticles = function () {
  25028. return this._activeParticles.current;
  25029. };
  25030. Object.defineProperty(Scene.prototype, "activeParticlesPerfCounter", {
  25031. /**
  25032. * Gets the performance counter for active particles
  25033. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#instrumentation
  25034. */
  25035. get: function () {
  25036. return this._activeParticles;
  25037. },
  25038. enumerable: true,
  25039. configurable: true
  25040. });
  25041. /**
  25042. * Gets the total number of active bones rendered per frame
  25043. * @returns the total number of active bones rendered per frame
  25044. */
  25045. Scene.prototype.getActiveBones = function () {
  25046. return this._activeBones.current;
  25047. };
  25048. Object.defineProperty(Scene.prototype, "activeBonesPerfCounter", {
  25049. /**
  25050. * Gets the performance counter for active bones
  25051. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene#instrumentation
  25052. */
  25053. get: function () {
  25054. return this._activeBones;
  25055. },
  25056. enumerable: true,
  25057. configurable: true
  25058. });
  25059. /** @hidden */
  25060. Scene.prototype.getInterFramePerfCounter = function () {
  25061. BABYLON.Tools.Warn("getInterFramePerfCounter is deprecated. Please use SceneInstrumentation class");
  25062. return 0;
  25063. };
  25064. Object.defineProperty(Scene.prototype, "interFramePerfCounter", {
  25065. /** @hidden */
  25066. get: function () {
  25067. BABYLON.Tools.Warn("interFramePerfCounter is deprecated. Please use SceneInstrumentation class");
  25068. return null;
  25069. },
  25070. enumerable: true,
  25071. configurable: true
  25072. });
  25073. /** @hidden */
  25074. Scene.prototype.getLastFrameDuration = function () {
  25075. BABYLON.Tools.Warn("getLastFrameDuration is deprecated. Please use SceneInstrumentation class");
  25076. return 0;
  25077. };
  25078. Object.defineProperty(Scene.prototype, "lastFramePerfCounter", {
  25079. /** @hidden */
  25080. get: function () {
  25081. BABYLON.Tools.Warn("lastFramePerfCounter is deprecated. Please use SceneInstrumentation class");
  25082. return null;
  25083. },
  25084. enumerable: true,
  25085. configurable: true
  25086. });
  25087. /** @hidden */
  25088. Scene.prototype.getEvaluateActiveMeshesDuration = function () {
  25089. BABYLON.Tools.Warn("getEvaluateActiveMeshesDuration is deprecated. Please use SceneInstrumentation class");
  25090. return 0;
  25091. };
  25092. Object.defineProperty(Scene.prototype, "evaluateActiveMeshesDurationPerfCounter", {
  25093. /** @hidden */
  25094. get: function () {
  25095. BABYLON.Tools.Warn("evaluateActiveMeshesDurationPerfCounter is deprecated. Please use SceneInstrumentation class");
  25096. return null;
  25097. },
  25098. enumerable: true,
  25099. configurable: true
  25100. });
  25101. /**
  25102. * Gets the array of active meshes
  25103. * @returns an array of AbstractMesh
  25104. */
  25105. Scene.prototype.getActiveMeshes = function () {
  25106. return this._activeMeshes;
  25107. };
  25108. /** @hidden */
  25109. Scene.prototype.getRenderTargetsDuration = function () {
  25110. BABYLON.Tools.Warn("getRenderTargetsDuration is deprecated. Please use SceneInstrumentation class");
  25111. return 0;
  25112. };
  25113. /** @hidden */
  25114. Scene.prototype.getRenderDuration = function () {
  25115. BABYLON.Tools.Warn("getRenderDuration is deprecated. Please use SceneInstrumentation class");
  25116. return 0;
  25117. };
  25118. Object.defineProperty(Scene.prototype, "renderDurationPerfCounter", {
  25119. /** @hidden */
  25120. get: function () {
  25121. BABYLON.Tools.Warn("renderDurationPerfCounter is deprecated. Please use SceneInstrumentation class");
  25122. return null;
  25123. },
  25124. enumerable: true,
  25125. configurable: true
  25126. });
  25127. /** @hidden */
  25128. Scene.prototype.getParticlesDuration = function () {
  25129. BABYLON.Tools.Warn("getParticlesDuration is deprecated. Please use SceneInstrumentation class");
  25130. return 0;
  25131. };
  25132. Object.defineProperty(Scene.prototype, "particlesDurationPerfCounter", {
  25133. /** @hidden */
  25134. get: function () {
  25135. BABYLON.Tools.Warn("particlesDurationPerfCounter is deprecated. Please use SceneInstrumentation class");
  25136. return null;
  25137. },
  25138. enumerable: true,
  25139. configurable: true
  25140. });
  25141. /** @hidden */
  25142. Scene.prototype.getSpritesDuration = function () {
  25143. BABYLON.Tools.Warn("getSpritesDuration is deprecated. Please use SceneInstrumentation class");
  25144. return 0;
  25145. };
  25146. Object.defineProperty(Scene.prototype, "spriteDuractionPerfCounter", {
  25147. /** @hidden */
  25148. get: function () {
  25149. BABYLON.Tools.Warn("spriteDuractionPerfCounter is deprecated. Please use SceneInstrumentation class");
  25150. return null;
  25151. },
  25152. enumerable: true,
  25153. configurable: true
  25154. });
  25155. /**
  25156. * Gets the animation ratio (which is 1.0 is the scene renders at 60fps and 2 if the scene renders at 30fps, etc.)
  25157. * @returns a number
  25158. */
  25159. Scene.prototype.getAnimationRatio = function () {
  25160. return this._animationRatio !== undefined ? this._animationRatio : 1;
  25161. };
  25162. /**
  25163. * Gets an unique Id for the current frame
  25164. * @returns a number
  25165. */
  25166. Scene.prototype.getRenderId = function () {
  25167. return this._renderId;
  25168. };
  25169. /** Call this function if you want to manually increment the render Id*/
  25170. Scene.prototype.incrementRenderId = function () {
  25171. this._renderId++;
  25172. };
  25173. Scene.prototype._updatePointerPosition = function (evt) {
  25174. var canvasRect = this._engine.getRenderingCanvasClientRect();
  25175. if (!canvasRect) {
  25176. return;
  25177. }
  25178. this._pointerX = evt.clientX - canvasRect.left;
  25179. this._pointerY = evt.clientY - canvasRect.top;
  25180. this._unTranslatedPointerX = this._pointerX;
  25181. this._unTranslatedPointerY = this._pointerY;
  25182. };
  25183. Scene.prototype._createUbo = function () {
  25184. this._sceneUbo = new BABYLON.UniformBuffer(this._engine, undefined, true);
  25185. this._sceneUbo.addUniform("viewProjection", 16);
  25186. this._sceneUbo.addUniform("view", 16);
  25187. };
  25188. Scene.prototype._createAlternateUbo = function () {
  25189. this._alternateSceneUbo = new BABYLON.UniformBuffer(this._engine, undefined, true);
  25190. this._alternateSceneUbo.addUniform("viewProjection", 16);
  25191. this._alternateSceneUbo.addUniform("view", 16);
  25192. };
  25193. // Pointers handling
  25194. Scene.prototype._setRayOnPointerInfo = function (pointerInfo) {
  25195. if (pointerInfo.pickInfo) {
  25196. if (!pointerInfo.pickInfo.ray) {
  25197. pointerInfo.pickInfo.ray = this.createPickingRay(pointerInfo.event.offsetX, pointerInfo.event.offsetY, BABYLON.Matrix.Identity(), this.activeCamera);
  25198. }
  25199. }
  25200. };
  25201. /**
  25202. * Use this method to simulate a pointer move on a mesh
  25203. * The pickResult parameter can be obtained from a scene.pick or scene.pickWithRay
  25204. * @param pickResult pickingInfo of the object wished to simulate pointer event on
  25205. * @param pointerEventInit pointer event state to be used when simulating the pointer event (eg. pointer id for multitouch)
  25206. * @returns the current scene
  25207. */
  25208. Scene.prototype.simulatePointerMove = function (pickResult, pointerEventInit) {
  25209. var evt = new PointerEvent("pointermove", pointerEventInit);
  25210. if (this._checkPrePointerObservable(pickResult, evt, BABYLON.PointerEventTypes.POINTERMOVE)) {
  25211. return this;
  25212. }
  25213. return this._processPointerMove(pickResult, evt);
  25214. };
  25215. Scene.prototype._processPointerMove = function (pickResult, evt) {
  25216. var canvas = this._engine.getRenderingCanvas();
  25217. if (!canvas) {
  25218. return this;
  25219. }
  25220. // Restore pointer
  25221. canvas.style.cursor = this.defaultCursor;
  25222. var isMeshPicked = (pickResult && pickResult.hit && pickResult.pickedMesh) ? true : false;
  25223. if (isMeshPicked) {
  25224. this.setPointerOverMesh(pickResult.pickedMesh);
  25225. if (this._pointerOverMesh && this._pointerOverMesh.actionManager && this._pointerOverMesh.actionManager.hasPointerTriggers) {
  25226. if (this._pointerOverMesh.actionManager.hoverCursor) {
  25227. canvas.style.cursor = this._pointerOverMesh.actionManager.hoverCursor;
  25228. }
  25229. else {
  25230. canvas.style.cursor = this.hoverCursor;
  25231. }
  25232. }
  25233. }
  25234. else {
  25235. this.setPointerOverMesh(null);
  25236. }
  25237. for (var _i = 0, _a = this._pointerMoveStage; _i < _a.length; _i++) {
  25238. var step = _a[_i];
  25239. pickResult = step.action(this._unTranslatedPointerX, this._unTranslatedPointerY, pickResult, isMeshPicked, canvas);
  25240. }
  25241. if (pickResult) {
  25242. var type = evt.type === "mousewheel" || evt.type === "DOMMouseScroll" ? BABYLON.PointerEventTypes.POINTERWHEEL : BABYLON.PointerEventTypes.POINTERMOVE;
  25243. if (this.onPointerMove) {
  25244. this.onPointerMove(evt, pickResult, type);
  25245. }
  25246. if (this.onPointerObservable.hasObservers()) {
  25247. var pi = new BABYLON.PointerInfo(type, evt, pickResult);
  25248. this._setRayOnPointerInfo(pi);
  25249. this.onPointerObservable.notifyObservers(pi, type);
  25250. }
  25251. }
  25252. return this;
  25253. };
  25254. Scene.prototype._checkPrePointerObservable = function (pickResult, evt, type) {
  25255. var pi = new BABYLON.PointerInfoPre(type, evt, this._unTranslatedPointerX, this._unTranslatedPointerY);
  25256. if (pickResult) {
  25257. pi.ray = pickResult.ray;
  25258. }
  25259. this.onPrePointerObservable.notifyObservers(pi, type);
  25260. if (pi.skipOnPointerObservable) {
  25261. return true;
  25262. }
  25263. else {
  25264. return false;
  25265. }
  25266. };
  25267. /**
  25268. * Use this method to simulate a pointer down on a mesh
  25269. * The pickResult parameter can be obtained from a scene.pick or scene.pickWithRay
  25270. * @param pickResult pickingInfo of the object wished to simulate pointer event on
  25271. * @param pointerEventInit pointer event state to be used when simulating the pointer event (eg. pointer id for multitouch)
  25272. * @returns the current scene
  25273. */
  25274. Scene.prototype.simulatePointerDown = function (pickResult, pointerEventInit) {
  25275. var evt = new PointerEvent("pointerdown", pointerEventInit);
  25276. if (this._checkPrePointerObservable(pickResult, evt, BABYLON.PointerEventTypes.POINTERDOWN)) {
  25277. return this;
  25278. }
  25279. return this._processPointerDown(pickResult, evt);
  25280. };
  25281. Scene.prototype._processPointerDown = function (pickResult, evt) {
  25282. var _this = this;
  25283. if (pickResult && pickResult.hit && pickResult.pickedMesh) {
  25284. this._pickedDownMesh = pickResult.pickedMesh;
  25285. var actionManager = pickResult.pickedMesh.actionManager;
  25286. if (actionManager) {
  25287. if (actionManager.hasPickTriggers) {
  25288. actionManager.processTrigger(BABYLON.ActionManager.OnPickDownTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25289. switch (evt.button) {
  25290. case 0:
  25291. actionManager.processTrigger(BABYLON.ActionManager.OnLeftPickTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25292. break;
  25293. case 1:
  25294. actionManager.processTrigger(BABYLON.ActionManager.OnCenterPickTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25295. break;
  25296. case 2:
  25297. actionManager.processTrigger(BABYLON.ActionManager.OnRightPickTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25298. break;
  25299. }
  25300. }
  25301. if (actionManager.hasSpecificTrigger(BABYLON.ActionManager.OnLongPressTrigger)) {
  25302. window.setTimeout(function () {
  25303. var pickResult = _this.pick(_this._unTranslatedPointerX, _this._unTranslatedPointerY, function (mesh) { return (mesh.isPickable && mesh.isVisible && mesh.isReady() && mesh.actionManager && mesh.actionManager.hasSpecificTrigger(BABYLON.ActionManager.OnLongPressTrigger) && mesh == _this._pickedDownMesh); }, false, _this.cameraToUseForPointers);
  25304. if (pickResult && pickResult.hit && pickResult.pickedMesh && actionManager) {
  25305. if (_this._totalPointersPressed !== 0 &&
  25306. ((Date.now() - _this._startingPointerTime) > Scene.LongPressDelay) &&
  25307. !_this._isPointerSwiping()) {
  25308. _this._startingPointerTime = 0;
  25309. actionManager.processTrigger(BABYLON.ActionManager.OnLongPressTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25310. }
  25311. }
  25312. }, Scene.LongPressDelay);
  25313. }
  25314. }
  25315. }
  25316. else {
  25317. for (var _i = 0, _a = this._pointerDownStage; _i < _a.length; _i++) {
  25318. var step = _a[_i];
  25319. pickResult = step.action(this._unTranslatedPointerX, this._unTranslatedPointerY, pickResult, evt);
  25320. }
  25321. }
  25322. if (pickResult) {
  25323. var type = BABYLON.PointerEventTypes.POINTERDOWN;
  25324. if (this.onPointerDown) {
  25325. this.onPointerDown(evt, pickResult, type);
  25326. }
  25327. if (this.onPointerObservable.hasObservers()) {
  25328. var pi = new BABYLON.PointerInfo(type, evt, pickResult);
  25329. this._setRayOnPointerInfo(pi);
  25330. this.onPointerObservable.notifyObservers(pi, type);
  25331. }
  25332. }
  25333. return this;
  25334. };
  25335. /**
  25336. * Use this method to simulate a pointer up on a mesh
  25337. * The pickResult parameter can be obtained from a scene.pick or scene.pickWithRay
  25338. * @param pickResult pickingInfo of the object wished to simulate pointer event on
  25339. * @param pointerEventInit pointer event state to be used when simulating the pointer event (eg. pointer id for multitouch)
  25340. * @returns the current scene
  25341. */
  25342. Scene.prototype.simulatePointerUp = function (pickResult, pointerEventInit) {
  25343. var evt = new PointerEvent("pointerup", pointerEventInit);
  25344. var clickInfo = new ClickInfo();
  25345. clickInfo.singleClick = true;
  25346. clickInfo.ignore = true;
  25347. if (this._checkPrePointerObservable(pickResult, evt, BABYLON.PointerEventTypes.POINTERUP)) {
  25348. return this;
  25349. }
  25350. return this._processPointerUp(pickResult, evt, clickInfo);
  25351. };
  25352. Scene.prototype._processPointerUp = function (pickResult, evt, clickInfo) {
  25353. if (pickResult && pickResult && pickResult.pickedMesh) {
  25354. this._pickedUpMesh = pickResult.pickedMesh;
  25355. if (this._pickedDownMesh === this._pickedUpMesh) {
  25356. if (this.onPointerPick) {
  25357. this.onPointerPick(evt, pickResult);
  25358. }
  25359. if (clickInfo.singleClick && !clickInfo.ignore && this.onPointerObservable.hasObservers()) {
  25360. var type_1 = BABYLON.PointerEventTypes.POINTERPICK;
  25361. var pi = new BABYLON.PointerInfo(type_1, evt, pickResult);
  25362. this._setRayOnPointerInfo(pi);
  25363. this.onPointerObservable.notifyObservers(pi, type_1);
  25364. }
  25365. }
  25366. if (pickResult.pickedMesh.actionManager) {
  25367. if (clickInfo.ignore) {
  25368. pickResult.pickedMesh.actionManager.processTrigger(BABYLON.ActionManager.OnPickUpTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25369. }
  25370. if (!clickInfo.hasSwiped && !clickInfo.ignore && clickInfo.singleClick) {
  25371. pickResult.pickedMesh.actionManager.processTrigger(BABYLON.ActionManager.OnPickTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25372. }
  25373. if (clickInfo.doubleClick && !clickInfo.ignore && pickResult.pickedMesh.actionManager.hasSpecificTrigger(BABYLON.ActionManager.OnDoublePickTrigger)) {
  25374. pickResult.pickedMesh.actionManager.processTrigger(BABYLON.ActionManager.OnDoublePickTrigger, BABYLON.ActionEvent.CreateNew(pickResult.pickedMesh, evt));
  25375. }
  25376. }
  25377. }
  25378. else {
  25379. if (!clickInfo.ignore) {
  25380. for (var _i = 0, _a = this._pointerUpStage; _i < _a.length; _i++) {
  25381. var step = _a[_i];
  25382. pickResult = step.action(this._unTranslatedPointerX, this._unTranslatedPointerY, pickResult, evt);
  25383. }
  25384. }
  25385. }
  25386. if (this._pickedDownMesh &&
  25387. this._pickedDownMesh.actionManager &&
  25388. this._pickedDownMesh.actionManager.hasSpecificTrigger(BABYLON.ActionManager.OnPickOutTrigger) &&
  25389. this._pickedDownMesh !== this._pickedUpMesh) {
  25390. this._pickedDownMesh.actionManager.processTrigger(BABYLON.ActionManager.OnPickOutTrigger, BABYLON.ActionEvent.CreateNew(this._pickedDownMesh, evt));
  25391. }
  25392. var type = BABYLON.PointerEventTypes.POINTERUP;
  25393. if (this.onPointerObservable.hasObservers()) {
  25394. if (!clickInfo.ignore) {
  25395. if (!clickInfo.hasSwiped) {
  25396. if (clickInfo.singleClick && this.onPointerObservable.hasSpecificMask(BABYLON.PointerEventTypes.POINTERTAP)) {
  25397. var type_2 = BABYLON.PointerEventTypes.POINTERTAP;
  25398. var pi = new BABYLON.PointerInfo(type_2, evt, pickResult);
  25399. this._setRayOnPointerInfo(pi);
  25400. this.onPointerObservable.notifyObservers(pi, type_2);
  25401. }
  25402. if (clickInfo.doubleClick && this.onPointerObservable.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP)) {
  25403. var type_3 = BABYLON.PointerEventTypes.POINTERDOUBLETAP;
  25404. var pi = new BABYLON.PointerInfo(type_3, evt, pickResult);
  25405. this._setRayOnPointerInfo(pi);
  25406. this.onPointerObservable.notifyObservers(pi, type_3);
  25407. }
  25408. }
  25409. }
  25410. else {
  25411. var pi = new BABYLON.PointerInfo(type, evt, pickResult);
  25412. this._setRayOnPointerInfo(pi);
  25413. this.onPointerObservable.notifyObservers(pi, type);
  25414. }
  25415. }
  25416. if (this.onPointerUp) {
  25417. this.onPointerUp(evt, pickResult, type);
  25418. }
  25419. return this;
  25420. };
  25421. /**
  25422. * Gets a boolean indicating if the current pointer event is captured (meaning that the scene has already handled the pointer down)
  25423. * @param pointerId defines the pointer id to use in a multi-touch scenario (0 by default)
  25424. * @returns true if the pointer was captured
  25425. */
  25426. Scene.prototype.isPointerCaptured = function (pointerId) {
  25427. if (pointerId === void 0) { pointerId = 0; }
  25428. return this._pointerCaptures[pointerId];
  25429. };
  25430. /** @hidden */
  25431. Scene.prototype._isPointerSwiping = function () {
  25432. return Math.abs(this._startingPointerPosition.x - this._pointerX) > Scene.DragMovementThreshold ||
  25433. Math.abs(this._startingPointerPosition.y - this._pointerY) > Scene.DragMovementThreshold;
  25434. };
  25435. /**
  25436. * Attach events to the canvas (To handle actionManagers triggers and raise onPointerMove, onPointerDown and onPointerUp
  25437. * @param attachUp defines if you want to attach events to pointerup
  25438. * @param attachDown defines if you want to attach events to pointerdown
  25439. * @param attachMove defines if you want to attach events to pointermove
  25440. */
  25441. Scene.prototype.attachControl = function (attachUp, attachDown, attachMove) {
  25442. var _this = this;
  25443. if (attachUp === void 0) { attachUp = true; }
  25444. if (attachDown === void 0) { attachDown = true; }
  25445. if (attachMove === void 0) { attachMove = true; }
  25446. this._initActionManager = function (act, clickInfo) {
  25447. if (!_this._meshPickProceed) {
  25448. var pickResult = _this.pick(_this._unTranslatedPointerX, _this._unTranslatedPointerY, _this.pointerDownPredicate, false, _this.cameraToUseForPointers);
  25449. _this._currentPickResult = pickResult;
  25450. if (pickResult) {
  25451. act = (pickResult.hit && pickResult.pickedMesh) ? pickResult.pickedMesh.actionManager : null;
  25452. }
  25453. _this._meshPickProceed = true;
  25454. }
  25455. return act;
  25456. };
  25457. this._delayedSimpleClick = function (btn, clickInfo, cb) {
  25458. // double click delay is over and that no double click has been raised since, or the 2 consecutive keys pressed are different
  25459. if ((Date.now() - _this._previousStartingPointerTime > Scene.DoubleClickDelay && !_this._doubleClickOccured) ||
  25460. btn !== _this._previousButtonPressed) {
  25461. _this._doubleClickOccured = false;
  25462. clickInfo.singleClick = true;
  25463. clickInfo.ignore = false;
  25464. cb(clickInfo, _this._currentPickResult);
  25465. }
  25466. };
  25467. this._initClickEvent = function (obs1, obs2, evt, cb) {
  25468. var clickInfo = new ClickInfo();
  25469. _this._currentPickResult = null;
  25470. var act = null;
  25471. var checkPicking = obs1.hasSpecificMask(BABYLON.PointerEventTypes.POINTERPICK) || obs2.hasSpecificMask(BABYLON.PointerEventTypes.POINTERPICK)
  25472. || obs1.hasSpecificMask(BABYLON.PointerEventTypes.POINTERTAP) || obs2.hasSpecificMask(BABYLON.PointerEventTypes.POINTERTAP)
  25473. || obs1.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP) || obs2.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP);
  25474. if (!checkPicking && BABYLON.ActionManager && BABYLON.ActionManager.HasPickTriggers) {
  25475. act = _this._initActionManager(act, clickInfo);
  25476. if (act)
  25477. checkPicking = act.hasPickTriggers;
  25478. }
  25479. if (checkPicking) {
  25480. var btn = evt.button;
  25481. clickInfo.hasSwiped = _this._isPointerSwiping();
  25482. if (!clickInfo.hasSwiped) {
  25483. var checkSingleClickImmediately = !Scene.ExclusiveDoubleClickMode;
  25484. if (!checkSingleClickImmediately) {
  25485. checkSingleClickImmediately = !obs1.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP) &&
  25486. !obs2.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP);
  25487. if (checkSingleClickImmediately && !BABYLON.ActionManager.HasSpecificTrigger(BABYLON.ActionManager.OnDoublePickTrigger)) {
  25488. act = _this._initActionManager(act, clickInfo);
  25489. if (act)
  25490. checkSingleClickImmediately = !act.hasSpecificTrigger(BABYLON.ActionManager.OnDoublePickTrigger);
  25491. }
  25492. }
  25493. if (checkSingleClickImmediately) {
  25494. // single click detected if double click delay is over or two different successive keys pressed without exclusive double click or no double click required
  25495. if (Date.now() - _this._previousStartingPointerTime > Scene.DoubleClickDelay ||
  25496. btn !== _this._previousButtonPressed) {
  25497. clickInfo.singleClick = true;
  25498. cb(clickInfo, _this._currentPickResult);
  25499. }
  25500. }
  25501. // at least one double click is required to be check and exclusive double click is enabled
  25502. else {
  25503. // wait that no double click has been raised during the double click delay
  25504. _this._previousDelayedSimpleClickTimeout = _this._delayedSimpleClickTimeout;
  25505. _this._delayedSimpleClickTimeout = window.setTimeout(_this._delayedSimpleClick.bind(_this, btn, clickInfo, cb), Scene.DoubleClickDelay);
  25506. }
  25507. var checkDoubleClick = obs1.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP) ||
  25508. obs2.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP);
  25509. if (!checkDoubleClick && BABYLON.ActionManager.HasSpecificTrigger(BABYLON.ActionManager.OnDoublePickTrigger)) {
  25510. act = _this._initActionManager(act, clickInfo);
  25511. if (act)
  25512. checkDoubleClick = act.hasSpecificTrigger(BABYLON.ActionManager.OnDoublePickTrigger);
  25513. }
  25514. if (checkDoubleClick) {
  25515. // two successive keys pressed are equal, double click delay is not over and double click has not just occurred
  25516. if (btn === _this._previousButtonPressed &&
  25517. Date.now() - _this._previousStartingPointerTime < Scene.DoubleClickDelay &&
  25518. !_this._doubleClickOccured) {
  25519. // pointer has not moved for 2 clicks, it's a double click
  25520. if (!clickInfo.hasSwiped &&
  25521. !_this._isPointerSwiping()) {
  25522. _this._previousStartingPointerTime = 0;
  25523. _this._doubleClickOccured = true;
  25524. clickInfo.doubleClick = true;
  25525. clickInfo.ignore = false;
  25526. if (Scene.ExclusiveDoubleClickMode && _this._previousDelayedSimpleClickTimeout) {
  25527. clearTimeout(_this._previousDelayedSimpleClickTimeout);
  25528. }
  25529. _this._previousDelayedSimpleClickTimeout = _this._delayedSimpleClickTimeout;
  25530. cb(clickInfo, _this._currentPickResult);
  25531. }
  25532. // if the two successive clicks are too far, it's just two simple clicks
  25533. else {
  25534. _this._doubleClickOccured = false;
  25535. _this._previousStartingPointerTime = _this._startingPointerTime;
  25536. _this._previousStartingPointerPosition.x = _this._startingPointerPosition.x;
  25537. _this._previousStartingPointerPosition.y = _this._startingPointerPosition.y;
  25538. _this._previousButtonPressed = btn;
  25539. if (Scene.ExclusiveDoubleClickMode) {
  25540. if (_this._previousDelayedSimpleClickTimeout) {
  25541. clearTimeout(_this._previousDelayedSimpleClickTimeout);
  25542. }
  25543. _this._previousDelayedSimpleClickTimeout = _this._delayedSimpleClickTimeout;
  25544. cb(clickInfo, _this._previousPickResult);
  25545. }
  25546. else {
  25547. cb(clickInfo, _this._currentPickResult);
  25548. }
  25549. }
  25550. }
  25551. // just the first click of the double has been raised
  25552. else {
  25553. _this._doubleClickOccured = false;
  25554. _this._previousStartingPointerTime = _this._startingPointerTime;
  25555. _this._previousStartingPointerPosition.x = _this._startingPointerPosition.x;
  25556. _this._previousStartingPointerPosition.y = _this._startingPointerPosition.y;
  25557. _this._previousButtonPressed = btn;
  25558. }
  25559. }
  25560. }
  25561. }
  25562. clickInfo.ignore = true;
  25563. cb(clickInfo, _this._currentPickResult);
  25564. };
  25565. this._onPointerMove = function (evt) {
  25566. _this._updatePointerPosition(evt);
  25567. // PreObservable support
  25568. if (_this._checkPrePointerObservable(null, evt, evt.type === "mousewheel" || evt.type === "DOMMouseScroll" ? BABYLON.PointerEventTypes.POINTERWHEEL : BABYLON.PointerEventTypes.POINTERMOVE)) {
  25569. return;
  25570. }
  25571. if (!_this.cameraToUseForPointers && !_this.activeCamera) {
  25572. return;
  25573. }
  25574. if (!_this.pointerMovePredicate) {
  25575. _this.pointerMovePredicate = function (mesh) { return mesh.isPickable && mesh.isVisible && mesh.isReady() && mesh.isEnabled() && (mesh.enablePointerMoveEvents || _this.constantlyUpdateMeshUnderPointer || (mesh.actionManager !== null && mesh.actionManager !== undefined)); };
  25576. }
  25577. // Meshes
  25578. var pickResult = _this.pick(_this._unTranslatedPointerX, _this._unTranslatedPointerY, _this.pointerMovePredicate, false, _this.cameraToUseForPointers);
  25579. _this._processPointerMove(pickResult, evt);
  25580. };
  25581. this._onPointerDown = function (evt) {
  25582. _this._totalPointersPressed++;
  25583. _this._pickedDownMesh = null;
  25584. _this._meshPickProceed = false;
  25585. _this._updatePointerPosition(evt);
  25586. if (_this.preventDefaultOnPointerDown && canvas) {
  25587. evt.preventDefault();
  25588. canvas.focus();
  25589. }
  25590. // PreObservable support
  25591. if (_this._checkPrePointerObservable(null, evt, BABYLON.PointerEventTypes.POINTERDOWN)) {
  25592. return;
  25593. }
  25594. if (!_this.cameraToUseForPointers && !_this.activeCamera) {
  25595. return;
  25596. }
  25597. _this._pointerCaptures[evt.pointerId] = true;
  25598. _this._startingPointerPosition.x = _this._pointerX;
  25599. _this._startingPointerPosition.y = _this._pointerY;
  25600. _this._startingPointerTime = Date.now();
  25601. if (!_this.pointerDownPredicate) {
  25602. _this.pointerDownPredicate = function (mesh) {
  25603. return mesh.isPickable && mesh.isVisible && mesh.isReady() && mesh.isEnabled();
  25604. };
  25605. }
  25606. // Meshes
  25607. _this._pickedDownMesh = null;
  25608. var pickResult = _this.pick(_this._unTranslatedPointerX, _this._unTranslatedPointerY, _this.pointerDownPredicate, false, _this.cameraToUseForPointers);
  25609. _this._processPointerDown(pickResult, evt);
  25610. };
  25611. this._onPointerUp = function (evt) {
  25612. if (_this._totalPointersPressed === 0) { // We are attaching the pointer up to windows because of a bug in FF
  25613. return; // So we need to test it the pointer down was pressed before.
  25614. }
  25615. _this._totalPointersPressed--;
  25616. _this._pickedUpMesh = null;
  25617. _this._meshPickProceed = false;
  25618. _this._updatePointerPosition(evt);
  25619. _this._initClickEvent(_this.onPrePointerObservable, _this.onPointerObservable, evt, function (clickInfo, pickResult) {
  25620. // PreObservable support
  25621. if (_this.onPrePointerObservable.hasObservers()) {
  25622. if (!clickInfo.ignore) {
  25623. if (!clickInfo.hasSwiped) {
  25624. if (clickInfo.singleClick && _this.onPrePointerObservable.hasSpecificMask(BABYLON.PointerEventTypes.POINTERTAP)) {
  25625. if (_this._checkPrePointerObservable(null, evt, BABYLON.PointerEventTypes.POINTERTAP)) {
  25626. return;
  25627. }
  25628. }
  25629. if (clickInfo.doubleClick && _this.onPrePointerObservable.hasSpecificMask(BABYLON.PointerEventTypes.POINTERDOUBLETAP)) {
  25630. if (_this._checkPrePointerObservable(null, evt, BABYLON.PointerEventTypes.POINTERDOUBLETAP)) {
  25631. return;
  25632. }
  25633. }
  25634. }
  25635. }
  25636. else {
  25637. if (_this._checkPrePointerObservable(null, evt, BABYLON.PointerEventTypes.POINTERUP)) {
  25638. return;
  25639. }
  25640. }
  25641. }
  25642. if (!_this.cameraToUseForPointers && !_this.activeCamera) {
  25643. return;
  25644. }
  25645. _this._pointerCaptures[evt.pointerId] = false;
  25646. if (!_this.pointerUpPredicate) {
  25647. _this.pointerUpPredicate = function (mesh) {
  25648. return mesh.isPickable && mesh.isVisible && mesh.isReady() && mesh.isEnabled();
  25649. };
  25650. }
  25651. // Meshes
  25652. if (!_this._meshPickProceed && (BABYLON.ActionManager && BABYLON.ActionManager.HasTriggers || _this.onPointerObservable.hasObservers())) {
  25653. _this._initActionManager(null, clickInfo);
  25654. }
  25655. if (!pickResult) {
  25656. pickResult = _this._currentPickResult;
  25657. }
  25658. _this._processPointerUp(pickResult, evt, clickInfo);
  25659. _this._previousPickResult = _this._currentPickResult;
  25660. });
  25661. };
  25662. this._onKeyDown = function (evt) {
  25663. var type = BABYLON.KeyboardEventTypes.KEYDOWN;
  25664. if (_this.onPreKeyboardObservable.hasObservers()) {
  25665. var pi = new BABYLON.KeyboardInfoPre(type, evt);
  25666. _this.onPreKeyboardObservable.notifyObservers(pi, type);
  25667. if (pi.skipOnPointerObservable) {
  25668. return;
  25669. }
  25670. }
  25671. if (_this.onKeyboardObservable.hasObservers()) {
  25672. var pi = new BABYLON.KeyboardInfo(type, evt);
  25673. _this.onKeyboardObservable.notifyObservers(pi, type);
  25674. }
  25675. if (_this.actionManager) {
  25676. _this.actionManager.processTrigger(BABYLON.ActionManager.OnKeyDownTrigger, BABYLON.ActionEvent.CreateNewFromScene(_this, evt));
  25677. }
  25678. };
  25679. this._onKeyUp = function (evt) {
  25680. var type = BABYLON.KeyboardEventTypes.KEYUP;
  25681. if (_this.onPreKeyboardObservable.hasObservers()) {
  25682. var pi = new BABYLON.KeyboardInfoPre(type, evt);
  25683. _this.onPreKeyboardObservable.notifyObservers(pi, type);
  25684. if (pi.skipOnPointerObservable) {
  25685. return;
  25686. }
  25687. }
  25688. if (_this.onKeyboardObservable.hasObservers()) {
  25689. var pi = new BABYLON.KeyboardInfo(type, evt);
  25690. _this.onKeyboardObservable.notifyObservers(pi, type);
  25691. }
  25692. if (_this.actionManager) {
  25693. _this.actionManager.processTrigger(BABYLON.ActionManager.OnKeyUpTrigger, BABYLON.ActionEvent.CreateNewFromScene(_this, evt));
  25694. }
  25695. };
  25696. var engine = this.getEngine();
  25697. this._onCanvasFocusObserver = engine.onCanvasFocusObservable.add(function () {
  25698. if (!canvas) {
  25699. return;
  25700. }
  25701. canvas.addEventListener("keydown", _this._onKeyDown, false);
  25702. canvas.addEventListener("keyup", _this._onKeyUp, false);
  25703. });
  25704. this._onCanvasBlurObserver = engine.onCanvasBlurObservable.add(function () {
  25705. if (!canvas) {
  25706. return;
  25707. }
  25708. canvas.removeEventListener("keydown", _this._onKeyDown);
  25709. canvas.removeEventListener("keyup", _this._onKeyUp);
  25710. });
  25711. var eventPrefix = BABYLON.Tools.GetPointerPrefix();
  25712. var canvas = this._engine.getRenderingCanvas();
  25713. if (!canvas) {
  25714. return;
  25715. }
  25716. if (attachMove) {
  25717. canvas.addEventListener(eventPrefix + "move", this._onPointerMove, false);
  25718. // Wheel
  25719. canvas.addEventListener('mousewheel', this._onPointerMove, false);
  25720. canvas.addEventListener('DOMMouseScroll', this._onPointerMove, false);
  25721. }
  25722. if (attachDown) {
  25723. canvas.addEventListener(eventPrefix + "down", this._onPointerDown, false);
  25724. }
  25725. if (attachUp) {
  25726. window.addEventListener(eventPrefix + "up", this._onPointerUp, false);
  25727. }
  25728. canvas.tabIndex = 1;
  25729. };
  25730. /** Detaches all event handlers*/
  25731. Scene.prototype.detachControl = function () {
  25732. var engine = this.getEngine();
  25733. var eventPrefix = BABYLON.Tools.GetPointerPrefix();
  25734. var canvas = engine.getRenderingCanvas();
  25735. if (!canvas) {
  25736. return;
  25737. }
  25738. canvas.removeEventListener(eventPrefix + "move", this._onPointerMove);
  25739. canvas.removeEventListener(eventPrefix + "down", this._onPointerDown);
  25740. window.removeEventListener(eventPrefix + "up", this._onPointerUp);
  25741. if (this._onCanvasBlurObserver) {
  25742. engine.onCanvasBlurObservable.remove(this._onCanvasBlurObserver);
  25743. }
  25744. if (this._onCanvasFocusObserver) {
  25745. engine.onCanvasFocusObservable.remove(this._onCanvasFocusObserver);
  25746. }
  25747. // Wheel
  25748. canvas.removeEventListener('mousewheel', this._onPointerMove);
  25749. canvas.removeEventListener('DOMMouseScroll', this._onPointerMove);
  25750. // Keyboard
  25751. canvas.removeEventListener("keydown", this._onKeyDown);
  25752. canvas.removeEventListener("keyup", this._onKeyUp);
  25753. // Observables
  25754. this.onKeyboardObservable.clear();
  25755. this.onPreKeyboardObservable.clear();
  25756. this.onPointerObservable.clear();
  25757. this.onPrePointerObservable.clear();
  25758. };
  25759. /**
  25760. * This function will check if the scene can be rendered (textures are loaded, shaders are compiled)
  25761. * Delay loaded resources are not taking in account
  25762. * @return true if all required resources are ready
  25763. */
  25764. Scene.prototype.isReady = function () {
  25765. if (this._isDisposed) {
  25766. return false;
  25767. }
  25768. if (this._pendingData.length > 0) {
  25769. return false;
  25770. }
  25771. var index;
  25772. var engine = this.getEngine();
  25773. // Geometries
  25774. for (index = 0; index < this.geometries.length; index++) {
  25775. var geometry = this.geometries[index];
  25776. if (geometry.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADING) {
  25777. return false;
  25778. }
  25779. }
  25780. // Meshes
  25781. for (index = 0; index < this.meshes.length; index++) {
  25782. var mesh = this.meshes[index];
  25783. if (!mesh.isEnabled()) {
  25784. continue;
  25785. }
  25786. if (!mesh.subMeshes || mesh.subMeshes.length === 0) {
  25787. continue;
  25788. }
  25789. if (!mesh.isReady(true)) {
  25790. return false;
  25791. }
  25792. var hardwareInstancedRendering = mesh.getClassName() === "InstancedMesh" || engine.getCaps().instancedArrays && mesh.instances.length > 0;
  25793. // Is Ready For Mesh
  25794. for (var _i = 0, _a = this._isReadyForMeshStage; _i < _a.length; _i++) {
  25795. var step = _a[_i];
  25796. if (!step.action(mesh, hardwareInstancedRendering)) {
  25797. return false;
  25798. }
  25799. }
  25800. }
  25801. // Post-processes
  25802. if (this.activeCameras && this.activeCameras.length > 0) {
  25803. for (var _b = 0, _c = this.activeCameras; _b < _c.length; _b++) {
  25804. var camera = _c[_b];
  25805. if (!camera.isReady(true)) {
  25806. return false;
  25807. }
  25808. }
  25809. }
  25810. else if (this.activeCamera) {
  25811. if (!this.activeCamera.isReady(true)) {
  25812. return false;
  25813. }
  25814. }
  25815. // Particles
  25816. for (var _d = 0, _e = this.particleSystems; _d < _e.length; _d++) {
  25817. var particleSystem = _e[_d];
  25818. if (!particleSystem.isReady()) {
  25819. return false;
  25820. }
  25821. }
  25822. return true;
  25823. };
  25824. /** Resets all cached information relative to material (including effect and visibility) */
  25825. Scene.prototype.resetCachedMaterial = function () {
  25826. this._cachedMaterial = null;
  25827. this._cachedEffect = null;
  25828. this._cachedVisibility = null;
  25829. };
  25830. /**
  25831. * Registers a function to be called before every frame render
  25832. * @param func defines the function to register
  25833. */
  25834. Scene.prototype.registerBeforeRender = function (func) {
  25835. this.onBeforeRenderObservable.add(func);
  25836. };
  25837. /**
  25838. * Unregisters a function called before every frame render
  25839. * @param func defines the function to unregister
  25840. */
  25841. Scene.prototype.unregisterBeforeRender = function (func) {
  25842. this.onBeforeRenderObservable.removeCallback(func);
  25843. };
  25844. /**
  25845. * Registers a function to be called after every frame render
  25846. * @param func defines the function to register
  25847. */
  25848. Scene.prototype.registerAfterRender = function (func) {
  25849. this.onAfterRenderObservable.add(func);
  25850. };
  25851. /**
  25852. * Unregisters a function called after every frame render
  25853. * @param func defines the function to unregister
  25854. */
  25855. Scene.prototype.unregisterAfterRender = function (func) {
  25856. this.onAfterRenderObservable.removeCallback(func);
  25857. };
  25858. Scene.prototype._executeOnceBeforeRender = function (func) {
  25859. var _this = this;
  25860. var execFunc = function () {
  25861. func();
  25862. setTimeout(function () {
  25863. _this.unregisterBeforeRender(execFunc);
  25864. });
  25865. };
  25866. this.registerBeforeRender(execFunc);
  25867. };
  25868. /**
  25869. * The provided function will run before render once and will be disposed afterwards.
  25870. * A timeout delay can be provided so that the function will be executed in N ms.
  25871. * The timeout is using the browser's native setTimeout so time percision cannot be guaranteed.
  25872. * @param func The function to be executed.
  25873. * @param timeout optional delay in ms
  25874. */
  25875. Scene.prototype.executeOnceBeforeRender = function (func, timeout) {
  25876. var _this = this;
  25877. if (timeout !== undefined) {
  25878. setTimeout(function () {
  25879. _this._executeOnceBeforeRender(func);
  25880. }, timeout);
  25881. }
  25882. else {
  25883. this._executeOnceBeforeRender(func);
  25884. }
  25885. };
  25886. /** @hidden */
  25887. Scene.prototype._addPendingData = function (data) {
  25888. this._pendingData.push(data);
  25889. };
  25890. /** @hidden */
  25891. Scene.prototype._removePendingData = function (data) {
  25892. var wasLoading = this.isLoading;
  25893. var index = this._pendingData.indexOf(data);
  25894. if (index !== -1) {
  25895. this._pendingData.splice(index, 1);
  25896. }
  25897. if (wasLoading && !this.isLoading) {
  25898. this.onDataLoadedObservable.notifyObservers(this);
  25899. }
  25900. };
  25901. /**
  25902. * Returns the number of items waiting to be loaded
  25903. * @returns the number of items waiting to be loaded
  25904. */
  25905. Scene.prototype.getWaitingItemsCount = function () {
  25906. return this._pendingData.length;
  25907. };
  25908. Object.defineProperty(Scene.prototype, "isLoading", {
  25909. /**
  25910. * Returns a boolean indicating if the scene is still loading data
  25911. */
  25912. get: function () {
  25913. return this._pendingData.length > 0;
  25914. },
  25915. enumerable: true,
  25916. configurable: true
  25917. });
  25918. /**
  25919. * Registers a function to be executed when the scene is ready
  25920. * @param {Function} func - the function to be executed
  25921. */
  25922. Scene.prototype.executeWhenReady = function (func) {
  25923. var _this = this;
  25924. this.onReadyObservable.add(func);
  25925. if (this._executeWhenReadyTimeoutId !== -1) {
  25926. return;
  25927. }
  25928. this._executeWhenReadyTimeoutId = setTimeout(function () {
  25929. _this._checkIsReady();
  25930. }, 150);
  25931. };
  25932. /**
  25933. * Returns a promise that resolves when the scene is ready
  25934. * @returns A promise that resolves when the scene is ready
  25935. */
  25936. Scene.prototype.whenReadyAsync = function () {
  25937. var _this = this;
  25938. return new Promise(function (resolve) {
  25939. _this.executeWhenReady(function () {
  25940. resolve();
  25941. });
  25942. });
  25943. };
  25944. /** @hidden */
  25945. Scene.prototype._checkIsReady = function () {
  25946. var _this = this;
  25947. this._registerTransientComponents();
  25948. if (this.isReady()) {
  25949. this.onReadyObservable.notifyObservers(this);
  25950. this.onReadyObservable.clear();
  25951. this._executeWhenReadyTimeoutId = -1;
  25952. return;
  25953. }
  25954. this._executeWhenReadyTimeoutId = setTimeout(function () {
  25955. _this._checkIsReady();
  25956. }, 150);
  25957. };
  25958. // Animations
  25959. /**
  25960. * Will start the animation sequence of a given target
  25961. * @param target defines the target
  25962. * @param from defines from which frame should animation start
  25963. * @param to defines until which frame should animation run.
  25964. * @param weight defines the weight to apply to the animation (1.0 by default)
  25965. * @param loop defines if the animation loops
  25966. * @param speedRatio defines the speed in which to run the animation (1.0 by default)
  25967. * @param onAnimationEnd defines the function to be executed when the animation ends
  25968. * @param animatable defines an animatable object. If not provided a new one will be created from the given params
  25969. * @param targetMask defines if the target should be animated if animations are present (this is called recursively on descendant animatables regardless of return value)
  25970. * @returns the animatable object created for this animation
  25971. */
  25972. Scene.prototype.beginWeightedAnimation = function (target, from, to, weight, loop, speedRatio, onAnimationEnd, animatable, targetMask) {
  25973. if (weight === void 0) { weight = 1.0; }
  25974. if (speedRatio === void 0) { speedRatio = 1.0; }
  25975. var returnedAnimatable = this.beginAnimation(target, from, to, loop, speedRatio, onAnimationEnd, animatable, false, targetMask);
  25976. returnedAnimatable.weight = weight;
  25977. return returnedAnimatable;
  25978. };
  25979. /**
  25980. * Will start the animation sequence of a given target
  25981. * @param target defines the target
  25982. * @param from defines from which frame should animation start
  25983. * @param to defines until which frame should animation run.
  25984. * @param loop defines if the animation loops
  25985. * @param speedRatio defines the speed in which to run the animation (1.0 by default)
  25986. * @param onAnimationEnd defines the function to be executed when the animation ends
  25987. * @param animatable defines an animatable object. If not provided a new one will be created from the given params
  25988. * @param stopCurrent defines if the current animations must be stopped first (true by default)
  25989. * @param targetMask defines if the target should be animated if animations are present (this is called recursively on descendant animatables regardless of return value)
  25990. * @returns the animatable object created for this animation
  25991. */
  25992. Scene.prototype.beginAnimation = function (target, from, to, loop, speedRatio, onAnimationEnd, animatable, stopCurrent, targetMask) {
  25993. if (speedRatio === void 0) { speedRatio = 1.0; }
  25994. if (stopCurrent === void 0) { stopCurrent = true; }
  25995. if (from > to && speedRatio > 0) {
  25996. speedRatio *= -1;
  25997. }
  25998. if (stopCurrent) {
  25999. this.stopAnimation(target, undefined, targetMask);
  26000. }
  26001. if (!animatable) {
  26002. animatable = new BABYLON.Animatable(this, target, from, to, loop, speedRatio, onAnimationEnd);
  26003. }
  26004. var shouldRunTargetAnimations = targetMask ? targetMask(target) : true;
  26005. // Local animations
  26006. if (target.animations && shouldRunTargetAnimations) {
  26007. animatable.appendAnimations(target, target.animations);
  26008. }
  26009. // Children animations
  26010. if (target.getAnimatables) {
  26011. var animatables = target.getAnimatables();
  26012. for (var index = 0; index < animatables.length; index++) {
  26013. this.beginAnimation(animatables[index], from, to, loop, speedRatio, onAnimationEnd, animatable, stopCurrent, targetMask);
  26014. }
  26015. }
  26016. animatable.reset();
  26017. return animatable;
  26018. };
  26019. /**
  26020. * Begin a new animation on a given node
  26021. * @param target defines the target where the animation will take place
  26022. * @param animations defines the list of animations to start
  26023. * @param from defines the initial value
  26024. * @param to defines the final value
  26025. * @param loop defines if you want animation to loop (off by default)
  26026. * @param speedRatio defines the speed ratio to apply to all animations
  26027. * @param onAnimationEnd defines the callback to call when an animation ends (will be called once per node)
  26028. * @returns the list of created animatables
  26029. */
  26030. Scene.prototype.beginDirectAnimation = function (target, animations, from, to, loop, speedRatio, onAnimationEnd) {
  26031. if (speedRatio === undefined) {
  26032. speedRatio = 1.0;
  26033. }
  26034. var animatable = new BABYLON.Animatable(this, target, from, to, loop, speedRatio, onAnimationEnd, animations);
  26035. return animatable;
  26036. };
  26037. /**
  26038. * Begin a new animation on a given node and its hierarchy
  26039. * @param target defines the root node where the animation will take place
  26040. * @param directDescendantsOnly if true only direct descendants will be used, if false direct and also indirect (children of children, an so on in a recursive manner) descendants will be used.
  26041. * @param animations defines the list of animations to start
  26042. * @param from defines the initial value
  26043. * @param to defines the final value
  26044. * @param loop defines if you want animation to loop (off by default)
  26045. * @param speedRatio defines the speed ratio to apply to all animations
  26046. * @param onAnimationEnd defines the callback to call when an animation ends (will be called once per node)
  26047. * @returns the list of animatables created for all nodes
  26048. */
  26049. Scene.prototype.beginDirectHierarchyAnimation = function (target, directDescendantsOnly, animations, from, to, loop, speedRatio, onAnimationEnd) {
  26050. var children = target.getDescendants(directDescendantsOnly);
  26051. var result = [];
  26052. result.push(this.beginDirectAnimation(target, animations, from, to, loop, speedRatio, onAnimationEnd));
  26053. for (var _i = 0, children_1 = children; _i < children_1.length; _i++) {
  26054. var child = children_1[_i];
  26055. result.push(this.beginDirectAnimation(child, animations, from, to, loop, speedRatio, onAnimationEnd));
  26056. }
  26057. return result;
  26058. };
  26059. /**
  26060. * Gets the animatable associated with a specific target
  26061. * @param target defines the target of the animatable
  26062. * @returns the required animatable if found
  26063. */
  26064. Scene.prototype.getAnimatableByTarget = function (target) {
  26065. for (var index = 0; index < this._activeAnimatables.length; index++) {
  26066. if (this._activeAnimatables[index].target === target) {
  26067. return this._activeAnimatables[index];
  26068. }
  26069. }
  26070. return null;
  26071. };
  26072. /**
  26073. * Gets all animatables associated with a given target
  26074. * @param target defines the target to look animatables for
  26075. * @returns an array of Animatables
  26076. */
  26077. Scene.prototype.getAllAnimatablesByTarget = function (target) {
  26078. var result = [];
  26079. for (var index = 0; index < this._activeAnimatables.length; index++) {
  26080. if (this._activeAnimatables[index].target === target) {
  26081. result.push(this._activeAnimatables[index]);
  26082. }
  26083. }
  26084. return result;
  26085. };
  26086. Object.defineProperty(Scene.prototype, "animatables", {
  26087. /**
  26088. * Gets all animatable attached to the scene
  26089. */
  26090. get: function () {
  26091. return this._activeAnimatables;
  26092. },
  26093. enumerable: true,
  26094. configurable: true
  26095. });
  26096. /**
  26097. * Will stop the animation of the given target
  26098. * @param target - the target
  26099. * @param animationName - the name of the animation to stop (all animations will be stopped if both this and targetMask are empty)
  26100. * @param targetMask - a function that determines if the animation should be stopped based on its target (all animations will be stopped if both this and animationName are empty)
  26101. */
  26102. Scene.prototype.stopAnimation = function (target, animationName, targetMask) {
  26103. var animatables = this.getAllAnimatablesByTarget(target);
  26104. for (var _i = 0, animatables_1 = animatables; _i < animatables_1.length; _i++) {
  26105. var animatable = animatables_1[_i];
  26106. animatable.stop(animationName, targetMask);
  26107. }
  26108. };
  26109. /**
  26110. * Stops and removes all animations that have been applied to the scene
  26111. */
  26112. Scene.prototype.stopAllAnimations = function () {
  26113. if (this._activeAnimatables) {
  26114. for (var i = 0; i < this._activeAnimatables.length; i++) {
  26115. this._activeAnimatables[i].stop();
  26116. }
  26117. this._activeAnimatables = [];
  26118. }
  26119. for (var _i = 0, _a = this.animationGroups; _i < _a.length; _i++) {
  26120. var group = _a[_i];
  26121. group.stop();
  26122. }
  26123. };
  26124. Scene.prototype._animate = function () {
  26125. if (!this.animationsEnabled || this._activeAnimatables.length === 0) {
  26126. return;
  26127. }
  26128. // Getting time
  26129. var now = BABYLON.Tools.Now;
  26130. if (!this._animationTimeLast) {
  26131. if (this._pendingData.length > 0) {
  26132. return;
  26133. }
  26134. this._animationTimeLast = now;
  26135. }
  26136. var deltaTime = this.useConstantAnimationDeltaTime ? 16.0 : (now - this._animationTimeLast) * this.animationTimeScale;
  26137. this._animationTime += deltaTime;
  26138. this._animationTimeLast = now;
  26139. for (var index = 0; index < this._activeAnimatables.length; index++) {
  26140. this._activeAnimatables[index]._animate(this._animationTime);
  26141. }
  26142. // Late animation bindings
  26143. this._processLateAnimationBindings();
  26144. };
  26145. /** @hidden */
  26146. Scene.prototype._registerTargetForLateAnimationBinding = function (runtimeAnimation, originalValue) {
  26147. var target = runtimeAnimation.target;
  26148. this._registeredForLateAnimationBindings.pushNoDuplicate(target);
  26149. if (!target._lateAnimationHolders) {
  26150. target._lateAnimationHolders = {};
  26151. }
  26152. if (!target._lateAnimationHolders[runtimeAnimation.targetPath]) {
  26153. target._lateAnimationHolders[runtimeAnimation.targetPath] = {
  26154. totalWeight: 0,
  26155. animations: [],
  26156. originalValue: originalValue
  26157. };
  26158. }
  26159. target._lateAnimationHolders[runtimeAnimation.targetPath].animations.push(runtimeAnimation);
  26160. target._lateAnimationHolders[runtimeAnimation.targetPath].totalWeight += runtimeAnimation.weight;
  26161. };
  26162. Scene.prototype._processLateAnimationBindingsForMatrices = function (holder) {
  26163. var normalizer = 1.0;
  26164. var finalPosition = BABYLON.Tmp.Vector3[0];
  26165. var finalScaling = BABYLON.Tmp.Vector3[1];
  26166. var finalQuaternion = BABYLON.Tmp.Quaternion[0];
  26167. var startIndex = 0;
  26168. var originalAnimation = holder.animations[0];
  26169. var originalValue = holder.originalValue;
  26170. var scale = 1;
  26171. if (holder.totalWeight < 1.0) {
  26172. // We need to mix the original value in
  26173. originalValue.decompose(finalScaling, finalQuaternion, finalPosition);
  26174. scale = 1.0 - holder.totalWeight;
  26175. }
  26176. else {
  26177. startIndex = 1;
  26178. // We need to normalize the weights
  26179. normalizer = holder.totalWeight;
  26180. originalAnimation.currentValue.decompose(finalScaling, finalQuaternion, finalPosition);
  26181. scale = originalAnimation.weight / normalizer;
  26182. if (scale == 1) {
  26183. return originalAnimation.currentValue;
  26184. }
  26185. }
  26186. finalScaling.scaleInPlace(scale);
  26187. finalPosition.scaleInPlace(scale);
  26188. finalQuaternion.scaleInPlace(scale);
  26189. for (var animIndex = startIndex; animIndex < holder.animations.length; animIndex++) {
  26190. var runtimeAnimation = holder.animations[animIndex];
  26191. var scale = runtimeAnimation.weight / normalizer;
  26192. var currentPosition = BABYLON.Tmp.Vector3[2];
  26193. var currentScaling = BABYLON.Tmp.Vector3[3];
  26194. var currentQuaternion = BABYLON.Tmp.Quaternion[1];
  26195. runtimeAnimation.currentValue.decompose(currentScaling, currentQuaternion, currentPosition);
  26196. currentScaling.scaleAndAddToRef(scale, finalScaling);
  26197. currentQuaternion.scaleAndAddToRef(scale, finalQuaternion);
  26198. currentPosition.scaleAndAddToRef(scale, finalPosition);
  26199. }
  26200. BABYLON.Matrix.ComposeToRef(finalScaling, finalQuaternion, finalPosition, originalAnimation._workValue);
  26201. return originalAnimation._workValue;
  26202. };
  26203. Scene.prototype._processLateAnimationBindingsForQuaternions = function (holder, refQuaternion) {
  26204. var originalAnimation = holder.animations[0];
  26205. var originalValue = holder.originalValue;
  26206. if (holder.animations.length === 1) {
  26207. BABYLON.Quaternion.SlerpToRef(originalValue, originalAnimation.currentValue, Math.min(1.0, holder.totalWeight), refQuaternion);
  26208. return refQuaternion;
  26209. }
  26210. var normalizer = 1.0;
  26211. var quaternions;
  26212. var weights;
  26213. if (holder.totalWeight < 1.0) {
  26214. var scale = 1.0 - holder.totalWeight;
  26215. quaternions = [];
  26216. weights = [];
  26217. quaternions.push(originalValue);
  26218. weights.push(scale);
  26219. }
  26220. else {
  26221. if (holder.animations.length === 2) { // Slerp as soon as we can
  26222. BABYLON.Quaternion.SlerpToRef(holder.animations[0].currentValue, holder.animations[1].currentValue, holder.animations[1].weight / holder.totalWeight, refQuaternion);
  26223. return refQuaternion;
  26224. }
  26225. quaternions = [];
  26226. weights = [];
  26227. normalizer = holder.totalWeight;
  26228. }
  26229. for (var animIndex = 0; animIndex < holder.animations.length; animIndex++) {
  26230. var runtimeAnimation = holder.animations[animIndex];
  26231. quaternions.push(runtimeAnimation.currentValue);
  26232. weights.push(runtimeAnimation.weight / normalizer);
  26233. }
  26234. // https://gamedev.stackexchange.com/questions/62354/method-for-interpolation-between-3-quaternions
  26235. var cumulativeAmount = 0;
  26236. var cumulativeQuaternion = null;
  26237. for (var index = 0; index < quaternions.length;) {
  26238. if (!cumulativeQuaternion) {
  26239. BABYLON.Quaternion.SlerpToRef(quaternions[index], quaternions[index + 1], weights[index + 1] / (weights[index] + weights[index + 1]), refQuaternion);
  26240. cumulativeQuaternion = refQuaternion;
  26241. cumulativeAmount = weights[index] + weights[index + 1];
  26242. index += 2;
  26243. continue;
  26244. }
  26245. cumulativeAmount += weights[index];
  26246. BABYLON.Quaternion.SlerpToRef(cumulativeQuaternion, quaternions[index], weights[index] / cumulativeAmount, cumulativeQuaternion);
  26247. index++;
  26248. }
  26249. return cumulativeQuaternion;
  26250. };
  26251. Scene.prototype._processLateAnimationBindings = function () {
  26252. if (!this._registeredForLateAnimationBindings.length) {
  26253. return;
  26254. }
  26255. for (var index = 0; index < this._registeredForLateAnimationBindings.length; index++) {
  26256. var target = this._registeredForLateAnimationBindings.data[index];
  26257. for (var path in target._lateAnimationHolders) {
  26258. var holder = target._lateAnimationHolders[path];
  26259. var originalAnimation = holder.animations[0];
  26260. var originalValue = holder.originalValue;
  26261. var matrixDecomposeMode = BABYLON.Animation.AllowMatrixDecomposeForInterpolation && originalValue.m; // ie. data is matrix
  26262. var finalValue = target[path];
  26263. if (matrixDecomposeMode) {
  26264. finalValue = this._processLateAnimationBindingsForMatrices(holder);
  26265. }
  26266. else {
  26267. var quaternionMode = originalValue.w !== undefined;
  26268. if (quaternionMode) {
  26269. finalValue = this._processLateAnimationBindingsForQuaternions(holder, finalValue || BABYLON.Quaternion.Identity());
  26270. }
  26271. else {
  26272. var startIndex = 0;
  26273. var normalizer = 1.0;
  26274. if (holder.totalWeight < 1.0) {
  26275. // We need to mix the original value in
  26276. if (originalValue.scale) {
  26277. finalValue = originalValue.scale(1.0 - holder.totalWeight);
  26278. }
  26279. else {
  26280. finalValue = originalValue * (1.0 - holder.totalWeight);
  26281. }
  26282. }
  26283. else {
  26284. // We need to normalize the weights
  26285. normalizer = holder.totalWeight;
  26286. var scale_1 = originalAnimation.weight / normalizer;
  26287. if (scale_1 !== 1) {
  26288. if (originalAnimation.currentValue.scale) {
  26289. finalValue = originalAnimation.currentValue.scale(scale_1);
  26290. }
  26291. else {
  26292. finalValue = originalAnimation.currentValue * scale_1;
  26293. }
  26294. }
  26295. else {
  26296. finalValue = originalAnimation.currentValue;
  26297. }
  26298. startIndex = 1;
  26299. }
  26300. for (var animIndex = startIndex; animIndex < holder.animations.length; animIndex++) {
  26301. var runtimeAnimation = holder.animations[animIndex];
  26302. var scale = runtimeAnimation.weight / normalizer;
  26303. if (runtimeAnimation.currentValue.scaleAndAddToRef) {
  26304. runtimeAnimation.currentValue.scaleAndAddToRef(scale, finalValue);
  26305. }
  26306. else {
  26307. finalValue += runtimeAnimation.currentValue * scale;
  26308. }
  26309. }
  26310. }
  26311. }
  26312. target[path] = finalValue;
  26313. }
  26314. target._lateAnimationHolders = {};
  26315. }
  26316. this._registeredForLateAnimationBindings.reset();
  26317. };
  26318. // Matrix
  26319. /** @hidden */
  26320. Scene.prototype._switchToAlternateCameraConfiguration = function (active) {
  26321. this._useAlternateCameraConfiguration = active;
  26322. };
  26323. /**
  26324. * Gets the current view matrix
  26325. * @returns a Matrix
  26326. */
  26327. Scene.prototype.getViewMatrix = function () {
  26328. return this._useAlternateCameraConfiguration ? this._alternateViewMatrix : this._viewMatrix;
  26329. };
  26330. /**
  26331. * Gets the current projection matrix
  26332. * @returns a Matrix
  26333. */
  26334. Scene.prototype.getProjectionMatrix = function () {
  26335. return this._useAlternateCameraConfiguration ? this._alternateProjectionMatrix : this._projectionMatrix;
  26336. };
  26337. /**
  26338. * Gets the current transform matrix
  26339. * @returns a Matrix made of View * Projection
  26340. */
  26341. Scene.prototype.getTransformMatrix = function () {
  26342. return this._useAlternateCameraConfiguration ? this._alternateTransformMatrix : this._transformMatrix;
  26343. };
  26344. /**
  26345. * Sets the current transform matrix
  26346. * @param view defines the View matrix to use
  26347. * @param projection defines the Projection matrix to use
  26348. */
  26349. Scene.prototype.setTransformMatrix = function (view, projection) {
  26350. if (this._viewUpdateFlag === view.updateFlag && this._projectionUpdateFlag === projection.updateFlag) {
  26351. return;
  26352. }
  26353. this._viewUpdateFlag = view.updateFlag;
  26354. this._projectionUpdateFlag = projection.updateFlag;
  26355. this._viewMatrix = view;
  26356. this._projectionMatrix = projection;
  26357. this._viewMatrix.multiplyToRef(this._projectionMatrix, this._transformMatrix);
  26358. // Update frustum
  26359. if (!this._frustumPlanes) {
  26360. this._frustumPlanes = BABYLON.Frustum.GetPlanes(this._transformMatrix);
  26361. }
  26362. else {
  26363. BABYLON.Frustum.GetPlanesToRef(this._transformMatrix, this._frustumPlanes);
  26364. }
  26365. if (this.activeCamera && this.activeCamera._alternateCamera) {
  26366. var otherCamera = this.activeCamera._alternateCamera;
  26367. otherCamera.getViewMatrix().multiplyToRef(otherCamera.getProjectionMatrix(), BABYLON.Tmp.Matrix[0]);
  26368. BABYLON.Frustum.GetRightPlaneToRef(BABYLON.Tmp.Matrix[0], this._frustumPlanes[3]); // Replace right plane by second camera right plane
  26369. }
  26370. if (this._sceneUbo.useUbo) {
  26371. this._sceneUbo.updateMatrix("viewProjection", this._transformMatrix);
  26372. this._sceneUbo.updateMatrix("view", this._viewMatrix);
  26373. this._sceneUbo.update();
  26374. }
  26375. };
  26376. /** @hidden */
  26377. Scene.prototype._setAlternateTransformMatrix = function (view, projection) {
  26378. if (this._alternateViewUpdateFlag === view.updateFlag && this._alternateProjectionUpdateFlag === projection.updateFlag) {
  26379. return;
  26380. }
  26381. this._alternateViewUpdateFlag = view.updateFlag;
  26382. this._alternateProjectionUpdateFlag = projection.updateFlag;
  26383. this._alternateViewMatrix = view;
  26384. this._alternateProjectionMatrix = projection;
  26385. if (!this._alternateTransformMatrix) {
  26386. this._alternateTransformMatrix = BABYLON.Matrix.Zero();
  26387. }
  26388. this._alternateViewMatrix.multiplyToRef(this._alternateProjectionMatrix, this._alternateTransformMatrix);
  26389. if (!this._alternateSceneUbo) {
  26390. this._createAlternateUbo();
  26391. }
  26392. if (this._alternateSceneUbo.useUbo) {
  26393. this._alternateSceneUbo.updateMatrix("viewProjection", this._alternateTransformMatrix);
  26394. this._alternateSceneUbo.updateMatrix("view", this._alternateViewMatrix);
  26395. this._alternateSceneUbo.update();
  26396. }
  26397. };
  26398. /**
  26399. * Gets the uniform buffer used to store scene data
  26400. * @returns a UniformBuffer
  26401. */
  26402. Scene.prototype.getSceneUniformBuffer = function () {
  26403. return this._useAlternateCameraConfiguration ? this._alternateSceneUbo : this._sceneUbo;
  26404. };
  26405. /**
  26406. * Gets an unique (relatively to the current scene) Id
  26407. * @returns an unique number for the scene
  26408. */
  26409. Scene.prototype.getUniqueId = function () {
  26410. var result = Scene._uniqueIdCounter;
  26411. Scene._uniqueIdCounter++;
  26412. return result;
  26413. };
  26414. /**
  26415. * Add a mesh to the list of scene's meshes
  26416. * @param newMesh defines the mesh to add
  26417. * @param recursive if all child meshes should also be added to the scene
  26418. */
  26419. Scene.prototype.addMesh = function (newMesh, recursive) {
  26420. var _this = this;
  26421. if (recursive === void 0) { recursive = false; }
  26422. this.meshes.push(newMesh);
  26423. //notify the collision coordinator
  26424. if (this.collisionCoordinator) {
  26425. this.collisionCoordinator.onMeshAdded(newMesh);
  26426. }
  26427. newMesh._resyncLightSources();
  26428. this.onNewMeshAddedObservable.notifyObservers(newMesh);
  26429. if (recursive) {
  26430. newMesh.getChildMeshes().forEach(function (m) {
  26431. _this.addMesh(m);
  26432. });
  26433. }
  26434. };
  26435. /**
  26436. * Remove a mesh for the list of scene's meshes
  26437. * @param toRemove defines the mesh to remove
  26438. * @param recursive if all child meshes should also be removed from the scene
  26439. * @returns the index where the mesh was in the mesh list
  26440. */
  26441. Scene.prototype.removeMesh = function (toRemove, recursive) {
  26442. var _this = this;
  26443. if (recursive === void 0) { recursive = false; }
  26444. var index = this.meshes.indexOf(toRemove);
  26445. if (index !== -1) {
  26446. // Remove from the scene if mesh found
  26447. this.meshes.splice(index, 1);
  26448. }
  26449. this.onMeshRemovedObservable.notifyObservers(toRemove);
  26450. if (recursive) {
  26451. toRemove.getChildMeshes().forEach(function (m) {
  26452. _this.removeMesh(m);
  26453. });
  26454. }
  26455. return index;
  26456. };
  26457. /**
  26458. * Add a transform node to the list of scene's transform nodes
  26459. * @param newTransformNode defines the transform node to add
  26460. */
  26461. Scene.prototype.addTransformNode = function (newTransformNode) {
  26462. this.transformNodes.push(newTransformNode);
  26463. this.onNewTransformNodeAddedObservable.notifyObservers(newTransformNode);
  26464. };
  26465. /**
  26466. * Remove a transform node for the list of scene's transform nodes
  26467. * @param toRemove defines the transform node to remove
  26468. * @returns the index where the transform node was in the transform node list
  26469. */
  26470. Scene.prototype.removeTransformNode = function (toRemove) {
  26471. var index = this.transformNodes.indexOf(toRemove);
  26472. if (index !== -1) {
  26473. // Remove from the scene if found
  26474. this.transformNodes.splice(index, 1);
  26475. }
  26476. this.onTransformNodeRemovedObservable.notifyObservers(toRemove);
  26477. return index;
  26478. };
  26479. /**
  26480. * Remove a skeleton for the list of scene's skeletons
  26481. * @param toRemove defines the skeleton to remove
  26482. * @returns the index where the skeleton was in the skeleton list
  26483. */
  26484. Scene.prototype.removeSkeleton = function (toRemove) {
  26485. var index = this.skeletons.indexOf(toRemove);
  26486. if (index !== -1) {
  26487. // Remove from the scene if found
  26488. this.skeletons.splice(index, 1);
  26489. }
  26490. return index;
  26491. };
  26492. /**
  26493. * Remove a morph target for the list of scene's morph targets
  26494. * @param toRemove defines the morph target to remove
  26495. * @returns the index where the morph target was in the morph target list
  26496. */
  26497. Scene.prototype.removeMorphTargetManager = function (toRemove) {
  26498. var index = this.morphTargetManagers.indexOf(toRemove);
  26499. if (index !== -1) {
  26500. // Remove from the scene if found
  26501. this.morphTargetManagers.splice(index, 1);
  26502. }
  26503. return index;
  26504. };
  26505. /**
  26506. * Remove a light for the list of scene's lights
  26507. * @param toRemove defines the light to remove
  26508. * @returns the index where the light was in the light list
  26509. */
  26510. Scene.prototype.removeLight = function (toRemove) {
  26511. var index = this.lights.indexOf(toRemove);
  26512. if (index !== -1) {
  26513. // Remove from meshes
  26514. for (var _i = 0, _a = this.meshes; _i < _a.length; _i++) {
  26515. var mesh = _a[_i];
  26516. mesh._removeLightSource(toRemove);
  26517. }
  26518. // Remove from the scene if mesh found
  26519. this.lights.splice(index, 1);
  26520. this.sortLightsByPriority();
  26521. }
  26522. this.onLightRemovedObservable.notifyObservers(toRemove);
  26523. return index;
  26524. };
  26525. /**
  26526. * Remove a camera for the list of scene's cameras
  26527. * @param toRemove defines the camera to remove
  26528. * @returns the index where the camera was in the camera list
  26529. */
  26530. Scene.prototype.removeCamera = function (toRemove) {
  26531. var index = this.cameras.indexOf(toRemove);
  26532. if (index !== -1) {
  26533. // Remove from the scene if mesh found
  26534. this.cameras.splice(index, 1);
  26535. }
  26536. // Remove from activeCameras
  26537. var index2 = this.activeCameras.indexOf(toRemove);
  26538. if (index2 !== -1) {
  26539. // Remove from the scene if mesh found
  26540. this.activeCameras.splice(index2, 1);
  26541. }
  26542. // Reset the activeCamera
  26543. if (this.activeCamera === toRemove) {
  26544. if (this.cameras.length > 0) {
  26545. this.activeCamera = this.cameras[0];
  26546. }
  26547. else {
  26548. this.activeCamera = null;
  26549. }
  26550. }
  26551. this.onCameraRemovedObservable.notifyObservers(toRemove);
  26552. return index;
  26553. };
  26554. /**
  26555. * Remove a particle system for the list of scene's particle systems
  26556. * @param toRemove defines the particle system to remove
  26557. * @returns the index where the particle system was in the particle system list
  26558. */
  26559. Scene.prototype.removeParticleSystem = function (toRemove) {
  26560. var index = this.particleSystems.indexOf(toRemove);
  26561. if (index !== -1) {
  26562. this.particleSystems.splice(index, 1);
  26563. }
  26564. return index;
  26565. };
  26566. /**
  26567. * Remove a animation for the list of scene's animations
  26568. * @param toRemove defines the animation to remove
  26569. * @returns the index where the animation was in the animation list
  26570. */
  26571. Scene.prototype.removeAnimation = function (toRemove) {
  26572. var index = this.animations.indexOf(toRemove);
  26573. if (index !== -1) {
  26574. this.animations.splice(index, 1);
  26575. }
  26576. return index;
  26577. };
  26578. /**
  26579. * Removes the given animation group from this scene.
  26580. * @param toRemove The animation group to remove
  26581. * @returns The index of the removed animation group
  26582. */
  26583. Scene.prototype.removeAnimationGroup = function (toRemove) {
  26584. var index = this.animationGroups.indexOf(toRemove);
  26585. if (index !== -1) {
  26586. this.animationGroups.splice(index, 1);
  26587. }
  26588. return index;
  26589. };
  26590. /**
  26591. * Removes the given multi-material from this scene.
  26592. * @param toRemove The multi-material to remove
  26593. * @returns The index of the removed multi-material
  26594. */
  26595. Scene.prototype.removeMultiMaterial = function (toRemove) {
  26596. var index = this.multiMaterials.indexOf(toRemove);
  26597. if (index !== -1) {
  26598. this.multiMaterials.splice(index, 1);
  26599. }
  26600. return index;
  26601. };
  26602. /**
  26603. * Removes the given material from this scene.
  26604. * @param toRemove The material to remove
  26605. * @returns The index of the removed material
  26606. */
  26607. Scene.prototype.removeMaterial = function (toRemove) {
  26608. var index = this.materials.indexOf(toRemove);
  26609. if (index !== -1) {
  26610. this.materials.splice(index, 1);
  26611. }
  26612. return index;
  26613. };
  26614. /**
  26615. * Removes the given action manager from this scene.
  26616. * @param toRemove The action manager to remove
  26617. * @returns The index of the removed action manager
  26618. */
  26619. Scene.prototype.removeActionManager = function (toRemove) {
  26620. var index = this.actionManagers.indexOf(toRemove);
  26621. if (index !== -1) {
  26622. this.actionManagers.splice(index, 1);
  26623. }
  26624. return index;
  26625. };
  26626. /**
  26627. * Removes the given texture from this scene.
  26628. * @param toRemove The texture to remove
  26629. * @returns The index of the removed texture
  26630. */
  26631. Scene.prototype.removeTexture = function (toRemove) {
  26632. var index = this.textures.indexOf(toRemove);
  26633. if (index !== -1) {
  26634. this.textures.splice(index, 1);
  26635. }
  26636. return index;
  26637. };
  26638. /**
  26639. * Adds the given light to this scene
  26640. * @param newLight The light to add
  26641. */
  26642. Scene.prototype.addLight = function (newLight) {
  26643. this.lights.push(newLight);
  26644. this.sortLightsByPriority();
  26645. // Add light to all meshes (To support if the light is removed and then readded)
  26646. for (var _i = 0, _a = this.meshes; _i < _a.length; _i++) {
  26647. var mesh = _a[_i];
  26648. if (mesh._lightSources.indexOf(newLight) === -1) {
  26649. mesh._lightSources.push(newLight);
  26650. mesh._resyncLightSources();
  26651. }
  26652. }
  26653. this.onNewLightAddedObservable.notifyObservers(newLight);
  26654. };
  26655. /**
  26656. * Sorts the list list based on light priorities
  26657. */
  26658. Scene.prototype.sortLightsByPriority = function () {
  26659. if (this.requireLightSorting) {
  26660. this.lights.sort(BABYLON.Light.CompareLightsPriority);
  26661. }
  26662. };
  26663. /**
  26664. * Adds the given camera to this scene
  26665. * @param newCamera The camera to add
  26666. */
  26667. Scene.prototype.addCamera = function (newCamera) {
  26668. this.cameras.push(newCamera);
  26669. this.onNewCameraAddedObservable.notifyObservers(newCamera);
  26670. };
  26671. /**
  26672. * Adds the given skeleton to this scene
  26673. * @param newSkeleton The skeleton to add
  26674. */
  26675. Scene.prototype.addSkeleton = function (newSkeleton) {
  26676. this.skeletons.push(newSkeleton);
  26677. };
  26678. /**
  26679. * Adds the given particle system to this scene
  26680. * @param newParticleSystem The particle system to add
  26681. */
  26682. Scene.prototype.addParticleSystem = function (newParticleSystem) {
  26683. this.particleSystems.push(newParticleSystem);
  26684. };
  26685. /**
  26686. * Adds the given animation to this scene
  26687. * @param newAnimation The animation to add
  26688. */
  26689. Scene.prototype.addAnimation = function (newAnimation) {
  26690. this.animations.push(newAnimation);
  26691. };
  26692. /**
  26693. * Adds the given animation group to this scene.
  26694. * @param newAnimationGroup The animation group to add
  26695. */
  26696. Scene.prototype.addAnimationGroup = function (newAnimationGroup) {
  26697. this.animationGroups.push(newAnimationGroup);
  26698. };
  26699. /**
  26700. * Adds the given multi-material to this scene
  26701. * @param newMultiMaterial The multi-material to add
  26702. */
  26703. Scene.prototype.addMultiMaterial = function (newMultiMaterial) {
  26704. this.multiMaterials.push(newMultiMaterial);
  26705. };
  26706. /**
  26707. * Adds the given material to this scene
  26708. * @param newMaterial The material to add
  26709. */
  26710. Scene.prototype.addMaterial = function (newMaterial) {
  26711. this.materials.push(newMaterial);
  26712. };
  26713. /**
  26714. * Adds the given morph target to this scene
  26715. * @param newMorphTargetManager The morph target to add
  26716. */
  26717. Scene.prototype.addMorphTargetManager = function (newMorphTargetManager) {
  26718. this.morphTargetManagers.push(newMorphTargetManager);
  26719. };
  26720. /**
  26721. * Adds the given geometry to this scene
  26722. * @param newGeometry The geometry to add
  26723. */
  26724. Scene.prototype.addGeometry = function (newGeometry) {
  26725. this.geometries.push(newGeometry);
  26726. };
  26727. /**
  26728. * Adds the given action manager to this scene
  26729. * @param newActionManager The action manager to add
  26730. */
  26731. Scene.prototype.addActionManager = function (newActionManager) {
  26732. this.actionManagers.push(newActionManager);
  26733. };
  26734. /**
  26735. * Adds the given texture to this scene.
  26736. * @param newTexture The texture to add
  26737. */
  26738. Scene.prototype.addTexture = function (newTexture) {
  26739. this.textures.push(newTexture);
  26740. };
  26741. /**
  26742. * Switch active camera
  26743. * @param newCamera defines the new active camera
  26744. * @param attachControl defines if attachControl must be called for the new active camera (default: true)
  26745. */
  26746. Scene.prototype.switchActiveCamera = function (newCamera, attachControl) {
  26747. if (attachControl === void 0) { attachControl = true; }
  26748. var canvas = this._engine.getRenderingCanvas();
  26749. if (!canvas) {
  26750. return;
  26751. }
  26752. if (this.activeCamera) {
  26753. this.activeCamera.detachControl(canvas);
  26754. }
  26755. this.activeCamera = newCamera;
  26756. if (attachControl) {
  26757. newCamera.attachControl(canvas);
  26758. }
  26759. };
  26760. /**
  26761. * sets the active camera of the scene using its ID
  26762. * @param id defines the camera's ID
  26763. * @return the new active camera or null if none found.
  26764. */
  26765. Scene.prototype.setActiveCameraByID = function (id) {
  26766. var camera = this.getCameraByID(id);
  26767. if (camera) {
  26768. this.activeCamera = camera;
  26769. return camera;
  26770. }
  26771. return null;
  26772. };
  26773. /**
  26774. * sets the active camera of the scene using its name
  26775. * @param name defines the camera's name
  26776. * @returns the new active camera or null if none found.
  26777. */
  26778. Scene.prototype.setActiveCameraByName = function (name) {
  26779. var camera = this.getCameraByName(name);
  26780. if (camera) {
  26781. this.activeCamera = camera;
  26782. return camera;
  26783. }
  26784. return null;
  26785. };
  26786. /**
  26787. * get an animation group using its name
  26788. * @param name defines the material's name
  26789. * @return the animation group or null if none found.
  26790. */
  26791. Scene.prototype.getAnimationGroupByName = function (name) {
  26792. for (var index = 0; index < this.animationGroups.length; index++) {
  26793. if (this.animationGroups[index].name === name) {
  26794. return this.animationGroups[index];
  26795. }
  26796. }
  26797. return null;
  26798. };
  26799. /**
  26800. * get a material using its id
  26801. * @param id defines the material's ID
  26802. * @return the material or null if none found.
  26803. */
  26804. Scene.prototype.getMaterialByID = function (id) {
  26805. for (var index = 0; index < this.materials.length; index++) {
  26806. if (this.materials[index].id === id) {
  26807. return this.materials[index];
  26808. }
  26809. }
  26810. return null;
  26811. };
  26812. /**
  26813. * Gets a material using its name
  26814. * @param name defines the material's name
  26815. * @return the material or null if none found.
  26816. */
  26817. Scene.prototype.getMaterialByName = function (name) {
  26818. for (var index = 0; index < this.materials.length; index++) {
  26819. if (this.materials[index].name === name) {
  26820. return this.materials[index];
  26821. }
  26822. }
  26823. return null;
  26824. };
  26825. /**
  26826. * Gets a camera using its id
  26827. * @param id defines the id to look for
  26828. * @returns the camera or null if not found
  26829. */
  26830. Scene.prototype.getCameraByID = function (id) {
  26831. for (var index = 0; index < this.cameras.length; index++) {
  26832. if (this.cameras[index].id === id) {
  26833. return this.cameras[index];
  26834. }
  26835. }
  26836. return null;
  26837. };
  26838. /**
  26839. * Gets a camera using its unique id
  26840. * @param uniqueId defines the unique id to look for
  26841. * @returns the camera or null if not found
  26842. */
  26843. Scene.prototype.getCameraByUniqueID = function (uniqueId) {
  26844. for (var index = 0; index < this.cameras.length; index++) {
  26845. if (this.cameras[index].uniqueId === uniqueId) {
  26846. return this.cameras[index];
  26847. }
  26848. }
  26849. return null;
  26850. };
  26851. /**
  26852. * Gets a camera using its name
  26853. * @param name defines the camera's name
  26854. * @return the camera or null if none found.
  26855. */
  26856. Scene.prototype.getCameraByName = function (name) {
  26857. for (var index = 0; index < this.cameras.length; index++) {
  26858. if (this.cameras[index].name === name) {
  26859. return this.cameras[index];
  26860. }
  26861. }
  26862. return null;
  26863. };
  26864. /**
  26865. * Gets a bone using its id
  26866. * @param id defines the bone's id
  26867. * @return the bone or null if not found
  26868. */
  26869. Scene.prototype.getBoneByID = function (id) {
  26870. for (var skeletonIndex = 0; skeletonIndex < this.skeletons.length; skeletonIndex++) {
  26871. var skeleton = this.skeletons[skeletonIndex];
  26872. for (var boneIndex = 0; boneIndex < skeleton.bones.length; boneIndex++) {
  26873. if (skeleton.bones[boneIndex].id === id) {
  26874. return skeleton.bones[boneIndex];
  26875. }
  26876. }
  26877. }
  26878. return null;
  26879. };
  26880. /**
  26881. * Gets a bone using its id
  26882. * @param name defines the bone's name
  26883. * @return the bone or null if not found
  26884. */
  26885. Scene.prototype.getBoneByName = function (name) {
  26886. for (var skeletonIndex = 0; skeletonIndex < this.skeletons.length; skeletonIndex++) {
  26887. var skeleton = this.skeletons[skeletonIndex];
  26888. for (var boneIndex = 0; boneIndex < skeleton.bones.length; boneIndex++) {
  26889. if (skeleton.bones[boneIndex].name === name) {
  26890. return skeleton.bones[boneIndex];
  26891. }
  26892. }
  26893. }
  26894. return null;
  26895. };
  26896. /**
  26897. * Gets a light node using its name
  26898. * @param name defines the the light's name
  26899. * @return the light or null if none found.
  26900. */
  26901. Scene.prototype.getLightByName = function (name) {
  26902. for (var index = 0; index < this.lights.length; index++) {
  26903. if (this.lights[index].name === name) {
  26904. return this.lights[index];
  26905. }
  26906. }
  26907. return null;
  26908. };
  26909. /**
  26910. * Gets a light node using its id
  26911. * @param id defines the light's id
  26912. * @return the light or null if none found.
  26913. */
  26914. Scene.prototype.getLightByID = function (id) {
  26915. for (var index = 0; index < this.lights.length; index++) {
  26916. if (this.lights[index].id === id) {
  26917. return this.lights[index];
  26918. }
  26919. }
  26920. return null;
  26921. };
  26922. /**
  26923. * Gets a light node using its scene-generated unique ID
  26924. * @param uniqueId defines the light's unique id
  26925. * @return the light or null if none found.
  26926. */
  26927. Scene.prototype.getLightByUniqueID = function (uniqueId) {
  26928. for (var index = 0; index < this.lights.length; index++) {
  26929. if (this.lights[index].uniqueId === uniqueId) {
  26930. return this.lights[index];
  26931. }
  26932. }
  26933. return null;
  26934. };
  26935. /**
  26936. * Gets a particle system by id
  26937. * @param id defines the particle system id
  26938. * @return the corresponding system or null if none found
  26939. */
  26940. Scene.prototype.getParticleSystemByID = function (id) {
  26941. for (var index = 0; index < this.particleSystems.length; index++) {
  26942. if (this.particleSystems[index].id === id) {
  26943. return this.particleSystems[index];
  26944. }
  26945. }
  26946. return null;
  26947. };
  26948. /**
  26949. * Gets a geometry using its ID
  26950. * @param id defines the geometry's id
  26951. * @return the geometry or null if none found.
  26952. */
  26953. Scene.prototype.getGeometryByID = function (id) {
  26954. for (var index = 0; index < this.geometries.length; index++) {
  26955. if (this.geometries[index].id === id) {
  26956. return this.geometries[index];
  26957. }
  26958. }
  26959. return null;
  26960. };
  26961. /**
  26962. * Add a new geometry to this scene
  26963. * @param geometry defines the geometry to be added to the scene.
  26964. * @param force defines if the geometry must be pushed even if a geometry with this id already exists
  26965. * @return a boolean defining if the geometry was added or not
  26966. */
  26967. Scene.prototype.pushGeometry = function (geometry, force) {
  26968. if (!force && this.getGeometryByID(geometry.id)) {
  26969. return false;
  26970. }
  26971. this.geometries.push(geometry);
  26972. //notify the collision coordinator
  26973. if (this.collisionCoordinator) {
  26974. this.collisionCoordinator.onGeometryAdded(geometry);
  26975. }
  26976. this.onNewGeometryAddedObservable.notifyObservers(geometry);
  26977. return true;
  26978. };
  26979. /**
  26980. * Removes an existing geometry
  26981. * @param geometry defines the geometry to be removed from the scene
  26982. * @return a boolean defining if the geometry was removed or not
  26983. */
  26984. Scene.prototype.removeGeometry = function (geometry) {
  26985. var index = this.geometries.indexOf(geometry);
  26986. if (index > -1) {
  26987. this.geometries.splice(index, 1);
  26988. //notify the collision coordinator
  26989. if (this.collisionCoordinator) {
  26990. this.collisionCoordinator.onGeometryDeleted(geometry);
  26991. }
  26992. this.onGeometryRemovedObservable.notifyObservers(geometry);
  26993. return true;
  26994. }
  26995. return false;
  26996. };
  26997. /**
  26998. * Gets the list of geometries attached to the scene
  26999. * @returns an array of Geometry
  27000. */
  27001. Scene.prototype.getGeometries = function () {
  27002. return this.geometries;
  27003. };
  27004. /**
  27005. * Gets the first added mesh found of a given ID
  27006. * @param id defines the id to search for
  27007. * @return the mesh found or null if not found at all
  27008. */
  27009. Scene.prototype.getMeshByID = function (id) {
  27010. for (var index = 0; index < this.meshes.length; index++) {
  27011. if (this.meshes[index].id === id) {
  27012. return this.meshes[index];
  27013. }
  27014. }
  27015. return null;
  27016. };
  27017. /**
  27018. * Gets a list of meshes using their id
  27019. * @param id defines the id to search for
  27020. * @returns a list of meshes
  27021. */
  27022. Scene.prototype.getMeshesByID = function (id) {
  27023. return this.meshes.filter(function (m) {
  27024. return m.id === id;
  27025. });
  27026. };
  27027. /**
  27028. * Gets the first added transform node found of a given ID
  27029. * @param id defines the id to search for
  27030. * @return the found transform node or null if not found at all.
  27031. */
  27032. Scene.prototype.getTransformNodeByID = function (id) {
  27033. for (var index = 0; index < this.transformNodes.length; index++) {
  27034. if (this.transformNodes[index].id === id) {
  27035. return this.transformNodes[index];
  27036. }
  27037. }
  27038. return null;
  27039. };
  27040. /**
  27041. * Gets a list of transform nodes using their id
  27042. * @param id defines the id to search for
  27043. * @returns a list of transform nodes
  27044. */
  27045. Scene.prototype.getTransformNodesByID = function (id) {
  27046. return this.transformNodes.filter(function (m) {
  27047. return m.id === id;
  27048. });
  27049. };
  27050. /**
  27051. * Gets a mesh with its auto-generated unique id
  27052. * @param uniqueId defines the unique id to search for
  27053. * @return the found mesh or null if not found at all.
  27054. */
  27055. Scene.prototype.getMeshByUniqueID = function (uniqueId) {
  27056. for (var index = 0; index < this.meshes.length; index++) {
  27057. if (this.meshes[index].uniqueId === uniqueId) {
  27058. return this.meshes[index];
  27059. }
  27060. }
  27061. return null;
  27062. };
  27063. /**
  27064. * Gets a the last added mesh using a given id
  27065. * @param id defines the id to search for
  27066. * @return the found mesh or null if not found at all.
  27067. */
  27068. Scene.prototype.getLastMeshByID = function (id) {
  27069. for (var index = this.meshes.length - 1; index >= 0; index--) {
  27070. if (this.meshes[index].id === id) {
  27071. return this.meshes[index];
  27072. }
  27073. }
  27074. return null;
  27075. };
  27076. /**
  27077. * Gets a the last added node (Mesh, Camera, Light) using a given id
  27078. * @param id defines the id to search for
  27079. * @return the found node or null if not found at all
  27080. */
  27081. Scene.prototype.getLastEntryByID = function (id) {
  27082. var index;
  27083. for (index = this.meshes.length - 1; index >= 0; index--) {
  27084. if (this.meshes[index].id === id) {
  27085. return this.meshes[index];
  27086. }
  27087. }
  27088. for (index = this.transformNodes.length - 1; index >= 0; index--) {
  27089. if (this.transformNodes[index].id === id) {
  27090. return this.transformNodes[index];
  27091. }
  27092. }
  27093. for (index = this.cameras.length - 1; index >= 0; index--) {
  27094. if (this.cameras[index].id === id) {
  27095. return this.cameras[index];
  27096. }
  27097. }
  27098. for (index = this.lights.length - 1; index >= 0; index--) {
  27099. if (this.lights[index].id === id) {
  27100. return this.lights[index];
  27101. }
  27102. }
  27103. return null;
  27104. };
  27105. /**
  27106. * Gets a node (Mesh, Camera, Light) using a given id
  27107. * @param id defines the id to search for
  27108. * @return the found node or null if not found at all
  27109. */
  27110. Scene.prototype.getNodeByID = function (id) {
  27111. var mesh = this.getMeshByID(id);
  27112. if (mesh) {
  27113. return mesh;
  27114. }
  27115. var light = this.getLightByID(id);
  27116. if (light) {
  27117. return light;
  27118. }
  27119. var camera = this.getCameraByID(id);
  27120. if (camera) {
  27121. return camera;
  27122. }
  27123. var bone = this.getBoneByID(id);
  27124. return bone;
  27125. };
  27126. /**
  27127. * Gets a node (Mesh, Camera, Light) using a given name
  27128. * @param name defines the name to search for
  27129. * @return the found node or null if not found at all.
  27130. */
  27131. Scene.prototype.getNodeByName = function (name) {
  27132. var mesh = this.getMeshByName(name);
  27133. if (mesh) {
  27134. return mesh;
  27135. }
  27136. var light = this.getLightByName(name);
  27137. if (light) {
  27138. return light;
  27139. }
  27140. var camera = this.getCameraByName(name);
  27141. if (camera) {
  27142. return camera;
  27143. }
  27144. var bone = this.getBoneByName(name);
  27145. return bone;
  27146. };
  27147. /**
  27148. * Gets a mesh using a given name
  27149. * @param name defines the name to search for
  27150. * @return the found mesh or null if not found at all.
  27151. */
  27152. Scene.prototype.getMeshByName = function (name) {
  27153. for (var index = 0; index < this.meshes.length; index++) {
  27154. if (this.meshes[index].name === name) {
  27155. return this.meshes[index];
  27156. }
  27157. }
  27158. return null;
  27159. };
  27160. /**
  27161. * Gets a transform node using a given name
  27162. * @param name defines the name to search for
  27163. * @return the found transform node or null if not found at all.
  27164. */
  27165. Scene.prototype.getTransformNodeByName = function (name) {
  27166. for (var index = 0; index < this.transformNodes.length; index++) {
  27167. if (this.transformNodes[index].name === name) {
  27168. return this.transformNodes[index];
  27169. }
  27170. }
  27171. return null;
  27172. };
  27173. /**
  27174. * Gets a sound using a given name
  27175. * @param name defines the name to search for
  27176. * @return the found sound or null if not found at all.
  27177. */
  27178. Scene.prototype.getSoundByName = function (name) {
  27179. var index;
  27180. if (BABYLON.AudioEngine) {
  27181. for (index = 0; index < this.mainSoundTrack.soundCollection.length; index++) {
  27182. if (this.mainSoundTrack.soundCollection[index].name === name) {
  27183. return this.mainSoundTrack.soundCollection[index];
  27184. }
  27185. }
  27186. for (var sdIndex = 0; sdIndex < this.soundTracks.length; sdIndex++) {
  27187. for (index = 0; index < this.soundTracks[sdIndex].soundCollection.length; index++) {
  27188. if (this.soundTracks[sdIndex].soundCollection[index].name === name) {
  27189. return this.soundTracks[sdIndex].soundCollection[index];
  27190. }
  27191. }
  27192. }
  27193. }
  27194. return null;
  27195. };
  27196. /**
  27197. * Gets a skeleton using a given id (if many are found, this function will pick the last one)
  27198. * @param id defines the id to search for
  27199. * @return the found skeleton or null if not found at all.
  27200. */
  27201. Scene.prototype.getLastSkeletonByID = function (id) {
  27202. for (var index = this.skeletons.length - 1; index >= 0; index--) {
  27203. if (this.skeletons[index].id === id) {
  27204. return this.skeletons[index];
  27205. }
  27206. }
  27207. return null;
  27208. };
  27209. /**
  27210. * Gets a skeleton using a given id (if many are found, this function will pick the first one)
  27211. * @param id defines the id to search for
  27212. * @return the found skeleton or null if not found at all.
  27213. */
  27214. Scene.prototype.getSkeletonById = function (id) {
  27215. for (var index = 0; index < this.skeletons.length; index++) {
  27216. if (this.skeletons[index].id === id) {
  27217. return this.skeletons[index];
  27218. }
  27219. }
  27220. return null;
  27221. };
  27222. /**
  27223. * Gets a skeleton using a given name
  27224. * @param name defines the name to search for
  27225. * @return the found skeleton or null if not found at all.
  27226. */
  27227. Scene.prototype.getSkeletonByName = function (name) {
  27228. for (var index = 0; index < this.skeletons.length; index++) {
  27229. if (this.skeletons[index].name === name) {
  27230. return this.skeletons[index];
  27231. }
  27232. }
  27233. return null;
  27234. };
  27235. /**
  27236. * Gets a morph target manager using a given id (if many are found, this function will pick the last one)
  27237. * @param id defines the id to search for
  27238. * @return the found morph target manager or null if not found at all.
  27239. */
  27240. Scene.prototype.getMorphTargetManagerById = function (id) {
  27241. for (var index = 0; index < this.morphTargetManagers.length; index++) {
  27242. if (this.morphTargetManagers[index].uniqueId === id) {
  27243. return this.morphTargetManagers[index];
  27244. }
  27245. }
  27246. return null;
  27247. };
  27248. /**
  27249. * Gets a boolean indicating if the given mesh is active
  27250. * @param mesh defines the mesh to look for
  27251. * @returns true if the mesh is in the active list
  27252. */
  27253. Scene.prototype.isActiveMesh = function (mesh) {
  27254. return (this._activeMeshes.indexOf(mesh) !== -1);
  27255. };
  27256. Object.defineProperty(Scene.prototype, "uid", {
  27257. /**
  27258. * Return a unique id as a string which can serve as an identifier for the scene
  27259. */
  27260. get: function () {
  27261. if (!this._uid) {
  27262. this._uid = BABYLON.Tools.RandomId();
  27263. }
  27264. return this._uid;
  27265. },
  27266. enumerable: true,
  27267. configurable: true
  27268. });
  27269. /**
  27270. * Add an externaly attached data from its key.
  27271. * This method call will fail and return false, if such key already exists.
  27272. * If you don't care and just want to get the data no matter what, use the more convenient getOrAddExternalDataWithFactory() method.
  27273. * @param key the unique key that identifies the data
  27274. * @param data the data object to associate to the key for this Engine instance
  27275. * @return true if no such key were already present and the data was added successfully, false otherwise
  27276. */
  27277. Scene.prototype.addExternalData = function (key, data) {
  27278. if (!this._externalData) {
  27279. this._externalData = new BABYLON.StringDictionary();
  27280. }
  27281. return this._externalData.add(key, data);
  27282. };
  27283. /**
  27284. * Get an externaly attached data from its key
  27285. * @param key the unique key that identifies the data
  27286. * @return the associated data, if present (can be null), or undefined if not present
  27287. */
  27288. Scene.prototype.getExternalData = function (key) {
  27289. if (!this._externalData) {
  27290. return null;
  27291. }
  27292. return this._externalData.get(key);
  27293. };
  27294. /**
  27295. * Get an externaly attached data from its key, create it using a factory if it's not already present
  27296. * @param key the unique key that identifies the data
  27297. * @param factory the factory that will be called to create the instance if and only if it doesn't exists
  27298. * @return the associated data, can be null if the factory returned null.
  27299. */
  27300. Scene.prototype.getOrAddExternalDataWithFactory = function (key, factory) {
  27301. if (!this._externalData) {
  27302. this._externalData = new BABYLON.StringDictionary();
  27303. }
  27304. return this._externalData.getOrAddWithFactory(key, factory);
  27305. };
  27306. /**
  27307. * Remove an externaly attached data from the Engine instance
  27308. * @param key the unique key that identifies the data
  27309. * @return true if the data was successfully removed, false if it doesn't exist
  27310. */
  27311. Scene.prototype.removeExternalData = function (key) {
  27312. return this._externalData.remove(key);
  27313. };
  27314. Scene.prototype._evaluateSubMesh = function (subMesh, mesh) {
  27315. if (this.dispatchAllSubMeshesOfActiveMeshes || mesh.alwaysSelectAsActiveMesh || mesh.subMeshes.length === 1 || subMesh.isInFrustum(this._frustumPlanes)) {
  27316. for (var _i = 0, _a = this._evaluateSubMeshStage; _i < _a.length; _i++) {
  27317. var step = _a[_i];
  27318. step.action(mesh, subMesh);
  27319. }
  27320. var material = subMesh.getMaterial();
  27321. if (material !== null && material !== undefined) {
  27322. // Render targets
  27323. if (material.getRenderTargetTextures !== undefined) {
  27324. if (this._processedMaterials.indexOf(material) === -1) {
  27325. this._processedMaterials.push(material);
  27326. this._renderTargets.concatWithNoDuplicate(material.getRenderTargetTextures());
  27327. }
  27328. }
  27329. // Dispatch
  27330. this._activeIndices.addCount(subMesh.indexCount, false);
  27331. this._renderingManager.dispatch(subMesh, mesh, material);
  27332. }
  27333. }
  27334. };
  27335. /**
  27336. * Clear the processed materials smart array preventing retention point in material dispose.
  27337. */
  27338. Scene.prototype.freeProcessedMaterials = function () {
  27339. this._processedMaterials.dispose();
  27340. };
  27341. /**
  27342. * Clear the active meshes smart array preventing retention point in mesh dispose.
  27343. */
  27344. Scene.prototype.freeActiveMeshes = function () {
  27345. this._activeMeshes.dispose();
  27346. if (this.activeCamera && this.activeCamera._activeMeshes) {
  27347. this.activeCamera._activeMeshes.dispose();
  27348. }
  27349. if (this.activeCameras) {
  27350. for (var i = 0; i < this.activeCameras.length; i++) {
  27351. var activeCamera = this.activeCameras[i];
  27352. if (activeCamera && activeCamera._activeMeshes) {
  27353. activeCamera._activeMeshes.dispose();
  27354. }
  27355. }
  27356. }
  27357. };
  27358. /**
  27359. * Clear the info related to rendering groups preventing retention points during dispose.
  27360. */
  27361. Scene.prototype.freeRenderingGroups = function () {
  27362. if (this._renderingManager) {
  27363. this._renderingManager.freeRenderingGroups();
  27364. }
  27365. if (this.textures) {
  27366. for (var i = 0; i < this.textures.length; i++) {
  27367. var texture = this.textures[i];
  27368. if (texture && texture.renderList) {
  27369. texture.freeRenderingGroups();
  27370. }
  27371. }
  27372. }
  27373. };
  27374. /** @hidden */
  27375. Scene.prototype._isInIntermediateRendering = function () {
  27376. return this._intermediateRendering;
  27377. };
  27378. /**
  27379. * Use this function to stop evaluating active meshes. The current list will be keep alive between frames
  27380. * @returns the current scene
  27381. */
  27382. Scene.prototype.freezeActiveMeshes = function () {
  27383. if (!this.activeCamera) {
  27384. return this;
  27385. }
  27386. if (!this._frustumPlanes) {
  27387. this.setTransformMatrix(this.activeCamera.getViewMatrix(), this.activeCamera.getProjectionMatrix());
  27388. }
  27389. this._evaluateActiveMeshes();
  27390. this._activeMeshesFrozen = true;
  27391. return this;
  27392. };
  27393. /**
  27394. * Use this function to restart evaluating active meshes on every frame
  27395. * @returns the current scene
  27396. */
  27397. Scene.prototype.unfreezeActiveMeshes = function () {
  27398. this._activeMeshesFrozen = false;
  27399. return this;
  27400. };
  27401. Scene.prototype._evaluateActiveMeshes = function () {
  27402. if (this._activeMeshesFrozen && this._activeMeshes.length) {
  27403. return;
  27404. }
  27405. if (!this.activeCamera) {
  27406. return;
  27407. }
  27408. this.onBeforeActiveMeshesEvaluationObservable.notifyObservers(this);
  27409. this.activeCamera._activeMeshes.reset();
  27410. this._activeMeshes.reset();
  27411. this._renderingManager.reset();
  27412. this._processedMaterials.reset();
  27413. this._activeParticleSystems.reset();
  27414. this._activeSkeletons.reset();
  27415. this._softwareSkinnedMeshes.reset();
  27416. for (var _i = 0, _a = this._beforeEvaluateActiveMeshStage; _i < _a.length; _i++) {
  27417. var step = _a[_i];
  27418. step.action();
  27419. }
  27420. // Determine mesh candidates
  27421. var meshes = this.getActiveMeshCandidates();
  27422. // Check each mesh
  27423. var len = meshes.length;
  27424. for (var i = 0; i < len; i++) {
  27425. var mesh = meshes.data[i];
  27426. if (mesh.isBlocked) {
  27427. continue;
  27428. }
  27429. this._totalVertices.addCount(mesh.getTotalVertices(), false);
  27430. if (!mesh.isReady() || !mesh.isEnabled()) {
  27431. continue;
  27432. }
  27433. mesh.computeWorldMatrix();
  27434. // Intersections
  27435. if (mesh.actionManager && mesh.actionManager.hasSpecificTriggers2(BABYLON.ActionManager.OnIntersectionEnterTrigger, BABYLON.ActionManager.OnIntersectionExitTrigger)) {
  27436. this._meshesForIntersections.pushNoDuplicate(mesh);
  27437. }
  27438. // Switch to current LOD
  27439. var meshLOD = mesh.getLOD(this.activeCamera);
  27440. if (meshLOD === undefined || meshLOD === null) {
  27441. continue;
  27442. }
  27443. mesh._preActivate();
  27444. if (mesh.isVisible && mesh.visibility > 0 && (mesh.alwaysSelectAsActiveMesh || ((mesh.layerMask & this.activeCamera.layerMask) !== 0 && mesh.isInFrustum(this._frustumPlanes)))) {
  27445. this._activeMeshes.push(mesh);
  27446. this.activeCamera._activeMeshes.push(mesh);
  27447. mesh._activate(this._renderId);
  27448. if (meshLOD !== mesh) {
  27449. meshLOD._activate(this._renderId);
  27450. }
  27451. this._activeMesh(mesh, meshLOD);
  27452. }
  27453. }
  27454. this.onAfterActiveMeshesEvaluationObservable.notifyObservers(this);
  27455. // Particle systems
  27456. if (this.particlesEnabled) {
  27457. this.onBeforeParticlesRenderingObservable.notifyObservers(this);
  27458. for (var particleIndex = 0; particleIndex < this.particleSystems.length; particleIndex++) {
  27459. var particleSystem = this.particleSystems[particleIndex];
  27460. if (!particleSystem.isStarted() || !particleSystem.emitter) {
  27461. continue;
  27462. }
  27463. var emitter = particleSystem.emitter;
  27464. if (!emitter.position || emitter.isEnabled()) {
  27465. this._activeParticleSystems.push(particleSystem);
  27466. particleSystem.animate();
  27467. this._renderingManager.dispatchParticles(particleSystem);
  27468. }
  27469. }
  27470. this.onAfterParticlesRenderingObservable.notifyObservers(this);
  27471. }
  27472. };
  27473. Scene.prototype._activeMesh = function (sourceMesh, mesh) {
  27474. if (this.skeletonsEnabled && mesh.skeleton !== null && mesh.skeleton !== undefined) {
  27475. if (this._activeSkeletons.pushNoDuplicate(mesh.skeleton)) {
  27476. mesh.skeleton.prepare();
  27477. }
  27478. if (!mesh.computeBonesUsingShaders) {
  27479. this._softwareSkinnedMeshes.pushNoDuplicate(mesh);
  27480. }
  27481. }
  27482. for (var _i = 0, _a = this._activeMeshStage; _i < _a.length; _i++) {
  27483. var step = _a[_i];
  27484. step.action(sourceMesh, mesh);
  27485. }
  27486. if (mesh !== undefined && mesh !== null
  27487. && mesh.subMeshes !== undefined && mesh.subMeshes !== null && mesh.subMeshes.length > 0) {
  27488. var subMeshes = this.getActiveSubMeshCandidates(mesh);
  27489. var len = subMeshes.length;
  27490. for (var i = 0; i < len; i++) {
  27491. var subMesh = subMeshes.data[i];
  27492. this._evaluateSubMesh(subMesh, mesh);
  27493. }
  27494. }
  27495. };
  27496. /**
  27497. * Update the transform matrix to update from the current active camera
  27498. * @param force defines a boolean used to force the update even if cache is up to date
  27499. */
  27500. Scene.prototype.updateTransformMatrix = function (force) {
  27501. if (!this.activeCamera) {
  27502. return;
  27503. }
  27504. this.setTransformMatrix(this.activeCamera.getViewMatrix(), this.activeCamera.getProjectionMatrix(force));
  27505. };
  27506. /**
  27507. * Defines an alternate camera (used mostly in VR-like scenario where two cameras can render the same scene from a slightly different point of view)
  27508. * @param alternateCamera defines the camera to use
  27509. */
  27510. Scene.prototype.updateAlternateTransformMatrix = function (alternateCamera) {
  27511. this._setAlternateTransformMatrix(alternateCamera.getViewMatrix(), alternateCamera.getProjectionMatrix());
  27512. };
  27513. Scene.prototype._renderForCamera = function (camera, rigParent) {
  27514. if (camera && camera._skipRendering) {
  27515. return;
  27516. }
  27517. var engine = this._engine;
  27518. this.activeCamera = camera;
  27519. if (!this.activeCamera)
  27520. throw new Error("Active camera not set");
  27521. // Viewport
  27522. engine.setViewport(this.activeCamera.viewport);
  27523. // Camera
  27524. this.resetCachedMaterial();
  27525. this._renderId++;
  27526. this.updateTransformMatrix();
  27527. if (camera._alternateCamera) {
  27528. this.updateAlternateTransformMatrix(camera._alternateCamera);
  27529. this._alternateRendering = true;
  27530. }
  27531. this.onBeforeCameraRenderObservable.notifyObservers(this.activeCamera);
  27532. // Meshes
  27533. this._evaluateActiveMeshes();
  27534. // Software skinning
  27535. for (var softwareSkinnedMeshIndex = 0; softwareSkinnedMeshIndex < this._softwareSkinnedMeshes.length; softwareSkinnedMeshIndex++) {
  27536. var mesh = this._softwareSkinnedMeshes.data[softwareSkinnedMeshIndex];
  27537. mesh.applySkeleton(mesh.skeleton);
  27538. }
  27539. // Render targets
  27540. this.onBeforeRenderTargetsRenderObservable.notifyObservers(this);
  27541. if (camera.customRenderTargets && camera.customRenderTargets.length > 0) {
  27542. this._renderTargets.concatWithNoDuplicate(camera.customRenderTargets);
  27543. }
  27544. if (rigParent && rigParent.customRenderTargets && rigParent.customRenderTargets.length > 0) {
  27545. this._renderTargets.concatWithNoDuplicate(rigParent.customRenderTargets);
  27546. }
  27547. if (this.renderTargetsEnabled) {
  27548. this._intermediateRendering = true;
  27549. if (this._renderTargets.length > 0) {
  27550. BABYLON.Tools.StartPerformanceCounter("Render targets", this._renderTargets.length > 0);
  27551. for (var renderIndex = 0; renderIndex < this._renderTargets.length; renderIndex++) {
  27552. var renderTarget = this._renderTargets.data[renderIndex];
  27553. if (renderTarget._shouldRender()) {
  27554. this._renderId++;
  27555. var hasSpecialRenderTargetCamera = renderTarget.activeCamera && renderTarget.activeCamera !== this.activeCamera;
  27556. renderTarget.render(hasSpecialRenderTargetCamera, this.dumpNextRenderTargets);
  27557. }
  27558. }
  27559. BABYLON.Tools.EndPerformanceCounter("Render targets", this._renderTargets.length > 0);
  27560. this._renderId++;
  27561. }
  27562. for (var _i = 0, _a = this._cameraDrawRenderTargetStage; _i < _a.length; _i++) {
  27563. var step = _a[_i];
  27564. step.action(this.activeCamera);
  27565. }
  27566. this._intermediateRendering = false;
  27567. engine.restoreDefaultFramebuffer(); // Restore back buffer if needed
  27568. }
  27569. this.onAfterRenderTargetsRenderObservable.notifyObservers(this);
  27570. // Prepare Frame
  27571. if (this.postProcessManager) {
  27572. this.postProcessManager._prepareFrame();
  27573. }
  27574. // Before Camera Draw
  27575. for (var _b = 0, _c = this._beforeCameraDrawStage; _b < _c.length; _b++) {
  27576. var step = _c[_b];
  27577. step.action(this.activeCamera);
  27578. }
  27579. // Render
  27580. this.onBeforeDrawPhaseObservable.notifyObservers(this);
  27581. this._renderingManager.render(null, null, true, true);
  27582. this.onAfterDrawPhaseObservable.notifyObservers(this);
  27583. // After Camera Draw
  27584. for (var _d = 0, _e = this._afterCameraDrawStage; _d < _e.length; _d++) {
  27585. var step = _e[_d];
  27586. step.action(this.activeCamera);
  27587. }
  27588. // Finalize frame
  27589. if (this.postProcessManager) {
  27590. this.postProcessManager._finalizeFrame(camera.isIntermediate);
  27591. }
  27592. // Reset some special arrays
  27593. this._renderTargets.reset();
  27594. this._alternateRendering = false;
  27595. this.onAfterCameraRenderObservable.notifyObservers(this.activeCamera);
  27596. };
  27597. Scene.prototype._processSubCameras = function (camera) {
  27598. if (camera.cameraRigMode === BABYLON.Camera.RIG_MODE_NONE) {
  27599. this._renderForCamera(camera);
  27600. return;
  27601. }
  27602. // rig cameras
  27603. for (var index = 0; index < camera._rigCameras.length; index++) {
  27604. this._renderForCamera(camera._rigCameras[index], camera);
  27605. }
  27606. this.activeCamera = camera;
  27607. this.setTransformMatrix(this.activeCamera.getViewMatrix(), this.activeCamera.getProjectionMatrix());
  27608. };
  27609. Scene.prototype._checkIntersections = function () {
  27610. for (var index = 0; index < this._meshesForIntersections.length; index++) {
  27611. var sourceMesh = this._meshesForIntersections.data[index];
  27612. if (!sourceMesh.actionManager) {
  27613. continue;
  27614. }
  27615. for (var actionIndex = 0; actionIndex < sourceMesh.actionManager.actions.length; actionIndex++) {
  27616. var action = sourceMesh.actionManager.actions[actionIndex];
  27617. if (action.trigger === BABYLON.ActionManager.OnIntersectionEnterTrigger || action.trigger === BABYLON.ActionManager.OnIntersectionExitTrigger) {
  27618. var parameters = action.getTriggerParameter();
  27619. var otherMesh = parameters instanceof BABYLON.AbstractMesh ? parameters : parameters.mesh;
  27620. var areIntersecting = otherMesh.intersectsMesh(sourceMesh, parameters.usePreciseIntersection);
  27621. var currentIntersectionInProgress = sourceMesh._intersectionsInProgress.indexOf(otherMesh);
  27622. if (areIntersecting && currentIntersectionInProgress === -1) {
  27623. if (action.trigger === BABYLON.ActionManager.OnIntersectionEnterTrigger) {
  27624. action._executeCurrent(BABYLON.ActionEvent.CreateNew(sourceMesh, undefined, otherMesh));
  27625. sourceMesh._intersectionsInProgress.push(otherMesh);
  27626. }
  27627. else if (action.trigger === BABYLON.ActionManager.OnIntersectionExitTrigger) {
  27628. sourceMesh._intersectionsInProgress.push(otherMesh);
  27629. }
  27630. }
  27631. else if (!areIntersecting && currentIntersectionInProgress > -1) {
  27632. //They intersected, and now they don't.
  27633. //is this trigger an exit trigger? execute an event.
  27634. if (action.trigger === BABYLON.ActionManager.OnIntersectionExitTrigger) {
  27635. action._executeCurrent(BABYLON.ActionEvent.CreateNew(sourceMesh, undefined, otherMesh));
  27636. }
  27637. //if this is an exit trigger, or no exit trigger exists, remove the id from the intersection in progress array.
  27638. if (!sourceMesh.actionManager.hasSpecificTrigger(BABYLON.ActionManager.OnIntersectionExitTrigger, function (parameter) {
  27639. var parameterMesh = parameter instanceof BABYLON.AbstractMesh ? parameter : parameter.mesh;
  27640. return otherMesh === parameterMesh;
  27641. }) || action.trigger === BABYLON.ActionManager.OnIntersectionExitTrigger) {
  27642. sourceMesh._intersectionsInProgress.splice(currentIntersectionInProgress, 1);
  27643. }
  27644. }
  27645. }
  27646. }
  27647. }
  27648. };
  27649. /**
  27650. * Render the scene
  27651. * @param updateCameras defines a boolean indicating if cameras must update according to their inputs (true by default)
  27652. */
  27653. Scene.prototype.render = function (updateCameras) {
  27654. if (updateCameras === void 0) { updateCameras = true; }
  27655. if (this.isDisposed) {
  27656. return;
  27657. }
  27658. // Register components that have been associated lately to the scene.
  27659. this._registerTransientComponents();
  27660. this._activeParticles.fetchNewFrame();
  27661. this._totalVertices.fetchNewFrame();
  27662. this._activeIndices.fetchNewFrame();
  27663. this._activeBones.fetchNewFrame();
  27664. this._meshesForIntersections.reset();
  27665. this.resetCachedMaterial();
  27666. this.onBeforeAnimationsObservable.notifyObservers(this);
  27667. // Actions
  27668. if (this.actionManager) {
  27669. this.actionManager.processTrigger(BABYLON.ActionManager.OnEveryFrameTrigger);
  27670. }
  27671. if (this._engine.isDeterministicLockStep()) {
  27672. var deltaTime = Math.max(Scene.MinDeltaTime, Math.min(this._engine.getDeltaTime(), Scene.MaxDeltaTime)) + this._timeAccumulator;
  27673. var defaultFPS = (60.0 / 1000.0);
  27674. var defaultFrameTime = 1000 / 60; // frame time in MS
  27675. if (this._physicsEngine) {
  27676. defaultFrameTime = this._physicsEngine.getTimeStep() * 1000;
  27677. }
  27678. var stepsTaken = 0;
  27679. var maxSubSteps = this._engine.getLockstepMaxSteps();
  27680. var internalSteps = Math.floor(deltaTime / (1000 * defaultFPS));
  27681. internalSteps = Math.min(internalSteps, maxSubSteps);
  27682. do {
  27683. this.onBeforeStepObservable.notifyObservers(this);
  27684. // Animations
  27685. this._animationRatio = defaultFrameTime * defaultFPS;
  27686. this._animate();
  27687. this.onAfterAnimationsObservable.notifyObservers(this);
  27688. // Physics
  27689. if (this._physicsEngine) {
  27690. this.onBeforePhysicsObservable.notifyObservers(this);
  27691. this._physicsEngine._step(defaultFrameTime / 1000);
  27692. this.onAfterPhysicsObservable.notifyObservers(this);
  27693. }
  27694. this.onAfterStepObservable.notifyObservers(this);
  27695. this._currentStepId++;
  27696. stepsTaken++;
  27697. deltaTime -= defaultFrameTime;
  27698. } while (deltaTime > 0 && stepsTaken < internalSteps);
  27699. this._timeAccumulator = deltaTime < 0 ? 0 : deltaTime;
  27700. }
  27701. else {
  27702. // Animations
  27703. var deltaTime = this.useConstantAnimationDeltaTime ? 16 : Math.max(Scene.MinDeltaTime, Math.min(this._engine.getDeltaTime(), Scene.MaxDeltaTime));
  27704. this._animationRatio = deltaTime * (60.0 / 1000.0);
  27705. this._animate();
  27706. this.onAfterAnimationsObservable.notifyObservers(this);
  27707. // Physics
  27708. if (this._physicsEngine) {
  27709. this.onBeforePhysicsObservable.notifyObservers(this);
  27710. this._physicsEngine._step(deltaTime / 1000.0);
  27711. this.onAfterPhysicsObservable.notifyObservers(this);
  27712. }
  27713. }
  27714. // Before camera update steps
  27715. for (var _i = 0, _a = this._beforeCameraUpdateStage; _i < _a.length; _i++) {
  27716. var step = _a[_i];
  27717. step.action();
  27718. }
  27719. // Update Cameras
  27720. if (updateCameras) {
  27721. if (this.activeCameras.length > 0) {
  27722. for (var cameraIndex = 0; cameraIndex < this.activeCameras.length; cameraIndex++) {
  27723. var camera = this.activeCameras[cameraIndex];
  27724. camera.update();
  27725. if (camera.cameraRigMode !== BABYLON.Camera.RIG_MODE_NONE) {
  27726. // rig cameras
  27727. for (var index = 0; index < camera._rigCameras.length; index++) {
  27728. camera._rigCameras[index].update();
  27729. }
  27730. }
  27731. }
  27732. }
  27733. else if (this.activeCamera) {
  27734. this.activeCamera.update();
  27735. if (this.activeCamera.cameraRigMode !== BABYLON.Camera.RIG_MODE_NONE) {
  27736. // rig cameras
  27737. for (var index = 0; index < this.activeCamera._rigCameras.length; index++) {
  27738. this.activeCamera._rigCameras[index].update();
  27739. }
  27740. }
  27741. }
  27742. }
  27743. // Before render
  27744. this.onBeforeRenderObservable.notifyObservers(this);
  27745. // Customs render targets
  27746. this.onBeforeRenderTargetsRenderObservable.notifyObservers(this);
  27747. var engine = this.getEngine();
  27748. var currentActiveCamera = this.activeCamera;
  27749. if (this.renderTargetsEnabled) {
  27750. BABYLON.Tools.StartPerformanceCounter("Custom render targets", this.customRenderTargets.length > 0);
  27751. this._intermediateRendering = true;
  27752. for (var customIndex = 0; customIndex < this.customRenderTargets.length; customIndex++) {
  27753. var renderTarget = this.customRenderTargets[customIndex];
  27754. if (renderTarget._shouldRender()) {
  27755. this._renderId++;
  27756. this.activeCamera = renderTarget.activeCamera || this.activeCamera;
  27757. if (!this.activeCamera)
  27758. throw new Error("Active camera not set");
  27759. // Viewport
  27760. engine.setViewport(this.activeCamera.viewport);
  27761. // Camera
  27762. this.updateTransformMatrix();
  27763. renderTarget.render(currentActiveCamera !== this.activeCamera, this.dumpNextRenderTargets);
  27764. }
  27765. }
  27766. BABYLON.Tools.EndPerformanceCounter("Custom render targets", this.customRenderTargets.length > 0);
  27767. this._intermediateRendering = false;
  27768. this._renderId++;
  27769. }
  27770. // Restore back buffer
  27771. if (this.customRenderTargets.length > 0) {
  27772. engine.restoreDefaultFramebuffer();
  27773. }
  27774. this.onAfterRenderTargetsRenderObservable.notifyObservers(this);
  27775. this.activeCamera = currentActiveCamera;
  27776. for (var _b = 0, _c = this._beforeClearStage; _b < _c.length; _b++) {
  27777. var step = _c[_b];
  27778. step.action();
  27779. }
  27780. // Clear
  27781. if (this.autoClearDepthAndStencil || this.autoClear) {
  27782. this._engine.clear(this.clearColor, this.autoClear || this.forceWireframe || this.forcePointsCloud, this.autoClearDepthAndStencil, this.autoClearDepthAndStencil);
  27783. }
  27784. // Collects render targets from external components.
  27785. for (var _d = 0, _e = this._gatherRenderTargetsStage; _d < _e.length; _d++) {
  27786. var step = _e[_d];
  27787. step.action(this._renderTargets);
  27788. }
  27789. // Multi-cameras?
  27790. if (this.activeCameras.length > 0) {
  27791. for (var cameraIndex = 0; cameraIndex < this.activeCameras.length; cameraIndex++) {
  27792. if (cameraIndex > 0) {
  27793. this._engine.clear(null, false, true, true);
  27794. }
  27795. this._processSubCameras(this.activeCameras[cameraIndex]);
  27796. }
  27797. }
  27798. else {
  27799. if (!this.activeCamera) {
  27800. throw new Error("No camera defined");
  27801. }
  27802. this._processSubCameras(this.activeCamera);
  27803. }
  27804. // Intersection checks
  27805. this._checkIntersections();
  27806. // Update the audio listener attached to the camera
  27807. if (BABYLON.AudioEngine) {
  27808. this._updateAudioParameters();
  27809. }
  27810. // After render
  27811. if (this.afterRender) {
  27812. this.afterRender();
  27813. }
  27814. this.onAfterRenderObservable.notifyObservers(this);
  27815. // Cleaning
  27816. for (var index = 0; index < this._toBeDisposed.length; index++) {
  27817. var data = this._toBeDisposed.data[index];
  27818. if (data) {
  27819. data.dispose();
  27820. }
  27821. }
  27822. this._toBeDisposed.reset();
  27823. if (this.dumpNextRenderTargets) {
  27824. this.dumpNextRenderTargets = false;
  27825. }
  27826. this._activeBones.addCount(0, true);
  27827. this._activeIndices.addCount(0, true);
  27828. this._activeParticles.addCount(0, true);
  27829. };
  27830. Scene.prototype._updateAudioParameters = function () {
  27831. if (!this.audioEnabled || !this._mainSoundTrack || (this._mainSoundTrack.soundCollection.length === 0 && this.soundTracks.length === 1)) {
  27832. return;
  27833. }
  27834. var listeningCamera;
  27835. var audioEngine = BABYLON.Engine.audioEngine;
  27836. if (this.activeCameras.length > 0) {
  27837. listeningCamera = this.activeCameras[0];
  27838. }
  27839. else {
  27840. listeningCamera = this.activeCamera;
  27841. }
  27842. if (listeningCamera && audioEngine.canUseWebAudio && audioEngine.audioContext) {
  27843. audioEngine.audioContext.listener.setPosition(listeningCamera.position.x, listeningCamera.position.y, listeningCamera.position.z);
  27844. // for VR cameras
  27845. if (listeningCamera.rigCameras && listeningCamera.rigCameras.length > 0) {
  27846. listeningCamera = listeningCamera.rigCameras[0];
  27847. }
  27848. var mat = BABYLON.Matrix.Invert(listeningCamera.getViewMatrix());
  27849. var cameraDirection = BABYLON.Vector3.TransformNormal(new BABYLON.Vector3(0, 0, -1), mat);
  27850. cameraDirection.normalize();
  27851. // To avoid some errors on GearVR
  27852. if (!isNaN(cameraDirection.x) && !isNaN(cameraDirection.y) && !isNaN(cameraDirection.z)) {
  27853. audioEngine.audioContext.listener.setOrientation(cameraDirection.x, cameraDirection.y, cameraDirection.z, 0, 1, 0);
  27854. }
  27855. var i;
  27856. for (i = 0; i < this.mainSoundTrack.soundCollection.length; i++) {
  27857. var sound = this.mainSoundTrack.soundCollection[i];
  27858. if (sound.useCustomAttenuation) {
  27859. sound.updateDistanceFromListener();
  27860. }
  27861. }
  27862. for (i = 0; i < this.soundTracks.length; i++) {
  27863. for (var j = 0; j < this.soundTracks[i].soundCollection.length; j++) {
  27864. sound = this.soundTracks[i].soundCollection[j];
  27865. if (sound.useCustomAttenuation) {
  27866. sound.updateDistanceFromListener();
  27867. }
  27868. }
  27869. }
  27870. }
  27871. };
  27872. Object.defineProperty(Scene.prototype, "audioEnabled", {
  27873. // Audio
  27874. /**
  27875. * Gets or sets if audio support is enabled
  27876. * @see http://doc.babylonjs.com/how_to/playing_sounds_and_music
  27877. */
  27878. get: function () {
  27879. return this._audioEnabled;
  27880. },
  27881. set: function (value) {
  27882. this._audioEnabled = value;
  27883. if (BABYLON.AudioEngine) {
  27884. if (this._audioEnabled) {
  27885. this._enableAudio();
  27886. }
  27887. else {
  27888. this._disableAudio();
  27889. }
  27890. }
  27891. },
  27892. enumerable: true,
  27893. configurable: true
  27894. });
  27895. Scene.prototype._disableAudio = function () {
  27896. var i;
  27897. for (i = 0; i < this.mainSoundTrack.soundCollection.length; i++) {
  27898. this.mainSoundTrack.soundCollection[i].pause();
  27899. }
  27900. for (i = 0; i < this.soundTracks.length; i++) {
  27901. for (var j = 0; j < this.soundTracks[i].soundCollection.length; j++) {
  27902. this.soundTracks[i].soundCollection[j].pause();
  27903. }
  27904. }
  27905. };
  27906. Scene.prototype._enableAudio = function () {
  27907. var i;
  27908. for (i = 0; i < this.mainSoundTrack.soundCollection.length; i++) {
  27909. if (this.mainSoundTrack.soundCollection[i].isPaused) {
  27910. this.mainSoundTrack.soundCollection[i].play();
  27911. }
  27912. }
  27913. for (i = 0; i < this.soundTracks.length; i++) {
  27914. for (var j = 0; j < this.soundTracks[i].soundCollection.length; j++) {
  27915. if (this.soundTracks[i].soundCollection[j].isPaused) {
  27916. this.soundTracks[i].soundCollection[j].play();
  27917. }
  27918. }
  27919. }
  27920. };
  27921. Object.defineProperty(Scene.prototype, "headphone", {
  27922. /**
  27923. * Gets or sets if audio will be output to headphones
  27924. * @see http://doc.babylonjs.com/how_to/playing_sounds_and_music
  27925. */
  27926. get: function () {
  27927. return this._headphone;
  27928. },
  27929. set: function (value) {
  27930. this._headphone = value;
  27931. if (BABYLON.AudioEngine) {
  27932. if (this._headphone) {
  27933. this._switchAudioModeForHeadphones();
  27934. }
  27935. else {
  27936. this._switchAudioModeForNormalSpeakers();
  27937. }
  27938. }
  27939. },
  27940. enumerable: true,
  27941. configurable: true
  27942. });
  27943. Scene.prototype._switchAudioModeForHeadphones = function () {
  27944. this.mainSoundTrack.switchPanningModelToHRTF();
  27945. for (var i = 0; i < this.soundTracks.length; i++) {
  27946. this.soundTracks[i].switchPanningModelToHRTF();
  27947. }
  27948. };
  27949. Scene.prototype._switchAudioModeForNormalSpeakers = function () {
  27950. this.mainSoundTrack.switchPanningModelToEqualPower();
  27951. for (var i = 0; i < this.soundTracks.length; i++) {
  27952. this.soundTracks[i].switchPanningModelToEqualPower();
  27953. }
  27954. };
  27955. /**
  27956. * Freeze all materials
  27957. * A frozen material will not be updatable but should be faster to render
  27958. */
  27959. Scene.prototype.freezeMaterials = function () {
  27960. for (var i = 0; i < this.materials.length; i++) {
  27961. this.materials[i].freeze();
  27962. }
  27963. };
  27964. /**
  27965. * Unfreeze all materials
  27966. * A frozen material will not be updatable but should be faster to render
  27967. */
  27968. Scene.prototype.unfreezeMaterials = function () {
  27969. for (var i = 0; i < this.materials.length; i++) {
  27970. this.materials[i].unfreeze();
  27971. }
  27972. };
  27973. /**
  27974. * Releases all held ressources
  27975. */
  27976. Scene.prototype.dispose = function () {
  27977. this.beforeRender = null;
  27978. this.afterRender = null;
  27979. this.skeletons = [];
  27980. this.morphTargetManagers = [];
  27981. this._transientComponents = [];
  27982. this._isReadyForMeshStage.clear();
  27983. this._beforeEvaluateActiveMeshStage.clear();
  27984. this._evaluateSubMeshStage.clear();
  27985. this._activeMeshStage.clear();
  27986. this._cameraDrawRenderTargetStage.clear();
  27987. this._beforeCameraDrawStage.clear();
  27988. this._beforeRenderingGroupDrawStage.clear();
  27989. this._beforeRenderingMeshStage.clear();
  27990. this._afterRenderingMeshStage.clear();
  27991. this._afterRenderingGroupDrawStage.clear();
  27992. this._afterCameraDrawStage.clear();
  27993. this._beforeCameraUpdateStage.clear();
  27994. this._beforeClearStage.clear();
  27995. this._gatherRenderTargetsStage.clear();
  27996. this._pointerMoveStage.clear();
  27997. this._pointerDownStage.clear();
  27998. this._pointerUpStage.clear();
  27999. for (var _i = 0, _a = this._components; _i < _a.length; _i++) {
  28000. var component = _a[_i];
  28001. component.dispose();
  28002. }
  28003. this.importedMeshesFiles = new Array();
  28004. this.stopAllAnimations();
  28005. this.resetCachedMaterial();
  28006. // Smart arrays
  28007. if (this.activeCamera) {
  28008. this.activeCamera._activeMeshes.dispose();
  28009. this.activeCamera = null;
  28010. }
  28011. this._activeMeshes.dispose();
  28012. this._renderingManager.dispose();
  28013. this._processedMaterials.dispose();
  28014. this._activeParticleSystems.dispose();
  28015. this._activeSkeletons.dispose();
  28016. this._softwareSkinnedMeshes.dispose();
  28017. this._renderTargets.dispose();
  28018. this._registeredForLateAnimationBindings.dispose();
  28019. this._meshesForIntersections.dispose();
  28020. this._toBeDisposed.dispose();
  28021. // Abort active requests
  28022. for (var _b = 0, _c = this._activeRequests; _b < _c.length; _b++) {
  28023. var request = _c[_b];
  28024. request.abort();
  28025. }
  28026. // Events
  28027. this.onDisposeObservable.notifyObservers(this);
  28028. this.onDisposeObservable.clear();
  28029. this.onBeforeRenderObservable.clear();
  28030. this.onAfterRenderObservable.clear();
  28031. this.onBeforeRenderTargetsRenderObservable.clear();
  28032. this.onAfterRenderTargetsRenderObservable.clear();
  28033. this.onAfterStepObservable.clear();
  28034. this.onBeforeStepObservable.clear();
  28035. this.onBeforeActiveMeshesEvaluationObservable.clear();
  28036. this.onAfterActiveMeshesEvaluationObservable.clear();
  28037. this.onBeforeParticlesRenderingObservable.clear();
  28038. this.onAfterParticlesRenderingObservable.clear();
  28039. this.onBeforeDrawPhaseObservable.clear();
  28040. this.onAfterDrawPhaseObservable.clear();
  28041. this.onBeforePhysicsObservable.clear();
  28042. this.onAfterPhysicsObservable.clear();
  28043. this.onBeforeAnimationsObservable.clear();
  28044. this.onAfterAnimationsObservable.clear();
  28045. this.onDataLoadedObservable.clear();
  28046. this.onBeforeRenderingGroupObservable.clear();
  28047. this.onAfterRenderingGroupObservable.clear();
  28048. this.onMeshImportedObservable.clear();
  28049. this.detachControl();
  28050. // Release sounds & sounds tracks
  28051. if (BABYLON.AudioEngine) {
  28052. this.disposeSounds();
  28053. }
  28054. // VR Helper
  28055. if (this.VRHelper) {
  28056. this.VRHelper.dispose();
  28057. }
  28058. // Detach cameras
  28059. var canvas = this._engine.getRenderingCanvas();
  28060. if (canvas) {
  28061. var index;
  28062. for (index = 0; index < this.cameras.length; index++) {
  28063. this.cameras[index].detachControl(canvas);
  28064. }
  28065. }
  28066. // Release animation groups
  28067. while (this.animationGroups.length) {
  28068. this.animationGroups[0].dispose();
  28069. }
  28070. // Release lights
  28071. while (this.lights.length) {
  28072. this.lights[0].dispose();
  28073. }
  28074. // Release meshes
  28075. while (this.meshes.length) {
  28076. this.meshes[0].dispose(true);
  28077. }
  28078. while (this.transformNodes.length) {
  28079. this.removeTransformNode(this.transformNodes[0]);
  28080. }
  28081. // Release cameras
  28082. while (this.cameras.length) {
  28083. this.cameras[0].dispose();
  28084. }
  28085. // Release materials
  28086. if (this.defaultMaterial) {
  28087. this.defaultMaterial.dispose();
  28088. }
  28089. while (this.multiMaterials.length) {
  28090. this.multiMaterials[0].dispose();
  28091. }
  28092. while (this.materials.length) {
  28093. this.materials[0].dispose();
  28094. }
  28095. // Release particles
  28096. while (this.particleSystems.length) {
  28097. this.particleSystems[0].dispose();
  28098. }
  28099. // Release postProcesses
  28100. while (this.postProcesses.length) {
  28101. this.postProcesses[0].dispose();
  28102. }
  28103. // Release textures
  28104. while (this.textures.length) {
  28105. this.textures[0].dispose();
  28106. }
  28107. // Release UBO
  28108. this._sceneUbo.dispose();
  28109. if (this._alternateSceneUbo) {
  28110. this._alternateSceneUbo.dispose();
  28111. }
  28112. // Post-processes
  28113. this.postProcessManager.dispose();
  28114. // Physics
  28115. if (this._physicsEngine) {
  28116. this.disablePhysicsEngine();
  28117. }
  28118. // Remove from engine
  28119. index = this._engine.scenes.indexOf(this);
  28120. if (index > -1) {
  28121. this._engine.scenes.splice(index, 1);
  28122. }
  28123. this._engine.wipeCaches(true);
  28124. this._isDisposed = true;
  28125. };
  28126. Object.defineProperty(Scene.prototype, "isDisposed", {
  28127. /**
  28128. * Gets if the scene is already disposed
  28129. */
  28130. get: function () {
  28131. return this._isDisposed;
  28132. },
  28133. enumerable: true,
  28134. configurable: true
  28135. });
  28136. /**
  28137. * Releases sounds & soundtracks
  28138. */
  28139. Scene.prototype.disposeSounds = function () {
  28140. if (!this._mainSoundTrack) {
  28141. return;
  28142. }
  28143. this.mainSoundTrack.dispose();
  28144. for (var scIndex = 0; scIndex < this.soundTracks.length; scIndex++) {
  28145. this.soundTracks[scIndex].dispose();
  28146. }
  28147. };
  28148. /**
  28149. * Call this function to reduce memory footprint of the scene.
  28150. * Vertex buffers will not store CPU data anymore (this will prevent picking, collisions or physics to work correctly)
  28151. */
  28152. Scene.prototype.clearCachedVertexData = function () {
  28153. for (var meshIndex = 0; meshIndex < this.meshes.length; meshIndex++) {
  28154. var mesh = this.meshes[meshIndex];
  28155. var geometry = mesh.geometry;
  28156. if (geometry) {
  28157. geometry._indices = [];
  28158. for (var vbName in geometry._vertexBuffers) {
  28159. if (!geometry._vertexBuffers.hasOwnProperty(vbName)) {
  28160. continue;
  28161. }
  28162. geometry._vertexBuffers[vbName]._buffer._data = null;
  28163. }
  28164. }
  28165. }
  28166. };
  28167. /**
  28168. * This function will remove the local cached buffer data from texture.
  28169. * It will save memory but will prevent the texture from being rebuilt
  28170. */
  28171. Scene.prototype.cleanCachedTextureBuffer = function () {
  28172. for (var _i = 0, _a = this.textures; _i < _a.length; _i++) {
  28173. var baseTexture = _a[_i];
  28174. var buffer = baseTexture._buffer;
  28175. if (buffer) {
  28176. baseTexture._buffer = null;
  28177. }
  28178. }
  28179. };
  28180. /**
  28181. * Get the world extend vectors with an optional filter
  28182. *
  28183. * @param filterPredicate the predicate - which meshes should be included when calculating the world size
  28184. * @returns {{ min: Vector3; max: Vector3 }} min and max vectors
  28185. */
  28186. Scene.prototype.getWorldExtends = function (filterPredicate) {
  28187. var min = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  28188. var max = new BABYLON.Vector3(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE);
  28189. filterPredicate = filterPredicate || (function () { return true; });
  28190. this.meshes.filter(filterPredicate).forEach(function (mesh) {
  28191. mesh.computeWorldMatrix(true);
  28192. if (!mesh.subMeshes || mesh.subMeshes.length === 0 || mesh.infiniteDistance) {
  28193. return;
  28194. }
  28195. var boundingInfo = mesh.getBoundingInfo();
  28196. var minBox = boundingInfo.boundingBox.minimumWorld;
  28197. var maxBox = boundingInfo.boundingBox.maximumWorld;
  28198. BABYLON.Tools.CheckExtends(minBox, min, max);
  28199. BABYLON.Tools.CheckExtends(maxBox, min, max);
  28200. });
  28201. return {
  28202. min: min,
  28203. max: max
  28204. };
  28205. };
  28206. // Picking
  28207. /**
  28208. * Creates a ray that can be used to pick in the scene
  28209. * @param x defines the x coordinate of the origin (on-screen)
  28210. * @param y defines the y coordinate of the origin (on-screen)
  28211. * @param world defines the world matrix to use if you want to pick in object space (instead of world space)
  28212. * @param camera defines the camera to use for the picking
  28213. * @param cameraViewSpace defines if picking will be done in view space (false by default)
  28214. * @returns a Ray
  28215. */
  28216. Scene.prototype.createPickingRay = function (x, y, world, camera, cameraViewSpace) {
  28217. if (cameraViewSpace === void 0) { cameraViewSpace = false; }
  28218. var result = BABYLON.Ray.Zero();
  28219. this.createPickingRayToRef(x, y, world, result, camera, cameraViewSpace);
  28220. return result;
  28221. };
  28222. /**
  28223. * Creates a ray that can be used to pick in the scene
  28224. * @param x defines the x coordinate of the origin (on-screen)
  28225. * @param y defines the y coordinate of the origin (on-screen)
  28226. * @param world defines the world matrix to use if you want to pick in object space (instead of world space)
  28227. * @param result defines the ray where to store the picking ray
  28228. * @param camera defines the camera to use for the picking
  28229. * @param cameraViewSpace defines if picking will be done in view space (false by default)
  28230. * @returns the current scene
  28231. */
  28232. Scene.prototype.createPickingRayToRef = function (x, y, world, result, camera, cameraViewSpace) {
  28233. if (cameraViewSpace === void 0) { cameraViewSpace = false; }
  28234. var engine = this._engine;
  28235. if (!camera) {
  28236. if (!this.activeCamera)
  28237. throw new Error("Active camera not set");
  28238. camera = this.activeCamera;
  28239. }
  28240. var cameraViewport = camera.viewport;
  28241. var viewport = cameraViewport.toGlobal(engine.getRenderWidth(), engine.getRenderHeight());
  28242. // Moving coordinates to local viewport world
  28243. x = x / this._engine.getHardwareScalingLevel() - viewport.x;
  28244. y = y / this._engine.getHardwareScalingLevel() - (this._engine.getRenderHeight() - viewport.y - viewport.height);
  28245. result.update(x, y, viewport.width, viewport.height, world ? world : BABYLON.Matrix.Identity(), cameraViewSpace ? BABYLON.Matrix.Identity() : camera.getViewMatrix(), camera.getProjectionMatrix());
  28246. return this;
  28247. };
  28248. /**
  28249. * Creates a ray that can be used to pick in the scene
  28250. * @param x defines the x coordinate of the origin (on-screen)
  28251. * @param y defines the y coordinate of the origin (on-screen)
  28252. * @param camera defines the camera to use for the picking
  28253. * @returns a Ray
  28254. */
  28255. Scene.prototype.createPickingRayInCameraSpace = function (x, y, camera) {
  28256. var result = BABYLON.Ray.Zero();
  28257. this.createPickingRayInCameraSpaceToRef(x, y, result, camera);
  28258. return result;
  28259. };
  28260. /**
  28261. * Creates a ray that can be used to pick in the scene
  28262. * @param x defines the x coordinate of the origin (on-screen)
  28263. * @param y defines the y coordinate of the origin (on-screen)
  28264. * @param result defines the ray where to store the picking ray
  28265. * @param camera defines the camera to use for the picking
  28266. * @returns the current scene
  28267. */
  28268. Scene.prototype.createPickingRayInCameraSpaceToRef = function (x, y, result, camera) {
  28269. if (!BABYLON.PickingInfo) {
  28270. return this;
  28271. }
  28272. var engine = this._engine;
  28273. if (!camera) {
  28274. if (!this.activeCamera)
  28275. throw new Error("Active camera not set");
  28276. camera = this.activeCamera;
  28277. }
  28278. var cameraViewport = camera.viewport;
  28279. var viewport = cameraViewport.toGlobal(engine.getRenderWidth(), engine.getRenderHeight());
  28280. var identity = BABYLON.Matrix.Identity();
  28281. // Moving coordinates to local viewport world
  28282. x = x / this._engine.getHardwareScalingLevel() - viewport.x;
  28283. y = y / this._engine.getHardwareScalingLevel() - (this._engine.getRenderHeight() - viewport.y - viewport.height);
  28284. result.update(x, y, viewport.width, viewport.height, identity, identity, camera.getProjectionMatrix());
  28285. return this;
  28286. };
  28287. Scene.prototype._internalPick = function (rayFunction, predicate, fastCheck) {
  28288. if (!BABYLON.PickingInfo) {
  28289. return null;
  28290. }
  28291. var pickingInfo = null;
  28292. for (var meshIndex = 0; meshIndex < this.meshes.length; meshIndex++) {
  28293. var mesh = this.meshes[meshIndex];
  28294. if (predicate) {
  28295. if (!predicate(mesh)) {
  28296. continue;
  28297. }
  28298. }
  28299. else if (!mesh.isEnabled() || !mesh.isVisible || !mesh.isPickable) {
  28300. continue;
  28301. }
  28302. var world = mesh.getWorldMatrix();
  28303. var ray = rayFunction(world);
  28304. var result = mesh.intersects(ray, fastCheck);
  28305. if (!result || !result.hit)
  28306. continue;
  28307. if (!fastCheck && pickingInfo != null && result.distance >= pickingInfo.distance)
  28308. continue;
  28309. pickingInfo = result;
  28310. if (fastCheck) {
  28311. break;
  28312. }
  28313. }
  28314. return pickingInfo || new BABYLON.PickingInfo();
  28315. };
  28316. Scene.prototype._internalMultiPick = function (rayFunction, predicate) {
  28317. if (!BABYLON.PickingInfo) {
  28318. return null;
  28319. }
  28320. var pickingInfos = new Array();
  28321. for (var meshIndex = 0; meshIndex < this.meshes.length; meshIndex++) {
  28322. var mesh = this.meshes[meshIndex];
  28323. if (predicate) {
  28324. if (!predicate(mesh)) {
  28325. continue;
  28326. }
  28327. }
  28328. else if (!mesh.isEnabled() || !mesh.isVisible || !mesh.isPickable) {
  28329. continue;
  28330. }
  28331. var world = mesh.getWorldMatrix();
  28332. var ray = rayFunction(world);
  28333. var result = mesh.intersects(ray, false);
  28334. if (!result || !result.hit)
  28335. continue;
  28336. pickingInfos.push(result);
  28337. }
  28338. return pickingInfos;
  28339. };
  28340. /** Launch a ray to try to pick a mesh in the scene
  28341. * @param x position on screen
  28342. * @param y position on screen
  28343. * @param predicate Predicate function used to determine eligible meshes. Can be set to null. In this case, a mesh must be enabled, visible and with isPickable set to true
  28344. * @param fastCheck Launch a fast check only using the bounding boxes. Can be set to null.
  28345. * @param camera to use for computing the picking ray. Can be set to null. In this case, the scene.activeCamera will be used
  28346. * @returns a PickingInfo
  28347. */
  28348. Scene.prototype.pick = function (x, y, predicate, fastCheck, camera) {
  28349. var _this = this;
  28350. if (!BABYLON.PickingInfo) {
  28351. return null;
  28352. }
  28353. var result = this._internalPick(function (world) {
  28354. _this.createPickingRayToRef(x, y, world, _this._tempPickingRay, camera || null);
  28355. return _this._tempPickingRay;
  28356. }, predicate, fastCheck);
  28357. if (result) {
  28358. result.ray = this.createPickingRay(x, y, BABYLON.Matrix.Identity(), camera || null);
  28359. }
  28360. return result;
  28361. };
  28362. /** Use the given ray to pick a mesh in the scene
  28363. * @param ray The ray to use to pick meshes
  28364. * @param predicate Predicate function used to determine eligible meshes. Can be set to null. In this case, a mesh must have isPickable set to true
  28365. * @param fastCheck Launch a fast check only using the bounding boxes. Can be set to null
  28366. * @returns a PickingInfo
  28367. */
  28368. Scene.prototype.pickWithRay = function (ray, predicate, fastCheck) {
  28369. var _this = this;
  28370. var result = this._internalPick(function (world) {
  28371. if (!_this._pickWithRayInverseMatrix) {
  28372. _this._pickWithRayInverseMatrix = BABYLON.Matrix.Identity();
  28373. }
  28374. world.invertToRef(_this._pickWithRayInverseMatrix);
  28375. if (!_this._cachedRayForTransform) {
  28376. _this._cachedRayForTransform = BABYLON.Ray.Zero();
  28377. }
  28378. BABYLON.Ray.TransformToRef(ray, _this._pickWithRayInverseMatrix, _this._cachedRayForTransform);
  28379. return _this._cachedRayForTransform;
  28380. }, predicate, fastCheck);
  28381. if (result) {
  28382. result.ray = ray;
  28383. }
  28384. return result;
  28385. };
  28386. /**
  28387. * Launch a ray to try to pick a mesh in the scene
  28388. * @param x X position on screen
  28389. * @param y Y position on screen
  28390. * @param predicate Predicate function used to determine eligible meshes. Can be set to null. In this case, a mesh must be enabled, visible and with isPickable set to true
  28391. * @param camera camera to use for computing the picking ray. Can be set to null. In this case, the scene.activeCamera will be used
  28392. * @returns an array of PickingInfo
  28393. */
  28394. Scene.prototype.multiPick = function (x, y, predicate, camera) {
  28395. var _this = this;
  28396. return this._internalMultiPick(function (world) { return _this.createPickingRay(x, y, world, camera || null); }, predicate);
  28397. };
  28398. /**
  28399. * Launch a ray to try to pick a mesh in the scene
  28400. * @param ray Ray to use
  28401. * @param predicate Predicate function used to determine eligible meshes. Can be set to null. In this case, a mesh must be enabled, visible and with isPickable set to true
  28402. * @returns an array of PickingInfo
  28403. */
  28404. Scene.prototype.multiPickWithRay = function (ray, predicate) {
  28405. var _this = this;
  28406. return this._internalMultiPick(function (world) {
  28407. if (!_this._pickWithRayInverseMatrix) {
  28408. _this._pickWithRayInverseMatrix = BABYLON.Matrix.Identity();
  28409. }
  28410. world.invertToRef(_this._pickWithRayInverseMatrix);
  28411. if (!_this._cachedRayForTransform) {
  28412. _this._cachedRayForTransform = BABYLON.Ray.Zero();
  28413. }
  28414. BABYLON.Ray.TransformToRef(ray, _this._pickWithRayInverseMatrix, _this._cachedRayForTransform);
  28415. return _this._cachedRayForTransform;
  28416. }, predicate);
  28417. };
  28418. /**
  28419. * Force the value of meshUnderPointer
  28420. * @param mesh defines the mesh to use
  28421. */
  28422. Scene.prototype.setPointerOverMesh = function (mesh) {
  28423. if (this._pointerOverMesh === mesh) {
  28424. return;
  28425. }
  28426. if (this._pointerOverMesh && this._pointerOverMesh.actionManager) {
  28427. this._pointerOverMesh.actionManager.processTrigger(BABYLON.ActionManager.OnPointerOutTrigger, BABYLON.ActionEvent.CreateNew(this._pointerOverMesh));
  28428. }
  28429. this._pointerOverMesh = mesh;
  28430. if (this._pointerOverMesh && this._pointerOverMesh.actionManager) {
  28431. this._pointerOverMesh.actionManager.processTrigger(BABYLON.ActionManager.OnPointerOverTrigger, BABYLON.ActionEvent.CreateNew(this._pointerOverMesh));
  28432. }
  28433. };
  28434. /**
  28435. * Gets the mesh under the pointer
  28436. * @returns a Mesh or null if no mesh is under the pointer
  28437. */
  28438. Scene.prototype.getPointerOverMesh = function () {
  28439. return this._pointerOverMesh;
  28440. };
  28441. // Physics
  28442. /**
  28443. * Gets the current physics engine
  28444. * @returns a PhysicsEngine or null if none attached
  28445. */
  28446. Scene.prototype.getPhysicsEngine = function () {
  28447. return this._physicsEngine;
  28448. };
  28449. /**
  28450. * Enables physics to the current scene
  28451. * @param gravity defines the scene's gravity for the physics engine
  28452. * @param plugin defines the physics engine to be used. defaults to OimoJS.
  28453. * @return a boolean indicating if the physics engine was initialized
  28454. */
  28455. Scene.prototype.enablePhysics = function (gravity, plugin) {
  28456. if (gravity === void 0) { gravity = null; }
  28457. if (this._physicsEngine) {
  28458. return true;
  28459. }
  28460. try {
  28461. this._physicsEngine = new BABYLON.PhysicsEngine(gravity, plugin);
  28462. return true;
  28463. }
  28464. catch (e) {
  28465. BABYLON.Tools.Error(e.message);
  28466. return false;
  28467. }
  28468. };
  28469. /**
  28470. * Disables and disposes the physics engine associated with the scene
  28471. */
  28472. Scene.prototype.disablePhysicsEngine = function () {
  28473. if (!this._physicsEngine) {
  28474. return;
  28475. }
  28476. this._physicsEngine.dispose();
  28477. this._physicsEngine = null;
  28478. };
  28479. /**
  28480. * Gets a boolean indicating if there is an active physics engine
  28481. * @returns a boolean indicating if there is an active physics engine
  28482. */
  28483. Scene.prototype.isPhysicsEnabled = function () {
  28484. return this._physicsEngine !== undefined;
  28485. };
  28486. /**
  28487. * Deletes a physics compound impostor
  28488. * @param compound defines the compound to delete
  28489. */
  28490. Scene.prototype.deleteCompoundImpostor = function (compound) {
  28491. var mesh = compound.parts[0].mesh;
  28492. if (mesh.physicsImpostor) {
  28493. mesh.physicsImpostor.dispose( /*true*/);
  28494. mesh.physicsImpostor = null;
  28495. }
  28496. };
  28497. // Misc.
  28498. /** @hidden */
  28499. Scene.prototype._rebuildGeometries = function () {
  28500. for (var _i = 0, _a = this.geometries; _i < _a.length; _i++) {
  28501. var geometry = _a[_i];
  28502. geometry._rebuild();
  28503. }
  28504. for (var _b = 0, _c = this.meshes; _b < _c.length; _b++) {
  28505. var mesh = _c[_b];
  28506. mesh._rebuild();
  28507. }
  28508. if (this.postProcessManager) {
  28509. this.postProcessManager._rebuild();
  28510. }
  28511. for (var _d = 0, _e = this._components; _d < _e.length; _d++) {
  28512. var component = _e[_d];
  28513. component.rebuild();
  28514. }
  28515. for (var _f = 0, _g = this.particleSystems; _f < _g.length; _f++) {
  28516. var system = _g[_f];
  28517. system.rebuild();
  28518. }
  28519. };
  28520. /** @hidden */
  28521. Scene.prototype._rebuildTextures = function () {
  28522. for (var _i = 0, _a = this.textures; _i < _a.length; _i++) {
  28523. var texture = _a[_i];
  28524. texture._rebuild();
  28525. }
  28526. this.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  28527. };
  28528. // Tags
  28529. Scene.prototype._getByTags = function (list, tagsQuery, forEach) {
  28530. if (tagsQuery === undefined) {
  28531. // returns the complete list (could be done with BABYLON.Tags.MatchesQuery but no need to have a for-loop here)
  28532. return list;
  28533. }
  28534. var listByTags = [];
  28535. forEach = forEach || (function (item) { return; });
  28536. for (var i in list) {
  28537. var item = list[i];
  28538. if (BABYLON.Tags && BABYLON.Tags.MatchesQuery(item, tagsQuery)) {
  28539. listByTags.push(item);
  28540. forEach(item);
  28541. }
  28542. }
  28543. return listByTags;
  28544. };
  28545. /**
  28546. * Get a list of meshes by tags
  28547. * @param tagsQuery defines the tags query to use
  28548. * @param forEach defines a predicate used to filter results
  28549. * @returns an array of Mesh
  28550. */
  28551. Scene.prototype.getMeshesByTags = function (tagsQuery, forEach) {
  28552. return this._getByTags(this.meshes, tagsQuery, forEach);
  28553. };
  28554. /**
  28555. * Get a list of cameras by tags
  28556. * @param tagsQuery defines the tags query to use
  28557. * @param forEach defines a predicate used to filter results
  28558. * @returns an array of Camera
  28559. */
  28560. Scene.prototype.getCamerasByTags = function (tagsQuery, forEach) {
  28561. return this._getByTags(this.cameras, tagsQuery, forEach);
  28562. };
  28563. /**
  28564. * Get a list of lights by tags
  28565. * @param tagsQuery defines the tags query to use
  28566. * @param forEach defines a predicate used to filter results
  28567. * @returns an array of Light
  28568. */
  28569. Scene.prototype.getLightsByTags = function (tagsQuery, forEach) {
  28570. return this._getByTags(this.lights, tagsQuery, forEach);
  28571. };
  28572. /**
  28573. * Get a list of materials by tags
  28574. * @param tagsQuery defines the tags query to use
  28575. * @param forEach defines a predicate used to filter results
  28576. * @returns an array of Material
  28577. */
  28578. Scene.prototype.getMaterialByTags = function (tagsQuery, forEach) {
  28579. return this._getByTags(this.materials, tagsQuery, forEach).concat(this._getByTags(this.multiMaterials, tagsQuery, forEach));
  28580. };
  28581. /**
  28582. * Overrides the default sort function applied in the renderging group to prepare the meshes.
  28583. * This allowed control for front to back rendering or reversly depending of the special needs.
  28584. *
  28585. * @param renderingGroupId The rendering group id corresponding to its index
  28586. * @param opaqueSortCompareFn The opaque queue comparison function use to sort.
  28587. * @param alphaTestSortCompareFn The alpha test queue comparison function use to sort.
  28588. * @param transparentSortCompareFn The transparent queue comparison function use to sort.
  28589. */
  28590. Scene.prototype.setRenderingOrder = function (renderingGroupId, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn) {
  28591. if (opaqueSortCompareFn === void 0) { opaqueSortCompareFn = null; }
  28592. if (alphaTestSortCompareFn === void 0) { alphaTestSortCompareFn = null; }
  28593. if (transparentSortCompareFn === void 0) { transparentSortCompareFn = null; }
  28594. this._renderingManager.setRenderingOrder(renderingGroupId, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn);
  28595. };
  28596. /**
  28597. * Specifies whether or not the stencil and depth buffer are cleared between two rendering groups.
  28598. *
  28599. * @param renderingGroupId The rendering group id corresponding to its index
  28600. * @param autoClearDepthStencil Automatically clears depth and stencil between groups if true.
  28601. * @param depth Automatically clears depth between groups if true and autoClear is true.
  28602. * @param stencil Automatically clears stencil between groups if true and autoClear is true.
  28603. */
  28604. Scene.prototype.setRenderingAutoClearDepthStencil = function (renderingGroupId, autoClearDepthStencil, depth, stencil) {
  28605. if (depth === void 0) { depth = true; }
  28606. if (stencil === void 0) { stencil = true; }
  28607. this._renderingManager.setRenderingAutoClearDepthStencil(renderingGroupId, autoClearDepthStencil, depth, stencil);
  28608. };
  28609. /**
  28610. * Gets the current auto clear configuration for one rendering group of the rendering
  28611. * manager.
  28612. * @param index the rendering group index to get the information for
  28613. * @returns The auto clear setup for the requested rendering group
  28614. */
  28615. Scene.prototype.getAutoClearDepthStencilSetup = function (index) {
  28616. return this._renderingManager.getAutoClearDepthStencilSetup(index);
  28617. };
  28618. /**
  28619. * Will flag all materials as dirty to trigger new shader compilation
  28620. * @param flag defines the flag used to specify which material part must be marked as dirty
  28621. * @param predicate If not null, it will be used to specifiy if a material has to be marked as dirty
  28622. */
  28623. Scene.prototype.markAllMaterialsAsDirty = function (flag, predicate) {
  28624. if (this.blockMaterialDirtyMechanism) {
  28625. return;
  28626. }
  28627. for (var _i = 0, _a = this.materials; _i < _a.length; _i++) {
  28628. var material = _a[_i];
  28629. if (predicate && !predicate(material)) {
  28630. continue;
  28631. }
  28632. material.markAsDirty(flag);
  28633. }
  28634. };
  28635. /** @hidden */
  28636. Scene.prototype._loadFile = function (url, onSuccess, onProgress, useDatabase, useArrayBuffer, onError) {
  28637. var _this = this;
  28638. var request = BABYLON.Tools.LoadFile(url, onSuccess, onProgress, useDatabase ? this.database : undefined, useArrayBuffer, onError);
  28639. this._activeRequests.push(request);
  28640. request.onCompleteObservable.add(function (request) {
  28641. _this._activeRequests.splice(_this._activeRequests.indexOf(request), 1);
  28642. });
  28643. return request;
  28644. };
  28645. /** @hidden */
  28646. Scene.prototype._loadFileAsync = function (url, useDatabase, useArrayBuffer) {
  28647. var _this = this;
  28648. return new Promise(function (resolve, reject) {
  28649. _this._loadFile(url, function (data) {
  28650. resolve(data);
  28651. }, undefined, useDatabase, useArrayBuffer, function (request, exception) {
  28652. reject(exception);
  28653. });
  28654. });
  28655. };
  28656. // Statics
  28657. Scene._uniqueIdCounter = 0;
  28658. /** The fog is deactivated */
  28659. Scene.FOGMODE_NONE = 0;
  28660. /** The fog density is following an exponential function */
  28661. Scene.FOGMODE_EXP = 1;
  28662. /** The fog density is following an exponential function faster than FOGMODE_EXP */
  28663. Scene.FOGMODE_EXP2 = 2;
  28664. /** The fog density is following a linear function. */
  28665. Scene.FOGMODE_LINEAR = 3;
  28666. /**
  28667. * Gets or sets the minimum deltatime when deterministic lock step is enabled
  28668. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  28669. */
  28670. Scene.MinDeltaTime = 1.0;
  28671. /**
  28672. * Gets or sets the maximum deltatime when deterministic lock step is enabled
  28673. * @see http://doc.babylonjs.com/babylon101/animations#deterministic-lockstep
  28674. */
  28675. Scene.MaxDeltaTime = 1000.0;
  28676. /** The distance in pixel that you have to move to prevent some events */
  28677. Scene.DragMovementThreshold = 10; // in pixels
  28678. /** Time in milliseconds to wait to raise long press events if button is still pressed */
  28679. Scene.LongPressDelay = 500; // in milliseconds
  28680. /** Time in milliseconds with two consecutive clicks will be considered as a double click */
  28681. Scene.DoubleClickDelay = 300; // in milliseconds
  28682. /** If you need to check double click without raising a single click at first click, enable this flag */
  28683. Scene.ExclusiveDoubleClickMode = false;
  28684. return Scene;
  28685. }(BABYLON.AbstractScene));
  28686. BABYLON.Scene = Scene;
  28687. })(BABYLON || (BABYLON = {}));
  28688. //# sourceMappingURL=babylon.scene.js.map
  28689. var BABYLON;
  28690. (function (BABYLON) {
  28691. /**
  28692. * Set of assets to keep when moving a scene into an asset container.
  28693. */
  28694. var KeepAssets = /** @class */ (function (_super) {
  28695. __extends(KeepAssets, _super);
  28696. function KeepAssets() {
  28697. return _super !== null && _super.apply(this, arguments) || this;
  28698. }
  28699. return KeepAssets;
  28700. }(BABYLON.AbstractScene));
  28701. BABYLON.KeepAssets = KeepAssets;
  28702. /**
  28703. * Container with a set of assets that can be added or removed from a scene.
  28704. */
  28705. var AssetContainer = /** @class */ (function (_super) {
  28706. __extends(AssetContainer, _super);
  28707. /**
  28708. * Instantiates an AssetContainer.
  28709. * @param scene The scene the AssetContainer belongs to.
  28710. */
  28711. function AssetContainer(scene) {
  28712. var _this = _super.call(this) || this;
  28713. _this.scene = scene;
  28714. return _this;
  28715. }
  28716. /**
  28717. * Adds all the assets from the container to the scene.
  28718. */
  28719. AssetContainer.prototype.addAllToScene = function () {
  28720. var _this = this;
  28721. this.cameras.forEach(function (o) {
  28722. _this.scene.addCamera(o);
  28723. });
  28724. this.lights.forEach(function (o) {
  28725. _this.scene.addLight(o);
  28726. });
  28727. this.meshes.forEach(function (o) {
  28728. _this.scene.addMesh(o);
  28729. });
  28730. this.skeletons.forEach(function (o) {
  28731. _this.scene.addSkeleton(o);
  28732. });
  28733. this.animations.forEach(function (o) {
  28734. _this.scene.addAnimation(o);
  28735. });
  28736. this.animationGroups.forEach(function (o) {
  28737. _this.scene.addAnimationGroup(o);
  28738. });
  28739. this.multiMaterials.forEach(function (o) {
  28740. _this.scene.addMultiMaterial(o);
  28741. });
  28742. this.materials.forEach(function (o) {
  28743. _this.scene.addMaterial(o);
  28744. });
  28745. this.morphTargetManagers.forEach(function (o) {
  28746. _this.scene.addMorphTargetManager(o);
  28747. });
  28748. this.geometries.forEach(function (o) {
  28749. _this.scene.addGeometry(o);
  28750. });
  28751. this.transformNodes.forEach(function (o) {
  28752. _this.scene.addTransformNode(o);
  28753. });
  28754. this.actionManagers.forEach(function (o) {
  28755. _this.scene.addActionManager(o);
  28756. });
  28757. this.sounds.forEach(function (o) {
  28758. o.play();
  28759. o.autoplay = true;
  28760. _this.scene.mainSoundTrack.AddSound(o);
  28761. });
  28762. this.textures.forEach(function (o) {
  28763. _this.scene.addTexture(o);
  28764. });
  28765. for (var _i = 0, _a = this.scene._serializableComponents; _i < _a.length; _i++) {
  28766. var component = _a[_i];
  28767. component.addFromContainer(this.scene);
  28768. }
  28769. };
  28770. /**
  28771. * Removes all the assets in the container from the scene
  28772. */
  28773. AssetContainer.prototype.removeAllFromScene = function () {
  28774. var _this = this;
  28775. this.cameras.forEach(function (o) {
  28776. _this.scene.removeCamera(o);
  28777. });
  28778. this.lights.forEach(function (o) {
  28779. _this.scene.removeLight(o);
  28780. });
  28781. this.meshes.forEach(function (o) {
  28782. _this.scene.removeMesh(o);
  28783. });
  28784. this.skeletons.forEach(function (o) {
  28785. _this.scene.removeSkeleton(o);
  28786. });
  28787. this.animations.forEach(function (o) {
  28788. _this.scene.removeAnimation(o);
  28789. });
  28790. this.animationGroups.forEach(function (o) {
  28791. _this.scene.removeAnimationGroup(o);
  28792. });
  28793. this.multiMaterials.forEach(function (o) {
  28794. _this.scene.removeMultiMaterial(o);
  28795. });
  28796. this.materials.forEach(function (o) {
  28797. _this.scene.removeMaterial(o);
  28798. });
  28799. this.morphTargetManagers.forEach(function (o) {
  28800. _this.scene.removeMorphTargetManager(o);
  28801. });
  28802. this.geometries.forEach(function (o) {
  28803. _this.scene.removeGeometry(o);
  28804. });
  28805. this.transformNodes.forEach(function (o) {
  28806. _this.scene.removeTransformNode(o);
  28807. });
  28808. this.actionManagers.forEach(function (o) {
  28809. _this.scene.removeActionManager(o);
  28810. });
  28811. this.sounds.forEach(function (o) {
  28812. o.stop();
  28813. o.autoplay = false;
  28814. _this.scene.mainSoundTrack.RemoveSound(o);
  28815. });
  28816. this.textures.forEach(function (o) {
  28817. _this.scene.removeTexture(o);
  28818. });
  28819. for (var _i = 0, _a = this.scene._serializableComponents; _i < _a.length; _i++) {
  28820. var component = _a[_i];
  28821. component.removeFromContainer(this.scene);
  28822. }
  28823. };
  28824. AssetContainer.prototype._moveAssets = function (sourceAssets, targetAssets, keepAssets) {
  28825. if (!sourceAssets) {
  28826. return;
  28827. }
  28828. for (var _i = 0, sourceAssets_1 = sourceAssets; _i < sourceAssets_1.length; _i++) {
  28829. var asset = sourceAssets_1[_i];
  28830. var move = true;
  28831. if (keepAssets) {
  28832. for (var _a = 0, keepAssets_1 = keepAssets; _a < keepAssets_1.length; _a++) {
  28833. var keepAsset = keepAssets_1[_a];
  28834. if (asset === keepAsset) {
  28835. move = false;
  28836. break;
  28837. }
  28838. }
  28839. }
  28840. if (move) {
  28841. targetAssets.push(asset);
  28842. }
  28843. }
  28844. };
  28845. /**
  28846. * Removes all the assets contained in the scene and adds them to the container.
  28847. * @param keepAssets Set of assets to keep in the scene. (default: empty)
  28848. */
  28849. AssetContainer.prototype.moveAllFromScene = function (keepAssets) {
  28850. if (keepAssets === undefined) {
  28851. keepAssets = new KeepAssets();
  28852. }
  28853. for (var key in this) {
  28854. if (this.hasOwnProperty(key)) {
  28855. this[key] = this[key] || [];
  28856. this._moveAssets(this.scene[key], this[key], keepAssets[key]);
  28857. }
  28858. }
  28859. this.removeAllFromScene();
  28860. };
  28861. /**
  28862. * Adds all meshes in the asset container to a root mesh that can be used to position all the contained meshes. The root mesh is then added to the front of the meshes in the assetContainer.
  28863. * @returns the root mesh
  28864. */
  28865. AssetContainer.prototype.createRootMesh = function () {
  28866. var rootMesh = new BABYLON.Mesh("assetContainerRootMesh", this.scene);
  28867. this.meshes.forEach(function (m) {
  28868. if (!m.parent) {
  28869. rootMesh.addChild(m);
  28870. }
  28871. });
  28872. this.meshes.unshift(rootMesh);
  28873. return rootMesh;
  28874. };
  28875. return AssetContainer;
  28876. }(BABYLON.AbstractScene));
  28877. BABYLON.AssetContainer = AssetContainer;
  28878. })(BABYLON || (BABYLON = {}));
  28879. //# sourceMappingURL=babylon.assetContainer.js.map
  28880. var BABYLON;
  28881. (function (BABYLON) {
  28882. var Buffer = /** @class */ (function () {
  28883. /**
  28884. * Constructor
  28885. * @param engine the engine
  28886. * @param data the data to use for this buffer
  28887. * @param updatable whether the data is updatable
  28888. * @param stride the stride (optional)
  28889. * @param postponeInternalCreation whether to postpone creating the internal WebGL buffer (optional)
  28890. * @param instanced whether the buffer is instanced (optional)
  28891. * @param useBytes set to true if the stride in in bytes (optional)
  28892. */
  28893. function Buffer(engine, data, updatable, stride, postponeInternalCreation, instanced, useBytes) {
  28894. if (stride === void 0) { stride = 0; }
  28895. if (postponeInternalCreation === void 0) { postponeInternalCreation = false; }
  28896. if (instanced === void 0) { instanced = false; }
  28897. if (useBytes === void 0) { useBytes = false; }
  28898. if (engine instanceof BABYLON.Mesh) { // old versions of BABYLON.VertexBuffer accepted 'mesh' instead of 'engine'
  28899. this._engine = engine.getScene().getEngine();
  28900. }
  28901. else {
  28902. this._engine = engine;
  28903. }
  28904. this._updatable = updatable;
  28905. this._instanced = instanced;
  28906. this._data = data;
  28907. this.byteStride = useBytes ? stride : stride * Float32Array.BYTES_PER_ELEMENT;
  28908. if (!postponeInternalCreation) { // by default
  28909. this.create();
  28910. }
  28911. }
  28912. /**
  28913. * Create a new {BABYLON.VertexBuffer} based on the current buffer
  28914. * @param kind defines the vertex buffer kind (position, normal, etc.)
  28915. * @param offset defines offset in the buffer (0 by default)
  28916. * @param size defines the size in floats of attributes (position is 3 for instance)
  28917. * @param stride defines the stride size in floats in the buffer (the offset to apply to reach next value when data is interleaved)
  28918. * @param instanced defines if the vertex buffer contains indexed data
  28919. * @param useBytes defines if the offset and stride are in bytes
  28920. * @returns the new vertex buffer
  28921. */
  28922. Buffer.prototype.createVertexBuffer = function (kind, offset, size, stride, instanced, useBytes) {
  28923. if (useBytes === void 0) { useBytes = false; }
  28924. var byteOffset = useBytes ? offset : offset * Float32Array.BYTES_PER_ELEMENT;
  28925. var byteStride = stride ? (useBytes ? stride : stride * Float32Array.BYTES_PER_ELEMENT) : this.byteStride;
  28926. // a lot of these parameters are ignored as they are overriden by the buffer
  28927. return new BABYLON.VertexBuffer(this._engine, this, kind, this._updatable, true, byteStride, instanced === undefined ? this._instanced : instanced, byteOffset, size, undefined, undefined, true);
  28928. };
  28929. // Properties
  28930. Buffer.prototype.isUpdatable = function () {
  28931. return this._updatable;
  28932. };
  28933. Buffer.prototype.getData = function () {
  28934. return this._data;
  28935. };
  28936. Buffer.prototype.getBuffer = function () {
  28937. return this._buffer;
  28938. };
  28939. /**
  28940. * Gets the stride in float32 units (i.e. byte stride / 4).
  28941. * May not be an integer if the byte stride is not divisible by 4.
  28942. * DEPRECATED. Use byteStride instead.
  28943. * @returns the stride in float32 units
  28944. */
  28945. Buffer.prototype.getStrideSize = function () {
  28946. return this.byteStride / Float32Array.BYTES_PER_ELEMENT;
  28947. };
  28948. // Methods
  28949. Buffer.prototype.create = function (data) {
  28950. if (data === void 0) { data = null; }
  28951. if (!data && this._buffer) {
  28952. return; // nothing to do
  28953. }
  28954. data = data || this._data;
  28955. if (!data) {
  28956. return;
  28957. }
  28958. if (!this._buffer) { // create buffer
  28959. if (this._updatable) {
  28960. this._buffer = this._engine.createDynamicVertexBuffer(data);
  28961. this._data = data;
  28962. }
  28963. else {
  28964. this._buffer = this._engine.createVertexBuffer(data);
  28965. }
  28966. }
  28967. else if (this._updatable) { // update buffer
  28968. this._engine.updateDynamicVertexBuffer(this._buffer, data);
  28969. this._data = data;
  28970. }
  28971. };
  28972. /** @hidden */
  28973. Buffer.prototype._rebuild = function () {
  28974. this._buffer = null;
  28975. this.create(this._data);
  28976. };
  28977. Buffer.prototype.update = function (data) {
  28978. this.create(data);
  28979. };
  28980. /**
  28981. * Updates the data directly.
  28982. * @param data the new data
  28983. * @param offset the new offset
  28984. * @param vertexCount the vertex count (optional)
  28985. * @param useBytes set to true if the offset is in bytes
  28986. */
  28987. Buffer.prototype.updateDirectly = function (data, offset, vertexCount, useBytes) {
  28988. if (useBytes === void 0) { useBytes = false; }
  28989. if (!this._buffer) {
  28990. return;
  28991. }
  28992. if (this._updatable) { // update buffer
  28993. this._engine.updateDynamicVertexBuffer(this._buffer, data, useBytes ? offset : offset * Float32Array.BYTES_PER_ELEMENT, (vertexCount ? vertexCount * this.byteStride : undefined));
  28994. this._data = null;
  28995. }
  28996. };
  28997. Buffer.prototype.dispose = function () {
  28998. if (!this._buffer) {
  28999. return;
  29000. }
  29001. if (this._engine._releaseBuffer(this._buffer)) {
  29002. this._buffer = null;
  29003. }
  29004. };
  29005. return Buffer;
  29006. }());
  29007. BABYLON.Buffer = Buffer;
  29008. })(BABYLON || (BABYLON = {}));
  29009. //# sourceMappingURL=babylon.buffer.js.map
  29010. var BABYLON;
  29011. (function (BABYLON) {
  29012. var VertexBuffer = /** @class */ (function () {
  29013. /**
  29014. * Constructor
  29015. * @param engine the engine
  29016. * @param data the data to use for this vertex buffer
  29017. * @param kind the vertex buffer kind
  29018. * @param updatable whether the data is updatable
  29019. * @param postponeInternalCreation whether to postpone creating the internal WebGL buffer (optional)
  29020. * @param stride the stride (optional)
  29021. * @param instanced whether the buffer is instanced (optional)
  29022. * @param offset the offset of the data (optional)
  29023. * @param size the number of components (optional)
  29024. * @param type the type of the component (optional)
  29025. * @param normalized whether the data contains normalized data (optional)
  29026. * @param useBytes set to true if stride and offset are in bytes (optional)
  29027. */
  29028. function VertexBuffer(engine, data, kind, updatable, postponeInternalCreation, stride, instanced, offset, size, type, normalized, useBytes) {
  29029. if (normalized === void 0) { normalized = false; }
  29030. if (useBytes === void 0) { useBytes = false; }
  29031. if (data instanceof BABYLON.Buffer) {
  29032. this._buffer = data;
  29033. this._ownsBuffer = false;
  29034. }
  29035. else {
  29036. this._buffer = new BABYLON.Buffer(engine, data, updatable, stride, postponeInternalCreation, instanced, useBytes);
  29037. this._ownsBuffer = true;
  29038. }
  29039. this._kind = kind;
  29040. if (type == undefined) {
  29041. var data_1 = this.getData();
  29042. this.type = VertexBuffer.FLOAT;
  29043. if (data_1 instanceof Int8Array)
  29044. this.type = VertexBuffer.BYTE;
  29045. else if (data_1 instanceof Uint8Array)
  29046. this.type = VertexBuffer.UNSIGNED_BYTE;
  29047. else if (data_1 instanceof Int16Array)
  29048. this.type = VertexBuffer.SHORT;
  29049. else if (data_1 instanceof Uint16Array)
  29050. this.type = VertexBuffer.UNSIGNED_SHORT;
  29051. else if (data_1 instanceof Int32Array)
  29052. this.type = VertexBuffer.INT;
  29053. else if (data_1 instanceof Uint32Array)
  29054. this.type = VertexBuffer.UNSIGNED_INT;
  29055. }
  29056. else {
  29057. this.type = type;
  29058. }
  29059. var typeByteLength = VertexBuffer.GetTypeByteLength(this.type);
  29060. if (useBytes) {
  29061. this._size = size || (stride ? (stride / typeByteLength) : VertexBuffer.DeduceStride(kind));
  29062. this.byteStride = stride || this._buffer.byteStride || (this._size * typeByteLength);
  29063. this.byteOffset = offset || 0;
  29064. }
  29065. else {
  29066. this._size = size || stride || VertexBuffer.DeduceStride(kind);
  29067. this.byteStride = stride ? (stride * typeByteLength) : (this._buffer.byteStride || (this._size * typeByteLength));
  29068. this.byteOffset = (offset || 0) * typeByteLength;
  29069. }
  29070. this.normalized = normalized;
  29071. this._instanced = instanced !== undefined ? instanced : false;
  29072. this._instanceDivisor = instanced ? 1 : 0;
  29073. }
  29074. Object.defineProperty(VertexBuffer.prototype, "instanceDivisor", {
  29075. /**
  29076. * Gets or sets the instance divisor when in instanced mode
  29077. */
  29078. get: function () {
  29079. return this._instanceDivisor;
  29080. },
  29081. set: function (value) {
  29082. this._instanceDivisor = value;
  29083. if (value == 0) {
  29084. this._instanced = false;
  29085. }
  29086. else {
  29087. this._instanced = true;
  29088. }
  29089. },
  29090. enumerable: true,
  29091. configurable: true
  29092. });
  29093. /** @hidden */
  29094. VertexBuffer.prototype._rebuild = function () {
  29095. if (!this._buffer) {
  29096. return;
  29097. }
  29098. this._buffer._rebuild();
  29099. };
  29100. /**
  29101. * Returns the kind of the VertexBuffer (string).
  29102. */
  29103. VertexBuffer.prototype.getKind = function () {
  29104. return this._kind;
  29105. };
  29106. // Properties
  29107. /**
  29108. * Boolean : is the VertexBuffer updatable ?
  29109. */
  29110. VertexBuffer.prototype.isUpdatable = function () {
  29111. return this._buffer.isUpdatable();
  29112. };
  29113. /**
  29114. * Returns an array of numbers or a typed array containing the VertexBuffer data.
  29115. */
  29116. VertexBuffer.prototype.getData = function () {
  29117. return this._buffer.getData();
  29118. };
  29119. /**
  29120. * Returns the WebGLBuffer associated to the VertexBuffer.
  29121. */
  29122. VertexBuffer.prototype.getBuffer = function () {
  29123. return this._buffer.getBuffer();
  29124. };
  29125. /**
  29126. * Returns the stride as a multiple of the type byte length.
  29127. * DEPRECATED. Use byteStride instead.
  29128. */
  29129. VertexBuffer.prototype.getStrideSize = function () {
  29130. return this.byteStride / VertexBuffer.GetTypeByteLength(this.type);
  29131. };
  29132. /**
  29133. * Returns the offset as a multiple of the type byte length.
  29134. * DEPRECATED. Use byteOffset instead.
  29135. */
  29136. VertexBuffer.prototype.getOffset = function () {
  29137. return this.byteOffset / VertexBuffer.GetTypeByteLength(this.type);
  29138. };
  29139. /**
  29140. * Returns the number of components per vertex attribute (integer).
  29141. */
  29142. VertexBuffer.prototype.getSize = function () {
  29143. return this._size;
  29144. };
  29145. /**
  29146. * Boolean : is the WebGLBuffer of the VertexBuffer instanced now ?
  29147. */
  29148. VertexBuffer.prototype.getIsInstanced = function () {
  29149. return this._instanced;
  29150. };
  29151. /**
  29152. * Returns the instancing divisor, zero for non-instanced (integer).
  29153. */
  29154. VertexBuffer.prototype.getInstanceDivisor = function () {
  29155. return this._instanceDivisor;
  29156. };
  29157. // Methods
  29158. /**
  29159. * Creates the underlying WebGLBuffer from the passed numeric array or Float32Array.
  29160. * Returns the created WebGLBuffer.
  29161. */
  29162. VertexBuffer.prototype.create = function (data) {
  29163. return this._buffer.create(data);
  29164. };
  29165. /**
  29166. * Updates the underlying WebGLBuffer according to the passed numeric array or Float32Array.
  29167. * This function will create a new buffer if the current one is not updatable
  29168. * Returns the updated WebGLBuffer.
  29169. */
  29170. VertexBuffer.prototype.update = function (data) {
  29171. return this._buffer.update(data);
  29172. };
  29173. /**
  29174. * Updates directly the underlying WebGLBuffer according to the passed numeric array or Float32Array.
  29175. * Returns the directly updated WebGLBuffer.
  29176. * @param data the new data
  29177. * @param offset the new offset
  29178. * @param useBytes set to true if the offset is in bytes
  29179. */
  29180. VertexBuffer.prototype.updateDirectly = function (data, offset, useBytes) {
  29181. if (useBytes === void 0) { useBytes = false; }
  29182. this._buffer.updateDirectly(data, offset, undefined, useBytes);
  29183. };
  29184. /**
  29185. * Disposes the VertexBuffer and the underlying WebGLBuffer.
  29186. */
  29187. VertexBuffer.prototype.dispose = function () {
  29188. if (this._ownsBuffer) {
  29189. this._buffer.dispose();
  29190. }
  29191. };
  29192. /**
  29193. * Enumerates each value of this vertex buffer as numbers.
  29194. * @param count the number of values to enumerate
  29195. * @param callback the callback function called for each value
  29196. */
  29197. VertexBuffer.prototype.forEach = function (count, callback) {
  29198. VertexBuffer.ForEach(this._buffer.getData(), this.byteOffset, this.byteStride, this._size, this.type, count, this.normalized, callback);
  29199. };
  29200. Object.defineProperty(VertexBuffer, "PositionKind", {
  29201. get: function () {
  29202. return VertexBuffer._PositionKind;
  29203. },
  29204. enumerable: true,
  29205. configurable: true
  29206. });
  29207. Object.defineProperty(VertexBuffer, "NormalKind", {
  29208. get: function () {
  29209. return VertexBuffer._NormalKind;
  29210. },
  29211. enumerable: true,
  29212. configurable: true
  29213. });
  29214. Object.defineProperty(VertexBuffer, "TangentKind", {
  29215. get: function () {
  29216. return VertexBuffer._TangentKind;
  29217. },
  29218. enumerable: true,
  29219. configurable: true
  29220. });
  29221. Object.defineProperty(VertexBuffer, "UVKind", {
  29222. get: function () {
  29223. return VertexBuffer._UVKind;
  29224. },
  29225. enumerable: true,
  29226. configurable: true
  29227. });
  29228. Object.defineProperty(VertexBuffer, "UV2Kind", {
  29229. get: function () {
  29230. return VertexBuffer._UV2Kind;
  29231. },
  29232. enumerable: true,
  29233. configurable: true
  29234. });
  29235. Object.defineProperty(VertexBuffer, "UV3Kind", {
  29236. get: function () {
  29237. return VertexBuffer._UV3Kind;
  29238. },
  29239. enumerable: true,
  29240. configurable: true
  29241. });
  29242. Object.defineProperty(VertexBuffer, "UV4Kind", {
  29243. get: function () {
  29244. return VertexBuffer._UV4Kind;
  29245. },
  29246. enumerable: true,
  29247. configurable: true
  29248. });
  29249. Object.defineProperty(VertexBuffer, "UV5Kind", {
  29250. get: function () {
  29251. return VertexBuffer._UV5Kind;
  29252. },
  29253. enumerable: true,
  29254. configurable: true
  29255. });
  29256. Object.defineProperty(VertexBuffer, "UV6Kind", {
  29257. get: function () {
  29258. return VertexBuffer._UV6Kind;
  29259. },
  29260. enumerable: true,
  29261. configurable: true
  29262. });
  29263. Object.defineProperty(VertexBuffer, "ColorKind", {
  29264. get: function () {
  29265. return VertexBuffer._ColorKind;
  29266. },
  29267. enumerable: true,
  29268. configurable: true
  29269. });
  29270. Object.defineProperty(VertexBuffer, "MatricesIndicesKind", {
  29271. get: function () {
  29272. return VertexBuffer._MatricesIndicesKind;
  29273. },
  29274. enumerable: true,
  29275. configurable: true
  29276. });
  29277. Object.defineProperty(VertexBuffer, "MatricesWeightsKind", {
  29278. get: function () {
  29279. return VertexBuffer._MatricesWeightsKind;
  29280. },
  29281. enumerable: true,
  29282. configurable: true
  29283. });
  29284. Object.defineProperty(VertexBuffer, "MatricesIndicesExtraKind", {
  29285. get: function () {
  29286. return VertexBuffer._MatricesIndicesExtraKind;
  29287. },
  29288. enumerable: true,
  29289. configurable: true
  29290. });
  29291. Object.defineProperty(VertexBuffer, "MatricesWeightsExtraKind", {
  29292. get: function () {
  29293. return VertexBuffer._MatricesWeightsExtraKind;
  29294. },
  29295. enumerable: true,
  29296. configurable: true
  29297. });
  29298. /**
  29299. * Deduces the stride given a kind.
  29300. * @param kind The kind string to deduce
  29301. * @returns The deduced stride
  29302. */
  29303. VertexBuffer.DeduceStride = function (kind) {
  29304. switch (kind) {
  29305. case VertexBuffer.UVKind:
  29306. case VertexBuffer.UV2Kind:
  29307. case VertexBuffer.UV3Kind:
  29308. case VertexBuffer.UV4Kind:
  29309. case VertexBuffer.UV5Kind:
  29310. case VertexBuffer.UV6Kind:
  29311. return 2;
  29312. case VertexBuffer.NormalKind:
  29313. case VertexBuffer.PositionKind:
  29314. return 3;
  29315. case VertexBuffer.ColorKind:
  29316. case VertexBuffer.MatricesIndicesKind:
  29317. case VertexBuffer.MatricesIndicesExtraKind:
  29318. case VertexBuffer.MatricesWeightsKind:
  29319. case VertexBuffer.MatricesWeightsExtraKind:
  29320. case VertexBuffer.TangentKind:
  29321. return 4;
  29322. default:
  29323. throw new Error("Invalid kind '" + kind + "'");
  29324. }
  29325. };
  29326. /**
  29327. * Gets the byte length of the given type.
  29328. * @param type the type
  29329. * @returns the number of bytes
  29330. */
  29331. VertexBuffer.GetTypeByteLength = function (type) {
  29332. switch (type) {
  29333. case VertexBuffer.BYTE:
  29334. case VertexBuffer.UNSIGNED_BYTE:
  29335. return 1;
  29336. case VertexBuffer.SHORT:
  29337. case VertexBuffer.UNSIGNED_SHORT:
  29338. return 2;
  29339. case VertexBuffer.INT:
  29340. case VertexBuffer.FLOAT:
  29341. return 4;
  29342. default:
  29343. throw new Error("Invalid type '" + type + "'");
  29344. }
  29345. };
  29346. /**
  29347. * Enumerates each value of the given parameters as numbers.
  29348. * @param data the data to enumerate
  29349. * @param byteOffset the byte offset of the data
  29350. * @param byteStride the byte stride of the data
  29351. * @param componentCount the number of components per element
  29352. * @param componentType the type of the component
  29353. * @param count the total number of components
  29354. * @param normalized whether the data is normalized
  29355. * @param callback the callback function called for each value
  29356. */
  29357. VertexBuffer.ForEach = function (data, byteOffset, byteStride, componentCount, componentType, count, normalized, callback) {
  29358. if (data instanceof Array) {
  29359. var offset = byteOffset / 4;
  29360. var stride = byteStride / 4;
  29361. for (var index = 0; index < count; index += componentCount) {
  29362. for (var componentIndex = 0; componentIndex < componentCount; componentIndex++) {
  29363. callback(data[offset + componentIndex], index + componentIndex);
  29364. }
  29365. offset += stride;
  29366. }
  29367. }
  29368. else {
  29369. var dataView = data instanceof ArrayBuffer ? new DataView(data) : new DataView(data.buffer, data.byteOffset, data.byteLength);
  29370. var componentByteLength = VertexBuffer.GetTypeByteLength(componentType);
  29371. for (var index = 0; index < count; index += componentCount) {
  29372. var componentByteOffset = byteOffset;
  29373. for (var componentIndex = 0; componentIndex < componentCount; componentIndex++) {
  29374. var value = VertexBuffer._GetFloatValue(dataView, componentType, componentByteOffset, normalized);
  29375. callback(value, index + componentIndex);
  29376. componentByteOffset += componentByteLength;
  29377. }
  29378. byteOffset += byteStride;
  29379. }
  29380. }
  29381. };
  29382. VertexBuffer._GetFloatValue = function (dataView, type, byteOffset, normalized) {
  29383. switch (type) {
  29384. case VertexBuffer.BYTE: {
  29385. var value = dataView.getInt8(byteOffset);
  29386. if (normalized) {
  29387. value = Math.max(value / 127, -1);
  29388. }
  29389. return value;
  29390. }
  29391. case VertexBuffer.UNSIGNED_BYTE: {
  29392. var value = dataView.getUint8(byteOffset);
  29393. if (normalized) {
  29394. value = value / 255;
  29395. }
  29396. return value;
  29397. }
  29398. case VertexBuffer.SHORT: {
  29399. var value = dataView.getInt16(byteOffset, true);
  29400. if (normalized) {
  29401. value = Math.max(value / 16383, -1);
  29402. }
  29403. return value;
  29404. }
  29405. case VertexBuffer.UNSIGNED_SHORT: {
  29406. var value = dataView.getUint16(byteOffset, true);
  29407. if (normalized) {
  29408. value = value / 65535;
  29409. }
  29410. return value;
  29411. }
  29412. case VertexBuffer.FLOAT: {
  29413. return dataView.getFloat32(byteOffset, true);
  29414. }
  29415. default: {
  29416. throw new Error("Invalid component type " + type);
  29417. }
  29418. }
  29419. };
  29420. /**
  29421. * The byte type.
  29422. */
  29423. VertexBuffer.BYTE = 5120;
  29424. /**
  29425. * The unsigned byte type.
  29426. */
  29427. VertexBuffer.UNSIGNED_BYTE = 5121;
  29428. /**
  29429. * The short type.
  29430. */
  29431. VertexBuffer.SHORT = 5122;
  29432. /**
  29433. * The unsigned short type.
  29434. */
  29435. VertexBuffer.UNSIGNED_SHORT = 5123;
  29436. /**
  29437. * The integer type.
  29438. */
  29439. VertexBuffer.INT = 5124;
  29440. /**
  29441. * The unsigned integer type.
  29442. */
  29443. VertexBuffer.UNSIGNED_INT = 5125;
  29444. /**
  29445. * The float type.
  29446. */
  29447. VertexBuffer.FLOAT = 5126;
  29448. // Enums
  29449. VertexBuffer._PositionKind = "position";
  29450. VertexBuffer._NormalKind = "normal";
  29451. VertexBuffer._TangentKind = "tangent";
  29452. VertexBuffer._UVKind = "uv";
  29453. VertexBuffer._UV2Kind = "uv2";
  29454. VertexBuffer._UV3Kind = "uv3";
  29455. VertexBuffer._UV4Kind = "uv4";
  29456. VertexBuffer._UV5Kind = "uv5";
  29457. VertexBuffer._UV6Kind = "uv6";
  29458. VertexBuffer._ColorKind = "color";
  29459. VertexBuffer._MatricesIndicesKind = "matricesIndices";
  29460. VertexBuffer._MatricesWeightsKind = "matricesWeights";
  29461. VertexBuffer._MatricesIndicesExtraKind = "matricesIndicesExtra";
  29462. VertexBuffer._MatricesWeightsExtraKind = "matricesWeightsExtra";
  29463. return VertexBuffer;
  29464. }());
  29465. BABYLON.VertexBuffer = VertexBuffer;
  29466. })(BABYLON || (BABYLON = {}));
  29467. //# sourceMappingURL=babylon.vertexBuffer.js.map
  29468. //# sourceMappingURL=babylon.internalTextureLoader.js.map
  29469. var BABYLON;
  29470. (function (BABYLON) {
  29471. /**
  29472. * Internal class used by the engine to get list of {BABYLON.InternalTexture} already bound to the GL context
  29473. */
  29474. var DummyInternalTextureTracker = /** @class */ (function () {
  29475. function DummyInternalTextureTracker() {
  29476. /**
  29477. * Gets or set the previous tracker in the list
  29478. */
  29479. this.previous = null;
  29480. /**
  29481. * Gets or set the next tracker in the list
  29482. */
  29483. this.next = null;
  29484. }
  29485. return DummyInternalTextureTracker;
  29486. }());
  29487. BABYLON.DummyInternalTextureTracker = DummyInternalTextureTracker;
  29488. })(BABYLON || (BABYLON = {}));
  29489. //# sourceMappingURL=babylon.internalTextureTracker.js.map
  29490. var BABYLON;
  29491. (function (BABYLON) {
  29492. /**
  29493. * Class used to store data associated with WebGL texture data for the engine
  29494. * This class should not be used directly
  29495. */
  29496. var InternalTexture = /** @class */ (function () {
  29497. /**
  29498. * Creates a new InternalTexture
  29499. * @param engine defines the engine to use
  29500. * @param dataSource defines the type of data that will be used
  29501. */
  29502. function InternalTexture(engine, dataSource) {
  29503. /**
  29504. * Observable called when the texture is loaded
  29505. */
  29506. this.onLoadedObservable = new BABYLON.Observable();
  29507. /**
  29508. * Gets or set the previous tracker in the list
  29509. */
  29510. this.previous = null;
  29511. /**
  29512. * Gets or set the next tracker in the list
  29513. */
  29514. this.next = null;
  29515. // Private
  29516. /** @hidden */
  29517. this._initialSlot = -1;
  29518. /** @hidden */
  29519. this._designatedSlot = -1;
  29520. /** @hidden */
  29521. this._dataSource = InternalTexture.DATASOURCE_UNKNOWN;
  29522. /** @hidden */
  29523. this._comparisonFunction = 0;
  29524. /** @hidden */
  29525. this._sphericalPolynomial = null;
  29526. /** @hidden */
  29527. this._lodGenerationScale = 0;
  29528. /** @hidden */
  29529. this._lodGenerationOffset = 0;
  29530. /** @hidden */
  29531. this._isRGBD = false;
  29532. /** @hidden */
  29533. this._references = 1;
  29534. this._engine = engine;
  29535. this._dataSource = dataSource;
  29536. this._webGLTexture = engine._createTexture();
  29537. }
  29538. /**
  29539. * Gets the Engine the texture belongs to.
  29540. * @returns The babylon engine
  29541. */
  29542. InternalTexture.prototype.getEngine = function () {
  29543. return this._engine;
  29544. };
  29545. Object.defineProperty(InternalTexture.prototype, "dataSource", {
  29546. /**
  29547. * Gets the data source type of the texture (can be one of the BABYLON.InternalTexture.DATASOURCE_XXXX)
  29548. */
  29549. get: function () {
  29550. return this._dataSource;
  29551. },
  29552. enumerable: true,
  29553. configurable: true
  29554. });
  29555. /**
  29556. * Increments the number of references (ie. the number of {BABYLON.Texture} that point to it)
  29557. */
  29558. InternalTexture.prototype.incrementReferences = function () {
  29559. this._references++;
  29560. };
  29561. /**
  29562. * Change the size of the texture (not the size of the content)
  29563. * @param width defines the new width
  29564. * @param height defines the new height
  29565. * @param depth defines the new depth (1 by default)
  29566. */
  29567. InternalTexture.prototype.updateSize = function (width, height, depth) {
  29568. if (depth === void 0) { depth = 1; }
  29569. this.width = width;
  29570. this.height = height;
  29571. this.depth = depth;
  29572. this.baseWidth = width;
  29573. this.baseHeight = height;
  29574. this.baseDepth = depth;
  29575. this._size = width * height * depth;
  29576. };
  29577. /** @hidden */
  29578. InternalTexture.prototype._rebuild = function () {
  29579. var _this = this;
  29580. var proxy;
  29581. this.isReady = false;
  29582. this._cachedCoordinatesMode = null;
  29583. this._cachedWrapU = null;
  29584. this._cachedWrapV = null;
  29585. this._cachedAnisotropicFilteringLevel = null;
  29586. switch (this._dataSource) {
  29587. case InternalTexture.DATASOURCE_TEMP:
  29588. return;
  29589. case InternalTexture.DATASOURCE_URL:
  29590. proxy = this._engine.createTexture(this.url, !this.generateMipMaps, this.invertY, null, this.samplingMode, function () {
  29591. _this.isReady = true;
  29592. }, null, this._buffer, undefined, this.format);
  29593. proxy._swapAndDie(this);
  29594. return;
  29595. case InternalTexture.DATASOURCE_RAW:
  29596. proxy = this._engine.createRawTexture(this._bufferView, this.baseWidth, this.baseHeight, this.format, this.generateMipMaps, this.invertY, this.samplingMode, this._compression);
  29597. proxy._swapAndDie(this);
  29598. this.isReady = true;
  29599. return;
  29600. case InternalTexture.DATASOURCE_RAW3D:
  29601. proxy = this._engine.createRawTexture3D(this._bufferView, this.baseWidth, this.baseHeight, this.baseDepth, this.format, this.generateMipMaps, this.invertY, this.samplingMode, this._compression);
  29602. proxy._swapAndDie(this);
  29603. this.isReady = true;
  29604. return;
  29605. case InternalTexture.DATASOURCE_DYNAMIC:
  29606. proxy = this._engine.createDynamicTexture(this.baseWidth, this.baseHeight, this.generateMipMaps, this.samplingMode);
  29607. proxy._swapAndDie(this);
  29608. // The engine will make sure to update content so no need to flag it as isReady = true
  29609. return;
  29610. case InternalTexture.DATASOURCE_RENDERTARGET:
  29611. var options = new BABYLON.RenderTargetCreationOptions();
  29612. options.generateDepthBuffer = this._generateDepthBuffer;
  29613. options.generateMipMaps = this.generateMipMaps;
  29614. options.generateStencilBuffer = this._generateStencilBuffer;
  29615. options.samplingMode = this.samplingMode;
  29616. options.type = this.type;
  29617. if (this.isCube) {
  29618. proxy = this._engine.createRenderTargetCubeTexture(this.width, options);
  29619. }
  29620. else {
  29621. var size = {
  29622. width: this.width,
  29623. height: this.height
  29624. };
  29625. proxy = this._engine.createRenderTargetTexture(size, options);
  29626. }
  29627. proxy._swapAndDie(this);
  29628. this.isReady = true;
  29629. return;
  29630. case InternalTexture.DATASOURCE_DEPTHTEXTURE:
  29631. var depthTextureOptions = {
  29632. bilinearFiltering: this.samplingMode !== BABYLON.Texture.BILINEAR_SAMPLINGMODE,
  29633. comparisonFunction: this._comparisonFunction,
  29634. generateStencil: this._generateStencilBuffer,
  29635. isCube: this.isCube
  29636. };
  29637. proxy = this._engine.createDepthStencilTexture({ width: this.width, height: this.height }, depthTextureOptions);
  29638. proxy._swapAndDie(this);
  29639. this.isReady = true;
  29640. return;
  29641. case InternalTexture.DATASOURCE_CUBE:
  29642. proxy = this._engine.createCubeTexture(this.url, null, this._files, !this.generateMipMaps, function () {
  29643. _this.isReady = true;
  29644. }, null, this.format, this._extension);
  29645. proxy._swapAndDie(this);
  29646. return;
  29647. case InternalTexture.DATASOURCE_CUBERAW:
  29648. proxy = this._engine.createRawCubeTexture(this._bufferViewArray, this.width, this.format, this.type, this.generateMipMaps, this.invertY, this.samplingMode, this._compression);
  29649. proxy._swapAndDie(this);
  29650. this.isReady = true;
  29651. return;
  29652. case InternalTexture.DATASOURCE_CUBERAW_RGBD:
  29653. proxy = this._engine.createRawCubeTexture(null, this.width, this.format, this.type, this.generateMipMaps, this.invertY, this.samplingMode, this._compression);
  29654. BABYLON.RawCubeTexture._UpdateRGBDAsync(proxy, this._bufferViewArrayArray, this._sphericalPolynomial, this._lodGenerationScale, this._lodGenerationOffset).then(function () {
  29655. _this.isReady = true;
  29656. });
  29657. proxy._swapAndDie(this);
  29658. return;
  29659. case InternalTexture.DATASOURCE_CUBEPREFILTERED:
  29660. proxy = this._engine.createPrefilteredCubeTexture(this.url, null, this._lodGenerationScale, this._lodGenerationOffset, function (proxy) {
  29661. if (proxy) {
  29662. proxy._swapAndDie(_this);
  29663. }
  29664. _this.isReady = true;
  29665. }, null, this.format, this._extension);
  29666. proxy._sphericalPolynomial = this._sphericalPolynomial;
  29667. return;
  29668. }
  29669. };
  29670. /** @hidden */
  29671. InternalTexture.prototype._swapAndDie = function (target) {
  29672. target._webGLTexture = this._webGLTexture;
  29673. if (this._framebuffer) {
  29674. target._framebuffer = this._framebuffer;
  29675. }
  29676. if (this._depthStencilBuffer) {
  29677. target._depthStencilBuffer = this._depthStencilBuffer;
  29678. }
  29679. if (this._lodTextureHigh) {
  29680. if (target._lodTextureHigh) {
  29681. target._lodTextureHigh.dispose();
  29682. }
  29683. target._lodTextureHigh = this._lodTextureHigh;
  29684. }
  29685. if (this._lodTextureMid) {
  29686. if (target._lodTextureMid) {
  29687. target._lodTextureMid.dispose();
  29688. }
  29689. target._lodTextureMid = this._lodTextureMid;
  29690. }
  29691. if (this._lodTextureLow) {
  29692. if (target._lodTextureLow) {
  29693. target._lodTextureLow.dispose();
  29694. }
  29695. target._lodTextureLow = this._lodTextureLow;
  29696. }
  29697. var cache = this._engine.getLoadedTexturesCache();
  29698. var index = cache.indexOf(this);
  29699. if (index !== -1) {
  29700. cache.splice(index, 1);
  29701. }
  29702. };
  29703. /**
  29704. * Dispose the current allocated resources
  29705. */
  29706. InternalTexture.prototype.dispose = function () {
  29707. if (!this._webGLTexture) {
  29708. return;
  29709. }
  29710. this._references--;
  29711. if (this._references === 0) {
  29712. this._engine._releaseTexture(this);
  29713. this._webGLTexture = null;
  29714. this.previous = null;
  29715. this.next = null;
  29716. }
  29717. };
  29718. /**
  29719. * The source of the texture data is unknown
  29720. */
  29721. InternalTexture.DATASOURCE_UNKNOWN = 0;
  29722. /**
  29723. * Texture data comes from an URL
  29724. */
  29725. InternalTexture.DATASOURCE_URL = 1;
  29726. /**
  29727. * Texture data is only used for temporary storage
  29728. */
  29729. InternalTexture.DATASOURCE_TEMP = 2;
  29730. /**
  29731. * Texture data comes from raw data (ArrayBuffer)
  29732. */
  29733. InternalTexture.DATASOURCE_RAW = 3;
  29734. /**
  29735. * Texture content is dynamic (video or dynamic texture)
  29736. */
  29737. InternalTexture.DATASOURCE_DYNAMIC = 4;
  29738. /**
  29739. * Texture content is generated by rendering to it
  29740. */
  29741. InternalTexture.DATASOURCE_RENDERTARGET = 5;
  29742. /**
  29743. * Texture content is part of a multi render target process
  29744. */
  29745. InternalTexture.DATASOURCE_MULTIRENDERTARGET = 6;
  29746. /**
  29747. * Texture data comes from a cube data file
  29748. */
  29749. InternalTexture.DATASOURCE_CUBE = 7;
  29750. /**
  29751. * Texture data comes from a raw cube data
  29752. */
  29753. InternalTexture.DATASOURCE_CUBERAW = 8;
  29754. /**
  29755. * Texture data come from a prefiltered cube data file
  29756. */
  29757. InternalTexture.DATASOURCE_CUBEPREFILTERED = 9;
  29758. /**
  29759. * Texture content is raw 3D data
  29760. */
  29761. InternalTexture.DATASOURCE_RAW3D = 10;
  29762. /**
  29763. * Texture content is a depth texture
  29764. */
  29765. InternalTexture.DATASOURCE_DEPTHTEXTURE = 11;
  29766. /**
  29767. * Texture data comes from a raw cube data encoded with RGBD
  29768. */
  29769. InternalTexture.DATASOURCE_CUBERAW_RGBD = 12;
  29770. return InternalTexture;
  29771. }());
  29772. BABYLON.InternalTexture = InternalTexture;
  29773. })(BABYLON || (BABYLON = {}));
  29774. //# sourceMappingURL=babylon.internalTexture.js.map
  29775. var BABYLON;
  29776. (function (BABYLON) {
  29777. var BaseTexture = /** @class */ (function () {
  29778. function BaseTexture(scene) {
  29779. this._hasAlpha = false;
  29780. this.getAlphaFromRGB = false;
  29781. this.level = 1;
  29782. this.coordinatesIndex = 0;
  29783. this._coordinatesMode = BABYLON.Texture.EXPLICIT_MODE;
  29784. /**
  29785. * | Value | Type | Description |
  29786. * | ----- | ------------------ | ----------- |
  29787. * | 0 | CLAMP_ADDRESSMODE | |
  29788. * | 1 | WRAP_ADDRESSMODE | |
  29789. * | 2 | MIRROR_ADDRESSMODE | |
  29790. */
  29791. this.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  29792. /**
  29793. * | Value | Type | Description |
  29794. * | ----- | ------------------ | ----------- |
  29795. * | 0 | CLAMP_ADDRESSMODE | |
  29796. * | 1 | WRAP_ADDRESSMODE | |
  29797. * | 2 | MIRROR_ADDRESSMODE | |
  29798. */
  29799. this.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  29800. /**
  29801. * | Value | Type | Description |
  29802. * | ----- | ------------------ | ----------- |
  29803. * | 0 | CLAMP_ADDRESSMODE | |
  29804. * | 1 | WRAP_ADDRESSMODE | |
  29805. * | 2 | MIRROR_ADDRESSMODE | |
  29806. */
  29807. this.wrapR = BABYLON.Texture.WRAP_ADDRESSMODE;
  29808. this.anisotropicFilteringLevel = BaseTexture.DEFAULT_ANISOTROPIC_FILTERING_LEVEL;
  29809. this.isCube = false;
  29810. this.is3D = false;
  29811. this.gammaSpace = true;
  29812. this.invertZ = false;
  29813. this.lodLevelInAlpha = false;
  29814. this.isRenderTarget = false;
  29815. this.animations = new Array();
  29816. /**
  29817. * An event triggered when the texture is disposed.
  29818. */
  29819. this.onDisposeObservable = new BABYLON.Observable();
  29820. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NONE;
  29821. this._cachedSize = BABYLON.Size.Zero();
  29822. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  29823. if (this._scene) {
  29824. this._scene.textures.push(this);
  29825. }
  29826. this._uid = null;
  29827. }
  29828. Object.defineProperty(BaseTexture.prototype, "hasAlpha", {
  29829. get: function () {
  29830. return this._hasAlpha;
  29831. },
  29832. set: function (value) {
  29833. if (this._hasAlpha === value) {
  29834. return;
  29835. }
  29836. this._hasAlpha = value;
  29837. if (this._scene) {
  29838. this._scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag | BABYLON.Material.MiscDirtyFlag);
  29839. }
  29840. },
  29841. enumerable: true,
  29842. configurable: true
  29843. });
  29844. Object.defineProperty(BaseTexture.prototype, "coordinatesMode", {
  29845. get: function () {
  29846. return this._coordinatesMode;
  29847. },
  29848. /**
  29849. * How a texture is mapped.
  29850. *
  29851. * | Value | Type | Description |
  29852. * | ----- | ----------------------------------- | ----------- |
  29853. * | 0 | EXPLICIT_MODE | |
  29854. * | 1 | SPHERICAL_MODE | |
  29855. * | 2 | PLANAR_MODE | |
  29856. * | 3 | CUBIC_MODE | |
  29857. * | 4 | PROJECTION_MODE | |
  29858. * | 5 | SKYBOX_MODE | |
  29859. * | 6 | INVCUBIC_MODE | |
  29860. * | 7 | EQUIRECTANGULAR_MODE | |
  29861. * | 8 | FIXED_EQUIRECTANGULAR_MODE | |
  29862. * | 9 | FIXED_EQUIRECTANGULAR_MIRRORED_MODE | |
  29863. */
  29864. set: function (value) {
  29865. if (this._coordinatesMode === value) {
  29866. return;
  29867. }
  29868. this._coordinatesMode = value;
  29869. if (this._scene) {
  29870. this._scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  29871. }
  29872. },
  29873. enumerable: true,
  29874. configurable: true
  29875. });
  29876. Object.defineProperty(BaseTexture.prototype, "isRGBD", {
  29877. /**
  29878. * Gets whether or not the texture contains RGBD data.
  29879. */
  29880. get: function () {
  29881. return this._texture != null && this._texture._isRGBD;
  29882. },
  29883. enumerable: true,
  29884. configurable: true
  29885. });
  29886. Object.defineProperty(BaseTexture.prototype, "lodGenerationOffset", {
  29887. get: function () {
  29888. if (this._texture)
  29889. return this._texture._lodGenerationOffset;
  29890. return 0.0;
  29891. },
  29892. set: function (value) {
  29893. if (this._texture)
  29894. this._texture._lodGenerationOffset = value;
  29895. },
  29896. enumerable: true,
  29897. configurable: true
  29898. });
  29899. Object.defineProperty(BaseTexture.prototype, "lodGenerationScale", {
  29900. get: function () {
  29901. if (this._texture)
  29902. return this._texture._lodGenerationScale;
  29903. return 0.0;
  29904. },
  29905. set: function (value) {
  29906. if (this._texture)
  29907. this._texture._lodGenerationScale = value;
  29908. },
  29909. enumerable: true,
  29910. configurable: true
  29911. });
  29912. Object.defineProperty(BaseTexture.prototype, "uid", {
  29913. get: function () {
  29914. if (!this._uid) {
  29915. this._uid = BABYLON.Tools.RandomId();
  29916. }
  29917. return this._uid;
  29918. },
  29919. enumerable: true,
  29920. configurable: true
  29921. });
  29922. BaseTexture.prototype.toString = function () {
  29923. return this.name;
  29924. };
  29925. BaseTexture.prototype.getClassName = function () {
  29926. return "BaseTexture";
  29927. };
  29928. Object.defineProperty(BaseTexture.prototype, "onDispose", {
  29929. set: function (callback) {
  29930. if (this._onDisposeObserver) {
  29931. this.onDisposeObservable.remove(this._onDisposeObserver);
  29932. }
  29933. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  29934. },
  29935. enumerable: true,
  29936. configurable: true
  29937. });
  29938. Object.defineProperty(BaseTexture.prototype, "isBlocking", {
  29939. get: function () {
  29940. return true;
  29941. },
  29942. enumerable: true,
  29943. configurable: true
  29944. });
  29945. BaseTexture.prototype.getScene = function () {
  29946. return this._scene;
  29947. };
  29948. BaseTexture.prototype.getTextureMatrix = function () {
  29949. return BABYLON.Matrix.IdentityReadOnly;
  29950. };
  29951. BaseTexture.prototype.getReflectionTextureMatrix = function () {
  29952. return BABYLON.Matrix.IdentityReadOnly;
  29953. };
  29954. BaseTexture.prototype.getInternalTexture = function () {
  29955. return this._texture;
  29956. };
  29957. BaseTexture.prototype.isReadyOrNotBlocking = function () {
  29958. return !this.isBlocking || this.isReady();
  29959. };
  29960. BaseTexture.prototype.isReady = function () {
  29961. if (this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  29962. this.delayLoad();
  29963. return false;
  29964. }
  29965. if (this._texture) {
  29966. return this._texture.isReady;
  29967. }
  29968. return false;
  29969. };
  29970. BaseTexture.prototype.getSize = function () {
  29971. if (this._texture) {
  29972. if (this._texture.width) {
  29973. this._cachedSize.width = this._texture.width;
  29974. this._cachedSize.height = this._texture.height;
  29975. return this._cachedSize;
  29976. }
  29977. if (this._texture._size) {
  29978. this._cachedSize.width = this._texture._size;
  29979. this._cachedSize.height = this._texture._size;
  29980. return this._cachedSize;
  29981. }
  29982. }
  29983. return this._cachedSize;
  29984. };
  29985. BaseTexture.prototype.getBaseSize = function () {
  29986. if (!this.isReady() || !this._texture)
  29987. return BABYLON.Size.Zero();
  29988. if (this._texture._size) {
  29989. return new BABYLON.Size(this._texture._size, this._texture._size);
  29990. }
  29991. return new BABYLON.Size(this._texture.baseWidth, this._texture.baseHeight);
  29992. };
  29993. BaseTexture.prototype.scale = function (ratio) {
  29994. };
  29995. Object.defineProperty(BaseTexture.prototype, "canRescale", {
  29996. get: function () {
  29997. return false;
  29998. },
  29999. enumerable: true,
  30000. configurable: true
  30001. });
  30002. /** @hidden */
  30003. BaseTexture.prototype._getFromCache = function (url, noMipmap, sampling) {
  30004. if (!this._scene) {
  30005. return null;
  30006. }
  30007. var texturesCache = this._scene.getEngine().getLoadedTexturesCache();
  30008. for (var index = 0; index < texturesCache.length; index++) {
  30009. var texturesCacheEntry = texturesCache[index];
  30010. if (texturesCacheEntry.url === url && texturesCacheEntry.generateMipMaps === !noMipmap) {
  30011. if (!sampling || sampling === texturesCacheEntry.samplingMode) {
  30012. texturesCacheEntry.incrementReferences();
  30013. return texturesCacheEntry;
  30014. }
  30015. }
  30016. }
  30017. return null;
  30018. };
  30019. /** @hidden */
  30020. BaseTexture.prototype._rebuild = function () {
  30021. };
  30022. BaseTexture.prototype.delayLoad = function () {
  30023. };
  30024. BaseTexture.prototype.clone = function () {
  30025. return null;
  30026. };
  30027. Object.defineProperty(BaseTexture.prototype, "textureType", {
  30028. get: function () {
  30029. if (!this._texture) {
  30030. return BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  30031. }
  30032. return (this._texture.type !== undefined) ? this._texture.type : BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  30033. },
  30034. enumerable: true,
  30035. configurable: true
  30036. });
  30037. Object.defineProperty(BaseTexture.prototype, "textureFormat", {
  30038. get: function () {
  30039. if (!this._texture) {
  30040. return BABYLON.Engine.TEXTUREFORMAT_RGBA;
  30041. }
  30042. return (this._texture.format !== undefined) ? this._texture.format : BABYLON.Engine.TEXTUREFORMAT_RGBA;
  30043. },
  30044. enumerable: true,
  30045. configurable: true
  30046. });
  30047. /**
  30048. * Reads the pixels stored in the webgl texture and returns them as an ArrayBuffer.
  30049. * This will returns an RGBA array buffer containing either in values (0-255) or
  30050. * float values (0-1) depending of the underlying buffer type.
  30051. * @param faceIndex The face of the texture to read (in case of cube texture)
  30052. * @param level The LOD level of the texture to read (in case of Mip Maps)
  30053. * @returns The Array buffer containing the pixels data.
  30054. */
  30055. BaseTexture.prototype.readPixels = function (faceIndex, level) {
  30056. if (faceIndex === void 0) { faceIndex = 0; }
  30057. if (level === void 0) { level = 0; }
  30058. if (!this._texture) {
  30059. return null;
  30060. }
  30061. var size = this.getSize();
  30062. var width = size.width;
  30063. var height = size.height;
  30064. var scene = this.getScene();
  30065. if (!scene) {
  30066. return null;
  30067. }
  30068. var engine = scene.getEngine();
  30069. if (level != 0) {
  30070. width = width / Math.pow(2, level);
  30071. height = height / Math.pow(2, level);
  30072. width = Math.round(width);
  30073. height = Math.round(height);
  30074. }
  30075. if (this._texture.isCube) {
  30076. return engine._readTexturePixels(this._texture, width, height, faceIndex, level);
  30077. }
  30078. return engine._readTexturePixels(this._texture, width, height, -1, level);
  30079. };
  30080. BaseTexture.prototype.releaseInternalTexture = function () {
  30081. if (this._texture) {
  30082. this._texture.dispose();
  30083. this._texture = null;
  30084. }
  30085. };
  30086. Object.defineProperty(BaseTexture.prototype, "sphericalPolynomial", {
  30087. get: function () {
  30088. if (!this._texture || !BABYLON.CubeMapToSphericalPolynomialTools || !this.isReady()) {
  30089. return null;
  30090. }
  30091. if (!this._texture._sphericalPolynomial) {
  30092. this._texture._sphericalPolynomial =
  30093. BABYLON.CubeMapToSphericalPolynomialTools.ConvertCubeMapTextureToSphericalPolynomial(this);
  30094. }
  30095. return this._texture._sphericalPolynomial;
  30096. },
  30097. set: function (value) {
  30098. if (this._texture) {
  30099. this._texture._sphericalPolynomial = value;
  30100. }
  30101. },
  30102. enumerable: true,
  30103. configurable: true
  30104. });
  30105. Object.defineProperty(BaseTexture.prototype, "_lodTextureHigh", {
  30106. get: function () {
  30107. if (this._texture) {
  30108. return this._texture._lodTextureHigh;
  30109. }
  30110. return null;
  30111. },
  30112. enumerable: true,
  30113. configurable: true
  30114. });
  30115. Object.defineProperty(BaseTexture.prototype, "_lodTextureMid", {
  30116. get: function () {
  30117. if (this._texture) {
  30118. return this._texture._lodTextureMid;
  30119. }
  30120. return null;
  30121. },
  30122. enumerable: true,
  30123. configurable: true
  30124. });
  30125. Object.defineProperty(BaseTexture.prototype, "_lodTextureLow", {
  30126. get: function () {
  30127. if (this._texture) {
  30128. return this._texture._lodTextureLow;
  30129. }
  30130. return null;
  30131. },
  30132. enumerable: true,
  30133. configurable: true
  30134. });
  30135. BaseTexture.prototype.dispose = function () {
  30136. if (!this._scene) {
  30137. return;
  30138. }
  30139. // Animations
  30140. this._scene.stopAnimation(this);
  30141. // Remove from scene
  30142. this._scene._removePendingData(this);
  30143. var index = this._scene.textures.indexOf(this);
  30144. if (index >= 0) {
  30145. this._scene.textures.splice(index, 1);
  30146. }
  30147. if (this._texture === undefined) {
  30148. return;
  30149. }
  30150. // Release
  30151. this.releaseInternalTexture();
  30152. // Callback
  30153. this.onDisposeObservable.notifyObservers(this);
  30154. this.onDisposeObservable.clear();
  30155. };
  30156. BaseTexture.prototype.serialize = function () {
  30157. if (!this.name) {
  30158. return null;
  30159. }
  30160. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  30161. // Animations
  30162. BABYLON.Animation.AppendSerializedAnimations(this, serializationObject);
  30163. return serializationObject;
  30164. };
  30165. BaseTexture.WhenAllReady = function (textures, callback) {
  30166. var numRemaining = textures.length;
  30167. if (numRemaining === 0) {
  30168. callback();
  30169. return;
  30170. }
  30171. var _loop_1 = function () {
  30172. texture = textures[i];
  30173. if (texture.isReady()) {
  30174. if (--numRemaining === 0) {
  30175. callback();
  30176. }
  30177. }
  30178. else {
  30179. onLoadObservable = texture.onLoadObservable;
  30180. var onLoadCallback_1 = function () {
  30181. onLoadObservable.removeCallback(onLoadCallback_1);
  30182. if (--numRemaining === 0) {
  30183. callback();
  30184. }
  30185. };
  30186. onLoadObservable.add(onLoadCallback_1);
  30187. }
  30188. };
  30189. var texture, onLoadObservable;
  30190. for (var i = 0; i < textures.length; i++) {
  30191. _loop_1();
  30192. }
  30193. };
  30194. BaseTexture.DEFAULT_ANISOTROPIC_FILTERING_LEVEL = 4;
  30195. __decorate([
  30196. BABYLON.serialize()
  30197. ], BaseTexture.prototype, "name", void 0);
  30198. __decorate([
  30199. BABYLON.serialize("hasAlpha")
  30200. ], BaseTexture.prototype, "_hasAlpha", void 0);
  30201. __decorate([
  30202. BABYLON.serialize()
  30203. ], BaseTexture.prototype, "getAlphaFromRGB", void 0);
  30204. __decorate([
  30205. BABYLON.serialize()
  30206. ], BaseTexture.prototype, "level", void 0);
  30207. __decorate([
  30208. BABYLON.serialize()
  30209. ], BaseTexture.prototype, "coordinatesIndex", void 0);
  30210. __decorate([
  30211. BABYLON.serialize("coordinatesMode")
  30212. ], BaseTexture.prototype, "_coordinatesMode", void 0);
  30213. __decorate([
  30214. BABYLON.serialize()
  30215. ], BaseTexture.prototype, "wrapU", void 0);
  30216. __decorate([
  30217. BABYLON.serialize()
  30218. ], BaseTexture.prototype, "wrapV", void 0);
  30219. __decorate([
  30220. BABYLON.serialize()
  30221. ], BaseTexture.prototype, "wrapR", void 0);
  30222. __decorate([
  30223. BABYLON.serialize()
  30224. ], BaseTexture.prototype, "anisotropicFilteringLevel", void 0);
  30225. __decorate([
  30226. BABYLON.serialize()
  30227. ], BaseTexture.prototype, "isCube", void 0);
  30228. __decorate([
  30229. BABYLON.serialize()
  30230. ], BaseTexture.prototype, "is3D", void 0);
  30231. __decorate([
  30232. BABYLON.serialize()
  30233. ], BaseTexture.prototype, "gammaSpace", void 0);
  30234. __decorate([
  30235. BABYLON.serialize()
  30236. ], BaseTexture.prototype, "invertZ", void 0);
  30237. __decorate([
  30238. BABYLON.serialize()
  30239. ], BaseTexture.prototype, "lodLevelInAlpha", void 0);
  30240. __decorate([
  30241. BABYLON.serialize()
  30242. ], BaseTexture.prototype, "lodGenerationOffset", null);
  30243. __decorate([
  30244. BABYLON.serialize()
  30245. ], BaseTexture.prototype, "lodGenerationScale", null);
  30246. __decorate([
  30247. BABYLON.serialize()
  30248. ], BaseTexture.prototype, "isRenderTarget", void 0);
  30249. return BaseTexture;
  30250. }());
  30251. BABYLON.BaseTexture = BaseTexture;
  30252. })(BABYLON || (BABYLON = {}));
  30253. //# sourceMappingURL=babylon.baseTexture.js.map
  30254. var BABYLON;
  30255. (function (BABYLON) {
  30256. var Texture = /** @class */ (function (_super) {
  30257. __extends(Texture, _super);
  30258. function Texture(url, scene, noMipmap, invertY, samplingMode, onLoad, onError, buffer, deleteBuffer, format) {
  30259. if (noMipmap === void 0) { noMipmap = false; }
  30260. if (invertY === void 0) { invertY = true; }
  30261. if (samplingMode === void 0) { samplingMode = Texture.TRILINEAR_SAMPLINGMODE; }
  30262. if (onLoad === void 0) { onLoad = null; }
  30263. if (onError === void 0) { onError = null; }
  30264. if (buffer === void 0) { buffer = null; }
  30265. if (deleteBuffer === void 0) { deleteBuffer = false; }
  30266. var _this = _super.call(this, scene) || this;
  30267. _this.uOffset = 0;
  30268. _this.vOffset = 0;
  30269. _this.uScale = 1.0;
  30270. _this.vScale = 1.0;
  30271. _this.uAng = 0;
  30272. _this.vAng = 0;
  30273. _this.wAng = 0;
  30274. /**
  30275. * Defines the center of rotation (U)
  30276. */
  30277. _this.uRotationCenter = 0.5;
  30278. /**
  30279. * Defines the center of rotation (V)
  30280. */
  30281. _this.vRotationCenter = 0.5;
  30282. /**
  30283. * Defines the center of rotation (W)
  30284. */
  30285. _this.wRotationCenter = 0.5;
  30286. _this._isBlocking = true;
  30287. _this.name = url || "";
  30288. _this.url = url;
  30289. _this._noMipmap = noMipmap;
  30290. _this._invertY = invertY;
  30291. _this._samplingMode = samplingMode;
  30292. _this._buffer = buffer;
  30293. _this._deleteBuffer = deleteBuffer;
  30294. if (format) {
  30295. _this._format = format;
  30296. }
  30297. scene = _this.getScene();
  30298. if (!scene) {
  30299. return _this;
  30300. }
  30301. scene.getEngine().onBeforeTextureInitObservable.notifyObservers(_this);
  30302. var load = function () {
  30303. if (_this._onLoadObservable && _this._onLoadObservable.hasObservers()) {
  30304. _this.onLoadObservable.notifyObservers(_this);
  30305. }
  30306. if (onLoad) {
  30307. onLoad();
  30308. }
  30309. if (!_this.isBlocking && scene) {
  30310. scene.resetCachedMaterial();
  30311. }
  30312. };
  30313. if (!_this.url) {
  30314. _this._delayedOnLoad = load;
  30315. _this._delayedOnError = onError;
  30316. return _this;
  30317. }
  30318. _this._texture = _this._getFromCache(_this.url, noMipmap, samplingMode);
  30319. if (!_this._texture) {
  30320. if (!scene.useDelayedTextureLoading) {
  30321. _this._texture = scene.getEngine().createTexture(_this.url, noMipmap, invertY, scene, _this._samplingMode, load, onError, _this._buffer, undefined, _this._format);
  30322. if (deleteBuffer) {
  30323. delete _this._buffer;
  30324. }
  30325. }
  30326. else {
  30327. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  30328. _this._delayedOnLoad = load;
  30329. _this._delayedOnError = onError;
  30330. }
  30331. }
  30332. else {
  30333. if (_this._texture.isReady) {
  30334. BABYLON.Tools.SetImmediate(function () { return load(); });
  30335. }
  30336. else {
  30337. _this._texture.onLoadedObservable.add(load);
  30338. }
  30339. }
  30340. return _this;
  30341. }
  30342. Object.defineProperty(Texture.prototype, "noMipmap", {
  30343. get: function () {
  30344. return this._noMipmap;
  30345. },
  30346. enumerable: true,
  30347. configurable: true
  30348. });
  30349. Object.defineProperty(Texture.prototype, "isBlocking", {
  30350. get: function () {
  30351. return this._isBlocking;
  30352. },
  30353. set: function (value) {
  30354. this._isBlocking = value;
  30355. },
  30356. enumerable: true,
  30357. configurable: true
  30358. });
  30359. Object.defineProperty(Texture.prototype, "samplingMode", {
  30360. get: function () {
  30361. return this._samplingMode;
  30362. },
  30363. enumerable: true,
  30364. configurable: true
  30365. });
  30366. /**
  30367. * Update the url (and optional buffer) of this texture if url was null during construction.
  30368. * @param url the url of the texture
  30369. * @param buffer the buffer of the texture (defaults to null)
  30370. */
  30371. Texture.prototype.updateURL = function (url, buffer) {
  30372. if (buffer === void 0) { buffer = null; }
  30373. if (this.url) {
  30374. throw new Error("URL is already set");
  30375. }
  30376. this.url = url;
  30377. this._buffer = buffer;
  30378. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  30379. this.delayLoad();
  30380. };
  30381. Texture.prototype.delayLoad = function () {
  30382. if (this.delayLoadState !== BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  30383. return;
  30384. }
  30385. var scene = this.getScene();
  30386. if (!scene) {
  30387. return;
  30388. }
  30389. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  30390. this._texture = this._getFromCache(this.url, this._noMipmap, this._samplingMode);
  30391. if (!this._texture) {
  30392. this._texture = scene.getEngine().createTexture(this.url, this._noMipmap, this._invertY, scene, this._samplingMode, this._delayedOnLoad, this._delayedOnError, this._buffer, null, this._format);
  30393. if (this._deleteBuffer) {
  30394. delete this._buffer;
  30395. }
  30396. }
  30397. else {
  30398. if (this._delayedOnLoad) {
  30399. if (this._texture.isReady) {
  30400. BABYLON.Tools.SetImmediate(this._delayedOnLoad);
  30401. }
  30402. else {
  30403. this._texture.onLoadedObservable.add(this._delayedOnLoad);
  30404. }
  30405. }
  30406. }
  30407. this._delayedOnLoad = null;
  30408. this._delayedOnError = null;
  30409. };
  30410. /**
  30411. * Default is Trilinear mode.
  30412. *
  30413. * | Value | Type | Description |
  30414. * | ----- | ------------------ | ----------- |
  30415. * | 1 | NEAREST_SAMPLINGMODE or NEAREST_NEAREST_MIPLINEAR | Nearest is: mag = nearest, min = nearest, mip = linear |
  30416. * | 2 | BILINEAR_SAMPLINGMODE or LINEAR_LINEAR_MIPNEAREST | Bilinear is: mag = linear, min = linear, mip = nearest |
  30417. * | 3 | TRILINEAR_SAMPLINGMODE or LINEAR_LINEAR_MIPLINEAR | Trilinear is: mag = linear, min = linear, mip = linear |
  30418. * | 4 | NEAREST_NEAREST_MIPNEAREST | |
  30419. * | 5 | NEAREST_LINEAR_MIPNEAREST | |
  30420. * | 6 | NEAREST_LINEAR_MIPLINEAR | |
  30421. * | 7 | NEAREST_LINEAR | |
  30422. * | 8 | NEAREST_NEAREST | |
  30423. * | 9 | LINEAR_NEAREST_MIPNEAREST | |
  30424. * | 10 | LINEAR_NEAREST_MIPLINEAR | |
  30425. * | 11 | LINEAR_LINEAR | |
  30426. * | 12 | LINEAR_NEAREST | |
  30427. *
  30428. * > _mag_: magnification filter (close to the viewer)
  30429. * > _min_: minification filter (far from the viewer)
  30430. * > _mip_: filter used between mip map levels
  30431. *
  30432. */
  30433. Texture.prototype.updateSamplingMode = function (samplingMode) {
  30434. if (!this._texture) {
  30435. return;
  30436. }
  30437. var scene = this.getScene();
  30438. if (!scene) {
  30439. return;
  30440. }
  30441. this._samplingMode = samplingMode;
  30442. scene.getEngine().updateTextureSamplingMode(samplingMode, this._texture);
  30443. };
  30444. Texture.prototype._prepareRowForTextureGeneration = function (x, y, z, t) {
  30445. x *= this.uScale;
  30446. y *= this.vScale;
  30447. x -= this.uRotationCenter * this.uScale;
  30448. y -= this.vRotationCenter * this.vScale;
  30449. z -= this.wRotationCenter;
  30450. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(x, y, z, this._rowGenerationMatrix, t);
  30451. t.x += this.uRotationCenter * this.uScale + this.uOffset;
  30452. t.y += this.vRotationCenter * this.vScale + this.vOffset;
  30453. t.z += this.wRotationCenter;
  30454. };
  30455. Texture.prototype.getTextureMatrix = function () {
  30456. var _this = this;
  30457. if (this.uOffset === this._cachedUOffset &&
  30458. this.vOffset === this._cachedVOffset &&
  30459. this.uScale === this._cachedUScale &&
  30460. this.vScale === this._cachedVScale &&
  30461. this.uAng === this._cachedUAng &&
  30462. this.vAng === this._cachedVAng &&
  30463. this.wAng === this._cachedWAng) {
  30464. return this._cachedTextureMatrix;
  30465. }
  30466. this._cachedUOffset = this.uOffset;
  30467. this._cachedVOffset = this.vOffset;
  30468. this._cachedUScale = this.uScale;
  30469. this._cachedVScale = this.vScale;
  30470. this._cachedUAng = this.uAng;
  30471. this._cachedVAng = this.vAng;
  30472. this._cachedWAng = this.wAng;
  30473. if (!this._cachedTextureMatrix) {
  30474. this._cachedTextureMatrix = BABYLON.Matrix.Zero();
  30475. this._rowGenerationMatrix = new BABYLON.Matrix();
  30476. this._t0 = BABYLON.Vector3.Zero();
  30477. this._t1 = BABYLON.Vector3.Zero();
  30478. this._t2 = BABYLON.Vector3.Zero();
  30479. }
  30480. BABYLON.Matrix.RotationYawPitchRollToRef(this.vAng, this.uAng, this.wAng, this._rowGenerationMatrix);
  30481. this._prepareRowForTextureGeneration(0, 0, 0, this._t0);
  30482. this._prepareRowForTextureGeneration(1.0, 0, 0, this._t1);
  30483. this._prepareRowForTextureGeneration(0, 1.0, 0, this._t2);
  30484. this._t1.subtractInPlace(this._t0);
  30485. this._t2.subtractInPlace(this._t0);
  30486. BABYLON.Matrix.IdentityToRef(this._cachedTextureMatrix);
  30487. this._cachedTextureMatrix.m[0] = this._t1.x;
  30488. this._cachedTextureMatrix.m[1] = this._t1.y;
  30489. this._cachedTextureMatrix.m[2] = this._t1.z;
  30490. this._cachedTextureMatrix.m[4] = this._t2.x;
  30491. this._cachedTextureMatrix.m[5] = this._t2.y;
  30492. this._cachedTextureMatrix.m[6] = this._t2.z;
  30493. this._cachedTextureMatrix.m[8] = this._t0.x;
  30494. this._cachedTextureMatrix.m[9] = this._t0.y;
  30495. this._cachedTextureMatrix.m[10] = this._t0.z;
  30496. var scene = this.getScene();
  30497. if (!scene) {
  30498. return this._cachedTextureMatrix;
  30499. }
  30500. scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag, function (mat) {
  30501. return mat.hasTexture(_this);
  30502. });
  30503. return this._cachedTextureMatrix;
  30504. };
  30505. Texture.prototype.getReflectionTextureMatrix = function () {
  30506. var _this = this;
  30507. var scene = this.getScene();
  30508. if (!scene) {
  30509. return this._cachedTextureMatrix;
  30510. }
  30511. if (this.uOffset === this._cachedUOffset &&
  30512. this.vOffset === this._cachedVOffset &&
  30513. this.uScale === this._cachedUScale &&
  30514. this.vScale === this._cachedVScale &&
  30515. this.coordinatesMode === this._cachedCoordinatesMode) {
  30516. if (this.coordinatesMode === Texture.PROJECTION_MODE) {
  30517. if (this._cachedProjectionMatrixId === scene.getProjectionMatrix().updateFlag) {
  30518. return this._cachedTextureMatrix;
  30519. }
  30520. }
  30521. else {
  30522. return this._cachedTextureMatrix;
  30523. }
  30524. }
  30525. if (!this._cachedTextureMatrix) {
  30526. this._cachedTextureMatrix = BABYLON.Matrix.Zero();
  30527. }
  30528. if (!this._projectionModeMatrix) {
  30529. this._projectionModeMatrix = BABYLON.Matrix.Zero();
  30530. }
  30531. this._cachedUOffset = this.uOffset;
  30532. this._cachedVOffset = this.vOffset;
  30533. this._cachedUScale = this.uScale;
  30534. this._cachedVScale = this.vScale;
  30535. this._cachedCoordinatesMode = this.coordinatesMode;
  30536. switch (this.coordinatesMode) {
  30537. case Texture.PLANAR_MODE:
  30538. BABYLON.Matrix.IdentityToRef(this._cachedTextureMatrix);
  30539. this._cachedTextureMatrix[0] = this.uScale;
  30540. this._cachedTextureMatrix[5] = this.vScale;
  30541. this._cachedTextureMatrix[12] = this.uOffset;
  30542. this._cachedTextureMatrix[13] = this.vOffset;
  30543. break;
  30544. case Texture.PROJECTION_MODE:
  30545. BABYLON.Matrix.IdentityToRef(this._projectionModeMatrix);
  30546. this._projectionModeMatrix.m[0] = 0.5;
  30547. this._projectionModeMatrix.m[5] = -0.5;
  30548. this._projectionModeMatrix.m[10] = 0.0;
  30549. this._projectionModeMatrix.m[12] = 0.5;
  30550. this._projectionModeMatrix.m[13] = 0.5;
  30551. this._projectionModeMatrix.m[14] = 1.0;
  30552. this._projectionModeMatrix.m[15] = 1.0;
  30553. var projectionMatrix = scene.getProjectionMatrix();
  30554. this._cachedProjectionMatrixId = projectionMatrix.updateFlag;
  30555. projectionMatrix.multiplyToRef(this._projectionModeMatrix, this._cachedTextureMatrix);
  30556. break;
  30557. default:
  30558. BABYLON.Matrix.IdentityToRef(this._cachedTextureMatrix);
  30559. break;
  30560. }
  30561. scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag, function (mat) {
  30562. return (mat.getActiveTextures().indexOf(_this) !== -1);
  30563. });
  30564. return this._cachedTextureMatrix;
  30565. };
  30566. Texture.prototype.clone = function () {
  30567. var _this = this;
  30568. return BABYLON.SerializationHelper.Clone(function () {
  30569. return new Texture(_this._texture ? _this._texture.url : null, _this.getScene(), _this._noMipmap, _this._invertY, _this._samplingMode);
  30570. }, this);
  30571. };
  30572. Object.defineProperty(Texture.prototype, "onLoadObservable", {
  30573. get: function () {
  30574. if (!this._onLoadObservable) {
  30575. this._onLoadObservable = new BABYLON.Observable();
  30576. }
  30577. return this._onLoadObservable;
  30578. },
  30579. enumerable: true,
  30580. configurable: true
  30581. });
  30582. Texture.prototype.serialize = function () {
  30583. var serializationObject = _super.prototype.serialize.call(this);
  30584. if (typeof this._buffer === "string" && this._buffer.substr(0, 5) === "data:") {
  30585. serializationObject.base64String = this._buffer;
  30586. serializationObject.name = serializationObject.name.replace("data:", "");
  30587. }
  30588. serializationObject.invertY = this._invertY;
  30589. serializationObject.samplingMode = this.samplingMode;
  30590. return serializationObject;
  30591. };
  30592. Texture.prototype.getClassName = function () {
  30593. return "Texture";
  30594. };
  30595. Texture.prototype.dispose = function () {
  30596. _super.prototype.dispose.call(this);
  30597. if (this._onLoadObservable) {
  30598. this._onLoadObservable.clear();
  30599. this._onLoadObservable = null;
  30600. }
  30601. this._delayedOnLoad = null;
  30602. this._delayedOnError = null;
  30603. };
  30604. // Statics
  30605. Texture.CreateFromBase64String = function (data, name, scene, noMipmap, invertY, samplingMode, onLoad, onError, format) {
  30606. if (samplingMode === void 0) { samplingMode = Texture.TRILINEAR_SAMPLINGMODE; }
  30607. if (onLoad === void 0) { onLoad = null; }
  30608. if (onError === void 0) { onError = null; }
  30609. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  30610. return new Texture("data:" + name, scene, noMipmap, invertY, samplingMode, onLoad, onError, data, false, format);
  30611. };
  30612. Texture.Parse = function (parsedTexture, scene, rootUrl) {
  30613. if (parsedTexture.customType) {
  30614. var customTexture = BABYLON.Tools.Instantiate(parsedTexture.customType);
  30615. // Update Sampling Mode
  30616. var parsedCustomTexture = customTexture.Parse(parsedTexture, scene, rootUrl);
  30617. if (parsedTexture.samplingMode && parsedCustomTexture.updateSamplingMode && parsedCustomTexture._samplingMode) {
  30618. if (parsedCustomTexture._samplingMode !== parsedTexture.samplingMode) {
  30619. parsedCustomTexture.updateSamplingMode(parsedTexture.samplingMode);
  30620. }
  30621. }
  30622. return parsedCustomTexture;
  30623. }
  30624. if (parsedTexture.isCube) {
  30625. return BABYLON.CubeTexture.Parse(parsedTexture, scene, rootUrl);
  30626. }
  30627. if (!parsedTexture.name && !parsedTexture.isRenderTarget) {
  30628. return null;
  30629. }
  30630. var texture = BABYLON.SerializationHelper.Parse(function () {
  30631. var generateMipMaps = true;
  30632. if (parsedTexture.noMipmap) {
  30633. generateMipMaps = false;
  30634. }
  30635. if (parsedTexture.mirrorPlane) {
  30636. var mirrorTexture = new BABYLON.MirrorTexture(parsedTexture.name, parsedTexture.renderTargetSize, scene, generateMipMaps);
  30637. mirrorTexture._waitingRenderList = parsedTexture.renderList;
  30638. mirrorTexture.mirrorPlane = BABYLON.Plane.FromArray(parsedTexture.mirrorPlane);
  30639. return mirrorTexture;
  30640. }
  30641. else if (parsedTexture.isRenderTarget) {
  30642. var renderTargetTexture = new BABYLON.RenderTargetTexture(parsedTexture.name, parsedTexture.renderTargetSize, scene, generateMipMaps);
  30643. renderTargetTexture._waitingRenderList = parsedTexture.renderList;
  30644. return renderTargetTexture;
  30645. }
  30646. else {
  30647. var texture;
  30648. if (parsedTexture.base64String) {
  30649. texture = Texture.CreateFromBase64String(parsedTexture.base64String, parsedTexture.name, scene, !generateMipMaps);
  30650. }
  30651. else {
  30652. var url = rootUrl + parsedTexture.name;
  30653. if (Texture.UseSerializedUrlIfAny && parsedTexture.url) {
  30654. url = parsedTexture.url;
  30655. }
  30656. texture = new Texture(url, scene, !generateMipMaps, parsedTexture.invertY);
  30657. }
  30658. return texture;
  30659. }
  30660. }, parsedTexture, scene);
  30661. // Update Sampling Mode
  30662. if (parsedTexture.samplingMode) {
  30663. var sampling = parsedTexture.samplingMode;
  30664. if (texture._samplingMode !== sampling) {
  30665. texture.updateSamplingMode(sampling);
  30666. }
  30667. }
  30668. // Animations
  30669. if (parsedTexture.animations) {
  30670. for (var animationIndex = 0; animationIndex < parsedTexture.animations.length; animationIndex++) {
  30671. var parsedAnimation = parsedTexture.animations[animationIndex];
  30672. texture.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  30673. }
  30674. }
  30675. return texture;
  30676. };
  30677. Texture.LoadFromDataString = function (name, buffer, scene, deleteBuffer, noMipmap, invertY, samplingMode, onLoad, onError, format) {
  30678. if (deleteBuffer === void 0) { deleteBuffer = false; }
  30679. if (noMipmap === void 0) { noMipmap = false; }
  30680. if (invertY === void 0) { invertY = true; }
  30681. if (samplingMode === void 0) { samplingMode = Texture.TRILINEAR_SAMPLINGMODE; }
  30682. if (onLoad === void 0) { onLoad = null; }
  30683. if (onError === void 0) { onError = null; }
  30684. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  30685. if (name.substr(0, 5) !== "data:") {
  30686. name = "data:" + name;
  30687. }
  30688. return new Texture(name, scene, noMipmap, invertY, samplingMode, onLoad, onError, buffer, deleteBuffer, format);
  30689. };
  30690. // Constants
  30691. Texture.NEAREST_SAMPLINGMODE = BABYLON.Engine.TEXTURE_NEAREST_SAMPLINGMODE;
  30692. Texture.NEAREST_NEAREST_MIPLINEAR = BABYLON.Engine.TEXTURE_NEAREST_NEAREST_MIPLINEAR; // nearest is mag = nearest and min = nearest and mip = linear
  30693. Texture.BILINEAR_SAMPLINGMODE = BABYLON.Engine.TEXTURE_BILINEAR_SAMPLINGMODE;
  30694. Texture.LINEAR_LINEAR_MIPNEAREST = BABYLON.Engine.TEXTURE_LINEAR_LINEAR_MIPNEAREST; // Bilinear is mag = linear and min = linear and mip = nearest
  30695. Texture.TRILINEAR_SAMPLINGMODE = BABYLON.Engine.TEXTURE_TRILINEAR_SAMPLINGMODE;
  30696. Texture.LINEAR_LINEAR_MIPLINEAR = BABYLON.Engine.TEXTURE_LINEAR_LINEAR_MIPLINEAR; // Trilinear is mag = linear and min = linear and mip = linear
  30697. Texture.NEAREST_NEAREST_MIPNEAREST = BABYLON.Engine.TEXTURE_NEAREST_NEAREST_MIPNEAREST;
  30698. Texture.NEAREST_LINEAR_MIPNEAREST = BABYLON.Engine.TEXTURE_NEAREST_LINEAR_MIPNEAREST;
  30699. Texture.NEAREST_LINEAR_MIPLINEAR = BABYLON.Engine.TEXTURE_NEAREST_LINEAR_MIPLINEAR;
  30700. Texture.NEAREST_LINEAR = BABYLON.Engine.TEXTURE_NEAREST_LINEAR;
  30701. Texture.NEAREST_NEAREST = BABYLON.Engine.TEXTURE_NEAREST_NEAREST;
  30702. Texture.LINEAR_NEAREST_MIPNEAREST = BABYLON.Engine.TEXTURE_LINEAR_NEAREST_MIPNEAREST;
  30703. Texture.LINEAR_NEAREST_MIPLINEAR = BABYLON.Engine.TEXTURE_LINEAR_NEAREST_MIPLINEAR;
  30704. Texture.LINEAR_LINEAR = BABYLON.Engine.TEXTURE_LINEAR_LINEAR;
  30705. Texture.LINEAR_NEAREST = BABYLON.Engine.TEXTURE_LINEAR_NEAREST;
  30706. Texture.EXPLICIT_MODE = BABYLON.Engine.TEXTURE_EXPLICIT_MODE;
  30707. Texture.SPHERICAL_MODE = BABYLON.Engine.TEXTURE_SPHERICAL_MODE;
  30708. Texture.PLANAR_MODE = BABYLON.Engine.TEXTURE_PLANAR_MODE;
  30709. Texture.CUBIC_MODE = BABYLON.Engine.TEXTURE_CUBIC_MODE;
  30710. Texture.PROJECTION_MODE = BABYLON.Engine.TEXTURE_PROJECTION_MODE;
  30711. Texture.SKYBOX_MODE = BABYLON.Engine.TEXTURE_SKYBOX_MODE;
  30712. Texture.INVCUBIC_MODE = BABYLON.Engine.TEXTURE_INVCUBIC_MODE;
  30713. Texture.EQUIRECTANGULAR_MODE = BABYLON.Engine.TEXTURE_EQUIRECTANGULAR_MODE;
  30714. Texture.FIXED_EQUIRECTANGULAR_MODE = BABYLON.Engine.TEXTURE_FIXED_EQUIRECTANGULAR_MODE;
  30715. Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE = BABYLON.Engine.TEXTURE_FIXED_EQUIRECTANGULAR_MIRRORED_MODE;
  30716. Texture.CLAMP_ADDRESSMODE = BABYLON.Engine.TEXTURE_CLAMP_ADDRESSMODE;
  30717. Texture.WRAP_ADDRESSMODE = BABYLON.Engine.TEXTURE_WRAP_ADDRESSMODE;
  30718. Texture.MIRROR_ADDRESSMODE = BABYLON.Engine.TEXTURE_MIRROR_ADDRESSMODE;
  30719. /**
  30720. * Gets or sets a boolean which defines if the texture url must be build from the serialized URL instead of just using the name and loading them side by side with the scene file
  30721. */
  30722. Texture.UseSerializedUrlIfAny = false;
  30723. __decorate([
  30724. BABYLON.serialize()
  30725. ], Texture.prototype, "url", void 0);
  30726. __decorate([
  30727. BABYLON.serialize()
  30728. ], Texture.prototype, "uOffset", void 0);
  30729. __decorate([
  30730. BABYLON.serialize()
  30731. ], Texture.prototype, "vOffset", void 0);
  30732. __decorate([
  30733. BABYLON.serialize()
  30734. ], Texture.prototype, "uScale", void 0);
  30735. __decorate([
  30736. BABYLON.serialize()
  30737. ], Texture.prototype, "vScale", void 0);
  30738. __decorate([
  30739. BABYLON.serialize()
  30740. ], Texture.prototype, "uAng", void 0);
  30741. __decorate([
  30742. BABYLON.serialize()
  30743. ], Texture.prototype, "vAng", void 0);
  30744. __decorate([
  30745. BABYLON.serialize()
  30746. ], Texture.prototype, "wAng", void 0);
  30747. __decorate([
  30748. BABYLON.serialize()
  30749. ], Texture.prototype, "uRotationCenter", void 0);
  30750. __decorate([
  30751. BABYLON.serialize()
  30752. ], Texture.prototype, "vRotationCenter", void 0);
  30753. __decorate([
  30754. BABYLON.serialize()
  30755. ], Texture.prototype, "wRotationCenter", void 0);
  30756. __decorate([
  30757. BABYLON.serialize()
  30758. ], Texture.prototype, "isBlocking", null);
  30759. return Texture;
  30760. }(BABYLON.BaseTexture));
  30761. BABYLON.Texture = Texture;
  30762. })(BABYLON || (BABYLON = {}));
  30763. //# sourceMappingURL=babylon.texture.js.map
  30764. var BABYLON;
  30765. (function (BABYLON) {
  30766. /**
  30767. * @hidden
  30768. **/
  30769. var _InstancesBatch = /** @class */ (function () {
  30770. function _InstancesBatch() {
  30771. this.mustReturn = false;
  30772. this.visibleInstances = new Array();
  30773. this.renderSelf = new Array();
  30774. }
  30775. return _InstancesBatch;
  30776. }());
  30777. BABYLON._InstancesBatch = _InstancesBatch;
  30778. var Mesh = /** @class */ (function (_super) {
  30779. __extends(Mesh, _super);
  30780. /**
  30781. * @constructor
  30782. * @param {string} name The value used by scene.getMeshByName() to do a lookup.
  30783. * @param {Scene} scene The scene to add this mesh to.
  30784. * @param {Node} parent The parent of this mesh, if it has one
  30785. * @param {Mesh} source An optional Mesh from which geometry is shared, cloned.
  30786. * @param {boolean} doNotCloneChildren When cloning, skip cloning child meshes of source, default False.
  30787. * When false, achieved by calling a clone(), also passing False.
  30788. * This will make creation of children, recursive.
  30789. * @param {boolean} clonePhysicsImpostor When cloning, include cloning mesh physics impostor, default True.
  30790. */
  30791. function Mesh(name, scene, parent, source, doNotCloneChildren, clonePhysicsImpostor) {
  30792. if (scene === void 0) { scene = null; }
  30793. if (parent === void 0) { parent = null; }
  30794. if (source === void 0) { source = null; }
  30795. if (clonePhysicsImpostor === void 0) { clonePhysicsImpostor = true; }
  30796. var _this = _super.call(this, name, scene) || this;
  30797. // Members
  30798. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NONE;
  30799. _this.instances = new Array();
  30800. _this._LODLevels = new Array();
  30801. /** @hidden */
  30802. _this._visibleInstances = {};
  30803. _this._renderIdForInstances = new Array();
  30804. _this._batchCache = new _InstancesBatch();
  30805. _this._instancesBufferSize = 32 * 16 * 4; // let's start with a maximum of 32 instances
  30806. // Use by builder only to know what orientation were the mesh build in.
  30807. /** @hidden */
  30808. _this._originalBuilderSideOrientation = Mesh._DEFAULTSIDE;
  30809. _this.overrideMaterialSideOrientation = null;
  30810. _this._areNormalsFrozen = false; // Will be used by ribbons mainly
  30811. // Will be used to save a source mesh reference, If any
  30812. _this._source = null;
  30813. scene = _this.getScene();
  30814. if (source) {
  30815. // Geometry
  30816. if (source._geometry) {
  30817. source._geometry.applyToMesh(_this);
  30818. }
  30819. // Deep copy
  30820. BABYLON.Tools.DeepCopy(source, _this, ["name", "material", "skeleton", "instances", "parent", "uniqueId",
  30821. "source", "metadata", "hasLODLevels", "geometry", "isBlocked", "areNormalsFrozen",
  30822. "onBeforeDrawObservable", "onBeforeRenderObservable", "onAfterRenderObservable", "onBeforeDraw"
  30823. ], ["_poseMatrix"]);
  30824. // Source mesh
  30825. _this._source = source;
  30826. // Construction Params
  30827. // Clone parameters allowing mesh to be updated in case of parametric shapes.
  30828. _this._originalBuilderSideOrientation = source._originalBuilderSideOrientation;
  30829. var myAnyThis = _this;
  30830. var myAnySource = source;
  30831. myAnyThis._closePath = myAnySource._closePath;
  30832. myAnyThis._idx = myAnySource._idx;
  30833. myAnyThis.dashSize = myAnySource.dashSize;
  30834. myAnyThis.gapSize = myAnySource.gapSize;
  30835. myAnyThis.path3D = myAnySource.path3D;
  30836. myAnyThis.pathArray = myAnySource.pathArray;
  30837. myAnyThis.arc = myAnySource.arc;
  30838. myAnyThis.radius = myAnySource.radius;
  30839. // Animation ranges
  30840. if (_this._source._ranges) {
  30841. var ranges = _this._source._ranges;
  30842. for (var name in ranges) {
  30843. if (!ranges.hasOwnProperty(name)) {
  30844. continue;
  30845. }
  30846. if (!ranges[name]) {
  30847. continue;
  30848. }
  30849. _this.createAnimationRange(name, ranges[name].from, ranges[name].to);
  30850. }
  30851. }
  30852. // Metadata
  30853. if (source.metadata && source.metadata.clone) {
  30854. _this.metadata = source.metadata.clone();
  30855. }
  30856. else {
  30857. _this.metadata = source.metadata;
  30858. }
  30859. // Tags
  30860. if (BABYLON.Tags && BABYLON.Tags.HasTags(source)) {
  30861. BABYLON.Tags.AddTagsTo(_this, BABYLON.Tags.GetTags(source, true));
  30862. }
  30863. // Parent
  30864. _this.parent = source.parent;
  30865. // Pivot
  30866. _this.setPivotMatrix(source.getPivotMatrix());
  30867. _this.id = name + "." + source.id;
  30868. // Material
  30869. _this.material = source.material;
  30870. var index;
  30871. if (!doNotCloneChildren) {
  30872. // Children
  30873. var directDescendants = source.getDescendants(true);
  30874. for (var index_1 = 0; index_1 < directDescendants.length; index_1++) {
  30875. var child = directDescendants[index_1];
  30876. if (child.clone) {
  30877. child.clone(name + "." + child.name, _this);
  30878. }
  30879. }
  30880. }
  30881. // Physics clone
  30882. var physicsEngine = _this.getScene().getPhysicsEngine();
  30883. if (clonePhysicsImpostor && physicsEngine) {
  30884. var impostor = physicsEngine.getImpostorForPhysicsObject(source);
  30885. if (impostor) {
  30886. _this.physicsImpostor = impostor.clone(_this);
  30887. }
  30888. }
  30889. // Particles
  30890. for (index = 0; index < scene.particleSystems.length; index++) {
  30891. var system = scene.particleSystems[index];
  30892. if (system.emitter === source) {
  30893. system.clone(system.name, _this);
  30894. }
  30895. }
  30896. _this.refreshBoundingInfo();
  30897. _this.computeWorldMatrix(true);
  30898. }
  30899. // Parent
  30900. if (parent !== null) {
  30901. _this.parent = parent;
  30902. }
  30903. return _this;
  30904. }
  30905. Object.defineProperty(Mesh, "FRONTSIDE", {
  30906. /**
  30907. * Mesh side orientation : usually the external or front surface
  30908. */
  30909. get: function () {
  30910. return Mesh._FRONTSIDE;
  30911. },
  30912. enumerable: true,
  30913. configurable: true
  30914. });
  30915. Object.defineProperty(Mesh, "BACKSIDE", {
  30916. /**
  30917. * Mesh side orientation : usually the internal or back surface
  30918. */
  30919. get: function () {
  30920. return Mesh._BACKSIDE;
  30921. },
  30922. enumerable: true,
  30923. configurable: true
  30924. });
  30925. Object.defineProperty(Mesh, "DOUBLESIDE", {
  30926. /**
  30927. * Mesh side orientation : both internal and external or front and back surfaces
  30928. */
  30929. get: function () {
  30930. return Mesh._DOUBLESIDE;
  30931. },
  30932. enumerable: true,
  30933. configurable: true
  30934. });
  30935. Object.defineProperty(Mesh, "DEFAULTSIDE", {
  30936. /**
  30937. * Mesh side orientation : by default, `FRONTSIDE`
  30938. */
  30939. get: function () {
  30940. return Mesh._DEFAULTSIDE;
  30941. },
  30942. enumerable: true,
  30943. configurable: true
  30944. });
  30945. Object.defineProperty(Mesh, "NO_CAP", {
  30946. /**
  30947. * Mesh cap setting : no cap
  30948. */
  30949. get: function () {
  30950. return Mesh._NO_CAP;
  30951. },
  30952. enumerable: true,
  30953. configurable: true
  30954. });
  30955. Object.defineProperty(Mesh, "CAP_START", {
  30956. /**
  30957. * Mesh cap setting : one cap at the beginning of the mesh
  30958. */
  30959. get: function () {
  30960. return Mesh._CAP_START;
  30961. },
  30962. enumerable: true,
  30963. configurable: true
  30964. });
  30965. Object.defineProperty(Mesh, "CAP_END", {
  30966. /**
  30967. * Mesh cap setting : one cap at the end of the mesh
  30968. */
  30969. get: function () {
  30970. return Mesh._CAP_END;
  30971. },
  30972. enumerable: true,
  30973. configurable: true
  30974. });
  30975. Object.defineProperty(Mesh, "CAP_ALL", {
  30976. /**
  30977. * Mesh cap setting : two caps, one at the beginning and one at the end of the mesh
  30978. */
  30979. get: function () {
  30980. return Mesh._CAP_ALL;
  30981. },
  30982. enumerable: true,
  30983. configurable: true
  30984. });
  30985. Object.defineProperty(Mesh.prototype, "onBeforeRenderObservable", {
  30986. /**
  30987. * An event triggered before rendering the mesh
  30988. */
  30989. get: function () {
  30990. if (!this._onBeforeRenderObservable) {
  30991. this._onBeforeRenderObservable = new BABYLON.Observable();
  30992. }
  30993. return this._onBeforeRenderObservable;
  30994. },
  30995. enumerable: true,
  30996. configurable: true
  30997. });
  30998. Object.defineProperty(Mesh.prototype, "onAfterRenderObservable", {
  30999. /**
  31000. * An event triggered after rendering the mesh
  31001. */
  31002. get: function () {
  31003. if (!this._onAfterRenderObservable) {
  31004. this._onAfterRenderObservable = new BABYLON.Observable();
  31005. }
  31006. return this._onAfterRenderObservable;
  31007. },
  31008. enumerable: true,
  31009. configurable: true
  31010. });
  31011. Object.defineProperty(Mesh.prototype, "onBeforeDrawObservable", {
  31012. /**
  31013. * An event triggered before drawing the mesh
  31014. */
  31015. get: function () {
  31016. if (!this._onBeforeDrawObservable) {
  31017. this._onBeforeDrawObservable = new BABYLON.Observable();
  31018. }
  31019. return this._onBeforeDrawObservable;
  31020. },
  31021. enumerable: true,
  31022. configurable: true
  31023. });
  31024. Object.defineProperty(Mesh.prototype, "onBeforeDraw", {
  31025. set: function (callback) {
  31026. if (this._onBeforeDrawObserver) {
  31027. this.onBeforeDrawObservable.remove(this._onBeforeDrawObserver);
  31028. }
  31029. this._onBeforeDrawObserver = this.onBeforeDrawObservable.add(callback);
  31030. },
  31031. enumerable: true,
  31032. configurable: true
  31033. });
  31034. Object.defineProperty(Mesh.prototype, "morphTargetManager", {
  31035. get: function () {
  31036. return this._morphTargetManager;
  31037. },
  31038. set: function (value) {
  31039. if (this._morphTargetManager === value) {
  31040. return;
  31041. }
  31042. this._morphTargetManager = value;
  31043. this._syncGeometryWithMorphTargetManager();
  31044. },
  31045. enumerable: true,
  31046. configurable: true
  31047. });
  31048. Object.defineProperty(Mesh.prototype, "source", {
  31049. get: function () {
  31050. return this._source;
  31051. },
  31052. enumerable: true,
  31053. configurable: true
  31054. });
  31055. Object.defineProperty(Mesh.prototype, "isUnIndexed", {
  31056. get: function () {
  31057. return this._unIndexed;
  31058. },
  31059. set: function (value) {
  31060. if (this._unIndexed !== value) {
  31061. this._unIndexed = value;
  31062. this._markSubMeshesAsAttributesDirty();
  31063. }
  31064. },
  31065. enumerable: true,
  31066. configurable: true
  31067. });
  31068. // Methods
  31069. /**
  31070. * Returns the string "Mesh".
  31071. */
  31072. Mesh.prototype.getClassName = function () {
  31073. return "Mesh";
  31074. };
  31075. /**
  31076. * Returns a string.
  31077. * @param {boolean} fullDetails - support for multiple levels of logging within scene loading
  31078. */
  31079. Mesh.prototype.toString = function (fullDetails) {
  31080. var ret = _super.prototype.toString.call(this, fullDetails);
  31081. ret += ", n vertices: " + this.getTotalVertices();
  31082. ret += ", parent: " + (this._waitingParentId ? this._waitingParentId : (this.parent ? this.parent.name : "NONE"));
  31083. if (this.animations) {
  31084. for (var i = 0; i < this.animations.length; i++) {
  31085. ret += ", animation[0]: " + this.animations[i].toString(fullDetails);
  31086. }
  31087. }
  31088. if (fullDetails) {
  31089. if (this._geometry) {
  31090. var ib = this.getIndices();
  31091. var vb = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  31092. if (vb && ib) {
  31093. ret += ", flat shading: " + (vb.length / 3 === ib.length ? "YES" : "NO");
  31094. }
  31095. }
  31096. else {
  31097. ret += ", flat shading: UNKNOWN";
  31098. }
  31099. }
  31100. return ret;
  31101. };
  31102. /** @hidden */
  31103. Mesh.prototype._unBindEffect = function () {
  31104. _super.prototype._unBindEffect.call(this);
  31105. for (var _i = 0, _a = this.instances; _i < _a.length; _i++) {
  31106. var instance = _a[_i];
  31107. instance._unBindEffect();
  31108. }
  31109. };
  31110. Object.defineProperty(Mesh.prototype, "hasLODLevels", {
  31111. /**
  31112. * True if the mesh has some Levels Of Details (LOD).
  31113. * Returns a boolean.
  31114. */
  31115. get: function () {
  31116. return this._LODLevels.length > 0;
  31117. },
  31118. enumerable: true,
  31119. configurable: true
  31120. });
  31121. /**
  31122. * Gets the list of {BABYLON.MeshLODLevel} associated with the current mesh
  31123. * @returns an array of {BABYLON.MeshLODLevel}
  31124. */
  31125. Mesh.prototype.getLODLevels = function () {
  31126. return this._LODLevels;
  31127. };
  31128. Mesh.prototype._sortLODLevels = function () {
  31129. this._LODLevels.sort(function (a, b) {
  31130. if (a.distance < b.distance) {
  31131. return 1;
  31132. }
  31133. if (a.distance > b.distance) {
  31134. return -1;
  31135. }
  31136. return 0;
  31137. });
  31138. };
  31139. /**
  31140. * Add a mesh as LOD level triggered at the given distance.
  31141. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  31142. * @param distance The distance from the center of the object to show this level
  31143. * @param mesh The mesh to be added as LOD level (can be null)
  31144. * @return This mesh (for chaining)
  31145. */
  31146. Mesh.prototype.addLODLevel = function (distance, mesh) {
  31147. if (mesh && mesh._masterMesh) {
  31148. BABYLON.Tools.Warn("You cannot use a mesh as LOD level twice");
  31149. return this;
  31150. }
  31151. var level = new BABYLON.MeshLODLevel(distance, mesh);
  31152. this._LODLevels.push(level);
  31153. if (mesh) {
  31154. mesh._masterMesh = this;
  31155. }
  31156. this._sortLODLevels();
  31157. return this;
  31158. };
  31159. /**
  31160. * Returns the LOD level mesh at the passed distance or null if not found.
  31161. * It is related to the method `addLODLevel(distance, mesh)`.
  31162. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  31163. * Returns an object Mesh or `null`.
  31164. */
  31165. Mesh.prototype.getLODLevelAtDistance = function (distance) {
  31166. for (var index = 0; index < this._LODLevels.length; index++) {
  31167. var level = this._LODLevels[index];
  31168. if (level.distance === distance) {
  31169. return level.mesh;
  31170. }
  31171. }
  31172. return null;
  31173. };
  31174. /**
  31175. * Remove a mesh from the LOD array
  31176. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  31177. * @param {Mesh} mesh The mesh to be removed.
  31178. * @return {Mesh} This mesh (for chaining)
  31179. */
  31180. Mesh.prototype.removeLODLevel = function (mesh) {
  31181. for (var index = 0; index < this._LODLevels.length; index++) {
  31182. if (this._LODLevels[index].mesh === mesh) {
  31183. this._LODLevels.splice(index, 1);
  31184. if (mesh) {
  31185. mesh._masterMesh = null;
  31186. }
  31187. }
  31188. }
  31189. this._sortLODLevels();
  31190. return this;
  31191. };
  31192. /**
  31193. * Returns the registered LOD mesh distant from the parameter `camera` position if any, else returns the current mesh.
  31194. * tuto : http://doc.babylonjs.com/how_to/how_to_use_lod
  31195. */
  31196. Mesh.prototype.getLOD = function (camera, boundingSphere) {
  31197. if (!this._LODLevels || this._LODLevels.length === 0) {
  31198. return this;
  31199. }
  31200. var bSphere;
  31201. if (boundingSphere) {
  31202. bSphere = boundingSphere;
  31203. }
  31204. else {
  31205. var boundingInfo = this.getBoundingInfo();
  31206. bSphere = boundingInfo.boundingSphere;
  31207. }
  31208. var distanceToCamera = bSphere.centerWorld.subtract(camera.globalPosition).length();
  31209. if (this._LODLevels[this._LODLevels.length - 1].distance > distanceToCamera) {
  31210. if (this.onLODLevelSelection) {
  31211. this.onLODLevelSelection(distanceToCamera, this, this._LODLevels[this._LODLevels.length - 1].mesh);
  31212. }
  31213. return this;
  31214. }
  31215. for (var index = 0; index < this._LODLevels.length; index++) {
  31216. var level = this._LODLevels[index];
  31217. if (level.distance < distanceToCamera) {
  31218. if (level.mesh) {
  31219. level.mesh._preActivate();
  31220. level.mesh._updateSubMeshesBoundingInfo(this.worldMatrixFromCache);
  31221. }
  31222. if (this.onLODLevelSelection) {
  31223. this.onLODLevelSelection(distanceToCamera, this, level.mesh);
  31224. }
  31225. return level.mesh;
  31226. }
  31227. }
  31228. if (this.onLODLevelSelection) {
  31229. this.onLODLevelSelection(distanceToCamera, this, this);
  31230. }
  31231. return this;
  31232. };
  31233. Object.defineProperty(Mesh.prototype, "geometry", {
  31234. /**
  31235. * Returns the mesh internal Geometry object.
  31236. */
  31237. get: function () {
  31238. return this._geometry;
  31239. },
  31240. enumerable: true,
  31241. configurable: true
  31242. });
  31243. /**
  31244. * Returns a positive integer : the total number of vertices within the mesh geometry or zero if the mesh has no geometry.
  31245. */
  31246. Mesh.prototype.getTotalVertices = function () {
  31247. if (this._geometry === null || this._geometry === undefined) {
  31248. return 0;
  31249. }
  31250. return this._geometry.getTotalVertices();
  31251. };
  31252. /**
  31253. * Returns an array of integers or floats, or a Float32Array, depending on the requested `kind` (positions, indices, normals, etc).
  31254. * If `copywhenShared` is true (default false) and if the mesh geometry is shared among some other meshes, the returned array is a copy of the internal one.
  31255. * You can force the copy with forceCopy === true
  31256. * Returns null if the mesh has no geometry or no vertex buffer.
  31257. * Possible `kind` values :
  31258. * - BABYLON.VertexBuffer.PositionKind
  31259. * - BABYLON.VertexBuffer.UVKind
  31260. * - BABYLON.VertexBuffer.UV2Kind
  31261. * - BABYLON.VertexBuffer.UV3Kind
  31262. * - BABYLON.VertexBuffer.UV4Kind
  31263. * - BABYLON.VertexBuffer.UV5Kind
  31264. * - BABYLON.VertexBuffer.UV6Kind
  31265. * - BABYLON.VertexBuffer.ColorKind
  31266. * - BABYLON.VertexBuffer.MatricesIndicesKind
  31267. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  31268. * - BABYLON.VertexBuffer.MatricesWeightsKind
  31269. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  31270. */
  31271. Mesh.prototype.getVerticesData = function (kind, copyWhenShared, forceCopy) {
  31272. if (!this._geometry) {
  31273. return null;
  31274. }
  31275. return this._geometry.getVerticesData(kind, copyWhenShared, forceCopy);
  31276. };
  31277. /**
  31278. * Returns the mesh VertexBuffer object from the requested `kind` : positions, indices, normals, etc.
  31279. * Returns `null` if the mesh has no geometry.
  31280. * Possible `kind` values :
  31281. * - BABYLON.VertexBuffer.PositionKind
  31282. * - BABYLON.VertexBuffer.UVKind
  31283. * - BABYLON.VertexBuffer.UV2Kind
  31284. * - BABYLON.VertexBuffer.UV3Kind
  31285. * - BABYLON.VertexBuffer.UV4Kind
  31286. * - BABYLON.VertexBuffer.UV5Kind
  31287. * - BABYLON.VertexBuffer.UV6Kind
  31288. * - BABYLON.VertexBuffer.ColorKind
  31289. * - BABYLON.VertexBuffer.MatricesIndicesKind
  31290. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  31291. * - BABYLON.VertexBuffer.MatricesWeightsKind
  31292. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  31293. */
  31294. Mesh.prototype.getVertexBuffer = function (kind) {
  31295. if (!this._geometry) {
  31296. return null;
  31297. }
  31298. return this._geometry.getVertexBuffer(kind);
  31299. };
  31300. Mesh.prototype.isVerticesDataPresent = function (kind) {
  31301. if (!this._geometry) {
  31302. if (this._delayInfo) {
  31303. return this._delayInfo.indexOf(kind) !== -1;
  31304. }
  31305. return false;
  31306. }
  31307. return this._geometry.isVerticesDataPresent(kind);
  31308. };
  31309. /**
  31310. * Returns a boolean defining if the vertex data for the requested `kind` is updatable.
  31311. * Possible `kind` values :
  31312. * - BABYLON.VertexBuffer.PositionKind
  31313. * - BABYLON.VertexBuffer.UVKind
  31314. * - BABYLON.VertexBuffer.UV2Kind
  31315. * - BABYLON.VertexBuffer.UV3Kind
  31316. * - BABYLON.VertexBuffer.UV4Kind
  31317. * - BABYLON.VertexBuffer.UV5Kind
  31318. * - BABYLON.VertexBuffer.UV6Kind
  31319. * - BABYLON.VertexBuffer.ColorKind
  31320. * - BABYLON.VertexBuffer.MatricesIndicesKind
  31321. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  31322. * - BABYLON.VertexBuffer.MatricesWeightsKind
  31323. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  31324. */
  31325. Mesh.prototype.isVertexBufferUpdatable = function (kind) {
  31326. if (!this._geometry) {
  31327. if (this._delayInfo) {
  31328. return this._delayInfo.indexOf(kind) !== -1;
  31329. }
  31330. return false;
  31331. }
  31332. return this._geometry.isVertexBufferUpdatable(kind);
  31333. };
  31334. /**
  31335. * Returns a string : the list of existing `kinds` of Vertex Data for this mesh.
  31336. * Possible `kind` values :
  31337. * - BABYLON.VertexBuffer.PositionKind
  31338. * - BABYLON.VertexBuffer.UVKind
  31339. * - BABYLON.VertexBuffer.UV2Kind
  31340. * - BABYLON.VertexBuffer.UV3Kind
  31341. * - BABYLON.VertexBuffer.UV4Kind
  31342. * - BABYLON.VertexBuffer.UV5Kind
  31343. * - BABYLON.VertexBuffer.UV6Kind
  31344. * - BABYLON.VertexBuffer.ColorKind
  31345. * - BABYLON.VertexBuffer.MatricesIndicesKind
  31346. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  31347. * - BABYLON.VertexBuffer.MatricesWeightsKind
  31348. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  31349. */
  31350. Mesh.prototype.getVerticesDataKinds = function () {
  31351. if (!this._geometry) {
  31352. var result = new Array();
  31353. if (this._delayInfo) {
  31354. this._delayInfo.forEach(function (kind, index, array) {
  31355. result.push(kind);
  31356. });
  31357. }
  31358. return result;
  31359. }
  31360. return this._geometry.getVerticesDataKinds();
  31361. };
  31362. /**
  31363. * Returns a positive integer : the total number of indices in this mesh geometry.
  31364. * Returns zero if the mesh has no geometry.
  31365. */
  31366. Mesh.prototype.getTotalIndices = function () {
  31367. if (!this._geometry) {
  31368. return 0;
  31369. }
  31370. return this._geometry.getTotalIndices();
  31371. };
  31372. /**
  31373. * Returns an array of integers or a typed array (Int32Array, Uint32Array, Uint16Array) populated with the mesh indices.
  31374. * @param copyWhenShared If true (default false) and and if the mesh geometry is shared among some other meshes, the returned array is a copy of the internal one.
  31375. * @param forceCopy defines a boolean indicating that the returned array must be cloned upon returning it
  31376. * @returns the indices array or an empty array if the mesh has no geometry
  31377. */
  31378. Mesh.prototype.getIndices = function (copyWhenShared, forceCopy) {
  31379. if (!this._geometry) {
  31380. return [];
  31381. }
  31382. return this._geometry.getIndices(copyWhenShared, forceCopy);
  31383. };
  31384. Object.defineProperty(Mesh.prototype, "isBlocked", {
  31385. get: function () {
  31386. return this._masterMesh !== null && this._masterMesh !== undefined;
  31387. },
  31388. enumerable: true,
  31389. configurable: true
  31390. });
  31391. /**
  31392. * Determine if the current mesh is ready to be rendered
  31393. * @param completeCheck defines if a complete check (including materials and lights) has to be done (false by default)
  31394. * @param forceInstanceSupport will check if the mesh will be ready when used with instances (false by default)
  31395. * @returns true if all associated assets are ready (material, textures, shaders)
  31396. */
  31397. Mesh.prototype.isReady = function (completeCheck, forceInstanceSupport) {
  31398. if (completeCheck === void 0) { completeCheck = false; }
  31399. if (forceInstanceSupport === void 0) { forceInstanceSupport = false; }
  31400. if (this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADING) {
  31401. return false;
  31402. }
  31403. if (!_super.prototype.isReady.call(this, completeCheck)) {
  31404. return false;
  31405. }
  31406. if (!this.subMeshes || this.subMeshes.length === 0) {
  31407. return true;
  31408. }
  31409. if (!completeCheck) {
  31410. return true;
  31411. }
  31412. var engine = this.getEngine();
  31413. var scene = this.getScene();
  31414. var hardwareInstancedRendering = forceInstanceSupport || engine.getCaps().instancedArrays && this.instances.length > 0;
  31415. this.computeWorldMatrix();
  31416. var mat = this.material || scene.defaultMaterial;
  31417. if (mat) {
  31418. if (mat.storeEffectOnSubMeshes) {
  31419. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  31420. var subMesh = _a[_i];
  31421. var effectiveMaterial = subMesh.getMaterial();
  31422. if (effectiveMaterial) {
  31423. if (effectiveMaterial.storeEffectOnSubMeshes) {
  31424. if (!effectiveMaterial.isReadyForSubMesh(this, subMesh, hardwareInstancedRendering)) {
  31425. return false;
  31426. }
  31427. }
  31428. else {
  31429. if (!effectiveMaterial.isReady(this, hardwareInstancedRendering)) {
  31430. return false;
  31431. }
  31432. }
  31433. }
  31434. }
  31435. }
  31436. else {
  31437. if (!mat.isReady(this, hardwareInstancedRendering)) {
  31438. return false;
  31439. }
  31440. }
  31441. }
  31442. // Shadows
  31443. for (var _b = 0, _c = this._lightSources; _b < _c.length; _b++) {
  31444. var light = _c[_b];
  31445. var generator = light.getShadowGenerator();
  31446. if (generator) {
  31447. for (var _d = 0, _e = this.subMeshes; _d < _e.length; _d++) {
  31448. var subMesh = _e[_d];
  31449. if (!generator.isReady(subMesh, hardwareInstancedRendering)) {
  31450. return false;
  31451. }
  31452. }
  31453. }
  31454. }
  31455. // LOD
  31456. for (var _f = 0, _g = this._LODLevels; _f < _g.length; _f++) {
  31457. var lod = _g[_f];
  31458. if (lod.mesh && !lod.mesh.isReady(hardwareInstancedRendering)) {
  31459. return false;
  31460. }
  31461. }
  31462. return true;
  31463. };
  31464. Object.defineProperty(Mesh.prototype, "areNormalsFrozen", {
  31465. /**
  31466. * Boolean : true if the normals aren't to be recomputed on next mesh `positions` array update.
  31467. * This property is pertinent only for updatable parametric shapes.
  31468. */
  31469. get: function () {
  31470. return this._areNormalsFrozen;
  31471. },
  31472. enumerable: true,
  31473. configurable: true
  31474. });
  31475. /**
  31476. * This function affects parametric shapes on vertex position update only : ribbons, tubes, etc.
  31477. * It has no effect at all on other shapes.
  31478. * It prevents the mesh normals from being recomputed on next `positions` array update.
  31479. * Returns the Mesh.
  31480. */
  31481. Mesh.prototype.freezeNormals = function () {
  31482. this._areNormalsFrozen = true;
  31483. return this;
  31484. };
  31485. /**
  31486. * This function affects parametric shapes on vertex position update only : ribbons, tubes, etc.
  31487. * It has no effect at all on other shapes.
  31488. * It reactivates the mesh normals computation if it was previously frozen.
  31489. * Returns the Mesh.
  31490. */
  31491. Mesh.prototype.unfreezeNormals = function () {
  31492. this._areNormalsFrozen = false;
  31493. return this;
  31494. };
  31495. Object.defineProperty(Mesh.prototype, "overridenInstanceCount", {
  31496. /**
  31497. * Overrides instance count. Only applicable when custom instanced InterleavedVertexBuffer are used rather than InstancedMeshs
  31498. */
  31499. set: function (count) {
  31500. this._overridenInstanceCount = count;
  31501. },
  31502. enumerable: true,
  31503. configurable: true
  31504. });
  31505. // Methods
  31506. /** @hidden */
  31507. Mesh.prototype._preActivate = function () {
  31508. var sceneRenderId = this.getScene().getRenderId();
  31509. if (this._preActivateId === sceneRenderId) {
  31510. return this;
  31511. }
  31512. this._preActivateId = sceneRenderId;
  31513. this._visibleInstances = null;
  31514. return this;
  31515. };
  31516. /** @hidden */
  31517. Mesh.prototype._preActivateForIntermediateRendering = function (renderId) {
  31518. if (this._visibleInstances) {
  31519. this._visibleInstances.intermediateDefaultRenderId = renderId;
  31520. }
  31521. return this;
  31522. };
  31523. /** @hidden */
  31524. Mesh.prototype._registerInstanceForRenderId = function (instance, renderId) {
  31525. if (!this._visibleInstances) {
  31526. this._visibleInstances = {};
  31527. this._visibleInstances.defaultRenderId = renderId;
  31528. this._visibleInstances.selfDefaultRenderId = this._renderId;
  31529. }
  31530. if (!this._visibleInstances[renderId]) {
  31531. this._visibleInstances[renderId] = new Array();
  31532. }
  31533. this._visibleInstances[renderId].push(instance);
  31534. return this;
  31535. };
  31536. /**
  31537. * This method recomputes and sets a new BoundingInfo to the mesh unless it is locked.
  31538. * This means the mesh underlying bounding box and sphere are recomputed.
  31539. * Returns the Mesh.
  31540. */
  31541. Mesh.prototype.refreshBoundingInfo = function () {
  31542. return this._refreshBoundingInfo(false);
  31543. };
  31544. /** @hidden */
  31545. Mesh.prototype._refreshBoundingInfo = function (applySkeleton) {
  31546. if (this._boundingInfo && this._boundingInfo.isLocked) {
  31547. return this;
  31548. }
  31549. var data = this._getPositionData(applySkeleton);
  31550. if (data) {
  31551. var extend = BABYLON.Tools.ExtractMinAndMax(data, 0, this.getTotalVertices());
  31552. this._boundingInfo = new BABYLON.BoundingInfo(extend.minimum, extend.maximum);
  31553. }
  31554. if (this.subMeshes) {
  31555. for (var index = 0; index < this.subMeshes.length; index++) {
  31556. this.subMeshes[index].refreshBoundingInfo();
  31557. }
  31558. }
  31559. this._updateBoundingInfo();
  31560. return this;
  31561. };
  31562. Mesh.prototype._getPositionData = function (applySkeleton) {
  31563. var data = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  31564. if (data && applySkeleton && this.skeleton) {
  31565. data = BABYLON.Tools.Slice(data);
  31566. var matricesIndicesData = this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind);
  31567. var matricesWeightsData = this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind);
  31568. if (matricesWeightsData && matricesIndicesData) {
  31569. var needExtras = this.numBoneInfluencers > 4;
  31570. var matricesIndicesExtraData = needExtras ? this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind) : null;
  31571. var matricesWeightsExtraData = needExtras ? this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind) : null;
  31572. var skeletonMatrices = this.skeleton.getTransformMatrices(this);
  31573. var tempVector = BABYLON.Tmp.Vector3[0];
  31574. var finalMatrix = BABYLON.Tmp.Matrix[0];
  31575. var tempMatrix = BABYLON.Tmp.Matrix[1];
  31576. var matWeightIdx = 0;
  31577. for (var index = 0; index < data.length; index += 3, matWeightIdx += 4) {
  31578. finalMatrix.reset();
  31579. var inf;
  31580. var weight;
  31581. for (inf = 0; inf < 4; inf++) {
  31582. weight = matricesWeightsData[matWeightIdx + inf];
  31583. if (weight > 0) {
  31584. BABYLON.Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, Math.floor(matricesIndicesData[matWeightIdx + inf] * 16), weight, tempMatrix);
  31585. finalMatrix.addToSelf(tempMatrix);
  31586. }
  31587. }
  31588. if (needExtras) {
  31589. for (inf = 0; inf < 4; inf++) {
  31590. weight = matricesWeightsExtraData[matWeightIdx + inf];
  31591. if (weight > 0) {
  31592. BABYLON.Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, Math.floor(matricesIndicesExtraData[matWeightIdx + inf] * 16), weight, tempMatrix);
  31593. finalMatrix.addToSelf(tempMatrix);
  31594. }
  31595. }
  31596. }
  31597. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(data[index], data[index + 1], data[index + 2], finalMatrix, tempVector);
  31598. tempVector.toArray(data, index);
  31599. }
  31600. }
  31601. }
  31602. return data;
  31603. };
  31604. /** @hidden */
  31605. Mesh.prototype._createGlobalSubMesh = function (force) {
  31606. var totalVertices = this.getTotalVertices();
  31607. if (!totalVertices || !this.getIndices()) {
  31608. return null;
  31609. }
  31610. // Check if we need to recreate the submeshes
  31611. if (this.subMeshes && this.subMeshes.length > 0) {
  31612. var ib = this.getIndices();
  31613. if (!ib) {
  31614. return null;
  31615. }
  31616. var totalIndices = ib.length;
  31617. var needToRecreate = false;
  31618. if (force) {
  31619. needToRecreate = true;
  31620. }
  31621. else {
  31622. for (var _i = 0, _a = this.subMeshes; _i < _a.length; _i++) {
  31623. var submesh = _a[_i];
  31624. if (submesh.indexStart + submesh.indexCount >= totalIndices) {
  31625. needToRecreate = true;
  31626. break;
  31627. }
  31628. if (submesh.verticesStart + submesh.verticesCount >= totalVertices) {
  31629. needToRecreate = true;
  31630. break;
  31631. }
  31632. }
  31633. }
  31634. if (!needToRecreate) {
  31635. return this.subMeshes[0];
  31636. }
  31637. }
  31638. this.releaseSubMeshes();
  31639. return new BABYLON.SubMesh(0, 0, totalVertices, 0, this.getTotalIndices(), this);
  31640. };
  31641. Mesh.prototype.subdivide = function (count) {
  31642. if (count < 1) {
  31643. return;
  31644. }
  31645. var totalIndices = this.getTotalIndices();
  31646. var subdivisionSize = (totalIndices / count) | 0;
  31647. var offset = 0;
  31648. // Ensure that subdivisionSize is a multiple of 3
  31649. while (subdivisionSize % 3 !== 0) {
  31650. subdivisionSize++;
  31651. }
  31652. this.releaseSubMeshes();
  31653. for (var index = 0; index < count; index++) {
  31654. if (offset >= totalIndices) {
  31655. break;
  31656. }
  31657. BABYLON.SubMesh.CreateFromIndices(0, offset, Math.min(subdivisionSize, totalIndices - offset), this);
  31658. offset += subdivisionSize;
  31659. }
  31660. this.synchronizeInstances();
  31661. };
  31662. Mesh.prototype.setVerticesData = function (kind, data, updatable, stride) {
  31663. if (updatable === void 0) { updatable = false; }
  31664. if (!this._geometry) {
  31665. var vertexData = new BABYLON.VertexData();
  31666. vertexData.set(data, kind);
  31667. var scene = this.getScene();
  31668. new BABYLON.Geometry(BABYLON.Geometry.RandomId(), scene, vertexData, updatable, this);
  31669. }
  31670. else {
  31671. this._geometry.setVerticesData(kind, data, updatable, stride);
  31672. }
  31673. return this;
  31674. };
  31675. Mesh.prototype.markVerticesDataAsUpdatable = function (kind, updatable) {
  31676. if (updatable === void 0) { updatable = true; }
  31677. var vb = this.getVertexBuffer(kind);
  31678. if (!vb || vb.isUpdatable() === updatable) {
  31679. return;
  31680. }
  31681. this.setVerticesData(kind, this.getVerticesData(kind), updatable);
  31682. };
  31683. /**
  31684. * Sets the mesh VertexBuffer.
  31685. * Returns the Mesh.
  31686. */
  31687. Mesh.prototype.setVerticesBuffer = function (buffer) {
  31688. if (!this._geometry) {
  31689. this._geometry = BABYLON.Geometry.CreateGeometryForMesh(this);
  31690. }
  31691. this._geometry.setVerticesBuffer(buffer);
  31692. return this;
  31693. };
  31694. Mesh.prototype.updateVerticesData = function (kind, data, updateExtends, makeItUnique) {
  31695. if (!this._geometry) {
  31696. return this;
  31697. }
  31698. if (!makeItUnique) {
  31699. this._geometry.updateVerticesData(kind, data, updateExtends);
  31700. }
  31701. else {
  31702. this.makeGeometryUnique();
  31703. this.updateVerticesData(kind, data, updateExtends, false);
  31704. }
  31705. return this;
  31706. };
  31707. /**
  31708. * This method updates the vertex positions of an updatable mesh according to the `positionFunction` returned values.
  31709. * tuto : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#other-shapes-updatemeshpositions
  31710. * The parameter `positionFunction` is a simple JS function what is passed the mesh `positions` array. It doesn't need to return anything.
  31711. * The parameter `computeNormals` is a boolean (default true) to enable/disable the mesh normal recomputation after the vertex position update.
  31712. * Returns the Mesh.
  31713. */
  31714. Mesh.prototype.updateMeshPositions = function (positionFunction, computeNormals) {
  31715. if (computeNormals === void 0) { computeNormals = true; }
  31716. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  31717. if (!positions) {
  31718. return this;
  31719. }
  31720. positionFunction(positions);
  31721. this.updateVerticesData(BABYLON.VertexBuffer.PositionKind, positions, false, false);
  31722. if (computeNormals) {
  31723. var indices = this.getIndices();
  31724. var normals = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  31725. if (!normals) {
  31726. return this;
  31727. }
  31728. BABYLON.VertexData.ComputeNormals(positions, indices, normals);
  31729. this.updateVerticesData(BABYLON.VertexBuffer.NormalKind, normals, false, false);
  31730. }
  31731. return this;
  31732. };
  31733. /**
  31734. * Creates a un-shared specific occurence of the geometry for the mesh.
  31735. * Returns the Mesh.
  31736. */
  31737. Mesh.prototype.makeGeometryUnique = function () {
  31738. if (!this._geometry) {
  31739. return this;
  31740. }
  31741. var oldGeometry = this._geometry;
  31742. var geometry = this._geometry.copy(BABYLON.Geometry.RandomId());
  31743. oldGeometry.releaseForMesh(this, true);
  31744. geometry.applyToMesh(this);
  31745. return this;
  31746. };
  31747. Mesh.prototype.setIndices = function (indices, totalVertices, updatable) {
  31748. if (totalVertices === void 0) { totalVertices = null; }
  31749. if (updatable === void 0) { updatable = false; }
  31750. if (!this._geometry) {
  31751. var vertexData = new BABYLON.VertexData();
  31752. vertexData.indices = indices;
  31753. var scene = this.getScene();
  31754. new BABYLON.Geometry(BABYLON.Geometry.RandomId(), scene, vertexData, updatable, this);
  31755. }
  31756. else {
  31757. this._geometry.setIndices(indices, totalVertices, updatable);
  31758. }
  31759. return this;
  31760. };
  31761. /**
  31762. * Update the current index buffer
  31763. * Expects an array populated with integers or a typed array (Int32Array, Uint32Array, Uint16Array)
  31764. * Returns the Mesh.
  31765. */
  31766. Mesh.prototype.updateIndices = function (indices, offset) {
  31767. if (!this._geometry) {
  31768. return this;
  31769. }
  31770. this._geometry.updateIndices(indices, offset);
  31771. return this;
  31772. };
  31773. /**
  31774. * Invert the geometry to move from a right handed system to a left handed one.
  31775. * Returns the Mesh.
  31776. */
  31777. Mesh.prototype.toLeftHanded = function () {
  31778. if (!this._geometry) {
  31779. return this;
  31780. }
  31781. this._geometry.toLeftHanded();
  31782. return this;
  31783. };
  31784. /** @hidden */
  31785. Mesh.prototype._bind = function (subMesh, effect, fillMode) {
  31786. if (!this._geometry) {
  31787. return this;
  31788. }
  31789. var engine = this.getScene().getEngine();
  31790. // Wireframe
  31791. var indexToBind;
  31792. if (this._unIndexed) {
  31793. indexToBind = null;
  31794. }
  31795. else {
  31796. switch (fillMode) {
  31797. case BABYLON.Material.PointFillMode:
  31798. indexToBind = null;
  31799. break;
  31800. case BABYLON.Material.WireFrameFillMode:
  31801. indexToBind = subMesh.getLinesIndexBuffer(this.getIndices(), engine);
  31802. break;
  31803. default:
  31804. case BABYLON.Material.TriangleFillMode:
  31805. indexToBind = this._unIndexed ? null : this._geometry.getIndexBuffer();
  31806. break;
  31807. }
  31808. }
  31809. // VBOs
  31810. this._geometry._bind(effect, indexToBind);
  31811. return this;
  31812. };
  31813. /** @hidden */
  31814. Mesh.prototype._draw = function (subMesh, fillMode, instancesCount, alternate) {
  31815. if (alternate === void 0) { alternate = false; }
  31816. if (!this._geometry || !this._geometry.getVertexBuffers() || (!this._unIndexed && !this._geometry.getIndexBuffer())) {
  31817. return this;
  31818. }
  31819. if (this._onBeforeDrawObservable) {
  31820. this._onBeforeDrawObservable.notifyObservers(this);
  31821. }
  31822. var scene = this.getScene();
  31823. var engine = scene.getEngine();
  31824. if (this._unIndexed || fillMode == BABYLON.Material.PointFillMode) {
  31825. // or triangles as points
  31826. engine.drawArraysType(fillMode, subMesh.verticesStart, subMesh.verticesCount, instancesCount);
  31827. }
  31828. else if (fillMode == BABYLON.Material.WireFrameFillMode) {
  31829. // Triangles as wireframe
  31830. engine.drawElementsType(fillMode, 0, subMesh.linesIndexCount, instancesCount);
  31831. }
  31832. else {
  31833. engine.drawElementsType(fillMode, subMesh.indexStart, subMesh.indexCount, instancesCount);
  31834. }
  31835. if (scene._isAlternateRenderingEnabled && !alternate) {
  31836. var effect = subMesh.effect || this._effectiveMaterial.getEffect();
  31837. if (!effect || !scene.activeCamera) {
  31838. return this;
  31839. }
  31840. scene._switchToAlternateCameraConfiguration(true);
  31841. this._effectiveMaterial.bindView(effect);
  31842. this._effectiveMaterial.bindViewProjection(effect);
  31843. engine.setViewport(scene.activeCamera._alternateCamera.viewport);
  31844. this._draw(subMesh, fillMode, instancesCount, true);
  31845. engine.setViewport(scene.activeCamera.viewport);
  31846. scene._switchToAlternateCameraConfiguration(false);
  31847. this._effectiveMaterial.bindView(effect);
  31848. this._effectiveMaterial.bindViewProjection(effect);
  31849. }
  31850. return this;
  31851. };
  31852. /**
  31853. * Registers for this mesh a javascript function called just before the rendering process.
  31854. * This function is passed the current mesh.
  31855. * Return the Mesh.
  31856. */
  31857. Mesh.prototype.registerBeforeRender = function (func) {
  31858. this.onBeforeRenderObservable.add(func);
  31859. return this;
  31860. };
  31861. /**
  31862. * Disposes a previously registered javascript function called before the rendering.
  31863. * This function is passed the current mesh.
  31864. * Returns the Mesh.
  31865. */
  31866. Mesh.prototype.unregisterBeforeRender = function (func) {
  31867. this.onBeforeRenderObservable.removeCallback(func);
  31868. return this;
  31869. };
  31870. /**
  31871. * Registers for this mesh a javascript function called just after the rendering is complete.
  31872. * This function is passed the current mesh.
  31873. * Returns the Mesh.
  31874. */
  31875. Mesh.prototype.registerAfterRender = function (func) {
  31876. this.onAfterRenderObservable.add(func);
  31877. return this;
  31878. };
  31879. /**
  31880. * Disposes a previously registered javascript function called after the rendering.
  31881. * This function is passed the current mesh.
  31882. * Return the Mesh.
  31883. */
  31884. Mesh.prototype.unregisterAfterRender = function (func) {
  31885. this.onAfterRenderObservable.removeCallback(func);
  31886. return this;
  31887. };
  31888. /** @hidden */
  31889. Mesh.prototype._getInstancesRenderList = function (subMeshId) {
  31890. var scene = this.getScene();
  31891. this._batchCache.mustReturn = false;
  31892. this._batchCache.renderSelf[subMeshId] = this.isEnabled() && this.isVisible;
  31893. this._batchCache.visibleInstances[subMeshId] = null;
  31894. if (this._visibleInstances) {
  31895. var currentRenderId = scene.getRenderId();
  31896. var defaultRenderId = (scene._isInIntermediateRendering() ? this._visibleInstances.intermediateDefaultRenderId : this._visibleInstances.defaultRenderId);
  31897. this._batchCache.visibleInstances[subMeshId] = this._visibleInstances[currentRenderId];
  31898. var selfRenderId = this._renderId;
  31899. if (!this._batchCache.visibleInstances[subMeshId] && defaultRenderId) {
  31900. this._batchCache.visibleInstances[subMeshId] = this._visibleInstances[defaultRenderId];
  31901. currentRenderId = Math.max(defaultRenderId, currentRenderId);
  31902. selfRenderId = Math.max(this._visibleInstances.selfDefaultRenderId, currentRenderId);
  31903. }
  31904. var visibleInstancesForSubMesh = this._batchCache.visibleInstances[subMeshId];
  31905. if (visibleInstancesForSubMesh && visibleInstancesForSubMesh.length) {
  31906. if (this._renderIdForInstances[subMeshId] === currentRenderId) {
  31907. this._batchCache.mustReturn = true;
  31908. return this._batchCache;
  31909. }
  31910. if (currentRenderId !== selfRenderId) {
  31911. this._batchCache.renderSelf[subMeshId] = false;
  31912. }
  31913. }
  31914. this._renderIdForInstances[subMeshId] = currentRenderId;
  31915. }
  31916. return this._batchCache;
  31917. };
  31918. /** @hidden */
  31919. Mesh.prototype._renderWithInstances = function (subMesh, fillMode, batch, effect, engine) {
  31920. var visibleInstances = batch.visibleInstances[subMesh._id];
  31921. if (!visibleInstances) {
  31922. return this;
  31923. }
  31924. var matricesCount = visibleInstances.length + 1;
  31925. var bufferSize = matricesCount * 16 * 4;
  31926. var currentInstancesBufferSize = this._instancesBufferSize;
  31927. var instancesBuffer = this._instancesBuffer;
  31928. while (this._instancesBufferSize < bufferSize) {
  31929. this._instancesBufferSize *= 2;
  31930. }
  31931. if (!this._instancesData || currentInstancesBufferSize != this._instancesBufferSize) {
  31932. this._instancesData = new Float32Array(this._instancesBufferSize / 4);
  31933. }
  31934. var offset = 0;
  31935. var instancesCount = 0;
  31936. var world = this.getWorldMatrix();
  31937. if (batch.renderSelf[subMesh._id]) {
  31938. world.copyToArray(this._instancesData, offset);
  31939. offset += 16;
  31940. instancesCount++;
  31941. }
  31942. if (visibleInstances) {
  31943. for (var instanceIndex = 0; instanceIndex < visibleInstances.length; instanceIndex++) {
  31944. var instance = visibleInstances[instanceIndex];
  31945. instance.getWorldMatrix().copyToArray(this._instancesData, offset);
  31946. offset += 16;
  31947. instancesCount++;
  31948. }
  31949. }
  31950. if (!instancesBuffer || currentInstancesBufferSize != this._instancesBufferSize) {
  31951. if (instancesBuffer) {
  31952. instancesBuffer.dispose();
  31953. }
  31954. instancesBuffer = new BABYLON.Buffer(engine, this._instancesData, true, 16, false, true);
  31955. this._instancesBuffer = instancesBuffer;
  31956. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world0", 0, 4));
  31957. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world1", 4, 4));
  31958. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world2", 8, 4));
  31959. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world3", 12, 4));
  31960. }
  31961. else {
  31962. instancesBuffer.updateDirectly(this._instancesData, 0, instancesCount);
  31963. }
  31964. this._bind(subMesh, effect, fillMode);
  31965. this._draw(subMesh, fillMode, instancesCount);
  31966. engine.unbindInstanceAttributes();
  31967. return this;
  31968. };
  31969. /** @hidden */
  31970. Mesh.prototype._processRendering = function (subMesh, effect, fillMode, batch, hardwareInstancedRendering, onBeforeDraw, effectiveMaterial) {
  31971. var scene = this.getScene();
  31972. var engine = scene.getEngine();
  31973. if (hardwareInstancedRendering) {
  31974. this._renderWithInstances(subMesh, fillMode, batch, effect, engine);
  31975. }
  31976. else {
  31977. if (batch.renderSelf[subMesh._id]) {
  31978. // Draw
  31979. if (onBeforeDraw) {
  31980. onBeforeDraw(false, this.getWorldMatrix(), effectiveMaterial);
  31981. }
  31982. this._draw(subMesh, fillMode, this._overridenInstanceCount);
  31983. }
  31984. var visibleInstancesForSubMesh = batch.visibleInstances[subMesh._id];
  31985. if (visibleInstancesForSubMesh) {
  31986. for (var instanceIndex = 0; instanceIndex < visibleInstancesForSubMesh.length; instanceIndex++) {
  31987. var instance = visibleInstancesForSubMesh[instanceIndex];
  31988. // World
  31989. var world = instance.getWorldMatrix();
  31990. if (onBeforeDraw) {
  31991. onBeforeDraw(true, world, effectiveMaterial);
  31992. }
  31993. // Draw
  31994. this._draw(subMesh, fillMode);
  31995. }
  31996. }
  31997. }
  31998. return this;
  31999. };
  32000. /**
  32001. * Triggers the draw call for the mesh. Usually, you don't need to call this method by your own because the mesh rendering is handled by the scene rendering manager
  32002. * @param subMesh defines the subMesh to render
  32003. * @param enableAlphaMode defines if alpha mode can be changed
  32004. * @returns the current mesh
  32005. */
  32006. Mesh.prototype.render = function (subMesh, enableAlphaMode) {
  32007. this._checkOcclusionQuery();
  32008. if (this._isOccluded) {
  32009. return this;
  32010. }
  32011. var scene = this.getScene();
  32012. // Managing instances
  32013. var batch = this._getInstancesRenderList(subMesh._id);
  32014. if (batch.mustReturn) {
  32015. return this;
  32016. }
  32017. // Checking geometry state
  32018. if (!this._geometry || !this._geometry.getVertexBuffers() || (!this._unIndexed && !this._geometry.getIndexBuffer())) {
  32019. return this;
  32020. }
  32021. if (this._onBeforeRenderObservable) {
  32022. this._onBeforeRenderObservable.notifyObservers(this);
  32023. }
  32024. var engine = scene.getEngine();
  32025. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null) && (batch.visibleInstances[subMesh._id] !== undefined);
  32026. // Material
  32027. var material = subMesh.getMaterial();
  32028. if (!material) {
  32029. return this;
  32030. }
  32031. this._effectiveMaterial = material;
  32032. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  32033. if (!this._effectiveMaterial.isReadyForSubMesh(this, subMesh, hardwareInstancedRendering)) {
  32034. return this;
  32035. }
  32036. }
  32037. else if (!this._effectiveMaterial.isReady(this, hardwareInstancedRendering)) {
  32038. return this;
  32039. }
  32040. // Alpha mode
  32041. if (enableAlphaMode) {
  32042. engine.setAlphaMode(this._effectiveMaterial.alphaMode);
  32043. }
  32044. for (var _i = 0, _a = scene._beforeRenderingMeshStage; _i < _a.length; _i++) {
  32045. var step = _a[_i];
  32046. step.action(this, subMesh, batch);
  32047. }
  32048. var effect;
  32049. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  32050. effect = subMesh.effect;
  32051. }
  32052. else {
  32053. effect = this._effectiveMaterial.getEffect();
  32054. }
  32055. if (!effect) {
  32056. return this;
  32057. }
  32058. var sideOrientation = this.overrideMaterialSideOrientation;
  32059. if (sideOrientation == null) {
  32060. sideOrientation = this._effectiveMaterial.sideOrientation;
  32061. if (this._getWorldMatrixDeterminant() < 0) {
  32062. sideOrientation = (sideOrientation === BABYLON.Material.ClockWiseSideOrientation ? BABYLON.Material.CounterClockWiseSideOrientation : BABYLON.Material.ClockWiseSideOrientation);
  32063. }
  32064. }
  32065. var reverse = this._effectiveMaterial._preBind(effect, sideOrientation);
  32066. if (this._effectiveMaterial.forceDepthWrite) {
  32067. engine.setDepthWrite(true);
  32068. }
  32069. // Bind
  32070. var fillMode = scene.forcePointsCloud ? BABYLON.Material.PointFillMode : (scene.forceWireframe ? BABYLON.Material.WireFrameFillMode : this._effectiveMaterial.fillMode);
  32071. if (!hardwareInstancedRendering) { // Binding will be done later because we need to add more info to the VB
  32072. this._bind(subMesh, effect, fillMode);
  32073. }
  32074. var world = this.getWorldMatrix();
  32075. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  32076. this._effectiveMaterial.bindForSubMesh(world, this, subMesh);
  32077. }
  32078. else {
  32079. this._effectiveMaterial.bind(world, this);
  32080. }
  32081. if (!this._effectiveMaterial.backFaceCulling && this._effectiveMaterial.separateCullingPass) {
  32082. engine.setState(true, this._effectiveMaterial.zOffset, false, !reverse);
  32083. this._processRendering(subMesh, effect, fillMode, batch, hardwareInstancedRendering, this._onBeforeDraw, this._effectiveMaterial);
  32084. engine.setState(true, this._effectiveMaterial.zOffset, false, reverse);
  32085. }
  32086. // Draw
  32087. this._processRendering(subMesh, effect, fillMode, batch, hardwareInstancedRendering, this._onBeforeDraw, this._effectiveMaterial);
  32088. // Unbind
  32089. this._effectiveMaterial.unbind();
  32090. for (var _b = 0, _c = scene._afterRenderingMeshStage; _b < _c.length; _b++) {
  32091. var step = _c[_b];
  32092. step.action(this, subMesh, batch);
  32093. }
  32094. if (this._onAfterRenderObservable) {
  32095. this._onAfterRenderObservable.notifyObservers(this);
  32096. }
  32097. return this;
  32098. };
  32099. Mesh.prototype._onBeforeDraw = function (isInstance, world, effectiveMaterial) {
  32100. if (isInstance && effectiveMaterial) {
  32101. effectiveMaterial.bindOnlyWorldMatrix(world);
  32102. }
  32103. };
  32104. /**
  32105. * Returns an array populated with IParticleSystem objects whose the mesh is the emitter.
  32106. */
  32107. Mesh.prototype.getEmittedParticleSystems = function () {
  32108. var results = new Array();
  32109. for (var index = 0; index < this.getScene().particleSystems.length; index++) {
  32110. var particleSystem = this.getScene().particleSystems[index];
  32111. if (particleSystem.emitter === this) {
  32112. results.push(particleSystem);
  32113. }
  32114. }
  32115. return results;
  32116. };
  32117. /**
  32118. * Returns an array populated with IParticleSystem objects whose the mesh or its children are the emitter.
  32119. */
  32120. Mesh.prototype.getHierarchyEmittedParticleSystems = function () {
  32121. var results = new Array();
  32122. var descendants = this.getDescendants();
  32123. descendants.push(this);
  32124. for (var index = 0; index < this.getScene().particleSystems.length; index++) {
  32125. var particleSystem = this.getScene().particleSystems[index];
  32126. var emitter = particleSystem.emitter;
  32127. if (emitter.position && descendants.indexOf(emitter) !== -1) {
  32128. results.push(particleSystem);
  32129. }
  32130. }
  32131. return results;
  32132. };
  32133. /**
  32134. * Normalize matrix weights so that all vertices have a total weight set to 1
  32135. */
  32136. Mesh.prototype.cleanMatrixWeights = function () {
  32137. var epsilon = 1e-3;
  32138. var noInfluenceBoneIndex = 0.0;
  32139. if (this.skeleton) {
  32140. noInfluenceBoneIndex = this.skeleton.bones.length;
  32141. }
  32142. else {
  32143. return;
  32144. }
  32145. var matricesIndices = this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind);
  32146. var matricesIndicesExtra = this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  32147. var matricesWeights = this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind);
  32148. var matricesWeightsExtra = this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  32149. var influencers = this.numBoneInfluencers;
  32150. var size = matricesWeights.length;
  32151. for (var i = 0; i < size; i += 4) {
  32152. var weight = 0.0;
  32153. var firstZeroWeight = -1;
  32154. for (var j = 0; j < 4; j++) {
  32155. var w = matricesWeights[i + j];
  32156. weight += w;
  32157. if (w < epsilon && firstZeroWeight < 0) {
  32158. firstZeroWeight = j;
  32159. }
  32160. }
  32161. if (matricesWeightsExtra) {
  32162. for (var j = 0; j < 4; j++) {
  32163. var w = matricesWeightsExtra[i + j];
  32164. weight += w;
  32165. if (w < epsilon && firstZeroWeight < 0) {
  32166. firstZeroWeight = j + 4;
  32167. }
  32168. }
  32169. }
  32170. if (firstZeroWeight < 0 || firstZeroWeight > (influencers - 1)) {
  32171. firstZeroWeight = influencers - 1;
  32172. }
  32173. if (weight > epsilon) {
  32174. var mweight = 1.0 / weight;
  32175. for (var j = 0; j < 4; j++) {
  32176. matricesWeights[i + j] *= mweight;
  32177. }
  32178. if (matricesWeightsExtra) {
  32179. for (var j = 0; j < 4; j++) {
  32180. matricesWeightsExtra[i + j] *= mweight;
  32181. }
  32182. }
  32183. }
  32184. else {
  32185. if (firstZeroWeight >= 4) {
  32186. matricesWeightsExtra[i + firstZeroWeight - 4] = 1.0 - weight;
  32187. matricesIndicesExtra[i + firstZeroWeight - 4] = noInfluenceBoneIndex;
  32188. }
  32189. else {
  32190. matricesWeights[i + firstZeroWeight] = 1.0 - weight;
  32191. matricesIndices[i + firstZeroWeight] = noInfluenceBoneIndex;
  32192. }
  32193. }
  32194. }
  32195. this.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, matricesIndices);
  32196. if (matricesIndicesExtra) {
  32197. this.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, matricesIndicesExtra);
  32198. }
  32199. this.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, matricesWeights);
  32200. if (matricesWeightsExtra) {
  32201. this.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind, matricesWeightsExtra);
  32202. }
  32203. };
  32204. /** @hidden */
  32205. Mesh.prototype._checkDelayState = function () {
  32206. var scene = this.getScene();
  32207. if (this._geometry) {
  32208. this._geometry.load(scene);
  32209. }
  32210. else if (this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  32211. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADING;
  32212. this._queueLoad(scene);
  32213. }
  32214. return this;
  32215. };
  32216. Mesh.prototype._queueLoad = function (scene) {
  32217. var _this = this;
  32218. scene._addPendingData(this);
  32219. var getBinaryData = (this.delayLoadingFile.indexOf(".babylonbinarymeshdata") !== -1);
  32220. BABYLON.Tools.LoadFile(this.delayLoadingFile, function (data) {
  32221. if (data instanceof ArrayBuffer) {
  32222. _this._delayLoadingFunction(data, _this);
  32223. }
  32224. else {
  32225. _this._delayLoadingFunction(JSON.parse(data), _this);
  32226. }
  32227. _this.instances.forEach(function (instance) {
  32228. instance._syncSubMeshes();
  32229. });
  32230. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  32231. scene._removePendingData(_this);
  32232. }, function () { }, scene.database, getBinaryData);
  32233. return this;
  32234. };
  32235. /**
  32236. * Returns `true` if the mesh is within the frustum defined by the passed array of planes.
  32237. * A mesh is in the frustum if its bounding box intersects the frustum
  32238. * @param frustumPlanes defines the frustum to test
  32239. * @returns true if the mesh is in the frustum planes
  32240. */
  32241. Mesh.prototype.isInFrustum = function (frustumPlanes) {
  32242. if (this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADING) {
  32243. return false;
  32244. }
  32245. if (!_super.prototype.isInFrustum.call(this, frustumPlanes)) {
  32246. return false;
  32247. }
  32248. this._checkDelayState();
  32249. return true;
  32250. };
  32251. /**
  32252. * Sets the mesh material by the material or multiMaterial `id` property.
  32253. * The material `id` is a string identifying the material or the multiMaterial.
  32254. * This method returns the Mesh.
  32255. */
  32256. Mesh.prototype.setMaterialByID = function (id) {
  32257. var materials = this.getScene().materials;
  32258. var index;
  32259. for (index = materials.length - 1; index > -1; index--) {
  32260. if (materials[index].id === id) {
  32261. this.material = materials[index];
  32262. return this;
  32263. }
  32264. }
  32265. // Multi
  32266. var multiMaterials = this.getScene().multiMaterials;
  32267. for (index = multiMaterials.length - 1; index > -1; index--) {
  32268. if (multiMaterials[index].id === id) {
  32269. this.material = multiMaterials[index];
  32270. return this;
  32271. }
  32272. }
  32273. return this;
  32274. };
  32275. /**
  32276. * Returns as a new array populated with the mesh material and/or skeleton, if any.
  32277. */
  32278. Mesh.prototype.getAnimatables = function () {
  32279. var results = new Array();
  32280. if (this.material) {
  32281. results.push(this.material);
  32282. }
  32283. if (this.skeleton) {
  32284. results.push(this.skeleton);
  32285. }
  32286. return results;
  32287. };
  32288. /**
  32289. * Modifies the mesh geometry according to the passed transformation matrix.
  32290. * This method returns nothing but it really modifies the mesh even if it's originally not set as updatable.
  32291. * The mesh normals are modified using the same transformation.
  32292. * tuto : http://doc.babylonjs.com/resources/baking_transformations
  32293. * Note that, under the hood, this method sets a new VertexBuffer each call.
  32294. * Returns the Mesh.
  32295. */
  32296. Mesh.prototype.bakeTransformIntoVertices = function (transform) {
  32297. // Position
  32298. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind)) {
  32299. return this;
  32300. }
  32301. var submeshes = this.subMeshes.splice(0);
  32302. this._resetPointsArrayCache();
  32303. var data = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  32304. var temp = new Array();
  32305. var index;
  32306. for (index = 0; index < data.length; index += 3) {
  32307. BABYLON.Vector3.TransformCoordinates(BABYLON.Vector3.FromArray(data, index), transform).toArray(temp, index);
  32308. }
  32309. this.setVerticesData(BABYLON.VertexBuffer.PositionKind, temp, this.getVertexBuffer(BABYLON.VertexBuffer.PositionKind).isUpdatable());
  32310. // Normals
  32311. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  32312. data = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  32313. temp = [];
  32314. for (index = 0; index < data.length; index += 3) {
  32315. BABYLON.Vector3.TransformNormal(BABYLON.Vector3.FromArray(data, index), transform).normalize().toArray(temp, index);
  32316. }
  32317. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, temp, this.getVertexBuffer(BABYLON.VertexBuffer.NormalKind).isUpdatable());
  32318. }
  32319. // flip faces?
  32320. if (transform.m[0] * transform.m[5] * transform.m[10] < 0) {
  32321. this.flipFaces();
  32322. }
  32323. // Restore submeshes
  32324. this.releaseSubMeshes();
  32325. this.subMeshes = submeshes;
  32326. return this;
  32327. };
  32328. /**
  32329. * Modifies the mesh geometry according to its own current World Matrix.
  32330. * The mesh World Matrix is then reset.
  32331. * This method returns nothing but really modifies the mesh even if it's originally not set as updatable.
  32332. * tuto : tuto : http://doc.babylonjs.com/resources/baking_transformations
  32333. * Note that, under the hood, this method sets a new VertexBuffer each call.
  32334. * Returns the Mesh.
  32335. */
  32336. Mesh.prototype.bakeCurrentTransformIntoVertices = function () {
  32337. this.bakeTransformIntoVertices(this.computeWorldMatrix(true));
  32338. this.scaling.copyFromFloats(1, 1, 1);
  32339. this.position.copyFromFloats(0, 0, 0);
  32340. this.rotation.copyFromFloats(0, 0, 0);
  32341. //only if quaternion is already set
  32342. if (this.rotationQuaternion) {
  32343. this.rotationQuaternion = BABYLON.Quaternion.Identity();
  32344. }
  32345. this._worldMatrix = BABYLON.Matrix.Identity();
  32346. return this;
  32347. };
  32348. Object.defineProperty(Mesh.prototype, "_positions", {
  32349. // Cache
  32350. get: function () {
  32351. if (this._geometry) {
  32352. return this._geometry._positions;
  32353. }
  32354. return null;
  32355. },
  32356. enumerable: true,
  32357. configurable: true
  32358. });
  32359. /** @hidden */
  32360. Mesh.prototype._resetPointsArrayCache = function () {
  32361. if (this._geometry) {
  32362. this._geometry._resetPointsArrayCache();
  32363. }
  32364. return this;
  32365. };
  32366. /** @hidden */
  32367. Mesh.prototype._generatePointsArray = function () {
  32368. if (this._geometry) {
  32369. return this._geometry._generatePointsArray();
  32370. }
  32371. return false;
  32372. };
  32373. /**
  32374. * Returns a new Mesh object generated from the current mesh properties.
  32375. * This method must not get confused with createInstance().
  32376. * The parameter `name` is a string, the name given to the new mesh.
  32377. * The optional parameter `newParent` can be any Node object (default `null`).
  32378. * The optional parameter `doNotCloneChildren` (default `false`) allows/denies the recursive cloning of the original mesh children if any.
  32379. * The parameter `clonePhysicsImpostor` (default `true`) allows/denies the cloning in the same time of the original mesh `body` used by the physics engine, if any.
  32380. */
  32381. Mesh.prototype.clone = function (name, newParent, doNotCloneChildren, clonePhysicsImpostor) {
  32382. if (name === void 0) { name = ""; }
  32383. if (clonePhysicsImpostor === void 0) { clonePhysicsImpostor = true; }
  32384. return new Mesh(name, this.getScene(), newParent, this, doNotCloneChildren, clonePhysicsImpostor);
  32385. };
  32386. /**
  32387. * Releases resources associated with this mesh.
  32388. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  32389. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  32390. */
  32391. Mesh.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  32392. var _this = this;
  32393. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  32394. this.morphTargetManager = null;
  32395. if (this._geometry) {
  32396. this._geometry.releaseForMesh(this, true);
  32397. }
  32398. if (this._onBeforeDrawObservable) {
  32399. this._onBeforeDrawObservable.clear();
  32400. }
  32401. if (this._onBeforeRenderObservable) {
  32402. this._onBeforeRenderObservable.clear();
  32403. }
  32404. if (this._onAfterRenderObservable) {
  32405. this._onAfterRenderObservable.clear();
  32406. }
  32407. // Sources
  32408. var meshes = this.getScene().meshes;
  32409. meshes.forEach(function (abstractMesh) {
  32410. var mesh = abstractMesh;
  32411. if (mesh._source && mesh._source === _this) {
  32412. mesh._source = null;
  32413. }
  32414. });
  32415. this._source = null;
  32416. // Instances
  32417. if (this._instancesBuffer) {
  32418. this._instancesBuffer.dispose();
  32419. this._instancesBuffer = null;
  32420. }
  32421. while (this.instances.length) {
  32422. this.instances[0].dispose();
  32423. }
  32424. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  32425. };
  32426. /**
  32427. * Modifies the mesh geometry according to a displacement map.
  32428. * A displacement map is a colored image. Each pixel color value (actually a gradient computed from red, green, blue values) will give the displacement to apply to each mesh vertex.
  32429. * The mesh must be set as updatable. Its internal geometry is directly modified, no new buffer are allocated.
  32430. * This method returns nothing.
  32431. * @param url is a string, the URL from the image file is to be downloaded.
  32432. * @param minHeight is the lower limit of the displacement.
  32433. * @param maxHeight is the upper limit of the displacement.
  32434. * @param onSuccess is an optional Javascript function to be called just after the mesh is modified. It is passed the modified mesh and must return nothing.
  32435. * @param uvOffset is an optional vector2 used to offset UV.
  32436. * @param uvScale is an optional vector2 used to scale UV.
  32437. * @param forceUpdate defines whether or not to force an update of the generated buffers. This is usefull to apply on a deserialized model for instance.
  32438. * @returns the Mesh.
  32439. */
  32440. Mesh.prototype.applyDisplacementMap = function (url, minHeight, maxHeight, onSuccess, uvOffset, uvScale, forceUpdate) {
  32441. var _this = this;
  32442. if (forceUpdate === void 0) { forceUpdate = false; }
  32443. var scene = this.getScene();
  32444. var onload = function (img) {
  32445. // Getting height map data
  32446. var canvas = document.createElement("canvas");
  32447. var context = canvas.getContext("2d");
  32448. var heightMapWidth = img.width;
  32449. var heightMapHeight = img.height;
  32450. canvas.width = heightMapWidth;
  32451. canvas.height = heightMapHeight;
  32452. context.drawImage(img, 0, 0);
  32453. // Create VertexData from map data
  32454. //Cast is due to wrong definition in lib.d.ts from ts 1.3 - https://github.com/Microsoft/TypeScript/issues/949
  32455. var buffer = context.getImageData(0, 0, heightMapWidth, heightMapHeight).data;
  32456. _this.applyDisplacementMapFromBuffer(buffer, heightMapWidth, heightMapHeight, minHeight, maxHeight, uvOffset, uvScale, forceUpdate);
  32457. //execute success callback, if set
  32458. if (onSuccess) {
  32459. onSuccess(_this);
  32460. }
  32461. };
  32462. BABYLON.Tools.LoadImage(url, onload, function () { }, scene.database);
  32463. return this;
  32464. };
  32465. /**
  32466. * Modifies the mesh geometry according to a displacementMap buffer.
  32467. * A displacement map is a colored image. Each pixel color value (actually a gradient computed from red, green, blue values) will give the displacement to apply to each mesh vertex.
  32468. * The mesh must be set as updatable. Its internal geometry is directly modified, no new buffer are allocated.
  32469. * @param buffer is a `Uint8Array` buffer containing series of `Uint8` lower than 255, the red, green, blue and alpha values of each successive pixel.
  32470. * @param heightMapWidth is the width of the buffer image.
  32471. * @param heightMapHeight is the height of the buffer image.
  32472. * @param minHeight is the lower limit of the displacement.
  32473. * @param maxHeight is the upper limit of the displacement.
  32474. * @param onSuccess is an optional Javascript function to be called just after the mesh is modified. It is passed the modified mesh and must return nothing.
  32475. * @param uvOffset is an optional vector2 used to offset UV.
  32476. * @param uvScale is an optional vector2 used to scale UV.
  32477. * @param forceUpdate defines whether or not to force an update of the generated buffers. This is usefull to apply on a deserialized model for instance.
  32478. * @returns the Mesh.
  32479. */
  32480. Mesh.prototype.applyDisplacementMapFromBuffer = function (buffer, heightMapWidth, heightMapHeight, minHeight, maxHeight, uvOffset, uvScale, forceUpdate) {
  32481. if (forceUpdate === void 0) { forceUpdate = false; }
  32482. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind)
  32483. || !this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)
  32484. || !this.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  32485. BABYLON.Tools.Warn("Cannot call applyDisplacementMap: Given mesh is not complete. Position, Normal or UV are missing");
  32486. return this;
  32487. }
  32488. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind, true, true);
  32489. var normals = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  32490. var uvs = this.getVerticesData(BABYLON.VertexBuffer.UVKind);
  32491. var position = BABYLON.Vector3.Zero();
  32492. var normal = BABYLON.Vector3.Zero();
  32493. var uv = BABYLON.Vector2.Zero();
  32494. uvOffset = uvOffset || BABYLON.Vector2.Zero();
  32495. uvScale = uvScale || new BABYLON.Vector2(1, 1);
  32496. for (var index = 0; index < positions.length; index += 3) {
  32497. BABYLON.Vector3.FromArrayToRef(positions, index, position);
  32498. BABYLON.Vector3.FromArrayToRef(normals, index, normal);
  32499. BABYLON.Vector2.FromArrayToRef(uvs, (index / 3) * 2, uv);
  32500. // Compute height
  32501. var u = ((Math.abs(uv.x * uvScale.x + uvOffset.x) * heightMapWidth) % heightMapWidth) | 0;
  32502. var v = ((Math.abs(uv.y * uvScale.y + uvOffset.y) * heightMapHeight) % heightMapHeight) | 0;
  32503. var pos = (u + v * heightMapWidth) * 4;
  32504. var r = buffer[pos] / 255.0;
  32505. var g = buffer[pos + 1] / 255.0;
  32506. var b = buffer[pos + 2] / 255.0;
  32507. var gradient = r * 0.3 + g * 0.59 + b * 0.11;
  32508. normal.normalize();
  32509. normal.scaleInPlace(minHeight + (maxHeight - minHeight) * gradient);
  32510. position = position.add(normal);
  32511. position.toArray(positions, index);
  32512. }
  32513. BABYLON.VertexData.ComputeNormals(positions, this.getIndices(), normals);
  32514. if (forceUpdate) {
  32515. this.setVerticesData(BABYLON.VertexBuffer.PositionKind, positions);
  32516. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, normals);
  32517. }
  32518. else {
  32519. this.updateVerticesData(BABYLON.VertexBuffer.PositionKind, positions);
  32520. this.updateVerticesData(BABYLON.VertexBuffer.NormalKind, normals);
  32521. }
  32522. return this;
  32523. };
  32524. /**
  32525. * Modify the mesh to get a flat shading rendering.
  32526. * This means each mesh facet will then have its own normals. Usually new vertices are added in the mesh geometry to get this result.
  32527. * This method returns the Mesh.
  32528. * Warning : the mesh is really modified even if not set originally as updatable and, under the hood, a new VertexBuffer is allocated.
  32529. */
  32530. Mesh.prototype.convertToFlatShadedMesh = function () {
  32531. /// <summary>Update normals and vertices to get a flat shading rendering.</summary>
  32532. /// <summary>Warning: This may imply adding vertices to the mesh in order to get exactly 3 vertices per face</summary>
  32533. var kinds = this.getVerticesDataKinds();
  32534. var vbs = {};
  32535. var data = {};
  32536. var newdata = {};
  32537. var updatableNormals = false;
  32538. var kindIndex;
  32539. var kind;
  32540. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32541. kind = kinds[kindIndex];
  32542. var vertexBuffer = this.getVertexBuffer(kind);
  32543. if (kind === BABYLON.VertexBuffer.NormalKind) {
  32544. updatableNormals = vertexBuffer.isUpdatable();
  32545. kinds.splice(kindIndex, 1);
  32546. kindIndex--;
  32547. continue;
  32548. }
  32549. vbs[kind] = vertexBuffer;
  32550. data[kind] = vbs[kind].getData();
  32551. newdata[kind] = [];
  32552. }
  32553. // Save previous submeshes
  32554. var previousSubmeshes = this.subMeshes.slice(0);
  32555. var indices = this.getIndices();
  32556. var totalIndices = this.getTotalIndices();
  32557. // Generating unique vertices per face
  32558. var index;
  32559. for (index = 0; index < totalIndices; index++) {
  32560. var vertexIndex = indices[index];
  32561. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32562. kind = kinds[kindIndex];
  32563. var stride = vbs[kind].getStrideSize();
  32564. for (var offset = 0; offset < stride; offset++) {
  32565. newdata[kind].push(data[kind][vertexIndex * stride + offset]);
  32566. }
  32567. }
  32568. }
  32569. // Updating faces & normal
  32570. var normals = [];
  32571. var positions = newdata[BABYLON.VertexBuffer.PositionKind];
  32572. for (index = 0; index < totalIndices; index += 3) {
  32573. indices[index] = index;
  32574. indices[index + 1] = index + 1;
  32575. indices[index + 2] = index + 2;
  32576. var p1 = BABYLON.Vector3.FromArray(positions, index * 3);
  32577. var p2 = BABYLON.Vector3.FromArray(positions, (index + 1) * 3);
  32578. var p3 = BABYLON.Vector3.FromArray(positions, (index + 2) * 3);
  32579. var p1p2 = p1.subtract(p2);
  32580. var p3p2 = p3.subtract(p2);
  32581. var normal = BABYLON.Vector3.Normalize(BABYLON.Vector3.Cross(p1p2, p3p2));
  32582. // Store same normals for every vertex
  32583. for (var localIndex = 0; localIndex < 3; localIndex++) {
  32584. normals.push(normal.x);
  32585. normals.push(normal.y);
  32586. normals.push(normal.z);
  32587. }
  32588. }
  32589. this.setIndices(indices);
  32590. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, normals, updatableNormals);
  32591. // Updating vertex buffers
  32592. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32593. kind = kinds[kindIndex];
  32594. this.setVerticesData(kind, newdata[kind], vbs[kind].isUpdatable());
  32595. }
  32596. // Updating submeshes
  32597. this.releaseSubMeshes();
  32598. for (var submeshIndex = 0; submeshIndex < previousSubmeshes.length; submeshIndex++) {
  32599. var previousOne = previousSubmeshes[submeshIndex];
  32600. BABYLON.SubMesh.AddToMesh(previousOne.materialIndex, previousOne.indexStart, previousOne.indexCount, previousOne.indexStart, previousOne.indexCount, this);
  32601. }
  32602. this.synchronizeInstances();
  32603. return this;
  32604. };
  32605. /**
  32606. * This method removes all the mesh indices and add new vertices (duplication) in order to unfold facets into buffers.
  32607. * In other words, more vertices, no more indices and a single bigger VBO.
  32608. * The mesh is really modified even if not set originally as updatable. Under the hood, a new VertexBuffer is allocated.
  32609. * Returns the Mesh.
  32610. */
  32611. Mesh.prototype.convertToUnIndexedMesh = function () {
  32612. /// <summary>Remove indices by unfolding faces into buffers</summary>
  32613. /// <summary>Warning: This implies adding vertices to the mesh in order to get exactly 3 vertices per face</summary>
  32614. var kinds = this.getVerticesDataKinds();
  32615. var vbs = {};
  32616. var data = {};
  32617. var newdata = {};
  32618. var kindIndex;
  32619. var kind;
  32620. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32621. kind = kinds[kindIndex];
  32622. var vertexBuffer = this.getVertexBuffer(kind);
  32623. vbs[kind] = vertexBuffer;
  32624. data[kind] = vbs[kind].getData();
  32625. newdata[kind] = [];
  32626. }
  32627. // Save previous submeshes
  32628. var previousSubmeshes = this.subMeshes.slice(0);
  32629. var indices = this.getIndices();
  32630. var totalIndices = this.getTotalIndices();
  32631. // Generating unique vertices per face
  32632. var index;
  32633. for (index = 0; index < totalIndices; index++) {
  32634. var vertexIndex = indices[index];
  32635. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32636. kind = kinds[kindIndex];
  32637. var stride = vbs[kind].getStrideSize();
  32638. for (var offset = 0; offset < stride; offset++) {
  32639. newdata[kind].push(data[kind][vertexIndex * stride + offset]);
  32640. }
  32641. }
  32642. }
  32643. // Updating indices
  32644. for (index = 0; index < totalIndices; index += 3) {
  32645. indices[index] = index;
  32646. indices[index + 1] = index + 1;
  32647. indices[index + 2] = index + 2;
  32648. }
  32649. this.setIndices(indices);
  32650. // Updating vertex buffers
  32651. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  32652. kind = kinds[kindIndex];
  32653. this.setVerticesData(kind, newdata[kind], vbs[kind].isUpdatable());
  32654. }
  32655. // Updating submeshes
  32656. this.releaseSubMeshes();
  32657. for (var submeshIndex = 0; submeshIndex < previousSubmeshes.length; submeshIndex++) {
  32658. var previousOne = previousSubmeshes[submeshIndex];
  32659. BABYLON.SubMesh.AddToMesh(previousOne.materialIndex, previousOne.indexStart, previousOne.indexCount, previousOne.indexStart, previousOne.indexCount, this);
  32660. }
  32661. this._unIndexed = true;
  32662. this.synchronizeInstances();
  32663. return this;
  32664. };
  32665. /**
  32666. * Inverses facet orientations and inverts also the normals with `flipNormals` (default `false`) if true.
  32667. * This method returns the Mesh.
  32668. * Warning : the mesh is really modified even if not set originally as updatable. A new VertexBuffer is created under the hood each call.
  32669. */
  32670. Mesh.prototype.flipFaces = function (flipNormals) {
  32671. if (flipNormals === void 0) { flipNormals = false; }
  32672. var vertex_data = BABYLON.VertexData.ExtractFromMesh(this);
  32673. var i;
  32674. if (flipNormals && this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind) && vertex_data.normals) {
  32675. for (i = 0; i < vertex_data.normals.length; i++) {
  32676. vertex_data.normals[i] *= -1;
  32677. }
  32678. }
  32679. if (vertex_data.indices) {
  32680. var temp;
  32681. for (i = 0; i < vertex_data.indices.length; i += 3) {
  32682. // reassign indices
  32683. temp = vertex_data.indices[i + 1];
  32684. vertex_data.indices[i + 1] = vertex_data.indices[i + 2];
  32685. vertex_data.indices[i + 2] = temp;
  32686. }
  32687. }
  32688. vertex_data.applyToMesh(this);
  32689. return this;
  32690. };
  32691. // Instances
  32692. /**
  32693. * Creates a new InstancedMesh object from the mesh model.
  32694. * An instance shares the same properties and the same material than its model.
  32695. * Please make sure to call mesh.makeGeometryUnique() if you are calling createInstance on a previously cloned mesh.
  32696. * Only these properties of each instance can then be set individually :
  32697. * - position
  32698. * - rotation
  32699. * - rotationQuaternion
  32700. * - setPivotMatrix
  32701. * - scaling
  32702. *
  32703. * @see http://doc.babylonjs.com/how_to/how_to_use_instances
  32704. * Warning : this method is not supported for Line mesh and LineSystem
  32705. */
  32706. Mesh.prototype.createInstance = function (name) {
  32707. return new BABYLON.InstancedMesh(name, this);
  32708. };
  32709. /**
  32710. * Synchronises all the mesh instance submeshes to the current mesh submeshes, if any.
  32711. * After this call, all the mesh instances have the same submeshes than the current mesh.
  32712. * This method returns the Mesh.
  32713. */
  32714. Mesh.prototype.synchronizeInstances = function () {
  32715. for (var instanceIndex = 0; instanceIndex < this.instances.length; instanceIndex++) {
  32716. var instance = this.instances[instanceIndex];
  32717. instance._syncSubMeshes();
  32718. }
  32719. return this;
  32720. };
  32721. /**
  32722. * Optimization of the mesh's indices, in case a mesh has duplicated vertices.
  32723. * The function will only reorder the indices and will not remove unused vertices to avoid problems with submeshes.
  32724. * This should be used together with the simplification to avoid disappearing triangles.
  32725. * Returns the Mesh.
  32726. * @param successCallback an optional success callback to be called after the optimization finished.
  32727. */
  32728. Mesh.prototype.optimizeIndices = function (successCallback) {
  32729. var _this = this;
  32730. var indices = this.getIndices();
  32731. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  32732. if (!positions || !indices) {
  32733. return this;
  32734. }
  32735. var vectorPositions = new Array();
  32736. for (var pos = 0; pos < positions.length; pos = pos + 3) {
  32737. vectorPositions.push(BABYLON.Vector3.FromArray(positions, pos));
  32738. }
  32739. var dupes = new Array();
  32740. BABYLON.AsyncLoop.SyncAsyncForLoop(vectorPositions.length, 40, function (iteration) {
  32741. var realPos = vectorPositions.length - 1 - iteration;
  32742. var testedPosition = vectorPositions[realPos];
  32743. for (var j = 0; j < realPos; ++j) {
  32744. var againstPosition = vectorPositions[j];
  32745. if (testedPosition.equals(againstPosition)) {
  32746. dupes[realPos] = j;
  32747. break;
  32748. }
  32749. }
  32750. }, function () {
  32751. for (var i = 0; i < indices.length; ++i) {
  32752. indices[i] = dupes[indices[i]] || indices[i];
  32753. }
  32754. //indices are now reordered
  32755. var originalSubMeshes = _this.subMeshes.slice(0);
  32756. _this.setIndices(indices);
  32757. _this.subMeshes = originalSubMeshes;
  32758. if (successCallback) {
  32759. successCallback(_this);
  32760. }
  32761. });
  32762. return this;
  32763. };
  32764. Mesh.prototype.serialize = function (serializationObject) {
  32765. serializationObject.name = this.name;
  32766. serializationObject.id = this.id;
  32767. serializationObject.type = this.getClassName();
  32768. if (BABYLON.Tags && BABYLON.Tags.HasTags(this)) {
  32769. serializationObject.tags = BABYLON.Tags.GetTags(this);
  32770. }
  32771. serializationObject.position = this.position.asArray();
  32772. if (this.rotationQuaternion) {
  32773. serializationObject.rotationQuaternion = this.rotationQuaternion.asArray();
  32774. }
  32775. else if (this.rotation) {
  32776. serializationObject.rotation = this.rotation.asArray();
  32777. }
  32778. serializationObject.scaling = this.scaling.asArray();
  32779. serializationObject.localMatrix = this.getPivotMatrix().asArray();
  32780. serializationObject.isEnabled = this.isEnabled(false);
  32781. serializationObject.isVisible = this.isVisible;
  32782. serializationObject.infiniteDistance = this.infiniteDistance;
  32783. serializationObject.pickable = this.isPickable;
  32784. serializationObject.receiveShadows = this.receiveShadows;
  32785. serializationObject.billboardMode = this.billboardMode;
  32786. serializationObject.visibility = this.visibility;
  32787. serializationObject.checkCollisions = this.checkCollisions;
  32788. serializationObject.isBlocker = this.isBlocker;
  32789. // Parent
  32790. if (this.parent) {
  32791. serializationObject.parentId = this.parent.id;
  32792. }
  32793. // Geometry
  32794. serializationObject.isUnIndexed = this.isUnIndexed;
  32795. var geometry = this._geometry;
  32796. if (geometry) {
  32797. var geometryId = geometry.id;
  32798. serializationObject.geometryId = geometryId;
  32799. // SubMeshes
  32800. serializationObject.subMeshes = [];
  32801. for (var subIndex = 0; subIndex < this.subMeshes.length; subIndex++) {
  32802. var subMesh = this.subMeshes[subIndex];
  32803. serializationObject.subMeshes.push({
  32804. materialIndex: subMesh.materialIndex,
  32805. verticesStart: subMesh.verticesStart,
  32806. verticesCount: subMesh.verticesCount,
  32807. indexStart: subMesh.indexStart,
  32808. indexCount: subMesh.indexCount
  32809. });
  32810. }
  32811. }
  32812. // Material
  32813. if (this.material) {
  32814. serializationObject.materialId = this.material.id;
  32815. }
  32816. else {
  32817. this.material = null;
  32818. }
  32819. // Morph targets
  32820. if (this.morphTargetManager) {
  32821. serializationObject.morphTargetManagerId = this.morphTargetManager.uniqueId;
  32822. }
  32823. // Skeleton
  32824. if (this.skeleton) {
  32825. serializationObject.skeletonId = this.skeleton.id;
  32826. }
  32827. // Physics
  32828. //TODO implement correct serialization for physics impostors.
  32829. var impostor = this.getPhysicsImpostor();
  32830. if (impostor) {
  32831. serializationObject.physicsMass = impostor.getParam("mass");
  32832. serializationObject.physicsFriction = impostor.getParam("friction");
  32833. serializationObject.physicsRestitution = impostor.getParam("mass");
  32834. serializationObject.physicsImpostor = impostor.type;
  32835. }
  32836. // Metadata
  32837. if (this.metadata) {
  32838. serializationObject.metadata = this.metadata;
  32839. }
  32840. // Instances
  32841. serializationObject.instances = [];
  32842. for (var index = 0; index < this.instances.length; index++) {
  32843. var instance = this.instances[index];
  32844. if (instance.doNotSerialize) {
  32845. continue;
  32846. }
  32847. var serializationInstance = {
  32848. name: instance.name,
  32849. id: instance.id,
  32850. position: instance.position.asArray(),
  32851. scaling: instance.scaling.asArray()
  32852. };
  32853. if (instance.parent) {
  32854. serializationInstance.parentId = instance.parent.id;
  32855. }
  32856. if (instance.rotationQuaternion) {
  32857. serializationInstance.rotationQuaternion = instance.rotationQuaternion.asArray();
  32858. }
  32859. else if (instance.rotation) {
  32860. serializationInstance.rotation = instance.rotation.asArray();
  32861. }
  32862. serializationObject.instances.push(serializationInstance);
  32863. // Animations
  32864. BABYLON.Animation.AppendSerializedAnimations(instance, serializationInstance);
  32865. serializationInstance.ranges = instance.serializeAnimationRanges();
  32866. }
  32867. //
  32868. // Animations
  32869. BABYLON.Animation.AppendSerializedAnimations(this, serializationObject);
  32870. serializationObject.ranges = this.serializeAnimationRanges();
  32871. // Layer mask
  32872. serializationObject.layerMask = this.layerMask;
  32873. // Alpha
  32874. serializationObject.alphaIndex = this.alphaIndex;
  32875. serializationObject.hasVertexAlpha = this.hasVertexAlpha;
  32876. // Overlay
  32877. serializationObject.overlayAlpha = this.overlayAlpha;
  32878. serializationObject.overlayColor = this.overlayColor.asArray();
  32879. serializationObject.renderOverlay = this.renderOverlay;
  32880. // Fog
  32881. serializationObject.applyFog = this.applyFog;
  32882. // Action Manager
  32883. if (this.actionManager) {
  32884. serializationObject.actions = this.actionManager.serialize(this.name);
  32885. }
  32886. };
  32887. /** @hidden */
  32888. Mesh.prototype._syncGeometryWithMorphTargetManager = function () {
  32889. if (!this.geometry) {
  32890. return;
  32891. }
  32892. this._markSubMeshesAsAttributesDirty();
  32893. var morphTargetManager = this._morphTargetManager;
  32894. if (morphTargetManager && morphTargetManager.vertexCount) {
  32895. if (morphTargetManager.vertexCount !== this.getTotalVertices()) {
  32896. BABYLON.Tools.Error("Mesh is incompatible with morph targets. Targets and mesh must all have the same vertices count.");
  32897. this.morphTargetManager = null;
  32898. return;
  32899. }
  32900. for (var index = 0; index < morphTargetManager.numInfluencers; index++) {
  32901. var morphTarget = morphTargetManager.getActiveTarget(index);
  32902. var positions = morphTarget.getPositions();
  32903. if (!positions) {
  32904. BABYLON.Tools.Error("Invalid morph target. Target must have positions.");
  32905. return;
  32906. }
  32907. this.geometry.setVerticesData(BABYLON.VertexBuffer.PositionKind + index, positions, false, 3);
  32908. var normals = morphTarget.getNormals();
  32909. if (normals) {
  32910. this.geometry.setVerticesData(BABYLON.VertexBuffer.NormalKind + index, normals, false, 3);
  32911. }
  32912. var tangents = morphTarget.getTangents();
  32913. if (tangents) {
  32914. this.geometry.setVerticesData(BABYLON.VertexBuffer.TangentKind + index, tangents, false, 3);
  32915. }
  32916. }
  32917. }
  32918. else {
  32919. var index = 0;
  32920. // Positions
  32921. while (this.geometry.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind + index)) {
  32922. this.geometry.removeVerticesData(BABYLON.VertexBuffer.PositionKind + index);
  32923. if (this.geometry.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind + index)) {
  32924. this.geometry.removeVerticesData(BABYLON.VertexBuffer.NormalKind + index);
  32925. }
  32926. if (this.geometry.isVerticesDataPresent(BABYLON.VertexBuffer.TangentKind + index)) {
  32927. this.geometry.removeVerticesData(BABYLON.VertexBuffer.TangentKind + index);
  32928. }
  32929. index++;
  32930. }
  32931. }
  32932. };
  32933. // Statics
  32934. /**
  32935. * Returns a new Mesh object parsed from the source provided.
  32936. * The parameter `parsedMesh` is the source.
  32937. * The parameter `rootUrl` is a string, it's the root URL to prefix the `delayLoadingFile` property with
  32938. */
  32939. Mesh.Parse = function (parsedMesh, scene, rootUrl) {
  32940. var mesh;
  32941. if (parsedMesh.type && parsedMesh.type === "GroundMesh") {
  32942. mesh = BABYLON.GroundMesh.Parse(parsedMesh, scene);
  32943. }
  32944. else {
  32945. mesh = new Mesh(parsedMesh.name, scene);
  32946. }
  32947. mesh.id = parsedMesh.id;
  32948. if (BABYLON.Tags) {
  32949. BABYLON.Tags.AddTagsTo(mesh, parsedMesh.tags);
  32950. }
  32951. mesh.position = BABYLON.Vector3.FromArray(parsedMesh.position);
  32952. if (parsedMesh.metadata !== undefined) {
  32953. mesh.metadata = parsedMesh.metadata;
  32954. }
  32955. if (parsedMesh.rotationQuaternion) {
  32956. mesh.rotationQuaternion = BABYLON.Quaternion.FromArray(parsedMesh.rotationQuaternion);
  32957. }
  32958. else if (parsedMesh.rotation) {
  32959. mesh.rotation = BABYLON.Vector3.FromArray(parsedMesh.rotation);
  32960. }
  32961. mesh.scaling = BABYLON.Vector3.FromArray(parsedMesh.scaling);
  32962. if (parsedMesh.localMatrix) {
  32963. mesh.setPreTransformMatrix(BABYLON.Matrix.FromArray(parsedMesh.localMatrix));
  32964. }
  32965. else if (parsedMesh.pivotMatrix) {
  32966. mesh.setPivotMatrix(BABYLON.Matrix.FromArray(parsedMesh.pivotMatrix));
  32967. }
  32968. mesh.setEnabled(parsedMesh.isEnabled);
  32969. mesh.isVisible = parsedMesh.isVisible;
  32970. mesh.infiniteDistance = parsedMesh.infiniteDistance;
  32971. mesh.showBoundingBox = parsedMesh.showBoundingBox;
  32972. mesh.showSubMeshesBoundingBox = parsedMesh.showSubMeshesBoundingBox;
  32973. if (parsedMesh.applyFog !== undefined) {
  32974. mesh.applyFog = parsedMesh.applyFog;
  32975. }
  32976. if (parsedMesh.pickable !== undefined) {
  32977. mesh.isPickable = parsedMesh.pickable;
  32978. }
  32979. if (parsedMesh.alphaIndex !== undefined) {
  32980. mesh.alphaIndex = parsedMesh.alphaIndex;
  32981. }
  32982. mesh.receiveShadows = parsedMesh.receiveShadows;
  32983. mesh.billboardMode = parsedMesh.billboardMode;
  32984. if (parsedMesh.visibility !== undefined) {
  32985. mesh.visibility = parsedMesh.visibility;
  32986. }
  32987. mesh.checkCollisions = parsedMesh.checkCollisions;
  32988. if (parsedMesh.isBlocker !== undefined) {
  32989. mesh.isBlocker = parsedMesh.isBlocker;
  32990. }
  32991. mesh._shouldGenerateFlatShading = parsedMesh.useFlatShading;
  32992. // freezeWorldMatrix
  32993. if (parsedMesh.freezeWorldMatrix) {
  32994. mesh._waitingFreezeWorldMatrix = parsedMesh.freezeWorldMatrix;
  32995. }
  32996. // Parent
  32997. if (parsedMesh.parentId) {
  32998. mesh._waitingParentId = parsedMesh.parentId;
  32999. }
  33000. // Actions
  33001. if (parsedMesh.actions !== undefined) {
  33002. mesh._waitingActions = parsedMesh.actions;
  33003. }
  33004. // Overlay
  33005. if (parsedMesh.overlayAlpha !== undefined) {
  33006. mesh.overlayAlpha = parsedMesh.overlayAlpha;
  33007. }
  33008. if (parsedMesh.overlayColor !== undefined) {
  33009. mesh.overlayColor = BABYLON.Color3.FromArray(parsedMesh.overlayColor);
  33010. }
  33011. if (parsedMesh.renderOverlay !== undefined) {
  33012. mesh.renderOverlay = parsedMesh.renderOverlay;
  33013. }
  33014. // Geometry
  33015. mesh.isUnIndexed = !!parsedMesh.isUnIndexed;
  33016. mesh.hasVertexAlpha = parsedMesh.hasVertexAlpha;
  33017. if (parsedMesh.delayLoadingFile) {
  33018. mesh.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  33019. mesh.delayLoadingFile = rootUrl + parsedMesh.delayLoadingFile;
  33020. mesh._boundingInfo = new BABYLON.BoundingInfo(BABYLON.Vector3.FromArray(parsedMesh.boundingBoxMinimum), BABYLON.Vector3.FromArray(parsedMesh.boundingBoxMaximum));
  33021. if (parsedMesh._binaryInfo) {
  33022. mesh._binaryInfo = parsedMesh._binaryInfo;
  33023. }
  33024. mesh._delayInfo = [];
  33025. if (parsedMesh.hasUVs) {
  33026. mesh._delayInfo.push(BABYLON.VertexBuffer.UVKind);
  33027. }
  33028. if (parsedMesh.hasUVs2) {
  33029. mesh._delayInfo.push(BABYLON.VertexBuffer.UV2Kind);
  33030. }
  33031. if (parsedMesh.hasUVs3) {
  33032. mesh._delayInfo.push(BABYLON.VertexBuffer.UV3Kind);
  33033. }
  33034. if (parsedMesh.hasUVs4) {
  33035. mesh._delayInfo.push(BABYLON.VertexBuffer.UV4Kind);
  33036. }
  33037. if (parsedMesh.hasUVs5) {
  33038. mesh._delayInfo.push(BABYLON.VertexBuffer.UV5Kind);
  33039. }
  33040. if (parsedMesh.hasUVs6) {
  33041. mesh._delayInfo.push(BABYLON.VertexBuffer.UV6Kind);
  33042. }
  33043. if (parsedMesh.hasColors) {
  33044. mesh._delayInfo.push(BABYLON.VertexBuffer.ColorKind);
  33045. }
  33046. if (parsedMesh.hasMatricesIndices) {
  33047. mesh._delayInfo.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  33048. }
  33049. if (parsedMesh.hasMatricesWeights) {
  33050. mesh._delayInfo.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  33051. }
  33052. mesh._delayLoadingFunction = BABYLON.Geometry._ImportGeometry;
  33053. if (BABYLON.SceneLoader.ForceFullSceneLoadingForIncremental) {
  33054. mesh._checkDelayState();
  33055. }
  33056. }
  33057. else {
  33058. BABYLON.Geometry._ImportGeometry(parsedMesh, mesh);
  33059. }
  33060. // Material
  33061. if (parsedMesh.materialId) {
  33062. mesh.setMaterialByID(parsedMesh.materialId);
  33063. }
  33064. else {
  33065. mesh.material = null;
  33066. }
  33067. // Morph targets
  33068. if (parsedMesh.morphTargetManagerId > -1) {
  33069. mesh.morphTargetManager = scene.getMorphTargetManagerById(parsedMesh.morphTargetManagerId);
  33070. }
  33071. // Skeleton
  33072. if (parsedMesh.skeletonId > -1) {
  33073. mesh.skeleton = scene.getLastSkeletonByID(parsedMesh.skeletonId);
  33074. if (parsedMesh.numBoneInfluencers) {
  33075. mesh.numBoneInfluencers = parsedMesh.numBoneInfluencers;
  33076. }
  33077. }
  33078. // Animations
  33079. if (parsedMesh.animations) {
  33080. for (var animationIndex = 0; animationIndex < parsedMesh.animations.length; animationIndex++) {
  33081. var parsedAnimation = parsedMesh.animations[animationIndex];
  33082. mesh.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  33083. }
  33084. BABYLON.Node.ParseAnimationRanges(mesh, parsedMesh, scene);
  33085. }
  33086. if (parsedMesh.autoAnimate) {
  33087. scene.beginAnimation(mesh, parsedMesh.autoAnimateFrom, parsedMesh.autoAnimateTo, parsedMesh.autoAnimateLoop, parsedMesh.autoAnimateSpeed || 1.0);
  33088. }
  33089. // Layer Mask
  33090. if (parsedMesh.layerMask && (!isNaN(parsedMesh.layerMask))) {
  33091. mesh.layerMask = Math.abs(parseInt(parsedMesh.layerMask));
  33092. }
  33093. else {
  33094. mesh.layerMask = 0x0FFFFFFF;
  33095. }
  33096. // Physics
  33097. if (parsedMesh.physicsImpostor) {
  33098. mesh.physicsImpostor = new BABYLON.PhysicsImpostor(mesh, parsedMesh.physicsImpostor, {
  33099. mass: parsedMesh.physicsMass,
  33100. friction: parsedMesh.physicsFriction,
  33101. restitution: parsedMesh.physicsRestitution
  33102. }, scene);
  33103. }
  33104. // Instances
  33105. if (parsedMesh.instances) {
  33106. for (var index = 0; index < parsedMesh.instances.length; index++) {
  33107. var parsedInstance = parsedMesh.instances[index];
  33108. var instance = mesh.createInstance(parsedInstance.name);
  33109. if (parsedInstance.id) {
  33110. instance.id = parsedInstance.id;
  33111. }
  33112. if (BABYLON.Tags) {
  33113. if (parsedInstance.tags) {
  33114. BABYLON.Tags.AddTagsTo(instance, parsedInstance.tags);
  33115. }
  33116. else {
  33117. BABYLON.Tags.AddTagsTo(instance, parsedMesh.tags);
  33118. }
  33119. }
  33120. instance.position = BABYLON.Vector3.FromArray(parsedInstance.position);
  33121. if (parsedInstance.parentId) {
  33122. instance._waitingParentId = parsedInstance.parentId;
  33123. }
  33124. if (parsedInstance.rotationQuaternion) {
  33125. instance.rotationQuaternion = BABYLON.Quaternion.FromArray(parsedInstance.rotationQuaternion);
  33126. }
  33127. else if (parsedInstance.rotation) {
  33128. instance.rotation = BABYLON.Vector3.FromArray(parsedInstance.rotation);
  33129. }
  33130. instance.scaling = BABYLON.Vector3.FromArray(parsedInstance.scaling);
  33131. instance.checkCollisions = mesh.checkCollisions;
  33132. if (parsedMesh.animations) {
  33133. for (animationIndex = 0; animationIndex < parsedMesh.animations.length; animationIndex++) {
  33134. parsedAnimation = parsedMesh.animations[animationIndex];
  33135. instance.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  33136. }
  33137. BABYLON.Node.ParseAnimationRanges(instance, parsedMesh, scene);
  33138. if (parsedMesh.autoAnimate) {
  33139. scene.beginAnimation(instance, parsedMesh.autoAnimateFrom, parsedMesh.autoAnimateTo, parsedMesh.autoAnimateLoop, parsedMesh.autoAnimateSpeed || 1.0);
  33140. }
  33141. }
  33142. }
  33143. }
  33144. return mesh;
  33145. };
  33146. /**
  33147. * Creates a ribbon mesh.
  33148. * Please consider using the same method from the MeshBuilder class instead.
  33149. * The ribbon is a parametric shape : http://doc.babylonjs.com/how_to/parametric_shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  33150. *
  33151. * Please read this full tutorial to understand how to design a ribbon : http://doc.babylonjs.com/tutorials/Ribbon_Tutorial
  33152. * The parameter `pathArray` is a required array of paths, what are each an array of successive Vector3. The pathArray parameter depicts the ribbon geometry.
  33153. * The parameter `closeArray` (boolean, default false) creates a seam between the first and the last paths of the path array.
  33154. * The parameter `closePath` (boolean, default false) creates a seam between the first and the last points of each path of the path array.
  33155. * The parameter `offset` (positive integer, default : rounded half size of the pathArray length), is taken in account only if the `pathArray` is containing a single path.
  33156. * It's the offset to join together the points from the same path. Ex : offset = 10 means the point 1 is joined to the point 11.
  33157. * The optional parameter `instance` is an instance of an existing Ribbon object to be updated with the passed `pathArray` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#ribbon
  33158. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33159. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33160. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33161. */
  33162. Mesh.CreateRibbon = function (name, pathArray, closeArray, closePath, offset, scene, updatable, sideOrientation, instance) {
  33163. if (closeArray === void 0) { closeArray = false; }
  33164. if (updatable === void 0) { updatable = false; }
  33165. return BABYLON.MeshBuilder.CreateRibbon(name, {
  33166. pathArray: pathArray,
  33167. closeArray: closeArray,
  33168. closePath: closePath,
  33169. offset: offset,
  33170. updatable: updatable,
  33171. sideOrientation: sideOrientation,
  33172. instance: instance
  33173. }, scene);
  33174. };
  33175. /**
  33176. * Creates a plane polygonal mesh. By default, this is a disc.
  33177. * Please consider using the same method from the MeshBuilder class instead.
  33178. * The parameter `radius` sets the radius size (float) of the polygon (default 0.5).
  33179. * The parameter `tessellation` sets the number of polygon sides (positive integer, default 64). So a tessellation valued to 3 will build a triangle, to 4 a square, etc.
  33180. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33181. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33182. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33183. */
  33184. Mesh.CreateDisc = function (name, radius, tessellation, scene, updatable, sideOrientation) {
  33185. if (scene === void 0) { scene = null; }
  33186. var options = {
  33187. radius: radius,
  33188. tessellation: tessellation,
  33189. sideOrientation: sideOrientation,
  33190. updatable: updatable
  33191. };
  33192. return BABYLON.MeshBuilder.CreateDisc(name, options, scene);
  33193. };
  33194. /**
  33195. * Creates a box mesh.
  33196. * Please consider using the same method from the MeshBuilder class instead.
  33197. * The parameter `size` sets the size (float) of each box side (default 1).
  33198. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33199. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33200. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33201. */
  33202. Mesh.CreateBox = function (name, size, scene, updatable, sideOrientation) {
  33203. if (scene === void 0) { scene = null; }
  33204. var options = {
  33205. size: size,
  33206. sideOrientation: sideOrientation,
  33207. updatable: updatable
  33208. };
  33209. return BABYLON.MeshBuilder.CreateBox(name, options, scene);
  33210. };
  33211. /**
  33212. * Creates a sphere mesh.
  33213. * Please consider using the same method from the MeshBuilder class instead.
  33214. * The parameter `diameter` sets the diameter size (float) of the sphere (default 1).
  33215. * The parameter `segments` sets the sphere number of horizontal stripes (positive integer, default 32).
  33216. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33217. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33218. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33219. */
  33220. Mesh.CreateSphere = function (name, segments, diameter, scene, updatable, sideOrientation) {
  33221. var options = {
  33222. segments: segments,
  33223. diameterX: diameter,
  33224. diameterY: diameter,
  33225. diameterZ: diameter,
  33226. sideOrientation: sideOrientation,
  33227. updatable: updatable
  33228. };
  33229. return BABYLON.MeshBuilder.CreateSphere(name, options, scene);
  33230. };
  33231. /**
  33232. * Creates a cylinder or a cone mesh.
  33233. * Please consider using the same method from the MeshBuilder class instead.
  33234. * The parameter `height` sets the height size (float) of the cylinder/cone (float, default 2).
  33235. * The parameter `diameter` sets the diameter of the top and bottom cap at once (float, default 1).
  33236. * The parameters `diameterTop` and `diameterBottom` overwrite the parameter `diameter` and set respectively the top cap and bottom cap diameter (floats, default 1). The parameter "diameterBottom" can't be zero.
  33237. * The parameter `tessellation` sets the number of cylinder sides (positive integer, default 24). Set it to 3 to get a prism for instance.
  33238. * The parameter `subdivisions` sets the number of rings along the cylinder height (positive integer, default 1).
  33239. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33240. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33241. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33242. */
  33243. Mesh.CreateCylinder = function (name, height, diameterTop, diameterBottom, tessellation, subdivisions, scene, updatable, sideOrientation) {
  33244. if (scene === undefined || !(scene instanceof BABYLON.Scene)) {
  33245. if (scene !== undefined) {
  33246. sideOrientation = updatable || Mesh.DEFAULTSIDE;
  33247. updatable = scene;
  33248. }
  33249. scene = subdivisions;
  33250. subdivisions = 1;
  33251. }
  33252. var options = {
  33253. height: height,
  33254. diameterTop: diameterTop,
  33255. diameterBottom: diameterBottom,
  33256. tessellation: tessellation,
  33257. subdivisions: subdivisions,
  33258. sideOrientation: sideOrientation,
  33259. updatable: updatable
  33260. };
  33261. return BABYLON.MeshBuilder.CreateCylinder(name, options, scene);
  33262. };
  33263. // Torus (Code from SharpDX.org)
  33264. /**
  33265. * Creates a torus mesh.
  33266. * Please consider using the same method from the MeshBuilder class instead.
  33267. * The parameter `diameter` sets the diameter size (float) of the torus (default 1).
  33268. * The parameter `thickness` sets the diameter size of the tube of the torus (float, default 0.5).
  33269. * The parameter `tessellation` sets the number of torus sides (postive integer, default 16).
  33270. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33271. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33272. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33273. */
  33274. Mesh.CreateTorus = function (name, diameter, thickness, tessellation, scene, updatable, sideOrientation) {
  33275. var options = {
  33276. diameter: diameter,
  33277. thickness: thickness,
  33278. tessellation: tessellation,
  33279. sideOrientation: sideOrientation,
  33280. updatable: updatable
  33281. };
  33282. return BABYLON.MeshBuilder.CreateTorus(name, options, scene);
  33283. };
  33284. /**
  33285. * Creates a torus knot mesh.
  33286. * Please consider using the same method from the MeshBuilder class instead.
  33287. * The parameter `radius` sets the global radius size (float) of the torus knot (default 2).
  33288. * The parameter `radialSegments` sets the number of sides on each tube segments (positive integer, default 32).
  33289. * The parameter `tubularSegments` sets the number of tubes to decompose the knot into (positive integer, default 32).
  33290. * The parameters `p` and `q` are the number of windings on each axis (positive integers, default 2 and 3).
  33291. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33292. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33293. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33294. */
  33295. Mesh.CreateTorusKnot = function (name, radius, tube, radialSegments, tubularSegments, p, q, scene, updatable, sideOrientation) {
  33296. var options = {
  33297. radius: radius,
  33298. tube: tube,
  33299. radialSegments: radialSegments,
  33300. tubularSegments: tubularSegments,
  33301. p: p,
  33302. q: q,
  33303. sideOrientation: sideOrientation,
  33304. updatable: updatable
  33305. };
  33306. return BABYLON.MeshBuilder.CreateTorusKnot(name, options, scene);
  33307. };
  33308. /**
  33309. * Creates a line mesh.
  33310. * Please consider using the same method from the MeshBuilder class instead.
  33311. * A line mesh is considered as a parametric shape since it has no predefined original shape. Its shape is determined by the passed array of points as an input parameter.
  33312. * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function.
  33313. * The parameter `points` is an array successive Vector3.
  33314. * The optional parameter `instance` is an instance of an existing LineMesh object to be updated with the passed `points` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#lines-and-dashedlines
  33315. * When updating an instance, remember that only point positions can change, not the number of points.
  33316. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33317. */
  33318. Mesh.CreateLines = function (name, points, scene, updatable, instance) {
  33319. if (scene === void 0) { scene = null; }
  33320. if (updatable === void 0) { updatable = false; }
  33321. if (instance === void 0) { instance = null; }
  33322. var options = {
  33323. points: points,
  33324. updatable: updatable,
  33325. instance: instance
  33326. };
  33327. return BABYLON.MeshBuilder.CreateLines(name, options, scene);
  33328. };
  33329. /**
  33330. * Creates a dashed line mesh.
  33331. * Please consider using the same method from the MeshBuilder class instead.
  33332. * A dashed line mesh is considered as a parametric shape since it has no predefined original shape. Its shape is determined by the passed array of points as an input parameter.
  33333. * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function.
  33334. * The parameter `points` is an array successive Vector3.
  33335. * The parameter `dashNb` is the intended total number of dashes (positive integer, default 200).
  33336. * The parameter `dashSize` is the size of the dashes relatively the dash number (positive float, default 3).
  33337. * The parameter `gapSize` is the size of the gap between two successive dashes relatively the dash number (positive float, default 1).
  33338. * The optional parameter `instance` is an instance of an existing LineMesh object to be updated with the passed `points` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#lines-and-dashedlines
  33339. * When updating an instance, remember that only point positions can change, not the number of points.
  33340. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33341. */
  33342. Mesh.CreateDashedLines = function (name, points, dashSize, gapSize, dashNb, scene, updatable, instance) {
  33343. if (scene === void 0) { scene = null; }
  33344. var options = {
  33345. points: points,
  33346. dashSize: dashSize,
  33347. gapSize: gapSize,
  33348. dashNb: dashNb,
  33349. updatable: updatable,
  33350. instance: instance
  33351. };
  33352. return BABYLON.MeshBuilder.CreateDashedLines(name, options, scene);
  33353. };
  33354. /**
  33355. * Creates a polygon mesh.
  33356. * Please consider using the same method from the MeshBuilder class instead.
  33357. * The polygon's shape will depend on the input parameters and is constructed parallel to a ground mesh.
  33358. * The parameter `shape` is a required array of successive Vector3 representing the corners of the polygon in th XoZ plane, that is y = 0 for all vectors.
  33359. * You can set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33360. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33361. * Remember you can only change the shape positions, not their number when updating a polygon.
  33362. */
  33363. Mesh.CreatePolygon = function (name, shape, scene, holes, updatable, sideOrientation) {
  33364. var options = {
  33365. shape: shape,
  33366. holes: holes,
  33367. updatable: updatable,
  33368. sideOrientation: sideOrientation
  33369. };
  33370. return BABYLON.MeshBuilder.CreatePolygon(name, options, scene);
  33371. };
  33372. /**
  33373. * Creates an extruded polygon mesh, with depth in the Y direction.
  33374. * Please consider using the same method from the MeshBuilder class instead.
  33375. */
  33376. Mesh.ExtrudePolygon = function (name, shape, depth, scene, holes, updatable, sideOrientation) {
  33377. var options = {
  33378. shape: shape,
  33379. holes: holes,
  33380. depth: depth,
  33381. updatable: updatable,
  33382. sideOrientation: sideOrientation
  33383. };
  33384. return BABYLON.MeshBuilder.ExtrudePolygon(name, options, scene);
  33385. };
  33386. /**
  33387. * Creates an extruded shape mesh.
  33388. * The extrusion is a parametric shape : http://doc.babylonjs.com/how_to/parametric_shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  33389. * Please consider using the same method from the MeshBuilder class instead.
  33390. *
  33391. * Please read this full tutorial to understand how to design an extruded shape : http://doc.babylonjs.com/how_to/parametric_shapes#extruded-shapes
  33392. * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be extruded in its local space : the shape must be designed in the xOy plane and will be
  33393. * extruded along the Z axis.
  33394. * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  33395. * The parameter `rotation` (float, default 0 radians) is the angle value to rotate the shape each step (each path point), from the former step (so rotation added each step) along the curve.
  33396. * The parameter `scale` (float, default 1) is the value to scale the shape.
  33397. * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  33398. * The optional parameter `instance` is an instance of an existing ExtrudedShape object to be updated with the passed `shape`, `path`, `scale` or `rotation` parameters : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#extruded-shape
  33399. * Remember you can only change the shape or path point positions, not their number when updating an extruded shape.
  33400. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33401. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33402. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33403. */
  33404. Mesh.ExtrudeShape = function (name, shape, path, scale, rotation, cap, scene, updatable, sideOrientation, instance) {
  33405. if (scene === void 0) { scene = null; }
  33406. var options = {
  33407. shape: shape,
  33408. path: path,
  33409. scale: scale,
  33410. rotation: rotation,
  33411. cap: (cap === 0) ? 0 : cap || Mesh.NO_CAP,
  33412. sideOrientation: sideOrientation,
  33413. instance: instance,
  33414. updatable: updatable
  33415. };
  33416. return BABYLON.MeshBuilder.ExtrudeShape(name, options, scene);
  33417. };
  33418. /**
  33419. * Creates an custom extruded shape mesh.
  33420. * The custom extrusion is a parametric shape : http://doc.babylonjs.com/how_to/parametric_shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  33421. * Please consider using the same method from the MeshBuilder class instead.
  33422. *
  33423. * Please read this full tutorial to understand how to design a custom extruded shape : http://doc.babylonjs.com/how_to/parametric_shapes#extruded-shapes
  33424. * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be extruded in its local space : the shape must be designed in the xOy plane and will be
  33425. * extruded along the Z axis.
  33426. * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  33427. * The parameter `rotationFunction` (JS function) is a custom Javascript function called on each path point. This function is passed the position i of the point in the path
  33428. * and the distance of this point from the begining of the path :
  33429. * ```javascript
  33430. * var rotationFunction = function(i, distance) {
  33431. * // do things
  33432. * return rotationValue; }
  33433. * ```
  33434. * It must returns a float value that will be the rotation in radians applied to the shape on each path point.
  33435. * The parameter `scaleFunction` (JS function) is a custom Javascript function called on each path point. This function is passed the position i of the point in the path
  33436. * and the distance of this point from the begining of the path :
  33437. * ```javascript
  33438. * var scaleFunction = function(i, distance) {
  33439. * // do things
  33440. * return scaleValue;}
  33441. * ```
  33442. * It must returns a float value that will be the scale value applied to the shape on each path point.
  33443. * The parameter `ribbonClosePath` (boolean, default false) forces the extrusion underlying ribbon to close all the paths in its `pathArray`.
  33444. * The parameter `ribbonCloseArray` (boolean, default false) forces the extrusion underlying ribbon to close its `pathArray`.
  33445. * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  33446. * The optional parameter `instance` is an instance of an existing ExtrudedShape object to be updated with the passed `shape`, `path`, `scale` or `rotation` parameters : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#extruded-shape
  33447. * Remember you can only change the shape or path point positions, not their number when updating an extruded shape.
  33448. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33449. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33450. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33451. */
  33452. Mesh.ExtrudeShapeCustom = function (name, shape, path, scaleFunction, rotationFunction, ribbonCloseArray, ribbonClosePath, cap, scene, updatable, sideOrientation, instance) {
  33453. var options = {
  33454. shape: shape,
  33455. path: path,
  33456. scaleFunction: scaleFunction,
  33457. rotationFunction: rotationFunction,
  33458. ribbonCloseArray: ribbonCloseArray,
  33459. ribbonClosePath: ribbonClosePath,
  33460. cap: (cap === 0) ? 0 : cap || Mesh.NO_CAP,
  33461. sideOrientation: sideOrientation,
  33462. instance: instance,
  33463. updatable: updatable
  33464. };
  33465. return BABYLON.MeshBuilder.ExtrudeShapeCustom(name, options, scene);
  33466. };
  33467. /**
  33468. * Creates lathe mesh.
  33469. * The lathe is a shape with a symetry axis : a 2D model shape is rotated around this axis to design the lathe.
  33470. * Please consider using the same method from the MeshBuilder class instead.
  33471. * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be rotated in its local space : the shape must be designed in the xOy plane and will be
  33472. * rotated around the Y axis. It's usually a 2D shape, so the Vector3 z coordinates are often set to zero.
  33473. * The parameter `radius` (positive float, default 1) is the radius value of the lathe.
  33474. * The parameter `tessellation` (positive integer, default 64) is the side number of the lathe.
  33475. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33476. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33477. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33478. */
  33479. Mesh.CreateLathe = function (name, shape, radius, tessellation, scene, updatable, sideOrientation) {
  33480. var options = {
  33481. shape: shape,
  33482. radius: radius,
  33483. tessellation: tessellation,
  33484. sideOrientation: sideOrientation,
  33485. updatable: updatable
  33486. };
  33487. return BABYLON.MeshBuilder.CreateLathe(name, options, scene);
  33488. };
  33489. /**
  33490. * Creates a plane mesh.
  33491. * Please consider using the same method from the MeshBuilder class instead.
  33492. * The parameter `size` sets the size (float) of both sides of the plane at once (default 1).
  33493. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33494. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33495. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33496. */
  33497. Mesh.CreatePlane = function (name, size, scene, updatable, sideOrientation) {
  33498. var options = {
  33499. size: size,
  33500. width: size,
  33501. height: size,
  33502. sideOrientation: sideOrientation,
  33503. updatable: updatable
  33504. };
  33505. return BABYLON.MeshBuilder.CreatePlane(name, options, scene);
  33506. };
  33507. /**
  33508. * Creates a ground mesh.
  33509. * Please consider using the same method from the MeshBuilder class instead.
  33510. * The parameters `width` and `height` (floats, default 1) set the width and height sizes of the ground.
  33511. * The parameter `subdivisions` (positive integer) sets the number of subdivisions per side.
  33512. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33513. */
  33514. Mesh.CreateGround = function (name, width, height, subdivisions, scene, updatable) {
  33515. var options = {
  33516. width: width,
  33517. height: height,
  33518. subdivisions: subdivisions,
  33519. updatable: updatable
  33520. };
  33521. return BABYLON.MeshBuilder.CreateGround(name, options, scene);
  33522. };
  33523. /**
  33524. * Creates a tiled ground mesh.
  33525. * Please consider using the same method from the MeshBuilder class instead.
  33526. * The parameters `xmin` and `xmax` (floats, default -1 and 1) set the ground minimum and maximum X coordinates.
  33527. * The parameters `zmin` and `zmax` (floats, default -1 and 1) set the ground minimum and maximum Z coordinates.
  33528. * The parameter `subdivisions` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 6, h: 6}`). `w` and `h` are the
  33529. * numbers of subdivisions on the ground width and height. Each subdivision is called a tile.
  33530. * The parameter `precision` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 2, h: 2}`). `w` and `h` are the
  33531. * numbers of subdivisions on the ground width and height of each tile.
  33532. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33533. */
  33534. Mesh.CreateTiledGround = function (name, xmin, zmin, xmax, zmax, subdivisions, precision, scene, updatable) {
  33535. var options = {
  33536. xmin: xmin,
  33537. zmin: zmin,
  33538. xmax: xmax,
  33539. zmax: zmax,
  33540. subdivisions: subdivisions,
  33541. precision: precision,
  33542. updatable: updatable
  33543. };
  33544. return BABYLON.MeshBuilder.CreateTiledGround(name, options, scene);
  33545. };
  33546. /**
  33547. * Creates a ground mesh from a height map.
  33548. * tuto : http://doc.babylonjs.com/babylon101/height_map
  33549. * Please consider using the same method from the MeshBuilder class instead.
  33550. * The parameter `url` sets the URL of the height map image resource.
  33551. * The parameters `width` and `height` (positive floats, default 10) set the ground width and height sizes.
  33552. * The parameter `subdivisions` (positive integer, default 1) sets the number of subdivision per side.
  33553. * The parameter `minHeight` (float, default 0) is the minimum altitude on the ground.
  33554. * The parameter `maxHeight` (float, default 1) is the maximum altitude on the ground.
  33555. * The parameter `onReady` is a javascript callback function that will be called once the mesh is just built (the height map download can last some time).
  33556. * This function is passed the newly built mesh :
  33557. * ```javascript
  33558. * function(mesh) { // do things
  33559. * return; }
  33560. * ```
  33561. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33562. */
  33563. Mesh.CreateGroundFromHeightMap = function (name, url, width, height, subdivisions, minHeight, maxHeight, scene, updatable, onReady) {
  33564. var options = {
  33565. width: width,
  33566. height: height,
  33567. subdivisions: subdivisions,
  33568. minHeight: minHeight,
  33569. maxHeight: maxHeight,
  33570. updatable: updatable,
  33571. onReady: onReady
  33572. };
  33573. return BABYLON.MeshBuilder.CreateGroundFromHeightMap(name, url, options, scene);
  33574. };
  33575. /**
  33576. * Creates a tube mesh.
  33577. * The tube is a parametric shape : http://doc.babylonjs.com/how_to/parametric_shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  33578. * Please consider using the same method from the MeshBuilder class instead.
  33579. * The parameter `path` is a required array of successive Vector3. It is the curve used as the axis of the tube.
  33580. * The parameter `radius` (positive float, default 1) sets the tube radius size.
  33581. * The parameter `tessellation` (positive float, default 64) is the number of sides on the tubular surface.
  33582. * The parameter `radiusFunction` (javascript function, default null) is a vanilla javascript function. If it is not null, it overwrittes the parameter `radius`.
  33583. * This function is called on each point of the tube path and is passed the index `i` of the i-th point and the distance of this point from the first point of the path.
  33584. * It must return a radius value (positive float) :
  33585. * ```javascript
  33586. * var radiusFunction = function(i, distance) {
  33587. * // do things
  33588. * return radius; }
  33589. * ```
  33590. * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  33591. * The optional parameter `instance` is an instance of an existing Tube object to be updated with the passed `pathArray` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#tube
  33592. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33593. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33594. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33595. */
  33596. Mesh.CreateTube = function (name, path, radius, tessellation, radiusFunction, cap, scene, updatable, sideOrientation, instance) {
  33597. var options = {
  33598. path: path,
  33599. radius: radius,
  33600. tessellation: tessellation,
  33601. radiusFunction: radiusFunction,
  33602. arc: 1,
  33603. cap: cap,
  33604. updatable: updatable,
  33605. sideOrientation: sideOrientation,
  33606. instance: instance
  33607. };
  33608. return BABYLON.MeshBuilder.CreateTube(name, options, scene);
  33609. };
  33610. /**
  33611. * Creates a polyhedron mesh.
  33612. * Please consider using the same method from the MeshBuilder class instead.
  33613. * The parameter `type` (positive integer, max 14, default 0) sets the polyhedron type to build among the 15 embbeded types. Please refer to the type sheet in the tutorial
  33614. * to choose the wanted type.
  33615. * The parameter `size` (positive float, default 1) sets the polygon size.
  33616. * You can overwrite the `size` on each dimension bu using the parameters `sizeX`, `sizeY` or `sizeZ` (positive floats, default to `size` value).
  33617. * You can build other polyhedron types than the 15 embbeded ones by setting the parameter `custom` (`polyhedronObject`, default null). If you set the parameter `custom`, this overwrittes the parameter `type`.
  33618. * A `polyhedronObject` is a formatted javascript object. You'll find a full file with pre-set polyhedra here : https://github.com/BabylonJS/Extensions/tree/master/Polyhedron
  33619. * You can set the color and the UV of each side of the polyhedron with the parameters `faceColors` (Color4, default `(1, 1, 1, 1)`) and faceUV (Vector4, default `(0, 0, 1, 1)`).
  33620. * To understand how to set `faceUV` or `faceColors`, please read this by considering the right number of faces of your polyhedron, instead of only 6 for the box : http://doc.babylonjs.com/tutorials/CreateBox_Per_Face_Textures_And_Colors
  33621. * The parameter `flat` (boolean, default true). If set to false, it gives the polyhedron a single global face, so less vertices and shared normals. In this case, `faceColors` and `faceUV` are ignored.
  33622. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33623. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33624. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33625. */
  33626. Mesh.CreatePolyhedron = function (name, options, scene) {
  33627. return BABYLON.MeshBuilder.CreatePolyhedron(name, options, scene);
  33628. };
  33629. /**
  33630. * Creates a sphere based upon an icosahedron with 20 triangular faces which can be subdivided.
  33631. * Please consider using the same method from the MeshBuilder class instead.
  33632. * The parameter `radius` sets the radius size (float) of the icosphere (default 1).
  33633. * You can set some different icosphere dimensions, for instance to build an ellipsoid, by using the parameters `radiusX`, `radiusY` and `radiusZ` (all by default have the same value than `radius`).
  33634. * The parameter `subdivisions` sets the number of subdivisions (postive integer, default 4). The more subdivisions, the more faces on the icosphere whatever its size.
  33635. * The parameter `flat` (boolean, default true) gives each side its own normals. Set it to false to get a smooth continuous light reflection on the surface.
  33636. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  33637. * Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  33638. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  33639. */
  33640. Mesh.CreateIcoSphere = function (name, options, scene) {
  33641. return BABYLON.MeshBuilder.CreateIcoSphere(name, options, scene);
  33642. };
  33643. /**
  33644. * Creates a decal mesh.
  33645. * Please consider using the same method from the MeshBuilder class instead.
  33646. * A decal is a mesh usually applied as a model onto the surface of another mesh. So don't forget the parameter `sourceMesh` depicting the decal.
  33647. * The parameter `position` (Vector3, default `(0, 0, 0)`) sets the position of the decal in World coordinates.
  33648. * The parameter `normal` (Vector3, default Vector3.Up) sets the normal of the mesh where the decal is applied onto in World coordinates.
  33649. * The parameter `size` (Vector3, default `(1, 1, 1)`) sets the decal scaling.
  33650. * The parameter `angle` (float in radian, default 0) sets the angle to rotate the decal.
  33651. */
  33652. Mesh.CreateDecal = function (name, sourceMesh, position, normal, size, angle) {
  33653. var options = {
  33654. position: position,
  33655. normal: normal,
  33656. size: size,
  33657. angle: angle
  33658. };
  33659. return BABYLON.MeshBuilder.CreateDecal(name, sourceMesh, options);
  33660. };
  33661. // Skeletons
  33662. /**
  33663. * @returns original positions used for CPU skinning. Useful for integrating Morphing with skeletons in same mesh.
  33664. */
  33665. Mesh.prototype.setPositionsForCPUSkinning = function () {
  33666. if (!this._sourcePositions) {
  33667. var source = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  33668. if (!source) {
  33669. return this._sourcePositions;
  33670. }
  33671. this._sourcePositions = new Float32Array(source);
  33672. if (!this.isVertexBufferUpdatable(BABYLON.VertexBuffer.PositionKind)) {
  33673. this.setVerticesData(BABYLON.VertexBuffer.PositionKind, source, true);
  33674. }
  33675. }
  33676. return this._sourcePositions;
  33677. };
  33678. /**
  33679. * @returns original normals used for CPU skinning. Useful for integrating Morphing with skeletons in same mesh.
  33680. */
  33681. Mesh.prototype.setNormalsForCPUSkinning = function () {
  33682. if (!this._sourceNormals) {
  33683. var source = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  33684. if (!source) {
  33685. return this._sourceNormals;
  33686. }
  33687. this._sourceNormals = new Float32Array(source);
  33688. if (!this.isVertexBufferUpdatable(BABYLON.VertexBuffer.NormalKind)) {
  33689. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, source, true);
  33690. }
  33691. }
  33692. return this._sourceNormals;
  33693. };
  33694. /**
  33695. * Updates the vertex buffer by applying transformation from the bones.
  33696. * Returns the Mesh.
  33697. *
  33698. * @param {skeleton} skeleton to apply
  33699. */
  33700. Mesh.prototype.applySkeleton = function (skeleton) {
  33701. if (!this.geometry) {
  33702. return this;
  33703. }
  33704. if (this.geometry._softwareSkinningRenderId == this.getScene().getRenderId()) {
  33705. return this;
  33706. }
  33707. this.geometry._softwareSkinningRenderId = this.getScene().getRenderId();
  33708. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind)) {
  33709. return this;
  33710. }
  33711. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  33712. return this;
  33713. }
  33714. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesIndicesKind)) {
  33715. return this;
  33716. }
  33717. if (!this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesWeightsKind)) {
  33718. return this;
  33719. }
  33720. if (!this._sourcePositions) {
  33721. var submeshes = this.subMeshes.slice();
  33722. this.setPositionsForCPUSkinning();
  33723. this.subMeshes = submeshes;
  33724. }
  33725. if (!this._sourceNormals) {
  33726. this.setNormalsForCPUSkinning();
  33727. }
  33728. // positionsData checks for not being Float32Array will only pass at most once
  33729. var positionsData = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  33730. if (!positionsData) {
  33731. return this;
  33732. }
  33733. if (!(positionsData instanceof Float32Array)) {
  33734. positionsData = new Float32Array(positionsData);
  33735. }
  33736. // normalsData checks for not being Float32Array will only pass at most once
  33737. var normalsData = this.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  33738. if (!normalsData) {
  33739. return this;
  33740. }
  33741. if (!(normalsData instanceof Float32Array)) {
  33742. normalsData = new Float32Array(normalsData);
  33743. }
  33744. var matricesIndicesData = this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind);
  33745. var matricesWeightsData = this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind);
  33746. if (!matricesWeightsData || !matricesIndicesData) {
  33747. return this;
  33748. }
  33749. var needExtras = this.numBoneInfluencers > 4;
  33750. var matricesIndicesExtraData = needExtras ? this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind) : null;
  33751. var matricesWeightsExtraData = needExtras ? this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind) : null;
  33752. var skeletonMatrices = skeleton.getTransformMatrices(this);
  33753. var tempVector3 = BABYLON.Vector3.Zero();
  33754. var finalMatrix = new BABYLON.Matrix();
  33755. var tempMatrix = new BABYLON.Matrix();
  33756. var matWeightIdx = 0;
  33757. var inf;
  33758. for (var index = 0; index < positionsData.length; index += 3, matWeightIdx += 4) {
  33759. var weight;
  33760. for (inf = 0; inf < 4; inf++) {
  33761. weight = matricesWeightsData[matWeightIdx + inf];
  33762. if (weight > 0) {
  33763. BABYLON.Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, Math.floor(matricesIndicesData[matWeightIdx + inf] * 16), weight, tempMatrix);
  33764. finalMatrix.addToSelf(tempMatrix);
  33765. }
  33766. }
  33767. if (needExtras) {
  33768. for (inf = 0; inf < 4; inf++) {
  33769. weight = matricesWeightsExtraData[matWeightIdx + inf];
  33770. if (weight > 0) {
  33771. BABYLON.Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, Math.floor(matricesIndicesExtraData[matWeightIdx + inf] * 16), weight, tempMatrix);
  33772. finalMatrix.addToSelf(tempMatrix);
  33773. }
  33774. }
  33775. }
  33776. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(this._sourcePositions[index], this._sourcePositions[index + 1], this._sourcePositions[index + 2], finalMatrix, tempVector3);
  33777. tempVector3.toArray(positionsData, index);
  33778. BABYLON.Vector3.TransformNormalFromFloatsToRef(this._sourceNormals[index], this._sourceNormals[index + 1], this._sourceNormals[index + 2], finalMatrix, tempVector3);
  33779. tempVector3.toArray(normalsData, index);
  33780. finalMatrix.reset();
  33781. }
  33782. this.updateVerticesData(BABYLON.VertexBuffer.PositionKind, positionsData);
  33783. this.updateVerticesData(BABYLON.VertexBuffer.NormalKind, normalsData);
  33784. return this;
  33785. };
  33786. // Tools
  33787. /**
  33788. * Returns an object `{min:` Vector3`, max:` Vector3`}`
  33789. * This min and max Vector3 are the minimum and maximum vectors of each mesh bounding box from the passed array, in the World system
  33790. */
  33791. Mesh.MinMax = function (meshes) {
  33792. var minVector = null;
  33793. var maxVector = null;
  33794. meshes.forEach(function (mesh, index, array) {
  33795. var boundingInfo = mesh.getBoundingInfo();
  33796. var boundingBox = boundingInfo.boundingBox;
  33797. if (!minVector || !maxVector) {
  33798. minVector = boundingBox.minimumWorld;
  33799. maxVector = boundingBox.maximumWorld;
  33800. }
  33801. else {
  33802. minVector.minimizeInPlace(boundingBox.minimumWorld);
  33803. maxVector.maximizeInPlace(boundingBox.maximumWorld);
  33804. }
  33805. });
  33806. if (!minVector || !maxVector) {
  33807. return {
  33808. min: BABYLON.Vector3.Zero(),
  33809. max: BABYLON.Vector3.Zero()
  33810. };
  33811. }
  33812. return {
  33813. min: minVector,
  33814. max: maxVector
  33815. };
  33816. };
  33817. /**
  33818. * Returns a Vector3, the center of the `{min:` Vector3`, max:` Vector3`}` or the center of MinMax vector3 computed from a mesh array.
  33819. */
  33820. Mesh.Center = function (meshesOrMinMaxVector) {
  33821. var minMaxVector = (meshesOrMinMaxVector instanceof Array) ? Mesh.MinMax(meshesOrMinMaxVector) : meshesOrMinMaxVector;
  33822. return BABYLON.Vector3.Center(minMaxVector.min, minMaxVector.max);
  33823. };
  33824. /**
  33825. * Merge the array of meshes into a single mesh for performance reasons.
  33826. * @param meshes - The vertices source. They should all be of the same material. Entries can empty
  33827. * @param disposeSource - When true (default), dispose of the vertices from the source meshes
  33828. * @param allow32BitsIndices - When the sum of the vertices > 64k, this must be set to true.
  33829. * @param meshSubclass - When set, vertices inserted into this Mesh. Meshes can then be merged into a Mesh sub-class.
  33830. * @param subdivideWithSubMeshes - When true (false default), subdivide mesh to his subMesh array with meshes source.
  33831. */
  33832. Mesh.MergeMeshes = function (meshes, disposeSource, allow32BitsIndices, meshSubclass, subdivideWithSubMeshes) {
  33833. if (disposeSource === void 0) { disposeSource = true; }
  33834. var index;
  33835. if (!allow32BitsIndices) {
  33836. var totalVertices = 0;
  33837. // Counting vertices
  33838. for (index = 0; index < meshes.length; index++) {
  33839. if (meshes[index]) {
  33840. totalVertices += meshes[index].getTotalVertices();
  33841. if (totalVertices > 65536) {
  33842. BABYLON.Tools.Warn("Cannot merge meshes because resulting mesh will have more than 65536 vertices. Please use allow32BitsIndices = true to use 32 bits indices");
  33843. return null;
  33844. }
  33845. }
  33846. }
  33847. }
  33848. // Merge
  33849. var vertexData = null;
  33850. var otherVertexData;
  33851. var indiceArray = new Array();
  33852. var source = null;
  33853. for (index = 0; index < meshes.length; index++) {
  33854. if (meshes[index]) {
  33855. var wm = meshes[index].computeWorldMatrix(true);
  33856. otherVertexData = BABYLON.VertexData.ExtractFromMesh(meshes[index], true, true);
  33857. otherVertexData.transform(wm);
  33858. if (vertexData) {
  33859. vertexData.merge(otherVertexData, allow32BitsIndices);
  33860. }
  33861. else {
  33862. vertexData = otherVertexData;
  33863. source = meshes[index];
  33864. }
  33865. if (subdivideWithSubMeshes) {
  33866. indiceArray.push(meshes[index].getTotalIndices());
  33867. }
  33868. }
  33869. }
  33870. source = source;
  33871. if (!meshSubclass) {
  33872. meshSubclass = new Mesh(source.name + "_merged", source.getScene());
  33873. }
  33874. vertexData.applyToMesh(meshSubclass);
  33875. // Setting properties
  33876. meshSubclass.material = source.material;
  33877. meshSubclass.checkCollisions = source.checkCollisions;
  33878. // Cleaning
  33879. if (disposeSource) {
  33880. for (index = 0; index < meshes.length; index++) {
  33881. if (meshes[index]) {
  33882. meshes[index].dispose();
  33883. }
  33884. }
  33885. }
  33886. // Subdivide
  33887. if (subdivideWithSubMeshes) {
  33888. //-- removal of global submesh
  33889. meshSubclass.releaseSubMeshes();
  33890. index = 0;
  33891. var offset = 0;
  33892. //-- apply subdivision according to index table
  33893. while (index < indiceArray.length) {
  33894. BABYLON.SubMesh.CreateFromIndices(0, offset, indiceArray[index], meshSubclass);
  33895. offset += indiceArray[index];
  33896. index++;
  33897. }
  33898. }
  33899. return meshSubclass;
  33900. };
  33901. // Consts
  33902. Mesh._FRONTSIDE = 0;
  33903. Mesh._BACKSIDE = 1;
  33904. Mesh._DOUBLESIDE = 2;
  33905. Mesh._DEFAULTSIDE = 0;
  33906. Mesh._NO_CAP = 0;
  33907. Mesh._CAP_START = 1;
  33908. Mesh._CAP_END = 2;
  33909. Mesh._CAP_ALL = 3;
  33910. return Mesh;
  33911. }(BABYLON.AbstractMesh));
  33912. BABYLON.Mesh = Mesh;
  33913. })(BABYLON || (BABYLON = {}));
  33914. //# sourceMappingURL=babylon.mesh.js.map
  33915. var BABYLON;
  33916. (function (BABYLON) {
  33917. var BaseSubMesh = /** @class */ (function () {
  33918. function BaseSubMesh() {
  33919. }
  33920. Object.defineProperty(BaseSubMesh.prototype, "effect", {
  33921. get: function () {
  33922. return this._materialEffect;
  33923. },
  33924. enumerable: true,
  33925. configurable: true
  33926. });
  33927. BaseSubMesh.prototype.setEffect = function (effect, defines) {
  33928. if (defines === void 0) { defines = null; }
  33929. if (this._materialEffect === effect) {
  33930. if (!effect) {
  33931. this._materialDefines = null;
  33932. }
  33933. return;
  33934. }
  33935. this._materialDefines = defines;
  33936. this._materialEffect = effect;
  33937. };
  33938. return BaseSubMesh;
  33939. }());
  33940. BABYLON.BaseSubMesh = BaseSubMesh;
  33941. var SubMesh = /** @class */ (function (_super) {
  33942. __extends(SubMesh, _super);
  33943. function SubMesh(materialIndex, verticesStart, verticesCount, indexStart, indexCount, mesh, renderingMesh, createBoundingBox) {
  33944. if (createBoundingBox === void 0) { createBoundingBox = true; }
  33945. var _this = _super.call(this) || this;
  33946. _this.materialIndex = materialIndex;
  33947. _this.verticesStart = verticesStart;
  33948. _this.verticesCount = verticesCount;
  33949. _this.indexStart = indexStart;
  33950. _this.indexCount = indexCount;
  33951. /** @hidden */
  33952. _this._renderId = 0;
  33953. _this._mesh = mesh;
  33954. _this._renderingMesh = renderingMesh || mesh;
  33955. mesh.subMeshes.push(_this);
  33956. _this._trianglePlanes = [];
  33957. _this._id = mesh.subMeshes.length - 1;
  33958. if (createBoundingBox) {
  33959. _this.refreshBoundingInfo();
  33960. mesh.computeWorldMatrix(true);
  33961. }
  33962. return _this;
  33963. }
  33964. SubMesh.AddToMesh = function (materialIndex, verticesStart, verticesCount, indexStart, indexCount, mesh, renderingMesh, createBoundingBox) {
  33965. if (createBoundingBox === void 0) { createBoundingBox = true; }
  33966. return new SubMesh(materialIndex, verticesStart, verticesCount, indexStart, indexCount, mesh, renderingMesh, createBoundingBox);
  33967. };
  33968. Object.defineProperty(SubMesh.prototype, "IsGlobal", {
  33969. get: function () {
  33970. return (this.verticesStart === 0 && this.verticesCount == this._mesh.getTotalVertices());
  33971. },
  33972. enumerable: true,
  33973. configurable: true
  33974. });
  33975. /**
  33976. * Returns the submesh BoudingInfo object.
  33977. */
  33978. SubMesh.prototype.getBoundingInfo = function () {
  33979. if (this.IsGlobal) {
  33980. return this._mesh.getBoundingInfo();
  33981. }
  33982. return this._boundingInfo;
  33983. };
  33984. /**
  33985. * Sets the submesh BoundingInfo.
  33986. * Return the SubMesh.
  33987. */
  33988. SubMesh.prototype.setBoundingInfo = function (boundingInfo) {
  33989. this._boundingInfo = boundingInfo;
  33990. return this;
  33991. };
  33992. /**
  33993. * Returns the mesh of the current submesh.
  33994. */
  33995. SubMesh.prototype.getMesh = function () {
  33996. return this._mesh;
  33997. };
  33998. /**
  33999. * Returns the rendering mesh of the submesh.
  34000. */
  34001. SubMesh.prototype.getRenderingMesh = function () {
  34002. return this._renderingMesh;
  34003. };
  34004. /**
  34005. * Returns the submesh material.
  34006. */
  34007. SubMesh.prototype.getMaterial = function () {
  34008. var rootMaterial = this._renderingMesh.material;
  34009. if (rootMaterial === null || rootMaterial === undefined) {
  34010. return this._mesh.getScene().defaultMaterial;
  34011. }
  34012. else if (rootMaterial.getSubMaterial) {
  34013. var multiMaterial = rootMaterial;
  34014. var effectiveMaterial = multiMaterial.getSubMaterial(this.materialIndex);
  34015. if (this._currentMaterial !== effectiveMaterial) {
  34016. this._currentMaterial = effectiveMaterial;
  34017. this._materialDefines = null;
  34018. }
  34019. return effectiveMaterial;
  34020. }
  34021. return rootMaterial;
  34022. };
  34023. // Methods
  34024. /**
  34025. * Sets a new updated BoundingInfo object to the submesh.
  34026. * Returns the SubMesh.
  34027. */
  34028. SubMesh.prototype.refreshBoundingInfo = function () {
  34029. this._lastColliderWorldVertices = null;
  34030. if (this.IsGlobal || !this._renderingMesh || !this._renderingMesh.geometry) {
  34031. return this;
  34032. }
  34033. var data = this._renderingMesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  34034. if (!data) {
  34035. this._boundingInfo = this._mesh.getBoundingInfo();
  34036. return this;
  34037. }
  34038. var indices = this._renderingMesh.getIndices();
  34039. var extend;
  34040. //is this the only submesh?
  34041. if (this.indexStart === 0 && this.indexCount === indices.length) {
  34042. var boundingInfo = this._renderingMesh.getBoundingInfo();
  34043. //the rendering mesh's bounding info can be used, it is the standard submesh for all indices.
  34044. extend = { minimum: boundingInfo.minimum.clone(), maximum: boundingInfo.maximum.clone() };
  34045. }
  34046. else {
  34047. extend = BABYLON.Tools.ExtractMinAndMaxIndexed(data, indices, this.indexStart, this.indexCount, this._renderingMesh.geometry.boundingBias);
  34048. }
  34049. this._boundingInfo = new BABYLON.BoundingInfo(extend.minimum, extend.maximum);
  34050. return this;
  34051. };
  34052. /** @hidden */
  34053. SubMesh.prototype._checkCollision = function (collider) {
  34054. var boundingInfo = this.getBoundingInfo();
  34055. return boundingInfo._checkCollision(collider);
  34056. };
  34057. /**
  34058. * Updates the submesh BoundingInfo.
  34059. * Returns the Submesh.
  34060. */
  34061. SubMesh.prototype.updateBoundingInfo = function (world) {
  34062. var boundingInfo = this.getBoundingInfo();
  34063. if (!boundingInfo) {
  34064. this.refreshBoundingInfo();
  34065. boundingInfo = this.getBoundingInfo();
  34066. }
  34067. boundingInfo.update(world);
  34068. return this;
  34069. };
  34070. /**
  34071. * True is the submesh bounding box intersects the frustum defined by the passed array of planes.
  34072. * Boolean returned.
  34073. */
  34074. SubMesh.prototype.isInFrustum = function (frustumPlanes) {
  34075. var boundingInfo = this.getBoundingInfo();
  34076. if (!boundingInfo) {
  34077. return false;
  34078. }
  34079. return boundingInfo.isInFrustum(frustumPlanes);
  34080. };
  34081. /**
  34082. * True is the submesh bounding box is completely inside the frustum defined by the passed array of planes.
  34083. * Boolean returned.
  34084. */
  34085. SubMesh.prototype.isCompletelyInFrustum = function (frustumPlanes) {
  34086. var boundingInfo = this.getBoundingInfo();
  34087. if (!boundingInfo) {
  34088. return false;
  34089. }
  34090. return boundingInfo.isCompletelyInFrustum(frustumPlanes);
  34091. };
  34092. /**
  34093. * Renders the submesh.
  34094. * Returns it.
  34095. */
  34096. SubMesh.prototype.render = function (enableAlphaMode) {
  34097. this._renderingMesh.render(this, enableAlphaMode);
  34098. return this;
  34099. };
  34100. /**
  34101. * Returns a new Index Buffer.
  34102. * Type returned : WebGLBuffer.
  34103. */
  34104. SubMesh.prototype.getLinesIndexBuffer = function (indices, engine) {
  34105. if (!this._linesIndexBuffer) {
  34106. var linesIndices = [];
  34107. for (var index = this.indexStart; index < this.indexStart + this.indexCount; index += 3) {
  34108. linesIndices.push(indices[index], indices[index + 1], indices[index + 1], indices[index + 2], indices[index + 2], indices[index]);
  34109. }
  34110. this._linesIndexBuffer = engine.createIndexBuffer(linesIndices);
  34111. this.linesIndexCount = linesIndices.length;
  34112. }
  34113. return this._linesIndexBuffer;
  34114. };
  34115. /**
  34116. * True is the passed Ray intersects the submesh bounding box.
  34117. * Boolean returned.
  34118. */
  34119. SubMesh.prototype.canIntersects = function (ray) {
  34120. var boundingInfo = this.getBoundingInfo();
  34121. if (!boundingInfo) {
  34122. return false;
  34123. }
  34124. return ray.intersectsBox(boundingInfo.boundingBox);
  34125. };
  34126. /**
  34127. * Returns an object IntersectionInfo.
  34128. */
  34129. SubMesh.prototype.intersects = function (ray, positions, indices, fastCheck) {
  34130. var intersectInfo = null;
  34131. var material = this.getMaterial();
  34132. if (!material) {
  34133. return null;
  34134. }
  34135. switch (material.fillMode) {
  34136. case BABYLON.Material.PointListDrawMode:
  34137. case BABYLON.Material.LineListDrawMode:
  34138. case BABYLON.Material.LineLoopDrawMode:
  34139. case BABYLON.Material.LineStripDrawMode:
  34140. case BABYLON.Material.TriangleFanDrawMode:
  34141. case BABYLON.Material.TriangleStripDrawMode:
  34142. return null;
  34143. }
  34144. // LineMesh first as it's also a Mesh...
  34145. if (BABYLON.LinesMesh && this._mesh instanceof BABYLON.LinesMesh) {
  34146. var lineMesh = this._mesh;
  34147. // Line test
  34148. for (var index = this.indexStart; index < this.indexStart + this.indexCount; index += 2) {
  34149. var p0 = positions[indices[index]];
  34150. var p1 = positions[indices[index + 1]];
  34151. var length = ray.intersectionSegment(p0, p1, lineMesh.intersectionThreshold);
  34152. if (length < 0) {
  34153. continue;
  34154. }
  34155. if (fastCheck || !intersectInfo || length < intersectInfo.distance) {
  34156. intersectInfo = new BABYLON.IntersectionInfo(null, null, length);
  34157. if (fastCheck) {
  34158. break;
  34159. }
  34160. }
  34161. }
  34162. }
  34163. else {
  34164. // Triangles test
  34165. for (var index = this.indexStart; index < this.indexStart + this.indexCount; index += 3) {
  34166. var p0 = positions[indices[index]];
  34167. var p1 = positions[indices[index + 1]];
  34168. var p2 = positions[indices[index + 2]];
  34169. var currentIntersectInfo = ray.intersectsTriangle(p0, p1, p2);
  34170. if (currentIntersectInfo) {
  34171. if (currentIntersectInfo.distance < 0) {
  34172. continue;
  34173. }
  34174. if (fastCheck || !intersectInfo || currentIntersectInfo.distance < intersectInfo.distance) {
  34175. intersectInfo = currentIntersectInfo;
  34176. intersectInfo.faceId = index / 3;
  34177. if (fastCheck) {
  34178. break;
  34179. }
  34180. }
  34181. }
  34182. }
  34183. }
  34184. return intersectInfo;
  34185. };
  34186. /** @hidden */
  34187. SubMesh.prototype._rebuild = function () {
  34188. if (this._linesIndexBuffer) {
  34189. this._linesIndexBuffer = null;
  34190. }
  34191. };
  34192. // Clone
  34193. /**
  34194. * Creates a new Submesh from the passed Mesh.
  34195. */
  34196. SubMesh.prototype.clone = function (newMesh, newRenderingMesh) {
  34197. var result = new SubMesh(this.materialIndex, this.verticesStart, this.verticesCount, this.indexStart, this.indexCount, newMesh, newRenderingMesh, false);
  34198. if (!this.IsGlobal) {
  34199. var boundingInfo = this.getBoundingInfo();
  34200. if (!boundingInfo) {
  34201. return result;
  34202. }
  34203. result._boundingInfo = new BABYLON.BoundingInfo(boundingInfo.minimum, boundingInfo.maximum);
  34204. }
  34205. return result;
  34206. };
  34207. // Dispose
  34208. /**
  34209. * Disposes the Submesh.
  34210. * Returns nothing.
  34211. */
  34212. SubMesh.prototype.dispose = function () {
  34213. if (this._linesIndexBuffer) {
  34214. this._mesh.getScene().getEngine()._releaseBuffer(this._linesIndexBuffer);
  34215. this._linesIndexBuffer = null;
  34216. }
  34217. // Remove from mesh
  34218. var index = this._mesh.subMeshes.indexOf(this);
  34219. this._mesh.subMeshes.splice(index, 1);
  34220. };
  34221. // Statics
  34222. /**
  34223. * Creates a new Submesh from the passed parameters :
  34224. * - materialIndex (integer) : the index of the main mesh material.
  34225. * - startIndex (integer) : the index where to start the copy in the mesh indices array.
  34226. * - indexCount (integer) : the number of indices to copy then from the startIndex.
  34227. * - mesh (Mesh) : the main mesh to create the submesh from.
  34228. * - renderingMesh (optional Mesh) : rendering mesh.
  34229. */
  34230. SubMesh.CreateFromIndices = function (materialIndex, startIndex, indexCount, mesh, renderingMesh) {
  34231. var minVertexIndex = Number.MAX_VALUE;
  34232. var maxVertexIndex = -Number.MAX_VALUE;
  34233. renderingMesh = (renderingMesh || mesh);
  34234. var indices = renderingMesh.getIndices();
  34235. for (var index = startIndex; index < startIndex + indexCount; index++) {
  34236. var vertexIndex = indices[index];
  34237. if (vertexIndex < minVertexIndex)
  34238. minVertexIndex = vertexIndex;
  34239. if (vertexIndex > maxVertexIndex)
  34240. maxVertexIndex = vertexIndex;
  34241. }
  34242. return new SubMesh(materialIndex, minVertexIndex, maxVertexIndex - minVertexIndex + 1, startIndex, indexCount, mesh, renderingMesh);
  34243. };
  34244. return SubMesh;
  34245. }(BaseSubMesh));
  34246. BABYLON.SubMesh = SubMesh;
  34247. })(BABYLON || (BABYLON = {}));
  34248. //# sourceMappingURL=babylon.subMesh.js.map
  34249. var __assign = (this && this.__assign) || function () {
  34250. __assign = Object.assign || function(t) {
  34251. for (var s, i = 1, n = arguments.length; i < n; i++) {
  34252. s = arguments[i];
  34253. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  34254. t[p] = s[p];
  34255. }
  34256. return t;
  34257. };
  34258. return __assign.apply(this, arguments);
  34259. };
  34260. var BABYLON;
  34261. (function (BABYLON) {
  34262. /**
  34263. * Manages the defines for the Material
  34264. */
  34265. var MaterialDefines = /** @class */ (function () {
  34266. function MaterialDefines() {
  34267. this._isDirty = true;
  34268. /** @hidden */
  34269. this._areLightsDirty = true;
  34270. /** @hidden */
  34271. this._areAttributesDirty = true;
  34272. /** @hidden */
  34273. this._areTexturesDirty = true;
  34274. /** @hidden */
  34275. this._areFresnelDirty = true;
  34276. /** @hidden */
  34277. this._areMiscDirty = true;
  34278. /** @hidden */
  34279. this._areImageProcessingDirty = true;
  34280. /** @hidden */
  34281. this._normals = false;
  34282. /** @hidden */
  34283. this._uvs = false;
  34284. /** @hidden */
  34285. this._needNormals = false;
  34286. /** @hidden */
  34287. this._needUVs = false;
  34288. }
  34289. Object.defineProperty(MaterialDefines.prototype, "isDirty", {
  34290. /**
  34291. * Specifies if the material needs to be re-calculated
  34292. */
  34293. get: function () {
  34294. return this._isDirty;
  34295. },
  34296. enumerable: true,
  34297. configurable: true
  34298. });
  34299. /**
  34300. * Marks the material to indicate that it has been re-calculated
  34301. */
  34302. MaterialDefines.prototype.markAsProcessed = function () {
  34303. this._isDirty = false;
  34304. this._areAttributesDirty = false;
  34305. this._areTexturesDirty = false;
  34306. this._areFresnelDirty = false;
  34307. this._areLightsDirty = false;
  34308. this._areMiscDirty = false;
  34309. this._areImageProcessingDirty = false;
  34310. };
  34311. /**
  34312. * Marks the material to indicate that it needs to be re-calculated
  34313. */
  34314. MaterialDefines.prototype.markAsUnprocessed = function () {
  34315. this._isDirty = true;
  34316. };
  34317. /**
  34318. * Marks the material to indicate all of its defines need to be re-calculated
  34319. */
  34320. MaterialDefines.prototype.markAllAsDirty = function () {
  34321. this._areTexturesDirty = true;
  34322. this._areAttributesDirty = true;
  34323. this._areLightsDirty = true;
  34324. this._areFresnelDirty = true;
  34325. this._areMiscDirty = true;
  34326. this._areImageProcessingDirty = true;
  34327. this._isDirty = true;
  34328. };
  34329. /**
  34330. * Marks the material to indicate that image processing needs to be re-calculated
  34331. */
  34332. MaterialDefines.prototype.markAsImageProcessingDirty = function () {
  34333. this._areImageProcessingDirty = true;
  34334. this._isDirty = true;
  34335. };
  34336. /**
  34337. * Marks the material to indicate the lights need to be re-calculated
  34338. */
  34339. MaterialDefines.prototype.markAsLightDirty = function () {
  34340. this._areLightsDirty = true;
  34341. this._isDirty = true;
  34342. };
  34343. /**
  34344. * Marks the attribute state as changed
  34345. */
  34346. MaterialDefines.prototype.markAsAttributesDirty = function () {
  34347. this._areAttributesDirty = true;
  34348. this._isDirty = true;
  34349. };
  34350. /**
  34351. * Marks the texture state as changed
  34352. */
  34353. MaterialDefines.prototype.markAsTexturesDirty = function () {
  34354. this._areTexturesDirty = true;
  34355. this._isDirty = true;
  34356. };
  34357. /**
  34358. * Marks the fresnel state as changed
  34359. */
  34360. MaterialDefines.prototype.markAsFresnelDirty = function () {
  34361. this._areFresnelDirty = true;
  34362. this._isDirty = true;
  34363. };
  34364. /**
  34365. * Marks the misc state as changed
  34366. */
  34367. MaterialDefines.prototype.markAsMiscDirty = function () {
  34368. this._areMiscDirty = true;
  34369. this._isDirty = true;
  34370. };
  34371. /**
  34372. * Rebuilds the material defines
  34373. */
  34374. MaterialDefines.prototype.rebuild = function () {
  34375. if (this._keys) {
  34376. delete this._keys;
  34377. }
  34378. this._keys = [];
  34379. for (var _i = 0, _a = Object.keys(this); _i < _a.length; _i++) {
  34380. var key = _a[_i];
  34381. if (key[0] === "_") {
  34382. continue;
  34383. }
  34384. this._keys.push(key);
  34385. }
  34386. };
  34387. /**
  34388. * Specifies if two material defines are equal
  34389. * @param other - A material define instance to compare to
  34390. * @returns - Boolean indicating if the material defines are equal (true) or not (false)
  34391. */
  34392. MaterialDefines.prototype.isEqual = function (other) {
  34393. if (this._keys.length !== other._keys.length) {
  34394. return false;
  34395. }
  34396. for (var index = 0; index < this._keys.length; index++) {
  34397. var prop = this._keys[index];
  34398. if (this[prop] !== other[prop]) {
  34399. return false;
  34400. }
  34401. }
  34402. return true;
  34403. };
  34404. /**
  34405. * Clones this instance's defines to another instance
  34406. * @param other - material defines to clone values to
  34407. */
  34408. MaterialDefines.prototype.cloneTo = function (other) {
  34409. if (this._keys.length !== other._keys.length) {
  34410. other._keys = this._keys.slice(0);
  34411. }
  34412. for (var index = 0; index < this._keys.length; index++) {
  34413. var prop = this._keys[index];
  34414. other[prop] = this[prop];
  34415. }
  34416. };
  34417. /**
  34418. * Resets the material define values
  34419. */
  34420. MaterialDefines.prototype.reset = function () {
  34421. for (var index = 0; index < this._keys.length; index++) {
  34422. var prop = this._keys[index];
  34423. var type = typeof this[prop];
  34424. switch (type) {
  34425. case "number":
  34426. this[prop] = 0;
  34427. break;
  34428. case "string":
  34429. this[prop] = "";
  34430. break;
  34431. default:
  34432. this[prop] = false;
  34433. break;
  34434. }
  34435. }
  34436. };
  34437. /**
  34438. * Converts the material define values to a string
  34439. * @returns - String of material define information
  34440. */
  34441. MaterialDefines.prototype.toString = function () {
  34442. var result = "";
  34443. for (var index = 0; index < this._keys.length; index++) {
  34444. var prop = this._keys[index];
  34445. var value = this[prop];
  34446. var type = typeof value;
  34447. switch (type) {
  34448. case "number":
  34449. case "string":
  34450. result += "#define " + prop + " " + value + "\n";
  34451. break;
  34452. default:
  34453. if (value) {
  34454. result += "#define " + prop + "\n";
  34455. }
  34456. break;
  34457. }
  34458. }
  34459. return result;
  34460. };
  34461. return MaterialDefines;
  34462. }());
  34463. BABYLON.MaterialDefines = MaterialDefines;
  34464. /**
  34465. * Base class for the main features of a material in Babylon.js
  34466. */
  34467. var Material = /** @class */ (function () {
  34468. /**
  34469. * Creates a material instance
  34470. * @param name defines the name of the material
  34471. * @param scene defines the scene to reference
  34472. * @param doNotAdd specifies if the material should be added to the scene
  34473. */
  34474. function Material(name, scene, doNotAdd) {
  34475. /**
  34476. * Specifies if the ready state should be checked on each call
  34477. */
  34478. this.checkReadyOnEveryCall = false;
  34479. /**
  34480. * Specifies if the ready state should be checked once
  34481. */
  34482. this.checkReadyOnlyOnce = false;
  34483. /**
  34484. * The state of the material
  34485. */
  34486. this.state = "";
  34487. /**
  34488. * The alpha value of the material
  34489. */
  34490. this._alpha = 1.0;
  34491. /**
  34492. * Specifies if back face culling is enabled
  34493. */
  34494. this._backFaceCulling = true;
  34495. /**
  34496. * Specifies if the material should be serialized
  34497. */
  34498. this.doNotSerialize = false;
  34499. /**
  34500. * Specifies if the effect should be stored on sub meshes
  34501. */
  34502. this.storeEffectOnSubMeshes = false;
  34503. /**
  34504. * An event triggered when the material is disposed
  34505. */
  34506. this.onDisposeObservable = new BABYLON.Observable();
  34507. /**
  34508. * Stores the value of the alpha mode
  34509. */
  34510. this._alphaMode = BABYLON.Engine.ALPHA_COMBINE;
  34511. /**
  34512. * Stores the state of the need depth pre-pass value
  34513. */
  34514. this._needDepthPrePass = false;
  34515. /**
  34516. * Specifies if depth writing should be disabled
  34517. */
  34518. this.disableDepthWrite = false;
  34519. /**
  34520. * Specifies if depth writing should be forced
  34521. */
  34522. this.forceDepthWrite = false;
  34523. /**
  34524. * Specifies if there should be a separate pass for culling
  34525. */
  34526. this.separateCullingPass = false;
  34527. /**
  34528. * Stores the state specifing if fog should be enabled
  34529. */
  34530. this._fogEnabled = true;
  34531. /**
  34532. * Stores the size of points
  34533. */
  34534. this.pointSize = 1.0;
  34535. /**
  34536. * Stores the z offset value
  34537. */
  34538. this.zOffset = 0;
  34539. /**
  34540. * @hidden
  34541. * Specifies if the material was previously ready
  34542. */
  34543. this._wasPreviouslyReady = false;
  34544. /**
  34545. * Stores the fill mode state
  34546. */
  34547. this._fillMode = Material.TriangleFillMode;
  34548. this.name = name;
  34549. this.id = name || BABYLON.Tools.RandomId();
  34550. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  34551. this.uniqueId = this._scene.getUniqueId();
  34552. if (this._scene.useRightHandedSystem) {
  34553. this.sideOrientation = Material.ClockWiseSideOrientation;
  34554. }
  34555. else {
  34556. this.sideOrientation = Material.CounterClockWiseSideOrientation;
  34557. }
  34558. this._uniformBuffer = new BABYLON.UniformBuffer(this._scene.getEngine());
  34559. this._useUBO = this.getScene().getEngine().supportsUniformBuffers;
  34560. if (!doNotAdd) {
  34561. this._scene.materials.push(this);
  34562. }
  34563. }
  34564. Object.defineProperty(Material, "TriangleFillMode", {
  34565. /**
  34566. * Returns the triangle fill mode
  34567. */
  34568. get: function () {
  34569. return Material._TriangleFillMode;
  34570. },
  34571. enumerable: true,
  34572. configurable: true
  34573. });
  34574. Object.defineProperty(Material, "WireFrameFillMode", {
  34575. /**
  34576. * Returns the wireframe mode
  34577. */
  34578. get: function () {
  34579. return Material._WireFrameFillMode;
  34580. },
  34581. enumerable: true,
  34582. configurable: true
  34583. });
  34584. Object.defineProperty(Material, "PointFillMode", {
  34585. /**
  34586. * Returns the point fill mode
  34587. */
  34588. get: function () {
  34589. return Material._PointFillMode;
  34590. },
  34591. enumerable: true,
  34592. configurable: true
  34593. });
  34594. Object.defineProperty(Material, "PointListDrawMode", {
  34595. /**
  34596. * Returns the point list draw mode
  34597. */
  34598. get: function () {
  34599. return Material._PointListDrawMode;
  34600. },
  34601. enumerable: true,
  34602. configurable: true
  34603. });
  34604. Object.defineProperty(Material, "LineListDrawMode", {
  34605. /**
  34606. * Returns the line list draw mode
  34607. */
  34608. get: function () {
  34609. return Material._LineListDrawMode;
  34610. },
  34611. enumerable: true,
  34612. configurable: true
  34613. });
  34614. Object.defineProperty(Material, "LineLoopDrawMode", {
  34615. /**
  34616. * Returns the line loop draw mode
  34617. */
  34618. get: function () {
  34619. return Material._LineLoopDrawMode;
  34620. },
  34621. enumerable: true,
  34622. configurable: true
  34623. });
  34624. Object.defineProperty(Material, "LineStripDrawMode", {
  34625. /**
  34626. * Returns the line strip draw mode
  34627. */
  34628. get: function () {
  34629. return Material._LineStripDrawMode;
  34630. },
  34631. enumerable: true,
  34632. configurable: true
  34633. });
  34634. Object.defineProperty(Material, "TriangleStripDrawMode", {
  34635. /**
  34636. * Returns the triangle strip draw mode
  34637. */
  34638. get: function () {
  34639. return Material._TriangleStripDrawMode;
  34640. },
  34641. enumerable: true,
  34642. configurable: true
  34643. });
  34644. Object.defineProperty(Material, "TriangleFanDrawMode", {
  34645. /**
  34646. * Returns the triangle fan draw mode
  34647. */
  34648. get: function () {
  34649. return Material._TriangleFanDrawMode;
  34650. },
  34651. enumerable: true,
  34652. configurable: true
  34653. });
  34654. Object.defineProperty(Material, "ClockWiseSideOrientation", {
  34655. /**
  34656. * Returns the clock-wise side orientation
  34657. */
  34658. get: function () {
  34659. return Material._ClockWiseSideOrientation;
  34660. },
  34661. enumerable: true,
  34662. configurable: true
  34663. });
  34664. Object.defineProperty(Material, "CounterClockWiseSideOrientation", {
  34665. /**
  34666. * Returns the counter clock-wise side orientation
  34667. */
  34668. get: function () {
  34669. return Material._CounterClockWiseSideOrientation;
  34670. },
  34671. enumerable: true,
  34672. configurable: true
  34673. });
  34674. Object.defineProperty(Material, "TextureDirtyFlag", {
  34675. /**
  34676. * Returns the dirty texture flag value
  34677. */
  34678. get: function () {
  34679. return Material._TextureDirtyFlag;
  34680. },
  34681. enumerable: true,
  34682. configurable: true
  34683. });
  34684. Object.defineProperty(Material, "LightDirtyFlag", {
  34685. /**
  34686. * Returns the dirty light flag value
  34687. */
  34688. get: function () {
  34689. return Material._LightDirtyFlag;
  34690. },
  34691. enumerable: true,
  34692. configurable: true
  34693. });
  34694. Object.defineProperty(Material, "FresnelDirtyFlag", {
  34695. /**
  34696. * Returns the dirty fresnel flag value
  34697. */
  34698. get: function () {
  34699. return Material._FresnelDirtyFlag;
  34700. },
  34701. enumerable: true,
  34702. configurable: true
  34703. });
  34704. Object.defineProperty(Material, "AttributesDirtyFlag", {
  34705. /**
  34706. * Returns the dirty attributes flag value
  34707. */
  34708. get: function () {
  34709. return Material._AttributesDirtyFlag;
  34710. },
  34711. enumerable: true,
  34712. configurable: true
  34713. });
  34714. Object.defineProperty(Material, "MiscDirtyFlag", {
  34715. /**
  34716. * Returns the dirty misc flag value
  34717. */
  34718. get: function () {
  34719. return Material._MiscDirtyFlag;
  34720. },
  34721. enumerable: true,
  34722. configurable: true
  34723. });
  34724. Object.defineProperty(Material.prototype, "alpha", {
  34725. /**
  34726. * Gets the alpha value of the material
  34727. */
  34728. get: function () {
  34729. return this._alpha;
  34730. },
  34731. /**
  34732. * Sets the alpha value of the material
  34733. */
  34734. set: function (value) {
  34735. if (this._alpha === value) {
  34736. return;
  34737. }
  34738. this._alpha = value;
  34739. this.markAsDirty(Material.MiscDirtyFlag);
  34740. },
  34741. enumerable: true,
  34742. configurable: true
  34743. });
  34744. Object.defineProperty(Material.prototype, "backFaceCulling", {
  34745. /**
  34746. * Gets the back-face culling state
  34747. */
  34748. get: function () {
  34749. return this._backFaceCulling;
  34750. },
  34751. /**
  34752. * Sets the back-face culling state
  34753. */
  34754. set: function (value) {
  34755. if (this._backFaceCulling === value) {
  34756. return;
  34757. }
  34758. this._backFaceCulling = value;
  34759. this.markAsDirty(Material.TextureDirtyFlag);
  34760. },
  34761. enumerable: true,
  34762. configurable: true
  34763. });
  34764. Object.defineProperty(Material.prototype, "onDispose", {
  34765. /**
  34766. * Called during a dispose event
  34767. */
  34768. set: function (callback) {
  34769. if (this._onDisposeObserver) {
  34770. this.onDisposeObservable.remove(this._onDisposeObserver);
  34771. }
  34772. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  34773. },
  34774. enumerable: true,
  34775. configurable: true
  34776. });
  34777. Object.defineProperty(Material.prototype, "onBindObservable", {
  34778. /**
  34779. * An event triggered when the material is bound
  34780. */
  34781. get: function () {
  34782. if (!this._onBindObservable) {
  34783. this._onBindObservable = new BABYLON.Observable();
  34784. }
  34785. return this._onBindObservable;
  34786. },
  34787. enumerable: true,
  34788. configurable: true
  34789. });
  34790. Object.defineProperty(Material.prototype, "onBind", {
  34791. /**
  34792. * Called during a bind event
  34793. */
  34794. set: function (callback) {
  34795. if (this._onBindObserver) {
  34796. this.onBindObservable.remove(this._onBindObserver);
  34797. }
  34798. this._onBindObserver = this.onBindObservable.add(callback);
  34799. },
  34800. enumerable: true,
  34801. configurable: true
  34802. });
  34803. Object.defineProperty(Material.prototype, "onUnBindObservable", {
  34804. /**
  34805. * An event triggered when the material is unbound
  34806. */
  34807. get: function () {
  34808. if (!this._onUnBindObservable) {
  34809. this._onUnBindObservable = new BABYLON.Observable();
  34810. }
  34811. return this._onUnBindObservable;
  34812. },
  34813. enumerable: true,
  34814. configurable: true
  34815. });
  34816. Object.defineProperty(Material.prototype, "alphaMode", {
  34817. /**
  34818. * Gets the value of the alpha mode
  34819. */
  34820. get: function () {
  34821. return this._alphaMode;
  34822. },
  34823. /**
  34824. * Sets the value of the alpha mode.
  34825. *
  34826. * | Value | Type | Description |
  34827. * | --- | --- | --- |
  34828. * | 0 | ALPHA_DISABLE | |
  34829. * | 1 | ALPHA_ADD | |
  34830. * | 2 | ALPHA_COMBINE | |
  34831. * | 3 | ALPHA_SUBTRACT | |
  34832. * | 4 | ALPHA_MULTIPLY | |
  34833. * | 5 | ALPHA_MAXIMIZED | |
  34834. * | 6 | ALPHA_ONEONE | |
  34835. * | 7 | ALPHA_PREMULTIPLIED | |
  34836. * | 8 | ALPHA_PREMULTIPLIED_PORTERDUFF | |
  34837. * | 9 | ALPHA_INTERPOLATE | |
  34838. * | 10 | ALPHA_SCREENMODE | |
  34839. *
  34840. */
  34841. set: function (value) {
  34842. if (this._alphaMode === value) {
  34843. return;
  34844. }
  34845. this._alphaMode = value;
  34846. this.markAsDirty(Material.TextureDirtyFlag);
  34847. },
  34848. enumerable: true,
  34849. configurable: true
  34850. });
  34851. Object.defineProperty(Material.prototype, "needDepthPrePass", {
  34852. /**
  34853. * Gets the depth pre-pass value
  34854. */
  34855. get: function () {
  34856. return this._needDepthPrePass;
  34857. },
  34858. /**
  34859. * Sets the need depth pre-pass value
  34860. */
  34861. set: function (value) {
  34862. if (this._needDepthPrePass === value) {
  34863. return;
  34864. }
  34865. this._needDepthPrePass = value;
  34866. if (this._needDepthPrePass) {
  34867. this.checkReadyOnEveryCall = true;
  34868. }
  34869. },
  34870. enumerable: true,
  34871. configurable: true
  34872. });
  34873. Object.defineProperty(Material.prototype, "fogEnabled", {
  34874. /**
  34875. * Gets the value of the fog enabled state
  34876. */
  34877. get: function () {
  34878. return this._fogEnabled;
  34879. },
  34880. /**
  34881. * Sets the state for enabling fog
  34882. */
  34883. set: function (value) {
  34884. if (this._fogEnabled === value) {
  34885. return;
  34886. }
  34887. this._fogEnabled = value;
  34888. this.markAsDirty(Material.MiscDirtyFlag);
  34889. },
  34890. enumerable: true,
  34891. configurable: true
  34892. });
  34893. Object.defineProperty(Material.prototype, "wireframe", {
  34894. /**
  34895. * Gets a value specifying if wireframe mode is enabled
  34896. */
  34897. get: function () {
  34898. switch (this._fillMode) {
  34899. case Material.WireFrameFillMode:
  34900. case Material.LineListDrawMode:
  34901. case Material.LineLoopDrawMode:
  34902. case Material.LineStripDrawMode:
  34903. return true;
  34904. }
  34905. return this._scene.forceWireframe;
  34906. },
  34907. /**
  34908. * Sets the state of wireframe mode
  34909. */
  34910. set: function (value) {
  34911. this.fillMode = (value ? Material.WireFrameFillMode : Material.TriangleFillMode);
  34912. },
  34913. enumerable: true,
  34914. configurable: true
  34915. });
  34916. Object.defineProperty(Material.prototype, "pointsCloud", {
  34917. /**
  34918. * Gets the value specifying if point clouds are enabled
  34919. */
  34920. get: function () {
  34921. switch (this._fillMode) {
  34922. case Material.PointFillMode:
  34923. case Material.PointListDrawMode:
  34924. return true;
  34925. }
  34926. return this._scene.forcePointsCloud;
  34927. },
  34928. /**
  34929. * Sets the state of point cloud mode
  34930. */
  34931. set: function (value) {
  34932. this.fillMode = (value ? Material.PointFillMode : Material.TriangleFillMode);
  34933. },
  34934. enumerable: true,
  34935. configurable: true
  34936. });
  34937. Object.defineProperty(Material.prototype, "fillMode", {
  34938. /**
  34939. * Gets the material fill mode
  34940. */
  34941. get: function () {
  34942. return this._fillMode;
  34943. },
  34944. /**
  34945. * Sets the material fill mode
  34946. */
  34947. set: function (value) {
  34948. if (this._fillMode === value) {
  34949. return;
  34950. }
  34951. this._fillMode = value;
  34952. this.markAsDirty(Material.MiscDirtyFlag);
  34953. },
  34954. enumerable: true,
  34955. configurable: true
  34956. });
  34957. /**
  34958. * Returns a string representation of the current material
  34959. * @param fullDetails defines a boolean indicating which levels of logging is desired
  34960. * @returns a string with material information
  34961. */
  34962. Material.prototype.toString = function (fullDetails) {
  34963. var ret = "Name: " + this.name;
  34964. if (fullDetails) {
  34965. }
  34966. return ret;
  34967. };
  34968. /**
  34969. * Gets the class name of the material
  34970. * @returns a string with the class name of the material
  34971. */
  34972. Material.prototype.getClassName = function () {
  34973. return "Material";
  34974. };
  34975. Object.defineProperty(Material.prototype, "isFrozen", {
  34976. /**
  34977. * Specifies if updates for the material been locked
  34978. */
  34979. get: function () {
  34980. return this.checkReadyOnlyOnce;
  34981. },
  34982. enumerable: true,
  34983. configurable: true
  34984. });
  34985. /**
  34986. * Locks updates for the material
  34987. */
  34988. Material.prototype.freeze = function () {
  34989. this.checkReadyOnlyOnce = true;
  34990. };
  34991. /**
  34992. * Unlocks updates for the material
  34993. */
  34994. Material.prototype.unfreeze = function () {
  34995. this.checkReadyOnlyOnce = false;
  34996. };
  34997. /**
  34998. * Specifies if the material is ready to be used
  34999. * @param mesh defines the mesh to check
  35000. * @param useInstances specifies if instances should be used
  35001. * @returns a boolean indicating if the material is ready to be used
  35002. */
  35003. Material.prototype.isReady = function (mesh, useInstances) {
  35004. return true;
  35005. };
  35006. /**
  35007. * Specifies that the submesh is ready to be used
  35008. * @param mesh defines the mesh to check
  35009. * @param subMesh defines which submesh to check
  35010. * @param useInstances specifies that instances should be used
  35011. * @returns a boolean indicating that the submesh is ready or not
  35012. */
  35013. Material.prototype.isReadyForSubMesh = function (mesh, subMesh, useInstances) {
  35014. return false;
  35015. };
  35016. /**
  35017. * Returns the material effect
  35018. * @returns the effect associated with the material
  35019. */
  35020. Material.prototype.getEffect = function () {
  35021. return this._effect;
  35022. };
  35023. /**
  35024. * Returns the current scene
  35025. * @returns a Scene
  35026. */
  35027. Material.prototype.getScene = function () {
  35028. return this._scene;
  35029. };
  35030. /**
  35031. * Specifies if the material will require alpha blending
  35032. * @returns a boolean specifying if alpha blending is needed
  35033. */
  35034. Material.prototype.needAlphaBlending = function () {
  35035. return (this.alpha < 1.0);
  35036. };
  35037. /**
  35038. * Specifies if the mesh will require alpha blending
  35039. * @param mesh defines the mesh to check
  35040. * @returns a boolean specifying if alpha blending is needed for the mesh
  35041. */
  35042. Material.prototype.needAlphaBlendingForMesh = function (mesh) {
  35043. return this.needAlphaBlending() || (mesh.visibility < 1.0) || mesh.hasVertexAlpha;
  35044. };
  35045. /**
  35046. * Specifies if this material should be rendered in alpha test mode
  35047. * @returns a boolean specifying if an alpha test is needed.
  35048. */
  35049. Material.prototype.needAlphaTesting = function () {
  35050. return false;
  35051. };
  35052. /**
  35053. * Gets the texture used for the alpha test
  35054. * @returns the texture to use for alpha testing
  35055. */
  35056. Material.prototype.getAlphaTestTexture = function () {
  35057. return null;
  35058. };
  35059. /**
  35060. * Marks the material to indicate that it needs to be re-calculated
  35061. */
  35062. Material.prototype.markDirty = function () {
  35063. this._wasPreviouslyReady = false;
  35064. };
  35065. /** @hidden */
  35066. Material.prototype._preBind = function (effect, overrideOrientation) {
  35067. if (overrideOrientation === void 0) { overrideOrientation = null; }
  35068. var engine = this._scene.getEngine();
  35069. var orientation = (overrideOrientation == null) ? this.sideOrientation : overrideOrientation;
  35070. var reverse = orientation === Material.ClockWiseSideOrientation;
  35071. engine.enableEffect(effect ? effect : this._effect);
  35072. engine.setState(this.backFaceCulling, this.zOffset, false, reverse);
  35073. return reverse;
  35074. };
  35075. /**
  35076. * Binds the material to the mesh
  35077. * @param world defines the world transformation matrix
  35078. * @param mesh defines the mesh to bind the material to
  35079. */
  35080. Material.prototype.bind = function (world, mesh) {
  35081. };
  35082. /**
  35083. * Binds the submesh to the material
  35084. * @param world defines the world transformation matrix
  35085. * @param mesh defines the mesh containing the submesh
  35086. * @param subMesh defines the submesh to bind the material to
  35087. */
  35088. Material.prototype.bindForSubMesh = function (world, mesh, subMesh) {
  35089. };
  35090. /**
  35091. * Binds the world matrix to the material
  35092. * @param world defines the world transformation matrix
  35093. */
  35094. Material.prototype.bindOnlyWorldMatrix = function (world) {
  35095. };
  35096. /**
  35097. * Binds the scene's uniform buffer to the effect.
  35098. * @param effect defines the effect to bind to the scene uniform buffer
  35099. * @param sceneUbo defines the uniform buffer storing scene data
  35100. */
  35101. Material.prototype.bindSceneUniformBuffer = function (effect, sceneUbo) {
  35102. sceneUbo.bindToEffect(effect, "Scene");
  35103. };
  35104. /**
  35105. * Binds the view matrix to the effect
  35106. * @param effect defines the effect to bind the view matrix to
  35107. */
  35108. Material.prototype.bindView = function (effect) {
  35109. if (!this._useUBO) {
  35110. effect.setMatrix("view", this.getScene().getViewMatrix());
  35111. }
  35112. else {
  35113. this.bindSceneUniformBuffer(effect, this.getScene().getSceneUniformBuffer());
  35114. }
  35115. };
  35116. /**
  35117. * Binds the view projection matrix to the effect
  35118. * @param effect defines the effect to bind the view projection matrix to
  35119. */
  35120. Material.prototype.bindViewProjection = function (effect) {
  35121. if (!this._useUBO) {
  35122. effect.setMatrix("viewProjection", this.getScene().getTransformMatrix());
  35123. }
  35124. else {
  35125. this.bindSceneUniformBuffer(effect, this.getScene().getSceneUniformBuffer());
  35126. }
  35127. };
  35128. /**
  35129. * Specifies if material alpha testing should be turned on for the mesh
  35130. * @param mesh defines the mesh to check
  35131. */
  35132. Material.prototype._shouldTurnAlphaTestOn = function (mesh) {
  35133. return (!this.needAlphaBlendingForMesh(mesh) && this.needAlphaTesting());
  35134. };
  35135. /**
  35136. * Processes to execute after binding the material to a mesh
  35137. * @param mesh defines the rendered mesh
  35138. */
  35139. Material.prototype._afterBind = function (mesh) {
  35140. this._scene._cachedMaterial = this;
  35141. if (mesh) {
  35142. this._scene._cachedVisibility = mesh.visibility;
  35143. }
  35144. else {
  35145. this._scene._cachedVisibility = 1;
  35146. }
  35147. if (this._onBindObservable && mesh) {
  35148. this._onBindObservable.notifyObservers(mesh);
  35149. }
  35150. if (this.disableDepthWrite) {
  35151. var engine = this._scene.getEngine();
  35152. this._cachedDepthWriteState = engine.getDepthWrite();
  35153. engine.setDepthWrite(false);
  35154. }
  35155. };
  35156. /**
  35157. * Unbinds the material from the mesh
  35158. */
  35159. Material.prototype.unbind = function () {
  35160. if (this._onUnBindObservable) {
  35161. this._onUnBindObservable.notifyObservers(this);
  35162. }
  35163. if (this.disableDepthWrite) {
  35164. var engine = this._scene.getEngine();
  35165. engine.setDepthWrite(this._cachedDepthWriteState);
  35166. }
  35167. };
  35168. /**
  35169. * Gets the active textures from the material
  35170. * @returns an array of textures
  35171. */
  35172. Material.prototype.getActiveTextures = function () {
  35173. return [];
  35174. };
  35175. /**
  35176. * Specifies if the material uses a texture
  35177. * @param texture defines the texture to check against the material
  35178. * @returns a boolean specifying if the material uses the texture
  35179. */
  35180. Material.prototype.hasTexture = function (texture) {
  35181. return false;
  35182. };
  35183. /**
  35184. * Makes a duplicate of the material, and gives it a new name
  35185. * @param name defines the new name for the duplicated material
  35186. * @returns the cloned material
  35187. */
  35188. Material.prototype.clone = function (name) {
  35189. return null;
  35190. };
  35191. /**
  35192. * Gets the meshes bound to the material
  35193. * @returns an array of meshes bound to the material
  35194. */
  35195. Material.prototype.getBindedMeshes = function () {
  35196. var result = new Array();
  35197. for (var index = 0; index < this._scene.meshes.length; index++) {
  35198. var mesh = this._scene.meshes[index];
  35199. if (mesh.material === this) {
  35200. result.push(mesh);
  35201. }
  35202. }
  35203. return result;
  35204. };
  35205. /**
  35206. * Force shader compilation
  35207. * @param mesh defines the mesh associated with this material
  35208. * @param onCompiled defines a function to execute once the material is compiled
  35209. * @param options defines the options to configure the compilation
  35210. */
  35211. Material.prototype.forceCompilation = function (mesh, onCompiled, options) {
  35212. var _this = this;
  35213. var localOptions = __assign({ clipPlane: false }, options);
  35214. var subMesh = new BABYLON.BaseSubMesh();
  35215. var scene = this.getScene();
  35216. var checkReady = function () {
  35217. if (!_this._scene || !_this._scene.getEngine()) {
  35218. return;
  35219. }
  35220. if (subMesh._materialDefines) {
  35221. subMesh._materialDefines._renderId = -1;
  35222. }
  35223. var clipPlaneState = scene.clipPlane;
  35224. if (localOptions.clipPlane) {
  35225. scene.clipPlane = new BABYLON.Plane(0, 0, 0, 1);
  35226. }
  35227. if (_this.storeEffectOnSubMeshes) {
  35228. if (_this.isReadyForSubMesh(mesh, subMesh)) {
  35229. if (onCompiled) {
  35230. onCompiled(_this);
  35231. }
  35232. }
  35233. else {
  35234. setTimeout(checkReady, 16);
  35235. }
  35236. }
  35237. else {
  35238. if (_this.isReady(mesh)) {
  35239. if (onCompiled) {
  35240. onCompiled(_this);
  35241. }
  35242. }
  35243. else {
  35244. setTimeout(checkReady, 16);
  35245. }
  35246. }
  35247. if (localOptions.clipPlane) {
  35248. scene.clipPlane = clipPlaneState;
  35249. }
  35250. };
  35251. checkReady();
  35252. };
  35253. /**
  35254. * Force shader compilation
  35255. * @param mesh defines the mesh that will use this material
  35256. * @param options defines additional options for compiling the shaders
  35257. * @returns a promise that resolves when the compilation completes
  35258. */
  35259. Material.prototype.forceCompilationAsync = function (mesh, options) {
  35260. var _this = this;
  35261. return new Promise(function (resolve) {
  35262. _this.forceCompilation(mesh, function () {
  35263. resolve();
  35264. }, options);
  35265. });
  35266. };
  35267. /**
  35268. * Marks a define in the material to indicate that it needs to be re-computed
  35269. * @param flag defines a flag used to determine which parts of the material have to be marked as dirty
  35270. */
  35271. Material.prototype.markAsDirty = function (flag) {
  35272. if (flag & Material.TextureDirtyFlag) {
  35273. this._markAllSubMeshesAsTexturesDirty();
  35274. }
  35275. if (flag & Material.LightDirtyFlag) {
  35276. this._markAllSubMeshesAsLightsDirty();
  35277. }
  35278. if (flag & Material.FresnelDirtyFlag) {
  35279. this._markAllSubMeshesAsFresnelDirty();
  35280. }
  35281. if (flag & Material.AttributesDirtyFlag) {
  35282. this._markAllSubMeshesAsAttributesDirty();
  35283. }
  35284. if (flag & Material.MiscDirtyFlag) {
  35285. this._markAllSubMeshesAsMiscDirty();
  35286. }
  35287. this.getScene().resetCachedMaterial();
  35288. };
  35289. /**
  35290. * Marks all submeshes of a material to indicate that their material defines need to be re-calculated
  35291. * @param func defines a function which checks material defines against the submeshes
  35292. */
  35293. Material.prototype._markAllSubMeshesAsDirty = function (func) {
  35294. for (var _i = 0, _a = this.getScene().meshes; _i < _a.length; _i++) {
  35295. var mesh = _a[_i];
  35296. if (!mesh.subMeshes) {
  35297. continue;
  35298. }
  35299. for (var _b = 0, _c = mesh.subMeshes; _b < _c.length; _b++) {
  35300. var subMesh = _c[_b];
  35301. if (subMesh.getMaterial() !== this) {
  35302. continue;
  35303. }
  35304. if (!subMesh._materialDefines) {
  35305. continue;
  35306. }
  35307. func(subMesh._materialDefines);
  35308. }
  35309. }
  35310. };
  35311. /**
  35312. * Indicates that image processing needs to be re-calculated for all submeshes
  35313. */
  35314. Material.prototype._markAllSubMeshesAsImageProcessingDirty = function () {
  35315. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsImageProcessingDirty(); });
  35316. };
  35317. /**
  35318. * Indicates that textures need to be re-calculated for all submeshes
  35319. */
  35320. Material.prototype._markAllSubMeshesAsTexturesDirty = function () {
  35321. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsTexturesDirty(); });
  35322. };
  35323. /**
  35324. * Indicates that fresnel needs to be re-calculated for all submeshes
  35325. */
  35326. Material.prototype._markAllSubMeshesAsFresnelDirty = function () {
  35327. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsFresnelDirty(); });
  35328. };
  35329. /**
  35330. * Indicates that fresnel and misc need to be re-calculated for all submeshes
  35331. */
  35332. Material.prototype._markAllSubMeshesAsFresnelAndMiscDirty = function () {
  35333. this._markAllSubMeshesAsDirty(function (defines) {
  35334. defines.markAsFresnelDirty();
  35335. defines.markAsMiscDirty();
  35336. });
  35337. };
  35338. /**
  35339. * Indicates that lights need to be re-calculated for all submeshes
  35340. */
  35341. Material.prototype._markAllSubMeshesAsLightsDirty = function () {
  35342. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsLightDirty(); });
  35343. };
  35344. /**
  35345. * Indicates that attributes need to be re-calculated for all submeshes
  35346. */
  35347. Material.prototype._markAllSubMeshesAsAttributesDirty = function () {
  35348. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsAttributesDirty(); });
  35349. };
  35350. /**
  35351. * Indicates that misc needs to be re-calculated for all submeshes
  35352. */
  35353. Material.prototype._markAllSubMeshesAsMiscDirty = function () {
  35354. this._markAllSubMeshesAsDirty(function (defines) { return defines.markAsMiscDirty(); });
  35355. };
  35356. /**
  35357. * Indicates that textures and misc need to be re-calculated for all submeshes
  35358. */
  35359. Material.prototype._markAllSubMeshesAsTexturesAndMiscDirty = function () {
  35360. this._markAllSubMeshesAsDirty(function (defines) {
  35361. defines.markAsTexturesDirty();
  35362. defines.markAsMiscDirty();
  35363. });
  35364. };
  35365. /**
  35366. * Disposes the material
  35367. * @param forceDisposeEffect specifies if effects should be forcefully disposed
  35368. * @param forceDisposeTextures specifies if textures should be forcefully disposed
  35369. */
  35370. Material.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  35371. // Animations
  35372. this.getScene().stopAnimation(this);
  35373. this.getScene().freeProcessedMaterials();
  35374. // Remove from scene
  35375. var index = this._scene.materials.indexOf(this);
  35376. if (index >= 0) {
  35377. this._scene.materials.splice(index, 1);
  35378. }
  35379. // Remove from meshes
  35380. for (index = 0; index < this._scene.meshes.length; index++) {
  35381. var mesh = this._scene.meshes[index];
  35382. if (mesh.material === this) {
  35383. mesh.material = null;
  35384. if (mesh.geometry) {
  35385. var geometry = (mesh.geometry);
  35386. if (this.storeEffectOnSubMeshes) {
  35387. for (var _i = 0, _a = mesh.subMeshes; _i < _a.length; _i++) {
  35388. var subMesh = _a[_i];
  35389. geometry._releaseVertexArrayObject(subMesh._materialEffect);
  35390. if (forceDisposeEffect && subMesh._materialEffect) {
  35391. this._scene.getEngine()._releaseEffect(subMesh._materialEffect);
  35392. }
  35393. }
  35394. }
  35395. else {
  35396. geometry._releaseVertexArrayObject(this._effect);
  35397. }
  35398. }
  35399. }
  35400. }
  35401. this._uniformBuffer.dispose();
  35402. // Shader are kept in cache for further use but we can get rid of this by using forceDisposeEffect
  35403. if (forceDisposeEffect && this._effect) {
  35404. if (!this.storeEffectOnSubMeshes) {
  35405. this._scene.getEngine()._releaseEffect(this._effect);
  35406. }
  35407. this._effect = null;
  35408. }
  35409. // Callback
  35410. this.onDisposeObservable.notifyObservers(this);
  35411. this.onDisposeObservable.clear();
  35412. if (this._onBindObservable) {
  35413. this._onBindObservable.clear();
  35414. }
  35415. if (this._onUnBindObservable) {
  35416. this._onUnBindObservable.clear();
  35417. }
  35418. };
  35419. /**
  35420. * Serializes this material
  35421. * @returns the serialized material object
  35422. */
  35423. Material.prototype.serialize = function () {
  35424. return BABYLON.SerializationHelper.Serialize(this);
  35425. };
  35426. /**
  35427. * Creates a MultiMaterial from parsed MultiMaterial data.
  35428. * @param parsedMultiMaterial defines parsed MultiMaterial data.
  35429. * @param scene defines the hosting scene
  35430. * @returns a new MultiMaterial
  35431. */
  35432. Material.ParseMultiMaterial = function (parsedMultiMaterial, scene) {
  35433. var multiMaterial = new BABYLON.MultiMaterial(parsedMultiMaterial.name, scene);
  35434. multiMaterial.id = parsedMultiMaterial.id;
  35435. if (BABYLON.Tags) {
  35436. BABYLON.Tags.AddTagsTo(multiMaterial, parsedMultiMaterial.tags);
  35437. }
  35438. for (var matIndex = 0; matIndex < parsedMultiMaterial.materials.length; matIndex++) {
  35439. var subMatId = parsedMultiMaterial.materials[matIndex];
  35440. if (subMatId) {
  35441. multiMaterial.subMaterials.push(scene.getMaterialByID(subMatId));
  35442. }
  35443. else {
  35444. multiMaterial.subMaterials.push(null);
  35445. }
  35446. }
  35447. return multiMaterial;
  35448. };
  35449. /**
  35450. * Creates a material from parsed material data
  35451. * @param parsedMaterial defines parsed material data
  35452. * @param scene defines the hosting scene
  35453. * @param rootUrl defines the root URL to use to load textures
  35454. * @returns a new material
  35455. */
  35456. Material.Parse = function (parsedMaterial, scene, rootUrl) {
  35457. if (!parsedMaterial.customType || parsedMaterial.customType === "BABYLON.StandardMaterial") {
  35458. return BABYLON.StandardMaterial.Parse(parsedMaterial, scene, rootUrl);
  35459. }
  35460. if (parsedMaterial.customType === "BABYLON.PBRMaterial" && parsedMaterial.overloadedAlbedo) {
  35461. parsedMaterial.customType = "BABYLON.LegacyPBRMaterial";
  35462. if (!BABYLON.LegacyPBRMaterial) {
  35463. BABYLON.Tools.Error("Your scene is trying to load a legacy version of the PBRMaterial, please, include it from the materials library.");
  35464. return;
  35465. }
  35466. }
  35467. var materialType = BABYLON.Tools.Instantiate(parsedMaterial.customType);
  35468. return materialType.Parse(parsedMaterial, scene, rootUrl);
  35469. };
  35470. // Triangle views
  35471. Material._TriangleFillMode = 0;
  35472. Material._WireFrameFillMode = 1;
  35473. Material._PointFillMode = 2;
  35474. // Draw modes
  35475. Material._PointListDrawMode = 3;
  35476. Material._LineListDrawMode = 4;
  35477. Material._LineLoopDrawMode = 5;
  35478. Material._LineStripDrawMode = 6;
  35479. Material._TriangleStripDrawMode = 7;
  35480. Material._TriangleFanDrawMode = 8;
  35481. /**
  35482. * Stores the clock-wise side orientation
  35483. */
  35484. Material._ClockWiseSideOrientation = 0;
  35485. /**
  35486. * Stores the counter clock-wise side orientation
  35487. */
  35488. Material._CounterClockWiseSideOrientation = 1;
  35489. /**
  35490. * The dirty texture flag value
  35491. */
  35492. Material._TextureDirtyFlag = 1;
  35493. /**
  35494. * The dirty light flag value
  35495. */
  35496. Material._LightDirtyFlag = 2;
  35497. /**
  35498. * The dirty fresnel flag value
  35499. */
  35500. Material._FresnelDirtyFlag = 4;
  35501. /**
  35502. * The dirty attribute flag value
  35503. */
  35504. Material._AttributesDirtyFlag = 8;
  35505. /**
  35506. * The dirty misc flag value
  35507. */
  35508. Material._MiscDirtyFlag = 16;
  35509. __decorate([
  35510. BABYLON.serialize()
  35511. ], Material.prototype, "id", void 0);
  35512. __decorate([
  35513. BABYLON.serialize()
  35514. ], Material.prototype, "uniqueId", void 0);
  35515. __decorate([
  35516. BABYLON.serialize()
  35517. ], Material.prototype, "name", void 0);
  35518. __decorate([
  35519. BABYLON.serialize()
  35520. ], Material.prototype, "checkReadyOnEveryCall", void 0);
  35521. __decorate([
  35522. BABYLON.serialize()
  35523. ], Material.prototype, "checkReadyOnlyOnce", void 0);
  35524. __decorate([
  35525. BABYLON.serialize()
  35526. ], Material.prototype, "state", void 0);
  35527. __decorate([
  35528. BABYLON.serialize("alpha")
  35529. ], Material.prototype, "_alpha", void 0);
  35530. __decorate([
  35531. BABYLON.serialize("backFaceCulling")
  35532. ], Material.prototype, "_backFaceCulling", void 0);
  35533. __decorate([
  35534. BABYLON.serialize()
  35535. ], Material.prototype, "sideOrientation", void 0);
  35536. __decorate([
  35537. BABYLON.serialize("alphaMode")
  35538. ], Material.prototype, "_alphaMode", void 0);
  35539. __decorate([
  35540. BABYLON.serialize()
  35541. ], Material.prototype, "_needDepthPrePass", void 0);
  35542. __decorate([
  35543. BABYLON.serialize()
  35544. ], Material.prototype, "disableDepthWrite", void 0);
  35545. __decorate([
  35546. BABYLON.serialize()
  35547. ], Material.prototype, "forceDepthWrite", void 0);
  35548. __decorate([
  35549. BABYLON.serialize()
  35550. ], Material.prototype, "separateCullingPass", void 0);
  35551. __decorate([
  35552. BABYLON.serialize("fogEnabled")
  35553. ], Material.prototype, "_fogEnabled", void 0);
  35554. __decorate([
  35555. BABYLON.serialize()
  35556. ], Material.prototype, "pointSize", void 0);
  35557. __decorate([
  35558. BABYLON.serialize()
  35559. ], Material.prototype, "zOffset", void 0);
  35560. __decorate([
  35561. BABYLON.serialize()
  35562. ], Material.prototype, "wireframe", null);
  35563. __decorate([
  35564. BABYLON.serialize()
  35565. ], Material.prototype, "pointsCloud", null);
  35566. __decorate([
  35567. BABYLON.serialize()
  35568. ], Material.prototype, "fillMode", null);
  35569. return Material;
  35570. }());
  35571. BABYLON.Material = Material;
  35572. })(BABYLON || (BABYLON = {}));
  35573. //# sourceMappingURL=babylon.material.js.map
  35574. var BABYLON;
  35575. (function (BABYLON) {
  35576. var UniformBuffer = /** @class */ (function () {
  35577. /**
  35578. * Uniform buffer objects.
  35579. *
  35580. * Handles blocks of uniform on the GPU.
  35581. *
  35582. * If WebGL 2 is not available, this class falls back on traditionnal setUniformXXX calls.
  35583. *
  35584. * For more information, please refer to :
  35585. * https://www.khronos.org/opengl/wiki/Uniform_Buffer_Object
  35586. */
  35587. function UniformBuffer(engine, data, dynamic) {
  35588. this._engine = engine;
  35589. this._noUBO = !engine.supportsUniformBuffers;
  35590. this._dynamic = dynamic;
  35591. this._data = data || [];
  35592. this._uniformLocations = {};
  35593. this._uniformSizes = {};
  35594. this._uniformLocationPointer = 0;
  35595. this._needSync = false;
  35596. if (this._noUBO) {
  35597. this.updateMatrix3x3 = this._updateMatrix3x3ForEffect;
  35598. this.updateMatrix2x2 = this._updateMatrix2x2ForEffect;
  35599. this.updateFloat = this._updateFloatForEffect;
  35600. this.updateFloat2 = this._updateFloat2ForEffect;
  35601. this.updateFloat3 = this._updateFloat3ForEffect;
  35602. this.updateFloat4 = this._updateFloat4ForEffect;
  35603. this.updateMatrix = this._updateMatrixForEffect;
  35604. this.updateVector3 = this._updateVector3ForEffect;
  35605. this.updateVector4 = this._updateVector4ForEffect;
  35606. this.updateColor3 = this._updateColor3ForEffect;
  35607. this.updateColor4 = this._updateColor4ForEffect;
  35608. }
  35609. else {
  35610. this._engine._uniformBuffers.push(this);
  35611. this.updateMatrix3x3 = this._updateMatrix3x3ForUniform;
  35612. this.updateMatrix2x2 = this._updateMatrix2x2ForUniform;
  35613. this.updateFloat = this._updateFloatForUniform;
  35614. this.updateFloat2 = this._updateFloat2ForUniform;
  35615. this.updateFloat3 = this._updateFloat3ForUniform;
  35616. this.updateFloat4 = this._updateFloat4ForUniform;
  35617. this.updateMatrix = this._updateMatrixForUniform;
  35618. this.updateVector3 = this._updateVector3ForUniform;
  35619. this.updateVector4 = this._updateVector4ForUniform;
  35620. this.updateColor3 = this._updateColor3ForUniform;
  35621. this.updateColor4 = this._updateColor4ForUniform;
  35622. }
  35623. }
  35624. Object.defineProperty(UniformBuffer.prototype, "useUbo", {
  35625. // Properties
  35626. /**
  35627. * Indicates if the buffer is using the WebGL2 UBO implementation,
  35628. * or just falling back on setUniformXXX calls.
  35629. */
  35630. get: function () {
  35631. return !this._noUBO;
  35632. },
  35633. enumerable: true,
  35634. configurable: true
  35635. });
  35636. Object.defineProperty(UniformBuffer.prototype, "isSync", {
  35637. /**
  35638. * Indicates if the WebGL underlying uniform buffer is in sync
  35639. * with the javascript cache data.
  35640. */
  35641. get: function () {
  35642. return !this._needSync;
  35643. },
  35644. enumerable: true,
  35645. configurable: true
  35646. });
  35647. /**
  35648. * Indicates if the WebGL underlying uniform buffer is dynamic.
  35649. * Also, a dynamic UniformBuffer will disable cache verification and always
  35650. * update the underlying WebGL uniform buffer to the GPU.
  35651. */
  35652. UniformBuffer.prototype.isDynamic = function () {
  35653. return this._dynamic !== undefined;
  35654. };
  35655. /**
  35656. * The data cache on JS side.
  35657. */
  35658. UniformBuffer.prototype.getData = function () {
  35659. return this._bufferData;
  35660. };
  35661. /**
  35662. * The underlying WebGL Uniform buffer.
  35663. */
  35664. UniformBuffer.prototype.getBuffer = function () {
  35665. return this._buffer;
  35666. };
  35667. /**
  35668. * std140 layout specifies how to align data within an UBO structure.
  35669. * See https://khronos.org/registry/OpenGL/specs/gl/glspec45.core.pdf#page=159
  35670. * for specs.
  35671. */
  35672. UniformBuffer.prototype._fillAlignment = function (size) {
  35673. // This code has been simplified because we only use floats, vectors of 1, 2, 3, 4 components
  35674. // and 4x4 matrices
  35675. // TODO : change if other types are used
  35676. var alignment;
  35677. if (size <= 2) {
  35678. alignment = size;
  35679. }
  35680. else {
  35681. alignment = 4;
  35682. }
  35683. if ((this._uniformLocationPointer % alignment) !== 0) {
  35684. var oldPointer = this._uniformLocationPointer;
  35685. this._uniformLocationPointer += alignment - (this._uniformLocationPointer % alignment);
  35686. var diff = this._uniformLocationPointer - oldPointer;
  35687. for (var i = 0; i < diff; i++) {
  35688. this._data.push(0);
  35689. }
  35690. }
  35691. };
  35692. /**
  35693. * Adds an uniform in the buffer.
  35694. * Warning : the subsequents calls of this function must be in the same order as declared in the shader
  35695. * for the layout to be correct !
  35696. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35697. * @param {number|number[]} size Data size, or data directly.
  35698. */
  35699. UniformBuffer.prototype.addUniform = function (name, size) {
  35700. if (this._noUBO) {
  35701. return;
  35702. }
  35703. if (this._uniformLocations[name] !== undefined) {
  35704. // Already existing uniform
  35705. return;
  35706. }
  35707. // This function must be called in the order of the shader layout !
  35708. // size can be the size of the uniform, or data directly
  35709. var data;
  35710. if (size instanceof Array) {
  35711. data = size;
  35712. size = data.length;
  35713. }
  35714. else {
  35715. size = size;
  35716. data = [];
  35717. // Fill with zeros
  35718. for (var i = 0; i < size; i++) {
  35719. data.push(0);
  35720. }
  35721. }
  35722. this._fillAlignment(size);
  35723. this._uniformSizes[name] = size;
  35724. this._uniformLocations[name] = this._uniformLocationPointer;
  35725. this._uniformLocationPointer += size;
  35726. for (var i = 0; i < size; i++) {
  35727. this._data.push(data[i]);
  35728. }
  35729. this._needSync = true;
  35730. };
  35731. /**
  35732. * Wrapper for addUniform.
  35733. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35734. * @param {Matrix} mat A 4x4 matrix.
  35735. */
  35736. UniformBuffer.prototype.addMatrix = function (name, mat) {
  35737. this.addUniform(name, Array.prototype.slice.call(mat.toArray()));
  35738. };
  35739. /**
  35740. * Wrapper for addUniform.
  35741. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35742. * @param {number} x
  35743. * @param {number} y
  35744. */
  35745. UniformBuffer.prototype.addFloat2 = function (name, x, y) {
  35746. var temp = [x, y];
  35747. this.addUniform(name, temp);
  35748. };
  35749. /**
  35750. * Wrapper for addUniform.
  35751. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35752. * @param {number} x
  35753. * @param {number} y
  35754. * @param {number} z
  35755. */
  35756. UniformBuffer.prototype.addFloat3 = function (name, x, y, z) {
  35757. var temp = [x, y, z];
  35758. this.addUniform(name, temp);
  35759. };
  35760. /**
  35761. * Wrapper for addUniform.
  35762. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35763. * @param {Color3} color
  35764. */
  35765. UniformBuffer.prototype.addColor3 = function (name, color) {
  35766. var temp = new Array();
  35767. color.toArray(temp);
  35768. this.addUniform(name, temp);
  35769. };
  35770. /**
  35771. * Wrapper for addUniform.
  35772. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35773. * @param {Color3} color
  35774. * @param {number} alpha
  35775. */
  35776. UniformBuffer.prototype.addColor4 = function (name, color, alpha) {
  35777. var temp = new Array();
  35778. color.toArray(temp);
  35779. temp.push(alpha);
  35780. this.addUniform(name, temp);
  35781. };
  35782. /**
  35783. * Wrapper for addUniform.
  35784. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35785. * @param {Vector3} vector
  35786. */
  35787. UniformBuffer.prototype.addVector3 = function (name, vector) {
  35788. var temp = new Array();
  35789. vector.toArray(temp);
  35790. this.addUniform(name, temp);
  35791. };
  35792. /**
  35793. * Wrapper for addUniform.
  35794. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35795. */
  35796. UniformBuffer.prototype.addMatrix3x3 = function (name) {
  35797. this.addUniform(name, 12);
  35798. };
  35799. /**
  35800. * Wrapper for addUniform.
  35801. * @param {string} name Name of the uniform, as used in the uniform block in the shader.
  35802. */
  35803. UniformBuffer.prototype.addMatrix2x2 = function (name) {
  35804. this.addUniform(name, 8);
  35805. };
  35806. /**
  35807. * Effectively creates the WebGL Uniform Buffer, once layout is completed with `addUniform`.
  35808. */
  35809. UniformBuffer.prototype.create = function () {
  35810. if (this._noUBO) {
  35811. return;
  35812. }
  35813. if (this._buffer) {
  35814. return; // nothing to do
  35815. }
  35816. // See spec, alignment must be filled as a vec4
  35817. this._fillAlignment(4);
  35818. this._bufferData = new Float32Array(this._data);
  35819. this._rebuild();
  35820. this._needSync = true;
  35821. };
  35822. /** @hidden */
  35823. UniformBuffer.prototype._rebuild = function () {
  35824. if (this._noUBO) {
  35825. return;
  35826. }
  35827. if (this._dynamic) {
  35828. this._buffer = this._engine.createDynamicUniformBuffer(this._bufferData);
  35829. }
  35830. else {
  35831. this._buffer = this._engine.createUniformBuffer(this._bufferData);
  35832. }
  35833. };
  35834. /**
  35835. * Updates the WebGL Uniform Buffer on the GPU.
  35836. * If the `dynamic` flag is set to true, no cache comparison is done.
  35837. * Otherwise, the buffer will be updated only if the cache differs.
  35838. */
  35839. UniformBuffer.prototype.update = function () {
  35840. if (!this._buffer) {
  35841. this.create();
  35842. return;
  35843. }
  35844. if (!this._dynamic && !this._needSync) {
  35845. return;
  35846. }
  35847. this._engine.updateUniformBuffer(this._buffer, this._bufferData);
  35848. this._needSync = false;
  35849. };
  35850. /**
  35851. * Updates the value of an uniform. The `update` method must be called afterwards to make it effective in the GPU.
  35852. * @param {string} uniformName Name of the uniform, as used in the uniform block in the shader.
  35853. * @param {number[]|Float32Array} data Flattened data
  35854. * @param {number} size Size of the data.
  35855. */
  35856. UniformBuffer.prototype.updateUniform = function (uniformName, data, size) {
  35857. var location = this._uniformLocations[uniformName];
  35858. if (location === undefined) {
  35859. if (this._buffer) {
  35860. // Cannot add an uniform if the buffer is already created
  35861. BABYLON.Tools.Error("Cannot add an uniform after UBO has been created.");
  35862. return;
  35863. }
  35864. this.addUniform(uniformName, size);
  35865. location = this._uniformLocations[uniformName];
  35866. }
  35867. if (!this._buffer) {
  35868. this.create();
  35869. }
  35870. if (!this._dynamic) {
  35871. // Cache for static uniform buffers
  35872. var changed = false;
  35873. for (var i = 0; i < size; i++) {
  35874. if (this._bufferData[location + i] !== data[i]) {
  35875. changed = true;
  35876. this._bufferData[location + i] = data[i];
  35877. }
  35878. }
  35879. this._needSync = this._needSync || changed;
  35880. }
  35881. else {
  35882. // No cache for dynamic
  35883. for (var i = 0; i < size; i++) {
  35884. this._bufferData[location + i] = data[i];
  35885. }
  35886. }
  35887. };
  35888. // Update methods
  35889. UniformBuffer.prototype._updateMatrix3x3ForUniform = function (name, matrix) {
  35890. // To match std140, matrix must be realigned
  35891. for (var i = 0; i < 3; i++) {
  35892. UniformBuffer._tempBuffer[i * 4] = matrix[i * 3];
  35893. UniformBuffer._tempBuffer[i * 4 + 1] = matrix[i * 3 + 1];
  35894. UniformBuffer._tempBuffer[i * 4 + 2] = matrix[i * 3 + 2];
  35895. UniformBuffer._tempBuffer[i * 4 + 3] = 0.0;
  35896. }
  35897. this.updateUniform(name, UniformBuffer._tempBuffer, 12);
  35898. };
  35899. UniformBuffer.prototype._updateMatrix3x3ForEffect = function (name, matrix) {
  35900. this._currentEffect.setMatrix3x3(name, matrix);
  35901. };
  35902. UniformBuffer.prototype._updateMatrix2x2ForEffect = function (name, matrix) {
  35903. this._currentEffect.setMatrix2x2(name, matrix);
  35904. };
  35905. UniformBuffer.prototype._updateMatrix2x2ForUniform = function (name, matrix) {
  35906. // To match std140, matrix must be realigned
  35907. for (var i = 0; i < 2; i++) {
  35908. UniformBuffer._tempBuffer[i * 4] = matrix[i * 2];
  35909. UniformBuffer._tempBuffer[i * 4 + 1] = matrix[i * 2 + 1];
  35910. UniformBuffer._tempBuffer[i * 4 + 2] = 0.0;
  35911. UniformBuffer._tempBuffer[i * 4 + 3] = 0.0;
  35912. }
  35913. this.updateUniform(name, UniformBuffer._tempBuffer, 8);
  35914. };
  35915. UniformBuffer.prototype._updateFloatForEffect = function (name, x) {
  35916. this._currentEffect.setFloat(name, x);
  35917. };
  35918. UniformBuffer.prototype._updateFloatForUniform = function (name, x) {
  35919. UniformBuffer._tempBuffer[0] = x;
  35920. this.updateUniform(name, UniformBuffer._tempBuffer, 1);
  35921. };
  35922. UniformBuffer.prototype._updateFloat2ForEffect = function (name, x, y, suffix) {
  35923. if (suffix === void 0) { suffix = ""; }
  35924. this._currentEffect.setFloat2(name + suffix, x, y);
  35925. };
  35926. UniformBuffer.prototype._updateFloat2ForUniform = function (name, x, y, suffix) {
  35927. if (suffix === void 0) { suffix = ""; }
  35928. UniformBuffer._tempBuffer[0] = x;
  35929. UniformBuffer._tempBuffer[1] = y;
  35930. this.updateUniform(name, UniformBuffer._tempBuffer, 2);
  35931. };
  35932. UniformBuffer.prototype._updateFloat3ForEffect = function (name, x, y, z, suffix) {
  35933. if (suffix === void 0) { suffix = ""; }
  35934. this._currentEffect.setFloat3(name + suffix, x, y, z);
  35935. };
  35936. UniformBuffer.prototype._updateFloat3ForUniform = function (name, x, y, z, suffix) {
  35937. if (suffix === void 0) { suffix = ""; }
  35938. UniformBuffer._tempBuffer[0] = x;
  35939. UniformBuffer._tempBuffer[1] = y;
  35940. UniformBuffer._tempBuffer[2] = z;
  35941. this.updateUniform(name, UniformBuffer._tempBuffer, 3);
  35942. };
  35943. UniformBuffer.prototype._updateFloat4ForEffect = function (name, x, y, z, w, suffix) {
  35944. if (suffix === void 0) { suffix = ""; }
  35945. this._currentEffect.setFloat4(name + suffix, x, y, z, w);
  35946. };
  35947. UniformBuffer.prototype._updateFloat4ForUniform = function (name, x, y, z, w, suffix) {
  35948. if (suffix === void 0) { suffix = ""; }
  35949. UniformBuffer._tempBuffer[0] = x;
  35950. UniformBuffer._tempBuffer[1] = y;
  35951. UniformBuffer._tempBuffer[2] = z;
  35952. UniformBuffer._tempBuffer[3] = w;
  35953. this.updateUniform(name, UniformBuffer._tempBuffer, 4);
  35954. };
  35955. UniformBuffer.prototype._updateMatrixForEffect = function (name, mat) {
  35956. this._currentEffect.setMatrix(name, mat);
  35957. };
  35958. UniformBuffer.prototype._updateMatrixForUniform = function (name, mat) {
  35959. this.updateUniform(name, mat.toArray(), 16);
  35960. };
  35961. UniformBuffer.prototype._updateVector3ForEffect = function (name, vector) {
  35962. this._currentEffect.setVector3(name, vector);
  35963. };
  35964. UniformBuffer.prototype._updateVector3ForUniform = function (name, vector) {
  35965. vector.toArray(UniformBuffer._tempBuffer);
  35966. this.updateUniform(name, UniformBuffer._tempBuffer, 3);
  35967. };
  35968. UniformBuffer.prototype._updateVector4ForEffect = function (name, vector) {
  35969. this._currentEffect.setVector4(name, vector);
  35970. };
  35971. UniformBuffer.prototype._updateVector4ForUniform = function (name, vector) {
  35972. vector.toArray(UniformBuffer._tempBuffer);
  35973. this.updateUniform(name, UniformBuffer._tempBuffer, 4);
  35974. };
  35975. UniformBuffer.prototype._updateColor3ForEffect = function (name, color, suffix) {
  35976. if (suffix === void 0) { suffix = ""; }
  35977. this._currentEffect.setColor3(name + suffix, color);
  35978. };
  35979. UniformBuffer.prototype._updateColor3ForUniform = function (name, color, suffix) {
  35980. if (suffix === void 0) { suffix = ""; }
  35981. color.toArray(UniformBuffer._tempBuffer);
  35982. this.updateUniform(name, UniformBuffer._tempBuffer, 3);
  35983. };
  35984. UniformBuffer.prototype._updateColor4ForEffect = function (name, color, alpha, suffix) {
  35985. if (suffix === void 0) { suffix = ""; }
  35986. this._currentEffect.setColor4(name + suffix, color, alpha);
  35987. };
  35988. UniformBuffer.prototype._updateColor4ForUniform = function (name, color, alpha, suffix) {
  35989. if (suffix === void 0) { suffix = ""; }
  35990. color.toArray(UniformBuffer._tempBuffer);
  35991. UniformBuffer._tempBuffer[3] = alpha;
  35992. this.updateUniform(name, UniformBuffer._tempBuffer, 4);
  35993. };
  35994. /**
  35995. * Sets a sampler uniform on the effect.
  35996. * @param {string} name Name of the sampler.
  35997. * @param {Texture} texture
  35998. */
  35999. UniformBuffer.prototype.setTexture = function (name, texture) {
  36000. this._currentEffect.setTexture(name, texture);
  36001. };
  36002. /**
  36003. * Directly updates the value of the uniform in the cache AND on the GPU.
  36004. * @param {string} uniformName Name of the uniform, as used in the uniform block in the shader.
  36005. * @param {number[]|Float32Array} data Flattened data
  36006. */
  36007. UniformBuffer.prototype.updateUniformDirectly = function (uniformName, data) {
  36008. this.updateUniform(uniformName, data, data.length);
  36009. this.update();
  36010. };
  36011. /**
  36012. * Binds this uniform buffer to an effect.
  36013. * @param {Effect} effect
  36014. * @param {string} name Name of the uniform block in the shader.
  36015. */
  36016. UniformBuffer.prototype.bindToEffect = function (effect, name) {
  36017. this._currentEffect = effect;
  36018. if (this._noUBO || !this._buffer) {
  36019. return;
  36020. }
  36021. effect.bindUniformBuffer(this._buffer, name);
  36022. };
  36023. /**
  36024. * Disposes the uniform buffer.
  36025. */
  36026. UniformBuffer.prototype.dispose = function () {
  36027. if (this._noUBO) {
  36028. return;
  36029. }
  36030. var index = this._engine._uniformBuffers.indexOf(this);
  36031. if (index !== -1) {
  36032. this._engine._uniformBuffers.splice(index, 1);
  36033. }
  36034. if (!this._buffer) {
  36035. return;
  36036. }
  36037. if (this._engine._releaseBuffer(this._buffer)) {
  36038. this._buffer = null;
  36039. }
  36040. };
  36041. // Pool for avoiding memory leaks
  36042. UniformBuffer._MAX_UNIFORM_SIZE = 256;
  36043. UniformBuffer._tempBuffer = new Float32Array(UniformBuffer._MAX_UNIFORM_SIZE);
  36044. return UniformBuffer;
  36045. }());
  36046. BABYLON.UniformBuffer = UniformBuffer;
  36047. })(BABYLON || (BABYLON = {}));
  36048. //# sourceMappingURL=babylon.uniformBuffer.js.map
  36049. var BABYLON;
  36050. (function (BABYLON) {
  36051. /**
  36052. * This class contains the various kinds of data on every vertex of a mesh used in determining its shape and appearance
  36053. */
  36054. var VertexData = /** @class */ (function () {
  36055. function VertexData() {
  36056. }
  36057. /**
  36058. * Uses the passed data array to set the set the values for the specified kind of data
  36059. * @param data a linear array of floating numbers
  36060. * @param kind the type of data that is being set, eg positions, colors etc
  36061. */
  36062. VertexData.prototype.set = function (data, kind) {
  36063. switch (kind) {
  36064. case BABYLON.VertexBuffer.PositionKind:
  36065. this.positions = data;
  36066. break;
  36067. case BABYLON.VertexBuffer.NormalKind:
  36068. this.normals = data;
  36069. break;
  36070. case BABYLON.VertexBuffer.TangentKind:
  36071. this.tangents = data;
  36072. break;
  36073. case BABYLON.VertexBuffer.UVKind:
  36074. this.uvs = data;
  36075. break;
  36076. case BABYLON.VertexBuffer.UV2Kind:
  36077. this.uvs2 = data;
  36078. break;
  36079. case BABYLON.VertexBuffer.UV3Kind:
  36080. this.uvs3 = data;
  36081. break;
  36082. case BABYLON.VertexBuffer.UV4Kind:
  36083. this.uvs4 = data;
  36084. break;
  36085. case BABYLON.VertexBuffer.UV5Kind:
  36086. this.uvs5 = data;
  36087. break;
  36088. case BABYLON.VertexBuffer.UV6Kind:
  36089. this.uvs6 = data;
  36090. break;
  36091. case BABYLON.VertexBuffer.ColorKind:
  36092. this.colors = data;
  36093. break;
  36094. case BABYLON.VertexBuffer.MatricesIndicesKind:
  36095. this.matricesIndices = data;
  36096. break;
  36097. case BABYLON.VertexBuffer.MatricesWeightsKind:
  36098. this.matricesWeights = data;
  36099. break;
  36100. case BABYLON.VertexBuffer.MatricesIndicesExtraKind:
  36101. this.matricesIndicesExtra = data;
  36102. break;
  36103. case BABYLON.VertexBuffer.MatricesWeightsExtraKind:
  36104. this.matricesWeightsExtra = data;
  36105. break;
  36106. }
  36107. };
  36108. /**
  36109. * Associates the vertexData to the passed Mesh.
  36110. * Sets it as updatable or not (default `false`)
  36111. * @param mesh the mesh the vertexData is applied to
  36112. * @param updatable when used and having the value true allows new data to update the vertexData
  36113. * @returns the VertexData
  36114. */
  36115. VertexData.prototype.applyToMesh = function (mesh, updatable) {
  36116. this._applyTo(mesh, updatable);
  36117. return this;
  36118. };
  36119. /**
  36120. * Associates the vertexData to the passed Geometry.
  36121. * Sets it as updatable or not (default `false`)
  36122. * @param geometry the geometry the vertexData is applied to
  36123. * @param updatable when used and having the value true allows new data to update the vertexData
  36124. * @returns VertexData
  36125. */
  36126. VertexData.prototype.applyToGeometry = function (geometry, updatable) {
  36127. this._applyTo(geometry, updatable);
  36128. return this;
  36129. };
  36130. /**
  36131. * Updates the associated mesh
  36132. * @param mesh the mesh to be updated
  36133. * @param updateExtends when true the mesh BoundingInfo will be renewed when and if position kind is updated, optional with default false
  36134. * @param makeItUnique when true, and when and if position kind is updated, a new global geometry will be created from these positions and set to the mesh, optional with default false
  36135. * @returns VertexData
  36136. */
  36137. VertexData.prototype.updateMesh = function (mesh, updateExtends, makeItUnique) {
  36138. this._update(mesh);
  36139. return this;
  36140. };
  36141. /**
  36142. * Updates the associated geometry
  36143. * @param geometry the geometry to be updated
  36144. * @param updateExtends when true BoundingInfo will be renewed when and if position kind is updated, optional with default false
  36145. * @param makeItUnique when true, and when and if position kind is updated, a new global geometry will be created from these positions and set to the mesh, optional with default false
  36146. * @returns VertexData.
  36147. */
  36148. VertexData.prototype.updateGeometry = function (geometry, updateExtends, makeItUnique) {
  36149. this._update(geometry);
  36150. return this;
  36151. };
  36152. VertexData.prototype._applyTo = function (meshOrGeometry, updatable) {
  36153. if (updatable === void 0) { updatable = false; }
  36154. if (this.positions) {
  36155. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.PositionKind, this.positions, updatable);
  36156. }
  36157. if (this.normals) {
  36158. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.NormalKind, this.normals, updatable);
  36159. }
  36160. if (this.tangents) {
  36161. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.TangentKind, this.tangents, updatable);
  36162. }
  36163. if (this.uvs) {
  36164. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UVKind, this.uvs, updatable);
  36165. }
  36166. if (this.uvs2) {
  36167. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UV2Kind, this.uvs2, updatable);
  36168. }
  36169. if (this.uvs3) {
  36170. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UV3Kind, this.uvs3, updatable);
  36171. }
  36172. if (this.uvs4) {
  36173. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UV4Kind, this.uvs4, updatable);
  36174. }
  36175. if (this.uvs5) {
  36176. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UV5Kind, this.uvs5, updatable);
  36177. }
  36178. if (this.uvs6) {
  36179. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.UV6Kind, this.uvs6, updatable);
  36180. }
  36181. if (this.colors) {
  36182. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.ColorKind, this.colors, updatable);
  36183. }
  36184. if (this.matricesIndices) {
  36185. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, this.matricesIndices, updatable);
  36186. }
  36187. if (this.matricesWeights) {
  36188. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, this.matricesWeights, updatable);
  36189. }
  36190. if (this.matricesIndicesExtra) {
  36191. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, this.matricesIndicesExtra, updatable);
  36192. }
  36193. if (this.matricesWeightsExtra) {
  36194. meshOrGeometry.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind, this.matricesWeightsExtra, updatable);
  36195. }
  36196. if (this.indices) {
  36197. meshOrGeometry.setIndices(this.indices, null, updatable);
  36198. }
  36199. else {
  36200. meshOrGeometry.setIndices([], null);
  36201. }
  36202. return this;
  36203. };
  36204. VertexData.prototype._update = function (meshOrGeometry, updateExtends, makeItUnique) {
  36205. if (this.positions) {
  36206. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.PositionKind, this.positions, updateExtends, makeItUnique);
  36207. }
  36208. if (this.normals) {
  36209. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.NormalKind, this.normals, updateExtends, makeItUnique);
  36210. }
  36211. if (this.tangents) {
  36212. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.TangentKind, this.tangents, updateExtends, makeItUnique);
  36213. }
  36214. if (this.uvs) {
  36215. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UVKind, this.uvs, updateExtends, makeItUnique);
  36216. }
  36217. if (this.uvs2) {
  36218. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UV2Kind, this.uvs2, updateExtends, makeItUnique);
  36219. }
  36220. if (this.uvs3) {
  36221. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UV3Kind, this.uvs3, updateExtends, makeItUnique);
  36222. }
  36223. if (this.uvs4) {
  36224. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UV4Kind, this.uvs4, updateExtends, makeItUnique);
  36225. }
  36226. if (this.uvs5) {
  36227. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UV5Kind, this.uvs5, updateExtends, makeItUnique);
  36228. }
  36229. if (this.uvs6) {
  36230. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.UV6Kind, this.uvs6, updateExtends, makeItUnique);
  36231. }
  36232. if (this.colors) {
  36233. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.ColorKind, this.colors, updateExtends, makeItUnique);
  36234. }
  36235. if (this.matricesIndices) {
  36236. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, this.matricesIndices, updateExtends, makeItUnique);
  36237. }
  36238. if (this.matricesWeights) {
  36239. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, this.matricesWeights, updateExtends, makeItUnique);
  36240. }
  36241. if (this.matricesIndicesExtra) {
  36242. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, this.matricesIndicesExtra, updateExtends, makeItUnique);
  36243. }
  36244. if (this.matricesWeightsExtra) {
  36245. meshOrGeometry.updateVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind, this.matricesWeightsExtra, updateExtends, makeItUnique);
  36246. }
  36247. if (this.indices) {
  36248. meshOrGeometry.setIndices(this.indices, null);
  36249. }
  36250. return this;
  36251. };
  36252. /**
  36253. * Transforms each position and each normal of the vertexData according to the passed Matrix
  36254. * @param matrix the transforming matrix
  36255. * @returns the VertexData
  36256. */
  36257. VertexData.prototype.transform = function (matrix) {
  36258. var flip = matrix.m[0] * matrix.m[5] * matrix.m[10] < 0;
  36259. var transformed = BABYLON.Vector3.Zero();
  36260. var index;
  36261. if (this.positions) {
  36262. var position = BABYLON.Vector3.Zero();
  36263. for (index = 0; index < this.positions.length; index += 3) {
  36264. BABYLON.Vector3.FromArrayToRef(this.positions, index, position);
  36265. BABYLON.Vector3.TransformCoordinatesToRef(position, matrix, transformed);
  36266. this.positions[index] = transformed.x;
  36267. this.positions[index + 1] = transformed.y;
  36268. this.positions[index + 2] = transformed.z;
  36269. }
  36270. }
  36271. if (this.normals) {
  36272. var normal = BABYLON.Vector3.Zero();
  36273. for (index = 0; index < this.normals.length; index += 3) {
  36274. BABYLON.Vector3.FromArrayToRef(this.normals, index, normal);
  36275. BABYLON.Vector3.TransformNormalToRef(normal, matrix, transformed);
  36276. this.normals[index] = transformed.x;
  36277. this.normals[index + 1] = transformed.y;
  36278. this.normals[index + 2] = transformed.z;
  36279. }
  36280. }
  36281. if (this.tangents) {
  36282. var tangent = BABYLON.Vector4.Zero();
  36283. var tangentTransformed = BABYLON.Vector4.Zero();
  36284. for (index = 0; index < this.tangents.length; index += 4) {
  36285. BABYLON.Vector4.FromArrayToRef(this.tangents, index, tangent);
  36286. BABYLON.Vector4.TransformNormalToRef(tangent, matrix, tangentTransformed);
  36287. this.tangents[index] = tangentTransformed.x;
  36288. this.tangents[index + 1] = tangentTransformed.y;
  36289. this.tangents[index + 2] = tangentTransformed.z;
  36290. this.tangents[index + 3] = tangentTransformed.w;
  36291. }
  36292. }
  36293. if (flip && this.indices) {
  36294. for (index = 0; index < this.indices.length; index += 3) {
  36295. var tmp = this.indices[index + 1];
  36296. this.indices[index + 1] = this.indices[index + 2];
  36297. this.indices[index + 2] = tmp;
  36298. }
  36299. }
  36300. return this;
  36301. };
  36302. /**
  36303. * Merges the passed VertexData into the current one
  36304. * @param other the VertexData to be merged into the current one
  36305. * @param use32BitsIndices defines a boolean indicating if indices must be store in a 32 bits array
  36306. * @returns the modified VertexData
  36307. */
  36308. VertexData.prototype.merge = function (other, use32BitsIndices) {
  36309. if (use32BitsIndices === void 0) { use32BitsIndices = false; }
  36310. this._validate();
  36311. other._validate();
  36312. if (!this.normals !== !other.normals ||
  36313. !this.tangents !== !other.tangents ||
  36314. !this.uvs !== !other.uvs ||
  36315. !this.uvs2 !== !other.uvs2 ||
  36316. !this.uvs3 !== !other.uvs3 ||
  36317. !this.uvs4 !== !other.uvs4 ||
  36318. !this.uvs5 !== !other.uvs5 ||
  36319. !this.uvs6 !== !other.uvs6 ||
  36320. !this.colors !== !other.colors ||
  36321. !this.matricesIndices !== !other.matricesIndices ||
  36322. !this.matricesWeights !== !other.matricesWeights ||
  36323. !this.matricesIndicesExtra !== !other.matricesIndicesExtra ||
  36324. !this.matricesWeightsExtra !== !other.matricesWeightsExtra) {
  36325. throw new Error("Cannot merge vertex data that do not have the same set of attributes");
  36326. }
  36327. if (other.indices) {
  36328. if (!this.indices) {
  36329. this.indices = [];
  36330. }
  36331. var offset = this.positions ? this.positions.length / 3 : 0;
  36332. var isSrcTypedArray = this.indices.BYTES_PER_ELEMENT !== undefined;
  36333. if (isSrcTypedArray) {
  36334. var len = this.indices.length + other.indices.length;
  36335. var temp = use32BitsIndices || this.indices instanceof Uint32Array ? new Uint32Array(len) : new Uint16Array(len);
  36336. temp.set(this.indices);
  36337. var decal = this.indices.length;
  36338. for (var index = 0; index < other.indices.length; index++) {
  36339. temp[decal + index] = other.indices[index] + offset;
  36340. }
  36341. this.indices = temp;
  36342. }
  36343. else {
  36344. for (var index = 0; index < other.indices.length; index++) {
  36345. this.indices.push(other.indices[index] + offset);
  36346. }
  36347. }
  36348. }
  36349. this.positions = this._mergeElement(this.positions, other.positions);
  36350. this.normals = this._mergeElement(this.normals, other.normals);
  36351. this.tangents = this._mergeElement(this.tangents, other.tangents);
  36352. this.uvs = this._mergeElement(this.uvs, other.uvs);
  36353. this.uvs2 = this._mergeElement(this.uvs2, other.uvs2);
  36354. this.uvs3 = this._mergeElement(this.uvs3, other.uvs3);
  36355. this.uvs4 = this._mergeElement(this.uvs4, other.uvs4);
  36356. this.uvs5 = this._mergeElement(this.uvs5, other.uvs5);
  36357. this.uvs6 = this._mergeElement(this.uvs6, other.uvs6);
  36358. this.colors = this._mergeElement(this.colors, other.colors);
  36359. this.matricesIndices = this._mergeElement(this.matricesIndices, other.matricesIndices);
  36360. this.matricesWeights = this._mergeElement(this.matricesWeights, other.matricesWeights);
  36361. this.matricesIndicesExtra = this._mergeElement(this.matricesIndicesExtra, other.matricesIndicesExtra);
  36362. this.matricesWeightsExtra = this._mergeElement(this.matricesWeightsExtra, other.matricesWeightsExtra);
  36363. return this;
  36364. };
  36365. VertexData.prototype._mergeElement = function (source, other) {
  36366. if (!source) {
  36367. return other;
  36368. }
  36369. if (!other) {
  36370. return source;
  36371. }
  36372. var len = other.length + source.length;
  36373. var isSrcTypedArray = source instanceof Float32Array;
  36374. var isOthTypedArray = other instanceof Float32Array;
  36375. // use non-loop method when the source is Float32Array
  36376. if (isSrcTypedArray) {
  36377. var ret32 = new Float32Array(len);
  36378. ret32.set(source);
  36379. ret32.set(other, source.length);
  36380. return ret32;
  36381. // source is number[], when other is also use concat
  36382. }
  36383. else if (!isOthTypedArray) {
  36384. return source.concat(other);
  36385. // source is a number[], but other is a Float32Array, loop required
  36386. }
  36387. else {
  36388. var ret = source.slice(0); // copy source to a separate array
  36389. for (var i = 0, len = other.length; i < len; i++) {
  36390. ret.push(other[i]);
  36391. }
  36392. return ret;
  36393. }
  36394. };
  36395. VertexData.prototype._validate = function () {
  36396. if (!this.positions) {
  36397. throw new Error("Positions are required");
  36398. }
  36399. var getElementCount = function (kind, values) {
  36400. var stride = BABYLON.VertexBuffer.DeduceStride(kind);
  36401. if ((values.length % stride) !== 0) {
  36402. throw new Error("The " + kind + "s array count must be a multiple of " + stride);
  36403. }
  36404. return values.length / stride;
  36405. };
  36406. var positionsElementCount = getElementCount(BABYLON.VertexBuffer.PositionKind, this.positions);
  36407. var validateElementCount = function (kind, values) {
  36408. var elementCount = getElementCount(kind, values);
  36409. if (elementCount !== positionsElementCount) {
  36410. throw new Error("The " + kind + "s element count (" + elementCount + ") does not match the positions count (" + positionsElementCount + ")");
  36411. }
  36412. };
  36413. if (this.normals)
  36414. validateElementCount(BABYLON.VertexBuffer.NormalKind, this.normals);
  36415. if (this.tangents)
  36416. validateElementCount(BABYLON.VertexBuffer.TangentKind, this.tangents);
  36417. if (this.uvs)
  36418. validateElementCount(BABYLON.VertexBuffer.UVKind, this.uvs);
  36419. if (this.uvs2)
  36420. validateElementCount(BABYLON.VertexBuffer.UV2Kind, this.uvs2);
  36421. if (this.uvs3)
  36422. validateElementCount(BABYLON.VertexBuffer.UV3Kind, this.uvs3);
  36423. if (this.uvs4)
  36424. validateElementCount(BABYLON.VertexBuffer.UV4Kind, this.uvs4);
  36425. if (this.uvs5)
  36426. validateElementCount(BABYLON.VertexBuffer.UV5Kind, this.uvs5);
  36427. if (this.uvs6)
  36428. validateElementCount(BABYLON.VertexBuffer.UV6Kind, this.uvs6);
  36429. if (this.colors)
  36430. validateElementCount(BABYLON.VertexBuffer.ColorKind, this.colors);
  36431. if (this.matricesIndices)
  36432. validateElementCount(BABYLON.VertexBuffer.MatricesIndicesKind, this.matricesIndices);
  36433. if (this.matricesWeights)
  36434. validateElementCount(BABYLON.VertexBuffer.MatricesWeightsKind, this.matricesWeights);
  36435. if (this.matricesIndicesExtra)
  36436. validateElementCount(BABYLON.VertexBuffer.MatricesIndicesExtraKind, this.matricesIndicesExtra);
  36437. if (this.matricesWeightsExtra)
  36438. validateElementCount(BABYLON.VertexBuffer.MatricesWeightsExtraKind, this.matricesWeightsExtra);
  36439. };
  36440. /**
  36441. * Serializes the VertexData
  36442. * @returns a serialized object
  36443. */
  36444. VertexData.prototype.serialize = function () {
  36445. var serializationObject = this.serialize();
  36446. if (this.positions) {
  36447. serializationObject.positions = this.positions;
  36448. }
  36449. if (this.normals) {
  36450. serializationObject.normals = this.normals;
  36451. }
  36452. if (this.tangents) {
  36453. serializationObject.tangents = this.tangents;
  36454. }
  36455. if (this.uvs) {
  36456. serializationObject.uvs = this.uvs;
  36457. }
  36458. if (this.uvs2) {
  36459. serializationObject.uvs2 = this.uvs2;
  36460. }
  36461. if (this.uvs3) {
  36462. serializationObject.uvs3 = this.uvs3;
  36463. }
  36464. if (this.uvs4) {
  36465. serializationObject.uvs4 = this.uvs4;
  36466. }
  36467. if (this.uvs5) {
  36468. serializationObject.uvs5 = this.uvs5;
  36469. }
  36470. if (this.uvs6) {
  36471. serializationObject.uvs6 = this.uvs6;
  36472. }
  36473. if (this.colors) {
  36474. serializationObject.colors = this.colors;
  36475. }
  36476. if (this.matricesIndices) {
  36477. serializationObject.matricesIndices = this.matricesIndices;
  36478. serializationObject.matricesIndices._isExpanded = true;
  36479. }
  36480. if (this.matricesWeights) {
  36481. serializationObject.matricesWeights = this.matricesWeights;
  36482. }
  36483. if (this.matricesIndicesExtra) {
  36484. serializationObject.matricesIndicesExtra = this.matricesIndicesExtra;
  36485. serializationObject.matricesIndicesExtra._isExpanded = true;
  36486. }
  36487. if (this.matricesWeightsExtra) {
  36488. serializationObject.matricesWeightsExtra = this.matricesWeightsExtra;
  36489. }
  36490. serializationObject.indices = this.indices;
  36491. return serializationObject;
  36492. };
  36493. // Statics
  36494. /**
  36495. * Extracts the vertexData from a mesh
  36496. * @param mesh the mesh from which to extract the VertexData
  36497. * @param copyWhenShared defines if the VertexData must be cloned when shared between multiple meshes, optional, default false
  36498. * @param forceCopy indicating that the VertexData must be cloned, optional, default false
  36499. * @returns the object VertexData associated to the passed mesh
  36500. */
  36501. VertexData.ExtractFromMesh = function (mesh, copyWhenShared, forceCopy) {
  36502. return VertexData._ExtractFrom(mesh, copyWhenShared, forceCopy);
  36503. };
  36504. /**
  36505. * Extracts the vertexData from the geometry
  36506. * @param geometry the geometry from which to extract the VertexData
  36507. * @param copyWhenShared defines if the VertexData must be cloned when the geometrty is shared between multiple meshes, optional, default false
  36508. * @param forceCopy indicating that the VertexData must be cloned, optional, default false
  36509. * @returns the object VertexData associated to the passed mesh
  36510. */
  36511. VertexData.ExtractFromGeometry = function (geometry, copyWhenShared, forceCopy) {
  36512. return VertexData._ExtractFrom(geometry, copyWhenShared, forceCopy);
  36513. };
  36514. VertexData._ExtractFrom = function (meshOrGeometry, copyWhenShared, forceCopy) {
  36515. var result = new VertexData();
  36516. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind)) {
  36517. result.positions = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.PositionKind, copyWhenShared, forceCopy);
  36518. }
  36519. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  36520. result.normals = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.NormalKind, copyWhenShared, forceCopy);
  36521. }
  36522. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.TangentKind)) {
  36523. result.tangents = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.TangentKind, copyWhenShared, forceCopy);
  36524. }
  36525. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  36526. result.uvs = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UVKind, copyWhenShared, forceCopy);
  36527. }
  36528. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  36529. result.uvs2 = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UV2Kind, copyWhenShared, forceCopy);
  36530. }
  36531. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UV3Kind)) {
  36532. result.uvs3 = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UV3Kind, copyWhenShared, forceCopy);
  36533. }
  36534. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UV4Kind)) {
  36535. result.uvs4 = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UV4Kind, copyWhenShared, forceCopy);
  36536. }
  36537. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UV5Kind)) {
  36538. result.uvs5 = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UV5Kind, copyWhenShared, forceCopy);
  36539. }
  36540. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.UV6Kind)) {
  36541. result.uvs6 = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.UV6Kind, copyWhenShared, forceCopy);
  36542. }
  36543. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.ColorKind)) {
  36544. result.colors = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.ColorKind, copyWhenShared, forceCopy);
  36545. }
  36546. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesIndicesKind)) {
  36547. result.matricesIndices = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, copyWhenShared, forceCopy);
  36548. }
  36549. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesWeightsKind)) {
  36550. result.matricesWeights = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, copyWhenShared, forceCopy);
  36551. }
  36552. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesIndicesExtraKind)) {
  36553. result.matricesIndicesExtra = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, copyWhenShared, forceCopy);
  36554. }
  36555. if (meshOrGeometry.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesWeightsExtraKind)) {
  36556. result.matricesWeightsExtra = meshOrGeometry.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind, copyWhenShared, forceCopy);
  36557. }
  36558. result.indices = meshOrGeometry.getIndices(copyWhenShared, forceCopy);
  36559. return result;
  36560. };
  36561. /**
  36562. * Creates the VertexData for a Ribbon
  36563. * @param options an object used to set the following optional parameters for the ribbon, required but can be empty
  36564. * * pathArray array of paths, each of which an array of successive Vector3
  36565. * * closeArray creates a seam between the first and the last paths of the pathArray, optional, default false
  36566. * * closePath creates a seam between the first and the last points of each path of the path array, optional, default false
  36567. * * offset a positive integer, only used when pathArray contains a single path (offset = 10 means the point 1 is joined to the point 11), default rounded half size of the pathArray length
  36568. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  36569. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  36570. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  36571. * * invertUV swaps in the U and V coordinates when applying a texture, optional, default false
  36572. * * uvs a linear array, of length 2 * number of vertices, of custom UV values, optional
  36573. * * colors a linear array, of length 4 * number of vertices, of custom color values, optional
  36574. * @returns the VertexData of the ribbon
  36575. */
  36576. VertexData.CreateRibbon = function (options) {
  36577. var pathArray = options.pathArray;
  36578. var closeArray = options.closeArray || false;
  36579. var closePath = options.closePath || false;
  36580. var invertUV = options.invertUV || false;
  36581. var defaultOffset = Math.floor(pathArray[0].length / 2);
  36582. var offset = options.offset || defaultOffset;
  36583. offset = offset > defaultOffset ? defaultOffset : Math.floor(offset); // offset max allowed : defaultOffset
  36584. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  36585. var customUV = options.uvs;
  36586. var customColors = options.colors;
  36587. var positions = [];
  36588. var indices = [];
  36589. var normals = [];
  36590. var uvs = [];
  36591. var us = []; // us[path_id] = [uDist1, uDist2, uDist3 ... ] distances between points on path path_id
  36592. var vs = []; // vs[i] = [vDist1, vDist2, vDist3, ... ] distances between points i of consecutives paths from pathArray
  36593. var uTotalDistance = []; // uTotalDistance[p] : total distance of path p
  36594. var vTotalDistance = []; // vTotalDistance[i] : total distance between points i of first and last path from pathArray
  36595. var minlg; // minimal length among all paths from pathArray
  36596. var lg = []; // array of path lengths : nb of vertex per path
  36597. var idx = []; // array of path indexes : index of each path (first vertex) in the total vertex number
  36598. var p; // path iterator
  36599. var i; // point iterator
  36600. var j; // point iterator
  36601. // if single path in pathArray
  36602. if (pathArray.length < 2) {
  36603. var ar1 = [];
  36604. var ar2 = [];
  36605. for (i = 0; i < pathArray[0].length - offset; i++) {
  36606. ar1.push(pathArray[0][i]);
  36607. ar2.push(pathArray[0][i + offset]);
  36608. }
  36609. pathArray = [ar1, ar2];
  36610. }
  36611. // positions and horizontal distances (u)
  36612. var idc = 0;
  36613. var closePathCorr = (closePath) ? 1 : 0; // the final index will be +1 if closePath
  36614. var path;
  36615. var l;
  36616. minlg = pathArray[0].length;
  36617. var vectlg;
  36618. var dist;
  36619. for (p = 0; p < pathArray.length; p++) {
  36620. uTotalDistance[p] = 0;
  36621. us[p] = [0];
  36622. path = pathArray[p];
  36623. l = path.length;
  36624. minlg = (minlg < l) ? minlg : l;
  36625. j = 0;
  36626. while (j < l) {
  36627. positions.push(path[j].x, path[j].y, path[j].z);
  36628. if (j > 0) {
  36629. vectlg = path[j].subtract(path[j - 1]).length();
  36630. dist = vectlg + uTotalDistance[p];
  36631. us[p].push(dist);
  36632. uTotalDistance[p] = dist;
  36633. }
  36634. j++;
  36635. }
  36636. if (closePath) { // an extra hidden vertex is added in the "positions" array
  36637. j--;
  36638. positions.push(path[0].x, path[0].y, path[0].z);
  36639. vectlg = path[j].subtract(path[0]).length();
  36640. dist = vectlg + uTotalDistance[p];
  36641. us[p].push(dist);
  36642. uTotalDistance[p] = dist;
  36643. }
  36644. lg[p] = l + closePathCorr;
  36645. idx[p] = idc;
  36646. idc += (l + closePathCorr);
  36647. }
  36648. // vertical distances (v)
  36649. var path1;
  36650. var path2;
  36651. var vertex1 = null;
  36652. var vertex2 = null;
  36653. for (i = 0; i < minlg + closePathCorr; i++) {
  36654. vTotalDistance[i] = 0;
  36655. vs[i] = [0];
  36656. for (p = 0; p < pathArray.length - 1; p++) {
  36657. path1 = pathArray[p];
  36658. path2 = pathArray[p + 1];
  36659. if (i === minlg) { // closePath
  36660. vertex1 = path1[0];
  36661. vertex2 = path2[0];
  36662. }
  36663. else {
  36664. vertex1 = path1[i];
  36665. vertex2 = path2[i];
  36666. }
  36667. vectlg = vertex2.subtract(vertex1).length();
  36668. dist = vectlg + vTotalDistance[i];
  36669. vs[i].push(dist);
  36670. vTotalDistance[i] = dist;
  36671. }
  36672. if (closeArray && vertex2 && vertex1) {
  36673. path1 = pathArray[p];
  36674. path2 = pathArray[0];
  36675. if (i === minlg) { // closePath
  36676. vertex2 = path2[0];
  36677. }
  36678. vectlg = vertex2.subtract(vertex1).length();
  36679. dist = vectlg + vTotalDistance[i];
  36680. vTotalDistance[i] = dist;
  36681. }
  36682. }
  36683. // uvs
  36684. var u;
  36685. var v;
  36686. if (customUV) {
  36687. for (p = 0; p < customUV.length; p++) {
  36688. uvs.push(customUV[p].x, customUV[p].y);
  36689. }
  36690. }
  36691. else {
  36692. for (p = 0; p < pathArray.length; p++) {
  36693. for (i = 0; i < minlg + closePathCorr; i++) {
  36694. u = (uTotalDistance[p] != 0.0) ? us[p][i] / uTotalDistance[p] : 0.0;
  36695. v = (vTotalDistance[i] != 0.0) ? vs[i][p] / vTotalDistance[i] : 0.0;
  36696. if (invertUV) {
  36697. uvs.push(v, u);
  36698. }
  36699. else {
  36700. uvs.push(u, v);
  36701. }
  36702. }
  36703. }
  36704. }
  36705. // indices
  36706. p = 0; // path index
  36707. var pi = 0; // positions array index
  36708. var l1 = lg[p] - 1; // path1 length
  36709. var l2 = lg[p + 1] - 1; // path2 length
  36710. var min = (l1 < l2) ? l1 : l2; // current path stop index
  36711. var shft = idx[1] - idx[0]; // shift
  36712. var path1nb = closeArray ? lg.length : lg.length - 1; // number of path1 to iterate on
  36713. while (pi <= min && p < path1nb) { // stay under min and don't go over next to last path
  36714. // draw two triangles between path1 (p1) and path2 (p2) : (p1.pi, p2.pi, p1.pi+1) and (p2.pi+1, p1.pi+1, p2.pi) clockwise
  36715. indices.push(pi, pi + shft, pi + 1);
  36716. indices.push(pi + shft + 1, pi + 1, pi + shft);
  36717. pi += 1;
  36718. if (pi === min) { // if end of one of two consecutive paths reached, go to next existing path
  36719. p++;
  36720. if (p === lg.length - 1) { // last path of pathArray reached <=> closeArray == true
  36721. shft = idx[0] - idx[p];
  36722. l1 = lg[p] - 1;
  36723. l2 = lg[0] - 1;
  36724. }
  36725. else {
  36726. shft = idx[p + 1] - idx[p];
  36727. l1 = lg[p] - 1;
  36728. l2 = lg[p + 1] - 1;
  36729. }
  36730. pi = idx[p];
  36731. min = (l1 < l2) ? l1 + pi : l2 + pi;
  36732. }
  36733. }
  36734. // normals
  36735. VertexData.ComputeNormals(positions, indices, normals);
  36736. if (closePath) { // update both the first and last vertex normals to their average value
  36737. var indexFirst = 0;
  36738. var indexLast = 0;
  36739. for (p = 0; p < pathArray.length; p++) {
  36740. indexFirst = idx[p] * 3;
  36741. if (p + 1 < pathArray.length) {
  36742. indexLast = (idx[p + 1] - 1) * 3;
  36743. }
  36744. else {
  36745. indexLast = normals.length - 3;
  36746. }
  36747. normals[indexFirst] = (normals[indexFirst] + normals[indexLast]) * 0.5;
  36748. normals[indexFirst + 1] = (normals[indexFirst + 1] + normals[indexLast + 1]) * 0.5;
  36749. normals[indexFirst + 2] = (normals[indexFirst + 2] + normals[indexLast + 2]) * 0.5;
  36750. normals[indexLast] = normals[indexFirst];
  36751. normals[indexLast + 1] = normals[indexFirst + 1];
  36752. normals[indexLast + 2] = normals[indexFirst + 2];
  36753. }
  36754. }
  36755. // sides
  36756. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  36757. // Colors
  36758. var colors = null;
  36759. if (customColors) {
  36760. colors = new Float32Array(customColors.length * 4);
  36761. for (var c = 0; c < customColors.length; c++) {
  36762. colors[c * 4] = customColors[c].r;
  36763. colors[c * 4 + 1] = customColors[c].g;
  36764. colors[c * 4 + 2] = customColors[c].b;
  36765. colors[c * 4 + 3] = customColors[c].a;
  36766. }
  36767. }
  36768. // Result
  36769. var vertexData = new VertexData();
  36770. var positions32 = new Float32Array(positions);
  36771. var normals32 = new Float32Array(normals);
  36772. var uvs32 = new Float32Array(uvs);
  36773. vertexData.indices = indices;
  36774. vertexData.positions = positions32;
  36775. vertexData.normals = normals32;
  36776. vertexData.uvs = uvs32;
  36777. if (colors) {
  36778. vertexData.set(colors, BABYLON.VertexBuffer.ColorKind);
  36779. }
  36780. if (closePath) {
  36781. vertexData._idx = idx;
  36782. }
  36783. return vertexData;
  36784. };
  36785. /**
  36786. * Creates the VertexData for a box
  36787. * @param options an object used to set the following optional parameters for the box, required but can be empty
  36788. * * size sets the width, height and depth of the box to the value of size, optional default 1
  36789. * * width sets the width (x direction) of the box, overwrites the width set by size, optional, default size
  36790. * * height sets the height (y direction) of the box, overwrites the height set by size, optional, default size
  36791. * * depth sets the depth (z direction) of the box, overwrites the depth set by size, optional, default size
  36792. * * faceUV an array of 6 Vector4 elements used to set different images to each box side
  36793. * * faceColors an array of 6 Color3 elements used to set different colors to each box side
  36794. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  36795. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  36796. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  36797. * @returns the VertexData of the box
  36798. */
  36799. VertexData.CreateBox = function (options) {
  36800. var normalsSource = [
  36801. new BABYLON.Vector3(0, 0, 1),
  36802. new BABYLON.Vector3(0, 0, -1),
  36803. new BABYLON.Vector3(1, 0, 0),
  36804. new BABYLON.Vector3(-1, 0, 0),
  36805. new BABYLON.Vector3(0, 1, 0),
  36806. new BABYLON.Vector3(0, -1, 0)
  36807. ];
  36808. var indices = [];
  36809. var positions = [];
  36810. var normals = [];
  36811. var uvs = [];
  36812. var width = options.width || options.size || 1;
  36813. var height = options.height || options.size || 1;
  36814. var depth = options.depth || options.size || 1;
  36815. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  36816. var faceUV = options.faceUV || new Array(6);
  36817. var faceColors = options.faceColors;
  36818. var colors = [];
  36819. // default face colors and UV if undefined
  36820. for (var f = 0; f < 6; f++) {
  36821. if (faceUV[f] === undefined) {
  36822. faceUV[f] = new BABYLON.Vector4(0, 0, 1, 1);
  36823. }
  36824. if (faceColors && faceColors[f] === undefined) {
  36825. faceColors[f] = new BABYLON.Color4(1, 1, 1, 1);
  36826. }
  36827. }
  36828. var scaleVector = new BABYLON.Vector3(width / 2, height / 2, depth / 2);
  36829. // Create each face in turn.
  36830. for (var index = 0; index < normalsSource.length; index++) {
  36831. var normal = normalsSource[index];
  36832. // Get two vectors perpendicular to the face normal and to each other.
  36833. var side1 = new BABYLON.Vector3(normal.y, normal.z, normal.x);
  36834. var side2 = BABYLON.Vector3.Cross(normal, side1);
  36835. // Six indices (two triangles) per face.
  36836. var verticesLength = positions.length / 3;
  36837. indices.push(verticesLength);
  36838. indices.push(verticesLength + 1);
  36839. indices.push(verticesLength + 2);
  36840. indices.push(verticesLength);
  36841. indices.push(verticesLength + 2);
  36842. indices.push(verticesLength + 3);
  36843. // Four vertices per face.
  36844. var vertex = normal.subtract(side1).subtract(side2).multiply(scaleVector);
  36845. positions.push(vertex.x, vertex.y, vertex.z);
  36846. normals.push(normal.x, normal.y, normal.z);
  36847. uvs.push(faceUV[index].z, faceUV[index].w);
  36848. if (faceColors) {
  36849. colors.push(faceColors[index].r, faceColors[index].g, faceColors[index].b, faceColors[index].a);
  36850. }
  36851. vertex = normal.subtract(side1).add(side2).multiply(scaleVector);
  36852. positions.push(vertex.x, vertex.y, vertex.z);
  36853. normals.push(normal.x, normal.y, normal.z);
  36854. uvs.push(faceUV[index].x, faceUV[index].w);
  36855. if (faceColors) {
  36856. colors.push(faceColors[index].r, faceColors[index].g, faceColors[index].b, faceColors[index].a);
  36857. }
  36858. vertex = normal.add(side1).add(side2).multiply(scaleVector);
  36859. positions.push(vertex.x, vertex.y, vertex.z);
  36860. normals.push(normal.x, normal.y, normal.z);
  36861. uvs.push(faceUV[index].x, faceUV[index].y);
  36862. if (faceColors) {
  36863. colors.push(faceColors[index].r, faceColors[index].g, faceColors[index].b, faceColors[index].a);
  36864. }
  36865. vertex = normal.add(side1).subtract(side2).multiply(scaleVector);
  36866. positions.push(vertex.x, vertex.y, vertex.z);
  36867. normals.push(normal.x, normal.y, normal.z);
  36868. uvs.push(faceUV[index].z, faceUV[index].y);
  36869. if (faceColors) {
  36870. colors.push(faceColors[index].r, faceColors[index].g, faceColors[index].b, faceColors[index].a);
  36871. }
  36872. }
  36873. // sides
  36874. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  36875. // Result
  36876. var vertexData = new VertexData();
  36877. vertexData.indices = indices;
  36878. vertexData.positions = positions;
  36879. vertexData.normals = normals;
  36880. vertexData.uvs = uvs;
  36881. if (faceColors) {
  36882. var totalColors = (sideOrientation === BABYLON.Mesh.DOUBLESIDE) ? colors.concat(colors) : colors;
  36883. vertexData.colors = totalColors;
  36884. }
  36885. return vertexData;
  36886. };
  36887. /**
  36888. * Creates the VertexData for an ellipsoid, defaults to a sphere
  36889. * @param options an object used to set the following optional parameters for the box, required but can be empty
  36890. * * segments sets the number of horizontal strips optional, default 32
  36891. * * diameter sets the axes dimensions, diameterX, diameterY and diameterZ to the value of diameter, optional default 1
  36892. * * diameterX sets the diameterX (x direction) of the ellipsoid, overwrites the diameterX set by diameter, optional, default diameter
  36893. * * diameterY sets the diameterY (y direction) of the ellipsoid, overwrites the diameterY set by diameter, optional, default diameter
  36894. * * diameterZ sets the diameterZ (z direction) of the ellipsoid, overwrites the diameterZ set by diameter, optional, default diameter
  36895. * * arc a number from 0 to 1, to create an unclosed ellipsoid based on the fraction of the circumference (latitude) given by the arc value, optional, default 1
  36896. * * slice a number from 0 to 1, to create an unclosed ellipsoid based on the fraction of the height (latitude) given by the arc value, optional, default 1
  36897. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  36898. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  36899. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  36900. * @returns the VertexData of the ellipsoid
  36901. */
  36902. VertexData.CreateSphere = function (options) {
  36903. var segments = options.segments || 32;
  36904. var diameterX = options.diameterX || options.diameter || 1;
  36905. var diameterY = options.diameterY || options.diameter || 1;
  36906. var diameterZ = options.diameterZ || options.diameter || 1;
  36907. var arc = options.arc && (options.arc <= 0 || options.arc > 1) ? 1.0 : options.arc || 1.0;
  36908. var slice = options.slice && (options.slice <= 0) ? 1.0 : options.slice || 1.0;
  36909. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  36910. var radius = new BABYLON.Vector3(diameterX / 2, diameterY / 2, diameterZ / 2);
  36911. var totalZRotationSteps = 2 + segments;
  36912. var totalYRotationSteps = 2 * totalZRotationSteps;
  36913. var indices = [];
  36914. var positions = [];
  36915. var normals = [];
  36916. var uvs = [];
  36917. for (var zRotationStep = 0; zRotationStep <= totalZRotationSteps; zRotationStep++) {
  36918. var normalizedZ = zRotationStep / totalZRotationSteps;
  36919. var angleZ = normalizedZ * Math.PI * slice;
  36920. for (var yRotationStep = 0; yRotationStep <= totalYRotationSteps; yRotationStep++) {
  36921. var normalizedY = yRotationStep / totalYRotationSteps;
  36922. var angleY = normalizedY * Math.PI * 2 * arc;
  36923. var rotationZ = BABYLON.Matrix.RotationZ(-angleZ);
  36924. var rotationY = BABYLON.Matrix.RotationY(angleY);
  36925. var afterRotZ = BABYLON.Vector3.TransformCoordinates(BABYLON.Vector3.Up(), rotationZ);
  36926. var complete = BABYLON.Vector3.TransformCoordinates(afterRotZ, rotationY);
  36927. var vertex = complete.multiply(radius);
  36928. var normal = complete.divide(radius).normalize();
  36929. positions.push(vertex.x, vertex.y, vertex.z);
  36930. normals.push(normal.x, normal.y, normal.z);
  36931. uvs.push(normalizedY, normalizedZ);
  36932. }
  36933. if (zRotationStep > 0) {
  36934. var verticesCount = positions.length / 3;
  36935. for (var firstIndex = verticesCount - 2 * (totalYRotationSteps + 1); (firstIndex + totalYRotationSteps + 2) < verticesCount; firstIndex++) {
  36936. indices.push((firstIndex));
  36937. indices.push((firstIndex + 1));
  36938. indices.push(firstIndex + totalYRotationSteps + 1);
  36939. indices.push((firstIndex + totalYRotationSteps + 1));
  36940. indices.push((firstIndex + 1));
  36941. indices.push((firstIndex + totalYRotationSteps + 2));
  36942. }
  36943. }
  36944. }
  36945. // Sides
  36946. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  36947. // Result
  36948. var vertexData = new VertexData();
  36949. vertexData.indices = indices;
  36950. vertexData.positions = positions;
  36951. vertexData.normals = normals;
  36952. vertexData.uvs = uvs;
  36953. return vertexData;
  36954. };
  36955. /**
  36956. * Creates the VertexData for a cylinder, cone or prism
  36957. * @param options an object used to set the following optional parameters for the box, required but can be empty
  36958. * * height sets the height (y direction) of the cylinder, optional, default 2
  36959. * * diameterTop sets the diameter of the top of the cone, overwrites diameter, optional, default diameter
  36960. * * diameterBottom sets the diameter of the bottom of the cone, overwrites diameter, optional, default diameter
  36961. * * diameter sets the diameter of the top and bottom of the cone, optional default 1
  36962. * * tessellation the number of prism sides, 3 for a triangular prism, optional, default 24
  36963. * * subdivisions` the number of rings along the cylinder height, optional, default 1
  36964. * * arc a number from 0 to 1, to create an unclosed cylinder based on the fraction of the circumference given by the arc value, optional, default 1
  36965. * * faceColors an array of Color3 elements used to set different colors to the top, rings and bottom respectively
  36966. * * faceUV an array of Vector4 elements used to set different images to the top, rings and bottom respectively
  36967. * * hasRings when true makes each subdivision independantly treated as a face for faceUV and faceColors, optional, default false
  36968. * * enclose when true closes an open cylinder by adding extra flat faces between the height axis and vertical edges, think cut cake
  36969. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  36970. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  36971. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  36972. * @returns the VertexData of the cylinder, cone or prism
  36973. */
  36974. VertexData.CreateCylinder = function (options) {
  36975. var height = options.height || 2;
  36976. var diameterTop = (options.diameterTop === 0) ? 0 : options.diameterTop || options.diameter || 1;
  36977. var diameterBottom = (options.diameterBottom === 0) ? 0 : options.diameterBottom || options.diameter || 1;
  36978. var tessellation = options.tessellation || 24;
  36979. var subdivisions = options.subdivisions || 1;
  36980. var hasRings = options.hasRings ? true : false;
  36981. var enclose = options.enclose ? true : false;
  36982. var arc = options.arc && (options.arc <= 0 || options.arc > 1) ? 1.0 : options.arc || 1.0;
  36983. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  36984. var faceUV = options.faceUV || new Array(3);
  36985. var faceColors = options.faceColors;
  36986. // default face colors and UV if undefined
  36987. var quadNb = (arc !== 1 && enclose) ? 2 : 0;
  36988. var ringNb = (hasRings) ? subdivisions : 1;
  36989. var surfaceNb = 2 + (1 + quadNb) * ringNb;
  36990. var f;
  36991. for (f = 0; f < surfaceNb; f++) {
  36992. if (faceColors && faceColors[f] === undefined) {
  36993. faceColors[f] = new BABYLON.Color4(1, 1, 1, 1);
  36994. }
  36995. }
  36996. for (f = 0; f < surfaceNb; f++) {
  36997. if (faceUV && faceUV[f] === undefined) {
  36998. faceUV[f] = new BABYLON.Vector4(0, 0, 1, 1);
  36999. }
  37000. }
  37001. var indices = new Array();
  37002. var positions = new Array();
  37003. var normals = new Array();
  37004. var uvs = new Array();
  37005. var colors = new Array();
  37006. var angle_step = Math.PI * 2 * arc / tessellation;
  37007. var angle;
  37008. var h;
  37009. var radius;
  37010. var tan = (diameterBottom - diameterTop) / 2 / height;
  37011. var ringVertex = BABYLON.Vector3.Zero();
  37012. var ringNormal = BABYLON.Vector3.Zero();
  37013. var ringFirstVertex = BABYLON.Vector3.Zero();
  37014. var ringFirstNormal = BABYLON.Vector3.Zero();
  37015. var quadNormal = BABYLON.Vector3.Zero();
  37016. var Y = BABYLON.Axis.Y;
  37017. // positions, normals, uvs
  37018. var i;
  37019. var j;
  37020. var r;
  37021. var ringIdx = 1;
  37022. var s = 1; // surface index
  37023. var cs = 0;
  37024. var v = 0;
  37025. for (i = 0; i <= subdivisions; i++) {
  37026. h = i / subdivisions;
  37027. radius = (h * (diameterTop - diameterBottom) + diameterBottom) / 2;
  37028. ringIdx = (hasRings && i !== 0 && i !== subdivisions) ? 2 : 1;
  37029. for (r = 0; r < ringIdx; r++) {
  37030. if (hasRings) {
  37031. s += r;
  37032. }
  37033. if (enclose) {
  37034. s += 2 * r;
  37035. }
  37036. for (j = 0; j <= tessellation; j++) {
  37037. angle = j * angle_step;
  37038. // position
  37039. ringVertex.x = Math.cos(-angle) * radius;
  37040. ringVertex.y = -height / 2 + h * height;
  37041. ringVertex.z = Math.sin(-angle) * radius;
  37042. // normal
  37043. if (diameterTop === 0 && i === subdivisions) {
  37044. // if no top cap, reuse former normals
  37045. ringNormal.x = normals[normals.length - (tessellation + 1) * 3];
  37046. ringNormal.y = normals[normals.length - (tessellation + 1) * 3 + 1];
  37047. ringNormal.z = normals[normals.length - (tessellation + 1) * 3 + 2];
  37048. }
  37049. else {
  37050. ringNormal.x = ringVertex.x;
  37051. ringNormal.z = ringVertex.z;
  37052. ringNormal.y = Math.sqrt(ringNormal.x * ringNormal.x + ringNormal.z * ringNormal.z) * tan;
  37053. ringNormal.normalize();
  37054. }
  37055. // keep first ring vertex values for enclose
  37056. if (j === 0) {
  37057. ringFirstVertex.copyFrom(ringVertex);
  37058. ringFirstNormal.copyFrom(ringNormal);
  37059. }
  37060. positions.push(ringVertex.x, ringVertex.y, ringVertex.z);
  37061. normals.push(ringNormal.x, ringNormal.y, ringNormal.z);
  37062. if (hasRings) {
  37063. v = (cs !== s) ? faceUV[s].y : faceUV[s].w;
  37064. }
  37065. else {
  37066. v = faceUV[s].y + (faceUV[s].w - faceUV[s].y) * h;
  37067. }
  37068. uvs.push(faceUV[s].x + (faceUV[s].z - faceUV[s].x) * j / tessellation, v);
  37069. if (faceColors) {
  37070. colors.push(faceColors[s].r, faceColors[s].g, faceColors[s].b, faceColors[s].a);
  37071. }
  37072. }
  37073. // if enclose, add four vertices and their dedicated normals
  37074. if (arc !== 1 && enclose) {
  37075. positions.push(ringVertex.x, ringVertex.y, ringVertex.z);
  37076. positions.push(0, ringVertex.y, 0);
  37077. positions.push(0, ringVertex.y, 0);
  37078. positions.push(ringFirstVertex.x, ringFirstVertex.y, ringFirstVertex.z);
  37079. BABYLON.Vector3.CrossToRef(Y, ringNormal, quadNormal);
  37080. quadNormal.normalize();
  37081. normals.push(quadNormal.x, quadNormal.y, quadNormal.z, quadNormal.x, quadNormal.y, quadNormal.z);
  37082. BABYLON.Vector3.CrossToRef(ringFirstNormal, Y, quadNormal);
  37083. quadNormal.normalize();
  37084. normals.push(quadNormal.x, quadNormal.y, quadNormal.z, quadNormal.x, quadNormal.y, quadNormal.z);
  37085. if (hasRings) {
  37086. v = (cs !== s) ? faceUV[s + 1].y : faceUV[s + 1].w;
  37087. }
  37088. else {
  37089. v = faceUV[s + 1].y + (faceUV[s + 1].w - faceUV[s + 1].y) * h;
  37090. }
  37091. uvs.push(faceUV[s + 1].x, v);
  37092. uvs.push(faceUV[s + 1].z, v);
  37093. if (hasRings) {
  37094. v = (cs !== s) ? faceUV[s + 2].y : faceUV[s + 2].w;
  37095. }
  37096. else {
  37097. v = faceUV[s + 2].y + (faceUV[s + 2].w - faceUV[s + 2].y) * h;
  37098. }
  37099. uvs.push(faceUV[s + 2].x, v);
  37100. uvs.push(faceUV[s + 2].z, v);
  37101. if (faceColors) {
  37102. colors.push(faceColors[s + 1].r, faceColors[s + 1].g, faceColors[s + 1].b, faceColors[s + 1].a);
  37103. colors.push(faceColors[s + 1].r, faceColors[s + 1].g, faceColors[s + 1].b, faceColors[s + 1].a);
  37104. colors.push(faceColors[s + 2].r, faceColors[s + 2].g, faceColors[s + 2].b, faceColors[s + 2].a);
  37105. colors.push(faceColors[s + 2].r, faceColors[s + 2].g, faceColors[s + 2].b, faceColors[s + 2].a);
  37106. }
  37107. }
  37108. if (cs !== s) {
  37109. cs = s;
  37110. }
  37111. }
  37112. }
  37113. // indices
  37114. var e = (arc !== 1 && enclose) ? tessellation + 4 : tessellation; // correction of number of iteration if enclose
  37115. var s;
  37116. i = 0;
  37117. for (s = 0; s < subdivisions; s++) {
  37118. var i0 = 0;
  37119. var i1 = 0;
  37120. var i2 = 0;
  37121. var i3 = 0;
  37122. for (j = 0; j < tessellation; j++) {
  37123. i0 = i * (e + 1) + j;
  37124. i1 = (i + 1) * (e + 1) + j;
  37125. i2 = i * (e + 1) + (j + 1);
  37126. i3 = (i + 1) * (e + 1) + (j + 1);
  37127. indices.push(i0, i1, i2);
  37128. indices.push(i3, i2, i1);
  37129. }
  37130. if (arc !== 1 && enclose) { // if enclose, add two quads
  37131. indices.push(i0 + 2, i1 + 2, i2 + 2);
  37132. indices.push(i3 + 2, i2 + 2, i1 + 2);
  37133. indices.push(i0 + 4, i1 + 4, i2 + 4);
  37134. indices.push(i3 + 4, i2 + 4, i1 + 4);
  37135. }
  37136. i = (hasRings) ? (i + 2) : (i + 1);
  37137. }
  37138. // Caps
  37139. var createCylinderCap = function (isTop) {
  37140. var radius = isTop ? diameterTop / 2 : diameterBottom / 2;
  37141. if (radius === 0) {
  37142. return;
  37143. }
  37144. // Cap positions, normals & uvs
  37145. var angle;
  37146. var circleVector;
  37147. var i;
  37148. var u = (isTop) ? faceUV[surfaceNb - 1] : faceUV[0];
  37149. var c = null;
  37150. if (faceColors) {
  37151. c = (isTop) ? faceColors[surfaceNb - 1] : faceColors[0];
  37152. }
  37153. // cap center
  37154. var vbase = positions.length / 3;
  37155. var offset = isTop ? height / 2 : -height / 2;
  37156. var center = new BABYLON.Vector3(0, offset, 0);
  37157. positions.push(center.x, center.y, center.z);
  37158. normals.push(0, isTop ? 1 : -1, 0);
  37159. uvs.push(u.x + (u.z - u.x) * 0.5, u.y + (u.w - u.y) * 0.5);
  37160. if (c) {
  37161. colors.push(c.r, c.g, c.b, c.a);
  37162. }
  37163. var textureScale = new BABYLON.Vector2(0.5, 0.5);
  37164. for (i = 0; i <= tessellation; i++) {
  37165. angle = Math.PI * 2 * i * arc / tessellation;
  37166. var cos = Math.cos(-angle);
  37167. var sin = Math.sin(-angle);
  37168. circleVector = new BABYLON.Vector3(cos * radius, offset, sin * radius);
  37169. var textureCoordinate = new BABYLON.Vector2(cos * textureScale.x + 0.5, sin * textureScale.y + 0.5);
  37170. positions.push(circleVector.x, circleVector.y, circleVector.z);
  37171. normals.push(0, isTop ? 1 : -1, 0);
  37172. uvs.push(u.x + (u.z - u.x) * textureCoordinate.x, u.y + (u.w - u.y) * textureCoordinate.y);
  37173. if (c) {
  37174. colors.push(c.r, c.g, c.b, c.a);
  37175. }
  37176. }
  37177. // Cap indices
  37178. for (i = 0; i < tessellation; i++) {
  37179. if (!isTop) {
  37180. indices.push(vbase);
  37181. indices.push(vbase + (i + 1));
  37182. indices.push(vbase + (i + 2));
  37183. }
  37184. else {
  37185. indices.push(vbase);
  37186. indices.push(vbase + (i + 2));
  37187. indices.push(vbase + (i + 1));
  37188. }
  37189. }
  37190. };
  37191. // add caps to geometry
  37192. createCylinderCap(false);
  37193. createCylinderCap(true);
  37194. // Sides
  37195. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  37196. var vertexData = new VertexData();
  37197. vertexData.indices = indices;
  37198. vertexData.positions = positions;
  37199. vertexData.normals = normals;
  37200. vertexData.uvs = uvs;
  37201. if (faceColors) {
  37202. vertexData.colors = colors;
  37203. }
  37204. return vertexData;
  37205. };
  37206. /**
  37207. * Creates the VertexData for a torus
  37208. * @param options an object used to set the following optional parameters for the box, required but can be empty
  37209. * * diameter the diameter of the torus, optional default 1
  37210. * * thickness the diameter of the tube forming the torus, optional default 0.5
  37211. * * tessellation the number of prism sides, 3 for a triangular prism, optional, default 24
  37212. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37213. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37214. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37215. * @returns the VertexData of the torus
  37216. */
  37217. VertexData.CreateTorus = function (options) {
  37218. var indices = [];
  37219. var positions = [];
  37220. var normals = [];
  37221. var uvs = [];
  37222. var diameter = options.diameter || 1;
  37223. var thickness = options.thickness || 0.5;
  37224. var tessellation = options.tessellation || 16;
  37225. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  37226. var stride = tessellation + 1;
  37227. for (var i = 0; i <= tessellation; i++) {
  37228. var u = i / tessellation;
  37229. var outerAngle = i * Math.PI * 2.0 / tessellation - Math.PI / 2.0;
  37230. var transform = BABYLON.Matrix.Translation(diameter / 2.0, 0, 0).multiply(BABYLON.Matrix.RotationY(outerAngle));
  37231. for (var j = 0; j <= tessellation; j++) {
  37232. var v = 1 - j / tessellation;
  37233. var innerAngle = j * Math.PI * 2.0 / tessellation + Math.PI;
  37234. var dx = Math.cos(innerAngle);
  37235. var dy = Math.sin(innerAngle);
  37236. // Create a vertex.
  37237. var normal = new BABYLON.Vector3(dx, dy, 0);
  37238. var position = normal.scale(thickness / 2);
  37239. var textureCoordinate = new BABYLON.Vector2(u, v);
  37240. position = BABYLON.Vector3.TransformCoordinates(position, transform);
  37241. normal = BABYLON.Vector3.TransformNormal(normal, transform);
  37242. positions.push(position.x, position.y, position.z);
  37243. normals.push(normal.x, normal.y, normal.z);
  37244. uvs.push(textureCoordinate.x, textureCoordinate.y);
  37245. // And create indices for two triangles.
  37246. var nextI = (i + 1) % stride;
  37247. var nextJ = (j + 1) % stride;
  37248. indices.push(i * stride + j);
  37249. indices.push(i * stride + nextJ);
  37250. indices.push(nextI * stride + j);
  37251. indices.push(i * stride + nextJ);
  37252. indices.push(nextI * stride + nextJ);
  37253. indices.push(nextI * stride + j);
  37254. }
  37255. }
  37256. // Sides
  37257. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  37258. // Result
  37259. var vertexData = new VertexData();
  37260. vertexData.indices = indices;
  37261. vertexData.positions = positions;
  37262. vertexData.normals = normals;
  37263. vertexData.uvs = uvs;
  37264. return vertexData;
  37265. };
  37266. /**
  37267. * Creates the VertexData of the LineSystem
  37268. * @param options an object used to set the following optional parameters for the LineSystem, required but can be empty
  37269. * - lines an array of lines, each line being an array of successive Vector3
  37270. * - colors an array of line colors, each of the line colors being an array of successive Color4, one per line point
  37271. * @returns the VertexData of the LineSystem
  37272. */
  37273. VertexData.CreateLineSystem = function (options) {
  37274. var indices = [];
  37275. var positions = [];
  37276. var lines = options.lines;
  37277. var colors = options.colors;
  37278. var vertexColors = [];
  37279. var idx = 0;
  37280. for (var l = 0; l < lines.length; l++) {
  37281. var points = lines[l];
  37282. for (var index = 0; index < points.length; index++) {
  37283. positions.push(points[index].x, points[index].y, points[index].z);
  37284. if (colors) {
  37285. var color = colors[l];
  37286. vertexColors.push(color[index].r, color[index].g, color[index].b, color[index].a);
  37287. }
  37288. if (index > 0) {
  37289. indices.push(idx - 1);
  37290. indices.push(idx);
  37291. }
  37292. idx++;
  37293. }
  37294. }
  37295. var vertexData = new VertexData();
  37296. vertexData.indices = indices;
  37297. vertexData.positions = positions;
  37298. if (colors) {
  37299. vertexData.colors = vertexColors;
  37300. }
  37301. return vertexData;
  37302. };
  37303. /**
  37304. * Create the VertexData for a DashedLines
  37305. * @param options an object used to set the following optional parameters for the DashedLines, required but can be empty
  37306. * - points an array successive Vector3
  37307. * - dashSize the size of the dashes relative to the dash number, optional, default 3
  37308. * - gapSize the size of the gap between two successive dashes relative to the dash number, optional, default 1
  37309. * - dashNb the intended total number of dashes, optional, default 200
  37310. * @returns the VertexData for the DashedLines
  37311. */
  37312. VertexData.CreateDashedLines = function (options) {
  37313. var dashSize = options.dashSize || 3;
  37314. var gapSize = options.gapSize || 1;
  37315. var dashNb = options.dashNb || 200;
  37316. var points = options.points;
  37317. var positions = new Array();
  37318. var indices = new Array();
  37319. var curvect = BABYLON.Vector3.Zero();
  37320. var lg = 0;
  37321. var nb = 0;
  37322. var shft = 0;
  37323. var dashshft = 0;
  37324. var curshft = 0;
  37325. var idx = 0;
  37326. var i = 0;
  37327. for (i = 0; i < points.length - 1; i++) {
  37328. points[i + 1].subtractToRef(points[i], curvect);
  37329. lg += curvect.length();
  37330. }
  37331. shft = lg / dashNb;
  37332. dashshft = dashSize * shft / (dashSize + gapSize);
  37333. for (i = 0; i < points.length - 1; i++) {
  37334. points[i + 1].subtractToRef(points[i], curvect);
  37335. nb = Math.floor(curvect.length() / shft);
  37336. curvect.normalize();
  37337. for (var j = 0; j < nb; j++) {
  37338. curshft = shft * j;
  37339. positions.push(points[i].x + curshft * curvect.x, points[i].y + curshft * curvect.y, points[i].z + curshft * curvect.z);
  37340. positions.push(points[i].x + (curshft + dashshft) * curvect.x, points[i].y + (curshft + dashshft) * curvect.y, points[i].z + (curshft + dashshft) * curvect.z);
  37341. indices.push(idx, idx + 1);
  37342. idx += 2;
  37343. }
  37344. }
  37345. // Result
  37346. var vertexData = new VertexData();
  37347. vertexData.positions = positions;
  37348. vertexData.indices = indices;
  37349. return vertexData;
  37350. };
  37351. /**
  37352. * Creates the VertexData for a Ground
  37353. * @param options an object used to set the following optional parameters for the Ground, required but can be empty
  37354. * - width the width (x direction) of the ground, optional, default 1
  37355. * - height the height (z direction) of the ground, optional, default 1
  37356. * - subdivisions the number of subdivisions per side, optional, default 1
  37357. * @returns the VertexData of the Ground
  37358. */
  37359. VertexData.CreateGround = function (options) {
  37360. var indices = [];
  37361. var positions = [];
  37362. var normals = [];
  37363. var uvs = [];
  37364. var row, col;
  37365. var width = options.width || 1;
  37366. var height = options.height || 1;
  37367. var subdivisionsX = options.subdivisionsX || options.subdivisions || 1;
  37368. var subdivisionsY = options.subdivisionsY || options.subdivisions || 1;
  37369. for (row = 0; row <= subdivisionsY; row++) {
  37370. for (col = 0; col <= subdivisionsX; col++) {
  37371. var position = new BABYLON.Vector3((col * width) / subdivisionsX - (width / 2.0), 0, ((subdivisionsY - row) * height) / subdivisionsY - (height / 2.0));
  37372. var normal = new BABYLON.Vector3(0, 1.0, 0);
  37373. positions.push(position.x, position.y, position.z);
  37374. normals.push(normal.x, normal.y, normal.z);
  37375. uvs.push(col / subdivisionsX, 1.0 - row / subdivisionsY);
  37376. }
  37377. }
  37378. for (row = 0; row < subdivisionsY; row++) {
  37379. for (col = 0; col < subdivisionsX; col++) {
  37380. indices.push(col + 1 + (row + 1) * (subdivisionsX + 1));
  37381. indices.push(col + 1 + row * (subdivisionsX + 1));
  37382. indices.push(col + row * (subdivisionsX + 1));
  37383. indices.push(col + (row + 1) * (subdivisionsX + 1));
  37384. indices.push(col + 1 + (row + 1) * (subdivisionsX + 1));
  37385. indices.push(col + row * (subdivisionsX + 1));
  37386. }
  37387. }
  37388. // Result
  37389. var vertexData = new VertexData();
  37390. vertexData.indices = indices;
  37391. vertexData.positions = positions;
  37392. vertexData.normals = normals;
  37393. vertexData.uvs = uvs;
  37394. return vertexData;
  37395. };
  37396. /**
  37397. * Creates the VertexData for a TiledGround by subdividing the ground into tiles
  37398. * @param options an object used to set the following optional parameters for the Ground, required but can be empty
  37399. * * xmin the ground minimum X coordinate, optional, default -1
  37400. * * zmin the ground minimum Z coordinate, optional, default -1
  37401. * * xmax the ground maximum X coordinate, optional, default 1
  37402. * * zmax the ground maximum Z coordinate, optional, default 1
  37403. * * subdivisions a javascript object {w: positive integer, h: positive integer}, `w` and `h` are the numbers of subdivisions on the ground width and height creating 'tiles', default {w: 6, h: 6}
  37404. * * precision a javascript object {w: positive integer, h: positive integer}, `w` and `h` are the numbers of subdivisions on the tile width and height, default {w: 2, h: 2}
  37405. * @returns the VertexData of the TiledGround
  37406. */
  37407. VertexData.CreateTiledGround = function (options) {
  37408. var xmin = (options.xmin !== undefined && options.xmin !== null) ? options.xmin : -1.0;
  37409. var zmin = (options.zmin !== undefined && options.zmin !== null) ? options.zmin : -1.0;
  37410. var xmax = (options.xmax !== undefined && options.xmax !== null) ? options.xmax : 1.0;
  37411. var zmax = (options.zmax !== undefined && options.zmax !== null) ? options.zmax : 1.0;
  37412. var subdivisions = options.subdivisions || { w: 1, h: 1 };
  37413. var precision = options.precision || { w: 1, h: 1 };
  37414. var indices = new Array();
  37415. var positions = new Array();
  37416. var normals = new Array();
  37417. var uvs = new Array();
  37418. var row, col, tileRow, tileCol;
  37419. subdivisions.h = (subdivisions.h < 1) ? 1 : subdivisions.h;
  37420. subdivisions.w = (subdivisions.w < 1) ? 1 : subdivisions.w;
  37421. precision.w = (precision.w < 1) ? 1 : precision.w;
  37422. precision.h = (precision.h < 1) ? 1 : precision.h;
  37423. var tileSize = {
  37424. 'w': (xmax - xmin) / subdivisions.w,
  37425. 'h': (zmax - zmin) / subdivisions.h
  37426. };
  37427. function applyTile(xTileMin, zTileMin, xTileMax, zTileMax) {
  37428. // Indices
  37429. var base = positions.length / 3;
  37430. var rowLength = precision.w + 1;
  37431. for (row = 0; row < precision.h; row++) {
  37432. for (col = 0; col < precision.w; col++) {
  37433. var square = [
  37434. base + col + row * rowLength,
  37435. base + (col + 1) + row * rowLength,
  37436. base + (col + 1) + (row + 1) * rowLength,
  37437. base + col + (row + 1) * rowLength
  37438. ];
  37439. indices.push(square[1]);
  37440. indices.push(square[2]);
  37441. indices.push(square[3]);
  37442. indices.push(square[0]);
  37443. indices.push(square[1]);
  37444. indices.push(square[3]);
  37445. }
  37446. }
  37447. // Position, normals and uvs
  37448. var position = BABYLON.Vector3.Zero();
  37449. var normal = new BABYLON.Vector3(0, 1.0, 0);
  37450. for (row = 0; row <= precision.h; row++) {
  37451. position.z = (row * (zTileMax - zTileMin)) / precision.h + zTileMin;
  37452. for (col = 0; col <= precision.w; col++) {
  37453. position.x = (col * (xTileMax - xTileMin)) / precision.w + xTileMin;
  37454. position.y = 0;
  37455. positions.push(position.x, position.y, position.z);
  37456. normals.push(normal.x, normal.y, normal.z);
  37457. uvs.push(col / precision.w, row / precision.h);
  37458. }
  37459. }
  37460. }
  37461. for (tileRow = 0; tileRow < subdivisions.h; tileRow++) {
  37462. for (tileCol = 0; tileCol < subdivisions.w; tileCol++) {
  37463. applyTile(xmin + tileCol * tileSize.w, zmin + tileRow * tileSize.h, xmin + (tileCol + 1) * tileSize.w, zmin + (tileRow + 1) * tileSize.h);
  37464. }
  37465. }
  37466. // Result
  37467. var vertexData = new VertexData();
  37468. vertexData.indices = indices;
  37469. vertexData.positions = positions;
  37470. vertexData.normals = normals;
  37471. vertexData.uvs = uvs;
  37472. return vertexData;
  37473. };
  37474. /**
  37475. * Creates the VertexData of the Ground designed from a heightmap
  37476. * @param options an object used to set the following parameters for the Ground, required and provided by MeshBuilder.CreateGroundFromHeightMap
  37477. * * width the width (x direction) of the ground
  37478. * * height the height (z direction) of the ground
  37479. * * subdivisions the number of subdivisions per side
  37480. * * minHeight the minimum altitude on the ground, optional, default 0
  37481. * * maxHeight the maximum altitude on the ground, optional default 1
  37482. * * colorFilter the filter to apply to the image pixel colors to compute the height, optional Color3, default (0.3, 0.59, 0.11)
  37483. * * buffer the array holding the image color data
  37484. * * bufferWidth the width of image
  37485. * * bufferHeight the height of image
  37486. * @returns the VertexData of the Ground designed from a heightmap
  37487. */
  37488. VertexData.CreateGroundFromHeightMap = function (options) {
  37489. var indices = [];
  37490. var positions = [];
  37491. var normals = [];
  37492. var uvs = [];
  37493. var row, col;
  37494. var filter = options.colorFilter || new BABYLON.Color3(0.3, 0.59, 0.11);
  37495. // Vertices
  37496. for (row = 0; row <= options.subdivisions; row++) {
  37497. for (col = 0; col <= options.subdivisions; col++) {
  37498. var position = new BABYLON.Vector3((col * options.width) / options.subdivisions - (options.width / 2.0), 0, ((options.subdivisions - row) * options.height) / options.subdivisions - (options.height / 2.0));
  37499. // Compute height
  37500. var heightMapX = (((position.x + options.width / 2) / options.width) * (options.bufferWidth - 1)) | 0;
  37501. var heightMapY = ((1.0 - (position.z + options.height / 2) / options.height) * (options.bufferHeight - 1)) | 0;
  37502. var pos = (heightMapX + heightMapY * options.bufferWidth) * 4;
  37503. var r = options.buffer[pos] / 255.0;
  37504. var g = options.buffer[pos + 1] / 255.0;
  37505. var b = options.buffer[pos + 2] / 255.0;
  37506. var gradient = r * filter.r + g * filter.g + b * filter.b;
  37507. position.y = options.minHeight + (options.maxHeight - options.minHeight) * gradient;
  37508. // Add vertex
  37509. positions.push(position.x, position.y, position.z);
  37510. normals.push(0, 0, 0);
  37511. uvs.push(col / options.subdivisions, 1.0 - row / options.subdivisions);
  37512. }
  37513. }
  37514. // Indices
  37515. for (row = 0; row < options.subdivisions; row++) {
  37516. for (col = 0; col < options.subdivisions; col++) {
  37517. indices.push(col + 1 + (row + 1) * (options.subdivisions + 1));
  37518. indices.push(col + 1 + row * (options.subdivisions + 1));
  37519. indices.push(col + row * (options.subdivisions + 1));
  37520. indices.push(col + (row + 1) * (options.subdivisions + 1));
  37521. indices.push(col + 1 + (row + 1) * (options.subdivisions + 1));
  37522. indices.push(col + row * (options.subdivisions + 1));
  37523. }
  37524. }
  37525. // Normals
  37526. VertexData.ComputeNormals(positions, indices, normals);
  37527. // Result
  37528. var vertexData = new VertexData();
  37529. vertexData.indices = indices;
  37530. vertexData.positions = positions;
  37531. vertexData.normals = normals;
  37532. vertexData.uvs = uvs;
  37533. return vertexData;
  37534. };
  37535. /**
  37536. * Creates the VertexData for a Plane
  37537. * @param options an object used to set the following optional parameters for the plane, required but can be empty
  37538. * * size sets the width and height of the plane to the value of size, optional default 1
  37539. * * width sets the width (x direction) of the plane, overwrites the width set by size, optional, default size
  37540. * * height sets the height (y direction) of the plane, overwrites the height set by size, optional, default size
  37541. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37542. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37543. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37544. * @returns the VertexData of the box
  37545. */
  37546. VertexData.CreatePlane = function (options) {
  37547. var indices = [];
  37548. var positions = [];
  37549. var normals = [];
  37550. var uvs = [];
  37551. var width = options.width || options.size || 1;
  37552. var height = options.height || options.size || 1;
  37553. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  37554. // Vertices
  37555. var halfWidth = width / 2.0;
  37556. var halfHeight = height / 2.0;
  37557. positions.push(-halfWidth, -halfHeight, 0);
  37558. normals.push(0, 0, -1.0);
  37559. uvs.push(0.0, 0.0);
  37560. positions.push(halfWidth, -halfHeight, 0);
  37561. normals.push(0, 0, -1.0);
  37562. uvs.push(1.0, 0.0);
  37563. positions.push(halfWidth, halfHeight, 0);
  37564. normals.push(0, 0, -1.0);
  37565. uvs.push(1.0, 1.0);
  37566. positions.push(-halfWidth, halfHeight, 0);
  37567. normals.push(0, 0, -1.0);
  37568. uvs.push(0.0, 1.0);
  37569. // Indices
  37570. indices.push(0);
  37571. indices.push(1);
  37572. indices.push(2);
  37573. indices.push(0);
  37574. indices.push(2);
  37575. indices.push(3);
  37576. // Sides
  37577. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  37578. // Result
  37579. var vertexData = new VertexData();
  37580. vertexData.indices = indices;
  37581. vertexData.positions = positions;
  37582. vertexData.normals = normals;
  37583. vertexData.uvs = uvs;
  37584. return vertexData;
  37585. };
  37586. /**
  37587. * Creates the VertexData of the Disc or regular Polygon
  37588. * @param options an object used to set the following optional parameters for the disc, required but can be empty
  37589. * * radius the radius of the disc, optional default 0.5
  37590. * * tessellation the number of polygon sides, optional, default 64
  37591. * * arc a number from 0 to 1, to create an unclosed polygon based on the fraction of the circumference given by the arc value, optional, default 1
  37592. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37593. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37594. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37595. * @returns the VertexData of the box
  37596. */
  37597. VertexData.CreateDisc = function (options) {
  37598. var positions = new Array();
  37599. var indices = new Array();
  37600. var normals = new Array();
  37601. var uvs = new Array();
  37602. var radius = options.radius || 0.5;
  37603. var tessellation = options.tessellation || 64;
  37604. var arc = options.arc && (options.arc <= 0 || options.arc > 1) ? 1.0 : options.arc || 1.0;
  37605. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  37606. // positions and uvs
  37607. positions.push(0, 0, 0); // disc center first
  37608. uvs.push(0.5, 0.5);
  37609. var theta = Math.PI * 2 * arc;
  37610. var step = theta / tessellation;
  37611. for (var a = 0; a < theta; a += step) {
  37612. var x = Math.cos(a);
  37613. var y = Math.sin(a);
  37614. var u = (x + 1) / 2;
  37615. var v = (1 - y) / 2;
  37616. positions.push(radius * x, radius * y, 0);
  37617. uvs.push(u, v);
  37618. }
  37619. if (arc === 1) {
  37620. positions.push(positions[3], positions[4], positions[5]); // close the circle
  37621. uvs.push(uvs[2], uvs[3]);
  37622. }
  37623. //indices
  37624. var vertexNb = positions.length / 3;
  37625. for (var i = 1; i < vertexNb - 1; i++) {
  37626. indices.push(i + 1, 0, i);
  37627. }
  37628. // result
  37629. VertexData.ComputeNormals(positions, indices, normals);
  37630. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  37631. var vertexData = new VertexData();
  37632. vertexData.indices = indices;
  37633. vertexData.positions = positions;
  37634. vertexData.normals = normals;
  37635. vertexData.uvs = uvs;
  37636. return vertexData;
  37637. };
  37638. /**
  37639. * Creates the VertexData for an irregular Polygon in the XoZ plane using a mesh built by polygonTriangulation.build()
  37640. * All parameters are provided by MeshBuilder.CreatePolygon as needed
  37641. * @param polygon a mesh built from polygonTriangulation.build()
  37642. * @param sideOrientation takes the values BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37643. * @param fUV an array of Vector4 elements used to set different images to the top, rings and bottom respectively
  37644. * @param fColors an array of Color3 elements used to set different colors to the top, rings and bottom respectively
  37645. * @param frontUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37646. * @param backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37647. * @returns the VertexData of the Polygon
  37648. */
  37649. VertexData.CreatePolygon = function (polygon, sideOrientation, fUV, fColors, frontUVs, backUVs) {
  37650. var faceUV = fUV || new Array(3);
  37651. var faceColors = fColors;
  37652. var colors = [];
  37653. // default face colors and UV if undefined
  37654. for (var f = 0; f < 3; f++) {
  37655. if (faceUV[f] === undefined) {
  37656. faceUV[f] = new BABYLON.Vector4(0, 0, 1, 1);
  37657. }
  37658. if (faceColors && faceColors[f] === undefined) {
  37659. faceColors[f] = new BABYLON.Color4(1, 1, 1, 1);
  37660. }
  37661. }
  37662. var positions = polygon.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  37663. var normals = polygon.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  37664. var uvs = polygon.getVerticesData(BABYLON.VertexBuffer.UVKind);
  37665. var indices = polygon.getIndices();
  37666. // set face colours and textures
  37667. var idx = 0;
  37668. var face = 0;
  37669. for (var index = 0; index < normals.length; index += 3) {
  37670. //Edge Face no. 1
  37671. if (Math.abs(normals[index + 1]) < 0.001) {
  37672. face = 1;
  37673. }
  37674. //Top Face no. 0
  37675. if (Math.abs(normals[index + 1] - 1) < 0.001) {
  37676. face = 0;
  37677. }
  37678. //Bottom Face no. 2
  37679. if (Math.abs(normals[index + 1] + 1) < 0.001) {
  37680. face = 2;
  37681. }
  37682. idx = index / 3;
  37683. uvs[2 * idx] = (1 - uvs[2 * idx]) * faceUV[face].x + uvs[2 * idx] * faceUV[face].z;
  37684. uvs[2 * idx + 1] = (1 - uvs[2 * idx + 1]) * faceUV[face].y + uvs[2 * idx + 1] * faceUV[face].w;
  37685. if (faceColors) {
  37686. colors.push(faceColors[face].r, faceColors[face].g, faceColors[face].b, faceColors[face].a);
  37687. }
  37688. }
  37689. // sides
  37690. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, frontUVs, backUVs);
  37691. // Result
  37692. var vertexData = new VertexData();
  37693. vertexData.indices = indices;
  37694. vertexData.positions = positions;
  37695. vertexData.normals = normals;
  37696. vertexData.uvs = uvs;
  37697. if (faceColors) {
  37698. var totalColors = (sideOrientation === BABYLON.Mesh.DOUBLESIDE) ? colors.concat(colors) : colors;
  37699. vertexData.colors = totalColors;
  37700. }
  37701. return vertexData;
  37702. };
  37703. /**
  37704. * Creates the VertexData of the IcoSphere
  37705. * @param options an object used to set the following optional parameters for the IcoSphere, required but can be empty
  37706. * * radius the radius of the IcoSphere, optional default 1
  37707. * * radiusX allows stretching in the x direction, optional, default radius
  37708. * * radiusY allows stretching in the y direction, optional, default radius
  37709. * * radiusZ allows stretching in the z direction, optional, default radius
  37710. * * flat when true creates a flat shaded mesh, optional, default true
  37711. * * subdivisions increasing the subdivisions increases the number of faces, optional, default 4
  37712. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37713. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37714. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37715. * @returns the VertexData of the IcoSphere
  37716. */
  37717. VertexData.CreateIcoSphere = function (options) {
  37718. var sideOrientation = options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  37719. var radius = options.radius || 1;
  37720. var flat = (options.flat === undefined) ? true : options.flat;
  37721. var subdivisions = options.subdivisions || 4;
  37722. var radiusX = options.radiusX || radius;
  37723. var radiusY = options.radiusY || radius;
  37724. var radiusZ = options.radiusZ || radius;
  37725. var t = (1 + Math.sqrt(5)) / 2;
  37726. // 12 vertex x,y,z
  37727. var ico_vertices = [
  37728. -1, t, -0, 1, t, 0, -1, -t, 0, 1, -t, 0,
  37729. 0, -1, -t, 0, 1, -t, 0, -1, t, 0, 1, t,
  37730. t, 0, 1, t, 0, -1, -t, 0, 1, -t, 0, -1 // v8-11
  37731. ];
  37732. // index of 3 vertex makes a face of icopshere
  37733. var ico_indices = [
  37734. 0, 11, 5, 0, 5, 1, 0, 1, 7, 0, 7, 10, 12, 22, 23,
  37735. 1, 5, 20, 5, 11, 4, 23, 22, 13, 22, 18, 6, 7, 1, 8,
  37736. 14, 21, 4, 14, 4, 2, 16, 13, 6, 15, 6, 19, 3, 8, 9,
  37737. 4, 21, 5, 13, 17, 23, 6, 13, 22, 19, 6, 18, 9, 8, 1
  37738. ];
  37739. // vertex for uv have aliased position, not for UV
  37740. var vertices_unalias_id = [
  37741. 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11,
  37742. // vertex alias
  37743. 0,
  37744. 2,
  37745. 3,
  37746. 3,
  37747. 3,
  37748. 4,
  37749. 7,
  37750. 8,
  37751. 9,
  37752. 9,
  37753. 10,
  37754. 11 // 23: B + 12
  37755. ];
  37756. // uv as integer step (not pixels !)
  37757. var ico_vertexuv = [
  37758. 5, 1, 3, 1, 6, 4, 0, 0,
  37759. 5, 3, 4, 2, 2, 2, 4, 0,
  37760. 2, 0, 1, 1, 6, 0, 6, 2,
  37761. // vertex alias (for same vertex on different faces)
  37762. 0, 4,
  37763. 3, 3,
  37764. 4, 4,
  37765. 3, 1,
  37766. 4, 2,
  37767. 4, 4,
  37768. 0, 2,
  37769. 1, 1,
  37770. 2, 2,
  37771. 3, 3,
  37772. 1, 3,
  37773. 2, 4 // 23: B + 12
  37774. ];
  37775. // Vertices[0, 1, ...9, A, B] : position on UV plane
  37776. // '+' indicate duplicate position to be fixed (3,9:0,2,3,4,7,8,A,B)
  37777. // First island of uv mapping
  37778. // v = 4h 3+ 2
  37779. // v = 3h 9+ 4
  37780. // v = 2h 9+ 5 B
  37781. // v = 1h 9 1 0
  37782. // v = 0h 3 8 7 A
  37783. // u = 0 1 2 3 4 5 6 *a
  37784. // Second island of uv mapping
  37785. // v = 4h 0+ B+ 4+
  37786. // v = 3h A+ 2+
  37787. // v = 2h 7+ 6 3+
  37788. // v = 1h 8+ 3+
  37789. // v = 0h
  37790. // u = 0 1 2 3 4 5 6 *a
  37791. // Face layout on texture UV mapping
  37792. // ============
  37793. // \ 4 /\ 16 / ======
  37794. // \ / \ / /\ 11 /
  37795. // \/ 7 \/ / \ /
  37796. // ======= / 10 \/
  37797. // /\ 17 /\ =======
  37798. // / \ / \ \ 15 /\
  37799. // / 8 \/ 12 \ \ / \
  37800. // ============ \/ 6 \
  37801. // \ 18 /\ ============
  37802. // \ / \ \ 5 /\ 0 /
  37803. // \/ 13 \ \ / \ /
  37804. // ======= \/ 1 \/
  37805. // =============
  37806. // /\ 19 /\ 2 /\
  37807. // / \ / \ / \
  37808. // / 14 \/ 9 \/ 3 \
  37809. // ===================
  37810. // uv step is u:1 or 0.5, v:cos(30)=sqrt(3)/2, ratio approx is 84/97
  37811. var ustep = 138 / 1024;
  37812. var vstep = 239 / 1024;
  37813. var uoffset = 60 / 1024;
  37814. var voffset = 26 / 1024;
  37815. // Second island should have margin, not to touch the first island
  37816. // avoid any borderline artefact in pixel rounding
  37817. var island_u_offset = -40 / 1024;
  37818. var island_v_offset = +20 / 1024;
  37819. // face is either island 0 or 1 :
  37820. // second island is for faces : [4, 7, 8, 12, 13, 16, 17, 18]
  37821. var island = [
  37822. 0, 0, 0, 0, 1,
  37823. 0, 0, 1, 1, 0,
  37824. 0, 0, 1, 1, 0,
  37825. 0, 1, 1, 1, 0 // 15 - 19
  37826. ];
  37827. var indices = new Array();
  37828. var positions = new Array();
  37829. var normals = new Array();
  37830. var uvs = new Array();
  37831. var current_indice = 0;
  37832. // prepare array of 3 vector (empty) (to be worked in place, shared for each face)
  37833. var face_vertex_pos = new Array(3);
  37834. var face_vertex_uv = new Array(3);
  37835. var v012;
  37836. for (v012 = 0; v012 < 3; v012++) {
  37837. face_vertex_pos[v012] = BABYLON.Vector3.Zero();
  37838. face_vertex_uv[v012] = BABYLON.Vector2.Zero();
  37839. }
  37840. // create all with normals
  37841. for (var face = 0; face < 20; face++) {
  37842. // 3 vertex per face
  37843. for (v012 = 0; v012 < 3; v012++) {
  37844. // look up vertex 0,1,2 to its index in 0 to 11 (or 23 including alias)
  37845. var v_id = ico_indices[3 * face + v012];
  37846. // vertex have 3D position (x,y,z)
  37847. face_vertex_pos[v012].copyFromFloats(ico_vertices[3 * vertices_unalias_id[v_id]], ico_vertices[3 * vertices_unalias_id[v_id] + 1], ico_vertices[3 * vertices_unalias_id[v_id] + 2]);
  37848. // Normalize to get normal, then scale to radius
  37849. face_vertex_pos[v012].normalize().scaleInPlace(radius);
  37850. // uv Coordinates from vertex ID
  37851. face_vertex_uv[v012].copyFromFloats(ico_vertexuv[2 * v_id] * ustep + uoffset + island[face] * island_u_offset, ico_vertexuv[2 * v_id + 1] * vstep + voffset + island[face] * island_v_offset);
  37852. }
  37853. // Subdivide the face (interpolate pos, norm, uv)
  37854. // - pos is linear interpolation, then projected to sphere (converge polyhedron to sphere)
  37855. // - norm is linear interpolation of vertex corner normal
  37856. // (to be checked if better to re-calc from face vertex, or if approximation is OK ??? )
  37857. // - uv is linear interpolation
  37858. //
  37859. // Topology is as below for sub-divide by 2
  37860. // vertex shown as v0,v1,v2
  37861. // interp index is i1 to progress in range [v0,v1[
  37862. // interp index is i2 to progress in range [v0,v2[
  37863. // face index as (i1,i2) for /\ : (i1,i2),(i1+1,i2),(i1,i2+1)
  37864. // and (i1,i2)' for \/ : (i1+1,i2),(i1+1,i2+1),(i1,i2+1)
  37865. //
  37866. //
  37867. // i2 v2
  37868. // ^ ^
  37869. // / / \
  37870. // / / \
  37871. // / / \
  37872. // / / (0,1) \
  37873. // / #---------\
  37874. // / / \ (0,0)'/ \
  37875. // / / \ / \
  37876. // / / \ / \
  37877. // / / (0,0) \ / (1,0) \
  37878. // / #---------#---------\
  37879. // v0 v1
  37880. //
  37881. // --------------------> i1
  37882. //
  37883. // interp of (i1,i2):
  37884. // along i2 : x0=lerp(v0,v2, i2/S) <---> x1=lerp(v1,v2, i2/S)
  37885. // along i1 : lerp(x0,x1, i1/(S-i2))
  37886. //
  37887. // centroid of triangle is needed to get help normal computation
  37888. // (c1,c2) are used for centroid location
  37889. var interp_vertex = function (i1, i2, c1, c2) {
  37890. // vertex is interpolated from
  37891. // - face_vertex_pos[0..2]
  37892. // - face_vertex_uv[0..2]
  37893. var pos_x0 = BABYLON.Vector3.Lerp(face_vertex_pos[0], face_vertex_pos[2], i2 / subdivisions);
  37894. var pos_x1 = BABYLON.Vector3.Lerp(face_vertex_pos[1], face_vertex_pos[2], i2 / subdivisions);
  37895. var pos_interp = (subdivisions === i2) ? face_vertex_pos[2] : BABYLON.Vector3.Lerp(pos_x0, pos_x1, i1 / (subdivisions - i2));
  37896. pos_interp.normalize();
  37897. var vertex_normal;
  37898. if (flat) {
  37899. // in flat mode, recalculate normal as face centroid normal
  37900. var centroid_x0 = BABYLON.Vector3.Lerp(face_vertex_pos[0], face_vertex_pos[2], c2 / subdivisions);
  37901. var centroid_x1 = BABYLON.Vector3.Lerp(face_vertex_pos[1], face_vertex_pos[2], c2 / subdivisions);
  37902. vertex_normal = BABYLON.Vector3.Lerp(centroid_x0, centroid_x1, c1 / (subdivisions - c2));
  37903. }
  37904. else {
  37905. // in smooth mode, recalculate normal from each single vertex position
  37906. vertex_normal = new BABYLON.Vector3(pos_interp.x, pos_interp.y, pos_interp.z);
  37907. }
  37908. // Vertex normal need correction due to X,Y,Z radius scaling
  37909. vertex_normal.x /= radiusX;
  37910. vertex_normal.y /= radiusY;
  37911. vertex_normal.z /= radiusZ;
  37912. vertex_normal.normalize();
  37913. var uv_x0 = BABYLON.Vector2.Lerp(face_vertex_uv[0], face_vertex_uv[2], i2 / subdivisions);
  37914. var uv_x1 = BABYLON.Vector2.Lerp(face_vertex_uv[1], face_vertex_uv[2], i2 / subdivisions);
  37915. var uv_interp = (subdivisions === i2) ? face_vertex_uv[2] : BABYLON.Vector2.Lerp(uv_x0, uv_x1, i1 / (subdivisions - i2));
  37916. positions.push(pos_interp.x * radiusX, pos_interp.y * radiusY, pos_interp.z * radiusZ);
  37917. normals.push(vertex_normal.x, vertex_normal.y, vertex_normal.z);
  37918. uvs.push(uv_interp.x, uv_interp.y);
  37919. // push each vertex has member of a face
  37920. // Same vertex can bleong to multiple face, it is pushed multiple time (duplicate vertex are present)
  37921. indices.push(current_indice);
  37922. current_indice++;
  37923. };
  37924. for (var i2 = 0; i2 < subdivisions; i2++) {
  37925. for (var i1 = 0; i1 + i2 < subdivisions; i1++) {
  37926. // face : (i1,i2) for /\ :
  37927. // interp for : (i1,i2),(i1+1,i2),(i1,i2+1)
  37928. interp_vertex(i1, i2, i1 + 1.0 / 3, i2 + 1.0 / 3);
  37929. interp_vertex(i1 + 1, i2, i1 + 1.0 / 3, i2 + 1.0 / 3);
  37930. interp_vertex(i1, i2 + 1, i1 + 1.0 / 3, i2 + 1.0 / 3);
  37931. if (i1 + i2 + 1 < subdivisions) {
  37932. // face : (i1,i2)' for \/ :
  37933. // interp for (i1+1,i2),(i1+1,i2+1),(i1,i2+1)
  37934. interp_vertex(i1 + 1, i2, i1 + 2.0 / 3, i2 + 2.0 / 3);
  37935. interp_vertex(i1 + 1, i2 + 1, i1 + 2.0 / 3, i2 + 2.0 / 3);
  37936. interp_vertex(i1, i2 + 1, i1 + 2.0 / 3, i2 + 2.0 / 3);
  37937. }
  37938. }
  37939. }
  37940. }
  37941. // Sides
  37942. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  37943. // Result
  37944. var vertexData = new VertexData();
  37945. vertexData.indices = indices;
  37946. vertexData.positions = positions;
  37947. vertexData.normals = normals;
  37948. vertexData.uvs = uvs;
  37949. return vertexData;
  37950. };
  37951. // inspired from // http://stemkoski.github.io/Three.js/Polyhedra.html
  37952. /**
  37953. * Creates the VertexData for a Polyhedron
  37954. * @param options an object used to set the following optional parameters for the polyhedron, required but can be empty
  37955. * * type provided types are:
  37956. * * 0 : Tetrahedron, 1 : Octahedron, 2 : Dodecahedron, 3 : Icosahedron, 4 : Rhombicuboctahedron, 5 : Triangular Prism, 6 : Pentagonal Prism, 7 : Hexagonal Prism, 8 : Square Pyramid (J1)
  37957. * * 9 : Pentagonal Pyramid (J2), 10 : Triangular Dipyramid (J12), 11 : Pentagonal Dipyramid (J13), 12 : Elongated Square Dipyramid (J15), 13 : Elongated Pentagonal Dipyramid (J16), 14 : Elongated Pentagonal Cupola (J20)
  37958. * * size the size of the IcoSphere, optional default 1
  37959. * * sizeX allows stretching in the x direction, optional, default size
  37960. * * sizeY allows stretching in the y direction, optional, default size
  37961. * * sizeZ allows stretching in the z direction, optional, default size
  37962. * * custom a number that overwrites the type to create from an extended set of polyhedron from https://www.babylonjs-playground.com/#21QRSK#15 with minimised editor
  37963. * * faceUV an array of Vector4 elements used to set different images to the top, rings and bottom respectively
  37964. * * faceColors an array of Color3 elements used to set different colors to the top, rings and bottom respectively
  37965. * * flat when true creates a flat shaded mesh, optional, default true
  37966. * * subdivisions increasing the subdivisions increases the number of faces, optional, default 4
  37967. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  37968. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  37969. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  37970. * @returns the VertexData of the Polyhedron
  37971. */
  37972. VertexData.CreatePolyhedron = function (options) {
  37973. // provided polyhedron types :
  37974. // 0 : Tetrahedron, 1 : Octahedron, 2 : Dodecahedron, 3 : Icosahedron, 4 : Rhombicuboctahedron, 5 : Triangular Prism, 6 : Pentagonal Prism, 7 : Hexagonal Prism, 8 : Square Pyramid (J1)
  37975. // 9 : Pentagonal Pyramid (J2), 10 : Triangular Dipyramid (J12), 11 : Pentagonal Dipyramid (J13), 12 : Elongated Square Dipyramid (J15), 13 : Elongated Pentagonal Dipyramid (J16), 14 : Elongated Pentagonal Cupola (J20)
  37976. var polyhedra = [];
  37977. polyhedra[0] = { vertex: [[0, 0, 1.732051], [1.632993, 0, -0.5773503], [-0.8164966, 1.414214, -0.5773503], [-0.8164966, -1.414214, -0.5773503]], face: [[0, 1, 2], [0, 2, 3], [0, 3, 1], [1, 3, 2]] };
  37978. polyhedra[1] = { vertex: [[0, 0, 1.414214], [1.414214, 0, 0], [0, 1.414214, 0], [-1.414214, 0, 0], [0, -1.414214, 0], [0, 0, -1.414214]], face: [[0, 1, 2], [0, 2, 3], [0, 3, 4], [0, 4, 1], [1, 4, 5], [1, 5, 2], [2, 5, 3], [3, 5, 4]] };
  37979. polyhedra[2] = {
  37980. vertex: [[0, 0, 1.070466], [0.7136442, 0, 0.7978784], [-0.3568221, 0.618034, 0.7978784], [-0.3568221, -0.618034, 0.7978784], [0.7978784, 0.618034, 0.3568221], [0.7978784, -0.618034, 0.3568221], [-0.9341724, 0.381966, 0.3568221], [0.1362939, 1, 0.3568221], [0.1362939, -1, 0.3568221], [-0.9341724, -0.381966, 0.3568221], [0.9341724, 0.381966, -0.3568221], [0.9341724, -0.381966, -0.3568221], [-0.7978784, 0.618034, -0.3568221], [-0.1362939, 1, -0.3568221], [-0.1362939, -1, -0.3568221], [-0.7978784, -0.618034, -0.3568221], [0.3568221, 0.618034, -0.7978784], [0.3568221, -0.618034, -0.7978784], [-0.7136442, 0, -0.7978784], [0, 0, -1.070466]],
  37981. face: [[0, 1, 4, 7, 2], [0, 2, 6, 9, 3], [0, 3, 8, 5, 1], [1, 5, 11, 10, 4], [2, 7, 13, 12, 6], [3, 9, 15, 14, 8], [4, 10, 16, 13, 7], [5, 8, 14, 17, 11], [6, 12, 18, 15, 9], [10, 11, 17, 19, 16], [12, 13, 16, 19, 18], [14, 15, 18, 19, 17]]
  37982. };
  37983. polyhedra[3] = {
  37984. vertex: [[0, 0, 1.175571], [1.051462, 0, 0.5257311], [0.3249197, 1, 0.5257311], [-0.8506508, 0.618034, 0.5257311], [-0.8506508, -0.618034, 0.5257311], [0.3249197, -1, 0.5257311], [0.8506508, 0.618034, -0.5257311], [0.8506508, -0.618034, -0.5257311], [-0.3249197, 1, -0.5257311], [-1.051462, 0, -0.5257311], [-0.3249197, -1, -0.5257311], [0, 0, -1.175571]],
  37985. face: [[0, 1, 2], [0, 2, 3], [0, 3, 4], [0, 4, 5], [0, 5, 1], [1, 5, 7], [1, 7, 6], [1, 6, 2], [2, 6, 8], [2, 8, 3], [3, 8, 9], [3, 9, 4], [4, 9, 10], [4, 10, 5], [5, 10, 7], [6, 7, 11], [6, 11, 8], [7, 10, 11], [8, 11, 9], [9, 11, 10]]
  37986. };
  37987. polyhedra[4] = {
  37988. vertex: [[0, 0, 1.070722], [0.7148135, 0, 0.7971752], [-0.104682, 0.7071068, 0.7971752], [-0.6841528, 0.2071068, 0.7971752], [-0.104682, -0.7071068, 0.7971752], [0.6101315, 0.7071068, 0.5236279], [1.04156, 0.2071068, 0.1367736], [0.6101315, -0.7071068, 0.5236279], [-0.3574067, 1, 0.1367736], [-0.7888348, -0.5, 0.5236279], [-0.9368776, 0.5, 0.1367736], [-0.3574067, -1, 0.1367736], [0.3574067, 1, -0.1367736], [0.9368776, -0.5, -0.1367736], [0.7888348, 0.5, -0.5236279], [0.3574067, -1, -0.1367736], [-0.6101315, 0.7071068, -0.5236279], [-1.04156, -0.2071068, -0.1367736], [-0.6101315, -0.7071068, -0.5236279], [0.104682, 0.7071068, -0.7971752], [0.6841528, -0.2071068, -0.7971752], [0.104682, -0.7071068, -0.7971752], [-0.7148135, 0, -0.7971752], [0, 0, -1.070722]],
  37989. face: [[0, 2, 3], [1, 6, 5], [4, 9, 11], [7, 15, 13], [8, 16, 10], [12, 14, 19], [17, 22, 18], [20, 21, 23], [0, 1, 5, 2], [0, 3, 9, 4], [0, 4, 7, 1], [1, 7, 13, 6], [2, 5, 12, 8], [2, 8, 10, 3], [3, 10, 17, 9], [4, 11, 15, 7], [5, 6, 14, 12], [6, 13, 20, 14], [8, 12, 19, 16], [9, 17, 18, 11], [10, 16, 22, 17], [11, 18, 21, 15], [13, 15, 21, 20], [14, 20, 23, 19], [16, 19, 23, 22], [18, 22, 23, 21]]
  37990. };
  37991. polyhedra[5] = { vertex: [[0, 0, 1.322876], [1.309307, 0, 0.1889822], [-0.9819805, 0.8660254, 0.1889822], [0.1636634, -1.299038, 0.1889822], [0.3273268, 0.8660254, -0.9449112], [-0.8183171, -0.4330127, -0.9449112]], face: [[0, 3, 1], [2, 4, 5], [0, 1, 4, 2], [0, 2, 5, 3], [1, 3, 5, 4]] };
  37992. polyhedra[6] = { vertex: [[0, 0, 1.159953], [1.013464, 0, 0.5642542], [-0.3501431, 0.9510565, 0.5642542], [-0.7715208, -0.6571639, 0.5642542], [0.6633206, 0.9510565, -0.03144481], [0.8682979, -0.6571639, -0.3996071], [-1.121664, 0.2938926, -0.03144481], [-0.2348831, -1.063314, -0.3996071], [0.5181548, 0.2938926, -0.9953061], [-0.5850262, -0.112257, -0.9953061]], face: [[0, 1, 4, 2], [0, 2, 6, 3], [1, 5, 8, 4], [3, 6, 9, 7], [5, 7, 9, 8], [0, 3, 7, 5, 1], [2, 4, 8, 9, 6]] };
  37993. polyhedra[7] = { vertex: [[0, 0, 1.118034], [0.8944272, 0, 0.6708204], [-0.2236068, 0.8660254, 0.6708204], [-0.7826238, -0.4330127, 0.6708204], [0.6708204, 0.8660254, 0.2236068], [1.006231, -0.4330127, -0.2236068], [-1.006231, 0.4330127, 0.2236068], [-0.6708204, -0.8660254, -0.2236068], [0.7826238, 0.4330127, -0.6708204], [0.2236068, -0.8660254, -0.6708204], [-0.8944272, 0, -0.6708204], [0, 0, -1.118034]], face: [[0, 1, 4, 2], [0, 2, 6, 3], [1, 5, 8, 4], [3, 6, 10, 7], [5, 9, 11, 8], [7, 10, 11, 9], [0, 3, 7, 9, 5, 1], [2, 4, 8, 11, 10, 6]] };
  37994. polyhedra[8] = { vertex: [[-0.729665, 0.670121, 0.319155], [-0.655235, -0.29213, -0.754096], [-0.093922, -0.607123, 0.537818], [0.702196, 0.595691, 0.485187], [0.776626, -0.36656, -0.588064]], face: [[1, 4, 2], [0, 1, 2], [3, 0, 2], [4, 3, 2], [4, 1, 0, 3]] };
  37995. polyhedra[9] = { vertex: [[-0.868849, -0.100041, 0.61257], [-0.329458, 0.976099, 0.28078], [-0.26629, -0.013796, -0.477654], [-0.13392, -1.034115, 0.229829], [0.738834, 0.707117, -0.307018], [0.859683, -0.535264, -0.338508]], face: [[3, 0, 2], [5, 3, 2], [4, 5, 2], [1, 4, 2], [0, 1, 2], [0, 3, 5, 4, 1]] };
  37996. polyhedra[10] = { vertex: [[-0.610389, 0.243975, 0.531213], [-0.187812, -0.48795, -0.664016], [-0.187812, 0.9759, -0.664016], [0.187812, -0.9759, 0.664016], [0.798201, 0.243975, 0.132803]], face: [[1, 3, 0], [3, 4, 0], [3, 1, 4], [0, 2, 1], [0, 4, 2], [2, 4, 1]] };
  37997. polyhedra[11] = { vertex: [[-1.028778, 0.392027, -0.048786], [-0.640503, -0.646161, 0.621837], [-0.125162, -0.395663, -0.540059], [0.004683, 0.888447, -0.651988], [0.125161, 0.395663, 0.540059], [0.632925, -0.791376, 0.433102], [1.031672, 0.157063, -0.354165]], face: [[3, 2, 0], [2, 1, 0], [2, 5, 1], [0, 4, 3], [0, 1, 4], [4, 1, 5], [2, 3, 6], [3, 4, 6], [5, 2, 6], [4, 5, 6]] };
  37998. polyhedra[12] = { vertex: [[-0.669867, 0.334933, -0.529576], [-0.669867, 0.334933, 0.529577], [-0.4043, 1.212901, 0], [-0.334933, -0.669867, -0.529576], [-0.334933, -0.669867, 0.529577], [0.334933, 0.669867, -0.529576], [0.334933, 0.669867, 0.529577], [0.4043, -1.212901, 0], [0.669867, -0.334933, -0.529576], [0.669867, -0.334933, 0.529577]], face: [[8, 9, 7], [6, 5, 2], [3, 8, 7], [5, 0, 2], [4, 3, 7], [0, 1, 2], [9, 4, 7], [1, 6, 2], [9, 8, 5, 6], [8, 3, 0, 5], [3, 4, 1, 0], [4, 9, 6, 1]] };
  37999. polyhedra[13] = { vertex: [[-0.931836, 0.219976, -0.264632], [-0.636706, 0.318353, 0.692816], [-0.613483, -0.735083, -0.264632], [-0.326545, 0.979634, 0], [-0.318353, -0.636706, 0.692816], [-0.159176, 0.477529, -0.856368], [0.159176, -0.477529, -0.856368], [0.318353, 0.636706, 0.692816], [0.326545, -0.979634, 0], [0.613482, 0.735082, -0.264632], [0.636706, -0.318353, 0.692816], [0.931835, -0.219977, -0.264632]], face: [[11, 10, 8], [7, 9, 3], [6, 11, 8], [9, 5, 3], [2, 6, 8], [5, 0, 3], [4, 2, 8], [0, 1, 3], [10, 4, 8], [1, 7, 3], [10, 11, 9, 7], [11, 6, 5, 9], [6, 2, 0, 5], [2, 4, 1, 0], [4, 10, 7, 1]] };
  38000. polyhedra[14] = {
  38001. vertex: [[-0.93465, 0.300459, -0.271185], [-0.838689, -0.260219, -0.516017], [-0.711319, 0.717591, 0.128359], [-0.710334, -0.156922, 0.080946], [-0.599799, 0.556003, -0.725148], [-0.503838, -0.004675, -0.969981], [-0.487004, 0.26021, 0.48049], [-0.460089, -0.750282, -0.512622], [-0.376468, 0.973135, -0.325605], [-0.331735, -0.646985, 0.084342], [-0.254001, 0.831847, 0.530001], [-0.125239, -0.494738, -0.966586], [0.029622, 0.027949, 0.730817], [0.056536, -0.982543, -0.262295], [0.08085, 1.087391, 0.076037], [0.125583, -0.532729, 0.485984], [0.262625, 0.599586, 0.780328], [0.391387, -0.726999, -0.716259], [0.513854, -0.868287, 0.139347], [0.597475, 0.85513, 0.326364], [0.641224, 0.109523, 0.783723], [0.737185, -0.451155, 0.538891], [0.848705, -0.612742, -0.314616], [0.976075, 0.365067, 0.32976], [1.072036, -0.19561, 0.084927]],
  38002. face: [[15, 18, 21], [12, 20, 16], [6, 10, 2], [3, 0, 1], [9, 7, 13], [2, 8, 4, 0], [0, 4, 5, 1], [1, 5, 11, 7], [7, 11, 17, 13], [13, 17, 22, 18], [18, 22, 24, 21], [21, 24, 23, 20], [20, 23, 19, 16], [16, 19, 14, 10], [10, 14, 8, 2], [15, 9, 13, 18], [12, 15, 21, 20], [6, 12, 16, 10], [3, 6, 2, 0], [9, 3, 1, 7], [9, 15, 12, 6, 3], [22, 17, 11, 5, 4, 8, 14, 19, 23, 24]]
  38003. };
  38004. var type = options.type && (options.type < 0 || options.type >= polyhedra.length) ? 0 : options.type || 0;
  38005. var size = options.size;
  38006. var sizeX = options.sizeX || size || 1;
  38007. var sizeY = options.sizeY || size || 1;
  38008. var sizeZ = options.sizeZ || size || 1;
  38009. var data = options.custom || polyhedra[type];
  38010. var nbfaces = data.face.length;
  38011. var faceUV = options.faceUV || new Array(nbfaces);
  38012. var faceColors = options.faceColors;
  38013. var flat = (options.flat === undefined) ? true : options.flat;
  38014. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  38015. var positions = new Array();
  38016. var indices = new Array();
  38017. var normals = new Array();
  38018. var uvs = new Array();
  38019. var colors = new Array();
  38020. var index = 0;
  38021. var faceIdx = 0; // face cursor in the array "indexes"
  38022. var indexes = new Array();
  38023. var i = 0;
  38024. var f = 0;
  38025. var u, v, ang, x, y, tmp;
  38026. // default face colors and UV if undefined
  38027. if (flat) {
  38028. for (f = 0; f < nbfaces; f++) {
  38029. if (faceColors && faceColors[f] === undefined) {
  38030. faceColors[f] = new BABYLON.Color4(1, 1, 1, 1);
  38031. }
  38032. if (faceUV && faceUV[f] === undefined) {
  38033. faceUV[f] = new BABYLON.Vector4(0, 0, 1, 1);
  38034. }
  38035. }
  38036. }
  38037. if (!flat) {
  38038. for (i = 0; i < data.vertex.length; i++) {
  38039. positions.push(data.vertex[i][0] * sizeX, data.vertex[i][1] * sizeY, data.vertex[i][2] * sizeZ);
  38040. uvs.push(0, 0);
  38041. }
  38042. for (f = 0; f < nbfaces; f++) {
  38043. for (i = 0; i < data.face[f].length - 2; i++) {
  38044. indices.push(data.face[f][0], data.face[f][i + 2], data.face[f][i + 1]);
  38045. }
  38046. }
  38047. }
  38048. else {
  38049. for (f = 0; f < nbfaces; f++) {
  38050. var fl = data.face[f].length; // number of vertices of the current face
  38051. ang = 2 * Math.PI / fl;
  38052. x = 0.5 * Math.tan(ang / 2);
  38053. y = 0.5;
  38054. // positions, uvs, colors
  38055. for (i = 0; i < fl; i++) {
  38056. // positions
  38057. positions.push(data.vertex[data.face[f][i]][0] * sizeX, data.vertex[data.face[f][i]][1] * sizeY, data.vertex[data.face[f][i]][2] * sizeZ);
  38058. indexes.push(index);
  38059. index++;
  38060. // uvs
  38061. u = faceUV[f].x + (faceUV[f].z - faceUV[f].x) * (0.5 + x);
  38062. v = faceUV[f].y + (faceUV[f].w - faceUV[f].y) * (y - 0.5);
  38063. uvs.push(u, v);
  38064. tmp = x * Math.cos(ang) - y * Math.sin(ang);
  38065. y = x * Math.sin(ang) + y * Math.cos(ang);
  38066. x = tmp;
  38067. // colors
  38068. if (faceColors) {
  38069. colors.push(faceColors[f].r, faceColors[f].g, faceColors[f].b, faceColors[f].a);
  38070. }
  38071. }
  38072. // indices from indexes
  38073. for (i = 0; i < fl - 2; i++) {
  38074. indices.push(indexes[0 + faceIdx], indexes[i + 2 + faceIdx], indexes[i + 1 + faceIdx]);
  38075. }
  38076. faceIdx += fl;
  38077. }
  38078. }
  38079. VertexData.ComputeNormals(positions, indices, normals);
  38080. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  38081. var vertexData = new VertexData();
  38082. vertexData.positions = positions;
  38083. vertexData.indices = indices;
  38084. vertexData.normals = normals;
  38085. vertexData.uvs = uvs;
  38086. if (faceColors && flat) {
  38087. vertexData.colors = colors;
  38088. }
  38089. return vertexData;
  38090. };
  38091. // based on http://code.google.com/p/away3d/source/browse/trunk/fp10/Away3D/src/away3d/primitives/TorusKnot.as?spec=svn2473&r=2473
  38092. /**
  38093. * Creates the VertexData for a TorusKnot
  38094. * @param options an object used to set the following optional parameters for the TorusKnot, required but can be empty
  38095. * * radius the radius of the torus knot, optional, default 2
  38096. * * tube the thickness of the tube, optional, default 0.5
  38097. * * radialSegments the number of sides on each tube segments, optional, default 32
  38098. * * tubularSegments the number of tubes to decompose the knot into, optional, default 32
  38099. * * p the number of windings around the z axis, optional, default 2
  38100. * * q the number of windings around the x axis, optional, default 3
  38101. * * sideOrientation optional and takes the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  38102. * * frontUvs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the front side, optional, default vector4 (0, 0, 1, 1)
  38103. * * backUVs only usable when you create a double-sided mesh, used to choose what parts of the texture image to crop and apply on the back side, optional, default vector4 (0, 0, 1, 1)
  38104. * @returns the VertexData of the Torus Knot
  38105. */
  38106. VertexData.CreateTorusKnot = function (options) {
  38107. var indices = new Array();
  38108. var positions = new Array();
  38109. var normals = new Array();
  38110. var uvs = new Array();
  38111. var radius = options.radius || 2;
  38112. var tube = options.tube || 0.5;
  38113. var radialSegments = options.radialSegments || 32;
  38114. var tubularSegments = options.tubularSegments || 32;
  38115. var p = options.p || 2;
  38116. var q = options.q || 3;
  38117. var sideOrientation = (options.sideOrientation === 0) ? 0 : options.sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  38118. // Helper
  38119. var getPos = function (angle) {
  38120. var cu = Math.cos(angle);
  38121. var su = Math.sin(angle);
  38122. var quOverP = q / p * angle;
  38123. var cs = Math.cos(quOverP);
  38124. var tx = radius * (2 + cs) * 0.5 * cu;
  38125. var ty = radius * (2 + cs) * su * 0.5;
  38126. var tz = radius * Math.sin(quOverP) * 0.5;
  38127. return new BABYLON.Vector3(tx, ty, tz);
  38128. };
  38129. // Vertices
  38130. var i;
  38131. var j;
  38132. for (i = 0; i <= radialSegments; i++) {
  38133. var modI = i % radialSegments;
  38134. var u = modI / radialSegments * 2 * p * Math.PI;
  38135. var p1 = getPos(u);
  38136. var p2 = getPos(u + 0.01);
  38137. var tang = p2.subtract(p1);
  38138. var n = p2.add(p1);
  38139. var bitan = BABYLON.Vector3.Cross(tang, n);
  38140. n = BABYLON.Vector3.Cross(bitan, tang);
  38141. bitan.normalize();
  38142. n.normalize();
  38143. for (j = 0; j < tubularSegments; j++) {
  38144. var modJ = j % tubularSegments;
  38145. var v = modJ / tubularSegments * 2 * Math.PI;
  38146. var cx = -tube * Math.cos(v);
  38147. var cy = tube * Math.sin(v);
  38148. positions.push(p1.x + cx * n.x + cy * bitan.x);
  38149. positions.push(p1.y + cx * n.y + cy * bitan.y);
  38150. positions.push(p1.z + cx * n.z + cy * bitan.z);
  38151. uvs.push(i / radialSegments);
  38152. uvs.push(j / tubularSegments);
  38153. }
  38154. }
  38155. for (i = 0; i < radialSegments; i++) {
  38156. for (j = 0; j < tubularSegments; j++) {
  38157. var jNext = (j + 1) % tubularSegments;
  38158. var a = i * tubularSegments + j;
  38159. var b = (i + 1) * tubularSegments + j;
  38160. var c = (i + 1) * tubularSegments + jNext;
  38161. var d = i * tubularSegments + jNext;
  38162. indices.push(d);
  38163. indices.push(b);
  38164. indices.push(a);
  38165. indices.push(d);
  38166. indices.push(c);
  38167. indices.push(b);
  38168. }
  38169. }
  38170. // Normals
  38171. VertexData.ComputeNormals(positions, indices, normals);
  38172. // Sides
  38173. VertexData._ComputeSides(sideOrientation, positions, indices, normals, uvs, options.frontUVs, options.backUVs);
  38174. // Result
  38175. var vertexData = new VertexData();
  38176. vertexData.indices = indices;
  38177. vertexData.positions = positions;
  38178. vertexData.normals = normals;
  38179. vertexData.uvs = uvs;
  38180. return vertexData;
  38181. };
  38182. // Tools
  38183. /**
  38184. * Compute normals for given positions and indices
  38185. * @param positions an array of vertex positions, [...., x, y, z, ......]
  38186. * @param indices an array of indices in groups of three for each triangular facet, [...., i, j, k, ......]
  38187. * @param normals an array of vertex normals, [...., x, y, z, ......]
  38188. * @param options an object used to set the following optional parameters for the TorusKnot, optional
  38189. * * facetNormals : optional array of facet normals (vector3)
  38190. * * facetPositions : optional array of facet positions (vector3)
  38191. * * facetPartitioning : optional partitioning array. facetPositions is required for facetPartitioning computation
  38192. * * ratio : optional partitioning ratio / bounding box, required for facetPartitioning computation
  38193. * * bInfo : optional bounding info, required for facetPartitioning computation
  38194. * * bbSize : optional bounding box size data, required for facetPartitioning computation
  38195. * * subDiv : optional partitioning data about subdivsions on each axis (int), required for facetPartitioning computation
  38196. * * useRightHandedSystem: optional boolean to for right handed system computation
  38197. * * depthSort : optional boolean to enable the facet depth sort computation
  38198. * * distanceTo : optional Vector3 to compute the facet depth from this location
  38199. * * depthSortedFacets : optional array of depthSortedFacets to store the facet distances from the reference location
  38200. */
  38201. VertexData.ComputeNormals = function (positions, indices, normals, options) {
  38202. // temporary scalar variables
  38203. var index = 0; // facet index
  38204. var p1p2x = 0.0; // p1p2 vector x coordinate
  38205. var p1p2y = 0.0; // p1p2 vector y coordinate
  38206. var p1p2z = 0.0; // p1p2 vector z coordinate
  38207. var p3p2x = 0.0; // p3p2 vector x coordinate
  38208. var p3p2y = 0.0; // p3p2 vector y coordinate
  38209. var p3p2z = 0.0; // p3p2 vector z coordinate
  38210. var faceNormalx = 0.0; // facet normal x coordinate
  38211. var faceNormaly = 0.0; // facet normal y coordinate
  38212. var faceNormalz = 0.0; // facet normal z coordinate
  38213. var length = 0.0; // facet normal length before normalization
  38214. var v1x = 0; // vector1 x index in the positions array
  38215. var v1y = 0; // vector1 y index in the positions array
  38216. var v1z = 0; // vector1 z index in the positions array
  38217. var v2x = 0; // vector2 x index in the positions array
  38218. var v2y = 0; // vector2 y index in the positions array
  38219. var v2z = 0; // vector2 z index in the positions array
  38220. var v3x = 0; // vector3 x index in the positions array
  38221. var v3y = 0; // vector3 y index in the positions array
  38222. var v3z = 0; // vector3 z index in the positions array
  38223. var computeFacetNormals = false;
  38224. var computeFacetPositions = false;
  38225. var computeFacetPartitioning = false;
  38226. var computeDepthSort = false;
  38227. var faceNormalSign = 1;
  38228. var ratio = 0;
  38229. var distanceTo = null;
  38230. if (options) {
  38231. computeFacetNormals = (options.facetNormals) ? true : false;
  38232. computeFacetPositions = (options.facetPositions) ? true : false;
  38233. computeFacetPartitioning = (options.facetPartitioning) ? true : false;
  38234. faceNormalSign = (options.useRightHandedSystem === true) ? -1 : 1;
  38235. ratio = options.ratio || 0;
  38236. computeDepthSort = (options.depthSort) ? true : false;
  38237. distanceTo = (options.distanceTo);
  38238. if (computeDepthSort) {
  38239. if (distanceTo === undefined) {
  38240. distanceTo = BABYLON.Vector3.Zero();
  38241. }
  38242. var depthSortedFacets = options.depthSortedFacets;
  38243. }
  38244. }
  38245. // facetPartitioning reinit if needed
  38246. var xSubRatio = 0;
  38247. var ySubRatio = 0;
  38248. var zSubRatio = 0;
  38249. var subSq = 0;
  38250. if (computeFacetPartitioning && options && options.bbSize) {
  38251. var ox = 0; // X partitioning index for facet position
  38252. var oy = 0; // Y partinioning index for facet position
  38253. var oz = 0; // Z partinioning index for facet position
  38254. var b1x = 0; // X partitioning index for facet v1 vertex
  38255. var b1y = 0; // Y partitioning index for facet v1 vertex
  38256. var b1z = 0; // z partitioning index for facet v1 vertex
  38257. var b2x = 0; // X partitioning index for facet v2 vertex
  38258. var b2y = 0; // Y partitioning index for facet v2 vertex
  38259. var b2z = 0; // Z partitioning index for facet v2 vertex
  38260. var b3x = 0; // X partitioning index for facet v3 vertex
  38261. var b3y = 0; // Y partitioning index for facet v3 vertex
  38262. var b3z = 0; // Z partitioning index for facet v3 vertex
  38263. var block_idx_o = 0; // facet barycenter block index
  38264. var block_idx_v1 = 0; // v1 vertex block index
  38265. var block_idx_v2 = 0; // v2 vertex block index
  38266. var block_idx_v3 = 0; // v3 vertex block index
  38267. var bbSizeMax = (options.bbSize.x > options.bbSize.y) ? options.bbSize.x : options.bbSize.y;
  38268. bbSizeMax = (bbSizeMax > options.bbSize.z) ? bbSizeMax : options.bbSize.z;
  38269. xSubRatio = options.subDiv.X * ratio / options.bbSize.x;
  38270. ySubRatio = options.subDiv.Y * ratio / options.bbSize.y;
  38271. zSubRatio = options.subDiv.Z * ratio / options.bbSize.z;
  38272. subSq = options.subDiv.max * options.subDiv.max;
  38273. options.facetPartitioning.length = 0;
  38274. }
  38275. // reset the normals
  38276. for (index = 0; index < positions.length; index++) {
  38277. normals[index] = 0.0;
  38278. }
  38279. // Loop : 1 indice triplet = 1 facet
  38280. var nbFaces = (indices.length / 3) | 0;
  38281. for (index = 0; index < nbFaces; index++) {
  38282. // get the indexes of the coordinates of each vertex of the facet
  38283. v1x = indices[index * 3] * 3;
  38284. v1y = v1x + 1;
  38285. v1z = v1x + 2;
  38286. v2x = indices[index * 3 + 1] * 3;
  38287. v2y = v2x + 1;
  38288. v2z = v2x + 2;
  38289. v3x = indices[index * 3 + 2] * 3;
  38290. v3y = v3x + 1;
  38291. v3z = v3x + 2;
  38292. p1p2x = positions[v1x] - positions[v2x]; // compute two vectors per facet : p1p2 and p3p2
  38293. p1p2y = positions[v1y] - positions[v2y];
  38294. p1p2z = positions[v1z] - positions[v2z];
  38295. p3p2x = positions[v3x] - positions[v2x];
  38296. p3p2y = positions[v3y] - positions[v2y];
  38297. p3p2z = positions[v3z] - positions[v2z];
  38298. // compute the face normal with the cross product
  38299. faceNormalx = faceNormalSign * (p1p2y * p3p2z - p1p2z * p3p2y);
  38300. faceNormaly = faceNormalSign * (p1p2z * p3p2x - p1p2x * p3p2z);
  38301. faceNormalz = faceNormalSign * (p1p2x * p3p2y - p1p2y * p3p2x);
  38302. // normalize this normal and store it in the array facetData
  38303. length = Math.sqrt(faceNormalx * faceNormalx + faceNormaly * faceNormaly + faceNormalz * faceNormalz);
  38304. length = (length === 0) ? 1.0 : length;
  38305. faceNormalx /= length;
  38306. faceNormaly /= length;
  38307. faceNormalz /= length;
  38308. if (computeFacetNormals && options) {
  38309. options.facetNormals[index].x = faceNormalx;
  38310. options.facetNormals[index].y = faceNormaly;
  38311. options.facetNormals[index].z = faceNormalz;
  38312. }
  38313. if (computeFacetPositions && options) {
  38314. // compute and the facet barycenter coordinates in the array facetPositions
  38315. options.facetPositions[index].x = (positions[v1x] + positions[v2x] + positions[v3x]) / 3.0;
  38316. options.facetPositions[index].y = (positions[v1y] + positions[v2y] + positions[v3y]) / 3.0;
  38317. options.facetPositions[index].z = (positions[v1z] + positions[v2z] + positions[v3z]) / 3.0;
  38318. }
  38319. if (computeFacetPartitioning && options) {
  38320. // store the facet indexes in arrays in the main facetPartitioning array :
  38321. // compute each facet vertex (+ facet barycenter) index in the partiniong array
  38322. ox = Math.floor((options.facetPositions[index].x - options.bInfo.minimum.x * ratio) * xSubRatio);
  38323. oy = Math.floor((options.facetPositions[index].y - options.bInfo.minimum.y * ratio) * ySubRatio);
  38324. oz = Math.floor((options.facetPositions[index].z - options.bInfo.minimum.z * ratio) * zSubRatio);
  38325. b1x = Math.floor((positions[v1x] - options.bInfo.minimum.x * ratio) * xSubRatio);
  38326. b1y = Math.floor((positions[v1y] - options.bInfo.minimum.y * ratio) * ySubRatio);
  38327. b1z = Math.floor((positions[v1z] - options.bInfo.minimum.z * ratio) * zSubRatio);
  38328. b2x = Math.floor((positions[v2x] - options.bInfo.minimum.x * ratio) * xSubRatio);
  38329. b2y = Math.floor((positions[v2y] - options.bInfo.minimum.y * ratio) * ySubRatio);
  38330. b2z = Math.floor((positions[v2z] - options.bInfo.minimum.z * ratio) * zSubRatio);
  38331. b3x = Math.floor((positions[v3x] - options.bInfo.minimum.x * ratio) * xSubRatio);
  38332. b3y = Math.floor((positions[v3y] - options.bInfo.minimum.y * ratio) * ySubRatio);
  38333. b3z = Math.floor((positions[v3z] - options.bInfo.minimum.z * ratio) * zSubRatio);
  38334. block_idx_v1 = b1x + options.subDiv.max * b1y + subSq * b1z;
  38335. block_idx_v2 = b2x + options.subDiv.max * b2y + subSq * b2z;
  38336. block_idx_v3 = b3x + options.subDiv.max * b3y + subSq * b3z;
  38337. block_idx_o = ox + options.subDiv.max * oy + subSq * oz;
  38338. options.facetPartitioning[block_idx_o] = options.facetPartitioning[block_idx_o] ? options.facetPartitioning[block_idx_o] : new Array();
  38339. options.facetPartitioning[block_idx_v1] = options.facetPartitioning[block_idx_v1] ? options.facetPartitioning[block_idx_v1] : new Array();
  38340. options.facetPartitioning[block_idx_v2] = options.facetPartitioning[block_idx_v2] ? options.facetPartitioning[block_idx_v2] : new Array();
  38341. options.facetPartitioning[block_idx_v3] = options.facetPartitioning[block_idx_v3] ? options.facetPartitioning[block_idx_v3] : new Array();
  38342. // push each facet index in each block containing the vertex
  38343. options.facetPartitioning[block_idx_v1].push(index);
  38344. if (block_idx_v2 != block_idx_v1) {
  38345. options.facetPartitioning[block_idx_v2].push(index);
  38346. }
  38347. if (!(block_idx_v3 == block_idx_v2 || block_idx_v3 == block_idx_v1)) {
  38348. options.facetPartitioning[block_idx_v3].push(index);
  38349. }
  38350. if (!(block_idx_o == block_idx_v1 || block_idx_o == block_idx_v2 || block_idx_o == block_idx_v3)) {
  38351. options.facetPartitioning[block_idx_o].push(index);
  38352. }
  38353. }
  38354. if (computeDepthSort && options && options.facetPositions) {
  38355. var dsf = depthSortedFacets[index];
  38356. dsf.ind = index * 3;
  38357. dsf.sqDistance = BABYLON.Vector3.DistanceSquared(options.facetPositions[index], distanceTo);
  38358. }
  38359. // compute the normals anyway
  38360. normals[v1x] += faceNormalx; // accumulate all the normals per face
  38361. normals[v1y] += faceNormaly;
  38362. normals[v1z] += faceNormalz;
  38363. normals[v2x] += faceNormalx;
  38364. normals[v2y] += faceNormaly;
  38365. normals[v2z] += faceNormalz;
  38366. normals[v3x] += faceNormalx;
  38367. normals[v3y] += faceNormaly;
  38368. normals[v3z] += faceNormalz;
  38369. }
  38370. // last normalization of each normal
  38371. for (index = 0; index < normals.length / 3; index++) {
  38372. faceNormalx = normals[index * 3];
  38373. faceNormaly = normals[index * 3 + 1];
  38374. faceNormalz = normals[index * 3 + 2];
  38375. length = Math.sqrt(faceNormalx * faceNormalx + faceNormaly * faceNormaly + faceNormalz * faceNormalz);
  38376. length = (length === 0) ? 1.0 : length;
  38377. faceNormalx /= length;
  38378. faceNormaly /= length;
  38379. faceNormalz /= length;
  38380. normals[index * 3] = faceNormalx;
  38381. normals[index * 3 + 1] = faceNormaly;
  38382. normals[index * 3 + 2] = faceNormalz;
  38383. }
  38384. };
  38385. VertexData._ComputeSides = function (sideOrientation, positions, indices, normals, uvs, frontUVs, backUVs) {
  38386. var li = indices.length;
  38387. var ln = normals.length;
  38388. var i;
  38389. var n;
  38390. sideOrientation = sideOrientation || BABYLON.Mesh.DEFAULTSIDE;
  38391. switch (sideOrientation) {
  38392. case BABYLON.Mesh.FRONTSIDE:
  38393. // nothing changed
  38394. break;
  38395. case BABYLON.Mesh.BACKSIDE:
  38396. var tmp;
  38397. // indices
  38398. for (i = 0; i < li; i += 3) {
  38399. tmp = indices[i];
  38400. indices[i] = indices[i + 2];
  38401. indices[i + 2] = tmp;
  38402. }
  38403. // normals
  38404. for (n = 0; n < ln; n++) {
  38405. normals[n] = -normals[n];
  38406. }
  38407. break;
  38408. case BABYLON.Mesh.DOUBLESIDE:
  38409. // positions
  38410. var lp = positions.length;
  38411. var l = lp / 3;
  38412. for (var p = 0; p < lp; p++) {
  38413. positions[lp + p] = positions[p];
  38414. }
  38415. // indices
  38416. for (i = 0; i < li; i += 3) {
  38417. indices[i + li] = indices[i + 2] + l;
  38418. indices[i + 1 + li] = indices[i + 1] + l;
  38419. indices[i + 2 + li] = indices[i] + l;
  38420. }
  38421. // normals
  38422. for (n = 0; n < ln; n++) {
  38423. normals[ln + n] = -normals[n];
  38424. }
  38425. // uvs
  38426. var lu = uvs.length;
  38427. var u = 0;
  38428. for (u = 0; u < lu; u++) {
  38429. uvs[u + lu] = uvs[u];
  38430. }
  38431. frontUVs = frontUVs ? frontUVs : new BABYLON.Vector4(0.0, 0.0, 1.0, 1.0);
  38432. backUVs = backUVs ? backUVs : new BABYLON.Vector4(0.0, 0.0, 1.0, 1.0);
  38433. u = 0;
  38434. for (i = 0; i < lu / 2; i++) {
  38435. uvs[u] = frontUVs.x + (frontUVs.z - frontUVs.x) * uvs[u];
  38436. uvs[u + 1] = frontUVs.y + (frontUVs.w - frontUVs.y) * uvs[u + 1];
  38437. uvs[u + lu] = backUVs.x + (backUVs.z - backUVs.x) * uvs[u + lu];
  38438. uvs[u + lu + 1] = backUVs.y + (backUVs.w - backUVs.y) * uvs[u + lu + 1];
  38439. u += 2;
  38440. }
  38441. break;
  38442. }
  38443. };
  38444. /**
  38445. * Applies VertexData created from the imported parameters to the geometry
  38446. * @param parsedVertexData the parsed data from an imported file
  38447. * @param geometry the geometry to apply the VertexData to
  38448. */
  38449. VertexData.ImportVertexData = function (parsedVertexData, geometry) {
  38450. var vertexData = new VertexData();
  38451. // positions
  38452. var positions = parsedVertexData.positions;
  38453. if (positions) {
  38454. vertexData.set(positions, BABYLON.VertexBuffer.PositionKind);
  38455. }
  38456. // normals
  38457. var normals = parsedVertexData.normals;
  38458. if (normals) {
  38459. vertexData.set(normals, BABYLON.VertexBuffer.NormalKind);
  38460. }
  38461. // tangents
  38462. var tangents = parsedVertexData.tangents;
  38463. if (tangents) {
  38464. vertexData.set(tangents, BABYLON.VertexBuffer.TangentKind);
  38465. }
  38466. // uvs
  38467. var uvs = parsedVertexData.uvs;
  38468. if (uvs) {
  38469. vertexData.set(uvs, BABYLON.VertexBuffer.UVKind);
  38470. }
  38471. // uv2s
  38472. var uv2s = parsedVertexData.uv2s;
  38473. if (uv2s) {
  38474. vertexData.set(uv2s, BABYLON.VertexBuffer.UV2Kind);
  38475. }
  38476. // uv3s
  38477. var uv3s = parsedVertexData.uv3s;
  38478. if (uv3s) {
  38479. vertexData.set(uv3s, BABYLON.VertexBuffer.UV3Kind);
  38480. }
  38481. // uv4s
  38482. var uv4s = parsedVertexData.uv4s;
  38483. if (uv4s) {
  38484. vertexData.set(uv4s, BABYLON.VertexBuffer.UV4Kind);
  38485. }
  38486. // uv5s
  38487. var uv5s = parsedVertexData.uv5s;
  38488. if (uv5s) {
  38489. vertexData.set(uv5s, BABYLON.VertexBuffer.UV5Kind);
  38490. }
  38491. // uv6s
  38492. var uv6s = parsedVertexData.uv6s;
  38493. if (uv6s) {
  38494. vertexData.set(uv6s, BABYLON.VertexBuffer.UV6Kind);
  38495. }
  38496. // colors
  38497. var colors = parsedVertexData.colors;
  38498. if (colors) {
  38499. vertexData.set(BABYLON.Color4.CheckColors4(colors, positions.length / 3), BABYLON.VertexBuffer.ColorKind);
  38500. }
  38501. // matricesIndices
  38502. var matricesIndices = parsedVertexData.matricesIndices;
  38503. if (matricesIndices) {
  38504. vertexData.set(matricesIndices, BABYLON.VertexBuffer.MatricesIndicesKind);
  38505. }
  38506. // matricesWeights
  38507. var matricesWeights = parsedVertexData.matricesWeights;
  38508. if (matricesWeights) {
  38509. vertexData.set(matricesWeights, BABYLON.VertexBuffer.MatricesWeightsKind);
  38510. }
  38511. // indices
  38512. var indices = parsedVertexData.indices;
  38513. if (indices) {
  38514. vertexData.indices = indices;
  38515. }
  38516. geometry.setAllVerticesData(vertexData, parsedVertexData.updatable);
  38517. };
  38518. return VertexData;
  38519. }());
  38520. BABYLON.VertexData = VertexData;
  38521. })(BABYLON || (BABYLON = {}));
  38522. //# sourceMappingURL=babylon.mesh.vertexData.js.map
  38523. var BABYLON;
  38524. (function (BABYLON) {
  38525. /**
  38526. * Class used to store geometry data (vertex buffers + index buffer)
  38527. */
  38528. var Geometry = /** @class */ (function () {
  38529. /**
  38530. * Creates a new geometry
  38531. * @param id defines the unique ID
  38532. * @param scene defines the hosting scene
  38533. * @param vertexData defines the {BABYLON.VertexData} used to get geometry data
  38534. * @param updatable defines if geometry must be updatable (false by default)
  38535. * @param mesh defines the mesh that will be associated with the geometry
  38536. */
  38537. function Geometry(id, scene, vertexData, updatable, mesh) {
  38538. if (updatable === void 0) { updatable = false; }
  38539. if (mesh === void 0) { mesh = null; }
  38540. /**
  38541. * Gets the delay loading state of the geometry (none by default which means not delayed)
  38542. */
  38543. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NONE;
  38544. this._totalVertices = 0;
  38545. this._isDisposed = false;
  38546. this._indexBufferIsUpdatable = false;
  38547. this.id = id;
  38548. this._engine = scene.getEngine();
  38549. this._meshes = [];
  38550. this._scene = scene;
  38551. //Init vertex buffer cache
  38552. this._vertexBuffers = {};
  38553. this._indices = [];
  38554. this._updatable = updatable;
  38555. // vertexData
  38556. if (vertexData) {
  38557. this.setAllVerticesData(vertexData, updatable);
  38558. }
  38559. else {
  38560. this._totalVertices = 0;
  38561. this._indices = [];
  38562. }
  38563. if (this._engine.getCaps().vertexArrayObject) {
  38564. this._vertexArrayObjects = {};
  38565. }
  38566. // applyToMesh
  38567. if (mesh) {
  38568. if (mesh.getClassName() === "LinesMesh") {
  38569. this.boundingBias = new BABYLON.Vector2(0, mesh.intersectionThreshold);
  38570. this._updateExtend();
  38571. }
  38572. this.applyToMesh(mesh);
  38573. mesh.computeWorldMatrix(true);
  38574. }
  38575. }
  38576. Object.defineProperty(Geometry.prototype, "boundingBias", {
  38577. /**
  38578. * Gets or sets the Bias Vector to apply on the bounding elements (box/sphere), the max extend is computed as v += v * bias.x + bias.y, the min is computed as v -= v * bias.x + bias.y
  38579. */
  38580. get: function () {
  38581. return this._boundingBias;
  38582. },
  38583. /**
  38584. * Gets or sets the Bias Vector to apply on the bounding elements (box/sphere), the max extend is computed as v += v * bias.x + bias.y, the min is computed as v -= v * bias.x + bias.y
  38585. */
  38586. set: function (value) {
  38587. if (this._boundingBias && this._boundingBias.equals(value)) {
  38588. return;
  38589. }
  38590. this._boundingBias = value.clone();
  38591. this._updateBoundingInfo(true, null);
  38592. },
  38593. enumerable: true,
  38594. configurable: true
  38595. });
  38596. /**
  38597. * Static function used to attach a new empty geometry to a mesh
  38598. * @param mesh defines the mesh to attach the geometry to
  38599. * @returns the new {BABYLON.Geometry}
  38600. */
  38601. Geometry.CreateGeometryForMesh = function (mesh) {
  38602. var geometry = new Geometry(Geometry.RandomId(), mesh.getScene());
  38603. geometry.applyToMesh(mesh);
  38604. return geometry;
  38605. };
  38606. Object.defineProperty(Geometry.prototype, "extend", {
  38607. /**
  38608. * Gets the current extend of the geometry
  38609. */
  38610. get: function () {
  38611. return this._extend;
  38612. },
  38613. enumerable: true,
  38614. configurable: true
  38615. });
  38616. /**
  38617. * Gets the hosting scene
  38618. * @returns the hosting {BABYLON.Scene}
  38619. */
  38620. Geometry.prototype.getScene = function () {
  38621. return this._scene;
  38622. };
  38623. /**
  38624. * Gets the hosting engine
  38625. * @returns the hosting {BABYLON.Engine}
  38626. */
  38627. Geometry.prototype.getEngine = function () {
  38628. return this._engine;
  38629. };
  38630. /**
  38631. * Defines if the geometry is ready to use
  38632. * @returns true if the geometry is ready to be used
  38633. */
  38634. Geometry.prototype.isReady = function () {
  38635. return this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADED || this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_NONE;
  38636. };
  38637. Object.defineProperty(Geometry.prototype, "doNotSerialize", {
  38638. /**
  38639. * Gets a value indicating that the geometry should not be serialized
  38640. */
  38641. get: function () {
  38642. for (var index = 0; index < this._meshes.length; index++) {
  38643. if (!this._meshes[index].doNotSerialize) {
  38644. return false;
  38645. }
  38646. }
  38647. return true;
  38648. },
  38649. enumerable: true,
  38650. configurable: true
  38651. });
  38652. /** @hidden */
  38653. Geometry.prototype._rebuild = function () {
  38654. if (this._vertexArrayObjects) {
  38655. this._vertexArrayObjects = {};
  38656. }
  38657. // Index buffer
  38658. if (this._meshes.length !== 0 && this._indices) {
  38659. this._indexBuffer = this._engine.createIndexBuffer(this._indices);
  38660. }
  38661. // Vertex buffers
  38662. for (var key in this._vertexBuffers) {
  38663. var vertexBuffer = this._vertexBuffers[key];
  38664. vertexBuffer._rebuild();
  38665. }
  38666. };
  38667. /**
  38668. * Affects all geometry data in one call
  38669. * @param vertexData defines the geometry data
  38670. * @param updatable defines if the geometry must be flagged as updatable (false as default)
  38671. */
  38672. Geometry.prototype.setAllVerticesData = function (vertexData, updatable) {
  38673. vertexData.applyToGeometry(this, updatable);
  38674. this.notifyUpdate();
  38675. };
  38676. /**
  38677. * Set specific vertex data
  38678. * @param kind defines the data kind (Position, normal, etc...)
  38679. * @param data defines the vertex data to use
  38680. * @param updatable defines if the vertex must be flagged as updatable (false as default)
  38681. * @param stride defines the stride to use (0 by default). This value is deduced from the kind value if not specified
  38682. */
  38683. Geometry.prototype.setVerticesData = function (kind, data, updatable, stride) {
  38684. if (updatable === void 0) { updatable = false; }
  38685. var buffer = new BABYLON.VertexBuffer(this._engine, data, kind, updatable, this._meshes.length === 0, stride);
  38686. this.setVerticesBuffer(buffer);
  38687. };
  38688. /**
  38689. * Removes a specific vertex data
  38690. * @param kind defines the data kind (Position, normal, etc...)
  38691. */
  38692. Geometry.prototype.removeVerticesData = function (kind) {
  38693. if (this._vertexBuffers[kind]) {
  38694. this._vertexBuffers[kind].dispose();
  38695. delete this._vertexBuffers[kind];
  38696. }
  38697. };
  38698. /**
  38699. * Affect a vertex buffer to the geometry. the vertexBuffer.getKind() function is used to determine where to store the data
  38700. * @param buffer defines the vertex buffer to use
  38701. * @param totalVertices defines the total number of vertices for position kind (could be null)
  38702. */
  38703. Geometry.prototype.setVerticesBuffer = function (buffer, totalVertices) {
  38704. if (totalVertices === void 0) { totalVertices = null; }
  38705. var kind = buffer.getKind();
  38706. if (this._vertexBuffers[kind]) {
  38707. this._vertexBuffers[kind].dispose();
  38708. }
  38709. this._vertexBuffers[kind] = buffer;
  38710. if (kind === BABYLON.VertexBuffer.PositionKind) {
  38711. var data = buffer.getData();
  38712. if (totalVertices != null) {
  38713. this._totalVertices = totalVertices;
  38714. }
  38715. else {
  38716. if (data != null) {
  38717. this._totalVertices = data.length / (buffer.byteStride / 4);
  38718. }
  38719. }
  38720. this._updateExtend(data);
  38721. this._resetPointsArrayCache();
  38722. var meshes = this._meshes;
  38723. var numOfMeshes = meshes.length;
  38724. for (var index = 0; index < numOfMeshes; index++) {
  38725. var mesh = meshes[index];
  38726. mesh._boundingInfo = new BABYLON.BoundingInfo(this._extend.minimum, this._extend.maximum);
  38727. mesh._createGlobalSubMesh(false);
  38728. mesh.computeWorldMatrix(true);
  38729. }
  38730. }
  38731. this.notifyUpdate(kind);
  38732. if (this._vertexArrayObjects) {
  38733. this._disposeVertexArrayObjects();
  38734. this._vertexArrayObjects = {}; // Will trigger a rebuild of the VAO if supported
  38735. }
  38736. };
  38737. /**
  38738. * Update a specific vertex buffer
  38739. * This function will directly update the underlying WebGLBuffer according to the passed numeric array or Float32Array
  38740. * It will do nothing if the buffer is not updatable
  38741. * @param kind defines the data kind (Position, normal, etc...)
  38742. * @param data defines the data to use
  38743. * @param offset defines the offset in the target buffer where to store the data
  38744. * @param useBytes set to true if the offset is in bytes
  38745. */
  38746. Geometry.prototype.updateVerticesDataDirectly = function (kind, data, offset, useBytes) {
  38747. if (useBytes === void 0) { useBytes = false; }
  38748. var vertexBuffer = this.getVertexBuffer(kind);
  38749. if (!vertexBuffer) {
  38750. return;
  38751. }
  38752. vertexBuffer.updateDirectly(data, offset, useBytes);
  38753. this.notifyUpdate(kind);
  38754. };
  38755. /**
  38756. * Update a specific vertex buffer
  38757. * This function will create a new buffer if the current one is not updatable
  38758. * @param kind defines the data kind (Position, normal, etc...)
  38759. * @param data defines the data to use
  38760. * @param updateExtends defines if the geometry extends must be recomputed (false by default)
  38761. */
  38762. Geometry.prototype.updateVerticesData = function (kind, data, updateExtends) {
  38763. if (updateExtends === void 0) { updateExtends = false; }
  38764. var vertexBuffer = this.getVertexBuffer(kind);
  38765. if (!vertexBuffer) {
  38766. return;
  38767. }
  38768. vertexBuffer.update(data);
  38769. if (kind === BABYLON.VertexBuffer.PositionKind) {
  38770. this._updateBoundingInfo(updateExtends, data);
  38771. }
  38772. this.notifyUpdate(kind);
  38773. };
  38774. Geometry.prototype._updateBoundingInfo = function (updateExtends, data) {
  38775. if (updateExtends) {
  38776. this._updateExtend(data);
  38777. }
  38778. var meshes = this._meshes;
  38779. var numOfMeshes = meshes.length;
  38780. this._resetPointsArrayCache();
  38781. for (var index = 0; index < numOfMeshes; index++) {
  38782. var mesh = meshes[index];
  38783. if (updateExtends) {
  38784. mesh._boundingInfo = new BABYLON.BoundingInfo(this._extend.minimum, this._extend.maximum);
  38785. for (var subIndex = 0; subIndex < mesh.subMeshes.length; subIndex++) {
  38786. var subMesh = mesh.subMeshes[subIndex];
  38787. subMesh.refreshBoundingInfo();
  38788. }
  38789. }
  38790. }
  38791. };
  38792. /** @hidden */
  38793. Geometry.prototype._bind = function (effect, indexToBind) {
  38794. if (!effect) {
  38795. return;
  38796. }
  38797. if (indexToBind === undefined) {
  38798. indexToBind = this._indexBuffer;
  38799. }
  38800. var vbs = this.getVertexBuffers();
  38801. if (!vbs) {
  38802. return;
  38803. }
  38804. if (indexToBind != this._indexBuffer || !this._vertexArrayObjects) {
  38805. this._engine.bindBuffers(vbs, indexToBind, effect);
  38806. return;
  38807. }
  38808. // Using VAO
  38809. if (!this._vertexArrayObjects[effect.key]) {
  38810. this._vertexArrayObjects[effect.key] = this._engine.recordVertexArrayObject(vbs, indexToBind, effect);
  38811. }
  38812. this._engine.bindVertexArrayObject(this._vertexArrayObjects[effect.key], indexToBind);
  38813. };
  38814. /**
  38815. * Gets total number of vertices
  38816. * @returns the total number of vertices
  38817. */
  38818. Geometry.prototype.getTotalVertices = function () {
  38819. if (!this.isReady()) {
  38820. return 0;
  38821. }
  38822. return this._totalVertices;
  38823. };
  38824. /**
  38825. * Gets a specific vertex data attached to this geometry. Float data is constructed if the vertex buffer data cannot be returned directly.
  38826. * @param kind defines the data kind (Position, normal, etc...)
  38827. * @param copyWhenShared defines if the returned array must be cloned upon returning it if the current geometry is shared between multiple meshes
  38828. * @param forceCopy defines a boolean indicating that the returned array must be cloned upon returning it
  38829. * @returns a float array containing vertex data
  38830. */
  38831. Geometry.prototype.getVerticesData = function (kind, copyWhenShared, forceCopy) {
  38832. var vertexBuffer = this.getVertexBuffer(kind);
  38833. if (!vertexBuffer) {
  38834. return null;
  38835. }
  38836. var data = vertexBuffer.getData();
  38837. if (!data) {
  38838. return null;
  38839. }
  38840. var tightlyPackedByteStride = vertexBuffer.getSize() * BABYLON.VertexBuffer.GetTypeByteLength(vertexBuffer.type);
  38841. var count = this._totalVertices * vertexBuffer.getSize();
  38842. if (vertexBuffer.type !== BABYLON.VertexBuffer.FLOAT || vertexBuffer.byteStride !== tightlyPackedByteStride) {
  38843. var copy_1 = new Array(count);
  38844. vertexBuffer.forEach(count, function (value, index) {
  38845. copy_1[index] = value;
  38846. });
  38847. return copy_1;
  38848. }
  38849. if (!((data instanceof Array) || (data instanceof Float32Array)) || vertexBuffer.byteOffset !== 0 || data.length !== count) {
  38850. if (data instanceof Array) {
  38851. var offset = vertexBuffer.byteOffset / 4;
  38852. return BABYLON.Tools.Slice(data, offset, offset + count);
  38853. }
  38854. else if (data instanceof ArrayBuffer) {
  38855. return new Float32Array(data, vertexBuffer.byteOffset, count);
  38856. }
  38857. else {
  38858. var offset = data.byteOffset + vertexBuffer.byteOffset;
  38859. if (forceCopy || (copyWhenShared && this._meshes.length !== 1)) {
  38860. var result = new Float32Array(count);
  38861. var source = new Float32Array(data.buffer, offset, count);
  38862. result.set(source);
  38863. return result;
  38864. }
  38865. return new Float32Array(data.buffer, offset, count);
  38866. }
  38867. }
  38868. if (forceCopy || (copyWhenShared && this._meshes.length !== 1)) {
  38869. return BABYLON.Tools.Slice(data);
  38870. }
  38871. return data;
  38872. };
  38873. /**
  38874. * Returns a boolean defining if the vertex data for the requested `kind` is updatable
  38875. * @param kind defines the data kind (Position, normal, etc...)
  38876. * @returns true if the vertex buffer with the specified kind is updatable
  38877. */
  38878. Geometry.prototype.isVertexBufferUpdatable = function (kind) {
  38879. var vb = this._vertexBuffers[kind];
  38880. if (!vb) {
  38881. return false;
  38882. }
  38883. return vb.isUpdatable();
  38884. };
  38885. /**
  38886. * Gets a specific vertex buffer
  38887. * @param kind defines the data kind (Position, normal, etc...)
  38888. * @returns a {BABYLON.VertexBuffer}
  38889. */
  38890. Geometry.prototype.getVertexBuffer = function (kind) {
  38891. if (!this.isReady()) {
  38892. return null;
  38893. }
  38894. return this._vertexBuffers[kind];
  38895. };
  38896. /**
  38897. * Returns all vertex buffers
  38898. * @return an object holding all vertex buffers indexed by kind
  38899. */
  38900. Geometry.prototype.getVertexBuffers = function () {
  38901. if (!this.isReady()) {
  38902. return null;
  38903. }
  38904. return this._vertexBuffers;
  38905. };
  38906. /**
  38907. * Gets a boolean indicating if specific vertex buffer is present
  38908. * @param kind defines the data kind (Position, normal, etc...)
  38909. * @returns true if data is present
  38910. */
  38911. Geometry.prototype.isVerticesDataPresent = function (kind) {
  38912. if (!this._vertexBuffers) {
  38913. if (this._delayInfo) {
  38914. return this._delayInfo.indexOf(kind) !== -1;
  38915. }
  38916. return false;
  38917. }
  38918. return this._vertexBuffers[kind] !== undefined;
  38919. };
  38920. /**
  38921. * Gets a list of all attached data kinds (Position, normal, etc...)
  38922. * @returns a list of string containing all kinds
  38923. */
  38924. Geometry.prototype.getVerticesDataKinds = function () {
  38925. var result = [];
  38926. var kind;
  38927. if (!this._vertexBuffers && this._delayInfo) {
  38928. for (kind in this._delayInfo) {
  38929. result.push(kind);
  38930. }
  38931. }
  38932. else {
  38933. for (kind in this._vertexBuffers) {
  38934. result.push(kind);
  38935. }
  38936. }
  38937. return result;
  38938. };
  38939. /**
  38940. * Update index buffer
  38941. * @param indices defines the indices to store in the index buffer
  38942. * @param offset defines the offset in the target buffer where to store the data
  38943. */
  38944. Geometry.prototype.updateIndices = function (indices, offset) {
  38945. if (!this._indexBuffer) {
  38946. return;
  38947. }
  38948. if (!this._indexBufferIsUpdatable) {
  38949. this.setIndices(indices, null, true);
  38950. }
  38951. else {
  38952. this._engine.updateDynamicIndexBuffer(this._indexBuffer, indices, offset);
  38953. }
  38954. };
  38955. /**
  38956. * Creates a new index buffer
  38957. * @param indices defines the indices to store in the index buffer
  38958. * @param totalVertices defines the total number of vertices (could be null)
  38959. * @param updatable defines if the index buffer must be flagged as updatable (false by default)
  38960. */
  38961. Geometry.prototype.setIndices = function (indices, totalVertices, updatable) {
  38962. if (totalVertices === void 0) { totalVertices = null; }
  38963. if (updatable === void 0) { updatable = false; }
  38964. if (this._indexBuffer) {
  38965. this._engine._releaseBuffer(this._indexBuffer);
  38966. }
  38967. this._disposeVertexArrayObjects();
  38968. this._indices = indices;
  38969. this._indexBufferIsUpdatable = updatable;
  38970. if (this._meshes.length !== 0 && this._indices) {
  38971. this._indexBuffer = this._engine.createIndexBuffer(this._indices, updatable);
  38972. }
  38973. if (totalVertices != undefined) { // including null and undefined
  38974. this._totalVertices = totalVertices;
  38975. }
  38976. var meshes = this._meshes;
  38977. var numOfMeshes = meshes.length;
  38978. for (var index = 0; index < numOfMeshes; index++) {
  38979. meshes[index]._createGlobalSubMesh(true);
  38980. }
  38981. this.notifyUpdate();
  38982. };
  38983. /**
  38984. * Return the total number of indices
  38985. * @returns the total number of indices
  38986. */
  38987. Geometry.prototype.getTotalIndices = function () {
  38988. if (!this.isReady()) {
  38989. return 0;
  38990. }
  38991. return this._indices.length;
  38992. };
  38993. /**
  38994. * Gets the index buffer array
  38995. * @param copyWhenShared defines if the returned array must be cloned upon returning it if the current geometry is shared between multiple meshes
  38996. * @param forceCopy defines a boolean indicating that the returned array must be cloned upon returning it
  38997. * @returns the index buffer array
  38998. */
  38999. Geometry.prototype.getIndices = function (copyWhenShared, forceCopy) {
  39000. if (!this.isReady()) {
  39001. return null;
  39002. }
  39003. var orig = this._indices;
  39004. if (!forceCopy && (!copyWhenShared || this._meshes.length === 1)) {
  39005. return orig;
  39006. }
  39007. else {
  39008. var len = orig.length;
  39009. var copy = [];
  39010. for (var i = 0; i < len; i++) {
  39011. copy.push(orig[i]);
  39012. }
  39013. return copy;
  39014. }
  39015. };
  39016. /**
  39017. * Gets the index buffer
  39018. * @return the index buffer
  39019. */
  39020. Geometry.prototype.getIndexBuffer = function () {
  39021. if (!this.isReady()) {
  39022. return null;
  39023. }
  39024. return this._indexBuffer;
  39025. };
  39026. /** @hidden */
  39027. Geometry.prototype._releaseVertexArrayObject = function (effect) {
  39028. if (effect === void 0) { effect = null; }
  39029. if (!effect || !this._vertexArrayObjects) {
  39030. return;
  39031. }
  39032. if (this._vertexArrayObjects[effect.key]) {
  39033. this._engine.releaseVertexArrayObject(this._vertexArrayObjects[effect.key]);
  39034. delete this._vertexArrayObjects[effect.key];
  39035. }
  39036. };
  39037. /**
  39038. * Release the associated resources for a specific mesh
  39039. * @param mesh defines the source mesh
  39040. * @param shouldDispose defines if the geometry must be disposed if there is no more mesh pointing to it
  39041. */
  39042. Geometry.prototype.releaseForMesh = function (mesh, shouldDispose) {
  39043. var meshes = this._meshes;
  39044. var index = meshes.indexOf(mesh);
  39045. if (index === -1) {
  39046. return;
  39047. }
  39048. meshes.splice(index, 1);
  39049. mesh._geometry = null;
  39050. if (meshes.length === 0 && shouldDispose) {
  39051. this.dispose();
  39052. }
  39053. };
  39054. /**
  39055. * Apply current geometry to a given mesh
  39056. * @param mesh defines the mesh to apply geometry to
  39057. */
  39058. Geometry.prototype.applyToMesh = function (mesh) {
  39059. if (mesh._geometry === this) {
  39060. return;
  39061. }
  39062. var previousGeometry = mesh._geometry;
  39063. if (previousGeometry) {
  39064. previousGeometry.releaseForMesh(mesh);
  39065. }
  39066. var meshes = this._meshes;
  39067. // must be done before setting vertexBuffers because of mesh._createGlobalSubMesh()
  39068. mesh._geometry = this;
  39069. this._scene.pushGeometry(this);
  39070. meshes.push(mesh);
  39071. if (this.isReady()) {
  39072. this._applyToMesh(mesh);
  39073. }
  39074. else {
  39075. mesh._boundingInfo = this._boundingInfo;
  39076. }
  39077. };
  39078. Geometry.prototype._updateExtend = function (data) {
  39079. if (data === void 0) { data = null; }
  39080. if (!data) {
  39081. data = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  39082. }
  39083. this._extend = BABYLON.Tools.ExtractMinAndMax(data, 0, this._totalVertices, this.boundingBias, 3);
  39084. };
  39085. Geometry.prototype._applyToMesh = function (mesh) {
  39086. var numOfMeshes = this._meshes.length;
  39087. // vertexBuffers
  39088. for (var kind in this._vertexBuffers) {
  39089. if (numOfMeshes === 1) {
  39090. this._vertexBuffers[kind].create();
  39091. }
  39092. var buffer = this._vertexBuffers[kind].getBuffer();
  39093. if (buffer)
  39094. buffer.references = numOfMeshes;
  39095. if (kind === BABYLON.VertexBuffer.PositionKind) {
  39096. if (!this._extend) {
  39097. this._updateExtend();
  39098. }
  39099. mesh._boundingInfo = new BABYLON.BoundingInfo(this._extend.minimum, this._extend.maximum);
  39100. mesh._createGlobalSubMesh(false);
  39101. //bounding info was just created again, world matrix should be applied again.
  39102. mesh._updateBoundingInfo();
  39103. }
  39104. }
  39105. // indexBuffer
  39106. if (numOfMeshes === 1 && this._indices && this._indices.length > 0) {
  39107. this._indexBuffer = this._engine.createIndexBuffer(this._indices);
  39108. }
  39109. if (this._indexBuffer) {
  39110. this._indexBuffer.references = numOfMeshes;
  39111. }
  39112. };
  39113. Geometry.prototype.notifyUpdate = function (kind) {
  39114. if (this.onGeometryUpdated) {
  39115. this.onGeometryUpdated(this, kind);
  39116. }
  39117. for (var _i = 0, _a = this._meshes; _i < _a.length; _i++) {
  39118. var mesh = _a[_i];
  39119. mesh._markSubMeshesAsAttributesDirty();
  39120. }
  39121. };
  39122. /**
  39123. * Load the geometry if it was flagged as delay loaded
  39124. * @param scene defines the hosting scene
  39125. * @param onLoaded defines a callback called when the geometry is loaded
  39126. */
  39127. Geometry.prototype.load = function (scene, onLoaded) {
  39128. if (this.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADING) {
  39129. return;
  39130. }
  39131. if (this.isReady()) {
  39132. if (onLoaded) {
  39133. onLoaded();
  39134. }
  39135. return;
  39136. }
  39137. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADING;
  39138. this._queueLoad(scene, onLoaded);
  39139. };
  39140. Geometry.prototype._queueLoad = function (scene, onLoaded) {
  39141. var _this = this;
  39142. if (!this.delayLoadingFile) {
  39143. return;
  39144. }
  39145. scene._addPendingData(this);
  39146. scene._loadFile(this.delayLoadingFile, function (data) {
  39147. if (!_this._delayLoadingFunction) {
  39148. return;
  39149. }
  39150. _this._delayLoadingFunction(JSON.parse(data), _this);
  39151. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  39152. _this._delayInfo = [];
  39153. scene._removePendingData(_this);
  39154. var meshes = _this._meshes;
  39155. var numOfMeshes = meshes.length;
  39156. for (var index = 0; index < numOfMeshes; index++) {
  39157. _this._applyToMesh(meshes[index]);
  39158. }
  39159. if (onLoaded) {
  39160. onLoaded();
  39161. }
  39162. }, undefined, true);
  39163. };
  39164. /**
  39165. * Invert the geometry to move from a right handed system to a left handed one.
  39166. */
  39167. Geometry.prototype.toLeftHanded = function () {
  39168. // Flip faces
  39169. var tIndices = this.getIndices(false);
  39170. if (tIndices != null && tIndices.length > 0) {
  39171. for (var i = 0; i < tIndices.length; i += 3) {
  39172. var tTemp = tIndices[i + 0];
  39173. tIndices[i + 0] = tIndices[i + 2];
  39174. tIndices[i + 2] = tTemp;
  39175. }
  39176. this.setIndices(tIndices);
  39177. }
  39178. // Negate position.z
  39179. var tPositions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind, false);
  39180. if (tPositions != null && tPositions.length > 0) {
  39181. for (var i = 0; i < tPositions.length; i += 3) {
  39182. tPositions[i + 2] = -tPositions[i + 2];
  39183. }
  39184. this.setVerticesData(BABYLON.VertexBuffer.PositionKind, tPositions, false);
  39185. }
  39186. // Negate normal.z
  39187. var tNormals = this.getVerticesData(BABYLON.VertexBuffer.NormalKind, false);
  39188. if (tNormals != null && tNormals.length > 0) {
  39189. for (var i = 0; i < tNormals.length; i += 3) {
  39190. tNormals[i + 2] = -tNormals[i + 2];
  39191. }
  39192. this.setVerticesData(BABYLON.VertexBuffer.NormalKind, tNormals, false);
  39193. }
  39194. };
  39195. // Cache
  39196. /** @hidden */
  39197. Geometry.prototype._resetPointsArrayCache = function () {
  39198. this._positions = null;
  39199. };
  39200. /** @hidden */
  39201. Geometry.prototype._generatePointsArray = function () {
  39202. if (this._positions)
  39203. return true;
  39204. var data = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  39205. if (!data || data.length === 0) {
  39206. return false;
  39207. }
  39208. this._positions = [];
  39209. for (var index = 0; index < data.length; index += 3) {
  39210. this._positions.push(BABYLON.Vector3.FromArray(data, index));
  39211. }
  39212. return true;
  39213. };
  39214. /**
  39215. * Gets a value indicating if the geometry is disposed
  39216. * @returns true if the geometry was disposed
  39217. */
  39218. Geometry.prototype.isDisposed = function () {
  39219. return this._isDisposed;
  39220. };
  39221. Geometry.prototype._disposeVertexArrayObjects = function () {
  39222. if (this._vertexArrayObjects) {
  39223. for (var kind in this._vertexArrayObjects) {
  39224. this._engine.releaseVertexArrayObject(this._vertexArrayObjects[kind]);
  39225. }
  39226. this._vertexArrayObjects = {};
  39227. }
  39228. };
  39229. /**
  39230. * Free all associated resources
  39231. */
  39232. Geometry.prototype.dispose = function () {
  39233. var meshes = this._meshes;
  39234. var numOfMeshes = meshes.length;
  39235. var index;
  39236. for (index = 0; index < numOfMeshes; index++) {
  39237. this.releaseForMesh(meshes[index]);
  39238. }
  39239. this._meshes = [];
  39240. this._disposeVertexArrayObjects();
  39241. for (var kind in this._vertexBuffers) {
  39242. this._vertexBuffers[kind].dispose();
  39243. }
  39244. this._vertexBuffers = {};
  39245. this._totalVertices = 0;
  39246. if (this._indexBuffer) {
  39247. this._engine._releaseBuffer(this._indexBuffer);
  39248. }
  39249. this._indexBuffer = null;
  39250. this._indices = [];
  39251. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NONE;
  39252. this.delayLoadingFile = null;
  39253. this._delayLoadingFunction = null;
  39254. this._delayInfo = [];
  39255. this._boundingInfo = null;
  39256. this._scene.removeGeometry(this);
  39257. this._isDisposed = true;
  39258. };
  39259. /**
  39260. * Clone the current geometry into a new geometry
  39261. * @param id defines the unique ID of the new geometry
  39262. * @returns a new geometry object
  39263. */
  39264. Geometry.prototype.copy = function (id) {
  39265. var vertexData = new BABYLON.VertexData();
  39266. vertexData.indices = [];
  39267. var indices = this.getIndices();
  39268. if (indices) {
  39269. for (var index = 0; index < indices.length; index++) {
  39270. vertexData.indices.push(indices[index]);
  39271. }
  39272. }
  39273. var updatable = false;
  39274. var stopChecking = false;
  39275. var kind;
  39276. for (kind in this._vertexBuffers) {
  39277. // using slice() to make a copy of the array and not just reference it
  39278. var data = this.getVerticesData(kind);
  39279. if (data instanceof Float32Array) {
  39280. vertexData.set(new Float32Array(data), kind);
  39281. }
  39282. else {
  39283. vertexData.set(data.slice(0), kind);
  39284. }
  39285. if (!stopChecking) {
  39286. var vb = this.getVertexBuffer(kind);
  39287. if (vb) {
  39288. updatable = vb.isUpdatable();
  39289. stopChecking = !updatable;
  39290. }
  39291. }
  39292. }
  39293. var geometry = new Geometry(id, this._scene, vertexData, updatable);
  39294. geometry.delayLoadState = this.delayLoadState;
  39295. geometry.delayLoadingFile = this.delayLoadingFile;
  39296. geometry._delayLoadingFunction = this._delayLoadingFunction;
  39297. for (kind in this._delayInfo) {
  39298. geometry._delayInfo = geometry._delayInfo || [];
  39299. geometry._delayInfo.push(kind);
  39300. }
  39301. // Bounding info
  39302. geometry._boundingInfo = new BABYLON.BoundingInfo(this._extend.minimum, this._extend.maximum);
  39303. return geometry;
  39304. };
  39305. /**
  39306. * Serialize the current geometry info (and not the vertices data) into a JSON object
  39307. * @return a JSON representation of the current geometry data (without the vertices data)
  39308. */
  39309. Geometry.prototype.serialize = function () {
  39310. var serializationObject = {};
  39311. serializationObject.id = this.id;
  39312. serializationObject.updatable = this._updatable;
  39313. if (BABYLON.Tags && BABYLON.Tags.HasTags(this)) {
  39314. serializationObject.tags = BABYLON.Tags.GetTags(this);
  39315. }
  39316. return serializationObject;
  39317. };
  39318. Geometry.prototype.toNumberArray = function (origin) {
  39319. if (Array.isArray(origin)) {
  39320. return origin;
  39321. }
  39322. else {
  39323. return Array.prototype.slice.call(origin);
  39324. }
  39325. };
  39326. /**
  39327. * Serialize all vertices data into a JSON oject
  39328. * @returns a JSON representation of the current geometry data
  39329. */
  39330. Geometry.prototype.serializeVerticeData = function () {
  39331. var serializationObject = this.serialize();
  39332. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.PositionKind)) {
  39333. serializationObject.positions = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.PositionKind));
  39334. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.PositionKind)) {
  39335. serializationObject.positions._updatable = true;
  39336. }
  39337. }
  39338. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  39339. serializationObject.normals = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.NormalKind));
  39340. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.NormalKind)) {
  39341. serializationObject.normals._updatable = true;
  39342. }
  39343. }
  39344. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.TangentKind)) {
  39345. serializationObject.tangets = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.TangentKind));
  39346. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.TangentKind)) {
  39347. serializationObject.tangets._updatable = true;
  39348. }
  39349. }
  39350. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  39351. serializationObject.uvs = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UVKind));
  39352. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UVKind)) {
  39353. serializationObject.uvs._updatable = true;
  39354. }
  39355. }
  39356. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  39357. serializationObject.uv2s = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UV2Kind));
  39358. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UV2Kind)) {
  39359. serializationObject.uv2s._updatable = true;
  39360. }
  39361. }
  39362. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UV3Kind)) {
  39363. serializationObject.uv3s = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UV3Kind));
  39364. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UV3Kind)) {
  39365. serializationObject.uv3s._updatable = true;
  39366. }
  39367. }
  39368. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UV4Kind)) {
  39369. serializationObject.uv4s = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UV4Kind));
  39370. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UV4Kind)) {
  39371. serializationObject.uv4s._updatable = true;
  39372. }
  39373. }
  39374. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UV5Kind)) {
  39375. serializationObject.uv5s = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UV5Kind));
  39376. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UV5Kind)) {
  39377. serializationObject.uv5s._updatable = true;
  39378. }
  39379. }
  39380. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.UV6Kind)) {
  39381. serializationObject.uv6s = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.UV6Kind));
  39382. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.UV6Kind)) {
  39383. serializationObject.uv6s._updatable = true;
  39384. }
  39385. }
  39386. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.ColorKind)) {
  39387. serializationObject.colors = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.ColorKind));
  39388. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.ColorKind)) {
  39389. serializationObject.colors._updatable = true;
  39390. }
  39391. }
  39392. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesIndicesKind)) {
  39393. serializationObject.matricesIndices = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind));
  39394. serializationObject.matricesIndices._isExpanded = true;
  39395. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.MatricesIndicesKind)) {
  39396. serializationObject.matricesIndices._updatable = true;
  39397. }
  39398. }
  39399. if (this.isVerticesDataPresent(BABYLON.VertexBuffer.MatricesWeightsKind)) {
  39400. serializationObject.matricesWeights = this.toNumberArray(this.getVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind));
  39401. if (this.isVertexBufferUpdatable(BABYLON.VertexBuffer.MatricesWeightsKind)) {
  39402. serializationObject.matricesWeights._updatable = true;
  39403. }
  39404. }
  39405. serializationObject.indices = this.toNumberArray(this.getIndices());
  39406. return serializationObject;
  39407. };
  39408. // Statics
  39409. /**
  39410. * Extracts a clone of a mesh geometry
  39411. * @param mesh defines the source mesh
  39412. * @param id defines the unique ID of the new geometry object
  39413. * @returns the new geometry object
  39414. */
  39415. Geometry.ExtractFromMesh = function (mesh, id) {
  39416. var geometry = mesh._geometry;
  39417. if (!geometry) {
  39418. return null;
  39419. }
  39420. return geometry.copy(id);
  39421. };
  39422. /**
  39423. * You should now use Tools.RandomId(), this method is still here for legacy reasons.
  39424. * Implementation from http://stackoverflow.com/questions/105034/how-to-create-a-guid-uuid-in-javascript/2117523#answer-2117523
  39425. * Be aware Math.random() could cause collisions, but:
  39426. * "All but 6 of the 128 bits of the ID are randomly generated, which means that for any two ids, there's a 1 in 2^^122 (or 5.3x10^^36) chance they'll collide"
  39427. * @returns a string containing a new GUID
  39428. */
  39429. Geometry.RandomId = function () {
  39430. return BABYLON.Tools.RandomId();
  39431. };
  39432. /** @hidden */
  39433. Geometry._ImportGeometry = function (parsedGeometry, mesh) {
  39434. var scene = mesh.getScene();
  39435. // Geometry
  39436. var geometryId = parsedGeometry.geometryId;
  39437. if (geometryId) {
  39438. var geometry = scene.getGeometryByID(geometryId);
  39439. if (geometry) {
  39440. geometry.applyToMesh(mesh);
  39441. }
  39442. }
  39443. else if (parsedGeometry instanceof ArrayBuffer) {
  39444. var binaryInfo = mesh._binaryInfo;
  39445. if (binaryInfo.positionsAttrDesc && binaryInfo.positionsAttrDesc.count > 0) {
  39446. var positionsData = new Float32Array(parsedGeometry, binaryInfo.positionsAttrDesc.offset, binaryInfo.positionsAttrDesc.count);
  39447. mesh.setVerticesData(BABYLON.VertexBuffer.PositionKind, positionsData, false);
  39448. }
  39449. if (binaryInfo.normalsAttrDesc && binaryInfo.normalsAttrDesc.count > 0) {
  39450. var normalsData = new Float32Array(parsedGeometry, binaryInfo.normalsAttrDesc.offset, binaryInfo.normalsAttrDesc.count);
  39451. mesh.setVerticesData(BABYLON.VertexBuffer.NormalKind, normalsData, false);
  39452. }
  39453. if (binaryInfo.tangetsAttrDesc && binaryInfo.tangetsAttrDesc.count > 0) {
  39454. var tangentsData = new Float32Array(parsedGeometry, binaryInfo.tangetsAttrDesc.offset, binaryInfo.tangetsAttrDesc.count);
  39455. mesh.setVerticesData(BABYLON.VertexBuffer.TangentKind, tangentsData, false);
  39456. }
  39457. if (binaryInfo.uvsAttrDesc && binaryInfo.uvsAttrDesc.count > 0) {
  39458. var uvsData = new Float32Array(parsedGeometry, binaryInfo.uvsAttrDesc.offset, binaryInfo.uvsAttrDesc.count);
  39459. mesh.setVerticesData(BABYLON.VertexBuffer.UVKind, uvsData, false);
  39460. }
  39461. if (binaryInfo.uvs2AttrDesc && binaryInfo.uvs2AttrDesc.count > 0) {
  39462. var uvs2Data = new Float32Array(parsedGeometry, binaryInfo.uvs2AttrDesc.offset, binaryInfo.uvs2AttrDesc.count);
  39463. mesh.setVerticesData(BABYLON.VertexBuffer.UV2Kind, uvs2Data, false);
  39464. }
  39465. if (binaryInfo.uvs3AttrDesc && binaryInfo.uvs3AttrDesc.count > 0) {
  39466. var uvs3Data = new Float32Array(parsedGeometry, binaryInfo.uvs3AttrDesc.offset, binaryInfo.uvs3AttrDesc.count);
  39467. mesh.setVerticesData(BABYLON.VertexBuffer.UV3Kind, uvs3Data, false);
  39468. }
  39469. if (binaryInfo.uvs4AttrDesc && binaryInfo.uvs4AttrDesc.count > 0) {
  39470. var uvs4Data = new Float32Array(parsedGeometry, binaryInfo.uvs4AttrDesc.offset, binaryInfo.uvs4AttrDesc.count);
  39471. mesh.setVerticesData(BABYLON.VertexBuffer.UV4Kind, uvs4Data, false);
  39472. }
  39473. if (binaryInfo.uvs5AttrDesc && binaryInfo.uvs5AttrDesc.count > 0) {
  39474. var uvs5Data = new Float32Array(parsedGeometry, binaryInfo.uvs5AttrDesc.offset, binaryInfo.uvs5AttrDesc.count);
  39475. mesh.setVerticesData(BABYLON.VertexBuffer.UV5Kind, uvs5Data, false);
  39476. }
  39477. if (binaryInfo.uvs6AttrDesc && binaryInfo.uvs6AttrDesc.count > 0) {
  39478. var uvs6Data = new Float32Array(parsedGeometry, binaryInfo.uvs6AttrDesc.offset, binaryInfo.uvs6AttrDesc.count);
  39479. mesh.setVerticesData(BABYLON.VertexBuffer.UV6Kind, uvs6Data, false);
  39480. }
  39481. if (binaryInfo.colorsAttrDesc && binaryInfo.colorsAttrDesc.count > 0) {
  39482. var colorsData = new Float32Array(parsedGeometry, binaryInfo.colorsAttrDesc.offset, binaryInfo.colorsAttrDesc.count);
  39483. mesh.setVerticesData(BABYLON.VertexBuffer.ColorKind, colorsData, false, binaryInfo.colorsAttrDesc.stride);
  39484. }
  39485. if (binaryInfo.matricesIndicesAttrDesc && binaryInfo.matricesIndicesAttrDesc.count > 0) {
  39486. var matricesIndicesData = new Int32Array(parsedGeometry, binaryInfo.matricesIndicesAttrDesc.offset, binaryInfo.matricesIndicesAttrDesc.count);
  39487. var floatIndices = [];
  39488. for (var i = 0; i < matricesIndicesData.length; i++) {
  39489. var index = matricesIndicesData[i];
  39490. floatIndices.push(index & 0x000000FF);
  39491. floatIndices.push((index & 0x0000FF00) >> 8);
  39492. floatIndices.push((index & 0x00FF0000) >> 16);
  39493. floatIndices.push(index >> 24);
  39494. }
  39495. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, floatIndices, false);
  39496. }
  39497. if (binaryInfo.matricesWeightsAttrDesc && binaryInfo.matricesWeightsAttrDesc.count > 0) {
  39498. var matricesWeightsData = new Float32Array(parsedGeometry, binaryInfo.matricesWeightsAttrDesc.offset, binaryInfo.matricesWeightsAttrDesc.count);
  39499. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, matricesWeightsData, false);
  39500. }
  39501. if (binaryInfo.indicesAttrDesc && binaryInfo.indicesAttrDesc.count > 0) {
  39502. var indicesData = new Int32Array(parsedGeometry, binaryInfo.indicesAttrDesc.offset, binaryInfo.indicesAttrDesc.count);
  39503. mesh.setIndices(indicesData, null);
  39504. }
  39505. if (binaryInfo.subMeshesAttrDesc && binaryInfo.subMeshesAttrDesc.count > 0) {
  39506. var subMeshesData = new Int32Array(parsedGeometry, binaryInfo.subMeshesAttrDesc.offset, binaryInfo.subMeshesAttrDesc.count * 5);
  39507. mesh.subMeshes = [];
  39508. for (var i = 0; i < binaryInfo.subMeshesAttrDesc.count; i++) {
  39509. var materialIndex = subMeshesData[(i * 5) + 0];
  39510. var verticesStart = subMeshesData[(i * 5) + 1];
  39511. var verticesCount = subMeshesData[(i * 5) + 2];
  39512. var indexStart = subMeshesData[(i * 5) + 3];
  39513. var indexCount = subMeshesData[(i * 5) + 4];
  39514. BABYLON.SubMesh.AddToMesh(materialIndex, verticesStart, verticesCount, indexStart, indexCount, mesh);
  39515. }
  39516. }
  39517. }
  39518. else if (parsedGeometry.positions && parsedGeometry.normals && parsedGeometry.indices) {
  39519. mesh.setVerticesData(BABYLON.VertexBuffer.PositionKind, parsedGeometry.positions, parsedGeometry.positions._updatable);
  39520. mesh.setVerticesData(BABYLON.VertexBuffer.NormalKind, parsedGeometry.normals, parsedGeometry.normals._updatable);
  39521. if (parsedGeometry.tangents) {
  39522. mesh.setVerticesData(BABYLON.VertexBuffer.TangentKind, parsedGeometry.tangents, parsedGeometry.tangents._updatable);
  39523. }
  39524. if (parsedGeometry.uvs) {
  39525. mesh.setVerticesData(BABYLON.VertexBuffer.UVKind, parsedGeometry.uvs, parsedGeometry.uvs._updatable);
  39526. }
  39527. if (parsedGeometry.uvs2) {
  39528. mesh.setVerticesData(BABYLON.VertexBuffer.UV2Kind, parsedGeometry.uvs2, parsedGeometry.uvs2._updatable);
  39529. }
  39530. if (parsedGeometry.uvs3) {
  39531. mesh.setVerticesData(BABYLON.VertexBuffer.UV3Kind, parsedGeometry.uvs3, parsedGeometry.uvs3._updatable);
  39532. }
  39533. if (parsedGeometry.uvs4) {
  39534. mesh.setVerticesData(BABYLON.VertexBuffer.UV4Kind, parsedGeometry.uvs4, parsedGeometry.uvs4._updatable);
  39535. }
  39536. if (parsedGeometry.uvs5) {
  39537. mesh.setVerticesData(BABYLON.VertexBuffer.UV5Kind, parsedGeometry.uvs5, parsedGeometry.uvs5._updatable);
  39538. }
  39539. if (parsedGeometry.uvs6) {
  39540. mesh.setVerticesData(BABYLON.VertexBuffer.UV6Kind, parsedGeometry.uvs6, parsedGeometry.uvs6._updatable);
  39541. }
  39542. if (parsedGeometry.colors) {
  39543. mesh.setVerticesData(BABYLON.VertexBuffer.ColorKind, BABYLON.Color4.CheckColors4(parsedGeometry.colors, parsedGeometry.positions.length / 3), parsedGeometry.colors._updatable);
  39544. }
  39545. if (parsedGeometry.matricesIndices) {
  39546. if (!parsedGeometry.matricesIndices._isExpanded) {
  39547. var floatIndices = [];
  39548. for (var i = 0; i < parsedGeometry.matricesIndices.length; i++) {
  39549. var matricesIndex = parsedGeometry.matricesIndices[i];
  39550. floatIndices.push(matricesIndex & 0x000000FF);
  39551. floatIndices.push((matricesIndex & 0x0000FF00) >> 8);
  39552. floatIndices.push((matricesIndex & 0x00FF0000) >> 16);
  39553. floatIndices.push(matricesIndex >> 24);
  39554. }
  39555. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, floatIndices, parsedGeometry.matricesIndices._updatable);
  39556. }
  39557. else {
  39558. delete parsedGeometry.matricesIndices._isExpanded;
  39559. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, parsedGeometry.matricesIndices, parsedGeometry.matricesIndices._updatable);
  39560. }
  39561. }
  39562. if (parsedGeometry.matricesIndicesExtra) {
  39563. if (!parsedGeometry.matricesIndicesExtra._isExpanded) {
  39564. var floatIndices = [];
  39565. for (var i = 0; i < parsedGeometry.matricesIndicesExtra.length; i++) {
  39566. var matricesIndex = parsedGeometry.matricesIndicesExtra[i];
  39567. floatIndices.push(matricesIndex & 0x000000FF);
  39568. floatIndices.push((matricesIndex & 0x0000FF00) >> 8);
  39569. floatIndices.push((matricesIndex & 0x00FF0000) >> 16);
  39570. floatIndices.push(matricesIndex >> 24);
  39571. }
  39572. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, floatIndices, parsedGeometry.matricesIndicesExtra._updatable);
  39573. }
  39574. else {
  39575. delete parsedGeometry.matricesIndices._isExpanded;
  39576. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, parsedGeometry.matricesIndicesExtra, parsedGeometry.matricesIndicesExtra._updatable);
  39577. }
  39578. }
  39579. if (parsedGeometry.matricesWeights) {
  39580. Geometry._CleanMatricesWeights(parsedGeometry, mesh);
  39581. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsKind, parsedGeometry.matricesWeights, parsedGeometry.matricesWeights._updatable);
  39582. }
  39583. if (parsedGeometry.matricesWeightsExtra) {
  39584. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesWeightsExtraKind, parsedGeometry.matricesWeightsExtra, parsedGeometry.matricesWeights._updatable);
  39585. }
  39586. mesh.setIndices(parsedGeometry.indices, null);
  39587. }
  39588. // SubMeshes
  39589. if (parsedGeometry.subMeshes) {
  39590. mesh.subMeshes = [];
  39591. for (var subIndex = 0; subIndex < parsedGeometry.subMeshes.length; subIndex++) {
  39592. var parsedSubMesh = parsedGeometry.subMeshes[subIndex];
  39593. BABYLON.SubMesh.AddToMesh(parsedSubMesh.materialIndex, parsedSubMesh.verticesStart, parsedSubMesh.verticesCount, parsedSubMesh.indexStart, parsedSubMesh.indexCount, mesh);
  39594. }
  39595. }
  39596. // Flat shading
  39597. if (mesh._shouldGenerateFlatShading) {
  39598. mesh.convertToFlatShadedMesh();
  39599. delete mesh._shouldGenerateFlatShading;
  39600. }
  39601. // Update
  39602. mesh.computeWorldMatrix(true);
  39603. scene.onMeshImportedObservable.notifyObservers(mesh);
  39604. };
  39605. Geometry._CleanMatricesWeights = function (parsedGeometry, mesh) {
  39606. var epsilon = 1e-3;
  39607. if (!BABYLON.SceneLoader.CleanBoneMatrixWeights) {
  39608. return;
  39609. }
  39610. var noInfluenceBoneIndex = 0.0;
  39611. if (parsedGeometry.skeletonId > -1) {
  39612. var skeleton = mesh.getScene().getLastSkeletonByID(parsedGeometry.skeletonId);
  39613. if (!skeleton) {
  39614. return;
  39615. }
  39616. noInfluenceBoneIndex = skeleton.bones.length;
  39617. }
  39618. else {
  39619. return;
  39620. }
  39621. var matricesIndices = mesh.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind);
  39622. var matricesIndicesExtra = mesh.getVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  39623. var matricesWeights = parsedGeometry.matricesWeights;
  39624. var matricesWeightsExtra = parsedGeometry.matricesWeightsExtra;
  39625. var influencers = parsedGeometry.numBoneInfluencer;
  39626. var size = matricesWeights.length;
  39627. for (var i = 0; i < size; i += 4) {
  39628. var weight = 0.0;
  39629. var firstZeroWeight = -1;
  39630. for (var j = 0; j < 4; j++) {
  39631. var w = matricesWeights[i + j];
  39632. weight += w;
  39633. if (w < epsilon && firstZeroWeight < 0) {
  39634. firstZeroWeight = j;
  39635. }
  39636. }
  39637. if (matricesWeightsExtra) {
  39638. for (var j = 0; j < 4; j++) {
  39639. var w = matricesWeightsExtra[i + j];
  39640. weight += w;
  39641. if (w < epsilon && firstZeroWeight < 0) {
  39642. firstZeroWeight = j + 4;
  39643. }
  39644. }
  39645. }
  39646. if (firstZeroWeight < 0 || firstZeroWeight > (influencers - 1)) {
  39647. firstZeroWeight = influencers - 1;
  39648. }
  39649. if (weight > epsilon) {
  39650. var mweight = 1.0 / weight;
  39651. for (var j = 0; j < 4; j++) {
  39652. matricesWeights[i + j] *= mweight;
  39653. }
  39654. if (matricesWeightsExtra) {
  39655. for (var j = 0; j < 4; j++) {
  39656. matricesWeightsExtra[i + j] *= mweight;
  39657. }
  39658. }
  39659. }
  39660. else {
  39661. if (firstZeroWeight >= 4) {
  39662. matricesWeightsExtra[i + firstZeroWeight - 4] = 1.0 - weight;
  39663. matricesIndicesExtra[i + firstZeroWeight - 4] = noInfluenceBoneIndex;
  39664. }
  39665. else {
  39666. matricesWeights[i + firstZeroWeight] = 1.0 - weight;
  39667. matricesIndices[i + firstZeroWeight] = noInfluenceBoneIndex;
  39668. }
  39669. }
  39670. }
  39671. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesKind, matricesIndices);
  39672. if (parsedGeometry.matricesWeightsExtra) {
  39673. mesh.setVerticesData(BABYLON.VertexBuffer.MatricesIndicesExtraKind, matricesIndicesExtra);
  39674. }
  39675. };
  39676. /**
  39677. * Create a new geometry from persisted data (Using .babylon file format)
  39678. * @param parsedVertexData defines the persisted data
  39679. * @param scene defines the hosting scene
  39680. * @param rootUrl defines the root url to use to load assets (like delayed data)
  39681. * @returns the new geometry object
  39682. */
  39683. Geometry.Parse = function (parsedVertexData, scene, rootUrl) {
  39684. if (scene.getGeometryByID(parsedVertexData.id)) {
  39685. return null; // null since geometry could be something else than a box...
  39686. }
  39687. var geometry = new Geometry(parsedVertexData.id, scene, undefined, parsedVertexData.updatable);
  39688. if (BABYLON.Tags) {
  39689. BABYLON.Tags.AddTagsTo(geometry, parsedVertexData.tags);
  39690. }
  39691. if (parsedVertexData.delayLoadingFile) {
  39692. geometry.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  39693. geometry.delayLoadingFile = rootUrl + parsedVertexData.delayLoadingFile;
  39694. geometry._boundingInfo = new BABYLON.BoundingInfo(BABYLON.Vector3.FromArray(parsedVertexData.boundingBoxMinimum), BABYLON.Vector3.FromArray(parsedVertexData.boundingBoxMaximum));
  39695. geometry._delayInfo = [];
  39696. if (parsedVertexData.hasUVs) {
  39697. geometry._delayInfo.push(BABYLON.VertexBuffer.UVKind);
  39698. }
  39699. if (parsedVertexData.hasUVs2) {
  39700. geometry._delayInfo.push(BABYLON.VertexBuffer.UV2Kind);
  39701. }
  39702. if (parsedVertexData.hasUVs3) {
  39703. geometry._delayInfo.push(BABYLON.VertexBuffer.UV3Kind);
  39704. }
  39705. if (parsedVertexData.hasUVs4) {
  39706. geometry._delayInfo.push(BABYLON.VertexBuffer.UV4Kind);
  39707. }
  39708. if (parsedVertexData.hasUVs5) {
  39709. geometry._delayInfo.push(BABYLON.VertexBuffer.UV5Kind);
  39710. }
  39711. if (parsedVertexData.hasUVs6) {
  39712. geometry._delayInfo.push(BABYLON.VertexBuffer.UV6Kind);
  39713. }
  39714. if (parsedVertexData.hasColors) {
  39715. geometry._delayInfo.push(BABYLON.VertexBuffer.ColorKind);
  39716. }
  39717. if (parsedVertexData.hasMatricesIndices) {
  39718. geometry._delayInfo.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  39719. }
  39720. if (parsedVertexData.hasMatricesWeights) {
  39721. geometry._delayInfo.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  39722. }
  39723. geometry._delayLoadingFunction = BABYLON.VertexData.ImportVertexData;
  39724. }
  39725. else {
  39726. BABYLON.VertexData.ImportVertexData(parsedVertexData, geometry);
  39727. }
  39728. scene.pushGeometry(geometry, true);
  39729. return geometry;
  39730. };
  39731. return Geometry;
  39732. }());
  39733. BABYLON.Geometry = Geometry;
  39734. // Primitives
  39735. /// Abstract class
  39736. /**
  39737. * Abstract class used to provide common services for all typed geometries
  39738. * @hidden
  39739. */
  39740. var _PrimitiveGeometry = /** @class */ (function (_super) {
  39741. __extends(_PrimitiveGeometry, _super);
  39742. /**
  39743. * Creates a new typed geometry
  39744. * @param id defines the unique ID of the geometry
  39745. * @param scene defines the hosting scene
  39746. * @param _canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  39747. * @param mesh defines the hosting mesh (can be null)
  39748. */
  39749. function _PrimitiveGeometry(id, scene, _canBeRegenerated, mesh) {
  39750. if (_canBeRegenerated === void 0) { _canBeRegenerated = false; }
  39751. if (mesh === void 0) { mesh = null; }
  39752. var _this = _super.call(this, id, scene, undefined, false, mesh) || this;
  39753. _this._canBeRegenerated = _canBeRegenerated;
  39754. _this._beingRegenerated = true;
  39755. _this.regenerate();
  39756. _this._beingRegenerated = false;
  39757. return _this;
  39758. }
  39759. /**
  39760. * Gets a value indicating if the geometry supports being regenerated with new parameters (false by default)
  39761. * @returns true if the geometry can be regenerated
  39762. */
  39763. _PrimitiveGeometry.prototype.canBeRegenerated = function () {
  39764. return this._canBeRegenerated;
  39765. };
  39766. /**
  39767. * If the geometry supports regeneration, the function will recreates the geometry with updated parameter values
  39768. */
  39769. _PrimitiveGeometry.prototype.regenerate = function () {
  39770. if (!this._canBeRegenerated) {
  39771. return;
  39772. }
  39773. this._beingRegenerated = true;
  39774. this.setAllVerticesData(this._regenerateVertexData(), false);
  39775. this._beingRegenerated = false;
  39776. };
  39777. /**
  39778. * Clone the geometry
  39779. * @param id defines the unique ID of the new geometry
  39780. * @returns the new geometry
  39781. */
  39782. _PrimitiveGeometry.prototype.asNewGeometry = function (id) {
  39783. return _super.prototype.copy.call(this, id);
  39784. };
  39785. // overrides
  39786. _PrimitiveGeometry.prototype.setAllVerticesData = function (vertexData, updatable) {
  39787. if (!this._beingRegenerated) {
  39788. return;
  39789. }
  39790. _super.prototype.setAllVerticesData.call(this, vertexData, false);
  39791. };
  39792. _PrimitiveGeometry.prototype.setVerticesData = function (kind, data, updatable) {
  39793. if (!this._beingRegenerated) {
  39794. return;
  39795. }
  39796. _super.prototype.setVerticesData.call(this, kind, data, false);
  39797. };
  39798. // to override
  39799. /** @hidden */
  39800. _PrimitiveGeometry.prototype._regenerateVertexData = function () {
  39801. throw new Error("Abstract method");
  39802. };
  39803. _PrimitiveGeometry.prototype.copy = function (id) {
  39804. throw new Error("Must be overriden in sub-classes.");
  39805. };
  39806. _PrimitiveGeometry.prototype.serialize = function () {
  39807. var serializationObject = _super.prototype.serialize.call(this);
  39808. serializationObject.canBeRegenerated = this.canBeRegenerated();
  39809. return serializationObject;
  39810. };
  39811. return _PrimitiveGeometry;
  39812. }(Geometry));
  39813. BABYLON._PrimitiveGeometry = _PrimitiveGeometry;
  39814. /**
  39815. * Creates a ribbon geometry
  39816. * @description See http://doc.babylonjs.com/how_to/ribbon_tutorial, http://doc.babylonjs.com/resources/maths_make_ribbons
  39817. */
  39818. var RibbonGeometry = /** @class */ (function (_super) {
  39819. __extends(RibbonGeometry, _super);
  39820. /**
  39821. * Creates a ribbon geometry
  39822. * @param id defines the unique ID of the geometry
  39823. * @param scene defines the hosting scene
  39824. * @param pathArray defines the array of paths to use
  39825. * @param closeArray defines if the last path and the first path must be joined
  39826. * @param closePath defines if the last and first points of each path in your pathArray must be joined
  39827. * @param offset defines the offset between points
  39828. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  39829. * @param mesh defines the hosting mesh (can be null)
  39830. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39831. */
  39832. function RibbonGeometry(id, scene,
  39833. /**
  39834. * Defines the array of paths to use
  39835. */
  39836. pathArray,
  39837. /**
  39838. * Defines if the last and first points of each path in your pathArray must be joined
  39839. */
  39840. closeArray,
  39841. /**
  39842. * Defines if the last and first points of each path in your pathArray must be joined
  39843. */
  39844. closePath,
  39845. /**
  39846. * Defines the offset between points
  39847. */
  39848. offset, canBeRegenerated, mesh,
  39849. /**
  39850. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39851. */
  39852. side) {
  39853. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  39854. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  39855. _this.pathArray = pathArray;
  39856. _this.closeArray = closeArray;
  39857. _this.closePath = closePath;
  39858. _this.offset = offset;
  39859. _this.side = side;
  39860. return _this;
  39861. }
  39862. /** @hidden */
  39863. RibbonGeometry.prototype._regenerateVertexData = function () {
  39864. return BABYLON.VertexData.CreateRibbon({ pathArray: this.pathArray, closeArray: this.closeArray, closePath: this.closePath, offset: this.offset, sideOrientation: this.side });
  39865. };
  39866. RibbonGeometry.prototype.copy = function (id) {
  39867. return new RibbonGeometry(id, this.getScene(), this.pathArray, this.closeArray, this.closePath, this.offset, this.canBeRegenerated(), undefined, this.side);
  39868. };
  39869. return RibbonGeometry;
  39870. }(_PrimitiveGeometry));
  39871. BABYLON.RibbonGeometry = RibbonGeometry;
  39872. /**
  39873. * Creates a box geometry
  39874. * @description see http://doc.babylonjs.com/how_to/set_shapes#box
  39875. */
  39876. var BoxGeometry = /** @class */ (function (_super) {
  39877. __extends(BoxGeometry, _super);
  39878. /**
  39879. * Creates a box geometry
  39880. * @param id defines the unique ID of the geometry
  39881. * @param scene defines the hosting scene
  39882. * @param size defines the zise of the box (width, height and depth are the same)
  39883. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  39884. * @param mesh defines the hosting mesh (can be null)
  39885. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39886. */
  39887. function BoxGeometry(id, scene,
  39888. /**
  39889. * Defines the zise of the box (width, height and depth are the same)
  39890. */
  39891. size, canBeRegenerated, mesh,
  39892. /**
  39893. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39894. */
  39895. side) {
  39896. if (mesh === void 0) { mesh = null; }
  39897. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  39898. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  39899. _this.size = size;
  39900. _this.side = side;
  39901. return _this;
  39902. }
  39903. /** @hidden */
  39904. BoxGeometry.prototype._regenerateVertexData = function () {
  39905. return BABYLON.VertexData.CreateBox({ size: this.size, sideOrientation: this.side });
  39906. };
  39907. BoxGeometry.prototype.copy = function (id) {
  39908. return new BoxGeometry(id, this.getScene(), this.size, this.canBeRegenerated(), undefined, this.side);
  39909. };
  39910. BoxGeometry.prototype.serialize = function () {
  39911. var serializationObject = _super.prototype.serialize.call(this);
  39912. serializationObject.size = this.size;
  39913. return serializationObject;
  39914. };
  39915. BoxGeometry.Parse = function (parsedBox, scene) {
  39916. if (scene.getGeometryByID(parsedBox.id)) {
  39917. return null; // null since geometry could be something else than a box...
  39918. }
  39919. var box = new BoxGeometry(parsedBox.id, scene, parsedBox.size, parsedBox.canBeRegenerated, null);
  39920. if (BABYLON.Tags) {
  39921. BABYLON.Tags.AddTagsTo(box, parsedBox.tags);
  39922. }
  39923. scene.pushGeometry(box, true);
  39924. return box;
  39925. };
  39926. return BoxGeometry;
  39927. }(_PrimitiveGeometry));
  39928. BABYLON.BoxGeometry = BoxGeometry;
  39929. /**
  39930. * Creates a sphere geometry
  39931. * @description see http://doc.babylonjs.com/how_to/set_shapes#sphere
  39932. */
  39933. var SphereGeometry = /** @class */ (function (_super) {
  39934. __extends(SphereGeometry, _super);
  39935. /**
  39936. * Create a new sphere geometry
  39937. * @param id defines the unique ID of the geometry
  39938. * @param scene defines the hosting scene
  39939. * @param segments defines the number of segments to use to create the sphere
  39940. * @param diameter defines the diameter of the sphere
  39941. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  39942. * @param mesh defines the hosting mesh (can be null)
  39943. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39944. */
  39945. function SphereGeometry(id, scene,
  39946. /**
  39947. * Defines the number of segments to use to create the sphere
  39948. */
  39949. segments,
  39950. /**
  39951. * Defines the diameter of the sphere
  39952. */
  39953. diameter, canBeRegenerated, mesh,
  39954. /**
  39955. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  39956. */
  39957. side) {
  39958. if (mesh === void 0) { mesh = null; }
  39959. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  39960. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  39961. _this.segments = segments;
  39962. _this.diameter = diameter;
  39963. _this.side = side;
  39964. return _this;
  39965. }
  39966. /** @hidden */
  39967. SphereGeometry.prototype._regenerateVertexData = function () {
  39968. return BABYLON.VertexData.CreateSphere({ segments: this.segments, diameter: this.diameter, sideOrientation: this.side });
  39969. };
  39970. SphereGeometry.prototype.copy = function (id) {
  39971. return new SphereGeometry(id, this.getScene(), this.segments, this.diameter, this.canBeRegenerated(), null, this.side);
  39972. };
  39973. SphereGeometry.prototype.serialize = function () {
  39974. var serializationObject = _super.prototype.serialize.call(this);
  39975. serializationObject.segments = this.segments;
  39976. serializationObject.diameter = this.diameter;
  39977. return serializationObject;
  39978. };
  39979. SphereGeometry.Parse = function (parsedSphere, scene) {
  39980. if (scene.getGeometryByID(parsedSphere.id)) {
  39981. return null; // null since geometry could be something else than a sphere...
  39982. }
  39983. var sphere = new SphereGeometry(parsedSphere.id, scene, parsedSphere.segments, parsedSphere.diameter, parsedSphere.canBeRegenerated, null);
  39984. if (BABYLON.Tags) {
  39985. BABYLON.Tags.AddTagsTo(sphere, parsedSphere.tags);
  39986. }
  39987. scene.pushGeometry(sphere, true);
  39988. return sphere;
  39989. };
  39990. return SphereGeometry;
  39991. }(_PrimitiveGeometry));
  39992. BABYLON.SphereGeometry = SphereGeometry;
  39993. /**
  39994. * Creates a disc geometry
  39995. * @description see http://doc.babylonjs.com/how_to/set_shapes#disc-or-regular-polygon
  39996. */
  39997. var DiscGeometry = /** @class */ (function (_super) {
  39998. __extends(DiscGeometry, _super);
  39999. /**
  40000. * Creates a new disc geometry
  40001. * @param id defines the unique ID of the geometry
  40002. * @param scene defines the hosting scene
  40003. * @param radius defines the radius of the disc
  40004. * @param tessellation defines the tesselation factor to apply to the disc
  40005. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40006. * @param mesh defines the hosting mesh (can be null)
  40007. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40008. */
  40009. function DiscGeometry(id, scene,
  40010. /**
  40011. * Defines the radius of the disc
  40012. */
  40013. radius,
  40014. /**
  40015. * Defines the tesselation factor to apply to the disc
  40016. */
  40017. tessellation, canBeRegenerated, mesh,
  40018. /**
  40019. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40020. */
  40021. side) {
  40022. if (mesh === void 0) { mesh = null; }
  40023. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  40024. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40025. _this.radius = radius;
  40026. _this.tessellation = tessellation;
  40027. _this.side = side;
  40028. return _this;
  40029. }
  40030. /** @hidden */
  40031. DiscGeometry.prototype._regenerateVertexData = function () {
  40032. return BABYLON.VertexData.CreateDisc({ radius: this.radius, tessellation: this.tessellation, sideOrientation: this.side });
  40033. };
  40034. DiscGeometry.prototype.copy = function (id) {
  40035. return new DiscGeometry(id, this.getScene(), this.radius, this.tessellation, this.canBeRegenerated(), null, this.side);
  40036. };
  40037. return DiscGeometry;
  40038. }(_PrimitiveGeometry));
  40039. BABYLON.DiscGeometry = DiscGeometry;
  40040. /**
  40041. * Creates a new cylinder geometry
  40042. * @description see http://doc.babylonjs.com/how_to/set_shapes#cylinder-or-cone
  40043. */
  40044. var CylinderGeometry = /** @class */ (function (_super) {
  40045. __extends(CylinderGeometry, _super);
  40046. /**
  40047. * Creates a new cylinder geometry
  40048. * @param id defines the unique ID of the geometry
  40049. * @param scene defines the hosting scene
  40050. * @param height defines the height of the cylinder
  40051. * @param diameterTop defines the diameter of the cylinder's top cap
  40052. * @param diameterBottom defines the diameter of the cylinder's bottom cap
  40053. * @param tessellation defines the tessellation factor to apply to the cylinder (number of radial sides)
  40054. * @param subdivisions defines the number of subdivisions to apply to the cylinder (number of rings) (1 by default)
  40055. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40056. * @param mesh defines the hosting mesh (can be null)
  40057. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40058. */
  40059. function CylinderGeometry(id, scene,
  40060. /**
  40061. * Defines the height of the cylinder
  40062. */
  40063. height,
  40064. /**
  40065. * Defines the diameter of the cylinder's top cap
  40066. */
  40067. diameterTop,
  40068. /**
  40069. * Defines the diameter of the cylinder's bottom cap
  40070. */
  40071. diameterBottom,
  40072. /**
  40073. * Defines the tessellation factor to apply to the cylinder
  40074. */
  40075. tessellation,
  40076. /**
  40077. * Defines the number of subdivisions to apply to the cylinder (1 by default)
  40078. */
  40079. subdivisions, canBeRegenerated, mesh,
  40080. /**
  40081. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40082. */
  40083. side) {
  40084. if (subdivisions === void 0) { subdivisions = 1; }
  40085. if (mesh === void 0) { mesh = null; }
  40086. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  40087. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40088. _this.height = height;
  40089. _this.diameterTop = diameterTop;
  40090. _this.diameterBottom = diameterBottom;
  40091. _this.tessellation = tessellation;
  40092. _this.subdivisions = subdivisions;
  40093. _this.side = side;
  40094. return _this;
  40095. }
  40096. /** @hidden */
  40097. CylinderGeometry.prototype._regenerateVertexData = function () {
  40098. return BABYLON.VertexData.CreateCylinder({ height: this.height, diameterTop: this.diameterTop, diameterBottom: this.diameterBottom, tessellation: this.tessellation, subdivisions: this.subdivisions, sideOrientation: this.side });
  40099. };
  40100. CylinderGeometry.prototype.copy = function (id) {
  40101. return new CylinderGeometry(id, this.getScene(), this.height, this.diameterTop, this.diameterBottom, this.tessellation, this.subdivisions, this.canBeRegenerated(), null, this.side);
  40102. };
  40103. CylinderGeometry.prototype.serialize = function () {
  40104. var serializationObject = _super.prototype.serialize.call(this);
  40105. serializationObject.height = this.height;
  40106. serializationObject.diameterTop = this.diameterTop;
  40107. serializationObject.diameterBottom = this.diameterBottom;
  40108. serializationObject.tessellation = this.tessellation;
  40109. return serializationObject;
  40110. };
  40111. CylinderGeometry.Parse = function (parsedCylinder, scene) {
  40112. if (scene.getGeometryByID(parsedCylinder.id)) {
  40113. return null; // null since geometry could be something else than a cylinder...
  40114. }
  40115. var cylinder = new CylinderGeometry(parsedCylinder.id, scene, parsedCylinder.height, parsedCylinder.diameterTop, parsedCylinder.diameterBottom, parsedCylinder.tessellation, parsedCylinder.subdivisions, parsedCylinder.canBeRegenerated, null);
  40116. if (BABYLON.Tags) {
  40117. BABYLON.Tags.AddTagsTo(cylinder, parsedCylinder.tags);
  40118. }
  40119. scene.pushGeometry(cylinder, true);
  40120. return cylinder;
  40121. };
  40122. return CylinderGeometry;
  40123. }(_PrimitiveGeometry));
  40124. BABYLON.CylinderGeometry = CylinderGeometry;
  40125. /**
  40126. * Creates a new torus geometry
  40127. * @description see http://doc.babylonjs.com/how_to/set_shapes#torus
  40128. */
  40129. var TorusGeometry = /** @class */ (function (_super) {
  40130. __extends(TorusGeometry, _super);
  40131. /**
  40132. * Creates a new torus geometry
  40133. * @param id defines the unique ID of the geometry
  40134. * @param scene defines the hosting scene
  40135. * @param diameter defines the diameter of the torus
  40136. * @param thickness defines the thickness of the torus (ie. internal diameter)
  40137. * @param tessellation defines the tesselation factor to apply to the torus (number of segments along the circle)
  40138. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40139. * @param mesh defines the hosting mesh (can be null)
  40140. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40141. */
  40142. function TorusGeometry(id, scene,
  40143. /**
  40144. * Defines the diameter of the torus
  40145. */
  40146. diameter,
  40147. /**
  40148. * Defines the thickness of the torus (ie. internal diameter)
  40149. */
  40150. thickness,
  40151. /**
  40152. * Defines the tesselation factor to apply to the torus
  40153. */
  40154. tessellation, canBeRegenerated, mesh,
  40155. /**
  40156. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40157. */
  40158. side) {
  40159. if (mesh === void 0) { mesh = null; }
  40160. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  40161. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40162. _this.diameter = diameter;
  40163. _this.thickness = thickness;
  40164. _this.tessellation = tessellation;
  40165. _this.side = side;
  40166. return _this;
  40167. }
  40168. /** @hidden */
  40169. TorusGeometry.prototype._regenerateVertexData = function () {
  40170. return BABYLON.VertexData.CreateTorus({ diameter: this.diameter, thickness: this.thickness, tessellation: this.tessellation, sideOrientation: this.side });
  40171. };
  40172. TorusGeometry.prototype.copy = function (id) {
  40173. return new TorusGeometry(id, this.getScene(), this.diameter, this.thickness, this.tessellation, this.canBeRegenerated(), null, this.side);
  40174. };
  40175. TorusGeometry.prototype.serialize = function () {
  40176. var serializationObject = _super.prototype.serialize.call(this);
  40177. serializationObject.diameter = this.diameter;
  40178. serializationObject.thickness = this.thickness;
  40179. serializationObject.tessellation = this.tessellation;
  40180. return serializationObject;
  40181. };
  40182. TorusGeometry.Parse = function (parsedTorus, scene) {
  40183. if (scene.getGeometryByID(parsedTorus.id)) {
  40184. return null; // null since geometry could be something else than a torus...
  40185. }
  40186. var torus = new TorusGeometry(parsedTorus.id, scene, parsedTorus.diameter, parsedTorus.thickness, parsedTorus.tessellation, parsedTorus.canBeRegenerated, null);
  40187. if (BABYLON.Tags) {
  40188. BABYLON.Tags.AddTagsTo(torus, parsedTorus.tags);
  40189. }
  40190. scene.pushGeometry(torus, true);
  40191. return torus;
  40192. };
  40193. return TorusGeometry;
  40194. }(_PrimitiveGeometry));
  40195. BABYLON.TorusGeometry = TorusGeometry;
  40196. /**
  40197. * Creates a new ground geometry
  40198. * @description see http://doc.babylonjs.com/how_to/set_shapes#ground
  40199. */
  40200. var GroundGeometry = /** @class */ (function (_super) {
  40201. __extends(GroundGeometry, _super);
  40202. /**
  40203. * Creates a new ground geometry
  40204. * @param id defines the unique ID of the geometry
  40205. * @param scene defines the hosting scene
  40206. * @param width defines the width of the ground
  40207. * @param height defines the height of the ground
  40208. * @param subdivisions defines the subdivisions to apply to the ground
  40209. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40210. * @param mesh defines the hosting mesh (can be null)
  40211. */
  40212. function GroundGeometry(id, scene,
  40213. /**
  40214. * Defines the width of the ground
  40215. */
  40216. width,
  40217. /**
  40218. * Defines the height of the ground
  40219. */
  40220. height,
  40221. /**
  40222. * Defines the subdivisions to apply to the ground
  40223. */
  40224. subdivisions, canBeRegenerated, mesh) {
  40225. if (mesh === void 0) { mesh = null; }
  40226. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40227. _this.width = width;
  40228. _this.height = height;
  40229. _this.subdivisions = subdivisions;
  40230. return _this;
  40231. }
  40232. /** @hidden */
  40233. GroundGeometry.prototype._regenerateVertexData = function () {
  40234. return BABYLON.VertexData.CreateGround({ width: this.width, height: this.height, subdivisions: this.subdivisions });
  40235. };
  40236. GroundGeometry.prototype.copy = function (id) {
  40237. return new GroundGeometry(id, this.getScene(), this.width, this.height, this.subdivisions, this.canBeRegenerated(), null);
  40238. };
  40239. GroundGeometry.prototype.serialize = function () {
  40240. var serializationObject = _super.prototype.serialize.call(this);
  40241. serializationObject.width = this.width;
  40242. serializationObject.height = this.height;
  40243. serializationObject.subdivisions = this.subdivisions;
  40244. return serializationObject;
  40245. };
  40246. GroundGeometry.Parse = function (parsedGround, scene) {
  40247. if (scene.getGeometryByID(parsedGround.id)) {
  40248. return null; // null since geometry could be something else than a ground...
  40249. }
  40250. var ground = new GroundGeometry(parsedGround.id, scene, parsedGround.width, parsedGround.height, parsedGround.subdivisions, parsedGround.canBeRegenerated, null);
  40251. if (BABYLON.Tags) {
  40252. BABYLON.Tags.AddTagsTo(ground, parsedGround.tags);
  40253. }
  40254. scene.pushGeometry(ground, true);
  40255. return ground;
  40256. };
  40257. return GroundGeometry;
  40258. }(_PrimitiveGeometry));
  40259. BABYLON.GroundGeometry = GroundGeometry;
  40260. /**
  40261. * Creates a tiled ground geometry
  40262. * @description see http://doc.babylonjs.com/how_to/set_shapes#tiled-ground
  40263. */
  40264. var TiledGroundGeometry = /** @class */ (function (_super) {
  40265. __extends(TiledGroundGeometry, _super);
  40266. /**
  40267. * Creates a tiled ground geometry
  40268. * @param id defines the unique ID of the geometry
  40269. * @param scene defines the hosting scene
  40270. * @param xmin defines the minimum value on X axis
  40271. * @param zmin defines the minimum value on Z axis
  40272. * @param xmax defines the maximum value on X axis
  40273. * @param zmax defines the maximum value on Z axis
  40274. * @param subdivisions defines the subdivisions to apply to the ground (number of subdivisions (tiles) on the height and the width of the map)
  40275. * @param precision defines the precision to use when computing the tiles
  40276. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40277. * @param mesh defines the hosting mesh (can be null)
  40278. */
  40279. function TiledGroundGeometry(id, scene,
  40280. /**
  40281. * Defines the minimum value on X axis
  40282. */
  40283. xmin,
  40284. /**
  40285. * Defines the minimum value on Z axis
  40286. */
  40287. zmin,
  40288. /**
  40289. * Defines the maximum value on X axis
  40290. */
  40291. xmax,
  40292. /**
  40293. * Defines the maximum value on Z axis
  40294. */
  40295. zmax,
  40296. /**
  40297. * Defines the subdivisions to apply to the ground
  40298. */
  40299. subdivisions,
  40300. /**
  40301. * Defines the precision to use when computing the tiles
  40302. */
  40303. precision, canBeRegenerated, mesh) {
  40304. if (mesh === void 0) { mesh = null; }
  40305. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40306. _this.xmin = xmin;
  40307. _this.zmin = zmin;
  40308. _this.xmax = xmax;
  40309. _this.zmax = zmax;
  40310. _this.subdivisions = subdivisions;
  40311. _this.precision = precision;
  40312. return _this;
  40313. }
  40314. /** @hidden */
  40315. TiledGroundGeometry.prototype._regenerateVertexData = function () {
  40316. return BABYLON.VertexData.CreateTiledGround({ xmin: this.xmin, zmin: this.zmin, xmax: this.xmax, zmax: this.zmax, subdivisions: this.subdivisions, precision: this.precision });
  40317. };
  40318. TiledGroundGeometry.prototype.copy = function (id) {
  40319. return new TiledGroundGeometry(id, this.getScene(), this.xmin, this.zmin, this.xmax, this.zmax, this.subdivisions, this.precision, this.canBeRegenerated(), null);
  40320. };
  40321. return TiledGroundGeometry;
  40322. }(_PrimitiveGeometry));
  40323. BABYLON.TiledGroundGeometry = TiledGroundGeometry;
  40324. /**
  40325. * Creates a plane geometry
  40326. * @description see http://doc.babylonjs.com/how_to/set_shapes#plane
  40327. */
  40328. var PlaneGeometry = /** @class */ (function (_super) {
  40329. __extends(PlaneGeometry, _super);
  40330. /**
  40331. * Creates a plane geometry
  40332. * @param id defines the unique ID of the geometry
  40333. * @param scene defines the hosting scene
  40334. * @param size defines the size of the plane (width === height)
  40335. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40336. * @param mesh defines the hosting mesh (can be null)
  40337. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40338. */
  40339. function PlaneGeometry(id, scene,
  40340. /**
  40341. * Defines the size of the plane (width === height)
  40342. */
  40343. size, canBeRegenerated, mesh,
  40344. /**
  40345. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40346. */
  40347. side) {
  40348. if (mesh === void 0) { mesh = null; }
  40349. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  40350. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40351. _this.size = size;
  40352. _this.side = side;
  40353. return _this;
  40354. }
  40355. /** @hidden */
  40356. PlaneGeometry.prototype._regenerateVertexData = function () {
  40357. return BABYLON.VertexData.CreatePlane({ size: this.size, sideOrientation: this.side });
  40358. };
  40359. PlaneGeometry.prototype.copy = function (id) {
  40360. return new PlaneGeometry(id, this.getScene(), this.size, this.canBeRegenerated(), null, this.side);
  40361. };
  40362. PlaneGeometry.prototype.serialize = function () {
  40363. var serializationObject = _super.prototype.serialize.call(this);
  40364. serializationObject.size = this.size;
  40365. return serializationObject;
  40366. };
  40367. PlaneGeometry.Parse = function (parsedPlane, scene) {
  40368. if (scene.getGeometryByID(parsedPlane.id)) {
  40369. return null; // null since geometry could be something else than a ground...
  40370. }
  40371. var plane = new PlaneGeometry(parsedPlane.id, scene, parsedPlane.size, parsedPlane.canBeRegenerated, null);
  40372. if (BABYLON.Tags) {
  40373. BABYLON.Tags.AddTagsTo(plane, parsedPlane.tags);
  40374. }
  40375. scene.pushGeometry(plane, true);
  40376. return plane;
  40377. };
  40378. return PlaneGeometry;
  40379. }(_PrimitiveGeometry));
  40380. BABYLON.PlaneGeometry = PlaneGeometry;
  40381. /**
  40382. * Creates a torus knot geometry
  40383. * @description see http://doc.babylonjs.com/how_to/set_shapes#torus-knot
  40384. */
  40385. var TorusKnotGeometry = /** @class */ (function (_super) {
  40386. __extends(TorusKnotGeometry, _super);
  40387. /**
  40388. * Creates a torus knot geometry
  40389. * @param id defines the unique ID of the geometry
  40390. * @param scene defines the hosting scene
  40391. * @param radius defines the radius of the torus knot
  40392. * @param tube defines the thickness of the torus knot tube
  40393. * @param radialSegments defines the number of radial segments
  40394. * @param tubularSegments defines the number of tubular segments
  40395. * @param p defines the first number of windings
  40396. * @param q defines the second number of windings
  40397. * @param canBeRegenerated defines if the geometry supports being regenerated with new parameters (false by default)
  40398. * @param mesh defines the hosting mesh (can be null)
  40399. * @param side defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40400. */
  40401. function TorusKnotGeometry(id, scene,
  40402. /**
  40403. * Defines the radius of the torus knot
  40404. */
  40405. radius,
  40406. /**
  40407. * Defines the thickness of the torus knot tube
  40408. */
  40409. tube,
  40410. /**
  40411. * Defines the number of radial segments
  40412. */
  40413. radialSegments,
  40414. /**
  40415. * Defines the number of tubular segments
  40416. */
  40417. tubularSegments,
  40418. /**
  40419. * Defines the first number of windings
  40420. */
  40421. p,
  40422. /**
  40423. * Defines the second number of windings
  40424. */
  40425. q, canBeRegenerated, mesh,
  40426. /**
  40427. * Defines if the created geometry is double sided or not (default is BABYLON.Mesh.DEFAULTSIDE)
  40428. */
  40429. side) {
  40430. if (mesh === void 0) { mesh = null; }
  40431. if (side === void 0) { side = BABYLON.Mesh.DEFAULTSIDE; }
  40432. var _this = _super.call(this, id, scene, canBeRegenerated, mesh) || this;
  40433. _this.radius = radius;
  40434. _this.tube = tube;
  40435. _this.radialSegments = radialSegments;
  40436. _this.tubularSegments = tubularSegments;
  40437. _this.p = p;
  40438. _this.q = q;
  40439. _this.side = side;
  40440. return _this;
  40441. }
  40442. /** @hidden */
  40443. TorusKnotGeometry.prototype._regenerateVertexData = function () {
  40444. return BABYLON.VertexData.CreateTorusKnot({ radius: this.radius, tube: this.tube, radialSegments: this.radialSegments, tubularSegments: this.tubularSegments, p: this.p, q: this.q, sideOrientation: this.side });
  40445. };
  40446. TorusKnotGeometry.prototype.copy = function (id) {
  40447. return new TorusKnotGeometry(id, this.getScene(), this.radius, this.tube, this.radialSegments, this.tubularSegments, this.p, this.q, this.canBeRegenerated(), null, this.side);
  40448. };
  40449. TorusKnotGeometry.prototype.serialize = function () {
  40450. var serializationObject = _super.prototype.serialize.call(this);
  40451. serializationObject.radius = this.radius;
  40452. serializationObject.tube = this.tube;
  40453. serializationObject.radialSegments = this.radialSegments;
  40454. serializationObject.tubularSegments = this.tubularSegments;
  40455. serializationObject.p = this.p;
  40456. serializationObject.q = this.q;
  40457. return serializationObject;
  40458. };
  40459. ;
  40460. TorusKnotGeometry.Parse = function (parsedTorusKnot, scene) {
  40461. if (scene.getGeometryByID(parsedTorusKnot.id)) {
  40462. return null; // null since geometry could be something else than a ground...
  40463. }
  40464. var torusKnot = new TorusKnotGeometry(parsedTorusKnot.id, scene, parsedTorusKnot.radius, parsedTorusKnot.tube, parsedTorusKnot.radialSegments, parsedTorusKnot.tubularSegments, parsedTorusKnot.p, parsedTorusKnot.q, parsedTorusKnot.canBeRegenerated, null);
  40465. if (BABYLON.Tags) {
  40466. BABYLON.Tags.AddTagsTo(torusKnot, parsedTorusKnot.tags);
  40467. }
  40468. scene.pushGeometry(torusKnot, true);
  40469. return torusKnot;
  40470. };
  40471. return TorusKnotGeometry;
  40472. }(_PrimitiveGeometry));
  40473. BABYLON.TorusKnotGeometry = TorusKnotGeometry;
  40474. //}
  40475. })(BABYLON || (BABYLON = {}));
  40476. //# sourceMappingURL=babylon.geometry.js.map
  40477. var BABYLON;
  40478. (function (BABYLON) {
  40479. /**
  40480. * Performance monitor tracks rolling average frame-time and frame-time variance over a user defined sliding-window
  40481. */
  40482. var PerformanceMonitor = /** @class */ (function () {
  40483. /**
  40484. * constructor
  40485. * @param frameSampleSize The number of samples required to saturate the sliding window
  40486. */
  40487. function PerformanceMonitor(frameSampleSize) {
  40488. if (frameSampleSize === void 0) { frameSampleSize = 30; }
  40489. this._enabled = true;
  40490. this._rollingFrameTime = new RollingAverage(frameSampleSize);
  40491. }
  40492. /**
  40493. * Samples current frame
  40494. * @param timeMs A timestamp in milliseconds of the current frame to compare with other frames
  40495. */
  40496. PerformanceMonitor.prototype.sampleFrame = function (timeMs) {
  40497. if (timeMs === void 0) { timeMs = BABYLON.Tools.Now; }
  40498. if (!this._enabled)
  40499. return;
  40500. if (this._lastFrameTimeMs != null) {
  40501. var dt = timeMs - this._lastFrameTimeMs;
  40502. this._rollingFrameTime.add(dt);
  40503. }
  40504. this._lastFrameTimeMs = timeMs;
  40505. };
  40506. Object.defineProperty(PerformanceMonitor.prototype, "averageFrameTime", {
  40507. /**
  40508. * Returns the average frame time in milliseconds over the sliding window (or the subset of frames sampled so far)
  40509. * @return Average frame time in milliseconds
  40510. */
  40511. get: function () {
  40512. return this._rollingFrameTime.average;
  40513. },
  40514. enumerable: true,
  40515. configurable: true
  40516. });
  40517. Object.defineProperty(PerformanceMonitor.prototype, "averageFrameTimeVariance", {
  40518. /**
  40519. * Returns the variance frame time in milliseconds over the sliding window (or the subset of frames sampled so far)
  40520. * @return Frame time variance in milliseconds squared
  40521. */
  40522. get: function () {
  40523. return this._rollingFrameTime.variance;
  40524. },
  40525. enumerable: true,
  40526. configurable: true
  40527. });
  40528. Object.defineProperty(PerformanceMonitor.prototype, "instantaneousFrameTime", {
  40529. /**
  40530. * Returns the frame time of the most recent frame
  40531. * @return Frame time in milliseconds
  40532. */
  40533. get: function () {
  40534. return this._rollingFrameTime.history(0);
  40535. },
  40536. enumerable: true,
  40537. configurable: true
  40538. });
  40539. Object.defineProperty(PerformanceMonitor.prototype, "averageFPS", {
  40540. /**
  40541. * Returns the average framerate in frames per second over the sliding window (or the subset of frames sampled so far)
  40542. * @return Framerate in frames per second
  40543. */
  40544. get: function () {
  40545. return 1000.0 / this._rollingFrameTime.average;
  40546. },
  40547. enumerable: true,
  40548. configurable: true
  40549. });
  40550. Object.defineProperty(PerformanceMonitor.prototype, "instantaneousFPS", {
  40551. /**
  40552. * Returns the average framerate in frames per second using the most recent frame time
  40553. * @return Framerate in frames per second
  40554. */
  40555. get: function () {
  40556. var history = this._rollingFrameTime.history(0);
  40557. if (history === 0) {
  40558. return 0;
  40559. }
  40560. return 1000.0 / history;
  40561. },
  40562. enumerable: true,
  40563. configurable: true
  40564. });
  40565. Object.defineProperty(PerformanceMonitor.prototype, "isSaturated", {
  40566. /**
  40567. * Returns true if enough samples have been taken to completely fill the sliding window
  40568. * @return true if saturated
  40569. */
  40570. get: function () {
  40571. return this._rollingFrameTime.isSaturated();
  40572. },
  40573. enumerable: true,
  40574. configurable: true
  40575. });
  40576. /**
  40577. * Enables contributions to the sliding window sample set
  40578. */
  40579. PerformanceMonitor.prototype.enable = function () {
  40580. this._enabled = true;
  40581. };
  40582. /**
  40583. * Disables contributions to the sliding window sample set
  40584. * Samples will not be interpolated over the disabled period
  40585. */
  40586. PerformanceMonitor.prototype.disable = function () {
  40587. this._enabled = false;
  40588. //clear last sample to avoid interpolating over the disabled period when next enabled
  40589. this._lastFrameTimeMs = null;
  40590. };
  40591. Object.defineProperty(PerformanceMonitor.prototype, "isEnabled", {
  40592. /**
  40593. * Returns true if sampling is enabled
  40594. * @return true if enabled
  40595. */
  40596. get: function () {
  40597. return this._enabled;
  40598. },
  40599. enumerable: true,
  40600. configurable: true
  40601. });
  40602. /**
  40603. * Resets performance monitor
  40604. */
  40605. PerformanceMonitor.prototype.reset = function () {
  40606. //clear last sample to avoid interpolating over the disabled period when next enabled
  40607. this._lastFrameTimeMs = null;
  40608. //wipe record
  40609. this._rollingFrameTime.reset();
  40610. };
  40611. return PerformanceMonitor;
  40612. }());
  40613. BABYLON.PerformanceMonitor = PerformanceMonitor;
  40614. /**
  40615. * RollingAverage
  40616. *
  40617. * Utility to efficiently compute the rolling average and variance over a sliding window of samples
  40618. */
  40619. var RollingAverage = /** @class */ (function () {
  40620. /**
  40621. * constructor
  40622. * @param length The number of samples required to saturate the sliding window
  40623. */
  40624. function RollingAverage(length) {
  40625. this._samples = new Array(length);
  40626. this.reset();
  40627. }
  40628. /**
  40629. * Adds a sample to the sample set
  40630. * @param v The sample value
  40631. */
  40632. RollingAverage.prototype.add = function (v) {
  40633. //http://en.wikipedia.org/wiki/Algorithms_for_calculating_variance
  40634. var delta;
  40635. //we need to check if we've already wrapped round
  40636. if (this.isSaturated()) {
  40637. //remove bottom of stack from mean
  40638. var bottomValue = this._samples[this._pos];
  40639. delta = bottomValue - this.average;
  40640. this.average -= delta / (this._sampleCount - 1);
  40641. this._m2 -= delta * (bottomValue - this.average);
  40642. }
  40643. else {
  40644. this._sampleCount++;
  40645. }
  40646. //add new value to mean
  40647. delta = v - this.average;
  40648. this.average += delta / (this._sampleCount);
  40649. this._m2 += delta * (v - this.average);
  40650. //set the new variance
  40651. this.variance = this._m2 / (this._sampleCount - 1);
  40652. this._samples[this._pos] = v;
  40653. this._pos++;
  40654. this._pos %= this._samples.length; //positive wrap around
  40655. };
  40656. /**
  40657. * Returns previously added values or null if outside of history or outside the sliding window domain
  40658. * @param i Index in history. For example, pass 0 for the most recent value and 1 for the value before that
  40659. * @return Value previously recorded with add() or null if outside of range
  40660. */
  40661. RollingAverage.prototype.history = function (i) {
  40662. if ((i >= this._sampleCount) || (i >= this._samples.length)) {
  40663. return 0;
  40664. }
  40665. var i0 = this._wrapPosition(this._pos - 1.0);
  40666. return this._samples[this._wrapPosition(i0 - i)];
  40667. };
  40668. /**
  40669. * Returns true if enough samples have been taken to completely fill the sliding window
  40670. * @return true if sample-set saturated
  40671. */
  40672. RollingAverage.prototype.isSaturated = function () {
  40673. return this._sampleCount >= this._samples.length;
  40674. };
  40675. /**
  40676. * Resets the rolling average (equivalent to 0 samples taken so far)
  40677. */
  40678. RollingAverage.prototype.reset = function () {
  40679. this.average = 0;
  40680. this.variance = 0;
  40681. this._sampleCount = 0;
  40682. this._pos = 0;
  40683. this._m2 = 0;
  40684. };
  40685. /**
  40686. * Wraps a value around the sample range boundaries
  40687. * @param i Position in sample range, for example if the sample length is 5, and i is -3, then 2 will be returned.
  40688. * @return Wrapped position in sample range
  40689. */
  40690. RollingAverage.prototype._wrapPosition = function (i) {
  40691. var max = this._samples.length;
  40692. return ((i % max) + max) % max;
  40693. };
  40694. return RollingAverage;
  40695. }());
  40696. BABYLON.RollingAverage = RollingAverage;
  40697. })(BABYLON || (BABYLON = {}));
  40698. //# sourceMappingURL=babylon.performanceMonitor.js.map
  40699. var BABYLON;
  40700. (function (BABYLON) {
  40701. /**
  40702. * "Static Class" containing the most commonly used helper while dealing with material for
  40703. * rendering purpose.
  40704. *
  40705. * It contains the basic tools to help defining defines, binding uniform for the common part of the materials.
  40706. *
  40707. * This works by convention in BabylonJS but is meant to be use only with shader following the in place naming rules and conventions.
  40708. */
  40709. var MaterialHelper = /** @class */ (function () {
  40710. function MaterialHelper() {
  40711. }
  40712. /**
  40713. * Bind the current view position to an effect.
  40714. * @param effect The effect to be bound
  40715. * @param scene The scene the eyes position is used from
  40716. */
  40717. MaterialHelper.BindEyePosition = function (effect, scene) {
  40718. if (scene._forcedViewPosition) {
  40719. effect.setVector3("vEyePosition", scene._forcedViewPosition);
  40720. return;
  40721. }
  40722. effect.setVector3("vEyePosition", scene._mirroredCameraPosition ? scene._mirroredCameraPosition : scene.activeCamera.globalPosition);
  40723. };
  40724. /**
  40725. * Helps preparing the defines values about the UVs in used in the effect.
  40726. * UVs are shared as much as we can accross chanels in the shaders.
  40727. * @param texture The texture we are preparing the UVs for
  40728. * @param defines The defines to update
  40729. * @param key The chanel key "diffuse", "specular"... used in the shader
  40730. */
  40731. MaterialHelper.PrepareDefinesForMergedUV = function (texture, defines, key) {
  40732. defines._needUVs = true;
  40733. defines[key] = true;
  40734. if (texture.getTextureMatrix().isIdentity(true)) {
  40735. defines[key + "DIRECTUV"] = texture.coordinatesIndex + 1;
  40736. if (texture.coordinatesIndex === 0) {
  40737. defines["MAINUV1"] = true;
  40738. }
  40739. else {
  40740. defines["MAINUV2"] = true;
  40741. }
  40742. }
  40743. else {
  40744. defines[key + "DIRECTUV"] = 0;
  40745. }
  40746. };
  40747. /**
  40748. * Binds a texture matrix value to its corrsponding uniform
  40749. * @param texture The texture to bind the matrix for
  40750. * @param uniformBuffer The uniform buffer receivin the data
  40751. * @param key The chanel key "diffuse", "specular"... used in the shader
  40752. */
  40753. MaterialHelper.BindTextureMatrix = function (texture, uniformBuffer, key) {
  40754. var matrix = texture.getTextureMatrix();
  40755. if (!matrix.isIdentity(true)) {
  40756. uniformBuffer.updateMatrix(key + "Matrix", matrix);
  40757. }
  40758. };
  40759. /**
  40760. * Helper used to prepare the list of defines associated with misc. values for shader compilation
  40761. * @param mesh defines the current mesh
  40762. * @param scene defines the current scene
  40763. * @param useLogarithmicDepth defines if logarithmic depth has to be turned on
  40764. * @param pointsCloud defines if point cloud rendering has to be turned on
  40765. * @param fogEnabled defines if fog has to be turned on
  40766. * @param alphaTest defines if alpha testing has to be turned on
  40767. * @param defines defines the current list of defines
  40768. */
  40769. MaterialHelper.PrepareDefinesForMisc = function (mesh, scene, useLogarithmicDepth, pointsCloud, fogEnabled, alphaTest, defines) {
  40770. if (defines._areMiscDirty) {
  40771. defines["LOGARITHMICDEPTH"] = useLogarithmicDepth;
  40772. defines["POINTSIZE"] = pointsCloud;
  40773. defines["FOG"] = (scene.fogEnabled && mesh.applyFog && scene.fogMode !== BABYLON.Scene.FOGMODE_NONE && fogEnabled);
  40774. defines["NONUNIFORMSCALING"] = mesh.nonUniformScaling;
  40775. defines["ALPHATEST"] = alphaTest;
  40776. }
  40777. };
  40778. /**
  40779. * Helper used to prepare the list of defines associated with frame values for shader compilation
  40780. * @param scene defines the current scene
  40781. * @param engine defines the current engine
  40782. * @param defines specifies the list of active defines
  40783. * @param useInstances defines if instances have to be turned on
  40784. * @param useClipPlane defines if clip plane have to be turned on
  40785. */
  40786. MaterialHelper.PrepareDefinesForFrameBoundValues = function (scene, engine, defines, useInstances, useClipPlane) {
  40787. if (useClipPlane === void 0) { useClipPlane = null; }
  40788. var changed = false;
  40789. var useClipPlane1 = false;
  40790. var useClipPlane2 = false;
  40791. var useClipPlane3 = false;
  40792. var useClipPlane4 = false;
  40793. useClipPlane1 = useClipPlane == null ? (scene.clipPlane !== undefined && scene.clipPlane !== null) : useClipPlane;
  40794. useClipPlane2 = useClipPlane == null ? (scene.clipPlane2 !== undefined && scene.clipPlane2 !== null) : useClipPlane;
  40795. useClipPlane3 = useClipPlane == null ? (scene.clipPlane3 !== undefined && scene.clipPlane3 !== null) : useClipPlane;
  40796. useClipPlane4 = useClipPlane == null ? (scene.clipPlane4 !== undefined && scene.clipPlane4 !== null) : useClipPlane;
  40797. if (defines["CLIPPLANE"] !== useClipPlane1) {
  40798. defines["CLIPPLANE"] = useClipPlane1;
  40799. changed = true;
  40800. }
  40801. if (defines["CLIPPLANE2"] !== useClipPlane2) {
  40802. defines["CLIPPLANE2"] = useClipPlane2;
  40803. changed = true;
  40804. }
  40805. if (defines["CLIPPLANE3"] !== useClipPlane3) {
  40806. defines["CLIPPLANE3"] = useClipPlane3;
  40807. changed = true;
  40808. }
  40809. if (defines["CLIPPLANE4"] !== useClipPlane4) {
  40810. defines["CLIPPLANE4"] = useClipPlane4;
  40811. changed = true;
  40812. }
  40813. if (defines["DEPTHPREPASS"] !== !engine.getColorWrite()) {
  40814. defines["DEPTHPREPASS"] = !defines["DEPTHPREPASS"];
  40815. changed = true;
  40816. }
  40817. if (defines["INSTANCES"] !== useInstances) {
  40818. defines["INSTANCES"] = useInstances;
  40819. changed = true;
  40820. }
  40821. if (changed) {
  40822. defines.markAsUnprocessed();
  40823. }
  40824. };
  40825. /**
  40826. * Prepares the defines used in the shader depending on the attributes data available in the mesh
  40827. * @param mesh The mesh containing the geometry data we will draw
  40828. * @param defines The defines to update
  40829. * @param useVertexColor Precise whether vertex colors should be used or not (override mesh info)
  40830. * @param useBones Precise whether bones should be used or not (override mesh info)
  40831. * @param useMorphTargets Precise whether morph targets should be used or not (override mesh info)
  40832. * @param useVertexAlpha Precise whether vertex alpha should be used or not (override mesh info)
  40833. * @returns false if defines are considered not dirty and have not been checked
  40834. */
  40835. MaterialHelper.PrepareDefinesForAttributes = function (mesh, defines, useVertexColor, useBones, useMorphTargets, useVertexAlpha) {
  40836. if (useMorphTargets === void 0) { useMorphTargets = false; }
  40837. if (useVertexAlpha === void 0) { useVertexAlpha = true; }
  40838. if (!defines._areAttributesDirty && defines._needNormals === defines._normals && defines._needUVs === defines._uvs) {
  40839. return false;
  40840. }
  40841. defines._normals = defines._needNormals;
  40842. defines._uvs = defines._needUVs;
  40843. defines["NORMAL"] = (defines._needNormals && mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind));
  40844. if (defines._needNormals && mesh.isVerticesDataPresent(BABYLON.VertexBuffer.TangentKind)) {
  40845. defines["TANGENT"] = true;
  40846. }
  40847. if (defines._needUVs) {
  40848. defines["UV1"] = mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind);
  40849. defines["UV2"] = mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind);
  40850. }
  40851. else {
  40852. defines["UV1"] = false;
  40853. defines["UV2"] = false;
  40854. }
  40855. if (useVertexColor) {
  40856. var hasVertexColors = mesh.useVertexColors && mesh.isVerticesDataPresent(BABYLON.VertexBuffer.ColorKind);
  40857. defines["VERTEXCOLOR"] = hasVertexColors;
  40858. defines["VERTEXALPHA"] = mesh.hasVertexAlpha && hasVertexColors && useVertexAlpha;
  40859. }
  40860. if (useBones) {
  40861. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  40862. defines["NUM_BONE_INFLUENCERS"] = mesh.numBoneInfluencers;
  40863. defines["BonesPerMesh"] = (mesh.skeleton.bones.length + 1);
  40864. }
  40865. else {
  40866. defines["NUM_BONE_INFLUENCERS"] = 0;
  40867. defines["BonesPerMesh"] = 0;
  40868. }
  40869. }
  40870. if (useMorphTargets) {
  40871. var manager = mesh.morphTargetManager;
  40872. if (manager) {
  40873. defines["MORPHTARGETS_TANGENT"] = manager.supportsTangents && defines["TANGENT"];
  40874. defines["MORPHTARGETS_NORMAL"] = manager.supportsNormals && defines["NORMAL"];
  40875. defines["MORPHTARGETS"] = (manager.numInfluencers > 0);
  40876. defines["NUM_MORPH_INFLUENCERS"] = manager.numInfluencers;
  40877. }
  40878. else {
  40879. defines["MORPHTARGETS_TANGENT"] = false;
  40880. defines["MORPHTARGETS_NORMAL"] = false;
  40881. defines["MORPHTARGETS"] = false;
  40882. defines["NUM_MORPH_INFLUENCERS"] = 0;
  40883. }
  40884. }
  40885. return true;
  40886. };
  40887. /**
  40888. * Prepares the defines related to the light information passed in parameter
  40889. * @param scene The scene we are intending to draw
  40890. * @param mesh The mesh the effect is compiling for
  40891. * @param defines The defines to update
  40892. * @param specularSupported Specifies whether specular is supported or not (override lights data)
  40893. * @param maxSimultaneousLights Specfies how manuy lights can be added to the effect at max
  40894. * @param disableLighting Specifies whether the lighting is disabled (override scene and light)
  40895. * @returns true if normals will be required for the rest of the effect
  40896. */
  40897. MaterialHelper.PrepareDefinesForLights = function (scene, mesh, defines, specularSupported, maxSimultaneousLights, disableLighting) {
  40898. if (maxSimultaneousLights === void 0) { maxSimultaneousLights = 4; }
  40899. if (disableLighting === void 0) { disableLighting = false; }
  40900. if (!defines._areLightsDirty) {
  40901. return defines._needNormals;
  40902. }
  40903. var lightIndex = 0;
  40904. var needNormals = false;
  40905. var needRebuild = false;
  40906. var lightmapMode = false;
  40907. var shadowEnabled = false;
  40908. var specularEnabled = false;
  40909. if (scene.lightsEnabled && !disableLighting) {
  40910. for (var _i = 0, _a = mesh._lightSources; _i < _a.length; _i++) {
  40911. var light = _a[_i];
  40912. needNormals = true;
  40913. if (defines["LIGHT" + lightIndex] === undefined) {
  40914. needRebuild = true;
  40915. }
  40916. defines["LIGHT" + lightIndex] = true;
  40917. defines["SPOTLIGHT" + lightIndex] = false;
  40918. defines["HEMILIGHT" + lightIndex] = false;
  40919. defines["POINTLIGHT" + lightIndex] = false;
  40920. defines["DIRLIGHT" + lightIndex] = false;
  40921. light.prepareLightSpecificDefines(defines, lightIndex);
  40922. // FallOff.
  40923. defines["LIGHT_FALLOFF_PHYSICAL" + lightIndex] = false;
  40924. defines["LIGHT_FALLOFF_GLTF" + lightIndex] = false;
  40925. defines["LIGHT_FALLOFF_STANDARD" + lightIndex] = false;
  40926. switch (light.falloffType) {
  40927. case BABYLON.Light.FALLOFF_GLTF:
  40928. defines["LIGHT_FALLOFF_GLTF" + lightIndex] = true;
  40929. break;
  40930. case BABYLON.Light.FALLOFF_PHYSICAL:
  40931. defines["LIGHT_FALLOFF_PHYSICAL" + lightIndex] = true;
  40932. break;
  40933. case BABYLON.Light.FALLOFF_STANDARD:
  40934. defines["LIGHT_FALLOFF_STANDARD" + lightIndex] = true;
  40935. break;
  40936. }
  40937. // Specular
  40938. if (specularSupported && !light.specular.equalsFloats(0, 0, 0)) {
  40939. specularEnabled = true;
  40940. }
  40941. // Shadows
  40942. defines["SHADOW" + lightIndex] = false;
  40943. defines["SHADOWPCF" + lightIndex] = false;
  40944. defines["SHADOWPCSS" + lightIndex] = false;
  40945. defines["SHADOWPOISSON" + lightIndex] = false;
  40946. defines["SHADOWESM" + lightIndex] = false;
  40947. defines["SHADOWCUBE" + lightIndex] = false;
  40948. defines["SHADOWLOWQUALITY" + lightIndex] = false;
  40949. defines["SHADOWMEDIUMQUALITY" + lightIndex] = false;
  40950. if (mesh && mesh.receiveShadows && scene.shadowsEnabled && light.shadowEnabled) {
  40951. var shadowGenerator = light.getShadowGenerator();
  40952. if (shadowGenerator) {
  40953. var shadowMap = shadowGenerator.getShadowMap();
  40954. if (shadowMap) {
  40955. if (shadowMap.renderList && shadowMap.renderList.length > 0) {
  40956. shadowEnabled = true;
  40957. shadowGenerator.prepareDefines(defines, lightIndex);
  40958. }
  40959. }
  40960. }
  40961. }
  40962. if (light.lightmapMode != BABYLON.Light.LIGHTMAP_DEFAULT) {
  40963. lightmapMode = true;
  40964. defines["LIGHTMAPEXCLUDED" + lightIndex] = true;
  40965. defines["LIGHTMAPNOSPECULAR" + lightIndex] = (light.lightmapMode == BABYLON.Light.LIGHTMAP_SHADOWSONLY);
  40966. }
  40967. else {
  40968. defines["LIGHTMAPEXCLUDED" + lightIndex] = false;
  40969. defines["LIGHTMAPNOSPECULAR" + lightIndex] = false;
  40970. }
  40971. lightIndex++;
  40972. if (lightIndex === maxSimultaneousLights)
  40973. break;
  40974. }
  40975. }
  40976. defines["SPECULARTERM"] = specularEnabled;
  40977. defines["SHADOWS"] = shadowEnabled;
  40978. // Resetting all other lights if any
  40979. for (var index = lightIndex; index < maxSimultaneousLights; index++) {
  40980. if (defines["LIGHT" + index] !== undefined) {
  40981. defines["LIGHT" + index] = false;
  40982. defines["HEMILIGHT" + lightIndex] = false;
  40983. defines["POINTLIGHT" + lightIndex] = false;
  40984. defines["DIRLIGHT" + lightIndex] = false;
  40985. defines["SPOTLIGHT" + lightIndex] = false;
  40986. defines["SHADOW" + lightIndex] = false;
  40987. }
  40988. }
  40989. var caps = scene.getEngine().getCaps();
  40990. if (defines["SHADOWFLOAT"] === undefined) {
  40991. needRebuild = true;
  40992. }
  40993. defines["SHADOWFLOAT"] = shadowEnabled &&
  40994. ((caps.textureFloatRender && caps.textureFloatLinearFiltering) ||
  40995. (caps.textureHalfFloatRender && caps.textureHalfFloatLinearFiltering));
  40996. defines["LIGHTMAPEXCLUDED"] = lightmapMode;
  40997. if (needRebuild) {
  40998. defines.rebuild();
  40999. }
  41000. return needNormals;
  41001. };
  41002. /**
  41003. * Prepares the uniforms and samplers list to be used in the effect. This can automatically remove from the list uniforms
  41004. * that won t be acctive due to defines being turned off.
  41005. * @param uniformsListOrOptions The uniform names to prepare or an EffectCreationOptions containing the liist and extra information
  41006. * @param samplersList The samplers list
  41007. * @param defines The defines helping in the list generation
  41008. * @param maxSimultaneousLights The maximum number of simultanous light allowed in the effect
  41009. */
  41010. MaterialHelper.PrepareUniformsAndSamplersList = function (uniformsListOrOptions, samplersList, defines, maxSimultaneousLights) {
  41011. if (maxSimultaneousLights === void 0) { maxSimultaneousLights = 4; }
  41012. var uniformsList;
  41013. var uniformBuffersList = null;
  41014. if (uniformsListOrOptions.uniformsNames) {
  41015. var options = uniformsListOrOptions;
  41016. uniformsList = options.uniformsNames;
  41017. uniformBuffersList = options.uniformBuffersNames;
  41018. samplersList = options.samplers;
  41019. defines = options.defines;
  41020. maxSimultaneousLights = options.maxSimultaneousLights;
  41021. }
  41022. else {
  41023. uniformsList = uniformsListOrOptions;
  41024. if (!samplersList) {
  41025. samplersList = [];
  41026. }
  41027. }
  41028. for (var lightIndex = 0; lightIndex < maxSimultaneousLights; lightIndex++) {
  41029. if (!defines["LIGHT" + lightIndex]) {
  41030. break;
  41031. }
  41032. uniformsList.push("vLightData" + lightIndex, "vLightDiffuse" + lightIndex, "vLightSpecular" + lightIndex, "vLightDirection" + lightIndex, "vLightFalloff" + lightIndex, "vLightGround" + lightIndex, "lightMatrix" + lightIndex, "shadowsInfo" + lightIndex, "depthValues" + lightIndex);
  41033. if (uniformBuffersList) {
  41034. uniformBuffersList.push("Light" + lightIndex);
  41035. }
  41036. samplersList.push("shadowSampler" + lightIndex);
  41037. samplersList.push("depthSampler" + lightIndex);
  41038. if (defines["PROJECTEDLIGHTTEXTURE" + lightIndex]) {
  41039. samplersList.push("projectionLightSampler" + lightIndex);
  41040. uniformsList.push("textureProjectionMatrix" + lightIndex);
  41041. }
  41042. }
  41043. if (defines["NUM_MORPH_INFLUENCERS"]) {
  41044. uniformsList.push("morphTargetInfluences");
  41045. }
  41046. };
  41047. /**
  41048. * This helps decreasing rank by rank the shadow quality (0 being the highest rank and quality)
  41049. * @param defines The defines to update while falling back
  41050. * @param fallbacks The authorized effect fallbacks
  41051. * @param maxSimultaneousLights The maximum number of lights allowed
  41052. * @param rank the current rank of the Effect
  41053. * @returns The newly affected rank
  41054. */
  41055. MaterialHelper.HandleFallbacksForShadows = function (defines, fallbacks, maxSimultaneousLights, rank) {
  41056. if (maxSimultaneousLights === void 0) { maxSimultaneousLights = 4; }
  41057. if (rank === void 0) { rank = 0; }
  41058. var lightFallbackRank = 0;
  41059. for (var lightIndex = 0; lightIndex < maxSimultaneousLights; lightIndex++) {
  41060. if (!defines["LIGHT" + lightIndex]) {
  41061. break;
  41062. }
  41063. if (lightIndex > 0) {
  41064. lightFallbackRank = rank + lightIndex;
  41065. fallbacks.addFallback(lightFallbackRank, "LIGHT" + lightIndex);
  41066. }
  41067. if (!defines["SHADOWS"]) {
  41068. if (defines["SHADOW" + lightIndex]) {
  41069. fallbacks.addFallback(rank, "SHADOW" + lightIndex);
  41070. }
  41071. if (defines["SHADOWPCF" + lightIndex]) {
  41072. fallbacks.addFallback(rank, "SHADOWPCF" + lightIndex);
  41073. }
  41074. if (defines["SHADOWPCSS" + lightIndex]) {
  41075. fallbacks.addFallback(rank, "SHADOWPCSS" + lightIndex);
  41076. }
  41077. if (defines["SHADOWPOISSON" + lightIndex]) {
  41078. fallbacks.addFallback(rank, "SHADOWPOISSON" + lightIndex);
  41079. }
  41080. if (defines["SHADOWESM" + lightIndex]) {
  41081. fallbacks.addFallback(rank, "SHADOWESM" + lightIndex);
  41082. }
  41083. }
  41084. }
  41085. return lightFallbackRank++;
  41086. };
  41087. /**
  41088. * Prepares the list of attributes required for morph targets according to the effect defines.
  41089. * @param attribs The current list of supported attribs
  41090. * @param mesh The mesh to prepare the morph targets attributes for
  41091. * @param defines The current Defines of the effect
  41092. */
  41093. MaterialHelper.PrepareAttributesForMorphTargets = function (attribs, mesh, defines) {
  41094. var influencers = defines["NUM_MORPH_INFLUENCERS"];
  41095. if (influencers > 0 && BABYLON.Engine.LastCreatedEngine) {
  41096. var maxAttributesCount = BABYLON.Engine.LastCreatedEngine.getCaps().maxVertexAttribs;
  41097. var manager = mesh.morphTargetManager;
  41098. var normal = manager && manager.supportsNormals && defines["NORMAL"];
  41099. var tangent = manager && manager.supportsTangents && defines["TANGENT"];
  41100. for (var index = 0; index < influencers; index++) {
  41101. attribs.push(BABYLON.VertexBuffer.PositionKind + index);
  41102. if (normal) {
  41103. attribs.push(BABYLON.VertexBuffer.NormalKind + index);
  41104. }
  41105. if (tangent) {
  41106. attribs.push(BABYLON.VertexBuffer.TangentKind + index);
  41107. }
  41108. if (attribs.length > maxAttributesCount) {
  41109. BABYLON.Tools.Error("Cannot add more vertex attributes for mesh " + mesh.name);
  41110. }
  41111. }
  41112. }
  41113. };
  41114. /**
  41115. * Prepares the list of attributes required for bones according to the effect defines.
  41116. * @param attribs The current list of supported attribs
  41117. * @param mesh The mesh to prepare the bones attributes for
  41118. * @param defines The current Defines of the effect
  41119. * @param fallbacks The current efffect fallback strategy
  41120. */
  41121. MaterialHelper.PrepareAttributesForBones = function (attribs, mesh, defines, fallbacks) {
  41122. if (defines["NUM_BONE_INFLUENCERS"] > 0) {
  41123. fallbacks.addCPUSkinningFallback(0, mesh);
  41124. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  41125. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  41126. if (defines["NUM_BONE_INFLUENCERS"] > 4) {
  41127. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  41128. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  41129. }
  41130. }
  41131. };
  41132. /**
  41133. * Prepares the list of attributes required for instances according to the effect defines.
  41134. * @param attribs The current list of supported attribs
  41135. * @param defines The current Defines of the effect
  41136. */
  41137. MaterialHelper.PrepareAttributesForInstances = function (attribs, defines) {
  41138. if (defines["INSTANCES"]) {
  41139. attribs.push("world0");
  41140. attribs.push("world1");
  41141. attribs.push("world2");
  41142. attribs.push("world3");
  41143. }
  41144. };
  41145. /**
  41146. * Binds the light shadow information to the effect for the given mesh.
  41147. * @param light The light containing the generator
  41148. * @param scene The scene the lights belongs to
  41149. * @param mesh The mesh we are binding the information to render
  41150. * @param lightIndex The light index in the effect used to render the mesh
  41151. * @param effect The effect we are binding the data to
  41152. */
  41153. MaterialHelper.BindLightShadow = function (light, scene, mesh, lightIndex, effect) {
  41154. if (light.shadowEnabled && mesh.receiveShadows) {
  41155. var shadowGenerator = light.getShadowGenerator();
  41156. if (shadowGenerator) {
  41157. shadowGenerator.bindShadowLight(lightIndex, effect);
  41158. }
  41159. }
  41160. };
  41161. /**
  41162. * Binds the light information to the effect.
  41163. * @param light The light containing the generator
  41164. * @param effect The effect we are binding the data to
  41165. * @param lightIndex The light index in the effect used to render
  41166. */
  41167. MaterialHelper.BindLightProperties = function (light, effect, lightIndex) {
  41168. light.transferToEffect(effect, lightIndex + "");
  41169. };
  41170. /**
  41171. * Binds the lights information from the scene to the effect for the given mesh.
  41172. * @param scene The scene the lights belongs to
  41173. * @param mesh The mesh we are binding the information to render
  41174. * @param effect The effect we are binding the data to
  41175. * @param defines The generated defines for the effect
  41176. * @param maxSimultaneousLights The maximum number of light that can be bound to the effect
  41177. * @param usePhysicalLightFalloff Specifies whether the light falloff is defined physically or not
  41178. */
  41179. MaterialHelper.BindLights = function (scene, mesh, effect, defines, maxSimultaneousLights, usePhysicalLightFalloff) {
  41180. if (maxSimultaneousLights === void 0) { maxSimultaneousLights = 4; }
  41181. if (usePhysicalLightFalloff === void 0) { usePhysicalLightFalloff = false; }
  41182. var len = Math.min(mesh._lightSources.length, maxSimultaneousLights);
  41183. for (var i = 0; i < len; i++) {
  41184. var light = mesh._lightSources[i];
  41185. var iAsString = i.toString();
  41186. var scaledIntensity = light.getScaledIntensity();
  41187. light._uniformBuffer.bindToEffect(effect, "Light" + i);
  41188. MaterialHelper.BindLightProperties(light, effect, i);
  41189. light.diffuse.scaleToRef(scaledIntensity, BABYLON.Tmp.Color3[0]);
  41190. light._uniformBuffer.updateColor4("vLightDiffuse", BABYLON.Tmp.Color3[0], usePhysicalLightFalloff ? light.radius : light.range, iAsString);
  41191. if (defines["SPECULARTERM"]) {
  41192. light.specular.scaleToRef(scaledIntensity, BABYLON.Tmp.Color3[1]);
  41193. light._uniformBuffer.updateColor3("vLightSpecular", BABYLON.Tmp.Color3[1], iAsString);
  41194. }
  41195. // Shadows
  41196. if (scene.shadowsEnabled) {
  41197. this.BindLightShadow(light, scene, mesh, iAsString, effect);
  41198. }
  41199. light._uniformBuffer.update();
  41200. }
  41201. };
  41202. /**
  41203. * Binds the fog information from the scene to the effect for the given mesh.
  41204. * @param scene The scene the lights belongs to
  41205. * @param mesh The mesh we are binding the information to render
  41206. * @param effect The effect we are binding the data to
  41207. */
  41208. MaterialHelper.BindFogParameters = function (scene, mesh, effect) {
  41209. if (scene.fogEnabled && mesh.applyFog && scene.fogMode !== BABYLON.Scene.FOGMODE_NONE) {
  41210. effect.setFloat4("vFogInfos", scene.fogMode, scene.fogStart, scene.fogEnd, scene.fogDensity);
  41211. effect.setColor3("vFogColor", scene.fogColor);
  41212. }
  41213. };
  41214. /**
  41215. * Binds the bones information from the mesh to the effect.
  41216. * @param mesh The mesh we are binding the information to render
  41217. * @param effect The effect we are binding the data to
  41218. */
  41219. MaterialHelper.BindBonesParameters = function (mesh, effect) {
  41220. if (!effect || !mesh) {
  41221. return;
  41222. }
  41223. if (mesh.computeBonesUsingShaders && effect._bonesComputationForcedToCPU) {
  41224. mesh.computeBonesUsingShaders = false;
  41225. }
  41226. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  41227. var matrices = mesh.skeleton.getTransformMatrices(mesh);
  41228. if (matrices) {
  41229. effect.setMatrices("mBones", matrices);
  41230. }
  41231. }
  41232. };
  41233. /**
  41234. * Binds the morph targets information from the mesh to the effect.
  41235. * @param abstractMesh The mesh we are binding the information to render
  41236. * @param effect The effect we are binding the data to
  41237. */
  41238. MaterialHelper.BindMorphTargetParameters = function (abstractMesh, effect) {
  41239. var manager = abstractMesh.morphTargetManager;
  41240. if (!abstractMesh || !manager) {
  41241. return;
  41242. }
  41243. effect.setFloatArray("morphTargetInfluences", manager.influences);
  41244. };
  41245. /**
  41246. * Binds the logarithmic depth information from the scene to the effect for the given defines.
  41247. * @param defines The generated defines used in the effect
  41248. * @param effect The effect we are binding the data to
  41249. * @param scene The scene we are willing to render with logarithmic scale for
  41250. */
  41251. MaterialHelper.BindLogDepth = function (defines, effect, scene) {
  41252. if (defines["LOGARITHMICDEPTH"]) {
  41253. effect.setFloat("logarithmicDepthConstant", 2.0 / (Math.log(scene.activeCamera.maxZ + 1.0) / Math.LN2));
  41254. }
  41255. };
  41256. /**
  41257. * Binds the clip plane information from the scene to the effect.
  41258. * @param scene The scene the clip plane information are extracted from
  41259. * @param effect The effect we are binding the data to
  41260. */
  41261. MaterialHelper.BindClipPlane = function (effect, scene) {
  41262. if (scene.clipPlane) {
  41263. var clipPlane = scene.clipPlane;
  41264. effect.setFloat4("vClipPlane", clipPlane.normal.x, clipPlane.normal.y, clipPlane.normal.z, clipPlane.d);
  41265. }
  41266. if (scene.clipPlane2) {
  41267. var clipPlane = scene.clipPlane2;
  41268. effect.setFloat4("vClipPlane2", clipPlane.normal.x, clipPlane.normal.y, clipPlane.normal.z, clipPlane.d);
  41269. }
  41270. if (scene.clipPlane3) {
  41271. var clipPlane = scene.clipPlane3;
  41272. effect.setFloat4("vClipPlane3", clipPlane.normal.x, clipPlane.normal.y, clipPlane.normal.z, clipPlane.d);
  41273. }
  41274. if (scene.clipPlane4) {
  41275. var clipPlane = scene.clipPlane4;
  41276. effect.setFloat4("vClipPlane4", clipPlane.normal.x, clipPlane.normal.y, clipPlane.normal.z, clipPlane.d);
  41277. }
  41278. };
  41279. return MaterialHelper;
  41280. }());
  41281. BABYLON.MaterialHelper = MaterialHelper;
  41282. })(BABYLON || (BABYLON = {}));
  41283. //# sourceMappingURL=babylon.materialHelper.js.map
  41284. var BABYLON;
  41285. (function (BABYLON) {
  41286. var PushMaterial = /** @class */ (function (_super) {
  41287. __extends(PushMaterial, _super);
  41288. function PushMaterial(name, scene) {
  41289. var _this = _super.call(this, name, scene) || this;
  41290. _this._normalMatrix = new BABYLON.Matrix();
  41291. _this.storeEffectOnSubMeshes = true;
  41292. return _this;
  41293. }
  41294. PushMaterial.prototype.getEffect = function () {
  41295. return this._activeEffect;
  41296. };
  41297. PushMaterial.prototype.isReady = function (mesh, useInstances) {
  41298. if (!mesh) {
  41299. return false;
  41300. }
  41301. if (!mesh.subMeshes || mesh.subMeshes.length === 0) {
  41302. return true;
  41303. }
  41304. return this.isReadyForSubMesh(mesh, mesh.subMeshes[0], useInstances);
  41305. };
  41306. /**
  41307. * Binds the given world matrix to the active effect
  41308. *
  41309. * @param world the matrix to bind
  41310. */
  41311. PushMaterial.prototype.bindOnlyWorldMatrix = function (world) {
  41312. this._activeEffect.setMatrix("world", world);
  41313. };
  41314. /**
  41315. * Binds the given normal matrix to the active effect
  41316. *
  41317. * @param normalMatrix the matrix to bind
  41318. */
  41319. PushMaterial.prototype.bindOnlyNormalMatrix = function (normalMatrix) {
  41320. this._activeEffect.setMatrix("normalMatrix", normalMatrix);
  41321. };
  41322. PushMaterial.prototype.bind = function (world, mesh) {
  41323. if (!mesh) {
  41324. return;
  41325. }
  41326. this.bindForSubMesh(world, mesh, mesh.subMeshes[0]);
  41327. };
  41328. PushMaterial.prototype._afterBind = function (mesh, effect) {
  41329. if (effect === void 0) { effect = null; }
  41330. _super.prototype._afterBind.call(this, mesh);
  41331. this.getScene()._cachedEffect = effect;
  41332. };
  41333. PushMaterial.prototype._mustRebind = function (scene, effect, visibility) {
  41334. if (visibility === void 0) { visibility = 1; }
  41335. return scene.isCachedMaterialInvalid(this, effect, visibility);
  41336. };
  41337. return PushMaterial;
  41338. }(BABYLON.Material));
  41339. BABYLON.PushMaterial = PushMaterial;
  41340. })(BABYLON || (BABYLON = {}));
  41341. //# sourceMappingURL=babylon.pushMaterial.js.map
  41342. var BABYLON;
  41343. (function (BABYLON) {
  41344. /** @hidden */
  41345. var StandardMaterialDefines = /** @class */ (function (_super) {
  41346. __extends(StandardMaterialDefines, _super);
  41347. function StandardMaterialDefines() {
  41348. var _this = _super.call(this) || this;
  41349. _this.MAINUV1 = false;
  41350. _this.MAINUV2 = false;
  41351. _this.DIFFUSE = false;
  41352. _this.DIFFUSEDIRECTUV = 0;
  41353. _this.AMBIENT = false;
  41354. _this.AMBIENTDIRECTUV = 0;
  41355. _this.OPACITY = false;
  41356. _this.OPACITYDIRECTUV = 0;
  41357. _this.OPACITYRGB = false;
  41358. _this.REFLECTION = false;
  41359. _this.EMISSIVE = false;
  41360. _this.EMISSIVEDIRECTUV = 0;
  41361. _this.SPECULAR = false;
  41362. _this.SPECULARDIRECTUV = 0;
  41363. _this.BUMP = false;
  41364. _this.BUMPDIRECTUV = 0;
  41365. _this.PARALLAX = false;
  41366. _this.PARALLAXOCCLUSION = false;
  41367. _this.SPECULAROVERALPHA = false;
  41368. _this.CLIPPLANE = false;
  41369. _this.CLIPPLANE2 = false;
  41370. _this.CLIPPLANE3 = false;
  41371. _this.CLIPPLANE4 = false;
  41372. _this.ALPHATEST = false;
  41373. _this.DEPTHPREPASS = false;
  41374. _this.ALPHAFROMDIFFUSE = false;
  41375. _this.POINTSIZE = false;
  41376. _this.FOG = false;
  41377. _this.SPECULARTERM = false;
  41378. _this.DIFFUSEFRESNEL = false;
  41379. _this.OPACITYFRESNEL = false;
  41380. _this.REFLECTIONFRESNEL = false;
  41381. _this.REFRACTIONFRESNEL = false;
  41382. _this.EMISSIVEFRESNEL = false;
  41383. _this.FRESNEL = false;
  41384. _this.NORMAL = false;
  41385. _this.UV1 = false;
  41386. _this.UV2 = false;
  41387. _this.VERTEXCOLOR = false;
  41388. _this.VERTEXALPHA = false;
  41389. _this.NUM_BONE_INFLUENCERS = 0;
  41390. _this.BonesPerMesh = 0;
  41391. _this.INSTANCES = false;
  41392. _this.GLOSSINESS = false;
  41393. _this.ROUGHNESS = false;
  41394. _this.EMISSIVEASILLUMINATION = false;
  41395. _this.LINKEMISSIVEWITHDIFFUSE = false;
  41396. _this.REFLECTIONFRESNELFROMSPECULAR = false;
  41397. _this.LIGHTMAP = false;
  41398. _this.LIGHTMAPDIRECTUV = 0;
  41399. _this.OBJECTSPACE_NORMALMAP = false;
  41400. _this.USELIGHTMAPASSHADOWMAP = false;
  41401. _this.REFLECTIONMAP_3D = false;
  41402. _this.REFLECTIONMAP_SPHERICAL = false;
  41403. _this.REFLECTIONMAP_PLANAR = false;
  41404. _this.REFLECTIONMAP_CUBIC = false;
  41405. _this.USE_LOCAL_REFLECTIONMAP_CUBIC = false;
  41406. _this.REFLECTIONMAP_PROJECTION = false;
  41407. _this.REFLECTIONMAP_SKYBOX = false;
  41408. _this.REFLECTIONMAP_SKYBOX_TRANSFORMED = false;
  41409. _this.REFLECTIONMAP_EXPLICIT = false;
  41410. _this.REFLECTIONMAP_EQUIRECTANGULAR = false;
  41411. _this.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = false;
  41412. _this.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = false;
  41413. _this.INVERTCUBICMAP = false;
  41414. _this.LOGARITHMICDEPTH = false;
  41415. _this.REFRACTION = false;
  41416. _this.REFRACTIONMAP_3D = false;
  41417. _this.REFLECTIONOVERALPHA = false;
  41418. _this.TWOSIDEDLIGHTING = false;
  41419. _this.SHADOWFLOAT = false;
  41420. _this.MORPHTARGETS = false;
  41421. _this.MORPHTARGETS_NORMAL = false;
  41422. _this.MORPHTARGETS_TANGENT = false;
  41423. _this.NUM_MORPH_INFLUENCERS = 0;
  41424. _this.NONUNIFORMSCALING = false; // https://playground.babylonjs.com#V6DWIH
  41425. _this.PREMULTIPLYALPHA = false; // https://playground.babylonjs.com#LNVJJ7
  41426. _this.IMAGEPROCESSING = false;
  41427. _this.VIGNETTE = false;
  41428. _this.VIGNETTEBLENDMODEMULTIPLY = false;
  41429. _this.VIGNETTEBLENDMODEOPAQUE = false;
  41430. _this.TONEMAPPING = false;
  41431. _this.TONEMAPPING_ACES = false;
  41432. _this.CONTRAST = false;
  41433. _this.COLORCURVES = false;
  41434. _this.COLORGRADING = false;
  41435. _this.COLORGRADING3D = false;
  41436. _this.SAMPLER3DGREENDEPTH = false;
  41437. _this.SAMPLER3DBGRMAP = false;
  41438. _this.IMAGEPROCESSINGPOSTPROCESS = false;
  41439. /**
  41440. * If the reflection texture on this material is in linear color space
  41441. * @hidden
  41442. */
  41443. _this.IS_REFLECTION_LINEAR = false;
  41444. /**
  41445. * If the refraction texture on this material is in linear color space
  41446. * @hidden
  41447. */
  41448. _this.IS_REFRACTION_LINEAR = false;
  41449. _this.EXPOSURE = false;
  41450. _this.rebuild();
  41451. return _this;
  41452. }
  41453. StandardMaterialDefines.prototype.setReflectionMode = function (modeToEnable) {
  41454. var modes = [
  41455. "REFLECTIONMAP_CUBIC", "REFLECTIONMAP_EXPLICIT", "REFLECTIONMAP_PLANAR",
  41456. "REFLECTIONMAP_PROJECTION", "REFLECTIONMAP_PROJECTION", "REFLECTIONMAP_SKYBOX",
  41457. "REFLECTIONMAP_SPHERICAL", "REFLECTIONMAP_EQUIRECTANGULAR", "REFLECTIONMAP_EQUIRECTANGULAR_FIXED",
  41458. "REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED"
  41459. ];
  41460. for (var _i = 0, modes_1 = modes; _i < modes_1.length; _i++) {
  41461. var mode = modes_1[_i];
  41462. this[mode] = (mode === modeToEnable);
  41463. }
  41464. };
  41465. return StandardMaterialDefines;
  41466. }(BABYLON.MaterialDefines));
  41467. BABYLON.StandardMaterialDefines = StandardMaterialDefines;
  41468. var StandardMaterial = /** @class */ (function (_super) {
  41469. __extends(StandardMaterial, _super);
  41470. function StandardMaterial(name, scene) {
  41471. var _this = _super.call(this, name, scene) || this;
  41472. _this.ambientColor = new BABYLON.Color3(0, 0, 0);
  41473. _this.diffuseColor = new BABYLON.Color3(1, 1, 1);
  41474. _this.specularColor = new BABYLON.Color3(1, 1, 1);
  41475. _this.emissiveColor = new BABYLON.Color3(0, 0, 0);
  41476. _this.specularPower = 64;
  41477. _this._useAlphaFromDiffuseTexture = false;
  41478. _this._useEmissiveAsIllumination = false;
  41479. _this._linkEmissiveWithDiffuse = false;
  41480. _this._useSpecularOverAlpha = false;
  41481. _this._useReflectionOverAlpha = false;
  41482. _this._disableLighting = false;
  41483. _this._useObjectSpaceNormalMap = false;
  41484. _this._useParallax = false;
  41485. _this._useParallaxOcclusion = false;
  41486. _this.parallaxScaleBias = 0.05;
  41487. _this._roughness = 0;
  41488. _this.indexOfRefraction = 0.98;
  41489. _this.invertRefractionY = true;
  41490. /**
  41491. * Defines the alpha limits in alpha test mode
  41492. */
  41493. _this.alphaCutOff = 0.4;
  41494. _this._useLightmapAsShadowmap = false;
  41495. _this._useReflectionFresnelFromSpecular = false;
  41496. _this._useGlossinessFromSpecularMapAlpha = false;
  41497. _this._maxSimultaneousLights = 4;
  41498. /**
  41499. * If sets to true, x component of normal map value will invert (x = 1.0 - x).
  41500. */
  41501. _this._invertNormalMapX = false;
  41502. /**
  41503. * If sets to true, y component of normal map value will invert (y = 1.0 - y).
  41504. */
  41505. _this._invertNormalMapY = false;
  41506. /**
  41507. * If sets to true and backfaceCulling is false, normals will be flipped on the backside.
  41508. */
  41509. _this._twoSidedLighting = false;
  41510. _this._renderTargets = new BABYLON.SmartArray(16);
  41511. _this._worldViewProjectionMatrix = BABYLON.Matrix.Zero();
  41512. _this._globalAmbientColor = new BABYLON.Color3(0, 0, 0);
  41513. // Setup the default processing configuration to the scene.
  41514. _this._attachImageProcessingConfiguration(null);
  41515. _this.getRenderTargetTextures = function () {
  41516. _this._renderTargets.reset();
  41517. if (StandardMaterial.ReflectionTextureEnabled && _this._reflectionTexture && _this._reflectionTexture.isRenderTarget) {
  41518. _this._renderTargets.push(_this._reflectionTexture);
  41519. }
  41520. if (StandardMaterial.RefractionTextureEnabled && _this._refractionTexture && _this._refractionTexture.isRenderTarget) {
  41521. _this._renderTargets.push(_this._refractionTexture);
  41522. }
  41523. return _this._renderTargets;
  41524. };
  41525. return _this;
  41526. }
  41527. Object.defineProperty(StandardMaterial.prototype, "imageProcessingConfiguration", {
  41528. /**
  41529. * Gets the image processing configuration used either in this material.
  41530. */
  41531. get: function () {
  41532. return this._imageProcessingConfiguration;
  41533. },
  41534. /**
  41535. * Sets the Default image processing configuration used either in the this material.
  41536. *
  41537. * If sets to null, the scene one is in use.
  41538. */
  41539. set: function (value) {
  41540. this._attachImageProcessingConfiguration(value);
  41541. // Ensure the effect will be rebuilt.
  41542. this._markAllSubMeshesAsTexturesDirty();
  41543. },
  41544. enumerable: true,
  41545. configurable: true
  41546. });
  41547. /**
  41548. * Attaches a new image processing configuration to the Standard Material.
  41549. * @param configuration
  41550. */
  41551. StandardMaterial.prototype._attachImageProcessingConfiguration = function (configuration) {
  41552. var _this = this;
  41553. if (configuration === this._imageProcessingConfiguration) {
  41554. return;
  41555. }
  41556. // Detaches observer.
  41557. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  41558. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  41559. }
  41560. // Pick the scene configuration if needed.
  41561. if (!configuration) {
  41562. this._imageProcessingConfiguration = this.getScene().imageProcessingConfiguration;
  41563. }
  41564. else {
  41565. this._imageProcessingConfiguration = configuration;
  41566. }
  41567. // Attaches observer.
  41568. if (this._imageProcessingConfiguration) {
  41569. this._imageProcessingObserver = this._imageProcessingConfiguration.onUpdateParameters.add(function (conf) {
  41570. _this._markAllSubMeshesAsImageProcessingDirty();
  41571. });
  41572. }
  41573. };
  41574. Object.defineProperty(StandardMaterial.prototype, "cameraColorCurvesEnabled", {
  41575. /**
  41576. * Gets wether the color curves effect is enabled.
  41577. */
  41578. get: function () {
  41579. return this.imageProcessingConfiguration.colorCurvesEnabled;
  41580. },
  41581. /**
  41582. * Sets wether the color curves effect is enabled.
  41583. */
  41584. set: function (value) {
  41585. this.imageProcessingConfiguration.colorCurvesEnabled = value;
  41586. },
  41587. enumerable: true,
  41588. configurable: true
  41589. });
  41590. Object.defineProperty(StandardMaterial.prototype, "cameraColorGradingEnabled", {
  41591. /**
  41592. * Gets wether the color grading effect is enabled.
  41593. */
  41594. get: function () {
  41595. return this.imageProcessingConfiguration.colorGradingEnabled;
  41596. },
  41597. /**
  41598. * Gets wether the color grading effect is enabled.
  41599. */
  41600. set: function (value) {
  41601. this.imageProcessingConfiguration.colorGradingEnabled = value;
  41602. },
  41603. enumerable: true,
  41604. configurable: true
  41605. });
  41606. Object.defineProperty(StandardMaterial.prototype, "cameraToneMappingEnabled", {
  41607. /**
  41608. * Gets wether tonemapping is enabled or not.
  41609. */
  41610. get: function () {
  41611. return this._imageProcessingConfiguration.toneMappingEnabled;
  41612. },
  41613. /**
  41614. * Sets wether tonemapping is enabled or not
  41615. */
  41616. set: function (value) {
  41617. this._imageProcessingConfiguration.toneMappingEnabled = value;
  41618. },
  41619. enumerable: true,
  41620. configurable: true
  41621. });
  41622. ;
  41623. ;
  41624. Object.defineProperty(StandardMaterial.prototype, "cameraExposure", {
  41625. /**
  41626. * The camera exposure used on this material.
  41627. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  41628. * This corresponds to a photographic exposure.
  41629. */
  41630. get: function () {
  41631. return this._imageProcessingConfiguration.exposure;
  41632. },
  41633. /**
  41634. * The camera exposure used on this material.
  41635. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  41636. * This corresponds to a photographic exposure.
  41637. */
  41638. set: function (value) {
  41639. this._imageProcessingConfiguration.exposure = value;
  41640. },
  41641. enumerable: true,
  41642. configurable: true
  41643. });
  41644. ;
  41645. ;
  41646. Object.defineProperty(StandardMaterial.prototype, "cameraContrast", {
  41647. /**
  41648. * Gets The camera contrast used on this material.
  41649. */
  41650. get: function () {
  41651. return this._imageProcessingConfiguration.contrast;
  41652. },
  41653. /**
  41654. * Sets The camera contrast used on this material.
  41655. */
  41656. set: function (value) {
  41657. this._imageProcessingConfiguration.contrast = value;
  41658. },
  41659. enumerable: true,
  41660. configurable: true
  41661. });
  41662. Object.defineProperty(StandardMaterial.prototype, "cameraColorGradingTexture", {
  41663. /**
  41664. * Gets the Color Grading 2D Lookup Texture.
  41665. */
  41666. get: function () {
  41667. return this._imageProcessingConfiguration.colorGradingTexture;
  41668. },
  41669. /**
  41670. * Sets the Color Grading 2D Lookup Texture.
  41671. */
  41672. set: function (value) {
  41673. this._imageProcessingConfiguration.colorGradingTexture = value;
  41674. },
  41675. enumerable: true,
  41676. configurable: true
  41677. });
  41678. Object.defineProperty(StandardMaterial.prototype, "cameraColorCurves", {
  41679. /**
  41680. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  41681. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  41682. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  41683. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  41684. */
  41685. get: function () {
  41686. return this._imageProcessingConfiguration.colorCurves;
  41687. },
  41688. /**
  41689. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  41690. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  41691. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  41692. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  41693. */
  41694. set: function (value) {
  41695. this._imageProcessingConfiguration.colorCurves = value;
  41696. },
  41697. enumerable: true,
  41698. configurable: true
  41699. });
  41700. StandardMaterial.prototype.getClassName = function () {
  41701. return "StandardMaterial";
  41702. };
  41703. Object.defineProperty(StandardMaterial.prototype, "useLogarithmicDepth", {
  41704. get: function () {
  41705. return this._useLogarithmicDepth;
  41706. },
  41707. set: function (value) {
  41708. this._useLogarithmicDepth = value && this.getScene().getEngine().getCaps().fragmentDepthSupported;
  41709. this._markAllSubMeshesAsMiscDirty();
  41710. },
  41711. enumerable: true,
  41712. configurable: true
  41713. });
  41714. StandardMaterial.prototype.needAlphaBlending = function () {
  41715. return (this.alpha < 1.0) || (this._opacityTexture != null) || this._shouldUseAlphaFromDiffuseTexture() || this._opacityFresnelParameters && this._opacityFresnelParameters.isEnabled;
  41716. };
  41717. StandardMaterial.prototype.needAlphaTesting = function () {
  41718. return this._diffuseTexture != null && this._diffuseTexture.hasAlpha;
  41719. };
  41720. StandardMaterial.prototype._shouldUseAlphaFromDiffuseTexture = function () {
  41721. return this._diffuseTexture != null && this._diffuseTexture.hasAlpha && this._useAlphaFromDiffuseTexture;
  41722. };
  41723. StandardMaterial.prototype.getAlphaTestTexture = function () {
  41724. return this._diffuseTexture;
  41725. };
  41726. /**
  41727. * Child classes can use it to update shaders
  41728. */
  41729. StandardMaterial.prototype.isReadyForSubMesh = function (mesh, subMesh, useInstances) {
  41730. if (useInstances === void 0) { useInstances = false; }
  41731. if (subMesh.effect && this.isFrozen) {
  41732. if (this._wasPreviouslyReady) {
  41733. return true;
  41734. }
  41735. }
  41736. if (!subMesh._materialDefines) {
  41737. subMesh._materialDefines = new StandardMaterialDefines();
  41738. }
  41739. var scene = this.getScene();
  41740. var defines = subMesh._materialDefines;
  41741. if (!this.checkReadyOnEveryCall && subMesh.effect) {
  41742. if (defines._renderId === scene.getRenderId()) {
  41743. return true;
  41744. }
  41745. }
  41746. var engine = scene.getEngine();
  41747. // Lights
  41748. defines._needNormals = BABYLON.MaterialHelper.PrepareDefinesForLights(scene, mesh, defines, true, this._maxSimultaneousLights, this._disableLighting);
  41749. // Textures
  41750. if (defines._areTexturesDirty) {
  41751. defines._needUVs = false;
  41752. defines.MAINUV1 = false;
  41753. defines.MAINUV2 = false;
  41754. if (scene.texturesEnabled) {
  41755. if (this._diffuseTexture && StandardMaterial.DiffuseTextureEnabled) {
  41756. if (!this._diffuseTexture.isReadyOrNotBlocking()) {
  41757. return false;
  41758. }
  41759. else {
  41760. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._diffuseTexture, defines, "DIFFUSE");
  41761. }
  41762. }
  41763. else {
  41764. defines.DIFFUSE = false;
  41765. }
  41766. if (this._ambientTexture && StandardMaterial.AmbientTextureEnabled) {
  41767. if (!this._ambientTexture.isReadyOrNotBlocking()) {
  41768. return false;
  41769. }
  41770. else {
  41771. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._ambientTexture, defines, "AMBIENT");
  41772. }
  41773. }
  41774. else {
  41775. defines.AMBIENT = false;
  41776. }
  41777. if (this._opacityTexture && StandardMaterial.OpacityTextureEnabled) {
  41778. if (!this._opacityTexture.isReadyOrNotBlocking()) {
  41779. return false;
  41780. }
  41781. else {
  41782. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._opacityTexture, defines, "OPACITY");
  41783. defines.OPACITYRGB = this._opacityTexture.getAlphaFromRGB;
  41784. }
  41785. }
  41786. else {
  41787. defines.OPACITY = false;
  41788. }
  41789. if (this._reflectionTexture && StandardMaterial.ReflectionTextureEnabled) {
  41790. if (!this._reflectionTexture.isReadyOrNotBlocking()) {
  41791. return false;
  41792. }
  41793. else {
  41794. defines._needNormals = true;
  41795. defines.REFLECTION = true;
  41796. defines.ROUGHNESS = (this._roughness > 0);
  41797. defines.REFLECTIONOVERALPHA = this._useReflectionOverAlpha;
  41798. defines.INVERTCUBICMAP = (this._reflectionTexture.coordinatesMode === BABYLON.Texture.INVCUBIC_MODE);
  41799. defines.REFLECTIONMAP_3D = this._reflectionTexture.isCube;
  41800. switch (this._reflectionTexture.coordinatesMode) {
  41801. case BABYLON.Texture.EXPLICIT_MODE:
  41802. defines.setReflectionMode("REFLECTIONMAP_EXPLICIT");
  41803. break;
  41804. case BABYLON.Texture.PLANAR_MODE:
  41805. defines.setReflectionMode("REFLECTIONMAP_PLANAR");
  41806. break;
  41807. case BABYLON.Texture.PROJECTION_MODE:
  41808. defines.setReflectionMode("REFLECTIONMAP_PROJECTION");
  41809. break;
  41810. case BABYLON.Texture.SKYBOX_MODE:
  41811. defines.setReflectionMode("REFLECTIONMAP_SKYBOX");
  41812. defines.REFLECTIONMAP_SKYBOX_TRANSFORMED = !this._reflectionTexture.getReflectionTextureMatrix().isIdentity();
  41813. break;
  41814. case BABYLON.Texture.SPHERICAL_MODE:
  41815. defines.setReflectionMode("REFLECTIONMAP_SPHERICAL");
  41816. break;
  41817. case BABYLON.Texture.EQUIRECTANGULAR_MODE:
  41818. defines.setReflectionMode("REFLECTIONMAP_EQUIRECTANGULAR");
  41819. break;
  41820. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MODE:
  41821. defines.setReflectionMode("REFLECTIONMAP_EQUIRECTANGULAR_FIXED");
  41822. break;
  41823. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE:
  41824. defines.setReflectionMode("REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED");
  41825. break;
  41826. case BABYLON.Texture.CUBIC_MODE:
  41827. case BABYLON.Texture.INVCUBIC_MODE:
  41828. default:
  41829. defines.setReflectionMode("REFLECTIONMAP_CUBIC");
  41830. break;
  41831. }
  41832. defines.USE_LOCAL_REFLECTIONMAP_CUBIC = this._reflectionTexture.boundingBoxSize ? true : false;
  41833. }
  41834. }
  41835. else {
  41836. defines.REFLECTION = false;
  41837. }
  41838. if (this._emissiveTexture && StandardMaterial.EmissiveTextureEnabled) {
  41839. if (!this._emissiveTexture.isReadyOrNotBlocking()) {
  41840. return false;
  41841. }
  41842. else {
  41843. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._emissiveTexture, defines, "EMISSIVE");
  41844. }
  41845. }
  41846. else {
  41847. defines.EMISSIVE = false;
  41848. }
  41849. if (this._lightmapTexture && StandardMaterial.LightmapTextureEnabled) {
  41850. if (!this._lightmapTexture.isReadyOrNotBlocking()) {
  41851. return false;
  41852. }
  41853. else {
  41854. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._lightmapTexture, defines, "LIGHTMAP");
  41855. defines.USELIGHTMAPASSHADOWMAP = this._useLightmapAsShadowmap;
  41856. }
  41857. }
  41858. else {
  41859. defines.LIGHTMAP = false;
  41860. }
  41861. if (this._specularTexture && StandardMaterial.SpecularTextureEnabled) {
  41862. if (!this._specularTexture.isReadyOrNotBlocking()) {
  41863. return false;
  41864. }
  41865. else {
  41866. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._specularTexture, defines, "SPECULAR");
  41867. defines.GLOSSINESS = this._useGlossinessFromSpecularMapAlpha;
  41868. }
  41869. }
  41870. else {
  41871. defines.SPECULAR = false;
  41872. }
  41873. if (scene.getEngine().getCaps().standardDerivatives && this._bumpTexture && StandardMaterial.BumpTextureEnabled) {
  41874. // Bump texure can not be not blocking.
  41875. if (!this._bumpTexture.isReady()) {
  41876. return false;
  41877. }
  41878. else {
  41879. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._bumpTexture, defines, "BUMP");
  41880. defines.PARALLAX = this._useParallax;
  41881. defines.PARALLAXOCCLUSION = this._useParallaxOcclusion;
  41882. }
  41883. defines.OBJECTSPACE_NORMALMAP = this._useObjectSpaceNormalMap;
  41884. }
  41885. else {
  41886. defines.BUMP = false;
  41887. }
  41888. if (this._refractionTexture && StandardMaterial.RefractionTextureEnabled) {
  41889. if (!this._refractionTexture.isReadyOrNotBlocking()) {
  41890. return false;
  41891. }
  41892. else {
  41893. defines._needUVs = true;
  41894. defines.REFRACTION = true;
  41895. defines.REFRACTIONMAP_3D = this._refractionTexture.isCube;
  41896. }
  41897. }
  41898. else {
  41899. defines.REFRACTION = false;
  41900. }
  41901. defines.TWOSIDEDLIGHTING = !this._backFaceCulling && this._twoSidedLighting;
  41902. }
  41903. else {
  41904. defines.DIFFUSE = false;
  41905. defines.AMBIENT = false;
  41906. defines.OPACITY = false;
  41907. defines.REFLECTION = false;
  41908. defines.EMISSIVE = false;
  41909. defines.LIGHTMAP = false;
  41910. defines.BUMP = false;
  41911. defines.REFRACTION = false;
  41912. }
  41913. defines.ALPHAFROMDIFFUSE = this._shouldUseAlphaFromDiffuseTexture();
  41914. defines.EMISSIVEASILLUMINATION = this._useEmissiveAsIllumination;
  41915. defines.LINKEMISSIVEWITHDIFFUSE = this._linkEmissiveWithDiffuse;
  41916. defines.SPECULAROVERALPHA = this._useSpecularOverAlpha;
  41917. defines.PREMULTIPLYALPHA = (this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED || this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED_PORTERDUFF);
  41918. }
  41919. if (defines._areImageProcessingDirty && this._imageProcessingConfiguration) {
  41920. if (!this._imageProcessingConfiguration.isReady()) {
  41921. return false;
  41922. }
  41923. this._imageProcessingConfiguration.prepareDefines(defines);
  41924. defines.IS_REFLECTION_LINEAR = (this.reflectionTexture != null && !this.reflectionTexture.gammaSpace);
  41925. defines.IS_REFRACTION_LINEAR = (this.refractionTexture != null && !this.refractionTexture.gammaSpace);
  41926. }
  41927. if (defines._areFresnelDirty) {
  41928. if (StandardMaterial.FresnelEnabled) {
  41929. // Fresnel
  41930. if (this._diffuseFresnelParameters || this._opacityFresnelParameters ||
  41931. this._emissiveFresnelParameters || this._refractionFresnelParameters ||
  41932. this._reflectionFresnelParameters) {
  41933. defines.DIFFUSEFRESNEL = (this._diffuseFresnelParameters && this._diffuseFresnelParameters.isEnabled);
  41934. defines.OPACITYFRESNEL = (this._opacityFresnelParameters && this._opacityFresnelParameters.isEnabled);
  41935. defines.REFLECTIONFRESNEL = (this._reflectionFresnelParameters && this._reflectionFresnelParameters.isEnabled);
  41936. defines.REFLECTIONFRESNELFROMSPECULAR = this._useReflectionFresnelFromSpecular;
  41937. defines.REFRACTIONFRESNEL = (this._refractionFresnelParameters && this._refractionFresnelParameters.isEnabled);
  41938. defines.EMISSIVEFRESNEL = (this._emissiveFresnelParameters && this._emissiveFresnelParameters.isEnabled);
  41939. defines._needNormals = true;
  41940. defines.FRESNEL = true;
  41941. }
  41942. }
  41943. else {
  41944. defines.FRESNEL = false;
  41945. }
  41946. }
  41947. // Misc.
  41948. BABYLON.MaterialHelper.PrepareDefinesForMisc(mesh, scene, this._useLogarithmicDepth, this.pointsCloud, this.fogEnabled, this._shouldTurnAlphaTestOn(mesh), defines);
  41949. // Attribs
  41950. BABYLON.MaterialHelper.PrepareDefinesForAttributes(mesh, defines, true, true, true);
  41951. // Values that need to be evaluated on every frame
  41952. BABYLON.MaterialHelper.PrepareDefinesForFrameBoundValues(scene, engine, defines, useInstances);
  41953. // Get correct effect
  41954. if (defines.isDirty) {
  41955. defines.markAsProcessed();
  41956. scene.resetCachedMaterial();
  41957. // Fallbacks
  41958. var fallbacks = new BABYLON.EffectFallbacks();
  41959. if (defines.REFLECTION) {
  41960. fallbacks.addFallback(0, "REFLECTION");
  41961. }
  41962. if (defines.SPECULAR) {
  41963. fallbacks.addFallback(0, "SPECULAR");
  41964. }
  41965. if (defines.BUMP) {
  41966. fallbacks.addFallback(0, "BUMP");
  41967. }
  41968. if (defines.PARALLAX) {
  41969. fallbacks.addFallback(1, "PARALLAX");
  41970. }
  41971. if (defines.PARALLAXOCCLUSION) {
  41972. fallbacks.addFallback(0, "PARALLAXOCCLUSION");
  41973. }
  41974. if (defines.SPECULAROVERALPHA) {
  41975. fallbacks.addFallback(0, "SPECULAROVERALPHA");
  41976. }
  41977. if (defines.FOG) {
  41978. fallbacks.addFallback(1, "FOG");
  41979. }
  41980. if (defines.POINTSIZE) {
  41981. fallbacks.addFallback(0, "POINTSIZE");
  41982. }
  41983. if (defines.LOGARITHMICDEPTH) {
  41984. fallbacks.addFallback(0, "LOGARITHMICDEPTH");
  41985. }
  41986. BABYLON.MaterialHelper.HandleFallbacksForShadows(defines, fallbacks, this._maxSimultaneousLights);
  41987. if (defines.SPECULARTERM) {
  41988. fallbacks.addFallback(0, "SPECULARTERM");
  41989. }
  41990. if (defines.DIFFUSEFRESNEL) {
  41991. fallbacks.addFallback(1, "DIFFUSEFRESNEL");
  41992. }
  41993. if (defines.OPACITYFRESNEL) {
  41994. fallbacks.addFallback(2, "OPACITYFRESNEL");
  41995. }
  41996. if (defines.REFLECTIONFRESNEL) {
  41997. fallbacks.addFallback(3, "REFLECTIONFRESNEL");
  41998. }
  41999. if (defines.EMISSIVEFRESNEL) {
  42000. fallbacks.addFallback(4, "EMISSIVEFRESNEL");
  42001. }
  42002. if (defines.FRESNEL) {
  42003. fallbacks.addFallback(4, "FRESNEL");
  42004. }
  42005. //Attributes
  42006. var attribs = [BABYLON.VertexBuffer.PositionKind];
  42007. if (defines.NORMAL) {
  42008. attribs.push(BABYLON.VertexBuffer.NormalKind);
  42009. }
  42010. if (defines.UV1) {
  42011. attribs.push(BABYLON.VertexBuffer.UVKind);
  42012. }
  42013. if (defines.UV2) {
  42014. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  42015. }
  42016. if (defines.VERTEXCOLOR) {
  42017. attribs.push(BABYLON.VertexBuffer.ColorKind);
  42018. }
  42019. BABYLON.MaterialHelper.PrepareAttributesForBones(attribs, mesh, defines, fallbacks);
  42020. BABYLON.MaterialHelper.PrepareAttributesForInstances(attribs, defines);
  42021. BABYLON.MaterialHelper.PrepareAttributesForMorphTargets(attribs, mesh, defines);
  42022. var shaderName = "default";
  42023. var uniforms = ["world", "view", "viewProjection", "vEyePosition", "vLightsType", "vAmbientColor", "vDiffuseColor", "vSpecularColor", "vEmissiveColor",
  42024. "vFogInfos", "vFogColor", "pointSize",
  42025. "vDiffuseInfos", "vAmbientInfos", "vOpacityInfos", "vReflectionInfos", "vEmissiveInfos", "vSpecularInfos", "vBumpInfos", "vLightmapInfos", "vRefractionInfos",
  42026. "mBones",
  42027. "vClipPlane", "vClipPlane2", "vClipPlane3", "vClipPlane4", "diffuseMatrix", "ambientMatrix", "opacityMatrix", "reflectionMatrix", "emissiveMatrix", "specularMatrix", "bumpMatrix", "normalMatrix", "lightmapMatrix", "refractionMatrix",
  42028. "diffuseLeftColor", "diffuseRightColor", "opacityParts", "reflectionLeftColor", "reflectionRightColor", "emissiveLeftColor", "emissiveRightColor", "refractionLeftColor", "refractionRightColor",
  42029. "vReflectionPosition", "vReflectionSize",
  42030. "logarithmicDepthConstant", "vTangentSpaceParams", "alphaCutOff"
  42031. ];
  42032. var samplers = ["diffuseSampler", "ambientSampler", "opacitySampler", "reflectionCubeSampler", "reflection2DSampler", "emissiveSampler", "specularSampler", "bumpSampler", "lightmapSampler", "refractionCubeSampler", "refraction2DSampler"];
  42033. var uniformBuffers = ["Material", "Scene"];
  42034. if (BABYLON.ImageProcessingConfiguration) {
  42035. BABYLON.ImageProcessingConfiguration.PrepareUniforms(uniforms, defines);
  42036. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, defines);
  42037. }
  42038. BABYLON.MaterialHelper.PrepareUniformsAndSamplersList({
  42039. uniformsNames: uniforms,
  42040. uniformBuffersNames: uniformBuffers,
  42041. samplers: samplers,
  42042. defines: defines,
  42043. maxSimultaneousLights: this._maxSimultaneousLights
  42044. });
  42045. if (this.customShaderNameResolve) {
  42046. shaderName = this.customShaderNameResolve(shaderName, uniforms, uniformBuffers, samplers, defines);
  42047. }
  42048. var join = defines.toString();
  42049. subMesh.setEffect(scene.getEngine().createEffect(shaderName, {
  42050. attributes: attribs,
  42051. uniformsNames: uniforms,
  42052. uniformBuffersNames: uniformBuffers,
  42053. samplers: samplers,
  42054. defines: join,
  42055. fallbacks: fallbacks,
  42056. onCompiled: this.onCompiled,
  42057. onError: this.onError,
  42058. indexParameters: { maxSimultaneousLights: this._maxSimultaneousLights, maxSimultaneousMorphTargets: defines.NUM_MORPH_INFLUENCERS }
  42059. }, engine), defines);
  42060. this.buildUniformLayout();
  42061. }
  42062. if (!subMesh.effect || !subMesh.effect.isReady()) {
  42063. return false;
  42064. }
  42065. defines._renderId = scene.getRenderId();
  42066. this._wasPreviouslyReady = true;
  42067. return true;
  42068. };
  42069. StandardMaterial.prototype.buildUniformLayout = function () {
  42070. // Order is important !
  42071. this._uniformBuffer.addUniform("diffuseLeftColor", 4);
  42072. this._uniformBuffer.addUniform("diffuseRightColor", 4);
  42073. this._uniformBuffer.addUniform("opacityParts", 4);
  42074. this._uniformBuffer.addUniform("reflectionLeftColor", 4);
  42075. this._uniformBuffer.addUniform("reflectionRightColor", 4);
  42076. this._uniformBuffer.addUniform("refractionLeftColor", 4);
  42077. this._uniformBuffer.addUniform("refractionRightColor", 4);
  42078. this._uniformBuffer.addUniform("emissiveLeftColor", 4);
  42079. this._uniformBuffer.addUniform("emissiveRightColor", 4);
  42080. this._uniformBuffer.addUniform("vDiffuseInfos", 2);
  42081. this._uniformBuffer.addUniform("vAmbientInfos", 2);
  42082. this._uniformBuffer.addUniform("vOpacityInfos", 2);
  42083. this._uniformBuffer.addUniform("vReflectionInfos", 2);
  42084. this._uniformBuffer.addUniform("vReflectionPosition", 3);
  42085. this._uniformBuffer.addUniform("vReflectionSize", 3);
  42086. this._uniformBuffer.addUniform("vEmissiveInfos", 2);
  42087. this._uniformBuffer.addUniform("vLightmapInfos", 2);
  42088. this._uniformBuffer.addUniform("vSpecularInfos", 2);
  42089. this._uniformBuffer.addUniform("vBumpInfos", 3);
  42090. this._uniformBuffer.addUniform("diffuseMatrix", 16);
  42091. this._uniformBuffer.addUniform("ambientMatrix", 16);
  42092. this._uniformBuffer.addUniform("opacityMatrix", 16);
  42093. this._uniformBuffer.addUniform("reflectionMatrix", 16);
  42094. this._uniformBuffer.addUniform("emissiveMatrix", 16);
  42095. this._uniformBuffer.addUniform("lightmapMatrix", 16);
  42096. this._uniformBuffer.addUniform("specularMatrix", 16);
  42097. this._uniformBuffer.addUniform("bumpMatrix", 16);
  42098. this._uniformBuffer.addUniform("vTangentSpaceParams", 2);
  42099. this._uniformBuffer.addUniform("refractionMatrix", 16);
  42100. this._uniformBuffer.addUniform("vRefractionInfos", 4);
  42101. this._uniformBuffer.addUniform("vSpecularColor", 4);
  42102. this._uniformBuffer.addUniform("vEmissiveColor", 3);
  42103. this._uniformBuffer.addUniform("vDiffuseColor", 4);
  42104. this._uniformBuffer.addUniform("pointSize", 1);
  42105. this._uniformBuffer.create();
  42106. };
  42107. StandardMaterial.prototype.unbind = function () {
  42108. if (this._activeEffect) {
  42109. var needFlag = false;
  42110. if (this._reflectionTexture && this._reflectionTexture.isRenderTarget) {
  42111. this._activeEffect.setTexture("reflection2DSampler", null);
  42112. needFlag = true;
  42113. }
  42114. if (this._refractionTexture && this._refractionTexture.isRenderTarget) {
  42115. this._activeEffect.setTexture("refraction2DSampler", null);
  42116. needFlag = true;
  42117. }
  42118. if (needFlag) {
  42119. this._markAllSubMeshesAsTexturesDirty();
  42120. }
  42121. }
  42122. _super.prototype.unbind.call(this);
  42123. };
  42124. StandardMaterial.prototype.bindForSubMesh = function (world, mesh, subMesh) {
  42125. var scene = this.getScene();
  42126. var defines = subMesh._materialDefines;
  42127. if (!defines) {
  42128. return;
  42129. }
  42130. var effect = subMesh.effect;
  42131. if (!effect) {
  42132. return;
  42133. }
  42134. this._activeEffect = effect;
  42135. // Matrices
  42136. this.bindOnlyWorldMatrix(world);
  42137. // Normal Matrix
  42138. if (defines.OBJECTSPACE_NORMALMAP) {
  42139. world.toNormalMatrix(this._normalMatrix);
  42140. this.bindOnlyNormalMatrix(this._normalMatrix);
  42141. }
  42142. var mustRebind = this._mustRebind(scene, effect, mesh.visibility);
  42143. // Bones
  42144. BABYLON.MaterialHelper.BindBonesParameters(mesh, effect);
  42145. if (mustRebind) {
  42146. this._uniformBuffer.bindToEffect(effect, "Material");
  42147. this.bindViewProjection(effect);
  42148. if (!this._uniformBuffer.useUbo || !this.isFrozen || !this._uniformBuffer.isSync) {
  42149. if (StandardMaterial.FresnelEnabled && defines.FRESNEL) {
  42150. // Fresnel
  42151. if (this.diffuseFresnelParameters && this.diffuseFresnelParameters.isEnabled) {
  42152. this._uniformBuffer.updateColor4("diffuseLeftColor", this.diffuseFresnelParameters.leftColor, this.diffuseFresnelParameters.power);
  42153. this._uniformBuffer.updateColor4("diffuseRightColor", this.diffuseFresnelParameters.rightColor, this.diffuseFresnelParameters.bias);
  42154. }
  42155. if (this.opacityFresnelParameters && this.opacityFresnelParameters.isEnabled) {
  42156. this._uniformBuffer.updateColor4("opacityParts", new BABYLON.Color3(this.opacityFresnelParameters.leftColor.toLuminance(), this.opacityFresnelParameters.rightColor.toLuminance(), this.opacityFresnelParameters.bias), this.opacityFresnelParameters.power);
  42157. }
  42158. if (this.reflectionFresnelParameters && this.reflectionFresnelParameters.isEnabled) {
  42159. this._uniformBuffer.updateColor4("reflectionLeftColor", this.reflectionFresnelParameters.leftColor, this.reflectionFresnelParameters.power);
  42160. this._uniformBuffer.updateColor4("reflectionRightColor", this.reflectionFresnelParameters.rightColor, this.reflectionFresnelParameters.bias);
  42161. }
  42162. if (this.refractionFresnelParameters && this.refractionFresnelParameters.isEnabled) {
  42163. this._uniformBuffer.updateColor4("refractionLeftColor", this.refractionFresnelParameters.leftColor, this.refractionFresnelParameters.power);
  42164. this._uniformBuffer.updateColor4("refractionRightColor", this.refractionFresnelParameters.rightColor, this.refractionFresnelParameters.bias);
  42165. }
  42166. if (this.emissiveFresnelParameters && this.emissiveFresnelParameters.isEnabled) {
  42167. this._uniformBuffer.updateColor4("emissiveLeftColor", this.emissiveFresnelParameters.leftColor, this.emissiveFresnelParameters.power);
  42168. this._uniformBuffer.updateColor4("emissiveRightColor", this.emissiveFresnelParameters.rightColor, this.emissiveFresnelParameters.bias);
  42169. }
  42170. }
  42171. // Textures
  42172. if (scene.texturesEnabled) {
  42173. if (this._diffuseTexture && StandardMaterial.DiffuseTextureEnabled) {
  42174. this._uniformBuffer.updateFloat2("vDiffuseInfos", this._diffuseTexture.coordinatesIndex, this._diffuseTexture.level);
  42175. BABYLON.MaterialHelper.BindTextureMatrix(this._diffuseTexture, this._uniformBuffer, "diffuse");
  42176. if (this._diffuseTexture.hasAlpha) {
  42177. effect.setFloat("alphaCutOff", this.alphaCutOff);
  42178. }
  42179. }
  42180. if (this._ambientTexture && StandardMaterial.AmbientTextureEnabled) {
  42181. this._uniformBuffer.updateFloat2("vAmbientInfos", this._ambientTexture.coordinatesIndex, this._ambientTexture.level);
  42182. BABYLON.MaterialHelper.BindTextureMatrix(this._ambientTexture, this._uniformBuffer, "ambient");
  42183. }
  42184. if (this._opacityTexture && StandardMaterial.OpacityTextureEnabled) {
  42185. this._uniformBuffer.updateFloat2("vOpacityInfos", this._opacityTexture.coordinatesIndex, this._opacityTexture.level);
  42186. BABYLON.MaterialHelper.BindTextureMatrix(this._opacityTexture, this._uniformBuffer, "opacity");
  42187. }
  42188. if (this._reflectionTexture && StandardMaterial.ReflectionTextureEnabled) {
  42189. this._uniformBuffer.updateFloat2("vReflectionInfos", this._reflectionTexture.level, this.roughness);
  42190. this._uniformBuffer.updateMatrix("reflectionMatrix", this._reflectionTexture.getReflectionTextureMatrix());
  42191. if (this._reflectionTexture.boundingBoxSize) {
  42192. var cubeTexture = this._reflectionTexture;
  42193. this._uniformBuffer.updateVector3("vReflectionPosition", cubeTexture.boundingBoxPosition);
  42194. this._uniformBuffer.updateVector3("vReflectionSize", cubeTexture.boundingBoxSize);
  42195. }
  42196. }
  42197. if (this._emissiveTexture && StandardMaterial.EmissiveTextureEnabled) {
  42198. this._uniformBuffer.updateFloat2("vEmissiveInfos", this._emissiveTexture.coordinatesIndex, this._emissiveTexture.level);
  42199. BABYLON.MaterialHelper.BindTextureMatrix(this._emissiveTexture, this._uniformBuffer, "emissive");
  42200. }
  42201. if (this._lightmapTexture && StandardMaterial.LightmapTextureEnabled) {
  42202. this._uniformBuffer.updateFloat2("vLightmapInfos", this._lightmapTexture.coordinatesIndex, this._lightmapTexture.level);
  42203. BABYLON.MaterialHelper.BindTextureMatrix(this._lightmapTexture, this._uniformBuffer, "lightmap");
  42204. }
  42205. if (this._specularTexture && StandardMaterial.SpecularTextureEnabled) {
  42206. this._uniformBuffer.updateFloat2("vSpecularInfos", this._specularTexture.coordinatesIndex, this._specularTexture.level);
  42207. BABYLON.MaterialHelper.BindTextureMatrix(this._specularTexture, this._uniformBuffer, "specular");
  42208. }
  42209. if (this._bumpTexture && scene.getEngine().getCaps().standardDerivatives && StandardMaterial.BumpTextureEnabled) {
  42210. this._uniformBuffer.updateFloat3("vBumpInfos", this._bumpTexture.coordinatesIndex, 1.0 / this._bumpTexture.level, this.parallaxScaleBias);
  42211. BABYLON.MaterialHelper.BindTextureMatrix(this._bumpTexture, this._uniformBuffer, "bump");
  42212. if (scene._mirroredCameraPosition) {
  42213. this._uniformBuffer.updateFloat2("vTangentSpaceParams", this._invertNormalMapX ? 1.0 : -1.0, this._invertNormalMapY ? 1.0 : -1.0);
  42214. }
  42215. else {
  42216. this._uniformBuffer.updateFloat2("vTangentSpaceParams", this._invertNormalMapX ? -1.0 : 1.0, this._invertNormalMapY ? -1.0 : 1.0);
  42217. }
  42218. }
  42219. if (this._refractionTexture && StandardMaterial.RefractionTextureEnabled) {
  42220. var depth = 1.0;
  42221. if (!this._refractionTexture.isCube) {
  42222. this._uniformBuffer.updateMatrix("refractionMatrix", this._refractionTexture.getReflectionTextureMatrix());
  42223. if (this._refractionTexture.depth) {
  42224. depth = this._refractionTexture.depth;
  42225. }
  42226. }
  42227. this._uniformBuffer.updateFloat4("vRefractionInfos", this._refractionTexture.level, this.indexOfRefraction, depth, this.invertRefractionY ? -1 : 1);
  42228. }
  42229. }
  42230. // Point size
  42231. if (this.pointsCloud) {
  42232. this._uniformBuffer.updateFloat("pointSize", this.pointSize);
  42233. }
  42234. if (defines.SPECULARTERM) {
  42235. this._uniformBuffer.updateColor4("vSpecularColor", this.specularColor, this.specularPower);
  42236. }
  42237. this._uniformBuffer.updateColor3("vEmissiveColor", this.emissiveColor);
  42238. // Diffuse
  42239. this._uniformBuffer.updateColor4("vDiffuseColor", this.diffuseColor, this.alpha * mesh.visibility);
  42240. }
  42241. // Textures
  42242. if (scene.texturesEnabled) {
  42243. if (this._diffuseTexture && StandardMaterial.DiffuseTextureEnabled) {
  42244. effect.setTexture("diffuseSampler", this._diffuseTexture);
  42245. }
  42246. if (this._ambientTexture && StandardMaterial.AmbientTextureEnabled) {
  42247. effect.setTexture("ambientSampler", this._ambientTexture);
  42248. }
  42249. if (this._opacityTexture && StandardMaterial.OpacityTextureEnabled) {
  42250. effect.setTexture("opacitySampler", this._opacityTexture);
  42251. }
  42252. if (this._reflectionTexture && StandardMaterial.ReflectionTextureEnabled) {
  42253. if (this._reflectionTexture.isCube) {
  42254. effect.setTexture("reflectionCubeSampler", this._reflectionTexture);
  42255. }
  42256. else {
  42257. effect.setTexture("reflection2DSampler", this._reflectionTexture);
  42258. }
  42259. }
  42260. if (this._emissiveTexture && StandardMaterial.EmissiveTextureEnabled) {
  42261. effect.setTexture("emissiveSampler", this._emissiveTexture);
  42262. }
  42263. if (this._lightmapTexture && StandardMaterial.LightmapTextureEnabled) {
  42264. effect.setTexture("lightmapSampler", this._lightmapTexture);
  42265. }
  42266. if (this._specularTexture && StandardMaterial.SpecularTextureEnabled) {
  42267. effect.setTexture("specularSampler", this._specularTexture);
  42268. }
  42269. if (this._bumpTexture && scene.getEngine().getCaps().standardDerivatives && StandardMaterial.BumpTextureEnabled) {
  42270. effect.setTexture("bumpSampler", this._bumpTexture);
  42271. }
  42272. if (this._refractionTexture && StandardMaterial.RefractionTextureEnabled) {
  42273. var depth = 1.0;
  42274. if (this._refractionTexture.isCube) {
  42275. effect.setTexture("refractionCubeSampler", this._refractionTexture);
  42276. }
  42277. else {
  42278. effect.setTexture("refraction2DSampler", this._refractionTexture);
  42279. }
  42280. }
  42281. }
  42282. // Clip plane
  42283. BABYLON.MaterialHelper.BindClipPlane(effect, scene);
  42284. // Colors
  42285. scene.ambientColor.multiplyToRef(this.ambientColor, this._globalAmbientColor);
  42286. BABYLON.MaterialHelper.BindEyePosition(effect, scene);
  42287. effect.setColor3("vAmbientColor", this._globalAmbientColor);
  42288. }
  42289. if (mustRebind || !this.isFrozen) {
  42290. // Lights
  42291. if (scene.lightsEnabled && !this._disableLighting) {
  42292. BABYLON.MaterialHelper.BindLights(scene, mesh, effect, defines, this._maxSimultaneousLights);
  42293. }
  42294. // View
  42295. if (scene.fogEnabled && mesh.applyFog && scene.fogMode !== BABYLON.Scene.FOGMODE_NONE || this._reflectionTexture || this._refractionTexture) {
  42296. this.bindView(effect);
  42297. }
  42298. // Fog
  42299. BABYLON.MaterialHelper.BindFogParameters(scene, mesh, effect);
  42300. // Morph targets
  42301. if (defines.NUM_MORPH_INFLUENCERS) {
  42302. BABYLON.MaterialHelper.BindMorphTargetParameters(mesh, effect);
  42303. }
  42304. // Log. depth
  42305. BABYLON.MaterialHelper.BindLogDepth(defines, effect, scene);
  42306. // image processing
  42307. if (this._imageProcessingConfiguration && !this._imageProcessingConfiguration.applyByPostProcess) {
  42308. this._imageProcessingConfiguration.bind(this._activeEffect);
  42309. }
  42310. }
  42311. this._uniformBuffer.update();
  42312. this._afterBind(mesh, this._activeEffect);
  42313. };
  42314. StandardMaterial.prototype.getAnimatables = function () {
  42315. var results = [];
  42316. if (this._diffuseTexture && this._diffuseTexture.animations && this._diffuseTexture.animations.length > 0) {
  42317. results.push(this._diffuseTexture);
  42318. }
  42319. if (this._ambientTexture && this._ambientTexture.animations && this._ambientTexture.animations.length > 0) {
  42320. results.push(this._ambientTexture);
  42321. }
  42322. if (this._opacityTexture && this._opacityTexture.animations && this._opacityTexture.animations.length > 0) {
  42323. results.push(this._opacityTexture);
  42324. }
  42325. if (this._reflectionTexture && this._reflectionTexture.animations && this._reflectionTexture.animations.length > 0) {
  42326. results.push(this._reflectionTexture);
  42327. }
  42328. if (this._emissiveTexture && this._emissiveTexture.animations && this._emissiveTexture.animations.length > 0) {
  42329. results.push(this._emissiveTexture);
  42330. }
  42331. if (this._specularTexture && this._specularTexture.animations && this._specularTexture.animations.length > 0) {
  42332. results.push(this._specularTexture);
  42333. }
  42334. if (this._bumpTexture && this._bumpTexture.animations && this._bumpTexture.animations.length > 0) {
  42335. results.push(this._bumpTexture);
  42336. }
  42337. if (this._lightmapTexture && this._lightmapTexture.animations && this._lightmapTexture.animations.length > 0) {
  42338. results.push(this._lightmapTexture);
  42339. }
  42340. if (this._refractionTexture && this._refractionTexture.animations && this._refractionTexture.animations.length > 0) {
  42341. results.push(this._refractionTexture);
  42342. }
  42343. return results;
  42344. };
  42345. StandardMaterial.prototype.getActiveTextures = function () {
  42346. var activeTextures = _super.prototype.getActiveTextures.call(this);
  42347. if (this._diffuseTexture) {
  42348. activeTextures.push(this._diffuseTexture);
  42349. }
  42350. if (this._ambientTexture) {
  42351. activeTextures.push(this._ambientTexture);
  42352. }
  42353. if (this._opacityTexture) {
  42354. activeTextures.push(this._opacityTexture);
  42355. }
  42356. if (this._reflectionTexture) {
  42357. activeTextures.push(this._reflectionTexture);
  42358. }
  42359. if (this._emissiveTexture) {
  42360. activeTextures.push(this._emissiveTexture);
  42361. }
  42362. if (this._specularTexture) {
  42363. activeTextures.push(this._specularTexture);
  42364. }
  42365. if (this._bumpTexture) {
  42366. activeTextures.push(this._bumpTexture);
  42367. }
  42368. if (this._lightmapTexture) {
  42369. activeTextures.push(this._lightmapTexture);
  42370. }
  42371. if (this._refractionTexture) {
  42372. activeTextures.push(this._refractionTexture);
  42373. }
  42374. return activeTextures;
  42375. };
  42376. StandardMaterial.prototype.hasTexture = function (texture) {
  42377. if (_super.prototype.hasTexture.call(this, texture)) {
  42378. return true;
  42379. }
  42380. if (this._diffuseTexture === texture) {
  42381. return true;
  42382. }
  42383. if (this._ambientTexture === texture) {
  42384. return true;
  42385. }
  42386. if (this._opacityTexture === texture) {
  42387. return true;
  42388. }
  42389. if (this._reflectionTexture === texture) {
  42390. return true;
  42391. }
  42392. if (this._emissiveTexture === texture) {
  42393. return true;
  42394. }
  42395. if (this._specularTexture === texture) {
  42396. return true;
  42397. }
  42398. if (this._bumpTexture === texture) {
  42399. return true;
  42400. }
  42401. if (this._lightmapTexture === texture) {
  42402. return true;
  42403. }
  42404. if (this._refractionTexture === texture) {
  42405. return true;
  42406. }
  42407. return false;
  42408. };
  42409. StandardMaterial.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  42410. if (forceDisposeTextures) {
  42411. if (this._diffuseTexture) {
  42412. this._diffuseTexture.dispose();
  42413. }
  42414. if (this._ambientTexture) {
  42415. this._ambientTexture.dispose();
  42416. }
  42417. if (this._opacityTexture) {
  42418. this._opacityTexture.dispose();
  42419. }
  42420. if (this._reflectionTexture) {
  42421. this._reflectionTexture.dispose();
  42422. }
  42423. if (this._emissiveTexture) {
  42424. this._emissiveTexture.dispose();
  42425. }
  42426. if (this._specularTexture) {
  42427. this._specularTexture.dispose();
  42428. }
  42429. if (this._bumpTexture) {
  42430. this._bumpTexture.dispose();
  42431. }
  42432. if (this._lightmapTexture) {
  42433. this._lightmapTexture.dispose();
  42434. }
  42435. if (this._refractionTexture) {
  42436. this._refractionTexture.dispose();
  42437. }
  42438. }
  42439. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  42440. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  42441. }
  42442. _super.prototype.dispose.call(this, forceDisposeEffect, forceDisposeTextures);
  42443. };
  42444. StandardMaterial.prototype.clone = function (name) {
  42445. var _this = this;
  42446. var result = BABYLON.SerializationHelper.Clone(function () { return new StandardMaterial(name, _this.getScene()); }, this);
  42447. result.name = name;
  42448. result.id = name;
  42449. return result;
  42450. };
  42451. StandardMaterial.prototype.serialize = function () {
  42452. return BABYLON.SerializationHelper.Serialize(this);
  42453. };
  42454. // Statics
  42455. StandardMaterial.Parse = function (source, scene, rootUrl) {
  42456. return BABYLON.SerializationHelper.Parse(function () { return new StandardMaterial(source.name, scene); }, source, scene, rootUrl);
  42457. };
  42458. Object.defineProperty(StandardMaterial, "DiffuseTextureEnabled", {
  42459. get: function () {
  42460. return StandardMaterial._DiffuseTextureEnabled;
  42461. },
  42462. set: function (value) {
  42463. if (StandardMaterial._DiffuseTextureEnabled === value) {
  42464. return;
  42465. }
  42466. StandardMaterial._DiffuseTextureEnabled = value;
  42467. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42468. },
  42469. enumerable: true,
  42470. configurable: true
  42471. });
  42472. Object.defineProperty(StandardMaterial, "AmbientTextureEnabled", {
  42473. get: function () {
  42474. return StandardMaterial._AmbientTextureEnabled;
  42475. },
  42476. set: function (value) {
  42477. if (StandardMaterial._AmbientTextureEnabled === value) {
  42478. return;
  42479. }
  42480. StandardMaterial._AmbientTextureEnabled = value;
  42481. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42482. },
  42483. enumerable: true,
  42484. configurable: true
  42485. });
  42486. Object.defineProperty(StandardMaterial, "OpacityTextureEnabled", {
  42487. get: function () {
  42488. return StandardMaterial._OpacityTextureEnabled;
  42489. },
  42490. set: function (value) {
  42491. if (StandardMaterial._OpacityTextureEnabled === value) {
  42492. return;
  42493. }
  42494. StandardMaterial._OpacityTextureEnabled = value;
  42495. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42496. },
  42497. enumerable: true,
  42498. configurable: true
  42499. });
  42500. Object.defineProperty(StandardMaterial, "ReflectionTextureEnabled", {
  42501. get: function () {
  42502. return StandardMaterial._ReflectionTextureEnabled;
  42503. },
  42504. set: function (value) {
  42505. if (StandardMaterial._ReflectionTextureEnabled === value) {
  42506. return;
  42507. }
  42508. StandardMaterial._ReflectionTextureEnabled = value;
  42509. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42510. },
  42511. enumerable: true,
  42512. configurable: true
  42513. });
  42514. Object.defineProperty(StandardMaterial, "EmissiveTextureEnabled", {
  42515. get: function () {
  42516. return StandardMaterial._EmissiveTextureEnabled;
  42517. },
  42518. set: function (value) {
  42519. if (StandardMaterial._EmissiveTextureEnabled === value) {
  42520. return;
  42521. }
  42522. StandardMaterial._EmissiveTextureEnabled = value;
  42523. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42524. },
  42525. enumerable: true,
  42526. configurable: true
  42527. });
  42528. Object.defineProperty(StandardMaterial, "SpecularTextureEnabled", {
  42529. get: function () {
  42530. return StandardMaterial._SpecularTextureEnabled;
  42531. },
  42532. set: function (value) {
  42533. if (StandardMaterial._SpecularTextureEnabled === value) {
  42534. return;
  42535. }
  42536. StandardMaterial._SpecularTextureEnabled = value;
  42537. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42538. },
  42539. enumerable: true,
  42540. configurable: true
  42541. });
  42542. Object.defineProperty(StandardMaterial, "BumpTextureEnabled", {
  42543. get: function () {
  42544. return StandardMaterial._BumpTextureEnabled;
  42545. },
  42546. set: function (value) {
  42547. if (StandardMaterial._BumpTextureEnabled === value) {
  42548. return;
  42549. }
  42550. StandardMaterial._BumpTextureEnabled = value;
  42551. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42552. },
  42553. enumerable: true,
  42554. configurable: true
  42555. });
  42556. Object.defineProperty(StandardMaterial, "LightmapTextureEnabled", {
  42557. get: function () {
  42558. return StandardMaterial._LightmapTextureEnabled;
  42559. },
  42560. set: function (value) {
  42561. if (StandardMaterial._LightmapTextureEnabled === value) {
  42562. return;
  42563. }
  42564. StandardMaterial._LightmapTextureEnabled = value;
  42565. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42566. },
  42567. enumerable: true,
  42568. configurable: true
  42569. });
  42570. Object.defineProperty(StandardMaterial, "RefractionTextureEnabled", {
  42571. get: function () {
  42572. return StandardMaterial._RefractionTextureEnabled;
  42573. },
  42574. set: function (value) {
  42575. if (StandardMaterial._RefractionTextureEnabled === value) {
  42576. return;
  42577. }
  42578. StandardMaterial._RefractionTextureEnabled = value;
  42579. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42580. },
  42581. enumerable: true,
  42582. configurable: true
  42583. });
  42584. Object.defineProperty(StandardMaterial, "ColorGradingTextureEnabled", {
  42585. get: function () {
  42586. return StandardMaterial._ColorGradingTextureEnabled;
  42587. },
  42588. set: function (value) {
  42589. if (StandardMaterial._ColorGradingTextureEnabled === value) {
  42590. return;
  42591. }
  42592. StandardMaterial._ColorGradingTextureEnabled = value;
  42593. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  42594. },
  42595. enumerable: true,
  42596. configurable: true
  42597. });
  42598. Object.defineProperty(StandardMaterial, "FresnelEnabled", {
  42599. get: function () {
  42600. return StandardMaterial._FresnelEnabled;
  42601. },
  42602. set: function (value) {
  42603. if (StandardMaterial._FresnelEnabled === value) {
  42604. return;
  42605. }
  42606. StandardMaterial._FresnelEnabled = value;
  42607. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.FresnelDirtyFlag);
  42608. },
  42609. enumerable: true,
  42610. configurable: true
  42611. });
  42612. // Flags used to enable or disable a type of texture for all Standard Materials
  42613. StandardMaterial._DiffuseTextureEnabled = true;
  42614. StandardMaterial._AmbientTextureEnabled = true;
  42615. StandardMaterial._OpacityTextureEnabled = true;
  42616. StandardMaterial._ReflectionTextureEnabled = true;
  42617. StandardMaterial._EmissiveTextureEnabled = true;
  42618. StandardMaterial._SpecularTextureEnabled = true;
  42619. StandardMaterial._BumpTextureEnabled = true;
  42620. StandardMaterial._LightmapTextureEnabled = true;
  42621. StandardMaterial._RefractionTextureEnabled = true;
  42622. StandardMaterial._ColorGradingTextureEnabled = true;
  42623. StandardMaterial._FresnelEnabled = true;
  42624. __decorate([
  42625. BABYLON.serializeAsTexture("diffuseTexture")
  42626. ], StandardMaterial.prototype, "_diffuseTexture", void 0);
  42627. __decorate([
  42628. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  42629. ], StandardMaterial.prototype, "diffuseTexture", void 0);
  42630. __decorate([
  42631. BABYLON.serializeAsTexture("ambientTexture")
  42632. ], StandardMaterial.prototype, "_ambientTexture", void 0);
  42633. __decorate([
  42634. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42635. ], StandardMaterial.prototype, "ambientTexture", void 0);
  42636. __decorate([
  42637. BABYLON.serializeAsTexture("opacityTexture")
  42638. ], StandardMaterial.prototype, "_opacityTexture", void 0);
  42639. __decorate([
  42640. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  42641. ], StandardMaterial.prototype, "opacityTexture", void 0);
  42642. __decorate([
  42643. BABYLON.serializeAsTexture("reflectionTexture")
  42644. ], StandardMaterial.prototype, "_reflectionTexture", void 0);
  42645. __decorate([
  42646. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42647. ], StandardMaterial.prototype, "reflectionTexture", void 0);
  42648. __decorate([
  42649. BABYLON.serializeAsTexture("emissiveTexture")
  42650. ], StandardMaterial.prototype, "_emissiveTexture", void 0);
  42651. __decorate([
  42652. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42653. ], StandardMaterial.prototype, "emissiveTexture", void 0);
  42654. __decorate([
  42655. BABYLON.serializeAsTexture("specularTexture")
  42656. ], StandardMaterial.prototype, "_specularTexture", void 0);
  42657. __decorate([
  42658. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42659. ], StandardMaterial.prototype, "specularTexture", void 0);
  42660. __decorate([
  42661. BABYLON.serializeAsTexture("bumpTexture")
  42662. ], StandardMaterial.prototype, "_bumpTexture", void 0);
  42663. __decorate([
  42664. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42665. ], StandardMaterial.prototype, "bumpTexture", void 0);
  42666. __decorate([
  42667. BABYLON.serializeAsTexture("lightmapTexture")
  42668. ], StandardMaterial.prototype, "_lightmapTexture", void 0);
  42669. __decorate([
  42670. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42671. ], StandardMaterial.prototype, "lightmapTexture", void 0);
  42672. __decorate([
  42673. BABYLON.serializeAsTexture("refractionTexture")
  42674. ], StandardMaterial.prototype, "_refractionTexture", void 0);
  42675. __decorate([
  42676. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42677. ], StandardMaterial.prototype, "refractionTexture", void 0);
  42678. __decorate([
  42679. BABYLON.serializeAsColor3("ambient")
  42680. ], StandardMaterial.prototype, "ambientColor", void 0);
  42681. __decorate([
  42682. BABYLON.serializeAsColor3("diffuse")
  42683. ], StandardMaterial.prototype, "diffuseColor", void 0);
  42684. __decorate([
  42685. BABYLON.serializeAsColor3("specular")
  42686. ], StandardMaterial.prototype, "specularColor", void 0);
  42687. __decorate([
  42688. BABYLON.serializeAsColor3("emissive")
  42689. ], StandardMaterial.prototype, "emissiveColor", void 0);
  42690. __decorate([
  42691. BABYLON.serialize()
  42692. ], StandardMaterial.prototype, "specularPower", void 0);
  42693. __decorate([
  42694. BABYLON.serialize("useAlphaFromDiffuseTexture")
  42695. ], StandardMaterial.prototype, "_useAlphaFromDiffuseTexture", void 0);
  42696. __decorate([
  42697. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42698. ], StandardMaterial.prototype, "useAlphaFromDiffuseTexture", void 0);
  42699. __decorate([
  42700. BABYLON.serialize("useEmissiveAsIllumination")
  42701. ], StandardMaterial.prototype, "_useEmissiveAsIllumination", void 0);
  42702. __decorate([
  42703. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42704. ], StandardMaterial.prototype, "useEmissiveAsIllumination", void 0);
  42705. __decorate([
  42706. BABYLON.serialize("linkEmissiveWithDiffuse")
  42707. ], StandardMaterial.prototype, "_linkEmissiveWithDiffuse", void 0);
  42708. __decorate([
  42709. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42710. ], StandardMaterial.prototype, "linkEmissiveWithDiffuse", void 0);
  42711. __decorate([
  42712. BABYLON.serialize("useSpecularOverAlpha")
  42713. ], StandardMaterial.prototype, "_useSpecularOverAlpha", void 0);
  42714. __decorate([
  42715. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42716. ], StandardMaterial.prototype, "useSpecularOverAlpha", void 0);
  42717. __decorate([
  42718. BABYLON.serialize("useReflectionOverAlpha")
  42719. ], StandardMaterial.prototype, "_useReflectionOverAlpha", void 0);
  42720. __decorate([
  42721. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42722. ], StandardMaterial.prototype, "useReflectionOverAlpha", void 0);
  42723. __decorate([
  42724. BABYLON.serialize("disableLighting")
  42725. ], StandardMaterial.prototype, "_disableLighting", void 0);
  42726. __decorate([
  42727. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  42728. ], StandardMaterial.prototype, "disableLighting", void 0);
  42729. __decorate([
  42730. BABYLON.serialize("useObjectSpaceNormalMap")
  42731. ], StandardMaterial.prototype, "_useObjectSpaceNormalMap", void 0);
  42732. __decorate([
  42733. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42734. ], StandardMaterial.prototype, "useObjectSpaceNormalMap", void 0);
  42735. __decorate([
  42736. BABYLON.serialize("useParallax")
  42737. ], StandardMaterial.prototype, "_useParallax", void 0);
  42738. __decorate([
  42739. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42740. ], StandardMaterial.prototype, "useParallax", void 0);
  42741. __decorate([
  42742. BABYLON.serialize("useParallaxOcclusion")
  42743. ], StandardMaterial.prototype, "_useParallaxOcclusion", void 0);
  42744. __decorate([
  42745. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42746. ], StandardMaterial.prototype, "useParallaxOcclusion", void 0);
  42747. __decorate([
  42748. BABYLON.serialize()
  42749. ], StandardMaterial.prototype, "parallaxScaleBias", void 0);
  42750. __decorate([
  42751. BABYLON.serialize("roughness")
  42752. ], StandardMaterial.prototype, "_roughness", void 0);
  42753. __decorate([
  42754. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42755. ], StandardMaterial.prototype, "roughness", void 0);
  42756. __decorate([
  42757. BABYLON.serialize()
  42758. ], StandardMaterial.prototype, "indexOfRefraction", void 0);
  42759. __decorate([
  42760. BABYLON.serialize()
  42761. ], StandardMaterial.prototype, "invertRefractionY", void 0);
  42762. __decorate([
  42763. BABYLON.serialize()
  42764. ], StandardMaterial.prototype, "alphaCutOff", void 0);
  42765. __decorate([
  42766. BABYLON.serialize("useLightmapAsShadowmap")
  42767. ], StandardMaterial.prototype, "_useLightmapAsShadowmap", void 0);
  42768. __decorate([
  42769. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42770. ], StandardMaterial.prototype, "useLightmapAsShadowmap", void 0);
  42771. __decorate([
  42772. BABYLON.serializeAsFresnelParameters("diffuseFresnelParameters")
  42773. ], StandardMaterial.prototype, "_diffuseFresnelParameters", void 0);
  42774. __decorate([
  42775. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelDirty")
  42776. ], StandardMaterial.prototype, "diffuseFresnelParameters", void 0);
  42777. __decorate([
  42778. BABYLON.serializeAsFresnelParameters("opacityFresnelParameters")
  42779. ], StandardMaterial.prototype, "_opacityFresnelParameters", void 0);
  42780. __decorate([
  42781. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelAndMiscDirty")
  42782. ], StandardMaterial.prototype, "opacityFresnelParameters", void 0);
  42783. __decorate([
  42784. BABYLON.serializeAsFresnelParameters("reflectionFresnelParameters")
  42785. ], StandardMaterial.prototype, "_reflectionFresnelParameters", void 0);
  42786. __decorate([
  42787. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelDirty")
  42788. ], StandardMaterial.prototype, "reflectionFresnelParameters", void 0);
  42789. __decorate([
  42790. BABYLON.serializeAsFresnelParameters("refractionFresnelParameters")
  42791. ], StandardMaterial.prototype, "_refractionFresnelParameters", void 0);
  42792. __decorate([
  42793. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelDirty")
  42794. ], StandardMaterial.prototype, "refractionFresnelParameters", void 0);
  42795. __decorate([
  42796. BABYLON.serializeAsFresnelParameters("emissiveFresnelParameters")
  42797. ], StandardMaterial.prototype, "_emissiveFresnelParameters", void 0);
  42798. __decorate([
  42799. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelDirty")
  42800. ], StandardMaterial.prototype, "emissiveFresnelParameters", void 0);
  42801. __decorate([
  42802. BABYLON.serialize("useReflectionFresnelFromSpecular")
  42803. ], StandardMaterial.prototype, "_useReflectionFresnelFromSpecular", void 0);
  42804. __decorate([
  42805. BABYLON.expandToProperty("_markAllSubMeshesAsFresnelDirty")
  42806. ], StandardMaterial.prototype, "useReflectionFresnelFromSpecular", void 0);
  42807. __decorate([
  42808. BABYLON.serialize("useGlossinessFromSpecularMapAlpha")
  42809. ], StandardMaterial.prototype, "_useGlossinessFromSpecularMapAlpha", void 0);
  42810. __decorate([
  42811. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42812. ], StandardMaterial.prototype, "useGlossinessFromSpecularMapAlpha", void 0);
  42813. __decorate([
  42814. BABYLON.serialize("maxSimultaneousLights")
  42815. ], StandardMaterial.prototype, "_maxSimultaneousLights", void 0);
  42816. __decorate([
  42817. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  42818. ], StandardMaterial.prototype, "maxSimultaneousLights", void 0);
  42819. __decorate([
  42820. BABYLON.serialize("invertNormalMapX")
  42821. ], StandardMaterial.prototype, "_invertNormalMapX", void 0);
  42822. __decorate([
  42823. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42824. ], StandardMaterial.prototype, "invertNormalMapX", void 0);
  42825. __decorate([
  42826. BABYLON.serialize("invertNormalMapY")
  42827. ], StandardMaterial.prototype, "_invertNormalMapY", void 0);
  42828. __decorate([
  42829. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42830. ], StandardMaterial.prototype, "invertNormalMapY", void 0);
  42831. __decorate([
  42832. BABYLON.serialize("twoSidedLighting")
  42833. ], StandardMaterial.prototype, "_twoSidedLighting", void 0);
  42834. __decorate([
  42835. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  42836. ], StandardMaterial.prototype, "twoSidedLighting", void 0);
  42837. __decorate([
  42838. BABYLON.serialize()
  42839. ], StandardMaterial.prototype, "useLogarithmicDepth", null);
  42840. return StandardMaterial;
  42841. }(BABYLON.PushMaterial));
  42842. BABYLON.StandardMaterial = StandardMaterial;
  42843. })(BABYLON || (BABYLON = {}));
  42844. //# sourceMappingURL=babylon.standardMaterial.js.map
  42845. var BABYLON;
  42846. (function (BABYLON) {
  42847. /**
  42848. * Class representing spherical polynomial coefficients to the 3rd degree
  42849. */
  42850. var SphericalPolynomial = /** @class */ (function () {
  42851. function SphericalPolynomial() {
  42852. /**
  42853. * The x coefficients of the spherical polynomial
  42854. */
  42855. this.x = BABYLON.Vector3.Zero();
  42856. /**
  42857. * The y coefficients of the spherical polynomial
  42858. */
  42859. this.y = BABYLON.Vector3.Zero();
  42860. /**
  42861. * The z coefficients of the spherical polynomial
  42862. */
  42863. this.z = BABYLON.Vector3.Zero();
  42864. /**
  42865. * The xx coefficients of the spherical polynomial
  42866. */
  42867. this.xx = BABYLON.Vector3.Zero();
  42868. /**
  42869. * The yy coefficients of the spherical polynomial
  42870. */
  42871. this.yy = BABYLON.Vector3.Zero();
  42872. /**
  42873. * The zz coefficients of the spherical polynomial
  42874. */
  42875. this.zz = BABYLON.Vector3.Zero();
  42876. /**
  42877. * The xy coefficients of the spherical polynomial
  42878. */
  42879. this.xy = BABYLON.Vector3.Zero();
  42880. /**
  42881. * The yz coefficients of the spherical polynomial
  42882. */
  42883. this.yz = BABYLON.Vector3.Zero();
  42884. /**
  42885. * The zx coefficients of the spherical polynomial
  42886. */
  42887. this.zx = BABYLON.Vector3.Zero();
  42888. }
  42889. /**
  42890. * Adds an ambient color to the spherical polynomial
  42891. * @param color the color to add
  42892. */
  42893. SphericalPolynomial.prototype.addAmbient = function (color) {
  42894. var colorVector = new BABYLON.Vector3(color.r, color.g, color.b);
  42895. this.xx = this.xx.add(colorVector);
  42896. this.yy = this.yy.add(colorVector);
  42897. this.zz = this.zz.add(colorVector);
  42898. };
  42899. /**
  42900. * Scales the spherical polynomial by the given amount
  42901. * @param scale the amount to scale
  42902. */
  42903. SphericalPolynomial.prototype.scale = function (scale) {
  42904. this.x = this.x.scale(scale);
  42905. this.y = this.y.scale(scale);
  42906. this.z = this.z.scale(scale);
  42907. this.xx = this.xx.scale(scale);
  42908. this.yy = this.yy.scale(scale);
  42909. this.zz = this.zz.scale(scale);
  42910. this.yz = this.yz.scale(scale);
  42911. this.zx = this.zx.scale(scale);
  42912. this.xy = this.xy.scale(scale);
  42913. };
  42914. /**
  42915. * Gets the spherical polynomial from harmonics
  42916. * @param harmonics the spherical harmonics
  42917. * @returns the spherical polynomial
  42918. */
  42919. SphericalPolynomial.FromHarmonics = function (harmonics) {
  42920. var result = new SphericalPolynomial();
  42921. result.x = harmonics.l11.scale(1.02333);
  42922. result.y = harmonics.l1_1.scale(1.02333);
  42923. result.z = harmonics.l10.scale(1.02333);
  42924. result.xx = harmonics.l00.scale(0.886277).subtract(harmonics.l20.scale(0.247708)).add(harmonics.lL22.scale(0.429043));
  42925. result.yy = harmonics.l00.scale(0.886277).subtract(harmonics.l20.scale(0.247708)).subtract(harmonics.lL22.scale(0.429043));
  42926. result.zz = harmonics.l00.scale(0.886277).add(harmonics.l20.scale(0.495417));
  42927. result.yz = harmonics.l2_1.scale(0.858086);
  42928. result.zx = harmonics.l21.scale(0.858086);
  42929. result.xy = harmonics.l2_2.scale(0.858086);
  42930. result.scale(1.0 / Math.PI);
  42931. return result;
  42932. };
  42933. /**
  42934. * Constructs a spherical polynomial from an array.
  42935. * @param data defines the 9x3 coefficients (x, y, z, xx, yy, zz, yz, zx, xy)
  42936. * @returns the spherical polynomial
  42937. */
  42938. SphericalPolynomial.FromArray = function (data) {
  42939. var sp = new SphericalPolynomial();
  42940. BABYLON.Vector3.FromArrayToRef(data[0], 0, sp.x);
  42941. BABYLON.Vector3.FromArrayToRef(data[1], 0, sp.y);
  42942. BABYLON.Vector3.FromArrayToRef(data[2], 0, sp.z);
  42943. BABYLON.Vector3.FromArrayToRef(data[3], 0, sp.xx);
  42944. BABYLON.Vector3.FromArrayToRef(data[4], 0, sp.yy);
  42945. BABYLON.Vector3.FromArrayToRef(data[5], 0, sp.zz);
  42946. BABYLON.Vector3.FromArrayToRef(data[6], 0, sp.yz);
  42947. BABYLON.Vector3.FromArrayToRef(data[7], 0, sp.zx);
  42948. BABYLON.Vector3.FromArrayToRef(data[8], 0, sp.xy);
  42949. return sp;
  42950. };
  42951. return SphericalPolynomial;
  42952. }());
  42953. BABYLON.SphericalPolynomial = SphericalPolynomial;
  42954. /**
  42955. * Class representing spherical harmonics coefficients to the 3rd degree
  42956. */
  42957. var SphericalHarmonics = /** @class */ (function () {
  42958. function SphericalHarmonics() {
  42959. /**
  42960. * The l0,0 coefficients of the spherical harmonics
  42961. */
  42962. this.l00 = BABYLON.Vector3.Zero();
  42963. /**
  42964. * The l1,-1 coefficients of the spherical harmonics
  42965. */
  42966. this.l1_1 = BABYLON.Vector3.Zero();
  42967. /**
  42968. * The l1,0 coefficients of the spherical harmonics
  42969. */
  42970. this.l10 = BABYLON.Vector3.Zero();
  42971. /**
  42972. * The l1,1 coefficients of the spherical harmonics
  42973. */
  42974. this.l11 = BABYLON.Vector3.Zero();
  42975. /**
  42976. * The l2,-2 coefficients of the spherical harmonics
  42977. */
  42978. this.l2_2 = BABYLON.Vector3.Zero();
  42979. /**
  42980. * The l2,-1 coefficients of the spherical harmonics
  42981. */
  42982. this.l2_1 = BABYLON.Vector3.Zero();
  42983. /**
  42984. * The l2,0 coefficients of the spherical harmonics
  42985. */
  42986. this.l20 = BABYLON.Vector3.Zero();
  42987. /**
  42988. * The l2,1 coefficients of the spherical harmonics
  42989. */
  42990. this.l21 = BABYLON.Vector3.Zero();
  42991. /**
  42992. * The l2,2 coefficients of the spherical harmonics
  42993. */
  42994. this.lL22 = BABYLON.Vector3.Zero();
  42995. }
  42996. /**
  42997. * Adds a light to the spherical harmonics
  42998. * @param direction the direction of the light
  42999. * @param color the color of the light
  43000. * @param deltaSolidAngle the delta solid angle of the light
  43001. */
  43002. SphericalHarmonics.prototype.addLight = function (direction, color, deltaSolidAngle) {
  43003. var colorVector = new BABYLON.Vector3(color.r, color.g, color.b);
  43004. var c = colorVector.scale(deltaSolidAngle);
  43005. this.l00 = this.l00.add(c.scale(0.282095));
  43006. this.l1_1 = this.l1_1.add(c.scale(0.488603 * direction.y));
  43007. this.l10 = this.l10.add(c.scale(0.488603 * direction.z));
  43008. this.l11 = this.l11.add(c.scale(0.488603 * direction.x));
  43009. this.l2_2 = this.l2_2.add(c.scale(1.092548 * direction.x * direction.y));
  43010. this.l2_1 = this.l2_1.add(c.scale(1.092548 * direction.y * direction.z));
  43011. this.l21 = this.l21.add(c.scale(1.092548 * direction.x * direction.z));
  43012. this.l20 = this.l20.add(c.scale(0.315392 * (3.0 * direction.z * direction.z - 1.0)));
  43013. this.lL22 = this.lL22.add(c.scale(0.546274 * (direction.x * direction.x - direction.y * direction.y)));
  43014. };
  43015. /**
  43016. * Scales the spherical harmonics by the given amount
  43017. * @param scale the amount to scale
  43018. */
  43019. SphericalHarmonics.prototype.scale = function (scale) {
  43020. this.l00 = this.l00.scale(scale);
  43021. this.l1_1 = this.l1_1.scale(scale);
  43022. this.l10 = this.l10.scale(scale);
  43023. this.l11 = this.l11.scale(scale);
  43024. this.l2_2 = this.l2_2.scale(scale);
  43025. this.l2_1 = this.l2_1.scale(scale);
  43026. this.l20 = this.l20.scale(scale);
  43027. this.l21 = this.l21.scale(scale);
  43028. this.lL22 = this.lL22.scale(scale);
  43029. };
  43030. /**
  43031. * Convert from incident radiance (Li) to irradiance (E) by applying convolution with the cosine-weighted hemisphere.
  43032. *
  43033. * ```
  43034. * E_lm = A_l * L_lm
  43035. * ```
  43036. *
  43037. * In spherical harmonics this convolution amounts to scaling factors for each frequency band.
  43038. * This corresponds to equation 5 in "An Efficient Representation for Irradiance Environment Maps", where
  43039. * the scaling factors are given in equation 9.
  43040. */
  43041. SphericalHarmonics.prototype.convertIncidentRadianceToIrradiance = function () {
  43042. // Constant (Band 0)
  43043. this.l00 = this.l00.scale(3.141593);
  43044. // Linear (Band 1)
  43045. this.l1_1 = this.l1_1.scale(2.094395);
  43046. this.l10 = this.l10.scale(2.094395);
  43047. this.l11 = this.l11.scale(2.094395);
  43048. // Quadratic (Band 2)
  43049. this.l2_2 = this.l2_2.scale(0.785398);
  43050. this.l2_1 = this.l2_1.scale(0.785398);
  43051. this.l20 = this.l20.scale(0.785398);
  43052. this.l21 = this.l21.scale(0.785398);
  43053. this.lL22 = this.lL22.scale(0.785398);
  43054. };
  43055. /**
  43056. * Convert from irradiance to outgoing radiance for Lambertian BDRF, suitable for efficient shader evaluation.
  43057. *
  43058. * ```
  43059. * L = (1/pi) * E * rho
  43060. * ```
  43061. *
  43062. * This is done by an additional scale by 1/pi, so is a fairly trivial operation but important conceptually.
  43063. */
  43064. SphericalHarmonics.prototype.convertIrradianceToLambertianRadiance = function () {
  43065. this.scale(1.0 / Math.PI);
  43066. // The resultant SH now represents outgoing radiance, so includes the Lambert 1/pi normalisation factor but without albedo (rho) applied
  43067. // (The pixel shader must apply albedo after texture fetches, etc).
  43068. };
  43069. /**
  43070. * Gets the spherical harmonics from polynomial
  43071. * @param polynomial the spherical polynomial
  43072. * @returns the spherical harmonics
  43073. */
  43074. SphericalHarmonics.FromPolynomial = function (polynomial) {
  43075. var result = new SphericalHarmonics();
  43076. result.l00 = polynomial.xx.scale(0.376127).add(polynomial.yy.scale(0.376127)).add(polynomial.zz.scale(0.376126));
  43077. result.l1_1 = polynomial.y.scale(0.977204);
  43078. result.l10 = polynomial.z.scale(0.977204);
  43079. result.l11 = polynomial.x.scale(0.977204);
  43080. result.l2_2 = polynomial.xy.scale(1.16538);
  43081. result.l2_1 = polynomial.yz.scale(1.16538);
  43082. result.l20 = polynomial.zz.scale(1.34567).subtract(polynomial.xx.scale(0.672834)).subtract(polynomial.yy.scale(0.672834));
  43083. result.l21 = polynomial.zx.scale(1.16538);
  43084. result.lL22 = polynomial.xx.scale(1.16538).subtract(polynomial.yy.scale(1.16538));
  43085. result.scale(Math.PI);
  43086. return result;
  43087. };
  43088. /**
  43089. * Constructs a spherical harmonics from an array.
  43090. * @param data defines the 9x3 coefficients (l00, l1-1, l10, l11, l2-2, l2-1, l20, l21, l22)
  43091. * @returns the spherical harmonics
  43092. */
  43093. SphericalHarmonics.FromArray = function (data) {
  43094. var sh = new SphericalHarmonics();
  43095. BABYLON.Vector3.FromArrayToRef(data[0], 0, sh.l00);
  43096. BABYLON.Vector3.FromArrayToRef(data[1], 0, sh.l1_1);
  43097. BABYLON.Vector3.FromArrayToRef(data[2], 0, sh.l10);
  43098. BABYLON.Vector3.FromArrayToRef(data[3], 0, sh.l11);
  43099. BABYLON.Vector3.FromArrayToRef(data[4], 0, sh.l2_2);
  43100. BABYLON.Vector3.FromArrayToRef(data[5], 0, sh.l2_1);
  43101. BABYLON.Vector3.FromArrayToRef(data[6], 0, sh.l20);
  43102. BABYLON.Vector3.FromArrayToRef(data[7], 0, sh.l21);
  43103. BABYLON.Vector3.FromArrayToRef(data[8], 0, sh.lL22);
  43104. return sh;
  43105. };
  43106. return SphericalHarmonics;
  43107. }());
  43108. BABYLON.SphericalHarmonics = SphericalHarmonics;
  43109. })(BABYLON || (BABYLON = {}));
  43110. //# sourceMappingURL=babylon.sphericalPolynomial.js.map
  43111. var BABYLON;
  43112. (function (BABYLON) {
  43113. var FileFaceOrientation = /** @class */ (function () {
  43114. function FileFaceOrientation(name, worldAxisForNormal, worldAxisForFileX, worldAxisForFileY) {
  43115. this.name = name;
  43116. this.worldAxisForNormal = worldAxisForNormal;
  43117. this.worldAxisForFileX = worldAxisForFileX;
  43118. this.worldAxisForFileY = worldAxisForFileY;
  43119. }
  43120. return FileFaceOrientation;
  43121. }());
  43122. ;
  43123. /**
  43124. * Helper class dealing with the extraction of spherical polynomial dataArray
  43125. * from a cube map.
  43126. */
  43127. var CubeMapToSphericalPolynomialTools = /** @class */ (function () {
  43128. function CubeMapToSphericalPolynomialTools() {
  43129. }
  43130. /**
  43131. * Converts a texture to the according Spherical Polynomial data.
  43132. * This extracts the first 3 orders only as they are the only one used in the lighting.
  43133. *
  43134. * @param texture The texture to extract the information from.
  43135. * @return The Spherical Polynomial data.
  43136. */
  43137. CubeMapToSphericalPolynomialTools.ConvertCubeMapTextureToSphericalPolynomial = function (texture) {
  43138. if (!texture.isCube) {
  43139. // Only supports cube Textures currently.
  43140. return null;
  43141. }
  43142. var size = texture.getSize().width;
  43143. var right = texture.readPixels(0);
  43144. var left = texture.readPixels(1);
  43145. var up;
  43146. var down;
  43147. if (texture.isRenderTarget) {
  43148. up = texture.readPixels(3);
  43149. down = texture.readPixels(2);
  43150. }
  43151. else {
  43152. up = texture.readPixels(2);
  43153. down = texture.readPixels(3);
  43154. }
  43155. var front = texture.readPixels(4);
  43156. var back = texture.readPixels(5);
  43157. var gammaSpace = texture.gammaSpace;
  43158. // Always read as RGBA.
  43159. var format = BABYLON.Engine.TEXTUREFORMAT_RGBA;
  43160. var type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  43161. if (texture.textureType && texture.textureType !== BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT) {
  43162. type = BABYLON.Engine.TEXTURETYPE_FLOAT;
  43163. }
  43164. var cubeInfo = {
  43165. size: size,
  43166. right: right,
  43167. left: left,
  43168. up: up,
  43169. down: down,
  43170. front: front,
  43171. back: back,
  43172. format: format,
  43173. type: type,
  43174. gammaSpace: gammaSpace,
  43175. };
  43176. return this.ConvertCubeMapToSphericalPolynomial(cubeInfo);
  43177. };
  43178. /**
  43179. * Converts a cubemap to the according Spherical Polynomial data.
  43180. * This extracts the first 3 orders only as they are the only one used in the lighting.
  43181. *
  43182. * @param cubeInfo The Cube map to extract the information from.
  43183. * @return The Spherical Polynomial data.
  43184. */
  43185. CubeMapToSphericalPolynomialTools.ConvertCubeMapToSphericalPolynomial = function (cubeInfo) {
  43186. var sphericalHarmonics = new BABYLON.SphericalHarmonics();
  43187. var totalSolidAngle = 0.0;
  43188. // The (u,v) range is [-1,+1], so the distance between each texel is 2/Size.
  43189. var du = 2.0 / cubeInfo.size;
  43190. var dv = du;
  43191. // The (u,v) of the first texel is half a texel from the corner (-1,-1).
  43192. var minUV = du * 0.5 - 1.0;
  43193. for (var faceIndex = 0; faceIndex < 6; faceIndex++) {
  43194. var fileFace = this.FileFaces[faceIndex];
  43195. var dataArray = cubeInfo[fileFace.name];
  43196. var v = minUV;
  43197. // TODO: we could perform the summation directly into a SphericalPolynomial (SP), which is more efficient than SphericalHarmonic (SH).
  43198. // This is possible because during the summation we do not need the SH-specific properties, e.g. orthogonality.
  43199. // Because SP is still linear, so summation is fine in that basis.
  43200. var stride = cubeInfo.format === BABYLON.Engine.TEXTUREFORMAT_RGBA ? 4 : 3;
  43201. for (var y = 0; y < cubeInfo.size; y++) {
  43202. var u = minUV;
  43203. for (var x = 0; x < cubeInfo.size; x++) {
  43204. // World direction (not normalised)
  43205. var worldDirection = fileFace.worldAxisForFileX.scale(u).add(fileFace.worldAxisForFileY.scale(v)).add(fileFace.worldAxisForNormal);
  43206. worldDirection.normalize();
  43207. var deltaSolidAngle = Math.pow(1.0 + u * u + v * v, -3.0 / 2.0);
  43208. var r = dataArray[(y * cubeInfo.size * stride) + (x * stride) + 0];
  43209. var g = dataArray[(y * cubeInfo.size * stride) + (x * stride) + 1];
  43210. var b = dataArray[(y * cubeInfo.size * stride) + (x * stride) + 2];
  43211. // Handle Integer types.
  43212. if (cubeInfo.type === BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT) {
  43213. r /= 255;
  43214. g /= 255;
  43215. b /= 255;
  43216. }
  43217. // Handle Gamma space textures.
  43218. if (cubeInfo.gammaSpace) {
  43219. r = Math.pow(BABYLON.Scalar.Clamp(r), BABYLON.ToLinearSpace);
  43220. g = Math.pow(BABYLON.Scalar.Clamp(g), BABYLON.ToLinearSpace);
  43221. b = Math.pow(BABYLON.Scalar.Clamp(b), BABYLON.ToLinearSpace);
  43222. }
  43223. var color = new BABYLON.Color3(r, g, b);
  43224. sphericalHarmonics.addLight(worldDirection, color, deltaSolidAngle);
  43225. totalSolidAngle += deltaSolidAngle;
  43226. u += du;
  43227. }
  43228. v += dv;
  43229. }
  43230. }
  43231. // Solid angle for entire sphere is 4*pi
  43232. var sphereSolidAngle = 4.0 * Math.PI;
  43233. // Adjust the solid angle to allow for how many faces we processed.
  43234. var facesProcessed = 6.0;
  43235. var expectedSolidAngle = sphereSolidAngle * facesProcessed / 6.0;
  43236. // Adjust the harmonics so that the accumulated solid angle matches the expected solid angle.
  43237. // This is needed because the numerical integration over the cube uses a
  43238. // small angle approximation of solid angle for each texel (see deltaSolidAngle),
  43239. // and also to compensate for accumulative error due to float precision in the summation.
  43240. var correctionFactor = expectedSolidAngle / totalSolidAngle;
  43241. sphericalHarmonics.scale(correctionFactor);
  43242. sphericalHarmonics.convertIncidentRadianceToIrradiance();
  43243. sphericalHarmonics.convertIrradianceToLambertianRadiance();
  43244. return BABYLON.SphericalPolynomial.FromHarmonics(sphericalHarmonics);
  43245. };
  43246. CubeMapToSphericalPolynomialTools.FileFaces = [
  43247. new FileFaceOrientation("right", new BABYLON.Vector3(1, 0, 0), new BABYLON.Vector3(0, 0, -1), new BABYLON.Vector3(0, -1, 0)),
  43248. new FileFaceOrientation("left", new BABYLON.Vector3(-1, 0, 0), new BABYLON.Vector3(0, 0, 1), new BABYLON.Vector3(0, -1, 0)),
  43249. new FileFaceOrientation("up", new BABYLON.Vector3(0, 1, 0), new BABYLON.Vector3(1, 0, 0), new BABYLON.Vector3(0, 0, 1)),
  43250. new FileFaceOrientation("down", new BABYLON.Vector3(0, -1, 0), new BABYLON.Vector3(1, 0, 0), new BABYLON.Vector3(0, 0, -1)),
  43251. new FileFaceOrientation("front", new BABYLON.Vector3(0, 0, 1), new BABYLON.Vector3(1, 0, 0), new BABYLON.Vector3(0, -1, 0)),
  43252. new FileFaceOrientation("back", new BABYLON.Vector3(0, 0, -1), new BABYLON.Vector3(-1, 0, 0), new BABYLON.Vector3(0, -1, 0)) // -Z bottom
  43253. ];
  43254. return CubeMapToSphericalPolynomialTools;
  43255. }());
  43256. BABYLON.CubeMapToSphericalPolynomialTools = CubeMapToSphericalPolynomialTools;
  43257. })(BABYLON || (BABYLON = {}));
  43258. //# sourceMappingURL=babylon.cubemapToSphericalPolynomial.js.map
  43259. var BABYLON;
  43260. (function (BABYLON) {
  43261. /**
  43262. * Manages the defines for the PBR Material.
  43263. * @hiddenChildren
  43264. */
  43265. var PBRMaterialDefines = /** @class */ (function (_super) {
  43266. __extends(PBRMaterialDefines, _super);
  43267. /**
  43268. * Initializes the PBR Material defines.
  43269. */
  43270. function PBRMaterialDefines() {
  43271. var _this = _super.call(this) || this;
  43272. _this.PBR = true;
  43273. _this.MAINUV1 = false;
  43274. _this.MAINUV2 = false;
  43275. _this.UV1 = false;
  43276. _this.UV2 = false;
  43277. _this.ALBEDO = false;
  43278. _this.ALBEDODIRECTUV = 0;
  43279. _this.VERTEXCOLOR = false;
  43280. _this.AMBIENT = false;
  43281. _this.AMBIENTDIRECTUV = 0;
  43282. _this.AMBIENTINGRAYSCALE = false;
  43283. _this.OPACITY = false;
  43284. _this.VERTEXALPHA = false;
  43285. _this.OPACITYDIRECTUV = 0;
  43286. _this.OPACITYRGB = false;
  43287. _this.ALPHATEST = false;
  43288. _this.DEPTHPREPASS = false;
  43289. _this.ALPHABLEND = false;
  43290. _this.ALPHAFROMALBEDO = false;
  43291. _this.ALPHATESTVALUE = "0.5";
  43292. _this.SPECULAROVERALPHA = false;
  43293. _this.RADIANCEOVERALPHA = false;
  43294. _this.ALPHAFRESNEL = false;
  43295. _this.LINEARALPHAFRESNEL = false;
  43296. _this.PREMULTIPLYALPHA = false;
  43297. _this.EMISSIVE = false;
  43298. _this.EMISSIVEDIRECTUV = 0;
  43299. _this.REFLECTIVITY = false;
  43300. _this.REFLECTIVITYDIRECTUV = 0;
  43301. _this.SPECULARTERM = false;
  43302. _this.MICROSURFACEFROMREFLECTIVITYMAP = false;
  43303. _this.MICROSURFACEAUTOMATIC = false;
  43304. _this.LODBASEDMICROSFURACE = false;
  43305. _this.MICROSURFACEMAP = false;
  43306. _this.MICROSURFACEMAPDIRECTUV = 0;
  43307. _this.METALLICWORKFLOW = false;
  43308. _this.ROUGHNESSSTOREINMETALMAPALPHA = false;
  43309. _this.ROUGHNESSSTOREINMETALMAPGREEN = false;
  43310. _this.METALLNESSSTOREINMETALMAPBLUE = false;
  43311. _this.AOSTOREINMETALMAPRED = false;
  43312. _this.ENVIRONMENTBRDF = false;
  43313. _this.NORMAL = false;
  43314. _this.TANGENT = false;
  43315. _this.BUMP = false;
  43316. _this.BUMPDIRECTUV = 0;
  43317. _this.OBJECTSPACE_NORMALMAP = false;
  43318. _this.PARALLAX = false;
  43319. _this.PARALLAXOCCLUSION = false;
  43320. _this.NORMALXYSCALE = true;
  43321. _this.LIGHTMAP = false;
  43322. _this.LIGHTMAPDIRECTUV = 0;
  43323. _this.USELIGHTMAPASSHADOWMAP = false;
  43324. _this.GAMMALIGHTMAP = false;
  43325. _this.REFLECTION = false;
  43326. _this.REFLECTIONMAP_3D = false;
  43327. _this.REFLECTIONMAP_SPHERICAL = false;
  43328. _this.REFLECTIONMAP_PLANAR = false;
  43329. _this.REFLECTIONMAP_CUBIC = false;
  43330. _this.USE_LOCAL_REFLECTIONMAP_CUBIC = false;
  43331. _this.REFLECTIONMAP_PROJECTION = false;
  43332. _this.REFLECTIONMAP_SKYBOX = false;
  43333. _this.REFLECTIONMAP_SKYBOX_TRANSFORMED = false;
  43334. _this.REFLECTIONMAP_EXPLICIT = false;
  43335. _this.REFLECTIONMAP_EQUIRECTANGULAR = false;
  43336. _this.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = false;
  43337. _this.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = false;
  43338. _this.INVERTCUBICMAP = false;
  43339. _this.USESPHERICALFROMREFLECTIONMAP = false;
  43340. _this.USESPHERICALINVERTEX = false;
  43341. _this.REFLECTIONMAP_OPPOSITEZ = false;
  43342. _this.LODINREFLECTIONALPHA = false;
  43343. _this.GAMMAREFLECTION = false;
  43344. _this.RGBDREFLECTION = false;
  43345. _this.RADIANCEOCCLUSION = false;
  43346. _this.HORIZONOCCLUSION = false;
  43347. _this.REFRACTION = false;
  43348. _this.REFRACTIONMAP_3D = false;
  43349. _this.REFRACTIONMAP_OPPOSITEZ = false;
  43350. _this.LODINREFRACTIONALPHA = false;
  43351. _this.GAMMAREFRACTION = false;
  43352. _this.RGBDREFRACTION = false;
  43353. _this.LINKREFRACTIONTOTRANSPARENCY = false;
  43354. _this.INSTANCES = false;
  43355. _this.NUM_BONE_INFLUENCERS = 0;
  43356. _this.BonesPerMesh = 0;
  43357. _this.NONUNIFORMSCALING = false;
  43358. _this.MORPHTARGETS = false;
  43359. _this.MORPHTARGETS_NORMAL = false;
  43360. _this.MORPHTARGETS_TANGENT = false;
  43361. _this.NUM_MORPH_INFLUENCERS = 0;
  43362. _this.IMAGEPROCESSING = false;
  43363. _this.VIGNETTE = false;
  43364. _this.VIGNETTEBLENDMODEMULTIPLY = false;
  43365. _this.VIGNETTEBLENDMODEOPAQUE = false;
  43366. _this.TONEMAPPING = false;
  43367. _this.TONEMAPPING_ACES = false;
  43368. _this.CONTRAST = false;
  43369. _this.COLORCURVES = false;
  43370. _this.COLORGRADING = false;
  43371. _this.COLORGRADING3D = false;
  43372. _this.SAMPLER3DGREENDEPTH = false;
  43373. _this.SAMPLER3DBGRMAP = false;
  43374. _this.IMAGEPROCESSINGPOSTPROCESS = false;
  43375. _this.EXPOSURE = false;
  43376. _this.USEPHYSICALLIGHTFALLOFF = false;
  43377. _this.USEGLTFLIGHTFALLOFF = false;
  43378. _this.TWOSIDEDLIGHTING = false;
  43379. _this.SHADOWFLOAT = false;
  43380. _this.CLIPPLANE = false;
  43381. _this.CLIPPLANE2 = false;
  43382. _this.CLIPPLANE3 = false;
  43383. _this.CLIPPLANE4 = false;
  43384. _this.POINTSIZE = false;
  43385. _this.FOG = false;
  43386. _this.LOGARITHMICDEPTH = false;
  43387. _this.FORCENORMALFORWARD = false;
  43388. _this.SPECULARAA = false;
  43389. _this.UNLIT = false;
  43390. _this.rebuild();
  43391. return _this;
  43392. }
  43393. /**
  43394. * Resets the PBR Material defines.
  43395. */
  43396. PBRMaterialDefines.prototype.reset = function () {
  43397. _super.prototype.reset.call(this);
  43398. this.ALPHATESTVALUE = "0.5";
  43399. this.PBR = true;
  43400. };
  43401. return PBRMaterialDefines;
  43402. }(BABYLON.MaterialDefines));
  43403. /**
  43404. * The Physically based material base class of BJS.
  43405. *
  43406. * This offers the main features of a standard PBR material.
  43407. * For more information, please refer to the documentation :
  43408. * http://doc.babylonjs.com/extensions/Physically_Based_Rendering
  43409. */
  43410. var PBRBaseMaterial = /** @class */ (function (_super) {
  43411. __extends(PBRBaseMaterial, _super);
  43412. /**
  43413. * Instantiates a new PBRMaterial instance.
  43414. *
  43415. * @param name The material name
  43416. * @param scene The scene the material will be use in.
  43417. */
  43418. function PBRBaseMaterial(name, scene) {
  43419. var _this = _super.call(this, name, scene) || this;
  43420. /**
  43421. * Intensity of the direct lights e.g. the four lights available in your scene.
  43422. * This impacts both the direct diffuse and specular highlights.
  43423. */
  43424. _this._directIntensity = 1.0;
  43425. /**
  43426. * Intensity of the emissive part of the material.
  43427. * This helps controlling the emissive effect without modifying the emissive color.
  43428. */
  43429. _this._emissiveIntensity = 1.0;
  43430. /**
  43431. * Intensity of the environment e.g. how much the environment will light the object
  43432. * either through harmonics for rough material or through the refelction for shiny ones.
  43433. */
  43434. _this._environmentIntensity = 1.0;
  43435. /**
  43436. * This is a special control allowing the reduction of the specular highlights coming from the
  43437. * four lights of the scene. Those highlights may not be needed in full environment lighting.
  43438. */
  43439. _this._specularIntensity = 1.0;
  43440. /**
  43441. * This stores the direct, emissive, environment, and specular light intensities into a Vector4.
  43442. */
  43443. _this._lightingInfos = new BABYLON.Vector4(_this._directIntensity, _this._emissiveIntensity, _this._environmentIntensity, _this._specularIntensity);
  43444. /**
  43445. * Debug Control allowing disabling the bump map on this material.
  43446. */
  43447. _this._disableBumpMap = false;
  43448. /**
  43449. * AKA Occlusion Texture Intensity in other nomenclature.
  43450. */
  43451. _this._ambientTextureStrength = 1.0;
  43452. /**
  43453. * Defines how much the AO map is occluding the analytical lights (point spot...).
  43454. * 1 means it completely occludes it
  43455. * 0 mean it has no impact
  43456. */
  43457. _this._ambientTextureImpactOnAnalyticalLights = BABYLON.PBRMaterial.DEFAULT_AO_ON_ANALYTICAL_LIGHTS;
  43458. /**
  43459. * The color of a material in ambient lighting.
  43460. */
  43461. _this._ambientColor = new BABYLON.Color3(0, 0, 0);
  43462. /**
  43463. * AKA Diffuse Color in other nomenclature.
  43464. */
  43465. _this._albedoColor = new BABYLON.Color3(1, 1, 1);
  43466. /**
  43467. * AKA Specular Color in other nomenclature.
  43468. */
  43469. _this._reflectivityColor = new BABYLON.Color3(1, 1, 1);
  43470. /**
  43471. * The color applied when light is reflected from a material.
  43472. */
  43473. _this._reflectionColor = new BABYLON.Color3(1, 1, 1);
  43474. /**
  43475. * The color applied when light is emitted from a material.
  43476. */
  43477. _this._emissiveColor = new BABYLON.Color3(0, 0, 0);
  43478. /**
  43479. * AKA Glossiness in other nomenclature.
  43480. */
  43481. _this._microSurface = 0.9;
  43482. /**
  43483. * source material index of refraction (IOR)' / 'destination material IOR.
  43484. */
  43485. _this._indexOfRefraction = 0.66;
  43486. /**
  43487. * Controls if refraction needs to be inverted on Y. This could be usefull for procedural texture.
  43488. */
  43489. _this._invertRefractionY = false;
  43490. /**
  43491. * This parameters will make the material used its opacity to control how much it is refracting aginst not.
  43492. * Materials half opaque for instance using refraction could benefit from this control.
  43493. */
  43494. _this._linkRefractionWithTransparency = false;
  43495. /**
  43496. * Specifies that the material will use the light map as a show map.
  43497. */
  43498. _this._useLightmapAsShadowmap = false;
  43499. /**
  43500. * This parameters will enable/disable Horizon occlusion to prevent normal maps to look shiny when the normal
  43501. * makes the reflect vector face the model (under horizon).
  43502. */
  43503. _this._useHorizonOcclusion = true;
  43504. /**
  43505. * This parameters will enable/disable radiance occlusion by preventing the radiance to lit
  43506. * too much the area relying on ambient texture to define their ambient occlusion.
  43507. */
  43508. _this._useRadianceOcclusion = true;
  43509. /**
  43510. * Specifies that the alpha is coming form the albedo channel alpha channel for alpha blending.
  43511. */
  43512. _this._useAlphaFromAlbedoTexture = false;
  43513. /**
  43514. * Specifies that the material will keeps the specular highlights over a transparent surface (only the most limunous ones).
  43515. * A car glass is a good exemple of that. When sun reflects on it you can not see what is behind.
  43516. */
  43517. _this._useSpecularOverAlpha = true;
  43518. /**
  43519. * Specifies if the reflectivity texture contains the glossiness information in its alpha channel.
  43520. */
  43521. _this._useMicroSurfaceFromReflectivityMapAlpha = false;
  43522. /**
  43523. * Specifies if the metallic texture contains the roughness information in its alpha channel.
  43524. */
  43525. _this._useRoughnessFromMetallicTextureAlpha = true;
  43526. /**
  43527. * Specifies if the metallic texture contains the roughness information in its green channel.
  43528. */
  43529. _this._useRoughnessFromMetallicTextureGreen = false;
  43530. /**
  43531. * Specifies if the metallic texture contains the metallness information in its blue channel.
  43532. */
  43533. _this._useMetallnessFromMetallicTextureBlue = false;
  43534. /**
  43535. * Specifies if the metallic texture contains the ambient occlusion information in its red channel.
  43536. */
  43537. _this._useAmbientOcclusionFromMetallicTextureRed = false;
  43538. /**
  43539. * Specifies if the ambient texture contains the ambient occlusion information in its red channel only.
  43540. */
  43541. _this._useAmbientInGrayScale = false;
  43542. /**
  43543. * In case the reflectivity map does not contain the microsurface information in its alpha channel,
  43544. * The material will try to infer what glossiness each pixel should be.
  43545. */
  43546. _this._useAutoMicroSurfaceFromReflectivityMap = false;
  43547. /**
  43548. * Defines the falloff type used in this material.
  43549. * It by default is Physical.
  43550. */
  43551. _this._lightFalloff = PBRBaseMaterial.LIGHTFALLOFF_PHYSICAL;
  43552. /**
  43553. * Specifies that the material will keeps the reflection highlights over a transparent surface (only the most limunous ones).
  43554. * A car glass is a good exemple of that. When the street lights reflects on it you can not see what is behind.
  43555. */
  43556. _this._useRadianceOverAlpha = true;
  43557. /**
  43558. * Allows using an object space normal map (instead of tangent space).
  43559. */
  43560. _this._useObjectSpaceNormalMap = false;
  43561. /**
  43562. * Allows using the bump map in parallax mode.
  43563. */
  43564. _this._useParallax = false;
  43565. /**
  43566. * Allows using the bump map in parallax occlusion mode.
  43567. */
  43568. _this._useParallaxOcclusion = false;
  43569. /**
  43570. * Controls the scale bias of the parallax mode.
  43571. */
  43572. _this._parallaxScaleBias = 0.05;
  43573. /**
  43574. * If sets to true, disables all the lights affecting the material.
  43575. */
  43576. _this._disableLighting = false;
  43577. /**
  43578. * Number of Simultaneous lights allowed on the material.
  43579. */
  43580. _this._maxSimultaneousLights = 4;
  43581. /**
  43582. * If sets to true, x component of normal map value will be inverted (x = 1.0 - x).
  43583. */
  43584. _this._invertNormalMapX = false;
  43585. /**
  43586. * If sets to true, y component of normal map value will be inverted (y = 1.0 - y).
  43587. */
  43588. _this._invertNormalMapY = false;
  43589. /**
  43590. * If sets to true and backfaceCulling is false, normals will be flipped on the backside.
  43591. */
  43592. _this._twoSidedLighting = false;
  43593. /**
  43594. * Defines the alpha limits in alpha test mode.
  43595. */
  43596. _this._alphaCutOff = 0.4;
  43597. /**
  43598. * Enforces alpha test in opaque or blend mode in order to improve the performances of some situations.
  43599. */
  43600. _this._forceAlphaTest = false;
  43601. /**
  43602. * A fresnel is applied to the alpha of the model to ensure grazing angles edges are not alpha tested.
  43603. * And/Or occlude the blended part. (alpha is converted to gamma to compute the fresnel)
  43604. */
  43605. _this._useAlphaFresnel = false;
  43606. /**
  43607. * A fresnel is applied to the alpha of the model to ensure grazing angles edges are not alpha tested.
  43608. * And/Or occlude the blended part. (alpha stays linear to compute the fresnel)
  43609. */
  43610. _this._useLinearAlphaFresnel = false;
  43611. /**
  43612. * The transparency mode of the material.
  43613. */
  43614. _this._transparencyMode = null;
  43615. /**
  43616. * Specifies the environment BRDF texture used to comput the scale and offset roughness values
  43617. * from cos thetav and roughness:
  43618. * http://blog.selfshadow.com/publications/s2013-shading-course/karis/s2013_pbs_epic_notes_v2.pdf
  43619. */
  43620. _this._environmentBRDFTexture = null;
  43621. /**
  43622. * Force the shader to compute irradiance in the fragment shader in order to take bump in account.
  43623. */
  43624. _this._forceIrradianceInFragment = false;
  43625. /**
  43626. * Force normal to face away from face.
  43627. */
  43628. _this._forceNormalForward = false;
  43629. /**
  43630. * Enables specular anti aliasing in the PBR shader.
  43631. * It will both interacts on the Geometry for analytical and IBL lighting.
  43632. * It also prefilter the roughness map based on the bump values.
  43633. */
  43634. _this._enableSpecularAntiAliasing = false;
  43635. /**
  43636. * Stores the available render targets.
  43637. */
  43638. _this._renderTargets = new BABYLON.SmartArray(16);
  43639. /**
  43640. * Sets the global ambient color for the material used in lighting calculations.
  43641. */
  43642. _this._globalAmbientColor = new BABYLON.Color3(0, 0, 0);
  43643. /**
  43644. * If set to true, no lighting calculations will be applied.
  43645. */
  43646. _this._unlit = false;
  43647. // Setup the default processing configuration to the scene.
  43648. _this._attachImageProcessingConfiguration(null);
  43649. _this.getRenderTargetTextures = function () {
  43650. _this._renderTargets.reset();
  43651. if (BABYLON.StandardMaterial.ReflectionTextureEnabled && _this._reflectionTexture && _this._reflectionTexture.isRenderTarget) {
  43652. _this._renderTargets.push(_this._reflectionTexture);
  43653. }
  43654. if (BABYLON.StandardMaterial.RefractionTextureEnabled && _this._refractionTexture && _this._refractionTexture.isRenderTarget) {
  43655. _this._renderTargets.push(_this._refractionTexture);
  43656. }
  43657. return _this._renderTargets;
  43658. };
  43659. _this._environmentBRDFTexture = BABYLON.TextureTools.GetEnvironmentBRDFTexture(scene);
  43660. return _this;
  43661. }
  43662. /**
  43663. * Attaches a new image processing configuration to the PBR Material.
  43664. * @param configuration
  43665. */
  43666. PBRBaseMaterial.prototype._attachImageProcessingConfiguration = function (configuration) {
  43667. var _this = this;
  43668. if (configuration === this._imageProcessingConfiguration) {
  43669. return;
  43670. }
  43671. // Detaches observer.
  43672. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  43673. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  43674. }
  43675. // Pick the scene configuration if needed.
  43676. if (!configuration) {
  43677. this._imageProcessingConfiguration = this.getScene().imageProcessingConfiguration;
  43678. }
  43679. else {
  43680. this._imageProcessingConfiguration = configuration;
  43681. }
  43682. // Attaches observer.
  43683. if (this._imageProcessingConfiguration) {
  43684. this._imageProcessingObserver = this._imageProcessingConfiguration.onUpdateParameters.add(function (conf) {
  43685. _this._markAllSubMeshesAsImageProcessingDirty();
  43686. });
  43687. }
  43688. };
  43689. /**
  43690. * Gets the name of the material class.
  43691. */
  43692. PBRBaseMaterial.prototype.getClassName = function () {
  43693. return "PBRBaseMaterial";
  43694. };
  43695. Object.defineProperty(PBRBaseMaterial.prototype, "useLogarithmicDepth", {
  43696. /**
  43697. * Enabled the use of logarithmic depth buffers, which is good for wide depth buffers.
  43698. */
  43699. get: function () {
  43700. return this._useLogarithmicDepth;
  43701. },
  43702. /**
  43703. * Enabled the use of logarithmic depth buffers, which is good for wide depth buffers.
  43704. */
  43705. set: function (value) {
  43706. this._useLogarithmicDepth = value && this.getScene().getEngine().getCaps().fragmentDepthSupported;
  43707. },
  43708. enumerable: true,
  43709. configurable: true
  43710. });
  43711. Object.defineProperty(PBRBaseMaterial.prototype, "transparencyMode", {
  43712. /**
  43713. * Gets the current transparency mode.
  43714. */
  43715. get: function () {
  43716. return this._transparencyMode;
  43717. },
  43718. /**
  43719. * Sets the transparency mode of the material.
  43720. *
  43721. * | Value | Type | Description |
  43722. * | ----- | ----------------------------------- | ----------- |
  43723. * | 0 | OPAQUE | |
  43724. * | 1 | ALPHATEST | |
  43725. * | 2 | ALPHABLEND | |
  43726. * | 3 | ALPHATESTANDBLEND | |
  43727. *
  43728. */
  43729. set: function (value) {
  43730. if (this._transparencyMode === value) {
  43731. return;
  43732. }
  43733. this._transparencyMode = value;
  43734. this._forceAlphaTest = (value === BABYLON.PBRMaterial.PBRMATERIAL_ALPHATESTANDBLEND);
  43735. this._markAllSubMeshesAsTexturesAndMiscDirty();
  43736. },
  43737. enumerable: true,
  43738. configurable: true
  43739. });
  43740. Object.defineProperty(PBRBaseMaterial.prototype, "_disableAlphaBlending", {
  43741. /**
  43742. * Returns true if alpha blending should be disabled.
  43743. */
  43744. get: function () {
  43745. return (this._linkRefractionWithTransparency ||
  43746. this._transparencyMode === BABYLON.PBRMaterial.PBRMATERIAL_OPAQUE ||
  43747. this._transparencyMode === BABYLON.PBRMaterial.PBRMATERIAL_ALPHATEST);
  43748. },
  43749. enumerable: true,
  43750. configurable: true
  43751. });
  43752. /**
  43753. * Specifies whether or not this material should be rendered in alpha blend mode.
  43754. */
  43755. PBRBaseMaterial.prototype.needAlphaBlending = function () {
  43756. if (this._disableAlphaBlending) {
  43757. return false;
  43758. }
  43759. return (this.alpha < 1.0) || (this._opacityTexture != null) || this._shouldUseAlphaFromAlbedoTexture();
  43760. };
  43761. /**
  43762. * Specifies if the mesh will require alpha blending.
  43763. * @param mesh - BJS mesh.
  43764. */
  43765. PBRBaseMaterial.prototype.needAlphaBlendingForMesh = function (mesh) {
  43766. if (this._disableAlphaBlending) {
  43767. return false;
  43768. }
  43769. return _super.prototype.needAlphaBlendingForMesh.call(this, mesh);
  43770. };
  43771. /**
  43772. * Specifies whether or not this material should be rendered in alpha test mode.
  43773. */
  43774. PBRBaseMaterial.prototype.needAlphaTesting = function () {
  43775. if (this._forceAlphaTest) {
  43776. return true;
  43777. }
  43778. if (this._linkRefractionWithTransparency) {
  43779. return false;
  43780. }
  43781. return this._albedoTexture != null && this._albedoTexture.hasAlpha && (this._transparencyMode == null || this._transparencyMode === BABYLON.PBRMaterial.PBRMATERIAL_ALPHATEST);
  43782. };
  43783. /**
  43784. * Specifies whether or not the alpha value of the albedo texture should be used for alpha blending.
  43785. */
  43786. PBRBaseMaterial.prototype._shouldUseAlphaFromAlbedoTexture = function () {
  43787. return this._albedoTexture != null && this._albedoTexture.hasAlpha && this._useAlphaFromAlbedoTexture && this._transparencyMode !== BABYLON.PBRMaterial.PBRMATERIAL_OPAQUE;
  43788. };
  43789. /**
  43790. * Gets the texture used for the alpha test.
  43791. */
  43792. PBRBaseMaterial.prototype.getAlphaTestTexture = function () {
  43793. return this._albedoTexture;
  43794. };
  43795. /**
  43796. * Specifies that the submesh is ready to be used.
  43797. * @param mesh - BJS mesh.
  43798. * @param subMesh - A submesh of the BJS mesh. Used to check if it is ready.
  43799. * @param useInstances - Specifies that instances should be used.
  43800. * @returns - boolean indicating that the submesh is ready or not.
  43801. */
  43802. PBRBaseMaterial.prototype.isReadyForSubMesh = function (mesh, subMesh, useInstances) {
  43803. if (subMesh.effect && this.isFrozen) {
  43804. if (this._wasPreviouslyReady) {
  43805. return true;
  43806. }
  43807. }
  43808. if (!subMesh._materialDefines) {
  43809. subMesh._materialDefines = new PBRMaterialDefines();
  43810. }
  43811. var defines = subMesh._materialDefines;
  43812. if (!this.checkReadyOnEveryCall && subMesh.effect) {
  43813. if (defines._renderId === this.getScene().getRenderId()) {
  43814. return true;
  43815. }
  43816. }
  43817. var scene = this.getScene();
  43818. var engine = scene.getEngine();
  43819. if (defines._areTexturesDirty) {
  43820. if (scene.texturesEnabled) {
  43821. if (this._albedoTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  43822. if (!this._albedoTexture.isReadyOrNotBlocking()) {
  43823. return false;
  43824. }
  43825. }
  43826. if (this._ambientTexture && BABYLON.StandardMaterial.AmbientTextureEnabled) {
  43827. if (!this._ambientTexture.isReadyOrNotBlocking()) {
  43828. return false;
  43829. }
  43830. }
  43831. if (this._opacityTexture && BABYLON.StandardMaterial.OpacityTextureEnabled) {
  43832. if (!this._opacityTexture.isReadyOrNotBlocking()) {
  43833. return false;
  43834. }
  43835. }
  43836. var reflectionTexture = this._getReflectionTexture();
  43837. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  43838. if (!reflectionTexture.isReadyOrNotBlocking()) {
  43839. return false;
  43840. }
  43841. }
  43842. if (this._lightmapTexture && BABYLON.StandardMaterial.LightmapTextureEnabled) {
  43843. if (!this._lightmapTexture.isReadyOrNotBlocking()) {
  43844. return false;
  43845. }
  43846. }
  43847. if (this._emissiveTexture && BABYLON.StandardMaterial.EmissiveTextureEnabled) {
  43848. if (!this._emissiveTexture.isReadyOrNotBlocking()) {
  43849. return false;
  43850. }
  43851. }
  43852. if (BABYLON.StandardMaterial.SpecularTextureEnabled) {
  43853. if (this._metallicTexture) {
  43854. if (!this._metallicTexture.isReadyOrNotBlocking()) {
  43855. return false;
  43856. }
  43857. }
  43858. else if (this._reflectivityTexture) {
  43859. if (!this._reflectivityTexture.isReadyOrNotBlocking()) {
  43860. return false;
  43861. }
  43862. }
  43863. if (this._microSurfaceTexture) {
  43864. if (!this._microSurfaceTexture.isReadyOrNotBlocking()) {
  43865. return false;
  43866. }
  43867. }
  43868. }
  43869. if (engine.getCaps().standardDerivatives && this._bumpTexture && BABYLON.StandardMaterial.BumpTextureEnabled && !this._disableBumpMap) {
  43870. // Bump texture cannot be not blocking.
  43871. if (!this._bumpTexture.isReady()) {
  43872. return false;
  43873. }
  43874. }
  43875. var refractionTexture = this._getRefractionTexture();
  43876. if (refractionTexture && BABYLON.StandardMaterial.RefractionTextureEnabled) {
  43877. if (!refractionTexture.isReadyOrNotBlocking()) {
  43878. return false;
  43879. }
  43880. }
  43881. if (this._environmentBRDFTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  43882. // This is blocking.
  43883. if (!this._environmentBRDFTexture.isReady()) {
  43884. return false;
  43885. }
  43886. }
  43887. }
  43888. }
  43889. if (defines._areImageProcessingDirty && this._imageProcessingConfiguration) {
  43890. if (!this._imageProcessingConfiguration.isReady()) {
  43891. return false;
  43892. }
  43893. }
  43894. if (!engine.getCaps().standardDerivatives && !mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  43895. mesh.createNormals(true);
  43896. BABYLON.Tools.Warn("PBRMaterial: Normals have been created for the mesh: " + mesh.name);
  43897. }
  43898. var effect = this._prepareEffect(mesh, defines, this.onCompiled, this.onError, useInstances);
  43899. if (effect) {
  43900. scene.resetCachedMaterial();
  43901. subMesh.setEffect(effect, defines);
  43902. this.buildUniformLayout();
  43903. }
  43904. if (!subMesh.effect || !subMesh.effect.isReady()) {
  43905. return false;
  43906. }
  43907. defines._renderId = scene.getRenderId();
  43908. this._wasPreviouslyReady = true;
  43909. return true;
  43910. };
  43911. /**
  43912. * Specifies if the material uses metallic roughness workflow.
  43913. * @returns boolean specifiying if the material uses metallic roughness workflow.
  43914. */
  43915. PBRBaseMaterial.prototype.isMetallicWorkflow = function () {
  43916. if (this._metallic != null || this._roughness != null || this._metallicTexture) {
  43917. return true;
  43918. }
  43919. return false;
  43920. };
  43921. PBRBaseMaterial.prototype._prepareEffect = function (mesh, defines, onCompiled, onError, useInstances, useClipPlane) {
  43922. if (onCompiled === void 0) { onCompiled = null; }
  43923. if (onError === void 0) { onError = null; }
  43924. if (useInstances === void 0) { useInstances = null; }
  43925. if (useClipPlane === void 0) { useClipPlane = null; }
  43926. this._prepareDefines(mesh, defines, useInstances, useClipPlane);
  43927. if (!defines.isDirty) {
  43928. return null;
  43929. }
  43930. defines.markAsProcessed();
  43931. var scene = this.getScene();
  43932. var engine = scene.getEngine();
  43933. // Fallbacks
  43934. var fallbacks = new BABYLON.EffectFallbacks();
  43935. var fallbackRank = 0;
  43936. if (defines.USESPHERICALINVERTEX) {
  43937. fallbacks.addFallback(fallbackRank++, "USESPHERICALINVERTEX");
  43938. }
  43939. if (defines.FOG) {
  43940. fallbacks.addFallback(fallbackRank, "FOG");
  43941. }
  43942. if (defines.SPECULARAA) {
  43943. fallbacks.addFallback(fallbackRank, "SPECULARAA");
  43944. }
  43945. if (defines.POINTSIZE) {
  43946. fallbacks.addFallback(fallbackRank, "POINTSIZE");
  43947. }
  43948. if (defines.LOGARITHMICDEPTH) {
  43949. fallbacks.addFallback(fallbackRank, "LOGARITHMICDEPTH");
  43950. }
  43951. if (defines.PARALLAX) {
  43952. fallbacks.addFallback(fallbackRank, "PARALLAX");
  43953. }
  43954. if (defines.PARALLAXOCCLUSION) {
  43955. fallbacks.addFallback(fallbackRank++, "PARALLAXOCCLUSION");
  43956. }
  43957. if (defines.ENVIRONMENTBRDF) {
  43958. fallbacks.addFallback(fallbackRank++, "ENVIRONMENTBRDF");
  43959. }
  43960. if (defines.TANGENT) {
  43961. fallbacks.addFallback(fallbackRank++, "TANGENT");
  43962. }
  43963. if (defines.BUMP) {
  43964. fallbacks.addFallback(fallbackRank++, "BUMP");
  43965. }
  43966. fallbackRank = BABYLON.MaterialHelper.HandleFallbacksForShadows(defines, fallbacks, this._maxSimultaneousLights, fallbackRank++);
  43967. if (defines.SPECULARTERM) {
  43968. fallbacks.addFallback(fallbackRank++, "SPECULARTERM");
  43969. }
  43970. if (defines.USESPHERICALFROMREFLECTIONMAP) {
  43971. fallbacks.addFallback(fallbackRank++, "USESPHERICALFROMREFLECTIONMAP");
  43972. }
  43973. if (defines.LIGHTMAP) {
  43974. fallbacks.addFallback(fallbackRank++, "LIGHTMAP");
  43975. }
  43976. if (defines.NORMAL) {
  43977. fallbacks.addFallback(fallbackRank++, "NORMAL");
  43978. }
  43979. if (defines.AMBIENT) {
  43980. fallbacks.addFallback(fallbackRank++, "AMBIENT");
  43981. }
  43982. if (defines.EMISSIVE) {
  43983. fallbacks.addFallback(fallbackRank++, "EMISSIVE");
  43984. }
  43985. if (defines.VERTEXCOLOR) {
  43986. fallbacks.addFallback(fallbackRank++, "VERTEXCOLOR");
  43987. }
  43988. if (defines.NUM_BONE_INFLUENCERS > 0) {
  43989. fallbacks.addCPUSkinningFallback(fallbackRank++, mesh);
  43990. }
  43991. if (defines.MORPHTARGETS) {
  43992. fallbacks.addFallback(fallbackRank++, "MORPHTARGETS");
  43993. }
  43994. //Attributes
  43995. var attribs = [BABYLON.VertexBuffer.PositionKind];
  43996. if (defines.NORMAL) {
  43997. attribs.push(BABYLON.VertexBuffer.NormalKind);
  43998. }
  43999. if (defines.TANGENT) {
  44000. attribs.push(BABYLON.VertexBuffer.TangentKind);
  44001. }
  44002. if (defines.UV1) {
  44003. attribs.push(BABYLON.VertexBuffer.UVKind);
  44004. }
  44005. if (defines.UV2) {
  44006. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  44007. }
  44008. if (defines.VERTEXCOLOR) {
  44009. attribs.push(BABYLON.VertexBuffer.ColorKind);
  44010. }
  44011. BABYLON.MaterialHelper.PrepareAttributesForBones(attribs, mesh, defines, fallbacks);
  44012. BABYLON.MaterialHelper.PrepareAttributesForInstances(attribs, defines);
  44013. BABYLON.MaterialHelper.PrepareAttributesForMorphTargets(attribs, mesh, defines);
  44014. var uniforms = ["world", "view", "viewProjection", "vEyePosition", "vLightsType", "vAmbientColor", "vAlbedoColor", "vReflectivityColor", "vEmissiveColor", "vReflectionColor",
  44015. "vFogInfos", "vFogColor", "pointSize",
  44016. "vAlbedoInfos", "vAmbientInfos", "vOpacityInfos", "vReflectionInfos", "vReflectionPosition", "vReflectionSize", "vEmissiveInfos", "vReflectivityInfos",
  44017. "vMicroSurfaceSamplerInfos", "vBumpInfos", "vLightmapInfos", "vRefractionInfos",
  44018. "mBones",
  44019. "vClipPlane", "vClipPlane2", "vClipPlane3", "vClipPlane4", "albedoMatrix", "ambientMatrix", "opacityMatrix", "reflectionMatrix", "emissiveMatrix", "reflectivityMatrix", "normalMatrix", "microSurfaceSamplerMatrix", "bumpMatrix", "lightmapMatrix", "refractionMatrix",
  44020. "vLightingIntensity",
  44021. "logarithmicDepthConstant",
  44022. "vSphericalX", "vSphericalY", "vSphericalZ",
  44023. "vSphericalXX", "vSphericalYY", "vSphericalZZ",
  44024. "vSphericalXY", "vSphericalYZ", "vSphericalZX",
  44025. "vReflectionMicrosurfaceInfos", "vRefractionMicrosurfaceInfos",
  44026. "vTangentSpaceParams"
  44027. ];
  44028. var samplers = ["albedoSampler", "reflectivitySampler", "ambientSampler", "emissiveSampler",
  44029. "bumpSampler", "lightmapSampler", "opacitySampler",
  44030. "refractionSampler", "refractionSamplerLow", "refractionSamplerHigh",
  44031. "reflectionSampler", "reflectionSamplerLow", "reflectionSamplerHigh",
  44032. "microSurfaceSampler", "environmentBrdfSampler"];
  44033. var uniformBuffers = ["Material", "Scene"];
  44034. if (BABYLON.ImageProcessingConfiguration) {
  44035. BABYLON.ImageProcessingConfiguration.PrepareUniforms(uniforms, defines);
  44036. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, defines);
  44037. }
  44038. BABYLON.MaterialHelper.PrepareUniformsAndSamplersList({
  44039. uniformsNames: uniforms,
  44040. uniformBuffersNames: uniformBuffers,
  44041. samplers: samplers,
  44042. defines: defines,
  44043. maxSimultaneousLights: this._maxSimultaneousLights
  44044. });
  44045. var join = defines.toString();
  44046. return engine.createEffect("pbr", {
  44047. attributes: attribs,
  44048. uniformsNames: uniforms,
  44049. uniformBuffersNames: uniformBuffers,
  44050. samplers: samplers,
  44051. defines: join,
  44052. fallbacks: fallbacks,
  44053. onCompiled: onCompiled,
  44054. onError: onError,
  44055. indexParameters: { maxSimultaneousLights: this._maxSimultaneousLights, maxSimultaneousMorphTargets: defines.NUM_MORPH_INFLUENCERS }
  44056. }, engine);
  44057. };
  44058. PBRBaseMaterial.prototype._prepareDefines = function (mesh, defines, useInstances, useClipPlane) {
  44059. if (useInstances === void 0) { useInstances = null; }
  44060. if (useClipPlane === void 0) { useClipPlane = null; }
  44061. var scene = this.getScene();
  44062. var engine = scene.getEngine();
  44063. // Lights
  44064. BABYLON.MaterialHelper.PrepareDefinesForLights(scene, mesh, defines, true, this._maxSimultaneousLights, this._disableLighting);
  44065. defines._needNormals = true;
  44066. // Textures
  44067. defines.METALLICWORKFLOW = this.isMetallicWorkflow();
  44068. if (defines._areTexturesDirty) {
  44069. defines._needUVs = false;
  44070. if (scene.texturesEnabled) {
  44071. if (scene.getEngine().getCaps().textureLOD) {
  44072. defines.LODBASEDMICROSFURACE = true;
  44073. }
  44074. if (this._albedoTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  44075. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._albedoTexture, defines, "ALBEDO");
  44076. }
  44077. else {
  44078. defines.ALBEDO = false;
  44079. }
  44080. if (this._ambientTexture && BABYLON.StandardMaterial.AmbientTextureEnabled) {
  44081. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._ambientTexture, defines, "AMBIENT");
  44082. defines.AMBIENTINGRAYSCALE = this._useAmbientInGrayScale;
  44083. }
  44084. else {
  44085. defines.AMBIENT = false;
  44086. }
  44087. if (this._opacityTexture && BABYLON.StandardMaterial.OpacityTextureEnabled) {
  44088. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._opacityTexture, defines, "OPACITY");
  44089. defines.OPACITYRGB = this._opacityTexture.getAlphaFromRGB;
  44090. }
  44091. else {
  44092. defines.OPACITY = false;
  44093. }
  44094. var reflectionTexture = this._getReflectionTexture();
  44095. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  44096. defines.REFLECTION = true;
  44097. defines.GAMMAREFLECTION = reflectionTexture.gammaSpace;
  44098. defines.RGBDREFLECTION = reflectionTexture.isRGBD;
  44099. defines.REFLECTIONMAP_OPPOSITEZ = this.getScene().useRightHandedSystem ? !reflectionTexture.invertZ : reflectionTexture.invertZ;
  44100. defines.LODINREFLECTIONALPHA = reflectionTexture.lodLevelInAlpha;
  44101. if (reflectionTexture.coordinatesMode === BABYLON.Texture.INVCUBIC_MODE) {
  44102. defines.INVERTCUBICMAP = true;
  44103. }
  44104. defines.REFLECTIONMAP_3D = reflectionTexture.isCube;
  44105. switch (reflectionTexture.coordinatesMode) {
  44106. case BABYLON.Texture.EXPLICIT_MODE:
  44107. defines.REFLECTIONMAP_EXPLICIT = true;
  44108. break;
  44109. case BABYLON.Texture.PLANAR_MODE:
  44110. defines.REFLECTIONMAP_PLANAR = true;
  44111. break;
  44112. case BABYLON.Texture.PROJECTION_MODE:
  44113. defines.REFLECTIONMAP_PROJECTION = true;
  44114. break;
  44115. case BABYLON.Texture.SKYBOX_MODE:
  44116. defines.REFLECTIONMAP_SKYBOX = true;
  44117. break;
  44118. case BABYLON.Texture.SPHERICAL_MODE:
  44119. defines.REFLECTIONMAP_SPHERICAL = true;
  44120. break;
  44121. case BABYLON.Texture.EQUIRECTANGULAR_MODE:
  44122. defines.REFLECTIONMAP_EQUIRECTANGULAR = true;
  44123. break;
  44124. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MODE:
  44125. defines.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = true;
  44126. break;
  44127. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE:
  44128. defines.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = true;
  44129. break;
  44130. case BABYLON.Texture.CUBIC_MODE:
  44131. case BABYLON.Texture.INVCUBIC_MODE:
  44132. default:
  44133. defines.REFLECTIONMAP_CUBIC = true;
  44134. defines.USE_LOCAL_REFLECTIONMAP_CUBIC = reflectionTexture.boundingBoxSize ? true : false;
  44135. break;
  44136. }
  44137. if (reflectionTexture.coordinatesMode !== BABYLON.Texture.SKYBOX_MODE) {
  44138. if (reflectionTexture.sphericalPolynomial) {
  44139. defines.USESPHERICALFROMREFLECTIONMAP = true;
  44140. if (this._forceIrradianceInFragment || scene.getEngine().getCaps().maxVaryingVectors <= 8) {
  44141. defines.USESPHERICALINVERTEX = false;
  44142. }
  44143. else {
  44144. defines.USESPHERICALINVERTEX = true;
  44145. }
  44146. }
  44147. }
  44148. else {
  44149. defines.REFLECTIONMAP_SKYBOX_TRANSFORMED = !reflectionTexture.getReflectionTextureMatrix().isIdentity();
  44150. }
  44151. }
  44152. else {
  44153. defines.REFLECTION = false;
  44154. defines.REFLECTIONMAP_3D = false;
  44155. defines.REFLECTIONMAP_SPHERICAL = false;
  44156. defines.REFLECTIONMAP_PLANAR = false;
  44157. defines.REFLECTIONMAP_CUBIC = false;
  44158. defines.USE_LOCAL_REFLECTIONMAP_CUBIC = false;
  44159. defines.REFLECTIONMAP_PROJECTION = false;
  44160. defines.REFLECTIONMAP_SKYBOX = false;
  44161. defines.REFLECTIONMAP_SKYBOX_TRANSFORMED = false;
  44162. defines.REFLECTIONMAP_EXPLICIT = false;
  44163. defines.REFLECTIONMAP_EQUIRECTANGULAR = false;
  44164. defines.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = false;
  44165. defines.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = false;
  44166. defines.INVERTCUBICMAP = false;
  44167. defines.USESPHERICALFROMREFLECTIONMAP = false;
  44168. defines.USESPHERICALINVERTEX = false;
  44169. defines.REFLECTIONMAP_OPPOSITEZ = false;
  44170. defines.LODINREFLECTIONALPHA = false;
  44171. defines.GAMMAREFLECTION = false;
  44172. defines.RGBDREFLECTION = false;
  44173. }
  44174. if (this._lightmapTexture && BABYLON.StandardMaterial.LightmapTextureEnabled) {
  44175. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._lightmapTexture, defines, "LIGHTMAP");
  44176. defines.USELIGHTMAPASSHADOWMAP = this._useLightmapAsShadowmap;
  44177. defines.GAMMALIGHTMAP = this._lightmapTexture.gammaSpace;
  44178. }
  44179. else {
  44180. defines.LIGHTMAP = false;
  44181. }
  44182. if (this._emissiveTexture && BABYLON.StandardMaterial.EmissiveTextureEnabled) {
  44183. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._emissiveTexture, defines, "EMISSIVE");
  44184. }
  44185. else {
  44186. defines.EMISSIVE = false;
  44187. }
  44188. if (BABYLON.StandardMaterial.SpecularTextureEnabled) {
  44189. if (this._metallicTexture) {
  44190. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._metallicTexture, defines, "REFLECTIVITY");
  44191. defines.ROUGHNESSSTOREINMETALMAPALPHA = this._useRoughnessFromMetallicTextureAlpha;
  44192. defines.ROUGHNESSSTOREINMETALMAPGREEN = !this._useRoughnessFromMetallicTextureAlpha && this._useRoughnessFromMetallicTextureGreen;
  44193. defines.METALLNESSSTOREINMETALMAPBLUE = this._useMetallnessFromMetallicTextureBlue;
  44194. defines.AOSTOREINMETALMAPRED = this._useAmbientOcclusionFromMetallicTextureRed;
  44195. }
  44196. else if (this._reflectivityTexture) {
  44197. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._reflectivityTexture, defines, "REFLECTIVITY");
  44198. defines.MICROSURFACEFROMREFLECTIVITYMAP = this._useMicroSurfaceFromReflectivityMapAlpha;
  44199. defines.MICROSURFACEAUTOMATIC = this._useAutoMicroSurfaceFromReflectivityMap;
  44200. }
  44201. else {
  44202. defines.REFLECTIVITY = false;
  44203. }
  44204. if (this._microSurfaceTexture) {
  44205. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._microSurfaceTexture, defines, "MICROSURFACEMAP");
  44206. }
  44207. else {
  44208. defines.MICROSURFACEMAP = false;
  44209. }
  44210. }
  44211. else {
  44212. defines.REFLECTIVITY = false;
  44213. defines.MICROSURFACEMAP = false;
  44214. }
  44215. if (scene.getEngine().getCaps().standardDerivatives && this._bumpTexture && BABYLON.StandardMaterial.BumpTextureEnabled && !this._disableBumpMap) {
  44216. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._bumpTexture, defines, "BUMP");
  44217. if (this._useParallax && this._albedoTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  44218. defines.PARALLAX = true;
  44219. defines.PARALLAXOCCLUSION = !!this._useParallaxOcclusion;
  44220. }
  44221. else {
  44222. defines.PARALLAX = false;
  44223. }
  44224. defines.OBJECTSPACE_NORMALMAP = this._useObjectSpaceNormalMap;
  44225. }
  44226. else {
  44227. defines.BUMP = false;
  44228. }
  44229. var refractionTexture = this._getRefractionTexture();
  44230. if (refractionTexture && BABYLON.StandardMaterial.RefractionTextureEnabled) {
  44231. defines.REFRACTION = true;
  44232. defines.REFRACTIONMAP_3D = refractionTexture.isCube;
  44233. defines.GAMMAREFRACTION = refractionTexture.gammaSpace;
  44234. defines.RGBDREFRACTION = refractionTexture.isRGBD;
  44235. defines.REFRACTIONMAP_OPPOSITEZ = refractionTexture.invertZ;
  44236. defines.LODINREFRACTIONALPHA = refractionTexture.lodLevelInAlpha;
  44237. if (this._linkRefractionWithTransparency) {
  44238. defines.LINKREFRACTIONTOTRANSPARENCY = true;
  44239. }
  44240. }
  44241. else {
  44242. defines.REFRACTION = false;
  44243. }
  44244. if (this._environmentBRDFTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  44245. defines.ENVIRONMENTBRDF = true;
  44246. }
  44247. else {
  44248. defines.ENVIRONMENTBRDF = false;
  44249. }
  44250. if (this._shouldUseAlphaFromAlbedoTexture()) {
  44251. defines.ALPHAFROMALBEDO = true;
  44252. }
  44253. else {
  44254. defines.ALPHAFROMALBEDO = false;
  44255. }
  44256. }
  44257. defines.SPECULAROVERALPHA = this._useSpecularOverAlpha;
  44258. if (this._lightFalloff === PBRBaseMaterial.LIGHTFALLOFF_STANDARD) {
  44259. defines.USEPHYSICALLIGHTFALLOFF = false;
  44260. defines.USEGLTFLIGHTFALLOFF = false;
  44261. }
  44262. else if (this._lightFalloff === PBRBaseMaterial.LIGHTFALLOFF_GLTF) {
  44263. defines.USEPHYSICALLIGHTFALLOFF = false;
  44264. defines.USEGLTFLIGHTFALLOFF = true;
  44265. }
  44266. else {
  44267. defines.USEPHYSICALLIGHTFALLOFF = true;
  44268. defines.USEGLTFLIGHTFALLOFF = false;
  44269. }
  44270. defines.RADIANCEOVERALPHA = this._useRadianceOverAlpha;
  44271. if (!this.backFaceCulling && this._twoSidedLighting) {
  44272. defines.TWOSIDEDLIGHTING = true;
  44273. }
  44274. else {
  44275. defines.TWOSIDEDLIGHTING = false;
  44276. }
  44277. defines.ALPHATESTVALUE = "" + this._alphaCutOff + (this._alphaCutOff % 1 === 0 ? "." : "");
  44278. defines.PREMULTIPLYALPHA = (this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED || this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED_PORTERDUFF);
  44279. defines.ALPHABLEND = this.needAlphaBlendingForMesh(mesh);
  44280. defines.ALPHAFRESNEL = this._useAlphaFresnel || this._useLinearAlphaFresnel;
  44281. defines.LINEARALPHAFRESNEL = this._useLinearAlphaFresnel;
  44282. defines.SPECULARAA = scene.getEngine().getCaps().standardDerivatives && this._enableSpecularAntiAliasing;
  44283. }
  44284. if (defines._areImageProcessingDirty && this._imageProcessingConfiguration) {
  44285. this._imageProcessingConfiguration.prepareDefines(defines);
  44286. }
  44287. defines.FORCENORMALFORWARD = this._forceNormalForward;
  44288. defines.RADIANCEOCCLUSION = this._useRadianceOcclusion;
  44289. defines.HORIZONOCCLUSION = this._useHorizonOcclusion;
  44290. // Misc.
  44291. if (defines._areMiscDirty) {
  44292. BABYLON.MaterialHelper.PrepareDefinesForMisc(mesh, scene, this._useLogarithmicDepth, this.pointsCloud, this.fogEnabled, this._shouldTurnAlphaTestOn(mesh) || this._forceAlphaTest, defines);
  44293. defines.UNLIT = this._unlit || ((this.pointsCloud || this.wireframe) && !mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind));
  44294. }
  44295. // Values that need to be evaluated on every frame
  44296. BABYLON.MaterialHelper.PrepareDefinesForFrameBoundValues(scene, engine, defines, useInstances ? true : false, useClipPlane);
  44297. // Attribs
  44298. BABYLON.MaterialHelper.PrepareDefinesForAttributes(mesh, defines, true, true, true, this._transparencyMode !== BABYLON.PBRMaterial.PBRMATERIAL_OPAQUE);
  44299. };
  44300. /**
  44301. * Force shader compilation
  44302. */
  44303. PBRBaseMaterial.prototype.forceCompilation = function (mesh, onCompiled, options) {
  44304. var _this = this;
  44305. var localOptions = __assign({ clipPlane: false }, options);
  44306. var defines = new PBRMaterialDefines();
  44307. var effect = this._prepareEffect(mesh, defines, undefined, undefined, undefined, localOptions.clipPlane);
  44308. if (effect.isReady()) {
  44309. if (onCompiled) {
  44310. onCompiled(this);
  44311. }
  44312. }
  44313. else {
  44314. effect.onCompileObservable.add(function () {
  44315. if (onCompiled) {
  44316. onCompiled(_this);
  44317. }
  44318. });
  44319. }
  44320. };
  44321. /**
  44322. * Initializes the uniform buffer layout for the shader.
  44323. */
  44324. PBRBaseMaterial.prototype.buildUniformLayout = function () {
  44325. // Order is important !
  44326. this._uniformBuffer.addUniform("vAlbedoInfos", 2);
  44327. this._uniformBuffer.addUniform("vAmbientInfos", 4);
  44328. this._uniformBuffer.addUniform("vOpacityInfos", 2);
  44329. this._uniformBuffer.addUniform("vEmissiveInfos", 2);
  44330. this._uniformBuffer.addUniform("vLightmapInfos", 2);
  44331. this._uniformBuffer.addUniform("vReflectivityInfos", 3);
  44332. this._uniformBuffer.addUniform("vMicroSurfaceSamplerInfos", 2);
  44333. this._uniformBuffer.addUniform("vRefractionInfos", 4);
  44334. this._uniformBuffer.addUniform("vReflectionInfos", 2);
  44335. this._uniformBuffer.addUniform("vReflectionPosition", 3);
  44336. this._uniformBuffer.addUniform("vReflectionSize", 3);
  44337. this._uniformBuffer.addUniform("vBumpInfos", 3);
  44338. this._uniformBuffer.addUniform("albedoMatrix", 16);
  44339. this._uniformBuffer.addUniform("ambientMatrix", 16);
  44340. this._uniformBuffer.addUniform("opacityMatrix", 16);
  44341. this._uniformBuffer.addUniform("emissiveMatrix", 16);
  44342. this._uniformBuffer.addUniform("lightmapMatrix", 16);
  44343. this._uniformBuffer.addUniform("reflectivityMatrix", 16);
  44344. this._uniformBuffer.addUniform("microSurfaceSamplerMatrix", 16);
  44345. this._uniformBuffer.addUniform("bumpMatrix", 16);
  44346. this._uniformBuffer.addUniform("vTangentSpaceParams", 2);
  44347. this._uniformBuffer.addUniform("refractionMatrix", 16);
  44348. this._uniformBuffer.addUniform("reflectionMatrix", 16);
  44349. this._uniformBuffer.addUniform("vReflectionColor", 3);
  44350. this._uniformBuffer.addUniform("vAlbedoColor", 4);
  44351. this._uniformBuffer.addUniform("vLightingIntensity", 4);
  44352. this._uniformBuffer.addUniform("vRefractionMicrosurfaceInfos", 3);
  44353. this._uniformBuffer.addUniform("vReflectionMicrosurfaceInfos", 3);
  44354. this._uniformBuffer.addUniform("vReflectivityColor", 4);
  44355. this._uniformBuffer.addUniform("vEmissiveColor", 3);
  44356. this._uniformBuffer.addUniform("pointSize", 1);
  44357. this._uniformBuffer.create();
  44358. };
  44359. /**
  44360. * Unbinds the textures.
  44361. */
  44362. PBRBaseMaterial.prototype.unbind = function () {
  44363. if (this._reflectionTexture && this._reflectionTexture.isRenderTarget) {
  44364. this._uniformBuffer.setTexture("reflectionSampler", null);
  44365. }
  44366. if (this._refractionTexture && this._refractionTexture.isRenderTarget) {
  44367. this._uniformBuffer.setTexture("refractionSampler", null);
  44368. }
  44369. _super.prototype.unbind.call(this);
  44370. };
  44371. /**
  44372. * Binds the submesh data.
  44373. * @param world - The world matrix.
  44374. * @param mesh - The BJS mesh.
  44375. * @param subMesh - A submesh of the BJS mesh.
  44376. */
  44377. PBRBaseMaterial.prototype.bindForSubMesh = function (world, mesh, subMesh) {
  44378. var scene = this.getScene();
  44379. var defines = subMesh._materialDefines;
  44380. if (!defines) {
  44381. return;
  44382. }
  44383. var effect = subMesh.effect;
  44384. if (!effect) {
  44385. return;
  44386. }
  44387. this._activeEffect = effect;
  44388. // Matrices
  44389. this.bindOnlyWorldMatrix(world);
  44390. // Normal Matrix
  44391. if (defines.OBJECTSPACE_NORMALMAP) {
  44392. world.toNormalMatrix(this._normalMatrix);
  44393. this.bindOnlyNormalMatrix(this._normalMatrix);
  44394. }
  44395. var mustRebind = this._mustRebind(scene, effect, mesh.visibility);
  44396. // Bones
  44397. BABYLON.MaterialHelper.BindBonesParameters(mesh, this._activeEffect);
  44398. var reflectionTexture = null;
  44399. if (mustRebind) {
  44400. this._uniformBuffer.bindToEffect(effect, "Material");
  44401. this.bindViewProjection(effect);
  44402. reflectionTexture = this._getReflectionTexture();
  44403. var refractionTexture = this._getRefractionTexture();
  44404. if (!this._uniformBuffer.useUbo || !this.isFrozen || !this._uniformBuffer.isSync) {
  44405. // Texture uniforms
  44406. if (scene.texturesEnabled) {
  44407. if (this._albedoTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  44408. this._uniformBuffer.updateFloat2("vAlbedoInfos", this._albedoTexture.coordinatesIndex, this._albedoTexture.level);
  44409. BABYLON.MaterialHelper.BindTextureMatrix(this._albedoTexture, this._uniformBuffer, "albedo");
  44410. }
  44411. if (this._ambientTexture && BABYLON.StandardMaterial.AmbientTextureEnabled) {
  44412. this._uniformBuffer.updateFloat4("vAmbientInfos", this._ambientTexture.coordinatesIndex, this._ambientTexture.level, this._ambientTextureStrength, this._ambientTextureImpactOnAnalyticalLights);
  44413. BABYLON.MaterialHelper.BindTextureMatrix(this._ambientTexture, this._uniformBuffer, "ambient");
  44414. }
  44415. if (this._opacityTexture && BABYLON.StandardMaterial.OpacityTextureEnabled) {
  44416. this._uniformBuffer.updateFloat2("vOpacityInfos", this._opacityTexture.coordinatesIndex, this._opacityTexture.level);
  44417. BABYLON.MaterialHelper.BindTextureMatrix(this._opacityTexture, this._uniformBuffer, "opacity");
  44418. }
  44419. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  44420. this._uniformBuffer.updateMatrix("reflectionMatrix", reflectionTexture.getReflectionTextureMatrix());
  44421. this._uniformBuffer.updateFloat2("vReflectionInfos", reflectionTexture.level, 0);
  44422. if (reflectionTexture.boundingBoxSize) {
  44423. var cubeTexture = reflectionTexture;
  44424. this._uniformBuffer.updateVector3("vReflectionPosition", cubeTexture.boundingBoxPosition);
  44425. this._uniformBuffer.updateVector3("vReflectionSize", cubeTexture.boundingBoxSize);
  44426. }
  44427. var polynomials = reflectionTexture.sphericalPolynomial;
  44428. if (defines.USESPHERICALFROMREFLECTIONMAP && polynomials) {
  44429. this._activeEffect.setFloat3("vSphericalX", polynomials.x.x, polynomials.x.y, polynomials.x.z);
  44430. this._activeEffect.setFloat3("vSphericalY", polynomials.y.x, polynomials.y.y, polynomials.y.z);
  44431. this._activeEffect.setFloat3("vSphericalZ", polynomials.z.x, polynomials.z.y, polynomials.z.z);
  44432. this._activeEffect.setFloat3("vSphericalXX_ZZ", polynomials.xx.x - polynomials.zz.x, polynomials.xx.y - polynomials.zz.y, polynomials.xx.z - polynomials.zz.z);
  44433. this._activeEffect.setFloat3("vSphericalYY_ZZ", polynomials.yy.x - polynomials.zz.x, polynomials.yy.y - polynomials.zz.y, polynomials.yy.z - polynomials.zz.z);
  44434. this._activeEffect.setFloat3("vSphericalZZ", polynomials.zz.x, polynomials.zz.y, polynomials.zz.z);
  44435. this._activeEffect.setFloat3("vSphericalXY", polynomials.xy.x, polynomials.xy.y, polynomials.xy.z);
  44436. this._activeEffect.setFloat3("vSphericalYZ", polynomials.yz.x, polynomials.yz.y, polynomials.yz.z);
  44437. this._activeEffect.setFloat3("vSphericalZX", polynomials.zx.x, polynomials.zx.y, polynomials.zx.z);
  44438. }
  44439. this._uniformBuffer.updateFloat3("vReflectionMicrosurfaceInfos", reflectionTexture.getSize().width, reflectionTexture.lodGenerationScale, reflectionTexture.lodGenerationOffset);
  44440. }
  44441. if (this._emissiveTexture && BABYLON.StandardMaterial.EmissiveTextureEnabled) {
  44442. this._uniformBuffer.updateFloat2("vEmissiveInfos", this._emissiveTexture.coordinatesIndex, this._emissiveTexture.level);
  44443. BABYLON.MaterialHelper.BindTextureMatrix(this._emissiveTexture, this._uniformBuffer, "emissive");
  44444. }
  44445. if (this._lightmapTexture && BABYLON.StandardMaterial.LightmapTextureEnabled) {
  44446. this._uniformBuffer.updateFloat2("vLightmapInfos", this._lightmapTexture.coordinatesIndex, this._lightmapTexture.level);
  44447. BABYLON.MaterialHelper.BindTextureMatrix(this._lightmapTexture, this._uniformBuffer, "lightmap");
  44448. }
  44449. if (BABYLON.StandardMaterial.SpecularTextureEnabled) {
  44450. if (this._metallicTexture) {
  44451. this._uniformBuffer.updateFloat3("vReflectivityInfos", this._metallicTexture.coordinatesIndex, this._metallicTexture.level, this._ambientTextureStrength);
  44452. BABYLON.MaterialHelper.BindTextureMatrix(this._metallicTexture, this._uniformBuffer, "reflectivity");
  44453. }
  44454. else if (this._reflectivityTexture) {
  44455. this._uniformBuffer.updateFloat3("vReflectivityInfos", this._reflectivityTexture.coordinatesIndex, this._reflectivityTexture.level, 1.0);
  44456. BABYLON.MaterialHelper.BindTextureMatrix(this._reflectivityTexture, this._uniformBuffer, "reflectivity");
  44457. }
  44458. if (this._microSurfaceTexture) {
  44459. this._uniformBuffer.updateFloat2("vMicroSurfaceSamplerInfos", this._microSurfaceTexture.coordinatesIndex, this._microSurfaceTexture.level);
  44460. BABYLON.MaterialHelper.BindTextureMatrix(this._microSurfaceTexture, this._uniformBuffer, "microSurfaceSampler");
  44461. }
  44462. }
  44463. if (this._bumpTexture && scene.getEngine().getCaps().standardDerivatives && BABYLON.StandardMaterial.BumpTextureEnabled && !this._disableBumpMap) {
  44464. this._uniformBuffer.updateFloat3("vBumpInfos", this._bumpTexture.coordinatesIndex, this._bumpTexture.level, this._parallaxScaleBias);
  44465. BABYLON.MaterialHelper.BindTextureMatrix(this._bumpTexture, this._uniformBuffer, "bump");
  44466. if (scene._mirroredCameraPosition) {
  44467. this._uniformBuffer.updateFloat2("vTangentSpaceParams", this._invertNormalMapX ? 1.0 : -1.0, this._invertNormalMapY ? 1.0 : -1.0);
  44468. }
  44469. else {
  44470. this._uniformBuffer.updateFloat2("vTangentSpaceParams", this._invertNormalMapX ? -1.0 : 1.0, this._invertNormalMapY ? -1.0 : 1.0);
  44471. }
  44472. }
  44473. if (refractionTexture && BABYLON.StandardMaterial.RefractionTextureEnabled) {
  44474. this._uniformBuffer.updateMatrix("refractionMatrix", refractionTexture.getReflectionTextureMatrix());
  44475. var depth = 1.0;
  44476. if (!refractionTexture.isCube) {
  44477. if (refractionTexture.depth) {
  44478. depth = refractionTexture.depth;
  44479. }
  44480. }
  44481. this._uniformBuffer.updateFloat4("vRefractionInfos", refractionTexture.level, this._indexOfRefraction, depth, this._invertRefractionY ? -1 : 1);
  44482. this._uniformBuffer.updateFloat3("vRefractionMicrosurfaceInfos", refractionTexture.getSize().width, refractionTexture.lodGenerationScale, refractionTexture.lodGenerationOffset);
  44483. }
  44484. }
  44485. // Point size
  44486. if (this.pointsCloud) {
  44487. this._uniformBuffer.updateFloat("pointSize", this.pointSize);
  44488. }
  44489. // Colors
  44490. if (defines.METALLICWORKFLOW) {
  44491. BABYLON.PBRMaterial._scaledReflectivity.r = (this._metallic === undefined || this._metallic === null) ? 1 : this._metallic;
  44492. BABYLON.PBRMaterial._scaledReflectivity.g = (this._roughness === undefined || this._roughness === null) ? 1 : this._roughness;
  44493. this._uniformBuffer.updateColor4("vReflectivityColor", BABYLON.PBRMaterial._scaledReflectivity, 0);
  44494. }
  44495. else {
  44496. this._uniformBuffer.updateColor4("vReflectivityColor", this._reflectivityColor, this._microSurface);
  44497. }
  44498. this._uniformBuffer.updateColor3("vEmissiveColor", this._emissiveColor);
  44499. this._uniformBuffer.updateColor3("vReflectionColor", this._reflectionColor);
  44500. this._uniformBuffer.updateColor4("vAlbedoColor", this._albedoColor, this.alpha * mesh.visibility);
  44501. // Misc
  44502. this._lightingInfos.x = this._directIntensity;
  44503. this._lightingInfos.y = this._emissiveIntensity;
  44504. this._lightingInfos.z = this._environmentIntensity;
  44505. this._lightingInfos.w = this._specularIntensity;
  44506. this._uniformBuffer.updateVector4("vLightingIntensity", this._lightingInfos);
  44507. }
  44508. // Textures
  44509. if (scene.texturesEnabled) {
  44510. if (this._albedoTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  44511. this._uniformBuffer.setTexture("albedoSampler", this._albedoTexture);
  44512. }
  44513. if (this._ambientTexture && BABYLON.StandardMaterial.AmbientTextureEnabled) {
  44514. this._uniformBuffer.setTexture("ambientSampler", this._ambientTexture);
  44515. }
  44516. if (this._opacityTexture && BABYLON.StandardMaterial.OpacityTextureEnabled) {
  44517. this._uniformBuffer.setTexture("opacitySampler", this._opacityTexture);
  44518. }
  44519. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  44520. if (defines.LODBASEDMICROSFURACE) {
  44521. this._uniformBuffer.setTexture("reflectionSampler", reflectionTexture);
  44522. }
  44523. else {
  44524. this._uniformBuffer.setTexture("reflectionSampler", reflectionTexture._lodTextureMid || reflectionTexture);
  44525. this._uniformBuffer.setTexture("reflectionSamplerLow", reflectionTexture._lodTextureLow || reflectionTexture);
  44526. this._uniformBuffer.setTexture("reflectionSamplerHigh", reflectionTexture._lodTextureHigh || reflectionTexture);
  44527. }
  44528. }
  44529. if (defines.ENVIRONMENTBRDF) {
  44530. this._uniformBuffer.setTexture("environmentBrdfSampler", this._environmentBRDFTexture);
  44531. }
  44532. if (refractionTexture && BABYLON.StandardMaterial.RefractionTextureEnabled) {
  44533. if (defines.LODBASEDMICROSFURACE) {
  44534. this._uniformBuffer.setTexture("refractionSampler", refractionTexture);
  44535. }
  44536. else {
  44537. this._uniformBuffer.setTexture("refractionSampler", refractionTexture._lodTextureMid || refractionTexture);
  44538. this._uniformBuffer.setTexture("refractionSamplerLow", refractionTexture._lodTextureLow || refractionTexture);
  44539. this._uniformBuffer.setTexture("refractionSamplerHigh", refractionTexture._lodTextureHigh || refractionTexture);
  44540. }
  44541. }
  44542. if (this._emissiveTexture && BABYLON.StandardMaterial.EmissiveTextureEnabled) {
  44543. this._uniformBuffer.setTexture("emissiveSampler", this._emissiveTexture);
  44544. }
  44545. if (this._lightmapTexture && BABYLON.StandardMaterial.LightmapTextureEnabled) {
  44546. this._uniformBuffer.setTexture("lightmapSampler", this._lightmapTexture);
  44547. }
  44548. if (BABYLON.StandardMaterial.SpecularTextureEnabled) {
  44549. if (this._metallicTexture) {
  44550. this._uniformBuffer.setTexture("reflectivitySampler", this._metallicTexture);
  44551. }
  44552. else if (this._reflectivityTexture) {
  44553. this._uniformBuffer.setTexture("reflectivitySampler", this._reflectivityTexture);
  44554. }
  44555. if (this._microSurfaceTexture) {
  44556. this._uniformBuffer.setTexture("microSurfaceSampler", this._microSurfaceTexture);
  44557. }
  44558. }
  44559. if (this._bumpTexture && scene.getEngine().getCaps().standardDerivatives && BABYLON.StandardMaterial.BumpTextureEnabled && !this._disableBumpMap) {
  44560. this._uniformBuffer.setTexture("bumpSampler", this._bumpTexture);
  44561. }
  44562. }
  44563. // Clip plane
  44564. BABYLON.MaterialHelper.BindClipPlane(this._activeEffect, scene);
  44565. // Colors
  44566. scene.ambientColor.multiplyToRef(this._ambientColor, this._globalAmbientColor);
  44567. var eyePosition = scene._forcedViewPosition ? scene._forcedViewPosition : (scene._mirroredCameraPosition ? scene._mirroredCameraPosition : scene.activeCamera.globalPosition);
  44568. var invertNormal = (scene.useRightHandedSystem === (scene._mirroredCameraPosition != null));
  44569. effect.setFloat4("vEyePosition", eyePosition.x, eyePosition.y, eyePosition.z, invertNormal ? -1 : 1);
  44570. effect.setColor3("vAmbientColor", this._globalAmbientColor);
  44571. }
  44572. if (mustRebind || !this.isFrozen) {
  44573. // Lights
  44574. if (scene.lightsEnabled && !this._disableLighting) {
  44575. BABYLON.MaterialHelper.BindLights(scene, mesh, this._activeEffect, defines, this._maxSimultaneousLights, this._lightFalloff !== PBRBaseMaterial.LIGHTFALLOFF_STANDARD);
  44576. }
  44577. // View
  44578. if (scene.fogEnabled && mesh.applyFog && scene.fogMode !== BABYLON.Scene.FOGMODE_NONE || reflectionTexture) {
  44579. this.bindView(effect);
  44580. }
  44581. // Fog
  44582. BABYLON.MaterialHelper.BindFogParameters(scene, mesh, this._activeEffect);
  44583. // Morph targets
  44584. if (defines.NUM_MORPH_INFLUENCERS) {
  44585. BABYLON.MaterialHelper.BindMorphTargetParameters(mesh, this._activeEffect);
  44586. }
  44587. // image processing
  44588. this._imageProcessingConfiguration.bind(this._activeEffect);
  44589. // Log. depth
  44590. BABYLON.MaterialHelper.BindLogDepth(defines, this._activeEffect, scene);
  44591. }
  44592. this._uniformBuffer.update();
  44593. this._afterBind(mesh, this._activeEffect);
  44594. };
  44595. /**
  44596. * Returns the animatable textures.
  44597. * @returns - Array of animatable textures.
  44598. */
  44599. PBRBaseMaterial.prototype.getAnimatables = function () {
  44600. var results = [];
  44601. if (this._albedoTexture && this._albedoTexture.animations && this._albedoTexture.animations.length > 0) {
  44602. results.push(this._albedoTexture);
  44603. }
  44604. if (this._ambientTexture && this._ambientTexture.animations && this._ambientTexture.animations.length > 0) {
  44605. results.push(this._ambientTexture);
  44606. }
  44607. if (this._opacityTexture && this._opacityTexture.animations && this._opacityTexture.animations.length > 0) {
  44608. results.push(this._opacityTexture);
  44609. }
  44610. if (this._reflectionTexture && this._reflectionTexture.animations && this._reflectionTexture.animations.length > 0) {
  44611. results.push(this._reflectionTexture);
  44612. }
  44613. if (this._emissiveTexture && this._emissiveTexture.animations && this._emissiveTexture.animations.length > 0) {
  44614. results.push(this._emissiveTexture);
  44615. }
  44616. if (this._metallicTexture && this._metallicTexture.animations && this._metallicTexture.animations.length > 0) {
  44617. results.push(this._metallicTexture);
  44618. }
  44619. else if (this._reflectivityTexture && this._reflectivityTexture.animations && this._reflectivityTexture.animations.length > 0) {
  44620. results.push(this._reflectivityTexture);
  44621. }
  44622. if (this._bumpTexture && this._bumpTexture.animations && this._bumpTexture.animations.length > 0) {
  44623. results.push(this._bumpTexture);
  44624. }
  44625. if (this._lightmapTexture && this._lightmapTexture.animations && this._lightmapTexture.animations.length > 0) {
  44626. results.push(this._lightmapTexture);
  44627. }
  44628. if (this._refractionTexture && this._refractionTexture.animations && this._refractionTexture.animations.length > 0) {
  44629. results.push(this._refractionTexture);
  44630. }
  44631. return results;
  44632. };
  44633. /**
  44634. * Returns the texture used for reflections.
  44635. * @returns - Reflection texture if present. Otherwise, returns the environment texture.
  44636. */
  44637. PBRBaseMaterial.prototype._getReflectionTexture = function () {
  44638. if (this._reflectionTexture) {
  44639. return this._reflectionTexture;
  44640. }
  44641. return this.getScene().environmentTexture;
  44642. };
  44643. /**
  44644. * Returns the texture used for refraction or null if none is used.
  44645. * @returns - Refection texture if present. If no refraction texture and refraction
  44646. * is linked with transparency, returns environment texture. Otherwise, returns null.
  44647. */
  44648. PBRBaseMaterial.prototype._getRefractionTexture = function () {
  44649. if (this._refractionTexture) {
  44650. return this._refractionTexture;
  44651. }
  44652. if (this._linkRefractionWithTransparency) {
  44653. return this.getScene().environmentTexture;
  44654. }
  44655. return null;
  44656. };
  44657. /**
  44658. * Disposes the resources of the material.
  44659. * @param forceDisposeEffect - Forces the disposal of effects.
  44660. * @param forceDisposeTextures - Forces the disposal of all textures.
  44661. */
  44662. PBRBaseMaterial.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  44663. if (forceDisposeTextures) {
  44664. if (this._albedoTexture) {
  44665. this._albedoTexture.dispose();
  44666. }
  44667. if (this._ambientTexture) {
  44668. this._ambientTexture.dispose();
  44669. }
  44670. if (this._opacityTexture) {
  44671. this._opacityTexture.dispose();
  44672. }
  44673. if (this._reflectionTexture) {
  44674. this._reflectionTexture.dispose();
  44675. }
  44676. if (this._environmentBRDFTexture && this.getScene()._environmentBRDFTexture !== this._environmentBRDFTexture) {
  44677. this._environmentBRDFTexture.dispose();
  44678. }
  44679. if (this._emissiveTexture) {
  44680. this._emissiveTexture.dispose();
  44681. }
  44682. if (this._metallicTexture) {
  44683. this._metallicTexture.dispose();
  44684. }
  44685. if (this._reflectivityTexture) {
  44686. this._reflectivityTexture.dispose();
  44687. }
  44688. if (this._bumpTexture) {
  44689. this._bumpTexture.dispose();
  44690. }
  44691. if (this._lightmapTexture) {
  44692. this._lightmapTexture.dispose();
  44693. }
  44694. if (this._refractionTexture) {
  44695. this._refractionTexture.dispose();
  44696. }
  44697. }
  44698. this._renderTargets.dispose();
  44699. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  44700. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  44701. }
  44702. _super.prototype.dispose.call(this, forceDisposeEffect, forceDisposeTextures);
  44703. };
  44704. /**
  44705. * PBRMaterialLightFalloff Physical: light is falling off following the inverse squared distance law.
  44706. */
  44707. PBRBaseMaterial.LIGHTFALLOFF_PHYSICAL = 0;
  44708. /**
  44709. * PBRMaterialLightFalloff gltf: light is falling off as described in the gltf moving to PBR document
  44710. * to enhance interoperability with other engines.
  44711. */
  44712. PBRBaseMaterial.LIGHTFALLOFF_GLTF = 1;
  44713. /**
  44714. * PBRMaterialLightFalloff Standard: light is falling off like in the standard material
  44715. * to enhance interoperability with other materials.
  44716. */
  44717. PBRBaseMaterial.LIGHTFALLOFF_STANDARD = 2;
  44718. /**
  44719. * Stores the reflectivity values based on metallic roughness workflow.
  44720. */
  44721. PBRBaseMaterial._scaledReflectivity = new BABYLON.Color3();
  44722. __decorate([
  44723. BABYLON.serializeAsImageProcessingConfiguration()
  44724. ], PBRBaseMaterial.prototype, "_imageProcessingConfiguration", void 0);
  44725. __decorate([
  44726. BABYLON.serialize()
  44727. ], PBRBaseMaterial.prototype, "useLogarithmicDepth", null);
  44728. __decorate([
  44729. BABYLON.serialize()
  44730. ], PBRBaseMaterial.prototype, "transparencyMode", null);
  44731. return PBRBaseMaterial;
  44732. }(BABYLON.PushMaterial));
  44733. BABYLON.PBRBaseMaterial = PBRBaseMaterial;
  44734. })(BABYLON || (BABYLON = {}));
  44735. //# sourceMappingURL=babylon.pbrBaseMaterial.js.map
  44736. var BABYLON;
  44737. (function (BABYLON) {
  44738. /**
  44739. * The Physically based simple base material of BJS.
  44740. *
  44741. * This enables better naming and convention enforcements on top of the pbrMaterial.
  44742. * It is used as the base class for both the specGloss and metalRough conventions.
  44743. */
  44744. var PBRBaseSimpleMaterial = /** @class */ (function (_super) {
  44745. __extends(PBRBaseSimpleMaterial, _super);
  44746. /**
  44747. * Instantiates a new PBRMaterial instance.
  44748. *
  44749. * @param name The material name
  44750. * @param scene The scene the material will be use in.
  44751. */
  44752. function PBRBaseSimpleMaterial(name, scene) {
  44753. var _this = _super.call(this, name, scene) || this;
  44754. /**
  44755. * Number of Simultaneous lights allowed on the material.
  44756. */
  44757. _this.maxSimultaneousLights = 4;
  44758. /**
  44759. * If sets to true, disables all the lights affecting the material.
  44760. */
  44761. _this.disableLighting = false;
  44762. /**
  44763. * If sets to true, x component of normal map value will invert (x = 1.0 - x).
  44764. */
  44765. _this.invertNormalMapX = false;
  44766. /**
  44767. * If sets to true, y component of normal map value will invert (y = 1.0 - y).
  44768. */
  44769. _this.invertNormalMapY = false;
  44770. /**
  44771. * Emissivie color used to self-illuminate the model.
  44772. */
  44773. _this.emissiveColor = new BABYLON.Color3(0, 0, 0);
  44774. /**
  44775. * Occlusion Channel Strenght.
  44776. */
  44777. _this.occlusionStrength = 1.0;
  44778. _this.useLightmapAsShadowmap = false;
  44779. _this._useAlphaFromAlbedoTexture = true;
  44780. _this._useAmbientInGrayScale = true;
  44781. return _this;
  44782. }
  44783. Object.defineProperty(PBRBaseSimpleMaterial.prototype, "doubleSided", {
  44784. /**
  44785. * Gets the current double sided mode.
  44786. */
  44787. get: function () {
  44788. return this._twoSidedLighting;
  44789. },
  44790. /**
  44791. * If sets to true and backfaceCulling is false, normals will be flipped on the backside.
  44792. */
  44793. set: function (value) {
  44794. if (this._twoSidedLighting === value) {
  44795. return;
  44796. }
  44797. this._twoSidedLighting = value;
  44798. this.backFaceCulling = !value;
  44799. this._markAllSubMeshesAsTexturesDirty();
  44800. },
  44801. enumerable: true,
  44802. configurable: true
  44803. });
  44804. /**
  44805. * Return the active textures of the material.
  44806. */
  44807. PBRBaseSimpleMaterial.prototype.getActiveTextures = function () {
  44808. var activeTextures = _super.prototype.getActiveTextures.call(this);
  44809. if (this.environmentTexture) {
  44810. activeTextures.push(this.environmentTexture);
  44811. }
  44812. if (this.normalTexture) {
  44813. activeTextures.push(this.normalTexture);
  44814. }
  44815. if (this.emissiveTexture) {
  44816. activeTextures.push(this.emissiveTexture);
  44817. }
  44818. if (this.occlusionTexture) {
  44819. activeTextures.push(this.occlusionTexture);
  44820. }
  44821. if (this.lightmapTexture) {
  44822. activeTextures.push(this.lightmapTexture);
  44823. }
  44824. return activeTextures;
  44825. };
  44826. PBRBaseSimpleMaterial.prototype.hasTexture = function (texture) {
  44827. if (_super.prototype.hasTexture.call(this, texture)) {
  44828. return true;
  44829. }
  44830. if (this.lightmapTexture === texture) {
  44831. return true;
  44832. }
  44833. return false;
  44834. };
  44835. PBRBaseSimpleMaterial.prototype.getClassName = function () {
  44836. return "PBRBaseSimpleMaterial";
  44837. };
  44838. __decorate([
  44839. BABYLON.serialize(),
  44840. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  44841. ], PBRBaseSimpleMaterial.prototype, "maxSimultaneousLights", void 0);
  44842. __decorate([
  44843. BABYLON.serialize(),
  44844. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  44845. ], PBRBaseSimpleMaterial.prototype, "disableLighting", void 0);
  44846. __decorate([
  44847. BABYLON.serializeAsTexture(),
  44848. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_reflectionTexture")
  44849. ], PBRBaseSimpleMaterial.prototype, "environmentTexture", void 0);
  44850. __decorate([
  44851. BABYLON.serialize(),
  44852. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  44853. ], PBRBaseSimpleMaterial.prototype, "invertNormalMapX", void 0);
  44854. __decorate([
  44855. BABYLON.serialize(),
  44856. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  44857. ], PBRBaseSimpleMaterial.prototype, "invertNormalMapY", void 0);
  44858. __decorate([
  44859. BABYLON.serializeAsTexture(),
  44860. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_bumpTexture")
  44861. ], PBRBaseSimpleMaterial.prototype, "normalTexture", void 0);
  44862. __decorate([
  44863. BABYLON.serializeAsColor3("emissive"),
  44864. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  44865. ], PBRBaseSimpleMaterial.prototype, "emissiveColor", void 0);
  44866. __decorate([
  44867. BABYLON.serializeAsTexture(),
  44868. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  44869. ], PBRBaseSimpleMaterial.prototype, "emissiveTexture", void 0);
  44870. __decorate([
  44871. BABYLON.serialize(),
  44872. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_ambientTextureStrength")
  44873. ], PBRBaseSimpleMaterial.prototype, "occlusionStrength", void 0);
  44874. __decorate([
  44875. BABYLON.serializeAsTexture(),
  44876. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_ambientTexture")
  44877. ], PBRBaseSimpleMaterial.prototype, "occlusionTexture", void 0);
  44878. __decorate([
  44879. BABYLON.serialize(),
  44880. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_alphaCutOff")
  44881. ], PBRBaseSimpleMaterial.prototype, "alphaCutOff", void 0);
  44882. __decorate([
  44883. BABYLON.serialize()
  44884. ], PBRBaseSimpleMaterial.prototype, "doubleSided", null);
  44885. __decorate([
  44886. BABYLON.serializeAsTexture(),
  44887. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", null)
  44888. ], PBRBaseSimpleMaterial.prototype, "lightmapTexture", void 0);
  44889. __decorate([
  44890. BABYLON.serialize(),
  44891. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  44892. ], PBRBaseSimpleMaterial.prototype, "useLightmapAsShadowmap", void 0);
  44893. return PBRBaseSimpleMaterial;
  44894. }(BABYLON.PBRBaseMaterial));
  44895. BABYLON.PBRBaseSimpleMaterial = PBRBaseSimpleMaterial;
  44896. })(BABYLON || (BABYLON = {}));
  44897. //# sourceMappingURL=babylon.pbrBaseSimpleMaterial.js.map
  44898. var BABYLON;
  44899. (function (BABYLON) {
  44900. /**
  44901. * The Physically based material of BJS.
  44902. *
  44903. * This offers the main features of a standard PBR material.
  44904. * For more information, please refer to the documentation :
  44905. * http://doc.babylonjs.com/extensions/Physically_Based_Rendering
  44906. */
  44907. var PBRMaterial = /** @class */ (function (_super) {
  44908. __extends(PBRMaterial, _super);
  44909. /**
  44910. * Instantiates a new PBRMaterial instance.
  44911. *
  44912. * @param name The material name
  44913. * @param scene The scene the material will be use in.
  44914. */
  44915. function PBRMaterial(name, scene) {
  44916. var _this = _super.call(this, name, scene) || this;
  44917. /**
  44918. * Intensity of the direct lights e.g. the four lights available in your scene.
  44919. * This impacts both the direct diffuse and specular highlights.
  44920. */
  44921. _this.directIntensity = 1.0;
  44922. /**
  44923. * Intensity of the emissive part of the material.
  44924. * This helps controlling the emissive effect without modifying the emissive color.
  44925. */
  44926. _this.emissiveIntensity = 1.0;
  44927. /**
  44928. * Intensity of the environment e.g. how much the environment will light the object
  44929. * either through harmonics for rough material or through the refelction for shiny ones.
  44930. */
  44931. _this.environmentIntensity = 1.0;
  44932. /**
  44933. * This is a special control allowing the reduction of the specular highlights coming from the
  44934. * four lights of the scene. Those highlights may not be needed in full environment lighting.
  44935. */
  44936. _this.specularIntensity = 1.0;
  44937. /**
  44938. * Debug Control allowing disabling the bump map on this material.
  44939. */
  44940. _this.disableBumpMap = false;
  44941. /**
  44942. * AKA Occlusion Texture Intensity in other nomenclature.
  44943. */
  44944. _this.ambientTextureStrength = 1.0;
  44945. /**
  44946. * Defines how much the AO map is occluding the analytical lights (point spot...).
  44947. * 1 means it completely occludes it
  44948. * 0 mean it has no impact
  44949. */
  44950. _this.ambientTextureImpactOnAnalyticalLights = PBRMaterial.DEFAULT_AO_ON_ANALYTICAL_LIGHTS;
  44951. /**
  44952. * The color of a material in ambient lighting.
  44953. */
  44954. _this.ambientColor = new BABYLON.Color3(0, 0, 0);
  44955. /**
  44956. * AKA Diffuse Color in other nomenclature.
  44957. */
  44958. _this.albedoColor = new BABYLON.Color3(1, 1, 1);
  44959. /**
  44960. * AKA Specular Color in other nomenclature.
  44961. */
  44962. _this.reflectivityColor = new BABYLON.Color3(1, 1, 1);
  44963. /**
  44964. * The color reflected from the material.
  44965. */
  44966. _this.reflectionColor = new BABYLON.Color3(1.0, 1.0, 1.0);
  44967. /**
  44968. * The color emitted from the material.
  44969. */
  44970. _this.emissiveColor = new BABYLON.Color3(0, 0, 0);
  44971. /**
  44972. * AKA Glossiness in other nomenclature.
  44973. */
  44974. _this.microSurface = 1.0;
  44975. /**
  44976. * source material index of refraction (IOR)' / 'destination material IOR.
  44977. */
  44978. _this.indexOfRefraction = 0.66;
  44979. /**
  44980. * Controls if refraction needs to be inverted on Y. This could be usefull for procedural texture.
  44981. */
  44982. _this.invertRefractionY = false;
  44983. /**
  44984. * This parameters will make the material used its opacity to control how much it is refracting aginst not.
  44985. * Materials half opaque for instance using refraction could benefit from this control.
  44986. */
  44987. _this.linkRefractionWithTransparency = false;
  44988. _this.useLightmapAsShadowmap = false;
  44989. /**
  44990. * Specifies that the alpha is coming form the albedo channel alpha channel for alpha blending.
  44991. */
  44992. _this.useAlphaFromAlbedoTexture = false;
  44993. /**
  44994. * Enforces alpha test in opaque or blend mode in order to improve the performances of some situations.
  44995. */
  44996. _this.forceAlphaTest = false;
  44997. /**
  44998. * Defines the alpha limits in alpha test mode.
  44999. */
  45000. _this.alphaCutOff = 0.4;
  45001. /**
  45002. * Specifies that the material will keeps the specular highlights over a transparent surface (only the most limunous ones).
  45003. * A car glass is a good exemple of that. When sun reflects on it you can not see what is behind.
  45004. */
  45005. _this.useSpecularOverAlpha = true;
  45006. /**
  45007. * Specifies if the reflectivity texture contains the glossiness information in its alpha channel.
  45008. */
  45009. _this.useMicroSurfaceFromReflectivityMapAlpha = false;
  45010. /**
  45011. * Specifies if the metallic texture contains the roughness information in its alpha channel.
  45012. */
  45013. _this.useRoughnessFromMetallicTextureAlpha = true;
  45014. /**
  45015. * Specifies if the metallic texture contains the roughness information in its green channel.
  45016. */
  45017. _this.useRoughnessFromMetallicTextureGreen = false;
  45018. /**
  45019. * Specifies if the metallic texture contains the metallness information in its blue channel.
  45020. */
  45021. _this.useMetallnessFromMetallicTextureBlue = false;
  45022. /**
  45023. * Specifies if the metallic texture contains the ambient occlusion information in its red channel.
  45024. */
  45025. _this.useAmbientOcclusionFromMetallicTextureRed = false;
  45026. /**
  45027. * Specifies if the ambient texture contains the ambient occlusion information in its red channel only.
  45028. */
  45029. _this.useAmbientInGrayScale = false;
  45030. /**
  45031. * In case the reflectivity map does not contain the microsurface information in its alpha channel,
  45032. * The material will try to infer what glossiness each pixel should be.
  45033. */
  45034. _this.useAutoMicroSurfaceFromReflectivityMap = false;
  45035. /**
  45036. * Specifies that the material will keeps the reflection highlights over a transparent surface (only the most limunous ones).
  45037. * A car glass is a good exemple of that. When the street lights reflects on it you can not see what is behind.
  45038. */
  45039. _this.useRadianceOverAlpha = true;
  45040. /**
  45041. * Allows using an object space normal map (instead of tangent space).
  45042. */
  45043. _this.useObjectSpaceNormalMap = false;
  45044. /**
  45045. * Allows using the bump map in parallax mode.
  45046. */
  45047. _this.useParallax = false;
  45048. /**
  45049. * Allows using the bump map in parallax occlusion mode.
  45050. */
  45051. _this.useParallaxOcclusion = false;
  45052. /**
  45053. * Controls the scale bias of the parallax mode.
  45054. */
  45055. _this.parallaxScaleBias = 0.05;
  45056. /**
  45057. * If sets to true, disables all the lights affecting the material.
  45058. */
  45059. _this.disableLighting = false;
  45060. /**
  45061. * Force the shader to compute irradiance in the fragment shader in order to take bump in account.
  45062. */
  45063. _this.forceIrradianceInFragment = false;
  45064. /**
  45065. * Number of Simultaneous lights allowed on the material.
  45066. */
  45067. _this.maxSimultaneousLights = 4;
  45068. /**
  45069. * If sets to true, x component of normal map value will invert (x = 1.0 - x).
  45070. */
  45071. _this.invertNormalMapX = false;
  45072. /**
  45073. * If sets to true, y component of normal map value will invert (y = 1.0 - y).
  45074. */
  45075. _this.invertNormalMapY = false;
  45076. /**
  45077. * If sets to true and backfaceCulling is false, normals will be flipped on the backside.
  45078. */
  45079. _this.twoSidedLighting = false;
  45080. /**
  45081. * A fresnel is applied to the alpha of the model to ensure grazing angles edges are not alpha tested.
  45082. * And/Or occlude the blended part. (alpha is converted to gamma to compute the fresnel)
  45083. */
  45084. _this.useAlphaFresnel = false;
  45085. /**
  45086. * A fresnel is applied to the alpha of the model to ensure grazing angles edges are not alpha tested.
  45087. * And/Or occlude the blended part. (alpha stays linear to compute the fresnel)
  45088. */
  45089. _this.useLinearAlphaFresnel = false;
  45090. /**
  45091. * A fresnel is applied to the alpha of the model to ensure grazing angles edges are not alpha tested.
  45092. * And/Or occlude the blended part.
  45093. */
  45094. _this.environmentBRDFTexture = null;
  45095. /**
  45096. * Force normal to face away from face.
  45097. */
  45098. _this.forceNormalForward = false;
  45099. /**
  45100. * Enables specular anti aliasing in the PBR shader.
  45101. * It will both interacts on the Geometry for analytical and IBL lighting.
  45102. * It also prefilter the roughness map based on the bump values.
  45103. */
  45104. _this.enableSpecularAntiAliasing = false;
  45105. /**
  45106. * This parameters will enable/disable Horizon occlusion to prevent normal maps to look shiny when the normal
  45107. * makes the reflect vector face the model (under horizon).
  45108. */
  45109. _this.useHorizonOcclusion = true;
  45110. /**
  45111. * This parameters will enable/disable radiance occlusion by preventing the radiance to lit
  45112. * too much the area relying on ambient texture to define their ambient occlusion.
  45113. */
  45114. _this.useRadianceOcclusion = true;
  45115. /**
  45116. * If set to true, no lighting calculations will be applied.
  45117. */
  45118. _this.unlit = false;
  45119. _this._environmentBRDFTexture = BABYLON.TextureTools.GetEnvironmentBRDFTexture(scene);
  45120. return _this;
  45121. }
  45122. Object.defineProperty(PBRMaterial.prototype, "usePhysicalLightFalloff", {
  45123. /**
  45124. * BJS is using an harcoded light falloff based on a manually sets up range.
  45125. * In PBR, one way to represents the fallof is to use the inverse squared root algorythm.
  45126. * This parameter can help you switch back to the BJS mode in order to create scenes using both materials.
  45127. */
  45128. get: function () {
  45129. return this._lightFalloff === BABYLON.PBRBaseMaterial.LIGHTFALLOFF_PHYSICAL;
  45130. },
  45131. /**
  45132. * BJS is using an harcoded light falloff based on a manually sets up range.
  45133. * In PBR, one way to represents the fallof is to use the inverse squared root algorythm.
  45134. * This parameter can help you switch back to the BJS mode in order to create scenes using both materials.
  45135. */
  45136. set: function (value) {
  45137. if (value !== this.usePhysicalLightFalloff) {
  45138. // Ensure the effect will be rebuilt.
  45139. this._markAllSubMeshesAsTexturesDirty();
  45140. if (value) {
  45141. this._lightFalloff = BABYLON.PBRBaseMaterial.LIGHTFALLOFF_PHYSICAL;
  45142. }
  45143. else {
  45144. this._lightFalloff = BABYLON.PBRBaseMaterial.LIGHTFALLOFF_STANDARD;
  45145. }
  45146. }
  45147. },
  45148. enumerable: true,
  45149. configurable: true
  45150. });
  45151. Object.defineProperty(PBRMaterial.prototype, "useGLTFLightFalloff", {
  45152. /**
  45153. * In order to support the falloff compatibility with gltf, a special mode has been added
  45154. * to reproduce the gltf light falloff.
  45155. */
  45156. get: function () {
  45157. return this._lightFalloff === BABYLON.PBRBaseMaterial.LIGHTFALLOFF_GLTF;
  45158. },
  45159. /**
  45160. * In order to support the falloff compatibility with gltf, a special mode has been added
  45161. * to reproduce the gltf light falloff.
  45162. */
  45163. set: function (value) {
  45164. if (value !== this.useGLTFLightFalloff) {
  45165. // Ensure the effect will be rebuilt.
  45166. this._markAllSubMeshesAsTexturesDirty();
  45167. if (value) {
  45168. this._lightFalloff = BABYLON.PBRBaseMaterial.LIGHTFALLOFF_GLTF;
  45169. }
  45170. else {
  45171. this._lightFalloff = BABYLON.PBRBaseMaterial.LIGHTFALLOFF_STANDARD;
  45172. }
  45173. }
  45174. },
  45175. enumerable: true,
  45176. configurable: true
  45177. });
  45178. Object.defineProperty(PBRMaterial.prototype, "imageProcessingConfiguration", {
  45179. /**
  45180. * Gets the image processing configuration used either in this material.
  45181. */
  45182. get: function () {
  45183. return this._imageProcessingConfiguration;
  45184. },
  45185. /**
  45186. * Sets the Default image processing configuration used either in the this material.
  45187. *
  45188. * If sets to null, the scene one is in use.
  45189. */
  45190. set: function (value) {
  45191. this._attachImageProcessingConfiguration(value);
  45192. // Ensure the effect will be rebuilt.
  45193. this._markAllSubMeshesAsTexturesDirty();
  45194. },
  45195. enumerable: true,
  45196. configurable: true
  45197. });
  45198. Object.defineProperty(PBRMaterial.prototype, "cameraColorCurvesEnabled", {
  45199. /**
  45200. * Gets wether the color curves effect is enabled.
  45201. */
  45202. get: function () {
  45203. return this.imageProcessingConfiguration.colorCurvesEnabled;
  45204. },
  45205. /**
  45206. * Sets wether the color curves effect is enabled.
  45207. */
  45208. set: function (value) {
  45209. this.imageProcessingConfiguration.colorCurvesEnabled = value;
  45210. },
  45211. enumerable: true,
  45212. configurable: true
  45213. });
  45214. Object.defineProperty(PBRMaterial.prototype, "cameraColorGradingEnabled", {
  45215. /**
  45216. * Gets wether the color grading effect is enabled.
  45217. */
  45218. get: function () {
  45219. return this.imageProcessingConfiguration.colorGradingEnabled;
  45220. },
  45221. /**
  45222. * Gets wether the color grading effect is enabled.
  45223. */
  45224. set: function (value) {
  45225. this.imageProcessingConfiguration.colorGradingEnabled = value;
  45226. },
  45227. enumerable: true,
  45228. configurable: true
  45229. });
  45230. Object.defineProperty(PBRMaterial.prototype, "cameraToneMappingEnabled", {
  45231. /**
  45232. * Gets wether tonemapping is enabled or not.
  45233. */
  45234. get: function () {
  45235. return this._imageProcessingConfiguration.toneMappingEnabled;
  45236. },
  45237. /**
  45238. * Sets wether tonemapping is enabled or not
  45239. */
  45240. set: function (value) {
  45241. this._imageProcessingConfiguration.toneMappingEnabled = value;
  45242. },
  45243. enumerable: true,
  45244. configurable: true
  45245. });
  45246. ;
  45247. ;
  45248. Object.defineProperty(PBRMaterial.prototype, "cameraExposure", {
  45249. /**
  45250. * The camera exposure used on this material.
  45251. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  45252. * This corresponds to a photographic exposure.
  45253. */
  45254. get: function () {
  45255. return this._imageProcessingConfiguration.exposure;
  45256. },
  45257. /**
  45258. * The camera exposure used on this material.
  45259. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  45260. * This corresponds to a photographic exposure.
  45261. */
  45262. set: function (value) {
  45263. this._imageProcessingConfiguration.exposure = value;
  45264. },
  45265. enumerable: true,
  45266. configurable: true
  45267. });
  45268. ;
  45269. ;
  45270. Object.defineProperty(PBRMaterial.prototype, "cameraContrast", {
  45271. /**
  45272. * Gets The camera contrast used on this material.
  45273. */
  45274. get: function () {
  45275. return this._imageProcessingConfiguration.contrast;
  45276. },
  45277. /**
  45278. * Sets The camera contrast used on this material.
  45279. */
  45280. set: function (value) {
  45281. this._imageProcessingConfiguration.contrast = value;
  45282. },
  45283. enumerable: true,
  45284. configurable: true
  45285. });
  45286. Object.defineProperty(PBRMaterial.prototype, "cameraColorGradingTexture", {
  45287. /**
  45288. * Gets the Color Grading 2D Lookup Texture.
  45289. */
  45290. get: function () {
  45291. return this._imageProcessingConfiguration.colorGradingTexture;
  45292. },
  45293. /**
  45294. * Sets the Color Grading 2D Lookup Texture.
  45295. */
  45296. set: function (value) {
  45297. this._imageProcessingConfiguration.colorGradingTexture = value;
  45298. },
  45299. enumerable: true,
  45300. configurable: true
  45301. });
  45302. Object.defineProperty(PBRMaterial.prototype, "cameraColorCurves", {
  45303. /**
  45304. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  45305. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  45306. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  45307. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  45308. */
  45309. get: function () {
  45310. return this._imageProcessingConfiguration.colorCurves;
  45311. },
  45312. /**
  45313. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  45314. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  45315. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  45316. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  45317. */
  45318. set: function (value) {
  45319. this._imageProcessingConfiguration.colorCurves = value;
  45320. },
  45321. enumerable: true,
  45322. configurable: true
  45323. });
  45324. /**
  45325. * Returns the name of this material class.
  45326. */
  45327. PBRMaterial.prototype.getClassName = function () {
  45328. return "PBRMaterial";
  45329. };
  45330. /**
  45331. * Returns an array of the actively used textures.
  45332. * @returns - Array of BaseTextures
  45333. */
  45334. PBRMaterial.prototype.getActiveTextures = function () {
  45335. var activeTextures = _super.prototype.getActiveTextures.call(this);
  45336. if (this._albedoTexture) {
  45337. activeTextures.push(this._albedoTexture);
  45338. }
  45339. if (this._ambientTexture) {
  45340. activeTextures.push(this._ambientTexture);
  45341. }
  45342. if (this._opacityTexture) {
  45343. activeTextures.push(this._opacityTexture);
  45344. }
  45345. if (this._reflectionTexture) {
  45346. activeTextures.push(this._reflectionTexture);
  45347. }
  45348. if (this._emissiveTexture) {
  45349. activeTextures.push(this._emissiveTexture);
  45350. }
  45351. if (this._reflectivityTexture) {
  45352. activeTextures.push(this._reflectivityTexture);
  45353. }
  45354. if (this._metallicTexture) {
  45355. activeTextures.push(this._metallicTexture);
  45356. }
  45357. if (this._microSurfaceTexture) {
  45358. activeTextures.push(this._microSurfaceTexture);
  45359. }
  45360. if (this._bumpTexture) {
  45361. activeTextures.push(this._bumpTexture);
  45362. }
  45363. if (this._lightmapTexture) {
  45364. activeTextures.push(this._lightmapTexture);
  45365. }
  45366. if (this._refractionTexture) {
  45367. activeTextures.push(this._refractionTexture);
  45368. }
  45369. return activeTextures;
  45370. };
  45371. /**
  45372. * Checks to see if a texture is used in the material.
  45373. * @param texture - Base texture to use.
  45374. * @returns - Boolean specifying if a texture is used in the material.
  45375. */
  45376. PBRMaterial.prototype.hasTexture = function (texture) {
  45377. if (_super.prototype.hasTexture.call(this, texture)) {
  45378. return true;
  45379. }
  45380. if (this._albedoTexture === texture) {
  45381. return true;
  45382. }
  45383. if (this._ambientTexture === texture) {
  45384. return true;
  45385. }
  45386. if (this._opacityTexture === texture) {
  45387. return true;
  45388. }
  45389. if (this._reflectionTexture === texture) {
  45390. return true;
  45391. }
  45392. if (this._reflectivityTexture === texture) {
  45393. return true;
  45394. }
  45395. if (this._metallicTexture === texture) {
  45396. return true;
  45397. }
  45398. if (this._microSurfaceTexture === texture) {
  45399. return true;
  45400. }
  45401. if (this._bumpTexture === texture) {
  45402. return true;
  45403. }
  45404. if (this._lightmapTexture === texture) {
  45405. return true;
  45406. }
  45407. if (this._refractionTexture === texture) {
  45408. return true;
  45409. }
  45410. return false;
  45411. };
  45412. /**
  45413. * Makes a duplicate of the current material.
  45414. * @param name - name to use for the new material.
  45415. */
  45416. PBRMaterial.prototype.clone = function (name) {
  45417. var _this = this;
  45418. var clone = BABYLON.SerializationHelper.Clone(function () { return new PBRMaterial(name, _this.getScene()); }, this);
  45419. clone.id = name;
  45420. clone.name = name;
  45421. return clone;
  45422. };
  45423. /**
  45424. * Serializes this PBR Material.
  45425. * @returns - An object with the serialized material.
  45426. */
  45427. PBRMaterial.prototype.serialize = function () {
  45428. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  45429. serializationObject.customType = "BABYLON.PBRMaterial";
  45430. return serializationObject;
  45431. };
  45432. // Statics
  45433. /**
  45434. * Parses a PBR Material from a serialized object.
  45435. * @param source - Serialized object.
  45436. * @param scene - BJS scene instance.
  45437. * @param rootUrl - url for the scene object
  45438. * @returns - PBRMaterial
  45439. */
  45440. PBRMaterial.Parse = function (source, scene, rootUrl) {
  45441. return BABYLON.SerializationHelper.Parse(function () { return new PBRMaterial(source.name, scene); }, source, scene, rootUrl);
  45442. };
  45443. /**
  45444. * PBRMaterialTransparencyMode: No transparency mode, Alpha channel is not use.
  45445. */
  45446. PBRMaterial.PBRMATERIAL_OPAQUE = 0;
  45447. /**
  45448. * PBRMaterialTransparencyMode: Alpha Test mode, pixel are discarded below a certain threshold defined by the alpha cutoff value.
  45449. */
  45450. PBRMaterial.PBRMATERIAL_ALPHATEST = 1;
  45451. /**
  45452. * PBRMaterialTransparencyMode: Pixels are blended (according to the alpha mode) with the already drawn pixels in the current frame buffer.
  45453. */
  45454. PBRMaterial.PBRMATERIAL_ALPHABLEND = 2;
  45455. /**
  45456. * PBRMaterialTransparencyMode: Pixels are blended (according to the alpha mode) with the already drawn pixels in the current frame buffer.
  45457. * They are also discarded below the alpha cutoff threshold to improve performances.
  45458. */
  45459. PBRMaterial.PBRMATERIAL_ALPHATESTANDBLEND = 3;
  45460. /**
  45461. * Defines the default value of how much AO map is occluding the analytical lights
  45462. * (point spot...).
  45463. */
  45464. PBRMaterial.DEFAULT_AO_ON_ANALYTICAL_LIGHTS = 1;
  45465. __decorate([
  45466. BABYLON.serialize(),
  45467. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45468. ], PBRMaterial.prototype, "directIntensity", void 0);
  45469. __decorate([
  45470. BABYLON.serialize(),
  45471. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45472. ], PBRMaterial.prototype, "emissiveIntensity", void 0);
  45473. __decorate([
  45474. BABYLON.serialize(),
  45475. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45476. ], PBRMaterial.prototype, "environmentIntensity", void 0);
  45477. __decorate([
  45478. BABYLON.serialize(),
  45479. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45480. ], PBRMaterial.prototype, "specularIntensity", void 0);
  45481. __decorate([
  45482. BABYLON.serialize(),
  45483. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45484. ], PBRMaterial.prototype, "disableBumpMap", void 0);
  45485. __decorate([
  45486. BABYLON.serializeAsTexture(),
  45487. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45488. ], PBRMaterial.prototype, "albedoTexture", void 0);
  45489. __decorate([
  45490. BABYLON.serializeAsTexture(),
  45491. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45492. ], PBRMaterial.prototype, "ambientTexture", void 0);
  45493. __decorate([
  45494. BABYLON.serialize(),
  45495. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45496. ], PBRMaterial.prototype, "ambientTextureStrength", void 0);
  45497. __decorate([
  45498. BABYLON.serialize(),
  45499. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45500. ], PBRMaterial.prototype, "ambientTextureImpactOnAnalyticalLights", void 0);
  45501. __decorate([
  45502. BABYLON.serializeAsTexture(),
  45503. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  45504. ], PBRMaterial.prototype, "opacityTexture", void 0);
  45505. __decorate([
  45506. BABYLON.serializeAsTexture(),
  45507. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45508. ], PBRMaterial.prototype, "reflectionTexture", void 0);
  45509. __decorate([
  45510. BABYLON.serializeAsTexture(),
  45511. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45512. ], PBRMaterial.prototype, "emissiveTexture", void 0);
  45513. __decorate([
  45514. BABYLON.serializeAsTexture(),
  45515. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45516. ], PBRMaterial.prototype, "reflectivityTexture", void 0);
  45517. __decorate([
  45518. BABYLON.serializeAsTexture(),
  45519. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45520. ], PBRMaterial.prototype, "metallicTexture", void 0);
  45521. __decorate([
  45522. BABYLON.serialize(),
  45523. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45524. ], PBRMaterial.prototype, "metallic", void 0);
  45525. __decorate([
  45526. BABYLON.serialize(),
  45527. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45528. ], PBRMaterial.prototype, "roughness", void 0);
  45529. __decorate([
  45530. BABYLON.serializeAsTexture(),
  45531. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45532. ], PBRMaterial.prototype, "microSurfaceTexture", void 0);
  45533. __decorate([
  45534. BABYLON.serializeAsTexture(),
  45535. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45536. ], PBRMaterial.prototype, "bumpTexture", void 0);
  45537. __decorate([
  45538. BABYLON.serializeAsTexture(),
  45539. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", null)
  45540. ], PBRMaterial.prototype, "lightmapTexture", void 0);
  45541. __decorate([
  45542. BABYLON.serializeAsTexture(),
  45543. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45544. ], PBRMaterial.prototype, "refractionTexture", void 0);
  45545. __decorate([
  45546. BABYLON.serializeAsColor3("ambient"),
  45547. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45548. ], PBRMaterial.prototype, "ambientColor", void 0);
  45549. __decorate([
  45550. BABYLON.serializeAsColor3("albedo"),
  45551. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45552. ], PBRMaterial.prototype, "albedoColor", void 0);
  45553. __decorate([
  45554. BABYLON.serializeAsColor3("reflectivity"),
  45555. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45556. ], PBRMaterial.prototype, "reflectivityColor", void 0);
  45557. __decorate([
  45558. BABYLON.serializeAsColor3("reflection"),
  45559. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45560. ], PBRMaterial.prototype, "reflectionColor", void 0);
  45561. __decorate([
  45562. BABYLON.serializeAsColor3("emissive"),
  45563. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45564. ], PBRMaterial.prototype, "emissiveColor", void 0);
  45565. __decorate([
  45566. BABYLON.serialize(),
  45567. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45568. ], PBRMaterial.prototype, "microSurface", void 0);
  45569. __decorate([
  45570. BABYLON.serialize(),
  45571. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45572. ], PBRMaterial.prototype, "indexOfRefraction", void 0);
  45573. __decorate([
  45574. BABYLON.serialize(),
  45575. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45576. ], PBRMaterial.prototype, "invertRefractionY", void 0);
  45577. __decorate([
  45578. BABYLON.serialize(),
  45579. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45580. ], PBRMaterial.prototype, "linkRefractionWithTransparency", void 0);
  45581. __decorate([
  45582. BABYLON.serialize(),
  45583. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45584. ], PBRMaterial.prototype, "useLightmapAsShadowmap", void 0);
  45585. __decorate([
  45586. BABYLON.serialize(),
  45587. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  45588. ], PBRMaterial.prototype, "useAlphaFromAlbedoTexture", void 0);
  45589. __decorate([
  45590. BABYLON.serialize(),
  45591. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  45592. ], PBRMaterial.prototype, "forceAlphaTest", void 0);
  45593. __decorate([
  45594. BABYLON.serialize(),
  45595. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesAndMiscDirty")
  45596. ], PBRMaterial.prototype, "alphaCutOff", void 0);
  45597. __decorate([
  45598. BABYLON.serialize(),
  45599. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45600. ], PBRMaterial.prototype, "useSpecularOverAlpha", void 0);
  45601. __decorate([
  45602. BABYLON.serialize(),
  45603. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45604. ], PBRMaterial.prototype, "useMicroSurfaceFromReflectivityMapAlpha", void 0);
  45605. __decorate([
  45606. BABYLON.serialize(),
  45607. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45608. ], PBRMaterial.prototype, "useRoughnessFromMetallicTextureAlpha", void 0);
  45609. __decorate([
  45610. BABYLON.serialize(),
  45611. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45612. ], PBRMaterial.prototype, "useRoughnessFromMetallicTextureGreen", void 0);
  45613. __decorate([
  45614. BABYLON.serialize(),
  45615. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45616. ], PBRMaterial.prototype, "useMetallnessFromMetallicTextureBlue", void 0);
  45617. __decorate([
  45618. BABYLON.serialize(),
  45619. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45620. ], PBRMaterial.prototype, "useAmbientOcclusionFromMetallicTextureRed", void 0);
  45621. __decorate([
  45622. BABYLON.serialize(),
  45623. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45624. ], PBRMaterial.prototype, "useAmbientInGrayScale", void 0);
  45625. __decorate([
  45626. BABYLON.serialize(),
  45627. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45628. ], PBRMaterial.prototype, "useAutoMicroSurfaceFromReflectivityMap", void 0);
  45629. __decorate([
  45630. BABYLON.serialize()
  45631. ], PBRMaterial.prototype, "usePhysicalLightFalloff", null);
  45632. __decorate([
  45633. BABYLON.serialize()
  45634. ], PBRMaterial.prototype, "useGLTFLightFalloff", null);
  45635. __decorate([
  45636. BABYLON.serialize(),
  45637. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45638. ], PBRMaterial.prototype, "useRadianceOverAlpha", void 0);
  45639. __decorate([
  45640. BABYLON.serialize(),
  45641. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45642. ], PBRMaterial.prototype, "useObjectSpaceNormalMap", void 0);
  45643. __decorate([
  45644. BABYLON.serialize(),
  45645. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45646. ], PBRMaterial.prototype, "useParallax", void 0);
  45647. __decorate([
  45648. BABYLON.serialize(),
  45649. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45650. ], PBRMaterial.prototype, "useParallaxOcclusion", void 0);
  45651. __decorate([
  45652. BABYLON.serialize(),
  45653. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45654. ], PBRMaterial.prototype, "parallaxScaleBias", void 0);
  45655. __decorate([
  45656. BABYLON.serialize(),
  45657. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  45658. ], PBRMaterial.prototype, "disableLighting", void 0);
  45659. __decorate([
  45660. BABYLON.serialize(),
  45661. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45662. ], PBRMaterial.prototype, "forceIrradianceInFragment", void 0);
  45663. __decorate([
  45664. BABYLON.serialize(),
  45665. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  45666. ], PBRMaterial.prototype, "maxSimultaneousLights", void 0);
  45667. __decorate([
  45668. BABYLON.serialize(),
  45669. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45670. ], PBRMaterial.prototype, "invertNormalMapX", void 0);
  45671. __decorate([
  45672. BABYLON.serialize(),
  45673. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45674. ], PBRMaterial.prototype, "invertNormalMapY", void 0);
  45675. __decorate([
  45676. BABYLON.serialize(),
  45677. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45678. ], PBRMaterial.prototype, "twoSidedLighting", void 0);
  45679. __decorate([
  45680. BABYLON.serialize(),
  45681. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45682. ], PBRMaterial.prototype, "useAlphaFresnel", void 0);
  45683. __decorate([
  45684. BABYLON.serialize(),
  45685. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45686. ], PBRMaterial.prototype, "useLinearAlphaFresnel", void 0);
  45687. __decorate([
  45688. BABYLON.serializeAsTexture(),
  45689. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45690. ], PBRMaterial.prototype, "environmentBRDFTexture", void 0);
  45691. __decorate([
  45692. BABYLON.serialize(),
  45693. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45694. ], PBRMaterial.prototype, "forceNormalForward", void 0);
  45695. __decorate([
  45696. BABYLON.serialize(),
  45697. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45698. ], PBRMaterial.prototype, "enableSpecularAntiAliasing", void 0);
  45699. __decorate([
  45700. BABYLON.serialize(),
  45701. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45702. ], PBRMaterial.prototype, "useHorizonOcclusion", void 0);
  45703. __decorate([
  45704. BABYLON.serialize(),
  45705. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45706. ], PBRMaterial.prototype, "useRadianceOcclusion", void 0);
  45707. __decorate([
  45708. BABYLON.serialize(),
  45709. BABYLON.expandToProperty("_markAllSubMeshesAsMiscDirty")
  45710. ], PBRMaterial.prototype, "unlit", void 0);
  45711. return PBRMaterial;
  45712. }(BABYLON.PBRBaseMaterial));
  45713. BABYLON.PBRMaterial = PBRMaterial;
  45714. })(BABYLON || (BABYLON = {}));
  45715. //# sourceMappingURL=babylon.pbrMaterial.js.map
  45716. var BABYLON;
  45717. (function (BABYLON) {
  45718. /**
  45719. * The PBR material of BJS following the metal roughness convention.
  45720. *
  45721. * This fits to the PBR convention in the GLTF definition:
  45722. * https://github.com/KhronosGroup/glTF/tree/2.0/specification/2.0
  45723. */
  45724. var PBRMetallicRoughnessMaterial = /** @class */ (function (_super) {
  45725. __extends(PBRMetallicRoughnessMaterial, _super);
  45726. /**
  45727. * Instantiates a new PBRMetalRoughnessMaterial instance.
  45728. *
  45729. * @param name The material name
  45730. * @param scene The scene the material will be use in.
  45731. */
  45732. function PBRMetallicRoughnessMaterial(name, scene) {
  45733. var _this = _super.call(this, name, scene) || this;
  45734. _this._useRoughnessFromMetallicTextureAlpha = false;
  45735. _this._useRoughnessFromMetallicTextureGreen = true;
  45736. _this._useMetallnessFromMetallicTextureBlue = true;
  45737. _this.metallic = 1.0;
  45738. _this.roughness = 1.0;
  45739. return _this;
  45740. }
  45741. /**
  45742. * Return the currrent class name of the material.
  45743. */
  45744. PBRMetallicRoughnessMaterial.prototype.getClassName = function () {
  45745. return "PBRMetallicRoughnessMaterial";
  45746. };
  45747. /**
  45748. * Return the active textures of the material.
  45749. */
  45750. PBRMetallicRoughnessMaterial.prototype.getActiveTextures = function () {
  45751. var activeTextures = _super.prototype.getActiveTextures.call(this);
  45752. if (this.baseTexture) {
  45753. activeTextures.push(this.baseTexture);
  45754. }
  45755. if (this.metallicRoughnessTexture) {
  45756. activeTextures.push(this.metallicRoughnessTexture);
  45757. }
  45758. return activeTextures;
  45759. };
  45760. /**
  45761. * Checks to see if a texture is used in the material.
  45762. * @param texture - Base texture to use.
  45763. * @returns - Boolean specifying if a texture is used in the material.
  45764. */
  45765. PBRMetallicRoughnessMaterial.prototype.hasTexture = function (texture) {
  45766. if (_super.prototype.hasTexture.call(this, texture)) {
  45767. return true;
  45768. }
  45769. if (this.baseTexture === texture) {
  45770. return true;
  45771. }
  45772. if (this.metallicRoughnessTexture === texture) {
  45773. return true;
  45774. }
  45775. return false;
  45776. };
  45777. /**
  45778. * Makes a duplicate of the current material.
  45779. * @param name - name to use for the new material.
  45780. */
  45781. PBRMetallicRoughnessMaterial.prototype.clone = function (name) {
  45782. var _this = this;
  45783. var clone = BABYLON.SerializationHelper.Clone(function () { return new PBRMetallicRoughnessMaterial(name, _this.getScene()); }, this);
  45784. clone.id = name;
  45785. clone.name = name;
  45786. return clone;
  45787. };
  45788. /**
  45789. * Serialize the material to a parsable JSON object.
  45790. */
  45791. PBRMetallicRoughnessMaterial.prototype.serialize = function () {
  45792. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  45793. serializationObject.customType = "BABYLON.PBRMetallicRoughnessMaterial";
  45794. return serializationObject;
  45795. };
  45796. /**
  45797. * Parses a JSON object correponding to the serialize function.
  45798. */
  45799. PBRMetallicRoughnessMaterial.Parse = function (source, scene, rootUrl) {
  45800. return BABYLON.SerializationHelper.Parse(function () { return new PBRMetallicRoughnessMaterial(source.name, scene); }, source, scene, rootUrl);
  45801. };
  45802. __decorate([
  45803. BABYLON.serializeAsColor3(),
  45804. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_albedoColor")
  45805. ], PBRMetallicRoughnessMaterial.prototype, "baseColor", void 0);
  45806. __decorate([
  45807. BABYLON.serializeAsTexture(),
  45808. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_albedoTexture")
  45809. ], PBRMetallicRoughnessMaterial.prototype, "baseTexture", void 0);
  45810. __decorate([
  45811. BABYLON.serialize(),
  45812. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45813. ], PBRMetallicRoughnessMaterial.prototype, "metallic", void 0);
  45814. __decorate([
  45815. BABYLON.serialize(),
  45816. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  45817. ], PBRMetallicRoughnessMaterial.prototype, "roughness", void 0);
  45818. __decorate([
  45819. BABYLON.serializeAsTexture(),
  45820. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_metallicTexture")
  45821. ], PBRMetallicRoughnessMaterial.prototype, "metallicRoughnessTexture", void 0);
  45822. return PBRMetallicRoughnessMaterial;
  45823. }(BABYLON.PBRBaseSimpleMaterial));
  45824. BABYLON.PBRMetallicRoughnessMaterial = PBRMetallicRoughnessMaterial;
  45825. })(BABYLON || (BABYLON = {}));
  45826. //# sourceMappingURL=babylon.pbrMetallicRoughnessMaterial.js.map
  45827. var BABYLON;
  45828. (function (BABYLON) {
  45829. /**
  45830. * The PBR material of BJS following the specular glossiness convention.
  45831. *
  45832. * This fits to the PBR convention in the GLTF definition:
  45833. * https://github.com/KhronosGroup/glTF/tree/2.0/extensions/Khronos/KHR_materials_pbrSpecularGlossiness
  45834. */
  45835. var PBRSpecularGlossinessMaterial = /** @class */ (function (_super) {
  45836. __extends(PBRSpecularGlossinessMaterial, _super);
  45837. /**
  45838. * Instantiates a new PBRSpecularGlossinessMaterial instance.
  45839. *
  45840. * @param name The material name
  45841. * @param scene The scene the material will be use in.
  45842. */
  45843. function PBRSpecularGlossinessMaterial(name, scene) {
  45844. var _this = _super.call(this, name, scene) || this;
  45845. _this._useMicroSurfaceFromReflectivityMapAlpha = true;
  45846. return _this;
  45847. }
  45848. /**
  45849. * Return the currrent class name of the material.
  45850. */
  45851. PBRSpecularGlossinessMaterial.prototype.getClassName = function () {
  45852. return "PBRSpecularGlossinessMaterial";
  45853. };
  45854. /**
  45855. * Return the active textures of the material.
  45856. */
  45857. PBRSpecularGlossinessMaterial.prototype.getActiveTextures = function () {
  45858. var activeTextures = _super.prototype.getActiveTextures.call(this);
  45859. if (this.diffuseTexture) {
  45860. activeTextures.push(this.diffuseTexture);
  45861. }
  45862. if (this.specularGlossinessTexture) {
  45863. activeTextures.push(this.specularGlossinessTexture);
  45864. }
  45865. return activeTextures;
  45866. };
  45867. /**
  45868. * Checks to see if a texture is used in the material.
  45869. * @param texture - Base texture to use.
  45870. * @returns - Boolean specifying if a texture is used in the material.
  45871. */
  45872. PBRSpecularGlossinessMaterial.prototype.hasTexture = function (texture) {
  45873. if (_super.prototype.hasTexture.call(this, texture)) {
  45874. return true;
  45875. }
  45876. if (this.diffuseTexture === texture) {
  45877. return true;
  45878. }
  45879. if (this.specularGlossinessTexture === texture) {
  45880. return true;
  45881. }
  45882. return false;
  45883. };
  45884. /**
  45885. * Makes a duplicate of the current material.
  45886. * @param name - name to use for the new material.
  45887. */
  45888. PBRSpecularGlossinessMaterial.prototype.clone = function (name) {
  45889. var _this = this;
  45890. var clone = BABYLON.SerializationHelper.Clone(function () { return new PBRSpecularGlossinessMaterial(name, _this.getScene()); }, this);
  45891. clone.id = name;
  45892. clone.name = name;
  45893. return clone;
  45894. };
  45895. /**
  45896. * Serialize the material to a parsable JSON object.
  45897. */
  45898. PBRSpecularGlossinessMaterial.prototype.serialize = function () {
  45899. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  45900. serializationObject.customType = "BABYLON.PBRSpecularGlossinessMaterial";
  45901. return serializationObject;
  45902. };
  45903. /**
  45904. * Parses a JSON object correponding to the serialize function.
  45905. */
  45906. PBRSpecularGlossinessMaterial.Parse = function (source, scene, rootUrl) {
  45907. return BABYLON.SerializationHelper.Parse(function () { return new PBRSpecularGlossinessMaterial(source.name, scene); }, source, scene, rootUrl);
  45908. };
  45909. __decorate([
  45910. BABYLON.serializeAsColor3("diffuse"),
  45911. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_albedoColor")
  45912. ], PBRSpecularGlossinessMaterial.prototype, "diffuseColor", void 0);
  45913. __decorate([
  45914. BABYLON.serializeAsTexture(),
  45915. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_albedoTexture")
  45916. ], PBRSpecularGlossinessMaterial.prototype, "diffuseTexture", void 0);
  45917. __decorate([
  45918. BABYLON.serializeAsColor3("specular"),
  45919. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_reflectivityColor")
  45920. ], PBRSpecularGlossinessMaterial.prototype, "specularColor", void 0);
  45921. __decorate([
  45922. BABYLON.serialize(),
  45923. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_microSurface")
  45924. ], PBRSpecularGlossinessMaterial.prototype, "glossiness", void 0);
  45925. __decorate([
  45926. BABYLON.serializeAsTexture(),
  45927. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty", "_reflectivityTexture")
  45928. ], PBRSpecularGlossinessMaterial.prototype, "specularGlossinessTexture", void 0);
  45929. return PBRSpecularGlossinessMaterial;
  45930. }(BABYLON.PBRBaseSimpleMaterial));
  45931. BABYLON.PBRSpecularGlossinessMaterial = PBRSpecularGlossinessMaterial;
  45932. })(BABYLON || (BABYLON = {}));
  45933. //# sourceMappingURL=babylon.pbrSpecularGlossinessMaterial.js.map
  45934. var BABYLON;
  45935. (function (BABYLON) {
  45936. BABYLON.CameraInputTypes = {};
  45937. var CameraInputsManager = /** @class */ (function () {
  45938. function CameraInputsManager(camera) {
  45939. this.attached = {};
  45940. this.camera = camera;
  45941. this.checkInputs = function () { };
  45942. }
  45943. /**
  45944. * Add an input method to a camera
  45945. * @see http://doc.babylonjs.com/how_to/customizing_camera_inputs
  45946. * @param input camera input method
  45947. */
  45948. CameraInputsManager.prototype.add = function (input) {
  45949. var type = input.getSimpleName();
  45950. if (this.attached[type]) {
  45951. BABYLON.Tools.Warn("camera input of type " + type + " already exists on camera");
  45952. return;
  45953. }
  45954. this.attached[type] = input;
  45955. input.camera = this.camera;
  45956. //for checkInputs, we are dynamically creating a function
  45957. //the goal is to avoid the performance penalty of looping for inputs in the render loop
  45958. if (input.checkInputs) {
  45959. this.checkInputs = this._addCheckInputs(input.checkInputs.bind(input));
  45960. }
  45961. if (this.attachedElement) {
  45962. input.attachControl(this.attachedElement);
  45963. }
  45964. };
  45965. /**
  45966. * Remove a specific input method from a camera
  45967. * example: camera.inputs.remove(camera.inputs.attached.mouse);
  45968. * @param inputToRemove camera input method
  45969. */
  45970. CameraInputsManager.prototype.remove = function (inputToRemove) {
  45971. for (var cam in this.attached) {
  45972. var input = this.attached[cam];
  45973. if (input === inputToRemove) {
  45974. input.detachControl(this.attachedElement);
  45975. input.camera = null;
  45976. delete this.attached[cam];
  45977. this.rebuildInputCheck();
  45978. }
  45979. }
  45980. };
  45981. CameraInputsManager.prototype.removeByType = function (inputType) {
  45982. for (var cam in this.attached) {
  45983. var input = this.attached[cam];
  45984. if (input.getClassName() === inputType) {
  45985. input.detachControl(this.attachedElement);
  45986. input.camera = null;
  45987. delete this.attached[cam];
  45988. this.rebuildInputCheck();
  45989. }
  45990. }
  45991. };
  45992. CameraInputsManager.prototype._addCheckInputs = function (fn) {
  45993. var current = this.checkInputs;
  45994. return function () {
  45995. current();
  45996. fn();
  45997. };
  45998. };
  45999. CameraInputsManager.prototype.attachInput = function (input) {
  46000. if (this.attachedElement) {
  46001. input.attachControl(this.attachedElement, this.noPreventDefault);
  46002. }
  46003. };
  46004. CameraInputsManager.prototype.attachElement = function (element, noPreventDefault) {
  46005. if (noPreventDefault === void 0) { noPreventDefault = false; }
  46006. if (this.attachedElement) {
  46007. return;
  46008. }
  46009. noPreventDefault = BABYLON.Camera.ForceAttachControlToAlwaysPreventDefault ? false : noPreventDefault;
  46010. this.attachedElement = element;
  46011. this.noPreventDefault = noPreventDefault;
  46012. for (var cam in this.attached) {
  46013. this.attached[cam].attachControl(element, noPreventDefault);
  46014. }
  46015. };
  46016. CameraInputsManager.prototype.detachElement = function (element, disconnect) {
  46017. if (disconnect === void 0) { disconnect = false; }
  46018. if (this.attachedElement !== element) {
  46019. return;
  46020. }
  46021. for (var cam in this.attached) {
  46022. this.attached[cam].detachControl(element);
  46023. if (disconnect) {
  46024. this.attached[cam].camera = null;
  46025. }
  46026. }
  46027. this.attachedElement = null;
  46028. };
  46029. CameraInputsManager.prototype.rebuildInputCheck = function () {
  46030. this.checkInputs = function () { };
  46031. for (var cam in this.attached) {
  46032. var input = this.attached[cam];
  46033. if (input.checkInputs) {
  46034. this.checkInputs = this._addCheckInputs(input.checkInputs.bind(input));
  46035. }
  46036. }
  46037. };
  46038. /**
  46039. * Remove all attached input methods from a camera
  46040. */
  46041. CameraInputsManager.prototype.clear = function () {
  46042. if (this.attachedElement) {
  46043. this.detachElement(this.attachedElement, true);
  46044. }
  46045. this.attached = {};
  46046. this.attachedElement = null;
  46047. this.checkInputs = function () { };
  46048. };
  46049. CameraInputsManager.prototype.serialize = function (serializedCamera) {
  46050. var inputs = {};
  46051. for (var cam in this.attached) {
  46052. var input = this.attached[cam];
  46053. var res = BABYLON.SerializationHelper.Serialize(input);
  46054. inputs[input.getClassName()] = res;
  46055. }
  46056. serializedCamera.inputsmgr = inputs;
  46057. };
  46058. CameraInputsManager.prototype.parse = function (parsedCamera) {
  46059. var parsedInputs = parsedCamera.inputsmgr;
  46060. if (parsedInputs) {
  46061. this.clear();
  46062. for (var n in parsedInputs) {
  46063. var construct = BABYLON.CameraInputTypes[n];
  46064. if (construct) {
  46065. var parsedinput = parsedInputs[n];
  46066. var input = BABYLON.SerializationHelper.Parse(function () { return new construct(); }, parsedinput, null);
  46067. this.add(input);
  46068. }
  46069. }
  46070. }
  46071. else {
  46072. //2016-03-08 this part is for managing backward compatibility
  46073. for (var n in this.attached) {
  46074. var construct = BABYLON.CameraInputTypes[this.attached[n].getClassName()];
  46075. if (construct) {
  46076. var input = BABYLON.SerializationHelper.Parse(function () { return new construct(); }, parsedCamera, null);
  46077. this.remove(this.attached[n]);
  46078. this.add(input);
  46079. }
  46080. }
  46081. }
  46082. };
  46083. return CameraInputsManager;
  46084. }());
  46085. BABYLON.CameraInputsManager = CameraInputsManager;
  46086. })(BABYLON || (BABYLON = {}));
  46087. //# sourceMappingURL=babylon.cameraInputsManager.js.map
  46088. var BABYLON;
  46089. (function (BABYLON) {
  46090. var TargetCamera = /** @class */ (function (_super) {
  46091. __extends(TargetCamera, _super);
  46092. function TargetCamera(name, position, scene, setActiveOnSceneIfNoneActive) {
  46093. if (setActiveOnSceneIfNoneActive === void 0) { setActiveOnSceneIfNoneActive = true; }
  46094. var _this = _super.call(this, name, position, scene, setActiveOnSceneIfNoneActive) || this;
  46095. _this.cameraDirection = new BABYLON.Vector3(0, 0, 0);
  46096. _this.cameraRotation = new BABYLON.Vector2(0, 0);
  46097. _this.rotation = new BABYLON.Vector3(0, 0, 0);
  46098. _this.speed = 2.0;
  46099. _this.noRotationConstraint = false;
  46100. _this.lockedTarget = null;
  46101. /** @hidden */
  46102. _this._currentTarget = BABYLON.Vector3.Zero();
  46103. /** @hidden */
  46104. _this._viewMatrix = BABYLON.Matrix.Zero();
  46105. /** @hidden */
  46106. _this._camMatrix = BABYLON.Matrix.Zero();
  46107. /** @hidden */
  46108. _this._cameraTransformMatrix = BABYLON.Matrix.Zero();
  46109. /** @hidden */
  46110. _this._cameraRotationMatrix = BABYLON.Matrix.Zero();
  46111. /** @hidden */
  46112. _this._referencePoint = new BABYLON.Vector3(0, 0, 1);
  46113. /** @hidden */
  46114. _this._transformedReferencePoint = BABYLON.Vector3.Zero();
  46115. _this._globalCurrentTarget = BABYLON.Vector3.Zero();
  46116. _this._globalCurrentUpVector = BABYLON.Vector3.Zero();
  46117. _this._defaultUp = BABYLON.Vector3.Up();
  46118. _this._cachedRotationZ = 0;
  46119. return _this;
  46120. }
  46121. TargetCamera.prototype.getFrontPosition = function (distance) {
  46122. this.getWorldMatrix();
  46123. var direction = this.getTarget().subtract(this.position);
  46124. direction.normalize();
  46125. direction.scaleInPlace(distance);
  46126. return this.globalPosition.add(direction);
  46127. };
  46128. /** @hidden */
  46129. TargetCamera.prototype._getLockedTargetPosition = function () {
  46130. if (!this.lockedTarget) {
  46131. return null;
  46132. }
  46133. if (this.lockedTarget.absolutePosition) {
  46134. this.lockedTarget.computeWorldMatrix();
  46135. }
  46136. return this.lockedTarget.absolutePosition || this.lockedTarget;
  46137. };
  46138. TargetCamera.prototype.storeState = function () {
  46139. this._storedPosition = this.position.clone();
  46140. this._storedRotation = this.rotation.clone();
  46141. if (this.rotationQuaternion) {
  46142. this._storedRotationQuaternion = this.rotationQuaternion.clone();
  46143. }
  46144. return _super.prototype.storeState.call(this);
  46145. };
  46146. /**
  46147. * Restored camera state. You must call storeState() first
  46148. * @returns whether it was successful or not
  46149. * @hidden
  46150. */
  46151. TargetCamera.prototype._restoreStateValues = function () {
  46152. if (!_super.prototype._restoreStateValues.call(this)) {
  46153. return false;
  46154. }
  46155. this.position = this._storedPosition.clone();
  46156. this.rotation = this._storedRotation.clone();
  46157. if (this.rotationQuaternion) {
  46158. this.rotationQuaternion = this._storedRotationQuaternion.clone();
  46159. }
  46160. this.cameraDirection.copyFromFloats(0, 0, 0);
  46161. this.cameraRotation.copyFromFloats(0, 0);
  46162. return true;
  46163. };
  46164. // Cache
  46165. /** @hidden */
  46166. TargetCamera.prototype._initCache = function () {
  46167. _super.prototype._initCache.call(this);
  46168. this._cache.lockedTarget = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  46169. this._cache.rotation = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  46170. this._cache.rotationQuaternion = new BABYLON.Quaternion(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  46171. };
  46172. /** @hidden */
  46173. TargetCamera.prototype._updateCache = function (ignoreParentClass) {
  46174. if (!ignoreParentClass) {
  46175. _super.prototype._updateCache.call(this);
  46176. }
  46177. var lockedTargetPosition = this._getLockedTargetPosition();
  46178. if (!lockedTargetPosition) {
  46179. this._cache.lockedTarget = null;
  46180. }
  46181. else {
  46182. if (!this._cache.lockedTarget) {
  46183. this._cache.lockedTarget = lockedTargetPosition.clone();
  46184. }
  46185. else {
  46186. this._cache.lockedTarget.copyFrom(lockedTargetPosition);
  46187. }
  46188. }
  46189. this._cache.rotation.copyFrom(this.rotation);
  46190. if (this.rotationQuaternion)
  46191. this._cache.rotationQuaternion.copyFrom(this.rotationQuaternion);
  46192. };
  46193. // Synchronized
  46194. /** @hidden */
  46195. TargetCamera.prototype._isSynchronizedViewMatrix = function () {
  46196. if (!_super.prototype._isSynchronizedViewMatrix.call(this)) {
  46197. return false;
  46198. }
  46199. var lockedTargetPosition = this._getLockedTargetPosition();
  46200. return (this._cache.lockedTarget ? this._cache.lockedTarget.equals(lockedTargetPosition) : !lockedTargetPosition)
  46201. && (this.rotationQuaternion ? this.rotationQuaternion.equals(this._cache.rotationQuaternion) : this._cache.rotation.equals(this.rotation));
  46202. };
  46203. // Methods
  46204. /** @hidden */
  46205. TargetCamera.prototype._computeLocalCameraSpeed = function () {
  46206. var engine = this.getEngine();
  46207. return this.speed * Math.sqrt((engine.getDeltaTime() / (engine.getFps() * 100.0)));
  46208. };
  46209. // Target
  46210. /** @hidden */
  46211. TargetCamera.prototype.setTarget = function (target) {
  46212. this.upVector.normalize();
  46213. if (this.position.z === target.z) {
  46214. this.position.z += BABYLON.Epsilon;
  46215. }
  46216. BABYLON.Matrix.LookAtLHToRef(this.position, target, this._defaultUp, this._camMatrix);
  46217. this._camMatrix.invert();
  46218. this.rotation.x = Math.atan(this._camMatrix.m[6] / this._camMatrix.m[10]);
  46219. var vDir = target.subtract(this.position);
  46220. if (vDir.x >= 0.0) {
  46221. this.rotation.y = (-Math.atan(vDir.z / vDir.x) + Math.PI / 2.0);
  46222. }
  46223. else {
  46224. this.rotation.y = (-Math.atan(vDir.z / vDir.x) - Math.PI / 2.0);
  46225. }
  46226. this.rotation.z = 0;
  46227. if (isNaN(this.rotation.x)) {
  46228. this.rotation.x = 0;
  46229. }
  46230. if (isNaN(this.rotation.y)) {
  46231. this.rotation.y = 0;
  46232. }
  46233. if (isNaN(this.rotation.z)) {
  46234. this.rotation.z = 0;
  46235. }
  46236. if (this.rotationQuaternion) {
  46237. BABYLON.Quaternion.RotationYawPitchRollToRef(this.rotation.y, this.rotation.x, this.rotation.z, this.rotationQuaternion);
  46238. }
  46239. };
  46240. /**
  46241. * Return the current target position of the camera. This value is expressed in local space.
  46242. */
  46243. TargetCamera.prototype.getTarget = function () {
  46244. return this._currentTarget;
  46245. };
  46246. /** @hidden */
  46247. TargetCamera.prototype._decideIfNeedsToMove = function () {
  46248. return Math.abs(this.cameraDirection.x) > 0 || Math.abs(this.cameraDirection.y) > 0 || Math.abs(this.cameraDirection.z) > 0;
  46249. };
  46250. /** @hidden */
  46251. TargetCamera.prototype._updatePosition = function () {
  46252. if (this.parent) {
  46253. this.parent.getWorldMatrix().invertToRef(BABYLON.Tmp.Matrix[0]);
  46254. BABYLON.Vector3.TransformNormalToRef(this.cameraDirection, BABYLON.Tmp.Matrix[0], BABYLON.Tmp.Vector3[0]);
  46255. this.position.addInPlace(BABYLON.Tmp.Vector3[0]);
  46256. return;
  46257. }
  46258. this.position.addInPlace(this.cameraDirection);
  46259. };
  46260. /** @hidden */
  46261. TargetCamera.prototype._checkInputs = function () {
  46262. var needToMove = this._decideIfNeedsToMove();
  46263. var needToRotate = Math.abs(this.cameraRotation.x) > 0 || Math.abs(this.cameraRotation.y) > 0;
  46264. // Move
  46265. if (needToMove) {
  46266. this._updatePosition();
  46267. }
  46268. // Rotate
  46269. if (needToRotate) {
  46270. this.rotation.x += this.cameraRotation.x;
  46271. this.rotation.y += this.cameraRotation.y;
  46272. //rotate, if quaternion is set and rotation was used
  46273. if (this.rotationQuaternion) {
  46274. var len = this.rotation.lengthSquared();
  46275. if (len) {
  46276. BABYLON.Quaternion.RotationYawPitchRollToRef(this.rotation.y, this.rotation.x, this.rotation.z, this.rotationQuaternion);
  46277. }
  46278. }
  46279. if (!this.noRotationConstraint) {
  46280. var limit = (Math.PI / 2) * 0.95;
  46281. if (this.rotation.x > limit)
  46282. this.rotation.x = limit;
  46283. if (this.rotation.x < -limit)
  46284. this.rotation.x = -limit;
  46285. }
  46286. }
  46287. // Inertia
  46288. if (needToMove) {
  46289. if (Math.abs(this.cameraDirection.x) < this.speed * BABYLON.Epsilon) {
  46290. this.cameraDirection.x = 0;
  46291. }
  46292. if (Math.abs(this.cameraDirection.y) < this.speed * BABYLON.Epsilon) {
  46293. this.cameraDirection.y = 0;
  46294. }
  46295. if (Math.abs(this.cameraDirection.z) < this.speed * BABYLON.Epsilon) {
  46296. this.cameraDirection.z = 0;
  46297. }
  46298. this.cameraDirection.scaleInPlace(this.inertia);
  46299. }
  46300. if (needToRotate) {
  46301. if (Math.abs(this.cameraRotation.x) < this.speed * BABYLON.Epsilon) {
  46302. this.cameraRotation.x = 0;
  46303. }
  46304. if (Math.abs(this.cameraRotation.y) < this.speed * BABYLON.Epsilon) {
  46305. this.cameraRotation.y = 0;
  46306. }
  46307. this.cameraRotation.scaleInPlace(this.inertia);
  46308. }
  46309. _super.prototype._checkInputs.call(this);
  46310. };
  46311. TargetCamera.prototype._updateCameraRotationMatrix = function () {
  46312. if (this.rotationQuaternion) {
  46313. this.rotationQuaternion.toRotationMatrix(this._cameraRotationMatrix);
  46314. }
  46315. else {
  46316. BABYLON.Matrix.RotationYawPitchRollToRef(this.rotation.y, this.rotation.x, this.rotation.z, this._cameraRotationMatrix);
  46317. }
  46318. };
  46319. /**
  46320. * Update the up vector to apply the rotation of the camera (So if you changed the camera rotation.z this will let you update the up vector as well)
  46321. * @returns the current camera
  46322. */
  46323. TargetCamera.prototype._rotateUpVectorWithCameraRotationMatrix = function () {
  46324. BABYLON.Vector3.TransformNormalToRef(this._defaultUp, this._cameraRotationMatrix, this.upVector);
  46325. return this;
  46326. };
  46327. /** @hidden */
  46328. TargetCamera.prototype._getViewMatrix = function () {
  46329. if (this.lockedTarget) {
  46330. this.setTarget(this._getLockedTargetPosition());
  46331. }
  46332. // Compute
  46333. this._updateCameraRotationMatrix();
  46334. // Apply the changed rotation to the upVector.
  46335. if (this._cachedRotationZ != this.rotation.z) {
  46336. this._rotateUpVectorWithCameraRotationMatrix();
  46337. this._cachedRotationZ = this.rotation.z;
  46338. }
  46339. BABYLON.Vector3.TransformCoordinatesToRef(this._referencePoint, this._cameraRotationMatrix, this._transformedReferencePoint);
  46340. // Computing target and final matrix
  46341. this.position.addToRef(this._transformedReferencePoint, this._currentTarget);
  46342. this._computeViewMatrix(this.position, this._currentTarget, this.upVector);
  46343. return this._viewMatrix;
  46344. };
  46345. TargetCamera.prototype._computeViewMatrix = function (position, target, up) {
  46346. if (this.parent) {
  46347. var parentWorldMatrix = this.parent.getWorldMatrix();
  46348. BABYLON.Vector3.TransformCoordinatesToRef(position, parentWorldMatrix, this._globalPosition);
  46349. BABYLON.Vector3.TransformCoordinatesToRef(target, parentWorldMatrix, this._globalCurrentTarget);
  46350. BABYLON.Vector3.TransformNormalToRef(up, parentWorldMatrix, this._globalCurrentUpVector);
  46351. this._markSyncedWithParent();
  46352. }
  46353. else {
  46354. this._globalPosition.copyFrom(position);
  46355. this._globalCurrentTarget.copyFrom(target);
  46356. this._globalCurrentUpVector.copyFrom(up);
  46357. }
  46358. if (this.getScene().useRightHandedSystem) {
  46359. BABYLON.Matrix.LookAtRHToRef(this._globalPosition, this._globalCurrentTarget, this._globalCurrentUpVector, this._viewMatrix);
  46360. }
  46361. else {
  46362. BABYLON.Matrix.LookAtLHToRef(this._globalPosition, this._globalCurrentTarget, this._globalCurrentUpVector, this._viewMatrix);
  46363. }
  46364. };
  46365. /**
  46366. * @override
  46367. * Override Camera.createRigCamera
  46368. */
  46369. TargetCamera.prototype.createRigCamera = function (name, cameraIndex) {
  46370. if (this.cameraRigMode !== BABYLON.Camera.RIG_MODE_NONE) {
  46371. var rigCamera = new TargetCamera(name, this.position.clone(), this.getScene());
  46372. if (this.cameraRigMode === BABYLON.Camera.RIG_MODE_VR || this.cameraRigMode === BABYLON.Camera.RIG_MODE_WEBVR) {
  46373. if (!this.rotationQuaternion) {
  46374. this.rotationQuaternion = new BABYLON.Quaternion();
  46375. }
  46376. rigCamera._cameraRigParams = {};
  46377. rigCamera.rotationQuaternion = new BABYLON.Quaternion();
  46378. }
  46379. return rigCamera;
  46380. }
  46381. return null;
  46382. };
  46383. /**
  46384. * @hidden
  46385. * @override
  46386. * Override Camera._updateRigCameras
  46387. */
  46388. TargetCamera.prototype._updateRigCameras = function () {
  46389. var camLeft = this._rigCameras[0];
  46390. var camRight = this._rigCameras[1];
  46391. switch (this.cameraRigMode) {
  46392. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH:
  46393. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL:
  46394. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED:
  46395. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER:
  46396. //provisionnaly using _cameraRigParams.stereoHalfAngle instead of calculations based on _cameraRigParams.interaxialDistance:
  46397. var leftSign = (this.cameraRigMode === BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED) ? 1 : -1;
  46398. var rightSign = (this.cameraRigMode === BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED) ? -1 : 1;
  46399. this._getRigCamPosition(this._cameraRigParams.stereoHalfAngle * leftSign, camLeft.position);
  46400. this._getRigCamPosition(this._cameraRigParams.stereoHalfAngle * rightSign, camRight.position);
  46401. camLeft.setTarget(this.getTarget());
  46402. camRight.setTarget(this.getTarget());
  46403. break;
  46404. case BABYLON.Camera.RIG_MODE_VR:
  46405. if (camLeft.rotationQuaternion) {
  46406. camLeft.rotationQuaternion.copyFrom(this.rotationQuaternion);
  46407. camRight.rotationQuaternion.copyFrom(this.rotationQuaternion);
  46408. }
  46409. else {
  46410. camLeft.rotation.copyFrom(this.rotation);
  46411. camRight.rotation.copyFrom(this.rotation);
  46412. }
  46413. camLeft.position.copyFrom(this.position);
  46414. camRight.position.copyFrom(this.position);
  46415. break;
  46416. }
  46417. _super.prototype._updateRigCameras.call(this);
  46418. };
  46419. TargetCamera.prototype._getRigCamPosition = function (halfSpace, result) {
  46420. if (!this._rigCamTransformMatrix) {
  46421. this._rigCamTransformMatrix = new BABYLON.Matrix();
  46422. }
  46423. var target = this.getTarget();
  46424. BABYLON.Matrix.Translation(-target.x, -target.y, -target.z).multiplyToRef(BABYLON.Matrix.RotationY(halfSpace), this._rigCamTransformMatrix);
  46425. this._rigCamTransformMatrix = this._rigCamTransformMatrix.multiply(BABYLON.Matrix.Translation(target.x, target.y, target.z));
  46426. BABYLON.Vector3.TransformCoordinatesToRef(this.position, this._rigCamTransformMatrix, result);
  46427. };
  46428. TargetCamera.prototype.getClassName = function () {
  46429. return "TargetCamera";
  46430. };
  46431. __decorate([
  46432. BABYLON.serializeAsVector3()
  46433. ], TargetCamera.prototype, "rotation", void 0);
  46434. __decorate([
  46435. BABYLON.serialize()
  46436. ], TargetCamera.prototype, "speed", void 0);
  46437. __decorate([
  46438. BABYLON.serializeAsMeshReference("lockedTargetId")
  46439. ], TargetCamera.prototype, "lockedTarget", void 0);
  46440. return TargetCamera;
  46441. }(BABYLON.Camera));
  46442. BABYLON.TargetCamera = TargetCamera;
  46443. })(BABYLON || (BABYLON = {}));
  46444. //# sourceMappingURL=babylon.targetCamera.js.map
  46445. var BABYLON;
  46446. (function (BABYLON) {
  46447. var FreeCameraMouseInput = /** @class */ (function () {
  46448. function FreeCameraMouseInput(touchEnabled) {
  46449. if (touchEnabled === void 0) { touchEnabled = true; }
  46450. this.touchEnabled = touchEnabled;
  46451. this.buttons = [0, 1, 2];
  46452. this.angularSensibility = 2000.0;
  46453. this.previousPosition = null;
  46454. }
  46455. FreeCameraMouseInput.prototype.attachControl = function (element, noPreventDefault) {
  46456. var _this = this;
  46457. var engine = this.camera.getEngine();
  46458. if (!this._pointerInput) {
  46459. this._pointerInput = function (p, s) {
  46460. var evt = p.event;
  46461. if (engine.isInVRExclusivePointerMode) {
  46462. return;
  46463. }
  46464. if (!_this.touchEnabled && evt.pointerType === "touch") {
  46465. return;
  46466. }
  46467. if (p.type !== BABYLON.PointerEventTypes.POINTERMOVE && _this.buttons.indexOf(evt.button) === -1) {
  46468. return;
  46469. }
  46470. var srcElement = (evt.srcElement || evt.target);
  46471. if (p.type === BABYLON.PointerEventTypes.POINTERDOWN && srcElement) {
  46472. try {
  46473. srcElement.setPointerCapture(evt.pointerId);
  46474. }
  46475. catch (e) {
  46476. //Nothing to do with the error. Execution will continue.
  46477. }
  46478. _this.previousPosition = {
  46479. x: evt.clientX,
  46480. y: evt.clientY
  46481. };
  46482. if (!noPreventDefault) {
  46483. evt.preventDefault();
  46484. element.focus();
  46485. }
  46486. }
  46487. else if (p.type === BABYLON.PointerEventTypes.POINTERUP && srcElement) {
  46488. try {
  46489. srcElement.releasePointerCapture(evt.pointerId);
  46490. }
  46491. catch (e) {
  46492. //Nothing to do with the error.
  46493. }
  46494. _this.previousPosition = null;
  46495. if (!noPreventDefault) {
  46496. evt.preventDefault();
  46497. }
  46498. }
  46499. else if (p.type === BABYLON.PointerEventTypes.POINTERMOVE) {
  46500. if (!_this.previousPosition || engine.isPointerLock) {
  46501. return;
  46502. }
  46503. var offsetX = evt.clientX - _this.previousPosition.x;
  46504. if (_this.camera.getScene().useRightHandedSystem)
  46505. offsetX *= -1;
  46506. if (_this.camera.parent && _this.camera.parent._getWorldMatrixDeterminant() < 0)
  46507. offsetX *= -1;
  46508. _this.camera.cameraRotation.y += offsetX / _this.angularSensibility;
  46509. var offsetY = evt.clientY - _this.previousPosition.y;
  46510. _this.camera.cameraRotation.x += offsetY / _this.angularSensibility;
  46511. _this.previousPosition = {
  46512. x: evt.clientX,
  46513. y: evt.clientY
  46514. };
  46515. if (!noPreventDefault) {
  46516. evt.preventDefault();
  46517. }
  46518. }
  46519. };
  46520. }
  46521. this._onMouseMove = function (evt) {
  46522. if (!engine.isPointerLock) {
  46523. return;
  46524. }
  46525. if (engine.isInVRExclusivePointerMode) {
  46526. return;
  46527. }
  46528. var offsetX = evt.movementX || evt.mozMovementX || evt.webkitMovementX || evt.msMovementX || 0;
  46529. if (_this.camera.getScene().useRightHandedSystem)
  46530. offsetX *= -1;
  46531. if (_this.camera.parent && _this.camera.parent._getWorldMatrixDeterminant() < 0)
  46532. offsetX *= -1;
  46533. _this.camera.cameraRotation.y += offsetX / _this.angularSensibility;
  46534. var offsetY = evt.movementY || evt.mozMovementY || evt.webkitMovementY || evt.msMovementY || 0;
  46535. _this.camera.cameraRotation.x += offsetY / _this.angularSensibility;
  46536. _this.previousPosition = null;
  46537. if (!noPreventDefault) {
  46538. evt.preventDefault();
  46539. }
  46540. };
  46541. this._observer = this.camera.getScene().onPointerObservable.add(this._pointerInput, BABYLON.PointerEventTypes.POINTERDOWN | BABYLON.PointerEventTypes.POINTERUP | BABYLON.PointerEventTypes.POINTERMOVE);
  46542. element.addEventListener("mousemove", this._onMouseMove, false);
  46543. };
  46544. FreeCameraMouseInput.prototype.detachControl = function (element) {
  46545. if (this._observer && element) {
  46546. this.camera.getScene().onPointerObservable.remove(this._observer);
  46547. if (this._onMouseMove) {
  46548. element.removeEventListener("mousemove", this._onMouseMove);
  46549. }
  46550. this._observer = null;
  46551. this._onMouseMove = null;
  46552. this.previousPosition = null;
  46553. }
  46554. };
  46555. FreeCameraMouseInput.prototype.getClassName = function () {
  46556. return "FreeCameraMouseInput";
  46557. };
  46558. FreeCameraMouseInput.prototype.getSimpleName = function () {
  46559. return "mouse";
  46560. };
  46561. __decorate([
  46562. BABYLON.serialize()
  46563. ], FreeCameraMouseInput.prototype, "buttons", void 0);
  46564. __decorate([
  46565. BABYLON.serialize()
  46566. ], FreeCameraMouseInput.prototype, "angularSensibility", void 0);
  46567. return FreeCameraMouseInput;
  46568. }());
  46569. BABYLON.FreeCameraMouseInput = FreeCameraMouseInput;
  46570. BABYLON.CameraInputTypes["FreeCameraMouseInput"] = FreeCameraMouseInput;
  46571. })(BABYLON || (BABYLON = {}));
  46572. //# sourceMappingURL=babylon.freeCameraMouseInput.js.map
  46573. var BABYLON;
  46574. (function (BABYLON) {
  46575. var FreeCameraKeyboardMoveInput = /** @class */ (function () {
  46576. function FreeCameraKeyboardMoveInput() {
  46577. this._keys = new Array();
  46578. this.keysUp = [38];
  46579. this.keysDown = [40];
  46580. this.keysLeft = [37];
  46581. this.keysRight = [39];
  46582. }
  46583. FreeCameraKeyboardMoveInput.prototype.attachControl = function (element, noPreventDefault) {
  46584. var _this = this;
  46585. if (this._onCanvasBlurObserver) {
  46586. return;
  46587. }
  46588. this._scene = this.camera.getScene();
  46589. this._engine = this._scene.getEngine();
  46590. this._onCanvasBlurObserver = this._engine.onCanvasBlurObservable.add(function () {
  46591. _this._keys = [];
  46592. });
  46593. this._onKeyboardObserver = this._scene.onKeyboardObservable.add(function (info) {
  46594. var evt = info.event;
  46595. if (info.type === BABYLON.KeyboardEventTypes.KEYDOWN) {
  46596. if (_this.keysUp.indexOf(evt.keyCode) !== -1 ||
  46597. _this.keysDown.indexOf(evt.keyCode) !== -1 ||
  46598. _this.keysLeft.indexOf(evt.keyCode) !== -1 ||
  46599. _this.keysRight.indexOf(evt.keyCode) !== -1) {
  46600. var index = _this._keys.indexOf(evt.keyCode);
  46601. if (index === -1) {
  46602. _this._keys.push(evt.keyCode);
  46603. }
  46604. if (!noPreventDefault) {
  46605. evt.preventDefault();
  46606. }
  46607. }
  46608. }
  46609. else {
  46610. if (_this.keysUp.indexOf(evt.keyCode) !== -1 ||
  46611. _this.keysDown.indexOf(evt.keyCode) !== -1 ||
  46612. _this.keysLeft.indexOf(evt.keyCode) !== -1 ||
  46613. _this.keysRight.indexOf(evt.keyCode) !== -1) {
  46614. var index = _this._keys.indexOf(evt.keyCode);
  46615. if (index >= 0) {
  46616. _this._keys.splice(index, 1);
  46617. }
  46618. if (!noPreventDefault) {
  46619. evt.preventDefault();
  46620. }
  46621. }
  46622. }
  46623. });
  46624. };
  46625. FreeCameraKeyboardMoveInput.prototype.detachControl = function (element) {
  46626. if (this._scene) {
  46627. if (this._onKeyboardObserver) {
  46628. this._scene.onKeyboardObservable.remove(this._onKeyboardObserver);
  46629. }
  46630. if (this._onCanvasBlurObserver) {
  46631. this._engine.onCanvasBlurObservable.remove(this._onCanvasBlurObserver);
  46632. }
  46633. this._onKeyboardObserver = null;
  46634. this._onCanvasBlurObserver = null;
  46635. }
  46636. this._keys = [];
  46637. };
  46638. FreeCameraKeyboardMoveInput.prototype.checkInputs = function () {
  46639. if (this._onKeyboardObserver) {
  46640. var camera = this.camera;
  46641. // Keyboard
  46642. for (var index = 0; index < this._keys.length; index++) {
  46643. var keyCode = this._keys[index];
  46644. var speed = camera._computeLocalCameraSpeed();
  46645. if (this.keysLeft.indexOf(keyCode) !== -1) {
  46646. camera._localDirection.copyFromFloats(-speed, 0, 0);
  46647. }
  46648. else if (this.keysUp.indexOf(keyCode) !== -1) {
  46649. camera._localDirection.copyFromFloats(0, 0, speed);
  46650. }
  46651. else if (this.keysRight.indexOf(keyCode) !== -1) {
  46652. camera._localDirection.copyFromFloats(speed, 0, 0);
  46653. }
  46654. else if (this.keysDown.indexOf(keyCode) !== -1) {
  46655. camera._localDirection.copyFromFloats(0, 0, -speed);
  46656. }
  46657. if (camera.getScene().useRightHandedSystem) {
  46658. camera._localDirection.z *= -1;
  46659. }
  46660. camera.getViewMatrix().invertToRef(camera._cameraTransformMatrix);
  46661. BABYLON.Vector3.TransformNormalToRef(camera._localDirection, camera._cameraTransformMatrix, camera._transformedDirection);
  46662. camera.cameraDirection.addInPlace(camera._transformedDirection);
  46663. }
  46664. }
  46665. };
  46666. FreeCameraKeyboardMoveInput.prototype.getClassName = function () {
  46667. return "FreeCameraKeyboardMoveInput";
  46668. };
  46669. /** @hidden */
  46670. FreeCameraKeyboardMoveInput.prototype._onLostFocus = function (e) {
  46671. this._keys = [];
  46672. };
  46673. FreeCameraKeyboardMoveInput.prototype.getSimpleName = function () {
  46674. return "keyboard";
  46675. };
  46676. __decorate([
  46677. BABYLON.serialize()
  46678. ], FreeCameraKeyboardMoveInput.prototype, "keysUp", void 0);
  46679. __decorate([
  46680. BABYLON.serialize()
  46681. ], FreeCameraKeyboardMoveInput.prototype, "keysDown", void 0);
  46682. __decorate([
  46683. BABYLON.serialize()
  46684. ], FreeCameraKeyboardMoveInput.prototype, "keysLeft", void 0);
  46685. __decorate([
  46686. BABYLON.serialize()
  46687. ], FreeCameraKeyboardMoveInput.prototype, "keysRight", void 0);
  46688. return FreeCameraKeyboardMoveInput;
  46689. }());
  46690. BABYLON.FreeCameraKeyboardMoveInput = FreeCameraKeyboardMoveInput;
  46691. BABYLON.CameraInputTypes["FreeCameraKeyboardMoveInput"] = FreeCameraKeyboardMoveInput;
  46692. })(BABYLON || (BABYLON = {}));
  46693. //# sourceMappingURL=babylon.freeCameraKeyboardMoveInput.js.map
  46694. var BABYLON;
  46695. (function (BABYLON) {
  46696. var FreeCameraInputsManager = /** @class */ (function (_super) {
  46697. __extends(FreeCameraInputsManager, _super);
  46698. function FreeCameraInputsManager(camera) {
  46699. return _super.call(this, camera) || this;
  46700. }
  46701. FreeCameraInputsManager.prototype.addKeyboard = function () {
  46702. this.add(new BABYLON.FreeCameraKeyboardMoveInput());
  46703. return this;
  46704. };
  46705. FreeCameraInputsManager.prototype.addMouse = function (touchEnabled) {
  46706. if (touchEnabled === void 0) { touchEnabled = true; }
  46707. this.add(new BABYLON.FreeCameraMouseInput(touchEnabled));
  46708. return this;
  46709. };
  46710. FreeCameraInputsManager.prototype.addDeviceOrientation = function () {
  46711. this.add(new BABYLON.FreeCameraDeviceOrientationInput());
  46712. return this;
  46713. };
  46714. FreeCameraInputsManager.prototype.addTouch = function () {
  46715. this.add(new BABYLON.FreeCameraTouchInput());
  46716. return this;
  46717. };
  46718. FreeCameraInputsManager.prototype.addVirtualJoystick = function () {
  46719. this.add(new BABYLON.FreeCameraVirtualJoystickInput());
  46720. return this;
  46721. };
  46722. return FreeCameraInputsManager;
  46723. }(BABYLON.CameraInputsManager));
  46724. BABYLON.FreeCameraInputsManager = FreeCameraInputsManager;
  46725. })(BABYLON || (BABYLON = {}));
  46726. //# sourceMappingURL=babylon.freeCameraInputsManager.js.map
  46727. var BABYLON;
  46728. (function (BABYLON) {
  46729. BABYLON.Node.AddNodeConstructor("FreeCamera", function (name, scene) {
  46730. // Forcing to use the Universal camera
  46731. return function () { return new BABYLON.UniversalCamera(name, BABYLON.Vector3.Zero(), scene); };
  46732. });
  46733. var FreeCamera = /** @class */ (function (_super) {
  46734. __extends(FreeCamera, _super);
  46735. function FreeCamera(name, position, scene, setActiveOnSceneIfNoneActive) {
  46736. if (setActiveOnSceneIfNoneActive === void 0) { setActiveOnSceneIfNoneActive = true; }
  46737. var _this = _super.call(this, name, position, scene, setActiveOnSceneIfNoneActive) || this;
  46738. _this.ellipsoid = new BABYLON.Vector3(0.5, 1, 0.5);
  46739. _this.ellipsoidOffset = new BABYLON.Vector3(0, 0, 0);
  46740. _this.checkCollisions = false;
  46741. _this.applyGravity = false;
  46742. _this._needMoveForGravity = false;
  46743. _this._oldPosition = BABYLON.Vector3.Zero();
  46744. _this._diffPosition = BABYLON.Vector3.Zero();
  46745. _this._newPosition = BABYLON.Vector3.Zero();
  46746. // Collisions
  46747. _this._collisionMask = -1;
  46748. _this._onCollisionPositionChange = function (collisionId, newPosition, collidedMesh) {
  46749. if (collidedMesh === void 0) { collidedMesh = null; }
  46750. //TODO move this to the collision coordinator!
  46751. if (_this.getScene().workerCollisions)
  46752. newPosition.multiplyInPlace(_this._collider._radius);
  46753. var updatePosition = function (newPos) {
  46754. _this._newPosition.copyFrom(newPos);
  46755. _this._newPosition.subtractToRef(_this._oldPosition, _this._diffPosition);
  46756. if (_this._diffPosition.length() > BABYLON.Engine.CollisionsEpsilon) {
  46757. _this.position.addInPlace(_this._diffPosition);
  46758. if (_this.onCollide && collidedMesh) {
  46759. _this.onCollide(collidedMesh);
  46760. }
  46761. }
  46762. };
  46763. updatePosition(newPosition);
  46764. };
  46765. _this.inputs = new BABYLON.FreeCameraInputsManager(_this);
  46766. _this.inputs.addKeyboard().addMouse();
  46767. return _this;
  46768. }
  46769. Object.defineProperty(FreeCamera.prototype, "angularSensibility", {
  46770. //-- begin properties for backward compatibility for inputs
  46771. /**
  46772. * Gets the input sensibility for a mouse input. (default is 2000.0)
  46773. * Higher values reduce sensitivity.
  46774. */
  46775. get: function () {
  46776. var mouse = this.inputs.attached["mouse"];
  46777. if (mouse)
  46778. return mouse.angularSensibility;
  46779. return 0;
  46780. },
  46781. /**
  46782. * Sets the input sensibility for a mouse input. (default is 2000.0)
  46783. * Higher values reduce sensitivity.
  46784. */
  46785. set: function (value) {
  46786. var mouse = this.inputs.attached["mouse"];
  46787. if (mouse)
  46788. mouse.angularSensibility = value;
  46789. },
  46790. enumerable: true,
  46791. configurable: true
  46792. });
  46793. Object.defineProperty(FreeCamera.prototype, "keysUp", {
  46794. get: function () {
  46795. var keyboard = this.inputs.attached["keyboard"];
  46796. if (keyboard)
  46797. return keyboard.keysUp;
  46798. return [];
  46799. },
  46800. set: function (value) {
  46801. var keyboard = this.inputs.attached["keyboard"];
  46802. if (keyboard)
  46803. keyboard.keysUp = value;
  46804. },
  46805. enumerable: true,
  46806. configurable: true
  46807. });
  46808. Object.defineProperty(FreeCamera.prototype, "keysDown", {
  46809. get: function () {
  46810. var keyboard = this.inputs.attached["keyboard"];
  46811. if (keyboard)
  46812. return keyboard.keysDown;
  46813. return [];
  46814. },
  46815. set: function (value) {
  46816. var keyboard = this.inputs.attached["keyboard"];
  46817. if (keyboard)
  46818. keyboard.keysDown = value;
  46819. },
  46820. enumerable: true,
  46821. configurable: true
  46822. });
  46823. Object.defineProperty(FreeCamera.prototype, "keysLeft", {
  46824. get: function () {
  46825. var keyboard = this.inputs.attached["keyboard"];
  46826. if (keyboard)
  46827. return keyboard.keysLeft;
  46828. return [];
  46829. },
  46830. set: function (value) {
  46831. var keyboard = this.inputs.attached["keyboard"];
  46832. if (keyboard)
  46833. keyboard.keysLeft = value;
  46834. },
  46835. enumerable: true,
  46836. configurable: true
  46837. });
  46838. Object.defineProperty(FreeCamera.prototype, "keysRight", {
  46839. get: function () {
  46840. var keyboard = this.inputs.attached["keyboard"];
  46841. if (keyboard)
  46842. return keyboard.keysRight;
  46843. return [];
  46844. },
  46845. set: function (value) {
  46846. var keyboard = this.inputs.attached["keyboard"];
  46847. if (keyboard)
  46848. keyboard.keysRight = value;
  46849. },
  46850. enumerable: true,
  46851. configurable: true
  46852. });
  46853. // Controls
  46854. FreeCamera.prototype.attachControl = function (element, noPreventDefault) {
  46855. this.inputs.attachElement(element, noPreventDefault);
  46856. };
  46857. FreeCamera.prototype.detachControl = function (element) {
  46858. this.inputs.detachElement(element);
  46859. this.cameraDirection = new BABYLON.Vector3(0, 0, 0);
  46860. this.cameraRotation = new BABYLON.Vector2(0, 0);
  46861. };
  46862. Object.defineProperty(FreeCamera.prototype, "collisionMask", {
  46863. get: function () {
  46864. return this._collisionMask;
  46865. },
  46866. set: function (mask) {
  46867. this._collisionMask = !isNaN(mask) ? mask : -1;
  46868. },
  46869. enumerable: true,
  46870. configurable: true
  46871. });
  46872. /** @hidden */
  46873. FreeCamera.prototype._collideWithWorld = function (displacement) {
  46874. var globalPosition;
  46875. if (this.parent) {
  46876. globalPosition = BABYLON.Vector3.TransformCoordinates(this.position, this.parent.getWorldMatrix());
  46877. }
  46878. else {
  46879. globalPosition = this.position;
  46880. }
  46881. globalPosition.subtractFromFloatsToRef(0, this.ellipsoid.y, 0, this._oldPosition);
  46882. this._oldPosition.addInPlace(this.ellipsoidOffset);
  46883. if (!this._collider) {
  46884. this._collider = new BABYLON.Collider();
  46885. }
  46886. this._collider._radius = this.ellipsoid;
  46887. this._collider.collisionMask = this._collisionMask;
  46888. //no need for clone, as long as gravity is not on.
  46889. var actualDisplacement = displacement;
  46890. //add gravity to the direction to prevent the dual-collision checking
  46891. if (this.applyGravity) {
  46892. //this prevents mending with cameraDirection, a global variable of the free camera class.
  46893. actualDisplacement = displacement.add(this.getScene().gravity);
  46894. }
  46895. this.getScene().collisionCoordinator.getNewPosition(this._oldPosition, actualDisplacement, this._collider, 3, null, this._onCollisionPositionChange, this.uniqueId);
  46896. };
  46897. /** @hidden */
  46898. FreeCamera.prototype._checkInputs = function () {
  46899. if (!this._localDirection) {
  46900. this._localDirection = BABYLON.Vector3.Zero();
  46901. this._transformedDirection = BABYLON.Vector3.Zero();
  46902. }
  46903. this.inputs.checkInputs();
  46904. _super.prototype._checkInputs.call(this);
  46905. };
  46906. /** @hidden */
  46907. FreeCamera.prototype._decideIfNeedsToMove = function () {
  46908. return this._needMoveForGravity || Math.abs(this.cameraDirection.x) > 0 || Math.abs(this.cameraDirection.y) > 0 || Math.abs(this.cameraDirection.z) > 0;
  46909. };
  46910. /** @hidden */
  46911. FreeCamera.prototype._updatePosition = function () {
  46912. if (this.checkCollisions && this.getScene().collisionsEnabled) {
  46913. this._collideWithWorld(this.cameraDirection);
  46914. }
  46915. else {
  46916. _super.prototype._updatePosition.call(this);
  46917. }
  46918. };
  46919. FreeCamera.prototype.dispose = function () {
  46920. this.inputs.clear();
  46921. _super.prototype.dispose.call(this);
  46922. };
  46923. FreeCamera.prototype.getClassName = function () {
  46924. return "FreeCamera";
  46925. };
  46926. __decorate([
  46927. BABYLON.serializeAsVector3()
  46928. ], FreeCamera.prototype, "ellipsoid", void 0);
  46929. __decorate([
  46930. BABYLON.serializeAsVector3()
  46931. ], FreeCamera.prototype, "ellipsoidOffset", void 0);
  46932. __decorate([
  46933. BABYLON.serialize()
  46934. ], FreeCamera.prototype, "checkCollisions", void 0);
  46935. __decorate([
  46936. BABYLON.serialize()
  46937. ], FreeCamera.prototype, "applyGravity", void 0);
  46938. return FreeCamera;
  46939. }(BABYLON.TargetCamera));
  46940. BABYLON.FreeCamera = FreeCamera;
  46941. })(BABYLON || (BABYLON = {}));
  46942. //# sourceMappingURL=babylon.freeCamera.js.map
  46943. var BABYLON;
  46944. (function (BABYLON) {
  46945. var ArcRotateCameraKeyboardMoveInput = /** @class */ (function () {
  46946. function ArcRotateCameraKeyboardMoveInput() {
  46947. this._keys = new Array();
  46948. this.keysUp = [38];
  46949. this.keysDown = [40];
  46950. this.keysLeft = [37];
  46951. this.keysRight = [39];
  46952. this.keysReset = [220];
  46953. this.panningSensibility = 50.0;
  46954. this.zoomingSensibility = 25.0;
  46955. this.useAltToZoom = true;
  46956. }
  46957. ArcRotateCameraKeyboardMoveInput.prototype.attachControl = function (element, noPreventDefault) {
  46958. var _this = this;
  46959. if (this._onCanvasBlurObserver) {
  46960. return;
  46961. }
  46962. this._scene = this.camera.getScene();
  46963. this._engine = this._scene.getEngine();
  46964. this._onCanvasBlurObserver = this._engine.onCanvasBlurObservable.add(function () {
  46965. _this._keys = [];
  46966. });
  46967. this._onKeyboardObserver = this._scene.onKeyboardObservable.add(function (info) {
  46968. var evt = info.event;
  46969. if (info.type === BABYLON.KeyboardEventTypes.KEYDOWN) {
  46970. _this._ctrlPressed = evt.ctrlKey;
  46971. _this._altPressed = evt.altKey;
  46972. if (_this.keysUp.indexOf(evt.keyCode) !== -1 ||
  46973. _this.keysDown.indexOf(evt.keyCode) !== -1 ||
  46974. _this.keysLeft.indexOf(evt.keyCode) !== -1 ||
  46975. _this.keysRight.indexOf(evt.keyCode) !== -1 ||
  46976. _this.keysReset.indexOf(evt.keyCode) !== -1) {
  46977. var index = _this._keys.indexOf(evt.keyCode);
  46978. if (index === -1) {
  46979. _this._keys.push(evt.keyCode);
  46980. }
  46981. if (evt.preventDefault) {
  46982. if (!noPreventDefault) {
  46983. evt.preventDefault();
  46984. }
  46985. }
  46986. }
  46987. }
  46988. else {
  46989. if (_this.keysUp.indexOf(evt.keyCode) !== -1 ||
  46990. _this.keysDown.indexOf(evt.keyCode) !== -1 ||
  46991. _this.keysLeft.indexOf(evt.keyCode) !== -1 ||
  46992. _this.keysRight.indexOf(evt.keyCode) !== -1 ||
  46993. _this.keysReset.indexOf(evt.keyCode) !== -1) {
  46994. var index = _this._keys.indexOf(evt.keyCode);
  46995. if (index >= 0) {
  46996. _this._keys.splice(index, 1);
  46997. }
  46998. if (evt.preventDefault) {
  46999. if (!noPreventDefault) {
  47000. evt.preventDefault();
  47001. }
  47002. }
  47003. }
  47004. }
  47005. });
  47006. };
  47007. ArcRotateCameraKeyboardMoveInput.prototype.detachControl = function (element) {
  47008. if (this._scene) {
  47009. if (this._onKeyboardObserver) {
  47010. this._scene.onKeyboardObservable.remove(this._onKeyboardObserver);
  47011. }
  47012. if (this._onCanvasBlurObserver) {
  47013. this._engine.onCanvasBlurObservable.remove(this._onCanvasBlurObserver);
  47014. }
  47015. this._onKeyboardObserver = null;
  47016. this._onCanvasBlurObserver = null;
  47017. }
  47018. this._keys = [];
  47019. };
  47020. ArcRotateCameraKeyboardMoveInput.prototype.checkInputs = function () {
  47021. if (this._onKeyboardObserver) {
  47022. var camera = this.camera;
  47023. for (var index = 0; index < this._keys.length; index++) {
  47024. var keyCode = this._keys[index];
  47025. if (this.keysLeft.indexOf(keyCode) !== -1) {
  47026. if (this._ctrlPressed && this.camera._useCtrlForPanning) {
  47027. camera.inertialPanningX -= 1 / this.panningSensibility;
  47028. }
  47029. else {
  47030. camera.inertialAlphaOffset -= 0.01;
  47031. }
  47032. }
  47033. else if (this.keysUp.indexOf(keyCode) !== -1) {
  47034. if (this._ctrlPressed && this.camera._useCtrlForPanning) {
  47035. camera.inertialPanningY += 1 / this.panningSensibility;
  47036. }
  47037. else if (this._altPressed && this.useAltToZoom) {
  47038. camera.inertialRadiusOffset += 1 / this.zoomingSensibility;
  47039. }
  47040. else {
  47041. camera.inertialBetaOffset -= 0.01;
  47042. }
  47043. }
  47044. else if (this.keysRight.indexOf(keyCode) !== -1) {
  47045. if (this._ctrlPressed && this.camera._useCtrlForPanning) {
  47046. camera.inertialPanningX += 1 / this.panningSensibility;
  47047. }
  47048. else {
  47049. camera.inertialAlphaOffset += 0.01;
  47050. }
  47051. }
  47052. else if (this.keysDown.indexOf(keyCode) !== -1) {
  47053. if (this._ctrlPressed && this.camera._useCtrlForPanning) {
  47054. camera.inertialPanningY -= 1 / this.panningSensibility;
  47055. }
  47056. else if (this._altPressed && this.useAltToZoom) {
  47057. camera.inertialRadiusOffset -= 1 / this.zoomingSensibility;
  47058. }
  47059. else {
  47060. camera.inertialBetaOffset += 0.01;
  47061. }
  47062. }
  47063. else if (this.keysReset.indexOf(keyCode) !== -1) {
  47064. camera.restoreState();
  47065. }
  47066. }
  47067. }
  47068. };
  47069. ArcRotateCameraKeyboardMoveInput.prototype.getClassName = function () {
  47070. return "ArcRotateCameraKeyboardMoveInput";
  47071. };
  47072. ArcRotateCameraKeyboardMoveInput.prototype.getSimpleName = function () {
  47073. return "keyboard";
  47074. };
  47075. __decorate([
  47076. BABYLON.serialize()
  47077. ], ArcRotateCameraKeyboardMoveInput.prototype, "keysUp", void 0);
  47078. __decorate([
  47079. BABYLON.serialize()
  47080. ], ArcRotateCameraKeyboardMoveInput.prototype, "keysDown", void 0);
  47081. __decorate([
  47082. BABYLON.serialize()
  47083. ], ArcRotateCameraKeyboardMoveInput.prototype, "keysLeft", void 0);
  47084. __decorate([
  47085. BABYLON.serialize()
  47086. ], ArcRotateCameraKeyboardMoveInput.prototype, "keysRight", void 0);
  47087. __decorate([
  47088. BABYLON.serialize()
  47089. ], ArcRotateCameraKeyboardMoveInput.prototype, "keysReset", void 0);
  47090. __decorate([
  47091. BABYLON.serialize()
  47092. ], ArcRotateCameraKeyboardMoveInput.prototype, "panningSensibility", void 0);
  47093. __decorate([
  47094. BABYLON.serialize()
  47095. ], ArcRotateCameraKeyboardMoveInput.prototype, "zoomingSensibility", void 0);
  47096. __decorate([
  47097. BABYLON.serialize()
  47098. ], ArcRotateCameraKeyboardMoveInput.prototype, "useAltToZoom", void 0);
  47099. return ArcRotateCameraKeyboardMoveInput;
  47100. }());
  47101. BABYLON.ArcRotateCameraKeyboardMoveInput = ArcRotateCameraKeyboardMoveInput;
  47102. BABYLON.CameraInputTypes["ArcRotateCameraKeyboardMoveInput"] = ArcRotateCameraKeyboardMoveInput;
  47103. })(BABYLON || (BABYLON = {}));
  47104. //# sourceMappingURL=babylon.arcRotateCameraKeyboardMoveInput.js.map
  47105. var BABYLON;
  47106. (function (BABYLON) {
  47107. var ArcRotateCameraMouseWheelInput = /** @class */ (function () {
  47108. function ArcRotateCameraMouseWheelInput() {
  47109. this.wheelPrecision = 3.0;
  47110. /**
  47111. * wheelDeltaPercentage will be used instead of wheelPrecision if different from 0.
  47112. * It defines the percentage of current camera.radius to use as delta when wheel is used.
  47113. */
  47114. this.wheelDeltaPercentage = 0;
  47115. }
  47116. ArcRotateCameraMouseWheelInput.prototype.attachControl = function (element, noPreventDefault) {
  47117. var _this = this;
  47118. this._wheel = function (p, s) {
  47119. //sanity check - this should be a PointerWheel event.
  47120. if (p.type !== BABYLON.PointerEventTypes.POINTERWHEEL)
  47121. return;
  47122. var event = p.event;
  47123. var delta = 0;
  47124. if (event.wheelDelta) {
  47125. if (_this.wheelDeltaPercentage) {
  47126. var wheelDelta = (event.wheelDelta * 0.01 * _this.wheelDeltaPercentage) * _this.camera.radius;
  47127. if (event.wheelDelta > 0) {
  47128. delta = wheelDelta / (1.0 + _this.wheelDeltaPercentage);
  47129. }
  47130. else {
  47131. delta = wheelDelta * (1.0 + _this.wheelDeltaPercentage);
  47132. }
  47133. }
  47134. else {
  47135. delta = event.wheelDelta / (_this.wheelPrecision * 40);
  47136. }
  47137. }
  47138. else if (event.detail) {
  47139. delta = -event.detail / _this.wheelPrecision;
  47140. }
  47141. if (delta)
  47142. _this.camera.inertialRadiusOffset += delta;
  47143. if (event.preventDefault) {
  47144. if (!noPreventDefault) {
  47145. event.preventDefault();
  47146. }
  47147. }
  47148. };
  47149. this._observer = this.camera.getScene().onPointerObservable.add(this._wheel, BABYLON.PointerEventTypes.POINTERWHEEL);
  47150. };
  47151. ArcRotateCameraMouseWheelInput.prototype.detachControl = function (element) {
  47152. if (this._observer && element) {
  47153. this.camera.getScene().onPointerObservable.remove(this._observer);
  47154. this._observer = null;
  47155. this._wheel = null;
  47156. }
  47157. };
  47158. ArcRotateCameraMouseWheelInput.prototype.getClassName = function () {
  47159. return "ArcRotateCameraMouseWheelInput";
  47160. };
  47161. ArcRotateCameraMouseWheelInput.prototype.getSimpleName = function () {
  47162. return "mousewheel";
  47163. };
  47164. __decorate([
  47165. BABYLON.serialize()
  47166. ], ArcRotateCameraMouseWheelInput.prototype, "wheelPrecision", void 0);
  47167. __decorate([
  47168. BABYLON.serialize()
  47169. ], ArcRotateCameraMouseWheelInput.prototype, "wheelDeltaPercentage", void 0);
  47170. return ArcRotateCameraMouseWheelInput;
  47171. }());
  47172. BABYLON.ArcRotateCameraMouseWheelInput = ArcRotateCameraMouseWheelInput;
  47173. BABYLON.CameraInputTypes["ArcRotateCameraMouseWheelInput"] = ArcRotateCameraMouseWheelInput;
  47174. })(BABYLON || (BABYLON = {}));
  47175. //# sourceMappingURL=babylon.arcRotateCameraMouseWheelInput.js.map
  47176. var BABYLON;
  47177. (function (BABYLON) {
  47178. var ArcRotateCameraPointersInput = /** @class */ (function () {
  47179. function ArcRotateCameraPointersInput() {
  47180. this.buttons = [0, 1, 2];
  47181. this.angularSensibilityX = 1000.0;
  47182. this.angularSensibilityY = 1000.0;
  47183. this.pinchPrecision = 12.0;
  47184. /**
  47185. * pinchDeltaPercentage will be used instead of pinchPrecision if different from 0.
  47186. * It defines the percentage of current camera.radius to use as delta when pinch zoom is used.
  47187. */
  47188. this.pinchDeltaPercentage = 0;
  47189. this.panningSensibility = 1000.0;
  47190. this.multiTouchPanning = true;
  47191. this.multiTouchPanAndZoom = true;
  47192. this._isPanClick = false;
  47193. this.pinchInwards = true;
  47194. }
  47195. ArcRotateCameraPointersInput.prototype.attachControl = function (element, noPreventDefault) {
  47196. var _this = this;
  47197. var engine = this.camera.getEngine();
  47198. var cacheSoloPointer; // cache pointer object for better perf on camera rotation
  47199. var pointA = null;
  47200. var pointB = null;
  47201. var previousPinchSquaredDistance = 0;
  47202. var initialDistance = 0;
  47203. var twoFingerActivityCount = 0;
  47204. var previousMultiTouchPanPosition = { x: 0, y: 0, isPaning: false, isPinching: false };
  47205. this._pointerInput = function (p, s) {
  47206. var evt = p.event;
  47207. var isTouch = p.event.pointerType === "touch";
  47208. if (engine.isInVRExclusivePointerMode) {
  47209. return;
  47210. }
  47211. if (p.type !== BABYLON.PointerEventTypes.POINTERMOVE && _this.buttons.indexOf(evt.button) === -1) {
  47212. return;
  47213. }
  47214. var srcElement = (evt.srcElement || evt.target);
  47215. if (p.type === BABYLON.PointerEventTypes.POINTERDOWN && srcElement) {
  47216. try {
  47217. srcElement.setPointerCapture(evt.pointerId);
  47218. }
  47219. catch (e) {
  47220. //Nothing to do with the error. Execution will continue.
  47221. }
  47222. // Manage panning with pan button click
  47223. _this._isPanClick = evt.button === _this.camera._panningMouseButton;
  47224. // manage pointers
  47225. cacheSoloPointer = { x: evt.clientX, y: evt.clientY, pointerId: evt.pointerId, type: evt.pointerType };
  47226. if (pointA === null) {
  47227. pointA = cacheSoloPointer;
  47228. }
  47229. else if (pointB === null) {
  47230. pointB = cacheSoloPointer;
  47231. }
  47232. if (!noPreventDefault) {
  47233. evt.preventDefault();
  47234. element.focus();
  47235. }
  47236. }
  47237. else if (p.type === BABYLON.PointerEventTypes.POINTERDOUBLETAP) {
  47238. _this.camera.restoreState();
  47239. }
  47240. else if (p.type === BABYLON.PointerEventTypes.POINTERUP && srcElement) {
  47241. try {
  47242. srcElement.releasePointerCapture(evt.pointerId);
  47243. }
  47244. catch (e) {
  47245. //Nothing to do with the error.
  47246. }
  47247. cacheSoloPointer = null;
  47248. previousPinchSquaredDistance = 0;
  47249. previousMultiTouchPanPosition.isPaning = false;
  47250. previousMultiTouchPanPosition.isPinching = false;
  47251. twoFingerActivityCount = 0;
  47252. initialDistance = 0;
  47253. if (!isTouch) {
  47254. pointB = null; // Mouse and pen are mono pointer
  47255. }
  47256. //would be better to use pointers.remove(evt.pointerId) for multitouch gestures,
  47257. //but emptying completly pointers collection is required to fix a bug on iPhone :
  47258. //when changing orientation while pinching camera, one pointer stay pressed forever if we don't release all pointers
  47259. //will be ok to put back pointers.remove(evt.pointerId); when iPhone bug corrected
  47260. if (engine._badOS) {
  47261. pointA = pointB = null;
  47262. }
  47263. else {
  47264. //only remove the impacted pointer in case of multitouch allowing on most
  47265. //platforms switching from rotate to zoom and pan seamlessly.
  47266. if (pointB && pointA && pointA.pointerId == evt.pointerId) {
  47267. pointA = pointB;
  47268. pointB = null;
  47269. cacheSoloPointer = { x: pointA.x, y: pointA.y, pointerId: pointA.pointerId, type: evt.pointerType };
  47270. }
  47271. else if (pointA && pointB && pointB.pointerId == evt.pointerId) {
  47272. pointB = null;
  47273. cacheSoloPointer = { x: pointA.x, y: pointA.y, pointerId: pointA.pointerId, type: evt.pointerType };
  47274. }
  47275. else {
  47276. pointA = pointB = null;
  47277. }
  47278. }
  47279. if (!noPreventDefault) {
  47280. evt.preventDefault();
  47281. }
  47282. }
  47283. else if (p.type === BABYLON.PointerEventTypes.POINTERMOVE) {
  47284. if (!noPreventDefault) {
  47285. evt.preventDefault();
  47286. }
  47287. // One button down
  47288. if (pointA && pointB === null && cacheSoloPointer) {
  47289. if (_this.panningSensibility !== 0 &&
  47290. ((evt.ctrlKey && _this.camera._useCtrlForPanning) || _this._isPanClick)) {
  47291. _this.camera.inertialPanningX += -(evt.clientX - cacheSoloPointer.x) / _this.panningSensibility;
  47292. _this.camera.inertialPanningY += (evt.clientY - cacheSoloPointer.y) / _this.panningSensibility;
  47293. }
  47294. else {
  47295. var offsetX = evt.clientX - cacheSoloPointer.x;
  47296. var offsetY = evt.clientY - cacheSoloPointer.y;
  47297. _this.camera.inertialAlphaOffset -= offsetX / _this.angularSensibilityX;
  47298. _this.camera.inertialBetaOffset -= offsetY / _this.angularSensibilityY;
  47299. }
  47300. cacheSoloPointer.x = evt.clientX;
  47301. cacheSoloPointer.y = evt.clientY;
  47302. }
  47303. // Two buttons down: pinch/pan
  47304. else if (pointA && pointB) {
  47305. //if (noPreventDefault) { evt.preventDefault(); } //if pinch gesture, could be useful to force preventDefault to avoid html page scroll/zoom in some mobile browsers
  47306. var ed = (pointA.pointerId === evt.pointerId) ? pointA : pointB;
  47307. ed.x = evt.clientX;
  47308. ed.y = evt.clientY;
  47309. var direction = _this.pinchInwards ? 1 : -1;
  47310. var distX = pointA.x - pointB.x;
  47311. var distY = pointA.y - pointB.y;
  47312. var pinchSquaredDistance = (distX * distX) + (distY * distY);
  47313. var pinchDistance = Math.sqrt(pinchSquaredDistance);
  47314. if (previousPinchSquaredDistance === 0) {
  47315. initialDistance = pinchDistance;
  47316. previousPinchSquaredDistance = pinchSquaredDistance;
  47317. previousMultiTouchPanPosition.x = (pointA.x + pointB.x) / 2;
  47318. previousMultiTouchPanPosition.y = (pointA.y + pointB.y) / 2;
  47319. return;
  47320. }
  47321. if (_this.multiTouchPanAndZoom) {
  47322. if (_this.pinchDeltaPercentage) {
  47323. _this.camera.inertialRadiusOffset += ((pinchSquaredDistance - previousPinchSquaredDistance) * 0.001) * _this.camera.radius * _this.pinchDeltaPercentage;
  47324. }
  47325. else {
  47326. _this.camera.inertialRadiusOffset += (pinchSquaredDistance - previousPinchSquaredDistance) /
  47327. (_this.pinchPrecision *
  47328. ((_this.angularSensibilityX + _this.angularSensibilityY) / 2) *
  47329. direction);
  47330. }
  47331. if (_this.panningSensibility !== 0) {
  47332. var pointersCenterX = (pointA.x + pointB.x) / 2;
  47333. var pointersCenterY = (pointA.y + pointB.y) / 2;
  47334. var pointersCenterDistX = pointersCenterX - previousMultiTouchPanPosition.x;
  47335. var pointersCenterDistY = pointersCenterY - previousMultiTouchPanPosition.y;
  47336. previousMultiTouchPanPosition.x = pointersCenterX;
  47337. previousMultiTouchPanPosition.y = pointersCenterY;
  47338. _this.camera.inertialPanningX += -(pointersCenterDistX) / (_this.panningSensibility);
  47339. _this.camera.inertialPanningY += (pointersCenterDistY) / (_this.panningSensibility);
  47340. }
  47341. }
  47342. else {
  47343. twoFingerActivityCount++;
  47344. if (previousMultiTouchPanPosition.isPinching || (twoFingerActivityCount < 20 && Math.abs(pinchDistance - initialDistance) > _this.camera.pinchToPanMaxDistance)) {
  47345. if (_this.pinchDeltaPercentage) {
  47346. _this.camera.inertialRadiusOffset += ((pinchSquaredDistance - previousPinchSquaredDistance) * 0.001) * _this.camera.radius * _this.pinchDeltaPercentage;
  47347. }
  47348. else {
  47349. _this.camera.inertialRadiusOffset += (pinchSquaredDistance - previousPinchSquaredDistance) /
  47350. (_this.pinchPrecision *
  47351. ((_this.angularSensibilityX + _this.angularSensibilityY) / 2) *
  47352. direction);
  47353. }
  47354. previousMultiTouchPanPosition.isPaning = false;
  47355. previousMultiTouchPanPosition.isPinching = true;
  47356. }
  47357. else {
  47358. if (cacheSoloPointer && cacheSoloPointer.pointerId === ed.pointerId && _this.panningSensibility !== 0 && _this.multiTouchPanning) {
  47359. if (!previousMultiTouchPanPosition.isPaning) {
  47360. previousMultiTouchPanPosition.isPaning = true;
  47361. previousMultiTouchPanPosition.isPinching = false;
  47362. previousMultiTouchPanPosition.x = ed.x;
  47363. previousMultiTouchPanPosition.y = ed.y;
  47364. return;
  47365. }
  47366. _this.camera.inertialPanningX += -(ed.x - previousMultiTouchPanPosition.x) / (_this.panningSensibility);
  47367. _this.camera.inertialPanningY += (ed.y - previousMultiTouchPanPosition.y) / (_this.panningSensibility);
  47368. }
  47369. }
  47370. if (cacheSoloPointer && cacheSoloPointer.pointerId === evt.pointerId) {
  47371. previousMultiTouchPanPosition.x = ed.x;
  47372. previousMultiTouchPanPosition.y = ed.y;
  47373. }
  47374. }
  47375. previousPinchSquaredDistance = pinchSquaredDistance;
  47376. }
  47377. }
  47378. };
  47379. this._observer = this.camera.getScene().onPointerObservable.add(this._pointerInput, BABYLON.PointerEventTypes.POINTERDOWN | BABYLON.PointerEventTypes.POINTERUP | BABYLON.PointerEventTypes.POINTERMOVE | BABYLON.PointerEventTypes._POINTERDOUBLETAP);
  47380. this._onContextMenu = function (evt) {
  47381. evt.preventDefault();
  47382. };
  47383. if (!this.camera._useCtrlForPanning) {
  47384. element.addEventListener("contextmenu", this._onContextMenu, false);
  47385. }
  47386. this._onLostFocus = function () {
  47387. //this._keys = [];
  47388. pointA = pointB = null;
  47389. previousPinchSquaredDistance = 0;
  47390. previousMultiTouchPanPosition.isPaning = false;
  47391. previousMultiTouchPanPosition.isPinching = false;
  47392. twoFingerActivityCount = 0;
  47393. cacheSoloPointer = null;
  47394. initialDistance = 0;
  47395. };
  47396. this._onMouseMove = function (evt) {
  47397. if (!engine.isPointerLock) {
  47398. return;
  47399. }
  47400. var offsetX = evt.movementX || evt.mozMovementX || evt.webkitMovementX || evt.msMovementX || 0;
  47401. var offsetY = evt.movementY || evt.mozMovementY || evt.webkitMovementY || evt.msMovementY || 0;
  47402. _this.camera.inertialAlphaOffset -= offsetX / _this.angularSensibilityX;
  47403. _this.camera.inertialBetaOffset -= offsetY / _this.angularSensibilityY;
  47404. if (!noPreventDefault) {
  47405. evt.preventDefault();
  47406. }
  47407. };
  47408. this._onGestureStart = function (e) {
  47409. if (window.MSGesture === undefined) {
  47410. return;
  47411. }
  47412. if (!_this._MSGestureHandler) {
  47413. _this._MSGestureHandler = new MSGesture();
  47414. _this._MSGestureHandler.target = element;
  47415. }
  47416. _this._MSGestureHandler.addPointer(e.pointerId);
  47417. };
  47418. this._onGesture = function (e) {
  47419. _this.camera.radius *= e.scale;
  47420. if (e.preventDefault) {
  47421. if (!noPreventDefault) {
  47422. e.stopPropagation();
  47423. e.preventDefault();
  47424. }
  47425. }
  47426. };
  47427. element.addEventListener("mousemove", this._onMouseMove, false);
  47428. element.addEventListener("MSPointerDown", this._onGestureStart, false);
  47429. element.addEventListener("MSGestureChange", this._onGesture, false);
  47430. BABYLON.Tools.RegisterTopRootEvents([
  47431. { name: "blur", handler: this._onLostFocus }
  47432. ]);
  47433. };
  47434. ArcRotateCameraPointersInput.prototype.detachControl = function (element) {
  47435. if (this._onLostFocus) {
  47436. BABYLON.Tools.UnregisterTopRootEvents([
  47437. { name: "blur", handler: this._onLostFocus }
  47438. ]);
  47439. }
  47440. if (element && this._observer) {
  47441. this.camera.getScene().onPointerObservable.remove(this._observer);
  47442. this._observer = null;
  47443. if (this._onContextMenu) {
  47444. element.removeEventListener("contextmenu", this._onContextMenu);
  47445. }
  47446. if (this._onMouseMove) {
  47447. element.removeEventListener("mousemove", this._onMouseMove);
  47448. }
  47449. if (this._onGestureStart) {
  47450. element.removeEventListener("MSPointerDown", this._onGestureStart);
  47451. }
  47452. if (this._onGesture) {
  47453. element.removeEventListener("MSGestureChange", this._onGesture);
  47454. }
  47455. this._isPanClick = false;
  47456. this.pinchInwards = true;
  47457. this._onMouseMove = null;
  47458. this._onGestureStart = null;
  47459. this._onGesture = null;
  47460. this._MSGestureHandler = null;
  47461. this._onLostFocus = null;
  47462. this._onContextMenu = null;
  47463. }
  47464. };
  47465. ArcRotateCameraPointersInput.prototype.getClassName = function () {
  47466. return "ArcRotateCameraPointersInput";
  47467. };
  47468. ArcRotateCameraPointersInput.prototype.getSimpleName = function () {
  47469. return "pointers";
  47470. };
  47471. __decorate([
  47472. BABYLON.serialize()
  47473. ], ArcRotateCameraPointersInput.prototype, "buttons", void 0);
  47474. __decorate([
  47475. BABYLON.serialize()
  47476. ], ArcRotateCameraPointersInput.prototype, "angularSensibilityX", void 0);
  47477. __decorate([
  47478. BABYLON.serialize()
  47479. ], ArcRotateCameraPointersInput.prototype, "angularSensibilityY", void 0);
  47480. __decorate([
  47481. BABYLON.serialize()
  47482. ], ArcRotateCameraPointersInput.prototype, "pinchPrecision", void 0);
  47483. __decorate([
  47484. BABYLON.serialize()
  47485. ], ArcRotateCameraPointersInput.prototype, "pinchDeltaPercentage", void 0);
  47486. __decorate([
  47487. BABYLON.serialize()
  47488. ], ArcRotateCameraPointersInput.prototype, "panningSensibility", void 0);
  47489. __decorate([
  47490. BABYLON.serialize()
  47491. ], ArcRotateCameraPointersInput.prototype, "multiTouchPanning", void 0);
  47492. __decorate([
  47493. BABYLON.serialize()
  47494. ], ArcRotateCameraPointersInput.prototype, "multiTouchPanAndZoom", void 0);
  47495. return ArcRotateCameraPointersInput;
  47496. }());
  47497. BABYLON.ArcRotateCameraPointersInput = ArcRotateCameraPointersInput;
  47498. BABYLON.CameraInputTypes["ArcRotateCameraPointersInput"] = ArcRotateCameraPointersInput;
  47499. })(BABYLON || (BABYLON = {}));
  47500. //# sourceMappingURL=babylon.arcRotateCameraPointersInput.js.map
  47501. var BABYLON;
  47502. (function (BABYLON) {
  47503. var ArcRotateCameraInputsManager = /** @class */ (function (_super) {
  47504. __extends(ArcRotateCameraInputsManager, _super);
  47505. function ArcRotateCameraInputsManager(camera) {
  47506. return _super.call(this, camera) || this;
  47507. }
  47508. ArcRotateCameraInputsManager.prototype.addMouseWheel = function () {
  47509. this.add(new BABYLON.ArcRotateCameraMouseWheelInput());
  47510. return this;
  47511. };
  47512. ArcRotateCameraInputsManager.prototype.addPointers = function () {
  47513. this.add(new BABYLON.ArcRotateCameraPointersInput());
  47514. return this;
  47515. };
  47516. ArcRotateCameraInputsManager.prototype.addKeyboard = function () {
  47517. this.add(new BABYLON.ArcRotateCameraKeyboardMoveInput());
  47518. return this;
  47519. };
  47520. ArcRotateCameraInputsManager.prototype.addVRDeviceOrientation = function () {
  47521. this.add(new BABYLON.ArcRotateCameraVRDeviceOrientationInput());
  47522. return this;
  47523. };
  47524. return ArcRotateCameraInputsManager;
  47525. }(BABYLON.CameraInputsManager));
  47526. BABYLON.ArcRotateCameraInputsManager = ArcRotateCameraInputsManager;
  47527. })(BABYLON || (BABYLON = {}));
  47528. //# sourceMappingURL=babylon.arcRotateCameraInputsManager.js.map
  47529. var BABYLON;
  47530. (function (BABYLON) {
  47531. BABYLON.Node.AddNodeConstructor("ArcRotateCamera", function (name, scene) {
  47532. return function () { return new ArcRotateCamera(name, 0, 0, 1.0, BABYLON.Vector3.Zero(), scene); };
  47533. });
  47534. var ArcRotateCamera = /** @class */ (function (_super) {
  47535. __extends(ArcRotateCamera, _super);
  47536. function ArcRotateCamera(name, alpha, beta, radius, target, scene, setActiveOnSceneIfNoneActive) {
  47537. if (setActiveOnSceneIfNoneActive === void 0) { setActiveOnSceneIfNoneActive = true; }
  47538. var _this = _super.call(this, name, BABYLON.Vector3.Zero(), scene, setActiveOnSceneIfNoneActive) || this;
  47539. _this.inertialAlphaOffset = 0;
  47540. _this.inertialBetaOffset = 0;
  47541. _this.inertialRadiusOffset = 0;
  47542. _this.lowerAlphaLimit = null;
  47543. _this.upperAlphaLimit = null;
  47544. _this.lowerBetaLimit = 0.01;
  47545. _this.upperBetaLimit = Math.PI;
  47546. _this.lowerRadiusLimit = null;
  47547. _this.upperRadiusLimit = null;
  47548. _this.inertialPanningX = 0;
  47549. _this.inertialPanningY = 0;
  47550. _this.pinchToPanMaxDistance = 20;
  47551. _this.panningDistanceLimit = null;
  47552. _this.panningOriginTarget = BABYLON.Vector3.Zero();
  47553. _this.panningInertia = 0.9;
  47554. //-- end properties for backward compatibility for inputs
  47555. _this.zoomOnFactor = 1;
  47556. _this.targetScreenOffset = BABYLON.Vector2.Zero();
  47557. _this.allowUpsideDown = true;
  47558. /** @hidden */
  47559. _this._viewMatrix = new BABYLON.Matrix();
  47560. // Panning
  47561. _this.panningAxis = new BABYLON.Vector3(1, 1, 0);
  47562. _this.onMeshTargetChangedObservable = new BABYLON.Observable();
  47563. _this.checkCollisions = false;
  47564. _this.collisionRadius = new BABYLON.Vector3(0.5, 0.5, 0.5);
  47565. _this._previousPosition = BABYLON.Vector3.Zero();
  47566. _this._collisionVelocity = BABYLON.Vector3.Zero();
  47567. _this._newPosition = BABYLON.Vector3.Zero();
  47568. _this._computationVector = BABYLON.Vector3.Zero();
  47569. _this._onCollisionPositionChange = function (collisionId, newPosition, collidedMesh) {
  47570. if (collidedMesh === void 0) { collidedMesh = null; }
  47571. if (_this.getScene().workerCollisions && _this.checkCollisions) {
  47572. newPosition.multiplyInPlace(_this._collider._radius);
  47573. }
  47574. if (!collidedMesh) {
  47575. _this._previousPosition.copyFrom(_this.position);
  47576. }
  47577. else {
  47578. _this.setPosition(newPosition);
  47579. if (_this.onCollide) {
  47580. _this.onCollide(collidedMesh);
  47581. }
  47582. }
  47583. // Recompute because of constraints
  47584. var cosa = Math.cos(_this.alpha);
  47585. var sina = Math.sin(_this.alpha);
  47586. var cosb = Math.cos(_this.beta);
  47587. var sinb = Math.sin(_this.beta);
  47588. if (sinb === 0) {
  47589. sinb = 0.0001;
  47590. }
  47591. var target = _this._getTargetPosition();
  47592. _this._computationVector.copyFromFloats(_this.radius * cosa * sinb, _this.radius * cosb, _this.radius * sina * sinb);
  47593. target.addToRef(_this._computationVector, _this._newPosition);
  47594. _this.position.copyFrom(_this._newPosition);
  47595. var up = _this.upVector;
  47596. if (_this.allowUpsideDown && _this.beta < 0) {
  47597. up = up.clone();
  47598. up = up.negate();
  47599. }
  47600. _this._computeViewMatrix(_this.position, target, up);
  47601. _this._viewMatrix.m[12] += _this.targetScreenOffset.x;
  47602. _this._viewMatrix.m[13] += _this.targetScreenOffset.y;
  47603. _this._collisionTriggered = false;
  47604. };
  47605. _this._target = BABYLON.Vector3.Zero();
  47606. if (target) {
  47607. _this.setTarget(target);
  47608. }
  47609. _this.alpha = alpha;
  47610. _this.beta = beta;
  47611. _this.radius = radius;
  47612. _this.getViewMatrix();
  47613. _this.inputs = new BABYLON.ArcRotateCameraInputsManager(_this);
  47614. _this.inputs.addKeyboard().addMouseWheel().addPointers();
  47615. return _this;
  47616. }
  47617. Object.defineProperty(ArcRotateCamera.prototype, "target", {
  47618. get: function () {
  47619. return this._target;
  47620. },
  47621. set: function (value) {
  47622. this.setTarget(value);
  47623. },
  47624. enumerable: true,
  47625. configurable: true
  47626. });
  47627. Object.defineProperty(ArcRotateCamera.prototype, "angularSensibilityX", {
  47628. //-- begin properties for backward compatibility for inputs
  47629. get: function () {
  47630. var pointers = this.inputs.attached["pointers"];
  47631. if (pointers)
  47632. return pointers.angularSensibilityX;
  47633. return 0;
  47634. },
  47635. set: function (value) {
  47636. var pointers = this.inputs.attached["pointers"];
  47637. if (pointers) {
  47638. pointers.angularSensibilityX = value;
  47639. }
  47640. },
  47641. enumerable: true,
  47642. configurable: true
  47643. });
  47644. Object.defineProperty(ArcRotateCamera.prototype, "angularSensibilityY", {
  47645. get: function () {
  47646. var pointers = this.inputs.attached["pointers"];
  47647. if (pointers)
  47648. return pointers.angularSensibilityY;
  47649. return 0;
  47650. },
  47651. set: function (value) {
  47652. var pointers = this.inputs.attached["pointers"];
  47653. if (pointers) {
  47654. pointers.angularSensibilityY = value;
  47655. }
  47656. },
  47657. enumerable: true,
  47658. configurable: true
  47659. });
  47660. Object.defineProperty(ArcRotateCamera.prototype, "pinchPrecision", {
  47661. get: function () {
  47662. var pointers = this.inputs.attached["pointers"];
  47663. if (pointers)
  47664. return pointers.pinchPrecision;
  47665. return 0;
  47666. },
  47667. set: function (value) {
  47668. var pointers = this.inputs.attached["pointers"];
  47669. if (pointers) {
  47670. pointers.pinchPrecision = value;
  47671. }
  47672. },
  47673. enumerable: true,
  47674. configurable: true
  47675. });
  47676. Object.defineProperty(ArcRotateCamera.prototype, "pinchDeltaPercentage", {
  47677. get: function () {
  47678. var pointers = this.inputs.attached["pointers"];
  47679. if (pointers)
  47680. return pointers.pinchDeltaPercentage;
  47681. return 0;
  47682. },
  47683. set: function (value) {
  47684. var pointers = this.inputs.attached["pointers"];
  47685. if (pointers) {
  47686. pointers.pinchDeltaPercentage = value;
  47687. }
  47688. },
  47689. enumerable: true,
  47690. configurable: true
  47691. });
  47692. Object.defineProperty(ArcRotateCamera.prototype, "panningSensibility", {
  47693. get: function () {
  47694. var pointers = this.inputs.attached["pointers"];
  47695. if (pointers)
  47696. return pointers.panningSensibility;
  47697. return 0;
  47698. },
  47699. set: function (value) {
  47700. var pointers = this.inputs.attached["pointers"];
  47701. if (pointers) {
  47702. pointers.panningSensibility = value;
  47703. }
  47704. },
  47705. enumerable: true,
  47706. configurable: true
  47707. });
  47708. Object.defineProperty(ArcRotateCamera.prototype, "keysUp", {
  47709. get: function () {
  47710. var keyboard = this.inputs.attached["keyboard"];
  47711. if (keyboard)
  47712. return keyboard.keysUp;
  47713. return [];
  47714. },
  47715. set: function (value) {
  47716. var keyboard = this.inputs.attached["keyboard"];
  47717. if (keyboard)
  47718. keyboard.keysUp = value;
  47719. },
  47720. enumerable: true,
  47721. configurable: true
  47722. });
  47723. Object.defineProperty(ArcRotateCamera.prototype, "keysDown", {
  47724. get: function () {
  47725. var keyboard = this.inputs.attached["keyboard"];
  47726. if (keyboard)
  47727. return keyboard.keysDown;
  47728. return [];
  47729. },
  47730. set: function (value) {
  47731. var keyboard = this.inputs.attached["keyboard"];
  47732. if (keyboard)
  47733. keyboard.keysDown = value;
  47734. },
  47735. enumerable: true,
  47736. configurable: true
  47737. });
  47738. Object.defineProperty(ArcRotateCamera.prototype, "keysLeft", {
  47739. get: function () {
  47740. var keyboard = this.inputs.attached["keyboard"];
  47741. if (keyboard)
  47742. return keyboard.keysLeft;
  47743. return [];
  47744. },
  47745. set: function (value) {
  47746. var keyboard = this.inputs.attached["keyboard"];
  47747. if (keyboard)
  47748. keyboard.keysLeft = value;
  47749. },
  47750. enumerable: true,
  47751. configurable: true
  47752. });
  47753. Object.defineProperty(ArcRotateCamera.prototype, "keysRight", {
  47754. get: function () {
  47755. var keyboard = this.inputs.attached["keyboard"];
  47756. if (keyboard)
  47757. return keyboard.keysRight;
  47758. return [];
  47759. },
  47760. set: function (value) {
  47761. var keyboard = this.inputs.attached["keyboard"];
  47762. if (keyboard)
  47763. keyboard.keysRight = value;
  47764. },
  47765. enumerable: true,
  47766. configurable: true
  47767. });
  47768. Object.defineProperty(ArcRotateCamera.prototype, "wheelPrecision", {
  47769. get: function () {
  47770. var mousewheel = this.inputs.attached["mousewheel"];
  47771. if (mousewheel)
  47772. return mousewheel.wheelPrecision;
  47773. return 0;
  47774. },
  47775. set: function (value) {
  47776. var mousewheel = this.inputs.attached["mousewheel"];
  47777. if (mousewheel)
  47778. mousewheel.wheelPrecision = value;
  47779. },
  47780. enumerable: true,
  47781. configurable: true
  47782. });
  47783. Object.defineProperty(ArcRotateCamera.prototype, "wheelDeltaPercentage", {
  47784. get: function () {
  47785. var mousewheel = this.inputs.attached["mousewheel"];
  47786. if (mousewheel)
  47787. return mousewheel.wheelDeltaPercentage;
  47788. return 0;
  47789. },
  47790. set: function (value) {
  47791. var mousewheel = this.inputs.attached["mousewheel"];
  47792. if (mousewheel)
  47793. mousewheel.wheelDeltaPercentage = value;
  47794. },
  47795. enumerable: true,
  47796. configurable: true
  47797. });
  47798. Object.defineProperty(ArcRotateCamera.prototype, "bouncingBehavior", {
  47799. get: function () {
  47800. return this._bouncingBehavior;
  47801. },
  47802. enumerable: true,
  47803. configurable: true
  47804. });
  47805. Object.defineProperty(ArcRotateCamera.prototype, "useBouncingBehavior", {
  47806. get: function () {
  47807. return this._bouncingBehavior != null;
  47808. },
  47809. set: function (value) {
  47810. if (value === this.useBouncingBehavior) {
  47811. return;
  47812. }
  47813. if (value) {
  47814. this._bouncingBehavior = new BABYLON.BouncingBehavior();
  47815. this.addBehavior(this._bouncingBehavior);
  47816. }
  47817. else if (this._bouncingBehavior) {
  47818. this.removeBehavior(this._bouncingBehavior);
  47819. this._bouncingBehavior = null;
  47820. }
  47821. },
  47822. enumerable: true,
  47823. configurable: true
  47824. });
  47825. Object.defineProperty(ArcRotateCamera.prototype, "framingBehavior", {
  47826. get: function () {
  47827. return this._framingBehavior;
  47828. },
  47829. enumerable: true,
  47830. configurable: true
  47831. });
  47832. Object.defineProperty(ArcRotateCamera.prototype, "useFramingBehavior", {
  47833. get: function () {
  47834. return this._framingBehavior != null;
  47835. },
  47836. set: function (value) {
  47837. if (value === this.useFramingBehavior) {
  47838. return;
  47839. }
  47840. if (value) {
  47841. this._framingBehavior = new BABYLON.FramingBehavior();
  47842. this.addBehavior(this._framingBehavior);
  47843. }
  47844. else if (this._framingBehavior) {
  47845. this.removeBehavior(this._framingBehavior);
  47846. this._framingBehavior = null;
  47847. }
  47848. },
  47849. enumerable: true,
  47850. configurable: true
  47851. });
  47852. Object.defineProperty(ArcRotateCamera.prototype, "autoRotationBehavior", {
  47853. get: function () {
  47854. return this._autoRotationBehavior;
  47855. },
  47856. enumerable: true,
  47857. configurable: true
  47858. });
  47859. Object.defineProperty(ArcRotateCamera.prototype, "useAutoRotationBehavior", {
  47860. get: function () {
  47861. return this._autoRotationBehavior != null;
  47862. },
  47863. set: function (value) {
  47864. if (value === this.useAutoRotationBehavior) {
  47865. return;
  47866. }
  47867. if (value) {
  47868. this._autoRotationBehavior = new BABYLON.AutoRotationBehavior();
  47869. this.addBehavior(this._autoRotationBehavior);
  47870. }
  47871. else if (this._autoRotationBehavior) {
  47872. this.removeBehavior(this._autoRotationBehavior);
  47873. this._autoRotationBehavior = null;
  47874. }
  47875. },
  47876. enumerable: true,
  47877. configurable: true
  47878. });
  47879. // Cache
  47880. /** @hidden */
  47881. ArcRotateCamera.prototype._initCache = function () {
  47882. _super.prototype._initCache.call(this);
  47883. this._cache._target = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  47884. this._cache.alpha = undefined;
  47885. this._cache.beta = undefined;
  47886. this._cache.radius = undefined;
  47887. this._cache.targetScreenOffset = BABYLON.Vector2.Zero();
  47888. };
  47889. /** @hidden */
  47890. ArcRotateCamera.prototype._updateCache = function (ignoreParentClass) {
  47891. if (!ignoreParentClass) {
  47892. _super.prototype._updateCache.call(this);
  47893. }
  47894. this._cache._target.copyFrom(this._getTargetPosition());
  47895. this._cache.alpha = this.alpha;
  47896. this._cache.beta = this.beta;
  47897. this._cache.radius = this.radius;
  47898. this._cache.targetScreenOffset.copyFrom(this.targetScreenOffset);
  47899. };
  47900. ArcRotateCamera.prototype._getTargetPosition = function () {
  47901. if (this._targetHost && this._targetHost.getAbsolutePosition) {
  47902. var pos = this._targetHost.getAbsolutePosition();
  47903. if (this._targetBoundingCenter) {
  47904. pos.addToRef(this._targetBoundingCenter, this._target);
  47905. }
  47906. else {
  47907. this._target.copyFrom(pos);
  47908. }
  47909. }
  47910. var lockedTargetPosition = this._getLockedTargetPosition();
  47911. if (lockedTargetPosition) {
  47912. return lockedTargetPosition;
  47913. }
  47914. return this._target;
  47915. };
  47916. ArcRotateCamera.prototype.storeState = function () {
  47917. this._storedAlpha = this.alpha;
  47918. this._storedBeta = this.beta;
  47919. this._storedRadius = this.radius;
  47920. this._storedTarget = this._getTargetPosition().clone();
  47921. return _super.prototype.storeState.call(this);
  47922. };
  47923. /**
  47924. * @hidden
  47925. * Restored camera state. You must call storeState() first
  47926. */
  47927. ArcRotateCamera.prototype._restoreStateValues = function () {
  47928. if (!_super.prototype._restoreStateValues.call(this)) {
  47929. return false;
  47930. }
  47931. this.alpha = this._storedAlpha;
  47932. this.beta = this._storedBeta;
  47933. this.radius = this._storedRadius;
  47934. this.setTarget(this._storedTarget.clone());
  47935. this.inertialAlphaOffset = 0;
  47936. this.inertialBetaOffset = 0;
  47937. this.inertialRadiusOffset = 0;
  47938. this.inertialPanningX = 0;
  47939. this.inertialPanningY = 0;
  47940. return true;
  47941. };
  47942. // Synchronized
  47943. /** @hidden */
  47944. ArcRotateCamera.prototype._isSynchronizedViewMatrix = function () {
  47945. if (!_super.prototype._isSynchronizedViewMatrix.call(this))
  47946. return false;
  47947. return this._cache._target.equals(this._getTargetPosition())
  47948. && this._cache.alpha === this.alpha
  47949. && this._cache.beta === this.beta
  47950. && this._cache.radius === this.radius
  47951. && this._cache.targetScreenOffset.equals(this.targetScreenOffset);
  47952. };
  47953. // Methods
  47954. ArcRotateCamera.prototype.attachControl = function (element, noPreventDefault, useCtrlForPanning, panningMouseButton) {
  47955. var _this = this;
  47956. if (useCtrlForPanning === void 0) { useCtrlForPanning = true; }
  47957. if (panningMouseButton === void 0) { panningMouseButton = 2; }
  47958. this._useCtrlForPanning = useCtrlForPanning;
  47959. this._panningMouseButton = panningMouseButton;
  47960. this.inputs.attachElement(element, noPreventDefault);
  47961. this._reset = function () {
  47962. _this.inertialAlphaOffset = 0;
  47963. _this.inertialBetaOffset = 0;
  47964. _this.inertialRadiusOffset = 0;
  47965. _this.inertialPanningX = 0;
  47966. _this.inertialPanningY = 0;
  47967. };
  47968. };
  47969. ArcRotateCamera.prototype.detachControl = function (element) {
  47970. this.inputs.detachElement(element);
  47971. if (this._reset) {
  47972. this._reset();
  47973. }
  47974. };
  47975. /** @hidden */
  47976. ArcRotateCamera.prototype._checkInputs = function () {
  47977. //if (async) collision inspection was triggered, don't update the camera's position - until the collision callback was called.
  47978. if (this._collisionTriggered) {
  47979. return;
  47980. }
  47981. this.inputs.checkInputs();
  47982. // Inertia
  47983. if (this.inertialAlphaOffset !== 0 || this.inertialBetaOffset !== 0 || this.inertialRadiusOffset !== 0) {
  47984. var inertialAlphaOffset = this.inertialAlphaOffset;
  47985. if (this.beta <= 0)
  47986. inertialAlphaOffset *= -1;
  47987. if (this.getScene().useRightHandedSystem)
  47988. inertialAlphaOffset *= -1;
  47989. if (this.parent && this.parent._getWorldMatrixDeterminant() < 0)
  47990. inertialAlphaOffset *= -1;
  47991. this.alpha += inertialAlphaOffset;
  47992. this.beta += this.inertialBetaOffset;
  47993. this.radius -= this.inertialRadiusOffset;
  47994. this.inertialAlphaOffset *= this.inertia;
  47995. this.inertialBetaOffset *= this.inertia;
  47996. this.inertialRadiusOffset *= this.inertia;
  47997. if (Math.abs(this.inertialAlphaOffset) < BABYLON.Epsilon)
  47998. this.inertialAlphaOffset = 0;
  47999. if (Math.abs(this.inertialBetaOffset) < BABYLON.Epsilon)
  48000. this.inertialBetaOffset = 0;
  48001. if (Math.abs(this.inertialRadiusOffset) < this.speed * BABYLON.Epsilon)
  48002. this.inertialRadiusOffset = 0;
  48003. }
  48004. // Panning inertia
  48005. if (this.inertialPanningX !== 0 || this.inertialPanningY !== 0) {
  48006. if (!this._localDirection) {
  48007. this._localDirection = BABYLON.Vector3.Zero();
  48008. this._transformedDirection = BABYLON.Vector3.Zero();
  48009. }
  48010. this._localDirection.copyFromFloats(this.inertialPanningX, this.inertialPanningY, this.inertialPanningY);
  48011. this._localDirection.multiplyInPlace(this.panningAxis);
  48012. this._viewMatrix.invertToRef(this._cameraTransformMatrix);
  48013. BABYLON.Vector3.TransformNormalToRef(this._localDirection, this._cameraTransformMatrix, this._transformedDirection);
  48014. //Eliminate y if map panning is enabled (panningAxis == 1,0,1)
  48015. if (!this.panningAxis.y) {
  48016. this._transformedDirection.y = 0;
  48017. }
  48018. if (!this._targetHost) {
  48019. if (this.panningDistanceLimit) {
  48020. this._transformedDirection.addInPlace(this._target);
  48021. var distanceSquared = BABYLON.Vector3.DistanceSquared(this._transformedDirection, this.panningOriginTarget);
  48022. if (distanceSquared <= (this.panningDistanceLimit * this.panningDistanceLimit)) {
  48023. this._target.copyFrom(this._transformedDirection);
  48024. }
  48025. }
  48026. else {
  48027. this._target.addInPlace(this._transformedDirection);
  48028. }
  48029. }
  48030. this.inertialPanningX *= this.panningInertia;
  48031. this.inertialPanningY *= this.panningInertia;
  48032. if (Math.abs(this.inertialPanningX) < this.speed * BABYLON.Epsilon)
  48033. this.inertialPanningX = 0;
  48034. if (Math.abs(this.inertialPanningY) < this.speed * BABYLON.Epsilon)
  48035. this.inertialPanningY = 0;
  48036. }
  48037. // Limits
  48038. this._checkLimits();
  48039. _super.prototype._checkInputs.call(this);
  48040. };
  48041. ArcRotateCamera.prototype._checkLimits = function () {
  48042. if (this.lowerBetaLimit === null || this.lowerBetaLimit === undefined) {
  48043. if (this.allowUpsideDown && this.beta > Math.PI) {
  48044. this.beta = this.beta - (2 * Math.PI);
  48045. }
  48046. }
  48047. else {
  48048. if (this.beta < this.lowerBetaLimit) {
  48049. this.beta = this.lowerBetaLimit;
  48050. }
  48051. }
  48052. if (this.upperBetaLimit === null || this.upperBetaLimit === undefined) {
  48053. if (this.allowUpsideDown && this.beta < -Math.PI) {
  48054. this.beta = this.beta + (2 * Math.PI);
  48055. }
  48056. }
  48057. else {
  48058. if (this.beta > this.upperBetaLimit) {
  48059. this.beta = this.upperBetaLimit;
  48060. }
  48061. }
  48062. if (this.lowerAlphaLimit !== null && this.alpha < this.lowerAlphaLimit) {
  48063. this.alpha = this.lowerAlphaLimit;
  48064. }
  48065. if (this.upperAlphaLimit !== null && this.alpha > this.upperAlphaLimit) {
  48066. this.alpha = this.upperAlphaLimit;
  48067. }
  48068. if (this.lowerRadiusLimit !== null && this.radius < this.lowerRadiusLimit) {
  48069. this.radius = this.lowerRadiusLimit;
  48070. }
  48071. if (this.upperRadiusLimit !== null && this.radius > this.upperRadiusLimit) {
  48072. this.radius = this.upperRadiusLimit;
  48073. }
  48074. };
  48075. ArcRotateCamera.prototype.rebuildAnglesAndRadius = function () {
  48076. this.position.subtractToRef(this._getTargetPosition(), this._computationVector);
  48077. this.radius = this._computationVector.length();
  48078. if (this.radius === 0) {
  48079. this.radius = 0.0001; // Just to avoid division by zero
  48080. }
  48081. // Alpha
  48082. this.alpha = Math.acos(this._computationVector.x / Math.sqrt(Math.pow(this._computationVector.x, 2) + Math.pow(this._computationVector.z, 2)));
  48083. if (this._computationVector.z < 0) {
  48084. this.alpha = 2 * Math.PI - this.alpha;
  48085. }
  48086. // Beta
  48087. this.beta = Math.acos(this._computationVector.y / this.radius);
  48088. this._checkLimits();
  48089. };
  48090. ArcRotateCamera.prototype.setPosition = function (position) {
  48091. if (this.position.equals(position)) {
  48092. return;
  48093. }
  48094. this.position.copyFrom(position);
  48095. this.rebuildAnglesAndRadius();
  48096. };
  48097. ArcRotateCamera.prototype.setTarget = function (target, toBoundingCenter, allowSamePosition) {
  48098. if (toBoundingCenter === void 0) { toBoundingCenter = false; }
  48099. if (allowSamePosition === void 0) { allowSamePosition = false; }
  48100. if (target.getBoundingInfo) {
  48101. if (toBoundingCenter) {
  48102. this._targetBoundingCenter = target.getBoundingInfo().boundingBox.centerWorld.clone();
  48103. }
  48104. else {
  48105. this._targetBoundingCenter = null;
  48106. }
  48107. this._targetHost = target;
  48108. this._target = this._getTargetPosition();
  48109. this.onMeshTargetChangedObservable.notifyObservers(this._targetHost);
  48110. }
  48111. else {
  48112. var newTarget = target;
  48113. var currentTarget = this._getTargetPosition();
  48114. if (currentTarget && !allowSamePosition && currentTarget.equals(newTarget)) {
  48115. return;
  48116. }
  48117. this._targetHost = null;
  48118. this._target = newTarget;
  48119. this._targetBoundingCenter = null;
  48120. this.onMeshTargetChangedObservable.notifyObservers(null);
  48121. }
  48122. this.rebuildAnglesAndRadius();
  48123. };
  48124. /** @hidden */
  48125. ArcRotateCamera.prototype._getViewMatrix = function () {
  48126. // Compute
  48127. var cosa = Math.cos(this.alpha);
  48128. var sina = Math.sin(this.alpha);
  48129. var cosb = Math.cos(this.beta);
  48130. var sinb = Math.sin(this.beta);
  48131. if (sinb === 0) {
  48132. sinb = 0.0001;
  48133. }
  48134. var target = this._getTargetPosition();
  48135. this._computationVector.copyFromFloats(this.radius * cosa * sinb, this.radius * cosb, this.radius * sina * sinb);
  48136. target.addToRef(this._computationVector, this._newPosition);
  48137. if (this.getScene().collisionsEnabled && this.checkCollisions) {
  48138. if (!this._collider) {
  48139. this._collider = new BABYLON.Collider();
  48140. }
  48141. this._collider._radius = this.collisionRadius;
  48142. this._newPosition.subtractToRef(this.position, this._collisionVelocity);
  48143. this._collisionTriggered = true;
  48144. this.getScene().collisionCoordinator.getNewPosition(this.position, this._collisionVelocity, this._collider, 3, null, this._onCollisionPositionChange, this.uniqueId);
  48145. }
  48146. else {
  48147. this.position.copyFrom(this._newPosition);
  48148. var up = this.upVector;
  48149. if (this.allowUpsideDown && sinb < 0) {
  48150. up = up.clone();
  48151. up = up.negate();
  48152. }
  48153. this._computeViewMatrix(this.position, target, up);
  48154. this._viewMatrix.m[12] += this.targetScreenOffset.x;
  48155. this._viewMatrix.m[13] += this.targetScreenOffset.y;
  48156. }
  48157. this._currentTarget = target;
  48158. return this._viewMatrix;
  48159. };
  48160. ArcRotateCamera.prototype.zoomOn = function (meshes, doNotUpdateMaxZ) {
  48161. if (doNotUpdateMaxZ === void 0) { doNotUpdateMaxZ = false; }
  48162. meshes = meshes || this.getScene().meshes;
  48163. var minMaxVector = BABYLON.Mesh.MinMax(meshes);
  48164. var distance = BABYLON.Vector3.Distance(minMaxVector.min, minMaxVector.max);
  48165. this.radius = distance * this.zoomOnFactor;
  48166. this.focusOn({ min: minMaxVector.min, max: minMaxVector.max, distance: distance }, doNotUpdateMaxZ);
  48167. };
  48168. ArcRotateCamera.prototype.focusOn = function (meshesOrMinMaxVectorAndDistance, doNotUpdateMaxZ) {
  48169. if (doNotUpdateMaxZ === void 0) { doNotUpdateMaxZ = false; }
  48170. var meshesOrMinMaxVector;
  48171. var distance;
  48172. if (meshesOrMinMaxVectorAndDistance.min === undefined) { // meshes
  48173. var meshes = meshesOrMinMaxVectorAndDistance || this.getScene().meshes;
  48174. meshesOrMinMaxVector = BABYLON.Mesh.MinMax(meshes);
  48175. distance = BABYLON.Vector3.Distance(meshesOrMinMaxVector.min, meshesOrMinMaxVector.max);
  48176. }
  48177. else { //minMaxVector and distance
  48178. var minMaxVectorAndDistance = meshesOrMinMaxVectorAndDistance;
  48179. meshesOrMinMaxVector = minMaxVectorAndDistance;
  48180. distance = minMaxVectorAndDistance.distance;
  48181. }
  48182. this._target = BABYLON.Mesh.Center(meshesOrMinMaxVector);
  48183. if (!doNotUpdateMaxZ) {
  48184. this.maxZ = distance * 2;
  48185. }
  48186. };
  48187. /**
  48188. * @override
  48189. * Override Camera.createRigCamera
  48190. */
  48191. ArcRotateCamera.prototype.createRigCamera = function (name, cameraIndex) {
  48192. var alphaShift = 0;
  48193. switch (this.cameraRigMode) {
  48194. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH:
  48195. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL:
  48196. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER:
  48197. case BABYLON.Camera.RIG_MODE_VR:
  48198. alphaShift = this._cameraRigParams.stereoHalfAngle * (cameraIndex === 0 ? 1 : -1);
  48199. break;
  48200. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED:
  48201. alphaShift = this._cameraRigParams.stereoHalfAngle * (cameraIndex === 0 ? -1 : 1);
  48202. break;
  48203. }
  48204. var rigCam = new ArcRotateCamera(name, this.alpha + alphaShift, this.beta, this.radius, this._target, this.getScene());
  48205. rigCam._cameraRigParams = {};
  48206. return rigCam;
  48207. };
  48208. /**
  48209. * @hidden
  48210. * @override
  48211. * Override Camera._updateRigCameras
  48212. */
  48213. ArcRotateCamera.prototype._updateRigCameras = function () {
  48214. var camLeft = this._rigCameras[0];
  48215. var camRight = this._rigCameras[1];
  48216. camLeft.beta = camRight.beta = this.beta;
  48217. camLeft.radius = camRight.radius = this.radius;
  48218. switch (this.cameraRigMode) {
  48219. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH:
  48220. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL:
  48221. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER:
  48222. case BABYLON.Camera.RIG_MODE_VR:
  48223. camLeft.alpha = this.alpha - this._cameraRigParams.stereoHalfAngle;
  48224. camRight.alpha = this.alpha + this._cameraRigParams.stereoHalfAngle;
  48225. break;
  48226. case BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_CROSSEYED:
  48227. camLeft.alpha = this.alpha + this._cameraRigParams.stereoHalfAngle;
  48228. camRight.alpha = this.alpha - this._cameraRigParams.stereoHalfAngle;
  48229. break;
  48230. }
  48231. _super.prototype._updateRigCameras.call(this);
  48232. };
  48233. ArcRotateCamera.prototype.dispose = function () {
  48234. this.inputs.clear();
  48235. _super.prototype.dispose.call(this);
  48236. };
  48237. ArcRotateCamera.prototype.getClassName = function () {
  48238. return "ArcRotateCamera";
  48239. };
  48240. __decorate([
  48241. BABYLON.serialize()
  48242. ], ArcRotateCamera.prototype, "alpha", void 0);
  48243. __decorate([
  48244. BABYLON.serialize()
  48245. ], ArcRotateCamera.prototype, "beta", void 0);
  48246. __decorate([
  48247. BABYLON.serialize()
  48248. ], ArcRotateCamera.prototype, "radius", void 0);
  48249. __decorate([
  48250. BABYLON.serializeAsVector3("target")
  48251. ], ArcRotateCamera.prototype, "_target", void 0);
  48252. __decorate([
  48253. BABYLON.serialize()
  48254. ], ArcRotateCamera.prototype, "inertialAlphaOffset", void 0);
  48255. __decorate([
  48256. BABYLON.serialize()
  48257. ], ArcRotateCamera.prototype, "inertialBetaOffset", void 0);
  48258. __decorate([
  48259. BABYLON.serialize()
  48260. ], ArcRotateCamera.prototype, "inertialRadiusOffset", void 0);
  48261. __decorate([
  48262. BABYLON.serialize()
  48263. ], ArcRotateCamera.prototype, "lowerAlphaLimit", void 0);
  48264. __decorate([
  48265. BABYLON.serialize()
  48266. ], ArcRotateCamera.prototype, "upperAlphaLimit", void 0);
  48267. __decorate([
  48268. BABYLON.serialize()
  48269. ], ArcRotateCamera.prototype, "lowerBetaLimit", void 0);
  48270. __decorate([
  48271. BABYLON.serialize()
  48272. ], ArcRotateCamera.prototype, "upperBetaLimit", void 0);
  48273. __decorate([
  48274. BABYLON.serialize()
  48275. ], ArcRotateCamera.prototype, "lowerRadiusLimit", void 0);
  48276. __decorate([
  48277. BABYLON.serialize()
  48278. ], ArcRotateCamera.prototype, "upperRadiusLimit", void 0);
  48279. __decorate([
  48280. BABYLON.serialize()
  48281. ], ArcRotateCamera.prototype, "inertialPanningX", void 0);
  48282. __decorate([
  48283. BABYLON.serialize()
  48284. ], ArcRotateCamera.prototype, "inertialPanningY", void 0);
  48285. __decorate([
  48286. BABYLON.serialize()
  48287. ], ArcRotateCamera.prototype, "pinchToPanMaxDistance", void 0);
  48288. __decorate([
  48289. BABYLON.serialize()
  48290. ], ArcRotateCamera.prototype, "panningDistanceLimit", void 0);
  48291. __decorate([
  48292. BABYLON.serializeAsVector3()
  48293. ], ArcRotateCamera.prototype, "panningOriginTarget", void 0);
  48294. __decorate([
  48295. BABYLON.serialize()
  48296. ], ArcRotateCamera.prototype, "panningInertia", void 0);
  48297. __decorate([
  48298. BABYLON.serialize()
  48299. ], ArcRotateCamera.prototype, "zoomOnFactor", void 0);
  48300. __decorate([
  48301. BABYLON.serialize()
  48302. ], ArcRotateCamera.prototype, "allowUpsideDown", void 0);
  48303. return ArcRotateCamera;
  48304. }(BABYLON.TargetCamera));
  48305. BABYLON.ArcRotateCamera = ArcRotateCamera;
  48306. })(BABYLON || (BABYLON = {}));
  48307. //# sourceMappingURL=babylon.arcRotateCamera.js.map
  48308. var BABYLON;
  48309. (function (BABYLON) {
  48310. BABYLON.Node.AddNodeConstructor("Light_Type_3", function (name, scene) {
  48311. return function () { return new HemisphericLight(name, BABYLON.Vector3.Zero(), scene); };
  48312. });
  48313. /**
  48314. * The HemisphericLight simulates the ambient environment light,
  48315. * so the passed direction is the light reflection direction, not the incoming direction.
  48316. */
  48317. var HemisphericLight = /** @class */ (function (_super) {
  48318. __extends(HemisphericLight, _super);
  48319. /**
  48320. * Creates a HemisphericLight object in the scene according to the passed direction (Vector3).
  48321. * The HemisphericLight simulates the ambient environment light, so the passed direction is the light reflection direction, not the incoming direction.
  48322. * The HemisphericLight can't cast shadows.
  48323. * Documentation : http://doc.babylonjs.com/tutorials/lights
  48324. * @param name The friendly name of the light
  48325. * @param direction The direction of the light reflection
  48326. * @param scene The scene the light belongs to
  48327. */
  48328. function HemisphericLight(name, direction, scene) {
  48329. var _this = _super.call(this, name, scene) || this;
  48330. /**
  48331. * The groundColor is the light in the opposite direction to the one specified during creation.
  48332. * You can think of the diffuse and specular light as coming from the centre of the object in the given direction and the groundColor light in the opposite direction.
  48333. */
  48334. _this.groundColor = new BABYLON.Color3(0.0, 0.0, 0.0);
  48335. _this.direction = direction || BABYLON.Vector3.Up();
  48336. return _this;
  48337. }
  48338. HemisphericLight.prototype._buildUniformLayout = function () {
  48339. this._uniformBuffer.addUniform("vLightData", 4);
  48340. this._uniformBuffer.addUniform("vLightDiffuse", 4);
  48341. this._uniformBuffer.addUniform("vLightSpecular", 3);
  48342. this._uniformBuffer.addUniform("vLightGround", 3);
  48343. this._uniformBuffer.addUniform("shadowsInfo", 3);
  48344. this._uniformBuffer.addUniform("depthValues", 2);
  48345. this._uniformBuffer.create();
  48346. };
  48347. /**
  48348. * Returns the string "HemisphericLight".
  48349. * @return The class name
  48350. */
  48351. HemisphericLight.prototype.getClassName = function () {
  48352. return "HemisphericLight";
  48353. };
  48354. /**
  48355. * Sets the HemisphericLight direction towards the passed target (Vector3).
  48356. * Returns the updated direction.
  48357. * @param target The target the direction should point to
  48358. * @return The computed direction
  48359. */
  48360. HemisphericLight.prototype.setDirectionToTarget = function (target) {
  48361. this.direction = BABYLON.Vector3.Normalize(target.subtract(BABYLON.Vector3.Zero()));
  48362. return this.direction;
  48363. };
  48364. /**
  48365. * Returns the shadow generator associated to the light.
  48366. * @returns Always null for hemispheric lights because it does not support shadows.
  48367. */
  48368. HemisphericLight.prototype.getShadowGenerator = function () {
  48369. return null;
  48370. };
  48371. /**
  48372. * Sets the passed Effect object with the HemisphericLight normalized direction and color and the passed name (string).
  48373. * @param effect The effect to update
  48374. * @param lightIndex The index of the light in the effect to update
  48375. * @returns The hemispheric light
  48376. */
  48377. HemisphericLight.prototype.transferToEffect = function (effect, lightIndex) {
  48378. var normalizeDirection = BABYLON.Vector3.Normalize(this.direction);
  48379. this._uniformBuffer.updateFloat4("vLightData", normalizeDirection.x, normalizeDirection.y, normalizeDirection.z, 0.0, lightIndex);
  48380. this._uniformBuffer.updateColor3("vLightGround", this.groundColor.scale(this.intensity), lightIndex);
  48381. return this;
  48382. };
  48383. /**
  48384. * @hidden internal use only.
  48385. */
  48386. HemisphericLight.prototype._getWorldMatrix = function () {
  48387. if (!this._worldMatrix) {
  48388. this._worldMatrix = BABYLON.Matrix.Identity();
  48389. }
  48390. return this._worldMatrix;
  48391. };
  48392. /**
  48393. * Returns the integer 3.
  48394. * @return The light Type id as a constant defines in Light.LIGHTTYPEID_x
  48395. */
  48396. HemisphericLight.prototype.getTypeID = function () {
  48397. return BABYLON.Light.LIGHTTYPEID_HEMISPHERICLIGHT;
  48398. };
  48399. /**
  48400. * Prepares the list of defines specific to the light type.
  48401. * @param defines the list of defines
  48402. * @param lightIndex defines the index of the light for the effect
  48403. */
  48404. HemisphericLight.prototype.prepareLightSpecificDefines = function (defines, lightIndex) {
  48405. defines["HEMILIGHT" + lightIndex] = true;
  48406. };
  48407. __decorate([
  48408. BABYLON.serializeAsColor3()
  48409. ], HemisphericLight.prototype, "groundColor", void 0);
  48410. __decorate([
  48411. BABYLON.serializeAsVector3()
  48412. ], HemisphericLight.prototype, "direction", void 0);
  48413. return HemisphericLight;
  48414. }(BABYLON.Light));
  48415. BABYLON.HemisphericLight = HemisphericLight;
  48416. })(BABYLON || (BABYLON = {}));
  48417. //# sourceMappingURL=babylon.hemisphericLight.js.map
  48418. var BABYLON;
  48419. (function (BABYLON) {
  48420. /**
  48421. * Base implementation IShadowLight
  48422. * It groups all the common behaviour in order to reduce dupplication and better follow the DRY pattern.
  48423. */
  48424. var ShadowLight = /** @class */ (function (_super) {
  48425. __extends(ShadowLight, _super);
  48426. function ShadowLight() {
  48427. var _this = _super !== null && _super.apply(this, arguments) || this;
  48428. _this._needProjectionMatrixCompute = true;
  48429. return _this;
  48430. }
  48431. ShadowLight.prototype._setPosition = function (value) {
  48432. this._position = value;
  48433. };
  48434. Object.defineProperty(ShadowLight.prototype, "position", {
  48435. /**
  48436. * Sets the position the shadow will be casted from. Also use as the light position for both
  48437. * point and spot lights.
  48438. */
  48439. get: function () {
  48440. return this._position;
  48441. },
  48442. /**
  48443. * Sets the position the shadow will be casted from. Also use as the light position for both
  48444. * point and spot lights.
  48445. */
  48446. set: function (value) {
  48447. this._setPosition(value);
  48448. },
  48449. enumerable: true,
  48450. configurable: true
  48451. });
  48452. ShadowLight.prototype._setDirection = function (value) {
  48453. this._direction = value;
  48454. };
  48455. Object.defineProperty(ShadowLight.prototype, "direction", {
  48456. /**
  48457. * In 2d mode (needCube being false), gets the direction used to cast the shadow.
  48458. * Also use as the light direction on spot and directional lights.
  48459. */
  48460. get: function () {
  48461. return this._direction;
  48462. },
  48463. /**
  48464. * In 2d mode (needCube being false), sets the direction used to cast the shadow.
  48465. * Also use as the light direction on spot and directional lights.
  48466. */
  48467. set: function (value) {
  48468. this._setDirection(value);
  48469. },
  48470. enumerable: true,
  48471. configurable: true
  48472. });
  48473. Object.defineProperty(ShadowLight.prototype, "shadowMinZ", {
  48474. /**
  48475. * Gets the shadow projection clipping minimum z value.
  48476. */
  48477. get: function () {
  48478. return this._shadowMinZ;
  48479. },
  48480. /**
  48481. * Sets the shadow projection clipping minimum z value.
  48482. */
  48483. set: function (value) {
  48484. this._shadowMinZ = value;
  48485. this.forceProjectionMatrixCompute();
  48486. },
  48487. enumerable: true,
  48488. configurable: true
  48489. });
  48490. Object.defineProperty(ShadowLight.prototype, "shadowMaxZ", {
  48491. /**
  48492. * Sets the shadow projection clipping maximum z value.
  48493. */
  48494. get: function () {
  48495. return this._shadowMaxZ;
  48496. },
  48497. /**
  48498. * Gets the shadow projection clipping maximum z value.
  48499. */
  48500. set: function (value) {
  48501. this._shadowMaxZ = value;
  48502. this.forceProjectionMatrixCompute();
  48503. },
  48504. enumerable: true,
  48505. configurable: true
  48506. });
  48507. /**
  48508. * Computes the transformed information (transformedPosition and transformedDirection in World space) of the current light
  48509. * @returns true if the information has been computed, false if it does not need to (no parenting)
  48510. */
  48511. ShadowLight.prototype.computeTransformedInformation = function () {
  48512. if (this.parent && this.parent.getWorldMatrix) {
  48513. if (!this.transformedPosition) {
  48514. this.transformedPosition = BABYLON.Vector3.Zero();
  48515. }
  48516. BABYLON.Vector3.TransformCoordinatesToRef(this.position, this.parent.getWorldMatrix(), this.transformedPosition);
  48517. // In case the direction is present.
  48518. if (this.direction) {
  48519. if (!this.transformedDirection) {
  48520. this.transformedDirection = BABYLON.Vector3.Zero();
  48521. }
  48522. BABYLON.Vector3.TransformNormalToRef(this.direction, this.parent.getWorldMatrix(), this.transformedDirection);
  48523. }
  48524. return true;
  48525. }
  48526. return false;
  48527. };
  48528. /**
  48529. * Return the depth scale used for the shadow map.
  48530. * @returns the depth scale.
  48531. */
  48532. ShadowLight.prototype.getDepthScale = function () {
  48533. return 50.0;
  48534. };
  48535. /**
  48536. * Get the direction to use to render the shadow map. In case of cube texture, the face index can be passed.
  48537. * @param faceIndex The index of the face we are computed the direction to generate shadow
  48538. * @returns The set direction in 2d mode otherwise the direction to the cubemap face if needCube() is true
  48539. */
  48540. ShadowLight.prototype.getShadowDirection = function (faceIndex) {
  48541. return this.transformedDirection ? this.transformedDirection : this.direction;
  48542. };
  48543. /**
  48544. * Returns the ShadowLight absolute position in the World.
  48545. * @returns the position vector in world space
  48546. */
  48547. ShadowLight.prototype.getAbsolutePosition = function () {
  48548. return this.transformedPosition ? this.transformedPosition : this.position;
  48549. };
  48550. /**
  48551. * Sets the ShadowLight direction toward the passed target.
  48552. * @param target The point tot target in local space
  48553. * @returns the updated ShadowLight direction
  48554. */
  48555. ShadowLight.prototype.setDirectionToTarget = function (target) {
  48556. this.direction = BABYLON.Vector3.Normalize(target.subtract(this.position));
  48557. return this.direction;
  48558. };
  48559. /**
  48560. * Returns the light rotation in euler definition.
  48561. * @returns the x y z rotation in local space.
  48562. */
  48563. ShadowLight.prototype.getRotation = function () {
  48564. this.direction.normalize();
  48565. var xaxis = BABYLON.Vector3.Cross(this.direction, BABYLON.Axis.Y);
  48566. var yaxis = BABYLON.Vector3.Cross(xaxis, this.direction);
  48567. return BABYLON.Vector3.RotationFromAxis(xaxis, yaxis, this.direction);
  48568. };
  48569. /**
  48570. * Returns whether or not the shadow generation require a cube texture or a 2d texture.
  48571. * @returns true if a cube texture needs to be use
  48572. */
  48573. ShadowLight.prototype.needCube = function () {
  48574. return false;
  48575. };
  48576. /**
  48577. * Detects if the projection matrix requires to be recomputed this frame.
  48578. * @returns true if it requires to be recomputed otherwise, false.
  48579. */
  48580. ShadowLight.prototype.needProjectionMatrixCompute = function () {
  48581. return this._needProjectionMatrixCompute;
  48582. };
  48583. /**
  48584. * Forces the shadow generator to recompute the projection matrix even if position and direction did not changed.
  48585. */
  48586. ShadowLight.prototype.forceProjectionMatrixCompute = function () {
  48587. this._needProjectionMatrixCompute = true;
  48588. };
  48589. /**
  48590. * Get the world matrix of the sahdow lights.
  48591. * @hidden Internal Use Only
  48592. */
  48593. ShadowLight.prototype._getWorldMatrix = function () {
  48594. if (!this._worldMatrix) {
  48595. this._worldMatrix = BABYLON.Matrix.Identity();
  48596. }
  48597. BABYLON.Matrix.TranslationToRef(this.position.x, this.position.y, this.position.z, this._worldMatrix);
  48598. return this._worldMatrix;
  48599. };
  48600. /**
  48601. * Gets the minZ used for shadow according to both the scene and the light.
  48602. * @param activeCamera The camera we are returning the min for
  48603. * @returns the depth min z
  48604. */
  48605. ShadowLight.prototype.getDepthMinZ = function (activeCamera) {
  48606. return this.shadowMinZ !== undefined ? this.shadowMinZ : activeCamera.minZ;
  48607. };
  48608. /**
  48609. * Gets the maxZ used for shadow according to both the scene and the light.
  48610. * @param activeCamera The camera we are returning the max for
  48611. * @returns the depth max z
  48612. */
  48613. ShadowLight.prototype.getDepthMaxZ = function (activeCamera) {
  48614. return this.shadowMaxZ !== undefined ? this.shadowMaxZ : activeCamera.maxZ;
  48615. };
  48616. /**
  48617. * Sets the shadow projection matrix in parameter to the generated projection matrix.
  48618. * @param matrix The materix to updated with the projection information
  48619. * @param viewMatrix The transform matrix of the light
  48620. * @param renderList The list of mesh to render in the map
  48621. * @returns The current light
  48622. */
  48623. ShadowLight.prototype.setShadowProjectionMatrix = function (matrix, viewMatrix, renderList) {
  48624. if (this.customProjectionMatrixBuilder) {
  48625. this.customProjectionMatrixBuilder(viewMatrix, renderList, matrix);
  48626. }
  48627. else {
  48628. this._setDefaultShadowProjectionMatrix(matrix, viewMatrix, renderList);
  48629. }
  48630. return this;
  48631. };
  48632. __decorate([
  48633. BABYLON.serializeAsVector3()
  48634. ], ShadowLight.prototype, "position", null);
  48635. __decorate([
  48636. BABYLON.serializeAsVector3()
  48637. ], ShadowLight.prototype, "direction", null);
  48638. __decorate([
  48639. BABYLON.serialize()
  48640. ], ShadowLight.prototype, "shadowMinZ", null);
  48641. __decorate([
  48642. BABYLON.serialize()
  48643. ], ShadowLight.prototype, "shadowMaxZ", null);
  48644. return ShadowLight;
  48645. }(BABYLON.Light));
  48646. BABYLON.ShadowLight = ShadowLight;
  48647. })(BABYLON || (BABYLON = {}));
  48648. //# sourceMappingURL=babylon.shadowLight.js.map
  48649. var BABYLON;
  48650. (function (BABYLON) {
  48651. BABYLON.Node.AddNodeConstructor("Light_Type_0", function (name, scene) {
  48652. return function () { return new PointLight(name, BABYLON.Vector3.Zero(), scene); };
  48653. });
  48654. /**
  48655. * A point light is a light defined by an unique point in world space.
  48656. * The light is emitted in every direction from this point.
  48657. * A good example of a point light is a standard light bulb.
  48658. * Documentation: https://doc.babylonjs.com/babylon101/lights
  48659. */
  48660. var PointLight = /** @class */ (function (_super) {
  48661. __extends(PointLight, _super);
  48662. /**
  48663. * Creates a PointLight object from the passed name and position (Vector3) and adds it in the scene.
  48664. * A PointLight emits the light in every direction.
  48665. * It can cast shadows.
  48666. * If the scene camera is already defined and you want to set your PointLight at the camera position, just set it :
  48667. * ```javascript
  48668. * var pointLight = new BABYLON.PointLight("pl", camera.position, scene);
  48669. * ```
  48670. * Documentation : http://doc.babylonjs.com/tutorials/lights
  48671. * @param name The light friendly name
  48672. * @param position The position of the point light in the scene
  48673. * @param scene The scene the lights belongs to
  48674. */
  48675. function PointLight(name, position, scene) {
  48676. var _this = _super.call(this, name, scene) || this;
  48677. _this._shadowAngle = Math.PI / 2;
  48678. _this.position = position;
  48679. return _this;
  48680. }
  48681. Object.defineProperty(PointLight.prototype, "shadowAngle", {
  48682. /**
  48683. * Getter: In case of direction provided, the shadow will not use a cube texture but simulate a spot shadow as a fallback
  48684. * This specifies what angle the shadow will use to be created.
  48685. *
  48686. * It default to 90 degrees to work nicely with the cube texture generation for point lights shadow maps.
  48687. */
  48688. get: function () {
  48689. return this._shadowAngle;
  48690. },
  48691. /**
  48692. * Setter: In case of direction provided, the shadow will not use a cube texture but simulate a spot shadow as a fallback
  48693. * This specifies what angle the shadow will use to be created.
  48694. *
  48695. * It default to 90 degrees to work nicely with the cube texture generation for point lights shadow maps.
  48696. */
  48697. set: function (value) {
  48698. this._shadowAngle = value;
  48699. this.forceProjectionMatrixCompute();
  48700. },
  48701. enumerable: true,
  48702. configurable: true
  48703. });
  48704. Object.defineProperty(PointLight.prototype, "direction", {
  48705. /**
  48706. * Gets the direction if it has been set.
  48707. * In case of direction provided, the shadow will not use a cube texture but simulate a spot shadow as a fallback
  48708. */
  48709. get: function () {
  48710. return this._direction;
  48711. },
  48712. /**
  48713. * In case of direction provided, the shadow will not use a cube texture but simulate a spot shadow as a fallback
  48714. */
  48715. set: function (value) {
  48716. var previousNeedCube = this.needCube();
  48717. this._direction = value;
  48718. if (this.needCube() !== previousNeedCube && this._shadowGenerator) {
  48719. this._shadowGenerator.recreateShadowMap();
  48720. }
  48721. },
  48722. enumerable: true,
  48723. configurable: true
  48724. });
  48725. /**
  48726. * Returns the string "PointLight"
  48727. * @returns the class name
  48728. */
  48729. PointLight.prototype.getClassName = function () {
  48730. return "PointLight";
  48731. };
  48732. /**
  48733. * Returns the integer 0.
  48734. * @returns The light Type id as a constant defines in Light.LIGHTTYPEID_x
  48735. */
  48736. PointLight.prototype.getTypeID = function () {
  48737. return BABYLON.Light.LIGHTTYPEID_POINTLIGHT;
  48738. };
  48739. /**
  48740. * Specifies wether or not the shadowmap should be a cube texture.
  48741. * @returns true if the shadowmap needs to be a cube texture.
  48742. */
  48743. PointLight.prototype.needCube = function () {
  48744. return !this.direction;
  48745. };
  48746. /**
  48747. * Returns a new Vector3 aligned with the PointLight cube system according to the passed cube face index (integer).
  48748. * @param faceIndex The index of the face we are computed the direction to generate shadow
  48749. * @returns The set direction in 2d mode otherwise the direction to the cubemap face if needCube() is true
  48750. */
  48751. PointLight.prototype.getShadowDirection = function (faceIndex) {
  48752. if (this.direction) {
  48753. return _super.prototype.getShadowDirection.call(this, faceIndex);
  48754. }
  48755. else {
  48756. switch (faceIndex) {
  48757. case 0:
  48758. return new BABYLON.Vector3(1.0, 0.0, 0.0);
  48759. case 1:
  48760. return new BABYLON.Vector3(-1.0, 0.0, 0.0);
  48761. case 2:
  48762. return new BABYLON.Vector3(0.0, -1.0, 0.0);
  48763. case 3:
  48764. return new BABYLON.Vector3(0.0, 1.0, 0.0);
  48765. case 4:
  48766. return new BABYLON.Vector3(0.0, 0.0, 1.0);
  48767. case 5:
  48768. return new BABYLON.Vector3(0.0, 0.0, -1.0);
  48769. }
  48770. }
  48771. return BABYLON.Vector3.Zero();
  48772. };
  48773. /**
  48774. * Sets the passed matrix "matrix" as a left-handed perspective projection matrix with the following settings :
  48775. * - fov = PI / 2
  48776. * - aspect ratio : 1.0
  48777. * - z-near and far equal to the active camera minZ and maxZ.
  48778. * Returns the PointLight.
  48779. */
  48780. PointLight.prototype._setDefaultShadowProjectionMatrix = function (matrix, viewMatrix, renderList) {
  48781. var activeCamera = this.getScene().activeCamera;
  48782. if (!activeCamera) {
  48783. return;
  48784. }
  48785. BABYLON.Matrix.PerspectiveFovLHToRef(this.shadowAngle, 1.0, this.getDepthMinZ(activeCamera), this.getDepthMaxZ(activeCamera), matrix);
  48786. };
  48787. PointLight.prototype._buildUniformLayout = function () {
  48788. this._uniformBuffer.addUniform("vLightData", 4);
  48789. this._uniformBuffer.addUniform("vLightDiffuse", 4);
  48790. this._uniformBuffer.addUniform("vLightSpecular", 3);
  48791. this._uniformBuffer.addUniform("vLightFalloff", 4);
  48792. this._uniformBuffer.addUniform("shadowsInfo", 3);
  48793. this._uniformBuffer.addUniform("depthValues", 2);
  48794. this._uniformBuffer.create();
  48795. };
  48796. /**
  48797. * Sets the passed Effect "effect" with the PointLight transformed position (or position, if none) and passed name (string).
  48798. * @param effect The effect to update
  48799. * @param lightIndex The index of the light in the effect to update
  48800. * @returns The point light
  48801. */
  48802. PointLight.prototype.transferToEffect = function (effect, lightIndex) {
  48803. if (this.computeTransformedInformation()) {
  48804. this._uniformBuffer.updateFloat4("vLightData", this.transformedPosition.x, this.transformedPosition.y, this.transformedPosition.z, 0.0, lightIndex);
  48805. }
  48806. else {
  48807. this._uniformBuffer.updateFloat4("vLightData", this.position.x, this.position.y, this.position.z, 0, lightIndex);
  48808. }
  48809. this._uniformBuffer.updateFloat4("vLightFalloff", this.range, this._inverseSquaredRange, 0, 0, lightIndex);
  48810. return this;
  48811. };
  48812. /**
  48813. * Prepares the list of defines specific to the light type.
  48814. * @param defines the list of defines
  48815. * @param lightIndex defines the index of the light for the effect
  48816. */
  48817. PointLight.prototype.prepareLightSpecificDefines = function (defines, lightIndex) {
  48818. defines["POINTLIGHT" + lightIndex] = true;
  48819. };
  48820. __decorate([
  48821. BABYLON.serialize()
  48822. ], PointLight.prototype, "shadowAngle", null);
  48823. return PointLight;
  48824. }(BABYLON.ShadowLight));
  48825. BABYLON.PointLight = PointLight;
  48826. })(BABYLON || (BABYLON = {}));
  48827. //# sourceMappingURL=babylon.pointLight.js.map
  48828. var BABYLON;
  48829. (function (BABYLON) {
  48830. BABYLON.Node.AddNodeConstructor("Light_Type_1", function (name, scene) {
  48831. return function () { return new DirectionalLight(name, BABYLON.Vector3.Zero(), scene); };
  48832. });
  48833. /**
  48834. * A directional light is defined by a direction (what a surprise!).
  48835. * The light is emitted from everywhere in the specified direction, and has an infinite range.
  48836. * An example of a directional light is when a distance planet is lit by the apparently parallel lines of light from its sun. Light in a downward direction will light the top of an object.
  48837. * Documentation: https://doc.babylonjs.com/babylon101/lights
  48838. */
  48839. var DirectionalLight = /** @class */ (function (_super) {
  48840. __extends(DirectionalLight, _super);
  48841. /**
  48842. * Creates a DirectionalLight object in the scene, oriented towards the passed direction (Vector3).
  48843. * The directional light is emitted from everywhere in the given direction.
  48844. * It can cast shawdows.
  48845. * Documentation : http://doc.babylonjs.com/tutorials/lights
  48846. * @param name The friendly name of the light
  48847. * @param direction The direction of the light
  48848. * @param scene The scene the light belongs to
  48849. */
  48850. function DirectionalLight(name, direction, scene) {
  48851. var _this = _super.call(this, name, scene) || this;
  48852. _this._shadowFrustumSize = 0;
  48853. _this._shadowOrthoScale = 0.1;
  48854. /**
  48855. * Automatically compute the projection matrix to best fit (including all the casters)
  48856. * on each frame.
  48857. */
  48858. _this.autoUpdateExtends = true;
  48859. // Cache
  48860. _this._orthoLeft = Number.MAX_VALUE;
  48861. _this._orthoRight = Number.MIN_VALUE;
  48862. _this._orthoTop = Number.MIN_VALUE;
  48863. _this._orthoBottom = Number.MAX_VALUE;
  48864. _this.position = direction.scale(-1.0);
  48865. _this.direction = direction;
  48866. return _this;
  48867. }
  48868. Object.defineProperty(DirectionalLight.prototype, "shadowFrustumSize", {
  48869. /**
  48870. * Fix frustum size for the shadow generation. This is disabled if the value is 0.
  48871. */
  48872. get: function () {
  48873. return this._shadowFrustumSize;
  48874. },
  48875. /**
  48876. * Specifies a fix frustum size for the shadow generation.
  48877. */
  48878. set: function (value) {
  48879. this._shadowFrustumSize = value;
  48880. this.forceProjectionMatrixCompute();
  48881. },
  48882. enumerable: true,
  48883. configurable: true
  48884. });
  48885. Object.defineProperty(DirectionalLight.prototype, "shadowOrthoScale", {
  48886. /**
  48887. * Gets the shadow projection scale against the optimal computed one.
  48888. * 0.1 by default which means that the projection window is increase by 10% from the optimal size.
  48889. * This does not impact in fixed frustum size (shadowFrustumSize being set)
  48890. */
  48891. get: function () {
  48892. return this._shadowOrthoScale;
  48893. },
  48894. /**
  48895. * Sets the shadow projection scale against the optimal computed one.
  48896. * 0.1 by default which means that the projection window is increase by 10% from the optimal size.
  48897. * This does not impact in fixed frustum size (shadowFrustumSize being set)
  48898. */
  48899. set: function (value) {
  48900. this._shadowOrthoScale = value;
  48901. this.forceProjectionMatrixCompute();
  48902. },
  48903. enumerable: true,
  48904. configurable: true
  48905. });
  48906. /**
  48907. * Returns the string "DirectionalLight".
  48908. * @return The class name
  48909. */
  48910. DirectionalLight.prototype.getClassName = function () {
  48911. return "DirectionalLight";
  48912. };
  48913. /**
  48914. * Returns the integer 1.
  48915. * @return The light Type id as a constant defines in Light.LIGHTTYPEID_x
  48916. */
  48917. DirectionalLight.prototype.getTypeID = function () {
  48918. return BABYLON.Light.LIGHTTYPEID_DIRECTIONALLIGHT;
  48919. };
  48920. /**
  48921. * Sets the passed matrix "matrix" as projection matrix for the shadows cast by the light according to the passed view matrix.
  48922. * Returns the DirectionalLight Shadow projection matrix.
  48923. */
  48924. DirectionalLight.prototype._setDefaultShadowProjectionMatrix = function (matrix, viewMatrix, renderList) {
  48925. if (this.shadowFrustumSize > 0) {
  48926. this._setDefaultFixedFrustumShadowProjectionMatrix(matrix, viewMatrix);
  48927. }
  48928. else {
  48929. this._setDefaultAutoExtendShadowProjectionMatrix(matrix, viewMatrix, renderList);
  48930. }
  48931. };
  48932. /**
  48933. * Sets the passed matrix "matrix" as fixed frustum projection matrix for the shadows cast by the light according to the passed view matrix.
  48934. * Returns the DirectionalLight Shadow projection matrix.
  48935. */
  48936. DirectionalLight.prototype._setDefaultFixedFrustumShadowProjectionMatrix = function (matrix, viewMatrix) {
  48937. var activeCamera = this.getScene().activeCamera;
  48938. if (!activeCamera) {
  48939. return;
  48940. }
  48941. BABYLON.Matrix.OrthoLHToRef(this.shadowFrustumSize, this.shadowFrustumSize, this.shadowMinZ !== undefined ? this.shadowMinZ : activeCamera.minZ, this.shadowMaxZ !== undefined ? this.shadowMaxZ : activeCamera.maxZ, matrix);
  48942. };
  48943. /**
  48944. * Sets the passed matrix "matrix" as auto extend projection matrix for the shadows cast by the light according to the passed view matrix.
  48945. * Returns the DirectionalLight Shadow projection matrix.
  48946. */
  48947. DirectionalLight.prototype._setDefaultAutoExtendShadowProjectionMatrix = function (matrix, viewMatrix, renderList) {
  48948. var activeCamera = this.getScene().activeCamera;
  48949. if (!activeCamera) {
  48950. return;
  48951. }
  48952. // Check extends
  48953. if (this.autoUpdateExtends || this._orthoLeft === Number.MAX_VALUE) {
  48954. var tempVector3 = BABYLON.Vector3.Zero();
  48955. this._orthoLeft = Number.MAX_VALUE;
  48956. this._orthoRight = Number.MIN_VALUE;
  48957. this._orthoTop = Number.MIN_VALUE;
  48958. this._orthoBottom = Number.MAX_VALUE;
  48959. for (var meshIndex = 0; meshIndex < renderList.length; meshIndex++) {
  48960. var mesh = renderList[meshIndex];
  48961. if (!mesh) {
  48962. continue;
  48963. }
  48964. var boundingInfo = mesh.getBoundingInfo();
  48965. var boundingBox = boundingInfo.boundingBox;
  48966. for (var index = 0; index < boundingBox.vectorsWorld.length; index++) {
  48967. BABYLON.Vector3.TransformCoordinatesToRef(boundingBox.vectorsWorld[index], viewMatrix, tempVector3);
  48968. if (tempVector3.x < this._orthoLeft)
  48969. this._orthoLeft = tempVector3.x;
  48970. if (tempVector3.y < this._orthoBottom)
  48971. this._orthoBottom = tempVector3.y;
  48972. if (tempVector3.x > this._orthoRight)
  48973. this._orthoRight = tempVector3.x;
  48974. if (tempVector3.y > this._orthoTop)
  48975. this._orthoTop = tempVector3.y;
  48976. }
  48977. }
  48978. }
  48979. var xOffset = this._orthoRight - this._orthoLeft;
  48980. var yOffset = this._orthoTop - this._orthoBottom;
  48981. BABYLON.Matrix.OrthoOffCenterLHToRef(this._orthoLeft - xOffset * this.shadowOrthoScale, this._orthoRight + xOffset * this.shadowOrthoScale, this._orthoBottom - yOffset * this.shadowOrthoScale, this._orthoTop + yOffset * this.shadowOrthoScale, this.shadowMinZ !== undefined ? this.shadowMinZ : activeCamera.minZ, this.shadowMaxZ !== undefined ? this.shadowMaxZ : activeCamera.maxZ, matrix);
  48982. };
  48983. DirectionalLight.prototype._buildUniformLayout = function () {
  48984. this._uniformBuffer.addUniform("vLightData", 4);
  48985. this._uniformBuffer.addUniform("vLightDiffuse", 4);
  48986. this._uniformBuffer.addUniform("vLightSpecular", 3);
  48987. this._uniformBuffer.addUniform("shadowsInfo", 3);
  48988. this._uniformBuffer.addUniform("depthValues", 2);
  48989. this._uniformBuffer.create();
  48990. };
  48991. /**
  48992. * Sets the passed Effect object with the DirectionalLight transformed position (or position if not parented) and the passed name.
  48993. * @param effect The effect to update
  48994. * @param lightIndex The index of the light in the effect to update
  48995. * @returns The directional light
  48996. */
  48997. DirectionalLight.prototype.transferToEffect = function (effect, lightIndex) {
  48998. if (this.computeTransformedInformation()) {
  48999. this._uniformBuffer.updateFloat4("vLightData", this.transformedDirection.x, this.transformedDirection.y, this.transformedDirection.z, 1, lightIndex);
  49000. return this;
  49001. }
  49002. this._uniformBuffer.updateFloat4("vLightData", this.direction.x, this.direction.y, this.direction.z, 1, lightIndex);
  49003. return this;
  49004. };
  49005. /**
  49006. * Gets the minZ used for shadow according to both the scene and the light.
  49007. *
  49008. * Values are fixed on directional lights as it relies on an ortho projection hence the need to convert being
  49009. * -1 and 1 to 0 and 1 doing (depth + min) / (min + max) -> (depth + 1) / (1 + 1) -> (depth * 0.5) + 0.5.
  49010. * @param activeCamera The camera we are returning the min for
  49011. * @returns the depth min z
  49012. */
  49013. DirectionalLight.prototype.getDepthMinZ = function (activeCamera) {
  49014. return 1;
  49015. };
  49016. /**
  49017. * Gets the maxZ used for shadow according to both the scene and the light.
  49018. *
  49019. * Values are fixed on directional lights as it relies on an ortho projection hence the need to convert being
  49020. * -1 and 1 to 0 and 1 doing (depth + min) / (min + max) -> (depth + 1) / (1 + 1) -> (depth * 0.5) + 0.5.
  49021. * @param activeCamera The camera we are returning the max for
  49022. * @returns the depth max z
  49023. */
  49024. DirectionalLight.prototype.getDepthMaxZ = function (activeCamera) {
  49025. return 1;
  49026. };
  49027. /**
  49028. * Prepares the list of defines specific to the light type.
  49029. * @param defines the list of defines
  49030. * @param lightIndex defines the index of the light for the effect
  49031. */
  49032. DirectionalLight.prototype.prepareLightSpecificDefines = function (defines, lightIndex) {
  49033. defines["DIRLIGHT" + lightIndex] = true;
  49034. };
  49035. __decorate([
  49036. BABYLON.serialize()
  49037. ], DirectionalLight.prototype, "shadowFrustumSize", null);
  49038. __decorate([
  49039. BABYLON.serialize()
  49040. ], DirectionalLight.prototype, "shadowOrthoScale", null);
  49041. __decorate([
  49042. BABYLON.serialize()
  49043. ], DirectionalLight.prototype, "autoUpdateExtends", void 0);
  49044. return DirectionalLight;
  49045. }(BABYLON.ShadowLight));
  49046. BABYLON.DirectionalLight = DirectionalLight;
  49047. })(BABYLON || (BABYLON = {}));
  49048. //# sourceMappingURL=babylon.directionalLight.js.map
  49049. var BABYLON;
  49050. (function (BABYLON) {
  49051. BABYLON.Node.AddNodeConstructor("Light_Type_2", function (name, scene) {
  49052. return function () { return new SpotLight(name, BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), 0, 0, scene); };
  49053. });
  49054. /**
  49055. * A spot light is defined by a position, a direction, an angle, and an exponent.
  49056. * These values define a cone of light starting from the position, emitting toward the direction.
  49057. * The angle, in radians, defines the size (field of illumination) of the spotlight's conical beam,
  49058. * and the exponent defines the speed of the decay of the light with distance (reach).
  49059. * Documentation: https://doc.babylonjs.com/babylon101/lights
  49060. */
  49061. var SpotLight = /** @class */ (function (_super) {
  49062. __extends(SpotLight, _super);
  49063. /**
  49064. * Creates a SpotLight object in the scene. A spot light is a simply light oriented cone.
  49065. * It can cast shadows.
  49066. * Documentation : http://doc.babylonjs.com/tutorials/lights
  49067. * @param name The light friendly name
  49068. * @param position The position of the spot light in the scene
  49069. * @param direction The direction of the light in the scene
  49070. * @param angle The cone angle of the light in Radians
  49071. * @param exponent The light decay speed with the distance from the emission spot
  49072. * @param scene The scene the lights belongs to
  49073. */
  49074. function SpotLight(name, position, direction, angle, exponent, scene) {
  49075. var _this = _super.call(this, name, scene) || this;
  49076. _this._innerAngle = 0;
  49077. _this._projectionTextureMatrix = BABYLON.Matrix.Zero();
  49078. _this._projectionTextureLightNear = 1e-6;
  49079. _this._projectionTextureLightFar = 1000.0;
  49080. _this._projectionTextureUpDirection = BABYLON.Vector3.Up();
  49081. _this._projectionTextureViewLightDirty = true;
  49082. _this._projectionTextureProjectionLightDirty = true;
  49083. _this._projectionTextureDirty = true;
  49084. _this._projectionTextureViewTargetVector = BABYLON.Vector3.Zero();
  49085. _this._projectionTextureViewLightMatrix = BABYLON.Matrix.Zero();
  49086. _this._projectionTextureProjectionLightMatrix = BABYLON.Matrix.Zero();
  49087. _this._projectionTextureScalingMatrix = BABYLON.Matrix.FromValues(0.5, 0.0, 0.0, 0.0, 0.0, 0.5, 0.0, 0.0, 0.0, 0.0, 0.5, 0.0, 0.5, 0.5, 0.5, 1.0);
  49088. _this.position = position;
  49089. _this.direction = direction;
  49090. _this.angle = angle;
  49091. _this.exponent = exponent;
  49092. return _this;
  49093. }
  49094. Object.defineProperty(SpotLight.prototype, "angle", {
  49095. /**
  49096. * Gets the cone angle of the spot light in Radians.
  49097. */
  49098. get: function () {
  49099. return this._angle;
  49100. },
  49101. /**
  49102. * Sets the cone angle of the spot light in Radians.
  49103. */
  49104. set: function (value) {
  49105. this._angle = value;
  49106. this._cosHalfAngle = Math.cos(value * 0.5);
  49107. this._projectionTextureProjectionLightDirty = true;
  49108. this.forceProjectionMatrixCompute();
  49109. this._computeAngleValues();
  49110. },
  49111. enumerable: true,
  49112. configurable: true
  49113. });
  49114. Object.defineProperty(SpotLight.prototype, "innerAngle", {
  49115. /**
  49116. * Only used in gltf falloff mode, this defines the angle where
  49117. * the directional falloff will start before cutting at angle which could be seen
  49118. * as outer angle.
  49119. */
  49120. get: function () {
  49121. return this._angle;
  49122. },
  49123. /**
  49124. * Only used in gltf falloff mode, this defines the angle where
  49125. * the directional falloff will start before cutting at angle which could be seen
  49126. * as outer angle.
  49127. */
  49128. set: function (value) {
  49129. this._innerAngle = value;
  49130. this._computeAngleValues();
  49131. },
  49132. enumerable: true,
  49133. configurable: true
  49134. });
  49135. Object.defineProperty(SpotLight.prototype, "shadowAngleScale", {
  49136. /**
  49137. * Allows scaling the angle of the light for shadow generation only.
  49138. */
  49139. get: function () {
  49140. return this._shadowAngleScale;
  49141. },
  49142. /**
  49143. * Allows scaling the angle of the light for shadow generation only.
  49144. */
  49145. set: function (value) {
  49146. this._shadowAngleScale = value;
  49147. this.forceProjectionMatrixCompute();
  49148. },
  49149. enumerable: true,
  49150. configurable: true
  49151. });
  49152. Object.defineProperty(SpotLight.prototype, "projectionTextureMatrix", {
  49153. /**
  49154. * Allows reading the projecton texture
  49155. */
  49156. get: function () {
  49157. return this._projectionTextureMatrix;
  49158. },
  49159. enumerable: true,
  49160. configurable: true
  49161. });
  49162. Object.defineProperty(SpotLight.prototype, "projectionTextureLightNear", {
  49163. /**
  49164. * Gets the near clip of the Spotlight for texture projection.
  49165. */
  49166. get: function () {
  49167. return this._projectionTextureLightNear;
  49168. },
  49169. /**
  49170. * Sets the near clip of the Spotlight for texture projection.
  49171. */
  49172. set: function (value) {
  49173. this._projectionTextureLightNear = value;
  49174. this._projectionTextureProjectionLightDirty = true;
  49175. },
  49176. enumerable: true,
  49177. configurable: true
  49178. });
  49179. Object.defineProperty(SpotLight.prototype, "projectionTextureLightFar", {
  49180. /**
  49181. * Gets the far clip of the Spotlight for texture projection.
  49182. */
  49183. get: function () {
  49184. return this._projectionTextureLightFar;
  49185. },
  49186. /**
  49187. * Sets the far clip of the Spotlight for texture projection.
  49188. */
  49189. set: function (value) {
  49190. this._projectionTextureLightFar = value;
  49191. this._projectionTextureProjectionLightDirty = true;
  49192. },
  49193. enumerable: true,
  49194. configurable: true
  49195. });
  49196. Object.defineProperty(SpotLight.prototype, "projectionTextureUpDirection", {
  49197. /**
  49198. * Gets the Up vector of the Spotlight for texture projection.
  49199. */
  49200. get: function () {
  49201. return this._projectionTextureUpDirection;
  49202. },
  49203. /**
  49204. * Sets the Up vector of the Spotlight for texture projection.
  49205. */
  49206. set: function (value) {
  49207. this._projectionTextureUpDirection = value;
  49208. this._projectionTextureProjectionLightDirty = true;
  49209. },
  49210. enumerable: true,
  49211. configurable: true
  49212. });
  49213. Object.defineProperty(SpotLight.prototype, "projectionTexture", {
  49214. /**
  49215. * Gets the projection texture of the light.
  49216. */
  49217. get: function () {
  49218. return this._projectionTexture;
  49219. },
  49220. /**
  49221. * Sets the projection texture of the light.
  49222. */
  49223. set: function (value) {
  49224. this._projectionTexture = value;
  49225. this._projectionTextureDirty = true;
  49226. },
  49227. enumerable: true,
  49228. configurable: true
  49229. });
  49230. /**
  49231. * Returns the string "SpotLight".
  49232. * @returns the class name
  49233. */
  49234. SpotLight.prototype.getClassName = function () {
  49235. return "SpotLight";
  49236. };
  49237. /**
  49238. * Returns the integer 2.
  49239. * @returns The light Type id as a constant defines in Light.LIGHTTYPEID_x
  49240. */
  49241. SpotLight.prototype.getTypeID = function () {
  49242. return BABYLON.Light.LIGHTTYPEID_SPOTLIGHT;
  49243. };
  49244. /**
  49245. * Overrides the direction setter to recompute the projection texture view light Matrix.
  49246. */
  49247. SpotLight.prototype._setDirection = function (value) {
  49248. _super.prototype._setDirection.call(this, value);
  49249. this._projectionTextureViewLightDirty = true;
  49250. };
  49251. /**
  49252. * Overrides the position setter to recompute the projection texture view light Matrix.
  49253. */
  49254. SpotLight.prototype._setPosition = function (value) {
  49255. _super.prototype._setPosition.call(this, value);
  49256. this._projectionTextureViewLightDirty = true;
  49257. };
  49258. /**
  49259. * Sets the passed matrix "matrix" as perspective projection matrix for the shadows and the passed view matrix with the fov equal to the SpotLight angle and and aspect ratio of 1.0.
  49260. * Returns the SpotLight.
  49261. */
  49262. SpotLight.prototype._setDefaultShadowProjectionMatrix = function (matrix, viewMatrix, renderList) {
  49263. var activeCamera = this.getScene().activeCamera;
  49264. if (!activeCamera) {
  49265. return;
  49266. }
  49267. this._shadowAngleScale = this._shadowAngleScale || 1;
  49268. var angle = this._shadowAngleScale * this._angle;
  49269. BABYLON.Matrix.PerspectiveFovLHToRef(angle, 1.0, this.getDepthMinZ(activeCamera), this.getDepthMaxZ(activeCamera), matrix);
  49270. };
  49271. SpotLight.prototype._computeProjectionTextureViewLightMatrix = function () {
  49272. this._projectionTextureViewLightDirty = false;
  49273. this._projectionTextureDirty = true;
  49274. this.position.addToRef(this.direction, this._projectionTextureViewTargetVector);
  49275. BABYLON.Matrix.LookAtLHToRef(this.position, this._projectionTextureViewTargetVector, this._projectionTextureUpDirection, this._projectionTextureViewLightMatrix);
  49276. };
  49277. SpotLight.prototype._computeProjectionTextureProjectionLightMatrix = function () {
  49278. this._projectionTextureProjectionLightDirty = false;
  49279. this._projectionTextureDirty = true;
  49280. var light_far = this.projectionTextureLightFar;
  49281. var light_near = this.projectionTextureLightNear;
  49282. var P = light_far / (light_far - light_near);
  49283. var Q = -P * light_near;
  49284. var S = 1.0 / Math.tan(this._angle / 2.0);
  49285. var A = 1.0;
  49286. BABYLON.Matrix.FromValuesToRef(S / A, 0.0, 0.0, 0.0, 0.0, S, 0.0, 0.0, 0.0, 0.0, P, 1.0, 0.0, 0.0, Q, 0.0, this._projectionTextureProjectionLightMatrix);
  49287. };
  49288. /**
  49289. * Main function for light texture projection matrix computing.
  49290. */
  49291. SpotLight.prototype._computeProjectionTextureMatrix = function () {
  49292. this._projectionTextureDirty = false;
  49293. this._projectionTextureViewLightMatrix.multiplyToRef(this._projectionTextureProjectionLightMatrix, this._projectionTextureMatrix);
  49294. this._projectionTextureMatrix.multiplyToRef(this._projectionTextureScalingMatrix, this._projectionTextureMatrix);
  49295. };
  49296. SpotLight.prototype._buildUniformLayout = function () {
  49297. this._uniformBuffer.addUniform("vLightData", 4);
  49298. this._uniformBuffer.addUniform("vLightDiffuse", 4);
  49299. this._uniformBuffer.addUniform("vLightSpecular", 3);
  49300. this._uniformBuffer.addUniform("vLightDirection", 3);
  49301. this._uniformBuffer.addUniform("vLightFalloff", 4);
  49302. this._uniformBuffer.addUniform("shadowsInfo", 3);
  49303. this._uniformBuffer.addUniform("depthValues", 2);
  49304. this._uniformBuffer.create();
  49305. };
  49306. SpotLight.prototype._computeAngleValues = function () {
  49307. this._lightAngleScale = 1.0 / Math.max(0.001, (Math.cos(this._innerAngle * 0.5) - this._cosHalfAngle));
  49308. this._lightAngleOffset = -this._cosHalfAngle * this._lightAngleScale;
  49309. };
  49310. /**
  49311. * Sets the passed Effect object with the SpotLight transfomed position (or position if not parented) and normalized direction.
  49312. * @param effect The effect to update
  49313. * @param lightIndex The index of the light in the effect to update
  49314. * @returns The spot light
  49315. */
  49316. SpotLight.prototype.transferToEffect = function (effect, lightIndex) {
  49317. var normalizeDirection;
  49318. if (this.computeTransformedInformation()) {
  49319. this._uniformBuffer.updateFloat4("vLightData", this.transformedPosition.x, this.transformedPosition.y, this.transformedPosition.z, this.exponent, lightIndex);
  49320. normalizeDirection = BABYLON.Vector3.Normalize(this.transformedDirection);
  49321. }
  49322. else {
  49323. this._uniformBuffer.updateFloat4("vLightData", this.position.x, this.position.y, this.position.z, this.exponent, lightIndex);
  49324. normalizeDirection = BABYLON.Vector3.Normalize(this.direction);
  49325. }
  49326. this._uniformBuffer.updateFloat4("vLightDirection", normalizeDirection.x, normalizeDirection.y, normalizeDirection.z, this._cosHalfAngle, lightIndex);
  49327. this._uniformBuffer.updateFloat4("vLightFalloff", this.range, this._inverseSquaredRange, this._lightAngleScale, this._lightAngleOffset, lightIndex);
  49328. if (this.projectionTexture && this.projectionTexture.isReady()) {
  49329. if (this._projectionTextureViewLightDirty) {
  49330. this._computeProjectionTextureViewLightMatrix();
  49331. }
  49332. if (this._projectionTextureProjectionLightDirty) {
  49333. this._computeProjectionTextureProjectionLightMatrix();
  49334. }
  49335. if (this._projectionTextureDirty) {
  49336. this._computeProjectionTextureMatrix();
  49337. }
  49338. effect.setMatrix("textureProjectionMatrix" + lightIndex, this._projectionTextureMatrix);
  49339. effect.setTexture("projectionLightSampler" + lightIndex, this.projectionTexture);
  49340. }
  49341. return this;
  49342. };
  49343. /**
  49344. * Disposes the light and the associated resources.
  49345. */
  49346. SpotLight.prototype.dispose = function () {
  49347. _super.prototype.dispose.call(this);
  49348. if (this._projectionTexture) {
  49349. this._projectionTexture.dispose();
  49350. }
  49351. };
  49352. /**
  49353. * Prepares the list of defines specific to the light type.
  49354. * @param defines the list of defines
  49355. * @param lightIndex defines the index of the light for the effect
  49356. */
  49357. SpotLight.prototype.prepareLightSpecificDefines = function (defines, lightIndex) {
  49358. defines["SPOTLIGHT" + lightIndex] = true;
  49359. defines["PROJECTEDLIGHTTEXTURE" + lightIndex] = this.projectionTexture ? true : false;
  49360. };
  49361. __decorate([
  49362. BABYLON.serialize()
  49363. ], SpotLight.prototype, "angle", null);
  49364. __decorate([
  49365. BABYLON.serialize()
  49366. ], SpotLight.prototype, "innerAngle", null);
  49367. __decorate([
  49368. BABYLON.serialize()
  49369. ], SpotLight.prototype, "shadowAngleScale", null);
  49370. __decorate([
  49371. BABYLON.serialize()
  49372. ], SpotLight.prototype, "exponent", void 0);
  49373. __decorate([
  49374. BABYLON.serialize()
  49375. ], SpotLight.prototype, "projectionTextureLightNear", null);
  49376. __decorate([
  49377. BABYLON.serialize()
  49378. ], SpotLight.prototype, "projectionTextureLightFar", null);
  49379. __decorate([
  49380. BABYLON.serialize()
  49381. ], SpotLight.prototype, "projectionTextureUpDirection", null);
  49382. __decorate([
  49383. BABYLON.serializeAsTexture("projectedLightTexture")
  49384. ], SpotLight.prototype, "_projectionTexture", void 0);
  49385. return SpotLight;
  49386. }(BABYLON.ShadowLight));
  49387. BABYLON.SpotLight = SpotLight;
  49388. })(BABYLON || (BABYLON = {}));
  49389. //# sourceMappingURL=babylon.spotLight.js.map
  49390. var BABYLON;
  49391. (function (BABYLON) {
  49392. /**
  49393. * Class used to override all child animations of a given target
  49394. */
  49395. var AnimationPropertiesOverride = /** @class */ (function () {
  49396. function AnimationPropertiesOverride() {
  49397. /**
  49398. * Gets or sets a value indicating if animation blending must be used
  49399. */
  49400. this.enableBlending = false;
  49401. /**
  49402. * Gets or sets the blending speed to use when enableBlending is true
  49403. */
  49404. this.blendingSpeed = 0.01;
  49405. /**
  49406. * Gets or sets the default loop mode to use
  49407. */
  49408. this.loopMode = BABYLON.Animation.ANIMATIONLOOPMODE_CYCLE;
  49409. }
  49410. return AnimationPropertiesOverride;
  49411. }());
  49412. BABYLON.AnimationPropertiesOverride = AnimationPropertiesOverride;
  49413. })(BABYLON || (BABYLON = {}));
  49414. //# sourceMappingURL=babylon.animationPropertiesOverride.js.map
  49415. var BABYLON;
  49416. (function (BABYLON) {
  49417. /**
  49418. * Represents the range of an animation
  49419. */
  49420. var AnimationRange = /** @class */ (function () {
  49421. /**
  49422. * Initializes the range of an animation
  49423. * @param name The name of the animation range
  49424. * @param from The starting frame of the animation
  49425. * @param to The ending frame of the animation
  49426. */
  49427. function AnimationRange(
  49428. /**The name of the animation range**/
  49429. name,
  49430. /**The starting frame of the animation */
  49431. from,
  49432. /**The ending frame of the animation*/
  49433. to) {
  49434. this.name = name;
  49435. this.from = from;
  49436. this.to = to;
  49437. }
  49438. /**
  49439. * Makes a copy of the animation range
  49440. * @returns A copy of the animation range
  49441. */
  49442. AnimationRange.prototype.clone = function () {
  49443. return new AnimationRange(this.name, this.from, this.to);
  49444. };
  49445. return AnimationRange;
  49446. }());
  49447. BABYLON.AnimationRange = AnimationRange;
  49448. /**
  49449. * Composed of a frame, and an action function
  49450. */
  49451. var AnimationEvent = /** @class */ (function () {
  49452. /**
  49453. * Initializes the animation event
  49454. * @param frame The frame for which the event is triggered
  49455. * @param action The event to perform when triggered
  49456. * @param onlyOnce Specifies if the event should be triggered only once
  49457. */
  49458. function AnimationEvent(
  49459. /** The frame for which the event is triggered **/
  49460. frame,
  49461. /** The event to perform when triggered **/
  49462. action,
  49463. /** Specifies if the event should be triggered only once**/
  49464. onlyOnce) {
  49465. this.frame = frame;
  49466. this.action = action;
  49467. this.onlyOnce = onlyOnce;
  49468. /**
  49469. * Specifies if the animation event is done
  49470. */
  49471. this.isDone = false;
  49472. }
  49473. /** @hidden */
  49474. AnimationEvent.prototype._clone = function () {
  49475. return new AnimationEvent(this.frame, this.action, this.onlyOnce);
  49476. };
  49477. return AnimationEvent;
  49478. }());
  49479. BABYLON.AnimationEvent = AnimationEvent;
  49480. /**
  49481. * A cursor which tracks a point on a path
  49482. */
  49483. var PathCursor = /** @class */ (function () {
  49484. /**
  49485. * Initializes the path cursor
  49486. * @param path The path to track
  49487. */
  49488. function PathCursor(path) {
  49489. this.path = path;
  49490. /**
  49491. * Stores path cursor callbacks for when an onchange event is triggered
  49492. */
  49493. this._onchange = new Array();
  49494. /**
  49495. * The value of the path cursor
  49496. */
  49497. this.value = 0;
  49498. /**
  49499. * The animation array of the path cursor
  49500. */
  49501. this.animations = new Array();
  49502. }
  49503. /**
  49504. * Gets the cursor point on the path
  49505. * @returns A point on the path cursor at the cursor location
  49506. */
  49507. PathCursor.prototype.getPoint = function () {
  49508. var point = this.path.getPointAtLengthPosition(this.value);
  49509. return new BABYLON.Vector3(point.x, 0, point.y);
  49510. };
  49511. /**
  49512. * Moves the cursor ahead by the step amount
  49513. * @param step The amount to move the cursor forward
  49514. * @returns This path cursor
  49515. */
  49516. PathCursor.prototype.moveAhead = function (step) {
  49517. if (step === void 0) { step = 0.002; }
  49518. this.move(step);
  49519. return this;
  49520. };
  49521. /**
  49522. * Moves the cursor behind by the step amount
  49523. * @param step The amount to move the cursor back
  49524. * @returns This path cursor
  49525. */
  49526. PathCursor.prototype.moveBack = function (step) {
  49527. if (step === void 0) { step = 0.002; }
  49528. this.move(-step);
  49529. return this;
  49530. };
  49531. /**
  49532. * Moves the cursor by the step amount
  49533. * If the step amount is greater than one, an exception is thrown
  49534. * @param step The amount to move the cursor
  49535. * @returns This path cursor
  49536. */
  49537. PathCursor.prototype.move = function (step) {
  49538. if (Math.abs(step) > 1) {
  49539. throw "step size should be less than 1.";
  49540. }
  49541. this.value += step;
  49542. this.ensureLimits();
  49543. this.raiseOnChange();
  49544. return this;
  49545. };
  49546. /**
  49547. * Ensures that the value is limited between zero and one
  49548. * @returns This path cursor
  49549. */
  49550. PathCursor.prototype.ensureLimits = function () {
  49551. while (this.value > 1) {
  49552. this.value -= 1;
  49553. }
  49554. while (this.value < 0) {
  49555. this.value += 1;
  49556. }
  49557. return this;
  49558. };
  49559. /**
  49560. * Runs onchange callbacks on change (used by the animation engine)
  49561. * @returns This path cursor
  49562. */
  49563. PathCursor.prototype.raiseOnChange = function () {
  49564. var _this = this;
  49565. this._onchange.forEach(function (f) { return f(_this); });
  49566. return this;
  49567. };
  49568. /**
  49569. * Executes a function on change
  49570. * @param f A path cursor onchange callback
  49571. * @returns This path cursor
  49572. */
  49573. PathCursor.prototype.onchange = function (f) {
  49574. this._onchange.push(f);
  49575. return this;
  49576. };
  49577. return PathCursor;
  49578. }());
  49579. BABYLON.PathCursor = PathCursor;
  49580. /**
  49581. * Enum for the animation key frame interpolation type
  49582. */
  49583. var AnimationKeyInterpolation;
  49584. (function (AnimationKeyInterpolation) {
  49585. /**
  49586. * Do not interpolate between keys and use the start key value only. Tangents are ignored
  49587. */
  49588. AnimationKeyInterpolation[AnimationKeyInterpolation["STEP"] = 1] = "STEP";
  49589. })(AnimationKeyInterpolation = BABYLON.AnimationKeyInterpolation || (BABYLON.AnimationKeyInterpolation = {}));
  49590. /**
  49591. * Class used to store any kind of animation
  49592. */
  49593. var Animation = /** @class */ (function () {
  49594. /**
  49595. * Initializes the animation
  49596. * @param name Name of the animation
  49597. * @param targetProperty Property to animate
  49598. * @param framePerSecond The frames per second of the animation
  49599. * @param dataType The data type of the animation
  49600. * @param loopMode The loop mode of the animation
  49601. * @param enableBlendings Specifies if blending should be enabled
  49602. */
  49603. function Animation(
  49604. /**Name of the animation */
  49605. name,
  49606. /**Property to animate */
  49607. targetProperty,
  49608. /**The frames per second of the animation */
  49609. framePerSecond,
  49610. /**The data type of the animation */
  49611. dataType,
  49612. /**The loop mode of the animation */
  49613. loopMode,
  49614. /**Specifies if blending should be enabled */
  49615. enableBlending) {
  49616. this.name = name;
  49617. this.targetProperty = targetProperty;
  49618. this.framePerSecond = framePerSecond;
  49619. this.dataType = dataType;
  49620. this.loopMode = loopMode;
  49621. this.enableBlending = enableBlending;
  49622. /**
  49623. * @hidden Internal use only
  49624. */
  49625. this._runtimeAnimations = new Array();
  49626. /**
  49627. * The set of event that will be linked to this animation
  49628. */
  49629. this._events = new Array();
  49630. /**
  49631. * Stores the blending speed of the animation
  49632. */
  49633. this.blendingSpeed = 0.01;
  49634. /**
  49635. * Stores the animation ranges for the animation
  49636. */
  49637. this._ranges = {};
  49638. this.targetPropertyPath = targetProperty.split(".");
  49639. this.dataType = dataType;
  49640. this.loopMode = loopMode === undefined ? Animation.ANIMATIONLOOPMODE_CYCLE : loopMode;
  49641. }
  49642. /**
  49643. * @hidden Internal use
  49644. */
  49645. Animation._PrepareAnimation = function (name, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction) {
  49646. var dataType = undefined;
  49647. if (!isNaN(parseFloat(from)) && isFinite(from)) {
  49648. dataType = Animation.ANIMATIONTYPE_FLOAT;
  49649. }
  49650. else if (from instanceof BABYLON.Quaternion) {
  49651. dataType = Animation.ANIMATIONTYPE_QUATERNION;
  49652. }
  49653. else if (from instanceof BABYLON.Vector3) {
  49654. dataType = Animation.ANIMATIONTYPE_VECTOR3;
  49655. }
  49656. else if (from instanceof BABYLON.Vector2) {
  49657. dataType = Animation.ANIMATIONTYPE_VECTOR2;
  49658. }
  49659. else if (from instanceof BABYLON.Color3) {
  49660. dataType = Animation.ANIMATIONTYPE_COLOR3;
  49661. }
  49662. else if (from instanceof BABYLON.Size) {
  49663. dataType = Animation.ANIMATIONTYPE_SIZE;
  49664. }
  49665. if (dataType == undefined) {
  49666. return null;
  49667. }
  49668. var animation = new Animation(name, targetProperty, framePerSecond, dataType, loopMode);
  49669. var keys = [{ frame: 0, value: from }, { frame: totalFrame, value: to }];
  49670. animation.setKeys(keys);
  49671. if (easingFunction !== undefined) {
  49672. animation.setEasingFunction(easingFunction);
  49673. }
  49674. return animation;
  49675. };
  49676. /**
  49677. * Sets up an animation
  49678. * @param property The property to animate
  49679. * @param animationType The animation type to apply
  49680. * @param framePerSecond The frames per second of the animation
  49681. * @param easingFunction The easing function used in the animation
  49682. * @returns The created animation
  49683. */
  49684. Animation.CreateAnimation = function (property, animationType, framePerSecond, easingFunction) {
  49685. var animation = new Animation(property + "Animation", property, framePerSecond, animationType, Animation.ANIMATIONLOOPMODE_CONSTANT);
  49686. animation.setEasingFunction(easingFunction);
  49687. return animation;
  49688. };
  49689. /**
  49690. * Create and start an animation on a node
  49691. * @param name defines the name of the global animation that will be run on all nodes
  49692. * @param node defines the root node where the animation will take place
  49693. * @param targetProperty defines property to animate
  49694. * @param framePerSecond defines the number of frame per second yo use
  49695. * @param totalFrame defines the number of frames in total
  49696. * @param from defines the initial value
  49697. * @param to defines the final value
  49698. * @param loopMode defines which loop mode you want to use (off by default)
  49699. * @param easingFunction defines the easing function to use (linear by default)
  49700. * @param onAnimationEnd defines the callback to call when animation end
  49701. * @returns the animatable created for this animation
  49702. */
  49703. Animation.CreateAndStartAnimation = function (name, node, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction, onAnimationEnd) {
  49704. var animation = Animation._PrepareAnimation(name, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction);
  49705. if (!animation) {
  49706. return null;
  49707. }
  49708. return node.getScene().beginDirectAnimation(node, [animation], 0, totalFrame, (animation.loopMode === 1), 1.0, onAnimationEnd);
  49709. };
  49710. /**
  49711. * Create and start an animation on a node and its descendants
  49712. * @param name defines the name of the global animation that will be run on all nodes
  49713. * @param node defines the root node where the animation will take place
  49714. * @param directDescendantsOnly if true only direct descendants will be used, if false direct and also indirect (children of children, an so on in a recursive manner) descendants will be used
  49715. * @param targetProperty defines property to animate
  49716. * @param framePerSecond defines the number of frame per second to use
  49717. * @param totalFrame defines the number of frames in total
  49718. * @param from defines the initial value
  49719. * @param to defines the final value
  49720. * @param loopMode defines which loop mode you want to use (off by default)
  49721. * @param easingFunction defines the easing function to use (linear by default)
  49722. * @param onAnimationEnd defines the callback to call when an animation ends (will be called once per node)
  49723. * @returns the list of animatables created for all nodes
  49724. * @example https://www.babylonjs-playground.com/#MH0VLI
  49725. */
  49726. Animation.CreateAndStartHierarchyAnimation = function (name, node, directDescendantsOnly, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction, onAnimationEnd) {
  49727. var animation = Animation._PrepareAnimation(name, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction);
  49728. if (!animation) {
  49729. return null;
  49730. }
  49731. var scene = node.getScene();
  49732. return scene.beginDirectHierarchyAnimation(node, directDescendantsOnly, [animation], 0, totalFrame, (animation.loopMode === 1), 1.0, onAnimationEnd);
  49733. };
  49734. /**
  49735. * Creates a new animation, merges it with the existing animations and starts it
  49736. * @param name Name of the animation
  49737. * @param node Node which contains the scene that begins the animations
  49738. * @param targetProperty Specifies which property to animate
  49739. * @param framePerSecond The frames per second of the animation
  49740. * @param totalFrame The total number of frames
  49741. * @param from The frame at the beginning of the animation
  49742. * @param to The frame at the end of the animation
  49743. * @param loopMode Specifies the loop mode of the animation
  49744. * @param easingFunction (Optional) The easing function of the animation, which allow custom mathematical formulas for animations
  49745. * @param onAnimationEnd Callback to run once the animation is complete
  49746. * @returns Nullable animation
  49747. */
  49748. Animation.CreateMergeAndStartAnimation = function (name, node, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction, onAnimationEnd) {
  49749. var animation = Animation._PrepareAnimation(name, targetProperty, framePerSecond, totalFrame, from, to, loopMode, easingFunction);
  49750. if (!animation) {
  49751. return null;
  49752. }
  49753. node.animations.push(animation);
  49754. return node.getScene().beginAnimation(node, 0, totalFrame, (animation.loopMode === 1), 1.0, onAnimationEnd);
  49755. };
  49756. /**
  49757. * Transition property of an host to the target Value
  49758. * @param property The property to transition
  49759. * @param targetValue The target Value of the property
  49760. * @param host The object where the property to animate belongs
  49761. * @param scene Scene used to run the animation
  49762. * @param frameRate Framerate (in frame/s) to use
  49763. * @param transition The transition type we want to use
  49764. * @param duration The duration of the animation, in milliseconds
  49765. * @param onAnimationEnd Callback trigger at the end of the animation
  49766. * @returns Nullable animation
  49767. */
  49768. Animation.TransitionTo = function (property, targetValue, host, scene, frameRate, transition, duration, onAnimationEnd) {
  49769. if (onAnimationEnd === void 0) { onAnimationEnd = null; }
  49770. if (duration <= 0) {
  49771. host[property] = targetValue;
  49772. if (onAnimationEnd) {
  49773. onAnimationEnd();
  49774. }
  49775. return null;
  49776. }
  49777. var endFrame = frameRate * (duration / 1000);
  49778. transition.setKeys([{
  49779. frame: 0,
  49780. value: host[property].clone ? host[property].clone() : host[property]
  49781. },
  49782. {
  49783. frame: endFrame,
  49784. value: targetValue
  49785. }]);
  49786. if (!host.animations) {
  49787. host.animations = [];
  49788. }
  49789. host.animations.push(transition);
  49790. var animation = scene.beginAnimation(host, 0, endFrame, false);
  49791. animation.onAnimationEnd = onAnimationEnd;
  49792. return animation;
  49793. };
  49794. Object.defineProperty(Animation.prototype, "runtimeAnimations", {
  49795. /**
  49796. * Return the array of runtime animations currently using this animation
  49797. */
  49798. get: function () {
  49799. return this._runtimeAnimations;
  49800. },
  49801. enumerable: true,
  49802. configurable: true
  49803. });
  49804. Object.defineProperty(Animation.prototype, "hasRunningRuntimeAnimations", {
  49805. /**
  49806. * Specifies if any of the runtime animations are currently running
  49807. */
  49808. get: function () {
  49809. for (var _i = 0, _a = this._runtimeAnimations; _i < _a.length; _i++) {
  49810. var runtimeAnimation = _a[_i];
  49811. if (!runtimeAnimation.isStopped) {
  49812. return true;
  49813. }
  49814. }
  49815. return false;
  49816. },
  49817. enumerable: true,
  49818. configurable: true
  49819. });
  49820. // Methods
  49821. /**
  49822. * Converts the animation to a string
  49823. * @param fullDetails support for multiple levels of logging within scene loading
  49824. * @returns String form of the animation
  49825. */
  49826. Animation.prototype.toString = function (fullDetails) {
  49827. var ret = "Name: " + this.name + ", property: " + this.targetProperty;
  49828. ret += ", datatype: " + (["Float", "Vector3", "Quaternion", "Matrix", "Color3", "Vector2"])[this.dataType];
  49829. ret += ", nKeys: " + (this._keys ? this._keys.length : "none");
  49830. ret += ", nRanges: " + (this._ranges ? Object.keys(this._ranges).length : "none");
  49831. if (fullDetails) {
  49832. ret += ", Ranges: {";
  49833. var first = true;
  49834. for (var name in this._ranges) {
  49835. if (first) {
  49836. ret += ", ";
  49837. first = false;
  49838. }
  49839. ret += name;
  49840. }
  49841. ret += "}";
  49842. }
  49843. return ret;
  49844. };
  49845. /**
  49846. * Add an event to this animation
  49847. * @param event Event to add
  49848. */
  49849. Animation.prototype.addEvent = function (event) {
  49850. this._events.push(event);
  49851. };
  49852. /**
  49853. * Remove all events found at the given frame
  49854. * @param frame The frame to remove events from
  49855. */
  49856. Animation.prototype.removeEvents = function (frame) {
  49857. for (var index = 0; index < this._events.length; index++) {
  49858. if (this._events[index].frame === frame) {
  49859. this._events.splice(index, 1);
  49860. index--;
  49861. }
  49862. }
  49863. };
  49864. /**
  49865. * Retrieves all the events from the animation
  49866. * @returns Events from the animation
  49867. */
  49868. Animation.prototype.getEvents = function () {
  49869. return this._events;
  49870. };
  49871. /**
  49872. * Creates an animation range
  49873. * @param name Name of the animation range
  49874. * @param from Starting frame of the animation range
  49875. * @param to Ending frame of the animation
  49876. */
  49877. Animation.prototype.createRange = function (name, from, to) {
  49878. // check name not already in use; could happen for bones after serialized
  49879. if (!this._ranges[name]) {
  49880. this._ranges[name] = new AnimationRange(name, from, to);
  49881. }
  49882. };
  49883. /**
  49884. * Deletes an animation range by name
  49885. * @param name Name of the animation range to delete
  49886. * @param deleteFrames Specifies if the key frames for the range should also be deleted (true) or not (false)
  49887. */
  49888. Animation.prototype.deleteRange = function (name, deleteFrames) {
  49889. if (deleteFrames === void 0) { deleteFrames = true; }
  49890. var range = this._ranges[name];
  49891. if (!range) {
  49892. return;
  49893. }
  49894. if (deleteFrames) {
  49895. var from = range.from;
  49896. var to = range.to;
  49897. // this loop MUST go high to low for multiple splices to work
  49898. for (var key = this._keys.length - 1; key >= 0; key--) {
  49899. if (this._keys[key].frame >= from && this._keys[key].frame <= to) {
  49900. this._keys.splice(key, 1);
  49901. }
  49902. }
  49903. }
  49904. this._ranges[name] = null; // said much faster than 'delete this._range[name]'
  49905. };
  49906. /**
  49907. * Gets the animation range by name, or null if not defined
  49908. * @param name Name of the animation range
  49909. * @returns Nullable animation range
  49910. */
  49911. Animation.prototype.getRange = function (name) {
  49912. return this._ranges[name];
  49913. };
  49914. /**
  49915. * Gets the key frames from the animation
  49916. * @returns The key frames of the animation
  49917. */
  49918. Animation.prototype.getKeys = function () {
  49919. return this._keys;
  49920. };
  49921. /**
  49922. * Gets the highest frame rate of the animation
  49923. * @returns Highest frame rate of the animation
  49924. */
  49925. Animation.prototype.getHighestFrame = function () {
  49926. var ret = 0;
  49927. for (var key = 0, nKeys = this._keys.length; key < nKeys; key++) {
  49928. if (ret < this._keys[key].frame) {
  49929. ret = this._keys[key].frame;
  49930. }
  49931. }
  49932. return ret;
  49933. };
  49934. /**
  49935. * Gets the easing function of the animation
  49936. * @returns Easing function of the animation
  49937. */
  49938. Animation.prototype.getEasingFunction = function () {
  49939. return this._easingFunction;
  49940. };
  49941. /**
  49942. * Sets the easing function of the animation
  49943. * @param easingFunction A custom mathematical formula for animation
  49944. */
  49945. Animation.prototype.setEasingFunction = function (easingFunction) {
  49946. this._easingFunction = easingFunction;
  49947. };
  49948. /**
  49949. * Interpolates a scalar linearly
  49950. * @param startValue Start value of the animation curve
  49951. * @param endValue End value of the animation curve
  49952. * @param gradient Scalar amount to interpolate
  49953. * @returns Interpolated scalar value
  49954. */
  49955. Animation.prototype.floatInterpolateFunction = function (startValue, endValue, gradient) {
  49956. return BABYLON.Scalar.Lerp(startValue, endValue, gradient);
  49957. };
  49958. /**
  49959. * Interpolates a scalar cubically
  49960. * @param startValue Start value of the animation curve
  49961. * @param outTangent End tangent of the animation
  49962. * @param endValue End value of the animation curve
  49963. * @param inTangent Start tangent of the animation curve
  49964. * @param gradient Scalar amount to interpolate
  49965. * @returns Interpolated scalar value
  49966. */
  49967. Animation.prototype.floatInterpolateFunctionWithTangents = function (startValue, outTangent, endValue, inTangent, gradient) {
  49968. return BABYLON.Scalar.Hermite(startValue, outTangent, endValue, inTangent, gradient);
  49969. };
  49970. /**
  49971. * Interpolates a quaternion using a spherical linear interpolation
  49972. * @param startValue Start value of the animation curve
  49973. * @param endValue End value of the animation curve
  49974. * @param gradient Scalar amount to interpolate
  49975. * @returns Interpolated quaternion value
  49976. */
  49977. Animation.prototype.quaternionInterpolateFunction = function (startValue, endValue, gradient) {
  49978. return BABYLON.Quaternion.Slerp(startValue, endValue, gradient);
  49979. };
  49980. /**
  49981. * Interpolates a quaternion cubically
  49982. * @param startValue Start value of the animation curve
  49983. * @param outTangent End tangent of the animation curve
  49984. * @param endValue End value of the animation curve
  49985. * @param inTangent Start tangent of the animation curve
  49986. * @param gradient Scalar amount to interpolate
  49987. * @returns Interpolated quaternion value
  49988. */
  49989. Animation.prototype.quaternionInterpolateFunctionWithTangents = function (startValue, outTangent, endValue, inTangent, gradient) {
  49990. return BABYLON.Quaternion.Hermite(startValue, outTangent, endValue, inTangent, gradient).normalize();
  49991. };
  49992. /**
  49993. * Interpolates a Vector3 linearl
  49994. * @param startValue Start value of the animation curve
  49995. * @param endValue End value of the animation curve
  49996. * @param gradient Scalar amount to interpolate
  49997. * @returns Interpolated scalar value
  49998. */
  49999. Animation.prototype.vector3InterpolateFunction = function (startValue, endValue, gradient) {
  50000. return BABYLON.Vector3.Lerp(startValue, endValue, gradient);
  50001. };
  50002. /**
  50003. * Interpolates a Vector3 cubically
  50004. * @param startValue Start value of the animation curve
  50005. * @param outTangent End tangent of the animation
  50006. * @param endValue End value of the animation curve
  50007. * @param inTangent Start tangent of the animation curve
  50008. * @param gradient Scalar amount to interpolate
  50009. * @returns InterpolatedVector3 value
  50010. */
  50011. Animation.prototype.vector3InterpolateFunctionWithTangents = function (startValue, outTangent, endValue, inTangent, gradient) {
  50012. return BABYLON.Vector3.Hermite(startValue, outTangent, endValue, inTangent, gradient);
  50013. };
  50014. /**
  50015. * Interpolates a Vector2 linearly
  50016. * @param startValue Start value of the animation curve
  50017. * @param endValue End value of the animation curve
  50018. * @param gradient Scalar amount to interpolate
  50019. * @returns Interpolated Vector2 value
  50020. */
  50021. Animation.prototype.vector2InterpolateFunction = function (startValue, endValue, gradient) {
  50022. return BABYLON.Vector2.Lerp(startValue, endValue, gradient);
  50023. };
  50024. /**
  50025. * Interpolates a Vector2 cubically
  50026. * @param startValue Start value of the animation curve
  50027. * @param outTangent End tangent of the animation
  50028. * @param endValue End value of the animation curve
  50029. * @param inTangent Start tangent of the animation curve
  50030. * @param gradient Scalar amount to interpolate
  50031. * @returns Interpolated Vector2 value
  50032. */
  50033. Animation.prototype.vector2InterpolateFunctionWithTangents = function (startValue, outTangent, endValue, inTangent, gradient) {
  50034. return BABYLON.Vector2.Hermite(startValue, outTangent, endValue, inTangent, gradient);
  50035. };
  50036. /**
  50037. * Interpolates a size linearly
  50038. * @param startValue Start value of the animation curve
  50039. * @param endValue End value of the animation curve
  50040. * @param gradient Scalar amount to interpolate
  50041. * @returns Interpolated Size value
  50042. */
  50043. Animation.prototype.sizeInterpolateFunction = function (startValue, endValue, gradient) {
  50044. return BABYLON.Size.Lerp(startValue, endValue, gradient);
  50045. };
  50046. /**
  50047. * Interpolates a Color3 linearly
  50048. * @param startValue Start value of the animation curve
  50049. * @param endValue End value of the animation curve
  50050. * @param gradient Scalar amount to interpolate
  50051. * @returns Interpolated Color3 value
  50052. */
  50053. Animation.prototype.color3InterpolateFunction = function (startValue, endValue, gradient) {
  50054. return BABYLON.Color3.Lerp(startValue, endValue, gradient);
  50055. };
  50056. /**
  50057. * @hidden Internal use only
  50058. */
  50059. Animation.prototype._getKeyValue = function (value) {
  50060. if (typeof value === "function") {
  50061. return value();
  50062. }
  50063. return value;
  50064. };
  50065. /**
  50066. * @hidden Internal use only
  50067. */
  50068. Animation.prototype._interpolate = function (currentFrame, repeatCount, workValue, loopMode, offsetValue, highLimitValue) {
  50069. if (loopMode === Animation.ANIMATIONLOOPMODE_CONSTANT && repeatCount > 0) {
  50070. return highLimitValue.clone ? highLimitValue.clone() : highLimitValue;
  50071. }
  50072. var keys = this.getKeys();
  50073. // Try to get a hash to find the right key
  50074. var startKeyIndex = Math.max(0, Math.min(keys.length - 1, Math.floor(keys.length * (currentFrame - keys[0].frame) / (keys[keys.length - 1].frame - keys[0].frame)) - 1));
  50075. if (keys[startKeyIndex].frame >= currentFrame) {
  50076. while (startKeyIndex - 1 >= 0 && keys[startKeyIndex].frame >= currentFrame) {
  50077. startKeyIndex--;
  50078. }
  50079. }
  50080. for (var key = startKeyIndex; key < keys.length; key++) {
  50081. var endKey = keys[key + 1];
  50082. if (endKey.frame >= currentFrame) {
  50083. var startKey = keys[key];
  50084. var startValue = this._getKeyValue(startKey.value);
  50085. if (startKey.interpolation === AnimationKeyInterpolation.STEP) {
  50086. return startValue;
  50087. }
  50088. var endValue = this._getKeyValue(endKey.value);
  50089. var useTangent = startKey.outTangent !== undefined && endKey.inTangent !== undefined;
  50090. var frameDelta = endKey.frame - startKey.frame;
  50091. // gradient : percent of currentFrame between the frame inf and the frame sup
  50092. var gradient = (currentFrame - startKey.frame) / frameDelta;
  50093. // check for easingFunction and correction of gradient
  50094. var easingFunction = this.getEasingFunction();
  50095. if (easingFunction != null) {
  50096. gradient = easingFunction.ease(gradient);
  50097. }
  50098. switch (this.dataType) {
  50099. // Float
  50100. case Animation.ANIMATIONTYPE_FLOAT:
  50101. var floatValue = useTangent ? this.floatInterpolateFunctionWithTangents(startValue, startKey.outTangent * frameDelta, endValue, endKey.inTangent * frameDelta, gradient) : this.floatInterpolateFunction(startValue, endValue, gradient);
  50102. switch (loopMode) {
  50103. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50104. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50105. return floatValue;
  50106. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50107. return offsetValue * repeatCount + floatValue;
  50108. }
  50109. break;
  50110. // Quaternion
  50111. case Animation.ANIMATIONTYPE_QUATERNION:
  50112. var quatValue = useTangent ? this.quaternionInterpolateFunctionWithTangents(startValue, startKey.outTangent.scale(frameDelta), endValue, endKey.inTangent.scale(frameDelta), gradient) : this.quaternionInterpolateFunction(startValue, endValue, gradient);
  50113. switch (loopMode) {
  50114. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50115. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50116. return quatValue;
  50117. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50118. return quatValue.addInPlace(offsetValue.scale(repeatCount));
  50119. }
  50120. return quatValue;
  50121. // Vector3
  50122. case Animation.ANIMATIONTYPE_VECTOR3:
  50123. var vec3Value = useTangent ? this.vector3InterpolateFunctionWithTangents(startValue, startKey.outTangent.scale(frameDelta), endValue, endKey.inTangent.scale(frameDelta), gradient) : this.vector3InterpolateFunction(startValue, endValue, gradient);
  50124. switch (loopMode) {
  50125. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50126. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50127. return vec3Value;
  50128. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50129. return vec3Value.add(offsetValue.scale(repeatCount));
  50130. }
  50131. // Vector2
  50132. case Animation.ANIMATIONTYPE_VECTOR2:
  50133. var vec2Value = useTangent ? this.vector2InterpolateFunctionWithTangents(startValue, startKey.outTangent.scale(frameDelta), endValue, endKey.inTangent.scale(frameDelta), gradient) : this.vector2InterpolateFunction(startValue, endValue, gradient);
  50134. switch (loopMode) {
  50135. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50136. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50137. return vec2Value;
  50138. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50139. return vec2Value.add(offsetValue.scale(repeatCount));
  50140. }
  50141. // Size
  50142. case Animation.ANIMATIONTYPE_SIZE:
  50143. switch (loopMode) {
  50144. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50145. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50146. return this.sizeInterpolateFunction(startValue, endValue, gradient);
  50147. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50148. return this.sizeInterpolateFunction(startValue, endValue, gradient).add(offsetValue.scale(repeatCount));
  50149. }
  50150. // Color3
  50151. case Animation.ANIMATIONTYPE_COLOR3:
  50152. switch (loopMode) {
  50153. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50154. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50155. return this.color3InterpolateFunction(startValue, endValue, gradient);
  50156. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50157. return this.color3InterpolateFunction(startValue, endValue, gradient).add(offsetValue.scale(repeatCount));
  50158. }
  50159. // Matrix
  50160. case Animation.ANIMATIONTYPE_MATRIX:
  50161. switch (loopMode) {
  50162. case Animation.ANIMATIONLOOPMODE_CYCLE:
  50163. case Animation.ANIMATIONLOOPMODE_CONSTANT:
  50164. if (Animation.AllowMatricesInterpolation) {
  50165. return this.matrixInterpolateFunction(startValue, endValue, gradient, workValue);
  50166. }
  50167. case Animation.ANIMATIONLOOPMODE_RELATIVE:
  50168. return startValue;
  50169. }
  50170. default:
  50171. break;
  50172. }
  50173. break;
  50174. }
  50175. }
  50176. return this._getKeyValue(keys[keys.length - 1].value);
  50177. };
  50178. /**
  50179. * Defines the function to use to interpolate matrices
  50180. * @param startValue defines the start matrix
  50181. * @param endValue defines the end matrix
  50182. * @param gradient defines the gradient between both matrices
  50183. * @param result defines an optional target matrix where to store the interpolation
  50184. * @returns the interpolated matrix
  50185. */
  50186. Animation.prototype.matrixInterpolateFunction = function (startValue, endValue, gradient, result) {
  50187. if (Animation.AllowMatrixDecomposeForInterpolation) {
  50188. if (result) {
  50189. BABYLON.Matrix.DecomposeLerpToRef(startValue, endValue, gradient, result);
  50190. return result;
  50191. }
  50192. return BABYLON.Matrix.DecomposeLerp(startValue, endValue, gradient);
  50193. }
  50194. if (result) {
  50195. BABYLON.Matrix.LerpToRef(startValue, endValue, gradient, result);
  50196. return result;
  50197. }
  50198. return BABYLON.Matrix.Lerp(startValue, endValue, gradient);
  50199. };
  50200. /**
  50201. * Makes a copy of the animation
  50202. * @returns Cloned animation
  50203. */
  50204. Animation.prototype.clone = function () {
  50205. var clone = new Animation(this.name, this.targetPropertyPath.join("."), this.framePerSecond, this.dataType, this.loopMode);
  50206. clone.enableBlending = this.enableBlending;
  50207. clone.blendingSpeed = this.blendingSpeed;
  50208. if (this._keys) {
  50209. clone.setKeys(this._keys);
  50210. }
  50211. if (this._ranges) {
  50212. clone._ranges = {};
  50213. for (var name in this._ranges) {
  50214. var range = this._ranges[name];
  50215. if (!range) {
  50216. continue;
  50217. }
  50218. clone._ranges[name] = range.clone();
  50219. }
  50220. }
  50221. return clone;
  50222. };
  50223. /**
  50224. * Sets the key frames of the animation
  50225. * @param values The animation key frames to set
  50226. */
  50227. Animation.prototype.setKeys = function (values) {
  50228. this._keys = values.slice(0);
  50229. };
  50230. /**
  50231. * Serializes the animation to an object
  50232. * @returns Serialized object
  50233. */
  50234. Animation.prototype.serialize = function () {
  50235. var serializationObject = {};
  50236. serializationObject.name = this.name;
  50237. serializationObject.property = this.targetProperty;
  50238. serializationObject.framePerSecond = this.framePerSecond;
  50239. serializationObject.dataType = this.dataType;
  50240. serializationObject.loopBehavior = this.loopMode;
  50241. serializationObject.enableBlending = this.enableBlending;
  50242. serializationObject.blendingSpeed = this.blendingSpeed;
  50243. var dataType = this.dataType;
  50244. serializationObject.keys = [];
  50245. var keys = this.getKeys();
  50246. for (var index = 0; index < keys.length; index++) {
  50247. var animationKey = keys[index];
  50248. var key = {};
  50249. key.frame = animationKey.frame;
  50250. switch (dataType) {
  50251. case Animation.ANIMATIONTYPE_FLOAT:
  50252. key.values = [animationKey.value];
  50253. break;
  50254. case Animation.ANIMATIONTYPE_QUATERNION:
  50255. case Animation.ANIMATIONTYPE_MATRIX:
  50256. case Animation.ANIMATIONTYPE_VECTOR3:
  50257. case Animation.ANIMATIONTYPE_COLOR3:
  50258. key.values = animationKey.value.asArray();
  50259. break;
  50260. }
  50261. serializationObject.keys.push(key);
  50262. }
  50263. serializationObject.ranges = [];
  50264. for (var name in this._ranges) {
  50265. var source = this._ranges[name];
  50266. if (!source) {
  50267. continue;
  50268. }
  50269. var range = {};
  50270. range.name = name;
  50271. range.from = source.from;
  50272. range.to = source.to;
  50273. serializationObject.ranges.push(range);
  50274. }
  50275. return serializationObject;
  50276. };
  50277. Object.defineProperty(Animation, "ANIMATIONTYPE_FLOAT", {
  50278. /**
  50279. * Get the float animation type
  50280. */
  50281. get: function () {
  50282. return Animation._ANIMATIONTYPE_FLOAT;
  50283. },
  50284. enumerable: true,
  50285. configurable: true
  50286. });
  50287. Object.defineProperty(Animation, "ANIMATIONTYPE_VECTOR3", {
  50288. /**
  50289. * Get the Vector3 animation type
  50290. */
  50291. get: function () {
  50292. return Animation._ANIMATIONTYPE_VECTOR3;
  50293. },
  50294. enumerable: true,
  50295. configurable: true
  50296. });
  50297. Object.defineProperty(Animation, "ANIMATIONTYPE_VECTOR2", {
  50298. /**
  50299. * Get the Vector2 animation type
  50300. */
  50301. get: function () {
  50302. return Animation._ANIMATIONTYPE_VECTOR2;
  50303. },
  50304. enumerable: true,
  50305. configurable: true
  50306. });
  50307. Object.defineProperty(Animation, "ANIMATIONTYPE_SIZE", {
  50308. /**
  50309. * Get the Size animation type
  50310. */
  50311. get: function () {
  50312. return Animation._ANIMATIONTYPE_SIZE;
  50313. },
  50314. enumerable: true,
  50315. configurable: true
  50316. });
  50317. Object.defineProperty(Animation, "ANIMATIONTYPE_QUATERNION", {
  50318. /**
  50319. * Get the Quaternion animation type
  50320. */
  50321. get: function () {
  50322. return Animation._ANIMATIONTYPE_QUATERNION;
  50323. },
  50324. enumerable: true,
  50325. configurable: true
  50326. });
  50327. Object.defineProperty(Animation, "ANIMATIONTYPE_MATRIX", {
  50328. /**
  50329. * Get the Matrix animation type
  50330. */
  50331. get: function () {
  50332. return Animation._ANIMATIONTYPE_MATRIX;
  50333. },
  50334. enumerable: true,
  50335. configurable: true
  50336. });
  50337. Object.defineProperty(Animation, "ANIMATIONTYPE_COLOR3", {
  50338. /**
  50339. * Get the Color3 animation type
  50340. */
  50341. get: function () {
  50342. return Animation._ANIMATIONTYPE_COLOR3;
  50343. },
  50344. enumerable: true,
  50345. configurable: true
  50346. });
  50347. Object.defineProperty(Animation, "ANIMATIONLOOPMODE_RELATIVE", {
  50348. /**
  50349. * Get the Relative Loop Mode
  50350. */
  50351. get: function () {
  50352. return Animation._ANIMATIONLOOPMODE_RELATIVE;
  50353. },
  50354. enumerable: true,
  50355. configurable: true
  50356. });
  50357. Object.defineProperty(Animation, "ANIMATIONLOOPMODE_CYCLE", {
  50358. /**
  50359. * Get the Cycle Loop Mode
  50360. */
  50361. get: function () {
  50362. return Animation._ANIMATIONLOOPMODE_CYCLE;
  50363. },
  50364. enumerable: true,
  50365. configurable: true
  50366. });
  50367. Object.defineProperty(Animation, "ANIMATIONLOOPMODE_CONSTANT", {
  50368. /**
  50369. * Get the Constant Loop Mode
  50370. */
  50371. get: function () {
  50372. return Animation._ANIMATIONLOOPMODE_CONSTANT;
  50373. },
  50374. enumerable: true,
  50375. configurable: true
  50376. });
  50377. /** @hidden */
  50378. Animation._UniversalLerp = function (left, right, amount) {
  50379. var constructor = left.constructor;
  50380. if (constructor.Lerp) { // Lerp supported
  50381. return constructor.Lerp(left, right, amount);
  50382. }
  50383. else if (constructor.Slerp) { // Slerp supported
  50384. return constructor.Slerp(left, right, amount);
  50385. }
  50386. else if (left.toFixed) { // Number
  50387. return left * (1.0 - amount) + amount * right;
  50388. }
  50389. else { // Blending not supported
  50390. return right;
  50391. }
  50392. };
  50393. /**
  50394. * Parses an animation object and creates an animation
  50395. * @param parsedAnimation Parsed animation object
  50396. * @returns Animation object
  50397. */
  50398. Animation.Parse = function (parsedAnimation) {
  50399. var animation = new Animation(parsedAnimation.name, parsedAnimation.property, parsedAnimation.framePerSecond, parsedAnimation.dataType, parsedAnimation.loopBehavior);
  50400. var dataType = parsedAnimation.dataType;
  50401. var keys = [];
  50402. var data;
  50403. var index;
  50404. if (parsedAnimation.enableBlending) {
  50405. animation.enableBlending = parsedAnimation.enableBlending;
  50406. }
  50407. if (parsedAnimation.blendingSpeed) {
  50408. animation.blendingSpeed = parsedAnimation.blendingSpeed;
  50409. }
  50410. for (index = 0; index < parsedAnimation.keys.length; index++) {
  50411. var key = parsedAnimation.keys[index];
  50412. var inTangent;
  50413. var outTangent;
  50414. switch (dataType) {
  50415. case Animation.ANIMATIONTYPE_FLOAT:
  50416. data = key.values[0];
  50417. if (key.values.length >= 1) {
  50418. inTangent = key.values[1];
  50419. }
  50420. if (key.values.length >= 2) {
  50421. outTangent = key.values[2];
  50422. }
  50423. break;
  50424. case Animation.ANIMATIONTYPE_QUATERNION:
  50425. data = BABYLON.Quaternion.FromArray(key.values);
  50426. if (key.values.length >= 8) {
  50427. var _inTangent = BABYLON.Quaternion.FromArray(key.values.slice(4, 8));
  50428. if (!_inTangent.equals(BABYLON.Quaternion.Zero())) {
  50429. inTangent = _inTangent;
  50430. }
  50431. }
  50432. if (key.values.length >= 12) {
  50433. var _outTangent = BABYLON.Quaternion.FromArray(key.values.slice(8, 12));
  50434. if (!_outTangent.equals(BABYLON.Quaternion.Zero())) {
  50435. outTangent = _outTangent;
  50436. }
  50437. }
  50438. break;
  50439. case Animation.ANIMATIONTYPE_MATRIX:
  50440. data = BABYLON.Matrix.FromArray(key.values);
  50441. break;
  50442. case Animation.ANIMATIONTYPE_COLOR3:
  50443. data = BABYLON.Color3.FromArray(key.values);
  50444. break;
  50445. case Animation.ANIMATIONTYPE_VECTOR3:
  50446. default:
  50447. data = BABYLON.Vector3.FromArray(key.values);
  50448. break;
  50449. }
  50450. var keyData = {};
  50451. keyData.frame = key.frame;
  50452. keyData.value = data;
  50453. if (inTangent != undefined) {
  50454. keyData.inTangent = inTangent;
  50455. }
  50456. if (outTangent != undefined) {
  50457. keyData.outTangent = outTangent;
  50458. }
  50459. keys.push(keyData);
  50460. }
  50461. animation.setKeys(keys);
  50462. if (parsedAnimation.ranges) {
  50463. for (index = 0; index < parsedAnimation.ranges.length; index++) {
  50464. data = parsedAnimation.ranges[index];
  50465. animation.createRange(data.name, data.from, data.to);
  50466. }
  50467. }
  50468. return animation;
  50469. };
  50470. /**
  50471. * Appends the serialized animations from the source animations
  50472. * @param source Source containing the animations
  50473. * @param destination Target to store the animations
  50474. */
  50475. Animation.AppendSerializedAnimations = function (source, destination) {
  50476. if (source.animations) {
  50477. destination.animations = [];
  50478. for (var animationIndex = 0; animationIndex < source.animations.length; animationIndex++) {
  50479. var animation = source.animations[animationIndex];
  50480. destination.animations.push(animation.serialize());
  50481. }
  50482. }
  50483. };
  50484. /**
  50485. * Use matrix interpolation instead of using direct key value when animating matrices
  50486. */
  50487. Animation.AllowMatricesInterpolation = false;
  50488. /**
  50489. * When matrix interpolation is enabled, this boolean forces the system to use Matrix.DecomposeLerp instead of Matrix.Lerp. Interpolation is more precise but slower
  50490. */
  50491. Animation.AllowMatrixDecomposeForInterpolation = true;
  50492. // Statics
  50493. /**
  50494. * Float animation type
  50495. */
  50496. Animation._ANIMATIONTYPE_FLOAT = 0;
  50497. /**
  50498. * Vector3 animation type
  50499. */
  50500. Animation._ANIMATIONTYPE_VECTOR3 = 1;
  50501. /**
  50502. * Quaternion animation type
  50503. */
  50504. Animation._ANIMATIONTYPE_QUATERNION = 2;
  50505. /**
  50506. * Matrix animation type
  50507. */
  50508. Animation._ANIMATIONTYPE_MATRIX = 3;
  50509. /**
  50510. * Color3 animation type
  50511. */
  50512. Animation._ANIMATIONTYPE_COLOR3 = 4;
  50513. /**
  50514. * Vector2 animation type
  50515. */
  50516. Animation._ANIMATIONTYPE_VECTOR2 = 5;
  50517. /**
  50518. * Size animation type
  50519. */
  50520. Animation._ANIMATIONTYPE_SIZE = 6;
  50521. /**
  50522. * Relative Loop Mode
  50523. */
  50524. Animation._ANIMATIONLOOPMODE_RELATIVE = 0;
  50525. /**
  50526. * Cycle Loop Mode
  50527. */
  50528. Animation._ANIMATIONLOOPMODE_CYCLE = 1;
  50529. /**
  50530. * Constant Loop Mode
  50531. */
  50532. Animation._ANIMATIONLOOPMODE_CONSTANT = 2;
  50533. return Animation;
  50534. }());
  50535. BABYLON.Animation = Animation;
  50536. })(BABYLON || (BABYLON = {}));
  50537. //# sourceMappingURL=babylon.animation.js.map
  50538. var BABYLON;
  50539. (function (BABYLON) {
  50540. /**
  50541. * This class defines the direct association between an animation and a target
  50542. */
  50543. var TargetedAnimation = /** @class */ (function () {
  50544. function TargetedAnimation() {
  50545. }
  50546. return TargetedAnimation;
  50547. }());
  50548. BABYLON.TargetedAnimation = TargetedAnimation;
  50549. /**
  50550. * Use this class to create coordinated animations on multiple targets
  50551. */
  50552. var AnimationGroup = /** @class */ (function () {
  50553. function AnimationGroup(name, scene) {
  50554. if (scene === void 0) { scene = null; }
  50555. this.name = name;
  50556. this._targetedAnimations = new Array();
  50557. this._animatables = new Array();
  50558. this._from = Number.MAX_VALUE;
  50559. this._to = -Number.MAX_VALUE;
  50560. this._speedRatio = 1;
  50561. this.onAnimationEndObservable = new BABYLON.Observable();
  50562. /**
  50563. * This observable will notify when all animations have ended.
  50564. */
  50565. this.onAnimationGroupEndObservable = new BABYLON.Observable();
  50566. /**
  50567. * This observable will notify when all animations have paused.
  50568. */
  50569. this.onAnimationGroupPauseObservable = new BABYLON.Observable();
  50570. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  50571. this._scene.animationGroups.push(this);
  50572. }
  50573. Object.defineProperty(AnimationGroup.prototype, "from", {
  50574. /**
  50575. * Gets the first frame
  50576. */
  50577. get: function () {
  50578. return this._from;
  50579. },
  50580. enumerable: true,
  50581. configurable: true
  50582. });
  50583. Object.defineProperty(AnimationGroup.prototype, "to", {
  50584. /**
  50585. * Gets the last frame
  50586. */
  50587. get: function () {
  50588. return this._to;
  50589. },
  50590. enumerable: true,
  50591. configurable: true
  50592. });
  50593. Object.defineProperty(AnimationGroup.prototype, "isStarted", {
  50594. /**
  50595. * Define if the animations are started
  50596. */
  50597. get: function () {
  50598. return this._isStarted;
  50599. },
  50600. enumerable: true,
  50601. configurable: true
  50602. });
  50603. Object.defineProperty(AnimationGroup.prototype, "speedRatio", {
  50604. /**
  50605. * Gets or sets the speed ratio to use for all animations
  50606. */
  50607. get: function () {
  50608. return this._speedRatio;
  50609. },
  50610. /**
  50611. * Gets or sets the speed ratio to use for all animations
  50612. */
  50613. set: function (value) {
  50614. if (this._speedRatio === value) {
  50615. return;
  50616. }
  50617. this._speedRatio = value;
  50618. for (var index = 0; index < this._animatables.length; index++) {
  50619. var animatable = this._animatables[index];
  50620. animatable.speedRatio = this._speedRatio;
  50621. }
  50622. },
  50623. enumerable: true,
  50624. configurable: true
  50625. });
  50626. Object.defineProperty(AnimationGroup.prototype, "targetedAnimations", {
  50627. /**
  50628. * Gets the targeted animations for this animation group
  50629. */
  50630. get: function () {
  50631. return this._targetedAnimations;
  50632. },
  50633. enumerable: true,
  50634. configurable: true
  50635. });
  50636. Object.defineProperty(AnimationGroup.prototype, "animatables", {
  50637. /**
  50638. * returning the list of animatables controlled by this animation group.
  50639. */
  50640. get: function () {
  50641. return this._animatables;
  50642. },
  50643. enumerable: true,
  50644. configurable: true
  50645. });
  50646. /**
  50647. * Add an animation (with its target) in the group
  50648. * @param animation defines the animation we want to add
  50649. * @param target defines the target of the animation
  50650. * @returns the {BABYLON.TargetedAnimation} object
  50651. */
  50652. AnimationGroup.prototype.addTargetedAnimation = function (animation, target) {
  50653. var targetedAnimation = {
  50654. animation: animation,
  50655. target: target
  50656. };
  50657. var keys = animation.getKeys();
  50658. if (this._from > keys[0].frame) {
  50659. this._from = keys[0].frame;
  50660. }
  50661. if (this._to < keys[keys.length - 1].frame) {
  50662. this._to = keys[keys.length - 1].frame;
  50663. }
  50664. this._targetedAnimations.push(targetedAnimation);
  50665. return targetedAnimation;
  50666. };
  50667. /**
  50668. * This function will normalize every animation in the group to make sure they all go from beginFrame to endFrame
  50669. * It can add constant keys at begin or end
  50670. * @param beginFrame defines the new begin frame for all animations or the smallest begin frame of all animations if null (defaults to null)
  50671. * @param endFrame defines the new end frame for all animations or the largest end frame of all animations if null (defaults to null)
  50672. */
  50673. AnimationGroup.prototype.normalize = function (beginFrame, endFrame) {
  50674. if (beginFrame === void 0) { beginFrame = null; }
  50675. if (endFrame === void 0) { endFrame = null; }
  50676. if (beginFrame == null)
  50677. beginFrame = this._from;
  50678. if (endFrame == null)
  50679. endFrame = this._to;
  50680. for (var index = 0; index < this._targetedAnimations.length; index++) {
  50681. var targetedAnimation = this._targetedAnimations[index];
  50682. var keys = targetedAnimation.animation.getKeys();
  50683. var startKey = keys[0];
  50684. var endKey = keys[keys.length - 1];
  50685. if (startKey.frame > beginFrame) {
  50686. var newKey = {
  50687. frame: beginFrame,
  50688. value: startKey.value,
  50689. inTangent: startKey.inTangent,
  50690. outTangent: startKey.outTangent,
  50691. interpolation: startKey.interpolation
  50692. };
  50693. keys.splice(0, 0, newKey);
  50694. }
  50695. if (endKey.frame < endFrame) {
  50696. var newKey = {
  50697. frame: endFrame,
  50698. value: endKey.value,
  50699. inTangent: endKey.outTangent,
  50700. outTangent: endKey.outTangent,
  50701. interpolation: endKey.interpolation
  50702. };
  50703. keys.push(newKey);
  50704. }
  50705. }
  50706. this._from = beginFrame;
  50707. this._to = endFrame;
  50708. return this;
  50709. };
  50710. /**
  50711. * Start all animations on given targets
  50712. * @param loop defines if animations must loop
  50713. * @param speedRatio defines the ratio to apply to animation speed (1 by default)
  50714. * @param from defines the from key (optional)
  50715. * @param to defines the to key (optional)
  50716. * @returns the current animation group
  50717. */
  50718. AnimationGroup.prototype.start = function (loop, speedRatio, from, to) {
  50719. var _this = this;
  50720. if (loop === void 0) { loop = false; }
  50721. if (speedRatio === void 0) { speedRatio = 1; }
  50722. if (this._isStarted || this._targetedAnimations.length === 0) {
  50723. return this;
  50724. }
  50725. var _loop_1 = function (targetedAnimation) {
  50726. var animatable = this_1._scene.beginDirectAnimation(targetedAnimation.target, [targetedAnimation.animation], from !== undefined ? from : this_1._from, to !== undefined ? to : this_1._to, loop, speedRatio);
  50727. animatable.onAnimationEnd = function () {
  50728. _this.onAnimationEndObservable.notifyObservers(targetedAnimation);
  50729. _this._checkAnimationGroupEnded(animatable);
  50730. };
  50731. this_1._animatables.push(animatable);
  50732. };
  50733. var this_1 = this;
  50734. for (var _i = 0, _a = this._targetedAnimations; _i < _a.length; _i++) {
  50735. var targetedAnimation = _a[_i];
  50736. _loop_1(targetedAnimation);
  50737. }
  50738. this._speedRatio = speedRatio;
  50739. this._isStarted = true;
  50740. return this;
  50741. };
  50742. /**
  50743. * Pause all animations
  50744. */
  50745. AnimationGroup.prototype.pause = function () {
  50746. if (!this._isStarted) {
  50747. return this;
  50748. }
  50749. for (var index = 0; index < this._animatables.length; index++) {
  50750. var animatable = this._animatables[index];
  50751. animatable.pause();
  50752. }
  50753. this.onAnimationGroupPauseObservable.notifyObservers(this);
  50754. return this;
  50755. };
  50756. /**
  50757. * Play all animations to initial state
  50758. * This function will start() the animations if they were not started or will restart() them if they were paused
  50759. * @param loop defines if animations must loop
  50760. */
  50761. AnimationGroup.prototype.play = function (loop) {
  50762. // only if all animatables are ready and exist
  50763. if (this.isStarted && this._animatables.length === this._targetedAnimations.length) {
  50764. if (loop !== undefined) {
  50765. for (var index = 0; index < this._animatables.length; index++) {
  50766. var animatable = this._animatables[index];
  50767. animatable.loopAnimation = loop;
  50768. }
  50769. }
  50770. this.restart();
  50771. }
  50772. else {
  50773. this.stop();
  50774. this.start(loop, this._speedRatio);
  50775. }
  50776. return this;
  50777. };
  50778. /**
  50779. * Reset all animations to initial state
  50780. */
  50781. AnimationGroup.prototype.reset = function () {
  50782. if (!this._isStarted) {
  50783. return this;
  50784. }
  50785. for (var index = 0; index < this._animatables.length; index++) {
  50786. var animatable = this._animatables[index];
  50787. animatable.reset();
  50788. }
  50789. return this;
  50790. };
  50791. /**
  50792. * Restart animations from key 0
  50793. */
  50794. AnimationGroup.prototype.restart = function () {
  50795. if (!this._isStarted) {
  50796. return this;
  50797. }
  50798. for (var index = 0; index < this._animatables.length; index++) {
  50799. var animatable = this._animatables[index];
  50800. animatable.restart();
  50801. }
  50802. return this;
  50803. };
  50804. /**
  50805. * Stop all animations
  50806. */
  50807. AnimationGroup.prototype.stop = function () {
  50808. if (!this._isStarted) {
  50809. return this;
  50810. }
  50811. var list = this._animatables.slice();
  50812. for (var index = 0; index < list.length; index++) {
  50813. list[index].stop();
  50814. }
  50815. this._isStarted = false;
  50816. return this;
  50817. };
  50818. /**
  50819. * Set animation weight for all animatables
  50820. * @param weight defines the weight to use
  50821. * @return the animationGroup
  50822. * @see http://doc.babylonjs.com/babylon101/animations#animation-weights
  50823. */
  50824. AnimationGroup.prototype.setWeightForAllAnimatables = function (weight) {
  50825. for (var index = 0; index < this._animatables.length; index++) {
  50826. var animatable = this._animatables[index];
  50827. animatable.weight = weight;
  50828. }
  50829. return this;
  50830. };
  50831. /**
  50832. * Synchronize and normalize all animatables with a source animatable
  50833. * @param root defines the root animatable to synchronize with
  50834. * @return the animationGroup
  50835. * @see http://doc.babylonjs.com/babylon101/animations#animation-weights
  50836. */
  50837. AnimationGroup.prototype.syncAllAnimationsWith = function (root) {
  50838. for (var index = 0; index < this._animatables.length; index++) {
  50839. var animatable = this._animatables[index];
  50840. animatable.syncWith(root);
  50841. }
  50842. return this;
  50843. };
  50844. /**
  50845. * Goes to a specific frame in this animation group
  50846. * @param frame the frame number to go to
  50847. * @return the animationGroup
  50848. */
  50849. AnimationGroup.prototype.goToFrame = function (frame) {
  50850. if (!this._isStarted) {
  50851. return this;
  50852. }
  50853. for (var index = 0; index < this._animatables.length; index++) {
  50854. var animatable = this._animatables[index];
  50855. animatable.goToFrame(frame);
  50856. }
  50857. return this;
  50858. };
  50859. /**
  50860. * Dispose all associated resources
  50861. */
  50862. AnimationGroup.prototype.dispose = function () {
  50863. this._targetedAnimations = [];
  50864. this._animatables = [];
  50865. var index = this._scene.animationGroups.indexOf(this);
  50866. if (index > -1) {
  50867. this._scene.animationGroups.splice(index, 1);
  50868. }
  50869. };
  50870. AnimationGroup.prototype._checkAnimationGroupEnded = function (animatable) {
  50871. // animatable should be taken out of the array
  50872. var idx = this._animatables.indexOf(animatable);
  50873. if (idx > -1) {
  50874. this._animatables.splice(idx, 1);
  50875. }
  50876. // all animatables were removed? animation group ended!
  50877. if (this._animatables.length === 0) {
  50878. this._isStarted = false;
  50879. this.onAnimationGroupEndObservable.notifyObservers(this);
  50880. }
  50881. };
  50882. return AnimationGroup;
  50883. }());
  50884. BABYLON.AnimationGroup = AnimationGroup;
  50885. })(BABYLON || (BABYLON = {}));
  50886. //# sourceMappingURL=babylon.animationGroup.js.map
  50887. var BABYLON;
  50888. (function (BABYLON) {
  50889. // Static values to help the garbage collector
  50890. // Quaternion
  50891. var _staticOffsetValueQuaternion = Object.freeze(new BABYLON.Quaternion(0, 0, 0, 0));
  50892. // Vector3
  50893. var _staticOffsetValueVector3 = Object.freeze(BABYLON.Vector3.Zero());
  50894. // Vector2
  50895. var _staticOffsetValueVector2 = Object.freeze(BABYLON.Vector2.Zero());
  50896. // Size
  50897. var _staticOffsetValueSize = Object.freeze(BABYLON.Size.Zero());
  50898. // Color3
  50899. var _staticOffsetValueColor3 = Object.freeze(BABYLON.Color3.Black());
  50900. /**
  50901. * Defines a runtime animation
  50902. */
  50903. var RuntimeAnimation = /** @class */ (function () {
  50904. /**
  50905. * Create a new RuntimeAnimation object
  50906. * @param target defines the target of the animation
  50907. * @param animation defines the source animation object
  50908. * @param scene defines the hosting scene
  50909. * @param host defines the initiating Animatable
  50910. */
  50911. function RuntimeAnimation(target, animation, scene, host) {
  50912. var _this = this;
  50913. this._events = new Array();
  50914. /**
  50915. * The current frame of the runtime animation
  50916. */
  50917. this._currentFrame = 0;
  50918. /**
  50919. * The original value of the runtime animation
  50920. */
  50921. this._originalValue = new Array();
  50922. /**
  50923. * The offsets cache of the runtime animation
  50924. */
  50925. this._offsetsCache = {};
  50926. /**
  50927. * The high limits cache of the runtime animation
  50928. */
  50929. this._highLimitsCache = {};
  50930. /**
  50931. * Specifies if the runtime animation has been stopped
  50932. */
  50933. this._stopped = false;
  50934. /**
  50935. * The blending factor of the runtime animation
  50936. */
  50937. this._blendingFactor = 0;
  50938. /**
  50939. * The target path of the runtime animation
  50940. */
  50941. this._targetPath = "";
  50942. /**
  50943. * The weight of the runtime animation
  50944. */
  50945. this._weight = 1.0;
  50946. /**
  50947. * The ratio offset of the runtime animation
  50948. */
  50949. this._ratioOffset = 0;
  50950. /**
  50951. * The previous delay of the runtime animation
  50952. */
  50953. this._previousDelay = 0;
  50954. /**
  50955. * The previous ratio of the runtime animation
  50956. */
  50957. this._previousRatio = 0;
  50958. this._animation = animation;
  50959. this._target = target;
  50960. this._scene = scene;
  50961. this._host = host;
  50962. animation._runtimeAnimations.push(this);
  50963. // Cloning events locally
  50964. var events = animation.getEvents();
  50965. if (events && events.length > 0) {
  50966. events.forEach(function (e) {
  50967. _this._events.push(e._clone());
  50968. });
  50969. }
  50970. }
  50971. Object.defineProperty(RuntimeAnimation.prototype, "currentFrame", {
  50972. /**
  50973. * Gets the current frame of the runtime animation
  50974. */
  50975. get: function () {
  50976. return this._currentFrame;
  50977. },
  50978. enumerable: true,
  50979. configurable: true
  50980. });
  50981. Object.defineProperty(RuntimeAnimation.prototype, "weight", {
  50982. /**
  50983. * Gets the weight of the runtime animation
  50984. */
  50985. get: function () {
  50986. return this._weight;
  50987. },
  50988. enumerable: true,
  50989. configurable: true
  50990. });
  50991. Object.defineProperty(RuntimeAnimation.prototype, "currentValue", {
  50992. /**
  50993. * Gets the current value of the runtime animation
  50994. */
  50995. get: function () {
  50996. return this._currentValue;
  50997. },
  50998. enumerable: true,
  50999. configurable: true
  51000. });
  51001. Object.defineProperty(RuntimeAnimation.prototype, "targetPath", {
  51002. /**
  51003. * Gets the target path of the runtime animation
  51004. */
  51005. get: function () {
  51006. return this._targetPath;
  51007. },
  51008. enumerable: true,
  51009. configurable: true
  51010. });
  51011. Object.defineProperty(RuntimeAnimation.prototype, "target", {
  51012. /**
  51013. * Gets the actual target of the runtime animation
  51014. */
  51015. get: function () {
  51016. return this._activeTarget;
  51017. },
  51018. enumerable: true,
  51019. configurable: true
  51020. });
  51021. Object.defineProperty(RuntimeAnimation.prototype, "animation", {
  51022. /**
  51023. * Gets the animation from the runtime animation
  51024. */
  51025. get: function () {
  51026. return this._animation;
  51027. },
  51028. enumerable: true,
  51029. configurable: true
  51030. });
  51031. /**
  51032. * Resets the runtime animation to the beginning
  51033. * @param restoreOriginal defines whether to restore the target property to the original value
  51034. */
  51035. RuntimeAnimation.prototype.reset = function (restoreOriginal) {
  51036. if (restoreOriginal === void 0) { restoreOriginal = false; }
  51037. if (restoreOriginal) {
  51038. if (this._target instanceof Array) {
  51039. var index = 0;
  51040. for (var _i = 0, _a = this._target; _i < _a.length; _i++) {
  51041. var target = _a[_i];
  51042. if (this._originalValue[index] !== undefined) {
  51043. this._setValue(target, this._originalValue[index], -1);
  51044. }
  51045. index++;
  51046. }
  51047. }
  51048. else {
  51049. if (this._originalValue[0] !== undefined) {
  51050. this._setValue(this._target, this._originalValue[0], -1);
  51051. }
  51052. }
  51053. }
  51054. this._offsetsCache = {};
  51055. this._highLimitsCache = {};
  51056. this._currentFrame = 0;
  51057. this._blendingFactor = 0;
  51058. this._originalValue = new Array();
  51059. // Events
  51060. for (var index = 0; index < this._events.length; index++) {
  51061. this._events[index].isDone = false;
  51062. }
  51063. };
  51064. /**
  51065. * Specifies if the runtime animation is stopped
  51066. * @returns Boolean specifying if the runtime animation is stopped
  51067. */
  51068. RuntimeAnimation.prototype.isStopped = function () {
  51069. return this._stopped;
  51070. };
  51071. /**
  51072. * Disposes of the runtime animation
  51073. */
  51074. RuntimeAnimation.prototype.dispose = function () {
  51075. var index = this._animation.runtimeAnimations.indexOf(this);
  51076. if (index > -1) {
  51077. this._animation.runtimeAnimations.splice(index, 1);
  51078. }
  51079. };
  51080. /**
  51081. * Interpolates the animation from the current frame
  51082. * @param currentFrame The frame to interpolate the animation to
  51083. * @param repeatCount The number of times that the animation should loop
  51084. * @param loopMode The type of looping mode to use
  51085. * @param offsetValue Animation offset value
  51086. * @param highLimitValue The high limit value
  51087. * @returns The interpolated value
  51088. */
  51089. RuntimeAnimation.prototype._interpolate = function (currentFrame, repeatCount, loopMode, offsetValue, highLimitValue) {
  51090. this._currentFrame = currentFrame;
  51091. if (this._animation.dataType === BABYLON.Animation.ANIMATIONTYPE_MATRIX && !this._workValue) {
  51092. this._workValue = BABYLON.Matrix.Zero();
  51093. }
  51094. return this._animation._interpolate(currentFrame, repeatCount, this._workValue, loopMode, offsetValue, highLimitValue);
  51095. };
  51096. /**
  51097. * Apply the interpolated value to the target
  51098. * @param currentValue defines the value computed by the animation
  51099. * @param weight defines the weight to apply to this value (Defaults to 1.0)
  51100. */
  51101. RuntimeAnimation.prototype.setValue = function (currentValue, weight) {
  51102. if (weight === void 0) { weight = 1.0; }
  51103. if (this._target instanceof Array) {
  51104. var index = 0;
  51105. for (var _i = 0, _a = this._target; _i < _a.length; _i++) {
  51106. var target = _a[_i];
  51107. this._setValue(target, currentValue, weight, index);
  51108. index++;
  51109. }
  51110. }
  51111. else {
  51112. this._setValue(this._target, currentValue, weight);
  51113. }
  51114. };
  51115. RuntimeAnimation.prototype._setValue = function (target, currentValue, weight, targetIndex) {
  51116. if (targetIndex === void 0) { targetIndex = 0; }
  51117. // Set value
  51118. var path;
  51119. var destination;
  51120. var targetPropertyPath = this._animation.targetPropertyPath;
  51121. if (targetPropertyPath.length > 1) {
  51122. var property = target[targetPropertyPath[0]];
  51123. for (var index = 1; index < targetPropertyPath.length - 1; index++) {
  51124. property = property[targetPropertyPath[index]];
  51125. }
  51126. path = targetPropertyPath[targetPropertyPath.length - 1];
  51127. destination = property;
  51128. }
  51129. else {
  51130. path = targetPropertyPath[0];
  51131. destination = target;
  51132. }
  51133. this._targetPath = path;
  51134. this._activeTarget = destination;
  51135. this._weight = weight;
  51136. if (this._originalValue[targetIndex] === undefined) {
  51137. var originalValue = void 0;
  51138. if (destination.getRestPose && path === "_matrix") { // For bones
  51139. originalValue = destination.getRestPose();
  51140. }
  51141. else {
  51142. originalValue = destination[path];
  51143. }
  51144. if (originalValue && originalValue.clone) {
  51145. this._originalValue[targetIndex] = originalValue.clone();
  51146. }
  51147. else {
  51148. this._originalValue[targetIndex] = originalValue;
  51149. }
  51150. }
  51151. // Blending
  51152. var enableBlending = target && target.animationPropertiesOverride ? target.animationPropertiesOverride.enableBlending : this._animation.enableBlending;
  51153. if (enableBlending && this._blendingFactor <= 1.0) {
  51154. if (!this._originalBlendValue) {
  51155. var originalValue = destination[path];
  51156. if (originalValue.clone) {
  51157. this._originalBlendValue = originalValue.clone();
  51158. }
  51159. else {
  51160. this._originalBlendValue = originalValue;
  51161. }
  51162. }
  51163. if (this._originalBlendValue.m) { // Matrix
  51164. if (BABYLON.Animation.AllowMatrixDecomposeForInterpolation) {
  51165. if (this._currentValue) {
  51166. BABYLON.Matrix.DecomposeLerpToRef(this._originalBlendValue, currentValue, this._blendingFactor, this._currentValue);
  51167. }
  51168. else {
  51169. this._currentValue = BABYLON.Matrix.DecomposeLerp(this._originalBlendValue, currentValue, this._blendingFactor);
  51170. }
  51171. }
  51172. else {
  51173. if (this._currentValue) {
  51174. BABYLON.Matrix.LerpToRef(this._originalBlendValue, currentValue, this._blendingFactor, this._currentValue);
  51175. }
  51176. else {
  51177. this._currentValue = BABYLON.Matrix.Lerp(this._originalBlendValue, currentValue, this._blendingFactor);
  51178. }
  51179. }
  51180. }
  51181. else {
  51182. this._currentValue = BABYLON.Animation._UniversalLerp(this._originalBlendValue, currentValue, this._blendingFactor);
  51183. }
  51184. var blendingSpeed = target && target.animationPropertiesOverride ? target.animationPropertiesOverride.blendingSpeed : this._animation.blendingSpeed;
  51185. this._blendingFactor += blendingSpeed;
  51186. }
  51187. else {
  51188. this._currentValue = currentValue;
  51189. }
  51190. if (weight !== -1.0) {
  51191. this._scene._registerTargetForLateAnimationBinding(this, this._originalValue[targetIndex]);
  51192. }
  51193. else {
  51194. destination[path] = this._currentValue;
  51195. }
  51196. if (target.markAsDirty) {
  51197. target.markAsDirty(this._animation.targetProperty);
  51198. }
  51199. };
  51200. /**
  51201. * Gets the loop pmode of the runtime animation
  51202. * @returns Loop Mode
  51203. */
  51204. RuntimeAnimation.prototype._getCorrectLoopMode = function () {
  51205. if (this._target && this._target.animationPropertiesOverride) {
  51206. return this._target.animationPropertiesOverride.loopMode;
  51207. }
  51208. return this._animation.loopMode;
  51209. };
  51210. /**
  51211. * Move the current animation to a given frame
  51212. * @param frame defines the frame to move to
  51213. */
  51214. RuntimeAnimation.prototype.goToFrame = function (frame) {
  51215. var keys = this._animation.getKeys();
  51216. if (frame < keys[0].frame) {
  51217. frame = keys[0].frame;
  51218. }
  51219. else if (frame > keys[keys.length - 1].frame) {
  51220. frame = keys[keys.length - 1].frame;
  51221. }
  51222. var currentValue = this._interpolate(frame, 0, this._getCorrectLoopMode());
  51223. this.setValue(currentValue, -1);
  51224. };
  51225. /**
  51226. * @hidden Internal use only
  51227. */
  51228. RuntimeAnimation.prototype._prepareForSpeedRatioChange = function (newSpeedRatio) {
  51229. var newRatio = this._previousDelay * (this._animation.framePerSecond * newSpeedRatio) / 1000.0;
  51230. this._ratioOffset = this._previousRatio - newRatio;
  51231. };
  51232. /**
  51233. * Execute the current animation
  51234. * @param delay defines the delay to add to the current frame
  51235. * @param from defines the lower bound of the animation range
  51236. * @param to defines the upper bound of the animation range
  51237. * @param loop defines if the current animation must loop
  51238. * @param speedRatio defines the current speed ratio
  51239. * @param weight defines the weight of the animation (default is -1 so no weight)
  51240. * @returns a boolean indicating if the animation is running
  51241. */
  51242. RuntimeAnimation.prototype.animate = function (delay, from, to, loop, speedRatio, weight) {
  51243. if (weight === void 0) { weight = -1.0; }
  51244. var targetPropertyPath = this._animation.targetPropertyPath;
  51245. if (!targetPropertyPath || targetPropertyPath.length < 1) {
  51246. this._stopped = true;
  51247. return false;
  51248. }
  51249. var returnValue = true;
  51250. var keys = this._animation.getKeys();
  51251. // Adding a start key at frame 0 if missing
  51252. if (keys[0].frame !== 0) {
  51253. var newKey = { frame: 0, value: keys[0].value };
  51254. keys.splice(0, 0, newKey);
  51255. }
  51256. // Adding a duplicate key when there is only one key at frame zero
  51257. else if (keys.length === 1) {
  51258. var newKey = { frame: 0.001, value: keys[0].value };
  51259. keys.push(newKey);
  51260. }
  51261. // Check limits
  51262. if (from < keys[0].frame || from > keys[keys.length - 1].frame) {
  51263. from = keys[0].frame;
  51264. }
  51265. if (to < keys[0].frame || to > keys[keys.length - 1].frame) {
  51266. to = keys[keys.length - 1].frame;
  51267. }
  51268. //to and from cannot be the same key
  51269. if (from === to) {
  51270. if (from > keys[0].frame) {
  51271. from--;
  51272. }
  51273. else if (to < keys[keys.length - 1].frame) {
  51274. to++;
  51275. }
  51276. }
  51277. // Compute ratio
  51278. var range = to - from;
  51279. var offsetValue;
  51280. // ratio represents the frame delta between from and to
  51281. var ratio = (delay * (this._animation.framePerSecond * speedRatio) / 1000.0) + this._ratioOffset;
  51282. var highLimitValue = 0;
  51283. this._previousDelay = delay;
  51284. this._previousRatio = ratio;
  51285. if (((to > from && ratio >= range) || (from > to && ratio <= range)) && !loop) { // If we are out of range and not looping get back to caller
  51286. returnValue = false;
  51287. highLimitValue = this._animation._getKeyValue(keys[keys.length - 1].value);
  51288. }
  51289. else {
  51290. // Get max value if required
  51291. if (this._getCorrectLoopMode() !== BABYLON.Animation.ANIMATIONLOOPMODE_CYCLE) {
  51292. var keyOffset = to.toString() + from.toString();
  51293. if (!this._offsetsCache[keyOffset]) {
  51294. var fromValue = this._interpolate(from, 0, BABYLON.Animation.ANIMATIONLOOPMODE_CYCLE);
  51295. var toValue = this._interpolate(to, 0, BABYLON.Animation.ANIMATIONLOOPMODE_CYCLE);
  51296. switch (this._animation.dataType) {
  51297. // Float
  51298. case BABYLON.Animation.ANIMATIONTYPE_FLOAT:
  51299. this._offsetsCache[keyOffset] = toValue - fromValue;
  51300. break;
  51301. // Quaternion
  51302. case BABYLON.Animation.ANIMATIONTYPE_QUATERNION:
  51303. this._offsetsCache[keyOffset] = toValue.subtract(fromValue);
  51304. break;
  51305. // Vector3
  51306. case BABYLON.Animation.ANIMATIONTYPE_VECTOR3:
  51307. this._offsetsCache[keyOffset] = toValue.subtract(fromValue);
  51308. // Vector2
  51309. case BABYLON.Animation.ANIMATIONTYPE_VECTOR2:
  51310. this._offsetsCache[keyOffset] = toValue.subtract(fromValue);
  51311. // Size
  51312. case BABYLON.Animation.ANIMATIONTYPE_SIZE:
  51313. this._offsetsCache[keyOffset] = toValue.subtract(fromValue);
  51314. // Color3
  51315. case BABYLON.Animation.ANIMATIONTYPE_COLOR3:
  51316. this._offsetsCache[keyOffset] = toValue.subtract(fromValue);
  51317. default:
  51318. break;
  51319. }
  51320. this._highLimitsCache[keyOffset] = toValue;
  51321. }
  51322. highLimitValue = this._highLimitsCache[keyOffset];
  51323. offsetValue = this._offsetsCache[keyOffset];
  51324. }
  51325. }
  51326. if (offsetValue === undefined) {
  51327. switch (this._animation.dataType) {
  51328. // Float
  51329. case BABYLON.Animation.ANIMATIONTYPE_FLOAT:
  51330. offsetValue = 0;
  51331. break;
  51332. // Quaternion
  51333. case BABYLON.Animation.ANIMATIONTYPE_QUATERNION:
  51334. offsetValue = _staticOffsetValueQuaternion;
  51335. break;
  51336. // Vector3
  51337. case BABYLON.Animation.ANIMATIONTYPE_VECTOR3:
  51338. offsetValue = _staticOffsetValueVector3;
  51339. break;
  51340. // Vector2
  51341. case BABYLON.Animation.ANIMATIONTYPE_VECTOR2:
  51342. offsetValue = _staticOffsetValueVector2;
  51343. break;
  51344. // Size
  51345. case BABYLON.Animation.ANIMATIONTYPE_SIZE:
  51346. offsetValue = _staticOffsetValueSize;
  51347. break;
  51348. // Color3
  51349. case BABYLON.Animation.ANIMATIONTYPE_COLOR3:
  51350. offsetValue = _staticOffsetValueColor3;
  51351. }
  51352. }
  51353. // Compute value
  51354. var repeatCount = (ratio / range) >> 0;
  51355. var currentFrame = returnValue ? from + ratio % range : to;
  51356. // Need to normalize?
  51357. if (this._host && this._host.syncRoot) {
  51358. var syncRoot = this._host.syncRoot;
  51359. var hostNormalizedFrame = (syncRoot.masterFrame - syncRoot.fromFrame) / (syncRoot.toFrame - syncRoot.fromFrame);
  51360. currentFrame = from + (to - from) * hostNormalizedFrame;
  51361. }
  51362. // Reset events if looping
  51363. var events = this._events;
  51364. if (range > 0 && this.currentFrame > currentFrame ||
  51365. range < 0 && this.currentFrame < currentFrame) {
  51366. // Need to reset animation events
  51367. for (var index = 0; index < events.length; index++) {
  51368. if (!events[index].onlyOnce) {
  51369. // reset event, the animation is looping
  51370. events[index].isDone = false;
  51371. }
  51372. }
  51373. }
  51374. var currentValue = this._interpolate(currentFrame, repeatCount, this._getCorrectLoopMode(), offsetValue, highLimitValue);
  51375. // Set value
  51376. this.setValue(currentValue, weight);
  51377. // Check events
  51378. for (var index = 0; index < events.length; index++) {
  51379. // Make sure current frame has passed event frame and that event frame is within the current range
  51380. // Also, handle both forward and reverse animations
  51381. if ((range > 0 && currentFrame >= events[index].frame && events[index].frame >= from) ||
  51382. (range < 0 && currentFrame <= events[index].frame && events[index].frame <= from)) {
  51383. var event = events[index];
  51384. if (!event.isDone) {
  51385. // If event should be done only once, remove it.
  51386. if (event.onlyOnce) {
  51387. events.splice(index, 1);
  51388. index--;
  51389. }
  51390. event.isDone = true;
  51391. event.action(currentFrame);
  51392. } // Don't do anything if the event has already be done.
  51393. }
  51394. }
  51395. if (!returnValue) {
  51396. this._stopped = true;
  51397. }
  51398. return returnValue;
  51399. };
  51400. return RuntimeAnimation;
  51401. }());
  51402. BABYLON.RuntimeAnimation = RuntimeAnimation;
  51403. })(BABYLON || (BABYLON = {}));
  51404. //# sourceMappingURL=babylon.runtimeAnimation.js.map
  51405. var BABYLON;
  51406. (function (BABYLON) {
  51407. /**
  51408. * Class used to store an actual running animation
  51409. */
  51410. var Animatable = /** @class */ (function () {
  51411. /**
  51412. * Creates a new Animatable
  51413. * @param scene defines the hosting scene
  51414. * @param target defines the target object
  51415. * @param fromFrame defines the starting frame number (default is 0)
  51416. * @param toFrame defines the ending frame number (default is 100)
  51417. * @param loopAnimation defines if the animation must loop (default is false)
  51418. * @param speedRatio defines the factor to apply to animation speed (default is 1)
  51419. * @param onAnimationEnd defines a callback to call when animation ends if it is not looping
  51420. * @param animations defines a group of animation to add to the new Animatable
  51421. */
  51422. function Animatable(scene,
  51423. /** defines the target object */
  51424. target,
  51425. /** defines the starting frame number (default is 0) */
  51426. fromFrame,
  51427. /** defines the ending frame number (default is 100) */
  51428. toFrame,
  51429. /** defines if the animation must loop (default is false) */
  51430. loopAnimation, speedRatio,
  51431. /** defines a callback to call when animation ends if it is not looping */
  51432. onAnimationEnd, animations) {
  51433. if (fromFrame === void 0) { fromFrame = 0; }
  51434. if (toFrame === void 0) { toFrame = 100; }
  51435. if (loopAnimation === void 0) { loopAnimation = false; }
  51436. if (speedRatio === void 0) { speedRatio = 1.0; }
  51437. this.target = target;
  51438. this.fromFrame = fromFrame;
  51439. this.toFrame = toFrame;
  51440. this.loopAnimation = loopAnimation;
  51441. this.onAnimationEnd = onAnimationEnd;
  51442. this._localDelayOffset = null;
  51443. this._pausedDelay = null;
  51444. this._runtimeAnimations = new Array();
  51445. this._paused = false;
  51446. this._speedRatio = 1;
  51447. this._weight = -1.0;
  51448. /**
  51449. * Gets or sets a boolean indicating if the animatable must be disposed and removed at the end of the animation.
  51450. * This will only apply for non looping animation (default is true)
  51451. */
  51452. this.disposeOnEnd = true;
  51453. /**
  51454. * Gets a boolean indicating if the animation has started
  51455. */
  51456. this.animationStarted = false;
  51457. /**
  51458. * Observer raised when the animation ends
  51459. */
  51460. this.onAnimationEndObservable = new BABYLON.Observable();
  51461. this._scene = scene;
  51462. if (animations) {
  51463. this.appendAnimations(target, animations);
  51464. }
  51465. this._speedRatio = speedRatio;
  51466. scene._activeAnimatables.push(this);
  51467. }
  51468. Object.defineProperty(Animatable.prototype, "syncRoot", {
  51469. /**
  51470. * Gets the root Animatable used to synchronize and normalize animations
  51471. */
  51472. get: function () {
  51473. return this._syncRoot;
  51474. },
  51475. enumerable: true,
  51476. configurable: true
  51477. });
  51478. Object.defineProperty(Animatable.prototype, "masterFrame", {
  51479. /**
  51480. * Gets the current frame of the first RuntimeAnimation
  51481. * Used to synchronize Animatables
  51482. */
  51483. get: function () {
  51484. if (this._runtimeAnimations.length === 0) {
  51485. return 0;
  51486. }
  51487. return this._runtimeAnimations[0].currentFrame;
  51488. },
  51489. enumerable: true,
  51490. configurable: true
  51491. });
  51492. Object.defineProperty(Animatable.prototype, "weight", {
  51493. /**
  51494. * Gets or sets the animatable weight (-1.0 by default meaning not weighted)
  51495. */
  51496. get: function () {
  51497. return this._weight;
  51498. },
  51499. set: function (value) {
  51500. if (value === -1) { // -1 is ok and means no weight
  51501. this._weight = -1;
  51502. return;
  51503. }
  51504. // Else weight must be in [0, 1] range
  51505. this._weight = Math.min(Math.max(value, 0), 1.0);
  51506. },
  51507. enumerable: true,
  51508. configurable: true
  51509. });
  51510. Object.defineProperty(Animatable.prototype, "speedRatio", {
  51511. /**
  51512. * Gets or sets the speed ratio to apply to the animatable (1.0 by default)
  51513. */
  51514. get: function () {
  51515. return this._speedRatio;
  51516. },
  51517. set: function (value) {
  51518. for (var index = 0; index < this._runtimeAnimations.length; index++) {
  51519. var animation = this._runtimeAnimations[index];
  51520. animation._prepareForSpeedRatioChange(value);
  51521. }
  51522. this._speedRatio = value;
  51523. },
  51524. enumerable: true,
  51525. configurable: true
  51526. });
  51527. // Methods
  51528. /**
  51529. * Synchronize and normalize current Animatable with a source Animatable
  51530. * This is useful when using animation weights and when animations are not of the same length
  51531. * @param root defines the root Animatable to synchronize with
  51532. * @returns the current Animatable
  51533. */
  51534. Animatable.prototype.syncWith = function (root) {
  51535. this._syncRoot = root;
  51536. if (root) {
  51537. // Make sure this animatable will animate after the root
  51538. var index = this._scene._activeAnimatables.indexOf(this);
  51539. if (index > -1) {
  51540. this._scene._activeAnimatables.splice(index, 1);
  51541. this._scene._activeAnimatables.push(this);
  51542. }
  51543. }
  51544. return this;
  51545. };
  51546. /**
  51547. * Gets the list of runtime animations
  51548. * @returns an array of RuntimeAnimation
  51549. */
  51550. Animatable.prototype.getAnimations = function () {
  51551. return this._runtimeAnimations;
  51552. };
  51553. /**
  51554. * Adds more animations to the current animatable
  51555. * @param target defines the target of the animations
  51556. * @param animations defines the new animations to add
  51557. */
  51558. Animatable.prototype.appendAnimations = function (target, animations) {
  51559. for (var index = 0; index < animations.length; index++) {
  51560. var animation = animations[index];
  51561. this._runtimeAnimations.push(new BABYLON.RuntimeAnimation(target, animation, this._scene, this));
  51562. }
  51563. };
  51564. /**
  51565. * Gets the source animation for a specific property
  51566. * @param property defines the propertyu to look for
  51567. * @returns null or the source animation for the given property
  51568. */
  51569. Animatable.prototype.getAnimationByTargetProperty = function (property) {
  51570. var runtimeAnimations = this._runtimeAnimations;
  51571. for (var index = 0; index < runtimeAnimations.length; index++) {
  51572. if (runtimeAnimations[index].animation.targetProperty === property) {
  51573. return runtimeAnimations[index].animation;
  51574. }
  51575. }
  51576. return null;
  51577. };
  51578. /**
  51579. * Gets the runtime animation for a specific property
  51580. * @param property defines the propertyu to look for
  51581. * @returns null or the runtime animation for the given property
  51582. */
  51583. Animatable.prototype.getRuntimeAnimationByTargetProperty = function (property) {
  51584. var runtimeAnimations = this._runtimeAnimations;
  51585. for (var index = 0; index < runtimeAnimations.length; index++) {
  51586. if (runtimeAnimations[index].animation.targetProperty === property) {
  51587. return runtimeAnimations[index];
  51588. }
  51589. }
  51590. return null;
  51591. };
  51592. /**
  51593. * Resets the animatable to its original state
  51594. */
  51595. Animatable.prototype.reset = function () {
  51596. var runtimeAnimations = this._runtimeAnimations;
  51597. for (var index = 0; index < runtimeAnimations.length; index++) {
  51598. runtimeAnimations[index].reset(true);
  51599. }
  51600. this._localDelayOffset = null;
  51601. this._pausedDelay = null;
  51602. };
  51603. /**
  51604. * Allows the animatable to blend with current running animations
  51605. * @see http://doc.babylonjs.com/babylon101/animations#animation-blending
  51606. * @param blendingSpeed defines the blending speed to use
  51607. */
  51608. Animatable.prototype.enableBlending = function (blendingSpeed) {
  51609. var runtimeAnimations = this._runtimeAnimations;
  51610. for (var index = 0; index < runtimeAnimations.length; index++) {
  51611. runtimeAnimations[index].animation.enableBlending = true;
  51612. runtimeAnimations[index].animation.blendingSpeed = blendingSpeed;
  51613. }
  51614. };
  51615. /**
  51616. * Disable animation blending
  51617. * @see http://doc.babylonjs.com/babylon101/animations#animation-blending
  51618. */
  51619. Animatable.prototype.disableBlending = function () {
  51620. var runtimeAnimations = this._runtimeAnimations;
  51621. for (var index = 0; index < runtimeAnimations.length; index++) {
  51622. runtimeAnimations[index].animation.enableBlending = false;
  51623. }
  51624. };
  51625. /**
  51626. * Jump directly to a given frame
  51627. * @param frame defines the frame to jump to
  51628. */
  51629. Animatable.prototype.goToFrame = function (frame) {
  51630. var runtimeAnimations = this._runtimeAnimations;
  51631. if (runtimeAnimations[0]) {
  51632. var fps = runtimeAnimations[0].animation.framePerSecond;
  51633. var currentFrame = runtimeAnimations[0].currentFrame;
  51634. var adjustTime = frame - currentFrame;
  51635. var delay = adjustTime * 1000 / (fps * this.speedRatio);
  51636. if (this._localDelayOffset === null) {
  51637. this._localDelayOffset = 0;
  51638. }
  51639. this._localDelayOffset -= delay;
  51640. }
  51641. for (var index = 0; index < runtimeAnimations.length; index++) {
  51642. runtimeAnimations[index].goToFrame(frame);
  51643. }
  51644. };
  51645. /**
  51646. * Pause the animation
  51647. */
  51648. Animatable.prototype.pause = function () {
  51649. if (this._paused) {
  51650. return;
  51651. }
  51652. this._paused = true;
  51653. };
  51654. /**
  51655. * Restart the animation
  51656. */
  51657. Animatable.prototype.restart = function () {
  51658. this._paused = false;
  51659. };
  51660. Animatable.prototype._raiseOnAnimationEnd = function () {
  51661. if (this.onAnimationEnd) {
  51662. this.onAnimationEnd();
  51663. }
  51664. this.onAnimationEndObservable.notifyObservers(this);
  51665. };
  51666. /**
  51667. * Stop and delete the current animation
  51668. * @param animationName defines a string used to only stop some of the runtime animations instead of all
  51669. * @param targetMask - a function that determines if the animation should be stopped based on its target (all animations will be stopped if both this and animationName are empty)
  51670. */
  51671. Animatable.prototype.stop = function (animationName, targetMask) {
  51672. if (animationName || targetMask) {
  51673. var idx = this._scene._activeAnimatables.indexOf(this);
  51674. if (idx > -1) {
  51675. var runtimeAnimations = this._runtimeAnimations;
  51676. for (var index = runtimeAnimations.length - 1; index >= 0; index--) {
  51677. var runtimeAnimation = runtimeAnimations[index];
  51678. if (animationName && runtimeAnimation.animation.name != animationName) {
  51679. continue;
  51680. }
  51681. if (targetMask && !targetMask(runtimeAnimation.target)) {
  51682. continue;
  51683. }
  51684. runtimeAnimation.dispose();
  51685. runtimeAnimations.splice(index, 1);
  51686. }
  51687. if (runtimeAnimations.length == 0) {
  51688. this._scene._activeAnimatables.splice(idx, 1);
  51689. this._raiseOnAnimationEnd();
  51690. }
  51691. }
  51692. }
  51693. else {
  51694. var index = this._scene._activeAnimatables.indexOf(this);
  51695. if (index > -1) {
  51696. this._scene._activeAnimatables.splice(index, 1);
  51697. var runtimeAnimations = this._runtimeAnimations;
  51698. for (var index = 0; index < runtimeAnimations.length; index++) {
  51699. runtimeAnimations[index].dispose();
  51700. }
  51701. this._raiseOnAnimationEnd();
  51702. }
  51703. }
  51704. };
  51705. /**
  51706. * Wait asynchronously for the animation to end
  51707. * @returns a promise which will be fullfilled when the animation ends
  51708. */
  51709. Animatable.prototype.waitAsync = function () {
  51710. var _this = this;
  51711. return new Promise(function (resolve, reject) {
  51712. _this.onAnimationEndObservable.add(function () {
  51713. resolve(_this);
  51714. }, undefined, undefined, _this, true);
  51715. });
  51716. };
  51717. /** @hidden */
  51718. Animatable.prototype._animate = function (delay) {
  51719. if (this._paused) {
  51720. this.animationStarted = false;
  51721. if (this._pausedDelay === null) {
  51722. this._pausedDelay = delay;
  51723. }
  51724. return true;
  51725. }
  51726. if (this._localDelayOffset === null) {
  51727. this._localDelayOffset = delay;
  51728. this._pausedDelay = null;
  51729. }
  51730. else if (this._pausedDelay !== null) {
  51731. this._localDelayOffset += delay - this._pausedDelay;
  51732. this._pausedDelay = null;
  51733. }
  51734. if (this._weight === 0) { // We consider that an animation with a weight === 0 is "actively" paused
  51735. return true;
  51736. }
  51737. // Animating
  51738. var running = false;
  51739. var runtimeAnimations = this._runtimeAnimations;
  51740. var index;
  51741. for (index = 0; index < runtimeAnimations.length; index++) {
  51742. var animation = runtimeAnimations[index];
  51743. var isRunning = animation.animate(delay - this._localDelayOffset, this.fromFrame, this.toFrame, this.loopAnimation, this._speedRatio, this._weight);
  51744. running = running || isRunning;
  51745. }
  51746. this.animationStarted = running;
  51747. if (!running) {
  51748. if (this.disposeOnEnd) {
  51749. // Remove from active animatables
  51750. index = this._scene._activeAnimatables.indexOf(this);
  51751. this._scene._activeAnimatables.splice(index, 1);
  51752. // Dispose all runtime animations
  51753. for (index = 0; index < runtimeAnimations.length; index++) {
  51754. runtimeAnimations[index].dispose();
  51755. }
  51756. }
  51757. this._raiseOnAnimationEnd();
  51758. if (this.disposeOnEnd) {
  51759. this.onAnimationEnd = null;
  51760. this.onAnimationEndObservable.clear();
  51761. }
  51762. }
  51763. return running;
  51764. };
  51765. return Animatable;
  51766. }());
  51767. BABYLON.Animatable = Animatable;
  51768. })(BABYLON || (BABYLON = {}));
  51769. //# sourceMappingURL=babylon.animatable.js.map
  51770. var BABYLON;
  51771. (function (BABYLON) {
  51772. var EasingFunction = /** @class */ (function () {
  51773. function EasingFunction() {
  51774. // Properties
  51775. this._easingMode = EasingFunction.EASINGMODE_EASEIN;
  51776. }
  51777. Object.defineProperty(EasingFunction, "EASINGMODE_EASEIN", {
  51778. get: function () {
  51779. return EasingFunction._EASINGMODE_EASEIN;
  51780. },
  51781. enumerable: true,
  51782. configurable: true
  51783. });
  51784. Object.defineProperty(EasingFunction, "EASINGMODE_EASEOUT", {
  51785. get: function () {
  51786. return EasingFunction._EASINGMODE_EASEOUT;
  51787. },
  51788. enumerable: true,
  51789. configurable: true
  51790. });
  51791. Object.defineProperty(EasingFunction, "EASINGMODE_EASEINOUT", {
  51792. get: function () {
  51793. return EasingFunction._EASINGMODE_EASEINOUT;
  51794. },
  51795. enumerable: true,
  51796. configurable: true
  51797. });
  51798. EasingFunction.prototype.setEasingMode = function (easingMode) {
  51799. var n = Math.min(Math.max(easingMode, 0), 2);
  51800. this._easingMode = n;
  51801. };
  51802. EasingFunction.prototype.getEasingMode = function () {
  51803. return this._easingMode;
  51804. };
  51805. EasingFunction.prototype.easeInCore = function (gradient) {
  51806. throw new Error('You must implement this method');
  51807. };
  51808. EasingFunction.prototype.ease = function (gradient) {
  51809. switch (this._easingMode) {
  51810. case EasingFunction.EASINGMODE_EASEIN:
  51811. return this.easeInCore(gradient);
  51812. case EasingFunction.EASINGMODE_EASEOUT:
  51813. return (1 - this.easeInCore(1 - gradient));
  51814. }
  51815. if (gradient >= 0.5) {
  51816. return (((1 - this.easeInCore((1 - gradient) * 2)) * 0.5) + 0.5);
  51817. }
  51818. return (this.easeInCore(gradient * 2) * 0.5);
  51819. };
  51820. //Statics
  51821. EasingFunction._EASINGMODE_EASEIN = 0;
  51822. EasingFunction._EASINGMODE_EASEOUT = 1;
  51823. EasingFunction._EASINGMODE_EASEINOUT = 2;
  51824. return EasingFunction;
  51825. }());
  51826. BABYLON.EasingFunction = EasingFunction;
  51827. var CircleEase = /** @class */ (function (_super) {
  51828. __extends(CircleEase, _super);
  51829. function CircleEase() {
  51830. return _super !== null && _super.apply(this, arguments) || this;
  51831. }
  51832. CircleEase.prototype.easeInCore = function (gradient) {
  51833. gradient = Math.max(0, Math.min(1, gradient));
  51834. return (1.0 - Math.sqrt(1.0 - (gradient * gradient)));
  51835. };
  51836. return CircleEase;
  51837. }(EasingFunction));
  51838. BABYLON.CircleEase = CircleEase;
  51839. var BackEase = /** @class */ (function (_super) {
  51840. __extends(BackEase, _super);
  51841. function BackEase(amplitude) {
  51842. if (amplitude === void 0) { amplitude = 1; }
  51843. var _this = _super.call(this) || this;
  51844. _this.amplitude = amplitude;
  51845. return _this;
  51846. }
  51847. BackEase.prototype.easeInCore = function (gradient) {
  51848. var num = Math.max(0, this.amplitude);
  51849. return (Math.pow(gradient, 3.0) - ((gradient * num) * Math.sin(3.1415926535897931 * gradient)));
  51850. };
  51851. return BackEase;
  51852. }(EasingFunction));
  51853. BABYLON.BackEase = BackEase;
  51854. var BounceEase = /** @class */ (function (_super) {
  51855. __extends(BounceEase, _super);
  51856. function BounceEase(bounces, bounciness) {
  51857. if (bounces === void 0) { bounces = 3; }
  51858. if (bounciness === void 0) { bounciness = 2; }
  51859. var _this = _super.call(this) || this;
  51860. _this.bounces = bounces;
  51861. _this.bounciness = bounciness;
  51862. return _this;
  51863. }
  51864. BounceEase.prototype.easeInCore = function (gradient) {
  51865. var y = Math.max(0.0, this.bounces);
  51866. var bounciness = this.bounciness;
  51867. if (bounciness <= 1.0) {
  51868. bounciness = 1.001;
  51869. }
  51870. var num9 = Math.pow(bounciness, y);
  51871. var num5 = 1.0 - bounciness;
  51872. var num4 = ((1.0 - num9) / num5) + (num9 * 0.5);
  51873. var num15 = gradient * num4;
  51874. var num65 = Math.log((-num15 * (1.0 - bounciness)) + 1.0) / Math.log(bounciness);
  51875. var num3 = Math.floor(num65);
  51876. var num13 = num3 + 1.0;
  51877. var num8 = (1.0 - Math.pow(bounciness, num3)) / (num5 * num4);
  51878. var num12 = (1.0 - Math.pow(bounciness, num13)) / (num5 * num4);
  51879. var num7 = (num8 + num12) * 0.5;
  51880. var num6 = gradient - num7;
  51881. var num2 = num7 - num8;
  51882. return (((-Math.pow(1.0 / bounciness, y - num3) / (num2 * num2)) * (num6 - num2)) * (num6 + num2));
  51883. };
  51884. return BounceEase;
  51885. }(EasingFunction));
  51886. BABYLON.BounceEase = BounceEase;
  51887. var CubicEase = /** @class */ (function (_super) {
  51888. __extends(CubicEase, _super);
  51889. function CubicEase() {
  51890. return _super !== null && _super.apply(this, arguments) || this;
  51891. }
  51892. CubicEase.prototype.easeInCore = function (gradient) {
  51893. return (gradient * gradient * gradient);
  51894. };
  51895. return CubicEase;
  51896. }(EasingFunction));
  51897. BABYLON.CubicEase = CubicEase;
  51898. var ElasticEase = /** @class */ (function (_super) {
  51899. __extends(ElasticEase, _super);
  51900. function ElasticEase(oscillations, springiness) {
  51901. if (oscillations === void 0) { oscillations = 3; }
  51902. if (springiness === void 0) { springiness = 3; }
  51903. var _this = _super.call(this) || this;
  51904. _this.oscillations = oscillations;
  51905. _this.springiness = springiness;
  51906. return _this;
  51907. }
  51908. ElasticEase.prototype.easeInCore = function (gradient) {
  51909. var num2;
  51910. var num3 = Math.max(0.0, this.oscillations);
  51911. var num = Math.max(0.0, this.springiness);
  51912. if (num == 0) {
  51913. num2 = gradient;
  51914. }
  51915. else {
  51916. num2 = (Math.exp(num * gradient) - 1.0) / (Math.exp(num) - 1.0);
  51917. }
  51918. return (num2 * Math.sin(((6.2831853071795862 * num3) + 1.5707963267948966) * gradient));
  51919. };
  51920. return ElasticEase;
  51921. }(EasingFunction));
  51922. BABYLON.ElasticEase = ElasticEase;
  51923. var ExponentialEase = /** @class */ (function (_super) {
  51924. __extends(ExponentialEase, _super);
  51925. function ExponentialEase(exponent) {
  51926. if (exponent === void 0) { exponent = 2; }
  51927. var _this = _super.call(this) || this;
  51928. _this.exponent = exponent;
  51929. return _this;
  51930. }
  51931. ExponentialEase.prototype.easeInCore = function (gradient) {
  51932. if (this.exponent <= 0) {
  51933. return gradient;
  51934. }
  51935. return ((Math.exp(this.exponent * gradient) - 1.0) / (Math.exp(this.exponent) - 1.0));
  51936. };
  51937. return ExponentialEase;
  51938. }(EasingFunction));
  51939. BABYLON.ExponentialEase = ExponentialEase;
  51940. var PowerEase = /** @class */ (function (_super) {
  51941. __extends(PowerEase, _super);
  51942. function PowerEase(power) {
  51943. if (power === void 0) { power = 2; }
  51944. var _this = _super.call(this) || this;
  51945. _this.power = power;
  51946. return _this;
  51947. }
  51948. PowerEase.prototype.easeInCore = function (gradient) {
  51949. var y = Math.max(0.0, this.power);
  51950. return Math.pow(gradient, y);
  51951. };
  51952. return PowerEase;
  51953. }(EasingFunction));
  51954. BABYLON.PowerEase = PowerEase;
  51955. var QuadraticEase = /** @class */ (function (_super) {
  51956. __extends(QuadraticEase, _super);
  51957. function QuadraticEase() {
  51958. return _super !== null && _super.apply(this, arguments) || this;
  51959. }
  51960. QuadraticEase.prototype.easeInCore = function (gradient) {
  51961. return (gradient * gradient);
  51962. };
  51963. return QuadraticEase;
  51964. }(EasingFunction));
  51965. BABYLON.QuadraticEase = QuadraticEase;
  51966. var QuarticEase = /** @class */ (function (_super) {
  51967. __extends(QuarticEase, _super);
  51968. function QuarticEase() {
  51969. return _super !== null && _super.apply(this, arguments) || this;
  51970. }
  51971. QuarticEase.prototype.easeInCore = function (gradient) {
  51972. return (gradient * gradient * gradient * gradient);
  51973. };
  51974. return QuarticEase;
  51975. }(EasingFunction));
  51976. BABYLON.QuarticEase = QuarticEase;
  51977. var QuinticEase = /** @class */ (function (_super) {
  51978. __extends(QuinticEase, _super);
  51979. function QuinticEase() {
  51980. return _super !== null && _super.apply(this, arguments) || this;
  51981. }
  51982. QuinticEase.prototype.easeInCore = function (gradient) {
  51983. return (gradient * gradient * gradient * gradient * gradient);
  51984. };
  51985. return QuinticEase;
  51986. }(EasingFunction));
  51987. BABYLON.QuinticEase = QuinticEase;
  51988. var SineEase = /** @class */ (function (_super) {
  51989. __extends(SineEase, _super);
  51990. function SineEase() {
  51991. return _super !== null && _super.apply(this, arguments) || this;
  51992. }
  51993. SineEase.prototype.easeInCore = function (gradient) {
  51994. return (1.0 - Math.sin(1.5707963267948966 * (1.0 - gradient)));
  51995. };
  51996. return SineEase;
  51997. }(EasingFunction));
  51998. BABYLON.SineEase = SineEase;
  51999. var BezierCurveEase = /** @class */ (function (_super) {
  52000. __extends(BezierCurveEase, _super);
  52001. function BezierCurveEase(x1, y1, x2, y2) {
  52002. if (x1 === void 0) { x1 = 0; }
  52003. if (y1 === void 0) { y1 = 0; }
  52004. if (x2 === void 0) { x2 = 1; }
  52005. if (y2 === void 0) { y2 = 1; }
  52006. var _this = _super.call(this) || this;
  52007. _this.x1 = x1;
  52008. _this.y1 = y1;
  52009. _this.x2 = x2;
  52010. _this.y2 = y2;
  52011. return _this;
  52012. }
  52013. BezierCurveEase.prototype.easeInCore = function (gradient) {
  52014. return BABYLON.BezierCurve.interpolate(gradient, this.x1, this.y1, this.x2, this.y2);
  52015. };
  52016. return BezierCurveEase;
  52017. }(EasingFunction));
  52018. BABYLON.BezierCurveEase = BezierCurveEase;
  52019. })(BABYLON || (BABYLON = {}));
  52020. //# sourceMappingURL=babylon.easing.js.map
  52021. var BABYLON;
  52022. (function (BABYLON) {
  52023. /**
  52024. * A Condition applied to an Action
  52025. */
  52026. var Condition = /** @class */ (function () {
  52027. /**
  52028. * Creates a new Condition
  52029. * @param actionManager the manager of the action the condition is applied to
  52030. */
  52031. function Condition(actionManager) {
  52032. this._actionManager = actionManager;
  52033. }
  52034. /**
  52035. * Check if the current condition is valid
  52036. * @returns a boolean
  52037. */
  52038. Condition.prototype.isValid = function () {
  52039. return true;
  52040. };
  52041. /**
  52042. * Internal only
  52043. * @hidden
  52044. */
  52045. Condition.prototype._getProperty = function (propertyPath) {
  52046. return this._actionManager._getProperty(propertyPath);
  52047. };
  52048. /**
  52049. * Internal only
  52050. * @hidden
  52051. */
  52052. Condition.prototype._getEffectiveTarget = function (target, propertyPath) {
  52053. return this._actionManager._getEffectiveTarget(target, propertyPath);
  52054. };
  52055. /**
  52056. * Serialize placeholder for child classes
  52057. * @returns the serialized object
  52058. */
  52059. Condition.prototype.serialize = function () {
  52060. };
  52061. /**
  52062. * Internal only
  52063. * @hidden
  52064. */
  52065. Condition.prototype._serialize = function (serializedCondition) {
  52066. return {
  52067. type: 2,
  52068. children: [],
  52069. name: serializedCondition.name,
  52070. properties: serializedCondition.properties
  52071. };
  52072. };
  52073. return Condition;
  52074. }());
  52075. BABYLON.Condition = Condition;
  52076. /**
  52077. * Defines specific conditional operators as extensions of Condition
  52078. */
  52079. var ValueCondition = /** @class */ (function (_super) {
  52080. __extends(ValueCondition, _super);
  52081. /**
  52082. * Creates a new ValueCondition
  52083. * @param actionManager manager for the action the condition applies to
  52084. * @param target for the action
  52085. * @param propertyPath path to specify the property of the target the conditional operator uses
  52086. * @param value the value compared by the conditional operator against the current value of the property
  52087. * @param operator the conditional operator, default ValueCondition.IsEqual
  52088. */
  52089. function ValueCondition(actionManager, target,
  52090. /** path to specify the property of the target the conditional operator uses */
  52091. propertyPath,
  52092. /** the value compared by the conditional operator against the current value of the property */
  52093. value,
  52094. /** the conditional operator, default ValueCondition.IsEqual */
  52095. operator) {
  52096. if (operator === void 0) { operator = ValueCondition.IsEqual; }
  52097. var _this = _super.call(this, actionManager) || this;
  52098. _this.propertyPath = propertyPath;
  52099. _this.value = value;
  52100. _this.operator = operator;
  52101. _this._target = target;
  52102. _this._effectiveTarget = _this._getEffectiveTarget(target, _this.propertyPath);
  52103. _this._property = _this._getProperty(_this.propertyPath);
  52104. return _this;
  52105. }
  52106. Object.defineProperty(ValueCondition, "IsEqual", {
  52107. /**
  52108. * returns the number for IsEqual
  52109. */
  52110. get: function () {
  52111. return ValueCondition._IsEqual;
  52112. },
  52113. enumerable: true,
  52114. configurable: true
  52115. });
  52116. Object.defineProperty(ValueCondition, "IsDifferent", {
  52117. /**
  52118. * Returns the number for IsDifferent
  52119. */
  52120. get: function () {
  52121. return ValueCondition._IsDifferent;
  52122. },
  52123. enumerable: true,
  52124. configurable: true
  52125. });
  52126. Object.defineProperty(ValueCondition, "IsGreater", {
  52127. /**
  52128. * Returns the number for IsGreater
  52129. */
  52130. get: function () {
  52131. return ValueCondition._IsGreater;
  52132. },
  52133. enumerable: true,
  52134. configurable: true
  52135. });
  52136. Object.defineProperty(ValueCondition, "IsLesser", {
  52137. /**
  52138. * Returns the number for IsLesser
  52139. */
  52140. get: function () {
  52141. return ValueCondition._IsLesser;
  52142. },
  52143. enumerable: true,
  52144. configurable: true
  52145. });
  52146. /**
  52147. * Compares the given value with the property value for the specified conditional operator
  52148. * @returns the result of the comparison
  52149. */
  52150. ValueCondition.prototype.isValid = function () {
  52151. switch (this.operator) {
  52152. case ValueCondition.IsGreater:
  52153. return this._effectiveTarget[this._property] > this.value;
  52154. case ValueCondition.IsLesser:
  52155. return this._effectiveTarget[this._property] < this.value;
  52156. case ValueCondition.IsEqual:
  52157. case ValueCondition.IsDifferent:
  52158. var check;
  52159. if (this.value.equals) {
  52160. check = this.value.equals(this._effectiveTarget[this._property]);
  52161. }
  52162. else {
  52163. check = this.value === this._effectiveTarget[this._property];
  52164. }
  52165. return this.operator === ValueCondition.IsEqual ? check : !check;
  52166. }
  52167. return false;
  52168. };
  52169. /**
  52170. * Serialize the ValueCondition into a JSON compatible object
  52171. * @returns serialization object
  52172. */
  52173. ValueCondition.prototype.serialize = function () {
  52174. return this._serialize({
  52175. name: "ValueCondition",
  52176. properties: [
  52177. BABYLON.Action._GetTargetProperty(this._target),
  52178. { name: "propertyPath", value: this.propertyPath },
  52179. { name: "value", value: BABYLON.Action._SerializeValueAsString(this.value) },
  52180. { name: "operator", value: ValueCondition.GetOperatorName(this.operator) }
  52181. ]
  52182. });
  52183. };
  52184. /**
  52185. * Gets the name of the conditional operator for the ValueCondition
  52186. * @param operator the conditional operator
  52187. * @returns the name
  52188. */
  52189. ValueCondition.GetOperatorName = function (operator) {
  52190. switch (operator) {
  52191. case ValueCondition._IsEqual: return "IsEqual";
  52192. case ValueCondition._IsDifferent: return "IsDifferent";
  52193. case ValueCondition._IsGreater: return "IsGreater";
  52194. case ValueCondition._IsLesser: return "IsLesser";
  52195. default: return "";
  52196. }
  52197. };
  52198. /**
  52199. * Internal only
  52200. * @hidden
  52201. */
  52202. ValueCondition._IsEqual = 0;
  52203. /**
  52204. * Internal only
  52205. * @hidden
  52206. */
  52207. ValueCondition._IsDifferent = 1;
  52208. /**
  52209. * Internal only
  52210. * @hidden
  52211. */
  52212. ValueCondition._IsGreater = 2;
  52213. /**
  52214. * Internal only
  52215. * @hidden
  52216. */
  52217. ValueCondition._IsLesser = 3;
  52218. return ValueCondition;
  52219. }(Condition));
  52220. BABYLON.ValueCondition = ValueCondition;
  52221. /**
  52222. * Defines a predicate condition as an extension of Condition
  52223. */
  52224. var PredicateCondition = /** @class */ (function (_super) {
  52225. __extends(PredicateCondition, _super);
  52226. /**
  52227. * Creates a new PredicateCondition
  52228. * @param actionManager manager for the action the condition applies to
  52229. * @param predicate defines the predicate function used to validate the condition
  52230. */
  52231. function PredicateCondition(actionManager,
  52232. /** defines the predicate function used to validate the condition */
  52233. predicate) {
  52234. var _this = _super.call(this, actionManager) || this;
  52235. _this.predicate = predicate;
  52236. return _this;
  52237. }
  52238. /**
  52239. * @returns the validity of the predicate condition
  52240. */
  52241. PredicateCondition.prototype.isValid = function () {
  52242. return this.predicate();
  52243. };
  52244. return PredicateCondition;
  52245. }(Condition));
  52246. BABYLON.PredicateCondition = PredicateCondition;
  52247. /**
  52248. * Defines a state condition as an extension of Condition
  52249. */
  52250. var StateCondition = /** @class */ (function (_super) {
  52251. __extends(StateCondition, _super);
  52252. /**
  52253. * Creates a new StateCondition
  52254. * @param actionManager manager for the action the condition applies to
  52255. * @param target of the condition
  52256. * @param value to compare with target state
  52257. */
  52258. function StateCondition(actionManager, target, value) {
  52259. var _this = _super.call(this, actionManager) || this;
  52260. _this.value = value;
  52261. _this._target = target;
  52262. return _this;
  52263. }
  52264. /**
  52265. * @returns the validity of the state
  52266. */
  52267. StateCondition.prototype.isValid = function () {
  52268. return this._target.state === this.value;
  52269. };
  52270. /**
  52271. * Serialize the StateCondition into a JSON compatible object
  52272. * @returns serialization object
  52273. */
  52274. StateCondition.prototype.serialize = function () {
  52275. return this._serialize({
  52276. name: "StateCondition",
  52277. properties: [
  52278. BABYLON.Action._GetTargetProperty(this._target),
  52279. { name: "value", value: this.value }
  52280. ]
  52281. });
  52282. };
  52283. return StateCondition;
  52284. }(Condition));
  52285. BABYLON.StateCondition = StateCondition;
  52286. })(BABYLON || (BABYLON = {}));
  52287. //# sourceMappingURL=babylon.condition.js.map
  52288. var BABYLON;
  52289. (function (BABYLON) {
  52290. /**
  52291. * The action to be carried out following a trigger
  52292. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#available-actions
  52293. */
  52294. var Action = /** @class */ (function () {
  52295. /**
  52296. * Creates a new Action
  52297. * @param triggerOptions the trigger, with or without parameters, for the action
  52298. * @param condition an optional determinant of action
  52299. */
  52300. function Action(
  52301. /** the trigger, with or without parameters, for the action */
  52302. triggerOptions, condition) {
  52303. this.triggerOptions = triggerOptions;
  52304. /**
  52305. * An event triggered prior to action being executed.
  52306. */
  52307. this.onBeforeExecuteObservable = new BABYLON.Observable();
  52308. if (triggerOptions.parameter) {
  52309. this.trigger = triggerOptions.trigger;
  52310. this._triggerParameter = triggerOptions.parameter;
  52311. }
  52312. else if (triggerOptions.trigger) {
  52313. this.trigger = triggerOptions.trigger;
  52314. }
  52315. else {
  52316. this.trigger = triggerOptions;
  52317. }
  52318. this._nextActiveAction = this;
  52319. this._condition = condition;
  52320. }
  52321. /**
  52322. * Internal only
  52323. * @hidden
  52324. */
  52325. Action.prototype._prepare = function () {
  52326. };
  52327. /**
  52328. * Gets the trigger parameters
  52329. * @returns the trigger parameters
  52330. */
  52331. Action.prototype.getTriggerParameter = function () {
  52332. return this._triggerParameter;
  52333. };
  52334. /**
  52335. * Internal only - executes current action event
  52336. * @hidden
  52337. */
  52338. Action.prototype._executeCurrent = function (evt) {
  52339. if (this._nextActiveAction._condition) {
  52340. var condition = this._nextActiveAction._condition;
  52341. var currentRenderId = this._actionManager.getScene().getRenderId();
  52342. // We cache the current evaluation for the current frame
  52343. if (condition._evaluationId === currentRenderId) {
  52344. if (!condition._currentResult) {
  52345. return;
  52346. }
  52347. }
  52348. else {
  52349. condition._evaluationId = currentRenderId;
  52350. if (!condition.isValid()) {
  52351. condition._currentResult = false;
  52352. return;
  52353. }
  52354. condition._currentResult = true;
  52355. }
  52356. }
  52357. this.onBeforeExecuteObservable.notifyObservers(this);
  52358. this._nextActiveAction.execute(evt);
  52359. this.skipToNextActiveAction();
  52360. };
  52361. /**
  52362. * Execute placeholder for child classes
  52363. * @param evt optional action event
  52364. */
  52365. Action.prototype.execute = function (evt) {
  52366. };
  52367. /**
  52368. * Skips to next active action
  52369. */
  52370. Action.prototype.skipToNextActiveAction = function () {
  52371. if (this._nextActiveAction._child) {
  52372. if (!this._nextActiveAction._child._actionManager) {
  52373. this._nextActiveAction._child._actionManager = this._actionManager;
  52374. }
  52375. this._nextActiveAction = this._nextActiveAction._child;
  52376. }
  52377. else {
  52378. this._nextActiveAction = this;
  52379. }
  52380. };
  52381. /**
  52382. * Adds action to chain of actions, may be a DoNothingAction
  52383. * @param action defines the next action to execute
  52384. * @returns The action passed in
  52385. * @see https://www.babylonjs-playground.com/#1T30HR#0
  52386. */
  52387. Action.prototype.then = function (action) {
  52388. this._child = action;
  52389. action._actionManager = this._actionManager;
  52390. action._prepare();
  52391. return action;
  52392. };
  52393. /**
  52394. * Internal only
  52395. * @hidden
  52396. */
  52397. Action.prototype._getProperty = function (propertyPath) {
  52398. return this._actionManager._getProperty(propertyPath);
  52399. };
  52400. /**
  52401. * Internal only
  52402. * @hidden
  52403. */
  52404. Action.prototype._getEffectiveTarget = function (target, propertyPath) {
  52405. return this._actionManager._getEffectiveTarget(target, propertyPath);
  52406. };
  52407. /**
  52408. * Serialize placeholder for child classes
  52409. * @param parent of child
  52410. * @returns the serialized object
  52411. */
  52412. Action.prototype.serialize = function (parent) {
  52413. };
  52414. /**
  52415. * Internal only called by serialize
  52416. * @hidden
  52417. */
  52418. Action.prototype._serialize = function (serializedAction, parent) {
  52419. var serializationObject = {
  52420. type: 1,
  52421. children: [],
  52422. name: serializedAction.name,
  52423. properties: serializedAction.properties || []
  52424. };
  52425. // Serialize child
  52426. if (this._child) {
  52427. this._child.serialize(serializationObject);
  52428. }
  52429. // Check if "this" has a condition
  52430. if (this._condition) {
  52431. var serializedCondition = this._condition.serialize();
  52432. serializedCondition.children.push(serializationObject);
  52433. if (parent) {
  52434. parent.children.push(serializedCondition);
  52435. }
  52436. return serializedCondition;
  52437. }
  52438. if (parent) {
  52439. parent.children.push(serializationObject);
  52440. }
  52441. return serializationObject;
  52442. };
  52443. /**
  52444. * Internal only
  52445. * @hidden
  52446. */
  52447. Action._SerializeValueAsString = function (value) {
  52448. if (typeof value === "number") {
  52449. return value.toString();
  52450. }
  52451. if (typeof value === "boolean") {
  52452. return value ? "true" : "false";
  52453. }
  52454. if (value instanceof BABYLON.Vector2) {
  52455. return value.x + ", " + value.y;
  52456. }
  52457. if (value instanceof BABYLON.Vector3) {
  52458. return value.x + ", " + value.y + ", " + value.z;
  52459. }
  52460. if (value instanceof BABYLON.Color3) {
  52461. return value.r + ", " + value.g + ", " + value.b;
  52462. }
  52463. if (value instanceof BABYLON.Color4) {
  52464. return value.r + ", " + value.g + ", " + value.b + ", " + value.a;
  52465. }
  52466. return value; // string
  52467. };
  52468. /**
  52469. * Internal only
  52470. * @hidden
  52471. */
  52472. Action._GetTargetProperty = function (target) {
  52473. return {
  52474. name: "target",
  52475. targetType: target instanceof BABYLON.Mesh ? "MeshProperties"
  52476. : target instanceof BABYLON.Light ? "LightProperties"
  52477. : target instanceof BABYLON.Camera ? "CameraProperties"
  52478. : "SceneProperties",
  52479. value: target instanceof BABYLON.Scene ? "Scene" : target.name
  52480. };
  52481. };
  52482. return Action;
  52483. }());
  52484. BABYLON.Action = Action;
  52485. })(BABYLON || (BABYLON = {}));
  52486. //# sourceMappingURL=babylon.action.js.map
  52487. var BABYLON;
  52488. (function (BABYLON) {
  52489. /**
  52490. * ActionEvent is the event being sent when an action is triggered.
  52491. */
  52492. var ActionEvent = /** @class */ (function () {
  52493. /**
  52494. * Creates a new ActionEvent
  52495. * @param source The mesh or sprite that triggered the action
  52496. * @param pointerX The X mouse cursor position at the time of the event
  52497. * @param pointerY The Y mouse cursor position at the time of the event
  52498. * @param meshUnderPointer The mesh that is currently pointed at (can be null)
  52499. * @param sourceEvent the original (browser) event that triggered the ActionEvent
  52500. * @param additionalData additional data for the event
  52501. */
  52502. function ActionEvent(
  52503. /** The mesh or sprite that triggered the action */
  52504. source,
  52505. /** The X mouse cursor position at the time of the event */
  52506. pointerX,
  52507. /** The Y mouse cursor position at the time of the event */
  52508. pointerY,
  52509. /** The mesh that is currently pointed at (can be null) */
  52510. meshUnderPointer,
  52511. /** the original (browser) event that triggered the ActionEvent */
  52512. sourceEvent,
  52513. /** additional data for the event */
  52514. additionalData) {
  52515. this.source = source;
  52516. this.pointerX = pointerX;
  52517. this.pointerY = pointerY;
  52518. this.meshUnderPointer = meshUnderPointer;
  52519. this.sourceEvent = sourceEvent;
  52520. this.additionalData = additionalData;
  52521. }
  52522. /**
  52523. * Helper function to auto-create an ActionEvent from a source mesh.
  52524. * @param source The source mesh that triggered the event
  52525. * @param evt The original (browser) event
  52526. * @param additionalData additional data for the event
  52527. * @returns the new ActionEvent
  52528. */
  52529. ActionEvent.CreateNew = function (source, evt, additionalData) {
  52530. var scene = source.getScene();
  52531. return new ActionEvent(source, scene.pointerX, scene.pointerY, scene.meshUnderPointer, evt, additionalData);
  52532. };
  52533. /**
  52534. * Helper function to auto-create an ActionEvent from a source sprite
  52535. * @param source The source sprite that triggered the event
  52536. * @param scene Scene associated with the sprite
  52537. * @param evt The original (browser) event
  52538. * @param additionalData additional data for the event
  52539. * @returns the new ActionEvent
  52540. */
  52541. ActionEvent.CreateNewFromSprite = function (source, scene, evt, additionalData) {
  52542. return new ActionEvent(source, scene.pointerX, scene.pointerY, scene.meshUnderPointer, evt, additionalData);
  52543. };
  52544. /**
  52545. * Helper function to auto-create an ActionEvent from a scene. If triggered by a mesh use ActionEvent.CreateNew
  52546. * @param scene the scene where the event occurred
  52547. * @param evt The original (browser) event
  52548. * @returns the new ActionEvent
  52549. */
  52550. ActionEvent.CreateNewFromScene = function (scene, evt) {
  52551. return new ActionEvent(null, scene.pointerX, scene.pointerY, scene.meshUnderPointer, evt);
  52552. };
  52553. /**
  52554. * Helper function to auto-create an ActionEvent from a primitive
  52555. * @param prim defines the target primitive
  52556. * @param pointerPos defines the pointer position
  52557. * @param evt The original (browser) event
  52558. * @param additionalData additional data for the event
  52559. * @returns the new ActionEvent
  52560. */
  52561. ActionEvent.CreateNewFromPrimitive = function (prim, pointerPos, evt, additionalData) {
  52562. return new ActionEvent(prim, pointerPos.x, pointerPos.y, null, evt, additionalData);
  52563. };
  52564. return ActionEvent;
  52565. }());
  52566. BABYLON.ActionEvent = ActionEvent;
  52567. /**
  52568. * Action Manager manages all events to be triggered on a given mesh or the global scene.
  52569. * A single scene can have many Action Managers to handle predefined actions on specific meshes.
  52570. * @see http://doc.babylonjs.com/how_to/how_to_use_actions
  52571. */
  52572. var ActionManager = /** @class */ (function () {
  52573. /**
  52574. * Creates a new action manager
  52575. * @param scene defines the hosting scene
  52576. */
  52577. function ActionManager(scene) {
  52578. // Members
  52579. /** Gets the list of actions */
  52580. this.actions = new Array();
  52581. /** Gets the cursor to use when hovering items */
  52582. this.hoverCursor = '';
  52583. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  52584. scene.actionManagers.push(this);
  52585. }
  52586. Object.defineProperty(ActionManager, "NothingTrigger", {
  52587. /**
  52588. * Nothing
  52589. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52590. */
  52591. get: function () {
  52592. return ActionManager._NothingTrigger;
  52593. },
  52594. enumerable: true,
  52595. configurable: true
  52596. });
  52597. Object.defineProperty(ActionManager, "OnPickTrigger", {
  52598. /**
  52599. * On pick
  52600. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52601. */
  52602. get: function () {
  52603. return ActionManager._OnPickTrigger;
  52604. },
  52605. enumerable: true,
  52606. configurable: true
  52607. });
  52608. Object.defineProperty(ActionManager, "OnLeftPickTrigger", {
  52609. /**
  52610. * On left pick
  52611. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52612. */
  52613. get: function () {
  52614. return ActionManager._OnLeftPickTrigger;
  52615. },
  52616. enumerable: true,
  52617. configurable: true
  52618. });
  52619. Object.defineProperty(ActionManager, "OnRightPickTrigger", {
  52620. /**
  52621. * On right pick
  52622. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52623. */
  52624. get: function () {
  52625. return ActionManager._OnRightPickTrigger;
  52626. },
  52627. enumerable: true,
  52628. configurable: true
  52629. });
  52630. Object.defineProperty(ActionManager, "OnCenterPickTrigger", {
  52631. /**
  52632. * On center pick
  52633. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52634. */
  52635. get: function () {
  52636. return ActionManager._OnCenterPickTrigger;
  52637. },
  52638. enumerable: true,
  52639. configurable: true
  52640. });
  52641. Object.defineProperty(ActionManager, "OnPickDownTrigger", {
  52642. /**
  52643. * On pick down
  52644. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52645. */
  52646. get: function () {
  52647. return ActionManager._OnPickDownTrigger;
  52648. },
  52649. enumerable: true,
  52650. configurable: true
  52651. });
  52652. Object.defineProperty(ActionManager, "OnDoublePickTrigger", {
  52653. /**
  52654. * On double pick
  52655. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52656. */
  52657. get: function () {
  52658. return ActionManager._OnDoublePickTrigger;
  52659. },
  52660. enumerable: true,
  52661. configurable: true
  52662. });
  52663. Object.defineProperty(ActionManager, "OnPickUpTrigger", {
  52664. /**
  52665. * On pick up
  52666. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52667. */
  52668. get: function () {
  52669. return ActionManager._OnPickUpTrigger;
  52670. },
  52671. enumerable: true,
  52672. configurable: true
  52673. });
  52674. Object.defineProperty(ActionManager, "OnPickOutTrigger", {
  52675. /**
  52676. * On pick out.
  52677. * This trigger will only be raised if you also declared a OnPickDown
  52678. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52679. */
  52680. get: function () {
  52681. return ActionManager._OnPickOutTrigger;
  52682. },
  52683. enumerable: true,
  52684. configurable: true
  52685. });
  52686. Object.defineProperty(ActionManager, "OnLongPressTrigger", {
  52687. /**
  52688. * On long press
  52689. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52690. */
  52691. get: function () {
  52692. return ActionManager._OnLongPressTrigger;
  52693. },
  52694. enumerable: true,
  52695. configurable: true
  52696. });
  52697. Object.defineProperty(ActionManager, "OnPointerOverTrigger", {
  52698. /**
  52699. * On pointer over
  52700. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52701. */
  52702. get: function () {
  52703. return ActionManager._OnPointerOverTrigger;
  52704. },
  52705. enumerable: true,
  52706. configurable: true
  52707. });
  52708. Object.defineProperty(ActionManager, "OnPointerOutTrigger", {
  52709. /**
  52710. * On pointer out
  52711. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52712. */
  52713. get: function () {
  52714. return ActionManager._OnPointerOutTrigger;
  52715. },
  52716. enumerable: true,
  52717. configurable: true
  52718. });
  52719. Object.defineProperty(ActionManager, "OnEveryFrameTrigger", {
  52720. /**
  52721. * On every frame
  52722. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52723. */
  52724. get: function () {
  52725. return ActionManager._OnEveryFrameTrigger;
  52726. },
  52727. enumerable: true,
  52728. configurable: true
  52729. });
  52730. Object.defineProperty(ActionManager, "OnIntersectionEnterTrigger", {
  52731. /**
  52732. * On intersection enter
  52733. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52734. */
  52735. get: function () {
  52736. return ActionManager._OnIntersectionEnterTrigger;
  52737. },
  52738. enumerable: true,
  52739. configurable: true
  52740. });
  52741. Object.defineProperty(ActionManager, "OnIntersectionExitTrigger", {
  52742. /**
  52743. * On intersection exit
  52744. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52745. */
  52746. get: function () {
  52747. return ActionManager._OnIntersectionExitTrigger;
  52748. },
  52749. enumerable: true,
  52750. configurable: true
  52751. });
  52752. Object.defineProperty(ActionManager, "OnKeyDownTrigger", {
  52753. /**
  52754. * On key down
  52755. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52756. */
  52757. get: function () {
  52758. return ActionManager._OnKeyDownTrigger;
  52759. },
  52760. enumerable: true,
  52761. configurable: true
  52762. });
  52763. Object.defineProperty(ActionManager, "OnKeyUpTrigger", {
  52764. /**
  52765. * On key up
  52766. * @see http://doc.babylonjs.com/how_to/how_to_use_actions#triggers
  52767. */
  52768. get: function () {
  52769. return ActionManager._OnKeyUpTrigger;
  52770. },
  52771. enumerable: true,
  52772. configurable: true
  52773. });
  52774. // Methods
  52775. /**
  52776. * Releases all associated resources
  52777. */
  52778. ActionManager.prototype.dispose = function () {
  52779. var index = this._scene.actionManagers.indexOf(this);
  52780. for (var i = 0; i < this.actions.length; i++) {
  52781. var action = this.actions[i];
  52782. ActionManager.Triggers[action.trigger]--;
  52783. if (ActionManager.Triggers[action.trigger] === 0) {
  52784. delete ActionManager.Triggers[action.trigger];
  52785. }
  52786. }
  52787. if (index > -1) {
  52788. this._scene.actionManagers.splice(index, 1);
  52789. }
  52790. };
  52791. /**
  52792. * Gets hosting scene
  52793. * @returns the hosting scene
  52794. */
  52795. ActionManager.prototype.getScene = function () {
  52796. return this._scene;
  52797. };
  52798. /**
  52799. * Does this action manager handles actions of any of the given triggers
  52800. * @param triggers defines the triggers to be tested
  52801. * @return a boolean indicating whether one (or more) of the triggers is handled
  52802. */
  52803. ActionManager.prototype.hasSpecificTriggers = function (triggers) {
  52804. for (var index = 0; index < this.actions.length; index++) {
  52805. var action = this.actions[index];
  52806. if (triggers.indexOf(action.trigger) > -1) {
  52807. return true;
  52808. }
  52809. }
  52810. return false;
  52811. };
  52812. /**
  52813. * Does this action manager handles actions of any of the given triggers. This function takes two arguments for
  52814. * speed.
  52815. * @param triggerA defines the trigger to be tested
  52816. * @param triggerB defines the trigger to be tested
  52817. * @return a boolean indicating whether one (or more) of the triggers is handled
  52818. */
  52819. ActionManager.prototype.hasSpecificTriggers2 = function (triggerA, triggerB) {
  52820. for (var index = 0; index < this.actions.length; index++) {
  52821. var action = this.actions[index];
  52822. if (triggerA == action.trigger || triggerB == action.trigger) {
  52823. return true;
  52824. }
  52825. }
  52826. return false;
  52827. };
  52828. /**
  52829. * Does this action manager handles actions of a given trigger
  52830. * @param trigger defines the trigger to be tested
  52831. * @param parameterPredicate defines an optional predicate to filter triggers by parameter
  52832. * @return whether the trigger is handled
  52833. */
  52834. ActionManager.prototype.hasSpecificTrigger = function (trigger, parameterPredicate) {
  52835. for (var index = 0; index < this.actions.length; index++) {
  52836. var action = this.actions[index];
  52837. if (action.trigger === trigger) {
  52838. if (parameterPredicate) {
  52839. if (parameterPredicate(action.getTriggerParameter())) {
  52840. return true;
  52841. }
  52842. }
  52843. else {
  52844. return true;
  52845. }
  52846. }
  52847. }
  52848. return false;
  52849. };
  52850. Object.defineProperty(ActionManager.prototype, "hasPointerTriggers", {
  52851. /**
  52852. * Does this action manager has pointer triggers
  52853. */
  52854. get: function () {
  52855. for (var index = 0; index < this.actions.length; index++) {
  52856. var action = this.actions[index];
  52857. if (action.trigger >= ActionManager._OnPickTrigger && action.trigger <= ActionManager._OnPointerOutTrigger) {
  52858. return true;
  52859. }
  52860. }
  52861. return false;
  52862. },
  52863. enumerable: true,
  52864. configurable: true
  52865. });
  52866. Object.defineProperty(ActionManager.prototype, "hasPickTriggers", {
  52867. /**
  52868. * Does this action manager has pick triggers
  52869. */
  52870. get: function () {
  52871. for (var index = 0; index < this.actions.length; index++) {
  52872. var action = this.actions[index];
  52873. if (action.trigger >= ActionManager._OnPickTrigger && action.trigger <= ActionManager._OnPickUpTrigger) {
  52874. return true;
  52875. }
  52876. }
  52877. return false;
  52878. },
  52879. enumerable: true,
  52880. configurable: true
  52881. });
  52882. Object.defineProperty(ActionManager, "HasTriggers", {
  52883. /**
  52884. * Does exist one action manager with at least one trigger
  52885. **/
  52886. get: function () {
  52887. for (var t in ActionManager.Triggers) {
  52888. if (ActionManager.Triggers.hasOwnProperty(t)) {
  52889. return true;
  52890. }
  52891. }
  52892. return false;
  52893. },
  52894. enumerable: true,
  52895. configurable: true
  52896. });
  52897. Object.defineProperty(ActionManager, "HasPickTriggers", {
  52898. /**
  52899. * Does exist one action manager with at least one pick trigger
  52900. **/
  52901. get: function () {
  52902. for (var t in ActionManager.Triggers) {
  52903. if (ActionManager.Triggers.hasOwnProperty(t)) {
  52904. var t_int = parseInt(t);
  52905. if (t_int >= ActionManager._OnPickTrigger && t_int <= ActionManager._OnPickUpTrigger) {
  52906. return true;
  52907. }
  52908. }
  52909. }
  52910. return false;
  52911. },
  52912. enumerable: true,
  52913. configurable: true
  52914. });
  52915. /**
  52916. * Does exist one action manager that handles actions of a given trigger
  52917. * @param trigger defines the trigger to be tested
  52918. * @return a boolean indicating whether the trigger is handeled by at least one action manager
  52919. **/
  52920. ActionManager.HasSpecificTrigger = function (trigger) {
  52921. for (var t in ActionManager.Triggers) {
  52922. if (ActionManager.Triggers.hasOwnProperty(t)) {
  52923. var t_int = parseInt(t);
  52924. if (t_int === trigger) {
  52925. return true;
  52926. }
  52927. }
  52928. }
  52929. return false;
  52930. };
  52931. /**
  52932. * Registers an action to this action manager
  52933. * @param action defines the action to be registered
  52934. * @return the action amended (prepared) after registration
  52935. */
  52936. ActionManager.prototype.registerAction = function (action) {
  52937. if (action.trigger === ActionManager.OnEveryFrameTrigger) {
  52938. if (this.getScene().actionManager !== this) {
  52939. BABYLON.Tools.Warn("OnEveryFrameTrigger can only be used with scene.actionManager");
  52940. return null;
  52941. }
  52942. }
  52943. this.actions.push(action);
  52944. if (ActionManager.Triggers[action.trigger]) {
  52945. ActionManager.Triggers[action.trigger]++;
  52946. }
  52947. else {
  52948. ActionManager.Triggers[action.trigger] = 1;
  52949. }
  52950. action._actionManager = this;
  52951. action._prepare();
  52952. return action;
  52953. };
  52954. /**
  52955. * Unregisters an action to this action manager
  52956. * @param action defines the action to be unregistered
  52957. * @return a boolean indicating whether the action has been unregistered
  52958. */
  52959. ActionManager.prototype.unregisterAction = function (action) {
  52960. var index = this.actions.indexOf(action);
  52961. if (index !== -1) {
  52962. this.actions.splice(index, 1);
  52963. ActionManager.Triggers[action.trigger] -= 1;
  52964. if (ActionManager.Triggers[action.trigger] === 0) {
  52965. delete ActionManager.Triggers[action.trigger];
  52966. }
  52967. delete action._actionManager;
  52968. return true;
  52969. }
  52970. return false;
  52971. };
  52972. /**
  52973. * Process a specific trigger
  52974. * @param trigger defines the trigger to process
  52975. * @param evt defines the event details to be processed
  52976. */
  52977. ActionManager.prototype.processTrigger = function (trigger, evt) {
  52978. for (var index = 0; index < this.actions.length; index++) {
  52979. var action = this.actions[index];
  52980. if (action.trigger === trigger) {
  52981. if (evt) {
  52982. if (trigger === ActionManager.OnKeyUpTrigger
  52983. || trigger === ActionManager.OnKeyDownTrigger) {
  52984. var parameter = action.getTriggerParameter();
  52985. if (parameter && parameter !== evt.sourceEvent.keyCode) {
  52986. if (!parameter.toLowerCase) {
  52987. continue;
  52988. }
  52989. var lowerCase = parameter.toLowerCase();
  52990. if (lowerCase !== evt.sourceEvent.key) {
  52991. var unicode = evt.sourceEvent.charCode ? evt.sourceEvent.charCode : evt.sourceEvent.keyCode;
  52992. var actualkey = String.fromCharCode(unicode).toLowerCase();
  52993. if (actualkey !== lowerCase) {
  52994. continue;
  52995. }
  52996. }
  52997. }
  52998. }
  52999. }
  53000. action._executeCurrent(evt);
  53001. }
  53002. }
  53003. };
  53004. /** @hidden */
  53005. ActionManager.prototype._getEffectiveTarget = function (target, propertyPath) {
  53006. var properties = propertyPath.split(".");
  53007. for (var index = 0; index < properties.length - 1; index++) {
  53008. target = target[properties[index]];
  53009. }
  53010. return target;
  53011. };
  53012. /** @hidden */
  53013. ActionManager.prototype._getProperty = function (propertyPath) {
  53014. var properties = propertyPath.split(".");
  53015. return properties[properties.length - 1];
  53016. };
  53017. /**
  53018. * Serialize this manager to a JSON object
  53019. * @param name defines the property name to store this manager
  53020. * @returns a JSON representation of this manager
  53021. */
  53022. ActionManager.prototype.serialize = function (name) {
  53023. var root = {
  53024. children: new Array(),
  53025. name: name,
  53026. type: 3,
  53027. properties: new Array() // Empty for root but required
  53028. };
  53029. for (var i = 0; i < this.actions.length; i++) {
  53030. var triggerObject = {
  53031. type: 0,
  53032. children: new Array(),
  53033. name: ActionManager.GetTriggerName(this.actions[i].trigger),
  53034. properties: new Array()
  53035. };
  53036. var triggerOptions = this.actions[i].triggerOptions;
  53037. if (triggerOptions && typeof triggerOptions !== "number") {
  53038. if (triggerOptions.parameter instanceof BABYLON.Node) {
  53039. triggerObject.properties.push(BABYLON.Action._GetTargetProperty(triggerOptions.parameter));
  53040. }
  53041. else {
  53042. var parameter = {};
  53043. BABYLON.Tools.DeepCopy(triggerOptions.parameter, parameter, ["mesh"]);
  53044. if (triggerOptions.parameter.mesh) {
  53045. parameter._meshId = triggerOptions.parameter.mesh.id;
  53046. }
  53047. triggerObject.properties.push({ name: "parameter", targetType: null, value: parameter });
  53048. }
  53049. }
  53050. // Serialize child action, recursively
  53051. this.actions[i].serialize(triggerObject);
  53052. // Add serialized trigger
  53053. root.children.push(triggerObject);
  53054. }
  53055. return root;
  53056. };
  53057. /**
  53058. * Creates a new ActionManager from a JSON data
  53059. * @param parsedActions defines the JSON data to read from
  53060. * @param object defines the hosting mesh
  53061. * @param scene defines the hosting scene
  53062. */
  53063. ActionManager.Parse = function (parsedActions, object, scene) {
  53064. var actionManager = new ActionManager(scene);
  53065. if (object === null)
  53066. scene.actionManager = actionManager;
  53067. else
  53068. object.actionManager = actionManager;
  53069. // instanciate a new object
  53070. var instanciate = function (name, params) {
  53071. // TODO: We will need to find a solution for the next line when using commonjs / es6 .
  53072. var newInstance = Object.create(BABYLON.Tools.Instantiate("BABYLON." + name).prototype);
  53073. newInstance.constructor.apply(newInstance, params);
  53074. return newInstance;
  53075. };
  53076. var parseParameter = function (name, value, target, propertyPath) {
  53077. if (propertyPath === null) {
  53078. // String, boolean or float
  53079. var floatValue = parseFloat(value);
  53080. if (value === "true" || value === "false")
  53081. return value === "true";
  53082. else
  53083. return isNaN(floatValue) ? value : floatValue;
  53084. }
  53085. var effectiveTarget = propertyPath.split(".");
  53086. var values = value.split(",");
  53087. // Get effective Target
  53088. for (var i = 0; i < effectiveTarget.length; i++) {
  53089. target = target[effectiveTarget[i]];
  53090. }
  53091. // Return appropriate value with its type
  53092. if (typeof (target) === "boolean")
  53093. return values[0] === "true";
  53094. if (typeof (target) === "string")
  53095. return values[0];
  53096. // Parameters with multiple values such as Vector3 etc.
  53097. var split = new Array();
  53098. for (var i = 0; i < values.length; i++)
  53099. split.push(parseFloat(values[i]));
  53100. if (target instanceof BABYLON.Vector3)
  53101. return BABYLON.Vector3.FromArray(split);
  53102. if (target instanceof BABYLON.Vector4)
  53103. return BABYLON.Vector4.FromArray(split);
  53104. if (target instanceof BABYLON.Color3)
  53105. return BABYLON.Color3.FromArray(split);
  53106. if (target instanceof BABYLON.Color4)
  53107. return BABYLON.Color4.FromArray(split);
  53108. return parseFloat(values[0]);
  53109. };
  53110. // traverse graph per trigger
  53111. var traverse = function (parsedAction, trigger, condition, action, combineArray) {
  53112. if (combineArray === void 0) { combineArray = null; }
  53113. if (parsedAction.detached)
  53114. return;
  53115. var parameters = new Array();
  53116. var target = null;
  53117. var propertyPath = null;
  53118. var combine = parsedAction.combine && parsedAction.combine.length > 0;
  53119. // Parameters
  53120. if (parsedAction.type === 2)
  53121. parameters.push(actionManager);
  53122. else
  53123. parameters.push(trigger);
  53124. if (combine) {
  53125. var actions = new Array();
  53126. for (var j = 0; j < parsedAction.combine.length; j++) {
  53127. traverse(parsedAction.combine[j], ActionManager.NothingTrigger, condition, action, actions);
  53128. }
  53129. parameters.push(actions);
  53130. }
  53131. else {
  53132. for (var i = 0; i < parsedAction.properties.length; i++) {
  53133. var value = parsedAction.properties[i].value;
  53134. var name = parsedAction.properties[i].name;
  53135. var targetType = parsedAction.properties[i].targetType;
  53136. if (name === "target")
  53137. if (targetType !== null && targetType === "SceneProperties")
  53138. value = target = scene;
  53139. else
  53140. value = target = scene.getNodeByName(value);
  53141. else if (name === "parent")
  53142. value = scene.getNodeByName(value);
  53143. else if (name === "sound")
  53144. value = scene.getSoundByName(value);
  53145. else if (name !== "propertyPath") {
  53146. if (parsedAction.type === 2 && name === "operator")
  53147. value = BABYLON.ValueCondition[value];
  53148. else
  53149. value = parseParameter(name, value, target, name === "value" ? propertyPath : null);
  53150. }
  53151. else {
  53152. propertyPath = value;
  53153. }
  53154. parameters.push(value);
  53155. }
  53156. }
  53157. if (combineArray === null) {
  53158. parameters.push(condition);
  53159. }
  53160. else {
  53161. parameters.push(null);
  53162. }
  53163. // If interpolate value action
  53164. if (parsedAction.name === "InterpolateValueAction") {
  53165. var param = parameters[parameters.length - 2];
  53166. parameters[parameters.length - 1] = param;
  53167. parameters[parameters.length - 2] = condition;
  53168. }
  53169. // Action or condition(s) and not CombineAction
  53170. var newAction = instanciate(parsedAction.name, parameters);
  53171. if (newAction instanceof BABYLON.Condition && condition !== null) {
  53172. var nothing = new BABYLON.DoNothingAction(trigger, condition);
  53173. if (action)
  53174. action.then(nothing);
  53175. else
  53176. actionManager.registerAction(nothing);
  53177. action = nothing;
  53178. }
  53179. if (combineArray === null) {
  53180. if (newAction instanceof BABYLON.Condition) {
  53181. condition = newAction;
  53182. newAction = action;
  53183. }
  53184. else {
  53185. condition = null;
  53186. if (action)
  53187. action.then(newAction);
  53188. else
  53189. actionManager.registerAction(newAction);
  53190. }
  53191. }
  53192. else {
  53193. combineArray.push(newAction);
  53194. }
  53195. for (var i = 0; i < parsedAction.children.length; i++)
  53196. traverse(parsedAction.children[i], trigger, condition, newAction, null);
  53197. };
  53198. // triggers
  53199. for (var i = 0; i < parsedActions.children.length; i++) {
  53200. var triggerParams;
  53201. var trigger = parsedActions.children[i];
  53202. if (trigger.properties.length > 0) {
  53203. var param = trigger.properties[0].value;
  53204. var value = trigger.properties[0].targetType === null ? param : scene.getMeshByName(param);
  53205. if (value._meshId) {
  53206. value.mesh = scene.getMeshByID(value._meshId);
  53207. }
  53208. triggerParams = { trigger: ActionManager[trigger.name], parameter: value };
  53209. }
  53210. else
  53211. triggerParams = ActionManager[trigger.name];
  53212. for (var j = 0; j < trigger.children.length; j++) {
  53213. if (!trigger.detached)
  53214. traverse(trigger.children[j], triggerParams, null, null);
  53215. }
  53216. }
  53217. };
  53218. /**
  53219. * Get a trigger name by index
  53220. * @param trigger defines the trigger index
  53221. * @returns a trigger name
  53222. */
  53223. ActionManager.GetTriggerName = function (trigger) {
  53224. switch (trigger) {
  53225. case 0: return "NothingTrigger";
  53226. case 1: return "OnPickTrigger";
  53227. case 2: return "OnLeftPickTrigger";
  53228. case 3: return "OnRightPickTrigger";
  53229. case 4: return "OnCenterPickTrigger";
  53230. case 5: return "OnPickDownTrigger";
  53231. case 6: return "OnPickUpTrigger";
  53232. case 7: return "OnLongPressTrigger";
  53233. case 8: return "OnPointerOverTrigger";
  53234. case 9: return "OnPointerOutTrigger";
  53235. case 10: return "OnEveryFrameTrigger";
  53236. case 11: return "OnIntersectionEnterTrigger";
  53237. case 12: return "OnIntersectionExitTrigger";
  53238. case 13: return "OnKeyDownTrigger";
  53239. case 14: return "OnKeyUpTrigger";
  53240. case 15: return "OnPickOutTrigger";
  53241. default: return "";
  53242. }
  53243. };
  53244. // Statics
  53245. ActionManager._NothingTrigger = 0;
  53246. ActionManager._OnPickTrigger = 1;
  53247. ActionManager._OnLeftPickTrigger = 2;
  53248. ActionManager._OnRightPickTrigger = 3;
  53249. ActionManager._OnCenterPickTrigger = 4;
  53250. ActionManager._OnPickDownTrigger = 5;
  53251. ActionManager._OnDoublePickTrigger = 6;
  53252. ActionManager._OnPickUpTrigger = 7;
  53253. ActionManager._OnLongPressTrigger = 8;
  53254. ActionManager._OnPointerOverTrigger = 9;
  53255. ActionManager._OnPointerOutTrigger = 10;
  53256. ActionManager._OnEveryFrameTrigger = 11;
  53257. ActionManager._OnIntersectionEnterTrigger = 12;
  53258. ActionManager._OnIntersectionExitTrigger = 13;
  53259. ActionManager._OnKeyDownTrigger = 14;
  53260. ActionManager._OnKeyUpTrigger = 15;
  53261. ActionManager._OnPickOutTrigger = 16;
  53262. /** Gets the list of active triggers */
  53263. ActionManager.Triggers = {};
  53264. return ActionManager;
  53265. }());
  53266. BABYLON.ActionManager = ActionManager;
  53267. })(BABYLON || (BABYLON = {}));
  53268. //# sourceMappingURL=babylon.actionManager.js.map
  53269. var BABYLON;
  53270. (function (BABYLON) {
  53271. var InterpolateValueAction = /** @class */ (function (_super) {
  53272. __extends(InterpolateValueAction, _super);
  53273. function InterpolateValueAction(triggerOptions, target, propertyPath, value, duration, condition, stopOtherAnimations, onInterpolationDone) {
  53274. if (duration === void 0) { duration = 1000; }
  53275. var _this = _super.call(this, triggerOptions, condition) || this;
  53276. _this.propertyPath = propertyPath;
  53277. _this.value = value;
  53278. _this.duration = duration;
  53279. _this.stopOtherAnimations = stopOtherAnimations;
  53280. _this.onInterpolationDone = onInterpolationDone;
  53281. _this.onInterpolationDoneObservable = new BABYLON.Observable();
  53282. _this._target = _this._effectiveTarget = target;
  53283. return _this;
  53284. }
  53285. /** @hidden */
  53286. InterpolateValueAction.prototype._prepare = function () {
  53287. this._effectiveTarget = this._getEffectiveTarget(this._effectiveTarget, this.propertyPath);
  53288. this._property = this._getProperty(this.propertyPath);
  53289. };
  53290. InterpolateValueAction.prototype.execute = function () {
  53291. var _this = this;
  53292. var scene = this._actionManager.getScene();
  53293. var keys = [
  53294. {
  53295. frame: 0,
  53296. value: this._effectiveTarget[this._property]
  53297. }, {
  53298. frame: 100,
  53299. value: this.value
  53300. }
  53301. ];
  53302. var dataType;
  53303. if (typeof this.value === "number") {
  53304. dataType = BABYLON.Animation.ANIMATIONTYPE_FLOAT;
  53305. }
  53306. else if (this.value instanceof BABYLON.Color3) {
  53307. dataType = BABYLON.Animation.ANIMATIONTYPE_COLOR3;
  53308. }
  53309. else if (this.value instanceof BABYLON.Vector3) {
  53310. dataType = BABYLON.Animation.ANIMATIONTYPE_VECTOR3;
  53311. }
  53312. else if (this.value instanceof BABYLON.Matrix) {
  53313. dataType = BABYLON.Animation.ANIMATIONTYPE_MATRIX;
  53314. }
  53315. else if (this.value instanceof BABYLON.Quaternion) {
  53316. dataType = BABYLON.Animation.ANIMATIONTYPE_QUATERNION;
  53317. }
  53318. else {
  53319. BABYLON.Tools.Warn("InterpolateValueAction: Unsupported type (" + typeof this.value + ")");
  53320. return;
  53321. }
  53322. var animation = new BABYLON.Animation("InterpolateValueAction", this._property, 100 * (1000.0 / this.duration), dataType, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  53323. animation.setKeys(keys);
  53324. if (this.stopOtherAnimations) {
  53325. scene.stopAnimation(this._effectiveTarget);
  53326. }
  53327. var wrapper = function () {
  53328. _this.onInterpolationDoneObservable.notifyObservers(_this);
  53329. if (_this.onInterpolationDone) {
  53330. _this.onInterpolationDone();
  53331. }
  53332. };
  53333. scene.beginDirectAnimation(this._effectiveTarget, [animation], 0, 100, false, 1, wrapper);
  53334. };
  53335. InterpolateValueAction.prototype.serialize = function (parent) {
  53336. return _super.prototype._serialize.call(this, {
  53337. name: "InterpolateValueAction",
  53338. properties: [
  53339. BABYLON.Action._GetTargetProperty(this._target),
  53340. { name: "propertyPath", value: this.propertyPath },
  53341. { name: "value", value: BABYLON.Action._SerializeValueAsString(this.value) },
  53342. { name: "duration", value: BABYLON.Action._SerializeValueAsString(this.duration) },
  53343. { name: "stopOtherAnimations", value: BABYLON.Action._SerializeValueAsString(this.stopOtherAnimations) || false }
  53344. ]
  53345. }, parent);
  53346. };
  53347. return InterpolateValueAction;
  53348. }(BABYLON.Action));
  53349. BABYLON.InterpolateValueAction = InterpolateValueAction;
  53350. })(BABYLON || (BABYLON = {}));
  53351. //# sourceMappingURL=babylon.interpolateValueAction.js.map
  53352. var BABYLON;
  53353. (function (BABYLON) {
  53354. var SwitchBooleanAction = /** @class */ (function (_super) {
  53355. __extends(SwitchBooleanAction, _super);
  53356. function SwitchBooleanAction(triggerOptions, target, propertyPath, condition) {
  53357. var _this = _super.call(this, triggerOptions, condition) || this;
  53358. _this.propertyPath = propertyPath;
  53359. _this._target = _this._effectiveTarget = target;
  53360. return _this;
  53361. }
  53362. /** @hidden */
  53363. SwitchBooleanAction.prototype._prepare = function () {
  53364. this._effectiveTarget = this._getEffectiveTarget(this._effectiveTarget, this.propertyPath);
  53365. this._property = this._getProperty(this.propertyPath);
  53366. };
  53367. SwitchBooleanAction.prototype.execute = function () {
  53368. this._effectiveTarget[this._property] = !this._effectiveTarget[this._property];
  53369. };
  53370. SwitchBooleanAction.prototype.serialize = function (parent) {
  53371. return _super.prototype._serialize.call(this, {
  53372. name: "SwitchBooleanAction",
  53373. properties: [
  53374. BABYLON.Action._GetTargetProperty(this._target),
  53375. { name: "propertyPath", value: this.propertyPath }
  53376. ]
  53377. }, parent);
  53378. };
  53379. return SwitchBooleanAction;
  53380. }(BABYLON.Action));
  53381. BABYLON.SwitchBooleanAction = SwitchBooleanAction;
  53382. var SetStateAction = /** @class */ (function (_super) {
  53383. __extends(SetStateAction, _super);
  53384. function SetStateAction(triggerOptions, target, value, condition) {
  53385. var _this = _super.call(this, triggerOptions, condition) || this;
  53386. _this.value = value;
  53387. _this._target = target;
  53388. return _this;
  53389. }
  53390. SetStateAction.prototype.execute = function () {
  53391. this._target.state = this.value;
  53392. };
  53393. SetStateAction.prototype.serialize = function (parent) {
  53394. return _super.prototype._serialize.call(this, {
  53395. name: "SetStateAction",
  53396. properties: [
  53397. BABYLON.Action._GetTargetProperty(this._target),
  53398. { name: "value", value: this.value }
  53399. ]
  53400. }, parent);
  53401. };
  53402. return SetStateAction;
  53403. }(BABYLON.Action));
  53404. BABYLON.SetStateAction = SetStateAction;
  53405. var SetValueAction = /** @class */ (function (_super) {
  53406. __extends(SetValueAction, _super);
  53407. function SetValueAction(triggerOptions, target, propertyPath, value, condition) {
  53408. var _this = _super.call(this, triggerOptions, condition) || this;
  53409. _this.propertyPath = propertyPath;
  53410. _this.value = value;
  53411. _this._target = _this._effectiveTarget = target;
  53412. return _this;
  53413. }
  53414. /** @hidden */
  53415. SetValueAction.prototype._prepare = function () {
  53416. this._effectiveTarget = this._getEffectiveTarget(this._effectiveTarget, this.propertyPath);
  53417. this._property = this._getProperty(this.propertyPath);
  53418. };
  53419. SetValueAction.prototype.execute = function () {
  53420. this._effectiveTarget[this._property] = this.value;
  53421. if (this._target.markAsDirty) {
  53422. this._target.markAsDirty(this._property);
  53423. }
  53424. };
  53425. SetValueAction.prototype.serialize = function (parent) {
  53426. return _super.prototype._serialize.call(this, {
  53427. name: "SetValueAction",
  53428. properties: [
  53429. BABYLON.Action._GetTargetProperty(this._target),
  53430. { name: "propertyPath", value: this.propertyPath },
  53431. { name: "value", value: BABYLON.Action._SerializeValueAsString(this.value) }
  53432. ]
  53433. }, parent);
  53434. };
  53435. return SetValueAction;
  53436. }(BABYLON.Action));
  53437. BABYLON.SetValueAction = SetValueAction;
  53438. var IncrementValueAction = /** @class */ (function (_super) {
  53439. __extends(IncrementValueAction, _super);
  53440. function IncrementValueAction(triggerOptions, target, propertyPath, value, condition) {
  53441. var _this = _super.call(this, triggerOptions, condition) || this;
  53442. _this.propertyPath = propertyPath;
  53443. _this.value = value;
  53444. _this._target = _this._effectiveTarget = target;
  53445. return _this;
  53446. }
  53447. /** @hidden */
  53448. IncrementValueAction.prototype._prepare = function () {
  53449. this._effectiveTarget = this._getEffectiveTarget(this._effectiveTarget, this.propertyPath);
  53450. this._property = this._getProperty(this.propertyPath);
  53451. if (typeof this._effectiveTarget[this._property] !== "number") {
  53452. BABYLON.Tools.Warn("Warning: IncrementValueAction can only be used with number values");
  53453. }
  53454. };
  53455. IncrementValueAction.prototype.execute = function () {
  53456. this._effectiveTarget[this._property] += this.value;
  53457. if (this._target.markAsDirty) {
  53458. this._target.markAsDirty(this._property);
  53459. }
  53460. };
  53461. IncrementValueAction.prototype.serialize = function (parent) {
  53462. return _super.prototype._serialize.call(this, {
  53463. name: "IncrementValueAction",
  53464. properties: [
  53465. BABYLON.Action._GetTargetProperty(this._target),
  53466. { name: "propertyPath", value: this.propertyPath },
  53467. { name: "value", value: BABYLON.Action._SerializeValueAsString(this.value) }
  53468. ]
  53469. }, parent);
  53470. };
  53471. return IncrementValueAction;
  53472. }(BABYLON.Action));
  53473. BABYLON.IncrementValueAction = IncrementValueAction;
  53474. var PlayAnimationAction = /** @class */ (function (_super) {
  53475. __extends(PlayAnimationAction, _super);
  53476. function PlayAnimationAction(triggerOptions, target, from, to, loop, condition) {
  53477. var _this = _super.call(this, triggerOptions, condition) || this;
  53478. _this.from = from;
  53479. _this.to = to;
  53480. _this.loop = loop;
  53481. _this._target = target;
  53482. return _this;
  53483. }
  53484. /** @hidden */
  53485. PlayAnimationAction.prototype._prepare = function () {
  53486. };
  53487. PlayAnimationAction.prototype.execute = function () {
  53488. var scene = this._actionManager.getScene();
  53489. scene.beginAnimation(this._target, this.from, this.to, this.loop);
  53490. };
  53491. PlayAnimationAction.prototype.serialize = function (parent) {
  53492. return _super.prototype._serialize.call(this, {
  53493. name: "PlayAnimationAction",
  53494. properties: [
  53495. BABYLON.Action._GetTargetProperty(this._target),
  53496. { name: "from", value: String(this.from) },
  53497. { name: "to", value: String(this.to) },
  53498. { name: "loop", value: BABYLON.Action._SerializeValueAsString(this.loop) || false }
  53499. ]
  53500. }, parent);
  53501. };
  53502. return PlayAnimationAction;
  53503. }(BABYLON.Action));
  53504. BABYLON.PlayAnimationAction = PlayAnimationAction;
  53505. var StopAnimationAction = /** @class */ (function (_super) {
  53506. __extends(StopAnimationAction, _super);
  53507. function StopAnimationAction(triggerOptions, target, condition) {
  53508. var _this = _super.call(this, triggerOptions, condition) || this;
  53509. _this._target = target;
  53510. return _this;
  53511. }
  53512. /** @hidden */
  53513. StopAnimationAction.prototype._prepare = function () {
  53514. };
  53515. StopAnimationAction.prototype.execute = function () {
  53516. var scene = this._actionManager.getScene();
  53517. scene.stopAnimation(this._target);
  53518. };
  53519. StopAnimationAction.prototype.serialize = function (parent) {
  53520. return _super.prototype._serialize.call(this, {
  53521. name: "StopAnimationAction",
  53522. properties: [BABYLON.Action._GetTargetProperty(this._target)]
  53523. }, parent);
  53524. };
  53525. return StopAnimationAction;
  53526. }(BABYLON.Action));
  53527. BABYLON.StopAnimationAction = StopAnimationAction;
  53528. var DoNothingAction = /** @class */ (function (_super) {
  53529. __extends(DoNothingAction, _super);
  53530. function DoNothingAction(triggerOptions, condition) {
  53531. if (triggerOptions === void 0) { triggerOptions = BABYLON.ActionManager.NothingTrigger; }
  53532. return _super.call(this, triggerOptions, condition) || this;
  53533. }
  53534. DoNothingAction.prototype.execute = function () {
  53535. };
  53536. DoNothingAction.prototype.serialize = function (parent) {
  53537. return _super.prototype._serialize.call(this, {
  53538. name: "DoNothingAction",
  53539. properties: []
  53540. }, parent);
  53541. };
  53542. return DoNothingAction;
  53543. }(BABYLON.Action));
  53544. BABYLON.DoNothingAction = DoNothingAction;
  53545. var CombineAction = /** @class */ (function (_super) {
  53546. __extends(CombineAction, _super);
  53547. function CombineAction(triggerOptions, children, condition) {
  53548. var _this = _super.call(this, triggerOptions, condition) || this;
  53549. _this.children = children;
  53550. return _this;
  53551. }
  53552. /** @hidden */
  53553. CombineAction.prototype._prepare = function () {
  53554. for (var index = 0; index < this.children.length; index++) {
  53555. this.children[index]._actionManager = this._actionManager;
  53556. this.children[index]._prepare();
  53557. }
  53558. };
  53559. CombineAction.prototype.execute = function (evt) {
  53560. for (var index = 0; index < this.children.length; index++) {
  53561. this.children[index].execute(evt);
  53562. }
  53563. };
  53564. CombineAction.prototype.serialize = function (parent) {
  53565. var serializationObject = _super.prototype._serialize.call(this, {
  53566. name: "CombineAction",
  53567. properties: [],
  53568. combine: []
  53569. }, parent);
  53570. for (var i = 0; i < this.children.length; i++) {
  53571. serializationObject.combine.push(this.children[i].serialize(null));
  53572. }
  53573. return serializationObject;
  53574. };
  53575. return CombineAction;
  53576. }(BABYLON.Action));
  53577. BABYLON.CombineAction = CombineAction;
  53578. var ExecuteCodeAction = /** @class */ (function (_super) {
  53579. __extends(ExecuteCodeAction, _super);
  53580. function ExecuteCodeAction(triggerOptions, func, condition) {
  53581. var _this = _super.call(this, triggerOptions, condition) || this;
  53582. _this.func = func;
  53583. return _this;
  53584. }
  53585. ExecuteCodeAction.prototype.execute = function (evt) {
  53586. this.func(evt);
  53587. };
  53588. return ExecuteCodeAction;
  53589. }(BABYLON.Action));
  53590. BABYLON.ExecuteCodeAction = ExecuteCodeAction;
  53591. var SetParentAction = /** @class */ (function (_super) {
  53592. __extends(SetParentAction, _super);
  53593. function SetParentAction(triggerOptions, target, parent, condition) {
  53594. var _this = _super.call(this, triggerOptions, condition) || this;
  53595. _this._target = target;
  53596. _this._parent = parent;
  53597. return _this;
  53598. }
  53599. /** @hidden */
  53600. SetParentAction.prototype._prepare = function () {
  53601. };
  53602. SetParentAction.prototype.execute = function () {
  53603. if (this._target.parent === this._parent) {
  53604. return;
  53605. }
  53606. var invertParentWorldMatrix = this._parent.getWorldMatrix().clone();
  53607. invertParentWorldMatrix.invert();
  53608. this._target.position = BABYLON.Vector3.TransformCoordinates(this._target.position, invertParentWorldMatrix);
  53609. this._target.parent = this._parent;
  53610. };
  53611. SetParentAction.prototype.serialize = function (parent) {
  53612. return _super.prototype._serialize.call(this, {
  53613. name: "SetParentAction",
  53614. properties: [
  53615. BABYLON.Action._GetTargetProperty(this._target),
  53616. BABYLON.Action._GetTargetProperty(this._parent),
  53617. ]
  53618. }, parent);
  53619. };
  53620. return SetParentAction;
  53621. }(BABYLON.Action));
  53622. BABYLON.SetParentAction = SetParentAction;
  53623. var PlaySoundAction = /** @class */ (function (_super) {
  53624. __extends(PlaySoundAction, _super);
  53625. function PlaySoundAction(triggerOptions, sound, condition) {
  53626. var _this = _super.call(this, triggerOptions, condition) || this;
  53627. _this._sound = sound;
  53628. return _this;
  53629. }
  53630. /** @hidden */
  53631. PlaySoundAction.prototype._prepare = function () {
  53632. };
  53633. PlaySoundAction.prototype.execute = function () {
  53634. if (this._sound !== undefined)
  53635. this._sound.play();
  53636. };
  53637. PlaySoundAction.prototype.serialize = function (parent) {
  53638. return _super.prototype._serialize.call(this, {
  53639. name: "PlaySoundAction",
  53640. properties: [{ name: "sound", value: this._sound.name }]
  53641. }, parent);
  53642. };
  53643. return PlaySoundAction;
  53644. }(BABYLON.Action));
  53645. BABYLON.PlaySoundAction = PlaySoundAction;
  53646. var StopSoundAction = /** @class */ (function (_super) {
  53647. __extends(StopSoundAction, _super);
  53648. function StopSoundAction(triggerOptions, sound, condition) {
  53649. var _this = _super.call(this, triggerOptions, condition) || this;
  53650. _this._sound = sound;
  53651. return _this;
  53652. }
  53653. /** @hidden */
  53654. StopSoundAction.prototype._prepare = function () {
  53655. };
  53656. StopSoundAction.prototype.execute = function () {
  53657. if (this._sound !== undefined)
  53658. this._sound.stop();
  53659. };
  53660. StopSoundAction.prototype.serialize = function (parent) {
  53661. return _super.prototype._serialize.call(this, {
  53662. name: "StopSoundAction",
  53663. properties: [{ name: "sound", value: this._sound.name }]
  53664. }, parent);
  53665. };
  53666. return StopSoundAction;
  53667. }(BABYLON.Action));
  53668. BABYLON.StopSoundAction = StopSoundAction;
  53669. })(BABYLON || (BABYLON = {}));
  53670. //# sourceMappingURL=babylon.directActions.js.map
  53671. var BABYLON;
  53672. (function (BABYLON) {
  53673. var SpriteManager = /** @class */ (function () {
  53674. function SpriteManager(name, imgUrl, capacity, cellSize, scene, epsilon, samplingMode) {
  53675. if (epsilon === void 0) { epsilon = 0.01; }
  53676. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  53677. this.name = name;
  53678. this.sprites = new Array();
  53679. this.renderingGroupId = 0;
  53680. this.layerMask = 0x0FFFFFFF;
  53681. this.fogEnabled = true;
  53682. this.isPickable = false;
  53683. /**
  53684. * An event triggered when the manager is disposed.
  53685. */
  53686. this.onDisposeObservable = new BABYLON.Observable();
  53687. this._vertexBuffers = {};
  53688. if (!scene._getComponent(BABYLON.SceneComponentConstants.NAME_SPRITE)) {
  53689. scene._addComponent(new BABYLON.SpriteSceneComponent(scene));
  53690. }
  53691. this._capacity = capacity;
  53692. this._spriteTexture = new BABYLON.Texture(imgUrl, scene, true, false, samplingMode);
  53693. this._spriteTexture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  53694. this._spriteTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  53695. if (cellSize.width && cellSize.height) {
  53696. this.cellWidth = cellSize.width;
  53697. this.cellHeight = cellSize.height;
  53698. }
  53699. else if (cellSize !== undefined) {
  53700. this.cellWidth = cellSize;
  53701. this.cellHeight = cellSize;
  53702. }
  53703. else {
  53704. return;
  53705. }
  53706. this._epsilon = epsilon;
  53707. this._scene = scene;
  53708. this._scene.spriteManagers.push(this);
  53709. var indices = [];
  53710. var index = 0;
  53711. for (var count = 0; count < capacity; count++) {
  53712. indices.push(index);
  53713. indices.push(index + 1);
  53714. indices.push(index + 2);
  53715. indices.push(index);
  53716. indices.push(index + 2);
  53717. indices.push(index + 3);
  53718. index += 4;
  53719. }
  53720. this._indexBuffer = scene.getEngine().createIndexBuffer(indices);
  53721. // VBO
  53722. // 16 floats per sprite (x, y, z, angle, sizeX, sizeY, offsetX, offsetY, invertU, invertV, cellIndexX, cellIndexY, color r, color g, color b, color a)
  53723. this._vertexData = new Float32Array(capacity * 16 * 4);
  53724. this._buffer = new BABYLON.Buffer(scene.getEngine(), this._vertexData, true, 16);
  53725. var positions = this._buffer.createVertexBuffer(BABYLON.VertexBuffer.PositionKind, 0, 4);
  53726. var options = this._buffer.createVertexBuffer("options", 4, 4);
  53727. var cellInfo = this._buffer.createVertexBuffer("cellInfo", 8, 4);
  53728. var colors = this._buffer.createVertexBuffer(BABYLON.VertexBuffer.ColorKind, 12, 4);
  53729. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = positions;
  53730. this._vertexBuffers["options"] = options;
  53731. this._vertexBuffers["cellInfo"] = cellInfo;
  53732. this._vertexBuffers[BABYLON.VertexBuffer.ColorKind] = colors;
  53733. // Effects
  53734. this._effectBase = this._scene.getEngine().createEffect("sprites", [BABYLON.VertexBuffer.PositionKind, "options", "cellInfo", BABYLON.VertexBuffer.ColorKind], ["view", "projection", "textureInfos", "alphaTest"], ["diffuseSampler"], "");
  53735. this._effectFog = this._scene.getEngine().createEffect("sprites", [BABYLON.VertexBuffer.PositionKind, "options", "cellInfo", BABYLON.VertexBuffer.ColorKind], ["view", "projection", "textureInfos", "alphaTest", "vFogInfos", "vFogColor"], ["diffuseSampler"], "#define FOG");
  53736. }
  53737. Object.defineProperty(SpriteManager.prototype, "onDispose", {
  53738. set: function (callback) {
  53739. if (this._onDisposeObserver) {
  53740. this.onDisposeObservable.remove(this._onDisposeObserver);
  53741. }
  53742. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  53743. },
  53744. enumerable: true,
  53745. configurable: true
  53746. });
  53747. Object.defineProperty(SpriteManager.prototype, "texture", {
  53748. get: function () {
  53749. return this._spriteTexture;
  53750. },
  53751. set: function (value) {
  53752. this._spriteTexture = value;
  53753. },
  53754. enumerable: true,
  53755. configurable: true
  53756. });
  53757. SpriteManager.prototype._appendSpriteVertex = function (index, sprite, offsetX, offsetY, rowSize) {
  53758. var arrayOffset = index * 16;
  53759. if (offsetX === 0)
  53760. offsetX = this._epsilon;
  53761. else if (offsetX === 1)
  53762. offsetX = 1 - this._epsilon;
  53763. if (offsetY === 0)
  53764. offsetY = this._epsilon;
  53765. else if (offsetY === 1)
  53766. offsetY = 1 - this._epsilon;
  53767. this._vertexData[arrayOffset] = sprite.position.x;
  53768. this._vertexData[arrayOffset + 1] = sprite.position.y;
  53769. this._vertexData[arrayOffset + 2] = sprite.position.z;
  53770. this._vertexData[arrayOffset + 3] = sprite.angle;
  53771. this._vertexData[arrayOffset + 4] = sprite.width;
  53772. this._vertexData[arrayOffset + 5] = sprite.height;
  53773. this._vertexData[arrayOffset + 6] = offsetX;
  53774. this._vertexData[arrayOffset + 7] = offsetY;
  53775. this._vertexData[arrayOffset + 8] = sprite.invertU ? 1 : 0;
  53776. this._vertexData[arrayOffset + 9] = sprite.invertV ? 1 : 0;
  53777. var offset = (sprite.cellIndex / rowSize) >> 0;
  53778. this._vertexData[arrayOffset + 10] = sprite.cellIndex - offset * rowSize;
  53779. this._vertexData[arrayOffset + 11] = offset;
  53780. // Color
  53781. this._vertexData[arrayOffset + 12] = sprite.color.r;
  53782. this._vertexData[arrayOffset + 13] = sprite.color.g;
  53783. this._vertexData[arrayOffset + 14] = sprite.color.b;
  53784. this._vertexData[arrayOffset + 15] = sprite.color.a;
  53785. };
  53786. SpriteManager.prototype.intersects = function (ray, camera, predicate, fastCheck) {
  53787. var count = Math.min(this._capacity, this.sprites.length);
  53788. var min = BABYLON.Vector3.Zero();
  53789. var max = BABYLON.Vector3.Zero();
  53790. var distance = Number.MAX_VALUE;
  53791. var currentSprite = null;
  53792. var cameraSpacePosition = BABYLON.Vector3.Zero();
  53793. var cameraView = camera.getViewMatrix();
  53794. for (var index = 0; index < count; index++) {
  53795. var sprite = this.sprites[index];
  53796. if (!sprite) {
  53797. continue;
  53798. }
  53799. if (predicate) {
  53800. if (!predicate(sprite)) {
  53801. continue;
  53802. }
  53803. }
  53804. else if (!sprite.isPickable) {
  53805. continue;
  53806. }
  53807. BABYLON.Vector3.TransformCoordinatesToRef(sprite.position, cameraView, cameraSpacePosition);
  53808. min.copyFromFloats(cameraSpacePosition.x - sprite.width / 2, cameraSpacePosition.y - sprite.height / 2, cameraSpacePosition.z);
  53809. max.copyFromFloats(cameraSpacePosition.x + sprite.width / 2, cameraSpacePosition.y + sprite.height / 2, cameraSpacePosition.z);
  53810. if (ray.intersectsBoxMinMax(min, max)) {
  53811. var currentDistance = BABYLON.Vector3.Distance(cameraSpacePosition, ray.origin);
  53812. if (distance > currentDistance) {
  53813. distance = currentDistance;
  53814. currentSprite = sprite;
  53815. if (fastCheck) {
  53816. break;
  53817. }
  53818. }
  53819. }
  53820. }
  53821. if (currentSprite) {
  53822. var result = new BABYLON.PickingInfo();
  53823. result.hit = true;
  53824. result.pickedSprite = currentSprite;
  53825. result.distance = distance;
  53826. return result;
  53827. }
  53828. return null;
  53829. };
  53830. SpriteManager.prototype.render = function () {
  53831. // Check
  53832. if (!this._effectBase.isReady() || !this._effectFog.isReady() || !this._spriteTexture || !this._spriteTexture.isReady())
  53833. return;
  53834. var engine = this._scene.getEngine();
  53835. var baseSize = this._spriteTexture.getBaseSize();
  53836. // Sprites
  53837. var deltaTime = engine.getDeltaTime();
  53838. var max = Math.min(this._capacity, this.sprites.length);
  53839. var rowSize = baseSize.width / this.cellWidth;
  53840. var offset = 0;
  53841. for (var index = 0; index < max; index++) {
  53842. var sprite = this.sprites[index];
  53843. if (!sprite || !sprite.isVisible) {
  53844. continue;
  53845. }
  53846. sprite._animate(deltaTime);
  53847. this._appendSpriteVertex(offset++, sprite, 0, 0, rowSize);
  53848. this._appendSpriteVertex(offset++, sprite, 1, 0, rowSize);
  53849. this._appendSpriteVertex(offset++, sprite, 1, 1, rowSize);
  53850. this._appendSpriteVertex(offset++, sprite, 0, 1, rowSize);
  53851. }
  53852. this._buffer.update(this._vertexData);
  53853. // Render
  53854. var effect = this._effectBase;
  53855. if (this._scene.fogEnabled && this._scene.fogMode !== BABYLON.Scene.FOGMODE_NONE && this.fogEnabled) {
  53856. effect = this._effectFog;
  53857. }
  53858. engine.enableEffect(effect);
  53859. var viewMatrix = this._scene.getViewMatrix();
  53860. effect.setTexture("diffuseSampler", this._spriteTexture);
  53861. effect.setMatrix("view", viewMatrix);
  53862. effect.setMatrix("projection", this._scene.getProjectionMatrix());
  53863. effect.setFloat2("textureInfos", this.cellWidth / baseSize.width, this.cellHeight / baseSize.height);
  53864. // Fog
  53865. if (this._scene.fogEnabled && this._scene.fogMode !== BABYLON.Scene.FOGMODE_NONE && this.fogEnabled) {
  53866. effect.setFloat4("vFogInfos", this._scene.fogMode, this._scene.fogStart, this._scene.fogEnd, this._scene.fogDensity);
  53867. effect.setColor3("vFogColor", this._scene.fogColor);
  53868. }
  53869. // VBOs
  53870. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, effect);
  53871. // Draw order
  53872. engine.setDepthFunctionToLessOrEqual();
  53873. effect.setBool("alphaTest", true);
  53874. engine.setColorWrite(false);
  53875. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, (offset / 4) * 6);
  53876. engine.setColorWrite(true);
  53877. effect.setBool("alphaTest", false);
  53878. engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  53879. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, (offset / 4) * 6);
  53880. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  53881. };
  53882. SpriteManager.prototype.dispose = function () {
  53883. if (this._buffer) {
  53884. this._buffer.dispose();
  53885. this._buffer = null;
  53886. }
  53887. if (this._indexBuffer) {
  53888. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  53889. this._indexBuffer = null;
  53890. }
  53891. if (this._spriteTexture) {
  53892. this._spriteTexture.dispose();
  53893. this._spriteTexture = null;
  53894. }
  53895. // Remove from scene
  53896. var index = this._scene.spriteManagers.indexOf(this);
  53897. this._scene.spriteManagers.splice(index, 1);
  53898. // Callback
  53899. this.onDisposeObservable.notifyObservers(this);
  53900. this.onDisposeObservable.clear();
  53901. };
  53902. return SpriteManager;
  53903. }());
  53904. BABYLON.SpriteManager = SpriteManager;
  53905. })(BABYLON || (BABYLON = {}));
  53906. //# sourceMappingURL=babylon.spriteManager.js.map
  53907. var BABYLON;
  53908. (function (BABYLON) {
  53909. var Sprite = /** @class */ (function () {
  53910. function Sprite(name, manager) {
  53911. this.name = name;
  53912. this.color = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  53913. this.width = 1.0;
  53914. this.height = 1.0;
  53915. this.angle = 0;
  53916. this.cellIndex = 0;
  53917. this.invertU = 0;
  53918. this.invertV = 0;
  53919. this.animations = new Array();
  53920. this.isPickable = false;
  53921. this._animationStarted = false;
  53922. this._loopAnimation = false;
  53923. this._fromIndex = 0;
  53924. this._toIndex = 0;
  53925. this._delay = 0;
  53926. this._direction = 1;
  53927. this._time = 0;
  53928. /**
  53929. * Gets or sets a boolean indicating if the sprite is visible (renderable). Default is true
  53930. */
  53931. this.isVisible = true;
  53932. this._manager = manager;
  53933. this._manager.sprites.push(this);
  53934. this.position = BABYLON.Vector3.Zero();
  53935. }
  53936. Object.defineProperty(Sprite.prototype, "size", {
  53937. get: function () {
  53938. return this.width;
  53939. },
  53940. set: function (value) {
  53941. this.width = value;
  53942. this.height = value;
  53943. },
  53944. enumerable: true,
  53945. configurable: true
  53946. });
  53947. Sprite.prototype.playAnimation = function (from, to, loop, delay, onAnimationEnd) {
  53948. this._fromIndex = from;
  53949. this._toIndex = to;
  53950. this._loopAnimation = loop;
  53951. this._delay = delay;
  53952. this._animationStarted = true;
  53953. this._direction = from < to ? 1 : -1;
  53954. this.cellIndex = from;
  53955. this._time = 0;
  53956. this._onAnimationEnd = onAnimationEnd;
  53957. };
  53958. Sprite.prototype.stopAnimation = function () {
  53959. this._animationStarted = false;
  53960. };
  53961. /** @hidden */
  53962. Sprite.prototype._animate = function (deltaTime) {
  53963. if (!this._animationStarted)
  53964. return;
  53965. this._time += deltaTime;
  53966. if (this._time > this._delay) {
  53967. this._time = this._time % this._delay;
  53968. this.cellIndex += this._direction;
  53969. if (this.cellIndex > this._toIndex) {
  53970. if (this._loopAnimation) {
  53971. this.cellIndex = this._fromIndex;
  53972. }
  53973. else {
  53974. this.cellIndex = this._toIndex;
  53975. this._animationStarted = false;
  53976. if (this._onAnimationEnd) {
  53977. this._onAnimationEnd();
  53978. }
  53979. if (this.disposeWhenFinishedAnimating) {
  53980. this.dispose();
  53981. }
  53982. }
  53983. }
  53984. }
  53985. };
  53986. Sprite.prototype.dispose = function () {
  53987. for (var i = 0; i < this._manager.sprites.length; i++) {
  53988. if (this._manager.sprites[i] == this) {
  53989. this._manager.sprites.splice(i, 1);
  53990. }
  53991. }
  53992. };
  53993. return Sprite;
  53994. }());
  53995. BABYLON.Sprite = Sprite;
  53996. })(BABYLON || (BABYLON = {}));
  53997. //# sourceMappingURL=babylon.sprite.js.map
  53998. var BABYLON;
  53999. (function (BABYLON) {
  54000. BABYLON.Scene.prototype._internalPickSprites = function (ray, predicate, fastCheck, camera) {
  54001. if (!BABYLON.PickingInfo) {
  54002. return null;
  54003. }
  54004. var pickingInfo = null;
  54005. if (!camera) {
  54006. if (!this.activeCamera) {
  54007. return null;
  54008. }
  54009. camera = this.activeCamera;
  54010. }
  54011. if (this.spriteManagers.length > 0) {
  54012. for (var spriteIndex = 0; spriteIndex < this.spriteManagers.length; spriteIndex++) {
  54013. var spriteManager = this.spriteManagers[spriteIndex];
  54014. if (!spriteManager.isPickable) {
  54015. continue;
  54016. }
  54017. var result = spriteManager.intersects(ray, camera, predicate, fastCheck);
  54018. if (!result || !result.hit)
  54019. continue;
  54020. if (!fastCheck && pickingInfo != null && result.distance >= pickingInfo.distance)
  54021. continue;
  54022. pickingInfo = result;
  54023. if (fastCheck) {
  54024. break;
  54025. }
  54026. }
  54027. }
  54028. return pickingInfo || new BABYLON.PickingInfo();
  54029. };
  54030. BABYLON.Scene.prototype.pickSprite = function (x, y, predicate, fastCheck, camera) {
  54031. this.createPickingRayInCameraSpaceToRef(x, y, this._tempSpritePickingRay, camera);
  54032. return this._internalPickSprites(this._tempSpritePickingRay, predicate, fastCheck, camera);
  54033. };
  54034. BABYLON.Scene.prototype.pickSpriteWithRay = function (ray, predicate, fastCheck, camera) {
  54035. if (!this._tempSpritePickingRay) {
  54036. return null;
  54037. }
  54038. if (!camera) {
  54039. if (!this.activeCamera) {
  54040. return null;
  54041. }
  54042. camera = this.activeCamera;
  54043. }
  54044. BABYLON.Ray.TransformToRef(ray, camera.getViewMatrix(), this._tempSpritePickingRay);
  54045. return this._internalPickSprites(this._tempSpritePickingRay, predicate, fastCheck, camera);
  54046. };
  54047. BABYLON.Scene.prototype.setPointerOverSprite = function (sprite) {
  54048. if (this._pointerOverSprite === sprite) {
  54049. return;
  54050. }
  54051. if (this._pointerOverSprite && this._pointerOverSprite.actionManager) {
  54052. this._pointerOverSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPointerOutTrigger, BABYLON.ActionEvent.CreateNewFromSprite(this._pointerOverSprite, this));
  54053. }
  54054. this._pointerOverSprite = sprite;
  54055. if (this._pointerOverSprite && this._pointerOverSprite.actionManager) {
  54056. this._pointerOverSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPointerOverTrigger, BABYLON.ActionEvent.CreateNewFromSprite(this._pointerOverSprite, this));
  54057. }
  54058. };
  54059. BABYLON.Scene.prototype.getPointerOverSprite = function () {
  54060. return this._pointerOverSprite;
  54061. };
  54062. /**
  54063. * Defines the sprite scene component responsible to manage sprites
  54064. * in a given scene.
  54065. */
  54066. var SpriteSceneComponent = /** @class */ (function () {
  54067. /**
  54068. * Creates a new instance of the component for the given scene
  54069. * @param scene Defines the scene to register the component in
  54070. */
  54071. function SpriteSceneComponent(scene) {
  54072. /**
  54073. * The component name helpfull to identify the component in the list of scene components.
  54074. */
  54075. this.name = BABYLON.SceneComponentConstants.NAME_SPRITE;
  54076. this.scene = scene;
  54077. this.scene.spriteManagers = new Array();
  54078. this.scene._tempSpritePickingRay = BABYLON.Ray ? BABYLON.Ray.Zero() : null;
  54079. this.scene.onBeforeSpritesRenderingObservable = new BABYLON.Observable();
  54080. this.scene.onAfterSpritesRenderingObservable = new BABYLON.Observable();
  54081. this._spritePredicate = function (sprite) {
  54082. return sprite.isPickable && sprite.actionManager && sprite.actionManager.hasPointerTriggers;
  54083. };
  54084. }
  54085. /**
  54086. * Registers the component in a given scene
  54087. */
  54088. SpriteSceneComponent.prototype.register = function () {
  54089. this.scene._pointerMoveStage.registerStep(BABYLON.SceneComponentConstants.STEP_POINTERMOVE_SPRITE, this, this._pointerMove);
  54090. this.scene._pointerDownStage.registerStep(BABYLON.SceneComponentConstants.STEP_POINTERDOWN_SPRITE, this, this._pointerDown);
  54091. this.scene._pointerUpStage.registerStep(BABYLON.SceneComponentConstants.STEP_POINTERUP_SPRITE, this, this._pointerUp);
  54092. };
  54093. /**
  54094. * Rebuilds the elements related to this component in case of
  54095. * context lost for instance.
  54096. */
  54097. SpriteSceneComponent.prototype.rebuild = function () {
  54098. /** Nothing to do for sprites */
  54099. };
  54100. /**
  54101. * Disposes the component and the associated ressources.
  54102. */
  54103. SpriteSceneComponent.prototype.dispose = function () {
  54104. this.scene.onBeforeSpritesRenderingObservable.clear();
  54105. this.scene.onAfterSpritesRenderingObservable.clear();
  54106. var spriteManagers = this.scene.spriteManagers;
  54107. while (spriteManagers.length) {
  54108. spriteManagers[0].dispose();
  54109. }
  54110. };
  54111. SpriteSceneComponent.prototype._pickSpriteButKeepRay = function (originalPointerInfo, x, y, fastCheck, camera) {
  54112. var result = this.scene.pickSprite(x, y, this._spritePredicate, fastCheck, camera);
  54113. if (result) {
  54114. result.ray = originalPointerInfo ? originalPointerInfo.ray : null;
  54115. }
  54116. return result;
  54117. };
  54118. SpriteSceneComponent.prototype._pointerMove = function (unTranslatedPointerX, unTranslatedPointerY, pickResult, isMeshPicked, canvas) {
  54119. var scene = this.scene;
  54120. if (isMeshPicked) {
  54121. scene.setPointerOverSprite(null);
  54122. }
  54123. else {
  54124. pickResult = this._pickSpriteButKeepRay(pickResult, unTranslatedPointerX, unTranslatedPointerY, false, scene.cameraToUseForPointers || undefined);
  54125. if (pickResult && pickResult.hit && pickResult.pickedSprite) {
  54126. scene.setPointerOverSprite(pickResult.pickedSprite);
  54127. if (scene._pointerOverSprite && scene._pointerOverSprite.actionManager && scene._pointerOverSprite.actionManager.hoverCursor) {
  54128. canvas.style.cursor = scene._pointerOverSprite.actionManager.hoverCursor;
  54129. }
  54130. else {
  54131. canvas.style.cursor = scene.hoverCursor;
  54132. }
  54133. }
  54134. else {
  54135. scene.setPointerOverSprite(null);
  54136. }
  54137. }
  54138. return pickResult;
  54139. };
  54140. SpriteSceneComponent.prototype._pointerDown = function (unTranslatedPointerX, unTranslatedPointerY, pickResult, evt) {
  54141. var scene = this.scene;
  54142. scene._pickedDownSprite = null;
  54143. if (scene.spriteManagers.length > 0) {
  54144. pickResult = scene.pickSprite(unTranslatedPointerX, unTranslatedPointerY, this._spritePredicate, false, scene.cameraToUseForPointers || undefined);
  54145. if (pickResult && pickResult.hit && pickResult.pickedSprite) {
  54146. if (pickResult.pickedSprite.actionManager) {
  54147. scene._pickedDownSprite = pickResult.pickedSprite;
  54148. switch (evt.button) {
  54149. case 0:
  54150. pickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnLeftPickTrigger, BABYLON.ActionEvent.CreateNewFromSprite(pickResult.pickedSprite, scene, evt));
  54151. break;
  54152. case 1:
  54153. pickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnCenterPickTrigger, BABYLON.ActionEvent.CreateNewFromSprite(pickResult.pickedSprite, scene, evt));
  54154. break;
  54155. case 2:
  54156. pickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnRightPickTrigger, BABYLON.ActionEvent.CreateNewFromSprite(pickResult.pickedSprite, scene, evt));
  54157. break;
  54158. }
  54159. if (pickResult.pickedSprite.actionManager) {
  54160. pickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPickDownTrigger, BABYLON.ActionEvent.CreateNewFromSprite(pickResult.pickedSprite, scene, evt));
  54161. }
  54162. }
  54163. }
  54164. }
  54165. return pickResult;
  54166. };
  54167. SpriteSceneComponent.prototype._pointerUp = function (unTranslatedPointerX, unTranslatedPointerY, pickResult, evt) {
  54168. var scene = this.scene;
  54169. if (scene.spriteManagers.length > 0) {
  54170. var spritePickResult = scene.pickSprite(unTranslatedPointerX, unTranslatedPointerY, this._spritePredicate, false, scene.cameraToUseForPointers || undefined);
  54171. if (spritePickResult) {
  54172. if (spritePickResult.hit && spritePickResult.pickedSprite) {
  54173. if (spritePickResult.pickedSprite.actionManager) {
  54174. spritePickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPickUpTrigger, BABYLON.ActionEvent.CreateNewFromSprite(spritePickResult.pickedSprite, scene, evt));
  54175. if (spritePickResult.pickedSprite.actionManager) {
  54176. if (!this.scene._isPointerSwiping()) {
  54177. spritePickResult.pickedSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPickTrigger, BABYLON.ActionEvent.CreateNewFromSprite(spritePickResult.pickedSprite, scene, evt));
  54178. }
  54179. }
  54180. }
  54181. }
  54182. if (scene._pickedDownSprite && scene._pickedDownSprite.actionManager && scene._pickedDownSprite !== spritePickResult.pickedSprite) {
  54183. scene._pickedDownSprite.actionManager.processTrigger(BABYLON.ActionManager.OnPickOutTrigger, BABYLON.ActionEvent.CreateNewFromSprite(scene._pickedDownSprite, scene, evt));
  54184. }
  54185. }
  54186. }
  54187. return pickResult;
  54188. };
  54189. return SpriteSceneComponent;
  54190. }());
  54191. BABYLON.SpriteSceneComponent = SpriteSceneComponent;
  54192. })(BABYLON || (BABYLON = {}));
  54193. //# sourceMappingURL=babylon.spriteSceneComponent.js.map
  54194. var BABYLON;
  54195. (function (BABYLON) {
  54196. var IntersectionInfo = /** @class */ (function () {
  54197. function IntersectionInfo(bu, bv, distance) {
  54198. this.bu = bu;
  54199. this.bv = bv;
  54200. this.distance = distance;
  54201. this.faceId = 0;
  54202. this.subMeshId = 0;
  54203. }
  54204. return IntersectionInfo;
  54205. }());
  54206. BABYLON.IntersectionInfo = IntersectionInfo;
  54207. /**
  54208. * Information about the result of picking within a scene
  54209. * See https://doc.babylonjs.com/babylon101/picking_collisions
  54210. */
  54211. var PickingInfo = /** @class */ (function () {
  54212. function PickingInfo() {
  54213. /**
  54214. * If the pick collided with an object
  54215. */
  54216. this.hit = false;
  54217. /**
  54218. * Distance away where the pick collided
  54219. */
  54220. this.distance = 0;
  54221. /**
  54222. * The location of pick collision
  54223. */
  54224. this.pickedPoint = null;
  54225. /**
  54226. * The mesh corresponding the the pick collision
  54227. */
  54228. this.pickedMesh = null;
  54229. /** (See getTextureCoordinates) The barycentric U coordinate that is used when calulating the texture coordinates of the collision.*/
  54230. this.bu = 0;
  54231. /** (See getTextureCoordinates) The barycentric V coordinate that is used when calulating the texture coordinates of the collision.*/
  54232. this.bv = 0;
  54233. /** The id of the face on the mesh that was picked */
  54234. this.faceId = -1;
  54235. /** Id of the the submesh that was picked */
  54236. this.subMeshId = 0;
  54237. /** If a sprite was picked, this will be the sprite the pick collided with */
  54238. this.pickedSprite = null;
  54239. /**
  54240. * If a mesh was used to do the picking (eg. 6dof controller) this will be populated.
  54241. */
  54242. this.originMesh = null;
  54243. /**
  54244. * The ray that was used to perform the picking.
  54245. */
  54246. this.ray = null;
  54247. }
  54248. /**
  54249. * Gets the normal correspodning to the face the pick collided with
  54250. * @param useWorldCoordinates If the resulting normal should be relative to the world (default: false)
  54251. * @param useVerticesNormals If the vertices normals should be used to calculate the normal instead of the normal map
  54252. * @returns The normal correspodning to the face the pick collided with
  54253. */
  54254. PickingInfo.prototype.getNormal = function (useWorldCoordinates, useVerticesNormals) {
  54255. if (useWorldCoordinates === void 0) { useWorldCoordinates = false; }
  54256. if (useVerticesNormals === void 0) { useVerticesNormals = true; }
  54257. if (!this.pickedMesh || !this.pickedMesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  54258. return null;
  54259. }
  54260. var indices = this.pickedMesh.getIndices();
  54261. if (!indices) {
  54262. return null;
  54263. }
  54264. var result;
  54265. if (useVerticesNormals) {
  54266. var normals = this.pickedMesh.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  54267. var normal0 = BABYLON.Vector3.FromArray(normals, indices[this.faceId * 3] * 3);
  54268. var normal1 = BABYLON.Vector3.FromArray(normals, indices[this.faceId * 3 + 1] * 3);
  54269. var normal2 = BABYLON.Vector3.FromArray(normals, indices[this.faceId * 3 + 2] * 3);
  54270. normal0 = normal0.scale(this.bu);
  54271. normal1 = normal1.scale(this.bv);
  54272. normal2 = normal2.scale(1.0 - this.bu - this.bv);
  54273. result = new BABYLON.Vector3(normal0.x + normal1.x + normal2.x, normal0.y + normal1.y + normal2.y, normal0.z + normal1.z + normal2.z);
  54274. }
  54275. else {
  54276. var positions = this.pickedMesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  54277. var vertex1 = BABYLON.Vector3.FromArray(positions, indices[this.faceId * 3] * 3);
  54278. var vertex2 = BABYLON.Vector3.FromArray(positions, indices[this.faceId * 3 + 1] * 3);
  54279. var vertex3 = BABYLON.Vector3.FromArray(positions, indices[this.faceId * 3 + 2] * 3);
  54280. var p1p2 = vertex1.subtract(vertex2);
  54281. var p3p2 = vertex3.subtract(vertex2);
  54282. result = BABYLON.Vector3.Cross(p1p2, p3p2);
  54283. }
  54284. if (useWorldCoordinates) {
  54285. var wm = this.pickedMesh.getWorldMatrix();
  54286. if (this.pickedMesh.nonUniformScaling) {
  54287. BABYLON.Tmp.Matrix[0].copyFrom(wm);
  54288. wm = BABYLON.Tmp.Matrix[0];
  54289. wm.setTranslationFromFloats(0, 0, 0);
  54290. wm.invert();
  54291. wm.transposeToRef(BABYLON.Tmp.Matrix[1]);
  54292. wm = BABYLON.Tmp.Matrix[1];
  54293. }
  54294. result = BABYLON.Vector3.TransformNormal(result, wm);
  54295. }
  54296. result.normalize();
  54297. return result;
  54298. };
  54299. /**
  54300. * Gets the texture coordinates of where the pick occured
  54301. * @returns the vector containing the coordnates of the texture
  54302. */
  54303. PickingInfo.prototype.getTextureCoordinates = function () {
  54304. if (!this.pickedMesh || !this.pickedMesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  54305. return null;
  54306. }
  54307. var indices = this.pickedMesh.getIndices();
  54308. if (!indices) {
  54309. return null;
  54310. }
  54311. var uvs = this.pickedMesh.getVerticesData(BABYLON.VertexBuffer.UVKind);
  54312. if (!uvs) {
  54313. return null;
  54314. }
  54315. var uv0 = BABYLON.Vector2.FromArray(uvs, indices[this.faceId * 3] * 2);
  54316. var uv1 = BABYLON.Vector2.FromArray(uvs, indices[this.faceId * 3 + 1] * 2);
  54317. var uv2 = BABYLON.Vector2.FromArray(uvs, indices[this.faceId * 3 + 2] * 2);
  54318. uv0 = uv0.scale(1.0 - this.bu - this.bv);
  54319. uv1 = uv1.scale(this.bu);
  54320. uv2 = uv2.scale(this.bv);
  54321. return new BABYLON.Vector2(uv0.x + uv1.x + uv2.x, uv0.y + uv1.y + uv2.y);
  54322. };
  54323. return PickingInfo;
  54324. }());
  54325. BABYLON.PickingInfo = PickingInfo;
  54326. })(BABYLON || (BABYLON = {}));
  54327. //# sourceMappingURL=babylon.pickingInfo.js.map
  54328. var BABYLON;
  54329. (function (BABYLON) {
  54330. var Ray = /** @class */ (function () {
  54331. function Ray(origin, direction, length) {
  54332. if (length === void 0) { length = Number.MAX_VALUE; }
  54333. this.origin = origin;
  54334. this.direction = direction;
  54335. this.length = length;
  54336. }
  54337. // Methods
  54338. Ray.prototype.intersectsBoxMinMax = function (minimum, maximum) {
  54339. var d = 0.0;
  54340. var maxValue = Number.MAX_VALUE;
  54341. var inv;
  54342. var min;
  54343. var max;
  54344. var temp;
  54345. if (Math.abs(this.direction.x) < 0.0000001) {
  54346. if (this.origin.x < minimum.x || this.origin.x > maximum.x) {
  54347. return false;
  54348. }
  54349. }
  54350. else {
  54351. inv = 1.0 / this.direction.x;
  54352. min = (minimum.x - this.origin.x) * inv;
  54353. max = (maximum.x - this.origin.x) * inv;
  54354. if (max === -Infinity) {
  54355. max = Infinity;
  54356. }
  54357. if (min > max) {
  54358. temp = min;
  54359. min = max;
  54360. max = temp;
  54361. }
  54362. d = Math.max(min, d);
  54363. maxValue = Math.min(max, maxValue);
  54364. if (d > maxValue) {
  54365. return false;
  54366. }
  54367. }
  54368. if (Math.abs(this.direction.y) < 0.0000001) {
  54369. if (this.origin.y < minimum.y || this.origin.y > maximum.y) {
  54370. return false;
  54371. }
  54372. }
  54373. else {
  54374. inv = 1.0 / this.direction.y;
  54375. min = (minimum.y - this.origin.y) * inv;
  54376. max = (maximum.y - this.origin.y) * inv;
  54377. if (max === -Infinity) {
  54378. max = Infinity;
  54379. }
  54380. if (min > max) {
  54381. temp = min;
  54382. min = max;
  54383. max = temp;
  54384. }
  54385. d = Math.max(min, d);
  54386. maxValue = Math.min(max, maxValue);
  54387. if (d > maxValue) {
  54388. return false;
  54389. }
  54390. }
  54391. if (Math.abs(this.direction.z) < 0.0000001) {
  54392. if (this.origin.z < minimum.z || this.origin.z > maximum.z) {
  54393. return false;
  54394. }
  54395. }
  54396. else {
  54397. inv = 1.0 / this.direction.z;
  54398. min = (minimum.z - this.origin.z) * inv;
  54399. max = (maximum.z - this.origin.z) * inv;
  54400. if (max === -Infinity) {
  54401. max = Infinity;
  54402. }
  54403. if (min > max) {
  54404. temp = min;
  54405. min = max;
  54406. max = temp;
  54407. }
  54408. d = Math.max(min, d);
  54409. maxValue = Math.min(max, maxValue);
  54410. if (d > maxValue) {
  54411. return false;
  54412. }
  54413. }
  54414. return true;
  54415. };
  54416. Ray.prototype.intersectsBox = function (box) {
  54417. return this.intersectsBoxMinMax(box.minimum, box.maximum);
  54418. };
  54419. Ray.prototype.intersectsSphere = function (sphere) {
  54420. var x = sphere.center.x - this.origin.x;
  54421. var y = sphere.center.y - this.origin.y;
  54422. var z = sphere.center.z - this.origin.z;
  54423. var pyth = (x * x) + (y * y) + (z * z);
  54424. var rr = sphere.radius * sphere.radius;
  54425. if (pyth <= rr) {
  54426. return true;
  54427. }
  54428. var dot = (x * this.direction.x) + (y * this.direction.y) + (z * this.direction.z);
  54429. if (dot < 0.0) {
  54430. return false;
  54431. }
  54432. var temp = pyth - (dot * dot);
  54433. return temp <= rr;
  54434. };
  54435. Ray.prototype.intersectsTriangle = function (vertex0, vertex1, vertex2) {
  54436. if (!this._edge1) {
  54437. this._edge1 = BABYLON.Vector3.Zero();
  54438. this._edge2 = BABYLON.Vector3.Zero();
  54439. this._pvec = BABYLON.Vector3.Zero();
  54440. this._tvec = BABYLON.Vector3.Zero();
  54441. this._qvec = BABYLON.Vector3.Zero();
  54442. }
  54443. vertex1.subtractToRef(vertex0, this._edge1);
  54444. vertex2.subtractToRef(vertex0, this._edge2);
  54445. BABYLON.Vector3.CrossToRef(this.direction, this._edge2, this._pvec);
  54446. var det = BABYLON.Vector3.Dot(this._edge1, this._pvec);
  54447. if (det === 0) {
  54448. return null;
  54449. }
  54450. var invdet = 1 / det;
  54451. this.origin.subtractToRef(vertex0, this._tvec);
  54452. var bu = BABYLON.Vector3.Dot(this._tvec, this._pvec) * invdet;
  54453. if (bu < 0 || bu > 1.0) {
  54454. return null;
  54455. }
  54456. BABYLON.Vector3.CrossToRef(this._tvec, this._edge1, this._qvec);
  54457. var bv = BABYLON.Vector3.Dot(this.direction, this._qvec) * invdet;
  54458. if (bv < 0 || bu + bv > 1.0) {
  54459. return null;
  54460. }
  54461. //check if the distance is longer than the predefined length.
  54462. var distance = BABYLON.Vector3.Dot(this._edge2, this._qvec) * invdet;
  54463. if (distance > this.length) {
  54464. return null;
  54465. }
  54466. return new BABYLON.IntersectionInfo(bu, bv, distance);
  54467. };
  54468. Ray.prototype.intersectsPlane = function (plane) {
  54469. var distance;
  54470. var result1 = BABYLON.Vector3.Dot(plane.normal, this.direction);
  54471. if (Math.abs(result1) < 9.99999997475243E-07) {
  54472. return null;
  54473. }
  54474. else {
  54475. var result2 = BABYLON.Vector3.Dot(plane.normal, this.origin);
  54476. distance = (-plane.d - result2) / result1;
  54477. if (distance < 0.0) {
  54478. if (distance < -9.99999997475243E-07) {
  54479. return null;
  54480. }
  54481. else {
  54482. return 0;
  54483. }
  54484. }
  54485. return distance;
  54486. }
  54487. };
  54488. Ray.prototype.intersectsMesh = function (mesh, fastCheck) {
  54489. var tm = BABYLON.Tmp.Matrix[0];
  54490. mesh.getWorldMatrix().invertToRef(tm);
  54491. if (this._tmpRay) {
  54492. Ray.TransformToRef(this, tm, this._tmpRay);
  54493. }
  54494. else {
  54495. this._tmpRay = Ray.Transform(this, tm);
  54496. }
  54497. return mesh.intersects(this._tmpRay, fastCheck);
  54498. };
  54499. Ray.prototype.intersectsMeshes = function (meshes, fastCheck, results) {
  54500. if (results) {
  54501. results.length = 0;
  54502. }
  54503. else {
  54504. results = [];
  54505. }
  54506. for (var i = 0; i < meshes.length; i++) {
  54507. var pickInfo = this.intersectsMesh(meshes[i], fastCheck);
  54508. if (pickInfo.hit) {
  54509. results.push(pickInfo);
  54510. }
  54511. }
  54512. results.sort(this._comparePickingInfo);
  54513. return results;
  54514. };
  54515. Ray.prototype._comparePickingInfo = function (pickingInfoA, pickingInfoB) {
  54516. if (pickingInfoA.distance < pickingInfoB.distance) {
  54517. return -1;
  54518. }
  54519. else if (pickingInfoA.distance > pickingInfoB.distance) {
  54520. return 1;
  54521. }
  54522. else {
  54523. return 0;
  54524. }
  54525. };
  54526. /**
  54527. * Intersection test between the ray and a given segment whithin a given tolerance (threshold)
  54528. * @param sega the first point of the segment to test the intersection against
  54529. * @param segb the second point of the segment to test the intersection against
  54530. * @param threshold the tolerance margin, if the ray doesn't intersect the segment but is close to the given threshold, the intersection is successful
  54531. * @return the distance from the ray origin to the intersection point if there's intersection, or -1 if there's no intersection
  54532. */
  54533. Ray.prototype.intersectionSegment = function (sega, segb, threshold) {
  54534. var rsegb = this.origin.add(this.direction.multiplyByFloats(Ray.rayl, Ray.rayl, Ray.rayl));
  54535. var u = segb.subtract(sega);
  54536. var v = rsegb.subtract(this.origin);
  54537. var w = sega.subtract(this.origin);
  54538. var a = BABYLON.Vector3.Dot(u, u); // always >= 0
  54539. var b = BABYLON.Vector3.Dot(u, v);
  54540. var c = BABYLON.Vector3.Dot(v, v); // always >= 0
  54541. var d = BABYLON.Vector3.Dot(u, w);
  54542. var e = BABYLON.Vector3.Dot(v, w);
  54543. var D = a * c - b * b; // always >= 0
  54544. var sc, sN, sD = D; // sc = sN / sD, default sD = D >= 0
  54545. var tc, tN, tD = D; // tc = tN / tD, default tD = D >= 0
  54546. // compute the line parameters of the two closest points
  54547. if (D < Ray.smallnum) { // the lines are almost parallel
  54548. sN = 0.0; // force using point P0 on segment S1
  54549. sD = 1.0; // to prevent possible division by 0.0 later
  54550. tN = e;
  54551. tD = c;
  54552. }
  54553. else { // get the closest points on the infinite lines
  54554. sN = (b * e - c * d);
  54555. tN = (a * e - b * d);
  54556. if (sN < 0.0) { // sc < 0 => the s=0 edge is visible
  54557. sN = 0.0;
  54558. tN = e;
  54559. tD = c;
  54560. }
  54561. else if (sN > sD) { // sc > 1 => the s=1 edge is visible
  54562. sN = sD;
  54563. tN = e + b;
  54564. tD = c;
  54565. }
  54566. }
  54567. if (tN < 0.0) { // tc < 0 => the t=0 edge is visible
  54568. tN = 0.0;
  54569. // recompute sc for this edge
  54570. if (-d < 0.0) {
  54571. sN = 0.0;
  54572. }
  54573. else if (-d > a)
  54574. sN = sD;
  54575. else {
  54576. sN = -d;
  54577. sD = a;
  54578. }
  54579. }
  54580. else if (tN > tD) { // tc > 1 => the t=1 edge is visible
  54581. tN = tD;
  54582. // recompute sc for this edge
  54583. if ((-d + b) < 0.0) {
  54584. sN = 0;
  54585. }
  54586. else if ((-d + b) > a) {
  54587. sN = sD;
  54588. }
  54589. else {
  54590. sN = (-d + b);
  54591. sD = a;
  54592. }
  54593. }
  54594. // finally do the division to get sc and tc
  54595. sc = (Math.abs(sN) < Ray.smallnum ? 0.0 : sN / sD);
  54596. tc = (Math.abs(tN) < Ray.smallnum ? 0.0 : tN / tD);
  54597. // get the difference of the two closest points
  54598. var qtc = v.multiplyByFloats(tc, tc, tc);
  54599. var dP = w.add(u.multiplyByFloats(sc, sc, sc)).subtract(qtc); // = S1(sc) - S2(tc)
  54600. var isIntersected = (tc > 0) && (tc <= this.length) && (dP.lengthSquared() < (threshold * threshold)); // return intersection result
  54601. if (isIntersected) {
  54602. return qtc.length();
  54603. }
  54604. return -1;
  54605. };
  54606. Ray.prototype.update = function (x, y, viewportWidth, viewportHeight, world, view, projection) {
  54607. BABYLON.Vector3.UnprojectFloatsToRef(x, y, 0, viewportWidth, viewportHeight, world, view, projection, this.origin);
  54608. BABYLON.Vector3.UnprojectFloatsToRef(x, y, 1, viewportWidth, viewportHeight, world, view, projection, BABYLON.Tmp.Vector3[0]);
  54609. BABYLON.Tmp.Vector3[0].subtractToRef(this.origin, this.direction);
  54610. this.direction.normalize();
  54611. return this;
  54612. };
  54613. // Statics
  54614. Ray.Zero = function () {
  54615. return new Ray(BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero());
  54616. };
  54617. Ray.CreateNew = function (x, y, viewportWidth, viewportHeight, world, view, projection) {
  54618. var result = Ray.Zero();
  54619. return result.update(x, y, viewportWidth, viewportHeight, world, view, projection);
  54620. };
  54621. /**
  54622. * Function will create a new transformed ray starting from origin and ending at the end point. Ray's length will be set, and ray will be
  54623. * transformed to the given world matrix.
  54624. * @param origin The origin point
  54625. * @param end The end point
  54626. * @param world a matrix to transform the ray to. Default is the identity matrix.
  54627. */
  54628. Ray.CreateNewFromTo = function (origin, end, world) {
  54629. if (world === void 0) { world = BABYLON.Matrix.Identity(); }
  54630. var direction = end.subtract(origin);
  54631. var length = Math.sqrt((direction.x * direction.x) + (direction.y * direction.y) + (direction.z * direction.z));
  54632. direction.normalize();
  54633. return Ray.Transform(new Ray(origin, direction, length), world);
  54634. };
  54635. Ray.Transform = function (ray, matrix) {
  54636. var result = new Ray(new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(0, 0, 0));
  54637. Ray.TransformToRef(ray, matrix, result);
  54638. return result;
  54639. };
  54640. Ray.TransformToRef = function (ray, matrix, result) {
  54641. BABYLON.Vector3.TransformCoordinatesToRef(ray.origin, matrix, result.origin);
  54642. BABYLON.Vector3.TransformNormalToRef(ray.direction, matrix, result.direction);
  54643. result.length = ray.length;
  54644. var dir = result.direction;
  54645. var len = dir.length();
  54646. if (!(len === 0 || len === 1)) {
  54647. var num = 1.0 / len;
  54648. dir.x *= num;
  54649. dir.y *= num;
  54650. dir.z *= num;
  54651. result.length *= len;
  54652. }
  54653. };
  54654. Ray.smallnum = 0.00000001;
  54655. Ray.rayl = 10e8;
  54656. return Ray;
  54657. }());
  54658. BABYLON.Ray = Ray;
  54659. })(BABYLON || (BABYLON = {}));
  54660. //# sourceMappingURL=babylon.ray.js.map
  54661. var BABYLON;
  54662. (function (BABYLON) {
  54663. var intersectBoxAASphere = function (boxMin, boxMax, sphereCenter, sphereRadius) {
  54664. if (boxMin.x > sphereCenter.x + sphereRadius)
  54665. return false;
  54666. if (sphereCenter.x - sphereRadius > boxMax.x)
  54667. return false;
  54668. if (boxMin.y > sphereCenter.y + sphereRadius)
  54669. return false;
  54670. if (sphereCenter.y - sphereRadius > boxMax.y)
  54671. return false;
  54672. if (boxMin.z > sphereCenter.z + sphereRadius)
  54673. return false;
  54674. if (sphereCenter.z - sphereRadius > boxMax.z)
  54675. return false;
  54676. return true;
  54677. };
  54678. var getLowestRoot = (function () {
  54679. var result = { root: 0, found: false };
  54680. return function (a, b, c, maxR) {
  54681. result.root = 0;
  54682. result.found = false;
  54683. var determinant = b * b - 4.0 * a * c;
  54684. if (determinant < 0)
  54685. return result;
  54686. var sqrtD = Math.sqrt(determinant);
  54687. var r1 = (-b - sqrtD) / (2.0 * a);
  54688. var r2 = (-b + sqrtD) / (2.0 * a);
  54689. if (r1 > r2) {
  54690. var temp = r2;
  54691. r2 = r1;
  54692. r1 = temp;
  54693. }
  54694. if (r1 > 0 && r1 < maxR) {
  54695. result.root = r1;
  54696. result.found = true;
  54697. return result;
  54698. }
  54699. if (r2 > 0 && r2 < maxR) {
  54700. result.root = r2;
  54701. result.found = true;
  54702. return result;
  54703. }
  54704. return result;
  54705. };
  54706. })();
  54707. var Collider = /** @class */ (function () {
  54708. function Collider() {
  54709. this._collisionPoint = BABYLON.Vector3.Zero();
  54710. this._planeIntersectionPoint = BABYLON.Vector3.Zero();
  54711. this._tempVector = BABYLON.Vector3.Zero();
  54712. this._tempVector2 = BABYLON.Vector3.Zero();
  54713. this._tempVector3 = BABYLON.Vector3.Zero();
  54714. this._tempVector4 = BABYLON.Vector3.Zero();
  54715. this._edge = BABYLON.Vector3.Zero();
  54716. this._baseToVertex = BABYLON.Vector3.Zero();
  54717. this._destinationPoint = BABYLON.Vector3.Zero();
  54718. this._slidePlaneNormal = BABYLON.Vector3.Zero();
  54719. this._displacementVector = BABYLON.Vector3.Zero();
  54720. /** @hidden */
  54721. this._radius = BABYLON.Vector3.One();
  54722. /** @hidden */
  54723. this._retry = 0;
  54724. /** @hidden */
  54725. this._basePointWorld = BABYLON.Vector3.Zero();
  54726. this._velocityWorld = BABYLON.Vector3.Zero();
  54727. this._normalizedVelocity = BABYLON.Vector3.Zero();
  54728. this._collisionMask = -1;
  54729. }
  54730. Object.defineProperty(Collider.prototype, "collisionMask", {
  54731. get: function () {
  54732. return this._collisionMask;
  54733. },
  54734. set: function (mask) {
  54735. this._collisionMask = !isNaN(mask) ? mask : -1;
  54736. },
  54737. enumerable: true,
  54738. configurable: true
  54739. });
  54740. Object.defineProperty(Collider.prototype, "slidePlaneNormal", {
  54741. /**
  54742. * Gets the plane normal used to compute the sliding response (in local space)
  54743. */
  54744. get: function () {
  54745. return this._slidePlaneNormal;
  54746. },
  54747. enumerable: true,
  54748. configurable: true
  54749. });
  54750. // Methods
  54751. /** @hidden */
  54752. Collider.prototype._initialize = function (source, dir, e) {
  54753. this._velocity = dir;
  54754. BABYLON.Vector3.NormalizeToRef(dir, this._normalizedVelocity);
  54755. this._basePoint = source;
  54756. source.multiplyToRef(this._radius, this._basePointWorld);
  54757. dir.multiplyToRef(this._radius, this._velocityWorld);
  54758. this._velocityWorldLength = this._velocityWorld.length();
  54759. this._epsilon = e;
  54760. this.collisionFound = false;
  54761. };
  54762. /** @hidden */
  54763. Collider.prototype._checkPointInTriangle = function (point, pa, pb, pc, n) {
  54764. pa.subtractToRef(point, this._tempVector);
  54765. pb.subtractToRef(point, this._tempVector2);
  54766. BABYLON.Vector3.CrossToRef(this._tempVector, this._tempVector2, this._tempVector4);
  54767. var d = BABYLON.Vector3.Dot(this._tempVector4, n);
  54768. if (d < 0)
  54769. return false;
  54770. pc.subtractToRef(point, this._tempVector3);
  54771. BABYLON.Vector3.CrossToRef(this._tempVector2, this._tempVector3, this._tempVector4);
  54772. d = BABYLON.Vector3.Dot(this._tempVector4, n);
  54773. if (d < 0)
  54774. return false;
  54775. BABYLON.Vector3.CrossToRef(this._tempVector3, this._tempVector, this._tempVector4);
  54776. d = BABYLON.Vector3.Dot(this._tempVector4, n);
  54777. return d >= 0;
  54778. };
  54779. /** @hidden */
  54780. Collider.prototype._canDoCollision = function (sphereCenter, sphereRadius, vecMin, vecMax) {
  54781. var distance = BABYLON.Vector3.Distance(this._basePointWorld, sphereCenter);
  54782. var max = Math.max(this._radius.x, this._radius.y, this._radius.z);
  54783. if (distance > this._velocityWorldLength + max + sphereRadius) {
  54784. return false;
  54785. }
  54786. if (!intersectBoxAASphere(vecMin, vecMax, this._basePointWorld, this._velocityWorldLength + max))
  54787. return false;
  54788. return true;
  54789. };
  54790. /** @hidden */
  54791. Collider.prototype._testTriangle = function (faceIndex, trianglePlaneArray, p1, p2, p3, hasMaterial) {
  54792. var t0;
  54793. var embeddedInPlane = false;
  54794. //defensive programming, actually not needed.
  54795. if (!trianglePlaneArray) {
  54796. trianglePlaneArray = [];
  54797. }
  54798. if (!trianglePlaneArray[faceIndex]) {
  54799. trianglePlaneArray[faceIndex] = new BABYLON.Plane(0, 0, 0, 0);
  54800. trianglePlaneArray[faceIndex].copyFromPoints(p1, p2, p3);
  54801. }
  54802. var trianglePlane = trianglePlaneArray[faceIndex];
  54803. if ((!hasMaterial) && !trianglePlane.isFrontFacingTo(this._normalizedVelocity, 0))
  54804. return;
  54805. var signedDistToTrianglePlane = trianglePlane.signedDistanceTo(this._basePoint);
  54806. var normalDotVelocity = BABYLON.Vector3.Dot(trianglePlane.normal, this._velocity);
  54807. if (normalDotVelocity == 0) {
  54808. if (Math.abs(signedDistToTrianglePlane) >= 1.0)
  54809. return;
  54810. embeddedInPlane = true;
  54811. t0 = 0;
  54812. }
  54813. else {
  54814. t0 = (-1.0 - signedDistToTrianglePlane) / normalDotVelocity;
  54815. var t1 = (1.0 - signedDistToTrianglePlane) / normalDotVelocity;
  54816. if (t0 > t1) {
  54817. var temp = t1;
  54818. t1 = t0;
  54819. t0 = temp;
  54820. }
  54821. if (t0 > 1.0 || t1 < 0.0)
  54822. return;
  54823. if (t0 < 0)
  54824. t0 = 0;
  54825. if (t0 > 1.0)
  54826. t0 = 1.0;
  54827. }
  54828. this._collisionPoint.copyFromFloats(0, 0, 0);
  54829. var found = false;
  54830. var t = 1.0;
  54831. if (!embeddedInPlane) {
  54832. this._basePoint.subtractToRef(trianglePlane.normal, this._planeIntersectionPoint);
  54833. this._velocity.scaleToRef(t0, this._tempVector);
  54834. this._planeIntersectionPoint.addInPlace(this._tempVector);
  54835. if (this._checkPointInTriangle(this._planeIntersectionPoint, p1, p2, p3, trianglePlane.normal)) {
  54836. found = true;
  54837. t = t0;
  54838. this._collisionPoint.copyFrom(this._planeIntersectionPoint);
  54839. }
  54840. }
  54841. if (!found) {
  54842. var velocitySquaredLength = this._velocity.lengthSquared();
  54843. var a = velocitySquaredLength;
  54844. this._basePoint.subtractToRef(p1, this._tempVector);
  54845. var b = 2.0 * (BABYLON.Vector3.Dot(this._velocity, this._tempVector));
  54846. var c = this._tempVector.lengthSquared() - 1.0;
  54847. var lowestRoot = getLowestRoot(a, b, c, t);
  54848. if (lowestRoot.found) {
  54849. t = lowestRoot.root;
  54850. found = true;
  54851. this._collisionPoint.copyFrom(p1);
  54852. }
  54853. this._basePoint.subtractToRef(p2, this._tempVector);
  54854. b = 2.0 * (BABYLON.Vector3.Dot(this._velocity, this._tempVector));
  54855. c = this._tempVector.lengthSquared() - 1.0;
  54856. lowestRoot = getLowestRoot(a, b, c, t);
  54857. if (lowestRoot.found) {
  54858. t = lowestRoot.root;
  54859. found = true;
  54860. this._collisionPoint.copyFrom(p2);
  54861. }
  54862. this._basePoint.subtractToRef(p3, this._tempVector);
  54863. b = 2.0 * (BABYLON.Vector3.Dot(this._velocity, this._tempVector));
  54864. c = this._tempVector.lengthSquared() - 1.0;
  54865. lowestRoot = getLowestRoot(a, b, c, t);
  54866. if (lowestRoot.found) {
  54867. t = lowestRoot.root;
  54868. found = true;
  54869. this._collisionPoint.copyFrom(p3);
  54870. }
  54871. p2.subtractToRef(p1, this._edge);
  54872. p1.subtractToRef(this._basePoint, this._baseToVertex);
  54873. var edgeSquaredLength = this._edge.lengthSquared();
  54874. var edgeDotVelocity = BABYLON.Vector3.Dot(this._edge, this._velocity);
  54875. var edgeDotBaseToVertex = BABYLON.Vector3.Dot(this._edge, this._baseToVertex);
  54876. a = edgeSquaredLength * (-velocitySquaredLength) + edgeDotVelocity * edgeDotVelocity;
  54877. b = edgeSquaredLength * (2.0 * BABYLON.Vector3.Dot(this._velocity, this._baseToVertex)) - 2.0 * edgeDotVelocity * edgeDotBaseToVertex;
  54878. c = edgeSquaredLength * (1.0 - this._baseToVertex.lengthSquared()) + edgeDotBaseToVertex * edgeDotBaseToVertex;
  54879. lowestRoot = getLowestRoot(a, b, c, t);
  54880. if (lowestRoot.found) {
  54881. var f = (edgeDotVelocity * lowestRoot.root - edgeDotBaseToVertex) / edgeSquaredLength;
  54882. if (f >= 0.0 && f <= 1.0) {
  54883. t = lowestRoot.root;
  54884. found = true;
  54885. this._edge.scaleInPlace(f);
  54886. p1.addToRef(this._edge, this._collisionPoint);
  54887. }
  54888. }
  54889. p3.subtractToRef(p2, this._edge);
  54890. p2.subtractToRef(this._basePoint, this._baseToVertex);
  54891. edgeSquaredLength = this._edge.lengthSquared();
  54892. edgeDotVelocity = BABYLON.Vector3.Dot(this._edge, this._velocity);
  54893. edgeDotBaseToVertex = BABYLON.Vector3.Dot(this._edge, this._baseToVertex);
  54894. a = edgeSquaredLength * (-velocitySquaredLength) + edgeDotVelocity * edgeDotVelocity;
  54895. b = edgeSquaredLength * (2.0 * BABYLON.Vector3.Dot(this._velocity, this._baseToVertex)) - 2.0 * edgeDotVelocity * edgeDotBaseToVertex;
  54896. c = edgeSquaredLength * (1.0 - this._baseToVertex.lengthSquared()) + edgeDotBaseToVertex * edgeDotBaseToVertex;
  54897. lowestRoot = getLowestRoot(a, b, c, t);
  54898. if (lowestRoot.found) {
  54899. f = (edgeDotVelocity * lowestRoot.root - edgeDotBaseToVertex) / edgeSquaredLength;
  54900. if (f >= 0.0 && f <= 1.0) {
  54901. t = lowestRoot.root;
  54902. found = true;
  54903. this._edge.scaleInPlace(f);
  54904. p2.addToRef(this._edge, this._collisionPoint);
  54905. }
  54906. }
  54907. p1.subtractToRef(p3, this._edge);
  54908. p3.subtractToRef(this._basePoint, this._baseToVertex);
  54909. edgeSquaredLength = this._edge.lengthSquared();
  54910. edgeDotVelocity = BABYLON.Vector3.Dot(this._edge, this._velocity);
  54911. edgeDotBaseToVertex = BABYLON.Vector3.Dot(this._edge, this._baseToVertex);
  54912. a = edgeSquaredLength * (-velocitySquaredLength) + edgeDotVelocity * edgeDotVelocity;
  54913. b = edgeSquaredLength * (2.0 * BABYLON.Vector3.Dot(this._velocity, this._baseToVertex)) - 2.0 * edgeDotVelocity * edgeDotBaseToVertex;
  54914. c = edgeSquaredLength * (1.0 - this._baseToVertex.lengthSquared()) + edgeDotBaseToVertex * edgeDotBaseToVertex;
  54915. lowestRoot = getLowestRoot(a, b, c, t);
  54916. if (lowestRoot.found) {
  54917. f = (edgeDotVelocity * lowestRoot.root - edgeDotBaseToVertex) / edgeSquaredLength;
  54918. if (f >= 0.0 && f <= 1.0) {
  54919. t = lowestRoot.root;
  54920. found = true;
  54921. this._edge.scaleInPlace(f);
  54922. p3.addToRef(this._edge, this._collisionPoint);
  54923. }
  54924. }
  54925. }
  54926. if (found) {
  54927. var distToCollision = t * this._velocity.length();
  54928. if (!this.collisionFound || distToCollision < this._nearestDistance) {
  54929. if (!this.intersectionPoint) {
  54930. this.intersectionPoint = this._collisionPoint.clone();
  54931. }
  54932. else {
  54933. this.intersectionPoint.copyFrom(this._collisionPoint);
  54934. }
  54935. this._nearestDistance = distToCollision;
  54936. this.collisionFound = true;
  54937. }
  54938. }
  54939. };
  54940. /** @hidden */
  54941. Collider.prototype._collide = function (trianglePlaneArray, pts, indices, indexStart, indexEnd, decal, hasMaterial) {
  54942. for (var i = indexStart; i < indexEnd; i += 3) {
  54943. var p1 = pts[indices[i] - decal];
  54944. var p2 = pts[indices[i + 1] - decal];
  54945. var p3 = pts[indices[i + 2] - decal];
  54946. this._testTriangle(i, trianglePlaneArray, p3, p2, p1, hasMaterial);
  54947. }
  54948. };
  54949. /** @hidden */
  54950. Collider.prototype._getResponse = function (pos, vel) {
  54951. pos.addToRef(vel, this._destinationPoint);
  54952. vel.scaleInPlace((this._nearestDistance / vel.length()));
  54953. this._basePoint.addToRef(vel, pos);
  54954. pos.subtractToRef(this.intersectionPoint, this._slidePlaneNormal);
  54955. this._slidePlaneNormal.normalize();
  54956. this._slidePlaneNormal.scaleToRef(this._epsilon, this._displacementVector);
  54957. pos.addInPlace(this._displacementVector);
  54958. this.intersectionPoint.addInPlace(this._displacementVector);
  54959. this._slidePlaneNormal.scaleInPlace(BABYLON.Plane.SignedDistanceToPlaneFromPositionAndNormal(this.intersectionPoint, this._slidePlaneNormal, this._destinationPoint));
  54960. this._destinationPoint.subtractInPlace(this._slidePlaneNormal);
  54961. this._destinationPoint.subtractToRef(this.intersectionPoint, vel);
  54962. };
  54963. return Collider;
  54964. }());
  54965. BABYLON.Collider = Collider;
  54966. })(BABYLON || (BABYLON = {}));
  54967. //# sourceMappingURL=babylon.collider.js.map
  54968. var BABYLON;
  54969. (function (BABYLON) {
  54970. //WebWorker code will be inserted to this variable.
  54971. BABYLON.CollisionWorker = "";
  54972. /** Defines supported task for worker process */
  54973. var WorkerTaskType;
  54974. (function (WorkerTaskType) {
  54975. /** Initialization */
  54976. WorkerTaskType[WorkerTaskType["INIT"] = 0] = "INIT";
  54977. /** Update of geometry */
  54978. WorkerTaskType[WorkerTaskType["UPDATE"] = 1] = "UPDATE";
  54979. /** Evaluate collision */
  54980. WorkerTaskType[WorkerTaskType["COLLIDE"] = 2] = "COLLIDE";
  54981. })(WorkerTaskType = BABYLON.WorkerTaskType || (BABYLON.WorkerTaskType = {}));
  54982. /** Defines kind of replies returned by worker */
  54983. var WorkerReplyType;
  54984. (function (WorkerReplyType) {
  54985. /** Success */
  54986. WorkerReplyType[WorkerReplyType["SUCCESS"] = 0] = "SUCCESS";
  54987. /** Unkown error */
  54988. WorkerReplyType[WorkerReplyType["UNKNOWN_ERROR"] = 1] = "UNKNOWN_ERROR";
  54989. })(WorkerReplyType = BABYLON.WorkerReplyType || (BABYLON.WorkerReplyType = {}));
  54990. var CollisionCoordinatorWorker = /** @class */ (function () {
  54991. function CollisionCoordinatorWorker() {
  54992. var _this = this;
  54993. this._scaledPosition = BABYLON.Vector3.Zero();
  54994. this._scaledVelocity = BABYLON.Vector3.Zero();
  54995. this.onMeshUpdated = function (transformNode) {
  54996. _this._addUpdateMeshesList[transformNode.uniqueId] = CollisionCoordinatorWorker.SerializeMesh(transformNode);
  54997. };
  54998. this.onGeometryUpdated = function (geometry) {
  54999. _this._addUpdateGeometriesList[geometry.id] = CollisionCoordinatorWorker.SerializeGeometry(geometry);
  55000. };
  55001. this._afterRender = function () {
  55002. if (!_this._init)
  55003. return;
  55004. if (_this._toRemoveGeometryArray.length == 0 && _this._toRemoveMeshesArray.length == 0 && Object.keys(_this._addUpdateGeometriesList).length == 0 && Object.keys(_this._addUpdateMeshesList).length == 0) {
  55005. return;
  55006. }
  55007. //5 concurrent updates were sent to the web worker and were not yet processed. Abort next update.
  55008. //TODO make sure update runs as fast as possible to be able to update 60 FPS.
  55009. if (_this._runningUpdated > 4) {
  55010. return;
  55011. }
  55012. ++_this._runningUpdated;
  55013. var payload = {
  55014. updatedMeshes: _this._addUpdateMeshesList,
  55015. updatedGeometries: _this._addUpdateGeometriesList,
  55016. removedGeometries: _this._toRemoveGeometryArray,
  55017. removedMeshes: _this._toRemoveMeshesArray
  55018. };
  55019. var message = {
  55020. payload: payload,
  55021. taskType: WorkerTaskType.UPDATE
  55022. };
  55023. var serializable = [];
  55024. for (var id in payload.updatedGeometries) {
  55025. if (payload.updatedGeometries.hasOwnProperty(id)) {
  55026. //prepare transferables
  55027. serializable.push(message.payload.updatedGeometries[id].indices.buffer);
  55028. serializable.push(message.payload.updatedGeometries[id].normals.buffer);
  55029. serializable.push(message.payload.updatedGeometries[id].positions.buffer);
  55030. }
  55031. }
  55032. _this._worker.postMessage(message, serializable);
  55033. _this._addUpdateMeshesList = {};
  55034. _this._addUpdateGeometriesList = {};
  55035. _this._toRemoveGeometryArray = [];
  55036. _this._toRemoveMeshesArray = [];
  55037. };
  55038. this._onMessageFromWorker = function (e) {
  55039. var returnData = e.data;
  55040. if (returnData.error != WorkerReplyType.SUCCESS) {
  55041. //TODO what errors can be returned from the worker?
  55042. BABYLON.Tools.Warn("error returned from worker!");
  55043. return;
  55044. }
  55045. switch (returnData.taskType) {
  55046. case WorkerTaskType.INIT:
  55047. _this._init = true;
  55048. //Update the worked with ALL of the scene's current state
  55049. _this._scene.meshes.forEach(function (mesh) {
  55050. _this.onMeshAdded(mesh);
  55051. });
  55052. _this._scene.getGeometries().forEach(function (geometry) {
  55053. _this.onGeometryAdded(geometry);
  55054. });
  55055. break;
  55056. case WorkerTaskType.UPDATE:
  55057. _this._runningUpdated--;
  55058. break;
  55059. case WorkerTaskType.COLLIDE:
  55060. var returnPayload = returnData.payload;
  55061. if (!_this._collisionsCallbackArray[returnPayload.collisionId])
  55062. return;
  55063. var callback = _this._collisionsCallbackArray[returnPayload.collisionId];
  55064. if (callback) {
  55065. var mesh = _this._scene.getMeshByUniqueID(returnPayload.collidedMeshUniqueId);
  55066. if (mesh) {
  55067. callback(returnPayload.collisionId, BABYLON.Vector3.FromArray(returnPayload.newPosition), mesh);
  55068. }
  55069. }
  55070. //cleanup
  55071. _this._collisionsCallbackArray[returnPayload.collisionId] = null;
  55072. break;
  55073. }
  55074. };
  55075. this._collisionsCallbackArray = [];
  55076. this._init = false;
  55077. this._runningUpdated = 0;
  55078. this._addUpdateMeshesList = {};
  55079. this._addUpdateGeometriesList = {};
  55080. this._toRemoveGeometryArray = [];
  55081. this._toRemoveMeshesArray = [];
  55082. }
  55083. CollisionCoordinatorWorker.prototype.getNewPosition = function (position, displacement, collider, maximumRetry, excludedMesh, onNewPosition, collisionIndex) {
  55084. if (!this._init)
  55085. return;
  55086. if (this._collisionsCallbackArray[collisionIndex] || this._collisionsCallbackArray[collisionIndex + 100000])
  55087. return;
  55088. position.divideToRef(collider._radius, this._scaledPosition);
  55089. displacement.divideToRef(collider._radius, this._scaledVelocity);
  55090. this._collisionsCallbackArray[collisionIndex] = onNewPosition;
  55091. var payload = {
  55092. collider: {
  55093. position: this._scaledPosition.asArray(),
  55094. velocity: this._scaledVelocity.asArray(),
  55095. radius: collider._radius.asArray()
  55096. },
  55097. collisionId: collisionIndex,
  55098. excludedMeshUniqueId: excludedMesh ? excludedMesh.uniqueId : null,
  55099. maximumRetry: maximumRetry
  55100. };
  55101. var message = {
  55102. payload: payload,
  55103. taskType: WorkerTaskType.COLLIDE
  55104. };
  55105. this._worker.postMessage(message);
  55106. };
  55107. CollisionCoordinatorWorker.prototype.init = function (scene) {
  55108. this._scene = scene;
  55109. this._scene.registerAfterRender(this._afterRender);
  55110. var workerUrl = BABYLON.WorkerIncluded ? BABYLON.Engine.CodeRepository + "Collisions/babylon.collisionWorker.js" : URL.createObjectURL(new Blob([BABYLON.CollisionWorker], { type: 'application/javascript' }));
  55111. this._worker = new Worker(workerUrl);
  55112. this._worker.onmessage = this._onMessageFromWorker;
  55113. var message = {
  55114. payload: {},
  55115. taskType: WorkerTaskType.INIT
  55116. };
  55117. this._worker.postMessage(message);
  55118. };
  55119. CollisionCoordinatorWorker.prototype.destroy = function () {
  55120. this._scene.unregisterAfterRender(this._afterRender);
  55121. this._worker.terminate();
  55122. };
  55123. CollisionCoordinatorWorker.prototype.onMeshAdded = function (mesh) {
  55124. mesh.registerAfterWorldMatrixUpdate(this.onMeshUpdated);
  55125. this.onMeshUpdated(mesh);
  55126. };
  55127. CollisionCoordinatorWorker.prototype.onMeshRemoved = function (mesh) {
  55128. this._toRemoveMeshesArray.push(mesh.uniqueId);
  55129. };
  55130. CollisionCoordinatorWorker.prototype.onGeometryAdded = function (geometry) {
  55131. //TODO this will break if the user uses his own function. This should be an array of callbacks!
  55132. geometry.onGeometryUpdated = this.onGeometryUpdated;
  55133. this.onGeometryUpdated(geometry);
  55134. };
  55135. CollisionCoordinatorWorker.prototype.onGeometryDeleted = function (geometry) {
  55136. this._toRemoveGeometryArray.push(geometry.id);
  55137. };
  55138. CollisionCoordinatorWorker.SerializeMesh = function (mesh) {
  55139. var submeshes = [];
  55140. if (mesh.subMeshes) {
  55141. submeshes = mesh.subMeshes.map(function (sm, idx) {
  55142. var boundingInfo = sm.getBoundingInfo();
  55143. return {
  55144. position: idx,
  55145. verticesStart: sm.verticesStart,
  55146. verticesCount: sm.verticesCount,
  55147. indexStart: sm.indexStart,
  55148. indexCount: sm.indexCount,
  55149. hasMaterial: !!sm.getMaterial(),
  55150. sphereCenter: boundingInfo.boundingSphere.centerWorld.asArray(),
  55151. sphereRadius: boundingInfo.boundingSphere.radiusWorld,
  55152. boxMinimum: boundingInfo.boundingBox.minimumWorld.asArray(),
  55153. boxMaximum: boundingInfo.boundingBox.maximumWorld.asArray()
  55154. };
  55155. });
  55156. }
  55157. var geometryId = null;
  55158. if (mesh instanceof BABYLON.Mesh) {
  55159. var geometry = mesh.geometry;
  55160. geometryId = geometry ? geometry.id : null;
  55161. }
  55162. else if (mesh instanceof BABYLON.InstancedMesh) {
  55163. var geometry = mesh.sourceMesh && mesh.sourceMesh.geometry;
  55164. geometryId = geometry ? geometry.id : null;
  55165. }
  55166. var boundingInfo = mesh.getBoundingInfo();
  55167. return {
  55168. uniqueId: mesh.uniqueId,
  55169. id: mesh.id,
  55170. name: mesh.name,
  55171. geometryId: geometryId,
  55172. sphereCenter: boundingInfo.boundingSphere.centerWorld.asArray(),
  55173. sphereRadius: boundingInfo.boundingSphere.radiusWorld,
  55174. boxMinimum: boundingInfo.boundingBox.minimumWorld.asArray(),
  55175. boxMaximum: boundingInfo.boundingBox.maximumWorld.asArray(),
  55176. worldMatrixFromCache: mesh.worldMatrixFromCache.asArray(),
  55177. subMeshes: submeshes,
  55178. checkCollisions: mesh.checkCollisions
  55179. };
  55180. };
  55181. CollisionCoordinatorWorker.SerializeGeometry = function (geometry) {
  55182. return {
  55183. id: geometry.id,
  55184. positions: new Float32Array(geometry.getVerticesData(BABYLON.VertexBuffer.PositionKind) || []),
  55185. normals: new Float32Array(geometry.getVerticesData(BABYLON.VertexBuffer.NormalKind) || []),
  55186. indices: new Uint32Array(geometry.getIndices() || []),
  55187. };
  55188. };
  55189. return CollisionCoordinatorWorker;
  55190. }());
  55191. BABYLON.CollisionCoordinatorWorker = CollisionCoordinatorWorker;
  55192. var CollisionCoordinatorLegacy = /** @class */ (function () {
  55193. function CollisionCoordinatorLegacy() {
  55194. this._scaledPosition = BABYLON.Vector3.Zero();
  55195. this._scaledVelocity = BABYLON.Vector3.Zero();
  55196. this._finalPosition = BABYLON.Vector3.Zero();
  55197. }
  55198. CollisionCoordinatorLegacy.prototype.getNewPosition = function (position, displacement, collider, maximumRetry, excludedMesh, onNewPosition, collisionIndex) {
  55199. position.divideToRef(collider._radius, this._scaledPosition);
  55200. displacement.divideToRef(collider._radius, this._scaledVelocity);
  55201. collider.collidedMesh = null;
  55202. collider._retry = 0;
  55203. collider._initialVelocity = this._scaledVelocity;
  55204. collider._initialPosition = this._scaledPosition;
  55205. this._collideWithWorld(this._scaledPosition, this._scaledVelocity, collider, maximumRetry, this._finalPosition, excludedMesh);
  55206. this._finalPosition.multiplyInPlace(collider._radius);
  55207. //run the callback
  55208. onNewPosition(collisionIndex, this._finalPosition, collider.collidedMesh);
  55209. };
  55210. CollisionCoordinatorLegacy.prototype.init = function (scene) {
  55211. this._scene = scene;
  55212. };
  55213. CollisionCoordinatorLegacy.prototype.destroy = function () {
  55214. //Legacy need no destruction method.
  55215. };
  55216. //No update in legacy mode
  55217. CollisionCoordinatorLegacy.prototype.onMeshAdded = function (mesh) { };
  55218. CollisionCoordinatorLegacy.prototype.onMeshUpdated = function (mesh) { };
  55219. CollisionCoordinatorLegacy.prototype.onMeshRemoved = function (mesh) { };
  55220. CollisionCoordinatorLegacy.prototype.onGeometryAdded = function (geometry) { };
  55221. CollisionCoordinatorLegacy.prototype.onGeometryUpdated = function (geometry) { };
  55222. CollisionCoordinatorLegacy.prototype.onGeometryDeleted = function (geometry) { };
  55223. CollisionCoordinatorLegacy.prototype._collideWithWorld = function (position, velocity, collider, maximumRetry, finalPosition, excludedMesh) {
  55224. if (excludedMesh === void 0) { excludedMesh = null; }
  55225. var closeDistance = BABYLON.Engine.CollisionsEpsilon * 10.0;
  55226. if (collider._retry >= maximumRetry) {
  55227. finalPosition.copyFrom(position);
  55228. return;
  55229. }
  55230. // Check if this is a mesh else camera or -1
  55231. var collisionMask = (excludedMesh ? excludedMesh.collisionMask : collider.collisionMask);
  55232. collider._initialize(position, velocity, closeDistance);
  55233. // Check all meshes
  55234. for (var index = 0; index < this._scene.meshes.length; index++) {
  55235. var mesh = this._scene.meshes[index];
  55236. if (mesh.isEnabled() && mesh.checkCollisions && mesh.subMeshes && mesh !== excludedMesh && ((collisionMask & mesh.collisionGroup) !== 0)) {
  55237. mesh._checkCollision(collider);
  55238. }
  55239. }
  55240. if (!collider.collisionFound) {
  55241. position.addToRef(velocity, finalPosition);
  55242. return;
  55243. }
  55244. if (velocity.x !== 0 || velocity.y !== 0 || velocity.z !== 0) {
  55245. collider._getResponse(position, velocity);
  55246. }
  55247. if (velocity.length() <= closeDistance) {
  55248. finalPosition.copyFrom(position);
  55249. return;
  55250. }
  55251. collider._retry++;
  55252. this._collideWithWorld(position, velocity, collider, maximumRetry, finalPosition, excludedMesh);
  55253. };
  55254. return CollisionCoordinatorLegacy;
  55255. }());
  55256. BABYLON.CollisionCoordinatorLegacy = CollisionCoordinatorLegacy;
  55257. })(BABYLON || (BABYLON = {}));
  55258. //# sourceMappingURL=babylon.collisionCoordinator.js.map
  55259. var BABYLON;
  55260. (function (BABYLON) {
  55261. /**
  55262. * A particle represents one of the element emitted by a particle system.
  55263. * This is mainly define by its coordinates, direction, velocity and age.
  55264. */
  55265. var Particle = /** @class */ (function () {
  55266. /**
  55267. * Creates a new instance Particle
  55268. * @param particleSystem the particle system the particle belongs to
  55269. */
  55270. function Particle(
  55271. /**
  55272. * The particle system the particle belongs to.
  55273. */
  55274. particleSystem) {
  55275. this.particleSystem = particleSystem;
  55276. /**
  55277. * The world position of the particle in the scene.
  55278. */
  55279. this.position = BABYLON.Vector3.Zero();
  55280. /**
  55281. * The world direction of the particle in the scene.
  55282. */
  55283. this.direction = BABYLON.Vector3.Zero();
  55284. /**
  55285. * The color of the particle.
  55286. */
  55287. this.color = new BABYLON.Color4(0, 0, 0, 0);
  55288. /**
  55289. * The color change of the particle per step.
  55290. */
  55291. this.colorStep = new BABYLON.Color4(0, 0, 0, 0);
  55292. /**
  55293. * Defines how long will the life of the particle be.
  55294. */
  55295. this.lifeTime = 1.0;
  55296. /**
  55297. * The current age of the particle.
  55298. */
  55299. this.age = 0;
  55300. /**
  55301. * The current size of the particle.
  55302. */
  55303. this.size = 0;
  55304. /**
  55305. * The current scale of the particle.
  55306. */
  55307. this.scale = new BABYLON.Vector2(1, 1);
  55308. /**
  55309. * The current angle of the particle.
  55310. */
  55311. this.angle = 0;
  55312. /**
  55313. * Defines how fast is the angle changing.
  55314. */
  55315. this.angularSpeed = 0;
  55316. /**
  55317. * Defines the cell index used by the particle to be rendered from a sprite.
  55318. */
  55319. this.cellIndex = 0;
  55320. /** @hidden */
  55321. this._currentColor1 = new BABYLON.Color4(0, 0, 0, 0);
  55322. /** @hidden */
  55323. this._currentColor2 = new BABYLON.Color4(0, 0, 0, 0);
  55324. /** @hidden */
  55325. this._currentSize1 = 0;
  55326. /** @hidden */
  55327. this._currentSize2 = 0;
  55328. /** @hidden */
  55329. this._currentAngularSpeed1 = 0;
  55330. /** @hidden */
  55331. this._currentAngularSpeed2 = 0;
  55332. /** @hidden */
  55333. this._currentVelocity1 = 0;
  55334. /** @hidden */
  55335. this._currentVelocity2 = 0;
  55336. /** @hidden */
  55337. this._currentLimitVelocity1 = 0;
  55338. /** @hidden */
  55339. this._currentLimitVelocity2 = 0;
  55340. /** @hidden */
  55341. this._currentDrag1 = 0;
  55342. /** @hidden */
  55343. this._currentDrag2 = 0;
  55344. if (!this.particleSystem.isAnimationSheetEnabled) {
  55345. return;
  55346. }
  55347. this.updateCellInfoFromSystem();
  55348. }
  55349. Particle.prototype.updateCellInfoFromSystem = function () {
  55350. this.cellIndex = this.particleSystem.startSpriteCellID;
  55351. };
  55352. /**
  55353. * Defines how the sprite cell index is updated for the particle
  55354. */
  55355. Particle.prototype.updateCellIndex = function () {
  55356. var offsetAge = this.age;
  55357. if (this.particleSystem.spriteRandomStartCell) {
  55358. if (this._randomCellOffset === undefined) {
  55359. this._randomCellOffset = Math.random() * this.lifeTime;
  55360. }
  55361. offsetAge += this._randomCellOffset;
  55362. }
  55363. var dist = (this._initialEndSpriteCellID - this._initialStartSpriteCellID);
  55364. var ratio = BABYLON.Scalar.Clamp(((offsetAge * this.particleSystem.spriteCellChangeSpeed) % this.lifeTime) / this.lifeTime);
  55365. this.cellIndex = this._initialStartSpriteCellID + (ratio * dist) | 0;
  55366. };
  55367. /** @hidden */
  55368. Particle.prototype._reset = function () {
  55369. this.age = 0;
  55370. this._currentColorGradient = null;
  55371. this._currentSizeGradient = null;
  55372. this._currentAngularSpeedGradient = null;
  55373. this._currentVelocityGradient = null;
  55374. this._currentLimitVelocityGradient = null;
  55375. this._currentDragGradient = null;
  55376. this.cellIndex = this.particleSystem.startSpriteCellID;
  55377. this._randomCellOffset = undefined;
  55378. };
  55379. /**
  55380. * Copy the properties of particle to another one.
  55381. * @param other the particle to copy the information to.
  55382. */
  55383. Particle.prototype.copyTo = function (other) {
  55384. other.position.copyFrom(this.position);
  55385. if (this._initialDirection) {
  55386. if (other._initialDirection) {
  55387. other._initialDirection.copyFrom(this._initialDirection);
  55388. }
  55389. else {
  55390. other._initialDirection = this._initialDirection.clone();
  55391. }
  55392. }
  55393. else {
  55394. other._initialDirection = null;
  55395. }
  55396. other.direction.copyFrom(this.direction);
  55397. other.color.copyFrom(this.color);
  55398. other.colorStep.copyFrom(this.colorStep);
  55399. other.lifeTime = this.lifeTime;
  55400. other.age = this.age;
  55401. other._randomCellOffset = undefined;
  55402. other.size = this.size;
  55403. other.scale.copyFrom(this.scale);
  55404. other.angle = this.angle;
  55405. other.angularSpeed = this.angularSpeed;
  55406. other.particleSystem = this.particleSystem;
  55407. other.cellIndex = this.cellIndex;
  55408. if (this._currentColorGradient) {
  55409. other._currentColorGradient = this._currentColorGradient;
  55410. other._currentColor1.copyFrom(this._currentColor1);
  55411. other._currentColor2.copyFrom(this._currentColor2);
  55412. }
  55413. if (this._currentSizeGradient) {
  55414. other._currentSizeGradient = this._currentSizeGradient;
  55415. other._currentSize1 = this._currentSize1;
  55416. other._currentSize2 = this._currentSize2;
  55417. }
  55418. if (this._currentAngularSpeedGradient) {
  55419. other._currentAngularSpeedGradient = this._currentAngularSpeedGradient;
  55420. other._currentAngularSpeed1 = this._currentAngularSpeed1;
  55421. other._currentAngularSpeed2 = this._currentAngularSpeed2;
  55422. }
  55423. if (this._currentVelocityGradient) {
  55424. other._currentVelocityGradient = this._currentVelocityGradient;
  55425. other._currentVelocity1 = this._currentVelocity1;
  55426. other._currentVelocity2 = this._currentVelocity2;
  55427. }
  55428. if (this._currentLimitVelocityGradient) {
  55429. other._currentLimitVelocityGradient = this._currentLimitVelocityGradient;
  55430. other._currentLimitVelocity1 = this._currentLimitVelocity1;
  55431. other._currentLimitVelocity2 = this._currentLimitVelocity2;
  55432. }
  55433. if (this._currentDragGradient) {
  55434. other._currentDragGradient = this._currentDragGradient;
  55435. other._currentDrag1 = this._currentDrag1;
  55436. other._currentDrag2 = this._currentDrag2;
  55437. }
  55438. if (this.particleSystem.isAnimationSheetEnabled) {
  55439. other._initialStartSpriteCellID = this._initialStartSpriteCellID;
  55440. other._initialEndSpriteCellID = this._initialEndSpriteCellID;
  55441. }
  55442. };
  55443. return Particle;
  55444. }());
  55445. BABYLON.Particle = Particle;
  55446. })(BABYLON || (BABYLON = {}));
  55447. //# sourceMappingURL=babylon.particle.js.map
  55448. var BABYLON;
  55449. (function (BABYLON) {
  55450. /**
  55451. * This represents the base class for particle system in Babylon.
  55452. * Particles are often small sprites used to simulate hard-to-reproduce phenomena like fire, smoke, water, or abstract visual effects like magic glitter and faery dust.
  55453. * Particles can take different shapes while emitted like box, sphere, cone or you can write your custom function.
  55454. * @example https://doc.babylonjs.com/babylon101/particles
  55455. */
  55456. var BaseParticleSystem = /** @class */ (function () {
  55457. /**
  55458. * Instantiates a particle system.
  55459. * Particles are often small sprites used to simulate hard-to-reproduce phenomena like fire, smoke, water, or abstract visual effects like magic glitter and faery dust.
  55460. * @param name The name of the particle system
  55461. */
  55462. function BaseParticleSystem(name) {
  55463. /**
  55464. * List of animations used by the particle system.
  55465. */
  55466. this.animations = [];
  55467. /**
  55468. * The rendering group used by the Particle system to chose when to render.
  55469. */
  55470. this.renderingGroupId = 0;
  55471. /**
  55472. * The emitter represents the Mesh or position we are attaching the particle system to.
  55473. */
  55474. this.emitter = null;
  55475. /**
  55476. * The maximum number of particles to emit per frame
  55477. */
  55478. this.emitRate = 10;
  55479. /**
  55480. * If you want to launch only a few particles at once, that can be done, as well.
  55481. */
  55482. this.manualEmitCount = -1;
  55483. /**
  55484. * The overall motion speed (0.01 is default update speed, faster updates = faster animation)
  55485. */
  55486. this.updateSpeed = 0.01;
  55487. /**
  55488. * The amount of time the particle system is running (depends of the overall update speed).
  55489. */
  55490. this.targetStopDuration = 0;
  55491. /**
  55492. * Specifies whether the particle system will be disposed once it reaches the end of the animation.
  55493. */
  55494. this.disposeOnStop = false;
  55495. /**
  55496. * Minimum power of emitting particles.
  55497. */
  55498. this.minEmitPower = 1;
  55499. /**
  55500. * Maximum power of emitting particles.
  55501. */
  55502. this.maxEmitPower = 1;
  55503. /**
  55504. * Minimum life time of emitting particles.
  55505. */
  55506. this.minLifeTime = 1;
  55507. /**
  55508. * Maximum life time of emitting particles.
  55509. */
  55510. this.maxLifeTime = 1;
  55511. /**
  55512. * Minimum Size of emitting particles.
  55513. */
  55514. this.minSize = 1;
  55515. /**
  55516. * Maximum Size of emitting particles.
  55517. */
  55518. this.maxSize = 1;
  55519. /**
  55520. * Minimum scale of emitting particles on X axis.
  55521. */
  55522. this.minScaleX = 1;
  55523. /**
  55524. * Maximum scale of emitting particles on X axis.
  55525. */
  55526. this.maxScaleX = 1;
  55527. /**
  55528. * Minimum scale of emitting particles on Y axis.
  55529. */
  55530. this.minScaleY = 1;
  55531. /**
  55532. * Maximum scale of emitting particles on Y axis.
  55533. */
  55534. this.maxScaleY = 1;
  55535. /**
  55536. * Gets or sets the minimal initial rotation in radians.
  55537. */
  55538. this.minInitialRotation = 0;
  55539. /**
  55540. * Gets or sets the maximal initial rotation in radians.
  55541. */
  55542. this.maxInitialRotation = 0;
  55543. /**
  55544. * Minimum angular speed of emitting particles (Z-axis rotation for each particle).
  55545. */
  55546. this.minAngularSpeed = 0;
  55547. /**
  55548. * Maximum angular speed of emitting particles (Z-axis rotation for each particle).
  55549. */
  55550. this.maxAngularSpeed = 0;
  55551. /**
  55552. * The layer mask we are rendering the particles through.
  55553. */
  55554. this.layerMask = 0x0FFFFFFF;
  55555. /**
  55556. * This can help using your own shader to render the particle system.
  55557. * The according effect will be created
  55558. */
  55559. this.customShader = null;
  55560. /**
  55561. * By default particle system starts as soon as they are created. This prevents the
  55562. * automatic start to happen and let you decide when to start emitting particles.
  55563. */
  55564. this.preventAutoStart = false;
  55565. /** Gets or sets the strength to apply to the noise value (default is (10, 10, 10)) */
  55566. this.noiseStrength = new BABYLON.Vector3(10, 10, 10);
  55567. /**
  55568. * Callback triggered when the particle animation is ending.
  55569. */
  55570. this.onAnimationEnd = null;
  55571. /**
  55572. * Blend mode use to render the particle, it can be either ParticleSystem.BLENDMODE_ONEONE or ParticleSystem.BLENDMODE_STANDARD.
  55573. */
  55574. this.blendMode = BABYLON.ParticleSystem.BLENDMODE_ONEONE;
  55575. /**
  55576. * Forces the particle to write their depth information to the depth buffer. This can help preventing other draw calls
  55577. * to override the particles.
  55578. */
  55579. this.forceDepthWrite = false;
  55580. /** Gets or sets a value indicating how many cycles (or frames) must be executed before first rendering (this value has to be set before starting the system). Default is 0 */
  55581. this.preWarmCycles = 0;
  55582. /** Gets or sets a value indicating the time step multiplier to use in pre-warm mode (default is 1) */
  55583. this.preWarmStepOffset = 1;
  55584. /**
  55585. * If using a spritesheet (isAnimationSheetEnabled) defines the speed of the sprite loop (default is 1 meaning the animation will play once during the entire particle lifetime)
  55586. */
  55587. this.spriteCellChangeSpeed = 1;
  55588. /**
  55589. * If using a spritesheet (isAnimationSheetEnabled) defines the first sprite cell to display
  55590. */
  55591. this.startSpriteCellID = 0;
  55592. /**
  55593. * If using a spritesheet (isAnimationSheetEnabled) defines the last sprite cell to display
  55594. */
  55595. this.endSpriteCellID = 0;
  55596. /**
  55597. * If using a spritesheet (isAnimationSheetEnabled), defines the sprite cell width to use
  55598. */
  55599. this.spriteCellWidth = 0;
  55600. /**
  55601. * If using a spritesheet (isAnimationSheetEnabled), defines the sprite cell height to use
  55602. */
  55603. this.spriteCellHeight = 0;
  55604. /**
  55605. * This allows the system to random pick the start cell ID between startSpriteCellID and endSpriteCellID
  55606. */
  55607. this.spriteRandomStartCell = false;
  55608. /** Gets or sets a Vector2 used to move the pivot (by default (0,0)) */
  55609. this.translationPivot = new BABYLON.Vector2(0, 0);
  55610. /**
  55611. * You can use gravity if you want to give an orientation to your particles.
  55612. */
  55613. this.gravity = BABYLON.Vector3.Zero();
  55614. this._colorGradients = null;
  55615. this._sizeGradients = null;
  55616. this._lifeTimeGradients = null;
  55617. this._angularSpeedGradients = null;
  55618. this._velocityGradients = null;
  55619. this._limitVelocityGradients = null;
  55620. this._dragGradients = null;
  55621. this._emitRateGradients = null;
  55622. this._startSizeGradients = null;
  55623. /** Gets or sets a value indicating the damping to apply if the limit velocity factor is reached */
  55624. this.limitVelocityDamping = 0.4;
  55625. /**
  55626. * Random color of each particle after it has been emitted, between color1 and color2 vectors
  55627. */
  55628. this.color1 = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  55629. /**
  55630. * Random color of each particle after it has been emitted, between color1 and color2 vectors
  55631. */
  55632. this.color2 = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  55633. /**
  55634. * Color the particle will have at the end of its lifetime
  55635. */
  55636. this.colorDead = new BABYLON.Color4(0, 0, 0, 1.0);
  55637. /**
  55638. * An optional mask to filter some colors out of the texture, or filter a part of the alpha channel
  55639. */
  55640. this.textureMask = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  55641. /**
  55642. * Gets or sets the billboard mode to use when isBillboardBased = true.
  55643. * Only BABYLON.AbstractMesh.BILLBOARDMODE_ALL and AbstractMesh.BILLBOARDMODE_Y are supported so far
  55644. */
  55645. this.billboardMode = BABYLON.AbstractMesh.BILLBOARDMODE_ALL;
  55646. this._isBillboardBased = true;
  55647. /**
  55648. * Local cache of defines for image processing.
  55649. */
  55650. this._imageProcessingConfigurationDefines = new BABYLON.ImageProcessingConfigurationDefines();
  55651. this.id = name;
  55652. this.name = name;
  55653. }
  55654. Object.defineProperty(BaseParticleSystem.prototype, "isAnimationSheetEnabled", {
  55655. /**
  55656. * Gets or sets whether an animation sprite sheet is enabled or not on the particle system
  55657. */
  55658. get: function () {
  55659. return this._isAnimationSheetEnabled;
  55660. },
  55661. set: function (value) {
  55662. if (this._isAnimationSheetEnabled == value) {
  55663. return;
  55664. }
  55665. this._isAnimationSheetEnabled = value;
  55666. this._reset();
  55667. },
  55668. enumerable: true,
  55669. configurable: true
  55670. });
  55671. /**
  55672. * Get hosting scene
  55673. * @returns the scene
  55674. */
  55675. BaseParticleSystem.prototype.getScene = function () {
  55676. return this._scene;
  55677. };
  55678. /**
  55679. * Gets the current list of drag gradients.
  55680. * You must use addDragGradient and removeDragGradient to udpate this list
  55681. * @returns the list of drag gradients
  55682. */
  55683. BaseParticleSystem.prototype.getDragGradients = function () {
  55684. return this._dragGradients;
  55685. };
  55686. /**
  55687. * Gets the current list of limit velocity gradients.
  55688. * You must use addLimitVelocityGradient and removeLimitVelocityGradient to udpate this list
  55689. * @returns the list of limit velocity gradients
  55690. */
  55691. BaseParticleSystem.prototype.getLimitVelocityGradients = function () {
  55692. return this._limitVelocityGradients;
  55693. };
  55694. /**
  55695. * Gets the current list of color gradients.
  55696. * You must use addColorGradient and removeColorGradient to udpate this list
  55697. * @returns the list of color gradients
  55698. */
  55699. BaseParticleSystem.prototype.getColorGradients = function () {
  55700. return this._colorGradients;
  55701. };
  55702. /**
  55703. * Gets the current list of size gradients.
  55704. * You must use addSizeGradient and removeSizeGradient to udpate this list
  55705. * @returns the list of size gradients
  55706. */
  55707. BaseParticleSystem.prototype.getSizeGradients = function () {
  55708. return this._sizeGradients;
  55709. };
  55710. /**
  55711. * Gets the current list of life time gradients.
  55712. * You must use addLifeTimeGradient and removeLifeTimeGradient to udpate this list
  55713. * @returns the list of life time gradients
  55714. */
  55715. BaseParticleSystem.prototype.getLifeTimeGradients = function () {
  55716. return this._lifeTimeGradients;
  55717. };
  55718. /**
  55719. * Gets the current list of angular speed gradients.
  55720. * You must use addAngularSpeedGradient and removeAngularSpeedGradient to udpate this list
  55721. * @returns the list of angular speed gradients
  55722. */
  55723. BaseParticleSystem.prototype.getAngularSpeedGradients = function () {
  55724. return this._angularSpeedGradients;
  55725. };
  55726. /**
  55727. * Gets the current list of velocity gradients.
  55728. * You must use addVelocityGradient and removeVelocityGradient to udpate this list
  55729. * @returns the list of velocity gradients
  55730. */
  55731. BaseParticleSystem.prototype.getVelocityGradients = function () {
  55732. return this._velocityGradients;
  55733. };
  55734. /**
  55735. * Gets the current list of start size gradients.
  55736. * You must use addStartSizeGradient and removeStartSizeGradient to udpate this list
  55737. * @returns the list of start size gradients
  55738. */
  55739. BaseParticleSystem.prototype.getStartSizeGradients = function () {
  55740. return this._startSizeGradients;
  55741. };
  55742. /**
  55743. * Gets the current list of emit rate gradients.
  55744. * You must use addEmitRateGradient and removeEmitRateGradient to udpate this list
  55745. * @returns the list of emit rate gradients
  55746. */
  55747. BaseParticleSystem.prototype.getEmitRateGradients = function () {
  55748. return this._emitRateGradients;
  55749. };
  55750. Object.defineProperty(BaseParticleSystem.prototype, "direction1", {
  55751. /**
  55752. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  55753. * This only works when particleEmitterTyps is a BoxParticleEmitter
  55754. */
  55755. get: function () {
  55756. if (this.particleEmitterType.direction1) {
  55757. return this.particleEmitterType.direction1;
  55758. }
  55759. return BABYLON.Vector3.Zero();
  55760. },
  55761. set: function (value) {
  55762. if (this.particleEmitterType.direction1) {
  55763. this.particleEmitterType.direction1 = value;
  55764. }
  55765. },
  55766. enumerable: true,
  55767. configurable: true
  55768. });
  55769. Object.defineProperty(BaseParticleSystem.prototype, "direction2", {
  55770. /**
  55771. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  55772. * This only works when particleEmitterTyps is a BoxParticleEmitter
  55773. */
  55774. get: function () {
  55775. if (this.particleEmitterType.direction2) {
  55776. return this.particleEmitterType.direction2;
  55777. }
  55778. return BABYLON.Vector3.Zero();
  55779. },
  55780. set: function (value) {
  55781. if (this.particleEmitterType.direction2) {
  55782. this.particleEmitterType.direction2 = value;
  55783. }
  55784. },
  55785. enumerable: true,
  55786. configurable: true
  55787. });
  55788. Object.defineProperty(BaseParticleSystem.prototype, "minEmitBox", {
  55789. /**
  55790. * Minimum box point around our emitter. Our emitter is the center of particles source, but if you want your particles to emit from more than one point, then you can tell it to do so.
  55791. * This only works when particleEmitterTyps is a BoxParticleEmitter
  55792. */
  55793. get: function () {
  55794. if (this.particleEmitterType.minEmitBox) {
  55795. return this.particleEmitterType.minEmitBox;
  55796. }
  55797. return BABYLON.Vector3.Zero();
  55798. },
  55799. set: function (value) {
  55800. if (this.particleEmitterType.minEmitBox) {
  55801. this.particleEmitterType.minEmitBox = value;
  55802. }
  55803. },
  55804. enumerable: true,
  55805. configurable: true
  55806. });
  55807. Object.defineProperty(BaseParticleSystem.prototype, "maxEmitBox", {
  55808. /**
  55809. * Maximum box point around our emitter. Our emitter is the center of particles source, but if you want your particles to emit from more than one point, then you can tell it to do so.
  55810. * This only works when particleEmitterTyps is a BoxParticleEmitter
  55811. */
  55812. get: function () {
  55813. if (this.particleEmitterType.maxEmitBox) {
  55814. return this.particleEmitterType.maxEmitBox;
  55815. }
  55816. return BABYLON.Vector3.Zero();
  55817. },
  55818. set: function (value) {
  55819. if (this.particleEmitterType.maxEmitBox) {
  55820. this.particleEmitterType.maxEmitBox = value;
  55821. }
  55822. },
  55823. enumerable: true,
  55824. configurable: true
  55825. });
  55826. Object.defineProperty(BaseParticleSystem.prototype, "isBillboardBased", {
  55827. /**
  55828. * Gets or sets a boolean indicating if the particles must be rendered as billboard or aligned with the direction
  55829. */
  55830. get: function () {
  55831. return this._isBillboardBased;
  55832. },
  55833. set: function (value) {
  55834. if (this._isBillboardBased === value) {
  55835. return;
  55836. }
  55837. this._isBillboardBased = value;
  55838. this._reset();
  55839. },
  55840. enumerable: true,
  55841. configurable: true
  55842. });
  55843. Object.defineProperty(BaseParticleSystem.prototype, "imageProcessingConfiguration", {
  55844. /**
  55845. * Gets the image processing configuration used either in this material.
  55846. */
  55847. get: function () {
  55848. return this._imageProcessingConfiguration;
  55849. },
  55850. /**
  55851. * Sets the Default image processing configuration used either in the this material.
  55852. *
  55853. * If sets to null, the scene one is in use.
  55854. */
  55855. set: function (value) {
  55856. this._attachImageProcessingConfiguration(value);
  55857. },
  55858. enumerable: true,
  55859. configurable: true
  55860. });
  55861. /**
  55862. * Attaches a new image processing configuration to the Standard Material.
  55863. * @param configuration
  55864. */
  55865. BaseParticleSystem.prototype._attachImageProcessingConfiguration = function (configuration) {
  55866. if (configuration === this._imageProcessingConfiguration) {
  55867. return;
  55868. }
  55869. // Pick the scene configuration if needed.
  55870. if (!configuration) {
  55871. this._imageProcessingConfiguration = this._scene.imageProcessingConfiguration;
  55872. }
  55873. else {
  55874. this._imageProcessingConfiguration = configuration;
  55875. }
  55876. };
  55877. /** @hidden */
  55878. BaseParticleSystem.prototype._reset = function () {
  55879. };
  55880. /**
  55881. * Creates a Point Emitter for the particle system (emits directly from the emitter position)
  55882. * @param direction1 Particles are emitted between the direction1 and direction2 from within the box
  55883. * @param direction2 Particles are emitted between the direction1 and direction2 from within the box
  55884. * @returns the emitter
  55885. */
  55886. BaseParticleSystem.prototype.createPointEmitter = function (direction1, direction2) {
  55887. var particleEmitter = new BABYLON.PointParticleEmitter();
  55888. particleEmitter.direction1 = direction1;
  55889. particleEmitter.direction2 = direction2;
  55890. this.particleEmitterType = particleEmitter;
  55891. return particleEmitter;
  55892. };
  55893. /**
  55894. * Creates a Hemisphere Emitter for the particle system (emits along the hemisphere radius)
  55895. * @param radius The radius of the hemisphere to emit from
  55896. * @param radiusRange The range of the hemisphere to emit from [0-1] 0 Surface Only, 1 Entire Radius
  55897. * @returns the emitter
  55898. */
  55899. BaseParticleSystem.prototype.createHemisphericEmitter = function (radius, radiusRange) {
  55900. if (radius === void 0) { radius = 1; }
  55901. if (radiusRange === void 0) { radiusRange = 1; }
  55902. var particleEmitter = new BABYLON.HemisphericParticleEmitter(radius, radiusRange);
  55903. this.particleEmitterType = particleEmitter;
  55904. return particleEmitter;
  55905. };
  55906. /**
  55907. * Creates a Sphere Emitter for the particle system (emits along the sphere radius)
  55908. * @param radius The radius of the sphere to emit from
  55909. * @param radiusRange The range of the sphere to emit from [0-1] 0 Surface Only, 1 Entire Radius
  55910. * @returns the emitter
  55911. */
  55912. BaseParticleSystem.prototype.createSphereEmitter = function (radius, radiusRange) {
  55913. if (radius === void 0) { radius = 1; }
  55914. if (radiusRange === void 0) { radiusRange = 1; }
  55915. var particleEmitter = new BABYLON.SphereParticleEmitter(radius, radiusRange);
  55916. this.particleEmitterType = particleEmitter;
  55917. return particleEmitter;
  55918. };
  55919. /**
  55920. * Creates a Directed Sphere Emitter for the particle system (emits between direction1 and direction2)
  55921. * @param radius The radius of the sphere to emit from
  55922. * @param direction1 Particles are emitted between the direction1 and direction2 from within the sphere
  55923. * @param direction2 Particles are emitted between the direction1 and direction2 from within the sphere
  55924. * @returns the emitter
  55925. */
  55926. BaseParticleSystem.prototype.createDirectedSphereEmitter = function (radius, direction1, direction2) {
  55927. if (radius === void 0) { radius = 1; }
  55928. if (direction1 === void 0) { direction1 = new BABYLON.Vector3(0, 1.0, 0); }
  55929. if (direction2 === void 0) { direction2 = new BABYLON.Vector3(0, 1.0, 0); }
  55930. var particleEmitter = new BABYLON.SphereDirectedParticleEmitter(radius, direction1, direction2);
  55931. this.particleEmitterType = particleEmitter;
  55932. return particleEmitter;
  55933. };
  55934. /**
  55935. * Creates a Cylinder Emitter for the particle system (emits from the cylinder to the particle position)
  55936. * @param radius The radius of the emission cylinder
  55937. * @param height The height of the emission cylinder
  55938. * @param radiusRange The range of emission [0-1] 0 Surface only, 1 Entire Radius
  55939. * @param directionRandomizer How much to randomize the particle direction [0-1]
  55940. * @returns the emitter
  55941. */
  55942. BaseParticleSystem.prototype.createCylinderEmitter = function (radius, height, radiusRange, directionRandomizer) {
  55943. if (radius === void 0) { radius = 1; }
  55944. if (height === void 0) { height = 1; }
  55945. if (radiusRange === void 0) { radiusRange = 1; }
  55946. if (directionRandomizer === void 0) { directionRandomizer = 0; }
  55947. var particleEmitter = new BABYLON.CylinderParticleEmitter(radius, height, radiusRange, directionRandomizer);
  55948. this.particleEmitterType = particleEmitter;
  55949. return particleEmitter;
  55950. };
  55951. /**
  55952. * Creates a Directed Cylinder Emitter for the particle system (emits between direction1 and direction2)
  55953. * @param radius The radius of the cylinder to emit from
  55954. * @param height The height of the emission cylinder
  55955. * @param radiusRange the range of the emission cylinder [0-1] 0 Surface only, 1 Entire Radius (1 by default)
  55956. * @param direction1 Particles are emitted between the direction1 and direction2 from within the cylinder
  55957. * @param direction2 Particles are emitted between the direction1 and direction2 from within the cylinder
  55958. * @returns the emitter
  55959. */
  55960. BaseParticleSystem.prototype.createDirectedCylinderEmitter = function (radius, height, radiusRange, direction1, direction2) {
  55961. if (radius === void 0) { radius = 1; }
  55962. if (height === void 0) { height = 1; }
  55963. if (radiusRange === void 0) { radiusRange = 1; }
  55964. if (direction1 === void 0) { direction1 = new BABYLON.Vector3(0, 1.0, 0); }
  55965. if (direction2 === void 0) { direction2 = new BABYLON.Vector3(0, 1.0, 0); }
  55966. var particleEmitter = new BABYLON.CylinderDirectedParticleEmitter(radius, height, radiusRange, direction1, direction2);
  55967. this.particleEmitterType = particleEmitter;
  55968. return particleEmitter;
  55969. };
  55970. /**
  55971. * Creates a Cone Emitter for the particle system (emits from the cone to the particle position)
  55972. * @param radius The radius of the cone to emit from
  55973. * @param angle The base angle of the cone
  55974. * @returns the emitter
  55975. */
  55976. BaseParticleSystem.prototype.createConeEmitter = function (radius, angle) {
  55977. if (radius === void 0) { radius = 1; }
  55978. if (angle === void 0) { angle = Math.PI / 4; }
  55979. var particleEmitter = new BABYLON.ConeParticleEmitter(radius, angle);
  55980. this.particleEmitterType = particleEmitter;
  55981. return particleEmitter;
  55982. };
  55983. /**
  55984. * Creates a Box Emitter for the particle system. (emits between direction1 and direction2 from withing the box defined by minEmitBox and maxEmitBox)
  55985. * @param direction1 Particles are emitted between the direction1 and direction2 from within the box
  55986. * @param direction2 Particles are emitted between the direction1 and direction2 from within the box
  55987. * @param minEmitBox Particles are emitted from the box between minEmitBox and maxEmitBox
  55988. * @param maxEmitBox Particles are emitted from the box between minEmitBox and maxEmitBox
  55989. * @returns the emitter
  55990. */
  55991. BaseParticleSystem.prototype.createBoxEmitter = function (direction1, direction2, minEmitBox, maxEmitBox) {
  55992. var particleEmitter = new BABYLON.BoxParticleEmitter();
  55993. this.particleEmitterType = particleEmitter;
  55994. this.direction1 = direction1;
  55995. this.direction2 = direction2;
  55996. this.minEmitBox = minEmitBox;
  55997. this.maxEmitBox = maxEmitBox;
  55998. return particleEmitter;
  55999. };
  56000. /**
  56001. * Source color is added to the destination color without alpha affecting the result.
  56002. */
  56003. BaseParticleSystem.BLENDMODE_ONEONE = 0;
  56004. /**
  56005. * Blend current color and particle color using particle’s alpha.
  56006. */
  56007. BaseParticleSystem.BLENDMODE_STANDARD = 1;
  56008. /**
  56009. * Add current color and particle color multiplied by particle’s alpha.
  56010. */
  56011. BaseParticleSystem.BLENDMODE_ADD = 2;
  56012. /**
  56013. * Multiply current color with particle color
  56014. */
  56015. BaseParticleSystem.BLENDMODE_MULTIPLY = 3;
  56016. return BaseParticleSystem;
  56017. }());
  56018. BABYLON.BaseParticleSystem = BaseParticleSystem;
  56019. })(BABYLON || (BABYLON = {}));
  56020. //# sourceMappingURL=babylon.baseParticleSystem.js.map
  56021. var BABYLON;
  56022. (function (BABYLON) {
  56023. /**
  56024. * This represents a particle system in Babylon.
  56025. * Particles are often small sprites used to simulate hard-to-reproduce phenomena like fire, smoke, water, or abstract visual effects like magic glitter and faery dust.
  56026. * Particles can take different shapes while emitted like box, sphere, cone or you can write your custom function.
  56027. * @example https://doc.babylonjs.com/babylon101/particles
  56028. */
  56029. var ParticleSystem = /** @class */ (function (_super) {
  56030. __extends(ParticleSystem, _super);
  56031. /**
  56032. * Instantiates a particle system.
  56033. * Particles are often small sprites used to simulate hard-to-reproduce phenomena like fire, smoke, water, or abstract visual effects like magic glitter and faery dust.
  56034. * @param name The name of the particle system
  56035. * @param capacity The max number of particles alive at the same time
  56036. * @param scene The scene the particle system belongs to
  56037. * @param customEffect a custom effect used to change the way particles are rendered by default
  56038. * @param isAnimationSheetEnabled Must be true if using a spritesheet to animate the particles texture
  56039. * @param epsilon Offset used to render the particles
  56040. */
  56041. function ParticleSystem(name, capacity, scene, customEffect, isAnimationSheetEnabled, epsilon) {
  56042. if (customEffect === void 0) { customEffect = null; }
  56043. if (isAnimationSheetEnabled === void 0) { isAnimationSheetEnabled = false; }
  56044. if (epsilon === void 0) { epsilon = 0.01; }
  56045. var _this = _super.call(this, name) || this;
  56046. /**
  56047. * An event triggered when the system is disposed
  56048. */
  56049. _this.onDisposeObservable = new BABYLON.Observable();
  56050. _this._particles = new Array();
  56051. _this._stockParticles = new Array();
  56052. _this._newPartsExcess = 0;
  56053. _this._vertexBuffers = {};
  56054. _this._scaledColorStep = new BABYLON.Color4(0, 0, 0, 0);
  56055. _this._colorDiff = new BABYLON.Color4(0, 0, 0, 0);
  56056. _this._scaledDirection = BABYLON.Vector3.Zero();
  56057. _this._scaledGravity = BABYLON.Vector3.Zero();
  56058. _this._currentRenderId = -1;
  56059. _this._useInstancing = false;
  56060. _this._started = false;
  56061. _this._stopped = false;
  56062. _this._actualFrame = 0;
  56063. /** @hidden */
  56064. _this._currentEmitRate1 = 0;
  56065. /** @hidden */
  56066. _this._currentEmitRate2 = 0;
  56067. /** @hidden */
  56068. _this._currentStartSize1 = 0;
  56069. /** @hidden */
  56070. _this._currentStartSize2 = 0;
  56071. // start of sub system methods
  56072. /**
  56073. * "Recycles" one of the particle by copying it back to the "stock" of particles and removing it from the active list.
  56074. * Its lifetime will start back at 0.
  56075. */
  56076. _this.recycleParticle = function (particle) {
  56077. var lastParticle = _this._particles.pop();
  56078. if (lastParticle !== particle) {
  56079. lastParticle.copyTo(particle);
  56080. }
  56081. _this._stockParticles.push(lastParticle);
  56082. };
  56083. _this._createParticle = function () {
  56084. var particle;
  56085. if (_this._stockParticles.length !== 0) {
  56086. particle = _this._stockParticles.pop();
  56087. particle._reset();
  56088. }
  56089. else {
  56090. particle = new BABYLON.Particle(_this);
  56091. }
  56092. return particle;
  56093. };
  56094. _this._emitFromParticle = function (particle) {
  56095. if (!_this.subEmitters || _this.subEmitters.length === 0) {
  56096. return;
  56097. }
  56098. var templateIndex = Math.floor(Math.random() * _this.subEmitters.length);
  56099. var subSystem = _this.subEmitters[templateIndex].clone(_this.name + "_sub", particle.position.clone());
  56100. subSystem._rootParticleSystem = _this;
  56101. _this.activeSubSystems.push(subSystem);
  56102. subSystem.start();
  56103. };
  56104. _this._capacity = capacity;
  56105. _this._epsilon = epsilon;
  56106. _this._isAnimationSheetEnabled = isAnimationSheetEnabled;
  56107. _this._scene = scene || BABYLON.Engine.LastCreatedScene;
  56108. // Setup the default processing configuration to the scene.
  56109. _this._attachImageProcessingConfiguration(null);
  56110. _this._customEffect = customEffect;
  56111. _this._scene.particleSystems.push(_this);
  56112. _this._useInstancing = _this._scene.getEngine().getCaps().instancedArrays;
  56113. _this._createIndexBuffer();
  56114. _this._createVertexBuffers();
  56115. // Default emitter type
  56116. _this.particleEmitterType = new BABYLON.BoxParticleEmitter();
  56117. _this.updateFunction = function (particles) {
  56118. var noiseTextureData = null;
  56119. var noiseTextureSize = null;
  56120. if (_this.noiseTexture) { // We need to get texture data back to CPU
  56121. noiseTextureData = (_this.noiseTexture.readPixels());
  56122. noiseTextureSize = _this.noiseTexture.getSize();
  56123. }
  56124. var _loop_1 = function () {
  56125. particle = particles[index];
  56126. particle.age += _this._scaledUpdateSpeed;
  56127. if (particle.age >= particle.lifeTime) { // Recycle by swapping with last particle
  56128. _this._emitFromParticle(particle);
  56129. _this.recycleParticle(particle);
  56130. index--;
  56131. return "continue";
  56132. }
  56133. else {
  56134. var ratio = particle.age / particle.lifeTime;
  56135. // Color
  56136. if (_this._colorGradients && _this._colorGradients.length > 0) {
  56137. BABYLON.Tools.GetCurrentGradient(ratio, _this._colorGradients, function (currentGradient, nextGradient, scale) {
  56138. if (currentGradient !== particle._currentColorGradient) {
  56139. particle._currentColor1.copyFrom(particle._currentColor2);
  56140. nextGradient.getColorToRef(particle._currentColor2);
  56141. particle._currentColorGradient = currentGradient;
  56142. }
  56143. BABYLON.Color4.LerpToRef(particle._currentColor1, particle._currentColor2, scale, particle.color);
  56144. });
  56145. }
  56146. else {
  56147. particle.colorStep.scaleToRef(_this._scaledUpdateSpeed, _this._scaledColorStep);
  56148. particle.color.addInPlace(_this._scaledColorStep);
  56149. if (particle.color.a < 0) {
  56150. particle.color.a = 0;
  56151. }
  56152. }
  56153. // Angular speed
  56154. if (_this._angularSpeedGradients && _this._angularSpeedGradients.length > 0) {
  56155. BABYLON.Tools.GetCurrentGradient(ratio, _this._angularSpeedGradients, function (currentGradient, nextGradient, scale) {
  56156. if (currentGradient !== particle._currentAngularSpeedGradient) {
  56157. particle._currentAngularSpeed1 = particle._currentAngularSpeed2;
  56158. particle._currentAngularSpeed2 = nextGradient.getFactor();
  56159. particle._currentAngularSpeedGradient = currentGradient;
  56160. }
  56161. particle.angularSpeed = BABYLON.Scalar.Lerp(particle._currentAngularSpeed1, particle._currentAngularSpeed2, scale);
  56162. });
  56163. }
  56164. particle.angle += particle.angularSpeed * _this._scaledUpdateSpeed;
  56165. // Direction
  56166. var directionScale_1 = _this._scaledUpdateSpeed;
  56167. /// Velocity
  56168. if (_this._velocityGradients && _this._velocityGradients.length > 0) {
  56169. BABYLON.Tools.GetCurrentGradient(ratio, _this._velocityGradients, function (currentGradient, nextGradient, scale) {
  56170. if (currentGradient !== particle._currentVelocityGradient) {
  56171. particle._currentVelocity1 = particle._currentVelocity2;
  56172. particle._currentVelocity2 = nextGradient.getFactor();
  56173. particle._currentVelocityGradient = currentGradient;
  56174. }
  56175. directionScale_1 *= BABYLON.Scalar.Lerp(particle._currentVelocity1, particle._currentVelocity2, scale);
  56176. });
  56177. }
  56178. particle.direction.scaleToRef(directionScale_1, _this._scaledDirection);
  56179. /// Limit velocity
  56180. if (_this._limitVelocityGradients && _this._limitVelocityGradients.length > 0) {
  56181. BABYLON.Tools.GetCurrentGradient(ratio, _this._limitVelocityGradients, function (currentGradient, nextGradient, scale) {
  56182. if (currentGradient !== particle._currentLimitVelocityGradient) {
  56183. particle._currentLimitVelocity1 = particle._currentLimitVelocity2;
  56184. particle._currentLimitVelocity2 = nextGradient.getFactor();
  56185. particle._currentLimitVelocityGradient = currentGradient;
  56186. }
  56187. var limitVelocity = BABYLON.Scalar.Lerp(particle._currentLimitVelocity1, particle._currentLimitVelocity2, scale);
  56188. var currentVelocity = particle.direction.length();
  56189. if (currentVelocity > limitVelocity) {
  56190. particle.direction.scaleInPlace(_this.limitVelocityDamping);
  56191. }
  56192. });
  56193. }
  56194. /// Drag
  56195. if (_this._dragGradients && _this._dragGradients.length > 0) {
  56196. BABYLON.Tools.GetCurrentGradient(ratio, _this._dragGradients, function (currentGradient, nextGradient, scale) {
  56197. if (currentGradient !== particle._currentDragGradient) {
  56198. particle._currentDrag1 = particle._currentDrag2;
  56199. particle._currentDrag2 = nextGradient.getFactor();
  56200. particle._currentDragGradient = currentGradient;
  56201. }
  56202. var drag = BABYLON.Scalar.Lerp(particle._currentDrag1, particle._currentDrag2, scale);
  56203. _this._scaledDirection.scaleInPlace(1.0 - drag);
  56204. });
  56205. }
  56206. particle.position.addInPlace(_this._scaledDirection);
  56207. // Noise
  56208. if (noiseTextureData && noiseTextureSize) {
  56209. var localPosition = BABYLON.Tmp.Vector3[0];
  56210. var emitterPosition = BABYLON.Tmp.Vector3[1];
  56211. _this._emitterWorldMatrix.getTranslationToRef(emitterPosition);
  56212. particle.position.subtractToRef(emitterPosition, localPosition);
  56213. var fetchedColorR = _this._fetchR(localPosition.y, localPosition.z, noiseTextureSize.width, noiseTextureSize.height, noiseTextureData);
  56214. var fetchedColorG = _this._fetchR(localPosition.x + 0.33, localPosition.z + 0.33, noiseTextureSize.width, noiseTextureSize.height, noiseTextureData);
  56215. var fetchedColorB = _this._fetchR(localPosition.x - 0.33, localPosition.y - 0.33, noiseTextureSize.width, noiseTextureSize.height, noiseTextureData);
  56216. var force = BABYLON.Tmp.Vector3[0];
  56217. var scaledForce = BABYLON.Tmp.Vector3[1];
  56218. force.copyFromFloats((2 * fetchedColorR - 1) * _this.noiseStrength.x, (2 * fetchedColorG - 1) * _this.noiseStrength.y, (2 * fetchedColorB - 1) * _this.noiseStrength.z);
  56219. force.scaleToRef(_this._scaledUpdateSpeed, scaledForce);
  56220. particle.direction.addInPlace(scaledForce);
  56221. }
  56222. // Gravity
  56223. _this.gravity.scaleToRef(_this._scaledUpdateSpeed, _this._scaledGravity);
  56224. particle.direction.addInPlace(_this._scaledGravity);
  56225. // Size
  56226. if (_this._sizeGradients && _this._sizeGradients.length > 0) {
  56227. BABYLON.Tools.GetCurrentGradient(ratio, _this._sizeGradients, function (currentGradient, nextGradient, scale) {
  56228. if (currentGradient !== particle._currentSizeGradient) {
  56229. particle._currentSize1 = particle._currentSize2;
  56230. particle._currentSize2 = nextGradient.getFactor();
  56231. particle._currentSizeGradient = currentGradient;
  56232. }
  56233. particle.size = BABYLON.Scalar.Lerp(particle._currentSize1, particle._currentSize2, scale);
  56234. });
  56235. }
  56236. if (_this._isAnimationSheetEnabled) {
  56237. particle.updateCellIndex();
  56238. }
  56239. }
  56240. };
  56241. var particle;
  56242. for (var index = 0; index < particles.length; index++) {
  56243. _loop_1();
  56244. }
  56245. };
  56246. return _this;
  56247. }
  56248. Object.defineProperty(ParticleSystem.prototype, "onDispose", {
  56249. /**
  56250. * Sets a callback that will be triggered when the system is disposed
  56251. */
  56252. set: function (callback) {
  56253. if (this._onDisposeObserver) {
  56254. this.onDisposeObservable.remove(this._onDisposeObserver);
  56255. }
  56256. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  56257. },
  56258. enumerable: true,
  56259. configurable: true
  56260. });
  56261. Object.defineProperty(ParticleSystem.prototype, "particles", {
  56262. //end of Sub-emitter
  56263. /**
  56264. * Gets the current list of active particles
  56265. */
  56266. get: function () {
  56267. return this._particles;
  56268. },
  56269. enumerable: true,
  56270. configurable: true
  56271. });
  56272. /**
  56273. * Returns the string "ParticleSystem"
  56274. * @returns a string containing the class name
  56275. */
  56276. ParticleSystem.prototype.getClassName = function () {
  56277. return "ParticleSystem";
  56278. };
  56279. ParticleSystem.prototype._addFactorGradient = function (factorGradients, gradient, factor, factor2) {
  56280. var newGradient = new BABYLON.FactorGradient();
  56281. newGradient.gradient = gradient;
  56282. newGradient.factor1 = factor;
  56283. newGradient.factor2 = factor2;
  56284. factorGradients.push(newGradient);
  56285. factorGradients.sort(function (a, b) {
  56286. if (a.gradient < b.gradient) {
  56287. return -1;
  56288. }
  56289. else if (a.gradient > b.gradient) {
  56290. return 1;
  56291. }
  56292. return 0;
  56293. });
  56294. };
  56295. ParticleSystem.prototype._removeFactorGradient = function (factorGradients, gradient) {
  56296. if (!factorGradients) {
  56297. return;
  56298. }
  56299. var index = 0;
  56300. for (var _i = 0, factorGradients_1 = factorGradients; _i < factorGradients_1.length; _i++) {
  56301. var factorGradient = factorGradients_1[_i];
  56302. if (factorGradient.gradient === gradient) {
  56303. factorGradients.splice(index, 1);
  56304. break;
  56305. }
  56306. index++;
  56307. }
  56308. };
  56309. /**
  56310. * Adds a new life time gradient
  56311. * @param gradient defines the gradient to use (between 0 and 1)
  56312. * @param factor defines the life time factor to affect to the specified gradient
  56313. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56314. * @returns the current particle system
  56315. */
  56316. ParticleSystem.prototype.addLifeTimeGradient = function (gradient, factor, factor2) {
  56317. if (!this._lifeTimeGradients) {
  56318. this._lifeTimeGradients = [];
  56319. }
  56320. this._addFactorGradient(this._lifeTimeGradients, gradient, factor, factor2);
  56321. return this;
  56322. };
  56323. /**
  56324. * Remove a specific life time gradient
  56325. * @param gradient defines the gradient to remove
  56326. * @returns the current particle system
  56327. */
  56328. ParticleSystem.prototype.removeLifeTimeGradient = function (gradient) {
  56329. this._removeFactorGradient(this._lifeTimeGradients, gradient);
  56330. return this;
  56331. };
  56332. /**
  56333. * Adds a new size gradient
  56334. * @param gradient defines the gradient to use (between 0 and 1)
  56335. * @param factor defines the size factor to affect to the specified gradient
  56336. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56337. * @returns the current particle system
  56338. */
  56339. ParticleSystem.prototype.addSizeGradient = function (gradient, factor, factor2) {
  56340. if (!this._sizeGradients) {
  56341. this._sizeGradients = [];
  56342. }
  56343. this._addFactorGradient(this._sizeGradients, gradient, factor, factor2);
  56344. return this;
  56345. };
  56346. /**
  56347. * Remove a specific size gradient
  56348. * @param gradient defines the gradient to remove
  56349. * @returns the current particle system
  56350. */
  56351. ParticleSystem.prototype.removeSizeGradient = function (gradient) {
  56352. this._removeFactorGradient(this._sizeGradients, gradient);
  56353. return this;
  56354. };
  56355. /**
  56356. * Adds a new angular speed gradient
  56357. * @param gradient defines the gradient to use (between 0 and 1)
  56358. * @param factor defines the angular speed to affect to the specified gradient
  56359. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56360. * @returns the current particle system
  56361. */
  56362. ParticleSystem.prototype.addAngularSpeedGradient = function (gradient, factor, factor2) {
  56363. if (!this._angularSpeedGradients) {
  56364. this._angularSpeedGradients = [];
  56365. }
  56366. this._addFactorGradient(this._angularSpeedGradients, gradient, factor, factor2);
  56367. return this;
  56368. };
  56369. /**
  56370. * Remove a specific angular speed gradient
  56371. * @param gradient defines the gradient to remove
  56372. * @returns the current particle system
  56373. */
  56374. ParticleSystem.prototype.removeAngularSpeedGradient = function (gradient) {
  56375. this._removeFactorGradient(this._angularSpeedGradients, gradient);
  56376. return this;
  56377. };
  56378. /**
  56379. * Adds a new velocity gradient
  56380. * @param gradient defines the gradient to use (between 0 and 1)
  56381. * @param factor defines the velocity to affect to the specified gradient
  56382. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56383. * @returns the current particle system
  56384. */
  56385. ParticleSystem.prototype.addVelocityGradient = function (gradient, factor, factor2) {
  56386. if (!this._velocityGradients) {
  56387. this._velocityGradients = [];
  56388. }
  56389. this._addFactorGradient(this._velocityGradients, gradient, factor, factor2);
  56390. return this;
  56391. };
  56392. /**
  56393. * Remove a specific velocity gradient
  56394. * @param gradient defines the gradient to remove
  56395. * @returns the current particle system
  56396. */
  56397. ParticleSystem.prototype.removeVelocityGradient = function (gradient) {
  56398. this._removeFactorGradient(this._velocityGradients, gradient);
  56399. return this;
  56400. };
  56401. /**
  56402. * Adds a new limit velocity gradient
  56403. * @param gradient defines the gradient to use (between 0 and 1)
  56404. * @param factor defines the limit velocity value to affect to the specified gradient
  56405. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56406. * @returns the current particle system
  56407. */
  56408. ParticleSystem.prototype.addLimitVelocityGradient = function (gradient, factor, factor2) {
  56409. if (!this._limitVelocityGradients) {
  56410. this._limitVelocityGradients = [];
  56411. }
  56412. this._addFactorGradient(this._limitVelocityGradients, gradient, factor, factor2);
  56413. return this;
  56414. };
  56415. /**
  56416. * Remove a specific limit velocity gradient
  56417. * @param gradient defines the gradient to remove
  56418. * @returns the current particle system
  56419. */
  56420. ParticleSystem.prototype.removeLimitVelocityGradient = function (gradient) {
  56421. this._removeFactorGradient(this._limitVelocityGradients, gradient);
  56422. return this;
  56423. };
  56424. /**
  56425. * Adds a new drag gradient
  56426. * @param gradient defines the gradient to use (between 0 and 1)
  56427. * @param factor defines the drag value to affect to the specified gradient
  56428. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56429. * @returns the current particle system
  56430. */
  56431. ParticleSystem.prototype.addDragGradient = function (gradient, factor, factor2) {
  56432. if (!this._dragGradients) {
  56433. this._dragGradients = [];
  56434. }
  56435. this._addFactorGradient(this._dragGradients, gradient, factor, factor2);
  56436. return this;
  56437. };
  56438. /**
  56439. * Remove a specific drag gradient
  56440. * @param gradient defines the gradient to remove
  56441. * @returns the current particle system
  56442. */
  56443. ParticleSystem.prototype.removeDragGradient = function (gradient) {
  56444. this._removeFactorGradient(this._dragGradients, gradient);
  56445. return this;
  56446. };
  56447. /**
  56448. * Adds a new emit rate gradient (please note that this will only work if you set the targetStopDuration property)
  56449. * @param gradient defines the gradient to use (between 0 and 1)
  56450. * @param factor defines the emit rate value to affect to the specified gradient
  56451. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56452. * @returns the current particle system
  56453. */
  56454. ParticleSystem.prototype.addEmitRateGradient = function (gradient, factor, factor2) {
  56455. if (!this._emitRateGradients) {
  56456. this._emitRateGradients = [];
  56457. }
  56458. this._addFactorGradient(this._emitRateGradients, gradient, factor, factor2);
  56459. if (!this._currentEmitRateGradient) {
  56460. this._currentEmitRateGradient = this._emitRateGradients[0];
  56461. this._currentEmitRate1 = this._currentEmitRateGradient.getFactor();
  56462. this._currentEmitRate2 = this._currentEmitRate1;
  56463. }
  56464. if (this._emitRateGradients.length === 2) {
  56465. this._currentEmitRate2 = this._emitRateGradients[1].getFactor();
  56466. }
  56467. return this;
  56468. };
  56469. /**
  56470. * Remove a specific emit rate gradient
  56471. * @param gradient defines the gradient to remove
  56472. * @returns the current particle system
  56473. */
  56474. ParticleSystem.prototype.removeEmitRateGradient = function (gradient) {
  56475. this._removeFactorGradient(this._emitRateGradients, gradient);
  56476. return this;
  56477. };
  56478. /**
  56479. * Adds a new start size gradient (please note that this will only work if you set the targetStopDuration property)
  56480. * @param gradient defines the gradient to use (between 0 and 1)
  56481. * @param factor defines the start size value to affect to the specified gradient
  56482. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  56483. * @returns the current particle system
  56484. */
  56485. ParticleSystem.prototype.addStartSizeGradient = function (gradient, factor, factor2) {
  56486. if (!this._startSizeGradients) {
  56487. this._startSizeGradients = [];
  56488. }
  56489. this._addFactorGradient(this._startSizeGradients, gradient, factor, factor2);
  56490. if (!this._currentStartSizeGradient) {
  56491. this._currentStartSizeGradient = this._startSizeGradients[0];
  56492. this._currentStartSize1 = this._currentStartSizeGradient.getFactor();
  56493. this._currentStartSize2 = this._currentStartSize1;
  56494. }
  56495. if (this._startSizeGradients.length === 2) {
  56496. this._currentStartSize2 = this._startSizeGradients[1].getFactor();
  56497. }
  56498. return this;
  56499. };
  56500. /**
  56501. * Remove a specific start size gradient
  56502. * @param gradient defines the gradient to remove
  56503. * @returns the current particle system
  56504. */
  56505. ParticleSystem.prototype.removeStartSizeGradient = function (gradient) {
  56506. this._removeFactorGradient(this._emitRateGradients, gradient);
  56507. return this;
  56508. };
  56509. /**
  56510. * Adds a new color gradient
  56511. * @param gradient defines the gradient to use (between 0 and 1)
  56512. * @param color defines the color to affect to the specified gradient
  56513. * @param color2 defines an additional color used to define a range ([color, color2]) with main color to pick the final color from
  56514. */
  56515. ParticleSystem.prototype.addColorGradient = function (gradient, color, color2) {
  56516. if (!this._colorGradients) {
  56517. this._colorGradients = [];
  56518. }
  56519. var colorGradient = new BABYLON.ColorGradient();
  56520. colorGradient.gradient = gradient;
  56521. colorGradient.color1 = color;
  56522. colorGradient.color2 = color2;
  56523. this._colorGradients.push(colorGradient);
  56524. this._colorGradients.sort(function (a, b) {
  56525. if (a.gradient < b.gradient) {
  56526. return -1;
  56527. }
  56528. else if (a.gradient > b.gradient) {
  56529. return 1;
  56530. }
  56531. return 0;
  56532. });
  56533. return this;
  56534. };
  56535. /**
  56536. * Remove a specific color gradient
  56537. * @param gradient defines the gradient to remove
  56538. */
  56539. ParticleSystem.prototype.removeColorGradient = function (gradient) {
  56540. if (!this._colorGradients) {
  56541. return this;
  56542. }
  56543. var index = 0;
  56544. for (var _i = 0, _a = this._colorGradients; _i < _a.length; _i++) {
  56545. var colorGradient = _a[_i];
  56546. if (colorGradient.gradient === gradient) {
  56547. this._colorGradients.splice(index, 1);
  56548. break;
  56549. }
  56550. index++;
  56551. }
  56552. return this;
  56553. };
  56554. ParticleSystem.prototype._fetchR = function (u, v, width, height, pixels) {
  56555. u = Math.abs(u) * 0.5 + 0.5;
  56556. v = Math.abs(v) * 0.5 + 0.5;
  56557. var wrappedU = ((u * width) % width) | 0;
  56558. var wrappedV = ((v * height) % height) | 0;
  56559. var position = (wrappedU + wrappedV * width) * 4;
  56560. return pixels[position] / 255;
  56561. };
  56562. ParticleSystem.prototype._reset = function () {
  56563. this._resetEffect();
  56564. };
  56565. ParticleSystem.prototype._resetEffect = function () {
  56566. if (this._vertexBuffer) {
  56567. this._vertexBuffer.dispose();
  56568. this._vertexBuffer = null;
  56569. }
  56570. if (this._spriteBuffer) {
  56571. this._spriteBuffer.dispose();
  56572. this._spriteBuffer = null;
  56573. }
  56574. this._createVertexBuffers();
  56575. };
  56576. ParticleSystem.prototype._createVertexBuffers = function () {
  56577. this._vertexBufferSize = this._useInstancing ? 10 : 12;
  56578. if (this._isAnimationSheetEnabled) {
  56579. this._vertexBufferSize += 1;
  56580. }
  56581. if (!this._isBillboardBased) {
  56582. this._vertexBufferSize += 3;
  56583. }
  56584. var engine = this._scene.getEngine();
  56585. this._vertexData = new Float32Array(this._capacity * this._vertexBufferSize * (this._useInstancing ? 1 : 4));
  56586. this._vertexBuffer = new BABYLON.Buffer(engine, this._vertexData, true, this._vertexBufferSize);
  56587. var dataOffset = 0;
  56588. var positions = this._vertexBuffer.createVertexBuffer(BABYLON.VertexBuffer.PositionKind, dataOffset, 3, this._vertexBufferSize, this._useInstancing);
  56589. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = positions;
  56590. dataOffset += 3;
  56591. var colors = this._vertexBuffer.createVertexBuffer(BABYLON.VertexBuffer.ColorKind, dataOffset, 4, this._vertexBufferSize, this._useInstancing);
  56592. this._vertexBuffers[BABYLON.VertexBuffer.ColorKind] = colors;
  56593. dataOffset += 4;
  56594. var options = this._vertexBuffer.createVertexBuffer("angle", dataOffset, 1, this._vertexBufferSize, this._useInstancing);
  56595. this._vertexBuffers["angle"] = options;
  56596. dataOffset += 1;
  56597. var size = this._vertexBuffer.createVertexBuffer("size", dataOffset, 2, this._vertexBufferSize, this._useInstancing);
  56598. this._vertexBuffers["size"] = size;
  56599. dataOffset += 2;
  56600. if (this._isAnimationSheetEnabled) {
  56601. var cellIndexBuffer = this._vertexBuffer.createVertexBuffer("cellIndex", dataOffset, 1, this._vertexBufferSize, this._useInstancing);
  56602. this._vertexBuffers["cellIndex"] = cellIndexBuffer;
  56603. dataOffset += 1;
  56604. }
  56605. if (!this._isBillboardBased) {
  56606. var directionBuffer = this._vertexBuffer.createVertexBuffer("direction", dataOffset, 3, this._vertexBufferSize, this._useInstancing);
  56607. this._vertexBuffers["direction"] = directionBuffer;
  56608. dataOffset += 3;
  56609. }
  56610. var offsets;
  56611. if (this._useInstancing) {
  56612. var spriteData = new Float32Array([0, 0, 1, 0, 1, 1, 0, 1]);
  56613. this._spriteBuffer = new BABYLON.Buffer(engine, spriteData, false, 2);
  56614. offsets = this._spriteBuffer.createVertexBuffer("offset", 0, 2);
  56615. }
  56616. else {
  56617. offsets = this._vertexBuffer.createVertexBuffer("offset", dataOffset, 2, this._vertexBufferSize, this._useInstancing);
  56618. dataOffset += 2;
  56619. }
  56620. this._vertexBuffers["offset"] = offsets;
  56621. };
  56622. ParticleSystem.prototype._createIndexBuffer = function () {
  56623. if (this._useInstancing) {
  56624. return;
  56625. }
  56626. var indices = [];
  56627. var index = 0;
  56628. for (var count = 0; count < this._capacity; count++) {
  56629. indices.push(index);
  56630. indices.push(index + 1);
  56631. indices.push(index + 2);
  56632. indices.push(index);
  56633. indices.push(index + 2);
  56634. indices.push(index + 3);
  56635. index += 4;
  56636. }
  56637. this._indexBuffer = this._scene.getEngine().createIndexBuffer(indices);
  56638. };
  56639. /**
  56640. * Gets the maximum number of particles active at the same time.
  56641. * @returns The max number of active particles.
  56642. */
  56643. ParticleSystem.prototype.getCapacity = function () {
  56644. return this._capacity;
  56645. };
  56646. /**
  56647. * Gets whether there are still active particles in the system.
  56648. * @returns True if it is alive, otherwise false.
  56649. */
  56650. ParticleSystem.prototype.isAlive = function () {
  56651. return this._alive;
  56652. };
  56653. /**
  56654. * Gets if the system has been started. (Note: this will still be true after stop is called)
  56655. * @returns True if it has been started, otherwise false.
  56656. */
  56657. ParticleSystem.prototype.isStarted = function () {
  56658. return this._started;
  56659. };
  56660. /**
  56661. * Starts the particle system and begins to emit
  56662. * @param delay defines the delay in milliseconds before starting the system (0 by default)
  56663. */
  56664. ParticleSystem.prototype.start = function (delay) {
  56665. var _this = this;
  56666. if (delay === void 0) { delay = 0; }
  56667. if (delay) {
  56668. setTimeout(function () {
  56669. _this.start(0);
  56670. }, delay);
  56671. return;
  56672. }
  56673. this._started = true;
  56674. this._stopped = false;
  56675. this._actualFrame = 0;
  56676. if (this.subEmitters && this.subEmitters.length != 0) {
  56677. this.activeSubSystems = new Array();
  56678. }
  56679. if (this.preWarmCycles) {
  56680. for (var index = 0; index < this.preWarmCycles; index++) {
  56681. this.animate(true);
  56682. }
  56683. }
  56684. };
  56685. /**
  56686. * Stops the particle system.
  56687. * @param stopSubEmitters if true it will stop the current system and all created sub-Systems if false it will stop the current root system only, this param is used by the root particle system only. the default value is true.
  56688. */
  56689. ParticleSystem.prototype.stop = function (stopSubEmitters) {
  56690. if (stopSubEmitters === void 0) { stopSubEmitters = true; }
  56691. this._stopped = true;
  56692. if (stopSubEmitters) {
  56693. this._stopSubEmitters();
  56694. }
  56695. };
  56696. // animation sheet
  56697. /**
  56698. * Remove all active particles
  56699. */
  56700. ParticleSystem.prototype.reset = function () {
  56701. this._stockParticles = [];
  56702. this._particles = [];
  56703. };
  56704. /**
  56705. * @hidden (for internal use only)
  56706. */
  56707. ParticleSystem.prototype._appendParticleVertex = function (index, particle, offsetX, offsetY) {
  56708. var offset = index * this._vertexBufferSize;
  56709. this._vertexData[offset++] = particle.position.x;
  56710. this._vertexData[offset++] = particle.position.y;
  56711. this._vertexData[offset++] = particle.position.z;
  56712. this._vertexData[offset++] = particle.color.r;
  56713. this._vertexData[offset++] = particle.color.g;
  56714. this._vertexData[offset++] = particle.color.b;
  56715. this._vertexData[offset++] = particle.color.a;
  56716. this._vertexData[offset++] = particle.angle;
  56717. this._vertexData[offset++] = particle.scale.x * particle.size;
  56718. this._vertexData[offset++] = particle.scale.y * particle.size;
  56719. if (this._isAnimationSheetEnabled) {
  56720. this._vertexData[offset++] = particle.cellIndex;
  56721. }
  56722. if (!this._isBillboardBased) {
  56723. if (particle._initialDirection) {
  56724. this._vertexData[offset++] = particle._initialDirection.x;
  56725. this._vertexData[offset++] = particle._initialDirection.y;
  56726. this._vertexData[offset++] = particle._initialDirection.z;
  56727. }
  56728. else {
  56729. this._vertexData[offset++] = particle.direction.x;
  56730. this._vertexData[offset++] = particle.direction.y;
  56731. this._vertexData[offset++] = particle.direction.z;
  56732. }
  56733. }
  56734. if (!this._useInstancing) {
  56735. if (this._isAnimationSheetEnabled) {
  56736. if (offsetX === 0)
  56737. offsetX = this._epsilon;
  56738. else if (offsetX === 1)
  56739. offsetX = 1 - this._epsilon;
  56740. if (offsetY === 0)
  56741. offsetY = this._epsilon;
  56742. else if (offsetY === 1)
  56743. offsetY = 1 - this._epsilon;
  56744. }
  56745. this._vertexData[offset++] = offsetX;
  56746. this._vertexData[offset++] = offsetY;
  56747. }
  56748. };
  56749. ParticleSystem.prototype._stopSubEmitters = function () {
  56750. if (!this.activeSubSystems) {
  56751. return;
  56752. }
  56753. this.activeSubSystems.forEach(function (subSystem) {
  56754. subSystem.stop(true);
  56755. });
  56756. this.activeSubSystems = new Array();
  56757. };
  56758. ParticleSystem.prototype._removeFromRoot = function () {
  56759. if (!this._rootParticleSystem) {
  56760. return;
  56761. }
  56762. var index = this._rootParticleSystem.activeSubSystems.indexOf(this);
  56763. if (index !== -1) {
  56764. this._rootParticleSystem.activeSubSystems.splice(index, 1);
  56765. }
  56766. };
  56767. // End of sub system methods
  56768. ParticleSystem.prototype._update = function (newParticles) {
  56769. var _this = this;
  56770. // Update current
  56771. this._alive = this._particles.length > 0;
  56772. if (this.emitter.position) {
  56773. var emitterMesh = this.emitter;
  56774. this._emitterWorldMatrix = emitterMesh.getWorldMatrix();
  56775. }
  56776. else {
  56777. var emitterPosition = this.emitter;
  56778. this._emitterWorldMatrix = BABYLON.Matrix.Translation(emitterPosition.x, emitterPosition.y, emitterPosition.z);
  56779. }
  56780. this.updateFunction(this._particles);
  56781. // Add new ones
  56782. var particle;
  56783. var _loop_2 = function () {
  56784. if (this_1._particles.length === this_1._capacity) {
  56785. return "break";
  56786. }
  56787. particle = this_1._createParticle();
  56788. this_1._particles.push(particle);
  56789. // Emitter
  56790. var emitPower = BABYLON.Scalar.RandomRange(this_1.minEmitPower, this_1.maxEmitPower);
  56791. if (this_1.startPositionFunction) {
  56792. this_1.startPositionFunction(this_1._emitterWorldMatrix, particle.position, particle);
  56793. }
  56794. else {
  56795. this_1.particleEmitterType.startPositionFunction(this_1._emitterWorldMatrix, particle.position, particle);
  56796. }
  56797. if (this_1.startDirectionFunction) {
  56798. this_1.startDirectionFunction(this_1._emitterWorldMatrix, particle.direction, particle);
  56799. }
  56800. else {
  56801. this_1.particleEmitterType.startDirectionFunction(this_1._emitterWorldMatrix, particle.direction, particle);
  56802. }
  56803. if (emitPower === 0) {
  56804. if (!particle._initialDirection) {
  56805. particle._initialDirection = particle.direction.clone();
  56806. }
  56807. else {
  56808. particle._initialDirection.copyFrom(particle.direction);
  56809. }
  56810. }
  56811. else {
  56812. particle._initialDirection = null;
  56813. }
  56814. particle.direction.scaleInPlace(emitPower);
  56815. // Life time
  56816. if (this_1.targetStopDuration && this_1._lifeTimeGradients && this_1._lifeTimeGradients.length > 0) {
  56817. var ratio_1 = BABYLON.Scalar.Clamp(this_1._actualFrame / this_1.targetStopDuration);
  56818. BABYLON.Tools.GetCurrentGradient(ratio_1, this_1._lifeTimeGradients, function (currentGradient, nextGradient, scale) {
  56819. var factorGradient1 = currentGradient;
  56820. var factorGradient2 = nextGradient;
  56821. var lifeTime1 = factorGradient1.getFactor();
  56822. var lifeTime2 = factorGradient2.getFactor();
  56823. var gradient = (ratio_1 - factorGradient1.gradient) / (factorGradient2.gradient - factorGradient1.gradient);
  56824. particle.lifeTime = BABYLON.Scalar.Lerp(lifeTime1, lifeTime2, gradient);
  56825. });
  56826. }
  56827. else {
  56828. particle.lifeTime = BABYLON.Scalar.RandomRange(this_1.minLifeTime, this_1.maxLifeTime);
  56829. }
  56830. // Size
  56831. if (!this_1._sizeGradients || this_1._sizeGradients.length === 0) {
  56832. particle.size = BABYLON.Scalar.RandomRange(this_1.minSize, this_1.maxSize);
  56833. }
  56834. else {
  56835. particle._currentSizeGradient = this_1._sizeGradients[0];
  56836. particle._currentSize1 = particle._currentSizeGradient.getFactor();
  56837. particle.size = particle._currentSize1;
  56838. if (this_1._sizeGradients.length > 1) {
  56839. particle._currentSize2 = this_1._sizeGradients[1].getFactor();
  56840. }
  56841. else {
  56842. particle._currentSize2 = particle._currentSize1;
  56843. }
  56844. }
  56845. // Size and scale
  56846. particle.scale.copyFromFloats(BABYLON.Scalar.RandomRange(this_1.minScaleX, this_1.maxScaleX), BABYLON.Scalar.RandomRange(this_1.minScaleY, this_1.maxScaleY));
  56847. // Adjust scale by start size
  56848. if (this_1._startSizeGradients && this_1._startSizeGradients[0]) {
  56849. var ratio = this_1._actualFrame / this_1.targetStopDuration;
  56850. BABYLON.Tools.GetCurrentGradient(ratio, this_1._startSizeGradients, function (currentGradient, nextGradient, scale) {
  56851. if (currentGradient !== _this._currentStartSizeGradient) {
  56852. _this._currentStartSize1 = _this._currentStartSize2;
  56853. _this._currentStartSize2 = nextGradient.getFactor();
  56854. _this._currentStartSizeGradient = currentGradient;
  56855. }
  56856. var value = BABYLON.Scalar.Lerp(_this._currentStartSize1, _this._currentStartSize2, scale);
  56857. particle.scale.scaleInPlace(value);
  56858. });
  56859. }
  56860. // Angle
  56861. if (!this_1._angularSpeedGradients || this_1._angularSpeedGradients.length === 0) {
  56862. particle.angularSpeed = BABYLON.Scalar.RandomRange(this_1.minAngularSpeed, this_1.maxAngularSpeed);
  56863. }
  56864. else {
  56865. particle._currentAngularSpeedGradient = this_1._angularSpeedGradients[0];
  56866. particle.angularSpeed = particle._currentAngularSpeedGradient.getFactor();
  56867. particle._currentAngularSpeed1 = particle.angularSpeed;
  56868. if (this_1._angularSpeedGradients.length > 1) {
  56869. particle._currentAngularSpeed2 = this_1._angularSpeedGradients[1].getFactor();
  56870. }
  56871. else {
  56872. particle._currentAngularSpeed2 = particle._currentAngularSpeed1;
  56873. }
  56874. }
  56875. particle.angle = BABYLON.Scalar.RandomRange(this_1.minInitialRotation, this_1.maxInitialRotation);
  56876. // Velocity
  56877. if (this_1._velocityGradients && this_1._velocityGradients.length > 0) {
  56878. particle._currentVelocityGradient = this_1._velocityGradients[0];
  56879. particle._currentVelocity1 = particle._currentVelocityGradient.getFactor();
  56880. if (this_1._velocityGradients.length > 1) {
  56881. particle._currentVelocity2 = this_1._velocityGradients[1].getFactor();
  56882. }
  56883. else {
  56884. particle._currentVelocity2 = particle._currentVelocity1;
  56885. }
  56886. }
  56887. // Limit velocity
  56888. if (this_1._limitVelocityGradients && this_1._limitVelocityGradients.length > 0) {
  56889. particle._currentLimitVelocityGradient = this_1._limitVelocityGradients[0];
  56890. particle._currentLimitVelocity1 = particle._currentLimitVelocityGradient.getFactor();
  56891. if (this_1._limitVelocityGradients.length > 1) {
  56892. particle._currentLimitVelocity2 = this_1._limitVelocityGradients[1].getFactor();
  56893. }
  56894. else {
  56895. particle._currentLimitVelocity2 = particle._currentLimitVelocity1;
  56896. }
  56897. }
  56898. // Drag
  56899. if (this_1._dragGradients && this_1._dragGradients.length > 0) {
  56900. particle._currentDragGradient = this_1._dragGradients[0];
  56901. particle._currentDrag1 = particle._currentDragGradient.getFactor();
  56902. if (this_1._dragGradients.length > 1) {
  56903. particle._currentDrag2 = this_1._dragGradients[1].getFactor();
  56904. }
  56905. else {
  56906. particle._currentDrag2 = particle._currentDrag1;
  56907. }
  56908. }
  56909. // Color
  56910. if (!this_1._colorGradients || this_1._colorGradients.length === 0) {
  56911. step = BABYLON.Scalar.RandomRange(0, 1.0);
  56912. BABYLON.Color4.LerpToRef(this_1.color1, this_1.color2, step, particle.color);
  56913. this_1.colorDead.subtractToRef(particle.color, this_1._colorDiff);
  56914. this_1._colorDiff.scaleToRef(1.0 / particle.lifeTime, particle.colorStep);
  56915. }
  56916. else {
  56917. particle._currentColorGradient = this_1._colorGradients[0];
  56918. particle._currentColorGradient.getColorToRef(particle.color);
  56919. particle._currentColor1.copyFrom(particle.color);
  56920. if (this_1._colorGradients.length > 1) {
  56921. this_1._colorGradients[1].getColorToRef(particle._currentColor2);
  56922. }
  56923. else {
  56924. particle._currentColor2.copyFrom(particle.color);
  56925. }
  56926. }
  56927. // Sheet
  56928. if (this_1._isAnimationSheetEnabled) {
  56929. particle._initialStartSpriteCellID = this_1.startSpriteCellID;
  56930. particle._initialEndSpriteCellID = this_1.endSpriteCellID;
  56931. }
  56932. };
  56933. var this_1 = this, step;
  56934. for (var index = 0; index < newParticles; index++) {
  56935. var state_1 = _loop_2();
  56936. if (state_1 === "break")
  56937. break;
  56938. }
  56939. };
  56940. /** @hidden */
  56941. ParticleSystem._GetAttributeNamesOrOptions = function (isAnimationSheetEnabled, isBillboardBased) {
  56942. if (isAnimationSheetEnabled === void 0) { isAnimationSheetEnabled = false; }
  56943. if (isBillboardBased === void 0) { isBillboardBased = false; }
  56944. var attributeNamesOrOptions = [BABYLON.VertexBuffer.PositionKind, BABYLON.VertexBuffer.ColorKind, "angle", "offset", "size"];
  56945. if (isAnimationSheetEnabled) {
  56946. attributeNamesOrOptions.push("cellIndex");
  56947. }
  56948. if (!isBillboardBased) {
  56949. attributeNamesOrOptions.push("direction");
  56950. }
  56951. return attributeNamesOrOptions;
  56952. };
  56953. ParticleSystem._GetEffectCreationOptions = function (isAnimationSheetEnabled) {
  56954. if (isAnimationSheetEnabled === void 0) { isAnimationSheetEnabled = false; }
  56955. var effectCreationOption = ["invView", "view", "projection", "vClipPlane", "vClipPlane2", "vClipPlane3", "vClipPlane4", "textureMask", "translationPivot", "eyePosition"];
  56956. if (isAnimationSheetEnabled) {
  56957. effectCreationOption.push("particlesInfos");
  56958. }
  56959. return effectCreationOption;
  56960. };
  56961. ParticleSystem.prototype._getEffect = function () {
  56962. if (this._customEffect) {
  56963. return this._customEffect;
  56964. }
  56965. ;
  56966. var defines = [];
  56967. if (this._scene.clipPlane) {
  56968. defines.push("#define CLIPPLANE");
  56969. }
  56970. if (this._scene.clipPlane2) {
  56971. defines.push("#define CLIPPLANE2");
  56972. }
  56973. if (this._scene.clipPlane3) {
  56974. defines.push("#define CLIPPLANE3");
  56975. }
  56976. if (this._scene.clipPlane4) {
  56977. defines.push("#define CLIPPLANE4");
  56978. }
  56979. if (this._isAnimationSheetEnabled) {
  56980. defines.push("#define ANIMATESHEET");
  56981. }
  56982. if (this.blendMode === ParticleSystem.BLENDMODE_MULTIPLY) {
  56983. defines.push("#define BLENDMULTIPLYMODE");
  56984. }
  56985. if (this._isBillboardBased) {
  56986. defines.push("#define BILLBOARD");
  56987. switch (this.billboardMode) {
  56988. case BABYLON.AbstractMesh.BILLBOARDMODE_Y:
  56989. defines.push("#define BILLBOARDY");
  56990. break;
  56991. case BABYLON.AbstractMesh.BILLBOARDMODE_ALL:
  56992. default:
  56993. break;
  56994. }
  56995. }
  56996. if (this._imageProcessingConfiguration) {
  56997. this._imageProcessingConfiguration.prepareDefines(this._imageProcessingConfigurationDefines);
  56998. defines.push(this._imageProcessingConfigurationDefines.toString());
  56999. }
  57000. // Effect
  57001. var join = defines.join("\n");
  57002. if (this._cachedDefines !== join) {
  57003. this._cachedDefines = join;
  57004. var attributesNamesOrOptions = ParticleSystem._GetAttributeNamesOrOptions(this._isAnimationSheetEnabled, this._isBillboardBased);
  57005. var effectCreationOption = ParticleSystem._GetEffectCreationOptions(this._isAnimationSheetEnabled);
  57006. var samplers = ["diffuseSampler"];
  57007. if (BABYLON.ImageProcessingConfiguration) {
  57008. BABYLON.ImageProcessingConfiguration.PrepareUniforms(effectCreationOption, this._imageProcessingConfigurationDefines);
  57009. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, this._imageProcessingConfigurationDefines);
  57010. }
  57011. this._effect = this._scene.getEngine().createEffect("particles", attributesNamesOrOptions, effectCreationOption, ["diffuseSampler"], join);
  57012. }
  57013. return this._effect;
  57014. };
  57015. /**
  57016. * Animates the particle system for the current frame by emitting new particles and or animating the living ones.
  57017. * @param preWarmOnly will prevent the system from updating the vertex buffer (default is false)
  57018. */
  57019. ParticleSystem.prototype.animate = function (preWarmOnly) {
  57020. var _this = this;
  57021. if (preWarmOnly === void 0) { preWarmOnly = false; }
  57022. if (!this._started)
  57023. return;
  57024. if (!preWarmOnly) {
  57025. var effect = this._getEffect();
  57026. // Check
  57027. if (!this.emitter || !this._imageProcessingConfiguration.isReady() || !effect.isReady() || !this.particleTexture || !this.particleTexture.isReady())
  57028. return;
  57029. if (this._currentRenderId === this._scene.getRenderId()) {
  57030. return;
  57031. }
  57032. this._currentRenderId = this._scene.getRenderId();
  57033. }
  57034. this._scaledUpdateSpeed = this.updateSpeed * (preWarmOnly ? this.preWarmStepOffset : this._scene.getAnimationRatio());
  57035. // Determine the number of particles we need to create
  57036. var newParticles;
  57037. if (this.manualEmitCount > -1) {
  57038. newParticles = this.manualEmitCount;
  57039. this._newPartsExcess = 0;
  57040. this.manualEmitCount = 0;
  57041. }
  57042. else {
  57043. var rate_1 = this.emitRate;
  57044. if (this._emitRateGradients && this._emitRateGradients.length > 0 && this.targetStopDuration) {
  57045. var ratio = this._actualFrame / this.targetStopDuration;
  57046. BABYLON.Tools.GetCurrentGradient(ratio, this._emitRateGradients, function (currentGradient, nextGradient, scale) {
  57047. if (currentGradient !== _this._currentEmitRateGradient) {
  57048. _this._currentEmitRate1 = _this._currentEmitRate2;
  57049. _this._currentEmitRate2 = nextGradient.getFactor();
  57050. _this._currentEmitRateGradient = currentGradient;
  57051. }
  57052. rate_1 = BABYLON.Scalar.Lerp(_this._currentEmitRate1, _this._currentEmitRate2, scale);
  57053. });
  57054. }
  57055. newParticles = ((rate_1 * this._scaledUpdateSpeed) >> 0);
  57056. this._newPartsExcess += rate_1 * this._scaledUpdateSpeed - newParticles;
  57057. }
  57058. if (this._newPartsExcess > 1.0) {
  57059. newParticles += this._newPartsExcess >> 0;
  57060. this._newPartsExcess -= this._newPartsExcess >> 0;
  57061. }
  57062. this._alive = false;
  57063. if (!this._stopped) {
  57064. this._actualFrame += this._scaledUpdateSpeed;
  57065. if (this.targetStopDuration && this._actualFrame >= this.targetStopDuration)
  57066. this.stop();
  57067. }
  57068. else {
  57069. newParticles = 0;
  57070. }
  57071. this._update(newParticles);
  57072. // Stopped?
  57073. if (this._stopped) {
  57074. if (!this._alive) {
  57075. this._started = false;
  57076. if (this.onAnimationEnd) {
  57077. this.onAnimationEnd();
  57078. }
  57079. if (this.disposeOnStop) {
  57080. this._scene._toBeDisposed.push(this);
  57081. }
  57082. }
  57083. }
  57084. if (!preWarmOnly) {
  57085. // Update VBO
  57086. var offset = 0;
  57087. for (var index = 0; index < this._particles.length; index++) {
  57088. var particle = this._particles[index];
  57089. this._appendParticleVertices(offset, particle);
  57090. offset += this._useInstancing ? 1 : 4;
  57091. }
  57092. if (this._vertexBuffer) {
  57093. this._vertexBuffer.update(this._vertexData);
  57094. }
  57095. }
  57096. if (this.manualEmitCount === 0 && this.disposeOnStop) {
  57097. this.stop();
  57098. }
  57099. };
  57100. ParticleSystem.prototype._appendParticleVertices = function (offset, particle) {
  57101. this._appendParticleVertex(offset++, particle, 0, 0);
  57102. if (!this._useInstancing) {
  57103. this._appendParticleVertex(offset++, particle, 1, 0);
  57104. this._appendParticleVertex(offset++, particle, 1, 1);
  57105. this._appendParticleVertex(offset++, particle, 0, 1);
  57106. }
  57107. };
  57108. /**
  57109. * Rebuilds the particle system.
  57110. */
  57111. ParticleSystem.prototype.rebuild = function () {
  57112. this._createIndexBuffer();
  57113. if (this._vertexBuffer) {
  57114. this._vertexBuffer._rebuild();
  57115. }
  57116. };
  57117. /**
  57118. * Is this system ready to be used/rendered
  57119. * @return true if the system is ready
  57120. */
  57121. ParticleSystem.prototype.isReady = function () {
  57122. var effect = this._getEffect();
  57123. if (!this.emitter || !this._imageProcessingConfiguration.isReady() || !effect.isReady() || !this.particleTexture || !this.particleTexture.isReady()) {
  57124. return false;
  57125. }
  57126. return true;
  57127. };
  57128. /**
  57129. * Renders the particle system in its current state.
  57130. * @returns the current number of particles
  57131. */
  57132. ParticleSystem.prototype.render = function () {
  57133. var effect = this._getEffect();
  57134. // Check
  57135. if (!this.isReady() || !this._particles.length) {
  57136. return 0;
  57137. }
  57138. var engine = this._scene.getEngine();
  57139. // Render
  57140. engine.enableEffect(effect);
  57141. engine.setState(false);
  57142. var viewMatrix = this._scene.getViewMatrix();
  57143. effect.setTexture("diffuseSampler", this.particleTexture);
  57144. effect.setMatrix("view", viewMatrix);
  57145. effect.setMatrix("projection", this._scene.getProjectionMatrix());
  57146. if (this._isAnimationSheetEnabled && this.particleTexture) {
  57147. var baseSize = this.particleTexture.getBaseSize();
  57148. effect.setFloat3("particlesInfos", this.spriteCellWidth / baseSize.width, this.spriteCellHeight / baseSize.height, baseSize.width / this.spriteCellWidth);
  57149. }
  57150. effect.setVector2("translationPivot", this.translationPivot);
  57151. effect.setFloat4("textureMask", this.textureMask.r, this.textureMask.g, this.textureMask.b, this.textureMask.a);
  57152. if (this._isBillboardBased) {
  57153. var camera = this._scene.activeCamera;
  57154. effect.setVector3("eyePosition", camera.globalPosition);
  57155. }
  57156. if (this._scene.clipPlane || this._scene.clipPlane2 || this._scene.clipPlane3 || this._scene.clipPlane4) {
  57157. var invView = viewMatrix.clone();
  57158. invView.invert();
  57159. effect.setMatrix("invView", invView);
  57160. BABYLON.MaterialHelper.BindClipPlane(effect, this._scene);
  57161. }
  57162. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, effect);
  57163. // image processing
  57164. if (this._imageProcessingConfiguration && !this._imageProcessingConfiguration.applyByPostProcess) {
  57165. this._imageProcessingConfiguration.bind(effect);
  57166. }
  57167. // Draw order
  57168. switch (this.blendMode) {
  57169. case ParticleSystem.BLENDMODE_ADD:
  57170. engine.setAlphaMode(BABYLON.Engine.ALPHA_ADD);
  57171. break;
  57172. case ParticleSystem.BLENDMODE_ONEONE:
  57173. engine.setAlphaMode(BABYLON.Engine.ALPHA_ONEONE);
  57174. break;
  57175. case ParticleSystem.BLENDMODE_STANDARD:
  57176. engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  57177. break;
  57178. case ParticleSystem.BLENDMODE_MULTIPLY:
  57179. engine.setAlphaMode(BABYLON.Engine.ALPHA_MULTIPLY);
  57180. break;
  57181. }
  57182. if (this.forceDepthWrite) {
  57183. engine.setDepthWrite(true);
  57184. }
  57185. if (this._useInstancing) {
  57186. engine.drawArraysType(BABYLON.Material.TriangleFanDrawMode, 0, 4, this._particles.length);
  57187. engine.unbindInstanceAttributes();
  57188. }
  57189. else {
  57190. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, this._particles.length * 6);
  57191. }
  57192. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  57193. return this._particles.length;
  57194. };
  57195. /**
  57196. * Disposes the particle system and free the associated resources
  57197. * @param disposeTexture defines if the particule texture must be disposed as well (true by default)
  57198. */
  57199. ParticleSystem.prototype.dispose = function (disposeTexture) {
  57200. if (disposeTexture === void 0) { disposeTexture = true; }
  57201. if (this._vertexBuffer) {
  57202. this._vertexBuffer.dispose();
  57203. this._vertexBuffer = null;
  57204. }
  57205. if (this._spriteBuffer) {
  57206. this._spriteBuffer.dispose();
  57207. this._spriteBuffer = null;
  57208. }
  57209. if (this._indexBuffer) {
  57210. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  57211. this._indexBuffer = null;
  57212. }
  57213. if (disposeTexture && this.particleTexture) {
  57214. this.particleTexture.dispose();
  57215. this.particleTexture = null;
  57216. }
  57217. if (disposeTexture && this.noiseTexture) {
  57218. this.noiseTexture.dispose();
  57219. this.noiseTexture = null;
  57220. }
  57221. this._removeFromRoot();
  57222. // Remove from scene
  57223. var index = this._scene.particleSystems.indexOf(this);
  57224. if (index > -1) {
  57225. this._scene.particleSystems.splice(index, 1);
  57226. }
  57227. // Callback
  57228. this.onDisposeObservable.notifyObservers(this);
  57229. this.onDisposeObservable.clear();
  57230. };
  57231. // Clone
  57232. /**
  57233. * Clones the particle system.
  57234. * @param name The name of the cloned object
  57235. * @param newEmitter The new emitter to use
  57236. * @returns the cloned particle system
  57237. */
  57238. ParticleSystem.prototype.clone = function (name, newEmitter) {
  57239. var custom = null;
  57240. var program = null;
  57241. if (this.customShader != null) {
  57242. program = this.customShader;
  57243. var defines = (program.shaderOptions.defines.length > 0) ? program.shaderOptions.defines.join("\n") : "";
  57244. custom = this._scene.getEngine().createEffectForParticles(program.shaderPath.fragmentElement, program.shaderOptions.uniforms, program.shaderOptions.samplers, defines);
  57245. }
  57246. else if (this._customEffect) {
  57247. custom = this._customEffect;
  57248. }
  57249. var result = new ParticleSystem(name, this._capacity, this._scene, custom);
  57250. result.customShader = program;
  57251. BABYLON.Tools.DeepCopy(this, result, ["particles", "customShader"]);
  57252. if (newEmitter === undefined) {
  57253. newEmitter = this.emitter;
  57254. }
  57255. result.emitter = newEmitter;
  57256. if (this.particleTexture) {
  57257. result.particleTexture = new BABYLON.Texture(this.particleTexture.url, this._scene);
  57258. }
  57259. if (!this.preventAutoStart) {
  57260. result.start();
  57261. }
  57262. return result;
  57263. };
  57264. /**
  57265. * Serializes the particle system to a JSON object.
  57266. * @returns the JSON object
  57267. */
  57268. ParticleSystem.prototype.serialize = function () {
  57269. var serializationObject = {};
  57270. ParticleSystem._Serialize(serializationObject, this);
  57271. serializationObject.textureMask = this.textureMask.asArray();
  57272. serializationObject.customShader = this.customShader;
  57273. serializationObject.preventAutoStart = this.preventAutoStart;
  57274. serializationObject.isAnimationSheetEnabled = this._isAnimationSheetEnabled;
  57275. return serializationObject;
  57276. };
  57277. /** @hidden */
  57278. ParticleSystem._Serialize = function (serializationObject, particleSystem) {
  57279. serializationObject.name = particleSystem.name;
  57280. serializationObject.id = particleSystem.id;
  57281. serializationObject.capacity = particleSystem.getCapacity();
  57282. // Emitter
  57283. if (particleSystem.emitter.position) {
  57284. var emitterMesh = particleSystem.emitter;
  57285. serializationObject.emitterId = emitterMesh.id;
  57286. }
  57287. else {
  57288. var emitterPosition = particleSystem.emitter;
  57289. serializationObject.emitter = emitterPosition.asArray();
  57290. }
  57291. // Emitter
  57292. if (particleSystem.particleEmitterType) {
  57293. serializationObject.particleEmitterType = particleSystem.particleEmitterType.serialize();
  57294. }
  57295. if (particleSystem.particleTexture) {
  57296. serializationObject.textureName = particleSystem.particleTexture.name;
  57297. }
  57298. // Animations
  57299. BABYLON.Animation.AppendSerializedAnimations(particleSystem, serializationObject);
  57300. // Particle system
  57301. serializationObject.renderingGroupId = particleSystem.renderingGroupId;
  57302. serializationObject.isBillboardBased = particleSystem.isBillboardBased;
  57303. serializationObject.minAngularSpeed = particleSystem.minAngularSpeed;
  57304. serializationObject.maxAngularSpeed = particleSystem.maxAngularSpeed;
  57305. serializationObject.minSize = particleSystem.minSize;
  57306. serializationObject.maxSize = particleSystem.maxSize;
  57307. serializationObject.minScaleX = particleSystem.minScaleX;
  57308. serializationObject.maxScaleX = particleSystem.maxScaleX;
  57309. serializationObject.minScaleY = particleSystem.minScaleY;
  57310. serializationObject.maxScaleY = particleSystem.maxScaleY;
  57311. serializationObject.minEmitPower = particleSystem.minEmitPower;
  57312. serializationObject.maxEmitPower = particleSystem.maxEmitPower;
  57313. serializationObject.minLifeTime = particleSystem.minLifeTime;
  57314. serializationObject.maxLifeTime = particleSystem.maxLifeTime;
  57315. serializationObject.emitRate = particleSystem.emitRate;
  57316. serializationObject.gravity = particleSystem.gravity.asArray();
  57317. serializationObject.noiseStrength = particleSystem.noiseStrength.asArray();
  57318. serializationObject.color1 = particleSystem.color1.asArray();
  57319. serializationObject.color2 = particleSystem.color2.asArray();
  57320. serializationObject.colorDead = particleSystem.colorDead.asArray();
  57321. serializationObject.updateSpeed = particleSystem.updateSpeed;
  57322. serializationObject.targetStopDuration = particleSystem.targetStopDuration;
  57323. serializationObject.blendMode = particleSystem.blendMode;
  57324. serializationObject.preWarmCycles = particleSystem.preWarmCycles;
  57325. serializationObject.preWarmStepOffset = particleSystem.preWarmStepOffset;
  57326. serializationObject.minInitialRotation = particleSystem.minInitialRotation;
  57327. serializationObject.maxInitialRotation = particleSystem.maxInitialRotation;
  57328. serializationObject.startSpriteCellID = particleSystem.startSpriteCellID;
  57329. serializationObject.endSpriteCellID = particleSystem.endSpriteCellID;
  57330. serializationObject.spriteCellChangeSpeed = particleSystem.spriteCellChangeSpeed;
  57331. serializationObject.spriteCellWidth = particleSystem.spriteCellWidth;
  57332. serializationObject.spriteCellHeight = particleSystem.spriteCellHeight;
  57333. var colorGradients = particleSystem.getColorGradients();
  57334. if (colorGradients) {
  57335. serializationObject.colorGradients = [];
  57336. for (var _i = 0, colorGradients_1 = colorGradients; _i < colorGradients_1.length; _i++) {
  57337. var colorGradient = colorGradients_1[_i];
  57338. var serializedGradient = {
  57339. gradient: colorGradient.gradient,
  57340. color1: colorGradient.color1.asArray()
  57341. };
  57342. if (colorGradient.color2) {
  57343. serializedGradient.color2 = colorGradient.color2.asArray();
  57344. }
  57345. serializationObject.colorGradients.push(serializedGradient);
  57346. }
  57347. }
  57348. var sizeGradients = particleSystem.getSizeGradients();
  57349. if (sizeGradients) {
  57350. serializationObject.sizeGradients = [];
  57351. for (var _a = 0, sizeGradients_1 = sizeGradients; _a < sizeGradients_1.length; _a++) {
  57352. var sizeGradient = sizeGradients_1[_a];
  57353. var serializedGradient = {
  57354. gradient: sizeGradient.gradient,
  57355. factor1: sizeGradient.factor1
  57356. };
  57357. if (sizeGradient.factor2 !== undefined) {
  57358. serializedGradient.factor2 = sizeGradient.factor2;
  57359. }
  57360. serializationObject.sizeGradients.push(serializedGradient);
  57361. }
  57362. }
  57363. var angularSpeedGradients = particleSystem.getAngularSpeedGradients();
  57364. if (angularSpeedGradients) {
  57365. serializationObject.angularSpeedGradients = [];
  57366. for (var _b = 0, angularSpeedGradients_1 = angularSpeedGradients; _b < angularSpeedGradients_1.length; _b++) {
  57367. var angularSpeedGradient = angularSpeedGradients_1[_b];
  57368. var serializedGradient = {
  57369. gradient: angularSpeedGradient.gradient,
  57370. factor1: angularSpeedGradient.factor1
  57371. };
  57372. if (angularSpeedGradient.factor2 !== undefined) {
  57373. serializedGradient.factor2 = angularSpeedGradient.factor2;
  57374. }
  57375. serializationObject.angularSpeedGradients.push(serializedGradient);
  57376. }
  57377. }
  57378. var velocityGradients = particleSystem.getVelocityGradients();
  57379. if (velocityGradients) {
  57380. serializationObject.velocityGradients = [];
  57381. for (var _c = 0, velocityGradients_1 = velocityGradients; _c < velocityGradients_1.length; _c++) {
  57382. var velocityGradient = velocityGradients_1[_c];
  57383. var serializedGradient = {
  57384. gradient: velocityGradient.gradient,
  57385. factor1: velocityGradient.factor1
  57386. };
  57387. if (velocityGradient.factor2 !== undefined) {
  57388. serializedGradient.factor2 = velocityGradient.factor2;
  57389. }
  57390. serializationObject.velocityGradients.push(serializedGradient);
  57391. }
  57392. }
  57393. var dragGradients = particleSystem.getDragGradients();
  57394. if (dragGradients) {
  57395. serializationObject.dragyGradients = [];
  57396. for (var _d = 0, dragGradients_1 = dragGradients; _d < dragGradients_1.length; _d++) {
  57397. var dragGradient = dragGradients_1[_d];
  57398. var serializedGradient = {
  57399. gradient: dragGradient.gradient,
  57400. factor1: dragGradient.factor1
  57401. };
  57402. if (dragGradient.factor2 !== undefined) {
  57403. serializedGradient.factor2 = dragGradient.factor2;
  57404. }
  57405. serializationObject.dragGradients.push(serializedGradient);
  57406. }
  57407. }
  57408. var emitRateGradients = particleSystem.getEmitRateGradients();
  57409. if (emitRateGradients) {
  57410. serializationObject.emitRateGradients = [];
  57411. for (var _e = 0, emitRateGradients_1 = emitRateGradients; _e < emitRateGradients_1.length; _e++) {
  57412. var emitRateGradient = emitRateGradients_1[_e];
  57413. var serializedGradient = {
  57414. gradient: emitRateGradient.gradient,
  57415. factor1: emitRateGradient.factor1
  57416. };
  57417. if (emitRateGradient.factor2 !== undefined) {
  57418. serializedGradient.factor2 = emitRateGradient.factor2;
  57419. }
  57420. serializationObject.emitRateGradients.push(serializedGradient);
  57421. }
  57422. }
  57423. var startSizeGradients = particleSystem.getStartSizeGradients();
  57424. if (startSizeGradients) {
  57425. serializationObject.startSizeGradients = [];
  57426. for (var _f = 0, startSizeGradients_1 = startSizeGradients; _f < startSizeGradients_1.length; _f++) {
  57427. var startSizeGradient = startSizeGradients_1[_f];
  57428. var serializedGradient = {
  57429. gradient: startSizeGradient.gradient,
  57430. factor1: startSizeGradient.factor1
  57431. };
  57432. if (startSizeGradient.factor2 !== undefined) {
  57433. serializedGradient.factor2 = startSizeGradient.factor2;
  57434. }
  57435. serializationObject.startSizeGradients.push(serializedGradient);
  57436. }
  57437. }
  57438. var limitVelocityGradients = particleSystem.getLimitVelocityGradients();
  57439. if (limitVelocityGradients) {
  57440. serializationObject.limitVelocityGradients = [];
  57441. for (var _g = 0, limitVelocityGradients_1 = limitVelocityGradients; _g < limitVelocityGradients_1.length; _g++) {
  57442. var limitVelocityGradient = limitVelocityGradients_1[_g];
  57443. var serializedGradient = {
  57444. gradient: limitVelocityGradient.gradient,
  57445. factor1: limitVelocityGradient.factor1
  57446. };
  57447. if (limitVelocityGradient.factor2 !== undefined) {
  57448. serializedGradient.factor2 = limitVelocityGradient.factor2;
  57449. }
  57450. serializationObject.limitVelocityGradients.push(serializedGradient);
  57451. }
  57452. serializationObject.limitVelocityDamping = particleSystem.limitVelocityDamping;
  57453. }
  57454. if (BABYLON.ProceduralTexture && particleSystem.noiseTexture && particleSystem.noiseTexture instanceof BABYLON.ProceduralTexture) {
  57455. var noiseTexture = particleSystem.noiseTexture;
  57456. serializationObject.noiseTexture = noiseTexture.serialize();
  57457. }
  57458. };
  57459. /** @hidden */
  57460. ParticleSystem._Parse = function (parsedParticleSystem, particleSystem, scene, rootUrl) {
  57461. // Texture
  57462. if (parsedParticleSystem.textureName) {
  57463. particleSystem.particleTexture = new BABYLON.Texture(rootUrl + parsedParticleSystem.textureName, scene);
  57464. particleSystem.particleTexture.name = parsedParticleSystem.textureName;
  57465. }
  57466. // Emitter
  57467. if (parsedParticleSystem.emitterId === undefined) {
  57468. particleSystem.emitter = BABYLON.Vector3.Zero();
  57469. }
  57470. else if (parsedParticleSystem.emitterId) {
  57471. particleSystem.emitter = scene.getLastMeshByID(parsedParticleSystem.emitterId);
  57472. }
  57473. else {
  57474. particleSystem.emitter = BABYLON.Vector3.FromArray(parsedParticleSystem.emitter);
  57475. }
  57476. // Misc.
  57477. if (parsedParticleSystem.renderingGroupId !== undefined) {
  57478. particleSystem.renderingGroupId = parsedParticleSystem.renderingGroupId;
  57479. }
  57480. if (parsedParticleSystem.isBillboardBased !== undefined) {
  57481. particleSystem.isBillboardBased = parsedParticleSystem.isBillboardBased;
  57482. }
  57483. // Animations
  57484. if (parsedParticleSystem.animations) {
  57485. for (var animationIndex = 0; animationIndex < parsedParticleSystem.animations.length; animationIndex++) {
  57486. var parsedAnimation = parsedParticleSystem.animations[animationIndex];
  57487. particleSystem.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  57488. }
  57489. }
  57490. if (parsedParticleSystem.autoAnimate) {
  57491. scene.beginAnimation(particleSystem, parsedParticleSystem.autoAnimateFrom, parsedParticleSystem.autoAnimateTo, parsedParticleSystem.autoAnimateLoop, parsedParticleSystem.autoAnimateSpeed || 1.0);
  57492. }
  57493. // Particle system
  57494. particleSystem.minAngularSpeed = parsedParticleSystem.minAngularSpeed;
  57495. particleSystem.maxAngularSpeed = parsedParticleSystem.maxAngularSpeed;
  57496. particleSystem.minSize = parsedParticleSystem.minSize;
  57497. particleSystem.maxSize = parsedParticleSystem.maxSize;
  57498. if (parsedParticleSystem.minScaleX) {
  57499. particleSystem.minScaleX = parsedParticleSystem.minScaleX;
  57500. particleSystem.maxScaleX = parsedParticleSystem.maxScaleX;
  57501. particleSystem.minScaleY = parsedParticleSystem.minScaleY;
  57502. particleSystem.maxScaleY = parsedParticleSystem.maxScaleY;
  57503. }
  57504. if (parsedParticleSystem.preWarmCycles !== undefined) {
  57505. particleSystem.preWarmCycles = parsedParticleSystem.preWarmCycles;
  57506. particleSystem.preWarmStepOffset = parsedParticleSystem.preWarmStepOffset;
  57507. }
  57508. if (parsedParticleSystem.minInitialRotation !== undefined) {
  57509. particleSystem.minInitialRotation = parsedParticleSystem.minInitialRotation;
  57510. particleSystem.maxInitialRotation = parsedParticleSystem.maxInitialRotation;
  57511. }
  57512. particleSystem.minLifeTime = parsedParticleSystem.minLifeTime;
  57513. particleSystem.maxLifeTime = parsedParticleSystem.maxLifeTime;
  57514. particleSystem.minEmitPower = parsedParticleSystem.minEmitPower;
  57515. particleSystem.maxEmitPower = parsedParticleSystem.maxEmitPower;
  57516. particleSystem.emitRate = parsedParticleSystem.emitRate;
  57517. particleSystem.gravity = BABYLON.Vector3.FromArray(parsedParticleSystem.gravity);
  57518. if (parsedParticleSystem.noiseStrength) {
  57519. particleSystem.noiseStrength = BABYLON.Vector3.FromArray(parsedParticleSystem.noiseStrength);
  57520. }
  57521. particleSystem.color1 = BABYLON.Color4.FromArray(parsedParticleSystem.color1);
  57522. particleSystem.color2 = BABYLON.Color4.FromArray(parsedParticleSystem.color2);
  57523. particleSystem.colorDead = BABYLON.Color4.FromArray(parsedParticleSystem.colorDead);
  57524. particleSystem.updateSpeed = parsedParticleSystem.updateSpeed;
  57525. particleSystem.targetStopDuration = parsedParticleSystem.targetStopDuration;
  57526. particleSystem.blendMode = parsedParticleSystem.blendMode;
  57527. if (parsedParticleSystem.colorGradients) {
  57528. for (var _i = 0, _a = parsedParticleSystem.colorGradients; _i < _a.length; _i++) {
  57529. var colorGradient = _a[_i];
  57530. particleSystem.addColorGradient(colorGradient.gradient, BABYLON.Color4.FromArray(colorGradient.color1), colorGradient.color2 ? BABYLON.Color4.FromArray(colorGradient.color2) : undefined);
  57531. }
  57532. }
  57533. if (parsedParticleSystem.sizeGradients) {
  57534. for (var _b = 0, _c = parsedParticleSystem.sizeGradients; _b < _c.length; _b++) {
  57535. var sizeGradient = _c[_b];
  57536. particleSystem.addSizeGradient(sizeGradient.gradient, sizeGradient.factor1 !== undefined ? sizeGradient.factor1 : sizeGradient.factor, sizeGradient.factor2);
  57537. }
  57538. }
  57539. if (parsedParticleSystem.angularSpeedGradients) {
  57540. for (var _d = 0, _e = parsedParticleSystem.angularSpeedGradients; _d < _e.length; _d++) {
  57541. var angularSpeedGradient = _e[_d];
  57542. particleSystem.addAngularSpeedGradient(angularSpeedGradient.gradient, angularSpeedGradient.factor1 !== undefined ? angularSpeedGradient.factor1 : angularSpeedGradient.factor, angularSpeedGradient.factor2);
  57543. }
  57544. }
  57545. if (parsedParticleSystem.velocityGradients) {
  57546. for (var _f = 0, _g = parsedParticleSystem.velocityGradients; _f < _g.length; _f++) {
  57547. var velocityGradient = _g[_f];
  57548. particleSystem.addVelocityGradient(velocityGradient.gradient, velocityGradient.factor1 !== undefined ? velocityGradient.factor1 : velocityGradient.factor, velocityGradient.factor2);
  57549. }
  57550. }
  57551. if (parsedParticleSystem.dragGradients) {
  57552. for (var _h = 0, _j = parsedParticleSystem.dragGradients; _h < _j.length; _h++) {
  57553. var dragGradient = _j[_h];
  57554. particleSystem.addDragGradient(dragGradient.gradient, dragGradient.factor1 !== undefined ? dragGradient.factor1 : dragGradient.factor, dragGradient.factor2);
  57555. }
  57556. }
  57557. if (parsedParticleSystem.emitRateGradients) {
  57558. for (var _k = 0, _l = parsedParticleSystem.emitRateGradients; _k < _l.length; _k++) {
  57559. var emitRateGradient = _l[_k];
  57560. particleSystem.addEmitRateGradient(emitRateGradient.gradient, emitRateGradient.factor1 !== undefined ? emitRateGradient.factor1 : emitRateGradient.factor, emitRateGradient.factor2);
  57561. }
  57562. }
  57563. if (parsedParticleSystem.startSizeGradients) {
  57564. for (var _m = 0, _o = parsedParticleSystem.startSizeGradients; _m < _o.length; _m++) {
  57565. var startSizeGradient = _o[_m];
  57566. particleSystem.addStartSizeGradient(startSizeGradient.gradient, startSizeGradient.factor1 !== undefined ? startSizeGradient.factor1 : startSizeGradient.factor, startSizeGradient.factor2);
  57567. }
  57568. }
  57569. if (parsedParticleSystem.limitVelocityGradients) {
  57570. for (var _p = 0, _q = parsedParticleSystem.limitVelocityGradients; _p < _q.length; _p++) {
  57571. var limitVelocityGradient = _q[_p];
  57572. particleSystem.addLimitVelocityGradient(limitVelocityGradient.gradient, limitVelocityGradient.factor1 !== undefined ? limitVelocityGradient.factor1 : limitVelocityGradient.factor, limitVelocityGradient.factor2);
  57573. }
  57574. particleSystem.limitVelocityDamping = parsedParticleSystem.limitVelocityDamping;
  57575. }
  57576. if (parsedParticleSystem.noiseTexture) {
  57577. particleSystem.noiseTexture = BABYLON.ProceduralTexture.Parse(parsedParticleSystem.noiseTexture, scene, rootUrl);
  57578. }
  57579. // Emitter
  57580. var emitterType;
  57581. if (parsedParticleSystem.particleEmitterType) {
  57582. switch (parsedParticleSystem.particleEmitterType.type) {
  57583. case "SphereParticleEmitter":
  57584. emitterType = new BABYLON.SphereParticleEmitter();
  57585. break;
  57586. case "SphereDirectedParticleEmitter":
  57587. emitterType = new BABYLON.SphereDirectedParticleEmitter();
  57588. break;
  57589. case "ConeEmitter":
  57590. case "ConeParticleEmitter":
  57591. emitterType = new BABYLON.ConeParticleEmitter();
  57592. break;
  57593. case "BoxEmitter":
  57594. case "BoxParticleEmitter":
  57595. default:
  57596. emitterType = new BABYLON.BoxParticleEmitter();
  57597. break;
  57598. }
  57599. emitterType.parse(parsedParticleSystem.particleEmitterType);
  57600. }
  57601. else {
  57602. emitterType = new BABYLON.BoxParticleEmitter();
  57603. emitterType.parse(parsedParticleSystem);
  57604. }
  57605. particleSystem.particleEmitterType = emitterType;
  57606. // Animation sheet
  57607. particleSystem.startSpriteCellID = parsedParticleSystem.startSpriteCellID;
  57608. particleSystem.endSpriteCellID = parsedParticleSystem.endSpriteCellID;
  57609. particleSystem.spriteCellWidth = parsedParticleSystem.spriteCellWidth;
  57610. particleSystem.spriteCellHeight = parsedParticleSystem.spriteCellHeight;
  57611. particleSystem.spriteCellChangeSpeed = parsedParticleSystem.spriteCellChangeSpeed;
  57612. };
  57613. /**
  57614. * Parses a JSON object to create a particle system.
  57615. * @param parsedParticleSystem The JSON object to parse
  57616. * @param scene The scene to create the particle system in
  57617. * @param rootUrl The root url to use to load external dependencies like texture
  57618. * @returns the Parsed particle system
  57619. */
  57620. ParticleSystem.Parse = function (parsedParticleSystem, scene, rootUrl) {
  57621. var name = parsedParticleSystem.name;
  57622. var custom = null;
  57623. var program = null;
  57624. if (parsedParticleSystem.customShader) {
  57625. program = parsedParticleSystem.customShader;
  57626. var defines = (program.shaderOptions.defines.length > 0) ? program.shaderOptions.defines.join("\n") : "";
  57627. custom = scene.getEngine().createEffectForParticles(program.shaderPath.fragmentElement, program.shaderOptions.uniforms, program.shaderOptions.samplers, defines);
  57628. }
  57629. var particleSystem = new ParticleSystem(name, parsedParticleSystem.capacity, scene, custom, parsedParticleSystem.isAnimationSheetEnabled);
  57630. particleSystem.customShader = program;
  57631. if (parsedParticleSystem.id) {
  57632. particleSystem.id = parsedParticleSystem.id;
  57633. }
  57634. // Auto start
  57635. if (parsedParticleSystem.preventAutoStart) {
  57636. particleSystem.preventAutoStart = parsedParticleSystem.preventAutoStart;
  57637. }
  57638. ParticleSystem._Parse(parsedParticleSystem, particleSystem, scene, rootUrl);
  57639. particleSystem.textureMask = BABYLON.Color4.FromArray(parsedParticleSystem.textureMask);
  57640. if (!particleSystem.preventAutoStart) {
  57641. particleSystem.start();
  57642. }
  57643. return particleSystem;
  57644. };
  57645. return ParticleSystem;
  57646. }(BABYLON.BaseParticleSystem));
  57647. BABYLON.ParticleSystem = ParticleSystem;
  57648. })(BABYLON || (BABYLON = {}));
  57649. //# sourceMappingURL=babylon.particleSystem.js.map
  57650. var BABYLON;
  57651. (function (BABYLON) {
  57652. /**
  57653. * Particle emitter emitting particles from the inside of a box.
  57654. * It emits the particles randomly between 2 given directions.
  57655. */
  57656. var BoxParticleEmitter = /** @class */ (function () {
  57657. /**
  57658. * Creates a new instance BoxParticleEmitter
  57659. */
  57660. function BoxParticleEmitter() {
  57661. /**
  57662. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  57663. */
  57664. this.direction1 = new BABYLON.Vector3(0, 1.0, 0);
  57665. /**
  57666. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  57667. */
  57668. this.direction2 = new BABYLON.Vector3(0, 1.0, 0);
  57669. /**
  57670. * Minimum box point around our emitter. Our emitter is the center of particles source, but if you want your particles to emit from more than one point, then you can tell it to do so.
  57671. */
  57672. this.minEmitBox = new BABYLON.Vector3(-0.5, -0.5, -0.5);
  57673. /**
  57674. * Maximum box point around our emitter. Our emitter is the center of particles source, but if you want your particles to emit from more than one point, then you can tell it to do so.
  57675. */
  57676. this.maxEmitBox = new BABYLON.Vector3(0.5, 0.5, 0.5);
  57677. }
  57678. /**
  57679. * Called by the particle System when the direction is computed for the created particle.
  57680. * @param worldMatrix is the world matrix of the particle system
  57681. * @param directionToUpdate is the direction vector to update with the result
  57682. * @param particle is the particle we are computed the direction for
  57683. */
  57684. BoxParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  57685. var randX = BABYLON.Scalar.RandomRange(this.direction1.x, this.direction2.x);
  57686. var randY = BABYLON.Scalar.RandomRange(this.direction1.y, this.direction2.y);
  57687. var randZ = BABYLON.Scalar.RandomRange(this.direction1.z, this.direction2.z);
  57688. BABYLON.Vector3.TransformNormalFromFloatsToRef(randX, randY, randZ, worldMatrix, directionToUpdate);
  57689. };
  57690. /**
  57691. * Called by the particle System when the position is computed for the created particle.
  57692. * @param worldMatrix is the world matrix of the particle system
  57693. * @param positionToUpdate is the position vector to update with the result
  57694. * @param particle is the particle we are computed the position for
  57695. */
  57696. BoxParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  57697. var randX = BABYLON.Scalar.RandomRange(this.minEmitBox.x, this.maxEmitBox.x);
  57698. var randY = BABYLON.Scalar.RandomRange(this.minEmitBox.y, this.maxEmitBox.y);
  57699. var randZ = BABYLON.Scalar.RandomRange(this.minEmitBox.z, this.maxEmitBox.z);
  57700. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(randX, randY, randZ, worldMatrix, positionToUpdate);
  57701. };
  57702. /**
  57703. * Clones the current emitter and returns a copy of it
  57704. * @returns the new emitter
  57705. */
  57706. BoxParticleEmitter.prototype.clone = function () {
  57707. var newOne = new BoxParticleEmitter();
  57708. BABYLON.Tools.DeepCopy(this, newOne);
  57709. return newOne;
  57710. };
  57711. /**
  57712. * Called by the GPUParticleSystem to setup the update shader
  57713. * @param effect defines the update shader
  57714. */
  57715. BoxParticleEmitter.prototype.applyToShader = function (effect) {
  57716. effect.setVector3("direction1", this.direction1);
  57717. effect.setVector3("direction2", this.direction2);
  57718. effect.setVector3("minEmitBox", this.minEmitBox);
  57719. effect.setVector3("maxEmitBox", this.maxEmitBox);
  57720. };
  57721. /**
  57722. * Returns a string to use to update the GPU particles update shader
  57723. * @returns a string containng the defines string
  57724. */
  57725. BoxParticleEmitter.prototype.getEffectDefines = function () {
  57726. return "#define BOXEMITTER";
  57727. };
  57728. /**
  57729. * Returns the string "BoxParticleEmitter"
  57730. * @returns a string containing the class name
  57731. */
  57732. BoxParticleEmitter.prototype.getClassName = function () {
  57733. return "BoxParticleEmitter";
  57734. };
  57735. /**
  57736. * Serializes the particle system to a JSON object.
  57737. * @returns the JSON object
  57738. */
  57739. BoxParticleEmitter.prototype.serialize = function () {
  57740. var serializationObject = {};
  57741. serializationObject.type = this.getClassName();
  57742. serializationObject.direction1 = this.direction1.asArray();
  57743. serializationObject.direction2 = this.direction2.asArray();
  57744. serializationObject.minEmitBox = this.minEmitBox.asArray();
  57745. serializationObject.maxEmitBox = this.maxEmitBox.asArray();
  57746. return serializationObject;
  57747. };
  57748. /**
  57749. * Parse properties from a JSON object
  57750. * @param serializationObject defines the JSON object
  57751. */
  57752. BoxParticleEmitter.prototype.parse = function (serializationObject) {
  57753. BABYLON.Vector3.FromArrayToRef(serializationObject.direction1, 0, this.direction1);
  57754. BABYLON.Vector3.FromArrayToRef(serializationObject.direction2, 0, this.direction2);
  57755. BABYLON.Vector3.FromArrayToRef(serializationObject.minEmitBox, 0, this.minEmitBox);
  57756. BABYLON.Vector3.FromArrayToRef(serializationObject.maxEmitBox, 0, this.maxEmitBox);
  57757. };
  57758. return BoxParticleEmitter;
  57759. }());
  57760. BABYLON.BoxParticleEmitter = BoxParticleEmitter;
  57761. })(BABYLON || (BABYLON = {}));
  57762. //# sourceMappingURL=babylon.boxParticleEmitter.js.map
  57763. var BABYLON;
  57764. (function (BABYLON) {
  57765. /**
  57766. * Particle emitter emitting particles from the inside of a cylinder.
  57767. * It emits the particles alongside the cylinder radius. The emission direction might be randomized.
  57768. */
  57769. var CylinderParticleEmitter = /** @class */ (function () {
  57770. /**
  57771. * Creates a new instance CylinderParticleEmitter
  57772. * @param radius the radius of the emission cylinder (1 by default)
  57773. * @param height the height of the emission cylinder (1 by default)
  57774. * @param radiusRange the range of the emission cylinder [0-1] 0 Surface only, 1 Entire Radius (1 by default)
  57775. * @param directionRandomizer defines how much to randomize the particle direction [0-1]
  57776. */
  57777. function CylinderParticleEmitter(
  57778. /**
  57779. * The radius of the emission cylinder.
  57780. */
  57781. radius,
  57782. /**
  57783. * The height of the emission cylinder.
  57784. */
  57785. height,
  57786. /**
  57787. * The range of emission [0-1] 0 Surface only, 1 Entire Radius.
  57788. */
  57789. radiusRange,
  57790. /**
  57791. * How much to randomize the particle direction [0-1].
  57792. */
  57793. directionRandomizer) {
  57794. if (radius === void 0) { radius = 1; }
  57795. if (height === void 0) { height = 1; }
  57796. if (radiusRange === void 0) { radiusRange = 1; }
  57797. if (directionRandomizer === void 0) { directionRandomizer = 0; }
  57798. this.radius = radius;
  57799. this.height = height;
  57800. this.radiusRange = radiusRange;
  57801. this.directionRandomizer = directionRandomizer;
  57802. }
  57803. /**
  57804. * Called by the particle System when the direction is computed for the created particle.
  57805. * @param worldMatrix is the world matrix of the particle system
  57806. * @param directionToUpdate is the direction vector to update with the result
  57807. * @param particle is the particle we are computed the direction for
  57808. */
  57809. CylinderParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  57810. var direction = particle.position.subtract(worldMatrix.getTranslation()).normalize();
  57811. var randY = BABYLON.Scalar.RandomRange(-this.directionRandomizer / 2, this.directionRandomizer / 2);
  57812. var angle = Math.atan2(direction.x, direction.z);
  57813. angle += BABYLON.Scalar.RandomRange(-Math.PI / 2, Math.PI / 2) * this.directionRandomizer;
  57814. direction.y = randY; // set direction y to rand y to mirror normal of cylinder surface
  57815. direction.x = Math.sin(angle);
  57816. direction.z = Math.cos(angle);
  57817. direction.normalize();
  57818. BABYLON.Vector3.TransformNormalFromFloatsToRef(direction.x, direction.y, direction.z, worldMatrix, directionToUpdate);
  57819. };
  57820. /**
  57821. * Called by the particle System when the position is computed for the created particle.
  57822. * @param worldMatrix is the world matrix of the particle system
  57823. * @param positionToUpdate is the position vector to update with the result
  57824. * @param particle is the particle we are computed the position for
  57825. */
  57826. CylinderParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  57827. var yPos = BABYLON.Scalar.RandomRange(-this.height / 2, this.height / 2);
  57828. var angle = BABYLON.Scalar.RandomRange(0, 2 * Math.PI);
  57829. // Pick a properly distributed point within the circle https://programming.guide/random-point-within-circle.html
  57830. var radiusDistribution = BABYLON.Scalar.RandomRange((1 - this.radiusRange) * (1 - this.radiusRange), 1);
  57831. var positionRadius = Math.sqrt(radiusDistribution) * this.radius;
  57832. var xPos = positionRadius * Math.cos(angle);
  57833. var zPos = positionRadius * Math.sin(angle);
  57834. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(xPos, yPos, zPos, worldMatrix, positionToUpdate);
  57835. };
  57836. /**
  57837. * Clones the current emitter and returns a copy of it
  57838. * @returns the new emitter
  57839. */
  57840. CylinderParticleEmitter.prototype.clone = function () {
  57841. var newOne = new CylinderParticleEmitter(this.radius, this.directionRandomizer);
  57842. BABYLON.Tools.DeepCopy(this, newOne);
  57843. return newOne;
  57844. };
  57845. /**
  57846. * Called by the {BABYLON.GPUParticleSystem} to setup the update shader
  57847. * @param effect defines the update shader
  57848. */
  57849. CylinderParticleEmitter.prototype.applyToShader = function (effect) {
  57850. effect.setFloat("radius", this.radius);
  57851. effect.setFloat("height", this.height);
  57852. effect.setFloat("radiusRange", this.radiusRange);
  57853. effect.setFloat("directionRandomizer", this.directionRandomizer);
  57854. };
  57855. /**
  57856. * Returns a string to use to update the GPU particles update shader
  57857. * @returns a string containng the defines string
  57858. */
  57859. CylinderParticleEmitter.prototype.getEffectDefines = function () {
  57860. return "#define CYLINDEREMITTER";
  57861. };
  57862. /**
  57863. * Returns the string "CylinderParticleEmitter"
  57864. * @returns a string containing the class name
  57865. */
  57866. CylinderParticleEmitter.prototype.getClassName = function () {
  57867. return "CylinderParticleEmitter";
  57868. };
  57869. /**
  57870. * Serializes the particle system to a JSON object.
  57871. * @returns the JSON object
  57872. */
  57873. CylinderParticleEmitter.prototype.serialize = function () {
  57874. var serializationObject = {};
  57875. serializationObject.type = this.getClassName();
  57876. serializationObject.radius = this.radius;
  57877. serializationObject.height = this.height;
  57878. serializationObject.radiusRange = this.radiusRange;
  57879. serializationObject.directionRandomizer = this.directionRandomizer;
  57880. return serializationObject;
  57881. };
  57882. /**
  57883. * Parse properties from a JSON object
  57884. * @param serializationObject defines the JSON object
  57885. */
  57886. CylinderParticleEmitter.prototype.parse = function (serializationObject) {
  57887. this.radius = serializationObject.radius;
  57888. this.height = serializationObject.height;
  57889. this.radiusRange = serializationObject.radiusRange;
  57890. this.directionRandomizer = serializationObject.directionRandomizer;
  57891. };
  57892. return CylinderParticleEmitter;
  57893. }());
  57894. BABYLON.CylinderParticleEmitter = CylinderParticleEmitter;
  57895. /**
  57896. * Particle emitter emitting particles from the inside of a cylinder.
  57897. * It emits the particles randomly between two vectors.
  57898. */
  57899. var CylinderDirectedParticleEmitter = /** @class */ (function (_super) {
  57900. __extends(CylinderDirectedParticleEmitter, _super);
  57901. /**
  57902. * Creates a new instance CylinderDirectedParticleEmitter
  57903. * @param radius the radius of the emission cylinder (1 by default)
  57904. * @param height the height of the emission cylinder (1 by default)
  57905. * @param radiusRange the range of the emission cylinder [0-1] 0 Surface only, 1 Entire Radius (1 by default)
  57906. * @param direction1 the min limit of the emission direction (up vector by default)
  57907. * @param direction2 the max limit of the emission direction (up vector by default)
  57908. */
  57909. function CylinderDirectedParticleEmitter(radius, height, radiusRange,
  57910. /**
  57911. * The min limit of the emission direction.
  57912. */
  57913. direction1,
  57914. /**
  57915. * The max limit of the emission direction.
  57916. */
  57917. direction2) {
  57918. if (radius === void 0) { radius = 1; }
  57919. if (height === void 0) { height = 1; }
  57920. if (radiusRange === void 0) { radiusRange = 1; }
  57921. if (direction1 === void 0) { direction1 = new BABYLON.Vector3(0, 1, 0); }
  57922. if (direction2 === void 0) { direction2 = new BABYLON.Vector3(0, 1, 0); }
  57923. var _this = _super.call(this, radius, height, radiusRange) || this;
  57924. _this.direction1 = direction1;
  57925. _this.direction2 = direction2;
  57926. return _this;
  57927. }
  57928. /**
  57929. * Called by the particle System when the direction is computed for the created particle.
  57930. * @param worldMatrix is the world matrix of the particle system
  57931. * @param directionToUpdate is the direction vector to update with the result
  57932. * @param particle is the particle we are computed the direction for
  57933. */
  57934. CylinderDirectedParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  57935. var randX = BABYLON.Scalar.RandomRange(this.direction1.x, this.direction2.x);
  57936. var randY = BABYLON.Scalar.RandomRange(this.direction1.y, this.direction2.y);
  57937. var randZ = BABYLON.Scalar.RandomRange(this.direction1.z, this.direction2.z);
  57938. BABYLON.Vector3.TransformNormalFromFloatsToRef(randX, randY, randZ, worldMatrix, directionToUpdate);
  57939. };
  57940. /**
  57941. * Clones the current emitter and returns a copy of it
  57942. * @returns the new emitter
  57943. */
  57944. CylinderDirectedParticleEmitter.prototype.clone = function () {
  57945. var newOne = new CylinderDirectedParticleEmitter(this.radius, this.height, this.radiusRange, this.direction1, this.direction2);
  57946. BABYLON.Tools.DeepCopy(this, newOne);
  57947. return newOne;
  57948. };
  57949. /**
  57950. * Called by the GPUParticleSystem to setup the update shader
  57951. * @param effect defines the update shader
  57952. */
  57953. CylinderDirectedParticleEmitter.prototype.applyToShader = function (effect) {
  57954. effect.setFloat("radius", this.radius);
  57955. effect.setFloat("height", this.height);
  57956. effect.setFloat("radiusRange", this.radiusRange);
  57957. effect.setVector3("direction1", this.direction1);
  57958. effect.setVector3("direction2", this.direction2);
  57959. };
  57960. /**
  57961. * Returns a string to use to update the GPU particles update shader
  57962. * @returns a string containng the defines string
  57963. */
  57964. CylinderDirectedParticleEmitter.prototype.getEffectDefines = function () {
  57965. return "#define CYLINDEREMITTER\n#define DIRECTEDCYLINDEREMITTER";
  57966. };
  57967. /**
  57968. * Returns the string "CylinderDirectedParticleEmitter"
  57969. * @returns a string containing the class name
  57970. */
  57971. CylinderDirectedParticleEmitter.prototype.getClassName = function () {
  57972. return "CylinderDirectedParticleEmitter";
  57973. };
  57974. /**
  57975. * Serializes the particle system to a JSON object.
  57976. * @returns the JSON object
  57977. */
  57978. CylinderDirectedParticleEmitter.prototype.serialize = function () {
  57979. var serializationObject = _super.prototype.serialize.call(this);
  57980. serializationObject.direction1 = this.direction1.asArray();
  57981. serializationObject.direction2 = this.direction2.asArray();
  57982. return serializationObject;
  57983. };
  57984. /**
  57985. * Parse properties from a JSON object
  57986. * @param serializationObject defines the JSON object
  57987. */
  57988. CylinderDirectedParticleEmitter.prototype.parse = function (serializationObject) {
  57989. _super.prototype.parse.call(this, serializationObject);
  57990. this.direction1.copyFrom(serializationObject.direction1);
  57991. this.direction2.copyFrom(serializationObject.direction2);
  57992. };
  57993. return CylinderDirectedParticleEmitter;
  57994. }(CylinderParticleEmitter));
  57995. BABYLON.CylinderDirectedParticleEmitter = CylinderDirectedParticleEmitter;
  57996. })(BABYLON || (BABYLON = {}));
  57997. //# sourceMappingURL=babylon.cylinderParticleEmitter.js.map
  57998. var BABYLON;
  57999. (function (BABYLON) {
  58000. /**
  58001. * Particle emitter emitting particles from the inside of a cone.
  58002. * It emits the particles alongside the cone volume from the base to the particle.
  58003. * The emission direction might be randomized.
  58004. */
  58005. var ConeParticleEmitter = /** @class */ (function () {
  58006. /**
  58007. * Creates a new instance ConeParticleEmitter
  58008. * @param radius the radius of the emission cone (1 by default)
  58009. * @param angles the cone base angle (PI by default)
  58010. * @param directionRandomizer defines how much to randomize the particle direction [0-1] (default is 0)
  58011. */
  58012. function ConeParticleEmitter(radius, angle,
  58013. /** defines how much to randomize the particle direction [0-1] (default is 0) */
  58014. directionRandomizer) {
  58015. if (radius === void 0) { radius = 1; }
  58016. if (angle === void 0) { angle = Math.PI; }
  58017. if (directionRandomizer === void 0) { directionRandomizer = 0; }
  58018. this.directionRandomizer = directionRandomizer;
  58019. /**
  58020. * Gets or sets a value indicating where on the radius the start position should be picked (1 = everywhere, 0 = only surface)
  58021. */
  58022. this.radiusRange = 1;
  58023. /**
  58024. * Gets or sets a value indicating where on the height the start position should be picked (1 = everywhere, 0 = only surface)
  58025. */
  58026. this.heightRange = 1;
  58027. /**
  58028. * Gets or sets a value indicating if all the particles should be emitted from the spawn point only (the base of the cone)
  58029. */
  58030. this.emitFromSpawnPointOnly = false;
  58031. this.angle = angle;
  58032. this.radius = radius;
  58033. }
  58034. Object.defineProperty(ConeParticleEmitter.prototype, "radius", {
  58035. /**
  58036. * Gets or sets the radius of the emission cone
  58037. */
  58038. get: function () {
  58039. return this._radius;
  58040. },
  58041. set: function (value) {
  58042. this._radius = value;
  58043. this._buildHeight();
  58044. },
  58045. enumerable: true,
  58046. configurable: true
  58047. });
  58048. Object.defineProperty(ConeParticleEmitter.prototype, "angle", {
  58049. /**
  58050. * Gets or sets the angle of the emission cone
  58051. */
  58052. get: function () {
  58053. return this._angle;
  58054. },
  58055. set: function (value) {
  58056. this._angle = value;
  58057. this._buildHeight();
  58058. },
  58059. enumerable: true,
  58060. configurable: true
  58061. });
  58062. ConeParticleEmitter.prototype._buildHeight = function () {
  58063. if (this._angle !== 0) {
  58064. this._height = this._radius / Math.tan(this._angle / 2);
  58065. }
  58066. else {
  58067. this._height = 1;
  58068. }
  58069. };
  58070. /**
  58071. * Called by the particle System when the direction is computed for the created particle.
  58072. * @param worldMatrix is the world matrix of the particle system
  58073. * @param directionToUpdate is the direction vector to update with the result
  58074. * @param particle is the particle we are computed the direction for
  58075. */
  58076. ConeParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  58077. if (Math.abs(Math.cos(this._angle)) === 1.0) {
  58078. BABYLON.Vector3.TransformNormalFromFloatsToRef(0, 1.0, 0, worldMatrix, directionToUpdate);
  58079. }
  58080. else {
  58081. // measure the direction Vector from the emitter to the particle.
  58082. var direction = particle.position.subtract(worldMatrix.getTranslation()).normalize();
  58083. var randX = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58084. var randY = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58085. var randZ = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58086. direction.x += randX;
  58087. direction.y += randY;
  58088. direction.z += randZ;
  58089. direction.normalize();
  58090. BABYLON.Vector3.TransformNormalFromFloatsToRef(direction.x, direction.y, direction.z, worldMatrix, directionToUpdate);
  58091. }
  58092. };
  58093. /**
  58094. * Called by the particle System when the position is computed for the created particle.
  58095. * @param worldMatrix is the world matrix of the particle system
  58096. * @param positionToUpdate is the position vector to update with the result
  58097. * @param particle is the particle we are computed the position for
  58098. */
  58099. ConeParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  58100. var s = BABYLON.Scalar.RandomRange(0, Math.PI * 2);
  58101. var h;
  58102. if (!this.emitFromSpawnPointOnly) {
  58103. h = BABYLON.Scalar.RandomRange(0, this.heightRange);
  58104. // Better distribution in a cone at normal angles.
  58105. h = 1 - h * h;
  58106. }
  58107. else {
  58108. h = 0.0001;
  58109. }
  58110. var radius = this._radius - BABYLON.Scalar.RandomRange(0, this._radius * this.radiusRange);
  58111. radius = radius * h;
  58112. var randX = radius * Math.sin(s);
  58113. var randZ = radius * Math.cos(s);
  58114. var randY = h * this._height;
  58115. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(randX, randY, randZ, worldMatrix, positionToUpdate);
  58116. };
  58117. /**
  58118. * Clones the current emitter and returns a copy of it
  58119. * @returns the new emitter
  58120. */
  58121. ConeParticleEmitter.prototype.clone = function () {
  58122. var newOne = new ConeParticleEmitter(this._radius, this._angle, this.directionRandomizer);
  58123. BABYLON.Tools.DeepCopy(this, newOne);
  58124. return newOne;
  58125. };
  58126. /**
  58127. * Called by the GPUParticleSystem to setup the update shader
  58128. * @param effect defines the update shader
  58129. */
  58130. ConeParticleEmitter.prototype.applyToShader = function (effect) {
  58131. effect.setFloat2("radius", this._radius, this.radiusRange);
  58132. effect.setFloat("coneAngle", this._angle);
  58133. effect.setFloat2("height", this._height, this.heightRange);
  58134. effect.setFloat("directionRandomizer", this.directionRandomizer);
  58135. };
  58136. /**
  58137. * Returns a string to use to update the GPU particles update shader
  58138. * @returns a string containng the defines string
  58139. */
  58140. ConeParticleEmitter.prototype.getEffectDefines = function () {
  58141. var defines = "#define CONEEMITTER";
  58142. if (this.emitFromSpawnPointOnly) {
  58143. defines += "\n#define CONEEMITTERSPAWNPOINT";
  58144. }
  58145. return defines;
  58146. };
  58147. /**
  58148. * Returns the string "ConeParticleEmitter"
  58149. * @returns a string containing the class name
  58150. */
  58151. ConeParticleEmitter.prototype.getClassName = function () {
  58152. return "ConeParticleEmitter";
  58153. };
  58154. /**
  58155. * Serializes the particle system to a JSON object.
  58156. * @returns the JSON object
  58157. */
  58158. ConeParticleEmitter.prototype.serialize = function () {
  58159. var serializationObject = {};
  58160. serializationObject.type = this.getClassName();
  58161. serializationObject.radius = this._radius;
  58162. serializationObject.angle = this._angle;
  58163. serializationObject.directionRandomizer = this.directionRandomizer;
  58164. return serializationObject;
  58165. };
  58166. /**
  58167. * Parse properties from a JSON object
  58168. * @param serializationObject defines the JSON object
  58169. */
  58170. ConeParticleEmitter.prototype.parse = function (serializationObject) {
  58171. this.radius = serializationObject.radius;
  58172. this.angle = serializationObject.angle;
  58173. this.directionRandomizer = serializationObject.directionRandomizer;
  58174. };
  58175. return ConeParticleEmitter;
  58176. }());
  58177. BABYLON.ConeParticleEmitter = ConeParticleEmitter;
  58178. })(BABYLON || (BABYLON = {}));
  58179. //# sourceMappingURL=babylon.coneParticleEmitter.js.map
  58180. var BABYLON;
  58181. (function (BABYLON) {
  58182. /**
  58183. * Particle emitter emitting particles from the inside of a sphere.
  58184. * It emits the particles alongside the sphere radius. The emission direction might be randomized.
  58185. */
  58186. var SphereParticleEmitter = /** @class */ (function () {
  58187. /**
  58188. * Creates a new instance SphereParticleEmitter
  58189. * @param radius the radius of the emission sphere (1 by default)
  58190. * @param radiusRange the range of the emission sphere [0-1] 0 Surface only, 1 Entire Radius (1 by default)
  58191. * @param directionRandomizer defines how much to randomize the particle direction [0-1]
  58192. */
  58193. function SphereParticleEmitter(
  58194. /**
  58195. * The radius of the emission sphere.
  58196. */
  58197. radius,
  58198. /**
  58199. * The range of emission [0-1] 0 Surface only, 1 Entire Radius.
  58200. */
  58201. radiusRange,
  58202. /**
  58203. * How much to randomize the particle direction [0-1].
  58204. */
  58205. directionRandomizer) {
  58206. if (radius === void 0) { radius = 1; }
  58207. if (radiusRange === void 0) { radiusRange = 1; }
  58208. if (directionRandomizer === void 0) { directionRandomizer = 0; }
  58209. this.radius = radius;
  58210. this.radiusRange = radiusRange;
  58211. this.directionRandomizer = directionRandomizer;
  58212. }
  58213. /**
  58214. * Called by the particle System when the direction is computed for the created particle.
  58215. * @param worldMatrix is the world matrix of the particle system
  58216. * @param directionToUpdate is the direction vector to update with the result
  58217. * @param particle is the particle we are computed the direction for
  58218. */
  58219. SphereParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  58220. var direction = particle.position.subtract(worldMatrix.getTranslation()).normalize();
  58221. var randX = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58222. var randY = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58223. var randZ = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58224. direction.x += randX;
  58225. direction.y += randY;
  58226. direction.z += randZ;
  58227. direction.normalize();
  58228. BABYLON.Vector3.TransformNormalFromFloatsToRef(direction.x, direction.y, direction.z, worldMatrix, directionToUpdate);
  58229. };
  58230. /**
  58231. * Called by the particle System when the position is computed for the created particle.
  58232. * @param worldMatrix is the world matrix of the particle system
  58233. * @param positionToUpdate is the position vector to update with the result
  58234. * @param particle is the particle we are computed the position for
  58235. */
  58236. SphereParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  58237. var randRadius = this.radius - BABYLON.Scalar.RandomRange(0, this.radius * this.radiusRange);
  58238. var v = BABYLON.Scalar.RandomRange(0, 1.0);
  58239. var phi = BABYLON.Scalar.RandomRange(0, 2 * Math.PI);
  58240. var theta = Math.acos(2 * v - 1);
  58241. var randX = randRadius * Math.cos(phi) * Math.sin(theta);
  58242. var randY = randRadius * Math.cos(theta);
  58243. var randZ = randRadius * Math.sin(phi) * Math.sin(theta);
  58244. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(randX, randY, randZ, worldMatrix, positionToUpdate);
  58245. };
  58246. /**
  58247. * Clones the current emitter and returns a copy of it
  58248. * @returns the new emitter
  58249. */
  58250. SphereParticleEmitter.prototype.clone = function () {
  58251. var newOne = new SphereParticleEmitter(this.radius, this.directionRandomizer);
  58252. BABYLON.Tools.DeepCopy(this, newOne);
  58253. return newOne;
  58254. };
  58255. /**
  58256. * Called by the {BABYLON.GPUParticleSystem} to setup the update shader
  58257. * @param effect defines the update shader
  58258. */
  58259. SphereParticleEmitter.prototype.applyToShader = function (effect) {
  58260. effect.setFloat("radius", this.radius);
  58261. effect.setFloat("radiusRange", this.radiusRange);
  58262. effect.setFloat("directionRandomizer", this.directionRandomizer);
  58263. };
  58264. /**
  58265. * Returns a string to use to update the GPU particles update shader
  58266. * @returns a string containng the defines string
  58267. */
  58268. SphereParticleEmitter.prototype.getEffectDefines = function () {
  58269. return "#define SPHEREEMITTER";
  58270. };
  58271. /**
  58272. * Returns the string "SphereParticleEmitter"
  58273. * @returns a string containing the class name
  58274. */
  58275. SphereParticleEmitter.prototype.getClassName = function () {
  58276. return "SphereParticleEmitter";
  58277. };
  58278. /**
  58279. * Serializes the particle system to a JSON object.
  58280. * @returns the JSON object
  58281. */
  58282. SphereParticleEmitter.prototype.serialize = function () {
  58283. var serializationObject = {};
  58284. serializationObject.type = this.getClassName();
  58285. serializationObject.radius = this.radius;
  58286. serializationObject.radiusRange = this.radiusRange;
  58287. serializationObject.directionRandomizer = this.directionRandomizer;
  58288. return serializationObject;
  58289. };
  58290. /**
  58291. * Parse properties from a JSON object
  58292. * @param serializationObject defines the JSON object
  58293. */
  58294. SphereParticleEmitter.prototype.parse = function (serializationObject) {
  58295. this.radius = serializationObject.radius;
  58296. this.radiusRange = serializationObject.radiusRange;
  58297. this.directionRandomizer = serializationObject.directionRandomizer;
  58298. };
  58299. return SphereParticleEmitter;
  58300. }());
  58301. BABYLON.SphereParticleEmitter = SphereParticleEmitter;
  58302. /**
  58303. * Particle emitter emitting particles from the inside of a sphere.
  58304. * It emits the particles randomly between two vectors.
  58305. */
  58306. var SphereDirectedParticleEmitter = /** @class */ (function (_super) {
  58307. __extends(SphereDirectedParticleEmitter, _super);
  58308. /**
  58309. * Creates a new instance SphereDirectedParticleEmitter
  58310. * @param radius the radius of the emission sphere (1 by default)
  58311. * @param direction1 the min limit of the emission direction (up vector by default)
  58312. * @param direction2 the max limit of the emission direction (up vector by default)
  58313. */
  58314. function SphereDirectedParticleEmitter(radius,
  58315. /**
  58316. * The min limit of the emission direction.
  58317. */
  58318. direction1,
  58319. /**
  58320. * The max limit of the emission direction.
  58321. */
  58322. direction2) {
  58323. if (radius === void 0) { radius = 1; }
  58324. if (direction1 === void 0) { direction1 = new BABYLON.Vector3(0, 1, 0); }
  58325. if (direction2 === void 0) { direction2 = new BABYLON.Vector3(0, 1, 0); }
  58326. var _this = _super.call(this, radius) || this;
  58327. _this.direction1 = direction1;
  58328. _this.direction2 = direction2;
  58329. return _this;
  58330. }
  58331. /**
  58332. * Called by the particle System when the direction is computed for the created particle.
  58333. * @param worldMatrix is the world matrix of the particle system
  58334. * @param directionToUpdate is the direction vector to update with the result
  58335. * @param particle is the particle we are computed the direction for
  58336. */
  58337. SphereDirectedParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  58338. var randX = BABYLON.Scalar.RandomRange(this.direction1.x, this.direction2.x);
  58339. var randY = BABYLON.Scalar.RandomRange(this.direction1.y, this.direction2.y);
  58340. var randZ = BABYLON.Scalar.RandomRange(this.direction1.z, this.direction2.z);
  58341. BABYLON.Vector3.TransformNormalFromFloatsToRef(randX, randY, randZ, worldMatrix, directionToUpdate);
  58342. };
  58343. /**
  58344. * Clones the current emitter and returns a copy of it
  58345. * @returns the new emitter
  58346. */
  58347. SphereDirectedParticleEmitter.prototype.clone = function () {
  58348. var newOne = new SphereDirectedParticleEmitter(this.radius, this.direction1, this.direction2);
  58349. BABYLON.Tools.DeepCopy(this, newOne);
  58350. return newOne;
  58351. };
  58352. /**
  58353. * Called by the GPUParticleSystem to setup the update shader
  58354. * @param effect defines the update shader
  58355. */
  58356. SphereDirectedParticleEmitter.prototype.applyToShader = function (effect) {
  58357. effect.setFloat("radius", this.radius);
  58358. effect.setFloat("radiusRange", this.radiusRange);
  58359. effect.setVector3("direction1", this.direction1);
  58360. effect.setVector3("direction2", this.direction2);
  58361. };
  58362. /**
  58363. * Returns a string to use to update the GPU particles update shader
  58364. * @returns a string containng the defines string
  58365. */
  58366. SphereDirectedParticleEmitter.prototype.getEffectDefines = function () {
  58367. return "#define SPHEREEMITTER\n#define DIRECTEDSPHEREEMITTER";
  58368. };
  58369. /**
  58370. * Returns the string "SphereDirectedParticleEmitter"
  58371. * @returns a string containing the class name
  58372. */
  58373. SphereDirectedParticleEmitter.prototype.getClassName = function () {
  58374. return "SphereDirectedParticleEmitter";
  58375. };
  58376. /**
  58377. * Serializes the particle system to a JSON object.
  58378. * @returns the JSON object
  58379. */
  58380. SphereDirectedParticleEmitter.prototype.serialize = function () {
  58381. var serializationObject = _super.prototype.serialize.call(this);
  58382. serializationObject.direction1 = this.direction1.asArray();
  58383. serializationObject.direction2 = this.direction2.asArray();
  58384. return serializationObject;
  58385. };
  58386. /**
  58387. * Parse properties from a JSON object
  58388. * @param serializationObject defines the JSON object
  58389. */
  58390. SphereDirectedParticleEmitter.prototype.parse = function (serializationObject) {
  58391. _super.prototype.parse.call(this, serializationObject);
  58392. this.direction1.copyFrom(serializationObject.direction1);
  58393. this.direction2.copyFrom(serializationObject.direction2);
  58394. };
  58395. return SphereDirectedParticleEmitter;
  58396. }(SphereParticleEmitter));
  58397. BABYLON.SphereDirectedParticleEmitter = SphereDirectedParticleEmitter;
  58398. })(BABYLON || (BABYLON = {}));
  58399. //# sourceMappingURL=babylon.sphereParticleEmitter.js.map
  58400. var BABYLON;
  58401. (function (BABYLON) {
  58402. /**
  58403. * Particle emitter emitting particles from the inside of a hemisphere.
  58404. * It emits the particles alongside the hemisphere radius. The emission direction might be randomized.
  58405. */
  58406. var HemisphericParticleEmitter = /** @class */ (function () {
  58407. /**
  58408. * Creates a new instance HemisphericParticleEmitter
  58409. * @param radius the radius of the emission hemisphere (1 by default)
  58410. * @param radiusRange the range of the emission hemisphere [0-1] 0 Surface only, 1 Entire Radius (1 by default)
  58411. * @param directionRandomizer defines how much to randomize the particle direction [0-1]
  58412. */
  58413. function HemisphericParticleEmitter(
  58414. /**
  58415. * The radius of the emission hemisphere.
  58416. */
  58417. radius,
  58418. /**
  58419. * The range of emission [0-1] 0 Surface only, 1 Entire Radius.
  58420. */
  58421. radiusRange,
  58422. /**
  58423. * How much to randomize the particle direction [0-1].
  58424. */
  58425. directionRandomizer) {
  58426. if (radius === void 0) { radius = 1; }
  58427. if (radiusRange === void 0) { radiusRange = 1; }
  58428. if (directionRandomizer === void 0) { directionRandomizer = 0; }
  58429. this.radius = radius;
  58430. this.radiusRange = radiusRange;
  58431. this.directionRandomizer = directionRandomizer;
  58432. }
  58433. /**
  58434. * Called by the particle System when the direction is computed for the created particle.
  58435. * @param worldMatrix is the world matrix of the particle system
  58436. * @param directionToUpdate is the direction vector to update with the result
  58437. * @param particle is the particle we are computed the direction for
  58438. */
  58439. HemisphericParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  58440. var direction = particle.position.subtract(worldMatrix.getTranslation()).normalize();
  58441. var randX = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58442. var randY = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58443. var randZ = BABYLON.Scalar.RandomRange(0, this.directionRandomizer);
  58444. direction.x += randX;
  58445. direction.y += randY;
  58446. direction.z += randZ;
  58447. direction.normalize();
  58448. BABYLON.Vector3.TransformNormalFromFloatsToRef(direction.x, direction.y, direction.z, worldMatrix, directionToUpdate);
  58449. };
  58450. /**
  58451. * Called by the particle System when the position is computed for the created particle.
  58452. * @param worldMatrix is the world matrix of the particle system
  58453. * @param positionToUpdate is the position vector to update with the result
  58454. * @param particle is the particle we are computed the position for
  58455. */
  58456. HemisphericParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  58457. var randRadius = this.radius - BABYLON.Scalar.RandomRange(0, this.radius * this.radiusRange);
  58458. var v = BABYLON.Scalar.RandomRange(0, 1.0);
  58459. var phi = BABYLON.Scalar.RandomRange(0, 2 * Math.PI);
  58460. var theta = Math.acos(2 * v - 1);
  58461. var randX = randRadius * Math.cos(phi) * Math.sin(theta);
  58462. var randY = randRadius * Math.cos(theta);
  58463. var randZ = randRadius * Math.sin(phi) * Math.sin(theta);
  58464. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(randX, Math.abs(randY), randZ, worldMatrix, positionToUpdate);
  58465. };
  58466. /**
  58467. * Clones the current emitter and returns a copy of it
  58468. * @returns the new emitter
  58469. */
  58470. HemisphericParticleEmitter.prototype.clone = function () {
  58471. var newOne = new HemisphericParticleEmitter(this.radius, this.directionRandomizer);
  58472. BABYLON.Tools.DeepCopy(this, newOne);
  58473. return newOne;
  58474. };
  58475. /**
  58476. * Called by the {BABYLON.GPUParticleSystem} to setup the update shader
  58477. * @param effect defines the update shader
  58478. */
  58479. HemisphericParticleEmitter.prototype.applyToShader = function (effect) {
  58480. effect.setFloat("radius", this.radius);
  58481. effect.setFloat("radiusRange", this.radiusRange);
  58482. effect.setFloat("directionRandomizer", this.directionRandomizer);
  58483. };
  58484. /**
  58485. * Returns a string to use to update the GPU particles update shader
  58486. * @returns a string containng the defines string
  58487. */
  58488. HemisphericParticleEmitter.prototype.getEffectDefines = function () {
  58489. return "#define HEMISPHERICEMITTER";
  58490. };
  58491. /**
  58492. * Returns the string "HemisphericParticleEmitter"
  58493. * @returns a string containing the class name
  58494. */
  58495. HemisphericParticleEmitter.prototype.getClassName = function () {
  58496. return "HemisphericParticleEmitter";
  58497. };
  58498. /**
  58499. * Serializes the particle system to a JSON object.
  58500. * @returns the JSON object
  58501. */
  58502. HemisphericParticleEmitter.prototype.serialize = function () {
  58503. var serializationObject = {};
  58504. serializationObject.type = this.getClassName();
  58505. serializationObject.radius = this.radius;
  58506. serializationObject.radiusRange = this.radiusRange;
  58507. serializationObject.directionRandomizer = this.directionRandomizer;
  58508. return serializationObject;
  58509. };
  58510. /**
  58511. * Parse properties from a JSON object
  58512. * @param serializationObject defines the JSON object
  58513. */
  58514. HemisphericParticleEmitter.prototype.parse = function (serializationObject) {
  58515. this.radius = serializationObject.radius;
  58516. this.radiusRange = serializationObject.radiusRange;
  58517. this.directionRandomizer = serializationObject.directionRandomizer;
  58518. };
  58519. return HemisphericParticleEmitter;
  58520. }());
  58521. BABYLON.HemisphericParticleEmitter = HemisphericParticleEmitter;
  58522. })(BABYLON || (BABYLON = {}));
  58523. //# sourceMappingURL=babylon.hemisphericParticleEmitter.js.map
  58524. var BABYLON;
  58525. (function (BABYLON) {
  58526. /**
  58527. * Particle emitter emitting particles from a point.
  58528. * It emits the particles randomly between 2 given directions.
  58529. */
  58530. var PointParticleEmitter = /** @class */ (function () {
  58531. /**
  58532. * Creates a new instance PointParticleEmitter
  58533. */
  58534. function PointParticleEmitter() {
  58535. /**
  58536. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  58537. */
  58538. this.direction1 = new BABYLON.Vector3(0, 1.0, 0);
  58539. /**
  58540. * Random direction of each particle after it has been emitted, between direction1 and direction2 vectors.
  58541. */
  58542. this.direction2 = new BABYLON.Vector3(0, 1.0, 0);
  58543. }
  58544. /**
  58545. * Called by the particle System when the direction is computed for the created particle.
  58546. * @param worldMatrix is the world matrix of the particle system
  58547. * @param directionToUpdate is the direction vector to update with the result
  58548. * @param particle is the particle we are computed the direction for
  58549. */
  58550. PointParticleEmitter.prototype.startDirectionFunction = function (worldMatrix, directionToUpdate, particle) {
  58551. var randX = BABYLON.Scalar.RandomRange(this.direction1.x, this.direction2.x);
  58552. var randY = BABYLON.Scalar.RandomRange(this.direction1.y, this.direction2.y);
  58553. var randZ = BABYLON.Scalar.RandomRange(this.direction1.z, this.direction2.z);
  58554. BABYLON.Vector3.TransformNormalFromFloatsToRef(randX, randY, randZ, worldMatrix, directionToUpdate);
  58555. };
  58556. /**
  58557. * Called by the particle System when the position is computed for the created particle.
  58558. * @param worldMatrix is the world matrix of the particle system
  58559. * @param positionToUpdate is the position vector to update with the result
  58560. * @param particle is the particle we are computed the position for
  58561. */
  58562. PointParticleEmitter.prototype.startPositionFunction = function (worldMatrix, positionToUpdate, particle) {
  58563. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(0, 0, 0, worldMatrix, positionToUpdate);
  58564. };
  58565. /**
  58566. * Clones the current emitter and returns a copy of it
  58567. * @returns the new emitter
  58568. */
  58569. PointParticleEmitter.prototype.clone = function () {
  58570. var newOne = new PointParticleEmitter();
  58571. BABYLON.Tools.DeepCopy(this, newOne);
  58572. return newOne;
  58573. };
  58574. /**
  58575. * Called by the GPUParticleSystem to setup the update shader
  58576. * @param effect defines the update shader
  58577. */
  58578. PointParticleEmitter.prototype.applyToShader = function (effect) {
  58579. effect.setVector3("direction1", this.direction1);
  58580. effect.setVector3("direction2", this.direction2);
  58581. };
  58582. /**
  58583. * Returns a string to use to update the GPU particles update shader
  58584. * @returns a string containng the defines string
  58585. */
  58586. PointParticleEmitter.prototype.getEffectDefines = function () {
  58587. return "#define POINTEMITTER";
  58588. };
  58589. /**
  58590. * Returns the string "PointParticleEmitter"
  58591. * @returns a string containing the class name
  58592. */
  58593. PointParticleEmitter.prototype.getClassName = function () {
  58594. return "PointParticleEmitter";
  58595. };
  58596. /**
  58597. * Serializes the particle system to a JSON object.
  58598. * @returns the JSON object
  58599. */
  58600. PointParticleEmitter.prototype.serialize = function () {
  58601. var serializationObject = {};
  58602. serializationObject.type = this.getClassName();
  58603. serializationObject.direction1 = this.direction1.asArray();
  58604. serializationObject.direction2 = this.direction2.asArray();
  58605. return serializationObject;
  58606. };
  58607. /**
  58608. * Parse properties from a JSON object
  58609. * @param serializationObject defines the JSON object
  58610. */
  58611. PointParticleEmitter.prototype.parse = function (serializationObject) {
  58612. BABYLON.Vector3.FromArrayToRef(serializationObject.direction1, 0, this.direction1);
  58613. BABYLON.Vector3.FromArrayToRef(serializationObject.direction2, 0, this.direction2);
  58614. };
  58615. return PointParticleEmitter;
  58616. }());
  58617. BABYLON.PointParticleEmitter = PointParticleEmitter;
  58618. })(BABYLON || (BABYLON = {}));
  58619. //# sourceMappingURL=babylon.pointParticleEmitter.js.map
  58620. var BABYLON;
  58621. (function (BABYLON) {
  58622. // Adds the parsers to the scene parsers.
  58623. BABYLON.AbstractScene.AddParser(BABYLON.SceneComponentConstants.NAME_PARTICLESYSTEM, function (parsedData, scene, container, rootUrl) {
  58624. var individualParser = BABYLON.AbstractScene.GetIndividualParser(BABYLON.SceneComponentConstants.NAME_PARTICLESYSTEM);
  58625. if (!individualParser) {
  58626. return;
  58627. }
  58628. // Particles Systems
  58629. if (parsedData.particleSystems !== undefined && parsedData.particleSystems !== null) {
  58630. for (var index = 0, cache = parsedData.particleSystems.length; index < cache; index++) {
  58631. var parsedParticleSystem = parsedData.particleSystems[index];
  58632. container.particleSystems.push(individualParser(parsedParticleSystem, scene, rootUrl));
  58633. }
  58634. }
  58635. });
  58636. BABYLON.AbstractScene.AddIndividualParser(BABYLON.SceneComponentConstants.NAME_PARTICLESYSTEM, function (parsedParticleSystem, scene, rootUrl) {
  58637. if (parsedParticleSystem.activeParticleCount) {
  58638. var ps = BABYLON.GPUParticleSystem.Parse(parsedParticleSystem, scene, rootUrl);
  58639. return ps;
  58640. }
  58641. else {
  58642. var ps = BABYLON.ParticleSystem.Parse(parsedParticleSystem, scene, rootUrl);
  58643. return ps;
  58644. }
  58645. });
  58646. BABYLON.Engine.prototype.createEffectForParticles = function (fragmentName, uniformsNames, samplers, defines, fallbacks, onCompiled, onError) {
  58647. if (uniformsNames === void 0) { uniformsNames = []; }
  58648. if (samplers === void 0) { samplers = []; }
  58649. if (defines === void 0) { defines = ""; }
  58650. var attributesNamesOrOptions = BABYLON.ParticleSystem._GetAttributeNamesOrOptions();
  58651. var effectCreationOption = BABYLON.ParticleSystem._GetEffectCreationOptions();
  58652. if (defines.indexOf(" BILLBOARD") === -1) {
  58653. defines += "\n#define BILLBOARD\n";
  58654. }
  58655. if (samplers.indexOf("diffuseSampler") === -1) {
  58656. samplers.push("diffuseSampler");
  58657. }
  58658. return this.createEffect({
  58659. vertex: "particles",
  58660. fragmentElement: fragmentName
  58661. }, attributesNamesOrOptions, effectCreationOption.concat(uniformsNames), samplers, defines, fallbacks, onCompiled, onError);
  58662. };
  58663. })(BABYLON || (BABYLON = {}));
  58664. //# sourceMappingURL=babylon.particleSystemComponent.js.map
  58665. var BABYLON;
  58666. (function (BABYLON) {
  58667. var ShaderMaterial = /** @class */ (function (_super) {
  58668. __extends(ShaderMaterial, _super);
  58669. function ShaderMaterial(name, scene, shaderPath, options) {
  58670. var _this = _super.call(this, name, scene) || this;
  58671. _this._textures = {};
  58672. _this._textureArrays = {};
  58673. _this._floats = {};
  58674. _this._ints = {};
  58675. _this._floatsArrays = {};
  58676. _this._colors3 = {};
  58677. _this._colors3Arrays = {};
  58678. _this._colors4 = {};
  58679. _this._vectors2 = {};
  58680. _this._vectors3 = {};
  58681. _this._vectors4 = {};
  58682. _this._matrices = {};
  58683. _this._matrices3x3 = {};
  58684. _this._matrices2x2 = {};
  58685. _this._vectors2Arrays = {};
  58686. _this._vectors3Arrays = {};
  58687. _this._cachedWorldViewMatrix = new BABYLON.Matrix();
  58688. _this._shaderPath = shaderPath;
  58689. options.needAlphaBlending = options.needAlphaBlending || false;
  58690. options.needAlphaTesting = options.needAlphaTesting || false;
  58691. options.attributes = options.attributes || ["position", "normal", "uv"];
  58692. options.uniforms = options.uniforms || ["worldViewProjection"];
  58693. options.uniformBuffers = options.uniformBuffers || [];
  58694. options.samplers = options.samplers || [];
  58695. options.defines = options.defines || [];
  58696. _this._options = options;
  58697. return _this;
  58698. }
  58699. ShaderMaterial.prototype.getClassName = function () {
  58700. return "ShaderMaterial";
  58701. };
  58702. ShaderMaterial.prototype.needAlphaBlending = function () {
  58703. return this._options.needAlphaBlending;
  58704. };
  58705. ShaderMaterial.prototype.needAlphaTesting = function () {
  58706. return this._options.needAlphaTesting;
  58707. };
  58708. ShaderMaterial.prototype._checkUniform = function (uniformName) {
  58709. if (this._options.uniforms.indexOf(uniformName) === -1) {
  58710. this._options.uniforms.push(uniformName);
  58711. }
  58712. };
  58713. ShaderMaterial.prototype.setTexture = function (name, texture) {
  58714. if (this._options.samplers.indexOf(name) === -1) {
  58715. this._options.samplers.push(name);
  58716. }
  58717. this._textures[name] = texture;
  58718. return this;
  58719. };
  58720. ShaderMaterial.prototype.setTextureArray = function (name, textures) {
  58721. if (this._options.samplers.indexOf(name) === -1) {
  58722. this._options.samplers.push(name);
  58723. }
  58724. this._checkUniform(name);
  58725. this._textureArrays[name] = textures;
  58726. return this;
  58727. };
  58728. ShaderMaterial.prototype.setFloat = function (name, value) {
  58729. this._checkUniform(name);
  58730. this._floats[name] = value;
  58731. return this;
  58732. };
  58733. ShaderMaterial.prototype.setInt = function (name, value) {
  58734. this._checkUniform(name);
  58735. this._ints[name] = value;
  58736. return this;
  58737. };
  58738. ShaderMaterial.prototype.setFloats = function (name, value) {
  58739. this._checkUniform(name);
  58740. this._floatsArrays[name] = value;
  58741. return this;
  58742. };
  58743. ShaderMaterial.prototype.setColor3 = function (name, value) {
  58744. this._checkUniform(name);
  58745. this._colors3[name] = value;
  58746. return this;
  58747. };
  58748. ShaderMaterial.prototype.setColor3Array = function (name, value) {
  58749. this._checkUniform(name);
  58750. this._colors3Arrays[name] = value.reduce(function (arr, color) {
  58751. color.toArray(arr, arr.length);
  58752. return arr;
  58753. }, []);
  58754. return this;
  58755. };
  58756. ShaderMaterial.prototype.setColor4 = function (name, value) {
  58757. this._checkUniform(name);
  58758. this._colors4[name] = value;
  58759. return this;
  58760. };
  58761. ShaderMaterial.prototype.setVector2 = function (name, value) {
  58762. this._checkUniform(name);
  58763. this._vectors2[name] = value;
  58764. return this;
  58765. };
  58766. ShaderMaterial.prototype.setVector3 = function (name, value) {
  58767. this._checkUniform(name);
  58768. this._vectors3[name] = value;
  58769. return this;
  58770. };
  58771. ShaderMaterial.prototype.setVector4 = function (name, value) {
  58772. this._checkUniform(name);
  58773. this._vectors4[name] = value;
  58774. return this;
  58775. };
  58776. ShaderMaterial.prototype.setMatrix = function (name, value) {
  58777. this._checkUniform(name);
  58778. this._matrices[name] = value;
  58779. return this;
  58780. };
  58781. ShaderMaterial.prototype.setMatrix3x3 = function (name, value) {
  58782. this._checkUniform(name);
  58783. this._matrices3x3[name] = value;
  58784. return this;
  58785. };
  58786. ShaderMaterial.prototype.setMatrix2x2 = function (name, value) {
  58787. this._checkUniform(name);
  58788. this._matrices2x2[name] = value;
  58789. return this;
  58790. };
  58791. ShaderMaterial.prototype.setArray2 = function (name, value) {
  58792. this._checkUniform(name);
  58793. this._vectors2Arrays[name] = value;
  58794. return this;
  58795. };
  58796. ShaderMaterial.prototype.setArray3 = function (name, value) {
  58797. this._checkUniform(name);
  58798. this._vectors3Arrays[name] = value;
  58799. return this;
  58800. };
  58801. ShaderMaterial.prototype._checkCache = function (scene, mesh, useInstances) {
  58802. if (!mesh) {
  58803. return true;
  58804. }
  58805. if (this._effect && (this._effect.defines.indexOf("#define INSTANCES") !== -1) !== useInstances) {
  58806. return false;
  58807. }
  58808. return false;
  58809. };
  58810. ShaderMaterial.prototype.isReady = function (mesh, useInstances) {
  58811. var scene = this.getScene();
  58812. var engine = scene.getEngine();
  58813. if (!this.checkReadyOnEveryCall) {
  58814. if (this._renderId === scene.getRenderId()) {
  58815. if (this._checkCache(scene, mesh, useInstances)) {
  58816. return true;
  58817. }
  58818. }
  58819. }
  58820. // Instances
  58821. var defines = [];
  58822. var attribs = [];
  58823. var fallbacks = new BABYLON.EffectFallbacks();
  58824. if (useInstances) {
  58825. defines.push("#define INSTANCES");
  58826. }
  58827. for (var index = 0; index < this._options.defines.length; index++) {
  58828. defines.push(this._options.defines[index]);
  58829. }
  58830. for (var index = 0; index < this._options.attributes.length; index++) {
  58831. attribs.push(this._options.attributes[index]);
  58832. }
  58833. if (mesh && mesh.isVerticesDataPresent(BABYLON.VertexBuffer.ColorKind)) {
  58834. attribs.push(BABYLON.VertexBuffer.ColorKind);
  58835. defines.push("#define VERTEXCOLOR");
  58836. }
  58837. // Bones
  58838. if (mesh && mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  58839. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  58840. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  58841. if (mesh.numBoneInfluencers > 4) {
  58842. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  58843. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  58844. }
  58845. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  58846. defines.push("#define BonesPerMesh " + (mesh.skeleton.bones.length + 1));
  58847. fallbacks.addCPUSkinningFallback(0, mesh);
  58848. if (this._options.uniforms.indexOf("mBones") === -1) {
  58849. this._options.uniforms.push("mBones");
  58850. }
  58851. }
  58852. else {
  58853. defines.push("#define NUM_BONE_INFLUENCERS 0");
  58854. }
  58855. // Textures
  58856. for (var name in this._textures) {
  58857. if (!this._textures[name].isReady()) {
  58858. return false;
  58859. }
  58860. }
  58861. // Alpha test
  58862. if (mesh && this._shouldTurnAlphaTestOn(mesh)) {
  58863. defines.push("#define ALPHATEST");
  58864. }
  58865. var previousEffect = this._effect;
  58866. var join = defines.join("\n");
  58867. this._effect = engine.createEffect(this._shaderPath, {
  58868. attributes: attribs,
  58869. uniformsNames: this._options.uniforms,
  58870. uniformBuffersNames: this._options.uniformBuffers,
  58871. samplers: this._options.samplers,
  58872. defines: join,
  58873. fallbacks: fallbacks,
  58874. onCompiled: this.onCompiled,
  58875. onError: this.onError
  58876. }, engine);
  58877. if (!this._effect.isReady()) {
  58878. return false;
  58879. }
  58880. if (previousEffect !== this._effect) {
  58881. scene.resetCachedMaterial();
  58882. }
  58883. this._renderId = scene.getRenderId();
  58884. return true;
  58885. };
  58886. ShaderMaterial.prototype.bindOnlyWorldMatrix = function (world) {
  58887. var scene = this.getScene();
  58888. if (!this._effect) {
  58889. return;
  58890. }
  58891. if (this._options.uniforms.indexOf("world") !== -1) {
  58892. this._effect.setMatrix("world", world);
  58893. }
  58894. if (this._options.uniforms.indexOf("worldView") !== -1) {
  58895. world.multiplyToRef(scene.getViewMatrix(), this._cachedWorldViewMatrix);
  58896. this._effect.setMatrix("worldView", this._cachedWorldViewMatrix);
  58897. }
  58898. if (this._options.uniforms.indexOf("worldViewProjection") !== -1) {
  58899. this._effect.setMatrix("worldViewProjection", world.multiply(scene.getTransformMatrix()));
  58900. }
  58901. };
  58902. ShaderMaterial.prototype.bind = function (world, mesh) {
  58903. // Std values
  58904. this.bindOnlyWorldMatrix(world);
  58905. if (this._effect && this.getScene().getCachedMaterial() !== this) {
  58906. if (this._options.uniforms.indexOf("view") !== -1) {
  58907. this._effect.setMatrix("view", this.getScene().getViewMatrix());
  58908. }
  58909. if (this._options.uniforms.indexOf("projection") !== -1) {
  58910. this._effect.setMatrix("projection", this.getScene().getProjectionMatrix());
  58911. }
  58912. if (this._options.uniforms.indexOf("viewProjection") !== -1) {
  58913. this._effect.setMatrix("viewProjection", this.getScene().getTransformMatrix());
  58914. }
  58915. // Bones
  58916. BABYLON.MaterialHelper.BindBonesParameters(mesh, this._effect);
  58917. var name;
  58918. // Texture
  58919. for (name in this._textures) {
  58920. this._effect.setTexture(name, this._textures[name]);
  58921. }
  58922. // Texture arrays
  58923. for (name in this._textureArrays) {
  58924. this._effect.setTextureArray(name, this._textureArrays[name]);
  58925. }
  58926. // Int
  58927. for (name in this._ints) {
  58928. this._effect.setInt(name, this._ints[name]);
  58929. }
  58930. // Float
  58931. for (name in this._floats) {
  58932. this._effect.setFloat(name, this._floats[name]);
  58933. }
  58934. // Floats
  58935. for (name in this._floatsArrays) {
  58936. this._effect.setArray(name, this._floatsArrays[name]);
  58937. }
  58938. // Color3
  58939. for (name in this._colors3) {
  58940. this._effect.setColor3(name, this._colors3[name]);
  58941. }
  58942. for (name in this._colors3Arrays) {
  58943. this._effect.setArray3(name, this._colors3Arrays[name]);
  58944. }
  58945. // Color4
  58946. for (name in this._colors4) {
  58947. var color = this._colors4[name];
  58948. this._effect.setFloat4(name, color.r, color.g, color.b, color.a);
  58949. }
  58950. // Vector2
  58951. for (name in this._vectors2) {
  58952. this._effect.setVector2(name, this._vectors2[name]);
  58953. }
  58954. // Vector3
  58955. for (name in this._vectors3) {
  58956. this._effect.setVector3(name, this._vectors3[name]);
  58957. }
  58958. // Vector4
  58959. for (name in this._vectors4) {
  58960. this._effect.setVector4(name, this._vectors4[name]);
  58961. }
  58962. // Matrix
  58963. for (name in this._matrices) {
  58964. this._effect.setMatrix(name, this._matrices[name]);
  58965. }
  58966. // Matrix 3x3
  58967. for (name in this._matrices3x3) {
  58968. this._effect.setMatrix3x3(name, this._matrices3x3[name]);
  58969. }
  58970. // Matrix 2x2
  58971. for (name in this._matrices2x2) {
  58972. this._effect.setMatrix2x2(name, this._matrices2x2[name]);
  58973. }
  58974. // Vector2Array
  58975. for (name in this._vectors2Arrays) {
  58976. this._effect.setArray2(name, this._vectors2Arrays[name]);
  58977. }
  58978. // Vector3Array
  58979. for (name in this._vectors3Arrays) {
  58980. this._effect.setArray3(name, this._vectors3Arrays[name]);
  58981. }
  58982. }
  58983. this._afterBind(mesh);
  58984. };
  58985. ShaderMaterial.prototype.getActiveTextures = function () {
  58986. var activeTextures = _super.prototype.getActiveTextures.call(this);
  58987. for (var name in this._textures) {
  58988. activeTextures.push(this._textures[name]);
  58989. }
  58990. for (var name in this._textureArrays) {
  58991. var array = this._textureArrays[name];
  58992. for (var index = 0; index < array.length; index++) {
  58993. activeTextures.push(array[index]);
  58994. }
  58995. }
  58996. return activeTextures;
  58997. };
  58998. ShaderMaterial.prototype.hasTexture = function (texture) {
  58999. if (_super.prototype.hasTexture.call(this, texture)) {
  59000. return true;
  59001. }
  59002. for (var name in this._textures) {
  59003. if (this._textures[name] === texture) {
  59004. return true;
  59005. }
  59006. }
  59007. for (var name in this._textureArrays) {
  59008. var array = this._textureArrays[name];
  59009. for (var index = 0; index < array.length; index++) {
  59010. if (array[index] === texture) {
  59011. return true;
  59012. }
  59013. }
  59014. }
  59015. return false;
  59016. };
  59017. ShaderMaterial.prototype.clone = function (name) {
  59018. var newShaderMaterial = new ShaderMaterial(name, this.getScene(), this._shaderPath, this._options);
  59019. return newShaderMaterial;
  59020. };
  59021. ShaderMaterial.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  59022. if (forceDisposeTextures) {
  59023. var name;
  59024. for (name in this._textures) {
  59025. this._textures[name].dispose();
  59026. }
  59027. for (name in this._textureArrays) {
  59028. var array = this._textureArrays[name];
  59029. for (var index = 0; index < array.length; index++) {
  59030. array[index].dispose();
  59031. }
  59032. }
  59033. }
  59034. this._textures = {};
  59035. _super.prototype.dispose.call(this, forceDisposeEffect, forceDisposeTextures);
  59036. };
  59037. ShaderMaterial.prototype.serialize = function () {
  59038. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  59039. serializationObject.customType = "BABYLON.ShaderMaterial";
  59040. serializationObject.options = this._options;
  59041. serializationObject.shaderPath = this._shaderPath;
  59042. var name;
  59043. // Texture
  59044. serializationObject.textures = {};
  59045. for (name in this._textures) {
  59046. serializationObject.textures[name] = this._textures[name].serialize();
  59047. }
  59048. // Texture arrays
  59049. serializationObject.textureArrays = {};
  59050. for (name in this._textureArrays) {
  59051. serializationObject.textureArrays[name] = [];
  59052. var array = this._textureArrays[name];
  59053. for (var index = 0; index < array.length; index++) {
  59054. serializationObject.textureArrays[name].push(array[index].serialize());
  59055. }
  59056. }
  59057. // Float
  59058. serializationObject.floats = {};
  59059. for (name in this._floats) {
  59060. serializationObject.floats[name] = this._floats[name];
  59061. }
  59062. // Float s
  59063. serializationObject.FloatArrays = {};
  59064. for (name in this._floatsArrays) {
  59065. serializationObject.FloatArrays[name] = this._floatsArrays[name];
  59066. }
  59067. // Color3
  59068. serializationObject.colors3 = {};
  59069. for (name in this._colors3) {
  59070. serializationObject.colors3[name] = this._colors3[name].asArray();
  59071. }
  59072. // Color3 array
  59073. serializationObject.colors3Arrays = {};
  59074. for (name in this._colors3Arrays) {
  59075. serializationObject.colors3Arrays[name] = this._colors3Arrays[name];
  59076. }
  59077. // Color4
  59078. serializationObject.colors4 = {};
  59079. for (name in this._colors4) {
  59080. serializationObject.colors4[name] = this._colors4[name].asArray();
  59081. }
  59082. // Vector2
  59083. serializationObject.vectors2 = {};
  59084. for (name in this._vectors2) {
  59085. serializationObject.vectors2[name] = this._vectors2[name].asArray();
  59086. }
  59087. // Vector3
  59088. serializationObject.vectors3 = {};
  59089. for (name in this._vectors3) {
  59090. serializationObject.vectors3[name] = this._vectors3[name].asArray();
  59091. }
  59092. // Vector4
  59093. serializationObject.vectors4 = {};
  59094. for (name in this._vectors4) {
  59095. serializationObject.vectors4[name] = this._vectors4[name].asArray();
  59096. }
  59097. // Matrix
  59098. serializationObject.matrices = {};
  59099. for (name in this._matrices) {
  59100. serializationObject.matrices[name] = this._matrices[name].asArray();
  59101. }
  59102. // Matrix 3x3
  59103. serializationObject.matrices3x3 = {};
  59104. for (name in this._matrices3x3) {
  59105. serializationObject.matrices3x3[name] = this._matrices3x3[name];
  59106. }
  59107. // Matrix 2x2
  59108. serializationObject.matrices2x2 = {};
  59109. for (name in this._matrices2x2) {
  59110. serializationObject.matrices2x2[name] = this._matrices2x2[name];
  59111. }
  59112. // Vector2Array
  59113. serializationObject.vectors2Arrays = {};
  59114. for (name in this._vectors2Arrays) {
  59115. serializationObject.vectors2Arrays[name] = this._vectors2Arrays[name];
  59116. }
  59117. // Vector3Array
  59118. serializationObject.vectors3Arrays = {};
  59119. for (name in this._vectors3Arrays) {
  59120. serializationObject.vectors3Arrays[name] = this._vectors3Arrays[name];
  59121. }
  59122. return serializationObject;
  59123. };
  59124. ShaderMaterial.Parse = function (source, scene, rootUrl) {
  59125. var material = BABYLON.SerializationHelper.Parse(function () { return new ShaderMaterial(source.name, scene, source.shaderPath, source.options); }, source, scene, rootUrl);
  59126. var name;
  59127. // Texture
  59128. for (name in source.textures) {
  59129. material.setTexture(name, BABYLON.Texture.Parse(source.textures[name], scene, rootUrl));
  59130. }
  59131. // Texture arrays
  59132. for (name in source.textureArrays) {
  59133. var array = source.textureArrays[name];
  59134. var textureArray = new Array();
  59135. for (var index = 0; index < array.length; index++) {
  59136. textureArray.push(BABYLON.Texture.Parse(array[index], scene, rootUrl));
  59137. }
  59138. material.setTextureArray(name, textureArray);
  59139. }
  59140. // Float
  59141. for (name in source.floats) {
  59142. material.setFloat(name, source.floats[name]);
  59143. }
  59144. // Float s
  59145. for (name in source.floatsArrays) {
  59146. material.setFloats(name, source.floatsArrays[name]);
  59147. }
  59148. // Color3
  59149. for (name in source.colors3) {
  59150. material.setColor3(name, BABYLON.Color3.FromArray(source.colors3[name]));
  59151. }
  59152. // Color3 arrays
  59153. for (name in source.colors3Arrays) {
  59154. var colors = source.colors3Arrays[name].reduce(function (arr, num, i) {
  59155. if (i % 3 === 0) {
  59156. arr.push([num]);
  59157. }
  59158. else {
  59159. arr[arr.length - 1].push(num);
  59160. }
  59161. return arr;
  59162. }, []).map(function (color) { return BABYLON.Color3.FromArray(color); });
  59163. material.setColor3Array(name, colors);
  59164. }
  59165. // Color4
  59166. for (name in source.colors4) {
  59167. material.setColor4(name, BABYLON.Color4.FromArray(source.colors4[name]));
  59168. }
  59169. // Vector2
  59170. for (name in source.vectors2) {
  59171. material.setVector2(name, BABYLON.Vector2.FromArray(source.vectors2[name]));
  59172. }
  59173. // Vector3
  59174. for (name in source.vectors3) {
  59175. material.setVector3(name, BABYLON.Vector3.FromArray(source.vectors3[name]));
  59176. }
  59177. // Vector4
  59178. for (name in source.vectors4) {
  59179. material.setVector4(name, BABYLON.Vector4.FromArray(source.vectors4[name]));
  59180. }
  59181. // Matrix
  59182. for (name in source.matrices) {
  59183. material.setMatrix(name, BABYLON.Matrix.FromArray(source.matrices[name]));
  59184. }
  59185. // Matrix 3x3
  59186. for (name in source.matrices3x3) {
  59187. material.setMatrix3x3(name, source.matrices3x3[name]);
  59188. }
  59189. // Matrix 2x2
  59190. for (name in source.matrices2x2) {
  59191. material.setMatrix2x2(name, source.matrices2x2[name]);
  59192. }
  59193. // Vector2Array
  59194. for (name in source.vectors2Arrays) {
  59195. material.setArray2(name, source.vectors2Arrays[name]);
  59196. }
  59197. // Vector3Array
  59198. for (name in source.vectors3Arrays) {
  59199. material.setArray3(name, source.vectors3Arrays[name]);
  59200. }
  59201. return material;
  59202. };
  59203. return ShaderMaterial;
  59204. }(BABYLON.Material));
  59205. BABYLON.ShaderMaterial = ShaderMaterial;
  59206. })(BABYLON || (BABYLON = {}));
  59207. //# sourceMappingURL=babylon.shaderMaterial.js.map
  59208. var BABYLON;
  59209. (function (BABYLON) {
  59210. var GroundMesh = /** @class */ (function (_super) {
  59211. __extends(GroundMesh, _super);
  59212. function GroundMesh(name, scene) {
  59213. var _this = _super.call(this, name, scene) || this;
  59214. _this.generateOctree = false;
  59215. return _this;
  59216. }
  59217. GroundMesh.prototype.getClassName = function () {
  59218. return "GroundMesh";
  59219. };
  59220. Object.defineProperty(GroundMesh.prototype, "subdivisions", {
  59221. get: function () {
  59222. return Math.min(this._subdivisionsX, this._subdivisionsY);
  59223. },
  59224. enumerable: true,
  59225. configurable: true
  59226. });
  59227. Object.defineProperty(GroundMesh.prototype, "subdivisionsX", {
  59228. get: function () {
  59229. return this._subdivisionsX;
  59230. },
  59231. enumerable: true,
  59232. configurable: true
  59233. });
  59234. Object.defineProperty(GroundMesh.prototype, "subdivisionsY", {
  59235. get: function () {
  59236. return this._subdivisionsY;
  59237. },
  59238. enumerable: true,
  59239. configurable: true
  59240. });
  59241. GroundMesh.prototype.optimize = function (chunksCount, octreeBlocksSize) {
  59242. if (octreeBlocksSize === void 0) { octreeBlocksSize = 32; }
  59243. this._subdivisionsX = chunksCount;
  59244. this._subdivisionsY = chunksCount;
  59245. this.subdivide(chunksCount);
  59246. // Call the octree system optimization if it is defined.
  59247. var thisAsAny = this;
  59248. if (thisAsAny.createOrUpdateSubmeshesOctree) {
  59249. thisAsAny.createOrUpdateSubmeshesOctree(octreeBlocksSize);
  59250. }
  59251. };
  59252. /**
  59253. * Returns a height (y) value in the Worl system :
  59254. * the ground altitude at the coordinates (x, z) expressed in the World system.
  59255. * Returns the ground y position if (x, z) are outside the ground surface.
  59256. */
  59257. GroundMesh.prototype.getHeightAtCoordinates = function (x, z) {
  59258. var world = this.getWorldMatrix();
  59259. var invMat = BABYLON.Tmp.Matrix[5];
  59260. world.invertToRef(invMat);
  59261. var tmpVect = BABYLON.Tmp.Vector3[8];
  59262. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(x, 0.0, z, invMat, tmpVect); // transform x,z in the mesh local space
  59263. x = tmpVect.x;
  59264. z = tmpVect.z;
  59265. if (x < this._minX || x > this._maxX || z < this._minZ || z > this._maxZ) {
  59266. return this.position.y;
  59267. }
  59268. if (!this._heightQuads || this._heightQuads.length == 0) {
  59269. this._initHeightQuads();
  59270. this._computeHeightQuads();
  59271. }
  59272. var facet = this._getFacetAt(x, z);
  59273. var y = -(facet.x * x + facet.z * z + facet.w) / facet.y;
  59274. // return y in the World system
  59275. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(0.0, y, 0.0, world, tmpVect);
  59276. return tmpVect.y;
  59277. };
  59278. /**
  59279. * Returns a normalized vector (Vector3) orthogonal to the ground
  59280. * at the ground coordinates (x, z) expressed in the World system.
  59281. * Returns Vector3(0.0, 1.0, 0.0) if (x, z) are outside the ground surface.
  59282. */
  59283. GroundMesh.prototype.getNormalAtCoordinates = function (x, z) {
  59284. var normal = new BABYLON.Vector3(0.0, 1.0, 0.0);
  59285. this.getNormalAtCoordinatesToRef(x, z, normal);
  59286. return normal;
  59287. };
  59288. /**
  59289. * Updates the Vector3 passed a reference with a normalized vector orthogonal to the ground
  59290. * at the ground coordinates (x, z) expressed in the World system.
  59291. * Doesn't uptade the reference Vector3 if (x, z) are outside the ground surface.
  59292. * Returns the GroundMesh.
  59293. */
  59294. GroundMesh.prototype.getNormalAtCoordinatesToRef = function (x, z, ref) {
  59295. var world = this.getWorldMatrix();
  59296. var tmpMat = BABYLON.Tmp.Matrix[5];
  59297. world.invertToRef(tmpMat);
  59298. var tmpVect = BABYLON.Tmp.Vector3[8];
  59299. BABYLON.Vector3.TransformCoordinatesFromFloatsToRef(x, 0.0, z, tmpMat, tmpVect); // transform x,z in the mesh local space
  59300. x = tmpVect.x;
  59301. z = tmpVect.z;
  59302. if (x < this._minX || x > this._maxX || z < this._minZ || z > this._maxZ) {
  59303. return this;
  59304. }
  59305. if (!this._heightQuads || this._heightQuads.length == 0) {
  59306. this._initHeightQuads();
  59307. this._computeHeightQuads();
  59308. }
  59309. var facet = this._getFacetAt(x, z);
  59310. BABYLON.Vector3.TransformNormalFromFloatsToRef(facet.x, facet.y, facet.z, world, ref);
  59311. return this;
  59312. };
  59313. /**
  59314. * Force the heights to be recomputed for getHeightAtCoordinates() or getNormalAtCoordinates()
  59315. * if the ground has been updated.
  59316. * This can be used in the render loop.
  59317. * Returns the GroundMesh.
  59318. */
  59319. GroundMesh.prototype.updateCoordinateHeights = function () {
  59320. if (!this._heightQuads || this._heightQuads.length == 0) {
  59321. this._initHeightQuads();
  59322. }
  59323. this._computeHeightQuads();
  59324. return this;
  59325. };
  59326. // Returns the element "facet" from the heightQuads array relative to (x, z) local coordinates
  59327. GroundMesh.prototype._getFacetAt = function (x, z) {
  59328. // retrieve col and row from x, z coordinates in the ground local system
  59329. var col = Math.floor((x + this._maxX) * this._subdivisionsX / this._width);
  59330. var row = Math.floor(-(z + this._maxZ) * this._subdivisionsY / this._height + this._subdivisionsY);
  59331. var quad = this._heightQuads[row * this._subdivisionsX + col];
  59332. var facet;
  59333. if (z < quad.slope.x * x + quad.slope.y) {
  59334. facet = quad.facet1;
  59335. }
  59336. else {
  59337. facet = quad.facet2;
  59338. }
  59339. return facet;
  59340. };
  59341. // Creates and populates the heightMap array with "facet" elements :
  59342. // a quad is two triangular facets separated by a slope, so a "facet" element is 1 slope + 2 facets
  59343. // slope : Vector2(c, h) = 2D diagonal line equation setting appart two triangular facets in a quad : z = cx + h
  59344. // facet1 : Vector4(a, b, c, d) = first facet 3D plane equation : ax + by + cz + d = 0
  59345. // facet2 : Vector4(a, b, c, d) = second facet 3D plane equation : ax + by + cz + d = 0
  59346. // Returns the GroundMesh.
  59347. GroundMesh.prototype._initHeightQuads = function () {
  59348. var subdivisionsX = this._subdivisionsX;
  59349. var subdivisionsY = this._subdivisionsY;
  59350. this._heightQuads = new Array();
  59351. for (var row = 0; row < subdivisionsY; row++) {
  59352. for (var col = 0; col < subdivisionsX; col++) {
  59353. var quad = { slope: BABYLON.Vector2.Zero(), facet1: new BABYLON.Vector4(0.0, 0.0, 0.0, 0.0), facet2: new BABYLON.Vector4(0.0, 0.0, 0.0, 0.0) };
  59354. this._heightQuads[row * subdivisionsX + col] = quad;
  59355. }
  59356. }
  59357. return this;
  59358. };
  59359. // Compute each quad element values and update the the heightMap array :
  59360. // slope : Vector2(c, h) = 2D diagonal line equation setting appart two triangular facets in a quad : z = cx + h
  59361. // facet1 : Vector4(a, b, c, d) = first facet 3D plane equation : ax + by + cz + d = 0
  59362. // facet2 : Vector4(a, b, c, d) = second facet 3D plane equation : ax + by + cz + d = 0
  59363. // Returns the GroundMesh.
  59364. GroundMesh.prototype._computeHeightQuads = function () {
  59365. var positions = this.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  59366. if (!positions) {
  59367. return this;
  59368. }
  59369. var v1 = BABYLON.Tmp.Vector3[3];
  59370. var v2 = BABYLON.Tmp.Vector3[2];
  59371. var v3 = BABYLON.Tmp.Vector3[1];
  59372. var v4 = BABYLON.Tmp.Vector3[0];
  59373. var v1v2 = BABYLON.Tmp.Vector3[4];
  59374. var v1v3 = BABYLON.Tmp.Vector3[5];
  59375. var v1v4 = BABYLON.Tmp.Vector3[6];
  59376. var norm1 = BABYLON.Tmp.Vector3[7];
  59377. var norm2 = BABYLON.Tmp.Vector3[8];
  59378. var i = 0;
  59379. var j = 0;
  59380. var k = 0;
  59381. var cd = 0; // 2D slope coefficient : z = cd * x + h
  59382. var h = 0;
  59383. var d1 = 0; // facet plane equation : ax + by + cz + d = 0
  59384. var d2 = 0;
  59385. var subdivisionsX = this._subdivisionsX;
  59386. var subdivisionsY = this._subdivisionsY;
  59387. for (var row = 0; row < subdivisionsY; row++) {
  59388. for (var col = 0; col < subdivisionsX; col++) {
  59389. i = col * 3;
  59390. j = row * (subdivisionsX + 1) * 3;
  59391. k = (row + 1) * (subdivisionsX + 1) * 3;
  59392. v1.x = positions[j + i];
  59393. v1.y = positions[j + i + 1];
  59394. v1.z = positions[j + i + 2];
  59395. v2.x = positions[j + i + 3];
  59396. v2.y = positions[j + i + 4];
  59397. v2.z = positions[j + i + 5];
  59398. v3.x = positions[k + i];
  59399. v3.y = positions[k + i + 1];
  59400. v3.z = positions[k + i + 2];
  59401. v4.x = positions[k + i + 3];
  59402. v4.y = positions[k + i + 4];
  59403. v4.z = positions[k + i + 5];
  59404. // 2D slope V1V4
  59405. cd = (v4.z - v1.z) / (v4.x - v1.x);
  59406. h = v1.z - cd * v1.x; // v1 belongs to the slope
  59407. // facet equations :
  59408. // we compute each facet normal vector
  59409. // the equation of the facet plane is : norm.x * x + norm.y * y + norm.z * z + d = 0
  59410. // we compute the value d by applying the equation to v1 which belongs to the plane
  59411. // then we store the facet equation in a Vector4
  59412. v2.subtractToRef(v1, v1v2);
  59413. v3.subtractToRef(v1, v1v3);
  59414. v4.subtractToRef(v1, v1v4);
  59415. BABYLON.Vector3.CrossToRef(v1v4, v1v3, norm1); // caution : CrossToRef uses the Tmp class
  59416. BABYLON.Vector3.CrossToRef(v1v2, v1v4, norm2);
  59417. norm1.normalize();
  59418. norm2.normalize();
  59419. d1 = -(norm1.x * v1.x + norm1.y * v1.y + norm1.z * v1.z);
  59420. d2 = -(norm2.x * v2.x + norm2.y * v2.y + norm2.z * v2.z);
  59421. var quad = this._heightQuads[row * subdivisionsX + col];
  59422. quad.slope.copyFromFloats(cd, h);
  59423. quad.facet1.copyFromFloats(norm1.x, norm1.y, norm1.z, d1);
  59424. quad.facet2.copyFromFloats(norm2.x, norm2.y, norm2.z, d2);
  59425. }
  59426. }
  59427. return this;
  59428. };
  59429. GroundMesh.prototype.serialize = function (serializationObject) {
  59430. _super.prototype.serialize.call(this, serializationObject);
  59431. serializationObject.subdivisionsX = this._subdivisionsX;
  59432. serializationObject.subdivisionsY = this._subdivisionsY;
  59433. serializationObject.minX = this._minX;
  59434. serializationObject.maxX = this._maxX;
  59435. serializationObject.minZ = this._minZ;
  59436. serializationObject.maxZ = this._maxZ;
  59437. serializationObject.width = this._width;
  59438. serializationObject.height = this._height;
  59439. };
  59440. GroundMesh.Parse = function (parsedMesh, scene) {
  59441. var result = new GroundMesh(parsedMesh.name, scene);
  59442. result._subdivisionsX = parsedMesh.subdivisionsX || 1;
  59443. result._subdivisionsY = parsedMesh.subdivisionsY || 1;
  59444. result._minX = parsedMesh.minX;
  59445. result._maxX = parsedMesh.maxX;
  59446. result._minZ = parsedMesh.minZ;
  59447. result._maxZ = parsedMesh.maxZ;
  59448. result._width = parsedMesh.width;
  59449. result._height = parsedMesh.height;
  59450. return result;
  59451. };
  59452. return GroundMesh;
  59453. }(BABYLON.Mesh));
  59454. BABYLON.GroundMesh = GroundMesh;
  59455. })(BABYLON || (BABYLON = {}));
  59456. //# sourceMappingURL=babylon.groundMesh.js.map
  59457. var BABYLON;
  59458. (function (BABYLON) {
  59459. /**
  59460. * Creates an instance based on a source mesh.
  59461. */
  59462. var InstancedMesh = /** @class */ (function (_super) {
  59463. __extends(InstancedMesh, _super);
  59464. function InstancedMesh(name, source) {
  59465. var _this = _super.call(this, name, source.getScene()) || this;
  59466. source.instances.push(_this);
  59467. _this._sourceMesh = source;
  59468. _this.position.copyFrom(source.position);
  59469. _this.rotation.copyFrom(source.rotation);
  59470. _this.scaling.copyFrom(source.scaling);
  59471. if (source.rotationQuaternion) {
  59472. _this.rotationQuaternion = source.rotationQuaternion.clone();
  59473. }
  59474. _this.infiniteDistance = source.infiniteDistance;
  59475. _this.setPivotMatrix(source.getPivotMatrix());
  59476. _this.refreshBoundingInfo();
  59477. _this._syncSubMeshes();
  59478. return _this;
  59479. }
  59480. /**
  59481. * Returns the string "InstancedMesh".
  59482. */
  59483. InstancedMesh.prototype.getClassName = function () {
  59484. return "InstancedMesh";
  59485. };
  59486. Object.defineProperty(InstancedMesh.prototype, "receiveShadows", {
  59487. // Methods
  59488. get: function () {
  59489. return this._sourceMesh.receiveShadows;
  59490. },
  59491. enumerable: true,
  59492. configurable: true
  59493. });
  59494. Object.defineProperty(InstancedMesh.prototype, "material", {
  59495. get: function () {
  59496. return this._sourceMesh.material;
  59497. },
  59498. enumerable: true,
  59499. configurable: true
  59500. });
  59501. Object.defineProperty(InstancedMesh.prototype, "visibility", {
  59502. get: function () {
  59503. return this._sourceMesh.visibility;
  59504. },
  59505. enumerable: true,
  59506. configurable: true
  59507. });
  59508. Object.defineProperty(InstancedMesh.prototype, "skeleton", {
  59509. get: function () {
  59510. return this._sourceMesh.skeleton;
  59511. },
  59512. enumerable: true,
  59513. configurable: true
  59514. });
  59515. Object.defineProperty(InstancedMesh.prototype, "renderingGroupId", {
  59516. get: function () {
  59517. return this._sourceMesh.renderingGroupId;
  59518. },
  59519. set: function (value) {
  59520. if (!this._sourceMesh || value === this._sourceMesh.renderingGroupId) {
  59521. return;
  59522. }
  59523. //no-op with warning
  59524. BABYLON.Tools.Warn("Note - setting renderingGroupId of an instanced mesh has no effect on the scene");
  59525. },
  59526. enumerable: true,
  59527. configurable: true
  59528. });
  59529. /**
  59530. * Returns the total number of vertices (integer).
  59531. */
  59532. InstancedMesh.prototype.getTotalVertices = function () {
  59533. return this._sourceMesh.getTotalVertices();
  59534. };
  59535. Object.defineProperty(InstancedMesh.prototype, "sourceMesh", {
  59536. get: function () {
  59537. return this._sourceMesh;
  59538. },
  59539. enumerable: true,
  59540. configurable: true
  59541. });
  59542. /**
  59543. * Is this node ready to be used/rendered
  59544. * @param completeCheck defines if a complete check (including materials and lights) has to be done (false by default)
  59545. * @return {boolean} is it ready
  59546. */
  59547. InstancedMesh.prototype.isReady = function (completeCheck) {
  59548. if (completeCheck === void 0) { completeCheck = false; }
  59549. return this._sourceMesh.isReady(completeCheck, true);
  59550. };
  59551. /**
  59552. * Returns a float array or a Float32Array of the requested kind of data : positons, normals, uvs, etc.
  59553. */
  59554. InstancedMesh.prototype.getVerticesData = function (kind, copyWhenShared) {
  59555. return this._sourceMesh.getVerticesData(kind, copyWhenShared);
  59556. };
  59557. /**
  59558. * Sets the vertex data of the mesh geometry for the requested `kind`.
  59559. * If the mesh has no geometry, a new Geometry object is set to the mesh and then passed this vertex data.
  59560. * The `data` are either a numeric array either a Float32Array.
  59561. * The parameter `updatable` is passed as is to the underlying Geometry object constructor (if initianilly none) or updater.
  59562. * The parameter `stride` is an optional positive integer, it is usually automatically deducted from the `kind` (3 for positions or normals, 2 for UV, etc).
  59563. * Note that a new underlying VertexBuffer object is created each call.
  59564. * If the `kind` is the `PositionKind`, the mesh BoundingInfo is renewed, so the bounding box and sphere, and the mesh World Matrix is recomputed.
  59565. *
  59566. * Possible `kind` values :
  59567. * - BABYLON.VertexBuffer.PositionKind
  59568. * - BABYLON.VertexBuffer.UVKind
  59569. * - BABYLON.VertexBuffer.UV2Kind
  59570. * - BABYLON.VertexBuffer.UV3Kind
  59571. * - BABYLON.VertexBuffer.UV4Kind
  59572. * - BABYLON.VertexBuffer.UV5Kind
  59573. * - BABYLON.VertexBuffer.UV6Kind
  59574. * - BABYLON.VertexBuffer.ColorKind
  59575. * - BABYLON.VertexBuffer.MatricesIndicesKind
  59576. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  59577. * - BABYLON.VertexBuffer.MatricesWeightsKind
  59578. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  59579. *
  59580. * Returns the Mesh.
  59581. */
  59582. InstancedMesh.prototype.setVerticesData = function (kind, data, updatable, stride) {
  59583. if (this.sourceMesh) {
  59584. this.sourceMesh.setVerticesData(kind, data, updatable, stride);
  59585. }
  59586. return this.sourceMesh;
  59587. };
  59588. /**
  59589. * Updates the existing vertex data of the mesh geometry for the requested `kind`.
  59590. * If the mesh has no geometry, it is simply returned as it is.
  59591. * The `data` are either a numeric array either a Float32Array.
  59592. * No new underlying VertexBuffer object is created.
  59593. * If the `kind` is the `PositionKind` and if `updateExtends` is true, the mesh BoundingInfo is renewed, so the bounding box and sphere, and the mesh World Matrix is recomputed.
  59594. * If the parameter `makeItUnique` is true, a new global geometry is created from this positions and is set to the mesh.
  59595. *
  59596. * Possible `kind` values :
  59597. * - BABYLON.VertexBuffer.PositionKind
  59598. * - BABYLON.VertexBuffer.UVKind
  59599. * - BABYLON.VertexBuffer.UV2Kind
  59600. * - BABYLON.VertexBuffer.UV3Kind
  59601. * - BABYLON.VertexBuffer.UV4Kind
  59602. * - BABYLON.VertexBuffer.UV5Kind
  59603. * - BABYLON.VertexBuffer.UV6Kind
  59604. * - BABYLON.VertexBuffer.ColorKind
  59605. * - BABYLON.VertexBuffer.MatricesIndicesKind
  59606. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  59607. * - BABYLON.VertexBuffer.MatricesWeightsKind
  59608. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  59609. *
  59610. * Returns the Mesh.
  59611. */
  59612. InstancedMesh.prototype.updateVerticesData = function (kind, data, updateExtends, makeItUnique) {
  59613. if (this.sourceMesh) {
  59614. this.sourceMesh.updateVerticesData(kind, data, updateExtends, makeItUnique);
  59615. }
  59616. return this.sourceMesh;
  59617. };
  59618. /**
  59619. * Sets the mesh indices.
  59620. * Expects an array populated with integers or a typed array (Int32Array, Uint32Array, Uint16Array).
  59621. * If the mesh has no geometry, a new Geometry object is created and set to the mesh.
  59622. * This method creates a new index buffer each call.
  59623. * Returns the Mesh.
  59624. */
  59625. InstancedMesh.prototype.setIndices = function (indices, totalVertices) {
  59626. if (totalVertices === void 0) { totalVertices = null; }
  59627. if (this.sourceMesh) {
  59628. this.sourceMesh.setIndices(indices, totalVertices);
  59629. }
  59630. return this.sourceMesh;
  59631. };
  59632. /**
  59633. * Boolean : True if the mesh owns the requested kind of data.
  59634. */
  59635. InstancedMesh.prototype.isVerticesDataPresent = function (kind) {
  59636. return this._sourceMesh.isVerticesDataPresent(kind);
  59637. };
  59638. /**
  59639. * Returns an array of indices (IndicesArray).
  59640. */
  59641. InstancedMesh.prototype.getIndices = function () {
  59642. return this._sourceMesh.getIndices();
  59643. };
  59644. Object.defineProperty(InstancedMesh.prototype, "_positions", {
  59645. get: function () {
  59646. return this._sourceMesh._positions;
  59647. },
  59648. enumerable: true,
  59649. configurable: true
  59650. });
  59651. /**
  59652. * Sets a new updated BoundingInfo to the mesh.
  59653. * Returns the mesh.
  59654. */
  59655. InstancedMesh.prototype.refreshBoundingInfo = function () {
  59656. var meshBB = this._sourceMesh.getBoundingInfo();
  59657. this._boundingInfo = new BABYLON.BoundingInfo(meshBB.minimum.clone(), meshBB.maximum.clone());
  59658. this._updateBoundingInfo();
  59659. return this;
  59660. };
  59661. /** @hidden */
  59662. InstancedMesh.prototype._preActivate = function () {
  59663. if (this._currentLOD) {
  59664. this._currentLOD._preActivate();
  59665. }
  59666. return this;
  59667. };
  59668. /** @hidden */
  59669. InstancedMesh.prototype._activate = function (renderId) {
  59670. if (this._currentLOD) {
  59671. this._currentLOD._registerInstanceForRenderId(this, renderId);
  59672. }
  59673. return this;
  59674. };
  59675. /**
  59676. * Returns the current associated LOD AbstractMesh.
  59677. */
  59678. InstancedMesh.prototype.getLOD = function (camera) {
  59679. if (!camera) {
  59680. return this;
  59681. }
  59682. var boundingInfo = this.getBoundingInfo();
  59683. this._currentLOD = this.sourceMesh.getLOD(camera, boundingInfo.boundingSphere);
  59684. if (this._currentLOD === this.sourceMesh) {
  59685. return this;
  59686. }
  59687. return this._currentLOD;
  59688. };
  59689. /** @hidden */
  59690. InstancedMesh.prototype._syncSubMeshes = function () {
  59691. this.releaseSubMeshes();
  59692. if (this._sourceMesh.subMeshes) {
  59693. for (var index = 0; index < this._sourceMesh.subMeshes.length; index++) {
  59694. this._sourceMesh.subMeshes[index].clone(this, this._sourceMesh);
  59695. }
  59696. }
  59697. return this;
  59698. };
  59699. /** @hidden */
  59700. InstancedMesh.prototype._generatePointsArray = function () {
  59701. return this._sourceMesh._generatePointsArray();
  59702. };
  59703. /**
  59704. * Creates a new InstancedMesh from the current mesh.
  59705. * - name (string) : the cloned mesh name
  59706. * - newParent (optional Node) : the optional Node to parent the clone to.
  59707. * - doNotCloneChildren (optional boolean, default `false`) : if `true` the model children aren't cloned.
  59708. *
  59709. * Returns the clone.
  59710. */
  59711. InstancedMesh.prototype.clone = function (name, newParent, doNotCloneChildren) {
  59712. var result = this._sourceMesh.createInstance(name);
  59713. // Deep copy
  59714. BABYLON.Tools.DeepCopy(this, result, ["name", "subMeshes", "uniqueId"], []);
  59715. // Bounding info
  59716. this.refreshBoundingInfo();
  59717. // Parent
  59718. if (newParent) {
  59719. result.parent = newParent;
  59720. }
  59721. if (!doNotCloneChildren) {
  59722. // Children
  59723. for (var index = 0; index < this.getScene().meshes.length; index++) {
  59724. var mesh = this.getScene().meshes[index];
  59725. if (mesh.parent === this) {
  59726. mesh.clone(mesh.name, result);
  59727. }
  59728. }
  59729. }
  59730. result.computeWorldMatrix(true);
  59731. return result;
  59732. };
  59733. /**
  59734. * Disposes the InstancedMesh.
  59735. * Returns nothing.
  59736. */
  59737. InstancedMesh.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  59738. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  59739. // Remove from mesh
  59740. var index = this._sourceMesh.instances.indexOf(this);
  59741. this._sourceMesh.instances.splice(index, 1);
  59742. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  59743. };
  59744. return InstancedMesh;
  59745. }(BABYLON.AbstractMesh));
  59746. BABYLON.InstancedMesh = InstancedMesh;
  59747. })(BABYLON || (BABYLON = {}));
  59748. //# sourceMappingURL=babylon.instancedMesh.js.map
  59749. var BABYLON;
  59750. (function (BABYLON) {
  59751. var LinesMesh = /** @class */ (function (_super) {
  59752. __extends(LinesMesh, _super);
  59753. function LinesMesh(name, scene, parent, source, doNotCloneChildren, useVertexColor, useVertexAlpha) {
  59754. if (scene === void 0) { scene = null; }
  59755. if (parent === void 0) { parent = null; }
  59756. var _this = _super.call(this, name, scene, parent, source, doNotCloneChildren) || this;
  59757. _this.useVertexColor = useVertexColor;
  59758. _this.useVertexAlpha = useVertexAlpha;
  59759. _this.color = new BABYLON.Color3(1, 1, 1);
  59760. _this.alpha = 1;
  59761. if (source) {
  59762. _this.color = source.color.clone();
  59763. _this.alpha = source.alpha;
  59764. _this.useVertexColor = source.useVertexColor;
  59765. _this.useVertexAlpha = source.useVertexAlpha;
  59766. }
  59767. _this._intersectionThreshold = 0.1;
  59768. var defines = [];
  59769. var options = {
  59770. attributes: [BABYLON.VertexBuffer.PositionKind],
  59771. uniforms: ["world", "viewProjection"],
  59772. needAlphaBlending: true,
  59773. defines: defines
  59774. };
  59775. if (useVertexAlpha === false) {
  59776. options.needAlphaBlending = false;
  59777. }
  59778. if (!useVertexColor) {
  59779. options.uniforms.push("color");
  59780. }
  59781. else {
  59782. options.defines.push("#define VERTEXCOLOR");
  59783. options.attributes.push(BABYLON.VertexBuffer.ColorKind);
  59784. }
  59785. _this._colorShader = new BABYLON.ShaderMaterial("colorShader", _this.getScene(), "color", options);
  59786. return _this;
  59787. }
  59788. Object.defineProperty(LinesMesh.prototype, "intersectionThreshold", {
  59789. /**
  59790. * The intersection Threshold is the margin applied when intersection a segment of the LinesMesh with a Ray.
  59791. * This margin is expressed in world space coordinates, so its value may vary.
  59792. * Default value is 0.1
  59793. * @returns the intersection Threshold value.
  59794. */
  59795. get: function () {
  59796. return this._intersectionThreshold;
  59797. },
  59798. /**
  59799. * The intersection Threshold is the margin applied when intersection a segment of the LinesMesh with a Ray.
  59800. * This margin is expressed in world space coordinates, so its value may vary.
  59801. * @param value the new threshold to apply
  59802. */
  59803. set: function (value) {
  59804. if (this._intersectionThreshold === value) {
  59805. return;
  59806. }
  59807. this._intersectionThreshold = value;
  59808. if (this.geometry) {
  59809. this.geometry.boundingBias = new BABYLON.Vector2(0, value);
  59810. }
  59811. },
  59812. enumerable: true,
  59813. configurable: true
  59814. });
  59815. /**
  59816. * Returns the string "LineMesh"
  59817. */
  59818. LinesMesh.prototype.getClassName = function () {
  59819. return "LinesMesh";
  59820. };
  59821. Object.defineProperty(LinesMesh.prototype, "material", {
  59822. /**
  59823. * @hidden
  59824. */
  59825. get: function () {
  59826. return this._colorShader;
  59827. },
  59828. /**
  59829. * @hidden
  59830. */
  59831. set: function (value) {
  59832. // Do nothing
  59833. },
  59834. enumerable: true,
  59835. configurable: true
  59836. });
  59837. Object.defineProperty(LinesMesh.prototype, "checkCollisions", {
  59838. /**
  59839. * @hidden
  59840. */
  59841. get: function () {
  59842. return false;
  59843. },
  59844. enumerable: true,
  59845. configurable: true
  59846. });
  59847. LinesMesh.prototype.createInstance = function (name) {
  59848. throw new Error("LinesMeshes do not support createInstance.");
  59849. };
  59850. /** @hidden */
  59851. LinesMesh.prototype._bind = function (subMesh, effect, fillMode) {
  59852. if (!this._geometry) {
  59853. return this;
  59854. }
  59855. // VBOs
  59856. this._geometry._bind(this._colorShader.getEffect());
  59857. // Color
  59858. if (!this.useVertexColor) {
  59859. this._colorShader.setColor4("color", this.color.toColor4(this.alpha));
  59860. }
  59861. return this;
  59862. };
  59863. /** @hidden */
  59864. LinesMesh.prototype._draw = function (subMesh, fillMode, instancesCount) {
  59865. if (!this._geometry || !this._geometry.getVertexBuffers() || (!this._unIndexed && !this._geometry.getIndexBuffer())) {
  59866. return this;
  59867. }
  59868. var engine = this.getScene().getEngine();
  59869. // Draw order
  59870. engine.drawElementsType(BABYLON.Material.LineListDrawMode, subMesh.indexStart, subMesh.indexCount);
  59871. return this;
  59872. };
  59873. LinesMesh.prototype.dispose = function (doNotRecurse) {
  59874. this._colorShader.dispose();
  59875. _super.prototype.dispose.call(this, doNotRecurse);
  59876. };
  59877. /**
  59878. * Returns a new LineMesh object cloned from the current one.
  59879. */
  59880. LinesMesh.prototype.clone = function (name, newParent, doNotCloneChildren) {
  59881. return new LinesMesh(name, this.getScene(), newParent, this, doNotCloneChildren);
  59882. };
  59883. return LinesMesh;
  59884. }(BABYLON.Mesh));
  59885. BABYLON.LinesMesh = LinesMesh;
  59886. })(BABYLON || (BABYLON = {}));
  59887. //# sourceMappingURL=babylon.linesMesh.js.map
  59888. var BABYLON;
  59889. (function (BABYLON) {
  59890. /**
  59891. * This class implement a typical dictionary using a string as key and the generic type T as value.
  59892. * The underlying implementation relies on an associative array to ensure the best performances.
  59893. * The value can be anything including 'null' but except 'undefined'
  59894. */
  59895. var StringDictionary = /** @class */ (function () {
  59896. function StringDictionary() {
  59897. this._count = 0;
  59898. this._data = {};
  59899. }
  59900. /**
  59901. * This will clear this dictionary and copy the content from the 'source' one.
  59902. * If the T value is a custom object, it won't be copied/cloned, the same object will be used
  59903. * @param source the dictionary to take the content from and copy to this dictionary
  59904. */
  59905. StringDictionary.prototype.copyFrom = function (source) {
  59906. var _this = this;
  59907. this.clear();
  59908. source.forEach(function (t, v) { return _this.add(t, v); });
  59909. };
  59910. /**
  59911. * Get a value based from its key
  59912. * @param key the given key to get the matching value from
  59913. * @return the value if found, otherwise undefined is returned
  59914. */
  59915. StringDictionary.prototype.get = function (key) {
  59916. var val = this._data[key];
  59917. if (val !== undefined) {
  59918. return val;
  59919. }
  59920. return undefined;
  59921. };
  59922. /**
  59923. * Get a value from its key or add it if it doesn't exist.
  59924. * This method will ensure you that a given key/data will be present in the dictionary.
  59925. * @param key the given key to get the matching value from
  59926. * @param factory the factory that will create the value if the key is not present in the dictionary.
  59927. * The factory will only be invoked if there's no data for the given key.
  59928. * @return the value corresponding to the key.
  59929. */
  59930. StringDictionary.prototype.getOrAddWithFactory = function (key, factory) {
  59931. var val = this.get(key);
  59932. if (val !== undefined) {
  59933. return val;
  59934. }
  59935. val = factory(key);
  59936. if (val) {
  59937. this.add(key, val);
  59938. }
  59939. return val;
  59940. };
  59941. /**
  59942. * Get a value from its key if present in the dictionary otherwise add it
  59943. * @param key the key to get the value from
  59944. * @param val if there's no such key/value pair in the dictionary add it with this value
  59945. * @return the value corresponding to the key
  59946. */
  59947. StringDictionary.prototype.getOrAdd = function (key, val) {
  59948. var curVal = this.get(key);
  59949. if (curVal !== undefined) {
  59950. return curVal;
  59951. }
  59952. this.add(key, val);
  59953. return val;
  59954. };
  59955. /**
  59956. * Check if there's a given key in the dictionary
  59957. * @param key the key to check for
  59958. * @return true if the key is present, false otherwise
  59959. */
  59960. StringDictionary.prototype.contains = function (key) {
  59961. return this._data[key] !== undefined;
  59962. };
  59963. /**
  59964. * Add a new key and its corresponding value
  59965. * @param key the key to add
  59966. * @param value the value corresponding to the key
  59967. * @return true if the operation completed successfully, false if we couldn't insert the key/value because there was already this key in the dictionary
  59968. */
  59969. StringDictionary.prototype.add = function (key, value) {
  59970. if (this._data[key] !== undefined) {
  59971. return false;
  59972. }
  59973. this._data[key] = value;
  59974. ++this._count;
  59975. return true;
  59976. };
  59977. StringDictionary.prototype.set = function (key, value) {
  59978. if (this._data[key] === undefined) {
  59979. return false;
  59980. }
  59981. this._data[key] = value;
  59982. return true;
  59983. };
  59984. /**
  59985. * Get the element of the given key and remove it from the dictionary
  59986. * @param key
  59987. */
  59988. StringDictionary.prototype.getAndRemove = function (key) {
  59989. var val = this.get(key);
  59990. if (val !== undefined) {
  59991. delete this._data[key];
  59992. --this._count;
  59993. return val;
  59994. }
  59995. return null;
  59996. };
  59997. /**
  59998. * Remove a key/value from the dictionary.
  59999. * @param key the key to remove
  60000. * @return true if the item was successfully deleted, false if no item with such key exist in the dictionary
  60001. */
  60002. StringDictionary.prototype.remove = function (key) {
  60003. if (this.contains(key)) {
  60004. delete this._data[key];
  60005. --this._count;
  60006. return true;
  60007. }
  60008. return false;
  60009. };
  60010. /**
  60011. * Clear the whole content of the dictionary
  60012. */
  60013. StringDictionary.prototype.clear = function () {
  60014. this._data = {};
  60015. this._count = 0;
  60016. };
  60017. Object.defineProperty(StringDictionary.prototype, "count", {
  60018. get: function () {
  60019. return this._count;
  60020. },
  60021. enumerable: true,
  60022. configurable: true
  60023. });
  60024. /**
  60025. * Execute a callback on each key/val of the dictionary.
  60026. * Note that you can remove any element in this dictionary in the callback implementation
  60027. * @param callback the callback to execute on a given key/value pair
  60028. */
  60029. StringDictionary.prototype.forEach = function (callback) {
  60030. for (var cur in this._data) {
  60031. var val = this._data[cur];
  60032. callback(cur, val);
  60033. }
  60034. };
  60035. /**
  60036. * Execute a callback on every occurrence of the dictionary until it returns a valid TRes object.
  60037. * If the callback returns null or undefined the method will iterate to the next key/value pair
  60038. * Note that you can remove any element in this dictionary in the callback implementation
  60039. * @param callback the callback to execute, if it return a valid T instanced object the enumeration will stop and the object will be returned
  60040. */
  60041. StringDictionary.prototype.first = function (callback) {
  60042. for (var cur in this._data) {
  60043. var val = this._data[cur];
  60044. var res = callback(cur, val);
  60045. if (res) {
  60046. return res;
  60047. }
  60048. }
  60049. return null;
  60050. };
  60051. return StringDictionary;
  60052. }());
  60053. BABYLON.StringDictionary = StringDictionary;
  60054. })(BABYLON || (BABYLON = {}));
  60055. //# sourceMappingURL=babylon.stringDictionary.js.map
  60056. var BABYLON;
  60057. (function (BABYLON) {
  60058. var Debug;
  60059. (function (Debug) {
  60060. /**
  60061. * Class used to render a debug view of a given skeleton
  60062. * @see http://www.babylonjs-playground.com/#1BZJVJ#8
  60063. */
  60064. var SkeletonViewer = /** @class */ (function () {
  60065. /**
  60066. * Creates a new SkeletonViewer
  60067. * @param skeleton defines the skeleton to render
  60068. * @param mesh defines the mesh attached to the skeleton
  60069. * @param scene defines the hosting scene
  60070. * @param autoUpdateBonesMatrices defines a boolean indicating if bones matrices must be forced to update before rendering (true by default)
  60071. * @param renderingGroupId defines the rendering group id to use with the viewer
  60072. */
  60073. function SkeletonViewer(
  60074. /** defines the skeleton to render */
  60075. skeleton,
  60076. /** defines the mesh attached to the skeleton */
  60077. mesh, scene,
  60078. /** defines a boolean indicating if bones matrices must be forced to update before rendering (true by default) */
  60079. autoUpdateBonesMatrices,
  60080. /** defines the rendering group id to use with the viewer */
  60081. renderingGroupId) {
  60082. if (autoUpdateBonesMatrices === void 0) { autoUpdateBonesMatrices = true; }
  60083. if (renderingGroupId === void 0) { renderingGroupId = 1; }
  60084. this.skeleton = skeleton;
  60085. this.mesh = mesh;
  60086. this.autoUpdateBonesMatrices = autoUpdateBonesMatrices;
  60087. this.renderingGroupId = renderingGroupId;
  60088. /** Gets or sets the color used to render the skeleton */
  60089. this.color = BABYLON.Color3.White();
  60090. this._debugLines = new Array();
  60091. this._isEnabled = false;
  60092. this._scene = scene;
  60093. this.update();
  60094. this._renderFunction = this.update.bind(this);
  60095. }
  60096. Object.defineProperty(SkeletonViewer.prototype, "isEnabled", {
  60097. get: function () {
  60098. return this._isEnabled;
  60099. },
  60100. /** Gets or sets a boolean indicating if the viewer is enabled */
  60101. set: function (value) {
  60102. if (this._isEnabled === value) {
  60103. return;
  60104. }
  60105. this._isEnabled = value;
  60106. if (value) {
  60107. this._scene.registerBeforeRender(this._renderFunction);
  60108. }
  60109. else {
  60110. this._scene.unregisterBeforeRender(this._renderFunction);
  60111. }
  60112. },
  60113. enumerable: true,
  60114. configurable: true
  60115. });
  60116. SkeletonViewer.prototype._getBonePosition = function (position, bone, meshMat, x, y, z) {
  60117. if (x === void 0) { x = 0; }
  60118. if (y === void 0) { y = 0; }
  60119. if (z === void 0) { z = 0; }
  60120. var tmat = BABYLON.Tmp.Matrix[0];
  60121. var parentBone = bone.getParent();
  60122. tmat.copyFrom(bone.getLocalMatrix());
  60123. if (x !== 0 || y !== 0 || z !== 0) {
  60124. var tmat2 = BABYLON.Tmp.Matrix[1];
  60125. BABYLON.Matrix.IdentityToRef(tmat2);
  60126. tmat2.m[12] = x;
  60127. tmat2.m[13] = y;
  60128. tmat2.m[14] = z;
  60129. tmat2.multiplyToRef(tmat, tmat);
  60130. }
  60131. if (parentBone) {
  60132. tmat.multiplyToRef(parentBone.getAbsoluteTransform(), tmat);
  60133. }
  60134. tmat.multiplyToRef(meshMat, tmat);
  60135. position.x = tmat.m[12];
  60136. position.y = tmat.m[13];
  60137. position.z = tmat.m[14];
  60138. };
  60139. SkeletonViewer.prototype._getLinesForBonesWithLength = function (bones, meshMat) {
  60140. var len = bones.length;
  60141. var meshPos = this.mesh.position;
  60142. for (var i = 0; i < len; i++) {
  60143. var bone = bones[i];
  60144. var points = this._debugLines[i];
  60145. if (!points) {
  60146. points = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  60147. this._debugLines[i] = points;
  60148. }
  60149. this._getBonePosition(points[0], bone, meshMat);
  60150. this._getBonePosition(points[1], bone, meshMat, 0, bone.length, 0);
  60151. points[0].subtractInPlace(meshPos);
  60152. points[1].subtractInPlace(meshPos);
  60153. }
  60154. };
  60155. SkeletonViewer.prototype._getLinesForBonesNoLength = function (bones, meshMat) {
  60156. var len = bones.length;
  60157. var boneNum = 0;
  60158. var meshPos = this.mesh.position;
  60159. for (var i = len - 1; i >= 0; i--) {
  60160. var childBone = bones[i];
  60161. var parentBone = childBone.getParent();
  60162. if (!parentBone) {
  60163. continue;
  60164. }
  60165. var points = this._debugLines[boneNum];
  60166. if (!points) {
  60167. points = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  60168. this._debugLines[boneNum] = points;
  60169. }
  60170. childBone.getAbsolutePositionToRef(this.mesh, points[0]);
  60171. parentBone.getAbsolutePositionToRef(this.mesh, points[1]);
  60172. points[0].subtractInPlace(meshPos);
  60173. points[1].subtractInPlace(meshPos);
  60174. boneNum++;
  60175. }
  60176. };
  60177. /** Update the viewer to sync with current skeleton state */
  60178. SkeletonViewer.prototype.update = function () {
  60179. if (this.autoUpdateBonesMatrices) {
  60180. this.skeleton.computeAbsoluteTransforms();
  60181. }
  60182. if (this.skeleton.bones[0].length === undefined) {
  60183. this._getLinesForBonesNoLength(this.skeleton.bones, this.mesh.getWorldMatrix());
  60184. }
  60185. else {
  60186. this._getLinesForBonesWithLength(this.skeleton.bones, this.mesh.getWorldMatrix());
  60187. }
  60188. if (!this._debugMesh) {
  60189. this._debugMesh = BABYLON.MeshBuilder.CreateLineSystem("", { lines: this._debugLines, updatable: true, instance: null }, this._scene);
  60190. this._debugMesh.renderingGroupId = this.renderingGroupId;
  60191. }
  60192. else {
  60193. BABYLON.MeshBuilder.CreateLineSystem("", { lines: this._debugLines, updatable: true, instance: this._debugMesh }, this._scene);
  60194. }
  60195. this._debugMesh.position.copyFrom(this.mesh.position);
  60196. this._debugMesh.color = this.color;
  60197. };
  60198. /** Release associated resources */
  60199. SkeletonViewer.prototype.dispose = function () {
  60200. if (this._debugMesh) {
  60201. this.isEnabled = false;
  60202. this._debugMesh.dispose();
  60203. this._debugMesh = null;
  60204. }
  60205. };
  60206. return SkeletonViewer;
  60207. }());
  60208. Debug.SkeletonViewer = SkeletonViewer;
  60209. })(Debug = BABYLON.Debug || (BABYLON.Debug = {}));
  60210. })(BABYLON || (BABYLON = {}));
  60211. //# sourceMappingURL=babylon.skeletonViewer.js.map
  60212. /**
  60213. * Module Debug contains the (visual) components to debug a scene correctly
  60214. */
  60215. var BABYLON;
  60216. (function (BABYLON) {
  60217. var Debug;
  60218. (function (Debug) {
  60219. /**
  60220. * The Axes viewer will show 3 axes in a specific point in space
  60221. */
  60222. var AxesViewer = /** @class */ (function () {
  60223. /**
  60224. * Creates a new AxesViewer
  60225. * @param scene defines the hosting scene
  60226. * @param scaleLines defines a number used to scale line length (1 by default)
  60227. */
  60228. function AxesViewer(scene, scaleLines) {
  60229. if (scaleLines === void 0) { scaleLines = 1; }
  60230. this._xline = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  60231. this._yline = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  60232. this._zline = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  60233. /**
  60234. * Gets or sets a number used to scale line length
  60235. */
  60236. this.scaleLines = 1;
  60237. this.scaleLines = scaleLines;
  60238. this._xmesh = BABYLON.Mesh.CreateLines("xline", this._xline, scene, true);
  60239. this._ymesh = BABYLON.Mesh.CreateLines("yline", this._yline, scene, true);
  60240. this._zmesh = BABYLON.Mesh.CreateLines("zline", this._zline, scene, true);
  60241. this._xmesh.renderingGroupId = 2;
  60242. this._ymesh.renderingGroupId = 2;
  60243. this._zmesh.renderingGroupId = 2;
  60244. this._xmesh.material.checkReadyOnlyOnce = true;
  60245. this._xmesh.color = new BABYLON.Color3(1, 0, 0);
  60246. this._ymesh.material.checkReadyOnlyOnce = true;
  60247. this._ymesh.color = new BABYLON.Color3(0, 1, 0);
  60248. this._zmesh.material.checkReadyOnlyOnce = true;
  60249. this._zmesh.color = new BABYLON.Color3(0, 0, 1);
  60250. this.scene = scene;
  60251. }
  60252. /**
  60253. * Force the viewer to update
  60254. * @param position defines the position of the viewer
  60255. * @param xaxis defines the x axis of the viewer
  60256. * @param yaxis defines the y axis of the viewer
  60257. * @param zaxis defines the z axis of the viewer
  60258. */
  60259. AxesViewer.prototype.update = function (position, xaxis, yaxis, zaxis) {
  60260. var scaleLines = this.scaleLines;
  60261. if (this._xmesh) {
  60262. this._xmesh.position.copyFrom(position);
  60263. }
  60264. if (this._ymesh) {
  60265. this._ymesh.position.copyFrom(position);
  60266. }
  60267. if (this._zmesh) {
  60268. this._zmesh.position.copyFrom(position);
  60269. }
  60270. var point2 = this._xline[1];
  60271. point2.x = xaxis.x * scaleLines;
  60272. point2.y = xaxis.y * scaleLines;
  60273. point2.z = xaxis.z * scaleLines;
  60274. BABYLON.Mesh.CreateLines("", this._xline, null, false, this._xmesh);
  60275. point2 = this._yline[1];
  60276. point2.x = yaxis.x * scaleLines;
  60277. point2.y = yaxis.y * scaleLines;
  60278. point2.z = yaxis.z * scaleLines;
  60279. BABYLON.Mesh.CreateLines("", this._yline, null, false, this._ymesh);
  60280. point2 = this._zline[1];
  60281. point2.x = zaxis.x * scaleLines;
  60282. point2.y = zaxis.y * scaleLines;
  60283. point2.z = zaxis.z * scaleLines;
  60284. BABYLON.Mesh.CreateLines("", this._zline, null, false, this._zmesh);
  60285. };
  60286. /** Releases resources */
  60287. AxesViewer.prototype.dispose = function () {
  60288. if (this._xmesh) {
  60289. this._xmesh.dispose();
  60290. }
  60291. if (this._ymesh) {
  60292. this._ymesh.dispose();
  60293. }
  60294. if (this._zmesh) {
  60295. this._zmesh.dispose();
  60296. }
  60297. this._xmesh = null;
  60298. this._ymesh = null;
  60299. this._zmesh = null;
  60300. this.scene = null;
  60301. };
  60302. return AxesViewer;
  60303. }());
  60304. Debug.AxesViewer = AxesViewer;
  60305. })(Debug = BABYLON.Debug || (BABYLON.Debug = {}));
  60306. })(BABYLON || (BABYLON = {}));
  60307. //# sourceMappingURL=babylon.axesViewer.js.map
  60308. var BABYLON;
  60309. (function (BABYLON) {
  60310. var Debug;
  60311. (function (Debug) {
  60312. /**
  60313. * The BoneAxesViewer will attach 3 axes to a specific bone of a specific mesh
  60314. * @see demo here: https://www.babylonjs-playground.com/#0DE8F4#8
  60315. */
  60316. var BoneAxesViewer = /** @class */ (function (_super) {
  60317. __extends(BoneAxesViewer, _super);
  60318. /**
  60319. * Creates a new BoneAxesViewer
  60320. * @param scene defines the hosting scene
  60321. * @param bone defines the target bone
  60322. * @param mesh defines the target mesh
  60323. * @param scaleLines defines a scaling factor for line length (1 by default)
  60324. */
  60325. function BoneAxesViewer(scene, bone, mesh, scaleLines) {
  60326. if (scaleLines === void 0) { scaleLines = 1; }
  60327. var _this = _super.call(this, scene, scaleLines) || this;
  60328. /** Gets current position */
  60329. _this.pos = BABYLON.Vector3.Zero();
  60330. /** Gets direction of X axis */
  60331. _this.xaxis = BABYLON.Vector3.Zero();
  60332. /** Gets direction of Y axis */
  60333. _this.yaxis = BABYLON.Vector3.Zero();
  60334. /** Gets direction of Z axis */
  60335. _this.zaxis = BABYLON.Vector3.Zero();
  60336. _this.mesh = mesh;
  60337. _this.bone = bone;
  60338. return _this;
  60339. }
  60340. /**
  60341. * Force the viewer to update
  60342. */
  60343. BoneAxesViewer.prototype.update = function () {
  60344. if (!this.mesh || !this.bone) {
  60345. return;
  60346. }
  60347. var bone = this.bone;
  60348. bone.getAbsolutePositionToRef(this.mesh, this.pos);
  60349. bone.getDirectionToRef(BABYLON.Axis.X, this.mesh, this.xaxis);
  60350. bone.getDirectionToRef(BABYLON.Axis.Y, this.mesh, this.yaxis);
  60351. bone.getDirectionToRef(BABYLON.Axis.Z, this.mesh, this.zaxis);
  60352. _super.prototype.update.call(this, this.pos, this.xaxis, this.yaxis, this.zaxis);
  60353. };
  60354. /** Releases resources */
  60355. BoneAxesViewer.prototype.dispose = function () {
  60356. if (this.mesh) {
  60357. this.mesh = null;
  60358. this.bone = null;
  60359. _super.prototype.dispose.call(this);
  60360. }
  60361. };
  60362. return BoneAxesViewer;
  60363. }(Debug.AxesViewer));
  60364. Debug.BoneAxesViewer = BoneAxesViewer;
  60365. })(Debug = BABYLON.Debug || (BABYLON.Debug = {}));
  60366. })(BABYLON || (BABYLON = {}));
  60367. //# sourceMappingURL=babylon.boneAxesViewer.js.map
  60368. var BABYLON;
  60369. (function (BABYLON) {
  60370. var RayHelper = /** @class */ (function () {
  60371. function RayHelper(ray) {
  60372. this.ray = ray;
  60373. }
  60374. RayHelper.CreateAndShow = function (ray, scene, color) {
  60375. var helper = new RayHelper(ray);
  60376. helper.show(scene, color);
  60377. return helper;
  60378. };
  60379. RayHelper.prototype.show = function (scene, color) {
  60380. if (!this._renderFunction && this.ray) {
  60381. var ray = this.ray;
  60382. this._renderFunction = this._render.bind(this);
  60383. this._scene = scene;
  60384. this._renderPoints = [ray.origin, ray.origin.add(ray.direction.scale(ray.length))];
  60385. this._renderLine = BABYLON.Mesh.CreateLines("ray", this._renderPoints, scene, true);
  60386. if (this._renderFunction) {
  60387. this._scene.registerBeforeRender(this._renderFunction);
  60388. }
  60389. }
  60390. if (color && this._renderLine) {
  60391. this._renderLine.color.copyFrom(color);
  60392. }
  60393. };
  60394. RayHelper.prototype.hide = function () {
  60395. if (this._renderFunction && this._scene) {
  60396. this._scene.unregisterBeforeRender(this._renderFunction);
  60397. this._scene = null;
  60398. this._renderFunction = null;
  60399. if (this._renderLine) {
  60400. this._renderLine.dispose();
  60401. this._renderLine = null;
  60402. }
  60403. this._renderPoints = [];
  60404. }
  60405. };
  60406. RayHelper.prototype._render = function () {
  60407. var ray = this.ray;
  60408. if (!ray) {
  60409. return;
  60410. }
  60411. var point = this._renderPoints[1];
  60412. var len = Math.min(ray.length, 1000000);
  60413. point.copyFrom(ray.direction);
  60414. point.scaleInPlace(len);
  60415. point.addInPlace(ray.origin);
  60416. BABYLON.Mesh.CreateLines("ray", this._renderPoints, this._scene, true, this._renderLine);
  60417. };
  60418. RayHelper.prototype.attachToMesh = function (mesh, meshSpaceDirection, meshSpaceOrigin, length) {
  60419. this._attachedToMesh = mesh;
  60420. var ray = this.ray;
  60421. if (!ray) {
  60422. return;
  60423. }
  60424. if (!ray.direction) {
  60425. ray.direction = BABYLON.Vector3.Zero();
  60426. }
  60427. if (!ray.origin) {
  60428. ray.origin = BABYLON.Vector3.Zero();
  60429. }
  60430. if (length) {
  60431. ray.length = length;
  60432. }
  60433. if (!meshSpaceOrigin) {
  60434. meshSpaceOrigin = BABYLON.Vector3.Zero();
  60435. }
  60436. if (!meshSpaceDirection) {
  60437. // -1 so that this will work with Mesh.lookAt
  60438. meshSpaceDirection = new BABYLON.Vector3(0, 0, -1);
  60439. }
  60440. if (!this._meshSpaceDirection) {
  60441. this._meshSpaceDirection = meshSpaceDirection.clone();
  60442. this._meshSpaceOrigin = meshSpaceOrigin.clone();
  60443. }
  60444. else {
  60445. this._meshSpaceDirection.copyFrom(meshSpaceDirection);
  60446. this._meshSpaceOrigin.copyFrom(meshSpaceOrigin);
  60447. }
  60448. if (!this._updateToMeshFunction) {
  60449. this._updateToMeshFunction = this._updateToMesh.bind(this);
  60450. this._attachedToMesh.getScene().registerBeforeRender(this._updateToMeshFunction);
  60451. }
  60452. this._updateToMesh();
  60453. };
  60454. RayHelper.prototype.detachFromMesh = function () {
  60455. if (this._attachedToMesh) {
  60456. if (this._updateToMeshFunction) {
  60457. this._attachedToMesh.getScene().unregisterBeforeRender(this._updateToMeshFunction);
  60458. }
  60459. this._attachedToMesh = null;
  60460. this._updateToMeshFunction = null;
  60461. }
  60462. };
  60463. RayHelper.prototype._updateToMesh = function () {
  60464. var ray = this.ray;
  60465. if (!this._attachedToMesh || !ray) {
  60466. return;
  60467. }
  60468. if (this._attachedToMesh._isDisposed) {
  60469. this.detachFromMesh();
  60470. return;
  60471. }
  60472. this._attachedToMesh.getDirectionToRef(this._meshSpaceDirection, ray.direction);
  60473. BABYLON.Vector3.TransformCoordinatesToRef(this._meshSpaceOrigin, this._attachedToMesh.getWorldMatrix(), ray.origin);
  60474. };
  60475. RayHelper.prototype.dispose = function () {
  60476. this.hide();
  60477. this.detachFromMesh();
  60478. this.ray = null;
  60479. };
  60480. return RayHelper;
  60481. }());
  60482. BABYLON.RayHelper = RayHelper;
  60483. })(BABYLON || (BABYLON = {}));
  60484. //# sourceMappingURL=babylon.rayHelper.js.map
  60485. var BABYLON;
  60486. (function (BABYLON) {
  60487. Object.defineProperty(BABYLON.Scene.prototype, "debugLayer", {
  60488. get: function () {
  60489. if (!this._debugLayer) {
  60490. this._debugLayer = new DebugLayer(this);
  60491. }
  60492. return this._debugLayer;
  60493. },
  60494. enumerable: true,
  60495. configurable: true
  60496. });
  60497. var DebugLayer = /** @class */ (function () {
  60498. function DebugLayer(scene) {
  60499. var _this = this;
  60500. this.BJSINSPECTOR = typeof INSPECTOR !== 'undefined' ? INSPECTOR : undefined;
  60501. this.onPropertyChangedObservable = new BABYLON.Observable();
  60502. this._scene = scene;
  60503. this._scene.onDisposeObservable.add(function () {
  60504. // Debug layer
  60505. if (_this._scene._debugLayer) {
  60506. _this._scene._debugLayer.hide();
  60507. }
  60508. });
  60509. }
  60510. /** Creates the inspector window. */
  60511. DebugLayer.prototype._createInspector = function (config) {
  60512. if (config === void 0) { config = {}; }
  60513. var popup = config.popup || false;
  60514. var initialTab = config.initialTab || 0;
  60515. var parentElement = config.parentElement || null;
  60516. if (!this._inspector) {
  60517. this.BJSINSPECTOR = this.BJSINSPECTOR || typeof INSPECTOR !== 'undefined' ? INSPECTOR : undefined;
  60518. this._inspector = new this.BJSINSPECTOR.Inspector(this._scene, popup, initialTab, parentElement, config.newColors);
  60519. } // else nothing to do as instance is already created
  60520. };
  60521. DebugLayer.prototype.isVisible = function () {
  60522. if (!this._inspector) {
  60523. return false;
  60524. }
  60525. return true;
  60526. };
  60527. DebugLayer.prototype.hide = function () {
  60528. if (this._inspector) {
  60529. try {
  60530. this._inspector.dispose();
  60531. }
  60532. catch (e) {
  60533. // If the inspector has been removed directly from the inspector tool
  60534. }
  60535. this.onPropertyChangedObservable.clear();
  60536. this._inspector = null;
  60537. }
  60538. };
  60539. /**
  60540. *
  60541. * Launch the debugLayer.
  60542. *
  60543. * initialTab:
  60544. * | Value | Tab Name |
  60545. * | --- | --- |
  60546. * | 0 | Scene |
  60547. * | 1 | Console |
  60548. * | 2 | Stats |
  60549. * | 3 | Textures |
  60550. * | 4 | Mesh |
  60551. * | 5 | Light |
  60552. * | 6 | Material |
  60553. * | 7 | GLTF |
  60554. * | 8 | GUI |
  60555. * | 9 | Physics |
  60556. * | 10 | Camera |
  60557. * | 11 | Audio |
  60558. *
  60559. */
  60560. DebugLayer.prototype.show = function (config) {
  60561. if (config === void 0) { config = {}; }
  60562. if (typeof this.BJSINSPECTOR == 'undefined') {
  60563. // Load inspector and add it to the DOM
  60564. BABYLON.Tools.LoadScript(DebugLayer.InspectorURL, this._createInspector.bind(this, config));
  60565. }
  60566. else {
  60567. // Otherwise creates the inspector
  60568. this._createInspector(config);
  60569. }
  60570. };
  60571. /**
  60572. * Gets the active tab
  60573. * @return the index of the active tab or -1 if the inspector is hidden
  60574. */
  60575. DebugLayer.prototype.getActiveTab = function () {
  60576. return this._inspector ? this._inspector.getActiveTabIndex() : -1;
  60577. };
  60578. DebugLayer.InspectorURL = 'https://preview.babylonjs.com/inspector/babylon.inspector.bundle.js';
  60579. return DebugLayer;
  60580. }());
  60581. BABYLON.DebugLayer = DebugLayer;
  60582. })(BABYLON || (BABYLON = {}));
  60583. //# sourceMappingURL=babylon.debugLayer.js.map
  60584. var BABYLON;
  60585. (function (BABYLON) {
  60586. var Debug;
  60587. (function (Debug) {
  60588. /**
  60589. * Used to show the physics impostor around the specific mesh
  60590. */
  60591. var PhysicsViewer = /** @class */ (function () {
  60592. /**
  60593. * Creates a new PhysicsViewer
  60594. * @param scene defines the hosting scene
  60595. */
  60596. function PhysicsViewer(scene) {
  60597. /** @hidden */
  60598. this._impostors = [];
  60599. /** @hidden */
  60600. this._meshes = [];
  60601. /** @hidden */
  60602. this._numMeshes = 0;
  60603. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  60604. var physicEngine = this._scene.getPhysicsEngine();
  60605. if (physicEngine) {
  60606. this._physicsEnginePlugin = physicEngine.getPhysicsPlugin();
  60607. }
  60608. }
  60609. /** @hidden */
  60610. PhysicsViewer.prototype._updateDebugMeshes = function () {
  60611. var plugin = this._physicsEnginePlugin;
  60612. for (var i = 0; i < this._numMeshes; i++) {
  60613. var impostor = this._impostors[i];
  60614. if (!impostor) {
  60615. continue;
  60616. }
  60617. if (impostor.isDisposed) {
  60618. this.hideImpostor(this._impostors[i--]);
  60619. }
  60620. else {
  60621. var mesh = this._meshes[i];
  60622. if (mesh && plugin) {
  60623. plugin.syncMeshWithImpostor(mesh, impostor);
  60624. }
  60625. }
  60626. }
  60627. };
  60628. /**
  60629. * Renders a specified physic impostor
  60630. * @param impostor defines the impostor to render
  60631. */
  60632. PhysicsViewer.prototype.showImpostor = function (impostor) {
  60633. if (!this._scene) {
  60634. return;
  60635. }
  60636. for (var i = 0; i < this._numMeshes; i++) {
  60637. if (this._impostors[i] == impostor) {
  60638. return;
  60639. }
  60640. }
  60641. var debugMesh = this._getDebugMesh(impostor, this._scene);
  60642. if (debugMesh) {
  60643. this._impostors[this._numMeshes] = impostor;
  60644. this._meshes[this._numMeshes] = debugMesh;
  60645. if (this._numMeshes === 0) {
  60646. this._renderFunction = this._updateDebugMeshes.bind(this);
  60647. this._scene.registerBeforeRender(this._renderFunction);
  60648. }
  60649. this._numMeshes++;
  60650. }
  60651. };
  60652. /**
  60653. * Hides a specified physic impostor
  60654. * @param impostor defines the impostor to hide
  60655. */
  60656. PhysicsViewer.prototype.hideImpostor = function (impostor) {
  60657. if (!impostor || !this._scene) {
  60658. return;
  60659. }
  60660. var removed = false;
  60661. for (var i = 0; i < this._numMeshes; i++) {
  60662. if (this._impostors[i] == impostor) {
  60663. var mesh = this._meshes[i];
  60664. if (!mesh) {
  60665. continue;
  60666. }
  60667. this._scene.removeMesh(mesh);
  60668. mesh.dispose();
  60669. this._numMeshes--;
  60670. if (this._numMeshes > 0) {
  60671. this._meshes[i] = this._meshes[this._numMeshes];
  60672. this._impostors[i] = this._impostors[this._numMeshes];
  60673. this._meshes[this._numMeshes] = null;
  60674. this._impostors[this._numMeshes] = null;
  60675. }
  60676. else {
  60677. this._meshes[0] = null;
  60678. this._impostors[0] = null;
  60679. }
  60680. removed = true;
  60681. break;
  60682. }
  60683. }
  60684. if (removed && this._numMeshes === 0) {
  60685. this._scene.unregisterBeforeRender(this._renderFunction);
  60686. }
  60687. };
  60688. PhysicsViewer.prototype._getDebugMaterial = function (scene) {
  60689. if (!this._debugMaterial) {
  60690. this._debugMaterial = new BABYLON.StandardMaterial('', scene);
  60691. this._debugMaterial.wireframe = true;
  60692. }
  60693. return this._debugMaterial;
  60694. };
  60695. PhysicsViewer.prototype._getDebugBoxMesh = function (scene) {
  60696. if (!this._debugBoxMesh) {
  60697. this._debugBoxMesh = BABYLON.MeshBuilder.CreateBox('physicsBodyBoxViewMesh', { size: 1 }, scene);
  60698. this._debugBoxMesh.renderingGroupId = 1;
  60699. this._debugBoxMesh.rotationQuaternion = BABYLON.Quaternion.Identity();
  60700. this._debugBoxMesh.material = this._getDebugMaterial(scene);
  60701. scene.removeMesh(this._debugBoxMesh);
  60702. }
  60703. return this._debugBoxMesh.createInstance('physicsBodyBoxViewInstance');
  60704. };
  60705. PhysicsViewer.prototype._getDebugSphereMesh = function (scene) {
  60706. if (!this._debugSphereMesh) {
  60707. this._debugSphereMesh = BABYLON.MeshBuilder.CreateSphere('physicsBodySphereViewMesh', { diameter: 1 }, scene);
  60708. this._debugSphereMesh.renderingGroupId = 1;
  60709. this._debugSphereMesh.rotationQuaternion = BABYLON.Quaternion.Identity();
  60710. this._debugSphereMesh.material = this._getDebugMaterial(scene);
  60711. scene.removeMesh(this._debugSphereMesh);
  60712. }
  60713. return this._debugSphereMesh.createInstance('physicsBodyBoxViewInstance');
  60714. };
  60715. PhysicsViewer.prototype._getDebugMesh = function (impostor, scene) {
  60716. var mesh = null;
  60717. if (impostor.type == BABYLON.PhysicsImpostor.BoxImpostor) {
  60718. mesh = this._getDebugBoxMesh(scene);
  60719. impostor.getBoxSizeToRef(mesh.scaling);
  60720. }
  60721. else if (impostor.type == BABYLON.PhysicsImpostor.SphereImpostor) {
  60722. mesh = this._getDebugSphereMesh(scene);
  60723. var radius = impostor.getRadius();
  60724. mesh.scaling.x = radius * 2;
  60725. mesh.scaling.y = radius * 2;
  60726. mesh.scaling.z = radius * 2;
  60727. }
  60728. return mesh;
  60729. };
  60730. /** Releases all resources */
  60731. PhysicsViewer.prototype.dispose = function () {
  60732. for (var i = 0; i < this._numMeshes; i++) {
  60733. this.hideImpostor(this._impostors[i]);
  60734. }
  60735. if (this._debugBoxMesh) {
  60736. this._debugBoxMesh.dispose();
  60737. }
  60738. if (this._debugSphereMesh) {
  60739. this._debugSphereMesh.dispose();
  60740. }
  60741. if (this._debugMaterial) {
  60742. this._debugMaterial.dispose();
  60743. }
  60744. this._impostors.length = 0;
  60745. this._scene = null;
  60746. this._physicsEnginePlugin = null;
  60747. };
  60748. return PhysicsViewer;
  60749. }());
  60750. Debug.PhysicsViewer = PhysicsViewer;
  60751. })(Debug = BABYLON.Debug || (BABYLON.Debug = {}));
  60752. })(BABYLON || (BABYLON = {}));
  60753. //# sourceMappingURL=babylon.physicsViewer.js.map
  60754. var BABYLON;
  60755. (function (BABYLON) {
  60756. Object.defineProperty(BABYLON.Scene.prototype, "forceShowBoundingBoxes", {
  60757. get: function () {
  60758. return this._forceShowBoundingBoxes || false;
  60759. },
  60760. set: function (value) {
  60761. this._forceShowBoundingBoxes = value;
  60762. // Lazyly creates a BB renderer if needed.
  60763. if (value) {
  60764. this.getBoundingBoxRenderer();
  60765. }
  60766. },
  60767. enumerable: true,
  60768. configurable: true
  60769. });
  60770. BABYLON.Scene.prototype.getBoundingBoxRenderer = function () {
  60771. if (!this._boundingBoxRenderer) {
  60772. this._boundingBoxRenderer = new BoundingBoxRenderer(this);
  60773. }
  60774. return this._boundingBoxRenderer;
  60775. };
  60776. Object.defineProperty(BABYLON.AbstractMesh.prototype, "showBoundingBox", {
  60777. get: function () {
  60778. return this._showBoundingBox || false;
  60779. },
  60780. set: function (value) {
  60781. this._showBoundingBox = value;
  60782. // Lazyly creates a BB renderer if needed.
  60783. if (value) {
  60784. this.getScene().getBoundingBoxRenderer();
  60785. }
  60786. },
  60787. enumerable: true,
  60788. configurable: true
  60789. });
  60790. var BoundingBoxRenderer = /** @class */ (function () {
  60791. function BoundingBoxRenderer(scene) {
  60792. /**
  60793. * The component name helpfull to identify the component in the list of scene components.
  60794. */
  60795. this.name = BABYLON.SceneComponentConstants.NAME_BOUNDINGBOXRENDERER;
  60796. this.frontColor = new BABYLON.Color3(1, 1, 1);
  60797. this.backColor = new BABYLON.Color3(0.1, 0.1, 0.1);
  60798. this.showBackLines = true;
  60799. this.renderList = new BABYLON.SmartArray(32);
  60800. this._vertexBuffers = {};
  60801. this.scene = scene;
  60802. scene._addComponent(this);
  60803. }
  60804. /**
  60805. * Registers the component in a given scene
  60806. */
  60807. BoundingBoxRenderer.prototype.register = function () {
  60808. this.scene._beforeEvaluateActiveMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFOREEVALUATEACTIVEMESH_BOUNDINGBOXRENDERER, this, this.reset);
  60809. this.scene._activeMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_ACTIVEMESH_BOUNDINGBOXRENDERER, this, this._activeMesh);
  60810. this.scene._evaluateSubMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_EVALUATESUBMESH_BOUNDINGBOXRENDERER, this, this._evaluateSubMesh);
  60811. this.scene._afterCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERCAMERADRAW_BOUNDINGBOXRENDERER, this, this.render);
  60812. };
  60813. BoundingBoxRenderer.prototype._evaluateSubMesh = function (mesh, subMesh) {
  60814. if (mesh.showSubMeshesBoundingBox) {
  60815. var boundingInfo = subMesh.getBoundingInfo();
  60816. if (boundingInfo !== null && boundingInfo !== undefined) {
  60817. this.renderList.push(boundingInfo.boundingBox);
  60818. }
  60819. }
  60820. };
  60821. BoundingBoxRenderer.prototype._activeMesh = function (sourceMesh, mesh) {
  60822. if (sourceMesh.showBoundingBox || this.scene.forceShowBoundingBoxes) {
  60823. var boundingInfo = sourceMesh.getBoundingInfo();
  60824. this.renderList.push(boundingInfo.boundingBox);
  60825. }
  60826. };
  60827. BoundingBoxRenderer.prototype._prepareRessources = function () {
  60828. if (this._colorShader) {
  60829. return;
  60830. }
  60831. this._colorShader = new BABYLON.ShaderMaterial("colorShader", this.scene, "color", {
  60832. attributes: [BABYLON.VertexBuffer.PositionKind],
  60833. uniforms: ["world", "viewProjection", "color"]
  60834. });
  60835. var engine = this.scene.getEngine();
  60836. var boxdata = BABYLON.VertexData.CreateBox({ size: 1.0 });
  60837. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(engine, boxdata.positions, BABYLON.VertexBuffer.PositionKind, false);
  60838. this._createIndexBuffer();
  60839. };
  60840. BoundingBoxRenderer.prototype._createIndexBuffer = function () {
  60841. var engine = this.scene.getEngine();
  60842. this._indexBuffer = engine.createIndexBuffer([0, 1, 1, 2, 2, 3, 3, 0, 4, 5, 5, 6, 6, 7, 7, 4, 0, 7, 1, 6, 2, 5, 3, 4]);
  60843. };
  60844. /**
  60845. * Rebuilds the elements related to this component in case of
  60846. * context lost for instance.
  60847. */
  60848. BoundingBoxRenderer.prototype.rebuild = function () {
  60849. var vb = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  60850. if (vb) {
  60851. vb._rebuild();
  60852. }
  60853. this._createIndexBuffer();
  60854. };
  60855. BoundingBoxRenderer.prototype.reset = function () {
  60856. this.renderList.reset();
  60857. };
  60858. BoundingBoxRenderer.prototype.render = function () {
  60859. if (this.renderList.length === 0) {
  60860. return;
  60861. }
  60862. this._prepareRessources();
  60863. if (!this._colorShader.isReady()) {
  60864. return;
  60865. }
  60866. var engine = this.scene.getEngine();
  60867. engine.setDepthWrite(false);
  60868. this._colorShader._preBind();
  60869. for (var boundingBoxIndex = 0; boundingBoxIndex < this.renderList.length; boundingBoxIndex++) {
  60870. var boundingBox = this.renderList.data[boundingBoxIndex];
  60871. var min = boundingBox.minimum;
  60872. var max = boundingBox.maximum;
  60873. var diff = max.subtract(min);
  60874. var median = min.add(diff.scale(0.5));
  60875. var worldMatrix = BABYLON.Matrix.Scaling(diff.x, diff.y, diff.z)
  60876. .multiply(BABYLON.Matrix.Translation(median.x, median.y, median.z))
  60877. .multiply(boundingBox.getWorldMatrix());
  60878. // VBOs
  60879. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, this._colorShader.getEffect());
  60880. if (this.showBackLines) {
  60881. // Back
  60882. engine.setDepthFunctionToGreaterOrEqual();
  60883. this.scene.resetCachedMaterial();
  60884. this._colorShader.setColor4("color", this.backColor.toColor4());
  60885. this._colorShader.bind(worldMatrix);
  60886. // Draw order
  60887. engine.drawElementsType(BABYLON.Material.LineListDrawMode, 0, 24);
  60888. }
  60889. // Front
  60890. engine.setDepthFunctionToLess();
  60891. this.scene.resetCachedMaterial();
  60892. this._colorShader.setColor4("color", this.frontColor.toColor4());
  60893. this._colorShader.bind(worldMatrix);
  60894. // Draw order
  60895. engine.drawElementsType(BABYLON.Material.LineListDrawMode, 0, 24);
  60896. }
  60897. this._colorShader.unbind();
  60898. engine.setDepthFunctionToLessOrEqual();
  60899. engine.setDepthWrite(true);
  60900. };
  60901. BoundingBoxRenderer.prototype.renderOcclusionBoundingBox = function (mesh) {
  60902. this._prepareRessources();
  60903. if (!this._colorShader.isReady() || !mesh._boundingInfo) {
  60904. return;
  60905. }
  60906. var engine = this.scene.getEngine();
  60907. engine.setDepthWrite(false);
  60908. engine.setColorWrite(false);
  60909. this._colorShader._preBind();
  60910. var boundingBox = mesh._boundingInfo.boundingBox;
  60911. var min = boundingBox.minimum;
  60912. var max = boundingBox.maximum;
  60913. var diff = max.subtract(min);
  60914. var median = min.add(diff.scale(0.5));
  60915. var worldMatrix = BABYLON.Matrix.Scaling(diff.x, diff.y, diff.z)
  60916. .multiply(BABYLON.Matrix.Translation(median.x, median.y, median.z))
  60917. .multiply(boundingBox.getWorldMatrix());
  60918. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, this._colorShader.getEffect());
  60919. engine.setDepthFunctionToLess();
  60920. this.scene.resetCachedMaterial();
  60921. this._colorShader.bind(worldMatrix);
  60922. engine.drawElementsType(BABYLON.Material.LineListDrawMode, 0, 24);
  60923. this._colorShader.unbind();
  60924. engine.setDepthFunctionToLessOrEqual();
  60925. engine.setDepthWrite(true);
  60926. engine.setColorWrite(true);
  60927. };
  60928. BoundingBoxRenderer.prototype.dispose = function () {
  60929. if (!this._colorShader) {
  60930. return;
  60931. }
  60932. this.renderList.dispose();
  60933. this._colorShader.dispose();
  60934. var buffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  60935. if (buffer) {
  60936. buffer.dispose();
  60937. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  60938. }
  60939. this.scene.getEngine()._releaseBuffer(this._indexBuffer);
  60940. };
  60941. return BoundingBoxRenderer;
  60942. }());
  60943. BABYLON.BoundingBoxRenderer = BoundingBoxRenderer;
  60944. })(BABYLON || (BABYLON = {}));
  60945. //# sourceMappingURL=babylon.boundingBoxRenderer.js.map
  60946. var BABYLON;
  60947. (function (BABYLON) {
  60948. BABYLON.Engine.prototype.createTransformFeedback = function () {
  60949. return this._gl.createTransformFeedback();
  60950. };
  60951. BABYLON.Engine.prototype.deleteTransformFeedback = function (value) {
  60952. this._gl.deleteTransformFeedback(value);
  60953. };
  60954. BABYLON.Engine.prototype.bindTransformFeedback = function (value) {
  60955. this._gl.bindTransformFeedback(this._gl.TRANSFORM_FEEDBACK, value);
  60956. };
  60957. BABYLON.Engine.prototype.beginTransformFeedback = function (usePoints) {
  60958. if (usePoints === void 0) { usePoints = true; }
  60959. this._gl.beginTransformFeedback(usePoints ? this._gl.POINTS : this._gl.TRIANGLES);
  60960. };
  60961. BABYLON.Engine.prototype.endTransformFeedback = function () {
  60962. this._gl.endTransformFeedback();
  60963. };
  60964. BABYLON.Engine.prototype.setTranformFeedbackVaryings = function (program, value) {
  60965. this._gl.transformFeedbackVaryings(program, value, this._gl.INTERLEAVED_ATTRIBS);
  60966. };
  60967. BABYLON.Engine.prototype.bindTransformFeedbackBuffer = function (value) {
  60968. this._gl.bindBufferBase(this._gl.TRANSFORM_FEEDBACK_BUFFER, 0, value);
  60969. };
  60970. })(BABYLON || (BABYLON = {}));
  60971. //# sourceMappingURL=babylon.engine.transformFeedback.js.map
  60972. var BABYLON;
  60973. (function (BABYLON) {
  60974. /**
  60975. * This represents a GPU particle system in Babylon
  60976. * This is the fastest particle system in Babylon as it uses the GPU to update the individual particle data
  60977. * @see https://www.babylonjs-playground.com/#PU4WYI#4
  60978. */
  60979. var GPUParticleSystem = /** @class */ (function (_super) {
  60980. __extends(GPUParticleSystem, _super);
  60981. /**
  60982. * Instantiates a GPU particle system.
  60983. * Particles are often small sprites used to simulate hard-to-reproduce phenomena like fire, smoke, water, or abstract visual effects like magic glitter and faery dust.
  60984. * @param name The name of the particle system
  60985. * @param options The options used to create the system
  60986. * @param scene The scene the particle system belongs to
  60987. * @param isAnimationSheetEnabled Must be true if using a spritesheet to animate the particles texture
  60988. */
  60989. function GPUParticleSystem(name, options, scene, isAnimationSheetEnabled) {
  60990. if (isAnimationSheetEnabled === void 0) { isAnimationSheetEnabled = false; }
  60991. var _this = _super.call(this, name) || this;
  60992. /**
  60993. * The layer mask we are rendering the particles through.
  60994. */
  60995. _this.layerMask = 0x0FFFFFFF;
  60996. _this._accumulatedCount = 0;
  60997. _this._targetIndex = 0;
  60998. _this._currentRenderId = -1;
  60999. _this._started = false;
  61000. _this._stopped = false;
  61001. _this._timeDelta = 0;
  61002. _this._attributesStrideSize = 21;
  61003. _this._actualFrame = 0;
  61004. _this._rawTextureWidth = 256;
  61005. /**
  61006. * An event triggered when the system is disposed.
  61007. */
  61008. _this.onDisposeObservable = new BABYLON.Observable();
  61009. /**
  61010. * Forces the particle to write their depth information to the depth buffer. This can help preventing other draw calls
  61011. * to override the particles.
  61012. */
  61013. _this.forceDepthWrite = false;
  61014. _this._preWarmDone = false;
  61015. _this._scene = scene || BABYLON.Engine.LastCreatedScene;
  61016. // Setup the default processing configuration to the scene.
  61017. _this._attachImageProcessingConfiguration(null);
  61018. _this._engine = _this._scene.getEngine();
  61019. if (!options.randomTextureSize) {
  61020. delete options.randomTextureSize;
  61021. }
  61022. var fullOptions = __assign({ capacity: 50000, randomTextureSize: _this._engine.getCaps().maxTextureSize }, options);
  61023. var optionsAsNumber = options;
  61024. if (isFinite(optionsAsNumber)) {
  61025. fullOptions.capacity = optionsAsNumber;
  61026. }
  61027. _this._capacity = fullOptions.capacity;
  61028. _this._activeCount = fullOptions.capacity;
  61029. _this._currentActiveCount = 0;
  61030. _this._isAnimationSheetEnabled = isAnimationSheetEnabled;
  61031. _this._scene.particleSystems.push(_this);
  61032. _this._updateEffectOptions = {
  61033. attributes: ["position", "age", "life", "seed", "size", "color", "direction", "initialDirection", "angle", "cellIndex", "cellStartOffset"],
  61034. uniformsNames: ["currentCount", "timeDelta", "emitterWM", "lifeTime", "color1", "color2", "sizeRange", "scaleRange", "gravity", "emitPower",
  61035. "direction1", "direction2", "minEmitBox", "maxEmitBox", "radius", "directionRandomizer", "height", "coneAngle", "stopFactor",
  61036. "angleRange", "radiusRange", "cellInfos", "noiseStrength", "limitVelocityDamping"],
  61037. uniformBuffersNames: [],
  61038. samplers: ["randomSampler", "randomSampler2", "sizeGradientSampler", "angularSpeedGradientSampler", "velocityGradientSampler", "limitVelocityGradientSampler", "noiseSampler", "dragGradientSampler"],
  61039. defines: "",
  61040. fallbacks: null,
  61041. onCompiled: null,
  61042. onError: null,
  61043. indexParameters: null,
  61044. maxSimultaneousLights: 0,
  61045. transformFeedbackVaryings: []
  61046. };
  61047. _this.particleEmitterType = new BABYLON.BoxParticleEmitter();
  61048. // Random data
  61049. var maxTextureSize = Math.min(_this._engine.getCaps().maxTextureSize, fullOptions.randomTextureSize);
  61050. var d = [];
  61051. for (var i = 0; i < maxTextureSize; ++i) {
  61052. d.push(Math.random());
  61053. d.push(Math.random());
  61054. d.push(Math.random());
  61055. d.push(Math.random());
  61056. }
  61057. _this._randomTexture = new BABYLON.RawTexture(new Float32Array(d), maxTextureSize, 1, BABYLON.Engine.TEXTUREFORMAT_RGBA, _this._scene, false, false, BABYLON.Texture.NEAREST_SAMPLINGMODE, BABYLON.Engine.TEXTURETYPE_FLOAT);
  61058. _this._randomTexture.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  61059. _this._randomTexture.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  61060. d = [];
  61061. for (var i = 0; i < maxTextureSize; ++i) {
  61062. d.push(Math.random());
  61063. d.push(Math.random());
  61064. d.push(Math.random());
  61065. d.push(Math.random());
  61066. }
  61067. _this._randomTexture2 = new BABYLON.RawTexture(new Float32Array(d), maxTextureSize, 1, BABYLON.Engine.TEXTUREFORMAT_RGBA, _this._scene, false, false, BABYLON.Texture.NEAREST_SAMPLINGMODE, BABYLON.Engine.TEXTURETYPE_FLOAT);
  61068. _this._randomTexture2.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  61069. _this._randomTexture2.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  61070. _this._randomTextureSize = maxTextureSize;
  61071. return _this;
  61072. }
  61073. Object.defineProperty(GPUParticleSystem, "IsSupported", {
  61074. /**
  61075. * Gets a boolean indicating if the GPU particles can be rendered on current browser
  61076. */
  61077. get: function () {
  61078. if (!BABYLON.Engine.LastCreatedEngine) {
  61079. return false;
  61080. }
  61081. return BABYLON.Engine.LastCreatedEngine.webGLVersion > 1;
  61082. },
  61083. enumerable: true,
  61084. configurable: true
  61085. });
  61086. /**
  61087. * Gets the maximum number of particles active at the same time.
  61088. * @returns The max number of active particles.
  61089. */
  61090. GPUParticleSystem.prototype.getCapacity = function () {
  61091. return this._capacity;
  61092. };
  61093. Object.defineProperty(GPUParticleSystem.prototype, "activeParticleCount", {
  61094. /**
  61095. * Gets or set the number of active particles
  61096. */
  61097. get: function () {
  61098. return this._activeCount;
  61099. },
  61100. set: function (value) {
  61101. this._activeCount = Math.min(value, this._capacity);
  61102. },
  61103. enumerable: true,
  61104. configurable: true
  61105. });
  61106. /**
  61107. * Is this system ready to be used/rendered
  61108. * @return true if the system is ready
  61109. */
  61110. GPUParticleSystem.prototype.isReady = function () {
  61111. if (!this._updateEffect) {
  61112. this._recreateUpdateEffect();
  61113. this._recreateRenderEffect();
  61114. return false;
  61115. }
  61116. if (!this.emitter || !this._updateEffect.isReady() || !this._imageProcessingConfiguration.isReady() || !this._renderEffect.isReady() || !this.particleTexture || !this.particleTexture.isReady()) {
  61117. return false;
  61118. }
  61119. return true;
  61120. };
  61121. /**
  61122. * Gets if the system has been started. (Note: this will still be true after stop is called)
  61123. * @returns True if it has been started, otherwise false.
  61124. */
  61125. GPUParticleSystem.prototype.isStarted = function () {
  61126. return this._started;
  61127. };
  61128. /**
  61129. * Starts the particle system and begins to emit
  61130. * @param delay defines the delay in milliseconds before starting the system (0 by default)
  61131. */
  61132. GPUParticleSystem.prototype.start = function (delay) {
  61133. var _this = this;
  61134. if (delay === void 0) { delay = 0; }
  61135. if (delay) {
  61136. setTimeout(function () {
  61137. _this.start(0);
  61138. }, delay);
  61139. return;
  61140. }
  61141. this._started = true;
  61142. this._stopped = false;
  61143. this._preWarmDone = false;
  61144. };
  61145. /**
  61146. * Stops the particle system.
  61147. */
  61148. GPUParticleSystem.prototype.stop = function () {
  61149. this._stopped = true;
  61150. };
  61151. /**
  61152. * Remove all active particles
  61153. */
  61154. GPUParticleSystem.prototype.reset = function () {
  61155. this._releaseBuffers();
  61156. this._releaseVAOs();
  61157. this._currentActiveCount = 0;
  61158. this._targetIndex = 0;
  61159. };
  61160. /**
  61161. * Returns the string "GPUParticleSystem"
  61162. * @returns a string containing the class name
  61163. */
  61164. GPUParticleSystem.prototype.getClassName = function () {
  61165. return "GPUParticleSystem";
  61166. };
  61167. GPUParticleSystem.prototype._removeGradient = function (gradient, gradients, texture) {
  61168. if (!gradients) {
  61169. return this;
  61170. }
  61171. var index = 0;
  61172. for (var _i = 0, gradients_1 = gradients; _i < gradients_1.length; _i++) {
  61173. var valueGradient = gradients_1[_i];
  61174. if (valueGradient.gradient === gradient) {
  61175. gradients.splice(index, 1);
  61176. break;
  61177. }
  61178. index++;
  61179. }
  61180. if (texture) {
  61181. texture.dispose();
  61182. }
  61183. this._releaseBuffers();
  61184. return this;
  61185. };
  61186. /**
  61187. * Adds a new color gradient
  61188. * @param gradient defines the gradient to use (between 0 and 1)
  61189. * @param color defines the color to affect to the specified gradient
  61190. * @param color2 defines an additional color used to define a range ([color, color2]) with main color to pick the final color from
  61191. * @returns the current particle system
  61192. */
  61193. GPUParticleSystem.prototype.addColorGradient = function (gradient, color1, color2) {
  61194. if (!this._colorGradients) {
  61195. this._colorGradients = [];
  61196. }
  61197. var colorGradient = new BABYLON.ColorGradient();
  61198. colorGradient.gradient = gradient;
  61199. colorGradient.color1 = color1;
  61200. this._colorGradients.push(colorGradient);
  61201. this._colorGradients.sort(function (a, b) {
  61202. if (a.gradient < b.gradient) {
  61203. return -1;
  61204. }
  61205. else if (a.gradient > b.gradient) {
  61206. return 1;
  61207. }
  61208. return 0;
  61209. });
  61210. if (this._colorGradientsTexture) {
  61211. this._colorGradientsTexture.dispose();
  61212. this._colorGradientsTexture = null;
  61213. }
  61214. this._releaseBuffers();
  61215. return this;
  61216. };
  61217. /**
  61218. * Remove a specific color gradient
  61219. * @param gradient defines the gradient to remove
  61220. * @returns the current particle system
  61221. */
  61222. GPUParticleSystem.prototype.removeColorGradient = function (gradient) {
  61223. this._removeGradient(gradient, this._colorGradients, this._colorGradientsTexture);
  61224. this._colorGradientsTexture = null;
  61225. return this;
  61226. };
  61227. GPUParticleSystem.prototype._addFactorGradient = function (factorGradients, gradient, factor) {
  61228. var valueGradient = new BABYLON.FactorGradient();
  61229. valueGradient.gradient = gradient;
  61230. valueGradient.factor1 = factor;
  61231. factorGradients.push(valueGradient);
  61232. factorGradients.sort(function (a, b) {
  61233. if (a.gradient < b.gradient) {
  61234. return -1;
  61235. }
  61236. else if (a.gradient > b.gradient) {
  61237. return 1;
  61238. }
  61239. return 0;
  61240. });
  61241. this._releaseBuffers();
  61242. };
  61243. /**
  61244. * Adds a new size gradient
  61245. * @param gradient defines the gradient to use (between 0 and 1)
  61246. * @param factor defines the size factor to affect to the specified gradient
  61247. * @returns the current particle system
  61248. */
  61249. GPUParticleSystem.prototype.addSizeGradient = function (gradient, factor) {
  61250. if (!this._sizeGradients) {
  61251. this._sizeGradients = [];
  61252. }
  61253. this._addFactorGradient(this._sizeGradients, gradient, factor);
  61254. if (this._sizeGradientsTexture) {
  61255. this._sizeGradientsTexture.dispose();
  61256. this._sizeGradientsTexture = null;
  61257. }
  61258. this._releaseBuffers();
  61259. return this;
  61260. };
  61261. /**
  61262. * Remove a specific size gradient
  61263. * @param gradient defines the gradient to remove
  61264. * @returns the current particle system
  61265. */
  61266. GPUParticleSystem.prototype.removeSizeGradient = function (gradient) {
  61267. this._removeGradient(gradient, this._sizeGradients, this._sizeGradientsTexture);
  61268. this._sizeGradientsTexture = null;
  61269. return this;
  61270. };
  61271. /**
  61272. * Adds a new angular speed gradient
  61273. * @param gradient defines the gradient to use (between 0 and 1)
  61274. * @param factor defines the angular speed to affect to the specified gradient
  61275. * @returns the current particle system
  61276. */
  61277. GPUParticleSystem.prototype.addAngularSpeedGradient = function (gradient, factor) {
  61278. if (!this._angularSpeedGradients) {
  61279. this._angularSpeedGradients = [];
  61280. }
  61281. this._addFactorGradient(this._angularSpeedGradients, gradient, factor);
  61282. if (this._angularSpeedGradientsTexture) {
  61283. this._angularSpeedGradientsTexture.dispose();
  61284. this._angularSpeedGradientsTexture = null;
  61285. }
  61286. this._releaseBuffers();
  61287. return this;
  61288. };
  61289. /**
  61290. * Remove a specific angular speed gradient
  61291. * @param gradient defines the gradient to remove
  61292. * @returns the current particle system
  61293. */
  61294. GPUParticleSystem.prototype.removeAngularSpeedGradient = function (gradient) {
  61295. this._removeGradient(gradient, this._angularSpeedGradients, this._angularSpeedGradientsTexture);
  61296. this._angularSpeedGradientsTexture = null;
  61297. return this;
  61298. };
  61299. /**
  61300. * Adds a new velocity gradient
  61301. * @param gradient defines the gradient to use (between 0 and 1)
  61302. * @param factor defines the velocity to affect to the specified gradient
  61303. * @returns the current particle system
  61304. */
  61305. GPUParticleSystem.prototype.addVelocityGradient = function (gradient, factor) {
  61306. if (!this._velocityGradients) {
  61307. this._velocityGradients = [];
  61308. }
  61309. this._addFactorGradient(this._velocityGradients, gradient, factor);
  61310. if (this._velocityGradientsTexture) {
  61311. this._velocityGradientsTexture.dispose();
  61312. this._velocityGradientsTexture = null;
  61313. }
  61314. this._releaseBuffers();
  61315. return this;
  61316. };
  61317. /**
  61318. * Remove a specific velocity gradient
  61319. * @param gradient defines the gradient to remove
  61320. * @returns the current particle system
  61321. */
  61322. GPUParticleSystem.prototype.removeVelocityGradient = function (gradient) {
  61323. this._removeGradient(gradient, this._velocityGradients, this._velocityGradientsTexture);
  61324. this._velocityGradientsTexture = null;
  61325. return this;
  61326. };
  61327. /**
  61328. * Adds a new limit velocity gradient
  61329. * @param gradient defines the gradient to use (between 0 and 1)
  61330. * @param factor defines the limit velocity value to affect to the specified gradient
  61331. * @returns the current particle system
  61332. */
  61333. GPUParticleSystem.prototype.addLimitVelocityGradient = function (gradient, factor) {
  61334. if (!this._limitVelocityGradients) {
  61335. this._limitVelocityGradients = [];
  61336. }
  61337. this._addFactorGradient(this._limitVelocityGradients, gradient, factor);
  61338. if (this._limitVelocityGradientsTexture) {
  61339. this._limitVelocityGradientsTexture.dispose();
  61340. this._limitVelocityGradientsTexture = null;
  61341. }
  61342. this._releaseBuffers();
  61343. return this;
  61344. };
  61345. /**
  61346. * Remove a specific limit velocity gradient
  61347. * @param gradient defines the gradient to remove
  61348. * @returns the current particle system
  61349. */
  61350. GPUParticleSystem.prototype.removeLimitVelocityGradient = function (gradient) {
  61351. this._removeGradient(gradient, this._limitVelocityGradients, this._limitVelocityGradientsTexture);
  61352. this._limitVelocityGradientsTexture = null;
  61353. return this;
  61354. };
  61355. /**
  61356. * Adds a new drag gradient
  61357. * @param gradient defines the gradient to use (between 0 and 1)
  61358. * @param factor defines the drag value to affect to the specified gradient
  61359. * @returns the current particle system
  61360. */
  61361. GPUParticleSystem.prototype.addDragGradient = function (gradient, factor) {
  61362. if (!this._dragGradients) {
  61363. this._dragGradients = [];
  61364. }
  61365. this._addFactorGradient(this._dragGradients, gradient, factor);
  61366. if (this._dragGradientsTexture) {
  61367. this._dragGradientsTexture.dispose();
  61368. this._dragGradientsTexture = null;
  61369. }
  61370. this._releaseBuffers();
  61371. return this;
  61372. };
  61373. /**
  61374. * Remove a specific drag gradient
  61375. * @param gradient defines the gradient to remove
  61376. * @returns the current particle system
  61377. */
  61378. GPUParticleSystem.prototype.removeDragGradient = function (gradient) {
  61379. this._removeGradient(gradient, this._dragGradients, this._dragGradientsTexture);
  61380. this._dragGradientsTexture = null;
  61381. return this;
  61382. };
  61383. /**
  61384. * Not supported by GPUParticleSystem
  61385. * @param gradient defines the gradient to use (between 0 and 1)
  61386. * @param factor defines the emit rate value to affect to the specified gradient
  61387. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  61388. * @returns the current particle system
  61389. */
  61390. GPUParticleSystem.prototype.addEmitRateGradient = function (gradient, factor, factor2) {
  61391. // Do nothing as emit rate is not supported by GPUParticleSystem
  61392. return this;
  61393. };
  61394. /**
  61395. * Not supported by GPUParticleSystem
  61396. * @param gradient defines the gradient to remove
  61397. * @returns the current particle system
  61398. */
  61399. GPUParticleSystem.prototype.removeEmitRateGradient = function (gradient) {
  61400. // Do nothing as emit rate is not supported by GPUParticleSystem
  61401. return this;
  61402. };
  61403. /**
  61404. * Not supported by GPUParticleSystem
  61405. * @param gradient defines the gradient to use (between 0 and 1)
  61406. * @param factor defines the start size value to affect to the specified gradient
  61407. * @param factor2 defines an additional factor used to define a range ([factor, factor2]) with main value to pick the final value from
  61408. * @returns the current particle system
  61409. */
  61410. GPUParticleSystem.prototype.addStartSizeGradient = function (gradient, factor, factor2) {
  61411. // Do nothing as start size is not supported by GPUParticleSystem
  61412. return this;
  61413. };
  61414. /**
  61415. * Not supported by GPUParticleSystem
  61416. * @param gradient defines the gradient to remove
  61417. * @returns the current particle system
  61418. */
  61419. GPUParticleSystem.prototype.removeStartSizeGradient = function (gradient) {
  61420. // Do nothing as start size is not supported by GPUParticleSystem
  61421. return this;
  61422. };
  61423. GPUParticleSystem.prototype._reset = function () {
  61424. this._releaseBuffers();
  61425. };
  61426. GPUParticleSystem.prototype._createUpdateVAO = function (source) {
  61427. var updateVertexBuffers = {};
  61428. updateVertexBuffers["position"] = source.createVertexBuffer("position", 0, 3);
  61429. updateVertexBuffers["age"] = source.createVertexBuffer("age", 3, 1);
  61430. updateVertexBuffers["life"] = source.createVertexBuffer("life", 4, 1);
  61431. updateVertexBuffers["seed"] = source.createVertexBuffer("seed", 5, 4);
  61432. updateVertexBuffers["size"] = source.createVertexBuffer("size", 9, 3);
  61433. var offset = 12;
  61434. if (!this._colorGradientsTexture) {
  61435. updateVertexBuffers["color"] = source.createVertexBuffer("color", offset, 4);
  61436. offset += 4;
  61437. }
  61438. updateVertexBuffers["direction"] = source.createVertexBuffer("direction", offset, 3);
  61439. offset += 3;
  61440. if (!this._isBillboardBased) {
  61441. updateVertexBuffers["initialDirection"] = source.createVertexBuffer("initialDirection", offset, 3);
  61442. offset += 3;
  61443. }
  61444. if (this._angularSpeedGradientsTexture) {
  61445. updateVertexBuffers["angle"] = source.createVertexBuffer("angle", offset, 1);
  61446. offset += 1;
  61447. }
  61448. else {
  61449. updateVertexBuffers["angle"] = source.createVertexBuffer("angle", offset, 2);
  61450. offset += 2;
  61451. }
  61452. if (this._isAnimationSheetEnabled) {
  61453. updateVertexBuffers["cellIndex"] = source.createVertexBuffer("cellIndex", offset, 1);
  61454. offset += 1;
  61455. if (this.spriteRandomStartCell) {
  61456. updateVertexBuffers["cellStartOffset"] = source.createVertexBuffer("cellStartOffset", offset, 1);
  61457. offset += 1;
  61458. }
  61459. }
  61460. var vao = this._engine.recordVertexArrayObject(updateVertexBuffers, null, this._updateEffect);
  61461. this._engine.bindArrayBuffer(null);
  61462. return vao;
  61463. };
  61464. GPUParticleSystem.prototype._createRenderVAO = function (source, spriteSource) {
  61465. var renderVertexBuffers = {};
  61466. renderVertexBuffers["position"] = source.createVertexBuffer("position", 0, 3, this._attributesStrideSize, true);
  61467. renderVertexBuffers["age"] = source.createVertexBuffer("age", 3, 1, this._attributesStrideSize, true);
  61468. renderVertexBuffers["life"] = source.createVertexBuffer("life", 4, 1, this._attributesStrideSize, true);
  61469. renderVertexBuffers["size"] = source.createVertexBuffer("size", 9, 3, this._attributesStrideSize, true);
  61470. var offset = 12;
  61471. if (!this._colorGradientsTexture) {
  61472. renderVertexBuffers["color"] = source.createVertexBuffer("color", offset, 4, this._attributesStrideSize, true);
  61473. offset += 4;
  61474. }
  61475. offset += 3; // Direction
  61476. if (!this._isBillboardBased) {
  61477. renderVertexBuffers["initialDirection"] = source.createVertexBuffer("initialDirection", offset, 3, this._attributesStrideSize, true);
  61478. offset += 3;
  61479. }
  61480. renderVertexBuffers["angle"] = source.createVertexBuffer("angle", offset, 1, this._attributesStrideSize, true);
  61481. if (this._angularSpeedGradientsTexture) {
  61482. offset++;
  61483. }
  61484. else {
  61485. offset += 2;
  61486. }
  61487. if (this._isAnimationSheetEnabled) {
  61488. renderVertexBuffers["cellIndex"] = source.createVertexBuffer("cellIndex", offset, 1, this._attributesStrideSize, true);
  61489. offset += 1;
  61490. if (this.spriteRandomStartCell) {
  61491. renderVertexBuffers["cellStartOffset"] = source.createVertexBuffer("cellStartOffset", offset, 1, this._attributesStrideSize, true);
  61492. offset += 1;
  61493. }
  61494. }
  61495. renderVertexBuffers["offset"] = spriteSource.createVertexBuffer("offset", 0, 2);
  61496. renderVertexBuffers["uv"] = spriteSource.createVertexBuffer("uv", 2, 2);
  61497. var vao = this._engine.recordVertexArrayObject(renderVertexBuffers, null, this._renderEffect);
  61498. this._engine.bindArrayBuffer(null);
  61499. return vao;
  61500. };
  61501. GPUParticleSystem.prototype._initialize = function (force) {
  61502. if (force === void 0) { force = false; }
  61503. if (this._buffer0 && !force) {
  61504. return;
  61505. }
  61506. var engine = this._scene.getEngine();
  61507. var data = new Array();
  61508. if (!this.isBillboardBased) {
  61509. this._attributesStrideSize += 3;
  61510. }
  61511. if (this._colorGradientsTexture) {
  61512. this._attributesStrideSize -= 4;
  61513. }
  61514. if (this._angularSpeedGradientsTexture) {
  61515. this._attributesStrideSize -= 1;
  61516. }
  61517. if (this._isAnimationSheetEnabled) {
  61518. this._attributesStrideSize += 1;
  61519. if (this.spriteRandomStartCell) {
  61520. this._attributesStrideSize += 1;
  61521. }
  61522. }
  61523. for (var particleIndex = 0; particleIndex < this._capacity; particleIndex++) {
  61524. // position
  61525. data.push(0.0);
  61526. data.push(0.0);
  61527. data.push(0.0);
  61528. // Age and life
  61529. data.push(0.0); // create the particle as a dead one to create a new one at start
  61530. data.push(0.0);
  61531. // Seed
  61532. data.push(Math.random());
  61533. data.push(Math.random());
  61534. data.push(Math.random());
  61535. data.push(Math.random());
  61536. // Size
  61537. data.push(0.0);
  61538. data.push(0.0);
  61539. data.push(0.0);
  61540. if (!this._colorGradientsTexture) {
  61541. // color
  61542. data.push(0.0);
  61543. data.push(0.0);
  61544. data.push(0.0);
  61545. data.push(0.0);
  61546. }
  61547. // direction
  61548. data.push(0.0);
  61549. data.push(0.0);
  61550. data.push(0.0);
  61551. if (!this.isBillboardBased) {
  61552. // initialDirection
  61553. data.push(0.0);
  61554. data.push(0.0);
  61555. data.push(0.0);
  61556. }
  61557. // angle
  61558. data.push(0.0);
  61559. if (!this._angularSpeedGradientsTexture) {
  61560. data.push(0.0);
  61561. }
  61562. if (this._isAnimationSheetEnabled) {
  61563. data.push(0.0);
  61564. if (this.spriteRandomStartCell) {
  61565. data.push(0.0);
  61566. }
  61567. }
  61568. }
  61569. // Sprite data
  61570. var spriteData = new Float32Array([0.5, 0.5, 1, 1,
  61571. -0.5, 0.5, 0, 1,
  61572. -0.5, -0.5, 0, 0,
  61573. 0.5, -0.5, 1, 0]);
  61574. // Buffers
  61575. this._buffer0 = new BABYLON.Buffer(engine, data, false, this._attributesStrideSize);
  61576. this._buffer1 = new BABYLON.Buffer(engine, data, false, this._attributesStrideSize);
  61577. this._spriteBuffer = new BABYLON.Buffer(engine, spriteData, false, 4);
  61578. // Update VAO
  61579. this._updateVAO = [];
  61580. this._updateVAO.push(this._createUpdateVAO(this._buffer0));
  61581. this._updateVAO.push(this._createUpdateVAO(this._buffer1));
  61582. // Render VAO
  61583. this._renderVAO = [];
  61584. this._renderVAO.push(this._createRenderVAO(this._buffer1, this._spriteBuffer));
  61585. this._renderVAO.push(this._createRenderVAO(this._buffer0, this._spriteBuffer));
  61586. // Links
  61587. this._sourceBuffer = this._buffer0;
  61588. this._targetBuffer = this._buffer1;
  61589. };
  61590. /** @hidden */
  61591. GPUParticleSystem.prototype._recreateUpdateEffect = function () {
  61592. var defines = this.particleEmitterType ? this.particleEmitterType.getEffectDefines() : "";
  61593. if (this._isBillboardBased) {
  61594. defines += "\n#define BILLBOARD";
  61595. }
  61596. if (this._colorGradientsTexture) {
  61597. defines += "\n#define COLORGRADIENTS";
  61598. }
  61599. if (this._sizeGradientsTexture) {
  61600. defines += "\n#define SIZEGRADIENTS";
  61601. }
  61602. if (this._angularSpeedGradientsTexture) {
  61603. defines += "\n#define ANGULARSPEEDGRADIENTS";
  61604. }
  61605. if (this._velocityGradientsTexture) {
  61606. defines += "\n#define VELOCITYGRADIENTS";
  61607. }
  61608. if (this._limitVelocityGradientsTexture) {
  61609. defines += "\n#define LIMITVELOCITYGRADIENTS";
  61610. }
  61611. if (this._dragGradientsTexture) {
  61612. defines += "\n#define DRAGGRADIENTS";
  61613. }
  61614. if (this.isAnimationSheetEnabled) {
  61615. defines += "\n#define ANIMATESHEET";
  61616. if (this.spriteRandomStartCell) {
  61617. defines += "\n#define ANIMATESHEETRANDOMSTART";
  61618. }
  61619. }
  61620. if (this.noiseTexture) {
  61621. defines += "\n#define NOISE";
  61622. }
  61623. if (this._updateEffect && this._updateEffectOptions.defines === defines) {
  61624. return;
  61625. }
  61626. this._updateEffectOptions.transformFeedbackVaryings = ["outPosition", "outAge", "outLife", "outSeed", "outSize"];
  61627. if (!this._colorGradientsTexture) {
  61628. this._updateEffectOptions.transformFeedbackVaryings.push("outColor");
  61629. }
  61630. this._updateEffectOptions.transformFeedbackVaryings.push("outDirection");
  61631. if (!this._isBillboardBased) {
  61632. this._updateEffectOptions.transformFeedbackVaryings.push("outInitialDirection");
  61633. }
  61634. this._updateEffectOptions.transformFeedbackVaryings.push("outAngle");
  61635. if (this.isAnimationSheetEnabled) {
  61636. this._updateEffectOptions.transformFeedbackVaryings.push("outCellIndex");
  61637. if (this.spriteRandomStartCell) {
  61638. this._updateEffectOptions.transformFeedbackVaryings.push("outCellStartOffset");
  61639. }
  61640. }
  61641. this._updateEffectOptions.defines = defines;
  61642. this._updateEffect = new BABYLON.Effect("gpuUpdateParticles", this._updateEffectOptions, this._scene.getEngine());
  61643. };
  61644. /** @hidden */
  61645. GPUParticleSystem.prototype._recreateRenderEffect = function () {
  61646. var defines = "";
  61647. if (this._scene.clipPlane) {
  61648. defines = "\n#define CLIPPLANE";
  61649. }
  61650. if (this._scene.clipPlane2) {
  61651. defines = "\n#define CLIPPLANE2";
  61652. }
  61653. if (this._scene.clipPlane3) {
  61654. defines = "\n#define CLIPPLANE3";
  61655. }
  61656. if (this._scene.clipPlane4) {
  61657. defines = "\n#define CLIPPLANE4";
  61658. }
  61659. if (this.blendMode === BABYLON.ParticleSystem.BLENDMODE_MULTIPLY) {
  61660. defines = "\n#define BLENDMULTIPLYMODE";
  61661. }
  61662. if (this._isBillboardBased) {
  61663. defines += "\n#define BILLBOARD";
  61664. switch (this.billboardMode) {
  61665. case BABYLON.AbstractMesh.BILLBOARDMODE_Y:
  61666. defines += "\n#define BILLBOARDY";
  61667. break;
  61668. case BABYLON.AbstractMesh.BILLBOARDMODE_ALL:
  61669. default:
  61670. break;
  61671. }
  61672. }
  61673. if (this._colorGradientsTexture) {
  61674. defines += "\n#define COLORGRADIENTS";
  61675. }
  61676. if (this.isAnimationSheetEnabled) {
  61677. defines += "\n#define ANIMATESHEET";
  61678. }
  61679. if (this._imageProcessingConfiguration) {
  61680. this._imageProcessingConfiguration.prepareDefines(this._imageProcessingConfigurationDefines);
  61681. defines += "\n" + this._imageProcessingConfigurationDefines.toString();
  61682. }
  61683. if (this._renderEffect && this._renderEffect.defines === defines) {
  61684. return;
  61685. }
  61686. var uniforms = ["view", "projection", "colorDead", "invView", "vClipPlane", "vClipPlane2", "vClipPlane3", "vClipPlane4", "sheetInfos", "translationPivot", "eyePosition"];
  61687. var samplers = ["textureSampler", "colorGradientSampler"];
  61688. if (BABYLON.ImageProcessingConfiguration) {
  61689. BABYLON.ImageProcessingConfiguration.PrepareUniforms(uniforms, this._imageProcessingConfigurationDefines);
  61690. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, this._imageProcessingConfigurationDefines);
  61691. }
  61692. this._renderEffect = new BABYLON.Effect("gpuRenderParticles", ["position", "age", "life", "size", "color", "offset", "uv", "initialDirection", "angle", "cellIndex"], uniforms, samplers, this._scene.getEngine(), defines);
  61693. };
  61694. /**
  61695. * Animates the particle system for the current frame by emitting new particles and or animating the living ones.
  61696. * @param preWarm defines if we are in the pre-warmimg phase
  61697. */
  61698. GPUParticleSystem.prototype.animate = function (preWarm) {
  61699. if (preWarm === void 0) { preWarm = false; }
  61700. this._timeDelta = this.updateSpeed * (preWarm ? this.preWarmStepOffset : this._scene.getAnimationRatio());
  61701. this._actualFrame += this._timeDelta;
  61702. if (!this._stopped) {
  61703. if (this.targetStopDuration && this._actualFrame >= this.targetStopDuration) {
  61704. this.stop();
  61705. }
  61706. }
  61707. };
  61708. GPUParticleSystem.prototype._createFactorGradientTexture = function (factorGradients, textureName) {
  61709. var texture = this[textureName];
  61710. if (!factorGradients || !factorGradients.length || texture) {
  61711. return;
  61712. }
  61713. var data = new Float32Array(this._rawTextureWidth);
  61714. for (var x = 0; x < this._rawTextureWidth; x++) {
  61715. var ratio = x / this._rawTextureWidth;
  61716. BABYLON.Tools.GetCurrentGradient(ratio, factorGradients, function (currentGradient, nextGradient, scale) {
  61717. data[x] = BABYLON.Scalar.Lerp(currentGradient.factor1, nextGradient.factor1, scale);
  61718. });
  61719. }
  61720. this[textureName] = BABYLON.RawTexture.CreateRTexture(data, this._rawTextureWidth, 1, this._scene, false, false, BABYLON.Texture.NEAREST_SAMPLINGMODE);
  61721. };
  61722. GPUParticleSystem.prototype._createSizeGradientTexture = function () {
  61723. this._createFactorGradientTexture(this._sizeGradients, "_sizeGradientsTexture");
  61724. };
  61725. GPUParticleSystem.prototype._createAngularSpeedGradientTexture = function () {
  61726. this._createFactorGradientTexture(this._angularSpeedGradients, "_angularSpeedGradientsTexture");
  61727. };
  61728. GPUParticleSystem.prototype._createVelocityGradientTexture = function () {
  61729. this._createFactorGradientTexture(this._velocityGradients, "_velocityGradientsTexture");
  61730. };
  61731. GPUParticleSystem.prototype._createLimitVelocityGradientTexture = function () {
  61732. this._createFactorGradientTexture(this._limitVelocityGradients, "_limitVelocityGradientsTexture");
  61733. };
  61734. GPUParticleSystem.prototype._createDragGradientTexture = function () {
  61735. this._createFactorGradientTexture(this._dragGradients, "_dragGradientsTexture");
  61736. };
  61737. GPUParticleSystem.prototype._createColorGradientTexture = function () {
  61738. if (!this._colorGradients || !this._colorGradients.length || this._colorGradientsTexture) {
  61739. return;
  61740. }
  61741. var data = new Uint8Array(this._rawTextureWidth * 4);
  61742. var tmpColor = BABYLON.Tmp.Color4[0];
  61743. for (var x = 0; x < this._rawTextureWidth; x++) {
  61744. var ratio = x / this._rawTextureWidth;
  61745. BABYLON.Tools.GetCurrentGradient(ratio, this._colorGradients, function (currentGradient, nextGradient, scale) {
  61746. BABYLON.Color4.LerpToRef(currentGradient.color1, nextGradient.color1, scale, tmpColor);
  61747. data[x * 4] = tmpColor.r * 255;
  61748. data[x * 4 + 1] = tmpColor.g * 255;
  61749. data[x * 4 + 2] = tmpColor.b * 255;
  61750. data[x * 4 + 3] = tmpColor.a * 255;
  61751. });
  61752. }
  61753. this._colorGradientsTexture = BABYLON.RawTexture.CreateRGBATexture(data, this._rawTextureWidth, 1, this._scene, false, false, BABYLON.Texture.NEAREST_SAMPLINGMODE);
  61754. };
  61755. /**
  61756. * Renders the particle system in its current state
  61757. * @param preWarm defines if the system should only update the particles but not render them
  61758. * @returns the current number of particles
  61759. */
  61760. GPUParticleSystem.prototype.render = function (preWarm) {
  61761. if (preWarm === void 0) { preWarm = false; }
  61762. if (!this._started) {
  61763. return 0;
  61764. }
  61765. this._createColorGradientTexture();
  61766. this._createSizeGradientTexture();
  61767. this._createAngularSpeedGradientTexture();
  61768. this._createVelocityGradientTexture();
  61769. this._createLimitVelocityGradientTexture();
  61770. this._createDragGradientTexture();
  61771. this._recreateUpdateEffect();
  61772. this._recreateRenderEffect();
  61773. if (!this.isReady()) {
  61774. return 0;
  61775. }
  61776. if (!preWarm) {
  61777. if (!this._preWarmDone && this.preWarmCycles) {
  61778. for (var index = 0; index < this.preWarmCycles; index++) {
  61779. this.animate(true);
  61780. this.render(true);
  61781. }
  61782. this._preWarmDone = true;
  61783. }
  61784. if (this._currentRenderId === this._scene.getRenderId()) {
  61785. return 0;
  61786. }
  61787. this._currentRenderId = this._scene.getRenderId();
  61788. }
  61789. // Get everything ready to render
  61790. this._initialize();
  61791. this._accumulatedCount += this.emitRate * this._timeDelta;
  61792. if (this._accumulatedCount > 1) {
  61793. var intPart = this._accumulatedCount | 0;
  61794. this._accumulatedCount -= intPart;
  61795. this._currentActiveCount = Math.min(this._activeCount, this._currentActiveCount + intPart);
  61796. }
  61797. if (!this._currentActiveCount) {
  61798. return 0;
  61799. }
  61800. // Enable update effect
  61801. this._engine.enableEffect(this._updateEffect);
  61802. this._engine.setState(false);
  61803. this._updateEffect.setFloat("currentCount", this._currentActiveCount);
  61804. this._updateEffect.setFloat("timeDelta", this._timeDelta);
  61805. this._updateEffect.setFloat("stopFactor", this._stopped ? 0 : 1);
  61806. this._updateEffect.setTexture("randomSampler", this._randomTexture);
  61807. this._updateEffect.setTexture("randomSampler2", this._randomTexture2);
  61808. this._updateEffect.setFloat2("lifeTime", this.minLifeTime, this.maxLifeTime);
  61809. this._updateEffect.setFloat2("emitPower", this.minEmitPower, this.maxEmitPower);
  61810. if (!this._colorGradientsTexture) {
  61811. this._updateEffect.setDirectColor4("color1", this.color1);
  61812. this._updateEffect.setDirectColor4("color2", this.color2);
  61813. }
  61814. this._updateEffect.setFloat2("sizeRange", this.minSize, this.maxSize);
  61815. this._updateEffect.setFloat4("scaleRange", this.minScaleX, this.maxScaleX, this.minScaleY, this.maxScaleY);
  61816. this._updateEffect.setFloat4("angleRange", this.minAngularSpeed, this.maxAngularSpeed, this.minInitialRotation, this.maxInitialRotation);
  61817. this._updateEffect.setVector3("gravity", this.gravity);
  61818. if (this._sizeGradientsTexture) {
  61819. this._updateEffect.setTexture("sizeGradientSampler", this._sizeGradientsTexture);
  61820. }
  61821. if (this._angularSpeedGradientsTexture) {
  61822. this._updateEffect.setTexture("angularSpeedGradientSampler", this._angularSpeedGradientsTexture);
  61823. }
  61824. if (this._velocityGradientsTexture) {
  61825. this._updateEffect.setTexture("velocityGradientSampler", this._velocityGradientsTexture);
  61826. }
  61827. if (this._limitVelocityGradientsTexture) {
  61828. this._updateEffect.setTexture("limitVelocityGradientSampler", this._limitVelocityGradientsTexture);
  61829. this._updateEffect.setFloat("limitVelocityDamping", this.limitVelocityDamping);
  61830. }
  61831. if (this._dragGradientsTexture) {
  61832. this._updateEffect.setTexture("dragGradientSampler", this._dragGradientsTexture);
  61833. }
  61834. if (this.particleEmitterType) {
  61835. this.particleEmitterType.applyToShader(this._updateEffect);
  61836. }
  61837. if (this._isAnimationSheetEnabled) {
  61838. this._updateEffect.setFloat3("cellInfos", this.startSpriteCellID, this.endSpriteCellID, this.spriteCellChangeSpeed);
  61839. }
  61840. if (this.noiseTexture) {
  61841. this._updateEffect.setTexture("noiseSampler", this.noiseTexture);
  61842. this._updateEffect.setVector3("noiseStrength", this.noiseStrength);
  61843. }
  61844. var emitterWM;
  61845. if (this.emitter.position) {
  61846. var emitterMesh = this.emitter;
  61847. emitterWM = emitterMesh.getWorldMatrix();
  61848. }
  61849. else {
  61850. var emitterPosition = this.emitter;
  61851. emitterWM = BABYLON.Matrix.Translation(emitterPosition.x, emitterPosition.y, emitterPosition.z);
  61852. }
  61853. this._updateEffect.setMatrix("emitterWM", emitterWM);
  61854. // Bind source VAO
  61855. this._engine.bindVertexArrayObject(this._updateVAO[this._targetIndex], null);
  61856. // Update
  61857. this._engine.bindTransformFeedbackBuffer(this._targetBuffer.getBuffer());
  61858. this._engine.setRasterizerState(false);
  61859. this._engine.beginTransformFeedback(true);
  61860. this._engine.drawArraysType(BABYLON.Material.PointListDrawMode, 0, this._currentActiveCount);
  61861. this._engine.endTransformFeedback();
  61862. this._engine.setRasterizerState(true);
  61863. this._engine.bindTransformFeedbackBuffer(null);
  61864. if (!preWarm) {
  61865. // Enable render effect
  61866. this._engine.enableEffect(this._renderEffect);
  61867. var viewMatrix = this._scene.getViewMatrix();
  61868. this._renderEffect.setMatrix("view", viewMatrix);
  61869. this._renderEffect.setMatrix("projection", this._scene.getProjectionMatrix());
  61870. this._renderEffect.setTexture("textureSampler", this.particleTexture);
  61871. this._renderEffect.setVector2("translationPivot", this.translationPivot);
  61872. if (this._colorGradientsTexture) {
  61873. this._renderEffect.setTexture("colorGradientSampler", this._colorGradientsTexture);
  61874. }
  61875. else {
  61876. this._renderEffect.setDirectColor4("colorDead", this.colorDead);
  61877. }
  61878. if (this._isAnimationSheetEnabled && this.particleTexture) {
  61879. var baseSize = this.particleTexture.getBaseSize();
  61880. this._renderEffect.setFloat3("sheetInfos", this.spriteCellWidth / baseSize.width, this.spriteCellHeight / baseSize.height, baseSize.width / this.spriteCellWidth);
  61881. }
  61882. if (this._isBillboardBased) {
  61883. var camera = this._scene.activeCamera;
  61884. this._renderEffect.setVector3("eyePosition", camera.globalPosition);
  61885. }
  61886. if (this._scene.clipPlane || this._scene.clipPlane2 || this._scene.clipPlane3 || this._scene.clipPlane4) {
  61887. var invView = viewMatrix.clone();
  61888. invView.invert();
  61889. this._renderEffect.setMatrix("invView", invView);
  61890. BABYLON.MaterialHelper.BindClipPlane(this._renderEffect, this._scene);
  61891. }
  61892. // image processing
  61893. if (this._imageProcessingConfiguration && !this._imageProcessingConfiguration.applyByPostProcess) {
  61894. this._imageProcessingConfiguration.bind(this._renderEffect);
  61895. }
  61896. // Draw order
  61897. switch (this.blendMode) {
  61898. case BABYLON.ParticleSystem.BLENDMODE_ADD:
  61899. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_ADD);
  61900. break;
  61901. case BABYLON.ParticleSystem.BLENDMODE_ONEONE:
  61902. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_ONEONE);
  61903. break;
  61904. case BABYLON.ParticleSystem.BLENDMODE_STANDARD:
  61905. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  61906. break;
  61907. case BABYLON.ParticleSystem.BLENDMODE_MULTIPLY:
  61908. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_MULTIPLY);
  61909. break;
  61910. }
  61911. if (this.forceDepthWrite) {
  61912. this._engine.setDepthWrite(true);
  61913. }
  61914. // Bind source VAO
  61915. this._engine.bindVertexArrayObject(this._renderVAO[this._targetIndex], null);
  61916. // Render
  61917. this._engine.drawArraysType(BABYLON.Material.TriangleFanDrawMode, 0, 4, this._currentActiveCount);
  61918. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  61919. }
  61920. // Switch VAOs
  61921. this._targetIndex++;
  61922. if (this._targetIndex === 2) {
  61923. this._targetIndex = 0;
  61924. }
  61925. // Switch buffers
  61926. var tmpBuffer = this._sourceBuffer;
  61927. this._sourceBuffer = this._targetBuffer;
  61928. this._targetBuffer = tmpBuffer;
  61929. return this._currentActiveCount;
  61930. };
  61931. /**
  61932. * Rebuilds the particle system
  61933. */
  61934. GPUParticleSystem.prototype.rebuild = function () {
  61935. this._initialize(true);
  61936. };
  61937. GPUParticleSystem.prototype._releaseBuffers = function () {
  61938. if (this._buffer0) {
  61939. this._buffer0.dispose();
  61940. this._buffer0 = null;
  61941. }
  61942. if (this._buffer1) {
  61943. this._buffer1.dispose();
  61944. this._buffer1 = null;
  61945. }
  61946. if (this._spriteBuffer) {
  61947. this._spriteBuffer.dispose();
  61948. this._spriteBuffer = null;
  61949. }
  61950. };
  61951. GPUParticleSystem.prototype._releaseVAOs = function () {
  61952. if (!this._updateVAO) {
  61953. return;
  61954. }
  61955. for (var index = 0; index < this._updateVAO.length; index++) {
  61956. this._engine.releaseVertexArrayObject(this._updateVAO[index]);
  61957. }
  61958. this._updateVAO = [];
  61959. for (var index = 0; index < this._renderVAO.length; index++) {
  61960. this._engine.releaseVertexArrayObject(this._renderVAO[index]);
  61961. }
  61962. this._renderVAO = [];
  61963. };
  61964. /**
  61965. * Disposes the particle system and free the associated resources
  61966. * @param disposeTexture defines if the particule texture must be disposed as well (true by default)
  61967. */
  61968. GPUParticleSystem.prototype.dispose = function (disposeTexture) {
  61969. if (disposeTexture === void 0) { disposeTexture = true; }
  61970. var index = this._scene.particleSystems.indexOf(this);
  61971. if (index > -1) {
  61972. this._scene.particleSystems.splice(index, 1);
  61973. }
  61974. this._releaseBuffers();
  61975. this._releaseVAOs();
  61976. if (this._colorGradientsTexture) {
  61977. this._colorGradientsTexture.dispose();
  61978. this._colorGradientsTexture = null;
  61979. }
  61980. if (this._sizeGradientsTexture) {
  61981. this._sizeGradientsTexture.dispose();
  61982. this._sizeGradientsTexture = null;
  61983. }
  61984. if (this._angularSpeedGradientsTexture) {
  61985. this._angularSpeedGradientsTexture.dispose();
  61986. this._angularSpeedGradientsTexture = null;
  61987. }
  61988. if (this._velocityGradientsTexture) {
  61989. this._velocityGradientsTexture.dispose();
  61990. this._velocityGradientsTexture = null;
  61991. }
  61992. if (this._limitVelocityGradientsTexture) {
  61993. this._limitVelocityGradientsTexture.dispose();
  61994. this._limitVelocityGradientsTexture = null;
  61995. }
  61996. if (this._dragGradientsTexture) {
  61997. this._dragGradientsTexture.dispose();
  61998. this._dragGradientsTexture = null;
  61999. }
  62000. if (this._randomTexture) {
  62001. this._randomTexture.dispose();
  62002. this._randomTexture = null;
  62003. }
  62004. if (this._randomTexture2) {
  62005. this._randomTexture2.dispose();
  62006. this._randomTexture2 = null;
  62007. }
  62008. if (disposeTexture && this.particleTexture) {
  62009. this.particleTexture.dispose();
  62010. this.particleTexture = null;
  62011. }
  62012. if (disposeTexture && this.noiseTexture) {
  62013. this.noiseTexture.dispose();
  62014. this.noiseTexture = null;
  62015. }
  62016. // Callback
  62017. this.onDisposeObservable.notifyObservers(this);
  62018. this.onDisposeObservable.clear();
  62019. };
  62020. /**
  62021. * Clones the particle system.
  62022. * @param name The name of the cloned object
  62023. * @param newEmitter The new emitter to use
  62024. * @returns the cloned particle system
  62025. */
  62026. GPUParticleSystem.prototype.clone = function (name, newEmitter) {
  62027. var result = new GPUParticleSystem(name, { capacity: this._capacity, randomTextureSize: this._randomTextureSize }, this._scene);
  62028. BABYLON.Tools.DeepCopy(this, result);
  62029. if (newEmitter === undefined) {
  62030. newEmitter = this.emitter;
  62031. }
  62032. result.emitter = newEmitter;
  62033. if (this.particleTexture) {
  62034. result.particleTexture = new BABYLON.Texture(this.particleTexture.url, this._scene);
  62035. }
  62036. return result;
  62037. };
  62038. /**
  62039. * Serializes the particle system to a JSON object.
  62040. * @returns the JSON object
  62041. */
  62042. GPUParticleSystem.prototype.serialize = function () {
  62043. var serializationObject = {};
  62044. BABYLON.ParticleSystem._Serialize(serializationObject, this);
  62045. serializationObject.activeParticleCount = this.activeParticleCount;
  62046. return serializationObject;
  62047. };
  62048. /**
  62049. * Parses a JSON object to create a GPU particle system.
  62050. * @param parsedParticleSystem The JSON object to parse
  62051. * @param scene The scene to create the particle system in
  62052. * @param rootUrl The root url to use to load external dependencies like texture
  62053. * @returns the parsed GPU particle system
  62054. */
  62055. GPUParticleSystem.Parse = function (parsedParticleSystem, scene, rootUrl) {
  62056. var name = parsedParticleSystem.name;
  62057. var particleSystem = new GPUParticleSystem(name, { capacity: parsedParticleSystem.capacity, randomTextureSize: parsedParticleSystem.randomTextureSize }, scene);
  62058. if (parsedParticleSystem.activeParticleCount) {
  62059. particleSystem.activeParticleCount = parsedParticleSystem.activeParticleCount;
  62060. }
  62061. BABYLON.ParticleSystem._Parse(parsedParticleSystem, particleSystem, scene, rootUrl);
  62062. return particleSystem;
  62063. };
  62064. return GPUParticleSystem;
  62065. }(BABYLON.BaseParticleSystem));
  62066. BABYLON.GPUParticleSystem = GPUParticleSystem;
  62067. })(BABYLON || (BABYLON = {}));
  62068. //# sourceMappingURL=babylon.gpuParticleSystem.js.map
  62069. var BABYLON;
  62070. (function (BABYLON) {
  62071. /**
  62072. * Represents one particle of a solid particle system.
  62073. */
  62074. var SolidParticle = /** @class */ (function () {
  62075. /**
  62076. * Creates a Solid Particle object.
  62077. * Don't create particles manually, use instead the Solid Particle System internal tools like _addParticle()
  62078. * @param particleIndex (integer) is the particle index in the Solid Particle System pool. It's also the particle identifier.
  62079. * @param positionIndex (integer) is the starting index of the particle vertices in the SPS "positions" array.
  62080. * @param indiceIndex (integer) is the starting index of the particle indices in the SPS "indices" array.
  62081. * @param model (ModelShape) is a reference to the model shape on what the particle is designed.
  62082. * @param shapeId (integer) is the model shape identifier in the SPS.
  62083. * @param idxInShape (integer) is the index of the particle in the current model (ex: the 10th box of addShape(box, 30))
  62084. * @param modelBoundingInfo is the reference to the model BoundingInfo used for intersection computations.
  62085. */
  62086. function SolidParticle(particleIndex, positionIndex, indiceIndex, model, shapeId, idxInShape, sps, modelBoundingInfo) {
  62087. if (modelBoundingInfo === void 0) { modelBoundingInfo = null; }
  62088. /**
  62089. * particle global index
  62090. */
  62091. this.idx = 0;
  62092. /**
  62093. * The color of the particle
  62094. */
  62095. this.color = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  62096. /**
  62097. * The world space position of the particle.
  62098. */
  62099. this.position = BABYLON.Vector3.Zero();
  62100. /**
  62101. * The world space rotation of the particle. (Not use if rotationQuaternion is set)
  62102. */
  62103. this.rotation = BABYLON.Vector3.Zero();
  62104. /**
  62105. * The scaling of the particle.
  62106. */
  62107. this.scaling = BABYLON.Vector3.One();
  62108. /**
  62109. * The uvs of the particle.
  62110. */
  62111. this.uvs = new BABYLON.Vector4(0.0, 0.0, 1.0, 1.0);
  62112. /**
  62113. * The current speed of the particle.
  62114. */
  62115. this.velocity = BABYLON.Vector3.Zero();
  62116. /**
  62117. * The pivot point in the particle local space.
  62118. */
  62119. this.pivot = BABYLON.Vector3.Zero();
  62120. /**
  62121. * Must the particle be translated from its pivot point in its local space ?
  62122. * In this case, the pivot point is set at the origin of the particle local space and the particle is translated.
  62123. * Default : false
  62124. */
  62125. this.translateFromPivot = false;
  62126. /**
  62127. * Is the particle active or not ?
  62128. */
  62129. this.alive = true;
  62130. /**
  62131. * Is the particle visible or not ?
  62132. */
  62133. this.isVisible = true;
  62134. /**
  62135. * Index of this particle in the global "positions" array (Internal use)
  62136. * @hidden
  62137. */
  62138. this._pos = 0;
  62139. /**
  62140. * @hidden Index of this particle in the global "indices" array (Internal use)
  62141. */
  62142. this._ind = 0;
  62143. /**
  62144. * ModelShape id of this particle
  62145. */
  62146. this.shapeId = 0;
  62147. /**
  62148. * Index of the particle in its shape id (Internal use)
  62149. */
  62150. this.idxInShape = 0;
  62151. /**
  62152. * @hidden Still set as invisible in order to skip useless computations (Internal use)
  62153. */
  62154. this._stillInvisible = false;
  62155. /**
  62156. * @hidden Last computed particle rotation matrix
  62157. */
  62158. this._rotationMatrix = [1.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 1.0];
  62159. /**
  62160. * Parent particle Id, if any.
  62161. * Default null.
  62162. */
  62163. this.parentId = null;
  62164. /**
  62165. * @hidden Internal global position in the SPS.
  62166. */
  62167. this._globalPosition = BABYLON.Vector3.Zero();
  62168. this.idx = particleIndex;
  62169. this._pos = positionIndex;
  62170. this._ind = indiceIndex;
  62171. this._model = model;
  62172. this.shapeId = shapeId;
  62173. this.idxInShape = idxInShape;
  62174. this._sps = sps;
  62175. if (modelBoundingInfo) {
  62176. this._modelBoundingInfo = modelBoundingInfo;
  62177. this._boundingInfo = new BABYLON.BoundingInfo(modelBoundingInfo.minimum, modelBoundingInfo.maximum);
  62178. }
  62179. }
  62180. Object.defineProperty(SolidParticle.prototype, "scale", {
  62181. /**
  62182. * Legacy support, changed scale to scaling
  62183. */
  62184. get: function () {
  62185. return this.scaling;
  62186. },
  62187. /**
  62188. * Legacy support, changed scale to scaling
  62189. */
  62190. set: function (scale) {
  62191. this.scaling = scale;
  62192. },
  62193. enumerable: true,
  62194. configurable: true
  62195. });
  62196. Object.defineProperty(SolidParticle.prototype, "quaternion", {
  62197. /**
  62198. * Legacy support, changed quaternion to rotationQuaternion
  62199. */
  62200. get: function () {
  62201. return this.rotationQuaternion;
  62202. },
  62203. /**
  62204. * Legacy support, changed quaternion to rotationQuaternion
  62205. */
  62206. set: function (q) {
  62207. this.rotationQuaternion = q;
  62208. },
  62209. enumerable: true,
  62210. configurable: true
  62211. });
  62212. /**
  62213. * Returns a boolean. True if the particle intersects another particle or another mesh, else false.
  62214. * The intersection is computed on the particle bounding sphere and Axis Aligned Bounding Box (AABB)
  62215. * @param target is the object (solid particle or mesh) what the intersection is computed against.
  62216. * @returns true if it intersects
  62217. */
  62218. SolidParticle.prototype.intersectsMesh = function (target) {
  62219. if (!this._boundingInfo || !target._boundingInfo) {
  62220. return false;
  62221. }
  62222. if (this._sps._bSphereOnly) {
  62223. return BABYLON.BoundingSphere.Intersects(this._boundingInfo.boundingSphere, target._boundingInfo.boundingSphere);
  62224. }
  62225. return this._boundingInfo.intersects(target._boundingInfo, false);
  62226. };
  62227. return SolidParticle;
  62228. }());
  62229. BABYLON.SolidParticle = SolidParticle;
  62230. /**
  62231. * Represents the shape of the model used by one particle of a solid particle system.
  62232. * SPS internal tool, don't use it manually.
  62233. */
  62234. var ModelShape = /** @class */ (function () {
  62235. /**
  62236. * Creates a ModelShape object. This is an internal simplified reference to a mesh used as for a model to replicate particles from by the SPS.
  62237. * SPS internal tool, don't use it manually.
  62238. * @hidden
  62239. */
  62240. function ModelShape(id, shape, indicesLength, shapeUV, posFunction, vtxFunction) {
  62241. /**
  62242. * length of the shape in the model indices array (internal use)
  62243. * @hidden
  62244. */
  62245. this._indicesLength = 0;
  62246. this.shapeID = id;
  62247. this._shape = shape;
  62248. this._indicesLength = indicesLength;
  62249. this._shapeUV = shapeUV;
  62250. this._positionFunction = posFunction;
  62251. this._vertexFunction = vtxFunction;
  62252. }
  62253. return ModelShape;
  62254. }());
  62255. BABYLON.ModelShape = ModelShape;
  62256. /**
  62257. * Represents a Depth Sorted Particle in the solid particle system.
  62258. */
  62259. var DepthSortedParticle = /** @class */ (function () {
  62260. function DepthSortedParticle() {
  62261. /**
  62262. * Index of the particle in the "indices" array
  62263. */
  62264. this.ind = 0;
  62265. /**
  62266. * Length of the particle shape in the "indices" array
  62267. */
  62268. this.indicesLength = 0;
  62269. /**
  62270. * Squared distance from the particle to the camera
  62271. */
  62272. this.sqDistance = 0.0;
  62273. }
  62274. return DepthSortedParticle;
  62275. }());
  62276. BABYLON.DepthSortedParticle = DepthSortedParticle;
  62277. })(BABYLON || (BABYLON = {}));
  62278. //# sourceMappingURL=babylon.solidParticle.js.map
  62279. var BABYLON;
  62280. (function (BABYLON) {
  62281. /**
  62282. * The SPS is a single updatable mesh. The solid particles are simply separate parts or faces fo this big mesh.
  62283. *As it is just a mesh, the SPS has all the same properties than any other BJS mesh : not more, not less. It can be scaled, rotated, translated, enlighted, textured, moved, etc.
  62284. * The SPS is also a particle system. It provides some methods to manage the particles.
  62285. * However it is behavior agnostic. This means it has no emitter, no particle physics, no particle recycler. You have to implement your own behavior.
  62286. *
  62287. * Full documentation here : http://doc.babylonjs.com/overviews/Solid_Particle_System
  62288. */
  62289. var SolidParticleSystem = /** @class */ (function () {
  62290. /**
  62291. * Creates a SPS (Solid Particle System) object.
  62292. * @param name (String) is the SPS name, this will be the underlying mesh name.
  62293. * @param scene (Scene) is the scene in which the SPS is added.
  62294. * @param updatable (optional boolean, default true) : if the SPS must be updatable or immutable.
  62295. * @param isPickable (optional boolean, default false) : if the solid particles must be pickable.
  62296. * @param enableDepthSort (optional boolean, default false) : if the solid particles must be sorted in the geometry according to their distance to the camera.
  62297. * @param particleIntersection (optional boolean, default false) : if the solid particle intersections must be computed.
  62298. * @param boundingSphereOnly (optional boolean, default false) : if the particle intersection must be computed only with the bounding sphere (no bounding box computation, so faster).
  62299. * @param bSphereRadiusFactor (optional float, default 1.0) : a number to multiply the boundind sphere radius by in order to reduce it for instance.
  62300. * @example bSphereRadiusFactor = 1.0 / Math.sqrt(3.0) => the bounding sphere exactly matches a spherical mesh.
  62301. */
  62302. function SolidParticleSystem(name, scene, options) {
  62303. /**
  62304. * The SPS array of Solid Particle objects. Just access each particle as with any classic array.
  62305. * Example : var p = SPS.particles[i];
  62306. */
  62307. this.particles = new Array();
  62308. /**
  62309. * The SPS total number of particles. Read only. Use SPS.counter instead if you need to set your own value.
  62310. */
  62311. this.nbParticles = 0;
  62312. /**
  62313. * If the particles must ever face the camera (default false). Useful for planar particles.
  62314. */
  62315. this.billboard = false;
  62316. /**
  62317. * Recompute normals when adding a shape
  62318. */
  62319. this.recomputeNormals = true;
  62320. /**
  62321. * This a counter ofr your own usage. It's not set by any SPS functions.
  62322. */
  62323. this.counter = 0;
  62324. /**
  62325. * This empty object is intended to store some SPS specific or temporary values in order to lower the Garbage Collector activity.
  62326. * Please read : http://doc.babylonjs.com/overviews/Solid_Particle_System#garbage-collector-concerns
  62327. */
  62328. this.vars = {};
  62329. /**
  62330. * If the particle intersection must be computed only with the bounding sphere (no bounding box computation, so faster). (Internal use only)
  62331. * @hidden
  62332. */
  62333. this._bSphereOnly = false;
  62334. /**
  62335. * A number to multiply the boundind sphere radius by in order to reduce it for instance. (Internal use only)
  62336. * @hidden
  62337. */
  62338. this._bSphereRadiusFactor = 1.0;
  62339. this._positions = new Array();
  62340. this._indices = new Array();
  62341. this._normals = new Array();
  62342. this._colors = new Array();
  62343. this._uvs = new Array();
  62344. this._index = 0; // indices index
  62345. this._updatable = true;
  62346. this._pickable = false;
  62347. this._isVisibilityBoxLocked = false;
  62348. this._alwaysVisible = false;
  62349. this._depthSort = false;
  62350. this._shapeCounter = 0;
  62351. this._copy = new BABYLON.SolidParticle(0, 0, 0, null, 0, 0, this);
  62352. this._color = new BABYLON.Color4(0, 0, 0, 0);
  62353. this._computeParticleColor = true;
  62354. this._computeParticleTexture = true;
  62355. this._computeParticleRotation = true;
  62356. this._computeParticleVertex = false;
  62357. this._computeBoundingBox = false;
  62358. this._depthSortParticles = true;
  62359. this._cam_axisZ = BABYLON.Vector3.Zero();
  62360. this._cam_axisY = BABYLON.Vector3.Zero();
  62361. this._cam_axisX = BABYLON.Vector3.Zero();
  62362. this._axisZ = BABYLON.Axis.Z;
  62363. this._camDir = BABYLON.Vector3.Zero();
  62364. this._camInvertedPosition = BABYLON.Vector3.Zero();
  62365. this._rotMatrix = new BABYLON.Matrix();
  62366. this._invertMatrix = new BABYLON.Matrix();
  62367. this._rotated = BABYLON.Vector3.Zero();
  62368. this._quaternion = new BABYLON.Quaternion();
  62369. this._vertex = BABYLON.Vector3.Zero();
  62370. this._normal = BABYLON.Vector3.Zero();
  62371. this._yaw = 0.0;
  62372. this._pitch = 0.0;
  62373. this._roll = 0.0;
  62374. this._halfroll = 0.0;
  62375. this._halfpitch = 0.0;
  62376. this._halfyaw = 0.0;
  62377. this._sinRoll = 0.0;
  62378. this._cosRoll = 0.0;
  62379. this._sinPitch = 0.0;
  62380. this._cosPitch = 0.0;
  62381. this._sinYaw = 0.0;
  62382. this._cosYaw = 0.0;
  62383. this._mustUnrotateFixedNormals = false;
  62384. this._minimum = BABYLON.Vector3.Zero();
  62385. this._maximum = BABYLON.Vector3.Zero();
  62386. this._minBbox = BABYLON.Vector3.Zero();
  62387. this._maxBbox = BABYLON.Vector3.Zero();
  62388. this._particlesIntersect = false;
  62389. this._depthSortFunction = function (p1, p2) {
  62390. return (p2.sqDistance - p1.sqDistance);
  62391. };
  62392. this._needs32Bits = false;
  62393. this._pivotBackTranslation = BABYLON.Vector3.Zero();
  62394. this._scaledPivot = BABYLON.Vector3.Zero();
  62395. this._particleHasParent = false;
  62396. this.name = name;
  62397. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  62398. this._camera = scene.activeCamera;
  62399. this._pickable = options ? options.isPickable : false;
  62400. this._depthSort = options ? options.enableDepthSort : false;
  62401. this._particlesIntersect = options ? options.particleIntersection : false;
  62402. this._bSphereOnly = options ? options.boundingSphereOnly : false;
  62403. this._bSphereRadiusFactor = (options && options.bSphereRadiusFactor) ? options.bSphereRadiusFactor : 1.0;
  62404. if (options && options.updatable !== undefined) {
  62405. this._updatable = options.updatable;
  62406. }
  62407. else {
  62408. this._updatable = true;
  62409. }
  62410. if (this._pickable) {
  62411. this.pickedParticles = [];
  62412. }
  62413. if (this._depthSort) {
  62414. this.depthSortedParticles = [];
  62415. }
  62416. }
  62417. /**
  62418. * Builds the SPS underlying mesh. Returns a standard Mesh.
  62419. * If no model shape was added to the SPS, the returned mesh is just a single triangular plane.
  62420. * @returns the created mesh
  62421. */
  62422. SolidParticleSystem.prototype.buildMesh = function () {
  62423. if (this.nbParticles === 0) {
  62424. var triangle = BABYLON.MeshBuilder.CreateDisc("", { radius: 1, tessellation: 3 }, this._scene);
  62425. this.addShape(triangle, 1);
  62426. triangle.dispose();
  62427. }
  62428. this._indices32 = (this._needs32Bits) ? new Uint32Array(this._indices) : new Uint16Array(this._indices);
  62429. this._positions32 = new Float32Array(this._positions);
  62430. this._uvs32 = new Float32Array(this._uvs);
  62431. this._colors32 = new Float32Array(this._colors);
  62432. if (this.recomputeNormals) {
  62433. BABYLON.VertexData.ComputeNormals(this._positions32, this._indices32, this._normals);
  62434. }
  62435. this._normals32 = new Float32Array(this._normals);
  62436. this._fixedNormal32 = new Float32Array(this._normals);
  62437. if (this._mustUnrotateFixedNormals) { // the particles could be created already rotated in the mesh with a positionFunction
  62438. this._unrotateFixedNormals();
  62439. }
  62440. var vertexData = new BABYLON.VertexData();
  62441. vertexData.indices = (this._depthSort) ? this._indices : this._indices32;
  62442. vertexData.set(this._positions32, BABYLON.VertexBuffer.PositionKind);
  62443. vertexData.set(this._normals32, BABYLON.VertexBuffer.NormalKind);
  62444. if (this._uvs32.length > 0) {
  62445. vertexData.set(this._uvs32, BABYLON.VertexBuffer.UVKind);
  62446. }
  62447. if (this._colors32.length > 0) {
  62448. vertexData.set(this._colors32, BABYLON.VertexBuffer.ColorKind);
  62449. }
  62450. var mesh = new BABYLON.Mesh(this.name, this._scene);
  62451. vertexData.applyToMesh(mesh, this._updatable);
  62452. this.mesh = mesh;
  62453. this.mesh.isPickable = this._pickable;
  62454. // free memory
  62455. if (!this._depthSort) {
  62456. this._indices = null;
  62457. }
  62458. this._positions = null;
  62459. this._normals = null;
  62460. this._uvs = null;
  62461. this._colors = null;
  62462. if (!this._updatable) {
  62463. this.particles.length = 0;
  62464. }
  62465. return mesh;
  62466. };
  62467. /**
  62468. * Digests the mesh and generates as many solid particles in the system as wanted. Returns the SPS.
  62469. * These particles will have the same geometry than the mesh parts and will be positioned at the same localisation than the mesh original places.
  62470. * Thus the particles generated from `digest()` have their property `position` set yet.
  62471. * @param mesh ( Mesh ) is the mesh to be digested
  62472. * @param options {facetNb} (optional integer, default 1) is the number of mesh facets per particle, this parameter is overriden by the parameter `number` if any
  62473. * {delta} (optional integer, default 0) is the random extra number of facets per particle , each particle will have between `facetNb` and `facetNb + delta` facets
  62474. * {number} (optional positive integer) is the wanted number of particles : each particle is built with `mesh_total_facets / number` facets
  62475. * @returns the current SPS
  62476. */
  62477. SolidParticleSystem.prototype.digest = function (mesh, options) {
  62478. var size = (options && options.facetNb) || 1;
  62479. var number = (options && options.number) || 0;
  62480. var delta = (options && options.delta) || 0;
  62481. var meshPos = mesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  62482. var meshInd = mesh.getIndices();
  62483. var meshUV = mesh.getVerticesData(BABYLON.VertexBuffer.UVKind);
  62484. var meshCol = mesh.getVerticesData(BABYLON.VertexBuffer.ColorKind);
  62485. var meshNor = mesh.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  62486. var f = 0; // facet counter
  62487. var totalFacets = meshInd.length / 3; // a facet is a triangle, so 3 indices
  62488. // compute size from number
  62489. if (number) {
  62490. number = (number > totalFacets) ? totalFacets : number;
  62491. size = Math.round(totalFacets / number);
  62492. delta = 0;
  62493. }
  62494. else {
  62495. size = (size > totalFacets) ? totalFacets : size;
  62496. }
  62497. var facetPos = []; // submesh positions
  62498. var facetInd = []; // submesh indices
  62499. var facetUV = []; // submesh UV
  62500. var facetCol = []; // submesh colors
  62501. var barycenter = BABYLON.Vector3.Zero();
  62502. var sizeO = size;
  62503. while (f < totalFacets) {
  62504. size = sizeO + Math.floor((1 + delta) * Math.random());
  62505. if (f > totalFacets - size) {
  62506. size = totalFacets - f;
  62507. }
  62508. // reset temp arrays
  62509. facetPos.length = 0;
  62510. facetInd.length = 0;
  62511. facetUV.length = 0;
  62512. facetCol.length = 0;
  62513. // iterate over "size" facets
  62514. var fi = 0;
  62515. for (var j = f * 3; j < (f + size) * 3; j++) {
  62516. facetInd.push(fi);
  62517. var i = meshInd[j];
  62518. facetPos.push(meshPos[i * 3], meshPos[i * 3 + 1], meshPos[i * 3 + 2]);
  62519. if (meshUV) {
  62520. facetUV.push(meshUV[i * 2], meshUV[i * 2 + 1]);
  62521. }
  62522. if (meshCol) {
  62523. facetCol.push(meshCol[i * 4], meshCol[i * 4 + 1], meshCol[i * 4 + 2], meshCol[i * 4 + 3]);
  62524. }
  62525. fi++;
  62526. }
  62527. // create a model shape for each single particle
  62528. var idx = this.nbParticles;
  62529. var shape = this._posToShape(facetPos);
  62530. var shapeUV = this._uvsToShapeUV(facetUV);
  62531. // compute the barycenter of the shape
  62532. var v;
  62533. for (v = 0; v < shape.length; v++) {
  62534. barycenter.addInPlace(shape[v]);
  62535. }
  62536. barycenter.scaleInPlace(1 / shape.length);
  62537. // shift the shape from its barycenter to the origin
  62538. for (v = 0; v < shape.length; v++) {
  62539. shape[v].subtractInPlace(barycenter);
  62540. }
  62541. var bInfo;
  62542. if (this._particlesIntersect) {
  62543. bInfo = new BABYLON.BoundingInfo(barycenter, barycenter);
  62544. }
  62545. var modelShape = new BABYLON.ModelShape(this._shapeCounter, shape, size * 3, shapeUV, null, null);
  62546. // add the particle in the SPS
  62547. var currentPos = this._positions.length;
  62548. var currentInd = this._indices.length;
  62549. this._meshBuilder(this._index, shape, this._positions, facetInd, this._indices, facetUV, this._uvs, facetCol, this._colors, meshNor, this._normals, idx, 0, null);
  62550. this._addParticle(idx, currentPos, currentInd, modelShape, this._shapeCounter, 0, bInfo);
  62551. // initialize the particle position
  62552. this.particles[this.nbParticles].position.addInPlace(barycenter);
  62553. this._index += shape.length;
  62554. idx++;
  62555. this.nbParticles++;
  62556. this._shapeCounter++;
  62557. f += size;
  62558. }
  62559. return this;
  62560. };
  62561. // unrotate the fixed normals in case the mesh was built with pre-rotated particles, ex : use of positionFunction in addShape()
  62562. SolidParticleSystem.prototype._unrotateFixedNormals = function () {
  62563. var index = 0;
  62564. var idx = 0;
  62565. for (var p = 0; p < this.particles.length; p++) {
  62566. this._particle = this.particles[p];
  62567. this._shape = this._particle._model._shape;
  62568. if (this._particle.rotationQuaternion) {
  62569. this._quaternion.copyFrom(this._particle.rotationQuaternion);
  62570. }
  62571. else {
  62572. this._yaw = this._particle.rotation.y;
  62573. this._pitch = this._particle.rotation.x;
  62574. this._roll = this._particle.rotation.z;
  62575. this._quaternionRotationYPR();
  62576. }
  62577. this._quaternionToRotationMatrix();
  62578. this._rotMatrix.invertToRef(this._invertMatrix);
  62579. for (var pt = 0; pt < this._shape.length; pt++) {
  62580. idx = index + pt * 3;
  62581. BABYLON.Vector3.TransformNormalFromFloatsToRef(this._normals32[idx], this._normals32[idx + 1], this._normals32[idx + 2], this._invertMatrix, this._normal);
  62582. this._fixedNormal32[idx] = this._normal.x;
  62583. this._fixedNormal32[idx + 1] = this._normal.y;
  62584. this._fixedNormal32[idx + 2] = this._normal.z;
  62585. }
  62586. index = idx + 3;
  62587. }
  62588. };
  62589. //reset copy
  62590. SolidParticleSystem.prototype._resetCopy = function () {
  62591. this._copy.position.x = 0;
  62592. this._copy.position.y = 0;
  62593. this._copy.position.z = 0;
  62594. this._copy.rotation.x = 0;
  62595. this._copy.rotation.y = 0;
  62596. this._copy.rotation.z = 0;
  62597. this._copy.rotationQuaternion = null;
  62598. this._copy.scaling.x = 1.0;
  62599. this._copy.scaling.y = 1.0;
  62600. this._copy.scaling.z = 1.0;
  62601. this._copy.uvs.x = 0;
  62602. this._copy.uvs.y = 0;
  62603. this._copy.uvs.z = 1.0;
  62604. this._copy.uvs.w = 1.0;
  62605. this._copy.color = null;
  62606. this._copy.translateFromPivot = false;
  62607. };
  62608. // _meshBuilder : inserts the shape model in the global SPS mesh
  62609. SolidParticleSystem.prototype._meshBuilder = function (p, shape, positions, meshInd, indices, meshUV, uvs, meshCol, colors, meshNor, normals, idx, idxInShape, options) {
  62610. var i;
  62611. var u = 0;
  62612. var c = 0;
  62613. var n = 0;
  62614. this._resetCopy();
  62615. if (options && options.positionFunction) { // call to custom positionFunction
  62616. options.positionFunction(this._copy, idx, idxInShape);
  62617. this._mustUnrotateFixedNormals = true;
  62618. }
  62619. if (this._copy.rotationQuaternion) {
  62620. this._quaternion.copyFrom(this._copy.rotationQuaternion);
  62621. }
  62622. else {
  62623. this._yaw = this._copy.rotation.y;
  62624. this._pitch = this._copy.rotation.x;
  62625. this._roll = this._copy.rotation.z;
  62626. this._quaternionRotationYPR();
  62627. }
  62628. this._quaternionToRotationMatrix();
  62629. this._scaledPivot.x = this._copy.pivot.x * this._copy.scaling.x;
  62630. this._scaledPivot.y = this._copy.pivot.y * this._copy.scaling.y;
  62631. this._scaledPivot.z = this._copy.pivot.z * this._copy.scaling.z;
  62632. if (this._copy.translateFromPivot) {
  62633. this._pivotBackTranslation.copyFromFloats(0.0, 0.0, 0.0);
  62634. }
  62635. else {
  62636. this._pivotBackTranslation.copyFrom(this._scaledPivot);
  62637. }
  62638. for (i = 0; i < shape.length; i++) {
  62639. this._vertex.x = shape[i].x;
  62640. this._vertex.y = shape[i].y;
  62641. this._vertex.z = shape[i].z;
  62642. if (options && options.vertexFunction) {
  62643. options.vertexFunction(this._copy, this._vertex, i);
  62644. }
  62645. this._vertex.x *= this._copy.scaling.x;
  62646. this._vertex.y *= this._copy.scaling.y;
  62647. this._vertex.z *= this._copy.scaling.z;
  62648. this._vertex.x -= this._scaledPivot.x;
  62649. this._vertex.y -= this._scaledPivot.y;
  62650. this._vertex.z -= this._scaledPivot.z;
  62651. BABYLON.Vector3.TransformCoordinatesToRef(this._vertex, this._rotMatrix, this._rotated);
  62652. this._rotated.addInPlace(this._pivotBackTranslation);
  62653. positions.push(this._copy.position.x + this._rotated.x, this._copy.position.y + this._rotated.y, this._copy.position.z + this._rotated.z);
  62654. if (meshUV) {
  62655. uvs.push((this._copy.uvs.z - this._copy.uvs.x) * meshUV[u] + this._copy.uvs.x, (this._copy.uvs.w - this._copy.uvs.y) * meshUV[u + 1] + this._copy.uvs.y);
  62656. u += 2;
  62657. }
  62658. if (this._copy.color) {
  62659. this._color = this._copy.color;
  62660. }
  62661. else if (meshCol && meshCol[c] !== undefined) {
  62662. this._color.r = meshCol[c];
  62663. this._color.g = meshCol[c + 1];
  62664. this._color.b = meshCol[c + 2];
  62665. this._color.a = meshCol[c + 3];
  62666. }
  62667. else {
  62668. this._color.r = 1.0;
  62669. this._color.g = 1.0;
  62670. this._color.b = 1.0;
  62671. this._color.a = 1.0;
  62672. }
  62673. colors.push(this._color.r, this._color.g, this._color.b, this._color.a);
  62674. c += 4;
  62675. if (!this.recomputeNormals && meshNor) {
  62676. this._normal.x = meshNor[n];
  62677. this._normal.y = meshNor[n + 1];
  62678. this._normal.z = meshNor[n + 2];
  62679. BABYLON.Vector3.TransformNormalToRef(this._normal, this._rotMatrix, this._normal);
  62680. normals.push(this._normal.x, this._normal.y, this._normal.z);
  62681. n += 3;
  62682. }
  62683. }
  62684. for (i = 0; i < meshInd.length; i++) {
  62685. var current_ind = p + meshInd[i];
  62686. indices.push(current_ind);
  62687. if (current_ind > 65535) {
  62688. this._needs32Bits = true;
  62689. }
  62690. }
  62691. if (this._pickable) {
  62692. var nbfaces = meshInd.length / 3;
  62693. for (i = 0; i < nbfaces; i++) {
  62694. this.pickedParticles.push({ idx: idx, faceId: i });
  62695. }
  62696. }
  62697. if (this._depthSort) {
  62698. this.depthSortedParticles.push(new BABYLON.DepthSortedParticle());
  62699. }
  62700. return this._copy;
  62701. };
  62702. // returns a shape array from positions array
  62703. SolidParticleSystem.prototype._posToShape = function (positions) {
  62704. var shape = [];
  62705. for (var i = 0; i < positions.length; i += 3) {
  62706. shape.push(new BABYLON.Vector3(positions[i], positions[i + 1], positions[i + 2]));
  62707. }
  62708. return shape;
  62709. };
  62710. // returns a shapeUV array from a Vector4 uvs
  62711. SolidParticleSystem.prototype._uvsToShapeUV = function (uvs) {
  62712. var shapeUV = [];
  62713. if (uvs) {
  62714. for (var i = 0; i < uvs.length; i++)
  62715. shapeUV.push(uvs[i]);
  62716. }
  62717. return shapeUV;
  62718. };
  62719. // adds a new particle object in the particles array
  62720. SolidParticleSystem.prototype._addParticle = function (idx, idxpos, idxind, model, shapeId, idxInShape, bInfo) {
  62721. if (bInfo === void 0) { bInfo = null; }
  62722. var sp = new BABYLON.SolidParticle(idx, idxpos, idxind, model, shapeId, idxInShape, this, bInfo);
  62723. this.particles.push(sp);
  62724. return sp;
  62725. };
  62726. /**
  62727. * Adds some particles to the SPS from the model shape. Returns the shape id.
  62728. * Please read the doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#create-an-immutable-sps
  62729. * @param mesh is any Mesh object that will be used as a model for the solid particles.
  62730. * @param nb (positive integer) the number of particles to be created from this model
  62731. * @param options {positionFunction} is an optional javascript function to called for each particle on SPS creation.
  62732. * {vertexFunction} is an optional javascript function to called for each vertex of each particle on SPS creation
  62733. * @returns the number of shapes in the system
  62734. */
  62735. SolidParticleSystem.prototype.addShape = function (mesh, nb, options) {
  62736. var meshPos = mesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  62737. var meshInd = mesh.getIndices();
  62738. var meshUV = mesh.getVerticesData(BABYLON.VertexBuffer.UVKind);
  62739. var meshCol = mesh.getVerticesData(BABYLON.VertexBuffer.ColorKind);
  62740. var meshNor = mesh.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  62741. var bbInfo;
  62742. if (this._particlesIntersect) {
  62743. bbInfo = mesh.getBoundingInfo();
  62744. }
  62745. var shape = this._posToShape(meshPos);
  62746. var shapeUV = this._uvsToShapeUV(meshUV);
  62747. var posfunc = options ? options.positionFunction : null;
  62748. var vtxfunc = options ? options.vertexFunction : null;
  62749. var modelShape = new BABYLON.ModelShape(this._shapeCounter, shape, meshInd.length, shapeUV, posfunc, vtxfunc);
  62750. // particles
  62751. var sp;
  62752. var currentCopy;
  62753. var idx = this.nbParticles;
  62754. for (var i = 0; i < nb; i++) {
  62755. var currentPos = this._positions.length;
  62756. var currentInd = this._indices.length;
  62757. currentCopy = this._meshBuilder(this._index, shape, this._positions, meshInd, this._indices, meshUV, this._uvs, meshCol, this._colors, meshNor, this._normals, idx, i, options);
  62758. if (this._updatable) {
  62759. sp = this._addParticle(idx, currentPos, currentInd, modelShape, this._shapeCounter, i, bbInfo);
  62760. sp.position.copyFrom(currentCopy.position);
  62761. sp.rotation.copyFrom(currentCopy.rotation);
  62762. if (currentCopy.rotationQuaternion && sp.rotationQuaternion) {
  62763. sp.rotationQuaternion.copyFrom(currentCopy.rotationQuaternion);
  62764. }
  62765. if (currentCopy.color && sp.color) {
  62766. sp.color.copyFrom(currentCopy.color);
  62767. }
  62768. sp.scaling.copyFrom(currentCopy.scaling);
  62769. sp.uvs.copyFrom(currentCopy.uvs);
  62770. }
  62771. this._index += shape.length;
  62772. idx++;
  62773. }
  62774. this.nbParticles += nb;
  62775. this._shapeCounter++;
  62776. return this._shapeCounter - 1;
  62777. };
  62778. // rebuilds a particle back to its just built status : if needed, recomputes the custom positions and vertices
  62779. SolidParticleSystem.prototype._rebuildParticle = function (particle) {
  62780. this._resetCopy();
  62781. if (particle._model._positionFunction) { // recall to stored custom positionFunction
  62782. particle._model._positionFunction(this._copy, particle.idx, particle.idxInShape);
  62783. }
  62784. if (this._copy.rotationQuaternion) {
  62785. this._quaternion.copyFrom(this._copy.rotationQuaternion);
  62786. }
  62787. else {
  62788. this._yaw = this._copy.rotation.y;
  62789. this._pitch = this._copy.rotation.x;
  62790. this._roll = this._copy.rotation.z;
  62791. this._quaternionRotationYPR();
  62792. }
  62793. this._quaternionToRotationMatrix();
  62794. this._scaledPivot.x = this._particle.pivot.x * this._particle.scaling.x;
  62795. this._scaledPivot.y = this._particle.pivot.y * this._particle.scaling.y;
  62796. this._scaledPivot.z = this._particle.pivot.z * this._particle.scaling.z;
  62797. if (this._copy.translateFromPivot) {
  62798. this._pivotBackTranslation.copyFromFloats(0.0, 0.0, 0.0);
  62799. }
  62800. else {
  62801. this._pivotBackTranslation.copyFrom(this._scaledPivot);
  62802. }
  62803. this._shape = particle._model._shape;
  62804. for (var pt = 0; pt < this._shape.length; pt++) {
  62805. this._vertex.x = this._shape[pt].x;
  62806. this._vertex.y = this._shape[pt].y;
  62807. this._vertex.z = this._shape[pt].z;
  62808. if (particle._model._vertexFunction) {
  62809. particle._model._vertexFunction(this._copy, this._vertex, pt); // recall to stored vertexFunction
  62810. }
  62811. this._vertex.x *= this._copy.scaling.x;
  62812. this._vertex.y *= this._copy.scaling.y;
  62813. this._vertex.z *= this._copy.scaling.z;
  62814. this._vertex.x -= this._scaledPivot.x;
  62815. this._vertex.y -= this._scaledPivot.y;
  62816. this._vertex.z -= this._scaledPivot.z;
  62817. BABYLON.Vector3.TransformCoordinatesToRef(this._vertex, this._rotMatrix, this._rotated);
  62818. this._rotated.addInPlace(this._pivotBackTranslation);
  62819. this._positions32[particle._pos + pt * 3] = this._copy.position.x + this._rotated.x;
  62820. this._positions32[particle._pos + pt * 3 + 1] = this._copy.position.y + this._rotated.y;
  62821. this._positions32[particle._pos + pt * 3 + 2] = this._copy.position.z + this._rotated.z;
  62822. }
  62823. particle.position.x = 0.0;
  62824. particle.position.y = 0.0;
  62825. particle.position.z = 0.0;
  62826. particle.rotation.x = 0.0;
  62827. particle.rotation.y = 0.0;
  62828. particle.rotation.z = 0.0;
  62829. particle.rotationQuaternion = null;
  62830. particle.scaling.x = 1.0;
  62831. particle.scaling.y = 1.0;
  62832. particle.scaling.z = 1.0;
  62833. particle.uvs.x = 0.0;
  62834. particle.uvs.y = 0.0;
  62835. particle.uvs.z = 1.0;
  62836. particle.uvs.w = 1.0;
  62837. particle.pivot.x = 0.0;
  62838. particle.pivot.y = 0.0;
  62839. particle.pivot.z = 0.0;
  62840. particle.translateFromPivot = false;
  62841. particle.parentId = null;
  62842. };
  62843. /**
  62844. * Rebuilds the whole mesh and updates the VBO : custom positions and vertices are recomputed if needed.
  62845. * @returns the SPS.
  62846. */
  62847. SolidParticleSystem.prototype.rebuildMesh = function () {
  62848. for (var p = 0; p < this.particles.length; p++) {
  62849. this._rebuildParticle(this.particles[p]);
  62850. }
  62851. this.mesh.updateVerticesData(BABYLON.VertexBuffer.PositionKind, this._positions32, false, false);
  62852. return this;
  62853. };
  62854. /**
  62855. * Sets all the particles : this method actually really updates the mesh according to the particle positions, rotations, colors, textures, etc.
  62856. * This method calls `updateParticle()` for each particle of the SPS.
  62857. * For an animated SPS, it is usually called within the render loop.
  62858. * @param start The particle index in the particle array where to start to compute the particle property values _(default 0)_
  62859. * @param end The particle index in the particle array where to stop to compute the particle property values _(default nbParticle - 1)_
  62860. * @param update If the mesh must be finally updated on this call after all the particle computations _(default true)_
  62861. * @returns the SPS.
  62862. */
  62863. SolidParticleSystem.prototype.setParticles = function (start, end, update) {
  62864. if (start === void 0) { start = 0; }
  62865. if (end === void 0) { end = this.nbParticles - 1; }
  62866. if (update === void 0) { update = true; }
  62867. if (!this._updatable) {
  62868. return this;
  62869. }
  62870. // custom beforeUpdate
  62871. this.beforeUpdateParticles(start, end, update);
  62872. this._cam_axisX.x = 1.0;
  62873. this._cam_axisX.y = 0.0;
  62874. this._cam_axisX.z = 0.0;
  62875. this._cam_axisY.x = 0.0;
  62876. this._cam_axisY.y = 1.0;
  62877. this._cam_axisY.z = 0.0;
  62878. this._cam_axisZ.x = 0.0;
  62879. this._cam_axisZ.y = 0.0;
  62880. this._cam_axisZ.z = 1.0;
  62881. // cases when the World Matrix is to be computed first
  62882. if (this.billboard || this._depthSort) {
  62883. this.mesh.computeWorldMatrix(true);
  62884. this.mesh._worldMatrix.invertToRef(this._invertMatrix);
  62885. }
  62886. // if the particles will always face the camera
  62887. if (this.billboard) {
  62888. // compute the camera position and un-rotate it by the current mesh rotation
  62889. this._camera.getDirectionToRef(this._axisZ, this._camDir);
  62890. BABYLON.Vector3.TransformNormalToRef(this._camDir, this._invertMatrix, this._cam_axisZ);
  62891. this._cam_axisZ.normalize();
  62892. // same for camera up vector extracted from the cam view matrix
  62893. var view = this._camera.getViewMatrix(true);
  62894. BABYLON.Vector3.TransformNormalFromFloatsToRef(view.m[1], view.m[5], view.m[9], this._invertMatrix, this._cam_axisY);
  62895. BABYLON.Vector3.CrossToRef(this._cam_axisY, this._cam_axisZ, this._cam_axisX);
  62896. this._cam_axisY.normalize();
  62897. this._cam_axisX.normalize();
  62898. }
  62899. // if depthSort, compute the camera global position in the mesh local system
  62900. if (this._depthSort) {
  62901. BABYLON.Vector3.TransformCoordinatesToRef(this._camera.globalPosition, this._invertMatrix, this._camInvertedPosition); // then un-rotate the camera
  62902. }
  62903. BABYLON.Matrix.IdentityToRef(this._rotMatrix);
  62904. var idx = 0; // current position index in the global array positions32
  62905. var index = 0; // position start index in the global array positions32 of the current particle
  62906. var colidx = 0; // current color index in the global array colors32
  62907. var colorIndex = 0; // color start index in the global array colors32 of the current particle
  62908. var uvidx = 0; // current uv index in the global array uvs32
  62909. var uvIndex = 0; // uv start index in the global array uvs32 of the current particle
  62910. var pt = 0; // current index in the particle model shape
  62911. if (this.mesh.isFacetDataEnabled) {
  62912. this._computeBoundingBox = true;
  62913. }
  62914. end = (end >= this.nbParticles) ? this.nbParticles - 1 : end;
  62915. if (this._computeBoundingBox) {
  62916. if (start == 0 && end == this.nbParticles - 1) { // all the particles are updated, then recompute the BBox from scratch
  62917. BABYLON.Vector3.FromFloatsToRef(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE, this._minimum);
  62918. BABYLON.Vector3.FromFloatsToRef(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE, this._maximum);
  62919. }
  62920. else { // only some particles are updated, then use the current existing BBox basis. Note : it can only increase.
  62921. if (this.mesh._boundingInfo) {
  62922. this._minimum.copyFrom(this.mesh._boundingInfo.boundingBox.minimum);
  62923. this._maximum.copyFrom(this.mesh._boundingInfo.boundingBox.maximum);
  62924. }
  62925. }
  62926. }
  62927. // particle loop
  62928. index = this.particles[start]._pos;
  62929. var vpos = (index / 3) | 0;
  62930. colorIndex = vpos * 4;
  62931. uvIndex = vpos * 2;
  62932. for (var p = start; p <= end; p++) {
  62933. this._particle = this.particles[p];
  62934. this._shape = this._particle._model._shape;
  62935. this._shapeUV = this._particle._model._shapeUV;
  62936. // call to custom user function to update the particle properties
  62937. this.updateParticle(this._particle);
  62938. // camera-particle distance for depth sorting
  62939. if (this._depthSort && this._depthSortParticles) {
  62940. var dsp = this.depthSortedParticles[p];
  62941. dsp.ind = this._particle._ind;
  62942. dsp.indicesLength = this._particle._model._indicesLength;
  62943. dsp.sqDistance = BABYLON.Vector3.DistanceSquared(this._particle.position, this._camInvertedPosition);
  62944. }
  62945. // skip the computations for inactive or already invisible particles
  62946. if (!this._particle.alive || (this._particle._stillInvisible && !this._particle.isVisible)) {
  62947. // increment indexes for the next particle
  62948. pt = this._shape.length;
  62949. index += pt * 3;
  62950. colorIndex += pt * 4;
  62951. uvIndex += pt * 2;
  62952. continue;
  62953. }
  62954. if (this._particle.isVisible) {
  62955. this._particle._stillInvisible = false; // un-mark permanent invisibility
  62956. this._particleHasParent = (this._particle.parentId !== null);
  62957. this._scaledPivot.x = this._particle.pivot.x * this._particle.scaling.x;
  62958. this._scaledPivot.y = this._particle.pivot.y * this._particle.scaling.y;
  62959. this._scaledPivot.z = this._particle.pivot.z * this._particle.scaling.z;
  62960. // particle rotation matrix
  62961. if (this.billboard) {
  62962. this._particle.rotation.x = 0.0;
  62963. this._particle.rotation.y = 0.0;
  62964. }
  62965. if (this._computeParticleRotation || this.billboard) {
  62966. if (this._particle.rotationQuaternion) {
  62967. this._quaternion.copyFrom(this._particle.rotationQuaternion);
  62968. }
  62969. else {
  62970. this._yaw = this._particle.rotation.y;
  62971. this._pitch = this._particle.rotation.x;
  62972. this._roll = this._particle.rotation.z;
  62973. this._quaternionRotationYPR();
  62974. }
  62975. this._quaternionToRotationMatrix();
  62976. }
  62977. if (this._particleHasParent) {
  62978. this._parent = this.particles[this._particle.parentId];
  62979. this._rotated.x = this._particle.position.x * this._parent._rotationMatrix[0] + this._particle.position.y * this._parent._rotationMatrix[3] + this._particle.position.z * this._parent._rotationMatrix[6];
  62980. this._rotated.y = this._particle.position.x * this._parent._rotationMatrix[1] + this._particle.position.y * this._parent._rotationMatrix[4] + this._particle.position.z * this._parent._rotationMatrix[7];
  62981. this._rotated.z = this._particle.position.x * this._parent._rotationMatrix[2] + this._particle.position.y * this._parent._rotationMatrix[5] + this._particle.position.z * this._parent._rotationMatrix[8];
  62982. this._particle._globalPosition.x = this._parent._globalPosition.x + this._rotated.x;
  62983. this._particle._globalPosition.y = this._parent._globalPosition.y + this._rotated.y;
  62984. this._particle._globalPosition.z = this._parent._globalPosition.z + this._rotated.z;
  62985. if (this._computeParticleRotation || this.billboard) {
  62986. this._particle._rotationMatrix[0] = this._rotMatrix.m[0] * this._parent._rotationMatrix[0] + this._rotMatrix.m[1] * this._parent._rotationMatrix[3] + this._rotMatrix.m[2] * this._parent._rotationMatrix[6];
  62987. this._particle._rotationMatrix[1] = this._rotMatrix.m[0] * this._parent._rotationMatrix[1] + this._rotMatrix.m[1] * this._parent._rotationMatrix[4] + this._rotMatrix.m[2] * this._parent._rotationMatrix[7];
  62988. this._particle._rotationMatrix[2] = this._rotMatrix.m[0] * this._parent._rotationMatrix[2] + this._rotMatrix.m[1] * this._parent._rotationMatrix[5] + this._rotMatrix.m[2] * this._parent._rotationMatrix[8];
  62989. this._particle._rotationMatrix[3] = this._rotMatrix.m[4] * this._parent._rotationMatrix[0] + this._rotMatrix.m[5] * this._parent._rotationMatrix[3] + this._rotMatrix.m[6] * this._parent._rotationMatrix[6];
  62990. this._particle._rotationMatrix[4] = this._rotMatrix.m[4] * this._parent._rotationMatrix[1] + this._rotMatrix.m[5] * this._parent._rotationMatrix[4] + this._rotMatrix.m[6] * this._parent._rotationMatrix[7];
  62991. this._particle._rotationMatrix[5] = this._rotMatrix.m[4] * this._parent._rotationMatrix[2] + this._rotMatrix.m[5] * this._parent._rotationMatrix[5] + this._rotMatrix.m[6] * this._parent._rotationMatrix[8];
  62992. this._particle._rotationMatrix[6] = this._rotMatrix.m[8] * this._parent._rotationMatrix[0] + this._rotMatrix.m[9] * this._parent._rotationMatrix[3] + this._rotMatrix.m[10] * this._parent._rotationMatrix[6];
  62993. this._particle._rotationMatrix[7] = this._rotMatrix.m[8] * this._parent._rotationMatrix[1] + this._rotMatrix.m[9] * this._parent._rotationMatrix[4] + this._rotMatrix.m[10] * this._parent._rotationMatrix[7];
  62994. this._particle._rotationMatrix[8] = this._rotMatrix.m[8] * this._parent._rotationMatrix[2] + this._rotMatrix.m[9] * this._parent._rotationMatrix[5] + this._rotMatrix.m[10] * this._parent._rotationMatrix[8];
  62995. }
  62996. }
  62997. else {
  62998. this._particle._globalPosition.x = this._particle.position.x;
  62999. this._particle._globalPosition.y = this._particle.position.y;
  63000. this._particle._globalPosition.z = this._particle.position.z;
  63001. if (this._computeParticleRotation || this.billboard) {
  63002. this._particle._rotationMatrix[0] = this._rotMatrix.m[0];
  63003. this._particle._rotationMatrix[1] = this._rotMatrix.m[1];
  63004. this._particle._rotationMatrix[2] = this._rotMatrix.m[2];
  63005. this._particle._rotationMatrix[3] = this._rotMatrix.m[4];
  63006. this._particle._rotationMatrix[4] = this._rotMatrix.m[5];
  63007. this._particle._rotationMatrix[5] = this._rotMatrix.m[6];
  63008. this._particle._rotationMatrix[6] = this._rotMatrix.m[8];
  63009. this._particle._rotationMatrix[7] = this._rotMatrix.m[9];
  63010. this._particle._rotationMatrix[8] = this._rotMatrix.m[10];
  63011. }
  63012. }
  63013. if (this._particle.translateFromPivot) {
  63014. this._pivotBackTranslation.x = 0.0;
  63015. this._pivotBackTranslation.y = 0.0;
  63016. this._pivotBackTranslation.z = 0.0;
  63017. }
  63018. else {
  63019. this._pivotBackTranslation.x = this._scaledPivot.x;
  63020. this._pivotBackTranslation.y = this._scaledPivot.y;
  63021. this._pivotBackTranslation.z = this._scaledPivot.z;
  63022. }
  63023. // particle vertex loop
  63024. for (pt = 0; pt < this._shape.length; pt++) {
  63025. idx = index + pt * 3;
  63026. colidx = colorIndex + pt * 4;
  63027. uvidx = uvIndex + pt * 2;
  63028. this._vertex.x = this._shape[pt].x;
  63029. this._vertex.y = this._shape[pt].y;
  63030. this._vertex.z = this._shape[pt].z;
  63031. if (this._computeParticleVertex) {
  63032. this.updateParticleVertex(this._particle, this._vertex, pt);
  63033. }
  63034. // positions
  63035. this._vertex.x *= this._particle.scaling.x;
  63036. this._vertex.y *= this._particle.scaling.y;
  63037. this._vertex.z *= this._particle.scaling.z;
  63038. this._vertex.x -= this._scaledPivot.x;
  63039. this._vertex.y -= this._scaledPivot.y;
  63040. this._vertex.z -= this._scaledPivot.z;
  63041. this._rotated.x = this._vertex.x * this._particle._rotationMatrix[0] + this._vertex.y * this._particle._rotationMatrix[3] + this._vertex.z * this._particle._rotationMatrix[6];
  63042. this._rotated.y = this._vertex.x * this._particle._rotationMatrix[1] + this._vertex.y * this._particle._rotationMatrix[4] + this._vertex.z * this._particle._rotationMatrix[7];
  63043. this._rotated.z = this._vertex.x * this._particle._rotationMatrix[2] + this._vertex.y * this._particle._rotationMatrix[5] + this._vertex.z * this._particle._rotationMatrix[8];
  63044. this._rotated.x += this._pivotBackTranslation.x;
  63045. this._rotated.y += this._pivotBackTranslation.y;
  63046. this._rotated.z += this._pivotBackTranslation.z;
  63047. this._positions32[idx] = this._particle._globalPosition.x + this._cam_axisX.x * this._rotated.x + this._cam_axisY.x * this._rotated.y + this._cam_axisZ.x * this._rotated.z;
  63048. this._positions32[idx + 1] = this._particle._globalPosition.y + this._cam_axisX.y * this._rotated.x + this._cam_axisY.y * this._rotated.y + this._cam_axisZ.y * this._rotated.z;
  63049. this._positions32[idx + 2] = this._particle._globalPosition.z + this._cam_axisX.z * this._rotated.x + this._cam_axisY.z * this._rotated.y + this._cam_axisZ.z * this._rotated.z;
  63050. if (this._computeBoundingBox) {
  63051. if (this._positions32[idx] < this._minimum.x) {
  63052. this._minimum.x = this._positions32[idx];
  63053. }
  63054. if (this._positions32[idx] > this._maximum.x) {
  63055. this._maximum.x = this._positions32[idx];
  63056. }
  63057. if (this._positions32[idx + 1] < this._minimum.y) {
  63058. this._minimum.y = this._positions32[idx + 1];
  63059. }
  63060. if (this._positions32[idx + 1] > this._maximum.y) {
  63061. this._maximum.y = this._positions32[idx + 1];
  63062. }
  63063. if (this._positions32[idx + 2] < this._minimum.z) {
  63064. this._minimum.z = this._positions32[idx + 2];
  63065. }
  63066. if (this._positions32[idx + 2] > this._maximum.z) {
  63067. this._maximum.z = this._positions32[idx + 2];
  63068. }
  63069. }
  63070. // normals : if the particles can't be morphed then just rotate the normals, what is much more faster than ComputeNormals()
  63071. if (!this._computeParticleVertex) {
  63072. this._normal.x = this._fixedNormal32[idx];
  63073. this._normal.y = this._fixedNormal32[idx + 1];
  63074. this._normal.z = this._fixedNormal32[idx + 2];
  63075. this._rotated.x = this._normal.x * this._particle._rotationMatrix[0] + this._normal.y * this._particle._rotationMatrix[3] + this._normal.z * this._particle._rotationMatrix[6];
  63076. this._rotated.y = this._normal.x * this._particle._rotationMatrix[1] + this._normal.y * this._particle._rotationMatrix[4] + this._normal.z * this._particle._rotationMatrix[7];
  63077. this._rotated.z = this._normal.x * this._particle._rotationMatrix[2] + this._normal.y * this._particle._rotationMatrix[5] + this._normal.z * this._particle._rotationMatrix[8];
  63078. this._normals32[idx] = this._cam_axisX.x * this._rotated.x + this._cam_axisY.x * this._rotated.y + this._cam_axisZ.x * this._rotated.z;
  63079. this._normals32[idx + 1] = this._cam_axisX.y * this._rotated.x + this._cam_axisY.y * this._rotated.y + this._cam_axisZ.y * this._rotated.z;
  63080. this._normals32[idx + 2] = this._cam_axisX.z * this._rotated.x + this._cam_axisY.z * this._rotated.y + this._cam_axisZ.z * this._rotated.z;
  63081. }
  63082. if (this._computeParticleColor && this._particle.color) {
  63083. this._colors32[colidx] = this._particle.color.r;
  63084. this._colors32[colidx + 1] = this._particle.color.g;
  63085. this._colors32[colidx + 2] = this._particle.color.b;
  63086. this._colors32[colidx + 3] = this._particle.color.a;
  63087. }
  63088. if (this._computeParticleTexture) {
  63089. this._uvs32[uvidx] = this._shapeUV[pt * 2] * (this._particle.uvs.z - this._particle.uvs.x) + this._particle.uvs.x;
  63090. this._uvs32[uvidx + 1] = this._shapeUV[pt * 2 + 1] * (this._particle.uvs.w - this._particle.uvs.y) + this._particle.uvs.y;
  63091. }
  63092. }
  63093. }
  63094. // particle just set invisible : scaled to zero and positioned at the origin
  63095. else {
  63096. this._particle._stillInvisible = true; // mark the particle as invisible
  63097. for (pt = 0; pt < this._shape.length; pt++) {
  63098. idx = index + pt * 3;
  63099. colidx = colorIndex + pt * 4;
  63100. uvidx = uvIndex + pt * 2;
  63101. this._positions32[idx] = 0.0;
  63102. this._positions32[idx + 1] = 0.0;
  63103. this._positions32[idx + 2] = 0.0;
  63104. this._normals32[idx] = 0.0;
  63105. this._normals32[idx + 1] = 0.0;
  63106. this._normals32[idx + 2] = 0.0;
  63107. if (this._computeParticleColor && this._particle.color) {
  63108. this._colors32[colidx] = this._particle.color.r;
  63109. this._colors32[colidx + 1] = this._particle.color.g;
  63110. this._colors32[colidx + 2] = this._particle.color.b;
  63111. this._colors32[colidx + 3] = this._particle.color.a;
  63112. }
  63113. if (this._computeParticleTexture) {
  63114. this._uvs32[uvidx] = this._shapeUV[pt * 2] * (this._particle.uvs.z - this._particle.uvs.x) + this._particle.uvs.x;
  63115. this._uvs32[uvidx + 1] = this._shapeUV[pt * 2 + 1] * (this._particle.uvs.w - this._particle.uvs.y) + this._particle.uvs.y;
  63116. }
  63117. }
  63118. }
  63119. // if the particle intersections must be computed : update the bbInfo
  63120. if (this._particlesIntersect) {
  63121. var bInfo = this._particle._boundingInfo;
  63122. var bBox = bInfo.boundingBox;
  63123. var bSphere = bInfo.boundingSphere;
  63124. if (!this._bSphereOnly) {
  63125. // place, scale and rotate the particle bbox within the SPS local system, then update it
  63126. for (var b = 0; b < bBox.vectors.length; b++) {
  63127. this._vertex.x = this._particle._modelBoundingInfo.boundingBox.vectors[b].x * this._particle.scaling.x;
  63128. this._vertex.y = this._particle._modelBoundingInfo.boundingBox.vectors[b].y * this._particle.scaling.y;
  63129. this._vertex.z = this._particle._modelBoundingInfo.boundingBox.vectors[b].z * this._particle.scaling.z;
  63130. this._rotated.x = this._vertex.x * this._particle._rotationMatrix[0] + this._vertex.y * this._particle._rotationMatrix[3] + this._vertex.z * this._particle._rotationMatrix[6];
  63131. this._rotated.y = this._vertex.x * this._particle._rotationMatrix[1] + this._vertex.y * this._particle._rotationMatrix[4] + this._vertex.z * this._particle._rotationMatrix[7];
  63132. this._rotated.z = this._vertex.x * this._particle._rotationMatrix[2] + this._vertex.y * this._particle._rotationMatrix[5] + this._vertex.z * this._particle._rotationMatrix[8];
  63133. bBox.vectors[b].x = this._particle.position.x + this._cam_axisX.x * this._rotated.x + this._cam_axisY.x * this._rotated.y + this._cam_axisZ.x * this._rotated.z;
  63134. bBox.vectors[b].y = this._particle.position.y + this._cam_axisX.y * this._rotated.x + this._cam_axisY.y * this._rotated.y + this._cam_axisZ.y * this._rotated.z;
  63135. bBox.vectors[b].z = this._particle.position.z + this._cam_axisX.z * this._rotated.x + this._cam_axisY.z * this._rotated.y + this._cam_axisZ.z * this._rotated.z;
  63136. }
  63137. bBox._update(this.mesh._worldMatrix);
  63138. }
  63139. // place and scale the particle bouding sphere in the SPS local system, then update it
  63140. this._minBbox.x = this._particle._modelBoundingInfo.minimum.x * this._particle.scaling.x;
  63141. this._minBbox.y = this._particle._modelBoundingInfo.minimum.y * this._particle.scaling.y;
  63142. this._minBbox.z = this._particle._modelBoundingInfo.minimum.z * this._particle.scaling.z;
  63143. this._maxBbox.x = this._particle._modelBoundingInfo.maximum.x * this._particle.scaling.x;
  63144. this._maxBbox.y = this._particle._modelBoundingInfo.maximum.y * this._particle.scaling.y;
  63145. this._maxBbox.z = this._particle._modelBoundingInfo.maximum.z * this._particle.scaling.z;
  63146. bSphere.center.x = this._particle._globalPosition.x + (this._minBbox.x + this._maxBbox.x) * 0.5;
  63147. bSphere.center.y = this._particle._globalPosition.y + (this._minBbox.y + this._maxBbox.y) * 0.5;
  63148. bSphere.center.z = this._particle._globalPosition.z + (this._minBbox.z + this._maxBbox.z) * 0.5;
  63149. bSphere.radius = this._bSphereRadiusFactor * 0.5 * Math.sqrt((this._maxBbox.x - this._minBbox.x) * (this._maxBbox.x - this._minBbox.x) + (this._maxBbox.y - this._minBbox.y) * (this._maxBbox.y - this._minBbox.y) + (this._maxBbox.z - this._minBbox.z) * (this._maxBbox.z - this._minBbox.z));
  63150. bSphere._update(this.mesh._worldMatrix);
  63151. }
  63152. // increment indexes for the next particle
  63153. index = idx + 3;
  63154. colorIndex = colidx + 4;
  63155. uvIndex = uvidx + 2;
  63156. }
  63157. // if the VBO must be updated
  63158. if (update) {
  63159. if (this._computeParticleColor) {
  63160. this.mesh.updateVerticesData(BABYLON.VertexBuffer.ColorKind, this._colors32, false, false);
  63161. }
  63162. if (this._computeParticleTexture) {
  63163. this.mesh.updateVerticesData(BABYLON.VertexBuffer.UVKind, this._uvs32, false, false);
  63164. }
  63165. this.mesh.updateVerticesData(BABYLON.VertexBuffer.PositionKind, this._positions32, false, false);
  63166. if (!this.mesh.areNormalsFrozen || this.mesh.isFacetDataEnabled) {
  63167. if (this._computeParticleVertex || this.mesh.isFacetDataEnabled) {
  63168. // recompute the normals only if the particles can be morphed, update then also the normal reference array _fixedNormal32[]
  63169. var params = this.mesh.isFacetDataEnabled ? this.mesh.getFacetDataParameters() : null;
  63170. BABYLON.VertexData.ComputeNormals(this._positions32, this._indices32, this._normals32, params);
  63171. for (var i = 0; i < this._normals32.length; i++) {
  63172. this._fixedNormal32[i] = this._normals32[i];
  63173. }
  63174. }
  63175. if (!this.mesh.areNormalsFrozen) {
  63176. this.mesh.updateVerticesData(BABYLON.VertexBuffer.NormalKind, this._normals32, false, false);
  63177. }
  63178. }
  63179. if (this._depthSort && this._depthSortParticles) {
  63180. this.depthSortedParticles.sort(this._depthSortFunction);
  63181. var dspl = this.depthSortedParticles.length;
  63182. var sorted = 0;
  63183. var lind = 0;
  63184. var sind = 0;
  63185. var sid = 0;
  63186. for (sorted = 0; sorted < dspl; sorted++) {
  63187. lind = this.depthSortedParticles[sorted].indicesLength;
  63188. sind = this.depthSortedParticles[sorted].ind;
  63189. for (var i = 0; i < lind; i++) {
  63190. this._indices32[sid] = this._indices[sind + i];
  63191. sid++;
  63192. }
  63193. }
  63194. this.mesh.updateIndices(this._indices32);
  63195. }
  63196. }
  63197. if (this._computeBoundingBox) {
  63198. this.mesh._boundingInfo = new BABYLON.BoundingInfo(this._minimum, this._maximum);
  63199. this.mesh._boundingInfo.update(this.mesh._worldMatrix);
  63200. }
  63201. this.afterUpdateParticles(start, end, update);
  63202. return this;
  63203. };
  63204. SolidParticleSystem.prototype._quaternionRotationYPR = function () {
  63205. this._halfroll = this._roll * 0.5;
  63206. this._halfpitch = this._pitch * 0.5;
  63207. this._halfyaw = this._yaw * 0.5;
  63208. this._sinRoll = Math.sin(this._halfroll);
  63209. this._cosRoll = Math.cos(this._halfroll);
  63210. this._sinPitch = Math.sin(this._halfpitch);
  63211. this._cosPitch = Math.cos(this._halfpitch);
  63212. this._sinYaw = Math.sin(this._halfyaw);
  63213. this._cosYaw = Math.cos(this._halfyaw);
  63214. this._quaternion.x = this._cosYaw * this._sinPitch * this._cosRoll + this._sinYaw * this._cosPitch * this._sinRoll;
  63215. this._quaternion.y = this._sinYaw * this._cosPitch * this._cosRoll - this._cosYaw * this._sinPitch * this._sinRoll;
  63216. this._quaternion.z = this._cosYaw * this._cosPitch * this._sinRoll - this._sinYaw * this._sinPitch * this._cosRoll;
  63217. this._quaternion.w = this._cosYaw * this._cosPitch * this._cosRoll + this._sinYaw * this._sinPitch * this._sinRoll;
  63218. };
  63219. SolidParticleSystem.prototype._quaternionToRotationMatrix = function () {
  63220. this._rotMatrix.m[0] = 1.0 - (2.0 * (this._quaternion.y * this._quaternion.y + this._quaternion.z * this._quaternion.z));
  63221. this._rotMatrix.m[1] = 2.0 * (this._quaternion.x * this._quaternion.y + this._quaternion.z * this._quaternion.w);
  63222. this._rotMatrix.m[2] = 2.0 * (this._quaternion.z * this._quaternion.x - this._quaternion.y * this._quaternion.w);
  63223. this._rotMatrix.m[3] = 0;
  63224. this._rotMatrix.m[4] = 2.0 * (this._quaternion.x * this._quaternion.y - this._quaternion.z * this._quaternion.w);
  63225. this._rotMatrix.m[5] = 1.0 - (2.0 * (this._quaternion.z * this._quaternion.z + this._quaternion.x * this._quaternion.x));
  63226. this._rotMatrix.m[6] = 2.0 * (this._quaternion.y * this._quaternion.z + this._quaternion.x * this._quaternion.w);
  63227. this._rotMatrix.m[7] = 0;
  63228. this._rotMatrix.m[8] = 2.0 * (this._quaternion.z * this._quaternion.x + this._quaternion.y * this._quaternion.w);
  63229. this._rotMatrix.m[9] = 2.0 * (this._quaternion.y * this._quaternion.z - this._quaternion.x * this._quaternion.w);
  63230. this._rotMatrix.m[10] = 1.0 - (2.0 * (this._quaternion.y * this._quaternion.y + this._quaternion.x * this._quaternion.x));
  63231. this._rotMatrix.m[11] = 0;
  63232. this._rotMatrix.m[12] = 0;
  63233. this._rotMatrix.m[13] = 0;
  63234. this._rotMatrix.m[14] = 0;
  63235. this._rotMatrix.m[15] = 1.0;
  63236. };
  63237. /**
  63238. * Disposes the SPS.
  63239. */
  63240. SolidParticleSystem.prototype.dispose = function () {
  63241. this.mesh.dispose();
  63242. this.vars = null;
  63243. // drop references to internal big arrays for the GC
  63244. this._positions = null;
  63245. this._indices = null;
  63246. this._normals = null;
  63247. this._uvs = null;
  63248. this._colors = null;
  63249. this._indices32 = null;
  63250. this._positions32 = null;
  63251. this._normals32 = null;
  63252. this._fixedNormal32 = null;
  63253. this._uvs32 = null;
  63254. this._colors32 = null;
  63255. this.pickedParticles = null;
  63256. };
  63257. /**
  63258. * Visibilty helper : Recomputes the visible size according to the mesh bounding box
  63259. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63260. * @returns the SPS.
  63261. */
  63262. SolidParticleSystem.prototype.refreshVisibleSize = function () {
  63263. if (!this._isVisibilityBoxLocked) {
  63264. this.mesh.refreshBoundingInfo();
  63265. }
  63266. return this;
  63267. };
  63268. /**
  63269. * Visibility helper : Sets the size of a visibility box, this sets the underlying mesh bounding box.
  63270. * @param size the size (float) of the visibility box
  63271. * note : this doesn't lock the SPS mesh bounding box.
  63272. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63273. */
  63274. SolidParticleSystem.prototype.setVisibilityBox = function (size) {
  63275. var vis = size / 2;
  63276. this.mesh._boundingInfo = new BABYLON.BoundingInfo(new BABYLON.Vector3(-vis, -vis, -vis), new BABYLON.Vector3(vis, vis, vis));
  63277. };
  63278. Object.defineProperty(SolidParticleSystem.prototype, "isAlwaysVisible", {
  63279. /**
  63280. * Gets whether the SPS as always visible or not
  63281. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63282. */
  63283. get: function () {
  63284. return this._alwaysVisible;
  63285. },
  63286. /**
  63287. * Sets the SPS as always visible or not
  63288. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63289. */
  63290. set: function (val) {
  63291. this._alwaysVisible = val;
  63292. this.mesh.alwaysSelectAsActiveMesh = val;
  63293. },
  63294. enumerable: true,
  63295. configurable: true
  63296. });
  63297. Object.defineProperty(SolidParticleSystem.prototype, "isVisibilityBoxLocked", {
  63298. /**
  63299. * Gets if the SPS visibility box as locked or not. This enables/disables the underlying mesh bounding box updates.
  63300. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63301. */
  63302. get: function () {
  63303. return this._isVisibilityBoxLocked;
  63304. },
  63305. /**
  63306. * Sets the SPS visibility box as locked or not. This enables/disables the underlying mesh bounding box updates.
  63307. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#sps-visibility
  63308. */
  63309. set: function (val) {
  63310. this._isVisibilityBoxLocked = val;
  63311. var boundingInfo = this.mesh.getBoundingInfo();
  63312. boundingInfo.isLocked = val;
  63313. },
  63314. enumerable: true,
  63315. configurable: true
  63316. });
  63317. Object.defineProperty(SolidParticleSystem.prototype, "computeParticleRotation", {
  63318. /**
  63319. * Gets if `setParticles()` computes the particle rotations or not.
  63320. * Default value : true. The SPS is faster when it's set to false.
  63321. * Note : the particle rotations aren't stored values, so setting `computeParticleRotation` to false will prevents the particle to rotate.
  63322. */
  63323. get: function () {
  63324. return this._computeParticleRotation;
  63325. },
  63326. /**
  63327. * Tells to `setParticles()` to compute the particle rotations or not.
  63328. * Default value : true. The SPS is faster when it's set to false.
  63329. * Note : the particle rotations aren't stored values, so setting `computeParticleRotation` to false will prevents the particle to rotate.
  63330. */
  63331. set: function (val) {
  63332. this._computeParticleRotation = val;
  63333. },
  63334. enumerable: true,
  63335. configurable: true
  63336. });
  63337. Object.defineProperty(SolidParticleSystem.prototype, "computeParticleColor", {
  63338. /**
  63339. * Gets if `setParticles()` computes the particle colors or not.
  63340. * Default value : true. The SPS is faster when it's set to false.
  63341. * Note : the particle colors are stored values, so setting `computeParticleColor` to false will keep yet the last colors set.
  63342. */
  63343. get: function () {
  63344. return this._computeParticleColor;
  63345. },
  63346. /**
  63347. * Tells to `setParticles()` to compute the particle colors or not.
  63348. * Default value : true. The SPS is faster when it's set to false.
  63349. * Note : the particle colors are stored values, so setting `computeParticleColor` to false will keep yet the last colors set.
  63350. */
  63351. set: function (val) {
  63352. this._computeParticleColor = val;
  63353. },
  63354. enumerable: true,
  63355. configurable: true
  63356. });
  63357. Object.defineProperty(SolidParticleSystem.prototype, "computeParticleTexture", {
  63358. /**
  63359. * Gets if `setParticles()` computes the particle textures or not.
  63360. * Default value : true. The SPS is faster when it's set to false.
  63361. * Note : the particle textures are stored values, so setting `computeParticleTexture` to false will keep yet the last colors set.
  63362. */
  63363. get: function () {
  63364. return this._computeParticleTexture;
  63365. },
  63366. set: function (val) {
  63367. this._computeParticleTexture = val;
  63368. },
  63369. enumerable: true,
  63370. configurable: true
  63371. });
  63372. Object.defineProperty(SolidParticleSystem.prototype, "computeParticleVertex", {
  63373. /**
  63374. * Gets if `setParticles()` calls the vertex function for each vertex of each particle, or not.
  63375. * Default value : false. The SPS is faster when it's set to false.
  63376. * Note : the particle custom vertex positions aren't stored values.
  63377. */
  63378. get: function () {
  63379. return this._computeParticleVertex;
  63380. },
  63381. /**
  63382. * Tells to `setParticles()` to call the vertex function for each vertex of each particle, or not.
  63383. * Default value : false. The SPS is faster when it's set to false.
  63384. * Note : the particle custom vertex positions aren't stored values.
  63385. */
  63386. set: function (val) {
  63387. this._computeParticleVertex = val;
  63388. },
  63389. enumerable: true,
  63390. configurable: true
  63391. });
  63392. Object.defineProperty(SolidParticleSystem.prototype, "computeBoundingBox", {
  63393. /**
  63394. * Gets if `setParticles()` computes or not the mesh bounding box when computing the particle positions.
  63395. */
  63396. get: function () {
  63397. return this._computeBoundingBox;
  63398. },
  63399. /**
  63400. * Tells to `setParticles()` to compute or not the mesh bounding box when computing the particle positions.
  63401. */
  63402. set: function (val) {
  63403. this._computeBoundingBox = val;
  63404. },
  63405. enumerable: true,
  63406. configurable: true
  63407. });
  63408. Object.defineProperty(SolidParticleSystem.prototype, "depthSortParticles", {
  63409. /**
  63410. * Gets if `setParticles()` sorts or not the distance between each particle and the camera.
  63411. * Skipped when `enableDepthSort` is set to `false` (default) at construction time.
  63412. * Default : `true`
  63413. */
  63414. get: function () {
  63415. return this._depthSortParticles;
  63416. },
  63417. /**
  63418. * Tells to `setParticles()` to sort or not the distance between each particle and the camera.
  63419. * Skipped when `enableDepthSort` is set to `false` (default) at construction time.
  63420. * Default : `true`
  63421. */
  63422. set: function (val) {
  63423. this._depthSortParticles = val;
  63424. },
  63425. enumerable: true,
  63426. configurable: true
  63427. });
  63428. // =======================================================================
  63429. // Particle behavior logic
  63430. // these following methods may be overwritten by the user to fit his needs
  63431. /**
  63432. * This function does nothing. It may be overwritten to set all the particle first values.
  63433. * The SPS doesn't call this function, you may have to call it by your own.
  63434. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#particle-management
  63435. */
  63436. SolidParticleSystem.prototype.initParticles = function () {
  63437. };
  63438. /**
  63439. * This function does nothing. It may be overwritten to recycle a particle.
  63440. * The SPS doesn't call this function, you may have to call it by your own.
  63441. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#particle-management
  63442. * @param particle The particle to recycle
  63443. * @returns the recycled particle
  63444. */
  63445. SolidParticleSystem.prototype.recycleParticle = function (particle) {
  63446. return particle;
  63447. };
  63448. /**
  63449. * Updates a particle : this function should be overwritten by the user.
  63450. * It is called on each particle by `setParticles()`. This is the place to code each particle behavior.
  63451. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#particle-management
  63452. * @example : just set a particle position or velocity and recycle conditions
  63453. * @param particle The particle to update
  63454. * @returns the updated particle
  63455. */
  63456. SolidParticleSystem.prototype.updateParticle = function (particle) {
  63457. return particle;
  63458. };
  63459. /**
  63460. * Updates a vertex of a particle : it can be overwritten by the user.
  63461. * This will be called on each vertex particle by `setParticles()` if `computeParticleVertex` is set to true only.
  63462. * @param particle the current particle
  63463. * @param vertex the current index of the current particle
  63464. * @param pt the index of the current vertex in the particle shape
  63465. * doc : http://doc.babylonjs.com/overviews/Solid_Particle_System#update-each-particle-shape
  63466. * @example : just set a vertex particle position
  63467. * @returns the updated vertex
  63468. */
  63469. SolidParticleSystem.prototype.updateParticleVertex = function (particle, vertex, pt) {
  63470. return vertex;
  63471. };
  63472. /**
  63473. * This will be called before any other treatment by `setParticles()` and will be passed three parameters.
  63474. * This does nothing and may be overwritten by the user.
  63475. * @param start the particle index in the particle array where to stop to iterate, same than the value passed to setParticle()
  63476. * @param stop the particle index in the particle array where to stop to iterate, same than the value passed to setParticle()
  63477. * @param update the boolean update value actually passed to setParticles()
  63478. */
  63479. SolidParticleSystem.prototype.beforeUpdateParticles = function (start, stop, update) {
  63480. };
  63481. /**
  63482. * This will be called by `setParticles()` after all the other treatments and just before the actual mesh update.
  63483. * This will be passed three parameters.
  63484. * This does nothing and may be overwritten by the user.
  63485. * @param start the particle index in the particle array where to stop to iterate, same than the value passed to setParticle()
  63486. * @param stop the particle index in the particle array where to stop to iterate, same than the value passed to setParticle()
  63487. * @param update the boolean update value actually passed to setParticles()
  63488. */
  63489. SolidParticleSystem.prototype.afterUpdateParticles = function (start, stop, update) {
  63490. };
  63491. return SolidParticleSystem;
  63492. }());
  63493. BABYLON.SolidParticleSystem = SolidParticleSystem;
  63494. })(BABYLON || (BABYLON = {}));
  63495. //# sourceMappingURL=babylon.solidParticleSystem.js.map
  63496. var BABYLON;
  63497. (function (BABYLON) {
  63498. /**
  63499. * Class containing static functions to help procedurally build meshes
  63500. */
  63501. var MeshBuilder = /** @class */ (function () {
  63502. function MeshBuilder() {
  63503. }
  63504. MeshBuilder.updateSideOrientation = function (orientation) {
  63505. if (orientation == BABYLON.Mesh.DOUBLESIDE) {
  63506. return BABYLON.Mesh.DOUBLESIDE;
  63507. }
  63508. if (orientation === undefined || orientation === null) {
  63509. return BABYLON.Mesh.FRONTSIDE;
  63510. }
  63511. return orientation;
  63512. };
  63513. /**
  63514. * Creates a box mesh
  63515. * * The parameter `size` sets the size (float) of each box side (default 1)
  63516. * * You can set some different box dimensions by using the parameters `width`, `height` and `depth` (all by default have the same value than `size`)
  63517. * * You can set different colors and different images to each box side by using the parameters `faceColors` (an array of 6 Color3 elements) and `faceUV` (an array of 6 Vector4 elements)
  63518. * * Please read this tutorial : http://doc.babylonjs.com/tutorials/CreateBox_Per_Face_Textures_And_Colors
  63519. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63520. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63521. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63522. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#box
  63523. * @param name defines the name of the mesh
  63524. * @param options defines the options used to create the mesh
  63525. * @param scene defines the hosting scene
  63526. * @returns the box mesh
  63527. */
  63528. MeshBuilder.CreateBox = function (name, options, scene) {
  63529. if (scene === void 0) { scene = null; }
  63530. var box = new BABYLON.Mesh(name, scene);
  63531. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63532. box._originalBuilderSideOrientation = options.sideOrientation;
  63533. var vertexData = BABYLON.VertexData.CreateBox(options);
  63534. vertexData.applyToMesh(box, options.updatable);
  63535. return box;
  63536. };
  63537. /**
  63538. * Creates a sphere mesh
  63539. * * The parameter `diameter` sets the diameter size (float) of the sphere (default 1)
  63540. * * You can set some different sphere dimensions, for instance to build an ellipsoid, by using the parameters `diameterX`, `diameterY` and `diameterZ` (all by default have the same value than `diameter`)
  63541. * * The parameter `segments` sets the sphere number of horizontal stripes (positive integer, default 32)
  63542. * * You can create an unclosed sphere with the parameter `arc` (positive float, default 1), valued between 0 and 1, what is the ratio of the circumference (latitude) : 2 x PI x ratio
  63543. * * You can create an unclosed sphere on its height with the parameter `slice` (positive float, default1), valued between 0 and 1, what is the height ratio (longitude)
  63544. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63545. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63546. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63547. * @param name defines the name of the mesh
  63548. * @param options defines the options used to create the mesh
  63549. * @param scene defines the hosting scene
  63550. * @returns the sphere mesh
  63551. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#sphere
  63552. */
  63553. MeshBuilder.CreateSphere = function (name, options, scene) {
  63554. var sphere = new BABYLON.Mesh(name, scene);
  63555. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63556. sphere._originalBuilderSideOrientation = options.sideOrientation;
  63557. var vertexData = BABYLON.VertexData.CreateSphere(options);
  63558. vertexData.applyToMesh(sphere, options.updatable);
  63559. return sphere;
  63560. };
  63561. /**
  63562. * Creates a plane polygonal mesh. By default, this is a disc
  63563. * * The parameter `radius` sets the radius size (float) of the polygon (default 0.5)
  63564. * * The parameter `tessellation` sets the number of polygon sides (positive integer, default 64). So a tessellation valued to 3 will build a triangle, to 4 a square, etc
  63565. * * You can create an unclosed polygon with the parameter `arc` (positive float, default 1), valued between 0 and 1, what is the ratio of the circumference : 2 x PI x ratio
  63566. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63567. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63568. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63569. * @param name defines the name of the mesh
  63570. * @param options defines the options used to create the mesh
  63571. * @param scene defines the hosting scene
  63572. * @returns the plane polygonal mesh
  63573. * @see http://doc.babylonjs.com/how_to/set_shapes#disc-or-regular-polygon
  63574. */
  63575. MeshBuilder.CreateDisc = function (name, options, scene) {
  63576. if (scene === void 0) { scene = null; }
  63577. var disc = new BABYLON.Mesh(name, scene);
  63578. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63579. disc._originalBuilderSideOrientation = options.sideOrientation;
  63580. var vertexData = BABYLON.VertexData.CreateDisc(options);
  63581. vertexData.applyToMesh(disc, options.updatable);
  63582. return disc;
  63583. };
  63584. /**
  63585. * Creates a sphere based upon an icosahedron with 20 triangular faces which can be subdivided
  63586. * * The parameter `radius` sets the radius size (float) of the icosphere (default 1)
  63587. * * You can set some different icosphere dimensions, for instance to build an ellipsoid, by using the parameters `radiusX`, `radiusY` and `radiusZ` (all by default have the same value than `radius`)
  63588. * * The parameter `subdivisions` sets the number of subdivisions (postive integer, default 4). The more subdivisions, the more faces on the icosphere whatever its size
  63589. * * The parameter `flat` (boolean, default true) gives each side its own normals. Set it to false to get a smooth continuous light reflection on the surface
  63590. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63591. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63592. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63593. * @param name defines the name of the mesh
  63594. * @param options defines the options used to create the mesh
  63595. * @param scene defines the hosting scene
  63596. * @returns the icosahedron mesh
  63597. * @see http://doc.babylonjs.com/how_to/polyhedra_shapes#icosphere
  63598. */
  63599. MeshBuilder.CreateIcoSphere = function (name, options, scene) {
  63600. var sphere = new BABYLON.Mesh(name, scene);
  63601. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63602. sphere._originalBuilderSideOrientation = options.sideOrientation;
  63603. var vertexData = BABYLON.VertexData.CreateIcoSphere(options);
  63604. vertexData.applyToMesh(sphere, options.updatable);
  63605. return sphere;
  63606. };
  63607. ;
  63608. /**
  63609. * Creates a ribbon mesh. The ribbon is a parametric shape. It has no predefined shape. Its final shape will depend on the input parameters
  63610. * * The parameter `pathArray` is a required array of paths, what are each an array of successive Vector3. The pathArray parameter depicts the ribbon geometry
  63611. * * The parameter `closeArray` (boolean, default false) creates a seam between the first and the last paths of the path array
  63612. * * The parameter `closePath` (boolean, default false) creates a seam between the first and the last points of each path of the path array
  63613. * * The parameter `offset` (positive integer, default : rounded half size of the pathArray length), is taken in account only if the `pathArray` is containing a single path
  63614. * * It's the offset to join the points from the same path. Ex : offset = 10 means the point 1 is joined to the point 11
  63615. * * The optional parameter `instance` is an instance of an existing Ribbon object to be updated with the passed `pathArray` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#ribbon
  63616. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63617. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63618. * * The optional parameter `invertUV` (boolean, default false) swaps in the geometry the U and V coordinates to apply a texture
  63619. * * The parameter `uvs` is an optional flat array of `Vector2` to update/set each ribbon vertex with its own custom UV values instead of the computed ones
  63620. * * The parameters `colors` is an optional flat array of `Color4` to set/update each ribbon vertex with its own custom color values
  63621. * * Note that if you use the parameters `uvs` or `colors`, the passed arrays must be populated with the right number of elements, it is to say the number of ribbon vertices. Remember that if you set `closePath` to `true`, there's one extra vertex per path in the geometry
  63622. * * Moreover, you can use the parameter `color` with `instance` (to update the ribbon), only if you previously used it at creation time
  63623. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63624. * @param name defines the name of the mesh
  63625. * @param options defines the options used to create the mesh
  63626. * @param scene defines the hosting scene
  63627. * @returns the ribbon mesh
  63628. * @see http://doc.babylonjs.com/tutorials/Ribbon_Tutorial
  63629. * @see http://doc.babylonjs.com/tutorials/Parametric_Shapes
  63630. */
  63631. MeshBuilder.CreateRibbon = function (name, options, scene) {
  63632. if (scene === void 0) { scene = null; }
  63633. var pathArray = options.pathArray;
  63634. var closeArray = options.closeArray;
  63635. var closePath = options.closePath;
  63636. var sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63637. var instance = options.instance;
  63638. var updatable = options.updatable;
  63639. if (instance) { // existing ribbon instance update
  63640. // positionFunction : ribbon case
  63641. // only pathArray and sideOrientation parameters are taken into account for positions update
  63642. BABYLON.Vector3.FromFloatsToRef(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE, BABYLON.Tmp.Vector3[0]); // minimum
  63643. BABYLON.Vector3.FromFloatsToRef(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE, BABYLON.Tmp.Vector3[1]);
  63644. var positionFunction = function (positions) {
  63645. var minlg = pathArray[0].length;
  63646. var i = 0;
  63647. var ns = (instance._originalBuilderSideOrientation === BABYLON.Mesh.DOUBLESIDE) ? 2 : 1;
  63648. for (var si = 1; si <= ns; si++) {
  63649. for (var p = 0; p < pathArray.length; p++) {
  63650. var path = pathArray[p];
  63651. var l = path.length;
  63652. minlg = (minlg < l) ? minlg : l;
  63653. var j = 0;
  63654. while (j < minlg) {
  63655. positions[i] = path[j].x;
  63656. positions[i + 1] = path[j].y;
  63657. positions[i + 2] = path[j].z;
  63658. if (path[j].x < BABYLON.Tmp.Vector3[0].x) {
  63659. BABYLON.Tmp.Vector3[0].x = path[j].x;
  63660. }
  63661. if (path[j].x > BABYLON.Tmp.Vector3[1].x) {
  63662. BABYLON.Tmp.Vector3[1].x = path[j].x;
  63663. }
  63664. if (path[j].y < BABYLON.Tmp.Vector3[0].y) {
  63665. BABYLON.Tmp.Vector3[0].y = path[j].y;
  63666. }
  63667. if (path[j].y > BABYLON.Tmp.Vector3[1].y) {
  63668. BABYLON.Tmp.Vector3[1].y = path[j].y;
  63669. }
  63670. if (path[j].z < BABYLON.Tmp.Vector3[0].z) {
  63671. BABYLON.Tmp.Vector3[0].z = path[j].z;
  63672. }
  63673. if (path[j].z > BABYLON.Tmp.Vector3[1].z) {
  63674. BABYLON.Tmp.Vector3[1].z = path[j].z;
  63675. }
  63676. j++;
  63677. i += 3;
  63678. }
  63679. if (instance._closePath) {
  63680. positions[i] = path[0].x;
  63681. positions[i + 1] = path[0].y;
  63682. positions[i + 2] = path[0].z;
  63683. i += 3;
  63684. }
  63685. }
  63686. }
  63687. };
  63688. var positions = instance.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  63689. positionFunction(positions);
  63690. instance._boundingInfo = new BABYLON.BoundingInfo(BABYLON.Tmp.Vector3[0], BABYLON.Tmp.Vector3[1]);
  63691. instance._boundingInfo.update(instance._worldMatrix);
  63692. instance.updateVerticesData(BABYLON.VertexBuffer.PositionKind, positions, false, false);
  63693. if (options.colors) {
  63694. var colors = instance.getVerticesData(BABYLON.VertexBuffer.ColorKind);
  63695. for (var c = 0; c < options.colors.length; c++) {
  63696. colors[c * 4] = options.colors[c].r;
  63697. colors[c * 4 + 1] = options.colors[c].g;
  63698. colors[c * 4 + 2] = options.colors[c].b;
  63699. colors[c * 4 + 3] = options.colors[c].a;
  63700. }
  63701. instance.updateVerticesData(BABYLON.VertexBuffer.ColorKind, colors, false, false);
  63702. }
  63703. if (options.uvs) {
  63704. var uvs = instance.getVerticesData(BABYLON.VertexBuffer.UVKind);
  63705. for (var i = 0; i < options.uvs.length; i++) {
  63706. uvs[i * 2] = options.uvs[i].x;
  63707. uvs[i * 2 + 1] = options.uvs[i].y;
  63708. }
  63709. instance.updateVerticesData(BABYLON.VertexBuffer.UVKind, uvs, false, false);
  63710. }
  63711. if (!instance.areNormalsFrozen || instance.isFacetDataEnabled) {
  63712. var indices = instance.getIndices();
  63713. var normals = instance.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  63714. var params = instance.isFacetDataEnabled ? instance.getFacetDataParameters() : null;
  63715. BABYLON.VertexData.ComputeNormals(positions, indices, normals, params);
  63716. if (instance._closePath) {
  63717. var indexFirst = 0;
  63718. var indexLast = 0;
  63719. for (var p = 0; p < pathArray.length; p++) {
  63720. indexFirst = instance._idx[p] * 3;
  63721. if (p + 1 < pathArray.length) {
  63722. indexLast = (instance._idx[p + 1] - 1) * 3;
  63723. }
  63724. else {
  63725. indexLast = normals.length - 3;
  63726. }
  63727. normals[indexFirst] = (normals[indexFirst] + normals[indexLast]) * 0.5;
  63728. normals[indexFirst + 1] = (normals[indexFirst + 1] + normals[indexLast + 1]) * 0.5;
  63729. normals[indexFirst + 2] = (normals[indexFirst + 2] + normals[indexLast + 2]) * 0.5;
  63730. normals[indexLast] = normals[indexFirst];
  63731. normals[indexLast + 1] = normals[indexFirst + 1];
  63732. normals[indexLast + 2] = normals[indexFirst + 2];
  63733. }
  63734. }
  63735. if (!(instance.areNormalsFrozen)) {
  63736. instance.updateVerticesData(BABYLON.VertexBuffer.NormalKind, normals, false, false);
  63737. }
  63738. }
  63739. return instance;
  63740. }
  63741. else { // new ribbon creation
  63742. var ribbon = new BABYLON.Mesh(name, scene);
  63743. ribbon._originalBuilderSideOrientation = sideOrientation;
  63744. var vertexData = BABYLON.VertexData.CreateRibbon(options);
  63745. if (closePath) {
  63746. ribbon._idx = vertexData._idx;
  63747. }
  63748. ribbon._closePath = closePath;
  63749. ribbon._closeArray = closeArray;
  63750. vertexData.applyToMesh(ribbon, updatable);
  63751. return ribbon;
  63752. }
  63753. };
  63754. /**
  63755. * Creates a cylinder or a cone mesh
  63756. * * The parameter `height` sets the height size (float) of the cylinder/cone (float, default 2).
  63757. * * The parameter `diameter` sets the diameter of the top and bottom cap at once (float, default 1).
  63758. * * The parameters `diameterTop` and `diameterBottom` overwrite the parameter `diameter` and set respectively the top cap and bottom cap diameter (floats, default 1). The parameter "diameterBottom" can't be zero.
  63759. * * The parameter `tessellation` sets the number of cylinder sides (positive integer, default 24). Set it to 3 to get a prism for instance.
  63760. * * The parameter `subdivisions` sets the number of rings along the cylinder height (positive integer, default 1).
  63761. * * The parameter `hasRings` (boolean, default false) makes the subdivisions independent from each other, so they become different faces.
  63762. * * The parameter `enclose` (boolean, default false) adds two extra faces per subdivision to a sliced cylinder to close it around its height axis.
  63763. * * The parameter `arc` (float, default 1) is the ratio (max 1) to apply to the circumference to slice the cylinder.
  63764. * * You can set different colors and different images to each box side by using the parameters `faceColors` (an array of n Color3 elements) and `faceUV` (an array of n Vector4 elements).
  63765. * * The value of n is the number of cylinder faces. If the cylinder has only 1 subdivisions, n equals : top face + cylinder surface + bottom face = 3
  63766. * * Now, if the cylinder has 5 independent subdivisions (hasRings = true), n equals : top face + 5 stripe surfaces + bottom face = 2 + 5 = 7
  63767. * * Finally, if the cylinder has 5 independent subdivisions and is enclose, n equals : top face + 5 x (stripe surface + 2 closing faces) + bottom face = 2 + 5 * 3 = 17
  63768. * * Each array (color or UVs) is always ordered the same way : the first element is the bottom cap, the last element is the top cap. The other elements are each a ring surface.
  63769. * * If `enclose` is false, a ring surface is one element.
  63770. * * If `enclose` is true, a ring surface is 3 successive elements in the array : the tubular surface, then the two closing faces.
  63771. * * Example how to set colors and textures on a sliced cylinder : http://www.html5gamedevs.com/topic/17945-creating-a-closed-slice-of-a-cylinder/#comment-106379
  63772. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63773. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63774. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  63775. * @param name defines the name of the mesh
  63776. * @param options defines the options used to create the mesh
  63777. * @param scene defines the hosting scene
  63778. * @returns the cylinder mesh
  63779. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#cylinder-or-cone
  63780. */
  63781. MeshBuilder.CreateCylinder = function (name, options, scene) {
  63782. var cylinder = new BABYLON.Mesh(name, scene);
  63783. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63784. cylinder._originalBuilderSideOrientation = options.sideOrientation;
  63785. var vertexData = BABYLON.VertexData.CreateCylinder(options);
  63786. vertexData.applyToMesh(cylinder, options.updatable);
  63787. return cylinder;
  63788. };
  63789. /**
  63790. * Creates a torus mesh
  63791. * * The parameter `diameter` sets the diameter size (float) of the torus (default 1)
  63792. * * The parameter `thickness` sets the diameter size of the tube of the torus (float, default 0.5)
  63793. * * The parameter `tessellation` sets the number of torus sides (postive integer, default 16)
  63794. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63795. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63796. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  63797. * @param name defines the name of the mesh
  63798. * @param options defines the options used to create the mesh
  63799. * @param scene defines the hosting scene
  63800. * @returns the torus mesh
  63801. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#torus
  63802. */
  63803. MeshBuilder.CreateTorus = function (name, options, scene) {
  63804. var torus = new BABYLON.Mesh(name, scene);
  63805. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63806. torus._originalBuilderSideOrientation = options.sideOrientation;
  63807. var vertexData = BABYLON.VertexData.CreateTorus(options);
  63808. vertexData.applyToMesh(torus, options.updatable);
  63809. return torus;
  63810. };
  63811. /**
  63812. * Creates a torus knot mesh
  63813. * * The parameter `radius` sets the global radius size (float) of the torus knot (default 2)
  63814. * * The parameter `radialSegments` sets the number of sides on each tube segments (positive integer, default 32)
  63815. * * The parameter `tubularSegments` sets the number of tubes to decompose the knot into (positive integer, default 32)
  63816. * * The parameters `p` and `q` are the number of windings on each axis (positive integers, default 2 and 3)
  63817. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  63818. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  63819. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  63820. * @param name defines the name of the mesh
  63821. * @param options defines the options used to create the mesh
  63822. * @param scene defines the hosting scene
  63823. * @returns the torus knot mesh
  63824. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#torus-knot
  63825. */
  63826. MeshBuilder.CreateTorusKnot = function (name, options, scene) {
  63827. var torusKnot = new BABYLON.Mesh(name, scene);
  63828. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  63829. torusKnot._originalBuilderSideOrientation = options.sideOrientation;
  63830. var vertexData = BABYLON.VertexData.CreateTorusKnot(options);
  63831. vertexData.applyToMesh(torusKnot, options.updatable);
  63832. return torusKnot;
  63833. };
  63834. /**
  63835. * Creates a line system mesh. A line system is a pool of many lines gathered in a single mesh
  63836. * * A line system mesh is considered as a parametric shape since it has no predefined original shape. Its shape is determined by the passed array of lines as an input parameter
  63837. * * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineSystem to this static function
  63838. * * The parameter `lines` is an array of lines, each line being an array of successive Vector3
  63839. * * The optional parameter `instance` is an instance of an existing LineSystem object to be updated with the passed `lines` parameter
  63840. * * The optional parameter `colors` is an array of line colors, each line colors being an array of successive Color4, one per line point
  63841. * * The optional parameter `useVertexAlpha` is to be set to `false` (default `true`) when you don't need the alpha blending (faster)
  63842. * * Updating a simple Line mesh, you just need to update every line in the `lines` array : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#lines-and-dashedlines
  63843. * * When updating an instance, remember that only line point positions can change, not the number of points, neither the number of lines
  63844. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63845. * @see http://doc.babylonjs.com/how_to/parametric_shapes#line-system
  63846. * @param name defines the name of the new line system
  63847. * @param options defines the options used to create the line system
  63848. * @param scene defines the hosting scene
  63849. * @returns a new line system mesh
  63850. */
  63851. MeshBuilder.CreateLineSystem = function (name, options, scene) {
  63852. var instance = options.instance;
  63853. var lines = options.lines;
  63854. var colors = options.colors;
  63855. if (instance) { // lines update
  63856. var positions = instance.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  63857. var vertexColor;
  63858. var lineColors;
  63859. if (colors) {
  63860. vertexColor = instance.getVerticesData(BABYLON.VertexBuffer.ColorKind);
  63861. }
  63862. var i = 0;
  63863. var c = 0;
  63864. for (var l = 0; l < lines.length; l++) {
  63865. var points = lines[l];
  63866. for (var p = 0; p < points.length; p++) {
  63867. positions[i] = points[p].x;
  63868. positions[i + 1] = points[p].y;
  63869. positions[i + 2] = points[p].z;
  63870. if (colors && vertexColor) {
  63871. lineColors = colors[l];
  63872. vertexColor[c] = lineColors[p].r;
  63873. vertexColor[c + 1] = lineColors[p].g;
  63874. vertexColor[c + 2] = lineColors[p].b;
  63875. vertexColor[c + 3] = lineColors[p].a;
  63876. c += 4;
  63877. }
  63878. i += 3;
  63879. }
  63880. }
  63881. instance.updateVerticesData(BABYLON.VertexBuffer.PositionKind, positions, false, false);
  63882. if (colors && vertexColor) {
  63883. instance.updateVerticesData(BABYLON.VertexBuffer.ColorKind, vertexColor, false, false);
  63884. }
  63885. return instance;
  63886. }
  63887. // line system creation
  63888. var useVertexColor = (colors) ? true : false;
  63889. var lineSystem = new BABYLON.LinesMesh(name, scene, null, undefined, undefined, useVertexColor, options.useVertexAlpha);
  63890. var vertexData = BABYLON.VertexData.CreateLineSystem(options);
  63891. vertexData.applyToMesh(lineSystem, options.updatable);
  63892. return lineSystem;
  63893. };
  63894. /**
  63895. * Creates a line mesh
  63896. * A line mesh is considered as a parametric shape since it has no predefined original shape. Its shape is determined by the passed array of points as an input parameter
  63897. * * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function
  63898. * * The parameter `points` is an array successive Vector3
  63899. * * The optional parameter `instance` is an instance of an existing LineMesh object to be updated with the passed `points` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#lines-and-dashedlines
  63900. * * The optional parameter `colors` is an array of successive Color4, one per line point
  63901. * * The optional parameter `useVertexAlpha` is to be set to `false` (default `true`) when you don't need alpha blending (faster)
  63902. * * When updating an instance, remember that only point positions can change, not the number of points
  63903. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63904. * @see http://doc.babylonjs.com/how_to/parametric_shapes#lines
  63905. * @param name defines the name of the new line system
  63906. * @param options defines the options used to create the line system
  63907. * @param scene defines the hosting scene
  63908. * @returns a new line mesh
  63909. */
  63910. MeshBuilder.CreateLines = function (name, options, scene) {
  63911. if (scene === void 0) { scene = null; }
  63912. var colors = (options.colors) ? [options.colors] : null;
  63913. var lines = MeshBuilder.CreateLineSystem(name, { lines: [options.points], updatable: options.updatable, instance: options.instance, colors: colors, useVertexAlpha: options.useVertexAlpha }, scene);
  63914. return lines;
  63915. };
  63916. /**
  63917. * Creates a dashed line mesh
  63918. * * A dashed line mesh is considered as a parametric shape since it has no predefined original shape. Its shape is determined by the passed array of points as an input parameter
  63919. * * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function
  63920. * * The parameter `points` is an array successive Vector3
  63921. * * The parameter `dashNb` is the intended total number of dashes (positive integer, default 200)
  63922. * * The parameter `dashSize` is the size of the dashes relatively the dash number (positive float, default 3)
  63923. * * The parameter `gapSize` is the size of the gap between two successive dashes relatively the dash number (positive float, default 1)
  63924. * * The optional parameter `instance` is an instance of an existing LineMesh object to be updated with the passed `points` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#lines-and-dashedlines
  63925. * * When updating an instance, remember that only point positions can change, not the number of points
  63926. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  63927. * @param name defines the name of the mesh
  63928. * @param options defines the options used to create the mesh
  63929. * @param scene defines the hosting scene
  63930. * @returns the dashed line mesh
  63931. * @see http://doc.babylonjs.com/how_to/parametric_shapes#dashed-lines
  63932. */
  63933. MeshBuilder.CreateDashedLines = function (name, options, scene) {
  63934. if (scene === void 0) { scene = null; }
  63935. var points = options.points;
  63936. var instance = options.instance;
  63937. var gapSize = options.gapSize || 1;
  63938. var dashSize = options.dashSize || 3;
  63939. if (instance) { // dashed lines update
  63940. var positionFunction = function (positions) {
  63941. var curvect = BABYLON.Vector3.Zero();
  63942. var nbSeg = positions.length / 6;
  63943. var lg = 0;
  63944. var nb = 0;
  63945. var shft = 0;
  63946. var dashshft = 0;
  63947. var curshft = 0;
  63948. var p = 0;
  63949. var i = 0;
  63950. var j = 0;
  63951. for (i = 0; i < points.length - 1; i++) {
  63952. points[i + 1].subtractToRef(points[i], curvect);
  63953. lg += curvect.length();
  63954. }
  63955. shft = lg / nbSeg;
  63956. dashshft = instance.dashSize * shft / (instance.dashSize + instance.gapSize);
  63957. for (i = 0; i < points.length - 1; i++) {
  63958. points[i + 1].subtractToRef(points[i], curvect);
  63959. nb = Math.floor(curvect.length() / shft);
  63960. curvect.normalize();
  63961. j = 0;
  63962. while (j < nb && p < positions.length) {
  63963. curshft = shft * j;
  63964. positions[p] = points[i].x + curshft * curvect.x;
  63965. positions[p + 1] = points[i].y + curshft * curvect.y;
  63966. positions[p + 2] = points[i].z + curshft * curvect.z;
  63967. positions[p + 3] = points[i].x + (curshft + dashshft) * curvect.x;
  63968. positions[p + 4] = points[i].y + (curshft + dashshft) * curvect.y;
  63969. positions[p + 5] = points[i].z + (curshft + dashshft) * curvect.z;
  63970. p += 6;
  63971. j++;
  63972. }
  63973. }
  63974. while (p < positions.length) {
  63975. positions[p] = points[i].x;
  63976. positions[p + 1] = points[i].y;
  63977. positions[p + 2] = points[i].z;
  63978. p += 3;
  63979. }
  63980. };
  63981. instance.updateMeshPositions(positionFunction, false);
  63982. return instance;
  63983. }
  63984. // dashed lines creation
  63985. var dashedLines = new BABYLON.LinesMesh(name, scene);
  63986. var vertexData = BABYLON.VertexData.CreateDashedLines(options);
  63987. vertexData.applyToMesh(dashedLines, options.updatable);
  63988. dashedLines.dashSize = dashSize;
  63989. dashedLines.gapSize = gapSize;
  63990. return dashedLines;
  63991. };
  63992. /**
  63993. * Creates an extruded shape mesh. The extrusion is a parametric shape. It has no predefined shape. Its final shape will depend on the input parameters.
  63994. * * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be extruded in its local space : the shape must be designed in the xOy plane and will be extruded along the Z axis.
  63995. * * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  63996. * * The parameter `rotation` (float, default 0 radians) is the angle value to rotate the shape each step (each path point), from the former step (so rotation added each step) along the curve.
  63997. * * The parameter `scale` (float, default 1) is the value to scale the shape.
  63998. * * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  63999. * * The optional parameter `instance` is an instance of an existing ExtrudedShape object to be updated with the passed `shape`, `path`, `scale` or `rotation` parameters : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#extruded-shape
  64000. * * Remember you can only change the shape or path point positions, not their number when updating an extruded shape.
  64001. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64002. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64003. * * The optional parameter `invertUV` (boolean, default false) swaps in the geometry the U and V coordinates to apply a texture.
  64004. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  64005. * @param name defines the name of the mesh
  64006. * @param options defines the options used to create the mesh
  64007. * @param scene defines the hosting scene
  64008. * @returns the extruded shape mesh
  64009. * @see http://doc.babylonjs.com/tutorials/Parametric_Shapes
  64010. * @see http://doc.babylonjs.com/how_to/parametric_shapes#extruded-shapes
  64011. * @see http://doc.babylonjs.com/how_to/parametric_shapes#extruded-shapes
  64012. */
  64013. MeshBuilder.ExtrudeShape = function (name, options, scene) {
  64014. if (scene === void 0) { scene = null; }
  64015. var path = options.path;
  64016. var shape = options.shape;
  64017. var scale = options.scale || 1;
  64018. var rotation = options.rotation || 0;
  64019. var cap = (options.cap === 0) ? 0 : options.cap || BABYLON.Mesh.NO_CAP;
  64020. var updatable = options.updatable;
  64021. var sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64022. var instance = options.instance || null;
  64023. var invertUV = options.invertUV || false;
  64024. return MeshBuilder._ExtrudeShapeGeneric(name, shape, path, scale, rotation, null, null, false, false, cap, false, scene, updatable ? true : false, sideOrientation, instance, invertUV, options.frontUVs || null, options.backUVs || null);
  64025. };
  64026. /**
  64027. * Creates an custom extruded shape mesh.
  64028. * The custom extrusion is a parametric shape. It has no predefined shape. Its final shape will depend on the input parameters.
  64029. * * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be extruded in its local space : the shape must be designed in the xOy plane and will be extruded along the Z axis.
  64030. * * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  64031. * * The parameter `rotationFunction` (JS function) is a custom Javascript function called on each path point. This function is passed the position i of the point in the path and the distance of this point from the begining of the path
  64032. * * It must returns a float value that will be the rotation in radians applied to the shape on each path point.
  64033. * * The parameter `scaleFunction` (JS function) is a custom Javascript function called on each path point. This function is passed the position i of the point in the path and the distance of this point from the begining of the path
  64034. * * It must returns a float value that will be the scale value applied to the shape on each path point
  64035. * * The parameter `ribbonClosePath` (boolean, default false) forces the extrusion underlying ribbon to close all the paths in its `pathArray`
  64036. * * The parameter `ribbonCloseArray` (boolean, default false) forces the extrusion underlying ribbon to close its `pathArray`
  64037. * * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  64038. * * The optional parameter `instance` is an instance of an existing ExtrudedShape object to be updated with the passed `shape`, `path`, `scale` or `rotation` parameters : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#extruded-shape
  64039. * * Remember you can only change the shape or path point positions, not their number when updating an extruded shape
  64040. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64041. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64042. * * The optional parameter `invertUV` (boolean, default false) swaps in the geometry the U and V coordinates to apply a texture
  64043. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64044. * @param name defines the name of the mesh
  64045. * @param options defines the options used to create the mesh
  64046. * @param scene defines the hosting scene
  64047. * @returns the custom extruded shape mesh
  64048. * @see http://doc.babylonjs.com/how_to/parametric_shapes#custom-extruded-shapes
  64049. * @see http://doc.babylonjs.com/tutorials/Parametric_Shapes
  64050. * @see http://doc.babylonjs.com/how_to/parametric_shapes#extruded-shapes
  64051. */
  64052. MeshBuilder.ExtrudeShapeCustom = function (name, options, scene) {
  64053. var path = options.path;
  64054. var shape = options.shape;
  64055. var scaleFunction = options.scaleFunction || (function () { return 1; });
  64056. var rotationFunction = options.rotationFunction || (function () { return 0; });
  64057. var ribbonCloseArray = options.ribbonCloseArray || false;
  64058. var ribbonClosePath = options.ribbonClosePath || false;
  64059. var cap = (options.cap === 0) ? 0 : options.cap || BABYLON.Mesh.NO_CAP;
  64060. var updatable = options.updatable;
  64061. var sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64062. var instance = options.instance;
  64063. var invertUV = options.invertUV || false;
  64064. return MeshBuilder._ExtrudeShapeGeneric(name, shape, path, null, null, scaleFunction, rotationFunction, ribbonCloseArray, ribbonClosePath, cap, true, scene, updatable ? true : false, sideOrientation, instance || null, invertUV, options.frontUVs || null, options.backUVs || null);
  64065. };
  64066. /**
  64067. * Creates lathe mesh.
  64068. * The lathe is a shape with a symetry axis : a 2D model shape is rotated around this axis to design the lathe
  64069. * * The parameter `shape` is a required array of successive Vector3. This array depicts the shape to be rotated in its local space : the shape must be designed in the xOy plane and will be rotated around the Y axis. It's usually a 2D shape, so the Vector3 z coordinates are often set to zero
  64070. * * The parameter `radius` (positive float, default 1) is the radius value of the lathe
  64071. * * The parameter `tessellation` (positive integer, default 64) is the side number of the lathe
  64072. * * The parameter `clip` (positive integer, default 0) is the number of sides to not create without effecting the general shape of the sides
  64073. * * The parameter `arc` (positive float, default 1) is the ratio of the lathe. 0.5 builds for instance half a lathe, so an opened shape
  64074. * * The parameter `closed` (boolean, default true) opens/closes the lathe circumference. This should be set to false when used with the parameter "arc"
  64075. * * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  64076. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64077. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64078. * * The optional parameter `invertUV` (boolean, default false) swaps in the geometry the U and V coordinates to apply a texture
  64079. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64080. * @param name defines the name of the mesh
  64081. * @param options defines the options used to create the mesh
  64082. * @param scene defines the hosting scene
  64083. * @returns the lathe mesh
  64084. * @see http://doc.babylonjs.com/how_to/parametric_shapes#lathe
  64085. */
  64086. MeshBuilder.CreateLathe = function (name, options, scene) {
  64087. var arc = options.arc ? ((options.arc <= 0 || options.arc > 1) ? 1.0 : options.arc) : 1.0;
  64088. var closed = (options.closed === undefined) ? true : options.closed;
  64089. var shape = options.shape;
  64090. var radius = options.radius || 1;
  64091. var tessellation = options.tessellation || 64;
  64092. var clip = options.clip || 0;
  64093. var updatable = options.updatable;
  64094. var sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64095. var cap = options.cap || BABYLON.Mesh.NO_CAP;
  64096. var pi2 = Math.PI * 2;
  64097. var paths = new Array();
  64098. var invertUV = options.invertUV || false;
  64099. var i = 0;
  64100. var p = 0;
  64101. var step = pi2 / tessellation * arc;
  64102. var rotated;
  64103. var path = new Array();
  64104. for (i = 0; i <= tessellation - clip; i++) {
  64105. var path = [];
  64106. if (cap == BABYLON.Mesh.CAP_START || cap == BABYLON.Mesh.CAP_ALL) {
  64107. path.push(new BABYLON.Vector3(0, shape[0].y, 0));
  64108. path.push(new BABYLON.Vector3(Math.cos(i * step) * shape[0].x * radius, shape[0].y, Math.sin(i * step) * shape[0].x * radius));
  64109. }
  64110. for (p = 0; p < shape.length; p++) {
  64111. rotated = new BABYLON.Vector3(Math.cos(i * step) * shape[p].x * radius, shape[p].y, Math.sin(i * step) * shape[p].x * radius);
  64112. path.push(rotated);
  64113. }
  64114. if (cap == BABYLON.Mesh.CAP_END || cap == BABYLON.Mesh.CAP_ALL) {
  64115. path.push(new BABYLON.Vector3(Math.cos(i * step) * shape[shape.length - 1].x * radius, shape[shape.length - 1].y, Math.sin(i * step) * shape[shape.length - 1].x * radius));
  64116. path.push(new BABYLON.Vector3(0, shape[shape.length - 1].y, 0));
  64117. }
  64118. paths.push(path);
  64119. }
  64120. // lathe ribbon
  64121. var lathe = MeshBuilder.CreateRibbon(name, { pathArray: paths, closeArray: closed, sideOrientation: sideOrientation, updatable: updatable, invertUV: invertUV, frontUVs: options.frontUVs, backUVs: options.backUVs }, scene);
  64122. return lathe;
  64123. };
  64124. /**
  64125. * Creates a plane mesh
  64126. * * The parameter `size` sets the size (float) of both sides of the plane at once (default 1)
  64127. * * You can set some different plane dimensions by using the parameters `width` and `height` (both by default have the same value than `size`)
  64128. * * The parameter `sourcePlane` is a Plane instance. It builds a mesh plane from a Math plane
  64129. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64130. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64131. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64132. * @param name defines the name of the mesh
  64133. * @param options defines the options used to create the mesh
  64134. * @param scene defines the hosting scene
  64135. * @returns the plane mesh
  64136. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#plane
  64137. */
  64138. MeshBuilder.CreatePlane = function (name, options, scene) {
  64139. var plane = new BABYLON.Mesh(name, scene);
  64140. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64141. plane._originalBuilderSideOrientation = options.sideOrientation;
  64142. var vertexData = BABYLON.VertexData.CreatePlane(options);
  64143. vertexData.applyToMesh(plane, options.updatable);
  64144. if (options.sourcePlane) {
  64145. plane.translate(options.sourcePlane.normal, options.sourcePlane.d);
  64146. var product = Math.acos(BABYLON.Vector3.Dot(options.sourcePlane.normal, BABYLON.Axis.Z));
  64147. var vectorProduct = BABYLON.Vector3.Cross(BABYLON.Axis.Z, options.sourcePlane.normal);
  64148. plane.rotate(vectorProduct, product);
  64149. }
  64150. return plane;
  64151. };
  64152. /**
  64153. * Creates a ground mesh
  64154. * * The parameters `width` and `height` (floats, default 1) set the width and height sizes of the ground
  64155. * * The parameter `subdivisions` (positive integer) sets the number of subdivisions per side
  64156. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64157. * @param name defines the name of the mesh
  64158. * @param options defines the options used to create the mesh
  64159. * @param scene defines the hosting scene
  64160. * @returns the ground mesh
  64161. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#plane
  64162. */
  64163. MeshBuilder.CreateGround = function (name, options, scene) {
  64164. var ground = new BABYLON.GroundMesh(name, scene);
  64165. ground._setReady(false);
  64166. ground._subdivisionsX = options.subdivisionsX || options.subdivisions || 1;
  64167. ground._subdivisionsY = options.subdivisionsY || options.subdivisions || 1;
  64168. ground._width = options.width || 1;
  64169. ground._height = options.height || 1;
  64170. ground._maxX = ground._width / 2;
  64171. ground._maxZ = ground._height / 2;
  64172. ground._minX = -ground._maxX;
  64173. ground._minZ = -ground._maxZ;
  64174. var vertexData = BABYLON.VertexData.CreateGround(options);
  64175. vertexData.applyToMesh(ground, options.updatable);
  64176. ground._setReady(true);
  64177. return ground;
  64178. };
  64179. /**
  64180. * Creates a tiled ground mesh
  64181. * * The parameters `xmin` and `xmax` (floats, default -1 and 1) set the ground minimum and maximum X coordinates
  64182. * * The parameters `zmin` and `zmax` (floats, default -1 and 1) set the ground minimum and maximum Z coordinates
  64183. * * The parameter `subdivisions` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 6, h: 6}`). `w` and `h` are the numbers of subdivisions on the ground width and height. Each subdivision is called a tile
  64184. * * The parameter `precision` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 2, h: 2}`). `w` and `h` are the numbers of subdivisions on the ground width and height of each tile
  64185. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  64186. * @param name defines the name of the mesh
  64187. * @param options defines the options used to create the mesh
  64188. * @param scene defines the hosting scene
  64189. * @returns the tiled ground mesh
  64190. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#tiled-ground
  64191. */
  64192. MeshBuilder.CreateTiledGround = function (name, options, scene) {
  64193. var tiledGround = new BABYLON.Mesh(name, scene);
  64194. var vertexData = BABYLON.VertexData.CreateTiledGround(options);
  64195. vertexData.applyToMesh(tiledGround, options.updatable);
  64196. return tiledGround;
  64197. };
  64198. /**
  64199. * Creates a ground mesh from a height map
  64200. * * The parameter `url` sets the URL of the height map image resource.
  64201. * * The parameters `width` and `height` (positive floats, default 10) set the ground width and height sizes.
  64202. * * The parameter `subdivisions` (positive integer, default 1) sets the number of subdivision per side.
  64203. * * The parameter `minHeight` (float, default 0) is the minimum altitude on the ground.
  64204. * * The parameter `maxHeight` (float, default 1) is the maximum altitude on the ground.
  64205. * * The parameter `colorFilter` (optional Color3, default (0.3, 0.59, 0.11) ) is the filter to apply to the image pixel colors to compute the height.
  64206. * * The parameter `onReady` is a javascript callback function that will be called once the mesh is just built (the height map download can last some time).
  64207. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  64208. * @param name defines the name of the mesh
  64209. * @param url defines the url to the height map
  64210. * @param options defines the options used to create the mesh
  64211. * @param scene defines the hosting scene
  64212. * @returns the ground mesh
  64213. * @see http://doc.babylonjs.com/babylon101/height_map
  64214. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#ground-from-a-height-map
  64215. */
  64216. MeshBuilder.CreateGroundFromHeightMap = function (name, url, options, scene) {
  64217. var width = options.width || 10.0;
  64218. var height = options.height || 10.0;
  64219. var subdivisions = options.subdivisions || 1 | 0;
  64220. var minHeight = options.minHeight || 0.0;
  64221. var maxHeight = options.maxHeight || 1.0;
  64222. var filter = options.colorFilter || new BABYLON.Color3(0.3, 0.59, 0.11);
  64223. var updatable = options.updatable;
  64224. var onReady = options.onReady;
  64225. var ground = new BABYLON.GroundMesh(name, scene);
  64226. ground._subdivisionsX = subdivisions;
  64227. ground._subdivisionsY = subdivisions;
  64228. ground._width = width;
  64229. ground._height = height;
  64230. ground._maxX = ground._width / 2.0;
  64231. ground._maxZ = ground._height / 2.0;
  64232. ground._minX = -ground._maxX;
  64233. ground._minZ = -ground._maxZ;
  64234. ground._setReady(false);
  64235. var onload = function (img) {
  64236. // Getting height map data
  64237. var canvas = document.createElement("canvas");
  64238. var context = canvas.getContext("2d");
  64239. if (!context) {
  64240. throw new Error("Unable to get 2d context for CreateGroundFromHeightMap");
  64241. }
  64242. if (scene.isDisposed) {
  64243. return;
  64244. }
  64245. var bufferWidth = img.width;
  64246. var bufferHeight = img.height;
  64247. canvas.width = bufferWidth;
  64248. canvas.height = bufferHeight;
  64249. context.drawImage(img, 0, 0);
  64250. // Create VertexData from map data
  64251. // Cast is due to wrong definition in lib.d.ts from ts 1.3 - https://github.com/Microsoft/TypeScript/issues/949
  64252. var buffer = context.getImageData(0, 0, bufferWidth, bufferHeight).data;
  64253. var vertexData = BABYLON.VertexData.CreateGroundFromHeightMap({
  64254. width: width, height: height,
  64255. subdivisions: subdivisions,
  64256. minHeight: minHeight, maxHeight: maxHeight, colorFilter: filter,
  64257. buffer: buffer, bufferWidth: bufferWidth, bufferHeight: bufferHeight
  64258. });
  64259. vertexData.applyToMesh(ground, updatable);
  64260. //execute ready callback, if set
  64261. if (onReady) {
  64262. onReady(ground);
  64263. }
  64264. ground._setReady(true);
  64265. };
  64266. BABYLON.Tools.LoadImage(url, onload, function () { }, scene.database);
  64267. return ground;
  64268. };
  64269. /**
  64270. * Creates a polygon mesh
  64271. * The polygon's shape will depend on the input parameters and is constructed parallel to a ground mesh
  64272. * * The parameter `shape` is a required array of successive Vector3 representing the corners of the polygon in th XoZ plane, that is y = 0 for all vectors
  64273. * * You can set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64274. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64275. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4)
  64276. * * Remember you can only change the shape positions, not their number when updating a polygon
  64277. * @param name defines the name of the mesh
  64278. * @param options defines the options used to create the mesh
  64279. * @param scene defines the hosting scene
  64280. * @returns the polygon mesh
  64281. */
  64282. MeshBuilder.CreatePolygon = function (name, options, scene) {
  64283. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64284. var shape = options.shape;
  64285. var holes = options.holes || [];
  64286. var depth = options.depth || 0;
  64287. var contours = [];
  64288. var hole = [];
  64289. for (var i = 0; i < shape.length; i++) {
  64290. contours[i] = new BABYLON.Vector2(shape[i].x, shape[i].z);
  64291. }
  64292. var epsilon = 0.00000001;
  64293. if (contours[0].equalsWithEpsilon(contours[contours.length - 1], epsilon)) {
  64294. contours.pop();
  64295. }
  64296. var polygonTriangulation = new BABYLON.PolygonMeshBuilder(name, contours, scene);
  64297. for (var hNb = 0; hNb < holes.length; hNb++) {
  64298. hole = [];
  64299. for (var hPoint = 0; hPoint < holes[hNb].length; hPoint++) {
  64300. hole.push(new BABYLON.Vector2(holes[hNb][hPoint].x, holes[hNb][hPoint].z));
  64301. }
  64302. polygonTriangulation.addHole(hole);
  64303. }
  64304. var polygon = polygonTriangulation.build(options.updatable, depth);
  64305. polygon._originalBuilderSideOrientation = options.sideOrientation;
  64306. var vertexData = BABYLON.VertexData.CreatePolygon(polygon, options.sideOrientation, options.faceUV, options.faceColors, options.frontUVs, options.backUVs);
  64307. vertexData.applyToMesh(polygon, options.updatable);
  64308. return polygon;
  64309. };
  64310. ;
  64311. /**
  64312. * Creates an extruded polygon mesh, with depth in the Y direction.
  64313. * * You can set different colors and different images to the top, bottom and extruded side by using the parameters `faceColors` (an array of 3 Color3 elements) and `faceUV` (an array of 3 Vector4 elements)
  64314. * @see http://doc.babylonjs.com/tutorials/CreateBox_Per_Face_Textures_And_Colors
  64315. * @param name defines the name of the mesh
  64316. * @param options defines the options used to create the mesh
  64317. * @param scene defines the hosting scene
  64318. * @returns the polygon mesh
  64319. */
  64320. MeshBuilder.ExtrudePolygon = function (name, options, scene) {
  64321. return MeshBuilder.CreatePolygon(name, options, scene);
  64322. };
  64323. ;
  64324. /**
  64325. * Creates a tube mesh.
  64326. * The tube is a parametric shape. It has no predefined shape. Its final shape will depend on the input parameters
  64327. * * The parameter `path` is a required array of successive Vector3. It is the curve used as the axis of the tube
  64328. * * The parameter `radius` (positive float, default 1) sets the tube radius size
  64329. * * The parameter `tessellation` (positive float, default 64) is the number of sides on the tubular surface
  64330. * * The parameter `radiusFunction` (javascript function, default null) is a vanilla javascript function. If it is not null, it overwrittes the parameter `radius`
  64331. * * This function is called on each point of the tube path and is passed the index `i` of the i-th point and the distance of this point from the first point of the path. It must return a radius value (positive float)
  64332. * * The parameter `arc` (positive float, maximum 1, default 1) is the ratio to apply to the tube circumference : 2 x PI x arc
  64333. * * The parameter `cap` sets the way the extruded shape is capped. Possible values : BABYLON.Mesh.NO_CAP (default), BABYLON.Mesh.CAP_START, BABYLON.Mesh.CAP_END, BABYLON.Mesh.CAP_ALL
  64334. * * The optional parameter `instance` is an instance of an existing Tube object to be updated with the passed `pathArray` parameter : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#tube
  64335. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64336. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64337. * * The optional parameter `invertUV` (boolean, default false) swaps in the geometry the U and V coordinates to apply a texture
  64338. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64339. * @param name defines the name of the mesh
  64340. * @param options defines the options used to create the mesh
  64341. * @param scene defines the hosting scene
  64342. * @returns the tube mesh
  64343. * @see http://doc.babylonjs.com/tutorials/Parametric_Shapes
  64344. * @see http://doc.babylonjs.com/tutorials/Mesh_CreateXXX_Methods_With_Options_Parameter#tube
  64345. */
  64346. MeshBuilder.CreateTube = function (name, options, scene) {
  64347. var path = options.path;
  64348. var instance = options.instance;
  64349. var radius = 1.0;
  64350. if (instance) {
  64351. radius = instance.radius;
  64352. }
  64353. if (options.radius !== undefined) {
  64354. radius = options.radius;
  64355. }
  64356. ;
  64357. var tessellation = options.tessellation || 64 | 0;
  64358. var radiusFunction = options.radiusFunction || null;
  64359. var cap = options.cap || BABYLON.Mesh.NO_CAP;
  64360. var invertUV = options.invertUV || false;
  64361. var updatable = options.updatable;
  64362. var sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64363. options.arc = options.arc && (options.arc <= 0.0 || options.arc > 1.0) ? 1.0 : options.arc || 1.0;
  64364. // tube geometry
  64365. var tubePathArray = function (path, path3D, circlePaths, radius, tessellation, radiusFunction, cap, arc) {
  64366. var tangents = path3D.getTangents();
  64367. var normals = path3D.getNormals();
  64368. var distances = path3D.getDistances();
  64369. var pi2 = Math.PI * 2;
  64370. var step = pi2 / tessellation * arc;
  64371. var returnRadius = function () { return radius; };
  64372. var radiusFunctionFinal = radiusFunction || returnRadius;
  64373. var circlePath;
  64374. var rad;
  64375. var normal;
  64376. var rotated;
  64377. var rotationMatrix = BABYLON.Tmp.Matrix[0];
  64378. var index = (cap === BABYLON.Mesh._NO_CAP || cap === BABYLON.Mesh.CAP_END) ? 0 : 2;
  64379. for (var i = 0; i < path.length; i++) {
  64380. rad = radiusFunctionFinal(i, distances[i]); // current radius
  64381. circlePath = Array(); // current circle array
  64382. normal = normals[i]; // current normal
  64383. for (var t = 0; t < tessellation; t++) {
  64384. BABYLON.Matrix.RotationAxisToRef(tangents[i], step * t, rotationMatrix);
  64385. rotated = circlePath[t] ? circlePath[t] : BABYLON.Vector3.Zero();
  64386. BABYLON.Vector3.TransformCoordinatesToRef(normal, rotationMatrix, rotated);
  64387. rotated.scaleInPlace(rad).addInPlace(path[i]);
  64388. circlePath[t] = rotated;
  64389. }
  64390. circlePaths[index] = circlePath;
  64391. index++;
  64392. }
  64393. // cap
  64394. var capPath = function (nbPoints, pathIndex) {
  64395. var pointCap = Array();
  64396. for (var i = 0; i < nbPoints; i++) {
  64397. pointCap.push(path[pathIndex]);
  64398. }
  64399. return pointCap;
  64400. };
  64401. switch (cap) {
  64402. case BABYLON.Mesh.NO_CAP:
  64403. break;
  64404. case BABYLON.Mesh.CAP_START:
  64405. circlePaths[0] = capPath(tessellation, 0);
  64406. circlePaths[1] = circlePaths[2].slice(0);
  64407. break;
  64408. case BABYLON.Mesh.CAP_END:
  64409. circlePaths[index] = circlePaths[index - 1].slice(0);
  64410. circlePaths[index + 1] = capPath(tessellation, path.length - 1);
  64411. break;
  64412. case BABYLON.Mesh.CAP_ALL:
  64413. circlePaths[0] = capPath(tessellation, 0);
  64414. circlePaths[1] = circlePaths[2].slice(0);
  64415. circlePaths[index] = circlePaths[index - 1].slice(0);
  64416. circlePaths[index + 1] = capPath(tessellation, path.length - 1);
  64417. break;
  64418. default:
  64419. break;
  64420. }
  64421. return circlePaths;
  64422. };
  64423. var path3D;
  64424. var pathArray;
  64425. if (instance) { // tube update
  64426. var arc = options.arc || instance.arc;
  64427. path3D = (instance.path3D).update(path);
  64428. pathArray = tubePathArray(path, path3D, instance.pathArray, radius, instance.tessellation, radiusFunction, instance.cap, arc);
  64429. instance = MeshBuilder.CreateRibbon("", { pathArray: pathArray, instance: instance });
  64430. instance.path3D = path3D;
  64431. instance.pathArray = pathArray;
  64432. instance.arc = arc;
  64433. instance.radius = radius;
  64434. return instance;
  64435. }
  64436. // tube creation
  64437. path3D = new BABYLON.Path3D(path);
  64438. var newPathArray = new Array();
  64439. cap = (cap < 0 || cap > 3) ? 0 : cap;
  64440. pathArray = tubePathArray(path, path3D, newPathArray, radius, tessellation, radiusFunction, cap, options.arc);
  64441. var tube = MeshBuilder.CreateRibbon(name, { pathArray: pathArray, closePath: true, closeArray: false, updatable: updatable, sideOrientation: sideOrientation, invertUV: invertUV, frontUVs: options.frontUVs, backUVs: options.backUVs }, scene);
  64442. tube.pathArray = pathArray;
  64443. tube.path3D = path3D;
  64444. tube.tessellation = tessellation;
  64445. tube.cap = cap;
  64446. tube.arc = options.arc;
  64447. tube.radius = radius;
  64448. return tube;
  64449. };
  64450. /**
  64451. * Creates a polyhedron mesh
  64452. * * The parameter `type` (positive integer, max 14, default 0) sets the polyhedron type to build among the 15 embbeded types. Please refer to the type sheet in the tutorial to choose the wanted type
  64453. * * The parameter `size` (positive float, default 1) sets the polygon size
  64454. * * You can overwrite the `size` on each dimension bu using the parameters `sizeX`, `sizeY` or `sizeZ` (positive floats, default to `size` value)
  64455. * * You can build other polyhedron types than the 15 embbeded ones by setting the parameter `custom` (`polyhedronObject`, default null). If you set the parameter `custom`, this overwrittes the parameter `type`
  64456. * * A `polyhedronObject` is a formatted javascript object. You'll find a full file with pre-set polyhedra here : https://github.com/BabylonJS/Extensions/tree/master/Polyhedron
  64457. * * You can set the color and the UV of each side of the polyhedron with the parameters `faceColors` (Color4, default `(1, 1, 1, 1)`) and faceUV (Vector4, default `(0, 0, 1, 1)`)
  64458. * * To understand how to set `faceUV` or `faceColors`, please read this by considering the right number of faces of your polyhedron, instead of only 6 for the box : http://doc.babylonjs.com/tutorials/CreateBox_Per_Face_Textures_And_Colors
  64459. * * The parameter `flat` (boolean, default true). If set to false, it gives the polyhedron a single global face, so less vertices and shared normals. In this case, `faceColors` and `faceUV` are ignored
  64460. * * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  64461. * * If you create a double-sided mesh, you can choose what parts of the texture image to crop and stick respectively on the front and the back sides with the parameters `frontUVs` and `backUVs` (Vector4). Detail here : http://doc.babylonjs.com/babylon101/discover_basic_elements#side-orientation
  64462. * * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created
  64463. * @param name defines the name of the mesh
  64464. * @param options defines the options used to create the mesh
  64465. * @param scene defines the hosting scene
  64466. * @returns the polyhedron mesh
  64467. * @see http://doc.babylonjs.com/how_to/polyhedra_shapes
  64468. */
  64469. MeshBuilder.CreatePolyhedron = function (name, options, scene) {
  64470. var polyhedron = new BABYLON.Mesh(name, scene);
  64471. options.sideOrientation = MeshBuilder.updateSideOrientation(options.sideOrientation);
  64472. polyhedron._originalBuilderSideOrientation = options.sideOrientation;
  64473. var vertexData = BABYLON.VertexData.CreatePolyhedron(options);
  64474. vertexData.applyToMesh(polyhedron, options.updatable);
  64475. return polyhedron;
  64476. };
  64477. /**
  64478. * Creates a decal mesh.
  64479. * A decal is a mesh usually applied as a model onto the surface of another mesh. So don't forget the parameter `sourceMesh` depicting the decal
  64480. * * The parameter `position` (Vector3, default `(0, 0, 0)`) sets the position of the decal in World coordinates
  64481. * * The parameter `normal` (Vector3, default `Vector3.Up`) sets the normal of the mesh where the decal is applied onto in World coordinates
  64482. * * The parameter `size` (Vector3, default `(1, 1, 1)`) sets the decal scaling
  64483. * * The parameter `angle` (float in radian, default 0) sets the angle to rotate the decal
  64484. * @param name defines the name of the mesh
  64485. * @param sourceMesh defines the mesh where the decal must be applied
  64486. * @param options defines the options used to create the mesh
  64487. * @param scene defines the hosting scene
  64488. * @returns the decal mesh
  64489. * @see http://doc.babylonjs.com/how_to/decals
  64490. */
  64491. MeshBuilder.CreateDecal = function (name, sourceMesh, options) {
  64492. var indices = sourceMesh.getIndices();
  64493. var positions = sourceMesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  64494. var normals = sourceMesh.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  64495. var position = options.position || BABYLON.Vector3.Zero();
  64496. var normal = options.normal || BABYLON.Vector3.Up();
  64497. var size = options.size || BABYLON.Vector3.One();
  64498. var angle = options.angle || 0;
  64499. // Getting correct rotation
  64500. if (!normal) {
  64501. var target = new BABYLON.Vector3(0, 0, 1);
  64502. var camera = sourceMesh.getScene().activeCamera;
  64503. var cameraWorldTarget = BABYLON.Vector3.TransformCoordinates(target, camera.getWorldMatrix());
  64504. normal = camera.globalPosition.subtract(cameraWorldTarget);
  64505. }
  64506. var yaw = -Math.atan2(normal.z, normal.x) - Math.PI / 2;
  64507. var len = Math.sqrt(normal.x * normal.x + normal.z * normal.z);
  64508. var pitch = Math.atan2(normal.y, len);
  64509. // Matrix
  64510. var decalWorldMatrix = BABYLON.Matrix.RotationYawPitchRoll(yaw, pitch, angle).multiply(BABYLON.Matrix.Translation(position.x, position.y, position.z));
  64511. var inverseDecalWorldMatrix = BABYLON.Matrix.Invert(decalWorldMatrix);
  64512. var meshWorldMatrix = sourceMesh.getWorldMatrix();
  64513. var transformMatrix = meshWorldMatrix.multiply(inverseDecalWorldMatrix);
  64514. var vertexData = new BABYLON.VertexData();
  64515. vertexData.indices = [];
  64516. vertexData.positions = [];
  64517. vertexData.normals = [];
  64518. vertexData.uvs = [];
  64519. var currentVertexDataIndex = 0;
  64520. var extractDecalVector3 = function (indexId) {
  64521. var result = new BABYLON.PositionNormalVertex();
  64522. if (!indices || !positions || !normals) {
  64523. return result;
  64524. }
  64525. var vertexId = indices[indexId];
  64526. result.position = new BABYLON.Vector3(positions[vertexId * 3], positions[vertexId * 3 + 1], positions[vertexId * 3 + 2]);
  64527. // Send vector to decal local world
  64528. result.position = BABYLON.Vector3.TransformCoordinates(result.position, transformMatrix);
  64529. // Get normal
  64530. result.normal = new BABYLON.Vector3(normals[vertexId * 3], normals[vertexId * 3 + 1], normals[vertexId * 3 + 2]);
  64531. result.normal = BABYLON.Vector3.TransformNormal(result.normal, transformMatrix);
  64532. return result;
  64533. }; // Inspired by https://github.com/mrdoob/three.js/blob/eee231960882f6f3b6113405f524956145148146/examples/js/geometries/DecalGeometry.js
  64534. var clip = function (vertices, axis) {
  64535. if (vertices.length === 0) {
  64536. return vertices;
  64537. }
  64538. var clipSize = 0.5 * Math.abs(BABYLON.Vector3.Dot(size, axis));
  64539. var clipVertices = function (v0, v1) {
  64540. var clipFactor = BABYLON.Vector3.GetClipFactor(v0.position, v1.position, axis, clipSize);
  64541. return new BABYLON.PositionNormalVertex(BABYLON.Vector3.Lerp(v0.position, v1.position, clipFactor), BABYLON.Vector3.Lerp(v0.normal, v1.normal, clipFactor));
  64542. };
  64543. var result = new Array();
  64544. for (var index = 0; index < vertices.length; index += 3) {
  64545. var v1Out;
  64546. var v2Out;
  64547. var v3Out;
  64548. var total = 0;
  64549. var nV1 = null;
  64550. var nV2 = null;
  64551. var nV3 = null;
  64552. var nV4 = null;
  64553. var d1 = BABYLON.Vector3.Dot(vertices[index].position, axis) - clipSize;
  64554. var d2 = BABYLON.Vector3.Dot(vertices[index + 1].position, axis) - clipSize;
  64555. var d3 = BABYLON.Vector3.Dot(vertices[index + 2].position, axis) - clipSize;
  64556. v1Out = d1 > 0;
  64557. v2Out = d2 > 0;
  64558. v3Out = d3 > 0;
  64559. total = (v1Out ? 1 : 0) + (v2Out ? 1 : 0) + (v3Out ? 1 : 0);
  64560. switch (total) {
  64561. case 0:
  64562. result.push(vertices[index]);
  64563. result.push(vertices[index + 1]);
  64564. result.push(vertices[index + 2]);
  64565. break;
  64566. case 1:
  64567. if (v1Out) {
  64568. nV1 = vertices[index + 1];
  64569. nV2 = vertices[index + 2];
  64570. nV3 = clipVertices(vertices[index], nV1);
  64571. nV4 = clipVertices(vertices[index], nV2);
  64572. }
  64573. if (v2Out) {
  64574. nV1 = vertices[index];
  64575. nV2 = vertices[index + 2];
  64576. nV3 = clipVertices(vertices[index + 1], nV1);
  64577. nV4 = clipVertices(vertices[index + 1], nV2);
  64578. result.push(nV3);
  64579. result.push(nV2.clone());
  64580. result.push(nV1.clone());
  64581. result.push(nV2.clone());
  64582. result.push(nV3.clone());
  64583. result.push(nV4);
  64584. break;
  64585. }
  64586. if (v3Out) {
  64587. nV1 = vertices[index];
  64588. nV2 = vertices[index + 1];
  64589. nV3 = clipVertices(vertices[index + 2], nV1);
  64590. nV4 = clipVertices(vertices[index + 2], nV2);
  64591. }
  64592. if (nV1 && nV2 && nV3 && nV4) {
  64593. result.push(nV1.clone());
  64594. result.push(nV2.clone());
  64595. result.push(nV3);
  64596. result.push(nV4);
  64597. result.push(nV3.clone());
  64598. result.push(nV2.clone());
  64599. }
  64600. break;
  64601. case 2:
  64602. if (!v1Out) {
  64603. nV1 = vertices[index].clone();
  64604. nV2 = clipVertices(nV1, vertices[index + 1]);
  64605. nV3 = clipVertices(nV1, vertices[index + 2]);
  64606. result.push(nV1);
  64607. result.push(nV2);
  64608. result.push(nV3);
  64609. }
  64610. if (!v2Out) {
  64611. nV1 = vertices[index + 1].clone();
  64612. nV2 = clipVertices(nV1, vertices[index + 2]);
  64613. nV3 = clipVertices(nV1, vertices[index]);
  64614. result.push(nV1);
  64615. result.push(nV2);
  64616. result.push(nV3);
  64617. }
  64618. if (!v3Out) {
  64619. nV1 = vertices[index + 2].clone();
  64620. nV2 = clipVertices(nV1, vertices[index]);
  64621. nV3 = clipVertices(nV1, vertices[index + 1]);
  64622. result.push(nV1);
  64623. result.push(nV2);
  64624. result.push(nV3);
  64625. }
  64626. break;
  64627. case 3:
  64628. break;
  64629. }
  64630. }
  64631. return result;
  64632. };
  64633. for (var index = 0; index < indices.length; index += 3) {
  64634. var faceVertices = new Array();
  64635. faceVertices.push(extractDecalVector3(index));
  64636. faceVertices.push(extractDecalVector3(index + 1));
  64637. faceVertices.push(extractDecalVector3(index + 2));
  64638. // Clip
  64639. faceVertices = clip(faceVertices, new BABYLON.Vector3(1, 0, 0));
  64640. faceVertices = clip(faceVertices, new BABYLON.Vector3(-1, 0, 0));
  64641. faceVertices = clip(faceVertices, new BABYLON.Vector3(0, 1, 0));
  64642. faceVertices = clip(faceVertices, new BABYLON.Vector3(0, -1, 0));
  64643. faceVertices = clip(faceVertices, new BABYLON.Vector3(0, 0, 1));
  64644. faceVertices = clip(faceVertices, new BABYLON.Vector3(0, 0, -1));
  64645. if (faceVertices.length === 0) {
  64646. continue;
  64647. }
  64648. // Add UVs and get back to world
  64649. for (var vIndex = 0; vIndex < faceVertices.length; vIndex++) {
  64650. var vertex = faceVertices[vIndex];
  64651. //TODO check for Int32Array | Uint32Array | Uint16Array
  64652. vertexData.indices.push(currentVertexDataIndex);
  64653. vertex.position.toArray(vertexData.positions, currentVertexDataIndex * 3);
  64654. vertex.normal.toArray(vertexData.normals, currentVertexDataIndex * 3);
  64655. vertexData.uvs.push(0.5 + vertex.position.x / size.x);
  64656. vertexData.uvs.push(0.5 + vertex.position.y / size.y);
  64657. currentVertexDataIndex++;
  64658. }
  64659. }
  64660. // Return mesh
  64661. var decal = new BABYLON.Mesh(name, sourceMesh.getScene());
  64662. vertexData.applyToMesh(decal);
  64663. decal.position = position.clone();
  64664. decal.rotation = new BABYLON.Vector3(pitch, yaw, angle);
  64665. return decal;
  64666. };
  64667. // Privates
  64668. MeshBuilder._ExtrudeShapeGeneric = function (name, shape, curve, scale, rotation, scaleFunction, rotateFunction, rbCA, rbCP, cap, custom, scene, updtbl, side, instance, invertUV, frontUVs, backUVs) {
  64669. // extrusion geometry
  64670. var extrusionPathArray = function (shape, curve, path3D, shapePaths, scale, rotation, scaleFunction, rotateFunction, cap, custom) {
  64671. var tangents = path3D.getTangents();
  64672. var normals = path3D.getNormals();
  64673. var binormals = path3D.getBinormals();
  64674. var distances = path3D.getDistances();
  64675. var angle = 0;
  64676. var returnScale = function () { return scale !== null ? scale : 1; };
  64677. var returnRotation = function () { return rotation !== null ? rotation : 0; };
  64678. var rotate = custom && rotateFunction ? rotateFunction : returnRotation;
  64679. var scl = custom && scaleFunction ? scaleFunction : returnScale;
  64680. var index = (cap === BABYLON.Mesh.NO_CAP || cap === BABYLON.Mesh.CAP_END) ? 0 : 2;
  64681. var rotationMatrix = BABYLON.Tmp.Matrix[0];
  64682. for (var i = 0; i < curve.length; i++) {
  64683. var shapePath = new Array();
  64684. var angleStep = rotate(i, distances[i]);
  64685. var scaleRatio = scl(i, distances[i]);
  64686. for (var p = 0; p < shape.length; p++) {
  64687. BABYLON.Matrix.RotationAxisToRef(tangents[i], angle, rotationMatrix);
  64688. var planed = ((tangents[i].scale(shape[p].z)).add(normals[i].scale(shape[p].x)).add(binormals[i].scale(shape[p].y)));
  64689. var rotated = shapePath[p] ? shapePath[p] : BABYLON.Vector3.Zero();
  64690. BABYLON.Vector3.TransformCoordinatesToRef(planed, rotationMatrix, rotated);
  64691. rotated.scaleInPlace(scaleRatio).addInPlace(curve[i]);
  64692. shapePath[p] = rotated;
  64693. }
  64694. shapePaths[index] = shapePath;
  64695. angle += angleStep;
  64696. index++;
  64697. }
  64698. // cap
  64699. var capPath = function (shapePath) {
  64700. var pointCap = Array();
  64701. var barycenter = BABYLON.Vector3.Zero();
  64702. var i;
  64703. for (i = 0; i < shapePath.length; i++) {
  64704. barycenter.addInPlace(shapePath[i]);
  64705. }
  64706. barycenter.scaleInPlace(1.0 / shapePath.length);
  64707. for (i = 0; i < shapePath.length; i++) {
  64708. pointCap.push(barycenter);
  64709. }
  64710. return pointCap;
  64711. };
  64712. switch (cap) {
  64713. case BABYLON.Mesh.NO_CAP:
  64714. break;
  64715. case BABYLON.Mesh.CAP_START:
  64716. shapePaths[0] = capPath(shapePaths[2]);
  64717. shapePaths[1] = shapePaths[2];
  64718. break;
  64719. case BABYLON.Mesh.CAP_END:
  64720. shapePaths[index] = shapePaths[index - 1];
  64721. shapePaths[index + 1] = capPath(shapePaths[index - 1]);
  64722. break;
  64723. case BABYLON.Mesh.CAP_ALL:
  64724. shapePaths[0] = capPath(shapePaths[2]);
  64725. shapePaths[1] = shapePaths[2];
  64726. shapePaths[index] = shapePaths[index - 1];
  64727. shapePaths[index + 1] = capPath(shapePaths[index - 1]);
  64728. break;
  64729. default:
  64730. break;
  64731. }
  64732. return shapePaths;
  64733. };
  64734. var path3D;
  64735. var pathArray;
  64736. if (instance) { // instance update
  64737. path3D = (instance.path3D).update(curve);
  64738. pathArray = extrusionPathArray(shape, curve, instance.path3D, instance.pathArray, scale, rotation, scaleFunction, rotateFunction, instance.cap, custom);
  64739. instance = BABYLON.Mesh.CreateRibbon("", pathArray, false, false, 0, scene || undefined, false, 0, instance);
  64740. return instance;
  64741. }
  64742. // extruded shape creation
  64743. path3D = new BABYLON.Path3D(curve);
  64744. var newShapePaths = new Array();
  64745. cap = (cap < 0 || cap > 3) ? 0 : cap;
  64746. pathArray = extrusionPathArray(shape, curve, path3D, newShapePaths, scale, rotation, scaleFunction, rotateFunction, cap, custom);
  64747. var extrudedGeneric = MeshBuilder.CreateRibbon(name, { pathArray: pathArray, closeArray: rbCA, closePath: rbCP, updatable: updtbl, sideOrientation: side, invertUV: invertUV, frontUVs: frontUVs || undefined, backUVs: backUVs || undefined }, scene);
  64748. extrudedGeneric.pathArray = pathArray;
  64749. extrudedGeneric.path3D = path3D;
  64750. extrudedGeneric.cap = cap;
  64751. return extrudedGeneric;
  64752. };
  64753. return MeshBuilder;
  64754. }());
  64755. BABYLON.MeshBuilder = MeshBuilder;
  64756. })(BABYLON || (BABYLON = {}));
  64757. //# sourceMappingURL=babylon.meshBuilder.js.map
  64758. var BABYLON;
  64759. (function (BABYLON) {
  64760. /**
  64761. * Draco compression (https://google.github.io/draco/)
  64762. *
  64763. * This class wraps the Draco module.
  64764. *
  64765. * **Encoder**
  64766. *
  64767. * The encoder is not currently implemented.
  64768. *
  64769. * **Decoder**
  64770. *
  64771. * By default, the configuration points to a copy of the Draco decoder files for glTF from https://preview.babylonjs.com.
  64772. *
  64773. * To update the configuration, use the following code:
  64774. * ```javascript
  64775. * BABYLON.DracoCompression.Configuration = {
  64776. * decoder: {
  64777. * wasmUrl: "<url to the WebAssembly library>",
  64778. * wasmBinaryUrl: "<url to the WebAssembly binary>",
  64779. * fallbackUrl: "<url to the fallback JavaScript library>",
  64780. * }
  64781. * };
  64782. * ```
  64783. *
  64784. * Draco has two versions, one for WebAssembly and one for JavaScript. The decoder configuration can be set to only support Webssembly or only support the JavaScript version.
  64785. * Decoding will automatically fallback to the JavaScript version if WebAssembly version is not configured or if WebAssembly is not supported by the browser.
  64786. * Use `BABYLON.DracoCompression.DecoderAvailable` to determine if the decoder is available for the current session.
  64787. *
  64788. * To decode Draco compressed data, create a DracoCompression object and call decodeMeshAsync:
  64789. * ```javascript
  64790. * var dracoCompression = new BABYLON.DracoCompression();
  64791. * var vertexData = await dracoCompression.decodeMeshAsync(data, {
  64792. * [BABYLON.VertexBuffer.PositionKind]: 0
  64793. * });
  64794. * ```
  64795. *
  64796. * @see https://www.babylonjs-playground.com/#N3EK4B#0
  64797. */
  64798. var DracoCompression = /** @class */ (function () {
  64799. /**
  64800. * Constructor
  64801. */
  64802. function DracoCompression() {
  64803. }
  64804. Object.defineProperty(DracoCompression, "DecoderAvailable", {
  64805. /**
  64806. * Returns true if the decoder is available.
  64807. */
  64808. get: function () {
  64809. if (typeof DracoDecoderModule !== "undefined") {
  64810. return true;
  64811. }
  64812. var decoder = DracoCompression.Configuration.decoder;
  64813. if (decoder) {
  64814. if (decoder.wasmUrl && decoder.wasmBinaryUrl && typeof WebAssembly === "object") {
  64815. return true;
  64816. }
  64817. if (decoder.fallbackUrl) {
  64818. return true;
  64819. }
  64820. }
  64821. return false;
  64822. },
  64823. enumerable: true,
  64824. configurable: true
  64825. });
  64826. /**
  64827. * Stop all async operations and release resources.
  64828. */
  64829. DracoCompression.prototype.dispose = function () {
  64830. };
  64831. /**
  64832. * Decode Draco compressed mesh data to vertex data.
  64833. * @param data The ArrayBuffer or ArrayBufferView for the Draco compression data
  64834. * @param attributes A map of attributes from vertex buffer kinds to Draco unique ids
  64835. * @returns A promise that resolves with the decoded vertex data
  64836. */
  64837. DracoCompression.prototype.decodeMeshAsync = function (data, attributes) {
  64838. var dataView = data instanceof ArrayBuffer ? new Uint8Array(data) : data;
  64839. return DracoCompression._GetDecoderModule().then(function (wrappedModule) {
  64840. var module = wrappedModule.module;
  64841. var vertexData = new BABYLON.VertexData();
  64842. var buffer = new module.DecoderBuffer();
  64843. buffer.Init(dataView, dataView.byteLength);
  64844. var decoder = new module.Decoder();
  64845. var geometry;
  64846. var status;
  64847. try {
  64848. var type = decoder.GetEncodedGeometryType(buffer);
  64849. switch (type) {
  64850. case module.TRIANGULAR_MESH:
  64851. geometry = new module.Mesh();
  64852. status = decoder.DecodeBufferToMesh(buffer, geometry);
  64853. break;
  64854. case module.POINT_CLOUD:
  64855. geometry = new module.PointCloud();
  64856. status = decoder.DecodeBufferToPointCloud(buffer, geometry);
  64857. break;
  64858. default:
  64859. throw new Error("Invalid geometry type " + type);
  64860. }
  64861. if (!status.ok() || !geometry.ptr) {
  64862. throw new Error(status.error_msg());
  64863. }
  64864. var numPoints = geometry.num_points();
  64865. if (type === module.TRIANGULAR_MESH) {
  64866. var numFaces = geometry.num_faces();
  64867. var faceIndices = new module.DracoInt32Array();
  64868. try {
  64869. var indices = new Uint32Array(numFaces * 3);
  64870. for (var i = 0; i < numFaces; i++) {
  64871. decoder.GetFaceFromMesh(geometry, i, faceIndices);
  64872. var offset = i * 3;
  64873. indices[offset + 0] = faceIndices.GetValue(0);
  64874. indices[offset + 1] = faceIndices.GetValue(1);
  64875. indices[offset + 2] = faceIndices.GetValue(2);
  64876. }
  64877. vertexData.indices = indices;
  64878. }
  64879. finally {
  64880. module.destroy(faceIndices);
  64881. }
  64882. }
  64883. for (var kind in attributes) {
  64884. var uniqueId = attributes[kind];
  64885. var attribute = decoder.GetAttributeByUniqueId(geometry, uniqueId);
  64886. var dracoData = new module.DracoFloat32Array();
  64887. try {
  64888. decoder.GetAttributeFloatForAllPoints(geometry, attribute, dracoData);
  64889. var babylonData = new Float32Array(numPoints * attribute.num_components());
  64890. for (var i = 0; i < babylonData.length; i++) {
  64891. babylonData[i] = dracoData.GetValue(i);
  64892. }
  64893. vertexData.set(babylonData, kind);
  64894. }
  64895. finally {
  64896. module.destroy(dracoData);
  64897. }
  64898. }
  64899. }
  64900. finally {
  64901. if (geometry) {
  64902. module.destroy(geometry);
  64903. }
  64904. module.destroy(decoder);
  64905. module.destroy(buffer);
  64906. }
  64907. return vertexData;
  64908. });
  64909. };
  64910. DracoCompression._GetDecoderModule = function () {
  64911. if (!DracoCompression._DecoderModulePromise) {
  64912. var promise = null;
  64913. var config_1 = {};
  64914. if (typeof DracoDecoderModule !== "undefined") {
  64915. promise = Promise.resolve();
  64916. }
  64917. else {
  64918. var decoder = DracoCompression.Configuration.decoder;
  64919. if (decoder) {
  64920. if (decoder.wasmUrl && decoder.wasmBinaryUrl && typeof WebAssembly === "object") {
  64921. promise = Promise.all([
  64922. DracoCompression._LoadScriptAsync(decoder.wasmUrl),
  64923. DracoCompression._LoadFileAsync(decoder.wasmBinaryUrl).then(function (data) {
  64924. config_1.wasmBinary = data;
  64925. })
  64926. ]);
  64927. }
  64928. else if (decoder.fallbackUrl) {
  64929. promise = DracoCompression._LoadScriptAsync(decoder.fallbackUrl);
  64930. }
  64931. }
  64932. }
  64933. if (!promise) {
  64934. throw new Error("Draco decoder module is not available");
  64935. }
  64936. DracoCompression._DecoderModulePromise = promise.then(function () {
  64937. return new Promise(function (resolve) {
  64938. config_1.onModuleLoaded = function (decoderModule) {
  64939. // decoderModule is Promise-like. Wrap before resolving to avoid loop.
  64940. resolve({ module: decoderModule });
  64941. };
  64942. DracoDecoderModule(config_1);
  64943. });
  64944. });
  64945. }
  64946. return DracoCompression._DecoderModulePromise;
  64947. };
  64948. DracoCompression._LoadScriptAsync = function (url) {
  64949. return new Promise(function (resolve, reject) {
  64950. BABYLON.Tools.LoadScript(url, function () {
  64951. resolve();
  64952. }, function (message) {
  64953. reject(new Error(message));
  64954. });
  64955. });
  64956. };
  64957. DracoCompression._LoadFileAsync = function (url) {
  64958. return new Promise(function (resolve, reject) {
  64959. BABYLON.Tools.LoadFile(url, function (data) {
  64960. resolve(data);
  64961. }, undefined, undefined, true, function (request, exception) {
  64962. reject(exception);
  64963. });
  64964. });
  64965. };
  64966. /**
  64967. * The configuration. Defaults to the following urls:
  64968. * - wasmUrl: "https://preview.babylonjs.com/draco_wasm_wrapper_gltf.js"
  64969. * - wasmBinaryUrl: "https://preview.babylonjs.com/draco_decoder_gltf.wasm"
  64970. * - fallbackUrl: "https://preview.babylonjs.com/draco_decoder_gltf.js"
  64971. */
  64972. DracoCompression.Configuration = {
  64973. decoder: {
  64974. wasmUrl: "https://preview.babylonjs.com/draco_wasm_wrapper_gltf.js",
  64975. wasmBinaryUrl: "https://preview.babylonjs.com/draco_decoder_gltf.wasm",
  64976. fallbackUrl: "https://preview.babylonjs.com/draco_decoder_gltf.js"
  64977. }
  64978. };
  64979. return DracoCompression;
  64980. }());
  64981. BABYLON.DracoCompression = DracoCompression;
  64982. })(BABYLON || (BABYLON = {}));
  64983. //# sourceMappingURL=babylon.dracoCompression.js.map
  64984. var BABYLON;
  64985. (function (BABYLON) {
  64986. var AudioEngine = /** @class */ (function () {
  64987. function AudioEngine() {
  64988. this._audioContext = null;
  64989. this._audioContextInitialized = false;
  64990. this.canUseWebAudio = false;
  64991. this.WarnedWebAudioUnsupported = false;
  64992. this.unlocked = false;
  64993. this.isMP3supported = false;
  64994. this.isOGGsupported = false;
  64995. if (typeof window.AudioContext !== 'undefined' || typeof window.webkitAudioContext !== 'undefined') {
  64996. window.AudioContext = window.AudioContext || window.webkitAudioContext;
  64997. this.canUseWebAudio = true;
  64998. }
  64999. var audioElem = document.createElement('audio');
  65000. try {
  65001. if (audioElem && !!audioElem.canPlayType && audioElem.canPlayType('audio/mpeg; codecs="mp3"').replace(/^no$/, '')) {
  65002. this.isMP3supported = true;
  65003. }
  65004. }
  65005. catch (e) {
  65006. // protect error during capability check.
  65007. }
  65008. try {
  65009. if (audioElem && !!audioElem.canPlayType && audioElem.canPlayType('audio/ogg; codecs="vorbis"').replace(/^no$/, '')) {
  65010. this.isOGGsupported = true;
  65011. }
  65012. }
  65013. catch (e) {
  65014. // protect error during capability check.
  65015. }
  65016. if (/iPad|iPhone|iPod/.test(navigator.platform)) {
  65017. this._unlockiOSaudio();
  65018. }
  65019. else {
  65020. this.unlocked = true;
  65021. }
  65022. }
  65023. Object.defineProperty(AudioEngine.prototype, "audioContext", {
  65024. get: function () {
  65025. if (!this._audioContextInitialized) {
  65026. this._initializeAudioContext();
  65027. }
  65028. return this._audioContext;
  65029. },
  65030. enumerable: true,
  65031. configurable: true
  65032. });
  65033. AudioEngine.prototype._unlockiOSaudio = function () {
  65034. var _this = this;
  65035. var unlockaudio = function () {
  65036. if (!_this.audioContext) {
  65037. return;
  65038. }
  65039. var buffer = _this.audioContext.createBuffer(1, 1, 22050);
  65040. var source = _this.audioContext.createBufferSource();
  65041. source.buffer = buffer;
  65042. source.connect(_this.audioContext.destination);
  65043. source.start(0);
  65044. setTimeout(function () {
  65045. if ((source.playbackState === source.PLAYING_STATE || source.playbackState === source.FINISHED_STATE)) {
  65046. _this.unlocked = true;
  65047. window.removeEventListener('touchend', unlockaudio, false);
  65048. if (_this.onAudioUnlocked) {
  65049. _this.onAudioUnlocked();
  65050. }
  65051. }
  65052. }, 0);
  65053. };
  65054. window.addEventListener('touchend', unlockaudio, false);
  65055. };
  65056. AudioEngine.prototype._initializeAudioContext = function () {
  65057. try {
  65058. if (this.canUseWebAudio) {
  65059. this._audioContext = new AudioContext();
  65060. // create a global volume gain node
  65061. this.masterGain = this._audioContext.createGain();
  65062. this.masterGain.gain.value = 1;
  65063. this.masterGain.connect(this._audioContext.destination);
  65064. this._audioContextInitialized = true;
  65065. }
  65066. }
  65067. catch (e) {
  65068. this.canUseWebAudio = false;
  65069. BABYLON.Tools.Error("Web Audio: " + e.message);
  65070. }
  65071. };
  65072. AudioEngine.prototype.dispose = function () {
  65073. if (this.canUseWebAudio && this._audioContextInitialized) {
  65074. if (this._connectedAnalyser && this._audioContext) {
  65075. this._connectedAnalyser.stopDebugCanvas();
  65076. this._connectedAnalyser.dispose();
  65077. this.masterGain.disconnect();
  65078. this.masterGain.connect(this._audioContext.destination);
  65079. this._connectedAnalyser = null;
  65080. }
  65081. this.masterGain.gain.value = 1;
  65082. }
  65083. this.WarnedWebAudioUnsupported = false;
  65084. };
  65085. AudioEngine.prototype.getGlobalVolume = function () {
  65086. if (this.canUseWebAudio && this._audioContextInitialized) {
  65087. return this.masterGain.gain.value;
  65088. }
  65089. else {
  65090. return -1;
  65091. }
  65092. };
  65093. AudioEngine.prototype.setGlobalVolume = function (newVolume) {
  65094. if (this.canUseWebAudio && this._audioContextInitialized) {
  65095. this.masterGain.gain.value = newVolume;
  65096. }
  65097. };
  65098. AudioEngine.prototype.connectToAnalyser = function (analyser) {
  65099. if (this._connectedAnalyser) {
  65100. this._connectedAnalyser.stopDebugCanvas();
  65101. }
  65102. if (this.canUseWebAudio && this._audioContextInitialized && this._audioContext) {
  65103. this._connectedAnalyser = analyser;
  65104. this.masterGain.disconnect();
  65105. this._connectedAnalyser.connectAudioNodes(this.masterGain, this._audioContext.destination);
  65106. }
  65107. };
  65108. return AudioEngine;
  65109. }());
  65110. BABYLON.AudioEngine = AudioEngine;
  65111. })(BABYLON || (BABYLON = {}));
  65112. //# sourceMappingURL=babylon.audioEngine.js.map
  65113. var BABYLON;
  65114. (function (BABYLON) {
  65115. var Sound = /** @class */ (function () {
  65116. /**
  65117. * Create a sound and attach it to a scene
  65118. * @param name Name of your sound
  65119. * @param urlOrArrayBuffer Url to the sound to load async or ArrayBuffer, it also works with MediaStreams
  65120. * @param readyToPlayCallback Provide a callback function if you'd like to load your code once the sound is ready to be played
  65121. * @param options Objects to provide with the current available options: autoplay, loop, volume, spatialSound, maxDistance, rolloffFactor, refDistance, distanceModel, panningModel, streaming
  65122. */
  65123. function Sound(name, urlOrArrayBuffer, scene, readyToPlayCallback, options) {
  65124. if (readyToPlayCallback === void 0) { readyToPlayCallback = null; }
  65125. var _this = this;
  65126. this.autoplay = false;
  65127. this.loop = false;
  65128. this.useCustomAttenuation = false;
  65129. this.spatialSound = false;
  65130. this.refDistance = 1;
  65131. this.rolloffFactor = 1;
  65132. this.maxDistance = 100;
  65133. this.distanceModel = "linear";
  65134. this._panningModel = "equalpower";
  65135. /**
  65136. * Observable event when the current playing sound finishes.
  65137. */
  65138. this.onEndedObservable = new BABYLON.Observable();
  65139. this._playbackRate = 1;
  65140. this._streaming = false;
  65141. this._startTime = 0;
  65142. this._startOffset = 0;
  65143. this._position = BABYLON.Vector3.Zero();
  65144. /** @hidden */
  65145. this._positionInEmitterSpace = false;
  65146. this._localDirection = new BABYLON.Vector3(1, 0, 0);
  65147. this._volume = 1;
  65148. this._isReadyToPlay = false;
  65149. this.isPlaying = false;
  65150. this.isPaused = false;
  65151. this._isDirectional = false;
  65152. // Used if you'd like to create a directional sound.
  65153. // If not set, the sound will be omnidirectional
  65154. this._coneInnerAngle = 360;
  65155. this._coneOuterAngle = 360;
  65156. this._coneOuterGain = 0;
  65157. this._isOutputConnected = false;
  65158. this._urlType = "Unknown";
  65159. this.name = name;
  65160. this._scene = scene;
  65161. this._readyToPlayCallback = readyToPlayCallback;
  65162. // Default custom attenuation function is a linear attenuation
  65163. this._customAttenuationFunction = function (currentVolume, currentDistance, maxDistance, refDistance, rolloffFactor) {
  65164. if (currentDistance < maxDistance) {
  65165. return currentVolume * (1 - currentDistance / maxDistance);
  65166. }
  65167. else {
  65168. return 0;
  65169. }
  65170. };
  65171. if (options) {
  65172. this.autoplay = options.autoplay || false;
  65173. this.loop = options.loop || false;
  65174. // if volume === 0, we need another way to check this option
  65175. if (options.volume !== undefined) {
  65176. this._volume = options.volume;
  65177. }
  65178. this.spatialSound = options.spatialSound || false;
  65179. this.maxDistance = options.maxDistance || 100;
  65180. this.useCustomAttenuation = options.useCustomAttenuation || false;
  65181. this.rolloffFactor = options.rolloffFactor || 1;
  65182. this.refDistance = options.refDistance || 1;
  65183. this.distanceModel = options.distanceModel || "linear";
  65184. this._playbackRate = options.playbackRate || 1;
  65185. this._streaming = options.streaming || false;
  65186. }
  65187. if (BABYLON.Engine.audioEngine.canUseWebAudio && BABYLON.Engine.audioEngine.audioContext) {
  65188. this._soundGain = BABYLON.Engine.audioEngine.audioContext.createGain();
  65189. this._soundGain.gain.value = this._volume;
  65190. this._inputAudioNode = this._soundGain;
  65191. this._outputAudioNode = this._soundGain;
  65192. if (this.spatialSound) {
  65193. this._createSpatialParameters();
  65194. }
  65195. this._scene.mainSoundTrack.AddSound(this);
  65196. var validParameter = true;
  65197. // if no parameter is passed, you need to call setAudioBuffer yourself to prepare the sound
  65198. if (urlOrArrayBuffer) {
  65199. try {
  65200. if (typeof (urlOrArrayBuffer) === "string") {
  65201. this._urlType = "String";
  65202. }
  65203. else if (urlOrArrayBuffer instanceof ArrayBuffer) {
  65204. this._urlType = "ArrayBuffer";
  65205. }
  65206. else if (urlOrArrayBuffer instanceof MediaStream) {
  65207. this._urlType = "MediaStream";
  65208. }
  65209. else if (Array.isArray(urlOrArrayBuffer)) {
  65210. this._urlType = "Array";
  65211. }
  65212. var urls = [];
  65213. var codecSupportedFound = false;
  65214. switch (this._urlType) {
  65215. case "MediaStream":
  65216. this._streaming = true;
  65217. this._isReadyToPlay = true;
  65218. this._streamingSource = BABYLON.Engine.audioEngine.audioContext.createMediaElementSource(urlOrArrayBuffer);
  65219. if (this.autoplay) {
  65220. this.play();
  65221. }
  65222. if (this._readyToPlayCallback) {
  65223. this._readyToPlayCallback();
  65224. }
  65225. break;
  65226. case "ArrayBuffer":
  65227. if (urlOrArrayBuffer.byteLength > 0) {
  65228. codecSupportedFound = true;
  65229. this._soundLoaded(urlOrArrayBuffer);
  65230. }
  65231. break;
  65232. case "String":
  65233. urls.push(urlOrArrayBuffer);
  65234. case "Array":
  65235. if (urls.length === 0)
  65236. urls = urlOrArrayBuffer;
  65237. // If we found a supported format, we load it immediately and stop the loop
  65238. for (var i = 0; i < urls.length; i++) {
  65239. var url = urls[i];
  65240. if (url.indexOf(".mp3", url.length - 4) !== -1 && BABYLON.Engine.audioEngine.isMP3supported) {
  65241. codecSupportedFound = true;
  65242. }
  65243. if (url.indexOf(".ogg", url.length - 4) !== -1 && BABYLON.Engine.audioEngine.isOGGsupported) {
  65244. codecSupportedFound = true;
  65245. }
  65246. if (url.indexOf(".wav", url.length - 4) !== -1) {
  65247. codecSupportedFound = true;
  65248. }
  65249. if (url.indexOf("blob:") !== -1) {
  65250. codecSupportedFound = true;
  65251. }
  65252. if (codecSupportedFound) {
  65253. // Loading sound using XHR2
  65254. if (!this._streaming) {
  65255. this._scene._loadFile(url, function (data) {
  65256. _this._soundLoaded(data);
  65257. }, undefined, true, true, function (exception) {
  65258. if (exception) {
  65259. BABYLON.Tools.Error("XHR " + exception.status + " error on: " + url + ".");
  65260. }
  65261. BABYLON.Tools.Error("Sound creation aborted.");
  65262. _this._scene.mainSoundTrack.RemoveSound(_this);
  65263. });
  65264. }
  65265. // Streaming sound using HTML5 Audio tag
  65266. else {
  65267. this._htmlAudioElement = new Audio(url);
  65268. this._htmlAudioElement.controls = false;
  65269. this._htmlAudioElement.loop = this.loop;
  65270. BABYLON.Tools.SetCorsBehavior(url, this._htmlAudioElement);
  65271. this._htmlAudioElement.preload = "auto";
  65272. this._htmlAudioElement.addEventListener("canplaythrough", function () {
  65273. _this._isReadyToPlay = true;
  65274. if (_this.autoplay) {
  65275. _this.play();
  65276. }
  65277. if (_this._readyToPlayCallback) {
  65278. _this._readyToPlayCallback();
  65279. }
  65280. });
  65281. document.body.appendChild(this._htmlAudioElement);
  65282. }
  65283. break;
  65284. }
  65285. }
  65286. break;
  65287. default:
  65288. validParameter = false;
  65289. break;
  65290. }
  65291. if (!validParameter) {
  65292. BABYLON.Tools.Error("Parameter must be a URL to the sound, an Array of URLs (.mp3 & .ogg) or an ArrayBuffer of the sound.");
  65293. }
  65294. else {
  65295. if (!codecSupportedFound) {
  65296. this._isReadyToPlay = true;
  65297. // Simulating a ready to play event to avoid breaking code path
  65298. if (this._readyToPlayCallback) {
  65299. window.setTimeout(function () {
  65300. if (_this._readyToPlayCallback) {
  65301. _this._readyToPlayCallback();
  65302. }
  65303. }, 1000);
  65304. }
  65305. }
  65306. }
  65307. }
  65308. catch (ex) {
  65309. BABYLON.Tools.Error("Unexpected error. Sound creation aborted.");
  65310. this._scene.mainSoundTrack.RemoveSound(this);
  65311. }
  65312. }
  65313. }
  65314. else {
  65315. // Adding an empty sound to avoid breaking audio calls for non Web Audio browsers
  65316. this._scene.mainSoundTrack.AddSound(this);
  65317. if (!BABYLON.Engine.audioEngine.WarnedWebAudioUnsupported) {
  65318. BABYLON.Tools.Error("Web Audio is not supported by your browser.");
  65319. BABYLON.Engine.audioEngine.WarnedWebAudioUnsupported = true;
  65320. }
  65321. // Simulating a ready to play event to avoid breaking code for non web audio browsers
  65322. if (this._readyToPlayCallback) {
  65323. window.setTimeout(function () {
  65324. if (_this._readyToPlayCallback) {
  65325. _this._readyToPlayCallback();
  65326. }
  65327. }, 1000);
  65328. }
  65329. }
  65330. }
  65331. Sound.prototype.dispose = function () {
  65332. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  65333. if (this.isPlaying) {
  65334. this.stop();
  65335. }
  65336. this._isReadyToPlay = false;
  65337. if (this.soundTrackId === -1) {
  65338. this._scene.mainSoundTrack.RemoveSound(this);
  65339. }
  65340. else {
  65341. this._scene.soundTracks[this.soundTrackId].RemoveSound(this);
  65342. }
  65343. if (this._soundGain) {
  65344. this._soundGain.disconnect();
  65345. this._soundGain = null;
  65346. }
  65347. if (this._soundPanner) {
  65348. this._soundPanner.disconnect();
  65349. this._soundPanner = null;
  65350. }
  65351. if (this._soundSource) {
  65352. this._soundSource.disconnect();
  65353. this._soundSource = null;
  65354. }
  65355. this._audioBuffer = null;
  65356. if (this._htmlAudioElement) {
  65357. this._htmlAudioElement.pause();
  65358. this._htmlAudioElement.src = "";
  65359. document.body.removeChild(this._htmlAudioElement);
  65360. }
  65361. if (this._streamingSource) {
  65362. this._streamingSource.disconnect();
  65363. }
  65364. if (this._connectedMesh && this._registerFunc) {
  65365. this._connectedMesh.unregisterAfterWorldMatrixUpdate(this._registerFunc);
  65366. this._connectedMesh = null;
  65367. }
  65368. }
  65369. };
  65370. Sound.prototype.isReady = function () {
  65371. return this._isReadyToPlay;
  65372. };
  65373. Sound.prototype._soundLoaded = function (audioData) {
  65374. var _this = this;
  65375. if (!BABYLON.Engine.audioEngine.audioContext) {
  65376. return;
  65377. }
  65378. BABYLON.Engine.audioEngine.audioContext.decodeAudioData(audioData, function (buffer) {
  65379. _this._audioBuffer = buffer;
  65380. _this._isReadyToPlay = true;
  65381. if (_this.autoplay) {
  65382. _this.play();
  65383. }
  65384. if (_this._readyToPlayCallback) {
  65385. _this._readyToPlayCallback();
  65386. }
  65387. }, function (err) { BABYLON.Tools.Error("Error while decoding audio data for: " + _this.name + " / Error: " + err); });
  65388. };
  65389. Sound.prototype.setAudioBuffer = function (audioBuffer) {
  65390. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  65391. this._audioBuffer = audioBuffer;
  65392. this._isReadyToPlay = true;
  65393. }
  65394. };
  65395. Sound.prototype.updateOptions = function (options) {
  65396. if (options) {
  65397. this.loop = options.loop || this.loop;
  65398. this.maxDistance = options.maxDistance || this.maxDistance;
  65399. this.useCustomAttenuation = options.useCustomAttenuation || this.useCustomAttenuation;
  65400. this.rolloffFactor = options.rolloffFactor || this.rolloffFactor;
  65401. this.refDistance = options.refDistance || this.refDistance;
  65402. this.distanceModel = options.distanceModel || this.distanceModel;
  65403. this._playbackRate = options.playbackRate || this._playbackRate;
  65404. this._updateSpatialParameters();
  65405. if (this.isPlaying) {
  65406. if (this._streaming && this._htmlAudioElement) {
  65407. this._htmlAudioElement.playbackRate = this._playbackRate;
  65408. }
  65409. else {
  65410. if (this._soundSource) {
  65411. this._soundSource.playbackRate.value = this._playbackRate;
  65412. }
  65413. }
  65414. }
  65415. }
  65416. };
  65417. Sound.prototype._createSpatialParameters = function () {
  65418. if (BABYLON.Engine.audioEngine.canUseWebAudio && BABYLON.Engine.audioEngine.audioContext) {
  65419. if (this._scene.headphone) {
  65420. this._panningModel = "HRTF";
  65421. }
  65422. this._soundPanner = BABYLON.Engine.audioEngine.audioContext.createPanner();
  65423. this._updateSpatialParameters();
  65424. this._soundPanner.connect(this._outputAudioNode);
  65425. this._inputAudioNode = this._soundPanner;
  65426. }
  65427. };
  65428. Sound.prototype._updateSpatialParameters = function () {
  65429. if (this.spatialSound && this._soundPanner) {
  65430. if (this.useCustomAttenuation) {
  65431. // Tricks to disable in a way embedded Web Audio attenuation
  65432. this._soundPanner.distanceModel = "linear";
  65433. this._soundPanner.maxDistance = Number.MAX_VALUE;
  65434. this._soundPanner.refDistance = 1;
  65435. this._soundPanner.rolloffFactor = 1;
  65436. this._soundPanner.panningModel = this._panningModel;
  65437. }
  65438. else {
  65439. this._soundPanner.distanceModel = this.distanceModel;
  65440. this._soundPanner.maxDistance = this.maxDistance;
  65441. this._soundPanner.refDistance = this.refDistance;
  65442. this._soundPanner.rolloffFactor = this.rolloffFactor;
  65443. this._soundPanner.panningModel = this._panningModel;
  65444. }
  65445. }
  65446. };
  65447. Sound.prototype.switchPanningModelToHRTF = function () {
  65448. this._panningModel = "HRTF";
  65449. this._switchPanningModel();
  65450. };
  65451. Sound.prototype.switchPanningModelToEqualPower = function () {
  65452. this._panningModel = "equalpower";
  65453. this._switchPanningModel();
  65454. };
  65455. Sound.prototype._switchPanningModel = function () {
  65456. if (BABYLON.Engine.audioEngine.canUseWebAudio && this.spatialSound && this._soundPanner) {
  65457. this._soundPanner.panningModel = this._panningModel;
  65458. }
  65459. };
  65460. Sound.prototype.connectToSoundTrackAudioNode = function (soundTrackAudioNode) {
  65461. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  65462. if (this._isOutputConnected) {
  65463. this._outputAudioNode.disconnect();
  65464. }
  65465. this._outputAudioNode.connect(soundTrackAudioNode);
  65466. this._isOutputConnected = true;
  65467. }
  65468. };
  65469. /**
  65470. * Transform this sound into a directional source
  65471. * @param coneInnerAngle Size of the inner cone in degree
  65472. * @param coneOuterAngle Size of the outer cone in degree
  65473. * @param coneOuterGain Volume of the sound outside the outer cone (between 0.0 and 1.0)
  65474. */
  65475. Sound.prototype.setDirectionalCone = function (coneInnerAngle, coneOuterAngle, coneOuterGain) {
  65476. if (coneOuterAngle < coneInnerAngle) {
  65477. BABYLON.Tools.Error("setDirectionalCone(): outer angle of the cone must be superior or equal to the inner angle.");
  65478. return;
  65479. }
  65480. this._coneInnerAngle = coneInnerAngle;
  65481. this._coneOuterAngle = coneOuterAngle;
  65482. this._coneOuterGain = coneOuterGain;
  65483. this._isDirectional = true;
  65484. if (this.isPlaying && this.loop) {
  65485. this.stop();
  65486. this.play();
  65487. }
  65488. };
  65489. Object.defineProperty(Sound.prototype, "directionalConeInnerAngle", {
  65490. /**
  65491. * Gets or sets the inner angle for the directional cone.
  65492. */
  65493. get: function () {
  65494. return this._coneInnerAngle;
  65495. },
  65496. /**
  65497. * Gets or sets the inner angle for the directional cone.
  65498. */
  65499. set: function (value) {
  65500. if (value != this._coneInnerAngle) {
  65501. if (this._coneOuterAngle < value) {
  65502. BABYLON.Tools.Error("directionalConeInnerAngle: outer angle of the cone must be superior or equal to the inner angle.");
  65503. return;
  65504. }
  65505. this._coneInnerAngle = value;
  65506. if (BABYLON.Engine.audioEngine.canUseWebAudio && this.spatialSound && this._soundPanner) {
  65507. this._soundPanner.coneInnerAngle = this._coneInnerAngle;
  65508. }
  65509. }
  65510. },
  65511. enumerable: true,
  65512. configurable: true
  65513. });
  65514. Object.defineProperty(Sound.prototype, "directionalConeOuterAngle", {
  65515. /**
  65516. * Gets or sets the outer angle for the directional cone.
  65517. */
  65518. get: function () {
  65519. return this._coneOuterAngle;
  65520. },
  65521. /**
  65522. * Gets or sets the outer angle for the directional cone.
  65523. */
  65524. set: function (value) {
  65525. if (value != this._coneOuterAngle) {
  65526. if (value < this._coneInnerAngle) {
  65527. BABYLON.Tools.Error("directionalConeOuterAngle: outer angle of the cone must be superior or equal to the inner angle.");
  65528. return;
  65529. }
  65530. this._coneOuterAngle = value;
  65531. if (BABYLON.Engine.audioEngine.canUseWebAudio && this.spatialSound && this._soundPanner) {
  65532. this._soundPanner.coneOuterAngle = this._coneOuterAngle;
  65533. }
  65534. }
  65535. },
  65536. enumerable: true,
  65537. configurable: true
  65538. });
  65539. Sound.prototype.setPosition = function (newPosition) {
  65540. this._position = newPosition;
  65541. if (BABYLON.Engine.audioEngine.canUseWebAudio && this.spatialSound && this._soundPanner && !isNaN(this._position.x) && !isNaN(this._position.y) && !isNaN(this._position.z)) {
  65542. this._soundPanner.setPosition(this._position.x, this._position.y, this._position.z);
  65543. }
  65544. };
  65545. Sound.prototype.setLocalDirectionToMesh = function (newLocalDirection) {
  65546. this._localDirection = newLocalDirection;
  65547. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._connectedMesh && this.isPlaying) {
  65548. this._updateDirection();
  65549. }
  65550. };
  65551. Sound.prototype._updateDirection = function () {
  65552. if (!this._connectedMesh || !this._soundPanner) {
  65553. return;
  65554. }
  65555. var mat = this._connectedMesh.getWorldMatrix();
  65556. var direction = BABYLON.Vector3.TransformNormal(this._localDirection, mat);
  65557. direction.normalize();
  65558. this._soundPanner.setOrientation(direction.x, direction.y, direction.z);
  65559. };
  65560. Sound.prototype.updateDistanceFromListener = function () {
  65561. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._connectedMesh && this.useCustomAttenuation && this._soundGain && this._scene.activeCamera) {
  65562. var distance = this._connectedMesh.getDistanceToCamera(this._scene.activeCamera);
  65563. this._soundGain.gain.value = this._customAttenuationFunction(this._volume, distance, this.maxDistance, this.refDistance, this.rolloffFactor);
  65564. }
  65565. };
  65566. Sound.prototype.setAttenuationFunction = function (callback) {
  65567. this._customAttenuationFunction = callback;
  65568. };
  65569. /**
  65570. * Play the sound
  65571. * @param time (optional) Start the sound after X seconds. Start immediately (0) by default.
  65572. * @param offset (optional) Start the sound setting it at a specific time
  65573. */
  65574. Sound.prototype.play = function (time, offset) {
  65575. var _this = this;
  65576. if (this._isReadyToPlay && this._scene.audioEnabled && BABYLON.Engine.audioEngine.audioContext) {
  65577. try {
  65578. if (this._startOffset < 0) {
  65579. time = -this._startOffset;
  65580. this._startOffset = 0;
  65581. }
  65582. var startTime = time ? BABYLON.Engine.audioEngine.audioContext.currentTime + time : BABYLON.Engine.audioEngine.audioContext.currentTime;
  65583. if (!this._soundSource || !this._streamingSource) {
  65584. if (this.spatialSound && this._soundPanner) {
  65585. if (!isNaN(this._position.x) && !isNaN(this._position.y) && !isNaN(this._position.z)) {
  65586. this._soundPanner.setPosition(this._position.x, this._position.y, this._position.z);
  65587. }
  65588. if (this._isDirectional) {
  65589. this._soundPanner.coneInnerAngle = this._coneInnerAngle;
  65590. this._soundPanner.coneOuterAngle = this._coneOuterAngle;
  65591. this._soundPanner.coneOuterGain = this._coneOuterGain;
  65592. if (this._connectedMesh) {
  65593. this._updateDirection();
  65594. }
  65595. else {
  65596. this._soundPanner.setOrientation(this._localDirection.x, this._localDirection.y, this._localDirection.z);
  65597. }
  65598. }
  65599. }
  65600. }
  65601. if (this._streaming) {
  65602. if (!this._streamingSource) {
  65603. this._streamingSource = BABYLON.Engine.audioEngine.audioContext.createMediaElementSource(this._htmlAudioElement);
  65604. this._htmlAudioElement.onended = function () { _this._onended(); };
  65605. this._htmlAudioElement.playbackRate = this._playbackRate;
  65606. }
  65607. this._streamingSource.disconnect();
  65608. this._streamingSource.connect(this._inputAudioNode);
  65609. if (this._htmlAudioElement) {
  65610. this._htmlAudioElement.play();
  65611. }
  65612. }
  65613. else {
  65614. this._soundSource = BABYLON.Engine.audioEngine.audioContext.createBufferSource();
  65615. this._soundSource.buffer = this._audioBuffer;
  65616. this._soundSource.connect(this._inputAudioNode);
  65617. this._soundSource.loop = this.loop;
  65618. this._soundSource.playbackRate.value = this._playbackRate;
  65619. this._soundSource.onended = function () { _this._onended(); };
  65620. if (this._soundSource.buffer) {
  65621. this._soundSource.start(startTime, this.isPaused ? this._startOffset % this._soundSource.buffer.duration : offset ? offset : 0);
  65622. }
  65623. }
  65624. this._startTime = startTime;
  65625. this.isPlaying = true;
  65626. this.isPaused = false;
  65627. }
  65628. catch (ex) {
  65629. BABYLON.Tools.Error("Error while trying to play audio: " + this.name + ", " + ex.message);
  65630. }
  65631. }
  65632. };
  65633. Sound.prototype._onended = function () {
  65634. this.isPlaying = false;
  65635. if (this.onended) {
  65636. this.onended();
  65637. }
  65638. this.onEndedObservable.notifyObservers(this);
  65639. };
  65640. /**
  65641. * Stop the sound
  65642. * @param time (optional) Stop the sound after X seconds. Stop immediately (0) by default.
  65643. */
  65644. Sound.prototype.stop = function (time) {
  65645. if (this.isPlaying) {
  65646. if (this._streaming) {
  65647. if (this._htmlAudioElement) {
  65648. this._htmlAudioElement.pause();
  65649. // Test needed for Firefox or it will generate an Invalid State Error
  65650. if (this._htmlAudioElement.currentTime > 0) {
  65651. this._htmlAudioElement.currentTime = 0;
  65652. }
  65653. }
  65654. else {
  65655. this._streamingSource.disconnect();
  65656. }
  65657. }
  65658. else if (BABYLON.Engine.audioEngine.audioContext && this._soundSource) {
  65659. var stopTime = time ? BABYLON.Engine.audioEngine.audioContext.currentTime + time : BABYLON.Engine.audioEngine.audioContext.currentTime;
  65660. this._soundSource.stop(stopTime);
  65661. this._soundSource.onended = function () { };
  65662. if (!this.isPaused) {
  65663. this._startOffset = 0;
  65664. }
  65665. }
  65666. this.isPlaying = false;
  65667. }
  65668. };
  65669. Sound.prototype.pause = function () {
  65670. if (this.isPlaying) {
  65671. this.isPaused = true;
  65672. if (this._streaming) {
  65673. if (this._htmlAudioElement) {
  65674. this._htmlAudioElement.pause();
  65675. }
  65676. else {
  65677. this._streamingSource.disconnect();
  65678. }
  65679. }
  65680. else if (BABYLON.Engine.audioEngine.audioContext) {
  65681. this.stop(0);
  65682. this._startOffset += BABYLON.Engine.audioEngine.audioContext.currentTime - this._startTime;
  65683. }
  65684. }
  65685. };
  65686. Sound.prototype.setVolume = function (newVolume, time) {
  65687. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._soundGain) {
  65688. if (time && BABYLON.Engine.audioEngine.audioContext) {
  65689. this._soundGain.gain.cancelScheduledValues(BABYLON.Engine.audioEngine.audioContext.currentTime);
  65690. this._soundGain.gain.setValueAtTime(this._soundGain.gain.value, BABYLON.Engine.audioEngine.audioContext.currentTime);
  65691. this._soundGain.gain.linearRampToValueAtTime(newVolume, BABYLON.Engine.audioEngine.audioContext.currentTime + time);
  65692. }
  65693. else {
  65694. this._soundGain.gain.value = newVolume;
  65695. }
  65696. }
  65697. this._volume = newVolume;
  65698. };
  65699. Sound.prototype.setPlaybackRate = function (newPlaybackRate) {
  65700. this._playbackRate = newPlaybackRate;
  65701. if (this.isPlaying) {
  65702. if (this._streaming && this._htmlAudioElement) {
  65703. this._htmlAudioElement.playbackRate = this._playbackRate;
  65704. }
  65705. else if (this._soundSource) {
  65706. this._soundSource.playbackRate.value = this._playbackRate;
  65707. }
  65708. }
  65709. };
  65710. Sound.prototype.getVolume = function () {
  65711. return this._volume;
  65712. };
  65713. Sound.prototype.attachToMesh = function (meshToConnectTo) {
  65714. var _this = this;
  65715. if (this._connectedMesh && this._registerFunc) {
  65716. this._connectedMesh.unregisterAfterWorldMatrixUpdate(this._registerFunc);
  65717. this._registerFunc = null;
  65718. }
  65719. this._connectedMesh = meshToConnectTo;
  65720. if (!this.spatialSound) {
  65721. this.spatialSound = true;
  65722. this._createSpatialParameters();
  65723. if (this.isPlaying && this.loop) {
  65724. this.stop();
  65725. this.play();
  65726. }
  65727. }
  65728. this._onRegisterAfterWorldMatrixUpdate(this._connectedMesh);
  65729. this._registerFunc = function (connectedMesh) { return _this._onRegisterAfterWorldMatrixUpdate(connectedMesh); };
  65730. meshToConnectTo.registerAfterWorldMatrixUpdate(this._registerFunc);
  65731. };
  65732. Sound.prototype.detachFromMesh = function () {
  65733. if (this._connectedMesh && this._registerFunc) {
  65734. this._connectedMesh.unregisterAfterWorldMatrixUpdate(this._registerFunc);
  65735. this._registerFunc = null;
  65736. this._connectedMesh = null;
  65737. }
  65738. };
  65739. Sound.prototype._onRegisterAfterWorldMatrixUpdate = function (node) {
  65740. if (!node.getBoundingInfo) {
  65741. return;
  65742. }
  65743. var mesh = node;
  65744. if (this._positionInEmitterSpace) {
  65745. mesh.worldMatrixFromCache.invertToRef(BABYLON.Tmp.Matrix[0]);
  65746. this.setPosition(BABYLON.Tmp.Matrix[0].getTranslation());
  65747. }
  65748. else {
  65749. var boundingInfo = mesh.getBoundingInfo();
  65750. this.setPosition(boundingInfo.boundingSphere.centerWorld);
  65751. }
  65752. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._isDirectional && this.isPlaying) {
  65753. this._updateDirection();
  65754. }
  65755. };
  65756. Sound.prototype.clone = function () {
  65757. var _this = this;
  65758. if (!this._streaming) {
  65759. var setBufferAndRun = function () {
  65760. if (_this._isReadyToPlay) {
  65761. clonedSound._audioBuffer = _this.getAudioBuffer();
  65762. clonedSound._isReadyToPlay = true;
  65763. if (clonedSound.autoplay) {
  65764. clonedSound.play();
  65765. }
  65766. }
  65767. else {
  65768. window.setTimeout(setBufferAndRun, 300);
  65769. }
  65770. };
  65771. var currentOptions = {
  65772. autoplay: this.autoplay, loop: this.loop,
  65773. volume: this._volume, spatialSound: this.spatialSound, maxDistance: this.maxDistance,
  65774. useCustomAttenuation: this.useCustomAttenuation, rolloffFactor: this.rolloffFactor,
  65775. refDistance: this.refDistance, distanceModel: this.distanceModel
  65776. };
  65777. var clonedSound = new Sound(this.name + "_cloned", new ArrayBuffer(0), this._scene, null, currentOptions);
  65778. if (this.useCustomAttenuation) {
  65779. clonedSound.setAttenuationFunction(this._customAttenuationFunction);
  65780. }
  65781. clonedSound.setPosition(this._position);
  65782. clonedSound.setPlaybackRate(this._playbackRate);
  65783. setBufferAndRun();
  65784. return clonedSound;
  65785. }
  65786. // Can't clone a streaming sound
  65787. else {
  65788. return null;
  65789. }
  65790. };
  65791. Sound.prototype.getAudioBuffer = function () {
  65792. return this._audioBuffer;
  65793. };
  65794. Sound.prototype.serialize = function () {
  65795. var serializationObject = {
  65796. name: this.name,
  65797. url: this.name,
  65798. autoplay: this.autoplay,
  65799. loop: this.loop,
  65800. volume: this._volume,
  65801. spatialSound: this.spatialSound,
  65802. maxDistance: this.maxDistance,
  65803. rolloffFactor: this.rolloffFactor,
  65804. refDistance: this.refDistance,
  65805. distanceModel: this.distanceModel,
  65806. playbackRate: this._playbackRate,
  65807. panningModel: this._panningModel,
  65808. soundTrackId: this.soundTrackId
  65809. };
  65810. if (this.spatialSound) {
  65811. if (this._connectedMesh)
  65812. serializationObject.connectedMeshId = this._connectedMesh.id;
  65813. serializationObject.position = this._position.asArray();
  65814. serializationObject.refDistance = this.refDistance;
  65815. serializationObject.distanceModel = this.distanceModel;
  65816. serializationObject.isDirectional = this._isDirectional;
  65817. serializationObject.localDirectionToMesh = this._localDirection.asArray();
  65818. serializationObject.coneInnerAngle = this._coneInnerAngle;
  65819. serializationObject.coneOuterAngle = this._coneOuterAngle;
  65820. serializationObject.coneOuterGain = this._coneOuterGain;
  65821. }
  65822. return serializationObject;
  65823. };
  65824. Sound.Parse = function (parsedSound, scene, rootUrl, sourceSound) {
  65825. var soundName = parsedSound.name;
  65826. var soundUrl;
  65827. if (parsedSound.url) {
  65828. soundUrl = rootUrl + parsedSound.url;
  65829. }
  65830. else {
  65831. soundUrl = rootUrl + soundName;
  65832. }
  65833. var options = {
  65834. autoplay: parsedSound.autoplay, loop: parsedSound.loop, volume: parsedSound.volume,
  65835. spatialSound: parsedSound.spatialSound, maxDistance: parsedSound.maxDistance,
  65836. rolloffFactor: parsedSound.rolloffFactor,
  65837. refDistance: parsedSound.refDistance,
  65838. distanceModel: parsedSound.distanceModel,
  65839. playbackRate: parsedSound.playbackRate
  65840. };
  65841. var newSound;
  65842. if (!sourceSound) {
  65843. newSound = new Sound(soundName, soundUrl, scene, function () { scene._removePendingData(newSound); }, options);
  65844. scene._addPendingData(newSound);
  65845. }
  65846. else {
  65847. var setBufferAndRun = function () {
  65848. if (sourceSound._isReadyToPlay) {
  65849. newSound._audioBuffer = sourceSound.getAudioBuffer();
  65850. newSound._isReadyToPlay = true;
  65851. if (newSound.autoplay) {
  65852. newSound.play();
  65853. }
  65854. }
  65855. else {
  65856. window.setTimeout(setBufferAndRun, 300);
  65857. }
  65858. };
  65859. newSound = new Sound(soundName, new ArrayBuffer(0), scene, null, options);
  65860. setBufferAndRun();
  65861. }
  65862. if (parsedSound.position) {
  65863. var soundPosition = BABYLON.Vector3.FromArray(parsedSound.position);
  65864. newSound.setPosition(soundPosition);
  65865. }
  65866. if (parsedSound.isDirectional) {
  65867. newSound.setDirectionalCone(parsedSound.coneInnerAngle || 360, parsedSound.coneOuterAngle || 360, parsedSound.coneOuterGain || 0);
  65868. if (parsedSound.localDirectionToMesh) {
  65869. var localDirectionToMesh = BABYLON.Vector3.FromArray(parsedSound.localDirectionToMesh);
  65870. newSound.setLocalDirectionToMesh(localDirectionToMesh);
  65871. }
  65872. }
  65873. if (parsedSound.connectedMeshId) {
  65874. var connectedMesh = scene.getMeshByID(parsedSound.connectedMeshId);
  65875. if (connectedMesh) {
  65876. newSound.attachToMesh(connectedMesh);
  65877. }
  65878. }
  65879. return newSound;
  65880. };
  65881. return Sound;
  65882. }());
  65883. BABYLON.Sound = Sound;
  65884. })(BABYLON || (BABYLON = {}));
  65885. //# sourceMappingURL=babylon.sound.js.map
  65886. var BABYLON;
  65887. (function (BABYLON) {
  65888. var SoundTrack = /** @class */ (function () {
  65889. function SoundTrack(scene, options) {
  65890. this.id = -1;
  65891. this._isMainTrack = false;
  65892. this._isInitialized = false;
  65893. this._scene = scene;
  65894. this.soundCollection = new Array();
  65895. this._options = options;
  65896. if (!this._isMainTrack) {
  65897. this._scene.soundTracks.push(this);
  65898. this.id = this._scene.soundTracks.length - 1;
  65899. }
  65900. }
  65901. SoundTrack.prototype._initializeSoundTrackAudioGraph = function () {
  65902. if (BABYLON.Engine.audioEngine.canUseWebAudio && BABYLON.Engine.audioEngine.audioContext) {
  65903. this._outputAudioNode = BABYLON.Engine.audioEngine.audioContext.createGain();
  65904. this._outputAudioNode.connect(BABYLON.Engine.audioEngine.masterGain);
  65905. if (this._options) {
  65906. if (this._options.volume) {
  65907. this._outputAudioNode.gain.value = this._options.volume;
  65908. }
  65909. if (this._options.mainTrack) {
  65910. this._isMainTrack = this._options.mainTrack;
  65911. }
  65912. }
  65913. this._isInitialized = true;
  65914. }
  65915. };
  65916. SoundTrack.prototype.dispose = function () {
  65917. if (BABYLON.Engine.audioEngine && BABYLON.Engine.audioEngine.canUseWebAudio) {
  65918. if (this._connectedAnalyser) {
  65919. this._connectedAnalyser.stopDebugCanvas();
  65920. }
  65921. while (this.soundCollection.length) {
  65922. this.soundCollection[0].dispose();
  65923. }
  65924. if (this._outputAudioNode) {
  65925. this._outputAudioNode.disconnect();
  65926. }
  65927. this._outputAudioNode = null;
  65928. }
  65929. };
  65930. SoundTrack.prototype.AddSound = function (sound) {
  65931. if (!this._isInitialized) {
  65932. this._initializeSoundTrackAudioGraph();
  65933. }
  65934. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._outputAudioNode) {
  65935. sound.connectToSoundTrackAudioNode(this._outputAudioNode);
  65936. }
  65937. if (sound.soundTrackId) {
  65938. if (sound.soundTrackId === -1) {
  65939. this._scene.mainSoundTrack.RemoveSound(sound);
  65940. }
  65941. else {
  65942. this._scene.soundTracks[sound.soundTrackId].RemoveSound(sound);
  65943. }
  65944. }
  65945. this.soundCollection.push(sound);
  65946. sound.soundTrackId = this.id;
  65947. };
  65948. SoundTrack.prototype.RemoveSound = function (sound) {
  65949. var index = this.soundCollection.indexOf(sound);
  65950. if (index !== -1) {
  65951. this.soundCollection.splice(index, 1);
  65952. }
  65953. };
  65954. SoundTrack.prototype.setVolume = function (newVolume) {
  65955. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._outputAudioNode) {
  65956. this._outputAudioNode.gain.value = newVolume;
  65957. }
  65958. };
  65959. SoundTrack.prototype.switchPanningModelToHRTF = function () {
  65960. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  65961. for (var i = 0; i < this.soundCollection.length; i++) {
  65962. this.soundCollection[i].switchPanningModelToHRTF();
  65963. }
  65964. }
  65965. };
  65966. SoundTrack.prototype.switchPanningModelToEqualPower = function () {
  65967. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  65968. for (var i = 0; i < this.soundCollection.length; i++) {
  65969. this.soundCollection[i].switchPanningModelToEqualPower();
  65970. }
  65971. }
  65972. };
  65973. SoundTrack.prototype.connectToAnalyser = function (analyser) {
  65974. if (this._connectedAnalyser) {
  65975. this._connectedAnalyser.stopDebugCanvas();
  65976. }
  65977. this._connectedAnalyser = analyser;
  65978. if (BABYLON.Engine.audioEngine.canUseWebAudio && this._outputAudioNode) {
  65979. this._outputAudioNode.disconnect();
  65980. this._connectedAnalyser.connectAudioNodes(this._outputAudioNode, BABYLON.Engine.audioEngine.masterGain);
  65981. }
  65982. };
  65983. return SoundTrack;
  65984. }());
  65985. BABYLON.SoundTrack = SoundTrack;
  65986. })(BABYLON || (BABYLON = {}));
  65987. //# sourceMappingURL=babylon.soundtrack.js.map
  65988. var BABYLON;
  65989. (function (BABYLON) {
  65990. /**
  65991. * Class used to work with sound analyzer using fast fourier transform (FFT)
  65992. * @see http://doc.babylonjs.com/how_to/playing_sounds_and_music
  65993. */
  65994. var Analyser = /** @class */ (function () {
  65995. /**
  65996. * Creates a new analyser
  65997. * @param scene defines hosting scene
  65998. */
  65999. function Analyser(scene) {
  66000. /**
  66001. * Gets or sets the smoothing
  66002. * @ignorenaming
  66003. */
  66004. this.SMOOTHING = 0.75;
  66005. /**
  66006. * Gets or sets the FFT table size
  66007. * @ignorenaming
  66008. */
  66009. this.FFT_SIZE = 512;
  66010. /**
  66011. * Gets or sets the bar graph amplitude
  66012. * @ignorenaming
  66013. */
  66014. this.BARGRAPHAMPLITUDE = 256;
  66015. /**
  66016. * Gets or sets the position of the debug canvas
  66017. * @ignorenaming
  66018. */
  66019. this.DEBUGCANVASPOS = { x: 20, y: 20 };
  66020. /**
  66021. * Gets or sets the debug canvas size
  66022. * @ignorenaming
  66023. */
  66024. this.DEBUGCANVASSIZE = { width: 320, height: 200 };
  66025. this._scene = scene;
  66026. this._audioEngine = BABYLON.Engine.audioEngine;
  66027. if (this._audioEngine.canUseWebAudio && this._audioEngine.audioContext) {
  66028. this._webAudioAnalyser = this._audioEngine.audioContext.createAnalyser();
  66029. this._webAudioAnalyser.minDecibels = -140;
  66030. this._webAudioAnalyser.maxDecibels = 0;
  66031. this._byteFreqs = new Uint8Array(this._webAudioAnalyser.frequencyBinCount);
  66032. this._byteTime = new Uint8Array(this._webAudioAnalyser.frequencyBinCount);
  66033. this._floatFreqs = new Float32Array(this._webAudioAnalyser.frequencyBinCount);
  66034. }
  66035. }
  66036. /**
  66037. * Get the number of data values you will have to play with for the visualization
  66038. * @see https://developer.mozilla.org/en-US/docs/Web/API/AnalyserNode/frequencyBinCount
  66039. * @returns a number
  66040. */
  66041. Analyser.prototype.getFrequencyBinCount = function () {
  66042. if (this._audioEngine.canUseWebAudio) {
  66043. return this._webAudioAnalyser.frequencyBinCount;
  66044. }
  66045. else {
  66046. return 0;
  66047. }
  66048. };
  66049. /**
  66050. * Gets the current frequency data as a byte array
  66051. * @see https://developer.mozilla.org/en-US/docs/Web/API/AnalyserNode/getByteFrequencyData
  66052. * @returns a Uint8Array
  66053. */
  66054. Analyser.prototype.getByteFrequencyData = function () {
  66055. if (this._audioEngine.canUseWebAudio) {
  66056. this._webAudioAnalyser.smoothingTimeConstant = this.SMOOTHING;
  66057. this._webAudioAnalyser.fftSize = this.FFT_SIZE;
  66058. this._webAudioAnalyser.getByteFrequencyData(this._byteFreqs);
  66059. }
  66060. return this._byteFreqs;
  66061. };
  66062. /**
  66063. * Gets the current waveform as a byte array
  66064. * @see https://developer.mozilla.org/en-US/docs/Web/API/AnalyserNode/getByteTimeDomainData
  66065. * @returns a Uint8Array
  66066. */
  66067. Analyser.prototype.getByteTimeDomainData = function () {
  66068. if (this._audioEngine.canUseWebAudio) {
  66069. this._webAudioAnalyser.smoothingTimeConstant = this.SMOOTHING;
  66070. this._webAudioAnalyser.fftSize = this.FFT_SIZE;
  66071. this._webAudioAnalyser.getByteTimeDomainData(this._byteTime);
  66072. }
  66073. return this._byteTime;
  66074. };
  66075. /**
  66076. * Gets the current frequency data as a float array
  66077. * @see https://developer.mozilla.org/en-US/docs/Web/API/AnalyserNode/getByteFrequencyData
  66078. * @returns a Float32Array
  66079. */
  66080. Analyser.prototype.getFloatFrequencyData = function () {
  66081. if (this._audioEngine.canUseWebAudio) {
  66082. this._webAudioAnalyser.smoothingTimeConstant = this.SMOOTHING;
  66083. this._webAudioAnalyser.fftSize = this.FFT_SIZE;
  66084. this._webAudioAnalyser.getFloatFrequencyData(this._floatFreqs);
  66085. }
  66086. return this._floatFreqs;
  66087. };
  66088. /**
  66089. * Renders the debug canvas
  66090. */
  66091. Analyser.prototype.drawDebugCanvas = function () {
  66092. var _this = this;
  66093. if (this._audioEngine.canUseWebAudio) {
  66094. if (!this._debugCanvas) {
  66095. this._debugCanvas = document.createElement("canvas");
  66096. this._debugCanvas.width = this.DEBUGCANVASSIZE.width;
  66097. this._debugCanvas.height = this.DEBUGCANVASSIZE.height;
  66098. this._debugCanvas.style.position = "absolute";
  66099. this._debugCanvas.style.top = this.DEBUGCANVASPOS.y + "px";
  66100. this._debugCanvas.style.left = this.DEBUGCANVASPOS.x + "px";
  66101. this._debugCanvasContext = this._debugCanvas.getContext("2d");
  66102. document.body.appendChild(this._debugCanvas);
  66103. this._registerFunc = function () {
  66104. _this.drawDebugCanvas();
  66105. };
  66106. this._scene.registerBeforeRender(this._registerFunc);
  66107. }
  66108. if (this._registerFunc && this._debugCanvasContext) {
  66109. var workingArray = this.getByteFrequencyData();
  66110. this._debugCanvasContext.fillStyle = 'rgb(0, 0, 0)';
  66111. this._debugCanvasContext.fillRect(0, 0, this.DEBUGCANVASSIZE.width, this.DEBUGCANVASSIZE.height);
  66112. // Draw the frequency domain chart.
  66113. for (var i = 0; i < this.getFrequencyBinCount(); i++) {
  66114. var value = workingArray[i];
  66115. var percent = value / this.BARGRAPHAMPLITUDE;
  66116. var height = this.DEBUGCANVASSIZE.height * percent;
  66117. var offset = this.DEBUGCANVASSIZE.height - height - 1;
  66118. var barWidth = this.DEBUGCANVASSIZE.width / this.getFrequencyBinCount();
  66119. var hue = i / this.getFrequencyBinCount() * 360;
  66120. this._debugCanvasContext.fillStyle = 'hsl(' + hue + ', 100%, 50%)';
  66121. this._debugCanvasContext.fillRect(i * barWidth, offset, barWidth, height);
  66122. }
  66123. }
  66124. }
  66125. };
  66126. /**
  66127. * Stops rendering the debug canvas and removes it
  66128. */
  66129. Analyser.prototype.stopDebugCanvas = function () {
  66130. if (this._debugCanvas) {
  66131. if (this._registerFunc) {
  66132. this._scene.unregisterBeforeRender(this._registerFunc);
  66133. this._registerFunc = null;
  66134. }
  66135. document.body.removeChild(this._debugCanvas);
  66136. this._debugCanvas = null;
  66137. this._debugCanvasContext = null;
  66138. }
  66139. };
  66140. /**
  66141. * Connects two audio nodes
  66142. * @param inputAudioNode defines first node to connect
  66143. * @param outputAudioNode defines second node to connect
  66144. */
  66145. Analyser.prototype.connectAudioNodes = function (inputAudioNode, outputAudioNode) {
  66146. if (this._audioEngine.canUseWebAudio) {
  66147. inputAudioNode.connect(this._webAudioAnalyser);
  66148. this._webAudioAnalyser.connect(outputAudioNode);
  66149. }
  66150. };
  66151. /**
  66152. * Releases all associated resources
  66153. */
  66154. Analyser.prototype.dispose = function () {
  66155. if (this._audioEngine.canUseWebAudio) {
  66156. this._webAudioAnalyser.disconnect();
  66157. }
  66158. };
  66159. return Analyser;
  66160. }());
  66161. BABYLON.Analyser = Analyser;
  66162. })(BABYLON || (BABYLON = {}));
  66163. //# sourceMappingURL=babylon.analyser.js.map
  66164. var BABYLON;
  66165. (function (BABYLON) {
  66166. /**
  66167. * Wraps one or more Sound objects and selects one with random weight for playback.
  66168. */
  66169. var WeightedSound = /** @class */ (function () {
  66170. /**
  66171. * Creates a new WeightedSound from the list of sounds given.
  66172. * @param loop When true a Sound will be selected and played when the current playing Sound completes.
  66173. * @param sounds Array of Sounds that will be selected from.
  66174. * @param weights Array of number values for selection weights; length must equal sounds, values will be normalized to 1
  66175. */
  66176. function WeightedSound(loop, sounds, weights) {
  66177. var _this = this;
  66178. /** When true a Sound will be selected and played when the current playing Sound completes. */
  66179. this.loop = false;
  66180. this._coneInnerAngle = 360;
  66181. this._coneOuterAngle = 360;
  66182. this._volume = 1;
  66183. /** A Sound is currently playing. */
  66184. this.isPlaying = false;
  66185. /** A Sound is currently paused. */
  66186. this.isPaused = false;
  66187. this._sounds = [];
  66188. this._weights = [];
  66189. if (sounds.length !== weights.length) {
  66190. throw new Error('Sounds length does not equal weights length');
  66191. }
  66192. this.loop = loop;
  66193. this._weights = weights;
  66194. // Normalize the weights
  66195. var weightSum = 0;
  66196. for (var _i = 0, weights_1 = weights; _i < weights_1.length; _i++) {
  66197. var weight = weights_1[_i];
  66198. weightSum += weight;
  66199. }
  66200. var invWeightSum = weightSum > 0 ? 1 / weightSum : 0;
  66201. for (var i = 0; i < this._weights.length; i++) {
  66202. this._weights[i] *= invWeightSum;
  66203. }
  66204. this._sounds = sounds;
  66205. for (var _a = 0, _b = this._sounds; _a < _b.length; _a++) {
  66206. var sound = _b[_a];
  66207. sound.onEndedObservable.add(function () { _this._onended(); });
  66208. }
  66209. }
  66210. Object.defineProperty(WeightedSound.prototype, "directionalConeInnerAngle", {
  66211. /**
  66212. * The size of cone in degrees for a directional sound in which there will be no attenuation.
  66213. */
  66214. get: function () {
  66215. return this._coneInnerAngle;
  66216. },
  66217. /**
  66218. * The size of cone in degress for a directional sound in which there will be no attenuation.
  66219. */
  66220. set: function (value) {
  66221. if (value !== this._coneInnerAngle) {
  66222. if (this._coneOuterAngle < value) {
  66223. BABYLON.Tools.Error("directionalConeInnerAngle: outer angle of the cone must be superior or equal to the inner angle.");
  66224. return;
  66225. }
  66226. this._coneInnerAngle = value;
  66227. for (var _i = 0, _a = this._sounds; _i < _a.length; _i++) {
  66228. var sound = _a[_i];
  66229. sound.directionalConeInnerAngle = value;
  66230. }
  66231. }
  66232. },
  66233. enumerable: true,
  66234. configurable: true
  66235. });
  66236. Object.defineProperty(WeightedSound.prototype, "directionalConeOuterAngle", {
  66237. /**
  66238. * Size of cone in degrees for a directional sound outside of which there will be no sound.
  66239. * Listener angles between innerAngle and outerAngle will falloff linearly.
  66240. */
  66241. get: function () {
  66242. return this._coneOuterAngle;
  66243. },
  66244. /**
  66245. * Size of cone in degrees for a directional sound outside of which there will be no sound.
  66246. * Listener angles between innerAngle and outerAngle will falloff linearly.
  66247. */
  66248. set: function (value) {
  66249. if (value !== this._coneOuterAngle) {
  66250. if (value < this._coneInnerAngle) {
  66251. BABYLON.Tools.Error("directionalConeOuterAngle: outer angle of the cone must be superior or equal to the inner angle.");
  66252. return;
  66253. }
  66254. this._coneOuterAngle = value;
  66255. for (var _i = 0, _a = this._sounds; _i < _a.length; _i++) {
  66256. var sound = _a[_i];
  66257. sound.directionalConeOuterAngle = value;
  66258. }
  66259. }
  66260. },
  66261. enumerable: true,
  66262. configurable: true
  66263. });
  66264. Object.defineProperty(WeightedSound.prototype, "volume", {
  66265. /**
  66266. * Playback volume.
  66267. */
  66268. get: function () {
  66269. return this._volume;
  66270. },
  66271. /**
  66272. * Playback volume.
  66273. */
  66274. set: function (value) {
  66275. if (value !== this._volume) {
  66276. for (var _i = 0, _a = this._sounds; _i < _a.length; _i++) {
  66277. var sound = _a[_i];
  66278. sound.setVolume(value);
  66279. }
  66280. }
  66281. },
  66282. enumerable: true,
  66283. configurable: true
  66284. });
  66285. WeightedSound.prototype._onended = function () {
  66286. if (this._currentIndex !== undefined) {
  66287. this._sounds[this._currentIndex].autoplay = false;
  66288. }
  66289. if (this.loop && this.isPlaying) {
  66290. this.play();
  66291. }
  66292. else {
  66293. this.isPlaying = false;
  66294. }
  66295. };
  66296. /**
  66297. * Suspend playback
  66298. */
  66299. WeightedSound.prototype.pause = function () {
  66300. this.isPaused = true;
  66301. if (this._currentIndex !== undefined) {
  66302. this._sounds[this._currentIndex].pause();
  66303. }
  66304. };
  66305. /**
  66306. * Stop playback
  66307. */
  66308. WeightedSound.prototype.stop = function () {
  66309. this.isPlaying = false;
  66310. if (this._currentIndex !== undefined) {
  66311. this._sounds[this._currentIndex].stop();
  66312. }
  66313. };
  66314. /**
  66315. * Start playback.
  66316. * @param startOffset Position the clip head at a specific time in seconds.
  66317. */
  66318. WeightedSound.prototype.play = function (startOffset) {
  66319. if (!this.isPaused) {
  66320. this.stop();
  66321. var randomValue = Math.random();
  66322. var total = 0;
  66323. for (var i = 0; i < this._weights.length; i++) {
  66324. total += this._weights[i];
  66325. if (randomValue <= total) {
  66326. this._currentIndex = i;
  66327. break;
  66328. }
  66329. }
  66330. }
  66331. var sound = this._sounds[this._currentIndex];
  66332. if (sound.isReady()) {
  66333. sound.play(0, this.isPaused ? undefined : startOffset);
  66334. }
  66335. else {
  66336. sound.autoplay = true;
  66337. }
  66338. this.isPlaying = true;
  66339. this.isPaused = false;
  66340. };
  66341. return WeightedSound;
  66342. }());
  66343. BABYLON.WeightedSound = WeightedSound;
  66344. })(BABYLON || (BABYLON = {}));
  66345. //# sourceMappingURL=babylon.weightedsound.js.map
  66346. var BABYLON;
  66347. (function (BABYLON) {
  66348. var CubeTexture = /** @class */ (function (_super) {
  66349. __extends(CubeTexture, _super);
  66350. /**
  66351. * Creates a cube texture to use with reflection for instance. It can be based upon dds or six images as well
  66352. * as prefiltered data.
  66353. * @param rootUrl defines the url of the texture or the root name of the six images
  66354. * @param scene defines the scene the texture is attached to
  66355. * @param extensions defines the suffixes add to the picture name in case six images are in use like _px.jpg...
  66356. * @param noMipmap defines if mipmaps should be created or not
  66357. * @param files defines the six files to load for the different faces
  66358. * @param onLoad defines a callback triggered at the end of the file load if no errors occured
  66359. * @param onError defines a callback triggered in case of error during load
  66360. * @param format defines the internal format to use for the texture once loaded
  66361. * @param prefiltered defines whether or not the texture is created from prefiltered data
  66362. * @param forcedExtension defines the extensions to use (force a special type of file to load) in case it is different from the file name
  66363. * @param createPolynomials defines whether or not to create polynomial harmonics from the texture data if necessary
  66364. * @param lodScale defines the scale applied to environment texture. This manages the range of LOD level used for IBL according to the roughness
  66365. * @param lodOffset defines the offset applied to environment texture. This manages first LOD level used for IBL according to the roughness
  66366. * @return the cube texture
  66367. */
  66368. function CubeTexture(rootUrl, scene, extensions, noMipmap, files, onLoad, onError, format, prefiltered, forcedExtension, createPolynomials, lodScale, lodOffset) {
  66369. if (extensions === void 0) { extensions = null; }
  66370. if (noMipmap === void 0) { noMipmap = false; }
  66371. if (files === void 0) { files = null; }
  66372. if (onLoad === void 0) { onLoad = null; }
  66373. if (onError === void 0) { onError = null; }
  66374. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  66375. if (prefiltered === void 0) { prefiltered = false; }
  66376. if (forcedExtension === void 0) { forcedExtension = null; }
  66377. if (createPolynomials === void 0) { createPolynomials = false; }
  66378. if (lodScale === void 0) { lodScale = 0.8; }
  66379. if (lodOffset === void 0) { lodOffset = 0; }
  66380. var _this = _super.call(this, scene) || this;
  66381. /**
  66382. * Gets or sets the center of the bounding box associated with the cube texture
  66383. * It must define where the camera used to render the texture was set
  66384. */
  66385. _this.boundingBoxPosition = BABYLON.Vector3.Zero();
  66386. _this._rotationY = 0;
  66387. /** @hidden */
  66388. _this._prefiltered = false;
  66389. _this.name = rootUrl;
  66390. _this.url = rootUrl;
  66391. _this._noMipmap = noMipmap;
  66392. _this.hasAlpha = false;
  66393. _this._format = format;
  66394. _this.isCube = true;
  66395. _this._textureMatrix = BABYLON.Matrix.Identity();
  66396. _this._createPolynomials = createPolynomials;
  66397. _this.coordinatesMode = BABYLON.Texture.CUBIC_MODE;
  66398. if (!rootUrl && !files) {
  66399. return _this;
  66400. }
  66401. var lastDot = rootUrl.lastIndexOf(".");
  66402. var extension = forcedExtension ? forcedExtension : (lastDot > -1 ? rootUrl.substring(lastDot).toLowerCase() : "");
  66403. var isDDS = (extension === ".dds");
  66404. var isEnv = (extension === ".env");
  66405. if (isEnv) {
  66406. _this.gammaSpace = false;
  66407. _this._prefiltered = false;
  66408. }
  66409. else {
  66410. _this._prefiltered = prefiltered;
  66411. if (prefiltered) {
  66412. _this.gammaSpace = false;
  66413. }
  66414. }
  66415. _this._texture = _this._getFromCache(rootUrl, noMipmap);
  66416. if (!files) {
  66417. if (!isEnv && !isDDS && !extensions) {
  66418. extensions = ["_px.jpg", "_py.jpg", "_pz.jpg", "_nx.jpg", "_ny.jpg", "_nz.jpg"];
  66419. }
  66420. files = [];
  66421. if (extensions) {
  66422. for (var index = 0; index < extensions.length; index++) {
  66423. files.push(rootUrl + extensions[index]);
  66424. }
  66425. }
  66426. }
  66427. _this._files = files;
  66428. if (!_this._texture) {
  66429. if (!scene.useDelayedTextureLoading) {
  66430. if (prefiltered) {
  66431. _this._texture = scene.getEngine().createPrefilteredCubeTexture(rootUrl, scene, lodScale, lodOffset, onLoad, onError, format, forcedExtension, _this._createPolynomials);
  66432. }
  66433. else {
  66434. _this._texture = scene.getEngine().createCubeTexture(rootUrl, scene, files, noMipmap, onLoad, onError, _this._format, forcedExtension, false, lodScale, lodOffset);
  66435. }
  66436. }
  66437. else {
  66438. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  66439. }
  66440. }
  66441. else if (onLoad) {
  66442. if (_this._texture.isReady) {
  66443. BABYLON.Tools.SetImmediate(function () { return onLoad(); });
  66444. }
  66445. else {
  66446. _this._texture.onLoadedObservable.add(onLoad);
  66447. }
  66448. }
  66449. return _this;
  66450. }
  66451. Object.defineProperty(CubeTexture.prototype, "boundingBoxSize", {
  66452. get: function () {
  66453. return this._boundingBoxSize;
  66454. },
  66455. /**
  66456. * Gets or sets the size of the bounding box associated with the cube texture
  66457. * When defined, the cubemap will switch to local mode
  66458. * @see https://community.arm.com/graphics/b/blog/posts/reflections-based-on-local-cubemaps-in-unity
  66459. * @example https://www.babylonjs-playground.com/#RNASML
  66460. */
  66461. set: function (value) {
  66462. if (this._boundingBoxSize && this._boundingBoxSize.equals(value)) {
  66463. return;
  66464. }
  66465. this._boundingBoxSize = value;
  66466. var scene = this.getScene();
  66467. if (scene) {
  66468. scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  66469. }
  66470. },
  66471. enumerable: true,
  66472. configurable: true
  66473. });
  66474. Object.defineProperty(CubeTexture.prototype, "rotationY", {
  66475. /**
  66476. * Gets texture matrix rotation angle around Y axis radians.
  66477. */
  66478. get: function () {
  66479. return this._rotationY;
  66480. },
  66481. /**
  66482. * Sets texture matrix rotation angle around Y axis in radians.
  66483. */
  66484. set: function (value) {
  66485. this._rotationY = value;
  66486. this.setReflectionTextureMatrix(BABYLON.Matrix.RotationY(this._rotationY));
  66487. },
  66488. enumerable: true,
  66489. configurable: true
  66490. });
  66491. CubeTexture.CreateFromImages = function (files, scene, noMipmap) {
  66492. var rootUrlKey = "";
  66493. files.forEach(function (url) { return rootUrlKey += url; });
  66494. return new CubeTexture(rootUrlKey, scene, null, noMipmap, files);
  66495. };
  66496. /**
  66497. * Creates and return a texture created from prefilterd data by tools like IBL Baker or Lys.
  66498. * @param url defines the url of the prefiltered texture
  66499. * @param scene defines the scene the texture is attached to
  66500. * @param forcedExtension defines the extension of the file if different from the url
  66501. * @param createPolynomials defines whether or not to create polynomial harmonics from the texture data if necessary
  66502. * @return the prefiltered texture
  66503. */
  66504. CubeTexture.CreateFromPrefilteredData = function (url, scene, forcedExtension, createPolynomials) {
  66505. if (forcedExtension === void 0) { forcedExtension = null; }
  66506. if (createPolynomials === void 0) { createPolynomials = true; }
  66507. return new CubeTexture(url, scene, null, false, null, null, null, undefined, true, forcedExtension, createPolynomials);
  66508. };
  66509. // Methods
  66510. CubeTexture.prototype.delayLoad = function () {
  66511. if (this.delayLoadState !== BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  66512. return;
  66513. }
  66514. var scene = this.getScene();
  66515. if (!scene) {
  66516. return;
  66517. }
  66518. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  66519. this._texture = this._getFromCache(this.url, this._noMipmap);
  66520. if (!this._texture) {
  66521. if (this._prefiltered) {
  66522. this._texture = scene.getEngine().createPrefilteredCubeTexture(this.url, scene, this.lodGenerationScale, this.lodGenerationOffset, undefined, undefined, this._format, undefined, this._createPolynomials);
  66523. }
  66524. else {
  66525. this._texture = scene.getEngine().createCubeTexture(this.url, scene, this._files, this._noMipmap, undefined, undefined, this._format);
  66526. }
  66527. }
  66528. };
  66529. CubeTexture.prototype.getReflectionTextureMatrix = function () {
  66530. return this._textureMatrix;
  66531. };
  66532. CubeTexture.prototype.setReflectionTextureMatrix = function (value) {
  66533. this._textureMatrix = value;
  66534. };
  66535. CubeTexture.Parse = function (parsedTexture, scene, rootUrl) {
  66536. var texture = BABYLON.SerializationHelper.Parse(function () {
  66537. var prefiltered = false;
  66538. if (parsedTexture.prefiltered) {
  66539. prefiltered = parsedTexture.prefiltered;
  66540. }
  66541. return new CubeTexture(rootUrl + parsedTexture.name, scene, parsedTexture.extensions, false, null, null, null, undefined, prefiltered);
  66542. }, parsedTexture, scene);
  66543. // Local Cubemaps
  66544. if (parsedTexture.boundingBoxPosition) {
  66545. texture.boundingBoxPosition = BABYLON.Vector3.FromArray(parsedTexture.boundingBoxPosition);
  66546. }
  66547. if (parsedTexture.boundingBoxSize) {
  66548. texture.boundingBoxSize = BABYLON.Vector3.FromArray(parsedTexture.boundingBoxSize);
  66549. }
  66550. // Animations
  66551. if (parsedTexture.animations) {
  66552. for (var animationIndex = 0; animationIndex < parsedTexture.animations.length; animationIndex++) {
  66553. var parsedAnimation = parsedTexture.animations[animationIndex];
  66554. texture.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  66555. }
  66556. }
  66557. return texture;
  66558. };
  66559. CubeTexture.prototype.clone = function () {
  66560. var _this = this;
  66561. return BABYLON.SerializationHelper.Clone(function () {
  66562. var scene = _this.getScene();
  66563. if (!scene) {
  66564. return _this;
  66565. }
  66566. return new CubeTexture(_this.url, scene, _this._extensions, _this._noMipmap, _this._files);
  66567. }, this);
  66568. };
  66569. __decorate([
  66570. BABYLON.serialize("rotationY")
  66571. ], CubeTexture.prototype, "rotationY", null);
  66572. return CubeTexture;
  66573. }(BABYLON.BaseTexture));
  66574. BABYLON.CubeTexture = CubeTexture;
  66575. })(BABYLON || (BABYLON = {}));
  66576. //# sourceMappingURL=babylon.cubeTexture.js.map
  66577. var BABYLON;
  66578. (function (BABYLON) {
  66579. /**
  66580. * Raw cube texture where the raw buffers are passed in
  66581. */
  66582. var RawCubeTexture = /** @class */ (function (_super) {
  66583. __extends(RawCubeTexture, _super);
  66584. /**
  66585. * Creates a cube texture where the raw buffers are passed in.
  66586. * @param scene defines the scene the texture is attached to
  66587. * @param data defines the array of data to use to create each face
  66588. * @param size defines the size of the textures
  66589. * @param format defines the format of the data
  66590. * @param type defines the type of the data (like BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT)
  66591. * @param generateMipMaps defines if the engine should generate the mip levels
  66592. * @param invertY defines if data must be stored with Y axis inverted
  66593. * @param samplingMode defines the required sampling mode (like BABYLON.Texture.NEAREST_SAMPLINGMODE)
  66594. * @param compression defines the compression used (null by default)
  66595. */
  66596. function RawCubeTexture(scene, data, size, format, type, generateMipMaps, invertY, samplingMode, compression) {
  66597. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  66598. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  66599. if (generateMipMaps === void 0) { generateMipMaps = false; }
  66600. if (invertY === void 0) { invertY = false; }
  66601. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  66602. if (compression === void 0) { compression = null; }
  66603. var _this = _super.call(this, "", scene) || this;
  66604. _this._texture = scene.getEngine().createRawCubeTexture(data, size, format, type, generateMipMaps, invertY, samplingMode, compression);
  66605. return _this;
  66606. }
  66607. /**
  66608. * Updates the raw cube texture.
  66609. * @param data defines the data to store
  66610. * @param format defines the data format
  66611. * @param type defines the type fo the data (BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT by default)
  66612. * @param invertY defines if data must be stored with Y axis inverted
  66613. * @param compression defines the compression used (null by default)
  66614. * @param level defines which level of the texture to update
  66615. */
  66616. RawCubeTexture.prototype.update = function (data, format, type, invertY, compression, level) {
  66617. if (compression === void 0) { compression = null; }
  66618. if (level === void 0) { level = 0; }
  66619. this._texture.getEngine().updateRawCubeTexture(this._texture, data, format, type, invertY, compression);
  66620. };
  66621. /**
  66622. * Updates a raw cube texture with RGBD encoded data.
  66623. * @param data defines the array of data [mipmap][face] to use to create each face
  66624. * @param sphericalPolynomial defines the spherical polynomial for irradiance
  66625. * @param lodScale defines the scale applied to environment texture. This manages the range of LOD level used for IBL according to the roughness
  66626. * @param lodOffset defines the offset applied to environment texture. This manages first LOD level used for IBL according to the roughness
  66627. * @returns a promsie that resolves when the operation is complete
  66628. */
  66629. RawCubeTexture.prototype.updateRGBDAsync = function (data, sphericalPolynomial, lodScale, lodOffset) {
  66630. if (sphericalPolynomial === void 0) { sphericalPolynomial = null; }
  66631. if (lodScale === void 0) { lodScale = 0.8; }
  66632. if (lodOffset === void 0) { lodOffset = 0; }
  66633. return RawCubeTexture._UpdateRGBDAsync(this._texture, data, sphericalPolynomial, lodScale, lodOffset);
  66634. };
  66635. /**
  66636. * Clones the raw cube texture.
  66637. * @return a new cube texture
  66638. */
  66639. RawCubeTexture.prototype.clone = function () {
  66640. var _this = this;
  66641. return BABYLON.SerializationHelper.Clone(function () {
  66642. var scene = _this.getScene();
  66643. var internalTexture = _this._texture;
  66644. var texture = new RawCubeTexture(scene, internalTexture._bufferViewArray, internalTexture.width, internalTexture.format, internalTexture.type, internalTexture.generateMipMaps, internalTexture.invertY, internalTexture.samplingMode, internalTexture._compression);
  66645. if (internalTexture.dataSource === BABYLON.InternalTexture.DATASOURCE_CUBERAW_RGBD) {
  66646. texture.updateRGBDAsync(internalTexture._bufferViewArrayArray, internalTexture._sphericalPolynomial, internalTexture._lodGenerationScale, internalTexture._lodGenerationOffset);
  66647. }
  66648. return texture;
  66649. }, this);
  66650. };
  66651. /** @hidden */
  66652. RawCubeTexture._UpdateRGBDAsync = function (internalTexture, data, sphericalPolynomial, lodScale, lodOffset) {
  66653. internalTexture._dataSource = BABYLON.InternalTexture.DATASOURCE_CUBERAW_RGBD;
  66654. internalTexture._bufferViewArrayArray = data;
  66655. internalTexture._lodGenerationScale = lodScale;
  66656. internalTexture._lodGenerationOffset = lodOffset;
  66657. internalTexture._sphericalPolynomial = sphericalPolynomial;
  66658. return BABYLON.EnvironmentTextureTools.UploadLevelsAsync(internalTexture, data).then(function () {
  66659. internalTexture.isReady = true;
  66660. });
  66661. };
  66662. return RawCubeTexture;
  66663. }(BABYLON.CubeTexture));
  66664. BABYLON.RawCubeTexture = RawCubeTexture;
  66665. })(BABYLON || (BABYLON = {}));
  66666. //# sourceMappingURL=babylon.rawCubeTexture.js.map
  66667. var BABYLON;
  66668. (function (BABYLON) {
  66669. var RenderTargetTexture = /** @class */ (function (_super) {
  66670. __extends(RenderTargetTexture, _super);
  66671. /**
  66672. * Instantiate a render target texture. This is mainly to render of screen the scene to for instance apply post processse
  66673. * or used a shadow, depth texture...
  66674. * @param name The friendly name of the texture
  66675. * @param size The size of the RTT (number if square, or {with: number, height:number} or {ratio:} to define a ratio from the main scene)
  66676. * @param scene The scene the RTT belongs to. The latest created scene will be used if not precised.
  66677. * @param generateMipMaps True if mip maps need to be generated after render.
  66678. * @param doNotChangeAspectRatio True to not change the aspect ratio of the scene in the RTT
  66679. * @param type The type of the buffer in the RTT (int, half float, float...)
  66680. * @param isCube True if a cube texture needs to be created
  66681. * @param samplingMode The sampling mode to be usedwith the render target (Linear, Nearest...)
  66682. * @param generateDepthBuffer True to generate a depth buffer
  66683. * @param generateStencilBuffer True to generate a stencil buffer
  66684. * @param isMulti True if multiple textures need to be created (Draw Buffers)
  66685. * @param format The internal format of the buffer in the RTT (RED, RG, RGB, RGBA, ALPHA...)
  66686. */
  66687. function RenderTargetTexture(name, size, scene, generateMipMaps, doNotChangeAspectRatio, type, isCube, samplingMode, generateDepthBuffer, generateStencilBuffer, isMulti, format) {
  66688. if (doNotChangeAspectRatio === void 0) { doNotChangeAspectRatio = true; }
  66689. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  66690. if (isCube === void 0) { isCube = false; }
  66691. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  66692. if (generateDepthBuffer === void 0) { generateDepthBuffer = true; }
  66693. if (generateStencilBuffer === void 0) { generateStencilBuffer = false; }
  66694. if (isMulti === void 0) { isMulti = false; }
  66695. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  66696. var _this = _super.call(this, null, scene, !generateMipMaps) || this;
  66697. _this.isCube = isCube;
  66698. _this.renderParticles = true;
  66699. _this.renderSprites = false;
  66700. _this.coordinatesMode = BABYLON.Texture.PROJECTION_MODE;
  66701. _this.ignoreCameraViewport = false;
  66702. // Events
  66703. /**
  66704. * An event triggered when the texture is unbind.
  66705. */
  66706. _this.onBeforeBindObservable = new BABYLON.Observable();
  66707. /**
  66708. * An event triggered when the texture is unbind.
  66709. */
  66710. _this.onAfterUnbindObservable = new BABYLON.Observable();
  66711. /**
  66712. * An event triggered before rendering the texture
  66713. */
  66714. _this.onBeforeRenderObservable = new BABYLON.Observable();
  66715. /**
  66716. * An event triggered after rendering the texture
  66717. */
  66718. _this.onAfterRenderObservable = new BABYLON.Observable();
  66719. /**
  66720. * An event triggered after the texture clear
  66721. */
  66722. _this.onClearObservable = new BABYLON.Observable();
  66723. _this._currentRefreshId = -1;
  66724. _this._refreshRate = 1;
  66725. _this._samples = 1;
  66726. /**
  66727. * Gets or sets the center of the bounding box associated with the texture (when in cube mode)
  66728. * It must define where the camera used to render the texture is set
  66729. */
  66730. _this.boundingBoxPosition = BABYLON.Vector3.Zero();
  66731. scene = _this.getScene();
  66732. if (!scene) {
  66733. return _this;
  66734. }
  66735. _this.renderList = new Array();
  66736. _this._engine = scene.getEngine();
  66737. _this.name = name;
  66738. _this.isRenderTarget = true;
  66739. _this._initialSizeParameter = size;
  66740. _this._processSizeParameter(size);
  66741. _this._resizeObserver = _this.getScene().getEngine().onResizeObservable.add(function () {
  66742. });
  66743. _this._generateMipMaps = generateMipMaps ? true : false;
  66744. _this._doNotChangeAspectRatio = doNotChangeAspectRatio;
  66745. // Rendering groups
  66746. _this._renderingManager = new BABYLON.RenderingManager(scene);
  66747. _this._renderingManager._useSceneAutoClearSetup = true;
  66748. if (isMulti) {
  66749. return _this;
  66750. }
  66751. _this._renderTargetOptions = {
  66752. generateMipMaps: generateMipMaps,
  66753. type: type,
  66754. format: format,
  66755. samplingMode: samplingMode,
  66756. generateDepthBuffer: generateDepthBuffer,
  66757. generateStencilBuffer: generateStencilBuffer
  66758. };
  66759. if (samplingMode === BABYLON.Texture.NEAREST_SAMPLINGMODE) {
  66760. _this.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  66761. _this.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  66762. }
  66763. if (isCube) {
  66764. _this._texture = scene.getEngine().createRenderTargetCubeTexture(_this.getRenderSize(), _this._renderTargetOptions);
  66765. _this.coordinatesMode = BABYLON.Texture.INVCUBIC_MODE;
  66766. _this._textureMatrix = BABYLON.Matrix.Identity();
  66767. }
  66768. else {
  66769. _this._texture = scene.getEngine().createRenderTargetTexture(_this._size, _this._renderTargetOptions);
  66770. }
  66771. return _this;
  66772. }
  66773. Object.defineProperty(RenderTargetTexture, "REFRESHRATE_RENDER_ONCE", {
  66774. get: function () {
  66775. return RenderTargetTexture._REFRESHRATE_RENDER_ONCE;
  66776. },
  66777. enumerable: true,
  66778. configurable: true
  66779. });
  66780. Object.defineProperty(RenderTargetTexture, "REFRESHRATE_RENDER_ONEVERYFRAME", {
  66781. get: function () {
  66782. return RenderTargetTexture._REFRESHRATE_RENDER_ONEVERYFRAME;
  66783. },
  66784. enumerable: true,
  66785. configurable: true
  66786. });
  66787. Object.defineProperty(RenderTargetTexture, "REFRESHRATE_RENDER_ONEVERYTWOFRAMES", {
  66788. get: function () {
  66789. return RenderTargetTexture._REFRESHRATE_RENDER_ONEVERYTWOFRAMES;
  66790. },
  66791. enumerable: true,
  66792. configurable: true
  66793. });
  66794. Object.defineProperty(RenderTargetTexture.prototype, "renderList", {
  66795. /**
  66796. * Use this list to define the list of mesh you want to render.
  66797. */
  66798. get: function () {
  66799. return this._renderList;
  66800. },
  66801. set: function (value) {
  66802. this._renderList = value;
  66803. if (this._renderList) {
  66804. this._hookArray(this._renderList);
  66805. }
  66806. },
  66807. enumerable: true,
  66808. configurable: true
  66809. });
  66810. RenderTargetTexture.prototype._hookArray = function (array) {
  66811. var _this = this;
  66812. var oldPush = array.push;
  66813. array.push = function () {
  66814. var items = [];
  66815. for (var _i = 0; _i < arguments.length; _i++) {
  66816. items[_i] = arguments[_i];
  66817. }
  66818. var result = oldPush.apply(array, items);
  66819. _this.getScene().meshes.forEach(function (mesh) {
  66820. mesh._markSubMeshesAsLightDirty();
  66821. });
  66822. return result;
  66823. };
  66824. var oldSplice = array.splice;
  66825. array.splice = function (index, deleteCount) {
  66826. var deleted = oldSplice.apply(array, [index, deleteCount]);
  66827. _this.getScene().meshes.forEach(function (mesh) {
  66828. mesh._markSubMeshesAsLightDirty();
  66829. });
  66830. return deleted;
  66831. };
  66832. };
  66833. Object.defineProperty(RenderTargetTexture.prototype, "onAfterUnbind", {
  66834. set: function (callback) {
  66835. if (this._onAfterUnbindObserver) {
  66836. this.onAfterUnbindObservable.remove(this._onAfterUnbindObserver);
  66837. }
  66838. this._onAfterUnbindObserver = this.onAfterUnbindObservable.add(callback);
  66839. },
  66840. enumerable: true,
  66841. configurable: true
  66842. });
  66843. Object.defineProperty(RenderTargetTexture.prototype, "onBeforeRender", {
  66844. set: function (callback) {
  66845. if (this._onBeforeRenderObserver) {
  66846. this.onBeforeRenderObservable.remove(this._onBeforeRenderObserver);
  66847. }
  66848. this._onBeforeRenderObserver = this.onBeforeRenderObservable.add(callback);
  66849. },
  66850. enumerable: true,
  66851. configurable: true
  66852. });
  66853. Object.defineProperty(RenderTargetTexture.prototype, "onAfterRender", {
  66854. set: function (callback) {
  66855. if (this._onAfterRenderObserver) {
  66856. this.onAfterRenderObservable.remove(this._onAfterRenderObserver);
  66857. }
  66858. this._onAfterRenderObserver = this.onAfterRenderObservable.add(callback);
  66859. },
  66860. enumerable: true,
  66861. configurable: true
  66862. });
  66863. Object.defineProperty(RenderTargetTexture.prototype, "onClear", {
  66864. set: function (callback) {
  66865. if (this._onClearObserver) {
  66866. this.onClearObservable.remove(this._onClearObserver);
  66867. }
  66868. this._onClearObserver = this.onClearObservable.add(callback);
  66869. },
  66870. enumerable: true,
  66871. configurable: true
  66872. });
  66873. Object.defineProperty(RenderTargetTexture.prototype, "renderTargetOptions", {
  66874. get: function () {
  66875. return this._renderTargetOptions;
  66876. },
  66877. enumerable: true,
  66878. configurable: true
  66879. });
  66880. RenderTargetTexture.prototype._onRatioRescale = function () {
  66881. if (this._sizeRatio) {
  66882. this.resize(this._initialSizeParameter);
  66883. }
  66884. };
  66885. Object.defineProperty(RenderTargetTexture.prototype, "boundingBoxSize", {
  66886. get: function () {
  66887. return this._boundingBoxSize;
  66888. },
  66889. /**
  66890. * Gets or sets the size of the bounding box associated with the texture (when in cube mode)
  66891. * When defined, the cubemap will switch to local mode
  66892. * @see https://community.arm.com/graphics/b/blog/posts/reflections-based-on-local-cubemaps-in-unity
  66893. * @example https://www.babylonjs-playground.com/#RNASML
  66894. */
  66895. set: function (value) {
  66896. if (this._boundingBoxSize && this._boundingBoxSize.equals(value)) {
  66897. return;
  66898. }
  66899. this._boundingBoxSize = value;
  66900. var scene = this.getScene();
  66901. if (scene) {
  66902. scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  66903. }
  66904. },
  66905. enumerable: true,
  66906. configurable: true
  66907. });
  66908. /**
  66909. * Creates a depth stencil texture.
  66910. * This is only available in WebGL 2 or with the depth texture extension available.
  66911. * @param comparisonFunction Specifies the comparison function to set on the texture. If 0 or undefined, the texture is not in comparison mode
  66912. * @param bilinearFiltering Specifies whether or not bilinear filtering is enable on the texture
  66913. * @param generateStencil Specifies whether or not a stencil should be allocated in the texture
  66914. */
  66915. RenderTargetTexture.prototype.createDepthStencilTexture = function (comparisonFunction, bilinearFiltering, generateStencil) {
  66916. if (comparisonFunction === void 0) { comparisonFunction = 0; }
  66917. if (bilinearFiltering === void 0) { bilinearFiltering = true; }
  66918. if (generateStencil === void 0) { generateStencil = false; }
  66919. if (!this.getScene()) {
  66920. return;
  66921. }
  66922. var engine = this.getScene().getEngine();
  66923. this.depthStencilTexture = engine.createDepthStencilTexture(this._size, {
  66924. bilinearFiltering: bilinearFiltering,
  66925. comparisonFunction: comparisonFunction,
  66926. generateStencil: generateStencil,
  66927. isCube: this.isCube
  66928. });
  66929. engine.setFrameBufferDepthStencilTexture(this);
  66930. };
  66931. RenderTargetTexture.prototype._processSizeParameter = function (size) {
  66932. if (size.ratio) {
  66933. this._sizeRatio = size.ratio;
  66934. this._size = {
  66935. width: this._bestReflectionRenderTargetDimension(this._engine.getRenderWidth(), this._sizeRatio),
  66936. height: this._bestReflectionRenderTargetDimension(this._engine.getRenderHeight(), this._sizeRatio)
  66937. };
  66938. }
  66939. else {
  66940. this._size = size;
  66941. }
  66942. };
  66943. Object.defineProperty(RenderTargetTexture.prototype, "samples", {
  66944. get: function () {
  66945. return this._samples;
  66946. },
  66947. set: function (value) {
  66948. if (this._samples === value) {
  66949. return;
  66950. }
  66951. var scene = this.getScene();
  66952. if (!scene) {
  66953. return;
  66954. }
  66955. this._samples = scene.getEngine().updateRenderTargetTextureSampleCount(this._texture, value);
  66956. },
  66957. enumerable: true,
  66958. configurable: true
  66959. });
  66960. RenderTargetTexture.prototype.resetRefreshCounter = function () {
  66961. this._currentRefreshId = -1;
  66962. };
  66963. Object.defineProperty(RenderTargetTexture.prototype, "refreshRate", {
  66964. get: function () {
  66965. return this._refreshRate;
  66966. },
  66967. // Use 0 to render just once, 1 to render on every frame, 2 to render every two frames and so on...
  66968. set: function (value) {
  66969. this._refreshRate = value;
  66970. this.resetRefreshCounter();
  66971. },
  66972. enumerable: true,
  66973. configurable: true
  66974. });
  66975. RenderTargetTexture.prototype.addPostProcess = function (postProcess) {
  66976. if (!this._postProcessManager) {
  66977. var scene = this.getScene();
  66978. if (!scene) {
  66979. return;
  66980. }
  66981. this._postProcessManager = new BABYLON.PostProcessManager(scene);
  66982. this._postProcesses = new Array();
  66983. }
  66984. this._postProcesses.push(postProcess);
  66985. this._postProcesses[0].autoClear = false;
  66986. };
  66987. RenderTargetTexture.prototype.clearPostProcesses = function (dispose) {
  66988. if (!this._postProcesses) {
  66989. return;
  66990. }
  66991. if (dispose) {
  66992. for (var _i = 0, _a = this._postProcesses; _i < _a.length; _i++) {
  66993. var postProcess = _a[_i];
  66994. postProcess.dispose();
  66995. }
  66996. }
  66997. this._postProcesses = [];
  66998. };
  66999. RenderTargetTexture.prototype.removePostProcess = function (postProcess) {
  67000. if (!this._postProcesses) {
  67001. return;
  67002. }
  67003. var index = this._postProcesses.indexOf(postProcess);
  67004. if (index === -1) {
  67005. return;
  67006. }
  67007. this._postProcesses.splice(index, 1);
  67008. if (this._postProcesses.length > 0) {
  67009. this._postProcesses[0].autoClear = false;
  67010. }
  67011. };
  67012. /** @hidden */
  67013. RenderTargetTexture.prototype._shouldRender = function () {
  67014. if (this._currentRefreshId === -1) { // At least render once
  67015. this._currentRefreshId = 1;
  67016. return true;
  67017. }
  67018. if (this.refreshRate === this._currentRefreshId) {
  67019. this._currentRefreshId = 1;
  67020. return true;
  67021. }
  67022. this._currentRefreshId++;
  67023. return false;
  67024. };
  67025. RenderTargetTexture.prototype.getRenderSize = function () {
  67026. if (this._size.width) {
  67027. return this._size.width;
  67028. }
  67029. return this._size;
  67030. };
  67031. RenderTargetTexture.prototype.getRenderWidth = function () {
  67032. if (this._size.width) {
  67033. return this._size.width;
  67034. }
  67035. return this._size;
  67036. };
  67037. RenderTargetTexture.prototype.getRenderHeight = function () {
  67038. if (this._size.width) {
  67039. return this._size.height;
  67040. }
  67041. return this._size;
  67042. };
  67043. Object.defineProperty(RenderTargetTexture.prototype, "canRescale", {
  67044. get: function () {
  67045. return true;
  67046. },
  67047. enumerable: true,
  67048. configurable: true
  67049. });
  67050. RenderTargetTexture.prototype.scale = function (ratio) {
  67051. var newSize = this.getRenderSize() * ratio;
  67052. this.resize(newSize);
  67053. };
  67054. RenderTargetTexture.prototype.getReflectionTextureMatrix = function () {
  67055. if (this.isCube) {
  67056. return this._textureMatrix;
  67057. }
  67058. return _super.prototype.getReflectionTextureMatrix.call(this);
  67059. };
  67060. RenderTargetTexture.prototype.resize = function (size) {
  67061. this.releaseInternalTexture();
  67062. var scene = this.getScene();
  67063. if (!scene) {
  67064. return;
  67065. }
  67066. this._processSizeParameter(size);
  67067. if (this.isCube) {
  67068. this._texture = scene.getEngine().createRenderTargetCubeTexture(this.getRenderSize(), this._renderTargetOptions);
  67069. }
  67070. else {
  67071. this._texture = scene.getEngine().createRenderTargetTexture(this._size, this._renderTargetOptions);
  67072. }
  67073. };
  67074. RenderTargetTexture.prototype.render = function (useCameraPostProcess, dumpForDebug) {
  67075. if (useCameraPostProcess === void 0) { useCameraPostProcess = false; }
  67076. if (dumpForDebug === void 0) { dumpForDebug = false; }
  67077. var scene = this.getScene();
  67078. if (!scene) {
  67079. return;
  67080. }
  67081. var engine = scene.getEngine();
  67082. if (this.useCameraPostProcesses !== undefined) {
  67083. useCameraPostProcess = this.useCameraPostProcesses;
  67084. }
  67085. if (this._waitingRenderList) {
  67086. this.renderList = [];
  67087. for (var index = 0; index < this._waitingRenderList.length; index++) {
  67088. var id = this._waitingRenderList[index];
  67089. var mesh_1 = scene.getMeshByID(id);
  67090. if (mesh_1) {
  67091. this.renderList.push(mesh_1);
  67092. }
  67093. }
  67094. delete this._waitingRenderList;
  67095. }
  67096. // Is predicate defined?
  67097. if (this.renderListPredicate) {
  67098. if (this.renderList) {
  67099. this.renderList.splice(0); // Clear previous renderList
  67100. }
  67101. else {
  67102. this.renderList = [];
  67103. }
  67104. var scene = this.getScene();
  67105. if (!scene) {
  67106. return;
  67107. }
  67108. var sceneMeshes = scene.meshes;
  67109. for (var index = 0; index < sceneMeshes.length; index++) {
  67110. var mesh = sceneMeshes[index];
  67111. if (this.renderListPredicate(mesh)) {
  67112. this.renderList.push(mesh);
  67113. }
  67114. }
  67115. }
  67116. this.onBeforeBindObservable.notifyObservers(this);
  67117. // Set custom projection.
  67118. // Needs to be before binding to prevent changing the aspect ratio.
  67119. var camera;
  67120. if (this.activeCamera) {
  67121. camera = this.activeCamera;
  67122. engine.setViewport(this.activeCamera.viewport, this.getRenderWidth(), this.getRenderHeight());
  67123. if (this.activeCamera !== scene.activeCamera) {
  67124. scene.setTransformMatrix(this.activeCamera.getViewMatrix(), this.activeCamera.getProjectionMatrix(true));
  67125. }
  67126. }
  67127. else {
  67128. camera = scene.activeCamera;
  67129. if (camera) {
  67130. engine.setViewport(camera.viewport, this.getRenderWidth(), this.getRenderHeight());
  67131. }
  67132. }
  67133. // Prepare renderingManager
  67134. this._renderingManager.reset();
  67135. var currentRenderList = this.renderList ? this.renderList : scene.getActiveMeshes().data;
  67136. var currentRenderListLength = this.renderList ? this.renderList.length : scene.getActiveMeshes().length;
  67137. var sceneRenderId = scene.getRenderId();
  67138. for (var meshIndex = 0; meshIndex < currentRenderListLength; meshIndex++) {
  67139. var mesh = currentRenderList[meshIndex];
  67140. if (mesh) {
  67141. if (!mesh.isReady(this.refreshRate === 0)) {
  67142. this.resetRefreshCounter();
  67143. continue;
  67144. }
  67145. mesh._preActivateForIntermediateRendering(sceneRenderId);
  67146. var isMasked = void 0;
  67147. if (!this.renderList && camera) {
  67148. isMasked = ((mesh.layerMask & camera.layerMask) === 0);
  67149. }
  67150. else {
  67151. isMasked = false;
  67152. }
  67153. if (mesh.isEnabled() && mesh.isVisible && mesh.subMeshes && !isMasked) {
  67154. mesh._activate(sceneRenderId);
  67155. for (var subIndex = 0; subIndex < mesh.subMeshes.length; subIndex++) {
  67156. var subMesh = mesh.subMeshes[subIndex];
  67157. scene._activeIndices.addCount(subMesh.indexCount, false);
  67158. this._renderingManager.dispatch(subMesh, mesh);
  67159. }
  67160. }
  67161. }
  67162. }
  67163. for (var particleIndex = 0; particleIndex < scene.particleSystems.length; particleIndex++) {
  67164. var particleSystem = scene.particleSystems[particleIndex];
  67165. var emitter = particleSystem.emitter;
  67166. if (!particleSystem.isStarted() || !emitter || !emitter.position || !emitter.isEnabled()) {
  67167. continue;
  67168. }
  67169. if (currentRenderList.indexOf(emitter) >= 0) {
  67170. this._renderingManager.dispatchParticles(particleSystem);
  67171. }
  67172. }
  67173. if (this.isCube) {
  67174. for (var face = 0; face < 6; face++) {
  67175. this.renderToTarget(face, currentRenderList, currentRenderListLength, useCameraPostProcess, dumpForDebug);
  67176. scene.incrementRenderId();
  67177. scene.resetCachedMaterial();
  67178. }
  67179. }
  67180. else {
  67181. this.renderToTarget(0, currentRenderList, currentRenderListLength, useCameraPostProcess, dumpForDebug);
  67182. }
  67183. this.onAfterUnbindObservable.notifyObservers(this);
  67184. if (scene.activeCamera) {
  67185. if (this.activeCamera && this.activeCamera !== scene.activeCamera) {
  67186. scene.setTransformMatrix(scene.activeCamera.getViewMatrix(), scene.activeCamera.getProjectionMatrix(true));
  67187. }
  67188. engine.setViewport(scene.activeCamera.viewport);
  67189. }
  67190. scene.resetCachedMaterial();
  67191. };
  67192. RenderTargetTexture.prototype._bestReflectionRenderTargetDimension = function (renderDimension, scale) {
  67193. var minimum = 128;
  67194. var x = renderDimension * scale;
  67195. var curved = BABYLON.Tools.NearestPOT(x + (minimum * minimum / (minimum + x)));
  67196. // Ensure we don't exceed the render dimension (while staying POT)
  67197. return Math.min(BABYLON.Tools.FloorPOT(renderDimension), curved);
  67198. };
  67199. RenderTargetTexture.prototype.unbindFrameBuffer = function (engine, faceIndex) {
  67200. var _this = this;
  67201. if (!this._texture) {
  67202. return;
  67203. }
  67204. engine.unBindFramebuffer(this._texture, this.isCube, function () {
  67205. _this.onAfterRenderObservable.notifyObservers(faceIndex);
  67206. });
  67207. };
  67208. RenderTargetTexture.prototype.renderToTarget = function (faceIndex, currentRenderList, currentRenderListLength, useCameraPostProcess, dumpForDebug) {
  67209. var scene = this.getScene();
  67210. if (!scene) {
  67211. return;
  67212. }
  67213. var engine = scene.getEngine();
  67214. if (!this._texture) {
  67215. return;
  67216. }
  67217. // Bind
  67218. if (this._postProcessManager) {
  67219. this._postProcessManager._prepareFrame(this._texture, this._postProcesses);
  67220. }
  67221. else if (!useCameraPostProcess || !scene.postProcessManager._prepareFrame(this._texture)) {
  67222. if (this._texture) {
  67223. engine.bindFramebuffer(this._texture, this.isCube ? faceIndex : undefined, undefined, undefined, this.ignoreCameraViewport, this.depthStencilTexture ? this.depthStencilTexture : undefined);
  67224. }
  67225. }
  67226. this.onBeforeRenderObservable.notifyObservers(faceIndex);
  67227. // Clear
  67228. if (this.onClearObservable.hasObservers()) {
  67229. this.onClearObservable.notifyObservers(engine);
  67230. }
  67231. else {
  67232. engine.clear(this.clearColor || scene.clearColor, true, true, true);
  67233. }
  67234. if (!this._doNotChangeAspectRatio) {
  67235. scene.updateTransformMatrix(true);
  67236. }
  67237. // Render
  67238. this._renderingManager.render(this.customRenderFunction, currentRenderList, this.renderParticles, this.renderSprites);
  67239. if (this._postProcessManager) {
  67240. this._postProcessManager._finalizeFrame(false, this._texture, faceIndex, this._postProcesses, this.ignoreCameraViewport);
  67241. }
  67242. else if (useCameraPostProcess) {
  67243. scene.postProcessManager._finalizeFrame(false, this._texture, faceIndex);
  67244. }
  67245. if (!this._doNotChangeAspectRatio) {
  67246. scene.updateTransformMatrix(true);
  67247. }
  67248. // Dump ?
  67249. if (dumpForDebug) {
  67250. BABYLON.Tools.DumpFramebuffer(this.getRenderWidth(), this.getRenderHeight(), engine);
  67251. }
  67252. // Unbind
  67253. if (!this.isCube || faceIndex === 5) {
  67254. if (this.isCube) {
  67255. if (faceIndex === 5) {
  67256. engine.generateMipMapsForCubemap(this._texture);
  67257. }
  67258. }
  67259. this.unbindFrameBuffer(engine, faceIndex);
  67260. }
  67261. else {
  67262. this.onAfterRenderObservable.notifyObservers(faceIndex);
  67263. }
  67264. };
  67265. /**
  67266. * Overrides the default sort function applied in the renderging group to prepare the meshes.
  67267. * This allowed control for front to back rendering or reversly depending of the special needs.
  67268. *
  67269. * @param renderingGroupId The rendering group id corresponding to its index
  67270. * @param opaqueSortCompareFn The opaque queue comparison function use to sort.
  67271. * @param alphaTestSortCompareFn The alpha test queue comparison function use to sort.
  67272. * @param transparentSortCompareFn The transparent queue comparison function use to sort.
  67273. */
  67274. RenderTargetTexture.prototype.setRenderingOrder = function (renderingGroupId, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn) {
  67275. if (opaqueSortCompareFn === void 0) { opaqueSortCompareFn = null; }
  67276. if (alphaTestSortCompareFn === void 0) { alphaTestSortCompareFn = null; }
  67277. if (transparentSortCompareFn === void 0) { transparentSortCompareFn = null; }
  67278. this._renderingManager.setRenderingOrder(renderingGroupId, opaqueSortCompareFn, alphaTestSortCompareFn, transparentSortCompareFn);
  67279. };
  67280. /**
  67281. * Specifies whether or not the stencil and depth buffer are cleared between two rendering groups.
  67282. *
  67283. * @param renderingGroupId The rendering group id corresponding to its index
  67284. * @param autoClearDepthStencil Automatically clears depth and stencil between groups if true.
  67285. */
  67286. RenderTargetTexture.prototype.setRenderingAutoClearDepthStencil = function (renderingGroupId, autoClearDepthStencil) {
  67287. this._renderingManager.setRenderingAutoClearDepthStencil(renderingGroupId, autoClearDepthStencil);
  67288. this._renderingManager._useSceneAutoClearSetup = false;
  67289. };
  67290. RenderTargetTexture.prototype.clone = function () {
  67291. var textureSize = this.getSize();
  67292. var newTexture = new RenderTargetTexture(this.name, textureSize, this.getScene(), this._renderTargetOptions.generateMipMaps, this._doNotChangeAspectRatio, this._renderTargetOptions.type, this.isCube, this._renderTargetOptions.samplingMode, this._renderTargetOptions.generateDepthBuffer, this._renderTargetOptions.generateStencilBuffer);
  67293. // Base texture
  67294. newTexture.hasAlpha = this.hasAlpha;
  67295. newTexture.level = this.level;
  67296. // RenderTarget Texture
  67297. newTexture.coordinatesMode = this.coordinatesMode;
  67298. if (this.renderList) {
  67299. newTexture.renderList = this.renderList.slice(0);
  67300. }
  67301. return newTexture;
  67302. };
  67303. RenderTargetTexture.prototype.serialize = function () {
  67304. if (!this.name) {
  67305. return null;
  67306. }
  67307. var serializationObject = _super.prototype.serialize.call(this);
  67308. serializationObject.renderTargetSize = this.getRenderSize();
  67309. serializationObject.renderList = [];
  67310. if (this.renderList) {
  67311. for (var index = 0; index < this.renderList.length; index++) {
  67312. serializationObject.renderList.push(this.renderList[index].id);
  67313. }
  67314. }
  67315. return serializationObject;
  67316. };
  67317. // This will remove the attached framebuffer objects. The texture will not be able to be used as render target anymore
  67318. RenderTargetTexture.prototype.disposeFramebufferObjects = function () {
  67319. var objBuffer = this.getInternalTexture();
  67320. var scene = this.getScene();
  67321. if (objBuffer && scene) {
  67322. scene.getEngine()._releaseFramebufferObjects(objBuffer);
  67323. }
  67324. };
  67325. RenderTargetTexture.prototype.dispose = function () {
  67326. if (this._postProcessManager) {
  67327. this._postProcessManager.dispose();
  67328. this._postProcessManager = null;
  67329. }
  67330. this.clearPostProcesses(true);
  67331. if (this._resizeObserver) {
  67332. this.getScene().getEngine().onResizeObservable.remove(this._resizeObserver);
  67333. this._resizeObserver = null;
  67334. }
  67335. this.renderList = null;
  67336. // Remove from custom render targets
  67337. var scene = this.getScene();
  67338. if (!scene) {
  67339. return;
  67340. }
  67341. var index = scene.customRenderTargets.indexOf(this);
  67342. if (index >= 0) {
  67343. scene.customRenderTargets.splice(index, 1);
  67344. }
  67345. for (var _i = 0, _a = scene.cameras; _i < _a.length; _i++) {
  67346. var camera = _a[_i];
  67347. index = camera.customRenderTargets.indexOf(this);
  67348. if (index >= 0) {
  67349. camera.customRenderTargets.splice(index, 1);
  67350. }
  67351. }
  67352. _super.prototype.dispose.call(this);
  67353. };
  67354. /** @hidden */
  67355. RenderTargetTexture.prototype._rebuild = function () {
  67356. if (this.refreshRate === RenderTargetTexture.REFRESHRATE_RENDER_ONCE) {
  67357. this.refreshRate = RenderTargetTexture.REFRESHRATE_RENDER_ONCE;
  67358. }
  67359. if (this._postProcessManager) {
  67360. this._postProcessManager._rebuild();
  67361. }
  67362. };
  67363. /**
  67364. * Clear the info related to rendering groups preventing retention point in material dispose.
  67365. */
  67366. RenderTargetTexture.prototype.freeRenderingGroups = function () {
  67367. if (this._renderingManager) {
  67368. this._renderingManager.freeRenderingGroups();
  67369. }
  67370. };
  67371. RenderTargetTexture._REFRESHRATE_RENDER_ONCE = 0;
  67372. RenderTargetTexture._REFRESHRATE_RENDER_ONEVERYFRAME = 1;
  67373. RenderTargetTexture._REFRESHRATE_RENDER_ONEVERYTWOFRAMES = 2;
  67374. return RenderTargetTexture;
  67375. }(BABYLON.Texture));
  67376. BABYLON.RenderTargetTexture = RenderTargetTexture;
  67377. })(BABYLON || (BABYLON = {}));
  67378. //# sourceMappingURL=babylon.renderTargetTexture.js.map
  67379. var BABYLON;
  67380. (function (BABYLON) {
  67381. ;
  67382. var MultiRenderTarget = /** @class */ (function (_super) {
  67383. __extends(MultiRenderTarget, _super);
  67384. function MultiRenderTarget(name, size, count, scene, options) {
  67385. var _this = this;
  67386. var generateMipMaps = options && options.generateMipMaps ? options.generateMipMaps : false;
  67387. var generateDepthTexture = options && options.generateDepthTexture ? options.generateDepthTexture : false;
  67388. var doNotChangeAspectRatio = !options || options.doNotChangeAspectRatio === undefined ? true : options.doNotChangeAspectRatio;
  67389. _this = _super.call(this, name, size, scene, generateMipMaps, doNotChangeAspectRatio) || this;
  67390. _this._engine = scene.getEngine();
  67391. if (!_this.isSupported) {
  67392. _this.dispose();
  67393. return;
  67394. }
  67395. var types = [];
  67396. var samplingModes = [];
  67397. for (var i = 0; i < count; i++) {
  67398. if (options && options.types && options.types[i] !== undefined) {
  67399. types.push(options.types[i]);
  67400. }
  67401. else {
  67402. types.push(options && options.defaultType ? options.defaultType : BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  67403. }
  67404. if (options && options.samplingModes && options.samplingModes[i] !== undefined) {
  67405. samplingModes.push(options.samplingModes[i]);
  67406. }
  67407. else {
  67408. samplingModes.push(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  67409. }
  67410. }
  67411. var generateDepthBuffer = !options || options.generateDepthBuffer === undefined ? true : options.generateDepthBuffer;
  67412. var generateStencilBuffer = !options || options.generateStencilBuffer === undefined ? false : options.generateStencilBuffer;
  67413. _this._size = size;
  67414. _this._multiRenderTargetOptions = {
  67415. samplingModes: samplingModes,
  67416. generateMipMaps: generateMipMaps,
  67417. generateDepthBuffer: generateDepthBuffer,
  67418. generateStencilBuffer: generateStencilBuffer,
  67419. generateDepthTexture: generateDepthTexture,
  67420. types: types,
  67421. textureCount: count
  67422. };
  67423. _this._createInternalTextures();
  67424. _this._createTextures();
  67425. return _this;
  67426. }
  67427. Object.defineProperty(MultiRenderTarget.prototype, "isSupported", {
  67428. get: function () {
  67429. return this._engine.webGLVersion > 1 || this._engine.getCaps().drawBuffersExtension;
  67430. },
  67431. enumerable: true,
  67432. configurable: true
  67433. });
  67434. Object.defineProperty(MultiRenderTarget.prototype, "textures", {
  67435. get: function () {
  67436. return this._textures;
  67437. },
  67438. enumerable: true,
  67439. configurable: true
  67440. });
  67441. Object.defineProperty(MultiRenderTarget.prototype, "depthTexture", {
  67442. get: function () {
  67443. return this._textures[this._textures.length - 1];
  67444. },
  67445. enumerable: true,
  67446. configurable: true
  67447. });
  67448. Object.defineProperty(MultiRenderTarget.prototype, "wrapU", {
  67449. set: function (wrap) {
  67450. if (this._textures) {
  67451. for (var i = 0; i < this._textures.length; i++) {
  67452. this._textures[i].wrapU = wrap;
  67453. }
  67454. }
  67455. },
  67456. enumerable: true,
  67457. configurable: true
  67458. });
  67459. Object.defineProperty(MultiRenderTarget.prototype, "wrapV", {
  67460. set: function (wrap) {
  67461. if (this._textures) {
  67462. for (var i = 0; i < this._textures.length; i++) {
  67463. this._textures[i].wrapV = wrap;
  67464. }
  67465. }
  67466. },
  67467. enumerable: true,
  67468. configurable: true
  67469. });
  67470. /** @hidden */
  67471. MultiRenderTarget.prototype._rebuild = function () {
  67472. this.releaseInternalTextures();
  67473. this._createInternalTextures();
  67474. for (var i = 0; i < this._internalTextures.length; i++) {
  67475. var texture = this._textures[i];
  67476. texture._texture = this._internalTextures[i];
  67477. }
  67478. // Keeps references to frame buffer and stencil/depth buffer
  67479. this._texture = this._internalTextures[0];
  67480. };
  67481. MultiRenderTarget.prototype._createInternalTextures = function () {
  67482. this._internalTextures = this._engine.createMultipleRenderTarget(this._size, this._multiRenderTargetOptions);
  67483. };
  67484. MultiRenderTarget.prototype._createTextures = function () {
  67485. this._textures = [];
  67486. for (var i = 0; i < this._internalTextures.length; i++) {
  67487. var texture = new BABYLON.Texture(null, this.getScene());
  67488. texture._texture = this._internalTextures[i];
  67489. this._textures.push(texture);
  67490. }
  67491. // Keeps references to frame buffer and stencil/depth buffer
  67492. this._texture = this._internalTextures[0];
  67493. };
  67494. Object.defineProperty(MultiRenderTarget.prototype, "samples", {
  67495. get: function () {
  67496. return this._samples;
  67497. },
  67498. set: function (value) {
  67499. if (this._samples === value) {
  67500. return;
  67501. }
  67502. this._samples = this._engine.updateMultipleRenderTargetTextureSampleCount(this._internalTextures, value);
  67503. },
  67504. enumerable: true,
  67505. configurable: true
  67506. });
  67507. MultiRenderTarget.prototype.resize = function (size) {
  67508. this.releaseInternalTextures();
  67509. this._internalTextures = this._engine.createMultipleRenderTarget(size, this._multiRenderTargetOptions);
  67510. this._createInternalTextures();
  67511. };
  67512. MultiRenderTarget.prototype.unbindFrameBuffer = function (engine, faceIndex) {
  67513. var _this = this;
  67514. engine.unBindMultiColorAttachmentFramebuffer(this._internalTextures, this.isCube, function () {
  67515. _this.onAfterRenderObservable.notifyObservers(faceIndex);
  67516. });
  67517. };
  67518. MultiRenderTarget.prototype.dispose = function () {
  67519. this.releaseInternalTextures();
  67520. _super.prototype.dispose.call(this);
  67521. };
  67522. MultiRenderTarget.prototype.releaseInternalTextures = function () {
  67523. if (!this._internalTextures) {
  67524. return;
  67525. }
  67526. for (var i = this._internalTextures.length - 1; i >= 0; i--) {
  67527. if (this._internalTextures[i] !== undefined) {
  67528. this._internalTextures[i].dispose();
  67529. this._internalTextures.splice(i, 1);
  67530. }
  67531. }
  67532. };
  67533. return MultiRenderTarget;
  67534. }(BABYLON.RenderTargetTexture));
  67535. BABYLON.MultiRenderTarget = MultiRenderTarget;
  67536. })(BABYLON || (BABYLON = {}));
  67537. //# sourceMappingURL=babylon.multiRenderTarget.js.map
  67538. var BABYLON;
  67539. (function (BABYLON) {
  67540. var MirrorTexture = /** @class */ (function (_super) {
  67541. __extends(MirrorTexture, _super);
  67542. function MirrorTexture(name, size, scene, generateMipMaps, type, samplingMode, generateDepthBuffer) {
  67543. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  67544. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  67545. if (generateDepthBuffer === void 0) { generateDepthBuffer = true; }
  67546. var _this = _super.call(this, name, size, scene, generateMipMaps, true, type, false, samplingMode, generateDepthBuffer) || this;
  67547. _this.scene = scene;
  67548. _this.mirrorPlane = new BABYLON.Plane(0, 1, 0, 1);
  67549. _this._transformMatrix = BABYLON.Matrix.Zero();
  67550. _this._mirrorMatrix = BABYLON.Matrix.Zero();
  67551. _this._adaptiveBlurKernel = 0;
  67552. _this._blurKernelX = 0;
  67553. _this._blurKernelY = 0;
  67554. _this._blurRatio = 1.0;
  67555. _this.ignoreCameraViewport = true;
  67556. _this._updateGammaSpace();
  67557. _this._imageProcessingConfigChangeObserver = scene.imageProcessingConfiguration.onUpdateParameters.add(function () {
  67558. _this._updateGammaSpace;
  67559. });
  67560. _this.onBeforeRenderObservable.add(function () {
  67561. BABYLON.Matrix.ReflectionToRef(_this.mirrorPlane, _this._mirrorMatrix);
  67562. _this._savedViewMatrix = scene.getViewMatrix();
  67563. _this._mirrorMatrix.multiplyToRef(_this._savedViewMatrix, _this._transformMatrix);
  67564. scene.setTransformMatrix(_this._transformMatrix, scene.getProjectionMatrix());
  67565. scene.clipPlane = _this.mirrorPlane;
  67566. scene.getEngine().cullBackFaces = false;
  67567. scene._mirroredCameraPosition = BABYLON.Vector3.TransformCoordinates(scene.activeCamera.globalPosition, _this._mirrorMatrix);
  67568. });
  67569. _this.onAfterRenderObservable.add(function () {
  67570. scene.setTransformMatrix(_this._savedViewMatrix, scene.getProjectionMatrix());
  67571. scene.getEngine().cullBackFaces = true;
  67572. scene._mirroredCameraPosition = null;
  67573. delete scene.clipPlane;
  67574. });
  67575. return _this;
  67576. }
  67577. Object.defineProperty(MirrorTexture.prototype, "blurRatio", {
  67578. get: function () {
  67579. return this._blurRatio;
  67580. },
  67581. set: function (value) {
  67582. if (this._blurRatio === value) {
  67583. return;
  67584. }
  67585. this._blurRatio = value;
  67586. this._preparePostProcesses();
  67587. },
  67588. enumerable: true,
  67589. configurable: true
  67590. });
  67591. Object.defineProperty(MirrorTexture.prototype, "adaptiveBlurKernel", {
  67592. set: function (value) {
  67593. this._adaptiveBlurKernel = value;
  67594. this._autoComputeBlurKernel();
  67595. },
  67596. enumerable: true,
  67597. configurable: true
  67598. });
  67599. Object.defineProperty(MirrorTexture.prototype, "blurKernel", {
  67600. set: function (value) {
  67601. this.blurKernelX = value;
  67602. this.blurKernelY = value;
  67603. },
  67604. enumerable: true,
  67605. configurable: true
  67606. });
  67607. Object.defineProperty(MirrorTexture.prototype, "blurKernelX", {
  67608. get: function () {
  67609. return this._blurKernelX;
  67610. },
  67611. set: function (value) {
  67612. if (this._blurKernelX === value) {
  67613. return;
  67614. }
  67615. this._blurKernelX = value;
  67616. this._preparePostProcesses();
  67617. },
  67618. enumerable: true,
  67619. configurable: true
  67620. });
  67621. Object.defineProperty(MirrorTexture.prototype, "blurKernelY", {
  67622. get: function () {
  67623. return this._blurKernelY;
  67624. },
  67625. set: function (value) {
  67626. if (this._blurKernelY === value) {
  67627. return;
  67628. }
  67629. this._blurKernelY = value;
  67630. this._preparePostProcesses();
  67631. },
  67632. enumerable: true,
  67633. configurable: true
  67634. });
  67635. MirrorTexture.prototype._autoComputeBlurKernel = function () {
  67636. var engine = this.getScene().getEngine();
  67637. var dw = this.getRenderWidth() / engine.getRenderWidth();
  67638. var dh = this.getRenderHeight() / engine.getRenderHeight();
  67639. this.blurKernelX = this._adaptiveBlurKernel * dw;
  67640. this.blurKernelY = this._adaptiveBlurKernel * dh;
  67641. };
  67642. MirrorTexture.prototype._onRatioRescale = function () {
  67643. if (this._sizeRatio) {
  67644. this.resize(this._initialSizeParameter);
  67645. if (!this._adaptiveBlurKernel) {
  67646. this._preparePostProcesses();
  67647. }
  67648. }
  67649. if (this._adaptiveBlurKernel) {
  67650. this._autoComputeBlurKernel();
  67651. }
  67652. };
  67653. MirrorTexture.prototype._updateGammaSpace = function () {
  67654. this.gammaSpace = !this.scene.imageProcessingConfiguration.isEnabled || !this.scene.imageProcessingConfiguration.applyByPostProcess;
  67655. };
  67656. MirrorTexture.prototype._preparePostProcesses = function () {
  67657. this.clearPostProcesses(true);
  67658. if (this._blurKernelX && this._blurKernelY) {
  67659. var engine = this.getScene().getEngine();
  67660. var textureType = engine.getCaps().textureFloatRender ? BABYLON.Engine.TEXTURETYPE_FLOAT : BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  67661. this._blurX = new BABYLON.BlurPostProcess("horizontal blur", new BABYLON.Vector2(1.0, 0), this._blurKernelX, this._blurRatio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, textureType);
  67662. this._blurX.autoClear = false;
  67663. if (this._blurRatio === 1 && this.samples < 2 && this._texture) {
  67664. this._blurX.inputTexture = this._texture;
  67665. }
  67666. else {
  67667. this._blurX.alwaysForcePOT = true;
  67668. }
  67669. this._blurY = new BABYLON.BlurPostProcess("vertical blur", new BABYLON.Vector2(0, 1.0), this._blurKernelY, this._blurRatio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, textureType);
  67670. this._blurY.autoClear = false;
  67671. this._blurY.alwaysForcePOT = this._blurRatio !== 1;
  67672. this.addPostProcess(this._blurX);
  67673. this.addPostProcess(this._blurY);
  67674. }
  67675. else {
  67676. if (this._blurY) {
  67677. this.removePostProcess(this._blurY);
  67678. this._blurY.dispose();
  67679. this._blurY = null;
  67680. }
  67681. if (this._blurX) {
  67682. this.removePostProcess(this._blurX);
  67683. this._blurX.dispose();
  67684. this._blurX = null;
  67685. }
  67686. }
  67687. };
  67688. MirrorTexture.prototype.clone = function () {
  67689. var scene = this.getScene();
  67690. if (!scene) {
  67691. return this;
  67692. }
  67693. var textureSize = this.getSize();
  67694. var newTexture = new MirrorTexture(this.name, textureSize.width, scene, this._renderTargetOptions.generateMipMaps, this._renderTargetOptions.type, this._renderTargetOptions.samplingMode, this._renderTargetOptions.generateDepthBuffer);
  67695. // Base texture
  67696. newTexture.hasAlpha = this.hasAlpha;
  67697. newTexture.level = this.level;
  67698. // Mirror Texture
  67699. newTexture.mirrorPlane = this.mirrorPlane.clone();
  67700. if (this.renderList) {
  67701. newTexture.renderList = this.renderList.slice(0);
  67702. }
  67703. return newTexture;
  67704. };
  67705. MirrorTexture.prototype.serialize = function () {
  67706. if (!this.name) {
  67707. return null;
  67708. }
  67709. var serializationObject = _super.prototype.serialize.call(this);
  67710. serializationObject.mirrorPlane = this.mirrorPlane.asArray();
  67711. return serializationObject;
  67712. };
  67713. MirrorTexture.prototype.dispose = function () {
  67714. _super.prototype.dispose.call(this);
  67715. this.scene.imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingConfigChangeObserver);
  67716. };
  67717. return MirrorTexture;
  67718. }(BABYLON.RenderTargetTexture));
  67719. BABYLON.MirrorTexture = MirrorTexture;
  67720. })(BABYLON || (BABYLON = {}));
  67721. //# sourceMappingURL=babylon.mirrorTexture.js.map
  67722. var BABYLON;
  67723. (function (BABYLON) {
  67724. /**
  67725. * Creates a refraction texture used by refraction channel of the standard material.
  67726. * @param name the texture name
  67727. * @param size size of the underlying texture
  67728. * @param scene root scene
  67729. */
  67730. var RefractionTexture = /** @class */ (function (_super) {
  67731. __extends(RefractionTexture, _super);
  67732. function RefractionTexture(name, size, scene, generateMipMaps) {
  67733. var _this = _super.call(this, name, size, scene, generateMipMaps, true) || this;
  67734. _this.refractionPlane = new BABYLON.Plane(0, 1, 0, 1);
  67735. _this.depth = 2.0;
  67736. _this.onBeforeRenderObservable.add(function () {
  67737. scene.clipPlane = _this.refractionPlane;
  67738. });
  67739. _this.onAfterRenderObservable.add(function () {
  67740. delete scene.clipPlane;
  67741. });
  67742. return _this;
  67743. }
  67744. RefractionTexture.prototype.clone = function () {
  67745. var scene = this.getScene();
  67746. if (!scene) {
  67747. return this;
  67748. }
  67749. var textureSize = this.getSize();
  67750. var newTexture = new RefractionTexture(this.name, textureSize.width, scene, this._generateMipMaps);
  67751. // Base texture
  67752. newTexture.hasAlpha = this.hasAlpha;
  67753. newTexture.level = this.level;
  67754. // Refraction Texture
  67755. newTexture.refractionPlane = this.refractionPlane.clone();
  67756. if (this.renderList) {
  67757. newTexture.renderList = this.renderList.slice(0);
  67758. }
  67759. newTexture.depth = this.depth;
  67760. return newTexture;
  67761. };
  67762. RefractionTexture.prototype.serialize = function () {
  67763. if (!this.name) {
  67764. return null;
  67765. }
  67766. var serializationObject = _super.prototype.serialize.call(this);
  67767. serializationObject.mirrorPlane = this.refractionPlane.asArray();
  67768. serializationObject.depth = this.depth;
  67769. return serializationObject;
  67770. };
  67771. return RefractionTexture;
  67772. }(BABYLON.RenderTargetTexture));
  67773. BABYLON.RefractionTexture = RefractionTexture;
  67774. })(BABYLON || (BABYLON = {}));
  67775. //# sourceMappingURL=babylon.refractionTexture.js.map
  67776. var BABYLON;
  67777. (function (BABYLON) {
  67778. /**
  67779. * A class extending {BABYLON.Texture} allowing drawing on a texture
  67780. * @see http://doc.babylonjs.com/how_to/dynamictexture
  67781. */
  67782. var DynamicTexture = /** @class */ (function (_super) {
  67783. __extends(DynamicTexture, _super);
  67784. /**
  67785. * Creates a {BABYLON.DynamicTexture}
  67786. * @param name defines the name of the texture
  67787. * @param options provides 3 alternatives for width and height of texture, a canvas, object with width and height properties, number for both width and height
  67788. * @param scene defines the scene where you want the texture
  67789. * @param generateMipMaps defines the use of MinMaps or not (default is false)
  67790. * @param samplingMode defines the sampling mode to use (default is BABYLON.Texture.TRILINEAR_SAMPLINGMODE)
  67791. * @param format defines the texture format to use (default is BABYLON.Engine.TEXTUREFORMAT_RGBA)
  67792. */
  67793. function DynamicTexture(name, options, scene, generateMipMaps, samplingMode, format) {
  67794. if (scene === void 0) { scene = null; }
  67795. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  67796. if (format === void 0) { format = BABYLON.Engine.TEXTUREFORMAT_RGBA; }
  67797. var _this = _super.call(this, null, scene, !generateMipMaps, undefined, samplingMode, undefined, undefined, undefined, undefined, format) || this;
  67798. _this.name = name;
  67799. _this._engine = _this.getScene().getEngine();
  67800. _this.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  67801. _this.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  67802. _this._generateMipMaps = generateMipMaps;
  67803. if (options.getContext) {
  67804. _this._canvas = options;
  67805. _this._texture = _this._engine.createDynamicTexture(options.width, options.height, generateMipMaps, samplingMode);
  67806. }
  67807. else {
  67808. _this._canvas = document.createElement("canvas");
  67809. if (options.width || options.width === 0) {
  67810. _this._texture = _this._engine.createDynamicTexture(options.width, options.height, generateMipMaps, samplingMode);
  67811. }
  67812. else {
  67813. _this._texture = _this._engine.createDynamicTexture(options, options, generateMipMaps, samplingMode);
  67814. }
  67815. }
  67816. var textureSize = _this.getSize();
  67817. _this._canvas.width = textureSize.width;
  67818. _this._canvas.height = textureSize.height;
  67819. _this._context = _this._canvas.getContext("2d");
  67820. return _this;
  67821. }
  67822. Object.defineProperty(DynamicTexture.prototype, "canRescale", {
  67823. /**
  67824. * Gets the current state of canRescale
  67825. */
  67826. get: function () {
  67827. return true;
  67828. },
  67829. enumerable: true,
  67830. configurable: true
  67831. });
  67832. DynamicTexture.prototype._recreate = function (textureSize) {
  67833. this._canvas.width = textureSize.width;
  67834. this._canvas.height = textureSize.height;
  67835. this.releaseInternalTexture();
  67836. this._texture = this._engine.createDynamicTexture(textureSize.width, textureSize.height, this._generateMipMaps, this._samplingMode);
  67837. };
  67838. /**
  67839. * Scales the texture
  67840. * @param ratio the scale factor to apply to both width and height
  67841. */
  67842. DynamicTexture.prototype.scale = function (ratio) {
  67843. var textureSize = this.getSize();
  67844. textureSize.width *= ratio;
  67845. textureSize.height *= ratio;
  67846. this._recreate(textureSize);
  67847. };
  67848. /**
  67849. * Resizes the texture
  67850. * @param width the new width
  67851. * @param height the new height
  67852. */
  67853. DynamicTexture.prototype.scaleTo = function (width, height) {
  67854. var textureSize = this.getSize();
  67855. textureSize.width = width;
  67856. textureSize.height = height;
  67857. this._recreate(textureSize);
  67858. };
  67859. /**
  67860. * Gets the context of the canvas used by the texture
  67861. * @returns the canvas context of the dynamic texture
  67862. */
  67863. DynamicTexture.prototype.getContext = function () {
  67864. return this._context;
  67865. };
  67866. /**
  67867. * Clears the texture
  67868. */
  67869. DynamicTexture.prototype.clear = function () {
  67870. var size = this.getSize();
  67871. this._context.fillRect(0, 0, size.width, size.height);
  67872. };
  67873. /**
  67874. * Updates the texture
  67875. * @param invertY defines the direction for the Y axis (default is true - y increases downwards)
  67876. * @param premulAlpha defines if alpha is stored as premultiplied (default is false)
  67877. */
  67878. DynamicTexture.prototype.update = function (invertY, premulAlpha) {
  67879. if (premulAlpha === void 0) { premulAlpha = false; }
  67880. this._engine.updateDynamicTexture(this._texture, this._canvas, invertY === undefined ? true : invertY, premulAlpha, this._format || undefined);
  67881. };
  67882. /**
  67883. * Draws text onto the texture
  67884. * @param text defines the text to be drawn
  67885. * @param x defines the placement of the text from the left
  67886. * @param y defines the placement of the text from the top when invertY is true and from the bottom when false
  67887. * @param font defines the font to be used with font-style, font-size, font-name
  67888. * @param color defines the color used for the text
  67889. * @param clearColor defines the color for the canvas, use null to not overwrite canvas
  67890. * @param invertY defines the direction for the Y axis (default is true - y increases downwards)
  67891. * @param update defines whether texture is immediately update (default is true)
  67892. */
  67893. DynamicTexture.prototype.drawText = function (text, x, y, font, color, clearColor, invertY, update) {
  67894. if (update === void 0) { update = true; }
  67895. var size = this.getSize();
  67896. if (clearColor) {
  67897. this._context.fillStyle = clearColor;
  67898. this._context.fillRect(0, 0, size.width, size.height);
  67899. }
  67900. this._context.font = font;
  67901. if (x === null || x === undefined) {
  67902. var textSize = this._context.measureText(text);
  67903. x = (size.width - textSize.width) / 2;
  67904. }
  67905. if (y === null || y === undefined) {
  67906. var fontSize = parseInt((font.replace(/\D/g, '')));
  67907. y = (size.height / 2) + (fontSize / 3.65);
  67908. }
  67909. this._context.fillStyle = color;
  67910. this._context.fillText(text, x, y);
  67911. if (update) {
  67912. this.update(invertY);
  67913. }
  67914. };
  67915. /**
  67916. * Clones the texture
  67917. * @returns the clone of the texture.
  67918. */
  67919. DynamicTexture.prototype.clone = function () {
  67920. var scene = this.getScene();
  67921. if (!scene) {
  67922. return this;
  67923. }
  67924. var textureSize = this.getSize();
  67925. var newTexture = new DynamicTexture(this.name, textureSize, scene, this._generateMipMaps);
  67926. // Base texture
  67927. newTexture.hasAlpha = this.hasAlpha;
  67928. newTexture.level = this.level;
  67929. // Dynamic Texture
  67930. newTexture.wrapU = this.wrapU;
  67931. newTexture.wrapV = this.wrapV;
  67932. return newTexture;
  67933. };
  67934. /**
  67935. * Serializes the dynamic texture. The scene should be ready before the dynamic texture is serialized
  67936. * @returns a serialized dynamic texture object
  67937. */
  67938. DynamicTexture.prototype.serialize = function () {
  67939. var scene = this.getScene();
  67940. if (scene && !scene.isReady()) {
  67941. BABYLON.Tools.Warn("The scene must be ready before serializing the dynamic texture");
  67942. }
  67943. var serializationObject = _super.prototype.serialize.call(this);
  67944. serializationObject.base64String = this._canvas.toDataURL();
  67945. serializationObject.invertY = this._invertY;
  67946. serializationObject.samplingMode = this.samplingMode;
  67947. return serializationObject;
  67948. };
  67949. /** @hidden */
  67950. DynamicTexture.prototype._rebuild = function () {
  67951. this.update();
  67952. };
  67953. return DynamicTexture;
  67954. }(BABYLON.Texture));
  67955. BABYLON.DynamicTexture = DynamicTexture;
  67956. })(BABYLON || (BABYLON = {}));
  67957. //# sourceMappingURL=babylon.dynamicTexture.js.map
  67958. var BABYLON;
  67959. (function (BABYLON) {
  67960. var VideoTexture = /** @class */ (function (_super) {
  67961. __extends(VideoTexture, _super);
  67962. /**
  67963. * Creates a video texture.
  67964. * Sample : https://doc.babylonjs.com/how_to/video_texture
  67965. * @param {string | null} name optional name, will detect from video source, if not defined
  67966. * @param {(string | string[] | HTMLVideoElement)} src can be used to provide an url, array of urls or an already setup HTML video element.
  67967. * @param {BABYLON.Scene} scene is obviously the current scene.
  67968. * @param {boolean} generateMipMaps can be used to turn on mipmaps (Can be expensive for videoTextures because they are often updated).
  67969. * @param {boolean} invertY is false by default but can be used to invert video on Y axis
  67970. * @param {number} samplingMode controls the sampling method and is set to TRILINEAR_SAMPLINGMODE by default
  67971. * @param {VideoTextureSettings} [settings] allows finer control over video usage
  67972. */
  67973. function VideoTexture(name, src, scene, generateMipMaps, invertY, samplingMode, settings) {
  67974. if (generateMipMaps === void 0) { generateMipMaps = false; }
  67975. if (invertY === void 0) { invertY = false; }
  67976. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  67977. if (settings === void 0) { settings = {
  67978. autoPlay: true,
  67979. loop: true,
  67980. autoUpdateTexture: true,
  67981. }; }
  67982. var _this = _super.call(this, null, scene, !generateMipMaps, invertY) || this;
  67983. _this._onUserActionRequestedObservable = null;
  67984. _this._stillImageCaptured = false;
  67985. _this._poster = false;
  67986. _this._createInternalTexture = function () {
  67987. if (_this._texture != null) {
  67988. if (_this._poster) {
  67989. _this._texture.dispose();
  67990. _this._poster = false;
  67991. }
  67992. else {
  67993. return;
  67994. }
  67995. }
  67996. if (!_this._engine.needPOTTextures ||
  67997. (BABYLON.Tools.IsExponentOfTwo(_this.video.videoWidth) && BABYLON.Tools.IsExponentOfTwo(_this.video.videoHeight))) {
  67998. _this.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  67999. _this.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  68000. }
  68001. else {
  68002. _this.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  68003. _this.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  68004. _this._generateMipMaps = false;
  68005. }
  68006. _this._texture = _this._engine.createDynamicTexture(_this.video.videoWidth, _this.video.videoHeight, _this._generateMipMaps, _this._samplingMode);
  68007. if (!_this.video.autoplay) {
  68008. var oldHandler_1 = _this.video.onplaying;
  68009. var error_1 = false;
  68010. _this.video.onplaying = function () {
  68011. _this.video.onplaying = oldHandler_1;
  68012. _this._texture.isReady = true;
  68013. _this._updateInternalTexture();
  68014. if (!error_1) {
  68015. _this.video.pause();
  68016. }
  68017. if (_this._onLoadObservable && _this._onLoadObservable.hasObservers()) {
  68018. _this.onLoadObservable.notifyObservers(_this);
  68019. }
  68020. };
  68021. var playing = _this.video.play();
  68022. if (playing) {
  68023. playing.then(function () {
  68024. // Everything is good.
  68025. })
  68026. .catch(function () {
  68027. error_1 = true;
  68028. // On Chrome for instance, new policies might prevent playing without user interaction.
  68029. if (_this._onUserActionRequestedObservable && _this._onUserActionRequestedObservable.hasObservers()) {
  68030. _this._onUserActionRequestedObservable.notifyObservers(_this);
  68031. }
  68032. });
  68033. }
  68034. else {
  68035. _this.video.onplaying = oldHandler_1;
  68036. _this._texture.isReady = true;
  68037. _this._updateInternalTexture();
  68038. if (_this._onLoadObservable && _this._onLoadObservable.hasObservers()) {
  68039. _this.onLoadObservable.notifyObservers(_this);
  68040. }
  68041. }
  68042. }
  68043. else {
  68044. _this._texture.isReady = true;
  68045. _this._updateInternalTexture();
  68046. if (_this._onLoadObservable && _this._onLoadObservable.hasObservers()) {
  68047. _this.onLoadObservable.notifyObservers(_this);
  68048. }
  68049. }
  68050. };
  68051. _this.reset = function () {
  68052. if (_this._texture == null) {
  68053. return;
  68054. }
  68055. if (!_this._poster) {
  68056. _this._texture.dispose();
  68057. _this._texture = null;
  68058. }
  68059. };
  68060. _this._updateInternalTexture = function (e) {
  68061. if (_this._texture == null || !_this._texture.isReady) {
  68062. return;
  68063. }
  68064. if (_this.video.readyState < _this.video.HAVE_CURRENT_DATA) {
  68065. return;
  68066. }
  68067. _this._engine.updateVideoTexture(_this._texture, _this.video, _this._invertY);
  68068. };
  68069. _this._engine = _this.getScene().getEngine();
  68070. _this._generateMipMaps = generateMipMaps;
  68071. _this._samplingMode = samplingMode;
  68072. _this.autoUpdateTexture = settings.autoUpdateTexture;
  68073. _this.name = name || _this._getName(src);
  68074. _this.video = _this._getVideo(src);
  68075. if (settings.poster) {
  68076. _this.video.poster = settings.poster;
  68077. }
  68078. if (settings.autoPlay !== undefined) {
  68079. _this.video.autoplay = settings.autoPlay;
  68080. }
  68081. if (settings.loop !== undefined) {
  68082. _this.video.loop = settings.loop;
  68083. }
  68084. _this.video.setAttribute("playsinline", "");
  68085. _this.video.addEventListener("canplay", _this._createInternalTexture);
  68086. _this.video.addEventListener("paused", _this._updateInternalTexture);
  68087. _this.video.addEventListener("seeked", _this._updateInternalTexture);
  68088. _this.video.addEventListener("emptied", _this.reset);
  68089. if (_this.video.readyState >= _this.video.HAVE_CURRENT_DATA) {
  68090. _this._createInternalTexture();
  68091. }
  68092. if (settings.poster) {
  68093. _this._texture = _this._engine.createTexture(settings.poster, false, true, scene);
  68094. _this._poster = true;
  68095. }
  68096. return _this;
  68097. }
  68098. Object.defineProperty(VideoTexture.prototype, "onUserActionRequestedObservable", {
  68099. get: function () {
  68100. if (!this._onUserActionRequestedObservable) {
  68101. this._onUserActionRequestedObservable = new BABYLON.Observable();
  68102. }
  68103. return this._onUserActionRequestedObservable;
  68104. },
  68105. enumerable: true,
  68106. configurable: true
  68107. });
  68108. VideoTexture.prototype._getName = function (src) {
  68109. if (src instanceof HTMLVideoElement) {
  68110. return src.currentSrc;
  68111. }
  68112. if (typeof src === "object") {
  68113. return src.toString();
  68114. }
  68115. return src;
  68116. };
  68117. ;
  68118. VideoTexture.prototype._getVideo = function (src) {
  68119. if (src instanceof HTMLVideoElement) {
  68120. BABYLON.Tools.SetCorsBehavior(src.currentSrc, src);
  68121. return src;
  68122. }
  68123. var video = document.createElement("video");
  68124. if (typeof src === "string") {
  68125. BABYLON.Tools.SetCorsBehavior(src, video);
  68126. video.src = src;
  68127. }
  68128. else {
  68129. BABYLON.Tools.SetCorsBehavior(src[0], video);
  68130. src.forEach(function (url) {
  68131. var source = document.createElement("source");
  68132. source.src = url;
  68133. video.appendChild(source);
  68134. });
  68135. }
  68136. return video;
  68137. };
  68138. ;
  68139. /**
  68140. * @hidden Internal method to initiate `update`.
  68141. */
  68142. VideoTexture.prototype._rebuild = function () {
  68143. this.update();
  68144. };
  68145. /**
  68146. * Update Texture in the `auto` mode. Does not do anything if `settings.autoUpdateTexture` is false.
  68147. */
  68148. VideoTexture.prototype.update = function () {
  68149. if (!this.autoUpdateTexture) {
  68150. // Expecting user to call `updateTexture` manually
  68151. return;
  68152. }
  68153. this.updateTexture(true);
  68154. };
  68155. /**
  68156. * Update Texture in `manual` mode. Does not do anything if not visible or paused.
  68157. * @param isVisible Visibility state, detected by user using `scene.getActiveMeshes()` or othervise.
  68158. */
  68159. VideoTexture.prototype.updateTexture = function (isVisible) {
  68160. if (!isVisible) {
  68161. return;
  68162. }
  68163. if (this.video.paused && this._stillImageCaptured) {
  68164. return;
  68165. }
  68166. this._stillImageCaptured = true;
  68167. this._updateInternalTexture();
  68168. };
  68169. /**
  68170. * Change video content. Changing video instance or setting multiple urls (as in constructor) is not supported.
  68171. * @param url New url.
  68172. */
  68173. VideoTexture.prototype.updateURL = function (url) {
  68174. this.video.src = url;
  68175. };
  68176. VideoTexture.prototype.dispose = function () {
  68177. _super.prototype.dispose.call(this);
  68178. if (this._onUserActionRequestedObservable) {
  68179. this._onUserActionRequestedObservable.clear();
  68180. this._onUserActionRequestedObservable = null;
  68181. }
  68182. this.video.removeEventListener("canplay", this._createInternalTexture);
  68183. this.video.removeEventListener("paused", this._updateInternalTexture);
  68184. this.video.removeEventListener("seeked", this._updateInternalTexture);
  68185. this.video.removeEventListener("emptied", this.reset);
  68186. this.video.pause();
  68187. };
  68188. VideoTexture.CreateFromWebCam = function (scene, onReady, constraints) {
  68189. var video = document.createElement("video");
  68190. video.setAttribute('autoplay', '');
  68191. video.setAttribute('muted', '');
  68192. video.setAttribute('playsinline', '');
  68193. var constraintsDeviceId;
  68194. if (constraints && constraints.deviceId) {
  68195. constraintsDeviceId = {
  68196. exact: constraints.deviceId,
  68197. };
  68198. }
  68199. window.URL = window.URL || window.webkitURL || window.mozURL || window.msURL;
  68200. if (navigator.mediaDevices) {
  68201. navigator.mediaDevices.getUserMedia({ video: constraints })
  68202. .then(function (stream) {
  68203. if (video.mozSrcObject !== undefined) {
  68204. // hack for Firefox < 19
  68205. video.mozSrcObject = stream;
  68206. }
  68207. else {
  68208. video.srcObject = stream;
  68209. }
  68210. var onPlaying = function () {
  68211. if (onReady) {
  68212. onReady(new VideoTexture("video", video, scene, true, true));
  68213. }
  68214. video.removeEventListener("playing", onPlaying);
  68215. };
  68216. video.addEventListener("playing", onPlaying);
  68217. video.play();
  68218. })
  68219. .catch(function (err) {
  68220. BABYLON.Tools.Error(err.name);
  68221. });
  68222. }
  68223. else {
  68224. navigator.getUserMedia =
  68225. navigator.getUserMedia ||
  68226. navigator.webkitGetUserMedia ||
  68227. navigator.mozGetUserMedia ||
  68228. navigator.msGetUserMedia;
  68229. if (navigator.getUserMedia) {
  68230. navigator.getUserMedia({
  68231. video: {
  68232. deviceId: constraintsDeviceId,
  68233. width: {
  68234. min: (constraints && constraints.minWidth) || 256,
  68235. max: (constraints && constraints.maxWidth) || 640,
  68236. },
  68237. height: {
  68238. min: (constraints && constraints.minHeight) || 256,
  68239. max: (constraints && constraints.maxHeight) || 480,
  68240. },
  68241. },
  68242. }, function (stream) {
  68243. if (video.mozSrcObject !== undefined) {
  68244. // hack for Firefox < 19
  68245. video.mozSrcObject = stream;
  68246. }
  68247. else {
  68248. video.src = (window.URL && window.URL.createObjectURL(stream)) || stream;
  68249. }
  68250. video.play();
  68251. if (onReady) {
  68252. onReady(new VideoTexture("video", video, scene, true, true));
  68253. }
  68254. }, function (e) {
  68255. BABYLON.Tools.Error(e.name);
  68256. });
  68257. }
  68258. }
  68259. };
  68260. return VideoTexture;
  68261. }(BABYLON.Texture));
  68262. BABYLON.VideoTexture = VideoTexture;
  68263. })(BABYLON || (BABYLON = {}));
  68264. //# sourceMappingURL=babylon.videoTexture.js.map
  68265. var BABYLON;
  68266. (function (BABYLON) {
  68267. var RawTexture = /** @class */ (function (_super) {
  68268. __extends(RawTexture, _super);
  68269. function RawTexture(data, width, height, format, scene, generateMipMaps, invertY, samplingMode, type) {
  68270. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68271. if (invertY === void 0) { invertY = false; }
  68272. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68273. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  68274. var _this = _super.call(this, null, scene, !generateMipMaps, invertY) || this;
  68275. _this.format = format;
  68276. _this._engine = scene.getEngine();
  68277. _this._texture = scene.getEngine().createRawTexture(data, width, height, format, generateMipMaps, invertY, samplingMode, null, type);
  68278. _this.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  68279. _this.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  68280. return _this;
  68281. }
  68282. RawTexture.prototype.update = function (data) {
  68283. this._engine.updateRawTexture(this._texture, data, this._texture.format, this._texture.invertY, undefined, this._texture.type);
  68284. };
  68285. // Statics
  68286. RawTexture.CreateLuminanceTexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode) {
  68287. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68288. if (invertY === void 0) { invertY = false; }
  68289. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68290. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_LUMINANCE, scene, generateMipMaps, invertY, samplingMode);
  68291. };
  68292. RawTexture.CreateLuminanceAlphaTexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode) {
  68293. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68294. if (invertY === void 0) { invertY = false; }
  68295. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68296. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_LUMINANCE_ALPHA, scene, generateMipMaps, invertY, samplingMode);
  68297. };
  68298. RawTexture.CreateAlphaTexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode) {
  68299. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68300. if (invertY === void 0) { invertY = false; }
  68301. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68302. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_ALPHA, scene, generateMipMaps, invertY, samplingMode);
  68303. };
  68304. RawTexture.CreateRGBTexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode, type) {
  68305. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68306. if (invertY === void 0) { invertY = false; }
  68307. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68308. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  68309. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_RGB, scene, generateMipMaps, invertY, samplingMode, type);
  68310. };
  68311. RawTexture.CreateRGBATexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode, type) {
  68312. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68313. if (invertY === void 0) { invertY = false; }
  68314. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68315. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  68316. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_RGBA, scene, generateMipMaps, invertY, samplingMode, type);
  68317. };
  68318. RawTexture.CreateRTexture = function (data, width, height, scene, generateMipMaps, invertY, samplingMode, type) {
  68319. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68320. if (invertY === void 0) { invertY = false; }
  68321. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68322. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_FLOAT; }
  68323. return new RawTexture(data, width, height, BABYLON.Engine.TEXTUREFORMAT_R, scene, generateMipMaps, invertY, samplingMode, type);
  68324. };
  68325. return RawTexture;
  68326. }(BABYLON.Texture));
  68327. BABYLON.RawTexture = RawTexture;
  68328. })(BABYLON || (BABYLON = {}));
  68329. //# sourceMappingURL=babylon.rawTexture.js.map
  68330. var BABYLON;
  68331. (function (BABYLON) {
  68332. /**
  68333. * Class used to store 3D textures containing user data
  68334. */
  68335. var RawTexture3D = /** @class */ (function (_super) {
  68336. __extends(RawTexture3D, _super);
  68337. /**
  68338. * Create a new RawTexture3D
  68339. * @param data defines the data of the texture
  68340. * @param width defines the width of the texture
  68341. * @param height defines the height of the texture
  68342. * @param depth defines the depth of the texture
  68343. * @param format defines the texture format to use
  68344. * @param scene defines the hosting scene
  68345. * @param generateMipMaps defines a boolean indicating if mip levels should be generated (true by default)
  68346. * @param invertY defines if texture must be stored with Y axis inverted
  68347. * @param samplingMode defines the sampling mode to use (BABYLON.Texture.TRILINEAR_SAMPLINGMODE by default)
  68348. * @param textureType defines the texture Type (Engine.TEXTURETYPE_UNSIGNED_INT, Engine.TEXTURETYPE_FLOAT...)
  68349. */
  68350. function RawTexture3D(data, width, height, depth,
  68351. /** Gets or sets the texture format to use */
  68352. format, scene, generateMipMaps, invertY, samplingMode, textureType) {
  68353. if (generateMipMaps === void 0) { generateMipMaps = true; }
  68354. if (invertY === void 0) { invertY = false; }
  68355. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  68356. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  68357. var _this = _super.call(this, null, scene, !generateMipMaps, invertY) || this;
  68358. _this.format = format;
  68359. _this._engine = scene.getEngine();
  68360. _this._texture = scene.getEngine().createRawTexture3D(data, width, height, depth, format, generateMipMaps, invertY, samplingMode, undefined, textureType);
  68361. _this.is3D = true;
  68362. return _this;
  68363. }
  68364. /**
  68365. * Update the texture with new data
  68366. * @param data defines the data to store in the texture
  68367. */
  68368. RawTexture3D.prototype.update = function (data) {
  68369. if (!this._texture) {
  68370. return;
  68371. }
  68372. this._engine.updateRawTexture3D(this._texture, data, this._texture.format, this._texture.invertY, undefined, this._texture.type);
  68373. };
  68374. return RawTexture3D;
  68375. }(BABYLON.Texture));
  68376. BABYLON.RawTexture3D = RawTexture3D;
  68377. })(BABYLON || (BABYLON = {}));
  68378. //# sourceMappingURL=babylon.rawTexture3D.js.map
  68379. var BABYLON;
  68380. (function (BABYLON) {
  68381. /**
  68382. * PostProcessManager is used to manage one or more post processes or post process pipelines
  68383. * See https://doc.babylonjs.com/how_to/how_to_use_postprocesses
  68384. */
  68385. var PostProcessManager = /** @class */ (function () {
  68386. /**
  68387. * Creates a new instance PostProcess
  68388. * @param scene The scene that the post process is associated with.
  68389. */
  68390. function PostProcessManager(scene) {
  68391. this._vertexBuffers = {};
  68392. this._scene = scene;
  68393. }
  68394. PostProcessManager.prototype._prepareBuffers = function () {
  68395. if (this._vertexBuffers[BABYLON.VertexBuffer.PositionKind]) {
  68396. return;
  68397. }
  68398. // VBO
  68399. var vertices = [];
  68400. vertices.push(1, 1);
  68401. vertices.push(-1, 1);
  68402. vertices.push(-1, -1);
  68403. vertices.push(1, -1);
  68404. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(this._scene.getEngine(), vertices, BABYLON.VertexBuffer.PositionKind, false, false, 2);
  68405. this._buildIndexBuffer();
  68406. };
  68407. PostProcessManager.prototype._buildIndexBuffer = function () {
  68408. // Indices
  68409. var indices = [];
  68410. indices.push(0);
  68411. indices.push(1);
  68412. indices.push(2);
  68413. indices.push(0);
  68414. indices.push(2);
  68415. indices.push(3);
  68416. this._indexBuffer = this._scene.getEngine().createIndexBuffer(indices);
  68417. };
  68418. /**
  68419. * Rebuilds the vertex buffers of the manager.
  68420. * @hidden
  68421. */
  68422. PostProcessManager.prototype._rebuild = function () {
  68423. var vb = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  68424. if (!vb) {
  68425. return;
  68426. }
  68427. vb._rebuild();
  68428. this._buildIndexBuffer();
  68429. };
  68430. // Methods
  68431. /**
  68432. * Prepares a frame to be run through a post process.
  68433. * @param sourceTexture The input texture to the post procesess. (default: null)
  68434. * @param postProcesses An array of post processes to be run. (default: null)
  68435. * @returns True if the post processes were able to be run.
  68436. * @hidden
  68437. */
  68438. PostProcessManager.prototype._prepareFrame = function (sourceTexture, postProcesses) {
  68439. if (sourceTexture === void 0) { sourceTexture = null; }
  68440. if (postProcesses === void 0) { postProcesses = null; }
  68441. var camera = this._scene.activeCamera;
  68442. if (!camera) {
  68443. return false;
  68444. }
  68445. var postProcesses = postProcesses || camera._postProcesses.filter(function (pp) { return pp != null; });
  68446. if (!postProcesses || postProcesses.length === 0 || !this._scene.postProcessesEnabled) {
  68447. return false;
  68448. }
  68449. postProcesses[0].activate(camera, sourceTexture, postProcesses !== null && postProcesses !== undefined);
  68450. return true;
  68451. };
  68452. /**
  68453. * Manually render a set of post processes to a texture.
  68454. * @param postProcesses An array of post processes to be run.
  68455. * @param targetTexture The target texture to render to.
  68456. * @param forceFullscreenViewport force gl.viewport to be full screen eg. 0,0,textureWidth,textureHeight
  68457. * @param faceIndex defines the face to render to if a cubemap is defined as the target
  68458. * @param lodLevel defines which lod of the texture to render to
  68459. */
  68460. PostProcessManager.prototype.directRender = function (postProcesses, targetTexture, forceFullscreenViewport, faceIndex, lodLevel) {
  68461. if (targetTexture === void 0) { targetTexture = null; }
  68462. if (forceFullscreenViewport === void 0) { forceFullscreenViewport = false; }
  68463. if (faceIndex === void 0) { faceIndex = 0; }
  68464. if (lodLevel === void 0) { lodLevel = 0; }
  68465. var engine = this._scene.getEngine();
  68466. for (var index = 0; index < postProcesses.length; index++) {
  68467. if (index < postProcesses.length - 1) {
  68468. postProcesses[index + 1].activate(this._scene.activeCamera, targetTexture);
  68469. }
  68470. else {
  68471. if (targetTexture) {
  68472. engine.bindFramebuffer(targetTexture, faceIndex, undefined, undefined, forceFullscreenViewport, undefined, lodLevel);
  68473. }
  68474. else {
  68475. engine.restoreDefaultFramebuffer();
  68476. }
  68477. }
  68478. var pp = postProcesses[index];
  68479. var effect = pp.apply();
  68480. if (effect) {
  68481. pp.onBeforeRenderObservable.notifyObservers(effect);
  68482. // VBOs
  68483. this._prepareBuffers();
  68484. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, effect);
  68485. // Draw order
  68486. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  68487. pp.onAfterRenderObservable.notifyObservers(effect);
  68488. }
  68489. }
  68490. // Restore depth buffer
  68491. engine.setDepthBuffer(true);
  68492. engine.setDepthWrite(true);
  68493. };
  68494. /**
  68495. * Finalize the result of the output of the postprocesses.
  68496. * @param doNotPresent If true the result will not be displayed to the screen.
  68497. * @param targetTexture The target texture to render to.
  68498. * @param faceIndex The index of the face to bind the target texture to.
  68499. * @param postProcesses The array of post processes to render.
  68500. * @param forceFullscreenViewport force gl.viewport to be full screen eg. 0,0,textureWidth,textureHeight (default: false)
  68501. * @hidden
  68502. */
  68503. PostProcessManager.prototype._finalizeFrame = function (doNotPresent, targetTexture, faceIndex, postProcesses, forceFullscreenViewport) {
  68504. if (forceFullscreenViewport === void 0) { forceFullscreenViewport = false; }
  68505. var camera = this._scene.activeCamera;
  68506. if (!camera) {
  68507. return;
  68508. }
  68509. postProcesses = postProcesses || camera._postProcesses.filter(function (pp) { return pp != null; });
  68510. if (postProcesses.length === 0 || !this._scene.postProcessesEnabled) {
  68511. return;
  68512. }
  68513. var engine = this._scene.getEngine();
  68514. for (var index = 0, len = postProcesses.length; index < len; index++) {
  68515. var pp = postProcesses[index];
  68516. if (index < len - 1) {
  68517. pp._outputTexture = postProcesses[index + 1].activate(camera, targetTexture);
  68518. }
  68519. else {
  68520. if (targetTexture) {
  68521. engine.bindFramebuffer(targetTexture, faceIndex, undefined, undefined, forceFullscreenViewport);
  68522. pp._outputTexture = targetTexture;
  68523. }
  68524. else {
  68525. engine.restoreDefaultFramebuffer();
  68526. pp._outputTexture = null;
  68527. }
  68528. }
  68529. if (doNotPresent) {
  68530. break;
  68531. }
  68532. var effect = pp.apply();
  68533. if (effect) {
  68534. pp.onBeforeRenderObservable.notifyObservers(effect);
  68535. // VBOs
  68536. this._prepareBuffers();
  68537. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, effect);
  68538. // Draw order
  68539. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  68540. pp.onAfterRenderObservable.notifyObservers(effect);
  68541. }
  68542. }
  68543. // Restore states
  68544. engine.setDepthBuffer(true);
  68545. engine.setDepthWrite(true);
  68546. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  68547. };
  68548. /**
  68549. * Disposes of the post process manager.
  68550. */
  68551. PostProcessManager.prototype.dispose = function () {
  68552. var buffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  68553. if (buffer) {
  68554. buffer.dispose();
  68555. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  68556. }
  68557. if (this._indexBuffer) {
  68558. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  68559. this._indexBuffer = null;
  68560. }
  68561. };
  68562. return PostProcessManager;
  68563. }());
  68564. BABYLON.PostProcessManager = PostProcessManager;
  68565. })(BABYLON || (BABYLON = {}));
  68566. //# sourceMappingURL=babylon.postProcessManager.js.map
  68567. var BABYLON;
  68568. (function (BABYLON) {
  68569. /**
  68570. * PostProcess can be used to apply a shader to a texture after it has been rendered
  68571. * See https://doc.babylonjs.com/how_to/how_to_use_postprocesses
  68572. */
  68573. var PostProcess = /** @class */ (function () {
  68574. /**
  68575. * Creates a new instance PostProcess
  68576. * @param name The name of the PostProcess.
  68577. * @param fragmentUrl The url of the fragment shader to be used.
  68578. * @param parameters Array of the names of uniform non-sampler2D variables that will be passed to the shader.
  68579. * @param samplers Array of the names of uniform sampler2D variables that will be passed to the shader.
  68580. * @param options The required width/height ratio to downsize to before computing the render pass. (Use 1.0 for full size)
  68581. * @param camera The camera to apply the render pass to.
  68582. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  68583. * @param engine The engine which the post process will be applied. (default: current engine)
  68584. * @param reusable If the post process can be reused on the same frame. (default: false)
  68585. * @param defines String of defines that will be set when running the fragment shader. (default: null)
  68586. * @param textureType Type of textures used when performing the post process. (default: 0)
  68587. * @param vertexUrl The url of the vertex shader to be used. (default: "postprocess")
  68588. * @param indexParameters The index parameters to be used for babylons include syntax "#include<kernelBlurVaryingDeclaration>[0..varyingCount]". (default: undefined) See usage in babylon.blurPostProcess.ts and kernelBlur.vertex.fx
  68589. * @param blockCompilation If the shader should not be compiled imediatly. (default: false)
  68590. */
  68591. function PostProcess(
  68592. /** Name of the PostProcess. */
  68593. name, fragmentUrl, parameters, samplers, options, camera, samplingMode, engine, reusable, defines, textureType, vertexUrl, indexParameters, blockCompilation) {
  68594. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.NEAREST_SAMPLINGMODE; }
  68595. if (defines === void 0) { defines = null; }
  68596. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  68597. if (vertexUrl === void 0) { vertexUrl = "postprocess"; }
  68598. if (blockCompilation === void 0) { blockCompilation = false; }
  68599. this.name = name;
  68600. /**
  68601. * Width of the texture to apply the post process on
  68602. */
  68603. this.width = -1;
  68604. /**
  68605. * Height of the texture to apply the post process on
  68606. */
  68607. this.height = -1;
  68608. /**
  68609. * Internal, reference to the location where this postprocess was output to. (Typically the texture on the next postprocess in the chain)
  68610. * @hidden
  68611. */
  68612. this._outputTexture = null;
  68613. /**
  68614. * If the buffer needs to be cleared before applying the post process. (default: true)
  68615. * Should be set to false if shader will overwrite all previous pixels.
  68616. */
  68617. this.autoClear = true;
  68618. /**
  68619. * Type of alpha mode to use when performing the post process (default: Engine.ALPHA_DISABLE)
  68620. */
  68621. this.alphaMode = BABYLON.Engine.ALPHA_DISABLE;
  68622. /**
  68623. * Animations to be used for the post processing
  68624. */
  68625. this.animations = new Array();
  68626. /**
  68627. * Enable Pixel Perfect mode where texture is not scaled to be power of 2.
  68628. * Can only be used on a single postprocess or on the last one of a chain. (default: false)
  68629. */
  68630. this.enablePixelPerfectMode = false;
  68631. /**
  68632. * Force the postprocess to be applied without taking in account viewport
  68633. */
  68634. this.forceFullscreenViewport = true;
  68635. /**
  68636. * Scale mode for the post process (default: Engine.SCALEMODE_FLOOR)
  68637. *
  68638. * | Value | Type | Description |
  68639. * | ----- | ----------------------------------- | ----------- |
  68640. * | 1 | SCALEMODE_FLOOR | [engine.scalemode_floor](http://doc.babylonjs.com/api/classes/babylon.engine#scalemode_floor) |
  68641. * | 2 | SCALEMODE_NEAREST | [engine.scalemode_nearest](http://doc.babylonjs.com/api/classes/babylon.engine#scalemode_nearest) |
  68642. * | 3 | SCALEMODE_CEILING | [engine.scalemode_ceiling](http://doc.babylonjs.com/api/classes/babylon.engine#scalemode_ceiling) |
  68643. *
  68644. */
  68645. this.scaleMode = BABYLON.Engine.SCALEMODE_FLOOR;
  68646. /**
  68647. * Force textures to be a power of two (default: false)
  68648. */
  68649. this.alwaysForcePOT = false;
  68650. this._samples = 1;
  68651. /**
  68652. * Modify the scale of the post process to be the same as the viewport (default: false)
  68653. */
  68654. this.adaptScaleToCurrentViewport = false;
  68655. this._reusable = false;
  68656. /**
  68657. * Smart array of input and output textures for the post process.
  68658. * @hidden
  68659. */
  68660. this._textures = new BABYLON.SmartArray(2);
  68661. /**
  68662. * The index in _textures that corresponds to the output texture.
  68663. * @hidden
  68664. */
  68665. this._currentRenderTextureInd = 0;
  68666. this._scaleRatio = new BABYLON.Vector2(1, 1);
  68667. this._texelSize = BABYLON.Vector2.Zero();
  68668. // Events
  68669. /**
  68670. * An event triggered when the postprocess is activated.
  68671. */
  68672. this.onActivateObservable = new BABYLON.Observable();
  68673. /**
  68674. * An event triggered when the postprocess changes its size.
  68675. */
  68676. this.onSizeChangedObservable = new BABYLON.Observable();
  68677. /**
  68678. * An event triggered when the postprocess applies its effect.
  68679. */
  68680. this.onApplyObservable = new BABYLON.Observable();
  68681. /**
  68682. * An event triggered before rendering the postprocess
  68683. */
  68684. this.onBeforeRenderObservable = new BABYLON.Observable();
  68685. /**
  68686. * An event triggered after rendering the postprocess
  68687. */
  68688. this.onAfterRenderObservable = new BABYLON.Observable();
  68689. if (camera != null) {
  68690. this._camera = camera;
  68691. this._scene = camera.getScene();
  68692. camera.attachPostProcess(this);
  68693. this._engine = this._scene.getEngine();
  68694. this._scene.postProcesses.push(this);
  68695. }
  68696. else if (engine) {
  68697. this._engine = engine;
  68698. this._engine.postProcesses.push(this);
  68699. }
  68700. this._options = options;
  68701. this.renderTargetSamplingMode = samplingMode ? samplingMode : BABYLON.Texture.NEAREST_SAMPLINGMODE;
  68702. this._reusable = reusable || false;
  68703. this._textureType = textureType;
  68704. this._samplers = samplers || [];
  68705. this._samplers.push("textureSampler");
  68706. this._fragmentUrl = fragmentUrl;
  68707. this._vertexUrl = vertexUrl;
  68708. this._parameters = parameters || [];
  68709. this._parameters.push("scale");
  68710. this._indexParameters = indexParameters;
  68711. if (!blockCompilation) {
  68712. this.updateEffect(defines);
  68713. }
  68714. }
  68715. Object.defineProperty(PostProcess.prototype, "samples", {
  68716. /**
  68717. * Number of sample textures (default: 1)
  68718. */
  68719. get: function () {
  68720. return this._samples;
  68721. },
  68722. set: function (n) {
  68723. var _this = this;
  68724. this._samples = n;
  68725. this._textures.forEach(function (texture) {
  68726. if (texture.samples !== _this._samples) {
  68727. _this._engine.updateRenderTargetTextureSampleCount(texture, _this._samples);
  68728. }
  68729. });
  68730. },
  68731. enumerable: true,
  68732. configurable: true
  68733. });
  68734. Object.defineProperty(PostProcess.prototype, "onActivate", {
  68735. /**
  68736. * A function that is added to the onActivateObservable
  68737. */
  68738. set: function (callback) {
  68739. if (this._onActivateObserver) {
  68740. this.onActivateObservable.remove(this._onActivateObserver);
  68741. }
  68742. if (callback) {
  68743. this._onActivateObserver = this.onActivateObservable.add(callback);
  68744. }
  68745. },
  68746. enumerable: true,
  68747. configurable: true
  68748. });
  68749. Object.defineProperty(PostProcess.prototype, "onSizeChanged", {
  68750. /**
  68751. * A function that is added to the onSizeChangedObservable
  68752. */
  68753. set: function (callback) {
  68754. if (this._onSizeChangedObserver) {
  68755. this.onSizeChangedObservable.remove(this._onSizeChangedObserver);
  68756. }
  68757. this._onSizeChangedObserver = this.onSizeChangedObservable.add(callback);
  68758. },
  68759. enumerable: true,
  68760. configurable: true
  68761. });
  68762. Object.defineProperty(PostProcess.prototype, "onApply", {
  68763. /**
  68764. * A function that is added to the onApplyObservable
  68765. */
  68766. set: function (callback) {
  68767. if (this._onApplyObserver) {
  68768. this.onApplyObservable.remove(this._onApplyObserver);
  68769. }
  68770. this._onApplyObserver = this.onApplyObservable.add(callback);
  68771. },
  68772. enumerable: true,
  68773. configurable: true
  68774. });
  68775. Object.defineProperty(PostProcess.prototype, "onBeforeRender", {
  68776. /**
  68777. * A function that is added to the onBeforeRenderObservable
  68778. */
  68779. set: function (callback) {
  68780. if (this._onBeforeRenderObserver) {
  68781. this.onBeforeRenderObservable.remove(this._onBeforeRenderObserver);
  68782. }
  68783. this._onBeforeRenderObserver = this.onBeforeRenderObservable.add(callback);
  68784. },
  68785. enumerable: true,
  68786. configurable: true
  68787. });
  68788. Object.defineProperty(PostProcess.prototype, "onAfterRender", {
  68789. /**
  68790. * A function that is added to the onAfterRenderObservable
  68791. */
  68792. set: function (callback) {
  68793. if (this._onAfterRenderObserver) {
  68794. this.onAfterRenderObservable.remove(this._onAfterRenderObserver);
  68795. }
  68796. this._onAfterRenderObserver = this.onAfterRenderObservable.add(callback);
  68797. },
  68798. enumerable: true,
  68799. configurable: true
  68800. });
  68801. Object.defineProperty(PostProcess.prototype, "inputTexture", {
  68802. /**
  68803. * The input texture for this post process and the output texture of the previous post process. When added to a pipeline the previous post process will
  68804. * render it's output into this texture and this texture will be used as textureSampler in the fragment shader of this post process.
  68805. */
  68806. get: function () {
  68807. return this._textures.data[this._currentRenderTextureInd];
  68808. },
  68809. set: function (value) {
  68810. this._forcedOutputTexture = value;
  68811. },
  68812. enumerable: true,
  68813. configurable: true
  68814. });
  68815. /**
  68816. * Gets the camera which post process is applied to.
  68817. * @returns The camera the post process is applied to.
  68818. */
  68819. PostProcess.prototype.getCamera = function () {
  68820. return this._camera;
  68821. };
  68822. Object.defineProperty(PostProcess.prototype, "texelSize", {
  68823. /**
  68824. * Gets the texel size of the postprocess.
  68825. * See https://en.wikipedia.org/wiki/Texel_(graphics)
  68826. */
  68827. get: function () {
  68828. if (this._shareOutputWithPostProcess) {
  68829. return this._shareOutputWithPostProcess.texelSize;
  68830. }
  68831. if (this._forcedOutputTexture) {
  68832. this._texelSize.copyFromFloats(1.0 / this._forcedOutputTexture.width, 1.0 / this._forcedOutputTexture.height);
  68833. }
  68834. return this._texelSize;
  68835. },
  68836. enumerable: true,
  68837. configurable: true
  68838. });
  68839. /**
  68840. * Gets the engine which this post process belongs to.
  68841. * @returns The engine the post process was enabled with.
  68842. */
  68843. PostProcess.prototype.getEngine = function () {
  68844. return this._engine;
  68845. };
  68846. /**
  68847. * The effect that is created when initializing the post process.
  68848. * @returns The created effect corrisponding the the postprocess.
  68849. */
  68850. PostProcess.prototype.getEffect = function () {
  68851. return this._effect;
  68852. };
  68853. /**
  68854. * To avoid multiple redundant textures for multiple post process, the output the output texture for this post process can be shared with another.
  68855. * @param postProcess The post process to share the output with.
  68856. * @returns This post process.
  68857. */
  68858. PostProcess.prototype.shareOutputWith = function (postProcess) {
  68859. this._disposeTextures();
  68860. this._shareOutputWithPostProcess = postProcess;
  68861. return this;
  68862. };
  68863. /**
  68864. * Reverses the effect of calling shareOutputWith and returns the post process back to its original state.
  68865. * This should be called if the post process that shares output with this post process is disabled/disposed.
  68866. */
  68867. PostProcess.prototype.useOwnOutput = function () {
  68868. if (this._textures.length == 0) {
  68869. this._textures = new BABYLON.SmartArray(2);
  68870. }
  68871. this._shareOutputWithPostProcess = null;
  68872. };
  68873. /**
  68874. * Updates the effect with the current post process compile time values and recompiles the shader.
  68875. * @param defines Define statements that should be added at the beginning of the shader. (default: null)
  68876. * @param uniforms Set of uniform variables that will be passed to the shader. (default: null)
  68877. * @param samplers Set of Texture2D variables that will be passed to the shader. (default: null)
  68878. * @param indexParameters The index parameters to be used for babylons include syntax "#include<kernelBlurVaryingDeclaration>[0..varyingCount]". (default: undefined) See usage in babylon.blurPostProcess.ts and kernelBlur.vertex.fx
  68879. * @param onCompiled Called when the shader has been compiled.
  68880. * @param onError Called if there is an error when compiling a shader.
  68881. */
  68882. PostProcess.prototype.updateEffect = function (defines, uniforms, samplers, indexParameters, onCompiled, onError) {
  68883. if (defines === void 0) { defines = null; }
  68884. if (uniforms === void 0) { uniforms = null; }
  68885. if (samplers === void 0) { samplers = null; }
  68886. this._effect = this._engine.createEffect({ vertex: this._vertexUrl, fragment: this._fragmentUrl }, ["position"], uniforms || this._parameters, samplers || this._samplers, defines !== null ? defines : "", undefined, onCompiled, onError, indexParameters || this._indexParameters);
  68887. };
  68888. /**
  68889. * The post process is reusable if it can be used multiple times within one frame.
  68890. * @returns If the post process is reusable
  68891. */
  68892. PostProcess.prototype.isReusable = function () {
  68893. return this._reusable;
  68894. };
  68895. /** invalidate frameBuffer to hint the postprocess to create a depth buffer */
  68896. PostProcess.prototype.markTextureDirty = function () {
  68897. this.width = -1;
  68898. };
  68899. /**
  68900. * Activates the post process by intializing the textures to be used when executed. Notifies onActivateObservable.
  68901. * When this post process is used in a pipeline, this is call will bind the input texture of this post process to the output of the previous.
  68902. * @param camera The camera that will be used in the post process. This camera will be used when calling onActivateObservable.
  68903. * @param sourceTexture The source texture to be inspected to get the width and height if not specified in the post process constructor. (default: null)
  68904. * @param forceDepthStencil If true, a depth and stencil buffer will be generated. (default: false)
  68905. * @returns The target texture that was bound to be written to.
  68906. */
  68907. PostProcess.prototype.activate = function (camera, sourceTexture, forceDepthStencil) {
  68908. var _this = this;
  68909. if (sourceTexture === void 0) { sourceTexture = null; }
  68910. camera = camera || this._camera;
  68911. var scene = camera.getScene();
  68912. var engine = scene.getEngine();
  68913. var maxSize = engine.getCaps().maxTextureSize;
  68914. var requiredWidth = ((sourceTexture ? sourceTexture.width : this._engine.getRenderWidth(true)) * this._options) | 0;
  68915. var requiredHeight = ((sourceTexture ? sourceTexture.height : this._engine.getRenderHeight(true)) * this._options) | 0;
  68916. // If rendering to a webvr camera's left or right eye only half the width should be used to avoid resize when rendered to screen
  68917. var webVRCamera = camera.parent;
  68918. if (webVRCamera && (webVRCamera.leftCamera == camera || webVRCamera.rightCamera == camera)) {
  68919. requiredWidth /= 2;
  68920. }
  68921. var desiredWidth = (this._options.width || requiredWidth);
  68922. var desiredHeight = this._options.height || requiredHeight;
  68923. if (!this._shareOutputWithPostProcess && !this._forcedOutputTexture) {
  68924. if (this.adaptScaleToCurrentViewport) {
  68925. var currentViewport = engine.currentViewport;
  68926. if (currentViewport) {
  68927. desiredWidth *= currentViewport.width;
  68928. desiredHeight *= currentViewport.height;
  68929. }
  68930. }
  68931. if (this.renderTargetSamplingMode === BABYLON.Texture.TRILINEAR_SAMPLINGMODE || this.alwaysForcePOT) {
  68932. if (!this._options.width) {
  68933. desiredWidth = engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(desiredWidth, maxSize, this.scaleMode) : desiredWidth;
  68934. }
  68935. if (!this._options.height) {
  68936. desiredHeight = engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(desiredHeight, maxSize, this.scaleMode) : desiredHeight;
  68937. }
  68938. }
  68939. if (this.width !== desiredWidth || this.height !== desiredHeight) {
  68940. if (this._textures.length > 0) {
  68941. for (var i = 0; i < this._textures.length; i++) {
  68942. this._engine._releaseTexture(this._textures.data[i]);
  68943. }
  68944. this._textures.reset();
  68945. }
  68946. this.width = desiredWidth;
  68947. this.height = desiredHeight;
  68948. var textureSize = { width: this.width, height: this.height };
  68949. var textureOptions = {
  68950. generateMipMaps: false,
  68951. generateDepthBuffer: forceDepthStencil || camera._postProcesses.indexOf(this) === 0,
  68952. generateStencilBuffer: (forceDepthStencil || camera._postProcesses.indexOf(this) === 0) && this._engine.isStencilEnable,
  68953. samplingMode: this.renderTargetSamplingMode,
  68954. type: this._textureType
  68955. };
  68956. this._textures.push(this._engine.createRenderTargetTexture(textureSize, textureOptions));
  68957. if (this._reusable) {
  68958. this._textures.push(this._engine.createRenderTargetTexture(textureSize, textureOptions));
  68959. }
  68960. this._texelSize.copyFromFloats(1.0 / this.width, 1.0 / this.height);
  68961. this.onSizeChangedObservable.notifyObservers(this);
  68962. }
  68963. this._textures.forEach(function (texture) {
  68964. if (texture.samples !== _this.samples) {
  68965. _this._engine.updateRenderTargetTextureSampleCount(texture, _this.samples);
  68966. }
  68967. });
  68968. }
  68969. var target;
  68970. if (this._shareOutputWithPostProcess) {
  68971. target = this._shareOutputWithPostProcess.inputTexture;
  68972. }
  68973. else if (this._forcedOutputTexture) {
  68974. target = this._forcedOutputTexture;
  68975. this.width = this._forcedOutputTexture.width;
  68976. this.height = this._forcedOutputTexture.height;
  68977. }
  68978. else {
  68979. target = this.inputTexture;
  68980. }
  68981. // Bind the input of this post process to be used as the output of the previous post process.
  68982. if (this.enablePixelPerfectMode) {
  68983. this._scaleRatio.copyFromFloats(requiredWidth / desiredWidth, requiredHeight / desiredHeight);
  68984. this._engine.bindFramebuffer(target, 0, requiredWidth, requiredHeight, this.forceFullscreenViewport);
  68985. }
  68986. else {
  68987. this._scaleRatio.copyFromFloats(1, 1);
  68988. this._engine.bindFramebuffer(target, 0, undefined, undefined, this.forceFullscreenViewport);
  68989. }
  68990. this.onActivateObservable.notifyObservers(camera);
  68991. // Clear
  68992. if (this.autoClear && this.alphaMode === BABYLON.Engine.ALPHA_DISABLE) {
  68993. this._engine.clear(this.clearColor ? this.clearColor : scene.clearColor, scene._allowPostProcessClearColor, true, true);
  68994. }
  68995. if (this._reusable) {
  68996. this._currentRenderTextureInd = (this._currentRenderTextureInd + 1) % 2;
  68997. }
  68998. return target;
  68999. };
  69000. Object.defineProperty(PostProcess.prototype, "isSupported", {
  69001. /**
  69002. * If the post process is supported.
  69003. */
  69004. get: function () {
  69005. return this._effect.isSupported;
  69006. },
  69007. enumerable: true,
  69008. configurable: true
  69009. });
  69010. Object.defineProperty(PostProcess.prototype, "aspectRatio", {
  69011. /**
  69012. * The aspect ratio of the output texture.
  69013. */
  69014. get: function () {
  69015. if (this._shareOutputWithPostProcess) {
  69016. return this._shareOutputWithPostProcess.aspectRatio;
  69017. }
  69018. if (this._forcedOutputTexture) {
  69019. return this._forcedOutputTexture.width / this._forcedOutputTexture.height;
  69020. }
  69021. return this.width / this.height;
  69022. },
  69023. enumerable: true,
  69024. configurable: true
  69025. });
  69026. /**
  69027. * Get a value indicating if the post-process is ready to be used
  69028. * @returns true if the post-process is ready (shader is compiled)
  69029. */
  69030. PostProcess.prototype.isReady = function () {
  69031. return this._effect && this._effect.isReady();
  69032. };
  69033. /**
  69034. * Binds all textures and uniforms to the shader, this will be run on every pass.
  69035. * @returns the effect corrisponding to this post process. Null if not compiled or not ready.
  69036. */
  69037. PostProcess.prototype.apply = function () {
  69038. // Check
  69039. if (!this._effect || !this._effect.isReady())
  69040. return null;
  69041. // States
  69042. this._engine.enableEffect(this._effect);
  69043. this._engine.setState(false);
  69044. this._engine.setDepthBuffer(false);
  69045. this._engine.setDepthWrite(false);
  69046. // Alpha
  69047. this._engine.setAlphaMode(this.alphaMode);
  69048. if (this.alphaConstants) {
  69049. this.getEngine().setAlphaConstants(this.alphaConstants.r, this.alphaConstants.g, this.alphaConstants.b, this.alphaConstants.a);
  69050. }
  69051. // Bind the output texture of the preivous post process as the input to this post process.
  69052. var source;
  69053. if (this._shareOutputWithPostProcess) {
  69054. source = this._shareOutputWithPostProcess.inputTexture;
  69055. }
  69056. else if (this._forcedOutputTexture) {
  69057. source = this._forcedOutputTexture;
  69058. }
  69059. else {
  69060. source = this.inputTexture;
  69061. }
  69062. this._effect._bindTexture("textureSampler", source);
  69063. // Parameters
  69064. this._effect.setVector2("scale", this._scaleRatio);
  69065. this.onApplyObservable.notifyObservers(this._effect);
  69066. return this._effect;
  69067. };
  69068. PostProcess.prototype._disposeTextures = function () {
  69069. if (this._shareOutputWithPostProcess || this._forcedOutputTexture) {
  69070. return;
  69071. }
  69072. if (this._textures.length > 0) {
  69073. for (var i = 0; i < this._textures.length; i++) {
  69074. this._engine._releaseTexture(this._textures.data[i]);
  69075. }
  69076. }
  69077. this._textures.dispose();
  69078. };
  69079. /**
  69080. * Disposes the post process.
  69081. * @param camera The camera to dispose the post process on.
  69082. */
  69083. PostProcess.prototype.dispose = function (camera) {
  69084. camera = camera || this._camera;
  69085. this._disposeTextures();
  69086. if (this._scene) {
  69087. var index_1 = this._scene.postProcesses.indexOf(this);
  69088. if (index_1 !== -1) {
  69089. this._scene.postProcesses.splice(index_1, 1);
  69090. }
  69091. }
  69092. else {
  69093. var index_2 = this._engine.postProcesses.indexOf(this);
  69094. if (index_2 !== -1) {
  69095. this._engine.postProcesses.splice(index_2, 1);
  69096. }
  69097. }
  69098. if (!camera) {
  69099. return;
  69100. }
  69101. camera.detachPostProcess(this);
  69102. var index = camera._postProcesses.indexOf(this);
  69103. if (index === 0 && camera._postProcesses.length > 0) {
  69104. var firstPostProcess = this._camera._getFirstPostProcess();
  69105. if (firstPostProcess) {
  69106. firstPostProcess.markTextureDirty();
  69107. }
  69108. }
  69109. this.onActivateObservable.clear();
  69110. this.onAfterRenderObservable.clear();
  69111. this.onApplyObservable.clear();
  69112. this.onBeforeRenderObservable.clear();
  69113. this.onSizeChangedObservable.clear();
  69114. };
  69115. return PostProcess;
  69116. }());
  69117. BABYLON.PostProcess = PostProcess;
  69118. })(BABYLON || (BABYLON = {}));
  69119. //# sourceMappingURL=babylon.postProcess.js.map
  69120. var BABYLON;
  69121. (function (BABYLON) {
  69122. var PassPostProcess = /** @class */ (function (_super) {
  69123. __extends(PassPostProcess, _super);
  69124. function PassPostProcess(name, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  69125. if (camera === void 0) { camera = null; }
  69126. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  69127. if (blockCompilation === void 0) { blockCompilation = false; }
  69128. return _super.call(this, name, "pass", null, null, options, camera, samplingMode, engine, reusable, undefined, textureType, undefined, null, blockCompilation) || this;
  69129. }
  69130. return PassPostProcess;
  69131. }(BABYLON.PostProcess));
  69132. BABYLON.PassPostProcess = PassPostProcess;
  69133. })(BABYLON || (BABYLON = {}));
  69134. //# sourceMappingURL=babylon.passPostProcess.js.map
  69135. var __assign = (this && this.__assign) || function () {
  69136. __assign = Object.assign || function(t) {
  69137. for (var s, i = 1, n = arguments.length; i < n; i++) {
  69138. s = arguments[i];
  69139. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  69140. t[p] = s[p];
  69141. }
  69142. return t;
  69143. };
  69144. return __assign.apply(this, arguments);
  69145. };
  69146. var BABYLON;
  69147. (function (BABYLON) {
  69148. /**
  69149. * Default implementation IShadowGenerator.
  69150. * This is the main object responsible of generating shadows in the framework.
  69151. * Documentation: https://doc.babylonjs.com/babylon101/shadows
  69152. */
  69153. var ShadowGenerator = /** @class */ (function () {
  69154. /**
  69155. * Creates a ShadowGenerator object.
  69156. * A ShadowGenerator is the required tool to use the shadows.
  69157. * Each light casting shadows needs to use its own ShadowGenerator.
  69158. * Documentation : http://doc.babylonjs.com/tutorials/shadows
  69159. * @param mapSize The size of the texture what stores the shadows. Example : 1024.
  69160. * @param light The light object generating the shadows.
  69161. * @param useFullFloatFirst By default the generator will try to use half float textures but if you need precision (for self shadowing for instance), you can use this option to enforce full float texture.
  69162. */
  69163. function ShadowGenerator(mapSize, light, useFullFloatFirst) {
  69164. this._bias = 0.00005;
  69165. this._normalBias = 0;
  69166. this._blurBoxOffset = 1;
  69167. this._blurScale = 2;
  69168. this._blurKernel = 1;
  69169. this._useKernelBlur = false;
  69170. this._filter = ShadowGenerator.FILTER_NONE;
  69171. this._filteringQuality = ShadowGenerator.QUALITY_HIGH;
  69172. this._contactHardeningLightSizeUVRatio = 0.1;
  69173. this._darkness = 0;
  69174. this._transparencyShadow = false;
  69175. /**
  69176. * Controls the extent to which the shadows fade out at the edge of the frustum
  69177. * Used only by directionals and spots
  69178. */
  69179. this.frustumEdgeFalloff = 0;
  69180. /**
  69181. * If true the shadow map is generated by rendering the back face of the mesh instead of the front face.
  69182. * This can help with self-shadowing as the geometry making up the back of objects is slightly offset.
  69183. * It might on the other hand introduce peter panning.
  69184. */
  69185. this.forceBackFacesOnly = false;
  69186. this._lightDirection = BABYLON.Vector3.Zero();
  69187. this._viewMatrix = BABYLON.Matrix.Zero();
  69188. this._projectionMatrix = BABYLON.Matrix.Zero();
  69189. this._transformMatrix = BABYLON.Matrix.Zero();
  69190. this._cachedPosition = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  69191. this._cachedDirection = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  69192. this._currentFaceIndex = 0;
  69193. this._currentFaceIndexCache = 0;
  69194. this._defaultTextureMatrix = BABYLON.Matrix.Identity();
  69195. this._mapSize = mapSize;
  69196. this._light = light;
  69197. this._scene = light.getScene();
  69198. light._shadowGenerator = this;
  69199. var component = this._scene._getComponent(BABYLON.SceneComponentConstants.NAME_SHADOWGENERATOR);
  69200. if (!component) {
  69201. component = new BABYLON.ShadowGeneratorSceneComponent(this._scene);
  69202. this._scene._addComponent(component);
  69203. }
  69204. // Texture type fallback from float to int if not supported.
  69205. var caps = this._scene.getEngine().getCaps();
  69206. if (!useFullFloatFirst) {
  69207. if (caps.textureHalfFloatRender && caps.textureHalfFloatLinearFiltering) {
  69208. this._textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  69209. }
  69210. else if (caps.textureFloatRender && caps.textureFloatLinearFiltering) {
  69211. this._textureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  69212. }
  69213. else {
  69214. this._textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  69215. }
  69216. }
  69217. else {
  69218. if (caps.textureFloatRender && caps.textureFloatLinearFiltering) {
  69219. this._textureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  69220. }
  69221. else if (caps.textureHalfFloatRender && caps.textureHalfFloatLinearFiltering) {
  69222. this._textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  69223. }
  69224. else {
  69225. this._textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  69226. }
  69227. }
  69228. this._initializeGenerator();
  69229. this._applyFilterValues();
  69230. }
  69231. Object.defineProperty(ShadowGenerator.prototype, "bias", {
  69232. /**
  69233. * Gets the bias: offset applied on the depth preventing acnea (in light direction).
  69234. */
  69235. get: function () {
  69236. return this._bias;
  69237. },
  69238. /**
  69239. * Sets the bias: offset applied on the depth preventing acnea (in light direction).
  69240. */
  69241. set: function (bias) {
  69242. this._bias = bias;
  69243. },
  69244. enumerable: true,
  69245. configurable: true
  69246. });
  69247. Object.defineProperty(ShadowGenerator.prototype, "normalBias", {
  69248. /**
  69249. * Gets the normalBias: offset applied on the depth preventing acnea (along side the normal direction and proportinal to the light/normal angle).
  69250. */
  69251. get: function () {
  69252. return this._normalBias;
  69253. },
  69254. /**
  69255. * Sets the normalBias: offset applied on the depth preventing acnea (along side the normal direction and proportinal to the light/normal angle).
  69256. */
  69257. set: function (normalBias) {
  69258. this._normalBias = normalBias;
  69259. },
  69260. enumerable: true,
  69261. configurable: true
  69262. });
  69263. Object.defineProperty(ShadowGenerator.prototype, "blurBoxOffset", {
  69264. /**
  69265. * Gets the blur box offset: offset applied during the blur pass.
  69266. * Only usefull if useKernelBlur = false
  69267. */
  69268. get: function () {
  69269. return this._blurBoxOffset;
  69270. },
  69271. /**
  69272. * Sets the blur box offset: offset applied during the blur pass.
  69273. * Only usefull if useKernelBlur = false
  69274. */
  69275. set: function (value) {
  69276. if (this._blurBoxOffset === value) {
  69277. return;
  69278. }
  69279. this._blurBoxOffset = value;
  69280. this._disposeBlurPostProcesses();
  69281. },
  69282. enumerable: true,
  69283. configurable: true
  69284. });
  69285. Object.defineProperty(ShadowGenerator.prototype, "blurScale", {
  69286. /**
  69287. * Gets the blur scale: scale of the blurred texture compared to the main shadow map.
  69288. * 2 means half of the size.
  69289. */
  69290. get: function () {
  69291. return this._blurScale;
  69292. },
  69293. /**
  69294. * Sets the blur scale: scale of the blurred texture compared to the main shadow map.
  69295. * 2 means half of the size.
  69296. */
  69297. set: function (value) {
  69298. if (this._blurScale === value) {
  69299. return;
  69300. }
  69301. this._blurScale = value;
  69302. this._disposeBlurPostProcesses();
  69303. },
  69304. enumerable: true,
  69305. configurable: true
  69306. });
  69307. Object.defineProperty(ShadowGenerator.prototype, "blurKernel", {
  69308. /**
  69309. * Gets the blur kernel: kernel size of the blur pass.
  69310. * Only usefull if useKernelBlur = true
  69311. */
  69312. get: function () {
  69313. return this._blurKernel;
  69314. },
  69315. /**
  69316. * Sets the blur kernel: kernel size of the blur pass.
  69317. * Only usefull if useKernelBlur = true
  69318. */
  69319. set: function (value) {
  69320. if (this._blurKernel === value) {
  69321. return;
  69322. }
  69323. this._blurKernel = value;
  69324. this._disposeBlurPostProcesses();
  69325. },
  69326. enumerable: true,
  69327. configurable: true
  69328. });
  69329. Object.defineProperty(ShadowGenerator.prototype, "useKernelBlur", {
  69330. /**
  69331. * Gets whether the blur pass is a kernel blur (if true) or box blur.
  69332. * Only usefull in filtered mode (useBlurExponentialShadowMap...)
  69333. */
  69334. get: function () {
  69335. return this._useKernelBlur;
  69336. },
  69337. /**
  69338. * Sets whether the blur pass is a kernel blur (if true) or box blur.
  69339. * Only usefull in filtered mode (useBlurExponentialShadowMap...)
  69340. */
  69341. set: function (value) {
  69342. if (this._useKernelBlur === value) {
  69343. return;
  69344. }
  69345. this._useKernelBlur = value;
  69346. this._disposeBlurPostProcesses();
  69347. },
  69348. enumerable: true,
  69349. configurable: true
  69350. });
  69351. Object.defineProperty(ShadowGenerator.prototype, "depthScale", {
  69352. /**
  69353. * Gets the depth scale used in ESM mode.
  69354. */
  69355. get: function () {
  69356. return this._depthScale !== undefined ? this._depthScale : this._light.getDepthScale();
  69357. },
  69358. /**
  69359. * Sets the depth scale used in ESM mode.
  69360. * This can override the scale stored on the light.
  69361. */
  69362. set: function (value) {
  69363. this._depthScale = value;
  69364. },
  69365. enumerable: true,
  69366. configurable: true
  69367. });
  69368. Object.defineProperty(ShadowGenerator.prototype, "filter", {
  69369. /**
  69370. * Gets the current mode of the shadow generator (normal, PCF, ESM...).
  69371. * The returned value is a number equal to one of the available mode defined in ShadowMap.FILTER_x like _FILTER_NONE
  69372. */
  69373. get: function () {
  69374. return this._filter;
  69375. },
  69376. /**
  69377. * Sets the current mode of the shadow generator (normal, PCF, ESM...).
  69378. * The returned value is a number equal to one of the available mode defined in ShadowMap.FILTER_x like _FILTER_NONE
  69379. */
  69380. set: function (value) {
  69381. // Blurring the cubemap is going to be too expensive. Reverting to unblurred version
  69382. if (this._light.needCube()) {
  69383. if (value === ShadowGenerator.FILTER_BLUREXPONENTIALSHADOWMAP) {
  69384. this.useExponentialShadowMap = true;
  69385. return;
  69386. }
  69387. else if (value === ShadowGenerator.FILTER_BLURCLOSEEXPONENTIALSHADOWMAP) {
  69388. this.useCloseExponentialShadowMap = true;
  69389. return;
  69390. }
  69391. // PCF on cubemap would also be expensive
  69392. else if (value === ShadowGenerator.FILTER_PCF || value === ShadowGenerator.FILTER_PCSS) {
  69393. this.usePoissonSampling = true;
  69394. return;
  69395. }
  69396. }
  69397. // Weblg1 fallback for PCF.
  69398. if (value === ShadowGenerator.FILTER_PCF || value === ShadowGenerator.FILTER_PCSS) {
  69399. if (this._scene.getEngine().webGLVersion === 1) {
  69400. this.usePoissonSampling = true;
  69401. return;
  69402. }
  69403. }
  69404. if (this._filter === value) {
  69405. return;
  69406. }
  69407. this._filter = value;
  69408. this._disposeBlurPostProcesses();
  69409. this._applyFilterValues();
  69410. this._light._markMeshesAsLightDirty();
  69411. },
  69412. enumerable: true,
  69413. configurable: true
  69414. });
  69415. Object.defineProperty(ShadowGenerator.prototype, "usePoissonSampling", {
  69416. /**
  69417. * Gets if the current filter is set to Poisson Sampling.
  69418. */
  69419. get: function () {
  69420. return this.filter === ShadowGenerator.FILTER_POISSONSAMPLING;
  69421. },
  69422. /**
  69423. * Sets the current filter to Poisson Sampling.
  69424. */
  69425. set: function (value) {
  69426. if (!value && this.filter !== ShadowGenerator.FILTER_POISSONSAMPLING) {
  69427. return;
  69428. }
  69429. this.filter = (value ? ShadowGenerator.FILTER_POISSONSAMPLING : ShadowGenerator.FILTER_NONE);
  69430. },
  69431. enumerable: true,
  69432. configurable: true
  69433. });
  69434. Object.defineProperty(ShadowGenerator.prototype, "useVarianceShadowMap", {
  69435. /**
  69436. * Gets if the current filter is set to VSM.
  69437. * DEPRECATED. Should use useExponentialShadowMap instead.
  69438. */
  69439. get: function () {
  69440. BABYLON.Tools.Warn("VSM are now replaced by ESM. Please use useExponentialShadowMap instead.");
  69441. return this.useExponentialShadowMap;
  69442. },
  69443. /**
  69444. * Sets the current filter is to VSM.
  69445. * DEPRECATED. Should use useExponentialShadowMap instead.
  69446. */
  69447. set: function (value) {
  69448. BABYLON.Tools.Warn("VSM are now replaced by ESM. Please use useExponentialShadowMap instead.");
  69449. this.useExponentialShadowMap = value;
  69450. },
  69451. enumerable: true,
  69452. configurable: true
  69453. });
  69454. Object.defineProperty(ShadowGenerator.prototype, "useBlurVarianceShadowMap", {
  69455. /**
  69456. * Gets if the current filter is set to blurred VSM.
  69457. * DEPRECATED. Should use useBlurExponentialShadowMap instead.
  69458. */
  69459. get: function () {
  69460. BABYLON.Tools.Warn("VSM are now replaced by ESM. Please use useBlurExponentialShadowMap instead.");
  69461. return this.useBlurExponentialShadowMap;
  69462. },
  69463. /**
  69464. * Sets the current filter is to blurred VSM.
  69465. * DEPRECATED. Should use useBlurExponentialShadowMap instead.
  69466. */
  69467. set: function (value) {
  69468. BABYLON.Tools.Warn("VSM are now replaced by ESM. Please use useBlurExponentialShadowMap instead.");
  69469. this.useBlurExponentialShadowMap = value;
  69470. },
  69471. enumerable: true,
  69472. configurable: true
  69473. });
  69474. Object.defineProperty(ShadowGenerator.prototype, "useExponentialShadowMap", {
  69475. /**
  69476. * Gets if the current filter is set to ESM.
  69477. */
  69478. get: function () {
  69479. return this.filter === ShadowGenerator.FILTER_EXPONENTIALSHADOWMAP;
  69480. },
  69481. /**
  69482. * Sets the current filter is to ESM.
  69483. */
  69484. set: function (value) {
  69485. if (!value && this.filter !== ShadowGenerator.FILTER_EXPONENTIALSHADOWMAP) {
  69486. return;
  69487. }
  69488. this.filter = (value ? ShadowGenerator.FILTER_EXPONENTIALSHADOWMAP : ShadowGenerator.FILTER_NONE);
  69489. },
  69490. enumerable: true,
  69491. configurable: true
  69492. });
  69493. Object.defineProperty(ShadowGenerator.prototype, "useBlurExponentialShadowMap", {
  69494. /**
  69495. * Gets if the current filter is set to filtered ESM.
  69496. */
  69497. get: function () {
  69498. return this.filter === ShadowGenerator.FILTER_BLUREXPONENTIALSHADOWMAP;
  69499. },
  69500. /**
  69501. * Gets if the current filter is set to filtered ESM.
  69502. */
  69503. set: function (value) {
  69504. if (!value && this.filter !== ShadowGenerator.FILTER_BLUREXPONENTIALSHADOWMAP) {
  69505. return;
  69506. }
  69507. this.filter = (value ? ShadowGenerator.FILTER_BLUREXPONENTIALSHADOWMAP : ShadowGenerator.FILTER_NONE);
  69508. },
  69509. enumerable: true,
  69510. configurable: true
  69511. });
  69512. Object.defineProperty(ShadowGenerator.prototype, "useCloseExponentialShadowMap", {
  69513. /**
  69514. * Gets if the current filter is set to "close ESM" (using the inverse of the
  69515. * exponential to prevent steep falloff artifacts).
  69516. */
  69517. get: function () {
  69518. return this.filter === ShadowGenerator.FILTER_CLOSEEXPONENTIALSHADOWMAP;
  69519. },
  69520. /**
  69521. * Sets the current filter to "close ESM" (using the inverse of the
  69522. * exponential to prevent steep falloff artifacts).
  69523. */
  69524. set: function (value) {
  69525. if (!value && this.filter !== ShadowGenerator.FILTER_CLOSEEXPONENTIALSHADOWMAP) {
  69526. return;
  69527. }
  69528. this.filter = (value ? ShadowGenerator.FILTER_CLOSEEXPONENTIALSHADOWMAP : ShadowGenerator.FILTER_NONE);
  69529. },
  69530. enumerable: true,
  69531. configurable: true
  69532. });
  69533. Object.defineProperty(ShadowGenerator.prototype, "useBlurCloseExponentialShadowMap", {
  69534. /**
  69535. * Gets if the current filter is set to filtered "close ESM" (using the inverse of the
  69536. * exponential to prevent steep falloff artifacts).
  69537. */
  69538. get: function () {
  69539. return this.filter === ShadowGenerator.FILTER_BLURCLOSEEXPONENTIALSHADOWMAP;
  69540. },
  69541. /**
  69542. * Sets the current filter to filtered "close ESM" (using the inverse of the
  69543. * exponential to prevent steep falloff artifacts).
  69544. */
  69545. set: function (value) {
  69546. if (!value && this.filter !== ShadowGenerator.FILTER_BLURCLOSEEXPONENTIALSHADOWMAP) {
  69547. return;
  69548. }
  69549. this.filter = (value ? ShadowGenerator.FILTER_BLURCLOSEEXPONENTIALSHADOWMAP : ShadowGenerator.FILTER_NONE);
  69550. },
  69551. enumerable: true,
  69552. configurable: true
  69553. });
  69554. Object.defineProperty(ShadowGenerator.prototype, "usePercentageCloserFiltering", {
  69555. /**
  69556. * Gets if the current filter is set to "PCF" (percentage closer filtering).
  69557. */
  69558. get: function () {
  69559. return this.filter === ShadowGenerator.FILTER_PCF;
  69560. },
  69561. /**
  69562. * Sets the current filter to "PCF" (percentage closer filtering).
  69563. */
  69564. set: function (value) {
  69565. if (!value && this.filter !== ShadowGenerator.FILTER_PCF) {
  69566. return;
  69567. }
  69568. this.filter = (value ? ShadowGenerator.FILTER_PCF : ShadowGenerator.FILTER_NONE);
  69569. },
  69570. enumerable: true,
  69571. configurable: true
  69572. });
  69573. Object.defineProperty(ShadowGenerator.prototype, "filteringQuality", {
  69574. /**
  69575. * Gets the PCF or PCSS Quality.
  69576. * Only valid if usePercentageCloserFiltering or usePercentageCloserFiltering is true.
  69577. */
  69578. get: function () {
  69579. return this._filteringQuality;
  69580. },
  69581. /**
  69582. * Sets the PCF or PCSS Quality.
  69583. * Only valid if usePercentageCloserFiltering or usePercentageCloserFiltering is true.
  69584. */
  69585. set: function (filteringQuality) {
  69586. this._filteringQuality = filteringQuality;
  69587. },
  69588. enumerable: true,
  69589. configurable: true
  69590. });
  69591. Object.defineProperty(ShadowGenerator.prototype, "useContactHardeningShadow", {
  69592. /**
  69593. * Gets if the current filter is set to "PCSS" (contact hardening).
  69594. */
  69595. get: function () {
  69596. return this.filter === ShadowGenerator.FILTER_PCSS;
  69597. },
  69598. /**
  69599. * Sets the current filter to "PCSS" (contact hardening).
  69600. */
  69601. set: function (value) {
  69602. if (!value && this.filter !== ShadowGenerator.FILTER_PCSS) {
  69603. return;
  69604. }
  69605. this.filter = (value ? ShadowGenerator.FILTER_PCSS : ShadowGenerator.FILTER_NONE);
  69606. },
  69607. enumerable: true,
  69608. configurable: true
  69609. });
  69610. Object.defineProperty(ShadowGenerator.prototype, "contactHardeningLightSizeUVRatio", {
  69611. /**
  69612. * Gets the Light Size (in shadow map uv unit) used in PCSS to determine the blocker search area and the penumbra size.
  69613. * Using a ratio helps keeping shape stability independently of the map size.
  69614. *
  69615. * It does not account for the light projection as it was having too much
  69616. * instability during the light setup or during light position changes.
  69617. *
  69618. * Only valid if useContactHardeningShadow is true.
  69619. */
  69620. get: function () {
  69621. return this._contactHardeningLightSizeUVRatio;
  69622. },
  69623. /**
  69624. * Sets the Light Size (in shadow map uv unit) used in PCSS to determine the blocker search area and the penumbra size.
  69625. * Using a ratio helps keeping shape stability independently of the map size.
  69626. *
  69627. * It does not account for the light projection as it was having too much
  69628. * instability during the light setup or during light position changes.
  69629. *
  69630. * Only valid if useContactHardeningShadow is true.
  69631. */
  69632. set: function (contactHardeningLightSizeUVRatio) {
  69633. this._contactHardeningLightSizeUVRatio = contactHardeningLightSizeUVRatio;
  69634. },
  69635. enumerable: true,
  69636. configurable: true
  69637. });
  69638. /**
  69639. * Returns the darkness value (float). This can only decrease the actual darkness of a shadow.
  69640. * 0 means strongest and 1 would means no shadow.
  69641. * @returns the darkness.
  69642. */
  69643. ShadowGenerator.prototype.getDarkness = function () {
  69644. return this._darkness;
  69645. };
  69646. /**
  69647. * Sets the darkness value (float). This can only decrease the actual darkness of a shadow.
  69648. * @param darkness The darkness value 0 means strongest and 1 would means no shadow.
  69649. * @returns the shadow generator allowing fluent coding.
  69650. */
  69651. ShadowGenerator.prototype.setDarkness = function (darkness) {
  69652. if (darkness >= 1.0)
  69653. this._darkness = 1.0;
  69654. else if (darkness <= 0.0)
  69655. this._darkness = 0.0;
  69656. else
  69657. this._darkness = darkness;
  69658. return this;
  69659. };
  69660. /**
  69661. * Sets the ability to have transparent shadow (boolean).
  69662. * @param transparent True if transparent else False
  69663. * @returns the shadow generator allowing fluent coding
  69664. */
  69665. ShadowGenerator.prototype.setTransparencyShadow = function (transparent) {
  69666. this._transparencyShadow = transparent;
  69667. return this;
  69668. };
  69669. /**
  69670. * Gets the main RTT containing the shadow map (usually storing depth from the light point of view).
  69671. * @returns The render target texture if present otherwise, null
  69672. */
  69673. ShadowGenerator.prototype.getShadowMap = function () {
  69674. return this._shadowMap;
  69675. };
  69676. /**
  69677. * Gets the RTT used during rendering (can be a blurred version of the shadow map or the shadow map itself).
  69678. * @returns The render target texture if the shadow map is present otherwise, null
  69679. */
  69680. ShadowGenerator.prototype.getShadowMapForRendering = function () {
  69681. if (this._shadowMap2) {
  69682. return this._shadowMap2;
  69683. }
  69684. return this._shadowMap;
  69685. };
  69686. /**
  69687. * Helper function to add a mesh and its descendants to the list of shadow casters.
  69688. * @param mesh Mesh to add
  69689. * @param includeDescendants boolean indicating if the descendants should be added. Default to true
  69690. * @returns the Shadow Generator itself
  69691. */
  69692. ShadowGenerator.prototype.addShadowCaster = function (mesh, includeDescendants) {
  69693. if (includeDescendants === void 0) { includeDescendants = true; }
  69694. var _a;
  69695. if (!this._shadowMap) {
  69696. return this;
  69697. }
  69698. if (!this._shadowMap.renderList) {
  69699. this._shadowMap.renderList = [];
  69700. }
  69701. this._shadowMap.renderList.push(mesh);
  69702. if (includeDescendants) {
  69703. (_a = this._shadowMap.renderList).push.apply(_a, mesh.getChildMeshes());
  69704. }
  69705. return this;
  69706. };
  69707. /**
  69708. * Helper function to remove a mesh and its descendants from the list of shadow casters
  69709. * @param mesh Mesh to remove
  69710. * @param includeDescendants boolean indicating if the descendants should be removed. Default to true
  69711. * @returns the Shadow Generator itself
  69712. */
  69713. ShadowGenerator.prototype.removeShadowCaster = function (mesh, includeDescendants) {
  69714. if (includeDescendants === void 0) { includeDescendants = true; }
  69715. if (!this._shadowMap || !this._shadowMap.renderList) {
  69716. return this;
  69717. }
  69718. var index = this._shadowMap.renderList.indexOf(mesh);
  69719. if (index !== -1) {
  69720. this._shadowMap.renderList.splice(index, 1);
  69721. }
  69722. if (includeDescendants) {
  69723. for (var _i = 0, _a = mesh.getChildren(); _i < _a.length; _i++) {
  69724. var child = _a[_i];
  69725. this.removeShadowCaster(child);
  69726. }
  69727. }
  69728. return this;
  69729. };
  69730. /**
  69731. * Returns the associated light object.
  69732. * @returns the light generating the shadow
  69733. */
  69734. ShadowGenerator.prototype.getLight = function () {
  69735. return this._light;
  69736. };
  69737. ShadowGenerator.prototype._initializeGenerator = function () {
  69738. this._light._markMeshesAsLightDirty();
  69739. this._initializeShadowMap();
  69740. };
  69741. ShadowGenerator.prototype._initializeShadowMap = function () {
  69742. var _this = this;
  69743. // Render target
  69744. var engine = this._scene.getEngine();
  69745. if (engine.webGLVersion > 1) {
  69746. this._shadowMap = new BABYLON.RenderTargetTexture(this._light.name + "_shadowMap", this._mapSize, this._scene, false, true, this._textureType, this._light.needCube(), undefined, false, false);
  69747. this._shadowMap.createDepthStencilTexture(BABYLON.Engine.LESS, true);
  69748. }
  69749. else {
  69750. this._shadowMap = new BABYLON.RenderTargetTexture(this._light.name + "_shadowMap", this._mapSize, this._scene, false, true, this._textureType, this._light.needCube());
  69751. }
  69752. this._shadowMap.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  69753. this._shadowMap.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  69754. this._shadowMap.anisotropicFilteringLevel = 1;
  69755. this._shadowMap.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  69756. this._shadowMap.renderParticles = false;
  69757. this._shadowMap.ignoreCameraViewport = true;
  69758. // Record Face Index before render.
  69759. this._shadowMap.onBeforeRenderObservable.add(function (faceIndex) {
  69760. _this._currentFaceIndex = faceIndex;
  69761. if (_this._filter === ShadowGenerator.FILTER_PCF) {
  69762. engine.setColorWrite(false);
  69763. }
  69764. });
  69765. // Custom render function.
  69766. this._shadowMap.customRenderFunction = this._renderForShadowMap.bind(this);
  69767. // Blur if required afer render.
  69768. this._shadowMap.onAfterUnbindObservable.add(function () {
  69769. if (_this._filter === ShadowGenerator.FILTER_PCF) {
  69770. engine.setColorWrite(true);
  69771. }
  69772. if (!_this.useBlurExponentialShadowMap && !_this.useBlurCloseExponentialShadowMap) {
  69773. return;
  69774. }
  69775. var shadowMap = _this.getShadowMapForRendering();
  69776. if (shadowMap) {
  69777. _this._scene.postProcessManager.directRender(_this._blurPostProcesses, shadowMap.getInternalTexture(), true);
  69778. }
  69779. });
  69780. // Clear according to the chosen filter.
  69781. var clearZero = new BABYLON.Color4(0, 0, 0, 0);
  69782. var clearOne = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  69783. this._shadowMap.onClearObservable.add(function (engine) {
  69784. if (_this._filter === ShadowGenerator.FILTER_PCF) {
  69785. engine.clear(clearOne, false, true, false);
  69786. }
  69787. else if (_this.useExponentialShadowMap || _this.useBlurExponentialShadowMap) {
  69788. engine.clear(clearZero, true, true, false);
  69789. }
  69790. else {
  69791. engine.clear(clearOne, true, true, false);
  69792. }
  69793. });
  69794. };
  69795. ShadowGenerator.prototype._initializeBlurRTTAndPostProcesses = function () {
  69796. var _this = this;
  69797. var engine = this._scene.getEngine();
  69798. var targetSize = this._mapSize / this.blurScale;
  69799. if (!this.useKernelBlur || this.blurScale !== 1.0) {
  69800. this._shadowMap2 = new BABYLON.RenderTargetTexture(this._light.name + "_shadowMap2", targetSize, this._scene, false, true, this._textureType);
  69801. this._shadowMap2.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  69802. this._shadowMap2.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  69803. this._shadowMap2.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  69804. }
  69805. if (this.useKernelBlur) {
  69806. this._kernelBlurXPostprocess = new BABYLON.BlurPostProcess(this._light.name + "KernelBlurX", new BABYLON.Vector2(1, 0), this.blurKernel, 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, this._textureType);
  69807. this._kernelBlurXPostprocess.width = targetSize;
  69808. this._kernelBlurXPostprocess.height = targetSize;
  69809. this._kernelBlurXPostprocess.onApplyObservable.add(function (effect) {
  69810. effect.setTexture("textureSampler", _this._shadowMap);
  69811. });
  69812. this._kernelBlurYPostprocess = new BABYLON.BlurPostProcess(this._light.name + "KernelBlurY", new BABYLON.Vector2(0, 1), this.blurKernel, 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, this._textureType);
  69813. this._kernelBlurXPostprocess.autoClear = false;
  69814. this._kernelBlurYPostprocess.autoClear = false;
  69815. if (this._textureType === BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT) {
  69816. this._kernelBlurXPostprocess.packedFloat = true;
  69817. this._kernelBlurYPostprocess.packedFloat = true;
  69818. }
  69819. this._blurPostProcesses = [this._kernelBlurXPostprocess, this._kernelBlurYPostprocess];
  69820. }
  69821. else {
  69822. this._boxBlurPostprocess = new BABYLON.PostProcess(this._light.name + "DepthBoxBlur", "depthBoxBlur", ["screenSize", "boxOffset"], [], 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, "#define OFFSET " + this._blurBoxOffset, this._textureType);
  69823. this._boxBlurPostprocess.onApplyObservable.add(function (effect) {
  69824. effect.setFloat2("screenSize", targetSize, targetSize);
  69825. effect.setTexture("textureSampler", _this._shadowMap);
  69826. });
  69827. this._boxBlurPostprocess.autoClear = false;
  69828. this._blurPostProcesses = [this._boxBlurPostprocess];
  69829. }
  69830. };
  69831. ShadowGenerator.prototype._renderForShadowMap = function (opaqueSubMeshes, alphaTestSubMeshes, transparentSubMeshes, depthOnlySubMeshes) {
  69832. var index;
  69833. var engine = this._scene.getEngine();
  69834. if (depthOnlySubMeshes.length) {
  69835. engine.setColorWrite(false);
  69836. for (index = 0; index < depthOnlySubMeshes.length; index++) {
  69837. this._renderSubMeshForShadowMap(depthOnlySubMeshes.data[index]);
  69838. }
  69839. engine.setColorWrite(true);
  69840. }
  69841. for (index = 0; index < opaqueSubMeshes.length; index++) {
  69842. this._renderSubMeshForShadowMap(opaqueSubMeshes.data[index]);
  69843. }
  69844. for (index = 0; index < alphaTestSubMeshes.length; index++) {
  69845. this._renderSubMeshForShadowMap(alphaTestSubMeshes.data[index]);
  69846. }
  69847. if (this._transparencyShadow) {
  69848. for (index = 0; index < transparentSubMeshes.length; index++) {
  69849. this._renderSubMeshForShadowMap(transparentSubMeshes.data[index]);
  69850. }
  69851. }
  69852. };
  69853. ShadowGenerator.prototype._renderSubMeshForShadowMap = function (subMesh) {
  69854. var _this = this;
  69855. var mesh = subMesh.getRenderingMesh();
  69856. var scene = this._scene;
  69857. var engine = scene.getEngine();
  69858. var material = subMesh.getMaterial();
  69859. if (!material) {
  69860. return;
  69861. }
  69862. // Culling
  69863. engine.setState(material.backFaceCulling);
  69864. // Managing instances
  69865. var batch = mesh._getInstancesRenderList(subMesh._id);
  69866. if (batch.mustReturn) {
  69867. return;
  69868. }
  69869. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null) && (batch.visibleInstances[subMesh._id] !== undefined);
  69870. if (this.isReady(subMesh, hardwareInstancedRendering)) {
  69871. engine.enableEffect(this._effect);
  69872. mesh._bind(subMesh, this._effect, BABYLON.Material.TriangleFillMode);
  69873. this._effect.setFloat3("biasAndScale", this.bias, this.normalBias, this.depthScale);
  69874. this._effect.setMatrix("viewProjection", this.getTransformMatrix());
  69875. if (this.getLight().getTypeID() === BABYLON.Light.LIGHTTYPEID_DIRECTIONALLIGHT) {
  69876. this._effect.setVector3("lightData", this._cachedDirection);
  69877. }
  69878. else {
  69879. this._effect.setVector3("lightData", this._cachedPosition);
  69880. }
  69881. if (scene.activeCamera) {
  69882. this._effect.setFloat2("depthValues", this.getLight().getDepthMinZ(scene.activeCamera), this.getLight().getDepthMinZ(scene.activeCamera) + this.getLight().getDepthMaxZ(scene.activeCamera));
  69883. }
  69884. // Alpha test
  69885. if (material && material.needAlphaTesting()) {
  69886. var alphaTexture = material.getAlphaTestTexture();
  69887. if (alphaTexture) {
  69888. this._effect.setTexture("diffuseSampler", alphaTexture);
  69889. this._effect.setMatrix("diffuseMatrix", alphaTexture.getTextureMatrix() || this._defaultTextureMatrix);
  69890. }
  69891. }
  69892. // Bones
  69893. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  69894. this._effect.setMatrices("mBones", mesh.skeleton.getTransformMatrices((mesh)));
  69895. }
  69896. // Morph targets
  69897. BABYLON.MaterialHelper.BindMorphTargetParameters(mesh, this._effect);
  69898. if (this.forceBackFacesOnly) {
  69899. engine.setState(true, 0, false, true);
  69900. }
  69901. // Draw
  69902. mesh._processRendering(subMesh, this._effect, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { return _this._effect.setMatrix("world", world); });
  69903. if (this.forceBackFacesOnly) {
  69904. engine.setState(true, 0, false, false);
  69905. }
  69906. }
  69907. else {
  69908. // Need to reset refresh rate of the shadowMap
  69909. if (this._shadowMap) {
  69910. this._shadowMap.resetRefreshCounter();
  69911. }
  69912. }
  69913. };
  69914. ShadowGenerator.prototype._applyFilterValues = function () {
  69915. if (!this._shadowMap) {
  69916. return;
  69917. }
  69918. if (this.filter === ShadowGenerator.FILTER_NONE || this.filter === ShadowGenerator.FILTER_PCSS) {
  69919. this._shadowMap.updateSamplingMode(BABYLON.Texture.NEAREST_SAMPLINGMODE);
  69920. }
  69921. else {
  69922. this._shadowMap.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  69923. }
  69924. };
  69925. /**
  69926. * Forces all the attached effect to compile to enable rendering only once ready vs. lazyly compiling effects.
  69927. * @param onCompiled Callback triggered at the and of the effects compilation
  69928. * @param options Sets of optional options forcing the compilation with different modes
  69929. */
  69930. ShadowGenerator.prototype.forceCompilation = function (onCompiled, options) {
  69931. var _this = this;
  69932. var localOptions = __assign({ useInstances: false }, options);
  69933. var shadowMap = this.getShadowMap();
  69934. if (!shadowMap) {
  69935. if (onCompiled) {
  69936. onCompiled(this);
  69937. }
  69938. return;
  69939. }
  69940. var renderList = shadowMap.renderList;
  69941. if (!renderList) {
  69942. if (onCompiled) {
  69943. onCompiled(this);
  69944. }
  69945. return;
  69946. }
  69947. var subMeshes = new Array();
  69948. for (var _i = 0, renderList_1 = renderList; _i < renderList_1.length; _i++) {
  69949. var mesh = renderList_1[_i];
  69950. subMeshes.push.apply(subMeshes, mesh.subMeshes);
  69951. }
  69952. if (subMeshes.length === 0) {
  69953. if (onCompiled) {
  69954. onCompiled(this);
  69955. }
  69956. return;
  69957. }
  69958. var currentIndex = 0;
  69959. var checkReady = function () {
  69960. if (!_this._scene || !_this._scene.getEngine()) {
  69961. return;
  69962. }
  69963. while (_this.isReady(subMeshes[currentIndex], localOptions.useInstances)) {
  69964. currentIndex++;
  69965. if (currentIndex >= subMeshes.length) {
  69966. if (onCompiled) {
  69967. onCompiled(_this);
  69968. }
  69969. return;
  69970. }
  69971. }
  69972. setTimeout(checkReady, 16);
  69973. };
  69974. checkReady();
  69975. };
  69976. /**
  69977. * Forces all the attached effect to compile to enable rendering only once ready vs. lazyly compiling effects.
  69978. * @param options Sets of optional options forcing the compilation with different modes
  69979. * @returns A promise that resolves when the compilation completes
  69980. */
  69981. ShadowGenerator.prototype.forceCompilationAsync = function (options) {
  69982. var _this = this;
  69983. return new Promise(function (resolve) {
  69984. _this.forceCompilation(function () {
  69985. resolve();
  69986. }, options);
  69987. });
  69988. };
  69989. /**
  69990. * Determine wheter the shadow generator is ready or not (mainly all effects and related post processes needs to be ready).
  69991. * @param subMesh The submesh we want to render in the shadow map
  69992. * @param useInstances Defines wether will draw in the map using instances
  69993. * @returns true if ready otherwise, false
  69994. */
  69995. ShadowGenerator.prototype.isReady = function (subMesh, useInstances) {
  69996. var defines = [];
  69997. if (this._textureType !== BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT) {
  69998. defines.push("#define FLOAT");
  69999. }
  70000. if (this.useExponentialShadowMap || this.useBlurExponentialShadowMap) {
  70001. defines.push("#define ESM");
  70002. }
  70003. else if (this.usePercentageCloserFiltering || this.useContactHardeningShadow) {
  70004. defines.push("#define DEPTHTEXTURE");
  70005. }
  70006. var attribs = [BABYLON.VertexBuffer.PositionKind];
  70007. var mesh = subMesh.getMesh();
  70008. var material = subMesh.getMaterial();
  70009. // Normal bias.
  70010. if (this.normalBias && mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  70011. attribs.push(BABYLON.VertexBuffer.NormalKind);
  70012. defines.push("#define NORMAL");
  70013. if (mesh.nonUniformScaling) {
  70014. defines.push("#define NONUNIFORMSCALING");
  70015. }
  70016. if (this.getLight().getTypeID() === BABYLON.Light.LIGHTTYPEID_DIRECTIONALLIGHT) {
  70017. defines.push("#define DIRECTIONINLIGHTDATA");
  70018. }
  70019. }
  70020. // Alpha test
  70021. if (material && material.needAlphaTesting()) {
  70022. var alphaTexture = material.getAlphaTestTexture();
  70023. if (alphaTexture) {
  70024. defines.push("#define ALPHATEST");
  70025. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  70026. attribs.push(BABYLON.VertexBuffer.UVKind);
  70027. defines.push("#define UV1");
  70028. }
  70029. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  70030. if (alphaTexture.coordinatesIndex === 1) {
  70031. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  70032. defines.push("#define UV2");
  70033. }
  70034. }
  70035. }
  70036. }
  70037. // Bones
  70038. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  70039. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  70040. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  70041. if (mesh.numBoneInfluencers > 4) {
  70042. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  70043. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  70044. }
  70045. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  70046. defines.push("#define BonesPerMesh " + (mesh.skeleton.bones.length + 1));
  70047. }
  70048. else {
  70049. defines.push("#define NUM_BONE_INFLUENCERS 0");
  70050. }
  70051. // Morph targets
  70052. var manager = mesh.morphTargetManager;
  70053. var morphInfluencers = 0;
  70054. if (manager) {
  70055. if (manager.numInfluencers > 0) {
  70056. defines.push("#define MORPHTARGETS");
  70057. morphInfluencers = manager.numInfluencers;
  70058. defines.push("#define NUM_MORPH_INFLUENCERS " + morphInfluencers);
  70059. BABYLON.MaterialHelper.PrepareAttributesForMorphTargets(attribs, mesh, { "NUM_MORPH_INFLUENCERS": morphInfluencers });
  70060. }
  70061. }
  70062. // Instances
  70063. if (useInstances) {
  70064. defines.push("#define INSTANCES");
  70065. attribs.push("world0");
  70066. attribs.push("world1");
  70067. attribs.push("world2");
  70068. attribs.push("world3");
  70069. }
  70070. // Get correct effect
  70071. var join = defines.join("\n");
  70072. if (this._cachedDefines !== join) {
  70073. this._cachedDefines = join;
  70074. this._effect = this._scene.getEngine().createEffect("shadowMap", attribs, ["world", "mBones", "viewProjection", "diffuseMatrix", "lightData", "depthValues", "biasAndScale", "morphTargetInfluences"], ["diffuseSampler"], join, undefined, undefined, undefined, { maxSimultaneousMorphTargets: morphInfluencers });
  70075. }
  70076. if (!this._effect.isReady()) {
  70077. return false;
  70078. }
  70079. if (this.useBlurExponentialShadowMap || this.useBlurCloseExponentialShadowMap) {
  70080. if (!this._blurPostProcesses || !this._blurPostProcesses.length) {
  70081. this._initializeBlurRTTAndPostProcesses();
  70082. }
  70083. }
  70084. if (this._kernelBlurXPostprocess && !this._kernelBlurXPostprocess.isReady()) {
  70085. return false;
  70086. }
  70087. if (this._kernelBlurYPostprocess && !this._kernelBlurYPostprocess.isReady()) {
  70088. return false;
  70089. }
  70090. if (this._boxBlurPostprocess && !this._boxBlurPostprocess.isReady()) {
  70091. return false;
  70092. }
  70093. return true;
  70094. };
  70095. /**
  70096. * Prepare all the defines in a material relying on a shadow map at the specified light index.
  70097. * @param defines Defines of the material we want to update
  70098. * @param lightIndex Index of the light in the enabled light list of the material
  70099. */
  70100. ShadowGenerator.prototype.prepareDefines = function (defines, lightIndex) {
  70101. var scene = this._scene;
  70102. var light = this._light;
  70103. if (!scene.shadowsEnabled || !light.shadowEnabled) {
  70104. return;
  70105. }
  70106. defines["SHADOW" + lightIndex] = true;
  70107. if (this.useContactHardeningShadow) {
  70108. defines["SHADOWPCSS" + lightIndex] = true;
  70109. if (this._filteringQuality === ShadowGenerator.QUALITY_LOW) {
  70110. defines["SHADOWLOWQUALITY" + lightIndex] = true;
  70111. }
  70112. else if (this._filteringQuality === ShadowGenerator.QUALITY_MEDIUM) {
  70113. defines["SHADOWMEDIUMQUALITY" + lightIndex] = true;
  70114. }
  70115. // else default to high.
  70116. }
  70117. if (this.usePercentageCloserFiltering) {
  70118. defines["SHADOWPCF" + lightIndex] = true;
  70119. if (this._filteringQuality === ShadowGenerator.QUALITY_LOW) {
  70120. defines["SHADOWLOWQUALITY" + lightIndex] = true;
  70121. }
  70122. else if (this._filteringQuality === ShadowGenerator.QUALITY_MEDIUM) {
  70123. defines["SHADOWMEDIUMQUALITY" + lightIndex] = true;
  70124. }
  70125. // else default to high.
  70126. }
  70127. else if (this.usePoissonSampling) {
  70128. defines["SHADOWPOISSON" + lightIndex] = true;
  70129. }
  70130. else if (this.useExponentialShadowMap || this.useBlurExponentialShadowMap) {
  70131. defines["SHADOWESM" + lightIndex] = true;
  70132. }
  70133. else if (this.useCloseExponentialShadowMap || this.useBlurCloseExponentialShadowMap) {
  70134. defines["SHADOWCLOSEESM" + lightIndex] = true;
  70135. }
  70136. if (light.needCube()) {
  70137. defines["SHADOWCUBE" + lightIndex] = true;
  70138. }
  70139. };
  70140. /**
  70141. * Binds the shadow related information inside of an effect (information like near, far, darkness...
  70142. * defined in the generator but impacting the effect).
  70143. * @param lightIndex Index of the light in the enabled light list of the material owning the effect
  70144. * @param effect The effect we are binfing the information for
  70145. */
  70146. ShadowGenerator.prototype.bindShadowLight = function (lightIndex, effect) {
  70147. var light = this._light;
  70148. var scene = this._scene;
  70149. if (!scene.shadowsEnabled || !light.shadowEnabled) {
  70150. return;
  70151. }
  70152. var camera = scene.activeCamera;
  70153. if (!camera) {
  70154. return;
  70155. }
  70156. var shadowMap = this.getShadowMap();
  70157. if (!shadowMap) {
  70158. return;
  70159. }
  70160. if (!light.needCube()) {
  70161. effect.setMatrix("lightMatrix" + lightIndex, this.getTransformMatrix());
  70162. }
  70163. // Only PCF uses depth stencil texture.
  70164. if (this._filter === ShadowGenerator.FILTER_PCF) {
  70165. effect.setDepthStencilTexture("shadowSampler" + lightIndex, this.getShadowMapForRendering());
  70166. light._uniformBuffer.updateFloat4("shadowsInfo", this.getDarkness(), shadowMap.getSize().width, 1 / shadowMap.getSize().width, this.frustumEdgeFalloff, lightIndex);
  70167. }
  70168. else if (this._filter === ShadowGenerator.FILTER_PCSS) {
  70169. effect.setDepthStencilTexture("shadowSampler" + lightIndex, this.getShadowMapForRendering());
  70170. effect.setTexture("depthSampler" + lightIndex, this.getShadowMapForRendering());
  70171. light._uniformBuffer.updateFloat4("shadowsInfo", this.getDarkness(), 1 / shadowMap.getSize().width, this._contactHardeningLightSizeUVRatio * shadowMap.getSize().width, this.frustumEdgeFalloff, lightIndex);
  70172. }
  70173. else {
  70174. effect.setTexture("shadowSampler" + lightIndex, this.getShadowMapForRendering());
  70175. light._uniformBuffer.updateFloat4("shadowsInfo", this.getDarkness(), this.blurScale / shadowMap.getSize().width, this.depthScale, this.frustumEdgeFalloff, lightIndex);
  70176. }
  70177. light._uniformBuffer.updateFloat2("depthValues", this.getLight().getDepthMinZ(camera), this.getLight().getDepthMinZ(camera) + this.getLight().getDepthMaxZ(camera), lightIndex);
  70178. };
  70179. /**
  70180. * Gets the transformation matrix used to project the meshes into the map from the light point of view.
  70181. * (eq to shadow prjection matrix * light transform matrix)
  70182. * @returns The transform matrix used to create the shadow map
  70183. */
  70184. ShadowGenerator.prototype.getTransformMatrix = function () {
  70185. var scene = this._scene;
  70186. if (this._currentRenderID === scene.getRenderId() && this._currentFaceIndexCache === this._currentFaceIndex) {
  70187. return this._transformMatrix;
  70188. }
  70189. this._currentRenderID = scene.getRenderId();
  70190. this._currentFaceIndexCache = this._currentFaceIndex;
  70191. var lightPosition = this._light.position;
  70192. if (this._light.computeTransformedInformation()) {
  70193. lightPosition = this._light.transformedPosition;
  70194. }
  70195. BABYLON.Vector3.NormalizeToRef(this._light.getShadowDirection(this._currentFaceIndex), this._lightDirection);
  70196. if (Math.abs(BABYLON.Vector3.Dot(this._lightDirection, BABYLON.Vector3.Up())) === 1.0) {
  70197. this._lightDirection.z = 0.0000000000001; // Required to avoid perfectly perpendicular light
  70198. }
  70199. if (this._light.needProjectionMatrixCompute() || !this._cachedPosition || !this._cachedDirection || !lightPosition.equals(this._cachedPosition) || !this._lightDirection.equals(this._cachedDirection)) {
  70200. this._cachedPosition.copyFrom(lightPosition);
  70201. this._cachedDirection.copyFrom(this._lightDirection);
  70202. BABYLON.Matrix.LookAtLHToRef(lightPosition, lightPosition.add(this._lightDirection), BABYLON.Vector3.Up(), this._viewMatrix);
  70203. var shadowMap = this.getShadowMap();
  70204. if (shadowMap) {
  70205. var renderList = shadowMap.renderList;
  70206. if (renderList) {
  70207. this._light.setShadowProjectionMatrix(this._projectionMatrix, this._viewMatrix, renderList);
  70208. }
  70209. }
  70210. this._viewMatrix.multiplyToRef(this._projectionMatrix, this._transformMatrix);
  70211. }
  70212. return this._transformMatrix;
  70213. };
  70214. /**
  70215. * Recreates the shadow map dependencies like RTT and post processes. This can be used during the switch between
  70216. * Cube and 2D textures for instance.
  70217. */
  70218. ShadowGenerator.prototype.recreateShadowMap = function () {
  70219. var shadowMap = this._shadowMap;
  70220. if (!shadowMap) {
  70221. return;
  70222. }
  70223. // Track render list.
  70224. var renderList = shadowMap.renderList;
  70225. // Clean up existing data.
  70226. this._disposeRTTandPostProcesses();
  70227. // Reinitializes.
  70228. this._initializeGenerator();
  70229. // Reaffect the filter to ensure a correct fallback if necessary.
  70230. this.filter = this.filter;
  70231. // Reaffect the filter.
  70232. this._applyFilterValues();
  70233. // Reaffect Render List.
  70234. this._shadowMap.renderList = renderList;
  70235. };
  70236. ShadowGenerator.prototype._disposeBlurPostProcesses = function () {
  70237. if (this._shadowMap2) {
  70238. this._shadowMap2.dispose();
  70239. this._shadowMap2 = null;
  70240. }
  70241. if (this._boxBlurPostprocess) {
  70242. this._boxBlurPostprocess.dispose();
  70243. this._boxBlurPostprocess = null;
  70244. }
  70245. if (this._kernelBlurXPostprocess) {
  70246. this._kernelBlurXPostprocess.dispose();
  70247. this._kernelBlurXPostprocess = null;
  70248. }
  70249. if (this._kernelBlurYPostprocess) {
  70250. this._kernelBlurYPostprocess.dispose();
  70251. this._kernelBlurYPostprocess = null;
  70252. }
  70253. this._blurPostProcesses = [];
  70254. };
  70255. ShadowGenerator.prototype._disposeRTTandPostProcesses = function () {
  70256. if (this._shadowMap) {
  70257. this._shadowMap.dispose();
  70258. this._shadowMap = null;
  70259. }
  70260. this._disposeBlurPostProcesses();
  70261. };
  70262. /**
  70263. * Disposes the ShadowGenerator.
  70264. * Returns nothing.
  70265. */
  70266. ShadowGenerator.prototype.dispose = function () {
  70267. this._disposeRTTandPostProcesses();
  70268. if (this._light) {
  70269. this._light._shadowGenerator = null;
  70270. this._light._markMeshesAsLightDirty();
  70271. }
  70272. };
  70273. /**
  70274. * Serializes the shadow generator setup to a json object.
  70275. * @returns The serialized JSON object
  70276. */
  70277. ShadowGenerator.prototype.serialize = function () {
  70278. var serializationObject = {};
  70279. var shadowMap = this.getShadowMap();
  70280. if (!shadowMap) {
  70281. return serializationObject;
  70282. }
  70283. serializationObject.lightId = this._light.id;
  70284. serializationObject.mapSize = shadowMap.getRenderSize();
  70285. serializationObject.useExponentialShadowMap = this.useExponentialShadowMap;
  70286. serializationObject.useBlurExponentialShadowMap = this.useBlurExponentialShadowMap;
  70287. serializationObject.useCloseExponentialShadowMap = this.useBlurExponentialShadowMap;
  70288. serializationObject.useBlurCloseExponentialShadowMap = this.useBlurExponentialShadowMap;
  70289. serializationObject.usePoissonSampling = this.usePoissonSampling;
  70290. serializationObject.forceBackFacesOnly = this.forceBackFacesOnly;
  70291. serializationObject.depthScale = this.depthScale;
  70292. serializationObject.darkness = this.getDarkness();
  70293. serializationObject.blurBoxOffset = this.blurBoxOffset;
  70294. serializationObject.blurKernel = this.blurKernel;
  70295. serializationObject.blurScale = this.blurScale;
  70296. serializationObject.useKernelBlur = this.useKernelBlur;
  70297. serializationObject.transparencyShadow = this._transparencyShadow;
  70298. serializationObject.frustumEdgeFalloff = this.frustumEdgeFalloff;
  70299. serializationObject.bias = this.bias;
  70300. serializationObject.normalBias = this.normalBias;
  70301. serializationObject.usePercentageCloserFiltering = this.usePercentageCloserFiltering;
  70302. serializationObject.useContactHardeningShadow = this.useContactHardeningShadow;
  70303. serializationObject.filteringQuality = this.filteringQuality;
  70304. serializationObject.contactHardeningLightSizeUVRatio = this.contactHardeningLightSizeUVRatio;
  70305. serializationObject.renderList = [];
  70306. if (shadowMap.renderList) {
  70307. for (var meshIndex = 0; meshIndex < shadowMap.renderList.length; meshIndex++) {
  70308. var mesh = shadowMap.renderList[meshIndex];
  70309. serializationObject.renderList.push(mesh.id);
  70310. }
  70311. }
  70312. return serializationObject;
  70313. };
  70314. /**
  70315. * Parses a serialized ShadowGenerator and returns a new ShadowGenerator.
  70316. * @param parsedShadowGenerator The JSON object to parse
  70317. * @param scene The scene to create the shadow map for
  70318. * @returns The parsed shadow generator
  70319. */
  70320. ShadowGenerator.Parse = function (parsedShadowGenerator, scene) {
  70321. var light = scene.getLightByID(parsedShadowGenerator.lightId);
  70322. var shadowGenerator = new ShadowGenerator(parsedShadowGenerator.mapSize, light);
  70323. var shadowMap = shadowGenerator.getShadowMap();
  70324. for (var meshIndex = 0; meshIndex < parsedShadowGenerator.renderList.length; meshIndex++) {
  70325. var meshes = scene.getMeshesByID(parsedShadowGenerator.renderList[meshIndex]);
  70326. meshes.forEach(function (mesh) {
  70327. if (!shadowMap) {
  70328. return;
  70329. }
  70330. if (!shadowMap.renderList) {
  70331. shadowMap.renderList = [];
  70332. }
  70333. shadowMap.renderList.push(mesh);
  70334. });
  70335. }
  70336. if (parsedShadowGenerator.usePoissonSampling) {
  70337. shadowGenerator.usePoissonSampling = true;
  70338. }
  70339. else if (parsedShadowGenerator.useExponentialShadowMap) {
  70340. shadowGenerator.useExponentialShadowMap = true;
  70341. }
  70342. else if (parsedShadowGenerator.useBlurExponentialShadowMap) {
  70343. shadowGenerator.useBlurExponentialShadowMap = true;
  70344. }
  70345. else if (parsedShadowGenerator.useCloseExponentialShadowMap) {
  70346. shadowGenerator.useCloseExponentialShadowMap = true;
  70347. }
  70348. else if (parsedShadowGenerator.useBlurCloseExponentialShadowMap) {
  70349. shadowGenerator.useBlurCloseExponentialShadowMap = true;
  70350. }
  70351. else if (parsedShadowGenerator.usePercentageCloserFiltering) {
  70352. shadowGenerator.usePercentageCloserFiltering = true;
  70353. }
  70354. else if (parsedShadowGenerator.useContactHardeningShadow) {
  70355. shadowGenerator.useContactHardeningShadow = true;
  70356. }
  70357. if (parsedShadowGenerator.filteringQuality) {
  70358. shadowGenerator.filteringQuality = parsedShadowGenerator.filteringQuality;
  70359. }
  70360. if (parsedShadowGenerator.contactHardeningLightSizeUVRatio) {
  70361. shadowGenerator.contactHardeningLightSizeUVRatio = parsedShadowGenerator.contactHardeningLightSizeUVRatio;
  70362. }
  70363. // Backward compat
  70364. else if (parsedShadowGenerator.useVarianceShadowMap) {
  70365. shadowGenerator.useExponentialShadowMap = true;
  70366. }
  70367. else if (parsedShadowGenerator.useBlurVarianceShadowMap) {
  70368. shadowGenerator.useBlurExponentialShadowMap = true;
  70369. }
  70370. if (parsedShadowGenerator.depthScale) {
  70371. shadowGenerator.depthScale = parsedShadowGenerator.depthScale;
  70372. }
  70373. if (parsedShadowGenerator.blurScale) {
  70374. shadowGenerator.blurScale = parsedShadowGenerator.blurScale;
  70375. }
  70376. if (parsedShadowGenerator.blurBoxOffset) {
  70377. shadowGenerator.blurBoxOffset = parsedShadowGenerator.blurBoxOffset;
  70378. }
  70379. if (parsedShadowGenerator.useKernelBlur) {
  70380. shadowGenerator.useKernelBlur = parsedShadowGenerator.useKernelBlur;
  70381. }
  70382. if (parsedShadowGenerator.blurKernel) {
  70383. shadowGenerator.blurKernel = parsedShadowGenerator.blurKernel;
  70384. }
  70385. if (parsedShadowGenerator.bias !== undefined) {
  70386. shadowGenerator.bias = parsedShadowGenerator.bias;
  70387. }
  70388. if (parsedShadowGenerator.normalBias !== undefined) {
  70389. shadowGenerator.normalBias = parsedShadowGenerator.normalBias;
  70390. }
  70391. if (parsedShadowGenerator.frustumEdgeFalloff !== undefined) {
  70392. shadowGenerator.frustumEdgeFalloff = parsedShadowGenerator.frustumEdgeFalloff;
  70393. }
  70394. if (parsedShadowGenerator.darkness) {
  70395. shadowGenerator.setDarkness(parsedShadowGenerator.darkness);
  70396. }
  70397. if (parsedShadowGenerator.transparencyShadow) {
  70398. shadowGenerator.setTransparencyShadow(true);
  70399. }
  70400. shadowGenerator.forceBackFacesOnly = parsedShadowGenerator.forceBackFacesOnly;
  70401. return shadowGenerator;
  70402. };
  70403. /**
  70404. * Shadow generator mode None: no filtering applied.
  70405. */
  70406. ShadowGenerator.FILTER_NONE = 0;
  70407. /**
  70408. * Shadow generator mode ESM: Exponential Shadow Mapping.
  70409. * (http://developer.download.nvidia.com/presentations/2008/GDC/GDC08_SoftShadowMapping.pdf)
  70410. */
  70411. ShadowGenerator.FILTER_EXPONENTIALSHADOWMAP = 1;
  70412. /**
  70413. * Shadow generator mode Poisson Sampling: Percentage Closer Filtering.
  70414. * (Multiple Tap around evenly distributed around the pixel are used to evaluate the shadow strength)
  70415. */
  70416. ShadowGenerator.FILTER_POISSONSAMPLING = 2;
  70417. /**
  70418. * Shadow generator mode ESM: Blurred Exponential Shadow Mapping.
  70419. * (http://developer.download.nvidia.com/presentations/2008/GDC/GDC08_SoftShadowMapping.pdf)
  70420. */
  70421. ShadowGenerator.FILTER_BLUREXPONENTIALSHADOWMAP = 3;
  70422. /**
  70423. * Shadow generator mode ESM: Exponential Shadow Mapping using the inverse of the exponential preventing
  70424. * edge artifacts on steep falloff.
  70425. * (http://developer.download.nvidia.com/presentations/2008/GDC/GDC08_SoftShadowMapping.pdf)
  70426. */
  70427. ShadowGenerator.FILTER_CLOSEEXPONENTIALSHADOWMAP = 4;
  70428. /**
  70429. * Shadow generator mode ESM: Blurred Exponential Shadow Mapping using the inverse of the exponential preventing
  70430. * edge artifacts on steep falloff.
  70431. * (http://developer.download.nvidia.com/presentations/2008/GDC/GDC08_SoftShadowMapping.pdf)
  70432. */
  70433. ShadowGenerator.FILTER_BLURCLOSEEXPONENTIALSHADOWMAP = 5;
  70434. /**
  70435. * Shadow generator mode PCF: Percentage Closer Filtering
  70436. * benefits from Webgl 2 shadow samplers. Fallback to Poisson Sampling in Webgl 1
  70437. * (https://developer.nvidia.com/gpugems/GPUGems/gpugems_ch11.html)
  70438. */
  70439. ShadowGenerator.FILTER_PCF = 6;
  70440. /**
  70441. * Shadow generator mode PCSS: Percentage Closering Soft Shadow.
  70442. * benefits from Webgl 2 shadow samplers. Fallback to Poisson Sampling in Webgl 1
  70443. * Contact Hardening
  70444. */
  70445. ShadowGenerator.FILTER_PCSS = 7;
  70446. /**
  70447. * Reserved for PCF and PCSS
  70448. * Highest Quality.
  70449. *
  70450. * Execute PCF on a 5*5 kernel improving a lot the shadow aliasing artifacts.
  70451. *
  70452. * Execute PCSS with 32 taps blocker search and 64 taps PCF.
  70453. */
  70454. ShadowGenerator.QUALITY_HIGH = 0;
  70455. /**
  70456. * Reserved for PCF and PCSS
  70457. * Good tradeoff for quality/perf cross devices
  70458. *
  70459. * Execute PCF on a 3*3 kernel.
  70460. *
  70461. * Execute PCSS with 16 taps blocker search and 32 taps PCF.
  70462. */
  70463. ShadowGenerator.QUALITY_MEDIUM = 1;
  70464. /**
  70465. * Reserved for PCF and PCSS
  70466. * The lowest quality but the fastest.
  70467. *
  70468. * Execute PCF on a 1*1 kernel.
  70469. *
  70470. * Execute PCSS with 16 taps blocker search and 16 taps PCF.
  70471. */
  70472. ShadowGenerator.QUALITY_LOW = 2;
  70473. return ShadowGenerator;
  70474. }());
  70475. BABYLON.ShadowGenerator = ShadowGenerator;
  70476. })(BABYLON || (BABYLON = {}));
  70477. //# sourceMappingURL=babylon.shadowGenerator.js.map
  70478. var BABYLON;
  70479. (function (BABYLON) {
  70480. // Adds the parser to the scene parsers.
  70481. BABYLON.AbstractScene.AddParser(BABYLON.SceneComponentConstants.NAME_SHADOWGENERATOR, function (parsedData, scene, container, rootUrl) {
  70482. // Shadows
  70483. if (parsedData.shadowGenerators !== undefined && parsedData.shadowGenerators !== null) {
  70484. for (var index = 0, cache = parsedData.shadowGenerators.length; index < cache; index++) {
  70485. var parsedShadowGenerator = parsedData.shadowGenerators[index];
  70486. BABYLON.ShadowGenerator.Parse(parsedShadowGenerator, scene);
  70487. // SG would be available on their associated lights
  70488. }
  70489. }
  70490. });
  70491. /**
  70492. * Defines the shadow generator component responsible to manage any shadow generators
  70493. * in a given scene.
  70494. */
  70495. var ShadowGeneratorSceneComponent = /** @class */ (function () {
  70496. /**
  70497. * Creates a new instance of the component for the given scene
  70498. * @param scene Defines the scene to register the component in
  70499. */
  70500. function ShadowGeneratorSceneComponent(scene) {
  70501. /**
  70502. * The component name helpfull to identify the component in the list of scene components.
  70503. */
  70504. this.name = BABYLON.SceneComponentConstants.NAME_SHADOWGENERATOR;
  70505. this.scene = scene;
  70506. }
  70507. /**
  70508. * Registers the component in a given scene
  70509. */
  70510. ShadowGeneratorSceneComponent.prototype.register = function () {
  70511. this.scene._gatherRenderTargetsStage.registerStep(BABYLON.SceneComponentConstants.STEP_GATHERRENDERTARGETS_SHADOWGENERATOR, this, this._gatherRenderTargets);
  70512. };
  70513. /**
  70514. * Rebuilds the elements related to this component in case of
  70515. * context lost for instance.
  70516. */
  70517. ShadowGeneratorSceneComponent.prototype.rebuild = function () {
  70518. // Nothing To Do Here.
  70519. };
  70520. /**
  70521. * Serializes the component data to the specified json object
  70522. * @param serializationObject The object to serialize to
  70523. */
  70524. ShadowGeneratorSceneComponent.prototype.serialize = function (serializationObject) {
  70525. // Shadows
  70526. serializationObject.shadowGenerators = [];
  70527. var lights = this.scene.lights;
  70528. for (var _i = 0, lights_1 = lights; _i < lights_1.length; _i++) {
  70529. var light = lights_1[_i];
  70530. var shadowGenerator = light.getShadowGenerator();
  70531. if (shadowGenerator) {
  70532. serializationObject.shadowGenerators.push(shadowGenerator.serialize());
  70533. }
  70534. }
  70535. };
  70536. /**
  70537. * Adds all the element from the container to the scene
  70538. * @param container the container holding the elements
  70539. */
  70540. ShadowGeneratorSceneComponent.prototype.addFromContainer = function (container) {
  70541. // Nothing To Do Here. (directly attached to a light)
  70542. };
  70543. /**
  70544. * Removes all the elements in the container from the scene
  70545. * @param container contains the elements to remove
  70546. */
  70547. ShadowGeneratorSceneComponent.prototype.removeFromContainer = function (container) {
  70548. // Nothing To Do Here. (directly attached to a light)
  70549. };
  70550. /**
  70551. * Rebuilds the elements related to this component in case of
  70552. * context lost for instance.
  70553. */
  70554. ShadowGeneratorSceneComponent.prototype.dispose = function () {
  70555. // Nothing To Do Here.
  70556. };
  70557. ShadowGeneratorSceneComponent.prototype._gatherRenderTargets = function (renderTargets) {
  70558. // Shadows
  70559. var scene = this.scene;
  70560. if (this.scene.shadowsEnabled) {
  70561. for (var lightIndex = 0; lightIndex < scene.lights.length; lightIndex++) {
  70562. var light = scene.lights[lightIndex];
  70563. var shadowGenerator = light.getShadowGenerator();
  70564. if (light.isEnabled() && light.shadowEnabled && shadowGenerator) {
  70565. var shadowMap = (shadowGenerator.getShadowMap());
  70566. if (scene.textures.indexOf(shadowMap) !== -1) {
  70567. renderTargets.push(shadowMap);
  70568. }
  70569. }
  70570. }
  70571. }
  70572. };
  70573. return ShadowGeneratorSceneComponent;
  70574. }());
  70575. BABYLON.ShadowGeneratorSceneComponent = ShadowGeneratorSceneComponent;
  70576. })(BABYLON || (BABYLON = {}));
  70577. //# sourceMappingURL=babylon.shadowGeneratorSceneComponent.js.map
  70578. var BABYLON;
  70579. (function (BABYLON) {
  70580. var DefaultLoadingScreen = /** @class */ (function () {
  70581. function DefaultLoadingScreen(_renderingCanvas, _loadingText, _loadingDivBackgroundColor) {
  70582. if (_loadingText === void 0) { _loadingText = ""; }
  70583. if (_loadingDivBackgroundColor === void 0) { _loadingDivBackgroundColor = "black"; }
  70584. var _this = this;
  70585. this._renderingCanvas = _renderingCanvas;
  70586. this._loadingText = _loadingText;
  70587. this._loadingDivBackgroundColor = _loadingDivBackgroundColor;
  70588. // Resize
  70589. this._resizeLoadingUI = function () {
  70590. var canvasRect = _this._renderingCanvas.getBoundingClientRect();
  70591. var canvasPositioning = window.getComputedStyle(_this._renderingCanvas).position;
  70592. if (!_this._loadingDiv) {
  70593. return;
  70594. }
  70595. _this._loadingDiv.style.position = (canvasPositioning === "fixed") ? "fixed" : "absolute";
  70596. _this._loadingDiv.style.left = canvasRect.left + "px";
  70597. _this._loadingDiv.style.top = canvasRect.top + "px";
  70598. _this._loadingDiv.style.width = canvasRect.width + "px";
  70599. _this._loadingDiv.style.height = canvasRect.height + "px";
  70600. };
  70601. }
  70602. DefaultLoadingScreen.prototype.displayLoadingUI = function () {
  70603. if (this._loadingDiv) {
  70604. // Do not add a loading screen if there is already one
  70605. return;
  70606. }
  70607. this._loadingDiv = document.createElement("div");
  70608. this._loadingDiv.id = "babylonjsLoadingDiv";
  70609. this._loadingDiv.style.opacity = "0";
  70610. this._loadingDiv.style.transition = "opacity 1.5s ease";
  70611. this._loadingDiv.style.pointerEvents = "none";
  70612. // Loading text
  70613. this._loadingTextDiv = document.createElement("div");
  70614. this._loadingTextDiv.style.position = "absolute";
  70615. this._loadingTextDiv.style.left = "0";
  70616. this._loadingTextDiv.style.top = "50%";
  70617. this._loadingTextDiv.style.marginTop = "80px";
  70618. this._loadingTextDiv.style.width = "100%";
  70619. this._loadingTextDiv.style.height = "20px";
  70620. this._loadingTextDiv.style.fontFamily = "Arial";
  70621. this._loadingTextDiv.style.fontSize = "14px";
  70622. this._loadingTextDiv.style.color = "white";
  70623. this._loadingTextDiv.style.textAlign = "center";
  70624. this._loadingTextDiv.innerHTML = "Loading";
  70625. this._loadingDiv.appendChild(this._loadingTextDiv);
  70626. //set the predefined text
  70627. this._loadingTextDiv.innerHTML = this._loadingText;
  70628. // Generating keyframes
  70629. var style = document.createElement('style');
  70630. style.type = 'text/css';
  70631. var keyFrames = "@-webkit-keyframes spin1 { 0% { -webkit-transform: rotate(0deg);}\n 100% { -webkit-transform: rotate(360deg);}\n } @keyframes spin1 { 0% { transform: rotate(0deg);}\n 100% { transform: rotate(360deg);}\n }";
  70632. style.innerHTML = keyFrames;
  70633. document.getElementsByTagName('head')[0].appendChild(style);
  70634. // Loading img
  70635. var imgBack = new Image();
  70636. imgBack.src = "data:image/png;base64,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";
  70637. imgBack.style.position = "absolute";
  70638. imgBack.style.left = "50%";
  70639. imgBack.style.top = "50%";
  70640. imgBack.style.marginLeft = "-60px";
  70641. imgBack.style.marginTop = "-60px";
  70642. imgBack.style.animation = "spin1 2s infinite ease-in-out";
  70643. imgBack.style.webkitAnimation = "spin1 2s infinite ease-in-out";
  70644. imgBack.style.transformOrigin = "50% 50%";
  70645. imgBack.style.webkitTransformOrigin = "50% 50%";
  70646. this._loadingDiv.appendChild(imgBack);
  70647. this._resizeLoadingUI();
  70648. window.addEventListener("resize", this._resizeLoadingUI);
  70649. this._loadingDiv.style.backgroundColor = this._loadingDivBackgroundColor;
  70650. document.body.appendChild(this._loadingDiv);
  70651. this._loadingDiv.style.opacity = "1";
  70652. };
  70653. DefaultLoadingScreen.prototype.hideLoadingUI = function () {
  70654. var _this = this;
  70655. if (!this._loadingDiv) {
  70656. return;
  70657. }
  70658. var onTransitionEnd = function () {
  70659. if (!_this._loadingDiv) {
  70660. return;
  70661. }
  70662. document.body.removeChild(_this._loadingDiv);
  70663. window.removeEventListener("resize", _this._resizeLoadingUI);
  70664. _this._loadingDiv = null;
  70665. };
  70666. this._loadingDiv.style.opacity = "0";
  70667. this._loadingDiv.addEventListener("transitionend", onTransitionEnd);
  70668. };
  70669. Object.defineProperty(DefaultLoadingScreen.prototype, "loadingUIText", {
  70670. set: function (text) {
  70671. this._loadingText = text;
  70672. if (this._loadingTextDiv) {
  70673. this._loadingTextDiv.innerHTML = this._loadingText;
  70674. }
  70675. },
  70676. enumerable: true,
  70677. configurable: true
  70678. });
  70679. Object.defineProperty(DefaultLoadingScreen.prototype, "loadingUIBackgroundColor", {
  70680. get: function () {
  70681. return this._loadingDivBackgroundColor;
  70682. },
  70683. set: function (color) {
  70684. this._loadingDivBackgroundColor = color;
  70685. if (!this._loadingDiv) {
  70686. return;
  70687. }
  70688. this._loadingDiv.style.backgroundColor = this._loadingDivBackgroundColor;
  70689. },
  70690. enumerable: true,
  70691. configurable: true
  70692. });
  70693. return DefaultLoadingScreen;
  70694. }());
  70695. BABYLON.DefaultLoadingScreen = DefaultLoadingScreen;
  70696. })(BABYLON || (BABYLON = {}));
  70697. //# sourceMappingURL=babylon.loadingScreen.js.map
  70698. var BABYLON;
  70699. (function (BABYLON) {
  70700. var SceneLoaderProgressEvent = /** @class */ (function () {
  70701. function SceneLoaderProgressEvent(lengthComputable, loaded, total) {
  70702. this.lengthComputable = lengthComputable;
  70703. this.loaded = loaded;
  70704. this.total = total;
  70705. }
  70706. SceneLoaderProgressEvent.FromProgressEvent = function (event) {
  70707. return new SceneLoaderProgressEvent(event.lengthComputable, event.loaded, event.total);
  70708. };
  70709. return SceneLoaderProgressEvent;
  70710. }());
  70711. BABYLON.SceneLoaderProgressEvent = SceneLoaderProgressEvent;
  70712. var SceneLoader = /** @class */ (function () {
  70713. function SceneLoader() {
  70714. }
  70715. Object.defineProperty(SceneLoader, "NO_LOGGING", {
  70716. get: function () {
  70717. return 0;
  70718. },
  70719. enumerable: true,
  70720. configurable: true
  70721. });
  70722. Object.defineProperty(SceneLoader, "MINIMAL_LOGGING", {
  70723. get: function () {
  70724. return 1;
  70725. },
  70726. enumerable: true,
  70727. configurable: true
  70728. });
  70729. Object.defineProperty(SceneLoader, "SUMMARY_LOGGING", {
  70730. get: function () {
  70731. return 2;
  70732. },
  70733. enumerable: true,
  70734. configurable: true
  70735. });
  70736. Object.defineProperty(SceneLoader, "DETAILED_LOGGING", {
  70737. get: function () {
  70738. return 3;
  70739. },
  70740. enumerable: true,
  70741. configurable: true
  70742. });
  70743. Object.defineProperty(SceneLoader, "ForceFullSceneLoadingForIncremental", {
  70744. get: function () {
  70745. return SceneLoader._ForceFullSceneLoadingForIncremental;
  70746. },
  70747. set: function (value) {
  70748. SceneLoader._ForceFullSceneLoadingForIncremental = value;
  70749. },
  70750. enumerable: true,
  70751. configurable: true
  70752. });
  70753. Object.defineProperty(SceneLoader, "ShowLoadingScreen", {
  70754. get: function () {
  70755. return SceneLoader._ShowLoadingScreen;
  70756. },
  70757. set: function (value) {
  70758. SceneLoader._ShowLoadingScreen = value;
  70759. },
  70760. enumerable: true,
  70761. configurable: true
  70762. });
  70763. Object.defineProperty(SceneLoader, "loggingLevel", {
  70764. get: function () {
  70765. return SceneLoader._loggingLevel;
  70766. },
  70767. set: function (value) {
  70768. SceneLoader._loggingLevel = value;
  70769. },
  70770. enumerable: true,
  70771. configurable: true
  70772. });
  70773. Object.defineProperty(SceneLoader, "CleanBoneMatrixWeights", {
  70774. get: function () {
  70775. return SceneLoader._CleanBoneMatrixWeights;
  70776. },
  70777. set: function (value) {
  70778. SceneLoader._CleanBoneMatrixWeights = value;
  70779. },
  70780. enumerable: true,
  70781. configurable: true
  70782. });
  70783. SceneLoader._getDefaultPlugin = function () {
  70784. return SceneLoader._registeredPlugins[".babylon"];
  70785. };
  70786. SceneLoader._getPluginForExtension = function (extension) {
  70787. var registeredPlugin = SceneLoader._registeredPlugins[extension];
  70788. if (registeredPlugin) {
  70789. return registeredPlugin;
  70790. }
  70791. BABYLON.Tools.Warn("Unable to find a plugin to load " + extension + " files. Trying to use .babylon default plugin. To load from a specific filetype (eg. gltf) see: http://doc.babylonjs.com/how_to/load_from_any_file_type");
  70792. return SceneLoader._getDefaultPlugin();
  70793. };
  70794. SceneLoader._getPluginForDirectLoad = function (data) {
  70795. for (var extension in SceneLoader._registeredPlugins) {
  70796. var plugin = SceneLoader._registeredPlugins[extension].plugin;
  70797. if (plugin.canDirectLoad && plugin.canDirectLoad(data)) {
  70798. return SceneLoader._registeredPlugins[extension];
  70799. }
  70800. }
  70801. return SceneLoader._getDefaultPlugin();
  70802. };
  70803. SceneLoader._getPluginForFilename = function (sceneFilename) {
  70804. if (sceneFilename.name) {
  70805. sceneFilename = sceneFilename.name;
  70806. }
  70807. var queryStringPosition = sceneFilename.indexOf("?");
  70808. if (queryStringPosition !== -1) {
  70809. sceneFilename = sceneFilename.substring(0, queryStringPosition);
  70810. }
  70811. var dotPosition = sceneFilename.lastIndexOf(".");
  70812. var extension = sceneFilename.substring(dotPosition, sceneFilename.length).toLowerCase();
  70813. return SceneLoader._getPluginForExtension(extension);
  70814. };
  70815. // use babylon file loader directly if sceneFilename is prefixed with "data:"
  70816. SceneLoader._getDirectLoad = function (sceneFilename) {
  70817. if (sceneFilename.substr && sceneFilename.substr(0, 5) === "data:") {
  70818. return sceneFilename.substr(5);
  70819. }
  70820. return null;
  70821. };
  70822. SceneLoader._loadData = function (rootUrl, sceneFilename, scene, onSuccess, onProgress, onError, onDispose, pluginExtension) {
  70823. var directLoad = SceneLoader._getDirectLoad(sceneFilename);
  70824. var registeredPlugin = pluginExtension ? SceneLoader._getPluginForExtension(pluginExtension) : (directLoad ? SceneLoader._getPluginForDirectLoad(sceneFilename) : SceneLoader._getPluginForFilename(sceneFilename));
  70825. var plugin;
  70826. if (registeredPlugin.plugin.createPlugin) {
  70827. plugin = registeredPlugin.plugin.createPlugin();
  70828. }
  70829. else {
  70830. plugin = registeredPlugin.plugin;
  70831. }
  70832. var useArrayBuffer = registeredPlugin.isBinary;
  70833. var database;
  70834. SceneLoader.OnPluginActivatedObservable.notifyObservers(plugin);
  70835. var dataCallback = function (data, responseURL) {
  70836. if (scene.isDisposed) {
  70837. onError("Scene has been disposed");
  70838. return;
  70839. }
  70840. scene.database = database;
  70841. onSuccess(plugin, data, responseURL);
  70842. };
  70843. var request = null;
  70844. var pluginDisposed = false;
  70845. var onDisposeObservable = plugin.onDisposeObservable;
  70846. if (onDisposeObservable) {
  70847. onDisposeObservable.add(function () {
  70848. pluginDisposed = true;
  70849. if (request) {
  70850. request.abort();
  70851. request = null;
  70852. }
  70853. onDispose();
  70854. });
  70855. }
  70856. var manifestChecked = function () {
  70857. if (pluginDisposed) {
  70858. return;
  70859. }
  70860. var url = rootUrl + sceneFilename;
  70861. request = BABYLON.Tools.LoadFile(url, dataCallback, onProgress ? function (event) {
  70862. onProgress(SceneLoaderProgressEvent.FromProgressEvent(event));
  70863. } : undefined, database, useArrayBuffer, function (request, exception) {
  70864. onError("Failed to load scene." + (exception ? "" : " " + exception.message), exception);
  70865. });
  70866. };
  70867. if (directLoad) {
  70868. dataCallback(directLoad);
  70869. return plugin;
  70870. }
  70871. if (rootUrl.indexOf("file:") === -1) {
  70872. var engine = scene.getEngine();
  70873. var canUseOfflineSupport = engine.enableOfflineSupport;
  70874. if (canUseOfflineSupport) {
  70875. // Also check for exceptions
  70876. var exceptionFound = false;
  70877. for (var _i = 0, _a = scene.disableOfflineSupportExceptionRules; _i < _a.length; _i++) {
  70878. var regex = _a[_i];
  70879. if (regex.test(rootUrl + sceneFilename)) {
  70880. exceptionFound = true;
  70881. break;
  70882. }
  70883. }
  70884. canUseOfflineSupport = !exceptionFound;
  70885. }
  70886. if (canUseOfflineSupport) {
  70887. // Checking if a manifest file has been set for this scene and if offline mode has been requested
  70888. database = new BABYLON.Database(rootUrl + sceneFilename, manifestChecked, engine.disableManifestCheck);
  70889. }
  70890. else {
  70891. manifestChecked();
  70892. }
  70893. }
  70894. // Loading file from disk via input file or drag'n'drop
  70895. else {
  70896. var fileOrString = sceneFilename;
  70897. if (fileOrString.name) { // File
  70898. request = BABYLON.Tools.ReadFile(fileOrString, dataCallback, onProgress, useArrayBuffer);
  70899. }
  70900. else if (BABYLON.FilesInput.FilesToLoad[sceneFilename]) {
  70901. request = BABYLON.Tools.ReadFile(BABYLON.FilesInput.FilesToLoad[sceneFilename], dataCallback, onProgress, useArrayBuffer);
  70902. }
  70903. else {
  70904. onError("Unable to find file named " + sceneFilename);
  70905. }
  70906. }
  70907. return plugin;
  70908. };
  70909. // Public functions
  70910. SceneLoader.GetPluginForExtension = function (extension) {
  70911. return SceneLoader._getPluginForExtension(extension).plugin;
  70912. };
  70913. SceneLoader.IsPluginForExtensionAvailable = function (extension) {
  70914. return !!SceneLoader._registeredPlugins[extension];
  70915. };
  70916. SceneLoader.RegisterPlugin = function (plugin) {
  70917. if (typeof plugin.extensions === "string") {
  70918. var extension = plugin.extensions;
  70919. SceneLoader._registeredPlugins[extension.toLowerCase()] = {
  70920. plugin: plugin,
  70921. isBinary: false
  70922. };
  70923. }
  70924. else {
  70925. var extensions = plugin.extensions;
  70926. Object.keys(extensions).forEach(function (extension) {
  70927. SceneLoader._registeredPlugins[extension.toLowerCase()] = {
  70928. plugin: plugin,
  70929. isBinary: extensions[extension].isBinary
  70930. };
  70931. });
  70932. }
  70933. };
  70934. /**
  70935. * Import meshes into a scene
  70936. * @param meshNames an array of mesh names, a single mesh name, or empty string for all meshes that filter what meshes are imported
  70937. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  70938. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  70939. * @param scene the instance of BABYLON.Scene to append to
  70940. * @param onSuccess a callback with a list of imported meshes, particleSystems, and skeletons when import succeeds
  70941. * @param onProgress a callback with a progress event for each file being loaded
  70942. * @param onError a callback with the scene, a message, and possibly an exception when import fails
  70943. * @param pluginExtension the extension used to determine the plugin
  70944. * @returns The loaded plugin
  70945. */
  70946. SceneLoader.ImportMesh = function (meshNames, rootUrl, sceneFilename, scene, onSuccess, onProgress, onError, pluginExtension) {
  70947. if (sceneFilename === void 0) { sceneFilename = ""; }
  70948. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  70949. if (onSuccess === void 0) { onSuccess = null; }
  70950. if (onProgress === void 0) { onProgress = null; }
  70951. if (onError === void 0) { onError = null; }
  70952. if (pluginExtension === void 0) { pluginExtension = null; }
  70953. if (!scene) {
  70954. BABYLON.Tools.Error("No scene available to import mesh to");
  70955. return null;
  70956. }
  70957. if (!sceneFilename) {
  70958. sceneFilename = BABYLON.Tools.GetFilename(rootUrl);
  70959. rootUrl = BABYLON.Tools.GetFolderPath(rootUrl);
  70960. }
  70961. if (sceneFilename.substr && sceneFilename.substr(0, 1) === "/") {
  70962. BABYLON.Tools.Error("Wrong sceneFilename parameter");
  70963. return null;
  70964. }
  70965. var loadingToken = {};
  70966. scene._addPendingData(loadingToken);
  70967. var disposeHandler = function () {
  70968. scene._removePendingData(loadingToken);
  70969. };
  70970. var errorHandler = function (message, exception) {
  70971. var errorMessage = "Unable to import meshes from " + rootUrl + sceneFilename + ": " + message;
  70972. if (onError) {
  70973. onError(scene, errorMessage, exception);
  70974. }
  70975. else {
  70976. BABYLON.Tools.Error(errorMessage);
  70977. // should the exception be thrown?
  70978. }
  70979. disposeHandler();
  70980. };
  70981. var progressHandler = onProgress ? function (event) {
  70982. try {
  70983. onProgress(event);
  70984. }
  70985. catch (e) {
  70986. errorHandler("Error in onProgress callback", e);
  70987. }
  70988. } : undefined;
  70989. var successHandler = function (meshes, particleSystems, skeletons, animationGroups) {
  70990. scene.importedMeshesFiles.push(rootUrl + sceneFilename);
  70991. if (onSuccess) {
  70992. try {
  70993. onSuccess(meshes, particleSystems, skeletons, animationGroups);
  70994. }
  70995. catch (e) {
  70996. errorHandler("Error in onSuccess callback", e);
  70997. }
  70998. }
  70999. scene._removePendingData(loadingToken);
  71000. };
  71001. return SceneLoader._loadData(rootUrl, sceneFilename, scene, function (plugin, data, responseURL) {
  71002. if (plugin.rewriteRootURL) {
  71003. rootUrl = plugin.rewriteRootURL(rootUrl, responseURL);
  71004. }
  71005. if (sceneFilename === "") {
  71006. if (sceneFilename === "") {
  71007. rootUrl = BABYLON.Tools.GetFolderPath(rootUrl, true);
  71008. }
  71009. }
  71010. if (plugin.importMesh) {
  71011. var syncedPlugin = plugin;
  71012. var meshes = new Array();
  71013. var particleSystems = new Array();
  71014. var skeletons = new Array();
  71015. if (!syncedPlugin.importMesh(meshNames, scene, data, rootUrl, meshes, particleSystems, skeletons, errorHandler)) {
  71016. return;
  71017. }
  71018. scene.loadingPluginName = plugin.name;
  71019. successHandler(meshes, particleSystems, skeletons, []);
  71020. }
  71021. else {
  71022. var asyncedPlugin = plugin;
  71023. asyncedPlugin.importMeshAsync(meshNames, scene, data, rootUrl, progressHandler, rootUrl + sceneFilename).then(function (result) {
  71024. scene.loadingPluginName = plugin.name;
  71025. successHandler(result.meshes, result.particleSystems, result.skeletons, result.animationGroups);
  71026. }).catch(function (error) {
  71027. errorHandler(error.message, error);
  71028. });
  71029. }
  71030. }, progressHandler, errorHandler, disposeHandler, pluginExtension);
  71031. };
  71032. /**
  71033. * Import meshes into a scene
  71034. * @param meshNames an array of mesh names, a single mesh name, or empty string for all meshes that filter what meshes are imported
  71035. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71036. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71037. * @param scene the instance of BABYLON.Scene to append to
  71038. * @param onProgress a callback with a progress event for each file being loaded
  71039. * @param pluginExtension the extension used to determine the plugin
  71040. * @returns The loaded list of imported meshes, particle systems, skeletons, and animation groups
  71041. */
  71042. SceneLoader.ImportMeshAsync = function (meshNames, rootUrl, sceneFilename, scene, onProgress, pluginExtension) {
  71043. if (sceneFilename === void 0) { sceneFilename = ""; }
  71044. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  71045. if (onProgress === void 0) { onProgress = null; }
  71046. if (pluginExtension === void 0) { pluginExtension = null; }
  71047. return new Promise(function (resolve, reject) {
  71048. SceneLoader.ImportMesh(meshNames, rootUrl, sceneFilename, scene, function (meshes, particleSystems, skeletons, animationGroups) {
  71049. resolve({
  71050. meshes: meshes,
  71051. particleSystems: particleSystems,
  71052. skeletons: skeletons,
  71053. animationGroups: animationGroups
  71054. });
  71055. }, onProgress, function (scene, message, exception) {
  71056. reject(exception || new Error(message));
  71057. }, pluginExtension);
  71058. });
  71059. };
  71060. /**
  71061. * Load a scene
  71062. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71063. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71064. * @param engine is the instance of BABYLON.Engine to use to create the scene
  71065. * @param onSuccess a callback with the scene when import succeeds
  71066. * @param onProgress a callback with a progress event for each file being loaded
  71067. * @param onError a callback with the scene, a message, and possibly an exception when import fails
  71068. * @param pluginExtension the extension used to determine the plugin
  71069. * @returns The loaded plugin
  71070. */
  71071. SceneLoader.Load = function (rootUrl, sceneFilename, engine, onSuccess, onProgress, onError, pluginExtension) {
  71072. if (onSuccess === void 0) { onSuccess = null; }
  71073. if (onProgress === void 0) { onProgress = null; }
  71074. if (onError === void 0) { onError = null; }
  71075. if (pluginExtension === void 0) { pluginExtension = null; }
  71076. return SceneLoader.Append(rootUrl, sceneFilename, new BABYLON.Scene(engine), onSuccess, onProgress, onError, pluginExtension);
  71077. };
  71078. /**
  71079. * Load a scene
  71080. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71081. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71082. * @param engine is the instance of BABYLON.Engine to use to create the scene
  71083. * @param onProgress a callback with a progress event for each file being loaded
  71084. * @param pluginExtension the extension used to determine the plugin
  71085. * @returns The loaded scene
  71086. */
  71087. SceneLoader.LoadAsync = function (rootUrl, sceneFilename, engine, onProgress, pluginExtension) {
  71088. if (onProgress === void 0) { onProgress = null; }
  71089. if (pluginExtension === void 0) { pluginExtension = null; }
  71090. return new Promise(function (resolve, reject) {
  71091. SceneLoader.Load(rootUrl, sceneFilename, engine, function (scene) {
  71092. resolve(scene);
  71093. }, onProgress, function (scene, message, exception) {
  71094. reject(exception || new Error(message));
  71095. }, pluginExtension);
  71096. });
  71097. };
  71098. /**
  71099. * Append a scene
  71100. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71101. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71102. * @param scene is the instance of BABYLON.Scene to append to
  71103. * @param onSuccess a callback with the scene when import succeeds
  71104. * @param onProgress a callback with a progress event for each file being loaded
  71105. * @param onError a callback with the scene, a message, and possibly an exception when import fails
  71106. * @param pluginExtension the extension used to determine the plugin
  71107. * @returns The loaded plugin
  71108. */
  71109. SceneLoader.Append = function (rootUrl, sceneFilename, scene, onSuccess, onProgress, onError, pluginExtension) {
  71110. if (sceneFilename === void 0) { sceneFilename = ""; }
  71111. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  71112. if (onSuccess === void 0) { onSuccess = null; }
  71113. if (onProgress === void 0) { onProgress = null; }
  71114. if (onError === void 0) { onError = null; }
  71115. if (pluginExtension === void 0) { pluginExtension = null; }
  71116. if (!scene) {
  71117. BABYLON.Tools.Error("No scene available to append to");
  71118. return null;
  71119. }
  71120. if (!sceneFilename) {
  71121. sceneFilename = BABYLON.Tools.GetFilename(rootUrl);
  71122. rootUrl = BABYLON.Tools.GetFolderPath(rootUrl);
  71123. }
  71124. if (sceneFilename.substr && sceneFilename.substr(0, 1) === "/") {
  71125. BABYLON.Tools.Error("Wrong sceneFilename parameter");
  71126. return null;
  71127. }
  71128. if (SceneLoader.ShowLoadingScreen) {
  71129. scene.getEngine().displayLoadingUI();
  71130. }
  71131. var loadingToken = {};
  71132. scene._addPendingData(loadingToken);
  71133. var disposeHandler = function () {
  71134. scene._removePendingData(loadingToken);
  71135. scene.getEngine().hideLoadingUI();
  71136. };
  71137. var errorHandler = function (message, exception) {
  71138. var errorMessage = "Unable to load from " + rootUrl + sceneFilename + (message ? ": " + message : "");
  71139. if (onError) {
  71140. onError(scene, errorMessage, exception);
  71141. }
  71142. else {
  71143. BABYLON.Tools.Error(errorMessage);
  71144. // should the exception be thrown?
  71145. }
  71146. disposeHandler();
  71147. };
  71148. var progressHandler = onProgress ? function (event) {
  71149. try {
  71150. onProgress(event);
  71151. }
  71152. catch (e) {
  71153. errorHandler("Error in onProgress callback", e);
  71154. }
  71155. } : undefined;
  71156. var successHandler = function () {
  71157. if (onSuccess) {
  71158. try {
  71159. onSuccess(scene);
  71160. }
  71161. catch (e) {
  71162. errorHandler("Error in onSuccess callback", e);
  71163. }
  71164. }
  71165. scene._removePendingData(loadingToken);
  71166. };
  71167. return SceneLoader._loadData(rootUrl, sceneFilename, scene, function (plugin, data, responseURL) {
  71168. if (sceneFilename === "") {
  71169. rootUrl = BABYLON.Tools.GetFolderPath(rootUrl, true);
  71170. }
  71171. if (plugin.load) {
  71172. var syncedPlugin = plugin;
  71173. if (!syncedPlugin.load(scene, data, rootUrl, errorHandler)) {
  71174. return;
  71175. }
  71176. scene.loadingPluginName = plugin.name;
  71177. successHandler();
  71178. }
  71179. else {
  71180. var asyncedPlugin = plugin;
  71181. asyncedPlugin.loadAsync(scene, data, rootUrl, progressHandler, rootUrl + sceneFilename).then(function () {
  71182. scene.loadingPluginName = plugin.name;
  71183. successHandler();
  71184. }).catch(function (error) {
  71185. errorHandler(error.message, error);
  71186. });
  71187. }
  71188. if (SceneLoader.ShowLoadingScreen) {
  71189. scene.executeWhenReady(function () {
  71190. scene.getEngine().hideLoadingUI();
  71191. });
  71192. }
  71193. }, progressHandler, errorHandler, disposeHandler, pluginExtension);
  71194. };
  71195. /**
  71196. * Append a scene
  71197. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71198. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71199. * @param scene is the instance of BABYLON.Scene to append to
  71200. * @param onProgress a callback with a progress event for each file being loaded
  71201. * @param pluginExtension the extension used to determine the plugin
  71202. * @returns The given scene
  71203. */
  71204. SceneLoader.AppendAsync = function (rootUrl, sceneFilename, scene, onProgress, pluginExtension) {
  71205. if (sceneFilename === void 0) { sceneFilename = ""; }
  71206. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  71207. if (onProgress === void 0) { onProgress = null; }
  71208. if (pluginExtension === void 0) { pluginExtension = null; }
  71209. return new Promise(function (resolve, reject) {
  71210. SceneLoader.Append(rootUrl, sceneFilename, scene, function (scene) {
  71211. resolve(scene);
  71212. }, onProgress, function (scene, message, exception) {
  71213. reject(exception || new Error(message));
  71214. }, pluginExtension);
  71215. });
  71216. };
  71217. /**
  71218. * Load a scene into an asset container
  71219. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71220. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71221. * @param scene is the instance of BABYLON.Scene to append to (default: last created scene)
  71222. * @param onSuccess a callback with the scene when import succeeds
  71223. * @param onProgress a callback with a progress event for each file being loaded
  71224. * @param onError a callback with the scene, a message, and possibly an exception when import fails
  71225. * @param pluginExtension the extension used to determine the plugin
  71226. * @returns The loaded plugin
  71227. */
  71228. SceneLoader.LoadAssetContainer = function (rootUrl, sceneFilename, scene, onSuccess, onProgress, onError, pluginExtension) {
  71229. if (sceneFilename === void 0) { sceneFilename = ""; }
  71230. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  71231. if (onSuccess === void 0) { onSuccess = null; }
  71232. if (onProgress === void 0) { onProgress = null; }
  71233. if (onError === void 0) { onError = null; }
  71234. if (pluginExtension === void 0) { pluginExtension = null; }
  71235. if (!scene) {
  71236. BABYLON.Tools.Error("No scene available to load asset container to");
  71237. return null;
  71238. }
  71239. if (!sceneFilename) {
  71240. sceneFilename = BABYLON.Tools.GetFilename(rootUrl);
  71241. rootUrl = BABYLON.Tools.GetFolderPath(rootUrl);
  71242. }
  71243. if (sceneFilename.substr && sceneFilename.substr(0, 1) === "/") {
  71244. BABYLON.Tools.Error("Wrong sceneFilename parameter");
  71245. return null;
  71246. }
  71247. var loadingToken = {};
  71248. scene._addPendingData(loadingToken);
  71249. var disposeHandler = function () {
  71250. scene._removePendingData(loadingToken);
  71251. };
  71252. var errorHandler = function (message, exception) {
  71253. var errorMessage = "Unable to load assets from " + rootUrl + sceneFilename + (message ? ": " + message : "");
  71254. if (onError) {
  71255. onError(scene, errorMessage, exception);
  71256. }
  71257. else {
  71258. BABYLON.Tools.Error(errorMessage);
  71259. // should the exception be thrown?
  71260. }
  71261. disposeHandler();
  71262. };
  71263. var progressHandler = onProgress ? function (event) {
  71264. try {
  71265. onProgress(event);
  71266. }
  71267. catch (e) {
  71268. errorHandler("Error in onProgress callback", e);
  71269. }
  71270. } : undefined;
  71271. var successHandler = function (assets) {
  71272. if (onSuccess) {
  71273. try {
  71274. onSuccess(assets);
  71275. }
  71276. catch (e) {
  71277. errorHandler("Error in onSuccess callback", e);
  71278. }
  71279. }
  71280. scene._removePendingData(loadingToken);
  71281. };
  71282. return SceneLoader._loadData(rootUrl, sceneFilename, scene, function (plugin, data, responseURL) {
  71283. if (plugin.loadAssetContainer) {
  71284. var syncedPlugin = plugin;
  71285. var assetContainer = syncedPlugin.loadAssetContainer(scene, data, rootUrl, errorHandler);
  71286. if (!assetContainer) {
  71287. return;
  71288. }
  71289. scene.loadingPluginName = plugin.name;
  71290. successHandler(assetContainer);
  71291. }
  71292. else if (plugin.loadAssetContainerAsync) {
  71293. var asyncedPlugin = plugin;
  71294. asyncedPlugin.loadAssetContainerAsync(scene, data, rootUrl, progressHandler, rootUrl + sceneFilename).then(function (assetContainer) {
  71295. scene.loadingPluginName = plugin.name;
  71296. successHandler(assetContainer);
  71297. }).catch(function (error) {
  71298. errorHandler(error.message, error);
  71299. });
  71300. }
  71301. else {
  71302. errorHandler("LoadAssetContainer is not supported by this plugin. Plugin did not provide a loadAssetContainer or loadAssetContainerAsync method.");
  71303. }
  71304. if (SceneLoader.ShowLoadingScreen) {
  71305. scene.executeWhenReady(function () {
  71306. scene.getEngine().hideLoadingUI();
  71307. });
  71308. }
  71309. }, progressHandler, errorHandler, disposeHandler, pluginExtension);
  71310. };
  71311. /**
  71312. * Load a scene into an asset container
  71313. * @param rootUrl a string that defines the root url for scene and resources OR the concatenation of rootURL and filename (eg. http://example.com/test.glb)
  71314. * @param sceneFilename a string that defines the name of the scene file. can start with "data:" following by the stringified version of the scene (default: empty string)
  71315. * @param scene is the instance of BABYLON.Scene to append to
  71316. * @param onProgress a callback with a progress event for each file being loaded
  71317. * @param pluginExtension the extension used to determine the plugin
  71318. * @returns The loaded asset container
  71319. */
  71320. SceneLoader.LoadAssetContainerAsync = function (rootUrl, sceneFilename, scene, onProgress, pluginExtension) {
  71321. if (sceneFilename === void 0) { sceneFilename = ""; }
  71322. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  71323. if (onProgress === void 0) { onProgress = null; }
  71324. if (pluginExtension === void 0) { pluginExtension = null; }
  71325. return new Promise(function (resolve, reject) {
  71326. SceneLoader.LoadAssetContainer(rootUrl, sceneFilename, scene, function (assetContainer) {
  71327. resolve(assetContainer);
  71328. }, onProgress, function (scene, message, exception) {
  71329. reject(exception || new Error(message));
  71330. }, pluginExtension);
  71331. });
  71332. };
  71333. // Flags
  71334. SceneLoader._ForceFullSceneLoadingForIncremental = false;
  71335. SceneLoader._ShowLoadingScreen = true;
  71336. SceneLoader._CleanBoneMatrixWeights = false;
  71337. SceneLoader._loggingLevel = SceneLoader.NO_LOGGING;
  71338. // Members
  71339. SceneLoader.OnPluginActivatedObservable = new BABYLON.Observable();
  71340. SceneLoader._registeredPlugins = {};
  71341. return SceneLoader;
  71342. }());
  71343. BABYLON.SceneLoader = SceneLoader;
  71344. ;
  71345. })(BABYLON || (BABYLON = {}));
  71346. //# sourceMappingURL=babylon.sceneLoader.js.map
  71347. var BABYLON;
  71348. (function (BABYLON) {
  71349. var parseMaterialById = function (id, parsedData, scene, rootUrl) {
  71350. for (var index = 0, cache = parsedData.materials.length; index < cache; index++) {
  71351. var parsedMaterial = parsedData.materials[index];
  71352. if (parsedMaterial.id === id) {
  71353. return BABYLON.Material.Parse(parsedMaterial, scene, rootUrl);
  71354. }
  71355. }
  71356. return null;
  71357. };
  71358. var isDescendantOf = function (mesh, names, hierarchyIds) {
  71359. for (var i in names) {
  71360. if (mesh.name === names[i]) {
  71361. hierarchyIds.push(mesh.id);
  71362. return true;
  71363. }
  71364. }
  71365. if (mesh.parentId && hierarchyIds.indexOf(mesh.parentId) !== -1) {
  71366. hierarchyIds.push(mesh.id);
  71367. return true;
  71368. }
  71369. return false;
  71370. };
  71371. var logOperation = function (operation, producer) {
  71372. return operation + " of " + (producer ? producer.file + " from " + producer.name + " version: " + producer.version + ", exporter version: " + producer.exporter_version : "unknown");
  71373. };
  71374. var loadAssetContainer = function (scene, data, rootUrl, onError, addToScene) {
  71375. if (addToScene === void 0) { addToScene = false; }
  71376. var container = new BABYLON.AssetContainer(scene);
  71377. // Entire method running in try block, so ALWAYS logs as far as it got, only actually writes details
  71378. // when SceneLoader.debugLogging = true (default), or exception encountered.
  71379. // Everything stored in var log instead of writing separate lines to support only writing in exception,
  71380. // and avoid problems with multiple concurrent .babylon loads.
  71381. var log = "importScene has failed JSON parse";
  71382. try {
  71383. var parsedData = JSON.parse(data);
  71384. log = "";
  71385. var fullDetails = BABYLON.SceneLoader.loggingLevel === BABYLON.SceneLoader.DETAILED_LOGGING;
  71386. var index;
  71387. var cache;
  71388. // Lights
  71389. if (parsedData.lights !== undefined && parsedData.lights !== null) {
  71390. for (index = 0, cache = parsedData.lights.length; index < cache; index++) {
  71391. var parsedLight = parsedData.lights[index];
  71392. var light = BABYLON.Light.Parse(parsedLight, scene);
  71393. if (light) {
  71394. container.lights.push(light);
  71395. log += (index === 0 ? "\n\tLights:" : "");
  71396. log += "\n\t\t" + light.toString(fullDetails);
  71397. }
  71398. }
  71399. }
  71400. // Animations
  71401. if (parsedData.animations !== undefined && parsedData.animations !== null) {
  71402. for (index = 0, cache = parsedData.animations.length; index < cache; index++) {
  71403. var parsedAnimation = parsedData.animations[index];
  71404. var animation = BABYLON.Animation.Parse(parsedAnimation);
  71405. scene.animations.push(animation);
  71406. container.animations.push(animation);
  71407. log += (index === 0 ? "\n\tAnimations:" : "");
  71408. log += "\n\t\t" + animation.toString(fullDetails);
  71409. }
  71410. }
  71411. // Materials
  71412. if (parsedData.materials !== undefined && parsedData.materials !== null) {
  71413. for (index = 0, cache = parsedData.materials.length; index < cache; index++) {
  71414. var parsedMaterial = parsedData.materials[index];
  71415. var mat = BABYLON.Material.Parse(parsedMaterial, scene, rootUrl);
  71416. container.materials.push(mat);
  71417. log += (index === 0 ? "\n\tMaterials:" : "");
  71418. log += "\n\t\t" + mat.toString(fullDetails);
  71419. }
  71420. }
  71421. if (parsedData.multiMaterials !== undefined && parsedData.multiMaterials !== null) {
  71422. for (index = 0, cache = parsedData.multiMaterials.length; index < cache; index++) {
  71423. var parsedMultiMaterial = parsedData.multiMaterials[index];
  71424. var mmat = BABYLON.Material.ParseMultiMaterial(parsedMultiMaterial, scene);
  71425. container.multiMaterials.push(mmat);
  71426. log += (index === 0 ? "\n\tMultiMaterials:" : "");
  71427. log += "\n\t\t" + mmat.toString(fullDetails);
  71428. }
  71429. }
  71430. // Morph targets
  71431. if (parsedData.morphTargetManagers !== undefined && parsedData.morphTargetManagers !== null) {
  71432. for (var _i = 0, _a = parsedData.morphTargetManagers; _i < _a.length; _i++) {
  71433. var managerData = _a[_i];
  71434. container.morphTargetManagers.push(BABYLON.MorphTargetManager.Parse(managerData, scene));
  71435. }
  71436. }
  71437. // Skeletons
  71438. if (parsedData.skeletons !== undefined && parsedData.skeletons !== null) {
  71439. for (index = 0, cache = parsedData.skeletons.length; index < cache; index++) {
  71440. var parsedSkeleton = parsedData.skeletons[index];
  71441. var skeleton = BABYLON.Skeleton.Parse(parsedSkeleton, scene);
  71442. container.skeletons.push(skeleton);
  71443. log += (index === 0 ? "\n\tSkeletons:" : "");
  71444. log += "\n\t\t" + skeleton.toString(fullDetails);
  71445. }
  71446. }
  71447. // Geometries
  71448. var geometries = parsedData.geometries;
  71449. if (geometries !== undefined && geometries !== null) {
  71450. var addedGeometry = new Array();
  71451. // Boxes
  71452. var boxes = geometries.boxes;
  71453. if (boxes !== undefined && boxes !== null) {
  71454. for (index = 0, cache = boxes.length; index < cache; index++) {
  71455. var parsedBox = boxes[index];
  71456. addedGeometry.push(BABYLON.BoxGeometry.Parse(parsedBox, scene));
  71457. }
  71458. }
  71459. // Spheres
  71460. var spheres = geometries.spheres;
  71461. if (spheres !== undefined && spheres !== null) {
  71462. for (index = 0, cache = spheres.length; index < cache; index++) {
  71463. var parsedSphere = spheres[index];
  71464. addedGeometry.push(BABYLON.SphereGeometry.Parse(parsedSphere, scene));
  71465. }
  71466. }
  71467. // Cylinders
  71468. var cylinders = geometries.cylinders;
  71469. if (cylinders !== undefined && cylinders !== null) {
  71470. for (index = 0, cache = cylinders.length; index < cache; index++) {
  71471. var parsedCylinder = cylinders[index];
  71472. addedGeometry.push(BABYLON.CylinderGeometry.Parse(parsedCylinder, scene));
  71473. }
  71474. }
  71475. // Toruses
  71476. var toruses = geometries.toruses;
  71477. if (toruses !== undefined && toruses !== null) {
  71478. for (index = 0, cache = toruses.length; index < cache; index++) {
  71479. var parsedTorus = toruses[index];
  71480. addedGeometry.push(BABYLON.TorusGeometry.Parse(parsedTorus, scene));
  71481. }
  71482. }
  71483. // Grounds
  71484. var grounds = geometries.grounds;
  71485. if (grounds !== undefined && grounds !== null) {
  71486. for (index = 0, cache = grounds.length; index < cache; index++) {
  71487. var parsedGround = grounds[index];
  71488. addedGeometry.push(BABYLON.GroundGeometry.Parse(parsedGround, scene));
  71489. }
  71490. }
  71491. // Planes
  71492. var planes = geometries.planes;
  71493. if (planes !== undefined && planes !== null) {
  71494. for (index = 0, cache = planes.length; index < cache; index++) {
  71495. var parsedPlane = planes[index];
  71496. addedGeometry.push(BABYLON.PlaneGeometry.Parse(parsedPlane, scene));
  71497. }
  71498. }
  71499. // TorusKnots
  71500. var torusKnots = geometries.torusKnots;
  71501. if (torusKnots !== undefined && torusKnots !== null) {
  71502. for (index = 0, cache = torusKnots.length; index < cache; index++) {
  71503. var parsedTorusKnot = torusKnots[index];
  71504. addedGeometry.push(BABYLON.TorusKnotGeometry.Parse(parsedTorusKnot, scene));
  71505. }
  71506. }
  71507. // VertexData
  71508. var vertexData = geometries.vertexData;
  71509. if (vertexData !== undefined && vertexData !== null) {
  71510. for (index = 0, cache = vertexData.length; index < cache; index++) {
  71511. var parsedVertexData = vertexData[index];
  71512. addedGeometry.push(BABYLON.Geometry.Parse(parsedVertexData, scene, rootUrl));
  71513. }
  71514. }
  71515. addedGeometry.forEach(function (g) {
  71516. if (g) {
  71517. container.geometries.push(g);
  71518. }
  71519. });
  71520. }
  71521. // Transform nodes
  71522. if (parsedData.transformNodes !== undefined && parsedData.transformNodes !== null) {
  71523. for (index = 0, cache = parsedData.transformNodes.length; index < cache; index++) {
  71524. var parsedTransformNode = parsedData.transformNodes[index];
  71525. var node = BABYLON.TransformNode.Parse(parsedTransformNode, scene, rootUrl);
  71526. container.transformNodes.push(node);
  71527. }
  71528. }
  71529. // Meshes
  71530. if (parsedData.meshes !== undefined && parsedData.meshes !== null) {
  71531. for (index = 0, cache = parsedData.meshes.length; index < cache; index++) {
  71532. var parsedMesh = parsedData.meshes[index];
  71533. var mesh = BABYLON.Mesh.Parse(parsedMesh, scene, rootUrl);
  71534. container.meshes.push(mesh);
  71535. log += (index === 0 ? "\n\tMeshes:" : "");
  71536. log += "\n\t\t" + mesh.toString(fullDetails);
  71537. }
  71538. }
  71539. // Cameras
  71540. if (parsedData.cameras !== undefined && parsedData.cameras !== null) {
  71541. for (index = 0, cache = parsedData.cameras.length; index < cache; index++) {
  71542. var parsedCamera = parsedData.cameras[index];
  71543. var camera = BABYLON.Camera.Parse(parsedCamera, scene);
  71544. container.cameras.push(camera);
  71545. log += (index === 0 ? "\n\tCameras:" : "");
  71546. log += "\n\t\t" + camera.toString(fullDetails);
  71547. }
  71548. }
  71549. // Browsing all the graph to connect the dots
  71550. for (index = 0, cache = scene.cameras.length; index < cache; index++) {
  71551. var camera = scene.cameras[index];
  71552. if (camera._waitingParentId) {
  71553. camera.parent = scene.getLastEntryByID(camera._waitingParentId);
  71554. camera._waitingParentId = null;
  71555. }
  71556. }
  71557. for (index = 0, cache = scene.lights.length; index < cache; index++) {
  71558. var light_1 = scene.lights[index];
  71559. if (light_1 && light_1._waitingParentId) {
  71560. light_1.parent = scene.getLastEntryByID(light_1._waitingParentId);
  71561. light_1._waitingParentId = null;
  71562. }
  71563. }
  71564. // Sounds
  71565. // TODO: add sound
  71566. var loadedSounds = [];
  71567. var loadedSound;
  71568. if (BABYLON.AudioEngine && parsedData.sounds !== undefined && parsedData.sounds !== null) {
  71569. for (index = 0, cache = parsedData.sounds.length; index < cache; index++) {
  71570. var parsedSound = parsedData.sounds[index];
  71571. if (BABYLON.Engine.audioEngine.canUseWebAudio) {
  71572. if (!parsedSound.url)
  71573. parsedSound.url = parsedSound.name;
  71574. if (!loadedSounds[parsedSound.url]) {
  71575. loadedSound = BABYLON.Sound.Parse(parsedSound, scene, rootUrl);
  71576. loadedSounds[parsedSound.url] = loadedSound;
  71577. container.sounds.push(loadedSound);
  71578. }
  71579. else {
  71580. container.sounds.push(BABYLON.Sound.Parse(parsedSound, scene, rootUrl, loadedSounds[parsedSound.url]));
  71581. }
  71582. }
  71583. else {
  71584. container.sounds.push(new BABYLON.Sound(parsedSound.name, null, scene));
  71585. }
  71586. }
  71587. }
  71588. loadedSounds = [];
  71589. // Connect parents & children and parse actions
  71590. for (index = 0, cache = scene.transformNodes.length; index < cache; index++) {
  71591. var transformNode = scene.transformNodes[index];
  71592. if (transformNode._waitingParentId) {
  71593. transformNode.parent = scene.getLastEntryByID(transformNode._waitingParentId);
  71594. transformNode._waitingParentId = null;
  71595. }
  71596. }
  71597. for (index = 0, cache = scene.meshes.length; index < cache; index++) {
  71598. var mesh = scene.meshes[index];
  71599. if (mesh._waitingParentId) {
  71600. mesh.parent = scene.getLastEntryByID(mesh._waitingParentId);
  71601. mesh._waitingParentId = null;
  71602. }
  71603. if (mesh._waitingActions) {
  71604. BABYLON.ActionManager.Parse(mesh._waitingActions, mesh, scene);
  71605. mesh._waitingActions = null;
  71606. }
  71607. }
  71608. // freeze world matrix application
  71609. for (index = 0, cache = scene.meshes.length; index < cache; index++) {
  71610. var currentMesh = scene.meshes[index];
  71611. if (currentMesh._waitingFreezeWorldMatrix) {
  71612. currentMesh.freezeWorldMatrix();
  71613. currentMesh._waitingFreezeWorldMatrix = null;
  71614. }
  71615. else {
  71616. currentMesh.computeWorldMatrix(true);
  71617. }
  71618. }
  71619. // Lights exclusions / inclusions
  71620. for (index = 0, cache = scene.lights.length; index < cache; index++) {
  71621. var light_2 = scene.lights[index];
  71622. // Excluded check
  71623. if (light_2._excludedMeshesIds.length > 0) {
  71624. for (var excludedIndex = 0; excludedIndex < light_2._excludedMeshesIds.length; excludedIndex++) {
  71625. var excludedMesh = scene.getMeshByID(light_2._excludedMeshesIds[excludedIndex]);
  71626. if (excludedMesh) {
  71627. light_2.excludedMeshes.push(excludedMesh);
  71628. }
  71629. }
  71630. light_2._excludedMeshesIds = [];
  71631. }
  71632. // Included check
  71633. if (light_2._includedOnlyMeshesIds.length > 0) {
  71634. for (var includedOnlyIndex = 0; includedOnlyIndex < light_2._includedOnlyMeshesIds.length; includedOnlyIndex++) {
  71635. var includedOnlyMesh = scene.getMeshByID(light_2._includedOnlyMeshesIds[includedOnlyIndex]);
  71636. if (includedOnlyMesh) {
  71637. light_2.includedOnlyMeshes.push(includedOnlyMesh);
  71638. }
  71639. }
  71640. light_2._includedOnlyMeshesIds = [];
  71641. }
  71642. }
  71643. BABYLON.AbstractScene.Parse(parsedData, scene, container, rootUrl);
  71644. // Actions (scene)
  71645. if (parsedData.actions !== undefined && parsedData.actions !== null) {
  71646. BABYLON.ActionManager.Parse(parsedData.actions, null, scene);
  71647. }
  71648. if (!addToScene) {
  71649. container.removeAllFromScene();
  71650. }
  71651. }
  71652. catch (err) {
  71653. var msg = logOperation("loadAssets", parsedData ? parsedData.producer : "Unknown") + log;
  71654. if (onError) {
  71655. onError(msg, err);
  71656. }
  71657. else {
  71658. BABYLON.Tools.Log(msg);
  71659. throw err;
  71660. }
  71661. }
  71662. finally {
  71663. if (log !== null && BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.NO_LOGGING) {
  71664. BABYLON.Tools.Log(logOperation("loadAssets", parsedData ? parsedData.producer : "Unknown") + (BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.MINIMAL_LOGGING ? log : ""));
  71665. }
  71666. }
  71667. return container;
  71668. };
  71669. BABYLON.SceneLoader.RegisterPlugin({
  71670. name: "babylon.js",
  71671. extensions: ".babylon",
  71672. canDirectLoad: function (data) {
  71673. if (data.indexOf("babylon") !== -1) { // We consider that the producer string is filled
  71674. return true;
  71675. }
  71676. return false;
  71677. },
  71678. importMesh: function (meshesNames, scene, data, rootUrl, meshes, particleSystems, skeletons, onError) {
  71679. // Entire method running in try block, so ALWAYS logs as far as it got, only actually writes details
  71680. // when SceneLoader.debugLogging = true (default), or exception encountered.
  71681. // Everything stored in var log instead of writing separate lines to support only writing in exception,
  71682. // and avoid problems with multiple concurrent .babylon loads.
  71683. var log = "importMesh has failed JSON parse";
  71684. try {
  71685. var parsedData = JSON.parse(data);
  71686. log = "";
  71687. var fullDetails = BABYLON.SceneLoader.loggingLevel === BABYLON.SceneLoader.DETAILED_LOGGING;
  71688. if (!meshesNames) {
  71689. meshesNames = null;
  71690. }
  71691. else if (!Array.isArray(meshesNames)) {
  71692. meshesNames = [meshesNames];
  71693. }
  71694. var hierarchyIds = new Array();
  71695. if (parsedData.meshes !== undefined && parsedData.meshes !== null) {
  71696. var loadedSkeletonsIds = [];
  71697. var loadedMaterialsIds = [];
  71698. var index;
  71699. var cache;
  71700. for (index = 0, cache = parsedData.meshes.length; index < cache; index++) {
  71701. var parsedMesh = parsedData.meshes[index];
  71702. if (meshesNames === null || isDescendantOf(parsedMesh, meshesNames, hierarchyIds)) {
  71703. if (meshesNames !== null) {
  71704. // Remove found mesh name from list.
  71705. delete meshesNames[meshesNames.indexOf(parsedMesh.name)];
  71706. }
  71707. //Geometry?
  71708. if (parsedMesh.geometryId !== undefined && parsedMesh.geometryId !== null) {
  71709. //does the file contain geometries?
  71710. if (parsedData.geometries !== undefined && parsedData.geometries !== null) {
  71711. //find the correct geometry and add it to the scene
  71712. var found = false;
  71713. ["boxes", "spheres", "cylinders", "toruses", "grounds", "planes", "torusKnots", "vertexData"].forEach(function (geometryType) {
  71714. if (found === true || !parsedData.geometries[geometryType] || !(Array.isArray(parsedData.geometries[geometryType]))) {
  71715. return;
  71716. }
  71717. else {
  71718. parsedData.geometries[geometryType].forEach(function (parsedGeometryData) {
  71719. if (parsedGeometryData.id === parsedMesh.geometryId) {
  71720. switch (geometryType) {
  71721. case "boxes":
  71722. BABYLON.BoxGeometry.Parse(parsedGeometryData, scene);
  71723. break;
  71724. case "spheres":
  71725. BABYLON.SphereGeometry.Parse(parsedGeometryData, scene);
  71726. break;
  71727. case "cylinders":
  71728. BABYLON.CylinderGeometry.Parse(parsedGeometryData, scene);
  71729. break;
  71730. case "toruses":
  71731. BABYLON.TorusGeometry.Parse(parsedGeometryData, scene);
  71732. break;
  71733. case "grounds":
  71734. BABYLON.GroundGeometry.Parse(parsedGeometryData, scene);
  71735. break;
  71736. case "planes":
  71737. BABYLON.PlaneGeometry.Parse(parsedGeometryData, scene);
  71738. break;
  71739. case "torusKnots":
  71740. BABYLON.TorusKnotGeometry.Parse(parsedGeometryData, scene);
  71741. break;
  71742. case "vertexData":
  71743. BABYLON.Geometry.Parse(parsedGeometryData, scene, rootUrl);
  71744. break;
  71745. }
  71746. found = true;
  71747. }
  71748. });
  71749. }
  71750. });
  71751. if (found === false) {
  71752. BABYLON.Tools.Warn("Geometry not found for mesh " + parsedMesh.id);
  71753. }
  71754. }
  71755. }
  71756. // Material ?
  71757. if (parsedMesh.materialId) {
  71758. var materialFound = (loadedMaterialsIds.indexOf(parsedMesh.materialId) !== -1);
  71759. if (materialFound === false && parsedData.multiMaterials !== undefined && parsedData.multiMaterials !== null) {
  71760. for (var multimatIndex = 0, multimatCache = parsedData.multiMaterials.length; multimatIndex < multimatCache; multimatIndex++) {
  71761. var parsedMultiMaterial = parsedData.multiMaterials[multimatIndex];
  71762. if (parsedMultiMaterial.id === parsedMesh.materialId) {
  71763. for (var matIndex = 0, matCache = parsedMultiMaterial.materials.length; matIndex < matCache; matIndex++) {
  71764. var subMatId = parsedMultiMaterial.materials[matIndex];
  71765. loadedMaterialsIds.push(subMatId);
  71766. var mat = parseMaterialById(subMatId, parsedData, scene, rootUrl);
  71767. if (mat) {
  71768. log += "\n\tMaterial " + mat.toString(fullDetails);
  71769. }
  71770. }
  71771. loadedMaterialsIds.push(parsedMultiMaterial.id);
  71772. var mmat = BABYLON.Material.ParseMultiMaterial(parsedMultiMaterial, scene);
  71773. if (mmat) {
  71774. materialFound = true;
  71775. log += "\n\tMulti-Material " + mmat.toString(fullDetails);
  71776. }
  71777. break;
  71778. }
  71779. }
  71780. }
  71781. if (materialFound === false) {
  71782. loadedMaterialsIds.push(parsedMesh.materialId);
  71783. var mat = parseMaterialById(parsedMesh.materialId, parsedData, scene, rootUrl);
  71784. if (!mat) {
  71785. BABYLON.Tools.Warn("Material not found for mesh " + parsedMesh.id);
  71786. }
  71787. else {
  71788. log += "\n\tMaterial " + mat.toString(fullDetails);
  71789. }
  71790. }
  71791. }
  71792. // Skeleton ?
  71793. if (parsedMesh.skeletonId > -1 && parsedData.skeletons !== undefined && parsedData.skeletons !== null) {
  71794. var skeletonAlreadyLoaded = (loadedSkeletonsIds.indexOf(parsedMesh.skeletonId) > -1);
  71795. if (skeletonAlreadyLoaded === false) {
  71796. for (var skeletonIndex = 0, skeletonCache = parsedData.skeletons.length; skeletonIndex < skeletonCache; skeletonIndex++) {
  71797. var parsedSkeleton = parsedData.skeletons[skeletonIndex];
  71798. if (parsedSkeleton.id === parsedMesh.skeletonId) {
  71799. var skeleton = BABYLON.Skeleton.Parse(parsedSkeleton, scene);
  71800. skeletons.push(skeleton);
  71801. loadedSkeletonsIds.push(parsedSkeleton.id);
  71802. log += "\n\tSkeleton " + skeleton.toString(fullDetails);
  71803. }
  71804. }
  71805. }
  71806. }
  71807. // Morph targets ?
  71808. if (parsedData.morphTargetManagers !== undefined && parsedData.morphTargetManagers !== null) {
  71809. for (var _i = 0, _a = parsedData.morphTargetManagers; _i < _a.length; _i++) {
  71810. var managerData = _a[_i];
  71811. BABYLON.MorphTargetManager.Parse(managerData, scene);
  71812. }
  71813. }
  71814. var mesh = BABYLON.Mesh.Parse(parsedMesh, scene, rootUrl);
  71815. meshes.push(mesh);
  71816. log += "\n\tMesh " + mesh.toString(fullDetails);
  71817. }
  71818. }
  71819. // Connecting parents
  71820. var currentMesh;
  71821. for (index = 0, cache = scene.meshes.length; index < cache; index++) {
  71822. currentMesh = scene.meshes[index];
  71823. if (currentMesh._waitingParentId) {
  71824. currentMesh.parent = scene.getLastEntryByID(currentMesh._waitingParentId);
  71825. currentMesh._waitingParentId = null;
  71826. }
  71827. }
  71828. // freeze and compute world matrix application
  71829. for (index = 0, cache = scene.meshes.length; index < cache; index++) {
  71830. currentMesh = scene.meshes[index];
  71831. if (currentMesh._waitingFreezeWorldMatrix) {
  71832. currentMesh.freezeWorldMatrix();
  71833. currentMesh._waitingFreezeWorldMatrix = null;
  71834. }
  71835. else {
  71836. currentMesh.computeWorldMatrix(true);
  71837. }
  71838. }
  71839. }
  71840. // Particles
  71841. if (parsedData.particleSystems !== undefined && parsedData.particleSystems !== null) {
  71842. var parser = BABYLON.AbstractScene.GetIndividualParser(BABYLON.SceneComponentConstants.NAME_PARTICLESYSTEM);
  71843. if (parser) {
  71844. for (index = 0, cache = parsedData.particleSystems.length; index < cache; index++) {
  71845. var parsedParticleSystem = parsedData.particleSystems[index];
  71846. if (hierarchyIds.indexOf(parsedParticleSystem.emitterId) !== -1) {
  71847. particleSystems.push(parser(parsedParticleSystem, scene, rootUrl));
  71848. }
  71849. }
  71850. }
  71851. }
  71852. return true;
  71853. }
  71854. catch (err) {
  71855. var msg = logOperation("importMesh", parsedData ? parsedData.producer : "Unknown") + log;
  71856. if (onError) {
  71857. onError(msg, err);
  71858. }
  71859. else {
  71860. BABYLON.Tools.Log(msg);
  71861. throw err;
  71862. }
  71863. }
  71864. finally {
  71865. if (log !== null && BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.NO_LOGGING) {
  71866. BABYLON.Tools.Log(logOperation("importMesh", parsedData ? parsedData.producer : "Unknown") + (BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.MINIMAL_LOGGING ? log : ""));
  71867. }
  71868. }
  71869. return false;
  71870. },
  71871. load: function (scene, data, rootUrl, onError) {
  71872. // Entire method running in try block, so ALWAYS logs as far as it got, only actually writes details
  71873. // when SceneLoader.debugLogging = true (default), or exception encountered.
  71874. // Everything stored in var log instead of writing separate lines to support only writing in exception,
  71875. // and avoid problems with multiple concurrent .babylon loads.
  71876. var log = "importScene has failed JSON parse";
  71877. try {
  71878. var parsedData = JSON.parse(data);
  71879. log = "";
  71880. // Scene
  71881. if (parsedData.useDelayedTextureLoading !== undefined && parsedData.useDelayedTextureLoading !== null) {
  71882. scene.useDelayedTextureLoading = parsedData.useDelayedTextureLoading && !BABYLON.SceneLoader.ForceFullSceneLoadingForIncremental;
  71883. }
  71884. if (parsedData.autoClear !== undefined && parsedData.autoClear !== null) {
  71885. scene.autoClear = parsedData.autoClear;
  71886. }
  71887. if (parsedData.clearColor !== undefined && parsedData.clearColor !== null) {
  71888. scene.clearColor = BABYLON.Color4.FromArray(parsedData.clearColor);
  71889. }
  71890. if (parsedData.ambientColor !== undefined && parsedData.ambientColor !== null) {
  71891. scene.ambientColor = BABYLON.Color3.FromArray(parsedData.ambientColor);
  71892. }
  71893. if (parsedData.gravity !== undefined && parsedData.gravity !== null) {
  71894. scene.gravity = BABYLON.Vector3.FromArray(parsedData.gravity);
  71895. }
  71896. // Fog
  71897. if (parsedData.fogMode && parsedData.fogMode !== 0) {
  71898. scene.fogMode = parsedData.fogMode;
  71899. scene.fogColor = BABYLON.Color3.FromArray(parsedData.fogColor);
  71900. scene.fogStart = parsedData.fogStart;
  71901. scene.fogEnd = parsedData.fogEnd;
  71902. scene.fogDensity = parsedData.fogDensity;
  71903. log += "\tFog mode for scene: ";
  71904. switch (scene.fogMode) {
  71905. // getters not compiling, so using hardcoded
  71906. case 1:
  71907. log += "exp\n";
  71908. break;
  71909. case 2:
  71910. log += "exp2\n";
  71911. break;
  71912. case 3:
  71913. log += "linear\n";
  71914. break;
  71915. }
  71916. }
  71917. //Physics
  71918. if (parsedData.physicsEnabled) {
  71919. var physicsPlugin;
  71920. if (parsedData.physicsEngine === "cannon") {
  71921. physicsPlugin = new BABYLON.CannonJSPlugin();
  71922. }
  71923. else if (parsedData.physicsEngine === "oimo") {
  71924. physicsPlugin = new BABYLON.OimoJSPlugin();
  71925. }
  71926. log = "\tPhysics engine " + (parsedData.physicsEngine ? parsedData.physicsEngine : "oimo") + " enabled\n";
  71927. //else - default engine, which is currently oimo
  71928. var physicsGravity = parsedData.physicsGravity ? BABYLON.Vector3.FromArray(parsedData.physicsGravity) : null;
  71929. scene.enablePhysics(physicsGravity, physicsPlugin);
  71930. }
  71931. // Metadata
  71932. if (parsedData.metadata !== undefined && parsedData.metadata !== null) {
  71933. scene.metadata = parsedData.metadata;
  71934. }
  71935. //collisions, if defined. otherwise, default is true
  71936. if (parsedData.collisionsEnabled !== undefined && parsedData.collisionsEnabled !== null) {
  71937. scene.collisionsEnabled = parsedData.collisionsEnabled;
  71938. }
  71939. scene.workerCollisions = !!parsedData.workerCollisions;
  71940. var container = loadAssetContainer(scene, data, rootUrl, onError, true);
  71941. if (!container) {
  71942. return false;
  71943. }
  71944. if (parsedData.autoAnimate) {
  71945. scene.beginAnimation(scene, parsedData.autoAnimateFrom, parsedData.autoAnimateTo, parsedData.autoAnimateLoop, parsedData.autoAnimateSpeed || 1.0);
  71946. }
  71947. if (parsedData.activeCameraID !== undefined && parsedData.activeCameraID !== null) {
  71948. scene.setActiveCameraByID(parsedData.activeCameraID);
  71949. }
  71950. // Environment texture
  71951. if (parsedData.environmentTexture !== undefined && parsedData.environmentTexture !== null) {
  71952. if (parsedData.environmentTextureType && parsedData.environmentTextureType === "BABYLON.HDRCubeTexture") {
  71953. var hdrSize = (parsedData.environmentTextureSize) ? parsedData.environmentTextureSize : 128;
  71954. var hdrTexture = new BABYLON.HDRCubeTexture(rootUrl + parsedData.environmentTexture, scene, hdrSize);
  71955. if (parsedData.environmentTextureRotationY) {
  71956. hdrTexture.rotationY = parsedData.environmentTextureRotationY;
  71957. }
  71958. scene.environmentTexture = hdrTexture;
  71959. }
  71960. else {
  71961. var cubeTexture = BABYLON.CubeTexture.CreateFromPrefilteredData(rootUrl + parsedData.environmentTexture, scene);
  71962. if (parsedData.environmentTextureRotationY) {
  71963. cubeTexture.rotationY = parsedData.environmentTextureRotationY;
  71964. }
  71965. scene.environmentTexture = cubeTexture;
  71966. }
  71967. if (parsedData.createDefaultSkybox === true) {
  71968. var skyboxScale = (scene.activeCamera !== undefined && scene.activeCamera !== null) ? (scene.activeCamera.maxZ - scene.activeCamera.minZ) / 2 : 1000;
  71969. var skyboxBlurLevel = parsedData.skyboxBlurLevel || 0;
  71970. scene.createDefaultSkybox(undefined, true, skyboxScale, skyboxBlurLevel);
  71971. }
  71972. }
  71973. // Finish
  71974. return true;
  71975. }
  71976. catch (err) {
  71977. var msg = logOperation("importScene", parsedData ? parsedData.producer : "Unknown") + log;
  71978. if (onError) {
  71979. onError(msg, err);
  71980. }
  71981. else {
  71982. BABYLON.Tools.Log(msg);
  71983. throw err;
  71984. }
  71985. }
  71986. finally {
  71987. if (log !== null && BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.NO_LOGGING) {
  71988. BABYLON.Tools.Log(logOperation("importScene", parsedData ? parsedData.producer : "Unknown") + (BABYLON.SceneLoader.loggingLevel !== BABYLON.SceneLoader.MINIMAL_LOGGING ? log : ""));
  71989. }
  71990. }
  71991. return false;
  71992. },
  71993. loadAssetContainer: function (scene, data, rootUrl, onError) {
  71994. var container = loadAssetContainer(scene, data, rootUrl, onError);
  71995. return container;
  71996. }
  71997. });
  71998. })(BABYLON || (BABYLON = {}));
  71999. //# sourceMappingURL=babylon.babylonFileLoader.js.map
  72000. var BABYLON;
  72001. (function (BABYLON) {
  72002. var FilesInput = /** @class */ (function () {
  72003. function FilesInput(engine, scene, sceneLoadedCallback, progressCallback, additionalRenderLoopLogicCallback, textureLoadingCallback, startingProcessingFilesCallback, onReloadCallback, errorCallback) {
  72004. this.onProcessFileCallback = function () { return true; };
  72005. this._engine = engine;
  72006. this._currentScene = scene;
  72007. this._sceneLoadedCallback = sceneLoadedCallback;
  72008. this._progressCallback = progressCallback;
  72009. this._additionalRenderLoopLogicCallback = additionalRenderLoopLogicCallback;
  72010. this._textureLoadingCallback = textureLoadingCallback;
  72011. this._startingProcessingFilesCallback = startingProcessingFilesCallback;
  72012. this._onReloadCallback = onReloadCallback;
  72013. this._errorCallback = errorCallback;
  72014. }
  72015. FilesInput.prototype.monitorElementForDragNDrop = function (elementToMonitor) {
  72016. var _this = this;
  72017. if (elementToMonitor) {
  72018. this._elementToMonitor = elementToMonitor;
  72019. this._dragEnterHandler = function (e) { _this.drag(e); };
  72020. this._dragOverHandler = function (e) { _this.drag(e); };
  72021. this._dropHandler = function (e) { _this.drop(e); };
  72022. this._elementToMonitor.addEventListener("dragenter", this._dragEnterHandler, false);
  72023. this._elementToMonitor.addEventListener("dragover", this._dragOverHandler, false);
  72024. this._elementToMonitor.addEventListener("drop", this._dropHandler, false);
  72025. }
  72026. };
  72027. FilesInput.prototype.dispose = function () {
  72028. if (!this._elementToMonitor) {
  72029. return;
  72030. }
  72031. this._elementToMonitor.removeEventListener("dragenter", this._dragEnterHandler);
  72032. this._elementToMonitor.removeEventListener("dragover", this._dragOverHandler);
  72033. this._elementToMonitor.removeEventListener("drop", this._dropHandler);
  72034. };
  72035. FilesInput.prototype.renderFunction = function () {
  72036. if (this._additionalRenderLoopLogicCallback) {
  72037. this._additionalRenderLoopLogicCallback();
  72038. }
  72039. if (this._currentScene) {
  72040. if (this._textureLoadingCallback) {
  72041. var remaining = this._currentScene.getWaitingItemsCount();
  72042. if (remaining > 0) {
  72043. this._textureLoadingCallback(remaining);
  72044. }
  72045. }
  72046. this._currentScene.render();
  72047. }
  72048. };
  72049. FilesInput.prototype.drag = function (e) {
  72050. e.stopPropagation();
  72051. e.preventDefault();
  72052. };
  72053. FilesInput.prototype.drop = function (eventDrop) {
  72054. eventDrop.stopPropagation();
  72055. eventDrop.preventDefault();
  72056. this.loadFiles(eventDrop);
  72057. };
  72058. FilesInput.prototype._traverseFolder = function (folder, files, remaining, callback) {
  72059. var _this = this;
  72060. var reader = folder.createReader();
  72061. var relativePath = folder.fullPath.replace(/^\//, "").replace(/(.+?)\/?$/, "$1/");
  72062. reader.readEntries(function (entries) {
  72063. remaining.count += entries.length;
  72064. for (var _i = 0, entries_1 = entries; _i < entries_1.length; _i++) {
  72065. var entry = entries_1[_i];
  72066. if (entry.isFile) {
  72067. entry.file(function (file) {
  72068. file.correctName = relativePath + file.name;
  72069. files.push(file);
  72070. if (--remaining.count === 0) {
  72071. callback();
  72072. }
  72073. });
  72074. }
  72075. else if (entry.isDirectory) {
  72076. _this._traverseFolder(entry, files, remaining, callback);
  72077. }
  72078. }
  72079. if (--remaining.count) {
  72080. callback();
  72081. }
  72082. });
  72083. };
  72084. FilesInput.prototype._processFiles = function (files) {
  72085. for (var i = 0; i < files.length; i++) {
  72086. var name = files[i].correctName.toLowerCase();
  72087. var extension = name.split('.').pop();
  72088. if (!this.onProcessFileCallback(files[i], name, extension)) {
  72089. continue;
  72090. }
  72091. if ((extension === "babylon" || extension === "stl" || extension === "obj" || extension === "gltf" || extension === "glb")
  72092. && name.indexOf(".binary.babylon") === -1 && name.indexOf(".incremental.babylon") === -1) {
  72093. this._sceneFileToLoad = files[i];
  72094. }
  72095. else {
  72096. FilesInput.FilesToLoad[name] = files[i];
  72097. }
  72098. }
  72099. };
  72100. FilesInput.prototype.loadFiles = function (event) {
  72101. var _this = this;
  72102. // Handling data transfer via drag'n'drop
  72103. if (event && event.dataTransfer && event.dataTransfer.files) {
  72104. this._filesToLoad = event.dataTransfer.files;
  72105. }
  72106. // Handling files from input files
  72107. if (event && event.target && event.target.files) {
  72108. this._filesToLoad = event.target.files;
  72109. }
  72110. if (!this._filesToLoad || this._filesToLoad.length === 0) {
  72111. return;
  72112. }
  72113. if (this._startingProcessingFilesCallback) {
  72114. this._startingProcessingFilesCallback(this._filesToLoad);
  72115. }
  72116. if (this._filesToLoad && this._filesToLoad.length > 0) {
  72117. var files_1 = new Array();
  72118. var folders = [];
  72119. var items = event.dataTransfer ? event.dataTransfer.items : null;
  72120. for (var i = 0; i < this._filesToLoad.length; i++) {
  72121. var fileToLoad = this._filesToLoad[i];
  72122. var name_1 = fileToLoad.name.toLowerCase();
  72123. var entry = void 0;
  72124. fileToLoad.correctName = name_1;
  72125. if (items) {
  72126. var item = items[i];
  72127. if (item.getAsEntry) {
  72128. entry = item.getAsEntry();
  72129. }
  72130. else if (item.webkitGetAsEntry) {
  72131. entry = item.webkitGetAsEntry();
  72132. }
  72133. }
  72134. if (!entry) {
  72135. files_1.push(fileToLoad);
  72136. }
  72137. else {
  72138. if (entry.isDirectory) {
  72139. folders.push(entry);
  72140. }
  72141. else {
  72142. files_1.push(fileToLoad);
  72143. }
  72144. }
  72145. }
  72146. if (folders.length === 0) {
  72147. this._processFiles(files_1);
  72148. this._processReload();
  72149. }
  72150. else {
  72151. var remaining = { count: folders.length };
  72152. for (var _i = 0, folders_1 = folders; _i < folders_1.length; _i++) {
  72153. var folder = folders_1[_i];
  72154. this._traverseFolder(folder, files_1, remaining, function () {
  72155. _this._processFiles(files_1);
  72156. if (remaining.count === 0) {
  72157. _this._processReload();
  72158. }
  72159. });
  72160. }
  72161. }
  72162. }
  72163. };
  72164. FilesInput.prototype._processReload = function () {
  72165. if (this._onReloadCallback) {
  72166. this._onReloadCallback(this._sceneFileToLoad);
  72167. }
  72168. else {
  72169. this.reload();
  72170. }
  72171. };
  72172. FilesInput.prototype.reload = function () {
  72173. var _this = this;
  72174. // If a scene file has been provided
  72175. if (this._sceneFileToLoad) {
  72176. if (this._currentScene) {
  72177. if (BABYLON.Tools.errorsCount > 0) {
  72178. BABYLON.Tools.ClearLogCache();
  72179. }
  72180. this._engine.stopRenderLoop();
  72181. }
  72182. BABYLON.SceneLoader.LoadAsync("file:", this._sceneFileToLoad, this._engine, function (progress) {
  72183. if (_this._progressCallback) {
  72184. _this._progressCallback(progress);
  72185. }
  72186. }).then(function (scene) {
  72187. if (_this._currentScene) {
  72188. _this._currentScene.dispose();
  72189. }
  72190. _this._currentScene = scene;
  72191. if (_this._sceneLoadedCallback) {
  72192. _this._sceneLoadedCallback(_this._sceneFileToLoad, _this._currentScene);
  72193. }
  72194. // Wait for textures and shaders to be ready
  72195. _this._currentScene.executeWhenReady(function () {
  72196. _this._engine.runRenderLoop(function () {
  72197. _this.renderFunction();
  72198. });
  72199. });
  72200. }).catch(function (error) {
  72201. if (_this._errorCallback) {
  72202. _this._errorCallback(_this._sceneFileToLoad, _this._currentScene, error.message);
  72203. }
  72204. });
  72205. }
  72206. else {
  72207. BABYLON.Tools.Error("Please provide a valid .babylon file.");
  72208. }
  72209. };
  72210. FilesInput.FilesToLoad = {};
  72211. return FilesInput;
  72212. }());
  72213. BABYLON.FilesInput = FilesInput;
  72214. })(BABYLON || (BABYLON = {}));
  72215. //# sourceMappingURL=babylon.filesInput.js.map
  72216. var BABYLON;
  72217. (function (BABYLON) {
  72218. var Tags = /** @class */ (function () {
  72219. function Tags() {
  72220. }
  72221. Tags.EnableFor = function (obj) {
  72222. obj._tags = obj._tags || {};
  72223. obj.hasTags = function () {
  72224. return Tags.HasTags(obj);
  72225. };
  72226. obj.addTags = function (tagsString) {
  72227. return Tags.AddTagsTo(obj, tagsString);
  72228. };
  72229. obj.removeTags = function (tagsString) {
  72230. return Tags.RemoveTagsFrom(obj, tagsString);
  72231. };
  72232. obj.matchesTagsQuery = function (tagsQuery) {
  72233. return Tags.MatchesQuery(obj, tagsQuery);
  72234. };
  72235. };
  72236. Tags.DisableFor = function (obj) {
  72237. delete obj._tags;
  72238. delete obj.hasTags;
  72239. delete obj.addTags;
  72240. delete obj.removeTags;
  72241. delete obj.matchesTagsQuery;
  72242. };
  72243. Tags.HasTags = function (obj) {
  72244. if (!obj._tags) {
  72245. return false;
  72246. }
  72247. return !BABYLON.Tools.IsEmpty(obj._tags);
  72248. };
  72249. Tags.GetTags = function (obj, asString) {
  72250. if (asString === void 0) { asString = true; }
  72251. if (!obj._tags) {
  72252. return null;
  72253. }
  72254. if (asString) {
  72255. var tagsArray = [];
  72256. for (var tag in obj._tags) {
  72257. if (obj._tags.hasOwnProperty(tag) && obj._tags[tag] === true) {
  72258. tagsArray.push(tag);
  72259. }
  72260. }
  72261. return tagsArray.join(" ");
  72262. }
  72263. else {
  72264. return obj._tags;
  72265. }
  72266. };
  72267. // the tags 'true' and 'false' are reserved and cannot be used as tags
  72268. // a tag cannot start with '||', '&&', and '!'
  72269. // it cannot contain whitespaces
  72270. Tags.AddTagsTo = function (obj, tagsString) {
  72271. if (!tagsString) {
  72272. return;
  72273. }
  72274. if (typeof tagsString !== "string") {
  72275. return;
  72276. }
  72277. var tags = tagsString.split(" ");
  72278. tags.forEach(function (tag, index, array) {
  72279. Tags._AddTagTo(obj, tag);
  72280. });
  72281. };
  72282. Tags._AddTagTo = function (obj, tag) {
  72283. tag = tag.trim();
  72284. if (tag === "" || tag === "true" || tag === "false") {
  72285. return;
  72286. }
  72287. if (tag.match(/[\s]/) || tag.match(/^([!]|([|]|[&]){2})/)) {
  72288. return;
  72289. }
  72290. Tags.EnableFor(obj);
  72291. obj._tags[tag] = true;
  72292. };
  72293. Tags.RemoveTagsFrom = function (obj, tagsString) {
  72294. if (!Tags.HasTags(obj)) {
  72295. return;
  72296. }
  72297. var tags = tagsString.split(" ");
  72298. for (var t in tags) {
  72299. Tags._RemoveTagFrom(obj, tags[t]);
  72300. }
  72301. };
  72302. Tags._RemoveTagFrom = function (obj, tag) {
  72303. delete obj._tags[tag];
  72304. };
  72305. Tags.MatchesQuery = function (obj, tagsQuery) {
  72306. if (tagsQuery === undefined) {
  72307. return true;
  72308. }
  72309. if (tagsQuery === "") {
  72310. return Tags.HasTags(obj);
  72311. }
  72312. return BABYLON.AndOrNotEvaluator.Eval(tagsQuery, function (r) { return Tags.HasTags(obj) && obj._tags[r]; });
  72313. };
  72314. return Tags;
  72315. }());
  72316. BABYLON.Tags = Tags;
  72317. })(BABYLON || (BABYLON = {}));
  72318. //# sourceMappingURL=babylon.tags.js.map
  72319. var BABYLON;
  72320. (function (BABYLON) {
  72321. /**
  72322. * Class used to evalaute queries containing `and` and `or` operators
  72323. */
  72324. var AndOrNotEvaluator = /** @class */ (function () {
  72325. function AndOrNotEvaluator() {
  72326. }
  72327. /**
  72328. * Evaluate a query
  72329. * @param query defines the query to evaluate
  72330. * @param evaluateCallback defines the callback used to filter result
  72331. * @returns true if the query matches
  72332. */
  72333. AndOrNotEvaluator.Eval = function (query, evaluateCallback) {
  72334. if (!query.match(/\([^\(\)]*\)/g)) {
  72335. query = AndOrNotEvaluator._HandleParenthesisContent(query, evaluateCallback);
  72336. }
  72337. else {
  72338. query = query.replace(/\([^\(\)]*\)/g, function (r) {
  72339. // remove parenthesis
  72340. r = r.slice(1, r.length - 1);
  72341. return AndOrNotEvaluator._HandleParenthesisContent(r, evaluateCallback);
  72342. });
  72343. }
  72344. if (query === "true") {
  72345. return true;
  72346. }
  72347. if (query === "false") {
  72348. return false;
  72349. }
  72350. return AndOrNotEvaluator.Eval(query, evaluateCallback);
  72351. };
  72352. AndOrNotEvaluator._HandleParenthesisContent = function (parenthesisContent, evaluateCallback) {
  72353. evaluateCallback = evaluateCallback || (function (r) {
  72354. return r === "true" ? true : false;
  72355. });
  72356. var result;
  72357. var or = parenthesisContent.split("||");
  72358. for (var i in or) {
  72359. if (or.hasOwnProperty(i)) {
  72360. var ori = AndOrNotEvaluator._SimplifyNegation(or[i].trim());
  72361. var and = ori.split("&&");
  72362. if (and.length > 1) {
  72363. for (var j = 0; j < and.length; ++j) {
  72364. var andj = AndOrNotEvaluator._SimplifyNegation(and[j].trim());
  72365. if (andj !== "true" && andj !== "false") {
  72366. if (andj[0] === "!") {
  72367. result = !evaluateCallback(andj.substring(1));
  72368. }
  72369. else {
  72370. result = evaluateCallback(andj);
  72371. }
  72372. }
  72373. else {
  72374. result = andj === "true" ? true : false;
  72375. }
  72376. if (!result) { // no need to continue since 'false && ... && ...' will always return false
  72377. ori = "false";
  72378. break;
  72379. }
  72380. }
  72381. }
  72382. if (result || ori === "true") { // no need to continue since 'true || ... || ...' will always return true
  72383. result = true;
  72384. break;
  72385. }
  72386. // result equals false (or undefined)
  72387. if (ori !== "true" && ori !== "false") {
  72388. if (ori[0] === "!") {
  72389. result = !evaluateCallback(ori.substring(1));
  72390. }
  72391. else {
  72392. result = evaluateCallback(ori);
  72393. }
  72394. }
  72395. else {
  72396. result = ori === "true" ? true : false;
  72397. }
  72398. }
  72399. }
  72400. // the whole parenthesis scope is replaced by 'true' or 'false'
  72401. return result ? "true" : "false";
  72402. };
  72403. AndOrNotEvaluator._SimplifyNegation = function (booleanString) {
  72404. booleanString = booleanString.replace(/^[\s!]+/, function (r) {
  72405. // remove whitespaces
  72406. r = r.replace(/[\s]/g, function () { return ""; });
  72407. return r.length % 2 ? "!" : "";
  72408. });
  72409. booleanString = booleanString.trim();
  72410. if (booleanString === "!true") {
  72411. booleanString = "false";
  72412. }
  72413. else if (booleanString === "!false") {
  72414. booleanString = "true";
  72415. }
  72416. return booleanString;
  72417. };
  72418. return AndOrNotEvaluator;
  72419. }());
  72420. BABYLON.AndOrNotEvaluator = AndOrNotEvaluator;
  72421. })(BABYLON || (BABYLON = {}));
  72422. //# sourceMappingURL=babylon.andOrNotEvaluator.js.map
  72423. var BABYLON;
  72424. (function (BABYLON) {
  72425. /**
  72426. * Class used to enable access to IndexedDB
  72427. * @see @https://developer.mozilla.org/en-US/docs/Web/API/IndexedDB_API
  72428. */
  72429. var Database = /** @class */ (function () {
  72430. /**
  72431. * Creates a new Database
  72432. * @param urlToScene defines the url to load the scene
  72433. * @param callbackManifestChecked defines the callback to use when manifest is checked
  72434. * @param disableManifestCheck defines a boolean indicating that we want to skip the manifest validation (it will be considered validated and up to date)
  72435. */
  72436. function Database(urlToScene, callbackManifestChecked, disableManifestCheck) {
  72437. if (disableManifestCheck === void 0) { disableManifestCheck = false; }
  72438. var _this = this;
  72439. // Handling various flavors of prefixed version of IndexedDB
  72440. this.idbFactory = (window.indexedDB || window.mozIndexedDB || window.webkitIndexedDB || window.msIndexedDB);
  72441. this.callbackManifestChecked = callbackManifestChecked;
  72442. this.currentSceneUrl = Database._ReturnFullUrlLocation(urlToScene);
  72443. this.db = null;
  72444. this._enableSceneOffline = false;
  72445. this._enableTexturesOffline = false;
  72446. this.manifestVersionFound = 0;
  72447. this.mustUpdateRessources = false;
  72448. this.hasReachedQuota = false;
  72449. if (!Database.IDBStorageEnabled) {
  72450. this.callbackManifestChecked(true);
  72451. }
  72452. else {
  72453. if (disableManifestCheck) {
  72454. this._enableSceneOffline = true;
  72455. this._enableTexturesOffline = true;
  72456. this.manifestVersionFound = 1;
  72457. BABYLON.Tools.SetImmediate(function () {
  72458. _this.callbackManifestChecked(true);
  72459. });
  72460. }
  72461. else {
  72462. this._checkManifestFile();
  72463. }
  72464. }
  72465. }
  72466. Object.defineProperty(Database.prototype, "enableSceneOffline", {
  72467. /**
  72468. * Gets a boolean indicating if scene must be saved in the database
  72469. */
  72470. get: function () {
  72471. return this._enableSceneOffline;
  72472. },
  72473. enumerable: true,
  72474. configurable: true
  72475. });
  72476. Object.defineProperty(Database.prototype, "enableTexturesOffline", {
  72477. /**
  72478. * Gets a boolean indicating if textures must be saved in the database
  72479. */
  72480. get: function () {
  72481. return this._enableTexturesOffline;
  72482. },
  72483. enumerable: true,
  72484. configurable: true
  72485. });
  72486. Database.prototype._checkManifestFile = function () {
  72487. var _this = this;
  72488. var noManifestFile = function () {
  72489. _this._enableSceneOffline = false;
  72490. _this._enableTexturesOffline = false;
  72491. _this.callbackManifestChecked(false);
  72492. };
  72493. var timeStampUsed = false;
  72494. var manifestURL = this.currentSceneUrl + ".manifest";
  72495. var xhr = new XMLHttpRequest();
  72496. if (navigator.onLine) {
  72497. // Adding a timestamp to by-pass browsers' cache
  72498. timeStampUsed = true;
  72499. manifestURL = manifestURL + (manifestURL.match(/\?/) == null ? "?" : "&") + Date.now();
  72500. }
  72501. xhr.open("GET", manifestURL, true);
  72502. xhr.addEventListener("load", function () {
  72503. if (xhr.status === 200 || BABYLON.Tools.ValidateXHRData(xhr, 1)) {
  72504. try {
  72505. var manifestFile = JSON.parse(xhr.response);
  72506. _this._enableSceneOffline = manifestFile.enableSceneOffline;
  72507. _this._enableTexturesOffline = manifestFile.enableTexturesOffline;
  72508. if (manifestFile.version && !isNaN(parseInt(manifestFile.version))) {
  72509. _this.manifestVersionFound = manifestFile.version;
  72510. }
  72511. if (_this.callbackManifestChecked) {
  72512. _this.callbackManifestChecked(true);
  72513. }
  72514. }
  72515. catch (ex) {
  72516. noManifestFile();
  72517. }
  72518. }
  72519. else {
  72520. noManifestFile();
  72521. }
  72522. }, false);
  72523. xhr.addEventListener("error", function (event) {
  72524. if (timeStampUsed) {
  72525. timeStampUsed = false;
  72526. // Let's retry without the timeStamp
  72527. // It could fail when coupled with HTML5 Offline API
  72528. var retryManifestURL = _this.currentSceneUrl + ".manifest";
  72529. xhr.open("GET", retryManifestURL, true);
  72530. xhr.send();
  72531. }
  72532. else {
  72533. noManifestFile();
  72534. }
  72535. }, false);
  72536. try {
  72537. xhr.send();
  72538. }
  72539. catch (ex) {
  72540. BABYLON.Tools.Error("Error on XHR send request.");
  72541. this.callbackManifestChecked(false);
  72542. }
  72543. };
  72544. /**
  72545. * Open the database and make it available
  72546. * @param successCallback defines the callback to call on success
  72547. * @param errorCallback defines the callback to call on error
  72548. */
  72549. Database.prototype.openAsync = function (successCallback, errorCallback) {
  72550. var _this = this;
  72551. var handleError = function () {
  72552. _this.isSupported = false;
  72553. if (errorCallback)
  72554. errorCallback();
  72555. };
  72556. if (!this.idbFactory || !(this._enableSceneOffline || this._enableTexturesOffline)) {
  72557. // Your browser doesn't support IndexedDB
  72558. this.isSupported = false;
  72559. if (errorCallback)
  72560. errorCallback();
  72561. }
  72562. else {
  72563. // If the DB hasn't been opened or created yet
  72564. if (!this.db) {
  72565. this.hasReachedQuota = false;
  72566. this.isSupported = true;
  72567. var request = this.idbFactory.open("babylonjs", 1);
  72568. // Could occur if user is blocking the quota for the DB and/or doesn't grant access to IndexedDB
  72569. request.onerror = function (event) {
  72570. handleError();
  72571. };
  72572. // executes when a version change transaction cannot complete due to other active transactions
  72573. request.onblocked = function (event) {
  72574. BABYLON.Tools.Error("IDB request blocked. Please reload the page.");
  72575. handleError();
  72576. };
  72577. // DB has been opened successfully
  72578. request.onsuccess = function (event) {
  72579. _this.db = request.result;
  72580. successCallback();
  72581. };
  72582. // Initialization of the DB. Creating Scenes & Textures stores
  72583. request.onupgradeneeded = function (event) {
  72584. _this.db = (event.target).result;
  72585. if (_this.db) {
  72586. try {
  72587. _this.db.createObjectStore("scenes", { keyPath: "sceneUrl" });
  72588. _this.db.createObjectStore("versions", { keyPath: "sceneUrl" });
  72589. _this.db.createObjectStore("textures", { keyPath: "textureUrl" });
  72590. }
  72591. catch (ex) {
  72592. BABYLON.Tools.Error("Error while creating object stores. Exception: " + ex.message);
  72593. handleError();
  72594. }
  72595. }
  72596. };
  72597. }
  72598. // DB has already been created and opened
  72599. else {
  72600. if (successCallback)
  72601. successCallback();
  72602. }
  72603. }
  72604. };
  72605. /**
  72606. * Loads an image from the database
  72607. * @param url defines the url to load from
  72608. * @param image defines the target DOM image
  72609. */
  72610. Database.prototype.loadImageFromDB = function (url, image) {
  72611. var _this = this;
  72612. var completeURL = Database._ReturnFullUrlLocation(url);
  72613. var saveAndLoadImage = function () {
  72614. if (!_this.hasReachedQuota && _this.db !== null) {
  72615. // the texture is not yet in the DB, let's try to save it
  72616. _this._saveImageIntoDBAsync(completeURL, image);
  72617. }
  72618. // If the texture is not in the DB and we've reached the DB quota limit
  72619. // let's load it directly from the web
  72620. else {
  72621. image.src = url;
  72622. }
  72623. };
  72624. if (!this.mustUpdateRessources) {
  72625. this._loadImageFromDBAsync(completeURL, image, saveAndLoadImage);
  72626. }
  72627. // First time we're download the images or update requested in the manifest file by a version change
  72628. else {
  72629. saveAndLoadImage();
  72630. }
  72631. };
  72632. Database.prototype._loadImageFromDBAsync = function (url, image, notInDBCallback) {
  72633. if (this.isSupported && this.db !== null) {
  72634. var texture;
  72635. var transaction = this.db.transaction(["textures"]);
  72636. transaction.onabort = function (event) {
  72637. image.src = url;
  72638. };
  72639. transaction.oncomplete = function (event) {
  72640. var blobTextureURL;
  72641. if (texture) {
  72642. var URL = window.URL || window.webkitURL;
  72643. blobTextureURL = URL.createObjectURL(texture.data);
  72644. image.onerror = function () {
  72645. BABYLON.Tools.Error("Error loading image from blob URL: " + blobTextureURL + " switching back to web url: " + url);
  72646. image.src = url;
  72647. };
  72648. image.src = blobTextureURL;
  72649. }
  72650. else {
  72651. notInDBCallback();
  72652. }
  72653. };
  72654. var getRequest = transaction.objectStore("textures").get(url);
  72655. getRequest.onsuccess = function (event) {
  72656. texture = (event.target).result;
  72657. };
  72658. getRequest.onerror = function (event) {
  72659. BABYLON.Tools.Error("Error loading texture " + url + " from DB.");
  72660. image.src = url;
  72661. };
  72662. }
  72663. else {
  72664. BABYLON.Tools.Error("Error: IndexedDB not supported by your browser or BabylonJS Database is not open.");
  72665. image.src = url;
  72666. }
  72667. };
  72668. Database.prototype._saveImageIntoDBAsync = function (url, image) {
  72669. var _this = this;
  72670. if (this.isSupported) {
  72671. // In case of error (type not supported or quota exceeded), we're at least sending back XHR data to allow texture loading later on
  72672. var generateBlobUrl = function () {
  72673. var blobTextureURL;
  72674. if (blob) {
  72675. var URL = window.URL || window.webkitURL;
  72676. try {
  72677. blobTextureURL = URL.createObjectURL(blob);
  72678. }
  72679. // Chrome is raising a type error if we're setting the oneTimeOnly parameter
  72680. catch (ex) {
  72681. blobTextureURL = URL.createObjectURL(blob);
  72682. }
  72683. }
  72684. if (blobTextureURL) {
  72685. image.src = blobTextureURL;
  72686. }
  72687. };
  72688. if (Database.IsUASupportingBlobStorage) { // Create XHR
  72689. var xhr = new XMLHttpRequest(), blob;
  72690. xhr.open("GET", url, true);
  72691. xhr.responseType = "blob";
  72692. xhr.addEventListener("load", function () {
  72693. if (xhr.status === 200 && _this.db) {
  72694. // Blob as response (XHR2)
  72695. blob = xhr.response;
  72696. var transaction = _this.db.transaction(["textures"], "readwrite");
  72697. // the transaction could abort because of a QuotaExceededError error
  72698. transaction.onabort = function (event) {
  72699. try {
  72700. //backwards compatibility with ts 1.0, srcElement doesn't have an "error" according to ts 1.3
  72701. var srcElement = (event.srcElement || event.target);
  72702. var error = srcElement.error;
  72703. if (error && error.name === "QuotaExceededError") {
  72704. _this.hasReachedQuota = true;
  72705. }
  72706. }
  72707. catch (ex) { }
  72708. generateBlobUrl();
  72709. };
  72710. transaction.oncomplete = function (event) {
  72711. generateBlobUrl();
  72712. };
  72713. var newTexture = { textureUrl: url, data: blob };
  72714. try {
  72715. // Put the blob into the dabase
  72716. var addRequest = transaction.objectStore("textures").put(newTexture);
  72717. addRequest.onsuccess = function (event) {
  72718. };
  72719. addRequest.onerror = function (event) {
  72720. generateBlobUrl();
  72721. };
  72722. }
  72723. catch (ex) {
  72724. // "DataCloneError" generated by Chrome when you try to inject blob into IndexedDB
  72725. if (ex.code === 25) {
  72726. Database.IsUASupportingBlobStorage = false;
  72727. }
  72728. image.src = url;
  72729. }
  72730. }
  72731. else {
  72732. image.src = url;
  72733. }
  72734. }, false);
  72735. xhr.addEventListener("error", function (event) {
  72736. BABYLON.Tools.Error("Error in XHR request in BABYLON.Database.");
  72737. image.src = url;
  72738. }, false);
  72739. xhr.send();
  72740. }
  72741. else {
  72742. image.src = url;
  72743. }
  72744. }
  72745. else {
  72746. BABYLON.Tools.Error("Error: IndexedDB not supported by your browser or BabylonJS Database is not open.");
  72747. image.src = url;
  72748. }
  72749. };
  72750. Database.prototype._checkVersionFromDB = function (url, versionLoaded) {
  72751. var _this = this;
  72752. var updateVersion = function () {
  72753. // the version is not yet in the DB or we need to update it
  72754. _this._saveVersionIntoDBAsync(url, versionLoaded);
  72755. };
  72756. this._loadVersionFromDBAsync(url, versionLoaded, updateVersion);
  72757. };
  72758. Database.prototype._loadVersionFromDBAsync = function (url, callback, updateInDBCallback) {
  72759. var _this = this;
  72760. if (this.isSupported && this.db) {
  72761. var version;
  72762. try {
  72763. var transaction = this.db.transaction(["versions"]);
  72764. transaction.oncomplete = function (event) {
  72765. if (version) {
  72766. // If the version in the JSON file is different from the version in DB
  72767. if (_this.manifestVersionFound !== version.data) {
  72768. _this.mustUpdateRessources = true;
  72769. updateInDBCallback();
  72770. }
  72771. else {
  72772. callback(version.data);
  72773. }
  72774. }
  72775. // version was not found in DB
  72776. else {
  72777. _this.mustUpdateRessources = true;
  72778. updateInDBCallback();
  72779. }
  72780. };
  72781. transaction.onabort = function (event) {
  72782. callback(-1);
  72783. };
  72784. var getRequest = transaction.objectStore("versions").get(url);
  72785. getRequest.onsuccess = function (event) {
  72786. version = (event.target).result;
  72787. };
  72788. getRequest.onerror = function (event) {
  72789. BABYLON.Tools.Error("Error loading version for scene " + url + " from DB.");
  72790. callback(-1);
  72791. };
  72792. }
  72793. catch (ex) {
  72794. BABYLON.Tools.Error("Error while accessing 'versions' object store (READ OP). Exception: " + ex.message);
  72795. callback(-1);
  72796. }
  72797. }
  72798. else {
  72799. BABYLON.Tools.Error("Error: IndexedDB not supported by your browser or BabylonJS Database is not open.");
  72800. callback(-1);
  72801. }
  72802. };
  72803. Database.prototype._saveVersionIntoDBAsync = function (url, callback) {
  72804. var _this = this;
  72805. if (this.isSupported && !this.hasReachedQuota && this.db) {
  72806. try {
  72807. // Open a transaction to the database
  72808. var transaction = this.db.transaction(["versions"], "readwrite");
  72809. // the transaction could abort because of a QuotaExceededError error
  72810. transaction.onabort = function (event) {
  72811. try { //backwards compatibility with ts 1.0, srcElement doesn't have an "error" according to ts 1.3
  72812. var error = event.srcElement['error'];
  72813. if (error && error.name === "QuotaExceededError") {
  72814. _this.hasReachedQuota = true;
  72815. }
  72816. }
  72817. catch (ex) { }
  72818. callback(-1);
  72819. };
  72820. transaction.oncomplete = function (event) {
  72821. callback(_this.manifestVersionFound);
  72822. };
  72823. var newVersion = { sceneUrl: url, data: this.manifestVersionFound };
  72824. // Put the scene into the database
  72825. var addRequest = transaction.objectStore("versions").put(newVersion);
  72826. addRequest.onsuccess = function (event) {
  72827. };
  72828. addRequest.onerror = function (event) {
  72829. BABYLON.Tools.Error("Error in DB add version request in BABYLON.Database.");
  72830. };
  72831. }
  72832. catch (ex) {
  72833. BABYLON.Tools.Error("Error while accessing 'versions' object store (WRITE OP). Exception: " + ex.message);
  72834. callback(-1);
  72835. }
  72836. }
  72837. else {
  72838. callback(-1);
  72839. }
  72840. };
  72841. /**
  72842. * Loads a file from database
  72843. * @param url defines the URL to load from
  72844. * @param sceneLoaded defines a callback to call on success
  72845. * @param progressCallBack defines a callback to call when progress changed
  72846. * @param errorCallback defines a callback to call on error
  72847. * @param useArrayBuffer defines a boolean to use array buffer instead of text string
  72848. */
  72849. Database.prototype.loadFileFromDB = function (url, sceneLoaded, progressCallBack, errorCallback, useArrayBuffer) {
  72850. var _this = this;
  72851. var completeUrl = Database._ReturnFullUrlLocation(url);
  72852. var saveAndLoadFile = function () {
  72853. // the scene is not yet in the DB, let's try to save it
  72854. _this._saveFileIntoDBAsync(completeUrl, sceneLoaded, progressCallBack, useArrayBuffer, errorCallback);
  72855. };
  72856. this._checkVersionFromDB(completeUrl, function (version) {
  72857. if (version !== -1) {
  72858. if (!_this.mustUpdateRessources) {
  72859. _this._loadFileFromDBAsync(completeUrl, sceneLoaded, saveAndLoadFile, useArrayBuffer);
  72860. }
  72861. else {
  72862. _this._saveFileIntoDBAsync(completeUrl, sceneLoaded, progressCallBack, useArrayBuffer, errorCallback);
  72863. }
  72864. }
  72865. else {
  72866. if (errorCallback) {
  72867. errorCallback();
  72868. }
  72869. }
  72870. });
  72871. };
  72872. Database.prototype._loadFileFromDBAsync = function (url, callback, notInDBCallback, useArrayBuffer) {
  72873. if (this.isSupported && this.db) {
  72874. var targetStore;
  72875. if (url.indexOf(".babylon") !== -1) {
  72876. targetStore = "scenes";
  72877. }
  72878. else {
  72879. targetStore = "textures";
  72880. }
  72881. var file;
  72882. var transaction = this.db.transaction([targetStore]);
  72883. transaction.oncomplete = function (event) {
  72884. if (file) {
  72885. callback(file.data);
  72886. }
  72887. // file was not found in DB
  72888. else {
  72889. notInDBCallback();
  72890. }
  72891. };
  72892. transaction.onabort = function (event) {
  72893. notInDBCallback();
  72894. };
  72895. var getRequest = transaction.objectStore(targetStore).get(url);
  72896. getRequest.onsuccess = function (event) {
  72897. file = (event.target).result;
  72898. };
  72899. getRequest.onerror = function (event) {
  72900. BABYLON.Tools.Error("Error loading file " + url + " from DB.");
  72901. notInDBCallback();
  72902. };
  72903. }
  72904. else {
  72905. BABYLON.Tools.Error("Error: IndexedDB not supported by your browser or BabylonJS Database is not open.");
  72906. callback();
  72907. }
  72908. };
  72909. Database.prototype._saveFileIntoDBAsync = function (url, callback, progressCallback, useArrayBuffer, errorCallback) {
  72910. var _this = this;
  72911. if (this.isSupported) {
  72912. var targetStore;
  72913. if (url.indexOf(".babylon") !== -1) {
  72914. targetStore = "scenes";
  72915. }
  72916. else {
  72917. targetStore = "textures";
  72918. }
  72919. // Create XHR
  72920. var xhr = new XMLHttpRequest();
  72921. var fileData;
  72922. xhr.open("GET", url + "?" + Date.now(), true);
  72923. if (useArrayBuffer) {
  72924. xhr.responseType = "arraybuffer";
  72925. }
  72926. if (progressCallback) {
  72927. xhr.onprogress = progressCallback;
  72928. }
  72929. xhr.addEventListener("load", function () {
  72930. if (xhr.status === 200 || (xhr.status < 400 && BABYLON.Tools.ValidateXHRData(xhr, !useArrayBuffer ? 1 : 6))) {
  72931. // Blob as response (XHR2)
  72932. //fileData = xhr.responseText;
  72933. fileData = !useArrayBuffer ? xhr.responseText : xhr.response;
  72934. if (!_this.hasReachedQuota && _this.db) {
  72935. // Open a transaction to the database
  72936. var transaction = _this.db.transaction([targetStore], "readwrite");
  72937. // the transaction could abort because of a QuotaExceededError error
  72938. transaction.onabort = function (event) {
  72939. try {
  72940. //backwards compatibility with ts 1.0, srcElement doesn't have an "error" according to ts 1.3
  72941. var error = event.srcElement['error'];
  72942. if (error && error.name === "QuotaExceededError") {
  72943. _this.hasReachedQuota = true;
  72944. }
  72945. }
  72946. catch (ex) { }
  72947. callback(fileData);
  72948. };
  72949. transaction.oncomplete = function (event) {
  72950. callback(fileData);
  72951. };
  72952. var newFile;
  72953. if (targetStore === "scenes") {
  72954. newFile = { sceneUrl: url, data: fileData, version: _this.manifestVersionFound };
  72955. }
  72956. else {
  72957. newFile = { textureUrl: url, data: fileData };
  72958. }
  72959. try {
  72960. // Put the scene into the database
  72961. var addRequest = transaction.objectStore(targetStore).put(newFile);
  72962. addRequest.onsuccess = function (event) {
  72963. };
  72964. addRequest.onerror = function (event) {
  72965. BABYLON.Tools.Error("Error in DB add file request in BABYLON.Database.");
  72966. };
  72967. }
  72968. catch (ex) {
  72969. callback(fileData);
  72970. }
  72971. }
  72972. else {
  72973. callback(fileData);
  72974. }
  72975. }
  72976. else {
  72977. if (xhr.status >= 400 && errorCallback) {
  72978. errorCallback(xhr);
  72979. }
  72980. else {
  72981. callback();
  72982. }
  72983. }
  72984. }, false);
  72985. xhr.addEventListener("error", function (event) {
  72986. BABYLON.Tools.Error("error on XHR request.");
  72987. callback();
  72988. }, false);
  72989. xhr.send();
  72990. }
  72991. else {
  72992. BABYLON.Tools.Error("Error: IndexedDB not supported by your browser or BabylonJS Database is not open.");
  72993. callback();
  72994. }
  72995. };
  72996. /** Gets a boolean indicating if the user agent supports blob storage (this value will be updated after creating the first Database object) */
  72997. Database.IsUASupportingBlobStorage = true;
  72998. /** Gets a boolean indicating if Database storate is enabled */
  72999. Database.IDBStorageEnabled = true;
  73000. Database._ParseURL = function (url) {
  73001. var a = document.createElement('a');
  73002. a.href = url;
  73003. var urlWithoutHash = url.substring(0, url.lastIndexOf("#"));
  73004. var fileName = url.substring(urlWithoutHash.lastIndexOf("/") + 1, url.length);
  73005. var absLocation = url.substring(0, url.indexOf(fileName, 0));
  73006. return absLocation;
  73007. };
  73008. Database._ReturnFullUrlLocation = function (url) {
  73009. if (url.indexOf("http:/") === -1 && url.indexOf("https:/") === -1) {
  73010. return (Database._ParseURL(window.location.href) + url);
  73011. }
  73012. else {
  73013. return url;
  73014. }
  73015. };
  73016. return Database;
  73017. }());
  73018. BABYLON.Database = Database;
  73019. })(BABYLON || (BABYLON = {}));
  73020. //# sourceMappingURL=babylon.database.js.map
  73021. var BABYLON;
  73022. (function (BABYLON) {
  73023. var FresnelParameters = /** @class */ (function () {
  73024. function FresnelParameters() {
  73025. this._isEnabled = true;
  73026. this.leftColor = BABYLON.Color3.White();
  73027. this.rightColor = BABYLON.Color3.Black();
  73028. this.bias = 0;
  73029. this.power = 1;
  73030. }
  73031. Object.defineProperty(FresnelParameters.prototype, "isEnabled", {
  73032. get: function () {
  73033. return this._isEnabled;
  73034. },
  73035. set: function (value) {
  73036. if (this._isEnabled === value) {
  73037. return;
  73038. }
  73039. this._isEnabled = value;
  73040. BABYLON.Engine.MarkAllMaterialsAsDirty(BABYLON.Material.FresnelDirtyFlag | BABYLON.Material.MiscDirtyFlag);
  73041. },
  73042. enumerable: true,
  73043. configurable: true
  73044. });
  73045. FresnelParameters.prototype.clone = function () {
  73046. var newFresnelParameters = new FresnelParameters();
  73047. BABYLON.Tools.DeepCopy(this, newFresnelParameters);
  73048. return newFresnelParameters;
  73049. };
  73050. FresnelParameters.prototype.serialize = function () {
  73051. var serializationObject = {};
  73052. serializationObject.isEnabled = this.isEnabled;
  73053. serializationObject.leftColor = this.leftColor.asArray();
  73054. serializationObject.rightColor = this.rightColor.asArray();
  73055. serializationObject.bias = this.bias;
  73056. serializationObject.power = this.power;
  73057. return serializationObject;
  73058. };
  73059. FresnelParameters.Parse = function (parsedFresnelParameters) {
  73060. var fresnelParameters = new FresnelParameters();
  73061. fresnelParameters.isEnabled = parsedFresnelParameters.isEnabled;
  73062. fresnelParameters.leftColor = BABYLON.Color3.FromArray(parsedFresnelParameters.leftColor);
  73063. fresnelParameters.rightColor = BABYLON.Color3.FromArray(parsedFresnelParameters.rightColor);
  73064. fresnelParameters.bias = parsedFresnelParameters.bias;
  73065. fresnelParameters.power = parsedFresnelParameters.power || 1.0;
  73066. return fresnelParameters;
  73067. };
  73068. return FresnelParameters;
  73069. }());
  73070. BABYLON.FresnelParameters = FresnelParameters;
  73071. })(BABYLON || (BABYLON = {}));
  73072. //# sourceMappingURL=babylon.fresnelParameters.js.map
  73073. var BABYLON;
  73074. (function (BABYLON) {
  73075. var MultiMaterial = /** @class */ (function (_super) {
  73076. __extends(MultiMaterial, _super);
  73077. function MultiMaterial(name, scene) {
  73078. var _this = _super.call(this, name, scene, true) || this;
  73079. scene.multiMaterials.push(_this);
  73080. _this.subMaterials = new Array();
  73081. _this.storeEffectOnSubMeshes = true; // multimaterial is considered like a push material
  73082. return _this;
  73083. }
  73084. Object.defineProperty(MultiMaterial.prototype, "subMaterials", {
  73085. get: function () {
  73086. return this._subMaterials;
  73087. },
  73088. set: function (value) {
  73089. this._subMaterials = value;
  73090. this._hookArray(value);
  73091. },
  73092. enumerable: true,
  73093. configurable: true
  73094. });
  73095. MultiMaterial.prototype._hookArray = function (array) {
  73096. var _this = this;
  73097. var oldPush = array.push;
  73098. array.push = function () {
  73099. var items = [];
  73100. for (var _i = 0; _i < arguments.length; _i++) {
  73101. items[_i] = arguments[_i];
  73102. }
  73103. var result = oldPush.apply(array, items);
  73104. _this._markAllSubMeshesAsTexturesDirty();
  73105. return result;
  73106. };
  73107. var oldSplice = array.splice;
  73108. array.splice = function (index, deleteCount) {
  73109. var deleted = oldSplice.apply(array, [index, deleteCount]);
  73110. _this._markAllSubMeshesAsTexturesDirty();
  73111. return deleted;
  73112. };
  73113. };
  73114. // Properties
  73115. MultiMaterial.prototype.getSubMaterial = function (index) {
  73116. if (index < 0 || index >= this.subMaterials.length) {
  73117. return this.getScene().defaultMaterial;
  73118. }
  73119. return this.subMaterials[index];
  73120. };
  73121. MultiMaterial.prototype.getActiveTextures = function () {
  73122. var _a;
  73123. return (_a = _super.prototype.getActiveTextures.call(this)).concat.apply(_a, this.subMaterials.map(function (subMaterial) {
  73124. if (subMaterial) {
  73125. return subMaterial.getActiveTextures();
  73126. }
  73127. else {
  73128. return [];
  73129. }
  73130. }));
  73131. };
  73132. // Methods
  73133. MultiMaterial.prototype.getClassName = function () {
  73134. return "MultiMaterial";
  73135. };
  73136. MultiMaterial.prototype.isReadyForSubMesh = function (mesh, subMesh, useInstances) {
  73137. for (var index = 0; index < this.subMaterials.length; index++) {
  73138. var subMaterial = this.subMaterials[index];
  73139. if (subMaterial) {
  73140. if (subMaterial.storeEffectOnSubMeshes) {
  73141. if (!subMaterial.isReadyForSubMesh(mesh, subMesh, useInstances)) {
  73142. return false;
  73143. }
  73144. continue;
  73145. }
  73146. if (!subMaterial.isReady(mesh)) {
  73147. return false;
  73148. }
  73149. }
  73150. }
  73151. return true;
  73152. };
  73153. MultiMaterial.prototype.clone = function (name, cloneChildren) {
  73154. var newMultiMaterial = new MultiMaterial(name, this.getScene());
  73155. for (var index = 0; index < this.subMaterials.length; index++) {
  73156. var subMaterial = null;
  73157. var current = this.subMaterials[index];
  73158. if (cloneChildren && current) {
  73159. subMaterial = current.clone(name + "-" + current.name);
  73160. }
  73161. else {
  73162. subMaterial = this.subMaterials[index];
  73163. }
  73164. newMultiMaterial.subMaterials.push(subMaterial);
  73165. }
  73166. return newMultiMaterial;
  73167. };
  73168. MultiMaterial.prototype.serialize = function () {
  73169. var serializationObject = {};
  73170. serializationObject.name = this.name;
  73171. serializationObject.id = this.id;
  73172. if (BABYLON.Tags) {
  73173. serializationObject.tags = BABYLON.Tags.GetTags(this);
  73174. }
  73175. serializationObject.materials = [];
  73176. for (var matIndex = 0; matIndex < this.subMaterials.length; matIndex++) {
  73177. var subMat = this.subMaterials[matIndex];
  73178. if (subMat) {
  73179. serializationObject.materials.push(subMat.id);
  73180. }
  73181. else {
  73182. serializationObject.materials.push(null);
  73183. }
  73184. }
  73185. return serializationObject;
  73186. };
  73187. MultiMaterial.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  73188. var scene = this.getScene();
  73189. if (!scene) {
  73190. return;
  73191. }
  73192. var index = scene.multiMaterials.indexOf(this);
  73193. if (index >= 0) {
  73194. scene.multiMaterials.splice(index, 1);
  73195. }
  73196. _super.prototype.dispose.call(this, forceDisposeEffect, forceDisposeTextures);
  73197. };
  73198. return MultiMaterial;
  73199. }(BABYLON.Material));
  73200. BABYLON.MultiMaterial = MultiMaterial;
  73201. })(BABYLON || (BABYLON = {}));
  73202. //# sourceMappingURL=babylon.multiMaterial.js.map
  73203. var BABYLON;
  73204. (function (BABYLON) {
  73205. var FreeCameraTouchInput = /** @class */ (function () {
  73206. function FreeCameraTouchInput() {
  73207. this._offsetX = null;
  73208. this._offsetY = null;
  73209. this._pointerPressed = new Array();
  73210. this.touchAngularSensibility = 200000.0;
  73211. this.touchMoveSensibility = 250.0;
  73212. }
  73213. FreeCameraTouchInput.prototype.attachControl = function (element, noPreventDefault) {
  73214. var _this = this;
  73215. var previousPosition = null;
  73216. if (this._pointerInput === undefined) {
  73217. this._onLostFocus = function (evt) {
  73218. _this._offsetX = null;
  73219. _this._offsetY = null;
  73220. };
  73221. this._pointerInput = function (p, s) {
  73222. var evt = p.event;
  73223. if (evt.pointerType === "mouse") {
  73224. return;
  73225. }
  73226. if (p.type === BABYLON.PointerEventTypes.POINTERDOWN) {
  73227. if (!noPreventDefault) {
  73228. evt.preventDefault();
  73229. }
  73230. _this._pointerPressed.push(evt.pointerId);
  73231. if (_this._pointerPressed.length !== 1) {
  73232. return;
  73233. }
  73234. previousPosition = {
  73235. x: evt.clientX,
  73236. y: evt.clientY
  73237. };
  73238. }
  73239. else if (p.type === BABYLON.PointerEventTypes.POINTERUP) {
  73240. if (!noPreventDefault) {
  73241. evt.preventDefault();
  73242. }
  73243. var index = _this._pointerPressed.indexOf(evt.pointerId);
  73244. if (index === -1) {
  73245. return;
  73246. }
  73247. _this._pointerPressed.splice(index, 1);
  73248. if (index != 0) {
  73249. return;
  73250. }
  73251. previousPosition = null;
  73252. _this._offsetX = null;
  73253. _this._offsetY = null;
  73254. }
  73255. else if (p.type === BABYLON.PointerEventTypes.POINTERMOVE) {
  73256. if (!noPreventDefault) {
  73257. evt.preventDefault();
  73258. }
  73259. if (!previousPosition) {
  73260. return;
  73261. }
  73262. var index = _this._pointerPressed.indexOf(evt.pointerId);
  73263. if (index != 0) {
  73264. return;
  73265. }
  73266. _this._offsetX = evt.clientX - previousPosition.x;
  73267. _this._offsetY = -(evt.clientY - previousPosition.y);
  73268. }
  73269. };
  73270. }
  73271. this._observer = this.camera.getScene().onPointerObservable.add(this._pointerInput, BABYLON.PointerEventTypes.POINTERDOWN | BABYLON.PointerEventTypes.POINTERUP | BABYLON.PointerEventTypes.POINTERMOVE);
  73272. if (this._onLostFocus) {
  73273. element.addEventListener("blur", this._onLostFocus);
  73274. }
  73275. };
  73276. FreeCameraTouchInput.prototype.detachControl = function (element) {
  73277. if (this._pointerInput && element) {
  73278. if (this._observer) {
  73279. this.camera.getScene().onPointerObservable.remove(this._observer);
  73280. this._observer = null;
  73281. }
  73282. if (this._onLostFocus) {
  73283. element.removeEventListener("blur", this._onLostFocus);
  73284. this._onLostFocus = null;
  73285. }
  73286. this._pointerPressed = [];
  73287. this._offsetX = null;
  73288. this._offsetY = null;
  73289. }
  73290. };
  73291. FreeCameraTouchInput.prototype.checkInputs = function () {
  73292. if (this._offsetX && this._offsetY) {
  73293. var camera = this.camera;
  73294. camera.cameraRotation.y += this._offsetX / this.touchAngularSensibility;
  73295. if (this._pointerPressed.length > 1) {
  73296. camera.cameraRotation.x += -this._offsetY / this.touchAngularSensibility;
  73297. }
  73298. else {
  73299. var speed = camera._computeLocalCameraSpeed();
  73300. var direction = new BABYLON.Vector3(0, 0, speed * this._offsetY / this.touchMoveSensibility);
  73301. BABYLON.Matrix.RotationYawPitchRollToRef(camera.rotation.y, camera.rotation.x, 0, camera._cameraRotationMatrix);
  73302. camera.cameraDirection.addInPlace(BABYLON.Vector3.TransformCoordinates(direction, camera._cameraRotationMatrix));
  73303. }
  73304. }
  73305. };
  73306. FreeCameraTouchInput.prototype.getClassName = function () {
  73307. return "FreeCameraTouchInput";
  73308. };
  73309. FreeCameraTouchInput.prototype.getSimpleName = function () {
  73310. return "touch";
  73311. };
  73312. __decorate([
  73313. BABYLON.serialize()
  73314. ], FreeCameraTouchInput.prototype, "touchAngularSensibility", void 0);
  73315. __decorate([
  73316. BABYLON.serialize()
  73317. ], FreeCameraTouchInput.prototype, "touchMoveSensibility", void 0);
  73318. return FreeCameraTouchInput;
  73319. }());
  73320. BABYLON.FreeCameraTouchInput = FreeCameraTouchInput;
  73321. BABYLON.CameraInputTypes["FreeCameraTouchInput"] = FreeCameraTouchInput;
  73322. })(BABYLON || (BABYLON = {}));
  73323. //# sourceMappingURL=babylon.freeCameraTouchInput.js.map
  73324. var BABYLON;
  73325. (function (BABYLON) {
  73326. BABYLON.Node.AddNodeConstructor("TouchCamera", function (name, scene) {
  73327. return function () { return new TouchCamera(name, BABYLON.Vector3.Zero(), scene); };
  73328. });
  73329. // We're mainly based on the logic defined into the FreeCamera code
  73330. var TouchCamera = /** @class */ (function (_super) {
  73331. __extends(TouchCamera, _super);
  73332. //-- end properties for backward compatibility for inputs
  73333. function TouchCamera(name, position, scene) {
  73334. var _this = _super.call(this, name, position, scene) || this;
  73335. _this.inputs.addTouch();
  73336. _this._setupInputs();
  73337. return _this;
  73338. }
  73339. Object.defineProperty(TouchCamera.prototype, "touchAngularSensibility", {
  73340. //-- Begin properties for backward compatibility for inputs
  73341. get: function () {
  73342. var touch = this.inputs.attached["touch"];
  73343. if (touch)
  73344. return touch.touchAngularSensibility;
  73345. return 0;
  73346. },
  73347. set: function (value) {
  73348. var touch = this.inputs.attached["touch"];
  73349. if (touch)
  73350. touch.touchAngularSensibility = value;
  73351. },
  73352. enumerable: true,
  73353. configurable: true
  73354. });
  73355. Object.defineProperty(TouchCamera.prototype, "touchMoveSensibility", {
  73356. get: function () {
  73357. var touch = this.inputs.attached["touch"];
  73358. if (touch)
  73359. return touch.touchMoveSensibility;
  73360. return 0;
  73361. },
  73362. set: function (value) {
  73363. var touch = this.inputs.attached["touch"];
  73364. if (touch)
  73365. touch.touchMoveSensibility = value;
  73366. },
  73367. enumerable: true,
  73368. configurable: true
  73369. });
  73370. TouchCamera.prototype.getClassName = function () {
  73371. return "TouchCamera";
  73372. };
  73373. /** @hidden */
  73374. TouchCamera.prototype._setupInputs = function () {
  73375. var mouse = this.inputs.attached["mouse"];
  73376. if (mouse) {
  73377. mouse.touchEnabled = false;
  73378. }
  73379. };
  73380. return TouchCamera;
  73381. }(BABYLON.FreeCamera));
  73382. BABYLON.TouchCamera = TouchCamera;
  73383. })(BABYLON || (BABYLON = {}));
  73384. //# sourceMappingURL=babylon.touchCamera.js.map
  73385. var BABYLON;
  73386. (function (BABYLON) {
  73387. var ProceduralTexture = /** @class */ (function (_super) {
  73388. __extends(ProceduralTexture, _super);
  73389. function ProceduralTexture(name, size, fragment, scene, fallbackTexture, generateMipMaps, isCube) {
  73390. if (fallbackTexture === void 0) { fallbackTexture = null; }
  73391. if (generateMipMaps === void 0) { generateMipMaps = true; }
  73392. if (isCube === void 0) { isCube = false; }
  73393. var _this = _super.call(this, null, scene, !generateMipMaps) || this;
  73394. _this.isCube = isCube;
  73395. _this.isEnabled = true;
  73396. _this._currentRefreshId = -1;
  73397. _this._refreshRate = 1;
  73398. _this._vertexBuffers = {};
  73399. _this._uniforms = new Array();
  73400. _this._samplers = new Array();
  73401. /** @hidden */
  73402. _this._textures = {};
  73403. _this._floats = {};
  73404. _this._ints = {};
  73405. _this._floatsArrays = {};
  73406. _this._colors3 = {};
  73407. _this._colors4 = {};
  73408. _this._vectors2 = {};
  73409. _this._vectors3 = {};
  73410. _this._matrices = {};
  73411. _this._fallbackTextureUsed = false;
  73412. _this._cachedDefines = "";
  73413. scene = _this.getScene();
  73414. var component = scene._getComponent(BABYLON.SceneComponentConstants.NAME_PROCEDURALTEXTURE);
  73415. if (!component) {
  73416. component = new BABYLON.ProceduralTextureSceneComponent(scene);
  73417. scene._addComponent(component);
  73418. }
  73419. scene.proceduralTextures.push(_this);
  73420. _this._engine = scene.getEngine();
  73421. _this.name = name;
  73422. _this.isRenderTarget = true;
  73423. _this._size = size;
  73424. _this._generateMipMaps = generateMipMaps;
  73425. _this.setFragment(fragment);
  73426. _this._fallbackTexture = fallbackTexture;
  73427. if (isCube) {
  73428. _this._texture = _this._engine.createRenderTargetCubeTexture(size, { generateMipMaps: generateMipMaps });
  73429. _this.setFloat("face", 0);
  73430. }
  73431. else {
  73432. _this._texture = _this._engine.createRenderTargetTexture(size, generateMipMaps);
  73433. }
  73434. // VBO
  73435. var vertices = [];
  73436. vertices.push(1, 1);
  73437. vertices.push(-1, 1);
  73438. vertices.push(-1, -1);
  73439. vertices.push(1, -1);
  73440. _this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(_this._engine, vertices, BABYLON.VertexBuffer.PositionKind, false, false, 2);
  73441. _this._createIndexBuffer();
  73442. return _this;
  73443. }
  73444. ProceduralTexture.prototype._createIndexBuffer = function () {
  73445. var engine = this._engine;
  73446. // Indices
  73447. var indices = [];
  73448. indices.push(0);
  73449. indices.push(1);
  73450. indices.push(2);
  73451. indices.push(0);
  73452. indices.push(2);
  73453. indices.push(3);
  73454. this._indexBuffer = engine.createIndexBuffer(indices);
  73455. };
  73456. /** @hidden */
  73457. ProceduralTexture.prototype._rebuild = function () {
  73458. var vb = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  73459. if (vb) {
  73460. vb._rebuild();
  73461. }
  73462. this._createIndexBuffer();
  73463. if (this.refreshRate === BABYLON.RenderTargetTexture.REFRESHRATE_RENDER_ONCE) {
  73464. this.refreshRate = BABYLON.RenderTargetTexture.REFRESHRATE_RENDER_ONCE;
  73465. }
  73466. };
  73467. ProceduralTexture.prototype.reset = function () {
  73468. if (this._effect === undefined) {
  73469. return;
  73470. }
  73471. var engine = this._engine;
  73472. engine._releaseEffect(this._effect);
  73473. };
  73474. ProceduralTexture.prototype._getDefines = function () {
  73475. return "";
  73476. };
  73477. ProceduralTexture.prototype.isReady = function () {
  73478. var _this = this;
  73479. var engine = this._engine;
  73480. var shaders;
  73481. if (!this._fragment) {
  73482. return false;
  73483. }
  73484. if (this._fallbackTextureUsed) {
  73485. return true;
  73486. }
  73487. var defines = this._getDefines();
  73488. if (this._effect && defines === this._cachedDefines && this._effect.isReady()) {
  73489. return true;
  73490. }
  73491. if (this._fragment.fragmentElement !== undefined) {
  73492. shaders = { vertex: "procedural", fragmentElement: this._fragment.fragmentElement };
  73493. }
  73494. else {
  73495. shaders = { vertex: "procedural", fragment: this._fragment };
  73496. }
  73497. this._cachedDefines = defines;
  73498. this._effect = engine.createEffect(shaders, [BABYLON.VertexBuffer.PositionKind], this._uniforms, this._samplers, defines, undefined, undefined, function () {
  73499. _this.releaseInternalTexture();
  73500. if (_this._fallbackTexture) {
  73501. _this._texture = _this._fallbackTexture._texture;
  73502. if (_this._texture) {
  73503. _this._texture.incrementReferences();
  73504. }
  73505. }
  73506. _this._fallbackTextureUsed = true;
  73507. });
  73508. return this._effect.isReady();
  73509. };
  73510. ProceduralTexture.prototype.resetRefreshCounter = function () {
  73511. this._currentRefreshId = -1;
  73512. };
  73513. ProceduralTexture.prototype.setFragment = function (fragment) {
  73514. this._fragment = fragment;
  73515. };
  73516. Object.defineProperty(ProceduralTexture.prototype, "refreshRate", {
  73517. get: function () {
  73518. return this._refreshRate;
  73519. },
  73520. // Use 0 to render just once, 1 to render on every frame, 2 to render every two frames and so on...
  73521. set: function (value) {
  73522. this._refreshRate = value;
  73523. this.resetRefreshCounter();
  73524. },
  73525. enumerable: true,
  73526. configurable: true
  73527. });
  73528. /** @hidden */
  73529. ProceduralTexture.prototype._shouldRender = function () {
  73530. if (!this.isEnabled || !this.isReady() || !this._texture) {
  73531. return false;
  73532. }
  73533. if (this._fallbackTextureUsed) {
  73534. return false;
  73535. }
  73536. if (this._currentRefreshId === -1) { // At least render once
  73537. this._currentRefreshId = 1;
  73538. return true;
  73539. }
  73540. if (this.refreshRate === this._currentRefreshId) {
  73541. this._currentRefreshId = 1;
  73542. return true;
  73543. }
  73544. this._currentRefreshId++;
  73545. return false;
  73546. };
  73547. ProceduralTexture.prototype.getRenderSize = function () {
  73548. return this._size;
  73549. };
  73550. ProceduralTexture.prototype.resize = function (size, generateMipMaps) {
  73551. if (this._fallbackTextureUsed) {
  73552. return;
  73553. }
  73554. this.releaseInternalTexture();
  73555. this._texture = this._engine.createRenderTargetTexture(size, generateMipMaps);
  73556. // Update properties
  73557. this._size = size;
  73558. this._generateMipMaps = generateMipMaps;
  73559. };
  73560. ProceduralTexture.prototype._checkUniform = function (uniformName) {
  73561. if (this._uniforms.indexOf(uniformName) === -1) {
  73562. this._uniforms.push(uniformName);
  73563. }
  73564. };
  73565. ProceduralTexture.prototype.setTexture = function (name, texture) {
  73566. if (this._samplers.indexOf(name) === -1) {
  73567. this._samplers.push(name);
  73568. }
  73569. this._textures[name] = texture;
  73570. return this;
  73571. };
  73572. ProceduralTexture.prototype.setFloat = function (name, value) {
  73573. this._checkUniform(name);
  73574. this._floats[name] = value;
  73575. return this;
  73576. };
  73577. /**
  73578. * Set the value of an uniform to an integer value
  73579. * @param name defines the name of the uniform
  73580. * @param value defines the value to set
  73581. * @returns the current procedural texture
  73582. */
  73583. ProceduralTexture.prototype.setInt = function (name, value) {
  73584. this._checkUniform(name);
  73585. this._ints[name] = value;
  73586. return this;
  73587. };
  73588. ProceduralTexture.prototype.setFloats = function (name, value) {
  73589. this._checkUniform(name);
  73590. this._floatsArrays[name] = value;
  73591. return this;
  73592. };
  73593. ProceduralTexture.prototype.setColor3 = function (name, value) {
  73594. this._checkUniform(name);
  73595. this._colors3[name] = value;
  73596. return this;
  73597. };
  73598. ProceduralTexture.prototype.setColor4 = function (name, value) {
  73599. this._checkUniform(name);
  73600. this._colors4[name] = value;
  73601. return this;
  73602. };
  73603. ProceduralTexture.prototype.setVector2 = function (name, value) {
  73604. this._checkUniform(name);
  73605. this._vectors2[name] = value;
  73606. return this;
  73607. };
  73608. ProceduralTexture.prototype.setVector3 = function (name, value) {
  73609. this._checkUniform(name);
  73610. this._vectors3[name] = value;
  73611. return this;
  73612. };
  73613. ProceduralTexture.prototype.setMatrix = function (name, value) {
  73614. this._checkUniform(name);
  73615. this._matrices[name] = value;
  73616. return this;
  73617. };
  73618. ProceduralTexture.prototype.render = function (useCameraPostProcess) {
  73619. var scene = this.getScene();
  73620. if (!scene) {
  73621. return;
  73622. }
  73623. var engine = this._engine;
  73624. // Render
  73625. engine.enableEffect(this._effect);
  73626. engine.setState(false);
  73627. // Texture
  73628. for (var name in this._textures) {
  73629. this._effect.setTexture(name, this._textures[name]);
  73630. }
  73631. // Float
  73632. for (name in this._ints) {
  73633. this._effect.setInt(name, this._ints[name]);
  73634. }
  73635. // Float
  73636. for (name in this._floats) {
  73637. this._effect.setFloat(name, this._floats[name]);
  73638. }
  73639. // Floats
  73640. for (name in this._floatsArrays) {
  73641. this._effect.setArray(name, this._floatsArrays[name]);
  73642. }
  73643. // Color3
  73644. for (name in this._colors3) {
  73645. this._effect.setColor3(name, this._colors3[name]);
  73646. }
  73647. // Color4
  73648. for (name in this._colors4) {
  73649. var color = this._colors4[name];
  73650. this._effect.setFloat4(name, color.r, color.g, color.b, color.a);
  73651. }
  73652. // Vector2
  73653. for (name in this._vectors2) {
  73654. this._effect.setVector2(name, this._vectors2[name]);
  73655. }
  73656. // Vector3
  73657. for (name in this._vectors3) {
  73658. this._effect.setVector3(name, this._vectors3[name]);
  73659. }
  73660. // Matrix
  73661. for (name in this._matrices) {
  73662. this._effect.setMatrix(name, this._matrices[name]);
  73663. }
  73664. if (!this._texture) {
  73665. return;
  73666. }
  73667. if (this.isCube) {
  73668. for (var face = 0; face < 6; face++) {
  73669. engine.bindFramebuffer(this._texture, face, undefined, undefined, true);
  73670. // VBOs
  73671. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, this._effect);
  73672. this._effect.setFloat("face", face);
  73673. // Clear
  73674. engine.clear(scene.clearColor, true, true, true);
  73675. // Draw order
  73676. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  73677. // Mipmaps
  73678. if (face === 5) {
  73679. engine.generateMipMapsForCubemap(this._texture);
  73680. }
  73681. }
  73682. }
  73683. else {
  73684. engine.bindFramebuffer(this._texture, 0, undefined, undefined, true);
  73685. // VBOs
  73686. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, this._effect);
  73687. // Clear
  73688. engine.clear(scene.clearColor, true, true, true);
  73689. // Draw order
  73690. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  73691. }
  73692. // Unbind
  73693. engine.unBindFramebuffer(this._texture, this.isCube);
  73694. if (this.onGenerated) {
  73695. this.onGenerated();
  73696. }
  73697. };
  73698. ProceduralTexture.prototype.clone = function () {
  73699. var textureSize = this.getSize();
  73700. var newTexture = new ProceduralTexture(this.name, textureSize.width, this._fragment, this.getScene(), this._fallbackTexture, this._generateMipMaps);
  73701. // Base texture
  73702. newTexture.hasAlpha = this.hasAlpha;
  73703. newTexture.level = this.level;
  73704. // RenderTarget Texture
  73705. newTexture.coordinatesMode = this.coordinatesMode;
  73706. return newTexture;
  73707. };
  73708. ProceduralTexture.prototype.dispose = function () {
  73709. var scene = this.getScene();
  73710. if (!scene) {
  73711. return;
  73712. }
  73713. var index = scene.proceduralTextures.indexOf(this);
  73714. if (index >= 0) {
  73715. scene.proceduralTextures.splice(index, 1);
  73716. }
  73717. var vertexBuffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  73718. if (vertexBuffer) {
  73719. vertexBuffer.dispose();
  73720. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  73721. }
  73722. if (this._indexBuffer && this._engine._releaseBuffer(this._indexBuffer)) {
  73723. this._indexBuffer = null;
  73724. }
  73725. _super.prototype.dispose.call(this);
  73726. };
  73727. __decorate([
  73728. BABYLON.serialize()
  73729. ], ProceduralTexture.prototype, "_size", void 0);
  73730. __decorate([
  73731. BABYLON.serialize()
  73732. ], ProceduralTexture.prototype, "_generateMipMaps", void 0);
  73733. __decorate([
  73734. BABYLON.serialize()
  73735. ], ProceduralTexture.prototype, "isEnabled", void 0);
  73736. __decorate([
  73737. BABYLON.serialize()
  73738. ], ProceduralTexture.prototype, "refreshRate", null);
  73739. return ProceduralTexture;
  73740. }(BABYLON.Texture));
  73741. BABYLON.ProceduralTexture = ProceduralTexture;
  73742. })(BABYLON || (BABYLON = {}));
  73743. //# sourceMappingURL=babylon.proceduralTexture.js.map
  73744. var BABYLON;
  73745. (function (BABYLON) {
  73746. /**
  73747. * Defines the Procedural Texture scene component responsible to manage any Procedural Texture
  73748. * in a given scene.
  73749. */
  73750. var ProceduralTextureSceneComponent = /** @class */ (function () {
  73751. /**
  73752. * Creates a new instance of the component for the given scene
  73753. * @param scene Defines the scene to register the component in
  73754. */
  73755. function ProceduralTextureSceneComponent(scene) {
  73756. /**
  73757. * The component name helpfull to identify the component in the list of scene components.
  73758. */
  73759. this.name = BABYLON.SceneComponentConstants.NAME_PROCEDURALTEXTURE;
  73760. this.scene = scene;
  73761. this.scene.proceduralTextures = new Array();
  73762. scene.layers = new Array();
  73763. }
  73764. /**
  73765. * Registers the component in a given scene
  73766. */
  73767. ProceduralTextureSceneComponent.prototype.register = function () {
  73768. this.scene._beforeClearStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORECLEAR_PROCEDURALTEXTURE, this, this._beforeClear);
  73769. };
  73770. /**
  73771. * Rebuilds the elements related to this component in case of
  73772. * context lost for instance.
  73773. */
  73774. ProceduralTextureSceneComponent.prototype.rebuild = function () {
  73775. // Nothing to do here.
  73776. };
  73777. /**
  73778. * Disposes the component and the associated ressources.
  73779. */
  73780. ProceduralTextureSceneComponent.prototype.dispose = function () {
  73781. // Nothing to do here.
  73782. };
  73783. ProceduralTextureSceneComponent.prototype._beforeClear = function () {
  73784. if (this.scene.proceduralTexturesEnabled) {
  73785. BABYLON.Tools.StartPerformanceCounter("Procedural textures", this.scene.proceduralTextures.length > 0);
  73786. for (var proceduralIndex = 0; proceduralIndex < this.scene.proceduralTextures.length; proceduralIndex++) {
  73787. var proceduralTexture = this.scene.proceduralTextures[proceduralIndex];
  73788. if (proceduralTexture._shouldRender()) {
  73789. proceduralTexture.render();
  73790. }
  73791. }
  73792. BABYLON.Tools.EndPerformanceCounter("Procedural textures", this.scene.proceduralTextures.length > 0);
  73793. }
  73794. };
  73795. return ProceduralTextureSceneComponent;
  73796. }());
  73797. BABYLON.ProceduralTextureSceneComponent = ProceduralTextureSceneComponent;
  73798. })(BABYLON || (BABYLON = {}));
  73799. //# sourceMappingURL=babylon.proceduralTextureSceneComponent.js.map
  73800. var BABYLON;
  73801. (function (BABYLON) {
  73802. var CustomProceduralTexture = /** @class */ (function (_super) {
  73803. __extends(CustomProceduralTexture, _super);
  73804. function CustomProceduralTexture(name, texturePath, size, scene, fallbackTexture, generateMipMaps) {
  73805. var _this = _super.call(this, name, size, null, scene, fallbackTexture, generateMipMaps) || this;
  73806. _this._animate = true;
  73807. _this._time = 0;
  73808. _this._texturePath = texturePath;
  73809. //Try to load json
  73810. _this.loadJson(texturePath);
  73811. _this.refreshRate = 1;
  73812. return _this;
  73813. }
  73814. CustomProceduralTexture.prototype.loadJson = function (jsonUrl) {
  73815. var _this = this;
  73816. var noConfigFile = function () {
  73817. BABYLON.Tools.Log("No config file found in " + jsonUrl + " trying to use ShadersStore or DOM element");
  73818. try {
  73819. _this.setFragment(_this._texturePath);
  73820. }
  73821. catch (ex) {
  73822. BABYLON.Tools.Error("No json or ShaderStore or DOM element found for CustomProceduralTexture");
  73823. }
  73824. };
  73825. var configFileUrl = jsonUrl + "/config.json";
  73826. var xhr = new XMLHttpRequest();
  73827. xhr.open("GET", configFileUrl, true);
  73828. xhr.addEventListener("load", function () {
  73829. if (xhr.status === 200 || BABYLON.Tools.ValidateXHRData(xhr, 1)) {
  73830. try {
  73831. _this._config = JSON.parse(xhr.response);
  73832. _this.updateShaderUniforms();
  73833. _this.updateTextures();
  73834. _this.setFragment(_this._texturePath + "/custom");
  73835. _this._animate = _this._config.animate;
  73836. _this.refreshRate = _this._config.refreshrate;
  73837. }
  73838. catch (ex) {
  73839. noConfigFile();
  73840. }
  73841. }
  73842. else {
  73843. noConfigFile();
  73844. }
  73845. }, false);
  73846. xhr.addEventListener("error", function () {
  73847. noConfigFile();
  73848. }, false);
  73849. try {
  73850. xhr.send();
  73851. }
  73852. catch (ex) {
  73853. BABYLON.Tools.Error("CustomProceduralTexture: Error on XHR send request.");
  73854. }
  73855. };
  73856. CustomProceduralTexture.prototype.isReady = function () {
  73857. if (!_super.prototype.isReady.call(this)) {
  73858. return false;
  73859. }
  73860. for (var name in this._textures) {
  73861. var texture = this._textures[name];
  73862. if (!texture.isReady()) {
  73863. return false;
  73864. }
  73865. }
  73866. return true;
  73867. };
  73868. CustomProceduralTexture.prototype.render = function (useCameraPostProcess) {
  73869. var scene = this.getScene();
  73870. if (this._animate && scene) {
  73871. this._time += scene.getAnimationRatio() * 0.03;
  73872. this.updateShaderUniforms();
  73873. }
  73874. _super.prototype.render.call(this, useCameraPostProcess);
  73875. };
  73876. CustomProceduralTexture.prototype.updateTextures = function () {
  73877. for (var i = 0; i < this._config.sampler2Ds.length; i++) {
  73878. this.setTexture(this._config.sampler2Ds[i].sample2Dname, new BABYLON.Texture(this._texturePath + "/" + this._config.sampler2Ds[i].textureRelativeUrl, this.getScene()));
  73879. }
  73880. };
  73881. CustomProceduralTexture.prototype.updateShaderUniforms = function () {
  73882. if (this._config) {
  73883. for (var j = 0; j < this._config.uniforms.length; j++) {
  73884. var uniform = this._config.uniforms[j];
  73885. switch (uniform.type) {
  73886. case "float":
  73887. this.setFloat(uniform.name, uniform.value);
  73888. break;
  73889. case "color3":
  73890. this.setColor3(uniform.name, new BABYLON.Color3(uniform.r, uniform.g, uniform.b));
  73891. break;
  73892. case "color4":
  73893. this.setColor4(uniform.name, new BABYLON.Color4(uniform.r, uniform.g, uniform.b, uniform.a));
  73894. break;
  73895. case "vector2":
  73896. this.setVector2(uniform.name, new BABYLON.Vector2(uniform.x, uniform.y));
  73897. break;
  73898. case "vector3":
  73899. this.setVector3(uniform.name, new BABYLON.Vector3(uniform.x, uniform.y, uniform.z));
  73900. break;
  73901. }
  73902. }
  73903. }
  73904. this.setFloat("time", this._time);
  73905. };
  73906. Object.defineProperty(CustomProceduralTexture.prototype, "animate", {
  73907. get: function () {
  73908. return this._animate;
  73909. },
  73910. set: function (value) {
  73911. this._animate = value;
  73912. },
  73913. enumerable: true,
  73914. configurable: true
  73915. });
  73916. return CustomProceduralTexture;
  73917. }(BABYLON.ProceduralTexture));
  73918. BABYLON.CustomProceduralTexture = CustomProceduralTexture;
  73919. })(BABYLON || (BABYLON = {}));
  73920. //# sourceMappingURL=babylon.customProceduralTexture.js.map
  73921. var BABYLON;
  73922. (function (BABYLON) {
  73923. var FreeCameraGamepadInput = /** @class */ (function () {
  73924. function FreeCameraGamepadInput() {
  73925. this.gamepadAngularSensibility = 200;
  73926. this.gamepadMoveSensibility = 40;
  73927. // private members
  73928. this._cameraTransform = BABYLON.Matrix.Identity();
  73929. this._deltaTransform = BABYLON.Vector3.Zero();
  73930. this._vector3 = BABYLON.Vector3.Zero();
  73931. this._vector2 = BABYLON.Vector2.Zero();
  73932. }
  73933. FreeCameraGamepadInput.prototype.attachControl = function (element, noPreventDefault) {
  73934. var _this = this;
  73935. var manager = this.camera.getScene().gamepadManager;
  73936. this._onGamepadConnectedObserver = manager.onGamepadConnectedObservable.add(function (gamepad) {
  73937. if (gamepad.type !== BABYLON.Gamepad.POSE_ENABLED) {
  73938. // prioritize XBOX gamepads.
  73939. if (!_this.gamepad || gamepad.type === BABYLON.Gamepad.XBOX) {
  73940. _this.gamepad = gamepad;
  73941. }
  73942. }
  73943. });
  73944. this._onGamepadDisconnectedObserver = manager.onGamepadDisconnectedObservable.add(function (gamepad) {
  73945. if (_this.gamepad === gamepad) {
  73946. _this.gamepad = null;
  73947. }
  73948. });
  73949. this.gamepad = manager.getGamepadByType(BABYLON.Gamepad.XBOX);
  73950. };
  73951. FreeCameraGamepadInput.prototype.detachControl = function (element) {
  73952. this.camera.getScene().gamepadManager.onGamepadConnectedObservable.remove(this._onGamepadConnectedObserver);
  73953. this.camera.getScene().gamepadManager.onGamepadDisconnectedObservable.remove(this._onGamepadDisconnectedObserver);
  73954. this.gamepad = null;
  73955. };
  73956. FreeCameraGamepadInput.prototype.checkInputs = function () {
  73957. if (this.gamepad && this.gamepad.leftStick) {
  73958. var camera = this.camera;
  73959. var LSValues = this.gamepad.leftStick;
  73960. var normalizedLX = LSValues.x / this.gamepadMoveSensibility;
  73961. var normalizedLY = LSValues.y / this.gamepadMoveSensibility;
  73962. LSValues.x = Math.abs(normalizedLX) > 0.005 ? 0 + normalizedLX : 0;
  73963. LSValues.y = Math.abs(normalizedLY) > 0.005 ? 0 + normalizedLY : 0;
  73964. var RSValues = this.gamepad.rightStick;
  73965. if (RSValues) {
  73966. var normalizedRX = RSValues.x / this.gamepadAngularSensibility;
  73967. var normalizedRY = RSValues.y / this.gamepadAngularSensibility;
  73968. RSValues.x = Math.abs(normalizedRX) > 0.001 ? 0 + normalizedRX : 0;
  73969. RSValues.y = Math.abs(normalizedRY) > 0.001 ? 0 + normalizedRY : 0;
  73970. }
  73971. else {
  73972. RSValues = { x: 0, y: 0 };
  73973. }
  73974. if (!camera.rotationQuaternion) {
  73975. BABYLON.Matrix.RotationYawPitchRollToRef(camera.rotation.y, camera.rotation.x, 0, this._cameraTransform);
  73976. }
  73977. else {
  73978. camera.rotationQuaternion.toRotationMatrix(this._cameraTransform);
  73979. }
  73980. var speed = camera._computeLocalCameraSpeed() * 50.0;
  73981. this._vector3.copyFromFloats(LSValues.x * speed, 0, -LSValues.y * speed);
  73982. BABYLON.Vector3.TransformCoordinatesToRef(this._vector3, this._cameraTransform, this._deltaTransform);
  73983. camera.cameraDirection.addInPlace(this._deltaTransform);
  73984. this._vector2.copyFromFloats(RSValues.y, RSValues.x);
  73985. camera.cameraRotation.addInPlace(this._vector2);
  73986. }
  73987. };
  73988. FreeCameraGamepadInput.prototype.getClassName = function () {
  73989. return "FreeCameraGamepadInput";
  73990. };
  73991. FreeCameraGamepadInput.prototype.getSimpleName = function () {
  73992. return "gamepad";
  73993. };
  73994. __decorate([
  73995. BABYLON.serialize()
  73996. ], FreeCameraGamepadInput.prototype, "gamepadAngularSensibility", void 0);
  73997. __decorate([
  73998. BABYLON.serialize()
  73999. ], FreeCameraGamepadInput.prototype, "gamepadMoveSensibility", void 0);
  74000. return FreeCameraGamepadInput;
  74001. }());
  74002. BABYLON.FreeCameraGamepadInput = FreeCameraGamepadInput;
  74003. BABYLON.CameraInputTypes["FreeCameraGamepadInput"] = FreeCameraGamepadInput;
  74004. })(BABYLON || (BABYLON = {}));
  74005. //# sourceMappingURL=babylon.freeCameraGamepadInput.js.map
  74006. var BABYLON;
  74007. (function (BABYLON) {
  74008. var ArcRotateCameraGamepadInput = /** @class */ (function () {
  74009. function ArcRotateCameraGamepadInput() {
  74010. this.gamepadRotationSensibility = 80;
  74011. this.gamepadMoveSensibility = 40;
  74012. }
  74013. ArcRotateCameraGamepadInput.prototype.attachControl = function (element, noPreventDefault) {
  74014. var _this = this;
  74015. var manager = this.camera.getScene().gamepadManager;
  74016. this._onGamepadConnectedObserver = manager.onGamepadConnectedObservable.add(function (gamepad) {
  74017. if (gamepad.type !== BABYLON.Gamepad.POSE_ENABLED) {
  74018. // prioritize XBOX gamepads.
  74019. if (!_this.gamepad || gamepad.type === BABYLON.Gamepad.XBOX) {
  74020. _this.gamepad = gamepad;
  74021. }
  74022. }
  74023. });
  74024. this._onGamepadDisconnectedObserver = manager.onGamepadDisconnectedObservable.add(function (gamepad) {
  74025. if (_this.gamepad === gamepad) {
  74026. _this.gamepad = null;
  74027. }
  74028. });
  74029. this.gamepad = manager.getGamepadByType(BABYLON.Gamepad.XBOX);
  74030. };
  74031. ArcRotateCameraGamepadInput.prototype.detachControl = function (element) {
  74032. this.camera.getScene().gamepadManager.onGamepadConnectedObservable.remove(this._onGamepadConnectedObserver);
  74033. this.camera.getScene().gamepadManager.onGamepadDisconnectedObservable.remove(this._onGamepadDisconnectedObserver);
  74034. this.gamepad = null;
  74035. };
  74036. ArcRotateCameraGamepadInput.prototype.checkInputs = function () {
  74037. if (this.gamepad) {
  74038. var camera = this.camera;
  74039. var RSValues = this.gamepad.rightStick;
  74040. if (RSValues) {
  74041. if (RSValues.x != 0) {
  74042. var normalizedRX = RSValues.x / this.gamepadRotationSensibility;
  74043. if (normalizedRX != 0 && Math.abs(normalizedRX) > 0.005) {
  74044. camera.inertialAlphaOffset += normalizedRX;
  74045. }
  74046. }
  74047. if (RSValues.y != 0) {
  74048. var normalizedRY = RSValues.y / this.gamepadRotationSensibility;
  74049. if (normalizedRY != 0 && Math.abs(normalizedRY) > 0.005) {
  74050. camera.inertialBetaOffset += normalizedRY;
  74051. }
  74052. }
  74053. }
  74054. var LSValues = this.gamepad.leftStick;
  74055. if (LSValues && LSValues.y != 0) {
  74056. var normalizedLY = LSValues.y / this.gamepadMoveSensibility;
  74057. if (normalizedLY != 0 && Math.abs(normalizedLY) > 0.005) {
  74058. this.camera.inertialRadiusOffset -= normalizedLY;
  74059. }
  74060. }
  74061. }
  74062. };
  74063. ArcRotateCameraGamepadInput.prototype.getClassName = function () {
  74064. return "ArcRotateCameraGamepadInput";
  74065. };
  74066. ArcRotateCameraGamepadInput.prototype.getSimpleName = function () {
  74067. return "gamepad";
  74068. };
  74069. __decorate([
  74070. BABYLON.serialize()
  74071. ], ArcRotateCameraGamepadInput.prototype, "gamepadRotationSensibility", void 0);
  74072. __decorate([
  74073. BABYLON.serialize()
  74074. ], ArcRotateCameraGamepadInput.prototype, "gamepadMoveSensibility", void 0);
  74075. return ArcRotateCameraGamepadInput;
  74076. }());
  74077. BABYLON.ArcRotateCameraGamepadInput = ArcRotateCameraGamepadInput;
  74078. BABYLON.CameraInputTypes["ArcRotateCameraGamepadInput"] = ArcRotateCameraGamepadInput;
  74079. })(BABYLON || (BABYLON = {}));
  74080. //# sourceMappingURL=babylon.arcRotateCameraGamepadInput.js.map
  74081. var BABYLON;
  74082. (function (BABYLON) {
  74083. var GamepadManager = /** @class */ (function () {
  74084. function GamepadManager(_scene) {
  74085. var _this = this;
  74086. this._scene = _scene;
  74087. this._babylonGamepads = [];
  74088. this._oneGamepadConnected = false;
  74089. /** @hidden */
  74090. this._isMonitoring = false;
  74091. this.onGamepadDisconnectedObservable = new BABYLON.Observable();
  74092. if (!BABYLON.Tools.IsWindowObjectExist()) {
  74093. this._gamepadEventSupported = false;
  74094. }
  74095. else {
  74096. this._gamepadEventSupported = 'GamepadEvent' in window;
  74097. this._gamepadSupport = (navigator.getGamepads ||
  74098. navigator.webkitGetGamepads || navigator.msGetGamepads || navigator.webkitGamepads);
  74099. }
  74100. this.onGamepadConnectedObservable = new BABYLON.Observable(function (observer) {
  74101. // This will be used to raise the onGamepadConnected for all gamepads ALREADY connected
  74102. for (var i in _this._babylonGamepads) {
  74103. var gamepad = _this._babylonGamepads[i];
  74104. if (gamepad && gamepad._isConnected) {
  74105. _this.onGamepadConnectedObservable.notifyObserver(observer, gamepad);
  74106. }
  74107. }
  74108. });
  74109. this._onGamepadConnectedEvent = function (evt) {
  74110. var gamepad = evt.gamepad;
  74111. if (gamepad.index in _this._babylonGamepads) {
  74112. if (_this._babylonGamepads[gamepad.index].isConnected) {
  74113. return;
  74114. }
  74115. }
  74116. var newGamepad;
  74117. if (_this._babylonGamepads[gamepad.index]) {
  74118. newGamepad = _this._babylonGamepads[gamepad.index];
  74119. newGamepad.browserGamepad = gamepad;
  74120. newGamepad._isConnected = true;
  74121. }
  74122. else {
  74123. newGamepad = _this._addNewGamepad(gamepad);
  74124. }
  74125. _this.onGamepadConnectedObservable.notifyObservers(newGamepad);
  74126. _this._startMonitoringGamepads();
  74127. };
  74128. this._onGamepadDisconnectedEvent = function (evt) {
  74129. var gamepad = evt.gamepad;
  74130. // Remove the gamepad from the list of gamepads to monitor.
  74131. for (var i in _this._babylonGamepads) {
  74132. if (_this._babylonGamepads[i].index === gamepad.index) {
  74133. var disconnectedGamepad = _this._babylonGamepads[i];
  74134. disconnectedGamepad._isConnected = false;
  74135. _this.onGamepadDisconnectedObservable.notifyObservers(disconnectedGamepad);
  74136. break;
  74137. }
  74138. }
  74139. };
  74140. if (this._gamepadSupport) {
  74141. //first add already-connected gamepads
  74142. this._updateGamepadObjects();
  74143. if (this._babylonGamepads.length) {
  74144. this._startMonitoringGamepads();
  74145. }
  74146. // Checking if the gamepad connected event is supported (like in Firefox)
  74147. if (this._gamepadEventSupported) {
  74148. window.addEventListener('gamepadconnected', this._onGamepadConnectedEvent, false);
  74149. window.addEventListener('gamepaddisconnected', this._onGamepadDisconnectedEvent, false);
  74150. }
  74151. else {
  74152. this._startMonitoringGamepads();
  74153. }
  74154. }
  74155. }
  74156. Object.defineProperty(GamepadManager.prototype, "gamepads", {
  74157. get: function () {
  74158. return this._babylonGamepads;
  74159. },
  74160. enumerable: true,
  74161. configurable: true
  74162. });
  74163. GamepadManager.prototype.getGamepadByType = function (type) {
  74164. if (type === void 0) { type = BABYLON.Gamepad.XBOX; }
  74165. for (var _i = 0, _a = this._babylonGamepads; _i < _a.length; _i++) {
  74166. var gamepad = _a[_i];
  74167. if (gamepad && gamepad.type === type) {
  74168. return gamepad;
  74169. }
  74170. }
  74171. return null;
  74172. };
  74173. GamepadManager.prototype.dispose = function () {
  74174. if (this._gamepadEventSupported) {
  74175. if (this._onGamepadConnectedEvent) {
  74176. window.removeEventListener('gamepadconnected', this._onGamepadConnectedEvent);
  74177. }
  74178. if (this._onGamepadDisconnectedEvent) {
  74179. window.removeEventListener('gamepaddisconnected', this._onGamepadDisconnectedEvent);
  74180. }
  74181. this._onGamepadConnectedEvent = null;
  74182. this._onGamepadDisconnectedEvent = null;
  74183. }
  74184. this._babylonGamepads.forEach(function (gamepad) {
  74185. gamepad.dispose();
  74186. });
  74187. this.onGamepadConnectedObservable.clear();
  74188. this.onGamepadDisconnectedObservable.clear();
  74189. this._oneGamepadConnected = false;
  74190. this._stopMonitoringGamepads();
  74191. this._babylonGamepads = [];
  74192. };
  74193. GamepadManager.prototype._addNewGamepad = function (gamepad) {
  74194. if (!this._oneGamepadConnected) {
  74195. this._oneGamepadConnected = true;
  74196. }
  74197. var newGamepad;
  74198. var xboxOne = (gamepad.id.search("Xbox One") !== -1);
  74199. if (xboxOne || gamepad.id.search("Xbox 360") !== -1 || gamepad.id.search("xinput") !== -1) {
  74200. newGamepad = new BABYLON.Xbox360Pad(gamepad.id, gamepad.index, gamepad, xboxOne);
  74201. }
  74202. // if pose is supported, use the (WebVR) pose enabled controller
  74203. else if (gamepad.pose) {
  74204. newGamepad = BABYLON.PoseEnabledControllerHelper.InitiateController(gamepad);
  74205. }
  74206. else {
  74207. newGamepad = new BABYLON.GenericPad(gamepad.id, gamepad.index, gamepad);
  74208. }
  74209. this._babylonGamepads[newGamepad.index] = newGamepad;
  74210. return newGamepad;
  74211. };
  74212. GamepadManager.prototype._startMonitoringGamepads = function () {
  74213. if (!this._isMonitoring) {
  74214. this._isMonitoring = true;
  74215. //back-comp
  74216. if (!this._scene) {
  74217. this._checkGamepadsStatus();
  74218. }
  74219. }
  74220. };
  74221. GamepadManager.prototype._stopMonitoringGamepads = function () {
  74222. this._isMonitoring = false;
  74223. };
  74224. /** @hidden */
  74225. GamepadManager.prototype._checkGamepadsStatus = function () {
  74226. var _this = this;
  74227. // Hack to be compatible Chrome
  74228. this._updateGamepadObjects();
  74229. for (var i in this._babylonGamepads) {
  74230. var gamepad = this._babylonGamepads[i];
  74231. if (!gamepad || !gamepad.isConnected) {
  74232. continue;
  74233. }
  74234. gamepad.update();
  74235. }
  74236. if (this._isMonitoring && !this._scene) {
  74237. BABYLON.Tools.QueueNewFrame(function () { _this._checkGamepadsStatus(); });
  74238. }
  74239. };
  74240. // This function is called only on Chrome, which does not properly support
  74241. // connection/disconnection events and forces you to recopy again the gamepad object
  74242. GamepadManager.prototype._updateGamepadObjects = function () {
  74243. var gamepads = navigator.getGamepads ? navigator.getGamepads() : (navigator.webkitGetGamepads ? navigator.webkitGetGamepads() : []);
  74244. for (var i = 0; i < gamepads.length; i++) {
  74245. var gamepad = gamepads[i];
  74246. if (gamepad) {
  74247. if (!this._babylonGamepads[gamepad.index]) {
  74248. var newGamepad = this._addNewGamepad(gamepad);
  74249. this.onGamepadConnectedObservable.notifyObservers(newGamepad);
  74250. }
  74251. else {
  74252. // Forced to copy again this object for Chrome for unknown reason
  74253. this._babylonGamepads[i].browserGamepad = gamepad;
  74254. if (!this._babylonGamepads[i].isConnected) {
  74255. this._babylonGamepads[i]._isConnected = true;
  74256. this.onGamepadConnectedObservable.notifyObservers(this._babylonGamepads[i]);
  74257. }
  74258. }
  74259. }
  74260. }
  74261. };
  74262. return GamepadManager;
  74263. }());
  74264. BABYLON.GamepadManager = GamepadManager;
  74265. })(BABYLON || (BABYLON = {}));
  74266. //# sourceMappingURL=babylon.gamepadManager.js.map
  74267. var BABYLON;
  74268. (function (BABYLON) {
  74269. var StickValues = /** @class */ (function () {
  74270. function StickValues(x, y) {
  74271. this.x = x;
  74272. this.y = y;
  74273. }
  74274. return StickValues;
  74275. }());
  74276. BABYLON.StickValues = StickValues;
  74277. var Gamepad = /** @class */ (function () {
  74278. function Gamepad(id, index, browserGamepad, leftStickX, leftStickY, rightStickX, rightStickY) {
  74279. if (leftStickX === void 0) { leftStickX = 0; }
  74280. if (leftStickY === void 0) { leftStickY = 1; }
  74281. if (rightStickX === void 0) { rightStickX = 2; }
  74282. if (rightStickY === void 0) { rightStickY = 3; }
  74283. this.id = id;
  74284. this.index = index;
  74285. this.browserGamepad = browserGamepad;
  74286. this._leftStick = { x: 0, y: 0 };
  74287. this._rightStick = { x: 0, y: 0 };
  74288. /** @hidden */
  74289. this._isConnected = true;
  74290. this._invertLeftStickY = false;
  74291. this.type = Gamepad.GAMEPAD;
  74292. this._leftStickAxisX = leftStickX;
  74293. this._leftStickAxisY = leftStickY;
  74294. this._rightStickAxisX = rightStickX;
  74295. this._rightStickAxisY = rightStickY;
  74296. if (this.browserGamepad.axes.length >= 2) {
  74297. this._leftStick = { x: this.browserGamepad.axes[this._leftStickAxisX], y: this.browserGamepad.axes[this._leftStickAxisY] };
  74298. }
  74299. if (this.browserGamepad.axes.length >= 4) {
  74300. this._rightStick = { x: this.browserGamepad.axes[this._rightStickAxisX], y: this.browserGamepad.axes[this._rightStickAxisY] };
  74301. }
  74302. }
  74303. Object.defineProperty(Gamepad.prototype, "isConnected", {
  74304. get: function () {
  74305. return this._isConnected;
  74306. },
  74307. enumerable: true,
  74308. configurable: true
  74309. });
  74310. Gamepad.prototype.onleftstickchanged = function (callback) {
  74311. this._onleftstickchanged = callback;
  74312. };
  74313. Gamepad.prototype.onrightstickchanged = function (callback) {
  74314. this._onrightstickchanged = callback;
  74315. };
  74316. Object.defineProperty(Gamepad.prototype, "leftStick", {
  74317. get: function () {
  74318. return this._leftStick;
  74319. },
  74320. set: function (newValues) {
  74321. if (this._onleftstickchanged && (this._leftStick.x !== newValues.x || this._leftStick.y !== newValues.y)) {
  74322. this._onleftstickchanged(newValues);
  74323. }
  74324. this._leftStick = newValues;
  74325. },
  74326. enumerable: true,
  74327. configurable: true
  74328. });
  74329. Object.defineProperty(Gamepad.prototype, "rightStick", {
  74330. get: function () {
  74331. return this._rightStick;
  74332. },
  74333. set: function (newValues) {
  74334. if (this._onrightstickchanged && (this._rightStick.x !== newValues.x || this._rightStick.y !== newValues.y)) {
  74335. this._onrightstickchanged(newValues);
  74336. }
  74337. this._rightStick = newValues;
  74338. },
  74339. enumerable: true,
  74340. configurable: true
  74341. });
  74342. Gamepad.prototype.update = function () {
  74343. if (this._leftStick) {
  74344. this.leftStick = { x: this.browserGamepad.axes[this._leftStickAxisX], y: this.browserGamepad.axes[this._leftStickAxisY] };
  74345. if (this._invertLeftStickY) {
  74346. this.leftStick.y *= -1;
  74347. }
  74348. }
  74349. if (this._rightStick) {
  74350. this.rightStick = { x: this.browserGamepad.axes[this._rightStickAxisX], y: this.browserGamepad.axes[this._rightStickAxisY] };
  74351. }
  74352. };
  74353. Gamepad.prototype.dispose = function () {
  74354. };
  74355. Gamepad.GAMEPAD = 0;
  74356. Gamepad.GENERIC = 1;
  74357. Gamepad.XBOX = 2;
  74358. Gamepad.POSE_ENABLED = 3;
  74359. return Gamepad;
  74360. }());
  74361. BABYLON.Gamepad = Gamepad;
  74362. var GenericPad = /** @class */ (function (_super) {
  74363. __extends(GenericPad, _super);
  74364. function GenericPad(id, index, browserGamepad) {
  74365. var _this = _super.call(this, id, index, browserGamepad) || this;
  74366. _this.onButtonDownObservable = new BABYLON.Observable();
  74367. _this.onButtonUpObservable = new BABYLON.Observable();
  74368. _this.type = Gamepad.GENERIC;
  74369. _this._buttons = new Array(browserGamepad.buttons.length);
  74370. return _this;
  74371. }
  74372. GenericPad.prototype.onbuttondown = function (callback) {
  74373. this._onbuttondown = callback;
  74374. };
  74375. GenericPad.prototype.onbuttonup = function (callback) {
  74376. this._onbuttonup = callback;
  74377. };
  74378. GenericPad.prototype._setButtonValue = function (newValue, currentValue, buttonIndex) {
  74379. if (newValue !== currentValue) {
  74380. if (newValue === 1) {
  74381. if (this._onbuttondown) {
  74382. this._onbuttondown(buttonIndex);
  74383. }
  74384. this.onButtonDownObservable.notifyObservers(buttonIndex);
  74385. }
  74386. if (newValue === 0) {
  74387. if (this._onbuttonup) {
  74388. this._onbuttonup(buttonIndex);
  74389. }
  74390. this.onButtonUpObservable.notifyObservers(buttonIndex);
  74391. }
  74392. }
  74393. return newValue;
  74394. };
  74395. GenericPad.prototype.update = function () {
  74396. _super.prototype.update.call(this);
  74397. for (var index = 0; index < this._buttons.length; index++) {
  74398. this._buttons[index] = this._setButtonValue(this.browserGamepad.buttons[index].value, this._buttons[index], index);
  74399. }
  74400. };
  74401. GenericPad.prototype.dispose = function () {
  74402. _super.prototype.dispose.call(this);
  74403. this.onButtonDownObservable.clear();
  74404. this.onButtonUpObservable.clear();
  74405. };
  74406. return GenericPad;
  74407. }(Gamepad));
  74408. BABYLON.GenericPad = GenericPad;
  74409. })(BABYLON || (BABYLON = {}));
  74410. //# sourceMappingURL=babylon.gamepad.js.map
  74411. var BABYLON;
  74412. (function (BABYLON) {
  74413. /**
  74414. * Defines supported buttons for XBox360 compatible gamepads
  74415. */
  74416. var Xbox360Button;
  74417. (function (Xbox360Button) {
  74418. /** A */
  74419. Xbox360Button[Xbox360Button["A"] = 0] = "A";
  74420. /** B */
  74421. Xbox360Button[Xbox360Button["B"] = 1] = "B";
  74422. /** X */
  74423. Xbox360Button[Xbox360Button["X"] = 2] = "X";
  74424. /** Y */
  74425. Xbox360Button[Xbox360Button["Y"] = 3] = "Y";
  74426. /** Start */
  74427. Xbox360Button[Xbox360Button["Start"] = 4] = "Start";
  74428. /** Back */
  74429. Xbox360Button[Xbox360Button["Back"] = 5] = "Back";
  74430. /** Left button */
  74431. Xbox360Button[Xbox360Button["LB"] = 6] = "LB";
  74432. /** Right button */
  74433. Xbox360Button[Xbox360Button["RB"] = 7] = "RB";
  74434. /** Left stick */
  74435. Xbox360Button[Xbox360Button["LeftStick"] = 8] = "LeftStick";
  74436. /** Right stick */
  74437. Xbox360Button[Xbox360Button["RightStick"] = 9] = "RightStick";
  74438. })(Xbox360Button = BABYLON.Xbox360Button || (BABYLON.Xbox360Button = {}));
  74439. /** Defines values for XBox360 DPad */
  74440. var Xbox360Dpad;
  74441. (function (Xbox360Dpad) {
  74442. /** Up */
  74443. Xbox360Dpad[Xbox360Dpad["Up"] = 0] = "Up";
  74444. /** Down */
  74445. Xbox360Dpad[Xbox360Dpad["Down"] = 1] = "Down";
  74446. /** Left */
  74447. Xbox360Dpad[Xbox360Dpad["Left"] = 2] = "Left";
  74448. /** Right */
  74449. Xbox360Dpad[Xbox360Dpad["Right"] = 3] = "Right";
  74450. })(Xbox360Dpad = BABYLON.Xbox360Dpad || (BABYLON.Xbox360Dpad = {}));
  74451. /**
  74452. * Defines a XBox360 gamepad
  74453. */
  74454. var Xbox360Pad = /** @class */ (function (_super) {
  74455. __extends(Xbox360Pad, _super);
  74456. /**
  74457. * Creates a new XBox360 gamepad object
  74458. * @param id defines the id of this gamepad
  74459. * @param index defines its index
  74460. * @param gamepad defines the internal HTML gamepad object
  74461. * @param xboxOne defines if it is a XBox One gamepad
  74462. */
  74463. function Xbox360Pad(id, index, gamepad, xboxOne) {
  74464. if (xboxOne === void 0) { xboxOne = false; }
  74465. var _this = _super.call(this, id, index, gamepad, 0, 1, 2, 3) || this;
  74466. _this._leftTrigger = 0;
  74467. _this._rightTrigger = 0;
  74468. /** Observable raised when a button is pressed */
  74469. _this.onButtonDownObservable = new BABYLON.Observable();
  74470. /** Observable raised when a button is released */
  74471. _this.onButtonUpObservable = new BABYLON.Observable();
  74472. /** Observable raised when a pad is pressed */
  74473. _this.onPadDownObservable = new BABYLON.Observable();
  74474. /** Observable raised when a pad is released */
  74475. _this.onPadUpObservable = new BABYLON.Observable();
  74476. _this._buttonA = 0;
  74477. _this._buttonB = 0;
  74478. _this._buttonX = 0;
  74479. _this._buttonY = 0;
  74480. _this._buttonBack = 0;
  74481. _this._buttonStart = 0;
  74482. _this._buttonLB = 0;
  74483. _this._buttonRB = 0;
  74484. _this._buttonLeftStick = 0;
  74485. _this._buttonRightStick = 0;
  74486. _this._dPadUp = 0;
  74487. _this._dPadDown = 0;
  74488. _this._dPadLeft = 0;
  74489. _this._dPadRight = 0;
  74490. _this._isXboxOnePad = false;
  74491. _this.type = BABYLON.Gamepad.XBOX;
  74492. _this._isXboxOnePad = xboxOne;
  74493. return _this;
  74494. }
  74495. /**
  74496. * Defines the callback to call when left trigger is pressed
  74497. * @param callback defines the callback to use
  74498. */
  74499. Xbox360Pad.prototype.onlefttriggerchanged = function (callback) {
  74500. this._onlefttriggerchanged = callback;
  74501. };
  74502. /**
  74503. * Defines the callback to call when right trigger is pressed
  74504. * @param callback defines the callback to use
  74505. */
  74506. Xbox360Pad.prototype.onrighttriggerchanged = function (callback) {
  74507. this._onrighttriggerchanged = callback;
  74508. };
  74509. Object.defineProperty(Xbox360Pad.prototype, "leftTrigger", {
  74510. /**
  74511. * Gets or sets left trigger value
  74512. */
  74513. get: function () {
  74514. return this._leftTrigger;
  74515. },
  74516. set: function (newValue) {
  74517. if (this._onlefttriggerchanged && this._leftTrigger !== newValue) {
  74518. this._onlefttriggerchanged(newValue);
  74519. }
  74520. this._leftTrigger = newValue;
  74521. },
  74522. enumerable: true,
  74523. configurable: true
  74524. });
  74525. Object.defineProperty(Xbox360Pad.prototype, "rightTrigger", {
  74526. /**
  74527. * Gets or sets right trigger value
  74528. */
  74529. get: function () {
  74530. return this._rightTrigger;
  74531. },
  74532. set: function (newValue) {
  74533. if (this._onrighttriggerchanged && this._rightTrigger !== newValue) {
  74534. this._onrighttriggerchanged(newValue);
  74535. }
  74536. this._rightTrigger = newValue;
  74537. },
  74538. enumerable: true,
  74539. configurable: true
  74540. });
  74541. /**
  74542. * Defines the callback to call when a button is pressed
  74543. * @param callback defines the callback to use
  74544. */
  74545. Xbox360Pad.prototype.onbuttondown = function (callback) {
  74546. this._onbuttondown = callback;
  74547. };
  74548. /**
  74549. * Defines the callback to call when a button is released
  74550. * @param callback defines the callback to use
  74551. */
  74552. Xbox360Pad.prototype.onbuttonup = function (callback) {
  74553. this._onbuttonup = callback;
  74554. };
  74555. /**
  74556. * Defines the callback to call when a pad is pressed
  74557. * @param callback defines the callback to use
  74558. */
  74559. Xbox360Pad.prototype.ondpaddown = function (callback) {
  74560. this._ondpaddown = callback;
  74561. };
  74562. /**
  74563. * Defines the callback to call when a pad is released
  74564. * @param callback defines the callback to use
  74565. */
  74566. Xbox360Pad.prototype.ondpadup = function (callback) {
  74567. this._ondpadup = callback;
  74568. };
  74569. Xbox360Pad.prototype._setButtonValue = function (newValue, currentValue, buttonType) {
  74570. if (newValue !== currentValue) {
  74571. if (newValue === 1) {
  74572. if (this._onbuttondown) {
  74573. this._onbuttondown(buttonType);
  74574. }
  74575. this.onButtonDownObservable.notifyObservers(buttonType);
  74576. }
  74577. if (newValue === 0) {
  74578. if (this._onbuttonup) {
  74579. this._onbuttonup(buttonType);
  74580. }
  74581. this.onButtonUpObservable.notifyObservers(buttonType);
  74582. }
  74583. }
  74584. return newValue;
  74585. };
  74586. Xbox360Pad.prototype._setDPadValue = function (newValue, currentValue, buttonType) {
  74587. if (newValue !== currentValue) {
  74588. if (newValue === 1) {
  74589. if (this._ondpaddown) {
  74590. this._ondpaddown(buttonType);
  74591. }
  74592. this.onPadDownObservable.notifyObservers(buttonType);
  74593. }
  74594. if (newValue === 0) {
  74595. if (this._ondpadup) {
  74596. this._ondpadup(buttonType);
  74597. }
  74598. this.onPadUpObservable.notifyObservers(buttonType);
  74599. }
  74600. }
  74601. return newValue;
  74602. };
  74603. Object.defineProperty(Xbox360Pad.prototype, "buttonA", {
  74604. /** Gets or sets value of A button */
  74605. get: function () {
  74606. return this._buttonA;
  74607. },
  74608. set: function (value) {
  74609. this._buttonA = this._setButtonValue(value, this._buttonA, Xbox360Button.A);
  74610. },
  74611. enumerable: true,
  74612. configurable: true
  74613. });
  74614. Object.defineProperty(Xbox360Pad.prototype, "buttonB", {
  74615. /** Gets or sets value of B button */
  74616. get: function () {
  74617. return this._buttonB;
  74618. },
  74619. set: function (value) {
  74620. this._buttonB = this._setButtonValue(value, this._buttonB, Xbox360Button.B);
  74621. },
  74622. enumerable: true,
  74623. configurable: true
  74624. });
  74625. Object.defineProperty(Xbox360Pad.prototype, "buttonX", {
  74626. /** Gets or sets value of X button */
  74627. get: function () {
  74628. return this._buttonX;
  74629. },
  74630. set: function (value) {
  74631. this._buttonX = this._setButtonValue(value, this._buttonX, Xbox360Button.X);
  74632. },
  74633. enumerable: true,
  74634. configurable: true
  74635. });
  74636. Object.defineProperty(Xbox360Pad.prototype, "buttonY", {
  74637. /** Gets or sets value of Y button */
  74638. get: function () {
  74639. return this._buttonY;
  74640. },
  74641. set: function (value) {
  74642. this._buttonY = this._setButtonValue(value, this._buttonY, Xbox360Button.Y);
  74643. },
  74644. enumerable: true,
  74645. configurable: true
  74646. });
  74647. Object.defineProperty(Xbox360Pad.prototype, "buttonStart", {
  74648. /** Gets or sets value of Start button */
  74649. get: function () {
  74650. return this._buttonStart;
  74651. },
  74652. set: function (value) {
  74653. this._buttonStart = this._setButtonValue(value, this._buttonStart, Xbox360Button.Start);
  74654. },
  74655. enumerable: true,
  74656. configurable: true
  74657. });
  74658. Object.defineProperty(Xbox360Pad.prototype, "buttonBack", {
  74659. /** Gets or sets value of Back button */
  74660. get: function () {
  74661. return this._buttonBack;
  74662. },
  74663. set: function (value) {
  74664. this._buttonBack = this._setButtonValue(value, this._buttonBack, Xbox360Button.Back);
  74665. },
  74666. enumerable: true,
  74667. configurable: true
  74668. });
  74669. Object.defineProperty(Xbox360Pad.prototype, "buttonLB", {
  74670. /** Gets or sets value of Left button */
  74671. get: function () {
  74672. return this._buttonLB;
  74673. },
  74674. set: function (value) {
  74675. this._buttonLB = this._setButtonValue(value, this._buttonLB, Xbox360Button.LB);
  74676. },
  74677. enumerable: true,
  74678. configurable: true
  74679. });
  74680. Object.defineProperty(Xbox360Pad.prototype, "buttonRB", {
  74681. /** Gets or sets value of Right button */
  74682. get: function () {
  74683. return this._buttonRB;
  74684. },
  74685. set: function (value) {
  74686. this._buttonRB = this._setButtonValue(value, this._buttonRB, Xbox360Button.RB);
  74687. },
  74688. enumerable: true,
  74689. configurable: true
  74690. });
  74691. Object.defineProperty(Xbox360Pad.prototype, "buttonLeftStick", {
  74692. /** Gets or sets value of left stick */
  74693. get: function () {
  74694. return this._buttonLeftStick;
  74695. },
  74696. set: function (value) {
  74697. this._buttonLeftStick = this._setButtonValue(value, this._buttonLeftStick, Xbox360Button.LeftStick);
  74698. },
  74699. enumerable: true,
  74700. configurable: true
  74701. });
  74702. Object.defineProperty(Xbox360Pad.prototype, "buttonRightStick", {
  74703. /** Gets or sets value of right stick */
  74704. get: function () {
  74705. return this._buttonRightStick;
  74706. },
  74707. set: function (value) {
  74708. this._buttonRightStick = this._setButtonValue(value, this._buttonRightStick, Xbox360Button.RightStick);
  74709. },
  74710. enumerable: true,
  74711. configurable: true
  74712. });
  74713. Object.defineProperty(Xbox360Pad.prototype, "dPadUp", {
  74714. /** Gets or sets value of DPad up */
  74715. get: function () {
  74716. return this._dPadUp;
  74717. },
  74718. set: function (value) {
  74719. this._dPadUp = this._setDPadValue(value, this._dPadUp, Xbox360Dpad.Up);
  74720. },
  74721. enumerable: true,
  74722. configurable: true
  74723. });
  74724. Object.defineProperty(Xbox360Pad.prototype, "dPadDown", {
  74725. /** Gets or sets value of DPad down */
  74726. get: function () {
  74727. return this._dPadDown;
  74728. },
  74729. set: function (value) {
  74730. this._dPadDown = this._setDPadValue(value, this._dPadDown, Xbox360Dpad.Down);
  74731. },
  74732. enumerable: true,
  74733. configurable: true
  74734. });
  74735. Object.defineProperty(Xbox360Pad.prototype, "dPadLeft", {
  74736. /** Gets or sets value of DPad left */
  74737. get: function () {
  74738. return this._dPadLeft;
  74739. },
  74740. set: function (value) {
  74741. this._dPadLeft = this._setDPadValue(value, this._dPadLeft, Xbox360Dpad.Left);
  74742. },
  74743. enumerable: true,
  74744. configurable: true
  74745. });
  74746. Object.defineProperty(Xbox360Pad.prototype, "dPadRight", {
  74747. /** Gets or sets value of DPad right */
  74748. get: function () {
  74749. return this._dPadRight;
  74750. },
  74751. set: function (value) {
  74752. this._dPadRight = this._setDPadValue(value, this._dPadRight, Xbox360Dpad.Right);
  74753. },
  74754. enumerable: true,
  74755. configurable: true
  74756. });
  74757. /**
  74758. * Force the gamepad to synchronize with device values
  74759. */
  74760. Xbox360Pad.prototype.update = function () {
  74761. _super.prototype.update.call(this);
  74762. if (this._isXboxOnePad) {
  74763. this.buttonA = this.browserGamepad.buttons[0].value;
  74764. this.buttonB = this.browserGamepad.buttons[1].value;
  74765. this.buttonX = this.browserGamepad.buttons[2].value;
  74766. this.buttonY = this.browserGamepad.buttons[3].value;
  74767. this.buttonLB = this.browserGamepad.buttons[4].value;
  74768. this.buttonRB = this.browserGamepad.buttons[5].value;
  74769. this.leftTrigger = this.browserGamepad.axes[2];
  74770. this.rightTrigger = this.browserGamepad.axes[5];
  74771. this.buttonBack = this.browserGamepad.buttons[9].value;
  74772. this.buttonStart = this.browserGamepad.buttons[8].value;
  74773. this.buttonLeftStick = this.browserGamepad.buttons[6].value;
  74774. this.buttonRightStick = this.browserGamepad.buttons[7].value;
  74775. this.dPadUp = this.browserGamepad.buttons[11].value;
  74776. this.dPadDown = this.browserGamepad.buttons[12].value;
  74777. this.dPadLeft = this.browserGamepad.buttons[13].value;
  74778. this.dPadRight = this.browserGamepad.buttons[14].value;
  74779. }
  74780. else {
  74781. this.buttonA = this.browserGamepad.buttons[0].value;
  74782. this.buttonB = this.browserGamepad.buttons[1].value;
  74783. this.buttonX = this.browserGamepad.buttons[2].value;
  74784. this.buttonY = this.browserGamepad.buttons[3].value;
  74785. this.buttonLB = this.browserGamepad.buttons[4].value;
  74786. this.buttonRB = this.browserGamepad.buttons[5].value;
  74787. this.leftTrigger = this.browserGamepad.buttons[6].value;
  74788. this.rightTrigger = this.browserGamepad.buttons[7].value;
  74789. this.buttonBack = this.browserGamepad.buttons[8].value;
  74790. this.buttonStart = this.browserGamepad.buttons[9].value;
  74791. this.buttonLeftStick = this.browserGamepad.buttons[10].value;
  74792. this.buttonRightStick = this.browserGamepad.buttons[11].value;
  74793. this.dPadUp = this.browserGamepad.buttons[12].value;
  74794. this.dPadDown = this.browserGamepad.buttons[13].value;
  74795. this.dPadLeft = this.browserGamepad.buttons[14].value;
  74796. this.dPadRight = this.browserGamepad.buttons[15].value;
  74797. }
  74798. };
  74799. Xbox360Pad.prototype.dispose = function () {
  74800. _super.prototype.dispose.call(this);
  74801. this.onButtonDownObservable.clear();
  74802. this.onButtonUpObservable.clear();
  74803. this.onPadDownObservable.clear();
  74804. this.onPadUpObservable.clear();
  74805. };
  74806. return Xbox360Pad;
  74807. }(BABYLON.Gamepad));
  74808. BABYLON.Xbox360Pad = Xbox360Pad;
  74809. })(BABYLON || (BABYLON = {}));
  74810. //# sourceMappingURL=babylon.xboxGamepad.js.map
  74811. var BABYLON;
  74812. (function (BABYLON) {
  74813. /**
  74814. * Defines the types of pose enabled controllers that are supported
  74815. */
  74816. var PoseEnabledControllerType;
  74817. (function (PoseEnabledControllerType) {
  74818. /**
  74819. * HTC Vive
  74820. */
  74821. PoseEnabledControllerType[PoseEnabledControllerType["VIVE"] = 0] = "VIVE";
  74822. /**
  74823. * Oculus Rift
  74824. */
  74825. PoseEnabledControllerType[PoseEnabledControllerType["OCULUS"] = 1] = "OCULUS";
  74826. /**
  74827. * Windows mixed reality
  74828. */
  74829. PoseEnabledControllerType[PoseEnabledControllerType["WINDOWS"] = 2] = "WINDOWS";
  74830. /**
  74831. * Samsung gear VR
  74832. */
  74833. PoseEnabledControllerType[PoseEnabledControllerType["GEAR_VR"] = 3] = "GEAR_VR";
  74834. /**
  74835. * Google Daydream
  74836. */
  74837. PoseEnabledControllerType[PoseEnabledControllerType["DAYDREAM"] = 4] = "DAYDREAM";
  74838. /**
  74839. * Generic
  74840. */
  74841. PoseEnabledControllerType[PoseEnabledControllerType["GENERIC"] = 5] = "GENERIC";
  74842. })(PoseEnabledControllerType = BABYLON.PoseEnabledControllerType || (BABYLON.PoseEnabledControllerType = {}));
  74843. /**
  74844. * Defines the PoseEnabledControllerHelper object that is used initialize a gamepad as the controller type it is specified as (eg. windows mixed reality controller)
  74845. */
  74846. var PoseEnabledControllerHelper = /** @class */ (function () {
  74847. function PoseEnabledControllerHelper() {
  74848. }
  74849. /**
  74850. * Initializes a gamepad as the controller type it is specified as (eg. windows mixed reality controller)
  74851. * @param vrGamepad the gamepad to initialized
  74852. * @returns a vr controller of the type the gamepad identified as
  74853. */
  74854. PoseEnabledControllerHelper.InitiateController = function (vrGamepad) {
  74855. // Oculus Touch
  74856. if (vrGamepad.id.indexOf('Oculus Touch') !== -1) {
  74857. return new BABYLON.OculusTouchController(vrGamepad);
  74858. }
  74859. // Windows Mixed Reality controllers
  74860. else if (vrGamepad.id.indexOf(BABYLON.WindowsMotionController.GAMEPAD_ID_PREFIX) === 0) {
  74861. return new BABYLON.WindowsMotionController(vrGamepad);
  74862. }
  74863. // HTC Vive
  74864. else if (vrGamepad.id.toLowerCase().indexOf('openvr') !== -1) {
  74865. return new BABYLON.ViveController(vrGamepad);
  74866. }
  74867. // Samsung/Oculus Gear VR or Oculus Go
  74868. else if (vrGamepad.id.indexOf(BABYLON.GearVRController.GAMEPAD_ID_PREFIX) === 0 || vrGamepad.id.indexOf('Oculus Go') !== -1) {
  74869. return new BABYLON.GearVRController(vrGamepad);
  74870. }
  74871. // Google Daydream
  74872. else if (vrGamepad.id.indexOf(BABYLON.DaydreamController.GAMEPAD_ID_PREFIX) === 0) {
  74873. return new BABYLON.DaydreamController(vrGamepad);
  74874. }
  74875. // Generic
  74876. else {
  74877. return new BABYLON.GenericController(vrGamepad);
  74878. }
  74879. };
  74880. return PoseEnabledControllerHelper;
  74881. }());
  74882. BABYLON.PoseEnabledControllerHelper = PoseEnabledControllerHelper;
  74883. /**
  74884. * Defines the PoseEnabledController object that contains state of a vr capable controller
  74885. */
  74886. var PoseEnabledController = /** @class */ (function (_super) {
  74887. __extends(PoseEnabledController, _super);
  74888. /**
  74889. * Creates a new PoseEnabledController from a gamepad
  74890. * @param browserGamepad the gamepad that the PoseEnabledController should be created from
  74891. */
  74892. function PoseEnabledController(browserGamepad) {
  74893. var _this = _super.call(this, browserGamepad.id, browserGamepad.index, browserGamepad) || this;
  74894. // Represents device position and rotation in room space. Should only be used to help calculate babylon space values
  74895. _this._deviceRoomPosition = BABYLON.Vector3.Zero();
  74896. _this._deviceRoomRotationQuaternion = new BABYLON.Quaternion();
  74897. /**
  74898. * The device position in babylon space
  74899. */
  74900. _this.devicePosition = BABYLON.Vector3.Zero();
  74901. /**
  74902. * The device rotation in babylon space
  74903. */
  74904. _this.deviceRotationQuaternion = new BABYLON.Quaternion();
  74905. /**
  74906. * The scale factor of the device in babylon space
  74907. */
  74908. _this.deviceScaleFactor = 1;
  74909. _this._leftHandSystemQuaternion = new BABYLON.Quaternion();
  74910. /**
  74911. * Internal, matrix used to convert room space to babylon space
  74912. * @hidden
  74913. */
  74914. _this._deviceToWorld = BABYLON.Matrix.Identity();
  74915. /**
  74916. * Node to be used when casting a ray from the controller
  74917. * @hidden
  74918. */
  74919. _this._pointingPoseNode = null;
  74920. _this._workingMatrix = BABYLON.Matrix.Identity();
  74921. /**
  74922. * @hidden
  74923. */
  74924. _this._meshAttachedObservable = new BABYLON.Observable();
  74925. _this.type = BABYLON.Gamepad.POSE_ENABLED;
  74926. _this.controllerType = PoseEnabledControllerType.GENERIC;
  74927. _this.position = BABYLON.Vector3.Zero();
  74928. _this.rotationQuaternion = new BABYLON.Quaternion();
  74929. _this._calculatedPosition = BABYLON.Vector3.Zero();
  74930. _this._calculatedRotation = new BABYLON.Quaternion();
  74931. BABYLON.Quaternion.RotationYawPitchRollToRef(Math.PI, 0, 0, _this._leftHandSystemQuaternion);
  74932. return _this;
  74933. }
  74934. /**
  74935. * Updates the state of the pose enbaled controller and mesh based on the current position and rotation of the controller
  74936. */
  74937. PoseEnabledController.prototype.update = function () {
  74938. _super.prototype.update.call(this);
  74939. this._updatePoseAndMesh();
  74940. };
  74941. /**
  74942. * Updates only the pose device and mesh without doing any button event checking
  74943. */
  74944. PoseEnabledController.prototype._updatePoseAndMesh = function () {
  74945. var pose = this.browserGamepad.pose;
  74946. this.updateFromDevice(pose);
  74947. BABYLON.Vector3.TransformCoordinatesToRef(this._calculatedPosition, this._deviceToWorld, this.devicePosition);
  74948. this._deviceToWorld.getRotationMatrixToRef(this._workingMatrix);
  74949. BABYLON.Quaternion.FromRotationMatrixToRef(this._workingMatrix, this.deviceRotationQuaternion);
  74950. this.deviceRotationQuaternion.multiplyInPlace(this._calculatedRotation);
  74951. if (this._mesh) {
  74952. this._mesh.position.copyFrom(this.devicePosition);
  74953. if (this._mesh.rotationQuaternion) {
  74954. this._mesh.rotationQuaternion.copyFrom(this.deviceRotationQuaternion);
  74955. }
  74956. }
  74957. };
  74958. /**
  74959. * Updates the state of the pose enbaled controller based on the raw pose data from the device
  74960. * @param poseData raw pose fromthe device
  74961. */
  74962. PoseEnabledController.prototype.updateFromDevice = function (poseData) {
  74963. if (poseData) {
  74964. this.rawPose = poseData;
  74965. if (poseData.position) {
  74966. this._deviceRoomPosition.copyFromFloats(poseData.position[0], poseData.position[1], -poseData.position[2]);
  74967. if (this._mesh && this._mesh.getScene().useRightHandedSystem) {
  74968. this._deviceRoomPosition.z *= -1;
  74969. }
  74970. this._deviceRoomPosition.scaleToRef(this.deviceScaleFactor, this._calculatedPosition);
  74971. this._calculatedPosition.addInPlace(this.position);
  74972. }
  74973. var pose = this.rawPose;
  74974. if (poseData.orientation && pose.orientation) {
  74975. this._deviceRoomRotationQuaternion.copyFromFloats(pose.orientation[0], pose.orientation[1], -pose.orientation[2], -pose.orientation[3]);
  74976. if (this._mesh) {
  74977. if (this._mesh.getScene().useRightHandedSystem) {
  74978. this._deviceRoomRotationQuaternion.z *= -1;
  74979. this._deviceRoomRotationQuaternion.w *= -1;
  74980. }
  74981. else {
  74982. this._deviceRoomRotationQuaternion.multiplyToRef(this._leftHandSystemQuaternion, this._deviceRoomRotationQuaternion);
  74983. }
  74984. }
  74985. // if the camera is set, rotate to the camera's rotation
  74986. this._deviceRoomRotationQuaternion.multiplyToRef(this.rotationQuaternion, this._calculatedRotation);
  74987. }
  74988. }
  74989. };
  74990. /**
  74991. * Attaches a mesh to the controller
  74992. * @param mesh the mesh to be attached
  74993. */
  74994. PoseEnabledController.prototype.attachToMesh = function (mesh) {
  74995. if (this._mesh) {
  74996. this._mesh.parent = null;
  74997. }
  74998. this._mesh = mesh;
  74999. if (this._poseControlledCamera) {
  75000. this._mesh.parent = this._poseControlledCamera;
  75001. }
  75002. if (!this._mesh.rotationQuaternion) {
  75003. this._mesh.rotationQuaternion = new BABYLON.Quaternion();
  75004. }
  75005. // Sync controller mesh and pointing pose node's state with controller, this is done to avoid a frame where position is 0,0,0 when attaching mesh
  75006. this._updatePoseAndMesh();
  75007. if (this._pointingPoseNode) {
  75008. var parents = [];
  75009. var obj = this._pointingPoseNode;
  75010. while (obj.parent) {
  75011. parents.push(obj.parent);
  75012. obj = obj.parent;
  75013. }
  75014. parents.reverse().forEach(function (p) { p.computeWorldMatrix(true); });
  75015. }
  75016. this._meshAttachedObservable.notifyObservers(mesh);
  75017. };
  75018. /**
  75019. * Attaches the controllers mesh to a camera
  75020. * @param camera the camera the mesh should be attached to
  75021. */
  75022. PoseEnabledController.prototype.attachToPoseControlledCamera = function (camera) {
  75023. this._poseControlledCamera = camera;
  75024. if (this._mesh) {
  75025. this._mesh.parent = this._poseControlledCamera;
  75026. }
  75027. };
  75028. /**
  75029. * Disposes of the controller
  75030. */
  75031. PoseEnabledController.prototype.dispose = function () {
  75032. if (this._mesh) {
  75033. this._mesh.dispose();
  75034. }
  75035. this._mesh = null;
  75036. _super.prototype.dispose.call(this);
  75037. };
  75038. Object.defineProperty(PoseEnabledController.prototype, "mesh", {
  75039. /**
  75040. * The mesh that is attached to the controller
  75041. */
  75042. get: function () {
  75043. return this._mesh;
  75044. },
  75045. enumerable: true,
  75046. configurable: true
  75047. });
  75048. /**
  75049. * Gets the ray of the controller in the direction the controller is pointing
  75050. * @param length the length the resulting ray should be
  75051. * @returns a ray in the direction the controller is pointing
  75052. */
  75053. PoseEnabledController.prototype.getForwardRay = function (length) {
  75054. if (length === void 0) { length = 100; }
  75055. if (!this.mesh) {
  75056. return new BABYLON.Ray(BABYLON.Vector3.Zero(), new BABYLON.Vector3(0, 0, 1), length);
  75057. }
  75058. var m = this._pointingPoseNode ? this._pointingPoseNode.getWorldMatrix() : this.mesh.getWorldMatrix();
  75059. var origin = m.getTranslation();
  75060. var forward = new BABYLON.Vector3(0, 0, -1);
  75061. var forwardWorld = BABYLON.Vector3.TransformNormal(forward, m);
  75062. var direction = BABYLON.Vector3.Normalize(forwardWorld);
  75063. return new BABYLON.Ray(origin, direction, length);
  75064. };
  75065. /**
  75066. * Name of the child mesh that can be used to cast a ray from the controller
  75067. */
  75068. PoseEnabledController.POINTING_POSE = "POINTING_POSE";
  75069. return PoseEnabledController;
  75070. }(BABYLON.Gamepad));
  75071. BABYLON.PoseEnabledController = PoseEnabledController;
  75072. })(BABYLON || (BABYLON = {}));
  75073. //# sourceMappingURL=babylon.poseEnabledController.js.map
  75074. var BABYLON;
  75075. (function (BABYLON) {
  75076. /**
  75077. * Defines the WebVRController object that represents controllers tracked in 3D space
  75078. */
  75079. var WebVRController = /** @class */ (function (_super) {
  75080. __extends(WebVRController, _super);
  75081. /**
  75082. * Creates a new WebVRController from a gamepad
  75083. * @param vrGamepad the gamepad that the WebVRController should be created from
  75084. */
  75085. function WebVRController(vrGamepad) {
  75086. var _this = _super.call(this, vrGamepad) || this;
  75087. // Observables
  75088. /**
  75089. * Fired when the trigger state has changed
  75090. */
  75091. _this.onTriggerStateChangedObservable = new BABYLON.Observable();
  75092. /**
  75093. * Fired when the main button state has changed
  75094. */
  75095. _this.onMainButtonStateChangedObservable = new BABYLON.Observable();
  75096. /**
  75097. * Fired when the secondary button state has changed
  75098. */
  75099. _this.onSecondaryButtonStateChangedObservable = new BABYLON.Observable();
  75100. /**
  75101. * Fired when the pad state has changed
  75102. */
  75103. _this.onPadStateChangedObservable = new BABYLON.Observable();
  75104. /**
  75105. * Fired when controllers stick values have changed
  75106. */
  75107. _this.onPadValuesChangedObservable = new BABYLON.Observable();
  75108. /**
  75109. * X and Y axis corrisponding to the controllers joystick
  75110. */
  75111. _this.pad = { x: 0, y: 0 };
  75112. // avoid GC, store state in a tmp object
  75113. _this._changes = {
  75114. pressChanged: false,
  75115. touchChanged: false,
  75116. valueChanged: false,
  75117. changed: false
  75118. };
  75119. _this._buttons = new Array(vrGamepad.buttons.length);
  75120. _this.hand = vrGamepad.hand;
  75121. return _this;
  75122. }
  75123. /**
  75124. * Fired when a controller button's state has changed
  75125. * @param callback the callback containing the button that was modified
  75126. */
  75127. WebVRController.prototype.onButtonStateChange = function (callback) {
  75128. this._onButtonStateChange = callback;
  75129. };
  75130. Object.defineProperty(WebVRController.prototype, "defaultModel", {
  75131. /**
  75132. * The default controller model for the controller
  75133. */
  75134. get: function () {
  75135. return this._defaultModel;
  75136. },
  75137. enumerable: true,
  75138. configurable: true
  75139. });
  75140. /**
  75141. * Updates the state of the controller and mesh based on the current position and rotation of the controller
  75142. */
  75143. WebVRController.prototype.update = function () {
  75144. _super.prototype.update.call(this);
  75145. for (var index = 0; index < this._buttons.length; index++) {
  75146. this._setButtonValue(this.browserGamepad.buttons[index], this._buttons[index], index);
  75147. }
  75148. ;
  75149. if (this.leftStick.x !== this.pad.x || this.leftStick.y !== this.pad.y) {
  75150. this.pad.x = this.leftStick.x;
  75151. this.pad.y = this.leftStick.y;
  75152. this.onPadValuesChangedObservable.notifyObservers(this.pad);
  75153. }
  75154. };
  75155. WebVRController.prototype._setButtonValue = function (newState, currentState, buttonIndex) {
  75156. if (!newState) {
  75157. newState = {
  75158. pressed: false,
  75159. touched: false,
  75160. value: 0
  75161. };
  75162. }
  75163. if (!currentState) {
  75164. this._buttons[buttonIndex] = {
  75165. pressed: newState.pressed,
  75166. touched: newState.touched,
  75167. value: newState.value
  75168. };
  75169. return;
  75170. }
  75171. this._checkChanges(newState, currentState);
  75172. if (this._changes.changed) {
  75173. this._onButtonStateChange && this._onButtonStateChange(this.index, buttonIndex, newState);
  75174. this._handleButtonChange(buttonIndex, newState, this._changes);
  75175. }
  75176. this._buttons[buttonIndex].pressed = newState.pressed;
  75177. this._buttons[buttonIndex].touched = newState.touched;
  75178. // oculus triggers are never 0, thou not touched.
  75179. this._buttons[buttonIndex].value = newState.value < 0.00000001 ? 0 : newState.value;
  75180. };
  75181. WebVRController.prototype._checkChanges = function (newState, currentState) {
  75182. this._changes.pressChanged = newState.pressed !== currentState.pressed;
  75183. this._changes.touchChanged = newState.touched !== currentState.touched;
  75184. this._changes.valueChanged = newState.value !== currentState.value;
  75185. this._changes.changed = this._changes.pressChanged || this._changes.touchChanged || this._changes.valueChanged;
  75186. return this._changes;
  75187. };
  75188. /**
  75189. * Disposes of th webVRCOntroller
  75190. */
  75191. WebVRController.prototype.dispose = function () {
  75192. _super.prototype.dispose.call(this);
  75193. this.onTriggerStateChangedObservable.clear();
  75194. this.onMainButtonStateChangedObservable.clear();
  75195. this.onSecondaryButtonStateChangedObservable.clear();
  75196. this.onPadStateChangedObservable.clear();
  75197. this.onPadValuesChangedObservable.clear();
  75198. };
  75199. return WebVRController;
  75200. }(BABYLON.PoseEnabledController));
  75201. BABYLON.WebVRController = WebVRController;
  75202. })(BABYLON || (BABYLON = {}));
  75203. //# sourceMappingURL=babylon.webVRController.js.map
  75204. var BABYLON;
  75205. (function (BABYLON) {
  75206. /**
  75207. * Oculus Touch Controller
  75208. */
  75209. var OculusTouchController = /** @class */ (function (_super) {
  75210. __extends(OculusTouchController, _super);
  75211. /**
  75212. * Creates a new OculusTouchController from a gamepad
  75213. * @param vrGamepad the gamepad that the controller should be created from
  75214. */
  75215. function OculusTouchController(vrGamepad) {
  75216. var _this = _super.call(this, vrGamepad) || this;
  75217. /**
  75218. * Fired when the secondary trigger on this controller is modified
  75219. */
  75220. _this.onSecondaryTriggerStateChangedObservable = new BABYLON.Observable();
  75221. /**
  75222. * Fired when the thumb rest on this controller is modified
  75223. */
  75224. _this.onThumbRestChangedObservable = new BABYLON.Observable();
  75225. _this.controllerType = BABYLON.PoseEnabledControllerType.OCULUS;
  75226. return _this;
  75227. }
  75228. /**
  75229. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  75230. * @param scene scene in which to add meshes
  75231. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  75232. */
  75233. OculusTouchController.prototype.initControllerMesh = function (scene, meshLoaded) {
  75234. var _this = this;
  75235. var meshName;
  75236. // Hand
  75237. if (this.hand === 'left') {
  75238. meshName = OculusTouchController.MODEL_LEFT_FILENAME;
  75239. }
  75240. else { // Right is the default if no hand is specified
  75241. meshName = OculusTouchController.MODEL_RIGHT_FILENAME;
  75242. }
  75243. BABYLON.SceneLoader.ImportMesh("", OculusTouchController.MODEL_BASE_URL, meshName, scene, function (newMeshes) {
  75244. /*
  75245. Parent Mesh name: oculus_touch_left
  75246. - body
  75247. - trigger
  75248. - thumbstick
  75249. - grip
  75250. - button_y
  75251. - button_x
  75252. - button_enter
  75253. */
  75254. _this._defaultModel = newMeshes[1];
  75255. _this.attachToMesh(_this._defaultModel);
  75256. if (meshLoaded) {
  75257. meshLoaded(_this._defaultModel);
  75258. }
  75259. });
  75260. };
  75261. Object.defineProperty(OculusTouchController.prototype, "onAButtonStateChangedObservable", {
  75262. /**
  75263. * Fired when the A button on this controller is modified
  75264. */
  75265. get: function () {
  75266. if (this.hand === 'right') {
  75267. return this.onMainButtonStateChangedObservable;
  75268. }
  75269. else {
  75270. throw new Error('No A button on left hand');
  75271. }
  75272. },
  75273. enumerable: true,
  75274. configurable: true
  75275. });
  75276. Object.defineProperty(OculusTouchController.prototype, "onBButtonStateChangedObservable", {
  75277. /**
  75278. * Fired when the B button on this controller is modified
  75279. */
  75280. get: function () {
  75281. if (this.hand === 'right') {
  75282. return this.onSecondaryButtonStateChangedObservable;
  75283. }
  75284. else {
  75285. throw new Error('No B button on left hand');
  75286. }
  75287. },
  75288. enumerable: true,
  75289. configurable: true
  75290. });
  75291. Object.defineProperty(OculusTouchController.prototype, "onXButtonStateChangedObservable", {
  75292. /**
  75293. * Fired when the X button on this controller is modified
  75294. */
  75295. get: function () {
  75296. if (this.hand === 'left') {
  75297. return this.onMainButtonStateChangedObservable;
  75298. }
  75299. else {
  75300. throw new Error('No X button on right hand');
  75301. }
  75302. },
  75303. enumerable: true,
  75304. configurable: true
  75305. });
  75306. Object.defineProperty(OculusTouchController.prototype, "onYButtonStateChangedObservable", {
  75307. /**
  75308. * Fired when the Y button on this controller is modified
  75309. */
  75310. get: function () {
  75311. if (this.hand === 'left') {
  75312. return this.onSecondaryButtonStateChangedObservable;
  75313. }
  75314. else {
  75315. throw new Error('No Y button on right hand');
  75316. }
  75317. },
  75318. enumerable: true,
  75319. configurable: true
  75320. });
  75321. /**
  75322. * Called once for each button that changed state since the last frame
  75323. * 0) thumb stick (touch, press, value = pressed (0,1)). value is in this.leftStick
  75324. * 1) index trigger (touch (?), press (only when value > 0.1), value 0 to 1)
  75325. * 2) secondary trigger (same)
  75326. * 3) A (right) X (left), touch, pressed = value
  75327. * 4) B / Y
  75328. * 5) thumb rest
  75329. * @param buttonIdx Which button index changed
  75330. * @param state New state of the button
  75331. * @param changes Which properties on the state changed since last frame
  75332. */
  75333. OculusTouchController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  75334. var notifyObject = state; //{ state: state, changes: changes };
  75335. var triggerDirection = this.hand === 'right' ? -1 : 1;
  75336. switch (buttonIdx) {
  75337. case 0:
  75338. this.onPadStateChangedObservable.notifyObservers(notifyObject);
  75339. return;
  75340. case 1: // index trigger
  75341. if (this._defaultModel) {
  75342. (this._defaultModel.getChildren()[3]).rotation.x = -notifyObject.value * 0.20;
  75343. (this._defaultModel.getChildren()[3]).position.y = -notifyObject.value * 0.005;
  75344. (this._defaultModel.getChildren()[3]).position.z = -notifyObject.value * 0.005;
  75345. }
  75346. this.onTriggerStateChangedObservable.notifyObservers(notifyObject);
  75347. return;
  75348. case 2: // secondary trigger
  75349. if (this._defaultModel) {
  75350. (this._defaultModel.getChildren()[4]).position.x = triggerDirection * notifyObject.value * 0.0035;
  75351. }
  75352. this.onSecondaryTriggerStateChangedObservable.notifyObservers(notifyObject);
  75353. return;
  75354. case 3:
  75355. if (this._defaultModel) {
  75356. if (notifyObject.pressed) {
  75357. (this._defaultModel.getChildren()[1]).position.y = -0.001;
  75358. }
  75359. else {
  75360. (this._defaultModel.getChildren()[1]).position.y = 0;
  75361. }
  75362. }
  75363. this.onMainButtonStateChangedObservable.notifyObservers(notifyObject);
  75364. return;
  75365. case 4:
  75366. if (this._defaultModel) {
  75367. if (notifyObject.pressed) {
  75368. (this._defaultModel.getChildren()[2]).position.y = -0.001;
  75369. }
  75370. else {
  75371. (this._defaultModel.getChildren()[2]).position.y = 0;
  75372. }
  75373. }
  75374. this.onSecondaryButtonStateChangedObservable.notifyObservers(notifyObject);
  75375. return;
  75376. case 5:
  75377. this.onThumbRestChangedObservable.notifyObservers(notifyObject);
  75378. return;
  75379. }
  75380. };
  75381. /**
  75382. * Base Url for the controller model.
  75383. */
  75384. OculusTouchController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/oculus/';
  75385. /**
  75386. * File name for the left controller model.
  75387. */
  75388. OculusTouchController.MODEL_LEFT_FILENAME = 'left.babylon';
  75389. /**
  75390. * File name for the right controller model.
  75391. */
  75392. OculusTouchController.MODEL_RIGHT_FILENAME = 'right.babylon';
  75393. return OculusTouchController;
  75394. }(BABYLON.WebVRController));
  75395. BABYLON.OculusTouchController = OculusTouchController;
  75396. })(BABYLON || (BABYLON = {}));
  75397. //# sourceMappingURL=babylon.oculusTouchController.js.map
  75398. var BABYLON;
  75399. (function (BABYLON) {
  75400. /**
  75401. * Vive Controller
  75402. */
  75403. var ViveController = /** @class */ (function (_super) {
  75404. __extends(ViveController, _super);
  75405. /**
  75406. * Creates a new ViveController from a gamepad
  75407. * @param vrGamepad the gamepad that the controller should be created from
  75408. */
  75409. function ViveController(vrGamepad) {
  75410. var _this = _super.call(this, vrGamepad) || this;
  75411. _this.controllerType = BABYLON.PoseEnabledControllerType.VIVE;
  75412. _this._invertLeftStickY = true;
  75413. return _this;
  75414. }
  75415. /**
  75416. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  75417. * @param scene scene in which to add meshes
  75418. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  75419. */
  75420. ViveController.prototype.initControllerMesh = function (scene, meshLoaded) {
  75421. var _this = this;
  75422. BABYLON.SceneLoader.ImportMesh("", ViveController.MODEL_BASE_URL, ViveController.MODEL_FILENAME, scene, function (newMeshes) {
  75423. /*
  75424. Parent Mesh name: ViveWand
  75425. - body
  75426. - r_gripper
  75427. - l_gripper
  75428. - menu_button
  75429. - system_button
  75430. - trackpad
  75431. - trigger
  75432. - LED
  75433. */
  75434. _this._defaultModel = newMeshes[1];
  75435. _this.attachToMesh(_this._defaultModel);
  75436. if (meshLoaded) {
  75437. meshLoaded(_this._defaultModel);
  75438. }
  75439. });
  75440. };
  75441. Object.defineProperty(ViveController.prototype, "onLeftButtonStateChangedObservable", {
  75442. /**
  75443. * Fired when the left button on this controller is modified
  75444. */
  75445. get: function () {
  75446. return this.onMainButtonStateChangedObservable;
  75447. },
  75448. enumerable: true,
  75449. configurable: true
  75450. });
  75451. Object.defineProperty(ViveController.prototype, "onRightButtonStateChangedObservable", {
  75452. /**
  75453. * Fired when the right button on this controller is modified
  75454. */
  75455. get: function () {
  75456. return this.onMainButtonStateChangedObservable;
  75457. },
  75458. enumerable: true,
  75459. configurable: true
  75460. });
  75461. Object.defineProperty(ViveController.prototype, "onMenuButtonStateChangedObservable", {
  75462. /**
  75463. * Fired when the menu button on this controller is modified
  75464. */
  75465. get: function () {
  75466. return this.onSecondaryButtonStateChangedObservable;
  75467. },
  75468. enumerable: true,
  75469. configurable: true
  75470. });
  75471. /**
  75472. * Called once for each button that changed state since the last frame
  75473. * Vive mapping:
  75474. * 0: touchpad
  75475. * 1: trigger
  75476. * 2: left AND right buttons
  75477. * 3: menu button
  75478. * @param buttonIdx Which button index changed
  75479. * @param state New state of the button
  75480. * @param changes Which properties on the state changed since last frame
  75481. */
  75482. ViveController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  75483. var notifyObject = state; //{ state: state, changes: changes };
  75484. switch (buttonIdx) {
  75485. case 0:
  75486. this.onPadStateChangedObservable.notifyObservers(notifyObject);
  75487. return;
  75488. case 1: // index trigger
  75489. if (this._defaultModel) {
  75490. (this._defaultModel.getChildren()[6]).rotation.x = -notifyObject.value * 0.15;
  75491. }
  75492. this.onTriggerStateChangedObservable.notifyObservers(notifyObject);
  75493. return;
  75494. case 2: // left AND right button
  75495. this.onMainButtonStateChangedObservable.notifyObservers(notifyObject);
  75496. return;
  75497. case 3:
  75498. if (this._defaultModel) {
  75499. if (notifyObject.pressed) {
  75500. (this._defaultModel.getChildren()[2]).position.y = -0.001;
  75501. }
  75502. else {
  75503. (this._defaultModel.getChildren()[2]).position.y = 0;
  75504. }
  75505. }
  75506. this.onSecondaryButtonStateChangedObservable.notifyObservers(notifyObject);
  75507. return;
  75508. }
  75509. };
  75510. /**
  75511. * Base Url for the controller model.
  75512. */
  75513. ViveController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/vive/';
  75514. /**
  75515. * File name for the controller model.
  75516. */
  75517. ViveController.MODEL_FILENAME = 'wand.babylon';
  75518. return ViveController;
  75519. }(BABYLON.WebVRController));
  75520. BABYLON.ViveController = ViveController;
  75521. })(BABYLON || (BABYLON = {}));
  75522. //# sourceMappingURL=babylon.viveController.js.map
  75523. var BABYLON;
  75524. (function (BABYLON) {
  75525. /**
  75526. * Generic Controller
  75527. */
  75528. var GenericController = /** @class */ (function (_super) {
  75529. __extends(GenericController, _super);
  75530. /**
  75531. * Creates a new GenericController from a gamepad
  75532. * @param vrGamepad the gamepad that the controller should be created from
  75533. */
  75534. function GenericController(vrGamepad) {
  75535. return _super.call(this, vrGamepad) || this;
  75536. }
  75537. /**
  75538. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  75539. * @param scene scene in which to add meshes
  75540. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  75541. */
  75542. GenericController.prototype.initControllerMesh = function (scene, meshLoaded) {
  75543. var _this = this;
  75544. BABYLON.SceneLoader.ImportMesh("", GenericController.MODEL_BASE_URL, GenericController.MODEL_FILENAME, scene, function (newMeshes) {
  75545. _this._defaultModel = newMeshes[1];
  75546. _this.attachToMesh(_this._defaultModel);
  75547. if (meshLoaded) {
  75548. meshLoaded(_this._defaultModel);
  75549. }
  75550. });
  75551. };
  75552. /**
  75553. * Called once for each button that changed state since the last frame
  75554. * @param buttonIdx Which button index changed
  75555. * @param state New state of the button
  75556. * @param changes Which properties on the state changed since last frame
  75557. */
  75558. GenericController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  75559. console.log("Button id: " + buttonIdx + "state: ");
  75560. console.dir(state);
  75561. };
  75562. /**
  75563. * Base Url for the controller model.
  75564. */
  75565. GenericController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/generic/';
  75566. /**
  75567. * File name for the controller model.
  75568. */
  75569. GenericController.MODEL_FILENAME = 'generic.babylon';
  75570. return GenericController;
  75571. }(BABYLON.WebVRController));
  75572. BABYLON.GenericController = GenericController;
  75573. })(BABYLON || (BABYLON = {}));
  75574. //# sourceMappingURL=babylon.genericController.js.map
  75575. var BABYLON;
  75576. (function (BABYLON) {
  75577. /**
  75578. * Defines the LoadedMeshInfo object that describes information about the loaded webVR controller mesh
  75579. */
  75580. var LoadedMeshInfo = /** @class */ (function () {
  75581. function LoadedMeshInfo() {
  75582. /**
  75583. * Map of the button meshes contained in the controller
  75584. */
  75585. this.buttonMeshes = {};
  75586. /**
  75587. * Map of the axis meshes contained in the controller
  75588. */
  75589. this.axisMeshes = {};
  75590. }
  75591. return LoadedMeshInfo;
  75592. }());
  75593. /**
  75594. * Defines the WindowsMotionController object that the state of the windows motion controller
  75595. */
  75596. var WindowsMotionController = /** @class */ (function (_super) {
  75597. __extends(WindowsMotionController, _super);
  75598. /**
  75599. * Creates a new WindowsMotionController from a gamepad
  75600. * @param vrGamepad the gamepad that the controller should be created from
  75601. */
  75602. function WindowsMotionController(vrGamepad) {
  75603. var _this = _super.call(this, vrGamepad) || this;
  75604. _this._mapping = {
  75605. // Semantic button names
  75606. buttons: ['thumbstick', 'trigger', 'grip', 'menu', 'trackpad'],
  75607. // A mapping of the button name to glTF model node name
  75608. // that should be transformed by button value.
  75609. buttonMeshNames: {
  75610. 'trigger': 'SELECT',
  75611. 'menu': 'MENU',
  75612. 'grip': 'GRASP',
  75613. 'thumbstick': 'THUMBSTICK_PRESS',
  75614. 'trackpad': 'TOUCHPAD_PRESS'
  75615. },
  75616. // This mapping is used to translate from the Motion Controller to Babylon semantics
  75617. buttonObservableNames: {
  75618. 'trigger': 'onTriggerStateChangedObservable',
  75619. 'menu': 'onSecondaryButtonStateChangedObservable',
  75620. 'grip': 'onMainButtonStateChangedObservable',
  75621. 'thumbstick': 'onPadStateChangedObservable',
  75622. 'trackpad': 'onTrackpadChangedObservable'
  75623. },
  75624. // A mapping of the axis name to glTF model node name
  75625. // that should be transformed by axis value.
  75626. // This array mirrors the browserGamepad.axes array, such that
  75627. // the mesh corresponding to axis 0 is in this array index 0.
  75628. axisMeshNames: [
  75629. 'THUMBSTICK_X',
  75630. 'THUMBSTICK_Y',
  75631. 'TOUCHPAD_TOUCH_X',
  75632. 'TOUCHPAD_TOUCH_Y'
  75633. ],
  75634. pointingPoseMeshName: BABYLON.PoseEnabledController.POINTING_POSE
  75635. };
  75636. /**
  75637. * Fired when the trackpad on this controller is clicked
  75638. */
  75639. _this.onTrackpadChangedObservable = new BABYLON.Observable();
  75640. /**
  75641. * Fired when the trackpad on this controller is modified
  75642. */
  75643. _this.onTrackpadValuesChangedObservable = new BABYLON.Observable();
  75644. /**
  75645. * The current x and y values of this controller's trackpad
  75646. */
  75647. _this.trackpad = { x: 0, y: 0 };
  75648. _this.controllerType = BABYLON.PoseEnabledControllerType.WINDOWS;
  75649. _this._loadedMeshInfo = null;
  75650. return _this;
  75651. }
  75652. Object.defineProperty(WindowsMotionController.prototype, "onTriggerButtonStateChangedObservable", {
  75653. /**
  75654. * Fired when the trigger on this controller is modified
  75655. */
  75656. get: function () {
  75657. return this.onTriggerStateChangedObservable;
  75658. },
  75659. enumerable: true,
  75660. configurable: true
  75661. });
  75662. Object.defineProperty(WindowsMotionController.prototype, "onMenuButtonStateChangedObservable", {
  75663. /**
  75664. * Fired when the menu button on this controller is modified
  75665. */
  75666. get: function () {
  75667. return this.onSecondaryButtonStateChangedObservable;
  75668. },
  75669. enumerable: true,
  75670. configurable: true
  75671. });
  75672. Object.defineProperty(WindowsMotionController.prototype, "onGripButtonStateChangedObservable", {
  75673. /**
  75674. * Fired when the grip button on this controller is modified
  75675. */
  75676. get: function () {
  75677. return this.onMainButtonStateChangedObservable;
  75678. },
  75679. enumerable: true,
  75680. configurable: true
  75681. });
  75682. Object.defineProperty(WindowsMotionController.prototype, "onThumbstickButtonStateChangedObservable", {
  75683. /**
  75684. * Fired when the thumbstick button on this controller is modified
  75685. */
  75686. get: function () {
  75687. return this.onPadStateChangedObservable;
  75688. },
  75689. enumerable: true,
  75690. configurable: true
  75691. });
  75692. Object.defineProperty(WindowsMotionController.prototype, "onTouchpadButtonStateChangedObservable", {
  75693. /**
  75694. * Fired when the touchpad button on this controller is modified
  75695. */
  75696. get: function () {
  75697. return this.onTrackpadChangedObservable;
  75698. },
  75699. enumerable: true,
  75700. configurable: true
  75701. });
  75702. Object.defineProperty(WindowsMotionController.prototype, "onTouchpadValuesChangedObservable", {
  75703. /**
  75704. * Fired when the touchpad values on this controller are modified
  75705. */
  75706. get: function () {
  75707. return this.onTrackpadValuesChangedObservable;
  75708. },
  75709. enumerable: true,
  75710. configurable: true
  75711. });
  75712. WindowsMotionController.prototype._updateTrackpad = function () {
  75713. if (this.browserGamepad.axes && (this.browserGamepad.axes[2] != this.trackpad.x || this.browserGamepad.axes[3] != this.trackpad.y)) {
  75714. this.trackpad.x = this.browserGamepad["axes"][2];
  75715. this.trackpad.y = this.browserGamepad["axes"][3];
  75716. this.onTrackpadValuesChangedObservable.notifyObservers(this.trackpad);
  75717. }
  75718. };
  75719. /**
  75720. * Called once per frame by the engine.
  75721. */
  75722. WindowsMotionController.prototype.update = function () {
  75723. _super.prototype.update.call(this);
  75724. if (this.browserGamepad.axes) {
  75725. this._updateTrackpad();
  75726. // Only need to animate axes if there is a loaded mesh
  75727. if (this._loadedMeshInfo) {
  75728. for (var axis = 0; axis < this._mapping.axisMeshNames.length; axis++) {
  75729. this._lerpAxisTransform(axis, this.browserGamepad.axes[axis]);
  75730. }
  75731. }
  75732. }
  75733. };
  75734. /**
  75735. * Called once for each button that changed state since the last frame
  75736. * @param buttonIdx Which button index changed
  75737. * @param state New state of the button
  75738. * @param changes Which properties on the state changed since last frame
  75739. */
  75740. WindowsMotionController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  75741. var buttonName = this._mapping.buttons[buttonIdx];
  75742. if (!buttonName) {
  75743. return;
  75744. }
  75745. // Update the trackpad to ensure trackpad.x/y are accurate during button events between frames
  75746. this._updateTrackpad();
  75747. // Only emit events for buttons that we know how to map from index to name
  75748. var observable = this[(this._mapping.buttonObservableNames)[buttonName]];
  75749. if (observable) {
  75750. observable.notifyObservers(state);
  75751. }
  75752. this._lerpButtonTransform(buttonName, state.value);
  75753. };
  75754. /**
  75755. * Moves the buttons on the controller mesh based on their current state
  75756. * @param buttonName the name of the button to move
  75757. * @param buttonValue the value of the button which determines the buttons new position
  75758. */
  75759. WindowsMotionController.prototype._lerpButtonTransform = function (buttonName, buttonValue) {
  75760. // If there is no loaded mesh, there is nothing to transform.
  75761. if (!this._loadedMeshInfo) {
  75762. return;
  75763. }
  75764. var meshInfo = this._loadedMeshInfo.buttonMeshes[buttonName];
  75765. if (!meshInfo.unpressed.rotationQuaternion || !meshInfo.pressed.rotationQuaternion || !meshInfo.value.rotationQuaternion) {
  75766. return;
  75767. }
  75768. BABYLON.Quaternion.SlerpToRef(meshInfo.unpressed.rotationQuaternion, meshInfo.pressed.rotationQuaternion, buttonValue, meshInfo.value.rotationQuaternion);
  75769. BABYLON.Vector3.LerpToRef(meshInfo.unpressed.position, meshInfo.pressed.position, buttonValue, meshInfo.value.position);
  75770. };
  75771. /**
  75772. * Moves the axis on the controller mesh based on its current state
  75773. * @param axis the index of the axis
  75774. * @param axisValue the value of the axis which determines the meshes new position
  75775. * @hidden
  75776. */
  75777. WindowsMotionController.prototype._lerpAxisTransform = function (axis, axisValue) {
  75778. if (!this._loadedMeshInfo) {
  75779. return;
  75780. }
  75781. var meshInfo = this._loadedMeshInfo.axisMeshes[axis];
  75782. if (!meshInfo) {
  75783. return;
  75784. }
  75785. if (!meshInfo.min.rotationQuaternion || !meshInfo.max.rotationQuaternion || !meshInfo.value.rotationQuaternion) {
  75786. return;
  75787. }
  75788. // Convert from gamepad value range (-1 to +1) to lerp range (0 to 1)
  75789. var lerpValue = axisValue * 0.5 + 0.5;
  75790. BABYLON.Quaternion.SlerpToRef(meshInfo.min.rotationQuaternion, meshInfo.max.rotationQuaternion, lerpValue, meshInfo.value.rotationQuaternion);
  75791. BABYLON.Vector3.LerpToRef(meshInfo.min.position, meshInfo.max.position, lerpValue, meshInfo.value.position);
  75792. };
  75793. /**
  75794. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  75795. * @param scene scene in which to add meshes
  75796. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  75797. */
  75798. WindowsMotionController.prototype.initControllerMesh = function (scene, meshLoaded, forceDefault) {
  75799. var _this = this;
  75800. if (forceDefault === void 0) { forceDefault = false; }
  75801. var path;
  75802. var filename;
  75803. // Checking if GLB loader is present
  75804. if (BABYLON.SceneLoader.IsPluginForExtensionAvailable(".glb")) {
  75805. // Determine the device specific folder based on the ID suffix
  75806. var device = 'default';
  75807. if (this.id && !forceDefault) {
  75808. var match = this.id.match(WindowsMotionController.GAMEPAD_ID_PATTERN);
  75809. device = ((match && match[0]) || device);
  75810. }
  75811. // Hand
  75812. if (this.hand === 'left') {
  75813. filename = WindowsMotionController.MODEL_LEFT_FILENAME;
  75814. }
  75815. else { // Right is the default if no hand is specified
  75816. filename = WindowsMotionController.MODEL_RIGHT_FILENAME;
  75817. }
  75818. path = WindowsMotionController.MODEL_BASE_URL + device + '/';
  75819. }
  75820. else {
  75821. BABYLON.Tools.Warn("You need to reference GLTF loader to load Windows Motion Controllers model. Falling back to generic models");
  75822. path = BABYLON.GenericController.MODEL_BASE_URL;
  75823. filename = BABYLON.GenericController.MODEL_FILENAME;
  75824. }
  75825. BABYLON.SceneLoader.ImportMesh("", path, filename, scene, function (meshes) {
  75826. // glTF files successfully loaded from the remote server, now process them to ensure they are in the right format.
  75827. _this._loadedMeshInfo = _this.processModel(scene, meshes);
  75828. if (!_this._loadedMeshInfo) {
  75829. return;
  75830. }
  75831. _this._defaultModel = _this._loadedMeshInfo.rootNode;
  75832. _this.attachToMesh(_this._defaultModel);
  75833. if (meshLoaded) {
  75834. meshLoaded(_this._defaultModel);
  75835. }
  75836. }, null, function (scene, message) {
  75837. BABYLON.Tools.Log(message);
  75838. BABYLON.Tools.Warn('Failed to retrieve controller model from the remote server: ' + path + filename);
  75839. if (!forceDefault) {
  75840. _this.initControllerMesh(scene, meshLoaded, true);
  75841. }
  75842. });
  75843. };
  75844. /**
  75845. * Takes a list of meshes (as loaded from the glTF file) and finds the root node, as well as nodes that
  75846. * can be transformed by button presses and axes values, based on this._mapping.
  75847. *
  75848. * @param scene scene in which the meshes exist
  75849. * @param meshes list of meshes that make up the controller model to process
  75850. * @return structured view of the given meshes, with mapping of buttons and axes to meshes that can be transformed.
  75851. */
  75852. WindowsMotionController.prototype.processModel = function (scene, meshes) {
  75853. var loadedMeshInfo = null;
  75854. // Create a new mesh to contain the glTF hierarchy
  75855. var parentMesh = new BABYLON.Mesh(this.id + " " + this.hand, scene);
  75856. // Find the root node in the loaded glTF scene, and attach it as a child of 'parentMesh'
  75857. var childMesh = null;
  75858. for (var i = 0; i < meshes.length; i++) {
  75859. var mesh = meshes[i];
  75860. if (!mesh.parent) {
  75861. // Exclude controller meshes from picking results
  75862. mesh.isPickable = false;
  75863. // Handle root node, attach to the new parentMesh
  75864. childMesh = mesh;
  75865. break;
  75866. }
  75867. }
  75868. if (childMesh) {
  75869. childMesh.setParent(parentMesh);
  75870. // Create our mesh info. Note that this method will always return non-null.
  75871. loadedMeshInfo = this.createMeshInfo(parentMesh);
  75872. }
  75873. else {
  75874. BABYLON.Tools.Warn('Could not find root node in model file.');
  75875. }
  75876. return loadedMeshInfo;
  75877. };
  75878. WindowsMotionController.prototype.createMeshInfo = function (rootNode) {
  75879. var loadedMeshInfo = new LoadedMeshInfo();
  75880. var i;
  75881. loadedMeshInfo.rootNode = rootNode;
  75882. // Reset the caches
  75883. loadedMeshInfo.buttonMeshes = {};
  75884. loadedMeshInfo.axisMeshes = {};
  75885. // Button Meshes
  75886. for (i = 0; i < this._mapping.buttons.length; i++) {
  75887. var buttonMeshName = this._mapping.buttonMeshNames[this._mapping.buttons[i]];
  75888. if (!buttonMeshName) {
  75889. BABYLON.Tools.Log('Skipping unknown button at index: ' + i + ' with mapped name: ' + this._mapping.buttons[i]);
  75890. continue;
  75891. }
  75892. var buttonMesh = getChildByName(rootNode, buttonMeshName);
  75893. if (!buttonMesh) {
  75894. BABYLON.Tools.Warn('Missing button mesh with name: ' + buttonMeshName);
  75895. continue;
  75896. }
  75897. var buttonMeshInfo = {
  75898. index: i,
  75899. value: getImmediateChildByName(buttonMesh, 'VALUE'),
  75900. pressed: getImmediateChildByName(buttonMesh, 'PRESSED'),
  75901. unpressed: getImmediateChildByName(buttonMesh, 'UNPRESSED')
  75902. };
  75903. if (buttonMeshInfo.value && buttonMeshInfo.pressed && buttonMeshInfo.unpressed) {
  75904. loadedMeshInfo.buttonMeshes[this._mapping.buttons[i]] = buttonMeshInfo;
  75905. }
  75906. else {
  75907. // If we didn't find the mesh, it simply means this button won't have transforms applied as mapped button value changes.
  75908. BABYLON.Tools.Warn('Missing button submesh under mesh with name: ' + buttonMeshName +
  75909. '(VALUE: ' + !!buttonMeshInfo.value +
  75910. ', PRESSED: ' + !!buttonMeshInfo.pressed +
  75911. ', UNPRESSED:' + !!buttonMeshInfo.unpressed +
  75912. ')');
  75913. }
  75914. }
  75915. // Axis Meshes
  75916. for (i = 0; i < this._mapping.axisMeshNames.length; i++) {
  75917. var axisMeshName = this._mapping.axisMeshNames[i];
  75918. if (!axisMeshName) {
  75919. BABYLON.Tools.Log('Skipping unknown axis at index: ' + i);
  75920. continue;
  75921. }
  75922. var axisMesh = getChildByName(rootNode, axisMeshName);
  75923. if (!axisMesh) {
  75924. BABYLON.Tools.Warn('Missing axis mesh with name: ' + axisMeshName);
  75925. continue;
  75926. }
  75927. var axisMeshInfo = {
  75928. index: i,
  75929. value: getImmediateChildByName(axisMesh, 'VALUE'),
  75930. min: getImmediateChildByName(axisMesh, 'MIN'),
  75931. max: getImmediateChildByName(axisMesh, 'MAX')
  75932. };
  75933. if (axisMeshInfo.value && axisMeshInfo.min && axisMeshInfo.max) {
  75934. loadedMeshInfo.axisMeshes[i] = axisMeshInfo;
  75935. }
  75936. else {
  75937. // If we didn't find the mesh, it simply means thit axis won't have transforms applied as mapped axis values change.
  75938. BABYLON.Tools.Warn('Missing axis submesh under mesh with name: ' + axisMeshName +
  75939. '(VALUE: ' + !!axisMeshInfo.value +
  75940. ', MIN: ' + !!axisMeshInfo.min +
  75941. ', MAX:' + !!axisMeshInfo.max +
  75942. ')');
  75943. }
  75944. }
  75945. // Pointing Ray
  75946. loadedMeshInfo.pointingPoseNode = getChildByName(rootNode, this._mapping.pointingPoseMeshName);
  75947. if (!loadedMeshInfo.pointingPoseNode) {
  75948. BABYLON.Tools.Warn('Missing pointing pose mesh with name: ' + this._mapping.pointingPoseMeshName);
  75949. }
  75950. else {
  75951. this._pointingPoseNode = loadedMeshInfo.pointingPoseNode;
  75952. }
  75953. return loadedMeshInfo;
  75954. // Look through all children recursively. This will return null if no mesh exists with the given name.
  75955. function getChildByName(node, name) {
  75956. return node.getChildMeshes(false, function (n) { return n.name === name; })[0];
  75957. }
  75958. // Look through only immediate children. This will return null if no mesh exists with the given name.
  75959. function getImmediateChildByName(node, name) {
  75960. return node.getChildMeshes(true, function (n) { return n.name == name; })[0];
  75961. }
  75962. };
  75963. /**
  75964. * Gets the ray of the controller in the direction the controller is pointing
  75965. * @param length the length the resulting ray should be
  75966. * @returns a ray in the direction the controller is pointing
  75967. */
  75968. WindowsMotionController.prototype.getForwardRay = function (length) {
  75969. if (length === void 0) { length = 100; }
  75970. if (!(this._loadedMeshInfo && this._loadedMeshInfo.pointingPoseNode)) {
  75971. return _super.prototype.getForwardRay.call(this, length);
  75972. }
  75973. var m = this._loadedMeshInfo.pointingPoseNode.getWorldMatrix();
  75974. var origin = m.getTranslation();
  75975. var forward = new BABYLON.Vector3(0, 0, -1);
  75976. var forwardWorld = BABYLON.Vector3.TransformNormal(forward, m);
  75977. var direction = BABYLON.Vector3.Normalize(forwardWorld);
  75978. return new BABYLON.Ray(origin, direction, length);
  75979. };
  75980. /**
  75981. * Disposes of the controller
  75982. */
  75983. WindowsMotionController.prototype.dispose = function () {
  75984. _super.prototype.dispose.call(this);
  75985. this.onTrackpadChangedObservable.clear();
  75986. };
  75987. /**
  75988. * The base url used to load the left and right controller models
  75989. */
  75990. WindowsMotionController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/microsoft/';
  75991. /**
  75992. * The name of the left controller model file
  75993. */
  75994. WindowsMotionController.MODEL_LEFT_FILENAME = 'left.glb';
  75995. /**
  75996. * The name of the right controller model file
  75997. */
  75998. WindowsMotionController.MODEL_RIGHT_FILENAME = 'right.glb';
  75999. /**
  76000. * The controller name prefix for this controller type
  76001. */
  76002. WindowsMotionController.GAMEPAD_ID_PREFIX = 'Spatial Controller (Spatial Interaction Source) ';
  76003. /**
  76004. * The controller id pattern for this controller type
  76005. */
  76006. WindowsMotionController.GAMEPAD_ID_PATTERN = /([0-9a-zA-Z]+-[0-9a-zA-Z]+)$/;
  76007. return WindowsMotionController;
  76008. }(BABYLON.WebVRController));
  76009. BABYLON.WindowsMotionController = WindowsMotionController;
  76010. })(BABYLON || (BABYLON = {}));
  76011. //# sourceMappingURL=babylon.windowsMotionController.js.map
  76012. var BABYLON;
  76013. (function (BABYLON) {
  76014. /**
  76015. * Gear VR Controller
  76016. */
  76017. var GearVRController = /** @class */ (function (_super) {
  76018. __extends(GearVRController, _super);
  76019. /**
  76020. * Creates a new GearVRController from a gamepad
  76021. * @param vrGamepad the gamepad that the controller should be created from
  76022. */
  76023. function GearVRController(vrGamepad) {
  76024. var _this = _super.call(this, vrGamepad) || this;
  76025. _this._maxRotationDistFromHeadset = Math.PI / 5;
  76026. _this._draggedRoomRotation = 0;
  76027. _this._tmpVector = new BABYLON.Vector3();
  76028. _this._buttonIndexToObservableNameMap = [
  76029. 'onTrackpadChangedObservable',
  76030. 'onTriggerStateChangedObservable' // Trigger
  76031. ];
  76032. _this.controllerType = BABYLON.PoseEnabledControllerType.GEAR_VR;
  76033. // Initial starting position defaults to where hand would be (incase of only 3dof controller)
  76034. _this._calculatedPosition = new BABYLON.Vector3(_this.hand == "left" ? -0.15 : 0.15, -0.5, 0.25);
  76035. return _this;
  76036. }
  76037. /**
  76038. * Updates the state of the pose enbaled controller based on the raw pose data from the device
  76039. * @param poseData raw pose fromthe device
  76040. */
  76041. GearVRController.prototype.updateFromDevice = function (poseData) {
  76042. _super.prototype.updateFromDevice.call(this, poseData);
  76043. if (BABYLON.Engine.LastCreatedScene && BABYLON.Engine.LastCreatedScene.activeCamera) {
  76044. if (BABYLON.Engine.LastCreatedScene.activeCamera.deviceRotationQuaternion) {
  76045. var camera = BABYLON.Engine.LastCreatedScene.activeCamera;
  76046. camera._deviceRoomRotationQuaternion.toEulerAnglesToRef(this._tmpVector);
  76047. // Find the radian distance away that the headset is from the controllers rotation
  76048. var distanceAway = Math.atan2(Math.sin(this._tmpVector.y - this._draggedRoomRotation), Math.cos(this._tmpVector.y - this._draggedRoomRotation));
  76049. if (Math.abs(distanceAway) > this._maxRotationDistFromHeadset) {
  76050. // Only rotate enouph to be within the _maxRotationDistFromHeadset
  76051. var rotationAmount = distanceAway - (distanceAway < 0 ? -this._maxRotationDistFromHeadset : this._maxRotationDistFromHeadset);
  76052. this._draggedRoomRotation += rotationAmount;
  76053. // Rotate controller around headset
  76054. var sin = Math.sin(-rotationAmount);
  76055. var cos = Math.cos(-rotationAmount);
  76056. this._calculatedPosition.x = this._calculatedPosition.x * cos - this._calculatedPosition.z * sin;
  76057. this._calculatedPosition.z = this._calculatedPosition.x * sin + this._calculatedPosition.z * cos;
  76058. }
  76059. }
  76060. }
  76061. };
  76062. /**
  76063. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  76064. * @param scene scene in which to add meshes
  76065. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  76066. */
  76067. GearVRController.prototype.initControllerMesh = function (scene, meshLoaded) {
  76068. var _this = this;
  76069. BABYLON.SceneLoader.ImportMesh("", GearVRController.MODEL_BASE_URL, GearVRController.MODEL_FILENAME, scene, function (newMeshes) {
  76070. // Offset the controller so it will rotate around the users wrist
  76071. var mesh = new BABYLON.Mesh("", scene);
  76072. newMeshes[1].parent = mesh;
  76073. newMeshes[1].position.z = -0.15;
  76074. _this._defaultModel = mesh;
  76075. _this.attachToMesh(_this._defaultModel);
  76076. if (meshLoaded) {
  76077. meshLoaded(_this._defaultModel);
  76078. }
  76079. });
  76080. };
  76081. /**
  76082. * Called once for each button that changed state since the last frame
  76083. * @param buttonIdx Which button index changed
  76084. * @param state New state of the button
  76085. * @param changes Which properties on the state changed since last frame
  76086. */
  76087. GearVRController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  76088. if (buttonIdx < this._buttonIndexToObservableNameMap.length) {
  76089. var observableName = this._buttonIndexToObservableNameMap[buttonIdx];
  76090. // Only emit events for buttons that we know how to map from index to observable
  76091. var observable = this[observableName];
  76092. if (observable) {
  76093. observable.notifyObservers(state);
  76094. }
  76095. }
  76096. };
  76097. /**
  76098. * Base Url for the controller model.
  76099. */
  76100. GearVRController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/generic/';
  76101. /**
  76102. * File name for the controller model.
  76103. */
  76104. GearVRController.MODEL_FILENAME = 'generic.babylon';
  76105. /**
  76106. * Gamepad Id prefix used to identify this controller.
  76107. */
  76108. GearVRController.GAMEPAD_ID_PREFIX = 'Gear VR'; // id is 'Gear VR Controller'
  76109. return GearVRController;
  76110. }(BABYLON.WebVRController));
  76111. BABYLON.GearVRController = GearVRController;
  76112. })(BABYLON || (BABYLON = {}));
  76113. //# sourceMappingURL=babylon.gearVRController.js.map
  76114. var BABYLON;
  76115. (function (BABYLON) {
  76116. /**
  76117. * Google Daydream controller
  76118. */
  76119. var DaydreamController = /** @class */ (function (_super) {
  76120. __extends(DaydreamController, _super);
  76121. /**
  76122. * Creates a new DaydreamController from a gamepad
  76123. * @param vrGamepad the gamepad that the controller should be created from
  76124. */
  76125. function DaydreamController(vrGamepad) {
  76126. var _this = _super.call(this, vrGamepad) || this;
  76127. _this.controllerType = BABYLON.PoseEnabledControllerType.DAYDREAM;
  76128. return _this;
  76129. }
  76130. /**
  76131. * Implements abstract method on WebVRController class, loading controller meshes and calling this.attachToMesh if successful.
  76132. * @param scene scene in which to add meshes
  76133. * @param meshLoaded optional callback function that will be called if the mesh loads successfully.
  76134. */
  76135. DaydreamController.prototype.initControllerMesh = function (scene, meshLoaded) {
  76136. var _this = this;
  76137. BABYLON.SceneLoader.ImportMesh("", DaydreamController.MODEL_BASE_URL, DaydreamController.MODEL_FILENAME, scene, function (newMeshes) {
  76138. _this._defaultModel = newMeshes[1];
  76139. _this.attachToMesh(_this._defaultModel);
  76140. if (meshLoaded) {
  76141. meshLoaded(_this._defaultModel);
  76142. }
  76143. });
  76144. };
  76145. /**
  76146. * Called once for each button that changed state since the last frame
  76147. * @param buttonIdx Which button index changed
  76148. * @param state New state of the button
  76149. * @param changes Which properties on the state changed since last frame
  76150. */
  76151. DaydreamController.prototype._handleButtonChange = function (buttonIdx, state, changes) {
  76152. // Daydream controller only has 1 GamepadButton (on the trackpad).
  76153. if (buttonIdx === 0) {
  76154. var observable = this.onTriggerStateChangedObservable;
  76155. if (observable) {
  76156. observable.notifyObservers(state);
  76157. }
  76158. }
  76159. else {
  76160. // If the app or home buttons are ever made available
  76161. BABYLON.Tools.Warn("Unrecognized Daydream button index: " + buttonIdx);
  76162. }
  76163. };
  76164. /**
  76165. * Base Url for the controller model.
  76166. */
  76167. DaydreamController.MODEL_BASE_URL = 'https://controllers.babylonjs.com/generic/';
  76168. /**
  76169. * File name for the controller model.
  76170. */
  76171. DaydreamController.MODEL_FILENAME = 'generic.babylon';
  76172. /**
  76173. * Gamepad Id prefix used to identify Daydream Controller.
  76174. */
  76175. DaydreamController.GAMEPAD_ID_PREFIX = 'Daydream'; // id is 'Daydream Controller'
  76176. return DaydreamController;
  76177. }(BABYLON.WebVRController));
  76178. BABYLON.DaydreamController = DaydreamController;
  76179. })(BABYLON || (BABYLON = {}));
  76180. //# sourceMappingURL=babylon.daydreamController.js.map
  76181. var BABYLON;
  76182. (function (BABYLON) {
  76183. Object.defineProperty(BABYLON.Scene.prototype, "gamepadManager", {
  76184. get: function () {
  76185. if (!this._gamepadManager) {
  76186. this._gamepadManager = new BABYLON.GamepadManager(this);
  76187. var component = this._getComponent(BABYLON.SceneComponentConstants.NAME_GAMEPAD);
  76188. if (!component) {
  76189. component = new GamepadSystemSceneComponent(this);
  76190. this._addComponent(component);
  76191. }
  76192. }
  76193. return this._gamepadManager;
  76194. },
  76195. enumerable: true,
  76196. configurable: true
  76197. });
  76198. BABYLON.FreeCameraInputsManager.prototype.addGamepad = function () {
  76199. this.add(new BABYLON.FreeCameraGamepadInput());
  76200. return this;
  76201. };
  76202. BABYLON.ArcRotateCameraInputsManager.prototype.addGamepad = function () {
  76203. this.add(new BABYLON.ArcRotateCameraGamepadInput());
  76204. return this;
  76205. };
  76206. /**
  76207. * Defines the gamepad scene component responsible to manage gamepads in a given scene
  76208. */
  76209. var GamepadSystemSceneComponent = /** @class */ (function () {
  76210. /**
  76211. * Creates a new instance of the component for the given scene
  76212. * @param scene Defines the scene to register the component in
  76213. */
  76214. function GamepadSystemSceneComponent(scene) {
  76215. /**
  76216. * The component name helpfull to identify the component in the list of scene components.
  76217. */
  76218. this.name = BABYLON.SceneComponentConstants.NAME_GAMEPAD;
  76219. this.scene = scene;
  76220. }
  76221. /**
  76222. * Registers the component in a given scene
  76223. */
  76224. GamepadSystemSceneComponent.prototype.register = function () {
  76225. this.scene._beforeCameraUpdateStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORECAMERAUPDATE_GAMEPAD, this, this._beforeCameraUpdate);
  76226. };
  76227. /**
  76228. * Rebuilds the elements related to this component in case of
  76229. * context lost for instance.
  76230. */
  76231. GamepadSystemSceneComponent.prototype.rebuild = function () {
  76232. // Nothing to do for gamepads
  76233. };
  76234. /**
  76235. * Disposes the component and the associated ressources
  76236. */
  76237. GamepadSystemSceneComponent.prototype.dispose = function () {
  76238. var gamepadManager = this.scene._gamepadManager;
  76239. if (gamepadManager) {
  76240. gamepadManager.dispose();
  76241. this.scene._gamepadManager = null;
  76242. }
  76243. };
  76244. GamepadSystemSceneComponent.prototype._beforeCameraUpdate = function () {
  76245. var gamepadManager = this.scene._gamepadManager;
  76246. if (gamepadManager && gamepadManager._isMonitoring) {
  76247. gamepadManager._checkGamepadsStatus();
  76248. }
  76249. };
  76250. return GamepadSystemSceneComponent;
  76251. }());
  76252. BABYLON.GamepadSystemSceneComponent = GamepadSystemSceneComponent;
  76253. })(BABYLON || (BABYLON = {}));
  76254. //# sourceMappingURL=babylon.gamepadSceneComponent.js.map
  76255. var BABYLON;
  76256. (function (BABYLON) {
  76257. BABYLON.Node.AddNodeConstructor("FollowCamera", function (name, scene) {
  76258. return function () { return new FollowCamera(name, BABYLON.Vector3.Zero(), scene); };
  76259. });
  76260. BABYLON.Node.AddNodeConstructor("ArcFollowCamera", function (name, scene) {
  76261. return function () { return new ArcFollowCamera(name, 0, 0, 1.0, null, scene); };
  76262. });
  76263. var FollowCamera = /** @class */ (function (_super) {
  76264. __extends(FollowCamera, _super);
  76265. function FollowCamera(name, position, scene, lockedTarget) {
  76266. if (lockedTarget === void 0) { lockedTarget = null; }
  76267. var _this = _super.call(this, name, position, scene) || this;
  76268. _this.radius = 12;
  76269. _this.rotationOffset = 0;
  76270. _this.heightOffset = 4;
  76271. _this.cameraAcceleration = 0.05;
  76272. _this.maxCameraSpeed = 20;
  76273. _this.lockedTarget = lockedTarget;
  76274. return _this;
  76275. }
  76276. FollowCamera.prototype.getRadians = function (degrees) {
  76277. return degrees * Math.PI / 180;
  76278. };
  76279. FollowCamera.prototype.follow = function (cameraTarget) {
  76280. if (!cameraTarget)
  76281. return;
  76282. var yRotation;
  76283. if (cameraTarget.rotationQuaternion) {
  76284. var rotMatrix = new BABYLON.Matrix();
  76285. cameraTarget.rotationQuaternion.toRotationMatrix(rotMatrix);
  76286. yRotation = Math.atan2(rotMatrix.m[8], rotMatrix.m[10]);
  76287. }
  76288. else {
  76289. yRotation = cameraTarget.rotation.y;
  76290. }
  76291. var radians = this.getRadians(this.rotationOffset) + yRotation;
  76292. var targetPosition = cameraTarget.getAbsolutePosition();
  76293. var targetX = targetPosition.x + Math.sin(radians) * this.radius;
  76294. var targetZ = targetPosition.z + Math.cos(radians) * this.radius;
  76295. var dx = targetX - this.position.x;
  76296. var dy = (targetPosition.y + this.heightOffset) - this.position.y;
  76297. var dz = (targetZ) - this.position.z;
  76298. var vx = dx * this.cameraAcceleration * 2; //this is set to .05
  76299. var vy = dy * this.cameraAcceleration;
  76300. var vz = dz * this.cameraAcceleration * 2;
  76301. if (vx > this.maxCameraSpeed || vx < -this.maxCameraSpeed) {
  76302. vx = vx < 1 ? -this.maxCameraSpeed : this.maxCameraSpeed;
  76303. }
  76304. if (vy > this.maxCameraSpeed || vy < -this.maxCameraSpeed) {
  76305. vy = vy < 1 ? -this.maxCameraSpeed : this.maxCameraSpeed;
  76306. }
  76307. if (vz > this.maxCameraSpeed || vz < -this.maxCameraSpeed) {
  76308. vz = vz < 1 ? -this.maxCameraSpeed : this.maxCameraSpeed;
  76309. }
  76310. this.position = new BABYLON.Vector3(this.position.x + vx, this.position.y + vy, this.position.z + vz);
  76311. this.setTarget(targetPosition);
  76312. };
  76313. /** @hidden */
  76314. FollowCamera.prototype._checkInputs = function () {
  76315. _super.prototype._checkInputs.call(this);
  76316. if (this.lockedTarget) {
  76317. this.follow(this.lockedTarget);
  76318. }
  76319. };
  76320. FollowCamera.prototype.getClassName = function () {
  76321. return "FollowCamera";
  76322. };
  76323. __decorate([
  76324. BABYLON.serialize()
  76325. ], FollowCamera.prototype, "radius", void 0);
  76326. __decorate([
  76327. BABYLON.serialize()
  76328. ], FollowCamera.prototype, "rotationOffset", void 0);
  76329. __decorate([
  76330. BABYLON.serialize()
  76331. ], FollowCamera.prototype, "heightOffset", void 0);
  76332. __decorate([
  76333. BABYLON.serialize()
  76334. ], FollowCamera.prototype, "cameraAcceleration", void 0);
  76335. __decorate([
  76336. BABYLON.serialize()
  76337. ], FollowCamera.prototype, "maxCameraSpeed", void 0);
  76338. __decorate([
  76339. BABYLON.serializeAsMeshReference("lockedTargetId")
  76340. ], FollowCamera.prototype, "lockedTarget", void 0);
  76341. return FollowCamera;
  76342. }(BABYLON.TargetCamera));
  76343. BABYLON.FollowCamera = FollowCamera;
  76344. var ArcFollowCamera = /** @class */ (function (_super) {
  76345. __extends(ArcFollowCamera, _super);
  76346. function ArcFollowCamera(name, alpha, beta, radius, target, scene) {
  76347. var _this = _super.call(this, name, BABYLON.Vector3.Zero(), scene) || this;
  76348. _this.alpha = alpha;
  76349. _this.beta = beta;
  76350. _this.radius = radius;
  76351. _this.target = target;
  76352. _this._cartesianCoordinates = BABYLON.Vector3.Zero();
  76353. _this.follow();
  76354. return _this;
  76355. }
  76356. ArcFollowCamera.prototype.follow = function () {
  76357. if (!this.target) {
  76358. return;
  76359. }
  76360. this._cartesianCoordinates.x = this.radius * Math.cos(this.alpha) * Math.cos(this.beta);
  76361. this._cartesianCoordinates.y = this.radius * Math.sin(this.beta);
  76362. this._cartesianCoordinates.z = this.radius * Math.sin(this.alpha) * Math.cos(this.beta);
  76363. var targetPosition = this.target.getAbsolutePosition();
  76364. this.position = targetPosition.add(this._cartesianCoordinates);
  76365. this.setTarget(targetPosition);
  76366. };
  76367. /** @hidden */
  76368. ArcFollowCamera.prototype._checkInputs = function () {
  76369. _super.prototype._checkInputs.call(this);
  76370. this.follow();
  76371. };
  76372. ArcFollowCamera.prototype.getClassName = function () {
  76373. return "ArcFollowCamera";
  76374. };
  76375. return ArcFollowCamera;
  76376. }(BABYLON.TargetCamera));
  76377. BABYLON.ArcFollowCamera = ArcFollowCamera;
  76378. })(BABYLON || (BABYLON = {}));
  76379. //# sourceMappingURL=babylon.followCamera.js.map
  76380. var BABYLON;
  76381. (function (BABYLON) {
  76382. // We're mainly based on the logic defined into the FreeCamera code
  76383. var UniversalCamera = /** @class */ (function (_super) {
  76384. __extends(UniversalCamera, _super);
  76385. //-- end properties for backward compatibility for inputs
  76386. function UniversalCamera(name, position, scene) {
  76387. var _this = _super.call(this, name, position, scene) || this;
  76388. _this.inputs.addGamepad();
  76389. return _this;
  76390. }
  76391. Object.defineProperty(UniversalCamera.prototype, "gamepadAngularSensibility", {
  76392. //-- Begin properties for backward compatibility for inputs
  76393. get: function () {
  76394. var gamepad = this.inputs.attached["gamepad"];
  76395. if (gamepad)
  76396. return gamepad.gamepadAngularSensibility;
  76397. return 0;
  76398. },
  76399. set: function (value) {
  76400. var gamepad = this.inputs.attached["gamepad"];
  76401. if (gamepad)
  76402. gamepad.gamepadAngularSensibility = value;
  76403. },
  76404. enumerable: true,
  76405. configurable: true
  76406. });
  76407. Object.defineProperty(UniversalCamera.prototype, "gamepadMoveSensibility", {
  76408. get: function () {
  76409. var gamepad = this.inputs.attached["gamepad"];
  76410. if (gamepad)
  76411. return gamepad.gamepadMoveSensibility;
  76412. return 0;
  76413. },
  76414. set: function (value) {
  76415. var gamepad = this.inputs.attached["gamepad"];
  76416. if (gamepad)
  76417. gamepad.gamepadMoveSensibility = value;
  76418. },
  76419. enumerable: true,
  76420. configurable: true
  76421. });
  76422. UniversalCamera.prototype.getClassName = function () {
  76423. return "UniversalCamera";
  76424. };
  76425. return UniversalCamera;
  76426. }(BABYLON.TouchCamera));
  76427. BABYLON.UniversalCamera = UniversalCamera;
  76428. })(BABYLON || (BABYLON = {}));
  76429. //# sourceMappingURL=babylon.universalCamera.js.map
  76430. var BABYLON;
  76431. (function (BABYLON) {
  76432. BABYLON.Node.AddNodeConstructor("GamepadCamera", function (name, scene) {
  76433. return function () { return new GamepadCamera(name, BABYLON.Vector3.Zero(), scene); };
  76434. });
  76435. // We're mainly based on the logic defined into the FreeCamera code
  76436. var GamepadCamera = /** @class */ (function (_super) {
  76437. __extends(GamepadCamera, _super);
  76438. //-- end properties for backward compatibility for inputs
  76439. function GamepadCamera(name, position, scene) {
  76440. return _super.call(this, name, position, scene) || this;
  76441. }
  76442. Object.defineProperty(GamepadCamera.prototype, "gamepadAngularSensibility", {
  76443. //-- Begin properties for backward compatibility for inputs
  76444. get: function () {
  76445. var gamepad = this.inputs.attached["gamepad"];
  76446. if (gamepad)
  76447. return gamepad.gamepadAngularSensibility;
  76448. return 0;
  76449. },
  76450. set: function (value) {
  76451. var gamepad = this.inputs.attached["gamepad"];
  76452. if (gamepad)
  76453. gamepad.gamepadAngularSensibility = value;
  76454. },
  76455. enumerable: true,
  76456. configurable: true
  76457. });
  76458. Object.defineProperty(GamepadCamera.prototype, "gamepadMoveSensibility", {
  76459. get: function () {
  76460. var gamepad = this.inputs.attached["gamepad"];
  76461. if (gamepad)
  76462. return gamepad.gamepadMoveSensibility;
  76463. return 0;
  76464. },
  76465. set: function (value) {
  76466. var gamepad = this.inputs.attached["gamepad"];
  76467. if (gamepad)
  76468. gamepad.gamepadMoveSensibility = value;
  76469. },
  76470. enumerable: true,
  76471. configurable: true
  76472. });
  76473. GamepadCamera.prototype.getClassName = function () {
  76474. return "GamepadCamera";
  76475. };
  76476. return GamepadCamera;
  76477. }(BABYLON.UniversalCamera));
  76478. BABYLON.GamepadCamera = GamepadCamera;
  76479. })(BABYLON || (BABYLON = {}));
  76480. //# sourceMappingURL=babylon.gamepadCamera.js.map
  76481. var BABYLON;
  76482. (function (BABYLON) {
  76483. var PostProcessRenderPipelineManager = /** @class */ (function () {
  76484. function PostProcessRenderPipelineManager() {
  76485. this._renderPipelines = {};
  76486. }
  76487. PostProcessRenderPipelineManager.prototype.addPipeline = function (renderPipeline) {
  76488. this._renderPipelines[renderPipeline._name] = renderPipeline;
  76489. };
  76490. PostProcessRenderPipelineManager.prototype.attachCamerasToRenderPipeline = function (renderPipelineName, cameras, unique) {
  76491. if (unique === void 0) { unique = false; }
  76492. var renderPipeline = this._renderPipelines[renderPipelineName];
  76493. if (!renderPipeline) {
  76494. return;
  76495. }
  76496. renderPipeline._attachCameras(cameras, unique);
  76497. };
  76498. PostProcessRenderPipelineManager.prototype.detachCamerasFromRenderPipeline = function (renderPipelineName, cameras) {
  76499. var renderPipeline = this._renderPipelines[renderPipelineName];
  76500. if (!renderPipeline) {
  76501. return;
  76502. }
  76503. renderPipeline._detachCameras(cameras);
  76504. };
  76505. PostProcessRenderPipelineManager.prototype.enableEffectInPipeline = function (renderPipelineName, renderEffectName, cameras) {
  76506. var renderPipeline = this._renderPipelines[renderPipelineName];
  76507. if (!renderPipeline) {
  76508. return;
  76509. }
  76510. renderPipeline._enableEffect(renderEffectName, cameras);
  76511. };
  76512. PostProcessRenderPipelineManager.prototype.disableEffectInPipeline = function (renderPipelineName, renderEffectName, cameras) {
  76513. var renderPipeline = this._renderPipelines[renderPipelineName];
  76514. if (!renderPipeline) {
  76515. return;
  76516. }
  76517. renderPipeline._disableEffect(renderEffectName, cameras);
  76518. };
  76519. PostProcessRenderPipelineManager.prototype.update = function () {
  76520. for (var renderPipelineName in this._renderPipelines) {
  76521. if (this._renderPipelines.hasOwnProperty(renderPipelineName)) {
  76522. var pipeline = this._renderPipelines[renderPipelineName];
  76523. if (!pipeline.isSupported) {
  76524. pipeline.dispose();
  76525. delete this._renderPipelines[renderPipelineName];
  76526. }
  76527. else {
  76528. pipeline._update();
  76529. }
  76530. }
  76531. }
  76532. };
  76533. /** @hidden */
  76534. PostProcessRenderPipelineManager.prototype._rebuild = function () {
  76535. for (var renderPipelineName in this._renderPipelines) {
  76536. if (this._renderPipelines.hasOwnProperty(renderPipelineName)) {
  76537. var pipeline = this._renderPipelines[renderPipelineName];
  76538. pipeline._rebuild();
  76539. }
  76540. }
  76541. };
  76542. PostProcessRenderPipelineManager.prototype.dispose = function () {
  76543. for (var renderPipelineName in this._renderPipelines) {
  76544. if (this._renderPipelines.hasOwnProperty(renderPipelineName)) {
  76545. var pipeline = this._renderPipelines[renderPipelineName];
  76546. pipeline.dispose();
  76547. }
  76548. }
  76549. };
  76550. return PostProcessRenderPipelineManager;
  76551. }());
  76552. BABYLON.PostProcessRenderPipelineManager = PostProcessRenderPipelineManager;
  76553. })(BABYLON || (BABYLON = {}));
  76554. //# sourceMappingURL=babylon.postProcessRenderPipelineManager.js.map
  76555. var BABYLON;
  76556. (function (BABYLON) {
  76557. Object.defineProperty(BABYLON.Scene.prototype, "postProcessRenderPipelineManager", {
  76558. get: function () {
  76559. if (!this._postProcessRenderPipelineManager) {
  76560. // Register the G Buffer component to the scene.
  76561. var component = this._getComponent(BABYLON.SceneComponentConstants.NAME_POSTPROCESSRENDERPIPELINEMANAGER);
  76562. if (!component) {
  76563. component = new PostProcessRenderPipelineManagerSceneComponent(this);
  76564. this._addComponent(component);
  76565. }
  76566. this._postProcessRenderPipelineManager = new BABYLON.PostProcessRenderPipelineManager();
  76567. }
  76568. return this._postProcessRenderPipelineManager;
  76569. },
  76570. enumerable: true,
  76571. configurable: true
  76572. });
  76573. /**
  76574. * Defines the Render Pipeline scene component responsible to rendering pipelines
  76575. */
  76576. var PostProcessRenderPipelineManagerSceneComponent = /** @class */ (function () {
  76577. /**
  76578. * Creates a new instance of the component for the given scene
  76579. * @param scene Defines the scene to register the component in
  76580. */
  76581. function PostProcessRenderPipelineManagerSceneComponent(scene) {
  76582. /**
  76583. * The component name helpfull to identify the component in the list of scene components.
  76584. */
  76585. this.name = BABYLON.SceneComponentConstants.NAME_POSTPROCESSRENDERPIPELINEMANAGER;
  76586. this.scene = scene;
  76587. }
  76588. /**
  76589. * Registers the component in a given scene
  76590. */
  76591. PostProcessRenderPipelineManagerSceneComponent.prototype.register = function () {
  76592. this.scene._gatherRenderTargetsStage.registerStep(BABYLON.SceneComponentConstants.STEP_GATHERRENDERTARGETS_POSTPROCESSRENDERPIPELINEMANAGER, this, this._gatherRenderTargets);
  76593. };
  76594. /**
  76595. * Rebuilds the elements related to this component in case of
  76596. * context lost for instance.
  76597. */
  76598. PostProcessRenderPipelineManagerSceneComponent.prototype.rebuild = function () {
  76599. if (this.scene._postProcessRenderPipelineManager) {
  76600. this.scene._postProcessRenderPipelineManager._rebuild();
  76601. }
  76602. };
  76603. /**
  76604. * Disposes the component and the associated ressources
  76605. */
  76606. PostProcessRenderPipelineManagerSceneComponent.prototype.dispose = function () {
  76607. if (this.scene._postProcessRenderPipelineManager) {
  76608. this.scene._postProcessRenderPipelineManager.dispose();
  76609. }
  76610. };
  76611. PostProcessRenderPipelineManagerSceneComponent.prototype._gatherRenderTargets = function (renderTargets) {
  76612. if (this.scene._postProcessRenderPipelineManager) {
  76613. this.scene._postProcessRenderPipelineManager.update();
  76614. }
  76615. };
  76616. return PostProcessRenderPipelineManagerSceneComponent;
  76617. }());
  76618. BABYLON.PostProcessRenderPipelineManagerSceneComponent = PostProcessRenderPipelineManagerSceneComponent;
  76619. })(BABYLON || (BABYLON = {}));
  76620. //# sourceMappingURL=babylon.postProcessRenderPipelineManagerSceneComponent.js.map
  76621. var BABYLON;
  76622. (function (BABYLON) {
  76623. /**
  76624. * This represents a set of one or more post processes in Babylon.
  76625. * A post process can be used to apply a shader to a texture after it is rendered.
  76626. * @example https://doc.babylonjs.com/how_to/how_to_use_postprocessrenderpipeline
  76627. */
  76628. var PostProcessRenderEffect = /** @class */ (function () {
  76629. /**
  76630. * Instantiates a post process render effect.
  76631. * A post process can be used to apply a shader to a texture after it is rendered.
  76632. * @param engine The engine the effect is tied to
  76633. * @param name The name of the effect
  76634. * @param getPostProcesses A function that returns a set of post processes which the effect will run in order to be run.
  76635. * @param singleInstance False if this post process can be run on multiple cameras. (default: true)
  76636. */
  76637. function PostProcessRenderEffect(engine, name, getPostProcesses, singleInstance) {
  76638. this._name = name;
  76639. this._singleInstance = singleInstance || true;
  76640. this._getPostProcesses = getPostProcesses;
  76641. this._cameras = {};
  76642. this._indicesForCamera = {};
  76643. this._postProcesses = {};
  76644. }
  76645. Object.defineProperty(PostProcessRenderEffect.prototype, "isSupported", {
  76646. /**
  76647. * Checks if all the post processes in the effect are supported.
  76648. */
  76649. get: function () {
  76650. for (var index in this._postProcesses) {
  76651. if (this._postProcesses.hasOwnProperty(index)) {
  76652. var pps = this._postProcesses[index];
  76653. for (var ppIndex = 0; ppIndex < pps.length; ppIndex++) {
  76654. if (!pps[ppIndex].isSupported) {
  76655. return false;
  76656. }
  76657. }
  76658. }
  76659. }
  76660. return true;
  76661. },
  76662. enumerable: true,
  76663. configurable: true
  76664. });
  76665. /**
  76666. * Updates the current state of the effect
  76667. * @hidden
  76668. */
  76669. PostProcessRenderEffect.prototype._update = function () {
  76670. };
  76671. /**
  76672. * Attaches the effect on cameras
  76673. * @param cameras The camera to attach to.
  76674. * @hidden
  76675. */
  76676. PostProcessRenderEffect.prototype._attachCameras = function (cameras) {
  76677. var _this = this;
  76678. var cameraKey;
  76679. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76680. if (!cams) {
  76681. return;
  76682. }
  76683. for (var i = 0; i < cams.length; i++) {
  76684. var camera = cams[i];
  76685. var cameraName = camera.name;
  76686. if (this._singleInstance) {
  76687. cameraKey = 0;
  76688. }
  76689. else {
  76690. cameraKey = cameraName;
  76691. }
  76692. if (!this._postProcesses[cameraKey]) {
  76693. var postProcess = this._getPostProcesses();
  76694. if (postProcess) {
  76695. this._postProcesses[cameraKey] = Array.isArray(postProcess) ? postProcess : [postProcess];
  76696. }
  76697. }
  76698. if (!this._indicesForCamera[cameraName]) {
  76699. this._indicesForCamera[cameraName] = [];
  76700. }
  76701. this._postProcesses[cameraKey].forEach(function (postProcess) {
  76702. var index = camera.attachPostProcess(postProcess);
  76703. _this._indicesForCamera[cameraName].push(index);
  76704. });
  76705. if (!this._cameras[cameraName]) {
  76706. this._cameras[cameraName] = camera;
  76707. }
  76708. }
  76709. };
  76710. /**
  76711. * Detatches the effect on cameras
  76712. * @param cameras The camera to detatch from.
  76713. * @hidden
  76714. */
  76715. PostProcessRenderEffect.prototype._detachCameras = function (cameras) {
  76716. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76717. if (!cams) {
  76718. return;
  76719. }
  76720. for (var i = 0; i < cams.length; i++) {
  76721. var camera = cams[i];
  76722. var cameraName = camera.name;
  76723. this._postProcesses[this._singleInstance ? 0 : cameraName].forEach(function (postProcess) {
  76724. camera.detachPostProcess(postProcess);
  76725. });
  76726. if (this._cameras[cameraName]) {
  76727. //this._indicesForCamera.splice(index, 1);
  76728. this._cameras[cameraName] = null;
  76729. }
  76730. }
  76731. };
  76732. /**
  76733. * Enables the effect on given cameras
  76734. * @param cameras The camera to enable.
  76735. * @hidden
  76736. */
  76737. PostProcessRenderEffect.prototype._enable = function (cameras) {
  76738. var _this = this;
  76739. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76740. if (!cams) {
  76741. return;
  76742. }
  76743. for (var i = 0; i < cams.length; i++) {
  76744. var camera = cams[i];
  76745. var cameraName = camera.name;
  76746. for (var j = 0; j < this._indicesForCamera[cameraName].length; j++) {
  76747. if (camera._postProcesses[this._indicesForCamera[cameraName][j]] === undefined || camera._postProcesses[this._indicesForCamera[cameraName][j]] === null) {
  76748. this._postProcesses[this._singleInstance ? 0 : cameraName].forEach(function (postProcess) {
  76749. cams[i].attachPostProcess(postProcess, _this._indicesForCamera[cameraName][j]);
  76750. });
  76751. }
  76752. }
  76753. }
  76754. };
  76755. /**
  76756. * Disables the effect on the given cameras
  76757. * @param cameras The camera to disable.
  76758. * @hidden
  76759. */
  76760. PostProcessRenderEffect.prototype._disable = function (cameras) {
  76761. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76762. if (!cams) {
  76763. return;
  76764. }
  76765. for (var i = 0; i < cams.length; i++) {
  76766. var camera = cams[i];
  76767. var cameraName = camera.name;
  76768. this._postProcesses[this._singleInstance ? 0 : cameraName].forEach(function (postProcess) {
  76769. camera.detachPostProcess(postProcess);
  76770. });
  76771. }
  76772. };
  76773. /**
  76774. * Gets a list of the post processes contained in the effect.
  76775. * @param camera The camera to get the post processes on.
  76776. * @returns The list of the post processes in the effect.
  76777. */
  76778. PostProcessRenderEffect.prototype.getPostProcesses = function (camera) {
  76779. if (this._singleInstance) {
  76780. return this._postProcesses[0];
  76781. }
  76782. else {
  76783. if (!camera) {
  76784. return null;
  76785. }
  76786. return this._postProcesses[camera.name];
  76787. }
  76788. };
  76789. return PostProcessRenderEffect;
  76790. }());
  76791. BABYLON.PostProcessRenderEffect = PostProcessRenderEffect;
  76792. })(BABYLON || (BABYLON = {}));
  76793. //# sourceMappingURL=babylon.postProcessRenderEffect.js.map
  76794. var BABYLON;
  76795. (function (BABYLON) {
  76796. var PostProcessRenderPipeline = /** @class */ (function () {
  76797. function PostProcessRenderPipeline(engine, name) {
  76798. this.engine = engine;
  76799. this._name = name;
  76800. this._renderEffects = {};
  76801. this._renderEffectsForIsolatedPass = new Array();
  76802. this._cameras = [];
  76803. }
  76804. PostProcessRenderPipeline.prototype.getClassName = function () {
  76805. return "PostProcessRenderPipeline";
  76806. };
  76807. Object.defineProperty(PostProcessRenderPipeline.prototype, "isSupported", {
  76808. get: function () {
  76809. for (var renderEffectName in this._renderEffects) {
  76810. if (this._renderEffects.hasOwnProperty(renderEffectName)) {
  76811. if (!this._renderEffects[renderEffectName].isSupported) {
  76812. return false;
  76813. }
  76814. }
  76815. }
  76816. return true;
  76817. },
  76818. enumerable: true,
  76819. configurable: true
  76820. });
  76821. PostProcessRenderPipeline.prototype.addEffect = function (renderEffect) {
  76822. this._renderEffects[renderEffect._name] = renderEffect;
  76823. };
  76824. // private
  76825. /** @hidden */
  76826. PostProcessRenderPipeline.prototype._rebuild = function () {
  76827. };
  76828. /** @hidden */
  76829. PostProcessRenderPipeline.prototype._enableEffect = function (renderEffectName, cameras) {
  76830. var renderEffects = this._renderEffects[renderEffectName];
  76831. if (!renderEffects) {
  76832. return;
  76833. }
  76834. renderEffects._enable(BABYLON.Tools.MakeArray(cameras || this._cameras));
  76835. };
  76836. PostProcessRenderPipeline.prototype._disableEffect = function (renderEffectName, cameras) {
  76837. var renderEffects = this._renderEffects[renderEffectName];
  76838. if (!renderEffects) {
  76839. return;
  76840. }
  76841. renderEffects._disable(BABYLON.Tools.MakeArray(cameras || this._cameras));
  76842. };
  76843. /** @hidden */
  76844. PostProcessRenderPipeline.prototype._attachCameras = function (cameras, unique) {
  76845. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76846. if (!cams) {
  76847. return;
  76848. }
  76849. var indicesToDelete = [];
  76850. var i;
  76851. for (i = 0; i < cams.length; i++) {
  76852. var camera = cams[i];
  76853. var cameraName = camera.name;
  76854. if (this._cameras.indexOf(camera) === -1) {
  76855. this._cameras[cameraName] = camera;
  76856. }
  76857. else if (unique) {
  76858. indicesToDelete.push(i);
  76859. }
  76860. }
  76861. for (i = 0; i < indicesToDelete.length; i++) {
  76862. cameras.splice(indicesToDelete[i], 1);
  76863. }
  76864. for (var renderEffectName in this._renderEffects) {
  76865. if (this._renderEffects.hasOwnProperty(renderEffectName)) {
  76866. this._renderEffects[renderEffectName]._attachCameras(cams);
  76867. }
  76868. }
  76869. };
  76870. /** @hidden */
  76871. PostProcessRenderPipeline.prototype._detachCameras = function (cameras) {
  76872. var cams = BABYLON.Tools.MakeArray(cameras || this._cameras);
  76873. if (!cams) {
  76874. return;
  76875. }
  76876. for (var renderEffectName in this._renderEffects) {
  76877. if (this._renderEffects.hasOwnProperty(renderEffectName)) {
  76878. this._renderEffects[renderEffectName]._detachCameras(cams);
  76879. }
  76880. }
  76881. for (var i = 0; i < cams.length; i++) {
  76882. this._cameras.splice(this._cameras.indexOf(cams[i]), 1);
  76883. }
  76884. };
  76885. /** @hidden */
  76886. PostProcessRenderPipeline.prototype._update = function () {
  76887. for (var renderEffectName in this._renderEffects) {
  76888. if (this._renderEffects.hasOwnProperty(renderEffectName)) {
  76889. this._renderEffects[renderEffectName]._update();
  76890. }
  76891. }
  76892. for (var i = 0; i < this._cameras.length; i++) {
  76893. var cameraName = this._cameras[i].name;
  76894. if (this._renderEffectsForIsolatedPass[cameraName]) {
  76895. this._renderEffectsForIsolatedPass[cameraName]._update();
  76896. }
  76897. }
  76898. };
  76899. /** @hidden */
  76900. PostProcessRenderPipeline.prototype._reset = function () {
  76901. this._renderEffects = {};
  76902. this._renderEffectsForIsolatedPass = new Array();
  76903. };
  76904. PostProcessRenderPipeline.prototype._enableMSAAOnFirstPostProcess = function (sampleCount) {
  76905. // Set samples of the very first post process to 4 to enable native anti-aliasing in browsers that support webGL 2.0 (See: https://github.com/BabylonJS/Babylon.js/issues/3754)
  76906. var effectKeys = Object.keys(this._renderEffects);
  76907. if (this.engine.webGLVersion >= 2 && effectKeys.length > 0) {
  76908. var postProcesses = this._renderEffects[effectKeys[0]].getPostProcesses();
  76909. if (postProcesses) {
  76910. postProcesses[0].samples = sampleCount;
  76911. return true;
  76912. }
  76913. }
  76914. return false;
  76915. };
  76916. PostProcessRenderPipeline.prototype.dispose = function () {
  76917. // Must be implemented by children
  76918. };
  76919. __decorate([
  76920. BABYLON.serialize()
  76921. ], PostProcessRenderPipeline.prototype, "_name", void 0);
  76922. return PostProcessRenderPipeline;
  76923. }());
  76924. BABYLON.PostProcessRenderPipeline = PostProcessRenderPipeline;
  76925. })(BABYLON || (BABYLON = {}));
  76926. //# sourceMappingURL=babylon.postProcessRenderPipeline.js.map
  76927. var BABYLON;
  76928. (function (BABYLON) {
  76929. /**
  76930. * This represents a depth renderer in Babylon.
  76931. * A depth renderer will render to it's depth map every frame which can be displayed or used in post processing
  76932. */
  76933. var DepthRenderer = /** @class */ (function () {
  76934. /**
  76935. * Instantiates a depth renderer
  76936. * @param scene The scene the renderer belongs to
  76937. * @param type The texture type of the depth map (default: Engine.TEXTURETYPE_FLOAT)
  76938. * @param camera The camera to be used to render the depth map (default: scene's active camera)
  76939. */
  76940. function DepthRenderer(scene, type, camera) {
  76941. if (type === void 0) { type = BABYLON.Engine.TEXTURETYPE_FLOAT; }
  76942. if (camera === void 0) { camera = null; }
  76943. var _this = this;
  76944. this._scene = scene;
  76945. // Register the G Buffer component to the scene.
  76946. var component = scene._getComponent(BABYLON.SceneComponentConstants.NAME_DEPTHRENDERER);
  76947. if (!component) {
  76948. component = new BABYLON.DepthRendererSceneComponent(scene);
  76949. scene._addComponent(component);
  76950. }
  76951. this._camera = camera;
  76952. var engine = scene.getEngine();
  76953. // Render target
  76954. this._depthMap = new BABYLON.RenderTargetTexture("depthMap", { width: engine.getRenderWidth(), height: engine.getRenderHeight() }, this._scene, false, true, type);
  76955. this._depthMap.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  76956. this._depthMap.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  76957. this._depthMap.refreshRate = 1;
  76958. this._depthMap.renderParticles = false;
  76959. this._depthMap.renderList = null;
  76960. // Camera to get depth map from to support multiple concurrent cameras
  76961. this._depthMap.activeCamera = this._camera;
  76962. this._depthMap.ignoreCameraViewport = true;
  76963. this._depthMap.useCameraPostProcesses = false;
  76964. // set default depth value to 1.0 (far away)
  76965. this._depthMap.onClearObservable.add(function (engine) {
  76966. engine.clear(new BABYLON.Color4(1.0, 1.0, 1.0, 1.0), true, true, true);
  76967. });
  76968. // Custom render function
  76969. var renderSubMesh = function (subMesh) {
  76970. var mesh = subMesh.getRenderingMesh();
  76971. var scene = _this._scene;
  76972. var engine = scene.getEngine();
  76973. var material = subMesh.getMaterial();
  76974. if (!material) {
  76975. return;
  76976. }
  76977. // Culling and reverse (right handed system)
  76978. engine.setState(material.backFaceCulling, 0, false, scene.useRightHandedSystem);
  76979. // Managing instances
  76980. var batch = mesh._getInstancesRenderList(subMesh._id);
  76981. if (batch.mustReturn) {
  76982. return;
  76983. }
  76984. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null);
  76985. var camera = _this._camera || scene.activeCamera;
  76986. if (_this.isReady(subMesh, hardwareInstancedRendering) && camera) {
  76987. engine.enableEffect(_this._effect);
  76988. mesh._bind(subMesh, _this._effect, BABYLON.Material.TriangleFillMode);
  76989. _this._effect.setMatrix("viewProjection", scene.getTransformMatrix());
  76990. _this._effect.setFloat2("depthValues", camera.minZ, camera.minZ + camera.maxZ);
  76991. // Alpha test
  76992. if (material && material.needAlphaTesting()) {
  76993. var alphaTexture = material.getAlphaTestTexture();
  76994. if (alphaTexture) {
  76995. _this._effect.setTexture("diffuseSampler", alphaTexture);
  76996. _this._effect.setMatrix("diffuseMatrix", alphaTexture.getTextureMatrix());
  76997. }
  76998. }
  76999. // Bones
  77000. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  77001. _this._effect.setMatrices("mBones", mesh.skeleton.getTransformMatrices(mesh));
  77002. }
  77003. // Draw
  77004. mesh._processRendering(subMesh, _this._effect, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { return _this._effect.setMatrix("world", world); });
  77005. }
  77006. };
  77007. this._depthMap.customRenderFunction = function (opaqueSubMeshes, alphaTestSubMeshes, transparentSubMeshes, depthOnlySubMeshes) {
  77008. var index;
  77009. if (depthOnlySubMeshes.length) {
  77010. engine.setColorWrite(false);
  77011. for (index = 0; index < depthOnlySubMeshes.length; index++) {
  77012. renderSubMesh(depthOnlySubMeshes.data[index]);
  77013. }
  77014. engine.setColorWrite(true);
  77015. }
  77016. for (index = 0; index < opaqueSubMeshes.length; index++) {
  77017. renderSubMesh(opaqueSubMeshes.data[index]);
  77018. }
  77019. for (index = 0; index < alphaTestSubMeshes.length; index++) {
  77020. renderSubMesh(alphaTestSubMeshes.data[index]);
  77021. }
  77022. };
  77023. }
  77024. /**
  77025. * Creates the depth rendering effect and checks if the effect is ready.
  77026. * @param subMesh The submesh to be used to render the depth map of
  77027. * @param useInstances If multiple world instances should be used
  77028. * @returns if the depth renderer is ready to render the depth map
  77029. */
  77030. DepthRenderer.prototype.isReady = function (subMesh, useInstances) {
  77031. var material = subMesh.getMaterial();
  77032. if (material.disableDepthWrite) {
  77033. return false;
  77034. }
  77035. var defines = [];
  77036. var attribs = [BABYLON.VertexBuffer.PositionKind];
  77037. var mesh = subMesh.getMesh();
  77038. // Alpha test
  77039. if (material && material.needAlphaTesting() && material.getAlphaTestTexture()) {
  77040. defines.push("#define ALPHATEST");
  77041. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  77042. attribs.push(BABYLON.VertexBuffer.UVKind);
  77043. defines.push("#define UV1");
  77044. }
  77045. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  77046. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  77047. defines.push("#define UV2");
  77048. }
  77049. }
  77050. // Bones
  77051. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  77052. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  77053. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  77054. if (mesh.numBoneInfluencers > 4) {
  77055. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  77056. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  77057. }
  77058. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  77059. defines.push("#define BonesPerMesh " + (mesh.skeleton ? mesh.skeleton.bones.length + 1 : 0));
  77060. }
  77061. else {
  77062. defines.push("#define NUM_BONE_INFLUENCERS 0");
  77063. }
  77064. // Instances
  77065. if (useInstances) {
  77066. defines.push("#define INSTANCES");
  77067. attribs.push("world0");
  77068. attribs.push("world1");
  77069. attribs.push("world2");
  77070. attribs.push("world3");
  77071. }
  77072. // Get correct effect
  77073. var join = defines.join("\n");
  77074. if (this._cachedDefines !== join) {
  77075. this._cachedDefines = join;
  77076. this._effect = this._scene.getEngine().createEffect("depth", attribs, ["world", "mBones", "viewProjection", "diffuseMatrix", "depthValues"], ["diffuseSampler"], join);
  77077. }
  77078. return this._effect.isReady();
  77079. };
  77080. /**
  77081. * Gets the texture which the depth map will be written to.
  77082. * @returns The depth map texture
  77083. */
  77084. DepthRenderer.prototype.getDepthMap = function () {
  77085. return this._depthMap;
  77086. };
  77087. /**
  77088. * Disposes of the depth renderer.
  77089. */
  77090. DepthRenderer.prototype.dispose = function () {
  77091. this._depthMap.dispose();
  77092. };
  77093. return DepthRenderer;
  77094. }());
  77095. BABYLON.DepthRenderer = DepthRenderer;
  77096. })(BABYLON || (BABYLON = {}));
  77097. //# sourceMappingURL=babylon.depthRenderer.js.map
  77098. var BABYLON;
  77099. (function (BABYLON) {
  77100. BABYLON.Scene.prototype.enableDepthRenderer = function (camera) {
  77101. camera = camera || this.activeCamera;
  77102. if (!camera) {
  77103. throw "No camera available to enable depth renderer";
  77104. }
  77105. if (!this._depthRenderer) {
  77106. this._depthRenderer = {};
  77107. }
  77108. if (!this._depthRenderer[camera.id]) {
  77109. var textureType = 0;
  77110. if (this.getEngine().getCaps().textureHalfFloatRender) {
  77111. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  77112. }
  77113. else if (this.getEngine().getCaps().textureFloatRender) {
  77114. textureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  77115. }
  77116. else {
  77117. throw "Depth renderer does not support int texture type";
  77118. }
  77119. this._depthRenderer[camera.id] = new BABYLON.DepthRenderer(this, textureType, camera);
  77120. }
  77121. return this._depthRenderer[camera.id];
  77122. };
  77123. BABYLON.Scene.prototype.disableDepthRenderer = function (camera) {
  77124. camera = camera || this.activeCamera;
  77125. if (!camera || !this._depthRenderer || !this._depthRenderer[camera.id]) {
  77126. return;
  77127. }
  77128. this._depthRenderer[camera.id].dispose();
  77129. delete this._depthRenderer[camera.id];
  77130. };
  77131. /**
  77132. * Defines the Depth Renderer scene component responsible to manage a depth buffer usefull
  77133. * in several rendering techniques.
  77134. */
  77135. var DepthRendererSceneComponent = /** @class */ (function () {
  77136. /**
  77137. * Creates a new instance of the component for the given scene
  77138. * @param scene Defines the scene to register the component in
  77139. */
  77140. function DepthRendererSceneComponent(scene) {
  77141. /**
  77142. * The component name helpfull to identify the component in the list of scene components.
  77143. */
  77144. this.name = BABYLON.SceneComponentConstants.NAME_DEPTHRENDERER;
  77145. this.scene = scene;
  77146. }
  77147. /**
  77148. * Registers the component in a given scene
  77149. */
  77150. DepthRendererSceneComponent.prototype.register = function () {
  77151. this.scene._gatherRenderTargetsStage.registerStep(BABYLON.SceneComponentConstants.STEP_GATHERRENDERTARGETS_DEPTHRENDERER, this, this._gatherRenderTargets);
  77152. };
  77153. /**
  77154. * Rebuilds the elements related to this component in case of
  77155. * context lost for instance.
  77156. */
  77157. DepthRendererSceneComponent.prototype.rebuild = function () {
  77158. // Nothing to do for this component
  77159. };
  77160. /**
  77161. * Disposes the component and the associated ressources
  77162. */
  77163. DepthRendererSceneComponent.prototype.dispose = function () {
  77164. for (var key in this.scene._depthRenderer) {
  77165. this.scene._depthRenderer[key].dispose();
  77166. }
  77167. };
  77168. DepthRendererSceneComponent.prototype._gatherRenderTargets = function (renderTargets) {
  77169. if (this.scene._depthRenderer) {
  77170. for (var key in this.scene._depthRenderer) {
  77171. renderTargets.push(this.scene._depthRenderer[key].getDepthMap());
  77172. }
  77173. }
  77174. };
  77175. return DepthRendererSceneComponent;
  77176. }());
  77177. BABYLON.DepthRendererSceneComponent = DepthRendererSceneComponent;
  77178. })(BABYLON || (BABYLON = {}));
  77179. //# sourceMappingURL=babylon.depthRendererSceneComponent.js.map
  77180. var BABYLON;
  77181. (function (BABYLON) {
  77182. /**
  77183. * This renderer is helpfull to fill one of the render target with a geometry buffer.
  77184. */
  77185. var GeometryBufferRenderer = /** @class */ (function () {
  77186. /**
  77187. * Creates a new G Buffer for the scene
  77188. * @param scene The scene the buffer belongs to
  77189. * @param ratio How big is the buffer related to the main canvas.
  77190. */
  77191. function GeometryBufferRenderer(scene, ratio) {
  77192. if (ratio === void 0) { ratio = 1; }
  77193. this._enablePosition = false;
  77194. this._scene = scene;
  77195. this._ratio = ratio;
  77196. // Register the G Buffer component to the scene.
  77197. var component = scene._getComponent(BABYLON.SceneComponentConstants.NAME_GEOMETRYBUFFERRENDERER);
  77198. if (!component) {
  77199. component = new BABYLON.GeometryBufferRendererSceneComponent(scene);
  77200. scene._addComponent(component);
  77201. }
  77202. // Render target
  77203. this._createRenderTargets();
  77204. }
  77205. Object.defineProperty(GeometryBufferRenderer.prototype, "renderList", {
  77206. /**
  77207. * Set the render list (meshes to be rendered) used in the G buffer.
  77208. */
  77209. set: function (meshes) {
  77210. this._multiRenderTarget.renderList = meshes;
  77211. },
  77212. enumerable: true,
  77213. configurable: true
  77214. });
  77215. Object.defineProperty(GeometryBufferRenderer.prototype, "isSupported", {
  77216. /**
  77217. * Gets wether or not G buffer are supported by the running hardware.
  77218. * This requires draw buffer supports
  77219. */
  77220. get: function () {
  77221. return this._multiRenderTarget.isSupported;
  77222. },
  77223. enumerable: true,
  77224. configurable: true
  77225. });
  77226. Object.defineProperty(GeometryBufferRenderer.prototype, "enablePosition", {
  77227. /**
  77228. * Gets wether or not position are enabled for the G buffer.
  77229. */
  77230. get: function () {
  77231. return this._enablePosition;
  77232. },
  77233. /**
  77234. * Sets wether or not position are enabled for the G buffer.
  77235. */
  77236. set: function (enable) {
  77237. this._enablePosition = enable;
  77238. this.dispose();
  77239. this._createRenderTargets();
  77240. },
  77241. enumerable: true,
  77242. configurable: true
  77243. });
  77244. Object.defineProperty(GeometryBufferRenderer.prototype, "scene", {
  77245. /**
  77246. * Gets the scene associated with the buffer.
  77247. */
  77248. get: function () {
  77249. return this._scene;
  77250. },
  77251. enumerable: true,
  77252. configurable: true
  77253. });
  77254. Object.defineProperty(GeometryBufferRenderer.prototype, "ratio", {
  77255. /**
  77256. * Gets the ratio used by the buffer during its creation.
  77257. * How big is the buffer related to the main canvas.
  77258. */
  77259. get: function () {
  77260. return this._ratio;
  77261. },
  77262. enumerable: true,
  77263. configurable: true
  77264. });
  77265. /**
  77266. * Checks wether everything is ready to render a submesh to the G buffer.
  77267. * @param subMesh the submesh to check readiness for
  77268. * @param useInstances is the mesh drawn using instance or not
  77269. * @returns true if ready otherwise false
  77270. */
  77271. GeometryBufferRenderer.prototype.isReady = function (subMesh, useInstances) {
  77272. var material = subMesh.getMaterial();
  77273. if (material && material.disableDepthWrite) {
  77274. return false;
  77275. }
  77276. var defines = [];
  77277. var attribs = [BABYLON.VertexBuffer.PositionKind, BABYLON.VertexBuffer.NormalKind];
  77278. var mesh = subMesh.getMesh();
  77279. // Alpha test
  77280. if (material && material.needAlphaTesting()) {
  77281. defines.push("#define ALPHATEST");
  77282. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  77283. attribs.push(BABYLON.VertexBuffer.UVKind);
  77284. defines.push("#define UV1");
  77285. }
  77286. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  77287. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  77288. defines.push("#define UV2");
  77289. }
  77290. }
  77291. // Buffers
  77292. if (this._enablePosition) {
  77293. defines.push("#define POSITION");
  77294. }
  77295. // Bones
  77296. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  77297. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  77298. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  77299. if (mesh.numBoneInfluencers > 4) {
  77300. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  77301. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  77302. }
  77303. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  77304. defines.push("#define BonesPerMesh " + (mesh.skeleton ? mesh.skeleton.bones.length + 1 : 0));
  77305. }
  77306. else {
  77307. defines.push("#define NUM_BONE_INFLUENCERS 0");
  77308. }
  77309. // Instances
  77310. if (useInstances) {
  77311. defines.push("#define INSTANCES");
  77312. attribs.push("world0");
  77313. attribs.push("world1");
  77314. attribs.push("world2");
  77315. attribs.push("world3");
  77316. }
  77317. // Get correct effect
  77318. var join = defines.join("\n");
  77319. if (this._cachedDefines !== join) {
  77320. this._cachedDefines = join;
  77321. this._effect = this._scene.getEngine().createEffect("geometry", attribs, ["world", "mBones", "viewProjection", "diffuseMatrix", "view"], ["diffuseSampler"], join, undefined, undefined, undefined, { buffersCount: this._enablePosition ? 3 : 2 });
  77322. }
  77323. return this._effect.isReady();
  77324. };
  77325. /**
  77326. * Gets the current underlying G Buffer.
  77327. * @returns the buffer
  77328. */
  77329. GeometryBufferRenderer.prototype.getGBuffer = function () {
  77330. return this._multiRenderTarget;
  77331. };
  77332. Object.defineProperty(GeometryBufferRenderer.prototype, "samples", {
  77333. /**
  77334. * Gets the number of samples used to render the buffer (anti aliasing).
  77335. */
  77336. get: function () {
  77337. return this._multiRenderTarget.samples;
  77338. },
  77339. /**
  77340. * Sets the number of samples used to render the buffer (anti aliasing).
  77341. */
  77342. set: function (value) {
  77343. this._multiRenderTarget.samples = value;
  77344. },
  77345. enumerable: true,
  77346. configurable: true
  77347. });
  77348. /**
  77349. * Disposes the renderer and frees up associated resources.
  77350. */
  77351. GeometryBufferRenderer.prototype.dispose = function () {
  77352. this.getGBuffer().dispose();
  77353. };
  77354. GeometryBufferRenderer.prototype._createRenderTargets = function () {
  77355. var _this = this;
  77356. var engine = this._scene.getEngine();
  77357. var count = this._enablePosition ? 3 : 2;
  77358. this._multiRenderTarget = new BABYLON.MultiRenderTarget("gBuffer", { width: engine.getRenderWidth() * this._ratio, height: engine.getRenderHeight() * this._ratio }, count, this._scene, { generateMipMaps: false, generateDepthTexture: true, defaultType: BABYLON.Engine.TEXTURETYPE_FLOAT });
  77359. if (!this.isSupported) {
  77360. return;
  77361. }
  77362. this._multiRenderTarget.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  77363. this._multiRenderTarget.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  77364. this._multiRenderTarget.refreshRate = 1;
  77365. this._multiRenderTarget.renderParticles = false;
  77366. this._multiRenderTarget.renderList = null;
  77367. // set default depth value to 1.0 (far away)
  77368. this._multiRenderTarget.onClearObservable.add(function (engine) {
  77369. engine.clear(new BABYLON.Color4(0.0, 0.0, 0.0, 1.0), true, true, true);
  77370. });
  77371. // Custom render function
  77372. var renderSubMesh = function (subMesh) {
  77373. var mesh = subMesh.getRenderingMesh();
  77374. var scene = _this._scene;
  77375. var engine = scene.getEngine();
  77376. var material = subMesh.getMaterial();
  77377. if (!material) {
  77378. return;
  77379. }
  77380. // Culling
  77381. engine.setState(material.backFaceCulling, 0, false, scene.useRightHandedSystem);
  77382. // Managing instances
  77383. var batch = mesh._getInstancesRenderList(subMesh._id);
  77384. if (batch.mustReturn) {
  77385. return;
  77386. }
  77387. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null);
  77388. if (_this.isReady(subMesh, hardwareInstancedRendering)) {
  77389. engine.enableEffect(_this._effect);
  77390. mesh._bind(subMesh, _this._effect, BABYLON.Material.TriangleFillMode);
  77391. _this._effect.setMatrix("viewProjection", scene.getTransformMatrix());
  77392. _this._effect.setMatrix("view", scene.getViewMatrix());
  77393. // Alpha test
  77394. if (material && material.needAlphaTesting()) {
  77395. var alphaTexture = material.getAlphaTestTexture();
  77396. if (alphaTexture) {
  77397. _this._effect.setTexture("diffuseSampler", alphaTexture);
  77398. _this._effect.setMatrix("diffuseMatrix", alphaTexture.getTextureMatrix());
  77399. }
  77400. }
  77401. // Bones
  77402. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  77403. _this._effect.setMatrices("mBones", mesh.skeleton.getTransformMatrices(mesh));
  77404. }
  77405. // Draw
  77406. mesh._processRendering(subMesh, _this._effect, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { return _this._effect.setMatrix("world", world); });
  77407. }
  77408. };
  77409. this._multiRenderTarget.customRenderFunction = function (opaqueSubMeshes, alphaTestSubMeshes, transparentSubMeshes, depthOnlySubMeshes) {
  77410. var index;
  77411. if (depthOnlySubMeshes.length) {
  77412. engine.setColorWrite(false);
  77413. for (index = 0; index < depthOnlySubMeshes.length; index++) {
  77414. renderSubMesh(depthOnlySubMeshes.data[index]);
  77415. }
  77416. engine.setColorWrite(true);
  77417. }
  77418. for (index = 0; index < opaqueSubMeshes.length; index++) {
  77419. renderSubMesh(opaqueSubMeshes.data[index]);
  77420. }
  77421. for (index = 0; index < alphaTestSubMeshes.length; index++) {
  77422. renderSubMesh(alphaTestSubMeshes.data[index]);
  77423. }
  77424. };
  77425. };
  77426. return GeometryBufferRenderer;
  77427. }());
  77428. BABYLON.GeometryBufferRenderer = GeometryBufferRenderer;
  77429. })(BABYLON || (BABYLON = {}));
  77430. //# sourceMappingURL=babylon.geometryBufferRenderer.js.map
  77431. var BABYLON;
  77432. (function (BABYLON) {
  77433. Object.defineProperty(BABYLON.Scene.prototype, "geometryBufferRenderer", {
  77434. get: function () {
  77435. this._geometryBufferRenderer;
  77436. },
  77437. set: function (value) {
  77438. if (value && value.isSupported) {
  77439. this._geometryBufferRenderer = value;
  77440. }
  77441. ;
  77442. },
  77443. enumerable: true,
  77444. configurable: true
  77445. });
  77446. BABYLON.Scene.prototype.enableGeometryBufferRenderer = function (ratio) {
  77447. if (ratio === void 0) { ratio = 1; }
  77448. if (this._geometryBufferRenderer) {
  77449. return this._geometryBufferRenderer;
  77450. }
  77451. this._geometryBufferRenderer = new BABYLON.GeometryBufferRenderer(this, ratio);
  77452. if (!this._geometryBufferRenderer.isSupported) {
  77453. this._geometryBufferRenderer = null;
  77454. }
  77455. return this._geometryBufferRenderer;
  77456. };
  77457. BABYLON.Scene.prototype.disableGeometryBufferRenderer = function () {
  77458. if (!this._geometryBufferRenderer) {
  77459. return;
  77460. }
  77461. this._geometryBufferRenderer.dispose();
  77462. this._geometryBufferRenderer = null;
  77463. };
  77464. /**
  77465. * Defines the Geometry Buffer scene component responsible to manage a G-Buffer usefull
  77466. * in several rendering techniques.
  77467. */
  77468. var GeometryBufferRendererSceneComponent = /** @class */ (function () {
  77469. /**
  77470. * Creates a new instance of the component for the given scene
  77471. * @param scene Defines the scene to register the component in
  77472. */
  77473. function GeometryBufferRendererSceneComponent(scene) {
  77474. /**
  77475. * The component name helpfull to identify the component in the list of scene components.
  77476. */
  77477. this.name = BABYLON.SceneComponentConstants.NAME_GEOMETRYBUFFERRENDERER;
  77478. this.scene = scene;
  77479. }
  77480. /**
  77481. * Registers the component in a given scene
  77482. */
  77483. GeometryBufferRendererSceneComponent.prototype.register = function () {
  77484. this.scene._gatherRenderTargetsStage.registerStep(BABYLON.SceneComponentConstants.STEP_GATHERRENDERTARGETS_GEOMETRYBUFFERRENDERER, this, this._gatherRenderTargets);
  77485. };
  77486. /**
  77487. * Rebuilds the elements related to this component in case of
  77488. * context lost for instance.
  77489. */
  77490. GeometryBufferRendererSceneComponent.prototype.rebuild = function () {
  77491. // Nothing to do for this component
  77492. };
  77493. /**
  77494. * Disposes the component and the associated ressources
  77495. */
  77496. GeometryBufferRendererSceneComponent.prototype.dispose = function () {
  77497. // Nothing to do for this component
  77498. };
  77499. GeometryBufferRendererSceneComponent.prototype._gatherRenderTargets = function (renderTargets) {
  77500. if (this.scene._geometryBufferRenderer) {
  77501. renderTargets.push(this.scene._geometryBufferRenderer.getGBuffer());
  77502. }
  77503. };
  77504. return GeometryBufferRendererSceneComponent;
  77505. }());
  77506. BABYLON.GeometryBufferRendererSceneComponent = GeometryBufferRendererSceneComponent;
  77507. })(BABYLON || (BABYLON = {}));
  77508. //# sourceMappingURL=babylon.geometryBufferRendererSceneComponent.js.map
  77509. var BABYLON;
  77510. (function (BABYLON) {
  77511. var SSAORenderingPipeline = /** @class */ (function (_super) {
  77512. __extends(SSAORenderingPipeline, _super);
  77513. /**
  77514. * @constructor
  77515. * @param {string} name - The rendering pipeline name
  77516. * @param {BABYLON.Scene} scene - The scene linked to this pipeline
  77517. * @param {any} ratio - The size of the postprocesses. Can be a number shared between passes or an object for more precision: { ssaoRatio: 0.5, combineRatio: 1.0 }
  77518. * @param {BABYLON.Camera[]} cameras - The array of cameras that the rendering pipeline will be attached to
  77519. */
  77520. function SSAORenderingPipeline(name, scene, ratio, cameras) {
  77521. var _this = _super.call(this, scene.getEngine(), name) || this;
  77522. // Members
  77523. /**
  77524. * The PassPostProcess id in the pipeline that contains the original scene color
  77525. */
  77526. _this.SSAOOriginalSceneColorEffect = "SSAOOriginalSceneColorEffect";
  77527. /**
  77528. * The SSAO PostProcess id in the pipeline
  77529. */
  77530. _this.SSAORenderEffect = "SSAORenderEffect";
  77531. /**
  77532. * The horizontal blur PostProcess id in the pipeline
  77533. */
  77534. _this.SSAOBlurHRenderEffect = "SSAOBlurHRenderEffect";
  77535. /**
  77536. * The vertical blur PostProcess id in the pipeline
  77537. */
  77538. _this.SSAOBlurVRenderEffect = "SSAOBlurVRenderEffect";
  77539. /**
  77540. * The PostProcess id in the pipeline that combines the SSAO-Blur output with the original scene color (SSAOOriginalSceneColorEffect)
  77541. */
  77542. _this.SSAOCombineRenderEffect = "SSAOCombineRenderEffect";
  77543. /**
  77544. * The output strength of the SSAO post-process. Default value is 1.0.
  77545. */
  77546. _this.totalStrength = 1.0;
  77547. /**
  77548. * The radius around the analyzed pixel used by the SSAO post-process. Default value is 0.0006
  77549. */
  77550. _this.radius = 0.0001;
  77551. /**
  77552. * Related to fallOff, used to interpolate SSAO samples (first interpolate function input) based on the occlusion difference of each pixel
  77553. * Must not be equal to fallOff and superior to fallOff.
  77554. * Default value is 0.975
  77555. */
  77556. _this.area = 0.0075;
  77557. /**
  77558. * Related to area, used to interpolate SSAO samples (second interpolate function input) based on the occlusion difference of each pixel
  77559. * Must not be equal to area and inferior to area.
  77560. * Default value is 0.0
  77561. */
  77562. _this.fallOff = 0.000001;
  77563. /**
  77564. * The base color of the SSAO post-process
  77565. * The final result is "base + ssao" between [0, 1]
  77566. */
  77567. _this.base = 0.5;
  77568. _this._firstUpdate = true;
  77569. _this._scene = scene;
  77570. // Set up assets
  77571. _this._createRandomTexture();
  77572. _this._depthTexture = scene.enableDepthRenderer().getDepthMap(); // Force depth renderer "on"
  77573. var ssaoRatio = ratio.ssaoRatio || ratio;
  77574. var combineRatio = ratio.combineRatio || ratio;
  77575. _this._originalColorPostProcess = new BABYLON.PassPostProcess("SSAOOriginalSceneColor", combineRatio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false);
  77576. _this._createSSAOPostProcess(ssaoRatio);
  77577. _this._createBlurPostProcess(ssaoRatio);
  77578. _this._createSSAOCombinePostProcess(combineRatio);
  77579. // Set up pipeline
  77580. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOOriginalSceneColorEffect, function () { return _this._originalColorPostProcess; }, true));
  77581. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAORenderEffect, function () { return _this._ssaoPostProcess; }, true));
  77582. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOBlurHRenderEffect, function () { return _this._blurHPostProcess; }, true));
  77583. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOBlurVRenderEffect, function () { return _this._blurVPostProcess; }, true));
  77584. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOCombineRenderEffect, function () { return _this._ssaoCombinePostProcess; }, true));
  77585. // Finish
  77586. scene.postProcessRenderPipelineManager.addPipeline(_this);
  77587. if (cameras)
  77588. scene.postProcessRenderPipelineManager.attachCamerasToRenderPipeline(name, cameras);
  77589. return _this;
  77590. }
  77591. // Public Methods
  77592. /**
  77593. * Removes the internal pipeline assets and detatches the pipeline from the scene cameras
  77594. */
  77595. SSAORenderingPipeline.prototype.dispose = function (disableDepthRender) {
  77596. if (disableDepthRender === void 0) { disableDepthRender = false; }
  77597. for (var i = 0; i < this._scene.cameras.length; i++) {
  77598. var camera = this._scene.cameras[i];
  77599. this._originalColorPostProcess.dispose(camera);
  77600. this._ssaoPostProcess.dispose(camera);
  77601. this._blurHPostProcess.dispose(camera);
  77602. this._blurVPostProcess.dispose(camera);
  77603. this._ssaoCombinePostProcess.dispose(camera);
  77604. }
  77605. this._randomTexture.dispose();
  77606. if (disableDepthRender)
  77607. this._scene.disableDepthRenderer();
  77608. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._scene.cameras);
  77609. _super.prototype.dispose.call(this);
  77610. };
  77611. // Private Methods
  77612. SSAORenderingPipeline.prototype._createBlurPostProcess = function (ratio) {
  77613. var _this = this;
  77614. var size = 16;
  77615. this._blurHPostProcess = new BABYLON.BlurPostProcess("BlurH", new BABYLON.Vector2(1, 0), size, ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  77616. this._blurVPostProcess = new BABYLON.BlurPostProcess("BlurV", new BABYLON.Vector2(0, 1), size, ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  77617. this._blurHPostProcess.onActivateObservable.add(function () {
  77618. var dw = _this._blurHPostProcess.width / _this._scene.getEngine().getRenderWidth();
  77619. _this._blurHPostProcess.kernel = size * dw;
  77620. });
  77621. this._blurVPostProcess.onActivateObservable.add(function () {
  77622. var dw = _this._blurVPostProcess.height / _this._scene.getEngine().getRenderHeight();
  77623. _this._blurVPostProcess.kernel = size * dw;
  77624. });
  77625. };
  77626. /** @hidden */
  77627. SSAORenderingPipeline.prototype._rebuild = function () {
  77628. this._firstUpdate = true;
  77629. _super.prototype._rebuild.call(this);
  77630. };
  77631. SSAORenderingPipeline.prototype._createSSAOPostProcess = function (ratio) {
  77632. var _this = this;
  77633. var numSamples = 16;
  77634. var sampleSphere = [
  77635. 0.5381, 0.1856, -0.4319,
  77636. 0.1379, 0.2486, 0.4430,
  77637. 0.3371, 0.5679, -0.0057,
  77638. -0.6999, -0.0451, -0.0019,
  77639. 0.0689, -0.1598, -0.8547,
  77640. 0.0560, 0.0069, -0.1843,
  77641. -0.0146, 0.1402, 0.0762,
  77642. 0.0100, -0.1924, -0.0344,
  77643. -0.3577, -0.5301, -0.4358,
  77644. -0.3169, 0.1063, 0.0158,
  77645. 0.0103, -0.5869, 0.0046,
  77646. -0.0897, -0.4940, 0.3287,
  77647. 0.7119, -0.0154, -0.0918,
  77648. -0.0533, 0.0596, -0.5411,
  77649. 0.0352, -0.0631, 0.5460,
  77650. -0.4776, 0.2847, -0.0271
  77651. ];
  77652. var samplesFactor = 1.0 / numSamples;
  77653. this._ssaoPostProcess = new BABYLON.PostProcess("ssao", "ssao", [
  77654. "sampleSphere", "samplesFactor", "randTextureTiles", "totalStrength", "radius",
  77655. "area", "fallOff", "base", "range", "viewport"
  77656. ], ["randomSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, "#define SAMPLES " + numSamples + "\n#define SSAO");
  77657. this._ssaoPostProcess.onApply = function (effect) {
  77658. if (_this._firstUpdate) {
  77659. effect.setArray3("sampleSphere", sampleSphere);
  77660. effect.setFloat("samplesFactor", samplesFactor);
  77661. effect.setFloat("randTextureTiles", 4.0);
  77662. }
  77663. effect.setFloat("totalStrength", _this.totalStrength);
  77664. effect.setFloat("radius", _this.radius);
  77665. effect.setFloat("area", _this.area);
  77666. effect.setFloat("fallOff", _this.fallOff);
  77667. effect.setFloat("base", _this.base);
  77668. effect.setTexture("textureSampler", _this._depthTexture);
  77669. effect.setTexture("randomSampler", _this._randomTexture);
  77670. };
  77671. };
  77672. SSAORenderingPipeline.prototype._createSSAOCombinePostProcess = function (ratio) {
  77673. var _this = this;
  77674. this._ssaoCombinePostProcess = new BABYLON.PostProcess("ssaoCombine", "ssaoCombine", [], ["originalColor", "viewport"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false);
  77675. this._ssaoCombinePostProcess.onApply = function (effect) {
  77676. effect.setVector4("viewport", BABYLON.Tmp.Vector4[0].copyFromFloats(0, 0, 1.0, 1.0));
  77677. effect.setTextureFromPostProcess("originalColor", _this._originalColorPostProcess);
  77678. };
  77679. };
  77680. SSAORenderingPipeline.prototype._createRandomTexture = function () {
  77681. var size = 512;
  77682. this._randomTexture = new BABYLON.DynamicTexture("SSAORandomTexture", size, this._scene, false, BABYLON.Texture.TRILINEAR_SAMPLINGMODE);
  77683. this._randomTexture.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  77684. this._randomTexture.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  77685. var context = this._randomTexture.getContext();
  77686. var rand = function (min, max) {
  77687. return Math.random() * (max - min) + min;
  77688. };
  77689. var randVector = BABYLON.Vector3.Zero();
  77690. for (var x = 0; x < size; x++) {
  77691. for (var y = 0; y < size; y++) {
  77692. randVector.x = Math.floor(rand(-1.0, 1.0) * 255);
  77693. randVector.y = Math.floor(rand(-1.0, 1.0) * 255);
  77694. randVector.z = Math.floor(rand(-1.0, 1.0) * 255);
  77695. context.fillStyle = 'rgb(' + randVector.x + ', ' + randVector.y + ', ' + randVector.z + ')';
  77696. context.fillRect(x, y, 1, 1);
  77697. }
  77698. }
  77699. this._randomTexture.update(false);
  77700. };
  77701. __decorate([
  77702. BABYLON.serialize()
  77703. ], SSAORenderingPipeline.prototype, "totalStrength", void 0);
  77704. __decorate([
  77705. BABYLON.serialize()
  77706. ], SSAORenderingPipeline.prototype, "radius", void 0);
  77707. __decorate([
  77708. BABYLON.serialize()
  77709. ], SSAORenderingPipeline.prototype, "area", void 0);
  77710. __decorate([
  77711. BABYLON.serialize()
  77712. ], SSAORenderingPipeline.prototype, "fallOff", void 0);
  77713. __decorate([
  77714. BABYLON.serialize()
  77715. ], SSAORenderingPipeline.prototype, "base", void 0);
  77716. return SSAORenderingPipeline;
  77717. }(BABYLON.PostProcessRenderPipeline));
  77718. BABYLON.SSAORenderingPipeline = SSAORenderingPipeline;
  77719. })(BABYLON || (BABYLON = {}));
  77720. //# sourceMappingURL=babylon.ssaoRenderingPipeline.js.map
  77721. var BABYLON;
  77722. (function (BABYLON) {
  77723. var SSAO2RenderingPipeline = /** @class */ (function (_super) {
  77724. __extends(SSAO2RenderingPipeline, _super);
  77725. /**
  77726. * @constructor
  77727. * @param {string} name - The rendering pipeline name
  77728. * @param {BABYLON.Scene} scene - The scene linked to this pipeline
  77729. * @param {any} ratio - The size of the postprocesses. Can be a number shared between passes or an object for more precision: { ssaoRatio: 0.5, blurRatio: 1.0 }
  77730. * @param {BABYLON.Camera[]} cameras - The array of cameras that the rendering pipeline will be attached to
  77731. */
  77732. function SSAO2RenderingPipeline(name, scene, ratio, cameras) {
  77733. var _this = _super.call(this, scene.getEngine(), name) || this;
  77734. // Members
  77735. /**
  77736. * The PassPostProcess id in the pipeline that contains the original scene color
  77737. */
  77738. _this.SSAOOriginalSceneColorEffect = "SSAOOriginalSceneColorEffect";
  77739. /**
  77740. * The SSAO PostProcess id in the pipeline
  77741. */
  77742. _this.SSAORenderEffect = "SSAORenderEffect";
  77743. /**
  77744. * The horizontal blur PostProcess id in the pipeline
  77745. */
  77746. _this.SSAOBlurHRenderEffect = "SSAOBlurHRenderEffect";
  77747. /**
  77748. * The vertical blur PostProcess id in the pipeline
  77749. */
  77750. _this.SSAOBlurVRenderEffect = "SSAOBlurVRenderEffect";
  77751. /**
  77752. * The PostProcess id in the pipeline that combines the SSAO-Blur output with the original scene color (SSAOOriginalSceneColorEffect)
  77753. */
  77754. _this.SSAOCombineRenderEffect = "SSAOCombineRenderEffect";
  77755. /**
  77756. * The output strength of the SSAO post-process. Default value is 1.0.
  77757. */
  77758. _this.totalStrength = 1.0;
  77759. /**
  77760. * Maximum depth value to still render AO. A smooth falloff makes the dimming more natural, so there will be no abrupt shading change.
  77761. */
  77762. _this.maxZ = 100.0;
  77763. /**
  77764. * In order to save performances, SSAO radius is clamped on close geometry. This ratio changes by how much
  77765. */
  77766. _this.minZAspect = 0.2;
  77767. _this._samples = 8;
  77768. _this._textureSamples = 1;
  77769. /**
  77770. * Are we using bilateral blur ?
  77771. */
  77772. _this._expensiveBlur = true;
  77773. /**
  77774. * The radius around the analyzed pixel used by the SSAO post-process. Default value is 2.0
  77775. */
  77776. _this.radius = 2.0;
  77777. /**
  77778. * The base color of the SSAO post-process
  77779. * The final result is "base + ssao" between [0, 1]
  77780. */
  77781. _this.base = 0;
  77782. _this._firstUpdate = true;
  77783. _this._bits = new Uint32Array(1);
  77784. _this._scene = scene;
  77785. _this._ratio = ratio;
  77786. if (!_this.isSupported) {
  77787. BABYLON.Tools.Error("SSAO 2 needs WebGL 2 support.");
  77788. return _this;
  77789. }
  77790. var ssaoRatio = _this._ratio.ssaoRatio || ratio;
  77791. var blurRatio = _this._ratio.blurRatio || ratio;
  77792. // Set up assets
  77793. var geometryBufferRenderer = scene.enableGeometryBufferRenderer();
  77794. _this._createRandomTexture();
  77795. _this._depthTexture = geometryBufferRenderer.getGBuffer().textures[0];
  77796. _this._normalTexture = geometryBufferRenderer.getGBuffer().textures[1];
  77797. _this._originalColorPostProcess = new BABYLON.PassPostProcess("SSAOOriginalSceneColor", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false);
  77798. _this._originalColorPostProcess.samples = _this.textureSamples;
  77799. _this._createSSAOPostProcess(1.0);
  77800. _this._createBlurPostProcess(ssaoRatio, blurRatio);
  77801. _this._createSSAOCombinePostProcess(blurRatio);
  77802. // Set up pipeline
  77803. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOOriginalSceneColorEffect, function () { return _this._originalColorPostProcess; }, true));
  77804. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAORenderEffect, function () { return _this._ssaoPostProcess; }, true));
  77805. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOBlurHRenderEffect, function () { return _this._blurHPostProcess; }, true));
  77806. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOBlurVRenderEffect, function () { return _this._blurVPostProcess; }, true));
  77807. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.SSAOCombineRenderEffect, function () { return _this._ssaoCombinePostProcess; }, true));
  77808. // Finish
  77809. scene.postProcessRenderPipelineManager.addPipeline(_this);
  77810. if (cameras)
  77811. scene.postProcessRenderPipelineManager.attachCamerasToRenderPipeline(name, cameras);
  77812. return _this;
  77813. }
  77814. Object.defineProperty(SSAO2RenderingPipeline.prototype, "samples", {
  77815. get: function () {
  77816. return this._samples;
  77817. },
  77818. /**
  77819. * Number of samples used for the SSAO calculations. Default value is 8
  77820. */
  77821. set: function (n) {
  77822. this._ssaoPostProcess.updateEffect("#define SAMPLES " + n + "\n#define SSAO");
  77823. this._samples = n;
  77824. this._sampleSphere = this._generateHemisphere();
  77825. this._firstUpdate = true;
  77826. },
  77827. enumerable: true,
  77828. configurable: true
  77829. });
  77830. Object.defineProperty(SSAO2RenderingPipeline.prototype, "textureSamples", {
  77831. get: function () {
  77832. return this._textureSamples;
  77833. },
  77834. /**
  77835. * Number of samples to use for antialiasing
  77836. */
  77837. set: function (n) {
  77838. this._textureSamples = n;
  77839. this._originalColorPostProcess.samples = n;
  77840. this._blurHPostProcess.samples = n;
  77841. this._blurVPostProcess.samples = n;
  77842. this._ssaoPostProcess.samples = n;
  77843. this._ssaoCombinePostProcess.samples = n;
  77844. },
  77845. enumerable: true,
  77846. configurable: true
  77847. });
  77848. Object.defineProperty(SSAO2RenderingPipeline.prototype, "expensiveBlur", {
  77849. get: function () {
  77850. return this._expensiveBlur;
  77851. },
  77852. set: function (b) {
  77853. this._blurHPostProcess.updateEffect("#define BILATERAL_BLUR\n#define BILATERAL_BLUR_H\n#define SAMPLES 16\n#define EXPENSIVE " + (b ? "1" : "0") + "\n", null, ["textureSampler", "depthSampler"]);
  77854. this._blurVPostProcess.updateEffect("#define BILATERAL_BLUR\n#define SAMPLES 16\n#define EXPENSIVE " + (b ? "1" : "0") + "\n", null, ["textureSampler", "depthSampler"]);
  77855. this._expensiveBlur = b;
  77856. this._firstUpdate = true;
  77857. },
  77858. enumerable: true,
  77859. configurable: true
  77860. });
  77861. Object.defineProperty(SSAO2RenderingPipeline, "IsSupported", {
  77862. /**
  77863. * Support test.
  77864. */
  77865. get: function () {
  77866. var engine = BABYLON.Engine.LastCreatedEngine;
  77867. if (!engine) {
  77868. return false;
  77869. }
  77870. return engine.getCaps().drawBuffersExtension;
  77871. },
  77872. enumerable: true,
  77873. configurable: true
  77874. });
  77875. // Public Methods
  77876. /**
  77877. * Removes the internal pipeline assets and detatches the pipeline from the scene cameras
  77878. */
  77879. SSAO2RenderingPipeline.prototype.dispose = function (disableGeometryBufferRenderer) {
  77880. if (disableGeometryBufferRenderer === void 0) { disableGeometryBufferRenderer = false; }
  77881. for (var i = 0; i < this._scene.cameras.length; i++) {
  77882. var camera = this._scene.cameras[i];
  77883. this._originalColorPostProcess.dispose(camera);
  77884. this._ssaoPostProcess.dispose(camera);
  77885. this._blurHPostProcess.dispose(camera);
  77886. this._blurVPostProcess.dispose(camera);
  77887. this._ssaoCombinePostProcess.dispose(camera);
  77888. }
  77889. this._randomTexture.dispose();
  77890. if (disableGeometryBufferRenderer)
  77891. this._scene.disableGeometryBufferRenderer();
  77892. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._scene.cameras);
  77893. _super.prototype.dispose.call(this);
  77894. };
  77895. // Private Methods
  77896. SSAO2RenderingPipeline.prototype._createBlurPostProcess = function (ssaoRatio, blurRatio) {
  77897. var _this = this;
  77898. this._samplerOffsets = [];
  77899. var expensive = this.expensiveBlur;
  77900. for (var i = -8; i < 8; i++) {
  77901. this._samplerOffsets.push(i * 2 + 0.5);
  77902. }
  77903. this._blurHPostProcess = new BABYLON.PostProcess("BlurH", "ssao2", ["outSize", "samplerOffsets", "near", "far", "radius"], ["depthSampler"], ssaoRatio, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, "#define BILATERAL_BLUR\n#define BILATERAL_BLUR_H\n#define SAMPLES 16\n#define EXPENSIVE " + (expensive ? "1" : "0") + "\n");
  77904. this._blurHPostProcess.onApply = function (effect) {
  77905. if (!_this._scene.activeCamera) {
  77906. return;
  77907. }
  77908. effect.setFloat("outSize", _this._ssaoCombinePostProcess.width > 0 ? _this._ssaoCombinePostProcess.width : _this._originalColorPostProcess.width);
  77909. effect.setFloat("near", _this._scene.activeCamera.minZ);
  77910. effect.setFloat("far", _this._scene.activeCamera.maxZ);
  77911. effect.setFloat("radius", _this.radius);
  77912. effect.setTexture("depthSampler", _this._depthTexture);
  77913. if (_this._firstUpdate) {
  77914. effect.setArray("samplerOffsets", _this._samplerOffsets);
  77915. }
  77916. };
  77917. this._blurVPostProcess = new BABYLON.PostProcess("BlurV", "ssao2", ["outSize", "samplerOffsets", "near", "far", "radius"], ["depthSampler"], blurRatio, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, "#define BILATERAL_BLUR\n#define BILATERAL_BLUR_V\n#define SAMPLES 16\n#define EXPENSIVE " + (expensive ? "1" : "0") + "\n");
  77918. this._blurVPostProcess.onApply = function (effect) {
  77919. if (!_this._scene.activeCamera) {
  77920. return;
  77921. }
  77922. effect.setFloat("outSize", _this._ssaoCombinePostProcess.height > 0 ? _this._ssaoCombinePostProcess.height : _this._originalColorPostProcess.height);
  77923. effect.setFloat("near", _this._scene.activeCamera.minZ);
  77924. effect.setFloat("far", _this._scene.activeCamera.maxZ);
  77925. effect.setFloat("radius", _this.radius);
  77926. effect.setTexture("depthSampler", _this._depthTexture);
  77927. if (_this._firstUpdate) {
  77928. effect.setArray("samplerOffsets", _this._samplerOffsets);
  77929. _this._firstUpdate = false;
  77930. }
  77931. };
  77932. this._blurHPostProcess.samples = this.textureSamples;
  77933. this._blurVPostProcess.samples = this.textureSamples;
  77934. };
  77935. /** @hidden */
  77936. SSAO2RenderingPipeline.prototype._rebuild = function () {
  77937. this._firstUpdate = true;
  77938. _super.prototype._rebuild.call(this);
  77939. };
  77940. //Van der Corput radical inverse
  77941. SSAO2RenderingPipeline.prototype._radicalInverse_VdC = function (i) {
  77942. this._bits[0] = i;
  77943. this._bits[0] = ((this._bits[0] << 16) | (this._bits[0] >> 16)) >>> 0;
  77944. this._bits[0] = ((this._bits[0] & 0x55555555) << 1) | ((this._bits[0] & 0xAAAAAAAA) >>> 1) >>> 0;
  77945. this._bits[0] = ((this._bits[0] & 0x33333333) << 2) | ((this._bits[0] & 0xCCCCCCCC) >>> 2) >>> 0;
  77946. this._bits[0] = ((this._bits[0] & 0x0F0F0F0F) << 4) | ((this._bits[0] & 0xF0F0F0F0) >>> 4) >>> 0;
  77947. this._bits[0] = ((this._bits[0] & 0x00FF00FF) << 8) | ((this._bits[0] & 0xFF00FF00) >>> 8) >>> 0;
  77948. return this._bits[0] * 2.3283064365386963e-10; // / 0x100000000 or / 4294967296
  77949. };
  77950. SSAO2RenderingPipeline.prototype._hammersley = function (i, n) {
  77951. return [i / n, this._radicalInverse_VdC(i)];
  77952. };
  77953. SSAO2RenderingPipeline.prototype._hemisphereSample_uniform = function (u, v) {
  77954. var phi = v * 2.0 * Math.PI;
  77955. // rejecting samples that are close to tangent plane to avoid z-fighting artifacts
  77956. var cosTheta = 1.0 - (u * 0.85 + 0.15);
  77957. var sinTheta = Math.sqrt(1.0 - cosTheta * cosTheta);
  77958. return new BABYLON.Vector3(Math.cos(phi) * sinTheta, Math.sin(phi) * sinTheta, cosTheta);
  77959. };
  77960. SSAO2RenderingPipeline.prototype._generateHemisphere = function () {
  77961. var numSamples = this.samples;
  77962. var result = [];
  77963. var vector;
  77964. var i = 0;
  77965. while (i < numSamples) {
  77966. if (numSamples < 16) {
  77967. vector = this._hemisphereSample_uniform(Math.random(), Math.random());
  77968. }
  77969. else {
  77970. var rand = this._hammersley(i, numSamples);
  77971. vector = this._hemisphereSample_uniform(rand[0], rand[1]);
  77972. }
  77973. result.push(vector.x, vector.y, vector.z);
  77974. i++;
  77975. }
  77976. return result;
  77977. };
  77978. SSAO2RenderingPipeline.prototype._createSSAOPostProcess = function (ratio) {
  77979. var _this = this;
  77980. var numSamples = this.samples;
  77981. this._sampleSphere = this._generateHemisphere();
  77982. this._ssaoPostProcess = new BABYLON.PostProcess("ssao2", "ssao2", [
  77983. "sampleSphere", "samplesFactor", "randTextureTiles", "totalStrength", "radius",
  77984. "base", "range", "projection", "near", "far", "texelSize",
  77985. "xViewport", "yViewport", "maxZ", "minZAspect"
  77986. ], ["randomSampler", "normalSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, "#define SAMPLES " + numSamples + "\n#define SSAO");
  77987. this._ssaoPostProcess.onApply = function (effect) {
  77988. if (_this._firstUpdate) {
  77989. effect.setArray3("sampleSphere", _this._sampleSphere);
  77990. effect.setFloat("randTextureTiles", 32.0);
  77991. }
  77992. if (!_this._scene.activeCamera) {
  77993. return;
  77994. }
  77995. effect.setFloat("samplesFactor", 1 / _this.samples);
  77996. effect.setFloat("totalStrength", _this.totalStrength);
  77997. effect.setFloat2("texelSize", 1 / _this._ssaoPostProcess.width, 1 / _this._ssaoPostProcess.height);
  77998. effect.setFloat("radius", _this.radius);
  77999. effect.setFloat("maxZ", _this.maxZ);
  78000. effect.setFloat("minZAspect", _this.minZAspect);
  78001. effect.setFloat("base", _this.base);
  78002. effect.setFloat("near", _this._scene.activeCamera.minZ);
  78003. effect.setFloat("far", _this._scene.activeCamera.maxZ);
  78004. effect.setFloat("xViewport", Math.tan(_this._scene.activeCamera.fov / 2) * _this._scene.getEngine().getAspectRatio(_this._scene.activeCamera, true));
  78005. effect.setFloat("yViewport", Math.tan(_this._scene.activeCamera.fov / 2));
  78006. effect.setMatrix("projection", _this._scene.getProjectionMatrix());
  78007. effect.setTexture("textureSampler", _this._depthTexture);
  78008. effect.setTexture("normalSampler", _this._normalTexture);
  78009. effect.setTexture("randomSampler", _this._randomTexture);
  78010. };
  78011. this._ssaoPostProcess.samples = this.textureSamples;
  78012. };
  78013. SSAO2RenderingPipeline.prototype._createSSAOCombinePostProcess = function (ratio) {
  78014. var _this = this;
  78015. this._ssaoCombinePostProcess = new BABYLON.PostProcess("ssaoCombine", "ssaoCombine", [], ["originalColor", "viewport"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false);
  78016. this._ssaoCombinePostProcess.onApply = function (effect) {
  78017. var viewport = _this._scene.activeCamera.viewport;
  78018. effect.setVector4("viewport", BABYLON.Tmp.Vector4[0].copyFromFloats(viewport.x, viewport.y, viewport.width, viewport.height));
  78019. effect.setTextureFromPostProcess("originalColor", _this._originalColorPostProcess);
  78020. };
  78021. this._ssaoCombinePostProcess.samples = this.textureSamples;
  78022. };
  78023. SSAO2RenderingPipeline.prototype._createRandomTexture = function () {
  78024. var size = 128;
  78025. this._randomTexture = new BABYLON.DynamicTexture("SSAORandomTexture", size, this._scene, false, BABYLON.Texture.TRILINEAR_SAMPLINGMODE);
  78026. this._randomTexture.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  78027. this._randomTexture.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  78028. var context = this._randomTexture.getContext();
  78029. var rand = function (min, max) {
  78030. return Math.random() * (max - min) + min;
  78031. };
  78032. var randVector = BABYLON.Vector3.Zero();
  78033. for (var x = 0; x < size; x++) {
  78034. for (var y = 0; y < size; y++) {
  78035. randVector.x = rand(0.0, 1.0);
  78036. randVector.y = rand(0.0, 1.0);
  78037. randVector.z = 0.0;
  78038. randVector.normalize();
  78039. randVector.scaleInPlace(255);
  78040. randVector.x = Math.floor(randVector.x);
  78041. randVector.y = Math.floor(randVector.y);
  78042. context.fillStyle = 'rgb(' + randVector.x + ', ' + randVector.y + ', ' + randVector.z + ')';
  78043. context.fillRect(x, y, 1, 1);
  78044. }
  78045. }
  78046. this._randomTexture.update(false);
  78047. };
  78048. /**
  78049. * Serialize the rendering pipeline (Used when exporting)
  78050. * @returns the serialized object
  78051. */
  78052. SSAO2RenderingPipeline.prototype.serialize = function () {
  78053. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  78054. serializationObject.customType = "SSAO2RenderingPipeline";
  78055. return serializationObject;
  78056. };
  78057. /**
  78058. * Parse the serialized pipeline
  78059. * @param source Source pipeline.
  78060. * @param scene The scene to load the pipeline to.
  78061. * @param rootUrl The URL of the serialized pipeline.
  78062. * @returns An instantiated pipeline from the serialized object.
  78063. */
  78064. SSAO2RenderingPipeline.Parse = function (source, scene, rootUrl) {
  78065. return BABYLON.SerializationHelper.Parse(function () { return new SSAO2RenderingPipeline(source._name, scene, source._ratio); }, source, scene, rootUrl);
  78066. };
  78067. __decorate([
  78068. BABYLON.serialize()
  78069. ], SSAO2RenderingPipeline.prototype, "totalStrength", void 0);
  78070. __decorate([
  78071. BABYLON.serialize()
  78072. ], SSAO2RenderingPipeline.prototype, "maxZ", void 0);
  78073. __decorate([
  78074. BABYLON.serialize()
  78075. ], SSAO2RenderingPipeline.prototype, "minZAspect", void 0);
  78076. __decorate([
  78077. BABYLON.serialize("samples")
  78078. ], SSAO2RenderingPipeline.prototype, "_samples", void 0);
  78079. __decorate([
  78080. BABYLON.serialize("textureSamples")
  78081. ], SSAO2RenderingPipeline.prototype, "_textureSamples", void 0);
  78082. __decorate([
  78083. BABYLON.serialize()
  78084. ], SSAO2RenderingPipeline.prototype, "_ratio", void 0);
  78085. __decorate([
  78086. BABYLON.serialize("expensiveBlur")
  78087. ], SSAO2RenderingPipeline.prototype, "_expensiveBlur", void 0);
  78088. __decorate([
  78089. BABYLON.serialize()
  78090. ], SSAO2RenderingPipeline.prototype, "radius", void 0);
  78091. __decorate([
  78092. BABYLON.serialize()
  78093. ], SSAO2RenderingPipeline.prototype, "base", void 0);
  78094. return SSAO2RenderingPipeline;
  78095. }(BABYLON.PostProcessRenderPipeline));
  78096. BABYLON.SSAO2RenderingPipeline = SSAO2RenderingPipeline;
  78097. })(BABYLON || (BABYLON = {}));
  78098. //# sourceMappingURL=babylon.ssao2RenderingPipeline.js.map
  78099. // BABYLON.JS Chromatic Aberration GLSL Shader
  78100. // Author: Olivier Guyot
  78101. // Separates very slightly R, G and B colors on the edges of the screen
  78102. // Inspired by Francois Tarlier & Martins Upitis
  78103. var BABYLON;
  78104. (function (BABYLON) {
  78105. var LensRenderingPipeline = /** @class */ (function (_super) {
  78106. __extends(LensRenderingPipeline, _super);
  78107. /**
  78108. * @constructor
  78109. *
  78110. * Effect parameters are as follow:
  78111. * {
  78112. * chromatic_aberration: number; // from 0 to x (1 for realism)
  78113. * edge_blur: number; // from 0 to x (1 for realism)
  78114. * distortion: number; // from 0 to x (1 for realism)
  78115. * grain_amount: number; // from 0 to 1
  78116. * grain_texture: BABYLON.Texture; // texture to use for grain effect; if unset, use random B&W noise
  78117. * dof_focus_distance: number; // depth-of-field: focus distance; unset to disable (disabled by default)
  78118. * dof_aperture: number; // depth-of-field: focus blur bias (default: 1)
  78119. * dof_darken: number; // depth-of-field: darken that which is out of focus (from 0 to 1, disabled by default)
  78120. * dof_pentagon: boolean; // depth-of-field: makes a pentagon-like "bokeh" effect
  78121. * dof_gain: number; // depth-of-field: highlights gain; unset to disable (disabled by default)
  78122. * dof_threshold: number; // depth-of-field: highlights threshold (default: 1)
  78123. * blur_noise: boolean; // add a little bit of noise to the blur (default: true)
  78124. * }
  78125. * Note: if an effect parameter is unset, effect is disabled
  78126. *
  78127. * @param {string} name - The rendering pipeline name
  78128. * @param {object} parameters - An object containing all parameters (see above)
  78129. * @param {BABYLON.Scene} scene - The scene linked to this pipeline
  78130. * @param {number} ratio - The size of the postprocesses (0.5 means that your postprocess will have a width = canvas.width 0.5 and a height = canvas.height 0.5)
  78131. * @param {BABYLON.Camera[]} cameras - The array of cameras that the rendering pipeline will be attached to
  78132. */
  78133. function LensRenderingPipeline(name, parameters, scene, ratio, cameras) {
  78134. if (ratio === void 0) { ratio = 1.0; }
  78135. var _this = _super.call(this, scene.getEngine(), name) || this;
  78136. // Lens effects can be of the following:
  78137. // - chromatic aberration (slight shift of RGB colors)
  78138. // - blur on the edge of the lens
  78139. // - lens distortion
  78140. // - depth-of-field blur & highlights enhancing
  78141. // - depth-of-field 'bokeh' effect (shapes appearing in blurred areas)
  78142. // - grain effect (noise or custom texture)
  78143. // Two additional texture samplers are needed:
  78144. // - depth map (for depth-of-field)
  78145. // - grain texture
  78146. /**
  78147. * The chromatic aberration PostProcess id in the pipeline
  78148. */
  78149. _this.LensChromaticAberrationEffect = "LensChromaticAberrationEffect";
  78150. /**
  78151. * The highlights enhancing PostProcess id in the pipeline
  78152. */
  78153. _this.HighlightsEnhancingEffect = "HighlightsEnhancingEffect";
  78154. /**
  78155. * The depth-of-field PostProcess id in the pipeline
  78156. */
  78157. _this.LensDepthOfFieldEffect = "LensDepthOfFieldEffect";
  78158. _this._scene = scene;
  78159. // Fetch texture samplers
  78160. _this._depthTexture = scene.enableDepthRenderer().getDepthMap(); // Force depth renderer "on"
  78161. if (parameters.grain_texture) {
  78162. _this._grainTexture = parameters.grain_texture;
  78163. }
  78164. else {
  78165. _this._createGrainTexture();
  78166. }
  78167. // save parameters
  78168. _this._edgeBlur = parameters.edge_blur ? parameters.edge_blur : 0;
  78169. _this._grainAmount = parameters.grain_amount ? parameters.grain_amount : 0;
  78170. _this._chromaticAberration = parameters.chromatic_aberration ? parameters.chromatic_aberration : 0;
  78171. _this._distortion = parameters.distortion ? parameters.distortion : 0;
  78172. _this._highlightsGain = parameters.dof_gain !== undefined ? parameters.dof_gain : -1;
  78173. _this._highlightsThreshold = parameters.dof_threshold ? parameters.dof_threshold : 1;
  78174. _this._dofDistance = parameters.dof_focus_distance !== undefined ? parameters.dof_focus_distance : -1;
  78175. _this._dofAperture = parameters.dof_aperture ? parameters.dof_aperture : 1;
  78176. _this._dofDarken = parameters.dof_darken ? parameters.dof_darken : 0;
  78177. _this._dofPentagon = parameters.dof_pentagon !== undefined ? parameters.dof_pentagon : true;
  78178. _this._blurNoise = parameters.blur_noise !== undefined ? parameters.blur_noise : true;
  78179. // Create effects
  78180. _this._createChromaticAberrationPostProcess(ratio);
  78181. _this._createHighlightsPostProcess(ratio);
  78182. _this._createDepthOfFieldPostProcess(ratio / 4);
  78183. // Set up pipeline
  78184. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.LensChromaticAberrationEffect, function () { return _this._chromaticAberrationPostProcess; }, true));
  78185. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.HighlightsEnhancingEffect, function () { return _this._highlightsPostProcess; }, true));
  78186. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), _this.LensDepthOfFieldEffect, function () { return _this._depthOfFieldPostProcess; }, true));
  78187. if (_this._highlightsGain === -1) {
  78188. _this._disableEffect(_this.HighlightsEnhancingEffect, null);
  78189. }
  78190. // Finish
  78191. scene.postProcessRenderPipelineManager.addPipeline(_this);
  78192. if (cameras) {
  78193. scene.postProcessRenderPipelineManager.attachCamerasToRenderPipeline(name, cameras);
  78194. }
  78195. return _this;
  78196. }
  78197. // public methods (self explanatory)
  78198. LensRenderingPipeline.prototype.setEdgeBlur = function (amount) { this._edgeBlur = amount; };
  78199. LensRenderingPipeline.prototype.disableEdgeBlur = function () { this._edgeBlur = 0; };
  78200. LensRenderingPipeline.prototype.setGrainAmount = function (amount) { this._grainAmount = amount; };
  78201. LensRenderingPipeline.prototype.disableGrain = function () { this._grainAmount = 0; };
  78202. LensRenderingPipeline.prototype.setChromaticAberration = function (amount) { this._chromaticAberration = amount; };
  78203. LensRenderingPipeline.prototype.disableChromaticAberration = function () { this._chromaticAberration = 0; };
  78204. LensRenderingPipeline.prototype.setEdgeDistortion = function (amount) { this._distortion = amount; };
  78205. LensRenderingPipeline.prototype.disableEdgeDistortion = function () { this._distortion = 0; };
  78206. LensRenderingPipeline.prototype.setFocusDistance = function (amount) { this._dofDistance = amount; };
  78207. LensRenderingPipeline.prototype.disableDepthOfField = function () { this._dofDistance = -1; };
  78208. LensRenderingPipeline.prototype.setAperture = function (amount) { this._dofAperture = amount; };
  78209. LensRenderingPipeline.prototype.setDarkenOutOfFocus = function (amount) { this._dofDarken = amount; };
  78210. LensRenderingPipeline.prototype.enablePentagonBokeh = function () {
  78211. this._highlightsPostProcess.updateEffect("#define PENTAGON\n");
  78212. };
  78213. LensRenderingPipeline.prototype.disablePentagonBokeh = function () {
  78214. this._highlightsPostProcess.updateEffect();
  78215. };
  78216. LensRenderingPipeline.prototype.enableNoiseBlur = function () { this._blurNoise = true; };
  78217. LensRenderingPipeline.prototype.disableNoiseBlur = function () { this._blurNoise = false; };
  78218. LensRenderingPipeline.prototype.setHighlightsGain = function (amount) {
  78219. this._highlightsGain = amount;
  78220. };
  78221. LensRenderingPipeline.prototype.setHighlightsThreshold = function (amount) {
  78222. if (this._highlightsGain === -1) {
  78223. this._highlightsGain = 1.0;
  78224. }
  78225. this._highlightsThreshold = amount;
  78226. };
  78227. LensRenderingPipeline.prototype.disableHighlights = function () {
  78228. this._highlightsGain = -1;
  78229. };
  78230. /**
  78231. * Removes the internal pipeline assets and detaches the pipeline from the scene cameras
  78232. */
  78233. LensRenderingPipeline.prototype.dispose = function (disableDepthRender) {
  78234. if (disableDepthRender === void 0) { disableDepthRender = false; }
  78235. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._scene.cameras);
  78236. this._chromaticAberrationPostProcess = null;
  78237. this._highlightsPostProcess = null;
  78238. this._depthOfFieldPostProcess = null;
  78239. this._grainTexture.dispose();
  78240. if (disableDepthRender)
  78241. this._scene.disableDepthRenderer();
  78242. };
  78243. // colors shifting and distortion
  78244. LensRenderingPipeline.prototype._createChromaticAberrationPostProcess = function (ratio) {
  78245. var _this = this;
  78246. this._chromaticAberrationPostProcess = new BABYLON.PostProcess("LensChromaticAberration", "chromaticAberration", ["chromatic_aberration", "screen_width", "screen_height", "direction", "radialIntensity", "centerPosition"], // uniforms
  78247. [], // samplers
  78248. ratio, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, this._scene.getEngine(), false);
  78249. this._chromaticAberrationPostProcess.onApply = function (effect) {
  78250. effect.setFloat('chromatic_aberration', _this._chromaticAberration);
  78251. effect.setFloat('screen_width', _this._scene.getEngine().getRenderWidth());
  78252. effect.setFloat('screen_height', _this._scene.getEngine().getRenderHeight());
  78253. effect.setFloat('radialIntensity', 1);
  78254. effect.setFloat2('direction', 17, 17);
  78255. effect.setFloat2('centerPosition', 0.5, 0.5);
  78256. };
  78257. };
  78258. // highlights enhancing
  78259. LensRenderingPipeline.prototype._createHighlightsPostProcess = function (ratio) {
  78260. var _this = this;
  78261. this._highlightsPostProcess = new BABYLON.PostProcess("LensHighlights", "lensHighlights", ["gain", "threshold", "screen_width", "screen_height"], // uniforms
  78262. [], // samplers
  78263. ratio, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, this._dofPentagon ? "#define PENTAGON\n" : "");
  78264. this._highlightsPostProcess.onApply = function (effect) {
  78265. effect.setFloat('gain', _this._highlightsGain);
  78266. effect.setFloat('threshold', _this._highlightsThreshold);
  78267. effect.setTextureFromPostProcess("textureSampler", _this._chromaticAberrationPostProcess);
  78268. effect.setFloat('screen_width', _this._scene.getEngine().getRenderWidth());
  78269. effect.setFloat('screen_height', _this._scene.getEngine().getRenderHeight());
  78270. };
  78271. };
  78272. // colors shifting and distortion
  78273. LensRenderingPipeline.prototype._createDepthOfFieldPostProcess = function (ratio) {
  78274. var _this = this;
  78275. this._depthOfFieldPostProcess = new BABYLON.PostProcess("LensDepthOfField", "depthOfField", [
  78276. "grain_amount", "blur_noise", "screen_width", "screen_height", "distortion", "dof_enabled",
  78277. "screen_distance", "aperture", "darken", "edge_blur", "highlights", "near", "far"
  78278. ], ["depthSampler", "grainSampler", "highlightsSampler"], ratio, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, this._scene.getEngine(), false);
  78279. this._depthOfFieldPostProcess.onApply = function (effect) {
  78280. effect.setTexture("depthSampler", _this._depthTexture);
  78281. effect.setTexture("grainSampler", _this._grainTexture);
  78282. effect.setTextureFromPostProcess("textureSampler", _this._highlightsPostProcess);
  78283. effect.setTextureFromPostProcess("highlightsSampler", _this._depthOfFieldPostProcess);
  78284. effect.setFloat('grain_amount', _this._grainAmount);
  78285. effect.setBool('blur_noise', _this._blurNoise);
  78286. effect.setFloat('screen_width', _this._scene.getEngine().getRenderWidth());
  78287. effect.setFloat('screen_height', _this._scene.getEngine().getRenderHeight());
  78288. effect.setFloat('distortion', _this._distortion);
  78289. effect.setBool('dof_enabled', (_this._dofDistance !== -1));
  78290. effect.setFloat('screen_distance', 1.0 / (0.1 - 1.0 / _this._dofDistance));
  78291. effect.setFloat('aperture', _this._dofAperture);
  78292. effect.setFloat('darken', _this._dofDarken);
  78293. effect.setFloat('edge_blur', _this._edgeBlur);
  78294. effect.setBool('highlights', (_this._highlightsGain !== -1));
  78295. if (_this._scene.activeCamera) {
  78296. effect.setFloat('near', _this._scene.activeCamera.minZ);
  78297. effect.setFloat('far', _this._scene.activeCamera.maxZ);
  78298. }
  78299. };
  78300. };
  78301. // creates a black and white random noise texture, 512x512
  78302. LensRenderingPipeline.prototype._createGrainTexture = function () {
  78303. var size = 512;
  78304. this._grainTexture = new BABYLON.DynamicTexture("LensNoiseTexture", size, this._scene, false, BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  78305. this._grainTexture.wrapU = BABYLON.Texture.WRAP_ADDRESSMODE;
  78306. this._grainTexture.wrapV = BABYLON.Texture.WRAP_ADDRESSMODE;
  78307. var context = this._grainTexture.getContext();
  78308. var rand = function (min, max) {
  78309. return Math.random() * (max - min) + min;
  78310. };
  78311. var value;
  78312. for (var x = 0; x < size; x++) {
  78313. for (var y = 0; y < size; y++) {
  78314. value = Math.floor(rand(0.42, 0.58) * 255);
  78315. context.fillStyle = 'rgb(' + value + ', ' + value + ', ' + value + ')';
  78316. context.fillRect(x, y, 1, 1);
  78317. }
  78318. }
  78319. this._grainTexture.update(false);
  78320. };
  78321. return LensRenderingPipeline;
  78322. }(BABYLON.PostProcessRenderPipeline));
  78323. BABYLON.LensRenderingPipeline = LensRenderingPipeline;
  78324. })(BABYLON || (BABYLON = {}));
  78325. //# sourceMappingURL=babylon.lensRenderingPipeline.js.map
  78326. var BABYLON;
  78327. (function (BABYLON) {
  78328. var StandardRenderingPipeline = /** @class */ (function (_super) {
  78329. __extends(StandardRenderingPipeline, _super);
  78330. /**
  78331. * @constructor
  78332. * @param {string} name - The rendering pipeline name
  78333. * @param {BABYLON.Scene} scene - The scene linked to this pipeline
  78334. * @param {any} ratio - The size of the postprocesses (0.5 means that your postprocess will have a width = canvas.width 0.5 and a height = canvas.height 0.5)
  78335. * @param {BABYLON.PostProcess} originalPostProcess - the custom original color post-process. Must be "reusable". Can be null.
  78336. * @param {BABYLON.Camera[]} cameras - The array of cameras that the rendering pipeline will be attached to
  78337. */
  78338. function StandardRenderingPipeline(name, scene, ratio, originalPostProcess, cameras) {
  78339. if (originalPostProcess === void 0) { originalPostProcess = null; }
  78340. var _this = _super.call(this, scene.getEngine(), name) || this;
  78341. /**
  78342. * Post-process used to down scale an image x4
  78343. */
  78344. _this.downSampleX4PostProcess = null;
  78345. /**
  78346. * Post-process used to calculate the illuminated surfaces controlled by a threshold
  78347. */
  78348. _this.brightPassPostProcess = null;
  78349. /**
  78350. * Post-process array storing all the horizontal blur post-processes used by the pipeline
  78351. */
  78352. _this.blurHPostProcesses = [];
  78353. /**
  78354. * Post-process array storing all the vertical blur post-processes used by the pipeline
  78355. */
  78356. _this.blurVPostProcesses = [];
  78357. /**
  78358. * Post-process used to add colors of 2 textures (typically brightness + real scene color)
  78359. */
  78360. _this.textureAdderPostProcess = null;
  78361. /**
  78362. * Post-process used to create volumetric lighting effect
  78363. */
  78364. _this.volumetricLightPostProcess = null;
  78365. /**
  78366. * Post-process used to smooth the previous volumetric light post-process on the X axis
  78367. */
  78368. _this.volumetricLightSmoothXPostProcess = null;
  78369. /**
  78370. * Post-process used to smooth the previous volumetric light post-process on the Y axis
  78371. */
  78372. _this.volumetricLightSmoothYPostProcess = null;
  78373. /**
  78374. * Post-process used to merge the volumetric light effect and the real scene color
  78375. */
  78376. _this.volumetricLightMergePostProces = null;
  78377. /**
  78378. * Post-process used to store the final volumetric light post-process (attach/detach for debug purpose)
  78379. */
  78380. _this.volumetricLightFinalPostProcess = null;
  78381. /**
  78382. * Base post-process used to calculate the average luminance of the final image for HDR
  78383. */
  78384. _this.luminancePostProcess = null;
  78385. /**
  78386. * Post-processes used to create down sample post-processes in order to get
  78387. * the average luminance of the final image for HDR
  78388. * Array of length "StandardRenderingPipeline.LuminanceSteps"
  78389. */
  78390. _this.luminanceDownSamplePostProcesses = [];
  78391. /**
  78392. * Post-process used to create a HDR effect (light adaptation)
  78393. */
  78394. _this.hdrPostProcess = null;
  78395. /**
  78396. * Post-process used to store the final texture adder post-process (attach/detach for debug purpose)
  78397. */
  78398. _this.textureAdderFinalPostProcess = null;
  78399. /**
  78400. * Post-process used to store the final lens flare post-process (attach/detach for debug purpose)
  78401. */
  78402. _this.lensFlareFinalPostProcess = null;
  78403. /**
  78404. * Post-process used to merge the final HDR post-process and the real scene color
  78405. */
  78406. _this.hdrFinalPostProcess = null;
  78407. /**
  78408. * Post-process used to create a lens flare effect
  78409. */
  78410. _this.lensFlarePostProcess = null;
  78411. /**
  78412. * Post-process that merges the result of the lens flare post-process and the real scene color
  78413. */
  78414. _this.lensFlareComposePostProcess = null;
  78415. /**
  78416. * Post-process used to create a motion blur effect
  78417. */
  78418. _this.motionBlurPostProcess = null;
  78419. /**
  78420. * Post-process used to create a depth of field effect
  78421. */
  78422. _this.depthOfFieldPostProcess = null;
  78423. /**
  78424. * The Fast Approximate Anti-Aliasing post process which attemps to remove aliasing from an image.
  78425. */
  78426. _this.fxaaPostProcess = null;
  78427. // Values
  78428. /**
  78429. * Represents the brightness threshold in order to configure the illuminated surfaces
  78430. */
  78431. _this.brightThreshold = 1.0;
  78432. /**
  78433. * Configures the blur intensity used for surexposed surfaces are highlighted surfaces (light halo)
  78434. */
  78435. _this.blurWidth = 512.0;
  78436. /**
  78437. * Sets if the blur for highlighted surfaces must be only horizontal
  78438. */
  78439. _this.horizontalBlur = false;
  78440. /**
  78441. * Sets the overall exposure used by the pipeline
  78442. */
  78443. _this.exposure = 1.0;
  78444. /**
  78445. * Texture used typically to simulate "dirty" on camera lens
  78446. */
  78447. _this.lensTexture = null;
  78448. /**
  78449. * Represents the offset coefficient based on Rayleigh principle. Typically in interval [-0.2, 0.2]
  78450. */
  78451. _this.volumetricLightCoefficient = 0.2;
  78452. /**
  78453. * The overall power of volumetric lights, typically in interval [0, 10] maximum
  78454. */
  78455. _this.volumetricLightPower = 4.0;
  78456. /**
  78457. * Used the set the blur intensity to smooth the volumetric lights
  78458. */
  78459. _this.volumetricLightBlurScale = 64.0;
  78460. /**
  78461. * Light (spot or directional) used to generate the volumetric lights rays
  78462. * The source light must have a shadow generate so the pipeline can get its
  78463. * depth map
  78464. */
  78465. _this.sourceLight = null;
  78466. /**
  78467. * For eye adaptation, represents the minimum luminance the eye can see
  78468. */
  78469. _this.hdrMinimumLuminance = 1.0;
  78470. /**
  78471. * For eye adaptation, represents the decrease luminance speed
  78472. */
  78473. _this.hdrDecreaseRate = 0.5;
  78474. /**
  78475. * For eye adaptation, represents the increase luminance speed
  78476. */
  78477. _this.hdrIncreaseRate = 0.5;
  78478. /**
  78479. * Lens color texture used by the lens flare effect. Mandatory if lens flare effect enabled
  78480. */
  78481. _this.lensColorTexture = null;
  78482. /**
  78483. * The overall strengh for the lens flare effect
  78484. */
  78485. _this.lensFlareStrength = 20.0;
  78486. /**
  78487. * Dispersion coefficient for lens flare ghosts
  78488. */
  78489. _this.lensFlareGhostDispersal = 1.4;
  78490. /**
  78491. * Main lens flare halo width
  78492. */
  78493. _this.lensFlareHaloWidth = 0.7;
  78494. /**
  78495. * Based on the lens distortion effect, defines how much the lens flare result
  78496. * is distorted
  78497. */
  78498. _this.lensFlareDistortionStrength = 16.0;
  78499. /**
  78500. * Lens star texture must be used to simulate rays on the flares and is available
  78501. * in the documentation
  78502. */
  78503. _this.lensStarTexture = null;
  78504. /**
  78505. * As the "lensTexture" (can be the same texture or different), it is used to apply the lens
  78506. * flare effect by taking account of the dirt texture
  78507. */
  78508. _this.lensFlareDirtTexture = null;
  78509. /**
  78510. * Represents the focal length for the depth of field effect
  78511. */
  78512. _this.depthOfFieldDistance = 10.0;
  78513. /**
  78514. * Represents the blur intensity for the blurred part of the depth of field effect
  78515. */
  78516. _this.depthOfFieldBlurWidth = 64.0;
  78517. /**
  78518. * For motion blur, defines how much the image is blurred by the movement
  78519. */
  78520. _this.motionStrength = 1.0;
  78521. /**
  78522. * List of animations for the pipeline (IAnimatable implementation)
  78523. */
  78524. _this.animations = [];
  78525. _this._currentDepthOfFieldSource = null;
  78526. _this._hdrCurrentLuminance = 1.0;
  78527. // Getters and setters
  78528. _this._bloomEnabled = false;
  78529. _this._depthOfFieldEnabled = false;
  78530. _this._vlsEnabled = false;
  78531. _this._lensFlareEnabled = false;
  78532. _this._hdrEnabled = false;
  78533. _this._motionBlurEnabled = false;
  78534. _this._fxaaEnabled = false;
  78535. _this._motionBlurSamples = 64.0;
  78536. _this._volumetricLightStepsCount = 50.0;
  78537. _this._samples = 1;
  78538. _this._cameras = cameras || [];
  78539. // Initialize
  78540. _this._scene = scene;
  78541. _this._basePostProcess = originalPostProcess;
  78542. _this._ratio = ratio;
  78543. // Misc
  78544. _this._floatTextureType = scene.getEngine().getCaps().textureFloatRender ? BABYLON.Engine.TEXTURETYPE_FLOAT : BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  78545. // Finish
  78546. scene.postProcessRenderPipelineManager.addPipeline(_this);
  78547. _this._buildPipeline();
  78548. return _this;
  78549. }
  78550. Object.defineProperty(StandardRenderingPipeline.prototype, "BloomEnabled", {
  78551. /**
  78552. * Specifies if the bloom pipeline is enabled
  78553. */
  78554. get: function () {
  78555. return this._bloomEnabled;
  78556. },
  78557. set: function (enabled) {
  78558. if (this._bloomEnabled === enabled) {
  78559. return;
  78560. }
  78561. this._bloomEnabled = enabled;
  78562. this._buildPipeline();
  78563. },
  78564. enumerable: true,
  78565. configurable: true
  78566. });
  78567. Object.defineProperty(StandardRenderingPipeline.prototype, "DepthOfFieldEnabled", {
  78568. /**
  78569. * Specifies if the depth of field pipeline is enabed
  78570. */
  78571. get: function () {
  78572. return this._depthOfFieldEnabled;
  78573. },
  78574. set: function (enabled) {
  78575. if (this._depthOfFieldEnabled === enabled) {
  78576. return;
  78577. }
  78578. this._depthOfFieldEnabled = enabled;
  78579. this._buildPipeline();
  78580. },
  78581. enumerable: true,
  78582. configurable: true
  78583. });
  78584. Object.defineProperty(StandardRenderingPipeline.prototype, "LensFlareEnabled", {
  78585. /**
  78586. * Specifies if the lens flare pipeline is enabed
  78587. */
  78588. get: function () {
  78589. return this._lensFlareEnabled;
  78590. },
  78591. set: function (enabled) {
  78592. if (this._lensFlareEnabled === enabled) {
  78593. return;
  78594. }
  78595. this._lensFlareEnabled = enabled;
  78596. this._buildPipeline();
  78597. },
  78598. enumerable: true,
  78599. configurable: true
  78600. });
  78601. Object.defineProperty(StandardRenderingPipeline.prototype, "HDREnabled", {
  78602. /**
  78603. * Specifies if the HDR pipeline is enabled
  78604. */
  78605. get: function () {
  78606. return this._hdrEnabled;
  78607. },
  78608. set: function (enabled) {
  78609. if (this._hdrEnabled === enabled) {
  78610. return;
  78611. }
  78612. this._hdrEnabled = enabled;
  78613. this._buildPipeline();
  78614. },
  78615. enumerable: true,
  78616. configurable: true
  78617. });
  78618. Object.defineProperty(StandardRenderingPipeline.prototype, "VLSEnabled", {
  78619. /**
  78620. * Specifies if the volumetric lights scattering effect is enabled
  78621. */
  78622. get: function () {
  78623. return this._vlsEnabled;
  78624. },
  78625. set: function (enabled) {
  78626. if (this._vlsEnabled === enabled) {
  78627. return;
  78628. }
  78629. if (enabled) {
  78630. var geometry = this._scene.enableGeometryBufferRenderer();
  78631. if (!geometry) {
  78632. BABYLON.Tools.Warn("Geometry renderer is not supported, cannot create volumetric lights in Standard Rendering Pipeline");
  78633. return;
  78634. }
  78635. }
  78636. this._vlsEnabled = enabled;
  78637. this._buildPipeline();
  78638. },
  78639. enumerable: true,
  78640. configurable: true
  78641. });
  78642. Object.defineProperty(StandardRenderingPipeline.prototype, "MotionBlurEnabled", {
  78643. /**
  78644. * Specifies if the motion blur effect is enabled
  78645. */
  78646. get: function () {
  78647. return this._motionBlurEnabled;
  78648. },
  78649. set: function (enabled) {
  78650. if (this._motionBlurEnabled === enabled) {
  78651. return;
  78652. }
  78653. this._motionBlurEnabled = enabled;
  78654. this._buildPipeline();
  78655. },
  78656. enumerable: true,
  78657. configurable: true
  78658. });
  78659. Object.defineProperty(StandardRenderingPipeline.prototype, "fxaaEnabled", {
  78660. /**
  78661. * Specifies if anti-aliasing is enabled
  78662. */
  78663. get: function () {
  78664. return this._fxaaEnabled;
  78665. },
  78666. set: function (enabled) {
  78667. if (this._fxaaEnabled === enabled) {
  78668. return;
  78669. }
  78670. this._fxaaEnabled = enabled;
  78671. this._buildPipeline();
  78672. },
  78673. enumerable: true,
  78674. configurable: true
  78675. });
  78676. Object.defineProperty(StandardRenderingPipeline.prototype, "volumetricLightStepsCount", {
  78677. /**
  78678. * Specifies the number of steps used to calculate the volumetric lights
  78679. * Typically in interval [50, 200]
  78680. */
  78681. get: function () {
  78682. return this._volumetricLightStepsCount;
  78683. },
  78684. set: function (count) {
  78685. if (this.volumetricLightPostProcess) {
  78686. this.volumetricLightPostProcess.updateEffect("#define VLS\n#define NB_STEPS " + count.toFixed(1));
  78687. }
  78688. this._volumetricLightStepsCount = count;
  78689. },
  78690. enumerable: true,
  78691. configurable: true
  78692. });
  78693. Object.defineProperty(StandardRenderingPipeline.prototype, "motionBlurSamples", {
  78694. /**
  78695. * Specifies the number of samples used for the motion blur effect
  78696. * Typically in interval [16, 64]
  78697. */
  78698. get: function () {
  78699. return this._motionBlurSamples;
  78700. },
  78701. set: function (samples) {
  78702. if (this.motionBlurPostProcess) {
  78703. this.motionBlurPostProcess.updateEffect("#define MOTION_BLUR\n#define MAX_MOTION_SAMPLES " + samples.toFixed(1));
  78704. }
  78705. this._motionBlurSamples = samples;
  78706. },
  78707. enumerable: true,
  78708. configurable: true
  78709. });
  78710. Object.defineProperty(StandardRenderingPipeline.prototype, "samples", {
  78711. /**
  78712. * Specifies MSAA sample count, setting this to 4 will provide 4x anti aliasing. (default: 1)
  78713. */
  78714. get: function () {
  78715. return this._samples;
  78716. },
  78717. set: function (sampleCount) {
  78718. if (this._samples === sampleCount) {
  78719. return;
  78720. }
  78721. this._samples = sampleCount;
  78722. this._buildPipeline();
  78723. },
  78724. enumerable: true,
  78725. configurable: true
  78726. });
  78727. StandardRenderingPipeline.prototype._buildPipeline = function () {
  78728. var _this = this;
  78729. var ratio = this._ratio;
  78730. var scene = this._scene;
  78731. this._disposePostProcesses();
  78732. this._reset();
  78733. // Create pass post-process
  78734. if (!this._basePostProcess) {
  78735. this.originalPostProcess = new BABYLON.PostProcess("HDRPass", "standard", [], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define PASS_POST_PROCESS", this._floatTextureType);
  78736. this.originalPostProcess.onApply = function (effect) {
  78737. _this._currentDepthOfFieldSource = _this.originalPostProcess;
  78738. };
  78739. }
  78740. else {
  78741. this.originalPostProcess = this._basePostProcess;
  78742. }
  78743. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRPassPostProcess", function () { return _this.originalPostProcess; }, true));
  78744. this._currentDepthOfFieldSource = this.originalPostProcess;
  78745. if (this._bloomEnabled) {
  78746. // Create down sample X4 post-process
  78747. this._createDownSampleX4PostProcess(scene, ratio / 2);
  78748. // Create bright pass post-process
  78749. this._createBrightPassPostProcess(scene, ratio / 2);
  78750. // Create gaussian blur post-processes (down sampling blurs)
  78751. this._createBlurPostProcesses(scene, ratio / 4, 1);
  78752. // Create texture adder post-process
  78753. this._createTextureAdderPostProcess(scene, ratio);
  78754. // Create depth-of-field source post-process
  78755. this.textureAdderFinalPostProcess = new BABYLON.PostProcess("HDRDepthOfFieldSource", "standard", [], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define PASS_POST_PROCESS", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78756. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRBaseDepthOfFieldSource", function () { return _this.textureAdderFinalPostProcess; }, true));
  78757. }
  78758. if (this._vlsEnabled) {
  78759. // Create volumetric light
  78760. this._createVolumetricLightPostProcess(scene, ratio);
  78761. // Create volumetric light final post-process
  78762. this.volumetricLightFinalPostProcess = new BABYLON.PostProcess("HDRVLSFinal", "standard", [], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define PASS_POST_PROCESS", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78763. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRVLSFinal", function () { return _this.volumetricLightFinalPostProcess; }, true));
  78764. }
  78765. if (this._lensFlareEnabled) {
  78766. // Create lens flare post-process
  78767. this._createLensFlarePostProcess(scene, ratio);
  78768. // Create depth-of-field source post-process post lens-flare and disable it now
  78769. this.lensFlareFinalPostProcess = new BABYLON.PostProcess("HDRPostLensFlareDepthOfFieldSource", "standard", [], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define PASS_POST_PROCESS", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78770. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRPostLensFlareDepthOfFieldSource", function () { return _this.lensFlareFinalPostProcess; }, true));
  78771. }
  78772. if (this._hdrEnabled) {
  78773. // Create luminance
  78774. this._createLuminancePostProcesses(scene, this._floatTextureType);
  78775. // Create HDR
  78776. this._createHdrPostProcess(scene, ratio);
  78777. // Create depth-of-field source post-process post hdr and disable it now
  78778. this.hdrFinalPostProcess = new BABYLON.PostProcess("HDRPostHDReDepthOfFieldSource", "standard", [], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define PASS_POST_PROCESS", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78779. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRPostHDReDepthOfFieldSource", function () { return _this.hdrFinalPostProcess; }, true));
  78780. }
  78781. if (this._depthOfFieldEnabled) {
  78782. // Create gaussian blur used by depth-of-field
  78783. this._createBlurPostProcesses(scene, ratio / 2, 3, "depthOfFieldBlurWidth");
  78784. // Create depth-of-field post-process
  78785. this._createDepthOfFieldPostProcess(scene, ratio);
  78786. }
  78787. if (this._motionBlurEnabled) {
  78788. // Create motion blur post-process
  78789. this._createMotionBlurPostProcess(scene, ratio);
  78790. }
  78791. if (this._fxaaEnabled) {
  78792. // Create fxaa post-process
  78793. this.fxaaPostProcess = new BABYLON.FxaaPostProcess("fxaa", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78794. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRFxaa", function () { return _this.fxaaPostProcess; }, true));
  78795. }
  78796. if (this._cameras !== null) {
  78797. this._scene.postProcessRenderPipelineManager.attachCamerasToRenderPipeline(this._name, this._cameras);
  78798. }
  78799. if (!this._enableMSAAOnFirstPostProcess(this._samples) && this._samples > 1) {
  78800. BABYLON.Tools.Warn("MSAA failed to enable, MSAA is only supported in browsers that support webGL >= 2.0");
  78801. }
  78802. };
  78803. // Down Sample X4 Post-Processs
  78804. StandardRenderingPipeline.prototype._createDownSampleX4PostProcess = function (scene, ratio) {
  78805. var _this = this;
  78806. var downSampleX4Offsets = new Array(32);
  78807. this.downSampleX4PostProcess = new BABYLON.PostProcess("HDRDownSampleX4", "standard", ["dsOffsets"], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define DOWN_SAMPLE_X4", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78808. this.downSampleX4PostProcess.onApply = function (effect) {
  78809. var id = 0;
  78810. var width = _this.downSampleX4PostProcess.width;
  78811. var height = _this.downSampleX4PostProcess.height;
  78812. for (var i = -2; i < 2; i++) {
  78813. for (var j = -2; j < 2; j++) {
  78814. downSampleX4Offsets[id] = (i + 0.5) * (1.0 / width);
  78815. downSampleX4Offsets[id + 1] = (j + 0.5) * (1.0 / height);
  78816. id += 2;
  78817. }
  78818. }
  78819. effect.setArray2("dsOffsets", downSampleX4Offsets);
  78820. };
  78821. // Add to pipeline
  78822. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRDownSampleX4", function () { return _this.downSampleX4PostProcess; }, true));
  78823. };
  78824. // Brightpass Post-Process
  78825. StandardRenderingPipeline.prototype._createBrightPassPostProcess = function (scene, ratio) {
  78826. var _this = this;
  78827. var brightOffsets = new Array(8);
  78828. this.brightPassPostProcess = new BABYLON.PostProcess("HDRBrightPass", "standard", ["dsOffsets", "brightThreshold"], [], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define BRIGHT_PASS", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78829. this.brightPassPostProcess.onApply = function (effect) {
  78830. var sU = (1.0 / _this.brightPassPostProcess.width);
  78831. var sV = (1.0 / _this.brightPassPostProcess.height);
  78832. brightOffsets[0] = -0.5 * sU;
  78833. brightOffsets[1] = 0.5 * sV;
  78834. brightOffsets[2] = 0.5 * sU;
  78835. brightOffsets[3] = 0.5 * sV;
  78836. brightOffsets[4] = -0.5 * sU;
  78837. brightOffsets[5] = -0.5 * sV;
  78838. brightOffsets[6] = 0.5 * sU;
  78839. brightOffsets[7] = -0.5 * sV;
  78840. effect.setArray2("dsOffsets", brightOffsets);
  78841. effect.setFloat("brightThreshold", _this.brightThreshold);
  78842. };
  78843. // Add to pipeline
  78844. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRBrightPass", function () { return _this.brightPassPostProcess; }, true));
  78845. };
  78846. // Create blur H&V post-processes
  78847. StandardRenderingPipeline.prototype._createBlurPostProcesses = function (scene, ratio, indice, blurWidthKey) {
  78848. var _this = this;
  78849. if (blurWidthKey === void 0) { blurWidthKey = "blurWidth"; }
  78850. var engine = scene.getEngine();
  78851. var blurX = new BABYLON.BlurPostProcess("HDRBlurH" + "_" + indice, new BABYLON.Vector2(1, 0), this[blurWidthKey], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78852. var blurY = new BABYLON.BlurPostProcess("HDRBlurV" + "_" + indice, new BABYLON.Vector2(0, 1), this[blurWidthKey], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78853. blurX.onActivateObservable.add(function () {
  78854. var dw = blurX.width / engine.getRenderWidth();
  78855. blurX.kernel = _this[blurWidthKey] * dw;
  78856. });
  78857. blurY.onActivateObservable.add(function () {
  78858. var dw = blurY.height / engine.getRenderHeight();
  78859. blurY.kernel = _this.horizontalBlur ? 64 * dw : _this[blurWidthKey] * dw;
  78860. });
  78861. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRBlurH" + indice, function () { return blurX; }, true));
  78862. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRBlurV" + indice, function () { return blurY; }, true));
  78863. this.blurHPostProcesses.push(blurX);
  78864. this.blurVPostProcesses.push(blurY);
  78865. };
  78866. // Create texture adder post-process
  78867. StandardRenderingPipeline.prototype._createTextureAdderPostProcess = function (scene, ratio) {
  78868. var _this = this;
  78869. this.textureAdderPostProcess = new BABYLON.PostProcess("HDRTextureAdder", "standard", ["exposure"], ["otherSampler", "lensSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define TEXTURE_ADDER", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78870. this.textureAdderPostProcess.onApply = function (effect) {
  78871. effect.setTextureFromPostProcess("otherSampler", _this._vlsEnabled ? _this._currentDepthOfFieldSource : _this.originalPostProcess);
  78872. effect.setTexture("lensSampler", _this.lensTexture);
  78873. effect.setFloat("exposure", _this.exposure);
  78874. _this._currentDepthOfFieldSource = _this.textureAdderFinalPostProcess;
  78875. };
  78876. // Add to pipeline
  78877. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRTextureAdder", function () { return _this.textureAdderPostProcess; }, true));
  78878. };
  78879. StandardRenderingPipeline.prototype._createVolumetricLightPostProcess = function (scene, ratio) {
  78880. var _this = this;
  78881. var geometryRenderer = scene.enableGeometryBufferRenderer();
  78882. geometryRenderer.enablePosition = true;
  78883. var geometry = geometryRenderer.getGBuffer();
  78884. // Base post-process
  78885. this.volumetricLightPostProcess = new BABYLON.PostProcess("HDRVLS", "standard", ["shadowViewProjection", "cameraPosition", "sunDirection", "sunColor", "scatteringCoefficient", "scatteringPower", "depthValues"], ["shadowMapSampler", "positionSampler"], ratio / 8, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define VLS\n#define NB_STEPS " + this._volumetricLightStepsCount.toFixed(1));
  78886. var depthValues = BABYLON.Vector2.Zero();
  78887. this.volumetricLightPostProcess.onApply = function (effect) {
  78888. if (_this.sourceLight && _this.sourceLight.getShadowGenerator() && _this._scene.activeCamera) {
  78889. var generator = _this.sourceLight.getShadowGenerator();
  78890. effect.setTexture("shadowMapSampler", generator.getShadowMap());
  78891. effect.setTexture("positionSampler", geometry.textures[2]);
  78892. effect.setColor3("sunColor", _this.sourceLight.diffuse);
  78893. effect.setVector3("sunDirection", _this.sourceLight.getShadowDirection());
  78894. effect.setVector3("cameraPosition", _this._scene.activeCamera.globalPosition);
  78895. effect.setMatrix("shadowViewProjection", generator.getTransformMatrix());
  78896. effect.setFloat("scatteringCoefficient", _this.volumetricLightCoefficient);
  78897. effect.setFloat("scatteringPower", _this.volumetricLightPower);
  78898. depthValues.x = _this.sourceLight.getDepthMinZ(_this._scene.activeCamera);
  78899. depthValues.y = _this.sourceLight.getDepthMaxZ(_this._scene.activeCamera);
  78900. effect.setVector2("depthValues", depthValues);
  78901. }
  78902. };
  78903. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRVLS", function () { return _this.volumetricLightPostProcess; }, true));
  78904. // Smooth
  78905. this._createBlurPostProcesses(scene, ratio / 4, 0, "volumetricLightBlurScale");
  78906. // Merge
  78907. this.volumetricLightMergePostProces = new BABYLON.PostProcess("HDRVLSMerge", "standard", [], ["originalSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define VLSMERGE");
  78908. this.volumetricLightMergePostProces.onApply = function (effect) {
  78909. effect.setTextureFromPostProcess("originalSampler", _this._bloomEnabled ? _this.textureAdderFinalPostProcess : _this.originalPostProcess);
  78910. _this._currentDepthOfFieldSource = _this.volumetricLightFinalPostProcess;
  78911. };
  78912. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRVLSMerge", function () { return _this.volumetricLightMergePostProces; }, true));
  78913. };
  78914. // Create luminance
  78915. StandardRenderingPipeline.prototype._createLuminancePostProcesses = function (scene, textureType) {
  78916. var _this = this;
  78917. // Create luminance
  78918. var size = Math.pow(3, StandardRenderingPipeline.LuminanceSteps);
  78919. this.luminancePostProcess = new BABYLON.PostProcess("HDRLuminance", "standard", ["lumOffsets"], [], { width: size, height: size }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define LUMINANCE", textureType);
  78920. var offsets = [];
  78921. this.luminancePostProcess.onApply = function (effect) {
  78922. var sU = (1.0 / _this.luminancePostProcess.width);
  78923. var sV = (1.0 / _this.luminancePostProcess.height);
  78924. offsets[0] = -0.5 * sU;
  78925. offsets[1] = 0.5 * sV;
  78926. offsets[2] = 0.5 * sU;
  78927. offsets[3] = 0.5 * sV;
  78928. offsets[4] = -0.5 * sU;
  78929. offsets[5] = -0.5 * sV;
  78930. offsets[6] = 0.5 * sU;
  78931. offsets[7] = -0.5 * sV;
  78932. effect.setArray2("lumOffsets", offsets);
  78933. };
  78934. // Add to pipeline
  78935. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRLuminance", function () { return _this.luminancePostProcess; }, true));
  78936. // Create down sample luminance
  78937. for (var i = StandardRenderingPipeline.LuminanceSteps - 1; i >= 0; i--) {
  78938. var size = Math.pow(3, i);
  78939. var defines = "#define LUMINANCE_DOWN_SAMPLE\n";
  78940. if (i === 0) {
  78941. defines += "#define FINAL_DOWN_SAMPLER";
  78942. }
  78943. var postProcess = new BABYLON.PostProcess("HDRLuminanceDownSample" + i, "standard", ["dsOffsets", "halfDestPixelSize"], [], { width: size, height: size }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, defines, textureType);
  78944. this.luminanceDownSamplePostProcesses.push(postProcess);
  78945. }
  78946. // Create callbacks and add effects
  78947. var lastLuminance = this.luminancePostProcess;
  78948. this.luminanceDownSamplePostProcesses.forEach(function (pp, index) {
  78949. var downSampleOffsets = new Array(18);
  78950. pp.onApply = function (effect) {
  78951. if (!lastLuminance) {
  78952. return;
  78953. }
  78954. var id = 0;
  78955. for (var x = -1; x < 2; x++) {
  78956. for (var y = -1; y < 2; y++) {
  78957. downSampleOffsets[id] = x / lastLuminance.width;
  78958. downSampleOffsets[id + 1] = y / lastLuminance.height;
  78959. id += 2;
  78960. }
  78961. }
  78962. effect.setArray2("dsOffsets", downSampleOffsets);
  78963. effect.setFloat("halfDestPixelSize", 0.5 / lastLuminance.width);
  78964. if (index === _this.luminanceDownSamplePostProcesses.length - 1) {
  78965. lastLuminance = _this.luminancePostProcess;
  78966. }
  78967. else {
  78968. lastLuminance = pp;
  78969. }
  78970. };
  78971. if (index === _this.luminanceDownSamplePostProcesses.length - 1) {
  78972. pp.onAfterRender = function (effect) {
  78973. var pixel = scene.getEngine().readPixels(0, 0, 1, 1);
  78974. var bit_shift = new BABYLON.Vector4(1.0 / (255.0 * 255.0 * 255.0), 1.0 / (255.0 * 255.0), 1.0 / 255.0, 1.0);
  78975. _this._hdrCurrentLuminance = (pixel[0] * bit_shift.x + pixel[1] * bit_shift.y + pixel[2] * bit_shift.z + pixel[3] * bit_shift.w) / 100.0;
  78976. };
  78977. }
  78978. _this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRLuminanceDownSample" + index, function () { return pp; }, true));
  78979. });
  78980. };
  78981. // Create HDR post-process
  78982. StandardRenderingPipeline.prototype._createHdrPostProcess = function (scene, ratio) {
  78983. var _this = this;
  78984. this.hdrPostProcess = new BABYLON.PostProcess("HDR", "standard", ["averageLuminance"], ["textureAdderSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define HDR", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  78985. var outputLiminance = 1;
  78986. var time = 0;
  78987. var lastTime = 0;
  78988. this.hdrPostProcess.onApply = function (effect) {
  78989. effect.setTextureFromPostProcess("textureAdderSampler", _this._currentDepthOfFieldSource);
  78990. time += scene.getEngine().getDeltaTime();
  78991. if (outputLiminance < 0) {
  78992. outputLiminance = _this._hdrCurrentLuminance;
  78993. }
  78994. else {
  78995. var dt = (lastTime - time) / 1000.0;
  78996. if (_this._hdrCurrentLuminance < outputLiminance + _this.hdrDecreaseRate * dt) {
  78997. outputLiminance += _this.hdrDecreaseRate * dt;
  78998. }
  78999. else if (_this._hdrCurrentLuminance > outputLiminance - _this.hdrIncreaseRate * dt) {
  79000. outputLiminance -= _this.hdrIncreaseRate * dt;
  79001. }
  79002. else {
  79003. outputLiminance = _this._hdrCurrentLuminance;
  79004. }
  79005. }
  79006. outputLiminance = BABYLON.Scalar.Clamp(outputLiminance, _this.hdrMinimumLuminance, 1e20);
  79007. effect.setFloat("averageLuminance", outputLiminance);
  79008. lastTime = time;
  79009. _this._currentDepthOfFieldSource = _this.hdrFinalPostProcess;
  79010. };
  79011. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDR", function () { return _this.hdrPostProcess; }, true));
  79012. };
  79013. // Create lens flare post-process
  79014. StandardRenderingPipeline.prototype._createLensFlarePostProcess = function (scene, ratio) {
  79015. var _this = this;
  79016. this.lensFlarePostProcess = new BABYLON.PostProcess("HDRLensFlare", "standard", ["strength", "ghostDispersal", "haloWidth", "resolution", "distortionStrength"], ["lensColorSampler"], ratio / 2, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define LENS_FLARE", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  79017. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRLensFlare", function () { return _this.lensFlarePostProcess; }, true));
  79018. this._createBlurPostProcesses(scene, ratio / 4, 2);
  79019. this.lensFlareComposePostProcess = new BABYLON.PostProcess("HDRLensFlareCompose", "standard", ["lensStarMatrix"], ["otherSampler", "lensDirtSampler", "lensStarSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define LENS_FLARE_COMPOSE", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  79020. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRLensFlareCompose", function () { return _this.lensFlareComposePostProcess; }, true));
  79021. var resolution = new BABYLON.Vector2(0, 0);
  79022. // Lens flare
  79023. this.lensFlarePostProcess.onApply = function (effect) {
  79024. effect.setTextureFromPostProcess("textureSampler", _this._bloomEnabled ? _this.blurHPostProcesses[0] : _this.originalPostProcess);
  79025. effect.setTexture("lensColorSampler", _this.lensColorTexture);
  79026. effect.setFloat("strength", _this.lensFlareStrength);
  79027. effect.setFloat("ghostDispersal", _this.lensFlareGhostDispersal);
  79028. effect.setFloat("haloWidth", _this.lensFlareHaloWidth);
  79029. // Shift
  79030. resolution.x = _this.lensFlarePostProcess.width;
  79031. resolution.y = _this.lensFlarePostProcess.height;
  79032. effect.setVector2("resolution", resolution);
  79033. effect.setFloat("distortionStrength", _this.lensFlareDistortionStrength);
  79034. };
  79035. // Compose
  79036. var scaleBias1 = BABYLON.Matrix.FromValues(2.0, 0.0, -1.0, 0.0, 0.0, 2.0, -1.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0);
  79037. var scaleBias2 = BABYLON.Matrix.FromValues(0.5, 0.0, 0.5, 0.0, 0.0, 0.5, 0.5, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0);
  79038. this.lensFlareComposePostProcess.onApply = function (effect) {
  79039. if (!_this._scene.activeCamera) {
  79040. return;
  79041. }
  79042. effect.setTextureFromPostProcess("otherSampler", _this._currentDepthOfFieldSource);
  79043. effect.setTexture("lensDirtSampler", _this.lensFlareDirtTexture);
  79044. effect.setTexture("lensStarSampler", _this.lensStarTexture);
  79045. // Lens start rotation matrix
  79046. var camerax = _this._scene.activeCamera.getViewMatrix().getRow(0);
  79047. var cameraz = _this._scene.activeCamera.getViewMatrix().getRow(2);
  79048. var camRot = BABYLON.Vector3.Dot(camerax.toVector3(), new BABYLON.Vector3(1.0, 0.0, 0.0)) + BABYLON.Vector3.Dot(cameraz.toVector3(), new BABYLON.Vector3(0.0, 0.0, 1.0));
  79049. camRot *= 4.0;
  79050. var starRotation = BABYLON.Matrix.FromValues(Math.cos(camRot) * 0.5, -Math.sin(camRot), 0.0, 0.0, Math.sin(camRot), Math.cos(camRot) * 0.5, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0, 0.0, 0.0, 1.0);
  79051. var lensStarMatrix = scaleBias2.multiply(starRotation).multiply(scaleBias1);
  79052. effect.setMatrix("lensStarMatrix", lensStarMatrix);
  79053. _this._currentDepthOfFieldSource = _this.lensFlareFinalPostProcess;
  79054. };
  79055. };
  79056. // Create depth-of-field post-process
  79057. StandardRenderingPipeline.prototype._createDepthOfFieldPostProcess = function (scene, ratio) {
  79058. var _this = this;
  79059. this.depthOfFieldPostProcess = new BABYLON.PostProcess("HDRDepthOfField", "standard", ["distance"], ["otherSampler", "depthSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define DEPTH_OF_FIELD", BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  79060. this.depthOfFieldPostProcess.onApply = function (effect) {
  79061. effect.setTextureFromPostProcess("otherSampler", _this._currentDepthOfFieldSource);
  79062. effect.setTexture("depthSampler", _this._getDepthTexture());
  79063. effect.setFloat("distance", _this.depthOfFieldDistance);
  79064. };
  79065. // Add to pipeline
  79066. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRDepthOfField", function () { return _this.depthOfFieldPostProcess; }, true));
  79067. };
  79068. // Create motion blur post-process
  79069. StandardRenderingPipeline.prototype._createMotionBlurPostProcess = function (scene, ratio) {
  79070. var _this = this;
  79071. this.motionBlurPostProcess = new BABYLON.PostProcess("HDRMotionBlur", "standard", ["inverseViewProjection", "prevViewProjection", "screenSize", "motionScale", "motionStrength"], ["depthSampler"], ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, "#define MOTION_BLUR\n#define MAX_MOTION_SAMPLES " + this.motionBlurSamples.toFixed(1), BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  79072. var motionScale = 0;
  79073. var prevViewProjection = BABYLON.Matrix.Identity();
  79074. var invViewProjection = BABYLON.Matrix.Identity();
  79075. var viewProjection = BABYLON.Matrix.Identity();
  79076. var screenSize = BABYLON.Vector2.Zero();
  79077. this.motionBlurPostProcess.onApply = function (effect) {
  79078. viewProjection = scene.getProjectionMatrix().multiply(scene.getViewMatrix());
  79079. viewProjection.invertToRef(invViewProjection);
  79080. effect.setMatrix("inverseViewProjection", invViewProjection);
  79081. effect.setMatrix("prevViewProjection", prevViewProjection);
  79082. prevViewProjection = viewProjection;
  79083. screenSize.x = _this.motionBlurPostProcess.width;
  79084. screenSize.y = _this.motionBlurPostProcess.height;
  79085. effect.setVector2("screenSize", screenSize);
  79086. motionScale = scene.getEngine().getFps() / 60.0;
  79087. effect.setFloat("motionScale", motionScale);
  79088. effect.setFloat("motionStrength", _this.motionStrength);
  79089. effect.setTexture("depthSampler", _this._getDepthTexture());
  79090. };
  79091. this.addEffect(new BABYLON.PostProcessRenderEffect(scene.getEngine(), "HDRMotionBlur", function () { return _this.motionBlurPostProcess; }, true));
  79092. };
  79093. StandardRenderingPipeline.prototype._getDepthTexture = function () {
  79094. if (this._scene.getEngine().getCaps().drawBuffersExtension) {
  79095. var renderer = this._scene.enableGeometryBufferRenderer();
  79096. return renderer.getGBuffer().textures[0];
  79097. }
  79098. return this._scene.enableDepthRenderer().getDepthMap();
  79099. };
  79100. StandardRenderingPipeline.prototype._disposePostProcesses = function () {
  79101. for (var i = 0; i < this._cameras.length; i++) {
  79102. var camera = this._cameras[i];
  79103. if (this.originalPostProcess) {
  79104. this.originalPostProcess.dispose(camera);
  79105. }
  79106. if (this.downSampleX4PostProcess) {
  79107. this.downSampleX4PostProcess.dispose(camera);
  79108. }
  79109. if (this.brightPassPostProcess) {
  79110. this.brightPassPostProcess.dispose(camera);
  79111. }
  79112. if (this.textureAdderPostProcess) {
  79113. this.textureAdderPostProcess.dispose(camera);
  79114. }
  79115. if (this.textureAdderFinalPostProcess) {
  79116. this.textureAdderFinalPostProcess.dispose(camera);
  79117. }
  79118. if (this.volumetricLightPostProcess) {
  79119. this.volumetricLightPostProcess.dispose(camera);
  79120. }
  79121. if (this.volumetricLightSmoothXPostProcess) {
  79122. this.volumetricLightSmoothXPostProcess.dispose(camera);
  79123. }
  79124. if (this.volumetricLightSmoothYPostProcess) {
  79125. this.volumetricLightSmoothYPostProcess.dispose(camera);
  79126. }
  79127. if (this.volumetricLightMergePostProces) {
  79128. this.volumetricLightMergePostProces.dispose(camera);
  79129. }
  79130. if (this.volumetricLightFinalPostProcess) {
  79131. this.volumetricLightFinalPostProcess.dispose(camera);
  79132. }
  79133. if (this.lensFlarePostProcess) {
  79134. this.lensFlarePostProcess.dispose(camera);
  79135. }
  79136. if (this.lensFlareComposePostProcess) {
  79137. this.lensFlareComposePostProcess.dispose(camera);
  79138. }
  79139. for (var j = 0; j < this.luminanceDownSamplePostProcesses.length; j++) {
  79140. this.luminanceDownSamplePostProcesses[j].dispose(camera);
  79141. }
  79142. if (this.luminancePostProcess) {
  79143. this.luminancePostProcess.dispose(camera);
  79144. }
  79145. if (this.hdrPostProcess) {
  79146. this.hdrPostProcess.dispose(camera);
  79147. }
  79148. if (this.hdrFinalPostProcess) {
  79149. this.hdrFinalPostProcess.dispose(camera);
  79150. }
  79151. if (this.depthOfFieldPostProcess) {
  79152. this.depthOfFieldPostProcess.dispose(camera);
  79153. }
  79154. if (this.motionBlurPostProcess) {
  79155. this.motionBlurPostProcess.dispose(camera);
  79156. }
  79157. if (this.fxaaPostProcess) {
  79158. this.fxaaPostProcess.dispose(camera);
  79159. }
  79160. for (var j = 0; j < this.blurHPostProcesses.length; j++) {
  79161. this.blurHPostProcesses[j].dispose(camera);
  79162. }
  79163. for (var j = 0; j < this.blurVPostProcesses.length; j++) {
  79164. this.blurVPostProcesses[j].dispose(camera);
  79165. }
  79166. }
  79167. this.originalPostProcess = null;
  79168. this.downSampleX4PostProcess = null;
  79169. this.brightPassPostProcess = null;
  79170. this.textureAdderPostProcess = null;
  79171. this.textureAdderFinalPostProcess = null;
  79172. this.volumetricLightPostProcess = null;
  79173. this.volumetricLightSmoothXPostProcess = null;
  79174. this.volumetricLightSmoothYPostProcess = null;
  79175. this.volumetricLightMergePostProces = null;
  79176. this.volumetricLightFinalPostProcess = null;
  79177. this.lensFlarePostProcess = null;
  79178. this.lensFlareComposePostProcess = null;
  79179. this.luminancePostProcess = null;
  79180. this.hdrPostProcess = null;
  79181. this.hdrFinalPostProcess = null;
  79182. this.depthOfFieldPostProcess = null;
  79183. this.motionBlurPostProcess = null;
  79184. this.fxaaPostProcess = null;
  79185. this.luminanceDownSamplePostProcesses = [];
  79186. this.blurHPostProcesses = [];
  79187. this.blurVPostProcesses = [];
  79188. };
  79189. /**
  79190. * Dispose of the pipeline and stop all post processes
  79191. */
  79192. StandardRenderingPipeline.prototype.dispose = function () {
  79193. this._disposePostProcesses();
  79194. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._cameras);
  79195. _super.prototype.dispose.call(this);
  79196. };
  79197. /**
  79198. * Serialize the rendering pipeline (Used when exporting)
  79199. * @returns the serialized object
  79200. */
  79201. StandardRenderingPipeline.prototype.serialize = function () {
  79202. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  79203. if (this.sourceLight) {
  79204. serializationObject.sourceLightId = this.sourceLight.id;
  79205. }
  79206. serializationObject.customType = "StandardRenderingPipeline";
  79207. return serializationObject;
  79208. };
  79209. /**
  79210. * Parse the serialized pipeline
  79211. * @param source Source pipeline.
  79212. * @param scene The scene to load the pipeline to.
  79213. * @param rootUrl The URL of the serialized pipeline.
  79214. * @returns An instantiated pipeline from the serialized object.
  79215. */
  79216. StandardRenderingPipeline.Parse = function (source, scene, rootUrl) {
  79217. var p = BABYLON.SerializationHelper.Parse(function () { return new StandardRenderingPipeline(source._name, scene, source._ratio); }, source, scene, rootUrl);
  79218. if (source.sourceLightId) {
  79219. p.sourceLight = scene.getLightByID(source.sourceLightId);
  79220. }
  79221. return p;
  79222. };
  79223. // Luminance steps
  79224. StandardRenderingPipeline.LuminanceSteps = 6;
  79225. __decorate([
  79226. BABYLON.serialize()
  79227. ], StandardRenderingPipeline.prototype, "brightThreshold", void 0);
  79228. __decorate([
  79229. BABYLON.serialize()
  79230. ], StandardRenderingPipeline.prototype, "blurWidth", void 0);
  79231. __decorate([
  79232. BABYLON.serialize()
  79233. ], StandardRenderingPipeline.prototype, "horizontalBlur", void 0);
  79234. __decorate([
  79235. BABYLON.serialize()
  79236. ], StandardRenderingPipeline.prototype, "exposure", void 0);
  79237. __decorate([
  79238. BABYLON.serializeAsTexture("lensTexture")
  79239. ], StandardRenderingPipeline.prototype, "lensTexture", void 0);
  79240. __decorate([
  79241. BABYLON.serialize()
  79242. ], StandardRenderingPipeline.prototype, "volumetricLightCoefficient", void 0);
  79243. __decorate([
  79244. BABYLON.serialize()
  79245. ], StandardRenderingPipeline.prototype, "volumetricLightPower", void 0);
  79246. __decorate([
  79247. BABYLON.serialize()
  79248. ], StandardRenderingPipeline.prototype, "volumetricLightBlurScale", void 0);
  79249. __decorate([
  79250. BABYLON.serialize()
  79251. ], StandardRenderingPipeline.prototype, "hdrMinimumLuminance", void 0);
  79252. __decorate([
  79253. BABYLON.serialize()
  79254. ], StandardRenderingPipeline.prototype, "hdrDecreaseRate", void 0);
  79255. __decorate([
  79256. BABYLON.serialize()
  79257. ], StandardRenderingPipeline.prototype, "hdrIncreaseRate", void 0);
  79258. __decorate([
  79259. BABYLON.serializeAsTexture("lensColorTexture")
  79260. ], StandardRenderingPipeline.prototype, "lensColorTexture", void 0);
  79261. __decorate([
  79262. BABYLON.serialize()
  79263. ], StandardRenderingPipeline.prototype, "lensFlareStrength", void 0);
  79264. __decorate([
  79265. BABYLON.serialize()
  79266. ], StandardRenderingPipeline.prototype, "lensFlareGhostDispersal", void 0);
  79267. __decorate([
  79268. BABYLON.serialize()
  79269. ], StandardRenderingPipeline.prototype, "lensFlareHaloWidth", void 0);
  79270. __decorate([
  79271. BABYLON.serialize()
  79272. ], StandardRenderingPipeline.prototype, "lensFlareDistortionStrength", void 0);
  79273. __decorate([
  79274. BABYLON.serializeAsTexture("lensStarTexture")
  79275. ], StandardRenderingPipeline.prototype, "lensStarTexture", void 0);
  79276. __decorate([
  79277. BABYLON.serializeAsTexture("lensFlareDirtTexture")
  79278. ], StandardRenderingPipeline.prototype, "lensFlareDirtTexture", void 0);
  79279. __decorate([
  79280. BABYLON.serialize()
  79281. ], StandardRenderingPipeline.prototype, "depthOfFieldDistance", void 0);
  79282. __decorate([
  79283. BABYLON.serialize()
  79284. ], StandardRenderingPipeline.prototype, "depthOfFieldBlurWidth", void 0);
  79285. __decorate([
  79286. BABYLON.serialize()
  79287. ], StandardRenderingPipeline.prototype, "motionStrength", void 0);
  79288. __decorate([
  79289. BABYLON.serialize()
  79290. ], StandardRenderingPipeline.prototype, "_ratio", void 0);
  79291. __decorate([
  79292. BABYLON.serialize()
  79293. ], StandardRenderingPipeline.prototype, "BloomEnabled", null);
  79294. __decorate([
  79295. BABYLON.serialize()
  79296. ], StandardRenderingPipeline.prototype, "DepthOfFieldEnabled", null);
  79297. __decorate([
  79298. BABYLON.serialize()
  79299. ], StandardRenderingPipeline.prototype, "LensFlareEnabled", null);
  79300. __decorate([
  79301. BABYLON.serialize()
  79302. ], StandardRenderingPipeline.prototype, "HDREnabled", null);
  79303. __decorate([
  79304. BABYLON.serialize()
  79305. ], StandardRenderingPipeline.prototype, "VLSEnabled", null);
  79306. __decorate([
  79307. BABYLON.serialize()
  79308. ], StandardRenderingPipeline.prototype, "MotionBlurEnabled", null);
  79309. __decorate([
  79310. BABYLON.serialize()
  79311. ], StandardRenderingPipeline.prototype, "fxaaEnabled", null);
  79312. __decorate([
  79313. BABYLON.serialize()
  79314. ], StandardRenderingPipeline.prototype, "volumetricLightStepsCount", null);
  79315. __decorate([
  79316. BABYLON.serialize()
  79317. ], StandardRenderingPipeline.prototype, "motionBlurSamples", null);
  79318. __decorate([
  79319. BABYLON.serialize()
  79320. ], StandardRenderingPipeline.prototype, "samples", null);
  79321. return StandardRenderingPipeline;
  79322. }(BABYLON.PostProcessRenderPipeline));
  79323. BABYLON.StandardRenderingPipeline = StandardRenderingPipeline;
  79324. })(BABYLON || (BABYLON = {}));
  79325. //# sourceMappingURL=babylon.standardRenderingPipeline.js.map
  79326. var BABYLON;
  79327. (function (BABYLON) {
  79328. var FxaaPostProcess = /** @class */ (function (_super) {
  79329. __extends(FxaaPostProcess, _super);
  79330. function FxaaPostProcess(name, options, camera, samplingMode, engine, reusable, textureType) {
  79331. if (camera === void 0) { camera = null; }
  79332. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79333. var _this = _super.call(this, name, "fxaa", ["texelSize"], null, options, camera, samplingMode || BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, reusable, null, textureType, "fxaa", undefined, true) || this;
  79334. var defines = _this._getDefines();
  79335. _this.updateEffect(defines);
  79336. _this.onApplyObservable.add(function (effect) {
  79337. var texelSize = _this.texelSize;
  79338. effect.setFloat2("texelSize", texelSize.x, texelSize.y);
  79339. });
  79340. return _this;
  79341. }
  79342. FxaaPostProcess.prototype._getDefines = function () {
  79343. var engine = this.getEngine();
  79344. if (!engine) {
  79345. return null;
  79346. }
  79347. var glInfo = engine.getGlInfo();
  79348. if (glInfo && glInfo.renderer && glInfo.renderer.toLowerCase().indexOf("mali") > -1) {
  79349. return "#define MALI 1\n";
  79350. }
  79351. return null;
  79352. };
  79353. return FxaaPostProcess;
  79354. }(BABYLON.PostProcess));
  79355. BABYLON.FxaaPostProcess = FxaaPostProcess;
  79356. })(BABYLON || (BABYLON = {}));
  79357. //# sourceMappingURL=babylon.fxaaPostProcess.js.map
  79358. var BABYLON;
  79359. (function (BABYLON) {
  79360. /**
  79361. * The ChromaticAberrationPostProcess separates the rgb channels in an image to produce chromatic distortion around the edges of the screen
  79362. */
  79363. var ChromaticAberrationPostProcess = /** @class */ (function (_super) {
  79364. __extends(ChromaticAberrationPostProcess, _super);
  79365. /**
  79366. * Creates a new instance ChromaticAberrationPostProcess
  79367. * @param name The name of the effect.
  79368. * @param screenWidth The width of the screen to apply the effect on.
  79369. * @param screenHeight The height of the screen to apply the effect on.
  79370. * @param options The required width/height ratio to downsize to before computing the render pass.
  79371. * @param camera The camera to apply the render pass to.
  79372. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79373. * @param engine The engine which the post process will be applied. (default: current engine)
  79374. * @param reusable If the post process can be reused on the same frame. (default: false)
  79375. * @param textureType Type of textures used when performing the post process. (default: 0)
  79376. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79377. */
  79378. function ChromaticAberrationPostProcess(name, screenWidth, screenHeight, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  79379. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79380. if (blockCompilation === void 0) { blockCompilation = false; }
  79381. var _this = _super.call(this, name, "chromaticAberration", ["chromatic_aberration", "screen_width", "screen_height", "direction", "radialIntensity", "centerPosition"], [], options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, blockCompilation) || this;
  79382. /**
  79383. * The amount of seperation of rgb channels (default: 30)
  79384. */
  79385. _this.aberrationAmount = 30;
  79386. /**
  79387. * The amount the effect will increase for pixels closer to the edge of the screen. (default: 0)
  79388. */
  79389. _this.radialIntensity = 0;
  79390. /**
  79391. * The normilized direction in which the rgb channels should be seperated. If set to 0,0 radial direction will be used. (default: Vector2(0.707,0.707))
  79392. */
  79393. _this.direction = new BABYLON.Vector2(0.707, 0.707);
  79394. /**
  79395. * The center position where the radialIntensity should be around. [0.5,0.5 is center of screen, 1,1 is top right corder] (default: Vector2(0.5 ,0.5))
  79396. */
  79397. _this.centerPosition = new BABYLON.Vector2(0.5, 0.5);
  79398. _this.onApplyObservable.add(function (effect) {
  79399. effect.setFloat('chromatic_aberration', _this.aberrationAmount);
  79400. effect.setFloat('screen_width', screenWidth);
  79401. effect.setFloat('screen_height', screenHeight);
  79402. effect.setFloat('radialIntensity', _this.radialIntensity);
  79403. effect.setFloat2('direction', _this.direction.x, _this.direction.y);
  79404. effect.setFloat2('centerPosition', _this.centerPosition.x, _this.centerPosition.y);
  79405. });
  79406. return _this;
  79407. }
  79408. return ChromaticAberrationPostProcess;
  79409. }(BABYLON.PostProcess));
  79410. BABYLON.ChromaticAberrationPostProcess = ChromaticAberrationPostProcess;
  79411. })(BABYLON || (BABYLON = {}));
  79412. //# sourceMappingURL=babylon.chromaticAberrationPostProcess.js.map
  79413. var BABYLON;
  79414. (function (BABYLON) {
  79415. /**
  79416. * The GrainPostProcess adds noise to the image at mid luminance levels
  79417. */
  79418. var GrainPostProcess = /** @class */ (function (_super) {
  79419. __extends(GrainPostProcess, _super);
  79420. /**
  79421. * Creates a new instance of @see GrainPostProcess
  79422. * @param name The name of the effect.
  79423. * @param options The required width/height ratio to downsize to before computing the render pass.
  79424. * @param camera The camera to apply the render pass to.
  79425. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79426. * @param engine The engine which the post process will be applied. (default: current engine)
  79427. * @param reusable If the post process can be reused on the same frame. (default: false)
  79428. * @param textureType Type of textures used when performing the post process. (default: 0)
  79429. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79430. */
  79431. function GrainPostProcess(name, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  79432. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79433. if (blockCompilation === void 0) { blockCompilation = false; }
  79434. var _this = _super.call(this, name, "grain", ["intensity", "animatedSeed"], [], options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, blockCompilation) || this;
  79435. /**
  79436. * The intensity of the grain added (default: 30)
  79437. */
  79438. _this.intensity = 30;
  79439. /**
  79440. * If the grain should be randomized on every frame
  79441. */
  79442. _this.animated = false;
  79443. _this.onApplyObservable.add(function (effect) {
  79444. effect.setFloat('intensity', _this.intensity);
  79445. effect.setFloat('animatedSeed', _this.animated ? Math.random() + 1 : 1);
  79446. });
  79447. return _this;
  79448. }
  79449. return GrainPostProcess;
  79450. }(BABYLON.PostProcess));
  79451. BABYLON.GrainPostProcess = GrainPostProcess;
  79452. })(BABYLON || (BABYLON = {}));
  79453. //# sourceMappingURL=babylon.grainPostProcess.js.map
  79454. var BABYLON;
  79455. (function (BABYLON) {
  79456. /**
  79457. * The SharpenPostProcess applies a sharpen kernel to every pixel
  79458. * See http://en.wikipedia.org/wiki/Kernel_(image_processing)
  79459. */
  79460. var SharpenPostProcess = /** @class */ (function (_super) {
  79461. __extends(SharpenPostProcess, _super);
  79462. /**
  79463. * Creates a new instance ConvolutionPostProcess
  79464. * @param name The name of the effect.
  79465. * @param options The required width/height ratio to downsize to before computing the render pass.
  79466. * @param camera The camera to apply the render pass to.
  79467. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79468. * @param engine The engine which the post process will be applied. (default: current engine)
  79469. * @param reusable If the post process can be reused on the same frame. (default: false)
  79470. * @param textureType Type of textures used when performing the post process. (default: 0)
  79471. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79472. */
  79473. function SharpenPostProcess(name, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  79474. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79475. if (blockCompilation === void 0) { blockCompilation = false; }
  79476. var _this = _super.call(this, name, "sharpen", ["sharpnessAmounts", "screenSize"], null, options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, blockCompilation) || this;
  79477. /**
  79478. * How much of the original color should be applied. Setting this to 0 will display edge detection. (default: 1)
  79479. */
  79480. _this.colorAmount = 1.0;
  79481. /**
  79482. * How much sharpness should be applied (default: 0.3)
  79483. */
  79484. _this.edgeAmount = 0.3;
  79485. _this.onApply = function (effect) {
  79486. effect.setFloat2("screenSize", _this.width, _this.height);
  79487. effect.setFloat2("sharpnessAmounts", _this.edgeAmount, _this.colorAmount);
  79488. };
  79489. return _this;
  79490. }
  79491. return SharpenPostProcess;
  79492. }(BABYLON.PostProcess));
  79493. BABYLON.SharpenPostProcess = SharpenPostProcess;
  79494. })(BABYLON || (BABYLON = {}));
  79495. //# sourceMappingURL=babylon.sharpenPostProcess.js.map
  79496. var BABYLON;
  79497. (function (BABYLON) {
  79498. /**
  79499. * The Blur Post Process which blurs an image based on a kernel and direction.
  79500. * Can be used twice in x and y directions to perform a guassian blur in two passes.
  79501. */
  79502. var BlurPostProcess = /** @class */ (function (_super) {
  79503. __extends(BlurPostProcess, _super);
  79504. /**
  79505. * Creates a new instance BlurPostProcess
  79506. * @param name The name of the effect.
  79507. * @param direction The direction in which to blur the image.
  79508. * @param kernel The size of the kernel to be used when computing the blur. eg. Size of 3 will blur the center pixel by 2 pixels surrounding it.
  79509. * @param options The required width/height ratio to downsize to before computing the render pass. (Use 1.0 for full size)
  79510. * @param camera The camera to apply the render pass to.
  79511. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79512. * @param engine The engine which the post process will be applied. (default: current engine)
  79513. * @param reusable If the post process can be reused on the same frame. (default: false)
  79514. * @param textureType Type of textures used when performing the post process. (default: 0)
  79515. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79516. */
  79517. function BlurPostProcess(name,
  79518. /** The direction in which to blur the image. */
  79519. direction, kernel, options, camera, samplingMode, engine, reusable, textureType, defines, blockCompilation) {
  79520. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  79521. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79522. if (defines === void 0) { defines = ""; }
  79523. if (blockCompilation === void 0) { blockCompilation = false; }
  79524. var _this = _super.call(this, name, "kernelBlur", ["delta", "direction", "cameraMinMaxZ"], ["circleOfConfusionSampler"], options, camera, samplingMode, engine, reusable, null, textureType, "kernelBlur", { varyingCount: 0, depCount: 0 }, true) || this;
  79525. _this.direction = direction;
  79526. _this.blockCompilation = blockCompilation;
  79527. _this._packedFloat = false;
  79528. _this._staticDefines = "";
  79529. _this._staticDefines = defines;
  79530. _this.onApplyObservable.add(function (effect) {
  79531. if (_this._outputTexture) {
  79532. effect.setFloat2('delta', (1 / _this._outputTexture.width) * _this.direction.x, (1 / _this._outputTexture.height) * _this.direction.y);
  79533. }
  79534. else {
  79535. effect.setFloat2('delta', (1 / _this.width) * _this.direction.x, (1 / _this.height) * _this.direction.y);
  79536. }
  79537. });
  79538. _this.kernel = kernel;
  79539. return _this;
  79540. }
  79541. Object.defineProperty(BlurPostProcess.prototype, "kernel", {
  79542. /**
  79543. * Gets the length in pixels of the blur sample region
  79544. */
  79545. get: function () {
  79546. return this._idealKernel;
  79547. },
  79548. /**
  79549. * Sets the length in pixels of the blur sample region
  79550. */
  79551. set: function (v) {
  79552. if (this._idealKernel === v) {
  79553. return;
  79554. }
  79555. v = Math.max(v, 1);
  79556. this._idealKernel = v;
  79557. this._kernel = this._nearestBestKernel(v);
  79558. if (!this.blockCompilation) {
  79559. this._updateParameters();
  79560. }
  79561. },
  79562. enumerable: true,
  79563. configurable: true
  79564. });
  79565. Object.defineProperty(BlurPostProcess.prototype, "packedFloat", {
  79566. /**
  79567. * Gets wether or not the blur is unpacking/repacking floats
  79568. */
  79569. get: function () {
  79570. return this._packedFloat;
  79571. },
  79572. /**
  79573. * Sets wether or not the blur needs to unpack/repack floats
  79574. */
  79575. set: function (v) {
  79576. if (this._packedFloat === v) {
  79577. return;
  79578. }
  79579. this._packedFloat = v;
  79580. if (!this.blockCompilation) {
  79581. this._updateParameters();
  79582. }
  79583. },
  79584. enumerable: true,
  79585. configurable: true
  79586. });
  79587. /**
  79588. * Updates the effect with the current post process compile time values and recompiles the shader.
  79589. * @param defines Define statements that should be added at the beginning of the shader. (default: null)
  79590. * @param uniforms Set of uniform variables that will be passed to the shader. (default: null)
  79591. * @param samplers Set of Texture2D variables that will be passed to the shader. (default: null)
  79592. * @param indexParameters The index parameters to be used for babylons include syntax "#include<kernelBlurVaryingDeclaration>[0..varyingCount]". (default: undefined) See usage in babylon.blurPostProcess.ts and kernelBlur.vertex.fx
  79593. * @param onCompiled Called when the shader has been compiled.
  79594. * @param onError Called if there is an error when compiling a shader.
  79595. */
  79596. BlurPostProcess.prototype.updateEffect = function (defines, uniforms, samplers, indexParameters, onCompiled, onError) {
  79597. if (defines === void 0) { defines = null; }
  79598. if (uniforms === void 0) { uniforms = null; }
  79599. if (samplers === void 0) { samplers = null; }
  79600. this._updateParameters(onCompiled, onError);
  79601. };
  79602. BlurPostProcess.prototype._updateParameters = function (onCompiled, onError) {
  79603. // Generate sampling offsets and weights
  79604. var N = this._kernel;
  79605. var centerIndex = (N - 1) / 2;
  79606. // Generate Gaussian sampling weights over kernel
  79607. var offsets = [];
  79608. var weights = [];
  79609. var totalWeight = 0;
  79610. for (var i = 0; i < N; i++) {
  79611. var u = i / (N - 1);
  79612. var w = this._gaussianWeight(u * 2.0 - 1);
  79613. offsets[i] = (i - centerIndex);
  79614. weights[i] = w;
  79615. totalWeight += w;
  79616. }
  79617. // Normalize weights
  79618. for (var i = 0; i < weights.length; i++) {
  79619. weights[i] /= totalWeight;
  79620. }
  79621. // Optimize: combine samples to take advantage of hardware linear sampling
  79622. // Walk from left to center, combining pairs (symmetrically)
  79623. var linearSamplingWeights = [];
  79624. var linearSamplingOffsets = [];
  79625. var linearSamplingMap = [];
  79626. for (var i = 0; i <= centerIndex; i += 2) {
  79627. var j = Math.min(i + 1, Math.floor(centerIndex));
  79628. var singleCenterSample = i === j;
  79629. if (singleCenterSample) {
  79630. linearSamplingMap.push({ o: offsets[i], w: weights[i] });
  79631. }
  79632. else {
  79633. var sharedCell = j === centerIndex;
  79634. var weightLinear = (weights[i] + weights[j] * (sharedCell ? .5 : 1.));
  79635. var offsetLinear = offsets[i] + 1 / (1 + weights[i] / weights[j]);
  79636. if (offsetLinear === 0) {
  79637. linearSamplingMap.push({ o: offsets[i], w: weights[i] });
  79638. linearSamplingMap.push({ o: offsets[i + 1], w: weights[i + 1] });
  79639. }
  79640. else {
  79641. linearSamplingMap.push({ o: offsetLinear, w: weightLinear });
  79642. linearSamplingMap.push({ o: -offsetLinear, w: weightLinear });
  79643. }
  79644. }
  79645. }
  79646. for (var i = 0; i < linearSamplingMap.length; i++) {
  79647. linearSamplingOffsets[i] = linearSamplingMap[i].o;
  79648. linearSamplingWeights[i] = linearSamplingMap[i].w;
  79649. }
  79650. // Replace with optimized
  79651. offsets = linearSamplingOffsets;
  79652. weights = linearSamplingWeights;
  79653. // Generate shaders
  79654. var maxVaryingRows = this.getEngine().getCaps().maxVaryingVectors;
  79655. var freeVaryingVec2 = Math.max(maxVaryingRows, 0.) - 1; // Because of sampleCenter
  79656. var varyingCount = Math.min(offsets.length, freeVaryingVec2);
  79657. var defines = "";
  79658. defines += this._staticDefines;
  79659. // The DOF fragment should ignore the center pixel when looping as it is handled manualy in the fragment shader.
  79660. if (this._staticDefines.indexOf("DOF") != -1) {
  79661. defines += "#define CENTER_WEIGHT " + this._glslFloat(weights[varyingCount - 1]) + "\r\n";
  79662. varyingCount--;
  79663. }
  79664. for (var i = 0; i < varyingCount; i++) {
  79665. defines += "#define KERNEL_OFFSET" + i + " " + this._glslFloat(offsets[i]) + "\r\n";
  79666. defines += "#define KERNEL_WEIGHT" + i + " " + this._glslFloat(weights[i]) + "\r\n";
  79667. }
  79668. var depCount = 0;
  79669. for (var i = freeVaryingVec2; i < offsets.length; i++) {
  79670. defines += "#define KERNEL_DEP_OFFSET" + depCount + " " + this._glslFloat(offsets[i]) + "\r\n";
  79671. defines += "#define KERNEL_DEP_WEIGHT" + depCount + " " + this._glslFloat(weights[i]) + "\r\n";
  79672. depCount++;
  79673. }
  79674. if (this.packedFloat) {
  79675. defines += "#define PACKEDFLOAT 1";
  79676. }
  79677. this.blockCompilation = false;
  79678. _super.prototype.updateEffect.call(this, defines, null, null, {
  79679. varyingCount: varyingCount,
  79680. depCount: depCount
  79681. }, onCompiled, onError);
  79682. };
  79683. /**
  79684. * Best kernels are odd numbers that when divided by 2, their integer part is even, so 5, 9 or 13.
  79685. * Other odd kernels optimize correctly but require proportionally more samples, even kernels are
  79686. * possible but will produce minor visual artifacts. Since each new kernel requires a new shader we
  79687. * want to minimize kernel changes, having gaps between physical kernels is helpful in that regard.
  79688. * The gaps between physical kernels are compensated for in the weighting of the samples
  79689. * @param idealKernel Ideal blur kernel.
  79690. * @return Nearest best kernel.
  79691. */
  79692. BlurPostProcess.prototype._nearestBestKernel = function (idealKernel) {
  79693. var v = Math.round(idealKernel);
  79694. for (var _i = 0, _a = [v, v - 1, v + 1, v - 2, v + 2]; _i < _a.length; _i++) {
  79695. var k = _a[_i];
  79696. if (((k % 2) !== 0) && ((Math.floor(k / 2) % 2) === 0) && k > 0) {
  79697. return Math.max(k, 3);
  79698. }
  79699. }
  79700. return Math.max(v, 3);
  79701. };
  79702. /**
  79703. * Calculates the value of a Gaussian distribution with sigma 3 at a given point.
  79704. * @param x The point on the Gaussian distribution to sample.
  79705. * @return the value of the Gaussian function at x.
  79706. */
  79707. BlurPostProcess.prototype._gaussianWeight = function (x) {
  79708. //reference: Engine/ImageProcessingBlur.cpp #dcc760
  79709. // We are evaluating the Gaussian (normal) distribution over a kernel parameter space of [-1,1],
  79710. // so we truncate at three standard deviations by setting stddev (sigma) to 1/3.
  79711. // The choice of 3-sigma truncation is common but arbitrary, and means that the signal is
  79712. // truncated at around 1.3% of peak strength.
  79713. //the distribution is scaled to account for the difference between the actual kernel size and the requested kernel size
  79714. var sigma = (1 / 3);
  79715. var denominator = Math.sqrt(2.0 * Math.PI) * sigma;
  79716. var exponent = -((x * x) / (2.0 * sigma * sigma));
  79717. var weight = (1.0 / denominator) * Math.exp(exponent);
  79718. return weight;
  79719. };
  79720. /**
  79721. * Generates a string that can be used as a floating point number in GLSL.
  79722. * @param x Value to print.
  79723. * @param decimalFigures Number of decimal places to print the number to (excluding trailing 0s).
  79724. * @return GLSL float string.
  79725. */
  79726. BlurPostProcess.prototype._glslFloat = function (x, decimalFigures) {
  79727. if (decimalFigures === void 0) { decimalFigures = 8; }
  79728. return x.toFixed(decimalFigures).replace(/0+$/, '');
  79729. };
  79730. return BlurPostProcess;
  79731. }(BABYLON.PostProcess));
  79732. BABYLON.BlurPostProcess = BlurPostProcess;
  79733. })(BABYLON || (BABYLON = {}));
  79734. //# sourceMappingURL=babylon.blurPostProcess.js.map
  79735. var BABYLON;
  79736. (function (BABYLON) {
  79737. /**
  79738. * The DepthOfFieldBlurPostProcess applied a blur in a give direction.
  79739. * This blur differs from the standard BlurPostProcess as it attempts to avoid blurring pixels
  79740. * based on samples that have a large difference in distance than the center pixel.
  79741. * See section 2.6.2 http://fileadmin.cs.lth.se/cs/education/edan35/lectures/12dof.pdf
  79742. */
  79743. var DepthOfFieldBlurPostProcess = /** @class */ (function (_super) {
  79744. __extends(DepthOfFieldBlurPostProcess, _super);
  79745. /**
  79746. * Creates a new instance CircleOfConfusionPostProcess
  79747. * @param name The name of the effect.
  79748. * @param scene The scene the effect belongs to.
  79749. * @param direction The direction the blur should be applied.
  79750. * @param kernel The size of the kernel used to blur.
  79751. * @param options The required width/height ratio to downsize to before computing the render pass.
  79752. * @param camera The camera to apply the render pass to.
  79753. * @param circleOfConfusion The circle of confusion + depth map to be used to avoid blurring accross edges
  79754. * @param imageToBlur The image to apply the blur to (default: Current rendered frame)
  79755. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79756. * @param engine The engine which the post process will be applied. (default: current engine)
  79757. * @param reusable If the post process can be reused on the same frame. (default: false)
  79758. * @param textureType Type of textures used when performing the post process. (default: 0)
  79759. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79760. */
  79761. function DepthOfFieldBlurPostProcess(name, scene, direction, kernel, options, camera, circleOfConfusion, imageToBlur, samplingMode, engine, reusable, textureType, blockCompilation) {
  79762. if (imageToBlur === void 0) { imageToBlur = null; }
  79763. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  79764. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79765. if (blockCompilation === void 0) { blockCompilation = false; }
  79766. var _this = _super.call(this, name, direction, kernel, options, camera, samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, reusable, textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT, "#define DOF 1\r\n", blockCompilation) || this;
  79767. _this.direction = direction;
  79768. _this.onApplyObservable.add(function (effect) {
  79769. if (imageToBlur != null) {
  79770. effect.setTextureFromPostProcess("textureSampler", imageToBlur);
  79771. }
  79772. effect.setTextureFromPostProcessOutput("circleOfConfusionSampler", circleOfConfusion);
  79773. if (scene.activeCamera) {
  79774. effect.setFloat2('cameraMinMaxZ', scene.activeCamera.minZ, scene.activeCamera.maxZ);
  79775. }
  79776. });
  79777. return _this;
  79778. }
  79779. return DepthOfFieldBlurPostProcess;
  79780. }(BABYLON.BlurPostProcess));
  79781. BABYLON.DepthOfFieldBlurPostProcess = DepthOfFieldBlurPostProcess;
  79782. })(BABYLON || (BABYLON = {}));
  79783. //# sourceMappingURL=babylon.depthOfFieldBlurPostProcess.js.map
  79784. var BABYLON;
  79785. (function (BABYLON) {
  79786. /**
  79787. * Options to be set when merging outputs from the default pipeline.
  79788. */
  79789. var DepthOfFieldMergePostProcessOptions = /** @class */ (function () {
  79790. function DepthOfFieldMergePostProcessOptions() {
  79791. }
  79792. return DepthOfFieldMergePostProcessOptions;
  79793. }());
  79794. BABYLON.DepthOfFieldMergePostProcessOptions = DepthOfFieldMergePostProcessOptions;
  79795. /**
  79796. * The DepthOfFieldMergePostProcess merges blurred images with the original based on the values of the circle of confusion.
  79797. */
  79798. var DepthOfFieldMergePostProcess = /** @class */ (function (_super) {
  79799. __extends(DepthOfFieldMergePostProcess, _super);
  79800. /**
  79801. * Creates a new instance of DepthOfFieldMergePostProcess
  79802. * @param name The name of the effect.
  79803. * @param originalFromInput Post process which's input will be used for the merge.
  79804. * @param circleOfConfusion Circle of confusion post process which's output will be used to blur each pixel.
  79805. * @param blurSteps Blur post processes from low to high which will be mixed with the original image.
  79806. * @param options The required width/height ratio to downsize to before computing the render pass.
  79807. * @param camera The camera to apply the render pass to.
  79808. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79809. * @param engine The engine which the post process will be applied. (default: current engine)
  79810. * @param reusable If the post process can be reused on the same frame. (default: false)
  79811. * @param textureType Type of textures used when performing the post process. (default: 0)
  79812. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79813. */
  79814. function DepthOfFieldMergePostProcess(name, originalFromInput, circleOfConfusion, blurSteps, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  79815. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79816. if (blockCompilation === void 0) { blockCompilation = false; }
  79817. var _this = _super.call(this, name, "depthOfFieldMerge", [], ["circleOfConfusionSampler", "blurStep0", "blurStep1", "blurStep2"], options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, true) || this;
  79818. _this.blurSteps = blurSteps;
  79819. _this.onApplyObservable.add(function (effect) {
  79820. effect.setTextureFromPostProcess("textureSampler", originalFromInput);
  79821. effect.setTextureFromPostProcessOutput("circleOfConfusionSampler", circleOfConfusion);
  79822. blurSteps.forEach(function (step, index) {
  79823. effect.setTextureFromPostProcessOutput("blurStep" + (blurSteps.length - index - 1), step);
  79824. });
  79825. });
  79826. if (!blockCompilation) {
  79827. _this.updateEffect();
  79828. }
  79829. return _this;
  79830. }
  79831. /**
  79832. * Updates the effect with the current post process compile time values and recompiles the shader.
  79833. * @param defines Define statements that should be added at the beginning of the shader. (default: null)
  79834. * @param uniforms Set of uniform variables that will be passed to the shader. (default: null)
  79835. * @param samplers Set of Texture2D variables that will be passed to the shader. (default: null)
  79836. * @param indexParameters The index parameters to be used for babylons include syntax "#include<kernelBlurVaryingDeclaration>[0..varyingCount]". (default: undefined) See usage in babylon.blurPostProcess.ts and kernelBlur.vertex.fx
  79837. * @param onCompiled Called when the shader has been compiled.
  79838. * @param onError Called if there is an error when compiling a shader.
  79839. */
  79840. DepthOfFieldMergePostProcess.prototype.updateEffect = function (defines, uniforms, samplers, indexParameters, onCompiled, onError) {
  79841. if (defines === void 0) { defines = null; }
  79842. if (uniforms === void 0) { uniforms = null; }
  79843. if (samplers === void 0) { samplers = null; }
  79844. if (!defines) {
  79845. defines = "";
  79846. defines += "#define BLUR_LEVEL " + (this.blurSteps.length - 1) + "\n";
  79847. }
  79848. _super.prototype.updateEffect.call(this, defines, uniforms, samplers, indexParameters, onCompiled, onError);
  79849. };
  79850. return DepthOfFieldMergePostProcess;
  79851. }(BABYLON.PostProcess));
  79852. BABYLON.DepthOfFieldMergePostProcess = DepthOfFieldMergePostProcess;
  79853. })(BABYLON || (BABYLON = {}));
  79854. //# sourceMappingURL=babylon.depthOfFieldMergePostProcess.js.map
  79855. var BABYLON;
  79856. (function (BABYLON) {
  79857. /**
  79858. * The CircleOfConfusionPostProcess computes the circle of confusion value for each pixel given required lens parameters. See https://en.wikipedia.org/wiki/Circle_of_confusion
  79859. */
  79860. var CircleOfConfusionPostProcess = /** @class */ (function (_super) {
  79861. __extends(CircleOfConfusionPostProcess, _super);
  79862. /**
  79863. * Creates a new instance CircleOfConfusionPostProcess
  79864. * @param name The name of the effect.
  79865. * @param depthTexture The depth texture of the scene to compute the circle of confusion. This must be set in order for this to function but may be set after initialization if needed.
  79866. * @param options The required width/height ratio to downsize to before computing the render pass.
  79867. * @param camera The camera to apply the render pass to.
  79868. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  79869. * @param engine The engine which the post process will be applied. (default: current engine)
  79870. * @param reusable If the post process can be reused on the same frame. (default: false)
  79871. * @param textureType Type of textures used when performing the post process. (default: 0)
  79872. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79873. */
  79874. function CircleOfConfusionPostProcess(name, depthTexture, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  79875. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  79876. if (blockCompilation === void 0) { blockCompilation = false; }
  79877. var _this = _super.call(this, name, "circleOfConfusion", ["cameraMinMaxZ", "focusDistance", "cocPrecalculation"], ["depthSampler"], options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, blockCompilation) || this;
  79878. /**
  79879. * Max lens size in scene units/1000 (eg. millimeter). Standard cameras are 50mm. (default: 50) The diamater of the resulting aperture can be computed by lensSize/fStop.
  79880. */
  79881. _this.lensSize = 50;
  79882. /**
  79883. * F-Stop of the effect's camera. The diamater of the resulting aperture can be computed by lensSize/fStop. (default: 1.4)
  79884. */
  79885. _this.fStop = 1.4;
  79886. /**
  79887. * Distance away from the camera to focus on in scene units/1000 (eg. millimeter). (default: 2000)
  79888. */
  79889. _this.focusDistance = 2000;
  79890. /**
  79891. * Focal length of the effect's camera in scene units/1000 (eg. millimeter). (default: 50)
  79892. */
  79893. _this.focalLength = 50;
  79894. _this._depthTexture = null;
  79895. _this._depthTexture = depthTexture;
  79896. _this.onApplyObservable.add(function (effect) {
  79897. if (!_this._depthTexture) {
  79898. BABYLON.Tools.Warn("No depth texture set on CircleOfConfusionPostProcess");
  79899. return;
  79900. }
  79901. effect.setTexture("depthSampler", _this._depthTexture);
  79902. // Circle of confusion calculation, See https://developer.nvidia.com/gpugems/GPUGems/gpugems_ch23.html
  79903. var aperture = _this.lensSize / _this.fStop;
  79904. var cocPrecalculation = ((aperture * _this.focalLength) / ((_this.focusDistance - _this.focalLength))); // * ((this.focusDistance - pixelDistance)/pixelDistance) [This part is done in shader]
  79905. effect.setFloat('focusDistance', _this.focusDistance);
  79906. effect.setFloat('cocPrecalculation', cocPrecalculation);
  79907. effect.setFloat2('cameraMinMaxZ', _this._depthTexture.activeCamera.minZ, _this._depthTexture.activeCamera.maxZ);
  79908. });
  79909. return _this;
  79910. }
  79911. Object.defineProperty(CircleOfConfusionPostProcess.prototype, "depthTexture", {
  79912. /**
  79913. * Depth texture to be used to compute the circle of confusion. This must be set here or in the constructor in order for the post process to function.
  79914. */
  79915. set: function (value) {
  79916. this._depthTexture = value;
  79917. },
  79918. enumerable: true,
  79919. configurable: true
  79920. });
  79921. return CircleOfConfusionPostProcess;
  79922. }(BABYLON.PostProcess));
  79923. BABYLON.CircleOfConfusionPostProcess = CircleOfConfusionPostProcess;
  79924. })(BABYLON || (BABYLON = {}));
  79925. //# sourceMappingURL=babylon.circleOfConfusionPostProcess.js.map
  79926. var BABYLON;
  79927. (function (BABYLON) {
  79928. /**
  79929. * Specifies the level of max blur that should be applied when using the depth of field effect
  79930. */
  79931. var DepthOfFieldEffectBlurLevel;
  79932. (function (DepthOfFieldEffectBlurLevel) {
  79933. /**
  79934. * Subtle blur
  79935. */
  79936. DepthOfFieldEffectBlurLevel[DepthOfFieldEffectBlurLevel["Low"] = 0] = "Low";
  79937. /**
  79938. * Medium blur
  79939. */
  79940. DepthOfFieldEffectBlurLevel[DepthOfFieldEffectBlurLevel["Medium"] = 1] = "Medium";
  79941. /**
  79942. * Large blur
  79943. */
  79944. DepthOfFieldEffectBlurLevel[DepthOfFieldEffectBlurLevel["High"] = 2] = "High";
  79945. })(DepthOfFieldEffectBlurLevel = BABYLON.DepthOfFieldEffectBlurLevel || (BABYLON.DepthOfFieldEffectBlurLevel = {}));
  79946. ;
  79947. /**
  79948. * The depth of field effect applies a blur to objects that are closer or further from where the camera is focusing.
  79949. */
  79950. var DepthOfFieldEffect = /** @class */ (function (_super) {
  79951. __extends(DepthOfFieldEffect, _super);
  79952. /**
  79953. * Creates a new instance DepthOfFieldEffect
  79954. * @param scene The scene the effect belongs to.
  79955. * @param depthTexture The depth texture of the scene to compute the circle of confusion.This must be set in order for this to function but may be set after initialization if needed.
  79956. * @param pipelineTextureType The type of texture to be used when performing the post processing.
  79957. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  79958. */
  79959. function DepthOfFieldEffect(scene, depthTexture, blurLevel, pipelineTextureType, blockCompilation) {
  79960. if (blurLevel === void 0) { blurLevel = DepthOfFieldEffectBlurLevel.Low; }
  79961. if (pipelineTextureType === void 0) { pipelineTextureType = 0; }
  79962. if (blockCompilation === void 0) { blockCompilation = false; }
  79963. var _this = _super.call(this, scene.getEngine(), "depth of field", function () {
  79964. return _this._effects;
  79965. }, true) || this;
  79966. /**
  79967. * @hidden Internal post processes in depth of field effect
  79968. */
  79969. _this._effects = [];
  79970. // Circle of confusion value for each pixel is used to determine how much to blur that pixel
  79971. _this._circleOfConfusion = new BABYLON.CircleOfConfusionPostProcess("circleOfConfusion", depthTexture, 1, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  79972. // Create a pyramid of blurred images (eg. fullSize 1/4 blur, half size 1/2 blur, quarter size 3/4 blur, eith size 4/4 blur)
  79973. // Blur the image but do not blur on sharp far to near distance changes to avoid bleeding artifacts
  79974. // See section 2.6.2 http://fileadmin.cs.lth.se/cs/education/edan35/lectures/12dof.pdf
  79975. _this._depthOfFieldBlurY = [];
  79976. _this._depthOfFieldBlurX = [];
  79977. var blurCount = 1;
  79978. var kernelSize = 15;
  79979. switch (blurLevel) {
  79980. case DepthOfFieldEffectBlurLevel.High: {
  79981. blurCount = 3;
  79982. kernelSize = 51;
  79983. break;
  79984. }
  79985. case DepthOfFieldEffectBlurLevel.Medium: {
  79986. blurCount = 2;
  79987. kernelSize = 31;
  79988. break;
  79989. }
  79990. default: {
  79991. kernelSize = 15;
  79992. blurCount = 1;
  79993. break;
  79994. }
  79995. }
  79996. var adjustedKernelSize = kernelSize / Math.pow(2, blurCount - 1);
  79997. var ratio = 1.0;
  79998. for (var i = 0; i < blurCount; i++) {
  79999. var blurY = new BABYLON.DepthOfFieldBlurPostProcess("verticle blur", scene, new BABYLON.Vector2(0, 1.0), adjustedKernelSize, ratio, null, _this._circleOfConfusion, i == 0 ? _this._circleOfConfusion : null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  80000. blurY.autoClear = false;
  80001. ratio = 0.75 / Math.pow(2, i);
  80002. var blurX = new BABYLON.DepthOfFieldBlurPostProcess("horizontal blur", scene, new BABYLON.Vector2(1.0, 0), adjustedKernelSize, ratio, null, _this._circleOfConfusion, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  80003. blurX.autoClear = false;
  80004. _this._depthOfFieldBlurY.push(blurY);
  80005. _this._depthOfFieldBlurX.push(blurX);
  80006. }
  80007. // Set all post processes on the effect.
  80008. _this._effects = [_this._circleOfConfusion];
  80009. for (var i = 0; i < _this._depthOfFieldBlurX.length; i++) {
  80010. _this._effects.push(_this._depthOfFieldBlurY[i]);
  80011. _this._effects.push(_this._depthOfFieldBlurX[i]);
  80012. }
  80013. // Merge blurred images with original image based on circleOfConfusion
  80014. _this._dofMerge = new BABYLON.DepthOfFieldMergePostProcess("dofMerge", _this._circleOfConfusion, _this._circleOfConfusion, _this._depthOfFieldBlurX, ratio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  80015. _this._dofMerge.autoClear = false;
  80016. _this._effects.push(_this._dofMerge);
  80017. return _this;
  80018. }
  80019. Object.defineProperty(DepthOfFieldEffect.prototype, "focalLength", {
  80020. get: function () {
  80021. return this._circleOfConfusion.focalLength;
  80022. },
  80023. /**
  80024. * The focal the length of the camera used in the effect in scene units/1000 (eg. millimeter)
  80025. */
  80026. set: function (value) {
  80027. this._circleOfConfusion.focalLength = value;
  80028. },
  80029. enumerable: true,
  80030. configurable: true
  80031. });
  80032. Object.defineProperty(DepthOfFieldEffect.prototype, "fStop", {
  80033. get: function () {
  80034. return this._circleOfConfusion.fStop;
  80035. },
  80036. /**
  80037. * F-Stop of the effect's camera. The diamater of the resulting aperture can be computed by lensSize/fStop. (default: 1.4)
  80038. */
  80039. set: function (value) {
  80040. this._circleOfConfusion.fStop = value;
  80041. },
  80042. enumerable: true,
  80043. configurable: true
  80044. });
  80045. Object.defineProperty(DepthOfFieldEffect.prototype, "focusDistance", {
  80046. get: function () {
  80047. return this._circleOfConfusion.focusDistance;
  80048. },
  80049. /**
  80050. * Distance away from the camera to focus on in scene units/1000 (eg. millimeter). (default: 2000)
  80051. */
  80052. set: function (value) {
  80053. this._circleOfConfusion.focusDistance = value;
  80054. },
  80055. enumerable: true,
  80056. configurable: true
  80057. });
  80058. Object.defineProperty(DepthOfFieldEffect.prototype, "lensSize", {
  80059. get: function () {
  80060. return this._circleOfConfusion.lensSize;
  80061. },
  80062. /**
  80063. * Max lens size in scene units/1000 (eg. millimeter). Standard cameras are 50mm. (default: 50) The diamater of the resulting aperture can be computed by lensSize/fStop.
  80064. */
  80065. set: function (value) {
  80066. this._circleOfConfusion.lensSize = value;
  80067. },
  80068. enumerable: true,
  80069. configurable: true
  80070. });
  80071. Object.defineProperty(DepthOfFieldEffect.prototype, "depthTexture", {
  80072. /**
  80073. * Depth texture to be used to compute the circle of confusion. This must be set here or in the constructor in order for the post process to function.
  80074. */
  80075. set: function (value) {
  80076. this._circleOfConfusion.depthTexture = value;
  80077. },
  80078. enumerable: true,
  80079. configurable: true
  80080. });
  80081. /**
  80082. * Disposes each of the internal effects for a given camera.
  80083. * @param camera The camera to dispose the effect on.
  80084. */
  80085. DepthOfFieldEffect.prototype.disposeEffects = function (camera) {
  80086. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80087. this._effects[effectIndex].dispose(camera);
  80088. }
  80089. };
  80090. /**
  80091. * @hidden Internal
  80092. */
  80093. DepthOfFieldEffect.prototype._updateEffects = function () {
  80094. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80095. this._effects[effectIndex].updateEffect();
  80096. }
  80097. };
  80098. /**
  80099. * Internal
  80100. * @returns if all the contained post processes are ready.
  80101. * @hidden
  80102. */
  80103. DepthOfFieldEffect.prototype._isReady = function () {
  80104. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80105. if (!this._effects[effectIndex].isReady()) {
  80106. return false;
  80107. }
  80108. }
  80109. return true;
  80110. };
  80111. return DepthOfFieldEffect;
  80112. }(BABYLON.PostProcessRenderEffect));
  80113. BABYLON.DepthOfFieldEffect = DepthOfFieldEffect;
  80114. })(BABYLON || (BABYLON = {}));
  80115. //# sourceMappingURL=babylon.depthOfFieldEffect.js.map
  80116. var BABYLON;
  80117. (function (BABYLON) {
  80118. /**
  80119. * The BloomMergePostProcess merges blurred images with the original based on the values of the circle of confusion.
  80120. */
  80121. var BloomMergePostProcess = /** @class */ (function (_super) {
  80122. __extends(BloomMergePostProcess, _super);
  80123. /**
  80124. * Creates a new instance of @see BloomMergePostProcess
  80125. * @param name The name of the effect.
  80126. * @param originalFromInput Post process which's input will be used for the merge.
  80127. * @param blurred Blurred highlights post process which's output will be used.
  80128. * @param weight Weight of the bloom to be added to the original input.
  80129. * @param options The required width/height ratio to downsize to before computing the render pass.
  80130. * @param camera The camera to apply the render pass to.
  80131. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  80132. * @param engine The engine which the post process will be applied. (default: current engine)
  80133. * @param reusable If the post process can be reused on the same frame. (default: false)
  80134. * @param textureType Type of textures used when performing the post process. (default: 0)
  80135. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  80136. */
  80137. function BloomMergePostProcess(name, originalFromInput, blurred,
  80138. /** Weight of the bloom to be added to the original input. */
  80139. weight, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  80140. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  80141. if (blockCompilation === void 0) { blockCompilation = false; }
  80142. var _this = _super.call(this, name, "bloomMerge", ["bloomWeight"], ["circleOfConfusionSampler", "blurStep0", "blurStep1", "blurStep2", "bloomBlur"], options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, true) || this;
  80143. _this.weight = weight;
  80144. _this.onApplyObservable.add(function (effect) {
  80145. effect.setTextureFromPostProcess("textureSampler", originalFromInput);
  80146. effect.setTextureFromPostProcessOutput("bloomBlur", blurred);
  80147. effect.setFloat("bloomWeight", _this.weight);
  80148. });
  80149. if (!blockCompilation) {
  80150. _this.updateEffect();
  80151. }
  80152. return _this;
  80153. }
  80154. return BloomMergePostProcess;
  80155. }(BABYLON.PostProcess));
  80156. BABYLON.BloomMergePostProcess = BloomMergePostProcess;
  80157. })(BABYLON || (BABYLON = {}));
  80158. //# sourceMappingURL=babylon.bloomMergePostProcess.js.map
  80159. var BABYLON;
  80160. (function (BABYLON) {
  80161. /**
  80162. * The extract highlights post process sets all pixels to black except pixels above the specified luminance threshold. Used as the first step for a bloom effect.
  80163. */
  80164. var ExtractHighlightsPostProcess = /** @class */ (function (_super) {
  80165. __extends(ExtractHighlightsPostProcess, _super);
  80166. function ExtractHighlightsPostProcess(name, options, camera, samplingMode, engine, reusable, textureType, blockCompilation) {
  80167. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  80168. if (blockCompilation === void 0) { blockCompilation = false; }
  80169. var _this = _super.call(this, name, "extractHighlights", ["threshold", "exposure"], null, options, camera, samplingMode, engine, reusable, null, textureType, undefined, null, blockCompilation) || this;
  80170. /**
  80171. * The luminance threshold, pixels below this value will be set to black.
  80172. */
  80173. _this.threshold = 0.9;
  80174. /** @hidden */
  80175. _this._exposure = 1;
  80176. /**
  80177. * Post process which has the input texture to be used when performing highlight extraction
  80178. * @hidden
  80179. */
  80180. _this._inputPostProcess = null;
  80181. _this.onApplyObservable.add(function (effect) {
  80182. if (_this._inputPostProcess) {
  80183. effect.setTextureFromPostProcess("textureSampler", _this._inputPostProcess);
  80184. }
  80185. effect.setFloat('threshold', Math.pow(_this.threshold, BABYLON.ToGammaSpace));
  80186. effect.setFloat('exposure', _this._exposure);
  80187. });
  80188. return _this;
  80189. }
  80190. return ExtractHighlightsPostProcess;
  80191. }(BABYLON.PostProcess));
  80192. BABYLON.ExtractHighlightsPostProcess = ExtractHighlightsPostProcess;
  80193. })(BABYLON || (BABYLON = {}));
  80194. //# sourceMappingURL=babylon.extractHighlightsPostProcess.js.map
  80195. var BABYLON;
  80196. (function (BABYLON) {
  80197. /**
  80198. * The bloom effect spreads bright areas of an image to simulate artifacts seen in cameras
  80199. */
  80200. var BloomEffect = /** @class */ (function (_super) {
  80201. __extends(BloomEffect, _super);
  80202. /**
  80203. * Creates a new instance of @see BloomEffect
  80204. * @param scene The scene the effect belongs to.
  80205. * @param bloomScale The ratio of the blur texture to the input texture that should be used to compute the bloom.
  80206. * @param bloomKernel The size of the kernel to be used when applying the blur.
  80207. * @param bloomWeight The the strength of bloom.
  80208. * @param pipelineTextureType The type of texture to be used when performing the post processing.
  80209. * @param blockCompilation If compilation of the shader should not be done in the constructor. The updateEffect method can be used to compile the shader at a later time. (default: false)
  80210. */
  80211. function BloomEffect(scene, bloomScale, bloomWeight, bloomKernel, pipelineTextureType, blockCompilation) {
  80212. if (pipelineTextureType === void 0) { pipelineTextureType = 0; }
  80213. if (blockCompilation === void 0) { blockCompilation = false; }
  80214. var _this = _super.call(this, scene.getEngine(), "bloom", function () {
  80215. return _this._effects;
  80216. }, true) || this;
  80217. _this.bloomScale = bloomScale;
  80218. /**
  80219. * @hidden Internal
  80220. */
  80221. _this._effects = [];
  80222. _this._downscale = new BABYLON.ExtractHighlightsPostProcess("highlights", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  80223. _this._blurX = new BABYLON.BlurPostProcess("horizontal blur", new BABYLON.Vector2(1.0, 0), 10.0, bloomScale, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, undefined, blockCompilation);
  80224. _this._blurX.alwaysForcePOT = true;
  80225. _this._blurX.autoClear = false;
  80226. _this._blurY = new BABYLON.BlurPostProcess("vertical blur", new BABYLON.Vector2(0, 1.0), 10.0, bloomScale, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, undefined, blockCompilation);
  80227. _this._blurY.alwaysForcePOT = true;
  80228. _this._blurY.autoClear = false;
  80229. _this.kernel = bloomKernel;
  80230. _this._effects = [_this._downscale, _this._blurX, _this._blurY];
  80231. _this._merge = new BABYLON.BloomMergePostProcess("bloomMerge", _this._downscale, _this._blurY, bloomWeight, bloomScale, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, scene.getEngine(), false, pipelineTextureType, blockCompilation);
  80232. _this._merge.autoClear = false;
  80233. _this._effects.push(_this._merge);
  80234. return _this;
  80235. }
  80236. Object.defineProperty(BloomEffect.prototype, "threshold", {
  80237. /**
  80238. * The luminance threshold to find bright areas of the image to bloom.
  80239. */
  80240. get: function () {
  80241. return this._downscale.threshold;
  80242. },
  80243. set: function (value) {
  80244. this._downscale.threshold = value;
  80245. },
  80246. enumerable: true,
  80247. configurable: true
  80248. });
  80249. Object.defineProperty(BloomEffect.prototype, "weight", {
  80250. /**
  80251. * The strength of the bloom.
  80252. */
  80253. get: function () {
  80254. return this._merge.weight;
  80255. },
  80256. set: function (value) {
  80257. this._merge.weight = value;
  80258. },
  80259. enumerable: true,
  80260. configurable: true
  80261. });
  80262. Object.defineProperty(BloomEffect.prototype, "kernel", {
  80263. /**
  80264. * Specifies the size of the bloom blur kernel, relative to the final output size
  80265. */
  80266. get: function () {
  80267. return this._blurX.kernel / this.bloomScale;
  80268. },
  80269. set: function (value) {
  80270. this._blurX.kernel = value * this.bloomScale;
  80271. this._blurY.kernel = value * this.bloomScale;
  80272. },
  80273. enumerable: true,
  80274. configurable: true
  80275. });
  80276. /**
  80277. * Disposes each of the internal effects for a given camera.
  80278. * @param camera The camera to dispose the effect on.
  80279. */
  80280. BloomEffect.prototype.disposeEffects = function (camera) {
  80281. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80282. this._effects[effectIndex].dispose(camera);
  80283. }
  80284. };
  80285. /**
  80286. * @hidden Internal
  80287. */
  80288. BloomEffect.prototype._updateEffects = function () {
  80289. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80290. this._effects[effectIndex].updateEffect();
  80291. }
  80292. };
  80293. /**
  80294. * Internal
  80295. * @returns if all the contained post processes are ready.
  80296. * @hidden
  80297. */
  80298. BloomEffect.prototype._isReady = function () {
  80299. for (var effectIndex = 0; effectIndex < this._effects.length; effectIndex++) {
  80300. if (!this._effects[effectIndex].isReady()) {
  80301. return false;
  80302. }
  80303. }
  80304. return true;
  80305. };
  80306. return BloomEffect;
  80307. }(BABYLON.PostProcessRenderEffect));
  80308. BABYLON.BloomEffect = BloomEffect;
  80309. })(BABYLON || (BABYLON = {}));
  80310. //# sourceMappingURL=babylon.bloomEffect.js.map
  80311. var BABYLON;
  80312. (function (BABYLON) {
  80313. /**
  80314. * The default rendering pipeline can be added to a scene to apply common post processing effects such as anti-aliasing or depth of field.
  80315. * See https://doc.babylonjs.com/how_to/using_default_rendering_pipeline
  80316. */
  80317. var DefaultRenderingPipeline = /** @class */ (function (_super) {
  80318. __extends(DefaultRenderingPipeline, _super);
  80319. /**
  80320. * @constructor
  80321. * @param {string} name - The rendering pipeline name (default: "")
  80322. * @param {boolean} hdr - If high dynamic range textures should be used (default: true)
  80323. * @param {BABYLON.Scene} scene - The scene linked to this pipeline (default: the last created scene)
  80324. * @param {BABYLON.Camera[]} cameras - The array of cameras that the rendering pipeline will be attached to (default: scene.cameras)
  80325. * @param {boolean} automaticBuild - if false, you will have to manually call prepare() to update the pipeline (default: true)
  80326. */
  80327. function DefaultRenderingPipeline(name, hdr, scene, cameras, automaticBuild) {
  80328. if (name === void 0) { name = ""; }
  80329. if (hdr === void 0) { hdr = true; }
  80330. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  80331. if (automaticBuild === void 0) { automaticBuild = true; }
  80332. var _this = _super.call(this, scene.getEngine(), name) || this;
  80333. _this._camerasToBeAttached = [];
  80334. /**
  80335. * ID of the sharpen post process,
  80336. */
  80337. _this.SharpenPostProcessId = "SharpenPostProcessEffect";
  80338. /**
  80339. * ID of the image processing post process;
  80340. */
  80341. _this.ImageProcessingPostProcessId = "ImageProcessingPostProcessEffect";
  80342. /**
  80343. * ID of the Fast Approximate Anti-Aliasing post process;
  80344. */
  80345. _this.FxaaPostProcessId = "FxaaPostProcessEffect";
  80346. /**
  80347. * ID of the chromatic aberration post process,
  80348. */
  80349. _this.ChromaticAberrationPostProcessId = "ChromaticAberrationPostProcessEffect";
  80350. /**
  80351. * ID of the grain post process
  80352. */
  80353. _this.GrainPostProcessId = "GrainPostProcessEffect";
  80354. /**
  80355. * Glow post process which adds a glow to emmisive areas of the image
  80356. */
  80357. _this._glowLayer = null;
  80358. /**
  80359. * Animations which can be used to tweak settings over a period of time
  80360. */
  80361. _this.animations = [];
  80362. _this._imageProcessingConfigurationObserver = null;
  80363. // Values
  80364. _this._sharpenEnabled = false;
  80365. _this._bloomEnabled = false;
  80366. _this._depthOfFieldEnabled = false;
  80367. _this._depthOfFieldBlurLevel = BABYLON.DepthOfFieldEffectBlurLevel.Low;
  80368. _this._fxaaEnabled = false;
  80369. _this._imageProcessingEnabled = true;
  80370. _this._bloomScale = 0.5;
  80371. _this._chromaticAberrationEnabled = false;
  80372. _this._grainEnabled = false;
  80373. _this._buildAllowed = true;
  80374. _this._resizeObserver = null;
  80375. _this._hardwareScaleLevel = 1.0;
  80376. _this._bloomKernel = 64;
  80377. /**
  80378. * Specifies the weight of the bloom in the final rendering
  80379. */
  80380. _this._bloomWeight = 0.15;
  80381. /**
  80382. * Specifies the luma threshold for the area that will be blurred by the bloom
  80383. */
  80384. _this._bloomThreshold = 0.9;
  80385. _this._samples = 1;
  80386. _this._hasCleared = false;
  80387. _this._prevPostProcess = null;
  80388. _this._prevPrevPostProcess = null;
  80389. _this._cameras = cameras || scene.cameras;
  80390. _this._cameras = _this._cameras.slice();
  80391. _this._camerasToBeAttached = _this._cameras.slice();
  80392. _this._buildAllowed = automaticBuild;
  80393. // Initialize
  80394. _this._scene = scene;
  80395. var caps = _this._scene.getEngine().getCaps();
  80396. _this._hdr = hdr && (caps.textureHalfFloatRender || caps.textureFloatRender);
  80397. // Misc
  80398. if (_this._hdr) {
  80399. if (caps.textureHalfFloatRender) {
  80400. _this._defaultPipelineTextureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  80401. }
  80402. else if (caps.textureFloatRender) {
  80403. _this._defaultPipelineTextureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  80404. }
  80405. }
  80406. else {
  80407. _this._defaultPipelineTextureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  80408. }
  80409. // Attach
  80410. scene.postProcessRenderPipelineManager.addPipeline(_this);
  80411. var engine = _this._scene.getEngine();
  80412. // Create post processes before hand so they can be modified before enabled.
  80413. // Block compilation flag is set to true to avoid compilation prior to use, these will be updated on first use in build pipeline.
  80414. _this.sharpen = new BABYLON.SharpenPostProcess("sharpen", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, _this._defaultPipelineTextureType, true);
  80415. _this._sharpenEffect = new BABYLON.PostProcessRenderEffect(engine, _this.SharpenPostProcessId, function () { return _this.sharpen; }, true);
  80416. _this.depthOfField = new BABYLON.DepthOfFieldEffect(_this._scene, null, _this._depthOfFieldBlurLevel, _this._defaultPipelineTextureType, true);
  80417. _this.bloom = new BABYLON.BloomEffect(_this._scene, _this._bloomScale, _this._bloomWeight, _this.bloomKernel, _this._defaultPipelineTextureType, true);
  80418. _this.chromaticAberration = new BABYLON.ChromaticAberrationPostProcess("ChromaticAberration", engine.getRenderWidth(), engine.getRenderHeight(), 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, _this._defaultPipelineTextureType, true);
  80419. _this._chromaticAberrationEffect = new BABYLON.PostProcessRenderEffect(engine, _this.ChromaticAberrationPostProcessId, function () { return _this.chromaticAberration; }, true);
  80420. _this.grain = new BABYLON.GrainPostProcess("Grain", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, _this._defaultPipelineTextureType, true);
  80421. _this._grainEffect = new BABYLON.PostProcessRenderEffect(engine, _this.GrainPostProcessId, function () { return _this.grain; }, true);
  80422. _this._resizeObserver = engine.onResizeObservable.add(function () {
  80423. _this._hardwareScaleLevel = engine.getHardwareScalingLevel();
  80424. _this.bloomKernel = _this.bloomKernel;
  80425. });
  80426. _this._imageProcessingConfigurationObserver = _this._scene.imageProcessingConfiguration.onUpdateParameters.add(function () {
  80427. _this.bloom._downscale._exposure = _this._scene.imageProcessingConfiguration.exposure;
  80428. });
  80429. _this._buildPipeline();
  80430. return _this;
  80431. }
  80432. Object.defineProperty(DefaultRenderingPipeline.prototype, "sharpenEnabled", {
  80433. get: function () {
  80434. return this._sharpenEnabled;
  80435. },
  80436. /**
  80437. * Enable or disable the sharpen process from the pipeline
  80438. */
  80439. set: function (enabled) {
  80440. if (this._sharpenEnabled === enabled) {
  80441. return;
  80442. }
  80443. this._sharpenEnabled = enabled;
  80444. this._buildPipeline();
  80445. },
  80446. enumerable: true,
  80447. configurable: true
  80448. });
  80449. Object.defineProperty(DefaultRenderingPipeline.prototype, "bloomKernel", {
  80450. /**
  80451. * Specifies the size of the bloom blur kernel, relative to the final output size
  80452. */
  80453. get: function () {
  80454. return this._bloomKernel;
  80455. },
  80456. set: function (value) {
  80457. this._bloomKernel = value;
  80458. this.bloom.kernel = value / this._hardwareScaleLevel;
  80459. },
  80460. enumerable: true,
  80461. configurable: true
  80462. });
  80463. Object.defineProperty(DefaultRenderingPipeline.prototype, "bloomWeight", {
  80464. get: function () {
  80465. return this._bloomWeight;
  80466. },
  80467. /**
  80468. * The strength of the bloom.
  80469. */
  80470. set: function (value) {
  80471. if (this._bloomWeight === value) {
  80472. return;
  80473. }
  80474. this.bloom.weight = value;
  80475. this._bloomWeight = value;
  80476. },
  80477. enumerable: true,
  80478. configurable: true
  80479. });
  80480. Object.defineProperty(DefaultRenderingPipeline.prototype, "bloomThreshold", {
  80481. get: function () {
  80482. return this._bloomThreshold;
  80483. },
  80484. /**
  80485. * The strength of the bloom.
  80486. */
  80487. set: function (value) {
  80488. if (this._bloomThreshold === value) {
  80489. return;
  80490. }
  80491. this.bloom.threshold = value;
  80492. this._bloomThreshold = value;
  80493. },
  80494. enumerable: true,
  80495. configurable: true
  80496. });
  80497. Object.defineProperty(DefaultRenderingPipeline.prototype, "bloomScale", {
  80498. get: function () {
  80499. return this._bloomScale;
  80500. },
  80501. /**
  80502. * The scale of the bloom, lower value will provide better performance.
  80503. */
  80504. set: function (value) {
  80505. if (this._bloomScale === value) {
  80506. return;
  80507. }
  80508. this._bloomScale = value;
  80509. // recreate bloom and dispose old as this setting is not dynamic
  80510. this._rebuildBloom();
  80511. this._buildPipeline();
  80512. },
  80513. enumerable: true,
  80514. configurable: true
  80515. });
  80516. Object.defineProperty(DefaultRenderingPipeline.prototype, "bloomEnabled", {
  80517. get: function () {
  80518. return this._bloomEnabled;
  80519. },
  80520. /**
  80521. * Enable or disable the bloom from the pipeline
  80522. */
  80523. set: function (enabled) {
  80524. if (this._bloomEnabled === enabled) {
  80525. return;
  80526. }
  80527. this._bloomEnabled = enabled;
  80528. this._buildPipeline();
  80529. },
  80530. enumerable: true,
  80531. configurable: true
  80532. });
  80533. DefaultRenderingPipeline.prototype._rebuildBloom = function () {
  80534. // recreate bloom and dispose old as this setting is not dynamic
  80535. var oldBloom = this.bloom;
  80536. this.bloom = new BABYLON.BloomEffect(this._scene, this.bloomScale, this._bloomWeight, this.bloomKernel, this._defaultPipelineTextureType, false);
  80537. this.bloom.threshold = oldBloom.threshold;
  80538. for (var i = 0; i < this._cameras.length; i++) {
  80539. oldBloom.disposeEffects(this._cameras[i]);
  80540. }
  80541. };
  80542. Object.defineProperty(DefaultRenderingPipeline.prototype, "depthOfFieldEnabled", {
  80543. /**
  80544. * If the depth of field is enabled.
  80545. */
  80546. get: function () {
  80547. return this._depthOfFieldEnabled;
  80548. },
  80549. set: function (enabled) {
  80550. if (this._depthOfFieldEnabled === enabled) {
  80551. return;
  80552. }
  80553. this._depthOfFieldEnabled = enabled;
  80554. this._buildPipeline();
  80555. },
  80556. enumerable: true,
  80557. configurable: true
  80558. });
  80559. Object.defineProperty(DefaultRenderingPipeline.prototype, "depthOfFieldBlurLevel", {
  80560. /**
  80561. * Blur level of the depth of field effect. (Higher blur will effect performance)
  80562. */
  80563. get: function () {
  80564. return this._depthOfFieldBlurLevel;
  80565. },
  80566. set: function (value) {
  80567. if (this._depthOfFieldBlurLevel === value) {
  80568. return;
  80569. }
  80570. this._depthOfFieldBlurLevel = value;
  80571. // recreate dof and dispose old as this setting is not dynamic
  80572. var oldDof = this.depthOfField;
  80573. this.depthOfField = new BABYLON.DepthOfFieldEffect(this._scene, null, this._depthOfFieldBlurLevel, this._defaultPipelineTextureType, false);
  80574. this.depthOfField.focalLength = oldDof.focalLength;
  80575. this.depthOfField.focusDistance = oldDof.focusDistance;
  80576. this.depthOfField.fStop = oldDof.fStop;
  80577. this.depthOfField.lensSize = oldDof.lensSize;
  80578. for (var i = 0; i < this._cameras.length; i++) {
  80579. oldDof.disposeEffects(this._cameras[i]);
  80580. }
  80581. this._buildPipeline();
  80582. },
  80583. enumerable: true,
  80584. configurable: true
  80585. });
  80586. Object.defineProperty(DefaultRenderingPipeline.prototype, "fxaaEnabled", {
  80587. get: function () {
  80588. return this._fxaaEnabled;
  80589. },
  80590. /**
  80591. * If the anti aliasing is enabled.
  80592. */
  80593. set: function (enabled) {
  80594. if (this._fxaaEnabled === enabled) {
  80595. return;
  80596. }
  80597. this._fxaaEnabled = enabled;
  80598. this._buildPipeline();
  80599. },
  80600. enumerable: true,
  80601. configurable: true
  80602. });
  80603. Object.defineProperty(DefaultRenderingPipeline.prototype, "samples", {
  80604. get: function () {
  80605. return this._samples;
  80606. },
  80607. /**
  80608. * MSAA sample count, setting this to 4 will provide 4x anti aliasing. (default: 1)
  80609. */
  80610. set: function (sampleCount) {
  80611. if (this._samples === sampleCount) {
  80612. return;
  80613. }
  80614. this._samples = sampleCount;
  80615. this._buildPipeline();
  80616. },
  80617. enumerable: true,
  80618. configurable: true
  80619. });
  80620. Object.defineProperty(DefaultRenderingPipeline.prototype, "imageProcessingEnabled", {
  80621. get: function () {
  80622. return this._imageProcessingEnabled;
  80623. },
  80624. /**
  80625. * If image processing is enabled.
  80626. */
  80627. set: function (enabled) {
  80628. if (this._imageProcessingEnabled === enabled) {
  80629. return;
  80630. }
  80631. this._imageProcessingEnabled = enabled;
  80632. this._buildPipeline();
  80633. },
  80634. enumerable: true,
  80635. configurable: true
  80636. });
  80637. Object.defineProperty(DefaultRenderingPipeline.prototype, "glowLayerEnabled", {
  80638. get: function () {
  80639. return this._glowLayer == null;
  80640. },
  80641. /**
  80642. * If glow layer is enabled. (Adds a glow effect to emmissive materials)
  80643. */
  80644. set: function (enabled) {
  80645. if (enabled && !this._glowLayer) {
  80646. this._glowLayer = new BABYLON.GlowLayer("", this._scene);
  80647. }
  80648. else if (!enabled && this._glowLayer) {
  80649. this._glowLayer.dispose();
  80650. this._glowLayer = null;
  80651. }
  80652. },
  80653. enumerable: true,
  80654. configurable: true
  80655. });
  80656. Object.defineProperty(DefaultRenderingPipeline.prototype, "chromaticAberrationEnabled", {
  80657. get: function () {
  80658. return this._chromaticAberrationEnabled;
  80659. },
  80660. /**
  80661. * Enable or disable the chromaticAberration process from the pipeline
  80662. */
  80663. set: function (enabled) {
  80664. if (this._chromaticAberrationEnabled === enabled) {
  80665. return;
  80666. }
  80667. this._chromaticAberrationEnabled = enabled;
  80668. this._buildPipeline();
  80669. },
  80670. enumerable: true,
  80671. configurable: true
  80672. });
  80673. Object.defineProperty(DefaultRenderingPipeline.prototype, "grainEnabled", {
  80674. get: function () {
  80675. return this._grainEnabled;
  80676. },
  80677. /**
  80678. * Enable or disable the grain process from the pipeline
  80679. */
  80680. set: function (enabled) {
  80681. if (this._grainEnabled === enabled) {
  80682. return;
  80683. }
  80684. this._grainEnabled = enabled;
  80685. this._buildPipeline();
  80686. },
  80687. enumerable: true,
  80688. configurable: true
  80689. });
  80690. /**
  80691. * Force the compilation of the entire pipeline.
  80692. */
  80693. DefaultRenderingPipeline.prototype.prepare = function () {
  80694. var previousState = this._buildAllowed;
  80695. this._buildAllowed = true;
  80696. this._buildPipeline();
  80697. this._buildAllowed = previousState;
  80698. };
  80699. DefaultRenderingPipeline.prototype._setAutoClearAndTextureSharing = function (postProcess, skipTextureSharing) {
  80700. if (skipTextureSharing === void 0) { skipTextureSharing = false; }
  80701. if (this._hasCleared) {
  80702. postProcess.autoClear = false;
  80703. }
  80704. else {
  80705. postProcess.autoClear = true;
  80706. this._scene.autoClear = false;
  80707. this._hasCleared = true;
  80708. }
  80709. if (!skipTextureSharing) {
  80710. if (this._prevPrevPostProcess) {
  80711. postProcess.shareOutputWith(this._prevPrevPostProcess);
  80712. }
  80713. else {
  80714. postProcess.useOwnOutput();
  80715. }
  80716. if (this._prevPostProcess) {
  80717. this._prevPrevPostProcess = this._prevPostProcess;
  80718. }
  80719. this._prevPostProcess = postProcess;
  80720. }
  80721. };
  80722. DefaultRenderingPipeline.prototype._buildPipeline = function () {
  80723. var _this = this;
  80724. if (!this._buildAllowed) {
  80725. return;
  80726. }
  80727. this._scene.autoClear = true;
  80728. var engine = this._scene.getEngine();
  80729. this._disposePostProcesses();
  80730. if (this._cameras !== null) {
  80731. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._cameras);
  80732. // get back cameras to be used to reattach pipeline
  80733. this._cameras = this._camerasToBeAttached.slice();
  80734. }
  80735. this._reset();
  80736. this._prevPostProcess = null;
  80737. this._prevPrevPostProcess = null;
  80738. this._hasCleared = false;
  80739. if (this.depthOfFieldEnabled) {
  80740. var depthTexture = this._scene.enableDepthRenderer(this._cameras[0]).getDepthMap();
  80741. this.depthOfField.depthTexture = depthTexture;
  80742. if (!this.depthOfField._isReady()) {
  80743. this.depthOfField._updateEffects();
  80744. }
  80745. this.addEffect(this.depthOfField);
  80746. this._setAutoClearAndTextureSharing(this.depthOfField._effects[0], true);
  80747. }
  80748. if (this.bloomEnabled) {
  80749. if (!this.bloom._isReady()) {
  80750. this.bloom._updateEffects();
  80751. }
  80752. this.addEffect(this.bloom);
  80753. this._setAutoClearAndTextureSharing(this.bloom._effects[0], true);
  80754. }
  80755. if (this._imageProcessingEnabled) {
  80756. this.imageProcessing = new BABYLON.ImageProcessingPostProcess("imageProcessing", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, this._defaultPipelineTextureType);
  80757. if (this._hdr) {
  80758. this.addEffect(new BABYLON.PostProcessRenderEffect(engine, this.ImageProcessingPostProcessId, function () { return _this.imageProcessing; }, true));
  80759. this._setAutoClearAndTextureSharing(this.imageProcessing);
  80760. }
  80761. else {
  80762. this._scene.imageProcessingConfiguration.applyByPostProcess = false;
  80763. }
  80764. }
  80765. if (this.sharpenEnabled) {
  80766. if (!this.sharpen.isReady()) {
  80767. this.sharpen.updateEffect();
  80768. }
  80769. this.addEffect(this._sharpenEffect);
  80770. this._setAutoClearAndTextureSharing(this.sharpen);
  80771. }
  80772. if (this.grainEnabled) {
  80773. if (!this.grain.isReady()) {
  80774. this.grain.updateEffect();
  80775. }
  80776. this.addEffect(this._grainEffect);
  80777. this._setAutoClearAndTextureSharing(this.grain);
  80778. }
  80779. if (this.chromaticAberrationEnabled) {
  80780. if (!this.chromaticAberration.isReady()) {
  80781. this.chromaticAberration.updateEffect();
  80782. }
  80783. this.addEffect(this._chromaticAberrationEffect);
  80784. this._setAutoClearAndTextureSharing(this.chromaticAberration);
  80785. }
  80786. if (this.fxaaEnabled) {
  80787. this.fxaa = new BABYLON.FxaaPostProcess("fxaa", 1.0, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, engine, false, this._defaultPipelineTextureType);
  80788. this.addEffect(new BABYLON.PostProcessRenderEffect(engine, this.FxaaPostProcessId, function () { return _this.fxaa; }, true));
  80789. this._setAutoClearAndTextureSharing(this.fxaa, true);
  80790. }
  80791. if (this._cameras !== null) {
  80792. this._scene.postProcessRenderPipelineManager.attachCamerasToRenderPipeline(this._name, this._cameras);
  80793. }
  80794. if (!this._enableMSAAOnFirstPostProcess(this.samples) && this.samples > 1) {
  80795. BABYLON.Tools.Warn("MSAA failed to enable, MSAA is only supported in browsers that support webGL >= 2.0");
  80796. }
  80797. };
  80798. DefaultRenderingPipeline.prototype._disposePostProcesses = function (disposeNonRecreated) {
  80799. if (disposeNonRecreated === void 0) { disposeNonRecreated = false; }
  80800. for (var i = 0; i < this._cameras.length; i++) {
  80801. var camera = this._cameras[i];
  80802. if (this.imageProcessing) {
  80803. this.imageProcessing.dispose(camera);
  80804. }
  80805. if (this.fxaa) {
  80806. this.fxaa.dispose(camera);
  80807. }
  80808. // These are created in the constructor and should not be disposed on every pipeline change
  80809. if (disposeNonRecreated) {
  80810. if (this.sharpen) {
  80811. this.sharpen.dispose(camera);
  80812. }
  80813. if (this.depthOfField) {
  80814. this.depthOfField.disposeEffects(camera);
  80815. }
  80816. if (this.bloom) {
  80817. this.bloom.disposeEffects(camera);
  80818. }
  80819. if (this.chromaticAberration) {
  80820. this.chromaticAberration.dispose(camera);
  80821. }
  80822. if (this.grain) {
  80823. this.grain.dispose(camera);
  80824. }
  80825. if (this._glowLayer) {
  80826. this._glowLayer.dispose();
  80827. }
  80828. }
  80829. }
  80830. this.imageProcessing = null;
  80831. this.fxaa = null;
  80832. if (disposeNonRecreated) {
  80833. this.sharpen = null;
  80834. this._sharpenEffect = null;
  80835. this.depthOfField = null;
  80836. this.bloom = null;
  80837. this.chromaticAberration = null;
  80838. this._chromaticAberrationEffect = null;
  80839. this.grain = null;
  80840. this._grainEffect = null;
  80841. this._glowLayer = null;
  80842. }
  80843. };
  80844. /**
  80845. * Adds a camera to the pipeline
  80846. * @param camera the camera to be added
  80847. */
  80848. DefaultRenderingPipeline.prototype.addCamera = function (camera) {
  80849. this._camerasToBeAttached.push(camera);
  80850. this._buildPipeline();
  80851. };
  80852. /**
  80853. * Removes a camera from the pipeline
  80854. * @param camera the camera to remove
  80855. */
  80856. DefaultRenderingPipeline.prototype.removeCamera = function (camera) {
  80857. var index = this._camerasToBeAttached.indexOf(camera);
  80858. this._camerasToBeAttached.splice(index, 1);
  80859. this._buildPipeline();
  80860. };
  80861. /**
  80862. * Dispose of the pipeline and stop all post processes
  80863. */
  80864. DefaultRenderingPipeline.prototype.dispose = function () {
  80865. this._disposePostProcesses(true);
  80866. this._scene.postProcessRenderPipelineManager.detachCamerasFromRenderPipeline(this._name, this._cameras);
  80867. this._scene.autoClear = true;
  80868. if (this._resizeObserver) {
  80869. this._scene.getEngine().onResizeObservable.remove(this._resizeObserver);
  80870. this._resizeObserver = null;
  80871. }
  80872. this._scene.imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingConfigurationObserver);
  80873. _super.prototype.dispose.call(this);
  80874. };
  80875. /**
  80876. * Serialize the rendering pipeline (Used when exporting)
  80877. * @returns the serialized object
  80878. */
  80879. DefaultRenderingPipeline.prototype.serialize = function () {
  80880. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  80881. serializationObject.customType = "DefaultRenderingPipeline";
  80882. return serializationObject;
  80883. };
  80884. /**
  80885. * Parse the serialized pipeline
  80886. * @param source Source pipeline.
  80887. * @param scene The scene to load the pipeline to.
  80888. * @param rootUrl The URL of the serialized pipeline.
  80889. * @returns An instantiated pipeline from the serialized object.
  80890. */
  80891. DefaultRenderingPipeline.Parse = function (source, scene, rootUrl) {
  80892. return BABYLON.SerializationHelper.Parse(function () { return new DefaultRenderingPipeline(source._name, source._name._hdr, scene); }, source, scene, rootUrl);
  80893. };
  80894. __decorate([
  80895. BABYLON.serialize()
  80896. ], DefaultRenderingPipeline.prototype, "sharpenEnabled", null);
  80897. __decorate([
  80898. BABYLON.serialize()
  80899. ], DefaultRenderingPipeline.prototype, "bloomKernel", null);
  80900. __decorate([
  80901. BABYLON.serialize()
  80902. ], DefaultRenderingPipeline.prototype, "_bloomWeight", void 0);
  80903. __decorate([
  80904. BABYLON.serialize()
  80905. ], DefaultRenderingPipeline.prototype, "_bloomThreshold", void 0);
  80906. __decorate([
  80907. BABYLON.serialize()
  80908. ], DefaultRenderingPipeline.prototype, "_hdr", void 0);
  80909. __decorate([
  80910. BABYLON.serialize()
  80911. ], DefaultRenderingPipeline.prototype, "bloomWeight", null);
  80912. __decorate([
  80913. BABYLON.serialize()
  80914. ], DefaultRenderingPipeline.prototype, "bloomThreshold", null);
  80915. __decorate([
  80916. BABYLON.serialize()
  80917. ], DefaultRenderingPipeline.prototype, "bloomScale", null);
  80918. __decorate([
  80919. BABYLON.serialize()
  80920. ], DefaultRenderingPipeline.prototype, "bloomEnabled", null);
  80921. __decorate([
  80922. BABYLON.serialize()
  80923. ], DefaultRenderingPipeline.prototype, "depthOfFieldEnabled", null);
  80924. __decorate([
  80925. BABYLON.serialize()
  80926. ], DefaultRenderingPipeline.prototype, "depthOfFieldBlurLevel", null);
  80927. __decorate([
  80928. BABYLON.serialize()
  80929. ], DefaultRenderingPipeline.prototype, "fxaaEnabled", null);
  80930. __decorate([
  80931. BABYLON.serialize()
  80932. ], DefaultRenderingPipeline.prototype, "samples", null);
  80933. __decorate([
  80934. BABYLON.serialize()
  80935. ], DefaultRenderingPipeline.prototype, "imageProcessingEnabled", null);
  80936. __decorate([
  80937. BABYLON.serialize()
  80938. ], DefaultRenderingPipeline.prototype, "glowLayerEnabled", null);
  80939. __decorate([
  80940. BABYLON.serialize()
  80941. ], DefaultRenderingPipeline.prototype, "chromaticAberrationEnabled", null);
  80942. __decorate([
  80943. BABYLON.serialize()
  80944. ], DefaultRenderingPipeline.prototype, "grainEnabled", null);
  80945. return DefaultRenderingPipeline;
  80946. }(BABYLON.PostProcessRenderPipeline));
  80947. BABYLON.DefaultRenderingPipeline = DefaultRenderingPipeline;
  80948. })(BABYLON || (BABYLON = {}));
  80949. //# sourceMappingURL=babylon.defaultRenderingPipeline.js.map
  80950. var BABYLON;
  80951. (function (BABYLON) {
  80952. /**
  80953. * @hidden
  80954. */
  80955. var ImageProcessingConfigurationDefines = /** @class */ (function (_super) {
  80956. __extends(ImageProcessingConfigurationDefines, _super);
  80957. function ImageProcessingConfigurationDefines() {
  80958. var _this = _super.call(this) || this;
  80959. _this.IMAGEPROCESSING = false;
  80960. _this.VIGNETTE = false;
  80961. _this.VIGNETTEBLENDMODEMULTIPLY = false;
  80962. _this.VIGNETTEBLENDMODEOPAQUE = false;
  80963. _this.TONEMAPPING = false;
  80964. _this.TONEMAPPING_ACES = false;
  80965. _this.CONTRAST = false;
  80966. _this.COLORCURVES = false;
  80967. _this.COLORGRADING = false;
  80968. _this.COLORGRADING3D = false;
  80969. _this.SAMPLER3DGREENDEPTH = false;
  80970. _this.SAMPLER3DBGRMAP = false;
  80971. _this.IMAGEPROCESSINGPOSTPROCESS = false;
  80972. _this.EXPOSURE = false;
  80973. _this.rebuild();
  80974. return _this;
  80975. }
  80976. return ImageProcessingConfigurationDefines;
  80977. }(BABYLON.MaterialDefines));
  80978. BABYLON.ImageProcessingConfigurationDefines = ImageProcessingConfigurationDefines;
  80979. /**
  80980. * This groups together the common properties used for image processing either in direct forward pass
  80981. * or through post processing effect depending on the use of the image processing pipeline in your scene
  80982. * or not.
  80983. */
  80984. var ImageProcessingConfiguration = /** @class */ (function () {
  80985. function ImageProcessingConfiguration() {
  80986. /**
  80987. * Color curves setup used in the effect if colorCurvesEnabled is set to true
  80988. */
  80989. this.colorCurves = new BABYLON.ColorCurves();
  80990. this._colorCurvesEnabled = false;
  80991. this._colorGradingEnabled = false;
  80992. this._colorGradingWithGreenDepth = true;
  80993. this._colorGradingBGR = true;
  80994. /** @hidden */
  80995. this._exposure = 1.0;
  80996. this._toneMappingEnabled = false;
  80997. this._toneMappingType = ImageProcessingConfiguration.TONEMAPPING_STANDARD;
  80998. this._contrast = 1.0;
  80999. /**
  81000. * Vignette stretch size.
  81001. */
  81002. this.vignetteStretch = 0;
  81003. /**
  81004. * Vignette centre X Offset.
  81005. */
  81006. this.vignetteCentreX = 0;
  81007. /**
  81008. * Vignette centre Y Offset.
  81009. */
  81010. this.vignetteCentreY = 0;
  81011. /**
  81012. * Vignette weight or intensity of the vignette effect.
  81013. */
  81014. this.vignetteWeight = 1.5;
  81015. /**
  81016. * Color of the vignette applied on the screen through the chosen blend mode (vignetteBlendMode)
  81017. * if vignetteEnabled is set to true.
  81018. */
  81019. this.vignetteColor = new BABYLON.Color4(0, 0, 0, 0);
  81020. /**
  81021. * Camera field of view used by the Vignette effect.
  81022. */
  81023. this.vignetteCameraFov = 0.5;
  81024. this._vignetteBlendMode = ImageProcessingConfiguration.VIGNETTEMODE_MULTIPLY;
  81025. this._vignetteEnabled = false;
  81026. this._applyByPostProcess = false;
  81027. this._isEnabled = true;
  81028. /**
  81029. * An event triggered when the configuration changes and requires Shader to Update some parameters.
  81030. */
  81031. this.onUpdateParameters = new BABYLON.Observable();
  81032. }
  81033. Object.defineProperty(ImageProcessingConfiguration.prototype, "colorCurvesEnabled", {
  81034. /**
  81035. * Gets wether the color curves effect is enabled.
  81036. */
  81037. get: function () {
  81038. return this._colorCurvesEnabled;
  81039. },
  81040. /**
  81041. * Sets wether the color curves effect is enabled.
  81042. */
  81043. set: function (value) {
  81044. if (this._colorCurvesEnabled === value) {
  81045. return;
  81046. }
  81047. this._colorCurvesEnabled = value;
  81048. this._updateParameters();
  81049. },
  81050. enumerable: true,
  81051. configurable: true
  81052. });
  81053. Object.defineProperty(ImageProcessingConfiguration.prototype, "colorGradingEnabled", {
  81054. /**
  81055. * Gets wether the color grading effect is enabled.
  81056. */
  81057. get: function () {
  81058. return this._colorGradingEnabled;
  81059. },
  81060. /**
  81061. * Sets wether the color grading effect is enabled.
  81062. */
  81063. set: function (value) {
  81064. if (this._colorGradingEnabled === value) {
  81065. return;
  81066. }
  81067. this._colorGradingEnabled = value;
  81068. this._updateParameters();
  81069. },
  81070. enumerable: true,
  81071. configurable: true
  81072. });
  81073. Object.defineProperty(ImageProcessingConfiguration.prototype, "colorGradingWithGreenDepth", {
  81074. /**
  81075. * Gets wether the color grading effect is using a green depth for the 3d Texture.
  81076. */
  81077. get: function () {
  81078. return this._colorGradingWithGreenDepth;
  81079. },
  81080. /**
  81081. * Sets wether the color grading effect is using a green depth for the 3d Texture.
  81082. */
  81083. set: function (value) {
  81084. if (this._colorGradingWithGreenDepth === value) {
  81085. return;
  81086. }
  81087. this._colorGradingWithGreenDepth = value;
  81088. this._updateParameters();
  81089. },
  81090. enumerable: true,
  81091. configurable: true
  81092. });
  81093. Object.defineProperty(ImageProcessingConfiguration.prototype, "colorGradingBGR", {
  81094. /**
  81095. * Gets wether the color grading texture contains BGR values.
  81096. */
  81097. get: function () {
  81098. return this._colorGradingBGR;
  81099. },
  81100. /**
  81101. * Sets wether the color grading texture contains BGR values.
  81102. */
  81103. set: function (value) {
  81104. if (this._colorGradingBGR === value) {
  81105. return;
  81106. }
  81107. this._colorGradingBGR = value;
  81108. this._updateParameters();
  81109. },
  81110. enumerable: true,
  81111. configurable: true
  81112. });
  81113. Object.defineProperty(ImageProcessingConfiguration.prototype, "exposure", {
  81114. /**
  81115. * Gets the Exposure used in the effect.
  81116. */
  81117. get: function () {
  81118. return this._exposure;
  81119. },
  81120. /**
  81121. * Sets the Exposure used in the effect.
  81122. */
  81123. set: function (value) {
  81124. if (this._exposure === value) {
  81125. return;
  81126. }
  81127. this._exposure = value;
  81128. this._updateParameters();
  81129. },
  81130. enumerable: true,
  81131. configurable: true
  81132. });
  81133. Object.defineProperty(ImageProcessingConfiguration.prototype, "toneMappingEnabled", {
  81134. /**
  81135. * Gets wether the tone mapping effect is enabled.
  81136. */
  81137. get: function () {
  81138. return this._toneMappingEnabled;
  81139. },
  81140. /**
  81141. * Sets wether the tone mapping effect is enabled.
  81142. */
  81143. set: function (value) {
  81144. if (this._toneMappingEnabled === value) {
  81145. return;
  81146. }
  81147. this._toneMappingEnabled = value;
  81148. this._updateParameters();
  81149. },
  81150. enumerable: true,
  81151. configurable: true
  81152. });
  81153. Object.defineProperty(ImageProcessingConfiguration.prototype, "toneMappingType", {
  81154. /**
  81155. * Gets the type of tone mapping effect.
  81156. */
  81157. get: function () {
  81158. return this._toneMappingType;
  81159. },
  81160. /**
  81161. * Sets the type of tone mapping effect used in BabylonJS.
  81162. */
  81163. set: function (value) {
  81164. if (this._toneMappingType === value) {
  81165. return;
  81166. }
  81167. this._toneMappingType = value;
  81168. this._updateParameters();
  81169. },
  81170. enumerable: true,
  81171. configurable: true
  81172. });
  81173. Object.defineProperty(ImageProcessingConfiguration.prototype, "contrast", {
  81174. /**
  81175. * Gets the contrast used in the effect.
  81176. */
  81177. get: function () {
  81178. return this._contrast;
  81179. },
  81180. /**
  81181. * Sets the contrast used in the effect.
  81182. */
  81183. set: function (value) {
  81184. if (this._contrast === value) {
  81185. return;
  81186. }
  81187. this._contrast = value;
  81188. this._updateParameters();
  81189. },
  81190. enumerable: true,
  81191. configurable: true
  81192. });
  81193. Object.defineProperty(ImageProcessingConfiguration.prototype, "vignetteBlendMode", {
  81194. /**
  81195. * Gets the vignette blend mode allowing different kind of effect.
  81196. */
  81197. get: function () {
  81198. return this._vignetteBlendMode;
  81199. },
  81200. /**
  81201. * Sets the vignette blend mode allowing different kind of effect.
  81202. */
  81203. set: function (value) {
  81204. if (this._vignetteBlendMode === value) {
  81205. return;
  81206. }
  81207. this._vignetteBlendMode = value;
  81208. this._updateParameters();
  81209. },
  81210. enumerable: true,
  81211. configurable: true
  81212. });
  81213. Object.defineProperty(ImageProcessingConfiguration.prototype, "vignetteEnabled", {
  81214. /**
  81215. * Gets wether the vignette effect is enabled.
  81216. */
  81217. get: function () {
  81218. return this._vignetteEnabled;
  81219. },
  81220. /**
  81221. * Sets wether the vignette effect is enabled.
  81222. */
  81223. set: function (value) {
  81224. if (this._vignetteEnabled === value) {
  81225. return;
  81226. }
  81227. this._vignetteEnabled = value;
  81228. this._updateParameters();
  81229. },
  81230. enumerable: true,
  81231. configurable: true
  81232. });
  81233. Object.defineProperty(ImageProcessingConfiguration.prototype, "applyByPostProcess", {
  81234. /**
  81235. * Gets wether the image processing is applied through a post process or not.
  81236. */
  81237. get: function () {
  81238. return this._applyByPostProcess;
  81239. },
  81240. /**
  81241. * Sets wether the image processing is applied through a post process or not.
  81242. */
  81243. set: function (value) {
  81244. if (this._applyByPostProcess === value) {
  81245. return;
  81246. }
  81247. this._applyByPostProcess = value;
  81248. this._updateParameters();
  81249. },
  81250. enumerable: true,
  81251. configurable: true
  81252. });
  81253. Object.defineProperty(ImageProcessingConfiguration.prototype, "isEnabled", {
  81254. /**
  81255. * Gets wether the image processing is enabled or not.
  81256. */
  81257. get: function () {
  81258. return this._isEnabled;
  81259. },
  81260. /**
  81261. * Sets wether the image processing is enabled or not.
  81262. */
  81263. set: function (value) {
  81264. if (this._isEnabled === value) {
  81265. return;
  81266. }
  81267. this._isEnabled = value;
  81268. this._updateParameters();
  81269. },
  81270. enumerable: true,
  81271. configurable: true
  81272. });
  81273. /**
  81274. * Method called each time the image processing information changes requires to recompile the effect.
  81275. */
  81276. ImageProcessingConfiguration.prototype._updateParameters = function () {
  81277. this.onUpdateParameters.notifyObservers(this);
  81278. };
  81279. ImageProcessingConfiguration.prototype.getClassName = function () {
  81280. return "ImageProcessingConfiguration";
  81281. };
  81282. /**
  81283. * Prepare the list of uniforms associated with the Image Processing effects.
  81284. * @param uniformsList The list of uniforms used in the effect
  81285. * @param defines the list of defines currently in use
  81286. */
  81287. ImageProcessingConfiguration.PrepareUniforms = function (uniforms, defines) {
  81288. if (defines.EXPOSURE) {
  81289. uniforms.push("exposureLinear");
  81290. }
  81291. if (defines.CONTRAST) {
  81292. uniforms.push("contrast");
  81293. }
  81294. if (defines.COLORGRADING) {
  81295. uniforms.push("colorTransformSettings");
  81296. }
  81297. if (defines.VIGNETTE) {
  81298. uniforms.push("vInverseScreenSize");
  81299. uniforms.push("vignetteSettings1");
  81300. uniforms.push("vignetteSettings2");
  81301. }
  81302. if (defines.COLORCURVES) {
  81303. BABYLON.ColorCurves.PrepareUniforms(uniforms);
  81304. }
  81305. };
  81306. /**
  81307. * Prepare the list of samplers associated with the Image Processing effects.
  81308. * @param uniformsList The list of uniforms used in the effect
  81309. * @param defines the list of defines currently in use
  81310. */
  81311. ImageProcessingConfiguration.PrepareSamplers = function (samplersList, defines) {
  81312. if (defines.COLORGRADING) {
  81313. samplersList.push("txColorTransform");
  81314. }
  81315. };
  81316. /**
  81317. * Prepare the list of defines associated to the shader.
  81318. * @param defines the list of defines to complete
  81319. */
  81320. ImageProcessingConfiguration.prototype.prepareDefines = function (defines, forPostProcess) {
  81321. if (forPostProcess === void 0) { forPostProcess = false; }
  81322. if (forPostProcess !== this.applyByPostProcess || !this._isEnabled) {
  81323. defines.VIGNETTE = false;
  81324. defines.TONEMAPPING = false;
  81325. defines.TONEMAPPING_ACES = false;
  81326. defines.CONTRAST = false;
  81327. defines.EXPOSURE = false;
  81328. defines.COLORCURVES = false;
  81329. defines.COLORGRADING = false;
  81330. defines.COLORGRADING3D = false;
  81331. defines.IMAGEPROCESSING = false;
  81332. defines.IMAGEPROCESSINGPOSTPROCESS = this.applyByPostProcess && this._isEnabled;
  81333. return;
  81334. }
  81335. defines.VIGNETTE = this.vignetteEnabled;
  81336. defines.VIGNETTEBLENDMODEMULTIPLY = (this.vignetteBlendMode === ImageProcessingConfiguration._VIGNETTEMODE_MULTIPLY);
  81337. defines.VIGNETTEBLENDMODEOPAQUE = !defines.VIGNETTEBLENDMODEMULTIPLY;
  81338. defines.TONEMAPPING = this.toneMappingEnabled;
  81339. switch (this._toneMappingType) {
  81340. case ImageProcessingConfiguration.TONEMAPPING_ACES:
  81341. defines.TONEMAPPING_ACES = true;
  81342. break;
  81343. }
  81344. defines.CONTRAST = (this.contrast !== 1.0);
  81345. defines.EXPOSURE = (this.exposure !== 1.0);
  81346. defines.COLORCURVES = (this.colorCurvesEnabled && !!this.colorCurves);
  81347. defines.COLORGRADING = (this.colorGradingEnabled && !!this.colorGradingTexture);
  81348. if (defines.COLORGRADING) {
  81349. defines.COLORGRADING3D = this.colorGradingTexture.is3D;
  81350. }
  81351. else {
  81352. defines.COLORGRADING3D = false;
  81353. }
  81354. defines.SAMPLER3DGREENDEPTH = this.colorGradingWithGreenDepth;
  81355. defines.SAMPLER3DBGRMAP = this.colorGradingBGR;
  81356. defines.IMAGEPROCESSINGPOSTPROCESS = this.applyByPostProcess;
  81357. defines.IMAGEPROCESSING = defines.VIGNETTE || defines.TONEMAPPING || defines.CONTRAST || defines.EXPOSURE || defines.COLORCURVES || defines.COLORGRADING;
  81358. };
  81359. /**
  81360. * Returns true if all the image processing information are ready.
  81361. */
  81362. ImageProcessingConfiguration.prototype.isReady = function () {
  81363. // Color Grading texure can not be none blocking.
  81364. return !this.colorGradingEnabled || !this.colorGradingTexture || this.colorGradingTexture.isReady();
  81365. };
  81366. /**
  81367. * Binds the image processing to the shader.
  81368. * @param effect The effect to bind to
  81369. */
  81370. ImageProcessingConfiguration.prototype.bind = function (effect, aspectRatio) {
  81371. if (aspectRatio === void 0) { aspectRatio = 1; }
  81372. // Color Curves
  81373. if (this._colorCurvesEnabled && this.colorCurves) {
  81374. BABYLON.ColorCurves.Bind(this.colorCurves, effect);
  81375. }
  81376. // Vignette
  81377. if (this._vignetteEnabled) {
  81378. var inverseWidth = 1 / effect.getEngine().getRenderWidth();
  81379. var inverseHeight = 1 / effect.getEngine().getRenderHeight();
  81380. effect.setFloat2("vInverseScreenSize", inverseWidth, inverseHeight);
  81381. var vignetteScaleY = Math.tan(this.vignetteCameraFov * 0.5);
  81382. var vignetteScaleX = vignetteScaleY * aspectRatio;
  81383. var vignetteScaleGeometricMean = Math.sqrt(vignetteScaleX * vignetteScaleY);
  81384. vignetteScaleX = BABYLON.Tools.Mix(vignetteScaleX, vignetteScaleGeometricMean, this.vignetteStretch);
  81385. vignetteScaleY = BABYLON.Tools.Mix(vignetteScaleY, vignetteScaleGeometricMean, this.vignetteStretch);
  81386. effect.setFloat4("vignetteSettings1", vignetteScaleX, vignetteScaleY, -vignetteScaleX * this.vignetteCentreX, -vignetteScaleY * this.vignetteCentreY);
  81387. var vignettePower = -2.0 * this.vignetteWeight;
  81388. effect.setFloat4("vignetteSettings2", this.vignetteColor.r, this.vignetteColor.g, this.vignetteColor.b, vignettePower);
  81389. }
  81390. // Exposure
  81391. effect.setFloat("exposureLinear", this.exposure);
  81392. // Contrast
  81393. effect.setFloat("contrast", this.contrast);
  81394. // Color transform settings
  81395. if (this.colorGradingTexture) {
  81396. effect.setTexture("txColorTransform", this.colorGradingTexture);
  81397. var textureSize = this.colorGradingTexture.getSize().height;
  81398. effect.setFloat4("colorTransformSettings", (textureSize - 1) / textureSize, // textureScale
  81399. 0.5 / textureSize, // textureOffset
  81400. textureSize, // textureSize
  81401. this.colorGradingTexture.level // weight
  81402. );
  81403. }
  81404. };
  81405. /**
  81406. * Clones the current image processing instance.
  81407. * @return The cloned image processing
  81408. */
  81409. ImageProcessingConfiguration.prototype.clone = function () {
  81410. return BABYLON.SerializationHelper.Clone(function () { return new ImageProcessingConfiguration(); }, this);
  81411. };
  81412. /**
  81413. * Serializes the current image processing instance to a json representation.
  81414. * @return a JSON representation
  81415. */
  81416. ImageProcessingConfiguration.prototype.serialize = function () {
  81417. return BABYLON.SerializationHelper.Serialize(this);
  81418. };
  81419. /**
  81420. * Parses the image processing from a json representation.
  81421. * @param source the JSON source to parse
  81422. * @return The parsed image processing
  81423. */
  81424. ImageProcessingConfiguration.Parse = function (source) {
  81425. return BABYLON.SerializationHelper.Parse(function () { return new ImageProcessingConfiguration(); }, source, null, null);
  81426. };
  81427. Object.defineProperty(ImageProcessingConfiguration, "VIGNETTEMODE_MULTIPLY", {
  81428. /**
  81429. * Used to apply the vignette as a mix with the pixel color.
  81430. */
  81431. get: function () {
  81432. return this._VIGNETTEMODE_MULTIPLY;
  81433. },
  81434. enumerable: true,
  81435. configurable: true
  81436. });
  81437. Object.defineProperty(ImageProcessingConfiguration, "VIGNETTEMODE_OPAQUE", {
  81438. /**
  81439. * Used to apply the vignette as a replacement of the pixel color.
  81440. */
  81441. get: function () {
  81442. return this._VIGNETTEMODE_OPAQUE;
  81443. },
  81444. enumerable: true,
  81445. configurable: true
  81446. });
  81447. /**
  81448. * Default tone mapping applied in BabylonJS.
  81449. */
  81450. ImageProcessingConfiguration.TONEMAPPING_STANDARD = 0;
  81451. /**
  81452. * ACES Tone mapping (used by default in unreal and unity). This can help getting closer
  81453. * to other engines rendering to increase portability.
  81454. */
  81455. ImageProcessingConfiguration.TONEMAPPING_ACES = 1;
  81456. // Static constants associated to the image processing.
  81457. ImageProcessingConfiguration._VIGNETTEMODE_MULTIPLY = 0;
  81458. ImageProcessingConfiguration._VIGNETTEMODE_OPAQUE = 1;
  81459. __decorate([
  81460. BABYLON.serializeAsColorCurves()
  81461. ], ImageProcessingConfiguration.prototype, "colorCurves", void 0);
  81462. __decorate([
  81463. BABYLON.serialize()
  81464. ], ImageProcessingConfiguration.prototype, "_colorCurvesEnabled", void 0);
  81465. __decorate([
  81466. BABYLON.serializeAsTexture()
  81467. ], ImageProcessingConfiguration.prototype, "colorGradingTexture", void 0);
  81468. __decorate([
  81469. BABYLON.serialize()
  81470. ], ImageProcessingConfiguration.prototype, "_colorGradingEnabled", void 0);
  81471. __decorate([
  81472. BABYLON.serialize()
  81473. ], ImageProcessingConfiguration.prototype, "_colorGradingWithGreenDepth", void 0);
  81474. __decorate([
  81475. BABYLON.serialize()
  81476. ], ImageProcessingConfiguration.prototype, "_colorGradingBGR", void 0);
  81477. __decorate([
  81478. BABYLON.serialize()
  81479. ], ImageProcessingConfiguration.prototype, "_exposure", void 0);
  81480. __decorate([
  81481. BABYLON.serialize()
  81482. ], ImageProcessingConfiguration.prototype, "_toneMappingEnabled", void 0);
  81483. __decorate([
  81484. BABYLON.serialize()
  81485. ], ImageProcessingConfiguration.prototype, "_toneMappingType", void 0);
  81486. __decorate([
  81487. BABYLON.serialize()
  81488. ], ImageProcessingConfiguration.prototype, "_contrast", void 0);
  81489. __decorate([
  81490. BABYLON.serialize()
  81491. ], ImageProcessingConfiguration.prototype, "vignetteStretch", void 0);
  81492. __decorate([
  81493. BABYLON.serialize()
  81494. ], ImageProcessingConfiguration.prototype, "vignetteCentreX", void 0);
  81495. __decorate([
  81496. BABYLON.serialize()
  81497. ], ImageProcessingConfiguration.prototype, "vignetteCentreY", void 0);
  81498. __decorate([
  81499. BABYLON.serialize()
  81500. ], ImageProcessingConfiguration.prototype, "vignetteWeight", void 0);
  81501. __decorate([
  81502. BABYLON.serializeAsColor4()
  81503. ], ImageProcessingConfiguration.prototype, "vignetteColor", void 0);
  81504. __decorate([
  81505. BABYLON.serialize()
  81506. ], ImageProcessingConfiguration.prototype, "vignetteCameraFov", void 0);
  81507. __decorate([
  81508. BABYLON.serialize()
  81509. ], ImageProcessingConfiguration.prototype, "_vignetteBlendMode", void 0);
  81510. __decorate([
  81511. BABYLON.serialize()
  81512. ], ImageProcessingConfiguration.prototype, "_vignetteEnabled", void 0);
  81513. __decorate([
  81514. BABYLON.serialize()
  81515. ], ImageProcessingConfiguration.prototype, "_applyByPostProcess", void 0);
  81516. __decorate([
  81517. BABYLON.serialize()
  81518. ], ImageProcessingConfiguration.prototype, "_isEnabled", void 0);
  81519. return ImageProcessingConfiguration;
  81520. }());
  81521. BABYLON.ImageProcessingConfiguration = ImageProcessingConfiguration;
  81522. })(BABYLON || (BABYLON = {}));
  81523. //# sourceMappingURL=babylon.imageProcessingConfiguration.js.map
  81524. var BABYLON;
  81525. (function (BABYLON) {
  81526. /**
  81527. * This represents a color grading texture. This acts as a lookup table LUT, useful during post process
  81528. * It can help converting any input color in a desired output one. This can then be used to create effects
  81529. * from sepia, black and white to sixties or futuristic rendering...
  81530. *
  81531. * The only supported format is currently 3dl.
  81532. * More information on LUT: https://en.wikipedia.org/wiki/3D_lookup_table/
  81533. */
  81534. var ColorGradingTexture = /** @class */ (function (_super) {
  81535. __extends(ColorGradingTexture, _super);
  81536. /**
  81537. * Instantiates a ColorGradingTexture from the following parameters.
  81538. *
  81539. * @param url The location of the color gradind data (currently only supporting 3dl)
  81540. * @param scene The scene the texture will be used in
  81541. */
  81542. function ColorGradingTexture(url, scene) {
  81543. var _this = _super.call(this, scene) || this;
  81544. if (!url) {
  81545. return _this;
  81546. }
  81547. _this._engine = scene.getEngine();
  81548. _this._textureMatrix = BABYLON.Matrix.Identity();
  81549. _this.name = url;
  81550. _this.url = url;
  81551. _this.hasAlpha = false;
  81552. _this.isCube = false;
  81553. _this.is3D = _this._engine.webGLVersion > 1;
  81554. _this.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  81555. _this.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  81556. _this.wrapR = BABYLON.Texture.CLAMP_ADDRESSMODE;
  81557. _this.anisotropicFilteringLevel = 1;
  81558. _this._texture = _this._getFromCache(url, true);
  81559. if (!_this._texture) {
  81560. if (!scene.useDelayedTextureLoading) {
  81561. _this.loadTexture();
  81562. }
  81563. else {
  81564. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  81565. }
  81566. }
  81567. return _this;
  81568. }
  81569. /**
  81570. * Returns the texture matrix used in most of the material.
  81571. * This is not used in color grading but keep for troubleshooting purpose (easily swap diffuse by colorgrading to look in).
  81572. */
  81573. ColorGradingTexture.prototype.getTextureMatrix = function () {
  81574. return this._textureMatrix;
  81575. };
  81576. /**
  81577. * Occurs when the file being loaded is a .3dl LUT file.
  81578. */
  81579. ColorGradingTexture.prototype.load3dlTexture = function () {
  81580. var engine = this._engine;
  81581. var texture;
  81582. if (engine.webGLVersion === 1) {
  81583. texture = engine.createRawTexture(null, 1, 1, BABYLON.Engine.TEXTUREFORMAT_RGBA, false, false, BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  81584. }
  81585. else {
  81586. texture = engine.createRawTexture3D(null, 1, 1, 1, BABYLON.Engine.TEXTUREFORMAT_RGBA, false, false, BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  81587. }
  81588. this._texture = texture;
  81589. var callback = function (text) {
  81590. if (typeof text !== "string") {
  81591. return;
  81592. }
  81593. var data = null;
  81594. var tempData = null;
  81595. var line;
  81596. var lines = text.split('\n');
  81597. var size = 0, pixelIndexW = 0, pixelIndexH = 0, pixelIndexSlice = 0;
  81598. var maxColor = 0;
  81599. for (var i = 0; i < lines.length; i++) {
  81600. line = lines[i];
  81601. if (!ColorGradingTexture._noneEmptyLineRegex.test(line))
  81602. continue;
  81603. if (line.indexOf('#') === 0)
  81604. continue;
  81605. var words = line.split(" ");
  81606. if (size === 0) {
  81607. // Number of space + one
  81608. size = words.length;
  81609. data = new Uint8Array(size * size * size * 4); // volume texture of side size and rgb 8
  81610. tempData = new Float32Array(size * size * size * 4);
  81611. continue;
  81612. }
  81613. if (size != 0) {
  81614. var r = Math.max(parseInt(words[0]), 0);
  81615. var g = Math.max(parseInt(words[1]), 0);
  81616. var b = Math.max(parseInt(words[2]), 0);
  81617. maxColor = Math.max(r, maxColor);
  81618. maxColor = Math.max(g, maxColor);
  81619. maxColor = Math.max(b, maxColor);
  81620. var pixelStorageIndex = (pixelIndexW + pixelIndexSlice * size + pixelIndexH * size * size) * 4;
  81621. if (tempData) {
  81622. tempData[pixelStorageIndex + 0] = r;
  81623. tempData[pixelStorageIndex + 1] = g;
  81624. tempData[pixelStorageIndex + 2] = b;
  81625. }
  81626. pixelIndexSlice++;
  81627. if (pixelIndexSlice % size == 0) {
  81628. pixelIndexH++;
  81629. pixelIndexSlice = 0;
  81630. if (pixelIndexH % size == 0) {
  81631. pixelIndexW++;
  81632. pixelIndexH = 0;
  81633. }
  81634. }
  81635. }
  81636. }
  81637. if (tempData && data) {
  81638. for (var i = 0; i < tempData.length; i++) {
  81639. if (i > 0 && (i + 1) % 4 === 0) {
  81640. data[i] = 255;
  81641. }
  81642. else {
  81643. var value = tempData[i];
  81644. data[i] = (value / maxColor * 255);
  81645. }
  81646. }
  81647. }
  81648. if (texture.is3D) {
  81649. texture.updateSize(size, size, size);
  81650. engine.updateRawTexture3D(texture, data, BABYLON.Engine.TEXTUREFORMAT_RGBA, false);
  81651. }
  81652. else {
  81653. texture.updateSize(size * size, size);
  81654. engine.updateRawTexture(texture, data, BABYLON.Engine.TEXTUREFORMAT_RGBA, false);
  81655. }
  81656. };
  81657. var scene = this.getScene();
  81658. if (scene) {
  81659. scene._loadFile(this.url, callback);
  81660. }
  81661. else {
  81662. this._engine._loadFile(this.url, callback);
  81663. }
  81664. return this._texture;
  81665. };
  81666. /**
  81667. * Starts the loading process of the texture.
  81668. */
  81669. ColorGradingTexture.prototype.loadTexture = function () {
  81670. if (this.url && this.url.toLocaleLowerCase().indexOf(".3dl") == (this.url.length - 4)) {
  81671. this.load3dlTexture();
  81672. }
  81673. };
  81674. /**
  81675. * Clones the color gradind texture.
  81676. */
  81677. ColorGradingTexture.prototype.clone = function () {
  81678. var newTexture = new ColorGradingTexture(this.url, this.getScene());
  81679. // Base texture
  81680. newTexture.level = this.level;
  81681. return newTexture;
  81682. };
  81683. /**
  81684. * Called during delayed load for textures.
  81685. */
  81686. ColorGradingTexture.prototype.delayLoad = function () {
  81687. if (this.delayLoadState !== BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  81688. return;
  81689. }
  81690. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  81691. this._texture = this._getFromCache(this.url, true);
  81692. if (!this._texture) {
  81693. this.loadTexture();
  81694. }
  81695. };
  81696. /**
  81697. * Parses a color grading texture serialized by Babylon.
  81698. * @param parsedTexture The texture information being parsedTexture
  81699. * @param scene The scene to load the texture in
  81700. * @param rootUrl The root url of the data assets to load
  81701. * @return A color gradind texture
  81702. */
  81703. ColorGradingTexture.Parse = function (parsedTexture, scene, rootUrl) {
  81704. var texture = null;
  81705. if (parsedTexture.name && !parsedTexture.isRenderTarget) {
  81706. texture = new ColorGradingTexture(parsedTexture.name, scene);
  81707. texture.name = parsedTexture.name;
  81708. texture.level = parsedTexture.level;
  81709. }
  81710. return texture;
  81711. };
  81712. /**
  81713. * Serializes the LUT texture to json format.
  81714. */
  81715. ColorGradingTexture.prototype.serialize = function () {
  81716. if (!this.name) {
  81717. return null;
  81718. }
  81719. var serializationObject = {};
  81720. serializationObject.name = this.name;
  81721. serializationObject.level = this.level;
  81722. serializationObject.customType = "BABYLON.ColorGradingTexture";
  81723. return serializationObject;
  81724. };
  81725. /**
  81726. * Empty line regex stored for GC.
  81727. */
  81728. ColorGradingTexture._noneEmptyLineRegex = /\S+/;
  81729. return ColorGradingTexture;
  81730. }(BABYLON.BaseTexture));
  81731. BABYLON.ColorGradingTexture = ColorGradingTexture;
  81732. })(BABYLON || (BABYLON = {}));
  81733. //# sourceMappingURL=babylon.colorGradingTexture.js.map
  81734. var BABYLON;
  81735. (function (BABYLON) {
  81736. /**
  81737. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  81738. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  81739. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  81740. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  81741. */
  81742. var ColorCurves = /** @class */ (function () {
  81743. function ColorCurves() {
  81744. this._dirty = true;
  81745. this._tempColor = new BABYLON.Color4(0, 0, 0, 0);
  81746. this._globalCurve = new BABYLON.Color4(0, 0, 0, 0);
  81747. this._highlightsCurve = new BABYLON.Color4(0, 0, 0, 0);
  81748. this._midtonesCurve = new BABYLON.Color4(0, 0, 0, 0);
  81749. this._shadowsCurve = new BABYLON.Color4(0, 0, 0, 0);
  81750. this._positiveCurve = new BABYLON.Color4(0, 0, 0, 0);
  81751. this._negativeCurve = new BABYLON.Color4(0, 0, 0, 0);
  81752. this._globalHue = 30;
  81753. this._globalDensity = 0;
  81754. this._globalSaturation = 0;
  81755. this._globalExposure = 0;
  81756. this._highlightsHue = 30;
  81757. this._highlightsDensity = 0;
  81758. this._highlightsSaturation = 0;
  81759. this._highlightsExposure = 0;
  81760. this._midtonesHue = 30;
  81761. this._midtonesDensity = 0;
  81762. this._midtonesSaturation = 0;
  81763. this._midtonesExposure = 0;
  81764. this._shadowsHue = 30;
  81765. this._shadowsDensity = 0;
  81766. this._shadowsSaturation = 0;
  81767. this._shadowsExposure = 0;
  81768. }
  81769. Object.defineProperty(ColorCurves.prototype, "globalHue", {
  81770. /**
  81771. * Gets the global Hue value.
  81772. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81773. */
  81774. get: function () {
  81775. return this._globalHue;
  81776. },
  81777. /**
  81778. * Sets the global Hue value.
  81779. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81780. */
  81781. set: function (value) {
  81782. this._globalHue = value;
  81783. this._dirty = true;
  81784. },
  81785. enumerable: true,
  81786. configurable: true
  81787. });
  81788. Object.defineProperty(ColorCurves.prototype, "globalDensity", {
  81789. /**
  81790. * Gets the global Density value.
  81791. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81792. * Values less than zero provide a filter of opposite hue.
  81793. */
  81794. get: function () {
  81795. return this._globalDensity;
  81796. },
  81797. /**
  81798. * Sets the global Density value.
  81799. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81800. * Values less than zero provide a filter of opposite hue.
  81801. */
  81802. set: function (value) {
  81803. this._globalDensity = value;
  81804. this._dirty = true;
  81805. },
  81806. enumerable: true,
  81807. configurable: true
  81808. });
  81809. Object.defineProperty(ColorCurves.prototype, "globalSaturation", {
  81810. /**
  81811. * Gets the global Saturation value.
  81812. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81813. */
  81814. get: function () {
  81815. return this._globalSaturation;
  81816. },
  81817. /**
  81818. * Sets the global Saturation value.
  81819. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81820. */
  81821. set: function (value) {
  81822. this._globalSaturation = value;
  81823. this._dirty = true;
  81824. },
  81825. enumerable: true,
  81826. configurable: true
  81827. });
  81828. Object.defineProperty(ColorCurves.prototype, "globalExposure", {
  81829. /**
  81830. * Gets the global Exposure value.
  81831. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81832. */
  81833. get: function () {
  81834. return this._globalExposure;
  81835. },
  81836. /**
  81837. * Sets the global Exposure value.
  81838. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81839. */
  81840. set: function (value) {
  81841. this._globalExposure = value;
  81842. this._dirty = true;
  81843. },
  81844. enumerable: true,
  81845. configurable: true
  81846. });
  81847. Object.defineProperty(ColorCurves.prototype, "highlightsHue", {
  81848. /**
  81849. * Gets the highlights Hue value.
  81850. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81851. */
  81852. get: function () {
  81853. return this._highlightsHue;
  81854. },
  81855. /**
  81856. * Sets the highlights Hue value.
  81857. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81858. */
  81859. set: function (value) {
  81860. this._highlightsHue = value;
  81861. this._dirty = true;
  81862. },
  81863. enumerable: true,
  81864. configurable: true
  81865. });
  81866. Object.defineProperty(ColorCurves.prototype, "highlightsDensity", {
  81867. /**
  81868. * Gets the highlights Density value.
  81869. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81870. * Values less than zero provide a filter of opposite hue.
  81871. */
  81872. get: function () {
  81873. return this._highlightsDensity;
  81874. },
  81875. /**
  81876. * Sets the highlights Density value.
  81877. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81878. * Values less than zero provide a filter of opposite hue.
  81879. */
  81880. set: function (value) {
  81881. this._highlightsDensity = value;
  81882. this._dirty = true;
  81883. },
  81884. enumerable: true,
  81885. configurable: true
  81886. });
  81887. Object.defineProperty(ColorCurves.prototype, "highlightsSaturation", {
  81888. /**
  81889. * Gets the highlights Saturation value.
  81890. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81891. */
  81892. get: function () {
  81893. return this._highlightsSaturation;
  81894. },
  81895. /**
  81896. * Sets the highlights Saturation value.
  81897. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81898. */
  81899. set: function (value) {
  81900. this._highlightsSaturation = value;
  81901. this._dirty = true;
  81902. },
  81903. enumerable: true,
  81904. configurable: true
  81905. });
  81906. Object.defineProperty(ColorCurves.prototype, "highlightsExposure", {
  81907. /**
  81908. * Gets the highlights Exposure value.
  81909. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81910. */
  81911. get: function () {
  81912. return this._highlightsExposure;
  81913. },
  81914. /**
  81915. * Sets the highlights Exposure value.
  81916. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81917. */
  81918. set: function (value) {
  81919. this._highlightsExposure = value;
  81920. this._dirty = true;
  81921. },
  81922. enumerable: true,
  81923. configurable: true
  81924. });
  81925. Object.defineProperty(ColorCurves.prototype, "midtonesHue", {
  81926. /**
  81927. * Gets the midtones Hue value.
  81928. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81929. */
  81930. get: function () {
  81931. return this._midtonesHue;
  81932. },
  81933. /**
  81934. * Sets the midtones Hue value.
  81935. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  81936. */
  81937. set: function (value) {
  81938. this._midtonesHue = value;
  81939. this._dirty = true;
  81940. },
  81941. enumerable: true,
  81942. configurable: true
  81943. });
  81944. Object.defineProperty(ColorCurves.prototype, "midtonesDensity", {
  81945. /**
  81946. * Gets the midtones Density value.
  81947. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81948. * Values less than zero provide a filter of opposite hue.
  81949. */
  81950. get: function () {
  81951. return this._midtonesDensity;
  81952. },
  81953. /**
  81954. * Sets the midtones Density value.
  81955. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  81956. * Values less than zero provide a filter of opposite hue.
  81957. */
  81958. set: function (value) {
  81959. this._midtonesDensity = value;
  81960. this._dirty = true;
  81961. },
  81962. enumerable: true,
  81963. configurable: true
  81964. });
  81965. Object.defineProperty(ColorCurves.prototype, "midtonesSaturation", {
  81966. /**
  81967. * Gets the midtones Saturation value.
  81968. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81969. */
  81970. get: function () {
  81971. return this._midtonesSaturation;
  81972. },
  81973. /**
  81974. * Sets the midtones Saturation value.
  81975. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  81976. */
  81977. set: function (value) {
  81978. this._midtonesSaturation = value;
  81979. this._dirty = true;
  81980. },
  81981. enumerable: true,
  81982. configurable: true
  81983. });
  81984. Object.defineProperty(ColorCurves.prototype, "midtonesExposure", {
  81985. /**
  81986. * Gets the midtones Exposure value.
  81987. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81988. */
  81989. get: function () {
  81990. return this._midtonesExposure;
  81991. },
  81992. /**
  81993. * Sets the midtones Exposure value.
  81994. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  81995. */
  81996. set: function (value) {
  81997. this._midtonesExposure = value;
  81998. this._dirty = true;
  81999. },
  82000. enumerable: true,
  82001. configurable: true
  82002. });
  82003. Object.defineProperty(ColorCurves.prototype, "shadowsHue", {
  82004. /**
  82005. * Gets the shadows Hue value.
  82006. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  82007. */
  82008. get: function () {
  82009. return this._shadowsHue;
  82010. },
  82011. /**
  82012. * Sets the shadows Hue value.
  82013. * The hue value is a standard HSB hue in the range [0,360] where 0=red, 120=green and 240=blue. The default value is 30 degrees (orange).
  82014. */
  82015. set: function (value) {
  82016. this._shadowsHue = value;
  82017. this._dirty = true;
  82018. },
  82019. enumerable: true,
  82020. configurable: true
  82021. });
  82022. Object.defineProperty(ColorCurves.prototype, "shadowsDensity", {
  82023. /**
  82024. * Gets the shadows Density value.
  82025. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  82026. * Values less than zero provide a filter of opposite hue.
  82027. */
  82028. get: function () {
  82029. return this._shadowsDensity;
  82030. },
  82031. /**
  82032. * Sets the shadows Density value.
  82033. * The density value is in range [-100,+100] where 0 means the color filter has no effect and +100 means the color filter has maximum effect.
  82034. * Values less than zero provide a filter of opposite hue.
  82035. */
  82036. set: function (value) {
  82037. this._shadowsDensity = value;
  82038. this._dirty = true;
  82039. },
  82040. enumerable: true,
  82041. configurable: true
  82042. });
  82043. Object.defineProperty(ColorCurves.prototype, "shadowsSaturation", {
  82044. /**
  82045. * Gets the shadows Saturation value.
  82046. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  82047. */
  82048. get: function () {
  82049. return this._shadowsSaturation;
  82050. },
  82051. /**
  82052. * Sets the shadows Saturation value.
  82053. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase saturation and negative values decrease saturation.
  82054. */
  82055. set: function (value) {
  82056. this._shadowsSaturation = value;
  82057. this._dirty = true;
  82058. },
  82059. enumerable: true,
  82060. configurable: true
  82061. });
  82062. Object.defineProperty(ColorCurves.prototype, "shadowsExposure", {
  82063. /**
  82064. * Gets the shadows Exposure value.
  82065. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  82066. */
  82067. get: function () {
  82068. return this._shadowsExposure;
  82069. },
  82070. /**
  82071. * Sets the shadows Exposure value.
  82072. * This is an adjustment value in the range [-100,+100], where the default value of 0.0 makes no adjustment, positive values increase exposure and negative values decrease exposure.
  82073. */
  82074. set: function (value) {
  82075. this._shadowsExposure = value;
  82076. this._dirty = true;
  82077. },
  82078. enumerable: true,
  82079. configurable: true
  82080. });
  82081. ColorCurves.prototype.getClassName = function () {
  82082. return "ColorCurves";
  82083. };
  82084. /**
  82085. * Binds the color curves to the shader.
  82086. * @param colorCurves The color curve to bind
  82087. * @param effect The effect to bind to
  82088. */
  82089. ColorCurves.Bind = function (colorCurves, effect, positiveUniform, neutralUniform, negativeUniform) {
  82090. if (positiveUniform === void 0) { positiveUniform = "vCameraColorCurvePositive"; }
  82091. if (neutralUniform === void 0) { neutralUniform = "vCameraColorCurveNeutral"; }
  82092. if (negativeUniform === void 0) { negativeUniform = "vCameraColorCurveNegative"; }
  82093. if (colorCurves._dirty) {
  82094. colorCurves._dirty = false;
  82095. // Fill in global info.
  82096. colorCurves.getColorGradingDataToRef(colorCurves._globalHue, colorCurves._globalDensity, colorCurves._globalSaturation, colorCurves._globalExposure, colorCurves._globalCurve);
  82097. // Compute highlights info.
  82098. colorCurves.getColorGradingDataToRef(colorCurves._highlightsHue, colorCurves._highlightsDensity, colorCurves._highlightsSaturation, colorCurves._highlightsExposure, colorCurves._tempColor);
  82099. colorCurves._tempColor.multiplyToRef(colorCurves._globalCurve, colorCurves._highlightsCurve);
  82100. // Compute midtones info.
  82101. colorCurves.getColorGradingDataToRef(colorCurves._midtonesHue, colorCurves._midtonesDensity, colorCurves._midtonesSaturation, colorCurves._midtonesExposure, colorCurves._tempColor);
  82102. colorCurves._tempColor.multiplyToRef(colorCurves._globalCurve, colorCurves._midtonesCurve);
  82103. // Compute shadows info.
  82104. colorCurves.getColorGradingDataToRef(colorCurves._shadowsHue, colorCurves._shadowsDensity, colorCurves._shadowsSaturation, colorCurves._shadowsExposure, colorCurves._tempColor);
  82105. colorCurves._tempColor.multiplyToRef(colorCurves._globalCurve, colorCurves._shadowsCurve);
  82106. // Compute deltas (neutral is midtones).
  82107. colorCurves._highlightsCurve.subtractToRef(colorCurves._midtonesCurve, colorCurves._positiveCurve);
  82108. colorCurves._midtonesCurve.subtractToRef(colorCurves._shadowsCurve, colorCurves._negativeCurve);
  82109. }
  82110. if (effect) {
  82111. effect.setFloat4(positiveUniform, colorCurves._positiveCurve.r, colorCurves._positiveCurve.g, colorCurves._positiveCurve.b, colorCurves._positiveCurve.a);
  82112. effect.setFloat4(neutralUniform, colorCurves._midtonesCurve.r, colorCurves._midtonesCurve.g, colorCurves._midtonesCurve.b, colorCurves._midtonesCurve.a);
  82113. effect.setFloat4(negativeUniform, colorCurves._negativeCurve.r, colorCurves._negativeCurve.g, colorCurves._negativeCurve.b, colorCurves._negativeCurve.a);
  82114. }
  82115. };
  82116. /**
  82117. * Prepare the list of uniforms associated with the ColorCurves effects.
  82118. * @param uniformsList The list of uniforms used in the effect
  82119. */
  82120. ColorCurves.PrepareUniforms = function (uniformsList) {
  82121. uniformsList.push("vCameraColorCurveNeutral", "vCameraColorCurvePositive", "vCameraColorCurveNegative");
  82122. };
  82123. /**
  82124. * Returns color grading data based on a hue, density, saturation and exposure value.
  82125. * @param filterHue The hue of the color filter.
  82126. * @param filterDensity The density of the color filter.
  82127. * @param saturation The saturation.
  82128. * @param exposure The exposure.
  82129. * @param result The result data container.
  82130. */
  82131. ColorCurves.prototype.getColorGradingDataToRef = function (hue, density, saturation, exposure, result) {
  82132. if (hue == null) {
  82133. return;
  82134. }
  82135. hue = ColorCurves.clamp(hue, 0, 360);
  82136. density = ColorCurves.clamp(density, -100, 100);
  82137. saturation = ColorCurves.clamp(saturation, -100, 100);
  82138. exposure = ColorCurves.clamp(exposure, -100, 100);
  82139. // Remap the slider/config filter density with non-linear mapping and also scale by half
  82140. // so that the maximum filter density is only 50% control. This provides fine control
  82141. // for small values and reasonable range.
  82142. density = ColorCurves.applyColorGradingSliderNonlinear(density);
  82143. density *= 0.5;
  82144. exposure = ColorCurves.applyColorGradingSliderNonlinear(exposure);
  82145. if (density < 0) {
  82146. density *= -1;
  82147. hue = (hue + 180) % 360;
  82148. }
  82149. ColorCurves.fromHSBToRef(hue, density, 50 + 0.25 * exposure, result);
  82150. result.scaleToRef(2, result);
  82151. result.a = 1 + 0.01 * saturation;
  82152. };
  82153. /**
  82154. * Takes an input slider value and returns an adjusted value that provides extra control near the centre.
  82155. * @param value The input slider value in range [-100,100].
  82156. * @returns Adjusted value.
  82157. */
  82158. ColorCurves.applyColorGradingSliderNonlinear = function (value) {
  82159. value /= 100;
  82160. var x = Math.abs(value);
  82161. x = Math.pow(x, 2);
  82162. if (value < 0) {
  82163. x *= -1;
  82164. }
  82165. x *= 100;
  82166. return x;
  82167. };
  82168. /**
  82169. * Returns an RGBA Color4 based on Hue, Saturation and Brightness (also referred to as value, HSV).
  82170. * @param hue The hue (H) input.
  82171. * @param saturation The saturation (S) input.
  82172. * @param brightness The brightness (B) input.
  82173. * @result An RGBA color represented as Vector4.
  82174. */
  82175. ColorCurves.fromHSBToRef = function (hue, saturation, brightness, result) {
  82176. var h = ColorCurves.clamp(hue, 0, 360);
  82177. var s = ColorCurves.clamp(saturation / 100, 0, 1);
  82178. var v = ColorCurves.clamp(brightness / 100, 0, 1);
  82179. if (s === 0) {
  82180. result.r = v;
  82181. result.g = v;
  82182. result.b = v;
  82183. }
  82184. else {
  82185. // sector 0 to 5
  82186. h /= 60;
  82187. var i = Math.floor(h);
  82188. // fractional part of h
  82189. var f = h - i;
  82190. var p = v * (1 - s);
  82191. var q = v * (1 - s * f);
  82192. var t = v * (1 - s * (1 - f));
  82193. switch (i) {
  82194. case 0:
  82195. result.r = v;
  82196. result.g = t;
  82197. result.b = p;
  82198. break;
  82199. case 1:
  82200. result.r = q;
  82201. result.g = v;
  82202. result.b = p;
  82203. break;
  82204. case 2:
  82205. result.r = p;
  82206. result.g = v;
  82207. result.b = t;
  82208. break;
  82209. case 3:
  82210. result.r = p;
  82211. result.g = q;
  82212. result.b = v;
  82213. break;
  82214. case 4:
  82215. result.r = t;
  82216. result.g = p;
  82217. result.b = v;
  82218. break;
  82219. default: // case 5:
  82220. result.r = v;
  82221. result.g = p;
  82222. result.b = q;
  82223. break;
  82224. }
  82225. }
  82226. result.a = 1;
  82227. };
  82228. /**
  82229. * Returns a value clamped between min and max
  82230. * @param value The value to clamp
  82231. * @param min The minimum of value
  82232. * @param max The maximum of value
  82233. * @returns The clamped value.
  82234. */
  82235. ColorCurves.clamp = function (value, min, max) {
  82236. return Math.min(Math.max(value, min), max);
  82237. };
  82238. /**
  82239. * Clones the current color curve instance.
  82240. * @return The cloned curves
  82241. */
  82242. ColorCurves.prototype.clone = function () {
  82243. return BABYLON.SerializationHelper.Clone(function () { return new ColorCurves(); }, this);
  82244. };
  82245. /**
  82246. * Serializes the current color curve instance to a json representation.
  82247. * @return a JSON representation
  82248. */
  82249. ColorCurves.prototype.serialize = function () {
  82250. return BABYLON.SerializationHelper.Serialize(this);
  82251. };
  82252. /**
  82253. * Parses the color curve from a json representation.
  82254. * @param source the JSON source to parse
  82255. * @return The parsed curves
  82256. */
  82257. ColorCurves.Parse = function (source) {
  82258. return BABYLON.SerializationHelper.Parse(function () { return new ColorCurves(); }, source, null, null);
  82259. };
  82260. __decorate([
  82261. BABYLON.serialize()
  82262. ], ColorCurves.prototype, "_globalHue", void 0);
  82263. __decorate([
  82264. BABYLON.serialize()
  82265. ], ColorCurves.prototype, "_globalDensity", void 0);
  82266. __decorate([
  82267. BABYLON.serialize()
  82268. ], ColorCurves.prototype, "_globalSaturation", void 0);
  82269. __decorate([
  82270. BABYLON.serialize()
  82271. ], ColorCurves.prototype, "_globalExposure", void 0);
  82272. __decorate([
  82273. BABYLON.serialize()
  82274. ], ColorCurves.prototype, "_highlightsHue", void 0);
  82275. __decorate([
  82276. BABYLON.serialize()
  82277. ], ColorCurves.prototype, "_highlightsDensity", void 0);
  82278. __decorate([
  82279. BABYLON.serialize()
  82280. ], ColorCurves.prototype, "_highlightsSaturation", void 0);
  82281. __decorate([
  82282. BABYLON.serialize()
  82283. ], ColorCurves.prototype, "_highlightsExposure", void 0);
  82284. __decorate([
  82285. BABYLON.serialize()
  82286. ], ColorCurves.prototype, "_midtonesHue", void 0);
  82287. __decorate([
  82288. BABYLON.serialize()
  82289. ], ColorCurves.prototype, "_midtonesDensity", void 0);
  82290. __decorate([
  82291. BABYLON.serialize()
  82292. ], ColorCurves.prototype, "_midtonesSaturation", void 0);
  82293. __decorate([
  82294. BABYLON.serialize()
  82295. ], ColorCurves.prototype, "_midtonesExposure", void 0);
  82296. return ColorCurves;
  82297. }());
  82298. BABYLON.ColorCurves = ColorCurves;
  82299. })(BABYLON || (BABYLON = {}));
  82300. //# sourceMappingURL=babylon.colorCurves.js.map
  82301. var BABYLON;
  82302. (function (BABYLON) {
  82303. var RefractionPostProcess = /** @class */ (function (_super) {
  82304. __extends(RefractionPostProcess, _super);
  82305. function RefractionPostProcess(name, refractionTextureUrl, color, depth, colorLevel, options, camera, samplingMode, engine, reusable) {
  82306. var _this = _super.call(this, name, "refraction", ["baseColor", "depth", "colorLevel"], ["refractionSampler"], options, camera, samplingMode, engine, reusable) || this;
  82307. _this.color = color;
  82308. _this.depth = depth;
  82309. _this.colorLevel = colorLevel;
  82310. _this._ownRefractionTexture = true;
  82311. _this.onActivateObservable.add(function (cam) {
  82312. _this._refTexture = _this._refTexture || new BABYLON.Texture(refractionTextureUrl, cam.getScene());
  82313. });
  82314. _this.onApplyObservable.add(function (effect) {
  82315. effect.setColor3("baseColor", _this.color);
  82316. effect.setFloat("depth", _this.depth);
  82317. effect.setFloat("colorLevel", _this.colorLevel);
  82318. effect.setTexture("refractionSampler", _this._refTexture);
  82319. });
  82320. return _this;
  82321. }
  82322. Object.defineProperty(RefractionPostProcess.prototype, "refractionTexture", {
  82323. /**
  82324. * Gets or sets the refraction texture
  82325. * Please note that you are responsible for disposing the texture if you set it manually
  82326. */
  82327. get: function () {
  82328. return this._refTexture;
  82329. },
  82330. set: function (value) {
  82331. if (this._refTexture && this._ownRefractionTexture) {
  82332. this._refTexture.dispose();
  82333. }
  82334. this._refTexture = value;
  82335. this._ownRefractionTexture = false;
  82336. },
  82337. enumerable: true,
  82338. configurable: true
  82339. });
  82340. // Methods
  82341. RefractionPostProcess.prototype.dispose = function (camera) {
  82342. if (this._refTexture && this._ownRefractionTexture) {
  82343. this._refTexture.dispose();
  82344. this._refTexture = null;
  82345. }
  82346. _super.prototype.dispose.call(this, camera);
  82347. };
  82348. return RefractionPostProcess;
  82349. }(BABYLON.PostProcess));
  82350. BABYLON.RefractionPostProcess = RefractionPostProcess;
  82351. })(BABYLON || (BABYLON = {}));
  82352. //# sourceMappingURL=babylon.refractionPostProcess.js.map
  82353. var BABYLON;
  82354. (function (BABYLON) {
  82355. var BlackAndWhitePostProcess = /** @class */ (function (_super) {
  82356. __extends(BlackAndWhitePostProcess, _super);
  82357. function BlackAndWhitePostProcess(name, options, camera, samplingMode, engine, reusable) {
  82358. var _this = _super.call(this, name, "blackAndWhite", ["degree"], null, options, camera, samplingMode, engine, reusable) || this;
  82359. _this.degree = 1;
  82360. _this.onApplyObservable.add(function (effect) {
  82361. effect.setFloat("degree", _this.degree);
  82362. });
  82363. return _this;
  82364. }
  82365. return BlackAndWhitePostProcess;
  82366. }(BABYLON.PostProcess));
  82367. BABYLON.BlackAndWhitePostProcess = BlackAndWhitePostProcess;
  82368. })(BABYLON || (BABYLON = {}));
  82369. //# sourceMappingURL=babylon.blackAndWhitePostProcess.js.map
  82370. var BABYLON;
  82371. (function (BABYLON) {
  82372. /**
  82373. * The ConvolutionPostProcess applies a 3x3 kernel to every pixel of the
  82374. * input texture to perform effects such as edge detection or sharpening
  82375. * See http://en.wikipedia.org/wiki/Kernel_(image_processing)
  82376. */
  82377. var ConvolutionPostProcess = /** @class */ (function (_super) {
  82378. __extends(ConvolutionPostProcess, _super);
  82379. /**
  82380. * Creates a new instance ConvolutionPostProcess
  82381. * @param name The name of the effect.
  82382. * @param kernel Array of 9 values corrisponding to the 3x3 kernel to be applied
  82383. * @param options The required width/height ratio to downsize to before computing the render pass.
  82384. * @param camera The camera to apply the render pass to.
  82385. * @param samplingMode The sampling mode to be used when computing the pass. (default: 0)
  82386. * @param engine The engine which the post process will be applied. (default: current engine)
  82387. * @param reusable If the post process can be reused on the same frame. (default: false)
  82388. * @param textureType Type of textures used when performing the post process. (default: 0)
  82389. */
  82390. function ConvolutionPostProcess(name,
  82391. /** Array of 9 values corrisponding to the 3x3 kernel to be applied */
  82392. kernel, options, camera, samplingMode, engine, reusable, textureType) {
  82393. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  82394. var _this = _super.call(this, name, "convolution", ["kernel", "screenSize"], null, options, camera, samplingMode, engine, reusable, null, textureType) || this;
  82395. _this.kernel = kernel;
  82396. _this.onApply = function (effect) {
  82397. effect.setFloat2("screenSize", _this.width, _this.height);
  82398. effect.setArray("kernel", _this.kernel);
  82399. };
  82400. return _this;
  82401. }
  82402. // Statics
  82403. /**
  82404. * Edge detection 0 see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82405. */
  82406. ConvolutionPostProcess.EdgeDetect0Kernel = [1, 0, -1, 0, 0, 0, -1, 0, 1];
  82407. /**
  82408. * Edge detection 1 see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82409. */
  82410. ConvolutionPostProcess.EdgeDetect1Kernel = [0, 1, 0, 1, -4, 1, 0, 1, 0];
  82411. /**
  82412. * Edge detection 2 see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82413. */
  82414. ConvolutionPostProcess.EdgeDetect2Kernel = [-1, -1, -1, -1, 8, -1, -1, -1, -1];
  82415. /**
  82416. * Kernel to sharpen an image see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82417. */
  82418. ConvolutionPostProcess.SharpenKernel = [0, -1, 0, -1, 5, -1, 0, -1, 0];
  82419. /**
  82420. * Kernel to emboss an image see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82421. */
  82422. ConvolutionPostProcess.EmbossKernel = [-2, -1, 0, -1, 1, 1, 0, 1, 2];
  82423. /**
  82424. * Kernel to blur an image see https://en.wikipedia.org/wiki/Kernel_(image_processing)
  82425. */
  82426. ConvolutionPostProcess.GaussianKernel = [0, 1, 0, 1, 1, 1, 0, 1, 0];
  82427. return ConvolutionPostProcess;
  82428. }(BABYLON.PostProcess));
  82429. BABYLON.ConvolutionPostProcess = ConvolutionPostProcess;
  82430. })(BABYLON || (BABYLON = {}));
  82431. //# sourceMappingURL=babylon.convolutionPostProcess.js.map
  82432. var BABYLON;
  82433. (function (BABYLON) {
  82434. var FilterPostProcess = /** @class */ (function (_super) {
  82435. __extends(FilterPostProcess, _super);
  82436. function FilterPostProcess(name, kernelMatrix, options, camera, samplingMode, engine, reusable) {
  82437. var _this = _super.call(this, name, "filter", ["kernelMatrix"], null, options, camera, samplingMode, engine, reusable) || this;
  82438. _this.kernelMatrix = kernelMatrix;
  82439. _this.onApply = function (effect) {
  82440. effect.setMatrix("kernelMatrix", _this.kernelMatrix);
  82441. };
  82442. return _this;
  82443. }
  82444. return FilterPostProcess;
  82445. }(BABYLON.PostProcess));
  82446. BABYLON.FilterPostProcess = FilterPostProcess;
  82447. })(BABYLON || (BABYLON = {}));
  82448. //# sourceMappingURL=babylon.filterPostProcess.js.map
  82449. var BABYLON;
  82450. (function (BABYLON) {
  82451. // Inspired by http://http.developer.nvidia.com/GPUGems3/gpugems3_ch13.html
  82452. var VolumetricLightScatteringPostProcess = /** @class */ (function (_super) {
  82453. __extends(VolumetricLightScatteringPostProcess, _super);
  82454. /**
  82455. * @constructor
  82456. * @param {string} name - The post-process name
  82457. * @param {any} ratio - The size of the post-process and/or internal pass (0.5 means that your postprocess will have a width = canvas.width 0.5 and a height = canvas.height 0.5)
  82458. * @param {BABYLON.Camera} camera - The camera that the post-process will be attached to
  82459. * @param {BABYLON.Mesh} mesh - The mesh used to create the light scattering
  82460. * @param {number} samples - The post-process quality, default 100
  82461. * @param {number} samplingMode - The post-process filtering mode
  82462. * @param {BABYLON.Engine} engine - The babylon engine
  82463. * @param {boolean} reusable - If the post-process is reusable
  82464. * @param {BABYLON.Scene} scene - The constructor needs a scene reference to initialize internal components. If "camera" is null a "scene" must be provided
  82465. */
  82466. function VolumetricLightScatteringPostProcess(name, ratio, camera, mesh, samples, samplingMode, engine, reusable, scene) {
  82467. if (samples === void 0) { samples = 100; }
  82468. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  82469. var _this = _super.call(this, name, "volumetricLightScattering", ["decay", "exposure", "weight", "meshPositionOnScreen", "density"], ["lightScatteringSampler"], ratio.postProcessRatio || ratio, camera, samplingMode, engine, reusable, "#define NUM_SAMPLES " + samples) || this;
  82470. _this._screenCoordinates = BABYLON.Vector2.Zero();
  82471. /**
  82472. * Custom position of the mesh. Used if "useCustomMeshPosition" is set to "true"
  82473. */
  82474. _this.customMeshPosition = BABYLON.Vector3.Zero();
  82475. /**
  82476. * Set if the post-process should use a custom position for the light source (true) or the internal mesh position (false)
  82477. */
  82478. _this.useCustomMeshPosition = false;
  82479. /**
  82480. * If the post-process should inverse the light scattering direction
  82481. */
  82482. _this.invert = true;
  82483. /**
  82484. * Array containing the excluded meshes not rendered in the internal pass
  82485. */
  82486. _this.excludedMeshes = new Array();
  82487. /**
  82488. * Controls the overall intensity of the post-process
  82489. */
  82490. _this.exposure = 0.3;
  82491. /**
  82492. * Dissipates each sample's contribution in range [0, 1]
  82493. */
  82494. _this.decay = 0.96815;
  82495. /**
  82496. * Controls the overall intensity of each sample
  82497. */
  82498. _this.weight = 0.58767;
  82499. /**
  82500. * Controls the density of each sample
  82501. */
  82502. _this.density = 0.926;
  82503. scene = ((camera === null) ? scene : camera.getScene()); // parameter "scene" can be null.
  82504. engine = scene.getEngine();
  82505. _this._viewPort = new BABYLON.Viewport(0, 0, 1, 1).toGlobal(engine.getRenderWidth(), engine.getRenderHeight());
  82506. // Configure mesh
  82507. _this.mesh = ((mesh !== null) ? mesh : VolumetricLightScatteringPostProcess.CreateDefaultMesh("VolumetricLightScatteringMesh", scene));
  82508. // Configure
  82509. _this._createPass(scene, ratio.passRatio || ratio);
  82510. _this.onActivate = function (camera) {
  82511. if (!_this.isSupported) {
  82512. _this.dispose(camera);
  82513. }
  82514. _this.onActivate = null;
  82515. };
  82516. _this.onApplyObservable.add(function (effect) {
  82517. _this._updateMeshScreenCoordinates(scene);
  82518. effect.setTexture("lightScatteringSampler", _this._volumetricLightScatteringRTT);
  82519. effect.setFloat("exposure", _this.exposure);
  82520. effect.setFloat("decay", _this.decay);
  82521. effect.setFloat("weight", _this.weight);
  82522. effect.setFloat("density", _this.density);
  82523. effect.setVector2("meshPositionOnScreen", _this._screenCoordinates);
  82524. });
  82525. return _this;
  82526. }
  82527. Object.defineProperty(VolumetricLightScatteringPostProcess.prototype, "useDiffuseColor", {
  82528. get: function () {
  82529. BABYLON.Tools.Warn("VolumetricLightScatteringPostProcess.useDiffuseColor is no longer used, use the mesh material directly instead");
  82530. return false;
  82531. },
  82532. set: function (useDiffuseColor) {
  82533. BABYLON.Tools.Warn("VolumetricLightScatteringPostProcess.useDiffuseColor is no longer used, use the mesh material directly instead");
  82534. },
  82535. enumerable: true,
  82536. configurable: true
  82537. });
  82538. VolumetricLightScatteringPostProcess.prototype.getClassName = function () {
  82539. return "VolumetricLightScatteringPostProcess";
  82540. };
  82541. VolumetricLightScatteringPostProcess.prototype._isReady = function (subMesh, useInstances) {
  82542. var mesh = subMesh.getMesh();
  82543. // Render this.mesh as default
  82544. if (mesh === this.mesh && mesh.material) {
  82545. return mesh.material.isReady(mesh);
  82546. }
  82547. var defines = [];
  82548. var attribs = [BABYLON.VertexBuffer.PositionKind];
  82549. var material = subMesh.getMaterial();
  82550. // Alpha test
  82551. if (material) {
  82552. if (material.needAlphaTesting()) {
  82553. defines.push("#define ALPHATEST");
  82554. }
  82555. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  82556. attribs.push(BABYLON.VertexBuffer.UVKind);
  82557. defines.push("#define UV1");
  82558. }
  82559. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  82560. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  82561. defines.push("#define UV2");
  82562. }
  82563. }
  82564. // Bones
  82565. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  82566. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  82567. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  82568. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  82569. defines.push("#define BonesPerMesh " + (mesh.skeleton ? (mesh.skeleton.bones.length + 1) : 0));
  82570. }
  82571. else {
  82572. defines.push("#define NUM_BONE_INFLUENCERS 0");
  82573. }
  82574. // Instances
  82575. if (useInstances) {
  82576. defines.push("#define INSTANCES");
  82577. attribs.push("world0");
  82578. attribs.push("world1");
  82579. attribs.push("world2");
  82580. attribs.push("world3");
  82581. }
  82582. // Get correct effect
  82583. var join = defines.join("\n");
  82584. if (this._cachedDefines !== join) {
  82585. this._cachedDefines = join;
  82586. this._volumetricLightScatteringPass = mesh.getScene().getEngine().createEffect({ vertexElement: "depth", fragmentElement: "volumetricLightScatteringPass" }, attribs, ["world", "mBones", "viewProjection", "diffuseMatrix"], ["diffuseSampler"], join);
  82587. }
  82588. return this._volumetricLightScatteringPass.isReady();
  82589. };
  82590. /**
  82591. * Sets the new light position for light scattering effect
  82592. * @param {BABYLON.Vector3} The new custom light position
  82593. */
  82594. VolumetricLightScatteringPostProcess.prototype.setCustomMeshPosition = function (position) {
  82595. this.customMeshPosition = position;
  82596. };
  82597. /**
  82598. * Returns the light position for light scattering effect
  82599. * @return {BABYLON.Vector3} The custom light position
  82600. */
  82601. VolumetricLightScatteringPostProcess.prototype.getCustomMeshPosition = function () {
  82602. return this.customMeshPosition;
  82603. };
  82604. /**
  82605. * Disposes the internal assets and detaches the post-process from the camera
  82606. */
  82607. VolumetricLightScatteringPostProcess.prototype.dispose = function (camera) {
  82608. var rttIndex = camera.getScene().customRenderTargets.indexOf(this._volumetricLightScatteringRTT);
  82609. if (rttIndex !== -1) {
  82610. camera.getScene().customRenderTargets.splice(rttIndex, 1);
  82611. }
  82612. this._volumetricLightScatteringRTT.dispose();
  82613. _super.prototype.dispose.call(this, camera);
  82614. };
  82615. /**
  82616. * Returns the render target texture used by the post-process
  82617. * @return {BABYLON.RenderTargetTexture} The render target texture used by the post-process
  82618. */
  82619. VolumetricLightScatteringPostProcess.prototype.getPass = function () {
  82620. return this._volumetricLightScatteringRTT;
  82621. };
  82622. // Private methods
  82623. VolumetricLightScatteringPostProcess.prototype._meshExcluded = function (mesh) {
  82624. if (this.excludedMeshes.length > 0 && this.excludedMeshes.indexOf(mesh) !== -1) {
  82625. return true;
  82626. }
  82627. return false;
  82628. };
  82629. VolumetricLightScatteringPostProcess.prototype._createPass = function (scene, ratio) {
  82630. var _this = this;
  82631. var engine = scene.getEngine();
  82632. this._volumetricLightScatteringRTT = new BABYLON.RenderTargetTexture("volumetricLightScatteringMap", { width: engine.getRenderWidth() * ratio, height: engine.getRenderHeight() * ratio }, scene, false, true, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  82633. this._volumetricLightScatteringRTT.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  82634. this._volumetricLightScatteringRTT.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  82635. this._volumetricLightScatteringRTT.renderList = null;
  82636. this._volumetricLightScatteringRTT.renderParticles = false;
  82637. this._volumetricLightScatteringRTT.ignoreCameraViewport = true;
  82638. var camera = this.getCamera();
  82639. if (camera) {
  82640. camera.customRenderTargets.push(this._volumetricLightScatteringRTT);
  82641. }
  82642. else {
  82643. scene.customRenderTargets.push(this._volumetricLightScatteringRTT);
  82644. }
  82645. // Custom render function for submeshes
  82646. var renderSubMesh = function (subMesh) {
  82647. var mesh = subMesh.getRenderingMesh();
  82648. if (_this._meshExcluded(mesh)) {
  82649. return;
  82650. }
  82651. var material = subMesh.getMaterial();
  82652. if (!material) {
  82653. return;
  82654. }
  82655. var scene = mesh.getScene();
  82656. var engine = scene.getEngine();
  82657. // Culling
  82658. engine.setState(material.backFaceCulling);
  82659. // Managing instances
  82660. var batch = mesh._getInstancesRenderList(subMesh._id);
  82661. if (batch.mustReturn) {
  82662. return;
  82663. }
  82664. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null);
  82665. if (_this._isReady(subMesh, hardwareInstancedRendering)) {
  82666. var effect = _this._volumetricLightScatteringPass;
  82667. if (mesh === _this.mesh) {
  82668. if (subMesh.effect) {
  82669. effect = subMesh.effect;
  82670. }
  82671. else {
  82672. effect = material.getEffect();
  82673. }
  82674. }
  82675. engine.enableEffect(effect);
  82676. mesh._bind(subMesh, effect, BABYLON.Material.TriangleFillMode);
  82677. if (mesh === _this.mesh) {
  82678. material.bind(mesh.getWorldMatrix(), mesh);
  82679. }
  82680. else {
  82681. _this._volumetricLightScatteringPass.setMatrix("viewProjection", scene.getTransformMatrix());
  82682. // Alpha test
  82683. if (material && material.needAlphaTesting()) {
  82684. var alphaTexture = material.getAlphaTestTexture();
  82685. _this._volumetricLightScatteringPass.setTexture("diffuseSampler", alphaTexture);
  82686. if (alphaTexture) {
  82687. _this._volumetricLightScatteringPass.setMatrix("diffuseMatrix", alphaTexture.getTextureMatrix());
  82688. }
  82689. }
  82690. // Bones
  82691. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  82692. _this._volumetricLightScatteringPass.setMatrices("mBones", mesh.skeleton.getTransformMatrices(mesh));
  82693. }
  82694. }
  82695. // Draw
  82696. mesh._processRendering(subMesh, _this._volumetricLightScatteringPass, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { return effect.setMatrix("world", world); });
  82697. }
  82698. };
  82699. // Render target texture callbacks
  82700. var savedSceneClearColor;
  82701. var sceneClearColor = new BABYLON.Color4(0.0, 0.0, 0.0, 1.0);
  82702. this._volumetricLightScatteringRTT.onBeforeRenderObservable.add(function () {
  82703. savedSceneClearColor = scene.clearColor;
  82704. scene.clearColor = sceneClearColor;
  82705. });
  82706. this._volumetricLightScatteringRTT.onAfterRenderObservable.add(function () {
  82707. scene.clearColor = savedSceneClearColor;
  82708. });
  82709. this._volumetricLightScatteringRTT.customRenderFunction = function (opaqueSubMeshes, alphaTestSubMeshes, transparentSubMeshes, depthOnlySubMeshes) {
  82710. var engine = scene.getEngine();
  82711. var index;
  82712. if (depthOnlySubMeshes.length) {
  82713. engine.setColorWrite(false);
  82714. for (index = 0; index < depthOnlySubMeshes.length; index++) {
  82715. renderSubMesh(depthOnlySubMeshes.data[index]);
  82716. }
  82717. engine.setColorWrite(true);
  82718. }
  82719. for (index = 0; index < opaqueSubMeshes.length; index++) {
  82720. renderSubMesh(opaqueSubMeshes.data[index]);
  82721. }
  82722. for (index = 0; index < alphaTestSubMeshes.length; index++) {
  82723. renderSubMesh(alphaTestSubMeshes.data[index]);
  82724. }
  82725. if (transparentSubMeshes.length) {
  82726. // Sort sub meshes
  82727. for (index = 0; index < transparentSubMeshes.length; index++) {
  82728. var submesh = transparentSubMeshes.data[index];
  82729. var boundingInfo = submesh.getBoundingInfo();
  82730. if (boundingInfo && scene.activeCamera) {
  82731. submesh._alphaIndex = submesh.getMesh().alphaIndex;
  82732. submesh._distanceToCamera = boundingInfo.boundingSphere.centerWorld.subtract(scene.activeCamera.position).length();
  82733. }
  82734. }
  82735. var sortedArray = transparentSubMeshes.data.slice(0, transparentSubMeshes.length);
  82736. sortedArray.sort(function (a, b) {
  82737. // Alpha index first
  82738. if (a._alphaIndex > b._alphaIndex) {
  82739. return 1;
  82740. }
  82741. if (a._alphaIndex < b._alphaIndex) {
  82742. return -1;
  82743. }
  82744. // Then distance to camera
  82745. if (a._distanceToCamera < b._distanceToCamera) {
  82746. return 1;
  82747. }
  82748. if (a._distanceToCamera > b._distanceToCamera) {
  82749. return -1;
  82750. }
  82751. return 0;
  82752. });
  82753. // Render sub meshes
  82754. engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  82755. for (index = 0; index < sortedArray.length; index++) {
  82756. renderSubMesh(sortedArray[index]);
  82757. }
  82758. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  82759. }
  82760. };
  82761. };
  82762. VolumetricLightScatteringPostProcess.prototype._updateMeshScreenCoordinates = function (scene) {
  82763. var transform = scene.getTransformMatrix();
  82764. var meshPosition;
  82765. if (this.useCustomMeshPosition) {
  82766. meshPosition = this.customMeshPosition;
  82767. }
  82768. else if (this.attachedNode) {
  82769. meshPosition = this.attachedNode.position;
  82770. }
  82771. else {
  82772. meshPosition = this.mesh.parent ? this.mesh.getAbsolutePosition() : this.mesh.position;
  82773. }
  82774. var pos = BABYLON.Vector3.Project(meshPosition, BABYLON.Matrix.Identity(), transform, this._viewPort);
  82775. this._screenCoordinates.x = pos.x / this._viewPort.width;
  82776. this._screenCoordinates.y = pos.y / this._viewPort.height;
  82777. if (this.invert)
  82778. this._screenCoordinates.y = 1.0 - this._screenCoordinates.y;
  82779. };
  82780. // Static methods
  82781. /**
  82782. * Creates a default mesh for the Volumeric Light Scattering post-process
  82783. * @param {string} The mesh name
  82784. * @param {BABYLON.Scene} The scene where to create the mesh
  82785. * @return {BABYLON.Mesh} the default mesh
  82786. */
  82787. VolumetricLightScatteringPostProcess.CreateDefaultMesh = function (name, scene) {
  82788. var mesh = BABYLON.Mesh.CreatePlane(name, 1, scene);
  82789. mesh.billboardMode = BABYLON.AbstractMesh.BILLBOARDMODE_ALL;
  82790. var material = new BABYLON.StandardMaterial(name + "Material", scene);
  82791. material.emissiveColor = new BABYLON.Color3(1, 1, 1);
  82792. mesh.material = material;
  82793. return mesh;
  82794. };
  82795. __decorate([
  82796. BABYLON.serializeAsVector3()
  82797. ], VolumetricLightScatteringPostProcess.prototype, "customMeshPosition", void 0);
  82798. __decorate([
  82799. BABYLON.serialize()
  82800. ], VolumetricLightScatteringPostProcess.prototype, "useCustomMeshPosition", void 0);
  82801. __decorate([
  82802. BABYLON.serialize()
  82803. ], VolumetricLightScatteringPostProcess.prototype, "invert", void 0);
  82804. __decorate([
  82805. BABYLON.serializeAsMeshReference()
  82806. ], VolumetricLightScatteringPostProcess.prototype, "mesh", void 0);
  82807. __decorate([
  82808. BABYLON.serialize()
  82809. ], VolumetricLightScatteringPostProcess.prototype, "excludedMeshes", void 0);
  82810. __decorate([
  82811. BABYLON.serialize()
  82812. ], VolumetricLightScatteringPostProcess.prototype, "exposure", void 0);
  82813. __decorate([
  82814. BABYLON.serialize()
  82815. ], VolumetricLightScatteringPostProcess.prototype, "decay", void 0);
  82816. __decorate([
  82817. BABYLON.serialize()
  82818. ], VolumetricLightScatteringPostProcess.prototype, "weight", void 0);
  82819. __decorate([
  82820. BABYLON.serialize()
  82821. ], VolumetricLightScatteringPostProcess.prototype, "density", void 0);
  82822. return VolumetricLightScatteringPostProcess;
  82823. }(BABYLON.PostProcess));
  82824. BABYLON.VolumetricLightScatteringPostProcess = VolumetricLightScatteringPostProcess;
  82825. })(BABYLON || (BABYLON = {}));
  82826. //# sourceMappingURL=babylon.volumetricLightScatteringPostProcess.js.map
  82827. //
  82828. // This post-process allows the modification of rendered colors by using
  82829. // a 'look-up table' (LUT). This effect is also called Color Grading.
  82830. //
  82831. // The object needs to be provided an url to a texture containing the color
  82832. // look-up table: the texture must be 256 pixels wide and 16 pixels high.
  82833. // Use an image editing software to tweak the LUT to match your needs.
  82834. //
  82835. // For an example of a color LUT, see here:
  82836. // http://udn.epicgames.com/Three/rsrc/Three/ColorGrading/RGBTable16x1.png
  82837. // For explanations on color grading, see here:
  82838. // http://udn.epicgames.com/Three/ColorGrading.html
  82839. //
  82840. var BABYLON;
  82841. (function (BABYLON) {
  82842. var ColorCorrectionPostProcess = /** @class */ (function (_super) {
  82843. __extends(ColorCorrectionPostProcess, _super);
  82844. function ColorCorrectionPostProcess(name, colorTableUrl, options, camera, samplingMode, engine, reusable) {
  82845. var _this = _super.call(this, name, 'colorCorrection', null, ['colorTable'], options, camera, samplingMode, engine, reusable) || this;
  82846. _this._colorTableTexture = new BABYLON.Texture(colorTableUrl, camera.getScene(), true, false, BABYLON.Texture.TRILINEAR_SAMPLINGMODE);
  82847. _this._colorTableTexture.anisotropicFilteringLevel = 1;
  82848. _this._colorTableTexture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  82849. _this._colorTableTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  82850. _this.onApply = function (effect) {
  82851. effect.setTexture("colorTable", _this._colorTableTexture);
  82852. };
  82853. return _this;
  82854. }
  82855. return ColorCorrectionPostProcess;
  82856. }(BABYLON.PostProcess));
  82857. BABYLON.ColorCorrectionPostProcess = ColorCorrectionPostProcess;
  82858. })(BABYLON || (BABYLON = {}));
  82859. //# sourceMappingURL=babylon.colorCorrectionPostProcess.js.map
  82860. var BABYLON;
  82861. (function (BABYLON) {
  82862. /** Defines operator used for tonemapping */
  82863. var TonemappingOperator;
  82864. (function (TonemappingOperator) {
  82865. /** Hable */
  82866. TonemappingOperator[TonemappingOperator["Hable"] = 0] = "Hable";
  82867. /** Reinhard */
  82868. TonemappingOperator[TonemappingOperator["Reinhard"] = 1] = "Reinhard";
  82869. /** HejiDawson */
  82870. TonemappingOperator[TonemappingOperator["HejiDawson"] = 2] = "HejiDawson";
  82871. /** Photographic */
  82872. TonemappingOperator[TonemappingOperator["Photographic"] = 3] = "Photographic";
  82873. })(TonemappingOperator = BABYLON.TonemappingOperator || (BABYLON.TonemappingOperator = {}));
  82874. ;
  82875. /**
  82876. * Defines a post process to apply tone mapping
  82877. */
  82878. var TonemapPostProcess = /** @class */ (function (_super) {
  82879. __extends(TonemapPostProcess, _super);
  82880. /**
  82881. * Creates a new TonemapPostProcess
  82882. * @param name defines the name of the postprocess
  82883. * @param _operator defines the operator to use
  82884. * @param exposureAdjustment defines the required exposure adjustement
  82885. * @param camera defines the camera to use (can be null)
  82886. * @param samplingMode defines the required sampling mode (BABYLON.Texture.BILINEAR_SAMPLINGMODE by default)
  82887. * @param engine defines the hosting engine (can be ignore if camera is set)
  82888. * @param textureFormat defines the texture format to use (BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT by default)
  82889. */
  82890. function TonemapPostProcess(name, _operator,
  82891. /** Defines the required exposure adjustement */
  82892. exposureAdjustment, camera, samplingMode, engine, textureFormat) {
  82893. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  82894. if (textureFormat === void 0) { textureFormat = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  82895. var _this = _super.call(this, name, "tonemap", ["_ExposureAdjustment"], null, 1.0, camera, samplingMode, engine, true, null, textureFormat) || this;
  82896. _this._operator = _operator;
  82897. _this.exposureAdjustment = exposureAdjustment;
  82898. var defines = "#define ";
  82899. if (_this._operator === TonemappingOperator.Hable)
  82900. defines += "HABLE_TONEMAPPING";
  82901. else if (_this._operator === TonemappingOperator.Reinhard)
  82902. defines += "REINHARD_TONEMAPPING";
  82903. else if (_this._operator === TonemappingOperator.HejiDawson)
  82904. defines += "OPTIMIZED_HEJIDAWSON_TONEMAPPING";
  82905. else if (_this._operator === TonemappingOperator.Photographic)
  82906. defines += "PHOTOGRAPHIC_TONEMAPPING";
  82907. //sadly a second call to create the effect.
  82908. _this.updateEffect(defines);
  82909. _this.onApply = function (effect) {
  82910. effect.setFloat("_ExposureAdjustment", _this.exposureAdjustment);
  82911. };
  82912. return _this;
  82913. }
  82914. return TonemapPostProcess;
  82915. }(BABYLON.PostProcess));
  82916. BABYLON.TonemapPostProcess = TonemapPostProcess;
  82917. })(BABYLON || (BABYLON = {}));
  82918. //# sourceMappingURL=babylon.tonemapPostProcess.js.map
  82919. var BABYLON;
  82920. (function (BABYLON) {
  82921. var DisplayPassPostProcess = /** @class */ (function (_super) {
  82922. __extends(DisplayPassPostProcess, _super);
  82923. function DisplayPassPostProcess(name, options, camera, samplingMode, engine, reusable) {
  82924. return _super.call(this, name, "displayPass", ["passSampler"], ["passSampler"], options, camera, samplingMode, engine, reusable) || this;
  82925. }
  82926. return DisplayPassPostProcess;
  82927. }(BABYLON.PostProcess));
  82928. BABYLON.DisplayPassPostProcess = DisplayPassPostProcess;
  82929. })(BABYLON || (BABYLON = {}));
  82930. //# sourceMappingURL=babylon.displayPassPostProcess.js.map
  82931. var BABYLON;
  82932. (function (BABYLON) {
  82933. var HighlightsPostProcess = /** @class */ (function (_super) {
  82934. __extends(HighlightsPostProcess, _super);
  82935. function HighlightsPostProcess(name, options, camera, samplingMode, engine, reusable, textureType) {
  82936. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  82937. return _super.call(this, name, "highlights", null, null, options, camera, samplingMode, engine, reusable, null, textureType) || this;
  82938. }
  82939. return HighlightsPostProcess;
  82940. }(BABYLON.PostProcess));
  82941. BABYLON.HighlightsPostProcess = HighlightsPostProcess;
  82942. })(BABYLON || (BABYLON = {}));
  82943. //# sourceMappingURL=babylon.highlightsPostProcess.js.map
  82944. var BABYLON;
  82945. (function (BABYLON) {
  82946. var ImageProcessingPostProcess = /** @class */ (function (_super) {
  82947. __extends(ImageProcessingPostProcess, _super);
  82948. function ImageProcessingPostProcess(name, options, camera, samplingMode, engine, reusable, textureType, imageProcessingConfiguration) {
  82949. if (camera === void 0) { camera = null; }
  82950. if (textureType === void 0) { textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT; }
  82951. var _this = _super.call(this, name, "imageProcessing", [], [], options, camera, samplingMode, engine, reusable, null, textureType, "postprocess", null, true) || this;
  82952. _this._fromLinearSpace = true;
  82953. /**
  82954. * Defines cache preventing GC.
  82955. */
  82956. _this._defines = {
  82957. IMAGEPROCESSING: false,
  82958. VIGNETTE: false,
  82959. VIGNETTEBLENDMODEMULTIPLY: false,
  82960. VIGNETTEBLENDMODEOPAQUE: false,
  82961. TONEMAPPING: false,
  82962. TONEMAPPING_ACES: false,
  82963. CONTRAST: false,
  82964. COLORCURVES: false,
  82965. COLORGRADING: false,
  82966. COLORGRADING3D: false,
  82967. FROMLINEARSPACE: false,
  82968. SAMPLER3DGREENDEPTH: false,
  82969. SAMPLER3DBGRMAP: false,
  82970. IMAGEPROCESSINGPOSTPROCESS: false,
  82971. EXPOSURE: false,
  82972. };
  82973. // Setup the configuration as forced by the constructor. This would then not force the
  82974. // scene materials output in linear space and let untouched the default forward pass.
  82975. if (imageProcessingConfiguration) {
  82976. imageProcessingConfiguration.applyByPostProcess = true;
  82977. _this._attachImageProcessingConfiguration(imageProcessingConfiguration, true);
  82978. // This will cause the shader to be compiled
  82979. _this.fromLinearSpace = false;
  82980. }
  82981. // Setup the default processing configuration to the scene.
  82982. else {
  82983. _this._attachImageProcessingConfiguration(null, true);
  82984. _this.imageProcessingConfiguration.applyByPostProcess = true;
  82985. }
  82986. _this.onApply = function (effect) {
  82987. _this.imageProcessingConfiguration.bind(effect, _this.aspectRatio);
  82988. };
  82989. return _this;
  82990. }
  82991. Object.defineProperty(ImageProcessingPostProcess.prototype, "imageProcessingConfiguration", {
  82992. /**
  82993. * Gets the image processing configuration used either in this material.
  82994. */
  82995. get: function () {
  82996. return this._imageProcessingConfiguration;
  82997. },
  82998. /**
  82999. * Sets the Default image processing configuration used either in the this material.
  83000. *
  83001. * If sets to null, the scene one is in use.
  83002. */
  83003. set: function (value) {
  83004. this._attachImageProcessingConfiguration(value);
  83005. },
  83006. enumerable: true,
  83007. configurable: true
  83008. });
  83009. /**
  83010. * Attaches a new image processing configuration to the PBR Material.
  83011. * @param configuration
  83012. */
  83013. ImageProcessingPostProcess.prototype._attachImageProcessingConfiguration = function (configuration, doNotBuild) {
  83014. var _this = this;
  83015. if (doNotBuild === void 0) { doNotBuild = false; }
  83016. if (configuration === this._imageProcessingConfiguration) {
  83017. return;
  83018. }
  83019. // Detaches observer.
  83020. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  83021. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  83022. }
  83023. // Pick the scene configuration if needed.
  83024. if (!configuration) {
  83025. var scene = null;
  83026. var engine = this.getEngine();
  83027. var camera = this.getCamera();
  83028. if (camera) {
  83029. scene = camera.getScene();
  83030. }
  83031. else if (engine && engine.scenes) {
  83032. var scenes = engine.scenes;
  83033. scene = scenes[scenes.length - 1];
  83034. }
  83035. else {
  83036. scene = BABYLON.Engine.LastCreatedScene;
  83037. }
  83038. this._imageProcessingConfiguration = scene.imageProcessingConfiguration;
  83039. }
  83040. else {
  83041. this._imageProcessingConfiguration = configuration;
  83042. }
  83043. // Attaches observer.
  83044. if (this._imageProcessingConfiguration) {
  83045. this._imageProcessingObserver = this._imageProcessingConfiguration.onUpdateParameters.add(function (conf) {
  83046. _this._updateParameters();
  83047. });
  83048. }
  83049. // Ensure the effect will be rebuilt.
  83050. if (!doNotBuild) {
  83051. this._updateParameters();
  83052. }
  83053. };
  83054. Object.defineProperty(ImageProcessingPostProcess.prototype, "colorCurves", {
  83055. /**
  83056. * Gets Color curves setup used in the effect if colorCurvesEnabled is set to true .
  83057. */
  83058. get: function () {
  83059. return this.imageProcessingConfiguration.colorCurves;
  83060. },
  83061. /**
  83062. * Sets Color curves setup used in the effect if colorCurvesEnabled is set to true .
  83063. */
  83064. set: function (value) {
  83065. this.imageProcessingConfiguration.colorCurves = value;
  83066. },
  83067. enumerable: true,
  83068. configurable: true
  83069. });
  83070. Object.defineProperty(ImageProcessingPostProcess.prototype, "colorCurvesEnabled", {
  83071. /**
  83072. * Gets wether the color curves effect is enabled.
  83073. */
  83074. get: function () {
  83075. return this.imageProcessingConfiguration.colorCurvesEnabled;
  83076. },
  83077. /**
  83078. * Sets wether the color curves effect is enabled.
  83079. */
  83080. set: function (value) {
  83081. this.imageProcessingConfiguration.colorCurvesEnabled = value;
  83082. },
  83083. enumerable: true,
  83084. configurable: true
  83085. });
  83086. Object.defineProperty(ImageProcessingPostProcess.prototype, "colorGradingTexture", {
  83087. /**
  83088. * Gets Color grading LUT texture used in the effect if colorGradingEnabled is set to true.
  83089. */
  83090. get: function () {
  83091. return this.imageProcessingConfiguration.colorGradingTexture;
  83092. },
  83093. /**
  83094. * Sets Color grading LUT texture used in the effect if colorGradingEnabled is set to true.
  83095. */
  83096. set: function (value) {
  83097. this.imageProcessingConfiguration.colorGradingTexture = value;
  83098. },
  83099. enumerable: true,
  83100. configurable: true
  83101. });
  83102. Object.defineProperty(ImageProcessingPostProcess.prototype, "colorGradingEnabled", {
  83103. /**
  83104. * Gets wether the color grading effect is enabled.
  83105. */
  83106. get: function () {
  83107. return this.imageProcessingConfiguration.colorGradingEnabled;
  83108. },
  83109. /**
  83110. * Gets wether the color grading effect is enabled.
  83111. */
  83112. set: function (value) {
  83113. this.imageProcessingConfiguration.colorGradingEnabled = value;
  83114. },
  83115. enumerable: true,
  83116. configurable: true
  83117. });
  83118. Object.defineProperty(ImageProcessingPostProcess.prototype, "exposure", {
  83119. /**
  83120. * Gets exposure used in the effect.
  83121. */
  83122. get: function () {
  83123. return this.imageProcessingConfiguration.exposure;
  83124. },
  83125. /**
  83126. * Sets exposure used in the effect.
  83127. */
  83128. set: function (value) {
  83129. this.imageProcessingConfiguration.exposure = value;
  83130. },
  83131. enumerable: true,
  83132. configurable: true
  83133. });
  83134. Object.defineProperty(ImageProcessingPostProcess.prototype, "toneMappingEnabled", {
  83135. /**
  83136. * Gets wether tonemapping is enabled or not.
  83137. */
  83138. get: function () {
  83139. return this._imageProcessingConfiguration.toneMappingEnabled;
  83140. },
  83141. /**
  83142. * Sets wether tonemapping is enabled or not
  83143. */
  83144. set: function (value) {
  83145. this._imageProcessingConfiguration.toneMappingEnabled = value;
  83146. },
  83147. enumerable: true,
  83148. configurable: true
  83149. });
  83150. ;
  83151. ;
  83152. Object.defineProperty(ImageProcessingPostProcess.prototype, "contrast", {
  83153. /**
  83154. * Gets contrast used in the effect.
  83155. */
  83156. get: function () {
  83157. return this.imageProcessingConfiguration.contrast;
  83158. },
  83159. /**
  83160. * Sets contrast used in the effect.
  83161. */
  83162. set: function (value) {
  83163. this.imageProcessingConfiguration.contrast = value;
  83164. },
  83165. enumerable: true,
  83166. configurable: true
  83167. });
  83168. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteStretch", {
  83169. /**
  83170. * Gets Vignette stretch size.
  83171. */
  83172. get: function () {
  83173. return this.imageProcessingConfiguration.vignetteStretch;
  83174. },
  83175. /**
  83176. * Sets Vignette stretch size.
  83177. */
  83178. set: function (value) {
  83179. this.imageProcessingConfiguration.vignetteStretch = value;
  83180. },
  83181. enumerable: true,
  83182. configurable: true
  83183. });
  83184. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteCentreX", {
  83185. /**
  83186. * Gets Vignette centre X Offset.
  83187. */
  83188. get: function () {
  83189. return this.imageProcessingConfiguration.vignetteCentreX;
  83190. },
  83191. /**
  83192. * Sets Vignette centre X Offset.
  83193. */
  83194. set: function (value) {
  83195. this.imageProcessingConfiguration.vignetteCentreX = value;
  83196. },
  83197. enumerable: true,
  83198. configurable: true
  83199. });
  83200. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteCentreY", {
  83201. /**
  83202. * Gets Vignette centre Y Offset.
  83203. */
  83204. get: function () {
  83205. return this.imageProcessingConfiguration.vignetteCentreY;
  83206. },
  83207. /**
  83208. * Sets Vignette centre Y Offset.
  83209. */
  83210. set: function (value) {
  83211. this.imageProcessingConfiguration.vignetteCentreY = value;
  83212. },
  83213. enumerable: true,
  83214. configurable: true
  83215. });
  83216. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteWeight", {
  83217. /**
  83218. * Gets Vignette weight or intensity of the vignette effect.
  83219. */
  83220. get: function () {
  83221. return this.imageProcessingConfiguration.vignetteWeight;
  83222. },
  83223. /**
  83224. * Sets Vignette weight or intensity of the vignette effect.
  83225. */
  83226. set: function (value) {
  83227. this.imageProcessingConfiguration.vignetteWeight = value;
  83228. },
  83229. enumerable: true,
  83230. configurable: true
  83231. });
  83232. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteColor", {
  83233. /**
  83234. * Gets Color of the vignette applied on the screen through the chosen blend mode (vignetteBlendMode)
  83235. * if vignetteEnabled is set to true.
  83236. */
  83237. get: function () {
  83238. return this.imageProcessingConfiguration.vignetteColor;
  83239. },
  83240. /**
  83241. * Sets Color of the vignette applied on the screen through the chosen blend mode (vignetteBlendMode)
  83242. * if vignetteEnabled is set to true.
  83243. */
  83244. set: function (value) {
  83245. this.imageProcessingConfiguration.vignetteColor = value;
  83246. },
  83247. enumerable: true,
  83248. configurable: true
  83249. });
  83250. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteCameraFov", {
  83251. /**
  83252. * Gets Camera field of view used by the Vignette effect.
  83253. */
  83254. get: function () {
  83255. return this.imageProcessingConfiguration.vignetteCameraFov;
  83256. },
  83257. /**
  83258. * Sets Camera field of view used by the Vignette effect.
  83259. */
  83260. set: function (value) {
  83261. this.imageProcessingConfiguration.vignetteCameraFov = value;
  83262. },
  83263. enumerable: true,
  83264. configurable: true
  83265. });
  83266. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteBlendMode", {
  83267. /**
  83268. * Gets the vignette blend mode allowing different kind of effect.
  83269. */
  83270. get: function () {
  83271. return this.imageProcessingConfiguration.vignetteBlendMode;
  83272. },
  83273. /**
  83274. * Sets the vignette blend mode allowing different kind of effect.
  83275. */
  83276. set: function (value) {
  83277. this.imageProcessingConfiguration.vignetteBlendMode = value;
  83278. },
  83279. enumerable: true,
  83280. configurable: true
  83281. });
  83282. Object.defineProperty(ImageProcessingPostProcess.prototype, "vignetteEnabled", {
  83283. /**
  83284. * Gets wether the vignette effect is enabled.
  83285. */
  83286. get: function () {
  83287. return this.imageProcessingConfiguration.vignetteEnabled;
  83288. },
  83289. /**
  83290. * Sets wether the vignette effect is enabled.
  83291. */
  83292. set: function (value) {
  83293. this.imageProcessingConfiguration.vignetteEnabled = value;
  83294. },
  83295. enumerable: true,
  83296. configurable: true
  83297. });
  83298. Object.defineProperty(ImageProcessingPostProcess.prototype, "fromLinearSpace", {
  83299. /**
  83300. * Gets wether the input of the processing is in Gamma or Linear Space.
  83301. */
  83302. get: function () {
  83303. return this._fromLinearSpace;
  83304. },
  83305. /**
  83306. * Sets wether the input of the processing is in Gamma or Linear Space.
  83307. */
  83308. set: function (value) {
  83309. if (this._fromLinearSpace === value) {
  83310. return;
  83311. }
  83312. this._fromLinearSpace = value;
  83313. this._updateParameters();
  83314. },
  83315. enumerable: true,
  83316. configurable: true
  83317. });
  83318. ImageProcessingPostProcess.prototype.getClassName = function () {
  83319. return "ImageProcessingPostProcess";
  83320. };
  83321. ImageProcessingPostProcess.prototype._updateParameters = function () {
  83322. this._defines.FROMLINEARSPACE = this._fromLinearSpace;
  83323. this.imageProcessingConfiguration.prepareDefines(this._defines, true);
  83324. var defines = "";
  83325. for (var define in this._defines) {
  83326. if (this._defines[define]) {
  83327. defines += "#define " + define + ";\r\n";
  83328. }
  83329. }
  83330. var samplers = ["textureSampler"];
  83331. var uniforms = ["scale"];
  83332. if (BABYLON.ImageProcessingConfiguration) {
  83333. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, this._defines);
  83334. BABYLON.ImageProcessingConfiguration.PrepareUniforms(uniforms, this._defines);
  83335. }
  83336. this.updateEffect(defines, uniforms, samplers);
  83337. };
  83338. ImageProcessingPostProcess.prototype.dispose = function (camera) {
  83339. _super.prototype.dispose.call(this, camera);
  83340. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  83341. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  83342. }
  83343. if (this._imageProcessingConfiguration) {
  83344. this.imageProcessingConfiguration.applyByPostProcess = false;
  83345. }
  83346. };
  83347. __decorate([
  83348. BABYLON.serialize()
  83349. ], ImageProcessingPostProcess.prototype, "_fromLinearSpace", void 0);
  83350. return ImageProcessingPostProcess;
  83351. }(BABYLON.PostProcess));
  83352. BABYLON.ImageProcessingPostProcess = ImageProcessingPostProcess;
  83353. })(BABYLON || (BABYLON = {}));
  83354. //# sourceMappingURL=babylon.imageProcessingPostProcess.js.map
  83355. var BABYLON;
  83356. (function (BABYLON) {
  83357. /**
  83358. * Class used to store bone information
  83359. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons
  83360. */
  83361. var Bone = /** @class */ (function (_super) {
  83362. __extends(Bone, _super);
  83363. /**
  83364. * Create a new bone
  83365. * @param name defines the bone name
  83366. * @param skeleton defines the parent skeleton
  83367. * @param parentBone defines the parent (can be null if the bone is the root)
  83368. * @param localMatrix defines the local matrix
  83369. * @param restPose defines the rest pose matrix
  83370. * @param baseMatrix defines the base matrix
  83371. * @param index defines index of the bone in the hiearchy
  83372. */
  83373. function Bone(
  83374. /**
  83375. * defines the bone name
  83376. */
  83377. name, skeleton, parentBone, localMatrix, restPose, baseMatrix, index) {
  83378. if (parentBone === void 0) { parentBone = null; }
  83379. if (localMatrix === void 0) { localMatrix = null; }
  83380. if (restPose === void 0) { restPose = null; }
  83381. if (baseMatrix === void 0) { baseMatrix = null; }
  83382. if (index === void 0) { index = null; }
  83383. var _this = _super.call(this, name, skeleton.getScene()) || this;
  83384. _this.name = name;
  83385. /**
  83386. * Gets the list of child bones
  83387. */
  83388. _this.children = new Array();
  83389. /** Gets the animations associated with this bone */
  83390. _this.animations = new Array();
  83391. /**
  83392. * @hidden Internal only
  83393. * Set this value to map this bone to a different index in the transform matrices
  83394. * Set this value to -1 to exclude the bone from the transform matrices
  83395. */
  83396. _this._index = null;
  83397. _this._absoluteTransform = new BABYLON.Matrix();
  83398. _this._invertedAbsoluteTransform = new BABYLON.Matrix();
  83399. _this._scalingDeterminant = 1;
  83400. _this._worldTransform = new BABYLON.Matrix();
  83401. _this._needToDecompose = true;
  83402. _this._needToCompose = false;
  83403. _this._skeleton = skeleton;
  83404. _this._localMatrix = localMatrix ? localMatrix.clone() : BABYLON.Matrix.Identity();
  83405. _this._restPose = restPose ? restPose : _this._localMatrix.clone();
  83406. _this._baseMatrix = baseMatrix ? baseMatrix : _this._localMatrix.clone();
  83407. _this._index = index;
  83408. skeleton.bones.push(_this);
  83409. _this.setParent(parentBone, false);
  83410. if (baseMatrix || localMatrix) {
  83411. _this._updateDifferenceMatrix();
  83412. }
  83413. return _this;
  83414. }
  83415. Object.defineProperty(Bone.prototype, "_matrix", {
  83416. /** @hidden */
  83417. get: function () {
  83418. this._compose();
  83419. return this._localMatrix;
  83420. },
  83421. /** @hidden */
  83422. set: function (value) {
  83423. this._localMatrix.copyFrom(value);
  83424. this._needToDecompose = true;
  83425. },
  83426. enumerable: true,
  83427. configurable: true
  83428. });
  83429. // Members
  83430. /**
  83431. * Gets the parent skeleton
  83432. * @returns a skeleton
  83433. */
  83434. Bone.prototype.getSkeleton = function () {
  83435. return this._skeleton;
  83436. };
  83437. /**
  83438. * Gets parent bone
  83439. * @returns a bone or null if the bone is the root of the bone hierarchy
  83440. */
  83441. Bone.prototype.getParent = function () {
  83442. return this._parent;
  83443. };
  83444. /**
  83445. * Sets the parent bone
  83446. * @param parent defines the parent (can be null if the bone is the root)
  83447. * @param updateDifferenceMatrix defines if the difference matrix must be updated
  83448. */
  83449. Bone.prototype.setParent = function (parent, updateDifferenceMatrix) {
  83450. if (updateDifferenceMatrix === void 0) { updateDifferenceMatrix = true; }
  83451. if (this._parent === parent) {
  83452. return;
  83453. }
  83454. if (this._parent) {
  83455. var index = this._parent.children.indexOf(this);
  83456. if (index !== -1) {
  83457. this._parent.children.splice(index, 1);
  83458. }
  83459. }
  83460. this._parent = parent;
  83461. if (this._parent) {
  83462. this._parent.children.push(this);
  83463. }
  83464. if (updateDifferenceMatrix) {
  83465. this._updateDifferenceMatrix();
  83466. }
  83467. this.markAsDirty();
  83468. };
  83469. /**
  83470. * Gets the local matrix
  83471. * @returns a matrix
  83472. */
  83473. Bone.prototype.getLocalMatrix = function () {
  83474. this._compose();
  83475. return this._localMatrix;
  83476. };
  83477. /**
  83478. * Gets the base matrix (initial matrix which remains unchanged)
  83479. * @returns a matrix
  83480. */
  83481. Bone.prototype.getBaseMatrix = function () {
  83482. return this._baseMatrix;
  83483. };
  83484. /**
  83485. * Gets the rest pose matrix
  83486. * @returns a matrix
  83487. */
  83488. Bone.prototype.getRestPose = function () {
  83489. return this._restPose;
  83490. };
  83491. /**
  83492. * Gets a matrix used to store world matrix (ie. the matrix sent to shaders)
  83493. */
  83494. Bone.prototype.getWorldMatrix = function () {
  83495. return this._worldTransform;
  83496. };
  83497. /**
  83498. * Sets the local matrix to rest pose matrix
  83499. */
  83500. Bone.prototype.returnToRest = function () {
  83501. this.updateMatrix(this._restPose.clone());
  83502. };
  83503. /**
  83504. * Gets the inverse of the absolute transform matrix.
  83505. * This matrix will be multiplied by local matrix to get the difference matrix (ie. the difference between original state and current state)
  83506. * @returns a matrix
  83507. */
  83508. Bone.prototype.getInvertedAbsoluteTransform = function () {
  83509. return this._invertedAbsoluteTransform;
  83510. };
  83511. /**
  83512. * Gets the absolute transform matrix (ie base matrix * parent world matrix)
  83513. * @returns a matrix
  83514. */
  83515. Bone.prototype.getAbsoluteTransform = function () {
  83516. return this._absoluteTransform;
  83517. };
  83518. Object.defineProperty(Bone.prototype, "position", {
  83519. // Properties (matches AbstractMesh properties)
  83520. /** Gets or sets current position (in local space) */
  83521. get: function () {
  83522. this._decompose();
  83523. return this._localPosition;
  83524. },
  83525. set: function (newPosition) {
  83526. this._decompose();
  83527. this._localPosition.copyFrom(newPosition);
  83528. this._markAsDirtyAndCompose();
  83529. },
  83530. enumerable: true,
  83531. configurable: true
  83532. });
  83533. Object.defineProperty(Bone.prototype, "rotation", {
  83534. /** Gets or sets current rotation (in local space) */
  83535. get: function () {
  83536. return this.getRotation();
  83537. },
  83538. set: function (newRotation) {
  83539. this.setRotation(newRotation);
  83540. },
  83541. enumerable: true,
  83542. configurable: true
  83543. });
  83544. Object.defineProperty(Bone.prototype, "rotationQuaternion", {
  83545. /** Gets or sets current rotation quaternion (in local space) */
  83546. get: function () {
  83547. this._decompose();
  83548. return this._localRotation;
  83549. },
  83550. set: function (newRotation) {
  83551. this.setRotationQuaternion(newRotation);
  83552. },
  83553. enumerable: true,
  83554. configurable: true
  83555. });
  83556. Object.defineProperty(Bone.prototype, "scaling", {
  83557. /** Gets or sets current scaling (in local space) */
  83558. get: function () {
  83559. return this.getScale();
  83560. },
  83561. set: function (newScaling) {
  83562. this.setScale(newScaling);
  83563. },
  83564. enumerable: true,
  83565. configurable: true
  83566. });
  83567. Object.defineProperty(Bone.prototype, "animationPropertiesOverride", {
  83568. /**
  83569. * Gets the animation properties override
  83570. */
  83571. get: function () {
  83572. return this._skeleton.animationPropertiesOverride;
  83573. },
  83574. enumerable: true,
  83575. configurable: true
  83576. });
  83577. // Methods
  83578. Bone.prototype._decompose = function () {
  83579. if (!this._needToDecompose) {
  83580. return;
  83581. }
  83582. this._needToDecompose = false;
  83583. if (!this._localScaling) {
  83584. this._localScaling = BABYLON.Vector3.Zero();
  83585. this._localRotation = BABYLON.Quaternion.Zero();
  83586. this._localPosition = BABYLON.Vector3.Zero();
  83587. }
  83588. this._localMatrix.decompose(this._localScaling, this._localRotation, this._localPosition);
  83589. };
  83590. Bone.prototype._compose = function () {
  83591. if (!this._needToCompose) {
  83592. return;
  83593. }
  83594. this._needToCompose = false;
  83595. BABYLON.Matrix.ComposeToRef(this._localScaling, this._localRotation, this._localPosition, this._localMatrix);
  83596. };
  83597. /**
  83598. * Update the base and local matrices
  83599. * @param matrix defines the new base or local matrix
  83600. * @param updateDifferenceMatrix defines if the difference matrix must be updated
  83601. * @param updateLocalMatrix defines if the local matrix should be updated
  83602. */
  83603. Bone.prototype.updateMatrix = function (matrix, updateDifferenceMatrix, updateLocalMatrix) {
  83604. if (updateDifferenceMatrix === void 0) { updateDifferenceMatrix = true; }
  83605. if (updateLocalMatrix === void 0) { updateLocalMatrix = true; }
  83606. this._baseMatrix.copyFrom(matrix);
  83607. if (updateDifferenceMatrix) {
  83608. this._updateDifferenceMatrix();
  83609. }
  83610. if (updateLocalMatrix) {
  83611. this._localMatrix.copyFrom(matrix);
  83612. this._markAsDirtyAndDecompose();
  83613. }
  83614. else {
  83615. this.markAsDirty();
  83616. }
  83617. };
  83618. /** @hidden */
  83619. Bone.prototype._updateDifferenceMatrix = function (rootMatrix, updateChildren) {
  83620. if (updateChildren === void 0) { updateChildren = true; }
  83621. if (!rootMatrix) {
  83622. rootMatrix = this._baseMatrix;
  83623. }
  83624. if (this._parent) {
  83625. rootMatrix.multiplyToRef(this._parent._absoluteTransform, this._absoluteTransform);
  83626. }
  83627. else {
  83628. this._absoluteTransform.copyFrom(rootMatrix);
  83629. }
  83630. this._absoluteTransform.invertToRef(this._invertedAbsoluteTransform);
  83631. if (updateChildren) {
  83632. for (var index = 0; index < this.children.length; index++) {
  83633. this.children[index]._updateDifferenceMatrix();
  83634. }
  83635. }
  83636. this._scalingDeterminant = (this._absoluteTransform.determinant() < 0 ? -1 : 1);
  83637. };
  83638. /**
  83639. * Flag the bone as dirty (Forcing it to update everything)
  83640. */
  83641. Bone.prototype.markAsDirty = function () {
  83642. this._currentRenderId++;
  83643. this._childRenderId++;
  83644. this._skeleton._markAsDirty();
  83645. };
  83646. Bone.prototype._markAsDirtyAndCompose = function () {
  83647. this.markAsDirty();
  83648. this._needToCompose = true;
  83649. };
  83650. Bone.prototype._markAsDirtyAndDecompose = function () {
  83651. this.markAsDirty();
  83652. this._needToDecompose = true;
  83653. };
  83654. /**
  83655. * Copy an animation range from another bone
  83656. * @param source defines the source bone
  83657. * @param rangeName defines the range name to copy
  83658. * @param frameOffset defines the frame offset
  83659. * @param rescaleAsRequired defines if rescaling must be applied if required
  83660. * @param skelDimensionsRatio defines the scaling ratio
  83661. * @returns true if operation was successful
  83662. */
  83663. Bone.prototype.copyAnimationRange = function (source, rangeName, frameOffset, rescaleAsRequired, skelDimensionsRatio) {
  83664. if (rescaleAsRequired === void 0) { rescaleAsRequired = false; }
  83665. if (skelDimensionsRatio === void 0) { skelDimensionsRatio = null; }
  83666. // all animation may be coming from a library skeleton, so may need to create animation
  83667. if (this.animations.length === 0) {
  83668. this.animations.push(new BABYLON.Animation(this.name, "_matrix", source.animations[0].framePerSecond, BABYLON.Animation.ANIMATIONTYPE_MATRIX, 0));
  83669. this.animations[0].setKeys([]);
  83670. }
  83671. // get animation info / verify there is such a range from the source bone
  83672. var sourceRange = source.animations[0].getRange(rangeName);
  83673. if (!sourceRange) {
  83674. return false;
  83675. }
  83676. var from = sourceRange.from;
  83677. var to = sourceRange.to;
  83678. var sourceKeys = source.animations[0].getKeys();
  83679. // rescaling prep
  83680. var sourceBoneLength = source.length;
  83681. var sourceParent = source.getParent();
  83682. var parent = this.getParent();
  83683. var parentScalingReqd = rescaleAsRequired && sourceParent && sourceBoneLength && this.length && sourceBoneLength !== this.length;
  83684. var parentRatio = parentScalingReqd && parent && sourceParent ? parent.length / sourceParent.length : 1;
  83685. var dimensionsScalingReqd = rescaleAsRequired && !parent && skelDimensionsRatio && (skelDimensionsRatio.x !== 1 || skelDimensionsRatio.y !== 1 || skelDimensionsRatio.z !== 1);
  83686. var destKeys = this.animations[0].getKeys();
  83687. // loop vars declaration
  83688. var orig;
  83689. var origTranslation;
  83690. var mat;
  83691. for (var key = 0, nKeys = sourceKeys.length; key < nKeys; key++) {
  83692. orig = sourceKeys[key];
  83693. if (orig.frame >= from && orig.frame <= to) {
  83694. if (rescaleAsRequired) {
  83695. mat = orig.value.clone();
  83696. // scale based on parent ratio, when bone has parent
  83697. if (parentScalingReqd) {
  83698. origTranslation = mat.getTranslation();
  83699. mat.setTranslation(origTranslation.scaleInPlace(parentRatio));
  83700. // scale based on skeleton dimension ratio when root bone, and value is passed
  83701. }
  83702. else if (dimensionsScalingReqd && skelDimensionsRatio) {
  83703. origTranslation = mat.getTranslation();
  83704. mat.setTranslation(origTranslation.multiplyInPlace(skelDimensionsRatio));
  83705. // use original when root bone, and no data for skelDimensionsRatio
  83706. }
  83707. else {
  83708. mat = orig.value;
  83709. }
  83710. }
  83711. else {
  83712. mat = orig.value;
  83713. }
  83714. destKeys.push({ frame: orig.frame + frameOffset, value: mat });
  83715. }
  83716. }
  83717. this.animations[0].createRange(rangeName, from + frameOffset, to + frameOffset);
  83718. return true;
  83719. };
  83720. /**
  83721. * Translate the bone in local or world space
  83722. * @param vec The amount to translate the bone
  83723. * @param space The space that the translation is in
  83724. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83725. */
  83726. Bone.prototype.translate = function (vec, space, mesh) {
  83727. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83728. var lm = this.getLocalMatrix();
  83729. if (space == BABYLON.Space.LOCAL) {
  83730. lm.m[12] += vec.x;
  83731. lm.m[13] += vec.y;
  83732. lm.m[14] += vec.z;
  83733. }
  83734. else {
  83735. var wm = null;
  83736. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  83737. if (mesh) {
  83738. wm = mesh.getWorldMatrix();
  83739. }
  83740. this._skeleton.computeAbsoluteTransforms();
  83741. var tmat = Bone._tmpMats[0];
  83742. var tvec = Bone._tmpVecs[0];
  83743. if (this._parent) {
  83744. if (mesh && wm) {
  83745. tmat.copyFrom(this._parent.getAbsoluteTransform());
  83746. tmat.multiplyToRef(wm, tmat);
  83747. }
  83748. else {
  83749. tmat.copyFrom(this._parent.getAbsoluteTransform());
  83750. }
  83751. }
  83752. tmat.m[12] = 0;
  83753. tmat.m[13] = 0;
  83754. tmat.m[14] = 0;
  83755. tmat.invert();
  83756. BABYLON.Vector3.TransformCoordinatesToRef(vec, tmat, tvec);
  83757. lm.m[12] += tvec.x;
  83758. lm.m[13] += tvec.y;
  83759. lm.m[14] += tvec.z;
  83760. }
  83761. this._markAsDirtyAndDecompose();
  83762. };
  83763. /**
  83764. * Set the postion of the bone in local or world space
  83765. * @param position The position to set the bone
  83766. * @param space The space that the position is in
  83767. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83768. */
  83769. Bone.prototype.setPosition = function (position, space, mesh) {
  83770. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83771. var lm = this.getLocalMatrix();
  83772. if (space == BABYLON.Space.LOCAL) {
  83773. lm.m[12] = position.x;
  83774. lm.m[13] = position.y;
  83775. lm.m[14] = position.z;
  83776. }
  83777. else {
  83778. var wm = null;
  83779. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  83780. if (mesh) {
  83781. wm = mesh.getWorldMatrix();
  83782. }
  83783. this._skeleton.computeAbsoluteTransforms();
  83784. var tmat = Bone._tmpMats[0];
  83785. var vec = Bone._tmpVecs[0];
  83786. if (this._parent) {
  83787. if (mesh && wm) {
  83788. tmat.copyFrom(this._parent.getAbsoluteTransform());
  83789. tmat.multiplyToRef(wm, tmat);
  83790. }
  83791. else {
  83792. tmat.copyFrom(this._parent.getAbsoluteTransform());
  83793. }
  83794. }
  83795. tmat.invert();
  83796. BABYLON.Vector3.TransformCoordinatesToRef(position, tmat, vec);
  83797. lm.m[12] = vec.x;
  83798. lm.m[13] = vec.y;
  83799. lm.m[14] = vec.z;
  83800. }
  83801. this._markAsDirtyAndDecompose();
  83802. };
  83803. /**
  83804. * Set the absolute position of the bone (world space)
  83805. * @param position The position to set the bone
  83806. * @param mesh The mesh that this bone is attached to
  83807. */
  83808. Bone.prototype.setAbsolutePosition = function (position, mesh) {
  83809. this.setPosition(position, BABYLON.Space.WORLD, mesh);
  83810. };
  83811. /**
  83812. * Scale the bone on the x, y and z axes (in local space)
  83813. * @param x The amount to scale the bone on the x axis
  83814. * @param y The amount to scale the bone on the y axis
  83815. * @param z The amount to scale the bone on the z axis
  83816. * @param scaleChildren sets this to true if children of the bone should be scaled as well (false by default)
  83817. */
  83818. Bone.prototype.scale = function (x, y, z, scaleChildren) {
  83819. if (scaleChildren === void 0) { scaleChildren = false; }
  83820. var locMat = this.getLocalMatrix();
  83821. // Apply new scaling on top of current local matrix
  83822. var scaleMat = Bone._tmpMats[0];
  83823. BABYLON.Matrix.ScalingToRef(x, y, z, scaleMat);
  83824. scaleMat.multiplyToRef(locMat, locMat);
  83825. // Invert scaling matrix and apply the inverse to all children
  83826. scaleMat.invert();
  83827. for (var _i = 0, _a = this.children; _i < _a.length; _i++) {
  83828. var child = _a[_i];
  83829. var cm = child.getLocalMatrix();
  83830. cm.multiplyToRef(scaleMat, cm);
  83831. cm.m[12] *= x;
  83832. cm.m[13] *= y;
  83833. cm.m[14] *= z;
  83834. child._markAsDirtyAndDecompose();
  83835. }
  83836. this._markAsDirtyAndDecompose();
  83837. if (scaleChildren) {
  83838. for (var _b = 0, _c = this.children; _b < _c.length; _b++) {
  83839. var child = _c[_b];
  83840. child.scale(x, y, z, scaleChildren);
  83841. }
  83842. }
  83843. };
  83844. /**
  83845. * Set the bone scaling in local space
  83846. * @param scale defines the scaling vector
  83847. */
  83848. Bone.prototype.setScale = function (scale) {
  83849. this._decompose();
  83850. this._localScaling.copyFrom(scale);
  83851. this._markAsDirtyAndCompose();
  83852. };
  83853. /**
  83854. * Gets the current scaling in local space
  83855. * @returns the current scaling vector
  83856. */
  83857. Bone.prototype.getScale = function () {
  83858. this._decompose();
  83859. return this._localScaling;
  83860. };
  83861. /**
  83862. * Gets the current scaling in local space and stores it in a target vector
  83863. * @param result defines the target vector
  83864. */
  83865. Bone.prototype.getScaleToRef = function (result) {
  83866. this._decompose();
  83867. result.copyFrom(this._localScaling);
  83868. };
  83869. /**
  83870. * Set the yaw, pitch, and roll of the bone in local or world space
  83871. * @param yaw The rotation of the bone on the y axis
  83872. * @param pitch The rotation of the bone on the x axis
  83873. * @param roll The rotation of the bone on the z axis
  83874. * @param space The space that the axes of rotation are in
  83875. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83876. */
  83877. Bone.prototype.setYawPitchRoll = function (yaw, pitch, roll, space, mesh) {
  83878. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83879. if (space === BABYLON.Space.LOCAL) {
  83880. var quat = Bone._tmpQuat;
  83881. BABYLON.Quaternion.RotationYawPitchRollToRef(yaw, pitch, roll, quat);
  83882. this.setRotationQuaternion(quat, space, mesh);
  83883. return;
  83884. }
  83885. var rotMatInv = Bone._tmpMats[0];
  83886. if (!this._getNegativeRotationToRef(rotMatInv, mesh)) {
  83887. return;
  83888. }
  83889. var rotMat = Bone._tmpMats[1];
  83890. BABYLON.Matrix.RotationYawPitchRollToRef(yaw, pitch, roll, rotMat);
  83891. rotMatInv.multiplyToRef(rotMat, rotMat);
  83892. this._rotateWithMatrix(rotMat, space, mesh);
  83893. };
  83894. /**
  83895. * Add a rotation to the bone on an axis in local or world space
  83896. * @param axis The axis to rotate the bone on
  83897. * @param amount The amount to rotate the bone
  83898. * @param space The space that the axis is in
  83899. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83900. */
  83901. Bone.prototype.rotate = function (axis, amount, space, mesh) {
  83902. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83903. var rmat = Bone._tmpMats[0];
  83904. rmat.m[12] = 0;
  83905. rmat.m[13] = 0;
  83906. rmat.m[14] = 0;
  83907. BABYLON.Matrix.RotationAxisToRef(axis, amount, rmat);
  83908. this._rotateWithMatrix(rmat, space, mesh);
  83909. };
  83910. /**
  83911. * Set the rotation of the bone to a particular axis angle in local or world space
  83912. * @param axis The axis to rotate the bone on
  83913. * @param angle The angle that the bone should be rotated to
  83914. * @param space The space that the axis is in
  83915. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83916. */
  83917. Bone.prototype.setAxisAngle = function (axis, angle, space, mesh) {
  83918. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83919. if (space === BABYLON.Space.LOCAL) {
  83920. var quat = Bone._tmpQuat;
  83921. BABYLON.Quaternion.RotationAxisToRef(axis, angle, quat);
  83922. this.setRotationQuaternion(quat, space, mesh);
  83923. return;
  83924. }
  83925. var rotMatInv = Bone._tmpMats[0];
  83926. if (!this._getNegativeRotationToRef(rotMatInv, mesh)) {
  83927. return;
  83928. }
  83929. var rotMat = Bone._tmpMats[1];
  83930. BABYLON.Matrix.RotationAxisToRef(axis, angle, rotMat);
  83931. rotMatInv.multiplyToRef(rotMat, rotMat);
  83932. this._rotateWithMatrix(rotMat, space, mesh);
  83933. };
  83934. /**
  83935. * Set the euler rotation of the bone in local of world space
  83936. * @param rotation The euler rotation that the bone should be set to
  83937. * @param space The space that the rotation is in
  83938. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83939. */
  83940. Bone.prototype.setRotation = function (rotation, space, mesh) {
  83941. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83942. this.setYawPitchRoll(rotation.y, rotation.x, rotation.z, space, mesh);
  83943. };
  83944. /**
  83945. * Set the quaternion rotation of the bone in local of world space
  83946. * @param quat The quaternion rotation that the bone should be set to
  83947. * @param space The space that the rotation is in
  83948. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83949. */
  83950. Bone.prototype.setRotationQuaternion = function (quat, space, mesh) {
  83951. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83952. if (space === BABYLON.Space.LOCAL) {
  83953. this._decompose();
  83954. this._localRotation.copyFrom(quat);
  83955. this._markAsDirtyAndCompose();
  83956. return;
  83957. }
  83958. var rotMatInv = Bone._tmpMats[0];
  83959. if (!this._getNegativeRotationToRef(rotMatInv, mesh)) {
  83960. return;
  83961. }
  83962. var rotMat = Bone._tmpMats[1];
  83963. BABYLON.Matrix.FromQuaternionToRef(quat, rotMat);
  83964. rotMatInv.multiplyToRef(rotMat, rotMat);
  83965. this._rotateWithMatrix(rotMat, space, mesh);
  83966. };
  83967. /**
  83968. * Set the rotation matrix of the bone in local of world space
  83969. * @param rotMat The rotation matrix that the bone should be set to
  83970. * @param space The space that the rotation is in
  83971. * @param mesh The mesh that this bone is attached to. This is only used in world space
  83972. */
  83973. Bone.prototype.setRotationMatrix = function (rotMat, space, mesh) {
  83974. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83975. if (space === BABYLON.Space.LOCAL) {
  83976. var quat = Bone._tmpQuat;
  83977. BABYLON.Quaternion.FromRotationMatrixToRef(rotMat, quat);
  83978. this.setRotationQuaternion(quat, space, mesh);
  83979. return;
  83980. }
  83981. var rotMatInv = Bone._tmpMats[0];
  83982. if (!this._getNegativeRotationToRef(rotMatInv, mesh)) {
  83983. return;
  83984. }
  83985. var rotMat2 = Bone._tmpMats[1];
  83986. rotMat2.copyFrom(rotMat);
  83987. rotMatInv.multiplyToRef(rotMat, rotMat2);
  83988. this._rotateWithMatrix(rotMat2, space, mesh);
  83989. };
  83990. Bone.prototype._rotateWithMatrix = function (rmat, space, mesh) {
  83991. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  83992. var lmat = this.getLocalMatrix();
  83993. var lx = lmat.m[12];
  83994. var ly = lmat.m[13];
  83995. var lz = lmat.m[14];
  83996. var parent = this.getParent();
  83997. var parentScale = Bone._tmpMats[3];
  83998. var parentScaleInv = Bone._tmpMats[4];
  83999. if (parent && space == BABYLON.Space.WORLD) {
  84000. if (mesh) {
  84001. parentScale.copyFrom(mesh.getWorldMatrix());
  84002. parent.getAbsoluteTransform().multiplyToRef(parentScale, parentScale);
  84003. }
  84004. else {
  84005. parentScale.copyFrom(parent.getAbsoluteTransform());
  84006. }
  84007. parentScaleInv.copyFrom(parentScale);
  84008. parentScaleInv.invert();
  84009. lmat.multiplyToRef(parentScale, lmat);
  84010. lmat.multiplyToRef(rmat, lmat);
  84011. lmat.multiplyToRef(parentScaleInv, lmat);
  84012. }
  84013. else {
  84014. if (space == BABYLON.Space.WORLD && mesh) {
  84015. parentScale.copyFrom(mesh.getWorldMatrix());
  84016. parentScaleInv.copyFrom(parentScale);
  84017. parentScaleInv.invert();
  84018. lmat.multiplyToRef(parentScale, lmat);
  84019. lmat.multiplyToRef(rmat, lmat);
  84020. lmat.multiplyToRef(parentScaleInv, lmat);
  84021. }
  84022. else {
  84023. lmat.multiplyToRef(rmat, lmat);
  84024. }
  84025. }
  84026. lmat.m[12] = lx;
  84027. lmat.m[13] = ly;
  84028. lmat.m[14] = lz;
  84029. this.computeAbsoluteTransforms();
  84030. this._markAsDirtyAndDecompose();
  84031. };
  84032. Bone.prototype._getNegativeRotationToRef = function (rotMatInv, mesh) {
  84033. var scaleMatrix = Bone._tmpMats[2];
  84034. rotMatInv.copyFrom(this.getAbsoluteTransform());
  84035. if (mesh) {
  84036. rotMatInv.multiplyToRef(mesh.getWorldMatrix(), rotMatInv);
  84037. BABYLON.Matrix.ScalingToRef(mesh.scaling.x, mesh.scaling.y, mesh.scaling.z, scaleMatrix);
  84038. }
  84039. rotMatInv.invert();
  84040. if (isNaN(rotMatInv.m[0])) {
  84041. // Matrix failed to invert.
  84042. // This can happen if scale is zero for example.
  84043. return false;
  84044. }
  84045. scaleMatrix.m[0] *= this._scalingDeterminant;
  84046. rotMatInv.multiplyToRef(scaleMatrix, rotMatInv);
  84047. return true;
  84048. };
  84049. /**
  84050. * Get the position of the bone in local or world space
  84051. * @param space The space that the returned position is in
  84052. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84053. * @returns The position of the bone
  84054. */
  84055. Bone.prototype.getPosition = function (space, mesh) {
  84056. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84057. if (mesh === void 0) { mesh = null; }
  84058. var pos = BABYLON.Vector3.Zero();
  84059. this.getPositionToRef(space, mesh, pos);
  84060. return pos;
  84061. };
  84062. /**
  84063. * Copy the position of the bone to a vector3 in local or world space
  84064. * @param space The space that the returned position is in
  84065. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84066. * @param result The vector3 to copy the position to
  84067. */
  84068. Bone.prototype.getPositionToRef = function (space, mesh, result) {
  84069. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84070. if (space == BABYLON.Space.LOCAL) {
  84071. var lm = this.getLocalMatrix();
  84072. result.x = lm.m[12];
  84073. result.y = lm.m[13];
  84074. result.z = lm.m[14];
  84075. }
  84076. else {
  84077. var wm = null;
  84078. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  84079. if (mesh) {
  84080. wm = mesh.getWorldMatrix();
  84081. }
  84082. this._skeleton.computeAbsoluteTransforms();
  84083. var tmat = Bone._tmpMats[0];
  84084. if (mesh && wm) {
  84085. tmat.copyFrom(this.getAbsoluteTransform());
  84086. tmat.multiplyToRef(wm, tmat);
  84087. }
  84088. else {
  84089. tmat = this.getAbsoluteTransform();
  84090. }
  84091. result.x = tmat.m[12];
  84092. result.y = tmat.m[13];
  84093. result.z = tmat.m[14];
  84094. }
  84095. };
  84096. /**
  84097. * Get the absolute position of the bone (world space)
  84098. * @param mesh The mesh that this bone is attached to
  84099. * @returns The absolute position of the bone
  84100. */
  84101. Bone.prototype.getAbsolutePosition = function (mesh) {
  84102. if (mesh === void 0) { mesh = null; }
  84103. var pos = BABYLON.Vector3.Zero();
  84104. this.getPositionToRef(BABYLON.Space.WORLD, mesh, pos);
  84105. return pos;
  84106. };
  84107. /**
  84108. * Copy the absolute position of the bone (world space) to the result param
  84109. * @param mesh The mesh that this bone is attached to
  84110. * @param result The vector3 to copy the absolute position to
  84111. */
  84112. Bone.prototype.getAbsolutePositionToRef = function (mesh, result) {
  84113. this.getPositionToRef(BABYLON.Space.WORLD, mesh, result);
  84114. };
  84115. /**
  84116. * Compute the absolute transforms of this bone and its children
  84117. */
  84118. Bone.prototype.computeAbsoluteTransforms = function () {
  84119. this._compose();
  84120. if (this._parent) {
  84121. this._localMatrix.multiplyToRef(this._parent._absoluteTransform, this._absoluteTransform);
  84122. }
  84123. else {
  84124. this._absoluteTransform.copyFrom(this._localMatrix);
  84125. var poseMatrix = this._skeleton.getPoseMatrix();
  84126. if (poseMatrix) {
  84127. this._absoluteTransform.multiplyToRef(poseMatrix, this._absoluteTransform);
  84128. }
  84129. }
  84130. var children = this.children;
  84131. var len = children.length;
  84132. for (var i = 0; i < len; i++) {
  84133. children[i].computeAbsoluteTransforms();
  84134. }
  84135. };
  84136. /**
  84137. * Get the world direction from an axis that is in the local space of the bone
  84138. * @param localAxis The local direction that is used to compute the world direction
  84139. * @param mesh The mesh that this bone is attached to
  84140. * @returns The world direction
  84141. */
  84142. Bone.prototype.getDirection = function (localAxis, mesh) {
  84143. if (mesh === void 0) { mesh = null; }
  84144. var result = BABYLON.Vector3.Zero();
  84145. this.getDirectionToRef(localAxis, mesh, result);
  84146. return result;
  84147. };
  84148. /**
  84149. * Copy the world direction to a vector3 from an axis that is in the local space of the bone
  84150. * @param localAxis The local direction that is used to compute the world direction
  84151. * @param mesh The mesh that this bone is attached to
  84152. * @param result The vector3 that the world direction will be copied to
  84153. */
  84154. Bone.prototype.getDirectionToRef = function (localAxis, mesh, result) {
  84155. if (mesh === void 0) { mesh = null; }
  84156. var wm = null;
  84157. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  84158. if (mesh) {
  84159. wm = mesh.getWorldMatrix();
  84160. }
  84161. this._skeleton.computeAbsoluteTransforms();
  84162. var mat = Bone._tmpMats[0];
  84163. mat.copyFrom(this.getAbsoluteTransform());
  84164. if (mesh && wm) {
  84165. mat.multiplyToRef(wm, mat);
  84166. }
  84167. BABYLON.Vector3.TransformNormalToRef(localAxis, mat, result);
  84168. result.normalize();
  84169. };
  84170. /**
  84171. * Get the euler rotation of the bone in local or world space
  84172. * @param space The space that the rotation should be in
  84173. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84174. * @returns The euler rotation
  84175. */
  84176. Bone.prototype.getRotation = function (space, mesh) {
  84177. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84178. if (mesh === void 0) { mesh = null; }
  84179. var result = BABYLON.Vector3.Zero();
  84180. this.getRotationToRef(space, mesh, result);
  84181. return result;
  84182. };
  84183. /**
  84184. * Copy the euler rotation of the bone to a vector3. The rotation can be in either local or world space
  84185. * @param space The space that the rotation should be in
  84186. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84187. * @param result The vector3 that the rotation should be copied to
  84188. */
  84189. Bone.prototype.getRotationToRef = function (space, mesh, result) {
  84190. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84191. if (mesh === void 0) { mesh = null; }
  84192. var quat = Bone._tmpQuat;
  84193. this.getRotationQuaternionToRef(space, mesh, quat);
  84194. quat.toEulerAnglesToRef(result);
  84195. };
  84196. /**
  84197. * Get the quaternion rotation of the bone in either local or world space
  84198. * @param space The space that the rotation should be in
  84199. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84200. * @returns The quaternion rotation
  84201. */
  84202. Bone.prototype.getRotationQuaternion = function (space, mesh) {
  84203. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84204. if (mesh === void 0) { mesh = null; }
  84205. var result = BABYLON.Quaternion.Identity();
  84206. this.getRotationQuaternionToRef(space, mesh, result);
  84207. return result;
  84208. };
  84209. /**
  84210. * Copy the quaternion rotation of the bone to a quaternion. The rotation can be in either local or world space
  84211. * @param space The space that the rotation should be in
  84212. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84213. * @param result The quaternion that the rotation should be copied to
  84214. */
  84215. Bone.prototype.getRotationQuaternionToRef = function (space, mesh, result) {
  84216. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84217. if (mesh === void 0) { mesh = null; }
  84218. if (space == BABYLON.Space.LOCAL) {
  84219. this._decompose();
  84220. result.copyFrom(this._localRotation);
  84221. }
  84222. else {
  84223. var mat = Bone._tmpMats[0];
  84224. var amat = this.getAbsoluteTransform();
  84225. if (mesh) {
  84226. amat.multiplyToRef(mesh.getWorldMatrix(), mat);
  84227. }
  84228. else {
  84229. mat.copyFrom(amat);
  84230. }
  84231. mat.m[0] *= this._scalingDeterminant;
  84232. mat.m[1] *= this._scalingDeterminant;
  84233. mat.m[2] *= this._scalingDeterminant;
  84234. mat.decompose(undefined, result, undefined);
  84235. }
  84236. };
  84237. /**
  84238. * Get the rotation matrix of the bone in local or world space
  84239. * @param space The space that the rotation should be in
  84240. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84241. * @returns The rotation matrix
  84242. */
  84243. Bone.prototype.getRotationMatrix = function (space, mesh) {
  84244. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84245. var result = BABYLON.Matrix.Identity();
  84246. this.getRotationMatrixToRef(space, mesh, result);
  84247. return result;
  84248. };
  84249. /**
  84250. * Copy the rotation matrix of the bone to a matrix. The rotation can be in either local or world space
  84251. * @param space The space that the rotation should be in
  84252. * @param mesh The mesh that this bone is attached to. This is only used in world space
  84253. * @param result The quaternion that the rotation should be copied to
  84254. */
  84255. Bone.prototype.getRotationMatrixToRef = function (space, mesh, result) {
  84256. if (space === void 0) { space = BABYLON.Space.LOCAL; }
  84257. if (space == BABYLON.Space.LOCAL) {
  84258. this.getLocalMatrix().getRotationMatrixToRef(result);
  84259. }
  84260. else {
  84261. var mat = Bone._tmpMats[0];
  84262. var amat = this.getAbsoluteTransform();
  84263. if (mesh) {
  84264. amat.multiplyToRef(mesh.getWorldMatrix(), mat);
  84265. }
  84266. else {
  84267. mat.copyFrom(amat);
  84268. }
  84269. mat.m[0] *= this._scalingDeterminant;
  84270. mat.m[1] *= this._scalingDeterminant;
  84271. mat.m[2] *= this._scalingDeterminant;
  84272. mat.getRotationMatrixToRef(result);
  84273. }
  84274. };
  84275. /**
  84276. * Get the world position of a point that is in the local space of the bone
  84277. * @param position The local position
  84278. * @param mesh The mesh that this bone is attached to
  84279. * @returns The world position
  84280. */
  84281. Bone.prototype.getAbsolutePositionFromLocal = function (position, mesh) {
  84282. if (mesh === void 0) { mesh = null; }
  84283. var result = BABYLON.Vector3.Zero();
  84284. this.getAbsolutePositionFromLocalToRef(position, mesh, result);
  84285. return result;
  84286. };
  84287. /**
  84288. * Get the world position of a point that is in the local space of the bone and copy it to the result param
  84289. * @param position The local position
  84290. * @param mesh The mesh that this bone is attached to
  84291. * @param result The vector3 that the world position should be copied to
  84292. */
  84293. Bone.prototype.getAbsolutePositionFromLocalToRef = function (position, mesh, result) {
  84294. if (mesh === void 0) { mesh = null; }
  84295. var wm = null;
  84296. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  84297. if (mesh) {
  84298. wm = mesh.getWorldMatrix();
  84299. }
  84300. this._skeleton.computeAbsoluteTransforms();
  84301. var tmat = Bone._tmpMats[0];
  84302. if (mesh && wm) {
  84303. tmat.copyFrom(this.getAbsoluteTransform());
  84304. tmat.multiplyToRef(wm, tmat);
  84305. }
  84306. else {
  84307. tmat = this.getAbsoluteTransform();
  84308. }
  84309. BABYLON.Vector3.TransformCoordinatesToRef(position, tmat, result);
  84310. };
  84311. /**
  84312. * Get the local position of a point that is in world space
  84313. * @param position The world position
  84314. * @param mesh The mesh that this bone is attached to
  84315. * @returns The local position
  84316. */
  84317. Bone.prototype.getLocalPositionFromAbsolute = function (position, mesh) {
  84318. if (mesh === void 0) { mesh = null; }
  84319. var result = BABYLON.Vector3.Zero();
  84320. this.getLocalPositionFromAbsoluteToRef(position, mesh, result);
  84321. return result;
  84322. };
  84323. /**
  84324. * Get the local position of a point that is in world space and copy it to the result param
  84325. * @param position The world position
  84326. * @param mesh The mesh that this bone is attached to
  84327. * @param result The vector3 that the local position should be copied to
  84328. */
  84329. Bone.prototype.getLocalPositionFromAbsoluteToRef = function (position, mesh, result) {
  84330. if (mesh === void 0) { mesh = null; }
  84331. var wm = null;
  84332. //mesh.getWorldMatrix() needs to be called before skeleton.computeAbsoluteTransforms()
  84333. if (mesh) {
  84334. wm = mesh.getWorldMatrix();
  84335. }
  84336. this._skeleton.computeAbsoluteTransforms();
  84337. var tmat = Bone._tmpMats[0];
  84338. tmat.copyFrom(this.getAbsoluteTransform());
  84339. if (mesh && wm) {
  84340. tmat.multiplyToRef(wm, tmat);
  84341. }
  84342. tmat.invert();
  84343. BABYLON.Vector3.TransformCoordinatesToRef(position, tmat, result);
  84344. };
  84345. Bone._tmpVecs = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  84346. Bone._tmpQuat = BABYLON.Quaternion.Identity();
  84347. Bone._tmpMats = [BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity()];
  84348. return Bone;
  84349. }(BABYLON.Node));
  84350. BABYLON.Bone = Bone;
  84351. })(BABYLON || (BABYLON = {}));
  84352. //# sourceMappingURL=babylon.bone.js.map
  84353. var BABYLON;
  84354. (function (BABYLON) {
  84355. /**
  84356. * Class used to apply inverse kinematics to bones
  84357. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons#boneikcontroller
  84358. */
  84359. var BoneIKController = /** @class */ (function () {
  84360. /**
  84361. * Creates a new BoneIKController
  84362. * @param mesh defines the mesh to control
  84363. * @param bone defines the bone to control
  84364. * @param options defines options to set up the controller
  84365. */
  84366. function BoneIKController(mesh, bone, options) {
  84367. /**
  84368. * Gets or sets the target position
  84369. */
  84370. this.targetPosition = BABYLON.Vector3.Zero();
  84371. /**
  84372. * Gets or sets the pole target position
  84373. */
  84374. this.poleTargetPosition = BABYLON.Vector3.Zero();
  84375. /**
  84376. * Gets or sets the pole target local offset
  84377. */
  84378. this.poleTargetLocalOffset = BABYLON.Vector3.Zero();
  84379. /**
  84380. * Gets or sets the pole angle
  84381. */
  84382. this.poleAngle = 0;
  84383. /**
  84384. * The amount to slerp (spherical linear interpolation) to the target. Set this to a value between 0 and 1 (a value of 1 disables slerp)
  84385. */
  84386. this.slerpAmount = 1;
  84387. this._bone1Quat = BABYLON.Quaternion.Identity();
  84388. this._bone1Mat = BABYLON.Matrix.Identity();
  84389. this._bone2Ang = Math.PI;
  84390. this._maxAngle = Math.PI;
  84391. this._rightHandedSystem = false;
  84392. this._bendAxis = BABYLON.Vector3.Right();
  84393. this._slerping = false;
  84394. this._adjustRoll = 0;
  84395. this._bone2 = bone;
  84396. this._bone1 = bone.getParent();
  84397. if (!this._bone1) {
  84398. return;
  84399. }
  84400. this.mesh = mesh;
  84401. var bonePos = bone.getPosition();
  84402. if (bone.getAbsoluteTransform().determinant() > 0) {
  84403. this._rightHandedSystem = true;
  84404. this._bendAxis.x = 0;
  84405. this._bendAxis.y = 0;
  84406. this._bendAxis.z = -1;
  84407. if (bonePos.x > bonePos.y && bonePos.x > bonePos.z) {
  84408. this._adjustRoll = Math.PI * .5;
  84409. this._bendAxis.z = 1;
  84410. }
  84411. }
  84412. if (this._bone1.length) {
  84413. var boneScale1 = this._bone1.getScale();
  84414. var boneScale2 = this._bone2.getScale();
  84415. this._bone1Length = this._bone1.length * boneScale1.y * this.mesh.scaling.y;
  84416. this._bone2Length = this._bone2.length * boneScale2.y * this.mesh.scaling.y;
  84417. }
  84418. else if (this._bone1.children[0]) {
  84419. mesh.computeWorldMatrix(true);
  84420. var pos1 = this._bone2.children[0].getAbsolutePosition(mesh);
  84421. var pos2 = this._bone2.getAbsolutePosition(mesh);
  84422. var pos3 = this._bone1.getAbsolutePosition(mesh);
  84423. this._bone1Length = BABYLON.Vector3.Distance(pos1, pos2);
  84424. this._bone2Length = BABYLON.Vector3.Distance(pos2, pos3);
  84425. }
  84426. this._bone1.getRotationMatrixToRef(BABYLON.Space.WORLD, mesh, this._bone1Mat);
  84427. this.maxAngle = Math.PI;
  84428. if (options) {
  84429. if (options.targetMesh) {
  84430. this.targetMesh = options.targetMesh;
  84431. this.targetMesh.computeWorldMatrix(true);
  84432. }
  84433. if (options.poleTargetMesh) {
  84434. this.poleTargetMesh = options.poleTargetMesh;
  84435. this.poleTargetMesh.computeWorldMatrix(true);
  84436. }
  84437. else if (options.poleTargetBone) {
  84438. this.poleTargetBone = options.poleTargetBone;
  84439. }
  84440. else if (this._bone1.getParent()) {
  84441. this.poleTargetBone = this._bone1.getParent();
  84442. }
  84443. if (options.poleTargetLocalOffset) {
  84444. this.poleTargetLocalOffset.copyFrom(options.poleTargetLocalOffset);
  84445. }
  84446. if (options.poleAngle) {
  84447. this.poleAngle = options.poleAngle;
  84448. }
  84449. if (options.bendAxis) {
  84450. this._bendAxis.copyFrom(options.bendAxis);
  84451. }
  84452. if (options.maxAngle) {
  84453. this.maxAngle = options.maxAngle;
  84454. }
  84455. if (options.slerpAmount) {
  84456. this.slerpAmount = options.slerpAmount;
  84457. }
  84458. }
  84459. }
  84460. Object.defineProperty(BoneIKController.prototype, "maxAngle", {
  84461. /**
  84462. * Gets or sets maximum allowed angle
  84463. */
  84464. get: function () {
  84465. return this._maxAngle;
  84466. },
  84467. set: function (value) {
  84468. this._setMaxAngle(value);
  84469. },
  84470. enumerable: true,
  84471. configurable: true
  84472. });
  84473. BoneIKController.prototype._setMaxAngle = function (ang) {
  84474. if (ang < 0) {
  84475. ang = 0;
  84476. }
  84477. if (ang > Math.PI || ang == undefined) {
  84478. ang = Math.PI;
  84479. }
  84480. this._maxAngle = ang;
  84481. var a = this._bone1Length;
  84482. var b = this._bone2Length;
  84483. this._maxReach = Math.sqrt(a * a + b * b - 2 * a * b * Math.cos(ang));
  84484. };
  84485. /**
  84486. * Force the controller to update the bones
  84487. */
  84488. BoneIKController.prototype.update = function () {
  84489. var bone1 = this._bone1;
  84490. if (!bone1) {
  84491. return;
  84492. }
  84493. var target = this.targetPosition;
  84494. var poleTarget = this.poleTargetPosition;
  84495. var mat1 = BoneIKController._tmpMats[0];
  84496. var mat2 = BoneIKController._tmpMats[1];
  84497. if (this.targetMesh) {
  84498. target.copyFrom(this.targetMesh.getAbsolutePosition());
  84499. }
  84500. if (this.poleTargetBone) {
  84501. this.poleTargetBone.getAbsolutePositionFromLocalToRef(this.poleTargetLocalOffset, this.mesh, poleTarget);
  84502. }
  84503. else if (this.poleTargetMesh) {
  84504. BABYLON.Vector3.TransformCoordinatesToRef(this.poleTargetLocalOffset, this.poleTargetMesh.getWorldMatrix(), poleTarget);
  84505. }
  84506. var bonePos = BoneIKController._tmpVecs[0];
  84507. var zaxis = BoneIKController._tmpVecs[1];
  84508. var xaxis = BoneIKController._tmpVecs[2];
  84509. var yaxis = BoneIKController._tmpVecs[3];
  84510. var upAxis = BoneIKController._tmpVecs[4];
  84511. var _tmpQuat = BoneIKController._tmpQuat;
  84512. bone1.getAbsolutePositionToRef(this.mesh, bonePos);
  84513. poleTarget.subtractToRef(bonePos, upAxis);
  84514. if (upAxis.x == 0 && upAxis.y == 0 && upAxis.z == 0) {
  84515. upAxis.y = 1;
  84516. }
  84517. else {
  84518. upAxis.normalize();
  84519. }
  84520. target.subtractToRef(bonePos, yaxis);
  84521. yaxis.normalize();
  84522. BABYLON.Vector3.CrossToRef(yaxis, upAxis, zaxis);
  84523. zaxis.normalize();
  84524. BABYLON.Vector3.CrossToRef(yaxis, zaxis, xaxis);
  84525. xaxis.normalize();
  84526. BABYLON.Matrix.FromXYZAxesToRef(xaxis, yaxis, zaxis, mat1);
  84527. var a = this._bone1Length;
  84528. var b = this._bone2Length;
  84529. var c = BABYLON.Vector3.Distance(bonePos, target);
  84530. if (this._maxReach > 0) {
  84531. c = Math.min(this._maxReach, c);
  84532. }
  84533. var acosa = (b * b + c * c - a * a) / (2 * b * c);
  84534. var acosb = (c * c + a * a - b * b) / (2 * c * a);
  84535. if (acosa > 1) {
  84536. acosa = 1;
  84537. }
  84538. if (acosb > 1) {
  84539. acosb = 1;
  84540. }
  84541. if (acosa < -1) {
  84542. acosa = -1;
  84543. }
  84544. if (acosb < -1) {
  84545. acosb = -1;
  84546. }
  84547. var angA = Math.acos(acosa);
  84548. var angB = Math.acos(acosb);
  84549. var angC = -angA - angB;
  84550. if (this._rightHandedSystem) {
  84551. BABYLON.Matrix.RotationYawPitchRollToRef(0, 0, this._adjustRoll, mat2);
  84552. mat2.multiplyToRef(mat1, mat1);
  84553. BABYLON.Matrix.RotationAxisToRef(this._bendAxis, angB, mat2);
  84554. mat2.multiplyToRef(mat1, mat1);
  84555. }
  84556. else {
  84557. var _tmpVec = BoneIKController._tmpVecs[5];
  84558. _tmpVec.copyFrom(this._bendAxis);
  84559. _tmpVec.x *= -1;
  84560. BABYLON.Matrix.RotationAxisToRef(_tmpVec, -angB, mat2);
  84561. mat2.multiplyToRef(mat1, mat1);
  84562. }
  84563. if (this.poleAngle) {
  84564. BABYLON.Matrix.RotationAxisToRef(yaxis, this.poleAngle, mat2);
  84565. mat1.multiplyToRef(mat2, mat1);
  84566. }
  84567. if (this._bone1) {
  84568. if (this.slerpAmount < 1) {
  84569. if (!this._slerping) {
  84570. BABYLON.Quaternion.FromRotationMatrixToRef(this._bone1Mat, this._bone1Quat);
  84571. }
  84572. BABYLON.Quaternion.FromRotationMatrixToRef(mat1, _tmpQuat);
  84573. BABYLON.Quaternion.SlerpToRef(this._bone1Quat, _tmpQuat, this.slerpAmount, this._bone1Quat);
  84574. angC = this._bone2Ang * (1.0 - this.slerpAmount) + angC * this.slerpAmount;
  84575. this._bone1.setRotationQuaternion(this._bone1Quat, BABYLON.Space.WORLD, this.mesh);
  84576. this._slerping = true;
  84577. }
  84578. else {
  84579. this._bone1.setRotationMatrix(mat1, BABYLON.Space.WORLD, this.mesh);
  84580. this._bone1Mat.copyFrom(mat1);
  84581. this._slerping = false;
  84582. }
  84583. }
  84584. this._bone2.setAxisAngle(this._bendAxis, angC, BABYLON.Space.LOCAL);
  84585. this._bone2Ang = angC;
  84586. };
  84587. BoneIKController._tmpVecs = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  84588. BoneIKController._tmpQuat = BABYLON.Quaternion.Identity();
  84589. BoneIKController._tmpMats = [BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity()];
  84590. return BoneIKController;
  84591. }());
  84592. BABYLON.BoneIKController = BoneIKController;
  84593. })(BABYLON || (BABYLON = {}));
  84594. //# sourceMappingURL=babylon.boneIKController.js.map
  84595. var BABYLON;
  84596. (function (BABYLON) {
  84597. /**
  84598. * Class used to make a bone look toward a point in space
  84599. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons#bonelookcontroller
  84600. */
  84601. var BoneLookController = /** @class */ (function () {
  84602. /**
  84603. * Create a BoneLookController
  84604. * @param mesh the mesh that the bone belongs to
  84605. * @param bone the bone that will be looking to the target
  84606. * @param target the target Vector3 to look at
  84607. * @param settings optional settings:
  84608. * * maxYaw: the maximum angle the bone will yaw to
  84609. * * minYaw: the minimum angle the bone will yaw to
  84610. * * maxPitch: the maximum angle the bone will pitch to
  84611. * * minPitch: the minimum angle the bone will yaw to
  84612. * * slerpAmount: set the between 0 and 1 to make the bone slerp to the target.
  84613. * * upAxis: the up axis of the coordinate system
  84614. * * upAxisSpace: the space that the up axis is in - BABYLON.Space.BONE, BABYLON.Space.LOCAL (default), or BABYLON.Space.WORLD.
  84615. * * yawAxis: set yawAxis if the bone does not yaw on the y axis
  84616. * * pitchAxis: set pitchAxis if the bone does not pitch on the x axis
  84617. * * adjustYaw: used to make an adjustment to the yaw of the bone
  84618. * * adjustPitch: used to make an adjustment to the pitch of the bone
  84619. * * adjustRoll: used to make an adjustment to the roll of the bone
  84620. **/
  84621. function BoneLookController(mesh, bone, target, options) {
  84622. /**
  84623. * The up axis of the coordinate system that is used when the bone is rotated
  84624. */
  84625. this.upAxis = BABYLON.Vector3.Up();
  84626. /**
  84627. * The space that the up axis is in - BABYLON.Space.BONE, BABYLON.Space.LOCAL (default), or BABYLON.Space.WORLD
  84628. */
  84629. this.upAxisSpace = BABYLON.Space.LOCAL;
  84630. /**
  84631. * Used to make an adjustment to the yaw of the bone
  84632. */
  84633. this.adjustYaw = 0;
  84634. /**
  84635. * Used to make an adjustment to the pitch of the bone
  84636. */
  84637. this.adjustPitch = 0;
  84638. /**
  84639. * Used to make an adjustment to the roll of the bone
  84640. */
  84641. this.adjustRoll = 0;
  84642. /**
  84643. * The amount to slerp (spherical linear interpolation) to the target. Set this to a value between 0 and 1 (a value of 1 disables slerp)
  84644. */
  84645. this.slerpAmount = 1;
  84646. this._boneQuat = BABYLON.Quaternion.Identity();
  84647. this._slerping = false;
  84648. this._firstFrameSkipped = false;
  84649. this._fowardAxis = BABYLON.Vector3.Forward();
  84650. this.mesh = mesh;
  84651. this.bone = bone;
  84652. this.target = target;
  84653. if (options) {
  84654. if (options.adjustYaw) {
  84655. this.adjustYaw = options.adjustYaw;
  84656. }
  84657. if (options.adjustPitch) {
  84658. this.adjustPitch = options.adjustPitch;
  84659. }
  84660. if (options.adjustRoll) {
  84661. this.adjustRoll = options.adjustRoll;
  84662. }
  84663. if (options.maxYaw != null) {
  84664. this.maxYaw = options.maxYaw;
  84665. }
  84666. else {
  84667. this.maxYaw = Math.PI;
  84668. }
  84669. if (options.minYaw != null) {
  84670. this.minYaw = options.minYaw;
  84671. }
  84672. else {
  84673. this.minYaw = -Math.PI;
  84674. }
  84675. if (options.maxPitch != null) {
  84676. this.maxPitch = options.maxPitch;
  84677. }
  84678. else {
  84679. this.maxPitch = Math.PI;
  84680. }
  84681. if (options.minPitch != null) {
  84682. this.minPitch = options.minPitch;
  84683. }
  84684. else {
  84685. this.minPitch = -Math.PI;
  84686. }
  84687. if (options.slerpAmount != null) {
  84688. this.slerpAmount = options.slerpAmount;
  84689. }
  84690. if (options.upAxis != null) {
  84691. this.upAxis = options.upAxis;
  84692. }
  84693. if (options.upAxisSpace != null) {
  84694. this.upAxisSpace = options.upAxisSpace;
  84695. }
  84696. if (options.yawAxis != null || options.pitchAxis != null) {
  84697. var newYawAxis = BABYLON.Axis.Y;
  84698. var newPitchAxis = BABYLON.Axis.X;
  84699. if (options.yawAxis != null) {
  84700. newYawAxis = options.yawAxis.clone();
  84701. newYawAxis.normalize();
  84702. }
  84703. if (options.pitchAxis != null) {
  84704. newPitchAxis = options.pitchAxis.clone();
  84705. newPitchAxis.normalize();
  84706. }
  84707. var newRollAxis = BABYLON.Vector3.Cross(newPitchAxis, newYawAxis);
  84708. this._transformYawPitch = BABYLON.Matrix.Identity();
  84709. BABYLON.Matrix.FromXYZAxesToRef(newPitchAxis, newYawAxis, newRollAxis, this._transformYawPitch);
  84710. this._transformYawPitchInv = this._transformYawPitch.clone();
  84711. this._transformYawPitch.invert();
  84712. }
  84713. }
  84714. if (!bone.getParent() && this.upAxisSpace == BABYLON.Space.BONE) {
  84715. this.upAxisSpace = BABYLON.Space.LOCAL;
  84716. }
  84717. }
  84718. Object.defineProperty(BoneLookController.prototype, "minYaw", {
  84719. /**
  84720. * Gets or sets the minimum yaw angle that the bone can look to
  84721. */
  84722. get: function () {
  84723. return this._minYaw;
  84724. },
  84725. set: function (value) {
  84726. this._minYaw = value;
  84727. this._minYawSin = Math.sin(value);
  84728. this._minYawCos = Math.cos(value);
  84729. if (this._maxYaw != null) {
  84730. this._midYawConstraint = this._getAngleDiff(this._minYaw, this._maxYaw) * .5 + this._minYaw;
  84731. this._yawRange = this._maxYaw - this._minYaw;
  84732. }
  84733. },
  84734. enumerable: true,
  84735. configurable: true
  84736. });
  84737. Object.defineProperty(BoneLookController.prototype, "maxYaw", {
  84738. /**
  84739. * Gets or sets the maximum yaw angle that the bone can look to
  84740. */
  84741. get: function () {
  84742. return this._maxYaw;
  84743. },
  84744. set: function (value) {
  84745. this._maxYaw = value;
  84746. this._maxYawSin = Math.sin(value);
  84747. this._maxYawCos = Math.cos(value);
  84748. if (this._minYaw != null) {
  84749. this._midYawConstraint = this._getAngleDiff(this._minYaw, this._maxYaw) * .5 + this._minYaw;
  84750. this._yawRange = this._maxYaw - this._minYaw;
  84751. }
  84752. },
  84753. enumerable: true,
  84754. configurable: true
  84755. });
  84756. Object.defineProperty(BoneLookController.prototype, "minPitch", {
  84757. /**
  84758. * Gets or sets the minimum pitch angle that the bone can look to
  84759. */
  84760. get: function () {
  84761. return this._minPitch;
  84762. },
  84763. set: function (value) {
  84764. this._minPitch = value;
  84765. this._minPitchTan = Math.tan(value);
  84766. },
  84767. enumerable: true,
  84768. configurable: true
  84769. });
  84770. Object.defineProperty(BoneLookController.prototype, "maxPitch", {
  84771. /**
  84772. * Gets or sets the maximum pitch angle that the bone can look to
  84773. */
  84774. get: function () {
  84775. return this._maxPitch;
  84776. },
  84777. set: function (value) {
  84778. this._maxPitch = value;
  84779. this._maxPitchTan = Math.tan(value);
  84780. },
  84781. enumerable: true,
  84782. configurable: true
  84783. });
  84784. /**
  84785. * Update the bone to look at the target. This should be called before the scene is rendered (use scene.registerBeforeRender())
  84786. */
  84787. BoneLookController.prototype.update = function () {
  84788. //skip the first frame when slerping so that the mesh rotation is correct
  84789. if (this.slerpAmount < 1 && !this._firstFrameSkipped) {
  84790. this._firstFrameSkipped = true;
  84791. return;
  84792. }
  84793. var bone = this.bone;
  84794. var bonePos = BoneLookController._tmpVecs[0];
  84795. bone.getAbsolutePositionToRef(this.mesh, bonePos);
  84796. var target = this.target;
  84797. var _tmpMat1 = BoneLookController._tmpMats[0];
  84798. var _tmpMat2 = BoneLookController._tmpMats[1];
  84799. var mesh = this.mesh;
  84800. var parentBone = bone.getParent();
  84801. var upAxis = BoneLookController._tmpVecs[1];
  84802. upAxis.copyFrom(this.upAxis);
  84803. if (this.upAxisSpace == BABYLON.Space.BONE && parentBone) {
  84804. if (this._transformYawPitch) {
  84805. BABYLON.Vector3.TransformCoordinatesToRef(upAxis, this._transformYawPitchInv, upAxis);
  84806. }
  84807. parentBone.getDirectionToRef(upAxis, this.mesh, upAxis);
  84808. }
  84809. else if (this.upAxisSpace == BABYLON.Space.LOCAL) {
  84810. mesh.getDirectionToRef(upAxis, upAxis);
  84811. if (mesh.scaling.x != 1 || mesh.scaling.y != 1 || mesh.scaling.z != 1) {
  84812. upAxis.normalize();
  84813. }
  84814. }
  84815. var checkYaw = false;
  84816. var checkPitch = false;
  84817. if (this._maxYaw != Math.PI || this._minYaw != -Math.PI) {
  84818. checkYaw = true;
  84819. }
  84820. if (this._maxPitch != Math.PI || this._minPitch != -Math.PI) {
  84821. checkPitch = true;
  84822. }
  84823. if (checkYaw || checkPitch) {
  84824. var spaceMat = BoneLookController._tmpMats[2];
  84825. var spaceMatInv = BoneLookController._tmpMats[3];
  84826. if (this.upAxisSpace == BABYLON.Space.BONE && upAxis.y == 1 && parentBone) {
  84827. parentBone.getRotationMatrixToRef(BABYLON.Space.WORLD, this.mesh, spaceMat);
  84828. }
  84829. else if (this.upAxisSpace == BABYLON.Space.LOCAL && upAxis.y == 1 && !parentBone) {
  84830. spaceMat.copyFrom(mesh.getWorldMatrix());
  84831. }
  84832. else {
  84833. var forwardAxis = BoneLookController._tmpVecs[2];
  84834. forwardAxis.copyFrom(this._fowardAxis);
  84835. if (this._transformYawPitch) {
  84836. BABYLON.Vector3.TransformCoordinatesToRef(forwardAxis, this._transformYawPitchInv, forwardAxis);
  84837. }
  84838. if (parentBone) {
  84839. parentBone.getDirectionToRef(forwardAxis, this.mesh, forwardAxis);
  84840. }
  84841. else {
  84842. mesh.getDirectionToRef(forwardAxis, forwardAxis);
  84843. }
  84844. var rightAxis = BABYLON.Vector3.Cross(upAxis, forwardAxis);
  84845. rightAxis.normalize();
  84846. var forwardAxis = BABYLON.Vector3.Cross(rightAxis, upAxis);
  84847. BABYLON.Matrix.FromXYZAxesToRef(rightAxis, upAxis, forwardAxis, spaceMat);
  84848. }
  84849. spaceMat.invertToRef(spaceMatInv);
  84850. var xzlen = null;
  84851. if (checkPitch) {
  84852. var localTarget = BoneLookController._tmpVecs[3];
  84853. target.subtractToRef(bonePos, localTarget);
  84854. BABYLON.Vector3.TransformCoordinatesToRef(localTarget, spaceMatInv, localTarget);
  84855. xzlen = Math.sqrt(localTarget.x * localTarget.x + localTarget.z * localTarget.z);
  84856. var pitch = Math.atan2(localTarget.y, xzlen);
  84857. var newPitch = pitch;
  84858. if (pitch > this._maxPitch) {
  84859. localTarget.y = this._maxPitchTan * xzlen;
  84860. newPitch = this._maxPitch;
  84861. }
  84862. else if (pitch < this._minPitch) {
  84863. localTarget.y = this._minPitchTan * xzlen;
  84864. newPitch = this._minPitch;
  84865. }
  84866. if (pitch != newPitch) {
  84867. BABYLON.Vector3.TransformCoordinatesToRef(localTarget, spaceMat, localTarget);
  84868. localTarget.addInPlace(bonePos);
  84869. target = localTarget;
  84870. }
  84871. }
  84872. if (checkYaw) {
  84873. var localTarget = BoneLookController._tmpVecs[4];
  84874. target.subtractToRef(bonePos, localTarget);
  84875. BABYLON.Vector3.TransformCoordinatesToRef(localTarget, spaceMatInv, localTarget);
  84876. var yaw = Math.atan2(localTarget.x, localTarget.z);
  84877. var newYaw = yaw;
  84878. if (yaw > this._maxYaw || yaw < this._minYaw) {
  84879. if (xzlen == null) {
  84880. xzlen = Math.sqrt(localTarget.x * localTarget.x + localTarget.z * localTarget.z);
  84881. }
  84882. if (this._yawRange > Math.PI) {
  84883. if (this._isAngleBetween(yaw, this._maxYaw, this._midYawConstraint)) {
  84884. localTarget.z = this._maxYawCos * xzlen;
  84885. localTarget.x = this._maxYawSin * xzlen;
  84886. newYaw = this._maxYaw;
  84887. }
  84888. else if (this._isAngleBetween(yaw, this._midYawConstraint, this._minYaw)) {
  84889. localTarget.z = this._minYawCos * xzlen;
  84890. localTarget.x = this._minYawSin * xzlen;
  84891. newYaw = this._minYaw;
  84892. }
  84893. }
  84894. else {
  84895. if (yaw > this._maxYaw) {
  84896. localTarget.z = this._maxYawCos * xzlen;
  84897. localTarget.x = this._maxYawSin * xzlen;
  84898. newYaw = this._maxYaw;
  84899. }
  84900. else if (yaw < this._minYaw) {
  84901. localTarget.z = this._minYawCos * xzlen;
  84902. localTarget.x = this._minYawSin * xzlen;
  84903. newYaw = this._minYaw;
  84904. }
  84905. }
  84906. }
  84907. if (this._slerping && this._yawRange > Math.PI) {
  84908. //are we going to be crossing into the min/max region?
  84909. var boneFwd = BoneLookController._tmpVecs[8];
  84910. boneFwd.copyFrom(BABYLON.Axis.Z);
  84911. if (this._transformYawPitch) {
  84912. BABYLON.Vector3.TransformCoordinatesToRef(boneFwd, this._transformYawPitchInv, boneFwd);
  84913. }
  84914. var boneRotMat = BoneLookController._tmpMats[4];
  84915. this._boneQuat.toRotationMatrix(boneRotMat);
  84916. this.mesh.getWorldMatrix().multiplyToRef(boneRotMat, boneRotMat);
  84917. BABYLON.Vector3.TransformCoordinatesToRef(boneFwd, boneRotMat, boneFwd);
  84918. BABYLON.Vector3.TransformCoordinatesToRef(boneFwd, spaceMatInv, boneFwd);
  84919. var boneYaw = Math.atan2(boneFwd.x, boneFwd.z);
  84920. var angBtwTar = this._getAngleBetween(boneYaw, yaw);
  84921. var angBtwMidYaw = this._getAngleBetween(boneYaw, this._midYawConstraint);
  84922. if (angBtwTar > angBtwMidYaw) {
  84923. if (xzlen == null) {
  84924. xzlen = Math.sqrt(localTarget.x * localTarget.x + localTarget.z * localTarget.z);
  84925. }
  84926. var angBtwMax = this._getAngleBetween(boneYaw, this._maxYaw);
  84927. var angBtwMin = this._getAngleBetween(boneYaw, this._minYaw);
  84928. if (angBtwMin < angBtwMax) {
  84929. newYaw = boneYaw + Math.PI * .75;
  84930. localTarget.z = Math.cos(newYaw) * xzlen;
  84931. localTarget.x = Math.sin(newYaw) * xzlen;
  84932. }
  84933. else {
  84934. newYaw = boneYaw - Math.PI * .75;
  84935. localTarget.z = Math.cos(newYaw) * xzlen;
  84936. localTarget.x = Math.sin(newYaw) * xzlen;
  84937. }
  84938. }
  84939. }
  84940. if (yaw != newYaw) {
  84941. BABYLON.Vector3.TransformCoordinatesToRef(localTarget, spaceMat, localTarget);
  84942. localTarget.addInPlace(bonePos);
  84943. target = localTarget;
  84944. }
  84945. }
  84946. }
  84947. var zaxis = BoneLookController._tmpVecs[5];
  84948. var xaxis = BoneLookController._tmpVecs[6];
  84949. var yaxis = BoneLookController._tmpVecs[7];
  84950. var _tmpQuat = BoneLookController._tmpQuat;
  84951. target.subtractToRef(bonePos, zaxis);
  84952. zaxis.normalize();
  84953. BABYLON.Vector3.CrossToRef(upAxis, zaxis, xaxis);
  84954. xaxis.normalize();
  84955. BABYLON.Vector3.CrossToRef(zaxis, xaxis, yaxis);
  84956. yaxis.normalize();
  84957. BABYLON.Matrix.FromXYZAxesToRef(xaxis, yaxis, zaxis, _tmpMat1);
  84958. if (xaxis.x === 0 && xaxis.y === 0 && xaxis.z === 0) {
  84959. return;
  84960. }
  84961. if (yaxis.x === 0 && yaxis.y === 0 && yaxis.z === 0) {
  84962. return;
  84963. }
  84964. if (zaxis.x === 0 && zaxis.y === 0 && zaxis.z === 0) {
  84965. return;
  84966. }
  84967. if (this.adjustYaw || this.adjustPitch || this.adjustRoll) {
  84968. BABYLON.Matrix.RotationYawPitchRollToRef(this.adjustYaw, this.adjustPitch, this.adjustRoll, _tmpMat2);
  84969. _tmpMat2.multiplyToRef(_tmpMat1, _tmpMat1);
  84970. }
  84971. if (this.slerpAmount < 1) {
  84972. if (!this._slerping) {
  84973. this.bone.getRotationQuaternionToRef(BABYLON.Space.WORLD, this.mesh, this._boneQuat);
  84974. }
  84975. if (this._transformYawPitch) {
  84976. this._transformYawPitch.multiplyToRef(_tmpMat1, _tmpMat1);
  84977. }
  84978. BABYLON.Quaternion.FromRotationMatrixToRef(_tmpMat1, _tmpQuat);
  84979. BABYLON.Quaternion.SlerpToRef(this._boneQuat, _tmpQuat, this.slerpAmount, this._boneQuat);
  84980. this.bone.setRotationQuaternion(this._boneQuat, BABYLON.Space.WORLD, this.mesh);
  84981. this._slerping = true;
  84982. }
  84983. else {
  84984. if (this._transformYawPitch) {
  84985. this._transformYawPitch.multiplyToRef(_tmpMat1, _tmpMat1);
  84986. }
  84987. this.bone.setRotationMatrix(_tmpMat1, BABYLON.Space.WORLD, this.mesh);
  84988. this._slerping = false;
  84989. }
  84990. };
  84991. BoneLookController.prototype._getAngleDiff = function (ang1, ang2) {
  84992. var angDiff = ang2 - ang1;
  84993. angDiff %= Math.PI * 2;
  84994. if (angDiff > Math.PI) {
  84995. angDiff -= Math.PI * 2;
  84996. }
  84997. else if (angDiff < -Math.PI) {
  84998. angDiff += Math.PI * 2;
  84999. }
  85000. return angDiff;
  85001. };
  85002. BoneLookController.prototype._getAngleBetween = function (ang1, ang2) {
  85003. ang1 %= (2 * Math.PI);
  85004. ang1 = (ang1 < 0) ? ang1 + (2 * Math.PI) : ang1;
  85005. ang2 %= (2 * Math.PI);
  85006. ang2 = (ang2 < 0) ? ang2 + (2 * Math.PI) : ang2;
  85007. var ab = 0;
  85008. if (ang1 < ang2) {
  85009. ab = ang2 - ang1;
  85010. }
  85011. else {
  85012. ab = ang1 - ang2;
  85013. }
  85014. if (ab > Math.PI) {
  85015. ab = Math.PI * 2 - ab;
  85016. }
  85017. return ab;
  85018. };
  85019. BoneLookController.prototype._isAngleBetween = function (ang, ang1, ang2) {
  85020. ang %= (2 * Math.PI);
  85021. ang = (ang < 0) ? ang + (2 * Math.PI) : ang;
  85022. ang1 %= (2 * Math.PI);
  85023. ang1 = (ang1 < 0) ? ang1 + (2 * Math.PI) : ang1;
  85024. ang2 %= (2 * Math.PI);
  85025. ang2 = (ang2 < 0) ? ang2 + (2 * Math.PI) : ang2;
  85026. if (ang1 < ang2) {
  85027. if (ang > ang1 && ang < ang2) {
  85028. return true;
  85029. }
  85030. }
  85031. else {
  85032. if (ang > ang2 && ang < ang1) {
  85033. return true;
  85034. }
  85035. }
  85036. return false;
  85037. };
  85038. BoneLookController._tmpVecs = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  85039. BoneLookController._tmpQuat = BABYLON.Quaternion.Identity();
  85040. BoneLookController._tmpMats = [BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity(), BABYLON.Matrix.Identity()];
  85041. return BoneLookController;
  85042. }());
  85043. BABYLON.BoneLookController = BoneLookController;
  85044. })(BABYLON || (BABYLON = {}));
  85045. //# sourceMappingURL=babylon.boneLookController.js.map
  85046. var BABYLON;
  85047. (function (BABYLON) {
  85048. /**
  85049. * Class used to handle skinning animations
  85050. * @see http://doc.babylonjs.com/how_to/how_to_use_bones_and_skeletons
  85051. */
  85052. var Skeleton = /** @class */ (function () {
  85053. /**
  85054. * Creates a new skeleton
  85055. * @param name defines the skeleton name
  85056. * @param id defines the skeleton Id
  85057. * @param scene defines the hosting scene
  85058. */
  85059. function Skeleton(
  85060. /** defines the skeleton name */
  85061. name,
  85062. /** defines the skeleton Id */
  85063. id, scene) {
  85064. this.name = name;
  85065. this.id = id;
  85066. /**
  85067. * Gets the list of child bones
  85068. */
  85069. this.bones = new Array();
  85070. /**
  85071. * Gets a boolean indicating if the root matrix is provided by meshes or by the current skeleton (this is the default value)
  85072. */
  85073. this.needInitialSkinMatrix = false;
  85074. this._isDirty = true;
  85075. this._meshesWithPoseMatrix = new Array();
  85076. this._identity = BABYLON.Matrix.Identity();
  85077. this._ranges = {};
  85078. this._lastAbsoluteTransformsUpdateId = -1;
  85079. /**
  85080. * Specifies if the skeleton should be serialized
  85081. */
  85082. this.doNotSerialize = false;
  85083. this._animationPropertiesOverride = null;
  85084. // Events
  85085. /**
  85086. * An observable triggered before computing the skeleton's matrices
  85087. */
  85088. this.onBeforeComputeObservable = new BABYLON.Observable();
  85089. this.bones = [];
  85090. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  85091. scene.skeletons.push(this);
  85092. //make sure it will recalculate the matrix next time prepare is called.
  85093. this._isDirty = true;
  85094. }
  85095. Object.defineProperty(Skeleton.prototype, "animationPropertiesOverride", {
  85096. /**
  85097. * Gets or sets the animation properties override
  85098. */
  85099. get: function () {
  85100. if (!this._animationPropertiesOverride) {
  85101. return this._scene.animationPropertiesOverride;
  85102. }
  85103. return this._animationPropertiesOverride;
  85104. },
  85105. set: function (value) {
  85106. this._animationPropertiesOverride = value;
  85107. },
  85108. enumerable: true,
  85109. configurable: true
  85110. });
  85111. // Members
  85112. /**
  85113. * Gets the list of transform matrices to send to shaders (one matrix per bone)
  85114. * @param mesh defines the mesh to use to get the root matrix (if needInitialSkinMatrix === true)
  85115. * @returns a Float32Array containing matrices data
  85116. */
  85117. Skeleton.prototype.getTransformMatrices = function (mesh) {
  85118. if (this.needInitialSkinMatrix && mesh._bonesTransformMatrices) {
  85119. return mesh._bonesTransformMatrices;
  85120. }
  85121. if (!this._transformMatrices) {
  85122. this.prepare();
  85123. }
  85124. return this._transformMatrices;
  85125. };
  85126. /**
  85127. * Gets the current hosting scene
  85128. * @returns a scene object
  85129. */
  85130. Skeleton.prototype.getScene = function () {
  85131. return this._scene;
  85132. };
  85133. // Methods
  85134. /**
  85135. * Gets a string representing the current skeleton data
  85136. * @param fullDetails defines a boolean indicating if we want a verbose version
  85137. * @returns a string representing the current skeleton data
  85138. */
  85139. Skeleton.prototype.toString = function (fullDetails) {
  85140. var ret = "Name: " + this.name + ", nBones: " + this.bones.length;
  85141. ret += ", nAnimationRanges: " + (this._ranges ? Object.keys(this._ranges).length : "none");
  85142. if (fullDetails) {
  85143. ret += ", Ranges: {";
  85144. var first = true;
  85145. for (var name_1 in this._ranges) {
  85146. if (first) {
  85147. ret += ", ";
  85148. first = false;
  85149. }
  85150. ret += name_1;
  85151. }
  85152. ret += "}";
  85153. }
  85154. return ret;
  85155. };
  85156. /**
  85157. * Get bone's index searching by name
  85158. * @param name defines bone's name to search for
  85159. * @return the indice of the bone. Returns -1 if not found
  85160. */
  85161. Skeleton.prototype.getBoneIndexByName = function (name) {
  85162. for (var boneIndex = 0, cache = this.bones.length; boneIndex < cache; boneIndex++) {
  85163. if (this.bones[boneIndex].name === name) {
  85164. return boneIndex;
  85165. }
  85166. }
  85167. return -1;
  85168. };
  85169. /**
  85170. * Creater a new animation range
  85171. * @param name defines the name of the range
  85172. * @param from defines the start key
  85173. * @param to defines the end key
  85174. */
  85175. Skeleton.prototype.createAnimationRange = function (name, from, to) {
  85176. // check name not already in use
  85177. if (!this._ranges[name]) {
  85178. this._ranges[name] = new BABYLON.AnimationRange(name, from, to);
  85179. for (var i = 0, nBones = this.bones.length; i < nBones; i++) {
  85180. if (this.bones[i].animations[0]) {
  85181. this.bones[i].animations[0].createRange(name, from, to);
  85182. }
  85183. }
  85184. }
  85185. };
  85186. /**
  85187. * Delete a specific animation range
  85188. * @param name defines the name of the range
  85189. * @param deleteFrames defines if frames must be removed as well
  85190. */
  85191. Skeleton.prototype.deleteAnimationRange = function (name, deleteFrames) {
  85192. if (deleteFrames === void 0) { deleteFrames = true; }
  85193. for (var i = 0, nBones = this.bones.length; i < nBones; i++) {
  85194. if (this.bones[i].animations[0]) {
  85195. this.bones[i].animations[0].deleteRange(name, deleteFrames);
  85196. }
  85197. }
  85198. this._ranges[name] = null; // said much faster than 'delete this._range[name]'
  85199. };
  85200. /**
  85201. * Gets a specific animation range
  85202. * @param name defines the name of the range to look for
  85203. * @returns the requested animation range or null if not found
  85204. */
  85205. Skeleton.prototype.getAnimationRange = function (name) {
  85206. return this._ranges[name];
  85207. };
  85208. /**
  85209. * Gets the list of all animation ranges defined on this skeleton
  85210. * @returns an array
  85211. */
  85212. Skeleton.prototype.getAnimationRanges = function () {
  85213. var animationRanges = [];
  85214. var name;
  85215. var i = 0;
  85216. for (name in this._ranges) {
  85217. animationRanges[i] = this._ranges[name];
  85218. i++;
  85219. }
  85220. return animationRanges;
  85221. };
  85222. /**
  85223. * Copy animation range from a source skeleton.
  85224. * This is not for a complete retargeting, only between very similar skeleton's with only possible bone length differences
  85225. * @param source defines the source skeleton
  85226. * @param name defines the name of the range to copy
  85227. * @param rescaleAsRequired defines if rescaling must be applied if required
  85228. * @returns true if operation was successful
  85229. */
  85230. Skeleton.prototype.copyAnimationRange = function (source, name, rescaleAsRequired) {
  85231. if (rescaleAsRequired === void 0) { rescaleAsRequired = false; }
  85232. if (this._ranges[name] || !source.getAnimationRange(name)) {
  85233. return false;
  85234. }
  85235. var ret = true;
  85236. var frameOffset = this._getHighestAnimationFrame() + 1;
  85237. // make a dictionary of source skeleton's bones, so exact same order or doublely nested loop is not required
  85238. var boneDict = {};
  85239. var sourceBones = source.bones;
  85240. var nBones;
  85241. var i;
  85242. for (i = 0, nBones = sourceBones.length; i < nBones; i++) {
  85243. boneDict[sourceBones[i].name] = sourceBones[i];
  85244. }
  85245. if (this.bones.length !== sourceBones.length) {
  85246. BABYLON.Tools.Warn("copyAnimationRange: this rig has " + this.bones.length + " bones, while source as " + sourceBones.length);
  85247. ret = false;
  85248. }
  85249. var skelDimensionsRatio = (rescaleAsRequired && this.dimensionsAtRest && source.dimensionsAtRest) ? this.dimensionsAtRest.divide(source.dimensionsAtRest) : null;
  85250. for (i = 0, nBones = this.bones.length; i < nBones; i++) {
  85251. var boneName = this.bones[i].name;
  85252. var sourceBone = boneDict[boneName];
  85253. if (sourceBone) {
  85254. ret = ret && this.bones[i].copyAnimationRange(sourceBone, name, frameOffset, rescaleAsRequired, skelDimensionsRatio);
  85255. }
  85256. else {
  85257. BABYLON.Tools.Warn("copyAnimationRange: not same rig, missing source bone " + boneName);
  85258. ret = false;
  85259. }
  85260. }
  85261. // do not call createAnimationRange(), since it also is done to bones, which was already done
  85262. var range = source.getAnimationRange(name);
  85263. if (range) {
  85264. this._ranges[name] = new BABYLON.AnimationRange(name, range.from + frameOffset, range.to + frameOffset);
  85265. }
  85266. return ret;
  85267. };
  85268. /**
  85269. * Forces the skeleton to go to rest pose
  85270. */
  85271. Skeleton.prototype.returnToRest = function () {
  85272. for (var index = 0; index < this.bones.length; index++) {
  85273. this.bones[index].returnToRest();
  85274. }
  85275. };
  85276. Skeleton.prototype._getHighestAnimationFrame = function () {
  85277. var ret = 0;
  85278. for (var i = 0, nBones = this.bones.length; i < nBones; i++) {
  85279. if (this.bones[i].animations[0]) {
  85280. var highest = this.bones[i].animations[0].getHighestFrame();
  85281. if (ret < highest) {
  85282. ret = highest;
  85283. }
  85284. }
  85285. }
  85286. return ret;
  85287. };
  85288. /**
  85289. * Begin a specific animation range
  85290. * @param name defines the name of the range to start
  85291. * @param loop defines if looping must be turned on (false by default)
  85292. * @param speedRatio defines the speed ratio to apply (1 by default)
  85293. * @param onAnimationEnd defines a callback which will be called when animation will end
  85294. * @returns a new animatable
  85295. */
  85296. Skeleton.prototype.beginAnimation = function (name, loop, speedRatio, onAnimationEnd) {
  85297. var range = this.getAnimationRange(name);
  85298. if (!range) {
  85299. return null;
  85300. }
  85301. return this._scene.beginAnimation(this, range.from, range.to, loop, speedRatio, onAnimationEnd);
  85302. };
  85303. /** @hidden */
  85304. Skeleton.prototype._markAsDirty = function () {
  85305. this._isDirty = true;
  85306. };
  85307. /** @hidden */
  85308. Skeleton.prototype._registerMeshWithPoseMatrix = function (mesh) {
  85309. this._meshesWithPoseMatrix.push(mesh);
  85310. };
  85311. /** @hidden */
  85312. Skeleton.prototype._unregisterMeshWithPoseMatrix = function (mesh) {
  85313. var index = this._meshesWithPoseMatrix.indexOf(mesh);
  85314. if (index > -1) {
  85315. this._meshesWithPoseMatrix.splice(index, 1);
  85316. }
  85317. };
  85318. /** @hidden */
  85319. Skeleton.prototype._computeTransformMatrices = function (targetMatrix, initialSkinMatrix) {
  85320. this.onBeforeComputeObservable.notifyObservers(this);
  85321. for (var index = 0; index < this.bones.length; index++) {
  85322. var bone = this.bones[index];
  85323. var parentBone = bone.getParent();
  85324. if (parentBone) {
  85325. bone.getLocalMatrix().multiplyToRef(parentBone.getWorldMatrix(), bone.getWorldMatrix());
  85326. }
  85327. else {
  85328. if (initialSkinMatrix) {
  85329. bone.getLocalMatrix().multiplyToRef(initialSkinMatrix, bone.getWorldMatrix());
  85330. }
  85331. else {
  85332. bone.getWorldMatrix().copyFrom(bone.getLocalMatrix());
  85333. }
  85334. }
  85335. if (bone._index !== -1) {
  85336. var mappedIndex = bone._index === null ? index : bone._index;
  85337. bone.getInvertedAbsoluteTransform().multiplyToArray(bone.getWorldMatrix(), targetMatrix, mappedIndex * 16);
  85338. }
  85339. }
  85340. this._identity.copyToArray(targetMatrix, this.bones.length * 16);
  85341. };
  85342. /**
  85343. * Build all resources required to render a skeleton
  85344. */
  85345. Skeleton.prototype.prepare = function () {
  85346. if (!this._isDirty) {
  85347. return;
  85348. }
  85349. if (this.needInitialSkinMatrix) {
  85350. for (var index = 0; index < this._meshesWithPoseMatrix.length; index++) {
  85351. var mesh = this._meshesWithPoseMatrix[index];
  85352. var poseMatrix = mesh.getPoseMatrix();
  85353. if (!mesh._bonesTransformMatrices || mesh._bonesTransformMatrices.length !== 16 * (this.bones.length + 1)) {
  85354. mesh._bonesTransformMatrices = new Float32Array(16 * (this.bones.length + 1));
  85355. }
  85356. if (this._synchronizedWithMesh !== mesh) {
  85357. this._synchronizedWithMesh = mesh;
  85358. // Prepare bones
  85359. for (var boneIndex = 0; boneIndex < this.bones.length; boneIndex++) {
  85360. var bone = this.bones[boneIndex];
  85361. if (!bone.getParent()) {
  85362. var matrix = bone.getBaseMatrix();
  85363. matrix.multiplyToRef(poseMatrix, BABYLON.Tmp.Matrix[1]);
  85364. bone._updateDifferenceMatrix(BABYLON.Tmp.Matrix[1]);
  85365. }
  85366. }
  85367. }
  85368. this._computeTransformMatrices(mesh._bonesTransformMatrices, poseMatrix);
  85369. }
  85370. }
  85371. else {
  85372. if (!this._transformMatrices || this._transformMatrices.length !== 16 * (this.bones.length + 1)) {
  85373. this._transformMatrices = new Float32Array(16 * (this.bones.length + 1));
  85374. }
  85375. this._computeTransformMatrices(this._transformMatrices, null);
  85376. }
  85377. this._isDirty = false;
  85378. this._scene._activeBones.addCount(this.bones.length, false);
  85379. };
  85380. /**
  85381. * Gets the list of animatables currently running for this skeleton
  85382. * @returns an array of animatables
  85383. */
  85384. Skeleton.prototype.getAnimatables = function () {
  85385. if (!this._animatables || this._animatables.length !== this.bones.length) {
  85386. this._animatables = [];
  85387. for (var index = 0; index < this.bones.length; index++) {
  85388. this._animatables.push(this.bones[index]);
  85389. }
  85390. }
  85391. return this._animatables;
  85392. };
  85393. /**
  85394. * Clone the current skeleton
  85395. * @param name defines the name of the new skeleton
  85396. * @param id defines the id of the enw skeleton
  85397. * @returns the new skeleton
  85398. */
  85399. Skeleton.prototype.clone = function (name, id) {
  85400. var result = new Skeleton(name, id || name, this._scene);
  85401. result.needInitialSkinMatrix = this.needInitialSkinMatrix;
  85402. for (var index = 0; index < this.bones.length; index++) {
  85403. var source = this.bones[index];
  85404. var parentBone = null;
  85405. var parent_1 = source.getParent();
  85406. if (parent_1) {
  85407. var parentIndex = this.bones.indexOf(parent_1);
  85408. parentBone = result.bones[parentIndex];
  85409. }
  85410. var bone = new BABYLON.Bone(source.name, result, parentBone, source.getBaseMatrix().clone(), source.getRestPose().clone());
  85411. BABYLON.Tools.DeepCopy(source.animations, bone.animations);
  85412. }
  85413. if (this._ranges) {
  85414. result._ranges = {};
  85415. for (var rangeName in this._ranges) {
  85416. var range = this._ranges[rangeName];
  85417. if (range) {
  85418. result._ranges[rangeName] = range.clone();
  85419. }
  85420. }
  85421. }
  85422. this._isDirty = true;
  85423. return result;
  85424. };
  85425. /**
  85426. * Enable animation blending for this skeleton
  85427. * @param blendingSpeed defines the blending speed to apply
  85428. * @see http://doc.babylonjs.com/babylon101/animations#animation-blending
  85429. */
  85430. Skeleton.prototype.enableBlending = function (blendingSpeed) {
  85431. if (blendingSpeed === void 0) { blendingSpeed = 0.01; }
  85432. this.bones.forEach(function (bone) {
  85433. bone.animations.forEach(function (animation) {
  85434. animation.enableBlending = true;
  85435. animation.blendingSpeed = blendingSpeed;
  85436. });
  85437. });
  85438. };
  85439. /**
  85440. * Releases all resources associated with the current skeleton
  85441. */
  85442. Skeleton.prototype.dispose = function () {
  85443. this._meshesWithPoseMatrix = [];
  85444. // Animations
  85445. this.getScene().stopAnimation(this);
  85446. // Remove from scene
  85447. this.getScene().removeSkeleton(this);
  85448. };
  85449. /**
  85450. * Serialize the skeleton in a JSON object
  85451. * @returns a JSON object
  85452. */
  85453. Skeleton.prototype.serialize = function () {
  85454. var serializationObject = {};
  85455. serializationObject.name = this.name;
  85456. serializationObject.id = this.id;
  85457. if (this.dimensionsAtRest) {
  85458. serializationObject.dimensionsAtRest = this.dimensionsAtRest.asArray();
  85459. }
  85460. serializationObject.bones = [];
  85461. serializationObject.needInitialSkinMatrix = this.needInitialSkinMatrix;
  85462. for (var index = 0; index < this.bones.length; index++) {
  85463. var bone = this.bones[index];
  85464. var parent_2 = bone.getParent();
  85465. var serializedBone = {
  85466. parentBoneIndex: parent_2 ? this.bones.indexOf(parent_2) : -1,
  85467. name: bone.name,
  85468. matrix: bone.getBaseMatrix().toArray(),
  85469. rest: bone.getRestPose().toArray()
  85470. };
  85471. serializationObject.bones.push(serializedBone);
  85472. if (bone.length) {
  85473. serializedBone.length = bone.length;
  85474. }
  85475. if (bone.metadata) {
  85476. serializedBone.metadata = bone.metadata;
  85477. }
  85478. if (bone.animations && bone.animations.length > 0) {
  85479. serializedBone.animation = bone.animations[0].serialize();
  85480. }
  85481. serializationObject.ranges = [];
  85482. for (var name in this._ranges) {
  85483. var source = this._ranges[name];
  85484. if (!source) {
  85485. continue;
  85486. }
  85487. var range = {};
  85488. range.name = name;
  85489. range.from = source.from;
  85490. range.to = source.to;
  85491. serializationObject.ranges.push(range);
  85492. }
  85493. }
  85494. return serializationObject;
  85495. };
  85496. /**
  85497. * Creates a new skeleton from serialized data
  85498. * @param parsedSkeleton defines the serialized data
  85499. * @param scene defines the hosting scene
  85500. * @returns a new skeleton
  85501. */
  85502. Skeleton.Parse = function (parsedSkeleton, scene) {
  85503. var skeleton = new Skeleton(parsedSkeleton.name, parsedSkeleton.id, scene);
  85504. if (parsedSkeleton.dimensionsAtRest) {
  85505. skeleton.dimensionsAtRest = BABYLON.Vector3.FromArray(parsedSkeleton.dimensionsAtRest);
  85506. }
  85507. skeleton.needInitialSkinMatrix = parsedSkeleton.needInitialSkinMatrix;
  85508. var index;
  85509. for (index = 0; index < parsedSkeleton.bones.length; index++) {
  85510. var parsedBone = parsedSkeleton.bones[index];
  85511. var parentBone = null;
  85512. if (parsedBone.parentBoneIndex > -1) {
  85513. parentBone = skeleton.bones[parsedBone.parentBoneIndex];
  85514. }
  85515. var rest = parsedBone.rest ? BABYLON.Matrix.FromArray(parsedBone.rest) : null;
  85516. var bone = new BABYLON.Bone(parsedBone.name, skeleton, parentBone, BABYLON.Matrix.FromArray(parsedBone.matrix), rest);
  85517. if (parsedBone.length) {
  85518. bone.length = parsedBone.length;
  85519. }
  85520. if (parsedBone.metadata) {
  85521. bone.metadata = parsedBone.metadata;
  85522. }
  85523. if (parsedBone.animation) {
  85524. bone.animations.push(BABYLON.Animation.Parse(parsedBone.animation));
  85525. }
  85526. }
  85527. // placed after bones, so createAnimationRange can cascade down
  85528. if (parsedSkeleton.ranges) {
  85529. for (index = 0; index < parsedSkeleton.ranges.length; index++) {
  85530. var data = parsedSkeleton.ranges[index];
  85531. skeleton.createAnimationRange(data.name, data.from, data.to);
  85532. }
  85533. }
  85534. return skeleton;
  85535. };
  85536. /**
  85537. * Compute all node absolute transforms
  85538. * @param forceUpdate defines if computation must be done even if cache is up to date
  85539. */
  85540. Skeleton.prototype.computeAbsoluteTransforms = function (forceUpdate) {
  85541. if (forceUpdate === void 0) { forceUpdate = false; }
  85542. var renderId = this._scene.getRenderId();
  85543. if (this._lastAbsoluteTransformsUpdateId != renderId || forceUpdate) {
  85544. this.bones[0].computeAbsoluteTransforms();
  85545. this._lastAbsoluteTransformsUpdateId = renderId;
  85546. }
  85547. };
  85548. /**
  85549. * Gets the root pose matrix
  85550. * @returns a matrix
  85551. */
  85552. Skeleton.prototype.getPoseMatrix = function () {
  85553. var poseMatrix = null;
  85554. if (this._meshesWithPoseMatrix.length > 0) {
  85555. poseMatrix = this._meshesWithPoseMatrix[0].getPoseMatrix();
  85556. }
  85557. return poseMatrix;
  85558. };
  85559. /**
  85560. * Sorts bones per internal index
  85561. */
  85562. Skeleton.prototype.sortBones = function () {
  85563. var bones = new Array();
  85564. var visited = new Array(this.bones.length);
  85565. for (var index = 0; index < this.bones.length; index++) {
  85566. this._sortBones(index, bones, visited);
  85567. }
  85568. this.bones = bones;
  85569. };
  85570. Skeleton.prototype._sortBones = function (index, bones, visited) {
  85571. if (visited[index]) {
  85572. return;
  85573. }
  85574. visited[index] = true;
  85575. var bone = this.bones[index];
  85576. if (bone._index === undefined) {
  85577. bone._index = index;
  85578. }
  85579. var parentBone = bone.getParent();
  85580. if (parentBone) {
  85581. this._sortBones(this.bones.indexOf(parentBone), bones, visited);
  85582. }
  85583. bones.push(bone);
  85584. };
  85585. return Skeleton;
  85586. }());
  85587. BABYLON.Skeleton = Skeleton;
  85588. })(BABYLON || (BABYLON = {}));
  85589. //# sourceMappingURL=babylon.skeleton.js.map
  85590. var BABYLON;
  85591. (function (BABYLON) {
  85592. ;
  85593. /**
  85594. * This groups tools to convert HDR texture to native colors array.
  85595. */
  85596. var HDRTools = /** @class */ (function () {
  85597. function HDRTools() {
  85598. }
  85599. HDRTools.Ldexp = function (mantissa, exponent) {
  85600. if (exponent > 1023) {
  85601. return mantissa * Math.pow(2, 1023) * Math.pow(2, exponent - 1023);
  85602. }
  85603. if (exponent < -1074) {
  85604. return mantissa * Math.pow(2, -1074) * Math.pow(2, exponent + 1074);
  85605. }
  85606. return mantissa * Math.pow(2, exponent);
  85607. };
  85608. HDRTools.Rgbe2float = function (float32array, red, green, blue, exponent, index) {
  85609. if (exponent > 0) { /*nonzero pixel*/
  85610. exponent = this.Ldexp(1.0, exponent - (128 + 8));
  85611. float32array[index + 0] = red * exponent;
  85612. float32array[index + 1] = green * exponent;
  85613. float32array[index + 2] = blue * exponent;
  85614. }
  85615. else {
  85616. float32array[index + 0] = 0;
  85617. float32array[index + 1] = 0;
  85618. float32array[index + 2] = 0;
  85619. }
  85620. };
  85621. HDRTools.readStringLine = function (uint8array, startIndex) {
  85622. var line = "";
  85623. var character = "";
  85624. for (var i = startIndex; i < uint8array.length - startIndex; i++) {
  85625. character = String.fromCharCode(uint8array[i]);
  85626. if (character == "\n") {
  85627. break;
  85628. }
  85629. line += character;
  85630. }
  85631. return line;
  85632. };
  85633. /**
  85634. * Reads header information from an RGBE texture stored in a native array.
  85635. * More information on this format are available here:
  85636. * https://en.wikipedia.org/wiki/RGBE_image_format
  85637. *
  85638. * @param uint8array The binary file stored in native array.
  85639. * @return The header information.
  85640. */
  85641. HDRTools.RGBE_ReadHeader = function (uint8array) {
  85642. var height = 0;
  85643. var width = 0;
  85644. var line = this.readStringLine(uint8array, 0);
  85645. if (line[0] != '#' || line[1] != '?') {
  85646. throw "Bad HDR Format.";
  85647. }
  85648. var endOfHeader = false;
  85649. var findFormat = false;
  85650. var lineIndex = 0;
  85651. do {
  85652. lineIndex += (line.length + 1);
  85653. line = this.readStringLine(uint8array, lineIndex);
  85654. if (line == "FORMAT=32-bit_rle_rgbe") {
  85655. findFormat = true;
  85656. }
  85657. else if (line.length == 0) {
  85658. endOfHeader = true;
  85659. }
  85660. } while (!endOfHeader);
  85661. if (!findFormat) {
  85662. throw "HDR Bad header format, unsupported FORMAT";
  85663. }
  85664. lineIndex += (line.length + 1);
  85665. line = this.readStringLine(uint8array, lineIndex);
  85666. var sizeRegexp = /^\-Y (.*) \+X (.*)$/g;
  85667. var match = sizeRegexp.exec(line);
  85668. // TODO. Support +Y and -X if needed.
  85669. if (!match || match.length < 3) {
  85670. throw "HDR Bad header format, no size";
  85671. }
  85672. width = parseInt(match[2]);
  85673. height = parseInt(match[1]);
  85674. if (width < 8 || width > 0x7fff) {
  85675. throw "HDR Bad header format, unsupported size";
  85676. }
  85677. lineIndex += (line.length + 1);
  85678. return {
  85679. height: height,
  85680. width: width,
  85681. dataPosition: lineIndex
  85682. };
  85683. };
  85684. /**
  85685. * Returns the cubemap information (each faces texture data) extracted from an RGBE texture.
  85686. * This RGBE texture needs to store the information as a panorama.
  85687. *
  85688. * More information on this format are available here:
  85689. * https://en.wikipedia.org/wiki/RGBE_image_format
  85690. *
  85691. * @param buffer The binary file stored in an array buffer.
  85692. * @param size The expected size of the extracted cubemap.
  85693. * @return The Cube Map information.
  85694. */
  85695. HDRTools.GetCubeMapTextureData = function (buffer, size) {
  85696. var uint8array = new Uint8Array(buffer);
  85697. var hdrInfo = this.RGBE_ReadHeader(uint8array);
  85698. var data = this.RGBE_ReadPixels_RLE(uint8array, hdrInfo);
  85699. var cubeMapData = BABYLON.PanoramaToCubeMapTools.ConvertPanoramaToCubemap(data, hdrInfo.width, hdrInfo.height, size);
  85700. return cubeMapData;
  85701. };
  85702. /**
  85703. * Returns the pixels data extracted from an RGBE texture.
  85704. * This pixels will be stored left to right up to down in the R G B order in one array.
  85705. *
  85706. * More information on this format are available here:
  85707. * https://en.wikipedia.org/wiki/RGBE_image_format
  85708. *
  85709. * @param uint8array The binary file stored in an array buffer.
  85710. * @param hdrInfo The header information of the file.
  85711. * @return The pixels data in RGB right to left up to down order.
  85712. */
  85713. HDRTools.RGBE_ReadPixels = function (uint8array, hdrInfo) {
  85714. // Keep for multi format supports.
  85715. return this.RGBE_ReadPixels_RLE(uint8array, hdrInfo);
  85716. };
  85717. HDRTools.RGBE_ReadPixels_RLE = function (uint8array, hdrInfo) {
  85718. var num_scanlines = hdrInfo.height;
  85719. var scanline_width = hdrInfo.width;
  85720. var a, b, c, d, count;
  85721. var dataIndex = hdrInfo.dataPosition;
  85722. var index = 0, endIndex = 0, i = 0;
  85723. var scanLineArrayBuffer = new ArrayBuffer(scanline_width * 4); // four channel R G B E
  85724. var scanLineArray = new Uint8Array(scanLineArrayBuffer);
  85725. // 3 channels of 4 bytes per pixel in float.
  85726. var resultBuffer = new ArrayBuffer(hdrInfo.width * hdrInfo.height * 4 * 3);
  85727. var resultArray = new Float32Array(resultBuffer);
  85728. // read in each successive scanline
  85729. while (num_scanlines > 0) {
  85730. a = uint8array[dataIndex++];
  85731. b = uint8array[dataIndex++];
  85732. c = uint8array[dataIndex++];
  85733. d = uint8array[dataIndex++];
  85734. if (a != 2 || b != 2 || (c & 0x80)) {
  85735. // this file is not run length encoded
  85736. throw "HDR Bad header format, not RLE";
  85737. }
  85738. if (((c << 8) | d) != scanline_width) {
  85739. throw "HDR Bad header format, wrong scan line width";
  85740. }
  85741. index = 0;
  85742. // read each of the four channels for the scanline into the buffer
  85743. for (i = 0; i < 4; i++) {
  85744. endIndex = (i + 1) * scanline_width;
  85745. while (index < endIndex) {
  85746. a = uint8array[dataIndex++];
  85747. b = uint8array[dataIndex++];
  85748. if (a > 128) {
  85749. // a run of the same value
  85750. count = a - 128;
  85751. if ((count == 0) || (count > endIndex - index)) {
  85752. throw "HDR Bad Format, bad scanline data (run)";
  85753. }
  85754. while (count-- > 0) {
  85755. scanLineArray[index++] = b;
  85756. }
  85757. }
  85758. else {
  85759. // a non-run
  85760. count = a;
  85761. if ((count == 0) || (count > endIndex - index)) {
  85762. throw "HDR Bad Format, bad scanline data (non-run)";
  85763. }
  85764. scanLineArray[index++] = b;
  85765. if (--count > 0) {
  85766. for (var j = 0; j < count; j++) {
  85767. scanLineArray[index++] = uint8array[dataIndex++];
  85768. }
  85769. }
  85770. }
  85771. }
  85772. }
  85773. // now convert data from buffer into floats
  85774. for (i = 0; i < scanline_width; i++) {
  85775. a = scanLineArray[i];
  85776. b = scanLineArray[i + scanline_width];
  85777. c = scanLineArray[i + 2 * scanline_width];
  85778. d = scanLineArray[i + 3 * scanline_width];
  85779. this.Rgbe2float(resultArray, a, b, c, d, (hdrInfo.height - num_scanlines) * scanline_width * 3 + i * 3);
  85780. }
  85781. num_scanlines--;
  85782. }
  85783. return resultArray;
  85784. };
  85785. return HDRTools;
  85786. }());
  85787. BABYLON.HDRTools = HDRTools;
  85788. })(BABYLON || (BABYLON = {}));
  85789. //# sourceMappingURL=babylon.hdr.js.map
  85790. var BABYLON;
  85791. (function (BABYLON) {
  85792. /**
  85793. * This represents a texture coming from an HDR input.
  85794. *
  85795. * The only supported format is currently panorama picture stored in RGBE format.
  85796. * Example of such files can be found on HDRLib: http://hdrlib.com/
  85797. */
  85798. var HDRCubeTexture = /** @class */ (function (_super) {
  85799. __extends(HDRCubeTexture, _super);
  85800. /**
  85801. * Instantiates an HDRTexture from the following parameters.
  85802. *
  85803. * @param url The location of the HDR raw data (Panorama stored in RGBE format)
  85804. * @param scene The scene the texture will be used in
  85805. * @param size The cubemap desired size (the more it increases the longer the generation will be)
  85806. * @param noMipmap Forces to not generate the mipmap if true
  85807. * @param generateHarmonics Specifies whether you want to extract the polynomial harmonics during the generation process
  85808. * @param gammaSpace Specifies if the texture will be use in gamma or linear space (the PBR material requires those texture in linear space, but the standard material would require them in Gamma space)
  85809. * @param reserved Reserved flag for internal use.
  85810. */
  85811. function HDRCubeTexture(url, scene, size, noMipmap, generateHarmonics, gammaSpace, reserved, onLoad, onError) {
  85812. if (noMipmap === void 0) { noMipmap = false; }
  85813. if (generateHarmonics === void 0) { generateHarmonics = true; }
  85814. if (gammaSpace === void 0) { gammaSpace = false; }
  85815. if (reserved === void 0) { reserved = false; }
  85816. if (onLoad === void 0) { onLoad = null; }
  85817. if (onError === void 0) { onError = null; }
  85818. var _this = _super.call(this, scene) || this;
  85819. _this._generateHarmonics = true;
  85820. _this._onLoad = null;
  85821. _this._onError = null;
  85822. /**
  85823. * The texture coordinates mode. As this texture is stored in a cube format, please modify carefully.
  85824. */
  85825. _this.coordinatesMode = BABYLON.Texture.CUBIC_MODE;
  85826. _this._isBlocking = true;
  85827. _this._rotationY = 0;
  85828. /**
  85829. * Gets or sets the center of the bounding box associated with the cube texture
  85830. * It must define where the camera used to render the texture was set
  85831. */
  85832. _this.boundingBoxPosition = BABYLON.Vector3.Zero();
  85833. if (!url) {
  85834. return _this;
  85835. }
  85836. _this.name = url;
  85837. _this.url = url;
  85838. _this.hasAlpha = false;
  85839. _this.isCube = true;
  85840. _this._textureMatrix = BABYLON.Matrix.Identity();
  85841. _this._onLoad = onLoad;
  85842. _this._onError = onError;
  85843. _this.gammaSpace = gammaSpace;
  85844. _this._noMipmap = noMipmap;
  85845. _this._size = size;
  85846. _this._texture = _this._getFromCache(url, _this._noMipmap);
  85847. if (!_this._texture) {
  85848. if (!scene.useDelayedTextureLoading) {
  85849. _this.loadTexture();
  85850. }
  85851. else {
  85852. _this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_NOTLOADED;
  85853. }
  85854. }
  85855. return _this;
  85856. }
  85857. Object.defineProperty(HDRCubeTexture.prototype, "isBlocking", {
  85858. /**
  85859. * Gets wether or not the texture is blocking during loading.
  85860. */
  85861. get: function () {
  85862. return this._isBlocking;
  85863. },
  85864. /**
  85865. * Sets wether or not the texture is blocking during loading.
  85866. */
  85867. set: function (value) {
  85868. this._isBlocking = value;
  85869. },
  85870. enumerable: true,
  85871. configurable: true
  85872. });
  85873. Object.defineProperty(HDRCubeTexture.prototype, "rotationY", {
  85874. /**
  85875. * Gets texture matrix rotation angle around Y axis radians.
  85876. */
  85877. get: function () {
  85878. return this._rotationY;
  85879. },
  85880. /**
  85881. * Sets texture matrix rotation angle around Y axis in radians.
  85882. */
  85883. set: function (value) {
  85884. this._rotationY = value;
  85885. this.setReflectionTextureMatrix(BABYLON.Matrix.RotationY(this._rotationY));
  85886. },
  85887. enumerable: true,
  85888. configurable: true
  85889. });
  85890. Object.defineProperty(HDRCubeTexture.prototype, "boundingBoxSize", {
  85891. get: function () {
  85892. return this._boundingBoxSize;
  85893. },
  85894. /**
  85895. * Gets or sets the size of the bounding box associated with the cube texture
  85896. * When defined, the cubemap will switch to local mode
  85897. * @see https://community.arm.com/graphics/b/blog/posts/reflections-based-on-local-cubemaps-in-unity
  85898. * @example https://www.babylonjs-playground.com/#RNASML
  85899. */
  85900. set: function (value) {
  85901. if (this._boundingBoxSize && this._boundingBoxSize.equals(value)) {
  85902. return;
  85903. }
  85904. this._boundingBoxSize = value;
  85905. var scene = this.getScene();
  85906. if (scene) {
  85907. scene.markAllMaterialsAsDirty(BABYLON.Material.TextureDirtyFlag);
  85908. }
  85909. },
  85910. enumerable: true,
  85911. configurable: true
  85912. });
  85913. /**
  85914. * Occurs when the file is raw .hdr file.
  85915. */
  85916. HDRCubeTexture.prototype.loadTexture = function () {
  85917. var _this = this;
  85918. var callback = function (buffer) {
  85919. _this.lodGenerationOffset = 0.0;
  85920. _this.lodGenerationScale = 0.8;
  85921. var scene = _this.getScene();
  85922. if (!scene) {
  85923. return null;
  85924. }
  85925. // Extract the raw linear data.
  85926. var data = BABYLON.HDRTools.GetCubeMapTextureData(buffer, _this._size);
  85927. // Generate harmonics if needed.
  85928. if (_this._generateHarmonics) {
  85929. var sphericalPolynomial = BABYLON.CubeMapToSphericalPolynomialTools.ConvertCubeMapToSphericalPolynomial(data);
  85930. _this.sphericalPolynomial = sphericalPolynomial;
  85931. }
  85932. var results = [];
  85933. var byteArray = null;
  85934. // Push each faces.
  85935. for (var j = 0; j < 6; j++) {
  85936. // Create uintarray fallback.
  85937. if (!scene.getEngine().getCaps().textureFloat) {
  85938. // 3 channels of 1 bytes per pixel in bytes.
  85939. var byteBuffer = new ArrayBuffer(_this._size * _this._size * 3);
  85940. byteArray = new Uint8Array(byteBuffer);
  85941. }
  85942. var dataFace = (data[HDRCubeTexture._facesMapping[j]]);
  85943. // If special cases.
  85944. if (_this.gammaSpace || byteArray) {
  85945. for (var i = 0; i < _this._size * _this._size; i++) {
  85946. // Put in gamma space if requested.
  85947. if (_this.gammaSpace) {
  85948. dataFace[(i * 3) + 0] = Math.pow(dataFace[(i * 3) + 0], BABYLON.ToGammaSpace);
  85949. dataFace[(i * 3) + 1] = Math.pow(dataFace[(i * 3) + 1], BABYLON.ToGammaSpace);
  85950. dataFace[(i * 3) + 2] = Math.pow(dataFace[(i * 3) + 2], BABYLON.ToGammaSpace);
  85951. }
  85952. // Convert to int texture for fallback.
  85953. if (byteArray) {
  85954. var r = Math.max(dataFace[(i * 3) + 0] * 255, 0);
  85955. var g = Math.max(dataFace[(i * 3) + 1] * 255, 0);
  85956. var b = Math.max(dataFace[(i * 3) + 2] * 255, 0);
  85957. // May use luminance instead if the result is not accurate.
  85958. var max = Math.max(Math.max(r, g), b);
  85959. if (max > 255) {
  85960. var scale = 255 / max;
  85961. r *= scale;
  85962. g *= scale;
  85963. b *= scale;
  85964. }
  85965. byteArray[(i * 3) + 0] = r;
  85966. byteArray[(i * 3) + 1] = g;
  85967. byteArray[(i * 3) + 2] = b;
  85968. }
  85969. }
  85970. }
  85971. if (byteArray) {
  85972. results.push(byteArray);
  85973. }
  85974. else {
  85975. results.push(dataFace);
  85976. }
  85977. }
  85978. return results;
  85979. };
  85980. var scene = this.getScene();
  85981. if (scene) {
  85982. this._texture = scene.getEngine().createRawCubeTextureFromUrl(this.url, scene, this._size, BABYLON.Engine.TEXTUREFORMAT_RGB, scene.getEngine().getCaps().textureFloat ? BABYLON.Engine.TEXTURETYPE_FLOAT : BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT, this._noMipmap, callback, null, this._onLoad, this._onError);
  85983. }
  85984. };
  85985. HDRCubeTexture.prototype.clone = function () {
  85986. var scene = this.getScene();
  85987. if (!scene) {
  85988. return this;
  85989. }
  85990. var newTexture = new HDRCubeTexture(this.url, scene, this._size, this._noMipmap, this._generateHarmonics, this.gammaSpace);
  85991. // Base texture
  85992. newTexture.level = this.level;
  85993. newTexture.wrapU = this.wrapU;
  85994. newTexture.wrapV = this.wrapV;
  85995. newTexture.coordinatesIndex = this.coordinatesIndex;
  85996. newTexture.coordinatesMode = this.coordinatesMode;
  85997. return newTexture;
  85998. };
  85999. // Methods
  86000. HDRCubeTexture.prototype.delayLoad = function () {
  86001. if (this.delayLoadState !== BABYLON.Engine.DELAYLOADSTATE_NOTLOADED) {
  86002. return;
  86003. }
  86004. this.delayLoadState = BABYLON.Engine.DELAYLOADSTATE_LOADED;
  86005. this._texture = this._getFromCache(this.url, this._noMipmap);
  86006. if (!this._texture) {
  86007. this.loadTexture();
  86008. }
  86009. };
  86010. HDRCubeTexture.prototype.getReflectionTextureMatrix = function () {
  86011. return this._textureMatrix;
  86012. };
  86013. HDRCubeTexture.prototype.setReflectionTextureMatrix = function (value) {
  86014. this._textureMatrix = value;
  86015. };
  86016. HDRCubeTexture.Parse = function (parsedTexture, scene, rootUrl) {
  86017. var texture = null;
  86018. if (parsedTexture.name && !parsedTexture.isRenderTarget) {
  86019. texture = new HDRCubeTexture(rootUrl + parsedTexture.name, scene, parsedTexture.size, parsedTexture.noMipmap, parsedTexture.generateHarmonics, parsedTexture.useInGammaSpace);
  86020. texture.name = parsedTexture.name;
  86021. texture.hasAlpha = parsedTexture.hasAlpha;
  86022. texture.level = parsedTexture.level;
  86023. texture.coordinatesMode = parsedTexture.coordinatesMode;
  86024. texture.isBlocking = parsedTexture.isBlocking;
  86025. }
  86026. if (texture) {
  86027. if (parsedTexture.boundingBoxPosition) {
  86028. texture.boundingBoxPosition = BABYLON.Vector3.FromArray(parsedTexture.boundingBoxPosition);
  86029. }
  86030. if (parsedTexture.boundingBoxSize) {
  86031. texture.boundingBoxSize = BABYLON.Vector3.FromArray(parsedTexture.boundingBoxSize);
  86032. }
  86033. if (parsedTexture.rotationY) {
  86034. texture.rotationY = parsedTexture.rotationY;
  86035. }
  86036. }
  86037. return texture;
  86038. };
  86039. HDRCubeTexture.prototype.serialize = function () {
  86040. if (!this.name) {
  86041. return null;
  86042. }
  86043. var serializationObject = {};
  86044. serializationObject.name = this.name;
  86045. serializationObject.hasAlpha = this.hasAlpha;
  86046. serializationObject.isCube = true;
  86047. serializationObject.level = this.level;
  86048. serializationObject.size = this._size;
  86049. serializationObject.coordinatesMode = this.coordinatesMode;
  86050. serializationObject.useInGammaSpace = this.gammaSpace;
  86051. serializationObject.generateHarmonics = this._generateHarmonics;
  86052. serializationObject.customType = "BABYLON.HDRCubeTexture";
  86053. serializationObject.noMipmap = this._noMipmap;
  86054. serializationObject.isBlocking = this._isBlocking;
  86055. serializationObject.rotationY = this._rotationY;
  86056. return serializationObject;
  86057. };
  86058. HDRCubeTexture._facesMapping = [
  86059. "right",
  86060. "left",
  86061. "up",
  86062. "down",
  86063. "front",
  86064. "back"
  86065. ];
  86066. return HDRCubeTexture;
  86067. }(BABYLON.BaseTexture));
  86068. BABYLON.HDRCubeTexture = HDRCubeTexture;
  86069. })(BABYLON || (BABYLON = {}));
  86070. //# sourceMappingURL=babylon.hdrCubeTexture.js.map
  86071. var BABYLON;
  86072. (function (BABYLON) {
  86073. /**
  86074. * Helper class usefull to convert panorama picture to their cubemap representation in 6 faces.
  86075. */
  86076. var PanoramaToCubeMapTools = /** @class */ (function () {
  86077. function PanoramaToCubeMapTools() {
  86078. }
  86079. /**
  86080. * Converts a panorma stored in RGB right to left up to down format into a cubemap (6 faces).
  86081. *
  86082. * @param float32Array The source data.
  86083. * @param inputWidth The width of the input panorama.
  86084. * @param inputhHeight The height of the input panorama.
  86085. * @param size The willing size of the generated cubemap (each faces will be size * size pixels)
  86086. * @return The cubemap data
  86087. */
  86088. PanoramaToCubeMapTools.ConvertPanoramaToCubemap = function (float32Array, inputWidth, inputHeight, size) {
  86089. if (!float32Array) {
  86090. throw "ConvertPanoramaToCubemap: input cannot be null";
  86091. }
  86092. if (float32Array.length != inputWidth * inputHeight * 3) {
  86093. throw "ConvertPanoramaToCubemap: input size is wrong";
  86094. }
  86095. var textureFront = this.CreateCubemapTexture(size, this.FACE_FRONT, float32Array, inputWidth, inputHeight);
  86096. var textureBack = this.CreateCubemapTexture(size, this.FACE_BACK, float32Array, inputWidth, inputHeight);
  86097. var textureLeft = this.CreateCubemapTexture(size, this.FACE_LEFT, float32Array, inputWidth, inputHeight);
  86098. var textureRight = this.CreateCubemapTexture(size, this.FACE_RIGHT, float32Array, inputWidth, inputHeight);
  86099. var textureUp = this.CreateCubemapTexture(size, this.FACE_UP, float32Array, inputWidth, inputHeight);
  86100. var textureDown = this.CreateCubemapTexture(size, this.FACE_DOWN, float32Array, inputWidth, inputHeight);
  86101. return {
  86102. front: textureFront,
  86103. back: textureBack,
  86104. left: textureLeft,
  86105. right: textureRight,
  86106. up: textureUp,
  86107. down: textureDown,
  86108. size: size,
  86109. type: BABYLON.Engine.TEXTURETYPE_FLOAT,
  86110. format: BABYLON.Engine.TEXTUREFORMAT_RGB,
  86111. gammaSpace: false,
  86112. };
  86113. };
  86114. PanoramaToCubeMapTools.CreateCubemapTexture = function (texSize, faceData, float32Array, inputWidth, inputHeight) {
  86115. var buffer = new ArrayBuffer(texSize * texSize * 4 * 3);
  86116. var textureArray = new Float32Array(buffer);
  86117. var rotDX1 = faceData[1].subtract(faceData[0]).scale(1 / texSize);
  86118. var rotDX2 = faceData[3].subtract(faceData[2]).scale(1 / texSize);
  86119. var dy = 1 / texSize;
  86120. var fy = 0;
  86121. for (var y = 0; y < texSize; y++) {
  86122. var xv1 = faceData[0];
  86123. var xv2 = faceData[2];
  86124. for (var x = 0; x < texSize; x++) {
  86125. var v = xv2.subtract(xv1).scale(fy).add(xv1);
  86126. v.normalize();
  86127. var color = this.CalcProjectionSpherical(v, float32Array, inputWidth, inputHeight);
  86128. // 3 channels per pixels
  86129. textureArray[y * texSize * 3 + (x * 3) + 0] = color.r;
  86130. textureArray[y * texSize * 3 + (x * 3) + 1] = color.g;
  86131. textureArray[y * texSize * 3 + (x * 3) + 2] = color.b;
  86132. xv1 = xv1.add(rotDX1);
  86133. xv2 = xv2.add(rotDX2);
  86134. }
  86135. fy += dy;
  86136. }
  86137. return textureArray;
  86138. };
  86139. PanoramaToCubeMapTools.CalcProjectionSpherical = function (vDir, float32Array, inputWidth, inputHeight) {
  86140. var theta = Math.atan2(vDir.z, vDir.x);
  86141. var phi = Math.acos(vDir.y);
  86142. while (theta < -Math.PI)
  86143. theta += 2 * Math.PI;
  86144. while (theta > Math.PI)
  86145. theta -= 2 * Math.PI;
  86146. var dx = theta / Math.PI;
  86147. var dy = phi / Math.PI;
  86148. // recenter.
  86149. dx = dx * 0.5 + 0.5;
  86150. var px = Math.round(dx * inputWidth);
  86151. if (px < 0)
  86152. px = 0;
  86153. else if (px >= inputWidth)
  86154. px = inputWidth - 1;
  86155. var py = Math.round(dy * inputHeight);
  86156. if (py < 0)
  86157. py = 0;
  86158. else if (py >= inputHeight)
  86159. py = inputHeight - 1;
  86160. var inputY = (inputHeight - py - 1);
  86161. var r = float32Array[inputY * inputWidth * 3 + (px * 3) + 0];
  86162. var g = float32Array[inputY * inputWidth * 3 + (px * 3) + 1];
  86163. var b = float32Array[inputY * inputWidth * 3 + (px * 3) + 2];
  86164. return {
  86165. r: r,
  86166. g: g,
  86167. b: b
  86168. };
  86169. };
  86170. PanoramaToCubeMapTools.FACE_FRONT = [
  86171. new BABYLON.Vector3(-1.0, -1.0, -1.0),
  86172. new BABYLON.Vector3(1.0, -1.0, -1.0),
  86173. new BABYLON.Vector3(-1.0, 1.0, -1.0),
  86174. new BABYLON.Vector3(1.0, 1.0, -1.0)
  86175. ];
  86176. PanoramaToCubeMapTools.FACE_BACK = [
  86177. new BABYLON.Vector3(1.0, -1.0, 1.0),
  86178. new BABYLON.Vector3(-1.0, -1.0, 1.0),
  86179. new BABYLON.Vector3(1.0, 1.0, 1.0),
  86180. new BABYLON.Vector3(-1.0, 1.0, 1.0)
  86181. ];
  86182. PanoramaToCubeMapTools.FACE_RIGHT = [
  86183. new BABYLON.Vector3(1.0, -1.0, -1.0),
  86184. new BABYLON.Vector3(1.0, -1.0, 1.0),
  86185. new BABYLON.Vector3(1.0, 1.0, -1.0),
  86186. new BABYLON.Vector3(1.0, 1.0, 1.0)
  86187. ];
  86188. PanoramaToCubeMapTools.FACE_LEFT = [
  86189. new BABYLON.Vector3(-1.0, -1.0, 1.0),
  86190. new BABYLON.Vector3(-1.0, -1.0, -1.0),
  86191. new BABYLON.Vector3(-1.0, 1.0, 1.0),
  86192. new BABYLON.Vector3(-1.0, 1.0, -1.0)
  86193. ];
  86194. PanoramaToCubeMapTools.FACE_DOWN = [
  86195. new BABYLON.Vector3(-1.0, 1.0, -1.0),
  86196. new BABYLON.Vector3(1.0, 1.0, -1.0),
  86197. new BABYLON.Vector3(-1.0, 1.0, 1.0),
  86198. new BABYLON.Vector3(1.0, 1.0, 1.0)
  86199. ];
  86200. PanoramaToCubeMapTools.FACE_UP = [
  86201. new BABYLON.Vector3(-1.0, -1.0, 1.0),
  86202. new BABYLON.Vector3(1.0, -1.0, 1.0),
  86203. new BABYLON.Vector3(-1.0, -1.0, -1.0),
  86204. new BABYLON.Vector3(1.0, -1.0, -1.0)
  86205. ];
  86206. return PanoramaToCubeMapTools;
  86207. }());
  86208. BABYLON.PanoramaToCubeMapTools = PanoramaToCubeMapTools;
  86209. })(BABYLON || (BABYLON = {}));
  86210. //# sourceMappingURL=babylon.panoramaToCubemap.js.map
  86211. var BABYLON;
  86212. (function (BABYLON) {
  86213. var IndexedVector2 = /** @class */ (function (_super) {
  86214. __extends(IndexedVector2, _super);
  86215. function IndexedVector2(original, index) {
  86216. var _this = _super.call(this, original.x, original.y) || this;
  86217. _this.index = index;
  86218. return _this;
  86219. }
  86220. return IndexedVector2;
  86221. }(BABYLON.Vector2));
  86222. var PolygonPoints = /** @class */ (function () {
  86223. function PolygonPoints() {
  86224. this.elements = new Array();
  86225. }
  86226. PolygonPoints.prototype.add = function (originalPoints) {
  86227. var _this = this;
  86228. var result = new Array();
  86229. originalPoints.forEach(function (point) {
  86230. if (result.length === 0 || !point.equalsWithEpsilon(result[0])) {
  86231. var newPoint = new IndexedVector2(point, _this.elements.length);
  86232. result.push(newPoint);
  86233. _this.elements.push(newPoint);
  86234. }
  86235. });
  86236. return result;
  86237. };
  86238. PolygonPoints.prototype.computeBounds = function () {
  86239. var lmin = new BABYLON.Vector2(this.elements[0].x, this.elements[0].y);
  86240. var lmax = new BABYLON.Vector2(this.elements[0].x, this.elements[0].y);
  86241. this.elements.forEach(function (point) {
  86242. // x
  86243. if (point.x < lmin.x) {
  86244. lmin.x = point.x;
  86245. }
  86246. else if (point.x > lmax.x) {
  86247. lmax.x = point.x;
  86248. }
  86249. // y
  86250. if (point.y < lmin.y) {
  86251. lmin.y = point.y;
  86252. }
  86253. else if (point.y > lmax.y) {
  86254. lmax.y = point.y;
  86255. }
  86256. });
  86257. return {
  86258. min: lmin,
  86259. max: lmax,
  86260. width: lmax.x - lmin.x,
  86261. height: lmax.y - lmin.y
  86262. };
  86263. };
  86264. return PolygonPoints;
  86265. }());
  86266. var Polygon = /** @class */ (function () {
  86267. function Polygon() {
  86268. }
  86269. Polygon.Rectangle = function (xmin, ymin, xmax, ymax) {
  86270. return [
  86271. new BABYLON.Vector2(xmin, ymin),
  86272. new BABYLON.Vector2(xmax, ymin),
  86273. new BABYLON.Vector2(xmax, ymax),
  86274. new BABYLON.Vector2(xmin, ymax)
  86275. ];
  86276. };
  86277. Polygon.Circle = function (radius, cx, cy, numberOfSides) {
  86278. if (cx === void 0) { cx = 0; }
  86279. if (cy === void 0) { cy = 0; }
  86280. if (numberOfSides === void 0) { numberOfSides = 32; }
  86281. var result = new Array();
  86282. var angle = 0;
  86283. var increment = (Math.PI * 2) / numberOfSides;
  86284. for (var i = 0; i < numberOfSides; i++) {
  86285. result.push(new BABYLON.Vector2(cx + Math.cos(angle) * radius, cy + Math.sin(angle) * radius));
  86286. angle -= increment;
  86287. }
  86288. return result;
  86289. };
  86290. Polygon.Parse = function (input) {
  86291. var floats = input.split(/[^-+eE\.\d]+/).map(parseFloat).filter(function (val) { return (!isNaN(val)); });
  86292. var i, result = [];
  86293. for (i = 0; i < (floats.length & 0x7FFFFFFE); i += 2) {
  86294. result.push(new BABYLON.Vector2(floats[i], floats[i + 1]));
  86295. }
  86296. return result;
  86297. };
  86298. Polygon.StartingAt = function (x, y) {
  86299. return BABYLON.Path2.StartingAt(x, y);
  86300. };
  86301. return Polygon;
  86302. }());
  86303. BABYLON.Polygon = Polygon;
  86304. var PolygonMeshBuilder = /** @class */ (function () {
  86305. function PolygonMeshBuilder(name, contours, scene) {
  86306. this._points = new PolygonPoints();
  86307. this._outlinepoints = new PolygonPoints();
  86308. this._holes = new Array();
  86309. this._epoints = new Array();
  86310. this._eholes = new Array();
  86311. this._name = name;
  86312. this._scene = scene;
  86313. var points;
  86314. if (contours instanceof BABYLON.Path2) {
  86315. points = contours.getPoints();
  86316. }
  86317. else {
  86318. points = contours;
  86319. }
  86320. this._addToepoint(points);
  86321. this._points.add(points);
  86322. this._outlinepoints.add(points);
  86323. if (typeof earcut === 'undefined') {
  86324. BABYLON.Tools.Warn("Earcut was not found, the polygon will not be built.");
  86325. }
  86326. }
  86327. PolygonMeshBuilder.prototype._addToepoint = function (points) {
  86328. for (var _i = 0, points_1 = points; _i < points_1.length; _i++) {
  86329. var p = points_1[_i];
  86330. this._epoints.push(p.x, p.y);
  86331. }
  86332. };
  86333. PolygonMeshBuilder.prototype.addHole = function (hole) {
  86334. this._points.add(hole);
  86335. var holepoints = new PolygonPoints();
  86336. holepoints.add(hole);
  86337. this._holes.push(holepoints);
  86338. this._eholes.push(this._epoints.length / 2);
  86339. this._addToepoint(hole);
  86340. return this;
  86341. };
  86342. PolygonMeshBuilder.prototype.build = function (updatable, depth) {
  86343. var _this = this;
  86344. if (updatable === void 0) { updatable = false; }
  86345. if (depth === void 0) { depth = 0; }
  86346. var result = new BABYLON.Mesh(this._name, this._scene);
  86347. var normals = new Array();
  86348. var positions = new Array();
  86349. var uvs = new Array();
  86350. var bounds = this._points.computeBounds();
  86351. this._points.elements.forEach(function (p) {
  86352. normals.push(0, 1.0, 0);
  86353. positions.push(p.x, 0, p.y);
  86354. uvs.push((p.x - bounds.min.x) / bounds.width, (p.y - bounds.min.y) / bounds.height);
  86355. });
  86356. var indices = new Array();
  86357. var res = earcut(this._epoints, this._eholes, 2);
  86358. for (var i = 0; i < res.length; i++) {
  86359. indices.push(res[i]);
  86360. }
  86361. if (depth > 0) {
  86362. var positionscount = (positions.length / 3); //get the current pointcount
  86363. this._points.elements.forEach(function (p) {
  86364. normals.push(0, -1.0, 0);
  86365. positions.push(p.x, -depth, p.y);
  86366. uvs.push(1 - (p.x - bounds.min.x) / bounds.width, 1 - (p.y - bounds.min.y) / bounds.height);
  86367. });
  86368. var totalCount = indices.length;
  86369. for (var i = 0; i < totalCount; i += 3) {
  86370. var i0 = indices[i + 0];
  86371. var i1 = indices[i + 1];
  86372. var i2 = indices[i + 2];
  86373. indices.push(i2 + positionscount);
  86374. indices.push(i1 + positionscount);
  86375. indices.push(i0 + positionscount);
  86376. }
  86377. //Add the sides
  86378. this.addSide(positions, normals, uvs, indices, bounds, this._outlinepoints, depth, false);
  86379. this._holes.forEach(function (hole) {
  86380. _this.addSide(positions, normals, uvs, indices, bounds, hole, depth, true);
  86381. });
  86382. }
  86383. result.setVerticesData(BABYLON.VertexBuffer.PositionKind, positions, updatable);
  86384. result.setVerticesData(BABYLON.VertexBuffer.NormalKind, normals, updatable);
  86385. result.setVerticesData(BABYLON.VertexBuffer.UVKind, uvs, updatable);
  86386. result.setIndices(indices);
  86387. return result;
  86388. };
  86389. PolygonMeshBuilder.prototype.addSide = function (positions, normals, uvs, indices, bounds, points, depth, flip) {
  86390. var StartIndex = positions.length / 3;
  86391. var ulength = 0;
  86392. for (var i = 0; i < points.elements.length; i++) {
  86393. var p = points.elements[i];
  86394. var p1;
  86395. if ((i + 1) > points.elements.length - 1) {
  86396. p1 = points.elements[0];
  86397. }
  86398. else {
  86399. p1 = points.elements[i + 1];
  86400. }
  86401. positions.push(p.x, 0, p.y);
  86402. positions.push(p.x, -depth, p.y);
  86403. positions.push(p1.x, 0, p1.y);
  86404. positions.push(p1.x, -depth, p1.y);
  86405. var v1 = new BABYLON.Vector3(p.x, 0, p.y);
  86406. var v2 = new BABYLON.Vector3(p1.x, 0, p1.y);
  86407. var v3 = v2.subtract(v1);
  86408. var v4 = new BABYLON.Vector3(0, 1, 0);
  86409. var vn = BABYLON.Vector3.Cross(v3, v4);
  86410. vn = vn.normalize();
  86411. uvs.push(ulength / bounds.width, 0);
  86412. uvs.push(ulength / bounds.width, 1);
  86413. ulength += v3.length();
  86414. uvs.push((ulength / bounds.width), 0);
  86415. uvs.push((ulength / bounds.width), 1);
  86416. if (!flip) {
  86417. normals.push(-vn.x, -vn.y, -vn.z);
  86418. normals.push(-vn.x, -vn.y, -vn.z);
  86419. normals.push(-vn.x, -vn.y, -vn.z);
  86420. normals.push(-vn.x, -vn.y, -vn.z);
  86421. indices.push(StartIndex);
  86422. indices.push(StartIndex + 1);
  86423. indices.push(StartIndex + 2);
  86424. indices.push(StartIndex + 1);
  86425. indices.push(StartIndex + 3);
  86426. indices.push(StartIndex + 2);
  86427. }
  86428. else {
  86429. normals.push(vn.x, vn.y, vn.z);
  86430. normals.push(vn.x, vn.y, vn.z);
  86431. normals.push(vn.x, vn.y, vn.z);
  86432. normals.push(vn.x, vn.y, vn.z);
  86433. indices.push(StartIndex);
  86434. indices.push(StartIndex + 2);
  86435. indices.push(StartIndex + 1);
  86436. indices.push(StartIndex + 1);
  86437. indices.push(StartIndex + 2);
  86438. indices.push(StartIndex + 3);
  86439. }
  86440. StartIndex += 4;
  86441. }
  86442. ;
  86443. };
  86444. return PolygonMeshBuilder;
  86445. }());
  86446. BABYLON.PolygonMeshBuilder = PolygonMeshBuilder;
  86447. })(BABYLON || (BABYLON = {}));
  86448. //# sourceMappingURL=babylon.polygonMesh.js.map
  86449. var BABYLON;
  86450. (function (BABYLON) {
  86451. // Unique ID when we import meshes from Babylon to CSG
  86452. var currentCSGMeshId = 0;
  86453. // # class Vertex
  86454. // Represents a vertex of a polygon. Use your own vertex class instead of this
  86455. // one to provide additional features like texture coordinates and vertex
  86456. // colors. Custom vertex classes need to provide a `pos` property and `clone()`,
  86457. // `flip()`, and `interpolate()` methods that behave analogous to the ones
  86458. // defined by `BABYLON.CSG.Vertex`. This class provides `normal` so convenience
  86459. // functions like `BABYLON.CSG.sphere()` can return a smooth vertex normal, but `normal`
  86460. // is not used anywhere else.
  86461. // Same goes for uv, it allows to keep the original vertex uv coordinates of the 2 meshes
  86462. var Vertex = /** @class */ (function () {
  86463. function Vertex(pos, normal, uv) {
  86464. this.pos = pos;
  86465. this.normal = normal;
  86466. this.uv = uv;
  86467. }
  86468. Vertex.prototype.clone = function () {
  86469. return new Vertex(this.pos.clone(), this.normal.clone(), this.uv.clone());
  86470. };
  86471. // Invert all orientation-specific data (e.g. vertex normal). Called when the
  86472. // orientation of a polygon is flipped.
  86473. Vertex.prototype.flip = function () {
  86474. this.normal = this.normal.scale(-1);
  86475. };
  86476. // Create a new vertex between this vertex and `other` by linearly
  86477. // interpolating all properties using a parameter of `t`. Subclasses should
  86478. // override this to interpolate additional properties.
  86479. Vertex.prototype.interpolate = function (other, t) {
  86480. return new Vertex(BABYLON.Vector3.Lerp(this.pos, other.pos, t), BABYLON.Vector3.Lerp(this.normal, other.normal, t), BABYLON.Vector2.Lerp(this.uv, other.uv, t));
  86481. };
  86482. return Vertex;
  86483. }());
  86484. // # class Plane
  86485. // Represents a plane in 3D space.
  86486. var Plane = /** @class */ (function () {
  86487. function Plane(normal, w) {
  86488. this.normal = normal;
  86489. this.w = w;
  86490. }
  86491. Plane.FromPoints = function (a, b, c) {
  86492. var v0 = c.subtract(a);
  86493. var v1 = b.subtract(a);
  86494. if (v0.lengthSquared() === 0 || v1.lengthSquared() === 0) {
  86495. return null;
  86496. }
  86497. var n = BABYLON.Vector3.Normalize(BABYLON.Vector3.Cross(v0, v1));
  86498. return new Plane(n, BABYLON.Vector3.Dot(n, a));
  86499. };
  86500. Plane.prototype.clone = function () {
  86501. return new Plane(this.normal.clone(), this.w);
  86502. };
  86503. Plane.prototype.flip = function () {
  86504. this.normal.scaleInPlace(-1);
  86505. this.w = -this.w;
  86506. };
  86507. // Split `polygon` by this plane if needed, then put the polygon or polygon
  86508. // fragments in the appropriate lists. Coplanar polygons go into either
  86509. // `coplanarFront` or `coplanarBack` depending on their orientation with
  86510. // respect to this plane. Polygons in front or in back of this plane go into
  86511. // either `front` or `back`.
  86512. Plane.prototype.splitPolygon = function (polygon, coplanarFront, coplanarBack, front, back) {
  86513. var COPLANAR = 0;
  86514. var FRONT = 1;
  86515. var BACK = 2;
  86516. var SPANNING = 3;
  86517. // Classify each point as well as the entire polygon into one of the above
  86518. // four classes.
  86519. var polygonType = 0;
  86520. var types = [];
  86521. var i;
  86522. var t;
  86523. for (i = 0; i < polygon.vertices.length; i++) {
  86524. t = BABYLON.Vector3.Dot(this.normal, polygon.vertices[i].pos) - this.w;
  86525. var type = (t < -Plane.EPSILON) ? BACK : (t > Plane.EPSILON) ? FRONT : COPLANAR;
  86526. polygonType |= type;
  86527. types.push(type);
  86528. }
  86529. // Put the polygon in the correct list, splitting it when necessary.
  86530. switch (polygonType) {
  86531. case COPLANAR:
  86532. (BABYLON.Vector3.Dot(this.normal, polygon.plane.normal) > 0 ? coplanarFront : coplanarBack).push(polygon);
  86533. break;
  86534. case FRONT:
  86535. front.push(polygon);
  86536. break;
  86537. case BACK:
  86538. back.push(polygon);
  86539. break;
  86540. case SPANNING:
  86541. var f = [], b = [];
  86542. for (i = 0; i < polygon.vertices.length; i++) {
  86543. var j = (i + 1) % polygon.vertices.length;
  86544. var ti = types[i], tj = types[j];
  86545. var vi = polygon.vertices[i], vj = polygon.vertices[j];
  86546. if (ti !== BACK)
  86547. f.push(vi);
  86548. if (ti !== FRONT)
  86549. b.push(ti !== BACK ? vi.clone() : vi);
  86550. if ((ti | tj) === SPANNING) {
  86551. t = (this.w - BABYLON.Vector3.Dot(this.normal, vi.pos)) / BABYLON.Vector3.Dot(this.normal, vj.pos.subtract(vi.pos));
  86552. var v = vi.interpolate(vj, t);
  86553. f.push(v);
  86554. b.push(v.clone());
  86555. }
  86556. }
  86557. var poly;
  86558. if (f.length >= 3) {
  86559. poly = new Polygon(f, polygon.shared);
  86560. if (poly.plane)
  86561. front.push(poly);
  86562. }
  86563. if (b.length >= 3) {
  86564. poly = new Polygon(b, polygon.shared);
  86565. if (poly.plane)
  86566. back.push(poly);
  86567. }
  86568. break;
  86569. }
  86570. };
  86571. // `BABYLON.CSG.Plane.EPSILON` is the tolerance used by `splitPolygon()` to decide if a
  86572. // point is on the plane.
  86573. Plane.EPSILON = 1e-5;
  86574. return Plane;
  86575. }());
  86576. // # class Polygon
  86577. // Represents a convex polygon. The vertices used to initialize a polygon must
  86578. // be coplanar and form a convex loop.
  86579. //
  86580. // Each convex polygon has a `shared` property, which is shared between all
  86581. // polygons that are clones of each other or were split from the same polygon.
  86582. // This can be used to define per-polygon properties (such as surface color).
  86583. var Polygon = /** @class */ (function () {
  86584. function Polygon(vertices, shared) {
  86585. this.vertices = vertices;
  86586. this.shared = shared;
  86587. this.plane = Plane.FromPoints(vertices[0].pos, vertices[1].pos, vertices[2].pos);
  86588. }
  86589. Polygon.prototype.clone = function () {
  86590. var vertices = this.vertices.map(function (v) { return v.clone(); });
  86591. return new Polygon(vertices, this.shared);
  86592. };
  86593. Polygon.prototype.flip = function () {
  86594. this.vertices.reverse().map(function (v) { v.flip(); });
  86595. this.plane.flip();
  86596. };
  86597. return Polygon;
  86598. }());
  86599. // # class Node
  86600. // Holds a node in a BSP tree. A BSP tree is built from a collection of polygons
  86601. // by picking a polygon to split along. That polygon (and all other coplanar
  86602. // polygons) are added directly to that node and the other polygons are added to
  86603. // the front and/or back subtrees. This is not a leafy BSP tree since there is
  86604. // no distinction between internal and leaf nodes.
  86605. var Node = /** @class */ (function () {
  86606. function Node(polygons) {
  86607. this.plane = null;
  86608. this.front = null;
  86609. this.back = null;
  86610. this.polygons = new Array();
  86611. if (polygons) {
  86612. this.build(polygons);
  86613. }
  86614. }
  86615. Node.prototype.clone = function () {
  86616. var node = new Node();
  86617. node.plane = this.plane && this.plane.clone();
  86618. node.front = this.front && this.front.clone();
  86619. node.back = this.back && this.back.clone();
  86620. node.polygons = this.polygons.map(function (p) { return p.clone(); });
  86621. return node;
  86622. };
  86623. // Convert solid space to empty space and empty space to solid space.
  86624. Node.prototype.invert = function () {
  86625. for (var i = 0; i < this.polygons.length; i++) {
  86626. this.polygons[i].flip();
  86627. }
  86628. if (this.plane) {
  86629. this.plane.flip();
  86630. }
  86631. if (this.front) {
  86632. this.front.invert();
  86633. }
  86634. if (this.back) {
  86635. this.back.invert();
  86636. }
  86637. var temp = this.front;
  86638. this.front = this.back;
  86639. this.back = temp;
  86640. };
  86641. // Recursively remove all polygons in `polygons` that are inside this BSP
  86642. // tree.
  86643. Node.prototype.clipPolygons = function (polygons) {
  86644. if (!this.plane)
  86645. return polygons.slice();
  86646. var front = new Array(), back = new Array();
  86647. for (var i = 0; i < polygons.length; i++) {
  86648. this.plane.splitPolygon(polygons[i], front, back, front, back);
  86649. }
  86650. if (this.front) {
  86651. front = this.front.clipPolygons(front);
  86652. }
  86653. if (this.back) {
  86654. back = this.back.clipPolygons(back);
  86655. }
  86656. else {
  86657. back = [];
  86658. }
  86659. return front.concat(back);
  86660. };
  86661. // Remove all polygons in this BSP tree that are inside the other BSP tree
  86662. // `bsp`.
  86663. Node.prototype.clipTo = function (bsp) {
  86664. this.polygons = bsp.clipPolygons(this.polygons);
  86665. if (this.front)
  86666. this.front.clipTo(bsp);
  86667. if (this.back)
  86668. this.back.clipTo(bsp);
  86669. };
  86670. // Return a list of all polygons in this BSP tree.
  86671. Node.prototype.allPolygons = function () {
  86672. var polygons = this.polygons.slice();
  86673. if (this.front)
  86674. polygons = polygons.concat(this.front.allPolygons());
  86675. if (this.back)
  86676. polygons = polygons.concat(this.back.allPolygons());
  86677. return polygons;
  86678. };
  86679. // Build a BSP tree out of `polygons`. When called on an existing tree, the
  86680. // new polygons are filtered down to the bottom of the tree and become new
  86681. // nodes there. Each set of polygons is partitioned using the first polygon
  86682. // (no heuristic is used to pick a good split).
  86683. Node.prototype.build = function (polygons) {
  86684. if (!polygons.length)
  86685. return;
  86686. if (!this.plane)
  86687. this.plane = polygons[0].plane.clone();
  86688. var front = new Array(), back = new Array();
  86689. for (var i = 0; i < polygons.length; i++) {
  86690. this.plane.splitPolygon(polygons[i], this.polygons, this.polygons, front, back);
  86691. }
  86692. if (front.length) {
  86693. if (!this.front)
  86694. this.front = new Node();
  86695. this.front.build(front);
  86696. }
  86697. if (back.length) {
  86698. if (!this.back)
  86699. this.back = new Node();
  86700. this.back.build(back);
  86701. }
  86702. };
  86703. return Node;
  86704. }());
  86705. var CSG = /** @class */ (function () {
  86706. function CSG() {
  86707. this.polygons = new Array();
  86708. }
  86709. // Convert BABYLON.Mesh to BABYLON.CSG
  86710. CSG.FromMesh = function (mesh) {
  86711. var vertex, normal, uv, position, polygon, polygons = new Array(), vertices;
  86712. var matrix, meshPosition, meshRotation, meshRotationQuaternion = null, meshScaling;
  86713. if (mesh instanceof BABYLON.Mesh) {
  86714. mesh.computeWorldMatrix(true);
  86715. matrix = mesh.getWorldMatrix();
  86716. meshPosition = mesh.position.clone();
  86717. meshRotation = mesh.rotation.clone();
  86718. if (mesh.rotationQuaternion) {
  86719. meshRotationQuaternion = mesh.rotationQuaternion.clone();
  86720. }
  86721. meshScaling = mesh.scaling.clone();
  86722. }
  86723. else {
  86724. throw 'BABYLON.CSG: Wrong Mesh type, must be BABYLON.Mesh';
  86725. }
  86726. var indices = mesh.getIndices(), positions = mesh.getVerticesData(BABYLON.VertexBuffer.PositionKind), normals = mesh.getVerticesData(BABYLON.VertexBuffer.NormalKind), uvs = mesh.getVerticesData(BABYLON.VertexBuffer.UVKind);
  86727. var subMeshes = mesh.subMeshes;
  86728. for (var sm = 0, sml = subMeshes.length; sm < sml; sm++) {
  86729. for (var i = subMeshes[sm].indexStart, il = subMeshes[sm].indexCount + subMeshes[sm].indexStart; i < il; i += 3) {
  86730. vertices = [];
  86731. for (var j = 0; j < 3; j++) {
  86732. var sourceNormal = new BABYLON.Vector3(normals[indices[i + j] * 3], normals[indices[i + j] * 3 + 1], normals[indices[i + j] * 3 + 2]);
  86733. uv = new BABYLON.Vector2(uvs[indices[i + j] * 2], uvs[indices[i + j] * 2 + 1]);
  86734. var sourcePosition = new BABYLON.Vector3(positions[indices[i + j] * 3], positions[indices[i + j] * 3 + 1], positions[indices[i + j] * 3 + 2]);
  86735. position = BABYLON.Vector3.TransformCoordinates(sourcePosition, matrix);
  86736. normal = BABYLON.Vector3.TransformNormal(sourceNormal, matrix);
  86737. vertex = new Vertex(position, normal, uv);
  86738. vertices.push(vertex);
  86739. }
  86740. polygon = new Polygon(vertices, { subMeshId: sm, meshId: currentCSGMeshId, materialIndex: subMeshes[sm].materialIndex });
  86741. // To handle the case of degenerated triangle
  86742. // polygon.plane == null <=> the polygon does not represent 1 single plane <=> the triangle is degenerated
  86743. if (polygon.plane)
  86744. polygons.push(polygon);
  86745. }
  86746. }
  86747. var csg = CSG.FromPolygons(polygons);
  86748. csg.matrix = matrix;
  86749. csg.position = meshPosition;
  86750. csg.rotation = meshRotation;
  86751. csg.scaling = meshScaling;
  86752. csg.rotationQuaternion = meshRotationQuaternion;
  86753. currentCSGMeshId++;
  86754. return csg;
  86755. };
  86756. // Construct a BABYLON.CSG solid from a list of `BABYLON.CSG.Polygon` instances.
  86757. CSG.FromPolygons = function (polygons) {
  86758. var csg = new CSG();
  86759. csg.polygons = polygons;
  86760. return csg;
  86761. };
  86762. CSG.prototype.clone = function () {
  86763. var csg = new CSG();
  86764. csg.polygons = this.polygons.map(function (p) { return p.clone(); });
  86765. csg.copyTransformAttributes(this);
  86766. return csg;
  86767. };
  86768. CSG.prototype.union = function (csg) {
  86769. var a = new Node(this.clone().polygons);
  86770. var b = new Node(csg.clone().polygons);
  86771. a.clipTo(b);
  86772. b.clipTo(a);
  86773. b.invert();
  86774. b.clipTo(a);
  86775. b.invert();
  86776. a.build(b.allPolygons());
  86777. return CSG.FromPolygons(a.allPolygons()).copyTransformAttributes(this);
  86778. };
  86779. CSG.prototype.unionInPlace = function (csg) {
  86780. var a = new Node(this.polygons);
  86781. var b = new Node(csg.polygons);
  86782. a.clipTo(b);
  86783. b.clipTo(a);
  86784. b.invert();
  86785. b.clipTo(a);
  86786. b.invert();
  86787. a.build(b.allPolygons());
  86788. this.polygons = a.allPolygons();
  86789. };
  86790. CSG.prototype.subtract = function (csg) {
  86791. var a = new Node(this.clone().polygons);
  86792. var b = new Node(csg.clone().polygons);
  86793. a.invert();
  86794. a.clipTo(b);
  86795. b.clipTo(a);
  86796. b.invert();
  86797. b.clipTo(a);
  86798. b.invert();
  86799. a.build(b.allPolygons());
  86800. a.invert();
  86801. return CSG.FromPolygons(a.allPolygons()).copyTransformAttributes(this);
  86802. };
  86803. CSG.prototype.subtractInPlace = function (csg) {
  86804. var a = new Node(this.polygons);
  86805. var b = new Node(csg.polygons);
  86806. a.invert();
  86807. a.clipTo(b);
  86808. b.clipTo(a);
  86809. b.invert();
  86810. b.clipTo(a);
  86811. b.invert();
  86812. a.build(b.allPolygons());
  86813. a.invert();
  86814. this.polygons = a.allPolygons();
  86815. };
  86816. CSG.prototype.intersect = function (csg) {
  86817. var a = new Node(this.clone().polygons);
  86818. var b = new Node(csg.clone().polygons);
  86819. a.invert();
  86820. b.clipTo(a);
  86821. b.invert();
  86822. a.clipTo(b);
  86823. b.clipTo(a);
  86824. a.build(b.allPolygons());
  86825. a.invert();
  86826. return CSG.FromPolygons(a.allPolygons()).copyTransformAttributes(this);
  86827. };
  86828. CSG.prototype.intersectInPlace = function (csg) {
  86829. var a = new Node(this.polygons);
  86830. var b = new Node(csg.polygons);
  86831. a.invert();
  86832. b.clipTo(a);
  86833. b.invert();
  86834. a.clipTo(b);
  86835. b.clipTo(a);
  86836. a.build(b.allPolygons());
  86837. a.invert();
  86838. this.polygons = a.allPolygons();
  86839. };
  86840. // Return a new BABYLON.CSG solid with solid and empty space switched. This solid is
  86841. // not modified.
  86842. CSG.prototype.inverse = function () {
  86843. var csg = this.clone();
  86844. csg.inverseInPlace();
  86845. return csg;
  86846. };
  86847. CSG.prototype.inverseInPlace = function () {
  86848. this.polygons.map(function (p) { p.flip(); });
  86849. };
  86850. // This is used to keep meshes transformations so they can be restored
  86851. // when we build back a Babylon Mesh
  86852. // NB : All CSG operations are performed in world coordinates
  86853. CSG.prototype.copyTransformAttributes = function (csg) {
  86854. this.matrix = csg.matrix;
  86855. this.position = csg.position;
  86856. this.rotation = csg.rotation;
  86857. this.scaling = csg.scaling;
  86858. this.rotationQuaternion = csg.rotationQuaternion;
  86859. return this;
  86860. };
  86861. // Build Raw mesh from CSG
  86862. // Coordinates here are in world space
  86863. CSG.prototype.buildMeshGeometry = function (name, scene, keepSubMeshes) {
  86864. var matrix = this.matrix.clone();
  86865. matrix.invert();
  86866. var mesh = new BABYLON.Mesh(name, scene), vertices = [], indices = [], normals = [], uvs = [], vertex = BABYLON.Vector3.Zero(), normal = BABYLON.Vector3.Zero(), uv = BABYLON.Vector2.Zero(), polygons = this.polygons, polygonIndices = [0, 0, 0], polygon, vertice_dict = {}, vertex_idx, currentIndex = 0, subMesh_dict = {}, subMesh_obj;
  86867. if (keepSubMeshes) {
  86868. // Sort Polygons, since subMeshes are indices range
  86869. polygons.sort(function (a, b) {
  86870. if (a.shared.meshId === b.shared.meshId) {
  86871. return a.shared.subMeshId - b.shared.subMeshId;
  86872. }
  86873. else {
  86874. return a.shared.meshId - b.shared.meshId;
  86875. }
  86876. });
  86877. }
  86878. for (var i = 0, il = polygons.length; i < il; i++) {
  86879. polygon = polygons[i];
  86880. // Building SubMeshes
  86881. if (!subMesh_dict[polygon.shared.meshId]) {
  86882. subMesh_dict[polygon.shared.meshId] = {};
  86883. }
  86884. if (!subMesh_dict[polygon.shared.meshId][polygon.shared.subMeshId]) {
  86885. subMesh_dict[polygon.shared.meshId][polygon.shared.subMeshId] = {
  86886. indexStart: +Infinity,
  86887. indexEnd: -Infinity,
  86888. materialIndex: polygon.shared.materialIndex
  86889. };
  86890. }
  86891. subMesh_obj = subMesh_dict[polygon.shared.meshId][polygon.shared.subMeshId];
  86892. for (var j = 2, jl = polygon.vertices.length; j < jl; j++) {
  86893. polygonIndices[0] = 0;
  86894. polygonIndices[1] = j - 1;
  86895. polygonIndices[2] = j;
  86896. for (var k = 0; k < 3; k++) {
  86897. vertex.copyFrom(polygon.vertices[polygonIndices[k]].pos);
  86898. normal.copyFrom(polygon.vertices[polygonIndices[k]].normal);
  86899. uv.copyFrom(polygon.vertices[polygonIndices[k]].uv);
  86900. var localVertex = BABYLON.Vector3.TransformCoordinates(vertex, matrix);
  86901. var localNormal = BABYLON.Vector3.TransformNormal(normal, matrix);
  86902. vertex_idx = vertice_dict[localVertex.x + ',' + localVertex.y + ',' + localVertex.z];
  86903. // Check if 2 points can be merged
  86904. if (!(typeof vertex_idx !== 'undefined' &&
  86905. normals[vertex_idx * 3] === localNormal.x &&
  86906. normals[vertex_idx * 3 + 1] === localNormal.y &&
  86907. normals[vertex_idx * 3 + 2] === localNormal.z &&
  86908. uvs[vertex_idx * 2] === uv.x &&
  86909. uvs[vertex_idx * 2 + 1] === uv.y)) {
  86910. vertices.push(localVertex.x, localVertex.y, localVertex.z);
  86911. uvs.push(uv.x, uv.y);
  86912. normals.push(normal.x, normal.y, normal.z);
  86913. vertex_idx = vertice_dict[localVertex.x + ',' + localVertex.y + ',' + localVertex.z] = (vertices.length / 3) - 1;
  86914. }
  86915. indices.push(vertex_idx);
  86916. subMesh_obj.indexStart = Math.min(currentIndex, subMesh_obj.indexStart);
  86917. subMesh_obj.indexEnd = Math.max(currentIndex, subMesh_obj.indexEnd);
  86918. currentIndex++;
  86919. }
  86920. }
  86921. }
  86922. mesh.setVerticesData(BABYLON.VertexBuffer.PositionKind, vertices);
  86923. mesh.setVerticesData(BABYLON.VertexBuffer.NormalKind, normals);
  86924. mesh.setVerticesData(BABYLON.VertexBuffer.UVKind, uvs);
  86925. mesh.setIndices(indices, null);
  86926. if (keepSubMeshes) {
  86927. // We offset the materialIndex by the previous number of materials in the CSG mixed meshes
  86928. var materialIndexOffset = 0, materialMaxIndex;
  86929. mesh.subMeshes = new Array();
  86930. for (var m in subMesh_dict) {
  86931. materialMaxIndex = -1;
  86932. for (var sm in subMesh_dict[m]) {
  86933. subMesh_obj = subMesh_dict[m][sm];
  86934. BABYLON.SubMesh.CreateFromIndices(subMesh_obj.materialIndex + materialIndexOffset, subMesh_obj.indexStart, subMesh_obj.indexEnd - subMesh_obj.indexStart + 1, mesh);
  86935. materialMaxIndex = Math.max(subMesh_obj.materialIndex, materialMaxIndex);
  86936. }
  86937. materialIndexOffset += ++materialMaxIndex;
  86938. }
  86939. }
  86940. return mesh;
  86941. };
  86942. // Build Mesh from CSG taking material and transforms into account
  86943. CSG.prototype.toMesh = function (name, material, scene, keepSubMeshes) {
  86944. var mesh = this.buildMeshGeometry(name, scene, keepSubMeshes);
  86945. mesh.material = material;
  86946. mesh.position.copyFrom(this.position);
  86947. mesh.rotation.copyFrom(this.rotation);
  86948. if (this.rotationQuaternion) {
  86949. mesh.rotationQuaternion = this.rotationQuaternion.clone();
  86950. }
  86951. mesh.scaling.copyFrom(this.scaling);
  86952. mesh.computeWorldMatrix(true);
  86953. return mesh;
  86954. };
  86955. return CSG;
  86956. }());
  86957. BABYLON.CSG = CSG;
  86958. })(BABYLON || (BABYLON = {}));
  86959. //# sourceMappingURL=babylon.csg.js.map
  86960. var BABYLON;
  86961. (function (BABYLON) {
  86962. var LensFlare = /** @class */ (function () {
  86963. function LensFlare(size, position, color, imgUrl, system) {
  86964. this.size = size;
  86965. this.position = position;
  86966. this.alphaMode = BABYLON.Engine.ALPHA_ONEONE;
  86967. this.color = color || new BABYLON.Color3(1, 1, 1);
  86968. this.texture = imgUrl ? new BABYLON.Texture(imgUrl, system.getScene(), true) : null;
  86969. this._system = system;
  86970. system.lensFlares.push(this);
  86971. }
  86972. LensFlare.AddFlare = function (size, position, color, imgUrl, system) {
  86973. return new LensFlare(size, position, color, imgUrl, system);
  86974. };
  86975. LensFlare.prototype.dispose = function () {
  86976. if (this.texture) {
  86977. this.texture.dispose();
  86978. }
  86979. // Remove from scene
  86980. var index = this._system.lensFlares.indexOf(this);
  86981. this._system.lensFlares.splice(index, 1);
  86982. };
  86983. ;
  86984. return LensFlare;
  86985. }());
  86986. BABYLON.LensFlare = LensFlare;
  86987. })(BABYLON || (BABYLON = {}));
  86988. //# sourceMappingURL=babylon.lensFlare.js.map
  86989. var BABYLON;
  86990. (function (BABYLON) {
  86991. // Adds the parser to the scene parsers.
  86992. BABYLON.AbstractScene.AddParser(BABYLON.SceneComponentConstants.NAME_LENSFLARESYSTEM, function (parsedData, scene, container, rootUrl) {
  86993. // Lens flares
  86994. if (parsedData.lensFlareSystems !== undefined && parsedData.lensFlareSystems !== null) {
  86995. if (!container.lensFlareSystems) {
  86996. container.lensFlareSystems = new Array();
  86997. }
  86998. for (var index = 0, cache = parsedData.lensFlareSystems.length; index < cache; index++) {
  86999. var parsedLensFlareSystem = parsedData.lensFlareSystems[index];
  87000. var lf = BABYLON.LensFlareSystem.Parse(parsedLensFlareSystem, scene, rootUrl);
  87001. container.lensFlareSystems.push(lf);
  87002. }
  87003. }
  87004. });
  87005. BABYLON.AbstractScene.prototype.getLensFlareSystemByName = function (name) {
  87006. for (var index = 0; index < this.lensFlareSystems.length; index++) {
  87007. if (this.lensFlareSystems[index].name === name) {
  87008. return this.lensFlareSystems[index];
  87009. }
  87010. }
  87011. return null;
  87012. };
  87013. BABYLON.AbstractScene.prototype.getLensFlareSystemByID = function (id) {
  87014. for (var index = 0; index < this.lensFlareSystems.length; index++) {
  87015. if (this.lensFlareSystems[index].id === id) {
  87016. return this.lensFlareSystems[index];
  87017. }
  87018. }
  87019. return null;
  87020. };
  87021. BABYLON.AbstractScene.prototype.removeLensFlareSystem = function (toRemove) {
  87022. var index = this.lensFlareSystems.indexOf(toRemove);
  87023. if (index !== -1) {
  87024. this.lensFlareSystems.splice(index, 1);
  87025. }
  87026. return index;
  87027. };
  87028. BABYLON.AbstractScene.prototype.addLensFlareSystem = function (newLensFlareSystem) {
  87029. this.lensFlareSystems.push(newLensFlareSystem);
  87030. };
  87031. /**
  87032. * Defines the lens flare scene component responsible to manage any lens flares
  87033. * in a given scene.
  87034. */
  87035. var LensFlareSystemSceneComponent = /** @class */ (function () {
  87036. /**
  87037. * Creates a new instance of the component for the given scene
  87038. * @param scene Defines the scene to register the component in
  87039. */
  87040. function LensFlareSystemSceneComponent(scene) {
  87041. /**
  87042. * The component name helpfull to identify the component in the list of scene components.
  87043. */
  87044. this.name = BABYLON.SceneComponentConstants.NAME_LENSFLARESYSTEM;
  87045. this.scene = scene;
  87046. scene.lensFlareSystems = new Array();
  87047. }
  87048. /**
  87049. * Registers the component in a given scene
  87050. */
  87051. LensFlareSystemSceneComponent.prototype.register = function () {
  87052. this.scene._afterCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERCAMERADRAW_LENSFLARESYSTEM, this, this._draw);
  87053. };
  87054. /**
  87055. * Rebuilds the elements related to this component in case of
  87056. * context lost for instance.
  87057. */
  87058. LensFlareSystemSceneComponent.prototype.rebuild = function () {
  87059. // Nothing to do for lens flare
  87060. };
  87061. /**
  87062. * Adds all the element from the container to the scene
  87063. * @param container the container holding the elements
  87064. */
  87065. LensFlareSystemSceneComponent.prototype.addFromContainer = function (container) {
  87066. var _this = this;
  87067. if (!container.lensFlareSystems) {
  87068. return;
  87069. }
  87070. container.lensFlareSystems.forEach(function (o) {
  87071. _this.scene.addLensFlareSystem(o);
  87072. });
  87073. };
  87074. /**
  87075. * Removes all the elements in the container from the scene
  87076. * @param container contains the elements to remove
  87077. */
  87078. LensFlareSystemSceneComponent.prototype.removeFromContainer = function (container) {
  87079. var _this = this;
  87080. if (!container.lensFlareSystems) {
  87081. return;
  87082. }
  87083. container.lensFlareSystems.forEach(function (o) {
  87084. _this.scene.removeLensFlareSystem(o);
  87085. });
  87086. };
  87087. /**
  87088. * Serializes the component data to the specified json object
  87089. * @param serializationObject The object to serialize to
  87090. */
  87091. LensFlareSystemSceneComponent.prototype.serialize = function (serializationObject) {
  87092. // Lens flares
  87093. serializationObject.lensFlareSystems = [];
  87094. var lensFlareSystems = this.scene.lensFlareSystems;
  87095. for (var _i = 0, lensFlareSystems_1 = lensFlareSystems; _i < lensFlareSystems_1.length; _i++) {
  87096. var lensFlareSystem = lensFlareSystems_1[_i];
  87097. serializationObject.lensFlareSystems.push(lensFlareSystem.serialize());
  87098. }
  87099. };
  87100. /**
  87101. * Disposes the component and the associated ressources.
  87102. */
  87103. LensFlareSystemSceneComponent.prototype.dispose = function () {
  87104. var lensFlareSystems = this.scene.lensFlareSystems;
  87105. while (lensFlareSystems.length) {
  87106. lensFlareSystems[0].dispose();
  87107. }
  87108. };
  87109. LensFlareSystemSceneComponent.prototype._draw = function (camera) {
  87110. // Lens flares
  87111. if (this.scene.lensFlaresEnabled) {
  87112. var lensFlareSystems = this.scene.lensFlareSystems;
  87113. BABYLON.Tools.StartPerformanceCounter("Lens flares", lensFlareSystems.length > 0);
  87114. for (var _i = 0, lensFlareSystems_2 = lensFlareSystems; _i < lensFlareSystems_2.length; _i++) {
  87115. var lensFlareSystem = lensFlareSystems_2[_i];
  87116. if ((camera.layerMask & lensFlareSystem.layerMask) !== 0) {
  87117. lensFlareSystem.render();
  87118. }
  87119. }
  87120. BABYLON.Tools.EndPerformanceCounter("Lens flares", lensFlareSystems.length > 0);
  87121. }
  87122. };
  87123. return LensFlareSystemSceneComponent;
  87124. }());
  87125. BABYLON.LensFlareSystemSceneComponent = LensFlareSystemSceneComponent;
  87126. })(BABYLON || (BABYLON = {}));
  87127. //# sourceMappingURL=babylon.lensFlareSystemSceneComponent.js.map
  87128. var BABYLON;
  87129. (function (BABYLON) {
  87130. var LensFlareSystem = /** @class */ (function () {
  87131. function LensFlareSystem(name, emitter, scene) {
  87132. this.name = name;
  87133. this.lensFlares = new Array();
  87134. this.borderLimit = 300;
  87135. this.viewportBorder = 0;
  87136. this.layerMask = 0x0FFFFFFF;
  87137. this._vertexBuffers = {};
  87138. this._isEnabled = true;
  87139. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  87140. var component = this._scene._getComponent(BABYLON.SceneComponentConstants.NAME_LENSFLARESYSTEM);
  87141. if (!component) {
  87142. component = new BABYLON.LensFlareSystemSceneComponent(this._scene);
  87143. scene._addComponent(component);
  87144. }
  87145. this._emitter = emitter;
  87146. this.id = name;
  87147. scene.lensFlareSystems.push(this);
  87148. this.meshesSelectionPredicate = function (m) { return (scene.activeCamera && m.material && m.isVisible && m.isEnabled() && m.isBlocker && ((m.layerMask & scene.activeCamera.layerMask) != 0)); };
  87149. var engine = scene.getEngine();
  87150. // VBO
  87151. var vertices = [];
  87152. vertices.push(1, 1);
  87153. vertices.push(-1, 1);
  87154. vertices.push(-1, -1);
  87155. vertices.push(1, -1);
  87156. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(engine, vertices, BABYLON.VertexBuffer.PositionKind, false, false, 2);
  87157. // Indices
  87158. var indices = [];
  87159. indices.push(0);
  87160. indices.push(1);
  87161. indices.push(2);
  87162. indices.push(0);
  87163. indices.push(2);
  87164. indices.push(3);
  87165. this._indexBuffer = engine.createIndexBuffer(indices);
  87166. // Effects
  87167. this._effect = engine.createEffect("lensFlare", [BABYLON.VertexBuffer.PositionKind], ["color", "viewportMatrix"], ["textureSampler"], "");
  87168. }
  87169. Object.defineProperty(LensFlareSystem.prototype, "isEnabled", {
  87170. get: function () {
  87171. return this._isEnabled;
  87172. },
  87173. set: function (value) {
  87174. this._isEnabled = value;
  87175. },
  87176. enumerable: true,
  87177. configurable: true
  87178. });
  87179. LensFlareSystem.prototype.getScene = function () {
  87180. return this._scene;
  87181. };
  87182. LensFlareSystem.prototype.getEmitter = function () {
  87183. return this._emitter;
  87184. };
  87185. LensFlareSystem.prototype.setEmitter = function (newEmitter) {
  87186. this._emitter = newEmitter;
  87187. };
  87188. LensFlareSystem.prototype.getEmitterPosition = function () {
  87189. return this._emitter.getAbsolutePosition ? this._emitter.getAbsolutePosition() : this._emitter.position;
  87190. };
  87191. LensFlareSystem.prototype.computeEffectivePosition = function (globalViewport) {
  87192. var position = this.getEmitterPosition();
  87193. position = BABYLON.Vector3.Project(position, BABYLON.Matrix.Identity(), this._scene.getTransformMatrix(), globalViewport);
  87194. this._positionX = position.x;
  87195. this._positionY = position.y;
  87196. position = BABYLON.Vector3.TransformCoordinates(this.getEmitterPosition(), this._scene.getViewMatrix());
  87197. if (this.viewportBorder > 0) {
  87198. globalViewport.x -= this.viewportBorder;
  87199. globalViewport.y -= this.viewportBorder;
  87200. globalViewport.width += this.viewportBorder * 2;
  87201. globalViewport.height += this.viewportBorder * 2;
  87202. position.x += this.viewportBorder;
  87203. position.y += this.viewportBorder;
  87204. this._positionX += this.viewportBorder;
  87205. this._positionY += this.viewportBorder;
  87206. }
  87207. if (position.z > 0) {
  87208. if ((this._positionX > globalViewport.x) && (this._positionX < globalViewport.x + globalViewport.width)) {
  87209. if ((this._positionY > globalViewport.y) && (this._positionY < globalViewport.y + globalViewport.height))
  87210. return true;
  87211. }
  87212. return true;
  87213. }
  87214. return false;
  87215. };
  87216. /** @hidden */
  87217. LensFlareSystem.prototype._isVisible = function () {
  87218. if (!this._isEnabled || !this._scene.activeCamera) {
  87219. return false;
  87220. }
  87221. var emitterPosition = this.getEmitterPosition();
  87222. var direction = emitterPosition.subtract(this._scene.activeCamera.globalPosition);
  87223. var distance = direction.length();
  87224. direction.normalize();
  87225. var ray = new BABYLON.Ray(this._scene.activeCamera.globalPosition, direction);
  87226. var pickInfo = this._scene.pickWithRay(ray, this.meshesSelectionPredicate, true);
  87227. return !pickInfo || !pickInfo.hit || pickInfo.distance > distance;
  87228. };
  87229. LensFlareSystem.prototype.render = function () {
  87230. if (!this._effect.isReady() || !this._scene.activeCamera)
  87231. return false;
  87232. var engine = this._scene.getEngine();
  87233. var viewport = this._scene.activeCamera.viewport;
  87234. var globalViewport = viewport.toGlobal(engine.getRenderWidth(true), engine.getRenderHeight(true));
  87235. // Position
  87236. if (!this.computeEffectivePosition(globalViewport)) {
  87237. return false;
  87238. }
  87239. // Visibility
  87240. if (!this._isVisible()) {
  87241. return false;
  87242. }
  87243. // Intensity
  87244. var awayX;
  87245. var awayY;
  87246. if (this._positionX < this.borderLimit + globalViewport.x) {
  87247. awayX = this.borderLimit + globalViewport.x - this._positionX;
  87248. }
  87249. else if (this._positionX > globalViewport.x + globalViewport.width - this.borderLimit) {
  87250. awayX = this._positionX - globalViewport.x - globalViewport.width + this.borderLimit;
  87251. }
  87252. else {
  87253. awayX = 0;
  87254. }
  87255. if (this._positionY < this.borderLimit + globalViewport.y) {
  87256. awayY = this.borderLimit + globalViewport.y - this._positionY;
  87257. }
  87258. else if (this._positionY > globalViewport.y + globalViewport.height - this.borderLimit) {
  87259. awayY = this._positionY - globalViewport.y - globalViewport.height + this.borderLimit;
  87260. }
  87261. else {
  87262. awayY = 0;
  87263. }
  87264. var away = (awayX > awayY) ? awayX : awayY;
  87265. away -= this.viewportBorder;
  87266. if (away > this.borderLimit) {
  87267. away = this.borderLimit;
  87268. }
  87269. var intensity = 1.0 - (away / this.borderLimit);
  87270. if (intensity < 0) {
  87271. return false;
  87272. }
  87273. if (intensity > 1.0) {
  87274. intensity = 1.0;
  87275. }
  87276. if (this.viewportBorder > 0) {
  87277. globalViewport.x += this.viewportBorder;
  87278. globalViewport.y += this.viewportBorder;
  87279. globalViewport.width -= this.viewportBorder * 2;
  87280. globalViewport.height -= this.viewportBorder * 2;
  87281. this._positionX -= this.viewportBorder;
  87282. this._positionY -= this.viewportBorder;
  87283. }
  87284. // Position
  87285. var centerX = globalViewport.x + globalViewport.width / 2;
  87286. var centerY = globalViewport.y + globalViewport.height / 2;
  87287. var distX = centerX - this._positionX;
  87288. var distY = centerY - this._positionY;
  87289. // Effects
  87290. engine.enableEffect(this._effect);
  87291. engine.setState(false);
  87292. engine.setDepthBuffer(false);
  87293. // VBOs
  87294. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, this._effect);
  87295. // Flares
  87296. for (var index = 0; index < this.lensFlares.length; index++) {
  87297. var flare = this.lensFlares[index];
  87298. engine.setAlphaMode(flare.alphaMode);
  87299. var x = centerX - (distX * flare.position);
  87300. var y = centerY - (distY * flare.position);
  87301. var cw = flare.size;
  87302. var ch = flare.size * engine.getAspectRatio(this._scene.activeCamera, true);
  87303. var cx = 2 * (x / (globalViewport.width + globalViewport.x * 2)) - 1.0;
  87304. var cy = 1.0 - 2 * (y / (globalViewport.height + globalViewport.y * 2));
  87305. var viewportMatrix = BABYLON.Matrix.FromValues(cw / 2, 0, 0, 0, 0, ch / 2, 0, 0, 0, 0, 1, 0, cx, cy, 0, 1);
  87306. this._effect.setMatrix("viewportMatrix", viewportMatrix);
  87307. // Texture
  87308. this._effect.setTexture("textureSampler", flare.texture);
  87309. // Color
  87310. this._effect.setFloat4("color", flare.color.r * intensity, flare.color.g * intensity, flare.color.b * intensity, 1.0);
  87311. // Draw order
  87312. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  87313. }
  87314. engine.setDepthBuffer(true);
  87315. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  87316. return true;
  87317. };
  87318. LensFlareSystem.prototype.dispose = function () {
  87319. var vertexBuffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  87320. if (vertexBuffer) {
  87321. vertexBuffer.dispose();
  87322. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  87323. }
  87324. if (this._indexBuffer) {
  87325. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  87326. this._indexBuffer = null;
  87327. }
  87328. while (this.lensFlares.length) {
  87329. this.lensFlares[0].dispose();
  87330. }
  87331. // Remove from scene
  87332. var index = this._scene.lensFlareSystems.indexOf(this);
  87333. this._scene.lensFlareSystems.splice(index, 1);
  87334. };
  87335. LensFlareSystem.Parse = function (parsedLensFlareSystem, scene, rootUrl) {
  87336. var emitter = scene.getLastEntryByID(parsedLensFlareSystem.emitterId);
  87337. var name = parsedLensFlareSystem.name || "lensFlareSystem#" + parsedLensFlareSystem.emitterId;
  87338. var lensFlareSystem = new LensFlareSystem(name, emitter, scene);
  87339. lensFlareSystem.id = parsedLensFlareSystem.id || name;
  87340. lensFlareSystem.borderLimit = parsedLensFlareSystem.borderLimit;
  87341. for (var index = 0; index < parsedLensFlareSystem.flares.length; index++) {
  87342. var parsedFlare = parsedLensFlareSystem.flares[index];
  87343. BABYLON.LensFlare.AddFlare(parsedFlare.size, parsedFlare.position, BABYLON.Color3.FromArray(parsedFlare.color), parsedFlare.textureName ? rootUrl + parsedFlare.textureName : "", lensFlareSystem);
  87344. }
  87345. return lensFlareSystem;
  87346. };
  87347. LensFlareSystem.prototype.serialize = function () {
  87348. var serializationObject = {};
  87349. serializationObject.id = this.id;
  87350. serializationObject.name = this.name;
  87351. serializationObject.emitterId = this.getEmitter().id;
  87352. serializationObject.borderLimit = this.borderLimit;
  87353. serializationObject.flares = [];
  87354. for (var index = 0; index < this.lensFlares.length; index++) {
  87355. var flare = this.lensFlares[index];
  87356. serializationObject.flares.push({
  87357. size: flare.size,
  87358. position: flare.position,
  87359. color: flare.color.asArray(),
  87360. textureName: BABYLON.Tools.GetFilename(flare.texture ? flare.texture.name : "")
  87361. });
  87362. }
  87363. return serializationObject;
  87364. };
  87365. return LensFlareSystem;
  87366. }());
  87367. BABYLON.LensFlareSystem = LensFlareSystem;
  87368. })(BABYLON || (BABYLON = {}));
  87369. //# sourceMappingURL=babylon.lensFlareSystem.js.map
  87370. var BABYLON;
  87371. (function (BABYLON) {
  87372. /**
  87373. * This is a holder class for the physics joint created by the physics plugin.
  87374. * It holds a set of functions to control the underlying joint.
  87375. */
  87376. var PhysicsJoint = /** @class */ (function () {
  87377. function PhysicsJoint(type, jointData) {
  87378. this.type = type;
  87379. this.jointData = jointData;
  87380. jointData.nativeParams = jointData.nativeParams || {};
  87381. }
  87382. Object.defineProperty(PhysicsJoint.prototype, "physicsJoint", {
  87383. get: function () {
  87384. return this._physicsJoint;
  87385. },
  87386. set: function (newJoint) {
  87387. if (this._physicsJoint) {
  87388. //remove from the wolrd
  87389. }
  87390. this._physicsJoint = newJoint;
  87391. },
  87392. enumerable: true,
  87393. configurable: true
  87394. });
  87395. Object.defineProperty(PhysicsJoint.prototype, "physicsPlugin", {
  87396. set: function (physicsPlugin) {
  87397. this._physicsPlugin = physicsPlugin;
  87398. },
  87399. enumerable: true,
  87400. configurable: true
  87401. });
  87402. /**
  87403. * Execute a function that is physics-plugin specific.
  87404. * @param {Function} func the function that will be executed.
  87405. * It accepts two parameters: the physics world and the physics joint.
  87406. */
  87407. PhysicsJoint.prototype.executeNativeFunction = function (func) {
  87408. func(this._physicsPlugin.world, this._physicsJoint);
  87409. };
  87410. //TODO check if the native joints are the same
  87411. //Joint Types
  87412. PhysicsJoint.DistanceJoint = 0;
  87413. PhysicsJoint.HingeJoint = 1;
  87414. PhysicsJoint.BallAndSocketJoint = 2;
  87415. PhysicsJoint.WheelJoint = 3;
  87416. PhysicsJoint.SliderJoint = 4;
  87417. //OIMO
  87418. PhysicsJoint.PrismaticJoint = 5;
  87419. //ENERGY FTW! (compare with this - http://ode-wiki.org/wiki/index.php?title=Manual:_Joint_Types_and_Functions)
  87420. PhysicsJoint.UniversalJoint = 6;
  87421. PhysicsJoint.Hinge2Joint = PhysicsJoint.WheelJoint;
  87422. //Cannon
  87423. //Similar to a Ball-Joint. Different in params
  87424. PhysicsJoint.PointToPointJoint = 8;
  87425. //Cannon only at the moment
  87426. PhysicsJoint.SpringJoint = 9;
  87427. PhysicsJoint.LockJoint = 10;
  87428. return PhysicsJoint;
  87429. }());
  87430. BABYLON.PhysicsJoint = PhysicsJoint;
  87431. /**
  87432. * A class representing a physics distance joint.
  87433. */
  87434. var DistanceJoint = /** @class */ (function (_super) {
  87435. __extends(DistanceJoint, _super);
  87436. function DistanceJoint(jointData) {
  87437. return _super.call(this, PhysicsJoint.DistanceJoint, jointData) || this;
  87438. }
  87439. /**
  87440. * Update the predefined distance.
  87441. */
  87442. DistanceJoint.prototype.updateDistance = function (maxDistance, minDistance) {
  87443. this._physicsPlugin.updateDistanceJoint(this, maxDistance, minDistance);
  87444. };
  87445. return DistanceJoint;
  87446. }(PhysicsJoint));
  87447. BABYLON.DistanceJoint = DistanceJoint;
  87448. var MotorEnabledJoint = /** @class */ (function (_super) {
  87449. __extends(MotorEnabledJoint, _super);
  87450. function MotorEnabledJoint(type, jointData) {
  87451. return _super.call(this, type, jointData) || this;
  87452. }
  87453. /**
  87454. * Set the motor values.
  87455. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87456. * @param {number} force the force to apply
  87457. * @param {number} maxForce max force for this motor.
  87458. */
  87459. MotorEnabledJoint.prototype.setMotor = function (force, maxForce) {
  87460. this._physicsPlugin.setMotor(this, force || 0, maxForce);
  87461. };
  87462. /**
  87463. * Set the motor's limits.
  87464. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87465. */
  87466. MotorEnabledJoint.prototype.setLimit = function (upperLimit, lowerLimit) {
  87467. this._physicsPlugin.setLimit(this, upperLimit, lowerLimit);
  87468. };
  87469. return MotorEnabledJoint;
  87470. }(PhysicsJoint));
  87471. BABYLON.MotorEnabledJoint = MotorEnabledJoint;
  87472. /**
  87473. * This class represents a single hinge physics joint
  87474. */
  87475. var HingeJoint = /** @class */ (function (_super) {
  87476. __extends(HingeJoint, _super);
  87477. function HingeJoint(jointData) {
  87478. return _super.call(this, PhysicsJoint.HingeJoint, jointData) || this;
  87479. }
  87480. /**
  87481. * Set the motor values.
  87482. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87483. * @param {number} force the force to apply
  87484. * @param {number} maxForce max force for this motor.
  87485. */
  87486. HingeJoint.prototype.setMotor = function (force, maxForce) {
  87487. this._physicsPlugin.setMotor(this, force || 0, maxForce);
  87488. };
  87489. /**
  87490. * Set the motor's limits.
  87491. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87492. */
  87493. HingeJoint.prototype.setLimit = function (upperLimit, lowerLimit) {
  87494. this._physicsPlugin.setLimit(this, upperLimit, lowerLimit);
  87495. };
  87496. return HingeJoint;
  87497. }(MotorEnabledJoint));
  87498. BABYLON.HingeJoint = HingeJoint;
  87499. /**
  87500. * This class represents a dual hinge physics joint (same as wheel joint)
  87501. */
  87502. var Hinge2Joint = /** @class */ (function (_super) {
  87503. __extends(Hinge2Joint, _super);
  87504. function Hinge2Joint(jointData) {
  87505. return _super.call(this, PhysicsJoint.Hinge2Joint, jointData) || this;
  87506. }
  87507. /**
  87508. * Set the motor values.
  87509. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87510. * @param {number} force the force to apply
  87511. * @param {number} maxForce max force for this motor.
  87512. * @param {motorIndex} the motor's index, 0 or 1.
  87513. */
  87514. Hinge2Joint.prototype.setMotor = function (force, maxForce, motorIndex) {
  87515. if (motorIndex === void 0) { motorIndex = 0; }
  87516. this._physicsPlugin.setMotor(this, force || 0, maxForce, motorIndex);
  87517. };
  87518. /**
  87519. * Set the motor limits.
  87520. * Attention, this function is plugin specific. Engines won't react 100% the same.
  87521. * @param {number} upperLimit the upper limit
  87522. * @param {number} lowerLimit lower limit
  87523. * @param {motorIndex} the motor's index, 0 or 1.
  87524. */
  87525. Hinge2Joint.prototype.setLimit = function (upperLimit, lowerLimit, motorIndex) {
  87526. if (motorIndex === void 0) { motorIndex = 0; }
  87527. this._physicsPlugin.setLimit(this, upperLimit, lowerLimit, motorIndex);
  87528. };
  87529. return Hinge2Joint;
  87530. }(MotorEnabledJoint));
  87531. BABYLON.Hinge2Joint = Hinge2Joint;
  87532. })(BABYLON || (BABYLON = {}));
  87533. //# sourceMappingURL=babylon.physicsJoint.js.map
  87534. var BABYLON;
  87535. (function (BABYLON) {
  87536. var PhysicsImpostor = /** @class */ (function () {
  87537. function PhysicsImpostor(object, type, _options, _scene) {
  87538. if (_options === void 0) { _options = { mass: 0 }; }
  87539. var _this = this;
  87540. this.object = object;
  87541. this.type = type;
  87542. this._options = _options;
  87543. this._scene = _scene;
  87544. this._bodyUpdateRequired = false;
  87545. this._onBeforePhysicsStepCallbacks = new Array();
  87546. this._onAfterPhysicsStepCallbacks = new Array();
  87547. this._onPhysicsCollideCallbacks = [];
  87548. this._deltaPosition = BABYLON.Vector3.Zero();
  87549. this._isDisposed = false;
  87550. //temp variables for parent rotation calculations
  87551. //private _mats: Array<Matrix> = [new Matrix(), new Matrix()];
  87552. this._tmpQuat = new BABYLON.Quaternion();
  87553. this._tmpQuat2 = new BABYLON.Quaternion();
  87554. /**
  87555. * this function is executed by the physics engine.
  87556. */
  87557. this.beforeStep = function () {
  87558. if (!_this._physicsEngine) {
  87559. return;
  87560. }
  87561. _this.object.translate(_this._deltaPosition, -1);
  87562. _this._deltaRotationConjugated && _this.object.rotationQuaternion && _this.object.rotationQuaternion.multiplyToRef(_this._deltaRotationConjugated, _this.object.rotationQuaternion);
  87563. _this.object.computeWorldMatrix(false);
  87564. if (_this.object.parent && _this.object.rotationQuaternion) {
  87565. _this.getParentsRotation();
  87566. _this._tmpQuat.multiplyToRef(_this.object.rotationQuaternion, _this._tmpQuat);
  87567. }
  87568. else {
  87569. _this._tmpQuat.copyFrom(_this.object.rotationQuaternion || new BABYLON.Quaternion());
  87570. }
  87571. if (!_this._options.disableBidirectionalTransformation) {
  87572. _this.object.rotationQuaternion && _this._physicsEngine.getPhysicsPlugin().setPhysicsBodyTransformation(_this, /*bInfo.boundingBox.centerWorld*/ _this.object.getAbsolutePivotPoint(), _this._tmpQuat);
  87573. }
  87574. _this._onBeforePhysicsStepCallbacks.forEach(function (func) {
  87575. func(_this);
  87576. });
  87577. };
  87578. /**
  87579. * this function is executed by the physics engine.
  87580. */
  87581. this.afterStep = function () {
  87582. if (!_this._physicsEngine) {
  87583. return;
  87584. }
  87585. _this._onAfterPhysicsStepCallbacks.forEach(function (func) {
  87586. func(_this);
  87587. });
  87588. _this._physicsEngine.getPhysicsPlugin().setTransformationFromPhysicsBody(_this);
  87589. // object has now its world rotation. needs to be converted to local.
  87590. if (_this.object.parent && _this.object.rotationQuaternion) {
  87591. _this.getParentsRotation();
  87592. _this._tmpQuat.conjugateInPlace();
  87593. _this._tmpQuat.multiplyToRef(_this.object.rotationQuaternion, _this.object.rotationQuaternion);
  87594. }
  87595. // take the position set and make it the absolute position of this object.
  87596. _this.object.setAbsolutePosition(_this.object.position);
  87597. _this._deltaRotation && _this.object.rotationQuaternion && _this.object.rotationQuaternion.multiplyToRef(_this._deltaRotation, _this.object.rotationQuaternion);
  87598. _this.object.translate(_this._deltaPosition, 1);
  87599. };
  87600. /**
  87601. * Legacy collision detection event support
  87602. */
  87603. this.onCollideEvent = null;
  87604. //event and body object due to cannon's event-based architecture.
  87605. this.onCollide = function (e) {
  87606. if (!_this._onPhysicsCollideCallbacks.length && !_this.onCollideEvent) {
  87607. return;
  87608. }
  87609. if (!_this._physicsEngine) {
  87610. return;
  87611. }
  87612. var otherImpostor = _this._physicsEngine.getImpostorWithPhysicsBody(e.body);
  87613. if (otherImpostor) {
  87614. // Legacy collision detection event support
  87615. if (_this.onCollideEvent) {
  87616. _this.onCollideEvent(_this, otherImpostor);
  87617. }
  87618. _this._onPhysicsCollideCallbacks.filter(function (obj) {
  87619. return obj.otherImpostors.indexOf(otherImpostor) !== -1;
  87620. }).forEach(function (obj) {
  87621. obj.callback(_this, otherImpostor);
  87622. });
  87623. }
  87624. };
  87625. //sanity check!
  87626. if (!this.object) {
  87627. BABYLON.Tools.Error("No object was provided. A physics object is obligatory");
  87628. return;
  87629. }
  87630. //legacy support for old syntax.
  87631. if (!this._scene && object.getScene) {
  87632. this._scene = object.getScene();
  87633. }
  87634. if (!this._scene) {
  87635. return;
  87636. }
  87637. this._physicsEngine = this._scene.getPhysicsEngine();
  87638. if (!this._physicsEngine) {
  87639. BABYLON.Tools.Error("Physics not enabled. Please use scene.enablePhysics(...) before creating impostors.");
  87640. }
  87641. else {
  87642. //set the object's quaternion, if not set
  87643. if (!this.object.rotationQuaternion) {
  87644. if (this.object.rotation) {
  87645. this.object.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this.object.rotation.y, this.object.rotation.x, this.object.rotation.z);
  87646. }
  87647. else {
  87648. this.object.rotationQuaternion = new BABYLON.Quaternion();
  87649. }
  87650. }
  87651. //default options params
  87652. this._options.mass = (_options.mass === void 0) ? 0 : _options.mass;
  87653. this._options.friction = (_options.friction === void 0) ? 0.2 : _options.friction;
  87654. this._options.restitution = (_options.restitution === void 0) ? 0.2 : _options.restitution;
  87655. this._joints = [];
  87656. //If the mesh has a parent, don't initialize the physicsBody. Instead wait for the parent to do that.
  87657. if (!this.object.parent || this._options.ignoreParent) {
  87658. this._init();
  87659. }
  87660. else if (this.object.parent.physicsImpostor) {
  87661. BABYLON.Tools.Warn("You must affect impostors to children before affecting impostor to parent.");
  87662. }
  87663. }
  87664. }
  87665. Object.defineProperty(PhysicsImpostor.prototype, "isDisposed", {
  87666. get: function () {
  87667. return this._isDisposed;
  87668. },
  87669. enumerable: true,
  87670. configurable: true
  87671. });
  87672. Object.defineProperty(PhysicsImpostor.prototype, "mass", {
  87673. get: function () {
  87674. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getBodyMass(this) : 0;
  87675. },
  87676. set: function (value) {
  87677. this.setMass(value);
  87678. },
  87679. enumerable: true,
  87680. configurable: true
  87681. });
  87682. Object.defineProperty(PhysicsImpostor.prototype, "friction", {
  87683. get: function () {
  87684. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getBodyFriction(this) : 0;
  87685. },
  87686. set: function (value) {
  87687. if (!this._physicsEngine) {
  87688. return;
  87689. }
  87690. this._physicsEngine.getPhysicsPlugin().setBodyFriction(this, value);
  87691. },
  87692. enumerable: true,
  87693. configurable: true
  87694. });
  87695. Object.defineProperty(PhysicsImpostor.prototype, "restitution", {
  87696. get: function () {
  87697. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getBodyRestitution(this) : 0;
  87698. },
  87699. set: function (value) {
  87700. if (!this._physicsEngine) {
  87701. return;
  87702. }
  87703. this._physicsEngine.getPhysicsPlugin().setBodyRestitution(this, value);
  87704. },
  87705. enumerable: true,
  87706. configurable: true
  87707. });
  87708. /**
  87709. * This function will completly initialize this impostor.
  87710. * It will create a new body - but only if this mesh has no parent.
  87711. * If it has, this impostor will not be used other than to define the impostor
  87712. * of the child mesh.
  87713. * @hidden
  87714. */
  87715. PhysicsImpostor.prototype._init = function () {
  87716. if (!this._physicsEngine) {
  87717. return;
  87718. }
  87719. this._physicsEngine.removeImpostor(this);
  87720. this.physicsBody = null;
  87721. this._parent = this._parent || this._getPhysicsParent();
  87722. if (!this._isDisposed && (!this.parent || this._options.ignoreParent)) {
  87723. this._physicsEngine.addImpostor(this);
  87724. }
  87725. };
  87726. PhysicsImpostor.prototype._getPhysicsParent = function () {
  87727. if (this.object.parent instanceof BABYLON.AbstractMesh) {
  87728. var parentMesh = this.object.parent;
  87729. return parentMesh.physicsImpostor;
  87730. }
  87731. return null;
  87732. };
  87733. /**
  87734. * Should a new body be generated.
  87735. */
  87736. PhysicsImpostor.prototype.isBodyInitRequired = function () {
  87737. return this._bodyUpdateRequired || (!this._physicsBody && !this._parent);
  87738. };
  87739. PhysicsImpostor.prototype.setScalingUpdated = function (updated) {
  87740. this.forceUpdate();
  87741. };
  87742. /**
  87743. * Force a regeneration of this or the parent's impostor's body.
  87744. * Use under cautious - This will remove all joints already implemented.
  87745. */
  87746. PhysicsImpostor.prototype.forceUpdate = function () {
  87747. this._init();
  87748. if (this.parent && !this._options.ignoreParent) {
  87749. this.parent.forceUpdate();
  87750. }
  87751. };
  87752. Object.defineProperty(PhysicsImpostor.prototype, "physicsBody", {
  87753. /*public get mesh(): AbstractMesh {
  87754. return this._mesh;
  87755. }*/
  87756. /**
  87757. * Gets the body that holds this impostor. Either its own, or its parent.
  87758. */
  87759. get: function () {
  87760. return (this._parent && !this._options.ignoreParent) ? this._parent.physicsBody : this._physicsBody;
  87761. },
  87762. /**
  87763. * Set the physics body. Used mainly by the physics engine/plugin
  87764. */
  87765. set: function (physicsBody) {
  87766. if (this._physicsBody && this._physicsEngine) {
  87767. this._physicsEngine.getPhysicsPlugin().removePhysicsBody(this);
  87768. }
  87769. this._physicsBody = physicsBody;
  87770. this.resetUpdateFlags();
  87771. },
  87772. enumerable: true,
  87773. configurable: true
  87774. });
  87775. Object.defineProperty(PhysicsImpostor.prototype, "parent", {
  87776. get: function () {
  87777. return !this._options.ignoreParent && this._parent ? this._parent : null;
  87778. },
  87779. set: function (value) {
  87780. this._parent = value;
  87781. },
  87782. enumerable: true,
  87783. configurable: true
  87784. });
  87785. PhysicsImpostor.prototype.resetUpdateFlags = function () {
  87786. this._bodyUpdateRequired = false;
  87787. };
  87788. PhysicsImpostor.prototype.getObjectExtendSize = function () {
  87789. if (this.object.getBoundingInfo) {
  87790. var q = this.object.rotationQuaternion;
  87791. //reset rotation
  87792. this.object.rotationQuaternion = PhysicsImpostor.IDENTITY_QUATERNION;
  87793. //calculate the world matrix with no rotation
  87794. this.object.computeWorldMatrix && this.object.computeWorldMatrix(true);
  87795. var boundingInfo = this.object.getBoundingInfo();
  87796. var size = boundingInfo.boundingBox.extendSizeWorld.scale(2);
  87797. //bring back the rotation
  87798. this.object.rotationQuaternion = q;
  87799. //calculate the world matrix with the new rotation
  87800. this.object.computeWorldMatrix && this.object.computeWorldMatrix(true);
  87801. return size;
  87802. }
  87803. else {
  87804. return PhysicsImpostor.DEFAULT_OBJECT_SIZE;
  87805. }
  87806. };
  87807. PhysicsImpostor.prototype.getObjectCenter = function () {
  87808. if (this.object.getBoundingInfo) {
  87809. var boundingInfo = this.object.getBoundingInfo();
  87810. return boundingInfo.boundingBox.centerWorld;
  87811. }
  87812. else {
  87813. return this.object.position;
  87814. }
  87815. };
  87816. /**
  87817. * Get a specific parametes from the options parameter.
  87818. */
  87819. PhysicsImpostor.prototype.getParam = function (paramName) {
  87820. return this._options[paramName];
  87821. };
  87822. /**
  87823. * Sets a specific parameter in the options given to the physics plugin
  87824. */
  87825. PhysicsImpostor.prototype.setParam = function (paramName, value) {
  87826. this._options[paramName] = value;
  87827. this._bodyUpdateRequired = true;
  87828. };
  87829. /**
  87830. * Specifically change the body's mass option. Won't recreate the physics body object
  87831. */
  87832. PhysicsImpostor.prototype.setMass = function (mass) {
  87833. if (this.getParam("mass") !== mass) {
  87834. this.setParam("mass", mass);
  87835. }
  87836. if (this._physicsEngine) {
  87837. this._physicsEngine.getPhysicsPlugin().setBodyMass(this, mass);
  87838. }
  87839. };
  87840. PhysicsImpostor.prototype.getLinearVelocity = function () {
  87841. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getLinearVelocity(this) : BABYLON.Vector3.Zero();
  87842. };
  87843. PhysicsImpostor.prototype.setLinearVelocity = function (velocity) {
  87844. if (this._physicsEngine) {
  87845. this._physicsEngine.getPhysicsPlugin().setLinearVelocity(this, velocity);
  87846. }
  87847. };
  87848. PhysicsImpostor.prototype.getAngularVelocity = function () {
  87849. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getAngularVelocity(this) : BABYLON.Vector3.Zero();
  87850. };
  87851. PhysicsImpostor.prototype.setAngularVelocity = function (velocity) {
  87852. if (this._physicsEngine) {
  87853. this._physicsEngine.getPhysicsPlugin().setAngularVelocity(this, velocity);
  87854. }
  87855. };
  87856. /**
  87857. * Execute a function with the physics plugin native code.
  87858. * Provide a function the will have two variables - the world object and the physics body object.
  87859. */
  87860. PhysicsImpostor.prototype.executeNativeFunction = function (func) {
  87861. if (this._physicsEngine) {
  87862. func(this._physicsEngine.getPhysicsPlugin().world, this.physicsBody);
  87863. }
  87864. };
  87865. /**
  87866. * Register a function that will be executed before the physics world is stepping forward.
  87867. */
  87868. PhysicsImpostor.prototype.registerBeforePhysicsStep = function (func) {
  87869. this._onBeforePhysicsStepCallbacks.push(func);
  87870. };
  87871. PhysicsImpostor.prototype.unregisterBeforePhysicsStep = function (func) {
  87872. var index = this._onBeforePhysicsStepCallbacks.indexOf(func);
  87873. if (index > -1) {
  87874. this._onBeforePhysicsStepCallbacks.splice(index, 1);
  87875. }
  87876. else {
  87877. BABYLON.Tools.Warn("Function to remove was not found");
  87878. }
  87879. };
  87880. /**
  87881. * Register a function that will be executed after the physics step
  87882. */
  87883. PhysicsImpostor.prototype.registerAfterPhysicsStep = function (func) {
  87884. this._onAfterPhysicsStepCallbacks.push(func);
  87885. };
  87886. PhysicsImpostor.prototype.unregisterAfterPhysicsStep = function (func) {
  87887. var index = this._onAfterPhysicsStepCallbacks.indexOf(func);
  87888. if (index > -1) {
  87889. this._onAfterPhysicsStepCallbacks.splice(index, 1);
  87890. }
  87891. else {
  87892. BABYLON.Tools.Warn("Function to remove was not found");
  87893. }
  87894. };
  87895. /**
  87896. * register a function that will be executed when this impostor collides against a different body.
  87897. */
  87898. PhysicsImpostor.prototype.registerOnPhysicsCollide = function (collideAgainst, func) {
  87899. var collidedAgainstList = collideAgainst instanceof Array ? collideAgainst : [collideAgainst];
  87900. this._onPhysicsCollideCallbacks.push({ callback: func, otherImpostors: collidedAgainstList });
  87901. };
  87902. PhysicsImpostor.prototype.unregisterOnPhysicsCollide = function (collideAgainst, func) {
  87903. var collidedAgainstList = collideAgainst instanceof Array ? collideAgainst : [collideAgainst];
  87904. var index = -1;
  87905. var found = this._onPhysicsCollideCallbacks.some(function (cbDef, idx) {
  87906. if (cbDef.callback === func && cbDef.otherImpostors.length === collidedAgainstList.length) {
  87907. // chcek the arrays match
  87908. var sameList = cbDef.otherImpostors.every(function (impostor) {
  87909. return collidedAgainstList.indexOf(impostor) > -1;
  87910. });
  87911. if (sameList) {
  87912. index = idx;
  87913. }
  87914. return sameList;
  87915. }
  87916. return false;
  87917. });
  87918. if (found) {
  87919. this._onPhysicsCollideCallbacks.splice(index, 1);
  87920. }
  87921. else {
  87922. BABYLON.Tools.Warn("Function to remove was not found");
  87923. }
  87924. };
  87925. PhysicsImpostor.prototype.getParentsRotation = function () {
  87926. var parent = this.object.parent;
  87927. this._tmpQuat.copyFromFloats(0, 0, 0, 1);
  87928. while (parent) {
  87929. if (parent.rotationQuaternion) {
  87930. this._tmpQuat2.copyFrom(parent.rotationQuaternion);
  87931. }
  87932. else {
  87933. BABYLON.Quaternion.RotationYawPitchRollToRef(parent.rotation.y, parent.rotation.x, parent.rotation.z, this._tmpQuat2);
  87934. }
  87935. this._tmpQuat.multiplyToRef(this._tmpQuat2, this._tmpQuat);
  87936. parent = parent.parent;
  87937. }
  87938. return this._tmpQuat;
  87939. };
  87940. /**
  87941. * Apply a force
  87942. */
  87943. PhysicsImpostor.prototype.applyForce = function (force, contactPoint) {
  87944. if (this._physicsEngine) {
  87945. this._physicsEngine.getPhysicsPlugin().applyForce(this, force, contactPoint);
  87946. }
  87947. return this;
  87948. };
  87949. /**
  87950. * Apply an impulse
  87951. */
  87952. PhysicsImpostor.prototype.applyImpulse = function (force, contactPoint) {
  87953. if (this._physicsEngine) {
  87954. this._physicsEngine.getPhysicsPlugin().applyImpulse(this, force, contactPoint);
  87955. }
  87956. return this;
  87957. };
  87958. /**
  87959. * A help function to create a joint.
  87960. */
  87961. PhysicsImpostor.prototype.createJoint = function (otherImpostor, jointType, jointData) {
  87962. var joint = new BABYLON.PhysicsJoint(jointType, jointData);
  87963. this.addJoint(otherImpostor, joint);
  87964. return this;
  87965. };
  87966. /**
  87967. * Add a joint to this impostor with a different impostor.
  87968. */
  87969. PhysicsImpostor.prototype.addJoint = function (otherImpostor, joint) {
  87970. this._joints.push({
  87971. otherImpostor: otherImpostor,
  87972. joint: joint
  87973. });
  87974. if (this._physicsEngine) {
  87975. this._physicsEngine.addJoint(this, otherImpostor, joint);
  87976. }
  87977. return this;
  87978. };
  87979. /**
  87980. * Will keep this body still, in a sleep mode.
  87981. */
  87982. PhysicsImpostor.prototype.sleep = function () {
  87983. if (this._physicsEngine) {
  87984. this._physicsEngine.getPhysicsPlugin().sleepBody(this);
  87985. }
  87986. return this;
  87987. };
  87988. /**
  87989. * Wake the body up.
  87990. */
  87991. PhysicsImpostor.prototype.wakeUp = function () {
  87992. if (this._physicsEngine) {
  87993. this._physicsEngine.getPhysicsPlugin().wakeUpBody(this);
  87994. }
  87995. return this;
  87996. };
  87997. PhysicsImpostor.prototype.clone = function (newObject) {
  87998. if (!newObject)
  87999. return null;
  88000. return new PhysicsImpostor(newObject, this.type, this._options, this._scene);
  88001. };
  88002. PhysicsImpostor.prototype.dispose = function ( /*disposeChildren: boolean = true*/) {
  88003. var _this = this;
  88004. //no dispose if no physics engine is available.
  88005. if (!this._physicsEngine) {
  88006. return;
  88007. }
  88008. this._joints.forEach(function (j) {
  88009. if (_this._physicsEngine) {
  88010. _this._physicsEngine.removeJoint(_this, j.otherImpostor, j.joint);
  88011. }
  88012. });
  88013. //dispose the physics body
  88014. this._physicsEngine.removeImpostor(this);
  88015. if (this.parent) {
  88016. this.parent.forceUpdate();
  88017. }
  88018. else {
  88019. /*this._object.getChildMeshes().forEach(function(mesh) {
  88020. if (mesh.physicsImpostor) {
  88021. if (disposeChildren) {
  88022. mesh.physicsImpostor.dispose();
  88023. mesh.physicsImpostor = null;
  88024. }
  88025. }
  88026. })*/
  88027. }
  88028. this._isDisposed = true;
  88029. };
  88030. PhysicsImpostor.prototype.setDeltaPosition = function (position) {
  88031. this._deltaPosition.copyFrom(position);
  88032. };
  88033. PhysicsImpostor.prototype.setDeltaRotation = function (rotation) {
  88034. if (!this._deltaRotation) {
  88035. this._deltaRotation = new BABYLON.Quaternion();
  88036. }
  88037. this._deltaRotation.copyFrom(rotation);
  88038. this._deltaRotationConjugated = this._deltaRotation.conjugate();
  88039. };
  88040. PhysicsImpostor.prototype.getBoxSizeToRef = function (result) {
  88041. if (this._physicsEngine) {
  88042. this._physicsEngine.getPhysicsPlugin().getBoxSizeToRef(this, result);
  88043. }
  88044. return this;
  88045. };
  88046. PhysicsImpostor.prototype.getRadius = function () {
  88047. return this._physicsEngine ? this._physicsEngine.getPhysicsPlugin().getRadius(this) : 0;
  88048. };
  88049. /**
  88050. * Sync a bone with this impostor
  88051. * @param bone The bone to sync to the impostor.
  88052. * @param boneMesh The mesh that the bone is influencing.
  88053. * @param jointPivot The pivot of the joint / bone in local space.
  88054. * @param distToJoint Optional distance from the impostor to the joint.
  88055. * @param adjustRotation Optional quaternion for adjusting the local rotation of the bone.
  88056. */
  88057. PhysicsImpostor.prototype.syncBoneWithImpostor = function (bone, boneMesh, jointPivot, distToJoint, adjustRotation) {
  88058. var tempVec = PhysicsImpostor._tmpVecs[0];
  88059. var mesh = this.object;
  88060. if (mesh.rotationQuaternion) {
  88061. if (adjustRotation) {
  88062. var tempQuat = PhysicsImpostor._tmpQuat;
  88063. mesh.rotationQuaternion.multiplyToRef(adjustRotation, tempQuat);
  88064. bone.setRotationQuaternion(tempQuat, BABYLON.Space.WORLD, boneMesh);
  88065. }
  88066. else {
  88067. bone.setRotationQuaternion(mesh.rotationQuaternion, BABYLON.Space.WORLD, boneMesh);
  88068. }
  88069. }
  88070. tempVec.x = 0;
  88071. tempVec.y = 0;
  88072. tempVec.z = 0;
  88073. if (jointPivot) {
  88074. tempVec.x = jointPivot.x;
  88075. tempVec.y = jointPivot.y;
  88076. tempVec.z = jointPivot.z;
  88077. bone.getDirectionToRef(tempVec, boneMesh, tempVec);
  88078. if (distToJoint === undefined || distToJoint === null) {
  88079. distToJoint = jointPivot.length();
  88080. }
  88081. tempVec.x *= distToJoint;
  88082. tempVec.y *= distToJoint;
  88083. tempVec.z *= distToJoint;
  88084. }
  88085. if (bone.getParent()) {
  88086. tempVec.addInPlace(mesh.getAbsolutePosition());
  88087. bone.setAbsolutePosition(tempVec, boneMesh);
  88088. }
  88089. else {
  88090. boneMesh.setAbsolutePosition(mesh.getAbsolutePosition());
  88091. boneMesh.position.x -= tempVec.x;
  88092. boneMesh.position.y -= tempVec.y;
  88093. boneMesh.position.z -= tempVec.z;
  88094. }
  88095. };
  88096. /**
  88097. * Sync impostor to a bone
  88098. * @param bone The bone that the impostor will be synced to.
  88099. * @param boneMesh The mesh that the bone is influencing.
  88100. * @param jointPivot The pivot of the joint / bone in local space.
  88101. * @param distToJoint Optional distance from the impostor to the joint.
  88102. * @param adjustRotation Optional quaternion for adjusting the local rotation of the bone.
  88103. * @param boneAxis Optional vector3 axis the bone is aligned with
  88104. */
  88105. PhysicsImpostor.prototype.syncImpostorWithBone = function (bone, boneMesh, jointPivot, distToJoint, adjustRotation, boneAxis) {
  88106. var mesh = this.object;
  88107. if (mesh.rotationQuaternion) {
  88108. if (adjustRotation) {
  88109. var tempQuat = PhysicsImpostor._tmpQuat;
  88110. bone.getRotationQuaternionToRef(BABYLON.Space.WORLD, boneMesh, tempQuat);
  88111. tempQuat.multiplyToRef(adjustRotation, mesh.rotationQuaternion);
  88112. }
  88113. else {
  88114. bone.getRotationQuaternionToRef(BABYLON.Space.WORLD, boneMesh, mesh.rotationQuaternion);
  88115. }
  88116. }
  88117. var pos = PhysicsImpostor._tmpVecs[0];
  88118. var boneDir = PhysicsImpostor._tmpVecs[1];
  88119. if (!boneAxis) {
  88120. boneAxis = PhysicsImpostor._tmpVecs[2];
  88121. boneAxis.x = 0;
  88122. boneAxis.y = 1;
  88123. boneAxis.z = 0;
  88124. }
  88125. bone.getDirectionToRef(boneAxis, boneMesh, boneDir);
  88126. bone.getAbsolutePositionToRef(boneMesh, pos);
  88127. if ((distToJoint === undefined || distToJoint === null) && jointPivot) {
  88128. distToJoint = jointPivot.length();
  88129. }
  88130. if (distToJoint !== undefined && distToJoint !== null) {
  88131. pos.x += boneDir.x * distToJoint;
  88132. pos.y += boneDir.y * distToJoint;
  88133. pos.z += boneDir.z * distToJoint;
  88134. }
  88135. mesh.setAbsolutePosition(pos);
  88136. };
  88137. PhysicsImpostor.DEFAULT_OBJECT_SIZE = new BABYLON.Vector3(1, 1, 1);
  88138. PhysicsImpostor.IDENTITY_QUATERNION = BABYLON.Quaternion.Identity();
  88139. PhysicsImpostor._tmpVecs = [BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero(), BABYLON.Vector3.Zero()];
  88140. PhysicsImpostor._tmpQuat = BABYLON.Quaternion.Identity();
  88141. //Impostor types
  88142. PhysicsImpostor.NoImpostor = 0;
  88143. PhysicsImpostor.SphereImpostor = 1;
  88144. PhysicsImpostor.BoxImpostor = 2;
  88145. PhysicsImpostor.PlaneImpostor = 3;
  88146. PhysicsImpostor.MeshImpostor = 4;
  88147. PhysicsImpostor.CylinderImpostor = 7;
  88148. PhysicsImpostor.ParticleImpostor = 8;
  88149. PhysicsImpostor.HeightmapImpostor = 9;
  88150. return PhysicsImpostor;
  88151. }());
  88152. BABYLON.PhysicsImpostor = PhysicsImpostor;
  88153. })(BABYLON || (BABYLON = {}));
  88154. //# sourceMappingURL=babylon.physicsImpostor.js.map
  88155. var BABYLON;
  88156. (function (BABYLON) {
  88157. var PhysicsEngine = /** @class */ (function () {
  88158. function PhysicsEngine(gravity, _physicsPlugin) {
  88159. if (_physicsPlugin === void 0) { _physicsPlugin = new BABYLON.CannonJSPlugin(); }
  88160. this._physicsPlugin = _physicsPlugin;
  88161. //new methods and parameters
  88162. this._impostors = [];
  88163. this._joints = [];
  88164. if (!this._physicsPlugin.isSupported()) {
  88165. throw new Error("Physics Engine " + this._physicsPlugin.name + " cannot be found. "
  88166. + "Please make sure it is included.");
  88167. }
  88168. gravity = gravity || new BABYLON.Vector3(0, -9.807, 0);
  88169. this.setGravity(gravity);
  88170. this.setTimeStep();
  88171. }
  88172. PhysicsEngine.prototype.setGravity = function (gravity) {
  88173. this.gravity = gravity;
  88174. this._physicsPlugin.setGravity(this.gravity);
  88175. };
  88176. /**
  88177. * Set the time step of the physics engine.
  88178. * default is 1/60.
  88179. * To slow it down, enter 1/600 for example.
  88180. * To speed it up, 1/30
  88181. * @param {number} newTimeStep the new timestep to apply to this world.
  88182. */
  88183. PhysicsEngine.prototype.setTimeStep = function (newTimeStep) {
  88184. if (newTimeStep === void 0) { newTimeStep = 1 / 60; }
  88185. this._physicsPlugin.setTimeStep(newTimeStep);
  88186. };
  88187. /**
  88188. * Get the time step of the physics engine.
  88189. */
  88190. PhysicsEngine.prototype.getTimeStep = function () {
  88191. return this._physicsPlugin.getTimeStep();
  88192. };
  88193. PhysicsEngine.prototype.dispose = function () {
  88194. this._impostors.forEach(function (impostor) {
  88195. impostor.dispose();
  88196. });
  88197. this._physicsPlugin.dispose();
  88198. };
  88199. PhysicsEngine.prototype.getPhysicsPluginName = function () {
  88200. return this._physicsPlugin.name;
  88201. };
  88202. /**
  88203. * Adding a new impostor for the impostor tracking.
  88204. * This will be done by the impostor itself.
  88205. * @param {PhysicsImpostor} impostor the impostor to add
  88206. */
  88207. PhysicsEngine.prototype.addImpostor = function (impostor) {
  88208. impostor.uniqueId = this._impostors.push(impostor);
  88209. //if no parent, generate the body
  88210. if (!impostor.parent) {
  88211. this._physicsPlugin.generatePhysicsBody(impostor);
  88212. }
  88213. };
  88214. /**
  88215. * Remove an impostor from the engine.
  88216. * This impostor and its mesh will not longer be updated by the physics engine.
  88217. * @param {PhysicsImpostor} impostor the impostor to remove
  88218. */
  88219. PhysicsEngine.prototype.removeImpostor = function (impostor) {
  88220. var index = this._impostors.indexOf(impostor);
  88221. if (index > -1) {
  88222. var removed = this._impostors.splice(index, 1);
  88223. //Is it needed?
  88224. if (removed.length) {
  88225. //this will also remove it from the world.
  88226. removed[0].physicsBody = null;
  88227. }
  88228. }
  88229. };
  88230. /**
  88231. * Add a joint to the physics engine
  88232. * @param {PhysicsImpostor} mainImpostor the main impostor to which the joint is added.
  88233. * @param {PhysicsImpostor} connectedImpostor the impostor that is connected to the main impostor using this joint
  88234. * @param {PhysicsJoint} the joint that will connect both impostors.
  88235. */
  88236. PhysicsEngine.prototype.addJoint = function (mainImpostor, connectedImpostor, joint) {
  88237. var impostorJoint = {
  88238. mainImpostor: mainImpostor,
  88239. connectedImpostor: connectedImpostor,
  88240. joint: joint
  88241. };
  88242. joint.physicsPlugin = this._physicsPlugin;
  88243. this._joints.push(impostorJoint);
  88244. this._physicsPlugin.generateJoint(impostorJoint);
  88245. };
  88246. PhysicsEngine.prototype.removeJoint = function (mainImpostor, connectedImpostor, joint) {
  88247. var matchingJoints = this._joints.filter(function (impostorJoint) {
  88248. return (impostorJoint.connectedImpostor === connectedImpostor
  88249. && impostorJoint.joint === joint
  88250. && impostorJoint.mainImpostor === mainImpostor);
  88251. });
  88252. if (matchingJoints.length) {
  88253. this._physicsPlugin.removeJoint(matchingJoints[0]);
  88254. //TODO remove it from the list as well
  88255. }
  88256. };
  88257. /**
  88258. * Called by the scene. no need to call it.
  88259. * @hidden
  88260. */
  88261. PhysicsEngine.prototype._step = function (delta) {
  88262. var _this = this;
  88263. //check if any mesh has no body / requires an update
  88264. this._impostors.forEach(function (impostor) {
  88265. if (impostor.isBodyInitRequired()) {
  88266. _this._physicsPlugin.generatePhysicsBody(impostor);
  88267. }
  88268. });
  88269. if (delta > 0.1) {
  88270. delta = 0.1;
  88271. }
  88272. else if (delta <= 0) {
  88273. delta = 1.0 / 60.0;
  88274. }
  88275. this._physicsPlugin.executeStep(delta, this._impostors);
  88276. };
  88277. PhysicsEngine.prototype.getPhysicsPlugin = function () {
  88278. return this._physicsPlugin;
  88279. };
  88280. PhysicsEngine.prototype.getImpostors = function () {
  88281. return this._impostors;
  88282. };
  88283. PhysicsEngine.prototype.getImpostorForPhysicsObject = function (object) {
  88284. for (var i = 0; i < this._impostors.length; ++i) {
  88285. if (this._impostors[i].object === object) {
  88286. return this._impostors[i];
  88287. }
  88288. }
  88289. return null;
  88290. };
  88291. PhysicsEngine.prototype.getImpostorWithPhysicsBody = function (body) {
  88292. for (var i = 0; i < this._impostors.length; ++i) {
  88293. if (this._impostors[i].physicsBody === body) {
  88294. return this._impostors[i];
  88295. }
  88296. }
  88297. return null;
  88298. };
  88299. // Statics
  88300. PhysicsEngine.Epsilon = 0.001;
  88301. return PhysicsEngine;
  88302. }());
  88303. BABYLON.PhysicsEngine = PhysicsEngine;
  88304. })(BABYLON || (BABYLON = {}));
  88305. //# sourceMappingURL=babylon.physicsEngine.js.map
  88306. var BABYLON;
  88307. (function (BABYLON) {
  88308. var PhysicsHelper = /** @class */ (function () {
  88309. function PhysicsHelper(scene) {
  88310. this._scene = scene;
  88311. this._physicsEngine = this._scene.getPhysicsEngine();
  88312. if (!this._physicsEngine) {
  88313. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you can use the methods.');
  88314. }
  88315. }
  88316. /**
  88317. * @param {Vector3} origin the origin of the explosion
  88318. * @param {number} radius the explosion radius
  88319. * @param {number} strength the explosion strength
  88320. * @param {PhysicsRadialImpulseFalloff} falloff possible options: Constant & Linear. Defaults to Constant
  88321. */
  88322. PhysicsHelper.prototype.applyRadialExplosionImpulse = function (origin, radius, strength, falloff) {
  88323. if (falloff === void 0) { falloff = PhysicsRadialImpulseFalloff.Constant; }
  88324. if (!this._physicsEngine) {
  88325. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you call this method.');
  88326. return null;
  88327. }
  88328. var impostors = this._physicsEngine.getImpostors();
  88329. if (impostors.length === 0) {
  88330. return null;
  88331. }
  88332. var event = new PhysicsRadialExplosionEvent(this._scene);
  88333. impostors.forEach(function (impostor) {
  88334. var impostorForceAndContactPoint = event.getImpostorForceAndContactPoint(impostor, origin, radius, strength, falloff);
  88335. if (!impostorForceAndContactPoint) {
  88336. return;
  88337. }
  88338. impostor.applyImpulse(impostorForceAndContactPoint.force, impostorForceAndContactPoint.contactPoint);
  88339. });
  88340. event.dispose(false);
  88341. return event;
  88342. };
  88343. /**
  88344. * @param {Vector3} origin the origin of the explosion
  88345. * @param {number} radius the explosion radius
  88346. * @param {number} strength the explosion strength
  88347. * @param {PhysicsRadialImpulseFalloff} falloff possible options: Constant & Linear. Defaults to Constant
  88348. */
  88349. PhysicsHelper.prototype.applyRadialExplosionForce = function (origin, radius, strength, falloff) {
  88350. if (falloff === void 0) { falloff = PhysicsRadialImpulseFalloff.Constant; }
  88351. if (!this._physicsEngine) {
  88352. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you call the PhysicsHelper.');
  88353. return null;
  88354. }
  88355. var impostors = this._physicsEngine.getImpostors();
  88356. if (impostors.length === 0) {
  88357. return null;
  88358. }
  88359. var event = new PhysicsRadialExplosionEvent(this._scene);
  88360. impostors.forEach(function (impostor) {
  88361. var impostorForceAndContactPoint = event.getImpostorForceAndContactPoint(impostor, origin, radius, strength, falloff);
  88362. if (!impostorForceAndContactPoint) {
  88363. return;
  88364. }
  88365. impostor.applyForce(impostorForceAndContactPoint.force, impostorForceAndContactPoint.contactPoint);
  88366. });
  88367. event.dispose(false);
  88368. return event;
  88369. };
  88370. /**
  88371. * @param {Vector3} origin the origin of the explosion
  88372. * @param {number} radius the explosion radius
  88373. * @param {number} strength the explosion strength
  88374. * @param {PhysicsRadialImpulseFalloff} falloff possible options: Constant & Linear. Defaults to Constant
  88375. */
  88376. PhysicsHelper.prototype.gravitationalField = function (origin, radius, strength, falloff) {
  88377. if (falloff === void 0) { falloff = PhysicsRadialImpulseFalloff.Constant; }
  88378. if (!this._physicsEngine) {
  88379. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you call the PhysicsHelper.');
  88380. return null;
  88381. }
  88382. var impostors = this._physicsEngine.getImpostors();
  88383. if (impostors.length === 0) {
  88384. return null;
  88385. }
  88386. var event = new PhysicsGravitationalFieldEvent(this, this._scene, origin, radius, strength, falloff);
  88387. event.dispose(false);
  88388. return event;
  88389. };
  88390. /**
  88391. * @param {Vector3} origin the origin of the updraft
  88392. * @param {number} radius the radius of the updraft
  88393. * @param {number} strength the strength of the updraft
  88394. * @param {number} height the height of the updraft
  88395. * @param {PhysicsUpdraftMode} updraftMode possible options: Center & Perpendicular. Defaults to Center
  88396. */
  88397. PhysicsHelper.prototype.updraft = function (origin, radius, strength, height, updraftMode) {
  88398. if (updraftMode === void 0) { updraftMode = PhysicsUpdraftMode.Center; }
  88399. if (!this._physicsEngine) {
  88400. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you call the PhysicsHelper.');
  88401. return null;
  88402. }
  88403. if (this._physicsEngine.getImpostors().length === 0) {
  88404. return null;
  88405. }
  88406. var event = new PhysicsUpdraftEvent(this._scene, origin, radius, strength, height, updraftMode);
  88407. event.dispose(false);
  88408. return event;
  88409. };
  88410. /**
  88411. * @param {Vector3} origin the of the vortex
  88412. * @param {number} radius the radius of the vortex
  88413. * @param {number} strength the strength of the vortex
  88414. * @param {number} height the height of the vortex
  88415. */
  88416. PhysicsHelper.prototype.vortex = function (origin, radius, strength, height) {
  88417. if (!this._physicsEngine) {
  88418. BABYLON.Tools.Warn('Physics engine not enabled. Please enable the physics before you call the PhysicsHelper.');
  88419. return null;
  88420. }
  88421. if (this._physicsEngine.getImpostors().length === 0) {
  88422. return null;
  88423. }
  88424. var event = new PhysicsVortexEvent(this._scene, origin, radius, strength, height);
  88425. event.dispose(false);
  88426. return event;
  88427. };
  88428. return PhysicsHelper;
  88429. }());
  88430. BABYLON.PhysicsHelper = PhysicsHelper;
  88431. /***** Radial explosion *****/
  88432. var PhysicsRadialExplosionEvent = /** @class */ (function () {
  88433. function PhysicsRadialExplosionEvent(scene) {
  88434. this._sphereOptions = { segments: 32, diameter: 1 }; // TODO: make configurable
  88435. this._rays = [];
  88436. this._dataFetched = false; // check if the data has been fetched. If not, do cleanup
  88437. this._scene = scene;
  88438. }
  88439. /**
  88440. * Returns the data related to the radial explosion event (sphere & rays).
  88441. * @returns {PhysicsRadialExplosionEventData}
  88442. */
  88443. PhysicsRadialExplosionEvent.prototype.getData = function () {
  88444. this._dataFetched = true;
  88445. return {
  88446. sphere: this._sphere,
  88447. rays: this._rays,
  88448. };
  88449. };
  88450. /**
  88451. * Returns the force and contact point of the impostor or false, if the impostor is not affected by the force/impulse.
  88452. * @param impostor
  88453. * @param {Vector3} origin the origin of the explosion
  88454. * @param {number} radius the explosion radius
  88455. * @param {number} strength the explosion strength
  88456. * @param {PhysicsRadialImpulseFalloff} falloff possible options: Constant & Linear
  88457. * @returns {Nullable<PhysicsForceAndContactPoint>}
  88458. */
  88459. PhysicsRadialExplosionEvent.prototype.getImpostorForceAndContactPoint = function (impostor, origin, radius, strength, falloff) {
  88460. if (impostor.mass === 0) {
  88461. return null;
  88462. }
  88463. if (!this._intersectsWithSphere(impostor, origin, radius)) {
  88464. return null;
  88465. }
  88466. if (impostor.object.getClassName() !== 'Mesh' && impostor.object.getClassName() !== 'InstancedMesh') {
  88467. return null;
  88468. }
  88469. var impostorObjectCenter = impostor.getObjectCenter();
  88470. var direction = impostorObjectCenter.subtract(origin);
  88471. var ray = new BABYLON.Ray(origin, direction, radius);
  88472. this._rays.push(ray);
  88473. var hit = ray.intersectsMesh(impostor.object);
  88474. var contactPoint = hit.pickedPoint;
  88475. if (!contactPoint) {
  88476. return null;
  88477. }
  88478. var distanceFromOrigin = BABYLON.Vector3.Distance(origin, contactPoint);
  88479. if (distanceFromOrigin > radius) {
  88480. return null;
  88481. }
  88482. var multiplier = falloff === PhysicsRadialImpulseFalloff.Constant
  88483. ? strength
  88484. : strength * (1 - (distanceFromOrigin / radius));
  88485. var force = direction.multiplyByFloats(multiplier, multiplier, multiplier);
  88486. return { force: force, contactPoint: contactPoint };
  88487. };
  88488. /**
  88489. * Disposes the sphere.
  88490. * @param {bolean} force
  88491. */
  88492. PhysicsRadialExplosionEvent.prototype.dispose = function (force) {
  88493. var _this = this;
  88494. if (force === void 0) { force = true; }
  88495. if (force) {
  88496. this._sphere.dispose();
  88497. }
  88498. else {
  88499. setTimeout(function () {
  88500. if (!_this._dataFetched) {
  88501. _this._sphere.dispose();
  88502. }
  88503. }, 0);
  88504. }
  88505. };
  88506. /*** Helpers ***/
  88507. PhysicsRadialExplosionEvent.prototype._prepareSphere = function () {
  88508. if (!this._sphere) {
  88509. this._sphere = BABYLON.MeshBuilder.CreateSphere("radialExplosionEventSphere", this._sphereOptions, this._scene);
  88510. this._sphere.isVisible = false;
  88511. }
  88512. };
  88513. PhysicsRadialExplosionEvent.prototype._intersectsWithSphere = function (impostor, origin, radius) {
  88514. var impostorObject = impostor.object;
  88515. this._prepareSphere();
  88516. this._sphere.position = origin;
  88517. this._sphere.scaling = new BABYLON.Vector3(radius * 2, radius * 2, radius * 2);
  88518. this._sphere._updateBoundingInfo();
  88519. this._sphere.computeWorldMatrix(true);
  88520. return this._sphere.intersectsMesh(impostorObject, true);
  88521. };
  88522. return PhysicsRadialExplosionEvent;
  88523. }());
  88524. BABYLON.PhysicsRadialExplosionEvent = PhysicsRadialExplosionEvent;
  88525. /***** Gravitational Field *****/
  88526. var PhysicsGravitationalFieldEvent = /** @class */ (function () {
  88527. function PhysicsGravitationalFieldEvent(physicsHelper, scene, origin, radius, strength, falloff) {
  88528. if (falloff === void 0) { falloff = PhysicsRadialImpulseFalloff.Constant; }
  88529. this._dataFetched = false; // check if the has been fetched the data. If not, do cleanup
  88530. this._physicsHelper = physicsHelper;
  88531. this._scene = scene;
  88532. this._origin = origin;
  88533. this._radius = radius;
  88534. this._strength = strength;
  88535. this._falloff = falloff;
  88536. this._tickCallback = this._tick.bind(this);
  88537. }
  88538. /**
  88539. * Returns the data related to the gravitational field event (sphere).
  88540. * @returns {PhysicsGravitationalFieldEventData}
  88541. */
  88542. PhysicsGravitationalFieldEvent.prototype.getData = function () {
  88543. this._dataFetched = true;
  88544. return {
  88545. sphere: this._sphere,
  88546. };
  88547. };
  88548. /**
  88549. * Enables the gravitational field.
  88550. */
  88551. PhysicsGravitationalFieldEvent.prototype.enable = function () {
  88552. this._tickCallback.call(this);
  88553. this._scene.registerBeforeRender(this._tickCallback);
  88554. };
  88555. /**
  88556. * Disables the gravitational field.
  88557. */
  88558. PhysicsGravitationalFieldEvent.prototype.disable = function () {
  88559. this._scene.unregisterBeforeRender(this._tickCallback);
  88560. };
  88561. /**
  88562. * Disposes the sphere.
  88563. * @param {bolean} force
  88564. */
  88565. PhysicsGravitationalFieldEvent.prototype.dispose = function (force) {
  88566. var _this = this;
  88567. if (force === void 0) { force = true; }
  88568. if (force) {
  88569. this._sphere.dispose();
  88570. }
  88571. else {
  88572. setTimeout(function () {
  88573. if (!_this._dataFetched) {
  88574. _this._sphere.dispose();
  88575. }
  88576. }, 0);
  88577. }
  88578. };
  88579. PhysicsGravitationalFieldEvent.prototype._tick = function () {
  88580. // Since the params won't change, we fetch the event only once
  88581. if (this._sphere) {
  88582. this._physicsHelper.applyRadialExplosionForce(this._origin, this._radius, this._strength * -1, this._falloff);
  88583. }
  88584. else {
  88585. var radialExplosionEvent = this._physicsHelper.applyRadialExplosionForce(this._origin, this._radius, this._strength * -1, this._falloff);
  88586. if (radialExplosionEvent) {
  88587. this._sphere = radialExplosionEvent.getData().sphere.clone('radialExplosionEventSphereClone');
  88588. }
  88589. }
  88590. };
  88591. return PhysicsGravitationalFieldEvent;
  88592. }());
  88593. BABYLON.PhysicsGravitationalFieldEvent = PhysicsGravitationalFieldEvent;
  88594. /***** Updraft *****/
  88595. var PhysicsUpdraftEvent = /** @class */ (function () {
  88596. function PhysicsUpdraftEvent(_scene, _origin, _radius, _strength, _height, _updraftMode) {
  88597. this._scene = _scene;
  88598. this._origin = _origin;
  88599. this._radius = _radius;
  88600. this._strength = _strength;
  88601. this._height = _height;
  88602. this._updraftMode = _updraftMode;
  88603. this._originTop = BABYLON.Vector3.Zero(); // the most upper part of the cylinder
  88604. this._originDirection = BABYLON.Vector3.Zero(); // used if the updraftMode is perpendicular
  88605. this._cylinderPosition = BABYLON.Vector3.Zero(); // to keep the cylinders position, because normally the origin is in the center and not on the bottom
  88606. this._dataFetched = false; // check if the has been fetched the data. If not, do cleanup
  88607. this._physicsEngine = this._scene.getPhysicsEngine();
  88608. this._origin.addToRef(new BABYLON.Vector3(0, this._height / 2, 0), this._cylinderPosition);
  88609. this._origin.addToRef(new BABYLON.Vector3(0, this._height, 0), this._originTop);
  88610. if (this._updraftMode === PhysicsUpdraftMode.Perpendicular) {
  88611. this._originDirection = this._origin.subtract(this._originTop).normalize();
  88612. }
  88613. this._tickCallback = this._tick.bind(this);
  88614. }
  88615. /**
  88616. * Returns the data related to the updraft event (cylinder).
  88617. * @returns {PhysicsUpdraftEventData}
  88618. */
  88619. PhysicsUpdraftEvent.prototype.getData = function () {
  88620. this._dataFetched = true;
  88621. return {
  88622. cylinder: this._cylinder,
  88623. };
  88624. };
  88625. /**
  88626. * Enables the updraft.
  88627. */
  88628. PhysicsUpdraftEvent.prototype.enable = function () {
  88629. this._tickCallback.call(this);
  88630. this._scene.registerBeforeRender(this._tickCallback);
  88631. };
  88632. /**
  88633. * Disables the cortex.
  88634. */
  88635. PhysicsUpdraftEvent.prototype.disable = function () {
  88636. this._scene.unregisterBeforeRender(this._tickCallback);
  88637. };
  88638. /**
  88639. * Disposes the sphere.
  88640. * @param {bolean} force
  88641. */
  88642. PhysicsUpdraftEvent.prototype.dispose = function (force) {
  88643. var _this = this;
  88644. if (force === void 0) { force = true; }
  88645. if (force) {
  88646. this._cylinder.dispose();
  88647. }
  88648. else {
  88649. setTimeout(function () {
  88650. if (!_this._dataFetched) {
  88651. _this._cylinder.dispose();
  88652. }
  88653. }, 0);
  88654. }
  88655. };
  88656. PhysicsUpdraftEvent.prototype.getImpostorForceAndContactPoint = function (impostor) {
  88657. if (impostor.mass === 0) {
  88658. return null;
  88659. }
  88660. if (!this._intersectsWithCylinder(impostor)) {
  88661. return null;
  88662. }
  88663. var impostorObjectCenter = impostor.getObjectCenter();
  88664. if (this._updraftMode === PhysicsUpdraftMode.Perpendicular) {
  88665. var direction = this._originDirection;
  88666. }
  88667. else {
  88668. var direction = impostorObjectCenter.subtract(this._originTop);
  88669. }
  88670. var multiplier = this._strength * -1;
  88671. var force = direction.multiplyByFloats(multiplier, multiplier, multiplier);
  88672. return { force: force, contactPoint: impostorObjectCenter };
  88673. };
  88674. PhysicsUpdraftEvent.prototype._tick = function () {
  88675. var _this = this;
  88676. this._physicsEngine.getImpostors().forEach(function (impostor) {
  88677. var impostorForceAndContactPoint = _this.getImpostorForceAndContactPoint(impostor);
  88678. if (!impostorForceAndContactPoint) {
  88679. return;
  88680. }
  88681. impostor.applyForce(impostorForceAndContactPoint.force, impostorForceAndContactPoint.contactPoint);
  88682. });
  88683. };
  88684. /*** Helpers ***/
  88685. PhysicsUpdraftEvent.prototype._prepareCylinder = function () {
  88686. if (!this._cylinder) {
  88687. this._cylinder = BABYLON.MeshBuilder.CreateCylinder("updraftEventCylinder", {
  88688. height: this._height,
  88689. diameter: this._radius * 2,
  88690. }, this._scene);
  88691. this._cylinder.isVisible = false;
  88692. }
  88693. };
  88694. PhysicsUpdraftEvent.prototype._intersectsWithCylinder = function (impostor) {
  88695. var impostorObject = impostor.object;
  88696. this._prepareCylinder();
  88697. this._cylinder.position = this._cylinderPosition;
  88698. return this._cylinder.intersectsMesh(impostorObject, true);
  88699. };
  88700. return PhysicsUpdraftEvent;
  88701. }());
  88702. BABYLON.PhysicsUpdraftEvent = PhysicsUpdraftEvent;
  88703. /***** Vortex *****/
  88704. var PhysicsVortexEvent = /** @class */ (function () {
  88705. function PhysicsVortexEvent(_scene, _origin, _radius, _strength, _height) {
  88706. this._scene = _scene;
  88707. this._origin = _origin;
  88708. this._radius = _radius;
  88709. this._strength = _strength;
  88710. this._height = _height;
  88711. this._originTop = BABYLON.Vector3.Zero(); // the most upper part of the cylinder
  88712. this._centripetalForceThreshold = 0.7; // at which distance, relative to the radius the centripetal forces should kick in
  88713. this._updraftMultiplier = 0.02;
  88714. this._cylinderPosition = BABYLON.Vector3.Zero(); // to keep the cylinders position, because normally the origin is in the center and not on the bottom
  88715. this._dataFetched = false; // check if the has been fetched the data. If not, do cleanup
  88716. this._physicsEngine = this._scene.getPhysicsEngine();
  88717. this._origin.addToRef(new BABYLON.Vector3(0, this._height / 2, 0), this._cylinderPosition);
  88718. this._origin.addToRef(new BABYLON.Vector3(0, this._height, 0), this._originTop);
  88719. this._tickCallback = this._tick.bind(this);
  88720. }
  88721. /**
  88722. * Returns the data related to the vortex event (cylinder).
  88723. * @returns {PhysicsVortexEventData}
  88724. */
  88725. PhysicsVortexEvent.prototype.getData = function () {
  88726. this._dataFetched = true;
  88727. return {
  88728. cylinder: this._cylinder,
  88729. };
  88730. };
  88731. /**
  88732. * Enables the vortex.
  88733. */
  88734. PhysicsVortexEvent.prototype.enable = function () {
  88735. this._tickCallback.call(this);
  88736. this._scene.registerBeforeRender(this._tickCallback);
  88737. };
  88738. /**
  88739. * Disables the cortex.
  88740. */
  88741. PhysicsVortexEvent.prototype.disable = function () {
  88742. this._scene.unregisterBeforeRender(this._tickCallback);
  88743. };
  88744. /**
  88745. * Disposes the sphere.
  88746. * @param {bolean} force
  88747. */
  88748. PhysicsVortexEvent.prototype.dispose = function (force) {
  88749. var _this = this;
  88750. if (force === void 0) { force = true; }
  88751. if (force) {
  88752. this._cylinder.dispose();
  88753. }
  88754. else {
  88755. setTimeout(function () {
  88756. if (!_this._dataFetched) {
  88757. _this._cylinder.dispose();
  88758. }
  88759. }, 0);
  88760. }
  88761. };
  88762. PhysicsVortexEvent.prototype.getImpostorForceAndContactPoint = function (impostor) {
  88763. if (impostor.mass === 0) {
  88764. return null;
  88765. }
  88766. if (!this._intersectsWithCylinder(impostor)) {
  88767. return null;
  88768. }
  88769. if (impostor.object.getClassName() !== 'Mesh' && impostor.object.getClassName() !== 'InstancedMesh') {
  88770. return null;
  88771. }
  88772. var impostorObjectCenter = impostor.getObjectCenter();
  88773. var originOnPlane = new BABYLON.Vector3(this._origin.x, impostorObjectCenter.y, this._origin.z); // the distance to the origin as if both objects were on a plane (Y-axis)
  88774. var originToImpostorDirection = impostorObjectCenter.subtract(originOnPlane);
  88775. var ray = new BABYLON.Ray(originOnPlane, originToImpostorDirection, this._radius);
  88776. var hit = ray.intersectsMesh(impostor.object);
  88777. var contactPoint = hit.pickedPoint;
  88778. if (!contactPoint) {
  88779. return null;
  88780. }
  88781. var absoluteDistanceFromOrigin = hit.distance / this._radius;
  88782. var perpendicularDirection = BABYLON.Vector3.Cross(originOnPlane, impostorObjectCenter).normalize();
  88783. var directionToOrigin = contactPoint.normalize();
  88784. if (absoluteDistanceFromOrigin > this._centripetalForceThreshold) {
  88785. directionToOrigin = directionToOrigin.negate();
  88786. }
  88787. // TODO: find a more physically based solution
  88788. if (absoluteDistanceFromOrigin > this._centripetalForceThreshold) {
  88789. var forceX = directionToOrigin.x * this._strength / 8;
  88790. var forceY = directionToOrigin.y * this._updraftMultiplier;
  88791. var forceZ = directionToOrigin.z * this._strength / 8;
  88792. }
  88793. else {
  88794. var forceX = (perpendicularDirection.x + directionToOrigin.x) / 2;
  88795. var forceY = this._originTop.y * this._updraftMultiplier;
  88796. var forceZ = (perpendicularDirection.z + directionToOrigin.z) / 2;
  88797. }
  88798. var force = new BABYLON.Vector3(forceX, forceY, forceZ);
  88799. force = force.multiplyByFloats(this._strength, this._strength, this._strength);
  88800. return { force: force, contactPoint: impostorObjectCenter };
  88801. };
  88802. PhysicsVortexEvent.prototype._tick = function () {
  88803. var _this = this;
  88804. this._physicsEngine.getImpostors().forEach(function (impostor) {
  88805. var impostorForceAndContactPoint = _this.getImpostorForceAndContactPoint(impostor);
  88806. if (!impostorForceAndContactPoint) {
  88807. return;
  88808. }
  88809. impostor.applyForce(impostorForceAndContactPoint.force, impostorForceAndContactPoint.contactPoint);
  88810. });
  88811. };
  88812. /*** Helpers ***/
  88813. PhysicsVortexEvent.prototype._prepareCylinder = function () {
  88814. if (!this._cylinder) {
  88815. this._cylinder = BABYLON.MeshBuilder.CreateCylinder("vortexEventCylinder", {
  88816. height: this._height,
  88817. diameter: this._radius * 2,
  88818. }, this._scene);
  88819. this._cylinder.isVisible = false;
  88820. }
  88821. };
  88822. PhysicsVortexEvent.prototype._intersectsWithCylinder = function (impostor) {
  88823. var impostorObject = impostor.object;
  88824. this._prepareCylinder();
  88825. this._cylinder.position = this._cylinderPosition;
  88826. return this._cylinder.intersectsMesh(impostorObject, true);
  88827. };
  88828. return PhysicsVortexEvent;
  88829. }());
  88830. BABYLON.PhysicsVortexEvent = PhysicsVortexEvent;
  88831. /***** Enums *****/
  88832. /**
  88833. * The strenght of the force in correspondence to the distance of the affected object
  88834. */
  88835. var PhysicsRadialImpulseFalloff;
  88836. (function (PhysicsRadialImpulseFalloff) {
  88837. /** Defines that impulse is constant in strength across it's whole radius */
  88838. PhysicsRadialImpulseFalloff[PhysicsRadialImpulseFalloff["Constant"] = 0] = "Constant";
  88839. /** DEfines that impulse gets weaker if it's further from the origin */
  88840. PhysicsRadialImpulseFalloff[PhysicsRadialImpulseFalloff["Linear"] = 1] = "Linear";
  88841. })(PhysicsRadialImpulseFalloff = BABYLON.PhysicsRadialImpulseFalloff || (BABYLON.PhysicsRadialImpulseFalloff = {}));
  88842. /**
  88843. * The strenght of the force in correspondence to the distance of the affected object
  88844. */
  88845. var PhysicsUpdraftMode;
  88846. (function (PhysicsUpdraftMode) {
  88847. /** Defines that the upstream forces will pull towards the top center of the cylinder */
  88848. PhysicsUpdraftMode[PhysicsUpdraftMode["Center"] = 0] = "Center";
  88849. /** Defines that once a impostor is inside the cylinder, it will shoot out perpendicular from the ground of the cylinder */
  88850. PhysicsUpdraftMode[PhysicsUpdraftMode["Perpendicular"] = 1] = "Perpendicular";
  88851. })(PhysicsUpdraftMode = BABYLON.PhysicsUpdraftMode || (BABYLON.PhysicsUpdraftMode = {}));
  88852. })(BABYLON || (BABYLON = {}));
  88853. //# sourceMappingURL=babylon.physicsHelper.js.map
  88854. var BABYLON;
  88855. (function (BABYLON) {
  88856. var CannonJSPlugin = /** @class */ (function () {
  88857. function CannonJSPlugin(_useDeltaForWorldStep, iterations) {
  88858. if (_useDeltaForWorldStep === void 0) { _useDeltaForWorldStep = true; }
  88859. if (iterations === void 0) { iterations = 10; }
  88860. this._useDeltaForWorldStep = _useDeltaForWorldStep;
  88861. this.name = "CannonJSPlugin";
  88862. this._physicsMaterials = new Array();
  88863. this._fixedTimeStep = 1 / 60;
  88864. //See https://github.com/schteppe/CANNON.js/blob/gh-pages/demos/collisionFilter.html
  88865. this.BJSCANNON = CANNON;
  88866. this._minus90X = new BABYLON.Quaternion(-0.7071067811865475, 0, 0, 0.7071067811865475);
  88867. this._plus90X = new BABYLON.Quaternion(0.7071067811865475, 0, 0, 0.7071067811865475);
  88868. this._tmpPosition = BABYLON.Vector3.Zero();
  88869. this._tmpDeltaPosition = BABYLON.Vector3.Zero();
  88870. this._tmpUnityRotation = new BABYLON.Quaternion();
  88871. if (!this.isSupported()) {
  88872. BABYLON.Tools.Error("CannonJS is not available. Please make sure you included the js file.");
  88873. return;
  88874. }
  88875. this._extendNamespace();
  88876. this.world = new this.BJSCANNON.World();
  88877. this.world.broadphase = new this.BJSCANNON.NaiveBroadphase();
  88878. this.world.solver.iterations = iterations;
  88879. }
  88880. CannonJSPlugin.prototype.setGravity = function (gravity) {
  88881. this.world.gravity.copy(gravity);
  88882. };
  88883. CannonJSPlugin.prototype.setTimeStep = function (timeStep) {
  88884. this._fixedTimeStep = timeStep;
  88885. };
  88886. CannonJSPlugin.prototype.getTimeStep = function () {
  88887. return this._fixedTimeStep;
  88888. };
  88889. CannonJSPlugin.prototype.executeStep = function (delta, impostors) {
  88890. this.world.step(this._fixedTimeStep, this._useDeltaForWorldStep ? delta : 0, 3);
  88891. };
  88892. CannonJSPlugin.prototype.applyImpulse = function (impostor, force, contactPoint) {
  88893. var worldPoint = new this.BJSCANNON.Vec3(contactPoint.x, contactPoint.y, contactPoint.z);
  88894. var impulse = new this.BJSCANNON.Vec3(force.x, force.y, force.z);
  88895. impostor.physicsBody.applyImpulse(impulse, worldPoint);
  88896. };
  88897. CannonJSPlugin.prototype.applyForce = function (impostor, force, contactPoint) {
  88898. var worldPoint = new this.BJSCANNON.Vec3(contactPoint.x, contactPoint.y, contactPoint.z);
  88899. var impulse = new this.BJSCANNON.Vec3(force.x, force.y, force.z);
  88900. impostor.physicsBody.applyForce(impulse, worldPoint);
  88901. };
  88902. CannonJSPlugin.prototype.generatePhysicsBody = function (impostor) {
  88903. //parent-child relationship. Does this impostor has a parent impostor?
  88904. if (impostor.parent) {
  88905. if (impostor.physicsBody) {
  88906. this.removePhysicsBody(impostor);
  88907. //TODO is that needed?
  88908. impostor.forceUpdate();
  88909. }
  88910. return;
  88911. }
  88912. //should a new body be created for this impostor?
  88913. if (impostor.isBodyInitRequired()) {
  88914. var shape = this._createShape(impostor);
  88915. //unregister events, if body is being changed
  88916. var oldBody = impostor.physicsBody;
  88917. if (oldBody) {
  88918. this.removePhysicsBody(impostor);
  88919. }
  88920. //create the body and material
  88921. var material = this._addMaterial("mat-" + impostor.uniqueId, impostor.getParam("friction"), impostor.getParam("restitution"));
  88922. var bodyCreationObject = {
  88923. mass: impostor.getParam("mass"),
  88924. material: material
  88925. };
  88926. // A simple extend, in case native options were used.
  88927. var nativeOptions = impostor.getParam("nativeOptions");
  88928. for (var key in nativeOptions) {
  88929. if (nativeOptions.hasOwnProperty(key)) {
  88930. bodyCreationObject[key] = nativeOptions[key];
  88931. }
  88932. }
  88933. impostor.physicsBody = new this.BJSCANNON.Body(bodyCreationObject);
  88934. impostor.physicsBody.addEventListener("collide", impostor.onCollide);
  88935. this.world.addEventListener("preStep", impostor.beforeStep);
  88936. this.world.addEventListener("postStep", impostor.afterStep);
  88937. impostor.physicsBody.addShape(shape);
  88938. this.world.add(impostor.physicsBody);
  88939. //try to keep the body moving in the right direction by taking old properties.
  88940. //Should be tested!
  88941. if (oldBody) {
  88942. ['force', 'torque', 'velocity', 'angularVelocity'].forEach(function (param) {
  88943. impostor.physicsBody[param].copy(oldBody[param]);
  88944. });
  88945. }
  88946. this._processChildMeshes(impostor);
  88947. }
  88948. //now update the body's transformation
  88949. this._updatePhysicsBodyTransformation(impostor);
  88950. };
  88951. CannonJSPlugin.prototype._processChildMeshes = function (mainImpostor) {
  88952. var _this = this;
  88953. var meshChildren = mainImpostor.object.getChildMeshes ? mainImpostor.object.getChildMeshes(true) : [];
  88954. var currentRotation = mainImpostor.object.rotationQuaternion;
  88955. if (meshChildren.length) {
  88956. var processMesh = function (localPosition, mesh) {
  88957. if (!currentRotation || !mesh.rotationQuaternion) {
  88958. return;
  88959. }
  88960. var childImpostor = mesh.getPhysicsImpostor();
  88961. if (childImpostor) {
  88962. var parent = childImpostor.parent;
  88963. if (parent !== mainImpostor) {
  88964. var pPosition = mesh.getAbsolutePosition().subtract(mainImpostor.object.getAbsolutePosition());
  88965. var localRotation = mesh.rotationQuaternion.multiply(BABYLON.Quaternion.Inverse(currentRotation));
  88966. if (childImpostor.physicsBody) {
  88967. _this.removePhysicsBody(childImpostor);
  88968. childImpostor.physicsBody = null;
  88969. }
  88970. childImpostor.parent = mainImpostor;
  88971. childImpostor.resetUpdateFlags();
  88972. mainImpostor.physicsBody.addShape(_this._createShape(childImpostor), new _this.BJSCANNON.Vec3(pPosition.x, pPosition.y, pPosition.z), new _this.BJSCANNON.Quaternion(localRotation.x, localRotation.y, localRotation.z, localRotation.w));
  88973. //Add the mass of the children.
  88974. mainImpostor.physicsBody.mass += childImpostor.getParam("mass");
  88975. }
  88976. }
  88977. currentRotation.multiplyInPlace(mesh.rotationQuaternion);
  88978. mesh.getChildMeshes(true).filter(function (m) { return !!m.physicsImpostor; }).forEach(processMesh.bind(_this, mesh.getAbsolutePosition()));
  88979. };
  88980. meshChildren.filter(function (m) { return !!m.physicsImpostor; }).forEach(processMesh.bind(this, mainImpostor.object.getAbsolutePosition()));
  88981. }
  88982. };
  88983. CannonJSPlugin.prototype.removePhysicsBody = function (impostor) {
  88984. impostor.physicsBody.removeEventListener("collide", impostor.onCollide);
  88985. this.world.removeEventListener("preStep", impostor.beforeStep);
  88986. this.world.removeEventListener("postStep", impostor.afterStep);
  88987. this.world.remove(impostor.physicsBody);
  88988. };
  88989. CannonJSPlugin.prototype.generateJoint = function (impostorJoint) {
  88990. var mainBody = impostorJoint.mainImpostor.physicsBody;
  88991. var connectedBody = impostorJoint.connectedImpostor.physicsBody;
  88992. if (!mainBody || !connectedBody) {
  88993. return;
  88994. }
  88995. var constraint;
  88996. var jointData = impostorJoint.joint.jointData;
  88997. //TODO - https://github.com/schteppe/this.BJSCANNON.js/blob/gh-pages/demos/collisionFilter.html
  88998. var constraintData = {
  88999. pivotA: jointData.mainPivot ? new this.BJSCANNON.Vec3().copy(jointData.mainPivot) : null,
  89000. pivotB: jointData.connectedPivot ? new this.BJSCANNON.Vec3().copy(jointData.connectedPivot) : null,
  89001. axisA: jointData.mainAxis ? new this.BJSCANNON.Vec3().copy(jointData.mainAxis) : null,
  89002. axisB: jointData.connectedAxis ? new this.BJSCANNON.Vec3().copy(jointData.connectedAxis) : null,
  89003. maxForce: jointData.nativeParams.maxForce,
  89004. collideConnected: !!jointData.collision
  89005. };
  89006. switch (impostorJoint.joint.type) {
  89007. case BABYLON.PhysicsJoint.HingeJoint:
  89008. case BABYLON.PhysicsJoint.Hinge2Joint:
  89009. constraint = new this.BJSCANNON.HingeConstraint(mainBody, connectedBody, constraintData);
  89010. break;
  89011. case BABYLON.PhysicsJoint.DistanceJoint:
  89012. constraint = new this.BJSCANNON.DistanceConstraint(mainBody, connectedBody, jointData.maxDistance || 2);
  89013. break;
  89014. case BABYLON.PhysicsJoint.SpringJoint:
  89015. var springData = jointData;
  89016. constraint = new this.BJSCANNON.Spring(mainBody, connectedBody, {
  89017. restLength: springData.length,
  89018. stiffness: springData.stiffness,
  89019. damping: springData.damping,
  89020. localAnchorA: constraintData.pivotA,
  89021. localAnchorB: constraintData.pivotB
  89022. });
  89023. break;
  89024. case BABYLON.PhysicsJoint.LockJoint:
  89025. constraint = new this.BJSCANNON.LockConstraint(mainBody, connectedBody, constraintData);
  89026. break;
  89027. case BABYLON.PhysicsJoint.PointToPointJoint:
  89028. case BABYLON.PhysicsJoint.BallAndSocketJoint:
  89029. default:
  89030. constraint = new this.BJSCANNON.PointToPointConstraint(mainBody, constraintData.pivotA, connectedBody, constraintData.pivotA, constraintData.maxForce);
  89031. break;
  89032. }
  89033. //set the collideConnected flag after the creation, since DistanceJoint ignores it.
  89034. constraint.collideConnected = !!jointData.collision;
  89035. impostorJoint.joint.physicsJoint = constraint;
  89036. //don't add spring as constraint, as it is not one.
  89037. if (impostorJoint.joint.type !== BABYLON.PhysicsJoint.SpringJoint) {
  89038. this.world.addConstraint(constraint);
  89039. }
  89040. else {
  89041. impostorJoint.joint.jointData.forceApplicationCallback = impostorJoint.joint.jointData.forceApplicationCallback || function () {
  89042. constraint.applyForce();
  89043. };
  89044. impostorJoint.mainImpostor.registerAfterPhysicsStep(impostorJoint.joint.jointData.forceApplicationCallback);
  89045. }
  89046. };
  89047. CannonJSPlugin.prototype.removeJoint = function (impostorJoint) {
  89048. if (impostorJoint.joint.type !== BABYLON.PhysicsJoint.SpringJoint) {
  89049. this.world.removeConstraint(impostorJoint.joint.physicsJoint);
  89050. }
  89051. else {
  89052. impostorJoint.mainImpostor.unregisterAfterPhysicsStep(impostorJoint.joint.jointData.forceApplicationCallback);
  89053. }
  89054. };
  89055. CannonJSPlugin.prototype._addMaterial = function (name, friction, restitution) {
  89056. var index;
  89057. var mat;
  89058. for (index = 0; index < this._physicsMaterials.length; index++) {
  89059. mat = this._physicsMaterials[index];
  89060. if (mat.friction === friction && mat.restitution === restitution) {
  89061. return mat;
  89062. }
  89063. }
  89064. var currentMat = new this.BJSCANNON.Material(name);
  89065. currentMat.friction = friction;
  89066. currentMat.restitution = restitution;
  89067. this._physicsMaterials.push(currentMat);
  89068. return currentMat;
  89069. };
  89070. CannonJSPlugin.prototype._checkWithEpsilon = function (value) {
  89071. return value < BABYLON.PhysicsEngine.Epsilon ? BABYLON.PhysicsEngine.Epsilon : value;
  89072. };
  89073. CannonJSPlugin.prototype._createShape = function (impostor) {
  89074. var object = impostor.object;
  89075. var returnValue;
  89076. var extendSize = impostor.getObjectExtendSize();
  89077. switch (impostor.type) {
  89078. case BABYLON.PhysicsImpostor.SphereImpostor:
  89079. var radiusX = extendSize.x;
  89080. var radiusY = extendSize.y;
  89081. var radiusZ = extendSize.z;
  89082. returnValue = new this.BJSCANNON.Sphere(Math.max(this._checkWithEpsilon(radiusX), this._checkWithEpsilon(radiusY), this._checkWithEpsilon(radiusZ)) / 2);
  89083. break;
  89084. //TMP also for cylinder - TODO Cannon supports cylinder natively.
  89085. case BABYLON.PhysicsImpostor.CylinderImpostor:
  89086. returnValue = new this.BJSCANNON.Cylinder(this._checkWithEpsilon(extendSize.x) / 2, this._checkWithEpsilon(extendSize.x) / 2, this._checkWithEpsilon(extendSize.y), 16);
  89087. break;
  89088. case BABYLON.PhysicsImpostor.BoxImpostor:
  89089. var box = extendSize.scale(0.5);
  89090. returnValue = new this.BJSCANNON.Box(new this.BJSCANNON.Vec3(this._checkWithEpsilon(box.x), this._checkWithEpsilon(box.y), this._checkWithEpsilon(box.z)));
  89091. break;
  89092. case BABYLON.PhysicsImpostor.PlaneImpostor:
  89093. BABYLON.Tools.Warn("Attention, PlaneImposter might not behave as you expect. Consider using BoxImposter instead");
  89094. returnValue = new this.BJSCANNON.Plane();
  89095. break;
  89096. case BABYLON.PhysicsImpostor.MeshImpostor:
  89097. // should transform the vertex data to world coordinates!!
  89098. var rawVerts = object.getVerticesData ? object.getVerticesData(BABYLON.VertexBuffer.PositionKind) : [];
  89099. var rawFaces = object.getIndices ? object.getIndices() : [];
  89100. if (!rawVerts)
  89101. return;
  89102. // get only scale! so the object could transform correctly.
  89103. var oldPosition = object.position.clone();
  89104. var oldRotation = object.rotation && object.rotation.clone();
  89105. var oldQuaternion = object.rotationQuaternion && object.rotationQuaternion.clone();
  89106. object.position.copyFromFloats(0, 0, 0);
  89107. object.rotation && object.rotation.copyFromFloats(0, 0, 0);
  89108. object.rotationQuaternion && object.rotationQuaternion.copyFrom(impostor.getParentsRotation());
  89109. object.rotationQuaternion && object.parent && object.rotationQuaternion.conjugateInPlace();
  89110. var transform = object.computeWorldMatrix(true);
  89111. // convert rawVerts to object space
  89112. var temp = new Array();
  89113. var index;
  89114. for (index = 0; index < rawVerts.length; index += 3) {
  89115. BABYLON.Vector3.TransformCoordinates(BABYLON.Vector3.FromArray(rawVerts, index), transform).toArray(temp, index);
  89116. }
  89117. BABYLON.Tools.Warn("MeshImpostor only collides against spheres.");
  89118. returnValue = new this.BJSCANNON.Trimesh(temp, rawFaces);
  89119. //now set back the transformation!
  89120. object.position.copyFrom(oldPosition);
  89121. oldRotation && object.rotation && object.rotation.copyFrom(oldRotation);
  89122. oldQuaternion && object.rotationQuaternion && object.rotationQuaternion.copyFrom(oldQuaternion);
  89123. break;
  89124. case BABYLON.PhysicsImpostor.HeightmapImpostor:
  89125. var oldPosition2 = object.position.clone();
  89126. var oldRotation2 = object.rotation && object.rotation.clone();
  89127. var oldQuaternion2 = object.rotationQuaternion && object.rotationQuaternion.clone();
  89128. object.position.copyFromFloats(0, 0, 0);
  89129. object.rotation && object.rotation.copyFromFloats(0, 0, 0);
  89130. object.rotationQuaternion && object.rotationQuaternion.copyFrom(impostor.getParentsRotation());
  89131. object.rotationQuaternion && object.parent && object.rotationQuaternion.conjugateInPlace();
  89132. object.rotationQuaternion && object.rotationQuaternion.multiplyInPlace(this._minus90X);
  89133. returnValue = this._createHeightmap(object);
  89134. object.position.copyFrom(oldPosition2);
  89135. oldRotation2 && object.rotation && object.rotation.copyFrom(oldRotation2);
  89136. oldQuaternion2 && object.rotationQuaternion && object.rotationQuaternion.copyFrom(oldQuaternion2);
  89137. object.computeWorldMatrix(true);
  89138. break;
  89139. case BABYLON.PhysicsImpostor.ParticleImpostor:
  89140. returnValue = new this.BJSCANNON.Particle();
  89141. break;
  89142. }
  89143. return returnValue;
  89144. };
  89145. CannonJSPlugin.prototype._createHeightmap = function (object, pointDepth) {
  89146. var pos = (object.getVerticesData(BABYLON.VertexBuffer.PositionKind));
  89147. var transform = object.computeWorldMatrix(true);
  89148. // convert rawVerts to object space
  89149. var temp = new Array();
  89150. var index;
  89151. for (index = 0; index < pos.length; index += 3) {
  89152. BABYLON.Vector3.TransformCoordinates(BABYLON.Vector3.FromArray(pos, index), transform).toArray(temp, index);
  89153. }
  89154. pos = temp;
  89155. var matrix = new Array();
  89156. //For now pointDepth will not be used and will be automatically calculated.
  89157. //Future reference - try and find the best place to add a reference to the pointDepth variable.
  89158. var arraySize = pointDepth || ~~(Math.sqrt(pos.length / 3) - 1);
  89159. var boundingInfo = object.getBoundingInfo();
  89160. var dim = Math.min(boundingInfo.boundingBox.extendSizeWorld.x, boundingInfo.boundingBox.extendSizeWorld.y);
  89161. var minY = boundingInfo.boundingBox.extendSizeWorld.z;
  89162. var elementSize = dim * 2 / arraySize;
  89163. for (var i = 0; i < pos.length; i = i + 3) {
  89164. var x = Math.round((pos[i + 0]) / elementSize + arraySize / 2);
  89165. var z = Math.round(((pos[i + 1]) / elementSize - arraySize / 2) * -1);
  89166. var y = -pos[i + 2] + minY;
  89167. if (!matrix[x]) {
  89168. matrix[x] = [];
  89169. }
  89170. if (!matrix[x][z]) {
  89171. matrix[x][z] = y;
  89172. }
  89173. matrix[x][z] = Math.max(y, matrix[x][z]);
  89174. }
  89175. for (var x = 0; x <= arraySize; ++x) {
  89176. if (!matrix[x]) {
  89177. var loc = 1;
  89178. while (!matrix[(x + loc) % arraySize]) {
  89179. loc++;
  89180. }
  89181. matrix[x] = matrix[(x + loc) % arraySize].slice();
  89182. //console.log("missing x", x);
  89183. }
  89184. for (var z = 0; z <= arraySize; ++z) {
  89185. if (!matrix[x][z]) {
  89186. var loc = 1;
  89187. var newValue;
  89188. while (newValue === undefined) {
  89189. newValue = matrix[x][(z + loc++) % arraySize];
  89190. }
  89191. matrix[x][z] = newValue;
  89192. }
  89193. }
  89194. }
  89195. var shape = new this.BJSCANNON.Heightfield(matrix, {
  89196. elementSize: elementSize
  89197. });
  89198. //For future reference, needed for body transformation
  89199. shape.minY = minY;
  89200. return shape;
  89201. };
  89202. CannonJSPlugin.prototype._updatePhysicsBodyTransformation = function (impostor) {
  89203. var object = impostor.object;
  89204. //make sure it is updated...
  89205. object.computeWorldMatrix && object.computeWorldMatrix(true);
  89206. // The delta between the mesh position and the mesh bounding box center
  89207. var bInfo = object.getBoundingInfo();
  89208. if (!bInfo)
  89209. return;
  89210. var center = impostor.getObjectCenter();
  89211. //m.getAbsolutePosition().subtract(m.getBoundingInfo().boundingBox.centerWorld)
  89212. this._tmpDeltaPosition.copyFrom(object.getAbsolutePivotPoint().subtract(center));
  89213. this._tmpDeltaPosition.divideInPlace(impostor.object.scaling);
  89214. this._tmpPosition.copyFrom(center);
  89215. var quaternion = object.rotationQuaternion;
  89216. if (!quaternion) {
  89217. return;
  89218. }
  89219. //is shape is a plane or a heightmap, it must be rotated 90 degs in the X axis.
  89220. if (impostor.type === BABYLON.PhysicsImpostor.PlaneImpostor || impostor.type === BABYLON.PhysicsImpostor.HeightmapImpostor || impostor.type === BABYLON.PhysicsImpostor.CylinderImpostor) {
  89221. //-90 DEG in X, precalculated
  89222. quaternion = quaternion.multiply(this._minus90X);
  89223. //Invert! (Precalculated, 90 deg in X)
  89224. //No need to clone. this will never change.
  89225. impostor.setDeltaRotation(this._plus90X);
  89226. }
  89227. //If it is a heightfield, if should be centered.
  89228. if (impostor.type === BABYLON.PhysicsImpostor.HeightmapImpostor) {
  89229. var mesh = object;
  89230. var boundingInfo = mesh.getBoundingInfo();
  89231. //calculate the correct body position:
  89232. var rotationQuaternion = mesh.rotationQuaternion;
  89233. mesh.rotationQuaternion = this._tmpUnityRotation;
  89234. mesh.computeWorldMatrix(true);
  89235. //get original center with no rotation
  89236. var c = center.clone();
  89237. var oldPivot = mesh.getPivotMatrix() || BABYLON.Matrix.Translation(0, 0, 0);
  89238. //calculate the new center using a pivot (since this.BJSCANNON.js doesn't center height maps)
  89239. var p = BABYLON.Matrix.Translation(boundingInfo.boundingBox.extendSizeWorld.x, 0, -boundingInfo.boundingBox.extendSizeWorld.z);
  89240. mesh.setPreTransformMatrix(p);
  89241. mesh.computeWorldMatrix(true);
  89242. //calculate the translation
  89243. var translation = boundingInfo.boundingBox.centerWorld.subtract(center).subtract(mesh.position).negate();
  89244. this._tmpPosition.copyFromFloats(translation.x, translation.y - boundingInfo.boundingBox.extendSizeWorld.y, translation.z);
  89245. //add it inverted to the delta
  89246. this._tmpDeltaPosition.copyFrom(boundingInfo.boundingBox.centerWorld.subtract(c));
  89247. this._tmpDeltaPosition.y += boundingInfo.boundingBox.extendSizeWorld.y;
  89248. //rotation is back
  89249. mesh.rotationQuaternion = rotationQuaternion;
  89250. mesh.setPreTransformMatrix(oldPivot);
  89251. mesh.computeWorldMatrix(true);
  89252. }
  89253. else if (impostor.type === BABYLON.PhysicsImpostor.MeshImpostor) {
  89254. this._tmpDeltaPosition.copyFromFloats(0, 0, 0);
  89255. //this._tmpPosition.copyFrom(object.position);
  89256. }
  89257. impostor.setDeltaPosition(this._tmpDeltaPosition);
  89258. //Now update the impostor object
  89259. impostor.physicsBody.position.copy(this._tmpPosition);
  89260. impostor.physicsBody.quaternion.copy(quaternion);
  89261. };
  89262. CannonJSPlugin.prototype.setTransformationFromPhysicsBody = function (impostor) {
  89263. impostor.object.position.copyFrom(impostor.physicsBody.position);
  89264. if (impostor.object.rotationQuaternion) {
  89265. impostor.object.rotationQuaternion.copyFrom(impostor.physicsBody.quaternion);
  89266. }
  89267. };
  89268. CannonJSPlugin.prototype.setPhysicsBodyTransformation = function (impostor, newPosition, newRotation) {
  89269. impostor.physicsBody.position.copy(newPosition);
  89270. impostor.physicsBody.quaternion.copy(newRotation);
  89271. };
  89272. CannonJSPlugin.prototype.isSupported = function () {
  89273. return this.BJSCANNON !== undefined;
  89274. };
  89275. CannonJSPlugin.prototype.setLinearVelocity = function (impostor, velocity) {
  89276. impostor.physicsBody.velocity.copy(velocity);
  89277. };
  89278. CannonJSPlugin.prototype.setAngularVelocity = function (impostor, velocity) {
  89279. impostor.physicsBody.angularVelocity.copy(velocity);
  89280. };
  89281. CannonJSPlugin.prototype.getLinearVelocity = function (impostor) {
  89282. var v = impostor.physicsBody.velocity;
  89283. if (!v) {
  89284. return null;
  89285. }
  89286. return new BABYLON.Vector3(v.x, v.y, v.z);
  89287. };
  89288. CannonJSPlugin.prototype.getAngularVelocity = function (impostor) {
  89289. var v = impostor.physicsBody.angularVelocity;
  89290. if (!v) {
  89291. return null;
  89292. }
  89293. return new BABYLON.Vector3(v.x, v.y, v.z);
  89294. };
  89295. CannonJSPlugin.prototype.setBodyMass = function (impostor, mass) {
  89296. impostor.physicsBody.mass = mass;
  89297. impostor.physicsBody.updateMassProperties();
  89298. };
  89299. CannonJSPlugin.prototype.getBodyMass = function (impostor) {
  89300. return impostor.physicsBody.mass;
  89301. };
  89302. CannonJSPlugin.prototype.getBodyFriction = function (impostor) {
  89303. return impostor.physicsBody.material.friction;
  89304. };
  89305. CannonJSPlugin.prototype.setBodyFriction = function (impostor, friction) {
  89306. impostor.physicsBody.material.friction = friction;
  89307. };
  89308. CannonJSPlugin.prototype.getBodyRestitution = function (impostor) {
  89309. return impostor.physicsBody.material.restitution;
  89310. };
  89311. CannonJSPlugin.prototype.setBodyRestitution = function (impostor, restitution) {
  89312. impostor.physicsBody.material.restitution = restitution;
  89313. };
  89314. CannonJSPlugin.prototype.sleepBody = function (impostor) {
  89315. impostor.physicsBody.sleep();
  89316. };
  89317. CannonJSPlugin.prototype.wakeUpBody = function (impostor) {
  89318. impostor.physicsBody.wakeUp();
  89319. };
  89320. CannonJSPlugin.prototype.updateDistanceJoint = function (joint, maxDistance, minDistance) {
  89321. joint.physicsJoint.distance = maxDistance;
  89322. };
  89323. // private enableMotor(joint: IMotorEnabledJoint, motorIndex?: number) {
  89324. // if (!motorIndex) {
  89325. // joint.physicsJoint.enableMotor();
  89326. // }
  89327. // }
  89328. // private disableMotor(joint: IMotorEnabledJoint, motorIndex?: number) {
  89329. // if (!motorIndex) {
  89330. // joint.physicsJoint.disableMotor();
  89331. // }
  89332. // }
  89333. CannonJSPlugin.prototype.setMotor = function (joint, speed, maxForce, motorIndex) {
  89334. if (!motorIndex) {
  89335. joint.physicsJoint.enableMotor();
  89336. joint.physicsJoint.setMotorSpeed(speed);
  89337. if (maxForce) {
  89338. this.setLimit(joint, maxForce);
  89339. }
  89340. }
  89341. };
  89342. CannonJSPlugin.prototype.setLimit = function (joint, upperLimit, lowerLimit) {
  89343. joint.physicsJoint.motorEquation.maxForce = upperLimit;
  89344. joint.physicsJoint.motorEquation.minForce = lowerLimit === void 0 ? -upperLimit : lowerLimit;
  89345. };
  89346. CannonJSPlugin.prototype.syncMeshWithImpostor = function (mesh, impostor) {
  89347. var body = impostor.physicsBody;
  89348. mesh.position.x = body.position.x;
  89349. mesh.position.y = body.position.y;
  89350. mesh.position.z = body.position.z;
  89351. if (mesh.rotationQuaternion) {
  89352. mesh.rotationQuaternion.x = body.quaternion.x;
  89353. mesh.rotationQuaternion.y = body.quaternion.y;
  89354. mesh.rotationQuaternion.z = body.quaternion.z;
  89355. mesh.rotationQuaternion.w = body.quaternion.w;
  89356. }
  89357. };
  89358. CannonJSPlugin.prototype.getRadius = function (impostor) {
  89359. var shape = impostor.physicsBody.shapes[0];
  89360. return shape.boundingSphereRadius;
  89361. };
  89362. CannonJSPlugin.prototype.getBoxSizeToRef = function (impostor, result) {
  89363. var shape = impostor.physicsBody.shapes[0];
  89364. result.x = shape.halfExtents.x * 2;
  89365. result.y = shape.halfExtents.y * 2;
  89366. result.z = shape.halfExtents.z * 2;
  89367. };
  89368. CannonJSPlugin.prototype.dispose = function () {
  89369. };
  89370. CannonJSPlugin.prototype._extendNamespace = function () {
  89371. //this will force cannon to execute at least one step when using interpolation
  89372. var step_tmp1 = new this.BJSCANNON.Vec3();
  89373. var Engine = this.BJSCANNON;
  89374. this.BJSCANNON.World.prototype.step = function (dt, timeSinceLastCalled, maxSubSteps) {
  89375. maxSubSteps = maxSubSteps || 10;
  89376. timeSinceLastCalled = timeSinceLastCalled || 0;
  89377. if (timeSinceLastCalled === 0) {
  89378. this.internalStep(dt);
  89379. this.time += dt;
  89380. }
  89381. else {
  89382. var internalSteps = Math.floor((this.time + timeSinceLastCalled) / dt) - Math.floor(this.time / dt);
  89383. internalSteps = Math.min(internalSteps, maxSubSteps) || 1;
  89384. var t0 = performance.now();
  89385. for (var i = 0; i !== internalSteps; i++) {
  89386. this.internalStep(dt);
  89387. if (performance.now() - t0 > dt * 1000) {
  89388. break;
  89389. }
  89390. }
  89391. this.time += timeSinceLastCalled;
  89392. var h = this.time % dt;
  89393. var h_div_dt = h / dt;
  89394. var interpvelo = step_tmp1;
  89395. var bodies = this.bodies;
  89396. for (var j = 0; j !== bodies.length; j++) {
  89397. var b = bodies[j];
  89398. if (b.type !== Engine.Body.STATIC && b.sleepState !== Engine.Body.SLEEPING) {
  89399. b.position.vsub(b.previousPosition, interpvelo);
  89400. interpvelo.scale(h_div_dt, interpvelo);
  89401. b.position.vadd(interpvelo, b.interpolatedPosition);
  89402. }
  89403. else {
  89404. b.interpolatedPosition.copy(b.position);
  89405. b.interpolatedQuaternion.copy(b.quaternion);
  89406. }
  89407. }
  89408. }
  89409. };
  89410. };
  89411. return CannonJSPlugin;
  89412. }());
  89413. BABYLON.CannonJSPlugin = CannonJSPlugin;
  89414. })(BABYLON || (BABYLON = {}));
  89415. //# sourceMappingURL=babylon.cannonJSPlugin.js.map
  89416. var BABYLON;
  89417. (function (BABYLON) {
  89418. var OimoJSPlugin = /** @class */ (function () {
  89419. function OimoJSPlugin(iterations) {
  89420. this.name = "OimoJSPlugin";
  89421. this._tmpImpostorsArray = [];
  89422. this._tmpPositionVector = BABYLON.Vector3.Zero();
  89423. this.BJSOIMO = OIMO;
  89424. this.world = new this.BJSOIMO.World({
  89425. iterations: iterations
  89426. });
  89427. this.world.clear();
  89428. }
  89429. OimoJSPlugin.prototype.setGravity = function (gravity) {
  89430. this.world.gravity.copy(gravity);
  89431. };
  89432. OimoJSPlugin.prototype.setTimeStep = function (timeStep) {
  89433. this.world.timeStep = timeStep;
  89434. };
  89435. OimoJSPlugin.prototype.getTimeStep = function () {
  89436. return this.world.timeStep;
  89437. };
  89438. OimoJSPlugin.prototype.executeStep = function (delta, impostors) {
  89439. var _this = this;
  89440. impostors.forEach(function (impostor) {
  89441. impostor.beforeStep();
  89442. });
  89443. this.world.step();
  89444. impostors.forEach(function (impostor) {
  89445. impostor.afterStep();
  89446. //update the ordered impostors array
  89447. _this._tmpImpostorsArray[impostor.uniqueId] = impostor;
  89448. });
  89449. //check for collisions
  89450. var contact = this.world.contacts;
  89451. while (contact !== null) {
  89452. if (contact.touching && !contact.body1.sleeping && !contact.body2.sleeping) {
  89453. contact = contact.next;
  89454. continue;
  89455. }
  89456. //is this body colliding with any other? get the impostor
  89457. var mainImpostor = this._tmpImpostorsArray[+contact.body1.name];
  89458. var collidingImpostor = this._tmpImpostorsArray[+contact.body2.name];
  89459. if (!mainImpostor || !collidingImpostor) {
  89460. contact = contact.next;
  89461. continue;
  89462. }
  89463. mainImpostor.onCollide({ body: collidingImpostor.physicsBody });
  89464. collidingImpostor.onCollide({ body: mainImpostor.physicsBody });
  89465. contact = contact.next;
  89466. }
  89467. };
  89468. OimoJSPlugin.prototype.applyImpulse = function (impostor, force, contactPoint) {
  89469. var mass = impostor.physicsBody.mass;
  89470. impostor.physicsBody.applyImpulse(contactPoint.scale(this.world.invScale), force.scale(this.world.invScale * mass));
  89471. };
  89472. OimoJSPlugin.prototype.applyForce = function (impostor, force, contactPoint) {
  89473. BABYLON.Tools.Warn("Oimo doesn't support applying force. Using impule instead.");
  89474. this.applyImpulse(impostor, force, contactPoint);
  89475. };
  89476. OimoJSPlugin.prototype.generatePhysicsBody = function (impostor) {
  89477. var _this = this;
  89478. //parent-child relationship. Does this impostor has a parent impostor?
  89479. if (impostor.parent) {
  89480. if (impostor.physicsBody) {
  89481. this.removePhysicsBody(impostor);
  89482. //TODO is that needed?
  89483. impostor.forceUpdate();
  89484. }
  89485. return;
  89486. }
  89487. if (impostor.isBodyInitRequired()) {
  89488. var bodyConfig = {
  89489. name: impostor.uniqueId,
  89490. //Oimo must have mass, also for static objects.
  89491. config: [impostor.getParam("mass") || 1, impostor.getParam("friction"), impostor.getParam("restitution")],
  89492. size: [],
  89493. type: [],
  89494. pos: [],
  89495. posShape: [],
  89496. rot: [],
  89497. rotShape: [],
  89498. move: impostor.getParam("mass") !== 0,
  89499. density: impostor.getParam("mass"),
  89500. friction: impostor.getParam("friction"),
  89501. restitution: impostor.getParam("restitution"),
  89502. //Supporting older versions of Oimo
  89503. world: this.world
  89504. };
  89505. var impostors = [impostor];
  89506. var addToArray = function (parent) {
  89507. if (!parent.getChildMeshes)
  89508. return;
  89509. parent.getChildMeshes().forEach(function (m) {
  89510. if (m.physicsImpostor) {
  89511. impostors.push(m.physicsImpostor);
  89512. //m.physicsImpostor._init();
  89513. }
  89514. });
  89515. };
  89516. addToArray(impostor.object);
  89517. var checkWithEpsilon_1 = function (value) {
  89518. return Math.max(value, BABYLON.PhysicsEngine.Epsilon);
  89519. };
  89520. var globalQuaternion_1 = new BABYLON.Quaternion();
  89521. impostors.forEach(function (i) {
  89522. if (!i.object.rotationQuaternion) {
  89523. return;
  89524. }
  89525. //get the correct bounding box
  89526. var oldQuaternion = i.object.rotationQuaternion;
  89527. globalQuaternion_1 = oldQuaternion.clone();
  89528. var rot = oldQuaternion.toEulerAngles();
  89529. var extendSize = i.getObjectExtendSize();
  89530. var radToDeg = 57.295779513082320876;
  89531. if (i === impostor) {
  89532. var center = impostor.getObjectCenter();
  89533. impostor.object.getAbsolutePivotPoint().subtractToRef(center, _this._tmpPositionVector);
  89534. _this._tmpPositionVector.divideInPlace(impostor.object.scaling);
  89535. //Can also use Array.prototype.push.apply
  89536. bodyConfig.pos.push(center.x);
  89537. bodyConfig.pos.push(center.y);
  89538. bodyConfig.pos.push(center.z);
  89539. bodyConfig.posShape.push(0, 0, 0);
  89540. //tmp solution
  89541. bodyConfig.rot.push(0);
  89542. bodyConfig.rot.push(0);
  89543. bodyConfig.rot.push(0);
  89544. bodyConfig.rotShape.push(0, 0, 0);
  89545. }
  89546. else {
  89547. var localPosition = i.object.getAbsolutePosition().subtract(impostor.object.getAbsolutePosition());
  89548. bodyConfig.posShape.push(localPosition.x);
  89549. bodyConfig.posShape.push(localPosition.y);
  89550. bodyConfig.posShape.push(localPosition.z);
  89551. bodyConfig.pos.push(0, 0, 0);
  89552. //tmp solution until https://github.com/lo-th/OIMO.js/pull/37 is merged
  89553. bodyConfig.rot.push(0);
  89554. bodyConfig.rot.push(0);
  89555. bodyConfig.rot.push(0);
  89556. bodyConfig.rotShape.push(rot.x * radToDeg);
  89557. bodyConfig.rotShape.push(rot.y * radToDeg);
  89558. bodyConfig.rotShape.push(rot.z * radToDeg);
  89559. }
  89560. // register mesh
  89561. switch (i.type) {
  89562. case BABYLON.PhysicsImpostor.ParticleImpostor:
  89563. BABYLON.Tools.Warn("No Particle support in OIMO.js. using SphereImpostor instead");
  89564. case BABYLON.PhysicsImpostor.SphereImpostor:
  89565. var radiusX = extendSize.x;
  89566. var radiusY = extendSize.y;
  89567. var radiusZ = extendSize.z;
  89568. var size = Math.max(checkWithEpsilon_1(radiusX), checkWithEpsilon_1(radiusY), checkWithEpsilon_1(radiusZ)) / 2;
  89569. bodyConfig.type.push('sphere');
  89570. //due to the way oimo works with compounds, add 3 times
  89571. bodyConfig.size.push(size);
  89572. bodyConfig.size.push(size);
  89573. bodyConfig.size.push(size);
  89574. break;
  89575. case BABYLON.PhysicsImpostor.CylinderImpostor:
  89576. var sizeX = checkWithEpsilon_1(extendSize.x) / 2;
  89577. var sizeY = checkWithEpsilon_1(extendSize.y);
  89578. bodyConfig.type.push('cylinder');
  89579. bodyConfig.size.push(sizeX);
  89580. bodyConfig.size.push(sizeY);
  89581. //due to the way oimo works with compounds, add one more value.
  89582. bodyConfig.size.push(sizeY);
  89583. break;
  89584. case BABYLON.PhysicsImpostor.PlaneImpostor:
  89585. case BABYLON.PhysicsImpostor.BoxImpostor:
  89586. default:
  89587. var sizeX = checkWithEpsilon_1(extendSize.x);
  89588. var sizeY = checkWithEpsilon_1(extendSize.y);
  89589. var sizeZ = checkWithEpsilon_1(extendSize.z);
  89590. bodyConfig.type.push('box');
  89591. //if (i === impostor) {
  89592. bodyConfig.size.push(sizeX);
  89593. bodyConfig.size.push(sizeY);
  89594. bodyConfig.size.push(sizeZ);
  89595. //} else {
  89596. // bodyConfig.size.push(0,0,0);
  89597. //}
  89598. break;
  89599. }
  89600. //actually not needed, but hey...
  89601. i.object.rotationQuaternion = oldQuaternion;
  89602. });
  89603. impostor.physicsBody = this.world.add(bodyConfig);
  89604. // set the quaternion, ignoring the previously defined (euler) rotation
  89605. impostor.physicsBody.resetQuaternion(globalQuaternion_1);
  89606. // update with delta 0, so the body will reveive the new rotation.
  89607. impostor.physicsBody.updatePosition(0);
  89608. }
  89609. else {
  89610. this._tmpPositionVector.copyFromFloats(0, 0, 0);
  89611. }
  89612. impostor.setDeltaPosition(this._tmpPositionVector);
  89613. //this._tmpPositionVector.addInPlace(impostor.mesh.getBoundingInfo().boundingBox.center);
  89614. //this.setPhysicsBodyTransformation(impostor, this._tmpPositionVector, impostor.mesh.rotationQuaternion);
  89615. };
  89616. OimoJSPlugin.prototype.removePhysicsBody = function (impostor) {
  89617. //impostor.physicsBody.dispose();
  89618. //Same as : (older oimo versions)
  89619. this.world.removeRigidBody(impostor.physicsBody);
  89620. };
  89621. OimoJSPlugin.prototype.generateJoint = function (impostorJoint) {
  89622. var mainBody = impostorJoint.mainImpostor.physicsBody;
  89623. var connectedBody = impostorJoint.connectedImpostor.physicsBody;
  89624. if (!mainBody || !connectedBody) {
  89625. return;
  89626. }
  89627. var jointData = impostorJoint.joint.jointData;
  89628. var options = jointData.nativeParams || {};
  89629. var type;
  89630. var nativeJointData = {
  89631. body1: mainBody,
  89632. body2: connectedBody,
  89633. axe1: options.axe1 || (jointData.mainAxis ? jointData.mainAxis.asArray() : null),
  89634. axe2: options.axe2 || (jointData.connectedAxis ? jointData.connectedAxis.asArray() : null),
  89635. pos1: options.pos1 || (jointData.mainPivot ? jointData.mainPivot.asArray() : null),
  89636. pos2: options.pos2 || (jointData.connectedPivot ? jointData.connectedPivot.asArray() : null),
  89637. min: options.min,
  89638. max: options.max,
  89639. collision: options.collision || jointData.collision,
  89640. spring: options.spring,
  89641. //supporting older version of Oimo
  89642. world: this.world
  89643. };
  89644. switch (impostorJoint.joint.type) {
  89645. case BABYLON.PhysicsJoint.BallAndSocketJoint:
  89646. type = "jointBall";
  89647. break;
  89648. case BABYLON.PhysicsJoint.SpringJoint:
  89649. BABYLON.Tools.Warn("OIMO.js doesn't support Spring Constraint. Simulating using DistanceJoint instead");
  89650. var springData = jointData;
  89651. nativeJointData.min = springData.length || nativeJointData.min;
  89652. //Max should also be set, just make sure it is at least min
  89653. nativeJointData.max = Math.max(nativeJointData.min, nativeJointData.max);
  89654. case BABYLON.PhysicsJoint.DistanceJoint:
  89655. type = "jointDistance";
  89656. nativeJointData.max = jointData.maxDistance;
  89657. break;
  89658. case BABYLON.PhysicsJoint.PrismaticJoint:
  89659. type = "jointPrisme";
  89660. break;
  89661. case BABYLON.PhysicsJoint.SliderJoint:
  89662. type = "jointSlide";
  89663. break;
  89664. case BABYLON.PhysicsJoint.WheelJoint:
  89665. type = "jointWheel";
  89666. break;
  89667. case BABYLON.PhysicsJoint.HingeJoint:
  89668. default:
  89669. type = "jointHinge";
  89670. break;
  89671. }
  89672. nativeJointData.type = type;
  89673. impostorJoint.joint.physicsJoint = this.world.add(nativeJointData);
  89674. };
  89675. OimoJSPlugin.prototype.removeJoint = function (impostorJoint) {
  89676. //Bug in Oimo prevents us from disposing a joint in the playground
  89677. //joint.joint.physicsJoint.dispose();
  89678. //So we will bruteforce it!
  89679. try {
  89680. this.world.removeJoint(impostorJoint.joint.physicsJoint);
  89681. }
  89682. catch (e) {
  89683. BABYLON.Tools.Warn(e);
  89684. }
  89685. };
  89686. OimoJSPlugin.prototype.isSupported = function () {
  89687. return this.BJSOIMO !== undefined;
  89688. };
  89689. OimoJSPlugin.prototype.setTransformationFromPhysicsBody = function (impostor) {
  89690. if (!impostor.physicsBody.sleeping) {
  89691. //TODO check that
  89692. /*if (impostor.physicsBody.shapes.next) {
  89693. var parentShape = this._getLastShape(impostor.physicsBody);
  89694. impostor.object.position.copyFrom(parentShape.position);
  89695. console.log(parentShape.position);
  89696. } else {*/
  89697. impostor.object.position.copyFrom(impostor.physicsBody.getPosition());
  89698. //}
  89699. if (impostor.object.rotationQuaternion) {
  89700. impostor.object.rotationQuaternion.copyFrom(impostor.physicsBody.getQuaternion());
  89701. }
  89702. }
  89703. };
  89704. OimoJSPlugin.prototype.setPhysicsBodyTransformation = function (impostor, newPosition, newRotation) {
  89705. var body = impostor.physicsBody;
  89706. body.position.copy(newPosition);
  89707. body.orientation.copy(newRotation);
  89708. body.syncShapes();
  89709. body.awake();
  89710. };
  89711. /*private _getLastShape(body: any): any {
  89712. var lastShape = body.shapes;
  89713. while (lastShape.next) {
  89714. lastShape = lastShape.next;
  89715. }
  89716. return lastShape;
  89717. }*/
  89718. OimoJSPlugin.prototype.setLinearVelocity = function (impostor, velocity) {
  89719. impostor.physicsBody.linearVelocity.copy(velocity);
  89720. };
  89721. OimoJSPlugin.prototype.setAngularVelocity = function (impostor, velocity) {
  89722. impostor.physicsBody.angularVelocity.copy(velocity);
  89723. };
  89724. OimoJSPlugin.prototype.getLinearVelocity = function (impostor) {
  89725. var v = impostor.physicsBody.linearVelocity;
  89726. if (!v) {
  89727. return null;
  89728. }
  89729. return new BABYLON.Vector3(v.x, v.y, v.z);
  89730. };
  89731. OimoJSPlugin.prototype.getAngularVelocity = function (impostor) {
  89732. var v = impostor.physicsBody.angularVelocity;
  89733. if (!v) {
  89734. return null;
  89735. }
  89736. return new BABYLON.Vector3(v.x, v.y, v.z);
  89737. };
  89738. OimoJSPlugin.prototype.setBodyMass = function (impostor, mass) {
  89739. var staticBody = mass === 0;
  89740. //this will actually set the body's density and not its mass.
  89741. //But this is how oimo treats the mass variable.
  89742. impostor.physicsBody.shapes.density = staticBody ? 1 : mass;
  89743. impostor.physicsBody.setupMass(staticBody ? 0x2 : 0x1);
  89744. };
  89745. OimoJSPlugin.prototype.getBodyMass = function (impostor) {
  89746. return impostor.physicsBody.shapes.density;
  89747. };
  89748. OimoJSPlugin.prototype.getBodyFriction = function (impostor) {
  89749. return impostor.physicsBody.shapes.friction;
  89750. };
  89751. OimoJSPlugin.prototype.setBodyFriction = function (impostor, friction) {
  89752. impostor.physicsBody.shapes.friction = friction;
  89753. };
  89754. OimoJSPlugin.prototype.getBodyRestitution = function (impostor) {
  89755. return impostor.physicsBody.shapes.restitution;
  89756. };
  89757. OimoJSPlugin.prototype.setBodyRestitution = function (impostor, restitution) {
  89758. impostor.physicsBody.shapes.restitution = restitution;
  89759. };
  89760. OimoJSPlugin.prototype.sleepBody = function (impostor) {
  89761. impostor.physicsBody.sleep();
  89762. };
  89763. OimoJSPlugin.prototype.wakeUpBody = function (impostor) {
  89764. impostor.physicsBody.awake();
  89765. };
  89766. OimoJSPlugin.prototype.updateDistanceJoint = function (joint, maxDistance, minDistance) {
  89767. joint.physicsJoint.limitMotor.upperLimit = maxDistance;
  89768. if (minDistance !== void 0) {
  89769. joint.physicsJoint.limitMotor.lowerLimit = minDistance;
  89770. }
  89771. };
  89772. OimoJSPlugin.prototype.setMotor = function (joint, speed, maxForce, motorIndex) {
  89773. //TODO separate rotational and transational motors.
  89774. var motor = motorIndex ? joint.physicsJoint.rotationalLimitMotor2 : joint.physicsJoint.rotationalLimitMotor1 || joint.physicsJoint.rotationalLimitMotor || joint.physicsJoint.limitMotor;
  89775. if (motor) {
  89776. motor.setMotor(speed, maxForce);
  89777. }
  89778. };
  89779. OimoJSPlugin.prototype.setLimit = function (joint, upperLimit, lowerLimit, motorIndex) {
  89780. //TODO separate rotational and transational motors.
  89781. var motor = motorIndex ? joint.physicsJoint.rotationalLimitMotor2 : joint.physicsJoint.rotationalLimitMotor1 || joint.physicsJoint.rotationalLimitMotor || joint.physicsJoint.limitMotor;
  89782. if (motor) {
  89783. motor.setLimit(upperLimit, lowerLimit === void 0 ? -upperLimit : lowerLimit);
  89784. }
  89785. };
  89786. OimoJSPlugin.prototype.syncMeshWithImpostor = function (mesh, impostor) {
  89787. var body = impostor.physicsBody;
  89788. mesh.position.x = body.position.x;
  89789. mesh.position.y = body.position.y;
  89790. mesh.position.z = body.position.z;
  89791. if (mesh.rotationQuaternion) {
  89792. mesh.rotationQuaternion.x = body.orientation.x;
  89793. mesh.rotationQuaternion.y = body.orientation.y;
  89794. mesh.rotationQuaternion.z = body.orientation.z;
  89795. mesh.rotationQuaternion.w = body.orientation.s;
  89796. }
  89797. };
  89798. OimoJSPlugin.prototype.getRadius = function (impostor) {
  89799. return impostor.physicsBody.shapes.radius;
  89800. };
  89801. OimoJSPlugin.prototype.getBoxSizeToRef = function (impostor, result) {
  89802. var shape = impostor.physicsBody.shapes;
  89803. result.x = shape.halfWidth * 2;
  89804. result.y = shape.halfHeight * 2;
  89805. result.z = shape.halfDepth * 2;
  89806. };
  89807. OimoJSPlugin.prototype.dispose = function () {
  89808. this.world.clear();
  89809. };
  89810. return OimoJSPlugin;
  89811. }());
  89812. BABYLON.OimoJSPlugin = OimoJSPlugin;
  89813. })(BABYLON || (BABYLON = {}));
  89814. //# sourceMappingURL=babylon.oimoJSPlugin.js.map
  89815. var BABYLON;
  89816. (function (BABYLON) {
  89817. // Based on demo done by Brandon Jones - http://media.tojicode.com/webgl-samples/dds.html
  89818. // All values and structures referenced from:
  89819. // http://msdn.microsoft.com/en-us/library/bb943991.aspx/
  89820. var DDS_MAGIC = 0x20534444;
  89821. var
  89822. //DDSD_CAPS = 0x1,
  89823. //DDSD_HEIGHT = 0x2,
  89824. //DDSD_WIDTH = 0x4,
  89825. //DDSD_PITCH = 0x8,
  89826. //DDSD_PIXELFORMAT = 0x1000,
  89827. DDSD_MIPMAPCOUNT = 0x20000;
  89828. //DDSD_LINEARSIZE = 0x80000,
  89829. //DDSD_DEPTH = 0x800000;
  89830. // var DDSCAPS_COMPLEX = 0x8,
  89831. // DDSCAPS_MIPMAP = 0x400000,
  89832. // DDSCAPS_TEXTURE = 0x1000;
  89833. var DDSCAPS2_CUBEMAP = 0x200;
  89834. // DDSCAPS2_CUBEMAP_POSITIVEX = 0x400,
  89835. // DDSCAPS2_CUBEMAP_NEGATIVEX = 0x800,
  89836. // DDSCAPS2_CUBEMAP_POSITIVEY = 0x1000,
  89837. // DDSCAPS2_CUBEMAP_NEGATIVEY = 0x2000,
  89838. // DDSCAPS2_CUBEMAP_POSITIVEZ = 0x4000,
  89839. // DDSCAPS2_CUBEMAP_NEGATIVEZ = 0x8000,
  89840. // DDSCAPS2_VOLUME = 0x200000;
  89841. var
  89842. //DDPF_ALPHAPIXELS = 0x1,
  89843. //DDPF_ALPHA = 0x2,
  89844. DDPF_FOURCC = 0x4, DDPF_RGB = 0x40,
  89845. //DDPF_YUV = 0x200,
  89846. DDPF_LUMINANCE = 0x20000;
  89847. function FourCCToInt32(value) {
  89848. return value.charCodeAt(0) +
  89849. (value.charCodeAt(1) << 8) +
  89850. (value.charCodeAt(2) << 16) +
  89851. (value.charCodeAt(3) << 24);
  89852. }
  89853. function Int32ToFourCC(value) {
  89854. return String.fromCharCode(value & 0xff, (value >> 8) & 0xff, (value >> 16) & 0xff, (value >> 24) & 0xff);
  89855. }
  89856. var FOURCC_DXT1 = FourCCToInt32("DXT1");
  89857. var FOURCC_DXT3 = FourCCToInt32("DXT3");
  89858. var FOURCC_DXT5 = FourCCToInt32("DXT5");
  89859. var FOURCC_DX10 = FourCCToInt32("DX10");
  89860. var FOURCC_D3DFMT_R16G16B16A16F = 113;
  89861. var FOURCC_D3DFMT_R32G32B32A32F = 116;
  89862. var DXGI_FORMAT_R16G16B16A16_FLOAT = 10;
  89863. var DXGI_FORMAT_B8G8R8X8_UNORM = 88;
  89864. var headerLengthInt = 31; // The header length in 32 bit ints
  89865. // Offsets into the header array
  89866. var off_magic = 0;
  89867. var off_size = 1;
  89868. var off_flags = 2;
  89869. var off_height = 3;
  89870. var off_width = 4;
  89871. var off_mipmapCount = 7;
  89872. var off_pfFlags = 20;
  89873. var off_pfFourCC = 21;
  89874. var off_RGBbpp = 22;
  89875. var off_RMask = 23;
  89876. var off_GMask = 24;
  89877. var off_BMask = 25;
  89878. var off_AMask = 26;
  89879. // var off_caps1 = 27;
  89880. var off_caps2 = 28;
  89881. // var off_caps3 = 29;
  89882. // var off_caps4 = 30;
  89883. var off_dxgiFormat = 32;
  89884. ;
  89885. var DDSTools = /** @class */ (function () {
  89886. function DDSTools() {
  89887. }
  89888. DDSTools.GetDDSInfo = function (arrayBuffer) {
  89889. var header = new Int32Array(arrayBuffer, 0, headerLengthInt);
  89890. var extendedHeader = new Int32Array(arrayBuffer, 0, headerLengthInt + 4);
  89891. var mipmapCount = 1;
  89892. if (header[off_flags] & DDSD_MIPMAPCOUNT) {
  89893. mipmapCount = Math.max(1, header[off_mipmapCount]);
  89894. }
  89895. var fourCC = header[off_pfFourCC];
  89896. var dxgiFormat = (fourCC === FOURCC_DX10) ? extendedHeader[off_dxgiFormat] : 0;
  89897. var textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  89898. switch (fourCC) {
  89899. case FOURCC_D3DFMT_R16G16B16A16F:
  89900. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  89901. break;
  89902. case FOURCC_D3DFMT_R32G32B32A32F:
  89903. textureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  89904. break;
  89905. case FOURCC_DX10:
  89906. if (dxgiFormat === DXGI_FORMAT_R16G16B16A16_FLOAT) {
  89907. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  89908. break;
  89909. }
  89910. }
  89911. return {
  89912. width: header[off_width],
  89913. height: header[off_height],
  89914. mipmapCount: mipmapCount,
  89915. isFourCC: (header[off_pfFlags] & DDPF_FOURCC) === DDPF_FOURCC,
  89916. isRGB: (header[off_pfFlags] & DDPF_RGB) === DDPF_RGB,
  89917. isLuminance: (header[off_pfFlags] & DDPF_LUMINANCE) === DDPF_LUMINANCE,
  89918. isCube: (header[off_caps2] & DDSCAPS2_CUBEMAP) === DDSCAPS2_CUBEMAP,
  89919. isCompressed: (fourCC === FOURCC_DXT1 || fourCC === FOURCC_DXT3 || fourCC === FOURCC_DXT5),
  89920. dxgiFormat: dxgiFormat,
  89921. textureType: textureType
  89922. };
  89923. };
  89924. DDSTools._ToHalfFloat = function (value) {
  89925. if (!DDSTools._FloatView) {
  89926. DDSTools._FloatView = new Float32Array(1);
  89927. DDSTools._Int32View = new Int32Array(DDSTools._FloatView.buffer);
  89928. }
  89929. DDSTools._FloatView[0] = value;
  89930. var x = DDSTools._Int32View[0];
  89931. var bits = (x >> 16) & 0x8000; /* Get the sign */
  89932. var m = (x >> 12) & 0x07ff; /* Keep one extra bit for rounding */
  89933. var e = (x >> 23) & 0xff; /* Using int is faster here */
  89934. /* If zero, or denormal, or exponent underflows too much for a denormal
  89935. * half, return signed zero. */
  89936. if (e < 103) {
  89937. return bits;
  89938. }
  89939. /* If NaN, return NaN. If Inf or exponent overflow, return Inf. */
  89940. if (e > 142) {
  89941. bits |= 0x7c00;
  89942. /* If exponent was 0xff and one mantissa bit was set, it means NaN,
  89943. * not Inf, so make sure we set one mantissa bit too. */
  89944. bits |= ((e == 255) ? 0 : 1) && (x & 0x007fffff);
  89945. return bits;
  89946. }
  89947. /* If exponent underflows but not too much, return a denormal */
  89948. if (e < 113) {
  89949. m |= 0x0800;
  89950. /* Extra rounding may overflow and set mantissa to 0 and exponent
  89951. * to 1, which is OK. */
  89952. bits |= (m >> (114 - e)) + ((m >> (113 - e)) & 1);
  89953. return bits;
  89954. }
  89955. bits |= ((e - 112) << 10) | (m >> 1);
  89956. bits += m & 1;
  89957. return bits;
  89958. };
  89959. DDSTools._FromHalfFloat = function (value) {
  89960. var s = (value & 0x8000) >> 15;
  89961. var e = (value & 0x7C00) >> 10;
  89962. var f = value & 0x03FF;
  89963. if (e === 0) {
  89964. return (s ? -1 : 1) * Math.pow(2, -14) * (f / Math.pow(2, 10));
  89965. }
  89966. else if (e == 0x1F) {
  89967. return f ? NaN : ((s ? -1 : 1) * Infinity);
  89968. }
  89969. return (s ? -1 : 1) * Math.pow(2, e - 15) * (1 + (f / Math.pow(2, 10)));
  89970. };
  89971. DDSTools._GetHalfFloatAsFloatRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, lod) {
  89972. var destArray = new Float32Array(dataLength);
  89973. var srcData = new Uint16Array(arrayBuffer, dataOffset);
  89974. var index = 0;
  89975. for (var y = 0; y < height; y++) {
  89976. for (var x = 0; x < width; x++) {
  89977. var srcPos = (x + y * width) * 4;
  89978. destArray[index] = DDSTools._FromHalfFloat(srcData[srcPos]);
  89979. destArray[index + 1] = DDSTools._FromHalfFloat(srcData[srcPos + 1]);
  89980. destArray[index + 2] = DDSTools._FromHalfFloat(srcData[srcPos + 2]);
  89981. if (DDSTools.StoreLODInAlphaChannel) {
  89982. destArray[index + 3] = lod;
  89983. }
  89984. else {
  89985. destArray[index + 3] = DDSTools._FromHalfFloat(srcData[srcPos + 3]);
  89986. }
  89987. index += 4;
  89988. }
  89989. }
  89990. return destArray;
  89991. };
  89992. DDSTools._GetHalfFloatRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, lod) {
  89993. if (DDSTools.StoreLODInAlphaChannel) {
  89994. var destArray = new Uint16Array(dataLength);
  89995. var srcData = new Uint16Array(arrayBuffer, dataOffset);
  89996. var index = 0;
  89997. for (var y = 0; y < height; y++) {
  89998. for (var x = 0; x < width; x++) {
  89999. var srcPos = (x + y * width) * 4;
  90000. destArray[index] = srcData[srcPos];
  90001. destArray[index + 1] = srcData[srcPos + 1];
  90002. destArray[index + 2] = srcData[srcPos + 2];
  90003. destArray[index + 3] = DDSTools._ToHalfFloat(lod);
  90004. index += 4;
  90005. }
  90006. }
  90007. return destArray;
  90008. }
  90009. return new Uint16Array(arrayBuffer, dataOffset, dataLength);
  90010. };
  90011. DDSTools._GetFloatRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, lod) {
  90012. if (DDSTools.StoreLODInAlphaChannel) {
  90013. var destArray = new Float32Array(dataLength);
  90014. var srcData = new Float32Array(arrayBuffer, dataOffset);
  90015. var index = 0;
  90016. for (var y = 0; y < height; y++) {
  90017. for (var x = 0; x < width; x++) {
  90018. var srcPos = (x + y * width) * 4;
  90019. destArray[index] = srcData[srcPos];
  90020. destArray[index + 1] = srcData[srcPos + 1];
  90021. destArray[index + 2] = srcData[srcPos + 2];
  90022. destArray[index + 3] = lod;
  90023. index += 4;
  90024. }
  90025. }
  90026. return destArray;
  90027. }
  90028. return new Float32Array(arrayBuffer, dataOffset, dataLength);
  90029. };
  90030. DDSTools._GetFloatAsUIntRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, lod) {
  90031. var destArray = new Uint8Array(dataLength);
  90032. var srcData = new Float32Array(arrayBuffer, dataOffset);
  90033. var index = 0;
  90034. for (var y = 0; y < height; y++) {
  90035. for (var x = 0; x < width; x++) {
  90036. var srcPos = (x + y * width) * 4;
  90037. destArray[index] = BABYLON.Scalar.Clamp(srcData[srcPos]) * 255;
  90038. destArray[index + 1] = BABYLON.Scalar.Clamp(srcData[srcPos + 1]) * 255;
  90039. destArray[index + 2] = BABYLON.Scalar.Clamp(srcData[srcPos + 2]) * 255;
  90040. if (DDSTools.StoreLODInAlphaChannel) {
  90041. destArray[index + 3] = lod;
  90042. }
  90043. else {
  90044. destArray[index + 3] = BABYLON.Scalar.Clamp(srcData[srcPos + 3]) * 255;
  90045. }
  90046. index += 4;
  90047. }
  90048. }
  90049. return destArray;
  90050. };
  90051. DDSTools._GetHalfFloatAsUIntRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, lod) {
  90052. var destArray = new Uint8Array(dataLength);
  90053. var srcData = new Uint16Array(arrayBuffer, dataOffset);
  90054. var index = 0;
  90055. for (var y = 0; y < height; y++) {
  90056. for (var x = 0; x < width; x++) {
  90057. var srcPos = (x + y * width) * 4;
  90058. destArray[index] = BABYLON.Scalar.Clamp(DDSTools._FromHalfFloat(srcData[srcPos])) * 255;
  90059. destArray[index + 1] = BABYLON.Scalar.Clamp(DDSTools._FromHalfFloat(srcData[srcPos + 1])) * 255;
  90060. destArray[index + 2] = BABYLON.Scalar.Clamp(DDSTools._FromHalfFloat(srcData[srcPos + 2])) * 255;
  90061. if (DDSTools.StoreLODInAlphaChannel) {
  90062. destArray[index + 3] = lod;
  90063. }
  90064. else {
  90065. destArray[index + 3] = BABYLON.Scalar.Clamp(DDSTools._FromHalfFloat(srcData[srcPos + 3])) * 255;
  90066. }
  90067. index += 4;
  90068. }
  90069. }
  90070. return destArray;
  90071. };
  90072. DDSTools._GetRGBAArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, rOffset, gOffset, bOffset, aOffset) {
  90073. var byteArray = new Uint8Array(dataLength);
  90074. var srcData = new Uint8Array(arrayBuffer, dataOffset);
  90075. var index = 0;
  90076. for (var y = 0; y < height; y++) {
  90077. for (var x = 0; x < width; x++) {
  90078. var srcPos = (x + y * width) * 4;
  90079. byteArray[index] = srcData[srcPos + rOffset];
  90080. byteArray[index + 1] = srcData[srcPos + gOffset];
  90081. byteArray[index + 2] = srcData[srcPos + bOffset];
  90082. byteArray[index + 3] = srcData[srcPos + aOffset];
  90083. index += 4;
  90084. }
  90085. }
  90086. return byteArray;
  90087. };
  90088. DDSTools._ExtractLongWordOrder = function (value) {
  90089. if (value === 0 || value === 255 || value === -16777216) {
  90090. return 0;
  90091. }
  90092. return 1 + DDSTools._ExtractLongWordOrder(value >> 8);
  90093. };
  90094. DDSTools._GetRGBArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer, rOffset, gOffset, bOffset) {
  90095. var byteArray = new Uint8Array(dataLength);
  90096. var srcData = new Uint8Array(arrayBuffer, dataOffset);
  90097. var index = 0;
  90098. for (var y = 0; y < height; y++) {
  90099. for (var x = 0; x < width; x++) {
  90100. var srcPos = (x + y * width) * 3;
  90101. byteArray[index] = srcData[srcPos + rOffset];
  90102. byteArray[index + 1] = srcData[srcPos + gOffset];
  90103. byteArray[index + 2] = srcData[srcPos + bOffset];
  90104. index += 3;
  90105. }
  90106. }
  90107. return byteArray;
  90108. };
  90109. DDSTools._GetLuminanceArrayBuffer = function (width, height, dataOffset, dataLength, arrayBuffer) {
  90110. var byteArray = new Uint8Array(dataLength);
  90111. var srcData = new Uint8Array(arrayBuffer, dataOffset);
  90112. var index = 0;
  90113. for (var y = 0; y < height; y++) {
  90114. for (var x = 0; x < width; x++) {
  90115. var srcPos = (x + y * width);
  90116. byteArray[index] = srcData[srcPos];
  90117. index++;
  90118. }
  90119. }
  90120. return byteArray;
  90121. };
  90122. /**
  90123. * Uploads DDS Levels to a Babylon Texture
  90124. * @hidden
  90125. */
  90126. DDSTools.UploadDDSLevels = function (engine, texture, arrayBuffer, info, loadMipmaps, faces, lodIndex, currentFace) {
  90127. if (lodIndex === void 0) { lodIndex = -1; }
  90128. var sphericalPolynomialFaces = null;
  90129. if (info.sphericalPolynomial) {
  90130. sphericalPolynomialFaces = new Array();
  90131. }
  90132. var ext = engine.getCaps().s3tc;
  90133. var header = new Int32Array(arrayBuffer, 0, headerLengthInt);
  90134. var fourCC, width, height, dataLength = 0, dataOffset;
  90135. var byteArray, mipmapCount, mip;
  90136. var internalCompressedFormat = 0;
  90137. var blockBytes = 1;
  90138. if (header[off_magic] !== DDS_MAGIC) {
  90139. BABYLON.Tools.Error("Invalid magic number in DDS header");
  90140. return;
  90141. }
  90142. if (!info.isFourCC && !info.isRGB && !info.isLuminance) {
  90143. BABYLON.Tools.Error("Unsupported format, must contain a FourCC, RGB or LUMINANCE code");
  90144. return;
  90145. }
  90146. if (info.isCompressed && !ext) {
  90147. BABYLON.Tools.Error("Compressed textures are not supported on this platform.");
  90148. return;
  90149. }
  90150. var bpp = header[off_RGBbpp];
  90151. dataOffset = header[off_size] + 4;
  90152. var computeFormats = false;
  90153. if (info.isFourCC) {
  90154. fourCC = header[off_pfFourCC];
  90155. switch (fourCC) {
  90156. case FOURCC_DXT1:
  90157. blockBytes = 8;
  90158. internalCompressedFormat = ext.COMPRESSED_RGBA_S3TC_DXT1_EXT;
  90159. break;
  90160. case FOURCC_DXT3:
  90161. blockBytes = 16;
  90162. internalCompressedFormat = ext.COMPRESSED_RGBA_S3TC_DXT3_EXT;
  90163. break;
  90164. case FOURCC_DXT5:
  90165. blockBytes = 16;
  90166. internalCompressedFormat = ext.COMPRESSED_RGBA_S3TC_DXT5_EXT;
  90167. break;
  90168. case FOURCC_D3DFMT_R16G16B16A16F:
  90169. computeFormats = true;
  90170. break;
  90171. case FOURCC_D3DFMT_R32G32B32A32F:
  90172. computeFormats = true;
  90173. break;
  90174. case FOURCC_DX10:
  90175. // There is an additionnal header so dataOffset need to be changed
  90176. dataOffset += 5 * 4; // 5 uints
  90177. var supported = false;
  90178. switch (info.dxgiFormat) {
  90179. case DXGI_FORMAT_R16G16B16A16_FLOAT:
  90180. computeFormats = true;
  90181. supported = true;
  90182. break;
  90183. case DXGI_FORMAT_B8G8R8X8_UNORM:
  90184. info.isRGB = true;
  90185. info.isFourCC = false;
  90186. bpp = 32;
  90187. supported = true;
  90188. break;
  90189. }
  90190. if (supported) {
  90191. break;
  90192. }
  90193. default:
  90194. console.error("Unsupported FourCC code:", Int32ToFourCC(fourCC));
  90195. return;
  90196. }
  90197. }
  90198. var rOffset = DDSTools._ExtractLongWordOrder(header[off_RMask]);
  90199. var gOffset = DDSTools._ExtractLongWordOrder(header[off_GMask]);
  90200. var bOffset = DDSTools._ExtractLongWordOrder(header[off_BMask]);
  90201. var aOffset = DDSTools._ExtractLongWordOrder(header[off_AMask]);
  90202. if (computeFormats) {
  90203. internalCompressedFormat = engine._getRGBABufferInternalSizedFormat(info.textureType);
  90204. }
  90205. mipmapCount = 1;
  90206. if (header[off_flags] & DDSD_MIPMAPCOUNT && loadMipmaps !== false) {
  90207. mipmapCount = Math.max(1, header[off_mipmapCount]);
  90208. }
  90209. for (var face = 0; face < faces; face++) {
  90210. width = header[off_width];
  90211. height = header[off_height];
  90212. for (mip = 0; mip < mipmapCount; ++mip) {
  90213. if (lodIndex === -1 || lodIndex === mip) {
  90214. // In case of fixed LOD, if the lod has just been uploaded, early exit.
  90215. var i = (lodIndex === -1) ? mip : 0;
  90216. if (!info.isCompressed && info.isFourCC) {
  90217. texture.format = BABYLON.Engine.TEXTUREFORMAT_RGBA;
  90218. dataLength = width * height * 4;
  90219. var floatArray = null;
  90220. if (engine._badOS || engine._badDesktopOS || (!engine.getCaps().textureHalfFloat && !engine.getCaps().textureFloat)) { // Required because iOS has many issues with float and half float generation
  90221. if (bpp === 128) {
  90222. floatArray = DDSTools._GetFloatAsUIntRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i);
  90223. if (sphericalPolynomialFaces && i == 0) {
  90224. sphericalPolynomialFaces.push(DDSTools._GetFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i));
  90225. }
  90226. }
  90227. else if (bpp === 64) {
  90228. floatArray = DDSTools._GetHalfFloatAsUIntRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i);
  90229. if (sphericalPolynomialFaces && i == 0) {
  90230. sphericalPolynomialFaces.push(DDSTools._GetHalfFloatAsFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i));
  90231. }
  90232. }
  90233. texture.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  90234. }
  90235. else {
  90236. if (bpp === 128) {
  90237. texture.type = BABYLON.Engine.TEXTURETYPE_FLOAT;
  90238. floatArray = DDSTools._GetFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i);
  90239. if (sphericalPolynomialFaces && i == 0) {
  90240. sphericalPolynomialFaces.push(floatArray);
  90241. }
  90242. }
  90243. else if (bpp === 64 && !engine.getCaps().textureHalfFloat) {
  90244. texture.type = BABYLON.Engine.TEXTURETYPE_FLOAT;
  90245. floatArray = DDSTools._GetHalfFloatAsFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i);
  90246. if (sphericalPolynomialFaces && i == 0) {
  90247. sphericalPolynomialFaces.push(floatArray);
  90248. }
  90249. }
  90250. else { // 64
  90251. texture.type = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  90252. floatArray = DDSTools._GetHalfFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i);
  90253. if (sphericalPolynomialFaces && i == 0) {
  90254. sphericalPolynomialFaces.push(DDSTools._GetHalfFloatAsFloatRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, i));
  90255. }
  90256. }
  90257. }
  90258. if (floatArray) {
  90259. engine._uploadDataToTextureDirectly(texture, floatArray, face, i);
  90260. }
  90261. }
  90262. else if (info.isRGB) {
  90263. texture.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  90264. if (bpp === 24) {
  90265. texture.format = BABYLON.Engine.TEXTUREFORMAT_RGB;
  90266. dataLength = width * height * 3;
  90267. byteArray = DDSTools._GetRGBArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, rOffset, gOffset, bOffset);
  90268. engine._uploadDataToTextureDirectly(texture, byteArray, face, i);
  90269. }
  90270. else { // 32
  90271. texture.format = BABYLON.Engine.TEXTUREFORMAT_RGBA;
  90272. dataLength = width * height * 4;
  90273. byteArray = DDSTools._GetRGBAArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer, rOffset, gOffset, bOffset, aOffset);
  90274. engine._uploadDataToTextureDirectly(texture, byteArray, face, i);
  90275. }
  90276. }
  90277. else if (info.isLuminance) {
  90278. var unpackAlignment = engine._getUnpackAlignement();
  90279. var unpaddedRowSize = width;
  90280. var paddedRowSize = Math.floor((width + unpackAlignment - 1) / unpackAlignment) * unpackAlignment;
  90281. dataLength = paddedRowSize * (height - 1) + unpaddedRowSize;
  90282. byteArray = DDSTools._GetLuminanceArrayBuffer(width, height, dataOffset, dataLength, arrayBuffer);
  90283. texture.format = BABYLON.Engine.TEXTUREFORMAT_LUMINANCE;
  90284. texture.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  90285. engine._uploadDataToTextureDirectly(texture, byteArray, face, i);
  90286. }
  90287. else {
  90288. dataLength = Math.max(4, width) / 4 * Math.max(4, height) / 4 * blockBytes;
  90289. byteArray = new Uint8Array(arrayBuffer, dataOffset, dataLength);
  90290. texture.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  90291. engine._uploadCompressedDataToTextureDirectly(texture, internalCompressedFormat, width, height, byteArray, face, i);
  90292. }
  90293. }
  90294. dataOffset += bpp ? (width * height * (bpp / 8)) : dataLength;
  90295. width *= 0.5;
  90296. height *= 0.5;
  90297. width = Math.max(1.0, width);
  90298. height = Math.max(1.0, height);
  90299. }
  90300. if (currentFace !== undefined) {
  90301. // Loading a single face
  90302. break;
  90303. }
  90304. }
  90305. if (sphericalPolynomialFaces && sphericalPolynomialFaces.length > 0) {
  90306. info.sphericalPolynomial = BABYLON.CubeMapToSphericalPolynomialTools.ConvertCubeMapToSphericalPolynomial({
  90307. size: header[off_width],
  90308. right: sphericalPolynomialFaces[0],
  90309. left: sphericalPolynomialFaces[1],
  90310. up: sphericalPolynomialFaces[2],
  90311. down: sphericalPolynomialFaces[3],
  90312. front: sphericalPolynomialFaces[4],
  90313. back: sphericalPolynomialFaces[5],
  90314. format: BABYLON.Engine.TEXTUREFORMAT_RGBA,
  90315. type: BABYLON.Engine.TEXTURETYPE_FLOAT,
  90316. gammaSpace: false,
  90317. });
  90318. }
  90319. else {
  90320. info.sphericalPolynomial = undefined;
  90321. }
  90322. };
  90323. DDSTools.StoreLODInAlphaChannel = false;
  90324. return DDSTools;
  90325. }());
  90326. BABYLON.DDSTools = DDSTools;
  90327. })(BABYLON || (BABYLON = {}));
  90328. //# sourceMappingURL=babylon.dds.js.map
  90329. var BABYLON;
  90330. (function (BABYLON) {
  90331. /**
  90332. * Implementation of the DDS Texture Loader.
  90333. */
  90334. var DDSTextureLoader = /** @class */ (function () {
  90335. function DDSTextureLoader() {
  90336. /**
  90337. * Defines wether the loader supports cascade loading the different faces.
  90338. */
  90339. this.supportCascades = true;
  90340. }
  90341. /**
  90342. * This returns if the loader support the current file information.
  90343. * @param extension defines the file extension of the file being loaded
  90344. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90345. * @param fallback defines the fallback internal texture if any
  90346. * @param isBase64 defines whether the texture is encoded as a base64
  90347. * @param isBuffer defines whether the texture data are stored as a buffer
  90348. * @returns true if the loader can load the specified file
  90349. */
  90350. DDSTextureLoader.prototype.canLoad = function (extension, textureFormatInUse, fallback, isBase64, isBuffer) {
  90351. return extension.indexOf(".dds") === 0;
  90352. };
  90353. /**
  90354. * Transform the url before loading if required.
  90355. * @param rootUrl the url of the texture
  90356. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90357. * @returns the transformed texture
  90358. */
  90359. DDSTextureLoader.prototype.transformUrl = function (rootUrl, textureFormatInUse) {
  90360. return rootUrl;
  90361. };
  90362. /**
  90363. * Gets the fallback url in case the load fail. This can return null to allow the default fallback mecanism to work
  90364. * @param rootUrl the url of the texture
  90365. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90366. * @returns the fallback texture
  90367. */
  90368. DDSTextureLoader.prototype.getFallbackTextureUrl = function (rootUrl, textureFormatInUse) {
  90369. return null;
  90370. };
  90371. /**
  90372. * Uploads the cube texture data to the WebGl Texture. It has alreday been bound.
  90373. * @param data contains the texture data
  90374. * @param texture defines the BabylonJS internal texture
  90375. * @param createPolynomials will be true if polynomials have been requested
  90376. * @param onLoad defines the callback to trigger once the texture is ready
  90377. * @param onError defines the callback to trigger in case of error
  90378. */
  90379. DDSTextureLoader.prototype.loadCubeData = function (imgs, texture, createPolynomials, onLoad, onError) {
  90380. var engine = texture.getEngine();
  90381. var info;
  90382. var loadMipmap = false;
  90383. if (Array.isArray(imgs)) {
  90384. for (var index = 0; index < imgs.length; index++) {
  90385. var data_1 = imgs[index];
  90386. info = BABYLON.DDSTools.GetDDSInfo(data_1);
  90387. texture.width = info.width;
  90388. texture.height = info.height;
  90389. loadMipmap = (info.isRGB || info.isLuminance || info.mipmapCount > 1) && texture.generateMipMaps;
  90390. engine._unpackFlipY(info.isCompressed);
  90391. BABYLON.DDSTools.UploadDDSLevels(engine, texture, data_1, info, loadMipmap, 6, -1, index);
  90392. if (!info.isFourCC && info.mipmapCount === 1) {
  90393. engine.generateMipMapsForCubemap(texture);
  90394. }
  90395. }
  90396. }
  90397. else {
  90398. var data = imgs;
  90399. info = BABYLON.DDSTools.GetDDSInfo(data);
  90400. texture.width = info.width;
  90401. texture.height = info.height;
  90402. if (createPolynomials) {
  90403. info.sphericalPolynomial = new BABYLON.SphericalPolynomial();
  90404. }
  90405. loadMipmap = (info.isRGB || info.isLuminance || info.mipmapCount > 1) && texture.generateMipMaps;
  90406. engine._unpackFlipY(info.isCompressed);
  90407. BABYLON.DDSTools.UploadDDSLevels(engine, texture, data, info, loadMipmap, 6);
  90408. if (!info.isFourCC && info.mipmapCount === 1) {
  90409. engine.generateMipMapsForCubemap(texture);
  90410. }
  90411. }
  90412. engine._setCubeMapTextureParams(loadMipmap);
  90413. texture.isReady = true;
  90414. if (onLoad) {
  90415. onLoad({ isDDS: true, width: texture.width, info: info, data: imgs, texture: texture });
  90416. }
  90417. };
  90418. /**
  90419. * Uploads the 2D texture data to the WebGl Texture. It has alreday been bound once in the callback.
  90420. * @param data contains the texture data
  90421. * @param texture defines the BabylonJS internal texture
  90422. * @param callback defines the method to call once ready to upload
  90423. */
  90424. DDSTextureLoader.prototype.loadData = function (data, texture, callback) {
  90425. var info = BABYLON.DDSTools.GetDDSInfo(data);
  90426. var loadMipmap = (info.isRGB || info.isLuminance || info.mipmapCount > 1) && texture.generateMipMaps && ((info.width >> (info.mipmapCount - 1)) === 1);
  90427. callback(info.width, info.height, loadMipmap, info.isFourCC, function () {
  90428. BABYLON.DDSTools.UploadDDSLevels(texture.getEngine(), texture, data, info, loadMipmap, 1);
  90429. });
  90430. };
  90431. return DDSTextureLoader;
  90432. }());
  90433. // Register the loader.
  90434. BABYLON.Engine._TextureLoaders.push(new DDSTextureLoader());
  90435. })(BABYLON || (BABYLON = {}));
  90436. //# sourceMappingURL=babylon.ddsTextureLoader.js.map
  90437. var BABYLON;
  90438. (function (BABYLON) {
  90439. /*
  90440. * Based on jsTGALoader - Javascript loader for TGA file
  90441. * By Vincent Thibault
  90442. * @blog http://blog.robrowser.com/javascript-tga-loader.html
  90443. */
  90444. var TGATools = /** @class */ (function () {
  90445. function TGATools() {
  90446. }
  90447. TGATools.GetTGAHeader = function (data) {
  90448. var offset = 0;
  90449. var header = {
  90450. id_length: data[offset++],
  90451. colormap_type: data[offset++],
  90452. image_type: data[offset++],
  90453. colormap_index: data[offset++] | data[offset++] << 8,
  90454. colormap_length: data[offset++] | data[offset++] << 8,
  90455. colormap_size: data[offset++],
  90456. origin: [
  90457. data[offset++] | data[offset++] << 8,
  90458. data[offset++] | data[offset++] << 8
  90459. ],
  90460. width: data[offset++] | data[offset++] << 8,
  90461. height: data[offset++] | data[offset++] << 8,
  90462. pixel_size: data[offset++],
  90463. flags: data[offset++]
  90464. };
  90465. return header;
  90466. };
  90467. /**
  90468. * Uploads TGA content to a Babylon Texture
  90469. * @hidden
  90470. */
  90471. TGATools.UploadContent = function (texture, data) {
  90472. // Not enough data to contain header ?
  90473. if (data.length < 19) {
  90474. BABYLON.Tools.Error("Unable to load TGA file - Not enough data to contain header");
  90475. return;
  90476. }
  90477. // Read Header
  90478. var offset = 18;
  90479. var header = TGATools.GetTGAHeader(data);
  90480. // Assume it's a valid Targa file.
  90481. if (header.id_length + offset > data.length) {
  90482. BABYLON.Tools.Error("Unable to load TGA file - Not enough data");
  90483. return;
  90484. }
  90485. // Skip not needed data
  90486. offset += header.id_length;
  90487. var use_rle = false;
  90488. var use_pal = false;
  90489. var use_grey = false;
  90490. // Get some informations.
  90491. switch (header.image_type) {
  90492. case TGATools._TYPE_RLE_INDEXED:
  90493. use_rle = true;
  90494. case TGATools._TYPE_INDEXED:
  90495. use_pal = true;
  90496. break;
  90497. case TGATools._TYPE_RLE_RGB:
  90498. use_rle = true;
  90499. case TGATools._TYPE_RGB:
  90500. // use_rgb = true;
  90501. break;
  90502. case TGATools._TYPE_RLE_GREY:
  90503. use_rle = true;
  90504. case TGATools._TYPE_GREY:
  90505. use_grey = true;
  90506. break;
  90507. }
  90508. var pixel_data;
  90509. // var numAlphaBits = header.flags & 0xf;
  90510. var pixel_size = header.pixel_size >> 3;
  90511. var pixel_total = header.width * header.height * pixel_size;
  90512. // Read palettes
  90513. var palettes;
  90514. if (use_pal) {
  90515. palettes = data.subarray(offset, offset += header.colormap_length * (header.colormap_size >> 3));
  90516. }
  90517. // Read LRE
  90518. if (use_rle) {
  90519. pixel_data = new Uint8Array(pixel_total);
  90520. var c, count, i;
  90521. var localOffset = 0;
  90522. var pixels = new Uint8Array(pixel_size);
  90523. while (offset < pixel_total && localOffset < pixel_total) {
  90524. c = data[offset++];
  90525. count = (c & 0x7f) + 1;
  90526. // RLE pixels
  90527. if (c & 0x80) {
  90528. // Bind pixel tmp array
  90529. for (i = 0; i < pixel_size; ++i) {
  90530. pixels[i] = data[offset++];
  90531. }
  90532. // Copy pixel array
  90533. for (i = 0; i < count; ++i) {
  90534. pixel_data.set(pixels, localOffset + i * pixel_size);
  90535. }
  90536. localOffset += pixel_size * count;
  90537. }
  90538. // Raw pixels
  90539. else {
  90540. count *= pixel_size;
  90541. for (i = 0; i < count; ++i) {
  90542. pixel_data[localOffset + i] = data[offset++];
  90543. }
  90544. localOffset += count;
  90545. }
  90546. }
  90547. }
  90548. // RAW Pixels
  90549. else {
  90550. pixel_data = data.subarray(offset, offset += (use_pal ? header.width * header.height : pixel_total));
  90551. }
  90552. // Load to texture
  90553. var x_start, y_start, x_step, y_step, y_end, x_end;
  90554. switch ((header.flags & TGATools._ORIGIN_MASK) >> TGATools._ORIGIN_SHIFT) {
  90555. default:
  90556. case TGATools._ORIGIN_UL:
  90557. x_start = 0;
  90558. x_step = 1;
  90559. x_end = header.width;
  90560. y_start = 0;
  90561. y_step = 1;
  90562. y_end = header.height;
  90563. break;
  90564. case TGATools._ORIGIN_BL:
  90565. x_start = 0;
  90566. x_step = 1;
  90567. x_end = header.width;
  90568. y_start = header.height - 1;
  90569. y_step = -1;
  90570. y_end = -1;
  90571. break;
  90572. case TGATools._ORIGIN_UR:
  90573. x_start = header.width - 1;
  90574. x_step = -1;
  90575. x_end = -1;
  90576. y_start = 0;
  90577. y_step = 1;
  90578. y_end = header.height;
  90579. break;
  90580. case TGATools._ORIGIN_BR:
  90581. x_start = header.width - 1;
  90582. x_step = -1;
  90583. x_end = -1;
  90584. y_start = header.height - 1;
  90585. y_step = -1;
  90586. y_end = -1;
  90587. break;
  90588. }
  90589. // Load the specify method
  90590. var func = '_getImageData' + (use_grey ? 'Grey' : '') + (header.pixel_size) + 'bits';
  90591. var imageData = TGATools[func](header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end);
  90592. var engine = texture.getEngine();
  90593. engine._uploadDataToTextureDirectly(texture, imageData);
  90594. };
  90595. TGATools._getImageData8bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90596. var image = pixel_data, colormap = palettes;
  90597. var width = header.width, height = header.height;
  90598. var color, i = 0, x, y;
  90599. var imageData = new Uint8Array(width * height * 4);
  90600. for (y = y_start; y !== y_end; y += y_step) {
  90601. for (x = x_start; x !== x_end; x += x_step, i++) {
  90602. color = image[i];
  90603. imageData[(x + width * y) * 4 + 3] = 255;
  90604. imageData[(x + width * y) * 4 + 2] = colormap[(color * 3) + 0];
  90605. imageData[(x + width * y) * 4 + 1] = colormap[(color * 3) + 1];
  90606. imageData[(x + width * y) * 4 + 0] = colormap[(color * 3) + 2];
  90607. }
  90608. }
  90609. return imageData;
  90610. };
  90611. TGATools._getImageData16bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90612. var image = pixel_data;
  90613. var width = header.width, height = header.height;
  90614. var color, i = 0, x, y;
  90615. var imageData = new Uint8Array(width * height * 4);
  90616. for (y = y_start; y !== y_end; y += y_step) {
  90617. for (x = x_start; x !== x_end; x += x_step, i += 2) {
  90618. color = image[i + 0] + (image[i + 1] << 8); // Inversed ?
  90619. var r = (((color & 0x7C00) >> 10) * 255) / 0x1F | 0;
  90620. var g = (((color & 0x03E0) >> 5) * 255) / 0x1F | 0;
  90621. var b = ((color & 0x001F) * 255) / 0x1F | 0;
  90622. imageData[(x + width * y) * 4 + 0] = r;
  90623. imageData[(x + width * y) * 4 + 1] = g;
  90624. imageData[(x + width * y) * 4 + 2] = b;
  90625. imageData[(x + width * y) * 4 + 3] = (color & 0x8000) ? 0 : 255;
  90626. }
  90627. }
  90628. return imageData;
  90629. };
  90630. TGATools._getImageData24bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90631. var image = pixel_data;
  90632. var width = header.width, height = header.height;
  90633. var i = 0, x, y;
  90634. var imageData = new Uint8Array(width * height * 4);
  90635. for (y = y_start; y !== y_end; y += y_step) {
  90636. for (x = x_start; x !== x_end; x += x_step, i += 3) {
  90637. imageData[(x + width * y) * 4 + 3] = 255;
  90638. imageData[(x + width * y) * 4 + 2] = image[i + 0];
  90639. imageData[(x + width * y) * 4 + 1] = image[i + 1];
  90640. imageData[(x + width * y) * 4 + 0] = image[i + 2];
  90641. }
  90642. }
  90643. return imageData;
  90644. };
  90645. TGATools._getImageData32bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90646. var image = pixel_data;
  90647. var width = header.width, height = header.height;
  90648. var i = 0, x, y;
  90649. var imageData = new Uint8Array(width * height * 4);
  90650. for (y = y_start; y !== y_end; y += y_step) {
  90651. for (x = x_start; x !== x_end; x += x_step, i += 4) {
  90652. imageData[(x + width * y) * 4 + 2] = image[i + 0];
  90653. imageData[(x + width * y) * 4 + 1] = image[i + 1];
  90654. imageData[(x + width * y) * 4 + 0] = image[i + 2];
  90655. imageData[(x + width * y) * 4 + 3] = image[i + 3];
  90656. }
  90657. }
  90658. return imageData;
  90659. };
  90660. TGATools._getImageDataGrey8bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90661. var image = pixel_data;
  90662. var width = header.width, height = header.height;
  90663. var color, i = 0, x, y;
  90664. var imageData = new Uint8Array(width * height * 4);
  90665. for (y = y_start; y !== y_end; y += y_step) {
  90666. for (x = x_start; x !== x_end; x += x_step, i++) {
  90667. color = image[i];
  90668. imageData[(x + width * y) * 4 + 0] = color;
  90669. imageData[(x + width * y) * 4 + 1] = color;
  90670. imageData[(x + width * y) * 4 + 2] = color;
  90671. imageData[(x + width * y) * 4 + 3] = 255;
  90672. }
  90673. }
  90674. return imageData;
  90675. };
  90676. TGATools._getImageDataGrey16bits = function (header, palettes, pixel_data, y_start, y_step, y_end, x_start, x_step, x_end) {
  90677. var image = pixel_data;
  90678. var width = header.width, height = header.height;
  90679. var i = 0, x, y;
  90680. var imageData = new Uint8Array(width * height * 4);
  90681. for (y = y_start; y !== y_end; y += y_step) {
  90682. for (x = x_start; x !== x_end; x += x_step, i += 2) {
  90683. imageData[(x + width * y) * 4 + 0] = image[i + 0];
  90684. imageData[(x + width * y) * 4 + 1] = image[i + 0];
  90685. imageData[(x + width * y) * 4 + 2] = image[i + 0];
  90686. imageData[(x + width * y) * 4 + 3] = image[i + 1];
  90687. }
  90688. }
  90689. return imageData;
  90690. };
  90691. //private static _TYPE_NO_DATA = 0;
  90692. TGATools._TYPE_INDEXED = 1;
  90693. TGATools._TYPE_RGB = 2;
  90694. TGATools._TYPE_GREY = 3;
  90695. TGATools._TYPE_RLE_INDEXED = 9;
  90696. TGATools._TYPE_RLE_RGB = 10;
  90697. TGATools._TYPE_RLE_GREY = 11;
  90698. TGATools._ORIGIN_MASK = 0x30;
  90699. TGATools._ORIGIN_SHIFT = 0x04;
  90700. TGATools._ORIGIN_BL = 0x00;
  90701. TGATools._ORIGIN_BR = 0x01;
  90702. TGATools._ORIGIN_UL = 0x02;
  90703. TGATools._ORIGIN_UR = 0x03;
  90704. return TGATools;
  90705. }());
  90706. BABYLON.TGATools = TGATools;
  90707. })(BABYLON || (BABYLON = {}));
  90708. //# sourceMappingURL=babylon.tga.js.map
  90709. var BABYLON;
  90710. (function (BABYLON) {
  90711. /**
  90712. * Implementation of the TGA Texture Loader.
  90713. */
  90714. var TGATextureLoader = /** @class */ (function () {
  90715. function TGATextureLoader() {
  90716. /**
  90717. * Defines wether the loader supports cascade loading the different faces.
  90718. */
  90719. this.supportCascades = false;
  90720. }
  90721. /**
  90722. * This returns if the loader support the current file information.
  90723. * @param extension defines the file extension of the file being loaded
  90724. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90725. * @param fallback defines the fallback internal texture if any
  90726. * @param isBase64 defines whether the texture is encoded as a base64
  90727. * @param isBuffer defines whether the texture data are stored as a buffer
  90728. * @returns true if the loader can load the specified file
  90729. */
  90730. TGATextureLoader.prototype.canLoad = function (extension, textureFormatInUse, fallback, isBase64, isBuffer) {
  90731. return extension.indexOf(".tga") === 0;
  90732. };
  90733. /**
  90734. * Transform the url before loading if required.
  90735. * @param rootUrl the url of the texture
  90736. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90737. * @returns the transformed texture
  90738. */
  90739. TGATextureLoader.prototype.transformUrl = function (rootUrl, textureFormatInUse) {
  90740. return rootUrl;
  90741. };
  90742. /**
  90743. * Gets the fallback url in case the load fail. This can return null to allow the default fallback mecanism to work
  90744. * @param rootUrl the url of the texture
  90745. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90746. * @returns the fallback texture
  90747. */
  90748. TGATextureLoader.prototype.getFallbackTextureUrl = function (rootUrl, textureFormatInUse) {
  90749. return null;
  90750. };
  90751. /**
  90752. * Uploads the cube texture data to the WebGl Texture. It has alreday been bound.
  90753. * @param data contains the texture data
  90754. * @param texture defines the BabylonJS internal texture
  90755. * @param createPolynomials will be true if polynomials have been requested
  90756. * @param onLoad defines the callback to trigger once the texture is ready
  90757. * @param onError defines the callback to trigger in case of error
  90758. */
  90759. TGATextureLoader.prototype.loadCubeData = function (data, texture, createPolynomials, onLoad, onError) {
  90760. throw ".env not supported in Cube.";
  90761. };
  90762. /**
  90763. * Uploads the 2D texture data to the WebGl Texture. It has alreday been bound once in the callback.
  90764. * @param data contains the texture data
  90765. * @param texture defines the BabylonJS internal texture
  90766. * @param callback defines the method to call once ready to upload
  90767. */
  90768. TGATextureLoader.prototype.loadData = function (data, texture, callback) {
  90769. var uintData = new Uint8Array(data);
  90770. var header = BABYLON.TGATools.GetTGAHeader(uintData);
  90771. callback(header.width, header.height, texture.generateMipMaps, false, function () {
  90772. BABYLON.TGATools.UploadContent(texture, uintData);
  90773. });
  90774. };
  90775. return TGATextureLoader;
  90776. }());
  90777. // Register the loader.
  90778. BABYLON.Engine._TextureLoaders.push(new TGATextureLoader());
  90779. })(BABYLON || (BABYLON = {}));
  90780. //# sourceMappingURL=babylon.tgaTextureLoader.js.map
  90781. var BABYLON;
  90782. (function (BABYLON) {
  90783. /**
  90784. * for description see https://www.khronos.org/opengles/sdk/tools/KTX/
  90785. * for file layout see https://www.khronos.org/opengles/sdk/tools/KTX/file_format_spec/
  90786. */
  90787. var KhronosTextureContainer = /** @class */ (function () {
  90788. /**
  90789. * @param {ArrayBuffer} arrayBuffer- contents of the KTX container file
  90790. * @param {number} facesExpected- should be either 1 or 6, based whether a cube texture or or
  90791. * @param {boolean} threeDExpected- provision for indicating that data should be a 3D texture, not implemented
  90792. * @param {boolean} textureArrayExpected- provision for indicating that data should be a texture array, not implemented
  90793. */
  90794. function KhronosTextureContainer(arrayBuffer, facesExpected, threeDExpected, textureArrayExpected) {
  90795. this.arrayBuffer = arrayBuffer;
  90796. // Test that it is a ktx formatted file, based on the first 12 bytes, character representation is:
  90797. // '�', 'K', 'T', 'X', ' ', '1', '1', '�', '\r', '\n', '\x1A', '\n'
  90798. // 0xAB, 0x4B, 0x54, 0x58, 0x20, 0x31, 0x31, 0xBB, 0x0D, 0x0A, 0x1A, 0x0A
  90799. var identifier = new Uint8Array(this.arrayBuffer, 0, 12);
  90800. if (identifier[0] !== 0xAB || identifier[1] !== 0x4B || identifier[2] !== 0x54 || identifier[3] !== 0x58 || identifier[4] !== 0x20 || identifier[5] !== 0x31 ||
  90801. identifier[6] !== 0x31 || identifier[7] !== 0xBB || identifier[8] !== 0x0D || identifier[9] !== 0x0A || identifier[10] !== 0x1A || identifier[11] !== 0x0A) {
  90802. BABYLON.Tools.Error("texture missing KTX identifier");
  90803. return;
  90804. }
  90805. // load the reset of the header in native 32 bit int
  90806. var header = new Int32Array(this.arrayBuffer, 12, 13);
  90807. // determine of the remaining header values are recorded in the opposite endianness & require conversion
  90808. var oppositeEndianess = header[0] === 0x01020304;
  90809. // read all the header elements in order they exist in the file, without modification (sans endainness)
  90810. this.glType = oppositeEndianess ? this.switchEndainness(header[1]) : header[1]; // must be 0 for compressed textures
  90811. this.glTypeSize = oppositeEndianess ? this.switchEndainness(header[2]) : header[2]; // must be 1 for compressed textures
  90812. this.glFormat = oppositeEndianess ? this.switchEndainness(header[3]) : header[3]; // must be 0 for compressed textures
  90813. this.glInternalFormat = oppositeEndianess ? this.switchEndainness(header[4]) : header[4]; // the value of arg passed to gl.compressedTexImage2D(,,x,,,,)
  90814. this.glBaseInternalFormat = oppositeEndianess ? this.switchEndainness(header[5]) : header[5]; // specify GL_RGB, GL_RGBA, GL_ALPHA, etc (un-compressed only)
  90815. this.pixelWidth = oppositeEndianess ? this.switchEndainness(header[6]) : header[6]; // level 0 value of arg passed to gl.compressedTexImage2D(,,,x,,,)
  90816. this.pixelHeight = oppositeEndianess ? this.switchEndainness(header[7]) : header[7]; // level 0 value of arg passed to gl.compressedTexImage2D(,,,,x,,)
  90817. this.pixelDepth = oppositeEndianess ? this.switchEndainness(header[8]) : header[8]; // level 0 value of arg passed to gl.compressedTexImage3D(,,,,,x,,)
  90818. this.numberOfArrayElements = oppositeEndianess ? this.switchEndainness(header[9]) : header[9]; // used for texture arrays
  90819. this.numberOfFaces = oppositeEndianess ? this.switchEndainness(header[10]) : header[10]; // used for cubemap textures, should either be 1 or 6
  90820. this.numberOfMipmapLevels = oppositeEndianess ? this.switchEndainness(header[11]) : header[11]; // number of levels; disregard possibility of 0 for compressed textures
  90821. this.bytesOfKeyValueData = oppositeEndianess ? this.switchEndainness(header[12]) : header[12]; // the amount of space after the header for meta-data
  90822. // Make sure we have a compressed type. Not only reduces work, but probably better to let dev know they are not compressing.
  90823. if (this.glType !== 0) {
  90824. BABYLON.Tools.Error("only compressed formats currently supported");
  90825. return;
  90826. }
  90827. else {
  90828. // value of zero is an indication to generate mipmaps @ runtime. Not usually allowed for compressed, so disregard.
  90829. this.numberOfMipmapLevels = Math.max(1, this.numberOfMipmapLevels);
  90830. }
  90831. if (this.pixelHeight === 0 || this.pixelDepth !== 0) {
  90832. BABYLON.Tools.Error("only 2D textures currently supported");
  90833. return;
  90834. }
  90835. if (this.numberOfArrayElements !== 0) {
  90836. BABYLON.Tools.Error("texture arrays not currently supported");
  90837. return;
  90838. }
  90839. if (this.numberOfFaces !== facesExpected) {
  90840. BABYLON.Tools.Error("number of faces expected" + facesExpected + ", but found " + this.numberOfFaces);
  90841. return;
  90842. }
  90843. // we now have a completely validated file, so could use existence of loadType as success
  90844. // would need to make this more elaborate & adjust checks above to support more than one load type
  90845. this.loadType = KhronosTextureContainer.COMPRESSED_2D;
  90846. }
  90847. // not as fast hardware based, but will probably never need to use
  90848. KhronosTextureContainer.prototype.switchEndainness = function (val) {
  90849. return ((val & 0xFF) << 24)
  90850. | ((val & 0xFF00) << 8)
  90851. | ((val >> 8) & 0xFF00)
  90852. | ((val >> 24) & 0xFF);
  90853. };
  90854. /**
  90855. * Uploads KTX content to a Babylon Texture.
  90856. * It is assumed that the texture has already been created & is currently bound
  90857. * @hidden
  90858. */
  90859. KhronosTextureContainer.prototype.uploadLevels = function (texture, loadMipmaps) {
  90860. switch (this.loadType) {
  90861. case KhronosTextureContainer.COMPRESSED_2D:
  90862. this._upload2DCompressedLevels(texture, loadMipmaps);
  90863. break;
  90864. case KhronosTextureContainer.TEX_2D:
  90865. case KhronosTextureContainer.COMPRESSED_3D:
  90866. case KhronosTextureContainer.TEX_3D:
  90867. }
  90868. };
  90869. KhronosTextureContainer.prototype._upload2DCompressedLevels = function (texture, loadMipmaps) {
  90870. // initialize width & height for level 1
  90871. var dataOffset = KhronosTextureContainer.HEADER_LEN + this.bytesOfKeyValueData;
  90872. var width = this.pixelWidth;
  90873. var height = this.pixelHeight;
  90874. var mipmapCount = loadMipmaps ? this.numberOfMipmapLevels : 1;
  90875. for (var level = 0; level < mipmapCount; level++) {
  90876. var imageSize = new Int32Array(this.arrayBuffer, dataOffset, 1)[0]; // size per face, since not supporting array cubemaps
  90877. dataOffset += 4; //image data starts from next multiple of 4 offset. Each face refers to same imagesize field above.
  90878. for (var face = 0; face < this.numberOfFaces; face++) {
  90879. var byteArray = new Uint8Array(this.arrayBuffer, dataOffset, imageSize);
  90880. var engine = texture.getEngine();
  90881. engine._uploadCompressedDataToTextureDirectly(texture, this.glInternalFormat, width, height, byteArray, face, level);
  90882. dataOffset += imageSize; // add size of the image for the next face/mipmap
  90883. dataOffset += 3 - ((imageSize + 3) % 4); // add padding for odd sized image
  90884. }
  90885. width = Math.max(1.0, width * 0.5);
  90886. height = Math.max(1.0, height * 0.5);
  90887. }
  90888. };
  90889. KhronosTextureContainer.HEADER_LEN = 12 + (13 * 4); // identifier + header elements (not including key value meta-data pairs)
  90890. // load types
  90891. KhronosTextureContainer.COMPRESSED_2D = 0; // uses a gl.compressedTexImage2D()
  90892. KhronosTextureContainer.COMPRESSED_3D = 1; // uses a gl.compressedTexImage3D()
  90893. KhronosTextureContainer.TEX_2D = 2; // uses a gl.texImage2D()
  90894. KhronosTextureContainer.TEX_3D = 3; // uses a gl.texImage3D()
  90895. return KhronosTextureContainer;
  90896. }());
  90897. BABYLON.KhronosTextureContainer = KhronosTextureContainer;
  90898. })(BABYLON || (BABYLON = {}));
  90899. //# sourceMappingURL=babylon.khronosTextureContainer.js.map
  90900. var BABYLON;
  90901. (function (BABYLON) {
  90902. /**
  90903. * Implementation of the KTX Texture Loader.
  90904. */
  90905. var KTXTextureLoader = /** @class */ (function () {
  90906. function KTXTextureLoader() {
  90907. /**
  90908. * Defines wether the loader supports cascade loading the different faces.
  90909. */
  90910. this.supportCascades = false;
  90911. }
  90912. /**
  90913. * This returns if the loader support the current file information.
  90914. * @param extension defines the file extension of the file being loaded
  90915. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90916. * @param fallback defines the fallback internal texture if any
  90917. * @param isBase64 defines whether the texture is encoded as a base64
  90918. * @param isBuffer defines whether the texture data are stored as a buffer
  90919. * @returns true if the loader can load the specified file
  90920. */
  90921. KTXTextureLoader.prototype.canLoad = function (extension, textureFormatInUse, fallback, isBase64, isBuffer) {
  90922. if (textureFormatInUse && !isBase64 && !fallback && !isBuffer) {
  90923. return true;
  90924. }
  90925. return false;
  90926. };
  90927. /**
  90928. * Transform the url before loading if required.
  90929. * @param rootUrl the url of the texture
  90930. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90931. * @returns the transformed texture
  90932. */
  90933. KTXTextureLoader.prototype.transformUrl = function (rootUrl, textureFormatInUse) {
  90934. var lastDot = rootUrl.lastIndexOf('.');
  90935. return (lastDot > -1 ? rootUrl.substring(0, lastDot) : rootUrl) + textureFormatInUse;
  90936. };
  90937. /**
  90938. * Gets the fallback url in case the load fail. This can return null to allow the default fallback mecanism to work
  90939. * @param rootUrl the url of the texture
  90940. * @param textureFormatInUse defines the current compressed format in use iun the engine
  90941. * @returns the fallback texture
  90942. */
  90943. KTXTextureLoader.prototype.getFallbackTextureUrl = function (rootUrl, textureFormatInUse) {
  90944. // remove the format appended to the rootUrl in the original createCubeTexture call.
  90945. var exp = new RegExp("" + textureFormatInUse + "$");
  90946. return rootUrl.replace(exp, "");
  90947. };
  90948. /**
  90949. * Uploads the cube texture data to the WebGl Texture. It has alreday been bound.
  90950. * @param data contains the texture data
  90951. * @param texture defines the BabylonJS internal texture
  90952. * @param createPolynomials will be true if polynomials have been requested
  90953. * @param onLoad defines the callback to trigger once the texture is ready
  90954. * @param onError defines the callback to trigger in case of error
  90955. */
  90956. KTXTextureLoader.prototype.loadCubeData = function (data, texture, createPolynomials, onLoad, onError) {
  90957. if (Array.isArray(data)) {
  90958. return;
  90959. }
  90960. var engine = texture.getEngine();
  90961. var ktx = new BABYLON.KhronosTextureContainer(data, 6);
  90962. var loadMipmap = ktx.numberOfMipmapLevels > 1 && texture.generateMipMaps;
  90963. engine._unpackFlipY(true);
  90964. ktx.uploadLevels(texture, texture.generateMipMaps);
  90965. texture.width = ktx.pixelWidth;
  90966. texture.height = ktx.pixelHeight;
  90967. engine._setCubeMapTextureParams(loadMipmap);
  90968. texture.isReady = true;
  90969. };
  90970. /**
  90971. * Uploads the 2D texture data to the WebGl Texture. It has alreday been bound once in the callback.
  90972. * @param data contains the texture data
  90973. * @param texture defines the BabylonJS internal texture
  90974. * @param callback defines the method to call once ready to upload
  90975. */
  90976. KTXTextureLoader.prototype.loadData = function (data, texture, callback) {
  90977. var ktx = new BABYLON.KhronosTextureContainer(data, 1);
  90978. callback(ktx.pixelWidth, ktx.pixelHeight, false, true, function () {
  90979. ktx.uploadLevels(texture, texture.generateMipMaps);
  90980. });
  90981. };
  90982. return KTXTextureLoader;
  90983. }());
  90984. // Register the loader.
  90985. BABYLON.Engine._TextureLoaders.unshift(new KTXTextureLoader());
  90986. })(BABYLON || (BABYLON = {}));
  90987. //# sourceMappingURL=babylon.ktxTextureLoader.js.map
  90988. var BABYLON;
  90989. (function (BABYLON) {
  90990. /**
  90991. * Sets of helpers addressing the serialization and deserialization of environment texture
  90992. * stored in a BabylonJS env file.
  90993. * Those files are usually stored as .env files.
  90994. */
  90995. var EnvironmentTextureTools = /** @class */ (function () {
  90996. function EnvironmentTextureTools() {
  90997. }
  90998. /**
  90999. * Gets the environment info from an env file.
  91000. * @param data The array buffer containing the .env bytes.
  91001. * @returns the environment file info (the json header) if successfully parsed.
  91002. */
  91003. EnvironmentTextureTools.GetEnvInfo = function (data) {
  91004. var dataView = new DataView(data);
  91005. var pos = 0;
  91006. for (var i = 0; i < EnvironmentTextureTools._MagicBytes.length; i++) {
  91007. if (dataView.getUint8(pos++) !== EnvironmentTextureTools._MagicBytes[i]) {
  91008. BABYLON.Tools.Error('Not a babylon environment map');
  91009. return null;
  91010. }
  91011. }
  91012. // Read json manifest - collect characters up to null terminator
  91013. var manifestString = '';
  91014. var charCode = 0x00;
  91015. while ((charCode = dataView.getUint8(pos++))) {
  91016. manifestString += String.fromCharCode(charCode);
  91017. }
  91018. var manifest = JSON.parse(manifestString);
  91019. if (manifest.specular) {
  91020. // Extend the header with the position of the payload.
  91021. manifest.specular.specularDataPosition = pos;
  91022. // Fallback to 0.8 exactly if lodGenerationScale is not defined for backward compatibility.
  91023. manifest.specular.lodGenerationScale = manifest.specular.lodGenerationScale || 0.8;
  91024. }
  91025. return manifest;
  91026. };
  91027. /**
  91028. * Creates an environment texture from a loaded cube texture.
  91029. * @param texture defines the cube texture to convert in env file
  91030. * @return a promise containing the environment data if succesfull.
  91031. */
  91032. EnvironmentTextureTools.CreateEnvTextureAsync = function (texture) {
  91033. var _this = this;
  91034. var internalTexture = texture.getInternalTexture();
  91035. if (!internalTexture) {
  91036. return Promise.reject("The cube texture is invalid.");
  91037. }
  91038. if (!texture._prefiltered) {
  91039. return Promise.reject("The cube texture is invalid (not prefiltered).");
  91040. }
  91041. var engine = internalTexture.getEngine();
  91042. if (engine && engine.premultipliedAlpha) {
  91043. return Promise.reject("Env texture can only be created when the engine is created with the premultipliedAlpha option set to false.");
  91044. }
  91045. if (texture.textureType === BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT) {
  91046. return Promise.reject("The cube texture should allow HDR (Full Float or Half Float).");
  91047. }
  91048. var canvas = engine.getRenderingCanvas();
  91049. if (!canvas) {
  91050. return Promise.reject("Env texture can only be created when the engine is associated to a canvas.");
  91051. }
  91052. var textureType = BABYLON.Engine.TEXTURETYPE_FLOAT;
  91053. if (!engine.getCaps().textureFloatRender) {
  91054. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  91055. if (!engine.getCaps().textureHalfFloatRender) {
  91056. return Promise.reject("Env texture can only be created when the browser supports half float or full float rendering.");
  91057. }
  91058. }
  91059. var cubeWidth = internalTexture.width;
  91060. var hostingScene = new BABYLON.Scene(engine);
  91061. var specularTextures = {};
  91062. var promises = [];
  91063. // Read and collect all mipmaps data from the cube.
  91064. var mipmapsCount = BABYLON.Scalar.Log2(internalTexture.width);
  91065. mipmapsCount = Math.round(mipmapsCount);
  91066. var _loop_1 = function (i) {
  91067. var faceWidth = Math.pow(2, mipmapsCount - i);
  91068. var _loop_2 = function (face) {
  91069. var data = texture.readPixels(face, i);
  91070. // Creates a temp texture with the face data.
  91071. var tempTexture = engine.createRawTexture(data, faceWidth, faceWidth, BABYLON.Engine.TEXTUREFORMAT_RGBA, false, false, BABYLON.Texture.NEAREST_SAMPLINGMODE, null, textureType);
  91072. // And rgbdEncode them.
  91073. var promise = new Promise(function (resolve, reject) {
  91074. var rgbdPostProcess = new BABYLON.PostProcess("rgbdEncode", "rgbdEncode", null, null, 1, null, BABYLON.Texture.NEAREST_SAMPLINGMODE, engine, false, undefined, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT, undefined, null, false);
  91075. rgbdPostProcess.getEffect().executeWhenCompiled(function () {
  91076. rgbdPostProcess.onApply = function (effect) {
  91077. effect._bindTexture("textureSampler", tempTexture);
  91078. };
  91079. // As the process needs to happen on the main canvas, keep track of the current size
  91080. var currentW = engine.getRenderWidth();
  91081. var currentH = engine.getRenderHeight();
  91082. // Set the desired size for the texture
  91083. engine.setSize(faceWidth, faceWidth);
  91084. hostingScene.postProcessManager.directRender([rgbdPostProcess], null);
  91085. // Reading datas from WebGL
  91086. BABYLON.Tools.ToBlob(canvas, function (blob) {
  91087. var fileReader = new FileReader();
  91088. fileReader.onload = function (event) {
  91089. var arrayBuffer = event.target.result;
  91090. specularTextures[i * 6 + face] = arrayBuffer;
  91091. resolve();
  91092. };
  91093. fileReader.readAsArrayBuffer(blob);
  91094. });
  91095. // Reapply the previous canvas size
  91096. engine.setSize(currentW, currentH);
  91097. });
  91098. });
  91099. promises.push(promise);
  91100. };
  91101. // All faces of the cube.
  91102. for (var face = 0; face < 6; face++) {
  91103. _loop_2(face);
  91104. }
  91105. };
  91106. for (var i = 0; i <= mipmapsCount; i++) {
  91107. _loop_1(i);
  91108. }
  91109. // Once all the textures haves been collected as RGBD stored in PNGs
  91110. return Promise.all(promises).then(function () {
  91111. // We can delete the hosting scene keeping track of all the creation objects
  91112. hostingScene.dispose();
  91113. // Creates the json header for the env texture
  91114. var info = {
  91115. version: 1,
  91116. width: cubeWidth,
  91117. irradiance: _this._CreateEnvTextureIrradiance(texture),
  91118. specular: {
  91119. mipmaps: [],
  91120. lodGenerationScale: texture.lodGenerationScale
  91121. }
  91122. };
  91123. // Sets the specular image data information
  91124. var position = 0;
  91125. for (var i = 0; i <= mipmapsCount; i++) {
  91126. for (var face = 0; face < 6; face++) {
  91127. var byteLength = specularTextures[i * 6 + face].byteLength;
  91128. info.specular.mipmaps.push({
  91129. length: byteLength,
  91130. position: position
  91131. });
  91132. position += byteLength;
  91133. }
  91134. }
  91135. // Encode the JSON as an array buffer
  91136. var infoString = JSON.stringify(info);
  91137. var infoBuffer = new ArrayBuffer(infoString.length + 1);
  91138. var infoView = new Uint8Array(infoBuffer); // Limited to ascii subset matching unicode.
  91139. for (var i = 0, strLen = infoString.length; i < strLen; i++) {
  91140. infoView[i] = infoString.charCodeAt(i);
  91141. }
  91142. // Ends up with a null terminator for easier parsing
  91143. infoView[infoString.length] = 0x00;
  91144. // Computes the final required size and creates the storage
  91145. var totalSize = EnvironmentTextureTools._MagicBytes.length + position + infoBuffer.byteLength;
  91146. var finalBuffer = new ArrayBuffer(totalSize);
  91147. var finalBufferView = new Uint8Array(finalBuffer);
  91148. var dataView = new DataView(finalBuffer);
  91149. // Copy the magic bytes identifying the file in
  91150. var pos = 0;
  91151. for (var i = 0; i < EnvironmentTextureTools._MagicBytes.length; i++) {
  91152. dataView.setUint8(pos++, EnvironmentTextureTools._MagicBytes[i]);
  91153. }
  91154. // Add the json info
  91155. finalBufferView.set(new Uint8Array(infoBuffer), pos);
  91156. pos += infoBuffer.byteLength;
  91157. // Finally inserts the texture data
  91158. for (var i = 0; i <= mipmapsCount; i++) {
  91159. for (var face = 0; face < 6; face++) {
  91160. var dataBuffer = specularTextures[i * 6 + face];
  91161. finalBufferView.set(new Uint8Array(dataBuffer), pos);
  91162. pos += dataBuffer.byteLength;
  91163. }
  91164. }
  91165. // Voila
  91166. return finalBuffer;
  91167. });
  91168. };
  91169. /**
  91170. * Creates a JSON representation of the spherical data.
  91171. * @param texture defines the texture containing the polynomials
  91172. * @return the JSON representation of the spherical info
  91173. */
  91174. EnvironmentTextureTools._CreateEnvTextureIrradiance = function (texture) {
  91175. var polynmials = texture.sphericalPolynomial;
  91176. if (polynmials == null) {
  91177. return null;
  91178. }
  91179. return {
  91180. x: [polynmials.x.x, polynmials.x.y, polynmials.x.z],
  91181. y: [polynmials.y.x, polynmials.y.y, polynmials.y.z],
  91182. z: [polynmials.z.x, polynmials.z.y, polynmials.z.z],
  91183. xx: [polynmials.xx.x, polynmials.xx.y, polynmials.xx.z],
  91184. yy: [polynmials.yy.x, polynmials.yy.y, polynmials.yy.z],
  91185. zz: [polynmials.zz.x, polynmials.zz.y, polynmials.zz.z],
  91186. yz: [polynmials.yz.x, polynmials.yz.y, polynmials.yz.z],
  91187. zx: [polynmials.zx.x, polynmials.zx.y, polynmials.zx.z],
  91188. xy: [polynmials.xy.x, polynmials.xy.y, polynmials.xy.z]
  91189. };
  91190. };
  91191. /**
  91192. * Uploads the texture info contained in the env file to the GPU.
  91193. * @param texture defines the internal texture to upload to
  91194. * @param arrayBuffer defines the buffer cotaining the data to load
  91195. * @param info defines the texture info retrieved through the GetEnvInfo method
  91196. * @returns a promise
  91197. */
  91198. EnvironmentTextureTools.UploadEnvLevelsAsync = function (texture, arrayBuffer, info) {
  91199. if (info.version !== 1) {
  91200. throw new Error("Unsupported babylon environment map version \"" + info.version + "\"");
  91201. }
  91202. var specularInfo = info.specular;
  91203. if (!specularInfo) {
  91204. // Nothing else parsed so far
  91205. return Promise.resolve();
  91206. }
  91207. // Double checks the enclosed info
  91208. var mipmapsCount = BABYLON.Scalar.Log2(info.width);
  91209. mipmapsCount = Math.round(mipmapsCount) + 1;
  91210. if (specularInfo.mipmaps.length !== 6 * mipmapsCount) {
  91211. throw new Error("Unsupported specular mipmaps number \"" + specularInfo.mipmaps.length + "\"");
  91212. }
  91213. texture._lodGenerationScale = specularInfo.lodGenerationScale;
  91214. var imageData = new Array(mipmapsCount);
  91215. for (var i = 0; i < mipmapsCount; i++) {
  91216. imageData[i] = new Array(6);
  91217. for (var face = 0; face < 6; face++) {
  91218. var imageInfo = specularInfo.mipmaps[i * 6 + face];
  91219. imageData[i][face] = new Uint8Array(arrayBuffer, specularInfo.specularDataPosition + imageInfo.position, imageInfo.length);
  91220. }
  91221. }
  91222. return EnvironmentTextureTools.UploadLevelsAsync(texture, imageData);
  91223. };
  91224. /**
  91225. * Uploads the levels of image data to the GPU.
  91226. * @param texture defines the internal texture to upload to
  91227. * @param imageData defines the array buffer views of image data [mipmap][face]
  91228. * @returns a promise
  91229. */
  91230. EnvironmentTextureTools.UploadLevelsAsync = function (texture, imageData) {
  91231. if (!BABYLON.Tools.IsExponentOfTwo(texture.width)) {
  91232. throw new Error("Texture size must be a power of two");
  91233. }
  91234. var mipmapsCount = Math.round(BABYLON.Scalar.Log2(texture.width)) + 1;
  91235. // Gets everything ready.
  91236. var engine = texture.getEngine();
  91237. var expandTexture = false;
  91238. var generateNonLODTextures = false;
  91239. var rgbdPostProcess = null;
  91240. var cubeRtt = null;
  91241. var lodTextures = null;
  91242. var caps = engine.getCaps();
  91243. texture.format = BABYLON.Engine.TEXTUREFORMAT_RGBA;
  91244. texture.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  91245. texture.generateMipMaps = true;
  91246. engine.updateTextureSamplingMode(BABYLON.Texture.TRILINEAR_SAMPLINGMODE, texture);
  91247. // Add extra process if texture lod is not supported
  91248. if (!caps.textureLOD) {
  91249. expandTexture = false;
  91250. generateNonLODTextures = true;
  91251. lodTextures = {};
  91252. }
  91253. // in webgl 1 there are no ways to either render or copy lod level information for float textures.
  91254. else if (engine.webGLVersion < 2) {
  91255. expandTexture = false;
  91256. }
  91257. // If half float available we can uncompress the texture
  91258. else if (caps.textureHalfFloatRender && caps.textureHalfFloatLinearFiltering) {
  91259. expandTexture = true;
  91260. texture.type = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  91261. }
  91262. // If full float available we can uncompress the texture
  91263. else if (caps.textureFloatRender && caps.textureFloatLinearFiltering) {
  91264. expandTexture = true;
  91265. texture.type = BABYLON.Engine.TEXTURETYPE_FLOAT;
  91266. }
  91267. // Expand the texture if possible
  91268. if (expandTexture) {
  91269. // Simply run through the decode PP
  91270. rgbdPostProcess = new BABYLON.PostProcess("rgbdDecode", "rgbdDecode", null, null, 1, null, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, engine, false, undefined, texture.type, undefined, null, false);
  91271. texture._isRGBD = false;
  91272. texture.invertY = false;
  91273. cubeRtt = engine.createRenderTargetCubeTexture(texture.width, {
  91274. generateDepthBuffer: false,
  91275. generateMipMaps: true,
  91276. generateStencilBuffer: false,
  91277. samplingMode: BABYLON.Texture.TRILINEAR_SAMPLINGMODE,
  91278. type: texture.type,
  91279. format: BABYLON.Engine.TEXTUREFORMAT_RGBA
  91280. });
  91281. }
  91282. else {
  91283. texture._isRGBD = true;
  91284. texture.invertY = true;
  91285. // In case of missing support, applies the same patch than DDS files.
  91286. if (generateNonLODTextures) {
  91287. var mipSlices = 3;
  91288. var scale = texture._lodGenerationScale;
  91289. var offset = texture._lodGenerationOffset;
  91290. for (var i = 0; i < mipSlices; i++) {
  91291. //compute LOD from even spacing in smoothness (matching shader calculation)
  91292. var smoothness = i / (mipSlices - 1);
  91293. var roughness = 1 - smoothness;
  91294. var minLODIndex = offset; // roughness = 0
  91295. var maxLODIndex = (mipmapsCount - 1) * scale + offset; // roughness = 1 (mipmaps start from 0)
  91296. var lodIndex = minLODIndex + (maxLODIndex - minLODIndex) * roughness;
  91297. var mipmapIndex = Math.round(Math.min(Math.max(lodIndex, 0), maxLODIndex));
  91298. var glTextureFromLod = new BABYLON.InternalTexture(engine, BABYLON.InternalTexture.DATASOURCE_TEMP);
  91299. glTextureFromLod.isCube = true;
  91300. glTextureFromLod.invertY = true;
  91301. glTextureFromLod.generateMipMaps = false;
  91302. engine.updateTextureSamplingMode(BABYLON.Texture.LINEAR_LINEAR, glTextureFromLod);
  91303. // Wrap in a base texture for easy binding.
  91304. var lodTexture = new BABYLON.BaseTexture(null);
  91305. lodTexture.isCube = true;
  91306. lodTexture._texture = glTextureFromLod;
  91307. lodTextures[mipmapIndex] = lodTexture;
  91308. switch (i) {
  91309. case 0:
  91310. texture._lodTextureLow = lodTexture;
  91311. break;
  91312. case 1:
  91313. texture._lodTextureMid = lodTexture;
  91314. break;
  91315. case 2:
  91316. texture._lodTextureHigh = lodTexture;
  91317. break;
  91318. }
  91319. }
  91320. }
  91321. }
  91322. var promises = [];
  91323. var _loop_3 = function (i) {
  91324. var _loop_4 = function (face) {
  91325. // Constructs an image element from image data
  91326. var bytes = imageData[i][face];
  91327. var blob = new Blob([bytes], { type: 'image/png' });
  91328. var url = URL.createObjectURL(blob);
  91329. var image = new Image();
  91330. image.src = url;
  91331. // Enqueue promise to upload to the texture.
  91332. var promise = new Promise(function (resolve, reject) {
  91333. image.onload = function () {
  91334. if (expandTexture) {
  91335. var tempTexture_1 = engine.createTexture(null, true, true, null, BABYLON.Texture.NEAREST_SAMPLINGMODE, null, function (message) {
  91336. reject(message);
  91337. }, image);
  91338. rgbdPostProcess.getEffect().executeWhenCompiled(function () {
  91339. // Uncompress the data to a RTT
  91340. rgbdPostProcess.onApply = function (effect) {
  91341. effect._bindTexture("textureSampler", tempTexture_1);
  91342. effect.setFloat2("scale", 1, 1);
  91343. };
  91344. engine.scenes[0].postProcessManager.directRender([rgbdPostProcess], cubeRtt, true, face, i);
  91345. // Cleanup
  91346. engine.restoreDefaultFramebuffer();
  91347. tempTexture_1.dispose();
  91348. window.URL.revokeObjectURL(url);
  91349. resolve();
  91350. });
  91351. }
  91352. else {
  91353. engine._uploadImageToTexture(texture, image, face, i);
  91354. // Upload the face to the non lod texture support
  91355. if (generateNonLODTextures) {
  91356. var lodTexture = lodTextures[i];
  91357. if (lodTexture) {
  91358. engine._uploadImageToTexture(lodTexture._texture, image, face, 0);
  91359. }
  91360. }
  91361. resolve();
  91362. }
  91363. };
  91364. image.onerror = function (error) {
  91365. reject(error);
  91366. };
  91367. });
  91368. promises.push(promise);
  91369. };
  91370. // All faces
  91371. for (var face = 0; face < 6; face++) {
  91372. _loop_4(face);
  91373. }
  91374. };
  91375. // All mipmaps up to provided number of images
  91376. for (var i = 0; i < imageData.length; i++) {
  91377. _loop_3(i);
  91378. }
  91379. // Fill remaining mipmaps with black textures.
  91380. if (imageData.length < mipmapsCount) {
  91381. var data = void 0;
  91382. var size = Math.pow(2, mipmapsCount - 1 - imageData.length);
  91383. var dataLength = size * size * 4;
  91384. switch (texture.type) {
  91385. case BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT: {
  91386. data = new Uint8Array(dataLength);
  91387. break;
  91388. }
  91389. case BABYLON.Engine.TEXTURETYPE_HALF_FLOAT: {
  91390. data = new Uint16Array(dataLength);
  91391. break;
  91392. }
  91393. case BABYLON.Engine.TEXTURETYPE_FLOAT: {
  91394. data = new Float32Array(dataLength);
  91395. break;
  91396. }
  91397. }
  91398. for (var i = imageData.length; i < mipmapsCount; i++) {
  91399. for (var face = 0; face < 6; face++) {
  91400. engine._uploadArrayBufferViewToTexture(texture, data, face, i);
  91401. }
  91402. }
  91403. }
  91404. // Once all done, finishes the cleanup and return
  91405. return Promise.all(promises).then(function () {
  91406. // Release temp RTT.
  91407. if (cubeRtt) {
  91408. engine._releaseFramebufferObjects(cubeRtt);
  91409. cubeRtt._swapAndDie(texture);
  91410. }
  91411. // Release temp Post Process.
  91412. if (rgbdPostProcess) {
  91413. rgbdPostProcess.dispose();
  91414. }
  91415. // Flag internal texture as ready in case they are in use.
  91416. if (generateNonLODTextures) {
  91417. if (texture._lodTextureHigh && texture._lodTextureHigh._texture) {
  91418. texture._lodTextureHigh._texture.isReady = true;
  91419. }
  91420. if (texture._lodTextureMid && texture._lodTextureMid._texture) {
  91421. texture._lodTextureMid._texture.isReady = true;
  91422. }
  91423. if (texture._lodTextureLow && texture._lodTextureLow._texture) {
  91424. texture._lodTextureLow._texture.isReady = true;
  91425. }
  91426. }
  91427. });
  91428. };
  91429. /**
  91430. * Uploads spherical polynomials information to the texture.
  91431. * @param texture defines the texture we are trying to upload the information to
  91432. * @param info defines the environment texture info retrieved through the GetEnvInfo method
  91433. */
  91434. EnvironmentTextureTools.UploadEnvSpherical = function (texture, info) {
  91435. if (info.version !== 1) {
  91436. BABYLON.Tools.Warn('Unsupported babylon environment map version "' + info.version + '"');
  91437. }
  91438. var irradianceInfo = info.irradiance;
  91439. if (!irradianceInfo) {
  91440. return;
  91441. }
  91442. var sp = new BABYLON.SphericalPolynomial();
  91443. BABYLON.Vector3.FromArrayToRef(irradianceInfo.x, 0, sp.x);
  91444. BABYLON.Vector3.FromArrayToRef(irradianceInfo.y, 0, sp.y);
  91445. BABYLON.Vector3.FromArrayToRef(irradianceInfo.z, 0, sp.z);
  91446. BABYLON.Vector3.FromArrayToRef(irradianceInfo.xx, 0, sp.xx);
  91447. BABYLON.Vector3.FromArrayToRef(irradianceInfo.yy, 0, sp.yy);
  91448. BABYLON.Vector3.FromArrayToRef(irradianceInfo.zz, 0, sp.zz);
  91449. BABYLON.Vector3.FromArrayToRef(irradianceInfo.yz, 0, sp.yz);
  91450. BABYLON.Vector3.FromArrayToRef(irradianceInfo.zx, 0, sp.zx);
  91451. BABYLON.Vector3.FromArrayToRef(irradianceInfo.xy, 0, sp.xy);
  91452. texture._sphericalPolynomial = sp;
  91453. };
  91454. /**
  91455. * Magic number identifying the env file.
  91456. */
  91457. EnvironmentTextureTools._MagicBytes = [0x86, 0x16, 0x87, 0x96, 0xf6, 0xd6, 0x96, 0x36];
  91458. return EnvironmentTextureTools;
  91459. }());
  91460. BABYLON.EnvironmentTextureTools = EnvironmentTextureTools;
  91461. })(BABYLON || (BABYLON = {}));
  91462. //# sourceMappingURL=babylon.environmentTextureTools.js.map
  91463. var BABYLON;
  91464. (function (BABYLON) {
  91465. /**
  91466. * Implementation of the ENV Texture Loader.
  91467. */
  91468. var ENVTextureLoader = /** @class */ (function () {
  91469. function ENVTextureLoader() {
  91470. /**
  91471. * Defines wether the loader supports cascade loading the different faces.
  91472. */
  91473. this.supportCascades = false;
  91474. }
  91475. /**
  91476. * This returns if the loader support the current file information.
  91477. * @param extension defines the file extension of the file being loaded
  91478. * @param textureFormatInUse defines the current compressed format in use iun the engine
  91479. * @param fallback defines the fallback internal texture if any
  91480. * @param isBase64 defines whether the texture is encoded as a base64
  91481. * @param isBuffer defines whether the texture data are stored as a buffer
  91482. * @returns true if the loader can load the specified file
  91483. */
  91484. ENVTextureLoader.prototype.canLoad = function (extension, textureFormatInUse, fallback, isBase64, isBuffer) {
  91485. return extension.indexOf(".env") === 0;
  91486. };
  91487. /**
  91488. * Transform the url before loading if required.
  91489. * @param rootUrl the url of the texture
  91490. * @param textureFormatInUse defines the current compressed format in use iun the engine
  91491. * @returns the transformed texture
  91492. */
  91493. ENVTextureLoader.prototype.transformUrl = function (rootUrl, textureFormatInUse) {
  91494. return rootUrl;
  91495. };
  91496. /**
  91497. * Gets the fallback url in case the load fail. This can return null to allow the default fallback mecanism to work
  91498. * @param rootUrl the url of the texture
  91499. * @param textureFormatInUse defines the current compressed format in use iun the engine
  91500. * @returns the fallback texture
  91501. */
  91502. ENVTextureLoader.prototype.getFallbackTextureUrl = function (rootUrl, textureFormatInUse) {
  91503. return null;
  91504. };
  91505. /**
  91506. * Uploads the cube texture data to the WebGl Texture. It has alreday been bound.
  91507. * @param data contains the texture data
  91508. * @param texture defines the BabylonJS internal texture
  91509. * @param createPolynomials will be true if polynomials have been requested
  91510. * @param onLoad defines the callback to trigger once the texture is ready
  91511. * @param onError defines the callback to trigger in case of error
  91512. */
  91513. ENVTextureLoader.prototype.loadCubeData = function (data, texture, createPolynomials, onLoad, onError) {
  91514. if (Array.isArray(data)) {
  91515. return;
  91516. }
  91517. data = data;
  91518. var info = BABYLON.EnvironmentTextureTools.GetEnvInfo(data);
  91519. if (info) {
  91520. texture.width = info.width;
  91521. texture.height = info.width;
  91522. BABYLON.EnvironmentTextureTools.UploadEnvSpherical(texture, info);
  91523. BABYLON.EnvironmentTextureTools.UploadEnvLevelsAsync(texture, data, info).then(function () {
  91524. texture.isReady = true;
  91525. if (onLoad) {
  91526. onLoad();
  91527. }
  91528. });
  91529. }
  91530. else if (onError) {
  91531. onError("Can not parse the environment file", null);
  91532. }
  91533. };
  91534. /**
  91535. * Uploads the 2D texture data to the WebGl Texture. It has alreday been bound once in the callback.
  91536. * @param data contains the texture data
  91537. * @param texture defines the BabylonJS internal texture
  91538. * @param callback defines the method to call once ready to upload
  91539. */
  91540. ENVTextureLoader.prototype.loadData = function (data, texture, callback) {
  91541. throw ".env not supported in 2d.";
  91542. };
  91543. return ENVTextureLoader;
  91544. }());
  91545. // Register the loader.
  91546. BABYLON.Engine._TextureLoaders.push(new ENVTextureLoader());
  91547. })(BABYLON || (BABYLON = {}));
  91548. //# sourceMappingURL=babylon.envTextureLoader.js.map
  91549. var BABYLON;
  91550. (function (BABYLON) {
  91551. /**
  91552. * Renders a layer on top of an existing scene
  91553. */
  91554. var UtilityLayerRenderer = /** @class */ (function () {
  91555. /**
  91556. * Instantiates a UtilityLayerRenderer
  91557. * @param originalScene the original scene that will be rendered on top of
  91558. */
  91559. function UtilityLayerRenderer(
  91560. /** the original scene that will be rendered on top of */
  91561. originalScene) {
  91562. var _this = this;
  91563. this.originalScene = originalScene;
  91564. this._pointerCaptures = {};
  91565. this._lastPointerEvents = {};
  91566. /**
  91567. * If the utility layer should automatically be rendered on top of existing scene
  91568. */
  91569. this.shouldRender = true;
  91570. /**
  91571. * If set to true, only pointer down onPointerObservable events will be blocked when picking is occluded by original scene
  91572. */
  91573. this.onlyCheckPointerDownEvents = true;
  91574. /**
  91575. * If set to false, only pointerUp, pointerDown and pointerMove will be sent to the utilityLayerScene (false by default)
  91576. */
  91577. this.processAllEvents = false;
  91578. /**
  91579. * Observable raised when the pointer move from the utility layer scene to the main scene
  91580. */
  91581. this.onPointerOutObservable = new BABYLON.Observable();
  91582. // Create scene which will be rendered in the foreground and remove it from being referenced by engine to avoid interfering with existing app
  91583. this.utilityLayerScene = new BABYLON.Scene(originalScene.getEngine());
  91584. this.utilityLayerScene._allowPostProcessClearColor = false;
  91585. originalScene.getEngine().scenes.pop();
  91586. // Detach controls on utility scene, events will be fired by logic below to handle picking priority
  91587. this.utilityLayerScene.detachControl();
  91588. this._originalPointerObserver = originalScene.onPrePointerObservable.add(function (prePointerInfo, eventState) {
  91589. if (!_this.processAllEvents) {
  91590. if (prePointerInfo.type !== BABYLON.PointerEventTypes.POINTERMOVE
  91591. && prePointerInfo.type !== BABYLON.PointerEventTypes.POINTERUP
  91592. && prePointerInfo.type !== BABYLON.PointerEventTypes.POINTERDOWN) {
  91593. return;
  91594. }
  91595. }
  91596. var pointerEvent = (prePointerInfo.event);
  91597. if (originalScene.isPointerCaptured(pointerEvent.pointerId)) {
  91598. _this._pointerCaptures[pointerEvent.pointerId] = false;
  91599. return;
  91600. }
  91601. var utilityScenePick = prePointerInfo.ray ? _this.utilityLayerScene.pickWithRay(prePointerInfo.ray) : _this.utilityLayerScene.pick(originalScene.pointerX, originalScene.pointerY);
  91602. if (!prePointerInfo.ray && utilityScenePick) {
  91603. prePointerInfo.ray = utilityScenePick.ray;
  91604. }
  91605. // always fire the prepointer oversvable
  91606. _this.utilityLayerScene.onPrePointerObservable.notifyObservers(prePointerInfo);
  91607. // allow every non pointer down event to flow to the utility layer
  91608. if (_this.onlyCheckPointerDownEvents && prePointerInfo.type != BABYLON.PointerEventTypes.POINTERDOWN) {
  91609. if (!prePointerInfo.skipOnPointerObservable) {
  91610. _this.utilityLayerScene.onPointerObservable.notifyObservers(new BABYLON.PointerInfo(prePointerInfo.type, prePointerInfo.event, utilityScenePick));
  91611. }
  91612. if (prePointerInfo.type === BABYLON.PointerEventTypes.POINTERUP && _this._pointerCaptures[pointerEvent.pointerId]) {
  91613. _this._pointerCaptures[pointerEvent.pointerId] = false;
  91614. }
  91615. return;
  91616. }
  91617. if (_this.utilityLayerScene.autoClearDepthAndStencil) {
  91618. // If this layer is an overlay, check if this layer was hit and if so, skip pointer events for the main scene
  91619. if (utilityScenePick && utilityScenePick.hit) {
  91620. if (!prePointerInfo.skipOnPointerObservable) {
  91621. _this.utilityLayerScene.onPointerObservable.notifyObservers(new BABYLON.PointerInfo(prePointerInfo.type, prePointerInfo.event, utilityScenePick));
  91622. }
  91623. prePointerInfo.skipOnPointerObservable = true;
  91624. }
  91625. }
  91626. else {
  91627. var originalScenePick = prePointerInfo.ray ? originalScene.pickWithRay(prePointerInfo.ray) : originalScene.pick(originalScene.pointerX, originalScene.pointerY);
  91628. var pointerEvent_1 = (prePointerInfo.event);
  91629. // If the layer can be occluded by the original scene, only fire pointer events to the first layer that hit they ray
  91630. if (originalScenePick && utilityScenePick) {
  91631. // No pick in utility scene
  91632. if (utilityScenePick.distance === 0 && originalScenePick.pickedMesh) {
  91633. if (_this.mainSceneTrackerPredicate && _this.mainSceneTrackerPredicate(originalScenePick.pickedMesh)) {
  91634. // We touched an utility mesh present in the main scene
  91635. _this._notifyObservers(prePointerInfo, originalScenePick, pointerEvent_1);
  91636. prePointerInfo.skipOnPointerObservable = true;
  91637. }
  91638. else if (prePointerInfo.type === BABYLON.PointerEventTypes.POINTERDOWN) {
  91639. _this._pointerCaptures[pointerEvent_1.pointerId] = true;
  91640. }
  91641. }
  91642. else if (!_this._pointerCaptures[pointerEvent_1.pointerId] && (utilityScenePick.distance < originalScenePick.distance || originalScenePick.distance === 0)) {
  91643. // We pick something in utility scene or the pick in utility is closer than the one in main scene
  91644. _this._notifyObservers(prePointerInfo, utilityScenePick, pointerEvent_1);
  91645. // If a previous utility layer set this, do not unset this
  91646. if (!prePointerInfo.skipOnPointerObservable) {
  91647. prePointerInfo.skipOnPointerObservable = utilityScenePick.distance > 0;
  91648. }
  91649. }
  91650. else if (!_this._pointerCaptures[pointerEvent_1.pointerId] && (utilityScenePick.distance > originalScenePick.distance)) {
  91651. // We have a pick in both scenes but main is closer than utility
  91652. // We touched an utility mesh present in the main scene
  91653. if (_this.mainSceneTrackerPredicate && _this.mainSceneTrackerPredicate(originalScenePick.pickedMesh)) {
  91654. _this._notifyObservers(prePointerInfo, originalScenePick, pointerEvent_1);
  91655. prePointerInfo.skipOnPointerObservable = true;
  91656. }
  91657. else if (_this._lastPointerEvents[pointerEvent_1.pointerId]) {
  91658. // We need to send a last pointerup to the utilityLayerScene to make sure animations can complete
  91659. _this.onPointerOutObservable.notifyObservers(pointerEvent_1.pointerId);
  91660. delete _this._lastPointerEvents[pointerEvent_1.pointerId];
  91661. }
  91662. }
  91663. if (prePointerInfo.type === BABYLON.PointerEventTypes.POINTERUP && _this._pointerCaptures[pointerEvent_1.pointerId]) {
  91664. _this._pointerCaptures[pointerEvent_1.pointerId] = false;
  91665. }
  91666. }
  91667. }
  91668. });
  91669. // Render directly on top of existing scene without clearing
  91670. this.utilityLayerScene.autoClear = false;
  91671. this._afterRenderObserver = this.originalScene.onAfterRenderObservable.add(function () {
  91672. if (_this.shouldRender) {
  91673. _this.render();
  91674. }
  91675. });
  91676. this._sceneDisposeObserver = this.originalScene.onDisposeObservable.add(function () {
  91677. _this.dispose();
  91678. });
  91679. this._updateCamera();
  91680. }
  91681. Object.defineProperty(UtilityLayerRenderer, "DefaultUtilityLayer", {
  91682. /**
  91683. * A shared utility layer that can be used to overlay objects into a scene (Depth map of the previous scene is cleared before drawing on top of it)
  91684. */
  91685. get: function () {
  91686. if (UtilityLayerRenderer._DefaultUtilityLayer == null) {
  91687. UtilityLayerRenderer._DefaultUtilityLayer = new UtilityLayerRenderer(BABYLON.Engine.LastCreatedScene);
  91688. UtilityLayerRenderer._DefaultUtilityLayer.originalScene.onDisposeObservable.addOnce(function () {
  91689. UtilityLayerRenderer._DefaultUtilityLayer = null;
  91690. });
  91691. }
  91692. return UtilityLayerRenderer._DefaultUtilityLayer;
  91693. },
  91694. enumerable: true,
  91695. configurable: true
  91696. });
  91697. Object.defineProperty(UtilityLayerRenderer, "DefaultKeepDepthUtilityLayer", {
  91698. /**
  91699. * A shared utility layer that can be used to embed objects into a scene (Depth map of the previous scene is not cleared before drawing on top of it)
  91700. */
  91701. get: function () {
  91702. if (UtilityLayerRenderer._DefaultKeepDepthUtilityLayer == null) {
  91703. UtilityLayerRenderer._DefaultKeepDepthUtilityLayer = new UtilityLayerRenderer(BABYLON.Engine.LastCreatedScene);
  91704. UtilityLayerRenderer._DefaultKeepDepthUtilityLayer.utilityLayerScene.autoClearDepthAndStencil = false;
  91705. UtilityLayerRenderer._DefaultKeepDepthUtilityLayer.originalScene.onDisposeObservable.addOnce(function () {
  91706. UtilityLayerRenderer._DefaultKeepDepthUtilityLayer = null;
  91707. });
  91708. }
  91709. return UtilityLayerRenderer._DefaultKeepDepthUtilityLayer;
  91710. },
  91711. enumerable: true,
  91712. configurable: true
  91713. });
  91714. UtilityLayerRenderer.prototype._notifyObservers = function (prePointerInfo, pickInfo, pointerEvent) {
  91715. if (!prePointerInfo.skipOnPointerObservable) {
  91716. this.utilityLayerScene.onPointerObservable.notifyObservers(new BABYLON.PointerInfo(prePointerInfo.type, prePointerInfo.event, pickInfo));
  91717. this._lastPointerEvents[pointerEvent.pointerId] = parseInt(pointerEvent.pointerType);
  91718. }
  91719. };
  91720. /**
  91721. * Renders the utility layers scene on top of the original scene
  91722. */
  91723. UtilityLayerRenderer.prototype.render = function () {
  91724. this._updateCamera();
  91725. if (this.utilityLayerScene.activeCamera) {
  91726. // Set the camera's scene to utility layers scene
  91727. var oldScene = this.utilityLayerScene.activeCamera.getScene();
  91728. var camera = this.utilityLayerScene.activeCamera;
  91729. camera._scene = this.utilityLayerScene;
  91730. if (camera.leftCamera) {
  91731. camera.leftCamera._scene = this.utilityLayerScene;
  91732. }
  91733. if (camera.rightCamera) {
  91734. camera.rightCamera._scene = this.utilityLayerScene;
  91735. }
  91736. this.utilityLayerScene.render(false);
  91737. // Reset camera's scene back to original
  91738. camera._scene = oldScene;
  91739. if (camera.leftCamera) {
  91740. camera.leftCamera._scene = oldScene;
  91741. }
  91742. if (camera.rightCamera) {
  91743. camera.rightCamera._scene = oldScene;
  91744. }
  91745. }
  91746. };
  91747. /**
  91748. * Disposes of the renderer
  91749. */
  91750. UtilityLayerRenderer.prototype.dispose = function () {
  91751. this.onPointerOutObservable.clear();
  91752. if (this._afterRenderObserver) {
  91753. this.originalScene.onAfterRenderObservable.remove(this._afterRenderObserver);
  91754. }
  91755. if (this._sceneDisposeObserver) {
  91756. this.originalScene.onDisposeObservable.remove(this._sceneDisposeObserver);
  91757. }
  91758. if (this._originalPointerObserver) {
  91759. this.originalScene.onPrePointerObservable.remove(this._originalPointerObserver);
  91760. }
  91761. this.utilityLayerScene.dispose();
  91762. };
  91763. UtilityLayerRenderer.prototype._updateCamera = function () {
  91764. this.utilityLayerScene.activeCamera = this.originalScene.activeCamera;
  91765. };
  91766. UtilityLayerRenderer._DefaultUtilityLayer = null;
  91767. UtilityLayerRenderer._DefaultKeepDepthUtilityLayer = null;
  91768. return UtilityLayerRenderer;
  91769. }());
  91770. BABYLON.UtilityLayerRenderer = UtilityLayerRenderer;
  91771. })(BABYLON || (BABYLON = {}));
  91772. //# sourceMappingURL=babylon.utilityLayerRenderer.js.map
  91773. //# sourceMappingURL=babylon.behavior.js.map
  91774. var BABYLON;
  91775. (function (BABYLON) {
  91776. /**
  91777. * A behavior that when attached to a mesh will allow the mesh to be dragged around the screen based on pointer events
  91778. */
  91779. var PointerDragBehavior = /** @class */ (function () {
  91780. /**
  91781. * Creates a pointer drag behavior that can be attached to a mesh
  91782. * @param options The drag axis or normal of the plane that will be dragged across. If no options are specified the drag plane will always face the ray's origin (eg. camera)
  91783. */
  91784. function PointerDragBehavior(options) {
  91785. /**
  91786. * The maximum tolerated angle between the drag plane and dragging pointer rays to trigger pointer events. Set to 0 to allow any angle (default: 0)
  91787. */
  91788. this.maxDragAngle = 0;
  91789. /**
  91790. * @hidden
  91791. */
  91792. this._useAlternatePickedPointAboveMaxDragAngle = false;
  91793. /**
  91794. * The id of the pointer that is currently interacting with the behavior (-1 when no pointer is active)
  91795. */
  91796. this.currentDraggingPointerID = -1;
  91797. /**
  91798. * If the behavior is currently in a dragging state
  91799. */
  91800. this.dragging = false;
  91801. /**
  91802. * The distance towards the target drag position to move each frame. This can be useful to avoid jitter. Set this to 1 for no delay. (Default: 0.2)
  91803. */
  91804. this.dragDeltaRatio = 0.2;
  91805. /**
  91806. * If the drag plane orientation should be updated during the dragging (Default: true)
  91807. */
  91808. this.updateDragPlane = true;
  91809. // Debug mode will display drag planes to help visualize behavior
  91810. this._debugMode = false;
  91811. this._moving = false;
  91812. /**
  91813. * Fires each time the attached mesh is dragged with the pointer
  91814. * * delta between last drag position and current drag position in world space
  91815. * * dragDistance along the drag axis
  91816. * * dragPlaneNormal normal of the current drag plane used during the drag
  91817. * * dragPlanePoint in world space where the drag intersects the drag plane
  91818. */
  91819. this.onDragObservable = new BABYLON.Observable();
  91820. /**
  91821. * Fires each time a drag begins (eg. mouse down on mesh)
  91822. */
  91823. this.onDragStartObservable = new BABYLON.Observable();
  91824. /**
  91825. * Fires each time a drag ends (eg. mouse release after drag)
  91826. */
  91827. this.onDragEndObservable = new BABYLON.Observable();
  91828. /**
  91829. * If the attached mesh should be moved when dragged
  91830. */
  91831. this.moveAttached = true;
  91832. /**
  91833. * If the drag behavior will react to drag events (Default: true)
  91834. */
  91835. this.enabled = true;
  91836. /**
  91837. * If camera controls should be detached during the drag
  91838. */
  91839. this.detachCameraControls = true;
  91840. /**
  91841. * If set, the drag plane/axis will be rotated based on the attached mesh's world rotation (Default: true)
  91842. */
  91843. this.useObjectOrienationForDragging = true;
  91844. this._tmpVector = new BABYLON.Vector3(0, 0, 0);
  91845. this._alternatePickedPoint = new BABYLON.Vector3(0, 0, 0);
  91846. this._worldDragAxis = new BABYLON.Vector3(0, 0, 0);
  91847. this._targetPosition = new BABYLON.Vector3(0, 0, 0);
  91848. this._attachedElement = null;
  91849. this._startDragRay = new BABYLON.Ray(new BABYLON.Vector3(), new BABYLON.Vector3());
  91850. this._lastPointerRay = {};
  91851. this._dragDelta = new BABYLON.Vector3();
  91852. // Variables to avoid instantiation in the below method
  91853. this._pointA = new BABYLON.Vector3(0, 0, 0);
  91854. this._pointB = new BABYLON.Vector3(0, 0, 0);
  91855. this._pointC = new BABYLON.Vector3(0, 0, 0);
  91856. this._lineA = new BABYLON.Vector3(0, 0, 0);
  91857. this._lineB = new BABYLON.Vector3(0, 0, 0);
  91858. this._localAxis = new BABYLON.Vector3(0, 0, 0);
  91859. this._lookAt = new BABYLON.Vector3(0, 0, 0);
  91860. this._options = options ? options : {};
  91861. var optionCount = 0;
  91862. if (this._options.dragAxis) {
  91863. optionCount++;
  91864. }
  91865. if (this._options.dragPlaneNormal) {
  91866. optionCount++;
  91867. }
  91868. if (optionCount > 1) {
  91869. throw "Multiple drag modes specified in dragBehavior options. Only one expected";
  91870. }
  91871. }
  91872. Object.defineProperty(PointerDragBehavior.prototype, "name", {
  91873. /**
  91874. * The name of the behavior
  91875. */
  91876. get: function () {
  91877. return "PointerDrag";
  91878. },
  91879. enumerable: true,
  91880. configurable: true
  91881. });
  91882. /**
  91883. * Initializes the behavior
  91884. */
  91885. PointerDragBehavior.prototype.init = function () { };
  91886. /**
  91887. * Attaches the drag behavior the passed in mesh
  91888. * @param ownerNode The mesh that will be dragged around once attached
  91889. */
  91890. PointerDragBehavior.prototype.attach = function (ownerNode) {
  91891. var _this = this;
  91892. this._scene = ownerNode.getScene();
  91893. this._attachedNode = ownerNode;
  91894. // Initialize drag plane to not interfere with existing scene
  91895. if (!PointerDragBehavior._planeScene) {
  91896. if (this._debugMode) {
  91897. PointerDragBehavior._planeScene = this._scene;
  91898. }
  91899. else {
  91900. PointerDragBehavior._planeScene = new BABYLON.Scene(this._scene.getEngine());
  91901. PointerDragBehavior._planeScene.detachControl();
  91902. this._scene.getEngine().scenes.pop();
  91903. this._scene.onDisposeObservable.addOnce(function () {
  91904. PointerDragBehavior._planeScene.dispose();
  91905. PointerDragBehavior._planeScene = null;
  91906. });
  91907. }
  91908. }
  91909. this._dragPlane = BABYLON.Mesh.CreatePlane("pointerDragPlane", this._debugMode ? 1 : 10000, PointerDragBehavior._planeScene, false, BABYLON.Mesh.DOUBLESIDE);
  91910. // State of the drag
  91911. this.lastDragPosition = new BABYLON.Vector3(0, 0, 0);
  91912. var pickPredicate = function (m) {
  91913. return _this._attachedNode == m || m.isDescendantOf(_this._attachedNode);
  91914. };
  91915. this._pointerObserver = this._scene.onPointerObservable.add(function (pointerInfo, eventState) {
  91916. if (!_this.enabled) {
  91917. return;
  91918. }
  91919. if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERDOWN) {
  91920. if (!_this.dragging && pointerInfo.pickInfo && pointerInfo.pickInfo.hit && pointerInfo.pickInfo.pickedMesh && pointerInfo.pickInfo.pickedPoint && pointerInfo.pickInfo.ray && pickPredicate(pointerInfo.pickInfo.pickedMesh)) {
  91921. _this._startDrag(pointerInfo.event.pointerId, pointerInfo.pickInfo.ray, pointerInfo.pickInfo.pickedPoint);
  91922. }
  91923. }
  91924. else if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERUP) {
  91925. if (_this.currentDraggingPointerID == pointerInfo.event.pointerId) {
  91926. _this.releaseDrag();
  91927. }
  91928. }
  91929. else if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERMOVE) {
  91930. var pointerId = pointerInfo.event.pointerId;
  91931. // Keep track of last pointer ray, this is used simulating the start of a drag in startDrag()
  91932. if (!_this._lastPointerRay[pointerId]) {
  91933. _this._lastPointerRay[pointerId] = new BABYLON.Ray(new BABYLON.Vector3(), new BABYLON.Vector3());
  91934. }
  91935. if (pointerInfo.pickInfo && pointerInfo.pickInfo.ray) {
  91936. _this._lastPointerRay[pointerId].origin.copyFrom(pointerInfo.pickInfo.ray.origin);
  91937. _this._lastPointerRay[pointerId].direction.copyFrom(pointerInfo.pickInfo.ray.direction);
  91938. if (_this.currentDraggingPointerID == pointerId && _this.dragging) {
  91939. _this._moveDrag(pointerInfo.pickInfo.ray);
  91940. }
  91941. }
  91942. }
  91943. });
  91944. this._beforeRenderObserver = this._scene.onBeforeRenderObservable.add(function () {
  91945. if (_this._moving && _this.moveAttached) {
  91946. BABYLON.BoundingBoxGizmo._RemoveAndStorePivotPoint(_this._attachedNode);
  91947. // Slowly move mesh to avoid jitter
  91948. _this._targetPosition.subtractToRef((_this._attachedNode).absolutePosition, _this._tmpVector);
  91949. _this._tmpVector.scaleInPlace(_this.dragDeltaRatio);
  91950. (_this._attachedNode).getAbsolutePosition().addToRef(_this._tmpVector, _this._tmpVector);
  91951. (_this._attachedNode).setAbsolutePosition(_this._tmpVector);
  91952. BABYLON.BoundingBoxGizmo._RestorePivotPoint(_this._attachedNode);
  91953. }
  91954. });
  91955. };
  91956. PointerDragBehavior.prototype.releaseDrag = function () {
  91957. this.dragging = false;
  91958. this.onDragEndObservable.notifyObservers({ dragPlanePoint: this.lastDragPosition, pointerId: this.currentDraggingPointerID });
  91959. this.currentDraggingPointerID = -1;
  91960. this._moving = false;
  91961. // Reattach camera controls
  91962. if (this.detachCameraControls && this._attachedElement && this._scene.activeCamera && !this._scene.activeCamera.leftCamera) {
  91963. this._scene.activeCamera.attachControl(this._attachedElement, true);
  91964. }
  91965. };
  91966. /**
  91967. * Simulates the start of a pointer drag event on the behavior
  91968. * @param pointerId pointerID of the pointer that should be simulated (Default: 1 for mouse pointer)
  91969. * @param fromRay initial ray of the pointer to be simulated (Default: Ray from camera to attached mesh)
  91970. * @param startPickedPoint picked point of the pointer to be simulated (Default: attached mesh position)
  91971. */
  91972. PointerDragBehavior.prototype.startDrag = function (pointerId, fromRay, startPickedPoint) {
  91973. if (pointerId === void 0) { pointerId = 1; }
  91974. this._startDrag(pointerId, fromRay, startPickedPoint);
  91975. if (this._lastPointerRay[pointerId]) {
  91976. // if there was a last pointer ray drag the object there
  91977. this._moveDrag(this._lastPointerRay[pointerId]);
  91978. }
  91979. };
  91980. PointerDragBehavior.prototype._startDrag = function (pointerId, fromRay, startPickedPoint) {
  91981. if (pointerId === void 0) { pointerId = 1; }
  91982. if (!this._scene.activeCamera || this.dragging || !this._attachedNode) {
  91983. return;
  91984. }
  91985. BABYLON.BoundingBoxGizmo._RemoveAndStorePivotPoint(this._attachedNode);
  91986. // Create start ray from the camera to the object
  91987. if (fromRay) {
  91988. this._startDragRay.direction.copyFrom(fromRay.direction);
  91989. this._startDragRay.origin.copyFrom(fromRay.origin);
  91990. }
  91991. else {
  91992. this._startDragRay.origin.copyFrom(this._scene.activeCamera.position);
  91993. this._attachedNode.getWorldMatrix().getTranslationToRef(this._tmpVector);
  91994. this._tmpVector.subtractToRef(this._scene.activeCamera.position, this._startDragRay.direction);
  91995. }
  91996. this._updateDragPlanePosition(this._startDragRay, startPickedPoint ? startPickedPoint : this._tmpVector);
  91997. var pickedPoint = this._pickWithRayOnDragPlane(this._startDragRay);
  91998. if (pickedPoint) {
  91999. this.dragging = true;
  92000. this.currentDraggingPointerID = 1;
  92001. this.lastDragPosition.copyFrom(pickedPoint);
  92002. this.onDragStartObservable.notifyObservers({ dragPlanePoint: pickedPoint, pointerId: this.currentDraggingPointerID });
  92003. this._targetPosition.copyFrom((this._attachedNode).absolutePosition);
  92004. // Detatch camera controls
  92005. if (this.detachCameraControls && this._scene.activeCamera && !this._scene.activeCamera.leftCamera) {
  92006. if (this._scene.activeCamera.inputs.attachedElement) {
  92007. this._attachedElement = this._scene.activeCamera.inputs.attachedElement;
  92008. this._scene.activeCamera.detachControl(this._scene.activeCamera.inputs.attachedElement);
  92009. }
  92010. else {
  92011. this._attachedElement = null;
  92012. }
  92013. }
  92014. }
  92015. BABYLON.BoundingBoxGizmo._RestorePivotPoint(this._attachedNode);
  92016. };
  92017. PointerDragBehavior.prototype._moveDrag = function (ray) {
  92018. this._moving = true;
  92019. var pickedPoint = this._pickWithRayOnDragPlane(ray);
  92020. if (pickedPoint) {
  92021. if (this.updateDragPlane) {
  92022. this._updateDragPlanePosition(ray, pickedPoint);
  92023. }
  92024. var dragLength = 0;
  92025. // depending on the drag mode option drag accordingly
  92026. if (this._options.dragAxis) {
  92027. // Convert local drag axis to world
  92028. BABYLON.Vector3.TransformCoordinatesToRef(this._options.dragAxis, this._attachedNode.getWorldMatrix().getRotationMatrix(), this._worldDragAxis);
  92029. // Project delta drag from the drag plane onto the drag axis
  92030. pickedPoint.subtractToRef(this.lastDragPosition, this._tmpVector);
  92031. dragLength = BABYLON.Vector3.Dot(this._tmpVector, this._worldDragAxis);
  92032. this._worldDragAxis.scaleToRef(dragLength, this._dragDelta);
  92033. }
  92034. else {
  92035. dragLength = this._dragDelta.length();
  92036. pickedPoint.subtractToRef(this.lastDragPosition, this._dragDelta);
  92037. }
  92038. this._targetPosition.addInPlace(this._dragDelta);
  92039. this.onDragObservable.notifyObservers({ dragDistance: dragLength, delta: this._dragDelta, dragPlanePoint: pickedPoint, dragPlaneNormal: this._dragPlane.forward, pointerId: this.currentDraggingPointerID });
  92040. this.lastDragPosition.copyFrom(pickedPoint);
  92041. }
  92042. };
  92043. PointerDragBehavior.prototype._pickWithRayOnDragPlane = function (ray) {
  92044. var _this = this;
  92045. if (!ray) {
  92046. return null;
  92047. }
  92048. // Calculate angle between plane normal and ray
  92049. var angle = Math.acos(BABYLON.Vector3.Dot(this._dragPlane.forward, ray.direction));
  92050. // Correct if ray is casted from oposite side
  92051. if (angle > Math.PI / 2) {
  92052. angle = Math.PI - angle;
  92053. }
  92054. // If the angle is too perpendicular to the plane pick another point on the plane where it is looking
  92055. if (this.maxDragAngle > 0 && angle > this.maxDragAngle) {
  92056. if (this._useAlternatePickedPointAboveMaxDragAngle) {
  92057. // Invert ray direction along the towards object axis
  92058. this._tmpVector.copyFrom(ray.direction);
  92059. (this._attachedNode).absolutePosition.subtractToRef(ray.origin, this._alternatePickedPoint);
  92060. this._alternatePickedPoint.normalize();
  92061. this._alternatePickedPoint.scaleInPlace(-2 * BABYLON.Vector3.Dot(this._alternatePickedPoint, this._tmpVector));
  92062. this._tmpVector.addInPlace(this._alternatePickedPoint);
  92063. // Project resulting vector onto the drag plane and add it to the attached nodes absolute position to get a picked point
  92064. var dot = BABYLON.Vector3.Dot(this._dragPlane.forward, this._tmpVector);
  92065. this._dragPlane.forward.scaleToRef(-dot, this._alternatePickedPoint);
  92066. this._alternatePickedPoint.addInPlace(this._tmpVector);
  92067. this._alternatePickedPoint.addInPlace((this._attachedNode).absolutePosition);
  92068. return this._alternatePickedPoint;
  92069. }
  92070. else {
  92071. return null;
  92072. }
  92073. }
  92074. var pickResult = PointerDragBehavior._planeScene.pickWithRay(ray, function (m) { return m == _this._dragPlane; });
  92075. if (pickResult && pickResult.hit && pickResult.pickedMesh && pickResult.pickedPoint) {
  92076. return pickResult.pickedPoint;
  92077. }
  92078. else {
  92079. return null;
  92080. }
  92081. };
  92082. // Position the drag plane based on the attached mesh position, for single axis rotate the plane along the axis to face the camera
  92083. PointerDragBehavior.prototype._updateDragPlanePosition = function (ray, dragPlanePosition) {
  92084. this._pointA.copyFrom(dragPlanePosition);
  92085. if (this._options.dragAxis) {
  92086. this.useObjectOrienationForDragging ? BABYLON.Vector3.TransformCoordinatesToRef(this._options.dragAxis, this._attachedNode.getWorldMatrix().getRotationMatrix(), this._localAxis) : this._localAxis.copyFrom(this._options.dragAxis);
  92087. // Calculate plane normal in direction of camera but perpendicular to drag axis
  92088. this._pointA.addToRef(this._localAxis, this._pointB); // towards drag axis
  92089. ray.origin.subtractToRef(this._pointA, this._pointC);
  92090. this._pointA.addToRef(this._pointC.normalize(), this._pointC); // towards camera
  92091. // Get perpendicular line from direction to camera and drag axis
  92092. this._pointB.subtractToRef(this._pointA, this._lineA);
  92093. this._pointC.subtractToRef(this._pointA, this._lineB);
  92094. BABYLON.Vector3.CrossToRef(this._lineA, this._lineB, this._lookAt);
  92095. // Get perpendicular line from previous result and drag axis to adjust lineB to be perpendiculat to camera
  92096. BABYLON.Vector3.CrossToRef(this._lineA, this._lookAt, this._lookAt);
  92097. this._lookAt.normalize();
  92098. this._dragPlane.position.copyFrom(this._pointA);
  92099. this._pointA.subtractToRef(this._lookAt, this._lookAt);
  92100. this._dragPlane.lookAt(this._lookAt);
  92101. }
  92102. else if (this._options.dragPlaneNormal) {
  92103. this.useObjectOrienationForDragging ? BABYLON.Vector3.TransformCoordinatesToRef(this._options.dragPlaneNormal, this._attachedNode.getWorldMatrix().getRotationMatrix(), this._localAxis) : this._localAxis.copyFrom(this._options.dragPlaneNormal);
  92104. this._dragPlane.position.copyFrom(this._pointA);
  92105. this._pointA.subtractToRef(this._localAxis, this._lookAt);
  92106. this._dragPlane.lookAt(this._lookAt);
  92107. }
  92108. else {
  92109. this._dragPlane.position.copyFrom(this._pointA);
  92110. this._dragPlane.lookAt(ray.origin);
  92111. }
  92112. this._dragPlane.computeWorldMatrix(true);
  92113. };
  92114. /**
  92115. * Detaches the behavior from the mesh
  92116. */
  92117. PointerDragBehavior.prototype.detach = function () {
  92118. if (this._pointerObserver) {
  92119. this._scene.onPointerObservable.remove(this._pointerObserver);
  92120. }
  92121. if (this._beforeRenderObserver) {
  92122. this._scene.onBeforeRenderObservable.remove(this._beforeRenderObserver);
  92123. }
  92124. };
  92125. return PointerDragBehavior;
  92126. }());
  92127. BABYLON.PointerDragBehavior = PointerDragBehavior;
  92128. })(BABYLON || (BABYLON = {}));
  92129. //# sourceMappingURL=babylon.pointerDragBehavior.js.map
  92130. var BABYLON;
  92131. (function (BABYLON) {
  92132. /**
  92133. * A behavior that when attached to a mesh will allow the mesh to be scaled
  92134. */
  92135. var MultiPointerScaleBehavior = /** @class */ (function () {
  92136. function MultiPointerScaleBehavior() {
  92137. this._startDistance = 0;
  92138. this._initialScale = new BABYLON.Vector3(0, 0, 0);
  92139. this._targetScale = new BABYLON.Vector3(0, 0, 0);
  92140. this._sceneRenderObserver = null;
  92141. this._dragBehaviorA = new BABYLON.PointerDragBehavior({});
  92142. this._dragBehaviorA.moveAttached = false;
  92143. this._dragBehaviorB = new BABYLON.PointerDragBehavior({});
  92144. this._dragBehaviorB.moveAttached = false;
  92145. }
  92146. Object.defineProperty(MultiPointerScaleBehavior.prototype, "name", {
  92147. /**
  92148. * The name of the behavior
  92149. */
  92150. get: function () {
  92151. return "MultiPointerScale";
  92152. },
  92153. enumerable: true,
  92154. configurable: true
  92155. });
  92156. /**
  92157. * Initializes the behavior
  92158. */
  92159. MultiPointerScaleBehavior.prototype.init = function () { };
  92160. MultiPointerScaleBehavior.prototype._getCurrentDistance = function () {
  92161. return this._dragBehaviorA.lastDragPosition.subtract(this._dragBehaviorB.lastDragPosition).length();
  92162. };
  92163. /**
  92164. * Attaches the scale behavior the passed in mesh
  92165. * @param ownerNode The mesh that will be scaled around once attached
  92166. */
  92167. MultiPointerScaleBehavior.prototype.attach = function (ownerNode) {
  92168. var _this = this;
  92169. this._ownerNode = ownerNode;
  92170. // Create 2 drag behaviors such that each will only be triggered by a separate pointer
  92171. this._dragBehaviorA.onDragStartObservable.add(function (e) {
  92172. if (_this._dragBehaviorA.dragging && _this._dragBehaviorB.dragging) {
  92173. if (_this._dragBehaviorA.currentDraggingPointerID == _this._dragBehaviorB.currentDraggingPointerID) {
  92174. _this._dragBehaviorA.releaseDrag();
  92175. }
  92176. else {
  92177. _this._initialScale.copyFrom(ownerNode.scaling);
  92178. _this._startDistance = _this._getCurrentDistance();
  92179. }
  92180. }
  92181. });
  92182. this._dragBehaviorB.onDragStartObservable.add(function (e) {
  92183. if (_this._dragBehaviorA.dragging && _this._dragBehaviorB.dragging) {
  92184. if (_this._dragBehaviorA.currentDraggingPointerID == _this._dragBehaviorB.currentDraggingPointerID) {
  92185. _this._dragBehaviorB.releaseDrag();
  92186. }
  92187. else {
  92188. _this._initialScale.copyFrom(ownerNode.scaling);
  92189. _this._startDistance = _this._getCurrentDistance();
  92190. }
  92191. }
  92192. });
  92193. // Once both drag behaviors are active scale based on the distance between the two pointers
  92194. [this._dragBehaviorA, this._dragBehaviorB].forEach(function (behavior) {
  92195. behavior.onDragObservable.add(function () {
  92196. if (_this._dragBehaviorA.dragging && _this._dragBehaviorB.dragging) {
  92197. var ratio = _this._getCurrentDistance() / _this._startDistance;
  92198. _this._initialScale.scaleToRef(ratio, _this._targetScale);
  92199. }
  92200. });
  92201. });
  92202. ownerNode.addBehavior(this._dragBehaviorA);
  92203. ownerNode.addBehavior(this._dragBehaviorB);
  92204. // On every frame move towards target scaling to avoid jitter caused by vr controllers
  92205. this._sceneRenderObserver = ownerNode.getScene().onBeforeRenderObservable.add(function () {
  92206. if (_this._dragBehaviorA.dragging && _this._dragBehaviorB.dragging) {
  92207. var change = _this._targetScale.subtract(ownerNode.scaling).scaleInPlace(0.1);
  92208. if (change.length() > 0.01) {
  92209. ownerNode.scaling.addInPlace(change);
  92210. }
  92211. }
  92212. });
  92213. };
  92214. /**
  92215. * Detaches the behavior from the mesh
  92216. */
  92217. MultiPointerScaleBehavior.prototype.detach = function () {
  92218. var _this = this;
  92219. this._ownerNode.getScene().onBeforeRenderObservable.remove(this._sceneRenderObserver);
  92220. [this._dragBehaviorA, this._dragBehaviorB].forEach(function (behavior) {
  92221. behavior.onDragStartObservable.clear();
  92222. behavior.onDragObservable.clear();
  92223. _this._ownerNode.removeBehavior(behavior);
  92224. });
  92225. };
  92226. return MultiPointerScaleBehavior;
  92227. }());
  92228. BABYLON.MultiPointerScaleBehavior = MultiPointerScaleBehavior;
  92229. })(BABYLON || (BABYLON = {}));
  92230. //# sourceMappingURL=babylon.multiPointerScaleBehavior.js.map
  92231. var BABYLON;
  92232. (function (BABYLON) {
  92233. /**
  92234. * A behavior that when attached to a mesh will allow the mesh to be dragged around based on directions and origin of the pointer's ray
  92235. */
  92236. var SixDofDragBehavior = /** @class */ (function () {
  92237. function SixDofDragBehavior() {
  92238. this._sceneRenderObserver = null;
  92239. this._targetPosition = new BABYLON.Vector3(0, 0, 0);
  92240. this._moving = false;
  92241. this._startingOrientation = new BABYLON.Quaternion();
  92242. /**
  92243. * How much faster the object should move when the controller is moving towards it. This is useful to bring objects that are far away from the user to them faster. Set this to 0 to avoid any speed increase. (Default: 3)
  92244. */
  92245. this.zDragFactor = 3;
  92246. /**
  92247. * If the behavior is currently in a dragging state
  92248. */
  92249. this.dragging = false;
  92250. /**
  92251. * The distance towards the target drag position to move each frame. This can be useful to avoid jitter. Set this to 1 for no delay. (Default: 0.2)
  92252. */
  92253. this.dragDeltaRatio = 0.2;
  92254. /**
  92255. * The id of the pointer that is currently interacting with the behavior (-1 when no pointer is active)
  92256. */
  92257. this.currentDraggingPointerID = -1;
  92258. /**
  92259. * If camera controls should be detached during the drag
  92260. */
  92261. this.detachCameraControls = true;
  92262. }
  92263. Object.defineProperty(SixDofDragBehavior.prototype, "name", {
  92264. /**
  92265. * The name of the behavior
  92266. */
  92267. get: function () {
  92268. return "SixDofDrag";
  92269. },
  92270. enumerable: true,
  92271. configurable: true
  92272. });
  92273. /**
  92274. * Initializes the behavior
  92275. */
  92276. SixDofDragBehavior.prototype.init = function () { };
  92277. /**
  92278. * Attaches the scale behavior the passed in mesh
  92279. * @param ownerNode The mesh that will be scaled around once attached
  92280. */
  92281. SixDofDragBehavior.prototype.attach = function (ownerNode) {
  92282. var _this = this;
  92283. this._ownerNode = ownerNode;
  92284. this._scene = this._ownerNode.getScene();
  92285. if (!SixDofDragBehavior._virtualScene) {
  92286. SixDofDragBehavior._virtualScene = new BABYLON.Scene(this._scene.getEngine());
  92287. this._scene.getEngine().scenes.pop();
  92288. }
  92289. var pickedMesh = null;
  92290. var lastSixDofOriginPosition = new BABYLON.Vector3(0, 0, 0);
  92291. // Setup virtual meshes to be used for dragging without dirtying the existing scene
  92292. this._virtualOriginMesh = new BABYLON.AbstractMesh("", SixDofDragBehavior._virtualScene);
  92293. this._virtualOriginMesh.rotationQuaternion = new BABYLON.Quaternion();
  92294. this._virtualDragMesh = new BABYLON.AbstractMesh("", SixDofDragBehavior._virtualScene);
  92295. this._virtualDragMesh.rotationQuaternion = new BABYLON.Quaternion();
  92296. var pickPredicate = function (m) {
  92297. return _this._ownerNode == m || m.isDescendantOf(_this._ownerNode);
  92298. };
  92299. var attachedElement = null;
  92300. this._pointerObserver = this._scene.onPointerObservable.add(function (pointerInfo, eventState) {
  92301. if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERDOWN) {
  92302. if (!_this.dragging && pointerInfo.pickInfo && pointerInfo.pickInfo.hit && pointerInfo.pickInfo.pickedMesh && pointerInfo.pickInfo.ray && pickPredicate(pointerInfo.pickInfo.pickedMesh)) {
  92303. if (_this._scene.activeCamera && _this._scene.activeCamera.cameraRigMode == BABYLON.Camera.RIG_MODE_NONE) {
  92304. pointerInfo.pickInfo.ray.origin.copyFrom(_this._scene.activeCamera.position);
  92305. }
  92306. pickedMesh = _this._ownerNode;
  92307. BABYLON.BoundingBoxGizmo._RemoveAndStorePivotPoint(pickedMesh);
  92308. lastSixDofOriginPosition.copyFrom(pointerInfo.pickInfo.ray.origin);
  92309. // Set position and orientation of the controller
  92310. _this._virtualOriginMesh.position.copyFrom(pointerInfo.pickInfo.ray.origin);
  92311. _this._virtualOriginMesh.lookAt(pointerInfo.pickInfo.ray.origin.subtract(pointerInfo.pickInfo.ray.direction));
  92312. // Attach the virtual drag mesh to the virtual origin mesh so it can be dragged
  92313. _this._virtualOriginMesh.removeChild(_this._virtualDragMesh);
  92314. _this._virtualDragMesh.position.copyFrom(pickedMesh.absolutePosition);
  92315. if (!pickedMesh.rotationQuaternion) {
  92316. pickedMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(pickedMesh.rotation.y, pickedMesh.rotation.x, pickedMesh.rotation.z);
  92317. }
  92318. var oldParent = pickedMesh.parent;
  92319. pickedMesh.setParent(null);
  92320. _this._virtualDragMesh.rotationQuaternion.copyFrom(pickedMesh.rotationQuaternion);
  92321. pickedMesh.setParent(oldParent);
  92322. _this._virtualOriginMesh.addChild(_this._virtualDragMesh);
  92323. // Update state
  92324. _this._targetPosition.copyFrom(_this._virtualDragMesh.absolutePosition);
  92325. _this.dragging = true;
  92326. _this.currentDraggingPointerID = pointerInfo.event.pointerId;
  92327. // Detatch camera controls
  92328. if (_this.detachCameraControls && _this._scene.activeCamera && !_this._scene.activeCamera.leftCamera) {
  92329. if (_this._scene.activeCamera.inputs.attachedElement) {
  92330. attachedElement = _this._scene.activeCamera.inputs.attachedElement;
  92331. _this._scene.activeCamera.detachControl(_this._scene.activeCamera.inputs.attachedElement);
  92332. }
  92333. else {
  92334. attachedElement = null;
  92335. }
  92336. }
  92337. BABYLON.BoundingBoxGizmo._RestorePivotPoint(pickedMesh);
  92338. }
  92339. }
  92340. else if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERUP) {
  92341. if (_this.currentDraggingPointerID == pointerInfo.event.pointerId) {
  92342. _this.dragging = false;
  92343. _this._moving = false;
  92344. _this.currentDraggingPointerID = -1;
  92345. pickedMesh = null;
  92346. _this._virtualOriginMesh.removeChild(_this._virtualDragMesh);
  92347. // Reattach camera controls
  92348. if (_this.detachCameraControls && attachedElement && _this._scene.activeCamera && !_this._scene.activeCamera.leftCamera) {
  92349. _this._scene.activeCamera.attachControl(attachedElement, true);
  92350. }
  92351. }
  92352. }
  92353. else if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERMOVE) {
  92354. if (_this.currentDraggingPointerID == pointerInfo.event.pointerId && _this.dragging && pointerInfo.pickInfo && pointerInfo.pickInfo.ray && pickedMesh) {
  92355. var zDragFactor = _this.zDragFactor;
  92356. if (_this._scene.activeCamera && _this._scene.activeCamera.cameraRigMode == BABYLON.Camera.RIG_MODE_NONE) {
  92357. pointerInfo.pickInfo.ray.origin.copyFrom(_this._scene.activeCamera.position);
  92358. zDragFactor = 0;
  92359. }
  92360. // Calculate controller drag distance in controller space
  92361. var originDragDifference = pointerInfo.pickInfo.ray.origin.subtract(lastSixDofOriginPosition);
  92362. lastSixDofOriginPosition.copyFrom(pointerInfo.pickInfo.ray.origin);
  92363. var localOriginDragDifference = -BABYLON.Vector3.Dot(originDragDifference, pointerInfo.pickInfo.ray.direction);
  92364. _this._virtualOriginMesh.addChild(_this._virtualDragMesh);
  92365. // Determine how much the controller moved to/away towards the dragged object and use this to move the object further when its further away
  92366. _this._virtualDragMesh.position.z -= _this._virtualDragMesh.position.z < 1 ? localOriginDragDifference * _this.zDragFactor : localOriginDragDifference * zDragFactor * _this._virtualDragMesh.position.z;
  92367. if (_this._virtualDragMesh.position.z < 0) {
  92368. _this._virtualDragMesh.position.z = 0;
  92369. }
  92370. // Update the controller position
  92371. _this._virtualOriginMesh.position.copyFrom(pointerInfo.pickInfo.ray.origin);
  92372. _this._virtualOriginMesh.lookAt(pointerInfo.pickInfo.ray.origin.subtract(pointerInfo.pickInfo.ray.direction));
  92373. _this._virtualOriginMesh.removeChild(_this._virtualDragMesh);
  92374. // Move the virtualObjectsPosition into the picked mesh's space if needed
  92375. _this._targetPosition.copyFrom(_this._virtualDragMesh.absolutePosition);
  92376. if (pickedMesh.parent) {
  92377. BABYLON.Vector3.TransformCoordinatesToRef(_this._targetPosition, BABYLON.Matrix.Invert(pickedMesh.parent.getWorldMatrix()), _this._targetPosition);
  92378. }
  92379. if (!_this._moving) {
  92380. _this._startingOrientation.copyFrom(_this._virtualDragMesh.rotationQuaternion);
  92381. }
  92382. _this._moving = true;
  92383. }
  92384. }
  92385. });
  92386. var tmpQuaternion = new BABYLON.Quaternion();
  92387. // On every frame move towards target scaling to avoid jitter caused by vr controllers
  92388. this._sceneRenderObserver = ownerNode.getScene().onBeforeRenderObservable.add(function () {
  92389. if (_this.dragging && _this._moving && pickedMesh) {
  92390. BABYLON.BoundingBoxGizmo._RemoveAndStorePivotPoint(pickedMesh);
  92391. // Slowly move mesh to avoid jitter
  92392. pickedMesh.position.addInPlace(_this._targetPosition.subtract(pickedMesh.position).scale(_this.dragDeltaRatio));
  92393. // Get change in rotation
  92394. tmpQuaternion.copyFrom(_this._startingOrientation);
  92395. tmpQuaternion.x = -tmpQuaternion.x;
  92396. tmpQuaternion.y = -tmpQuaternion.y;
  92397. tmpQuaternion.z = -tmpQuaternion.z;
  92398. _this._virtualDragMesh.rotationQuaternion.multiplyToRef(tmpQuaternion, tmpQuaternion);
  92399. // Convert change in rotation to only y axis rotation
  92400. BABYLON.Quaternion.RotationYawPitchRollToRef(tmpQuaternion.toEulerAngles("xyz").y, 0, 0, tmpQuaternion);
  92401. tmpQuaternion.multiplyToRef(_this._startingOrientation, tmpQuaternion);
  92402. // Slowly move mesh to avoid jitter
  92403. var oldParent = pickedMesh.parent;
  92404. pickedMesh.setParent(null);
  92405. BABYLON.Quaternion.SlerpToRef(pickedMesh.rotationQuaternion, tmpQuaternion, _this.dragDeltaRatio, pickedMesh.rotationQuaternion);
  92406. pickedMesh.setParent(oldParent);
  92407. BABYLON.BoundingBoxGizmo._RestorePivotPoint(pickedMesh);
  92408. }
  92409. });
  92410. };
  92411. /**
  92412. * Detaches the behavior from the mesh
  92413. */
  92414. SixDofDragBehavior.prototype.detach = function () {
  92415. if (this._scene) {
  92416. this._scene.onPointerObservable.remove(this._pointerObserver);
  92417. }
  92418. if (this._ownerNode) {
  92419. this._ownerNode.getScene().onBeforeRenderObservable.remove(this._sceneRenderObserver);
  92420. }
  92421. if (this._virtualOriginMesh) {
  92422. this._virtualOriginMesh.dispose();
  92423. }
  92424. if (this._virtualDragMesh) {
  92425. this._virtualDragMesh.dispose();
  92426. }
  92427. };
  92428. return SixDofDragBehavior;
  92429. }());
  92430. BABYLON.SixDofDragBehavior = SixDofDragBehavior;
  92431. })(BABYLON || (BABYLON = {}));
  92432. //# sourceMappingURL=babylon.sixDofDragBehavior.js.map
  92433. var BABYLON;
  92434. (function (BABYLON) {
  92435. /**
  92436. * @hidden
  92437. */
  92438. var FaceDirectionInfo = /** @class */ (function () {
  92439. function FaceDirectionInfo(direction, rotatedDirection, diff, ignore) {
  92440. if (rotatedDirection === void 0) { rotatedDirection = new BABYLON.Vector3(); }
  92441. if (diff === void 0) { diff = 0; }
  92442. if (ignore === void 0) { ignore = false; }
  92443. this.direction = direction;
  92444. this.rotatedDirection = rotatedDirection;
  92445. this.diff = diff;
  92446. this.ignore = ignore;
  92447. }
  92448. return FaceDirectionInfo;
  92449. }());
  92450. /**
  92451. * A behavior that when attached to a mesh will will place a specified node on the meshes face pointing towards the camera
  92452. */
  92453. var AttachToBoxBehavior = /** @class */ (function () {
  92454. /**
  92455. * Creates the AttachToBoxBehavior, used to attach UI to the closest face of the box to a camera
  92456. * @param ui The transform node that should be attched to the mesh
  92457. */
  92458. function AttachToBoxBehavior(ui) {
  92459. this.ui = ui;
  92460. /**
  92461. * The name of the behavior
  92462. */
  92463. this.name = "AttachToBoxBehavior";
  92464. /**
  92465. * The distance away from the face of the mesh that the UI should be attached to (default: 0.15)
  92466. */
  92467. this.distanceAwayFromFace = 0.15;
  92468. /**
  92469. * The distance from the bottom of the face that the UI should be attached to (default: 0.15)
  92470. */
  92471. this.distanceAwayFromBottomOfFace = 0.15;
  92472. this._faceVectors = [new FaceDirectionInfo(BABYLON.Vector3.Up()), new FaceDirectionInfo(BABYLON.Vector3.Down()), new FaceDirectionInfo(BABYLON.Vector3.Left()), new FaceDirectionInfo(BABYLON.Vector3.Right()), new FaceDirectionInfo(BABYLON.Vector3.Forward()), new FaceDirectionInfo(BABYLON.Vector3.Forward().scaleInPlace(-1))];
  92473. this._tmpMatrix = new BABYLON.Matrix();
  92474. this._tmpVector = new BABYLON.Vector3();
  92475. this._zeroVector = BABYLON.Vector3.Zero();
  92476. this._lookAtTmpMatrix = new BABYLON.Matrix();
  92477. /* Does nothing */
  92478. }
  92479. /**
  92480. * Initializes the behavior
  92481. */
  92482. AttachToBoxBehavior.prototype.init = function () {
  92483. /* Does nothing */
  92484. };
  92485. AttachToBoxBehavior.prototype._closestFace = function (targetDirection) {
  92486. var _this = this;
  92487. // Go over each face and calculate the angle between the face's normal and targetDirection
  92488. this._faceVectors.forEach(function (v) {
  92489. if (!_this._target.rotationQuaternion) {
  92490. _this._target.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(_this._target.rotation.y, _this._target.rotation.x, _this._target.rotation.z);
  92491. }
  92492. _this._target.rotationQuaternion.toRotationMatrix(_this._tmpMatrix);
  92493. BABYLON.Vector3.TransformCoordinatesToRef(v.direction, _this._tmpMatrix, v.rotatedDirection);
  92494. v.diff = BABYLON.Vector3.GetAngleBetweenVectors(v.rotatedDirection, targetDirection, BABYLON.Vector3.Cross(v.rotatedDirection, targetDirection));
  92495. });
  92496. // Return the face information of the one with the normal closeset to target direction
  92497. return this._faceVectors.reduce(function (min, p) {
  92498. if (min.ignore) {
  92499. return p;
  92500. }
  92501. else if (p.ignore) {
  92502. return min;
  92503. }
  92504. else {
  92505. return min.diff < p.diff ? min : p;
  92506. }
  92507. }, this._faceVectors[0]);
  92508. };
  92509. AttachToBoxBehavior.prototype._lookAtToRef = function (pos, up, ref) {
  92510. if (up === void 0) { up = new BABYLON.Vector3(0, 1, 0); }
  92511. BABYLON.Matrix.LookAtLHToRef(this._zeroVector, pos, up, this._lookAtTmpMatrix);
  92512. this._lookAtTmpMatrix.invert();
  92513. BABYLON.Quaternion.FromRotationMatrixToRef(this._lookAtTmpMatrix, ref);
  92514. };
  92515. /**
  92516. * Attaches the AttachToBoxBehavior to the passed in mesh
  92517. * @param target The mesh that the specified node will be attached to
  92518. */
  92519. AttachToBoxBehavior.prototype.attach = function (target) {
  92520. var _this = this;
  92521. this._target = target;
  92522. this._scene = this._target.getScene();
  92523. // Every frame, update the app bars position
  92524. this._onRenderObserver = this._scene.onBeforeRenderObservable.add(function () {
  92525. if (!_this._scene.activeCamera) {
  92526. return;
  92527. }
  92528. // Find the face closest to the cameras position
  92529. var cameraPos = _this._scene.activeCamera.position;
  92530. if (_this._scene.activeCamera.devicePosition) {
  92531. cameraPos = _this._scene.activeCamera.devicePosition;
  92532. }
  92533. var facing = _this._closestFace(cameraPos.subtract(target.position));
  92534. if (_this._scene.activeCamera.leftCamera) {
  92535. _this._scene.activeCamera.leftCamera.computeWorldMatrix().getRotationMatrixToRef(_this._tmpMatrix);
  92536. }
  92537. else {
  92538. _this._scene.activeCamera.computeWorldMatrix().getRotationMatrixToRef(_this._tmpMatrix);
  92539. }
  92540. // Get camera up direction
  92541. BABYLON.Vector3.TransformCoordinatesToRef(BABYLON.Vector3.Up(), _this._tmpMatrix, _this._tmpVector);
  92542. // Ignore faces to not select a parrelel face for the up vector of the UI
  92543. _this._faceVectors.forEach(function (v) {
  92544. if (facing.direction.x && v.direction.x) {
  92545. v.ignore = true;
  92546. }
  92547. if (facing.direction.y && v.direction.y) {
  92548. v.ignore = true;
  92549. }
  92550. if (facing.direction.z && v.direction.z) {
  92551. v.ignore = true;
  92552. }
  92553. });
  92554. var facingUp = _this._closestFace(_this._tmpVector);
  92555. // Unignore faces
  92556. _this._faceVectors.forEach(function (v) {
  92557. v.ignore = false;
  92558. });
  92559. // Position the app bar on that face
  92560. _this.ui.position.copyFrom(target.position);
  92561. if (facing.direction.x) {
  92562. facing.rotatedDirection.scaleToRef((target.scaling.x / 2) + _this.distanceAwayFromFace, _this._tmpVector);
  92563. _this.ui.position.addInPlace(_this._tmpVector);
  92564. }
  92565. if (facing.direction.y) {
  92566. facing.rotatedDirection.scaleToRef((target.scaling.y / 2) + _this.distanceAwayFromFace, _this._tmpVector);
  92567. _this.ui.position.addInPlace(_this._tmpVector);
  92568. }
  92569. if (facing.direction.z) {
  92570. facing.rotatedDirection.scaleToRef((target.scaling.z / 2) + _this.distanceAwayFromFace, _this._tmpVector);
  92571. _this.ui.position.addInPlace(_this._tmpVector);
  92572. }
  92573. // Rotate to be oriented properly to the camera
  92574. if (!_this.ui.rotationQuaternion) {
  92575. _this.ui.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(_this.ui.rotation.y, _this.ui.rotation.x, _this.ui.rotation.z);
  92576. }
  92577. facing.rotatedDirection.scaleToRef(-1, _this._tmpVector);
  92578. _this._lookAtToRef(_this._tmpVector, facingUp.rotatedDirection, _this.ui.rotationQuaternion);
  92579. // Place ui the correct distance from the bottom of the mesh
  92580. if (facingUp.direction.x) {
  92581. _this.ui.up.scaleToRef(_this.distanceAwayFromBottomOfFace - target.scaling.x / 2, _this._tmpVector);
  92582. }
  92583. if (facingUp.direction.y) {
  92584. _this.ui.up.scaleToRef(_this.distanceAwayFromBottomOfFace - target.scaling.y / 2, _this._tmpVector);
  92585. }
  92586. if (facingUp.direction.z) {
  92587. _this.ui.up.scaleToRef(_this.distanceAwayFromBottomOfFace - target.scaling.z / 2, _this._tmpVector);
  92588. }
  92589. _this.ui.position.addInPlace(_this._tmpVector);
  92590. });
  92591. };
  92592. /**
  92593. * Detaches the behavior from the mesh
  92594. */
  92595. AttachToBoxBehavior.prototype.detach = function () {
  92596. this._scene.onBeforeRenderObservable.remove(this._onRenderObserver);
  92597. };
  92598. return AttachToBoxBehavior;
  92599. }());
  92600. BABYLON.AttachToBoxBehavior = AttachToBoxBehavior;
  92601. })(BABYLON || (BABYLON = {}));
  92602. //# sourceMappingURL=babylon.attachToBoxBehavior.js.map
  92603. var BABYLON;
  92604. (function (BABYLON) {
  92605. /**
  92606. * A behavior that when attached to a mesh will allow the mesh to fade in and out
  92607. */
  92608. var FadeInOutBehavior = /** @class */ (function () {
  92609. /**
  92610. * Instatiates the FadeInOutBehavior
  92611. */
  92612. function FadeInOutBehavior() {
  92613. var _this = this;
  92614. /**
  92615. * Time in milliseconds to delay before fading in (Default: 0)
  92616. */
  92617. this.delay = 0;
  92618. /**
  92619. * Time in milliseconds for the mesh to fade in (Default: 300)
  92620. */
  92621. this.fadeInTime = 300;
  92622. this._millisecondsPerFrame = 1000 / 60;
  92623. this._hovered = false;
  92624. this._hoverValue = 0;
  92625. this._ownerNode = null;
  92626. this._update = function () {
  92627. if (_this._ownerNode) {
  92628. _this._hoverValue += _this._hovered ? _this._millisecondsPerFrame : -_this._millisecondsPerFrame;
  92629. _this._setAllVisibility(_this._ownerNode, (_this._hoverValue - _this.delay) / _this.fadeInTime);
  92630. if (_this._ownerNode.visibility > 1) {
  92631. _this._setAllVisibility(_this._ownerNode, 1);
  92632. _this._hoverValue = _this.fadeInTime + _this.delay;
  92633. return;
  92634. }
  92635. else if (_this._ownerNode.visibility < 0) {
  92636. _this._setAllVisibility(_this._ownerNode, 0);
  92637. if (_this._hoverValue < 0) {
  92638. _this._hoverValue = 0;
  92639. return;
  92640. }
  92641. }
  92642. setTimeout(_this._update, _this._millisecondsPerFrame);
  92643. }
  92644. };
  92645. }
  92646. Object.defineProperty(FadeInOutBehavior.prototype, "name", {
  92647. /**
  92648. * The name of the behavior
  92649. */
  92650. get: function () {
  92651. return "FadeInOut";
  92652. },
  92653. enumerable: true,
  92654. configurable: true
  92655. });
  92656. /**
  92657. * Initializes the behavior
  92658. */
  92659. FadeInOutBehavior.prototype.init = function () {
  92660. };
  92661. /**
  92662. * Attaches the fade behavior on the passed in mesh
  92663. * @param ownerNode The mesh that will be faded in/out once attached
  92664. */
  92665. FadeInOutBehavior.prototype.attach = function (ownerNode) {
  92666. this._ownerNode = ownerNode;
  92667. this._setAllVisibility(this._ownerNode, 0);
  92668. };
  92669. /**
  92670. * Detaches the behavior from the mesh
  92671. */
  92672. FadeInOutBehavior.prototype.detach = function () {
  92673. this._ownerNode = null;
  92674. };
  92675. /**
  92676. * Triggers the mesh to begin fading in or out
  92677. * @param value if the object should fade in or out (true to fade in)
  92678. */
  92679. FadeInOutBehavior.prototype.fadeIn = function (value) {
  92680. this._hovered = value;
  92681. this._update();
  92682. };
  92683. FadeInOutBehavior.prototype._setAllVisibility = function (mesh, value) {
  92684. var _this = this;
  92685. mesh.visibility = value;
  92686. mesh.getChildMeshes().forEach(function (c) {
  92687. _this._setAllVisibility(c, value);
  92688. });
  92689. };
  92690. return FadeInOutBehavior;
  92691. }());
  92692. BABYLON.FadeInOutBehavior = FadeInOutBehavior;
  92693. })(BABYLON || (BABYLON = {}));
  92694. //# sourceMappingURL=babylon.fadeInOutBehavior.js.map
  92695. var BABYLON;
  92696. (function (BABYLON) {
  92697. /**
  92698. * Renders gizmos on top of an existing scene which provide controls for position, rotation, etc.
  92699. */
  92700. var Gizmo = /** @class */ (function () {
  92701. /**
  92702. * Creates a gizmo
  92703. * @param gizmoLayer The utility layer the gizmo will be added to
  92704. */
  92705. function Gizmo(
  92706. /** The utility layer the gizmo will be added to */
  92707. gizmoLayer) {
  92708. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  92709. var _this = this;
  92710. this.gizmoLayer = gizmoLayer;
  92711. /**
  92712. * Ratio for the scale of the gizmo (Default: 1)
  92713. */
  92714. this.scaleRatio = 1;
  92715. this._tmpMatrix = new BABYLON.Matrix();
  92716. /**
  92717. * If a custom mesh has been set (Default: false)
  92718. */
  92719. this._customMeshSet = false;
  92720. /**
  92721. * If set the gizmo's rotation will be updated to match the attached mesh each frame (Default: true)
  92722. */
  92723. this.updateGizmoRotationToMatchAttachedMesh = true;
  92724. /**
  92725. * If set the gizmo's position will be updated to match the attached mesh each frame (Default: true)
  92726. */
  92727. this.updateGizmoPositionToMatchAttachedMesh = true;
  92728. /**
  92729. * When set, the gizmo will always appear the same size no matter where the camera is (default: false)
  92730. */
  92731. this._updateScale = true;
  92732. this._interactionsEnabled = true;
  92733. this._tempVector = new BABYLON.Vector3();
  92734. this._rootMesh = new BABYLON.Mesh("gizmoRootNode", gizmoLayer.utilityLayerScene);
  92735. this._beforeRenderObserver = this.gizmoLayer.utilityLayerScene.onBeforeRenderObservable.add(function () {
  92736. _this._update();
  92737. });
  92738. this.attachedMesh = null;
  92739. }
  92740. Object.defineProperty(Gizmo.prototype, "attachedMesh", {
  92741. /**
  92742. * Mesh that the gizmo will be attached to. (eg. on a drag gizmo the mesh that will be dragged)
  92743. * * When set, interactions will be enabled
  92744. */
  92745. get: function () {
  92746. return this._attachedMesh;
  92747. },
  92748. set: function (value) {
  92749. this._attachedMesh = value;
  92750. this._rootMesh.setEnabled(value ? true : false);
  92751. this._attachedMeshChanged(value);
  92752. },
  92753. enumerable: true,
  92754. configurable: true
  92755. });
  92756. /**
  92757. * Disposes and replaces the current meshes in the gizmo with the specified mesh
  92758. * @param mesh The mesh to replace the default mesh of the gizmo
  92759. */
  92760. Gizmo.prototype.setCustomMesh = function (mesh) {
  92761. if (mesh.getScene() != this.gizmoLayer.utilityLayerScene) {
  92762. throw "When setting a custom mesh on a gizmo, the custom meshes scene must be the same as the gizmos (eg. gizmo.gizmoLayer.utilityLayerScene)";
  92763. }
  92764. this._rootMesh.getChildMeshes().forEach(function (c) {
  92765. c.dispose();
  92766. });
  92767. mesh.parent = this._rootMesh;
  92768. this._customMeshSet = true;
  92769. };
  92770. Gizmo.prototype._attachedMeshChanged = function (value) {
  92771. };
  92772. /**
  92773. * @hidden
  92774. * Updates the gizmo to match the attached mesh's position/rotation
  92775. */
  92776. Gizmo.prototype._update = function () {
  92777. if (this.attachedMesh) {
  92778. if (this.updateGizmoRotationToMatchAttachedMesh) {
  92779. if (!this._rootMesh.rotationQuaternion) {
  92780. this._rootMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this._rootMesh.rotation.y, this._rootMesh.rotation.x, this._rootMesh.rotation.z);
  92781. }
  92782. // Remove scaling before getting rotation matrix to get rotation matrix unmodified by scale
  92783. this._tempVector.copyFrom(this.attachedMesh.scaling);
  92784. if (this.attachedMesh.scaling.x < 0) {
  92785. this.attachedMesh.scaling.x *= -1;
  92786. }
  92787. if (this.attachedMesh.scaling.y < 0) {
  92788. this.attachedMesh.scaling.y *= -1;
  92789. }
  92790. if (this.attachedMesh.scaling.z < 0) {
  92791. this.attachedMesh.scaling.z *= -1;
  92792. }
  92793. this.attachedMesh.computeWorldMatrix().getRotationMatrixToRef(this._tmpMatrix);
  92794. this.attachedMesh.scaling.copyFrom(this._tempVector);
  92795. this.attachedMesh.computeWorldMatrix();
  92796. BABYLON.Quaternion.FromRotationMatrixToRef(this._tmpMatrix, this._rootMesh.rotationQuaternion);
  92797. }
  92798. else if (this._rootMesh.rotationQuaternion) {
  92799. this._rootMesh.rotationQuaternion.set(0, 0, 0, 1);
  92800. }
  92801. if (this.updateGizmoPositionToMatchAttachedMesh) {
  92802. this._rootMesh.position.copyFrom(this.attachedMesh.absolutePosition);
  92803. }
  92804. if (this._updateScale && this.gizmoLayer.utilityLayerScene.activeCamera && this.attachedMesh) {
  92805. var cameraPosition = this.gizmoLayer.utilityLayerScene.activeCamera.position;
  92806. if (this.gizmoLayer.utilityLayerScene.activeCamera.devicePosition) {
  92807. cameraPosition = this.gizmoLayer.utilityLayerScene.activeCamera.devicePosition;
  92808. }
  92809. this._rootMesh.position.subtractToRef(cameraPosition, this._tempVector);
  92810. var dist = this._tempVector.length() * this.scaleRatio;
  92811. this._rootMesh.scaling.set(dist, dist, dist);
  92812. }
  92813. }
  92814. };
  92815. /**
  92816. * Disposes of the gizmo
  92817. */
  92818. Gizmo.prototype.dispose = function () {
  92819. this._rootMesh.dispose();
  92820. if (this._beforeRenderObserver) {
  92821. this.gizmoLayer.utilityLayerScene.onBeforeRenderObservable.remove(this._beforeRenderObserver);
  92822. }
  92823. };
  92824. return Gizmo;
  92825. }());
  92826. BABYLON.Gizmo = Gizmo;
  92827. })(BABYLON || (BABYLON = {}));
  92828. //# sourceMappingURL=babylon.gizmo.js.map
  92829. var BABYLON;
  92830. (function (BABYLON) {
  92831. /**
  92832. * Single axis drag gizmo
  92833. */
  92834. var AxisDragGizmo = /** @class */ (function (_super) {
  92835. __extends(AxisDragGizmo, _super);
  92836. /**
  92837. * Creates an AxisDragGizmo
  92838. * @param gizmoLayer The utility layer the gizmo will be added to
  92839. * @param dragAxis The axis which the gizmo will be able to drag on
  92840. * @param color The color of the gizmo
  92841. */
  92842. function AxisDragGizmo(dragAxis, color, gizmoLayer) {
  92843. if (color === void 0) { color = BABYLON.Color3.Gray(); }
  92844. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  92845. var _this = _super.call(this, gizmoLayer) || this;
  92846. _this._pointerObserver = null;
  92847. /**
  92848. * Drag distance in babylon units that the gizmo will snap to when dragged (Default: 0)
  92849. */
  92850. _this.snapDistance = 0;
  92851. /**
  92852. * Event that fires each time the gizmo snaps to a new location.
  92853. * * snapDistance is the the change in distance
  92854. */
  92855. _this.onSnapObservable = new BABYLON.Observable();
  92856. // Create Material
  92857. var coloredMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  92858. coloredMaterial.disableLighting = true;
  92859. coloredMaterial.emissiveColor = color;
  92860. var hoverMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  92861. hoverMaterial.disableLighting = true;
  92862. hoverMaterial.emissiveColor = color.add(new BABYLON.Color3(0.3, 0.3, 0.3));
  92863. // Build mesh on root node
  92864. var arrow = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  92865. var arrowMesh = BABYLON.MeshBuilder.CreateCylinder("yPosMesh", { diameterTop: 0, height: 1.5, diameterBottom: 0.75, tessellation: 96 }, gizmoLayer.utilityLayerScene);
  92866. var arrowTail = BABYLON.MeshBuilder.CreateLines("yPosMesh", { points: [new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(0, 1.1, 0)] }, gizmoLayer.utilityLayerScene);
  92867. arrowTail.color = coloredMaterial.emissiveColor;
  92868. arrow.addChild(arrowMesh);
  92869. arrow.addChild(arrowTail);
  92870. // Position arrow pointing in its drag axis
  92871. arrowMesh.scaling.scaleInPlace(0.05);
  92872. arrowMesh.material = coloredMaterial;
  92873. arrowMesh.rotation.x = Math.PI / 2;
  92874. arrowMesh.position.z += 0.3;
  92875. arrowTail.scaling.scaleInPlace(0.26);
  92876. arrowTail.rotation.x = Math.PI / 2;
  92877. arrowTail.material = coloredMaterial;
  92878. arrow.lookAt(_this._rootMesh.position.subtract(dragAxis));
  92879. arrow.scaling.scaleInPlace(1 / 3);
  92880. _this._rootMesh.addChild(arrow);
  92881. var currentSnapDragDistance = 0;
  92882. var tmpVector = new BABYLON.Vector3();
  92883. var tmpSnapEvent = { snapDistance: 0 };
  92884. // Add drag behavior to handle events when the gizmo is dragged
  92885. _this.dragBehavior = new BABYLON.PointerDragBehavior({ dragAxis: dragAxis });
  92886. _this.dragBehavior.moveAttached = false;
  92887. _this._rootMesh.addBehavior(_this.dragBehavior);
  92888. var localDelta = new BABYLON.Vector3();
  92889. var tmpMatrix = new BABYLON.Matrix();
  92890. _this.dragBehavior.onDragObservable.add(function (event) {
  92891. if (_this.attachedMesh) {
  92892. // Convert delta to local translation if it has a parent
  92893. if (_this.attachedMesh.parent) {
  92894. _this.attachedMesh.parent.computeWorldMatrix().invertToRef(tmpMatrix);
  92895. tmpMatrix.setTranslationFromFloats(0, 0, 0);
  92896. BABYLON.Vector3.TransformCoordinatesToRef(event.delta, tmpMatrix, localDelta);
  92897. }
  92898. else {
  92899. localDelta.copyFrom(event.delta);
  92900. }
  92901. // Snapping logic
  92902. if (_this.snapDistance == 0) {
  92903. _this.attachedMesh.position.addInPlace(localDelta);
  92904. }
  92905. else {
  92906. currentSnapDragDistance += event.dragDistance;
  92907. if (Math.abs(currentSnapDragDistance) > _this.snapDistance) {
  92908. var dragSteps = Math.floor(Math.abs(currentSnapDragDistance) / _this.snapDistance);
  92909. currentSnapDragDistance = currentSnapDragDistance % _this.snapDistance;
  92910. localDelta.normalizeToRef(tmpVector);
  92911. tmpVector.scaleInPlace(_this.snapDistance * dragSteps);
  92912. _this.attachedMesh.position.addInPlace(tmpVector);
  92913. tmpSnapEvent.snapDistance = _this.snapDistance * dragSteps;
  92914. _this.onSnapObservable.notifyObservers(tmpSnapEvent);
  92915. }
  92916. }
  92917. }
  92918. });
  92919. _this._pointerObserver = gizmoLayer.utilityLayerScene.onPointerObservable.add(function (pointerInfo, eventState) {
  92920. if (_this._customMeshSet) {
  92921. return;
  92922. }
  92923. var isHovered = pointerInfo.pickInfo && (_this._rootMesh.getChildMeshes().indexOf(pointerInfo.pickInfo.pickedMesh) != -1);
  92924. var material = isHovered ? hoverMaterial : coloredMaterial;
  92925. _this._rootMesh.getChildMeshes().forEach(function (m) {
  92926. m.material = material;
  92927. if (m.color) {
  92928. m.color = material.emissiveColor;
  92929. }
  92930. });
  92931. });
  92932. return _this;
  92933. }
  92934. AxisDragGizmo.prototype._attachedMeshChanged = function (value) {
  92935. if (this.dragBehavior) {
  92936. this.dragBehavior.enabled = value ? true : false;
  92937. }
  92938. };
  92939. /**
  92940. * Disposes of the gizmo
  92941. */
  92942. AxisDragGizmo.prototype.dispose = function () {
  92943. this.onSnapObservable.clear();
  92944. this.gizmoLayer.utilityLayerScene.onPointerObservable.remove(this._pointerObserver);
  92945. this.dragBehavior.detach();
  92946. _super.prototype.dispose.call(this);
  92947. };
  92948. return AxisDragGizmo;
  92949. }(BABYLON.Gizmo));
  92950. BABYLON.AxisDragGizmo = AxisDragGizmo;
  92951. })(BABYLON || (BABYLON = {}));
  92952. //# sourceMappingURL=babylon.axisDragGizmo.js.map
  92953. var BABYLON;
  92954. (function (BABYLON) {
  92955. /**
  92956. * Single axis scale gizmo
  92957. */
  92958. var AxisScaleGizmo = /** @class */ (function (_super) {
  92959. __extends(AxisScaleGizmo, _super);
  92960. /**
  92961. * Creates an AxisScaleGizmo
  92962. * @param gizmoLayer The utility layer the gizmo will be added to
  92963. * @param dragAxis The axis which the gizmo will be able to scale on
  92964. * @param color The color of the gizmo
  92965. */
  92966. function AxisScaleGizmo(dragAxis, color, gizmoLayer) {
  92967. if (color === void 0) { color = BABYLON.Color3.Gray(); }
  92968. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  92969. var _this = _super.call(this, gizmoLayer) || this;
  92970. _this._pointerObserver = null;
  92971. /**
  92972. * Scale distance in babylon units that the gizmo will snap to when dragged (Default: 0)
  92973. */
  92974. _this.snapDistance = 0;
  92975. /**
  92976. * Event that fires each time the gizmo snaps to a new location.
  92977. * * snapDistance is the the change in distance
  92978. */
  92979. _this.onSnapObservable = new BABYLON.Observable();
  92980. /**
  92981. * If the scaling operation should be done on all axis (default: false)
  92982. */
  92983. _this.uniformScaling = false;
  92984. // Create Material
  92985. _this._coloredMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  92986. _this._coloredMaterial.disableLighting = true;
  92987. _this._coloredMaterial.emissiveColor = color;
  92988. var hoverMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  92989. hoverMaterial.disableLighting = true;
  92990. hoverMaterial.emissiveColor = color.add(new BABYLON.Color3(0.3, 0.3, 0.3));
  92991. // Build mesh on root node
  92992. var arrow = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  92993. var arrowMesh = BABYLON.MeshBuilder.CreateBox("yPosMesh", { size: 0.4 }, gizmoLayer.utilityLayerScene);
  92994. var arrowTail = BABYLON.MeshBuilder.CreateLines("yPosMesh", { points: [new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(0, 1.1, 0)] }, gizmoLayer.utilityLayerScene);
  92995. arrowTail.color = _this._coloredMaterial.emissiveColor;
  92996. arrow.addChild(arrowMesh);
  92997. arrow.addChild(arrowTail);
  92998. // Position arrow pointing in its drag axis
  92999. arrowMesh.scaling.scaleInPlace(0.1);
  93000. arrowMesh.material = _this._coloredMaterial;
  93001. arrowMesh.rotation.x = Math.PI / 2;
  93002. arrowMesh.position.z += 0.3;
  93003. arrowTail.scaling.scaleInPlace(0.26);
  93004. arrowTail.rotation.x = Math.PI / 2;
  93005. arrowTail.material = _this._coloredMaterial;
  93006. arrow.lookAt(_this._rootMesh.position.subtract(dragAxis));
  93007. _this._rootMesh.addChild(arrow);
  93008. arrow.scaling.scaleInPlace(1 / 3);
  93009. // Add drag behavior to handle events when the gizmo is dragged
  93010. _this.dragBehavior = new BABYLON.PointerDragBehavior({ dragAxis: dragAxis });
  93011. _this.dragBehavior.moveAttached = false;
  93012. _this._rootMesh.addBehavior(_this.dragBehavior);
  93013. var currentSnapDragDistance = 0;
  93014. var tmpVector = new BABYLON.Vector3();
  93015. var tmpSnapEvent = { snapDistance: 0 };
  93016. _this.dragBehavior.onDragObservable.add(function (event) {
  93017. if (_this.attachedMesh) {
  93018. // Snapping logic
  93019. var snapped = false;
  93020. var dragSteps = 0;
  93021. if (_this.uniformScaling) {
  93022. _this.attachedMesh.scaling.normalizeToRef(tmpVector);
  93023. if (tmpVector.y < 0) {
  93024. tmpVector.scaleInPlace(-1);
  93025. }
  93026. }
  93027. else {
  93028. tmpVector.copyFrom(dragAxis);
  93029. }
  93030. if (_this.snapDistance == 0) {
  93031. tmpVector.scaleToRef(event.dragDistance, tmpVector);
  93032. }
  93033. else {
  93034. currentSnapDragDistance += event.dragDistance;
  93035. if (Math.abs(currentSnapDragDistance) > _this.snapDistance) {
  93036. dragSteps = Math.floor(currentSnapDragDistance / _this.snapDistance);
  93037. currentSnapDragDistance = currentSnapDragDistance % _this.snapDistance;
  93038. tmpVector.scaleToRef(_this.snapDistance * dragSteps, tmpVector);
  93039. snapped = true;
  93040. }
  93041. else {
  93042. tmpVector.scaleInPlace(0);
  93043. }
  93044. }
  93045. _this.attachedMesh.scaling.addInPlace(tmpVector);
  93046. if (snapped) {
  93047. tmpSnapEvent.snapDistance = _this.snapDistance * dragSteps;
  93048. _this.onSnapObservable.notifyObservers(tmpSnapEvent);
  93049. }
  93050. }
  93051. });
  93052. _this._pointerObserver = gizmoLayer.utilityLayerScene.onPointerObservable.add(function (pointerInfo, eventState) {
  93053. if (_this._customMeshSet) {
  93054. return;
  93055. }
  93056. var isHovered = pointerInfo.pickInfo && (_this._rootMesh.getChildMeshes().indexOf(pointerInfo.pickInfo.pickedMesh) != -1);
  93057. var material = isHovered ? hoverMaterial : _this._coloredMaterial;
  93058. _this._rootMesh.getChildMeshes().forEach(function (m) {
  93059. m.material = material;
  93060. if (m.color) {
  93061. m.color = material.emissiveColor;
  93062. }
  93063. });
  93064. });
  93065. return _this;
  93066. }
  93067. AxisScaleGizmo.prototype._attachedMeshChanged = function (value) {
  93068. if (this.dragBehavior) {
  93069. this.dragBehavior.enabled = value ? true : false;
  93070. }
  93071. };
  93072. /**
  93073. * Disposes of the gizmo
  93074. */
  93075. AxisScaleGizmo.prototype.dispose = function () {
  93076. this.onSnapObservable.clear();
  93077. this.gizmoLayer.utilityLayerScene.onPointerObservable.remove(this._pointerObserver);
  93078. this.dragBehavior.detach();
  93079. _super.prototype.dispose.call(this);
  93080. };
  93081. /**
  93082. * Disposes and replaces the current meshes in the gizmo with the specified mesh
  93083. * @param mesh The mesh to replace the default mesh of the gizmo
  93084. * @param useGizmoMaterial If the gizmo's default material should be used (default: false)
  93085. */
  93086. AxisScaleGizmo.prototype.setCustomMesh = function (mesh, useGizmoMaterial) {
  93087. var _this = this;
  93088. if (useGizmoMaterial === void 0) { useGizmoMaterial = false; }
  93089. _super.prototype.setCustomMesh.call(this, mesh);
  93090. if (useGizmoMaterial) {
  93091. this._rootMesh.getChildMeshes().forEach(function (m) {
  93092. m.material = _this._coloredMaterial;
  93093. if (m.color) {
  93094. m.color = _this._coloredMaterial.emissiveColor;
  93095. }
  93096. });
  93097. this._customMeshSet = false;
  93098. }
  93099. };
  93100. return AxisScaleGizmo;
  93101. }(BABYLON.Gizmo));
  93102. BABYLON.AxisScaleGizmo = AxisScaleGizmo;
  93103. })(BABYLON || (BABYLON = {}));
  93104. //# sourceMappingURL=babylon.axisScaleGizmo.js.map
  93105. var BABYLON;
  93106. (function (BABYLON) {
  93107. /**
  93108. * Single plane rotation gizmo
  93109. */
  93110. var PlaneRotationGizmo = /** @class */ (function (_super) {
  93111. __extends(PlaneRotationGizmo, _super);
  93112. /**
  93113. * Creates a PlaneRotationGizmo
  93114. * @param gizmoLayer The utility layer the gizmo will be added to
  93115. * @param planeNormal The normal of the plane which the gizmo will be able to rotate on
  93116. * @param color The color of the gizmo
  93117. */
  93118. function PlaneRotationGizmo(planeNormal, color, gizmoLayer) {
  93119. if (color === void 0) { color = BABYLON.Color3.Gray(); }
  93120. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  93121. var _this = _super.call(this, gizmoLayer) || this;
  93122. _this._pointerObserver = null;
  93123. /**
  93124. * Rotation distance in radians that the gizmo will snap to (Default: 0)
  93125. */
  93126. _this.snapDistance = 0;
  93127. /**
  93128. * Event that fires each time the gizmo snaps to a new location.
  93129. * * snapDistance is the the change in distance
  93130. */
  93131. _this.onSnapObservable = new BABYLON.Observable();
  93132. // Create Material
  93133. var coloredMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  93134. coloredMaterial.disableLighting = true;
  93135. coloredMaterial.emissiveColor = color;
  93136. var hoverMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  93137. hoverMaterial.disableLighting = true;
  93138. hoverMaterial.emissiveColor = color.add(new BABYLON.Color3(0.3, 0.3, 0.3));
  93139. // Build mesh on root node
  93140. var parentMesh = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  93141. // Create circle out of lines
  93142. var tessellation = 20;
  93143. var radius = 0.8;
  93144. var points = new Array();
  93145. for (var i = 0; i < tessellation; i++) {
  93146. var radian = (2 * Math.PI) * (i / (tessellation - 1));
  93147. points.push(new BABYLON.Vector3(radius * Math.sin(radian), 0, radius * Math.cos(radian)));
  93148. }
  93149. var rotationMesh = BABYLON.Mesh.CreateLines("", points, gizmoLayer.utilityLayerScene);
  93150. rotationMesh.color = coloredMaterial.emissiveColor;
  93151. // Position arrow pointing in its drag axis
  93152. rotationMesh.scaling.scaleInPlace(0.26);
  93153. rotationMesh.material = coloredMaterial;
  93154. rotationMesh.rotation.x = Math.PI / 2;
  93155. parentMesh.addChild(rotationMesh);
  93156. parentMesh.lookAt(_this._rootMesh.position.subtract(planeNormal));
  93157. _this._rootMesh.addChild(parentMesh);
  93158. parentMesh.scaling.scaleInPlace(1 / 3);
  93159. // Add drag behavior to handle events when the gizmo is dragged
  93160. _this.dragBehavior = new BABYLON.PointerDragBehavior({ dragPlaneNormal: planeNormal });
  93161. _this.dragBehavior.moveAttached = false;
  93162. _this.dragBehavior.maxDragAngle = Math.PI * 9 / 20;
  93163. _this.dragBehavior._useAlternatePickedPointAboveMaxDragAngle = true;
  93164. _this._rootMesh.addBehavior(_this.dragBehavior);
  93165. var lastDragPosition = new BABYLON.Vector3();
  93166. _this.dragBehavior.onDragStartObservable.add(function (e) {
  93167. if (_this.attachedMesh) {
  93168. lastDragPosition.copyFrom(e.dragPlanePoint);
  93169. }
  93170. });
  93171. var rotationMatrix = new BABYLON.Matrix();
  93172. var planeNormalTowardsCamera = new BABYLON.Vector3();
  93173. var localPlaneNormalTowardsCamera = new BABYLON.Vector3();
  93174. var tmpSnapEvent = { snapDistance: 0 };
  93175. var currentSnapDragDistance = 0;
  93176. var tmpMatrix = new BABYLON.Matrix();
  93177. var tmpVector = new BABYLON.Vector3();
  93178. var amountToRotate = new BABYLON.Quaternion();
  93179. _this.dragBehavior.onDragObservable.add(function (event) {
  93180. if (_this.attachedMesh) {
  93181. if (!_this.attachedMesh.rotationQuaternion) {
  93182. _this.attachedMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(_this.attachedMesh.rotation.y, _this.attachedMesh.rotation.x, _this.attachedMesh.rotation.z);
  93183. }
  93184. // Calc angle over full 360 degree (https://stackoverflow.com/questions/43493711/the-angle-between-two-3d-vectors-with-a-result-range-0-360)
  93185. var newVector = event.dragPlanePoint.subtract(_this.attachedMesh.absolutePosition).normalize();
  93186. var originalVector = lastDragPosition.subtract(_this.attachedMesh.absolutePosition).normalize();
  93187. var cross = BABYLON.Vector3.Cross(newVector, originalVector);
  93188. var dot = BABYLON.Vector3.Dot(newVector, originalVector);
  93189. var angle = Math.atan2(cross.length(), dot);
  93190. planeNormalTowardsCamera.copyFrom(planeNormal);
  93191. localPlaneNormalTowardsCamera.copyFrom(planeNormal);
  93192. if (_this.updateGizmoRotationToMatchAttachedMesh) {
  93193. _this.attachedMesh.rotationQuaternion.toRotationMatrix(rotationMatrix);
  93194. localPlaneNormalTowardsCamera = BABYLON.Vector3.TransformCoordinates(planeNormalTowardsCamera, rotationMatrix);
  93195. }
  93196. // Flip up vector depending on which side the camera is on
  93197. if (gizmoLayer.utilityLayerScene.activeCamera) {
  93198. var camVec = gizmoLayer.utilityLayerScene.activeCamera.position.subtract(_this.attachedMesh.position);
  93199. if (BABYLON.Vector3.Dot(camVec, localPlaneNormalTowardsCamera) > 0) {
  93200. planeNormalTowardsCamera.scaleInPlace(-1);
  93201. localPlaneNormalTowardsCamera.scaleInPlace(-1);
  93202. }
  93203. }
  93204. var halfCircleSide = BABYLON.Vector3.Dot(localPlaneNormalTowardsCamera, cross) > 0.0;
  93205. if (halfCircleSide)
  93206. angle = -angle;
  93207. // Snapping logic
  93208. var snapped = false;
  93209. if (_this.snapDistance != 0) {
  93210. currentSnapDragDistance += angle;
  93211. if (Math.abs(currentSnapDragDistance) > _this.snapDistance) {
  93212. var dragSteps = Math.floor(currentSnapDragDistance / _this.snapDistance);
  93213. currentSnapDragDistance = currentSnapDragDistance % _this.snapDistance;
  93214. angle = _this.snapDistance * dragSteps;
  93215. snapped = true;
  93216. }
  93217. else {
  93218. angle = 0;
  93219. }
  93220. }
  93221. // If the mesh has a parent, convert needed world rotation to local rotation
  93222. tmpMatrix.reset();
  93223. if (_this.attachedMesh.parent) {
  93224. _this.attachedMesh.parent.computeWorldMatrix().invertToRef(tmpMatrix);
  93225. tmpMatrix.getRotationMatrixToRef(tmpMatrix);
  93226. BABYLON.Vector3.TransformCoordinatesToRef(planeNormalTowardsCamera, tmpMatrix, planeNormalTowardsCamera);
  93227. }
  93228. // Convert angle and axis to quaternion (http://www.euclideanspace.com/maths/geometry/rotations/conversions/angleToQuaternion/index.htm)
  93229. var quaternionCoefficient = Math.sin(angle / 2);
  93230. amountToRotate.set(planeNormalTowardsCamera.x * quaternionCoefficient, planeNormalTowardsCamera.y * quaternionCoefficient, planeNormalTowardsCamera.z * quaternionCoefficient, Math.cos(angle / 2));
  93231. // If the meshes local scale is inverted (eg. loaded gltf file parent with z scale of -1) the rotation needs to be inverted on the y axis
  93232. if (tmpMatrix.determinant() > 0) {
  93233. amountToRotate.toEulerAnglesToRef(tmpVector);
  93234. BABYLON.Quaternion.RotationYawPitchRollToRef(tmpVector.y, -tmpVector.x, -tmpVector.z, amountToRotate);
  93235. }
  93236. if (_this.updateGizmoRotationToMatchAttachedMesh) {
  93237. // Rotate selected mesh quaternion over fixed axis
  93238. _this.attachedMesh.rotationQuaternion.multiplyToRef(amountToRotate, _this.attachedMesh.rotationQuaternion);
  93239. }
  93240. else {
  93241. // Rotate selected mesh quaternion over rotated axis
  93242. amountToRotate.multiplyToRef(_this.attachedMesh.rotationQuaternion, _this.attachedMesh.rotationQuaternion);
  93243. }
  93244. lastDragPosition.copyFrom(event.dragPlanePoint);
  93245. if (snapped) {
  93246. tmpSnapEvent.snapDistance = angle;
  93247. _this.onSnapObservable.notifyObservers(tmpSnapEvent);
  93248. }
  93249. }
  93250. });
  93251. _this._pointerObserver = gizmoLayer.utilityLayerScene.onPointerObservable.add(function (pointerInfo, eventState) {
  93252. if (_this._customMeshSet) {
  93253. return;
  93254. }
  93255. var isHovered = pointerInfo.pickInfo && (_this._rootMesh.getChildMeshes().indexOf(pointerInfo.pickInfo.pickedMesh) != -1);
  93256. var material = isHovered ? hoverMaterial : coloredMaterial;
  93257. _this._rootMesh.getChildMeshes().forEach(function (m) {
  93258. m.material = material;
  93259. if (m.color) {
  93260. m.color = material.emissiveColor;
  93261. }
  93262. });
  93263. });
  93264. return _this;
  93265. }
  93266. PlaneRotationGizmo.prototype._attachedMeshChanged = function (value) {
  93267. if (this.dragBehavior) {
  93268. this.dragBehavior.enabled = value ? true : false;
  93269. }
  93270. };
  93271. /**
  93272. * Disposes of the gizmo
  93273. */
  93274. PlaneRotationGizmo.prototype.dispose = function () {
  93275. this.onSnapObservable.clear();
  93276. this.gizmoLayer.utilityLayerScene.onPointerObservable.remove(this._pointerObserver);
  93277. this.dragBehavior.detach();
  93278. _super.prototype.dispose.call(this);
  93279. };
  93280. return PlaneRotationGizmo;
  93281. }(BABYLON.Gizmo));
  93282. BABYLON.PlaneRotationGizmo = PlaneRotationGizmo;
  93283. })(BABYLON || (BABYLON = {}));
  93284. //# sourceMappingURL=babylon.planeRotationGizmo.js.map
  93285. var BABYLON;
  93286. (function (BABYLON) {
  93287. /**
  93288. * Gizmo that enables dragging a mesh along 3 axis
  93289. */
  93290. var PositionGizmo = /** @class */ (function (_super) {
  93291. __extends(PositionGizmo, _super);
  93292. /**
  93293. * Creates a PositionGizmo
  93294. * @param gizmoLayer The utility layer the gizmo will be added to
  93295. */
  93296. function PositionGizmo(gizmoLayer) {
  93297. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  93298. var _this = _super.call(this, gizmoLayer) || this;
  93299. _this.xGizmo = new BABYLON.AxisDragGizmo(new BABYLON.Vector3(1, 0, 0), BABYLON.Color3.Green().scale(0.5), gizmoLayer);
  93300. _this.yGizmo = new BABYLON.AxisDragGizmo(new BABYLON.Vector3(0, 1, 0), BABYLON.Color3.Red().scale(0.5), gizmoLayer);
  93301. _this.zGizmo = new BABYLON.AxisDragGizmo(new BABYLON.Vector3(0, 0, 1), BABYLON.Color3.Blue().scale(0.5), gizmoLayer);
  93302. _this.attachedMesh = null;
  93303. return _this;
  93304. }
  93305. Object.defineProperty(PositionGizmo.prototype, "attachedMesh", {
  93306. set: function (mesh) {
  93307. if (this.xGizmo) {
  93308. this.xGizmo.attachedMesh = mesh;
  93309. this.yGizmo.attachedMesh = mesh;
  93310. this.zGizmo.attachedMesh = mesh;
  93311. }
  93312. },
  93313. enumerable: true,
  93314. configurable: true
  93315. });
  93316. Object.defineProperty(PositionGizmo.prototype, "updateGizmoRotationToMatchAttachedMesh", {
  93317. get: function () {
  93318. return this.xGizmo.updateGizmoRotationToMatchAttachedMesh;
  93319. },
  93320. set: function (value) {
  93321. if (this.xGizmo) {
  93322. this.xGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93323. this.yGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93324. this.zGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93325. }
  93326. },
  93327. enumerable: true,
  93328. configurable: true
  93329. });
  93330. Object.defineProperty(PositionGizmo.prototype, "snapDistance", {
  93331. get: function () {
  93332. return this.xGizmo.snapDistance;
  93333. },
  93334. /**
  93335. * Drag distance in babylon units that the gizmo will snap to when dragged (Default: 0)
  93336. */
  93337. set: function (value) {
  93338. if (this.xGizmo) {
  93339. this.xGizmo.snapDistance = value;
  93340. this.yGizmo.snapDistance = value;
  93341. this.zGizmo.snapDistance = value;
  93342. }
  93343. },
  93344. enumerable: true,
  93345. configurable: true
  93346. });
  93347. Object.defineProperty(PositionGizmo.prototype, "scaleRatio", {
  93348. get: function () {
  93349. return this.xGizmo.scaleRatio;
  93350. },
  93351. /**
  93352. * Ratio for the scale of the gizmo (Default: 1)
  93353. */
  93354. set: function (value) {
  93355. if (this.xGizmo) {
  93356. this.xGizmo.scaleRatio = value;
  93357. this.yGizmo.scaleRatio = value;
  93358. this.zGizmo.scaleRatio = value;
  93359. }
  93360. },
  93361. enumerable: true,
  93362. configurable: true
  93363. });
  93364. /**
  93365. * Disposes of the gizmo
  93366. */
  93367. PositionGizmo.prototype.dispose = function () {
  93368. this.xGizmo.dispose();
  93369. this.yGizmo.dispose();
  93370. this.zGizmo.dispose();
  93371. };
  93372. /**
  93373. * CustomMeshes are not supported by this gizmo
  93374. * @param mesh The mesh to replace the default mesh of the gizmo
  93375. */
  93376. PositionGizmo.prototype.setCustomMesh = function (mesh) {
  93377. BABYLON.Tools.Error("Custom meshes are not supported on this gizmo, please set the custom meshes on the gizmos contained within this one (gizmo.xGizmo, gizmo.yGizmo, gizmo.zGizmo)");
  93378. };
  93379. return PositionGizmo;
  93380. }(BABYLON.Gizmo));
  93381. BABYLON.PositionGizmo = PositionGizmo;
  93382. })(BABYLON || (BABYLON = {}));
  93383. //# sourceMappingURL=babylon.positionGizmo.js.map
  93384. var BABYLON;
  93385. (function (BABYLON) {
  93386. /**
  93387. * Gizmo that enables rotating a mesh along 3 axis
  93388. */
  93389. var RotationGizmo = /** @class */ (function (_super) {
  93390. __extends(RotationGizmo, _super);
  93391. /**
  93392. * Creates a RotationGizmo
  93393. * @param gizmoLayer The utility layer the gizmo will be added to
  93394. */
  93395. function RotationGizmo(gizmoLayer) {
  93396. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  93397. var _this = _super.call(this, gizmoLayer) || this;
  93398. _this.xGizmo = new BABYLON.PlaneRotationGizmo(new BABYLON.Vector3(1, 0, 0), BABYLON.Color3.Green().scale(0.5), gizmoLayer);
  93399. _this.yGizmo = new BABYLON.PlaneRotationGizmo(new BABYLON.Vector3(0, 1, 0), BABYLON.Color3.Red().scale(0.5), gizmoLayer);
  93400. _this.zGizmo = new BABYLON.PlaneRotationGizmo(new BABYLON.Vector3(0, 0, 1), BABYLON.Color3.Blue().scale(0.5), gizmoLayer);
  93401. _this.attachedMesh = null;
  93402. return _this;
  93403. }
  93404. Object.defineProperty(RotationGizmo.prototype, "attachedMesh", {
  93405. set: function (mesh) {
  93406. if (this.xGizmo) {
  93407. this.xGizmo.attachedMesh = mesh;
  93408. this.yGizmo.attachedMesh = mesh;
  93409. this.zGizmo.attachedMesh = mesh;
  93410. }
  93411. },
  93412. enumerable: true,
  93413. configurable: true
  93414. });
  93415. Object.defineProperty(RotationGizmo.prototype, "updateGizmoRotationToMatchAttachedMesh", {
  93416. get: function () {
  93417. return this.xGizmo.updateGizmoRotationToMatchAttachedMesh;
  93418. },
  93419. set: function (value) {
  93420. if (this.xGizmo) {
  93421. this.xGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93422. this.yGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93423. this.zGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93424. }
  93425. },
  93426. enumerable: true,
  93427. configurable: true
  93428. });
  93429. Object.defineProperty(RotationGizmo.prototype, "snapDistance", {
  93430. get: function () {
  93431. return this.xGizmo.snapDistance;
  93432. },
  93433. /**
  93434. * Drag distance in babylon units that the gizmo will snap to when dragged (Default: 0)
  93435. */
  93436. set: function (value) {
  93437. if (this.xGizmo) {
  93438. this.xGizmo.snapDistance = value;
  93439. this.yGizmo.snapDistance = value;
  93440. this.zGizmo.snapDistance = value;
  93441. }
  93442. },
  93443. enumerable: true,
  93444. configurable: true
  93445. });
  93446. Object.defineProperty(RotationGizmo.prototype, "scaleRatio", {
  93447. get: function () {
  93448. return this.xGizmo.scaleRatio;
  93449. },
  93450. /**
  93451. * Ratio for the scale of the gizmo (Default: 1)
  93452. */
  93453. set: function (value) {
  93454. if (this.xGizmo) {
  93455. this.xGizmo.scaleRatio = value;
  93456. this.yGizmo.scaleRatio = value;
  93457. this.zGizmo.scaleRatio = value;
  93458. }
  93459. },
  93460. enumerable: true,
  93461. configurable: true
  93462. });
  93463. /**
  93464. * Disposes of the gizmo
  93465. */
  93466. RotationGizmo.prototype.dispose = function () {
  93467. this.xGizmo.dispose();
  93468. this.yGizmo.dispose();
  93469. this.zGizmo.dispose();
  93470. };
  93471. /**
  93472. * CustomMeshes are not supported by this gizmo
  93473. * @param mesh The mesh to replace the default mesh of the gizmo
  93474. */
  93475. RotationGizmo.prototype.setCustomMesh = function (mesh) {
  93476. BABYLON.Tools.Error("Custom meshes are not supported on this gizmo, please set the custom meshes on the gizmos contained within this one (gizmo.xGizmo, gizmo.yGizmo, gizmo.zGizmo)");
  93477. };
  93478. return RotationGizmo;
  93479. }(BABYLON.Gizmo));
  93480. BABYLON.RotationGizmo = RotationGizmo;
  93481. })(BABYLON || (BABYLON = {}));
  93482. //# sourceMappingURL=babylon.rotationGizmo.js.map
  93483. var BABYLON;
  93484. (function (BABYLON) {
  93485. /**
  93486. * Gizmo that enables scaling a mesh along 3 axis
  93487. */
  93488. var ScaleGizmo = /** @class */ (function (_super) {
  93489. __extends(ScaleGizmo, _super);
  93490. /**
  93491. * Creates a ScaleGizmo
  93492. * @param gizmoLayer The utility layer the gizmo will be added to
  93493. */
  93494. function ScaleGizmo(gizmoLayer) {
  93495. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultUtilityLayer; }
  93496. var _this = _super.call(this, gizmoLayer) || this;
  93497. _this.xGizmo = new BABYLON.AxisScaleGizmo(new BABYLON.Vector3(1, 0, 0), BABYLON.Color3.Green().scale(0.5), gizmoLayer);
  93498. _this.yGizmo = new BABYLON.AxisScaleGizmo(new BABYLON.Vector3(0, 1, 0), BABYLON.Color3.Red().scale(0.5), gizmoLayer);
  93499. _this.zGizmo = new BABYLON.AxisScaleGizmo(new BABYLON.Vector3(0, 0, 1), BABYLON.Color3.Blue().scale(0.5), gizmoLayer);
  93500. // Create uniform scale gizmo
  93501. _this._uniformGizmo = new BABYLON.AxisScaleGizmo(new BABYLON.Vector3(0, 1, 0), BABYLON.Color3.Yellow().scale(0.5), gizmoLayer);
  93502. _this._uniformGizmo.updateGizmoRotationToMatchAttachedMesh = false;
  93503. _this._uniformGizmo.uniformScaling = true;
  93504. var octahedron = BABYLON.Mesh.CreatePolyhedron("", { type: 1 }, _this._uniformGizmo.gizmoLayer.utilityLayerScene);
  93505. octahedron.scaling.scaleInPlace(0.007);
  93506. _this._uniformGizmo.setCustomMesh(octahedron, true);
  93507. _this.attachedMesh = null;
  93508. return _this;
  93509. }
  93510. Object.defineProperty(ScaleGizmo.prototype, "attachedMesh", {
  93511. set: function (mesh) {
  93512. if (this.xGizmo) {
  93513. this.xGizmo.attachedMesh = mesh;
  93514. this.yGizmo.attachedMesh = mesh;
  93515. this.zGizmo.attachedMesh = mesh;
  93516. this._uniformGizmo.attachedMesh = mesh;
  93517. }
  93518. },
  93519. enumerable: true,
  93520. configurable: true
  93521. });
  93522. Object.defineProperty(ScaleGizmo.prototype, "updateGizmoRotationToMatchAttachedMesh", {
  93523. get: function () {
  93524. return this.xGizmo.updateGizmoRotationToMatchAttachedMesh;
  93525. },
  93526. set: function (value) {
  93527. if (this.xGizmo) {
  93528. this.xGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93529. this.yGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93530. this.zGizmo.updateGizmoRotationToMatchAttachedMesh = value;
  93531. }
  93532. },
  93533. enumerable: true,
  93534. configurable: true
  93535. });
  93536. Object.defineProperty(ScaleGizmo.prototype, "snapDistance", {
  93537. get: function () {
  93538. return this.xGizmo.snapDistance;
  93539. },
  93540. /**
  93541. * Drag distance in babylon units that the gizmo will snap to when dragged (Default: 0)
  93542. */
  93543. set: function (value) {
  93544. if (this.xGizmo) {
  93545. this.xGizmo.snapDistance = value;
  93546. this.yGizmo.snapDistance = value;
  93547. this.zGizmo.snapDistance = value;
  93548. this._uniformGizmo.snapDistance = value;
  93549. }
  93550. },
  93551. enumerable: true,
  93552. configurable: true
  93553. });
  93554. Object.defineProperty(ScaleGizmo.prototype, "scaleRatio", {
  93555. get: function () {
  93556. return this.xGizmo.scaleRatio;
  93557. },
  93558. /**
  93559. * Ratio for the scale of the gizmo (Default: 1)
  93560. */
  93561. set: function (value) {
  93562. if (this.xGizmo) {
  93563. this.xGizmo.scaleRatio = value;
  93564. this.yGizmo.scaleRatio = value;
  93565. this.zGizmo.scaleRatio = value;
  93566. this._uniformGizmo.scaleRatio = value;
  93567. }
  93568. },
  93569. enumerable: true,
  93570. configurable: true
  93571. });
  93572. /**
  93573. * Disposes of the gizmo
  93574. */
  93575. ScaleGizmo.prototype.dispose = function () {
  93576. this.xGizmo.dispose();
  93577. this.yGizmo.dispose();
  93578. this.zGizmo.dispose();
  93579. this._uniformGizmo.dispose();
  93580. };
  93581. return ScaleGizmo;
  93582. }(BABYLON.Gizmo));
  93583. BABYLON.ScaleGizmo = ScaleGizmo;
  93584. })(BABYLON || (BABYLON = {}));
  93585. //# sourceMappingURL=babylon.scaleGizmo.js.map
  93586. var BABYLON;
  93587. (function (BABYLON) {
  93588. /**
  93589. * Bounding box gizmo
  93590. */
  93591. var BoundingBoxGizmo = /** @class */ (function (_super) {
  93592. __extends(BoundingBoxGizmo, _super);
  93593. /**
  93594. * Creates an BoundingBoxGizmo
  93595. * @param gizmoLayer The utility layer the gizmo will be added to
  93596. * @param color The color of the gizmo
  93597. */
  93598. function BoundingBoxGizmo(color, gizmoLayer) {
  93599. if (color === void 0) { color = BABYLON.Color3.Gray(); }
  93600. if (gizmoLayer === void 0) { gizmoLayer = BABYLON.UtilityLayerRenderer.DefaultKeepDepthUtilityLayer; }
  93601. var _this = _super.call(this, gizmoLayer) || this;
  93602. _this._boundingDimensions = new BABYLON.Vector3(1, 1, 1);
  93603. _this._renderObserver = null;
  93604. _this._pointerObserver = null;
  93605. _this._scaleDragSpeed = 0.2;
  93606. _this._tmpQuaternion = new BABYLON.Quaternion();
  93607. _this._tmpVector = new BABYLON.Vector3(0, 0, 0);
  93608. _this._tmpRotationMatrix = new BABYLON.Matrix();
  93609. /**
  93610. * If child meshes should be ignored when calculating the boudning box. This should be set to true to avoid perf hits with heavily nested meshes (Default: false)
  93611. */
  93612. _this.ignoreChildren = false;
  93613. /**
  93614. * Returns true if a descendant should be included when computing the bounding box. When null, all descendants are included. If ignoreChildren is set this will be ignored. (Default: null)
  93615. */
  93616. _this.includeChildPredicate = null;
  93617. /**
  93618. * The size of the rotation spheres attached to the bounding box (Default: 0.1)
  93619. */
  93620. _this.rotationSphereSize = 0.1;
  93621. /**
  93622. * The size of the scale boxes attached to the bounding box (Default: 0.1)
  93623. */
  93624. _this.scaleBoxSize = 0.1;
  93625. /**
  93626. * If set, the rotation spheres and scale boxes will increase in size based on the distance away from the camera to have a consistent screen size (Default: false)
  93627. */
  93628. _this.fixedDragMeshScreenSize = false;
  93629. /**
  93630. * The distance away from the object which the draggable meshes should appear world sized when fixedDragMeshScreenSize is set to true (default: 10)
  93631. */
  93632. _this.fixedDragMeshScreenSizeDistanceFactor = 10;
  93633. /**
  93634. * Fired when a rotation sphere or scale box is dragged
  93635. */
  93636. _this.onDragStartObservable = new BABYLON.Observable();
  93637. /**
  93638. * Fired when a scale box is dragged
  93639. */
  93640. _this.onScaleBoxDragObservable = new BABYLON.Observable();
  93641. /**
  93642. * Fired when a scale box drag is ended
  93643. */
  93644. _this.onScaleBoxDragEndObservable = new BABYLON.Observable();
  93645. /**
  93646. * Fired when a rotation sphere is dragged
  93647. */
  93648. _this.onRotationSphereDragObservable = new BABYLON.Observable();
  93649. /**
  93650. * Fired when a rotation sphere drag is ended
  93651. */
  93652. _this.onRotationSphereDragEndObservable = new BABYLON.Observable();
  93653. /**
  93654. * Relative bounding box pivot used when scaling the attached mesh. When null object with scale from the opposite corner. 0.5,0.5,0.5 for center and 0.5,0,0.5 for bottom (Default: null)
  93655. */
  93656. _this.scalePivot = null;
  93657. _this._existingMeshScale = new BABYLON.Vector3();
  93658. // Do not update the gizmo's scale so it has a fixed size to the object its attached to
  93659. _this._updateScale = false;
  93660. _this._anchorMesh = new BABYLON.AbstractMesh("anchor", gizmoLayer.utilityLayerScene);
  93661. // Create Materials
  93662. var coloredMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  93663. coloredMaterial.disableLighting = true;
  93664. coloredMaterial.emissiveColor = color;
  93665. var hoverColoredMaterial = new BABYLON.StandardMaterial("", gizmoLayer.utilityLayerScene);
  93666. hoverColoredMaterial.disableLighting = true;
  93667. hoverColoredMaterial.emissiveColor = color.clone().add(new BABYLON.Color3(0.3, 0.3, 0.3));
  93668. // Build bounding box out of lines
  93669. _this._lineBoundingBox = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  93670. _this._lineBoundingBox.rotationQuaternion = new BABYLON.Quaternion();
  93671. var lines = [];
  93672. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(_this._boundingDimensions.x, 0, 0)] }, gizmoLayer.utilityLayerScene));
  93673. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(0, _this._boundingDimensions.y, 0)] }, gizmoLayer.utilityLayerScene));
  93674. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, 0, 0), new BABYLON.Vector3(0, 0, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93675. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(_this._boundingDimensions.x, 0, 0), new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, 0)] }, gizmoLayer.utilityLayerScene));
  93676. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(_this._boundingDimensions.x, 0, 0), new BABYLON.Vector3(_this._boundingDimensions.x, 0, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93677. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, _this._boundingDimensions.y, 0), new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, 0)] }, gizmoLayer.utilityLayerScene));
  93678. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, _this._boundingDimensions.y, 0), new BABYLON.Vector3(0, _this._boundingDimensions.y, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93679. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, 0, _this._boundingDimensions.z), new BABYLON.Vector3(_this._boundingDimensions.x, 0, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93680. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(0, 0, _this._boundingDimensions.z), new BABYLON.Vector3(0, _this._boundingDimensions.y, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93681. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, _this._boundingDimensions.z), new BABYLON.Vector3(0, _this._boundingDimensions.y, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93682. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, _this._boundingDimensions.z), new BABYLON.Vector3(_this._boundingDimensions.x, 0, _this._boundingDimensions.z)] }, gizmoLayer.utilityLayerScene));
  93683. lines.push(BABYLON.MeshBuilder.CreateLines("lines", { points: [new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, _this._boundingDimensions.z), new BABYLON.Vector3(_this._boundingDimensions.x, _this._boundingDimensions.y, 0)] }, gizmoLayer.utilityLayerScene));
  93684. lines.forEach(function (l) {
  93685. l.color = color;
  93686. l.position.addInPlace(new BABYLON.Vector3(-_this._boundingDimensions.x / 2, -_this._boundingDimensions.y / 2, -_this._boundingDimensions.z / 2));
  93687. l.isPickable = false;
  93688. _this._lineBoundingBox.addChild(l);
  93689. });
  93690. _this._rootMesh.addChild(_this._lineBoundingBox);
  93691. // Create rotation spheres
  93692. _this._rotateSpheresParent = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  93693. _this._rotateSpheresParent.rotationQuaternion = new BABYLON.Quaternion();
  93694. var _loop_1 = function (i_1) {
  93695. var sphere = BABYLON.MeshBuilder.CreateSphere("", { diameter: 1 }, gizmoLayer.utilityLayerScene);
  93696. sphere.rotationQuaternion = new BABYLON.Quaternion();
  93697. sphere.material = coloredMaterial;
  93698. // Drag behavior
  93699. _dragBehavior = new BABYLON.PointerDragBehavior({});
  93700. _dragBehavior.moveAttached = false;
  93701. _dragBehavior.updateDragPlane = false;
  93702. sphere.addBehavior(_dragBehavior);
  93703. var startingTurnDirection = new BABYLON.Vector3(1, 0, 0);
  93704. var totalTurnAmountOfDrag = 0;
  93705. _dragBehavior.onDragStartObservable.add(function (event) {
  93706. startingTurnDirection.copyFrom(sphere.forward);
  93707. totalTurnAmountOfDrag = 0;
  93708. });
  93709. _dragBehavior.onDragObservable.add(function (event) {
  93710. _this.onRotationSphereDragObservable.notifyObservers({});
  93711. if (_this.attachedMesh) {
  93712. BoundingBoxGizmo._RemoveAndStorePivotPoint(_this.attachedMesh);
  93713. var worldDragDirection = startingTurnDirection;
  93714. // Project the world right on to the drag plane
  93715. var toSub = event.dragPlaneNormal.scale(BABYLON.Vector3.Dot(event.dragPlaneNormal, worldDragDirection));
  93716. var dragAxis = worldDragDirection.subtract(toSub).normalizeToNew();
  93717. // project drag delta on to the resulting drag axis and rotate based on that
  93718. var projectDist = -BABYLON.Vector3.Dot(dragAxis, event.delta);
  93719. // Make rotation relative to size of mesh.
  93720. projectDist = (projectDist / _this._boundingDimensions.length()) * _this._anchorMesh.scaling.length();
  93721. // Rotate based on axis
  93722. if (!_this.attachedMesh.rotationQuaternion) {
  93723. _this.attachedMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(_this.attachedMesh.rotation.y, _this.attachedMesh.rotation.x, _this.attachedMesh.rotation.z);
  93724. }
  93725. if (!_this._anchorMesh.rotationQuaternion) {
  93726. _this._anchorMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(_this._anchorMesh.rotation.y, _this._anchorMesh.rotation.x, _this._anchorMesh.rotation.z);
  93727. }
  93728. // Do not allow the object to turn more than a full circle
  93729. totalTurnAmountOfDrag += projectDist;
  93730. if (Math.abs(totalTurnAmountOfDrag) <= 2 * Math.PI) {
  93731. if (i_1 >= 8) {
  93732. BABYLON.Quaternion.RotationYawPitchRollToRef(0, 0, projectDist, _this._tmpQuaternion);
  93733. }
  93734. else if (i_1 >= 4) {
  93735. BABYLON.Quaternion.RotationYawPitchRollToRef(projectDist, 0, 0, _this._tmpQuaternion);
  93736. }
  93737. else {
  93738. BABYLON.Quaternion.RotationYawPitchRollToRef(0, projectDist, 0, _this._tmpQuaternion);
  93739. }
  93740. // Rotate around center of bounding box
  93741. _this._anchorMesh.addChild(_this.attachedMesh);
  93742. _this._anchorMesh.rotationQuaternion.multiplyToRef(_this._tmpQuaternion, _this._anchorMesh.rotationQuaternion);
  93743. _this._anchorMesh.removeChild(_this.attachedMesh);
  93744. }
  93745. _this.updateBoundingBox();
  93746. BoundingBoxGizmo._RestorePivotPoint(_this.attachedMesh);
  93747. }
  93748. });
  93749. // Selection/deselection
  93750. _dragBehavior.onDragStartObservable.add(function () {
  93751. _this.onDragStartObservable.notifyObservers({});
  93752. _this._selectNode(sphere);
  93753. });
  93754. _dragBehavior.onDragEndObservable.add(function () {
  93755. _this.onRotationSphereDragEndObservable.notifyObservers({});
  93756. _this._selectNode(null);
  93757. });
  93758. this_1._rotateSpheresParent.addChild(sphere);
  93759. };
  93760. var this_1 = this, _dragBehavior;
  93761. for (var i_1 = 0; i_1 < 12; i_1++) {
  93762. _loop_1(i_1);
  93763. }
  93764. _this._rootMesh.addChild(_this._rotateSpheresParent);
  93765. // Create scale cubes
  93766. _this._scaleBoxesParent = new BABYLON.AbstractMesh("", gizmoLayer.utilityLayerScene);
  93767. _this._scaleBoxesParent.rotationQuaternion = new BABYLON.Quaternion();
  93768. for (var i = 0; i < 2; i++) {
  93769. for (var j = 0; j < 2; j++) {
  93770. var _loop_2 = function () {
  93771. var box = BABYLON.MeshBuilder.CreateBox("", { size: 1 }, gizmoLayer.utilityLayerScene);
  93772. box.material = coloredMaterial;
  93773. // Dragging logic
  93774. var dragAxis = new BABYLON.Vector3(i == 0 ? -1 : 1, j == 0 ? -1 : 1, k == 0 ? -1 : 1);
  93775. _dragBehavior = new BABYLON.PointerDragBehavior({ dragAxis: dragAxis });
  93776. _dragBehavior.moveAttached = false;
  93777. box.addBehavior(_dragBehavior);
  93778. _dragBehavior.onDragObservable.add(function (event) {
  93779. _this.onScaleBoxDragObservable.notifyObservers({});
  93780. if (_this.attachedMesh) {
  93781. BoundingBoxGizmo._RemoveAndStorePivotPoint(_this.attachedMesh);
  93782. var relativeDragDistance = (event.dragDistance / _this._boundingDimensions.length()) * _this._anchorMesh.scaling.length();
  93783. var deltaScale = new BABYLON.Vector3(relativeDragDistance, relativeDragDistance, relativeDragDistance);
  93784. deltaScale.scaleInPlace(_this._scaleDragSpeed);
  93785. _this.updateBoundingBox();
  93786. if (_this.scalePivot) {
  93787. _this.attachedMesh.getWorldMatrix().getRotationMatrixToRef(_this._tmpRotationMatrix);
  93788. // Move anchor to desired pivot point (Bottom left corner + dimension/2)
  93789. _this._boundingDimensions.scaleToRef(0.5, _this._tmpVector);
  93790. BABYLON.Vector3.TransformCoordinatesToRef(_this._tmpVector, _this._tmpRotationMatrix, _this._tmpVector);
  93791. _this._anchorMesh.position.subtractInPlace(_this._tmpVector);
  93792. _this._boundingDimensions.multiplyToRef(_this.scalePivot, _this._tmpVector);
  93793. BABYLON.Vector3.TransformCoordinatesToRef(_this._tmpVector, _this._tmpRotationMatrix, _this._tmpVector);
  93794. _this._anchorMesh.position.addInPlace(_this._tmpVector);
  93795. }
  93796. else {
  93797. // Scale from the position of the opposite corner
  93798. box.absolutePosition.subtractToRef(_this._anchorMesh.position, _this._tmpVector);
  93799. _this._anchorMesh.position.subtractInPlace(_this._tmpVector);
  93800. }
  93801. _this._anchorMesh.addChild(_this.attachedMesh);
  93802. _this._anchorMesh.scaling.addInPlace(deltaScale);
  93803. if (_this._anchorMesh.scaling.x < 0 || _this._anchorMesh.scaling.y < 0 || _this._anchorMesh.scaling.z < 0) {
  93804. _this._anchorMesh.scaling.subtractInPlace(deltaScale);
  93805. }
  93806. _this._anchorMesh.removeChild(_this.attachedMesh);
  93807. BoundingBoxGizmo._RestorePivotPoint(_this.attachedMesh);
  93808. }
  93809. });
  93810. // Selection/deselection
  93811. _dragBehavior.onDragStartObservable.add(function () {
  93812. _this.onDragStartObservable.notifyObservers({});
  93813. _this._selectNode(box);
  93814. });
  93815. _dragBehavior.onDragEndObservable.add(function () {
  93816. _this.onScaleBoxDragEndObservable.notifyObservers({});
  93817. _this._selectNode(null);
  93818. });
  93819. this_2._scaleBoxesParent.addChild(box);
  93820. };
  93821. var this_2 = this, _dragBehavior;
  93822. for (var k = 0; k < 2; k++) {
  93823. _loop_2();
  93824. }
  93825. }
  93826. }
  93827. _this._rootMesh.addChild(_this._scaleBoxesParent);
  93828. // Hover color change
  93829. var pointerIds = new Array();
  93830. _this._pointerObserver = gizmoLayer.utilityLayerScene.onPointerObservable.add(function (pointerInfo, eventState) {
  93831. if (!pointerIds[pointerInfo.event.pointerId]) {
  93832. _this._rotateSpheresParent.getChildMeshes().concat(_this._scaleBoxesParent.getChildMeshes()).forEach(function (mesh) {
  93833. if (pointerInfo.pickInfo && pointerInfo.pickInfo.pickedMesh == mesh) {
  93834. pointerIds[pointerInfo.event.pointerId] = mesh;
  93835. mesh.material = hoverColoredMaterial;
  93836. }
  93837. });
  93838. }
  93839. else {
  93840. if (pointerInfo.pickInfo && pointerInfo.pickInfo.pickedMesh != pointerIds[pointerInfo.event.pointerId]) {
  93841. pointerIds[pointerInfo.event.pointerId].material = coloredMaterial;
  93842. delete pointerIds[pointerInfo.event.pointerId];
  93843. }
  93844. }
  93845. });
  93846. // Update bounding box positions
  93847. _this._renderObserver = _this.gizmoLayer.originalScene.onBeforeRenderObservable.add(function () {
  93848. // Only update the bouding box if scaling has changed
  93849. if (_this.attachedMesh && !_this._existingMeshScale.equals(_this.attachedMesh.scaling)) {
  93850. _this.updateBoundingBox();
  93851. }
  93852. });
  93853. _this.updateBoundingBox();
  93854. return _this;
  93855. }
  93856. /** @hidden */
  93857. BoundingBoxGizmo._RemoveAndStorePivotPoint = function (mesh) {
  93858. if (mesh && BoundingBoxGizmo._PivotCached === 0) {
  93859. // Save old pivot and set pivot to 0,0,0
  93860. mesh.getPivotPointToRef(BoundingBoxGizmo._OldPivotPoint);
  93861. if (!BoundingBoxGizmo._OldPivotPoint.equalsToFloats(0, 0, 0)) {
  93862. mesh.setPivotMatrix(BABYLON.Matrix.IdentityReadOnly);
  93863. BoundingBoxGizmo._OldPivotPoint.subtractToRef(mesh.getPivotPoint(), BoundingBoxGizmo._PivotTranslation);
  93864. BoundingBoxGizmo._PivotTmpVector.copyFromFloats(1, 1, 1);
  93865. BoundingBoxGizmo._PivotTmpVector.subtractInPlace(mesh.scaling);
  93866. BoundingBoxGizmo._PivotTmpVector.multiplyInPlace(BoundingBoxGizmo._PivotTranslation);
  93867. mesh.position.addInPlace(BoundingBoxGizmo._PivotTmpVector);
  93868. }
  93869. }
  93870. BoundingBoxGizmo._PivotCached++;
  93871. };
  93872. /** @hidden */
  93873. BoundingBoxGizmo._RestorePivotPoint = function (mesh) {
  93874. if (mesh && !BoundingBoxGizmo._OldPivotPoint.equalsToFloats(0, 0, 0) && BoundingBoxGizmo._PivotCached === 1) {
  93875. mesh.setPivotPoint(BoundingBoxGizmo._OldPivotPoint);
  93876. BoundingBoxGizmo._PivotTmpVector.copyFromFloats(1, 1, 1);
  93877. BoundingBoxGizmo._PivotTmpVector.subtractInPlace(mesh.scaling);
  93878. BoundingBoxGizmo._PivotTmpVector.multiplyInPlace(BoundingBoxGizmo._PivotTranslation);
  93879. mesh.position.subtractInPlace(BoundingBoxGizmo._PivotTmpVector);
  93880. }
  93881. this._PivotCached--;
  93882. };
  93883. BoundingBoxGizmo.prototype._attachedMeshChanged = function (value) {
  93884. if (value) {
  93885. // Reset anchor mesh to match attached mesh's scale
  93886. // This is needed to avoid invalid box/sphere position on first drag
  93887. BoundingBoxGizmo._RemoveAndStorePivotPoint(value);
  93888. this._anchorMesh.addChild(value);
  93889. this._anchorMesh.removeChild(value);
  93890. BoundingBoxGizmo._RestorePivotPoint(value);
  93891. this.updateBoundingBox();
  93892. }
  93893. };
  93894. BoundingBoxGizmo.prototype._selectNode = function (selectedMesh) {
  93895. this._rotateSpheresParent.getChildMeshes()
  93896. .concat(this._scaleBoxesParent.getChildMeshes()).forEach(function (m, i) {
  93897. m.isVisible = (!selectedMesh || m == selectedMesh);
  93898. });
  93899. };
  93900. /**
  93901. * Updates the bounding box information for the Gizmo
  93902. */
  93903. BoundingBoxGizmo.prototype.updateBoundingBox = function () {
  93904. if (this.attachedMesh) {
  93905. BoundingBoxGizmo._RemoveAndStorePivotPoint(this.attachedMesh);
  93906. this._update();
  93907. // Rotate based on axis
  93908. if (!this.attachedMesh.rotationQuaternion) {
  93909. this.attachedMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this.attachedMesh.rotation.y, this.attachedMesh.rotation.x, this.attachedMesh.rotation.z);
  93910. }
  93911. if (!this._anchorMesh.rotationQuaternion) {
  93912. this._anchorMesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(this._anchorMesh.rotation.y, this._anchorMesh.rotation.x, this._anchorMesh.rotation.z);
  93913. }
  93914. this._anchorMesh.rotationQuaternion.copyFrom(this.attachedMesh.rotationQuaternion);
  93915. // Store original position and reset mesh to origin before computing the bounding box
  93916. this._tmpQuaternion.copyFrom(this.attachedMesh.rotationQuaternion);
  93917. this._tmpVector.copyFrom(this.attachedMesh.position);
  93918. this.attachedMesh.rotationQuaternion.set(0, 0, 0, 1);
  93919. this.attachedMesh.position.set(0, 0, 0);
  93920. // Update bounding dimensions/positions
  93921. var boundingMinMax = this.attachedMesh.getHierarchyBoundingVectors(!this.ignoreChildren, this.includeChildPredicate);
  93922. boundingMinMax.max.subtractToRef(boundingMinMax.min, this._boundingDimensions);
  93923. // Update gizmo to match bounding box scaling and rotation
  93924. this._lineBoundingBox.scaling.copyFrom(this._boundingDimensions);
  93925. this._lineBoundingBox.position.set((boundingMinMax.max.x + boundingMinMax.min.x) / 2, (boundingMinMax.max.y + boundingMinMax.min.y) / 2, (boundingMinMax.max.z + boundingMinMax.min.z) / 2);
  93926. this._rotateSpheresParent.position.copyFrom(this._lineBoundingBox.position);
  93927. this._scaleBoxesParent.position.copyFrom(this._lineBoundingBox.position);
  93928. this._lineBoundingBox.computeWorldMatrix();
  93929. this._anchorMesh.position.copyFrom(this._lineBoundingBox.absolutePosition);
  93930. // restore position/rotation values
  93931. this.attachedMesh.rotationQuaternion.copyFrom(this._tmpQuaternion);
  93932. this.attachedMesh.position.copyFrom(this._tmpVector);
  93933. }
  93934. // Update rotation sphere locations
  93935. var rotateSpheres = this._rotateSpheresParent.getChildMeshes();
  93936. for (var i = 0; i < 3; i++) {
  93937. for (var j = 0; j < 2; j++) {
  93938. for (var k = 0; k < 2; k++) {
  93939. var index = ((i * 4) + (j * 2)) + k;
  93940. if (i == 0) {
  93941. rotateSpheres[index].position.set(this._boundingDimensions.x / 2, this._boundingDimensions.y * j, this._boundingDimensions.z * k);
  93942. rotateSpheres[index].position.addInPlace(new BABYLON.Vector3(-this._boundingDimensions.x / 2, -this._boundingDimensions.y / 2, -this._boundingDimensions.z / 2));
  93943. rotateSpheres[index].lookAt(BABYLON.Vector3.Cross(BABYLON.Vector3.Right(), rotateSpheres[index].position.normalizeToNew()).normalizeToNew().add(rotateSpheres[index].position));
  93944. }
  93945. if (i == 1) {
  93946. rotateSpheres[index].position.set(this._boundingDimensions.x * j, this._boundingDimensions.y / 2, this._boundingDimensions.z * k);
  93947. rotateSpheres[index].position.addInPlace(new BABYLON.Vector3(-this._boundingDimensions.x / 2, -this._boundingDimensions.y / 2, -this._boundingDimensions.z / 2));
  93948. rotateSpheres[index].lookAt(BABYLON.Vector3.Cross(BABYLON.Vector3.Up(), rotateSpheres[index].position.normalizeToNew()).normalizeToNew().add(rotateSpheres[index].position));
  93949. }
  93950. if (i == 2) {
  93951. rotateSpheres[index].position.set(this._boundingDimensions.x * j, this._boundingDimensions.y * k, this._boundingDimensions.z / 2);
  93952. rotateSpheres[index].position.addInPlace(new BABYLON.Vector3(-this._boundingDimensions.x / 2, -this._boundingDimensions.y / 2, -this._boundingDimensions.z / 2));
  93953. rotateSpheres[index].lookAt(BABYLON.Vector3.Cross(BABYLON.Vector3.Forward(), rotateSpheres[index].position.normalizeToNew()).normalizeToNew().add(rotateSpheres[index].position));
  93954. }
  93955. if (this.fixedDragMeshScreenSize) {
  93956. this._rootMesh.computeWorldMatrix();
  93957. this._rotateSpheresParent.computeWorldMatrix();
  93958. rotateSpheres[index].computeWorldMatrix();
  93959. rotateSpheres[index].absolutePosition.subtractToRef(this.gizmoLayer.utilityLayerScene.activeCamera.position, this._tmpVector);
  93960. var distanceFromCamera = this.rotationSphereSize * this._tmpVector.length() / this.fixedDragMeshScreenSizeDistanceFactor;
  93961. rotateSpheres[index].scaling.set(distanceFromCamera, distanceFromCamera, distanceFromCamera);
  93962. }
  93963. else {
  93964. rotateSpheres[index].scaling.set(this.rotationSphereSize, this.rotationSphereSize, this.rotationSphereSize);
  93965. }
  93966. }
  93967. }
  93968. }
  93969. // Update scale box locations
  93970. var scaleBoxes = this._scaleBoxesParent.getChildMeshes();
  93971. for (var i = 0; i < 2; i++) {
  93972. for (var j = 0; j < 2; j++) {
  93973. for (var k = 0; k < 2; k++) {
  93974. var index = ((i * 4) + (j * 2)) + k;
  93975. if (scaleBoxes[index]) {
  93976. scaleBoxes[index].position.set(this._boundingDimensions.x * i, this._boundingDimensions.y * j, this._boundingDimensions.z * k);
  93977. scaleBoxes[index].position.addInPlace(new BABYLON.Vector3(-this._boundingDimensions.x / 2, -this._boundingDimensions.y / 2, -this._boundingDimensions.z / 2));
  93978. if (this.fixedDragMeshScreenSize) {
  93979. this._rootMesh.computeWorldMatrix();
  93980. this._scaleBoxesParent.computeWorldMatrix();
  93981. scaleBoxes[index].computeWorldMatrix();
  93982. scaleBoxes[index].absolutePosition.subtractToRef(this.gizmoLayer.utilityLayerScene.activeCamera.position, this._tmpVector);
  93983. var distanceFromCamera = this.scaleBoxSize * this._tmpVector.length() / this.fixedDragMeshScreenSizeDistanceFactor;
  93984. scaleBoxes[index].scaling.set(distanceFromCamera, distanceFromCamera, distanceFromCamera);
  93985. }
  93986. else {
  93987. scaleBoxes[index].scaling.set(this.scaleBoxSize, this.scaleBoxSize, this.scaleBoxSize);
  93988. }
  93989. }
  93990. }
  93991. }
  93992. }
  93993. if (this.attachedMesh) {
  93994. this._existingMeshScale.copyFrom(this.attachedMesh.scaling);
  93995. BoundingBoxGizmo._RestorePivotPoint(this.attachedMesh);
  93996. }
  93997. };
  93998. /**
  93999. * Enables rotation on the specified axis and disables rotation on the others
  94000. * @param axis The list of axis that should be enabled (eg. "xy" or "xyz")
  94001. */
  94002. BoundingBoxGizmo.prototype.setEnabledRotationAxis = function (axis) {
  94003. this._rotateSpheresParent.getChildMeshes().forEach(function (m, i) {
  94004. if (i < 4) {
  94005. m.setEnabled(axis.indexOf("x") != -1);
  94006. }
  94007. else if (i < 8) {
  94008. m.setEnabled(axis.indexOf("y") != -1);
  94009. }
  94010. else {
  94011. m.setEnabled(axis.indexOf("z") != -1);
  94012. }
  94013. });
  94014. };
  94015. /**
  94016. * Disposes of the gizmo
  94017. */
  94018. BoundingBoxGizmo.prototype.dispose = function () {
  94019. this.gizmoLayer.utilityLayerScene.onPointerObservable.remove(this._pointerObserver);
  94020. this.gizmoLayer.originalScene.onBeforeRenderObservable.remove(this._renderObserver);
  94021. this._lineBoundingBox.dispose();
  94022. this._rotateSpheresParent.dispose();
  94023. this._scaleBoxesParent.dispose();
  94024. _super.prototype.dispose.call(this);
  94025. };
  94026. /**
  94027. * Makes a mesh not pickable and wraps the mesh inside of a bounding box mesh that is pickable. (This is useful to avoid picking within complex geometry)
  94028. * @param mesh the mesh to wrap in the bounding box mesh and make not pickable
  94029. * @returns the bounding box mesh with the passed in mesh as a child
  94030. */
  94031. BoundingBoxGizmo.MakeNotPickableAndWrapInBoundingBox = function (mesh) {
  94032. var makeNotPickable = function (root) {
  94033. root.isPickable = false;
  94034. root.getChildMeshes().forEach(function (c) {
  94035. makeNotPickable(c);
  94036. });
  94037. };
  94038. makeNotPickable(mesh);
  94039. // Reset position to get boudning box from origin with no rotation
  94040. if (!mesh.rotationQuaternion) {
  94041. mesh.rotationQuaternion = BABYLON.Quaternion.RotationYawPitchRoll(mesh.rotation.y, mesh.rotation.x, mesh.rotation.z);
  94042. }
  94043. var oldPos = mesh.position.clone();
  94044. var oldRot = mesh.rotationQuaternion.clone();
  94045. mesh.rotationQuaternion.set(0, 0, 0, 1);
  94046. mesh.position.set(0, 0, 0);
  94047. // Update bounding dimensions/positions
  94048. var box = BABYLON.MeshBuilder.CreateBox("box", { size: 1 }, mesh.getScene());
  94049. var boundingMinMax = mesh.getHierarchyBoundingVectors();
  94050. boundingMinMax.max.subtractToRef(boundingMinMax.min, box.scaling);
  94051. box.position.set((boundingMinMax.max.x + boundingMinMax.min.x) / 2, (boundingMinMax.max.y + boundingMinMax.min.y) / 2, (boundingMinMax.max.z + boundingMinMax.min.z) / 2);
  94052. // Restore original positions
  94053. mesh.addChild(box);
  94054. mesh.rotationQuaternion.copyFrom(oldRot);
  94055. mesh.position.copyFrom(oldPos);
  94056. // Reverse parenting
  94057. mesh.removeChild(box);
  94058. box.addChild(mesh);
  94059. box.visibility = 0;
  94060. return box;
  94061. };
  94062. /**
  94063. * CustomMeshes are not supported by this gizmo
  94064. * @param mesh The mesh to replace the default mesh of the gizmo
  94065. */
  94066. BoundingBoxGizmo.prototype.setCustomMesh = function (mesh) {
  94067. BABYLON.Tools.Error("Custom meshes are not supported on this gizmo");
  94068. };
  94069. // Stores the state of the pivot cache (_oldPivotPoint, _pivotTranslation)
  94070. // store/remove pivot point should only be applied during their outermost calls
  94071. BoundingBoxGizmo._PivotCached = 0;
  94072. BoundingBoxGizmo._OldPivotPoint = new BABYLON.Vector3();
  94073. BoundingBoxGizmo._PivotTranslation = new BABYLON.Vector3();
  94074. BoundingBoxGizmo._PivotTmpVector = new BABYLON.Vector3();
  94075. return BoundingBoxGizmo;
  94076. }(BABYLON.Gizmo));
  94077. BABYLON.BoundingBoxGizmo = BoundingBoxGizmo;
  94078. })(BABYLON || (BABYLON = {}));
  94079. //# sourceMappingURL=babylon.boundingBoxGizmo.js.map
  94080. var BABYLON;
  94081. (function (BABYLON) {
  94082. /**
  94083. * Helps setup gizmo's in the scene to rotate/scale/position meshes
  94084. */
  94085. var GizmoManager = /** @class */ (function () {
  94086. /**
  94087. * Instatiates a gizmo manager
  94088. * @param scene the scene to overlay the gizmos on top of
  94089. */
  94090. function GizmoManager(scene) {
  94091. var _this = this;
  94092. this.scene = scene;
  94093. this._gizmosEnabled = { positionGizmo: false, rotationGizmo: false, scaleGizmo: false, boundingBoxGizmo: false };
  94094. this._pointerObserver = null;
  94095. this._attachedMesh = null;
  94096. this._boundingBoxColor = BABYLON.Color3.FromHexString("#0984e3");
  94097. this._dragBehavior = new BABYLON.SixDofDragBehavior();
  94098. /**
  94099. * Array of meshes which will have the gizmo attached when a pointer selected them. If null, all meshes are attachable. (Default: null)
  94100. */
  94101. this.attachableMeshes = null;
  94102. /**
  94103. * If pointer events should perform attaching/detaching a gizmo, if false this can be done manually via attachToMesh. (Default: true)
  94104. */
  94105. this.usePointerToAttachGizmos = true;
  94106. this.gizmos = { positionGizmo: null, rotationGizmo: null, scaleGizmo: null, boundingBoxGizmo: null };
  94107. // Instatiate/dispose gizmos based on pointer actions
  94108. this._pointerObserver = scene.onPointerObservable.add(function (pointerInfo, state) {
  94109. if (!_this.usePointerToAttachGizmos) {
  94110. return;
  94111. }
  94112. if (pointerInfo.type == BABYLON.PointerEventTypes.POINTERDOWN) {
  94113. if (pointerInfo.pickInfo && pointerInfo.pickInfo.pickedMesh) {
  94114. var node = pointerInfo.pickInfo.pickedMesh;
  94115. if (_this.attachableMeshes == null) {
  94116. // Attach to the most parent node
  94117. while (node && node.parent != null) {
  94118. node = node.parent;
  94119. }
  94120. }
  94121. else {
  94122. // Attach to the parent node that is an attachableMesh
  94123. var found = false;
  94124. _this.attachableMeshes.forEach(function (mesh) {
  94125. if (node && (node == mesh || node.isDescendantOf(mesh))) {
  94126. node = mesh;
  94127. found = true;
  94128. }
  94129. });
  94130. if (!found) {
  94131. node = null;
  94132. }
  94133. }
  94134. if (node instanceof BABYLON.AbstractMesh) {
  94135. _this.attachToMesh(node);
  94136. }
  94137. else {
  94138. _this.attachToMesh(null);
  94139. }
  94140. }
  94141. else {
  94142. _this.attachToMesh(null);
  94143. }
  94144. }
  94145. });
  94146. }
  94147. /**
  94148. * Attaches a set of gizmos to the specified mesh
  94149. * @param mesh The mesh the gizmo's should be attached to
  94150. */
  94151. GizmoManager.prototype.attachToMesh = function (mesh) {
  94152. if (this._attachedMesh) {
  94153. this._attachedMesh.removeBehavior(this._dragBehavior);
  94154. }
  94155. this._attachedMesh = mesh;
  94156. for (var key in this.gizmos) {
  94157. var gizmo = (this.gizmos[key]);
  94158. if (gizmo && this._gizmosEnabled[key]) {
  94159. gizmo.attachedMesh = mesh;
  94160. }
  94161. }
  94162. if (this.boundingBoxGizmoEnabled && this._attachedMesh) {
  94163. this._attachedMesh.addBehavior(this._dragBehavior);
  94164. }
  94165. };
  94166. Object.defineProperty(GizmoManager.prototype, "positionGizmoEnabled", {
  94167. get: function () {
  94168. return this._gizmosEnabled.positionGizmo;
  94169. },
  94170. /**
  94171. * If the position gizmo is enabled
  94172. */
  94173. set: function (value) {
  94174. if (value) {
  94175. if (!this.gizmos.positionGizmo) {
  94176. this.gizmos.positionGizmo = new BABYLON.PositionGizmo();
  94177. this.gizmos.positionGizmo.updateGizmoRotationToMatchAttachedMesh = false;
  94178. }
  94179. this.gizmos.positionGizmo.attachedMesh = this._attachedMesh;
  94180. }
  94181. else if (this.gizmos.positionGizmo) {
  94182. this.gizmos.positionGizmo.attachedMesh = null;
  94183. }
  94184. this._gizmosEnabled.positionGizmo = value;
  94185. },
  94186. enumerable: true,
  94187. configurable: true
  94188. });
  94189. Object.defineProperty(GizmoManager.prototype, "rotationGizmoEnabled", {
  94190. get: function () {
  94191. return this._gizmosEnabled.rotationGizmo;
  94192. },
  94193. /**
  94194. * If the rotation gizmo is enabled
  94195. */
  94196. set: function (value) {
  94197. if (value) {
  94198. if (!this.gizmos.rotationGizmo) {
  94199. this.gizmos.rotationGizmo = new BABYLON.RotationGizmo();
  94200. this.gizmos.rotationGizmo.updateGizmoRotationToMatchAttachedMesh = false;
  94201. }
  94202. this.gizmos.rotationGizmo.attachedMesh = this._attachedMesh;
  94203. }
  94204. else if (this.gizmos.rotationGizmo) {
  94205. this.gizmos.rotationGizmo.attachedMesh = null;
  94206. }
  94207. this._gizmosEnabled.rotationGizmo = value;
  94208. },
  94209. enumerable: true,
  94210. configurable: true
  94211. });
  94212. Object.defineProperty(GizmoManager.prototype, "scaleGizmoEnabled", {
  94213. get: function () {
  94214. return this._gizmosEnabled.scaleGizmo;
  94215. },
  94216. /**
  94217. * If the scale gizmo is enabled
  94218. */
  94219. set: function (value) {
  94220. if (value) {
  94221. this.gizmos.scaleGizmo = this.gizmos.scaleGizmo || new BABYLON.ScaleGizmo();
  94222. this.gizmos.scaleGizmo.attachedMesh = this._attachedMesh;
  94223. }
  94224. else if (this.gizmos.scaleGizmo) {
  94225. this.gizmos.scaleGizmo.attachedMesh = null;
  94226. }
  94227. this._gizmosEnabled.scaleGizmo = value;
  94228. },
  94229. enumerable: true,
  94230. configurable: true
  94231. });
  94232. Object.defineProperty(GizmoManager.prototype, "boundingBoxGizmoEnabled", {
  94233. get: function () {
  94234. return this._gizmosEnabled.boundingBoxGizmo;
  94235. },
  94236. /**
  94237. * If the boundingBox gizmo is enabled
  94238. */
  94239. set: function (value) {
  94240. if (value) {
  94241. this.gizmos.boundingBoxGizmo = this.gizmos.boundingBoxGizmo || new BABYLON.BoundingBoxGizmo(this._boundingBoxColor);
  94242. this.gizmos.boundingBoxGizmo.attachedMesh = this._attachedMesh;
  94243. if (this._attachedMesh) {
  94244. this._attachedMesh.removeBehavior(this._dragBehavior);
  94245. this._attachedMesh.addBehavior(this._dragBehavior);
  94246. }
  94247. }
  94248. else if (this.gizmos.boundingBoxGizmo) {
  94249. this.gizmos.boundingBoxGizmo.attachedMesh = null;
  94250. }
  94251. this._gizmosEnabled.boundingBoxGizmo = value;
  94252. },
  94253. enumerable: true,
  94254. configurable: true
  94255. });
  94256. /**
  94257. * Disposes of the gizmo manager
  94258. */
  94259. GizmoManager.prototype.dispose = function () {
  94260. this.scene.onPointerObservable.remove(this._pointerObserver);
  94261. for (var key in this.gizmos) {
  94262. var gizmo = (this.gizmos[key]);
  94263. if (gizmo) {
  94264. gizmo.dispose();
  94265. }
  94266. }
  94267. this._dragBehavior.detach();
  94268. };
  94269. return GizmoManager;
  94270. }());
  94271. BABYLON.GizmoManager = GizmoManager;
  94272. })(BABYLON || (BABYLON = {}));
  94273. //# sourceMappingURL=babylon.gizmoManager.js.map
  94274. var BABYLON;
  94275. (function (BABYLON) {
  94276. /**
  94277. * Defines a target to use with MorphTargetManager
  94278. * @see http://doc.babylonjs.com/how_to/how_to_use_morphtargets
  94279. */
  94280. var MorphTarget = /** @class */ (function () {
  94281. /**
  94282. * Creates a new MorphTarget
  94283. * @param name defines the name of the target
  94284. * @param influence defines the influence to use
  94285. */
  94286. function MorphTarget(
  94287. /** defines the name of the target */
  94288. name, influence, scene) {
  94289. if (influence === void 0) { influence = 0; }
  94290. if (scene === void 0) { scene = null; }
  94291. this.name = name;
  94292. /**
  94293. * Gets or sets the list of animations
  94294. */
  94295. this.animations = new Array();
  94296. this._positions = null;
  94297. this._normals = null;
  94298. this._tangents = null;
  94299. /**
  94300. * Observable raised when the influence changes
  94301. */
  94302. this.onInfluenceChanged = new BABYLON.Observable();
  94303. this._animationPropertiesOverride = null;
  94304. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  94305. this.influence = influence;
  94306. }
  94307. Object.defineProperty(MorphTarget.prototype, "influence", {
  94308. /**
  94309. * Gets or sets the influence of this target (ie. its weight in the overall morphing)
  94310. */
  94311. get: function () {
  94312. return this._influence;
  94313. },
  94314. set: function (influence) {
  94315. if (this._influence === influence) {
  94316. return;
  94317. }
  94318. var previous = this._influence;
  94319. this._influence = influence;
  94320. if (this.onInfluenceChanged.hasObservers) {
  94321. this.onInfluenceChanged.notifyObservers(previous === 0 || influence === 0);
  94322. }
  94323. },
  94324. enumerable: true,
  94325. configurable: true
  94326. });
  94327. Object.defineProperty(MorphTarget.prototype, "animationPropertiesOverride", {
  94328. /**
  94329. * Gets or sets the animation properties override
  94330. */
  94331. get: function () {
  94332. if (!this._animationPropertiesOverride && this._scene) {
  94333. return this._scene.animationPropertiesOverride;
  94334. }
  94335. return this._animationPropertiesOverride;
  94336. },
  94337. set: function (value) {
  94338. this._animationPropertiesOverride = value;
  94339. },
  94340. enumerable: true,
  94341. configurable: true
  94342. });
  94343. Object.defineProperty(MorphTarget.prototype, "hasPositions", {
  94344. /**
  94345. * Gets a boolean defining if the target contains position data
  94346. */
  94347. get: function () {
  94348. return !!this._positions;
  94349. },
  94350. enumerable: true,
  94351. configurable: true
  94352. });
  94353. Object.defineProperty(MorphTarget.prototype, "hasNormals", {
  94354. /**
  94355. * Gets a boolean defining if the target contains normal data
  94356. */
  94357. get: function () {
  94358. return !!this._normals;
  94359. },
  94360. enumerable: true,
  94361. configurable: true
  94362. });
  94363. Object.defineProperty(MorphTarget.prototype, "hasTangents", {
  94364. /**
  94365. * Gets a boolean defining if the target contains tangent data
  94366. */
  94367. get: function () {
  94368. return !!this._tangents;
  94369. },
  94370. enumerable: true,
  94371. configurable: true
  94372. });
  94373. /**
  94374. * Affects position data to this target
  94375. * @param data defines the position data to use
  94376. */
  94377. MorphTarget.prototype.setPositions = function (data) {
  94378. this._positions = data;
  94379. };
  94380. /**
  94381. * Gets the position data stored in this target
  94382. * @returns a FloatArray containing the position data (or null if not present)
  94383. */
  94384. MorphTarget.prototype.getPositions = function () {
  94385. return this._positions;
  94386. };
  94387. /**
  94388. * Affects normal data to this target
  94389. * @param data defines the normal data to use
  94390. */
  94391. MorphTarget.prototype.setNormals = function (data) {
  94392. this._normals = data;
  94393. };
  94394. /**
  94395. * Gets the normal data stored in this target
  94396. * @returns a FloatArray containing the normal data (or null if not present)
  94397. */
  94398. MorphTarget.prototype.getNormals = function () {
  94399. return this._normals;
  94400. };
  94401. /**
  94402. * Affects tangent data to this target
  94403. * @param data defines the tangent data to use
  94404. */
  94405. MorphTarget.prototype.setTangents = function (data) {
  94406. this._tangents = data;
  94407. };
  94408. /**
  94409. * Gets the tangent data stored in this target
  94410. * @returns a FloatArray containing the tangent data (or null if not present)
  94411. */
  94412. MorphTarget.prototype.getTangents = function () {
  94413. return this._tangents;
  94414. };
  94415. /**
  94416. * Serializes the current target into a Serialization object
  94417. * @returns the serialized object
  94418. */
  94419. MorphTarget.prototype.serialize = function () {
  94420. var serializationObject = {};
  94421. serializationObject.name = this.name;
  94422. serializationObject.influence = this.influence;
  94423. serializationObject.positions = Array.prototype.slice.call(this.getPositions());
  94424. if (this.hasNormals) {
  94425. serializationObject.normals = Array.prototype.slice.call(this.getNormals());
  94426. }
  94427. if (this.hasTangents) {
  94428. serializationObject.tangents = Array.prototype.slice.call(this.getTangents());
  94429. }
  94430. // Animations
  94431. BABYLON.Animation.AppendSerializedAnimations(this, serializationObject);
  94432. return serializationObject;
  94433. };
  94434. // Statics
  94435. /**
  94436. * Creates a new target from serialized data
  94437. * @param serializationObject defines the serialized data to use
  94438. * @returns a new MorphTarget
  94439. */
  94440. MorphTarget.Parse = function (serializationObject) {
  94441. var result = new MorphTarget(serializationObject.name, serializationObject.influence);
  94442. result.setPositions(serializationObject.positions);
  94443. if (serializationObject.normals) {
  94444. result.setNormals(serializationObject.normals);
  94445. }
  94446. if (serializationObject.tangents) {
  94447. result.setTangents(serializationObject.tangents);
  94448. }
  94449. // Animations
  94450. if (serializationObject.animations) {
  94451. for (var animationIndex = 0; animationIndex < serializationObject.animations.length; animationIndex++) {
  94452. var parsedAnimation = serializationObject.animations[animationIndex];
  94453. result.animations.push(BABYLON.Animation.Parse(parsedAnimation));
  94454. }
  94455. }
  94456. return result;
  94457. };
  94458. /**
  94459. * Creates a MorphTarget from mesh data
  94460. * @param mesh defines the source mesh
  94461. * @param name defines the name to use for the new target
  94462. * @param influence defines the influence to attach to the target
  94463. * @returns a new MorphTarget
  94464. */
  94465. MorphTarget.FromMesh = function (mesh, name, influence) {
  94466. if (!name) {
  94467. name = mesh.name;
  94468. }
  94469. var result = new MorphTarget(name, influence, mesh.getScene());
  94470. result.setPositions(mesh.getVerticesData(BABYLON.VertexBuffer.PositionKind));
  94471. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  94472. result.setNormals(mesh.getVerticesData(BABYLON.VertexBuffer.NormalKind));
  94473. }
  94474. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.TangentKind)) {
  94475. result.setTangents(mesh.getVerticesData(BABYLON.VertexBuffer.TangentKind));
  94476. }
  94477. return result;
  94478. };
  94479. return MorphTarget;
  94480. }());
  94481. BABYLON.MorphTarget = MorphTarget;
  94482. })(BABYLON || (BABYLON = {}));
  94483. //# sourceMappingURL=babylon.morphTarget.js.map
  94484. var BABYLON;
  94485. (function (BABYLON) {
  94486. /**
  94487. * This class is used to deform meshes using morphing between different targets
  94488. * @see http://doc.babylonjs.com/how_to/how_to_use_morphtargets
  94489. */
  94490. var MorphTargetManager = /** @class */ (function () {
  94491. /**
  94492. * Creates a new MorphTargetManager
  94493. * @param scene defines the current scene
  94494. */
  94495. function MorphTargetManager(scene) {
  94496. if (scene === void 0) { scene = null; }
  94497. this._targets = new Array();
  94498. this._targetObservable = new Array();
  94499. this._activeTargets = new BABYLON.SmartArray(16);
  94500. this._supportsNormals = false;
  94501. this._supportsTangents = false;
  94502. this._vertexCount = 0;
  94503. this._uniqueId = 0;
  94504. this._tempInfluences = new Array();
  94505. if (!scene) {
  94506. scene = BABYLON.Engine.LastCreatedScene;
  94507. }
  94508. this._scene = scene;
  94509. if (this._scene) {
  94510. this._scene.morphTargetManagers.push(this);
  94511. this._uniqueId = this._scene.getUniqueId();
  94512. }
  94513. }
  94514. Object.defineProperty(MorphTargetManager.prototype, "uniqueId", {
  94515. /**
  94516. * Gets the unique ID of this manager
  94517. */
  94518. get: function () {
  94519. return this._uniqueId;
  94520. },
  94521. enumerable: true,
  94522. configurable: true
  94523. });
  94524. Object.defineProperty(MorphTargetManager.prototype, "vertexCount", {
  94525. /**
  94526. * Gets the number of vertices handled by this manager
  94527. */
  94528. get: function () {
  94529. return this._vertexCount;
  94530. },
  94531. enumerable: true,
  94532. configurable: true
  94533. });
  94534. Object.defineProperty(MorphTargetManager.prototype, "supportsNormals", {
  94535. /**
  94536. * Gets a boolean indicating if this manager supports morphing of normals
  94537. */
  94538. get: function () {
  94539. return this._supportsNormals;
  94540. },
  94541. enumerable: true,
  94542. configurable: true
  94543. });
  94544. Object.defineProperty(MorphTargetManager.prototype, "supportsTangents", {
  94545. /**
  94546. * Gets a boolean indicating if this manager supports morphing of tangents
  94547. */
  94548. get: function () {
  94549. return this._supportsTangents;
  94550. },
  94551. enumerable: true,
  94552. configurable: true
  94553. });
  94554. Object.defineProperty(MorphTargetManager.prototype, "numTargets", {
  94555. /**
  94556. * Gets the number of targets stored in this manager
  94557. */
  94558. get: function () {
  94559. return this._targets.length;
  94560. },
  94561. enumerable: true,
  94562. configurable: true
  94563. });
  94564. Object.defineProperty(MorphTargetManager.prototype, "numInfluencers", {
  94565. /**
  94566. * Gets the number of influencers (ie. the number of targets with influences > 0)
  94567. */
  94568. get: function () {
  94569. return this._activeTargets.length;
  94570. },
  94571. enumerable: true,
  94572. configurable: true
  94573. });
  94574. Object.defineProperty(MorphTargetManager.prototype, "influences", {
  94575. /**
  94576. * Gets the list of influences (one per target)
  94577. */
  94578. get: function () {
  94579. return this._influences;
  94580. },
  94581. enumerable: true,
  94582. configurable: true
  94583. });
  94584. /**
  94585. * Gets the active target at specified index. An active target is a target with an influence > 0
  94586. * @param index defines the index to check
  94587. * @returns the requested target
  94588. */
  94589. MorphTargetManager.prototype.getActiveTarget = function (index) {
  94590. return this._activeTargets.data[index];
  94591. };
  94592. /**
  94593. * Gets the target at specified index
  94594. * @param index defines the index to check
  94595. * @returns the requested target
  94596. */
  94597. MorphTargetManager.prototype.getTarget = function (index) {
  94598. return this._targets[index];
  94599. };
  94600. /**
  94601. * Add a new target to this manager
  94602. * @param target defines the target to add
  94603. */
  94604. MorphTargetManager.prototype.addTarget = function (target) {
  94605. var _this = this;
  94606. this._targets.push(target);
  94607. this._targetObservable.push(target.onInfluenceChanged.add(function (needUpdate) {
  94608. _this._syncActiveTargets(needUpdate);
  94609. }));
  94610. this._syncActiveTargets(true);
  94611. };
  94612. /**
  94613. * Removes a target from the manager
  94614. * @param target defines the target to remove
  94615. */
  94616. MorphTargetManager.prototype.removeTarget = function (target) {
  94617. var index = this._targets.indexOf(target);
  94618. if (index >= 0) {
  94619. this._targets.splice(index, 1);
  94620. target.onInfluenceChanged.remove(this._targetObservable.splice(index, 1)[0]);
  94621. this._syncActiveTargets(true);
  94622. }
  94623. };
  94624. /**
  94625. * Serializes the current manager into a Serialization object
  94626. * @returns the serialized object
  94627. */
  94628. MorphTargetManager.prototype.serialize = function () {
  94629. var serializationObject = {};
  94630. serializationObject.id = this.uniqueId;
  94631. serializationObject.targets = [];
  94632. for (var _i = 0, _a = this._targets; _i < _a.length; _i++) {
  94633. var target = _a[_i];
  94634. serializationObject.targets.push(target.serialize());
  94635. }
  94636. return serializationObject;
  94637. };
  94638. MorphTargetManager.prototype._syncActiveTargets = function (needUpdate) {
  94639. var influenceCount = 0;
  94640. this._activeTargets.reset();
  94641. this._supportsNormals = true;
  94642. this._supportsTangents = true;
  94643. this._vertexCount = 0;
  94644. for (var _i = 0, _a = this._targets; _i < _a.length; _i++) {
  94645. var target = _a[_i];
  94646. this._activeTargets.push(target);
  94647. this._tempInfluences[influenceCount++] = target.influence;
  94648. var positions = target.getPositions();
  94649. if (positions) {
  94650. this._supportsNormals = this._supportsNormals && target.hasNormals;
  94651. this._supportsTangents = this._supportsTangents && target.hasTangents;
  94652. var vertexCount = positions.length / 3;
  94653. if (this._vertexCount === 0) {
  94654. this._vertexCount = vertexCount;
  94655. }
  94656. else if (this._vertexCount !== vertexCount) {
  94657. BABYLON.Tools.Error("Incompatible target. Targets must all have the same vertices count.");
  94658. return;
  94659. }
  94660. }
  94661. }
  94662. if (!this._influences || this._influences.length !== influenceCount) {
  94663. this._influences = new Float32Array(influenceCount);
  94664. }
  94665. for (var index = 0; index < influenceCount; index++) {
  94666. this._influences[index] = this._tempInfluences[index];
  94667. }
  94668. if (needUpdate) {
  94669. this.synchronize();
  94670. }
  94671. };
  94672. /**
  94673. * Syncrhonize the targets with all the meshes using this morph target manager
  94674. */
  94675. MorphTargetManager.prototype.synchronize = function () {
  94676. if (!this._scene) {
  94677. return;
  94678. }
  94679. // Flag meshes as dirty to resync with the active targets
  94680. for (var _i = 0, _a = this._scene.meshes; _i < _a.length; _i++) {
  94681. var mesh = _a[_i];
  94682. if (mesh.morphTargetManager === this) {
  94683. mesh._syncGeometryWithMorphTargetManager();
  94684. }
  94685. }
  94686. };
  94687. // Statics
  94688. /**
  94689. * Creates a new MorphTargetManager from serialized data
  94690. * @param serializationObject defines the serialized data
  94691. * @param scene defines the hosting scene
  94692. * @returns the new MorphTargetManager
  94693. */
  94694. MorphTargetManager.Parse = function (serializationObject, scene) {
  94695. var result = new MorphTargetManager(scene);
  94696. result._uniqueId = serializationObject.id;
  94697. for (var _i = 0, _a = serializationObject.targets; _i < _a.length; _i++) {
  94698. var targetData = _a[_i];
  94699. result.addTarget(BABYLON.MorphTarget.Parse(targetData));
  94700. }
  94701. return result;
  94702. };
  94703. return MorphTargetManager;
  94704. }());
  94705. BABYLON.MorphTargetManager = MorphTargetManager;
  94706. })(BABYLON || (BABYLON = {}));
  94707. //# sourceMappingURL=babylon.morphTargetManager.js.map
  94708. var BABYLON;
  94709. (function (BABYLON) {
  94710. var Octree = /** @class */ (function () {
  94711. function Octree(creationFunc, maxBlockCapacity, maxDepth) {
  94712. if (maxDepth === void 0) { maxDepth = 2; }
  94713. this.maxDepth = maxDepth;
  94714. this.dynamicContent = new Array();
  94715. this._maxBlockCapacity = maxBlockCapacity || 64;
  94716. this._selectionContent = new BABYLON.SmartArrayNoDuplicate(1024);
  94717. this._creationFunc = creationFunc;
  94718. }
  94719. // Methods
  94720. Octree.prototype.update = function (worldMin, worldMax, entries) {
  94721. Octree._CreateBlocks(worldMin, worldMax, entries, this._maxBlockCapacity, 0, this.maxDepth, this, this._creationFunc);
  94722. };
  94723. Octree.prototype.addMesh = function (entry) {
  94724. for (var index = 0; index < this.blocks.length; index++) {
  94725. var block = this.blocks[index];
  94726. block.addEntry(entry);
  94727. }
  94728. };
  94729. Octree.prototype.select = function (frustumPlanes, allowDuplicate) {
  94730. this._selectionContent.reset();
  94731. for (var index = 0; index < this.blocks.length; index++) {
  94732. var block = this.blocks[index];
  94733. block.select(frustumPlanes, this._selectionContent, allowDuplicate);
  94734. }
  94735. if (allowDuplicate) {
  94736. this._selectionContent.concat(this.dynamicContent);
  94737. }
  94738. else {
  94739. this._selectionContent.concatWithNoDuplicate(this.dynamicContent);
  94740. }
  94741. return this._selectionContent;
  94742. };
  94743. Octree.prototype.intersects = function (sphereCenter, sphereRadius, allowDuplicate) {
  94744. this._selectionContent.reset();
  94745. for (var index = 0; index < this.blocks.length; index++) {
  94746. var block = this.blocks[index];
  94747. block.intersects(sphereCenter, sphereRadius, this._selectionContent, allowDuplicate);
  94748. }
  94749. if (allowDuplicate) {
  94750. this._selectionContent.concat(this.dynamicContent);
  94751. }
  94752. else {
  94753. this._selectionContent.concatWithNoDuplicate(this.dynamicContent);
  94754. }
  94755. return this._selectionContent;
  94756. };
  94757. Octree.prototype.intersectsRay = function (ray) {
  94758. this._selectionContent.reset();
  94759. for (var index = 0; index < this.blocks.length; index++) {
  94760. var block = this.blocks[index];
  94761. block.intersectsRay(ray, this._selectionContent);
  94762. }
  94763. this._selectionContent.concatWithNoDuplicate(this.dynamicContent);
  94764. return this._selectionContent;
  94765. };
  94766. Octree._CreateBlocks = function (worldMin, worldMax, entries, maxBlockCapacity, currentDepth, maxDepth, target, creationFunc) {
  94767. target.blocks = new Array();
  94768. var blockSize = new BABYLON.Vector3((worldMax.x - worldMin.x) / 2, (worldMax.y - worldMin.y) / 2, (worldMax.z - worldMin.z) / 2);
  94769. // Segmenting space
  94770. for (var x = 0; x < 2; x++) {
  94771. for (var y = 0; y < 2; y++) {
  94772. for (var z = 0; z < 2; z++) {
  94773. var localMin = worldMin.add(blockSize.multiplyByFloats(x, y, z));
  94774. var localMax = worldMin.add(blockSize.multiplyByFloats(x + 1, y + 1, z + 1));
  94775. var block = new BABYLON.OctreeBlock(localMin, localMax, maxBlockCapacity, currentDepth + 1, maxDepth, creationFunc);
  94776. block.addEntries(entries);
  94777. target.blocks.push(block);
  94778. }
  94779. }
  94780. }
  94781. };
  94782. Octree.CreationFuncForMeshes = function (entry, block) {
  94783. var boundingInfo = entry.getBoundingInfo();
  94784. if (!entry.isBlocked && boundingInfo.boundingBox.intersectsMinMax(block.minPoint, block.maxPoint)) {
  94785. block.entries.push(entry);
  94786. }
  94787. };
  94788. Octree.CreationFuncForSubMeshes = function (entry, block) {
  94789. var boundingInfo = entry.getBoundingInfo();
  94790. if (boundingInfo.boundingBox.intersectsMinMax(block.minPoint, block.maxPoint)) {
  94791. block.entries.push(entry);
  94792. }
  94793. };
  94794. return Octree;
  94795. }());
  94796. BABYLON.Octree = Octree;
  94797. })(BABYLON || (BABYLON = {}));
  94798. //# sourceMappingURL=babylon.octree.js.map
  94799. var BABYLON;
  94800. (function (BABYLON) {
  94801. var OctreeBlock = /** @class */ (function () {
  94802. function OctreeBlock(minPoint, maxPoint, capacity, depth, maxDepth, creationFunc) {
  94803. this.entries = new Array();
  94804. this._boundingVectors = new Array();
  94805. this._capacity = capacity;
  94806. this._depth = depth;
  94807. this._maxDepth = maxDepth;
  94808. this._creationFunc = creationFunc;
  94809. this._minPoint = minPoint;
  94810. this._maxPoint = maxPoint;
  94811. this._boundingVectors.push(minPoint.clone());
  94812. this._boundingVectors.push(maxPoint.clone());
  94813. this._boundingVectors.push(minPoint.clone());
  94814. this._boundingVectors[2].x = maxPoint.x;
  94815. this._boundingVectors.push(minPoint.clone());
  94816. this._boundingVectors[3].y = maxPoint.y;
  94817. this._boundingVectors.push(minPoint.clone());
  94818. this._boundingVectors[4].z = maxPoint.z;
  94819. this._boundingVectors.push(maxPoint.clone());
  94820. this._boundingVectors[5].z = minPoint.z;
  94821. this._boundingVectors.push(maxPoint.clone());
  94822. this._boundingVectors[6].x = minPoint.x;
  94823. this._boundingVectors.push(maxPoint.clone());
  94824. this._boundingVectors[7].y = minPoint.y;
  94825. }
  94826. Object.defineProperty(OctreeBlock.prototype, "capacity", {
  94827. // Property
  94828. get: function () {
  94829. return this._capacity;
  94830. },
  94831. enumerable: true,
  94832. configurable: true
  94833. });
  94834. Object.defineProperty(OctreeBlock.prototype, "minPoint", {
  94835. get: function () {
  94836. return this._minPoint;
  94837. },
  94838. enumerable: true,
  94839. configurable: true
  94840. });
  94841. Object.defineProperty(OctreeBlock.prototype, "maxPoint", {
  94842. get: function () {
  94843. return this._maxPoint;
  94844. },
  94845. enumerable: true,
  94846. configurable: true
  94847. });
  94848. // Methods
  94849. OctreeBlock.prototype.addEntry = function (entry) {
  94850. if (this.blocks) {
  94851. for (var index = 0; index < this.blocks.length; index++) {
  94852. var block = this.blocks[index];
  94853. block.addEntry(entry);
  94854. }
  94855. return;
  94856. }
  94857. this._creationFunc(entry, this);
  94858. if (this.entries.length > this.capacity && this._depth < this._maxDepth) {
  94859. this.createInnerBlocks();
  94860. }
  94861. };
  94862. OctreeBlock.prototype.addEntries = function (entries) {
  94863. for (var index = 0; index < entries.length; index++) {
  94864. var mesh = entries[index];
  94865. this.addEntry(mesh);
  94866. }
  94867. };
  94868. OctreeBlock.prototype.select = function (frustumPlanes, selection, allowDuplicate) {
  94869. if (BABYLON.BoundingBox.IsInFrustum(this._boundingVectors, frustumPlanes)) {
  94870. if (this.blocks) {
  94871. for (var index = 0; index < this.blocks.length; index++) {
  94872. var block = this.blocks[index];
  94873. block.select(frustumPlanes, selection, allowDuplicate);
  94874. }
  94875. return;
  94876. }
  94877. if (allowDuplicate) {
  94878. selection.concat(this.entries);
  94879. }
  94880. else {
  94881. selection.concatWithNoDuplicate(this.entries);
  94882. }
  94883. }
  94884. };
  94885. OctreeBlock.prototype.intersects = function (sphereCenter, sphereRadius, selection, allowDuplicate) {
  94886. if (BABYLON.BoundingBox.IntersectsSphere(this._minPoint, this._maxPoint, sphereCenter, sphereRadius)) {
  94887. if (this.blocks) {
  94888. for (var index = 0; index < this.blocks.length; index++) {
  94889. var block = this.blocks[index];
  94890. block.intersects(sphereCenter, sphereRadius, selection, allowDuplicate);
  94891. }
  94892. return;
  94893. }
  94894. if (allowDuplicate) {
  94895. selection.concat(this.entries);
  94896. }
  94897. else {
  94898. selection.concatWithNoDuplicate(this.entries);
  94899. }
  94900. }
  94901. };
  94902. OctreeBlock.prototype.intersectsRay = function (ray, selection) {
  94903. if (ray.intersectsBoxMinMax(this._minPoint, this._maxPoint)) {
  94904. if (this.blocks) {
  94905. for (var index = 0; index < this.blocks.length; index++) {
  94906. var block = this.blocks[index];
  94907. block.intersectsRay(ray, selection);
  94908. }
  94909. return;
  94910. }
  94911. selection.concatWithNoDuplicate(this.entries);
  94912. }
  94913. };
  94914. OctreeBlock.prototype.createInnerBlocks = function () {
  94915. BABYLON.Octree._CreateBlocks(this._minPoint, this._maxPoint, this.entries, this._capacity, this._depth, this._maxDepth, this, this._creationFunc);
  94916. };
  94917. return OctreeBlock;
  94918. }());
  94919. BABYLON.OctreeBlock = OctreeBlock;
  94920. })(BABYLON || (BABYLON = {}));
  94921. //# sourceMappingURL=babylon.octreeBlock.js.map
  94922. var BABYLON;
  94923. (function (BABYLON) {
  94924. BABYLON.Scene.prototype.createOrUpdateSelectionOctree = function (maxCapacity, maxDepth) {
  94925. if (maxCapacity === void 0) { maxCapacity = 64; }
  94926. if (maxDepth === void 0) { maxDepth = 2; }
  94927. var component = this._getComponent(BABYLON.SceneComponentConstants.NAME_OCTREE);
  94928. if (!component) {
  94929. component = new OctreeSceneComponent(this);
  94930. this._addComponent(component);
  94931. }
  94932. if (!this._selectionOctree) {
  94933. this._selectionOctree = new BABYLON.Octree(BABYLON.Octree.CreationFuncForMeshes, maxCapacity, maxDepth);
  94934. }
  94935. var worldExtends = this.getWorldExtends();
  94936. // Update octree
  94937. this._selectionOctree.update(worldExtends.min, worldExtends.max, this.meshes);
  94938. return this._selectionOctree;
  94939. };
  94940. Object.defineProperty(BABYLON.Scene.prototype, "selectionOctree", {
  94941. get: function () {
  94942. return this._selectionOctree;
  94943. },
  94944. enumerable: true,
  94945. configurable: true
  94946. });
  94947. /**
  94948. * This function will create an octree to help to select the right submeshes for rendering, picking and collision computations.
  94949. * Please note that you must have a decent number of submeshes to get performance improvements when using an octree
  94950. * @param maxCapacity defines the maximum size of each block (64 by default)
  94951. * @param maxDepth defines the maximum depth to use (no more than 2 levels by default)
  94952. * @returns the new octree
  94953. * @see https://www.babylonjs-playground.com/#NA4OQ#12
  94954. * @see http://doc.babylonjs.com/how_to/optimizing_your_scene_with_octrees
  94955. */
  94956. BABYLON.AbstractMesh.prototype.createOrUpdateSubmeshesOctree = function (maxCapacity, maxDepth) {
  94957. if (maxCapacity === void 0) { maxCapacity = 64; }
  94958. if (maxDepth === void 0) { maxDepth = 2; }
  94959. var scene = this.getScene();
  94960. var component = scene._getComponent(BABYLON.SceneComponentConstants.NAME_OCTREE);
  94961. if (!component) {
  94962. component = new OctreeSceneComponent(scene);
  94963. scene._addComponent(component);
  94964. }
  94965. if (!this._submeshesOctree) {
  94966. this._submeshesOctree = new BABYLON.Octree(BABYLON.Octree.CreationFuncForSubMeshes, maxCapacity, maxDepth);
  94967. }
  94968. this.computeWorldMatrix(true);
  94969. var boundingInfo = this.getBoundingInfo();
  94970. // Update octree
  94971. var bbox = boundingInfo.boundingBox;
  94972. this._submeshesOctree.update(bbox.minimumWorld, bbox.maximumWorld, this.subMeshes);
  94973. return this._submeshesOctree;
  94974. };
  94975. /**
  94976. * Defines the octree scene component responsible to manage any octrees
  94977. * in a given scene.
  94978. */
  94979. var OctreeSceneComponent = /** @class */ (function () {
  94980. /**
  94981. * Creates a new instance of the component for the given scene
  94982. * @param scene Defines the scene to register the component in
  94983. */
  94984. function OctreeSceneComponent(scene) {
  94985. /**
  94986. * The component name helpfull to identify the component in the list of scene components.
  94987. */
  94988. this.name = BABYLON.SceneComponentConstants.NAME_OCTREE;
  94989. /**
  94990. * Indicates if the meshes have been checked to make sure they are isEnabled()
  94991. */
  94992. this.checksIsEnabled = true;
  94993. this._tempRay = new BABYLON.Ray(BABYLON.Vector3.Zero(), new BABYLON.Vector3(1, 1, 1));
  94994. this.scene = scene;
  94995. this.scene.getActiveMeshCandidates = this.getActiveMeshCandidates.bind(this);
  94996. this.scene.getActiveSubMeshCandidates = this.getActiveSubMeshCandidates.bind(this);
  94997. this.scene.getCollidingSubMeshCandidates = this.getCollidingSubMeshCandidates.bind(this);
  94998. this.scene.getIntersectingSubMeshCandidates = this.getIntersectingSubMeshCandidates.bind(this);
  94999. }
  95000. /**
  95001. * Registers the component in a given scene
  95002. */
  95003. OctreeSceneComponent.prototype.register = function () {
  95004. var _this = this;
  95005. this.scene.onMeshRemovedObservable.add(function (mesh) {
  95006. var sceneOctree = _this.scene.selectionOctree;
  95007. if (sceneOctree !== undefined && sceneOctree !== null) {
  95008. var index = sceneOctree.dynamicContent.indexOf(mesh);
  95009. if (index !== -1) {
  95010. sceneOctree.dynamicContent.splice(index, 1);
  95011. }
  95012. }
  95013. });
  95014. this.scene.onMeshImportedObservable.add(function (mesh) {
  95015. var sceneOctree = _this.scene.selectionOctree;
  95016. if (sceneOctree !== undefined && sceneOctree !== null) {
  95017. sceneOctree.addMesh(mesh);
  95018. }
  95019. });
  95020. };
  95021. /**
  95022. * Return the list of active meshes
  95023. * @returns the list of active meshes
  95024. */
  95025. OctreeSceneComponent.prototype.getActiveMeshCandidates = function () {
  95026. if (this.scene._selectionOctree) {
  95027. var selection = this.scene._selectionOctree.select(this.scene.frustumPlanes);
  95028. return selection;
  95029. }
  95030. return this.scene._getDefaultMeshCandidates();
  95031. };
  95032. /**
  95033. * Return the list of active sub meshes
  95034. * @param mesh The mesh to get the candidates sub meshes from
  95035. * @returns the list of active sub meshes
  95036. */
  95037. OctreeSceneComponent.prototype.getActiveSubMeshCandidates = function (mesh) {
  95038. if (mesh._submeshesOctree && mesh.useOctreeForRenderingSelection) {
  95039. var intersections = mesh._submeshesOctree.select(this.scene.frustumPlanes);
  95040. return intersections;
  95041. }
  95042. return this.scene._getDefaultSubMeshCandidates(mesh);
  95043. };
  95044. /**
  95045. * Return the list of sub meshes intersecting with a given local ray
  95046. * @param mesh defines the mesh to find the submesh for
  95047. * @param localRay defines the ray in local space
  95048. * @returns the list of intersecting sub meshes
  95049. */
  95050. OctreeSceneComponent.prototype.getIntersectingSubMeshCandidates = function (mesh, localRay) {
  95051. if (mesh._submeshesOctree && mesh.useOctreeForPicking) {
  95052. BABYLON.Ray.TransformToRef(localRay, mesh.getWorldMatrix(), this._tempRay);
  95053. var intersections = mesh._submeshesOctree.intersectsRay(this._tempRay);
  95054. return intersections;
  95055. }
  95056. return this.scene._getDefaultSubMeshCandidates(mesh);
  95057. };
  95058. /**
  95059. * Return the list of sub meshes colliding with a collider
  95060. * @param mesh defines the mesh to find the submesh for
  95061. * @param collider defines the collider to evaluate the collision against
  95062. * @returns the list of colliding sub meshes
  95063. */
  95064. OctreeSceneComponent.prototype.getCollidingSubMeshCandidates = function (mesh, collider) {
  95065. if (mesh._submeshesOctree && mesh.useOctreeForCollisions) {
  95066. var radius = collider._velocityWorldLength + Math.max(collider._radius.x, collider._radius.y, collider._radius.z);
  95067. var intersections = mesh._submeshesOctree.intersects(collider._basePointWorld, radius);
  95068. return intersections;
  95069. }
  95070. return this.scene._getDefaultSubMeshCandidates(mesh);
  95071. };
  95072. /**
  95073. * Rebuilds the elements related to this component in case of
  95074. * context lost for instance.
  95075. */
  95076. OctreeSceneComponent.prototype.rebuild = function () {
  95077. // Nothing to do here.
  95078. };
  95079. /**
  95080. * Disposes the component and the associated ressources.
  95081. */
  95082. OctreeSceneComponent.prototype.dispose = function () {
  95083. // Nothing to do here.
  95084. };
  95085. return OctreeSceneComponent;
  95086. }());
  95087. BABYLON.OctreeSceneComponent = OctreeSceneComponent;
  95088. })(BABYLON || (BABYLON = {}));
  95089. //# sourceMappingURL=babylon.octreeSceneComponent.js.map
  95090. var BABYLON;
  95091. (function (BABYLON) {
  95092. /**
  95093. * Postprocess used to generate anaglyphic rendering
  95094. */
  95095. var AnaglyphPostProcess = /** @class */ (function (_super) {
  95096. __extends(AnaglyphPostProcess, _super);
  95097. /**
  95098. * Creates a new AnaglyphPostProcess
  95099. * @param name defines postprocess name
  95100. * @param options defines creation options or target ratio scale
  95101. * @param rigCameras defines cameras using this postprocess
  95102. * @param samplingMode defines required sampling mode (BABYLON.Texture.NEAREST_SAMPLINGMODE by default)
  95103. * @param engine defines hosting engine
  95104. * @param reusable defines if the postprocess will be reused multiple times per frame
  95105. */
  95106. function AnaglyphPostProcess(name, options, rigCameras, samplingMode, engine, reusable) {
  95107. var _this = _super.call(this, name, "anaglyph", null, ["leftSampler"], options, rigCameras[1], samplingMode, engine, reusable) || this;
  95108. _this._passedProcess = rigCameras[0]._rigPostProcess;
  95109. _this.onApplyObservable.add(function (effect) {
  95110. effect.setTextureFromPostProcess("leftSampler", _this._passedProcess);
  95111. });
  95112. return _this;
  95113. }
  95114. return AnaglyphPostProcess;
  95115. }(BABYLON.PostProcess));
  95116. BABYLON.AnaglyphPostProcess = AnaglyphPostProcess;
  95117. })(BABYLON || (BABYLON = {}));
  95118. //# sourceMappingURL=babylon.anaglyphPostProcess.js.map
  95119. var BABYLON;
  95120. (function (BABYLON) {
  95121. BABYLON.Node.AddNodeConstructor("AnaglyphArcRotateCamera", function (name, scene, options) {
  95122. return function () { return new AnaglyphArcRotateCamera(name, 0, 0, 1.0, BABYLON.Vector3.Zero(), options.interaxial_distance, scene); };
  95123. });
  95124. /**
  95125. * Camera used to simulate anaglyphic rendering (based on ArcRotateCamera)
  95126. */
  95127. var AnaglyphArcRotateCamera = /** @class */ (function (_super) {
  95128. __extends(AnaglyphArcRotateCamera, _super);
  95129. /**
  95130. * Creates a new AnaglyphArcRotateCamera
  95131. * @param name defines camera name
  95132. * @param alpha defines alpha angle (in radians)
  95133. * @param beta defines beta angle (in radians)
  95134. * @param radius defines radius
  95135. * @param target defines camera target
  95136. * @param interaxialDistance defines distance between each color axis
  95137. * @param scene defines the hosting scene
  95138. */
  95139. function AnaglyphArcRotateCamera(name, alpha, beta, radius, target, interaxialDistance, scene) {
  95140. var _this = _super.call(this, name, alpha, beta, radius, target, scene) || this;
  95141. _this.interaxialDistance = interaxialDistance;
  95142. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH, { interaxialDistance: interaxialDistance });
  95143. return _this;
  95144. }
  95145. /**
  95146. * Gets camera class name
  95147. * @returns AnaglyphArcRotateCamera
  95148. */
  95149. AnaglyphArcRotateCamera.prototype.getClassName = function () {
  95150. return "AnaglyphArcRotateCamera";
  95151. };
  95152. return AnaglyphArcRotateCamera;
  95153. }(BABYLON.ArcRotateCamera));
  95154. BABYLON.AnaglyphArcRotateCamera = AnaglyphArcRotateCamera;
  95155. })(BABYLON || (BABYLON = {}));
  95156. //# sourceMappingURL=babylon.anaglyphArcRotateCamera.js.map
  95157. var BABYLON;
  95158. (function (BABYLON) {
  95159. BABYLON.Node.AddNodeConstructor("AnaglyphFreeCamera", function (name, scene, options) {
  95160. return function () { return new AnaglyphFreeCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, scene); };
  95161. });
  95162. /**
  95163. * Camera used to simulate anaglyphic rendering (based on FreeCamera)
  95164. */
  95165. var AnaglyphFreeCamera = /** @class */ (function (_super) {
  95166. __extends(AnaglyphFreeCamera, _super);
  95167. /**
  95168. * Creates a new AnaglyphFreeCamera
  95169. * @param name defines camera name
  95170. * @param position defines initial position
  95171. * @param interaxialDistance defines distance between each color axis
  95172. * @param scene defines the hosting scene
  95173. */
  95174. function AnaglyphFreeCamera(name, position, interaxialDistance, scene) {
  95175. var _this = _super.call(this, name, position, scene) || this;
  95176. _this.interaxialDistance = interaxialDistance;
  95177. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH, { interaxialDistance: interaxialDistance });
  95178. return _this;
  95179. }
  95180. /**
  95181. * Gets camera class name
  95182. * @returns AnaglyphFreeCamera
  95183. */
  95184. AnaglyphFreeCamera.prototype.getClassName = function () {
  95185. return "AnaglyphFreeCamera";
  95186. };
  95187. return AnaglyphFreeCamera;
  95188. }(BABYLON.FreeCamera));
  95189. BABYLON.AnaglyphFreeCamera = AnaglyphFreeCamera;
  95190. })(BABYLON || (BABYLON = {}));
  95191. //# sourceMappingURL=babylon.anaglyphFreeCamera.js.map
  95192. var BABYLON;
  95193. (function (BABYLON) {
  95194. BABYLON.Node.AddNodeConstructor("AnaglyphGamepadCamera", function (name, scene, options) {
  95195. return function () { return new AnaglyphGamepadCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, scene); };
  95196. });
  95197. /**
  95198. * Camera used to simulate anaglyphic rendering (based on GamepadCamera)
  95199. */
  95200. var AnaglyphGamepadCamera = /** @class */ (function (_super) {
  95201. __extends(AnaglyphGamepadCamera, _super);
  95202. /**
  95203. * Creates a new AnaglyphGamepadCamera
  95204. * @param name defines camera name
  95205. * @param position defines initial position
  95206. * @param interaxialDistance defines distance between each color axis
  95207. * @param scene defines the hosting scene
  95208. */
  95209. function AnaglyphGamepadCamera(name, position, interaxialDistance, scene) {
  95210. var _this = _super.call(this, name, position, scene) || this;
  95211. _this.interaxialDistance = interaxialDistance;
  95212. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH, { interaxialDistance: interaxialDistance });
  95213. return _this;
  95214. }
  95215. /**
  95216. * Gets camera class name
  95217. * @returns AnaglyphGamepadCamera
  95218. */
  95219. AnaglyphGamepadCamera.prototype.getClassName = function () {
  95220. return "AnaglyphGamepadCamera";
  95221. };
  95222. return AnaglyphGamepadCamera;
  95223. }(BABYLON.GamepadCamera));
  95224. BABYLON.AnaglyphGamepadCamera = AnaglyphGamepadCamera;
  95225. })(BABYLON || (BABYLON = {}));
  95226. //# sourceMappingURL=babylon.anaglyphGamepadCamera.js.map
  95227. var BABYLON;
  95228. (function (BABYLON) {
  95229. BABYLON.Node.AddNodeConstructor("AnaglyphUniversalCamera", function (name, scene, options) {
  95230. return function () { return new AnaglyphUniversalCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, scene); };
  95231. });
  95232. /**
  95233. * Camera used to simulate anaglyphic rendering (based on UniversalCamera)
  95234. */
  95235. var AnaglyphUniversalCamera = /** @class */ (function (_super) {
  95236. __extends(AnaglyphUniversalCamera, _super);
  95237. /**
  95238. * Creates a new AnaglyphUniversalCamera
  95239. * @param name defines camera name
  95240. * @param position defines initial position
  95241. * @param interaxialDistance defines distance between each color axis
  95242. * @param scene defines the hosting scene
  95243. */
  95244. function AnaglyphUniversalCamera(name, position, interaxialDistance, scene) {
  95245. var _this = _super.call(this, name, position, scene) || this;
  95246. _this.interaxialDistance = interaxialDistance;
  95247. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_STEREOSCOPIC_ANAGLYPH, { interaxialDistance: interaxialDistance });
  95248. return _this;
  95249. }
  95250. /**
  95251. * Gets camera class name
  95252. * @returns AnaglyphUniversalCamera
  95253. */
  95254. AnaglyphUniversalCamera.prototype.getClassName = function () {
  95255. return "AnaglyphUniversalCamera";
  95256. };
  95257. return AnaglyphUniversalCamera;
  95258. }(BABYLON.UniversalCamera));
  95259. BABYLON.AnaglyphUniversalCamera = AnaglyphUniversalCamera;
  95260. })(BABYLON || (BABYLON = {}));
  95261. //# sourceMappingURL=babylon.anaglyphUniversalCamera.js.map
  95262. var BABYLON;
  95263. (function (BABYLON) {
  95264. var StereoscopicInterlacePostProcess = /** @class */ (function (_super) {
  95265. __extends(StereoscopicInterlacePostProcess, _super);
  95266. function StereoscopicInterlacePostProcess(name, rigCameras, isStereoscopicHoriz, samplingMode, engine, reusable) {
  95267. var _this = _super.call(this, name, "stereoscopicInterlace", ['stepSize'], ['camASampler'], 1, rigCameras[1], samplingMode, engine, reusable, isStereoscopicHoriz ? "#define IS_STEREOSCOPIC_HORIZ 1" : undefined) || this;
  95268. _this._passedProcess = rigCameras[0]._rigPostProcess;
  95269. _this._stepSize = new BABYLON.Vector2(1 / _this.width, 1 / _this.height);
  95270. _this.onSizeChangedObservable.add(function () {
  95271. _this._stepSize = new BABYLON.Vector2(1 / _this.width, 1 / _this.height);
  95272. });
  95273. _this.onApplyObservable.add(function (effect) {
  95274. effect.setTextureFromPostProcess("camASampler", _this._passedProcess);
  95275. effect.setFloat2("stepSize", _this._stepSize.x, _this._stepSize.y);
  95276. });
  95277. return _this;
  95278. }
  95279. return StereoscopicInterlacePostProcess;
  95280. }(BABYLON.PostProcess));
  95281. BABYLON.StereoscopicInterlacePostProcess = StereoscopicInterlacePostProcess;
  95282. })(BABYLON || (BABYLON = {}));
  95283. //# sourceMappingURL=babylon.stereoscopicInterlacePostProcess.js.map
  95284. var BABYLON;
  95285. (function (BABYLON) {
  95286. BABYLON.Node.AddNodeConstructor("StereoscopicArcRotateCamera", function (name, scene, options) {
  95287. return function () { return new StereoscopicArcRotateCamera(name, 0, 0, 1.0, BABYLON.Vector3.Zero(), options.interaxial_distance, options.isStereoscopicSideBySide, scene); };
  95288. });
  95289. /**
  95290. * Camera used to simulate stereoscopic rendering (based on ArcRotateCamera)
  95291. */
  95292. var StereoscopicArcRotateCamera = /** @class */ (function (_super) {
  95293. __extends(StereoscopicArcRotateCamera, _super);
  95294. /**
  95295. * Creates a new StereoscopicArcRotateCamera
  95296. * @param name defines camera name
  95297. * @param alpha defines alpha angle (in radians)
  95298. * @param beta defines beta angle (in radians)
  95299. * @param radius defines radius
  95300. * @param target defines camera target
  95301. * @param interaxialDistance defines distance between each color axis
  95302. * @param isStereoscopicSideBySide defines is stereoscopic is done side by side or over under
  95303. * @param scene defines the hosting scene
  95304. */
  95305. function StereoscopicArcRotateCamera(name, alpha, beta, radius, target, interaxialDistance, isStereoscopicSideBySide, scene) {
  95306. var _this = _super.call(this, name, alpha, beta, radius, target, scene) || this;
  95307. _this.interaxialDistance = interaxialDistance;
  95308. _this.isStereoscopicSideBySide = isStereoscopicSideBySide;
  95309. _this.setCameraRigMode(isStereoscopicSideBySide ? BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL : BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER, { interaxialDistance: interaxialDistance });
  95310. return _this;
  95311. }
  95312. /**
  95313. * Gets camera class name
  95314. * @returns StereoscopicArcRotateCamera
  95315. */
  95316. StereoscopicArcRotateCamera.prototype.getClassName = function () {
  95317. return "StereoscopicArcRotateCamera";
  95318. };
  95319. return StereoscopicArcRotateCamera;
  95320. }(BABYLON.ArcRotateCamera));
  95321. BABYLON.StereoscopicArcRotateCamera = StereoscopicArcRotateCamera;
  95322. })(BABYLON || (BABYLON = {}));
  95323. //# sourceMappingURL=babylon.stereoscopicArcRotateCamera.js.map
  95324. var BABYLON;
  95325. (function (BABYLON) {
  95326. BABYLON.Node.AddNodeConstructor("StereoscopicFreeCamera", function (name, scene, options) {
  95327. return function () { return new StereoscopicFreeCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, options.isStereoscopicSideBySide, scene); };
  95328. });
  95329. /**
  95330. * Camera used to simulate stereoscopic rendering (based on FreeCamera)
  95331. */
  95332. var StereoscopicFreeCamera = /** @class */ (function (_super) {
  95333. __extends(StereoscopicFreeCamera, _super);
  95334. /**
  95335. * Creates a new StereoscopicFreeCamera
  95336. * @param name defines camera name
  95337. * @param position defines initial position
  95338. * @param interaxialDistance defines distance between each color axis
  95339. * @param isStereoscopicSideBySide defines is stereoscopic is done side by side or over under
  95340. * @param scene defines the hosting scene
  95341. */
  95342. function StereoscopicFreeCamera(name, position, interaxialDistance, isStereoscopicSideBySide, scene) {
  95343. var _this = _super.call(this, name, position, scene) || this;
  95344. _this.interaxialDistance = interaxialDistance;
  95345. _this.isStereoscopicSideBySide = isStereoscopicSideBySide;
  95346. _this.setCameraRigMode(isStereoscopicSideBySide ? BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL : BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER, { interaxialDistance: interaxialDistance });
  95347. return _this;
  95348. }
  95349. /**
  95350. * Gets camera class name
  95351. * @returns StereoscopicFreeCamera
  95352. */
  95353. StereoscopicFreeCamera.prototype.getClassName = function () {
  95354. return "StereoscopicFreeCamera";
  95355. };
  95356. return StereoscopicFreeCamera;
  95357. }(BABYLON.FreeCamera));
  95358. BABYLON.StereoscopicFreeCamera = StereoscopicFreeCamera;
  95359. })(BABYLON || (BABYLON = {}));
  95360. //# sourceMappingURL=babylon.stereoscopicFreeCamera.js.map
  95361. var BABYLON;
  95362. (function (BABYLON) {
  95363. BABYLON.Node.AddNodeConstructor("StereoscopicGamepadCamera", function (name, scene, options) {
  95364. return function () { return new StereoscopicGamepadCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, options.isStereoscopicSideBySide, scene); };
  95365. });
  95366. /**
  95367. * Camera used to simulate stereoscopic rendering (based on GamepadCamera)
  95368. */
  95369. var StereoscopicGamepadCamera = /** @class */ (function (_super) {
  95370. __extends(StereoscopicGamepadCamera, _super);
  95371. /**
  95372. * Creates a new StereoscopicGamepadCamera
  95373. * @param name defines camera name
  95374. * @param position defines initial position
  95375. * @param interaxialDistance defines distance between each color axis
  95376. * @param isStereoscopicSideBySide defines is stereoscopic is done side by side or over under
  95377. * @param scene defines the hosting scene
  95378. */
  95379. function StereoscopicGamepadCamera(name, position, interaxialDistance, isStereoscopicSideBySide, scene) {
  95380. var _this = _super.call(this, name, position, scene) || this;
  95381. _this.interaxialDistance = interaxialDistance;
  95382. _this.isStereoscopicSideBySide = isStereoscopicSideBySide;
  95383. _this.setCameraRigMode(isStereoscopicSideBySide ? BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL : BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER, { interaxialDistance: interaxialDistance });
  95384. return _this;
  95385. }
  95386. /**
  95387. * Gets camera class name
  95388. * @returns StereoscopicGamepadCamera
  95389. */
  95390. StereoscopicGamepadCamera.prototype.getClassName = function () {
  95391. return "StereoscopicGamepadCamera";
  95392. };
  95393. return StereoscopicGamepadCamera;
  95394. }(BABYLON.GamepadCamera));
  95395. BABYLON.StereoscopicGamepadCamera = StereoscopicGamepadCamera;
  95396. })(BABYLON || (BABYLON = {}));
  95397. //# sourceMappingURL=babylon.stereoscopicGamepadCamera.js.map
  95398. var BABYLON;
  95399. (function (BABYLON) {
  95400. BABYLON.Node.AddNodeConstructor("StereoscopicFreeCamera", function (name, scene, options) {
  95401. return function () { return new StereoscopicUniversalCamera(name, BABYLON.Vector3.Zero(), options.interaxial_distance, options.isStereoscopicSideBySide, scene); };
  95402. });
  95403. /**
  95404. * Camera used to simulate stereoscopic rendering (based on UniversalCamera)
  95405. */
  95406. var StereoscopicUniversalCamera = /** @class */ (function (_super) {
  95407. __extends(StereoscopicUniversalCamera, _super);
  95408. /**
  95409. * Creates a new StereoscopicUniversalCamera
  95410. * @param name defines camera name
  95411. * @param position defines initial position
  95412. * @param interaxialDistance defines distance between each color axis
  95413. * @param isStereoscopicSideBySide defines is stereoscopic is done side by side or over under
  95414. * @param scene defines the hosting scene
  95415. */
  95416. function StereoscopicUniversalCamera(name, position, interaxialDistance, isStereoscopicSideBySide, scene) {
  95417. var _this = _super.call(this, name, position, scene) || this;
  95418. _this.interaxialDistance = interaxialDistance;
  95419. _this.isStereoscopicSideBySide = isStereoscopicSideBySide;
  95420. _this.setCameraRigMode(isStereoscopicSideBySide ? BABYLON.Camera.RIG_MODE_STEREOSCOPIC_SIDEBYSIDE_PARALLEL : BABYLON.Camera.RIG_MODE_STEREOSCOPIC_OVERUNDER, { interaxialDistance: interaxialDistance });
  95421. return _this;
  95422. }
  95423. /**
  95424. * Gets camera class name
  95425. * @returns StereoscopicUniversalCamera
  95426. */
  95427. StereoscopicUniversalCamera.prototype.getClassName = function () {
  95428. return "StereoscopicUniversalCamera";
  95429. };
  95430. return StereoscopicUniversalCamera;
  95431. }(BABYLON.UniversalCamera));
  95432. BABYLON.StereoscopicUniversalCamera = StereoscopicUniversalCamera;
  95433. })(BABYLON || (BABYLON = {}));
  95434. //# sourceMappingURL=babylon.stereoscopicUniversalCamera.js.map
  95435. var BABYLON;
  95436. (function (BABYLON) {
  95437. var VRDistortionCorrectionPostProcess = /** @class */ (function (_super) {
  95438. __extends(VRDistortionCorrectionPostProcess, _super);
  95439. function VRDistortionCorrectionPostProcess(name, camera, isRightEye, vrMetrics) {
  95440. var _this = _super.call(this, name, "vrDistortionCorrection", [
  95441. 'LensCenter',
  95442. 'Scale',
  95443. 'ScaleIn',
  95444. 'HmdWarpParam'
  95445. ], null, vrMetrics.postProcessScaleFactor, camera, BABYLON.Texture.BILINEAR_SAMPLINGMODE) || this;
  95446. _this._isRightEye = isRightEye;
  95447. _this._distortionFactors = vrMetrics.distortionK;
  95448. _this._postProcessScaleFactor = vrMetrics.postProcessScaleFactor;
  95449. _this._lensCenterOffset = vrMetrics.lensCenterOffset;
  95450. _this.adaptScaleToCurrentViewport = true;
  95451. _this.onSizeChangedObservable.add(function () {
  95452. _this._scaleIn = new BABYLON.Vector2(2, 2 / _this.aspectRatio);
  95453. _this._scaleFactor = new BABYLON.Vector2(.5 * (1 / _this._postProcessScaleFactor), .5 * (1 / _this._postProcessScaleFactor) * _this.aspectRatio);
  95454. _this._lensCenter = new BABYLON.Vector2(_this._isRightEye ? 0.5 - _this._lensCenterOffset * 0.5 : 0.5 + _this._lensCenterOffset * 0.5, 0.5);
  95455. });
  95456. _this.onApplyObservable.add(function (effect) {
  95457. effect.setFloat2("LensCenter", _this._lensCenter.x, _this._lensCenter.y);
  95458. effect.setFloat2("Scale", _this._scaleFactor.x, _this._scaleFactor.y);
  95459. effect.setFloat2("ScaleIn", _this._scaleIn.x, _this._scaleIn.y);
  95460. effect.setFloat4("HmdWarpParam", _this._distortionFactors[0], _this._distortionFactors[1], _this._distortionFactors[2], _this._distortionFactors[3]);
  95461. });
  95462. return _this;
  95463. }
  95464. return VRDistortionCorrectionPostProcess;
  95465. }(BABYLON.PostProcess));
  95466. BABYLON.VRDistortionCorrectionPostProcess = VRDistortionCorrectionPostProcess;
  95467. })(BABYLON || (BABYLON = {}));
  95468. //# sourceMappingURL=babylon.vrDistortionCorrectionPostProcess.js.map
  95469. var BABYLON;
  95470. (function (BABYLON) {
  95471. /**
  95472. * Takes information about the orientation of the device as reported by the deviceorientation event to orient the camera.
  95473. * Screen rotation is taken into account.
  95474. */
  95475. var FreeCameraDeviceOrientationInput = /** @class */ (function () {
  95476. function FreeCameraDeviceOrientationInput() {
  95477. var _this = this;
  95478. this._screenOrientationAngle = 0;
  95479. this._screenQuaternion = new BABYLON.Quaternion();
  95480. this._alpha = 0;
  95481. this._beta = 0;
  95482. this._gamma = 0;
  95483. this._orientationChanged = function () {
  95484. _this._screenOrientationAngle = (window.orientation !== undefined ? +window.orientation : (window.screen.orientation && window.screen.orientation['angle'] ? window.screen.orientation.angle : 0));
  95485. _this._screenOrientationAngle = -BABYLON.Tools.ToRadians(_this._screenOrientationAngle / 2);
  95486. _this._screenQuaternion.copyFromFloats(0, Math.sin(_this._screenOrientationAngle), 0, Math.cos(_this._screenOrientationAngle));
  95487. };
  95488. this._deviceOrientation = function (evt) {
  95489. _this._alpha = evt.alpha !== null ? evt.alpha : 0;
  95490. _this._beta = evt.beta !== null ? evt.beta : 0;
  95491. _this._gamma = evt.gamma !== null ? evt.gamma : 0;
  95492. };
  95493. this._constantTranform = new BABYLON.Quaternion(-Math.sqrt(0.5), 0, 0, Math.sqrt(0.5));
  95494. this._orientationChanged();
  95495. }
  95496. Object.defineProperty(FreeCameraDeviceOrientationInput.prototype, "camera", {
  95497. get: function () {
  95498. return this._camera;
  95499. },
  95500. set: function (camera) {
  95501. this._camera = camera;
  95502. if (this._camera != null && !this._camera.rotationQuaternion) {
  95503. this._camera.rotationQuaternion = new BABYLON.Quaternion();
  95504. }
  95505. },
  95506. enumerable: true,
  95507. configurable: true
  95508. });
  95509. FreeCameraDeviceOrientationInput.prototype.attachControl = function (element, noPreventDefault) {
  95510. window.addEventListener("orientationchange", this._orientationChanged);
  95511. window.addEventListener("deviceorientation", this._deviceOrientation);
  95512. //In certain cases, the attach control is called AFTER orientation was changed,
  95513. //So this is needed.
  95514. this._orientationChanged();
  95515. };
  95516. FreeCameraDeviceOrientationInput.prototype.detachControl = function (element) {
  95517. window.removeEventListener("orientationchange", this._orientationChanged);
  95518. window.removeEventListener("deviceorientation", this._deviceOrientation);
  95519. };
  95520. FreeCameraDeviceOrientationInput.prototype.checkInputs = function () {
  95521. //if no device orientation provided, don't update the rotation.
  95522. //Only testing against alpha under the assumption thatnorientation will never be so exact when set.
  95523. if (!this._alpha)
  95524. return;
  95525. BABYLON.Quaternion.RotationYawPitchRollToRef(BABYLON.Tools.ToRadians(this._alpha), BABYLON.Tools.ToRadians(this._beta), -BABYLON.Tools.ToRadians(this._gamma), this.camera.rotationQuaternion);
  95526. this._camera.rotationQuaternion.multiplyInPlace(this._screenQuaternion);
  95527. this._camera.rotationQuaternion.multiplyInPlace(this._constantTranform);
  95528. //Mirror on XY Plane
  95529. this._camera.rotationQuaternion.z *= -1;
  95530. this._camera.rotationQuaternion.w *= -1;
  95531. };
  95532. FreeCameraDeviceOrientationInput.prototype.getClassName = function () {
  95533. return "FreeCameraDeviceOrientationInput";
  95534. };
  95535. FreeCameraDeviceOrientationInput.prototype.getSimpleName = function () {
  95536. return "deviceOrientation";
  95537. };
  95538. return FreeCameraDeviceOrientationInput;
  95539. }());
  95540. BABYLON.FreeCameraDeviceOrientationInput = FreeCameraDeviceOrientationInput;
  95541. BABYLON.CameraInputTypes["FreeCameraDeviceOrientationInput"] = FreeCameraDeviceOrientationInput;
  95542. })(BABYLON || (BABYLON = {}));
  95543. //# sourceMappingURL=babylon.freeCameraDeviceOrientationInput.js.map
  95544. var BABYLON;
  95545. (function (BABYLON) {
  95546. var ArcRotateCameraVRDeviceOrientationInput = /** @class */ (function () {
  95547. function ArcRotateCameraVRDeviceOrientationInput() {
  95548. this.alphaCorrection = 1;
  95549. this.betaCorrection = 1;
  95550. this.gammaCorrection = 1;
  95551. this._alpha = 0;
  95552. this._gamma = 0;
  95553. this._dirty = false;
  95554. this._deviceOrientationHandler = this._onOrientationEvent.bind(this);
  95555. }
  95556. ArcRotateCameraVRDeviceOrientationInput.prototype.attachControl = function (element, noPreventDefault) {
  95557. this.camera.attachControl(element, noPreventDefault);
  95558. window.addEventListener("deviceorientation", this._deviceOrientationHandler);
  95559. };
  95560. /** @hidden */
  95561. ArcRotateCameraVRDeviceOrientationInput.prototype._onOrientationEvent = function (evt) {
  95562. if (evt.alpha !== null) {
  95563. this._alpha = +evt.alpha | 0;
  95564. }
  95565. if (evt.gamma !== null) {
  95566. this._gamma = +evt.gamma | 0;
  95567. }
  95568. this._dirty = true;
  95569. };
  95570. ArcRotateCameraVRDeviceOrientationInput.prototype.checkInputs = function () {
  95571. if (this._dirty) {
  95572. this._dirty = false;
  95573. if (this._gamma < 0) {
  95574. this._gamma = 180 + this._gamma;
  95575. }
  95576. this.camera.alpha = (-this._alpha / 180.0 * Math.PI) % Math.PI * 2;
  95577. this.camera.beta = (this._gamma / 180.0 * Math.PI);
  95578. }
  95579. };
  95580. ArcRotateCameraVRDeviceOrientationInput.prototype.detachControl = function (element) {
  95581. window.removeEventListener("deviceorientation", this._deviceOrientationHandler);
  95582. };
  95583. ArcRotateCameraVRDeviceOrientationInput.prototype.getClassName = function () {
  95584. return "ArcRotateCameraVRDeviceOrientationInput";
  95585. };
  95586. ArcRotateCameraVRDeviceOrientationInput.prototype.getSimpleName = function () {
  95587. return "VRDeviceOrientation";
  95588. };
  95589. return ArcRotateCameraVRDeviceOrientationInput;
  95590. }());
  95591. BABYLON.ArcRotateCameraVRDeviceOrientationInput = ArcRotateCameraVRDeviceOrientationInput;
  95592. BABYLON.CameraInputTypes["ArcRotateCameraVRDeviceOrientationInput"] = ArcRotateCameraVRDeviceOrientationInput;
  95593. })(BABYLON || (BABYLON = {}));
  95594. //# sourceMappingURL=babylon.arcRotateCameraVRDeviceOrientationInput.js.map
  95595. var BABYLON;
  95596. (function (BABYLON) {
  95597. var VRCameraMetrics = /** @class */ (function () {
  95598. function VRCameraMetrics() {
  95599. this.compensateDistortion = true;
  95600. }
  95601. Object.defineProperty(VRCameraMetrics.prototype, "aspectRatio", {
  95602. get: function () {
  95603. return this.hResolution / (2 * this.vResolution);
  95604. },
  95605. enumerable: true,
  95606. configurable: true
  95607. });
  95608. Object.defineProperty(VRCameraMetrics.prototype, "aspectRatioFov", {
  95609. get: function () {
  95610. return (2 * Math.atan((this.postProcessScaleFactor * this.vScreenSize) / (2 * this.eyeToScreenDistance)));
  95611. },
  95612. enumerable: true,
  95613. configurable: true
  95614. });
  95615. Object.defineProperty(VRCameraMetrics.prototype, "leftHMatrix", {
  95616. get: function () {
  95617. var meters = (this.hScreenSize / 4) - (this.lensSeparationDistance / 2);
  95618. var h = (4 * meters) / this.hScreenSize;
  95619. return BABYLON.Matrix.Translation(h, 0, 0);
  95620. },
  95621. enumerable: true,
  95622. configurable: true
  95623. });
  95624. Object.defineProperty(VRCameraMetrics.prototype, "rightHMatrix", {
  95625. get: function () {
  95626. var meters = (this.hScreenSize / 4) - (this.lensSeparationDistance / 2);
  95627. var h = (4 * meters) / this.hScreenSize;
  95628. return BABYLON.Matrix.Translation(-h, 0, 0);
  95629. },
  95630. enumerable: true,
  95631. configurable: true
  95632. });
  95633. Object.defineProperty(VRCameraMetrics.prototype, "leftPreViewMatrix", {
  95634. get: function () {
  95635. return BABYLON.Matrix.Translation(0.5 * this.interpupillaryDistance, 0, 0);
  95636. },
  95637. enumerable: true,
  95638. configurable: true
  95639. });
  95640. Object.defineProperty(VRCameraMetrics.prototype, "rightPreViewMatrix", {
  95641. get: function () {
  95642. return BABYLON.Matrix.Translation(-0.5 * this.interpupillaryDistance, 0, 0);
  95643. },
  95644. enumerable: true,
  95645. configurable: true
  95646. });
  95647. VRCameraMetrics.GetDefault = function () {
  95648. var result = new VRCameraMetrics();
  95649. result.hResolution = 1280;
  95650. result.vResolution = 800;
  95651. result.hScreenSize = 0.149759993;
  95652. result.vScreenSize = 0.0935999975;
  95653. result.vScreenCenter = 0.0467999987;
  95654. result.eyeToScreenDistance = 0.0410000011;
  95655. result.lensSeparationDistance = 0.0635000020;
  95656. result.interpupillaryDistance = 0.0640000030;
  95657. result.distortionK = [1.0, 0.219999999, 0.239999995, 0.0];
  95658. result.chromaAbCorrection = [0.995999992, -0.00400000019, 1.01400006, 0.0];
  95659. result.postProcessScaleFactor = 1.714605507808412;
  95660. result.lensCenterOffset = 0.151976421;
  95661. return result;
  95662. };
  95663. return VRCameraMetrics;
  95664. }());
  95665. BABYLON.VRCameraMetrics = VRCameraMetrics;
  95666. })(BABYLON || (BABYLON = {}));
  95667. //# sourceMappingURL=babylon.vrCameraMetrics.js.map
  95668. var BABYLON;
  95669. (function (BABYLON) {
  95670. BABYLON.Node.AddNodeConstructor("WebVRFreeCamera", function (name, scene) {
  95671. return function () { return new WebVRFreeCamera(name, BABYLON.Vector3.Zero(), scene); };
  95672. });
  95673. BABYLON.Node.AddNodeConstructor("WebVRGamepadCamera", function (name, scene) {
  95674. return function () { return new WebVRFreeCamera(name, BABYLON.Vector3.Zero(), scene); };
  95675. });
  95676. /**
  95677. * This represents a WebVR camera.
  95678. * The WebVR camera is Babylon's simple interface to interaction with Windows Mixed Reality, HTC Vive and Oculus Rift.
  95679. * @example http://doc.babylonjs.com/how_to/webvr_camera
  95680. */
  95681. var WebVRFreeCamera = /** @class */ (function (_super) {
  95682. __extends(WebVRFreeCamera, _super);
  95683. /**
  95684. * Instantiates a WebVRFreeCamera.
  95685. * @param name The name of the WebVRFreeCamera
  95686. * @param position The starting anchor position for the camera
  95687. * @param scene The scene the camera belongs to
  95688. * @param webVROptions a set of customizable options for the webVRCamera
  95689. */
  95690. function WebVRFreeCamera(name, position, scene, webVROptions) {
  95691. if (webVROptions === void 0) { webVROptions = {}; }
  95692. var _this = _super.call(this, name, position, scene) || this;
  95693. _this.webVROptions = webVROptions;
  95694. /**
  95695. * @hidden
  95696. * The vrDisplay tied to the camera. See https://developer.mozilla.org/en-US/docs/Web/API/VRDisplay
  95697. */
  95698. _this._vrDevice = null;
  95699. /**
  95700. * The rawPose of the vrDevice.
  95701. */
  95702. _this.rawPose = null;
  95703. _this._specsVersion = "1.1";
  95704. _this._attached = false;
  95705. _this._descendants = [];
  95706. // Represents device position and rotation in room space. Should only be used to help calculate babylon space values
  95707. _this._deviceRoomPosition = BABYLON.Vector3.Zero();
  95708. /** @hidden */
  95709. _this._deviceRoomRotationQuaternion = BABYLON.Quaternion.Identity();
  95710. _this._standingMatrix = null;
  95711. /**
  95712. * Represents device position in babylon space.
  95713. */
  95714. _this.devicePosition = BABYLON.Vector3.Zero();
  95715. /**
  95716. * Represents device rotation in babylon space.
  95717. */
  95718. _this.deviceRotationQuaternion = BABYLON.Quaternion.Identity();
  95719. /**
  95720. * The scale of the device to be used when translating from device space to babylon space.
  95721. */
  95722. _this.deviceScaleFactor = 1;
  95723. _this._deviceToWorld = BABYLON.Matrix.Identity();
  95724. _this._worldToDevice = BABYLON.Matrix.Identity();
  95725. /**
  95726. * References to the webVR controllers for the vrDevice.
  95727. */
  95728. _this.controllers = [];
  95729. /**
  95730. * Emits an event when a controller is attached.
  95731. */
  95732. _this.onControllersAttachedObservable = new BABYLON.Observable();
  95733. /**
  95734. * Emits an event when a controller's mesh has been loaded;
  95735. */
  95736. _this.onControllerMeshLoadedObservable = new BABYLON.Observable();
  95737. /**
  95738. * Emits an event when the HMD's pose has been updated.
  95739. */
  95740. _this.onPoseUpdatedFromDeviceObservable = new BABYLON.Observable();
  95741. _this._poseSet = false;
  95742. /**
  95743. * If the rig cameras be used as parent instead of this camera.
  95744. */
  95745. _this.rigParenting = true;
  95746. _this._defaultHeight = undefined;
  95747. _this._htmlElementAttached = null;
  95748. _this._detachIfAttached = function () {
  95749. var vrDisplay = _this.getEngine().getVRDevice();
  95750. if (vrDisplay && !vrDisplay.isPresenting && _this._htmlElementAttached) {
  95751. _this.detachControl(_this._htmlElementAttached);
  95752. }
  95753. };
  95754. _this._workingVector = BABYLON.Vector3.Zero();
  95755. _this._oneVector = BABYLON.Vector3.One();
  95756. _this._workingMatrix = BABYLON.Matrix.Identity();
  95757. _this._tmpMatrix = new BABYLON.Matrix();
  95758. _this._cache.position = BABYLON.Vector3.Zero();
  95759. if (webVROptions.defaultHeight) {
  95760. _this._defaultHeight = webVROptions.defaultHeight;
  95761. _this.position.y = _this._defaultHeight;
  95762. }
  95763. _this.minZ = 0.1;
  95764. //legacy support - the compensation boolean was removed.
  95765. if (arguments.length === 5) {
  95766. _this.webVROptions = arguments[4];
  95767. }
  95768. // default webVR options
  95769. if (_this.webVROptions.trackPosition == undefined) {
  95770. _this.webVROptions.trackPosition = true;
  95771. }
  95772. if (_this.webVROptions.controllerMeshes == undefined) {
  95773. _this.webVROptions.controllerMeshes = true;
  95774. }
  95775. if (_this.webVROptions.defaultLightingOnControllers == undefined) {
  95776. _this.webVROptions.defaultLightingOnControllers = true;
  95777. }
  95778. _this.rotationQuaternion = new BABYLON.Quaternion();
  95779. if (_this.webVROptions && _this.webVROptions.positionScale) {
  95780. _this.deviceScaleFactor = _this.webVROptions.positionScale;
  95781. }
  95782. //enable VR
  95783. var engine = _this.getEngine();
  95784. _this._onVREnabled = function (success) { if (success) {
  95785. _this.initControllers();
  95786. } };
  95787. engine.onVRRequestPresentComplete.add(_this._onVREnabled);
  95788. engine.initWebVR().add(function (event) {
  95789. if (!event.vrDisplay || _this._vrDevice === event.vrDisplay) {
  95790. return;
  95791. }
  95792. _this._vrDevice = event.vrDisplay;
  95793. //reset the rig parameters.
  95794. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_WEBVR, { parentCamera: _this, vrDisplay: _this._vrDevice, frameData: _this._frameData, specs: _this._specsVersion });
  95795. if (_this._attached) {
  95796. _this.getEngine().enableVR();
  95797. }
  95798. });
  95799. if (typeof (VRFrameData) !== "undefined")
  95800. _this._frameData = new VRFrameData();
  95801. /**
  95802. * The idea behind the following lines:
  95803. * objects that have the camera as parent should actually have the rig cameras as a parent.
  95804. * BUT, each of those cameras has a different view matrix, which means that if we set the parent to the first rig camera,
  95805. * the second will not show it correctly.
  95806. *
  95807. * To solve this - each object that has the camera as parent will be added to a protected array.
  95808. * When the rig camera renders, it will take this array and set all of those to be its children.
  95809. * This way, the right camera will be used as a parent, and the mesh will be rendered correctly.
  95810. * Amazing!
  95811. */
  95812. scene.onBeforeCameraRenderObservable.add(function (camera) {
  95813. if (camera.parent === _this && _this.rigParenting) {
  95814. _this._descendants = _this.getDescendants(true, function (n) {
  95815. // don't take the cameras or the controllers!
  95816. var isController = _this.controllers.some(function (controller) { return controller._mesh === n; });
  95817. var isRigCamera = _this._rigCameras.indexOf(n) !== -1;
  95818. return !isController && !isRigCamera;
  95819. });
  95820. _this._descendants.forEach(function (node) {
  95821. node.parent = camera;
  95822. });
  95823. }
  95824. });
  95825. scene.onAfterCameraRenderObservable.add(function (camera) {
  95826. if (camera.parent === _this && _this.rigParenting) {
  95827. _this._descendants.forEach(function (node) {
  95828. node.parent = _this;
  95829. });
  95830. }
  95831. });
  95832. return _this;
  95833. }
  95834. /**
  95835. * Gets the device distance from the ground in meters.
  95836. * @returns the distance in meters from the vrDevice to ground in device space. If standing matrix is not supported for the vrDevice 0 is returned.
  95837. */
  95838. WebVRFreeCamera.prototype.deviceDistanceToRoomGround = function () {
  95839. if (this._standingMatrix) {
  95840. // Add standing matrix offset to get real offset from ground in room
  95841. this._standingMatrix.getTranslationToRef(this._workingVector);
  95842. return this._deviceRoomPosition.y + this._workingVector.y;
  95843. }
  95844. //If VRDisplay does not inform stage parameters and no default height is set we fallback to zero.
  95845. return this._defaultHeight || 0;
  95846. };
  95847. /**
  95848. * Enables the standing matrix when supported. This can be used to position the user's view the correct height from the ground.
  95849. * @param callback will be called when the standing matrix is set. Callback parameter is if the standing matrix is supported.
  95850. */
  95851. WebVRFreeCamera.prototype.useStandingMatrix = function (callback) {
  95852. var _this = this;
  95853. if (callback === void 0) { callback = function (bool) { }; }
  95854. // Use standing matrix if available
  95855. this.getEngine().initWebVRAsync().then(function (result) {
  95856. if (!result.vrDisplay || !result.vrDisplay.stageParameters || !result.vrDisplay.stageParameters.sittingToStandingTransform) {
  95857. callback(false);
  95858. }
  95859. else {
  95860. _this._standingMatrix = new BABYLON.Matrix();
  95861. BABYLON.Matrix.FromFloat32ArrayToRefScaled(result.vrDisplay.stageParameters.sittingToStandingTransform, 0, 1, _this._standingMatrix);
  95862. if (!_this.getScene().useRightHandedSystem) {
  95863. [2, 6, 8, 9, 14].forEach(function (num) {
  95864. if (_this._standingMatrix) {
  95865. _this._standingMatrix.m[num] *= -1;
  95866. }
  95867. });
  95868. }
  95869. callback(true);
  95870. }
  95871. });
  95872. };
  95873. /**
  95874. * Enables the standing matrix when supported. This can be used to position the user's view the correct height from the ground.
  95875. * @returns A promise with a boolean set to if the standing matrix is supported.
  95876. */
  95877. WebVRFreeCamera.prototype.useStandingMatrixAsync = function () {
  95878. var _this = this;
  95879. return new Promise(function (res, rej) {
  95880. _this.useStandingMatrix(function (supported) {
  95881. res(supported);
  95882. });
  95883. });
  95884. };
  95885. /**
  95886. * Disposes the camera
  95887. */
  95888. WebVRFreeCamera.prototype.dispose = function () {
  95889. this._detachIfAttached();
  95890. this.getEngine().onVRRequestPresentComplete.removeCallback(this._onVREnabled);
  95891. _super.prototype.dispose.call(this);
  95892. };
  95893. /**
  95894. * Gets a vrController by name.
  95895. * @param name The name of the controller to retreive
  95896. * @returns the controller matching the name specified or null if not found
  95897. */
  95898. WebVRFreeCamera.prototype.getControllerByName = function (name) {
  95899. for (var _i = 0, _a = this.controllers; _i < _a.length; _i++) {
  95900. var gp = _a[_i];
  95901. if (gp.hand === name) {
  95902. return gp;
  95903. }
  95904. }
  95905. return null;
  95906. };
  95907. Object.defineProperty(WebVRFreeCamera.prototype, "leftController", {
  95908. /**
  95909. * The controller corrisponding to the users left hand.
  95910. */
  95911. get: function () {
  95912. if (!this._leftController) {
  95913. this._leftController = this.getControllerByName("left");
  95914. }
  95915. return this._leftController;
  95916. },
  95917. enumerable: true,
  95918. configurable: true
  95919. });
  95920. ;
  95921. Object.defineProperty(WebVRFreeCamera.prototype, "rightController", {
  95922. /**
  95923. * The controller corrisponding to the users right hand.
  95924. */
  95925. get: function () {
  95926. if (!this._rightController) {
  95927. this._rightController = this.getControllerByName("right");
  95928. }
  95929. return this._rightController;
  95930. },
  95931. enumerable: true,
  95932. configurable: true
  95933. });
  95934. ;
  95935. /**
  95936. * Casts a ray forward from the vrCamera's gaze.
  95937. * @param length Length of the ray (default: 100)
  95938. * @returns the ray corrisponding to the gaze
  95939. */
  95940. WebVRFreeCamera.prototype.getForwardRay = function (length) {
  95941. if (length === void 0) { length = 100; }
  95942. if (this.leftCamera) {
  95943. // Use left eye to avoid computation to compute center on every call
  95944. return _super.prototype.getForwardRay.call(this, length, this.leftCamera.getWorldMatrix(), this.leftCamera.globalPosition); // Need the actual rendered camera
  95945. }
  95946. else {
  95947. return _super.prototype.getForwardRay.call(this, length);
  95948. }
  95949. };
  95950. /**
  95951. * @hidden
  95952. * Updates the camera based on device's frame data
  95953. */
  95954. WebVRFreeCamera.prototype._checkInputs = function () {
  95955. if (this._vrDevice && this._vrDevice.isPresenting) {
  95956. this._vrDevice.getFrameData(this._frameData);
  95957. this.updateFromDevice(this._frameData.pose);
  95958. }
  95959. _super.prototype._checkInputs.call(this);
  95960. };
  95961. /**
  95962. * Updates the poseControlled values based on the input device pose.
  95963. * @param poseData Pose coming from the device
  95964. */
  95965. WebVRFreeCamera.prototype.updateFromDevice = function (poseData) {
  95966. if (poseData && poseData.orientation) {
  95967. this.rawPose = poseData;
  95968. this._deviceRoomRotationQuaternion.copyFromFloats(poseData.orientation[0], poseData.orientation[1], -poseData.orientation[2], -poseData.orientation[3]);
  95969. if (this.getScene().useRightHandedSystem) {
  95970. this._deviceRoomRotationQuaternion.z *= -1;
  95971. this._deviceRoomRotationQuaternion.w *= -1;
  95972. }
  95973. if (this.webVROptions.trackPosition && this.rawPose.position) {
  95974. this._deviceRoomPosition.copyFromFloats(this.rawPose.position[0], this.rawPose.position[1], -this.rawPose.position[2]);
  95975. if (this.getScene().useRightHandedSystem) {
  95976. this._deviceRoomPosition.z *= -1;
  95977. }
  95978. }
  95979. this._poseSet = true;
  95980. }
  95981. };
  95982. /**
  95983. * WebVR's attach control will start broadcasting frames to the device.
  95984. * Note that in certain browsers (chrome for example) this function must be called
  95985. * within a user-interaction callback. Example:
  95986. * <pre> scene.onPointerDown = function() { camera.attachControl(canvas); }</pre>
  95987. *
  95988. * @param element html element to attach the vrDevice to
  95989. * @param noPreventDefault prevent the default html element operation when attaching the vrDevice
  95990. */
  95991. WebVRFreeCamera.prototype.attachControl = function (element, noPreventDefault) {
  95992. _super.prototype.attachControl.call(this, element, noPreventDefault);
  95993. this._attached = true;
  95994. this._htmlElementAttached = element;
  95995. noPreventDefault = BABYLON.Camera.ForceAttachControlToAlwaysPreventDefault ? false : noPreventDefault;
  95996. if (this._vrDevice) {
  95997. this.getEngine().enableVR();
  95998. }
  95999. window.addEventListener('vrdisplaypresentchange', this._detachIfAttached);
  96000. };
  96001. /**
  96002. * Detaches the camera from the html element and disables VR
  96003. *
  96004. * @param element html element to detach from
  96005. */
  96006. WebVRFreeCamera.prototype.detachControl = function (element) {
  96007. this.getScene().gamepadManager.onGamepadConnectedObservable.remove(this._onGamepadConnectedObserver);
  96008. this.getScene().gamepadManager.onGamepadDisconnectedObservable.remove(this._onGamepadDisconnectedObserver);
  96009. _super.prototype.detachControl.call(this, element);
  96010. this._attached = false;
  96011. this.getEngine().disableVR();
  96012. window.removeEventListener('vrdisplaypresentchange', this._detachIfAttached);
  96013. };
  96014. /**
  96015. * @returns the name of this class
  96016. */
  96017. WebVRFreeCamera.prototype.getClassName = function () {
  96018. return "WebVRFreeCamera";
  96019. };
  96020. /**
  96021. * Calls resetPose on the vrDisplay
  96022. * See: https://developer.mozilla.org/en-US/docs/Web/API/VRDisplay/resetPose
  96023. */
  96024. WebVRFreeCamera.prototype.resetToCurrentRotation = function () {
  96025. //uses the vrDisplay's "resetPose()".
  96026. //pitch and roll won't be affected.
  96027. this._vrDevice.resetPose();
  96028. };
  96029. /**
  96030. * @hidden
  96031. * Updates the rig cameras (left and right eye)
  96032. */
  96033. WebVRFreeCamera.prototype._updateRigCameras = function () {
  96034. var camLeft = this._rigCameras[0];
  96035. var camRight = this._rigCameras[1];
  96036. camLeft.rotationQuaternion.copyFrom(this._deviceRoomRotationQuaternion);
  96037. camRight.rotationQuaternion.copyFrom(this._deviceRoomRotationQuaternion);
  96038. camLeft.position.copyFrom(this._deviceRoomPosition);
  96039. camRight.position.copyFrom(this._deviceRoomPosition);
  96040. };
  96041. // Remove translation from 6dof headset if trackposition is set to false
  96042. WebVRFreeCamera.prototype._correctPositionIfNotTrackPosition = function (matrix, isViewMatrix) {
  96043. if (isViewMatrix === void 0) { isViewMatrix = false; }
  96044. if (this.rawPose && this.rawPose.position && !this.webVROptions.trackPosition) {
  96045. BABYLON.Matrix.TranslationToRef(this.rawPose.position[0], this.rawPose.position[1], -this.rawPose.position[2], this._tmpMatrix);
  96046. if (!isViewMatrix) {
  96047. this._tmpMatrix.invert();
  96048. }
  96049. this._tmpMatrix.multiplyToRef(matrix, matrix);
  96050. }
  96051. };
  96052. /**
  96053. * @hidden
  96054. * Updates the cached values of the camera
  96055. * @param ignoreParentClass ignores updating the parent class's cache (default: false)
  96056. */
  96057. WebVRFreeCamera.prototype._updateCache = function (ignoreParentClass) {
  96058. var _this = this;
  96059. if (!this.rotationQuaternion.equals(this._cache.rotationQuaternion) || !this.position.equals(this._cache.position)) {
  96060. // Update to ensure devicePosition is up to date with most recent _deviceRoomPosition
  96061. if (!this.updateCacheCalled) {
  96062. // make sure it is only called once per loop. this.update() might cause an infinite loop.
  96063. this.updateCacheCalled = true;
  96064. this.update();
  96065. }
  96066. // Set working vector to the device position in room space rotated by the new rotation
  96067. this.rotationQuaternion.toRotationMatrix(this._workingMatrix);
  96068. BABYLON.Vector3.TransformCoordinatesToRef(this._deviceRoomPosition, this._workingMatrix, this._workingVector);
  96069. // Subtract this vector from the current device position in world to get the translation for the device world matrix
  96070. this.devicePosition.subtractToRef(this._workingVector, this._workingVector);
  96071. BABYLON.Matrix.ComposeToRef(this._oneVector, this.rotationQuaternion, this._workingVector, this._deviceToWorld);
  96072. // Add translation from anchor position
  96073. this._deviceToWorld.getTranslationToRef(this._workingVector);
  96074. this._workingVector.addInPlace(this.position);
  96075. this._workingVector.subtractInPlace(this._cache.position);
  96076. this._deviceToWorld.setTranslation(this._workingVector);
  96077. // Set an inverted matrix to be used when updating the camera
  96078. this._deviceToWorld.invertToRef(this._worldToDevice);
  96079. // Update the gamepad to ensure the mesh is updated on the same frame as camera
  96080. this.controllers.forEach(function (controller) {
  96081. controller._deviceToWorld.copyFrom(_this._deviceToWorld);
  96082. _this._correctPositionIfNotTrackPosition(controller._deviceToWorld);
  96083. controller.update();
  96084. });
  96085. }
  96086. if (!ignoreParentClass) {
  96087. _super.prototype._updateCache.call(this);
  96088. }
  96089. this.updateCacheCalled = false;
  96090. };
  96091. /**
  96092. * Updates the current device position and rotation in the babylon world
  96093. */
  96094. WebVRFreeCamera.prototype.update = function () {
  96095. // Get current device position in babylon world
  96096. BABYLON.Vector3.TransformCoordinatesToRef(this._deviceRoomPosition, this._deviceToWorld, this.devicePosition);
  96097. // Get current device rotation in babylon world
  96098. BABYLON.Matrix.FromQuaternionToRef(this._deviceRoomRotationQuaternion, this._workingMatrix);
  96099. this._workingMatrix.multiplyToRef(this._deviceToWorld, this._workingMatrix);
  96100. BABYLON.Quaternion.FromRotationMatrixToRef(this._workingMatrix, this.deviceRotationQuaternion);
  96101. if (this._poseSet) {
  96102. this.onPoseUpdatedFromDeviceObservable.notifyObservers(null);
  96103. }
  96104. _super.prototype.update.call(this);
  96105. };
  96106. /**
  96107. * @hidden
  96108. * Gets the view matrix of this camera (Always set to identity as left and right eye cameras contain the actual view matrix)
  96109. * @returns an identity matrix
  96110. */
  96111. WebVRFreeCamera.prototype._getViewMatrix = function () {
  96112. return BABYLON.Matrix.Identity();
  96113. };
  96114. /**
  96115. * This function is called by the two RIG cameras.
  96116. * 'this' is the left or right camera (and NOT (!!!) the WebVRFreeCamera instance)
  96117. */
  96118. WebVRFreeCamera.prototype._getWebVRViewMatrix = function () {
  96119. var _this = this;
  96120. // Update the parent camera prior to using a child camera to avoid desynchronization
  96121. var parentCamera = this._cameraRigParams["parentCamera"];
  96122. parentCamera._updateCache();
  96123. //WebVR 1.1
  96124. var viewArray = this._cameraRigParams["left"] ? this._cameraRigParams["frameData"].leftViewMatrix : this._cameraRigParams["frameData"].rightViewMatrix;
  96125. BABYLON.Matrix.FromArrayToRef(viewArray, 0, this._webvrViewMatrix);
  96126. if (!this.getScene().useRightHandedSystem) {
  96127. [2, 6, 8, 9, 14].forEach(function (num) {
  96128. _this._webvrViewMatrix.m[num] *= -1;
  96129. });
  96130. }
  96131. // update the camera rotation matrix
  96132. this._webvrViewMatrix.getRotationMatrixToRef(this._cameraRotationMatrix);
  96133. BABYLON.Vector3.TransformCoordinatesToRef(this._referencePoint, this._cameraRotationMatrix, this._transformedReferencePoint);
  96134. // Computing target and final matrix
  96135. this.position.addToRef(this._transformedReferencePoint, this._currentTarget);
  96136. // should the view matrix be updated with scale and position offset?
  96137. if (parentCamera.deviceScaleFactor !== 1) {
  96138. this._webvrViewMatrix.invert();
  96139. // scale the position, if set
  96140. if (parentCamera.deviceScaleFactor) {
  96141. this._webvrViewMatrix.m[12] *= parentCamera.deviceScaleFactor;
  96142. this._webvrViewMatrix.m[13] *= parentCamera.deviceScaleFactor;
  96143. this._webvrViewMatrix.m[14] *= parentCamera.deviceScaleFactor;
  96144. }
  96145. this._webvrViewMatrix.invert();
  96146. }
  96147. // Remove translation from 6dof headset if trackposition is set to false
  96148. parentCamera._correctPositionIfNotTrackPosition(this._webvrViewMatrix, true);
  96149. parentCamera._worldToDevice.multiplyToRef(this._webvrViewMatrix, this._webvrViewMatrix);
  96150. // Compute global position
  96151. this._workingMatrix = this._workingMatrix || BABYLON.Matrix.Identity();
  96152. this._webvrViewMatrix.invertToRef(this._workingMatrix);
  96153. this._workingMatrix.multiplyToRef(parentCamera.getWorldMatrix(), this._workingMatrix);
  96154. this._workingMatrix.getTranslationToRef(this._globalPosition);
  96155. this._markSyncedWithParent();
  96156. return this._webvrViewMatrix;
  96157. };
  96158. WebVRFreeCamera.prototype._getWebVRProjectionMatrix = function () {
  96159. var _this = this;
  96160. var parentCamera = this.parent;
  96161. parentCamera._vrDevice.depthNear = parentCamera.minZ;
  96162. parentCamera._vrDevice.depthFar = parentCamera.maxZ;
  96163. var projectionArray = this._cameraRigParams["left"] ? this._cameraRigParams["frameData"].leftProjectionMatrix : this._cameraRigParams["frameData"].rightProjectionMatrix;
  96164. BABYLON.Matrix.FromArrayToRef(projectionArray, 0, this._projectionMatrix);
  96165. //babylon compatible matrix
  96166. if (!this.getScene().useRightHandedSystem) {
  96167. [8, 9, 10, 11].forEach(function (num) {
  96168. _this._projectionMatrix.m[num] *= -1;
  96169. });
  96170. }
  96171. return this._projectionMatrix;
  96172. };
  96173. /**
  96174. * Initializes the controllers and their meshes
  96175. */
  96176. WebVRFreeCamera.prototype.initControllers = function () {
  96177. var _this = this;
  96178. this.controllers = [];
  96179. var manager = this.getScene().gamepadManager;
  96180. this._onGamepadDisconnectedObserver = manager.onGamepadDisconnectedObservable.add(function (gamepad) {
  96181. if (gamepad.type === BABYLON.Gamepad.POSE_ENABLED) {
  96182. var webVrController = gamepad;
  96183. if (webVrController.defaultModel) {
  96184. webVrController.defaultModel.setEnabled(false);
  96185. }
  96186. if (webVrController.hand === "right") {
  96187. _this._rightController = null;
  96188. }
  96189. if (webVrController.hand === "left") {
  96190. _this._leftController = null;
  96191. }
  96192. var controllerIndex = _this.controllers.indexOf(webVrController);
  96193. if (controllerIndex !== -1) {
  96194. _this.controllers.splice(controllerIndex, 1);
  96195. }
  96196. }
  96197. });
  96198. this._onGamepadConnectedObserver = manager.onGamepadConnectedObservable.add(function (gamepad) {
  96199. if (gamepad.type === BABYLON.Gamepad.POSE_ENABLED) {
  96200. var webVrController_1 = gamepad;
  96201. webVrController_1.deviceScaleFactor = _this.deviceScaleFactor;
  96202. webVrController_1._deviceToWorld.copyFrom(_this._deviceToWorld);
  96203. _this._correctPositionIfNotTrackPosition(webVrController_1._deviceToWorld);
  96204. if (_this.webVROptions.controllerMeshes) {
  96205. if (webVrController_1.defaultModel) {
  96206. webVrController_1.defaultModel.setEnabled(true);
  96207. }
  96208. else {
  96209. // Load the meshes
  96210. webVrController_1.initControllerMesh(_this.getScene(), function (loadedMesh) {
  96211. loadedMesh.scaling.scaleInPlace(_this.deviceScaleFactor);
  96212. _this.onControllerMeshLoadedObservable.notifyObservers(webVrController_1);
  96213. if (_this.webVROptions.defaultLightingOnControllers) {
  96214. if (!_this._lightOnControllers) {
  96215. _this._lightOnControllers = new BABYLON.HemisphericLight("vrControllersLight", new BABYLON.Vector3(0, 1, 0), _this.getScene());
  96216. }
  96217. var activateLightOnSubMeshes_1 = function (mesh, light) {
  96218. var children = mesh.getChildren();
  96219. if (children.length !== 0) {
  96220. children.forEach(function (mesh) {
  96221. light.includedOnlyMeshes.push(mesh);
  96222. activateLightOnSubMeshes_1(mesh, light);
  96223. });
  96224. }
  96225. };
  96226. _this._lightOnControllers.includedOnlyMeshes.push(loadedMesh);
  96227. activateLightOnSubMeshes_1(loadedMesh, _this._lightOnControllers);
  96228. }
  96229. });
  96230. }
  96231. }
  96232. webVrController_1.attachToPoseControlledCamera(_this);
  96233. // since this is async - sanity check. Is the controller already stored?
  96234. if (_this.controllers.indexOf(webVrController_1) === -1) {
  96235. //add to the controllers array
  96236. _this.controllers.push(webVrController_1);
  96237. // Forced to add some control code for Vive as it doesn't always fill properly the "hand" property
  96238. // Sometimes, both controllers are set correctly (left and right), sometimes none, sometimes only one of them...
  96239. // So we're overriding setting left & right manually to be sure
  96240. var firstViveWandDetected = false;
  96241. for (var i = 0; i < _this.controllers.length; i++) {
  96242. if (_this.controllers[i].controllerType === BABYLON.PoseEnabledControllerType.VIVE) {
  96243. if (!firstViveWandDetected) {
  96244. firstViveWandDetected = true;
  96245. _this.controllers[i].hand = "left";
  96246. }
  96247. else {
  96248. _this.controllers[i].hand = "right";
  96249. }
  96250. }
  96251. }
  96252. //did we find enough controllers? Great! let the developer know.
  96253. if (_this.controllers.length >= 2) {
  96254. _this.onControllersAttachedObservable.notifyObservers(_this.controllers);
  96255. }
  96256. }
  96257. }
  96258. });
  96259. };
  96260. return WebVRFreeCamera;
  96261. }(BABYLON.FreeCamera));
  96262. BABYLON.WebVRFreeCamera = WebVRFreeCamera;
  96263. })(BABYLON || (BABYLON = {}));
  96264. //# sourceMappingURL=babylon.webVRCamera.js.map
  96265. var BABYLON;
  96266. (function (BABYLON) {
  96267. BABYLON.Node.AddNodeConstructor("DeviceOrientationCamera", function (name, scene) {
  96268. return function () { return new DeviceOrientationCamera(name, BABYLON.Vector3.Zero(), scene); };
  96269. });
  96270. // We're mainly based on the logic defined into the FreeCamera code
  96271. /**
  96272. * This is a camera specifically designed to react to device orientation events such as a modern mobile device
  96273. * being tilted forward or back and left or right.
  96274. */
  96275. var DeviceOrientationCamera = /** @class */ (function (_super) {
  96276. __extends(DeviceOrientationCamera, _super);
  96277. /**
  96278. * Creates a new device orientation camera
  96279. * @param name The name of the camera
  96280. * @param position The start position camera
  96281. * @param scene The scene the camera belongs to
  96282. */
  96283. function DeviceOrientationCamera(name, position, scene) {
  96284. var _this = _super.call(this, name, position, scene) || this;
  96285. _this._quaternionCache = new BABYLON.Quaternion();
  96286. _this.inputs.addDeviceOrientation();
  96287. return _this;
  96288. }
  96289. /**
  96290. * Gets the current instance class name ("DeviceOrientationCamera").
  96291. * This helps avoiding instanceof at run time.
  96292. * @returns the class name
  96293. */
  96294. DeviceOrientationCamera.prototype.getClassName = function () {
  96295. return "DeviceOrientationCamera";
  96296. };
  96297. /**
  96298. * @hidden
  96299. * Checks and applies the current values of the inputs to the camera. (Internal use only)
  96300. */
  96301. DeviceOrientationCamera.prototype._checkInputs = function () {
  96302. _super.prototype._checkInputs.call(this);
  96303. this._quaternionCache.copyFrom(this.rotationQuaternion);
  96304. if (this._initialQuaternion) {
  96305. this._initialQuaternion.multiplyToRef(this.rotationQuaternion, this.rotationQuaternion);
  96306. }
  96307. };
  96308. /**
  96309. * Reset the camera to its default orientation on the specified axis only.
  96310. * @param axis The axis to reset
  96311. */
  96312. DeviceOrientationCamera.prototype.resetToCurrentRotation = function (axis) {
  96313. var _this = this;
  96314. if (axis === void 0) { axis = BABYLON.Axis.Y; }
  96315. //can only work if this camera has a rotation quaternion already.
  96316. if (!this.rotationQuaternion)
  96317. return;
  96318. if (!this._initialQuaternion) {
  96319. this._initialQuaternion = new BABYLON.Quaternion();
  96320. }
  96321. this._initialQuaternion.copyFrom(this._quaternionCache || this.rotationQuaternion);
  96322. ['x', 'y', 'z'].forEach(function (axisName) {
  96323. if (!axis[axisName]) {
  96324. _this._initialQuaternion[axisName] = 0;
  96325. }
  96326. else {
  96327. _this._initialQuaternion[axisName] *= -1;
  96328. }
  96329. });
  96330. this._initialQuaternion.normalize();
  96331. //force rotation update
  96332. this._initialQuaternion.multiplyToRef(this.rotationQuaternion, this.rotationQuaternion);
  96333. };
  96334. return DeviceOrientationCamera;
  96335. }(BABYLON.FreeCamera));
  96336. BABYLON.DeviceOrientationCamera = DeviceOrientationCamera;
  96337. })(BABYLON || (BABYLON = {}));
  96338. //# sourceMappingURL=babylon.deviceOrientationCamera.js.map
  96339. var BABYLON;
  96340. (function (BABYLON) {
  96341. BABYLON.Node.AddNodeConstructor("VRDeviceOrientationFreeCamera", function (name, scene) {
  96342. return function () { return new VRDeviceOrientationFreeCamera(name, BABYLON.Vector3.Zero(), scene); };
  96343. });
  96344. var VRDeviceOrientationFreeCamera = /** @class */ (function (_super) {
  96345. __extends(VRDeviceOrientationFreeCamera, _super);
  96346. function VRDeviceOrientationFreeCamera(name, position, scene, compensateDistortion, vrCameraMetrics) {
  96347. if (compensateDistortion === void 0) { compensateDistortion = true; }
  96348. if (vrCameraMetrics === void 0) { vrCameraMetrics = BABYLON.VRCameraMetrics.GetDefault(); }
  96349. var _this = _super.call(this, name, position, scene) || this;
  96350. vrCameraMetrics.compensateDistortion = compensateDistortion;
  96351. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_VR, { vrCameraMetrics: vrCameraMetrics });
  96352. return _this;
  96353. }
  96354. VRDeviceOrientationFreeCamera.prototype.getClassName = function () {
  96355. return "VRDeviceOrientationFreeCamera";
  96356. };
  96357. return VRDeviceOrientationFreeCamera;
  96358. }(BABYLON.DeviceOrientationCamera));
  96359. BABYLON.VRDeviceOrientationFreeCamera = VRDeviceOrientationFreeCamera;
  96360. })(BABYLON || (BABYLON = {}));
  96361. //# sourceMappingURL=babylon.vrDeviceOrientationFreeCamera.js.map
  96362. var BABYLON;
  96363. (function (BABYLON) {
  96364. BABYLON.Node.AddNodeConstructor("VRDeviceOrientationFreeCamera", function (name, scene) {
  96365. return function () { return new VRDeviceOrientationArcRotateCamera(name, 0, 0, 1.0, BABYLON.Vector3.Zero(), scene); };
  96366. });
  96367. var VRDeviceOrientationArcRotateCamera = /** @class */ (function (_super) {
  96368. __extends(VRDeviceOrientationArcRotateCamera, _super);
  96369. function VRDeviceOrientationArcRotateCamera(name, alpha, beta, radius, target, scene, compensateDistortion, vrCameraMetrics) {
  96370. if (compensateDistortion === void 0) { compensateDistortion = true; }
  96371. if (vrCameraMetrics === void 0) { vrCameraMetrics = BABYLON.VRCameraMetrics.GetDefault(); }
  96372. var _this = _super.call(this, name, alpha, beta, radius, target, scene) || this;
  96373. vrCameraMetrics.compensateDistortion = compensateDistortion;
  96374. _this.setCameraRigMode(BABYLON.Camera.RIG_MODE_VR, { vrCameraMetrics: vrCameraMetrics });
  96375. _this.inputs.addVRDeviceOrientation();
  96376. return _this;
  96377. }
  96378. VRDeviceOrientationArcRotateCamera.prototype.getClassName = function () {
  96379. return "VRDeviceOrientationArcRotateCamera";
  96380. };
  96381. return VRDeviceOrientationArcRotateCamera;
  96382. }(BABYLON.ArcRotateCamera));
  96383. BABYLON.VRDeviceOrientationArcRotateCamera = VRDeviceOrientationArcRotateCamera;
  96384. })(BABYLON || (BABYLON = {}));
  96385. //# sourceMappingURL=babylon.vrDeviceOrientationArcRotateCamera.js.map
  96386. var BABYLON;
  96387. (function (BABYLON) {
  96388. BABYLON.Node.AddNodeConstructor("VRDeviceOrientationGamepadCamera", function (name, scene) {
  96389. return function () { return new VRDeviceOrientationGamepadCamera(name, BABYLON.Vector3.Zero(), scene); };
  96390. });
  96391. var VRDeviceOrientationGamepadCamera = /** @class */ (function (_super) {
  96392. __extends(VRDeviceOrientationGamepadCamera, _super);
  96393. function VRDeviceOrientationGamepadCamera(name, position, scene, compensateDistortion, vrCameraMetrics) {
  96394. if (compensateDistortion === void 0) { compensateDistortion = true; }
  96395. if (vrCameraMetrics === void 0) { vrCameraMetrics = BABYLON.VRCameraMetrics.GetDefault(); }
  96396. var _this = _super.call(this, name, position, scene, compensateDistortion, vrCameraMetrics) || this;
  96397. _this.inputs.addGamepad();
  96398. return _this;
  96399. }
  96400. VRDeviceOrientationGamepadCamera.prototype.getClassName = function () {
  96401. return "VRDeviceOrientationGamepadCamera";
  96402. };
  96403. return VRDeviceOrientationGamepadCamera;
  96404. }(BABYLON.VRDeviceOrientationFreeCamera));
  96405. BABYLON.VRDeviceOrientationGamepadCamera = VRDeviceOrientationGamepadCamera;
  96406. })(BABYLON || (BABYLON = {}));
  96407. //# sourceMappingURL=babylon.vrDeviceOrientationGamepadCamera.js.map
  96408. var BABYLON;
  96409. (function (BABYLON) {
  96410. var VRExperienceHelperGazer = /** @class */ (function () {
  96411. function VRExperienceHelperGazer(scene, gazeTrackerToClone) {
  96412. if (gazeTrackerToClone === void 0) { gazeTrackerToClone = null; }
  96413. this.scene = scene;
  96414. /** @hidden */
  96415. this._pointerDownOnMeshAsked = false;
  96416. /** @hidden */
  96417. this._isActionableMesh = false;
  96418. /** @hidden */
  96419. this._teleportationRequestInitiated = false;
  96420. /** @hidden */
  96421. this._teleportationBackRequestInitiated = false;
  96422. /** @hidden */
  96423. this._rotationRightAsked = false;
  96424. /** @hidden */
  96425. this._rotationLeftAsked = false;
  96426. /** @hidden */
  96427. this._dpadPressed = true;
  96428. /** @hidden */
  96429. this._activePointer = false;
  96430. this._id = VRExperienceHelperGazer._idCounter++;
  96431. // Gaze tracker
  96432. if (!gazeTrackerToClone) {
  96433. this._gazeTracker = BABYLON.Mesh.CreateTorus("gazeTracker", 0.0035, 0.0025, 20, scene, false);
  96434. this._gazeTracker.bakeCurrentTransformIntoVertices();
  96435. this._gazeTracker.isPickable = false;
  96436. this._gazeTracker.isVisible = false;
  96437. var targetMat = new BABYLON.StandardMaterial("targetMat", scene);
  96438. targetMat.specularColor = BABYLON.Color3.Black();
  96439. targetMat.emissiveColor = new BABYLON.Color3(0.7, 0.7, 0.7);
  96440. targetMat.backFaceCulling = false;
  96441. this._gazeTracker.material = targetMat;
  96442. }
  96443. else {
  96444. this._gazeTracker = gazeTrackerToClone.clone("gazeTracker");
  96445. }
  96446. }
  96447. /** @hidden */
  96448. VRExperienceHelperGazer.prototype._getForwardRay = function (length) {
  96449. return new BABYLON.Ray(BABYLON.Vector3.Zero(), new BABYLON.Vector3(0, 0, length));
  96450. };
  96451. /** @hidden */
  96452. VRExperienceHelperGazer.prototype._selectionPointerDown = function () {
  96453. this._pointerDownOnMeshAsked = true;
  96454. if (this._currentHit) {
  96455. this.scene.simulatePointerDown(this._currentHit, { pointerId: this._id });
  96456. }
  96457. };
  96458. /** @hidden */
  96459. VRExperienceHelperGazer.prototype._selectionPointerUp = function () {
  96460. if (this._currentHit) {
  96461. this.scene.simulatePointerUp(this._currentHit, { pointerId: this._id });
  96462. }
  96463. this._pointerDownOnMeshAsked = false;
  96464. };
  96465. /** @hidden */
  96466. VRExperienceHelperGazer.prototype._activatePointer = function () {
  96467. this._activePointer = true;
  96468. };
  96469. /** @hidden */
  96470. VRExperienceHelperGazer.prototype._deactivatePointer = function () {
  96471. this._activePointer = false;
  96472. };
  96473. /** @hidden */
  96474. VRExperienceHelperGazer.prototype._updatePointerDistance = function (distance) {
  96475. if (distance === void 0) { distance = 100; }
  96476. };
  96477. VRExperienceHelperGazer.prototype.dispose = function () {
  96478. this._interactionsEnabled = false;
  96479. this._teleportationEnabled = false;
  96480. if (this._gazeTracker) {
  96481. this._gazeTracker.dispose();
  96482. }
  96483. };
  96484. VRExperienceHelperGazer._idCounter = 0;
  96485. return VRExperienceHelperGazer;
  96486. }());
  96487. var VRExperienceHelperControllerGazer = /** @class */ (function (_super) {
  96488. __extends(VRExperienceHelperControllerGazer, _super);
  96489. function VRExperienceHelperControllerGazer(webVRController, scene, gazeTrackerToClone) {
  96490. var _this = _super.call(this, scene, gazeTrackerToClone) || this;
  96491. _this.webVRController = webVRController;
  96492. // Laser pointer
  96493. _this._laserPointer = BABYLON.Mesh.CreateCylinder("laserPointer", 1, 0.004, 0.0002, 20, 1, scene, false);
  96494. var laserPointerMaterial = new BABYLON.StandardMaterial("laserPointerMat", scene);
  96495. laserPointerMaterial.emissiveColor = new BABYLON.Color3(0.7, 0.7, 0.7);
  96496. laserPointerMaterial.alpha = 0.6;
  96497. _this._laserPointer.material = laserPointerMaterial;
  96498. _this._laserPointer.rotation.x = Math.PI / 2;
  96499. _this._laserPointer.position.z = -0.5;
  96500. _this._laserPointer.isVisible = false;
  96501. _this._laserPointer.isPickable = false;
  96502. if (!webVRController.mesh) {
  96503. // Create an empty mesh that is used prior to loading the high quality model
  96504. var preloadMesh = new BABYLON.Mesh("preloadControllerMesh", scene);
  96505. var preloadPointerPose = new BABYLON.Mesh(BABYLON.PoseEnabledController.POINTING_POSE, scene);
  96506. preloadPointerPose.rotation.x = -0.7;
  96507. preloadMesh.addChild(preloadPointerPose);
  96508. webVRController.attachToMesh(preloadMesh);
  96509. }
  96510. _this._setLaserPointerParent(webVRController.mesh);
  96511. _this._meshAttachedObserver = webVRController._meshAttachedObservable.add(function (mesh) {
  96512. _this._setLaserPointerParent(mesh);
  96513. });
  96514. return _this;
  96515. }
  96516. VRExperienceHelperControllerGazer.prototype._getForwardRay = function (length) {
  96517. return this.webVRController.getForwardRay(length);
  96518. };
  96519. /** @hidden */
  96520. VRExperienceHelperControllerGazer.prototype._activatePointer = function () {
  96521. _super.prototype._activatePointer.call(this);
  96522. this._laserPointer.isVisible = true;
  96523. };
  96524. /** @hidden */
  96525. VRExperienceHelperControllerGazer.prototype._deactivatePointer = function () {
  96526. _super.prototype._deactivatePointer.call(this);
  96527. this._laserPointer.isVisible = false;
  96528. };
  96529. /** @hidden */
  96530. VRExperienceHelperControllerGazer.prototype._setLaserPointerColor = function (color) {
  96531. this._laserPointer.material.emissiveColor = color;
  96532. };
  96533. /** @hidden */
  96534. VRExperienceHelperControllerGazer.prototype._setLaserPointerParent = function (mesh) {
  96535. var makeNotPick = function (root) {
  96536. root.isPickable = false;
  96537. root.getChildMeshes().forEach(function (c) {
  96538. makeNotPick(c);
  96539. });
  96540. };
  96541. makeNotPick(mesh);
  96542. var childMeshes = mesh.getChildMeshes();
  96543. this.webVRController._pointingPoseNode = null;
  96544. for (var i = 0; i < childMeshes.length; i++) {
  96545. if (childMeshes[i].name && childMeshes[i].name.indexOf(BABYLON.PoseEnabledController.POINTING_POSE) >= 0) {
  96546. mesh = childMeshes[i];
  96547. this.webVRController._pointingPoseNode = mesh;
  96548. break;
  96549. }
  96550. }
  96551. this._laserPointer.parent = mesh;
  96552. };
  96553. VRExperienceHelperControllerGazer.prototype._updatePointerDistance = function (distance) {
  96554. if (distance === void 0) { distance = 100; }
  96555. this._laserPointer.scaling.y = distance;
  96556. this._laserPointer.position.z = -distance / 2;
  96557. };
  96558. VRExperienceHelperControllerGazer.prototype.dispose = function () {
  96559. _super.prototype.dispose.call(this);
  96560. this._laserPointer.dispose();
  96561. if (this._meshAttachedObserver) {
  96562. this.webVRController._meshAttachedObservable.remove(this._meshAttachedObserver);
  96563. }
  96564. };
  96565. return VRExperienceHelperControllerGazer;
  96566. }(VRExperienceHelperGazer));
  96567. var VRExperienceHelperCameraGazer = /** @class */ (function (_super) {
  96568. __extends(VRExperienceHelperCameraGazer, _super);
  96569. function VRExperienceHelperCameraGazer(getCamera, scene) {
  96570. var _this = _super.call(this, scene) || this;
  96571. _this.getCamera = getCamera;
  96572. return _this;
  96573. }
  96574. VRExperienceHelperCameraGazer.prototype._getForwardRay = function (length) {
  96575. var camera = this.getCamera();
  96576. if (camera) {
  96577. return camera.getForwardRay(length);
  96578. }
  96579. else {
  96580. return new BABYLON.Ray(BABYLON.Vector3.Zero(), BABYLON.Vector3.Forward());
  96581. }
  96582. };
  96583. return VRExperienceHelperCameraGazer;
  96584. }(VRExperienceHelperGazer));
  96585. /**
  96586. * Helps to quickly add VR support to an existing scene.
  96587. * See http://doc.babylonjs.com/how_to/webvr_helper
  96588. */
  96589. var VRExperienceHelper = /** @class */ (function () {
  96590. /**
  96591. * Instantiates a VRExperienceHelper.
  96592. * Helps to quickly add VR support to an existing scene.
  96593. * @param scene The scene the VRExperienceHelper belongs to.
  96594. * @param webVROptions Options to modify the vr experience helper's behavior.
  96595. */
  96596. function VRExperienceHelper(scene,
  96597. /** Options to modify the vr experience helper's behavior. */
  96598. webVROptions) {
  96599. if (webVROptions === void 0) { webVROptions = {}; }
  96600. var _this = this;
  96601. this.webVROptions = webVROptions;
  96602. // Can the system support WebVR, even if a headset isn't plugged in?
  96603. this._webVRsupported = false;
  96604. // If WebVR is supported, is a headset plugged in and are we ready to present?
  96605. this._webVRready = false;
  96606. // Are we waiting for the requestPresent callback to complete?
  96607. this._webVRrequesting = false;
  96608. // Are we presenting to the headset right now? (this is the vrDevice state)
  96609. this._webVRpresenting = false;
  96610. // Are we presenting in the fullscreen fallback?
  96611. this._fullscreenVRpresenting = false;
  96612. /**
  96613. * Observable raised when entering VR.
  96614. */
  96615. this.onEnteringVRObservable = new BABYLON.Observable();
  96616. /**
  96617. * Observable raised when exiting VR.
  96618. */
  96619. this.onExitingVRObservable = new BABYLON.Observable();
  96620. /**
  96621. * Observable raised when controller mesh is loaded.
  96622. */
  96623. this.onControllerMeshLoadedObservable = new BABYLON.Observable();
  96624. this._useCustomVRButton = false;
  96625. this._teleportationRequested = false;
  96626. this._teleportActive = false;
  96627. this._floorMeshesCollection = [];
  96628. this._rotationAllowed = true;
  96629. this._teleportBackwardsVector = new BABYLON.Vector3(0, -1, -1);
  96630. this._isDefaultTeleportationTarget = true;
  96631. this._teleportationFillColor = "#444444";
  96632. this._teleportationBorderColor = "#FFFFFF";
  96633. this._rotationAngle = 0;
  96634. this._haloCenter = new BABYLON.Vector3(0, 0, 0);
  96635. this._padSensibilityUp = 0.65;
  96636. this._padSensibilityDown = 0.35;
  96637. this._leftController = null;
  96638. this._rightController = null;
  96639. /**
  96640. * Observable raised when a new mesh is selected based on meshSelectionPredicate
  96641. */
  96642. this.onNewMeshSelected = new BABYLON.Observable();
  96643. /**
  96644. * Observable raised when a new mesh is picked based on meshSelectionPredicate
  96645. */
  96646. this.onNewMeshPicked = new BABYLON.Observable();
  96647. /**
  96648. * Observable raised before camera teleportation
  96649. */
  96650. this.onBeforeCameraTeleport = new BABYLON.Observable();
  96651. /**
  96652. * Observable raised after camera teleportation
  96653. */
  96654. this.onAfterCameraTeleport = new BABYLON.Observable();
  96655. /**
  96656. * Observable raised when current selected mesh gets unselected
  96657. */
  96658. this.onSelectedMeshUnselected = new BABYLON.Observable();
  96659. /**
  96660. * Set teleportation enabled. If set to false camera teleportation will be disabled but camera rotation will be kept.
  96661. */
  96662. this.teleportationEnabled = true;
  96663. this._teleportationInitialized = false;
  96664. this._interactionsEnabled = false;
  96665. this._interactionsRequested = false;
  96666. this._displayGaze = true;
  96667. this._displayLaserPointer = true;
  96668. /**
  96669. * If the gaze trackers scale should be updated to be constant size when pointing at near/far meshes
  96670. */
  96671. this.updateGazeTrackerScale = true;
  96672. this._onResize = function () {
  96673. _this.moveButtonToBottomRight();
  96674. if (_this._fullscreenVRpresenting && _this._webVRready) {
  96675. _this.exitVR();
  96676. }
  96677. };
  96678. this._onFullscreenChange = function () {
  96679. if (document.fullscreen !== undefined) {
  96680. _this._fullscreenVRpresenting = document.fullscreen;
  96681. }
  96682. else if (document.mozFullScreen !== undefined) {
  96683. _this._fullscreenVRpresenting = document.mozFullScreen;
  96684. }
  96685. else if (document.webkitIsFullScreen !== undefined) {
  96686. _this._fullscreenVRpresenting = document.webkitIsFullScreen;
  96687. }
  96688. else if (document.msIsFullScreen !== undefined) {
  96689. _this._fullscreenVRpresenting = document.msIsFullScreen;
  96690. }
  96691. else if (document.msFullscreenElement !== undefined) {
  96692. _this._fullscreenVRpresenting = document.msFullscreenElement;
  96693. }
  96694. if (!_this._fullscreenVRpresenting && _this._canvas) {
  96695. _this.exitVR();
  96696. if (!_this._useCustomVRButton) {
  96697. _this._btnVR.style.top = _this._canvas.offsetTop + _this._canvas.offsetHeight - 70 + "px";
  96698. _this._btnVR.style.left = _this._canvas.offsetLeft + _this._canvas.offsetWidth - 100 + "px";
  96699. }
  96700. }
  96701. };
  96702. this.beforeRender = function () {
  96703. if (_this._leftController && _this._leftController._activePointer) {
  96704. _this._castRayAndSelectObject(_this._leftController);
  96705. }
  96706. if (_this._rightController && _this._rightController._activePointer) {
  96707. _this._castRayAndSelectObject(_this._rightController);
  96708. }
  96709. if (_this._noControllerIsActive) {
  96710. _this._castRayAndSelectObject(_this._cameraGazer);
  96711. }
  96712. else {
  96713. _this._cameraGazer._gazeTracker.isVisible = false;
  96714. }
  96715. };
  96716. this._onNewGamepadConnected = function (gamepad) {
  96717. if (gamepad.type !== BABYLON.Gamepad.POSE_ENABLED) {
  96718. if (gamepad.leftStick) {
  96719. gamepad.onleftstickchanged(function (stickValues) {
  96720. if (_this._teleportationInitialized && _this.teleportationEnabled) {
  96721. // Listening to classic/xbox gamepad only if no VR controller is active
  96722. if ((!_this._leftController && !_this._rightController) ||
  96723. ((_this._leftController && !_this._leftController._activePointer) &&
  96724. (_this._rightController && !_this._rightController._activePointer))) {
  96725. _this._checkTeleportWithRay(stickValues, _this._cameraGazer);
  96726. _this._checkTeleportBackwards(stickValues, _this._cameraGazer);
  96727. }
  96728. }
  96729. });
  96730. }
  96731. if (gamepad.rightStick) {
  96732. gamepad.onrightstickchanged(function (stickValues) {
  96733. if (_this._teleportationInitialized) {
  96734. _this._checkRotate(stickValues, _this._cameraGazer);
  96735. }
  96736. });
  96737. }
  96738. if (gamepad.type === BABYLON.Gamepad.XBOX) {
  96739. gamepad.onbuttondown(function (buttonPressed) {
  96740. if (_this._interactionsEnabled && buttonPressed === BABYLON.Xbox360Button.A) {
  96741. _this._cameraGazer._selectionPointerDown();
  96742. }
  96743. });
  96744. gamepad.onbuttonup(function (buttonPressed) {
  96745. if (_this._interactionsEnabled && buttonPressed === BABYLON.Xbox360Button.A) {
  96746. _this._cameraGazer._selectionPointerUp();
  96747. }
  96748. });
  96749. }
  96750. }
  96751. else {
  96752. var webVRController = gamepad;
  96753. var controller = new VRExperienceHelperControllerGazer(webVRController, _this._scene, _this._cameraGazer._gazeTracker);
  96754. if (webVRController.hand === "right" || (_this._leftController && _this._leftController.webVRController != webVRController)) {
  96755. _this._rightController = controller;
  96756. }
  96757. else {
  96758. _this._leftController = controller;
  96759. }
  96760. _this._tryEnableInteractionOnController(controller);
  96761. }
  96762. };
  96763. // This only succeeds if the controller's mesh exists for the controller so this must be called whenever new controller is connected or when mesh is loaded
  96764. this._tryEnableInteractionOnController = function (controller) {
  96765. if (_this._interactionsRequested && !controller._interactionsEnabled) {
  96766. _this._enableInteractionOnController(controller);
  96767. }
  96768. if (_this._teleportationRequested && !controller._teleportationEnabled) {
  96769. _this._enableTeleportationOnController(controller);
  96770. }
  96771. };
  96772. this._onNewGamepadDisconnected = function (gamepad) {
  96773. if (gamepad instanceof BABYLON.WebVRController) {
  96774. if (gamepad.hand === "left" && _this._leftController != null) {
  96775. _this._leftController.dispose();
  96776. _this._leftController = null;
  96777. }
  96778. if (gamepad.hand === "right" && _this._rightController != null) {
  96779. _this._rightController.dispose();
  96780. _this._rightController = null;
  96781. }
  96782. }
  96783. };
  96784. this._workingVector = BABYLON.Vector3.Zero();
  96785. this._workingQuaternion = BABYLON.Quaternion.Identity();
  96786. this._workingMatrix = BABYLON.Matrix.Identity();
  96787. this._scene = scene;
  96788. this._canvas = scene.getEngine().getRenderingCanvas();
  96789. // Parse options
  96790. if (webVROptions.createFallbackVRDeviceOrientationFreeCamera === undefined) {
  96791. webVROptions.createFallbackVRDeviceOrientationFreeCamera = true;
  96792. }
  96793. if (webVROptions.createDeviceOrientationCamera === undefined) {
  96794. webVROptions.createDeviceOrientationCamera = true;
  96795. }
  96796. if (webVROptions.laserToggle === undefined) {
  96797. webVROptions.laserToggle = true;
  96798. }
  96799. if (webVROptions.defaultHeight === undefined) {
  96800. webVROptions.defaultHeight = 1.7;
  96801. }
  96802. if (webVROptions.useCustomVRButton) {
  96803. this._useCustomVRButton = true;
  96804. if (webVROptions.customVRButton) {
  96805. this._btnVR = webVROptions.customVRButton;
  96806. }
  96807. }
  96808. if (webVROptions.rayLength) {
  96809. this._rayLength = webVROptions.rayLength;
  96810. }
  96811. this._defaultHeight = webVROptions.defaultHeight;
  96812. if (webVROptions.positionScale) {
  96813. this._rayLength *= webVROptions.positionScale;
  96814. this._defaultHeight *= webVROptions.positionScale;
  96815. }
  96816. this._hasEnteredVR = false;
  96817. // Set position
  96818. if (this._scene.activeCamera) {
  96819. this._position = this._scene.activeCamera.position.clone();
  96820. }
  96821. else {
  96822. this._position = new BABYLON.Vector3(0, this._defaultHeight, 0);
  96823. }
  96824. // Set non-vr camera
  96825. if (webVROptions.createDeviceOrientationCamera || !this._scene.activeCamera) {
  96826. this._deviceOrientationCamera = new BABYLON.DeviceOrientationCamera("deviceOrientationVRHelper", this._position.clone(), scene);
  96827. // Copy data from existing camera
  96828. if (this._scene.activeCamera) {
  96829. this._deviceOrientationCamera.minZ = this._scene.activeCamera.minZ;
  96830. this._deviceOrientationCamera.maxZ = this._scene.activeCamera.maxZ;
  96831. // Set rotation from previous camera
  96832. if (this._scene.activeCamera instanceof BABYLON.TargetCamera && this._scene.activeCamera.rotation) {
  96833. var targetCamera = this._scene.activeCamera;
  96834. if (targetCamera.rotationQuaternion) {
  96835. this._deviceOrientationCamera.rotationQuaternion.copyFrom(targetCamera.rotationQuaternion);
  96836. }
  96837. else {
  96838. this._deviceOrientationCamera.rotationQuaternion.copyFrom(BABYLON.Quaternion.RotationYawPitchRoll(targetCamera.rotation.y, targetCamera.rotation.x, targetCamera.rotation.z));
  96839. }
  96840. this._deviceOrientationCamera.rotation = targetCamera.rotation.clone();
  96841. }
  96842. }
  96843. this._scene.activeCamera = this._deviceOrientationCamera;
  96844. if (this._canvas) {
  96845. this._scene.activeCamera.attachControl(this._canvas);
  96846. }
  96847. }
  96848. else {
  96849. this._existingCamera = this._scene.activeCamera;
  96850. }
  96851. // Create VR cameras
  96852. if (webVROptions.createFallbackVRDeviceOrientationFreeCamera) {
  96853. this._vrDeviceOrientationCamera = new BABYLON.VRDeviceOrientationFreeCamera("VRDeviceOrientationVRHelper", this._position, this._scene);
  96854. }
  96855. this._webVRCamera = new BABYLON.WebVRFreeCamera("WebVRHelper", this._position, this._scene, webVROptions);
  96856. this._webVRCamera.useStandingMatrix();
  96857. this._cameraGazer = new VRExperienceHelperCameraGazer(function () { return _this.currentVRCamera; }, scene);
  96858. // Create default button
  96859. if (!this._useCustomVRButton) {
  96860. this._btnVR = document.createElement("BUTTON");
  96861. this._btnVR.className = "babylonVRicon";
  96862. this._btnVR.id = "babylonVRiconbtn";
  96863. this._btnVR.title = "Click to switch to VR";
  96864. var css = ".babylonVRicon { position: absolute; right: 20px; height: 50px; width: 80px; background-color: rgba(51,51,51,0.7); background-image: url(data:image/svg+xml;charset=UTF-8,%3Csvg%20xmlns%3D%22http%3A//www.w3.org/2000/svg%22%20width%3D%222048%22%20height%3D%221152%22%20viewBox%3D%220%200%202048%201152%22%20version%3D%221.1%22%3E%3Cpath%20transform%3D%22rotate%28180%201024%2C576.0000000000001%29%22%20d%3D%22m1109%2C896q17%2C0%2030%2C-12t13%2C-30t-12.5%2C-30.5t-30.5%2C-12.5l-170%2C0q-18%2C0%20-30.5%2C12.5t-12.5%2C30.5t13%2C30t30%2C12l170%2C0zm-85%2C256q59%2C0%20132.5%2C-1.5t154.5%2C-5.5t164.5%2C-11.5t163%2C-20t150%2C-30t124.5%2C-41.5q23%2C-11%2042%2C-24t38%2C-30q27%2C-25%2041%2C-61.5t14%2C-72.5l0%2C-257q0%2C-123%20-47%2C-232t-128%2C-190t-190%2C-128t-232%2C-47l-81%2C0q-37%2C0%20-68.5%2C14t-60.5%2C34.5t-55.5%2C45t-53%2C45t-53%2C34.5t-55.5%2C14t-55.5%2C-14t-53%2C-34.5t-53%2C-45t-55.5%2C-45t-60.5%2C-34.5t-68.5%2C-14l-81%2C0q-123%2C0%20-232%2C47t-190%2C128t-128%2C190t-47%2C232l0%2C257q0%2C68%2038%2C115t97%2C73q54%2C24%20124.5%2C41.5t150%2C30t163%2C20t164.5%2C11.5t154.5%2C5.5t132.5%2C1.5zm939%2C-298q0%2C39%20-24.5%2C67t-58.5%2C42q-54%2C23%20-122%2C39.5t-143.5%2C28t-155.5%2C19t-157%2C11t-148.5%2C5t-129.5%2C1.5q-59%2C0%20-130%2C-1.5t-148%2C-5t-157%2C-11t-155.5%2C-19t-143.5%2C-28t-122%2C-39.5q-34%2C-14%20-58.5%2C-42t-24.5%2C-67l0%2C-257q0%2C-106%2040.5%2C-199t110%2C-162.5t162.5%2C-109.5t199%2C-40l81%2C0q27%2C0%2052%2C14t50%2C34.5t51%2C44.5t55.5%2C44.5t63.5%2C34.5t74%2C14t74%2C-14t63.5%2C-34.5t55.5%2C-44.5t51%2C-44.5t50%2C-34.5t52%2C-14l14%2C0q37%2C0%2070%2C0.5t64.5%2C4.5t63.5%2C12t68%2C23q71%2C30%20128.5%2C78.5t98.5%2C110t63.5%2C133.5t22.5%2C149l0%2C257z%22%20fill%3D%22white%22%20/%3E%3C/svg%3E%0A); background-size: 80%; background-repeat:no-repeat; background-position: center; border: none; outline: none; transition: transform 0.125s ease-out } .babylonVRicon:hover { transform: scale(1.05) } .babylonVRicon:active {background-color: rgba(51,51,51,1) } .babylonVRicon:focus {background-color: rgba(51,51,51,1) }";
  96865. css += ".babylonVRicon.vrdisplaypresenting { display: none; }";
  96866. // TODO: Add user feedback so that they know what state the VRDisplay is in (disconnected, connected, entering-VR)
  96867. // css += ".babylonVRicon.vrdisplaysupported { }";
  96868. // css += ".babylonVRicon.vrdisplayready { }";
  96869. // css += ".babylonVRicon.vrdisplayrequesting { }";
  96870. var style = document.createElement('style');
  96871. style.appendChild(document.createTextNode(css));
  96872. document.getElementsByTagName('head')[0].appendChild(style);
  96873. this.moveButtonToBottomRight();
  96874. }
  96875. // VR button click event
  96876. if (this._btnVR) {
  96877. this._btnVR.addEventListener("click", function () {
  96878. if (!_this.isInVRMode) {
  96879. _this.enterVR();
  96880. }
  96881. else {
  96882. _this.exitVR();
  96883. }
  96884. });
  96885. }
  96886. // Window events
  96887. window.addEventListener("resize", this._onResize);
  96888. document.addEventListener("fullscreenchange", this._onFullscreenChange, false);
  96889. document.addEventListener("mozfullscreenchange", this._onFullscreenChange, false);
  96890. document.addEventListener("webkitfullscreenchange", this._onFullscreenChange, false);
  96891. document.addEventListener("msfullscreenchange", this._onFullscreenChange, false);
  96892. document.onmsfullscreenchange = this._onFullscreenChange;
  96893. // Display vr button when headset is connected
  96894. if (webVROptions.createFallbackVRDeviceOrientationFreeCamera) {
  96895. this.displayVRButton();
  96896. }
  96897. else {
  96898. this._scene.getEngine().onVRDisplayChangedObservable.add(function (e) {
  96899. if (e.vrDisplay) {
  96900. _this.displayVRButton();
  96901. }
  96902. });
  96903. }
  96904. // Exiting VR mode using 'ESC' key on desktop
  96905. this._onKeyDown = function (event) {
  96906. if (event.keyCode === 27 && _this.isInVRMode) {
  96907. _this.exitVR();
  96908. }
  96909. };
  96910. document.addEventListener("keydown", this._onKeyDown);
  96911. // Exiting VR mode double tapping the touch screen
  96912. this._scene.onPrePointerObservable.add(function (pointerInfo, eventState) {
  96913. if (_this.isInVRMode) {
  96914. _this.exitVR();
  96915. if (_this._fullscreenVRpresenting) {
  96916. _this._scene.getEngine().switchFullscreen(true);
  96917. }
  96918. }
  96919. }, BABYLON.PointerEventTypes.POINTERDOUBLETAP, false);
  96920. // Listen for WebVR display changes
  96921. this._onVRDisplayChanged = function (eventArgs) { return _this.onVRDisplayChanged(eventArgs); };
  96922. this._onVrDisplayPresentChange = function () { return _this.onVrDisplayPresentChange(); };
  96923. this._onVRRequestPresentStart = function () {
  96924. _this._webVRrequesting = true;
  96925. _this.updateButtonVisibility();
  96926. };
  96927. this._onVRRequestPresentComplete = function (success) {
  96928. _this._webVRrequesting = false;
  96929. _this.updateButtonVisibility();
  96930. };
  96931. scene.getEngine().onVRDisplayChangedObservable.add(this._onVRDisplayChanged);
  96932. scene.getEngine().onVRRequestPresentStart.add(this._onVRRequestPresentStart);
  96933. scene.getEngine().onVRRequestPresentComplete.add(this._onVRRequestPresentComplete);
  96934. window.addEventListener('vrdisplaypresentchange', this._onVrDisplayPresentChange);
  96935. scene.onDisposeObservable.add(function () {
  96936. _this.dispose();
  96937. });
  96938. // Gamepad connection events
  96939. this._webVRCamera.onControllerMeshLoadedObservable.add(function (webVRController) { return _this._onDefaultMeshLoaded(webVRController); });
  96940. this._scene.gamepadManager.onGamepadConnectedObservable.add(this._onNewGamepadConnected);
  96941. this._scene.gamepadManager.onGamepadDisconnectedObservable.add(this._onNewGamepadDisconnected);
  96942. this.updateButtonVisibility();
  96943. //create easing functions
  96944. this._circleEase = new BABYLON.CircleEase();
  96945. this._circleEase.setEasingMode(BABYLON.EasingFunction.EASINGMODE_EASEINOUT);
  96946. if (this.webVROptions.floorMeshes) {
  96947. this.enableTeleportation({ floorMeshes: this.webVROptions.floorMeshes });
  96948. }
  96949. }
  96950. Object.defineProperty(VRExperienceHelper.prototype, "onEnteringVR", {
  96951. /** Return this.onEnteringVRObservable
  96952. * Note: This one is for backward compatibility. Please use onEnteringVRObservable directly
  96953. */
  96954. get: function () {
  96955. return this.onEnteringVRObservable;
  96956. },
  96957. enumerable: true,
  96958. configurable: true
  96959. });
  96960. Object.defineProperty(VRExperienceHelper.prototype, "onExitingVR", {
  96961. /** Return this.onExitingVRObservable
  96962. * Note: This one is for backward compatibility. Please use onExitingVRObservable directly
  96963. */
  96964. get: function () {
  96965. return this.onExitingVRObservable;
  96966. },
  96967. enumerable: true,
  96968. configurable: true
  96969. });
  96970. Object.defineProperty(VRExperienceHelper.prototype, "onControllerMeshLoaded", {
  96971. /** Return this.onControllerMeshLoadedObservable
  96972. * Note: This one is for backward compatibility. Please use onControllerMeshLoadedObservable directly
  96973. */
  96974. get: function () {
  96975. return this.onControllerMeshLoadedObservable;
  96976. },
  96977. enumerable: true,
  96978. configurable: true
  96979. });
  96980. Object.defineProperty(VRExperienceHelper.prototype, "teleportationTarget", {
  96981. /**
  96982. * The mesh used to display where the user is going to teleport.
  96983. */
  96984. get: function () {
  96985. return this._teleportationTarget;
  96986. },
  96987. /**
  96988. * Sets the mesh to be used to display where the user is going to teleport.
  96989. */
  96990. set: function (value) {
  96991. if (value) {
  96992. value.name = "teleportationTarget";
  96993. this._isDefaultTeleportationTarget = false;
  96994. this._teleportationTarget = value;
  96995. }
  96996. },
  96997. enumerable: true,
  96998. configurable: true
  96999. });
  97000. Object.defineProperty(VRExperienceHelper.prototype, "gazeTrackerMesh", {
  97001. /**
  97002. * The mesh used to display where the user is selecting, this mesh will be cloned and set as the gazeTracker for the left and right controller
  97003. * when set bakeCurrentTransformIntoVertices will be called on the mesh.
  97004. * See http://doc.babylonjs.com/resources/baking_transformations
  97005. */
  97006. get: function () {
  97007. return this._cameraGazer._gazeTracker;
  97008. },
  97009. set: function (value) {
  97010. if (value) {
  97011. // Dispose of existing meshes
  97012. if (this._cameraGazer._gazeTracker) {
  97013. this._cameraGazer._gazeTracker.dispose();
  97014. }
  97015. if (this._leftController && this._leftController._gazeTracker) {
  97016. this._leftController._gazeTracker.dispose();
  97017. }
  97018. if (this._rightController && this._rightController._gazeTracker) {
  97019. this._rightController._gazeTracker.dispose();
  97020. }
  97021. // Set and create gaze trackers on head and controllers
  97022. this._cameraGazer._gazeTracker = value;
  97023. this._cameraGazer._gazeTracker.bakeCurrentTransformIntoVertices();
  97024. this._cameraGazer._gazeTracker.isPickable = false;
  97025. this._cameraGazer._gazeTracker.isVisible = false;
  97026. this._cameraGazer._gazeTracker.name = "gazeTracker";
  97027. if (this._leftController) {
  97028. this._leftController._gazeTracker = this._cameraGazer._gazeTracker.clone("gazeTracker");
  97029. }
  97030. if (this._rightController) {
  97031. this._rightController._gazeTracker = this._cameraGazer._gazeTracker.clone("gazeTracker");
  97032. }
  97033. }
  97034. },
  97035. enumerable: true,
  97036. configurable: true
  97037. });
  97038. Object.defineProperty(VRExperienceHelper.prototype, "leftControllerGazeTrackerMesh", {
  97039. /**
  97040. * The gaze tracking mesh corresponding to the left controller
  97041. */
  97042. get: function () {
  97043. if (this._leftController) {
  97044. return this._leftController._gazeTracker;
  97045. }
  97046. return null;
  97047. },
  97048. enumerable: true,
  97049. configurable: true
  97050. });
  97051. Object.defineProperty(VRExperienceHelper.prototype, "rightControllerGazeTrackerMesh", {
  97052. /**
  97053. * The gaze tracking mesh corresponding to the right controller
  97054. */
  97055. get: function () {
  97056. if (this._rightController) {
  97057. return this._rightController._gazeTracker;
  97058. }
  97059. return null;
  97060. },
  97061. enumerable: true,
  97062. configurable: true
  97063. });
  97064. Object.defineProperty(VRExperienceHelper.prototype, "displayGaze", {
  97065. /**
  97066. * If the ray of the gaze should be displayed.
  97067. */
  97068. get: function () {
  97069. return this._displayGaze;
  97070. },
  97071. /**
  97072. * Sets if the ray of the gaze should be displayed.
  97073. */
  97074. set: function (value) {
  97075. this._displayGaze = value;
  97076. if (!value) {
  97077. this._cameraGazer._gazeTracker.isVisible = false;
  97078. if (this._leftController) {
  97079. this._leftController._gazeTracker.isVisible = false;
  97080. }
  97081. if (this._rightController) {
  97082. this._rightController._gazeTracker.isVisible = false;
  97083. }
  97084. }
  97085. },
  97086. enumerable: true,
  97087. configurable: true
  97088. });
  97089. Object.defineProperty(VRExperienceHelper.prototype, "displayLaserPointer", {
  97090. /**
  97091. * If the ray of the LaserPointer should be displayed.
  97092. */
  97093. get: function () {
  97094. return this._displayLaserPointer;
  97095. },
  97096. /**
  97097. * Sets if the ray of the LaserPointer should be displayed.
  97098. */
  97099. set: function (value) {
  97100. this._displayLaserPointer = value;
  97101. if (!value) {
  97102. if (this._rightController) {
  97103. this._rightController._deactivatePointer();
  97104. this._rightController._gazeTracker.isVisible = false;
  97105. }
  97106. if (this._leftController) {
  97107. this._leftController._deactivatePointer();
  97108. this._leftController._gazeTracker.isVisible = false;
  97109. }
  97110. }
  97111. else {
  97112. if (this._rightController) {
  97113. this._rightController._activatePointer();
  97114. }
  97115. if (this._leftController) {
  97116. this._leftController._activatePointer();
  97117. }
  97118. }
  97119. },
  97120. enumerable: true,
  97121. configurable: true
  97122. });
  97123. Object.defineProperty(VRExperienceHelper.prototype, "deviceOrientationCamera", {
  97124. /**
  97125. * The deviceOrientationCamera used as the camera when not in VR.
  97126. */
  97127. get: function () {
  97128. return this._deviceOrientationCamera;
  97129. },
  97130. enumerable: true,
  97131. configurable: true
  97132. });
  97133. Object.defineProperty(VRExperienceHelper.prototype, "currentVRCamera", {
  97134. /**
  97135. * Based on the current WebVR support, returns the current VR camera used.
  97136. */
  97137. get: function () {
  97138. if (this._webVRready) {
  97139. return this._webVRCamera;
  97140. }
  97141. else {
  97142. return this._scene.activeCamera;
  97143. }
  97144. },
  97145. enumerable: true,
  97146. configurable: true
  97147. });
  97148. Object.defineProperty(VRExperienceHelper.prototype, "webVRCamera", {
  97149. /**
  97150. * The webVRCamera which is used when in VR.
  97151. */
  97152. get: function () {
  97153. return this._webVRCamera;
  97154. },
  97155. enumerable: true,
  97156. configurable: true
  97157. });
  97158. Object.defineProperty(VRExperienceHelper.prototype, "vrDeviceOrientationCamera", {
  97159. /**
  97160. * The deviceOrientationCamera that is used as a fallback when vr device is not connected.
  97161. */
  97162. get: function () {
  97163. return this._vrDeviceOrientationCamera;
  97164. },
  97165. enumerable: true,
  97166. configurable: true
  97167. });
  97168. Object.defineProperty(VRExperienceHelper.prototype, "_teleportationRequestInitiated", {
  97169. get: function () {
  97170. var result = this._cameraGazer._teleportationRequestInitiated
  97171. || (this._leftController !== null && this._leftController._teleportationRequestInitiated)
  97172. || (this._rightController !== null && this._rightController._teleportationRequestInitiated);
  97173. return result;
  97174. },
  97175. enumerable: true,
  97176. configurable: true
  97177. });
  97178. // Raised when one of the controller has loaded successfully its associated default mesh
  97179. VRExperienceHelper.prototype._onDefaultMeshLoaded = function (webVRController) {
  97180. if (this._leftController && this._leftController.webVRController == webVRController) {
  97181. if (webVRController.mesh) {
  97182. this._leftController._setLaserPointerParent(webVRController.mesh);
  97183. }
  97184. }
  97185. if (this._rightController && this._rightController.webVRController == webVRController) {
  97186. if (webVRController.mesh) {
  97187. this._rightController._setLaserPointerParent(webVRController.mesh);
  97188. }
  97189. }
  97190. try {
  97191. this.onControllerMeshLoadedObservable.notifyObservers(webVRController);
  97192. }
  97193. catch (err) {
  97194. BABYLON.Tools.Warn("Error in your custom logic onControllerMeshLoaded: " + err);
  97195. }
  97196. };
  97197. Object.defineProperty(VRExperienceHelper.prototype, "isInVRMode", {
  97198. /**
  97199. * Gets a value indicating if we are currently in VR mode.
  97200. */
  97201. get: function () {
  97202. return this._webVRpresenting || this._fullscreenVRpresenting;
  97203. },
  97204. enumerable: true,
  97205. configurable: true
  97206. });
  97207. VRExperienceHelper.prototype.onVrDisplayPresentChange = function () {
  97208. var vrDisplay = this._scene.getEngine().getVRDevice();
  97209. if (vrDisplay) {
  97210. var wasPresenting = this._webVRpresenting;
  97211. this._webVRpresenting = vrDisplay.isPresenting;
  97212. if (wasPresenting && !this._webVRpresenting)
  97213. this.exitVR();
  97214. }
  97215. else {
  97216. BABYLON.Tools.Warn('Detected VRDisplayPresentChange on an unknown VRDisplay. Did you can enterVR on the vrExperienceHelper?');
  97217. }
  97218. this.updateButtonVisibility();
  97219. };
  97220. VRExperienceHelper.prototype.onVRDisplayChanged = function (eventArgs) {
  97221. this._webVRsupported = eventArgs.vrSupported;
  97222. this._webVRready = !!eventArgs.vrDisplay;
  97223. this._webVRpresenting = eventArgs.vrDisplay && eventArgs.vrDisplay.isPresenting;
  97224. this.updateButtonVisibility();
  97225. };
  97226. VRExperienceHelper.prototype.moveButtonToBottomRight = function () {
  97227. if (this._canvas && !this._useCustomVRButton) {
  97228. this._btnVR.style.top = this._canvas.offsetTop + this._canvas.offsetHeight - 70 + "px";
  97229. this._btnVR.style.left = this._canvas.offsetLeft + this._canvas.offsetWidth - 100 + "px";
  97230. }
  97231. };
  97232. VRExperienceHelper.prototype.displayVRButton = function () {
  97233. if (!this._useCustomVRButton && !this._btnVRDisplayed) {
  97234. document.body.appendChild(this._btnVR);
  97235. this._btnVRDisplayed = true;
  97236. }
  97237. };
  97238. VRExperienceHelper.prototype.updateButtonVisibility = function () {
  97239. if (!this._btnVR || this._useCustomVRButton) {
  97240. return;
  97241. }
  97242. this._btnVR.className = "babylonVRicon";
  97243. if (this.isInVRMode) {
  97244. this._btnVR.className += " vrdisplaypresenting";
  97245. }
  97246. else {
  97247. if (this._webVRready)
  97248. this._btnVR.className += " vrdisplayready";
  97249. if (this._webVRsupported)
  97250. this._btnVR.className += " vrdisplaysupported";
  97251. if (this._webVRrequesting)
  97252. this._btnVR.className += " vrdisplayrequesting";
  97253. }
  97254. };
  97255. /**
  97256. * Attempt to enter VR. If a headset is connected and ready, will request present on that.
  97257. * Otherwise, will use the fullscreen API.
  97258. */
  97259. VRExperienceHelper.prototype.enterVR = function () {
  97260. if (this.onEnteringVRObservable) {
  97261. try {
  97262. this.onEnteringVRObservable.notifyObservers(this);
  97263. }
  97264. catch (err) {
  97265. BABYLON.Tools.Warn("Error in your custom logic onEnteringVR: " + err);
  97266. }
  97267. }
  97268. if (this._scene.activeCamera) {
  97269. this._position = this._scene.activeCamera.position.clone();
  97270. // make sure that we return to the last active camera
  97271. this._existingCamera = this._scene.activeCamera;
  97272. }
  97273. if (this._webVRrequesting)
  97274. return;
  97275. // If WebVR is supported and a headset is connected
  97276. if (this._webVRready) {
  97277. if (!this._webVRpresenting) {
  97278. this._webVRCamera.position = this._position;
  97279. this._scene.activeCamera = this._webVRCamera;
  97280. }
  97281. }
  97282. else if (this._vrDeviceOrientationCamera) {
  97283. this._vrDeviceOrientationCamera.position = this._position;
  97284. if (this._scene.activeCamera) {
  97285. this._vrDeviceOrientationCamera.minZ = this._scene.activeCamera.minZ;
  97286. }
  97287. this._scene.activeCamera = this._vrDeviceOrientationCamera;
  97288. this._scene.getEngine().switchFullscreen(true);
  97289. this.updateButtonVisibility();
  97290. }
  97291. if (this._scene.activeCamera && this._canvas) {
  97292. this._scene.activeCamera.attachControl(this._canvas);
  97293. }
  97294. if (this._interactionsEnabled) {
  97295. this._scene.registerBeforeRender(this.beforeRender);
  97296. }
  97297. this._hasEnteredVR = true;
  97298. };
  97299. /**
  97300. * Attempt to exit VR, or fullscreen.
  97301. */
  97302. VRExperienceHelper.prototype.exitVR = function () {
  97303. if (this._hasEnteredVR) {
  97304. if (this.onExitingVRObservable) {
  97305. try {
  97306. this.onExitingVRObservable.notifyObservers(this);
  97307. }
  97308. catch (err) {
  97309. BABYLON.Tools.Warn("Error in your custom logic onExitingVR: " + err);
  97310. }
  97311. }
  97312. if (this._webVRpresenting) {
  97313. this._scene.getEngine().disableVR();
  97314. }
  97315. if (this._scene.activeCamera) {
  97316. this._position = this._scene.activeCamera.position.clone();
  97317. }
  97318. if (this._deviceOrientationCamera) {
  97319. this._deviceOrientationCamera.position = this._position;
  97320. this._scene.activeCamera = this._deviceOrientationCamera;
  97321. if (this._canvas) {
  97322. this._scene.activeCamera.attachControl(this._canvas);
  97323. }
  97324. }
  97325. else if (this._existingCamera) {
  97326. this._existingCamera.position = this._position;
  97327. this._scene.activeCamera = this._existingCamera;
  97328. }
  97329. this.updateButtonVisibility();
  97330. if (this._interactionsEnabled) {
  97331. this._scene.unregisterBeforeRender(this.beforeRender);
  97332. this._cameraGazer._gazeTracker.isVisible = false;
  97333. if (this._leftController) {
  97334. this._leftController._gazeTracker.isVisible = false;
  97335. }
  97336. if (this._rightController) {
  97337. this._rightController._gazeTracker.isVisible = false;
  97338. }
  97339. }
  97340. // resize to update width and height when exiting vr exits fullscreen
  97341. this._scene.getEngine().resize();
  97342. this._hasEnteredVR = false;
  97343. }
  97344. };
  97345. Object.defineProperty(VRExperienceHelper.prototype, "position", {
  97346. /**
  97347. * The position of the vr experience helper.
  97348. */
  97349. get: function () {
  97350. return this._position;
  97351. },
  97352. /**
  97353. * Sets the position of the vr experience helper.
  97354. */
  97355. set: function (value) {
  97356. this._position = value;
  97357. if (this._scene.activeCamera) {
  97358. this._scene.activeCamera.position = value;
  97359. }
  97360. },
  97361. enumerable: true,
  97362. configurable: true
  97363. });
  97364. /**
  97365. * Enables controllers and user interactions such as selecting and object or clicking on an object.
  97366. */
  97367. VRExperienceHelper.prototype.enableInteractions = function () {
  97368. var _this = this;
  97369. if (!this._interactionsEnabled) {
  97370. this._interactionsRequested = true;
  97371. if (this._leftController) {
  97372. this._enableInteractionOnController(this._leftController);
  97373. }
  97374. if (this._rightController) {
  97375. this._enableInteractionOnController(this._rightController);
  97376. }
  97377. this.raySelectionPredicate = function (mesh) {
  97378. return mesh.isVisible && (mesh.isPickable || mesh.name === _this._floorMeshName);
  97379. };
  97380. this.meshSelectionPredicate = function (mesh) {
  97381. return true;
  97382. };
  97383. this._raySelectionPredicate = function (mesh) {
  97384. if (_this._isTeleportationFloor(mesh) || (mesh.name.indexOf("gazeTracker") === -1
  97385. && mesh.name.indexOf("teleportationTarget") === -1
  97386. && mesh.name.indexOf("torusTeleportation") === -1)) {
  97387. return _this.raySelectionPredicate(mesh);
  97388. }
  97389. return false;
  97390. };
  97391. this._interactionsEnabled = true;
  97392. }
  97393. };
  97394. Object.defineProperty(VRExperienceHelper.prototype, "_noControllerIsActive", {
  97395. get: function () {
  97396. return !(this._leftController && this._leftController._activePointer) && !(this._rightController && this._rightController._activePointer);
  97397. },
  97398. enumerable: true,
  97399. configurable: true
  97400. });
  97401. VRExperienceHelper.prototype._isTeleportationFloor = function (mesh) {
  97402. for (var i = 0; i < this._floorMeshesCollection.length; i++) {
  97403. if (this._floorMeshesCollection[i].id === mesh.id) {
  97404. return true;
  97405. }
  97406. }
  97407. if (this._floorMeshName && mesh.name === this._floorMeshName) {
  97408. return true;
  97409. }
  97410. return false;
  97411. };
  97412. /**
  97413. * Adds a floor mesh to be used for teleportation.
  97414. * @param floorMesh the mesh to be used for teleportation.
  97415. */
  97416. VRExperienceHelper.prototype.addFloorMesh = function (floorMesh) {
  97417. if (!this._floorMeshesCollection) {
  97418. return;
  97419. }
  97420. if (this._floorMeshesCollection.indexOf(floorMesh) > -1) {
  97421. return;
  97422. }
  97423. this._floorMeshesCollection.push(floorMesh);
  97424. };
  97425. /**
  97426. * Removes a floor mesh from being used for teleportation.
  97427. * @param floorMesh the mesh to be removed.
  97428. */
  97429. VRExperienceHelper.prototype.removeFloorMesh = function (floorMesh) {
  97430. if (!this._floorMeshesCollection) {
  97431. return;
  97432. }
  97433. var meshIndex = this._floorMeshesCollection.indexOf(floorMesh);
  97434. if (meshIndex !== -1) {
  97435. this._floorMeshesCollection.splice(meshIndex, 1);
  97436. }
  97437. };
  97438. /**
  97439. * Enables interactions and teleportation using the VR controllers and gaze.
  97440. * @param vrTeleportationOptions options to modify teleportation behavior.
  97441. */
  97442. VRExperienceHelper.prototype.enableTeleportation = function (vrTeleportationOptions) {
  97443. if (vrTeleportationOptions === void 0) { vrTeleportationOptions = {}; }
  97444. if (!this._teleportationInitialized) {
  97445. this._teleportationRequested = true;
  97446. this.enableInteractions();
  97447. if (vrTeleportationOptions.floorMeshName) {
  97448. this._floorMeshName = vrTeleportationOptions.floorMeshName;
  97449. }
  97450. if (vrTeleportationOptions.floorMeshes) {
  97451. this._floorMeshesCollection = vrTeleportationOptions.floorMeshes;
  97452. }
  97453. if (this._leftController != null) {
  97454. this._enableTeleportationOnController(this._leftController);
  97455. }
  97456. if (this._rightController != null) {
  97457. this._enableTeleportationOnController(this._rightController);
  97458. }
  97459. // Creates an image processing post process for the vignette not relying
  97460. // on the main scene configuration for image processing to reduce setup and spaces
  97461. // (gamma/linear) conflicts.
  97462. var imageProcessingConfiguration = new BABYLON.ImageProcessingConfiguration();
  97463. imageProcessingConfiguration.vignetteColor = new BABYLON.Color4(0, 0, 0, 0);
  97464. imageProcessingConfiguration.vignetteEnabled = true;
  97465. this._postProcessMove = new BABYLON.ImageProcessingPostProcess("postProcessMove", 1.0, this._webVRCamera, undefined, undefined, undefined, undefined, imageProcessingConfiguration);
  97466. this._webVRCamera.detachPostProcess(this._postProcessMove);
  97467. this._teleportationInitialized = true;
  97468. if (this._isDefaultTeleportationTarget) {
  97469. this._createTeleportationCircles();
  97470. this._teleportationTarget.scaling.scaleInPlace(this._webVRCamera.deviceScaleFactor);
  97471. }
  97472. }
  97473. };
  97474. VRExperienceHelper.prototype._enableInteractionOnController = function (controller) {
  97475. var _this = this;
  97476. var controllerMesh = controller.webVRController.mesh;
  97477. if (controllerMesh) {
  97478. controller._interactionsEnabled = true;
  97479. controller._activatePointer();
  97480. if (this.webVROptions.laserToggle) {
  97481. controller.webVRController.onMainButtonStateChangedObservable.add(function (stateObject) {
  97482. // Enabling / disabling laserPointer
  97483. if (_this._displayLaserPointer && stateObject.value === 1) {
  97484. if (controller._activePointer) {
  97485. controller._deactivatePointer();
  97486. }
  97487. else {
  97488. controller._activatePointer();
  97489. }
  97490. if (_this.displayGaze) {
  97491. controller._gazeTracker.isVisible = controller._activePointer;
  97492. }
  97493. }
  97494. });
  97495. }
  97496. controller.webVRController.onTriggerStateChangedObservable.add(function (stateObject) {
  97497. var gazer = controller;
  97498. if (_this._noControllerIsActive) {
  97499. gazer = _this._cameraGazer;
  97500. }
  97501. if (!gazer._pointerDownOnMeshAsked) {
  97502. if (stateObject.value > _this._padSensibilityUp) {
  97503. gazer._selectionPointerDown();
  97504. }
  97505. }
  97506. else if (stateObject.value < _this._padSensibilityDown) {
  97507. gazer._selectionPointerUp();
  97508. }
  97509. });
  97510. }
  97511. };
  97512. VRExperienceHelper.prototype._checkTeleportWithRay = function (stateObject, gazer) {
  97513. // Dont teleport if another gaze already requested teleportation
  97514. if (this._teleportationRequestInitiated && !gazer._teleportationRequestInitiated) {
  97515. return;
  97516. }
  97517. if (!gazer._teleportationRequestInitiated) {
  97518. if (stateObject.y < -this._padSensibilityUp && gazer._dpadPressed) {
  97519. gazer._activatePointer();
  97520. gazer._teleportationRequestInitiated = true;
  97521. }
  97522. }
  97523. else {
  97524. // Listening to the proper controller values changes to confirm teleportation
  97525. if (Math.sqrt(stateObject.y * stateObject.y + stateObject.x * stateObject.x) < this._padSensibilityDown) {
  97526. if (this._teleportActive) {
  97527. this.teleportCamera(this._haloCenter);
  97528. }
  97529. gazer._teleportationRequestInitiated = false;
  97530. }
  97531. }
  97532. };
  97533. VRExperienceHelper.prototype._checkRotate = function (stateObject, gazer) {
  97534. // Only rotate when user is not currently selecting a teleportation location
  97535. if (gazer._teleportationRequestInitiated) {
  97536. return;
  97537. }
  97538. if (!gazer._rotationLeftAsked) {
  97539. if (stateObject.x < -this._padSensibilityUp && gazer._dpadPressed) {
  97540. gazer._rotationLeftAsked = true;
  97541. if (this._rotationAllowed) {
  97542. this._rotateCamera(false);
  97543. }
  97544. }
  97545. }
  97546. else {
  97547. if (stateObject.x > -this._padSensibilityDown) {
  97548. gazer._rotationLeftAsked = false;
  97549. }
  97550. }
  97551. if (!gazer._rotationRightAsked) {
  97552. if (stateObject.x > this._padSensibilityUp && gazer._dpadPressed) {
  97553. gazer._rotationRightAsked = true;
  97554. if (this._rotationAllowed) {
  97555. this._rotateCamera(true);
  97556. }
  97557. }
  97558. }
  97559. else {
  97560. if (stateObject.x < this._padSensibilityDown) {
  97561. gazer._rotationRightAsked = false;
  97562. }
  97563. }
  97564. };
  97565. VRExperienceHelper.prototype._checkTeleportBackwards = function (stateObject, gazer) {
  97566. // Only teleport backwards when user is not currently selecting a teleportation location
  97567. if (gazer._teleportationRequestInitiated) {
  97568. return;
  97569. }
  97570. // Teleport backwards
  97571. if (stateObject.y > this._padSensibilityUp && gazer._dpadPressed) {
  97572. if (!gazer._teleportationBackRequestInitiated) {
  97573. if (!this.currentVRCamera) {
  97574. return;
  97575. }
  97576. // Get rotation and position of the current camera
  97577. var rotation = BABYLON.Quaternion.FromRotationMatrix(this.currentVRCamera.getWorldMatrix().getRotationMatrix());
  97578. var position = this.currentVRCamera.position;
  97579. // If the camera has device position, use that instead
  97580. if (this.currentVRCamera.devicePosition && this.currentVRCamera.deviceRotationQuaternion) {
  97581. rotation = this.currentVRCamera.deviceRotationQuaternion;
  97582. position = this.currentVRCamera.devicePosition;
  97583. }
  97584. // Get matrix with only the y rotation of the device rotation
  97585. rotation.toEulerAnglesToRef(this._workingVector);
  97586. this._workingVector.z = 0;
  97587. this._workingVector.x = 0;
  97588. BABYLON.Quaternion.RotationYawPitchRollToRef(this._workingVector.y, this._workingVector.x, this._workingVector.z, this._workingQuaternion);
  97589. this._workingQuaternion.toRotationMatrix(this._workingMatrix);
  97590. // Rotate backwards ray by device rotation to cast at the ground behind the user
  97591. BABYLON.Vector3.TransformCoordinatesToRef(this._teleportBackwardsVector, this._workingMatrix, this._workingVector);
  97592. // Teleport if ray hit the ground and is not to far away eg. backwards off a cliff
  97593. var ray = new BABYLON.Ray(position, this._workingVector);
  97594. var hit = this._scene.pickWithRay(ray, this._raySelectionPredicate);
  97595. if (hit && hit.pickedPoint && hit.pickedMesh && this._isTeleportationFloor(hit.pickedMesh) && hit.distance < 5) {
  97596. this.teleportCamera(hit.pickedPoint);
  97597. }
  97598. gazer._teleportationBackRequestInitiated = true;
  97599. }
  97600. }
  97601. else {
  97602. gazer._teleportationBackRequestInitiated = false;
  97603. }
  97604. };
  97605. VRExperienceHelper.prototype._enableTeleportationOnController = function (controller) {
  97606. var _this = this;
  97607. var controllerMesh = controller.webVRController.mesh;
  97608. if (controllerMesh) {
  97609. if (!controller._interactionsEnabled) {
  97610. this._enableInteractionOnController(controller);
  97611. }
  97612. controller._interactionsEnabled = true;
  97613. controller._teleportationEnabled = true;
  97614. if (controller.webVRController.controllerType === BABYLON.PoseEnabledControllerType.VIVE) {
  97615. controller._dpadPressed = false;
  97616. controller.webVRController.onPadStateChangedObservable.add(function (stateObject) {
  97617. controller._dpadPressed = stateObject.pressed;
  97618. if (!controller._dpadPressed) {
  97619. controller._rotationLeftAsked = false;
  97620. controller._rotationRightAsked = false;
  97621. controller._teleportationBackRequestInitiated = false;
  97622. }
  97623. });
  97624. }
  97625. controller.webVRController.onPadValuesChangedObservable.add(function (stateObject) {
  97626. if (_this.teleportationEnabled) {
  97627. _this._checkTeleportBackwards(stateObject, controller);
  97628. _this._checkTeleportWithRay(stateObject, controller);
  97629. }
  97630. _this._checkRotate(stateObject, controller);
  97631. });
  97632. }
  97633. };
  97634. VRExperienceHelper.prototype._createTeleportationCircles = function () {
  97635. this._teleportationTarget = BABYLON.Mesh.CreateGround("teleportationTarget", 2, 2, 2, this._scene);
  97636. this._teleportationTarget.isPickable = false;
  97637. var length = 512;
  97638. var dynamicTexture = new BABYLON.DynamicTexture("DynamicTexture", length, this._scene, true);
  97639. dynamicTexture.hasAlpha = true;
  97640. var context = dynamicTexture.getContext();
  97641. var centerX = length / 2;
  97642. var centerY = length / 2;
  97643. var radius = 200;
  97644. context.beginPath();
  97645. context.arc(centerX, centerY, radius, 0, 2 * Math.PI, false);
  97646. context.fillStyle = this._teleportationFillColor;
  97647. context.fill();
  97648. context.lineWidth = 10;
  97649. context.strokeStyle = this._teleportationBorderColor;
  97650. context.stroke();
  97651. context.closePath();
  97652. dynamicTexture.update();
  97653. var teleportationCircleMaterial = new BABYLON.StandardMaterial("TextPlaneMaterial", this._scene);
  97654. teleportationCircleMaterial.diffuseTexture = dynamicTexture;
  97655. this._teleportationTarget.material = teleportationCircleMaterial;
  97656. var torus = BABYLON.Mesh.CreateTorus("torusTeleportation", 0.75, 0.1, 25, this._scene, false);
  97657. torus.isPickable = false;
  97658. torus.parent = this._teleportationTarget;
  97659. var animationInnerCircle = new BABYLON.Animation("animationInnerCircle", "position.y", 30, BABYLON.Animation.ANIMATIONTYPE_FLOAT, BABYLON.Animation.ANIMATIONLOOPMODE_CYCLE);
  97660. var keys = [];
  97661. keys.push({
  97662. frame: 0,
  97663. value: 0
  97664. });
  97665. keys.push({
  97666. frame: 30,
  97667. value: 0.4
  97668. });
  97669. keys.push({
  97670. frame: 60,
  97671. value: 0
  97672. });
  97673. animationInnerCircle.setKeys(keys);
  97674. var easingFunction = new BABYLON.SineEase();
  97675. easingFunction.setEasingMode(BABYLON.EasingFunction.EASINGMODE_EASEINOUT);
  97676. animationInnerCircle.setEasingFunction(easingFunction);
  97677. torus.animations = [];
  97678. torus.animations.push(animationInnerCircle);
  97679. this._scene.beginAnimation(torus, 0, 60, true);
  97680. this._hideTeleportationTarget();
  97681. };
  97682. VRExperienceHelper.prototype._displayTeleportationTarget = function () {
  97683. this._teleportActive = true;
  97684. if (this._teleportationInitialized) {
  97685. this._teleportationTarget.isVisible = true;
  97686. if (this._isDefaultTeleportationTarget) {
  97687. this._teleportationTarget.getChildren()[0].isVisible = true;
  97688. }
  97689. }
  97690. };
  97691. VRExperienceHelper.prototype._hideTeleportationTarget = function () {
  97692. this._teleportActive = false;
  97693. if (this._teleportationInitialized) {
  97694. this._teleportationTarget.isVisible = false;
  97695. if (this._isDefaultTeleportationTarget) {
  97696. this._teleportationTarget.getChildren()[0].isVisible = false;
  97697. }
  97698. }
  97699. };
  97700. VRExperienceHelper.prototype._rotateCamera = function (right) {
  97701. var _this = this;
  97702. if (!(this.currentVRCamera instanceof BABYLON.FreeCamera)) {
  97703. return;
  97704. }
  97705. if (right) {
  97706. this._rotationAngle++;
  97707. }
  97708. else {
  97709. this._rotationAngle--;
  97710. }
  97711. this.currentVRCamera.animations = [];
  97712. var target = BABYLON.Quaternion.FromRotationMatrix(BABYLON.Matrix.RotationY(Math.PI / 4 * this._rotationAngle));
  97713. var animationRotation = new BABYLON.Animation("animationRotation", "rotationQuaternion", 90, BABYLON.Animation.ANIMATIONTYPE_QUATERNION, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97714. var animationRotationKeys = [];
  97715. animationRotationKeys.push({
  97716. frame: 0,
  97717. value: this.currentVRCamera.rotationQuaternion
  97718. });
  97719. animationRotationKeys.push({
  97720. frame: 6,
  97721. value: target
  97722. });
  97723. animationRotation.setKeys(animationRotationKeys);
  97724. animationRotation.setEasingFunction(this._circleEase);
  97725. this.currentVRCamera.animations.push(animationRotation);
  97726. this._postProcessMove.animations = [];
  97727. var animationPP = new BABYLON.Animation("animationPP", "vignetteWeight", 90, BABYLON.Animation.ANIMATIONTYPE_FLOAT, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97728. var vignetteWeightKeys = [];
  97729. vignetteWeightKeys.push({
  97730. frame: 0,
  97731. value: 0
  97732. });
  97733. vignetteWeightKeys.push({
  97734. frame: 3,
  97735. value: 4
  97736. });
  97737. vignetteWeightKeys.push({
  97738. frame: 6,
  97739. value: 0
  97740. });
  97741. animationPP.setKeys(vignetteWeightKeys);
  97742. animationPP.setEasingFunction(this._circleEase);
  97743. this._postProcessMove.animations.push(animationPP);
  97744. var animationPP2 = new BABYLON.Animation("animationPP2", "vignetteStretch", 90, BABYLON.Animation.ANIMATIONTYPE_FLOAT, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97745. var vignetteStretchKeys = [];
  97746. vignetteStretchKeys.push({
  97747. frame: 0,
  97748. value: 0
  97749. });
  97750. vignetteStretchKeys.push({
  97751. frame: 3,
  97752. value: 10
  97753. });
  97754. vignetteStretchKeys.push({
  97755. frame: 6,
  97756. value: 0
  97757. });
  97758. animationPP2.setKeys(vignetteStretchKeys);
  97759. animationPP2.setEasingFunction(this._circleEase);
  97760. this._postProcessMove.animations.push(animationPP2);
  97761. this._postProcessMove.imageProcessingConfiguration.vignetteWeight = 0;
  97762. this._postProcessMove.imageProcessingConfiguration.vignetteStretch = 0;
  97763. this._postProcessMove.samples = 4;
  97764. this._webVRCamera.attachPostProcess(this._postProcessMove);
  97765. this._scene.beginAnimation(this._postProcessMove, 0, 6, false, 1, function () {
  97766. _this._webVRCamera.detachPostProcess(_this._postProcessMove);
  97767. });
  97768. this._scene.beginAnimation(this.currentVRCamera, 0, 6, false, 1);
  97769. };
  97770. VRExperienceHelper.prototype._moveTeleportationSelectorTo = function (hit, gazer, ray) {
  97771. if (hit.pickedPoint) {
  97772. if (gazer._teleportationRequestInitiated) {
  97773. this._displayTeleportationTarget();
  97774. this._haloCenter.copyFrom(hit.pickedPoint);
  97775. this._teleportationTarget.position.copyFrom(hit.pickedPoint);
  97776. }
  97777. var pickNormal = this._convertNormalToDirectionOfRay(hit.getNormal(true, false), ray);
  97778. if (pickNormal) {
  97779. var axis1 = BABYLON.Vector3.Cross(BABYLON.Axis.Y, pickNormal);
  97780. var axis2 = BABYLON.Vector3.Cross(pickNormal, axis1);
  97781. BABYLON.Vector3.RotationFromAxisToRef(axis2, pickNormal, axis1, this._teleportationTarget.rotation);
  97782. }
  97783. this._teleportationTarget.position.y += 0.1;
  97784. }
  97785. };
  97786. /**
  97787. * Teleports the users feet to the desired location
  97788. * @param location The location where the user's feet should be placed
  97789. */
  97790. VRExperienceHelper.prototype.teleportCamera = function (location) {
  97791. var _this = this;
  97792. if (!(this.currentVRCamera instanceof BABYLON.FreeCamera)) {
  97793. return;
  97794. }
  97795. // Teleport the hmd to where the user is looking by moving the anchor to where they are looking minus the
  97796. // offset of the headset from the anchor.
  97797. if (this.webVRCamera.leftCamera) {
  97798. this._workingVector.copyFrom(this.webVRCamera.leftCamera.globalPosition);
  97799. this._workingVector.subtractInPlace(this.webVRCamera.position);
  97800. location.subtractToRef(this._workingVector, this._workingVector);
  97801. }
  97802. else {
  97803. this._workingVector.copyFrom(location);
  97804. }
  97805. // Add height to account for user's height offset
  97806. if (this.isInVRMode) {
  97807. this._workingVector.y += this.webVRCamera.deviceDistanceToRoomGround() * this._webVRCamera.deviceScaleFactor;
  97808. }
  97809. else {
  97810. this._workingVector.y += this._defaultHeight;
  97811. }
  97812. this.onBeforeCameraTeleport.notifyObservers(this._workingVector);
  97813. // Create animation from the camera's position to the new location
  97814. this.currentVRCamera.animations = [];
  97815. var animationCameraTeleportation = new BABYLON.Animation("animationCameraTeleportation", "position", 90, BABYLON.Animation.ANIMATIONTYPE_VECTOR3, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97816. var animationCameraTeleportationKeys = [{
  97817. frame: 0,
  97818. value: this.currentVRCamera.position
  97819. },
  97820. {
  97821. frame: 11,
  97822. value: this._workingVector
  97823. }
  97824. ];
  97825. animationCameraTeleportation.setKeys(animationCameraTeleportationKeys);
  97826. animationCameraTeleportation.setEasingFunction(this._circleEase);
  97827. this.currentVRCamera.animations.push(animationCameraTeleportation);
  97828. this._postProcessMove.animations = [];
  97829. var animationPP = new BABYLON.Animation("animationPP", "vignetteWeight", 90, BABYLON.Animation.ANIMATIONTYPE_FLOAT, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97830. var vignetteWeightKeys = [];
  97831. vignetteWeightKeys.push({
  97832. frame: 0,
  97833. value: 0
  97834. });
  97835. vignetteWeightKeys.push({
  97836. frame: 5,
  97837. value: 8
  97838. });
  97839. vignetteWeightKeys.push({
  97840. frame: 11,
  97841. value: 0
  97842. });
  97843. animationPP.setKeys(vignetteWeightKeys);
  97844. this._postProcessMove.animations.push(animationPP);
  97845. var animationPP2 = new BABYLON.Animation("animationPP2", "vignetteStretch", 90, BABYLON.Animation.ANIMATIONTYPE_FLOAT, BABYLON.Animation.ANIMATIONLOOPMODE_CONSTANT);
  97846. var vignetteStretchKeys = [];
  97847. vignetteStretchKeys.push({
  97848. frame: 0,
  97849. value: 0
  97850. });
  97851. vignetteStretchKeys.push({
  97852. frame: 5,
  97853. value: 10
  97854. });
  97855. vignetteStretchKeys.push({
  97856. frame: 11,
  97857. value: 0
  97858. });
  97859. animationPP2.setKeys(vignetteStretchKeys);
  97860. this._postProcessMove.animations.push(animationPP2);
  97861. this._postProcessMove.imageProcessingConfiguration.vignetteWeight = 0;
  97862. this._postProcessMove.imageProcessingConfiguration.vignetteStretch = 0;
  97863. this._webVRCamera.attachPostProcess(this._postProcessMove);
  97864. this._scene.beginAnimation(this._postProcessMove, 0, 11, false, 1, function () {
  97865. _this._webVRCamera.detachPostProcess(_this._postProcessMove);
  97866. });
  97867. this._scene.beginAnimation(this.currentVRCamera, 0, 11, false, 1, function () {
  97868. _this.onAfterCameraTeleport.notifyObservers(_this._workingVector);
  97869. });
  97870. this._hideTeleportationTarget();
  97871. };
  97872. VRExperienceHelper.prototype._convertNormalToDirectionOfRay = function (normal, ray) {
  97873. if (normal) {
  97874. var angle = Math.acos(BABYLON.Vector3.Dot(normal, ray.direction));
  97875. if (angle < Math.PI / 2) {
  97876. normal.scaleInPlace(-1);
  97877. }
  97878. }
  97879. return normal;
  97880. };
  97881. VRExperienceHelper.prototype._castRayAndSelectObject = function (gazer) {
  97882. if (!(this.currentVRCamera instanceof BABYLON.FreeCamera)) {
  97883. return;
  97884. }
  97885. var ray = gazer._getForwardRay(this._rayLength);
  97886. var hit = this._scene.pickWithRay(ray, this._raySelectionPredicate);
  97887. if (hit) {
  97888. // Populate the contrllers mesh that can be used for drag/drop
  97889. if (gazer._laserPointer) {
  97890. hit.originMesh = gazer._laserPointer.parent;
  97891. }
  97892. this._scene.simulatePointerMove(hit, { pointerId: gazer._id });
  97893. }
  97894. gazer._currentHit = hit;
  97895. // Moving the gazeTracker on the mesh face targetted
  97896. if (hit && hit.pickedPoint) {
  97897. if (this._displayGaze) {
  97898. var multiplier = 1;
  97899. gazer._gazeTracker.isVisible = true;
  97900. if (gazer._isActionableMesh) {
  97901. multiplier = 3;
  97902. }
  97903. if (this.updateGazeTrackerScale) {
  97904. gazer._gazeTracker.scaling.x = hit.distance * multiplier;
  97905. gazer._gazeTracker.scaling.y = hit.distance * multiplier;
  97906. gazer._gazeTracker.scaling.z = hit.distance * multiplier;
  97907. }
  97908. var pickNormal = this._convertNormalToDirectionOfRay(hit.getNormal(), ray);
  97909. // To avoid z-fighting
  97910. var deltaFighting = 0.002;
  97911. if (pickNormal) {
  97912. var axis1 = BABYLON.Vector3.Cross(BABYLON.Axis.Y, pickNormal);
  97913. var axis2 = BABYLON.Vector3.Cross(pickNormal, axis1);
  97914. BABYLON.Vector3.RotationFromAxisToRef(axis2, pickNormal, axis1, gazer._gazeTracker.rotation);
  97915. }
  97916. gazer._gazeTracker.position.copyFrom(hit.pickedPoint);
  97917. if (gazer._gazeTracker.position.x < 0) {
  97918. gazer._gazeTracker.position.x += deltaFighting;
  97919. }
  97920. else {
  97921. gazer._gazeTracker.position.x -= deltaFighting;
  97922. }
  97923. if (gazer._gazeTracker.position.y < 0) {
  97924. gazer._gazeTracker.position.y += deltaFighting;
  97925. }
  97926. else {
  97927. gazer._gazeTracker.position.y -= deltaFighting;
  97928. }
  97929. if (gazer._gazeTracker.position.z < 0) {
  97930. gazer._gazeTracker.position.z += deltaFighting;
  97931. }
  97932. else {
  97933. gazer._gazeTracker.position.z -= deltaFighting;
  97934. }
  97935. }
  97936. // Changing the size of the laser pointer based on the distance from the targetted point
  97937. gazer._updatePointerDistance(hit.distance);
  97938. }
  97939. else {
  97940. gazer._updatePointerDistance();
  97941. gazer._gazeTracker.isVisible = false;
  97942. }
  97943. if (hit && hit.pickedMesh) {
  97944. // The object selected is the floor, we're in a teleportation scenario
  97945. if (this._teleportationInitialized && this._isTeleportationFloor(hit.pickedMesh) && hit.pickedPoint) {
  97946. // Moving the teleportation area to this targetted point
  97947. //Raise onSelectedMeshUnselected observable if ray collided floor mesh/meshes and a non floor mesh was previously selected
  97948. if (gazer._currentMeshSelected && !this._isTeleportationFloor(gazer._currentMeshSelected)) {
  97949. this._notifySelectedMeshUnselected(gazer._currentMeshSelected);
  97950. }
  97951. gazer._currentMeshSelected = null;
  97952. if (gazer._teleportationRequestInitiated) {
  97953. this._moveTeleportationSelectorTo(hit, gazer, ray);
  97954. }
  97955. return;
  97956. }
  97957. // If not, we're in a selection scenario
  97958. //this._teleportationAllowed = false;
  97959. if (hit.pickedMesh !== gazer._currentMeshSelected) {
  97960. if (this.meshSelectionPredicate(hit.pickedMesh)) {
  97961. this.onNewMeshPicked.notifyObservers(hit);
  97962. gazer._currentMeshSelected = hit.pickedMesh;
  97963. if (hit.pickedMesh.isPickable && hit.pickedMesh.actionManager) {
  97964. this.changeGazeColor(new BABYLON.Color3(0, 0, 1));
  97965. this.changeLaserColor(new BABYLON.Color3(0.2, 0.2, 1));
  97966. gazer._isActionableMesh = true;
  97967. }
  97968. else {
  97969. this.changeGazeColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97970. this.changeLaserColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97971. gazer._isActionableMesh = false;
  97972. }
  97973. try {
  97974. this.onNewMeshSelected.notifyObservers(hit.pickedMesh);
  97975. }
  97976. catch (err) {
  97977. BABYLON.Tools.Warn("Error in your custom logic onNewMeshSelected: " + err);
  97978. }
  97979. }
  97980. else {
  97981. this._notifySelectedMeshUnselected(gazer._currentMeshSelected);
  97982. gazer._currentMeshSelected = null;
  97983. this.changeGazeColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97984. this.changeLaserColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97985. }
  97986. }
  97987. }
  97988. else {
  97989. this._notifySelectedMeshUnselected(gazer._currentMeshSelected);
  97990. gazer._currentMeshSelected = null;
  97991. //this._teleportationAllowed = false;
  97992. this.changeGazeColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97993. this.changeLaserColor(new BABYLON.Color3(0.7, 0.7, 0.7));
  97994. }
  97995. };
  97996. VRExperienceHelper.prototype._notifySelectedMeshUnselected = function (mesh) {
  97997. if (mesh) {
  97998. this.onSelectedMeshUnselected.notifyObservers(mesh);
  97999. }
  98000. };
  98001. /**
  98002. * Sets the color of the laser ray from the vr controllers.
  98003. * @param color new color for the ray.
  98004. */
  98005. VRExperienceHelper.prototype.changeLaserColor = function (color) {
  98006. if (this._leftController) {
  98007. this._leftController._setLaserPointerColor(color);
  98008. }
  98009. if (this._rightController) {
  98010. this._rightController._setLaserPointerColor(color);
  98011. }
  98012. };
  98013. /**
  98014. * Sets the color of the ray from the vr headsets gaze.
  98015. * @param color new color for the ray.
  98016. */
  98017. VRExperienceHelper.prototype.changeGazeColor = function (color) {
  98018. if (!this._cameraGazer._gazeTracker.material) {
  98019. return;
  98020. }
  98021. this._cameraGazer._gazeTracker.material.emissiveColor = color;
  98022. if (this._leftController) {
  98023. this._leftController._gazeTracker.material.emissiveColor = color;
  98024. }
  98025. if (this._rightController) {
  98026. this._rightController._gazeTracker.material.emissiveColor = color;
  98027. }
  98028. };
  98029. /**
  98030. * Exits VR and disposes of the vr experience helper
  98031. */
  98032. VRExperienceHelper.prototype.dispose = function () {
  98033. if (this.isInVRMode) {
  98034. this.exitVR();
  98035. }
  98036. if (this._postProcessMove) {
  98037. this._postProcessMove.dispose();
  98038. }
  98039. if (this._webVRCamera) {
  98040. this._webVRCamera.dispose();
  98041. }
  98042. if (this._vrDeviceOrientationCamera) {
  98043. this._vrDeviceOrientationCamera.dispose();
  98044. }
  98045. if (!this._useCustomVRButton && this._btnVR.parentNode) {
  98046. document.body.removeChild(this._btnVR);
  98047. }
  98048. if (this._deviceOrientationCamera && (this._scene.activeCamera != this._deviceOrientationCamera)) {
  98049. this._deviceOrientationCamera.dispose();
  98050. }
  98051. if (this._cameraGazer) {
  98052. this._cameraGazer.dispose();
  98053. }
  98054. if (this._leftController) {
  98055. this._leftController.dispose();
  98056. }
  98057. if (this._rightController) {
  98058. this._rightController.dispose();
  98059. }
  98060. if (this._teleportationTarget) {
  98061. this._teleportationTarget.dispose();
  98062. }
  98063. this._floorMeshesCollection = [];
  98064. document.removeEventListener("keydown", this._onKeyDown);
  98065. window.removeEventListener('vrdisplaypresentchange', this._onVrDisplayPresentChange);
  98066. window.removeEventListener("resize", this._onResize);
  98067. document.removeEventListener("fullscreenchange", this._onFullscreenChange);
  98068. document.removeEventListener("mozfullscreenchange", this._onFullscreenChange);
  98069. document.removeEventListener("webkitfullscreenchange", this._onFullscreenChange);
  98070. document.removeEventListener("msfullscreenchange", this._onFullscreenChange);
  98071. document.onmsfullscreenchange = null;
  98072. this._scene.getEngine().onVRDisplayChangedObservable.removeCallback(this._onVRDisplayChanged);
  98073. this._scene.getEngine().onVRRequestPresentStart.removeCallback(this._onVRRequestPresentStart);
  98074. this._scene.getEngine().onVRRequestPresentComplete.removeCallback(this._onVRRequestPresentComplete);
  98075. window.removeEventListener('vrdisplaypresentchange', this._onVrDisplayPresentChange);
  98076. this._scene.gamepadManager.onGamepadConnectedObservable.removeCallback(this._onNewGamepadConnected);
  98077. this._scene.gamepadManager.onGamepadDisconnectedObservable.removeCallback(this._onNewGamepadDisconnected);
  98078. this._scene.unregisterBeforeRender(this.beforeRender);
  98079. };
  98080. /**
  98081. * Gets the name of the VRExperienceHelper class
  98082. * @returns "VRExperienceHelper"
  98083. */
  98084. VRExperienceHelper.prototype.getClassName = function () {
  98085. return "VRExperienceHelper";
  98086. };
  98087. return VRExperienceHelper;
  98088. }());
  98089. BABYLON.VRExperienceHelper = VRExperienceHelper;
  98090. })(BABYLON || (BABYLON = {}));
  98091. //# sourceMappingURL=babylon.vrExperienceHelper.js.map
  98092. // Mainly based on these 2 articles :
  98093. // Creating an universal virtual touch joystick working for all Touch models thanks to Hand.JS : http://blogs.msdn.com/b/davrous/archive/2013/02/22/creating-an-universal-virtual-touch-joystick-working-for-all-touch-models-thanks-to-hand-js.aspx
  98094. // & on Seb Lee-Delisle original work: http://seb.ly/2011/04/multi-touch-game-controller-in-javascripthtml5-for-ipad/
  98095. var BABYLON;
  98096. (function (BABYLON) {
  98097. /**
  98098. * Defines the potential axis of a Joystick
  98099. */
  98100. var JoystickAxis;
  98101. (function (JoystickAxis) {
  98102. /** X axis */
  98103. JoystickAxis[JoystickAxis["X"] = 0] = "X";
  98104. /** Y axis */
  98105. JoystickAxis[JoystickAxis["Y"] = 1] = "Y";
  98106. /** Z axis */
  98107. JoystickAxis[JoystickAxis["Z"] = 2] = "Z";
  98108. })(JoystickAxis = BABYLON.JoystickAxis || (BABYLON.JoystickAxis = {}));
  98109. /**
  98110. * Class used to define virtual joystick (used in touch mode)
  98111. */
  98112. var VirtualJoystick = /** @class */ (function () {
  98113. /**
  98114. * Creates a new virtual joystick
  98115. * @param leftJoystick defines that the joystick is for left hand (false by default)
  98116. */
  98117. function VirtualJoystick(leftJoystick) {
  98118. var _this = this;
  98119. if (leftJoystick) {
  98120. this._leftJoystick = true;
  98121. }
  98122. else {
  98123. this._leftJoystick = false;
  98124. }
  98125. VirtualJoystick._globalJoystickIndex++;
  98126. // By default left & right arrow keys are moving the X
  98127. // and up & down keys are moving the Y
  98128. this._axisTargetedByLeftAndRight = JoystickAxis.X;
  98129. this._axisTargetedByUpAndDown = JoystickAxis.Y;
  98130. this.reverseLeftRight = false;
  98131. this.reverseUpDown = false;
  98132. // collections of pointers
  98133. this._touches = new BABYLON.StringDictionary();
  98134. this.deltaPosition = BABYLON.Vector3.Zero();
  98135. this._joystickSensibility = 25;
  98136. this._inversedSensibility = 1 / (this._joystickSensibility / 1000);
  98137. this._onResize = function (evt) {
  98138. VirtualJoystick.vjCanvasWidth = window.innerWidth;
  98139. VirtualJoystick.vjCanvasHeight = window.innerHeight;
  98140. if (VirtualJoystick.vjCanvas) {
  98141. VirtualJoystick.vjCanvas.width = VirtualJoystick.vjCanvasWidth;
  98142. VirtualJoystick.vjCanvas.height = VirtualJoystick.vjCanvasHeight;
  98143. }
  98144. VirtualJoystick.halfWidth = VirtualJoystick.vjCanvasWidth / 2;
  98145. };
  98146. // injecting a canvas element on top of the canvas 3D game
  98147. if (!VirtualJoystick.vjCanvas) {
  98148. window.addEventListener("resize", this._onResize, false);
  98149. VirtualJoystick.vjCanvas = document.createElement("canvas");
  98150. VirtualJoystick.vjCanvasWidth = window.innerWidth;
  98151. VirtualJoystick.vjCanvasHeight = window.innerHeight;
  98152. VirtualJoystick.vjCanvas.width = window.innerWidth;
  98153. VirtualJoystick.vjCanvas.height = window.innerHeight;
  98154. VirtualJoystick.vjCanvas.style.width = "100%";
  98155. VirtualJoystick.vjCanvas.style.height = "100%";
  98156. VirtualJoystick.vjCanvas.style.position = "absolute";
  98157. VirtualJoystick.vjCanvas.style.backgroundColor = "transparent";
  98158. VirtualJoystick.vjCanvas.style.top = "0px";
  98159. VirtualJoystick.vjCanvas.style.left = "0px";
  98160. VirtualJoystick.vjCanvas.style.zIndex = "5";
  98161. VirtualJoystick.vjCanvas.style.msTouchAction = "none";
  98162. // Support for jQuery PEP polyfill
  98163. VirtualJoystick.vjCanvas.setAttribute("touch-action", "none");
  98164. var context = VirtualJoystick.vjCanvas.getContext('2d');
  98165. if (!context) {
  98166. throw new Error("Unable to create canvas for virtual joystick");
  98167. }
  98168. VirtualJoystick.vjCanvasContext = context;
  98169. VirtualJoystick.vjCanvasContext.strokeStyle = "#ffffff";
  98170. VirtualJoystick.vjCanvasContext.lineWidth = 2;
  98171. document.body.appendChild(VirtualJoystick.vjCanvas);
  98172. }
  98173. VirtualJoystick.halfWidth = VirtualJoystick.vjCanvas.width / 2;
  98174. this.pressed = false;
  98175. // default joystick color
  98176. this._joystickColor = "cyan";
  98177. this._joystickPointerID = -1;
  98178. // current joystick position
  98179. this._joystickPointerPos = new BABYLON.Vector2(0, 0);
  98180. this._joystickPreviousPointerPos = new BABYLON.Vector2(0, 0);
  98181. // origin joystick position
  98182. this._joystickPointerStartPos = new BABYLON.Vector2(0, 0);
  98183. this._deltaJoystickVector = new BABYLON.Vector2(0, 0);
  98184. this._onPointerDownHandlerRef = function (evt) {
  98185. _this._onPointerDown(evt);
  98186. };
  98187. this._onPointerMoveHandlerRef = function (evt) {
  98188. _this._onPointerMove(evt);
  98189. };
  98190. this._onPointerUpHandlerRef = function (evt) {
  98191. _this._onPointerUp(evt);
  98192. };
  98193. VirtualJoystick.vjCanvas.addEventListener('pointerdown', this._onPointerDownHandlerRef, false);
  98194. VirtualJoystick.vjCanvas.addEventListener('pointermove', this._onPointerMoveHandlerRef, false);
  98195. VirtualJoystick.vjCanvas.addEventListener('pointerup', this._onPointerUpHandlerRef, false);
  98196. VirtualJoystick.vjCanvas.addEventListener('pointerout', this._onPointerUpHandlerRef, false);
  98197. VirtualJoystick.vjCanvas.addEventListener("contextmenu", function (evt) {
  98198. evt.preventDefault(); // Disables system menu
  98199. }, false);
  98200. requestAnimationFrame(function () { _this._drawVirtualJoystick(); });
  98201. }
  98202. /**
  98203. * Defines joystick sensibility (ie. the ratio beteen a physical move and virtual joystick position change)
  98204. * @param newJoystickSensibility defines the new sensibility
  98205. */
  98206. VirtualJoystick.prototype.setJoystickSensibility = function (newJoystickSensibility) {
  98207. this._joystickSensibility = newJoystickSensibility;
  98208. this._inversedSensibility = 1 / (this._joystickSensibility / 1000);
  98209. };
  98210. VirtualJoystick.prototype._onPointerDown = function (e) {
  98211. var positionOnScreenCondition;
  98212. e.preventDefault();
  98213. if (this._leftJoystick === true) {
  98214. positionOnScreenCondition = (e.clientX < VirtualJoystick.halfWidth);
  98215. }
  98216. else {
  98217. positionOnScreenCondition = (e.clientX > VirtualJoystick.halfWidth);
  98218. }
  98219. if (positionOnScreenCondition && this._joystickPointerID < 0) {
  98220. // First contact will be dedicated to the virtual joystick
  98221. this._joystickPointerID = e.pointerId;
  98222. this._joystickPointerStartPos.x = e.clientX;
  98223. this._joystickPointerStartPos.y = e.clientY;
  98224. this._joystickPointerPos = this._joystickPointerStartPos.clone();
  98225. this._joystickPreviousPointerPos = this._joystickPointerStartPos.clone();
  98226. this._deltaJoystickVector.x = 0;
  98227. this._deltaJoystickVector.y = 0;
  98228. this.pressed = true;
  98229. this._touches.add(e.pointerId.toString(), e);
  98230. }
  98231. else {
  98232. // You can only trigger the action buttons with a joystick declared
  98233. if (VirtualJoystick._globalJoystickIndex < 2 && this._action) {
  98234. this._action();
  98235. this._touches.add(e.pointerId.toString(), { x: e.clientX, y: e.clientY, prevX: e.clientX, prevY: e.clientY });
  98236. }
  98237. }
  98238. };
  98239. VirtualJoystick.prototype._onPointerMove = function (e) {
  98240. // If the current pointer is the one associated to the joystick (first touch contact)
  98241. if (this._joystickPointerID == e.pointerId) {
  98242. this._joystickPointerPos.x = e.clientX;
  98243. this._joystickPointerPos.y = e.clientY;
  98244. this._deltaJoystickVector = this._joystickPointerPos.clone();
  98245. this._deltaJoystickVector = this._deltaJoystickVector.subtract(this._joystickPointerStartPos);
  98246. var directionLeftRight = this.reverseLeftRight ? -1 : 1;
  98247. var deltaJoystickX = directionLeftRight * this._deltaJoystickVector.x / this._inversedSensibility;
  98248. switch (this._axisTargetedByLeftAndRight) {
  98249. case JoystickAxis.X:
  98250. this.deltaPosition.x = Math.min(1, Math.max(-1, deltaJoystickX));
  98251. break;
  98252. case JoystickAxis.Y:
  98253. this.deltaPosition.y = Math.min(1, Math.max(-1, deltaJoystickX));
  98254. break;
  98255. case JoystickAxis.Z:
  98256. this.deltaPosition.z = Math.min(1, Math.max(-1, deltaJoystickX));
  98257. break;
  98258. }
  98259. var directionUpDown = this.reverseUpDown ? 1 : -1;
  98260. var deltaJoystickY = directionUpDown * this._deltaJoystickVector.y / this._inversedSensibility;
  98261. switch (this._axisTargetedByUpAndDown) {
  98262. case JoystickAxis.X:
  98263. this.deltaPosition.x = Math.min(1, Math.max(-1, deltaJoystickY));
  98264. break;
  98265. case JoystickAxis.Y:
  98266. this.deltaPosition.y = Math.min(1, Math.max(-1, deltaJoystickY));
  98267. break;
  98268. case JoystickAxis.Z:
  98269. this.deltaPosition.z = Math.min(1, Math.max(-1, deltaJoystickY));
  98270. break;
  98271. }
  98272. }
  98273. else {
  98274. var data = this._touches.get(e.pointerId.toString());
  98275. if (data) {
  98276. data.x = e.clientX;
  98277. data.y = e.clientY;
  98278. }
  98279. }
  98280. };
  98281. VirtualJoystick.prototype._onPointerUp = function (e) {
  98282. if (this._joystickPointerID == e.pointerId) {
  98283. VirtualJoystick.vjCanvasContext.clearRect(this._joystickPointerStartPos.x - 64, this._joystickPointerStartPos.y - 64, 128, 128);
  98284. VirtualJoystick.vjCanvasContext.clearRect(this._joystickPreviousPointerPos.x - 42, this._joystickPreviousPointerPos.y - 42, 84, 84);
  98285. this._joystickPointerID = -1;
  98286. this.pressed = false;
  98287. }
  98288. else {
  98289. var touch = this._touches.get(e.pointerId.toString());
  98290. if (touch) {
  98291. VirtualJoystick.vjCanvasContext.clearRect(touch.prevX - 44, touch.prevY - 44, 88, 88);
  98292. }
  98293. }
  98294. this._deltaJoystickVector.x = 0;
  98295. this._deltaJoystickVector.y = 0;
  98296. this._touches.remove(e.pointerId.toString());
  98297. };
  98298. /**
  98299. * Change the color of the virtual joystick
  98300. * @param newColor a string that must be a CSS color value (like "red") or the hexa value (like "#FF0000")
  98301. */
  98302. VirtualJoystick.prototype.setJoystickColor = function (newColor) {
  98303. this._joystickColor = newColor;
  98304. };
  98305. /**
  98306. * Defines a callback to call when the joystick is touched
  98307. * @param action defines the callback
  98308. */
  98309. VirtualJoystick.prototype.setActionOnTouch = function (action) {
  98310. this._action = action;
  98311. };
  98312. /**
  98313. * Defines which axis you'd like to control for left & right
  98314. * @param axis defines the axis to use
  98315. */
  98316. VirtualJoystick.prototype.setAxisForLeftRight = function (axis) {
  98317. switch (axis) {
  98318. case JoystickAxis.X:
  98319. case JoystickAxis.Y:
  98320. case JoystickAxis.Z:
  98321. this._axisTargetedByLeftAndRight = axis;
  98322. break;
  98323. default:
  98324. this._axisTargetedByLeftAndRight = JoystickAxis.X;
  98325. break;
  98326. }
  98327. };
  98328. /**
  98329. * Defines which axis you'd like to control for up & down
  98330. * @param axis defines the axis to use
  98331. */
  98332. VirtualJoystick.prototype.setAxisForUpDown = function (axis) {
  98333. switch (axis) {
  98334. case JoystickAxis.X:
  98335. case JoystickAxis.Y:
  98336. case JoystickAxis.Z:
  98337. this._axisTargetedByUpAndDown = axis;
  98338. break;
  98339. default:
  98340. this._axisTargetedByUpAndDown = JoystickAxis.Y;
  98341. break;
  98342. }
  98343. };
  98344. VirtualJoystick.prototype._drawVirtualJoystick = function () {
  98345. var _this = this;
  98346. if (this.pressed) {
  98347. this._touches.forEach(function (key, touch) {
  98348. if (touch.pointerId === _this._joystickPointerID) {
  98349. VirtualJoystick.vjCanvasContext.clearRect(_this._joystickPointerStartPos.x - 64, _this._joystickPointerStartPos.y - 64, 128, 128);
  98350. VirtualJoystick.vjCanvasContext.clearRect(_this._joystickPreviousPointerPos.x - 42, _this._joystickPreviousPointerPos.y - 42, 84, 84);
  98351. VirtualJoystick.vjCanvasContext.beginPath();
  98352. VirtualJoystick.vjCanvasContext.lineWidth = 6;
  98353. VirtualJoystick.vjCanvasContext.strokeStyle = _this._joystickColor;
  98354. VirtualJoystick.vjCanvasContext.arc(_this._joystickPointerStartPos.x, _this._joystickPointerStartPos.y, 40, 0, Math.PI * 2, true);
  98355. VirtualJoystick.vjCanvasContext.stroke();
  98356. VirtualJoystick.vjCanvasContext.closePath();
  98357. VirtualJoystick.vjCanvasContext.beginPath();
  98358. VirtualJoystick.vjCanvasContext.strokeStyle = _this._joystickColor;
  98359. VirtualJoystick.vjCanvasContext.lineWidth = 2;
  98360. VirtualJoystick.vjCanvasContext.arc(_this._joystickPointerStartPos.x, _this._joystickPointerStartPos.y, 60, 0, Math.PI * 2, true);
  98361. VirtualJoystick.vjCanvasContext.stroke();
  98362. VirtualJoystick.vjCanvasContext.closePath();
  98363. VirtualJoystick.vjCanvasContext.beginPath();
  98364. VirtualJoystick.vjCanvasContext.strokeStyle = _this._joystickColor;
  98365. VirtualJoystick.vjCanvasContext.arc(_this._joystickPointerPos.x, _this._joystickPointerPos.y, 40, 0, Math.PI * 2, true);
  98366. VirtualJoystick.vjCanvasContext.stroke();
  98367. VirtualJoystick.vjCanvasContext.closePath();
  98368. _this._joystickPreviousPointerPos = _this._joystickPointerPos.clone();
  98369. }
  98370. else {
  98371. VirtualJoystick.vjCanvasContext.clearRect(touch.prevX - 44, touch.prevY - 44, 88, 88);
  98372. VirtualJoystick.vjCanvasContext.beginPath();
  98373. VirtualJoystick.vjCanvasContext.fillStyle = "white";
  98374. VirtualJoystick.vjCanvasContext.beginPath();
  98375. VirtualJoystick.vjCanvasContext.strokeStyle = "red";
  98376. VirtualJoystick.vjCanvasContext.lineWidth = 6;
  98377. VirtualJoystick.vjCanvasContext.arc(touch.x, touch.y, 40, 0, Math.PI * 2, true);
  98378. VirtualJoystick.vjCanvasContext.stroke();
  98379. VirtualJoystick.vjCanvasContext.closePath();
  98380. touch.prevX = touch.x;
  98381. touch.prevY = touch.y;
  98382. }
  98383. ;
  98384. });
  98385. }
  98386. requestAnimationFrame(function () { _this._drawVirtualJoystick(); });
  98387. };
  98388. /**
  98389. * Release internal HTML canvas
  98390. */
  98391. VirtualJoystick.prototype.releaseCanvas = function () {
  98392. if (VirtualJoystick.vjCanvas) {
  98393. VirtualJoystick.vjCanvas.removeEventListener('pointerdown', this._onPointerDownHandlerRef);
  98394. VirtualJoystick.vjCanvas.removeEventListener('pointermove', this._onPointerMoveHandlerRef);
  98395. VirtualJoystick.vjCanvas.removeEventListener('pointerup', this._onPointerUpHandlerRef);
  98396. VirtualJoystick.vjCanvas.removeEventListener('pointerout', this._onPointerUpHandlerRef);
  98397. window.removeEventListener("resize", this._onResize);
  98398. document.body.removeChild(VirtualJoystick.vjCanvas);
  98399. VirtualJoystick.vjCanvas = null;
  98400. }
  98401. };
  98402. // Used to draw the virtual joystick inside a 2D canvas on top of the WebGL rendering canvas
  98403. VirtualJoystick._globalJoystickIndex = 0;
  98404. return VirtualJoystick;
  98405. }());
  98406. BABYLON.VirtualJoystick = VirtualJoystick;
  98407. })(BABYLON || (BABYLON = {}));
  98408. //# sourceMappingURL=babylon.virtualJoystick.js.map
  98409. var BABYLON;
  98410. (function (BABYLON) {
  98411. BABYLON.Node.AddNodeConstructor("VirtualJoysticksCamera", function (name, scene) {
  98412. return function () { return new VirtualJoysticksCamera(name, BABYLON.Vector3.Zero(), scene); };
  98413. });
  98414. // We're mainly based on the logic defined into the FreeCamera code
  98415. var VirtualJoysticksCamera = /** @class */ (function (_super) {
  98416. __extends(VirtualJoysticksCamera, _super);
  98417. function VirtualJoysticksCamera(name, position, scene) {
  98418. var _this = _super.call(this, name, position, scene) || this;
  98419. _this.inputs.addVirtualJoystick();
  98420. return _this;
  98421. }
  98422. VirtualJoysticksCamera.prototype.getClassName = function () {
  98423. return "VirtualJoysticksCamera";
  98424. };
  98425. return VirtualJoysticksCamera;
  98426. }(BABYLON.FreeCamera));
  98427. BABYLON.VirtualJoysticksCamera = VirtualJoysticksCamera;
  98428. })(BABYLON || (BABYLON = {}));
  98429. //# sourceMappingURL=babylon.virtualJoysticksCamera.js.map
  98430. var BABYLON;
  98431. (function (BABYLON) {
  98432. var FreeCameraVirtualJoystickInput = /** @class */ (function () {
  98433. function FreeCameraVirtualJoystickInput() {
  98434. }
  98435. FreeCameraVirtualJoystickInput.prototype.getLeftJoystick = function () {
  98436. return this._leftjoystick;
  98437. };
  98438. FreeCameraVirtualJoystickInput.prototype.getRightJoystick = function () {
  98439. return this._rightjoystick;
  98440. };
  98441. FreeCameraVirtualJoystickInput.prototype.checkInputs = function () {
  98442. if (this._leftjoystick) {
  98443. var camera = this.camera;
  98444. var speed = camera._computeLocalCameraSpeed() * 50;
  98445. var cameraTransform = BABYLON.Matrix.RotationYawPitchRoll(camera.rotation.y, camera.rotation.x, 0);
  98446. var deltaTransform = BABYLON.Vector3.TransformCoordinates(new BABYLON.Vector3(this._leftjoystick.deltaPosition.x * speed, this._leftjoystick.deltaPosition.y * speed, this._leftjoystick.deltaPosition.z * speed), cameraTransform);
  98447. camera.cameraDirection = camera.cameraDirection.add(deltaTransform);
  98448. camera.cameraRotation = camera.cameraRotation.addVector3(this._rightjoystick.deltaPosition);
  98449. if (!this._leftjoystick.pressed) {
  98450. this._leftjoystick.deltaPosition = this._leftjoystick.deltaPosition.scale(0.9);
  98451. }
  98452. if (!this._rightjoystick.pressed) {
  98453. this._rightjoystick.deltaPosition = this._rightjoystick.deltaPosition.scale(0.9);
  98454. }
  98455. }
  98456. };
  98457. FreeCameraVirtualJoystickInput.prototype.attachControl = function (element, noPreventDefault) {
  98458. this._leftjoystick = new BABYLON.VirtualJoystick(true);
  98459. this._leftjoystick.setAxisForUpDown(BABYLON.JoystickAxis.Z);
  98460. this._leftjoystick.setAxisForLeftRight(BABYLON.JoystickAxis.X);
  98461. this._leftjoystick.setJoystickSensibility(0.15);
  98462. this._rightjoystick = new BABYLON.VirtualJoystick(false);
  98463. this._rightjoystick.setAxisForUpDown(BABYLON.JoystickAxis.X);
  98464. this._rightjoystick.setAxisForLeftRight(BABYLON.JoystickAxis.Y);
  98465. this._rightjoystick.reverseUpDown = true;
  98466. this._rightjoystick.setJoystickSensibility(0.05);
  98467. this._rightjoystick.setJoystickColor("yellow");
  98468. };
  98469. FreeCameraVirtualJoystickInput.prototype.detachControl = function (element) {
  98470. this._leftjoystick.releaseCanvas();
  98471. this._rightjoystick.releaseCanvas();
  98472. };
  98473. FreeCameraVirtualJoystickInput.prototype.getClassName = function () {
  98474. return "FreeCameraVirtualJoystickInput";
  98475. };
  98476. FreeCameraVirtualJoystickInput.prototype.getSimpleName = function () {
  98477. return "virtualJoystick";
  98478. };
  98479. return FreeCameraVirtualJoystickInput;
  98480. }());
  98481. BABYLON.FreeCameraVirtualJoystickInput = FreeCameraVirtualJoystickInput;
  98482. BABYLON.CameraInputTypes["FreeCameraVirtualJoystickInput"] = FreeCameraVirtualJoystickInput;
  98483. })(BABYLON || (BABYLON = {}));
  98484. //# sourceMappingURL=babylon.freeCameraVirtualJoystickInput.js.map
  98485. var BABYLON;
  98486. (function (BABYLON) {
  98487. var SimplificationSettings = /** @class */ (function () {
  98488. function SimplificationSettings(quality, distance, optimizeMesh) {
  98489. this.quality = quality;
  98490. this.distance = distance;
  98491. this.optimizeMesh = optimizeMesh;
  98492. }
  98493. return SimplificationSettings;
  98494. }());
  98495. BABYLON.SimplificationSettings = SimplificationSettings;
  98496. var SimplificationQueue = /** @class */ (function () {
  98497. function SimplificationQueue() {
  98498. this.running = false;
  98499. this._simplificationArray = [];
  98500. }
  98501. SimplificationQueue.prototype.addTask = function (task) {
  98502. this._simplificationArray.push(task);
  98503. };
  98504. SimplificationQueue.prototype.executeNext = function () {
  98505. var task = this._simplificationArray.pop();
  98506. if (task) {
  98507. this.running = true;
  98508. this.runSimplification(task);
  98509. }
  98510. else {
  98511. this.running = false;
  98512. }
  98513. };
  98514. SimplificationQueue.prototype.runSimplification = function (task) {
  98515. var _this = this;
  98516. if (task.parallelProcessing) {
  98517. //parallel simplifier
  98518. task.settings.forEach(function (setting) {
  98519. var simplifier = _this.getSimplifier(task);
  98520. simplifier.simplify(setting, function (newMesh) {
  98521. task.mesh.addLODLevel(setting.distance, newMesh);
  98522. newMesh.isVisible = true;
  98523. //check if it is the last
  98524. if (setting.quality === task.settings[task.settings.length - 1].quality && task.successCallback) {
  98525. //all done, run the success callback.
  98526. task.successCallback();
  98527. }
  98528. _this.executeNext();
  98529. });
  98530. });
  98531. }
  98532. else {
  98533. //single simplifier.
  98534. var simplifier = this.getSimplifier(task);
  98535. var runDecimation = function (setting, callback) {
  98536. simplifier.simplify(setting, function (newMesh) {
  98537. task.mesh.addLODLevel(setting.distance, newMesh);
  98538. newMesh.isVisible = true;
  98539. //run the next quality level
  98540. callback();
  98541. });
  98542. };
  98543. BABYLON.AsyncLoop.Run(task.settings.length, function (loop) {
  98544. runDecimation(task.settings[loop.index], function () {
  98545. loop.executeNext();
  98546. });
  98547. }, function () {
  98548. //execution ended, run the success callback.
  98549. if (task.successCallback) {
  98550. task.successCallback();
  98551. }
  98552. _this.executeNext();
  98553. });
  98554. }
  98555. };
  98556. SimplificationQueue.prototype.getSimplifier = function (task) {
  98557. switch (task.simplificationType) {
  98558. case SimplificationType.QUADRATIC:
  98559. default:
  98560. return new QuadraticErrorSimplification(task.mesh);
  98561. }
  98562. };
  98563. return SimplificationQueue;
  98564. }());
  98565. BABYLON.SimplificationQueue = SimplificationQueue;
  98566. /**
  98567. * The implemented types of simplification
  98568. * At the moment only Quadratic Error Decimation is implemented
  98569. */
  98570. var SimplificationType;
  98571. (function (SimplificationType) {
  98572. /** Quadratic error decimation */
  98573. SimplificationType[SimplificationType["QUADRATIC"] = 0] = "QUADRATIC";
  98574. })(SimplificationType = BABYLON.SimplificationType || (BABYLON.SimplificationType = {}));
  98575. var DecimationTriangle = /** @class */ (function () {
  98576. function DecimationTriangle(vertices) {
  98577. this.vertices = vertices;
  98578. this.error = new Array(4);
  98579. this.deleted = false;
  98580. this.isDirty = false;
  98581. this.deletePending = false;
  98582. this.borderFactor = 0;
  98583. }
  98584. return DecimationTriangle;
  98585. }());
  98586. BABYLON.DecimationTriangle = DecimationTriangle;
  98587. var DecimationVertex = /** @class */ (function () {
  98588. function DecimationVertex(position, id) {
  98589. this.position = position;
  98590. this.id = id;
  98591. this.isBorder = true;
  98592. this.q = new QuadraticMatrix();
  98593. this.triangleCount = 0;
  98594. this.triangleStart = 0;
  98595. this.originalOffsets = [];
  98596. }
  98597. DecimationVertex.prototype.updatePosition = function (newPosition) {
  98598. this.position.copyFrom(newPosition);
  98599. };
  98600. return DecimationVertex;
  98601. }());
  98602. BABYLON.DecimationVertex = DecimationVertex;
  98603. var QuadraticMatrix = /** @class */ (function () {
  98604. function QuadraticMatrix(data) {
  98605. this.data = new Array(10);
  98606. for (var i = 0; i < 10; ++i) {
  98607. if (data && data[i]) {
  98608. this.data[i] = data[i];
  98609. }
  98610. else {
  98611. this.data[i] = 0;
  98612. }
  98613. }
  98614. }
  98615. QuadraticMatrix.prototype.det = function (a11, a12, a13, a21, a22, a23, a31, a32, a33) {
  98616. var det = this.data[a11] * this.data[a22] * this.data[a33] + this.data[a13] * this.data[a21] * this.data[a32] +
  98617. this.data[a12] * this.data[a23] * this.data[a31] - this.data[a13] * this.data[a22] * this.data[a31] -
  98618. this.data[a11] * this.data[a23] * this.data[a32] - this.data[a12] * this.data[a21] * this.data[a33];
  98619. return det;
  98620. };
  98621. QuadraticMatrix.prototype.addInPlace = function (matrix) {
  98622. for (var i = 0; i < 10; ++i) {
  98623. this.data[i] += matrix.data[i];
  98624. }
  98625. };
  98626. QuadraticMatrix.prototype.addArrayInPlace = function (data) {
  98627. for (var i = 0; i < 10; ++i) {
  98628. this.data[i] += data[i];
  98629. }
  98630. };
  98631. QuadraticMatrix.prototype.add = function (matrix) {
  98632. var m = new QuadraticMatrix();
  98633. for (var i = 0; i < 10; ++i) {
  98634. m.data[i] = this.data[i] + matrix.data[i];
  98635. }
  98636. return m;
  98637. };
  98638. QuadraticMatrix.FromData = function (a, b, c, d) {
  98639. return new QuadraticMatrix(QuadraticMatrix.DataFromNumbers(a, b, c, d));
  98640. };
  98641. //returning an array to avoid garbage collection
  98642. QuadraticMatrix.DataFromNumbers = function (a, b, c, d) {
  98643. return [a * a, a * b, a * c, a * d, b * b, b * c, b * d, c * c, c * d, d * d];
  98644. };
  98645. return QuadraticMatrix;
  98646. }());
  98647. BABYLON.QuadraticMatrix = QuadraticMatrix;
  98648. var Reference = /** @class */ (function () {
  98649. function Reference(vertexId, triangleId) {
  98650. this.vertexId = vertexId;
  98651. this.triangleId = triangleId;
  98652. }
  98653. return Reference;
  98654. }());
  98655. BABYLON.Reference = Reference;
  98656. /**
  98657. * An implementation of the Quadratic Error simplification algorithm.
  98658. * Original paper : http://www1.cs.columbia.edu/~cs4162/html05s/garland97.pdf
  98659. * Ported mostly from QSlim and http://voxels.blogspot.de/2014/05/quadric-mesh-simplification-with-source.html to babylon JS
  98660. * @author RaananW
  98661. */
  98662. var QuadraticErrorSimplification = /** @class */ (function () {
  98663. function QuadraticErrorSimplification(_mesh) {
  98664. this._mesh = _mesh;
  98665. this.syncIterations = 5000;
  98666. this.aggressiveness = 7;
  98667. this.decimationIterations = 100;
  98668. this.boundingBoxEpsilon = BABYLON.Epsilon;
  98669. }
  98670. QuadraticErrorSimplification.prototype.simplify = function (settings, successCallback) {
  98671. var _this = this;
  98672. this.initDecimatedMesh();
  98673. //iterating through the submeshes array, one after the other.
  98674. BABYLON.AsyncLoop.Run(this._mesh.subMeshes.length, function (loop) {
  98675. _this.initWithMesh(loop.index, function () {
  98676. _this.runDecimation(settings, loop.index, function () {
  98677. loop.executeNext();
  98678. });
  98679. }, settings.optimizeMesh);
  98680. }, function () {
  98681. setTimeout(function () {
  98682. successCallback(_this._reconstructedMesh);
  98683. }, 0);
  98684. });
  98685. };
  98686. QuadraticErrorSimplification.prototype.runDecimation = function (settings, submeshIndex, successCallback) {
  98687. var _this = this;
  98688. var targetCount = ~~(this.triangles.length * settings.quality);
  98689. var deletedTriangles = 0;
  98690. var triangleCount = this.triangles.length;
  98691. var iterationFunction = function (iteration, callback) {
  98692. setTimeout(function () {
  98693. if (iteration % 5 === 0) {
  98694. _this.updateMesh(iteration === 0);
  98695. }
  98696. for (var i = 0; i < _this.triangles.length; ++i) {
  98697. _this.triangles[i].isDirty = false;
  98698. }
  98699. var threshold = 0.000000001 * Math.pow((iteration + 3), _this.aggressiveness);
  98700. var trianglesIterator = function (i) {
  98701. var tIdx = ~~(((_this.triangles.length / 2) + i) % _this.triangles.length);
  98702. var t = _this.triangles[tIdx];
  98703. if (!t)
  98704. return;
  98705. if (t.error[3] > threshold || t.deleted || t.isDirty) {
  98706. return;
  98707. }
  98708. for (var j = 0; j < 3; ++j) {
  98709. if (t.error[j] < threshold) {
  98710. var deleted0 = [];
  98711. var deleted1 = [];
  98712. var v0 = t.vertices[j];
  98713. var v1 = t.vertices[(j + 1) % 3];
  98714. if (v0.isBorder || v1.isBorder)
  98715. continue;
  98716. var p = BABYLON.Vector3.Zero();
  98717. var n = BABYLON.Vector3.Zero();
  98718. var uv = BABYLON.Vector2.Zero();
  98719. var color = new BABYLON.Color4(0, 0, 0, 1);
  98720. _this.calculateError(v0, v1, p, n, uv, color);
  98721. var delTr = new Array();
  98722. if (_this.isFlipped(v0, v1, p, deleted0, t.borderFactor, delTr))
  98723. continue;
  98724. if (_this.isFlipped(v1, v0, p, deleted1, t.borderFactor, delTr))
  98725. continue;
  98726. if (deleted0.indexOf(true) < 0 || deleted1.indexOf(true) < 0)
  98727. continue;
  98728. var uniqueArray = new Array();
  98729. delTr.forEach(function (deletedT) {
  98730. if (uniqueArray.indexOf(deletedT) === -1) {
  98731. deletedT.deletePending = true;
  98732. uniqueArray.push(deletedT);
  98733. }
  98734. });
  98735. if (uniqueArray.length % 2 !== 0) {
  98736. continue;
  98737. }
  98738. v0.q = v1.q.add(v0.q);
  98739. v0.updatePosition(p);
  98740. var tStart = _this.references.length;
  98741. deletedTriangles = _this.updateTriangles(v0, v0, deleted0, deletedTriangles);
  98742. deletedTriangles = _this.updateTriangles(v0, v1, deleted1, deletedTriangles);
  98743. var tCount = _this.references.length - tStart;
  98744. if (tCount <= v0.triangleCount) {
  98745. if (tCount) {
  98746. for (var c = 0; c < tCount; c++) {
  98747. _this.references[v0.triangleStart + c] = _this.references[tStart + c];
  98748. }
  98749. }
  98750. }
  98751. else {
  98752. v0.triangleStart = tStart;
  98753. }
  98754. v0.triangleCount = tCount;
  98755. break;
  98756. }
  98757. }
  98758. };
  98759. BABYLON.AsyncLoop.SyncAsyncForLoop(_this.triangles.length, _this.syncIterations, trianglesIterator, callback, function () { return (triangleCount - deletedTriangles <= targetCount); });
  98760. }, 0);
  98761. };
  98762. BABYLON.AsyncLoop.Run(this.decimationIterations, function (loop) {
  98763. if (triangleCount - deletedTriangles <= targetCount)
  98764. loop.breakLoop();
  98765. else {
  98766. iterationFunction(loop.index, function () {
  98767. loop.executeNext();
  98768. });
  98769. }
  98770. }, function () {
  98771. setTimeout(function () {
  98772. //reconstruct this part of the mesh
  98773. _this.reconstructMesh(submeshIndex);
  98774. successCallback();
  98775. }, 0);
  98776. });
  98777. };
  98778. QuadraticErrorSimplification.prototype.initWithMesh = function (submeshIndex, callback, optimizeMesh) {
  98779. var _this = this;
  98780. this.vertices = [];
  98781. this.triangles = [];
  98782. var positionData = this._mesh.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  98783. var indices = this._mesh.getIndices();
  98784. var submesh = this._mesh.subMeshes[submeshIndex];
  98785. var findInVertices = function (positionToSearch) {
  98786. if (optimizeMesh) {
  98787. for (var ii = 0; ii < _this.vertices.length; ++ii) {
  98788. if (_this.vertices[ii].position.equals(positionToSearch)) {
  98789. return _this.vertices[ii];
  98790. }
  98791. }
  98792. }
  98793. return null;
  98794. };
  98795. var vertexReferences = [];
  98796. var vertexInit = function (i) {
  98797. if (!positionData) {
  98798. return;
  98799. }
  98800. var offset = i + submesh.verticesStart;
  98801. var position = BABYLON.Vector3.FromArray(positionData, offset * 3);
  98802. var vertex = findInVertices(position) || new DecimationVertex(position, _this.vertices.length);
  98803. vertex.originalOffsets.push(offset);
  98804. if (vertex.id === _this.vertices.length) {
  98805. _this.vertices.push(vertex);
  98806. }
  98807. vertexReferences.push(vertex.id);
  98808. };
  98809. //var totalVertices = mesh.getTotalVertices();
  98810. var totalVertices = submesh.verticesCount;
  98811. BABYLON.AsyncLoop.SyncAsyncForLoop(totalVertices, (this.syncIterations / 4) >> 0, vertexInit, function () {
  98812. var indicesInit = function (i) {
  98813. if (!indices) {
  98814. return;
  98815. }
  98816. var offset = (submesh.indexStart / 3) + i;
  98817. var pos = (offset * 3);
  98818. var i0 = indices[pos + 0];
  98819. var i1 = indices[pos + 1];
  98820. var i2 = indices[pos + 2];
  98821. var v0 = _this.vertices[vertexReferences[i0 - submesh.verticesStart]];
  98822. var v1 = _this.vertices[vertexReferences[i1 - submesh.verticesStart]];
  98823. var v2 = _this.vertices[vertexReferences[i2 - submesh.verticesStart]];
  98824. var triangle = new DecimationTriangle([v0, v1, v2]);
  98825. triangle.originalOffset = pos;
  98826. _this.triangles.push(triangle);
  98827. };
  98828. BABYLON.AsyncLoop.SyncAsyncForLoop(submesh.indexCount / 3, _this.syncIterations, indicesInit, function () {
  98829. _this.init(callback);
  98830. });
  98831. });
  98832. };
  98833. QuadraticErrorSimplification.prototype.init = function (callback) {
  98834. var _this = this;
  98835. var triangleInit1 = function (i) {
  98836. var t = _this.triangles[i];
  98837. t.normal = BABYLON.Vector3.Cross(t.vertices[1].position.subtract(t.vertices[0].position), t.vertices[2].position.subtract(t.vertices[0].position)).normalize();
  98838. for (var j = 0; j < 3; j++) {
  98839. t.vertices[j].q.addArrayInPlace(QuadraticMatrix.DataFromNumbers(t.normal.x, t.normal.y, t.normal.z, -(BABYLON.Vector3.Dot(t.normal, t.vertices[0].position))));
  98840. }
  98841. };
  98842. BABYLON.AsyncLoop.SyncAsyncForLoop(this.triangles.length, this.syncIterations, triangleInit1, function () {
  98843. var triangleInit2 = function (i) {
  98844. var t = _this.triangles[i];
  98845. for (var j = 0; j < 3; ++j) {
  98846. t.error[j] = _this.calculateError(t.vertices[j], t.vertices[(j + 1) % 3]);
  98847. }
  98848. t.error[3] = Math.min(t.error[0], t.error[1], t.error[2]);
  98849. };
  98850. BABYLON.AsyncLoop.SyncAsyncForLoop(_this.triangles.length, _this.syncIterations, triangleInit2, function () {
  98851. callback();
  98852. });
  98853. });
  98854. };
  98855. QuadraticErrorSimplification.prototype.reconstructMesh = function (submeshIndex) {
  98856. var newTriangles = [];
  98857. var i;
  98858. for (i = 0; i < this.vertices.length; ++i) {
  98859. this.vertices[i].triangleCount = 0;
  98860. }
  98861. var t;
  98862. var j;
  98863. for (i = 0; i < this.triangles.length; ++i) {
  98864. if (!this.triangles[i].deleted) {
  98865. t = this.triangles[i];
  98866. for (j = 0; j < 3; ++j) {
  98867. t.vertices[j].triangleCount = 1;
  98868. }
  98869. newTriangles.push(t);
  98870. }
  98871. }
  98872. var newPositionData = (this._reconstructedMesh.getVerticesData(BABYLON.VertexBuffer.PositionKind) || []);
  98873. var newNormalData = (this._reconstructedMesh.getVerticesData(BABYLON.VertexBuffer.NormalKind) || []);
  98874. var newUVsData = (this._reconstructedMesh.getVerticesData(BABYLON.VertexBuffer.UVKind) || []);
  98875. var newColorsData = (this._reconstructedMesh.getVerticesData(BABYLON.VertexBuffer.ColorKind) || []);
  98876. var normalData = this._mesh.getVerticesData(BABYLON.VertexBuffer.NormalKind);
  98877. var uvs = this._mesh.getVerticesData(BABYLON.VertexBuffer.UVKind);
  98878. var colorsData = this._mesh.getVerticesData(BABYLON.VertexBuffer.ColorKind);
  98879. var vertexCount = 0;
  98880. for (i = 0; i < this.vertices.length; ++i) {
  98881. var vertex = this.vertices[i];
  98882. vertex.id = vertexCount;
  98883. if (vertex.triangleCount) {
  98884. vertex.originalOffsets.forEach(function (originalOffset) {
  98885. if (!normalData) {
  98886. return;
  98887. }
  98888. newPositionData.push(vertex.position.x);
  98889. newPositionData.push(vertex.position.y);
  98890. newPositionData.push(vertex.position.z);
  98891. newNormalData.push(normalData[originalOffset * 3]);
  98892. newNormalData.push(normalData[(originalOffset * 3) + 1]);
  98893. newNormalData.push(normalData[(originalOffset * 3) + 2]);
  98894. if (uvs && uvs.length) {
  98895. newUVsData.push(uvs[(originalOffset * 2)]);
  98896. newUVsData.push(uvs[(originalOffset * 2) + 1]);
  98897. }
  98898. else if (colorsData && colorsData.length) {
  98899. newColorsData.push(colorsData[(originalOffset * 4)]);
  98900. newColorsData.push(colorsData[(originalOffset * 4) + 1]);
  98901. newColorsData.push(colorsData[(originalOffset * 4) + 2]);
  98902. newColorsData.push(colorsData[(originalOffset * 4) + 3]);
  98903. }
  98904. ++vertexCount;
  98905. });
  98906. }
  98907. }
  98908. var startingIndex = this._reconstructedMesh.getTotalIndices();
  98909. var startingVertex = this._reconstructedMesh.getTotalVertices();
  98910. var submeshesArray = this._reconstructedMesh.subMeshes;
  98911. this._reconstructedMesh.subMeshes = [];
  98912. var newIndicesArray = this._reconstructedMesh.getIndices(); //[];
  98913. var originalIndices = this._mesh.getIndices();
  98914. for (i = 0; i < newTriangles.length; ++i) {
  98915. t = newTriangles[i]; //now get the new referencing point for each vertex
  98916. [0, 1, 2].forEach(function (idx) {
  98917. var id = originalIndices[t.originalOffset + idx];
  98918. var offset = t.vertices[idx].originalOffsets.indexOf(id);
  98919. if (offset < 0)
  98920. offset = 0;
  98921. newIndicesArray.push(t.vertices[idx].id + offset + startingVertex);
  98922. });
  98923. }
  98924. //overwriting the old vertex buffers and indices.
  98925. this._reconstructedMesh.setIndices(newIndicesArray);
  98926. this._reconstructedMesh.setVerticesData(BABYLON.VertexBuffer.PositionKind, newPositionData);
  98927. this._reconstructedMesh.setVerticesData(BABYLON.VertexBuffer.NormalKind, newNormalData);
  98928. if (newUVsData.length > 0)
  98929. this._reconstructedMesh.setVerticesData(BABYLON.VertexBuffer.UVKind, newUVsData);
  98930. if (newColorsData.length > 0)
  98931. this._reconstructedMesh.setVerticesData(BABYLON.VertexBuffer.ColorKind, newColorsData);
  98932. //create submesh
  98933. var originalSubmesh = this._mesh.subMeshes[submeshIndex];
  98934. if (submeshIndex > 0) {
  98935. this._reconstructedMesh.subMeshes = [];
  98936. submeshesArray.forEach(function (submesh) {
  98937. BABYLON.SubMesh.AddToMesh(submesh.materialIndex, submesh.verticesStart, submesh.verticesCount, /* 0, newPositionData.length/3, */ submesh.indexStart, submesh.indexCount, submesh.getMesh());
  98938. });
  98939. BABYLON.SubMesh.AddToMesh(originalSubmesh.materialIndex, startingVertex, vertexCount, /* 0, newPositionData.length / 3, */ startingIndex, newTriangles.length * 3, this._reconstructedMesh);
  98940. }
  98941. };
  98942. QuadraticErrorSimplification.prototype.initDecimatedMesh = function () {
  98943. this._reconstructedMesh = new BABYLON.Mesh(this._mesh.name + "Decimated", this._mesh.getScene());
  98944. this._reconstructedMesh.material = this._mesh.material;
  98945. this._reconstructedMesh.parent = this._mesh.parent;
  98946. this._reconstructedMesh.isVisible = false;
  98947. this._reconstructedMesh.renderingGroupId = this._mesh.renderingGroupId;
  98948. };
  98949. QuadraticErrorSimplification.prototype.isFlipped = function (vertex1, vertex2, point, deletedArray, borderFactor, delTr) {
  98950. for (var i = 0; i < vertex1.triangleCount; ++i) {
  98951. var t = this.triangles[this.references[vertex1.triangleStart + i].triangleId];
  98952. if (t.deleted)
  98953. continue;
  98954. var s = this.references[vertex1.triangleStart + i].vertexId;
  98955. var v1 = t.vertices[(s + 1) % 3];
  98956. var v2 = t.vertices[(s + 2) % 3];
  98957. if ((v1 === vertex2 || v2 === vertex2)) {
  98958. deletedArray[i] = true;
  98959. delTr.push(t);
  98960. continue;
  98961. }
  98962. var d1 = v1.position.subtract(point);
  98963. d1 = d1.normalize();
  98964. var d2 = v2.position.subtract(point);
  98965. d2 = d2.normalize();
  98966. if (Math.abs(BABYLON.Vector3.Dot(d1, d2)) > 0.999)
  98967. return true;
  98968. var normal = BABYLON.Vector3.Cross(d1, d2).normalize();
  98969. deletedArray[i] = false;
  98970. if (BABYLON.Vector3.Dot(normal, t.normal) < 0.2)
  98971. return true;
  98972. }
  98973. return false;
  98974. };
  98975. QuadraticErrorSimplification.prototype.updateTriangles = function (origVertex, vertex, deletedArray, deletedTriangles) {
  98976. var newDeleted = deletedTriangles;
  98977. for (var i = 0; i < vertex.triangleCount; ++i) {
  98978. var ref = this.references[vertex.triangleStart + i];
  98979. var t = this.triangles[ref.triangleId];
  98980. if (t.deleted)
  98981. continue;
  98982. if (deletedArray[i] && t.deletePending) {
  98983. t.deleted = true;
  98984. newDeleted++;
  98985. continue;
  98986. }
  98987. t.vertices[ref.vertexId] = origVertex;
  98988. t.isDirty = true;
  98989. t.error[0] = this.calculateError(t.vertices[0], t.vertices[1]) + (t.borderFactor / 2);
  98990. t.error[1] = this.calculateError(t.vertices[1], t.vertices[2]) + (t.borderFactor / 2);
  98991. t.error[2] = this.calculateError(t.vertices[2], t.vertices[0]) + (t.borderFactor / 2);
  98992. t.error[3] = Math.min(t.error[0], t.error[1], t.error[2]);
  98993. this.references.push(ref);
  98994. }
  98995. return newDeleted;
  98996. };
  98997. QuadraticErrorSimplification.prototype.identifyBorder = function () {
  98998. for (var i = 0; i < this.vertices.length; ++i) {
  98999. var vCount = [];
  99000. var vId = [];
  99001. var v = this.vertices[i];
  99002. var j;
  99003. for (j = 0; j < v.triangleCount; ++j) {
  99004. var triangle = this.triangles[this.references[v.triangleStart + j].triangleId];
  99005. for (var ii = 0; ii < 3; ii++) {
  99006. var ofs = 0;
  99007. var vv = triangle.vertices[ii];
  99008. while (ofs < vCount.length) {
  99009. if (vId[ofs] === vv.id)
  99010. break;
  99011. ++ofs;
  99012. }
  99013. if (ofs === vCount.length) {
  99014. vCount.push(1);
  99015. vId.push(vv.id);
  99016. }
  99017. else {
  99018. vCount[ofs]++;
  99019. }
  99020. }
  99021. }
  99022. for (j = 0; j < vCount.length; ++j) {
  99023. if (vCount[j] === 1) {
  99024. this.vertices[vId[j]].isBorder = true;
  99025. }
  99026. else {
  99027. this.vertices[vId[j]].isBorder = false;
  99028. }
  99029. }
  99030. }
  99031. };
  99032. QuadraticErrorSimplification.prototype.updateMesh = function (identifyBorders) {
  99033. if (identifyBorders === void 0) { identifyBorders = false; }
  99034. var i;
  99035. if (!identifyBorders) {
  99036. var newTrianglesVector = [];
  99037. for (i = 0; i < this.triangles.length; ++i) {
  99038. if (!this.triangles[i].deleted) {
  99039. newTrianglesVector.push(this.triangles[i]);
  99040. }
  99041. }
  99042. this.triangles = newTrianglesVector;
  99043. }
  99044. for (i = 0; i < this.vertices.length; ++i) {
  99045. this.vertices[i].triangleCount = 0;
  99046. this.vertices[i].triangleStart = 0;
  99047. }
  99048. var t;
  99049. var j;
  99050. var v;
  99051. for (i = 0; i < this.triangles.length; ++i) {
  99052. t = this.triangles[i];
  99053. for (j = 0; j < 3; ++j) {
  99054. v = t.vertices[j];
  99055. v.triangleCount++;
  99056. }
  99057. }
  99058. var tStart = 0;
  99059. for (i = 0; i < this.vertices.length; ++i) {
  99060. this.vertices[i].triangleStart = tStart;
  99061. tStart += this.vertices[i].triangleCount;
  99062. this.vertices[i].triangleCount = 0;
  99063. }
  99064. var newReferences = new Array(this.triangles.length * 3);
  99065. for (i = 0; i < this.triangles.length; ++i) {
  99066. t = this.triangles[i];
  99067. for (j = 0; j < 3; ++j) {
  99068. v = t.vertices[j];
  99069. newReferences[v.triangleStart + v.triangleCount] = new Reference(j, i);
  99070. v.triangleCount++;
  99071. }
  99072. }
  99073. this.references = newReferences;
  99074. if (identifyBorders) {
  99075. this.identifyBorder();
  99076. }
  99077. };
  99078. QuadraticErrorSimplification.prototype.vertexError = function (q, point) {
  99079. var x = point.x;
  99080. var y = point.y;
  99081. var z = point.z;
  99082. return q.data[0] * x * x + 2 * q.data[1] * x * y + 2 * q.data[2] * x * z + 2 * q.data[3] * x + q.data[4] * y * y
  99083. + 2 * q.data[5] * y * z + 2 * q.data[6] * y + q.data[7] * z * z + 2 * q.data[8] * z + q.data[9];
  99084. };
  99085. QuadraticErrorSimplification.prototype.calculateError = function (vertex1, vertex2, pointResult, normalResult, uvResult, colorResult) {
  99086. var q = vertex1.q.add(vertex2.q);
  99087. var border = vertex1.isBorder && vertex2.isBorder;
  99088. var error = 0;
  99089. var qDet = q.det(0, 1, 2, 1, 4, 5, 2, 5, 7);
  99090. if (qDet !== 0 && !border) {
  99091. if (!pointResult) {
  99092. pointResult = BABYLON.Vector3.Zero();
  99093. }
  99094. pointResult.x = -1 / qDet * (q.det(1, 2, 3, 4, 5, 6, 5, 7, 8));
  99095. pointResult.y = 1 / qDet * (q.det(0, 2, 3, 1, 5, 6, 2, 7, 8));
  99096. pointResult.z = -1 / qDet * (q.det(0, 1, 3, 1, 4, 6, 2, 5, 8));
  99097. error = this.vertexError(q, pointResult);
  99098. }
  99099. else {
  99100. var p3 = (vertex1.position.add(vertex2.position)).divide(new BABYLON.Vector3(2, 2, 2));
  99101. //var norm3 = (vertex1.normal.add(vertex2.normal)).divide(new Vector3(2, 2, 2)).normalize();
  99102. var error1 = this.vertexError(q, vertex1.position);
  99103. var error2 = this.vertexError(q, vertex2.position);
  99104. var error3 = this.vertexError(q, p3);
  99105. error = Math.min(error1, error2, error3);
  99106. if (error === error1) {
  99107. if (pointResult) {
  99108. pointResult.copyFrom(vertex1.position);
  99109. }
  99110. }
  99111. else if (error === error2) {
  99112. if (pointResult) {
  99113. pointResult.copyFrom(vertex2.position);
  99114. }
  99115. }
  99116. else {
  99117. if (pointResult) {
  99118. pointResult.copyFrom(p3);
  99119. }
  99120. }
  99121. }
  99122. return error;
  99123. };
  99124. return QuadraticErrorSimplification;
  99125. }());
  99126. BABYLON.QuadraticErrorSimplification = QuadraticErrorSimplification;
  99127. })(BABYLON || (BABYLON = {}));
  99128. //# sourceMappingURL=babylon.meshSimplification.js.map
  99129. var BABYLON;
  99130. (function (BABYLON) {
  99131. Object.defineProperty(BABYLON.Scene.prototype, "simplificationQueue", {
  99132. get: function () {
  99133. if (!this._simplificationQueue) {
  99134. this._simplificationQueue = new BABYLON.SimplificationQueue();
  99135. var component = this._getComponent(BABYLON.SceneComponentConstants.NAME_SIMPLIFICATIONQUEUE);
  99136. if (!component) {
  99137. component = new SimplicationQueueSceneComponent(this);
  99138. this._addComponent(component);
  99139. }
  99140. }
  99141. return this._simplificationQueue;
  99142. },
  99143. set: function (value) {
  99144. this._simplificationQueue = value;
  99145. },
  99146. enumerable: true,
  99147. configurable: true
  99148. });
  99149. BABYLON.Mesh.prototype.simplify = function (settings, parallelProcessing, simplificationType, successCallback) {
  99150. if (parallelProcessing === void 0) { parallelProcessing = true; }
  99151. if (simplificationType === void 0) { simplificationType = BABYLON.SimplificationType.QUADRATIC; }
  99152. this.getScene().simplificationQueue.addTask({
  99153. settings: settings,
  99154. parallelProcessing: parallelProcessing,
  99155. mesh: this,
  99156. simplificationType: simplificationType,
  99157. successCallback: successCallback
  99158. });
  99159. return this;
  99160. };
  99161. /**
  99162. * Defines the simplification queue scene component responsible to help scheduling the various simplification task
  99163. * created in a scene
  99164. */
  99165. var SimplicationQueueSceneComponent = /** @class */ (function () {
  99166. /**
  99167. * Creates a new instance of the component for the given scene
  99168. * @param scene Defines the scene to register the component in
  99169. */
  99170. function SimplicationQueueSceneComponent(scene) {
  99171. /**
  99172. * The component name helpfull to identify the component in the list of scene components.
  99173. */
  99174. this.name = BABYLON.SceneComponentConstants.NAME_SIMPLIFICATIONQUEUE;
  99175. this.scene = scene;
  99176. }
  99177. /**
  99178. * Registers the component in a given scene
  99179. */
  99180. SimplicationQueueSceneComponent.prototype.register = function () {
  99181. this.scene._beforeCameraUpdateStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORECAMERAUPDATE_SIMPLIFICATIONQUEUE, this, this._beforeCameraUpdate);
  99182. };
  99183. /**
  99184. * Rebuilds the elements related to this component in case of
  99185. * context lost for instance.
  99186. */
  99187. SimplicationQueueSceneComponent.prototype.rebuild = function () {
  99188. // Nothing to do for this component
  99189. };
  99190. /**
  99191. * Disposes the component and the associated ressources
  99192. */
  99193. SimplicationQueueSceneComponent.prototype.dispose = function () {
  99194. // Nothing to do for this component
  99195. };
  99196. SimplicationQueueSceneComponent.prototype._beforeCameraUpdate = function () {
  99197. if (this.scene._simplificationQueue && !this.scene._simplificationQueue.running) {
  99198. this.scene._simplificationQueue.executeNext();
  99199. }
  99200. };
  99201. return SimplicationQueueSceneComponent;
  99202. }());
  99203. BABYLON.SimplicationQueueSceneComponent = SimplicationQueueSceneComponent;
  99204. })(BABYLON || (BABYLON = {}));
  99205. //# sourceMappingURL=babylon.meshSimplificationSceneComponent.js.map
  99206. var BABYLON;
  99207. (function (BABYLON) {
  99208. var MeshLODLevel = /** @class */ (function () {
  99209. function MeshLODLevel(distance, mesh) {
  99210. this.distance = distance;
  99211. this.mesh = mesh;
  99212. }
  99213. return MeshLODLevel;
  99214. }());
  99215. BABYLON.MeshLODLevel = MeshLODLevel;
  99216. })(BABYLON || (BABYLON = {}));
  99217. //# sourceMappingURL=babylon.meshLODLevel.js.map
  99218. var BABYLON;
  99219. (function (BABYLON) {
  99220. /**
  99221. * Defines the root class used to create scene optimization to use with SceneOptimizer
  99222. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99223. */
  99224. var SceneOptimization = /** @class */ (function () {
  99225. /**
  99226. * Creates the SceneOptimization object
  99227. * @param priority defines the priority of this optimization (0 by default which means first in the list)
  99228. * @param desc defines the description associated with the optimization
  99229. */
  99230. function SceneOptimization(
  99231. /**
  99232. * Defines the priority of this optimization (0 by default which means first in the list)
  99233. */
  99234. priority) {
  99235. if (priority === void 0) { priority = 0; }
  99236. this.priority = priority;
  99237. }
  99238. /**
  99239. * Gets a string describing the action executed by the current optimization
  99240. * @returns description string
  99241. */
  99242. SceneOptimization.prototype.getDescription = function () {
  99243. return "";
  99244. };
  99245. /**
  99246. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99247. * @param scene defines the current scene where to apply this optimization
  99248. * @param optimizer defines the current optimizer
  99249. * @returns true if everything that can be done was applied
  99250. */
  99251. SceneOptimization.prototype.apply = function (scene, optimizer) {
  99252. return true;
  99253. };
  99254. ;
  99255. return SceneOptimization;
  99256. }());
  99257. BABYLON.SceneOptimization = SceneOptimization;
  99258. /**
  99259. * Defines an optimization used to reduce the size of render target textures
  99260. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99261. */
  99262. var TextureOptimization = /** @class */ (function (_super) {
  99263. __extends(TextureOptimization, _super);
  99264. /**
  99265. * Creates the TextureOptimization object
  99266. * @param priority defines the priority of this optimization (0 by default which means first in the list)
  99267. * @param maximumSize defines the maximum sized allowed for textures (1024 is the default value). If a texture is bigger, it will be scaled down using a factor defined by the step parameter
  99268. * @param step defines the factor (0.5 by default) used to scale down textures bigger than maximum sized allowed.
  99269. */
  99270. function TextureOptimization(
  99271. /**
  99272. * Defines the priority of this optimization (0 by default which means first in the list)
  99273. */
  99274. priority,
  99275. /**
  99276. * Defines the maximum sized allowed for textures (1024 is the default value). If a texture is bigger, it will be scaled down using a factor defined by the step parameter
  99277. */
  99278. maximumSize,
  99279. /**
  99280. * Defines the factor (0.5 by default) used to scale down textures bigger than maximum sized allowed.
  99281. */
  99282. step) {
  99283. if (priority === void 0) { priority = 0; }
  99284. if (maximumSize === void 0) { maximumSize = 1024; }
  99285. if (step === void 0) { step = 0.5; }
  99286. var _this = _super.call(this, priority) || this;
  99287. _this.priority = priority;
  99288. _this.maximumSize = maximumSize;
  99289. _this.step = step;
  99290. return _this;
  99291. }
  99292. /**
  99293. * Gets a string describing the action executed by the current optimization
  99294. * @returns description string
  99295. */
  99296. TextureOptimization.prototype.getDescription = function () {
  99297. return "Reducing render target texture size to " + this.maximumSize;
  99298. };
  99299. /**
  99300. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99301. * @param scene defines the current scene where to apply this optimization
  99302. * @param optimizer defines the current optimizer
  99303. * @returns true if everything that can be done was applied
  99304. */
  99305. TextureOptimization.prototype.apply = function (scene, optimizer) {
  99306. var allDone = true;
  99307. for (var index = 0; index < scene.textures.length; index++) {
  99308. var texture = scene.textures[index];
  99309. if (!texture.canRescale || texture.getContext) {
  99310. continue;
  99311. }
  99312. var currentSize = texture.getSize();
  99313. var maxDimension = Math.max(currentSize.width, currentSize.height);
  99314. if (maxDimension > this.maximumSize) {
  99315. texture.scale(this.step);
  99316. allDone = false;
  99317. }
  99318. }
  99319. return allDone;
  99320. };
  99321. return TextureOptimization;
  99322. }(SceneOptimization));
  99323. BABYLON.TextureOptimization = TextureOptimization;
  99324. /**
  99325. * Defines an optimization used to increase or decrease the rendering resolution
  99326. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99327. */
  99328. var HardwareScalingOptimization = /** @class */ (function (_super) {
  99329. __extends(HardwareScalingOptimization, _super);
  99330. /**
  99331. * Creates the HardwareScalingOptimization object
  99332. * @param priority defines the priority of this optimization (0 by default which means first in the list)
  99333. * @param maximumScale defines the maximum scale to use (2 by default)
  99334. * @param step defines the step to use between two passes (0.5 by default)
  99335. */
  99336. function HardwareScalingOptimization(
  99337. /**
  99338. * Defines the priority of this optimization (0 by default which means first in the list)
  99339. */
  99340. priority,
  99341. /**
  99342. * Defines the maximum scale to use (2 by default)
  99343. */
  99344. maximumScale,
  99345. /**
  99346. * Defines the step to use between two passes (0.5 by default)
  99347. */
  99348. step) {
  99349. if (priority === void 0) { priority = 0; }
  99350. if (maximumScale === void 0) { maximumScale = 2; }
  99351. if (step === void 0) { step = 0.25; }
  99352. var _this = _super.call(this, priority) || this;
  99353. _this.priority = priority;
  99354. _this.maximumScale = maximumScale;
  99355. _this.step = step;
  99356. _this._currentScale = -1;
  99357. _this._directionOffset = 1;
  99358. return _this;
  99359. }
  99360. /**
  99361. * Gets a string describing the action executed by the current optimization
  99362. * @return description string
  99363. */
  99364. HardwareScalingOptimization.prototype.getDescription = function () {
  99365. return "Setting hardware scaling level to " + this._currentScale;
  99366. };
  99367. /**
  99368. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99369. * @param scene defines the current scene where to apply this optimization
  99370. * @param optimizer defines the current optimizer
  99371. * @returns true if everything that can be done was applied
  99372. */
  99373. HardwareScalingOptimization.prototype.apply = function (scene, optimizer) {
  99374. if (this._currentScale === -1) {
  99375. this._currentScale = scene.getEngine().getHardwareScalingLevel();
  99376. if (this._currentScale > this.maximumScale) {
  99377. this._directionOffset = -1;
  99378. }
  99379. }
  99380. this._currentScale += this._directionOffset * this.step;
  99381. scene.getEngine().setHardwareScalingLevel(this._currentScale);
  99382. return this._directionOffset === 1 ? this._currentScale >= this.maximumScale : this._currentScale <= this.maximumScale;
  99383. };
  99384. ;
  99385. return HardwareScalingOptimization;
  99386. }(SceneOptimization));
  99387. BABYLON.HardwareScalingOptimization = HardwareScalingOptimization;
  99388. /**
  99389. * Defines an optimization used to remove shadows
  99390. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99391. */
  99392. var ShadowsOptimization = /** @class */ (function (_super) {
  99393. __extends(ShadowsOptimization, _super);
  99394. function ShadowsOptimization() {
  99395. return _super !== null && _super.apply(this, arguments) || this;
  99396. }
  99397. /**
  99398. * Gets a string describing the action executed by the current optimization
  99399. * @return description string
  99400. */
  99401. ShadowsOptimization.prototype.getDescription = function () {
  99402. return "Turning shadows on/off";
  99403. };
  99404. /**
  99405. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99406. * @param scene defines the current scene where to apply this optimization
  99407. * @param optimizer defines the current optimizer
  99408. * @returns true if everything that can be done was applied
  99409. */
  99410. ShadowsOptimization.prototype.apply = function (scene, optimizer) {
  99411. scene.shadowsEnabled = optimizer.isInImprovementMode;
  99412. return true;
  99413. };
  99414. ;
  99415. return ShadowsOptimization;
  99416. }(SceneOptimization));
  99417. BABYLON.ShadowsOptimization = ShadowsOptimization;
  99418. /**
  99419. * Defines an optimization used to turn post-processes off
  99420. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99421. */
  99422. var PostProcessesOptimization = /** @class */ (function (_super) {
  99423. __extends(PostProcessesOptimization, _super);
  99424. function PostProcessesOptimization() {
  99425. return _super !== null && _super.apply(this, arguments) || this;
  99426. }
  99427. /**
  99428. * Gets a string describing the action executed by the current optimization
  99429. * @return description string
  99430. */
  99431. PostProcessesOptimization.prototype.getDescription = function () {
  99432. return "Turning post-processes on/off";
  99433. };
  99434. /**
  99435. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99436. * @param scene defines the current scene where to apply this optimization
  99437. * @param optimizer defines the current optimizer
  99438. * @returns true if everything that can be done was applied
  99439. */
  99440. PostProcessesOptimization.prototype.apply = function (scene, optimizer) {
  99441. scene.postProcessesEnabled = optimizer.isInImprovementMode;
  99442. return true;
  99443. };
  99444. ;
  99445. return PostProcessesOptimization;
  99446. }(SceneOptimization));
  99447. BABYLON.PostProcessesOptimization = PostProcessesOptimization;
  99448. /**
  99449. * Defines an optimization used to turn lens flares off
  99450. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99451. */
  99452. var LensFlaresOptimization = /** @class */ (function (_super) {
  99453. __extends(LensFlaresOptimization, _super);
  99454. function LensFlaresOptimization() {
  99455. return _super !== null && _super.apply(this, arguments) || this;
  99456. }
  99457. /**
  99458. * Gets a string describing the action executed by the current optimization
  99459. * @return description string
  99460. */
  99461. LensFlaresOptimization.prototype.getDescription = function () {
  99462. return "Turning lens flares on/off";
  99463. };
  99464. /**
  99465. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99466. * @param scene defines the current scene where to apply this optimization
  99467. * @param optimizer defines the current optimizer
  99468. * @returns true if everything that can be done was applied
  99469. */
  99470. LensFlaresOptimization.prototype.apply = function (scene, optimizer) {
  99471. scene.lensFlaresEnabled = optimizer.isInImprovementMode;
  99472. return true;
  99473. };
  99474. ;
  99475. return LensFlaresOptimization;
  99476. }(SceneOptimization));
  99477. BABYLON.LensFlaresOptimization = LensFlaresOptimization;
  99478. /**
  99479. * Defines an optimization based on user defined callback.
  99480. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99481. */
  99482. var CustomOptimization = /** @class */ (function (_super) {
  99483. __extends(CustomOptimization, _super);
  99484. function CustomOptimization() {
  99485. return _super !== null && _super.apply(this, arguments) || this;
  99486. }
  99487. /**
  99488. * Gets a string describing the action executed by the current optimization
  99489. * @returns description string
  99490. */
  99491. CustomOptimization.prototype.getDescription = function () {
  99492. if (this.onGetDescription) {
  99493. return this.onGetDescription();
  99494. }
  99495. return "Running user defined callback";
  99496. };
  99497. /**
  99498. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99499. * @param scene defines the current scene where to apply this optimization
  99500. * @param optimizer defines the current optimizer
  99501. * @returns true if everything that can be done was applied
  99502. */
  99503. CustomOptimization.prototype.apply = function (scene, optimizer) {
  99504. if (this.onApply) {
  99505. return this.onApply(scene, optimizer);
  99506. }
  99507. return true;
  99508. };
  99509. ;
  99510. return CustomOptimization;
  99511. }(SceneOptimization));
  99512. BABYLON.CustomOptimization = CustomOptimization;
  99513. /**
  99514. * Defines an optimization used to turn particles off
  99515. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99516. */
  99517. var ParticlesOptimization = /** @class */ (function (_super) {
  99518. __extends(ParticlesOptimization, _super);
  99519. function ParticlesOptimization() {
  99520. return _super !== null && _super.apply(this, arguments) || this;
  99521. }
  99522. /**
  99523. * Gets a string describing the action executed by the current optimization
  99524. * @return description string
  99525. */
  99526. ParticlesOptimization.prototype.getDescription = function () {
  99527. return "Turning particles on/off";
  99528. };
  99529. /**
  99530. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99531. * @param scene defines the current scene where to apply this optimization
  99532. * @param optimizer defines the current optimizer
  99533. * @returns true if everything that can be done was applied
  99534. */
  99535. ParticlesOptimization.prototype.apply = function (scene, optimizer) {
  99536. scene.particlesEnabled = optimizer.isInImprovementMode;
  99537. return true;
  99538. };
  99539. ;
  99540. return ParticlesOptimization;
  99541. }(SceneOptimization));
  99542. BABYLON.ParticlesOptimization = ParticlesOptimization;
  99543. /**
  99544. * Defines an optimization used to turn render targets off
  99545. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99546. */
  99547. var RenderTargetsOptimization = /** @class */ (function (_super) {
  99548. __extends(RenderTargetsOptimization, _super);
  99549. function RenderTargetsOptimization() {
  99550. return _super !== null && _super.apply(this, arguments) || this;
  99551. }
  99552. /**
  99553. * Gets a string describing the action executed by the current optimization
  99554. * @return description string
  99555. */
  99556. RenderTargetsOptimization.prototype.getDescription = function () {
  99557. return "Turning render targets off";
  99558. };
  99559. /**
  99560. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99561. * @param scene defines the current scene where to apply this optimization
  99562. * @param optimizer defines the current optimizer
  99563. * @returns true if everything that can be done was applied
  99564. */
  99565. RenderTargetsOptimization.prototype.apply = function (scene, optimizer) {
  99566. scene.renderTargetsEnabled = optimizer.isInImprovementMode;
  99567. return true;
  99568. };
  99569. ;
  99570. return RenderTargetsOptimization;
  99571. }(SceneOptimization));
  99572. BABYLON.RenderTargetsOptimization = RenderTargetsOptimization;
  99573. /**
  99574. * Defines an optimization used to merge meshes with compatible materials
  99575. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99576. */
  99577. var MergeMeshesOptimization = /** @class */ (function (_super) {
  99578. __extends(MergeMeshesOptimization, _super);
  99579. function MergeMeshesOptimization() {
  99580. var _this = _super !== null && _super.apply(this, arguments) || this;
  99581. _this._canBeMerged = function (abstractMesh) {
  99582. if (!(abstractMesh instanceof BABYLON.Mesh)) {
  99583. return false;
  99584. }
  99585. var mesh = abstractMesh;
  99586. if (mesh.isDisposed()) {
  99587. return false;
  99588. }
  99589. if (!mesh.isVisible || !mesh.isEnabled()) {
  99590. return false;
  99591. }
  99592. if (mesh.instances.length > 0) {
  99593. return false;
  99594. }
  99595. if (mesh.skeleton || mesh.hasLODLevels) {
  99596. return false;
  99597. }
  99598. return true;
  99599. };
  99600. return _this;
  99601. }
  99602. Object.defineProperty(MergeMeshesOptimization, "UpdateSelectionTree", {
  99603. /**
  99604. * Gets or sets a boolean which defines if optimization octree has to be updated
  99605. */
  99606. get: function () {
  99607. return MergeMeshesOptimization._UpdateSelectionTree;
  99608. },
  99609. /**
  99610. * Gets or sets a boolean which defines if optimization octree has to be updated
  99611. */
  99612. set: function (value) {
  99613. MergeMeshesOptimization._UpdateSelectionTree = value;
  99614. },
  99615. enumerable: true,
  99616. configurable: true
  99617. });
  99618. /**
  99619. * Gets a string describing the action executed by the current optimization
  99620. * @return description string
  99621. */
  99622. MergeMeshesOptimization.prototype.getDescription = function () {
  99623. return "Merging similar meshes together";
  99624. };
  99625. /**
  99626. * This function will be called by the SceneOptimizer when its priority is reached in order to apply the change required by the current optimization
  99627. * @param scene defines the current scene where to apply this optimization
  99628. * @param optimizer defines the current optimizer
  99629. * @param updateSelectionTree defines that the selection octree has to be updated (false by default)
  99630. * @returns true if everything that can be done was applied
  99631. */
  99632. MergeMeshesOptimization.prototype.apply = function (scene, optimizer, updateSelectionTree) {
  99633. var globalPool = scene.meshes.slice(0);
  99634. var globalLength = globalPool.length;
  99635. for (var index = 0; index < globalLength; index++) {
  99636. var currentPool = new Array();
  99637. var current = globalPool[index];
  99638. // Checks
  99639. if (!this._canBeMerged(current)) {
  99640. continue;
  99641. }
  99642. currentPool.push(current);
  99643. // Find compatible meshes
  99644. for (var subIndex = index + 1; subIndex < globalLength; subIndex++) {
  99645. var otherMesh = globalPool[subIndex];
  99646. if (!this._canBeMerged(otherMesh)) {
  99647. continue;
  99648. }
  99649. if (otherMesh.material !== current.material) {
  99650. continue;
  99651. }
  99652. if (otherMesh.checkCollisions !== current.checkCollisions) {
  99653. continue;
  99654. }
  99655. currentPool.push(otherMesh);
  99656. globalLength--;
  99657. globalPool.splice(subIndex, 1);
  99658. subIndex--;
  99659. }
  99660. if (currentPool.length < 2) {
  99661. continue;
  99662. }
  99663. // Merge meshes
  99664. BABYLON.Mesh.MergeMeshes(currentPool, undefined, true);
  99665. }
  99666. // Call the octree system optimization if it is defined.
  99667. var sceneAsAny = scene;
  99668. if (sceneAsAny.createOrUpdateSelectionOctree) {
  99669. if (updateSelectionTree != undefined) {
  99670. if (updateSelectionTree) {
  99671. sceneAsAny.createOrUpdateSelectionOctree();
  99672. }
  99673. }
  99674. else if (MergeMeshesOptimization.UpdateSelectionTree) {
  99675. sceneAsAny.createOrUpdateSelectionOctree();
  99676. }
  99677. }
  99678. return true;
  99679. };
  99680. ;
  99681. MergeMeshesOptimization._UpdateSelectionTree = false;
  99682. return MergeMeshesOptimization;
  99683. }(SceneOptimization));
  99684. BABYLON.MergeMeshesOptimization = MergeMeshesOptimization;
  99685. /**
  99686. * Defines a list of options used by SceneOptimizer
  99687. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99688. */
  99689. var SceneOptimizerOptions = /** @class */ (function () {
  99690. /**
  99691. * Creates a new list of options used by SceneOptimizer
  99692. * @param targetFrameRate defines the target frame rate to reach (60 by default)
  99693. * @param trackerDuration defines the interval between two checkes (2000ms by default)
  99694. */
  99695. function SceneOptimizerOptions(
  99696. /**
  99697. * Defines the target frame rate to reach (60 by default)
  99698. */
  99699. targetFrameRate,
  99700. /**
  99701. * Defines the interval between two checkes (2000ms by default)
  99702. */
  99703. trackerDuration) {
  99704. if (targetFrameRate === void 0) { targetFrameRate = 60; }
  99705. if (trackerDuration === void 0) { trackerDuration = 2000; }
  99706. this.targetFrameRate = targetFrameRate;
  99707. this.trackerDuration = trackerDuration;
  99708. /**
  99709. * Gets the list of optimizations to apply
  99710. */
  99711. this.optimizations = new Array();
  99712. }
  99713. /**
  99714. * Add a new optimization
  99715. * @param optimization defines the SceneOptimization to add to the list of active optimizations
  99716. * @returns the current SceneOptimizerOptions
  99717. */
  99718. SceneOptimizerOptions.prototype.addOptimization = function (optimization) {
  99719. this.optimizations.push(optimization);
  99720. return this;
  99721. };
  99722. /**
  99723. * Add a new custom optimization
  99724. * @param onApply defines the callback called to apply the custom optimization (true if everything that can be done was applied)
  99725. * @param onGetDescription defines the callback called to get the description attached with the optimization.
  99726. * @param priority defines the priority of this optimization (0 by default which means first in the list)
  99727. * @returns the current SceneOptimizerOptions
  99728. */
  99729. SceneOptimizerOptions.prototype.addCustomOptimization = function (onApply, onGetDescription, priority) {
  99730. if (priority === void 0) { priority = 0; }
  99731. var optimization = new CustomOptimization(priority);
  99732. optimization.onApply = onApply;
  99733. optimization.onGetDescription = onGetDescription;
  99734. this.optimizations.push(optimization);
  99735. return this;
  99736. };
  99737. /**
  99738. * Creates a list of pre-defined optimizations aimed to reduce the visual impact on the scene
  99739. * @param targetFrameRate defines the target frame rate (60 by default)
  99740. * @returns a SceneOptimizerOptions object
  99741. */
  99742. SceneOptimizerOptions.LowDegradationAllowed = function (targetFrameRate) {
  99743. var result = new SceneOptimizerOptions(targetFrameRate);
  99744. var priority = 0;
  99745. result.addOptimization(new MergeMeshesOptimization(priority));
  99746. result.addOptimization(new ShadowsOptimization(priority));
  99747. result.addOptimization(new LensFlaresOptimization(priority));
  99748. // Next priority
  99749. priority++;
  99750. result.addOptimization(new PostProcessesOptimization(priority));
  99751. result.addOptimization(new ParticlesOptimization(priority));
  99752. // Next priority
  99753. priority++;
  99754. result.addOptimization(new TextureOptimization(priority, 1024));
  99755. return result;
  99756. };
  99757. /**
  99758. * Creates a list of pre-defined optimizations aimed to have a moderate impact on the scene visual
  99759. * @param targetFrameRate defines the target frame rate (60 by default)
  99760. * @returns a SceneOptimizerOptions object
  99761. */
  99762. SceneOptimizerOptions.ModerateDegradationAllowed = function (targetFrameRate) {
  99763. var result = new SceneOptimizerOptions(targetFrameRate);
  99764. var priority = 0;
  99765. result.addOptimization(new MergeMeshesOptimization(priority));
  99766. result.addOptimization(new ShadowsOptimization(priority));
  99767. result.addOptimization(new LensFlaresOptimization(priority));
  99768. // Next priority
  99769. priority++;
  99770. result.addOptimization(new PostProcessesOptimization(priority));
  99771. result.addOptimization(new ParticlesOptimization(priority));
  99772. // Next priority
  99773. priority++;
  99774. result.addOptimization(new TextureOptimization(priority, 512));
  99775. // Next priority
  99776. priority++;
  99777. result.addOptimization(new RenderTargetsOptimization(priority));
  99778. // Next priority
  99779. priority++;
  99780. result.addOptimization(new HardwareScalingOptimization(priority, 2));
  99781. return result;
  99782. };
  99783. /**
  99784. * Creates a list of pre-defined optimizations aimed to have a big impact on the scene visual
  99785. * @param targetFrameRate defines the target frame rate (60 by default)
  99786. * @returns a SceneOptimizerOptions object
  99787. */
  99788. SceneOptimizerOptions.HighDegradationAllowed = function (targetFrameRate) {
  99789. var result = new SceneOptimizerOptions(targetFrameRate);
  99790. var priority = 0;
  99791. result.addOptimization(new MergeMeshesOptimization(priority));
  99792. result.addOptimization(new ShadowsOptimization(priority));
  99793. result.addOptimization(new LensFlaresOptimization(priority));
  99794. // Next priority
  99795. priority++;
  99796. result.addOptimization(new PostProcessesOptimization(priority));
  99797. result.addOptimization(new ParticlesOptimization(priority));
  99798. // Next priority
  99799. priority++;
  99800. result.addOptimization(new TextureOptimization(priority, 256));
  99801. // Next priority
  99802. priority++;
  99803. result.addOptimization(new RenderTargetsOptimization(priority));
  99804. // Next priority
  99805. priority++;
  99806. result.addOptimization(new HardwareScalingOptimization(priority, 4));
  99807. return result;
  99808. };
  99809. return SceneOptimizerOptions;
  99810. }());
  99811. BABYLON.SceneOptimizerOptions = SceneOptimizerOptions;
  99812. /**
  99813. * Class used to run optimizations in order to reach a target frame rate
  99814. * @description More details at http://doc.babylonjs.com/how_to/how_to_use_sceneoptimizer
  99815. */
  99816. var SceneOptimizer = /** @class */ (function () {
  99817. /**
  99818. * Creates a new SceneOptimizer
  99819. * @param scene defines the scene to work on
  99820. * @param options defines the options to use with the SceneOptimizer
  99821. * @param autoGeneratePriorities defines if priorities must be generated and not read from SceneOptimization property (true by default)
  99822. * @param improvementMode defines if the scene optimizer must run the maximum optimization while staying over a target frame instead of trying to reach the target framerate (false by default)
  99823. */
  99824. function SceneOptimizer(scene, options, autoGeneratePriorities, improvementMode) {
  99825. if (autoGeneratePriorities === void 0) { autoGeneratePriorities = true; }
  99826. if (improvementMode === void 0) { improvementMode = false; }
  99827. var _this = this;
  99828. this._isRunning = false;
  99829. this._currentPriorityLevel = 0;
  99830. this._targetFrameRate = 60;
  99831. this._trackerDuration = 2000;
  99832. this._currentFrameRate = 0;
  99833. this._improvementMode = false;
  99834. /**
  99835. * Defines an observable called when the optimizer reaches the target frame rate
  99836. */
  99837. this.onSuccessObservable = new BABYLON.Observable();
  99838. /**
  99839. * Defines an observable called when the optimizer enables an optimization
  99840. */
  99841. this.onNewOptimizationAppliedObservable = new BABYLON.Observable();
  99842. /**
  99843. * Defines an observable called when the optimizer is not able to reach the target frame rate
  99844. */
  99845. this.onFailureObservable = new BABYLON.Observable();
  99846. if (!options) {
  99847. this._options = new SceneOptimizerOptions();
  99848. }
  99849. else {
  99850. this._options = options;
  99851. }
  99852. if (this._options.targetFrameRate) {
  99853. this._targetFrameRate = this._options.targetFrameRate;
  99854. }
  99855. if (this._options.trackerDuration) {
  99856. this._trackerDuration = this._options.trackerDuration;
  99857. }
  99858. if (autoGeneratePriorities) {
  99859. var priority = 0;
  99860. for (var _i = 0, _a = this._options.optimizations; _i < _a.length; _i++) {
  99861. var optim = _a[_i];
  99862. optim.priority = priority++;
  99863. }
  99864. }
  99865. this._improvementMode = improvementMode;
  99866. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  99867. this._sceneDisposeObserver = this._scene.onDisposeObservable.add(function () {
  99868. _this._sceneDisposeObserver = null;
  99869. _this.dispose();
  99870. });
  99871. }
  99872. Object.defineProperty(SceneOptimizer.prototype, "isInImprovementMode", {
  99873. /**
  99874. * Gets a boolean indicating if the optimizer is in improvement mode
  99875. */
  99876. get: function () {
  99877. return this._improvementMode;
  99878. },
  99879. enumerable: true,
  99880. configurable: true
  99881. });
  99882. Object.defineProperty(SceneOptimizer.prototype, "currentPriorityLevel", {
  99883. /**
  99884. * Gets the current priority level (0 at start)
  99885. */
  99886. get: function () {
  99887. return this._currentPriorityLevel;
  99888. },
  99889. enumerable: true,
  99890. configurable: true
  99891. });
  99892. Object.defineProperty(SceneOptimizer.prototype, "currentFrameRate", {
  99893. /**
  99894. * Gets the current frame rate checked by the SceneOptimizer
  99895. */
  99896. get: function () {
  99897. return this._currentFrameRate;
  99898. },
  99899. enumerable: true,
  99900. configurable: true
  99901. });
  99902. Object.defineProperty(SceneOptimizer.prototype, "targetFrameRate", {
  99903. /**
  99904. * Gets or sets the current target frame rate (60 by default)
  99905. */
  99906. get: function () {
  99907. return this._targetFrameRate;
  99908. },
  99909. /**
  99910. * Gets or sets the current target frame rate (60 by default)
  99911. */
  99912. set: function (value) {
  99913. this._targetFrameRate = value;
  99914. },
  99915. enumerable: true,
  99916. configurable: true
  99917. });
  99918. Object.defineProperty(SceneOptimizer.prototype, "trackerDuration", {
  99919. /**
  99920. * Gets or sets the current interval between two checks (every 2000ms by default)
  99921. */
  99922. get: function () {
  99923. return this._trackerDuration;
  99924. },
  99925. /**
  99926. * Gets or sets the current interval between two checks (every 2000ms by default)
  99927. */
  99928. set: function (value) {
  99929. this._trackerDuration = value;
  99930. },
  99931. enumerable: true,
  99932. configurable: true
  99933. });
  99934. Object.defineProperty(SceneOptimizer.prototype, "optimizations", {
  99935. /**
  99936. * Gets the list of active optimizations
  99937. */
  99938. get: function () {
  99939. return this._options.optimizations;
  99940. },
  99941. enumerable: true,
  99942. configurable: true
  99943. });
  99944. /**
  99945. * Stops the current optimizer
  99946. */
  99947. SceneOptimizer.prototype.stop = function () {
  99948. this._isRunning = false;
  99949. };
  99950. /**
  99951. * Reset the optimizer to initial step (current priority level = 0)
  99952. */
  99953. SceneOptimizer.prototype.reset = function () {
  99954. this._currentPriorityLevel = 0;
  99955. };
  99956. /**
  99957. * Start the optimizer. By default it will try to reach a specific framerate
  99958. * but if the optimizer is set with improvementMode === true then it will run all optimiatiation while frame rate is above the target frame rate
  99959. */
  99960. SceneOptimizer.prototype.start = function () {
  99961. var _this = this;
  99962. if (this._isRunning) {
  99963. return;
  99964. }
  99965. this._isRunning = true;
  99966. // Let's wait for the scene to be ready before running our check
  99967. this._scene.executeWhenReady(function () {
  99968. setTimeout(function () {
  99969. _this._checkCurrentState();
  99970. }, _this._trackerDuration);
  99971. });
  99972. };
  99973. SceneOptimizer.prototype._checkCurrentState = function () {
  99974. var _this = this;
  99975. if (!this._isRunning) {
  99976. return;
  99977. }
  99978. var scene = this._scene;
  99979. var options = this._options;
  99980. this._currentFrameRate = Math.round(scene.getEngine().getFps());
  99981. if (this._improvementMode && this._currentFrameRate <= this._targetFrameRate ||
  99982. !this._improvementMode && this._currentFrameRate >= this._targetFrameRate) {
  99983. this._isRunning = false;
  99984. this.onSuccessObservable.notifyObservers(this);
  99985. return;
  99986. }
  99987. // Apply current level of optimizations
  99988. var allDone = true;
  99989. var noOptimizationApplied = true;
  99990. for (var index = 0; index < options.optimizations.length; index++) {
  99991. var optimization = options.optimizations[index];
  99992. if (optimization.priority === this._currentPriorityLevel) {
  99993. noOptimizationApplied = false;
  99994. allDone = allDone && optimization.apply(scene, this);
  99995. this.onNewOptimizationAppliedObservable.notifyObservers(optimization);
  99996. }
  99997. }
  99998. // If no optimization was applied, this is a failure :(
  99999. if (noOptimizationApplied) {
  100000. this._isRunning = false;
  100001. this.onFailureObservable.notifyObservers(this);
  100002. return;
  100003. }
  100004. // If all optimizations were done, move to next level
  100005. if (allDone) {
  100006. this._currentPriorityLevel++;
  100007. }
  100008. // Let's the system running for a specific amount of time before checking FPS
  100009. scene.executeWhenReady(function () {
  100010. setTimeout(function () {
  100011. _this._checkCurrentState();
  100012. }, _this._trackerDuration);
  100013. });
  100014. };
  100015. /**
  100016. * Release all resources
  100017. */
  100018. SceneOptimizer.prototype.dispose = function () {
  100019. this.stop();
  100020. this.onSuccessObservable.clear();
  100021. this.onFailureObservable.clear();
  100022. this.onNewOptimizationAppliedObservable.clear();
  100023. if (this._sceneDisposeObserver) {
  100024. this._scene.onDisposeObservable.remove(this._sceneDisposeObserver);
  100025. }
  100026. };
  100027. /**
  100028. * Helper function to create a SceneOptimizer with one single line of code
  100029. * @param scene defines the scene to work on
  100030. * @param options defines the options to use with the SceneOptimizer
  100031. * @param onSuccess defines a callback to call on success
  100032. * @param onFailure defines a callback to call on failure
  100033. * @returns the new SceneOptimizer object
  100034. */
  100035. SceneOptimizer.OptimizeAsync = function (scene, options, onSuccess, onFailure) {
  100036. var optimizer = new SceneOptimizer(scene, options || SceneOptimizerOptions.ModerateDegradationAllowed(), false);
  100037. if (onSuccess) {
  100038. optimizer.onSuccessObservable.add(function () {
  100039. onSuccess();
  100040. });
  100041. }
  100042. if (onFailure) {
  100043. optimizer.onFailureObservable.add(function () {
  100044. onFailure();
  100045. });
  100046. }
  100047. optimizer.start();
  100048. return optimizer;
  100049. };
  100050. return SceneOptimizer;
  100051. }());
  100052. BABYLON.SceneOptimizer = SceneOptimizer;
  100053. })(BABYLON || (BABYLON = {}));
  100054. //# sourceMappingURL=babylon.sceneOptimizer.js.map
  100055. var BABYLON;
  100056. (function (BABYLON) {
  100057. /**
  100058. * Gets the outline renderer associated with the scene
  100059. * @returns a OutlineRenderer
  100060. */
  100061. BABYLON.Scene.prototype.getOutlineRenderer = function () {
  100062. if (!this._outlineRenderer) {
  100063. this._outlineRenderer = new OutlineRenderer(this);
  100064. }
  100065. return this._outlineRenderer;
  100066. };
  100067. Object.defineProperty(BABYLON.AbstractMesh.prototype, "renderOutline", {
  100068. get: function () {
  100069. return this._renderOutline;
  100070. },
  100071. set: function (value) {
  100072. if (value) {
  100073. // Lazy Load the component.
  100074. this.getScene().getOutlineRenderer();
  100075. }
  100076. this._renderOutline = value;
  100077. },
  100078. enumerable: true,
  100079. configurable: true
  100080. });
  100081. Object.defineProperty(BABYLON.AbstractMesh.prototype, "renderOverlay", {
  100082. get: function () {
  100083. return this._renderOverlay;
  100084. },
  100085. set: function (value) {
  100086. if (value) {
  100087. // Lazy Load the component.
  100088. this.getScene().getOutlineRenderer();
  100089. }
  100090. this._renderOverlay = value;
  100091. },
  100092. enumerable: true,
  100093. configurable: true
  100094. });
  100095. /**
  100096. * This class is responsible to draw bothe outline/overlay of meshes.
  100097. * It should not be used directly but through the available method on mesh.
  100098. */
  100099. var OutlineRenderer = /** @class */ (function () {
  100100. /**
  100101. * Instantiates a new outline renderer. (There could be only one per scene).
  100102. * @param scene Defines the scene it belongs to
  100103. */
  100104. function OutlineRenderer(scene) {
  100105. /**
  100106. * The name of the component. Each component must have a unique name.
  100107. */
  100108. this.name = BABYLON.SceneComponentConstants.NAME_OUTLINERENDERER;
  100109. /**
  100110. * Defines a zOffset to prevent zFighting between the overlay and the mesh.
  100111. */
  100112. this.zOffset = 1;
  100113. this.scene = scene;
  100114. this._engine = scene.getEngine();
  100115. this.scene._addComponent(this);
  100116. }
  100117. /**
  100118. * Register the component to one instance of a scene.
  100119. */
  100120. OutlineRenderer.prototype.register = function () {
  100121. this.scene._beforeRenderingMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORERENDERINGMESH_OUTLINE, this, this._beforeRenderingMesh);
  100122. this.scene._afterRenderingMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERRENDERINGMESH_OUTLINE, this, this._afterRenderingMesh);
  100123. };
  100124. /**
  100125. * Rebuilds the elements related to this component in case of
  100126. * context lost for instance.
  100127. */
  100128. OutlineRenderer.prototype.rebuild = function () {
  100129. // Nothing to do here.
  100130. };
  100131. /**
  100132. * Disposes the component and the associated ressources.
  100133. */
  100134. OutlineRenderer.prototype.dispose = function () {
  100135. // Nothing to do here.
  100136. };
  100137. /**
  100138. * Renders the outline in the canvas.
  100139. * @param subMesh Defines the sumesh to render
  100140. * @param batch Defines the batch of meshes in case of instances
  100141. * @param useOverlay Defines if the rendering is for the overlay or the outline
  100142. */
  100143. OutlineRenderer.prototype.render = function (subMesh, batch, useOverlay) {
  100144. var _this = this;
  100145. if (useOverlay === void 0) { useOverlay = false; }
  100146. var scene = this.scene;
  100147. var engine = scene.getEngine();
  100148. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null) && (batch.visibleInstances[subMesh._id] !== undefined);
  100149. if (!this.isReady(subMesh, hardwareInstancedRendering)) {
  100150. return;
  100151. }
  100152. var mesh = subMesh.getRenderingMesh();
  100153. var material = subMesh.getMaterial();
  100154. if (!material || !scene.activeCamera) {
  100155. return;
  100156. }
  100157. engine.enableEffect(this._effect);
  100158. // Logarithmic depth
  100159. if (material.useLogarithmicDepth) {
  100160. this._effect.setFloat("logarithmicDepthConstant", 2.0 / (Math.log(scene.activeCamera.maxZ + 1.0) / Math.LN2));
  100161. }
  100162. this._effect.setFloat("offset", useOverlay ? 0 : mesh.outlineWidth);
  100163. this._effect.setColor4("color", useOverlay ? mesh.overlayColor : mesh.outlineColor, useOverlay ? mesh.overlayAlpha : material.alpha);
  100164. this._effect.setMatrix("viewProjection", scene.getTransformMatrix());
  100165. // Bones
  100166. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  100167. this._effect.setMatrices("mBones", mesh.skeleton.getTransformMatrices(mesh));
  100168. }
  100169. mesh._bind(subMesh, this._effect, BABYLON.Material.TriangleFillMode);
  100170. // Alpha test
  100171. if (material && material.needAlphaTesting()) {
  100172. var alphaTexture = material.getAlphaTestTexture();
  100173. if (alphaTexture) {
  100174. this._effect.setTexture("diffuseSampler", alphaTexture);
  100175. this._effect.setMatrix("diffuseMatrix", alphaTexture.getTextureMatrix());
  100176. }
  100177. }
  100178. engine.setZOffset(-this.zOffset);
  100179. mesh._processRendering(subMesh, this._effect, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { _this._effect.setMatrix("world", world); });
  100180. engine.setZOffset(0);
  100181. };
  100182. /**
  100183. * Returns whether or not the outline renderer is ready for a given submesh.
  100184. * All the dependencies e.g. submeshes, texture, effect... mus be ready
  100185. * @param subMesh Defines the submesh to check readyness for
  100186. * @param useInstances Defines wheter wee are trying to render instances or not
  100187. * @returns true if ready otherwise false
  100188. */
  100189. OutlineRenderer.prototype.isReady = function (subMesh, useInstances) {
  100190. var defines = [];
  100191. var attribs = [BABYLON.VertexBuffer.PositionKind, BABYLON.VertexBuffer.NormalKind];
  100192. var mesh = subMesh.getMesh();
  100193. var material = subMesh.getMaterial();
  100194. if (material) {
  100195. // Alpha test
  100196. if (material.needAlphaTesting()) {
  100197. defines.push("#define ALPHATEST");
  100198. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  100199. attribs.push(BABYLON.VertexBuffer.UVKind);
  100200. defines.push("#define UV1");
  100201. }
  100202. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind)) {
  100203. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  100204. defines.push("#define UV2");
  100205. }
  100206. }
  100207. //Logarithmic depth
  100208. if (material.useLogarithmicDepth) {
  100209. defines.push("#define LOGARITHMICDEPTH");
  100210. }
  100211. }
  100212. // Bones
  100213. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  100214. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  100215. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  100216. if (mesh.numBoneInfluencers > 4) {
  100217. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  100218. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  100219. }
  100220. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  100221. defines.push("#define BonesPerMesh " + (mesh.skeleton ? mesh.skeleton.bones.length + 1 : 0));
  100222. }
  100223. else {
  100224. defines.push("#define NUM_BONE_INFLUENCERS 0");
  100225. }
  100226. // Instances
  100227. if (useInstances) {
  100228. defines.push("#define INSTANCES");
  100229. attribs.push("world0");
  100230. attribs.push("world1");
  100231. attribs.push("world2");
  100232. attribs.push("world3");
  100233. }
  100234. // Get correct effect
  100235. var join = defines.join("\n");
  100236. if (this._cachedDefines !== join) {
  100237. this._cachedDefines = join;
  100238. this._effect = this.scene.getEngine().createEffect("outline", attribs, ["world", "mBones", "viewProjection", "diffuseMatrix", "offset", "color", "logarithmicDepthConstant"], ["diffuseSampler"], join);
  100239. }
  100240. return this._effect.isReady();
  100241. };
  100242. OutlineRenderer.prototype._beforeRenderingMesh = function (mesh, subMesh, batch) {
  100243. // Outline - step 1
  100244. this._savedDepthWrite = this._engine.getDepthWrite();
  100245. if (mesh.renderOutline) {
  100246. this._engine.setDepthWrite(false);
  100247. this.render(subMesh, batch);
  100248. this._engine.setDepthWrite(this._savedDepthWrite);
  100249. }
  100250. };
  100251. OutlineRenderer.prototype._afterRenderingMesh = function (mesh, subMesh, batch) {
  100252. // Outline - step 2
  100253. if (mesh.renderOutline && this._savedDepthWrite) {
  100254. this._engine.setDepthWrite(true);
  100255. this._engine.setColorWrite(false);
  100256. this.render(subMesh, batch);
  100257. this._engine.setColorWrite(true);
  100258. }
  100259. // Overlay
  100260. if (mesh.renderOverlay) {
  100261. var currentMode = this._engine.getAlphaMode();
  100262. this._engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  100263. this.render(subMesh, batch, true);
  100264. this._engine.setAlphaMode(currentMode);
  100265. }
  100266. };
  100267. return OutlineRenderer;
  100268. }());
  100269. BABYLON.OutlineRenderer = OutlineRenderer;
  100270. })(BABYLON || (BABYLON = {}));
  100271. //# sourceMappingURL=babylon.outlineRenderer.js.map
  100272. var BABYLON;
  100273. (function (BABYLON) {
  100274. BABYLON.AbstractMesh.prototype.disableEdgesRendering = function () {
  100275. if (this._edgesRenderer) {
  100276. this._edgesRenderer.dispose();
  100277. this._edgesRenderer = null;
  100278. }
  100279. return this;
  100280. };
  100281. BABYLON.AbstractMesh.prototype.enableEdgesRendering = function (epsilon, checkVerticesInsteadOfIndices) {
  100282. if (epsilon === void 0) { epsilon = 0.95; }
  100283. if (checkVerticesInsteadOfIndices === void 0) { checkVerticesInsteadOfIndices = false; }
  100284. this.disableEdgesRendering();
  100285. this._edgesRenderer = new EdgesRenderer(this, epsilon, checkVerticesInsteadOfIndices);
  100286. return this;
  100287. };
  100288. Object.defineProperty(BABYLON.AbstractMesh.prototype, "edgesRenderer", {
  100289. get: function () {
  100290. return this._edgesRenderer;
  100291. },
  100292. enumerable: true,
  100293. configurable: true
  100294. });
  100295. BABYLON.LinesMesh.prototype.enableEdgesRendering = function (epsilon, checkVerticesInsteadOfIndices) {
  100296. if (epsilon === void 0) { epsilon = 0.95; }
  100297. if (checkVerticesInsteadOfIndices === void 0) { checkVerticesInsteadOfIndices = false; }
  100298. this.disableEdgesRendering();
  100299. this._edgesRenderer = new BABYLON.LineEdgesRenderer(this, epsilon, checkVerticesInsteadOfIndices);
  100300. return this;
  100301. };
  100302. /**
  100303. * FaceAdjacencies Helper class to generate edges
  100304. */
  100305. var FaceAdjacencies = /** @class */ (function () {
  100306. function FaceAdjacencies() {
  100307. this.edges = new Array();
  100308. this.edgesConnectedCount = 0;
  100309. }
  100310. return FaceAdjacencies;
  100311. }());
  100312. /**
  100313. * This class is used to generate edges of the mesh that could then easily be rendered in a scene.
  100314. */
  100315. var EdgesRenderer = /** @class */ (function () {
  100316. /**
  100317. * Creates an instance of the EdgesRenderer. It is primarily use to display edges of a mesh.
  100318. * Beware when you use this class with complex objects as the adjacencies computation can be really long
  100319. * @param source Mesh used to create edges
  100320. * @param epsilon sum of angles in adjacency to check for edge
  100321. * @param checkVerticesInsteadOfIndices
  100322. * @param generateEdgesLines - should generate Lines or only prepare resources.
  100323. */
  100324. function EdgesRenderer(source, epsilon, checkVerticesInsteadOfIndices, generateEdgesLines) {
  100325. if (epsilon === void 0) { epsilon = 0.95; }
  100326. if (checkVerticesInsteadOfIndices === void 0) { checkVerticesInsteadOfIndices = false; }
  100327. if (generateEdgesLines === void 0) { generateEdgesLines = true; }
  100328. var _this = this;
  100329. this.edgesWidthScalerForOrthographic = 1000.0;
  100330. this.edgesWidthScalerForPerspective = 50.0;
  100331. this._linesPositions = new Array();
  100332. this._linesNormals = new Array();
  100333. this._linesIndices = new Array();
  100334. this._buffers = {};
  100335. this._checkVerticesInsteadOfIndices = false;
  100336. /** Gets or sets a boolean indicating if the edgesRenderer is active */
  100337. this.isEnabled = true;
  100338. this._source = source;
  100339. this._checkVerticesInsteadOfIndices = checkVerticesInsteadOfIndices;
  100340. this._epsilon = epsilon;
  100341. this._prepareRessources();
  100342. if (generateEdgesLines) {
  100343. this._generateEdgesLines();
  100344. }
  100345. this._meshRebuildObserver = this._source.onRebuildObservable.add(function () {
  100346. _this._rebuild();
  100347. });
  100348. this._meshDisposeObserver = this._source.onDisposeObservable.add(function () {
  100349. _this.dispose();
  100350. });
  100351. }
  100352. EdgesRenderer.prototype._prepareRessources = function () {
  100353. if (this._lineShader) {
  100354. return;
  100355. }
  100356. this._lineShader = new BABYLON.ShaderMaterial("lineShader", this._source.getScene(), "line", {
  100357. attributes: ["position", "normal"],
  100358. uniforms: ["worldViewProjection", "color", "width", "aspectRatio"]
  100359. });
  100360. this._lineShader.disableDepthWrite = true;
  100361. this._lineShader.backFaceCulling = false;
  100362. };
  100363. /** @hidden */
  100364. EdgesRenderer.prototype._rebuild = function () {
  100365. var buffer = this._buffers[BABYLON.VertexBuffer.PositionKind];
  100366. if (buffer) {
  100367. buffer._rebuild();
  100368. }
  100369. buffer = this._buffers[BABYLON.VertexBuffer.NormalKind];
  100370. if (buffer) {
  100371. buffer._rebuild();
  100372. }
  100373. var scene = this._source.getScene();
  100374. var engine = scene.getEngine();
  100375. this._ib = engine.createIndexBuffer(this._linesIndices);
  100376. };
  100377. /**
  100378. * Releases the required resources for the edges renderer
  100379. */
  100380. EdgesRenderer.prototype.dispose = function () {
  100381. this._source.onRebuildObservable.remove(this._meshRebuildObserver);
  100382. this._source.onDisposeObservable.remove(this._meshDisposeObserver);
  100383. var buffer = this._buffers[BABYLON.VertexBuffer.PositionKind];
  100384. if (buffer) {
  100385. buffer.dispose();
  100386. this._buffers[BABYLON.VertexBuffer.PositionKind] = null;
  100387. }
  100388. buffer = this._buffers[BABYLON.VertexBuffer.NormalKind];
  100389. if (buffer) {
  100390. buffer.dispose();
  100391. this._buffers[BABYLON.VertexBuffer.NormalKind] = null;
  100392. }
  100393. this._source.getScene().getEngine()._releaseBuffer(this._ib);
  100394. this._lineShader.dispose();
  100395. };
  100396. EdgesRenderer.prototype._processEdgeForAdjacencies = function (pa, pb, p0, p1, p2) {
  100397. if (pa === p0 && pb === p1 || pa === p1 && pb === p0) {
  100398. return 0;
  100399. }
  100400. if (pa === p1 && pb === p2 || pa === p2 && pb === p1) {
  100401. return 1;
  100402. }
  100403. if (pa === p2 && pb === p0 || pa === p0 && pb === p2) {
  100404. return 2;
  100405. }
  100406. return -1;
  100407. };
  100408. EdgesRenderer.prototype._processEdgeForAdjacenciesWithVertices = function (pa, pb, p0, p1, p2) {
  100409. if (pa.equalsWithEpsilon(p0) && pb.equalsWithEpsilon(p1) || pa.equalsWithEpsilon(p1) && pb.equalsWithEpsilon(p0)) {
  100410. return 0;
  100411. }
  100412. if (pa.equalsWithEpsilon(p1) && pb.equalsWithEpsilon(p2) || pa.equalsWithEpsilon(p2) && pb.equalsWithEpsilon(p1)) {
  100413. return 1;
  100414. }
  100415. if (pa.equalsWithEpsilon(p2) && pb.equalsWithEpsilon(p0) || pa.equalsWithEpsilon(p0) && pb.equalsWithEpsilon(p2)) {
  100416. return 2;
  100417. }
  100418. return -1;
  100419. };
  100420. /**
  100421. * Checks if the pair of p0 and p1 is en edge
  100422. * @param faceIndex
  100423. * @param edge
  100424. * @param faceNormals
  100425. * @param p0
  100426. * @param p1
  100427. * @private
  100428. */
  100429. EdgesRenderer.prototype._checkEdge = function (faceIndex, edge, faceNormals, p0, p1) {
  100430. var needToCreateLine;
  100431. if (edge === undefined) {
  100432. needToCreateLine = true;
  100433. }
  100434. else {
  100435. var dotProduct = BABYLON.Vector3.Dot(faceNormals[faceIndex], faceNormals[edge]);
  100436. needToCreateLine = dotProduct < this._epsilon;
  100437. }
  100438. if (needToCreateLine) {
  100439. var offset = this._linesPositions.length / 3;
  100440. var normal = p0.subtract(p1);
  100441. normal.normalize();
  100442. // Positions
  100443. this._linesPositions.push(p0.x);
  100444. this._linesPositions.push(p0.y);
  100445. this._linesPositions.push(p0.z);
  100446. this._linesPositions.push(p0.x);
  100447. this._linesPositions.push(p0.y);
  100448. this._linesPositions.push(p0.z);
  100449. this._linesPositions.push(p1.x);
  100450. this._linesPositions.push(p1.y);
  100451. this._linesPositions.push(p1.z);
  100452. this._linesPositions.push(p1.x);
  100453. this._linesPositions.push(p1.y);
  100454. this._linesPositions.push(p1.z);
  100455. // Normals
  100456. this._linesNormals.push(p1.x);
  100457. this._linesNormals.push(p1.y);
  100458. this._linesNormals.push(p1.z);
  100459. this._linesNormals.push(-1);
  100460. this._linesNormals.push(p1.x);
  100461. this._linesNormals.push(p1.y);
  100462. this._linesNormals.push(p1.z);
  100463. this._linesNormals.push(1);
  100464. this._linesNormals.push(p0.x);
  100465. this._linesNormals.push(p0.y);
  100466. this._linesNormals.push(p0.z);
  100467. this._linesNormals.push(-1);
  100468. this._linesNormals.push(p0.x);
  100469. this._linesNormals.push(p0.y);
  100470. this._linesNormals.push(p0.z);
  100471. this._linesNormals.push(1);
  100472. // Indices
  100473. this._linesIndices.push(offset);
  100474. this._linesIndices.push(offset + 1);
  100475. this._linesIndices.push(offset + 2);
  100476. this._linesIndices.push(offset);
  100477. this._linesIndices.push(offset + 2);
  100478. this._linesIndices.push(offset + 3);
  100479. }
  100480. };
  100481. /**
  100482. * Generates lines edges from adjacencjes
  100483. * @private
  100484. */
  100485. EdgesRenderer.prototype._generateEdgesLines = function () {
  100486. var positions = this._source.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  100487. var indices = this._source.getIndices();
  100488. if (!indices || !positions) {
  100489. return;
  100490. }
  100491. // First let's find adjacencies
  100492. var adjacencies = new Array();
  100493. var faceNormals = new Array();
  100494. var index;
  100495. var faceAdjacencies;
  100496. // Prepare faces
  100497. for (index = 0; index < indices.length; index += 3) {
  100498. faceAdjacencies = new FaceAdjacencies();
  100499. var p0Index = indices[index];
  100500. var p1Index = indices[index + 1];
  100501. var p2Index = indices[index + 2];
  100502. faceAdjacencies.p0 = new BABYLON.Vector3(positions[p0Index * 3], positions[p0Index * 3 + 1], positions[p0Index * 3 + 2]);
  100503. faceAdjacencies.p1 = new BABYLON.Vector3(positions[p1Index * 3], positions[p1Index * 3 + 1], positions[p1Index * 3 + 2]);
  100504. faceAdjacencies.p2 = new BABYLON.Vector3(positions[p2Index * 3], positions[p2Index * 3 + 1], positions[p2Index * 3 + 2]);
  100505. var faceNormal = BABYLON.Vector3.Cross(faceAdjacencies.p1.subtract(faceAdjacencies.p0), faceAdjacencies.p2.subtract(faceAdjacencies.p1));
  100506. faceNormal.normalize();
  100507. faceNormals.push(faceNormal);
  100508. adjacencies.push(faceAdjacencies);
  100509. }
  100510. // Scan
  100511. for (index = 0; index < adjacencies.length; index++) {
  100512. faceAdjacencies = adjacencies[index];
  100513. for (var otherIndex = index + 1; otherIndex < adjacencies.length; otherIndex++) {
  100514. var otherFaceAdjacencies = adjacencies[otherIndex];
  100515. if (faceAdjacencies.edgesConnectedCount === 3) { // Full
  100516. break;
  100517. }
  100518. if (otherFaceAdjacencies.edgesConnectedCount === 3) { // Full
  100519. continue;
  100520. }
  100521. var otherP0 = indices[otherIndex * 3];
  100522. var otherP1 = indices[otherIndex * 3 + 1];
  100523. var otherP2 = indices[otherIndex * 3 + 2];
  100524. for (var edgeIndex = 0; edgeIndex < 3; edgeIndex++) {
  100525. var otherEdgeIndex = 0;
  100526. if (faceAdjacencies.edges[edgeIndex] !== undefined) {
  100527. continue;
  100528. }
  100529. switch (edgeIndex) {
  100530. case 0:
  100531. if (this._checkVerticesInsteadOfIndices) {
  100532. otherEdgeIndex = this._processEdgeForAdjacenciesWithVertices(faceAdjacencies.p0, faceAdjacencies.p1, otherFaceAdjacencies.p0, otherFaceAdjacencies.p1, otherFaceAdjacencies.p2);
  100533. }
  100534. else {
  100535. otherEdgeIndex = this._processEdgeForAdjacencies(indices[index * 3], indices[index * 3 + 1], otherP0, otherP1, otherP2);
  100536. }
  100537. break;
  100538. case 1:
  100539. if (this._checkVerticesInsteadOfIndices) {
  100540. otherEdgeIndex = this._processEdgeForAdjacenciesWithVertices(faceAdjacencies.p1, faceAdjacencies.p2, otherFaceAdjacencies.p0, otherFaceAdjacencies.p1, otherFaceAdjacencies.p2);
  100541. }
  100542. else {
  100543. otherEdgeIndex = this._processEdgeForAdjacencies(indices[index * 3 + 1], indices[index * 3 + 2], otherP0, otherP1, otherP2);
  100544. }
  100545. break;
  100546. case 2:
  100547. if (this._checkVerticesInsteadOfIndices) {
  100548. otherEdgeIndex = this._processEdgeForAdjacenciesWithVertices(faceAdjacencies.p2, faceAdjacencies.p0, otherFaceAdjacencies.p0, otherFaceAdjacencies.p1, otherFaceAdjacencies.p2);
  100549. }
  100550. else {
  100551. otherEdgeIndex = this._processEdgeForAdjacencies(indices[index * 3 + 2], indices[index * 3], otherP0, otherP1, otherP2);
  100552. }
  100553. break;
  100554. }
  100555. if (otherEdgeIndex === -1) {
  100556. continue;
  100557. }
  100558. faceAdjacencies.edges[edgeIndex] = otherIndex;
  100559. otherFaceAdjacencies.edges[otherEdgeIndex] = index;
  100560. faceAdjacencies.edgesConnectedCount++;
  100561. otherFaceAdjacencies.edgesConnectedCount++;
  100562. if (faceAdjacencies.edgesConnectedCount === 3) {
  100563. break;
  100564. }
  100565. }
  100566. }
  100567. }
  100568. // Create lines
  100569. for (index = 0; index < adjacencies.length; index++) {
  100570. // We need a line when a face has no adjacency on a specific edge or if all the adjacencies has an angle greater than epsilon
  100571. var current = adjacencies[index];
  100572. this._checkEdge(index, current.edges[0], faceNormals, current.p0, current.p1);
  100573. this._checkEdge(index, current.edges[1], faceNormals, current.p1, current.p2);
  100574. this._checkEdge(index, current.edges[2], faceNormals, current.p2, current.p0);
  100575. }
  100576. // Merge into a single mesh
  100577. var engine = this._source.getScene().getEngine();
  100578. this._buffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(engine, this._linesPositions, BABYLON.VertexBuffer.PositionKind, false);
  100579. this._buffers[BABYLON.VertexBuffer.NormalKind] = new BABYLON.VertexBuffer(engine, this._linesNormals, BABYLON.VertexBuffer.NormalKind, false, false, 4);
  100580. this._ib = engine.createIndexBuffer(this._linesIndices);
  100581. this._indicesCount = this._linesIndices.length;
  100582. };
  100583. /**
  100584. * Checks wether or not the edges renderer is ready to render.
  100585. * @return true if ready, otherwise false.
  100586. */
  100587. EdgesRenderer.prototype.isReady = function () {
  100588. return this._lineShader.isReady();
  100589. };
  100590. /**
  100591. * Renders the edges of the attached mesh,
  100592. */
  100593. EdgesRenderer.prototype.render = function () {
  100594. var scene = this._source.getScene();
  100595. if (!this.isReady() || !scene.activeCamera) {
  100596. return;
  100597. }
  100598. var engine = scene.getEngine();
  100599. this._lineShader._preBind();
  100600. if (this._source.edgesColor.a !== 1) {
  100601. engine.setAlphaMode(BABYLON.Engine.ALPHA_COMBINE);
  100602. }
  100603. else {
  100604. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  100605. }
  100606. // VBOs
  100607. engine.bindBuffers(this._buffers, this._ib, this._lineShader.getEffect());
  100608. scene.resetCachedMaterial();
  100609. this._lineShader.setColor4("color", this._source.edgesColor);
  100610. if (scene.activeCamera.mode === BABYLON.Camera.ORTHOGRAPHIC_CAMERA) {
  100611. this._lineShader.setFloat("width", this._source.edgesWidth / this.edgesWidthScalerForOrthographic);
  100612. }
  100613. else {
  100614. this._lineShader.setFloat("width", this._source.edgesWidth / this.edgesWidthScalerForPerspective);
  100615. }
  100616. this._lineShader.setFloat("aspectRatio", engine.getAspectRatio(scene.activeCamera));
  100617. this._lineShader.bind(this._source.getWorldMatrix());
  100618. // Draw order
  100619. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, this._indicesCount);
  100620. this._lineShader.unbind();
  100621. };
  100622. return EdgesRenderer;
  100623. }());
  100624. BABYLON.EdgesRenderer = EdgesRenderer;
  100625. })(BABYLON || (BABYLON = {}));
  100626. //# sourceMappingURL=babylon.edgesRenderer.js.map
  100627. var BABYLON;
  100628. (function (BABYLON) {
  100629. /**
  100630. * FaceAdjacencies Helper class to generate edges
  100631. */
  100632. var FaceAdjacencies = /** @class */ (function () {
  100633. function FaceAdjacencies() {
  100634. this.edges = new Array();
  100635. this.edgesConnectedCount = 0;
  100636. }
  100637. return FaceAdjacencies;
  100638. }());
  100639. /**
  100640. * LineEdgesRenderer for LineMeshes to remove unnecessary triangulation
  100641. */
  100642. var LineEdgesRenderer = /** @class */ (function (_super) {
  100643. __extends(LineEdgesRenderer, _super);
  100644. /**
  100645. * This constructor turns off auto generating edges line in Edges Renderer to make it here.
  100646. * @param source LineMesh used to generate edges
  100647. * @param epsilon not important (specified angle for edge detection)
  100648. * @param checkVerticesInsteadOfIndices not important for LineMesh
  100649. */
  100650. function LineEdgesRenderer(source, epsilon, checkVerticesInsteadOfIndices) {
  100651. if (epsilon === void 0) { epsilon = 0.95; }
  100652. if (checkVerticesInsteadOfIndices === void 0) { checkVerticesInsteadOfIndices = false; }
  100653. var _this = _super.call(this, source, epsilon, checkVerticesInsteadOfIndices, false) || this;
  100654. _this._generateEdgesLines();
  100655. return _this;
  100656. }
  100657. /**
  100658. * Always create the edge since its a line so only important things are p0 and p1
  100659. * @param faceIndex not important for LineMesh
  100660. * @param edge not important for LineMesh
  100661. * @param faceNormals not important for LineMesh
  100662. * @param p0 beginnig of line
  100663. * @param p1 end of line
  100664. */
  100665. LineEdgesRenderer.prototype._checkEdge = function (faceIndex, edge, faceNormals, p0, p1) {
  100666. var offset = this._linesPositions.length / 3;
  100667. var normal = p0.subtract(p1);
  100668. normal.normalize();
  100669. // Positions
  100670. this._linesPositions.push(p0.x);
  100671. this._linesPositions.push(p0.y);
  100672. this._linesPositions.push(p0.z);
  100673. this._linesPositions.push(p0.x);
  100674. this._linesPositions.push(p0.y);
  100675. this._linesPositions.push(p0.z);
  100676. this._linesPositions.push(p1.x);
  100677. this._linesPositions.push(p1.y);
  100678. this._linesPositions.push(p1.z);
  100679. this._linesPositions.push(p1.x);
  100680. this._linesPositions.push(p1.y);
  100681. this._linesPositions.push(p1.z);
  100682. // Normals
  100683. this._linesNormals.push(p1.x);
  100684. this._linesNormals.push(p1.y);
  100685. this._linesNormals.push(p1.z);
  100686. this._linesNormals.push(-1);
  100687. this._linesNormals.push(p1.x);
  100688. this._linesNormals.push(p1.y);
  100689. this._linesNormals.push(p1.z);
  100690. this._linesNormals.push(1);
  100691. this._linesNormals.push(p0.x);
  100692. this._linesNormals.push(p0.y);
  100693. this._linesNormals.push(p0.z);
  100694. this._linesNormals.push(-1);
  100695. this._linesNormals.push(p0.x);
  100696. this._linesNormals.push(p0.y);
  100697. this._linesNormals.push(p0.z);
  100698. this._linesNormals.push(1);
  100699. // Indices
  100700. this._linesIndices.push(offset);
  100701. this._linesIndices.push(offset + 1);
  100702. this._linesIndices.push(offset + 2);
  100703. this._linesIndices.push(offset);
  100704. this._linesIndices.push(offset + 2);
  100705. this._linesIndices.push(offset + 3);
  100706. };
  100707. /**
  100708. * Generate edges for each line in LinesMesh. Every Line should be rendered as edge.
  100709. */
  100710. LineEdgesRenderer.prototype._generateEdgesLines = function () {
  100711. var positions = this._source.getVerticesData(BABYLON.VertexBuffer.PositionKind);
  100712. var indices = this._source.getIndices();
  100713. if (!indices || !positions) {
  100714. return;
  100715. }
  100716. // First let's find adjacencies
  100717. var adjacencies = new Array();
  100718. var faceNormals = new Array();
  100719. var index;
  100720. for (var i = 0; i < (positions.length / 3) - 1; i++) {
  100721. var currentAdjecancy = new FaceAdjacencies();
  100722. currentAdjecancy.p0 = new BABYLON.Vector3(positions[i * 3], positions[i * 3 + 1], positions[i * 3 + 2]);
  100723. currentAdjecancy.p1 = new BABYLON.Vector3(positions[(i + 1) * 3], positions[(i + 1) * 3 + 1], positions[(i + 1) * 3 + 2]);
  100724. adjacencies.push(currentAdjecancy);
  100725. }
  100726. // Create lines
  100727. for (index = 0; index < adjacencies.length; index++) {
  100728. // We need a line when a face has no adjacency on a specific edge or if all the adjacencies has an angle greater than epsilon
  100729. var current = adjacencies[index];
  100730. this._checkEdge(index, current.edges[0], faceNormals, current.p0, current.p1);
  100731. }
  100732. // Merge into a single mesh
  100733. var engine = this._source.getScene().getEngine();
  100734. this._buffers[BABYLON.VertexBuffer.PositionKind] = new BABYLON.VertexBuffer(engine, this._linesPositions, BABYLON.VertexBuffer.PositionKind, false);
  100735. this._buffers[BABYLON.VertexBuffer.NormalKind] = new BABYLON.VertexBuffer(engine, this._linesNormals, BABYLON.VertexBuffer.NormalKind, false, false, 4);
  100736. this._ib = engine.createIndexBuffer(this._linesIndices);
  100737. this._indicesCount = this._linesIndices.length;
  100738. };
  100739. return LineEdgesRenderer;
  100740. }(BABYLON.EdgesRenderer));
  100741. BABYLON.LineEdgesRenderer = LineEdgesRenderer;
  100742. })(BABYLON || (BABYLON = {}));
  100743. //# sourceMappingURL=babylon.lineEdgesRenderer.js.map
  100744. var BABYLON;
  100745. (function (BABYLON) {
  100746. // Adds the parser to the scene parsers.
  100747. BABYLON.AbstractScene.AddParser(BABYLON.SceneComponentConstants.NAME_EFFECTLAYER, function (parsedData, scene, container, rootUrl) {
  100748. if (parsedData.effectLayers) {
  100749. if (!container.effectLayers) {
  100750. container.effectLayers = new Array();
  100751. }
  100752. for (var index = 0; index < parsedData.effectLayers.length; index++) {
  100753. var effectLayer = BABYLON.EffectLayer.Parse(parsedData.effectLayers[index], scene, rootUrl);
  100754. container.effectLayers.push(effectLayer);
  100755. }
  100756. }
  100757. });
  100758. BABYLON.AbstractScene.prototype.removeEffectLayer = function (toRemove) {
  100759. var index = this.effectLayers.indexOf(toRemove);
  100760. if (index !== -1) {
  100761. this.effectLayers.splice(index, 1);
  100762. }
  100763. return index;
  100764. };
  100765. BABYLON.AbstractScene.prototype.addEffectLayer = function (newEffectLayer) {
  100766. this.effectLayers.push(newEffectLayer);
  100767. };
  100768. /**
  100769. * Defines the layer scene component responsible to manage any effect layers
  100770. * in a given scene.
  100771. */
  100772. var EffectLayerSceneComponent = /** @class */ (function () {
  100773. /**
  100774. * Creates a new instance of the component for the given scene
  100775. * @param scene Defines the scene to register the component in
  100776. */
  100777. function EffectLayerSceneComponent(scene) {
  100778. /**
  100779. * The component name helpfull to identify the component in the list of scene components.
  100780. */
  100781. this.name = BABYLON.SceneComponentConstants.NAME_EFFECTLAYER;
  100782. this._renderEffects = false;
  100783. this._needStencil = false;
  100784. this._previousStencilState = false;
  100785. this.scene = scene;
  100786. this._engine = scene.getEngine();
  100787. scene.effectLayers = new Array();
  100788. }
  100789. /**
  100790. * Registers the component in a given scene
  100791. */
  100792. EffectLayerSceneComponent.prototype.register = function () {
  100793. this.scene._isReadyForMeshStage.registerStep(BABYLON.SceneComponentConstants.STEP_ISREADYFORMESH_EFFECTLAYER, this, this._isReadyForMesh);
  100794. this.scene._cameraDrawRenderTargetStage.registerStep(BABYLON.SceneComponentConstants.STEP_CAMERADRAWRENDERTARGET_EFFECTLAYER, this, this._renderMainTexture);
  100795. this.scene._beforeCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORECAMERADRAW_EFFECTLAYER, this, this._setStencil);
  100796. this.scene._afterRenderingGroupDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERRENDERINGGROUPDRAW_EFFECTLAYER_DRAW, this, this._drawRenderingGroup);
  100797. this.scene._afterCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERCAMERADRAW_EFFECTLAYER, this, this._setStencilBack);
  100798. this.scene._afterCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERCAMERADRAW_EFFECTLAYER_DRAW, this, this._drawCamera);
  100799. };
  100800. /**
  100801. * Rebuilds the elements related to this component in case of
  100802. * context lost for instance.
  100803. */
  100804. EffectLayerSceneComponent.prototype.rebuild = function () {
  100805. var layers = this.scene.effectLayers;
  100806. for (var _i = 0, layers_1 = layers; _i < layers_1.length; _i++) {
  100807. var effectLayer = layers_1[_i];
  100808. effectLayer._rebuild();
  100809. }
  100810. };
  100811. /**
  100812. * Serializes the component data to the specified json object
  100813. * @param serializationObject The object to serialize to
  100814. */
  100815. EffectLayerSceneComponent.prototype.serialize = function (serializationObject) {
  100816. // Effect layers
  100817. serializationObject.effectLayers = [];
  100818. var layers = this.scene.effectLayers;
  100819. for (var _i = 0, layers_2 = layers; _i < layers_2.length; _i++) {
  100820. var effectLayer = layers_2[_i];
  100821. if (effectLayer.serialize) {
  100822. serializationObject.effectLayers.push(effectLayer.serialize());
  100823. }
  100824. }
  100825. };
  100826. /**
  100827. * Adds all the element from the container to the scene
  100828. * @param container the container holding the elements
  100829. */
  100830. EffectLayerSceneComponent.prototype.addFromContainer = function (container) {
  100831. var _this = this;
  100832. if (!container.effectLayers) {
  100833. return;
  100834. }
  100835. container.effectLayers.forEach(function (o) {
  100836. _this.scene.addEffectLayer(o);
  100837. });
  100838. };
  100839. /**
  100840. * Removes all the elements in the container from the scene
  100841. * @param container contains the elements to remove
  100842. */
  100843. EffectLayerSceneComponent.prototype.removeFromContainer = function (container) {
  100844. var _this = this;
  100845. if (!container.effectLayers) {
  100846. return;
  100847. }
  100848. container.effectLayers.forEach(function (o) {
  100849. _this.scene.removeEffectLayer(o);
  100850. });
  100851. };
  100852. /**
  100853. * Disposes the component and the associated ressources.
  100854. */
  100855. EffectLayerSceneComponent.prototype.dispose = function () {
  100856. var layers = this.scene.effectLayers;
  100857. while (layers.length) {
  100858. layers[0].dispose();
  100859. }
  100860. };
  100861. EffectLayerSceneComponent.prototype._isReadyForMesh = function (mesh, hardwareInstancedRendering) {
  100862. var layers = this.scene.effectLayers;
  100863. for (var _i = 0, layers_3 = layers; _i < layers_3.length; _i++) {
  100864. var layer = layers_3[_i];
  100865. if (!layer.hasMesh(mesh)) {
  100866. continue;
  100867. }
  100868. for (var _a = 0, _b = mesh.subMeshes; _a < _b.length; _a++) {
  100869. var subMesh = _b[_a];
  100870. if (!layer.isReady(subMesh, hardwareInstancedRendering)) {
  100871. return false;
  100872. }
  100873. }
  100874. }
  100875. return true;
  100876. };
  100877. EffectLayerSceneComponent.prototype._renderMainTexture = function (camera) {
  100878. this._renderEffects = false;
  100879. this._needStencil = false;
  100880. var layers = this.scene.effectLayers;
  100881. if (layers && layers.length > 0) {
  100882. this._previousStencilState = this._engine.getStencilBuffer();
  100883. for (var _i = 0, layers_4 = layers; _i < layers_4.length; _i++) {
  100884. var effectLayer = layers_4[_i];
  100885. if (effectLayer.shouldRender() &&
  100886. (!effectLayer.camera ||
  100887. (effectLayer.camera.cameraRigMode === BABYLON.Camera.RIG_MODE_NONE && camera === effectLayer.camera) ||
  100888. (effectLayer.camera.cameraRigMode !== BABYLON.Camera.RIG_MODE_NONE && effectLayer.camera._rigCameras.indexOf(camera) > -1))) {
  100889. this._renderEffects = true;
  100890. this._needStencil = this._needStencil || effectLayer.needStencil();
  100891. var renderTarget = effectLayer._mainTexture;
  100892. if (renderTarget._shouldRender()) {
  100893. this.scene.incrementRenderId();
  100894. renderTarget.render(false, false);
  100895. }
  100896. }
  100897. }
  100898. this.scene.incrementRenderId();
  100899. }
  100900. };
  100901. EffectLayerSceneComponent.prototype._setStencil = function (camera) {
  100902. // Activate effect Layer stencil
  100903. if (this._needStencil) {
  100904. this._engine.setStencilBuffer(true);
  100905. }
  100906. };
  100907. EffectLayerSceneComponent.prototype._setStencilBack = function (camera) {
  100908. // Restore effect Layer stencil
  100909. if (this._needStencil) {
  100910. this._engine.setStencilBuffer(this._previousStencilState);
  100911. }
  100912. };
  100913. EffectLayerSceneComponent.prototype._draw = function (renderingGroupId) {
  100914. if (this._renderEffects) {
  100915. this._engine.setDepthBuffer(false);
  100916. var layers = this.scene.effectLayers;
  100917. for (var i = 0; i < layers.length; i++) {
  100918. var effectLayer = layers[i];
  100919. if (effectLayer.renderingGroupId === renderingGroupId) {
  100920. if (effectLayer.shouldRender()) {
  100921. effectLayer.render();
  100922. }
  100923. }
  100924. }
  100925. this._engine.setDepthBuffer(true);
  100926. }
  100927. };
  100928. EffectLayerSceneComponent.prototype._drawCamera = function (camera) {
  100929. if (this._renderEffects) {
  100930. this._draw(-1);
  100931. }
  100932. };
  100933. EffectLayerSceneComponent.prototype._drawRenderingGroup = function (index) {
  100934. if (!this.scene._isInIntermediateRendering() && this._renderEffects) {
  100935. this._draw(index);
  100936. }
  100937. };
  100938. return EffectLayerSceneComponent;
  100939. }());
  100940. BABYLON.EffectLayerSceneComponent = EffectLayerSceneComponent;
  100941. })(BABYLON || (BABYLON = {}));
  100942. //# sourceMappingURL=babylon.effectLayerSceneComponent.js.map
  100943. var __assign = (this && this.__assign) || function () {
  100944. __assign = Object.assign || function(t) {
  100945. for (var s, i = 1, n = arguments.length; i < n; i++) {
  100946. s = arguments[i];
  100947. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  100948. t[p] = s[p];
  100949. }
  100950. return t;
  100951. };
  100952. return __assign.apply(this, arguments);
  100953. };
  100954. var BABYLON;
  100955. (function (BABYLON) {
  100956. /**
  100957. * The effect layer Helps adding post process effect blended with the main pass.
  100958. *
  100959. * This can be for instance use to generate glow or higlight effects on the scene.
  100960. *
  100961. * The effect layer class can not be used directly and is intented to inherited from to be
  100962. * customized per effects.
  100963. */
  100964. var EffectLayer = /** @class */ (function () {
  100965. /**
  100966. * Instantiates a new effect Layer and references it in the scene.
  100967. * @param name The name of the layer
  100968. * @param scene The scene to use the layer in
  100969. */
  100970. function EffectLayer(
  100971. /** The Friendly of the effect in the scene */
  100972. name, scene) {
  100973. this._vertexBuffers = {};
  100974. this._maxSize = 0;
  100975. this._mainTextureDesiredSize = { width: 0, height: 0 };
  100976. this._shouldRender = true;
  100977. this._postProcesses = [];
  100978. this._textures = [];
  100979. this._emissiveTextureAndColor = { texture: null, color: new BABYLON.Color4() };
  100980. /**
  100981. * The clear color of the texture used to generate the glow map.
  100982. */
  100983. this.neutralColor = new BABYLON.Color4();
  100984. /**
  100985. * Specifies wether the highlight layer is enabled or not.
  100986. */
  100987. this.isEnabled = true;
  100988. /**
  100989. * An event triggered when the effect layer has been disposed.
  100990. */
  100991. this.onDisposeObservable = new BABYLON.Observable();
  100992. /**
  100993. * An event triggered when the effect layer is about rendering the main texture with the glowy parts.
  100994. */
  100995. this.onBeforeRenderMainTextureObservable = new BABYLON.Observable();
  100996. /**
  100997. * An event triggered when the generated texture is being merged in the scene.
  100998. */
  100999. this.onBeforeComposeObservable = new BABYLON.Observable();
  101000. /**
  101001. * An event triggered when the generated texture has been merged in the scene.
  101002. */
  101003. this.onAfterComposeObservable = new BABYLON.Observable();
  101004. /**
  101005. * An event triggered when the efffect layer changes its size.
  101006. */
  101007. this.onSizeChangedObservable = new BABYLON.Observable();
  101008. this.name = name;
  101009. this._scene = scene || BABYLON.Engine.LastCreatedScene;
  101010. var component = this._scene._getComponent(BABYLON.SceneComponentConstants.NAME_EFFECTLAYER);
  101011. if (!component) {
  101012. component = new BABYLON.EffectLayerSceneComponent(this._scene);
  101013. this._scene._addComponent(component);
  101014. }
  101015. this._engine = this._scene.getEngine();
  101016. this._maxSize = this._engine.getCaps().maxTextureSize;
  101017. this._scene.effectLayers.push(this);
  101018. // Generate Buffers
  101019. this._generateIndexBuffer();
  101020. this._genrateVertexBuffer();
  101021. }
  101022. Object.defineProperty(EffectLayer.prototype, "camera", {
  101023. /**
  101024. * Gets the camera attached to the layer.
  101025. */
  101026. get: function () {
  101027. return this._effectLayerOptions.camera;
  101028. },
  101029. enumerable: true,
  101030. configurable: true
  101031. });
  101032. Object.defineProperty(EffectLayer.prototype, "renderingGroupId", {
  101033. /**
  101034. * Gets the rendering group id the layer should render in.
  101035. */
  101036. get: function () {
  101037. return this._effectLayerOptions.renderingGroupId;
  101038. },
  101039. enumerable: true,
  101040. configurable: true
  101041. });
  101042. /**
  101043. * Initializes the effect layer with the required options.
  101044. * @param options Sets of none mandatory options to use with the layer (see IEffectLayerOptions for more information)
  101045. */
  101046. EffectLayer.prototype._init = function (options) {
  101047. // Adapt options
  101048. this._effectLayerOptions = __assign({ mainTextureRatio: 0.5, alphaBlendingMode: BABYLON.Engine.ALPHA_COMBINE, camera: null, renderingGroupId: -1 }, options);
  101049. this._setMainTextureSize();
  101050. this._createMainTexture();
  101051. this._createTextureAndPostProcesses();
  101052. this._mergeEffect = this._createMergeEffect();
  101053. };
  101054. /**
  101055. * Generates the index buffer of the full screen quad blending to the main canvas.
  101056. */
  101057. EffectLayer.prototype._generateIndexBuffer = function () {
  101058. // Indices
  101059. var indices = [];
  101060. indices.push(0);
  101061. indices.push(1);
  101062. indices.push(2);
  101063. indices.push(0);
  101064. indices.push(2);
  101065. indices.push(3);
  101066. this._indexBuffer = this._engine.createIndexBuffer(indices);
  101067. };
  101068. /**
  101069. * Generates the vertex buffer of the full screen quad blending to the main canvas.
  101070. */
  101071. EffectLayer.prototype._genrateVertexBuffer = function () {
  101072. // VBO
  101073. var vertices = [];
  101074. vertices.push(1, 1);
  101075. vertices.push(-1, 1);
  101076. vertices.push(-1, -1);
  101077. vertices.push(1, -1);
  101078. var vertexBuffer = new BABYLON.VertexBuffer(this._engine, vertices, BABYLON.VertexBuffer.PositionKind, false, false, 2);
  101079. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = vertexBuffer;
  101080. };
  101081. /**
  101082. * Sets the main texture desired size which is the closest power of two
  101083. * of the engine canvas size.
  101084. */
  101085. EffectLayer.prototype._setMainTextureSize = function () {
  101086. if (this._effectLayerOptions.mainTextureFixedSize) {
  101087. this._mainTextureDesiredSize.width = this._effectLayerOptions.mainTextureFixedSize;
  101088. this._mainTextureDesiredSize.height = this._effectLayerOptions.mainTextureFixedSize;
  101089. }
  101090. else {
  101091. this._mainTextureDesiredSize.width = this._engine.getRenderWidth() * this._effectLayerOptions.mainTextureRatio;
  101092. this._mainTextureDesiredSize.height = this._engine.getRenderHeight() * this._effectLayerOptions.mainTextureRatio;
  101093. this._mainTextureDesiredSize.width = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(this._mainTextureDesiredSize.width, this._maxSize) : this._mainTextureDesiredSize.width;
  101094. this._mainTextureDesiredSize.height = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(this._mainTextureDesiredSize.height, this._maxSize) : this._mainTextureDesiredSize.height;
  101095. }
  101096. this._mainTextureDesiredSize.width = Math.floor(this._mainTextureDesiredSize.width);
  101097. this._mainTextureDesiredSize.height = Math.floor(this._mainTextureDesiredSize.height);
  101098. };
  101099. /**
  101100. * Creates the main texture for the effect layer.
  101101. */
  101102. EffectLayer.prototype._createMainTexture = function () {
  101103. var _this = this;
  101104. this._mainTexture = new BABYLON.RenderTargetTexture("HighlightLayerMainRTT", {
  101105. width: this._mainTextureDesiredSize.width,
  101106. height: this._mainTextureDesiredSize.height
  101107. }, this._scene, false, true, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  101108. this._mainTexture.activeCamera = this._effectLayerOptions.camera;
  101109. this._mainTexture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  101110. this._mainTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  101111. this._mainTexture.anisotropicFilteringLevel = 1;
  101112. this._mainTexture.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  101113. this._mainTexture.renderParticles = false;
  101114. this._mainTexture.renderList = null;
  101115. this._mainTexture.ignoreCameraViewport = true;
  101116. // Custom render function
  101117. this._mainTexture.customRenderFunction = function (opaqueSubMeshes, alphaTestSubMeshes, transparentSubMeshes, depthOnlySubMeshes) {
  101118. _this.onBeforeRenderMainTextureObservable.notifyObservers(_this);
  101119. var index;
  101120. var engine = _this._scene.getEngine();
  101121. if (depthOnlySubMeshes.length) {
  101122. engine.setColorWrite(false);
  101123. for (index = 0; index < depthOnlySubMeshes.length; index++) {
  101124. _this._renderSubMesh(depthOnlySubMeshes.data[index]);
  101125. }
  101126. engine.setColorWrite(true);
  101127. }
  101128. for (index = 0; index < opaqueSubMeshes.length; index++) {
  101129. _this._renderSubMesh(opaqueSubMeshes.data[index]);
  101130. }
  101131. for (index = 0; index < alphaTestSubMeshes.length; index++) {
  101132. _this._renderSubMesh(alphaTestSubMeshes.data[index]);
  101133. }
  101134. for (index = 0; index < transparentSubMeshes.length; index++) {
  101135. _this._renderSubMesh(transparentSubMeshes.data[index]);
  101136. }
  101137. };
  101138. this._mainTexture.onClearObservable.add(function (engine) {
  101139. engine.clear(_this.neutralColor, true, true, true);
  101140. });
  101141. };
  101142. /**
  101143. * Checks for the readiness of the element composing the layer.
  101144. * @param subMesh the mesh to check for
  101145. * @param useInstances specify wether or not to use instances to render the mesh
  101146. * @param emissiveTexture the associated emissive texture used to generate the glow
  101147. * @return true if ready otherwise, false
  101148. */
  101149. EffectLayer.prototype._isReady = function (subMesh, useInstances, emissiveTexture) {
  101150. var material = subMesh.getMaterial();
  101151. if (!material) {
  101152. return false;
  101153. }
  101154. if (!material.isReady(subMesh.getMesh(), useInstances)) {
  101155. return false;
  101156. }
  101157. var defines = [];
  101158. var attribs = [BABYLON.VertexBuffer.PositionKind];
  101159. var mesh = subMesh.getMesh();
  101160. var uv1 = false;
  101161. var uv2 = false;
  101162. // Alpha test
  101163. if (material && material.needAlphaTesting()) {
  101164. var alphaTexture = material.getAlphaTestTexture();
  101165. if (alphaTexture) {
  101166. defines.push("#define ALPHATEST");
  101167. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind) &&
  101168. alphaTexture.coordinatesIndex === 1) {
  101169. defines.push("#define DIFFUSEUV2");
  101170. uv2 = true;
  101171. }
  101172. else if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  101173. defines.push("#define DIFFUSEUV1");
  101174. uv1 = true;
  101175. }
  101176. }
  101177. }
  101178. // Emissive
  101179. if (emissiveTexture) {
  101180. defines.push("#define EMISSIVE");
  101181. if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UV2Kind) &&
  101182. emissiveTexture.coordinatesIndex === 1) {
  101183. defines.push("#define EMISSIVEUV2");
  101184. uv2 = true;
  101185. }
  101186. else if (mesh.isVerticesDataPresent(BABYLON.VertexBuffer.UVKind)) {
  101187. defines.push("#define EMISSIVEUV1");
  101188. uv1 = true;
  101189. }
  101190. }
  101191. if (uv1) {
  101192. attribs.push(BABYLON.VertexBuffer.UVKind);
  101193. defines.push("#define UV1");
  101194. }
  101195. if (uv2) {
  101196. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  101197. defines.push("#define UV2");
  101198. }
  101199. // Bones
  101200. if (mesh.useBones && mesh.computeBonesUsingShaders) {
  101201. attribs.push(BABYLON.VertexBuffer.MatricesIndicesKind);
  101202. attribs.push(BABYLON.VertexBuffer.MatricesWeightsKind);
  101203. if (mesh.numBoneInfluencers > 4) {
  101204. attribs.push(BABYLON.VertexBuffer.MatricesIndicesExtraKind);
  101205. attribs.push(BABYLON.VertexBuffer.MatricesWeightsExtraKind);
  101206. }
  101207. defines.push("#define NUM_BONE_INFLUENCERS " + mesh.numBoneInfluencers);
  101208. defines.push("#define BonesPerMesh " + (mesh.skeleton ? (mesh.skeleton.bones.length + 1) : 0));
  101209. }
  101210. else {
  101211. defines.push("#define NUM_BONE_INFLUENCERS 0");
  101212. }
  101213. // Morph targets
  101214. var manager = mesh.morphTargetManager;
  101215. var morphInfluencers = 0;
  101216. if (manager) {
  101217. if (manager.numInfluencers > 0) {
  101218. defines.push("#define MORPHTARGETS");
  101219. morphInfluencers = manager.numInfluencers;
  101220. defines.push("#define NUM_MORPH_INFLUENCERS " + morphInfluencers);
  101221. BABYLON.MaterialHelper.PrepareAttributesForMorphTargets(attribs, mesh, { "NUM_MORPH_INFLUENCERS": morphInfluencers });
  101222. }
  101223. }
  101224. // Instances
  101225. if (useInstances) {
  101226. defines.push("#define INSTANCES");
  101227. attribs.push("world0");
  101228. attribs.push("world1");
  101229. attribs.push("world2");
  101230. attribs.push("world3");
  101231. }
  101232. // Get correct effect
  101233. var join = defines.join("\n");
  101234. if (this._cachedDefines !== join) {
  101235. this._cachedDefines = join;
  101236. this._effectLayerMapGenerationEffect = this._scene.getEngine().createEffect("glowMapGeneration", attribs, ["world", "mBones", "viewProjection", "diffuseMatrix", "color", "emissiveMatrix", "morphTargetInfluences"], ["diffuseSampler", "emissiveSampler"], join, undefined, undefined, undefined, { maxSimultaneousMorphTargets: morphInfluencers });
  101237. }
  101238. return this._effectLayerMapGenerationEffect.isReady();
  101239. };
  101240. /**
  101241. * Renders the glowing part of the scene by blending the blurred glowing meshes on top of the rendered scene.
  101242. */
  101243. EffectLayer.prototype.render = function () {
  101244. var currentEffect = this._mergeEffect;
  101245. // Check
  101246. if (!currentEffect.isReady())
  101247. return;
  101248. for (var i = 0; i < this._postProcesses.length; i++) {
  101249. if (!this._postProcesses[i].isReady()) {
  101250. return;
  101251. }
  101252. }
  101253. var engine = this._scene.getEngine();
  101254. this.onBeforeComposeObservable.notifyObservers(this);
  101255. // Render
  101256. engine.enableEffect(currentEffect);
  101257. engine.setState(false);
  101258. // VBOs
  101259. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, currentEffect);
  101260. // Cache
  101261. var previousAlphaMode = engine.getAlphaMode();
  101262. // Go Blend.
  101263. engine.setAlphaMode(this._effectLayerOptions.alphaBlendingMode);
  101264. // Blends the map on the main canvas.
  101265. this._internalRender(currentEffect);
  101266. // Restore Alpha
  101267. engine.setAlphaMode(previousAlphaMode);
  101268. this.onAfterComposeObservable.notifyObservers(this);
  101269. // Handle size changes.
  101270. var size = this._mainTexture.getSize();
  101271. this._setMainTextureSize();
  101272. if (size.width !== this._mainTextureDesiredSize.width || size.height !== this._mainTextureDesiredSize.height) {
  101273. // Recreate RTT and post processes on size change.
  101274. this.onSizeChangedObservable.notifyObservers(this);
  101275. this._disposeTextureAndPostProcesses();
  101276. this._createMainTexture();
  101277. this._createTextureAndPostProcesses();
  101278. }
  101279. };
  101280. /**
  101281. * Determine if a given mesh will be used in the current effect.
  101282. * @param mesh mesh to test
  101283. * @returns true if the mesh will be used
  101284. */
  101285. EffectLayer.prototype.hasMesh = function (mesh) {
  101286. if (this.renderingGroupId === -1 || mesh.renderingGroupId === this.renderingGroupId) {
  101287. return true;
  101288. }
  101289. return false;
  101290. };
  101291. /**
  101292. * Returns true if the layer contains information to display, otherwise false.
  101293. * @returns true if the glow layer should be rendered
  101294. */
  101295. EffectLayer.prototype.shouldRender = function () {
  101296. return this.isEnabled && this._shouldRender;
  101297. };
  101298. /**
  101299. * Returns true if the mesh should render, otherwise false.
  101300. * @param mesh The mesh to render
  101301. * @returns true if it should render otherwise false
  101302. */
  101303. EffectLayer.prototype._shouldRenderMesh = function (mesh) {
  101304. return true;
  101305. };
  101306. /**
  101307. * Returns true if the mesh should render, otherwise false.
  101308. * @param mesh The mesh to render
  101309. * @returns true if it should render otherwise false
  101310. */
  101311. EffectLayer.prototype._shouldRenderEmissiveTextureForMesh = function (mesh) {
  101312. return true;
  101313. };
  101314. /**
  101315. * Renders the submesh passed in parameter to the generation map.
  101316. */
  101317. EffectLayer.prototype._renderSubMesh = function (subMesh) {
  101318. var _this = this;
  101319. if (!this.shouldRender()) {
  101320. return;
  101321. }
  101322. var material = subMesh.getMaterial();
  101323. var mesh = subMesh.getRenderingMesh();
  101324. var scene = this._scene;
  101325. var engine = scene.getEngine();
  101326. if (!material) {
  101327. return;
  101328. }
  101329. // Do not block in blend mode.
  101330. if (material.needAlphaBlendingForMesh(mesh)) {
  101331. return;
  101332. }
  101333. // Culling
  101334. engine.setState(material.backFaceCulling);
  101335. // Managing instances
  101336. var batch = mesh._getInstancesRenderList(subMesh._id);
  101337. if (batch.mustReturn) {
  101338. return;
  101339. }
  101340. // Early Exit per mesh
  101341. if (!this._shouldRenderMesh(mesh)) {
  101342. return;
  101343. }
  101344. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null) && (batch.visibleInstances[subMesh._id] !== undefined);
  101345. this._setEmissiveTextureAndColor(mesh, subMesh, material);
  101346. if (this._isReady(subMesh, hardwareInstancedRendering, this._emissiveTextureAndColor.texture)) {
  101347. engine.enableEffect(this._effectLayerMapGenerationEffect);
  101348. mesh._bind(subMesh, this._effectLayerMapGenerationEffect, BABYLON.Material.TriangleFillMode);
  101349. this._effectLayerMapGenerationEffect.setMatrix("viewProjection", scene.getTransformMatrix());
  101350. this._effectLayerMapGenerationEffect.setFloat4("color", this._emissiveTextureAndColor.color.r, this._emissiveTextureAndColor.color.g, this._emissiveTextureAndColor.color.b, this._emissiveTextureAndColor.color.a);
  101351. // Alpha test
  101352. if (material && material.needAlphaTesting()) {
  101353. var alphaTexture = material.getAlphaTestTexture();
  101354. if (alphaTexture) {
  101355. this._effectLayerMapGenerationEffect.setTexture("diffuseSampler", alphaTexture);
  101356. var textureMatrix = alphaTexture.getTextureMatrix();
  101357. if (textureMatrix) {
  101358. this._effectLayerMapGenerationEffect.setMatrix("diffuseMatrix", textureMatrix);
  101359. }
  101360. }
  101361. }
  101362. // Glow emissive only
  101363. if (this._emissiveTextureAndColor.texture) {
  101364. this._effectLayerMapGenerationEffect.setTexture("emissiveSampler", this._emissiveTextureAndColor.texture);
  101365. this._effectLayerMapGenerationEffect.setMatrix("emissiveMatrix", this._emissiveTextureAndColor.texture.getTextureMatrix());
  101366. }
  101367. // Bones
  101368. if (mesh.useBones && mesh.computeBonesUsingShaders && mesh.skeleton) {
  101369. this._effectLayerMapGenerationEffect.setMatrices("mBones", mesh.skeleton.getTransformMatrices(mesh));
  101370. }
  101371. // Morph targets
  101372. BABYLON.MaterialHelper.BindMorphTargetParameters(mesh, this._effectLayerMapGenerationEffect);
  101373. // Draw
  101374. mesh._processRendering(subMesh, this._effectLayerMapGenerationEffect, BABYLON.Material.TriangleFillMode, batch, hardwareInstancedRendering, function (isInstance, world) { return _this._effectLayerMapGenerationEffect.setMatrix("world", world); });
  101375. }
  101376. else {
  101377. // Need to reset refresh rate of the main map
  101378. this._mainTexture.resetRefreshCounter();
  101379. }
  101380. };
  101381. /**
  101382. * Rebuild the required buffers.
  101383. * @hidden Internal use only.
  101384. */
  101385. EffectLayer.prototype._rebuild = function () {
  101386. var vb = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  101387. if (vb) {
  101388. vb._rebuild();
  101389. }
  101390. this._generateIndexBuffer();
  101391. };
  101392. /**
  101393. * Dispose only the render target textures and post process.
  101394. */
  101395. EffectLayer.prototype._disposeTextureAndPostProcesses = function () {
  101396. this._mainTexture.dispose();
  101397. for (var i = 0; i < this._postProcesses.length; i++) {
  101398. if (this._postProcesses[i]) {
  101399. this._postProcesses[i].dispose();
  101400. }
  101401. }
  101402. this._postProcesses = [];
  101403. for (var i = 0; i < this._textures.length; i++) {
  101404. if (this._textures[i]) {
  101405. this._textures[i].dispose();
  101406. }
  101407. }
  101408. this._textures = [];
  101409. };
  101410. /**
  101411. * Dispose the highlight layer and free resources.
  101412. */
  101413. EffectLayer.prototype.dispose = function () {
  101414. var vertexBuffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  101415. if (vertexBuffer) {
  101416. vertexBuffer.dispose();
  101417. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  101418. }
  101419. if (this._indexBuffer) {
  101420. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  101421. this._indexBuffer = null;
  101422. }
  101423. // Clean textures and post processes
  101424. this._disposeTextureAndPostProcesses();
  101425. // Remove from scene
  101426. var index = this._scene.effectLayers.indexOf(this, 0);
  101427. if (index > -1) {
  101428. this._scene.effectLayers.splice(index, 1);
  101429. }
  101430. // Callback
  101431. this.onDisposeObservable.notifyObservers(this);
  101432. this.onDisposeObservable.clear();
  101433. this.onBeforeRenderMainTextureObservable.clear();
  101434. this.onBeforeComposeObservable.clear();
  101435. this.onAfterComposeObservable.clear();
  101436. this.onSizeChangedObservable.clear();
  101437. };
  101438. /**
  101439. * Gets the class name of the effect layer
  101440. * @returns the string with the class name of the effect layer
  101441. */
  101442. EffectLayer.prototype.getClassName = function () {
  101443. return "EffectLayer";
  101444. };
  101445. /**
  101446. * Creates an effect layer from parsed effect layer data
  101447. * @param parsedEffectLayer defines effect layer data
  101448. * @param scene defines the current scene
  101449. * @param rootUrl defines the root URL containing the effect layer information
  101450. * @returns a parsed effect Layer
  101451. */
  101452. EffectLayer.Parse = function (parsedEffectLayer, scene, rootUrl) {
  101453. var effectLayerType = BABYLON.Tools.Instantiate(parsedEffectLayer.customType);
  101454. return effectLayerType.Parse(parsedEffectLayer, scene, rootUrl);
  101455. };
  101456. __decorate([
  101457. BABYLON.serialize()
  101458. ], EffectLayer.prototype, "name", void 0);
  101459. __decorate([
  101460. BABYLON.serializeAsColor4()
  101461. ], EffectLayer.prototype, "neutralColor", void 0);
  101462. __decorate([
  101463. BABYLON.serialize()
  101464. ], EffectLayer.prototype, "isEnabled", void 0);
  101465. __decorate([
  101466. BABYLON.serializeAsCameraReference()
  101467. ], EffectLayer.prototype, "camera", null);
  101468. __decorate([
  101469. BABYLON.serialize()
  101470. ], EffectLayer.prototype, "renderingGroupId", null);
  101471. return EffectLayer;
  101472. }());
  101473. BABYLON.EffectLayer = EffectLayer;
  101474. })(BABYLON || (BABYLON = {}));
  101475. //# sourceMappingURL=babylon.effectLayer.js.map
  101476. var BABYLON;
  101477. (function (BABYLON) {
  101478. BABYLON.AbstractScene.prototype.getHighlightLayerByName = function (name) {
  101479. for (var index = 0; index < this.effectLayers.length; index++) {
  101480. if (this.effectLayers[index].name === name && this.effectLayers[index].getEffectName() === HighlightLayer.EffectName) {
  101481. return this.effectLayers[index];
  101482. }
  101483. }
  101484. return null;
  101485. };
  101486. /**
  101487. * Special Glow Blur post process only blurring the alpha channel
  101488. * It enforces keeping the most luminous color in the color channel.
  101489. */
  101490. var GlowBlurPostProcess = /** @class */ (function (_super) {
  101491. __extends(GlowBlurPostProcess, _super);
  101492. function GlowBlurPostProcess(name, direction, kernel, options, camera, samplingMode, engine, reusable) {
  101493. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.BILINEAR_SAMPLINGMODE; }
  101494. var _this = _super.call(this, name, "glowBlurPostProcess", ["screenSize", "direction", "blurWidth"], null, options, camera, samplingMode, engine, reusable) || this;
  101495. _this.direction = direction;
  101496. _this.kernel = kernel;
  101497. _this.onApplyObservable.add(function (effect) {
  101498. effect.setFloat2("screenSize", _this.width, _this.height);
  101499. effect.setVector2("direction", _this.direction);
  101500. effect.setFloat("blurWidth", _this.kernel);
  101501. });
  101502. return _this;
  101503. }
  101504. return GlowBlurPostProcess;
  101505. }(BABYLON.PostProcess));
  101506. /**
  101507. * The highlight layer Helps adding a glow effect around a mesh.
  101508. *
  101509. * Once instantiated in a scene, simply use the pushMesh or removeMesh method to add or remove
  101510. * glowy meshes to your scene.
  101511. *
  101512. * !!! THIS REQUIRES AN ACTIVE STENCIL BUFFER ON THE CANVAS !!!
  101513. */
  101514. var HighlightLayer = /** @class */ (function (_super) {
  101515. __extends(HighlightLayer, _super);
  101516. /**
  101517. * Instantiates a new highlight Layer and references it to the scene..
  101518. * @param name The name of the layer
  101519. * @param scene The scene to use the layer in
  101520. * @param options Sets of none mandatory options to use with the layer (see IHighlightLayerOptions for more information)
  101521. */
  101522. function HighlightLayer(name, scene, options) {
  101523. var _this = _super.call(this, name, scene) || this;
  101524. _this.name = name;
  101525. /**
  101526. * Specifies whether or not the inner glow is ACTIVE in the layer.
  101527. */
  101528. _this.innerGlow = true;
  101529. /**
  101530. * Specifies whether or not the outer glow is ACTIVE in the layer.
  101531. */
  101532. _this.outerGlow = true;
  101533. /**
  101534. * An event triggered when the highlight layer is being blurred.
  101535. */
  101536. _this.onBeforeBlurObservable = new BABYLON.Observable();
  101537. /**
  101538. * An event triggered when the highlight layer has been blurred.
  101539. */
  101540. _this.onAfterBlurObservable = new BABYLON.Observable();
  101541. _this._instanceGlowingMeshStencilReference = HighlightLayer.GlowingMeshStencilReference++;
  101542. _this._meshes = {};
  101543. _this._excludedMeshes = {};
  101544. _this.neutralColor = HighlightLayer.NeutralColor;
  101545. // Warn on stencil
  101546. if (!_this._engine.isStencilEnable) {
  101547. BABYLON.Tools.Warn("Rendering the Highlight Layer requires the stencil to be active on the canvas. var engine = new BABYLON.Engine(canvas, antialias, { stencil: true }");
  101548. }
  101549. // Adapt options
  101550. _this._options = __assign({ mainTextureRatio: 0.5, blurTextureSizeRatio: 0.5, blurHorizontalSize: 1.0, blurVerticalSize: 1.0, alphaBlendingMode: BABYLON.Engine.ALPHA_COMBINE, camera: null, renderingGroupId: -1 }, options);
  101551. // Initialize the layer
  101552. _this._init({
  101553. alphaBlendingMode: _this._options.alphaBlendingMode,
  101554. camera: _this._options.camera,
  101555. mainTextureFixedSize: _this._options.mainTextureFixedSize,
  101556. mainTextureRatio: _this._options.mainTextureRatio,
  101557. renderingGroupId: _this._options.renderingGroupId
  101558. });
  101559. // Do not render as long as no meshes have been added
  101560. _this._shouldRender = false;
  101561. return _this;
  101562. }
  101563. Object.defineProperty(HighlightLayer.prototype, "blurHorizontalSize", {
  101564. /**
  101565. * Gets the horizontal size of the blur.
  101566. */
  101567. get: function () {
  101568. return this._horizontalBlurPostprocess.kernel;
  101569. },
  101570. /**
  101571. * Specifies the horizontal size of the blur.
  101572. */
  101573. set: function (value) {
  101574. this._horizontalBlurPostprocess.kernel = value;
  101575. },
  101576. enumerable: true,
  101577. configurable: true
  101578. });
  101579. Object.defineProperty(HighlightLayer.prototype, "blurVerticalSize", {
  101580. /**
  101581. * Gets the vertical size of the blur.
  101582. */
  101583. get: function () {
  101584. return this._verticalBlurPostprocess.kernel;
  101585. },
  101586. /**
  101587. * Specifies the vertical size of the blur.
  101588. */
  101589. set: function (value) {
  101590. this._verticalBlurPostprocess.kernel = value;
  101591. },
  101592. enumerable: true,
  101593. configurable: true
  101594. });
  101595. /**
  101596. * Get the effect name of the layer.
  101597. * @return The effect name
  101598. */
  101599. HighlightLayer.prototype.getEffectName = function () {
  101600. return HighlightLayer.EffectName;
  101601. };
  101602. /**
  101603. * Create the merge effect. This is the shader use to blit the information back
  101604. * to the main canvas at the end of the scene rendering.
  101605. */
  101606. HighlightLayer.prototype._createMergeEffect = function () {
  101607. // Effect
  101608. return this._engine.createEffect("glowMapMerge", [BABYLON.VertexBuffer.PositionKind], ["offset"], ["textureSampler"], this._options.isStroke ? "#define STROKE \n" : undefined);
  101609. };
  101610. /**
  101611. * Creates the render target textures and post processes used in the highlight layer.
  101612. */
  101613. HighlightLayer.prototype._createTextureAndPostProcesses = function () {
  101614. var _this = this;
  101615. var blurTextureWidth = this._mainTextureDesiredSize.width * this._options.blurTextureSizeRatio;
  101616. var blurTextureHeight = this._mainTextureDesiredSize.height * this._options.blurTextureSizeRatio;
  101617. blurTextureWidth = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(blurTextureWidth, this._maxSize) : blurTextureWidth;
  101618. blurTextureHeight = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(blurTextureHeight, this._maxSize) : blurTextureHeight;
  101619. var textureType = 0;
  101620. if (this._engine.getCaps().textureHalfFloatRender) {
  101621. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  101622. }
  101623. else {
  101624. textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  101625. }
  101626. this._blurTexture = new BABYLON.RenderTargetTexture("HighlightLayerBlurRTT", {
  101627. width: blurTextureWidth,
  101628. height: blurTextureHeight
  101629. }, this._scene, false, true, textureType);
  101630. this._blurTexture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  101631. this._blurTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  101632. this._blurTexture.anisotropicFilteringLevel = 16;
  101633. this._blurTexture.updateSamplingMode(BABYLON.Texture.TRILINEAR_SAMPLINGMODE);
  101634. this._blurTexture.renderParticles = false;
  101635. this._blurTexture.ignoreCameraViewport = true;
  101636. this._textures = [this._blurTexture];
  101637. if (this._options.alphaBlendingMode === BABYLON.Engine.ALPHA_COMBINE) {
  101638. this._downSamplePostprocess = new BABYLON.PassPostProcess("HighlightLayerPPP", this._options.blurTextureSizeRatio, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine());
  101639. this._downSamplePostprocess.onApplyObservable.add(function (effect) {
  101640. effect.setTexture("textureSampler", _this._mainTexture);
  101641. });
  101642. this._horizontalBlurPostprocess = new GlowBlurPostProcess("HighlightLayerHBP", new BABYLON.Vector2(1.0, 0), this._options.blurHorizontalSize, 1, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine());
  101643. this._horizontalBlurPostprocess.onApplyObservable.add(function (effect) {
  101644. effect.setFloat2("screenSize", blurTextureWidth, blurTextureHeight);
  101645. });
  101646. this._verticalBlurPostprocess = new GlowBlurPostProcess("HighlightLayerVBP", new BABYLON.Vector2(0, 1.0), this._options.blurVerticalSize, 1, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine());
  101647. this._verticalBlurPostprocess.onApplyObservable.add(function (effect) {
  101648. effect.setFloat2("screenSize", blurTextureWidth, blurTextureHeight);
  101649. });
  101650. this._postProcesses = [this._downSamplePostprocess, this._horizontalBlurPostprocess, this._verticalBlurPostprocess];
  101651. }
  101652. else {
  101653. this._horizontalBlurPostprocess = new BABYLON.BlurPostProcess("HighlightLayerHBP", new BABYLON.Vector2(1.0, 0), this._options.blurHorizontalSize / 2, {
  101654. width: blurTextureWidth,
  101655. height: blurTextureHeight
  101656. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  101657. this._horizontalBlurPostprocess.width = blurTextureWidth;
  101658. this._horizontalBlurPostprocess.height = blurTextureHeight;
  101659. this._horizontalBlurPostprocess.onApplyObservable.add(function (effect) {
  101660. effect.setTexture("textureSampler", _this._mainTexture);
  101661. });
  101662. this._verticalBlurPostprocess = new BABYLON.BlurPostProcess("HighlightLayerVBP", new BABYLON.Vector2(0, 1.0), this._options.blurVerticalSize / 2, {
  101663. width: blurTextureWidth,
  101664. height: blurTextureHeight
  101665. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  101666. this._postProcesses = [this._horizontalBlurPostprocess, this._verticalBlurPostprocess];
  101667. }
  101668. this._mainTexture.onAfterUnbindObservable.add(function () {
  101669. _this.onBeforeBlurObservable.notifyObservers(_this);
  101670. var internalTexture = _this._blurTexture.getInternalTexture();
  101671. if (internalTexture) {
  101672. _this._scene.postProcessManager.directRender(_this._postProcesses, internalTexture, true);
  101673. }
  101674. _this.onAfterBlurObservable.notifyObservers(_this);
  101675. });
  101676. // Prevent autoClear.
  101677. this._postProcesses.map(function (pp) { pp.autoClear = false; });
  101678. };
  101679. /**
  101680. * Returns wether or nood the layer needs stencil enabled during the mesh rendering.
  101681. */
  101682. HighlightLayer.prototype.needStencil = function () {
  101683. return true;
  101684. };
  101685. /**
  101686. * Checks for the readiness of the element composing the layer.
  101687. * @param subMesh the mesh to check for
  101688. * @param useInstances specify wether or not to use instances to render the mesh
  101689. * @param emissiveTexture the associated emissive texture used to generate the glow
  101690. * @return true if ready otherwise, false
  101691. */
  101692. HighlightLayer.prototype.isReady = function (subMesh, useInstances) {
  101693. var material = subMesh.getMaterial();
  101694. var mesh = subMesh.getRenderingMesh();
  101695. if (!material || !mesh || !this._meshes) {
  101696. return false;
  101697. }
  101698. var emissiveTexture = null;
  101699. var highlightLayerMesh = this._meshes[mesh.uniqueId];
  101700. if (highlightLayerMesh && highlightLayerMesh.glowEmissiveOnly && material) {
  101701. emissiveTexture = material.emissiveTexture;
  101702. }
  101703. return _super.prototype._isReady.call(this, subMesh, useInstances, emissiveTexture);
  101704. };
  101705. /**
  101706. * Implementation specific of rendering the generating effect on the main canvas.
  101707. * @param effect The effect used to render through
  101708. */
  101709. HighlightLayer.prototype._internalRender = function (effect) {
  101710. // Texture
  101711. effect.setTexture("textureSampler", this._blurTexture);
  101712. // Cache
  101713. var engine = this._engine;
  101714. var previousStencilBuffer = engine.getStencilBuffer();
  101715. var previousStencilFunction = engine.getStencilFunction();
  101716. var previousStencilMask = engine.getStencilMask();
  101717. var previousStencilOperationPass = engine.getStencilOperationPass();
  101718. var previousStencilOperationFail = engine.getStencilOperationFail();
  101719. var previousStencilOperationDepthFail = engine.getStencilOperationDepthFail();
  101720. var previousStencilReference = engine.getStencilFunctionReference();
  101721. // Stencil operations
  101722. engine.setStencilOperationPass(BABYLON.Engine.REPLACE);
  101723. engine.setStencilOperationFail(BABYLON.Engine.KEEP);
  101724. engine.setStencilOperationDepthFail(BABYLON.Engine.KEEP);
  101725. // Draw order
  101726. engine.setStencilMask(0x00);
  101727. engine.setStencilBuffer(true);
  101728. engine.setStencilFunctionReference(this._instanceGlowingMeshStencilReference);
  101729. // 2 passes inner outer
  101730. if (this.outerGlow) {
  101731. effect.setFloat("offset", 0);
  101732. engine.setStencilFunction(BABYLON.Engine.NOTEQUAL);
  101733. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  101734. }
  101735. if (this.innerGlow) {
  101736. effect.setFloat("offset", 1);
  101737. engine.setStencilFunction(BABYLON.Engine.EQUAL);
  101738. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  101739. }
  101740. // Restore Cache
  101741. engine.setStencilFunction(previousStencilFunction);
  101742. engine.setStencilMask(previousStencilMask);
  101743. engine.setStencilBuffer(previousStencilBuffer);
  101744. engine.setStencilOperationPass(previousStencilOperationPass);
  101745. engine.setStencilOperationFail(previousStencilOperationFail);
  101746. engine.setStencilOperationDepthFail(previousStencilOperationDepthFail);
  101747. engine.setStencilFunctionReference(previousStencilReference);
  101748. };
  101749. /**
  101750. * Returns true if the layer contains information to display, otherwise false.
  101751. */
  101752. HighlightLayer.prototype.shouldRender = function () {
  101753. if (_super.prototype.shouldRender.call(this)) {
  101754. return this._meshes ? true : false;
  101755. }
  101756. return false;
  101757. };
  101758. /**
  101759. * Returns true if the mesh should render, otherwise false.
  101760. * @param mesh The mesh to render
  101761. * @returns true if it should render otherwise false
  101762. */
  101763. HighlightLayer.prototype._shouldRenderMesh = function (mesh) {
  101764. // Excluded Mesh
  101765. if (this._excludedMeshes && this._excludedMeshes[mesh.uniqueId]) {
  101766. return false;
  101767. }
  101768. ;
  101769. if (!_super.prototype.hasMesh.call(this, mesh)) {
  101770. return false;
  101771. }
  101772. return true;
  101773. };
  101774. /**
  101775. * Sets the required values for both the emissive texture and and the main color.
  101776. */
  101777. HighlightLayer.prototype._setEmissiveTextureAndColor = function (mesh, subMesh, material) {
  101778. var highlightLayerMesh = this._meshes[mesh.uniqueId];
  101779. if (highlightLayerMesh) {
  101780. this._emissiveTextureAndColor.color.set(highlightLayerMesh.color.r, highlightLayerMesh.color.g, highlightLayerMesh.color.b, 1.0);
  101781. }
  101782. else {
  101783. this._emissiveTextureAndColor.color.set(this.neutralColor.r, this.neutralColor.g, this.neutralColor.b, this.neutralColor.a);
  101784. }
  101785. if (highlightLayerMesh && highlightLayerMesh.glowEmissiveOnly && material) {
  101786. this._emissiveTextureAndColor.texture = material.emissiveTexture;
  101787. this._emissiveTextureAndColor.color.set(1.0, 1.0, 1.0, 1.0);
  101788. }
  101789. else {
  101790. this._emissiveTextureAndColor.texture = null;
  101791. }
  101792. };
  101793. /**
  101794. * Add a mesh in the exclusion list to prevent it to impact or being impacted by the highlight layer.
  101795. * @param mesh The mesh to exclude from the highlight layer
  101796. */
  101797. HighlightLayer.prototype.addExcludedMesh = function (mesh) {
  101798. if (!this._excludedMeshes) {
  101799. return;
  101800. }
  101801. var meshExcluded = this._excludedMeshes[mesh.uniqueId];
  101802. if (!meshExcluded) {
  101803. this._excludedMeshes[mesh.uniqueId] = {
  101804. mesh: mesh,
  101805. beforeRender: mesh.onBeforeRenderObservable.add(function (mesh) {
  101806. mesh.getEngine().setStencilBuffer(false);
  101807. }),
  101808. afterRender: mesh.onAfterRenderObservable.add(function (mesh) {
  101809. mesh.getEngine().setStencilBuffer(true);
  101810. }),
  101811. };
  101812. }
  101813. };
  101814. /**
  101815. * Remove a mesh from the exclusion list to let it impact or being impacted by the highlight layer.
  101816. * @param mesh The mesh to highlight
  101817. */
  101818. HighlightLayer.prototype.removeExcludedMesh = function (mesh) {
  101819. if (!this._excludedMeshes) {
  101820. return;
  101821. }
  101822. var meshExcluded = this._excludedMeshes[mesh.uniqueId];
  101823. if (meshExcluded) {
  101824. if (meshExcluded.beforeRender) {
  101825. mesh.onBeforeRenderObservable.remove(meshExcluded.beforeRender);
  101826. }
  101827. if (meshExcluded.afterRender) {
  101828. mesh.onAfterRenderObservable.remove(meshExcluded.afterRender);
  101829. }
  101830. }
  101831. this._excludedMeshes[mesh.uniqueId] = null;
  101832. };
  101833. /**
  101834. * Determine if a given mesh will be highlighted by the current HighlightLayer
  101835. * @param mesh mesh to test
  101836. * @returns true if the mesh will be highlighted by the current HighlightLayer
  101837. */
  101838. HighlightLayer.prototype.hasMesh = function (mesh) {
  101839. if (!this._meshes) {
  101840. return false;
  101841. }
  101842. if (!_super.prototype.hasMesh.call(this, mesh)) {
  101843. return false;
  101844. }
  101845. return this._meshes[mesh.uniqueId] !== undefined && this._meshes[mesh.uniqueId] !== null;
  101846. };
  101847. /**
  101848. * Add a mesh in the highlight layer in order to make it glow with the chosen color.
  101849. * @param mesh The mesh to highlight
  101850. * @param color The color of the highlight
  101851. * @param glowEmissiveOnly Extract the glow from the emissive texture
  101852. */
  101853. HighlightLayer.prototype.addMesh = function (mesh, color, glowEmissiveOnly) {
  101854. var _this = this;
  101855. if (glowEmissiveOnly === void 0) { glowEmissiveOnly = false; }
  101856. if (!this._meshes) {
  101857. return;
  101858. }
  101859. var meshHighlight = this._meshes[mesh.uniqueId];
  101860. if (meshHighlight) {
  101861. meshHighlight.color = color;
  101862. }
  101863. else {
  101864. this._meshes[mesh.uniqueId] = {
  101865. mesh: mesh,
  101866. color: color,
  101867. // Lambda required for capture due to Observable this context
  101868. observerHighlight: mesh.onBeforeRenderObservable.add(function (mesh) {
  101869. if (_this._excludedMeshes && _this._excludedMeshes[mesh.uniqueId]) {
  101870. _this._defaultStencilReference(mesh);
  101871. }
  101872. else {
  101873. mesh.getScene().getEngine().setStencilFunctionReference(_this._instanceGlowingMeshStencilReference);
  101874. }
  101875. }),
  101876. observerDefault: mesh.onAfterRenderObservable.add(this._defaultStencilReference),
  101877. glowEmissiveOnly: glowEmissiveOnly
  101878. };
  101879. mesh.onDisposeObservable.add(function () {
  101880. _this._disposeMesh(mesh);
  101881. });
  101882. }
  101883. this._shouldRender = true;
  101884. };
  101885. /**
  101886. * Remove a mesh from the highlight layer in order to make it stop glowing.
  101887. * @param mesh The mesh to highlight
  101888. */
  101889. HighlightLayer.prototype.removeMesh = function (mesh) {
  101890. if (!this._meshes) {
  101891. return;
  101892. }
  101893. var meshHighlight = this._meshes[mesh.uniqueId];
  101894. if (meshHighlight) {
  101895. if (meshHighlight.observerHighlight) {
  101896. mesh.onBeforeRenderObservable.remove(meshHighlight.observerHighlight);
  101897. }
  101898. if (meshHighlight.observerDefault) {
  101899. mesh.onAfterRenderObservable.remove(meshHighlight.observerDefault);
  101900. }
  101901. delete this._meshes[mesh.uniqueId];
  101902. }
  101903. this._shouldRender = false;
  101904. for (var meshHighlightToCheck in this._meshes) {
  101905. if (this._meshes[meshHighlightToCheck]) {
  101906. this._shouldRender = true;
  101907. break;
  101908. }
  101909. }
  101910. };
  101911. /**
  101912. * Force the stencil to the normal expected value for none glowing parts
  101913. */
  101914. HighlightLayer.prototype._defaultStencilReference = function (mesh) {
  101915. mesh.getScene().getEngine().setStencilFunctionReference(HighlightLayer.NormalMeshStencilReference);
  101916. };
  101917. /**
  101918. * Free any resources and references associated to a mesh.
  101919. * Internal use
  101920. * @param mesh The mesh to free.
  101921. * @hidden
  101922. */
  101923. HighlightLayer.prototype._disposeMesh = function (mesh) {
  101924. this.removeMesh(mesh);
  101925. this.removeExcludedMesh(mesh);
  101926. };
  101927. /**
  101928. * Dispose the highlight layer and free resources.
  101929. */
  101930. HighlightLayer.prototype.dispose = function () {
  101931. if (this._meshes) {
  101932. // Clean mesh references
  101933. for (var id in this._meshes) {
  101934. var meshHighlight = this._meshes[id];
  101935. if (meshHighlight && meshHighlight.mesh) {
  101936. if (meshHighlight.observerHighlight) {
  101937. meshHighlight.mesh.onBeforeRenderObservable.remove(meshHighlight.observerHighlight);
  101938. }
  101939. if (meshHighlight.observerDefault) {
  101940. meshHighlight.mesh.onAfterRenderObservable.remove(meshHighlight.observerDefault);
  101941. }
  101942. }
  101943. }
  101944. this._meshes = null;
  101945. }
  101946. if (this._excludedMeshes) {
  101947. for (var id in this._excludedMeshes) {
  101948. var meshHighlight = this._excludedMeshes[id];
  101949. if (meshHighlight) {
  101950. if (meshHighlight.beforeRender) {
  101951. meshHighlight.mesh.onBeforeRenderObservable.remove(meshHighlight.beforeRender);
  101952. }
  101953. if (meshHighlight.afterRender) {
  101954. meshHighlight.mesh.onAfterRenderObservable.remove(meshHighlight.afterRender);
  101955. }
  101956. }
  101957. }
  101958. this._excludedMeshes = null;
  101959. }
  101960. _super.prototype.dispose.call(this);
  101961. };
  101962. /**
  101963. * Gets the class name of the effect layer
  101964. * @returns the string with the class name of the effect layer
  101965. */
  101966. HighlightLayer.prototype.getClassName = function () {
  101967. return "HighlightLayer";
  101968. };
  101969. /**
  101970. * Serializes this Highlight layer
  101971. * @returns a serialized Highlight layer object
  101972. */
  101973. HighlightLayer.prototype.serialize = function () {
  101974. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  101975. serializationObject.customType = "BABYLON.HighlightLayer";
  101976. // Highlighted meshes
  101977. serializationObject.meshes = [];
  101978. if (this._meshes) {
  101979. for (var m in this._meshes) {
  101980. var mesh = this._meshes[m];
  101981. if (mesh) {
  101982. serializationObject.meshes.push({
  101983. glowEmissiveOnly: mesh.glowEmissiveOnly,
  101984. color: mesh.color.asArray(),
  101985. meshId: mesh.mesh.id
  101986. });
  101987. }
  101988. }
  101989. }
  101990. // Excluded meshes
  101991. serializationObject.excludedMeshes = [];
  101992. if (this._excludedMeshes) {
  101993. for (var e in this._excludedMeshes) {
  101994. var excludedMesh = this._excludedMeshes[e];
  101995. if (excludedMesh) {
  101996. serializationObject.excludedMeshes.push(excludedMesh.mesh.id);
  101997. }
  101998. }
  101999. }
  102000. return serializationObject;
  102001. };
  102002. /**
  102003. * Creates a Highlight layer from parsed Highlight layer data
  102004. * @param parsedHightlightLayer defines the Highlight layer data
  102005. * @param scene defines the current scene
  102006. * @param rootUrl defines the root URL containing the Highlight layer information
  102007. * @returns a parsed Highlight layer
  102008. */
  102009. HighlightLayer.Parse = function (parsedHightlightLayer, scene, rootUrl) {
  102010. var hl = BABYLON.SerializationHelper.Parse(function () { return new HighlightLayer(parsedHightlightLayer.name, scene, parsedHightlightLayer.options); }, parsedHightlightLayer, scene, rootUrl);
  102011. var index;
  102012. // Excluded meshes
  102013. for (index = 0; index < parsedHightlightLayer.excludedMeshes.length; index++) {
  102014. var mesh = scene.getMeshByID(parsedHightlightLayer.excludedMeshes[index]);
  102015. if (mesh) {
  102016. hl.addExcludedMesh(mesh);
  102017. }
  102018. }
  102019. // Included meshes
  102020. for (index = 0; index < parsedHightlightLayer.meshes.length; index++) {
  102021. var highlightedMesh = parsedHightlightLayer.meshes[index];
  102022. var mesh = scene.getMeshByID(highlightedMesh.meshId);
  102023. if (mesh) {
  102024. hl.addMesh(mesh, BABYLON.Color3.FromArray(highlightedMesh.color), highlightedMesh.glowEmissiveOnly);
  102025. }
  102026. }
  102027. return hl;
  102028. };
  102029. /**
  102030. * Effect Name of the highlight layer.
  102031. */
  102032. HighlightLayer.EffectName = "HighlightLayer";
  102033. /**
  102034. * The neutral color used during the preparation of the glow effect.
  102035. * This is black by default as the blend operation is a blend operation.
  102036. */
  102037. HighlightLayer.NeutralColor = new BABYLON.Color4(0, 0, 0, 0);
  102038. /**
  102039. * Stencil value used for glowing meshes.
  102040. */
  102041. HighlightLayer.GlowingMeshStencilReference = 0x02;
  102042. /**
  102043. * Stencil value used for the other meshes in the scene.
  102044. */
  102045. HighlightLayer.NormalMeshStencilReference = 0x01;
  102046. __decorate([
  102047. BABYLON.serialize()
  102048. ], HighlightLayer.prototype, "innerGlow", void 0);
  102049. __decorate([
  102050. BABYLON.serialize()
  102051. ], HighlightLayer.prototype, "outerGlow", void 0);
  102052. __decorate([
  102053. BABYLON.serialize()
  102054. ], HighlightLayer.prototype, "blurHorizontalSize", null);
  102055. __decorate([
  102056. BABYLON.serialize()
  102057. ], HighlightLayer.prototype, "blurVerticalSize", null);
  102058. __decorate([
  102059. BABYLON.serialize("options")
  102060. ], HighlightLayer.prototype, "_options", void 0);
  102061. return HighlightLayer;
  102062. }(BABYLON.EffectLayer));
  102063. BABYLON.HighlightLayer = HighlightLayer;
  102064. })(BABYLON || (BABYLON = {}));
  102065. //# sourceMappingURL=babylon.highlightLayer.js.map
  102066. var BABYLON;
  102067. (function (BABYLON) {
  102068. BABYLON.AbstractScene.prototype.getGlowLayerByName = function (name) {
  102069. for (var index = 0; index < this.effectLayers.length; index++) {
  102070. if (this.effectLayers[index].name === name && this.effectLayers[index].getEffectName() === GlowLayer.EffectName) {
  102071. return this.effectLayers[index];
  102072. }
  102073. }
  102074. return null;
  102075. };
  102076. /**
  102077. * The glow layer Helps adding a glow effect around the emissive parts of a mesh.
  102078. *
  102079. * Once instantiated in a scene, simply use the pushMesh or removeMesh method to add or remove
  102080. * glowy meshes to your scene.
  102081. *
  102082. * Documentation: https://doc.babylonjs.com/how_to/glow_layer
  102083. */
  102084. var GlowLayer = /** @class */ (function (_super) {
  102085. __extends(GlowLayer, _super);
  102086. /**
  102087. * Instantiates a new glow Layer and references it to the scene.
  102088. * @param name The name of the layer
  102089. * @param scene The scene to use the layer in
  102090. * @param options Sets of none mandatory options to use with the layer (see IGlowLayerOptions for more information)
  102091. */
  102092. function GlowLayer(name, scene, options) {
  102093. var _this = _super.call(this, name, scene) || this;
  102094. _this._intensity = 1.0;
  102095. _this._includedOnlyMeshes = [];
  102096. _this._excludedMeshes = [];
  102097. _this.neutralColor = new BABYLON.Color4(0, 0, 0, 1);
  102098. // Adapt options
  102099. _this._options = __assign({ mainTextureRatio: GlowLayer.DefaultTextureRatio, blurKernelSize: 32, mainTextureFixedSize: undefined, camera: null, mainTextureSamples: 1, renderingGroupId: -1 }, options);
  102100. // Initialize the layer
  102101. _this._init({
  102102. alphaBlendingMode: BABYLON.Engine.ALPHA_ADD,
  102103. camera: _this._options.camera,
  102104. mainTextureFixedSize: _this._options.mainTextureFixedSize,
  102105. mainTextureRatio: _this._options.mainTextureRatio,
  102106. renderingGroupId: _this._options.renderingGroupId
  102107. });
  102108. return _this;
  102109. }
  102110. Object.defineProperty(GlowLayer.prototype, "blurKernelSize", {
  102111. /**
  102112. * Gets the kernel size of the blur.
  102113. */
  102114. get: function () {
  102115. return this._horizontalBlurPostprocess1.kernel;
  102116. },
  102117. /**
  102118. * Sets the kernel size of the blur.
  102119. */
  102120. set: function (value) {
  102121. this._horizontalBlurPostprocess1.kernel = value;
  102122. this._verticalBlurPostprocess1.kernel = value;
  102123. this._horizontalBlurPostprocess2.kernel = value;
  102124. this._verticalBlurPostprocess2.kernel = value;
  102125. },
  102126. enumerable: true,
  102127. configurable: true
  102128. });
  102129. Object.defineProperty(GlowLayer.prototype, "intensity", {
  102130. /**
  102131. * Gets the glow intensity.
  102132. */
  102133. get: function () {
  102134. return this._intensity;
  102135. },
  102136. /**
  102137. * Sets the glow intensity.
  102138. */
  102139. set: function (value) {
  102140. this._intensity = value;
  102141. },
  102142. enumerable: true,
  102143. configurable: true
  102144. });
  102145. /**
  102146. * Get the effect name of the layer.
  102147. * @return The effect name
  102148. */
  102149. GlowLayer.prototype.getEffectName = function () {
  102150. return GlowLayer.EffectName;
  102151. };
  102152. /**
  102153. * Create the merge effect. This is the shader use to blit the information back
  102154. * to the main canvas at the end of the scene rendering.
  102155. */
  102156. GlowLayer.prototype._createMergeEffect = function () {
  102157. // Effect
  102158. return this._engine.createEffect("glowMapMerge", [BABYLON.VertexBuffer.PositionKind], ["offset"], ["textureSampler", "textureSampler2"], "#define EMISSIVE \n");
  102159. };
  102160. /**
  102161. * Creates the render target textures and post processes used in the glow layer.
  102162. */
  102163. GlowLayer.prototype._createTextureAndPostProcesses = function () {
  102164. var _this = this;
  102165. var blurTextureWidth = this._mainTextureDesiredSize.width;
  102166. var blurTextureHeight = this._mainTextureDesiredSize.height;
  102167. blurTextureWidth = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(blurTextureWidth, this._maxSize) : blurTextureWidth;
  102168. blurTextureHeight = this._engine.needPOTTextures ? BABYLON.Tools.GetExponentOfTwo(blurTextureHeight, this._maxSize) : blurTextureHeight;
  102169. var textureType = 0;
  102170. if (this._engine.getCaps().textureHalfFloatRender) {
  102171. textureType = BABYLON.Engine.TEXTURETYPE_HALF_FLOAT;
  102172. }
  102173. else {
  102174. textureType = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  102175. }
  102176. this._blurTexture1 = new BABYLON.RenderTargetTexture("GlowLayerBlurRTT", {
  102177. width: blurTextureWidth,
  102178. height: blurTextureHeight
  102179. }, this._scene, false, true, textureType);
  102180. this._blurTexture1.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  102181. this._blurTexture1.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  102182. this._blurTexture1.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  102183. this._blurTexture1.renderParticles = false;
  102184. this._blurTexture1.ignoreCameraViewport = true;
  102185. var blurTextureWidth2 = Math.floor(blurTextureWidth / 2);
  102186. var blurTextureHeight2 = Math.floor(blurTextureHeight / 2);
  102187. this._blurTexture2 = new BABYLON.RenderTargetTexture("GlowLayerBlurRTT2", {
  102188. width: blurTextureWidth2,
  102189. height: blurTextureHeight2
  102190. }, this._scene, false, true, textureType);
  102191. this._blurTexture2.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  102192. this._blurTexture2.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  102193. this._blurTexture2.updateSamplingMode(BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  102194. this._blurTexture2.renderParticles = false;
  102195. this._blurTexture2.ignoreCameraViewport = true;
  102196. this._textures = [this._blurTexture1, this._blurTexture2];
  102197. this._horizontalBlurPostprocess1 = new BABYLON.BlurPostProcess("GlowLayerHBP1", new BABYLON.Vector2(1.0, 0), this._options.blurKernelSize / 2, {
  102198. width: blurTextureWidth,
  102199. height: blurTextureHeight
  102200. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  102201. this._horizontalBlurPostprocess1.width = blurTextureWidth;
  102202. this._horizontalBlurPostprocess1.height = blurTextureHeight;
  102203. this._horizontalBlurPostprocess1.onApplyObservable.add(function (effect) {
  102204. effect.setTexture("textureSampler", _this._mainTexture);
  102205. });
  102206. this._verticalBlurPostprocess1 = new BABYLON.BlurPostProcess("GlowLayerVBP1", new BABYLON.Vector2(0, 1.0), this._options.blurKernelSize / 2, {
  102207. width: blurTextureWidth,
  102208. height: blurTextureHeight
  102209. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  102210. this._horizontalBlurPostprocess2 = new BABYLON.BlurPostProcess("GlowLayerHBP2", new BABYLON.Vector2(1.0, 0), this._options.blurKernelSize / 2, {
  102211. width: blurTextureWidth2,
  102212. height: blurTextureHeight2
  102213. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  102214. this._horizontalBlurPostprocess2.width = blurTextureWidth2;
  102215. this._horizontalBlurPostprocess2.height = blurTextureHeight2;
  102216. this._horizontalBlurPostprocess2.onApplyObservable.add(function (effect) {
  102217. effect.setTexture("textureSampler", _this._blurTexture1);
  102218. });
  102219. this._verticalBlurPostprocess2 = new BABYLON.BlurPostProcess("GlowLayerVBP2", new BABYLON.Vector2(0, 1.0), this._options.blurKernelSize / 2, {
  102220. width: blurTextureWidth2,
  102221. height: blurTextureHeight2
  102222. }, null, BABYLON.Texture.BILINEAR_SAMPLINGMODE, this._scene.getEngine(), false, textureType);
  102223. this._postProcesses = [this._horizontalBlurPostprocess1, this._verticalBlurPostprocess1, this._horizontalBlurPostprocess2, this._verticalBlurPostprocess2];
  102224. this._postProcesses1 = [this._horizontalBlurPostprocess1, this._verticalBlurPostprocess1];
  102225. this._postProcesses2 = [this._horizontalBlurPostprocess2, this._verticalBlurPostprocess2];
  102226. this._mainTexture.samples = this._options.mainTextureSamples;
  102227. this._mainTexture.onAfterUnbindObservable.add(function () {
  102228. var internalTexture = _this._blurTexture1.getInternalTexture();
  102229. if (internalTexture) {
  102230. _this._scene.postProcessManager.directRender(_this._postProcesses1, internalTexture, true);
  102231. internalTexture = _this._blurTexture2.getInternalTexture();
  102232. if (internalTexture) {
  102233. _this._scene.postProcessManager.directRender(_this._postProcesses2, internalTexture, true);
  102234. }
  102235. }
  102236. });
  102237. // Prevent autoClear.
  102238. this._postProcesses.map(function (pp) { pp.autoClear = false; });
  102239. };
  102240. /**
  102241. * Checks for the readiness of the element composing the layer.
  102242. * @param subMesh the mesh to check for
  102243. * @param useInstances specify wether or not to use instances to render the mesh
  102244. * @param emissiveTexture the associated emissive texture used to generate the glow
  102245. * @return true if ready otherwise, false
  102246. */
  102247. GlowLayer.prototype.isReady = function (subMesh, useInstances) {
  102248. var material = subMesh.getMaterial();
  102249. var mesh = subMesh.getRenderingMesh();
  102250. if (!material || !mesh) {
  102251. return false;
  102252. }
  102253. var emissiveTexture = material.emissiveTexture;
  102254. return _super.prototype._isReady.call(this, subMesh, useInstances, emissiveTexture);
  102255. };
  102256. /**
  102257. * Returns wether or nood the layer needs stencil enabled during the mesh rendering.
  102258. */
  102259. GlowLayer.prototype.needStencil = function () {
  102260. return false;
  102261. };
  102262. /**
  102263. * Implementation specific of rendering the generating effect on the main canvas.
  102264. * @param effect The effect used to render through
  102265. */
  102266. GlowLayer.prototype._internalRender = function (effect) {
  102267. // Texture
  102268. effect.setTexture("textureSampler", this._blurTexture1);
  102269. effect.setTexture("textureSampler2", this._blurTexture2);
  102270. effect.setFloat("offset", this._intensity);
  102271. // Cache
  102272. var engine = this._engine;
  102273. var previousStencilBuffer = engine.getStencilBuffer();
  102274. // Draw order
  102275. engine.setStencilBuffer(false);
  102276. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  102277. // Draw order
  102278. engine.setStencilBuffer(previousStencilBuffer);
  102279. };
  102280. /**
  102281. * Sets the required values for both the emissive texture and and the main color.
  102282. */
  102283. GlowLayer.prototype._setEmissiveTextureAndColor = function (mesh, subMesh, material) {
  102284. var textureLevel = 1.0;
  102285. if (this.customEmissiveTextureSelector) {
  102286. this._emissiveTextureAndColor.texture = this.customEmissiveTextureSelector(mesh, subMesh, material);
  102287. }
  102288. else {
  102289. if (material) {
  102290. this._emissiveTextureAndColor.texture = material.emissiveTexture;
  102291. if (this._emissiveTextureAndColor.texture) {
  102292. textureLevel = this._emissiveTextureAndColor.texture.level;
  102293. }
  102294. }
  102295. else {
  102296. this._emissiveTextureAndColor.texture = null;
  102297. }
  102298. }
  102299. if (this.customEmissiveColorSelector) {
  102300. this.customEmissiveColorSelector(mesh, subMesh, material, this._emissiveTextureAndColor.color);
  102301. }
  102302. else {
  102303. if (material.emissiveColor) {
  102304. this._emissiveTextureAndColor.color.set(material.emissiveColor.r * textureLevel, material.emissiveColor.g * textureLevel, material.emissiveColor.b * textureLevel, 1.0);
  102305. }
  102306. else {
  102307. this._emissiveTextureAndColor.color.set(this.neutralColor.r, this.neutralColor.g, this.neutralColor.b, this.neutralColor.a);
  102308. }
  102309. }
  102310. };
  102311. /**
  102312. * Returns true if the mesh should render, otherwise false.
  102313. * @param mesh The mesh to render
  102314. * @returns true if it should render otherwise false
  102315. */
  102316. GlowLayer.prototype._shouldRenderMesh = function (mesh) {
  102317. return this.hasMesh(mesh);
  102318. };
  102319. /**
  102320. * Add a mesh in the exclusion list to prevent it to impact or being impacted by the glow layer.
  102321. * @param mesh The mesh to exclude from the glow layer
  102322. */
  102323. GlowLayer.prototype.addExcludedMesh = function (mesh) {
  102324. if (this._excludedMeshes.indexOf(mesh.uniqueId) === -1) {
  102325. this._excludedMeshes.push(mesh.uniqueId);
  102326. }
  102327. };
  102328. /**
  102329. * Remove a mesh from the exclusion list to let it impact or being impacted by the glow layer.
  102330. * @param mesh The mesh to remove
  102331. */
  102332. GlowLayer.prototype.removeExcludedMesh = function (mesh) {
  102333. var index = this._excludedMeshes.indexOf(mesh.uniqueId);
  102334. if (index !== -1) {
  102335. this._excludedMeshes.splice(index, 1);
  102336. }
  102337. };
  102338. /**
  102339. * Add a mesh in the inclusion list to impact or being impacted by the glow layer.
  102340. * @param mesh The mesh to include in the glow layer
  102341. */
  102342. GlowLayer.prototype.addIncludedOnlyMesh = function (mesh) {
  102343. if (this._includedOnlyMeshes.indexOf(mesh.uniqueId) === -1) {
  102344. this._includedOnlyMeshes.push(mesh.uniqueId);
  102345. }
  102346. };
  102347. /**
  102348. * Remove a mesh from the Inclusion list to prevent it to impact or being impacted by the glow layer.
  102349. * @param mesh The mesh to remove
  102350. */
  102351. GlowLayer.prototype.removeIncludedOnlyMesh = function (mesh) {
  102352. var index = this._includedOnlyMeshes.indexOf(mesh.uniqueId);
  102353. if (index !== -1) {
  102354. this._includedOnlyMeshes.splice(index, 1);
  102355. }
  102356. };
  102357. /**
  102358. * Determine if a given mesh will be used in the glow layer
  102359. * @param mesh The mesh to test
  102360. * @returns true if the mesh will be highlighted by the current glow layer
  102361. */
  102362. GlowLayer.prototype.hasMesh = function (mesh) {
  102363. if (!_super.prototype.hasMesh.call(this, mesh)) {
  102364. return false;
  102365. }
  102366. // Included Mesh
  102367. if (this._includedOnlyMeshes.length) {
  102368. return this._includedOnlyMeshes.indexOf(mesh.uniqueId) !== -1;
  102369. }
  102370. ;
  102371. // Excluded Mesh
  102372. if (this._excludedMeshes.length) {
  102373. return this._excludedMeshes.indexOf(mesh.uniqueId) === -1;
  102374. }
  102375. ;
  102376. return true;
  102377. };
  102378. /**
  102379. * Free any resources and references associated to a mesh.
  102380. * Internal use
  102381. * @param mesh The mesh to free.
  102382. * @hidden
  102383. */
  102384. GlowLayer.prototype._disposeMesh = function (mesh) {
  102385. this.removeIncludedOnlyMesh(mesh);
  102386. this.removeExcludedMesh(mesh);
  102387. };
  102388. /**
  102389. * Gets the class name of the effect layer
  102390. * @returns the string with the class name of the effect layer
  102391. */
  102392. GlowLayer.prototype.getClassName = function () {
  102393. return "GlowLayer";
  102394. };
  102395. /**
  102396. * Serializes this glow layer
  102397. * @returns a serialized glow layer object
  102398. */
  102399. GlowLayer.prototype.serialize = function () {
  102400. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  102401. serializationObject.customType = "BABYLON.GlowLayer";
  102402. var index;
  102403. // Included meshes
  102404. serializationObject.includedMeshes = [];
  102405. if (this._includedOnlyMeshes.length) {
  102406. for (index = 0; index < this._includedOnlyMeshes.length; index++) {
  102407. var mesh = this._scene.getMeshByUniqueID(this._includedOnlyMeshes[index]);
  102408. if (mesh) {
  102409. serializationObject.includedMeshes.push(mesh.id);
  102410. }
  102411. }
  102412. }
  102413. // Excluded meshes
  102414. serializationObject.excludedMeshes = [];
  102415. if (this._excludedMeshes.length) {
  102416. for (index = 0; index < this._excludedMeshes.length; index++) {
  102417. var mesh = this._scene.getMeshByUniqueID(this._excludedMeshes[index]);
  102418. if (mesh) {
  102419. serializationObject.excludedMeshes.push(mesh.id);
  102420. }
  102421. }
  102422. }
  102423. return serializationObject;
  102424. };
  102425. /**
  102426. * Creates a Glow Layer from parsed glow layer data
  102427. * @param parsedGlowLayer defines glow layer data
  102428. * @param scene defines the current scene
  102429. * @param rootUrl defines the root URL containing the glow layer information
  102430. * @returns a parsed Glow Layer
  102431. */
  102432. GlowLayer.Parse = function (parsedGlowLayer, scene, rootUrl) {
  102433. var gl = BABYLON.SerializationHelper.Parse(function () { return new GlowLayer(parsedGlowLayer.name, scene, parsedGlowLayer.options); }, parsedGlowLayer, scene, rootUrl);
  102434. var index;
  102435. // Excluded meshes
  102436. for (index = 0; index < parsedGlowLayer.excludedMeshes.length; index++) {
  102437. var mesh = scene.getMeshByID(parsedGlowLayer.excludedMeshes[index]);
  102438. if (mesh) {
  102439. gl.addExcludedMesh(mesh);
  102440. }
  102441. }
  102442. // Included meshes
  102443. for (index = 0; index < parsedGlowLayer.includedMeshes.length; index++) {
  102444. var mesh = scene.getMeshByID(parsedGlowLayer.includedMeshes[index]);
  102445. if (mesh) {
  102446. gl.addIncludedOnlyMesh(mesh);
  102447. }
  102448. }
  102449. return gl;
  102450. };
  102451. /**
  102452. * Effect Name of the layer.
  102453. */
  102454. GlowLayer.EffectName = "GlowLayer";
  102455. /**
  102456. * The default blur kernel size used for the glow.
  102457. */
  102458. GlowLayer.DefaultBlurKernelSize = 32;
  102459. /**
  102460. * The default texture size ratio used for the glow.
  102461. */
  102462. GlowLayer.DefaultTextureRatio = 0.5;
  102463. __decorate([
  102464. BABYLON.serialize()
  102465. ], GlowLayer.prototype, "blurKernelSize", null);
  102466. __decorate([
  102467. BABYLON.serialize()
  102468. ], GlowLayer.prototype, "intensity", null);
  102469. __decorate([
  102470. BABYLON.serialize("options")
  102471. ], GlowLayer.prototype, "_options", void 0);
  102472. return GlowLayer;
  102473. }(BABYLON.EffectLayer));
  102474. BABYLON.GlowLayer = GlowLayer;
  102475. })(BABYLON || (BABYLON = {}));
  102476. //# sourceMappingURL=babylon.glowLayer.js.map
  102477. var BABYLON;
  102478. (function (BABYLON) {
  102479. /**
  102480. * Defines the list of states available for a task inside a {BABYLON.AssetsManager}
  102481. */
  102482. var AssetTaskState;
  102483. (function (AssetTaskState) {
  102484. /**
  102485. * Initialization
  102486. */
  102487. AssetTaskState[AssetTaskState["INIT"] = 0] = "INIT";
  102488. /**
  102489. * Running
  102490. */
  102491. AssetTaskState[AssetTaskState["RUNNING"] = 1] = "RUNNING";
  102492. /**
  102493. * Done
  102494. */
  102495. AssetTaskState[AssetTaskState["DONE"] = 2] = "DONE";
  102496. /**
  102497. * Error
  102498. */
  102499. AssetTaskState[AssetTaskState["ERROR"] = 3] = "ERROR";
  102500. })(AssetTaskState = BABYLON.AssetTaskState || (BABYLON.AssetTaskState = {}));
  102501. /**
  102502. * Define an abstract asset task used with a {BABYLON.AssetsManager} class to load assets into a scene
  102503. */
  102504. var AbstractAssetTask = /** @class */ (function () {
  102505. /**
  102506. * Creates a new {BABYLON.AssetsManager}
  102507. * @param name defines the name of the task
  102508. */
  102509. function AbstractAssetTask(
  102510. /**
  102511. * Task name
  102512. */ name) {
  102513. this.name = name;
  102514. this._isCompleted = false;
  102515. this._taskState = AssetTaskState.INIT;
  102516. }
  102517. Object.defineProperty(AbstractAssetTask.prototype, "isCompleted", {
  102518. /**
  102519. * Get if the task is completed
  102520. */
  102521. get: function () {
  102522. return this._isCompleted;
  102523. },
  102524. enumerable: true,
  102525. configurable: true
  102526. });
  102527. Object.defineProperty(AbstractAssetTask.prototype, "taskState", {
  102528. /**
  102529. * Gets the current state of the task
  102530. */
  102531. get: function () {
  102532. return this._taskState;
  102533. },
  102534. enumerable: true,
  102535. configurable: true
  102536. });
  102537. Object.defineProperty(AbstractAssetTask.prototype, "errorObject", {
  102538. /**
  102539. * Gets the current error object (if task is in error)
  102540. */
  102541. get: function () {
  102542. return this._errorObject;
  102543. },
  102544. enumerable: true,
  102545. configurable: true
  102546. });
  102547. /**
  102548. * Internal only
  102549. * @hidden
  102550. */
  102551. AbstractAssetTask.prototype._setErrorObject = function (message, exception) {
  102552. if (this._errorObject) {
  102553. return;
  102554. }
  102555. this._errorObject = {
  102556. message: message,
  102557. exception: exception
  102558. };
  102559. };
  102560. /**
  102561. * Execute the current task
  102562. * @param scene defines the scene where you want your assets to be loaded
  102563. * @param onSuccess is a callback called when the task is successfully executed
  102564. * @param onError is a callback called if an error occurs
  102565. */
  102566. AbstractAssetTask.prototype.run = function (scene, onSuccess, onError) {
  102567. var _this = this;
  102568. this._taskState = AssetTaskState.RUNNING;
  102569. this.runTask(scene, function () {
  102570. _this.onDoneCallback(onSuccess, onError);
  102571. }, function (msg, exception) {
  102572. _this.onErrorCallback(onError, msg, exception);
  102573. });
  102574. };
  102575. /**
  102576. * Execute the current task
  102577. * @param scene defines the scene where you want your assets to be loaded
  102578. * @param onSuccess is a callback called when the task is successfully executed
  102579. * @param onError is a callback called if an error occurs
  102580. */
  102581. AbstractAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102582. throw new Error("runTask is not implemented");
  102583. };
  102584. /**
  102585. * Reset will set the task state back to INIT, so the next load call of the assets manager will execute this task again.
  102586. * This can be used with failed tasks that have the reason for failure fixed.
  102587. */
  102588. AbstractAssetTask.prototype.reset = function () {
  102589. this._taskState = AssetTaskState.INIT;
  102590. };
  102591. AbstractAssetTask.prototype.onErrorCallback = function (onError, message, exception) {
  102592. this._taskState = AssetTaskState.ERROR;
  102593. this._errorObject = {
  102594. message: message,
  102595. exception: exception
  102596. };
  102597. if (this.onError) {
  102598. this.onError(this, message, exception);
  102599. }
  102600. onError();
  102601. };
  102602. AbstractAssetTask.prototype.onDoneCallback = function (onSuccess, onError) {
  102603. try {
  102604. this._taskState = AssetTaskState.DONE;
  102605. this._isCompleted = true;
  102606. if (this.onSuccess) {
  102607. this.onSuccess(this);
  102608. }
  102609. onSuccess();
  102610. }
  102611. catch (e) {
  102612. this.onErrorCallback(onError, "Task is done, error executing success callback(s)", e);
  102613. }
  102614. };
  102615. return AbstractAssetTask;
  102616. }());
  102617. BABYLON.AbstractAssetTask = AbstractAssetTask;
  102618. /**
  102619. * Class used to share progress information about assets loading
  102620. */
  102621. var AssetsProgressEvent = /** @class */ (function () {
  102622. /**
  102623. * Creates a {BABYLON.AssetsProgressEvent}
  102624. * @param remainingCount defines the number of remaining tasks to process
  102625. * @param totalCount defines the total number of tasks
  102626. * @param task defines the task that was just processed
  102627. */
  102628. function AssetsProgressEvent(remainingCount, totalCount, task) {
  102629. this.remainingCount = remainingCount;
  102630. this.totalCount = totalCount;
  102631. this.task = task;
  102632. }
  102633. return AssetsProgressEvent;
  102634. }());
  102635. BABYLON.AssetsProgressEvent = AssetsProgressEvent;
  102636. /**
  102637. * Define a task used by {BABYLON.AssetsManager} to load meshes
  102638. */
  102639. var MeshAssetTask = /** @class */ (function (_super) {
  102640. __extends(MeshAssetTask, _super);
  102641. /**
  102642. * Creates a new {BABYLON.MeshAssetTask}
  102643. * @param name defines the name of the task
  102644. * @param meshesNames defines the list of mesh's names you want to load
  102645. * @param rootUrl defines the root url to use as a base to load your meshes and associated resources
  102646. * @param sceneFilename defines the filename of the scene to load from
  102647. */
  102648. function MeshAssetTask(
  102649. /**
  102650. * Defines the name of the task
  102651. */
  102652. name,
  102653. /**
  102654. * Defines the list of mesh's names you want to load
  102655. */
  102656. meshesNames,
  102657. /**
  102658. * Defines the root url to use as a base to load your meshes and associated resources
  102659. */
  102660. rootUrl,
  102661. /**
  102662. * Defines the filename of the scene to load from
  102663. */
  102664. sceneFilename) {
  102665. var _this = _super.call(this, name) || this;
  102666. _this.name = name;
  102667. _this.meshesNames = meshesNames;
  102668. _this.rootUrl = rootUrl;
  102669. _this.sceneFilename = sceneFilename;
  102670. return _this;
  102671. }
  102672. /**
  102673. * Execute the current task
  102674. * @param scene defines the scene where you want your assets to be loaded
  102675. * @param onSuccess is a callback called when the task is successfully executed
  102676. * @param onError is a callback called if an error occurs
  102677. */
  102678. MeshAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102679. var _this = this;
  102680. BABYLON.SceneLoader.ImportMesh(this.meshesNames, this.rootUrl, this.sceneFilename, scene, function (meshes, particleSystems, skeletons) {
  102681. _this.loadedMeshes = meshes;
  102682. _this.loadedParticleSystems = particleSystems;
  102683. _this.loadedSkeletons = skeletons;
  102684. onSuccess();
  102685. }, null, function (scene, message, exception) {
  102686. onError(message, exception);
  102687. });
  102688. };
  102689. return MeshAssetTask;
  102690. }(AbstractAssetTask));
  102691. BABYLON.MeshAssetTask = MeshAssetTask;
  102692. /**
  102693. * Define a task used by {BABYLON.AssetsManager} to load text content
  102694. */
  102695. var TextFileAssetTask = /** @class */ (function (_super) {
  102696. __extends(TextFileAssetTask, _super);
  102697. /**
  102698. * Creates a new TextFileAssetTask object
  102699. * @param name defines the name of the task
  102700. * @param url defines the location of the file to load
  102701. */
  102702. function TextFileAssetTask(
  102703. /**
  102704. * Defines the name of the task
  102705. */
  102706. name,
  102707. /**
  102708. * Defines the location of the file to load
  102709. */
  102710. url) {
  102711. var _this = _super.call(this, name) || this;
  102712. _this.name = name;
  102713. _this.url = url;
  102714. return _this;
  102715. }
  102716. /**
  102717. * Execute the current task
  102718. * @param scene defines the scene where you want your assets to be loaded
  102719. * @param onSuccess is a callback called when the task is successfully executed
  102720. * @param onError is a callback called if an error occurs
  102721. */
  102722. TextFileAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102723. var _this = this;
  102724. scene._loadFile(this.url, function (data) {
  102725. _this.text = data;
  102726. onSuccess();
  102727. }, undefined, false, false, function (request, exception) {
  102728. if (request) {
  102729. onError(request.status + " " + request.statusText, exception);
  102730. }
  102731. });
  102732. };
  102733. return TextFileAssetTask;
  102734. }(AbstractAssetTask));
  102735. BABYLON.TextFileAssetTask = TextFileAssetTask;
  102736. /**
  102737. * Define a task used by {BABYLON.AssetsManager} to load binary data
  102738. */
  102739. var BinaryFileAssetTask = /** @class */ (function (_super) {
  102740. __extends(BinaryFileAssetTask, _super);
  102741. /**
  102742. * Creates a new BinaryFileAssetTask object
  102743. * @param name defines the name of the new task
  102744. * @param url defines the location of the file to load
  102745. */
  102746. function BinaryFileAssetTask(
  102747. /**
  102748. * Defines the name of the task
  102749. */
  102750. name,
  102751. /**
  102752. * Defines the location of the file to load
  102753. */
  102754. url) {
  102755. var _this = _super.call(this, name) || this;
  102756. _this.name = name;
  102757. _this.url = url;
  102758. return _this;
  102759. }
  102760. /**
  102761. * Execute the current task
  102762. * @param scene defines the scene where you want your assets to be loaded
  102763. * @param onSuccess is a callback called when the task is successfully executed
  102764. * @param onError is a callback called if an error occurs
  102765. */
  102766. BinaryFileAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102767. var _this = this;
  102768. scene._loadFile(this.url, function (data) {
  102769. _this.data = data;
  102770. onSuccess();
  102771. }, undefined, true, true, function (request, exception) {
  102772. if (request) {
  102773. onError(request.status + " " + request.statusText, exception);
  102774. }
  102775. });
  102776. };
  102777. return BinaryFileAssetTask;
  102778. }(AbstractAssetTask));
  102779. BABYLON.BinaryFileAssetTask = BinaryFileAssetTask;
  102780. /**
  102781. * Define a task used by {BABYLON.AssetsManager} to load images
  102782. */
  102783. var ImageAssetTask = /** @class */ (function (_super) {
  102784. __extends(ImageAssetTask, _super);
  102785. /**
  102786. * Creates a new ImageAssetTask
  102787. * @param name defines the name of the task
  102788. * @param url defines the location of the image to load
  102789. */
  102790. function ImageAssetTask(
  102791. /**
  102792. * Defines the name of the task
  102793. */
  102794. name,
  102795. /**
  102796. * Defines the location of the image to load
  102797. */
  102798. url) {
  102799. var _this = _super.call(this, name) || this;
  102800. _this.name = name;
  102801. _this.url = url;
  102802. return _this;
  102803. }
  102804. /**
  102805. * Execute the current task
  102806. * @param scene defines the scene where you want your assets to be loaded
  102807. * @param onSuccess is a callback called when the task is successfully executed
  102808. * @param onError is a callback called if an error occurs
  102809. */
  102810. ImageAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102811. var _this = this;
  102812. var img = new Image();
  102813. BABYLON.Tools.SetCorsBehavior(this.url, img);
  102814. img.onload = function () {
  102815. _this.image = img;
  102816. onSuccess();
  102817. };
  102818. img.onerror = function (err) {
  102819. onError("Error loading image", err);
  102820. };
  102821. img.src = this.url;
  102822. };
  102823. return ImageAssetTask;
  102824. }(AbstractAssetTask));
  102825. BABYLON.ImageAssetTask = ImageAssetTask;
  102826. /**
  102827. * Define a task used by {BABYLON.AssetsManager} to load 2D textures
  102828. */
  102829. var TextureAssetTask = /** @class */ (function (_super) {
  102830. __extends(TextureAssetTask, _super);
  102831. /**
  102832. * Creates a new TextureAssetTask object
  102833. * @param name defines the name of the task
  102834. * @param url defines the location of the file to load
  102835. * @param noMipmap defines if mipmap should not be generated (default is false)
  102836. * @param invertY defines if texture must be inverted on Y axis (default is false)
  102837. * @param samplingMode defines the sampling mode to use (default is BABYLON.Texture.TRILINEAR_SAMPLINGMODE)
  102838. */
  102839. function TextureAssetTask(
  102840. /**
  102841. * Defines the name of the task
  102842. */
  102843. name,
  102844. /**
  102845. * Defines the location of the file to load
  102846. */
  102847. url,
  102848. /**
  102849. * Defines if mipmap should not be generated (default is false)
  102850. */
  102851. noMipmap,
  102852. /**
  102853. * Defines if texture must be inverted on Y axis (default is false)
  102854. */
  102855. invertY,
  102856. /**
  102857. * Defines the sampling mode to use (default is BABYLON.Texture.TRILINEAR_SAMPLINGMODE)
  102858. */
  102859. samplingMode) {
  102860. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  102861. var _this = _super.call(this, name) || this;
  102862. _this.name = name;
  102863. _this.url = url;
  102864. _this.noMipmap = noMipmap;
  102865. _this.invertY = invertY;
  102866. _this.samplingMode = samplingMode;
  102867. return _this;
  102868. }
  102869. /**
  102870. * Execute the current task
  102871. * @param scene defines the scene where you want your assets to be loaded
  102872. * @param onSuccess is a callback called when the task is successfully executed
  102873. * @param onError is a callback called if an error occurs
  102874. */
  102875. TextureAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102876. var onload = function () {
  102877. onSuccess();
  102878. };
  102879. var onerror = function (message, exception) {
  102880. onError(message, exception);
  102881. };
  102882. this.texture = new BABYLON.Texture(this.url, scene, this.noMipmap, this.invertY, this.samplingMode, onload, onerror);
  102883. };
  102884. return TextureAssetTask;
  102885. }(AbstractAssetTask));
  102886. BABYLON.TextureAssetTask = TextureAssetTask;
  102887. /**
  102888. * Define a task used by {BABYLON.AssetsManager} to load cube textures
  102889. */
  102890. var CubeTextureAssetTask = /** @class */ (function (_super) {
  102891. __extends(CubeTextureAssetTask, _super);
  102892. /**
  102893. * Creates a new CubeTextureAssetTask
  102894. * @param name defines the name of the task
  102895. * @param url defines the location of the files to load (You have to specify the folder where the files are + filename with no extension)
  102896. * @param extensions defines the extensions to use to load files (["_px", "_py", "_pz", "_nx", "_ny", "_nz"] by default)
  102897. * @param noMipmap defines if mipmaps should not be generated (default is false)
  102898. * @param files defines the explicit list of files (undefined by default)
  102899. */
  102900. function CubeTextureAssetTask(
  102901. /**
  102902. * Defines the name of the task
  102903. */
  102904. name,
  102905. /**
  102906. * Defines the location of the files to load (You have to specify the folder where the files are + filename with no extension)
  102907. */
  102908. url,
  102909. /**
  102910. * Defines the extensions to use to load files (["_px", "_py", "_pz", "_nx", "_ny", "_nz"] by default)
  102911. */
  102912. extensions,
  102913. /**
  102914. * Defines if mipmaps should not be generated (default is false)
  102915. */
  102916. noMipmap,
  102917. /**
  102918. * Defines the explicit list of files (undefined by default)
  102919. */
  102920. files) {
  102921. var _this = _super.call(this, name) || this;
  102922. _this.name = name;
  102923. _this.url = url;
  102924. _this.extensions = extensions;
  102925. _this.noMipmap = noMipmap;
  102926. _this.files = files;
  102927. return _this;
  102928. }
  102929. /**
  102930. * Execute the current task
  102931. * @param scene defines the scene where you want your assets to be loaded
  102932. * @param onSuccess is a callback called when the task is successfully executed
  102933. * @param onError is a callback called if an error occurs
  102934. */
  102935. CubeTextureAssetTask.prototype.runTask = function (scene, onSuccess, onError) {
  102936. var onload = function () {
  102937. onSuccess();
  102938. };
  102939. var onerror = function (message, exception) {
  102940. onError(message, exception);
  102941. };
  102942. this.texture = new BABYLON.CubeTexture(this.url, scene, this.extensions, this.noMipmap, this.files, onload, onerror);
  102943. };
  102944. return CubeTextureAssetTask;
  102945. }(AbstractAssetTask));
  102946. BABYLON.CubeTextureAssetTask = CubeTextureAssetTask;
  102947. /**
  102948. * Define a task used by {BABYLON.AssetsManager} to load HDR cube textures
  102949. */
  102950. var HDRCubeTextureAssetTask = /** @class */ (function (_super) {
  102951. __extends(HDRCubeTextureAssetTask, _super);
  102952. /**
  102953. * Creates a new HDRCubeTextureAssetTask object
  102954. * @param name defines the name of the task
  102955. * @param url defines the location of the file to load
  102956. * @param size defines the desired size (the more it increases the longer the generation will be) If the size is omitted this implies you are using a preprocessed cubemap.
  102957. * @param noMipmap defines if mipmaps should not be generated (default is false)
  102958. * @param generateHarmonics specifies whether you want to extract the polynomial harmonics during the generation process (default is true)
  102959. * @param gammaSpace specifies if the texture will be use in gamma or linear space (the PBR material requires those texture in linear space, but the standard material would require them in Gamma space) (default is false)
  102960. * @param reserved Internal use only
  102961. */
  102962. function HDRCubeTextureAssetTask(
  102963. /**
  102964. * Defines the name of the task
  102965. */
  102966. name,
  102967. /**
  102968. * Defines the location of the file to load
  102969. */
  102970. url,
  102971. /**
  102972. * Defines the desired size (the more it increases the longer the generation will be)
  102973. */
  102974. size,
  102975. /**
  102976. * Defines if mipmaps should not be generated (default is false)
  102977. */
  102978. noMipmap,
  102979. /**
  102980. * Specifies whether you want to extract the polynomial harmonics during the generation process (default is true)
  102981. */
  102982. generateHarmonics,
  102983. /**
  102984. * Specifies if the texture will be use in gamma or linear space (the PBR material requires those texture in linear space, but the standard material would require them in Gamma space) (default is false)
  102985. */
  102986. gammaSpace,
  102987. /**
  102988. * Internal Use Only
  102989. */
  102990. reserved) {
  102991. if (noMipmap === void 0) { noMipmap = false; }
  102992. if (generateHarmonics === void 0) { generateHarmonics = true; }
  102993. if (gammaSpace === void 0) { gammaSpace = false; }
  102994. if (reserved === void 0) { reserved = false; }
  102995. var _this = _super.call(this, name) || this;
  102996. _this.name = name;
  102997. _this.url = url;
  102998. _this.size = size;
  102999. _this.noMipmap = noMipmap;
  103000. _this.generateHarmonics = generateHarmonics;
  103001. _this.gammaSpace = gammaSpace;
  103002. _this.reserved = reserved;
  103003. return _this;
  103004. }
  103005. /**
  103006. * Execute the current task
  103007. * @param scene defines the scene where you want your assets to be loaded
  103008. * @param onSuccess is a callback called when the task is successfully executed
  103009. * @param onError is a callback called if an error occurs
  103010. */
  103011. HDRCubeTextureAssetTask.prototype.run = function (scene, onSuccess, onError) {
  103012. var onload = function () {
  103013. onSuccess();
  103014. };
  103015. var onerror = function (message, exception) {
  103016. onError(message, exception);
  103017. };
  103018. this.texture = new BABYLON.HDRCubeTexture(this.url, scene, this.size, this.noMipmap, this.generateHarmonics, this.gammaSpace, this.reserved, onload, onerror);
  103019. };
  103020. return HDRCubeTextureAssetTask;
  103021. }(AbstractAssetTask));
  103022. BABYLON.HDRCubeTextureAssetTask = HDRCubeTextureAssetTask;
  103023. /**
  103024. * This class can be used to easily import assets into a scene
  103025. * @see http://doc.babylonjs.com/how_to/how_to_use_assetsmanager
  103026. */
  103027. var AssetsManager = /** @class */ (function () {
  103028. /**
  103029. * Creates a new AssetsManager
  103030. * @param scene defines the scene to work on
  103031. */
  103032. function AssetsManager(scene) {
  103033. this._isLoading = false;
  103034. this._tasks = new Array();
  103035. this._waitingTasksCount = 0;
  103036. this._totalTasksCount = 0;
  103037. /**
  103038. * Observable called when all tasks are processed
  103039. */
  103040. this.onTaskSuccessObservable = new BABYLON.Observable();
  103041. /**
  103042. * Observable called when a task had an error
  103043. */
  103044. this.onTaskErrorObservable = new BABYLON.Observable();
  103045. /**
  103046. * Observable called when a task is successful
  103047. */
  103048. this.onTasksDoneObservable = new BABYLON.Observable();
  103049. /**
  103050. * Observable called when a task is done (whatever the result is)
  103051. */
  103052. this.onProgressObservable = new BABYLON.Observable();
  103053. /**
  103054. * Gets or sets a boolean defining if the {BABYLON.AssetsManager} should use the default loading screen
  103055. * @see http://doc.babylonjs.com/how_to/creating_a_custom_loading_screen
  103056. */
  103057. this.useDefaultLoadingScreen = true;
  103058. this._scene = scene;
  103059. }
  103060. /**
  103061. * Add a {BABYLON.MeshAssetTask} to the list of active tasks
  103062. * @param taskName defines the name of the new task
  103063. * @param meshesNames defines the name of meshes to load
  103064. * @param rootUrl defines the root url to use to locate files
  103065. * @param sceneFilename defines the filename of the scene file
  103066. * @returns a new {BABYLON.MeshAssetTask} object
  103067. */
  103068. AssetsManager.prototype.addMeshTask = function (taskName, meshesNames, rootUrl, sceneFilename) {
  103069. var task = new MeshAssetTask(taskName, meshesNames, rootUrl, sceneFilename);
  103070. this._tasks.push(task);
  103071. return task;
  103072. };
  103073. /**
  103074. * Add a {BABYLON.TextFileAssetTask} to the list of active tasks
  103075. * @param taskName defines the name of the new task
  103076. * @param url defines the url of the file to load
  103077. * @returns a new {BABYLON.TextFileAssetTask} object
  103078. */
  103079. AssetsManager.prototype.addTextFileTask = function (taskName, url) {
  103080. var task = new TextFileAssetTask(taskName, url);
  103081. this._tasks.push(task);
  103082. return task;
  103083. };
  103084. /**
  103085. * Add a {BABYLON.BinaryFileAssetTask} to the list of active tasks
  103086. * @param taskName defines the name of the new task
  103087. * @param url defines the url of the file to load
  103088. * @returns a new {BABYLON.BinaryFileAssetTask} object
  103089. */
  103090. AssetsManager.prototype.addBinaryFileTask = function (taskName, url) {
  103091. var task = new BinaryFileAssetTask(taskName, url);
  103092. this._tasks.push(task);
  103093. return task;
  103094. };
  103095. /**
  103096. * Add a {BABYLON.ImageAssetTask} to the list of active tasks
  103097. * @param taskName defines the name of the new task
  103098. * @param url defines the url of the file to load
  103099. * @returns a new {BABYLON.ImageAssetTask} object
  103100. */
  103101. AssetsManager.prototype.addImageTask = function (taskName, url) {
  103102. var task = new ImageAssetTask(taskName, url);
  103103. this._tasks.push(task);
  103104. return task;
  103105. };
  103106. /**
  103107. * Add a {BABYLON.TextureAssetTask} to the list of active tasks
  103108. * @param taskName defines the name of the new task
  103109. * @param url defines the url of the file to load
  103110. * @param noMipmap defines if the texture must not receive mipmaps (false by default)
  103111. * @param invertY defines if you want to invert Y axis of the loaded texture (false by default)
  103112. * @param samplingMode defines the sampling mode to use (BABYLON.Texture.TRILINEAR_SAMPLINGMODE by default)
  103113. * @returns a new {BABYLON.TextureAssetTask} object
  103114. */
  103115. AssetsManager.prototype.addTextureTask = function (taskName, url, noMipmap, invertY, samplingMode) {
  103116. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  103117. var task = new TextureAssetTask(taskName, url, noMipmap, invertY, samplingMode);
  103118. this._tasks.push(task);
  103119. return task;
  103120. };
  103121. /**
  103122. * Add a {BABYLON.CubeTextureAssetTask} to the list of active tasks
  103123. * @param taskName defines the name of the new task
  103124. * @param url defines the url of the file to load
  103125. * @param extensions defines the extension to use to load the cube map (can be null)
  103126. * @param noMipmap defines if the texture must not receive mipmaps (false by default)
  103127. * @param files defines the list of files to load (can be null)
  103128. * @returns a new {BABYLON.CubeTextureAssetTask} object
  103129. */
  103130. AssetsManager.prototype.addCubeTextureTask = function (taskName, url, extensions, noMipmap, files) {
  103131. var task = new CubeTextureAssetTask(taskName, url, extensions, noMipmap, files);
  103132. this._tasks.push(task);
  103133. return task;
  103134. };
  103135. /**
  103136. *
  103137. * Add a {BABYLON.HDRCubeTextureAssetTask} to the list of active tasks
  103138. * @param taskName defines the name of the new task
  103139. * @param url defines the url of the file to load
  103140. * @param size defines the size you want for the cubemap (can be null)
  103141. * @param noMipmap defines if the texture must not receive mipmaps (false by default)
  103142. * @param generateHarmonics defines if you want to automatically generate (true by default)
  103143. * @param gammaSpace specifies if the texture will be use in gamma or linear space (the PBR material requires those texture in linear space, but the standard material would require them in Gamma space) (default is false)
  103144. * @param reserved Internal use only
  103145. * @returns a new {BABYLON.HDRCubeTextureAssetTask} object
  103146. */
  103147. AssetsManager.prototype.addHDRCubeTextureTask = function (taskName, url, size, noMipmap, generateHarmonics, gammaSpace, reserved) {
  103148. if (noMipmap === void 0) { noMipmap = false; }
  103149. if (generateHarmonics === void 0) { generateHarmonics = true; }
  103150. if (gammaSpace === void 0) { gammaSpace = false; }
  103151. if (reserved === void 0) { reserved = false; }
  103152. var task = new HDRCubeTextureAssetTask(taskName, url, size, noMipmap, generateHarmonics, gammaSpace, reserved);
  103153. this._tasks.push(task);
  103154. return task;
  103155. };
  103156. /**
  103157. * Remove a task from the assets manager.
  103158. * @param task the task to remove
  103159. */
  103160. AssetsManager.prototype.removeTask = function (task) {
  103161. var index = this._tasks.indexOf(task);
  103162. if (index > -1) {
  103163. this._tasks.splice(index, 1);
  103164. }
  103165. };
  103166. AssetsManager.prototype._decreaseWaitingTasksCount = function (task) {
  103167. this._waitingTasksCount--;
  103168. try {
  103169. if (this.onProgress) {
  103170. this.onProgress(this._waitingTasksCount, this._totalTasksCount, task);
  103171. }
  103172. this.onProgressObservable.notifyObservers(new AssetsProgressEvent(this._waitingTasksCount, this._totalTasksCount, task));
  103173. }
  103174. catch (e) {
  103175. BABYLON.Tools.Error("Error running progress callbacks.");
  103176. console.log(e);
  103177. }
  103178. if (this._waitingTasksCount === 0) {
  103179. try {
  103180. if (this.onFinish) {
  103181. this.onFinish(this._tasks);
  103182. }
  103183. // Let's remove successfull tasks
  103184. var currentTasks = this._tasks.slice();
  103185. for (var _i = 0, currentTasks_1 = currentTasks; _i < currentTasks_1.length; _i++) {
  103186. var task = currentTasks_1[_i];
  103187. if (task.taskState === AssetTaskState.DONE) {
  103188. var index = this._tasks.indexOf(task);
  103189. if (index > -1) {
  103190. this._tasks.splice(index, 1);
  103191. }
  103192. }
  103193. }
  103194. this.onTasksDoneObservable.notifyObservers(this._tasks);
  103195. }
  103196. catch (e) {
  103197. BABYLON.Tools.Error("Error running tasks-done callbacks.");
  103198. console.log(e);
  103199. }
  103200. this._isLoading = false;
  103201. this._scene.getEngine().hideLoadingUI();
  103202. }
  103203. };
  103204. AssetsManager.prototype._runTask = function (task) {
  103205. var _this = this;
  103206. var done = function () {
  103207. try {
  103208. if (_this.onTaskSuccess) {
  103209. _this.onTaskSuccess(task);
  103210. }
  103211. _this.onTaskSuccessObservable.notifyObservers(task);
  103212. _this._decreaseWaitingTasksCount(task);
  103213. }
  103214. catch (e) {
  103215. error("Error executing task success callbacks", e);
  103216. }
  103217. };
  103218. var error = function (message, exception) {
  103219. task._setErrorObject(message, exception);
  103220. if (_this.onTaskError) {
  103221. _this.onTaskError(task);
  103222. }
  103223. _this.onTaskErrorObservable.notifyObservers(task);
  103224. _this._decreaseWaitingTasksCount(task);
  103225. };
  103226. task.run(this._scene, done, error);
  103227. };
  103228. /**
  103229. * Reset the {BABYLON.AssetsManager} and remove all tasks
  103230. * @return the current instance of the {BABYLON.AssetsManager}
  103231. */
  103232. AssetsManager.prototype.reset = function () {
  103233. this._isLoading = false;
  103234. this._tasks = new Array();
  103235. return this;
  103236. };
  103237. /**
  103238. * Start the loading process
  103239. * @return the current instance of the {BABYLON.AssetsManager}
  103240. */
  103241. AssetsManager.prototype.load = function () {
  103242. if (this._isLoading) {
  103243. return this;
  103244. }
  103245. this._isLoading = true;
  103246. this._waitingTasksCount = this._tasks.length;
  103247. this._totalTasksCount = this._tasks.length;
  103248. if (this._waitingTasksCount === 0) {
  103249. this._isLoading = false;
  103250. if (this.onFinish) {
  103251. this.onFinish(this._tasks);
  103252. }
  103253. this.onTasksDoneObservable.notifyObservers(this._tasks);
  103254. return this;
  103255. }
  103256. if (this.useDefaultLoadingScreen) {
  103257. this._scene.getEngine().displayLoadingUI();
  103258. }
  103259. for (var index = 0; index < this._tasks.length; index++) {
  103260. var task = this._tasks[index];
  103261. if (task.taskState === AssetTaskState.INIT) {
  103262. this._runTask(task);
  103263. }
  103264. }
  103265. return this;
  103266. };
  103267. return AssetsManager;
  103268. }());
  103269. BABYLON.AssetsManager = AssetsManager;
  103270. })(BABYLON || (BABYLON = {}));
  103271. //# sourceMappingURL=babylon.assetsManager.js.map
  103272. var BABYLON;
  103273. (function (BABYLON) {
  103274. var serializedGeometries = [];
  103275. var serializeGeometry = function (geometry, serializationGeometries) {
  103276. if (serializedGeometries[geometry.id]) {
  103277. return;
  103278. }
  103279. if (geometry.doNotSerialize) {
  103280. return;
  103281. }
  103282. if (geometry instanceof BABYLON.BoxGeometry) {
  103283. serializationGeometries.boxes.push(geometry.serialize());
  103284. }
  103285. else if (geometry instanceof BABYLON.SphereGeometry) {
  103286. serializationGeometries.spheres.push(geometry.serialize());
  103287. }
  103288. else if (geometry instanceof BABYLON.CylinderGeometry) {
  103289. serializationGeometries.cylinders.push(geometry.serialize());
  103290. }
  103291. else if (geometry instanceof BABYLON.TorusGeometry) {
  103292. serializationGeometries.toruses.push(geometry.serialize());
  103293. }
  103294. else if (geometry instanceof BABYLON.GroundGeometry) {
  103295. serializationGeometries.grounds.push(geometry.serialize());
  103296. }
  103297. else if (geometry instanceof BABYLON.Plane) {
  103298. serializationGeometries.planes.push(geometry.serialize());
  103299. }
  103300. else if (geometry instanceof BABYLON.TorusKnotGeometry) {
  103301. serializationGeometries.torusKnots.push(geometry.serialize());
  103302. }
  103303. else if (geometry instanceof BABYLON._PrimitiveGeometry) {
  103304. throw new Error("Unknown primitive type");
  103305. }
  103306. else {
  103307. serializationGeometries.vertexData.push(geometry.serializeVerticeData());
  103308. }
  103309. serializedGeometries[geometry.id] = true;
  103310. };
  103311. var serializeMesh = function (mesh, serializationScene) {
  103312. var serializationObject = {};
  103313. // Geometry
  103314. var geometry = mesh._geometry;
  103315. if (geometry) {
  103316. if (!mesh.getScene().getGeometryByID(geometry.id)) {
  103317. // Geometry was in the memory but not added to the scene, nevertheless it's better to serialize to be able to reload the mesh with its geometry
  103318. serializeGeometry(geometry, serializationScene.geometries);
  103319. }
  103320. }
  103321. // Custom
  103322. if (mesh.serialize) {
  103323. mesh.serialize(serializationObject);
  103324. }
  103325. return serializationObject;
  103326. };
  103327. var finalizeSingleMesh = function (mesh, serializationObject) {
  103328. //only works if the mesh is already loaded
  103329. if (mesh.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADED || mesh.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_NONE) {
  103330. //serialize material
  103331. if (mesh.material) {
  103332. if (mesh.material instanceof BABYLON.MultiMaterial) {
  103333. serializationObject.multiMaterials = serializationObject.multiMaterials || [];
  103334. serializationObject.materials = serializationObject.materials || [];
  103335. if (!serializationObject.multiMaterials.some(function (mat) { return (mat.id === mesh.material.id); })) {
  103336. serializationObject.multiMaterials.push(mesh.material.serialize());
  103337. var _loop_1 = function (submaterial) {
  103338. if (submaterial) {
  103339. if (!serializationObject.materials.some(function (mat) { return (mat.id === submaterial.id); })) {
  103340. serializationObject.materials.push(submaterial.serialize());
  103341. }
  103342. }
  103343. };
  103344. for (var _i = 0, _a = mesh.material.subMaterials; _i < _a.length; _i++) {
  103345. var submaterial = _a[_i];
  103346. _loop_1(submaterial);
  103347. }
  103348. }
  103349. }
  103350. else {
  103351. serializationObject.materials = serializationObject.materials || [];
  103352. if (!serializationObject.materials.some(function (mat) { return (mat.id === mesh.material.id); })) {
  103353. serializationObject.materials.push(mesh.material.serialize());
  103354. }
  103355. }
  103356. }
  103357. //serialize geometry
  103358. var geometry = mesh._geometry;
  103359. if (geometry) {
  103360. if (!serializationObject.geometries) {
  103361. serializationObject.geometries = {};
  103362. serializationObject.geometries.boxes = [];
  103363. serializationObject.geometries.spheres = [];
  103364. serializationObject.geometries.cylinders = [];
  103365. serializationObject.geometries.toruses = [];
  103366. serializationObject.geometries.grounds = [];
  103367. serializationObject.geometries.planes = [];
  103368. serializationObject.geometries.torusKnots = [];
  103369. serializationObject.geometries.vertexData = [];
  103370. }
  103371. serializeGeometry(geometry, serializationObject.geometries);
  103372. }
  103373. // Skeletons
  103374. if (mesh.skeleton) {
  103375. serializationObject.skeletons = serializationObject.skeletons || [];
  103376. serializationObject.skeletons.push(mesh.skeleton.serialize());
  103377. }
  103378. //serialize the actual mesh
  103379. serializationObject.meshes = serializationObject.meshes || [];
  103380. serializationObject.meshes.push(serializeMesh(mesh, serializationObject));
  103381. }
  103382. };
  103383. var SceneSerializer = /** @class */ (function () {
  103384. function SceneSerializer() {
  103385. }
  103386. SceneSerializer.ClearCache = function () {
  103387. serializedGeometries = [];
  103388. };
  103389. SceneSerializer.Serialize = function (scene) {
  103390. var serializationObject = {};
  103391. SceneSerializer.ClearCache();
  103392. // Scene
  103393. serializationObject.useDelayedTextureLoading = scene.useDelayedTextureLoading;
  103394. serializationObject.autoClear = scene.autoClear;
  103395. serializationObject.clearColor = scene.clearColor.asArray();
  103396. serializationObject.ambientColor = scene.ambientColor.asArray();
  103397. serializationObject.gravity = scene.gravity.asArray();
  103398. serializationObject.collisionsEnabled = scene.collisionsEnabled;
  103399. serializationObject.workerCollisions = scene.workerCollisions;
  103400. // Fog
  103401. if (scene.fogMode && scene.fogMode !== 0) {
  103402. serializationObject.fogMode = scene.fogMode;
  103403. serializationObject.fogColor = scene.fogColor.asArray();
  103404. serializationObject.fogStart = scene.fogStart;
  103405. serializationObject.fogEnd = scene.fogEnd;
  103406. serializationObject.fogDensity = scene.fogDensity;
  103407. }
  103408. //Physics
  103409. if (scene.isPhysicsEnabled()) {
  103410. var physicEngine = scene.getPhysicsEngine();
  103411. if (physicEngine) {
  103412. serializationObject.physicsEnabled = true;
  103413. serializationObject.physicsGravity = physicEngine.gravity.asArray();
  103414. serializationObject.physicsEngine = physicEngine.getPhysicsPluginName();
  103415. }
  103416. }
  103417. // Metadata
  103418. if (scene.metadata) {
  103419. serializationObject.metadata = scene.metadata;
  103420. }
  103421. // Morph targets
  103422. serializationObject.morphTargetManagers = [];
  103423. for (var _i = 0, _a = scene.meshes; _i < _a.length; _i++) {
  103424. var abstractMesh = _a[_i];
  103425. var manager = abstractMesh.morphTargetManager;
  103426. if (manager) {
  103427. serializationObject.morphTargetManagers.push(manager.serialize());
  103428. }
  103429. }
  103430. // Lights
  103431. serializationObject.lights = [];
  103432. var index;
  103433. var light;
  103434. for (index = 0; index < scene.lights.length; index++) {
  103435. light = scene.lights[index];
  103436. if (!light.doNotSerialize) {
  103437. serializationObject.lights.push(light.serialize());
  103438. }
  103439. }
  103440. // Cameras
  103441. serializationObject.cameras = [];
  103442. for (index = 0; index < scene.cameras.length; index++) {
  103443. var camera = scene.cameras[index];
  103444. if (!camera.doNotSerialize) {
  103445. serializationObject.cameras.push(camera.serialize());
  103446. }
  103447. }
  103448. if (scene.activeCamera) {
  103449. serializationObject.activeCameraID = scene.activeCamera.id;
  103450. }
  103451. // Animations
  103452. BABYLON.Animation.AppendSerializedAnimations(scene, serializationObject);
  103453. // Materials
  103454. serializationObject.materials = [];
  103455. serializationObject.multiMaterials = [];
  103456. var material;
  103457. for (index = 0; index < scene.materials.length; index++) {
  103458. material = scene.materials[index];
  103459. if (!material.doNotSerialize) {
  103460. serializationObject.materials.push(material.serialize());
  103461. }
  103462. }
  103463. // MultiMaterials
  103464. serializationObject.multiMaterials = [];
  103465. for (index = 0; index < scene.multiMaterials.length; index++) {
  103466. var multiMaterial = scene.multiMaterials[index];
  103467. serializationObject.multiMaterials.push(multiMaterial.serialize());
  103468. }
  103469. // Environment texture
  103470. if (scene.environmentTexture) {
  103471. serializationObject.environmentTexture = scene.environmentTexture.name;
  103472. }
  103473. // Skeletons
  103474. serializationObject.skeletons = [];
  103475. for (index = 0; index < scene.skeletons.length; index++) {
  103476. var skeleton = scene.skeletons[index];
  103477. if (!skeleton.doNotSerialize) {
  103478. serializationObject.skeletons.push(skeleton.serialize());
  103479. }
  103480. }
  103481. // Transform nodes
  103482. serializationObject.transformNodes = [];
  103483. for (index = 0; index < scene.transformNodes.length; index++) {
  103484. serializationObject.transformNodes.push(scene.transformNodes[index].serialize());
  103485. }
  103486. // Geometries
  103487. serializationObject.geometries = {};
  103488. serializationObject.geometries.boxes = [];
  103489. serializationObject.geometries.spheres = [];
  103490. serializationObject.geometries.cylinders = [];
  103491. serializationObject.geometries.toruses = [];
  103492. serializationObject.geometries.grounds = [];
  103493. serializationObject.geometries.planes = [];
  103494. serializationObject.geometries.torusKnots = [];
  103495. serializationObject.geometries.vertexData = [];
  103496. serializedGeometries = [];
  103497. var geometries = scene.getGeometries();
  103498. for (index = 0; index < geometries.length; index++) {
  103499. var geometry = geometries[index];
  103500. if (geometry.isReady()) {
  103501. serializeGeometry(geometry, serializationObject.geometries);
  103502. }
  103503. }
  103504. // Meshes
  103505. serializationObject.meshes = [];
  103506. for (index = 0; index < scene.meshes.length; index++) {
  103507. var abstractMesh = scene.meshes[index];
  103508. if (abstractMesh instanceof BABYLON.Mesh) {
  103509. var mesh = abstractMesh;
  103510. if (!mesh.doNotSerialize) {
  103511. if (mesh.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_LOADED || mesh.delayLoadState === BABYLON.Engine.DELAYLOADSTATE_NONE) {
  103512. serializationObject.meshes.push(serializeMesh(mesh, serializationObject));
  103513. }
  103514. }
  103515. }
  103516. }
  103517. // Particles Systems
  103518. serializationObject.particleSystems = [];
  103519. for (index = 0; index < scene.particleSystems.length; index++) {
  103520. serializationObject.particleSystems.push(scene.particleSystems[index].serialize());
  103521. }
  103522. // Action Manager
  103523. if (scene.actionManager) {
  103524. serializationObject.actions = scene.actionManager.serialize("scene");
  103525. }
  103526. // Audio
  103527. serializationObject.sounds = [];
  103528. for (index = 0; index < scene.soundTracks.length; index++) {
  103529. var soundtrack = scene.soundTracks[index];
  103530. for (var soundId = 0; soundId < soundtrack.soundCollection.length; soundId++) {
  103531. serializationObject.sounds.push(soundtrack.soundCollection[soundId].serialize());
  103532. }
  103533. }
  103534. // Components
  103535. for (var _b = 0, _c = scene._serializableComponents; _b < _c.length; _b++) {
  103536. var component = _c[_b];
  103537. component.serialize(serializationObject);
  103538. }
  103539. return serializationObject;
  103540. };
  103541. SceneSerializer.SerializeMesh = function (toSerialize /* Mesh || Mesh[] */, withParents, withChildren) {
  103542. if (withParents === void 0) { withParents = false; }
  103543. if (withChildren === void 0) { withChildren = false; }
  103544. var serializationObject = {};
  103545. SceneSerializer.ClearCache();
  103546. toSerialize = (toSerialize instanceof Array) ? toSerialize : [toSerialize];
  103547. if (withParents || withChildren) {
  103548. //deliberate for loop! not for each, appended should be processed as well.
  103549. for (var i = 0; i < toSerialize.length; ++i) {
  103550. if (withChildren) {
  103551. toSerialize[i].getDescendants().forEach(function (node) {
  103552. if (node instanceof BABYLON.Mesh && (toSerialize.indexOf(node) < 0)) {
  103553. toSerialize.push(node);
  103554. }
  103555. });
  103556. }
  103557. //make sure the array doesn't contain the object already
  103558. if (withParents && toSerialize[i].parent && (toSerialize.indexOf(toSerialize[i].parent) < 0)) {
  103559. toSerialize.push(toSerialize[i].parent);
  103560. }
  103561. }
  103562. }
  103563. toSerialize.forEach(function (mesh) {
  103564. finalizeSingleMesh(mesh, serializationObject);
  103565. });
  103566. return serializationObject;
  103567. };
  103568. return SceneSerializer;
  103569. }());
  103570. BABYLON.SceneSerializer = SceneSerializer;
  103571. })(BABYLON || (BABYLON = {}));
  103572. //# sourceMappingURL=babylon.sceneSerializer.js.map
  103573. var BABYLON;
  103574. (function (BABYLON) {
  103575. /**
  103576. * Class used to generate realtime reflection / refraction cube textures
  103577. * @see http://doc.babylonjs.com/how_to/how_to_use_reflection_probes
  103578. */
  103579. var ReflectionProbe = /** @class */ (function () {
  103580. /**
  103581. * Creates a new reflection probe
  103582. * @param name defines the name of the probe
  103583. * @param size defines the texture resolution (for each face)
  103584. * @param scene defines the hosting scene
  103585. * @param generateMipMaps defines if mip maps should be generated automatically (true by default)
  103586. * @param useFloat defines if HDR data (flaot data) should be used to store colors (false by default)
  103587. */
  103588. function ReflectionProbe(
  103589. /** defines the name of the probe */
  103590. name, size, scene, generateMipMaps, useFloat) {
  103591. if (generateMipMaps === void 0) { generateMipMaps = true; }
  103592. if (useFloat === void 0) { useFloat = false; }
  103593. var _this = this;
  103594. this.name = name;
  103595. this._viewMatrix = BABYLON.Matrix.Identity();
  103596. this._target = BABYLON.Vector3.Zero();
  103597. this._add = BABYLON.Vector3.Zero();
  103598. this._invertYAxis = false;
  103599. /** Gets or sets probe position (center of the cube map) */
  103600. this.position = BABYLON.Vector3.Zero();
  103601. this._scene = scene;
  103602. // Create the scene field if not exist.
  103603. if (!this._scene.reflectionProbes) {
  103604. this._scene.reflectionProbes = new Array();
  103605. }
  103606. this._scene.reflectionProbes.push(this);
  103607. this._renderTargetTexture = new BABYLON.RenderTargetTexture(name, size, scene, generateMipMaps, true, useFloat ? BABYLON.Engine.TEXTURETYPE_FLOAT : BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT, true);
  103608. this._renderTargetTexture.onBeforeRenderObservable.add(function (faceIndex) {
  103609. switch (faceIndex) {
  103610. case 0:
  103611. _this._add.copyFromFloats(1, 0, 0);
  103612. break;
  103613. case 1:
  103614. _this._add.copyFromFloats(-1, 0, 0);
  103615. break;
  103616. case 2:
  103617. _this._add.copyFromFloats(0, _this._invertYAxis ? 1 : -1, 0);
  103618. break;
  103619. case 3:
  103620. _this._add.copyFromFloats(0, _this._invertYAxis ? -1 : 1, 0);
  103621. break;
  103622. case 4:
  103623. _this._add.copyFromFloats(0, 0, 1);
  103624. break;
  103625. case 5:
  103626. _this._add.copyFromFloats(0, 0, -1);
  103627. break;
  103628. }
  103629. if (_this._attachedMesh) {
  103630. _this.position.copyFrom(_this._attachedMesh.getAbsolutePosition());
  103631. }
  103632. _this.position.addToRef(_this._add, _this._target);
  103633. BABYLON.Matrix.LookAtLHToRef(_this.position, _this._target, BABYLON.Vector3.Up(), _this._viewMatrix);
  103634. scene.setTransformMatrix(_this._viewMatrix, _this._projectionMatrix);
  103635. scene._forcedViewPosition = _this.position;
  103636. });
  103637. this._renderTargetTexture.onAfterUnbindObservable.add(function () {
  103638. scene._forcedViewPosition = null;
  103639. scene.updateTransformMatrix(true);
  103640. });
  103641. if (scene.activeCamera) {
  103642. this._projectionMatrix = BABYLON.Matrix.PerspectiveFovLH(Math.PI / 2, 1, scene.activeCamera.minZ, scene.activeCamera.maxZ);
  103643. }
  103644. }
  103645. Object.defineProperty(ReflectionProbe.prototype, "samples", {
  103646. /** Gets or sets the number of samples to use for multi-sampling (0 by default). Required WebGL2 */
  103647. get: function () {
  103648. return this._renderTargetTexture.samples;
  103649. },
  103650. set: function (value) {
  103651. this._renderTargetTexture.samples = value;
  103652. },
  103653. enumerable: true,
  103654. configurable: true
  103655. });
  103656. Object.defineProperty(ReflectionProbe.prototype, "refreshRate", {
  103657. /** Gets or sets the refresh rate to use (on every frame by default) */
  103658. get: function () {
  103659. return this._renderTargetTexture.refreshRate;
  103660. },
  103661. set: function (value) {
  103662. this._renderTargetTexture.refreshRate = value;
  103663. },
  103664. enumerable: true,
  103665. configurable: true
  103666. });
  103667. /**
  103668. * Gets the hosting scene
  103669. * @returns a Scene
  103670. */
  103671. ReflectionProbe.prototype.getScene = function () {
  103672. return this._scene;
  103673. };
  103674. Object.defineProperty(ReflectionProbe.prototype, "cubeTexture", {
  103675. /** Gets the internal CubeTexture used to render to */
  103676. get: function () {
  103677. return this._renderTargetTexture;
  103678. },
  103679. enumerable: true,
  103680. configurable: true
  103681. });
  103682. Object.defineProperty(ReflectionProbe.prototype, "renderList", {
  103683. /** Gets the list of meshes to render */
  103684. get: function () {
  103685. return this._renderTargetTexture.renderList;
  103686. },
  103687. enumerable: true,
  103688. configurable: true
  103689. });
  103690. /**
  103691. * Attach the probe to a specific mesh (Rendering will be done from attached mesh's position)
  103692. * @param mesh defines the mesh to attach to
  103693. */
  103694. ReflectionProbe.prototype.attachToMesh = function (mesh) {
  103695. this._attachedMesh = mesh;
  103696. };
  103697. /**
  103698. * Specifies whether or not the stencil and depth buffer are cleared between two rendering groups
  103699. * @param renderingGroupId The rendering group id corresponding to its index
  103700. * @param autoClearDepthStencil Automatically clears depth and stencil between groups if true.
  103701. */
  103702. ReflectionProbe.prototype.setRenderingAutoClearDepthStencil = function (renderingGroupId, autoClearDepthStencil) {
  103703. this._renderTargetTexture.setRenderingAutoClearDepthStencil(renderingGroupId, autoClearDepthStencil);
  103704. };
  103705. /**
  103706. * Clean all associated resources
  103707. */
  103708. ReflectionProbe.prototype.dispose = function () {
  103709. var index = this._scene.reflectionProbes.indexOf(this);
  103710. if (index !== -1) {
  103711. // Remove from the scene if found
  103712. this._scene.reflectionProbes.splice(index, 1);
  103713. }
  103714. if (this._renderTargetTexture) {
  103715. this._renderTargetTexture.dispose();
  103716. this._renderTargetTexture = null;
  103717. }
  103718. };
  103719. return ReflectionProbe;
  103720. }());
  103721. BABYLON.ReflectionProbe = ReflectionProbe;
  103722. })(BABYLON || (BABYLON = {}));
  103723. //# sourceMappingURL=babylon.reflectionProbe.js.map
  103724. var BABYLON;
  103725. (function (BABYLON) {
  103726. /**
  103727. * Defines the layer scene component responsible to manage any layers
  103728. * in a given scene.
  103729. */
  103730. var LayerSceneComponent = /** @class */ (function () {
  103731. /**
  103732. * Creates a new instance of the component for the given scene
  103733. * @param scene Defines the scene to register the component in
  103734. */
  103735. function LayerSceneComponent(scene) {
  103736. /**
  103737. * The component name helpfull to identify the component in the list of scene components.
  103738. */
  103739. this.name = BABYLON.SceneComponentConstants.NAME_LAYER;
  103740. this.scene = scene;
  103741. this._engine = scene.getEngine();
  103742. scene.layers = new Array();
  103743. }
  103744. /**
  103745. * Registers the component in a given scene
  103746. */
  103747. LayerSceneComponent.prototype.register = function () {
  103748. this.scene._beforeCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_BEFORECAMERADRAW_LAYER, this, this._drawBackground);
  103749. this.scene._afterCameraDrawStage.registerStep(BABYLON.SceneComponentConstants.STEP_AFTERCAMERADRAW_LAYER, this, this._drawForeground);
  103750. };
  103751. /**
  103752. * Rebuilds the elements related to this component in case of
  103753. * context lost for instance.
  103754. */
  103755. LayerSceneComponent.prototype.rebuild = function () {
  103756. var layers = this.scene.layers;
  103757. for (var _i = 0, layers_1 = layers; _i < layers_1.length; _i++) {
  103758. var layer = layers_1[_i];
  103759. layer._rebuild();
  103760. }
  103761. };
  103762. /**
  103763. * Disposes the component and the associated ressources.
  103764. */
  103765. LayerSceneComponent.prototype.dispose = function () {
  103766. var layers = this.scene.layers;
  103767. while (layers.length) {
  103768. layers[0].dispose();
  103769. }
  103770. };
  103771. LayerSceneComponent.prototype._draw = function (camera, isBackground) {
  103772. var layers = this.scene.layers;
  103773. if (layers.length) {
  103774. this._engine.setDepthBuffer(false);
  103775. var cameraLayerMask = camera.layerMask;
  103776. for (var _i = 0, layers_2 = layers; _i < layers_2.length; _i++) {
  103777. var layer = layers_2[_i];
  103778. if (layer.isBackground === isBackground && ((layer.layerMask & cameraLayerMask) !== 0)) {
  103779. layer.render();
  103780. }
  103781. }
  103782. this._engine.setDepthBuffer(true);
  103783. }
  103784. };
  103785. LayerSceneComponent.prototype._drawBackground = function (camera) {
  103786. this._draw(camera, true);
  103787. };
  103788. LayerSceneComponent.prototype._drawForeground = function (camera) {
  103789. this._draw(camera, false);
  103790. };
  103791. return LayerSceneComponent;
  103792. }());
  103793. BABYLON.LayerSceneComponent = LayerSceneComponent;
  103794. })(BABYLON || (BABYLON = {}));
  103795. //# sourceMappingURL=babylon.layerSceneComponent.js.map
  103796. var BABYLON;
  103797. (function (BABYLON) {
  103798. var Layer = /** @class */ (function () {
  103799. function Layer(name, imgUrl, scene, isBackground, color) {
  103800. this.name = name;
  103801. this.scale = new BABYLON.Vector2(1, 1);
  103802. this.offset = new BABYLON.Vector2(0, 0);
  103803. this.alphaBlendingMode = BABYLON.Engine.ALPHA_COMBINE;
  103804. this.layerMask = 0x0FFFFFFF;
  103805. this._vertexBuffers = {};
  103806. // Events
  103807. /**
  103808. * An event triggered when the layer is disposed.
  103809. */
  103810. this.onDisposeObservable = new BABYLON.Observable();
  103811. /**
  103812. * An event triggered before rendering the scene
  103813. */
  103814. this.onBeforeRenderObservable = new BABYLON.Observable();
  103815. /**
  103816. * An event triggered after rendering the scene
  103817. */
  103818. this.onAfterRenderObservable = new BABYLON.Observable();
  103819. this.texture = imgUrl ? new BABYLON.Texture(imgUrl, scene, true) : null;
  103820. this.isBackground = isBackground === undefined ? true : isBackground;
  103821. this.color = color === undefined ? new BABYLON.Color4(1, 1, 1, 1) : color;
  103822. this._scene = (scene || BABYLON.Engine.LastCreatedScene);
  103823. var layerComponent = this._scene._getComponent(BABYLON.SceneComponentConstants.NAME_LAYER);
  103824. if (!layerComponent) {
  103825. layerComponent = new BABYLON.LayerSceneComponent(this._scene);
  103826. this._scene._addComponent(layerComponent);
  103827. }
  103828. this._scene.layers.push(this);
  103829. var engine = this._scene.getEngine();
  103830. // VBO
  103831. var vertices = [];
  103832. vertices.push(1, 1);
  103833. vertices.push(-1, 1);
  103834. vertices.push(-1, -1);
  103835. vertices.push(1, -1);
  103836. var vertexBuffer = new BABYLON.VertexBuffer(engine, vertices, BABYLON.VertexBuffer.PositionKind, false, false, 2);
  103837. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = vertexBuffer;
  103838. this._createIndexBuffer();
  103839. // Effects
  103840. this._effect = engine.createEffect("layer", [BABYLON.VertexBuffer.PositionKind], ["textureMatrix", "color", "scale", "offset"], ["textureSampler"], "");
  103841. this._alphaTestEffect = engine.createEffect("layer", [BABYLON.VertexBuffer.PositionKind], ["textureMatrix", "color", "scale", "offset"], ["textureSampler"], "#define ALPHATEST");
  103842. }
  103843. Object.defineProperty(Layer.prototype, "onDispose", {
  103844. set: function (callback) {
  103845. if (this._onDisposeObserver) {
  103846. this.onDisposeObservable.remove(this._onDisposeObserver);
  103847. }
  103848. this._onDisposeObserver = this.onDisposeObservable.add(callback);
  103849. },
  103850. enumerable: true,
  103851. configurable: true
  103852. });
  103853. Object.defineProperty(Layer.prototype, "onBeforeRender", {
  103854. set: function (callback) {
  103855. if (this._onBeforeRenderObserver) {
  103856. this.onBeforeRenderObservable.remove(this._onBeforeRenderObserver);
  103857. }
  103858. this._onBeforeRenderObserver = this.onBeforeRenderObservable.add(callback);
  103859. },
  103860. enumerable: true,
  103861. configurable: true
  103862. });
  103863. Object.defineProperty(Layer.prototype, "onAfterRender", {
  103864. set: function (callback) {
  103865. if (this._onAfterRenderObserver) {
  103866. this.onAfterRenderObservable.remove(this._onAfterRenderObserver);
  103867. }
  103868. this._onAfterRenderObserver = this.onAfterRenderObservable.add(callback);
  103869. },
  103870. enumerable: true,
  103871. configurable: true
  103872. });
  103873. Layer.prototype._createIndexBuffer = function () {
  103874. var engine = this._scene.getEngine();
  103875. // Indices
  103876. var indices = [];
  103877. indices.push(0);
  103878. indices.push(1);
  103879. indices.push(2);
  103880. indices.push(0);
  103881. indices.push(2);
  103882. indices.push(3);
  103883. this._indexBuffer = engine.createIndexBuffer(indices);
  103884. };
  103885. /** @hidden */
  103886. Layer.prototype._rebuild = function () {
  103887. var vb = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  103888. if (vb) {
  103889. vb._rebuild();
  103890. }
  103891. this._createIndexBuffer();
  103892. };
  103893. Layer.prototype.render = function () {
  103894. var currentEffect = this.alphaTest ? this._alphaTestEffect : this._effect;
  103895. // Check
  103896. if (!currentEffect.isReady() || !this.texture || !this.texture.isReady())
  103897. return;
  103898. var engine = this._scene.getEngine();
  103899. this.onBeforeRenderObservable.notifyObservers(this);
  103900. // Render
  103901. engine.enableEffect(currentEffect);
  103902. engine.setState(false);
  103903. // Texture
  103904. currentEffect.setTexture("textureSampler", this.texture);
  103905. currentEffect.setMatrix("textureMatrix", this.texture.getTextureMatrix());
  103906. // Color
  103907. currentEffect.setFloat4("color", this.color.r, this.color.g, this.color.b, this.color.a);
  103908. // Scale / offset
  103909. currentEffect.setVector2("offset", this.offset);
  103910. currentEffect.setVector2("scale", this.scale);
  103911. // VBOs
  103912. engine.bindBuffers(this._vertexBuffers, this._indexBuffer, currentEffect);
  103913. // Draw order
  103914. if (!this.alphaTest) {
  103915. engine.setAlphaMode(this.alphaBlendingMode);
  103916. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  103917. engine.setAlphaMode(BABYLON.Engine.ALPHA_DISABLE);
  103918. }
  103919. else {
  103920. engine.drawElementsType(BABYLON.Material.TriangleFillMode, 0, 6);
  103921. }
  103922. this.onAfterRenderObservable.notifyObservers(this);
  103923. };
  103924. Layer.prototype.dispose = function () {
  103925. var vertexBuffer = this._vertexBuffers[BABYLON.VertexBuffer.PositionKind];
  103926. if (vertexBuffer) {
  103927. vertexBuffer.dispose();
  103928. this._vertexBuffers[BABYLON.VertexBuffer.PositionKind] = null;
  103929. }
  103930. if (this._indexBuffer) {
  103931. this._scene.getEngine()._releaseBuffer(this._indexBuffer);
  103932. this._indexBuffer = null;
  103933. }
  103934. if (this.texture) {
  103935. this.texture.dispose();
  103936. this.texture = null;
  103937. }
  103938. // Remove from scene
  103939. var index = this._scene.layers.indexOf(this);
  103940. this._scene.layers.splice(index, 1);
  103941. // Callback
  103942. this.onDisposeObservable.notifyObservers(this);
  103943. this.onDisposeObservable.clear();
  103944. this.onAfterRenderObservable.clear();
  103945. this.onBeforeRenderObservable.clear();
  103946. };
  103947. return Layer;
  103948. }());
  103949. BABYLON.Layer = Layer;
  103950. })(BABYLON || (BABYLON = {}));
  103951. //# sourceMappingURL=babylon.layer.js.map
  103952. var BABYLON;
  103953. (function (BABYLON) {
  103954. var TextureTools = /** @class */ (function () {
  103955. function TextureTools() {
  103956. }
  103957. /**
  103958. * Uses the GPU to create a copy texture rescaled at a given size
  103959. * @param texture Texture to copy from
  103960. * @param width Desired width
  103961. * @param height Desired height
  103962. * @return Generated texture
  103963. */
  103964. TextureTools.CreateResizedCopy = function (texture, width, height, useBilinearMode) {
  103965. if (useBilinearMode === void 0) { useBilinearMode = true; }
  103966. var scene = texture.getScene();
  103967. var engine = scene.getEngine();
  103968. var rtt = new BABYLON.RenderTargetTexture('resized' + texture.name, { width: width, height: height }, scene, !texture.noMipmap, true, texture._texture.type, false, texture._samplingMode, false);
  103969. rtt.wrapU = texture.wrapU;
  103970. rtt.wrapV = texture.wrapV;
  103971. rtt.uOffset = texture.uOffset;
  103972. rtt.vOffset = texture.vOffset;
  103973. rtt.uScale = texture.uScale;
  103974. rtt.vScale = texture.vScale;
  103975. rtt.uAng = texture.uAng;
  103976. rtt.vAng = texture.vAng;
  103977. rtt.wAng = texture.wAng;
  103978. rtt.coordinatesIndex = texture.coordinatesIndex;
  103979. rtt.level = texture.level;
  103980. rtt.anisotropicFilteringLevel = texture.anisotropicFilteringLevel;
  103981. rtt._texture.isReady = false;
  103982. texture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  103983. texture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  103984. var passPostProcess = new BABYLON.PassPostProcess("pass", 1, null, useBilinearMode ? BABYLON.Texture.BILINEAR_SAMPLINGMODE : BABYLON.Texture.NEAREST_SAMPLINGMODE, engine, false, BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT);
  103985. passPostProcess.getEffect().executeWhenCompiled(function () {
  103986. passPostProcess.onApply = function (effect) {
  103987. effect.setTexture("textureSampler", texture);
  103988. };
  103989. var internalTexture = rtt.getInternalTexture();
  103990. if (internalTexture) {
  103991. scene.postProcessManager.directRender([passPostProcess], internalTexture);
  103992. engine.unBindFramebuffer(internalTexture);
  103993. rtt.disposeFramebufferObjects();
  103994. passPostProcess.dispose();
  103995. internalTexture.isReady = true;
  103996. }
  103997. });
  103998. return rtt;
  103999. };
  104000. TextureTools.GetEnvironmentBRDFTexture = function (scene) {
  104001. if (!scene._environmentBRDFTexture) {
  104002. var texture = BABYLON.Texture.CreateFromBase64String(this._environmentBRDFBase64Texture, "EnvironmentBRDFTexture", scene, true, false, BABYLON.Texture.BILINEAR_SAMPLINGMODE);
  104003. texture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  104004. texture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  104005. scene._environmentBRDFTexture = texture;
  104006. }
  104007. return scene._environmentBRDFTexture;
  104008. };
  104009. TextureTools._environmentBRDFBase64Texture = "data:image/png;base64,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";
  104010. return TextureTools;
  104011. }());
  104012. BABYLON.TextureTools = TextureTools;
  104013. })(BABYLON || (BABYLON = {}));
  104014. //# sourceMappingURL=babylon.textureTools.js.map
  104015. var BABYLON;
  104016. (function (BABYLON) {
  104017. var FramingBehavior = /** @class */ (function () {
  104018. function FramingBehavior() {
  104019. this._mode = FramingBehavior.FitFrustumSidesMode;
  104020. this._radiusScale = 1.0;
  104021. this._positionScale = 0.5;
  104022. this._defaultElevation = 0.3;
  104023. this._elevationReturnTime = 1500;
  104024. this._elevationReturnWaitTime = 1000;
  104025. this._zoomStopsAnimation = false;
  104026. this._framingTime = 1500;
  104027. this._isPointerDown = false;
  104028. this._lastInteractionTime = -Infinity;
  104029. // Framing control
  104030. this._animatables = new Array();
  104031. this._betaIsAnimating = false;
  104032. }
  104033. Object.defineProperty(FramingBehavior.prototype, "name", {
  104034. get: function () {
  104035. return "Framing";
  104036. },
  104037. enumerable: true,
  104038. configurable: true
  104039. });
  104040. Object.defineProperty(FramingBehavior.prototype, "mode", {
  104041. /**
  104042. * Gets current mode used by the behavior.
  104043. */
  104044. get: function () {
  104045. return this._mode;
  104046. },
  104047. /**
  104048. * Sets the current mode used by the behavior
  104049. */
  104050. set: function (mode) {
  104051. this._mode = mode;
  104052. },
  104053. enumerable: true,
  104054. configurable: true
  104055. });
  104056. Object.defineProperty(FramingBehavior.prototype, "radiusScale", {
  104057. /**
  104058. * Gets the scale applied to the radius
  104059. */
  104060. get: function () {
  104061. return this._radiusScale;
  104062. },
  104063. /**
  104064. * Sets the scale applied to the radius (1 by default)
  104065. */
  104066. set: function (radius) {
  104067. this._radiusScale = radius;
  104068. },
  104069. enumerable: true,
  104070. configurable: true
  104071. });
  104072. Object.defineProperty(FramingBehavior.prototype, "positionScale", {
  104073. /**
  104074. * Gets the scale to apply on Y axis to position camera focus. 0.5 by default which means the center of the bounding box.
  104075. */
  104076. get: function () {
  104077. return this._positionScale;
  104078. },
  104079. /**
  104080. * Sets the scale to apply on Y axis to position camera focus. 0.5 by default which means the center of the bounding box.
  104081. */
  104082. set: function (scale) {
  104083. this._positionScale = scale;
  104084. },
  104085. enumerable: true,
  104086. configurable: true
  104087. });
  104088. Object.defineProperty(FramingBehavior.prototype, "defaultElevation", {
  104089. /**
  104090. * Gets the angle above/below the horizontal plane to return to when the return to default elevation idle
  104091. * behaviour is triggered, in radians.
  104092. */
  104093. get: function () {
  104094. return this._defaultElevation;
  104095. },
  104096. /**
  104097. * Sets the angle above/below the horizontal plane to return to when the return to default elevation idle
  104098. * behaviour is triggered, in radians.
  104099. */
  104100. set: function (elevation) {
  104101. this._defaultElevation = elevation;
  104102. },
  104103. enumerable: true,
  104104. configurable: true
  104105. });
  104106. Object.defineProperty(FramingBehavior.prototype, "elevationReturnTime", {
  104107. /**
  104108. * Gets the time (in milliseconds) taken to return to the default beta position.
  104109. * Negative value indicates camera should not return to default.
  104110. */
  104111. get: function () {
  104112. return this._elevationReturnTime;
  104113. },
  104114. /**
  104115. * Sets the time (in milliseconds) taken to return to the default beta position.
  104116. * Negative value indicates camera should not return to default.
  104117. */
  104118. set: function (speed) {
  104119. this._elevationReturnTime = speed;
  104120. },
  104121. enumerable: true,
  104122. configurable: true
  104123. });
  104124. Object.defineProperty(FramingBehavior.prototype, "elevationReturnWaitTime", {
  104125. /**
  104126. * Gets the delay (in milliseconds) taken before the camera returns to the default beta position.
  104127. */
  104128. get: function () {
  104129. return this._elevationReturnWaitTime;
  104130. },
  104131. /**
  104132. * Sets the delay (in milliseconds) taken before the camera returns to the default beta position.
  104133. */
  104134. set: function (time) {
  104135. this._elevationReturnWaitTime = time;
  104136. },
  104137. enumerable: true,
  104138. configurable: true
  104139. });
  104140. Object.defineProperty(FramingBehavior.prototype, "zoomStopsAnimation", {
  104141. /**
  104142. * Gets the flag that indicates if user zooming should stop animation.
  104143. */
  104144. get: function () {
  104145. return this._zoomStopsAnimation;
  104146. },
  104147. /**
  104148. * Sets the flag that indicates if user zooming should stop animation.
  104149. */
  104150. set: function (flag) {
  104151. this._zoomStopsAnimation = flag;
  104152. },
  104153. enumerable: true,
  104154. configurable: true
  104155. });
  104156. Object.defineProperty(FramingBehavior.prototype, "framingTime", {
  104157. /**
  104158. * Gets the transition time when framing the mesh, in milliseconds
  104159. */
  104160. get: function () {
  104161. return this._framingTime;
  104162. },
  104163. /**
  104164. * Sets the transition time when framing the mesh, in milliseconds
  104165. */
  104166. set: function (time) {
  104167. this._framingTime = time;
  104168. },
  104169. enumerable: true,
  104170. configurable: true
  104171. });
  104172. FramingBehavior.prototype.init = function () {
  104173. // Do notihng
  104174. };
  104175. FramingBehavior.prototype.attach = function (camera) {
  104176. var _this = this;
  104177. this._attachedCamera = camera;
  104178. var scene = this._attachedCamera.getScene();
  104179. FramingBehavior.EasingFunction.setEasingMode(FramingBehavior.EasingMode);
  104180. this._onPrePointerObservableObserver = scene.onPrePointerObservable.add(function (pointerInfoPre) {
  104181. if (pointerInfoPre.type === BABYLON.PointerEventTypes.POINTERDOWN) {
  104182. _this._isPointerDown = true;
  104183. return;
  104184. }
  104185. if (pointerInfoPre.type === BABYLON.PointerEventTypes.POINTERUP) {
  104186. _this._isPointerDown = false;
  104187. }
  104188. });
  104189. this._onMeshTargetChangedObserver = camera.onMeshTargetChangedObservable.add(function (mesh) {
  104190. if (mesh) {
  104191. _this.zoomOnMesh(mesh);
  104192. }
  104193. });
  104194. this._onAfterCheckInputsObserver = camera.onAfterCheckInputsObservable.add(function () {
  104195. // Stop the animation if there is user interaction and the animation should stop for this interaction
  104196. _this._applyUserInteraction();
  104197. // Maintain the camera above the ground. If the user pulls the camera beneath the ground plane, lift it
  104198. // back to the default position after a given timeout
  104199. _this._maintainCameraAboveGround();
  104200. });
  104201. };
  104202. FramingBehavior.prototype.detach = function () {
  104203. if (!this._attachedCamera) {
  104204. return;
  104205. }
  104206. var scene = this._attachedCamera.getScene();
  104207. if (this._onPrePointerObservableObserver) {
  104208. scene.onPrePointerObservable.remove(this._onPrePointerObservableObserver);
  104209. }
  104210. if (this._onAfterCheckInputsObserver) {
  104211. this._attachedCamera.onAfterCheckInputsObservable.remove(this._onAfterCheckInputsObserver);
  104212. }
  104213. if (this._onMeshTargetChangedObserver) {
  104214. this._attachedCamera.onMeshTargetChangedObservable.remove(this._onMeshTargetChangedObserver);
  104215. }
  104216. this._attachedCamera = null;
  104217. };
  104218. /**
  104219. * Targets the given mesh and updates zoom level accordingly.
  104220. * @param mesh The mesh to target.
  104221. * @param radius Optional. If a cached radius position already exists, overrides default.
  104222. * @param framingPositionY Position on mesh to center camera focus where 0 corresponds bottom of its bounding box and 1, the top
  104223. * @param focusOnOriginXZ Determines if the camera should focus on 0 in the X and Z axis instead of the mesh
  104224. * @param onAnimationEnd Callback triggered at the end of the framing animation
  104225. */
  104226. FramingBehavior.prototype.zoomOnMesh = function (mesh, focusOnOriginXZ, onAnimationEnd) {
  104227. if (focusOnOriginXZ === void 0) { focusOnOriginXZ = false; }
  104228. if (onAnimationEnd === void 0) { onAnimationEnd = null; }
  104229. mesh.computeWorldMatrix(true);
  104230. var boundingBox = mesh.getBoundingInfo().boundingBox;
  104231. this.zoomOnBoundingInfo(boundingBox.minimumWorld, boundingBox.maximumWorld, focusOnOriginXZ, onAnimationEnd);
  104232. };
  104233. /**
  104234. * Targets the given mesh with its children and updates zoom level accordingly.
  104235. * @param mesh The mesh to target.
  104236. * @param radius Optional. If a cached radius position already exists, overrides default.
  104237. * @param framingPositionY Position on mesh to center camera focus where 0 corresponds bottom of its bounding box and 1, the top
  104238. * @param focusOnOriginXZ Determines if the camera should focus on 0 in the X and Z axis instead of the mesh
  104239. * @param onAnimationEnd Callback triggered at the end of the framing animation
  104240. */
  104241. FramingBehavior.prototype.zoomOnMeshHierarchy = function (mesh, focusOnOriginXZ, onAnimationEnd) {
  104242. if (focusOnOriginXZ === void 0) { focusOnOriginXZ = false; }
  104243. if (onAnimationEnd === void 0) { onAnimationEnd = null; }
  104244. mesh.computeWorldMatrix(true);
  104245. var boundingBox = mesh.getHierarchyBoundingVectors(true);
  104246. this.zoomOnBoundingInfo(boundingBox.min, boundingBox.max, focusOnOriginXZ, onAnimationEnd);
  104247. };
  104248. /**
  104249. * Targets the given meshes with their children and updates zoom level accordingly.
  104250. * @param meshes The mesh to target.
  104251. * @param radius Optional. If a cached radius position already exists, overrides default.
  104252. * @param framingPositionY Position on mesh to center camera focus where 0 corresponds bottom of its bounding box and 1, the top
  104253. * @param focusOnOriginXZ Determines if the camera should focus on 0 in the X and Z axis instead of the mesh
  104254. * @param onAnimationEnd Callback triggered at the end of the framing animation
  104255. */
  104256. FramingBehavior.prototype.zoomOnMeshesHierarchy = function (meshes, focusOnOriginXZ, onAnimationEnd) {
  104257. if (focusOnOriginXZ === void 0) { focusOnOriginXZ = false; }
  104258. if (onAnimationEnd === void 0) { onAnimationEnd = null; }
  104259. var min = new BABYLON.Vector3(Number.MAX_VALUE, Number.MAX_VALUE, Number.MAX_VALUE);
  104260. var max = new BABYLON.Vector3(-Number.MAX_VALUE, -Number.MAX_VALUE, -Number.MAX_VALUE);
  104261. for (var i = 0; i < meshes.length; i++) {
  104262. var boundingInfo = meshes[i].getHierarchyBoundingVectors(true);
  104263. BABYLON.Tools.CheckExtends(boundingInfo.min, min, max);
  104264. BABYLON.Tools.CheckExtends(boundingInfo.max, min, max);
  104265. }
  104266. this.zoomOnBoundingInfo(min, max, focusOnOriginXZ, onAnimationEnd);
  104267. };
  104268. /**
  104269. * Targets the given mesh and updates zoom level accordingly.
  104270. * @param mesh The mesh to target.
  104271. * @param radius Optional. If a cached radius position already exists, overrides default.
  104272. * @param framingPositionY Position on mesh to center camera focus where 0 corresponds bottom of its bounding box and 1, the top
  104273. * @param focusOnOriginXZ Determines if the camera should focus on 0 in the X and Z axis instead of the mesh
  104274. * @param onAnimationEnd Callback triggered at the end of the framing animation
  104275. */
  104276. FramingBehavior.prototype.zoomOnBoundingInfo = function (minimumWorld, maximumWorld, focusOnOriginXZ, onAnimationEnd) {
  104277. var _this = this;
  104278. if (focusOnOriginXZ === void 0) { focusOnOriginXZ = false; }
  104279. if (onAnimationEnd === void 0) { onAnimationEnd = null; }
  104280. var zoomTarget;
  104281. if (!this._attachedCamera) {
  104282. return;
  104283. }
  104284. // Find target by interpolating from bottom of bounding box in world-space to top via framingPositionY
  104285. var bottom = minimumWorld.y;
  104286. var top = maximumWorld.y;
  104287. var zoomTargetY = bottom + (top - bottom) * this._positionScale;
  104288. var radiusWorld = maximumWorld.subtract(minimumWorld).scale(0.5);
  104289. if (focusOnOriginXZ) {
  104290. zoomTarget = new BABYLON.Vector3(0, zoomTargetY, 0);
  104291. }
  104292. else {
  104293. var centerWorld = minimumWorld.add(radiusWorld);
  104294. zoomTarget = new BABYLON.Vector3(centerWorld.x, zoomTargetY, centerWorld.z);
  104295. }
  104296. if (!this._vectorTransition) {
  104297. this._vectorTransition = BABYLON.Animation.CreateAnimation("target", BABYLON.Animation.ANIMATIONTYPE_VECTOR3, 60, FramingBehavior.EasingFunction);
  104298. }
  104299. this._betaIsAnimating = true;
  104300. var animatable = BABYLON.Animation.TransitionTo("target", zoomTarget, this._attachedCamera, this._attachedCamera.getScene(), 60, this._vectorTransition, this._framingTime);
  104301. if (animatable) {
  104302. this._animatables.push(animatable);
  104303. }
  104304. // sets the radius and lower radius bounds
  104305. // Small delta ensures camera is not always at lower zoom limit.
  104306. var radius = 0;
  104307. if (this._mode === FramingBehavior.FitFrustumSidesMode) {
  104308. var position = this._calculateLowerRadiusFromModelBoundingSphere(minimumWorld, maximumWorld);
  104309. this._attachedCamera.lowerRadiusLimit = radiusWorld.length() + this._attachedCamera.minZ;
  104310. radius = position;
  104311. }
  104312. else if (this._mode === FramingBehavior.IgnoreBoundsSizeMode) {
  104313. radius = this._calculateLowerRadiusFromModelBoundingSphere(minimumWorld, maximumWorld);
  104314. if (this._attachedCamera.lowerRadiusLimit === null) {
  104315. this._attachedCamera.lowerRadiusLimit = this._attachedCamera.minZ;
  104316. }
  104317. }
  104318. // Set sensibilities
  104319. var extend = maximumWorld.subtract(minimumWorld).length();
  104320. this._attachedCamera.panningSensibility = 5000 / extend;
  104321. this._attachedCamera.wheelPrecision = 100 / radius;
  104322. // transition to new radius
  104323. if (!this._radiusTransition) {
  104324. this._radiusTransition = BABYLON.Animation.CreateAnimation("radius", BABYLON.Animation.ANIMATIONTYPE_FLOAT, 60, FramingBehavior.EasingFunction);
  104325. }
  104326. animatable = BABYLON.Animation.TransitionTo("radius", radius, this._attachedCamera, this._attachedCamera.getScene(), 60, this._radiusTransition, this._framingTime, function () {
  104327. _this.stopAllAnimations();
  104328. if (onAnimationEnd) {
  104329. onAnimationEnd();
  104330. }
  104331. if (_this._attachedCamera) {
  104332. _this._attachedCamera.storeState();
  104333. }
  104334. });
  104335. if (animatable) {
  104336. this._animatables.push(animatable);
  104337. }
  104338. };
  104339. /**
  104340. * Calculates the lowest radius for the camera based on the bounding box of the mesh.
  104341. * @param mesh The mesh on which to base the calculation. mesh boundingInfo used to estimate necessary
  104342. * frustum width.
  104343. * @return The minimum distance from the primary mesh's center point at which the camera must be kept in order
  104344. * to fully enclose the mesh in the viewing frustum.
  104345. */
  104346. FramingBehavior.prototype._calculateLowerRadiusFromModelBoundingSphere = function (minimumWorld, maximumWorld) {
  104347. var size = maximumWorld.subtract(minimumWorld);
  104348. var boxVectorGlobalDiagonal = size.length();
  104349. var frustumSlope = this._getFrustumSlope();
  104350. // Formula for setting distance
  104351. // (Good explanation: http://stackoverflow.com/questions/2866350/move-camera-to-fit-3d-scene)
  104352. var radiusWithoutFraming = boxVectorGlobalDiagonal * 0.5;
  104353. // Horizon distance
  104354. var radius = radiusWithoutFraming * this._radiusScale;
  104355. var distanceForHorizontalFrustum = radius * Math.sqrt(1.0 + 1.0 / (frustumSlope.x * frustumSlope.x));
  104356. var distanceForVerticalFrustum = radius * Math.sqrt(1.0 + 1.0 / (frustumSlope.y * frustumSlope.y));
  104357. var distance = Math.max(distanceForHorizontalFrustum, distanceForVerticalFrustum);
  104358. var camera = this._attachedCamera;
  104359. if (!camera) {
  104360. return 0;
  104361. }
  104362. if (camera.lowerRadiusLimit && this._mode === FramingBehavior.IgnoreBoundsSizeMode) {
  104363. // Don't exceed the requested limit
  104364. distance = distance < camera.lowerRadiusLimit ? camera.lowerRadiusLimit : distance;
  104365. }
  104366. // Don't exceed the upper radius limit
  104367. if (camera.upperRadiusLimit) {
  104368. distance = distance > camera.upperRadiusLimit ? camera.upperRadiusLimit : distance;
  104369. }
  104370. return distance;
  104371. };
  104372. /**
  104373. * Keeps the camera above the ground plane. If the user pulls the camera below the ground plane, the camera
  104374. * is automatically returned to its default position (expected to be above ground plane).
  104375. */
  104376. FramingBehavior.prototype._maintainCameraAboveGround = function () {
  104377. var _this = this;
  104378. if (this._elevationReturnTime < 0) {
  104379. return;
  104380. }
  104381. var timeSinceInteraction = BABYLON.Tools.Now - this._lastInteractionTime;
  104382. var defaultBeta = Math.PI * 0.5 - this._defaultElevation;
  104383. var limitBeta = Math.PI * 0.5;
  104384. // Bring the camera back up if below the ground plane
  104385. if (this._attachedCamera && !this._betaIsAnimating && this._attachedCamera.beta > limitBeta && timeSinceInteraction >= this._elevationReturnWaitTime) {
  104386. this._betaIsAnimating = true;
  104387. //Transition to new position
  104388. this.stopAllAnimations();
  104389. if (!this._betaTransition) {
  104390. this._betaTransition = BABYLON.Animation.CreateAnimation("beta", BABYLON.Animation.ANIMATIONTYPE_FLOAT, 60, FramingBehavior.EasingFunction);
  104391. }
  104392. var animatabe = BABYLON.Animation.TransitionTo("beta", defaultBeta, this._attachedCamera, this._attachedCamera.getScene(), 60, this._betaTransition, this._elevationReturnTime, function () {
  104393. _this._clearAnimationLocks();
  104394. _this.stopAllAnimations();
  104395. });
  104396. if (animatabe) {
  104397. this._animatables.push(animatabe);
  104398. }
  104399. }
  104400. };
  104401. /**
  104402. * Returns the frustum slope based on the canvas ratio and camera FOV
  104403. * @returns The frustum slope represented as a Vector2 with X and Y slopes
  104404. */
  104405. FramingBehavior.prototype._getFrustumSlope = function () {
  104406. // Calculate the viewport ratio
  104407. // Aspect Ratio is Height/Width.
  104408. var camera = this._attachedCamera;
  104409. if (!camera) {
  104410. return BABYLON.Vector2.Zero();
  104411. }
  104412. var engine = camera.getScene().getEngine();
  104413. var aspectRatio = engine.getAspectRatio(camera);
  104414. // Camera FOV is the vertical field of view (top-bottom) in radians.
  104415. // Slope of the frustum top/bottom planes in view space, relative to the forward vector.
  104416. var frustumSlopeY = Math.tan(camera.fov / 2);
  104417. // Slope of the frustum left/right planes in view space, relative to the forward vector.
  104418. // Provides the amount that one side (e.g. left) of the frustum gets wider for every unit
  104419. // along the forward vector.
  104420. var frustumSlopeX = frustumSlopeY * aspectRatio;
  104421. return new BABYLON.Vector2(frustumSlopeX, frustumSlopeY);
  104422. };
  104423. /**
  104424. * Removes all animation locks. Allows new animations to be added to any of the arcCamera properties.
  104425. */
  104426. FramingBehavior.prototype._clearAnimationLocks = function () {
  104427. this._betaIsAnimating = false;
  104428. };
  104429. /**
  104430. * Applies any current user interaction to the camera. Takes into account maximum alpha rotation.
  104431. */
  104432. FramingBehavior.prototype._applyUserInteraction = function () {
  104433. if (this.isUserIsMoving) {
  104434. this._lastInteractionTime = BABYLON.Tools.Now;
  104435. this.stopAllAnimations();
  104436. this._clearAnimationLocks();
  104437. }
  104438. };
  104439. /**
  104440. * Stops and removes all animations that have been applied to the camera
  104441. */
  104442. FramingBehavior.prototype.stopAllAnimations = function () {
  104443. if (this._attachedCamera) {
  104444. this._attachedCamera.animations = [];
  104445. }
  104446. while (this._animatables.length) {
  104447. if (this._animatables[0]) {
  104448. this._animatables[0].onAnimationEnd = null;
  104449. this._animatables[0].stop();
  104450. }
  104451. this._animatables.shift();
  104452. }
  104453. };
  104454. Object.defineProperty(FramingBehavior.prototype, "isUserIsMoving", {
  104455. /**
  104456. * Gets a value indicating if the user is moving the camera
  104457. */
  104458. get: function () {
  104459. if (!this._attachedCamera) {
  104460. return false;
  104461. }
  104462. return this._attachedCamera.inertialAlphaOffset !== 0 ||
  104463. this._attachedCamera.inertialBetaOffset !== 0 ||
  104464. this._attachedCamera.inertialRadiusOffset !== 0 ||
  104465. this._attachedCamera.inertialPanningX !== 0 ||
  104466. this._attachedCamera.inertialPanningY !== 0 ||
  104467. this._isPointerDown;
  104468. },
  104469. enumerable: true,
  104470. configurable: true
  104471. });
  104472. /**
  104473. * The easing function used by animations
  104474. */
  104475. FramingBehavior.EasingFunction = new BABYLON.ExponentialEase();
  104476. /**
  104477. * The easing mode used by animations
  104478. */
  104479. FramingBehavior.EasingMode = BABYLON.EasingFunction.EASINGMODE_EASEINOUT;
  104480. // Statics
  104481. /**
  104482. * The camera can move all the way towards the mesh.
  104483. */
  104484. FramingBehavior.IgnoreBoundsSizeMode = 0;
  104485. /**
  104486. * The camera is not allowed to zoom closer to the mesh than the point at which the adjusted bounding sphere touches the frustum sides
  104487. */
  104488. FramingBehavior.FitFrustumSidesMode = 1;
  104489. return FramingBehavior;
  104490. }());
  104491. BABYLON.FramingBehavior = FramingBehavior;
  104492. })(BABYLON || (BABYLON = {}));
  104493. //# sourceMappingURL=babylon.framingBehavior.js.map
  104494. var BABYLON;
  104495. (function (BABYLON) {
  104496. /**
  104497. * Add a bouncing effect to an ArcRotateCamera when reaching a specified minimum and maximum radius
  104498. */
  104499. var BouncingBehavior = /** @class */ (function () {
  104500. function BouncingBehavior() {
  104501. /**
  104502. * The duration of the animation, in milliseconds
  104503. */
  104504. this.transitionDuration = 450;
  104505. /**
  104506. * Length of the distance animated by the transition when lower radius is reached
  104507. */
  104508. this.lowerRadiusTransitionRange = 2;
  104509. /**
  104510. * Length of the distance animated by the transition when upper radius is reached
  104511. */
  104512. this.upperRadiusTransitionRange = -2;
  104513. this._autoTransitionRange = false;
  104514. // Animations
  104515. this._radiusIsAnimating = false;
  104516. this._radiusBounceTransition = null;
  104517. this._animatables = new Array();
  104518. }
  104519. Object.defineProperty(BouncingBehavior.prototype, "name", {
  104520. get: function () {
  104521. return "Bouncing";
  104522. },
  104523. enumerable: true,
  104524. configurable: true
  104525. });
  104526. Object.defineProperty(BouncingBehavior.prototype, "autoTransitionRange", {
  104527. /**
  104528. * Gets a value indicating if the lowerRadiusTransitionRange and upperRadiusTransitionRange are defined automatically
  104529. */
  104530. get: function () {
  104531. return this._autoTransitionRange;
  104532. },
  104533. /**
  104534. * Sets a value indicating if the lowerRadiusTransitionRange and upperRadiusTransitionRange are defined automatically
  104535. * Transition ranges will be set to 5% of the bounding box diagonal in world space
  104536. */
  104537. set: function (value) {
  104538. var _this = this;
  104539. if (this._autoTransitionRange === value) {
  104540. return;
  104541. }
  104542. this._autoTransitionRange = value;
  104543. var camera = this._attachedCamera;
  104544. if (!camera) {
  104545. return;
  104546. }
  104547. if (value) {
  104548. this._onMeshTargetChangedObserver = camera.onMeshTargetChangedObservable.add(function (mesh) {
  104549. if (!mesh) {
  104550. return;
  104551. }
  104552. mesh.computeWorldMatrix(true);
  104553. var diagonal = mesh.getBoundingInfo().diagonalLength;
  104554. _this.lowerRadiusTransitionRange = diagonal * 0.05;
  104555. _this.upperRadiusTransitionRange = diagonal * 0.05;
  104556. });
  104557. }
  104558. else if (this._onMeshTargetChangedObserver) {
  104559. camera.onMeshTargetChangedObservable.remove(this._onMeshTargetChangedObserver);
  104560. }
  104561. },
  104562. enumerable: true,
  104563. configurable: true
  104564. });
  104565. BouncingBehavior.prototype.init = function () {
  104566. // Do notihng
  104567. };
  104568. BouncingBehavior.prototype.attach = function (camera) {
  104569. var _this = this;
  104570. this._attachedCamera = camera;
  104571. this._onAfterCheckInputsObserver = camera.onAfterCheckInputsObservable.add(function () {
  104572. if (!_this._attachedCamera) {
  104573. return;
  104574. }
  104575. // Add the bounce animation to the lower radius limit
  104576. if (_this._isRadiusAtLimit(_this._attachedCamera.lowerRadiusLimit)) {
  104577. _this._applyBoundRadiusAnimation(_this.lowerRadiusTransitionRange);
  104578. }
  104579. // Add the bounce animation to the upper radius limit
  104580. if (_this._isRadiusAtLimit(_this._attachedCamera.upperRadiusLimit)) {
  104581. _this._applyBoundRadiusAnimation(_this.upperRadiusTransitionRange);
  104582. }
  104583. });
  104584. };
  104585. BouncingBehavior.prototype.detach = function () {
  104586. if (!this._attachedCamera) {
  104587. return;
  104588. }
  104589. if (this._onAfterCheckInputsObserver) {
  104590. this._attachedCamera.onAfterCheckInputsObservable.remove(this._onAfterCheckInputsObserver);
  104591. }
  104592. if (this._onMeshTargetChangedObserver) {
  104593. this._attachedCamera.onMeshTargetChangedObservable.remove(this._onMeshTargetChangedObserver);
  104594. }
  104595. this._attachedCamera = null;
  104596. };
  104597. /**
  104598. * Checks if the camera radius is at the specified limit. Takes into account animation locks.
  104599. * @param radiusLimit The limit to check against.
  104600. * @return Bool to indicate if at limit.
  104601. */
  104602. BouncingBehavior.prototype._isRadiusAtLimit = function (radiusLimit) {
  104603. if (!this._attachedCamera) {
  104604. return false;
  104605. }
  104606. if (this._attachedCamera.radius === radiusLimit && !this._radiusIsAnimating) {
  104607. return true;
  104608. }
  104609. return false;
  104610. };
  104611. /**
  104612. * Applies an animation to the radius of the camera, extending by the radiusDelta.
  104613. * @param radiusDelta The delta by which to animate to. Can be negative.
  104614. */
  104615. BouncingBehavior.prototype._applyBoundRadiusAnimation = function (radiusDelta) {
  104616. var _this = this;
  104617. if (!this._attachedCamera) {
  104618. return;
  104619. }
  104620. if (!this._radiusBounceTransition) {
  104621. BouncingBehavior.EasingFunction.setEasingMode(BouncingBehavior.EasingMode);
  104622. this._radiusBounceTransition = BABYLON.Animation.CreateAnimation("radius", BABYLON.Animation.ANIMATIONTYPE_FLOAT, 60, BouncingBehavior.EasingFunction);
  104623. }
  104624. // Prevent zoom until bounce has completed
  104625. this._cachedWheelPrecision = this._attachedCamera.wheelPrecision;
  104626. this._attachedCamera.wheelPrecision = Infinity;
  104627. this._attachedCamera.inertialRadiusOffset = 0;
  104628. // Animate to the radius limit
  104629. this.stopAllAnimations();
  104630. this._radiusIsAnimating = true;
  104631. var animatable = BABYLON.Animation.TransitionTo("radius", this._attachedCamera.radius + radiusDelta, this._attachedCamera, this._attachedCamera.getScene(), 60, this._radiusBounceTransition, this.transitionDuration, function () { return _this._clearAnimationLocks(); });
  104632. if (animatable) {
  104633. this._animatables.push(animatable);
  104634. }
  104635. };
  104636. /**
  104637. * Removes all animation locks. Allows new animations to be added to any of the camera properties.
  104638. */
  104639. BouncingBehavior.prototype._clearAnimationLocks = function () {
  104640. this._radiusIsAnimating = false;
  104641. if (this._attachedCamera) {
  104642. this._attachedCamera.wheelPrecision = this._cachedWheelPrecision;
  104643. }
  104644. };
  104645. /**
  104646. * Stops and removes all animations that have been applied to the camera
  104647. */
  104648. BouncingBehavior.prototype.stopAllAnimations = function () {
  104649. if (this._attachedCamera) {
  104650. this._attachedCamera.animations = [];
  104651. }
  104652. while (this._animatables.length) {
  104653. this._animatables[0].onAnimationEnd = null;
  104654. this._animatables[0].stop();
  104655. this._animatables.shift();
  104656. }
  104657. };
  104658. /**
  104659. * The easing function used by animations
  104660. */
  104661. BouncingBehavior.EasingFunction = new BABYLON.BackEase(0.3);
  104662. /**
  104663. * The easing mode used by animations
  104664. */
  104665. BouncingBehavior.EasingMode = BABYLON.EasingFunction.EASINGMODE_EASEOUT;
  104666. return BouncingBehavior;
  104667. }());
  104668. BABYLON.BouncingBehavior = BouncingBehavior;
  104669. })(BABYLON || (BABYLON = {}));
  104670. //# sourceMappingURL=babylon.bouncingBehavior.js.map
  104671. var BABYLON;
  104672. (function (BABYLON) {
  104673. var AutoRotationBehavior = /** @class */ (function () {
  104674. function AutoRotationBehavior() {
  104675. this._zoomStopsAnimation = false;
  104676. this._idleRotationSpeed = 0.05;
  104677. this._idleRotationWaitTime = 2000;
  104678. this._idleRotationSpinupTime = 2000;
  104679. this._isPointerDown = false;
  104680. this._lastFrameTime = null;
  104681. this._lastInteractionTime = -Infinity;
  104682. this._cameraRotationSpeed = 0;
  104683. this._lastFrameRadius = 0;
  104684. }
  104685. Object.defineProperty(AutoRotationBehavior.prototype, "name", {
  104686. get: function () {
  104687. return "AutoRotation";
  104688. },
  104689. enumerable: true,
  104690. configurable: true
  104691. });
  104692. Object.defineProperty(AutoRotationBehavior.prototype, "zoomStopsAnimation", {
  104693. /**
  104694. * Gets the flag that indicates if user zooming should stop animation.
  104695. */
  104696. get: function () {
  104697. return this._zoomStopsAnimation;
  104698. },
  104699. /**
  104700. * Sets the flag that indicates if user zooming should stop animation.
  104701. */
  104702. set: function (flag) {
  104703. this._zoomStopsAnimation = flag;
  104704. },
  104705. enumerable: true,
  104706. configurable: true
  104707. });
  104708. Object.defineProperty(AutoRotationBehavior.prototype, "idleRotationSpeed", {
  104709. /**
  104710. * Gets the default speed at which the camera rotates around the model.
  104711. */
  104712. get: function () {
  104713. return this._idleRotationSpeed;
  104714. },
  104715. /**
  104716. * Sets the default speed at which the camera rotates around the model.
  104717. */
  104718. set: function (speed) {
  104719. this._idleRotationSpeed = speed;
  104720. },
  104721. enumerable: true,
  104722. configurable: true
  104723. });
  104724. Object.defineProperty(AutoRotationBehavior.prototype, "idleRotationWaitTime", {
  104725. /**
  104726. * Gets the time (milliseconds) to wait after user interaction before the camera starts rotating.
  104727. */
  104728. get: function () {
  104729. return this._idleRotationWaitTime;
  104730. },
  104731. /**
  104732. * Sets the time (in milliseconds) to wait after user interaction before the camera starts rotating.
  104733. */
  104734. set: function (time) {
  104735. this._idleRotationWaitTime = time;
  104736. },
  104737. enumerable: true,
  104738. configurable: true
  104739. });
  104740. Object.defineProperty(AutoRotationBehavior.prototype, "idleRotationSpinupTime", {
  104741. /**
  104742. * Gets the time (milliseconds) to take to spin up to the full idle rotation speed.
  104743. */
  104744. get: function () {
  104745. return this._idleRotationSpinupTime;
  104746. },
  104747. /**
  104748. * Sets the time (milliseconds) to take to spin up to the full idle rotation speed.
  104749. */
  104750. set: function (time) {
  104751. this._idleRotationSpinupTime = time;
  104752. },
  104753. enumerable: true,
  104754. configurable: true
  104755. });
  104756. Object.defineProperty(AutoRotationBehavior.prototype, "rotationInProgress", {
  104757. /**
  104758. * Gets a value indicating if the camera is currently rotating because of this behavior
  104759. */
  104760. get: function () {
  104761. return Math.abs(this._cameraRotationSpeed) > 0;
  104762. },
  104763. enumerable: true,
  104764. configurable: true
  104765. });
  104766. AutoRotationBehavior.prototype.init = function () {
  104767. // Do notihng
  104768. };
  104769. AutoRotationBehavior.prototype.attach = function (camera) {
  104770. var _this = this;
  104771. this._attachedCamera = camera;
  104772. var scene = this._attachedCamera.getScene();
  104773. this._onPrePointerObservableObserver = scene.onPrePointerObservable.add(function (pointerInfoPre) {
  104774. if (pointerInfoPre.type === BABYLON.PointerEventTypes.POINTERDOWN) {
  104775. _this._isPointerDown = true;
  104776. return;
  104777. }
  104778. if (pointerInfoPre.type === BABYLON.PointerEventTypes.POINTERUP) {
  104779. _this._isPointerDown = false;
  104780. }
  104781. });
  104782. this._onAfterCheckInputsObserver = camera.onAfterCheckInputsObservable.add(function () {
  104783. var now = BABYLON.Tools.Now;
  104784. var dt = 0;
  104785. if (_this._lastFrameTime != null) {
  104786. dt = now - _this._lastFrameTime;
  104787. }
  104788. _this._lastFrameTime = now;
  104789. // Stop the animation if there is user interaction and the animation should stop for this interaction
  104790. _this._applyUserInteraction();
  104791. var timeToRotation = now - _this._lastInteractionTime - _this._idleRotationWaitTime;
  104792. var scale = Math.max(Math.min(timeToRotation / (_this._idleRotationSpinupTime), 1), 0);
  104793. _this._cameraRotationSpeed = _this._idleRotationSpeed * scale;
  104794. // Step camera rotation by rotation speed
  104795. if (_this._attachedCamera) {
  104796. _this._attachedCamera.alpha -= _this._cameraRotationSpeed * (dt / 1000);
  104797. }
  104798. });
  104799. };
  104800. AutoRotationBehavior.prototype.detach = function () {
  104801. if (!this._attachedCamera) {
  104802. return;
  104803. }
  104804. var scene = this._attachedCamera.getScene();
  104805. if (this._onPrePointerObservableObserver) {
  104806. scene.onPrePointerObservable.remove(this._onPrePointerObservableObserver);
  104807. }
  104808. this._attachedCamera.onAfterCheckInputsObservable.remove(this._onAfterCheckInputsObserver);
  104809. this._attachedCamera = null;
  104810. };
  104811. /**
  104812. * Returns true if user is scrolling.
  104813. * @return true if user is scrolling.
  104814. */
  104815. AutoRotationBehavior.prototype._userIsZooming = function () {
  104816. if (!this._attachedCamera) {
  104817. return false;
  104818. }
  104819. return this._attachedCamera.inertialRadiusOffset !== 0;
  104820. };
  104821. AutoRotationBehavior.prototype._shouldAnimationStopForInteraction = function () {
  104822. if (!this._attachedCamera) {
  104823. return false;
  104824. }
  104825. var zoomHasHitLimit = false;
  104826. if (this._lastFrameRadius === this._attachedCamera.radius && this._attachedCamera.inertialRadiusOffset !== 0) {
  104827. zoomHasHitLimit = true;
  104828. }
  104829. // Update the record of previous radius - works as an approx. indicator of hitting radius limits
  104830. this._lastFrameRadius = this._attachedCamera.radius;
  104831. return this._zoomStopsAnimation ? zoomHasHitLimit : this._userIsZooming();
  104832. };
  104833. /**
  104834. * Applies any current user interaction to the camera. Takes into account maximum alpha rotation.
  104835. */
  104836. AutoRotationBehavior.prototype._applyUserInteraction = function () {
  104837. if (this._userIsMoving() && !this._shouldAnimationStopForInteraction()) {
  104838. this._lastInteractionTime = BABYLON.Tools.Now;
  104839. }
  104840. };
  104841. // Tools
  104842. AutoRotationBehavior.prototype._userIsMoving = function () {
  104843. if (!this._attachedCamera) {
  104844. return false;
  104845. }
  104846. return this._attachedCamera.inertialAlphaOffset !== 0 ||
  104847. this._attachedCamera.inertialBetaOffset !== 0 ||
  104848. this._attachedCamera.inertialRadiusOffset !== 0 ||
  104849. this._attachedCamera.inertialPanningX !== 0 ||
  104850. this._attachedCamera.inertialPanningY !== 0 ||
  104851. this._isPointerDown;
  104852. };
  104853. return AutoRotationBehavior;
  104854. }());
  104855. BABYLON.AutoRotationBehavior = AutoRotationBehavior;
  104856. })(BABYLON || (BABYLON = {}));
  104857. //# sourceMappingURL=babylon.autoRotationBehavior.js.map
  104858. var BABYLON;
  104859. (function (BABYLON) {
  104860. var NullEngineOptions = /** @class */ (function () {
  104861. function NullEngineOptions() {
  104862. this.renderWidth = 512;
  104863. this.renderHeight = 256;
  104864. this.textureSize = 512;
  104865. this.deterministicLockstep = false;
  104866. this.lockstepMaxSteps = 4;
  104867. }
  104868. return NullEngineOptions;
  104869. }());
  104870. BABYLON.NullEngineOptions = NullEngineOptions;
  104871. /**
  104872. * The null engine class provides support for headless version of babylon.js.
  104873. * This can be used in server side scenario or for testing purposes
  104874. */
  104875. var NullEngine = /** @class */ (function (_super) {
  104876. __extends(NullEngine, _super);
  104877. function NullEngine(options) {
  104878. if (options === void 0) { options = new NullEngineOptions(); }
  104879. var _this = _super.call(this, null) || this;
  104880. if (options.deterministicLockstep === undefined) {
  104881. options.deterministicLockstep = false;
  104882. }
  104883. if (options.lockstepMaxSteps === undefined) {
  104884. options.lockstepMaxSteps = 4;
  104885. }
  104886. _this._options = options;
  104887. // Init caps
  104888. // We consider we are on a webgl1 capable device
  104889. _this._caps = new BABYLON.EngineCapabilities();
  104890. _this._caps.maxTexturesImageUnits = 16;
  104891. _this._caps.maxVertexTextureImageUnits = 16;
  104892. _this._caps.maxTextureSize = 512;
  104893. _this._caps.maxCubemapTextureSize = 512;
  104894. _this._caps.maxRenderTextureSize = 512;
  104895. _this._caps.maxVertexAttribs = 16;
  104896. _this._caps.maxVaryingVectors = 16;
  104897. _this._caps.maxFragmentUniformVectors = 16;
  104898. _this._caps.maxVertexUniformVectors = 16;
  104899. // Extensions
  104900. _this._caps.standardDerivatives = false;
  104901. _this._caps.astc = null;
  104902. _this._caps.s3tc = null;
  104903. _this._caps.pvrtc = null;
  104904. _this._caps.etc1 = null;
  104905. _this._caps.etc2 = null;
  104906. _this._caps.textureAnisotropicFilterExtension = null;
  104907. _this._caps.maxAnisotropy = 0;
  104908. _this._caps.uintIndices = false;
  104909. _this._caps.fragmentDepthSupported = false;
  104910. _this._caps.highPrecisionShaderSupported = true;
  104911. _this._caps.colorBufferFloat = false;
  104912. _this._caps.textureFloat = false;
  104913. _this._caps.textureFloatLinearFiltering = false;
  104914. _this._caps.textureFloatRender = false;
  104915. _this._caps.textureHalfFloat = false;
  104916. _this._caps.textureHalfFloatLinearFiltering = false;
  104917. _this._caps.textureHalfFloatRender = false;
  104918. _this._caps.textureLOD = false;
  104919. _this._caps.drawBuffersExtension = false;
  104920. _this._caps.depthTextureExtension = false;
  104921. _this._caps.vertexArrayObject = false;
  104922. _this._caps.instancedArrays = false;
  104923. BABYLON.Tools.Log("Babylon.js null engine (v" + BABYLON.Engine.Version + ") launched");
  104924. // Wrappers
  104925. if (typeof URL === "undefined") {
  104926. URL = {
  104927. createObjectURL: function () { },
  104928. revokeObjectURL: function () { }
  104929. };
  104930. }
  104931. if (typeof Blob === "undefined") {
  104932. Blob = function () { };
  104933. }
  104934. return _this;
  104935. }
  104936. NullEngine.prototype.isDeterministicLockStep = function () {
  104937. return this._options.deterministicLockstep;
  104938. };
  104939. NullEngine.prototype.getLockstepMaxSteps = function () {
  104940. return this._options.lockstepMaxSteps;
  104941. };
  104942. NullEngine.prototype.getHardwareScalingLevel = function () {
  104943. return 1.0;
  104944. };
  104945. NullEngine.prototype.createVertexBuffer = function (vertices) {
  104946. return {
  104947. capacity: 0,
  104948. references: 1,
  104949. is32Bits: false
  104950. };
  104951. };
  104952. NullEngine.prototype.createIndexBuffer = function (indices) {
  104953. return {
  104954. capacity: 0,
  104955. references: 1,
  104956. is32Bits: false
  104957. };
  104958. };
  104959. NullEngine.prototype.clear = function (color, backBuffer, depth, stencil) {
  104960. if (stencil === void 0) { stencil = false; }
  104961. };
  104962. NullEngine.prototype.getRenderWidth = function (useScreen) {
  104963. if (useScreen === void 0) { useScreen = false; }
  104964. if (!useScreen && this._currentRenderTarget) {
  104965. return this._currentRenderTarget.width;
  104966. }
  104967. return this._options.renderWidth;
  104968. };
  104969. NullEngine.prototype.getRenderHeight = function (useScreen) {
  104970. if (useScreen === void 0) { useScreen = false; }
  104971. if (!useScreen && this._currentRenderTarget) {
  104972. return this._currentRenderTarget.height;
  104973. }
  104974. return this._options.renderHeight;
  104975. };
  104976. NullEngine.prototype.setViewport = function (viewport, requiredWidth, requiredHeight) {
  104977. this._cachedViewport = viewport;
  104978. };
  104979. NullEngine.prototype.createShaderProgram = function (vertexCode, fragmentCode, defines, context) {
  104980. return {
  104981. transformFeedback: null,
  104982. __SPECTOR_rebuildProgram: null
  104983. };
  104984. };
  104985. NullEngine.prototype.getUniforms = function (shaderProgram, uniformsNames) {
  104986. return [];
  104987. };
  104988. NullEngine.prototype.getAttributes = function (shaderProgram, attributesNames) {
  104989. return [];
  104990. };
  104991. NullEngine.prototype.bindSamplers = function (effect) {
  104992. this._currentEffect = null;
  104993. };
  104994. NullEngine.prototype.enableEffect = function (effect) {
  104995. this._currentEffect = effect;
  104996. if (effect.onBind) {
  104997. effect.onBind(effect);
  104998. }
  104999. if (effect._onBindObservable) {
  105000. effect._onBindObservable.notifyObservers(effect);
  105001. }
  105002. };
  105003. NullEngine.prototype.setState = function (culling, zOffset, force, reverseSide) {
  105004. if (zOffset === void 0) { zOffset = 0; }
  105005. if (reverseSide === void 0) { reverseSide = false; }
  105006. };
  105007. NullEngine.prototype.setIntArray = function (uniform, array) {
  105008. };
  105009. NullEngine.prototype.setIntArray2 = function (uniform, array) {
  105010. };
  105011. NullEngine.prototype.setIntArray3 = function (uniform, array) {
  105012. };
  105013. NullEngine.prototype.setIntArray4 = function (uniform, array) {
  105014. };
  105015. NullEngine.prototype.setFloatArray = function (uniform, array) {
  105016. };
  105017. NullEngine.prototype.setFloatArray2 = function (uniform, array) {
  105018. };
  105019. NullEngine.prototype.setFloatArray3 = function (uniform, array) {
  105020. };
  105021. NullEngine.prototype.setFloatArray4 = function (uniform, array) {
  105022. };
  105023. NullEngine.prototype.setArray = function (uniform, array) {
  105024. };
  105025. NullEngine.prototype.setArray2 = function (uniform, array) {
  105026. };
  105027. NullEngine.prototype.setArray3 = function (uniform, array) {
  105028. };
  105029. NullEngine.prototype.setArray4 = function (uniform, array) {
  105030. };
  105031. NullEngine.prototype.setMatrices = function (uniform, matrices) {
  105032. };
  105033. NullEngine.prototype.setMatrix = function (uniform, matrix) {
  105034. };
  105035. NullEngine.prototype.setMatrix3x3 = function (uniform, matrix) {
  105036. };
  105037. NullEngine.prototype.setMatrix2x2 = function (uniform, matrix) {
  105038. };
  105039. NullEngine.prototype.setFloat = function (uniform, value) {
  105040. };
  105041. NullEngine.prototype.setFloat2 = function (uniform, x, y) {
  105042. };
  105043. NullEngine.prototype.setFloat3 = function (uniform, x, y, z) {
  105044. };
  105045. NullEngine.prototype.setBool = function (uniform, bool) {
  105046. };
  105047. NullEngine.prototype.setFloat4 = function (uniform, x, y, z, w) {
  105048. };
  105049. NullEngine.prototype.setColor3 = function (uniform, color3) {
  105050. };
  105051. NullEngine.prototype.setColor4 = function (uniform, color3, alpha) {
  105052. };
  105053. NullEngine.prototype.setAlphaMode = function (mode, noDepthWriteChange) {
  105054. if (noDepthWriteChange === void 0) { noDepthWriteChange = false; }
  105055. if (this._alphaMode === mode) {
  105056. return;
  105057. }
  105058. this._alphaState.alphaBlend = (mode !== BABYLON.Engine.ALPHA_DISABLE);
  105059. if (!noDepthWriteChange) {
  105060. this.setDepthWrite(mode === BABYLON.Engine.ALPHA_DISABLE);
  105061. }
  105062. this._alphaMode = mode;
  105063. };
  105064. NullEngine.prototype.bindBuffers = function (vertexBuffers, indexBuffer, effect) {
  105065. };
  105066. NullEngine.prototype.wipeCaches = function (bruteForce) {
  105067. if (this.preventCacheWipeBetweenFrames) {
  105068. return;
  105069. }
  105070. this.resetTextureCache();
  105071. this._currentEffect = null;
  105072. if (bruteForce) {
  105073. this._currentProgram = null;
  105074. this._stencilState.reset();
  105075. this._depthCullingState.reset();
  105076. this._alphaState.reset();
  105077. }
  105078. this._cachedVertexBuffers = null;
  105079. this._cachedIndexBuffer = null;
  105080. this._cachedEffectForVertexBuffers = null;
  105081. };
  105082. NullEngine.prototype.draw = function (useTriangles, indexStart, indexCount, instancesCount) {
  105083. };
  105084. NullEngine.prototype.drawElementsType = function (fillMode, indexStart, indexCount, instancesCount) {
  105085. };
  105086. NullEngine.prototype.drawArraysType = function (fillMode, verticesStart, verticesCount, instancesCount) {
  105087. };
  105088. /** @hidden */
  105089. NullEngine.prototype._createTexture = function () {
  105090. return {};
  105091. };
  105092. /** @hidden */
  105093. NullEngine.prototype._releaseTexture = function (texture) {
  105094. };
  105095. NullEngine.prototype.createTexture = function (urlArg, noMipmap, invertY, scene, samplingMode, onLoad, onError, buffer, fallBack, format) {
  105096. if (samplingMode === void 0) { samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE; }
  105097. if (onLoad === void 0) { onLoad = null; }
  105098. if (onError === void 0) { onError = null; }
  105099. if (buffer === void 0) { buffer = null; }
  105100. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_URL);
  105101. var url = String(urlArg);
  105102. texture.url = url;
  105103. texture.generateMipMaps = !noMipmap;
  105104. texture.samplingMode = samplingMode;
  105105. texture.invertY = invertY;
  105106. texture.baseWidth = this._options.textureSize;
  105107. texture.baseHeight = this._options.textureSize;
  105108. texture.width = this._options.textureSize;
  105109. texture.height = this._options.textureSize;
  105110. if (format) {
  105111. texture.format = format;
  105112. }
  105113. texture.isReady = true;
  105114. if (onLoad) {
  105115. onLoad();
  105116. }
  105117. this._internalTexturesCache.push(texture);
  105118. return texture;
  105119. };
  105120. NullEngine.prototype.createRenderTargetTexture = function (size, options) {
  105121. var fullOptions = new BABYLON.RenderTargetCreationOptions();
  105122. if (options !== undefined && typeof options === "object") {
  105123. fullOptions.generateMipMaps = options.generateMipMaps;
  105124. fullOptions.generateDepthBuffer = options.generateDepthBuffer === undefined ? true : options.generateDepthBuffer;
  105125. fullOptions.generateStencilBuffer = fullOptions.generateDepthBuffer && options.generateStencilBuffer;
  105126. fullOptions.type = options.type === undefined ? BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT : options.type;
  105127. fullOptions.samplingMode = options.samplingMode === undefined ? BABYLON.Texture.TRILINEAR_SAMPLINGMODE : options.samplingMode;
  105128. }
  105129. else {
  105130. fullOptions.generateMipMaps = options;
  105131. fullOptions.generateDepthBuffer = true;
  105132. fullOptions.generateStencilBuffer = false;
  105133. fullOptions.type = BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT;
  105134. fullOptions.samplingMode = BABYLON.Texture.TRILINEAR_SAMPLINGMODE;
  105135. }
  105136. var texture = new BABYLON.InternalTexture(this, BABYLON.InternalTexture.DATASOURCE_RENDERTARGET);
  105137. var width = size.width || size;
  105138. var height = size.height || size;
  105139. texture._depthStencilBuffer = {};
  105140. texture._framebuffer = {};
  105141. texture.baseWidth = width;
  105142. texture.baseHeight = height;
  105143. texture.width = width;
  105144. texture.height = height;
  105145. texture.isReady = true;
  105146. texture.samples = 1;
  105147. texture.generateMipMaps = fullOptions.generateMipMaps ? true : false;
  105148. texture.samplingMode = fullOptions.samplingMode;
  105149. texture.type = fullOptions.type;
  105150. texture._generateDepthBuffer = fullOptions.generateDepthBuffer;
  105151. texture._generateStencilBuffer = fullOptions.generateStencilBuffer ? true : false;
  105152. this._internalTexturesCache.push(texture);
  105153. return texture;
  105154. };
  105155. NullEngine.prototype.updateTextureSamplingMode = function (samplingMode, texture) {
  105156. texture.samplingMode = samplingMode;
  105157. };
  105158. NullEngine.prototype.bindFramebuffer = function (texture, faceIndex, requiredWidth, requiredHeight, forceFullscreenViewport) {
  105159. if (this._currentRenderTarget) {
  105160. this.unBindFramebuffer(this._currentRenderTarget);
  105161. }
  105162. this._currentRenderTarget = texture;
  105163. this._currentFramebuffer = texture._MSAAFramebuffer ? texture._MSAAFramebuffer : texture._framebuffer;
  105164. if (this._cachedViewport && !forceFullscreenViewport) {
  105165. this.setViewport(this._cachedViewport, requiredWidth, requiredHeight);
  105166. }
  105167. };
  105168. NullEngine.prototype.unBindFramebuffer = function (texture, disableGenerateMipMaps, onBeforeUnbind) {
  105169. if (disableGenerateMipMaps === void 0) { disableGenerateMipMaps = false; }
  105170. this._currentRenderTarget = null;
  105171. if (onBeforeUnbind) {
  105172. if (texture._MSAAFramebuffer) {
  105173. this._currentFramebuffer = texture._framebuffer;
  105174. }
  105175. onBeforeUnbind();
  105176. }
  105177. this._currentFramebuffer = null;
  105178. };
  105179. NullEngine.prototype.createDynamicVertexBuffer = function (vertices) {
  105180. var vbo = {
  105181. capacity: 1,
  105182. references: 1,
  105183. is32Bits: false
  105184. };
  105185. return vbo;
  105186. };
  105187. NullEngine.prototype.updateDynamicTexture = function (texture, canvas, invertY, premulAlpha, format) {
  105188. if (premulAlpha === void 0) { premulAlpha = false; }
  105189. };
  105190. /**
  105191. * @hidden
  105192. * Get the current error code of the webGL context
  105193. * @returns the error code
  105194. * @see https://developer.mozilla.org/en-US/docs/Web/API/WebGLRenderingContext/getError
  105195. */
  105196. NullEngine.prototype.getError = function () {
  105197. return 0;
  105198. };
  105199. /** @hidden */
  105200. NullEngine.prototype._getUnpackAlignement = function () {
  105201. return 1;
  105202. };
  105203. /** @hidden */
  105204. NullEngine.prototype._unpackFlipY = function (value) {
  105205. };
  105206. NullEngine.prototype.updateDynamicIndexBuffer = function (indexBuffer, indices, offset) {
  105207. if (offset === void 0) { offset = 0; }
  105208. };
  105209. /**
  105210. * Updates a dynamic vertex buffer.
  105211. * @param vertexBuffer the vertex buffer to update
  105212. * @param data the data used to update the vertex buffer
  105213. * @param byteOffset the byte offset of the data (optional)
  105214. * @param byteLength the byte length of the data (optional)
  105215. */
  105216. NullEngine.prototype.updateDynamicVertexBuffer = function (vertexBuffer, vertices, byteOffset, byteLength) {
  105217. };
  105218. NullEngine.prototype._bindTextureDirectly = function (target, texture) {
  105219. if (this._boundTexturesCache[this._activeChannel] !== texture) {
  105220. this._boundTexturesCache[this._activeChannel] = texture;
  105221. return true;
  105222. }
  105223. return false;
  105224. };
  105225. /** @hidden */
  105226. NullEngine.prototype._bindTexture = function (channel, texture) {
  105227. if (channel < 0) {
  105228. return;
  105229. }
  105230. this._bindTextureDirectly(0, texture);
  105231. };
  105232. /** @hidden */
  105233. NullEngine.prototype._releaseBuffer = function (buffer) {
  105234. buffer.references--;
  105235. if (buffer.references === 0) {
  105236. return true;
  105237. }
  105238. return false;
  105239. };
  105240. NullEngine.prototype.releaseEffects = function () {
  105241. };
  105242. NullEngine.prototype.displayLoadingUI = function () {
  105243. };
  105244. NullEngine.prototype.hideLoadingUI = function () {
  105245. };
  105246. /** @hidden */
  105247. NullEngine.prototype._uploadCompressedDataToTextureDirectly = function (texture, internalFormat, width, height, data, faceIndex, lod) {
  105248. if (faceIndex === void 0) { faceIndex = 0; }
  105249. if (lod === void 0) { lod = 0; }
  105250. };
  105251. /** @hidden */
  105252. NullEngine.prototype._uploadDataToTextureDirectly = function (texture, imageData, faceIndex, lod) {
  105253. if (faceIndex === void 0) { faceIndex = 0; }
  105254. if (lod === void 0) { lod = 0; }
  105255. };
  105256. /** @hidden */
  105257. NullEngine.prototype._uploadArrayBufferViewToTexture = function (texture, imageData, faceIndex, lod) {
  105258. if (faceIndex === void 0) { faceIndex = 0; }
  105259. if (lod === void 0) { lod = 0; }
  105260. };
  105261. /** @hidden */
  105262. NullEngine.prototype._uploadImageToTexture = function (texture, image, faceIndex, lod) {
  105263. if (faceIndex === void 0) { faceIndex = 0; }
  105264. if (lod === void 0) { lod = 0; }
  105265. };
  105266. return NullEngine;
  105267. }(BABYLON.Engine));
  105268. BABYLON.NullEngine = NullEngine;
  105269. })(BABYLON || (BABYLON = {}));
  105270. //# sourceMappingURL=babylon.nullEngine.js.map
  105271. var BABYLON;
  105272. (function (BABYLON) {
  105273. /**
  105274. * This class can be used to get instrumentation data from a Babylon engine
  105275. */
  105276. var EngineInstrumentation = /** @class */ (function () {
  105277. function EngineInstrumentation(engine) {
  105278. this.engine = engine;
  105279. this._captureGPUFrameTime = false;
  105280. this._gpuFrameTime = new BABYLON.PerfCounter();
  105281. this._captureShaderCompilationTime = false;
  105282. this._shaderCompilationTime = new BABYLON.PerfCounter();
  105283. // Observers
  105284. this._onBeginFrameObserver = null;
  105285. this._onEndFrameObserver = null;
  105286. this._onBeforeShaderCompilationObserver = null;
  105287. this._onAfterShaderCompilationObserver = null;
  105288. }
  105289. Object.defineProperty(EngineInstrumentation.prototype, "gpuFrameTimeCounter", {
  105290. // Properties
  105291. /**
  105292. * Gets the perf counter used for GPU frame time
  105293. */
  105294. get: function () {
  105295. return this._gpuFrameTime;
  105296. },
  105297. enumerable: true,
  105298. configurable: true
  105299. });
  105300. Object.defineProperty(EngineInstrumentation.prototype, "captureGPUFrameTime", {
  105301. /**
  105302. * Gets the GPU frame time capture status
  105303. */
  105304. get: function () {
  105305. return this._captureGPUFrameTime;
  105306. },
  105307. /**
  105308. * Enable or disable the GPU frame time capture
  105309. */
  105310. set: function (value) {
  105311. var _this = this;
  105312. if (value === this._captureGPUFrameTime) {
  105313. return;
  105314. }
  105315. this._captureGPUFrameTime = value;
  105316. if (value) {
  105317. this._onBeginFrameObserver = this.engine.onBeginFrameObservable.add(function () {
  105318. if (!_this._gpuFrameTimeToken) {
  105319. _this._gpuFrameTimeToken = _this.engine.startTimeQuery();
  105320. }
  105321. });
  105322. this._onEndFrameObserver = this.engine.onEndFrameObservable.add(function () {
  105323. if (!_this._gpuFrameTimeToken) {
  105324. return;
  105325. }
  105326. var time = _this.engine.endTimeQuery(_this._gpuFrameTimeToken);
  105327. if (time > -1) {
  105328. _this._gpuFrameTimeToken = null;
  105329. _this._gpuFrameTime.fetchNewFrame();
  105330. _this._gpuFrameTime.addCount(time, true);
  105331. }
  105332. });
  105333. }
  105334. else {
  105335. this.engine.onBeginFrameObservable.remove(this._onBeginFrameObserver);
  105336. this._onBeginFrameObserver = null;
  105337. this.engine.onEndFrameObservable.remove(this._onEndFrameObserver);
  105338. this._onEndFrameObserver = null;
  105339. }
  105340. },
  105341. enumerable: true,
  105342. configurable: true
  105343. });
  105344. Object.defineProperty(EngineInstrumentation.prototype, "shaderCompilationTimeCounter", {
  105345. /**
  105346. * Gets the perf counter used for shader compilation time
  105347. */
  105348. get: function () {
  105349. return this._shaderCompilationTime;
  105350. },
  105351. enumerable: true,
  105352. configurable: true
  105353. });
  105354. Object.defineProperty(EngineInstrumentation.prototype, "captureShaderCompilationTime", {
  105355. /**
  105356. * Gets the shader compilation time capture status
  105357. */
  105358. get: function () {
  105359. return this._captureShaderCompilationTime;
  105360. },
  105361. /**
  105362. * Enable or disable the shader compilation time capture
  105363. */
  105364. set: function (value) {
  105365. var _this = this;
  105366. if (value === this._captureShaderCompilationTime) {
  105367. return;
  105368. }
  105369. this._captureShaderCompilationTime = value;
  105370. if (value) {
  105371. this._onBeforeShaderCompilationObserver = this.engine.onBeforeShaderCompilationObservable.add(function () {
  105372. _this._shaderCompilationTime.fetchNewFrame();
  105373. _this._shaderCompilationTime.beginMonitoring();
  105374. });
  105375. this._onAfterShaderCompilationObserver = this.engine.onAfterShaderCompilationObservable.add(function () {
  105376. _this._shaderCompilationTime.endMonitoring();
  105377. });
  105378. }
  105379. else {
  105380. this.engine.onBeforeShaderCompilationObservable.remove(this._onBeforeShaderCompilationObserver);
  105381. this._onBeforeShaderCompilationObserver = null;
  105382. this.engine.onAfterShaderCompilationObservable.remove(this._onAfterShaderCompilationObserver);
  105383. this._onAfterShaderCompilationObserver = null;
  105384. }
  105385. },
  105386. enumerable: true,
  105387. configurable: true
  105388. });
  105389. EngineInstrumentation.prototype.dispose = function () {
  105390. this.engine.onBeginFrameObservable.remove(this._onBeginFrameObserver);
  105391. this._onBeginFrameObserver = null;
  105392. this.engine.onEndFrameObservable.remove(this._onEndFrameObserver);
  105393. this._onEndFrameObserver = null;
  105394. this.engine.onBeforeShaderCompilationObservable.remove(this._onBeforeShaderCompilationObserver);
  105395. this._onBeforeShaderCompilationObserver = null;
  105396. this.engine.onAfterShaderCompilationObservable.remove(this._onAfterShaderCompilationObserver);
  105397. this._onAfterShaderCompilationObserver = null;
  105398. this.engine = null;
  105399. };
  105400. return EngineInstrumentation;
  105401. }());
  105402. BABYLON.EngineInstrumentation = EngineInstrumentation;
  105403. })(BABYLON || (BABYLON = {}));
  105404. //# sourceMappingURL=babylon.engineInstrumentation.js.map
  105405. var BABYLON;
  105406. (function (BABYLON) {
  105407. /**
  105408. * This class can be used to get instrumentation data from a Babylon engine
  105409. */
  105410. var SceneInstrumentation = /** @class */ (function () {
  105411. function SceneInstrumentation(scene) {
  105412. var _this = this;
  105413. this.scene = scene;
  105414. this._captureActiveMeshesEvaluationTime = false;
  105415. this._activeMeshesEvaluationTime = new BABYLON.PerfCounter();
  105416. this._captureRenderTargetsRenderTime = false;
  105417. this._renderTargetsRenderTime = new BABYLON.PerfCounter();
  105418. this._captureFrameTime = false;
  105419. this._frameTime = new BABYLON.PerfCounter();
  105420. this._captureRenderTime = false;
  105421. this._renderTime = new BABYLON.PerfCounter();
  105422. this._captureInterFrameTime = false;
  105423. this._interFrameTime = new BABYLON.PerfCounter();
  105424. this._captureParticlesRenderTime = false;
  105425. this._particlesRenderTime = new BABYLON.PerfCounter();
  105426. this._captureSpritesRenderTime = false;
  105427. this._spritesRenderTime = new BABYLON.PerfCounter();
  105428. this._capturePhysicsTime = false;
  105429. this._physicsTime = new BABYLON.PerfCounter();
  105430. this._captureAnimationsTime = false;
  105431. this._animationsTime = new BABYLON.PerfCounter();
  105432. this._captureCameraRenderTime = false;
  105433. this._cameraRenderTime = new BABYLON.PerfCounter();
  105434. // Observers
  105435. this._onBeforeActiveMeshesEvaluationObserver = null;
  105436. this._onAfterActiveMeshesEvaluationObserver = null;
  105437. this._onBeforeRenderTargetsRenderObserver = null;
  105438. this._onAfterRenderTargetsRenderObserver = null;
  105439. this._onAfterRenderObserver = null;
  105440. this._onBeforeDrawPhaseObserver = null;
  105441. this._onAfterDrawPhaseObserver = null;
  105442. this._onBeforeAnimationsObserver = null;
  105443. this._onBeforeParticlesRenderingObserver = null;
  105444. this._onAfterParticlesRenderingObserver = null;
  105445. this._onBeforeSpritesRenderingObserver = null;
  105446. this._onAfterSpritesRenderingObserver = null;
  105447. this._onBeforePhysicsObserver = null;
  105448. this._onAfterPhysicsObserver = null;
  105449. this._onAfterAnimationsObserver = null;
  105450. this._onBeforeCameraRenderObserver = null;
  105451. this._onAfterCameraRenderObserver = null;
  105452. // Before render
  105453. this._onBeforeAnimationsObserver = scene.onBeforeAnimationsObservable.add(function () {
  105454. if (_this._captureActiveMeshesEvaluationTime) {
  105455. _this._activeMeshesEvaluationTime.fetchNewFrame();
  105456. }
  105457. if (_this._captureRenderTargetsRenderTime) {
  105458. _this._renderTargetsRenderTime.fetchNewFrame();
  105459. }
  105460. if (_this._captureFrameTime) {
  105461. BABYLON.Tools.StartPerformanceCounter("Scene rendering");
  105462. _this._frameTime.beginMonitoring();
  105463. }
  105464. if (_this._captureInterFrameTime) {
  105465. _this._interFrameTime.endMonitoring();
  105466. }
  105467. if (_this._captureParticlesRenderTime) {
  105468. _this._particlesRenderTime.fetchNewFrame();
  105469. }
  105470. if (_this._captureSpritesRenderTime) {
  105471. _this._spritesRenderTime.fetchNewFrame();
  105472. }
  105473. if (_this._captureAnimationsTime) {
  105474. _this._animationsTime.beginMonitoring();
  105475. }
  105476. _this.scene.getEngine()._drawCalls.fetchNewFrame();
  105477. _this.scene.getEngine()._textureCollisions.fetchNewFrame();
  105478. });
  105479. // After render
  105480. this._onAfterRenderObserver = scene.onAfterRenderObservable.add(function () {
  105481. if (_this._captureFrameTime) {
  105482. BABYLON.Tools.EndPerformanceCounter("Scene rendering");
  105483. _this._frameTime.endMonitoring();
  105484. }
  105485. if (_this._captureRenderTime) {
  105486. _this._renderTime.endMonitoring(false);
  105487. }
  105488. if (_this._captureInterFrameTime) {
  105489. _this._interFrameTime.beginMonitoring();
  105490. }
  105491. });
  105492. }
  105493. Object.defineProperty(SceneInstrumentation.prototype, "activeMeshesEvaluationTimeCounter", {
  105494. // Properties
  105495. /**
  105496. * Gets the perf counter used for active meshes evaluation time
  105497. */
  105498. get: function () {
  105499. return this._activeMeshesEvaluationTime;
  105500. },
  105501. enumerable: true,
  105502. configurable: true
  105503. });
  105504. Object.defineProperty(SceneInstrumentation.prototype, "captureActiveMeshesEvaluationTime", {
  105505. /**
  105506. * Gets the active meshes evaluation time capture status
  105507. */
  105508. get: function () {
  105509. return this._captureActiveMeshesEvaluationTime;
  105510. },
  105511. /**
  105512. * Enable or disable the active meshes evaluation time capture
  105513. */
  105514. set: function (value) {
  105515. var _this = this;
  105516. if (value === this._captureActiveMeshesEvaluationTime) {
  105517. return;
  105518. }
  105519. this._captureActiveMeshesEvaluationTime = value;
  105520. if (value) {
  105521. this._onBeforeActiveMeshesEvaluationObserver = this.scene.onBeforeActiveMeshesEvaluationObservable.add(function () {
  105522. BABYLON.Tools.StartPerformanceCounter("Active meshes evaluation");
  105523. _this._activeMeshesEvaluationTime.beginMonitoring();
  105524. });
  105525. this._onAfterActiveMeshesEvaluationObserver = this.scene.onAfterActiveMeshesEvaluationObservable.add(function () {
  105526. BABYLON.Tools.EndPerformanceCounter("Active meshes evaluation");
  105527. _this._activeMeshesEvaluationTime.endMonitoring();
  105528. });
  105529. }
  105530. else {
  105531. this.scene.onBeforeActiveMeshesEvaluationObservable.remove(this._onBeforeActiveMeshesEvaluationObserver);
  105532. this._onBeforeActiveMeshesEvaluationObserver = null;
  105533. this.scene.onAfterActiveMeshesEvaluationObservable.remove(this._onAfterActiveMeshesEvaluationObserver);
  105534. this._onAfterActiveMeshesEvaluationObserver = null;
  105535. }
  105536. },
  105537. enumerable: true,
  105538. configurable: true
  105539. });
  105540. Object.defineProperty(SceneInstrumentation.prototype, "renderTargetsRenderTimeCounter", {
  105541. /**
  105542. * Gets the perf counter used for render targets render time
  105543. */
  105544. get: function () {
  105545. return this._renderTargetsRenderTime;
  105546. },
  105547. enumerable: true,
  105548. configurable: true
  105549. });
  105550. Object.defineProperty(SceneInstrumentation.prototype, "captureRenderTargetsRenderTime", {
  105551. /**
  105552. * Gets the render targets render time capture status
  105553. */
  105554. get: function () {
  105555. return this._captureRenderTargetsRenderTime;
  105556. },
  105557. /**
  105558. * Enable or disable the render targets render time capture
  105559. */
  105560. set: function (value) {
  105561. var _this = this;
  105562. if (value === this._captureRenderTargetsRenderTime) {
  105563. return;
  105564. }
  105565. this._captureRenderTargetsRenderTime = value;
  105566. if (value) {
  105567. this._onBeforeRenderTargetsRenderObserver = this.scene.onBeforeRenderTargetsRenderObservable.add(function () {
  105568. BABYLON.Tools.StartPerformanceCounter("Render targets rendering");
  105569. _this._renderTargetsRenderTime.beginMonitoring();
  105570. });
  105571. this._onAfterRenderTargetsRenderObserver = this.scene.onAfterRenderTargetsRenderObservable.add(function () {
  105572. BABYLON.Tools.EndPerformanceCounter("Render targets rendering");
  105573. _this._renderTargetsRenderTime.endMonitoring(false);
  105574. });
  105575. }
  105576. else {
  105577. this.scene.onBeforeRenderTargetsRenderObservable.remove(this._onBeforeRenderTargetsRenderObserver);
  105578. this._onBeforeRenderTargetsRenderObserver = null;
  105579. this.scene.onAfterRenderTargetsRenderObservable.remove(this._onAfterRenderTargetsRenderObserver);
  105580. this._onAfterRenderTargetsRenderObserver = null;
  105581. }
  105582. },
  105583. enumerable: true,
  105584. configurable: true
  105585. });
  105586. Object.defineProperty(SceneInstrumentation.prototype, "particlesRenderTimeCounter", {
  105587. /**
  105588. * Gets the perf counter used for particles render time
  105589. */
  105590. get: function () {
  105591. return this._particlesRenderTime;
  105592. },
  105593. enumerable: true,
  105594. configurable: true
  105595. });
  105596. Object.defineProperty(SceneInstrumentation.prototype, "captureParticlesRenderTime", {
  105597. /**
  105598. * Gets the particles render time capture status
  105599. */
  105600. get: function () {
  105601. return this._captureParticlesRenderTime;
  105602. },
  105603. /**
  105604. * Enable or disable the particles render time capture
  105605. */
  105606. set: function (value) {
  105607. var _this = this;
  105608. if (value === this._captureParticlesRenderTime) {
  105609. return;
  105610. }
  105611. this._captureParticlesRenderTime = value;
  105612. if (value) {
  105613. this._onBeforeParticlesRenderingObserver = this.scene.onBeforeParticlesRenderingObservable.add(function () {
  105614. BABYLON.Tools.StartPerformanceCounter("Particles");
  105615. _this._particlesRenderTime.beginMonitoring();
  105616. });
  105617. this._onAfterParticlesRenderingObserver = this.scene.onAfterParticlesRenderingObservable.add(function () {
  105618. BABYLON.Tools.EndPerformanceCounter("Particles");
  105619. _this._particlesRenderTime.endMonitoring(false);
  105620. });
  105621. }
  105622. else {
  105623. this.scene.onBeforeParticlesRenderingObservable.remove(this._onBeforeParticlesRenderingObserver);
  105624. this._onBeforeParticlesRenderingObserver = null;
  105625. this.scene.onAfterParticlesRenderingObservable.remove(this._onAfterParticlesRenderingObserver);
  105626. this._onAfterParticlesRenderingObserver = null;
  105627. }
  105628. },
  105629. enumerable: true,
  105630. configurable: true
  105631. });
  105632. Object.defineProperty(SceneInstrumentation.prototype, "spritesRenderTimeCounter", {
  105633. /**
  105634. * Gets the perf counter used for sprites render time
  105635. */
  105636. get: function () {
  105637. return this._spritesRenderTime;
  105638. },
  105639. enumerable: true,
  105640. configurable: true
  105641. });
  105642. Object.defineProperty(SceneInstrumentation.prototype, "captureSpritesRenderTime", {
  105643. /**
  105644. * Gets the sprites render time capture status
  105645. */
  105646. get: function () {
  105647. return this._captureSpritesRenderTime;
  105648. },
  105649. /**
  105650. * Enable or disable the sprites render time capture
  105651. */
  105652. set: function (value) {
  105653. var _this = this;
  105654. if (value === this._captureSpritesRenderTime) {
  105655. return;
  105656. }
  105657. this._captureSpritesRenderTime = value;
  105658. if (!this.scene.spriteManagers) {
  105659. return;
  105660. }
  105661. if (value) {
  105662. this._onBeforeSpritesRenderingObserver = this.scene.onBeforeSpritesRenderingObservable.add(function () {
  105663. BABYLON.Tools.StartPerformanceCounter("Sprites");
  105664. _this._spritesRenderTime.beginMonitoring();
  105665. });
  105666. this._onAfterSpritesRenderingObserver = this.scene.onAfterSpritesRenderingObservable.add(function () {
  105667. BABYLON.Tools.EndPerformanceCounter("Sprites");
  105668. _this._spritesRenderTime.endMonitoring(false);
  105669. });
  105670. }
  105671. else {
  105672. this.scene.onBeforeSpritesRenderingObservable.remove(this._onBeforeSpritesRenderingObserver);
  105673. this._onBeforeSpritesRenderingObserver = null;
  105674. this.scene.onAfterSpritesRenderingObservable.remove(this._onAfterSpritesRenderingObserver);
  105675. this._onAfterSpritesRenderingObserver = null;
  105676. }
  105677. },
  105678. enumerable: true,
  105679. configurable: true
  105680. });
  105681. Object.defineProperty(SceneInstrumentation.prototype, "physicsTimeCounter", {
  105682. /**
  105683. * Gets the perf counter used for physics time
  105684. */
  105685. get: function () {
  105686. return this._physicsTime;
  105687. },
  105688. enumerable: true,
  105689. configurable: true
  105690. });
  105691. Object.defineProperty(SceneInstrumentation.prototype, "capturePhysicsTime", {
  105692. /**
  105693. * Gets the physics time capture status
  105694. */
  105695. get: function () {
  105696. return this._capturePhysicsTime;
  105697. },
  105698. /**
  105699. * Enable or disable the physics time capture
  105700. */
  105701. set: function (value) {
  105702. var _this = this;
  105703. if (value === this._capturePhysicsTime) {
  105704. return;
  105705. }
  105706. this._capturePhysicsTime = value;
  105707. if (value) {
  105708. this._onBeforePhysicsObserver = this.scene.onBeforePhysicsObservable.add(function () {
  105709. BABYLON.Tools.StartPerformanceCounter("Physics");
  105710. _this._physicsTime.beginMonitoring();
  105711. });
  105712. this._onAfterPhysicsObserver = this.scene.onAfterPhysicsObservable.add(function () {
  105713. BABYLON.Tools.EndPerformanceCounter("Physics");
  105714. _this._physicsTime.endMonitoring();
  105715. });
  105716. }
  105717. else {
  105718. this.scene.onBeforePhysicsObservable.remove(this._onBeforePhysicsObserver);
  105719. this._onBeforePhysicsObserver = null;
  105720. this.scene.onAfterPhysicsObservable.remove(this._onAfterPhysicsObserver);
  105721. this._onAfterPhysicsObserver = null;
  105722. }
  105723. },
  105724. enumerable: true,
  105725. configurable: true
  105726. });
  105727. Object.defineProperty(SceneInstrumentation.prototype, "animationsTimeCounter", {
  105728. /**
  105729. * Gets the perf counter used for animations time
  105730. */
  105731. get: function () {
  105732. return this._animationsTime;
  105733. },
  105734. enumerable: true,
  105735. configurable: true
  105736. });
  105737. Object.defineProperty(SceneInstrumentation.prototype, "captureAnimationsTime", {
  105738. /**
  105739. * Gets the animations time capture status
  105740. */
  105741. get: function () {
  105742. return this._captureAnimationsTime;
  105743. },
  105744. /**
  105745. * Enable or disable the animations time capture
  105746. */
  105747. set: function (value) {
  105748. var _this = this;
  105749. if (value === this._captureAnimationsTime) {
  105750. return;
  105751. }
  105752. this._captureAnimationsTime = value;
  105753. if (value) {
  105754. this._onAfterAnimationsObserver = this.scene.onAfterAnimationsObservable.add(function () {
  105755. _this._animationsTime.endMonitoring();
  105756. });
  105757. }
  105758. else {
  105759. this.scene.onAfterAnimationsObservable.remove(this._onAfterAnimationsObserver);
  105760. this._onAfterAnimationsObserver = null;
  105761. }
  105762. },
  105763. enumerable: true,
  105764. configurable: true
  105765. });
  105766. Object.defineProperty(SceneInstrumentation.prototype, "frameTimeCounter", {
  105767. /**
  105768. * Gets the perf counter used for frame time capture
  105769. */
  105770. get: function () {
  105771. return this._frameTime;
  105772. },
  105773. enumerable: true,
  105774. configurable: true
  105775. });
  105776. Object.defineProperty(SceneInstrumentation.prototype, "captureFrameTime", {
  105777. /**
  105778. * Gets the frame time capture status
  105779. */
  105780. get: function () {
  105781. return this._captureFrameTime;
  105782. },
  105783. /**
  105784. * Enable or disable the frame time capture
  105785. */
  105786. set: function (value) {
  105787. this._captureFrameTime = value;
  105788. },
  105789. enumerable: true,
  105790. configurable: true
  105791. });
  105792. Object.defineProperty(SceneInstrumentation.prototype, "interFrameTimeCounter", {
  105793. /**
  105794. * Gets the perf counter used for inter-frames time capture
  105795. */
  105796. get: function () {
  105797. return this._interFrameTime;
  105798. },
  105799. enumerable: true,
  105800. configurable: true
  105801. });
  105802. Object.defineProperty(SceneInstrumentation.prototype, "captureInterFrameTime", {
  105803. /**
  105804. * Gets the inter-frames time capture status
  105805. */
  105806. get: function () {
  105807. return this._captureInterFrameTime;
  105808. },
  105809. /**
  105810. * Enable or disable the inter-frames time capture
  105811. */
  105812. set: function (value) {
  105813. this._captureInterFrameTime = value;
  105814. },
  105815. enumerable: true,
  105816. configurable: true
  105817. });
  105818. Object.defineProperty(SceneInstrumentation.prototype, "renderTimeCounter", {
  105819. /**
  105820. * Gets the perf counter used for render time capture
  105821. */
  105822. get: function () {
  105823. return this._renderTime;
  105824. },
  105825. enumerable: true,
  105826. configurable: true
  105827. });
  105828. Object.defineProperty(SceneInstrumentation.prototype, "captureRenderTime", {
  105829. /**
  105830. * Gets the render time capture status
  105831. */
  105832. get: function () {
  105833. return this._captureRenderTime;
  105834. },
  105835. /**
  105836. * Enable or disable the render time capture
  105837. */
  105838. set: function (value) {
  105839. var _this = this;
  105840. if (value === this._captureRenderTime) {
  105841. return;
  105842. }
  105843. this._captureRenderTime = value;
  105844. if (value) {
  105845. this._onBeforeDrawPhaseObserver = this.scene.onBeforeDrawPhaseObservable.add(function () {
  105846. _this._renderTime.beginMonitoring();
  105847. BABYLON.Tools.StartPerformanceCounter("Main render");
  105848. });
  105849. this._onAfterDrawPhaseObserver = this.scene.onAfterDrawPhaseObservable.add(function () {
  105850. _this._renderTime.endMonitoring(false);
  105851. BABYLON.Tools.EndPerformanceCounter("Main render");
  105852. });
  105853. }
  105854. else {
  105855. this.scene.onBeforeDrawPhaseObservable.remove(this._onBeforeDrawPhaseObserver);
  105856. this._onBeforeDrawPhaseObserver = null;
  105857. this.scene.onAfterDrawPhaseObservable.remove(this._onAfterDrawPhaseObserver);
  105858. this._onAfterDrawPhaseObserver = null;
  105859. }
  105860. },
  105861. enumerable: true,
  105862. configurable: true
  105863. });
  105864. Object.defineProperty(SceneInstrumentation.prototype, "cameraRenderTimeCounter", {
  105865. /**
  105866. * Gets the perf counter used for camera render time capture
  105867. */
  105868. get: function () {
  105869. return this._cameraRenderTime;
  105870. },
  105871. enumerable: true,
  105872. configurable: true
  105873. });
  105874. Object.defineProperty(SceneInstrumentation.prototype, "captureCameraRenderTime", {
  105875. /**
  105876. * Gets the camera render time capture status
  105877. */
  105878. get: function () {
  105879. return this._captureCameraRenderTime;
  105880. },
  105881. /**
  105882. * Enable or disable the camera render time capture
  105883. */
  105884. set: function (value) {
  105885. var _this = this;
  105886. if (value === this._captureCameraRenderTime) {
  105887. return;
  105888. }
  105889. this._captureCameraRenderTime = value;
  105890. if (value) {
  105891. this._onBeforeCameraRenderObserver = this.scene.onBeforeCameraRenderObservable.add(function (camera) {
  105892. _this._cameraRenderTime.beginMonitoring();
  105893. BABYLON.Tools.StartPerformanceCounter("Rendering camera " + camera.name);
  105894. });
  105895. this._onAfterCameraRenderObserver = this.scene.onAfterCameraRenderObservable.add(function (camera) {
  105896. _this._cameraRenderTime.endMonitoring(false);
  105897. BABYLON.Tools.EndPerformanceCounter("Rendering camera " + camera.name);
  105898. });
  105899. }
  105900. else {
  105901. this.scene.onBeforeCameraRenderObservable.remove(this._onBeforeCameraRenderObserver);
  105902. this._onBeforeCameraRenderObserver = null;
  105903. this.scene.onAfterCameraRenderObservable.remove(this._onAfterCameraRenderObserver);
  105904. this._onAfterCameraRenderObserver = null;
  105905. }
  105906. },
  105907. enumerable: true,
  105908. configurable: true
  105909. });
  105910. Object.defineProperty(SceneInstrumentation.prototype, "drawCallsCounter", {
  105911. /**
  105912. * Gets the perf counter used for draw calls
  105913. */
  105914. get: function () {
  105915. return this.scene.getEngine()._drawCalls;
  105916. },
  105917. enumerable: true,
  105918. configurable: true
  105919. });
  105920. Object.defineProperty(SceneInstrumentation.prototype, "textureCollisionsCounter", {
  105921. /**
  105922. * Gets the perf counter used for texture collisions
  105923. */
  105924. get: function () {
  105925. return this.scene.getEngine()._textureCollisions;
  105926. },
  105927. enumerable: true,
  105928. configurable: true
  105929. });
  105930. SceneInstrumentation.prototype.dispose = function () {
  105931. this.scene.onAfterRenderObservable.remove(this._onAfterRenderObserver);
  105932. this._onAfterRenderObserver = null;
  105933. this.scene.onBeforeActiveMeshesEvaluationObservable.remove(this._onBeforeActiveMeshesEvaluationObserver);
  105934. this._onBeforeActiveMeshesEvaluationObserver = null;
  105935. this.scene.onAfterActiveMeshesEvaluationObservable.remove(this._onAfterActiveMeshesEvaluationObserver);
  105936. this._onAfterActiveMeshesEvaluationObserver = null;
  105937. this.scene.onBeforeRenderTargetsRenderObservable.remove(this._onBeforeRenderTargetsRenderObserver);
  105938. this._onBeforeRenderTargetsRenderObserver = null;
  105939. this.scene.onAfterRenderTargetsRenderObservable.remove(this._onAfterRenderTargetsRenderObserver);
  105940. this._onAfterRenderTargetsRenderObserver = null;
  105941. this.scene.onBeforeAnimationsObservable.remove(this._onBeforeAnimationsObserver);
  105942. this._onBeforeAnimationsObserver = null;
  105943. this.scene.onBeforeParticlesRenderingObservable.remove(this._onBeforeParticlesRenderingObserver);
  105944. this._onBeforeParticlesRenderingObserver = null;
  105945. this.scene.onAfterParticlesRenderingObservable.remove(this._onAfterParticlesRenderingObserver);
  105946. this._onAfterParticlesRenderingObserver = null;
  105947. this.scene.onBeforeSpritesRenderingObservable.remove(this._onBeforeSpritesRenderingObserver);
  105948. this._onBeforeSpritesRenderingObserver = null;
  105949. this.scene.onAfterSpritesRenderingObservable.remove(this._onAfterSpritesRenderingObserver);
  105950. this._onAfterSpritesRenderingObserver = null;
  105951. this.scene.onBeforeDrawPhaseObservable.remove(this._onBeforeDrawPhaseObserver);
  105952. this._onBeforeDrawPhaseObserver = null;
  105953. this.scene.onAfterDrawPhaseObservable.remove(this._onAfterDrawPhaseObserver);
  105954. this._onAfterDrawPhaseObserver = null;
  105955. this.scene.onBeforePhysicsObservable.remove(this._onBeforePhysicsObserver);
  105956. this._onBeforePhysicsObserver = null;
  105957. this.scene.onAfterPhysicsObservable.remove(this._onAfterPhysicsObserver);
  105958. this._onAfterPhysicsObserver = null;
  105959. this.scene.onAfterAnimationsObservable.remove(this._onAfterAnimationsObserver);
  105960. this._onAfterAnimationsObserver = null;
  105961. this.scene.onBeforeCameraRenderObservable.remove(this._onBeforeCameraRenderObserver);
  105962. this._onBeforeCameraRenderObserver = null;
  105963. this.scene.onAfterCameraRenderObservable.remove(this._onAfterCameraRenderObserver);
  105964. this._onAfterCameraRenderObserver = null;
  105965. this.scene = null;
  105966. };
  105967. return SceneInstrumentation;
  105968. }());
  105969. BABYLON.SceneInstrumentation = SceneInstrumentation;
  105970. })(BABYLON || (BABYLON = {}));
  105971. //# sourceMappingURL=babylon.sceneInstrumentation.js.map
  105972. var BABYLON;
  105973. (function (BABYLON) {
  105974. /**
  105975. * @hidden
  105976. **/
  105977. var _TimeToken = /** @class */ (function () {
  105978. function _TimeToken() {
  105979. this._timeElapsedQueryEnded = false;
  105980. }
  105981. return _TimeToken;
  105982. }());
  105983. BABYLON._TimeToken = _TimeToken;
  105984. })(BABYLON || (BABYLON = {}));
  105985. //# sourceMappingURL=babylon.timeToken.js.map
  105986. var BABYLON;
  105987. (function (BABYLON) {
  105988. /**
  105989. * Background material defines definition.
  105990. * @hidden Mainly internal Use
  105991. */
  105992. var BackgroundMaterialDefines = /** @class */ (function (_super) {
  105993. __extends(BackgroundMaterialDefines, _super);
  105994. /**
  105995. * Constructor of the defines.
  105996. */
  105997. function BackgroundMaterialDefines() {
  105998. var _this = _super.call(this) || this;
  105999. /**
  106000. * True if the diffuse texture is in use.
  106001. */
  106002. _this.DIFFUSE = false;
  106003. /**
  106004. * The direct UV channel to use.
  106005. */
  106006. _this.DIFFUSEDIRECTUV = 0;
  106007. /**
  106008. * True if the diffuse texture is in gamma space.
  106009. */
  106010. _this.GAMMADIFFUSE = false;
  106011. /**
  106012. * True if the diffuse texture has opacity in the alpha channel.
  106013. */
  106014. _this.DIFFUSEHASALPHA = false;
  106015. /**
  106016. * True if you want the material to fade to transparent at grazing angle.
  106017. */
  106018. _this.OPACITYFRESNEL = false;
  106019. /**
  106020. * True if an extra blur needs to be added in the reflection.
  106021. */
  106022. _this.REFLECTIONBLUR = false;
  106023. /**
  106024. * True if you want the material to fade to reflection at grazing angle.
  106025. */
  106026. _this.REFLECTIONFRESNEL = false;
  106027. /**
  106028. * True if you want the material to falloff as far as you move away from the scene center.
  106029. */
  106030. _this.REFLECTIONFALLOFF = false;
  106031. /**
  106032. * False if the current Webgl implementation does not support the texture lod extension.
  106033. */
  106034. _this.TEXTURELODSUPPORT = false;
  106035. /**
  106036. * True to ensure the data are premultiplied.
  106037. */
  106038. _this.PREMULTIPLYALPHA = false;
  106039. /**
  106040. * True if the texture contains cooked RGB values and not gray scaled multipliers.
  106041. */
  106042. _this.USERGBCOLOR = false;
  106043. /**
  106044. * True if highlight and shadow levels have been specified. It can help ensuring the main perceived color
  106045. * stays aligned with the desired configuration.
  106046. */
  106047. _this.USEHIGHLIGHTANDSHADOWCOLORS = false;
  106048. /**
  106049. * True to add noise in order to reduce the banding effect.
  106050. */
  106051. _this.NOISE = false;
  106052. /**
  106053. * is the reflection texture in BGR color scheme?
  106054. * Mainly used to solve a bug in ios10 video tag
  106055. */
  106056. _this.REFLECTIONBGR = false;
  106057. _this.IMAGEPROCESSING = false;
  106058. _this.VIGNETTE = false;
  106059. _this.VIGNETTEBLENDMODEMULTIPLY = false;
  106060. _this.VIGNETTEBLENDMODEOPAQUE = false;
  106061. _this.TONEMAPPING = false;
  106062. _this.TONEMAPPING_ACES = false;
  106063. _this.CONTRAST = false;
  106064. _this.COLORCURVES = false;
  106065. _this.COLORGRADING = false;
  106066. _this.COLORGRADING3D = false;
  106067. _this.SAMPLER3DGREENDEPTH = false;
  106068. _this.SAMPLER3DBGRMAP = false;
  106069. _this.IMAGEPROCESSINGPOSTPROCESS = false;
  106070. _this.EXPOSURE = false;
  106071. // Reflection.
  106072. _this.REFLECTION = false;
  106073. _this.REFLECTIONMAP_3D = false;
  106074. _this.REFLECTIONMAP_SPHERICAL = false;
  106075. _this.REFLECTIONMAP_PLANAR = false;
  106076. _this.REFLECTIONMAP_CUBIC = false;
  106077. _this.REFLECTIONMAP_PROJECTION = false;
  106078. _this.REFLECTIONMAP_SKYBOX = false;
  106079. _this.REFLECTIONMAP_SKYBOX_TRANSFORMED = false;
  106080. _this.REFLECTIONMAP_EXPLICIT = false;
  106081. _this.REFLECTIONMAP_EQUIRECTANGULAR = false;
  106082. _this.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = false;
  106083. _this.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = false;
  106084. _this.INVERTCUBICMAP = false;
  106085. _this.REFLECTIONMAP_OPPOSITEZ = false;
  106086. _this.LODINREFLECTIONALPHA = false;
  106087. _this.GAMMAREFLECTION = false;
  106088. _this.RGBDREFLECTION = false;
  106089. _this.EQUIRECTANGULAR_RELFECTION_FOV = false;
  106090. // Default BJS.
  106091. _this.MAINUV1 = false;
  106092. _this.MAINUV2 = false;
  106093. _this.UV1 = false;
  106094. _this.UV2 = false;
  106095. _this.CLIPPLANE = false;
  106096. _this.CLIPPLANE2 = false;
  106097. _this.CLIPPLANE3 = false;
  106098. _this.CLIPPLANE4 = false;
  106099. _this.POINTSIZE = false;
  106100. _this.FOG = false;
  106101. _this.NORMAL = false;
  106102. _this.NUM_BONE_INFLUENCERS = 0;
  106103. _this.BonesPerMesh = 0;
  106104. _this.INSTANCES = false;
  106105. _this.SHADOWFLOAT = false;
  106106. _this.rebuild();
  106107. return _this;
  106108. }
  106109. return BackgroundMaterialDefines;
  106110. }(BABYLON.MaterialDefines));
  106111. /**
  106112. * Background material used to create an efficient environement around your scene.
  106113. */
  106114. var BackgroundMaterial = /** @class */ (function (_super) {
  106115. __extends(BackgroundMaterial, _super);
  106116. /**
  106117. * Instantiates a Background Material in the given scene
  106118. * @param name The friendly name of the material
  106119. * @param scene The scene to add the material to
  106120. */
  106121. function BackgroundMaterial(name, scene) {
  106122. var _this = _super.call(this, name, scene) || this;
  106123. /**
  106124. * Key light Color (multiply against the environement texture)
  106125. */
  106126. _this.primaryColor = BABYLON.Color3.White();
  106127. _this._primaryColorShadowLevel = 0;
  106128. _this._primaryColorHighlightLevel = 0;
  106129. /**
  106130. * Reflection Texture used in the material.
  106131. * Should be author in a specific way for the best result (refer to the documentation).
  106132. */
  106133. _this.reflectionTexture = null;
  106134. /**
  106135. * Reflection Texture level of blur.
  106136. *
  106137. * Can be use to reuse an existing HDR Texture and target a specific LOD to prevent authoring the
  106138. * texture twice.
  106139. */
  106140. _this.reflectionBlur = 0;
  106141. /**
  106142. * Diffuse Texture used in the material.
  106143. * Should be author in a specific way for the best result (refer to the documentation).
  106144. */
  106145. _this.diffuseTexture = null;
  106146. _this._shadowLights = null;
  106147. /**
  106148. * Specify the list of lights casting shadow on the material.
  106149. * All scene shadow lights will be included if null.
  106150. */
  106151. _this.shadowLights = null;
  106152. /**
  106153. * Helps adjusting the shadow to a softer level if required.
  106154. * 0 means black shadows and 1 means no shadows.
  106155. */
  106156. _this.shadowLevel = 0;
  106157. /**
  106158. * In case of opacity Fresnel or reflection falloff, this is use as a scene center.
  106159. * It is usually zero but might be interesting to modify according to your setup.
  106160. */
  106161. _this.sceneCenter = BABYLON.Vector3.Zero();
  106162. /**
  106163. * This helps specifying that the material is falling off to the sky box at grazing angle.
  106164. * This helps ensuring a nice transition when the camera goes under the ground.
  106165. */
  106166. _this.opacityFresnel = true;
  106167. /**
  106168. * This helps specifying that the material is falling off from diffuse to the reflection texture at grazing angle.
  106169. * This helps adding a mirror texture on the ground.
  106170. */
  106171. _this.reflectionFresnel = false;
  106172. /**
  106173. * This helps specifying the falloff radius off the reflection texture from the sceneCenter.
  106174. * This helps adding a nice falloff effect to the reflection if used as a mirror for instance.
  106175. */
  106176. _this.reflectionFalloffDistance = 0.0;
  106177. /**
  106178. * This specifies the weight of the reflection against the background in case of reflection Fresnel.
  106179. */
  106180. _this.reflectionAmount = 1.0;
  106181. /**
  106182. * This specifies the weight of the reflection at grazing angle.
  106183. */
  106184. _this.reflectionReflectance0 = 0.05;
  106185. /**
  106186. * This specifies the weight of the reflection at a perpendicular point of view.
  106187. */
  106188. _this.reflectionReflectance90 = 0.5;
  106189. /**
  106190. * Helps to directly use the maps channels instead of their level.
  106191. */
  106192. _this.useRGBColor = true;
  106193. /**
  106194. * This helps reducing the banding effect that could occur on the background.
  106195. */
  106196. _this.enableNoise = false;
  106197. _this._fovMultiplier = 1.0;
  106198. /**
  106199. * Enable the FOV adjustment feature controlled by fovMultiplier.
  106200. */
  106201. _this.useEquirectangularFOV = false;
  106202. _this._maxSimultaneousLights = 4;
  106203. /**
  106204. * Number of Simultaneous lights allowed on the material.
  106205. */
  106206. _this.maxSimultaneousLights = 4;
  106207. /**
  106208. * Keep track of the image processing observer to allow dispose and replace.
  106209. */
  106210. _this._imageProcessingObserver = null;
  106211. /**
  106212. * Due to a bug in iOS10, video tags (which are using the background material) are in BGR and not RGB.
  106213. * Setting this flag to true (not done automatically!) will convert it back to RGB.
  106214. */
  106215. _this.switchToBGR = false;
  106216. // Temp values kept as cache in the material.
  106217. _this._renderTargets = new BABYLON.SmartArray(16);
  106218. _this._reflectionControls = BABYLON.Vector4.Zero();
  106219. _this._white = BABYLON.Color3.White();
  106220. _this._primaryShadowColor = BABYLON.Color3.Black();
  106221. _this._primaryHighlightColor = BABYLON.Color3.Black();
  106222. // Setup the default processing configuration to the scene.
  106223. _this._attachImageProcessingConfiguration(null);
  106224. _this.getRenderTargetTextures = function () {
  106225. _this._renderTargets.reset();
  106226. if (_this._diffuseTexture && _this._diffuseTexture.isRenderTarget) {
  106227. _this._renderTargets.push(_this._diffuseTexture);
  106228. }
  106229. if (_this._reflectionTexture && _this._reflectionTexture.isRenderTarget) {
  106230. _this._renderTargets.push(_this._reflectionTexture);
  106231. }
  106232. return _this._renderTargets;
  106233. };
  106234. return _this;
  106235. }
  106236. Object.defineProperty(BackgroundMaterial.prototype, "_perceptualColor", {
  106237. /**
  106238. * Experimental Internal Use Only.
  106239. *
  106240. * Key light Color in "perceptual value" meaning the color you would like to see on screen.
  106241. * This acts as a helper to set the primary color to a more "human friendly" value.
  106242. * Conversion to linear space as well as exposure and tone mapping correction will be applied to keep the
  106243. * output color as close as possible from the chosen value.
  106244. * (This does not account for contrast color grading and color curves as they are considered post effect and not directly
  106245. * part of lighting setup.)
  106246. */
  106247. get: function () {
  106248. return this.__perceptualColor;
  106249. },
  106250. set: function (value) {
  106251. this.__perceptualColor = value;
  106252. this._computePrimaryColorFromPerceptualColor();
  106253. this._markAllSubMeshesAsLightsDirty();
  106254. },
  106255. enumerable: true,
  106256. configurable: true
  106257. });
  106258. Object.defineProperty(BackgroundMaterial.prototype, "primaryColorShadowLevel", {
  106259. /**
  106260. * Defines the level of the shadows (dark area of the reflection map) in order to help scaling the colors.
  106261. * The color opposite to the primary color is used at the level chosen to define what the black area would look.
  106262. */
  106263. get: function () {
  106264. return this._primaryColorShadowLevel;
  106265. },
  106266. set: function (value) {
  106267. this._primaryColorShadowLevel = value;
  106268. this._computePrimaryColors();
  106269. this._markAllSubMeshesAsLightsDirty();
  106270. },
  106271. enumerable: true,
  106272. configurable: true
  106273. });
  106274. Object.defineProperty(BackgroundMaterial.prototype, "primaryColorHighlightLevel", {
  106275. /**
  106276. * Defines the level of the highliights (highlight area of the reflection map) in order to help scaling the colors.
  106277. * The primary color is used at the level chosen to define what the white area would look.
  106278. */
  106279. get: function () {
  106280. return this._primaryColorHighlightLevel;
  106281. },
  106282. set: function (value) {
  106283. this._primaryColorHighlightLevel = value;
  106284. this._computePrimaryColors();
  106285. this._markAllSubMeshesAsLightsDirty();
  106286. },
  106287. enumerable: true,
  106288. configurable: true
  106289. });
  106290. Object.defineProperty(BackgroundMaterial.prototype, "reflectionStandardFresnelWeight", {
  106291. /**
  106292. * Sets the reflection reflectance fresnel values according to the default standard
  106293. * empirically know to work well :-)
  106294. */
  106295. set: function (value) {
  106296. var reflectionWeight = value;
  106297. if (reflectionWeight < 0.5) {
  106298. reflectionWeight = reflectionWeight * 2.0;
  106299. this.reflectionReflectance0 = BackgroundMaterial.StandardReflectance0 * reflectionWeight;
  106300. this.reflectionReflectance90 = BackgroundMaterial.StandardReflectance90 * reflectionWeight;
  106301. }
  106302. else {
  106303. reflectionWeight = reflectionWeight * 2.0 - 1.0;
  106304. this.reflectionReflectance0 = BackgroundMaterial.StandardReflectance0 + (1.0 - BackgroundMaterial.StandardReflectance0) * reflectionWeight;
  106305. this.reflectionReflectance90 = BackgroundMaterial.StandardReflectance90 + (1.0 - BackgroundMaterial.StandardReflectance90) * reflectionWeight;
  106306. }
  106307. },
  106308. enumerable: true,
  106309. configurable: true
  106310. });
  106311. Object.defineProperty(BackgroundMaterial.prototype, "fovMultiplier", {
  106312. /**
  106313. * The current fov(field of view) multiplier, 0.0 - 2.0. Defaults to 1.0. Lower values "zoom in" and higher values "zoom out".
  106314. * Best used when trying to implement visual zoom effects like fish-eye or binoculars while not adjusting camera fov.
  106315. * Recommended to be keep at 1.0 except for special cases.
  106316. */
  106317. get: function () {
  106318. return this._fovMultiplier;
  106319. },
  106320. set: function (value) {
  106321. if (isNaN(value)) {
  106322. value = 1.0;
  106323. }
  106324. this._fovMultiplier = Math.max(0.0, Math.min(2.0, value));
  106325. },
  106326. enumerable: true,
  106327. configurable: true
  106328. });
  106329. /**
  106330. * Attaches a new image processing configuration to the PBR Material.
  106331. * @param configuration (if null the scene configuration will be use)
  106332. */
  106333. BackgroundMaterial.prototype._attachImageProcessingConfiguration = function (configuration) {
  106334. var _this = this;
  106335. if (configuration === this._imageProcessingConfiguration) {
  106336. return;
  106337. }
  106338. // Detaches observer.
  106339. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  106340. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  106341. }
  106342. // Pick the scene configuration if needed.
  106343. if (!configuration) {
  106344. this._imageProcessingConfiguration = this.getScene().imageProcessingConfiguration;
  106345. }
  106346. else {
  106347. this._imageProcessingConfiguration = configuration;
  106348. }
  106349. // Attaches observer.
  106350. if (this._imageProcessingConfiguration) {
  106351. this._imageProcessingObserver = this._imageProcessingConfiguration.onUpdateParameters.add(function (conf) {
  106352. _this._computePrimaryColorFromPerceptualColor();
  106353. _this._markAllSubMeshesAsImageProcessingDirty();
  106354. });
  106355. }
  106356. };
  106357. Object.defineProperty(BackgroundMaterial.prototype, "imageProcessingConfiguration", {
  106358. /**
  106359. * Gets the image processing configuration used either in this material.
  106360. */
  106361. get: function () {
  106362. return this._imageProcessingConfiguration;
  106363. },
  106364. /**
  106365. * Sets the Default image processing configuration used either in the this material.
  106366. *
  106367. * If sets to null, the scene one is in use.
  106368. */
  106369. set: function (value) {
  106370. this._attachImageProcessingConfiguration(value);
  106371. // Ensure the effect will be rebuilt.
  106372. this._markAllSubMeshesAsTexturesDirty();
  106373. },
  106374. enumerable: true,
  106375. configurable: true
  106376. });
  106377. Object.defineProperty(BackgroundMaterial.prototype, "cameraColorCurvesEnabled", {
  106378. /**
  106379. * Gets wether the color curves effect is enabled.
  106380. */
  106381. get: function () {
  106382. return this.imageProcessingConfiguration.colorCurvesEnabled;
  106383. },
  106384. /**
  106385. * Sets wether the color curves effect is enabled.
  106386. */
  106387. set: function (value) {
  106388. this.imageProcessingConfiguration.colorCurvesEnabled = value;
  106389. },
  106390. enumerable: true,
  106391. configurable: true
  106392. });
  106393. Object.defineProperty(BackgroundMaterial.prototype, "cameraColorGradingEnabled", {
  106394. /**
  106395. * Gets wether the color grading effect is enabled.
  106396. */
  106397. get: function () {
  106398. return this.imageProcessingConfiguration.colorGradingEnabled;
  106399. },
  106400. /**
  106401. * Gets wether the color grading effect is enabled.
  106402. */
  106403. set: function (value) {
  106404. this.imageProcessingConfiguration.colorGradingEnabled = value;
  106405. },
  106406. enumerable: true,
  106407. configurable: true
  106408. });
  106409. Object.defineProperty(BackgroundMaterial.prototype, "cameraToneMappingEnabled", {
  106410. /**
  106411. * Gets wether tonemapping is enabled or not.
  106412. */
  106413. get: function () {
  106414. return this._imageProcessingConfiguration.toneMappingEnabled;
  106415. },
  106416. /**
  106417. * Sets wether tonemapping is enabled or not
  106418. */
  106419. set: function (value) {
  106420. this._imageProcessingConfiguration.toneMappingEnabled = value;
  106421. },
  106422. enumerable: true,
  106423. configurable: true
  106424. });
  106425. ;
  106426. ;
  106427. Object.defineProperty(BackgroundMaterial.prototype, "cameraExposure", {
  106428. /**
  106429. * The camera exposure used on this material.
  106430. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  106431. * This corresponds to a photographic exposure.
  106432. */
  106433. get: function () {
  106434. return this._imageProcessingConfiguration.exposure;
  106435. },
  106436. /**
  106437. * The camera exposure used on this material.
  106438. * This property is here and not in the camera to allow controlling exposure without full screen post process.
  106439. * This corresponds to a photographic exposure.
  106440. */
  106441. set: function (value) {
  106442. this._imageProcessingConfiguration.exposure = value;
  106443. },
  106444. enumerable: true,
  106445. configurable: true
  106446. });
  106447. ;
  106448. ;
  106449. Object.defineProperty(BackgroundMaterial.prototype, "cameraContrast", {
  106450. /**
  106451. * Gets The camera contrast used on this material.
  106452. */
  106453. get: function () {
  106454. return this._imageProcessingConfiguration.contrast;
  106455. },
  106456. /**
  106457. * Sets The camera contrast used on this material.
  106458. */
  106459. set: function (value) {
  106460. this._imageProcessingConfiguration.contrast = value;
  106461. },
  106462. enumerable: true,
  106463. configurable: true
  106464. });
  106465. Object.defineProperty(BackgroundMaterial.prototype, "cameraColorGradingTexture", {
  106466. /**
  106467. * Gets the Color Grading 2D Lookup Texture.
  106468. */
  106469. get: function () {
  106470. return this._imageProcessingConfiguration.colorGradingTexture;
  106471. },
  106472. /**
  106473. * Sets the Color Grading 2D Lookup Texture.
  106474. */
  106475. set: function (value) {
  106476. this.imageProcessingConfiguration.colorGradingTexture = value;
  106477. },
  106478. enumerable: true,
  106479. configurable: true
  106480. });
  106481. Object.defineProperty(BackgroundMaterial.prototype, "cameraColorCurves", {
  106482. /**
  106483. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  106484. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  106485. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  106486. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  106487. */
  106488. get: function () {
  106489. return this.imageProcessingConfiguration.colorCurves;
  106490. },
  106491. /**
  106492. * The color grading curves provide additional color adjustmnent that is applied after any color grading transform (3D LUT).
  106493. * They allow basic adjustment of saturation and small exposure adjustments, along with color filter tinting to provide white balance adjustment or more stylistic effects.
  106494. * These are similar to controls found in many professional imaging or colorist software. The global controls are applied to the entire image. For advanced tuning, extra controls are provided to adjust the shadow, midtone and highlight areas of the image;
  106495. * corresponding to low luminance, medium luminance, and high luminance areas respectively.
  106496. */
  106497. set: function (value) {
  106498. this.imageProcessingConfiguration.colorCurves = value;
  106499. },
  106500. enumerable: true,
  106501. configurable: true
  106502. });
  106503. /**
  106504. * The entire material has been created in order to prevent overdraw.
  106505. * @returns false
  106506. */
  106507. BackgroundMaterial.prototype.needAlphaTesting = function () {
  106508. return true;
  106509. };
  106510. /**
  106511. * The entire material has been created in order to prevent overdraw.
  106512. * @returns true if blending is enable
  106513. */
  106514. BackgroundMaterial.prototype.needAlphaBlending = function () {
  106515. return ((this.alpha < 0) || (this._diffuseTexture != null && this._diffuseTexture.hasAlpha));
  106516. };
  106517. /**
  106518. * Checks wether the material is ready to be rendered for a given mesh.
  106519. * @param mesh The mesh to render
  106520. * @param subMesh The submesh to check against
  106521. * @param useInstances Specify wether or not the material is used with instances
  106522. * @returns true if all the dependencies are ready (Textures, Effects...)
  106523. */
  106524. BackgroundMaterial.prototype.isReadyForSubMesh = function (mesh, subMesh, useInstances) {
  106525. var _this = this;
  106526. if (useInstances === void 0) { useInstances = false; }
  106527. if (subMesh.effect && this.isFrozen) {
  106528. if (this._wasPreviouslyReady) {
  106529. return true;
  106530. }
  106531. }
  106532. if (!subMesh._materialDefines) {
  106533. subMesh._materialDefines = new BackgroundMaterialDefines();
  106534. }
  106535. var scene = this.getScene();
  106536. var defines = subMesh._materialDefines;
  106537. if (!this.checkReadyOnEveryCall && subMesh.effect) {
  106538. if (defines._renderId === scene.getRenderId()) {
  106539. return true;
  106540. }
  106541. }
  106542. var engine = scene.getEngine();
  106543. // Lights
  106544. BABYLON.MaterialHelper.PrepareDefinesForLights(scene, mesh, defines, false, this._maxSimultaneousLights);
  106545. defines._needNormals = true;
  106546. // Textures
  106547. if (defines._areTexturesDirty) {
  106548. defines._needUVs = false;
  106549. if (scene.texturesEnabled) {
  106550. if (scene.getEngine().getCaps().textureLOD) {
  106551. defines.TEXTURELODSUPPORT = true;
  106552. }
  106553. if (this._diffuseTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  106554. if (!this._diffuseTexture.isReadyOrNotBlocking()) {
  106555. return false;
  106556. }
  106557. BABYLON.MaterialHelper.PrepareDefinesForMergedUV(this._diffuseTexture, defines, "DIFFUSE");
  106558. defines.DIFFUSEHASALPHA = this._diffuseTexture.hasAlpha;
  106559. defines.GAMMADIFFUSE = this._diffuseTexture.gammaSpace;
  106560. defines.OPACITYFRESNEL = this._opacityFresnel;
  106561. }
  106562. else {
  106563. defines.DIFFUSE = false;
  106564. defines.DIFFUSEHASALPHA = false;
  106565. defines.GAMMADIFFUSE = false;
  106566. defines.OPACITYFRESNEL = false;
  106567. }
  106568. var reflectionTexture = this._reflectionTexture;
  106569. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  106570. if (!reflectionTexture.isReadyOrNotBlocking()) {
  106571. return false;
  106572. }
  106573. defines.REFLECTION = true;
  106574. defines.GAMMAREFLECTION = reflectionTexture.gammaSpace;
  106575. defines.RGBDREFLECTION = reflectionTexture.isRGBD;
  106576. defines.REFLECTIONBLUR = this._reflectionBlur > 0;
  106577. defines.REFLECTIONMAP_OPPOSITEZ = this.getScene().useRightHandedSystem ? !reflectionTexture.invertZ : reflectionTexture.invertZ;
  106578. defines.LODINREFLECTIONALPHA = reflectionTexture.lodLevelInAlpha;
  106579. defines.EQUIRECTANGULAR_RELFECTION_FOV = this.useEquirectangularFOV;
  106580. defines.REFLECTIONBGR = this.switchToBGR;
  106581. if (reflectionTexture.coordinatesMode === BABYLON.Texture.INVCUBIC_MODE) {
  106582. defines.INVERTCUBICMAP = true;
  106583. }
  106584. defines.REFLECTIONMAP_3D = reflectionTexture.isCube;
  106585. switch (reflectionTexture.coordinatesMode) {
  106586. case BABYLON.Texture.EXPLICIT_MODE:
  106587. defines.REFLECTIONMAP_EXPLICIT = true;
  106588. break;
  106589. case BABYLON.Texture.PLANAR_MODE:
  106590. defines.REFLECTIONMAP_PLANAR = true;
  106591. break;
  106592. case BABYLON.Texture.PROJECTION_MODE:
  106593. defines.REFLECTIONMAP_PROJECTION = true;
  106594. break;
  106595. case BABYLON.Texture.SKYBOX_MODE:
  106596. defines.REFLECTIONMAP_SKYBOX = true;
  106597. defines.REFLECTIONMAP_SKYBOX_TRANSFORMED = !reflectionTexture.getReflectionTextureMatrix().isIdentity();
  106598. break;
  106599. case BABYLON.Texture.SPHERICAL_MODE:
  106600. defines.REFLECTIONMAP_SPHERICAL = true;
  106601. break;
  106602. case BABYLON.Texture.EQUIRECTANGULAR_MODE:
  106603. defines.REFLECTIONMAP_EQUIRECTANGULAR = true;
  106604. break;
  106605. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MODE:
  106606. defines.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = true;
  106607. break;
  106608. case BABYLON.Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE:
  106609. defines.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = true;
  106610. break;
  106611. case BABYLON.Texture.CUBIC_MODE:
  106612. case BABYLON.Texture.INVCUBIC_MODE:
  106613. default:
  106614. defines.REFLECTIONMAP_CUBIC = true;
  106615. break;
  106616. }
  106617. if (this.reflectionFresnel) {
  106618. defines.REFLECTIONFRESNEL = true;
  106619. defines.REFLECTIONFALLOFF = this.reflectionFalloffDistance > 0;
  106620. this._reflectionControls.x = this.reflectionAmount;
  106621. this._reflectionControls.y = this.reflectionReflectance0;
  106622. this._reflectionControls.z = this.reflectionReflectance90;
  106623. this._reflectionControls.w = 1 / this.reflectionFalloffDistance;
  106624. }
  106625. else {
  106626. defines.REFLECTIONFRESNEL = false;
  106627. defines.REFLECTIONFALLOFF = false;
  106628. }
  106629. }
  106630. else {
  106631. defines.REFLECTION = false;
  106632. defines.REFLECTIONFRESNEL = false;
  106633. defines.REFLECTIONFALLOFF = false;
  106634. defines.REFLECTIONBLUR = false;
  106635. defines.REFLECTIONMAP_3D = false;
  106636. defines.REFLECTIONMAP_SPHERICAL = false;
  106637. defines.REFLECTIONMAP_PLANAR = false;
  106638. defines.REFLECTIONMAP_CUBIC = false;
  106639. defines.REFLECTIONMAP_PROJECTION = false;
  106640. defines.REFLECTIONMAP_SKYBOX = false;
  106641. defines.REFLECTIONMAP_SKYBOX_TRANSFORMED = false;
  106642. defines.REFLECTIONMAP_EXPLICIT = false;
  106643. defines.REFLECTIONMAP_EQUIRECTANGULAR = false;
  106644. defines.REFLECTIONMAP_EQUIRECTANGULAR_FIXED = false;
  106645. defines.REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED = false;
  106646. defines.INVERTCUBICMAP = false;
  106647. defines.REFLECTIONMAP_OPPOSITEZ = false;
  106648. defines.LODINREFLECTIONALPHA = false;
  106649. defines.GAMMAREFLECTION = false;
  106650. defines.RGBDREFLECTION = false;
  106651. }
  106652. }
  106653. defines.PREMULTIPLYALPHA = (this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED || this.alphaMode === BABYLON.Engine.ALPHA_PREMULTIPLIED_PORTERDUFF);
  106654. defines.USERGBCOLOR = this._useRGBColor;
  106655. defines.NOISE = this._enableNoise;
  106656. }
  106657. if (defines._areLightsDirty) {
  106658. defines.USEHIGHLIGHTANDSHADOWCOLORS = !this._useRGBColor && (this._primaryColorShadowLevel !== 0 || this._primaryColorHighlightLevel !== 0);
  106659. }
  106660. if (defines._areImageProcessingDirty && this._imageProcessingConfiguration) {
  106661. if (!this._imageProcessingConfiguration.isReady()) {
  106662. return false;
  106663. }
  106664. this._imageProcessingConfiguration.prepareDefines(defines);
  106665. }
  106666. // Misc.
  106667. BABYLON.MaterialHelper.PrepareDefinesForMisc(mesh, scene, false, this.pointsCloud, this.fogEnabled, this._shouldTurnAlphaTestOn(mesh), defines);
  106668. // Values that need to be evaluated on every frame
  106669. BABYLON.MaterialHelper.PrepareDefinesForFrameBoundValues(scene, engine, defines, useInstances);
  106670. // Attribs
  106671. if (BABYLON.MaterialHelper.PrepareDefinesForAttributes(mesh, defines, false, true, false)) {
  106672. if (mesh) {
  106673. if (!scene.getEngine().getCaps().standardDerivatives && !mesh.isVerticesDataPresent(BABYLON.VertexBuffer.NormalKind)) {
  106674. mesh.createNormals(true);
  106675. BABYLON.Tools.Warn("BackgroundMaterial: Normals have been created for the mesh: " + mesh.name);
  106676. }
  106677. }
  106678. }
  106679. // Get correct effect
  106680. if (defines.isDirty) {
  106681. defines.markAsProcessed();
  106682. scene.resetCachedMaterial();
  106683. // Fallbacks
  106684. var fallbacks = new BABYLON.EffectFallbacks();
  106685. if (defines.FOG) {
  106686. fallbacks.addFallback(0, "FOG");
  106687. }
  106688. if (defines.POINTSIZE) {
  106689. fallbacks.addFallback(1, "POINTSIZE");
  106690. }
  106691. BABYLON.MaterialHelper.HandleFallbacksForShadows(defines, fallbacks, this._maxSimultaneousLights);
  106692. if (defines.NUM_BONE_INFLUENCERS > 0) {
  106693. fallbacks.addCPUSkinningFallback(0, mesh);
  106694. }
  106695. //Attributes
  106696. var attribs = [BABYLON.VertexBuffer.PositionKind];
  106697. if (defines.NORMAL) {
  106698. attribs.push(BABYLON.VertexBuffer.NormalKind);
  106699. }
  106700. if (defines.UV1) {
  106701. attribs.push(BABYLON.VertexBuffer.UVKind);
  106702. }
  106703. if (defines.UV2) {
  106704. attribs.push(BABYLON.VertexBuffer.UV2Kind);
  106705. }
  106706. BABYLON.MaterialHelper.PrepareAttributesForBones(attribs, mesh, defines, fallbacks);
  106707. BABYLON.MaterialHelper.PrepareAttributesForInstances(attribs, defines);
  106708. var uniforms = ["world", "view", "viewProjection", "vEyePosition", "vLightsType",
  106709. "vFogInfos", "vFogColor", "pointSize",
  106710. "vClipPlane", "vClipPlane2", "vClipPlane3", "vClipPlane4", "mBones",
  106711. "vPrimaryColor", "vPrimaryColorShadow",
  106712. "vReflectionInfos", "reflectionMatrix", "vReflectionMicrosurfaceInfos", "fFovMultiplier",
  106713. "shadowLevel", "alpha",
  106714. "vBackgroundCenter", "vReflectionControl",
  106715. "vDiffuseInfos", "diffuseMatrix",
  106716. ];
  106717. var samplers = ["diffuseSampler", "reflectionSampler", "reflectionSamplerLow", "reflectionSamplerHigh"];
  106718. var uniformBuffers = ["Material", "Scene"];
  106719. if (BABYLON.ImageProcessingConfiguration) {
  106720. BABYLON.ImageProcessingConfiguration.PrepareUniforms(uniforms, defines);
  106721. BABYLON.ImageProcessingConfiguration.PrepareSamplers(samplers, defines);
  106722. }
  106723. BABYLON.MaterialHelper.PrepareUniformsAndSamplersList({
  106724. uniformsNames: uniforms,
  106725. uniformBuffersNames: uniformBuffers,
  106726. samplers: samplers,
  106727. defines: defines,
  106728. maxSimultaneousLights: this._maxSimultaneousLights
  106729. });
  106730. var onCompiled = function (effect) {
  106731. if (_this.onCompiled) {
  106732. _this.onCompiled(effect);
  106733. }
  106734. _this.bindSceneUniformBuffer(effect, scene.getSceneUniformBuffer());
  106735. };
  106736. var join = defines.toString();
  106737. subMesh.setEffect(scene.getEngine().createEffect("background", {
  106738. attributes: attribs,
  106739. uniformsNames: uniforms,
  106740. uniformBuffersNames: uniformBuffers,
  106741. samplers: samplers,
  106742. defines: join,
  106743. fallbacks: fallbacks,
  106744. onCompiled: onCompiled,
  106745. onError: this.onError,
  106746. indexParameters: { maxSimultaneousLights: this._maxSimultaneousLights }
  106747. }, engine), defines);
  106748. this.buildUniformLayout();
  106749. }
  106750. if (!subMesh.effect || !subMesh.effect.isReady()) {
  106751. return false;
  106752. }
  106753. defines._renderId = scene.getRenderId();
  106754. this._wasPreviouslyReady = true;
  106755. return true;
  106756. };
  106757. /**
  106758. * Compute the primary color according to the chosen perceptual color.
  106759. */
  106760. BackgroundMaterial.prototype._computePrimaryColorFromPerceptualColor = function () {
  106761. if (!this.__perceptualColor) {
  106762. return;
  106763. }
  106764. this._primaryColor.copyFrom(this.__perceptualColor);
  106765. // Revert gamma space.
  106766. this._primaryColor.toLinearSpaceToRef(this._primaryColor);
  106767. // Revert image processing configuration.
  106768. if (this._imageProcessingConfiguration) {
  106769. // Revert Exposure.
  106770. this._primaryColor.scaleToRef(1 / this._imageProcessingConfiguration.exposure, this._primaryColor);
  106771. }
  106772. this._computePrimaryColors();
  106773. };
  106774. /**
  106775. * Compute the highlights and shadow colors according to their chosen levels.
  106776. */
  106777. BackgroundMaterial.prototype._computePrimaryColors = function () {
  106778. if (this._primaryColorShadowLevel === 0 && this._primaryColorHighlightLevel === 0) {
  106779. return;
  106780. }
  106781. // Find the highlight color based on the configuration.
  106782. this._primaryColor.scaleToRef(this._primaryColorShadowLevel, this._primaryShadowColor);
  106783. this._primaryColor.subtractToRef(this._primaryShadowColor, this._primaryShadowColor);
  106784. // Find the shadow color based on the configuration.
  106785. this._white.subtractToRef(this._primaryColor, this._primaryHighlightColor);
  106786. this._primaryHighlightColor.scaleToRef(this._primaryColorHighlightLevel, this._primaryHighlightColor);
  106787. this._primaryColor.addToRef(this._primaryHighlightColor, this._primaryHighlightColor);
  106788. };
  106789. /**
  106790. * Build the uniform buffer used in the material.
  106791. */
  106792. BackgroundMaterial.prototype.buildUniformLayout = function () {
  106793. // Order is important !
  106794. this._uniformBuffer.addUniform("vPrimaryColor", 4);
  106795. this._uniformBuffer.addUniform("vPrimaryColorShadow", 4);
  106796. this._uniformBuffer.addUniform("vDiffuseInfos", 2);
  106797. this._uniformBuffer.addUniform("vReflectionInfos", 2);
  106798. this._uniformBuffer.addUniform("diffuseMatrix", 16);
  106799. this._uniformBuffer.addUniform("reflectionMatrix", 16);
  106800. this._uniformBuffer.addUniform("vReflectionMicrosurfaceInfos", 3);
  106801. this._uniformBuffer.addUniform("fFovMultiplier", 1);
  106802. this._uniformBuffer.addUniform("pointSize", 1);
  106803. this._uniformBuffer.addUniform("shadowLevel", 1);
  106804. this._uniformBuffer.addUniform("alpha", 1);
  106805. this._uniformBuffer.addUniform("vBackgroundCenter", 3);
  106806. this._uniformBuffer.addUniform("vReflectionControl", 4);
  106807. this._uniformBuffer.create();
  106808. };
  106809. /**
  106810. * Unbind the material.
  106811. */
  106812. BackgroundMaterial.prototype.unbind = function () {
  106813. if (this._diffuseTexture && this._diffuseTexture.isRenderTarget) {
  106814. this._uniformBuffer.setTexture("diffuseSampler", null);
  106815. }
  106816. if (this._reflectionTexture && this._reflectionTexture.isRenderTarget) {
  106817. this._uniformBuffer.setTexture("reflectionSampler", null);
  106818. }
  106819. _super.prototype.unbind.call(this);
  106820. };
  106821. /**
  106822. * Bind only the world matrix to the material.
  106823. * @param world The world matrix to bind.
  106824. */
  106825. BackgroundMaterial.prototype.bindOnlyWorldMatrix = function (world) {
  106826. this._activeEffect.setMatrix("world", world);
  106827. };
  106828. /**
  106829. * Bind the material for a dedicated submeh (every used meshes will be considered opaque).
  106830. * @param world The world matrix to bind.
  106831. * @param subMesh The submesh to bind for.
  106832. */
  106833. BackgroundMaterial.prototype.bindForSubMesh = function (world, mesh, subMesh) {
  106834. var scene = this.getScene();
  106835. var defines = subMesh._materialDefines;
  106836. if (!defines) {
  106837. return;
  106838. }
  106839. var effect = subMesh.effect;
  106840. if (!effect) {
  106841. return;
  106842. }
  106843. this._activeEffect = effect;
  106844. // Matrices
  106845. this.bindOnlyWorldMatrix(world);
  106846. // Bones
  106847. BABYLON.MaterialHelper.BindBonesParameters(mesh, this._activeEffect);
  106848. var mustRebind = this._mustRebind(scene, effect, mesh.visibility);
  106849. if (mustRebind) {
  106850. this._uniformBuffer.bindToEffect(effect, "Material");
  106851. this.bindViewProjection(effect);
  106852. var reflectionTexture = this._reflectionTexture;
  106853. if (!this._uniformBuffer.useUbo || !this.isFrozen || !this._uniformBuffer.isSync) {
  106854. // Texture uniforms
  106855. if (scene.texturesEnabled) {
  106856. if (this._diffuseTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  106857. this._uniformBuffer.updateFloat2("vDiffuseInfos", this._diffuseTexture.coordinatesIndex, this._diffuseTexture.level);
  106858. BABYLON.MaterialHelper.BindTextureMatrix(this._diffuseTexture, this._uniformBuffer, "diffuse");
  106859. }
  106860. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  106861. this._uniformBuffer.updateMatrix("reflectionMatrix", reflectionTexture.getReflectionTextureMatrix());
  106862. this._uniformBuffer.updateFloat2("vReflectionInfos", reflectionTexture.level, this._reflectionBlur);
  106863. this._uniformBuffer.updateFloat3("vReflectionMicrosurfaceInfos", reflectionTexture.getSize().width, reflectionTexture.lodGenerationScale, reflectionTexture.lodGenerationOffset);
  106864. }
  106865. }
  106866. if (this.shadowLevel > 0) {
  106867. this._uniformBuffer.updateFloat("shadowLevel", this.shadowLevel);
  106868. }
  106869. this._uniformBuffer.updateFloat("alpha", this.alpha);
  106870. // Point size
  106871. if (this.pointsCloud) {
  106872. this._uniformBuffer.updateFloat("pointSize", this.pointSize);
  106873. }
  106874. if (defines.USEHIGHLIGHTANDSHADOWCOLORS) {
  106875. this._uniformBuffer.updateColor4("vPrimaryColor", this._primaryHighlightColor, 1.0);
  106876. this._uniformBuffer.updateColor4("vPrimaryColorShadow", this._primaryShadowColor, 1.0);
  106877. }
  106878. else {
  106879. this._uniformBuffer.updateColor4("vPrimaryColor", this._primaryColor, 1.0);
  106880. }
  106881. }
  106882. this._uniformBuffer.updateFloat("fFovMultiplier", this._fovMultiplier);
  106883. // Textures
  106884. if (scene.texturesEnabled) {
  106885. if (this._diffuseTexture && BABYLON.StandardMaterial.DiffuseTextureEnabled) {
  106886. this._uniformBuffer.setTexture("diffuseSampler", this._diffuseTexture);
  106887. }
  106888. if (reflectionTexture && BABYLON.StandardMaterial.ReflectionTextureEnabled) {
  106889. if (defines.REFLECTIONBLUR && defines.TEXTURELODSUPPORT) {
  106890. this._uniformBuffer.setTexture("reflectionSampler", reflectionTexture);
  106891. }
  106892. else if (!defines.REFLECTIONBLUR) {
  106893. this._uniformBuffer.setTexture("reflectionSampler", reflectionTexture);
  106894. }
  106895. else {
  106896. this._uniformBuffer.setTexture("reflectionSampler", reflectionTexture._lodTextureMid || reflectionTexture);
  106897. this._uniformBuffer.setTexture("reflectionSamplerLow", reflectionTexture._lodTextureLow || reflectionTexture);
  106898. this._uniformBuffer.setTexture("reflectionSamplerHigh", reflectionTexture._lodTextureHigh || reflectionTexture);
  106899. }
  106900. if (defines.REFLECTIONFRESNEL) {
  106901. this._uniformBuffer.updateFloat3("vBackgroundCenter", this.sceneCenter.x, this.sceneCenter.y, this.sceneCenter.z);
  106902. this._uniformBuffer.updateFloat4("vReflectionControl", this._reflectionControls.x, this._reflectionControls.y, this._reflectionControls.z, this._reflectionControls.w);
  106903. }
  106904. }
  106905. }
  106906. // Clip plane
  106907. BABYLON.MaterialHelper.BindClipPlane(this._activeEffect, scene);
  106908. BABYLON.MaterialHelper.BindEyePosition(effect, scene);
  106909. }
  106910. if (mustRebind || !this.isFrozen) {
  106911. if (scene.lightsEnabled) {
  106912. BABYLON.MaterialHelper.BindLights(scene, mesh, this._activeEffect, defines, this._maxSimultaneousLights, false);
  106913. }
  106914. // View
  106915. this.bindView(effect);
  106916. // Fog
  106917. BABYLON.MaterialHelper.BindFogParameters(scene, mesh, this._activeEffect);
  106918. // image processing
  106919. if (this._imageProcessingConfiguration) {
  106920. this._imageProcessingConfiguration.bind(this._activeEffect);
  106921. }
  106922. }
  106923. this._uniformBuffer.update();
  106924. this._afterBind(mesh, this._activeEffect);
  106925. };
  106926. /**
  106927. * Dispose the material.
  106928. * @param forceDisposeEffect Force disposal of the associated effect.
  106929. * @param forceDisposeTextures Force disposal of the associated textures.
  106930. */
  106931. BackgroundMaterial.prototype.dispose = function (forceDisposeEffect, forceDisposeTextures) {
  106932. if (forceDisposeEffect === void 0) { forceDisposeEffect = false; }
  106933. if (forceDisposeTextures === void 0) { forceDisposeTextures = false; }
  106934. if (forceDisposeTextures) {
  106935. if (this.diffuseTexture) {
  106936. this.diffuseTexture.dispose();
  106937. }
  106938. if (this.reflectionTexture) {
  106939. this.reflectionTexture.dispose();
  106940. }
  106941. }
  106942. this._renderTargets.dispose();
  106943. if (this._imageProcessingConfiguration && this._imageProcessingObserver) {
  106944. this._imageProcessingConfiguration.onUpdateParameters.remove(this._imageProcessingObserver);
  106945. }
  106946. _super.prototype.dispose.call(this, forceDisposeEffect);
  106947. };
  106948. /**
  106949. * Clones the material.
  106950. * @param name The cloned name.
  106951. * @returns The cloned material.
  106952. */
  106953. BackgroundMaterial.prototype.clone = function (name) {
  106954. var _this = this;
  106955. return BABYLON.SerializationHelper.Clone(function () { return new BackgroundMaterial(name, _this.getScene()); }, this);
  106956. };
  106957. /**
  106958. * Serializes the current material to its JSON representation.
  106959. * @returns The JSON representation.
  106960. */
  106961. BackgroundMaterial.prototype.serialize = function () {
  106962. var serializationObject = BABYLON.SerializationHelper.Serialize(this);
  106963. serializationObject.customType = "BABYLON.BackgroundMaterial";
  106964. return serializationObject;
  106965. };
  106966. /**
  106967. * Gets the class name of the material
  106968. * @returns "BackgroundMaterial"
  106969. */
  106970. BackgroundMaterial.prototype.getClassName = function () {
  106971. return "BackgroundMaterial";
  106972. };
  106973. /**
  106974. * Parse a JSON input to create back a background material.
  106975. * @param source The JSON data to parse
  106976. * @param scene The scene to create the parsed material in
  106977. * @param rootUrl The root url of the assets the material depends upon
  106978. * @returns the instantiated BackgroundMaterial.
  106979. */
  106980. BackgroundMaterial.Parse = function (source, scene, rootUrl) {
  106981. return BABYLON.SerializationHelper.Parse(function () { return new BackgroundMaterial(source.name, scene); }, source, scene, rootUrl);
  106982. };
  106983. /**
  106984. * Standard reflectance value at parallel view angle.
  106985. */
  106986. BackgroundMaterial.StandardReflectance0 = 0.05;
  106987. /**
  106988. * Standard reflectance value at grazing angle.
  106989. */
  106990. BackgroundMaterial.StandardReflectance90 = 0.5;
  106991. __decorate([
  106992. BABYLON.serializeAsColor3()
  106993. ], BackgroundMaterial.prototype, "_primaryColor", void 0);
  106994. __decorate([
  106995. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  106996. ], BackgroundMaterial.prototype, "primaryColor", void 0);
  106997. __decorate([
  106998. BABYLON.serializeAsColor3()
  106999. ], BackgroundMaterial.prototype, "__perceptualColor", void 0);
  107000. __decorate([
  107001. BABYLON.serialize()
  107002. ], BackgroundMaterial.prototype, "_primaryColorShadowLevel", void 0);
  107003. __decorate([
  107004. BABYLON.serialize()
  107005. ], BackgroundMaterial.prototype, "_primaryColorHighlightLevel", void 0);
  107006. __decorate([
  107007. BABYLON.expandToProperty("_markAllSubMeshesAsLightsDirty")
  107008. ], BackgroundMaterial.prototype, "primaryColorHighlightLevel", null);
  107009. __decorate([
  107010. BABYLON.serializeAsTexture()
  107011. ], BackgroundMaterial.prototype, "_reflectionTexture", void 0);
  107012. __decorate([
  107013. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107014. ], BackgroundMaterial.prototype, "reflectionTexture", void 0);
  107015. __decorate([
  107016. BABYLON.serialize()
  107017. ], BackgroundMaterial.prototype, "_reflectionBlur", void 0);
  107018. __decorate([
  107019. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107020. ], BackgroundMaterial.prototype, "reflectionBlur", void 0);
  107021. __decorate([
  107022. BABYLON.serializeAsTexture()
  107023. ], BackgroundMaterial.prototype, "_diffuseTexture", void 0);
  107024. __decorate([
  107025. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107026. ], BackgroundMaterial.prototype, "diffuseTexture", void 0);
  107027. __decorate([
  107028. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107029. ], BackgroundMaterial.prototype, "shadowLights", void 0);
  107030. __decorate([
  107031. BABYLON.serialize()
  107032. ], BackgroundMaterial.prototype, "_shadowLevel", void 0);
  107033. __decorate([
  107034. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107035. ], BackgroundMaterial.prototype, "shadowLevel", void 0);
  107036. __decorate([
  107037. BABYLON.serializeAsVector3()
  107038. ], BackgroundMaterial.prototype, "_sceneCenter", void 0);
  107039. __decorate([
  107040. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107041. ], BackgroundMaterial.prototype, "sceneCenter", void 0);
  107042. __decorate([
  107043. BABYLON.serialize()
  107044. ], BackgroundMaterial.prototype, "_opacityFresnel", void 0);
  107045. __decorate([
  107046. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107047. ], BackgroundMaterial.prototype, "opacityFresnel", void 0);
  107048. __decorate([
  107049. BABYLON.serialize()
  107050. ], BackgroundMaterial.prototype, "_reflectionFresnel", void 0);
  107051. __decorate([
  107052. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107053. ], BackgroundMaterial.prototype, "reflectionFresnel", void 0);
  107054. __decorate([
  107055. BABYLON.serialize()
  107056. ], BackgroundMaterial.prototype, "_reflectionFalloffDistance", void 0);
  107057. __decorate([
  107058. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107059. ], BackgroundMaterial.prototype, "reflectionFalloffDistance", void 0);
  107060. __decorate([
  107061. BABYLON.serialize()
  107062. ], BackgroundMaterial.prototype, "_reflectionAmount", void 0);
  107063. __decorate([
  107064. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107065. ], BackgroundMaterial.prototype, "reflectionAmount", void 0);
  107066. __decorate([
  107067. BABYLON.serialize()
  107068. ], BackgroundMaterial.prototype, "_reflectionReflectance0", void 0);
  107069. __decorate([
  107070. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107071. ], BackgroundMaterial.prototype, "reflectionReflectance0", void 0);
  107072. __decorate([
  107073. BABYLON.serialize()
  107074. ], BackgroundMaterial.prototype, "_reflectionReflectance90", void 0);
  107075. __decorate([
  107076. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107077. ], BackgroundMaterial.prototype, "reflectionReflectance90", void 0);
  107078. __decorate([
  107079. BABYLON.serialize()
  107080. ], BackgroundMaterial.prototype, "_useRGBColor", void 0);
  107081. __decorate([
  107082. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107083. ], BackgroundMaterial.prototype, "useRGBColor", void 0);
  107084. __decorate([
  107085. BABYLON.serialize()
  107086. ], BackgroundMaterial.prototype, "_enableNoise", void 0);
  107087. __decorate([
  107088. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107089. ], BackgroundMaterial.prototype, "enableNoise", void 0);
  107090. __decorate([
  107091. BABYLON.serialize()
  107092. ], BackgroundMaterial.prototype, "_maxSimultaneousLights", void 0);
  107093. __decorate([
  107094. BABYLON.expandToProperty("_markAllSubMeshesAsTexturesDirty")
  107095. ], BackgroundMaterial.prototype, "maxSimultaneousLights", void 0);
  107096. __decorate([
  107097. BABYLON.serializeAsImageProcessingConfiguration()
  107098. ], BackgroundMaterial.prototype, "_imageProcessingConfiguration", void 0);
  107099. return BackgroundMaterial;
  107100. }(BABYLON.PushMaterial));
  107101. BABYLON.BackgroundMaterial = BackgroundMaterial;
  107102. })(BABYLON || (BABYLON = {}));
  107103. //# sourceMappingURL=babylon.backgroundMaterial.js.map
  107104. var __assign = (this && this.__assign) || function () {
  107105. __assign = Object.assign || function(t) {
  107106. for (var s, i = 1, n = arguments.length; i < n; i++) {
  107107. s = arguments[i];
  107108. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  107109. t[p] = s[p];
  107110. }
  107111. return t;
  107112. };
  107113. return __assign.apply(this, arguments);
  107114. };
  107115. var BABYLON;
  107116. (function (BABYLON) {
  107117. /**
  107118. * The Environment helper class can be used to add a fully featuread none expensive background to your scene.
  107119. * It includes by default a skybox and a ground relying on the BackgroundMaterial.
  107120. * It also helps with the default setup of your imageProcessing configuration.
  107121. */
  107122. var EnvironmentHelper = /** @class */ (function () {
  107123. /**
  107124. * constructor
  107125. * @param options
  107126. * @param scene The scene to add the material to
  107127. */
  107128. function EnvironmentHelper(options, scene) {
  107129. var _this = this;
  107130. this._errorHandler = function (message, exception) {
  107131. _this.onErrorObservable.notifyObservers({ message: message, exception: exception });
  107132. };
  107133. this._options = __assign({}, EnvironmentHelper._getDefaultOptions(), options);
  107134. this._scene = scene;
  107135. this.onErrorObservable = new BABYLON.Observable();
  107136. this._setupBackground();
  107137. this._setupImageProcessing();
  107138. }
  107139. /**
  107140. * Creates the default options for the helper.
  107141. */
  107142. EnvironmentHelper._getDefaultOptions = function () {
  107143. return {
  107144. createGround: true,
  107145. groundSize: 15,
  107146. groundTexture: this._groundTextureCDNUrl,
  107147. groundColor: new BABYLON.Color3(0.2, 0.2, 0.3).toLinearSpace().scale(3),
  107148. groundOpacity: 0.9,
  107149. enableGroundShadow: true,
  107150. groundShadowLevel: 0.5,
  107151. enableGroundMirror: false,
  107152. groundMirrorSizeRatio: 0.3,
  107153. groundMirrorBlurKernel: 64,
  107154. groundMirrorAmount: 1,
  107155. groundMirrorFresnelWeight: 1,
  107156. groundMirrorFallOffDistance: 0,
  107157. groundMirrorTextureType: BABYLON.Engine.TEXTURETYPE_UNSIGNED_INT,
  107158. groundYBias: 0.00001,
  107159. createSkybox: true,
  107160. skyboxSize: 20,
  107161. skyboxTexture: this._skyboxTextureCDNUrl,
  107162. skyboxColor: new BABYLON.Color3(0.2, 0.2, 0.3).toLinearSpace().scale(3),
  107163. backgroundYRotation: 0,
  107164. sizeAuto: true,
  107165. rootPosition: BABYLON.Vector3.Zero(),
  107166. setupImageProcessing: true,
  107167. environmentTexture: this._environmentTextureCDNUrl,
  107168. cameraExposure: 0.8,
  107169. cameraContrast: 1.2,
  107170. toneMappingEnabled: true,
  107171. };
  107172. };
  107173. Object.defineProperty(EnvironmentHelper.prototype, "rootMesh", {
  107174. /**
  107175. * Gets the root mesh created by the helper.
  107176. */
  107177. get: function () {
  107178. return this._rootMesh;
  107179. },
  107180. enumerable: true,
  107181. configurable: true
  107182. });
  107183. Object.defineProperty(EnvironmentHelper.prototype, "skybox", {
  107184. /**
  107185. * Gets the skybox created by the helper.
  107186. */
  107187. get: function () {
  107188. return this._skybox;
  107189. },
  107190. enumerable: true,
  107191. configurable: true
  107192. });
  107193. Object.defineProperty(EnvironmentHelper.prototype, "skyboxTexture", {
  107194. /**
  107195. * Gets the skybox texture created by the helper.
  107196. */
  107197. get: function () {
  107198. return this._skyboxTexture;
  107199. },
  107200. enumerable: true,
  107201. configurable: true
  107202. });
  107203. Object.defineProperty(EnvironmentHelper.prototype, "skyboxMaterial", {
  107204. /**
  107205. * Gets the skybox material created by the helper.
  107206. */
  107207. get: function () {
  107208. return this._skyboxMaterial;
  107209. },
  107210. enumerable: true,
  107211. configurable: true
  107212. });
  107213. Object.defineProperty(EnvironmentHelper.prototype, "ground", {
  107214. /**
  107215. * Gets the ground mesh created by the helper.
  107216. */
  107217. get: function () {
  107218. return this._ground;
  107219. },
  107220. enumerable: true,
  107221. configurable: true
  107222. });
  107223. Object.defineProperty(EnvironmentHelper.prototype, "groundTexture", {
  107224. /**
  107225. * Gets the ground texture created by the helper.
  107226. */
  107227. get: function () {
  107228. return this._groundTexture;
  107229. },
  107230. enumerable: true,
  107231. configurable: true
  107232. });
  107233. Object.defineProperty(EnvironmentHelper.prototype, "groundMirror", {
  107234. /**
  107235. * Gets the ground mirror created by the helper.
  107236. */
  107237. get: function () {
  107238. return this._groundMirror;
  107239. },
  107240. enumerable: true,
  107241. configurable: true
  107242. });
  107243. Object.defineProperty(EnvironmentHelper.prototype, "groundMirrorRenderList", {
  107244. /**
  107245. * Gets the ground mirror render list to helps pushing the meshes
  107246. * you wish in the ground reflection.
  107247. */
  107248. get: function () {
  107249. if (this._groundMirror) {
  107250. return this._groundMirror.renderList;
  107251. }
  107252. return null;
  107253. },
  107254. enumerable: true,
  107255. configurable: true
  107256. });
  107257. Object.defineProperty(EnvironmentHelper.prototype, "groundMaterial", {
  107258. /**
  107259. * Gets the ground material created by the helper.
  107260. */
  107261. get: function () {
  107262. return this._groundMaterial;
  107263. },
  107264. enumerable: true,
  107265. configurable: true
  107266. });
  107267. /**
  107268. * Updates the background according to the new options
  107269. * @param options
  107270. */
  107271. EnvironmentHelper.prototype.updateOptions = function (options) {
  107272. var newOptions = __assign({}, this._options, options);
  107273. if (this._ground && !newOptions.createGround) {
  107274. this._ground.dispose();
  107275. this._ground = null;
  107276. }
  107277. if (this._groundMaterial && !newOptions.createGround) {
  107278. this._groundMaterial.dispose();
  107279. this._groundMaterial = null;
  107280. }
  107281. if (this._groundTexture) {
  107282. if (this._options.groundTexture != newOptions.groundTexture) {
  107283. this._groundTexture.dispose();
  107284. this._groundTexture = null;
  107285. }
  107286. }
  107287. if (this._skybox && !newOptions.createSkybox) {
  107288. this._skybox.dispose();
  107289. this._skybox = null;
  107290. }
  107291. if (this._skyboxMaterial && !newOptions.createSkybox) {
  107292. this._skyboxMaterial.dispose();
  107293. this._skyboxMaterial = null;
  107294. }
  107295. if (this._skyboxTexture) {
  107296. if (this._options.skyboxTexture != newOptions.skyboxTexture) {
  107297. this._skyboxTexture.dispose();
  107298. this._skyboxTexture = null;
  107299. }
  107300. }
  107301. if (this._groundMirror && !newOptions.enableGroundMirror) {
  107302. this._groundMirror.dispose();
  107303. this._groundMirror = null;
  107304. }
  107305. if (this._scene.environmentTexture) {
  107306. if (this._options.environmentTexture != newOptions.environmentTexture) {
  107307. this._scene.environmentTexture.dispose();
  107308. }
  107309. }
  107310. this._options = newOptions;
  107311. this._setupBackground();
  107312. this._setupImageProcessing();
  107313. };
  107314. /**
  107315. * Sets the primary color of all the available elements.
  107316. * @param color the main color to affect to the ground and the background
  107317. */
  107318. EnvironmentHelper.prototype.setMainColor = function (color) {
  107319. if (this.groundMaterial) {
  107320. this.groundMaterial.primaryColor = color;
  107321. }
  107322. if (this.skyboxMaterial) {
  107323. this.skyboxMaterial.primaryColor = color;
  107324. }
  107325. if (this.groundMirror) {
  107326. this.groundMirror.clearColor = new BABYLON.Color4(color.r, color.g, color.b, 1.0);
  107327. }
  107328. };
  107329. /**
  107330. * Setup the image processing according to the specified options.
  107331. */
  107332. EnvironmentHelper.prototype._setupImageProcessing = function () {
  107333. if (this._options.setupImageProcessing) {
  107334. this._scene.imageProcessingConfiguration.contrast = this._options.cameraContrast;
  107335. this._scene.imageProcessingConfiguration.exposure = this._options.cameraExposure;
  107336. this._scene.imageProcessingConfiguration.toneMappingEnabled = this._options.toneMappingEnabled;
  107337. this._setupEnvironmentTexture();
  107338. }
  107339. };
  107340. /**
  107341. * Setup the environment texture according to the specified options.
  107342. */
  107343. EnvironmentHelper.prototype._setupEnvironmentTexture = function () {
  107344. if (this._scene.environmentTexture) {
  107345. return;
  107346. }
  107347. if (this._options.environmentTexture instanceof BABYLON.BaseTexture) {
  107348. this._scene.environmentTexture = this._options.environmentTexture;
  107349. return;
  107350. }
  107351. var environmentTexture = BABYLON.CubeTexture.CreateFromPrefilteredData(this._options.environmentTexture, this._scene);
  107352. this._scene.environmentTexture = environmentTexture;
  107353. };
  107354. /**
  107355. * Setup the background according to the specified options.
  107356. */
  107357. EnvironmentHelper.prototype._setupBackground = function () {
  107358. if (!this._rootMesh) {
  107359. this._rootMesh = new BABYLON.Mesh("BackgroundHelper", this._scene);
  107360. }
  107361. this._rootMesh.rotation.y = this._options.backgroundYRotation;
  107362. var sceneSize = this._getSceneSize();
  107363. if (this._options.createGround) {
  107364. this._setupGround(sceneSize);
  107365. this._setupGroundMaterial();
  107366. this._setupGroundDiffuseTexture();
  107367. if (this._options.enableGroundMirror) {
  107368. this._setupGroundMirrorTexture(sceneSize);
  107369. }
  107370. this._setupMirrorInGroundMaterial();
  107371. }
  107372. if (this._options.createSkybox) {
  107373. this._setupSkybox(sceneSize);
  107374. this._setupSkyboxMaterial();
  107375. this._setupSkyboxReflectionTexture();
  107376. }
  107377. this._rootMesh.position.x = sceneSize.rootPosition.x;
  107378. this._rootMesh.position.z = sceneSize.rootPosition.z;
  107379. this._rootMesh.position.y = sceneSize.rootPosition.y;
  107380. };
  107381. /**
  107382. * Get the scene sizes according to the setup.
  107383. */
  107384. EnvironmentHelper.prototype._getSceneSize = function () {
  107385. var _this = this;
  107386. var groundSize = this._options.groundSize;
  107387. var skyboxSize = this._options.skyboxSize;
  107388. var rootPosition = this._options.rootPosition;
  107389. if (!this._scene.meshes || this._scene.meshes.length === 1) { // 1 only means the root of the helper.
  107390. return { groundSize: groundSize, skyboxSize: skyboxSize, rootPosition: rootPosition };
  107391. }
  107392. var sceneExtends = this._scene.getWorldExtends(function (mesh) {
  107393. return (mesh !== _this._ground && mesh !== _this._rootMesh && mesh !== _this._skybox);
  107394. });
  107395. var sceneDiagonal = sceneExtends.max.subtract(sceneExtends.min);
  107396. if (this._options.sizeAuto) {
  107397. if (this._scene.activeCamera instanceof BABYLON.ArcRotateCamera &&
  107398. this._scene.activeCamera.upperRadiusLimit) {
  107399. groundSize = this._scene.activeCamera.upperRadiusLimit * 2;
  107400. skyboxSize = groundSize;
  107401. }
  107402. var sceneDiagonalLenght = sceneDiagonal.length();
  107403. if (sceneDiagonalLenght > groundSize) {
  107404. groundSize = sceneDiagonalLenght * 2;
  107405. skyboxSize = groundSize;
  107406. }
  107407. // 10 % bigger.
  107408. groundSize *= 1.1;
  107409. skyboxSize *= 1.5;
  107410. rootPosition = sceneExtends.min.add(sceneDiagonal.scale(0.5));
  107411. rootPosition.y = sceneExtends.min.y - this._options.groundYBias;
  107412. }
  107413. return { groundSize: groundSize, skyboxSize: skyboxSize, rootPosition: rootPosition };
  107414. };
  107415. /**
  107416. * Setup the ground according to the specified options.
  107417. */
  107418. EnvironmentHelper.prototype._setupGround = function (sceneSize) {
  107419. var _this = this;
  107420. if (!this._ground || this._ground.isDisposed()) {
  107421. this._ground = BABYLON.Mesh.CreatePlane("BackgroundPlane", sceneSize.groundSize, this._scene);
  107422. this._ground.rotation.x = Math.PI / 2; // Face up by default.
  107423. this._ground.parent = this._rootMesh;
  107424. this._ground.onDisposeObservable.add(function () { _this._ground = null; });
  107425. }
  107426. this._ground.receiveShadows = this._options.enableGroundShadow;
  107427. };
  107428. /**
  107429. * Setup the ground material according to the specified options.
  107430. */
  107431. EnvironmentHelper.prototype._setupGroundMaterial = function () {
  107432. if (!this._groundMaterial) {
  107433. this._groundMaterial = new BABYLON.BackgroundMaterial("BackgroundPlaneMaterial", this._scene);
  107434. }
  107435. this._groundMaterial.alpha = this._options.groundOpacity;
  107436. this._groundMaterial.alphaMode = BABYLON.Engine.ALPHA_PREMULTIPLIED_PORTERDUFF;
  107437. this._groundMaterial.shadowLevel = this._options.groundShadowLevel;
  107438. this._groundMaterial.primaryColor = this._options.groundColor;
  107439. this._groundMaterial.useRGBColor = false;
  107440. this._groundMaterial.enableNoise = true;
  107441. if (this._ground) {
  107442. this._ground.material = this._groundMaterial;
  107443. }
  107444. };
  107445. /**
  107446. * Setup the ground diffuse texture according to the specified options.
  107447. */
  107448. EnvironmentHelper.prototype._setupGroundDiffuseTexture = function () {
  107449. if (!this._groundMaterial) {
  107450. return;
  107451. }
  107452. if (this._groundTexture) {
  107453. return;
  107454. }
  107455. if (this._options.groundTexture instanceof BABYLON.BaseTexture) {
  107456. this._groundMaterial.diffuseTexture = this._options.groundTexture;
  107457. return;
  107458. }
  107459. var diffuseTexture = new BABYLON.Texture(this._options.groundTexture, this._scene, undefined, undefined, undefined, undefined, this._errorHandler);
  107460. diffuseTexture.gammaSpace = false;
  107461. diffuseTexture.hasAlpha = true;
  107462. this._groundMaterial.diffuseTexture = diffuseTexture;
  107463. };
  107464. /**
  107465. * Setup the ground mirror texture according to the specified options.
  107466. */
  107467. EnvironmentHelper.prototype._setupGroundMirrorTexture = function (sceneSize) {
  107468. var wrapping = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107469. if (!this._groundMirror) {
  107470. this._groundMirror = new BABYLON.MirrorTexture("BackgroundPlaneMirrorTexture", { ratio: this._options.groundMirrorSizeRatio }, this._scene, false, this._options.groundMirrorTextureType, BABYLON.Texture.BILINEAR_SAMPLINGMODE, true);
  107471. this._groundMirror.mirrorPlane = new BABYLON.Plane(0, -1, 0, sceneSize.rootPosition.y);
  107472. this._groundMirror.anisotropicFilteringLevel = 1;
  107473. this._groundMirror.wrapU = wrapping;
  107474. this._groundMirror.wrapV = wrapping;
  107475. this._groundMirror.gammaSpace = false;
  107476. if (this._groundMirror.renderList) {
  107477. for (var i = 0; i < this._scene.meshes.length; i++) {
  107478. var mesh = this._scene.meshes[i];
  107479. if (mesh !== this._ground &&
  107480. mesh !== this._skybox &&
  107481. mesh !== this._rootMesh) {
  107482. this._groundMirror.renderList.push(mesh);
  107483. }
  107484. }
  107485. }
  107486. }
  107487. this._groundMirror.clearColor = new BABYLON.Color4(this._options.groundColor.r, this._options.groundColor.g, this._options.groundColor.b, 1);
  107488. this._groundMirror.adaptiveBlurKernel = this._options.groundMirrorBlurKernel;
  107489. };
  107490. /**
  107491. * Setup the ground to receive the mirror texture.
  107492. */
  107493. EnvironmentHelper.prototype._setupMirrorInGroundMaterial = function () {
  107494. if (this._groundMaterial) {
  107495. this._groundMaterial.reflectionTexture = this._groundMirror;
  107496. this._groundMaterial.reflectionFresnel = true;
  107497. this._groundMaterial.reflectionAmount = this._options.groundMirrorAmount;
  107498. this._groundMaterial.reflectionStandardFresnelWeight = this._options.groundMirrorFresnelWeight;
  107499. this._groundMaterial.reflectionFalloffDistance = this._options.groundMirrorFallOffDistance;
  107500. }
  107501. };
  107502. /**
  107503. * Setup the skybox according to the specified options.
  107504. */
  107505. EnvironmentHelper.prototype._setupSkybox = function (sceneSize) {
  107506. var _this = this;
  107507. if (!this._skybox || this._skybox.isDisposed()) {
  107508. this._skybox = BABYLON.Mesh.CreateBox("BackgroundSkybox", sceneSize.skyboxSize, this._scene, undefined, BABYLON.Mesh.BACKSIDE);
  107509. this._skybox.onDisposeObservable.add(function () { _this._skybox = null; });
  107510. }
  107511. this._skybox.parent = this._rootMesh;
  107512. };
  107513. /**
  107514. * Setup the skybox material according to the specified options.
  107515. */
  107516. EnvironmentHelper.prototype._setupSkyboxMaterial = function () {
  107517. if (!this._skybox) {
  107518. return;
  107519. }
  107520. if (!this._skyboxMaterial) {
  107521. this._skyboxMaterial = new BABYLON.BackgroundMaterial("BackgroundSkyboxMaterial", this._scene);
  107522. }
  107523. this._skyboxMaterial.useRGBColor = false;
  107524. this._skyboxMaterial.primaryColor = this._options.skyboxColor;
  107525. this._skyboxMaterial.enableNoise = true;
  107526. this._skybox.material = this._skyboxMaterial;
  107527. };
  107528. /**
  107529. * Setup the skybox reflection texture according to the specified options.
  107530. */
  107531. EnvironmentHelper.prototype._setupSkyboxReflectionTexture = function () {
  107532. if (!this._skyboxMaterial) {
  107533. return;
  107534. }
  107535. if (this._skyboxTexture) {
  107536. return;
  107537. }
  107538. if (this._options.skyboxTexture instanceof BABYLON.BaseTexture) {
  107539. this._skyboxMaterial.reflectionTexture = this._options.skyboxTexture;
  107540. return;
  107541. }
  107542. this._skyboxTexture = new BABYLON.CubeTexture(this._options.skyboxTexture, this._scene, undefined, undefined, undefined, undefined, this._errorHandler);
  107543. this._skyboxTexture.coordinatesMode = BABYLON.Texture.SKYBOX_MODE;
  107544. this._skyboxTexture.gammaSpace = false;
  107545. this._skyboxMaterial.reflectionTexture = this._skyboxTexture;
  107546. };
  107547. /**
  107548. * Dispose all the elements created by the Helper.
  107549. */
  107550. EnvironmentHelper.prototype.dispose = function () {
  107551. if (this._groundMaterial) {
  107552. this._groundMaterial.dispose(true, true);
  107553. }
  107554. if (this._skyboxMaterial) {
  107555. this._skyboxMaterial.dispose(true, true);
  107556. }
  107557. this._rootMesh.dispose(false);
  107558. };
  107559. /**
  107560. * Default ground texture URL.
  107561. */
  107562. EnvironmentHelper._groundTextureCDNUrl = "https://assets.babylonjs.com/environments/backgroundGround.png";
  107563. /**
  107564. * Default skybox texture URL.
  107565. */
  107566. EnvironmentHelper._skyboxTextureCDNUrl = "https://assets.babylonjs.com/environments/backgroundSkybox.dds";
  107567. /**
  107568. * Default environment texture URL.
  107569. */
  107570. EnvironmentHelper._environmentTextureCDNUrl = "https://assets.babylonjs.com/environments/environmentSpecular.env";
  107571. return EnvironmentHelper;
  107572. }());
  107573. BABYLON.EnvironmentHelper = EnvironmentHelper;
  107574. })(BABYLON || (BABYLON = {}));
  107575. //# sourceMappingURL=babylon.environmentHelper.js.map
  107576. var BABYLON;
  107577. (function (BABYLON) {
  107578. /** Internal class used to store shapes for emitters */
  107579. var ParticleSystemSetEmitterCreationOptions = /** @class */ (function () {
  107580. function ParticleSystemSetEmitterCreationOptions() {
  107581. }
  107582. return ParticleSystemSetEmitterCreationOptions;
  107583. }());
  107584. /**
  107585. * Represents a set of particle systems working together to create a specific effect
  107586. */
  107587. var ParticleSystemSet = /** @class */ (function () {
  107588. function ParticleSystemSet() {
  107589. /**
  107590. * Gets the particle system list
  107591. */
  107592. this.systems = new Array();
  107593. }
  107594. Object.defineProperty(ParticleSystemSet.prototype, "emitterNode", {
  107595. /**
  107596. * Gets the emitter node used with this set
  107597. */
  107598. get: function () {
  107599. return this._emitterNode;
  107600. },
  107601. enumerable: true,
  107602. configurable: true
  107603. });
  107604. /**
  107605. * Creates a new emitter mesh as a sphere
  107606. * @param options defines the options used to create the sphere
  107607. * @param renderingGroupId defines the renderingGroupId to use for the sphere
  107608. * @param scene defines the hosting scene
  107609. */
  107610. ParticleSystemSet.prototype.setEmitterAsSphere = function (options, renderingGroupId, scene) {
  107611. if (this._emitterNode) {
  107612. this._emitterNode.dispose();
  107613. }
  107614. this._emitterCreationOptions = {
  107615. kind: "Sphere",
  107616. options: options,
  107617. renderingGroupId: renderingGroupId
  107618. };
  107619. var emitterMesh = BABYLON.MeshBuilder.CreateSphere("emitterSphere", { diameter: options.diameter, segments: options.segments }, scene);
  107620. emitterMesh.renderingGroupId = renderingGroupId;
  107621. var material = new BABYLON.StandardMaterial("emitterSphereMaterial", scene);
  107622. material.emissiveColor = options.color;
  107623. emitterMesh.material = material;
  107624. for (var _i = 0, _a = this.systems; _i < _a.length; _i++) {
  107625. var system = _a[_i];
  107626. system.emitter = emitterMesh;
  107627. }
  107628. this._emitterNode = emitterMesh;
  107629. };
  107630. /**
  107631. * Starts all particle systems of the set
  107632. * @param emitter defines an optional mesh to use as emitter for the particle systems
  107633. */
  107634. ParticleSystemSet.prototype.start = function (emitter) {
  107635. for (var _i = 0, _a = this.systems; _i < _a.length; _i++) {
  107636. var system = _a[_i];
  107637. if (emitter) {
  107638. system.emitter = emitter;
  107639. }
  107640. system.start();
  107641. }
  107642. };
  107643. /**
  107644. * Release all associated resources
  107645. */
  107646. ParticleSystemSet.prototype.dispose = function () {
  107647. for (var _i = 0, _a = this.systems; _i < _a.length; _i++) {
  107648. var system = _a[_i];
  107649. system.dispose();
  107650. }
  107651. this.systems = [];
  107652. if (this._emitterNode) {
  107653. this._emitterNode.dispose();
  107654. this._emitterNode = null;
  107655. }
  107656. };
  107657. /**
  107658. * Serialize the set into a JSON compatible object
  107659. * @returns a JSON compatible representation of the set
  107660. */
  107661. ParticleSystemSet.prototype.serialize = function () {
  107662. var result = {};
  107663. result.systems = [];
  107664. for (var _i = 0, _a = this.systems; _i < _a.length; _i++) {
  107665. var system = _a[_i];
  107666. result.systems.push(system.serialize());
  107667. }
  107668. if (this._emitterNode) {
  107669. result.emitter = this._emitterCreationOptions;
  107670. }
  107671. return result;
  107672. };
  107673. /**
  107674. * Parse a new ParticleSystemSet from a serialized source
  107675. * @param data defines a JSON compatible representation of the set
  107676. * @param scene defines the hosting scene
  107677. * @param gpu defines if we want GPU particles or CPU particles
  107678. * @returns a new ParticleSystemSet
  107679. */
  107680. ParticleSystemSet.Parse = function (data, scene, gpu) {
  107681. if (gpu === void 0) { gpu = false; }
  107682. var result = new ParticleSystemSet();
  107683. var rootUrl = BABYLON.ParticleHelper.BaseAssetsUrl + "/textures/";
  107684. scene = scene || BABYLON.Engine.LastCreatedScene;
  107685. for (var _i = 0, _a = data.systems; _i < _a.length; _i++) {
  107686. var system = _a[_i];
  107687. result.systems.push(gpu ? BABYLON.GPUParticleSystem.Parse(system, scene, rootUrl) : BABYLON.ParticleSystem.Parse(system, scene, rootUrl));
  107688. }
  107689. if (data.emitter) {
  107690. var options = data.emitter.options;
  107691. switch (data.emitter.kind) {
  107692. case "Sphere":
  107693. result.setEmitterAsSphere({
  107694. diameter: options.diameter,
  107695. segments: options.segments,
  107696. color: BABYLON.Color3.FromArray(options.color)
  107697. }, data.emitter.renderingGroupId, scene);
  107698. break;
  107699. }
  107700. }
  107701. return result;
  107702. };
  107703. return ParticleSystemSet;
  107704. }());
  107705. BABYLON.ParticleSystemSet = ParticleSystemSet;
  107706. })(BABYLON || (BABYLON = {}));
  107707. //# sourceMappingURL=babylon.particleSystemSet.js.map
  107708. var BABYLON;
  107709. (function (BABYLON) {
  107710. /**
  107711. * This class is made for on one-liner static method to help creating particle system set.
  107712. */
  107713. var ParticleHelper = /** @class */ (function () {
  107714. function ParticleHelper() {
  107715. }
  107716. /**
  107717. * Create a default particle system that you can tweak
  107718. * @param emitter defines the emitter to use
  107719. * @param capacity defines the system capacity (default is 500 particles)
  107720. * @param scene defines the hosting scene
  107721. * @param useGPU defines if a GPUParticleSystem must be created (default is false)
  107722. * @returns the new Particle system
  107723. */
  107724. ParticleHelper.CreateDefault = function (emitter, capacity, scene, useGPU) {
  107725. if (capacity === void 0) { capacity = 500; }
  107726. if (useGPU === void 0) { useGPU = false; }
  107727. var system;
  107728. if (useGPU) {
  107729. system = new BABYLON.GPUParticleSystem("default system", { capacity: capacity }, scene);
  107730. }
  107731. else {
  107732. system = new BABYLON.ParticleSystem("default system", capacity, scene);
  107733. }
  107734. system.emitter = emitter;
  107735. system.particleTexture = new BABYLON.Texture("https://www.babylonjs.com/assets/Flare.png", system.getScene());
  107736. system.createConeEmitter(0.1, Math.PI / 4);
  107737. // Particle color
  107738. system.color1 = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  107739. system.color2 = new BABYLON.Color4(1.0, 1.0, 1.0, 1.0);
  107740. system.colorDead = new BABYLON.Color4(1.0, 1.0, 1.0, 0.0);
  107741. // Particle Size
  107742. system.minSize = 0.1;
  107743. system.maxSize = 0.1;
  107744. // Emission speed
  107745. system.minEmitPower = 2;
  107746. system.maxEmitPower = 2;
  107747. // Update speed
  107748. system.updateSpeed = 1 / 60;
  107749. system.emitRate = 30;
  107750. return system;
  107751. };
  107752. /**
  107753. * This is the main static method (one-liner) of this helper to create different particle systems
  107754. * @param type This string represents the type to the particle system to create
  107755. * @param scene The scene where the particle system should live
  107756. * @param gpu If the system will use gpu
  107757. * @returns the ParticleSystemSet created
  107758. */
  107759. ParticleHelper.CreateAsync = function (type, scene, gpu) {
  107760. if (gpu === void 0) { gpu = false; }
  107761. if (!scene) {
  107762. scene = BABYLON.Engine.LastCreatedScene;
  107763. ;
  107764. }
  107765. var token = {};
  107766. scene._addPendingData(token);
  107767. return new Promise(function (resolve, reject) {
  107768. if (gpu && !BABYLON.GPUParticleSystem.IsSupported) {
  107769. scene._removePendingData(token);
  107770. return reject("Particle system with GPU is not supported.");
  107771. }
  107772. BABYLON.Tools.LoadFile(ParticleHelper.BaseAssetsUrl + "/systems/" + type + ".json", function (data, response) {
  107773. scene._removePendingData(token);
  107774. var newData = JSON.parse(data.toString());
  107775. return resolve(BABYLON.ParticleSystemSet.Parse(newData, scene, gpu));
  107776. }, undefined, undefined, undefined, function (req, exception) {
  107777. scene._removePendingData(token);
  107778. return reject("An error occured while the creation of your particle system. Check if your type '" + type + "' exists.");
  107779. });
  107780. });
  107781. };
  107782. /**
  107783. * Static function used to export a particle system to a ParticleSystemSet variable.
  107784. * Please note that the emitter shape is not exported
  107785. * @param system defines the particle systems to export
  107786. */
  107787. ParticleHelper.ExportSet = function (systems) {
  107788. var set = new BABYLON.ParticleSystemSet();
  107789. for (var _i = 0, systems_1 = systems; _i < systems_1.length; _i++) {
  107790. var system = systems_1[_i];
  107791. set.systems.push(system);
  107792. }
  107793. return set;
  107794. };
  107795. /**
  107796. * Gets or sets base Assets URL
  107797. */
  107798. ParticleHelper.BaseAssetsUrl = "https://assets.babylonjs.com/particles";
  107799. return ParticleHelper;
  107800. }());
  107801. BABYLON.ParticleHelper = ParticleHelper;
  107802. })(BABYLON || (BABYLON = {}));
  107803. //# sourceMappingURL=babylon.particleHelper.js.map
  107804. var BABYLON;
  107805. (function (BABYLON) {
  107806. /**
  107807. * Display a 360 degree video on an approximately spherical surface, useful for VR applications or skyboxes.
  107808. * As a subclass of TransformNode, this allow parenting to the camera or multiple videos with different locations in the scene.
  107809. * This class achieves its effect with a VideoTexture and a correctly configured BackgroundMaterial on an inverted sphere.
  107810. * Potential additions to this helper include zoom and and non-infinite distance rendering effects.
  107811. */
  107812. var VideoDome = /** @class */ (function (_super) {
  107813. __extends(VideoDome, _super);
  107814. /**
  107815. * Create an instance of this class and pass through the parameters to the relevant classes, VideoTexture, StandardMaterial, and Mesh.
  107816. * @param name Element's name, child elements will append suffixes for their own names.
  107817. * @param urlsOrVideo defines the url(s) or the video element to use
  107818. * @param options An object containing optional or exposed sub element properties
  107819. */
  107820. function VideoDome(name, urlsOrVideo, options, scene) {
  107821. var _this = _super.call(this, name, scene) || this;
  107822. _this._useDirectMapping = false;
  107823. // set defaults and manage values
  107824. name = name || "videoDome";
  107825. options.resolution = (Math.abs(options.resolution) | 0) || 32;
  107826. options.clickToPlay = Boolean(options.clickToPlay);
  107827. options.autoPlay = options.autoPlay === undefined ? true : Boolean(options.autoPlay);
  107828. options.loop = options.loop === undefined ? true : Boolean(options.loop);
  107829. options.size = Math.abs(options.size) || (scene.activeCamera ? scene.activeCamera.maxZ * 0.48 : 1000);
  107830. if (options.useDirectMapping === undefined) {
  107831. _this._useDirectMapping = true;
  107832. }
  107833. else {
  107834. _this._useDirectMapping = options.useDirectMapping;
  107835. }
  107836. _this._setReady(false);
  107837. // create
  107838. var tempOptions = { loop: options.loop, autoPlay: options.autoPlay, autoUpdateTexture: true, poster: options.poster };
  107839. var material = _this._material = new BABYLON.BackgroundMaterial(name + "_material", scene);
  107840. var texture = _this._videoTexture = new BABYLON.VideoTexture(name + "_texture", urlsOrVideo, scene, false, _this._useDirectMapping, BABYLON.Texture.TRILINEAR_SAMPLINGMODE, tempOptions);
  107841. _this._mesh = BABYLON.Mesh.CreateSphere(name + "_mesh", options.resolution, options.size, scene, false, BABYLON.Mesh.BACKSIDE);
  107842. texture.onLoadObservable.addOnce(function () {
  107843. _this._setReady(true);
  107844. });
  107845. // configure material
  107846. material.useEquirectangularFOV = true;
  107847. material.fovMultiplier = 1.0;
  107848. material.opacityFresnel = false;
  107849. if (_this._useDirectMapping) {
  107850. texture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107851. texture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107852. material.diffuseTexture = texture;
  107853. }
  107854. else {
  107855. texture.coordinatesMode = BABYLON.Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE; // matches orientation
  107856. texture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107857. material.reflectionTexture = texture;
  107858. }
  107859. // configure mesh
  107860. _this._mesh.material = material;
  107861. _this._mesh.parent = _this;
  107862. // optional configuration
  107863. if (options.clickToPlay) {
  107864. scene.onPointerUp = function () {
  107865. _this._videoTexture.video.play();
  107866. };
  107867. }
  107868. return _this;
  107869. }
  107870. Object.defineProperty(VideoDome.prototype, "videoTexture", {
  107871. /**
  107872. * Gets the video texture being displayed on the sphere
  107873. */
  107874. get: function () {
  107875. return this._videoTexture;
  107876. },
  107877. enumerable: true,
  107878. configurable: true
  107879. });
  107880. Object.defineProperty(VideoDome.prototype, "fovMultiplier", {
  107881. /**
  107882. * The current fov(field of view) multiplier, 0.0 - 2.0. Defaults to 1.0. Lower values "zoom in" and higher values "zoom out".
  107883. * Also see the options.resolution property.
  107884. */
  107885. get: function () {
  107886. return this._material.fovMultiplier;
  107887. },
  107888. set: function (value) {
  107889. this._material.fovMultiplier = value;
  107890. },
  107891. enumerable: true,
  107892. configurable: true
  107893. });
  107894. /**
  107895. * Releases resources associated with this node.
  107896. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  107897. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  107898. */
  107899. VideoDome.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  107900. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  107901. this._videoTexture.dispose();
  107902. this._mesh.dispose();
  107903. this._material.dispose();
  107904. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  107905. };
  107906. return VideoDome;
  107907. }(BABYLON.TransformNode));
  107908. BABYLON.VideoDome = VideoDome;
  107909. })(BABYLON || (BABYLON = {}));
  107910. //# sourceMappingURL=babylon.videoDome.js.map
  107911. var BABYLON;
  107912. (function (BABYLON) {
  107913. /**
  107914. * Display a 360 degree photo on an approximately spherical surface, useful for VR applications or skyboxes.
  107915. * As a subclass of TransformNode, this allow parenting to the camera with different locations in the scene.
  107916. * This class achieves its effect with a Texture and a correctly configured BackgroundMaterial on an inverted sphere.
  107917. * Potential additions to this helper include zoom and and non-infinite distance rendering effects.
  107918. */
  107919. var PhotoDome = /** @class */ (function (_super) {
  107920. __extends(PhotoDome, _super);
  107921. /**
  107922. * Create an instance of this class and pass through the parameters to the relevant classes, Texture, StandardMaterial, and Mesh.
  107923. * @param name Element's name, child elements will append suffixes for their own names.
  107924. * @param urlsOfPhoto defines the url of the photo to display
  107925. * @param options defines an object containing optional or exposed sub element properties
  107926. * @param onError defines a callback called when an error occured while loading the texture
  107927. */
  107928. function PhotoDome(name, urlOfPhoto, options, scene, onError) {
  107929. if (onError === void 0) { onError = null; }
  107930. var _this = _super.call(this, name, scene) || this;
  107931. _this._useDirectMapping = false;
  107932. /**
  107933. * Observable raised when an error occured while loading the 360 image
  107934. */
  107935. _this.onLoadErrorObservable = new BABYLON.Observable();
  107936. // set defaults and manage values
  107937. name = name || "photoDome";
  107938. options.resolution = (Math.abs(options.resolution) | 0) || 32;
  107939. options.size = Math.abs(options.size) || (scene.activeCamera ? scene.activeCamera.maxZ * 0.48 : 1000);
  107940. if (options.useDirectMapping === undefined) {
  107941. _this._useDirectMapping = true;
  107942. }
  107943. else {
  107944. _this._useDirectMapping = options.useDirectMapping;
  107945. }
  107946. _this._setReady(false);
  107947. // create
  107948. var material = _this._material = new BABYLON.BackgroundMaterial(name + "_material", scene);
  107949. _this._mesh = BABYLON.Mesh.CreateSphere(name + "_mesh", options.resolution, options.size, scene, false, BABYLON.Mesh.BACKSIDE);
  107950. // configure material
  107951. material.opacityFresnel = false;
  107952. material.useEquirectangularFOV = true;
  107953. material.fovMultiplier = 1.0;
  107954. _this.photoTexture = new BABYLON.Texture(urlOfPhoto, scene, true, !_this._useDirectMapping, undefined, undefined, function (message, exception) {
  107955. _this.onLoadErrorObservable.notifyObservers(message || "Unknown error occured");
  107956. if (onError) {
  107957. onError(message, exception);
  107958. }
  107959. });
  107960. _this.photoTexture.onLoadObservable.addOnce(function () {
  107961. _this._setReady(true);
  107962. });
  107963. // configure mesh
  107964. _this._mesh.material = material;
  107965. _this._mesh.parent = _this;
  107966. return _this;
  107967. }
  107968. Object.defineProperty(PhotoDome.prototype, "photoTexture", {
  107969. /**
  107970. * Gets or sets the texture being displayed on the sphere
  107971. */
  107972. get: function () {
  107973. return this._photoTexture;
  107974. },
  107975. set: function (value) {
  107976. if (this._photoTexture === value) {
  107977. return;
  107978. }
  107979. this._photoTexture = value;
  107980. if (this._useDirectMapping) {
  107981. this._photoTexture.wrapU = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107982. this._photoTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107983. this._material.diffuseTexture = this._photoTexture;
  107984. }
  107985. else {
  107986. this._photoTexture.coordinatesMode = BABYLON.Texture.FIXED_EQUIRECTANGULAR_MIRRORED_MODE; // matches orientation
  107987. this._photoTexture.wrapV = BABYLON.Texture.CLAMP_ADDRESSMODE;
  107988. this._material.reflectionTexture = this._photoTexture;
  107989. }
  107990. },
  107991. enumerable: true,
  107992. configurable: true
  107993. });
  107994. Object.defineProperty(PhotoDome.prototype, "fovMultiplier", {
  107995. /**
  107996. * The current fov(field of view) multiplier, 0.0 - 2.0. Defaults to 1.0. Lower values "zoom in" and higher values "zoom out".
  107997. * Also see the options.resolution property.
  107998. */
  107999. get: function () {
  108000. return this._material.fovMultiplier;
  108001. },
  108002. set: function (value) {
  108003. this._material.fovMultiplier = value;
  108004. },
  108005. enumerable: true,
  108006. configurable: true
  108007. });
  108008. /**
  108009. * Releases resources associated with this node.
  108010. * @param doNotRecurse Set to true to not recurse into each children (recurse into each children by default)
  108011. * @param disposeMaterialAndTextures Set to true to also dispose referenced materials and textures (false by default)
  108012. */
  108013. PhotoDome.prototype.dispose = function (doNotRecurse, disposeMaterialAndTextures) {
  108014. if (disposeMaterialAndTextures === void 0) { disposeMaterialAndTextures = false; }
  108015. this._photoTexture.dispose();
  108016. this._mesh.dispose();
  108017. this._material.dispose();
  108018. this.onLoadErrorObservable.clear();
  108019. _super.prototype.dispose.call(this, doNotRecurse, disposeMaterialAndTextures);
  108020. };
  108021. return PhotoDome;
  108022. }(BABYLON.TransformNode));
  108023. BABYLON.PhotoDome = PhotoDome;
  108024. })(BABYLON || (BABYLON = {}));
  108025. //# sourceMappingURL=babylon.photoDome.js.map
  108026. var BABYLON;
  108027. (function (BABYLON) {
  108028. BABYLON.Engine.prototype.createQuery = function () {
  108029. return this._gl.createQuery();
  108030. };
  108031. BABYLON.Engine.prototype.deleteQuery = function (query) {
  108032. this._gl.deleteQuery(query);
  108033. return this;
  108034. };
  108035. BABYLON.Engine.prototype.isQueryResultAvailable = function (query) {
  108036. return this._gl.getQueryParameter(query, this._gl.QUERY_RESULT_AVAILABLE);
  108037. };
  108038. BABYLON.Engine.prototype.getQueryResult = function (query) {
  108039. return this._gl.getQueryParameter(query, this._gl.QUERY_RESULT);
  108040. };
  108041. BABYLON.Engine.prototype.beginOcclusionQuery = function (algorithmType, query) {
  108042. var glAlgorithm = this._getGlAlgorithmType(algorithmType);
  108043. this._gl.beginQuery(glAlgorithm, query);
  108044. return this;
  108045. };
  108046. BABYLON.Engine.prototype.endOcclusionQuery = function (algorithmType) {
  108047. var glAlgorithm = this._getGlAlgorithmType(algorithmType);
  108048. this._gl.endQuery(glAlgorithm);
  108049. return this;
  108050. };
  108051. BABYLON.Engine.prototype._createTimeQuery = function () {
  108052. var timerQuery = this.getCaps().timerQuery;
  108053. if (timerQuery.createQueryEXT) {
  108054. return timerQuery.createQueryEXT();
  108055. }
  108056. return this.createQuery();
  108057. };
  108058. BABYLON.Engine.prototype._deleteTimeQuery = function (query) {
  108059. var timerQuery = this.getCaps().timerQuery;
  108060. if (timerQuery.deleteQueryEXT) {
  108061. timerQuery.deleteQueryEXT(query);
  108062. return;
  108063. }
  108064. this.deleteQuery(query);
  108065. };
  108066. BABYLON.Engine.prototype._getTimeQueryResult = function (query) {
  108067. var timerQuery = this.getCaps().timerQuery;
  108068. if (timerQuery.getQueryObjectEXT) {
  108069. return timerQuery.getQueryObjectEXT(query, timerQuery.QUERY_RESULT_EXT);
  108070. }
  108071. return this.getQueryResult(query);
  108072. };
  108073. BABYLON.Engine.prototype._getTimeQueryAvailability = function (query) {
  108074. var timerQuery = this.getCaps().timerQuery;
  108075. if (timerQuery.getQueryObjectEXT) {
  108076. return timerQuery.getQueryObjectEXT(query, timerQuery.QUERY_RESULT_AVAILABLE_EXT);
  108077. }
  108078. return this.isQueryResultAvailable(query);
  108079. };
  108080. BABYLON.Engine.prototype.startTimeQuery = function () {
  108081. var caps = this.getCaps();
  108082. var timerQuery = caps.timerQuery;
  108083. if (!timerQuery) {
  108084. return null;
  108085. }
  108086. var token = new BABYLON._TimeToken();
  108087. this._gl.getParameter(timerQuery.GPU_DISJOINT_EXT);
  108088. if (caps.canUseTimestampForTimerQuery) {
  108089. token._startTimeQuery = this._createTimeQuery();
  108090. timerQuery.queryCounterEXT(token._startTimeQuery, timerQuery.TIMESTAMP_EXT);
  108091. }
  108092. else {
  108093. if (this._currentNonTimestampToken) {
  108094. return this._currentNonTimestampToken;
  108095. }
  108096. token._timeElapsedQuery = this._createTimeQuery();
  108097. if (timerQuery.beginQueryEXT) {
  108098. timerQuery.beginQueryEXT(timerQuery.TIME_ELAPSED_EXT, token._timeElapsedQuery);
  108099. }
  108100. else {
  108101. this._gl.beginQuery(timerQuery.TIME_ELAPSED_EXT, token._timeElapsedQuery);
  108102. }
  108103. this._currentNonTimestampToken = token;
  108104. }
  108105. return token;
  108106. };
  108107. BABYLON.Engine.prototype.endTimeQuery = function (token) {
  108108. var caps = this.getCaps();
  108109. var timerQuery = caps.timerQuery;
  108110. if (!timerQuery || !token) {
  108111. return -1;
  108112. }
  108113. if (caps.canUseTimestampForTimerQuery) {
  108114. if (!token._startTimeQuery) {
  108115. return -1;
  108116. }
  108117. if (!token._endTimeQuery) {
  108118. token._endTimeQuery = this._createTimeQuery();
  108119. timerQuery.queryCounterEXT(token._endTimeQuery, timerQuery.TIMESTAMP_EXT);
  108120. }
  108121. }
  108122. else if (!token._timeElapsedQueryEnded) {
  108123. if (!token._timeElapsedQuery) {
  108124. return -1;
  108125. }
  108126. if (timerQuery.endQueryEXT) {
  108127. timerQuery.endQueryEXT(timerQuery.TIME_ELAPSED_EXT);
  108128. }
  108129. else {
  108130. this._gl.endQuery(timerQuery.TIME_ELAPSED_EXT);
  108131. }
  108132. token._timeElapsedQueryEnded = true;
  108133. }
  108134. var disjoint = this._gl.getParameter(timerQuery.GPU_DISJOINT_EXT);
  108135. var available = false;
  108136. if (token._endTimeQuery) {
  108137. available = this._getTimeQueryAvailability(token._endTimeQuery);
  108138. }
  108139. else if (token._timeElapsedQuery) {
  108140. available = this._getTimeQueryAvailability(token._timeElapsedQuery);
  108141. }
  108142. if (available && !disjoint) {
  108143. var result = 0;
  108144. if (caps.canUseTimestampForTimerQuery) {
  108145. if (!token._startTimeQuery || !token._endTimeQuery) {
  108146. return -1;
  108147. }
  108148. var timeStart = this._getTimeQueryResult(token._startTimeQuery);
  108149. var timeEnd = this._getTimeQueryResult(token._endTimeQuery);
  108150. result = timeEnd - timeStart;
  108151. this._deleteTimeQuery(token._startTimeQuery);
  108152. this._deleteTimeQuery(token._endTimeQuery);
  108153. token._startTimeQuery = null;
  108154. token._endTimeQuery = null;
  108155. }
  108156. else {
  108157. if (!token._timeElapsedQuery) {
  108158. return -1;
  108159. }
  108160. result = this._getTimeQueryResult(token._timeElapsedQuery);
  108161. this._deleteTimeQuery(token._timeElapsedQuery);
  108162. token._timeElapsedQuery = null;
  108163. token._timeElapsedQueryEnded = false;
  108164. this._currentNonTimestampToken = null;
  108165. }
  108166. return result;
  108167. }
  108168. return -1;
  108169. };
  108170. BABYLON.Engine.prototype._getGlAlgorithmType = function (algorithmType) {
  108171. return algorithmType === BABYLON.AbstractMesh.OCCLUSION_ALGORITHM_TYPE_CONSERVATIVE ? this._gl.ANY_SAMPLES_PASSED_CONSERVATIVE : this._gl.ANY_SAMPLES_PASSED;
  108172. };
  108173. // We also need to update AbstractMesh as there is a portion of the code there
  108174. BABYLON.AbstractMesh.prototype._checkOcclusionQuery = function () {
  108175. var engine = this.getEngine();
  108176. if (!engine.isQueryResultAvailable) { // Occlusion query where not referenced
  108177. this._isOccluded = false;
  108178. return;
  108179. }
  108180. if (engine.webGLVersion < 2 || this.occlusionType === BABYLON.AbstractMesh.OCCLUSION_TYPE_NONE) {
  108181. this._isOccluded = false;
  108182. return;
  108183. }
  108184. if (this.isOcclusionQueryInProgress && this._occlusionQuery) {
  108185. var isOcclusionQueryAvailable = engine.isQueryResultAvailable(this._occlusionQuery);
  108186. if (isOcclusionQueryAvailable) {
  108187. var occlusionQueryResult = engine.getQueryResult(this._occlusionQuery);
  108188. this._isOcclusionQueryInProgress = false;
  108189. this._occlusionInternalRetryCounter = 0;
  108190. this._isOccluded = occlusionQueryResult === 1 ? false : true;
  108191. }
  108192. else {
  108193. this._occlusionInternalRetryCounter++;
  108194. if (this.occlusionRetryCount !== -1 && this._occlusionInternalRetryCounter > this.occlusionRetryCount) {
  108195. this._isOcclusionQueryInProgress = false;
  108196. this._occlusionInternalRetryCounter = 0;
  108197. // if optimistic set isOccluded to false regardless of the status of isOccluded. (Render in the current render loop)
  108198. // if strict continue the last state of the object.
  108199. this._isOccluded = this.occlusionType === BABYLON.AbstractMesh.OCCLUSION_TYPE_OPTIMISTIC ? false : this._isOccluded;
  108200. }
  108201. else {
  108202. return;
  108203. }
  108204. }
  108205. }
  108206. var scene = this.getScene();
  108207. if (scene.getBoundingBoxRenderer) {
  108208. var occlusionBoundingBoxRenderer = scene.getBoundingBoxRenderer();
  108209. if (!this._occlusionQuery) {
  108210. this._occlusionQuery = engine.createQuery();
  108211. }
  108212. engine.beginOcclusionQuery(this.occlusionQueryAlgorithmType, this._occlusionQuery);
  108213. occlusionBoundingBoxRenderer.renderOcclusionBoundingBox(this);
  108214. engine.endOcclusionQuery(this.occlusionQueryAlgorithmType);
  108215. this._isOcclusionQueryInProgress = true;
  108216. }
  108217. };
  108218. })(BABYLON || (BABYLON = {}));
  108219. //# sourceMappingURL=babylon.engine.occlusionQuery.js.map
  108220. var BABYLON;
  108221. (function (BABYLON) {
  108222. /**
  108223. * Class used to generate noise procedural textures
  108224. */
  108225. var NoiseProceduralTexture = /** @class */ (function (_super) {
  108226. __extends(NoiseProceduralTexture, _super);
  108227. /**
  108228. * Creates a new NoiseProceduralTexture
  108229. * @param name defines the name fo the texture
  108230. * @param size defines the size of the texture (default is 256)
  108231. * @param scene defines the hosting scene
  108232. * @param fallbackTexture defines the texture to use if the NoiseProceduralTexture can't be created
  108233. * @param generateMipMaps defines if mipmaps must be generated (true by default)
  108234. */
  108235. function NoiseProceduralTexture(name, size, scene, fallbackTexture, generateMipMaps) {
  108236. if (size === void 0) { size = 256; }
  108237. if (scene === void 0) { scene = BABYLON.Engine.LastCreatedScene; }
  108238. var _this = _super.call(this, name, size, "noise", scene, fallbackTexture, generateMipMaps) || this;
  108239. _this._time = 0;
  108240. /** Gets or sets a value between 0 and 1 indicating the overall brightness of the texture (default is 0.2) */
  108241. _this.brightness = 0.2;
  108242. /** Defines the number of octaves to process */
  108243. _this.octaves = 3;
  108244. /** Defines the level of persistence (0.8 by default) */
  108245. _this.persistence = 0.8;
  108246. /** Gets or sets animation speed factor (default is 1) */
  108247. _this.animationSpeedFactor = 1;
  108248. _this._updateShaderUniforms();
  108249. return _this;
  108250. }
  108251. NoiseProceduralTexture.prototype._updateShaderUniforms = function () {
  108252. var scene = this.getScene();
  108253. if (!scene) {
  108254. return;
  108255. }
  108256. this._time += scene.getAnimationRatio() * this.animationSpeedFactor * 0.01;
  108257. this.setFloat("brightness", this.brightness);
  108258. this.setFloat("persistence", this.persistence);
  108259. this.setFloat("timeScale", this._time);
  108260. };
  108261. NoiseProceduralTexture.prototype._getDefines = function () {
  108262. return "#define OCTAVES " + this.octaves;
  108263. };
  108264. /** Generate the current state of the procedural texture */
  108265. NoiseProceduralTexture.prototype.render = function (useCameraPostProcess) {
  108266. this._updateShaderUniforms();
  108267. _super.prototype.render.call(this, useCameraPostProcess);
  108268. };
  108269. /**
  108270. * Serializes this noise procedural texture
  108271. * @returns a serialized noise procedural texture object
  108272. */
  108273. NoiseProceduralTexture.prototype.serialize = function () {
  108274. var serializationObject = BABYLON.SerializationHelper.Serialize(this, _super.prototype.serialize.call(this));
  108275. serializationObject.customType = "BABYLON.NoiseProceduralTexture";
  108276. return serializationObject;
  108277. };
  108278. /**
  108279. * Creates a NoiseProceduralTexture from parsed noise procedural texture data
  108280. * @param parsedTexture defines parsed texture data
  108281. * @param scene defines the current scene
  108282. * @param rootUrl defines the root URL containing noise procedural texture information
  108283. * @returns a parsed NoiseProceduralTexture
  108284. */
  108285. NoiseProceduralTexture.Parse = function (parsedTexture, scene, rootUrl) {
  108286. var texture = BABYLON.SerializationHelper.Parse(function () { return new NoiseProceduralTexture(parsedTexture.name, parsedTexture._size, scene, undefined, parsedTexture._generateMipMaps); }, parsedTexture, scene, rootUrl);
  108287. return texture;
  108288. };
  108289. return NoiseProceduralTexture;
  108290. }(BABYLON.ProceduralTexture));
  108291. BABYLON.NoiseProceduralTexture = NoiseProceduralTexture;
  108292. })(BABYLON || (BABYLON = {}));
  108293. //# sourceMappingURL=babylon.noiseProceduralTexture.js.map
  108294. var __assign = (this && this.__assign) || function () {
  108295. __assign = Object.assign || function(t) {
  108296. for (var s, i = 1, n = arguments.length; i < n; i++) {
  108297. s = arguments[i];
  108298. for (var p in s) if (Object.prototype.hasOwnProperty.call(s, p))
  108299. t[p] = s[p];
  108300. }
  108301. return t;
  108302. };
  108303. return __assign.apply(this, arguments);
  108304. };
  108305. var BABYLON;
  108306. (function (BABYLON) {
  108307. /**
  108308. * This can helps recording videos from BabylonJS.
  108309. * This is based on the available WebRTC functionalities of the browser.
  108310. *
  108311. * @see http://doc.babylonjs.com/how_to/render_scene_on_a_video
  108312. */
  108313. var VideoRecorder = /** @class */ (function () {
  108314. /**
  108315. * Create a new VideoCapture object which can help converting what you see in Babylon to
  108316. * a video file.
  108317. * @param engine Defines the BabylonJS Engine you wish to record
  108318. * @param options Defines options that can be used to customized the capture
  108319. */
  108320. function VideoRecorder(engine, options) {
  108321. if (options === void 0) { options = null; }
  108322. if (!VideoRecorder.IsSupported(engine)) {
  108323. throw "Your browser does not support recording so far.";
  108324. }
  108325. var canvas = engine.getRenderingCanvas();
  108326. if (!canvas) {
  108327. throw "The babylon engine must have a canvas to be recorded";
  108328. }
  108329. this._canvas = canvas;
  108330. this._canvas.isRecording = false;
  108331. this._options = __assign({}, VideoRecorder._defaultOptions, options);
  108332. var stream = this._canvas.captureStream(this._options.fps);
  108333. this._mediaRecorder = new MediaRecorder(stream, { mimeType: this._options.mimeType });
  108334. this._mediaRecorder.ondataavailable = this._handleDataAvailable.bind(this);
  108335. this._mediaRecorder.onerror = this._handleError.bind(this);
  108336. this._mediaRecorder.onstop = this._handleStop.bind(this);
  108337. }
  108338. /**
  108339. * Returns wehther or not the VideoRecorder is available in your browser.
  108340. * @param engine Defines the Babylon Engine to check the support for
  108341. * @returns true if supported otherwise false
  108342. */
  108343. VideoRecorder.IsSupported = function (engine) {
  108344. var canvas = engine.getRenderingCanvas();
  108345. return (!!canvas && typeof canvas.captureStream === "function");
  108346. };
  108347. Object.defineProperty(VideoRecorder.prototype, "isRecording", {
  108348. /**
  108349. * True wether a recording is already in progress.
  108350. */
  108351. get: function () {
  108352. return !!this._canvas && this._canvas.isRecording;
  108353. },
  108354. enumerable: true,
  108355. configurable: true
  108356. });
  108357. /**
  108358. * Stops the current recording before the default capture timeout passed in the startRecording
  108359. * functions.
  108360. */
  108361. VideoRecorder.prototype.stopRecording = function () {
  108362. if (!this._canvas || !this._mediaRecorder) {
  108363. return;
  108364. }
  108365. if (!this.isRecording) {
  108366. return;
  108367. }
  108368. this._canvas.isRecording = false;
  108369. this._mediaRecorder.stop();
  108370. };
  108371. /**
  108372. * Starts recording the canvas for a max duration specified in parameters.
  108373. * @param fileName Defines the name of the file to be downloaded when the recording stop. If null no automatic download will start and you can rely on the promise to get the data back.
  108374. * @param maxDuration Defines the maximum recording time in seconds.
  108375. * It default to 7 seconds. A value of zero will not stop automatically, you would need to call stopRecording manually.
  108376. * @return a promise callback at the end of the recording with the video data in Blob.
  108377. */
  108378. VideoRecorder.prototype.startRecording = function (fileName, maxDuration) {
  108379. var _this = this;
  108380. if (fileName === void 0) { fileName = "babylonjs.webm"; }
  108381. if (maxDuration === void 0) { maxDuration = 7; }
  108382. if (!this._canvas || !this._mediaRecorder) {
  108383. throw "Recorder has already been disposed";
  108384. }
  108385. if (this.isRecording) {
  108386. throw "Recording already in progress";
  108387. }
  108388. if (maxDuration > 0) {
  108389. setTimeout(function () {
  108390. _this.stopRecording();
  108391. }, maxDuration * 1000);
  108392. }
  108393. this._fileName = fileName;
  108394. this._recordedChunks = [];
  108395. this._resolve = null;
  108396. this._reject = null;
  108397. this._canvas.isRecording = true;
  108398. this._mediaRecorder.start(this._options.recordChunckSize);
  108399. return new Promise(function (resolve, reject) {
  108400. _this._resolve = resolve;
  108401. _this._reject = reject;
  108402. });
  108403. };
  108404. /**
  108405. * Releases internal resources used during the recording.
  108406. */
  108407. VideoRecorder.prototype.dispose = function () {
  108408. this._canvas = null;
  108409. this._mediaRecorder = null;
  108410. this._recordedChunks = [];
  108411. this._fileName = null;
  108412. this._resolve = null;
  108413. this._reject = null;
  108414. };
  108415. VideoRecorder.prototype._handleDataAvailable = function (event) {
  108416. if (event.data.size > 0) {
  108417. this._recordedChunks.push(event.data);
  108418. }
  108419. };
  108420. VideoRecorder.prototype._handleError = function (event) {
  108421. this.stopRecording();
  108422. if (this._reject) {
  108423. this._reject(event.error);
  108424. }
  108425. else {
  108426. throw new event.error;
  108427. }
  108428. };
  108429. VideoRecorder.prototype._handleStop = function () {
  108430. this.stopRecording();
  108431. var superBuffer = new Blob(this._recordedChunks);
  108432. if (this._resolve) {
  108433. this._resolve(superBuffer);
  108434. }
  108435. window.URL.createObjectURL(superBuffer);
  108436. if (this._fileName) {
  108437. BABYLON.Tools.Download(superBuffer, this._fileName);
  108438. }
  108439. };
  108440. VideoRecorder._defaultOptions = {
  108441. mimeType: "video/webm",
  108442. fps: 25,
  108443. recordChunckSize: 3000
  108444. };
  108445. return VideoRecorder;
  108446. }());
  108447. BABYLON.VideoRecorder = VideoRecorder;
  108448. })(BABYLON || (BABYLON = {}));
  108449. //# sourceMappingURL=babylon.videoRecorder.js.map
  108450. var BABYLON;
  108451. (function (BABYLON) {
  108452. BABYLON.Scene.prototype.createDefaultLight = function (replace) {
  108453. if (replace === void 0) { replace = false; }
  108454. // Dispose existing light in replace mode.
  108455. if (replace) {
  108456. if (this.lights) {
  108457. for (var i = 0; i < this.lights.length; i++) {
  108458. this.lights[i].dispose();
  108459. }
  108460. }
  108461. }
  108462. // Light
  108463. if (this.lights.length === 0) {
  108464. new BABYLON.HemisphericLight("default light", BABYLON.Vector3.Up(), this);
  108465. }
  108466. };
  108467. BABYLON.Scene.prototype.createDefaultCamera = function (createArcRotateCamera, replace, attachCameraControls) {
  108468. if (createArcRotateCamera === void 0) { createArcRotateCamera = false; }
  108469. if (replace === void 0) { replace = false; }
  108470. if (attachCameraControls === void 0) { attachCameraControls = false; }
  108471. // Dispose existing camera in replace mode.
  108472. if (replace) {
  108473. if (this.activeCamera) {
  108474. this.activeCamera.dispose();
  108475. this.activeCamera = null;
  108476. }
  108477. }
  108478. // Camera
  108479. if (!this.activeCamera) {
  108480. var worldExtends = this.getWorldExtends();
  108481. var worldSize = worldExtends.max.subtract(worldExtends.min);
  108482. var worldCenter = worldExtends.min.add(worldSize.scale(0.5));
  108483. var camera;
  108484. var radius = worldSize.length() * 1.5;
  108485. // empty scene scenario!
  108486. if (!isFinite(radius)) {
  108487. radius = 1;
  108488. worldCenter.copyFromFloats(0, 0, 0);
  108489. }
  108490. if (createArcRotateCamera) {
  108491. var arcRotateCamera = new BABYLON.ArcRotateCamera("default camera", -(Math.PI / 2), Math.PI / 2, radius, worldCenter, this);
  108492. arcRotateCamera.lowerRadiusLimit = radius * 0.01;
  108493. arcRotateCamera.wheelPrecision = 100 / radius;
  108494. camera = arcRotateCamera;
  108495. }
  108496. else {
  108497. var freeCamera = new BABYLON.FreeCamera("default camera", new BABYLON.Vector3(worldCenter.x, worldCenter.y, -radius), this);
  108498. freeCamera.setTarget(worldCenter);
  108499. camera = freeCamera;
  108500. }
  108501. camera.minZ = radius * 0.01;
  108502. camera.maxZ = radius * 1000;
  108503. camera.speed = radius * 0.2;
  108504. this.activeCamera = camera;
  108505. var canvas = this.getEngine().getRenderingCanvas();
  108506. if (attachCameraControls && canvas) {
  108507. camera.attachControl(canvas);
  108508. }
  108509. }
  108510. };
  108511. BABYLON.Scene.prototype.createDefaultCameraOrLight = function (createArcRotateCamera, replace, attachCameraControls) {
  108512. if (createArcRotateCamera === void 0) { createArcRotateCamera = false; }
  108513. if (replace === void 0) { replace = false; }
  108514. if (attachCameraControls === void 0) { attachCameraControls = false; }
  108515. this.createDefaultLight(replace);
  108516. this.createDefaultCamera(createArcRotateCamera, replace, attachCameraControls);
  108517. };
  108518. BABYLON.Scene.prototype.createDefaultSkybox = function (environmentTexture, pbr, scale, blur, setGlobalEnvTexture) {
  108519. if (pbr === void 0) { pbr = false; }
  108520. if (scale === void 0) { scale = 1000; }
  108521. if (blur === void 0) { blur = 0; }
  108522. if (setGlobalEnvTexture === void 0) { setGlobalEnvTexture = true; }
  108523. if (!environmentTexture) {
  108524. BABYLON.Tools.Warn("Can not create default skybox without environment texture.");
  108525. return null;
  108526. }
  108527. if (setGlobalEnvTexture) {
  108528. if (environmentTexture) {
  108529. this.environmentTexture = environmentTexture;
  108530. }
  108531. }
  108532. // Skybox
  108533. var hdrSkybox = BABYLON.Mesh.CreateBox("hdrSkyBox", scale, this);
  108534. if (pbr) {
  108535. var hdrSkyboxMaterial = new BABYLON.PBRMaterial("skyBox", this);
  108536. hdrSkyboxMaterial.backFaceCulling = false;
  108537. hdrSkyboxMaterial.reflectionTexture = environmentTexture.clone();
  108538. if (hdrSkyboxMaterial.reflectionTexture) {
  108539. hdrSkyboxMaterial.reflectionTexture.coordinatesMode = BABYLON.Texture.SKYBOX_MODE;
  108540. }
  108541. hdrSkyboxMaterial.microSurface = 1.0 - blur;
  108542. hdrSkyboxMaterial.disableLighting = true;
  108543. hdrSkyboxMaterial.twoSidedLighting = true;
  108544. hdrSkybox.infiniteDistance = true;
  108545. hdrSkybox.material = hdrSkyboxMaterial;
  108546. }
  108547. else {
  108548. var skyboxMaterial = new BABYLON.StandardMaterial("skyBox", this);
  108549. skyboxMaterial.backFaceCulling = false;
  108550. skyboxMaterial.reflectionTexture = environmentTexture.clone();
  108551. if (skyboxMaterial.reflectionTexture) {
  108552. skyboxMaterial.reflectionTexture.coordinatesMode = BABYLON.Texture.SKYBOX_MODE;
  108553. }
  108554. skyboxMaterial.disableLighting = true;
  108555. hdrSkybox.infiniteDistance = true;
  108556. hdrSkybox.material = skyboxMaterial;
  108557. }
  108558. return hdrSkybox;
  108559. };
  108560. BABYLON.Scene.prototype.createDefaultEnvironment = function (options) {
  108561. if (BABYLON.EnvironmentHelper) {
  108562. return new BABYLON.EnvironmentHelper(options, this);
  108563. }
  108564. return null;
  108565. };
  108566. BABYLON.Scene.prototype.createDefaultVRExperience = function (webVROptions) {
  108567. if (webVROptions === void 0) { webVROptions = {}; }
  108568. return new BABYLON.VRExperienceHelper(this, webVROptions);
  108569. };
  108570. })(BABYLON || (BABYLON = {}));
  108571. //# sourceMappingURL=babylon.sceneHelpers.js.map
  108572. BABYLON.Effect.ShadersStore={"defaultVertexShader":"#include<__decl__defaultVertex>\n\n#define CUSTOM_VERTEX_BEGIN\nattribute vec3 position;\n#ifdef NORMAL\nattribute vec3 normal;\n#endif\n#ifdef TANGENT\nattribute vec4 tangent;\n#endif\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#ifdef VERTEXCOLOR\nattribute vec4 color;\n#endif\n#include<helperFunctions>\n#include<bonesDeclaration>\n\n#include<instancesDeclaration>\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif\n#ifdef MAINUV2\nvarying vec2 vMainUV2;\n#endif\n#if defined(DIFFUSE) && DIFFUSEDIRECTUV == 0\nvarying vec2 vDiffuseUV;\n#endif\n#if defined(AMBIENT) && AMBIENTDIRECTUV == 0\nvarying vec2 vAmbientUV;\n#endif\n#if defined(OPACITY) && OPACITYDIRECTUV == 0\nvarying vec2 vOpacityUV;\n#endif\n#if defined(EMISSIVE) && EMISSIVEDIRECTUV == 0\nvarying vec2 vEmissiveUV;\n#endif\n#if defined(LIGHTMAP) && LIGHTMAPDIRECTUV == 0\nvarying vec2 vLightmapUV;\n#endif\n#if defined(SPECULAR) && defined(SPECULARTERM) && SPECULARDIRECTUV == 0\nvarying vec2 vSpecularUV;\n#endif\n#if defined(BUMP) && BUMPDIRECTUV == 0\nvarying vec2 vBumpUV;\n#endif\n\nvarying vec3 vPositionW;\n#ifdef NORMAL\nvarying vec3 vNormalW;\n#endif\n#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#endif\n#include<bumpVertexDeclaration>\n#include<clipPlaneVertexDeclaration>\n#include<fogVertexDeclaration>\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n#include<morphTargetsVertexGlobalDeclaration>\n#include<morphTargetsVertexDeclaration>[0..maxSimultaneousMorphTargets]\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\n#include<logDepthDeclaration>\n#define CUSTOM_VERTEX_DEFINITIONS\nvoid main(void) {\n#define CUSTOM_VERTEX_MAIN_BEGIN\nvec3 positionUpdated=position;\n#ifdef NORMAL \nvec3 normalUpdated=normal;\n#endif\n#ifdef TANGENT\nvec4 tangentUpdated=tangent;\n#endif\n#include<morphTargetsVertex>[0..maxSimultaneousMorphTargets]\n#ifdef REFLECTIONMAP_SKYBOX\n#ifdef REFLECTIONMAP_SKYBOX_TRANSFORMED\nvPositionUVW=(reflectionMatrix*vec4(position,1.0)).xyz;\n#else\nvPositionUVW=position;\n#endif\n#endif \n#define CUSTOM_VERTEX_UPDATE_POSITION\n#define CUSTOM_VERTEX_UPDATE_NORMAL\n#include<instancesVertex>\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(positionUpdated,1.0);\nvec4 worldPos=finalWorld*vec4(positionUpdated,1.0);\nvPositionW=vec3(worldPos);\n#ifdef NORMAL\nmat3 normalWorld=mat3(finalWorld);\n#ifdef NONUNIFORMSCALING\nnormalWorld=transposeMat3(inverseMat3(normalWorld));\n#endif\nvNormalW=normalize(normalWorld*normalUpdated);\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvDirectionW=normalize(vec3(finalWorld*vec4(positionUpdated,0.0)));\n#endif\n\n#ifndef UV1\nvec2 uv=vec2(0.,0.);\n#endif\n#ifndef UV2\nvec2 uv2=vec2(0.,0.);\n#endif\n#ifdef MAINUV1\nvMainUV1=uv;\n#endif\n#ifdef MAINUV2\nvMainUV2=uv2;\n#endif\n#if defined(DIFFUSE) && DIFFUSEDIRECTUV == 0\nif (vDiffuseInfos.x == 0.)\n{\nvDiffuseUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvDiffuseUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(AMBIENT) && AMBIENTDIRECTUV == 0\nif (vAmbientInfos.x == 0.)\n{\nvAmbientUV=vec2(ambientMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvAmbientUV=vec2(ambientMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(OPACITY) && OPACITYDIRECTUV == 0\nif (vOpacityInfos.x == 0.)\n{\nvOpacityUV=vec2(opacityMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvOpacityUV=vec2(opacityMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(EMISSIVE) && EMISSIVEDIRECTUV == 0\nif (vEmissiveInfos.x == 0.)\n{\nvEmissiveUV=vec2(emissiveMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvEmissiveUV=vec2(emissiveMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(LIGHTMAP) && LIGHTMAPDIRECTUV == 0\nif (vLightmapInfos.x == 0.)\n{\nvLightmapUV=vec2(lightmapMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvLightmapUV=vec2(lightmapMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(SPECULAR) && defined(SPECULARTERM) && SPECULARDIRECTUV == 0\nif (vSpecularInfos.x == 0.)\n{\nvSpecularUV=vec2(specularMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvSpecularUV=vec2(specularMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(BUMP) && BUMPDIRECTUV == 0\nif (vBumpInfos.x == 0.)\n{\nvBumpUV=vec2(bumpMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvBumpUV=vec2(bumpMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#include<bumpVertex>\n#include<clipPlaneVertex>\n#include<fogVertex>\n#include<shadowsVertex>[0..maxSimultaneousLights]\n#ifdef VERTEXCOLOR\n\nvColor=color;\n#endif\n#include<pointCloudVertex>\n#include<logDepthVertex>\n#define CUSTOM_VERTEX_MAIN_END\n}\n","defaultPixelShader":"#include<__decl__defaultFragment>\n#if defined(BUMP) || !defined(NORMAL)\n#extension GL_OES_standard_derivatives : enable\n#endif\n#define CUSTOM_FRAGMENT_BEGIN\n#ifdef LOGARITHMICDEPTH\n#extension GL_EXT_frag_depth : enable\n#endif\n\n#define RECIPROCAL_PI2 0.15915494\nuniform vec3 vEyePosition;\nuniform vec3 vAmbientColor;\n\nvarying vec3 vPositionW;\n#ifdef NORMAL\nvarying vec3 vNormalW;\n#endif\n#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#endif\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif\n#ifdef MAINUV2\nvarying vec2 vMainUV2;\n#endif\n\n#include<helperFunctions>\n\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n#include<lightsFragmentFunctions>\n#include<shadowsFragmentFunctions>\n\n#ifdef DIFFUSE\n#if DIFFUSEDIRECTUV == 1\n#define vDiffuseUV vMainUV1\n#elif DIFFUSEDIRECTUV == 2\n#define vDiffuseUV vMainUV2\n#else\nvarying vec2 vDiffuseUV;\n#endif\nuniform sampler2D diffuseSampler;\n#endif\n#ifdef AMBIENT\n#if AMBIENTDIRECTUV == 1\n#define vAmbientUV vMainUV1\n#elif AMBIENTDIRECTUV == 2\n#define vAmbientUV vMainUV2\n#else\nvarying vec2 vAmbientUV;\n#endif\nuniform sampler2D ambientSampler;\n#endif\n#ifdef OPACITY \n#if OPACITYDIRECTUV == 1\n#define vOpacityUV vMainUV1\n#elif OPACITYDIRECTUV == 2\n#define vOpacityUV vMainUV2\n#else\nvarying vec2 vOpacityUV;\n#endif\nuniform sampler2D opacitySampler;\n#endif\n#ifdef EMISSIVE\n#if EMISSIVEDIRECTUV == 1\n#define vEmissiveUV vMainUV1\n#elif EMISSIVEDIRECTUV == 2\n#define vEmissiveUV vMainUV2\n#else\nvarying vec2 vEmissiveUV;\n#endif\nuniform sampler2D emissiveSampler;\n#endif\n#ifdef LIGHTMAP\n#if LIGHTMAPDIRECTUV == 1\n#define vLightmapUV vMainUV1\n#elif LIGHTMAPDIRECTUV == 2\n#define vLightmapUV vMainUV2\n#else\nvarying vec2 vLightmapUV;\n#endif\nuniform sampler2D lightmapSampler;\n#endif\n#ifdef REFRACTION\n#ifdef REFRACTIONMAP_3D\nuniform samplerCube refractionCubeSampler;\n#else\nuniform sampler2D refraction2DSampler;\n#endif\n#endif\n#if defined(SPECULAR) && defined(SPECULARTERM)\n#if SPECULARDIRECTUV == 1\n#define vSpecularUV vMainUV1\n#elif SPECULARDIRECTUV == 2\n#define vSpecularUV vMainUV2\n#else\nvarying vec2 vSpecularUV;\n#endif\nuniform sampler2D specularSampler;\n#endif\n#ifdef ALPHATEST\nuniform float alphaCutOff;\n#endif\n\n#include<fresnelFunction>\n\n#ifdef REFLECTION\n#ifdef REFLECTIONMAP_3D\nuniform samplerCube reflectionCubeSampler;\n#else\nuniform sampler2D reflection2DSampler;\n#endif\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#else\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\n#endif\n#include<reflectionFunction>\n#endif\n#include<imageProcessingDeclaration>\n#include<imageProcessingFunctions>\n#include<bumpFragmentFunctions>\n#include<clipPlaneFragmentDeclaration>\n#include<logDepthDeclaration>\n#include<fogFragmentDeclaration>\n#define CUSTOM_FRAGMENT_DEFINITIONS\nvoid main(void) {\n#define CUSTOM_FRAGMENT_MAIN_BEGIN\n#include<clipPlaneFragment>\nvec3 viewDirectionW=normalize(vEyePosition-vPositionW);\n\nvec4 baseColor=vec4(1.,1.,1.,1.);\nvec3 diffuseColor=vDiffuseColor.rgb;\n\nfloat alpha=vDiffuseColor.a;\n\n#ifdef NORMAL\nvec3 normalW=normalize(vNormalW);\n#else\nvec3 normalW=normalize(-cross(dFdx(vPositionW),dFdy(vPositionW)));\n#endif\n#include<bumpFragment>\n#ifdef TWOSIDEDLIGHTING\nnormalW=gl_FrontFacing ? normalW : -normalW;\n#endif\n#ifdef DIFFUSE\nbaseColor=texture2D(diffuseSampler,vDiffuseUV+uvOffset);\n#ifdef ALPHATEST\nif (baseColor.a<alphaCutOff)\ndiscard;\n#endif\n#ifdef ALPHAFROMDIFFUSE\nalpha*=baseColor.a;\n#endif\n#define CUSTOM_FRAGMENT_UPDATE_ALPHA\nbaseColor.rgb*=vDiffuseInfos.y;\n#endif\n#include<depthPrePass>\n#ifdef VERTEXCOLOR\nbaseColor.rgb*=vColor.rgb;\n#endif\n#define CUSTOM_FRAGMENT_UPDATE_DIFFUSE\n\nvec3 baseAmbientColor=vec3(1.,1.,1.);\n#ifdef AMBIENT\nbaseAmbientColor=texture2D(ambientSampler,vAmbientUV+uvOffset).rgb*vAmbientInfos.y;\n#endif\n#define CUSTOM_FRAGMENT_BEFORE_LIGHTS\n\n#ifdef SPECULARTERM\nfloat glossiness=vSpecularColor.a;\nvec3 specularColor=vSpecularColor.rgb;\n#ifdef SPECULAR\nvec4 specularMapColor=texture2D(specularSampler,vSpecularUV+uvOffset);\nspecularColor=specularMapColor.rgb;\n#ifdef GLOSSINESS\nglossiness=glossiness*specularMapColor.a;\n#endif\n#endif\n#else\nfloat glossiness=0.;\n#endif\n\nvec3 diffuseBase=vec3(0.,0.,0.);\nlightingInfo info;\n#ifdef SPECULARTERM\nvec3 specularBase=vec3(0.,0.,0.);\n#endif\nfloat shadow=1.;\n#ifdef LIGHTMAP\nvec3 lightmapColor=texture2D(lightmapSampler,vLightmapUV+uvOffset).rgb*vLightmapInfos.y;\n#endif\n#include<lightFragment>[0..maxSimultaneousLights]\n\nvec3 refractionColor=vec3(0.,0.,0.);\n#ifdef REFRACTION\nvec3 refractionVector=normalize(refract(-viewDirectionW,normalW,vRefractionInfos.y));\n#ifdef REFRACTIONMAP_3D\nrefractionVector.y=refractionVector.y*vRefractionInfos.w;\nif (dot(refractionVector,viewDirectionW)<1.0) {\nrefractionColor=textureCube(refractionCubeSampler,refractionVector).rgb;\n}\n#else\nvec3 vRefractionUVW=vec3(refractionMatrix*(view*vec4(vPositionW+refractionVector*vRefractionInfos.z,1.0)));\nvec2 refractionCoords=vRefractionUVW.xy/vRefractionUVW.z;\nrefractionCoords.y=1.0-refractionCoords.y;\nrefractionColor=texture2D(refraction2DSampler,refractionCoords).rgb;\n#endif\n#ifdef IS_REFRACTION_LINEAR\nrefractionColor=toGammaSpace(refractionColor);\n#endif\nrefractionColor*=vRefractionInfos.x;\n#endif\n\nvec3 reflectionColor=vec3(0.,0.,0.);\n#ifdef REFLECTION\nvec3 vReflectionUVW=computeReflectionCoords(vec4(vPositionW,1.0),normalW);\n#ifdef REFLECTIONMAP_3D\n#ifdef ROUGHNESS\nfloat bias=vReflectionInfos.y;\n#ifdef SPECULARTERM\n#ifdef SPECULAR\n#ifdef GLOSSINESS\nbias*=(1.0-specularMapColor.a);\n#endif\n#endif\n#endif\nreflectionColor=textureCube(reflectionCubeSampler,vReflectionUVW,bias).rgb;\n#else\nreflectionColor=textureCube(reflectionCubeSampler,vReflectionUVW).rgb;\n#endif\n#else\nvec2 coords=vReflectionUVW.xy;\n#ifdef REFLECTIONMAP_PROJECTION\ncoords/=vReflectionUVW.z;\n#endif\ncoords.y=1.0-coords.y;\nreflectionColor=texture2D(reflection2DSampler,coords).rgb;\n#endif\n#ifdef IS_REFLECTION_LINEAR\nreflectionColor=toGammaSpace(reflectionColor);\n#endif\nreflectionColor*=vReflectionInfos.x;\n#ifdef REFLECTIONFRESNEL\nfloat reflectionFresnelTerm=computeFresnelTerm(viewDirectionW,normalW,reflectionRightColor.a,reflectionLeftColor.a);\n#ifdef REFLECTIONFRESNELFROMSPECULAR\n#ifdef SPECULARTERM\nreflectionColor*=specularColor.rgb*(1.0-reflectionFresnelTerm)+reflectionFresnelTerm*reflectionRightColor.rgb;\n#else\nreflectionColor*=reflectionLeftColor.rgb*(1.0-reflectionFresnelTerm)+reflectionFresnelTerm*reflectionRightColor.rgb;\n#endif\n#else\nreflectionColor*=reflectionLeftColor.rgb*(1.0-reflectionFresnelTerm)+reflectionFresnelTerm*reflectionRightColor.rgb;\n#endif\n#endif\n#endif\n#ifdef REFRACTIONFRESNEL\nfloat refractionFresnelTerm=computeFresnelTerm(viewDirectionW,normalW,refractionRightColor.a,refractionLeftColor.a);\nrefractionColor*=refractionLeftColor.rgb*(1.0-refractionFresnelTerm)+refractionFresnelTerm*refractionRightColor.rgb;\n#endif\n#ifdef OPACITY\nvec4 opacityMap=texture2D(opacitySampler,vOpacityUV+uvOffset);\n#ifdef OPACITYRGB\nopacityMap.rgb=opacityMap.rgb*vec3(0.3,0.59,0.11);\nalpha*=(opacityMap.x+opacityMap.y+opacityMap.z)* vOpacityInfos.y;\n#else\nalpha*=opacityMap.a*vOpacityInfos.y;\n#endif\n#endif\n#ifdef VERTEXALPHA\nalpha*=vColor.a;\n#endif\n#ifdef OPACITYFRESNEL\nfloat opacityFresnelTerm=computeFresnelTerm(viewDirectionW,normalW,opacityParts.z,opacityParts.w);\nalpha+=opacityParts.x*(1.0-opacityFresnelTerm)+opacityFresnelTerm*opacityParts.y;\n#endif\n\nvec3 emissiveColor=vEmissiveColor;\n#ifdef EMISSIVE\nemissiveColor+=texture2D(emissiveSampler,vEmissiveUV+uvOffset).rgb*vEmissiveInfos.y;\n#endif\n#ifdef EMISSIVEFRESNEL\nfloat emissiveFresnelTerm=computeFresnelTerm(viewDirectionW,normalW,emissiveRightColor.a,emissiveLeftColor.a);\nemissiveColor*=emissiveLeftColor.rgb*(1.0-emissiveFresnelTerm)+emissiveFresnelTerm*emissiveRightColor.rgb;\n#endif\n\n#ifdef DIFFUSEFRESNEL\nfloat diffuseFresnelTerm=computeFresnelTerm(viewDirectionW,normalW,diffuseRightColor.a,diffuseLeftColor.a);\ndiffuseBase*=diffuseLeftColor.rgb*(1.0-diffuseFresnelTerm)+diffuseFresnelTerm*diffuseRightColor.rgb;\n#endif\n\n#ifdef EMISSIVEASILLUMINATION\nvec3 finalDiffuse=clamp(diffuseBase*diffuseColor+vAmbientColor,0.0,1.0)*baseColor.rgb;\n#else\n#ifdef LINKEMISSIVEWITHDIFFUSE\nvec3 finalDiffuse=clamp((diffuseBase+emissiveColor)*diffuseColor+vAmbientColor,0.0,1.0)*baseColor.rgb;\n#else\nvec3 finalDiffuse=clamp(diffuseBase*diffuseColor+emissiveColor+vAmbientColor,0.0,1.0)*baseColor.rgb;\n#endif\n#endif\n#ifdef SPECULARTERM\nvec3 finalSpecular=specularBase*specularColor;\n#ifdef SPECULAROVERALPHA\nalpha=clamp(alpha+dot(finalSpecular,vec3(0.3,0.59,0.11)),0.,1.);\n#endif\n#else\nvec3 finalSpecular=vec3(0.0);\n#endif\n#ifdef REFLECTIONOVERALPHA\nalpha=clamp(alpha+dot(reflectionColor,vec3(0.3,0.59,0.11)),0.,1.);\n#endif\n\n#ifdef EMISSIVEASILLUMINATION\nvec4 color=vec4(clamp(finalDiffuse*baseAmbientColor+finalSpecular+reflectionColor+emissiveColor+refractionColor,0.0,1.0),alpha);\n#else\nvec4 color=vec4(finalDiffuse*baseAmbientColor+finalSpecular+reflectionColor+refractionColor,alpha);\n#endif\n\n#ifdef LIGHTMAP\n#ifndef LIGHTMAPEXCLUDED\n#ifdef USELIGHTMAPASSHADOWMAP\ncolor.rgb*=lightmapColor;\n#else\ncolor.rgb+=lightmapColor;\n#endif\n#endif\n#endif\n#define CUSTOM_FRAGMENT_BEFORE_FOG\ncolor.rgb=max(color.rgb,0.);\n#include<logDepthFragment>\n#include<fogFragment>\n\n\n#ifdef IMAGEPROCESSINGPOSTPROCESS\ncolor.rgb=toLinearSpace(color.rgb);\n#else\n#ifdef IMAGEPROCESSING\ncolor.rgb=toLinearSpace(color.rgb);\ncolor=applyImageProcessing(color);\n#endif\n#endif\n#ifdef PREMULTIPLYALPHA\n\ncolor.rgb*=color.a;\n#endif\n#define CUSTOM_FRAGMENT_BEFORE_FRAGCOLOR\ngl_FragColor=color;\n}\n","pbrVertexShader":"precision highp float;\n#include<__decl__pbrVertex>\n\nattribute vec3 position;\n#ifdef NORMAL\nattribute vec3 normal;\n#endif\n#ifdef TANGENT\nattribute vec4 tangent;\n#endif\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif\n#ifdef MAINUV2\nvarying vec2 vMainUV2; \n#endif \n#ifdef VERTEXCOLOR\nattribute vec4 color;\n#endif\n#include<helperFunctions>\n#include<bonesDeclaration>\n\n#include<instancesDeclaration>\n#if defined(ALBEDO) && ALBEDODIRECTUV == 0\nvarying vec2 vAlbedoUV;\n#endif\n#if defined(AMBIENT) && AMBIENTDIRECTUV == 0\nvarying vec2 vAmbientUV;\n#endif\n#if defined(OPACITY) && OPACITYDIRECTUV == 0\nvarying vec2 vOpacityUV;\n#endif\n#if defined(EMISSIVE) && EMISSIVEDIRECTUV == 0\nvarying vec2 vEmissiveUV;\n#endif\n#if defined(LIGHTMAP) && LIGHTMAPDIRECTUV == 0\nvarying vec2 vLightmapUV;\n#endif\n#if defined(REFLECTIVITY) && REFLECTIVITYDIRECTUV == 0\nvarying vec2 vReflectivityUV;\n#endif\n#if defined(MICROSURFACEMAP) && MICROSURFACEMAPDIRECTUV == 0\nvarying vec2 vMicroSurfaceSamplerUV;\n#endif\n#if defined(BUMP) && BUMPDIRECTUV == 0\nvarying vec2 vBumpUV;\n#endif\n\nvarying vec3 vPositionW;\n#ifdef NORMAL\nvarying vec3 vNormalW;\n#if defined(USESPHERICALFROMREFLECTIONMAP) && defined(USESPHERICALINVERTEX)\nvarying vec3 vEnvironmentIrradiance;\n#include<harmonicsFunctions>\n#endif\n#endif\n#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#endif\n#include<bumpVertexDeclaration>\n#include<clipPlaneVertexDeclaration>\n#include<fogVertexDeclaration>\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n#include<morphTargetsVertexGlobalDeclaration>\n#include<morphTargetsVertexDeclaration>[0..maxSimultaneousMorphTargets]\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\n#include<logDepthDeclaration>\nvoid main(void) {\nvec3 positionUpdated=position;\n#ifdef NORMAL\nvec3 normalUpdated=normal;\n#endif\n#ifdef TANGENT\nvec4 tangentUpdated=tangent;\n#endif\n#include<morphTargetsVertex>[0..maxSimultaneousMorphTargets]\n#ifdef REFLECTIONMAP_SKYBOX\n#ifdef REFLECTIONMAP_SKYBOX_TRANSFORMED\nvPositionUVW=(reflectionMatrix*vec4(positionUpdated,1.0)).xyz;\n#else\nvPositionUVW=positionUpdated;\n#endif\n#endif \n#include<instancesVertex>\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(positionUpdated,1.0);\nvec4 worldPos=finalWorld*vec4(positionUpdated,1.0);\nvPositionW=vec3(worldPos);\n#ifdef NORMAL\nmat3 normalWorld=mat3(finalWorld);\n#ifdef NONUNIFORMSCALING\nnormalWorld=transposeMat3(inverseMat3(normalWorld));\n#endif\nvNormalW=normalize(normalWorld*normalUpdated);\n#if defined(USESPHERICALFROMREFLECTIONMAP) && defined(USESPHERICALINVERTEX)\nvec3 reflectionVector=vec3(reflectionMatrix*vec4(vNormalW,0)).xyz;\n#ifdef REFLECTIONMAP_OPPOSITEZ\nreflectionVector.z*=-1.0;\n#endif\nvEnvironmentIrradiance=environmentIrradianceJones(reflectionVector);\n#endif\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvDirectionW=normalize(vec3(finalWorld*vec4(positionUpdated,0.0)));\n#endif\n\n#ifndef UV1\nvec2 uv=vec2(0.,0.);\n#endif\n#ifndef UV2\nvec2 uv2=vec2(0.,0.);\n#endif\n#ifdef MAINUV1\nvMainUV1=uv;\n#endif \n#ifdef MAINUV2\nvMainUV2=uv2;\n#endif \n#if defined(ALBEDO) && ALBEDODIRECTUV == 0 \nif (vAlbedoInfos.x == 0.)\n{\nvAlbedoUV=vec2(albedoMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvAlbedoUV=vec2(albedoMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(AMBIENT) && AMBIENTDIRECTUV == 0 \nif (vAmbientInfos.x == 0.)\n{\nvAmbientUV=vec2(ambientMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvAmbientUV=vec2(ambientMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(OPACITY) && OPACITYDIRECTUV == 0 \nif (vOpacityInfos.x == 0.)\n{\nvOpacityUV=vec2(opacityMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvOpacityUV=vec2(opacityMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(EMISSIVE) && EMISSIVEDIRECTUV == 0 \nif (vEmissiveInfos.x == 0.)\n{\nvEmissiveUV=vec2(emissiveMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvEmissiveUV=vec2(emissiveMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(LIGHTMAP) && LIGHTMAPDIRECTUV == 0 \nif (vLightmapInfos.x == 0.)\n{\nvLightmapUV=vec2(lightmapMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvLightmapUV=vec2(lightmapMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(REFLECTIVITY) && REFLECTIVITYDIRECTUV == 0 \nif (vReflectivityInfos.x == 0.)\n{\nvReflectivityUV=vec2(reflectivityMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvReflectivityUV=vec2(reflectivityMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(MICROSURFACEMAP) && MICROSURFACEMAPDIRECTUV == 0 \nif (vMicroSurfaceSamplerInfos.x == 0.)\n{\nvMicroSurfaceSamplerUV=vec2(microSurfaceSamplerMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvMicroSurfaceSamplerUV=vec2(microSurfaceSamplerMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n#if defined(BUMP) && BUMPDIRECTUV == 0 \nif (vBumpInfos.x == 0.)\n{\nvBumpUV=vec2(bumpMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvBumpUV=vec2(bumpMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n\n#include<bumpVertex>\n\n#include<clipPlaneVertex>\n\n#include<fogVertex>\n\n#include<shadowsVertex>[0..maxSimultaneousLights]\n\n#ifdef VERTEXCOLOR\nvColor=color;\n#endif\n\n#ifdef POINTSIZE\ngl_PointSize=pointSize;\n#endif\n\n#include<logDepthVertex>\n}","pbrPixelShader":"#if defined(BUMP) || !defined(NORMAL) || defined(FORCENORMALFORWARD) || defined(SPECULARAA)\n#extension GL_OES_standard_derivatives : enable\n#endif\n#ifdef LODBASEDMICROSFURACE\n#extension GL_EXT_shader_texture_lod : enable\n#endif\n#ifdef LOGARITHMICDEPTH\n#extension GL_EXT_frag_depth : enable\n#endif\nprecision highp float;\n#include<__decl__pbrFragment>\nuniform vec4 vEyePosition;\nuniform vec3 vAmbientColor;\nuniform vec4 vCameraInfos;\n\nvarying vec3 vPositionW;\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif \n#ifdef MAINUV2 \nvarying vec2 vMainUV2;\n#endif \n#ifdef NORMAL\nvarying vec3 vNormalW;\n#if defined(USESPHERICALFROMREFLECTIONMAP) && defined(USESPHERICALINVERTEX)\nvarying vec3 vEnvironmentIrradiance;\n#endif\n#endif\n#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#endif\n\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n\n#ifdef ALBEDO\n#if ALBEDODIRECTUV == 1\n#define vAlbedoUV vMainUV1\n#elif ALBEDODIRECTUV == 2\n#define vAlbedoUV vMainUV2\n#else\nvarying vec2 vAlbedoUV;\n#endif\nuniform sampler2D albedoSampler;\n#endif\n#ifdef AMBIENT\n#if AMBIENTDIRECTUV == 1\n#define vAmbientUV vMainUV1\n#elif AMBIENTDIRECTUV == 2\n#define vAmbientUV vMainUV2\n#else\nvarying vec2 vAmbientUV;\n#endif\nuniform sampler2D ambientSampler;\n#endif\n#ifdef OPACITY\n#if OPACITYDIRECTUV == 1\n#define vOpacityUV vMainUV1\n#elif OPACITYDIRECTUV == 2\n#define vOpacityUV vMainUV2\n#else\nvarying vec2 vOpacityUV;\n#endif\nuniform sampler2D opacitySampler;\n#endif\n#ifdef EMISSIVE\n#if EMISSIVEDIRECTUV == 1\n#define vEmissiveUV vMainUV1\n#elif EMISSIVEDIRECTUV == 2\n#define vEmissiveUV vMainUV2\n#else\nvarying vec2 vEmissiveUV;\n#endif\nuniform sampler2D emissiveSampler;\n#endif\n#ifdef LIGHTMAP\n#if LIGHTMAPDIRECTUV == 1\n#define vLightmapUV vMainUV1\n#elif LIGHTMAPDIRECTUV == 2\n#define vLightmapUV vMainUV2\n#else\nvarying vec2 vLightmapUV;\n#endif\nuniform sampler2D lightmapSampler;\n#endif\n#ifdef REFLECTIVITY\n#if REFLECTIVITYDIRECTUV == 1\n#define vReflectivityUV vMainUV1\n#elif REFLECTIVITYDIRECTUV == 2\n#define vReflectivityUV vMainUV2\n#else\nvarying vec2 vReflectivityUV;\n#endif\nuniform sampler2D reflectivitySampler;\n#endif\n#ifdef MICROSURFACEMAP\n#if MICROSURFACEMAPDIRECTUV == 1\n#define vMicroSurfaceSamplerUV vMainUV1\n#elif MICROSURFACEMAPDIRECTUV == 2\n#define vMicroSurfaceSamplerUV vMainUV2\n#else\nvarying vec2 vMicroSurfaceSamplerUV;\n#endif\nuniform sampler2D microSurfaceSampler;\n#endif\n\n#ifdef REFRACTION\n#ifdef REFRACTIONMAP_3D\n#define sampleRefraction(s,c) textureCube(s,c)\nuniform samplerCube refractionSampler;\n#ifdef LODBASEDMICROSFURACE\n#define sampleRefractionLod(s,c,l) textureCubeLodEXT(s,c,l)\n#else\nuniform samplerCube refractionSamplerLow;\nuniform samplerCube refractionSamplerHigh;\n#endif\n#else\n#define sampleRefraction(s,c) texture2D(s,c)\nuniform sampler2D refractionSampler;\n#ifdef LODBASEDMICROSFURACE\n#define sampleRefractionLod(s,c,l) texture2DLodEXT(s,c,l)\n#else\nuniform samplerCube refractionSamplerLow;\nuniform samplerCube refractionSamplerHigh;\n#endif\n#endif\n#endif\n\n#ifdef REFLECTION\n#ifdef REFLECTIONMAP_3D\n#define sampleReflection(s,c) textureCube(s,c)\nuniform samplerCube reflectionSampler;\n#ifdef LODBASEDMICROSFURACE\n#define sampleReflectionLod(s,c,l) textureCubeLodEXT(s,c,l)\n#else\nuniform samplerCube reflectionSamplerLow;\nuniform samplerCube reflectionSamplerHigh;\n#endif\n#else\n#define sampleReflection(s,c) texture2D(s,c)\nuniform sampler2D reflectionSampler;\n#ifdef LODBASEDMICROSFURACE\n#define sampleReflectionLod(s,c,l) texture2DLodEXT(s,c,l)\n#else\nuniform samplerCube reflectionSamplerLow;\nuniform samplerCube reflectionSamplerHigh;\n#endif\n#endif\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#else\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\n#endif\n#include<reflectionFunction>\n#endif\n#ifdef ENVIRONMENTBRDF\nuniform sampler2D environmentBrdfSampler;\n#endif\n\n#ifndef FROMLINEARSPACE\n#define FROMLINEARSPACE;\n#endif\n#include<imageProcessingDeclaration>\n#include<helperFunctions>\n#include<imageProcessingFunctions>\n\n#include<shadowsFragmentFunctions>\n#include<pbrFunctions>\n#include<harmonicsFunctions>\n#include<pbrLightFunctions>\n#include<bumpFragmentFunctions>\n#include<clipPlaneFragmentDeclaration>\n#include<logDepthDeclaration>\n\n#include<fogFragmentDeclaration>\nvoid main(void) {\n#include<clipPlaneFragment>\n\n\nvec3 viewDirectionW=normalize(vEyePosition.xyz-vPositionW);\n#ifdef NORMAL\nvec3 normalW=normalize(vNormalW);\n#else\nvec3 normalW=normalize(cross(dFdx(vPositionW),dFdy(vPositionW)))*vEyePosition.w;\n#endif\n#include<bumpFragment>\n#ifdef SPECULARAA\nvec3 nDfdx=dFdx(normalW.xyz);\nvec3 nDfdy=dFdy(normalW.xyz);\nfloat slopeSquare=max(dot(nDfdx,nDfdx),dot(nDfdy,nDfdy));\n\nfloat geometricRoughnessFactor=pow(clamp(slopeSquare ,0.,1.),0.333);\n\nfloat geometricAlphaGFactor=sqrt(slopeSquare);\n#else\nfloat geometricRoughnessFactor=0.;\n#endif\n#if defined(FORCENORMALFORWARD) && defined(NORMAL)\nvec3 faceNormal=normalize(cross(dFdx(vPositionW),dFdy(vPositionW)))*vEyePosition.w;\n#if defined(TWOSIDEDLIGHTING)\nfaceNormal=gl_FrontFacing ? faceNormal : -faceNormal;\n#endif\nnormalW*=sign(dot(normalW,faceNormal));\n#endif\n#if defined(TWOSIDEDLIGHTING) && defined(NORMAL)\nnormalW=gl_FrontFacing ? normalW : -normalW;\n#endif\n\n\nvec3 surfaceAlbedo=vAlbedoColor.rgb;\n\nfloat alpha=vAlbedoColor.a;\n#ifdef ALBEDO\nvec4 albedoTexture=texture2D(albedoSampler,vAlbedoUV+uvOffset);\n#if defined(ALPHAFROMALBEDO) || defined(ALPHATEST)\nalpha*=albedoTexture.a;\n#endif\nsurfaceAlbedo*=toLinearSpace(albedoTexture.rgb);\nsurfaceAlbedo*=vAlbedoInfos.y;\n#endif\n\n#ifdef OPACITY\nvec4 opacityMap=texture2D(opacitySampler,vOpacityUV+uvOffset);\n#ifdef OPACITYRGB\nalpha=getLuminance(opacityMap.rgb);\n#else\nalpha*=opacityMap.a;\n#endif\nalpha*=vOpacityInfos.y;\n#endif\n#ifdef VERTEXALPHA\nalpha*=vColor.a;\n#endif\n#if !defined(LINKREFRACTIONTOTRANSPARENCY) && !defined(ALPHAFRESNEL)\n#ifdef ALPHATEST\nif (alpha<ALPHATESTVALUE)\ndiscard;\n#ifndef ALPHABLEND\n\nalpha=1.0;\n#endif\n#endif\n#endif\n#include<depthPrePass>\n#ifdef VERTEXCOLOR\nsurfaceAlbedo*=vColor.rgb;\n#endif\n\nvec3 ambientOcclusionColor=vec3(1.,1.,1.);\n#ifdef AMBIENT\nvec3 ambientOcclusionColorMap=texture2D(ambientSampler,vAmbientUV+uvOffset).rgb*vAmbientInfos.y;\n#ifdef AMBIENTINGRAYSCALE\nambientOcclusionColorMap=vec3(ambientOcclusionColorMap.r,ambientOcclusionColorMap.r,ambientOcclusionColorMap.r);\n#endif\nambientOcclusionColor=mix(ambientOcclusionColor,ambientOcclusionColorMap,vAmbientInfos.z);\n#endif\n#ifdef UNLIT\nvec3 diffuseBase=vec3(1.,1.,1.);\n#else\n\nfloat microSurface=vReflectivityColor.a;\nvec3 surfaceReflectivityColor=vReflectivityColor.rgb;\n#ifdef METALLICWORKFLOW\nvec2 metallicRoughness=surfaceReflectivityColor.rg;\n#ifdef REFLECTIVITY\nvec4 surfaceMetallicColorMap=texture2D(reflectivitySampler,vReflectivityUV+uvOffset);\n#ifdef AOSTOREINMETALMAPRED\nvec3 aoStoreInMetalMap=vec3(surfaceMetallicColorMap.r,surfaceMetallicColorMap.r,surfaceMetallicColorMap.r);\nambientOcclusionColor=mix(ambientOcclusionColor,aoStoreInMetalMap,vReflectivityInfos.z);\n#endif\n#ifdef METALLNESSSTOREINMETALMAPBLUE\nmetallicRoughness.r*=surfaceMetallicColorMap.b;\n#else\nmetallicRoughness.r*=surfaceMetallicColorMap.r;\n#endif\n#ifdef ROUGHNESSSTOREINMETALMAPALPHA\nmetallicRoughness.g*=surfaceMetallicColorMap.a;\n#else\n#ifdef ROUGHNESSSTOREINMETALMAPGREEN\nmetallicRoughness.g*=surfaceMetallicColorMap.g;\n#endif\n#endif\n#endif\n#ifdef MICROSURFACEMAP\nvec4 microSurfaceTexel=texture2D(microSurfaceSampler,vMicroSurfaceSamplerUV+uvOffset)*vMicroSurfaceSamplerInfos.y;\nmetallicRoughness.g*=microSurfaceTexel.r;\n#endif\n\nmicroSurface=1.0-metallicRoughness.g;\n\nvec3 baseColor=surfaceAlbedo;\n\n\nconst vec3 DefaultSpecularReflectanceDielectric=vec3(0.04,0.04,0.04);\n\nsurfaceAlbedo=mix(baseColor.rgb*(1.0-DefaultSpecularReflectanceDielectric.r),vec3(0.,0.,0.),metallicRoughness.r);\n\nsurfaceReflectivityColor=mix(DefaultSpecularReflectanceDielectric,baseColor,metallicRoughness.r);\n#else\n#ifdef REFLECTIVITY\nvec4 surfaceReflectivityColorMap=texture2D(reflectivitySampler,vReflectivityUV+uvOffset);\nsurfaceReflectivityColor*=toLinearSpace(surfaceReflectivityColorMap.rgb);\nsurfaceReflectivityColor*=vReflectivityInfos.y;\n#ifdef MICROSURFACEFROMREFLECTIVITYMAP\nmicroSurface*=surfaceReflectivityColorMap.a;\nmicroSurface*=vReflectivityInfos.z;\n#else\n#ifdef MICROSURFACEAUTOMATIC\nmicroSurface*=computeDefaultMicroSurface(microSurface,surfaceReflectivityColor);\n#endif\n#ifdef MICROSURFACEMAP\nvec4 microSurfaceTexel=texture2D(microSurfaceSampler,vMicroSurfaceSamplerUV+uvOffset)*vMicroSurfaceSamplerInfos.y;\nmicroSurface*=microSurfaceTexel.r;\n#endif\n#endif\n#endif\n#endif\n\nmicroSurface=clamp(microSurface,0.,1.);\n\nfloat roughness=1.-microSurface;\n\n#ifdef ALPHAFRESNEL\n#if defined(ALPHATEST) || defined(ALPHABLEND)\n\n\n\nfloat opacityPerceptual=alpha;\n#ifdef LINEARALPHAFRESNEL\nfloat opacity0=opacityPerceptual;\n#else\nfloat opacity0=opacityPerceptual*opacityPerceptual;\n#endif\nfloat opacity90=fresnelGrazingReflectance(opacity0);\nvec3 normalForward=faceforward(normalW,-viewDirectionW,normalW);\n\nalpha=fresnelSchlickEnvironmentGGX(clamp(dot(viewDirectionW,normalForward),0.0,1.0),vec3(opacity0),vec3(opacity90),sqrt(microSurface)).x;\n#ifdef ALPHATEST\nif (alpha<ALPHATESTVALUE)\ndiscard;\n#ifndef ALPHABLEND\n\nalpha=1.0;\n#endif\n#endif\n#endif\n#endif\n\n\nfloat NdotVUnclamped=dot(normalW,viewDirectionW);\nfloat NdotV=clamp(NdotVUnclamped,0.,1.)+0.00001;\nfloat alphaG=convertRoughnessToAverageSlope(roughness);\n#ifdef SPECULARAA\n\n\nalphaG+=(0.75*geometricAlphaGFactor);\n#endif\n\n#ifdef REFRACTION\nvec4 environmentRefraction=vec4(0.,0.,0.,0.);\nvec3 refractionVector=refract(-viewDirectionW,normalW,vRefractionInfos.y);\n#ifdef REFRACTIONMAP_OPPOSITEZ\nrefractionVector.z*=-1.0;\n#endif\n\n#ifdef REFRACTIONMAP_3D\nrefractionVector.y=refractionVector.y*vRefractionInfos.w;\nvec3 refractionCoords=refractionVector;\nrefractionCoords=vec3(refractionMatrix*vec4(refractionCoords,0));\n#else\nvec3 vRefractionUVW=vec3(refractionMatrix*(view*vec4(vPositionW+refractionVector*vRefractionInfos.z,1.0)));\nvec2 refractionCoords=vRefractionUVW.xy/vRefractionUVW.z;\nrefractionCoords.y=1.0-refractionCoords.y;\n#endif\n#ifdef LODINREFRACTIONALPHA\nfloat refractionLOD=getLodFromAlphaG(vRefractionMicrosurfaceInfos.x,alphaG,NdotVUnclamped);\n#else\nfloat refractionLOD=getLodFromAlphaG(vRefractionMicrosurfaceInfos.x,alphaG,1.0);\n#endif\n#ifdef LODBASEDMICROSFURACE\n\nrefractionLOD=refractionLOD*vRefractionMicrosurfaceInfos.y+vRefractionMicrosurfaceInfos.z;\n#ifdef LODINREFRACTIONALPHA\n\n\n\n\n\n\n\n\n\nfloat automaticRefractionLOD=UNPACK_LOD(sampleRefraction(refractionSampler,refractionCoords).a);\nfloat requestedRefractionLOD=max(automaticRefractionLOD,refractionLOD);\n#else\nfloat requestedRefractionLOD=refractionLOD;\n#endif\nenvironmentRefraction=sampleRefractionLod(refractionSampler,refractionCoords,requestedRefractionLOD);\n#else\nfloat lodRefractionNormalized=clamp(refractionLOD/log2(vRefractionMicrosurfaceInfos.x),0.,1.);\nfloat lodRefractionNormalizedDoubled=lodRefractionNormalized*2.0;\nvec4 environmentRefractionMid=sampleRefraction(refractionSampler,refractionCoords);\nif(lodRefractionNormalizedDoubled<1.0){\nenvironmentRefraction=mix(\nsampleRefraction(refractionSamplerHigh,refractionCoords),\nenvironmentRefractionMid,\nlodRefractionNormalizedDoubled\n);\n}else{\nenvironmentRefraction=mix(\nenvironmentRefractionMid,\nsampleRefraction(refractionSamplerLow,refractionCoords),\nlodRefractionNormalizedDoubled-1.0\n);\n}\n#endif\n#ifdef GAMMAREFRACTION\nenvironmentRefraction.rgb=fromRGBD(environmentRefraction);\n#endif\n#ifdef RGBDREFRACTION\nenvironmentRefraction.rgb=toLinearSpace(environmentRefraction.rgb);\n#endif\n\nenvironmentRefraction.rgb*=vRefractionInfos.x;\n#endif\n\n#ifdef REFLECTION\nvec4 environmentRadiance=vec4(0.,0.,0.,0.);\nvec3 environmentIrradiance=vec3(0.,0.,0.);\nvec3 reflectionVector=computeReflectionCoords(vec4(vPositionW,1.0),normalW);\n#ifdef REFLECTIONMAP_OPPOSITEZ\nreflectionVector.z*=-1.0;\n#endif\n\n#ifdef REFLECTIONMAP_3D\nvec3 reflectionCoords=reflectionVector;\n#else\nvec2 reflectionCoords=reflectionVector.xy;\n#ifdef REFLECTIONMAP_PROJECTION\nreflectionCoords/=reflectionVector.z;\n#endif\nreflectionCoords.y=1.0-reflectionCoords.y;\n#endif\n#if defined(LODINREFLECTIONALPHA) && !defined(REFLECTIONMAP_SKYBOX)\nfloat reflectionLOD=getLodFromAlphaG(vReflectionMicrosurfaceInfos.x,alphaG,NdotVUnclamped);\n#else\nfloat reflectionLOD=getLodFromAlphaG(vReflectionMicrosurfaceInfos.x,alphaG,1.);\n#endif\n#ifdef LODBASEDMICROSFURACE\n\nreflectionLOD=reflectionLOD*vReflectionMicrosurfaceInfos.y+vReflectionMicrosurfaceInfos.z;\n#ifdef LODINREFLECTIONALPHA\n\n\n\n\n\n\n\n\n\nfloat automaticReflectionLOD=UNPACK_LOD(sampleReflection(reflectionSampler,reflectionCoords).a);\nfloat requestedReflectionLOD=max(automaticReflectionLOD,reflectionLOD);\n#else\nfloat requestedReflectionLOD=reflectionLOD;\n#endif\nenvironmentRadiance=sampleReflectionLod(reflectionSampler,reflectionCoords,requestedReflectionLOD);\n#else\nfloat lodReflectionNormalized=clamp(reflectionLOD/log2(vReflectionMicrosurfaceInfos.x),0.,1.);\nfloat lodReflectionNormalizedDoubled=lodReflectionNormalized*2.0;\nvec4 environmentSpecularMid=sampleReflection(reflectionSampler,reflectionCoords);\nif(lodReflectionNormalizedDoubled<1.0){\nenvironmentRadiance=mix(\nsampleReflection(reflectionSamplerHigh,reflectionCoords),\nenvironmentSpecularMid,\nlodReflectionNormalizedDoubled\n);\n}else{\nenvironmentRadiance=mix(\nenvironmentSpecularMid,\nsampleReflection(reflectionSamplerLow,reflectionCoords),\nlodReflectionNormalizedDoubled-1.0\n);\n}\n#endif\n#ifdef RGBDREFLECTION\nenvironmentRadiance.rgb=fromRGBD(environmentRadiance);\n#endif\n#ifdef GAMMAREFLECTION\nenvironmentRadiance.rgb=toLinearSpace(environmentRadiance.rgb);\n#endif\n\n#ifdef USESPHERICALFROMREFLECTIONMAP\n#if defined(NORMAL) && defined(USESPHERICALINVERTEX)\nenvironmentIrradiance=vEnvironmentIrradiance;\n#else\nvec3 irradianceVector=vec3(reflectionMatrix*vec4(normalW,0)).xyz;\n#ifdef REFLECTIONMAP_OPPOSITEZ\nirradianceVector.z*=-1.0;\n#endif\nenvironmentIrradiance=environmentIrradianceJones(irradianceVector);\n#endif\n#endif\n\nenvironmentRadiance.rgb*=vReflectionInfos.x;\nenvironmentRadiance.rgb*=vReflectionColor.rgb;\nenvironmentIrradiance*=vReflectionColor.rgb;\n#endif\n\n\n\nfloat reflectance=max(max(surfaceReflectivityColor.r,surfaceReflectivityColor.g),surfaceReflectivityColor.b);\nfloat reflectance90=fresnelGrazingReflectance(reflectance);\nvec3 specularEnvironmentR0=surfaceReflectivityColor.rgb;\nvec3 specularEnvironmentR90=vec3(1.0,1.0,1.0)*reflectance90;\n\nvec3 diffuseBase=vec3(0.,0.,0.);\n#ifdef SPECULARTERM\nvec3 specularBase=vec3(0.,0.,0.);\n#endif\n#ifdef LIGHTMAP\nvec3 lightmapColor=texture2D(lightmapSampler,vLightmapUV+uvOffset).rgb;\n#ifdef GAMMALIGHTMAP\nlightmapColor=toLinearSpace(lightmapColor);\n#endif\nlightmapColor*=vLightmapInfos.y;\n#endif\nlightingInfo info;\npointLightingInfo pointInfo;\nspotLightingInfo spotInfo;\nfloat shadow=1.; \nfloat NdotL=-1.;\n#include<lightFragment>[0..maxSimultaneousLights]\n\n#if defined(ENVIRONMENTBRDF) && !defined(REFLECTIONMAP_SKYBOX)\n\nvec2 brdfSamplerUV=vec2(NdotV,roughness);\n\nvec4 environmentBrdf=texture2D(environmentBrdfSampler,brdfSamplerUV);\nvec3 specularEnvironmentReflectance=specularEnvironmentR0*environmentBrdf.x+environmentBrdf.y;\n#ifdef RADIANCEOCCLUSION\n#ifdef AMBIENTINGRAYSCALE\nfloat ambientMonochrome=ambientOcclusionColor.r;\n#else\nfloat ambientMonochrome=getLuminance(ambientOcclusionColor);\n#endif\nfloat seo=environmentRadianceOcclusion(ambientMonochrome,NdotVUnclamped);\nspecularEnvironmentReflectance*=seo;\n#endif\n#ifdef HORIZONOCCLUSION\n#ifdef BUMP\n#ifdef REFLECTIONMAP_3D\nfloat eho=environmentHorizonOcclusion(-viewDirectionW,normalW);\nspecularEnvironmentReflectance*=eho;\n#endif\n#endif\n#endif\n#else\n\nvec3 specularEnvironmentReflectance=fresnelSchlickEnvironmentGGX(NdotV,specularEnvironmentR0,specularEnvironmentR90,sqrt(microSurface));\n#endif\n\n#ifdef REFRACTION\nvec3 refractance=vec3(0.0,0.0,0.0);\nvec3 transmission=vec3(1.0,1.0,1.0);\n#ifdef LINKREFRACTIONTOTRANSPARENCY\n\ntransmission*=(1.0-alpha);\n\n\nvec3 mixedAlbedo=surfaceAlbedo;\nfloat maxChannel=max(max(mixedAlbedo.r,mixedAlbedo.g),mixedAlbedo.b);\nvec3 tint=clamp(maxChannel*mixedAlbedo,0.0,1.0);\n\nsurfaceAlbedo*=alpha;\n\nenvironmentIrradiance*=alpha;\n\nenvironmentRefraction.rgb*=tint;\n\nalpha=1.0;\n#endif\n\nvec3 bounceSpecularEnvironmentReflectance=(2.0*specularEnvironmentReflectance)/(1.0+specularEnvironmentReflectance);\nspecularEnvironmentReflectance=mix(bounceSpecularEnvironmentReflectance,specularEnvironmentReflectance,alpha);\n\ntransmission*=1.0-specularEnvironmentReflectance;\n\nrefractance=transmission;\n#endif\n\n\n\n\nsurfaceAlbedo.rgb=(1.-reflectance)*surfaceAlbedo.rgb;\n\n#ifdef REFLECTION\nvec3 finalIrradiance=environmentIrradiance;\nfinalIrradiance*=surfaceAlbedo.rgb;\n#endif\n\n#ifdef SPECULARTERM\nvec3 finalSpecular=specularBase;\nfinalSpecular=max(finalSpecular,0.0);\n\nvec3 finalSpecularScaled=finalSpecular*vLightingIntensity.x*vLightingIntensity.w;\n#endif\n\n#ifdef REFLECTION\nvec3 finalRadiance=environmentRadiance.rgb;\nfinalRadiance*=specularEnvironmentReflectance;\n\nvec3 finalRadianceScaled=finalRadiance*vLightingIntensity.z;\n#endif\n\n#ifdef REFRACTION\nvec3 finalRefraction=environmentRefraction.rgb;\nfinalRefraction*=refractance;\n#endif\n\n#ifdef ALPHABLEND\nfloat luminanceOverAlpha=0.0;\n#if defined(REFLECTION) && defined(RADIANCEOVERALPHA)\nluminanceOverAlpha+=getLuminance(finalRadianceScaled);\n#endif\n#if defined(SPECULARTERM) && defined(SPECULAROVERALPHA)\nluminanceOverAlpha+=getLuminance(finalSpecularScaled);\n#endif\n#if defined(RADIANCEOVERALPHA) || defined(SPECULAROVERALPHA)\nalpha=clamp(alpha+luminanceOverAlpha*luminanceOverAlpha,0.,1.);\n#endif\n#endif\n#endif\n\nvec3 finalDiffuse=diffuseBase;\nfinalDiffuse.rgb+=vAmbientColor;\nfinalDiffuse*=surfaceAlbedo.rgb;\nfinalDiffuse=max(finalDiffuse,0.0);\n\nvec3 finalEmissive=vEmissiveColor;\n#ifdef EMISSIVE\nvec3 emissiveColorTex=texture2D(emissiveSampler,vEmissiveUV+uvOffset).rgb;\nfinalEmissive*=toLinearSpace(emissiveColorTex.rgb);\nfinalEmissive*=vEmissiveInfos.y;\n#endif\n\n#ifdef AMBIENT\nvec3 ambientOcclusionForDirectDiffuse=mix(vec3(1.),ambientOcclusionColor,vAmbientInfos.w);\n#else\nvec3 ambientOcclusionForDirectDiffuse=ambientOcclusionColor;\n#endif\n\n\n\nvec4 finalColor=vec4(\nfinalDiffuse*ambientOcclusionForDirectDiffuse*vLightingIntensity.x +\n#ifndef UNLIT\n#ifdef REFLECTION\nfinalIrradiance*ambientOcclusionColor*vLightingIntensity.z +\n#endif\n#ifdef SPECULARTERM\n\n\nfinalSpecularScaled +\n#endif\n#ifdef REFLECTION\n\n\nfinalRadianceScaled +\n#endif\n#ifdef REFRACTION\nfinalRefraction*vLightingIntensity.z +\n#endif\n#endif\nfinalEmissive*vLightingIntensity.y,\nalpha);\n\n#ifdef LIGHTMAP\n#ifndef LIGHTMAPEXCLUDED\n#ifdef USELIGHTMAPASSHADOWMAP\nfinalColor.rgb*=lightmapColor;\n#else\nfinalColor.rgb+=lightmapColor;\n#endif\n#endif\n#endif\n\nfinalColor=max(finalColor,0.0);\n#include<logDepthFragment>\n#include<fogFragment>(color,finalColor)\n#ifdef IMAGEPROCESSINGPOSTPROCESS\n\n\nfinalColor.rgb=clamp(finalColor.rgb,0.,30.0);\n#else\n\nfinalColor=applyImageProcessing(finalColor);\n#endif\n#ifdef PREMULTIPLYALPHA\n\nfinalColor.rgb*=finalColor.a;\n#endif\ngl_FragColor=finalColor;\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n}","rgbdEncodePixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n#include<helperFunctions>\nvoid main(void) \n{\ngl_FragColor=toRGBD(texture2D(textureSampler,vUV).rgb);\n}","rgbdDecodePixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n#include<helperFunctions>\nvoid main(void) \n{\ngl_FragColor=vec4(fromRGBD(texture2D(textureSampler,vUV)),1.0);\n}","spritesVertexShader":"\nattribute vec4 position;\nattribute vec4 options;\nattribute vec4 cellInfo;\nattribute vec4 color;\n\nuniform vec2 textureInfos;\nuniform mat4 view;\nuniform mat4 projection;\n\nvarying vec2 vUV;\nvarying vec4 vColor;\n#include<fogVertexDeclaration>\nvoid main(void) { \nvec3 viewPos=(view*vec4(position.xyz,1.0)).xyz; \nvec2 cornerPos;\nfloat angle=position.w;\nvec2 size=vec2(options.x,options.y);\nvec2 offset=options.zw;\nvec2 uvScale=textureInfos.xy;\ncornerPos=vec2(offset.x-0.5,offset.y-0.5)*size;\n\nvec3 rotatedCorner;\nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.y=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.z=0.;\n\nviewPos+=rotatedCorner;\ngl_Position=projection*vec4(viewPos,1.0); \n\nvColor=color;\n\nvec2 uvOffset=vec2(abs(offset.x-cellInfo.x),1.0-abs(offset.y-cellInfo.y));\nvUV=(uvOffset+cellInfo.zw)*uvScale;\n\n#ifdef FOG\nvFogDistance=viewPos;\n#endif\n}","spritesPixelShader":"uniform bool alphaTest;\nvarying vec4 vColor;\n\nvarying vec2 vUV;\nuniform sampler2D diffuseSampler;\n\n#include<fogFragmentDeclaration>\nvoid main(void) {\nvec4 color=texture2D(diffuseSampler,vUV);\nif (alphaTest) \n{\nif (color.a<0.95)\ndiscard;\n}\ncolor*=vColor;\n#include<fogFragment>\ngl_FragColor=color;\n}","particlesVertexShader":"\nattribute vec3 position;\nattribute vec4 color;\nattribute float angle;\nattribute vec2 size;\n#ifdef ANIMATESHEET \nattribute float cellIndex;\n#endif\n#ifndef BILLBOARD \nattribute vec3 direction;\n#endif\nattribute vec2 offset;\n\nuniform mat4 view;\nuniform mat4 projection;\nuniform vec2 translationPivot;\n#ifdef ANIMATESHEET \nuniform vec3 particlesInfos; \n#endif\n\nvarying vec2 vUV;\nvarying vec4 vColor;\n#if defined(CLIPPLANE) || defined(CLIPPLANE2) || defined(CLIPPLANE3) || defined(CLIPPLANE4)\nuniform mat4 invView;\n#endif\n#include<clipPlaneVertexDeclaration>\n#ifdef BILLBOARD\nuniform vec3 eyePosition; \n#endif\nvec3 rotate(vec3 yaxis,vec3 rotatedCorner) {\nvec3 xaxis=normalize(cross(vec3(0.,1.0,0.),yaxis));\nvec3 zaxis=normalize(cross(yaxis,xaxis));\nvec3 row0=vec3(xaxis.x,xaxis.y,xaxis.z);\nvec3 row1=vec3(yaxis.x,yaxis.y,yaxis.z);\nvec3 row2=vec3(zaxis.x,zaxis.y,zaxis.z);\nmat3 rotMatrix=mat3(row0,row1,row2);\nvec3 alignedCorner=rotMatrix*rotatedCorner;\nreturn position+alignedCorner; \n}\nvoid main(void) { \nvec2 cornerPos;\ncornerPos=(vec2(offset.x-0.5,offset.y-0.5)-translationPivot)*size+translationPivot;\n#ifdef BILLBOARD \n\nvec3 rotatedCorner;\n#ifdef BILLBOARDY \nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.z=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.y=0.;\nvec3 yaxis=position-eyePosition;\nyaxis.y=0.;\nvec3 worldPos=rotate(normalize(yaxis),rotatedCorner);\nvec3 viewPos=(view*vec4(worldPos,1.0)).xyz; \n#else\nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.y=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.z=0.;\nvec3 viewPos=(view*vec4(position,1.0)).xyz+rotatedCorner; \n#endif\n\ngl_Position=projection*vec4(viewPos,1.0); \n#else\n\nvec3 rotatedCorner;\nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.z=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.y=0.;\nvec3 yaxis=normalize(direction);\nvec3 worldPos=rotate(yaxis,rotatedCorner);\ngl_Position=projection*view*vec4(worldPos,1.0); \n#endif \nvColor=color;\n#ifdef ANIMATESHEET\nfloat rowOffset=floor(cellIndex/particlesInfos.z);\nfloat columnOffset=cellIndex-rowOffset*particlesInfos.z;\nvec2 uvScale=particlesInfos.xy;\nvec2 uvOffset=vec2(offset.x ,1.0-offset.y);\nvUV=(uvOffset+vec2(columnOffset,rowOffset))*uvScale;\n#else\nvUV=offset;\n#endif\n\n#if defined(CLIPPLANE) || defined(CLIPPLANE2) || defined(CLIPPLANE3) || defined(CLIPPLANE4)\nvec4 worldPos=invView*vec4(viewPos,1.0);\n#endif\n#include<clipPlaneVertex>\n}","particlesPixelShader":"\nvarying vec2 vUV;\nvarying vec4 vColor;\nuniform vec4 textureMask;\nuniform sampler2D diffuseSampler;\n#include<clipPlaneFragmentDeclaration>\n#include<imageProcessingDeclaration>\n#include<helperFunctions>\n#include<imageProcessingFunctions>\nvoid main(void) {\n#include<clipPlaneFragment>\nvec4 textureColor=texture2D(diffuseSampler,vUV);\nvec4 baseColor=(textureColor*textureMask+(vec4(1.,1.,1.,1.)-textureMask))*vColor;\n#ifdef BLENDMULTIPLYMODE\nfloat alpha=vColor.a*textureColor.a;\nbaseColor.rgb=baseColor.rgb*alpha+vec3(1.0)*(1.0-alpha);\n#endif\n\n\n#ifdef IMAGEPROCESSINGPOSTPROCESS\nbaseColor.rgb=toLinearSpace(baseColor.rgb);\n#else\n#ifdef IMAGEPROCESSING\nbaseColor.rgb=toLinearSpace(baseColor.rgb);\nbaseColor=applyImageProcessing(baseColor);\n#endif\n#endif\ngl_FragColor=baseColor;\n}","colorVertexShader":"\nattribute vec3 position;\n#ifdef VERTEXCOLOR\nattribute vec4 color;\n#endif\n#include<bonesDeclaration>\n\nuniform mat4 viewProjection;\nuniform mat4 world;\n\n#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#endif\nvoid main(void) {\nmat4 finalWorld=world;\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(position,1.0);\n#ifdef VERTEXCOLOR\n\nvColor=color;\n#endif\n}","colorPixelShader":"#ifdef VERTEXCOLOR\nvarying vec4 vColor;\n#else\nuniform vec4 color;\n#endif\nvoid main(void) {\n#ifdef VERTEXCOLOR\ngl_FragColor=vColor;\n#else\ngl_FragColor=color;\n#endif\n}","gpuRenderParticlesVertexShader":"#version 300 es\nuniform mat4 view;\nuniform mat4 projection;\nuniform vec2 translationPivot;\n\nin vec3 position;\nin float age;\nin float life;\nin vec3 size;\n#ifndef BILLBOARD\nin vec3 initialDirection;\n#endif\nin float angle;\n#ifdef ANIMATESHEET\nin float cellIndex;\n#endif\nin vec2 offset;\nin vec2 uv;\nout vec2 vUV;\nout vec4 vColor;\n#if defined(CLIPPLANE) || defined(CLIPPLANE2) || defined(CLIPPLANE3) || defined(CLIPPLANE4)\nuniform mat4 invView;\n#endif\n#include<clipPlaneVertexDeclaration2>\n#ifdef COLORGRADIENTS\nuniform sampler2D colorGradientSampler;\n#else\nuniform vec4 colorDead;\nin vec4 color;\n#endif\n#ifdef ANIMATESHEET\nuniform vec3 sheetInfos;\n#endif\n#ifdef BILLBOARD\nuniform vec3 eyePosition; \n#endif\nvec3 rotate(vec3 yaxis,vec3 rotatedCorner) {\nvec3 xaxis=normalize(cross(vec3(0.,1.0,0.),yaxis));\nvec3 zaxis=normalize(cross(yaxis,xaxis));\nvec3 row0=vec3(xaxis.x,xaxis.y,xaxis.z);\nvec3 row1=vec3(yaxis.x,yaxis.y,yaxis.z);\nvec3 row2=vec3(zaxis.x,zaxis.y,zaxis.z);\nmat3 rotMatrix=mat3(row0,row1,row2);\nvec3 alignedCorner=rotMatrix*rotatedCorner;\nreturn position+alignedCorner;\n}\nvoid main() {\n#ifdef ANIMATESHEET\nfloat rowOffset=floor(cellIndex/sheetInfos.z);\nfloat columnOffset=cellIndex-rowOffset*sheetInfos.z;\nvec2 uvScale=sheetInfos.xy;\nvec2 uvOffset=vec2(uv.x ,1.0-uv.y);\nvUV=(uvOffset+vec2(columnOffset,rowOffset))*uvScale;\n#else \nvUV=uv;\n#endif\nfloat ratio=age/life;\n#ifdef COLORGRADIENTS\nvColor=texture(colorGradientSampler,vec2(ratio,0));\n#else\nvColor=color*vec4(1.0-ratio)+colorDead*vec4(ratio);\n#endif\nvec2 cornerPos=(offset-translationPivot)*size.yz*size.x+translationPivot;\n#ifdef BILLBOARD\nvec4 rotatedCorner;\nrotatedCorner.w=0.;\n#ifdef BILLBOARDY \nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.z=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.y=0.;\nvec3 yaxis=position-eyePosition;\nyaxis.y=0.;\nvec3 worldPos=rotate(normalize(yaxis),rotatedCorner.xyz);\nvec4 viewPosition=(view*vec4(worldPos,1.0)); \n#else\n\nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.y=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nrotatedCorner.z=0.;\n\nvec4 viewPosition=view*vec4(position,1.0)+rotatedCorner;\n#endif\n#else\n\nvec3 rotatedCorner;\nrotatedCorner.x=cornerPos.x*cos(angle)-cornerPos.y*sin(angle);\nrotatedCorner.y=0.;\nrotatedCorner.z=cornerPos.x*sin(angle)+cornerPos.y*cos(angle);\nvec3 yaxis=normalize(initialDirection);\nvec3 worldPos=rotate(yaxis,rotatedCorner);\n\nvec4 viewPosition=view*vec4(worldPos,1.0); \n#endif\ngl_Position=projection*viewPosition;\n\n#if defined(CLIPPLANE) || defined(CLIPPLANE2) || defined(CLIPPLANE3) || defined(CLIPPLANE4)\nvec4 worldPos=invView*viewPosition;\n#endif \n#include<clipPlaneVertex>\n}","gpuRenderParticlesPixelShader":"#version 300 es\nuniform sampler2D textureSampler;\nin vec2 vUV;\nin vec4 vColor;\nout vec4 outFragColor;\n#include<clipPlaneFragmentDeclaration2> \n#include<imageProcessingDeclaration>\n#include<helperFunctions>\n#include<imageProcessingFunctions>\nvoid main() {\n#include<clipPlaneFragment> \nvec4 textureColor=texture(textureSampler,vUV);\noutFragColor=textureColor*vColor;\n#ifdef BLENDMULTIPLYMODE\nfloat alpha=vColor.a*textureColor.a;\noutFragColor.rgb=outFragColor.rgb*alpha+vec3(1.0)*(1.0-alpha); \n#endif \n\n\n#ifdef IMAGEPROCESSINGPOSTPROCESS\noutFragColor.rgb=toLinearSpace(outFragColor.rgb);\n#else\n#ifdef IMAGEPROCESSING\noutFragColor.rgb=toLinearSpace(outFragColor.rgb);\noutFragColor=applyImageProcessing(outFragColor);\n#endif\n#endif\n}\n","gpuUpdateParticlesVertexShader":"#version 300 es\n#define PI 3.14159\nuniform float currentCount;\nuniform float timeDelta;\nuniform float stopFactor;\nuniform mat4 emitterWM;\nuniform vec2 lifeTime;\nuniform vec2 emitPower;\nuniform vec2 sizeRange;\nuniform vec4 scaleRange;\n#ifndef COLORGRADIENTS\nuniform vec4 color1;\nuniform vec4 color2;\n#endif\nuniform vec3 gravity;\nuniform sampler2D randomSampler;\nuniform sampler2D randomSampler2;\nuniform vec4 angleRange;\n#ifdef BOXEMITTER\nuniform vec3 direction1;\nuniform vec3 direction2;\nuniform vec3 minEmitBox;\nuniform vec3 maxEmitBox;\n#endif\n#ifdef POINTEMITTER\nuniform vec3 direction1;\nuniform vec3 direction2;\n#endif\n#ifdef HEMISPHERICEMITTER\nuniform float radius;\nuniform float radiusRange;\nuniform float directionRandomizer;\n#endif\n#ifdef SPHEREEMITTER\nuniform float radius;\nuniform float radiusRange;\n#ifdef DIRECTEDSPHEREEMITTER\nuniform vec3 direction1;\nuniform vec3 direction2;\n#else\nuniform float directionRandomizer;\n#endif\n#endif\n#ifdef CYLINDEREMITTER\nuniform float radius;\nuniform float height;\nuniform float radiusRange;\n#ifdef DIRECTEDCYLINDEREMITTER\nuniform vec3 direction1;\nuniform vec3 direction2;\n#else\nuniform float directionRandomizer;\n#endif\n#endif\n#ifdef CONEEMITTER\nuniform vec2 radius;\nuniform float coneAngle;\nuniform vec2 height;\nuniform float directionRandomizer;\n#endif\n\nin vec3 position;\nin float age;\nin float life;\nin vec4 seed;\nin vec3 size;\n#ifndef COLORGRADIENTS\nin vec4 color;\n#endif\nin vec3 direction;\n#ifndef BILLBOARD\nin vec3 initialDirection;\n#endif\n#ifdef ANGULARSPEEDGRADIENTS\nin float angle;\n#else\nin vec2 angle;\n#endif\n#ifdef ANIMATESHEET\nin float cellIndex;\n#ifdef ANIMATESHEETRANDOMSTART\nin float cellStartOffset;\n#endif\n#endif\n\nout vec3 outPosition;\nout float outAge;\nout float outLife;\nout vec4 outSeed;\nout vec3 outSize;\n#ifndef COLORGRADIENTS\nout vec4 outColor;\n#endif\nout vec3 outDirection;\n#ifndef BILLBOARD\nout vec3 outInitialDirection;\n#endif\n#ifdef ANGULARSPEEDGRADIENTS\nout float outAngle;\n#else\nout vec2 outAngle;\n#endif\n#ifdef ANIMATESHEET\nout float outCellIndex;\n#ifdef ANIMATESHEETRANDOMSTART\nout float outCellStartOffset;\n#endif\n#endif\n#ifdef SIZEGRADIENTS\nuniform sampler2D sizeGradientSampler;\n#endif \n#ifdef ANGULARSPEEDGRADIENTS\nuniform sampler2D angularSpeedGradientSampler;\n#endif \n#ifdef VELOCITYGRADIENTS\nuniform sampler2D velocityGradientSampler;\n#endif\n#ifdef LIMITVELOCITYGRADIENTS\nuniform sampler2D limitVelocityGradientSampler;\nuniform float limitVelocityDamping;\n#endif\n#ifdef DRAGGRADIENTS\nuniform sampler2D dragGradientSampler;\n#endif\n#ifdef NOISE\nuniform vec3 noiseStrength;\nuniform sampler2D noiseSampler;\n#endif\n#ifdef ANIMATESHEET\nuniform vec3 cellInfos;\n#endif\nvec3 getRandomVec3(float offset) {\nreturn texture(randomSampler2,vec2(float(gl_VertexID)*offset/currentCount,0)).rgb;\n}\nvec4 getRandomVec4(float offset) {\nreturn texture(randomSampler,vec2(float(gl_VertexID)*offset/currentCount,0));\n}\nvoid main() {\nfloat newAge=age+timeDelta;\n\nif (newAge>=life && stopFactor != 0.) {\nvec3 position;\nvec3 direction;\n\nvec4 randoms=getRandomVec4(seed.x);\n\noutLife=lifeTime.x+(lifeTime.y-lifeTime.x)*randoms.r;\noutAge=mod(newAge,outLife);\n\noutSeed=seed;\n\n#ifdef SIZEGRADIENTS \noutSize.x=texture(sizeGradientSampler,vec2(0,0)).r;\n#else\noutSize.x=sizeRange.x+(sizeRange.y-sizeRange.x)*randoms.g;\n#endif\noutSize.y=scaleRange.x+(scaleRange.y-scaleRange.x)*randoms.b;\noutSize.z=scaleRange.z+(scaleRange.w-scaleRange.z)*randoms.a; \n#ifndef COLORGRADIENTS\n\noutColor=color1+(color2-color1)*randoms.b;\n#endif\n\n#ifndef ANGULARSPEEDGRADIENTS \noutAngle.y=angleRange.x+(angleRange.y-angleRange.x)*randoms.a;\noutAngle.x=angleRange.z+(angleRange.w-angleRange.z)*randoms.r;\n#else\noutAngle=angleRange.z+(angleRange.w-angleRange.z)*randoms.r;\n#endif \n\n#ifdef POINTEMITTER\nvec3 randoms2=getRandomVec3(seed.y);\nvec3 randoms3=getRandomVec3(seed.z);\nposition=vec3(0,0,0);\ndirection=direction1+(direction2-direction1)*randoms3;\n#elif defined(BOXEMITTER)\nvec3 randoms2=getRandomVec3(seed.y);\nvec3 randoms3=getRandomVec3(seed.z);\nposition=minEmitBox+(maxEmitBox-minEmitBox)*randoms2;\ndirection=direction1+(direction2-direction1)*randoms3; \n#elif defined(HEMISPHERICEMITTER)\nvec3 randoms2=getRandomVec3(seed.y);\nvec3 randoms3=getRandomVec3(seed.z);\n\nfloat phi=2.0*PI*randoms2.x;\nfloat theta=acos(2.0*randoms2.y-1.0);\nfloat randX=cos(phi)*sin(theta);\nfloat randY=cos(theta);\nfloat randZ=sin(phi)*sin(theta);\nposition=(radius-(radius*radiusRange*randoms2.z))*vec3(randX,abs(randY),randZ);\ndirection=position+directionRandomizer*randoms3; \n#elif defined(SPHEREEMITTER)\nvec3 randoms2=getRandomVec3(seed.y);\nvec3 randoms3=getRandomVec3(seed.z);\n\nfloat phi=2.0*PI*randoms2.x;\nfloat theta=acos(2.0*randoms2.y-1.0);\nfloat randX=cos(phi)*sin(theta);\nfloat randY=cos(theta);\nfloat randZ=sin(phi)*sin(theta);\nposition=(radius-(radius*radiusRange*randoms2.z))*vec3(randX,randY,randZ);\n#ifdef DIRECTEDSPHEREEMITTER\ndirection=direction1+(direction2-direction1)*randoms3;\n#else\n\ndirection=position+directionRandomizer*randoms3;\n#endif\n#elif defined(CYLINDEREMITTER)\nvec3 randoms2=getRandomVec3(seed.y);\nvec3 randoms3=getRandomVec3(seed.z);\n\nfloat yPos=(randoms2.x-0.5)*height;\nfloat angle=randoms2.y*PI*2.;\nfloat inverseRadiusRangeSquared=((1.-radiusRange)*(1.-radiusRange));\nfloat positionRadius=radius*sqrt(inverseRadiusRangeSquared+(randoms2.z*(1.-inverseRadiusRangeSquared)));\nfloat xPos=positionRadius*cos(angle);\nfloat zPos=positionRadius*sin(angle);\nposition=vec3(xPos,yPos,zPos);\n#ifdef DIRECTEDCYLINDEREMITTER\ndirection=direction1+(direction2-direction1)*randoms3;\n#else\n\nangle=angle+((randoms3.x-0.5)*PI);\ndirection=vec3(cos(angle),randoms3.y-0.5,sin(angle));\ndirection=normalize(direction);\n#endif\n#elif defined(CONEEMITTER)\nvec3 randoms2=getRandomVec3(seed.y);\nfloat s=2.0*PI*randoms2.x;\n#ifdef CONEEMITTERSPAWNPOINT\nfloat h=0.00001;\n#else\nfloat h=randoms2.y*height.y;\n\nh=1.-h*h; \n#endif\nfloat lRadius=radius.x-radius.x*randoms2.z*radius.y;\nlRadius=lRadius*h;\nfloat randX=lRadius*sin(s);\nfloat randZ=lRadius*cos(s);\nfloat randY=h*height.x;\nposition=vec3(randX,randY,randZ); \n\nif (abs(cos(coneAngle)) == 1.0) {\ndirection=vec3(0.,1.0,0.);\n} else {\nvec3 randoms3=getRandomVec3(seed.z);\ndirection=position+directionRandomizer*randoms3;\n}\n#else \n\nposition=vec3(0.,0.,0.);\n\ndirection=2.0*(getRandomVec3(seed.w)-vec3(0.5,0.5,0.5));\n#endif\nfloat power=emitPower.x+(emitPower.y-emitPower.x)*randoms.a;\noutPosition=(emitterWM*vec4(position,1.)).xyz;\nvec3 initial=(emitterWM*vec4(normalize(direction),0.)).xyz;\noutDirection=initial*power;\n#ifndef BILLBOARD \noutInitialDirection=initial;\n#endif\n#ifdef ANIMATESHEET \noutCellIndex=cellInfos.x;\n#ifdef ANIMATESHEETRANDOMSTART\noutCellStartOffset=randoms.a*outLife;\n#endif \n#endif\n} else {\nfloat directionScale=timeDelta;\noutAge=newAge;\nfloat ageGradient=newAge/life;\n#ifdef VELOCITYGRADIENTS\ndirectionScale*=texture(velocityGradientSampler,vec2(ageGradient,0)).r;\n#endif\n#ifdef DRAGGRADIENTS\ndirectionScale*=1.0-texture(dragGradientSampler,vec2(ageGradient,0)).r;\n#endif\noutPosition=position+direction*directionScale;\noutLife=life;\noutSeed=seed;\n#ifndef COLORGRADIENTS \noutColor=color;\n#endif\n#ifdef SIZEGRADIENTS\noutSize.x=texture(sizeGradientSampler,vec2(ageGradient,0)).r;\noutSize.yz=size.yz;\n#else\noutSize=size;\n#endif \n#ifndef BILLBOARD \noutInitialDirection=initialDirection;\n#endif\nvec3 updatedDirection=direction+gravity*timeDelta;\n#ifdef LIMITVELOCITYGRADIENTS\nfloat limitVelocity=texture(limitVelocityGradientSampler,vec2(ageGradient,0)).r;\nfloat currentVelocity=length(updatedDirection);\nif (currentVelocity>limitVelocity) {\nupdatedDirection=updatedDirection*limitVelocityDamping;\n}\n#endif\noutDirection=updatedDirection;\n#ifdef NOISE\nvec3 localPosition=outPosition-emitterWM[3].xyz;\nfloat fetchedR=texture(noiseSampler,vec2(localPosition.y,localPosition.z)*vec2(0.5)+vec2(0.5)).r;\nfloat fetchedG=texture(noiseSampler,vec2(localPosition.x+0.33,localPosition.z+0.33)*vec2(0.5)+vec2(0.5)).r;\nfloat fetchedB=texture(noiseSampler,vec2(localPosition.z-0.33,localPosition.y-0.33)*vec2(0.5)+vec2(0.5)).r;\nvec3 force=vec3(2.*fetchedR-1.,2.*fetchedG-1.,2.*fetchedB-1.)*noiseStrength;\noutDirection=outDirection+force*timeDelta;\n#endif \n#ifdef ANGULARSPEEDGRADIENTS\nfloat angularSpeed=texture(angularSpeedGradientSampler,vec2(ageGradient,0)).r;\noutAngle=angle+angularSpeed*timeDelta;\n#else\noutAngle=vec2(angle.x+angle.y*timeDelta,angle.y);\n#endif\n#ifdef ANIMATESHEET \nfloat offsetAge=outAge;\nfloat dist=cellInfos.y-cellInfos.x;\n#ifdef ANIMATESHEETRANDOMSTART\noutCellStartOffset=cellStartOffset;\noffsetAge+=cellStartOffset;\n#endif \nfloat ratio=clamp(mod(offsetAge*cellInfos.z,life)/life,0.,1.0);\noutCellIndex=float(int(cellInfos.x+ratio*dist));\n#endif\n}\n}","gpuUpdateParticlesPixelShader":"#version 300 es\nvoid main() {\ndiscard;\n}\n","postprocessVertexShader":"\nattribute vec2 position;\nuniform vec2 scale;\n\nvarying vec2 vUV;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nvUV=(position*madd+madd)*scale;\ngl_Position=vec4(position,0.0,1.0);\n}","passPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nvoid main(void) \n{\ngl_FragColor=texture2D(textureSampler,vUV);\n}","shadowMapVertexShader":"\nattribute vec3 position;\n#ifdef NORMAL\nattribute vec3 normal;\nuniform vec3 lightData;\n#endif\n#include<bonesDeclaration>\n#include<morphTargetsVertexGlobalDeclaration>\n#include<morphTargetsVertexDeclaration>[0..maxSimultaneousMorphTargets]\n\n#include<instancesDeclaration>\n#include<helperFunctions>\nuniform mat4 viewProjection;\nuniform vec3 biasAndScale;\nuniform vec2 depthValues;\nvarying float vDepthMetric;\n#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform mat4 diffuseMatrix;\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#endif\nvoid main(void)\n{\nvec3 positionUpdated=position;\n#include<morphTargetsVertex>[0..maxSimultaneousMorphTargets]\n#include<instancesVertex>\n#include<bonesVertex>\nvec4 worldPos=finalWorld*vec4(positionUpdated,1.0);\n\n#ifdef NORMAL\nmat3 normalWorld=mat3(finalWorld);\n#ifdef NONUNIFORMSCALING\nnormalWorld=transposeMat3(inverseMat3(normalWorld));\n#endif\nvec3 worldNor=normalize(normalWorld*normal);\n#ifdef DIRECTIONINLIGHTDATA\nvec3 worldLightDir=normalize(-lightData.xyz);\n#else\nvec3 directionToLight=lightData.xyz-worldPos.xyz;\nvec3 worldLightDir=normalize(directionToLight);\n#endif\nfloat ndl=dot(worldNor,worldLightDir);\nfloat sinNL=sqrt(1.0-ndl*ndl);\nfloat normalBias=biasAndScale.y*sinNL;\nworldPos.xyz-=worldNor*normalBias;\n#endif\n\ngl_Position=viewProjection*worldPos;\n#ifdef DEPTHTEXTURE\n\ngl_Position.z+=biasAndScale.x*gl_Position.w;\n#endif\n\nvDepthMetric=((gl_Position.z+depthValues.x)/(depthValues.y))+biasAndScale.x;\n#ifdef ALPHATEST\n#ifdef UV1\nvUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef UV2\nvUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n}","shadowMapPixelShader":"#ifndef FLOAT\nvec4 pack(float depth)\n{\nconst vec4 bit_shift=vec4(255.0*255.0*255.0,255.0*255.0,255.0,1.0);\nconst vec4 bit_mask=vec4(0.0,1.0/255.0,1.0/255.0,1.0/255.0);\nvec4 res=fract(depth*bit_shift);\nres-=res.xxyz*bit_mask;\nreturn res;\n}\n#endif\nvarying float vDepthMetric;\n#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform sampler2D diffuseSampler;\n#endif\nuniform vec3 biasAndScale;\nuniform vec2 depthValues;\nvoid main(void)\n{\n#ifdef ALPHATEST\nif (texture2D(diffuseSampler,vUV).a<0.4)\ndiscard;\n#endif\nfloat depth=vDepthMetric;\n#ifdef ESM\ndepth=clamp(exp(-min(87.,biasAndScale.z*depth)),0.,1.);\n#endif\n#ifdef FLOAT\ngl_FragColor=vec4(depth,1.0,1.0,1.0);\n#else\ngl_FragColor=pack(depth);\n#endif\n}","depthBoxBlurPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n\nuniform vec2 screenSize;\nvoid main(void)\n{\nvec4 colorDepth=vec4(0.0);\nfor (int x=-OFFSET; x<=OFFSET; x++)\nfor (int y=-OFFSET; y<=OFFSET; y++)\ncolorDepth+=texture2D(textureSampler,vUV+vec2(x,y)/screenSize);\ngl_FragColor=(colorDepth/float((OFFSET*2+1)*(OFFSET*2+1)));\n}","proceduralVertexShader":"\nattribute vec2 position;\n\nvarying vec2 vPosition;\nvarying vec2 vUV;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nvPosition=position;\nvUV=position*madd+madd;\ngl_Position=vec4(position,0.0,1.0);\n}","depthVertexShader":"\nattribute vec3 position;\n#include<bonesDeclaration>\n\n#include<instancesDeclaration>\nuniform mat4 viewProjection;\nuniform vec2 depthValues;\n#if defined(ALPHATEST) || defined(NEED_UV)\nvarying vec2 vUV;\nuniform mat4 diffuseMatrix;\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#endif\nvarying float vDepthMetric;\nvoid main(void)\n{\n#include<instancesVertex>\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(position,1.0);\nvDepthMetric=((gl_Position.z+depthValues.x)/(depthValues.y));\n#if defined(ALPHATEST) || defined(BASIC_RENDER)\n#ifdef UV1\nvUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef UV2\nvUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n}","depthPixelShader":"#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform sampler2D diffuseSampler;\n#endif\nvarying float vDepthMetric;\nvoid main(void)\n{\n#ifdef ALPHATEST\nif (texture2D(diffuseSampler,vUV).a<0.4)\ndiscard;\n#endif\ngl_FragColor=vec4(vDepthMetric,vDepthMetric*vDepthMetric,0.0,1.0);\n}","geometryVertexShader":"precision highp float;\nprecision highp int;\n#include<bonesDeclaration>\n#include<instancesDeclaration>\nattribute vec3 position;\nattribute vec3 normal;\n#if defined(ALPHATEST) || defined(NEED_UV)\nvarying vec2 vUV;\nuniform mat4 diffuseMatrix;\n#ifdef UV1\nvarying vec2 uv;\n#endif\n#ifdef UV2\nvarying vec2 uv2;\n#endif\n#endif\n\nuniform mat4 viewProjection;\nuniform mat4 view;\nvarying vec3 vNormalV;\nvarying vec4 vViewPos;\n#ifdef POSITION\nvarying vec3 vPosition;\n#endif\nvoid main(void)\n{\n#include<instancesVertex>\n#include<bonesVertex>\nvec4 pos=vec4(finalWorld*vec4(position,1.0));\nvNormalV=normalize(vec3((view*finalWorld)*vec4(normal,0.0)));\nvViewPos=view*pos;\n#ifdef POSITION\nvPosition=pos.xyz/pos.w;\n#endif\ngl_Position=viewProjection*finalWorld*vec4(position,1.0);\n#if defined(ALPHATEST) || defined(BASIC_RENDER)\n#ifdef UV1\nvUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef UV2\nvUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n}","geometryPixelShader":"#extension GL_EXT_draw_buffers : require\nprecision highp float;\nprecision highp int;\nvarying vec3 vNormalV;\nvarying vec4 vViewPos;\n#ifdef POSITION\nvarying vec3 vPosition;\n#endif\n#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform sampler2D diffuseSampler;\n#endif\n#ifdef POSITION\n#include<mrtFragmentDeclaration>[3]\n#else\n#include<mrtFragmentDeclaration>[2]\n#endif\nvoid main() {\n#ifdef ALPHATEST\nif (texture2D(diffuseSampler,vUV).a<0.4)\ndiscard;\n#endif\ngl_FragData[0]=vec4(vViewPos.z/vViewPos.w,0.0,0.0,1.0);\n\ngl_FragData[1]=vec4(normalize(vNormalV),1.0);\n\n#ifdef POSITION\ngl_FragData[2]=vec4(vPosition,1.0);\n#endif\n}","ssaoPixelShader":"\nuniform sampler2D textureSampler;\nvarying vec2 vUV;\n#ifdef SSAO\nuniform sampler2D randomSampler;\nuniform float randTextureTiles;\nuniform float samplesFactor;\nuniform vec3 sampleSphere[SAMPLES];\nuniform float totalStrength;\nuniform float radius;\nuniform float area;\nuniform float fallOff;\nuniform float base;\nvec3 normalFromDepth(float depth,vec2 coords)\n{\nvec2 offset1=vec2(0.0,radius);\nvec2 offset2=vec2(radius,0.0);\nfloat depth1=texture2D(textureSampler,coords+offset1).r;\nfloat depth2=texture2D(textureSampler,coords+offset2).r;\nvec3 p1=vec3(offset1,depth1-depth);\nvec3 p2=vec3(offset2,depth2-depth);\nvec3 normal=cross(p1,p2);\nnormal.z=-normal.z;\nreturn normalize(normal);\n}\nvoid main()\n{\nvec3 random=normalize(texture2D(randomSampler,vUV*randTextureTiles).rgb);\nfloat depth=texture2D(textureSampler,vUV).r;\nvec3 position=vec3(vUV,depth);\nvec3 normal=normalFromDepth(depth,vUV);\nfloat radiusDepth=radius/depth;\nfloat occlusion=0.0;\nvec3 ray;\nvec3 hemiRay;\nfloat occlusionDepth;\nfloat difference;\nfor (int i=0; i<SAMPLES; i++)\n{\nray=radiusDepth*reflect(sampleSphere[i],random);\nhemiRay=position+sign(dot(ray,normal))*ray;\nocclusionDepth=texture2D(textureSampler,clamp(hemiRay.xy,vec2(0.001,0.001),vec2(0.999,0.999))).r;\ndifference=depth-occlusionDepth;\nocclusion+=step(fallOff,difference)*(1.0-smoothstep(fallOff,area,difference));\n}\nfloat ao=1.0-totalStrength*occlusion*samplesFactor;\nfloat result=clamp(ao+base,0.0,1.0);\ngl_FragColor.r=result;\ngl_FragColor.g=result;\ngl_FragColor.b=result;\ngl_FragColor.a=1.0;\n}\n#endif\n","ssao2PixelShader":"\nprecision highp float;\nuniform sampler2D textureSampler;\nuniform float near;\nuniform float far;\nuniform float radius;\nfloat scales[16]=float[16](\n0.1,\n0.11406250000000001,\n0.131640625,\n0.15625,\n0.187890625,\n0.2265625,\n0.272265625,\n0.325,\n0.384765625,\n0.4515625,\n0.525390625,\n0.60625,\n0.694140625,\n0.7890625,\n0.891015625,\n1.0\n);\nvarying vec2 vUV;\nfloat perspectiveDepthToViewZ( const in float invClipZ,const in float near,const in float far ) {\nreturn ( near*far )/( ( far-near )*invClipZ-far );\n}\nfloat viewZToPerspectiveDepth( const in float viewZ,const in float near,const in float far ) {\nreturn ( near*far/viewZ+far)/( far-near );\n}\nfloat viewZToOrthographicDepth( const in float viewZ,const in float near,const in float far ) {\nreturn ( viewZ+near )/( near-far );\n}\n#ifdef SSAO\nuniform sampler2D randomSampler;\nuniform sampler2D normalSampler;\nuniform float randTextureTiles;\nuniform float samplesFactor;\nuniform vec3 sampleSphere[SAMPLES];\nuniform float totalStrength;\nuniform float base;\nuniform float xViewport;\nuniform float yViewport;\nuniform float maxZ;\nuniform float minZAspect;\nuniform vec2 texelSize;\nuniform mat4 projection;\nvoid main()\n{\nvec3 random=texture2D(randomSampler,vUV*randTextureTiles).rgb;\nfloat depth=texture2D(textureSampler,vUV).r;\nfloat depthSign=depth/abs(depth);\ndepth=depth*depthSign;\nvec3 normal=texture2D(normalSampler,vUV).rgb; \nfloat occlusion=0.0;\nfloat correctedRadius=min(radius,minZAspect*depth/near);\nvec3 vViewRay=vec3((vUV.x*2.0-1.0)*xViewport,(vUV.y*2.0-1.0)*yViewport,depthSign);\nvec3 origin=vViewRay*depth;\nvec3 rvec=random*2.0-1.0;\nrvec.z=0.0;\n\nfloat dotProduct=dot(rvec,normal);\nrvec=1.0-abs(dotProduct)>1e-2 ? rvec : vec3(-rvec.y,0.0,rvec.x);\nvec3 tangent=normalize(rvec-normal*dot(rvec,normal));\nvec3 bitangent=cross(normal,tangent);\nmat3 tbn=mat3(tangent,bitangent,normal);\nfloat difference;\nfor (int i=0; i<SAMPLES; ++i) {\n\nvec3 samplePosition=scales[(i+int(random.x*16.0)) % 16]*tbn*sampleSphere[(i+int(random.y*16.0)) % 16];\nsamplePosition=samplePosition*correctedRadius+origin;\n\nvec4 offset=vec4(samplePosition,1.0);\noffset=projection*offset;\noffset.xyz/=offset.w;\noffset.xy=offset.xy*0.5+0.5;\nif (offset.x<0.0 || offset.y<0.0 || offset.x>1.0 || offset.y>1.0) {\ncontinue;\n}\n\nfloat sampleDepth=abs(texture2D(textureSampler,offset.xy).r);\n\ndifference=depthSign*samplePosition.z-sampleDepth;\nfloat rangeCheck=1.0-smoothstep(correctedRadius*0.5,correctedRadius,difference);\nocclusion+=(difference>=0.0 ? 1.0 : 0.0)*rangeCheck;\n}\nocclusion=occlusion*(1.0-smoothstep(maxZ*0.75,maxZ,depth));\nfloat ao=1.0-totalStrength*occlusion*samplesFactor;\nfloat result=clamp(ao+base,0.0,1.0);\ngl_FragColor=vec4(vec3(result),1.0);\n}\n#endif\n#ifdef BILATERAL_BLUR\nuniform sampler2D depthSampler;\nuniform float outSize;\nuniform float samplerOffsets[SAMPLES];\nvec4 blur9(sampler2D image,vec2 uv,float resolution,vec2 direction) {\nvec4 color=vec4(0.0);\nvec2 off1=vec2(1.3846153846)*direction;\nvec2 off2=vec2(3.2307692308)*direction;\ncolor+=texture2D(image,uv)*0.2270270270;\ncolor+=texture2D(image,uv+(off1/resolution))*0.3162162162;\ncolor+=texture2D(image,uv-(off1/resolution))*0.3162162162;\ncolor+=texture2D(image,uv+(off2/resolution))*0.0702702703;\ncolor+=texture2D(image,uv-(off2/resolution))*0.0702702703;\nreturn color;\n}\nvec4 blur13(sampler2D image,vec2 uv,float resolution,vec2 direction) {\nvec4 color=vec4(0.0);\nvec2 off1=vec2(1.411764705882353)*direction;\nvec2 off2=vec2(3.2941176470588234)*direction;\nvec2 off3=vec2(5.176470588235294)*direction;\ncolor+=texture2D(image,uv)*0.1964825501511404;\ncolor+=texture2D(image,uv+(off1/resolution))*0.2969069646728344;\ncolor+=texture2D(image,uv-(off1/resolution))*0.2969069646728344;\ncolor+=texture2D(image,uv+(off2/resolution))*0.09447039785044732;\ncolor+=texture2D(image,uv-(off2/resolution))*0.09447039785044732;\ncolor+=texture2D(image,uv+(off3/resolution))*0.010381362401148057;\ncolor+=texture2D(image,uv-(off3/resolution))*0.010381362401148057;\nreturn color;\n}\nvec4 blur13Bilateral(sampler2D image,vec2 uv,float resolution,vec2 direction) {\nvec4 color=vec4(0.0);\nvec2 off1=vec2(1.411764705882353)*direction;\nvec2 off2=vec2(3.2941176470588234)*direction;\nvec2 off3=vec2(5.176470588235294)*direction;\nfloat compareDepth=abs(texture2D(depthSampler,uv).r);\nfloat sampleDepth;\nfloat weight;\nfloat weightSum=30.0;\ncolor+=texture2D(image,uv)*30.0;\nsampleDepth=abs(texture2D(depthSampler,uv+(off1/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv+(off1/resolution))*weight;\nsampleDepth=abs(texture2D(depthSampler,uv-(off1/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv-(off1/resolution))*weight;\nsampleDepth=abs(texture2D(depthSampler,uv+(off2/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv+(off2/resolution))*weight;\nsampleDepth=abs(texture2D(depthSampler,uv-(off2/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv-(off2/resolution))*weight;\nsampleDepth=abs(texture2D(depthSampler,uv+(off3/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv+(off3/resolution))*weight;\nsampleDepth=abs(texture2D(depthSampler,uv-(off3/resolution)).r);\nweight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30.0);\nweightSum+=weight;\ncolor+=texture2D(image,uv-(off3/resolution))*weight;\nreturn color/weightSum;\n}\nvoid main()\n{\n#if EXPENSIVE\nfloat compareDepth=abs(texture2D(depthSampler,vUV).r);\nfloat texelsize=1.0/outSize;\nfloat result=0.0;\nfloat weightSum=0.0;\nfor (int i=0; i<SAMPLES; ++i)\n{\n#ifdef BILATERAL_BLUR_H\nvec2 direction=vec2(1.0,0.0);\nvec2 sampleOffset=vec2(texelsize*samplerOffsets[i],0.0);\n#else\nvec2 direction=vec2(0.0,1.0);\nvec2 sampleOffset=vec2(0.0,texelsize*samplerOffsets[i]);\n#endif\nvec2 samplePos=vUV+sampleOffset;\nfloat sampleDepth=abs(texture2D(depthSampler,samplePos).r);\nfloat weight=clamp(1.0/( 0.003+abs(compareDepth-sampleDepth)),0.0,30000.0);\nresult+=texture2D(textureSampler,samplePos).r*weight;\nweightSum+=weight;\n}\nresult/=weightSum;\ngl_FragColor.rgb=vec3(result);\ngl_FragColor.a=1.0;\n#else\nvec4 color;\n#ifdef BILATERAL_BLUR_H\nvec2 direction=vec2(1.0,0.0);\ncolor=blur13Bilateral(textureSampler,vUV,outSize,direction);\n#else\nvec2 direction=vec2(0.0,1.0);\ncolor=blur13Bilateral(textureSampler,vUV,outSize,direction);\n#endif\ngl_FragColor.rgb=vec3(color.r);\ngl_FragColor.a=1.0;\n#endif\n}\n#endif\n","ssaoCombinePixelShader":"uniform sampler2D textureSampler;\nuniform sampler2D originalColor;\nuniform vec4 viewport;\nvarying vec2 vUV;\nvoid main(void) {\nvec4 ssaoColor=texture2D(textureSampler,viewport.xy+vUV*viewport.zw);\nvec4 sceneColor=texture2D(originalColor,vUV);\ngl_FragColor=sceneColor*ssaoColor;\n}\n","lensHighlightsPixelShader":"\nuniform sampler2D textureSampler; \n\nuniform float gain;\nuniform float threshold;\nuniform float screen_width;\nuniform float screen_height;\n\nvarying vec2 vUV;\n\nvec4 highlightColor(vec4 color) {\nvec4 highlight=color;\nfloat luminance=dot(highlight.rgb,vec3(0.2125,0.7154,0.0721));\nfloat lum_threshold;\nif (threshold>1.0) { lum_threshold=0.94+0.01*threshold; }\nelse { lum_threshold=0.5+0.44*threshold; }\nluminance=clamp((luminance-lum_threshold)*(1.0/(1.0-lum_threshold)),0.0,1.0);\nhighlight*=luminance*gain;\nhighlight.a=1.0;\nreturn highlight;\n}\nvoid main(void)\n{\nvec4 original=texture2D(textureSampler,vUV);\n\nif (gain == -1.0) {\ngl_FragColor=vec4(0.0,0.0,0.0,1.0);\nreturn;\n}\nfloat w=2.0/screen_width;\nfloat h=2.0/screen_height;\nfloat weight=1.0;\n\nvec4 blurred=vec4(0.0,0.0,0.0,0.0);\n#ifdef PENTAGON\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.84*w,0.43*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.48*w,-1.29*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.61*w,1.51*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.55*w,-0.74*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.71*w,-0.52*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.94*w,1.59*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.40*w,-1.87*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.62*w,1.16*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.09*w,0.25*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.46*w,-1.71*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.08*w,2.42*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.85*w,-1.89*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.89*w,0.16*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.29*w,1.88*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.40*w,-2.81*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.54*w,2.26*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.60*w,-0.61*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.31*w,-1.30*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.83*w,2.53*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.12*w,-2.48*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.60*w,1.11*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.82*w,0.99*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.50*w,-2.81*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.85*w,3.33*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.94*w,-1.92*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(3.27*w,-0.53*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.95*w,2.48*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.23*w,-3.04*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.17*w,2.05*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.97*w,-0.04*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.25*w,-2.00*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.31*w,3.08*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.94*w,-2.59*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(3.37*w,0.64*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-3.13*w,1.93*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.03*w,-3.65*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.60*w,3.17*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-3.14*w,-1.19*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(3.00*w,-1.19*h)));\n#else\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.85*w,0.36*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.52*w,-1.14*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.46*w,1.42*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.46*w,-0.83*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.79*w,-0.42*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.11*w,1.62*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.29*w,-2.07*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.69*w,1.39*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.28*w,0.12*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.65*w,-1.69*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.08*w,2.44*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.63*w,-1.90*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.55*w,0.31*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.13*w,1.52*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.56*w,-2.61*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.38*w,2.34*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.64*w,-0.81*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.53*w,-1.21*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.06*w,2.63*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.00*w,-2.69*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.59*w,1.32*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.82*w,0.78*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.57*w,-2.50*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(0.54*w,2.93*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.39*w,-1.81*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(3.01*w,-0.28*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.04*w,2.25*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.02*w,-3.05*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.09*w,2.25*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-3.07*w,-0.25*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.44*w,-1.90*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-0.52*w,3.05*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-1.68*w,-2.61*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(3.01*w,0.79*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.76*w,1.46*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.05*w,-2.94*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(1.21*w,2.88*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(-2.84*w,-1.30*h)));\nblurred+=highlightColor(texture2D(textureSampler,vUV+vec2(2.98*w,-0.96*h)));\n#endif\nblurred/=39.0;\ngl_FragColor=blurred;\n\n}","depthOfFieldPixelShader":"\n\n\n\n\nuniform sampler2D textureSampler;\nuniform sampler2D highlightsSampler;\nuniform sampler2D depthSampler;\nuniform sampler2D grainSampler;\n\nuniform float grain_amount;\nuniform bool blur_noise;\nuniform float screen_width;\nuniform float screen_height;\nuniform float distortion;\nuniform bool dof_enabled;\n\nuniform float screen_distance; \nuniform float aperture;\nuniform float darken;\nuniform float edge_blur;\nuniform bool highlights;\n\nuniform float near;\nuniform float far;\n\nvarying vec2 vUV;\n\n#define PI 3.14159265\n#define TWOPI 6.28318530\n#define inverse_focal_length 0.1 \n\nvec2 centered_screen_pos;\nvec2 distorted_coords;\nfloat radius2;\nfloat radius;\n\nvec2 rand(vec2 co)\n{\nfloat noise1=(fract(sin(dot(co,vec2(12.9898,78.233)))*43758.5453));\nfloat noise2=(fract(sin(dot(co,vec2(12.9898,78.233)*2.0))*43758.5453));\nreturn clamp(vec2(noise1,noise2),0.0,1.0);\n}\n\nvec2 getDistortedCoords(vec2 coords) {\nif (distortion == 0.0) { return coords; }\nvec2 direction=1.0*normalize(centered_screen_pos);\nvec2 dist_coords=vec2(0.5,0.5);\ndist_coords.x=0.5+direction.x*radius2*1.0;\ndist_coords.y=0.5+direction.y*radius2*1.0;\nfloat dist_amount=clamp(distortion*0.23,0.0,1.0);\ndist_coords=mix(coords,dist_coords,dist_amount);\nreturn dist_coords;\n}\n\nfloat sampleScreen(inout vec4 color,const in vec2 offset,const in float weight) {\n\nvec2 coords=distorted_coords;\nfloat angle=rand(coords*100.0).x*TWOPI;\ncoords+=vec2(offset.x*cos(angle)-offset.y*sin(angle),offset.x*sin(angle)+offset.y*cos(angle));\ncolor+=texture2D(textureSampler,coords)*weight;\nreturn weight;\n}\n\nfloat getBlurLevel(float size) {\nreturn min(3.0,ceil(size/1.0));\n}\n\nvec4 getBlurColor(float size) {\nvec4 col=texture2D(textureSampler,distorted_coords);\nif (size == 0.0) { return col; }\n\n\nfloat blur_level=getBlurLevel(size);\nfloat w=(size/screen_width);\nfloat h=(size/screen_height);\nfloat total_weight=1.0;\nvec2 sample_coords;\ntotal_weight+=sampleScreen(col,vec2(-0.50*w,0.24*h),0.93);\ntotal_weight+=sampleScreen(col,vec2(0.30*w,-0.75*h),0.90);\ntotal_weight+=sampleScreen(col,vec2(0.36*w,0.96*h),0.87);\ntotal_weight+=sampleScreen(col,vec2(-1.08*w,-0.55*h),0.85);\ntotal_weight+=sampleScreen(col,vec2(1.33*w,-0.37*h),0.83);\ntotal_weight+=sampleScreen(col,vec2(-0.82*w,1.31*h),0.80);\ntotal_weight+=sampleScreen(col,vec2(-0.31*w,-1.67*h),0.78);\ntotal_weight+=sampleScreen(col,vec2(1.47*w,1.11*h),0.76);\ntotal_weight+=sampleScreen(col,vec2(-1.97*w,0.19*h),0.74);\ntotal_weight+=sampleScreen(col,vec2(1.42*w,-1.57*h),0.72);\nif (blur_level>1.0) {\ntotal_weight+=sampleScreen(col,vec2(0.01*w,2.25*h),0.70);\ntotal_weight+=sampleScreen(col,vec2(-1.62*w,-1.74*h),0.67);\ntotal_weight+=sampleScreen(col,vec2(2.49*w,0.20*h),0.65);\ntotal_weight+=sampleScreen(col,vec2(-2.07*w,1.61*h),0.63);\ntotal_weight+=sampleScreen(col,vec2(0.46*w,-2.70*h),0.61);\ntotal_weight+=sampleScreen(col,vec2(1.55*w,2.40*h),0.59);\ntotal_weight+=sampleScreen(col,vec2(-2.88*w,-0.75*h),0.56);\ntotal_weight+=sampleScreen(col,vec2(2.73*w,-1.44*h),0.54);\ntotal_weight+=sampleScreen(col,vec2(-1.08*w,3.02*h),0.52);\ntotal_weight+=sampleScreen(col,vec2(-1.28*w,-3.05*h),0.49);\n}\nif (blur_level>2.0) {\ntotal_weight+=sampleScreen(col,vec2(3.11*w,1.43*h),0.46);\ntotal_weight+=sampleScreen(col,vec2(-3.36*w,1.08*h),0.44);\ntotal_weight+=sampleScreen(col,vec2(1.80*w,-3.16*h),0.41);\ntotal_weight+=sampleScreen(col,vec2(0.83*w,3.65*h),0.38);\ntotal_weight+=sampleScreen(col,vec2(-3.16*w,-2.19*h),0.34);\ntotal_weight+=sampleScreen(col,vec2(3.92*w,-0.53*h),0.31);\ntotal_weight+=sampleScreen(col,vec2(-2.59*w,3.12*h),0.26);\ntotal_weight+=sampleScreen(col,vec2(-0.20*w,-4.15*h),0.22);\ntotal_weight+=sampleScreen(col,vec2(3.02*w,3.00*h),0.15);\n}\ncol/=total_weight; \n\nif (darken>0.0) {\ncol.rgb*=clamp(0.3,1.0,1.05-size*0.5*darken);\n}\n\n\n\n\nreturn col;\n}\nvoid main(void)\n{\n\ncentered_screen_pos=vec2(vUV.x-0.5,vUV.y-0.5);\nradius2=centered_screen_pos.x*centered_screen_pos.x+centered_screen_pos.y*centered_screen_pos.y;\nradius=sqrt(radius2);\ndistorted_coords=getDistortedCoords(vUV); \nvec2 texels_coords=vec2(vUV.x*screen_width,vUV.y*screen_height); \nfloat depth=texture2D(depthSampler,distorted_coords).r; \nfloat distance=near+(far-near)*depth; \nvec4 color=texture2D(textureSampler,vUV); \n\n\nfloat coc=abs(aperture*(screen_distance*(inverse_focal_length-1.0/distance)-1.0));\n\nif (dof_enabled == false || coc<0.07) { coc=0.0; }\n\nfloat edge_blur_amount=0.0;\nif (edge_blur>0.0) {\nedge_blur_amount=clamp((radius*2.0-1.0+0.15*edge_blur)*1.5,0.0,1.0)*1.3;\n}\n\nfloat blur_amount=max(edge_blur_amount,coc);\n\nif (blur_amount == 0.0) {\ngl_FragColor=texture2D(textureSampler,distorted_coords);\n}\nelse {\n\ngl_FragColor=getBlurColor(blur_amount*1.7);\n\nif (highlights) {\ngl_FragColor.rgb+=clamp(coc,0.0,1.0)*texture2D(highlightsSampler,distorted_coords).rgb;\n}\nif (blur_noise) {\n\nvec2 noise=rand(distorted_coords)*0.01*blur_amount;\nvec2 blurred_coord=vec2(distorted_coords.x+noise.x,distorted_coords.y+noise.y);\ngl_FragColor=0.04*texture2D(textureSampler,blurred_coord)+0.96*gl_FragColor;\n}\n}\n\nif (grain_amount>0.0) {\nvec4 grain_color=texture2D(grainSampler,texels_coords*0.003);\ngl_FragColor.rgb+=(-0.5+grain_color.rgb)*0.30*grain_amount;\n}\n}\n","standardPixelShader":"uniform sampler2D textureSampler;\nvarying vec2 vUV;\n#if defined(PASS_POST_PROCESS)\nvoid main(void)\n{\nvec4 color=texture2D(textureSampler,vUV);\ngl_FragColor=color;\n}\n#endif\n#if defined(DOWN_SAMPLE_X4)\nuniform vec2 dsOffsets[16];\nvoid main(void)\n{\nvec4 average=vec4(0.0,0.0,0.0,0.0);\naverage=texture2D(textureSampler,vUV+dsOffsets[0]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[1]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[2]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[3]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[4]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[5]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[6]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[7]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[8]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[9]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[10]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[11]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[12]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[13]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[14]);\naverage+=texture2D(textureSampler,vUV+dsOffsets[15]);\naverage/=16.0;\ngl_FragColor=average;\n}\n#endif\n#if defined(BRIGHT_PASS)\nuniform vec2 dsOffsets[4];\nuniform float brightThreshold;\nvoid main(void)\n{\nvec4 average=vec4(0.0,0.0,0.0,0.0);\naverage=texture2D(textureSampler,vUV+vec2(dsOffsets[0].x,dsOffsets[0].y));\naverage+=texture2D(textureSampler,vUV+vec2(dsOffsets[1].x,dsOffsets[1].y));\naverage+=texture2D(textureSampler,vUV+vec2(dsOffsets[2].x,dsOffsets[2].y));\naverage+=texture2D(textureSampler,vUV+vec2(dsOffsets[3].x,dsOffsets[3].y));\naverage*=0.25;\nfloat luminance=length(average.rgb);\nif (luminance<brightThreshold) {\naverage=vec4(0.0,0.0,0.0,1.0);\n}\ngl_FragColor=average;\n}\n#endif\n#if defined(TEXTURE_ADDER)\nuniform sampler2D otherSampler;\nuniform sampler2D lensSampler;\nuniform float exposure;\nvoid main(void)\n{\nvec3 colour=texture2D(textureSampler,vUV).rgb;\ncolour*=exposure;\nvec3 X=max(vec3(0.0,0.0,0.0),colour-0.004);\nvec3 retColor=(X*(6.2*X+0.5))/(X*(6.2*X+1.7)+0.06);\ncolour=retColor*retColor;\ncolour+=colour*texture2D(lensSampler,vUV).rgb;\nvec4 finalColor=vec4(colour.rgb,1.0)+texture2D(otherSampler,vUV);\ngl_FragColor=finalColor;\n}\n#endif\n#if defined(VLS)\n#define PI 3.1415926535897932384626433832795\nuniform mat4 shadowViewProjection;\nuniform mat4 lightWorld;\nuniform vec3 cameraPosition;\nuniform vec3 sunDirection;\nuniform vec3 sunColor;\nuniform vec2 depthValues;\nuniform float scatteringCoefficient;\nuniform float scatteringPower;\nuniform sampler2D shadowMapSampler;\nuniform sampler2D positionSampler;\nfloat computeScattering(float lightDotView)\n{\nfloat result=1.0-scatteringCoefficient*scatteringCoefficient;\nresult/=(4.0*PI*pow(1.0+scatteringCoefficient*scatteringCoefficient-(2.0*scatteringCoefficient)*lightDotView,1.5));\nreturn result;\n}\nvoid main(void)\n{\n\nvec3 worldPos=texture2D(positionSampler,vUV).rgb;\nvec3 startPosition=cameraPosition;\nvec3 rayVector=worldPos-startPosition;\nfloat rayLength=length(rayVector);\nvec3 rayDirection=rayVector/rayLength;\nfloat stepLength=rayLength/NB_STEPS;\nvec3 stepL=rayDirection*stepLength;\nvec3 currentPosition=startPosition;\nvec3 accumFog=vec3(0.0);\nfor (int i=0; i<int(NB_STEPS); i++)\n{\nvec4 worldInShadowCameraSpace=shadowViewProjection*vec4(currentPosition,1.0);\nfloat depthMetric=(worldInShadowCameraSpace.z+depthValues.x)/(depthValues.y);\nfloat shadowPixelDepth=clamp(depthMetric,0.0,1.0);\nworldInShadowCameraSpace.xyz/=worldInShadowCameraSpace.w;\nworldInShadowCameraSpace.xyz=0.5*worldInShadowCameraSpace.xyz+vec3(0.5);\nfloat shadowMapValue=texture2D(shadowMapSampler,worldInShadowCameraSpace.xy).r;\nif (shadowMapValue>shadowPixelDepth)\naccumFog+=sunColor*computeScattering(dot(rayDirection,sunDirection));\ncurrentPosition+=stepL;\n}\naccumFog/=NB_STEPS;\nvec3 color=accumFog*scatteringPower;\ngl_FragColor=vec4(color*exp(color) ,1.0);\n}\n#endif\n#if defined(VLSMERGE)\nuniform sampler2D originalSampler;\nvoid main(void)\n{\ngl_FragColor=texture2D(originalSampler,vUV)+texture2D(textureSampler,vUV);\n}\n#endif\n#if defined(LUMINANCE)\nuniform vec2 lumOffsets[4];\nvoid main()\n{\nfloat average=0.0;\nvec4 color=vec4(0.0);\nfloat maximum=-1e20;\nvec3 weight=vec3(0.299,0.587,0.114);\nfor (int i=0; i<4; i++)\n{\ncolor=texture2D(textureSampler,vUV+ lumOffsets[i]);\n\nfloat GreyValue=dot(color.rgb,vec3(0.33,0.33,0.33));\n\n#ifdef WEIGHTED_AVERAGE\nfloat GreyValue=dot(color.rgb,weight);\n#endif\n#ifdef BRIGHTNESS\nfloat GreyValue=max(color.r,max(color.g,color.b));\n#endif\n#ifdef HSL_COMPONENT\nfloat GreyValue=0.5*(max(color.r,max(color.g,color.b))+min(color.r,min(color.g,color.b)));\n#endif\n#ifdef MAGNITUDE\nfloat GreyValue=length(color.rgb);\n#endif\nmaximum=max(maximum,GreyValue);\naverage+=(0.25*log(1e-5+GreyValue));\n}\naverage=exp(average);\ngl_FragColor=vec4(average,maximum,0.0,1.0);\n}\n#endif\n#if defined(LUMINANCE_DOWN_SAMPLE)\nuniform vec2 dsOffsets[9];\nuniform float halfDestPixelSize;\n#ifdef FINAL_DOWN_SAMPLER\nvec4 pack(float value) {\nconst vec4 bit_shift=vec4(255.0*255.0*255.0,255.0*255.0,255.0,1.0);\nconst vec4 bit_mask=vec4(0.0,1.0/255.0,1.0/255.0,1.0/255.0);\nvec4 res=fract(value*bit_shift);\nres-=res.xxyz*bit_mask;\nreturn res;\n}\n#endif\nvoid main()\n{\nvec4 color=vec4(0.0);\nfloat average=0.0;\nfor (int i=0; i<9; i++)\n{\ncolor=texture2D(textureSampler,vUV+vec2(halfDestPixelSize,halfDestPixelSize)+dsOffsets[i]);\naverage+=color.r;\n}\naverage/=9.0;\n#ifdef FINAL_DOWN_SAMPLER\ngl_FragColor=pack(average);\n#else\ngl_FragColor=vec4(average,average,0.0,1.0);\n#endif\n}\n#endif\n#if defined(HDR)\nuniform sampler2D textureAdderSampler;\nuniform float averageLuminance;\nvoid main()\n{\nvec4 color=texture2D(textureAdderSampler,vUV);\nvec4 adjustedColor=color/averageLuminance;\ncolor=adjustedColor;\ncolor.a=1.0;\ngl_FragColor=color;\n}\n#endif\n#if defined(LENS_FLARE)\n#define GHOSTS 3\nuniform sampler2D lensColorSampler;\nuniform float strength;\nuniform float ghostDispersal;\nuniform float haloWidth;\nuniform vec2 resolution;\nuniform float distortionStrength;\nfloat hash(vec2 p)\n{\nfloat h=dot(p,vec2(127.1,311.7));\nreturn -1.0+2.0*fract(sin(h)*43758.5453123);\n}\nfloat noise(in vec2 p)\n{\nvec2 i=floor(p);\nvec2 f=fract(p);\nvec2 u=f*f*(3.0-2.0*f);\nreturn mix(mix(hash(i+vec2(0.0,0.0)),\nhash(i+vec2(1.0,0.0)),u.x),\nmix(hash(i+vec2(0.0,1.0)),\nhash(i+vec2(1.0,1.0)),u.x),u.y);\n}\nfloat fbm(vec2 p)\n{\nfloat f=0.0;\nf+=0.5000*noise(p); p*=2.02;\nf+=0.2500*noise(p); p*=2.03;\nf+=0.1250*noise(p); p*=2.01;\nf+=0.0625*noise(p); p*=2.04;\nf/=0.9375;\nreturn f;\n}\nvec3 pattern(vec2 uv)\n{\nvec2 p=-1.0+2.0*uv;\nfloat p2=dot(p,p);\nfloat f=fbm(vec2(15.0*p2))/2.0;\nfloat r=0.2+0.6*sin(12.5*length(uv-vec2(0.5)));\nfloat g=0.2+0.6*sin(20.5*length(uv-vec2(0.5)));\nfloat b=0.2+0.6*sin(17.2*length(uv-vec2(0.5)));\nreturn (1.0-f)*vec3(r,g,b);\n}\nfloat luminance(vec3 color)\n{\nreturn dot(color.rgb,vec3(0.2126,0.7152,0.0722));\n}\nvec4 textureDistorted(sampler2D tex,vec2 texcoord,vec2 direction,vec3 distortion)\n{\nreturn vec4(\ntexture2D(tex,texcoord+direction*distortion.r).r,\ntexture2D(tex,texcoord+direction*distortion.g).g,\ntexture2D(tex,texcoord+direction*distortion.b).b,\n1.0\n);\n}\nvoid main(void)\n{\nvec2 uv=-vUV+vec2(1.0);\nvec2 ghostDir=(vec2(0.5)-uv)*ghostDispersal;\nvec2 texelSize=1.0/resolution;\nvec3 distortion=vec3(-texelSize.x*distortionStrength,0.0,texelSize.x*distortionStrength);\nvec4 result=vec4(0.0);\nfloat ghostIndice=1.0;\nfor (int i=0; i<GHOSTS; ++i)\n{\nvec2 offset=fract(uv+ghostDir*ghostIndice);\nfloat weight=length(vec2(0.5)-offset)/length(vec2(0.5));\nweight=pow(1.0-weight,10.0);\nresult+=textureDistorted(textureSampler,offset,normalize(ghostDir),distortion)*weight*strength;\nghostIndice+=1.0;\n}\nvec2 haloVec=normalize(ghostDir)*haloWidth;\nfloat weight=length(vec2(0.5)-fract(uv+haloVec))/length(vec2(0.5));\nweight=pow(1.0-weight,10.0);\nresult+=textureDistorted(textureSampler,fract(uv+haloVec),normalize(ghostDir),distortion)*weight*strength;\nresult*=texture2D(lensColorSampler,vec2(length(vec2(0.5)-uv)/length(vec2(0.5))));\ngl_FragColor=result;\n}\n#endif\n#if defined(LENS_FLARE_COMPOSE)\nuniform sampler2D otherSampler;\nuniform sampler2D lensDirtSampler;\nuniform sampler2D lensStarSampler;\nuniform mat4 lensStarMatrix;\nvoid main(void)\n{\nvec2 lensFlareCoords=(lensStarMatrix*vec4(vUV,1.0,1.0)).xy;\nvec4 lensMod=texture2D(lensDirtSampler,vUV);\nlensMod+=texture2D(lensStarSampler,vUV);\nvec4 result=texture2D(textureSampler,vUV)*lensMod;\ngl_FragColor=texture2D(otherSampler,vUV)+result;\n}\n#endif\n#if defined(DEPTH_OF_FIELD)\nuniform sampler2D otherSampler;\nuniform sampler2D depthSampler;\nuniform float distance;\nvoid main(void)\n{\nvec4 sharp=texture2D(otherSampler,vUV);\nvec4 blur=texture2D(textureSampler,vUV);\nfloat dist=clamp(texture2D(depthSampler,vUV).r*distance,0.0,1.0);\nfloat factor=0.0;\nif (dist<0.05)\nfactor=1.0;\nelse if (dist<0.1)\nfactor=20.0*(0.1-dist);\nelse if (dist<0.5)\nfactor=0.0;\nelse\nfactor=2.0*(dist-0.5);\nfactor=clamp(factor,0.0,0.90);\ngl_FragColor=mix(sharp,blur,factor);\n}\n#endif\n#if defined(MOTION_BLUR)\nuniform mat4 inverseViewProjection;\nuniform mat4 prevViewProjection;\nuniform vec2 screenSize;\nuniform float motionScale;\nuniform float motionStrength;\nuniform sampler2D depthSampler;\nvoid main(void)\n{\nvec2 texelSize=1.0/screenSize;\nfloat depth=texture2D(depthSampler,vUV).r;\nvec4 cpos=vec4(vUV*2.0-1.0,depth,1.0);\ncpos=cpos*inverseViewProjection;\nvec4 ppos=cpos*prevViewProjection;\nppos.xyz/=ppos.w;\nppos.xy=ppos.xy*0.5+0.5;\nvec2 velocity=(ppos.xy-vUV)*motionScale*motionStrength;\nfloat speed=length(velocity/texelSize);\nint nSamples=int(clamp(speed,1.0,MAX_MOTION_SAMPLES));\nvec4 result=texture2D(textureSampler,vUV);\nfor (int i=1; i<int(MAX_MOTION_SAMPLES); ++i) {\nif (i>=nSamples)\nbreak;\nvec2 offset1=vUV+velocity*(float(i)/float(nSamples-1)-0.5);\nresult+=texture2D(textureSampler,offset1);\n}\ngl_FragColor=result/float(nSamples);\n}\n#endif\n","fxaaVertexShader":"\nattribute vec2 position;\nuniform vec2 texelSize;\n\nvarying vec2 vUV;\nvarying vec2 sampleCoordS;\nvarying vec2 sampleCoordE;\nvarying vec2 sampleCoordN;\nvarying vec2 sampleCoordW;\nvarying vec2 sampleCoordNW;\nvarying vec2 sampleCoordSE;\nvarying vec2 sampleCoordNE;\nvarying vec2 sampleCoordSW;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nvUV=(position*madd+madd);\nsampleCoordS=vUV+vec2( 0.0,1.0)*texelSize;\nsampleCoordE=vUV+vec2( 1.0,0.0)*texelSize;\nsampleCoordN=vUV+vec2( 0.0,-1.0)*texelSize;\nsampleCoordW=vUV+vec2(-1.0,0.0)*texelSize;\nsampleCoordNW=vUV+vec2(-1.0,-1.0)*texelSize;\nsampleCoordSE=vUV+vec2( 1.0,1.0)*texelSize;\nsampleCoordNE=vUV+vec2( 1.0,-1.0)*texelSize;\nsampleCoordSW=vUV+vec2(-1.0,1.0)*texelSize;\ngl_Position=vec4(position,0.0,1.0);\n}","fxaaPixelShader":"uniform sampler2D textureSampler;\nuniform vec2 texelSize;\nvarying vec2 vUV;\nvarying vec2 sampleCoordS;\nvarying vec2 sampleCoordE;\nvarying vec2 sampleCoordN;\nvarying vec2 sampleCoordW;\nvarying vec2 sampleCoordNW;\nvarying vec2 sampleCoordSE;\nvarying vec2 sampleCoordNE;\nvarying vec2 sampleCoordSW;\nconst float fxaaQualitySubpix=1.0;\nconst float fxaaQualityEdgeThreshold=0.166;\nconst float fxaaQualityEdgeThresholdMin=0.0833;\nconst vec3 kLumaCoefficients=vec3(0.2126,0.7152,0.0722);\n#define FxaaLuma(rgba) dot(rgba.rgb,kLumaCoefficients)\nvoid main(){\nvec2 posM;\nposM.x=vUV.x;\nposM.y=vUV.y;\nvec4 rgbyM=texture2D(textureSampler,vUV,0.0);\nfloat lumaM=FxaaLuma(rgbyM);\nfloat lumaS=FxaaLuma(texture2D(textureSampler,sampleCoordS,0.0));\nfloat lumaE=FxaaLuma(texture2D(textureSampler,sampleCoordE,0.0));\nfloat lumaN=FxaaLuma(texture2D(textureSampler,sampleCoordN,0.0));\nfloat lumaW=FxaaLuma(texture2D(textureSampler,sampleCoordW,0.0));\nfloat maxSM=max(lumaS,lumaM);\nfloat minSM=min(lumaS,lumaM);\nfloat maxESM=max(lumaE,maxSM);\nfloat minESM=min(lumaE,minSM);\nfloat maxWN=max(lumaN,lumaW);\nfloat minWN=min(lumaN,lumaW);\nfloat rangeMax=max(maxWN,maxESM);\nfloat rangeMin=min(minWN,minESM);\nfloat rangeMaxScaled=rangeMax*fxaaQualityEdgeThreshold;\nfloat range=rangeMax-rangeMin;\nfloat rangeMaxClamped=max(fxaaQualityEdgeThresholdMin,rangeMaxScaled);\n#ifndef MALI\nif(range<rangeMaxClamped) \n{\ngl_FragColor=rgbyM;\nreturn;\n}\n#endif\nfloat lumaNW=FxaaLuma(texture2D(textureSampler,sampleCoordNW,0.0));\nfloat lumaSE=FxaaLuma(texture2D(textureSampler,sampleCoordSE,0.0));\nfloat lumaNE=FxaaLuma(texture2D(textureSampler,sampleCoordNE,0.0));\nfloat lumaSW=FxaaLuma(texture2D(textureSampler,sampleCoordSW,0.0));\nfloat lumaNS=lumaN+lumaS;\nfloat lumaWE=lumaW+lumaE;\nfloat subpixRcpRange=1.0/range;\nfloat subpixNSWE=lumaNS+lumaWE;\nfloat edgeHorz1=(-2.0*lumaM)+lumaNS;\nfloat edgeVert1=(-2.0*lumaM)+lumaWE;\nfloat lumaNESE=lumaNE+lumaSE;\nfloat lumaNWNE=lumaNW+lumaNE;\nfloat edgeHorz2=(-2.0*lumaE)+lumaNESE;\nfloat edgeVert2=(-2.0*lumaN)+lumaNWNE;\nfloat lumaNWSW=lumaNW+lumaSW;\nfloat lumaSWSE=lumaSW+lumaSE;\nfloat edgeHorz4=(abs(edgeHorz1)*2.0)+abs(edgeHorz2);\nfloat edgeVert4=(abs(edgeVert1)*2.0)+abs(edgeVert2);\nfloat edgeHorz3=(-2.0*lumaW)+lumaNWSW;\nfloat edgeVert3=(-2.0*lumaS)+lumaSWSE;\nfloat edgeHorz=abs(edgeHorz3)+edgeHorz4;\nfloat edgeVert=abs(edgeVert3)+edgeVert4;\nfloat subpixNWSWNESE=lumaNWSW+lumaNESE;\nfloat lengthSign=texelSize.x;\nbool horzSpan=edgeHorz>=edgeVert;\nfloat subpixA=subpixNSWE*2.0+subpixNWSWNESE;\nif (!horzSpan)\n{\nlumaN=lumaW;\n}\nif (!horzSpan) \n{\nlumaS=lumaE;\n}\nif (horzSpan) \n{\nlengthSign=texelSize.y;\n}\nfloat subpixB=(subpixA*(1.0/12.0))-lumaM;\nfloat gradientN=lumaN-lumaM;\nfloat gradientS=lumaS-lumaM;\nfloat lumaNN=lumaN+lumaM;\nfloat lumaSS=lumaS+lumaM;\nbool pairN=abs(gradientN)>=abs(gradientS);\nfloat gradient=max(abs(gradientN),abs(gradientS));\nif (pairN)\n{\nlengthSign=-lengthSign;\n}\nfloat subpixC=clamp(abs(subpixB)*subpixRcpRange,0.0,1.0);\nvec2 posB;\nposB.x=posM.x;\nposB.y=posM.y;\nvec2 offNP;\noffNP.x=(!horzSpan) ? 0.0 : texelSize.x;\noffNP.y=(horzSpan) ? 0.0 : texelSize.y;\nif (!horzSpan) \n{\nposB.x+=lengthSign*0.5;\n}\nif (horzSpan)\n{\nposB.y+=lengthSign*0.5;\n}\nvec2 posN;\nposN.x=posB.x-offNP.x*1.5;\nposN.y=posB.y-offNP.y*1.5;\nvec2 posP;\nposP.x=posB.x+offNP.x*1.5;\nposP.y=posB.y+offNP.y*1.5;\nfloat subpixD=((-2.0)*subpixC)+3.0;\nfloat lumaEndN=FxaaLuma(texture2D(textureSampler,posN,0.0));\nfloat subpixE=subpixC*subpixC;\nfloat lumaEndP=FxaaLuma(texture2D(textureSampler,posP,0.0));\nif (!pairN) \n{\nlumaNN=lumaSS;\n}\nfloat gradientScaled=gradient*1.0/4.0;\nfloat lumaMM=lumaM-lumaNN*0.5;\nfloat subpixF=subpixD*subpixE;\nbool lumaMLTZero=lumaMM<0.0;\nlumaEndN-=lumaNN*0.5;\nlumaEndP-=lumaNN*0.5;\nbool doneN=abs(lumaEndN)>=gradientScaled;\nbool doneP=abs(lumaEndP)>=gradientScaled;\nif (!doneN) \n{\nposN.x-=offNP.x*3.0;\n}\nif (!doneN) \n{\nposN.y-=offNP.y*3.0;\n}\nbool doneNP=(!doneN) || (!doneP);\nif (!doneP) \n{\nposP.x+=offNP.x*3.0;\n}\nif (!doneP)\n{\nposP.y+=offNP.y*3.0;\n}\nif (doneNP)\n{\nif (!doneN) lumaEndN=FxaaLuma(texture2D(textureSampler,posN.xy,0.0));\nif (!doneP) lumaEndP=FxaaLuma(texture2D(textureSampler,posP.xy,0.0));\nif (!doneN) lumaEndN=lumaEndN-lumaNN*0.5;\nif (!doneP) lumaEndP=lumaEndP-lumaNN*0.5;\ndoneN=abs(lumaEndN)>=gradientScaled;\ndoneP=abs(lumaEndP)>=gradientScaled;\nif (!doneN) posN.x-=offNP.x*12.0;\nif (!doneN) posN.y-=offNP.y*12.0;\ndoneNP=(!doneN) || (!doneP);\nif (!doneP) posP.x+=offNP.x*12.0;\nif (!doneP) posP.y+=offNP.y*12.0;\n}\nfloat dstN=posM.x-posN.x;\nfloat dstP=posP.x-posM.x;\nif (!horzSpan)\n{\ndstN=posM.y-posN.y;\n}\nif (!horzSpan) \n{\ndstP=posP.y-posM.y;\n}\nbool goodSpanN=(lumaEndN<0.0) != lumaMLTZero;\nfloat spanLength=(dstP+dstN);\nbool goodSpanP=(lumaEndP<0.0) != lumaMLTZero;\nfloat spanLengthRcp=1.0/spanLength;\nbool directionN=dstN<dstP;\nfloat dst=min(dstN,dstP);\nbool goodSpan=directionN ? goodSpanN : goodSpanP;\nfloat subpixG=subpixF*subpixF;\nfloat pixelOffset=(dst*(-spanLengthRcp))+0.5;\nfloat subpixH=subpixG*fxaaQualitySubpix;\nfloat pixelOffsetGood=goodSpan ? pixelOffset : 0.0;\nfloat pixelOffsetSubpix=max(pixelOffsetGood,subpixH);\nif (!horzSpan)\n{\nposM.x+=pixelOffsetSubpix*lengthSign;\n}\nif (horzSpan)\n{\nposM.y+=pixelOffsetSubpix*lengthSign;\n}\n#ifdef MALI\nif(range<rangeMaxClamped) \n{\ngl_FragColor=rgbyM;\n}\nelse\n{\ngl_FragColor=texture2D(textureSampler,posM,0.0);\n}\n#else\ngl_FragColor=texture2D(textureSampler,posM,0.0);\n#endif\n}","chromaticAberrationPixelShader":"\nuniform sampler2D textureSampler; \n\nuniform float chromatic_aberration;\nuniform float radialIntensity;\nuniform vec2 direction;\nuniform vec2 centerPosition;\nuniform float screen_width;\nuniform float screen_height;\n\nvarying vec2 vUV;\nvoid main(void)\n{\nvec2 centered_screen_pos=vec2(vUV.x-centerPosition.x,vUV.y-centerPosition.y);\nvec2 directionOfEffect=direction;\nif(directionOfEffect.x == 0. && directionOfEffect.y == 0.){\ndirectionOfEffect=normalize(centered_screen_pos);\n}\nfloat radius2=centered_screen_pos.x*centered_screen_pos.x\n+centered_screen_pos.y*centered_screen_pos.y;\nfloat radius=sqrt(radius2);\nvec4 original=texture2D(textureSampler,vUV);\n\nvec3 ref_indices=vec3(-0.3,0.0,0.3);\nfloat ref_shiftX=chromatic_aberration*pow(radius,radialIntensity)*directionOfEffect.x/screen_width;\nfloat ref_shiftY=chromatic_aberration*pow(radius,radialIntensity)*directionOfEffect.y/screen_height;\n\nvec2 ref_coords_r=vec2(vUV.x+ref_indices.r*ref_shiftX,vUV.y+ref_indices.r*ref_shiftY*0.5);\nvec2 ref_coords_g=vec2(vUV.x+ref_indices.g*ref_shiftX,vUV.y+ref_indices.g*ref_shiftY*0.5);\nvec2 ref_coords_b=vec2(vUV.x+ref_indices.b*ref_shiftX,vUV.y+ref_indices.b*ref_shiftY*0.5);\noriginal.r=texture2D(textureSampler,ref_coords_r).r;\noriginal.g=texture2D(textureSampler,ref_coords_g).g;\noriginal.b=texture2D(textureSampler,ref_coords_b).b;\noriginal.a=clamp(texture2D(textureSampler,ref_coords_r).a+texture2D(textureSampler,ref_coords_g).a+texture2D(textureSampler,ref_coords_b).a,0.,1.);\ngl_FragColor=original;\n}","grainPixelShader":"#include<helperFunctions>\n\nuniform sampler2D textureSampler; \n\nuniform float intensity;\nuniform float animatedSeed;\n\nvarying vec2 vUV;\nvoid main(void)\n{\ngl_FragColor=texture2D(textureSampler,vUV);\nvec2 seed=vUV*(animatedSeed);\nfloat grain=dither(seed,intensity);\n\nfloat lum=getLuminance(gl_FragColor.rgb);\nfloat grainAmount=(cos(-PI+(lum*PI*2.))+1.)/2.;\ngl_FragColor.rgb+=grain*grainAmount;\ngl_FragColor.rgb=max(gl_FragColor.rgb,0.0);\n}","sharpenPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform vec2 screenSize;\nuniform vec2 sharpnessAmounts;\nvoid main(void)\n{\nvec2 onePixel=vec2(1.0,1.0)/screenSize;\nvec4 color=texture2D(textureSampler,vUV);\nvec4 edgeDetection=texture2D(textureSampler,vUV+onePixel*vec2(0,-1)) +\ntexture2D(textureSampler,vUV+onePixel*vec2(-1,0)) +\ntexture2D(textureSampler,vUV+onePixel*vec2(1,0)) +\ntexture2D(textureSampler,vUV+onePixel*vec2(0,1)) -\ncolor*4.0;\ngl_FragColor=max(vec4(color.rgb*sharpnessAmounts.y,color.a)-(sharpnessAmounts.x*vec4(edgeDetection.rgb,0)),0.);\n}","kernelBlurVertexShader":"\nattribute vec2 position;\n\nuniform vec2 delta;\n\nvarying vec2 sampleCenter;\n#include<kernelBlurVaryingDeclaration>[0..varyingCount]\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nsampleCenter=(position*madd+madd);\n#include<kernelBlurVertex>[0..varyingCount]\ngl_Position=vec4(position,0.0,1.0);\n}","kernelBlurPixelShader":"\nuniform sampler2D textureSampler;\nuniform vec2 delta;\n\nvarying vec2 sampleCenter;\n#ifdef DOF\nuniform sampler2D circleOfConfusionSampler;\nuniform vec2 cameraMinMaxZ;\nfloat sampleDistance(const in vec2 offset) {\nfloat depth=texture2D(circleOfConfusionSampler,offset).g; \nreturn cameraMinMaxZ.x+(cameraMinMaxZ.y-cameraMinMaxZ.x)*depth; \n}\nfloat sampleCoC(const in vec2 offset) {\nfloat coc=texture2D(circleOfConfusionSampler,offset).r; \nreturn coc; \n}\n#endif\n#include<kernelBlurVaryingDeclaration>[0..varyingCount]\n#ifdef PACKEDFLOAT\nvec4 pack(float depth)\n{\nconst vec4 bit_shift=vec4(255.0*255.0*255.0,255.0*255.0,255.0,1.0);\nconst vec4 bit_mask=vec4(0.0,1.0/255.0,1.0/255.0,1.0/255.0);\nvec4 res=fract(depth*bit_shift);\nres-=res.xxyz*bit_mask;\nreturn res;\n}\nfloat unpack(vec4 color)\n{\nconst vec4 bit_shift=vec4(1.0/(255.0*255.0*255.0),1.0/(255.0*255.0),1.0/255.0,1.0);\nreturn dot(color,bit_shift);\n}\n#endif\nvoid main(void)\n{\nfloat computedWeight=0.0;\n#ifdef PACKEDFLOAT \nfloat blend=0.;\n#else\nvec4 blend=vec4(0.);\n#endif\n#ifdef DOF\nfloat sumOfWeights=CENTER_WEIGHT; \nfloat factor=0.0;\n\n#ifdef PACKEDFLOAT\nblend+=unpack(texture2D(textureSampler,sampleCenter))*CENTER_WEIGHT;\n#else\nblend+=texture2D(textureSampler,sampleCenter)*CENTER_WEIGHT;\n#endif\n#endif\n#include<kernelBlurFragment>[0..varyingCount]\n#include<kernelBlurFragment2>[0..depCount]\n#ifdef PACKEDFLOAT\ngl_FragColor=pack(blend);\n#else\ngl_FragColor=blend;\n#endif\n#ifdef DOF\ngl_FragColor/=sumOfWeights;\n#endif\n}","depthOfFieldMergePixelShader":"uniform sampler2D textureSampler;\nvarying vec2 vUV;\nuniform sampler2D circleOfConfusionSampler;\nuniform sampler2D blurStep0;\n#if BLUR_LEVEL>0\nuniform sampler2D blurStep1;\n#endif\n#if BLUR_LEVEL>1\nuniform sampler2D blurStep2;\n#endif\nvoid main(void)\n{\nfloat coc=texture2D(circleOfConfusionSampler,vUV).r;\n#if BLUR_LEVEL == 0\nvec4 original=texture2D(textureSampler,vUV);\nvec4 blurred0=texture2D(blurStep0,vUV);\ngl_FragColor=mix(original,blurred0,coc);\n#endif\n#if BLUR_LEVEL == 1\nif(coc<0.5){\nvec4 original=texture2D(textureSampler,vUV);\nvec4 blurred1=texture2D(blurStep1,vUV);\ngl_FragColor=mix(original,blurred1,coc/0.5);\n}else{\nvec4 blurred0=texture2D(blurStep0,vUV); \nvec4 blurred1=texture2D(blurStep1,vUV);\ngl_FragColor=mix(blurred1,blurred0,(coc-0.5)/0.5);\n}\n#endif\n#if BLUR_LEVEL == 2\nif(coc<0.33){\nvec4 original=texture2D(textureSampler,vUV);\nvec4 blurred2=texture2D(blurStep2,vUV);\ngl_FragColor=mix(original,blurred2,coc/0.33);\n}else if(coc<0.66){\nvec4 blurred1=texture2D(blurStep1,vUV);\nvec4 blurred2=texture2D(blurStep2,vUV);\ngl_FragColor=mix(blurred2,blurred1,(coc-0.33)/0.33);\n}else{\nvec4 blurred0=texture2D(blurStep0,vUV);\nvec4 blurred1=texture2D(blurStep1,vUV);\ngl_FragColor=mix(blurred1,blurred0,(coc-0.66)/0.34);\n}\n#endif\n}\n","circleOfConfusionPixelShader":"\nuniform sampler2D depthSampler;\n\nvarying vec2 vUV;\n\nuniform vec2 cameraMinMaxZ;\n\nuniform float focusDistance;\nuniform float cocPrecalculation;\nvoid main(void)\n{\nfloat depth=texture2D(depthSampler,vUV).r;\nfloat pixelDistance=(cameraMinMaxZ.x+(cameraMinMaxZ.y-cameraMinMaxZ.x)*depth)*1000.0; \nfloat coc=abs(cocPrecalculation* ((focusDistance-pixelDistance)/pixelDistance));\ncoc=clamp(coc,0.0,1.0);\ngl_FragColor=vec4(coc,depth,coc,1.0);\n}\n","bloomMergePixelShader":"uniform sampler2D textureSampler;\nuniform sampler2D bloomBlur;\nvarying vec2 vUV;\nuniform float bloomWeight;\nvoid main(void)\n{\ngl_FragColor=texture2D(textureSampler,vUV);\nvec3 blurred=texture2D(bloomBlur,vUV).rgb;\ngl_FragColor.rgb=gl_FragColor.rgb+(blurred.rgb*bloomWeight); \n}\n","extractHighlightsPixelShader":"#include<helperFunctions>\n\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform float threshold;\nuniform float exposure;\nvoid main(void) \n{\ngl_FragColor=texture2D(textureSampler,vUV);\nfloat luma=getLuminance(gl_FragColor.rgb*exposure);\ngl_FragColor.rgb=step(threshold,luma)*gl_FragColor.rgb;\n}","refractionPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform sampler2D refractionSampler;\n\nuniform vec3 baseColor;\nuniform float depth;\nuniform float colorLevel;\nvoid main() {\nfloat ref=1.0-texture2D(refractionSampler,vUV).r;\nvec2 uv=vUV-vec2(0.5);\nvec2 offset=uv*depth*ref;\nvec3 sourceColor=texture2D(textureSampler,vUV-offset).rgb;\ngl_FragColor=vec4(sourceColor+sourceColor*ref*colorLevel,1.0);\n}","blackAndWhitePixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform float degree;\nvoid main(void) \n{\nvec3 color=texture2D(textureSampler,vUV).rgb;\nfloat luminance=dot(color,vec3(0.3,0.59,0.11)); \nvec3 blackAndWhite=vec3(luminance,luminance,luminance);\ngl_FragColor=vec4(color-((color-blackAndWhite)*degree),1.0);\n}","convolutionPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform vec2 screenSize;\nuniform float kernel[9];\nvoid main(void)\n{\nvec2 onePixel=vec2(1.0,1.0)/screenSize;\nvec4 colorSum =\ntexture2D(textureSampler,vUV+onePixel*vec2(-1,-1))*kernel[0] +\ntexture2D(textureSampler,vUV+onePixel*vec2(0,-1))*kernel[1] +\ntexture2D(textureSampler,vUV+onePixel*vec2(1,-1))*kernel[2] +\ntexture2D(textureSampler,vUV+onePixel*vec2(-1,0))*kernel[3] +\ntexture2D(textureSampler,vUV+onePixel*vec2(0,0))*kernel[4] +\ntexture2D(textureSampler,vUV+onePixel*vec2(1,0))*kernel[5] +\ntexture2D(textureSampler,vUV+onePixel*vec2(-1,1))*kernel[6] +\ntexture2D(textureSampler,vUV+onePixel*vec2(0,1))*kernel[7] +\ntexture2D(textureSampler,vUV+onePixel*vec2(1,1))*kernel[8];\nfloat kernelWeight =\nkernel[0] +\nkernel[1] +\nkernel[2] +\nkernel[3] +\nkernel[4] +\nkernel[5] +\nkernel[6] +\nkernel[7] +\nkernel[8];\nif (kernelWeight<=0.0) {\nkernelWeight=1.0;\n}\ngl_FragColor=vec4((colorSum/kernelWeight).rgb,1);\n}","filterPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform mat4 kernelMatrix;\nvoid main(void)\n{\nvec3 baseColor=texture2D(textureSampler,vUV).rgb;\nvec3 updatedColor=(kernelMatrix*vec4(baseColor,1.0)).rgb;\ngl_FragColor=vec4(updatedColor,1.0);\n}","volumetricLightScatteringPixelShader":"uniform sampler2D textureSampler;\nuniform sampler2D lightScatteringSampler;\nuniform float decay;\nuniform float exposure;\nuniform float weight;\nuniform float density;\nuniform vec2 meshPositionOnScreen;\nvarying vec2 vUV;\nvoid main(void) {\nvec2 tc=vUV;\nvec2 deltaTexCoord=(tc-meshPositionOnScreen.xy);\ndeltaTexCoord*=1.0/float(NUM_SAMPLES)*density;\nfloat illuminationDecay=1.0;\nvec4 color=texture2D(lightScatteringSampler,tc)*0.4;\nfor(int i=0; i<NUM_SAMPLES; i++) {\ntc-=deltaTexCoord;\nvec4 dataSample=texture2D(lightScatteringSampler,tc)*0.4;\ndataSample*=illuminationDecay*weight;\ncolor+=dataSample;\nilluminationDecay*=decay;\n}\nvec4 realColor=texture2D(textureSampler,vUV);\ngl_FragColor=((vec4((vec3(color.r,color.g,color.b)*exposure),1))+(realColor*(1.5-0.4)));\n}\n","volumetricLightScatteringPassPixelShader":"#if defined(ALPHATEST) || defined(NEED_UV)\nvarying vec2 vUV;\n#endif\n#if defined(ALPHATEST)\nuniform sampler2D diffuseSampler;\n#endif\nvoid main(void)\n{\n#if defined(ALPHATEST)\nvec4 diffuseColor=texture2D(diffuseSampler,vUV);\nif (diffuseColor.a<0.4)\ndiscard;\n#endif\ngl_FragColor=vec4(0.0,0.0,0.0,1.0);\n}\n","colorCorrectionPixelShader":"\nuniform sampler2D textureSampler; \nuniform sampler2D colorTable; \n\nvarying vec2 vUV;\n\nconst float SLICE_COUNT=16.0; \n\nvec4 sampleAs3DTexture(sampler2D textureSampler,vec3 uv,float width) {\nfloat sliceSize=1.0/width; \nfloat slicePixelSize=sliceSize/width; \nfloat sliceInnerSize=slicePixelSize*(width-1.0); \nfloat zSlice0=min(floor(uv.z*width),width-1.0);\nfloat zSlice1=min(zSlice0+1.0,width-1.0);\nfloat xOffset=slicePixelSize*0.5+uv.x*sliceInnerSize;\nfloat s0=xOffset+(zSlice0*sliceSize);\nfloat s1=xOffset+(zSlice1*sliceSize);\nvec4 slice0Color=texture2D(textureSampler,vec2(s0,uv.y));\nvec4 slice1Color=texture2D(textureSampler,vec2(s1,uv.y));\nfloat zOffset=mod(uv.z*width,1.0);\nvec4 result=mix(slice0Color,slice1Color,zOffset);\nreturn result;\n}\nvoid main(void)\n{\nvec4 screen_color=texture2D(textureSampler,vUV);\ngl_FragColor=sampleAs3DTexture(colorTable,screen_color.rgb,SLICE_COUNT);\n}","tonemapPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n\nuniform float _ExposureAdjustment;\n#if defined(HABLE_TONEMAPPING)\nconst float A=0.15;\nconst float B=0.50;\nconst float C=0.10;\nconst float D=0.20;\nconst float E=0.02;\nconst float F=0.30;\nconst float W=11.2;\n#endif\nfloat Luminance(vec3 c)\n{\nreturn dot(c,vec3(0.22,0.707,0.071));\n}\nvoid main(void) \n{\nvec3 colour=texture2D(textureSampler,vUV).rgb;\n#if defined(REINHARD_TONEMAPPING)\nfloat lum=Luminance(colour.rgb); \nfloat lumTm=lum*_ExposureAdjustment;\nfloat scale=lumTm/(1.0+lumTm); \ncolour*=scale/lum;\n#elif defined(HABLE_TONEMAPPING)\ncolour*=_ExposureAdjustment;\nconst float ExposureBias=2.0;\nvec3 x=ExposureBias*colour;\nvec3 curr=((x*(A*x+C*B)+D*E)/(x*(A*x+B)+D*F))-E/F;\nx=vec3(W,W,W);\nvec3 whiteScale=1.0/(((x*(A*x+C*B)+D*E)/(x*(A*x+B)+D*F))-E/F);\ncolour=curr*whiteScale;\n#elif defined(OPTIMIZED_HEJIDAWSON_TONEMAPPING)\ncolour*=_ExposureAdjustment;\nvec3 X=max(vec3(0.0,0.0,0.0),colour-0.004);\nvec3 retColor=(X*(6.2*X+0.5))/(X*(6.2*X+1.7)+0.06);\ncolour=retColor*retColor;\n#elif defined(PHOTOGRAPHIC_TONEMAPPING)\ncolour=vec3(1.0,1.0,1.0)-exp2(-_ExposureAdjustment*colour);\n#endif\ngl_FragColor=vec4(colour.rgb,1.0);\n}","displayPassPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform sampler2D passSampler;\nvoid main(void)\n{\ngl_FragColor=texture2D(passSampler,vUV);\n}","highlightsPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nconst vec3 RGBLuminanceCoefficients=vec3(0.2126,0.7152,0.0722);\nvoid main(void) \n{\nvec4 tex=texture2D(textureSampler,vUV);\nvec3 c=tex.rgb;\nfloat luma=dot(c.rgb,RGBLuminanceCoefficients);\n\n\ngl_FragColor=vec4(pow(c,vec3(25.0-luma*15.0)),tex.a); \n}","imageProcessingPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n#include<imageProcessingDeclaration>\n#include<helperFunctions>\n#include<imageProcessingFunctions>\nvoid main(void)\n{\nvec4 result=texture2D(textureSampler,vUV);\n#ifdef IMAGEPROCESSING\n#ifndef FROMLINEARSPACE\n\nresult.rgb=toLinearSpace(result.rgb);\n#endif\nresult=applyImageProcessing(result);\n#else\n\n#ifdef FROMLINEARSPACE\nresult=applyImageProcessing(result);\n#endif\n#endif\ngl_FragColor=result;\n}","lensFlareVertexShader":"\nattribute vec2 position;\n\nuniform mat4 viewportMatrix;\n\nvarying vec2 vUV;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nvUV=position*madd+madd;\ngl_Position=viewportMatrix*vec4(position,0.0,1.0);\n}","lensFlarePixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n\nuniform vec4 color;\nvoid main(void) {\nvec4 baseColor=texture2D(textureSampler,vUV);\ngl_FragColor=baseColor*color;\n}","anaglyphPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform sampler2D leftSampler;\nvoid main(void)\n{\nvec4 leftFrag=texture2D(leftSampler,vUV);\nleftFrag=vec4(1.0,leftFrag.g,leftFrag.b,1.0);\nvec4 rightFrag=texture2D(textureSampler,vUV);\nrightFrag=vec4(rightFrag.r,1.0,1.0,1.0);\ngl_FragColor=vec4(rightFrag.rgb*leftFrag.rgb,1.0);\n}","stereoscopicInterlacePixelShader":"const vec3 TWO=vec3(2.0,2.0,2.0);\nvarying vec2 vUV;\nuniform sampler2D camASampler;\nuniform sampler2D textureSampler;\nuniform vec2 stepSize;\nvoid main(void)\n{\nbool useCamB;\nvec2 texCoord1;\nvec2 texCoord2;\nvec3 frag1;\nvec3 frag2;\n#ifdef IS_STEREOSCOPIC_HORIZ\nuseCamB=vUV.x>0.5;\ntexCoord1=vec2(useCamB ? (vUV.x-0.5)*2.0 : vUV.x*2.0,vUV.y);\ntexCoord2=vec2(texCoord1.x+stepSize.x,vUV.y);\n#else\nuseCamB=vUV.y>0.5;\ntexCoord1=vec2(vUV.x,useCamB ? (vUV.y-0.5)*2.0 : vUV.y*2.0);\ntexCoord2=vec2(vUV.x,texCoord1.y+stepSize.y);\n#endif\n\nif (useCamB){\nfrag1=texture2D(textureSampler,texCoord1).rgb;\nfrag2=texture2D(textureSampler,texCoord2).rgb;\n}else{\nfrag1=texture2D(camASampler ,texCoord1).rgb;\nfrag2=texture2D(camASampler ,texCoord2).rgb;\n}\ngl_FragColor=vec4((frag1+frag2)/TWO,1.0);\n}","vrDistortionCorrectionPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\nuniform vec2 LensCenter;\nuniform vec2 Scale;\nuniform vec2 ScaleIn;\nuniform vec4 HmdWarpParam;\nvec2 HmdWarp(vec2 in01) {\nvec2 theta=(in01-LensCenter)*ScaleIn; \nfloat rSq=theta.x*theta.x+theta.y*theta.y;\nvec2 rvector=theta*(HmdWarpParam.x+HmdWarpParam.y*rSq+HmdWarpParam.z*rSq*rSq+HmdWarpParam.w*rSq*rSq*rSq);\nreturn LensCenter+Scale*rvector;\n}\nvoid main(void)\n{\nvec2 tc=HmdWarp(vUV);\nif (tc.x <0.0 || tc.x>1.0 || tc.y<0.0 || tc.y>1.0)\ngl_FragColor=vec4(0.0,0.0,0.0,0.0);\nelse{\ngl_FragColor=texture2D(textureSampler,tc);\n}\n}","glowBlurPostProcessPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n\nuniform vec2 screenSize;\nuniform vec2 direction;\nuniform float blurWidth;\n\nfloat getLuminance(vec3 color)\n{\nreturn dot(color,vec3(0.2126,0.7152,0.0722));\n}\nvoid main(void)\n{\nfloat weights[7];\nweights[0]=0.05;\nweights[1]=0.1;\nweights[2]=0.2;\nweights[3]=0.3;\nweights[4]=0.2;\nweights[5]=0.1;\nweights[6]=0.05;\nvec2 texelSize=vec2(1.0/screenSize.x,1.0/screenSize.y);\nvec2 texelStep=texelSize*direction*blurWidth;\nvec2 start=vUV-3.0*texelStep;\nvec4 baseColor=vec4(0.,0.,0.,0.);\nvec2 texelOffset=vec2(0.,0.);\nfor (int i=0; i<7; i++)\n{\n\nvec4 texel=texture2D(textureSampler,start+texelOffset);\nbaseColor.a+=texel.a*weights[i];\n\nfloat luminance=getLuminance(baseColor.rgb);\nfloat luminanceTexel=getLuminance(texel.rgb);\nfloat choice=step(luminanceTexel,luminance);\nbaseColor.rgb=choice*baseColor.rgb+(1.0-choice)*texel.rgb;\ntexelOffset+=texelStep;\n}\ngl_FragColor=baseColor;\n}","glowMapGenerationPixelShader":"#ifdef ALPHATEST\nvarying vec2 vUVDiffuse;\nuniform sampler2D diffuseSampler;\n#endif\n#ifdef EMISSIVE\nvarying vec2 vUVEmissive;\nuniform sampler2D emissiveSampler;\n#endif\nuniform vec4 color;\nvoid main(void)\n{\n#ifdef ALPHATEST\nif (texture2D(diffuseSampler,vUVDiffuse).a<0.4)\ndiscard;\n#endif\n#ifdef EMISSIVE\ngl_FragColor=texture2D(emissiveSampler,vUVEmissive)*color;\n#else\ngl_FragColor=color;\n#endif\n}","glowMapGenerationVertexShader":"\nattribute vec3 position;\n#include<bonesDeclaration>\n#include<morphTargetsVertexGlobalDeclaration>\n#include<morphTargetsVertexDeclaration>[0..maxSimultaneousMorphTargets]\n\n#include<instancesDeclaration>\nuniform mat4 viewProjection;\nvarying vec4 vPosition;\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#ifdef ALPHATEST\nvarying vec2 vUVDiffuse;\nuniform mat4 diffuseMatrix;\n#endif\n#ifdef EMISSIVE\nvarying vec2 vUVEmissive;\nuniform mat4 emissiveMatrix;\n#endif\nvoid main(void)\n{\nvec3 positionUpdated=position;\n#include<morphTargetsVertex>[0..maxSimultaneousMorphTargets]\n#include<instancesVertex>\n#include<bonesVertex>\n#ifdef CUBEMAP\nvPosition=finalWorld*vec4(positionUpdated,1.0);\ngl_Position=viewProjection*finalWorld*vec4(position,1.0);\n#else\nvPosition=viewProjection*finalWorld*vec4(positionUpdated,1.0);\ngl_Position=vPosition;\n#endif\n#ifdef ALPHATEST\n#ifdef DIFFUSEUV1\nvUVDiffuse=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef DIFFUSEUV2\nvUVDiffuse=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n#ifdef EMISSIVE\n#ifdef EMISSIVEUV1\nvUVEmissive=vec2(emissiveMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef EMISSIVEUV2\nvUVEmissive=vec2(emissiveMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n}","glowMapMergePixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n#ifdef EMISSIVE\nuniform sampler2D textureSampler2;\n#endif\n\nuniform float offset;\nvoid main(void) {\nvec4 baseColor=texture2D(textureSampler,vUV);\n#ifdef EMISSIVE\nbaseColor+=texture2D(textureSampler2,vUV);\nbaseColor*=offset;\n#else\nbaseColor.a=abs(offset-baseColor.a);\n#ifdef STROKE\nfloat alpha=smoothstep(.0,.1,baseColor.a);\nbaseColor.a=alpha;\nbaseColor.rgb=baseColor.rgb*alpha;\n#endif\n#endif\ngl_FragColor=baseColor;\n}","glowMapMergeVertexShader":"\nattribute vec2 position;\n\nvarying vec2 vUV;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) {\nvUV=position*madd+madd;\ngl_Position=vec4(position,0.0,1.0);\n}","lineVertexShader":"\nattribute vec3 position;\nattribute vec4 normal;\n\nuniform mat4 worldViewProjection;\nuniform float width;\nuniform float aspectRatio;\nvoid main(void) {\nvec4 viewPosition=worldViewProjection*vec4(position,1.0);\nvec4 viewPositionNext=worldViewProjection*vec4(normal.xyz,1.0);\nvec2 currentScreen=viewPosition.xy/viewPosition.w;\nvec2 nextScreen=viewPositionNext.xy/viewPositionNext.w;\ncurrentScreen.x*=aspectRatio;\nnextScreen.x*=aspectRatio;\nvec2 dir=normalize(nextScreen-currentScreen);\nvec2 normalDir=vec2(-dir.y,dir.x);\nnormalDir*=width/2.0;\nnormalDir.x/=aspectRatio;\nvec4 offset=vec4(normalDir*normal.w,0.0,0.0);\ngl_Position=viewPosition+offset;\n}","linePixelShader":"uniform vec4 color;\nvoid main(void) {\ngl_FragColor=color;\n}","outlineVertexShader":"\nattribute vec3 position;\nattribute vec3 normal;\n#include<bonesDeclaration>\n\nuniform float offset;\n#include<instancesDeclaration>\nuniform mat4 viewProjection;\n#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform mat4 diffuseMatrix;\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#endif\n#include<logDepthDeclaration>\nvoid main(void)\n{\nvec3 offsetPosition=position+normal*offset;\n#include<instancesVertex>\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(offsetPosition,1.0);\n#ifdef ALPHATEST\n#ifdef UV1\nvUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n#endif\n#ifdef UV2\nvUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n#endif\n#endif\n#include<logDepthVertex>\n}\n","outlinePixelShader":"#ifdef LOGARITHMICDEPTH\n#extension GL_EXT_frag_depth : enable\n#endif\nuniform vec4 color;\n#ifdef ALPHATEST\nvarying vec2 vUV;\nuniform sampler2D diffuseSampler;\n#endif\n#include<logDepthDeclaration>\nvoid main(void) {\n#ifdef ALPHATEST\nif (texture2D(diffuseSampler,vUV).a<0.4)\ndiscard;\n#endif\n#include<logDepthFragment>\ngl_FragColor=color;\n}","layerVertexShader":"\nattribute vec2 position;\n\nuniform vec2 scale;\nuniform vec2 offset;\nuniform mat4 textureMatrix;\n\nvarying vec2 vUV;\nconst vec2 madd=vec2(0.5,0.5);\nvoid main(void) { \nvec2 shiftedPosition=position*scale+offset;\nvUV=vec2(textureMatrix*vec4(shiftedPosition*madd+madd,1.0,0.0));\ngl_Position=vec4(shiftedPosition,0.0,1.0);\n}","layerPixelShader":"\nvarying vec2 vUV;\nuniform sampler2D textureSampler;\n\nuniform vec4 color;\nvoid main(void) {\nvec4 baseColor=texture2D(textureSampler,vUV);\n#ifdef ALPHATEST\nif (baseColor.a<0.4)\ndiscard;\n#endif\ngl_FragColor=baseColor*color;\n}","backgroundVertexShader":"precision highp float;\n#include<__decl__backgroundVertex>\n#include<helperFunctions>\n\nattribute vec3 position;\n#ifdef NORMAL\nattribute vec3 normal;\n#endif\n#include<bonesDeclaration>\n\n#include<instancesDeclaration>\n#ifdef POINTSIZE\nuniform float pointSize;\n#endif\n\nvarying vec3 vPositionW;\n#ifdef NORMAL\nvarying vec3 vNormalW;\n#endif\n#ifdef UV1\nattribute vec2 uv;\n#endif\n#ifdef UV2\nattribute vec2 uv2;\n#endif\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif\n#ifdef MAINUV2\nvarying vec2 vMainUV2; \n#endif\n#if defined(DIFFUSE) && DIFFUSEDIRECTUV == 0\nvarying vec2 vDiffuseUV;\n#endif\n#include<clipPlaneVertexDeclaration>\n#include<fogVertexDeclaration>\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\nvoid main(void) {\n#ifdef REFLECTIONMAP_SKYBOX\n#ifdef REFLECTIONMAP_SKYBOX_TRANSFORMED\nvPositionUVW=(reflectionMatrix*vec4(position,1.0)).xyz;\n#else\nvPositionUVW=position;\n#endif\n#endif \n#include<instancesVertex>\n#include<bonesVertex>\ngl_Position=viewProjection*finalWorld*vec4(position,1.0);\nvec4 worldPos=finalWorld*vec4(position,1.0);\nvPositionW=vec3(worldPos);\n#ifdef NORMAL\nmat3 normalWorld=mat3(finalWorld);\n#ifdef NONUNIFORMSCALING\nnormalWorld=transposeMat3(inverseMat3(normalWorld));\n#endif\nvNormalW=normalize(normalWorld*normal);\n#endif\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvDirectionW=normalize(vec3(finalWorld*vec4(position,0.0)));\n#ifdef EQUIRECTANGULAR_RELFECTION_FOV\nmat3 screenToWorld=inverseMat3(mat3(finalWorld*viewProjection));\nvec3 segment=mix(vDirectionW,screenToWorld*vec3(0.0,0.0,1.0),abs(fFovMultiplier-1.0));\nif (fFovMultiplier<=1.0) {\nvDirectionW=normalize(segment);\n} else {\nvDirectionW=normalize(vDirectionW+(vDirectionW-segment));\n}\n#endif\n#endif\n#ifndef UV1\nvec2 uv=vec2(0.,0.);\n#endif\n#ifndef UV2\nvec2 uv2=vec2(0.,0.);\n#endif\n#ifdef MAINUV1\nvMainUV1=uv;\n#endif \n#ifdef MAINUV2\nvMainUV2=uv2;\n#endif\n#if defined(DIFFUSE) && DIFFUSEDIRECTUV == 0 \nif (vDiffuseInfos.x == 0.)\n{\nvDiffuseUV=vec2(diffuseMatrix*vec4(uv,1.0,0.0));\n}\nelse\n{\nvDiffuseUV=vec2(diffuseMatrix*vec4(uv2,1.0,0.0));\n}\n#endif\n\n#include<clipPlaneVertex>\n\n#include<fogVertex>\n\n#include<shadowsVertex>[0..maxSimultaneousLights]\n\n#ifdef VERTEXCOLOR\nvColor=color;\n#endif\n\n#ifdef POINTSIZE\ngl_PointSize=pointSize;\n#endif\n}\n","backgroundPixelShader":"#ifdef TEXTURELODSUPPORT\n#extension GL_EXT_shader_texture_lod : enable\n#endif\nprecision highp float;\n#include<__decl__backgroundFragment>\n#define RECIPROCAL_PI2 0.15915494\n\nuniform vec3 vEyePosition;\n\nvarying vec3 vPositionW;\n#ifdef MAINUV1\nvarying vec2 vMainUV1;\n#endif \n#ifdef MAINUV2 \nvarying vec2 vMainUV2; \n#endif \n#ifdef NORMAL\nvarying vec3 vNormalW;\n#endif\n#ifdef DIFFUSE\n#if DIFFUSEDIRECTUV == 1\n#define vDiffuseUV vMainUV1\n#elif DIFFUSEDIRECTUV == 2\n#define vDiffuseUV vMainUV2\n#else\nvarying vec2 vDiffuseUV;\n#endif\nuniform sampler2D diffuseSampler;\n#endif\n\n#ifdef REFLECTION\n#ifdef REFLECTIONMAP_3D\n#define sampleReflection(s,c) textureCube(s,c)\nuniform samplerCube reflectionSampler;\n#ifdef TEXTURELODSUPPORT\n#define sampleReflectionLod(s,c,l) textureCubeLodEXT(s,c,l)\n#else\nuniform samplerCube reflectionSamplerLow;\nuniform samplerCube reflectionSamplerHigh;\n#endif\n#else\n#define sampleReflection(s,c) texture2D(s,c)\nuniform sampler2D reflectionSampler;\n#ifdef TEXTURELODSUPPORT\n#define sampleReflectionLod(s,c,l) texture2DLodEXT(s,c,l)\n#else\nuniform samplerCube reflectionSamplerLow;\nuniform samplerCube reflectionSamplerHigh;\n#endif\n#endif\n#ifdef REFLECTIONMAP_SKYBOX\nvarying vec3 vPositionUVW;\n#else\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvarying vec3 vDirectionW;\n#endif\n#endif\n#include<reflectionFunction>\n#endif\n\n#ifndef FROMLINEARSPACE\n#define FROMLINEARSPACE;\n#endif\n\n#ifndef SHADOWONLY\n#define SHADOWONLY;\n#endif\n#include<imageProcessingDeclaration>\n\n#include<__decl__lightFragment>[0..maxSimultaneousLights]\n#include<helperFunctions>\n#include<lightsFragmentFunctions>\n#include<shadowsFragmentFunctions>\n#include<imageProcessingFunctions>\n#include<clipPlaneFragmentDeclaration>\n\n#include<fogFragmentDeclaration>\n#ifdef REFLECTIONFRESNEL\n#define FRESNEL_MAXIMUM_ON_ROUGH 0.25\nvec3 fresnelSchlickEnvironmentGGX(float VdotN,vec3 reflectance0,vec3 reflectance90,float smoothness)\n{\n\nfloat weight=mix(FRESNEL_MAXIMUM_ON_ROUGH,1.0,smoothness);\nreturn reflectance0+weight*(reflectance90-reflectance0)*pow(clamp(1.0-VdotN,0.,1.),5.0);\n}\n#endif\nvoid main(void) {\n#include<clipPlaneFragment>\nvec3 viewDirectionW=normalize(vEyePosition-vPositionW);\n\n#ifdef NORMAL\nvec3 normalW=normalize(vNormalW);\n#else\nvec3 normalW=vec3(0.0,1.0,0.0);\n#endif\n\nfloat shadow=1.;\nfloat globalShadow=0.;\nfloat shadowLightCount=0.;\n#include<lightFragment>[0..maxSimultaneousLights]\n#ifdef SHADOWINUSE\nglobalShadow/=shadowLightCount;\n#else\nglobalShadow=1.0;\n#endif\n\nvec4 reflectionColor=vec4(1.,1.,1.,1.);\n#ifdef REFLECTION\nvec3 reflectionVector=computeReflectionCoords(vec4(vPositionW,1.0),normalW);\n#ifdef REFLECTIONMAP_OPPOSITEZ\nreflectionVector.z*=-1.0;\n#endif\n\n#ifdef REFLECTIONMAP_3D\nvec3 reflectionCoords=reflectionVector;\n#else\nvec2 reflectionCoords=reflectionVector.xy;\n#ifdef REFLECTIONMAP_PROJECTION\nreflectionCoords/=reflectionVector.z;\n#endif\nreflectionCoords.y=1.0-reflectionCoords.y;\n#endif\n#ifdef REFLECTIONBLUR\nfloat reflectionLOD=vReflectionInfos.y;\n#ifdef TEXTURELODSUPPORT\n\nreflectionLOD=reflectionLOD*log2(vReflectionMicrosurfaceInfos.x)*vReflectionMicrosurfaceInfos.y+vReflectionMicrosurfaceInfos.z;\nreflectionColor=sampleReflectionLod(reflectionSampler,reflectionCoords,reflectionLOD);\n#else\nfloat lodReflectionNormalized=clamp(reflectionLOD,0.,1.);\nfloat lodReflectionNormalizedDoubled=lodReflectionNormalized*2.0;\nvec4 reflectionSpecularMid=sampleReflection(reflectionSampler,reflectionCoords);\nif(lodReflectionNormalizedDoubled<1.0){\nreflectionColor=mix(\nsampleReflection(reflectionSamplerHigh,reflectionCoords),\nreflectionSpecularMid,\nlodReflectionNormalizedDoubled\n);\n} else {\nreflectionColor=mix(\nreflectionSpecularMid,\nsampleReflection(reflectionSamplerLow,reflectionCoords),\nlodReflectionNormalizedDoubled-1.0\n);\n}\n#endif\n#else\nvec4 reflectionSample=sampleReflection(reflectionSampler,reflectionCoords);\nreflectionColor=reflectionSample;\n#endif\n#ifdef RGBDREFLECTION\nreflectionColor.rgb=fromRGBD(reflectionColor);\n#endif\n#ifdef GAMMAREFLECTION\nreflectionColor.rgb=toLinearSpace(reflectionColor.rgb);\n#endif\n#ifdef REFLECTIONBGR\nreflectionColor.rgb=reflectionColor.bgr;\n#endif\n\nreflectionColor.rgb*=vReflectionInfos.x;\n#endif\n\nvec3 diffuseColor=vec3(1.,1.,1.);\nfloat finalAlpha=alpha;\n#ifdef DIFFUSE\nvec4 diffuseMap=texture2D(diffuseSampler,vDiffuseUV);\n#ifdef GAMMADIFFUSE\ndiffuseMap.rgb=toLinearSpace(diffuseMap.rgb);\n#endif\n\ndiffuseMap.rgb*=vDiffuseInfos.y;\n#ifdef DIFFUSEHASALPHA\nfinalAlpha*=diffuseMap.a;\n#endif\ndiffuseColor=diffuseMap.rgb;\n#endif\n\n#ifdef REFLECTIONFRESNEL\nvec3 colorBase=diffuseColor;\n#else\nvec3 colorBase=reflectionColor.rgb*diffuseColor;\n#endif\ncolorBase=max(colorBase,0.0);\n\n#ifdef USERGBCOLOR\nvec3 finalColor=colorBase;\n#else\n#ifdef USEHIGHLIGHTANDSHADOWCOLORS\nvec3 mainColor=mix(vPrimaryColorShadow.rgb,vPrimaryColor.rgb,colorBase);\n#else\nvec3 mainColor=vPrimaryColor.rgb;\n#endif\nvec3 finalColor=colorBase*mainColor;\n#endif\n\n#ifdef REFLECTIONFRESNEL\nvec3 reflectionAmount=vReflectionControl.xxx;\nvec3 reflectionReflectance0=vReflectionControl.yyy;\nvec3 reflectionReflectance90=vReflectionControl.zzz;\nfloat VdotN=dot(normalize(vEyePosition),normalW);\nvec3 planarReflectionFresnel=fresnelSchlickEnvironmentGGX(clamp(VdotN,0.0,1.0),reflectionReflectance0,reflectionReflectance90,1.0);\nreflectionAmount*=planarReflectionFresnel;\n#ifdef REFLECTIONFALLOFF\nfloat reflectionDistanceFalloff=1.0-clamp(length(vPositionW.xyz-vBackgroundCenter)*vReflectionControl.w,0.0,1.0);\nreflectionDistanceFalloff*=reflectionDistanceFalloff;\nreflectionAmount*=reflectionDistanceFalloff;\n#endif\nfinalColor=mix(finalColor,reflectionColor.rgb,clamp(reflectionAmount,0.,1.));\n#endif\n#ifdef OPACITYFRESNEL\nfloat viewAngleToFloor=dot(normalW,normalize(vEyePosition-vBackgroundCenter));\n\nconst float startAngle=0.1;\nfloat fadeFactor=clamp(viewAngleToFloor/startAngle,0.0,1.0);\nfinalAlpha*=fadeFactor*fadeFactor;\n#endif\n\n#ifdef SHADOWINUSE\nfinalColor=mix(finalColor*shadowLevel,finalColor,globalShadow);\n#endif\n\nvec4 color=vec4(finalColor,finalAlpha);\n#include<fogFragment>\n#ifdef IMAGEPROCESSINGPOSTPROCESS\n\n\ncolor.rgb=clamp(color.rgb,0.,30.0);\n#else\n\ncolor=applyImageProcessing(color);\n#endif\n#ifdef PREMULTIPLYALPHA\n\ncolor.rgb*=color.a;\n#endif\n#ifdef NOISE\ncolor.rgb+=dither(vPositionW.xy,0.5);\ncolor=max(color,0.0);\n#endif\ngl_FragColor=color;\n}\n","noisePixelShader":"\n\nuniform float brightness;\nuniform float persistence;\nuniform float timeScale;\n\nvarying vec2 vUV;\n\nvec2 hash22(vec2 p)\n{\np=p*mat2(127.1,311.7,269.5,183.3);\np=-1.0+2.0*fract(sin(p)*43758.5453123);\nreturn sin(p*6.283+timeScale);\n}\nfloat interpolationNoise(vec2 p)\n{\nvec2 pi=floor(p);\nvec2 pf=p-pi;\nvec2 w=pf*pf*(3.-2.*pf);\nfloat f00=dot(hash22(pi+vec2(.0,.0)),pf-vec2(.0,.0));\nfloat f01=dot(hash22(pi+vec2(.0,1.)),pf-vec2(.0,1.));\nfloat f10=dot(hash22(pi+vec2(1.0,0.)),pf-vec2(1.0,0.));\nfloat f11=dot(hash22(pi+vec2(1.0,1.)),pf-vec2(1.0,1.));\nfloat xm1=mix(f00,f10,w.x);\nfloat xm2=mix(f01,f11,w.x);\nfloat ym=mix(xm1,xm2,w.y); \nreturn ym;\n}\nfloat perlinNoise2D(float x,float y)\n{\nfloat sum=0.0;\nfloat frequency=0.0;\nfloat amplitude=0.0;\nfor(int i=0; i<OCTAVES; i++)\n{\nfrequency=pow(2.0,float(i));\namplitude=pow(persistence,float(i));\nsum=sum+interpolationNoise(vec2(x*frequency,y*frequency))*amplitude;\n}\nreturn sum;\n}\n\nvoid main(void)\n{\nfloat x=abs(vUV.x);\nfloat y=abs(vUV.y);\nfloat noise=brightness+(1.0-brightness)*perlinNoise2D(x,y);\ngl_FragColor=vec4(noise,noise,noise,1.0);\n}\n"};
  108573. BABYLON.Effect.IncludesShadersStore={"depthPrePass":"#ifdef DEPTHPREPASS\ngl_FragColor=vec4(0.,0.,0.,1.0);\nreturn;\n#endif","bonesDeclaration":"#if NUM_BONE_INFLUENCERS>0\nuniform mat4 mBones[BonesPerMesh];\nattribute vec4 matricesIndices;\nattribute vec4 matricesWeights;\n#if NUM_BONE_INFLUENCERS>4\nattribute vec4 matricesIndicesExtra;\nattribute vec4 matricesWeightsExtra;\n#endif\n#endif","instancesDeclaration":"#ifdef INSTANCES\nattribute vec4 world0;\nattribute vec4 world1;\nattribute vec4 world2;\nattribute vec4 world3;\n#else\nuniform mat4 world;\n#endif","pointCloudVertexDeclaration":"#ifdef POINTSIZE\nuniform float pointSize;\n#endif","bumpVertexDeclaration":"#if defined(BUMP) || defined(PARALLAX)\n#if defined(TANGENT) && defined(NORMAL) \nvarying mat3 vTBN;\n#endif\n#endif\n","clipPlaneVertexDeclaration":"#ifdef CLIPPLANE\nuniform vec4 vClipPlane;\nvarying float fClipDistance;\n#endif\n#ifdef CLIPPLANE2\nuniform vec4 vClipPlane2;\nvarying float fClipDistance2;\n#endif\n#ifdef CLIPPLANE3\nuniform vec4 vClipPlane3;\nvarying float fClipDistance3;\n#endif\n#ifdef CLIPPLANE4\nuniform vec4 vClipPlane4;\nvarying float fClipDistance4;\n#endif","fogVertexDeclaration":"#ifdef FOG\nvarying vec3 vFogDistance;\n#endif","morphTargetsVertexGlobalDeclaration":"#ifdef MORPHTARGETS\nuniform float morphTargetInfluences[NUM_MORPH_INFLUENCERS];\n#endif","morphTargetsVertexDeclaration":"#ifdef MORPHTARGETS\nattribute vec3 position{X};\n#ifdef MORPHTARGETS_NORMAL\nattribute vec3 normal{X};\n#endif\n#ifdef MORPHTARGETS_TANGENT\nattribute vec3 tangent{X};\n#endif\n#endif","logDepthDeclaration":"#ifdef LOGARITHMICDEPTH\nuniform float logarithmicDepthConstant;\nvarying float vFragmentDepth;\n#endif","morphTargetsVertex":"#ifdef MORPHTARGETS\npositionUpdated+=(position{X}-position)*morphTargetInfluences[{X}];\n#ifdef MORPHTARGETS_NORMAL\nnormalUpdated+=(normal{X}-normal)*morphTargetInfluences[{X}];\n#endif\n#ifdef MORPHTARGETS_TANGENT\ntangentUpdated.xyz+=(tangent{X}-tangent.xyz)*morphTargetInfluences[{X}];\n#endif\n#endif","instancesVertex":"#ifdef INSTANCES\nmat4 finalWorld=mat4(world0,world1,world2,world3);\n#else\nmat4 finalWorld=world;\n#endif","bonesVertex":"#if NUM_BONE_INFLUENCERS>0\nmat4 influence;\ninfluence=mBones[int(matricesIndices[0])]*matricesWeights[0];\n#if NUM_BONE_INFLUENCERS>1\ninfluence+=mBones[int(matricesIndices[1])]*matricesWeights[1];\n#endif \n#if NUM_BONE_INFLUENCERS>2\ninfluence+=mBones[int(matricesIndices[2])]*matricesWeights[2];\n#endif \n#if NUM_BONE_INFLUENCERS>3\ninfluence+=mBones[int(matricesIndices[3])]*matricesWeights[3];\n#endif \n#if NUM_BONE_INFLUENCERS>4\ninfluence+=mBones[int(matricesIndicesExtra[0])]*matricesWeightsExtra[0];\n#endif \n#if NUM_BONE_INFLUENCERS>5\ninfluence+=mBones[int(matricesIndicesExtra[1])]*matricesWeightsExtra[1];\n#endif \n#if NUM_BONE_INFLUENCERS>6\ninfluence+=mBones[int(matricesIndicesExtra[2])]*matricesWeightsExtra[2];\n#endif \n#if NUM_BONE_INFLUENCERS>7\ninfluence+=mBones[int(matricesIndicesExtra[3])]*matricesWeightsExtra[3];\n#endif \nfinalWorld=finalWorld*influence;\n#endif","bumpVertex":"#if defined(BUMP) || defined(PARALLAX)\n#if defined(TANGENT) && defined(NORMAL)\nvec3 tbnNormal=normalize(normalUpdated);\nvec3 tbnTangent=normalize(tangentUpdated.xyz);\nvec3 tbnBitangent=cross(tbnNormal,tbnTangent)*tangentUpdated.w;\nvTBN=mat3(finalWorld)*mat3(tbnTangent,tbnBitangent,tbnNormal);\n#endif\n#endif","clipPlaneVertex":"#ifdef CLIPPLANE\nfClipDistance=dot(worldPos,vClipPlane);\n#endif\n#ifdef CLIPPLANE2\nfClipDistance2=dot(worldPos,vClipPlane2);\n#endif\n#ifdef CLIPPLANE3\nfClipDistance3=dot(worldPos,vClipPlane3);\n#endif\n#ifdef CLIPPLANE4\nfClipDistance4=dot(worldPos,vClipPlane4);\n#endif","fogVertex":"#ifdef FOG\nvFogDistance=(view*worldPos).xyz;\n#endif","shadowsVertex":"#ifdef SHADOWS\n#if defined(SHADOW{X}) && !defined(SHADOWCUBE{X})\nvPositionFromLight{X}=lightMatrix{X}*worldPos;\nvDepthMetric{X}=((vPositionFromLight{X}.z+light{X}.depthValues.x)/(light{X}.depthValues.y));\n#endif\n#endif","pointCloudVertex":"#ifdef POINTSIZE\ngl_PointSize=pointSize;\n#endif","logDepthVertex":"#ifdef LOGARITHMICDEPTH\nvFragmentDepth=1.0+gl_Position.w;\ngl_Position.z=log2(max(0.000001,vFragmentDepth))*logarithmicDepthConstant;\n#endif","helperFunctions":"const float PI=3.1415926535897932384626433832795;\nconst float LinearEncodePowerApprox=2.2;\nconst float GammaEncodePowerApprox=1.0/LinearEncodePowerApprox;\nconst vec3 LuminanceEncodeApprox=vec3(0.2126,0.7152,0.0722);\nmat3 transposeMat3(mat3 inMatrix) {\nvec3 i0=inMatrix[0];\nvec3 i1=inMatrix[1];\nvec3 i2=inMatrix[2];\nmat3 outMatrix=mat3(\nvec3(i0.x,i1.x,i2.x),\nvec3(i0.y,i1.y,i2.y),\nvec3(i0.z,i1.z,i2.z)\n);\nreturn outMatrix;\n}\n\nmat3 inverseMat3(mat3 inMatrix) {\nfloat a00=inMatrix[0][0],a01=inMatrix[0][1],a02=inMatrix[0][2];\nfloat a10=inMatrix[1][0],a11=inMatrix[1][1],a12=inMatrix[1][2];\nfloat a20=inMatrix[2][0],a21=inMatrix[2][1],a22=inMatrix[2][2];\nfloat b01=a22*a11-a12*a21;\nfloat b11=-a22*a10+a12*a20;\nfloat b21=a21*a10-a11*a20;\nfloat det=a00*b01+a01*b11+a02*b21;\nreturn mat3(b01,(-a22*a01+a02*a21),(a12*a01-a02*a11),\nb11,(a22*a00-a02*a20),(-a12*a00+a02*a10),\nb21,(-a21*a00+a01*a20),(a11*a00-a01*a10))/det;\n}\nfloat computeFallOff(float value,vec2 clipSpace,float frustumEdgeFalloff)\n{\nfloat mask=smoothstep(1.0-frustumEdgeFalloff,1.0,clamp(dot(clipSpace,clipSpace),0.,1.));\nreturn mix(value,1.0,mask);\n}\nvec3 applyEaseInOut(vec3 x){\nreturn x*x*(3.0-2.0*x);\n}\nvec3 toLinearSpace(vec3 color)\n{\nreturn pow(color,vec3(LinearEncodePowerApprox));\n}\nvec3 toGammaSpace(vec3 color)\n{\nreturn pow(color,vec3(GammaEncodePowerApprox));\n}\nfloat square(float value)\n{\nreturn value*value;\n}\nfloat getLuminance(vec3 color)\n{\nreturn clamp(dot(color,LuminanceEncodeApprox),0.,1.);\n}\n\nfloat getRand(vec2 seed) {\nreturn fract(sin(dot(seed.xy ,vec2(12.9898,78.233)))*43758.5453);\n}\nfloat dither(vec2 seed,float varianceAmount) {\nfloat rand=getRand(seed);\nfloat dither=mix(-varianceAmount/255.0,varianceAmount/255.0,rand);\nreturn dither;\n}\n\nconst float rgbdMaxRange=255.0;\nvec4 toRGBD(vec3 color) {\nfloat maxRGB=max(0.0000001,max(color.r,max(color.g,color.b)));\nfloat D=max(rgbdMaxRange/maxRGB,1.);\nD=clamp(floor(D)/255.0,0.,1.);\n\nvec3 rgb=color.rgb*D;\n\nrgb=toGammaSpace(rgb);\nreturn vec4(rgb,D); \n}\nvec3 fromRGBD(vec4 rgbd) {\n\nrgbd.rgb=toLinearSpace(rgbd.rgb);\n\nreturn rgbd.rgb/rgbd.a;\n}","lightFragmentDeclaration":"#ifdef LIGHT{X}\nuniform vec4 vLightData{X};\nuniform vec4 vLightDiffuse{X};\n#ifdef SPECULARTERM\nuniform vec3 vLightSpecular{X};\n#else\nvec3 vLightSpecular{X}=vec3(0.);\n#endif\n#ifdef SHADOW{X}\n#if defined(SHADOWCUBE{X})\nuniform samplerCube shadowSampler{X};\n#else\nvarying vec4 vPositionFromLight{X};\nvarying float vDepthMetric{X};\n#if defined(SHADOWPCSS{X})\nuniform highp sampler2DShadow shadowSampler{X};\nuniform highp sampler2D depthSampler{X};\n#elif defined(SHADOWPCF{X})\nuniform highp sampler2DShadow shadowSampler{X};\n#else\nuniform sampler2D shadowSampler{X};\n#endif\nuniform mat4 lightMatrix{X};\n#endif\nuniform vec4 shadowsInfo{X};\nuniform vec2 depthValues{X};\n#endif\n#ifdef SPOTLIGHT{X}\nuniform vec4 vLightDirection{X};\nuniform vec4 vLightFalloff{X};\n#elif defined(POINTLIGHT{X})\nuniform vec4 vLightFalloff{X};\n#elif defined(HEMILIGHT{X})\nuniform vec3 vLightGround{X};\n#endif\n#ifdef PROJECTEDLIGHTTEXTURE{X}\nuniform mat4 textureProjectionMatrix{X};\nuniform sampler2D projectionLightSampler{X};\n#endif\n#endif","lightsFragmentFunctions":"\nstruct lightingInfo\n{\nvec3 diffuse;\n#ifdef SPECULARTERM\nvec3 specular;\n#endif\n#ifdef NDOTL\nfloat ndl;\n#endif\n};\nlightingInfo computeLighting(vec3 viewDirectionW,vec3 vNormal,vec4 lightData,vec3 diffuseColor,vec3 specularColor,float range,float glossiness) {\nlightingInfo result;\nvec3 lightVectorW;\nfloat attenuation=1.0;\nif (lightData.w == 0.)\n{\nvec3 direction=lightData.xyz-vPositionW;\nattenuation=max(0.,1.0-length(direction)/range);\nlightVectorW=normalize(direction);\n}\nelse\n{\nlightVectorW=normalize(-lightData.xyz);\n}\n\nfloat ndl=max(0.,dot(vNormal,lightVectorW));\n#ifdef NDOTL\nresult.ndl=ndl;\n#endif\nresult.diffuse=ndl*diffuseColor*attenuation;\n#ifdef SPECULARTERM\n\nvec3 angleW=normalize(viewDirectionW+lightVectorW);\nfloat specComp=max(0.,dot(vNormal,angleW));\nspecComp=pow(specComp,max(1.,glossiness));\nresult.specular=specComp*specularColor*attenuation;\n#endif\nreturn result;\n}\nlightingInfo computeSpotLighting(vec3 viewDirectionW,vec3 vNormal,vec4 lightData,vec4 lightDirection,vec3 diffuseColor,vec3 specularColor,float range,float glossiness) {\nlightingInfo result;\nvec3 direction=lightData.xyz-vPositionW;\nvec3 lightVectorW=normalize(direction);\nfloat attenuation=max(0.,1.0-length(direction)/range);\n\nfloat cosAngle=max(0.,dot(lightDirection.xyz,-lightVectorW));\nif (cosAngle>=lightDirection.w)\n{\ncosAngle=max(0.,pow(cosAngle,lightData.w));\nattenuation*=cosAngle;\n\nfloat ndl=max(0.,dot(vNormal,lightVectorW));\n#ifdef NDOTL\nresult.ndl=ndl;\n#endif\nresult.diffuse=ndl*diffuseColor*attenuation;\n#ifdef SPECULARTERM\n\nvec3 angleW=normalize(viewDirectionW+lightVectorW);\nfloat specComp=max(0.,dot(vNormal,angleW));\nspecComp=pow(specComp,max(1.,glossiness));\nresult.specular=specComp*specularColor*attenuation;\n#endif\nreturn result;\n}\nresult.diffuse=vec3(0.);\n#ifdef SPECULARTERM\nresult.specular=vec3(0.);\n#endif\n#ifdef NDOTL\nresult.ndl=0.;\n#endif\nreturn result;\n}\nlightingInfo computeHemisphericLighting(vec3 viewDirectionW,vec3 vNormal,vec4 lightData,vec3 diffuseColor,vec3 specularColor,vec3 groundColor,float glossiness) {\nlightingInfo result;\n\nfloat ndl=dot(vNormal,lightData.xyz)*0.5+0.5;\n#ifdef NDOTL\nresult.ndl=ndl;\n#endif\nresult.diffuse=mix(groundColor,diffuseColor,ndl);\n#ifdef SPECULARTERM\n\nvec3 angleW=normalize(viewDirectionW+lightData.xyz);\nfloat specComp=max(0.,dot(vNormal,angleW));\nspecComp=pow(specComp,max(1.,glossiness));\nresult.specular=specComp*specularColor;\n#endif\nreturn result;\n}\nvec3 computeProjectionTextureDiffuseLighting(sampler2D projectionLightSampler,mat4 textureProjectionMatrix){\nvec4 strq=textureProjectionMatrix*vec4(vPositionW,1.0);\nstrq/=strq.w;\nvec3 textureColor=texture2D(projectionLightSampler,strq.xy).rgb;\nreturn textureColor;\n}","lightUboDeclaration":"#ifdef LIGHT{X}\nuniform Light{X}\n{\nvec4 vLightData;\nvec4 vLightDiffuse;\nvec3 vLightSpecular;\n#ifdef SPOTLIGHT{X}\nvec4 vLightDirection;\nvec4 vLightFalloff;\n#elif defined(POINTLIGHT{X})\nvec4 vLightFalloff;\n#elif defined(HEMILIGHT{X})\nvec3 vLightGround;\n#endif\nvec4 shadowsInfo;\nvec2 depthValues;\n} light{X};\n#ifdef PROJECTEDLIGHTTEXTURE{X}\nuniform mat4 textureProjectionMatrix{X};\nuniform sampler2D projectionLightSampler{X};\n#endif\n#ifdef SHADOW{X}\n#if defined(SHADOWCUBE{X})\nuniform samplerCube shadowSampler{X}; \n#else\nvarying vec4 vPositionFromLight{X};\nvarying float vDepthMetric{X};\n#if defined(SHADOWPCSS{X})\nuniform highp sampler2DShadow shadowSampler{X};\nuniform highp sampler2D depthSampler{X};\n#elif defined(SHADOWPCF{X})\nuniform highp sampler2DShadow shadowSampler{X};\n#else\nuniform sampler2D shadowSampler{X};\n#endif\nuniform mat4 lightMatrix{X};\n#endif\n#endif\n#endif","defaultVertexDeclaration":"\nuniform mat4 viewProjection;\nuniform mat4 view;\n#ifdef DIFFUSE\nuniform mat4 diffuseMatrix;\nuniform vec2 vDiffuseInfos;\n#endif\n#ifdef AMBIENT\nuniform mat4 ambientMatrix;\nuniform vec2 vAmbientInfos;\n#endif\n#ifdef OPACITY\nuniform mat4 opacityMatrix;\nuniform vec2 vOpacityInfos;\n#endif\n#ifdef EMISSIVE\nuniform vec2 vEmissiveInfos;\nuniform mat4 emissiveMatrix;\n#endif\n#ifdef LIGHTMAP\nuniform vec2 vLightmapInfos;\nuniform mat4 lightmapMatrix;\n#endif\n#if defined(SPECULAR) && defined(SPECULARTERM)\nuniform vec2 vSpecularInfos;\nuniform mat4 specularMatrix;\n#endif\n#ifdef BUMP\nuniform vec3 vBumpInfos;\nuniform mat4 bumpMatrix;\n#endif\n#ifdef REFLECTION\nuniform mat4 reflectionMatrix;\n#endif\n#ifdef POINTSIZE\nuniform float pointSize;\n#endif\n","defaultFragmentDeclaration":"uniform vec4 vDiffuseColor;\n#ifdef SPECULARTERM\nuniform vec4 vSpecularColor;\n#endif\nuniform vec3 vEmissiveColor;\n\n#ifdef DIFFUSE\nuniform vec2 vDiffuseInfos;\n#endif\n#ifdef AMBIENT\nuniform vec2 vAmbientInfos;\n#endif\n#ifdef OPACITY \nuniform vec2 vOpacityInfos;\n#endif\n#ifdef EMISSIVE\nuniform vec2 vEmissiveInfos;\n#endif\n#ifdef LIGHTMAP\nuniform vec2 vLightmapInfos;\n#endif\n#ifdef BUMP\nuniform vec3 vBumpInfos;\nuniform vec2 vTangentSpaceParams;\n#endif\n#if defined(REFLECTIONMAP_SPHERICAL) || defined(REFLECTIONMAP_PROJECTION) || defined(REFRACTION)\nuniform mat4 view;\n#endif\n#ifdef REFRACTION\nuniform vec4 vRefractionInfos;\n#ifndef REFRACTIONMAP_3D\nuniform mat4 refractionMatrix;\n#endif\n#ifdef REFRACTIONFRESNEL\nuniform vec4 refractionLeftColor;\nuniform vec4 refractionRightColor;\n#endif\n#endif\n#if defined(SPECULAR) && defined(SPECULARTERM)\nuniform vec2 vSpecularInfos;\n#endif\n#ifdef DIFFUSEFRESNEL\nuniform vec4 diffuseLeftColor;\nuniform vec4 diffuseRightColor;\n#endif\n#ifdef OPACITYFRESNEL\nuniform vec4 opacityParts;\n#endif\n#ifdef EMISSIVEFRESNEL\nuniform vec4 emissiveLeftColor;\nuniform vec4 emissiveRightColor;\n#endif\n\n#ifdef REFLECTION\nuniform vec2 vReflectionInfos;\n#ifdef REFLECTIONMAP_SKYBOX\n#else\n#if defined(REFLECTIONMAP_PLANAR) || defined(REFLECTIONMAP_CUBIC) || defined(REFLECTIONMAP_PROJECTION)\nuniform mat4 reflectionMatrix;\n#endif\n#if defined(USE_LOCAL_REFLECTIONMAP_CUBIC) && defined(REFLECTIONMAP_CUBIC)\nuniform vec3 vReflectionPosition;\nuniform vec3 vReflectionSize; \n#endif\n#endif\n#ifdef REFLECTIONFRESNEL\nuniform vec4 reflectionLeftColor;\nuniform vec4 reflectionRightColor;\n#endif\n#endif","defaultUboDeclaration":"layout(std140,column_major) uniform;\nuniform Material\n{\nvec4 diffuseLeftColor;\nvec4 diffuseRightColor;\nvec4 opacityParts;\nvec4 reflectionLeftColor;\nvec4 reflectionRightColor;\nvec4 refractionLeftColor;\nvec4 refractionRightColor;\nvec4 emissiveLeftColor; \nvec4 emissiveRightColor;\nvec2 vDiffuseInfos;\nvec2 vAmbientInfos;\nvec2 vOpacityInfos;\nvec2 vReflectionInfos;\nvec3 vReflectionPosition;\nvec3 vReflectionSize;\nvec2 vEmissiveInfos;\nvec2 vLightmapInfos;\nvec2 vSpecularInfos;\nvec3 vBumpInfos;\nmat4 diffuseMatrix;\nmat4 ambientMatrix;\nmat4 opacityMatrix;\nmat4 reflectionMatrix;\nmat4 emissiveMatrix;\nmat4 lightmapMatrix;\nmat4 specularMatrix;\nmat4 bumpMatrix; \nvec4 vTangentSpaceParams;\nmat4 refractionMatrix;\nvec4 vRefractionInfos;\nvec4 vSpecularColor;\nvec3 vEmissiveColor;\nvec4 vDiffuseColor;\nfloat pointSize; \n};\nuniform Scene {\nmat4 viewProjection;\nmat4 view;\n};","shadowsFragmentFunctions":"#ifdef SHADOWS\n#ifndef SHADOWFLOAT\nfloat unpack(vec4 color)\n{\nconst vec4 bit_shift=vec4(1.0/(255.0*255.0*255.0),1.0/(255.0*255.0),1.0/255.0,1.0);\nreturn dot(color,bit_shift);\n}\n#endif\nfloat computeShadowCube(vec3 lightPosition,samplerCube shadowSampler,float darkness,vec2 depthValues)\n{\nvec3 directionToLight=vPositionW-lightPosition;\nfloat depth=length(directionToLight);\ndepth=(depth+depthValues.x)/(depthValues.y);\ndepth=clamp(depth,0.,1.0);\ndirectionToLight=normalize(directionToLight);\ndirectionToLight.y=-directionToLight.y;\n#ifndef SHADOWFLOAT\nfloat shadow=unpack(textureCube(shadowSampler,directionToLight));\n#else\nfloat shadow=textureCube(shadowSampler,directionToLight).x;\n#endif\nif (depth>shadow)\n{\nreturn darkness;\n}\nreturn 1.0;\n}\nfloat computeShadowWithPoissonSamplingCube(vec3 lightPosition,samplerCube shadowSampler,float mapSize,float darkness,vec2 depthValues)\n{\nvec3 directionToLight=vPositionW-lightPosition;\nfloat depth=length(directionToLight);\ndepth=(depth+depthValues.x)/(depthValues.y);\ndepth=clamp(depth,0.,1.0);\ndirectionToLight=normalize(directionToLight);\ndirectionToLight.y=-directionToLight.y;\nfloat visibility=1.;\nvec3 poissonDisk[4];\npoissonDisk[0]=vec3(-1.0,1.0,-1.0);\npoissonDisk[1]=vec3(1.0,-1.0,-1.0);\npoissonDisk[2]=vec3(-1.0,-1.0,-1.0);\npoissonDisk[3]=vec3(1.0,-1.0,1.0);\n\n#ifndef SHADOWFLOAT\nif (unpack(textureCube(shadowSampler,directionToLight+poissonDisk[0]*mapSize))<depth) visibility-=0.25;\nif (unpack(textureCube(shadowSampler,directionToLight+poissonDisk[1]*mapSize))<depth) visibility-=0.25;\nif (unpack(textureCube(shadowSampler,directionToLight+poissonDisk[2]*mapSize))<depth) visibility-=0.25;\nif (unpack(textureCube(shadowSampler,directionToLight+poissonDisk[3]*mapSize))<depth) visibility-=0.25;\n#else\nif (textureCube(shadowSampler,directionToLight+poissonDisk[0]*mapSize).x<depth) visibility-=0.25;\nif (textureCube(shadowSampler,directionToLight+poissonDisk[1]*mapSize).x<depth) visibility-=0.25;\nif (textureCube(shadowSampler,directionToLight+poissonDisk[2]*mapSize).x<depth) visibility-=0.25;\nif (textureCube(shadowSampler,directionToLight+poissonDisk[3]*mapSize).x<depth) visibility-=0.25;\n#endif\nreturn min(1.0,visibility+darkness);\n}\nfloat computeShadowWithESMCube(vec3 lightPosition,samplerCube shadowSampler,float darkness,float depthScale,vec2 depthValues)\n{\nvec3 directionToLight=vPositionW-lightPosition;\nfloat depth=length(directionToLight);\ndepth=(depth+depthValues.x)/(depthValues.y);\nfloat shadowPixelDepth=clamp(depth,0.,1.0);\ndirectionToLight=normalize(directionToLight);\ndirectionToLight.y=-directionToLight.y;\n#ifndef SHADOWFLOAT\nfloat shadowMapSample=unpack(textureCube(shadowSampler,directionToLight));\n#else\nfloat shadowMapSample=textureCube(shadowSampler,directionToLight).x;\n#endif\nfloat esm=1.0-clamp(exp(min(87.,depthScale*shadowPixelDepth))*shadowMapSample,0.,1.-darkness); \nreturn esm;\n}\nfloat computeShadowWithCloseESMCube(vec3 lightPosition,samplerCube shadowSampler,float darkness,float depthScale,vec2 depthValues)\n{\nvec3 directionToLight=vPositionW-lightPosition;\nfloat depth=length(directionToLight);\ndepth=(depth+depthValues.x)/(depthValues.y);\nfloat shadowPixelDepth=clamp(depth,0.,1.0);\ndirectionToLight=normalize(directionToLight);\ndirectionToLight.y=-directionToLight.y;\n#ifndef SHADOWFLOAT\nfloat shadowMapSample=unpack(textureCube(shadowSampler,directionToLight));\n#else\nfloat shadowMapSample=textureCube(shadowSampler,directionToLight).x;\n#endif\nfloat esm=clamp(exp(min(87.,-depthScale*(shadowPixelDepth-shadowMapSample))),darkness,1.);\nreturn esm;\n}\nfloat computeShadow(vec4 vPositionFromLight,float depthMetric,sampler2D shadowSampler,float darkness,float frustumEdgeFalloff)\n{\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec2 uv=0.5*clipSpace.xy+vec2(0.5);\nif (uv.x<0. || uv.x>1.0 || uv.y<0. || uv.y>1.0)\n{\nreturn 1.0;\n}\nfloat shadowPixelDepth=clamp(depthMetric,0.,1.0);\n#ifndef SHADOWFLOAT\nfloat shadow=unpack(texture2D(shadowSampler,uv));\n#else\nfloat shadow=texture2D(shadowSampler,uv).x;\n#endif\nif (shadowPixelDepth>shadow)\n{\nreturn computeFallOff(darkness,clipSpace.xy,frustumEdgeFalloff);\n}\nreturn 1.;\n}\nfloat computeShadowWithPoissonSampling(vec4 vPositionFromLight,float depthMetric,sampler2D shadowSampler,float mapSize,float darkness,float frustumEdgeFalloff)\n{\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec2 uv=0.5*clipSpace.xy+vec2(0.5);\nif (uv.x<0. || uv.x>1.0 || uv.y<0. || uv.y>1.0)\n{\nreturn 1.0;\n}\nfloat shadowPixelDepth=clamp(depthMetric,0.,1.0);\nfloat visibility=1.;\nvec2 poissonDisk[4];\npoissonDisk[0]=vec2(-0.94201624,-0.39906216);\npoissonDisk[1]=vec2(0.94558609,-0.76890725);\npoissonDisk[2]=vec2(-0.094184101,-0.92938870);\npoissonDisk[3]=vec2(0.34495938,0.29387760);\n\n#ifndef SHADOWFLOAT\nif (unpack(texture2D(shadowSampler,uv+poissonDisk[0]*mapSize))<shadowPixelDepth) visibility-=0.25;\nif (unpack(texture2D(shadowSampler,uv+poissonDisk[1]*mapSize))<shadowPixelDepth) visibility-=0.25;\nif (unpack(texture2D(shadowSampler,uv+poissonDisk[2]*mapSize))<shadowPixelDepth) visibility-=0.25;\nif (unpack(texture2D(shadowSampler,uv+poissonDisk[3]*mapSize))<shadowPixelDepth) visibility-=0.25;\n#else\nif (texture2D(shadowSampler,uv+poissonDisk[0]*mapSize).x<shadowPixelDepth) visibility-=0.25;\nif (texture2D(shadowSampler,uv+poissonDisk[1]*mapSize).x<shadowPixelDepth) visibility-=0.25;\nif (texture2D(shadowSampler,uv+poissonDisk[2]*mapSize).x<shadowPixelDepth) visibility-=0.25;\nif (texture2D(shadowSampler,uv+poissonDisk[3]*mapSize).x<shadowPixelDepth) visibility-=0.25;\n#endif\nreturn computeFallOff(min(1.0,visibility+darkness),clipSpace.xy,frustumEdgeFalloff);\n}\nfloat computeShadowWithESM(vec4 vPositionFromLight,float depthMetric,sampler2D shadowSampler,float darkness,float depthScale,float frustumEdgeFalloff)\n{\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec2 uv=0.5*clipSpace.xy+vec2(0.5);\nif (uv.x<0. || uv.x>1.0 || uv.y<0. || uv.y>1.0)\n{\nreturn 1.0;\n}\nfloat shadowPixelDepth=clamp(depthMetric,0.,1.0);\n#ifndef SHADOWFLOAT\nfloat shadowMapSample=unpack(texture2D(shadowSampler,uv));\n#else\nfloat shadowMapSample=texture2D(shadowSampler,uv).x;\n#endif\nfloat esm=1.0-clamp(exp(min(87.,depthScale*shadowPixelDepth))*shadowMapSample,0.,1.-darkness);\nreturn computeFallOff(esm,clipSpace.xy,frustumEdgeFalloff);\n}\nfloat computeShadowWithCloseESM(vec4 vPositionFromLight,float depthMetric,sampler2D shadowSampler,float darkness,float depthScale,float frustumEdgeFalloff)\n{\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec2 uv=0.5*clipSpace.xy+vec2(0.5);\nif (uv.x<0. || uv.x>1.0 || uv.y<0. || uv.y>1.0)\n{\nreturn 1.0;\n}\nfloat shadowPixelDepth=clamp(depthMetric,0.,1.0); \n#ifndef SHADOWFLOAT\nfloat shadowMapSample=unpack(texture2D(shadowSampler,uv));\n#else\nfloat shadowMapSample=texture2D(shadowSampler,uv).x;\n#endif\nfloat esm=clamp(exp(min(87.,-depthScale*(shadowPixelDepth-shadowMapSample))),darkness,1.);\nreturn computeFallOff(esm,clipSpace.xy,frustumEdgeFalloff);\n}\n#ifdef WEBGL2\n\nfloat computeShadowWithPCF1(vec4 vPositionFromLight,float depthMetric,sampler2DShadow shadowSampler,float darkness,float frustumEdgeFalloff)\n{\nif (depthMetric>1.0 || depthMetric<0.0) {\nreturn 1.0;\n}\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec3 uvDepth=vec3(0.5*clipSpace.xyz+vec3(0.5));\nfloat shadow=texture2D(shadowSampler,uvDepth);\nshadow=mix(darkness,1.,shadow);\nreturn computeFallOff(shadow,clipSpace.xy,frustumEdgeFalloff);\n}\n\n\n\nfloat computeShadowWithPCF3(vec4 vPositionFromLight,float depthMetric,sampler2DShadow shadowSampler,vec2 shadowMapSizeAndInverse,float darkness,float frustumEdgeFalloff)\n{\nif (depthMetric>1.0 || depthMetric<0.0) {\nreturn 1.0;\n}\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec3 uvDepth=vec3(0.5*clipSpace.xyz+vec3(0.5));\nvec2 uv=uvDepth.xy*shadowMapSizeAndInverse.x; \nuv+=0.5; \nvec2 st=fract(uv); \nvec2 base_uv=floor(uv)-0.5; \nbase_uv*=shadowMapSizeAndInverse.y; \n\n\n\n\nvec2 uvw0=3.-2.*st;\nvec2 uvw1=1.+2.*st;\nvec2 u=vec2((2.-st.x)/uvw0.x-1.,st.x/uvw1.x+1.)*shadowMapSizeAndInverse.y;\nvec2 v=vec2((2.-st.y)/uvw0.y-1.,st.y/uvw1.y+1.)*shadowMapSizeAndInverse.y;\nfloat shadow=0.;\nshadow+=uvw0.x*uvw0.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[0],v[0]),uvDepth.z));\nshadow+=uvw1.x*uvw0.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[1],v[0]),uvDepth.z));\nshadow+=uvw0.x*uvw1.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[0],v[1]),uvDepth.z));\nshadow+=uvw1.x*uvw1.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[1],v[1]),uvDepth.z));\nshadow=shadow/16.;\nshadow=mix(darkness,1.,shadow);\nreturn computeFallOff(shadow,clipSpace.xy,frustumEdgeFalloff);\n}\n\n\n\nfloat computeShadowWithPCF5(vec4 vPositionFromLight,float depthMetric,sampler2DShadow shadowSampler,vec2 shadowMapSizeAndInverse,float darkness,float frustumEdgeFalloff)\n{\nif (depthMetric>1.0 || depthMetric<0.0) {\nreturn 1.0;\n}\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec3 uvDepth=vec3(0.5*clipSpace.xyz+vec3(0.5));\nvec2 uv=uvDepth.xy*shadowMapSizeAndInverse.x; \nuv+=0.5; \nvec2 st=fract(uv); \nvec2 base_uv=floor(uv)-0.5; \nbase_uv*=shadowMapSizeAndInverse.y; \n\n\nvec2 uvw0=4.-3.*st;\nvec2 uvw1=vec2(7.);\nvec2 uvw2=1.+3.*st;\nvec3 u=vec3((3.-2.*st.x)/uvw0.x-2.,(3.+st.x)/uvw1.x,st.x/uvw2.x+2.)*shadowMapSizeAndInverse.y;\nvec3 v=vec3((3.-2.*st.y)/uvw0.y-2.,(3.+st.y)/uvw1.y,st.y/uvw2.y+2.)*shadowMapSizeAndInverse.y;\nfloat shadow=0.;\nshadow+=uvw0.x*uvw0.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[0],v[0]),uvDepth.z));\nshadow+=uvw1.x*uvw0.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[1],v[0]),uvDepth.z));\nshadow+=uvw2.x*uvw0.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[2],v[0]),uvDepth.z));\nshadow+=uvw0.x*uvw1.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[0],v[1]),uvDepth.z));\nshadow+=uvw1.x*uvw1.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[1],v[1]),uvDepth.z));\nshadow+=uvw2.x*uvw1.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[2],v[1]),uvDepth.z));\nshadow+=uvw0.x*uvw2.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[0],v[2]),uvDepth.z));\nshadow+=uvw1.x*uvw2.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[1],v[2]),uvDepth.z));\nshadow+=uvw2.x*uvw2.y*texture2D(shadowSampler,vec3(base_uv.xy+vec2(u[2],v[2]),uvDepth.z));\nshadow=shadow/144.;\nshadow=mix(darkness,1.,shadow);\nreturn computeFallOff(shadow,clipSpace.xy,frustumEdgeFalloff);\n}\nconst vec3 PoissonSamplers32[64]=vec3[64](\nvec3(0.06407013,0.05409927,0.),\nvec3(0.7366577,0.5789394,0.),\nvec3(-0.6270542,-0.5320278,0.),\nvec3(-0.4096107,0.8411095,0.),\nvec3(0.6849564,-0.4990818,0.),\nvec3(-0.874181,-0.04579735,0.),\nvec3(0.9989998,0.0009880066,0.),\nvec3(-0.004920578,-0.9151649,0.),\nvec3(0.1805763,0.9747483,0.),\nvec3(-0.2138451,0.2635818,0.),\nvec3(0.109845,0.3884785,0.),\nvec3(0.06876755,-0.3581074,0.),\nvec3(0.374073,-0.7661266,0.),\nvec3(0.3079132,-0.1216763,0.),\nvec3(-0.3794335,-0.8271583,0.),\nvec3(-0.203878,-0.07715034,0.),\nvec3(0.5912697,0.1469799,0.),\nvec3(-0.88069,0.3031784,0.),\nvec3(0.5040108,0.8283722,0.),\nvec3(-0.5844124,0.5494877,0.),\nvec3(0.6017799,-0.1726654,0.),\nvec3(-0.5554981,0.1559997,0.),\nvec3(-0.3016369,-0.3900928,0.),\nvec3(-0.5550632,-0.1723762,0.),\nvec3(0.925029,0.2995041,0.),\nvec3(-0.2473137,0.5538505,0.),\nvec3(0.9183037,-0.2862392,0.),\nvec3(0.2469421,0.6718712,0.),\nvec3(0.3916397,-0.4328209,0.),\nvec3(-0.03576927,-0.6220032,0.),\nvec3(-0.04661255,0.7995201,0.),\nvec3(0.4402924,0.3640312,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.),\nvec3(0.,0.,0.)\n);\nconst vec3 PoissonSamplers64[64]=vec3[64](\nvec3(-0.613392,0.617481,0.),\nvec3(0.170019,-0.040254,0.),\nvec3(-0.299417,0.791925,0.),\nvec3(0.645680,0.493210,0.),\nvec3(-0.651784,0.717887,0.),\nvec3(0.421003,0.027070,0.),\nvec3(-0.817194,-0.271096,0.),\nvec3(-0.705374,-0.668203,0.),\nvec3(0.977050,-0.108615,0.),\nvec3(0.063326,0.142369,0.),\nvec3(0.203528,0.214331,0.),\nvec3(-0.667531,0.326090,0.),\nvec3(-0.098422,-0.295755,0.),\nvec3(-0.885922,0.215369,0.),\nvec3(0.566637,0.605213,0.),\nvec3(0.039766,-0.396100,0.),\nvec3(0.751946,0.453352,0.),\nvec3(0.078707,-0.715323,0.),\nvec3(-0.075838,-0.529344,0.),\nvec3(0.724479,-0.580798,0.),\nvec3(0.222999,-0.215125,0.),\nvec3(-0.467574,-0.405438,0.),\nvec3(-0.248268,-0.814753,0.),\nvec3(0.354411,-0.887570,0.),\nvec3(0.175817,0.382366,0.),\nvec3(0.487472,-0.063082,0.),\nvec3(-0.084078,0.898312,0.),\nvec3(0.488876,-0.783441,0.),\nvec3(0.470016,0.217933,0.),\nvec3(-0.696890,-0.549791,0.),\nvec3(-0.149693,0.605762,0.),\nvec3(0.034211,0.979980,0.),\nvec3(0.503098,-0.308878,0.),\nvec3(-0.016205,-0.872921,0.),\nvec3(0.385784,-0.393902,0.),\nvec3(-0.146886,-0.859249,0.),\nvec3(0.643361,0.164098,0.),\nvec3(0.634388,-0.049471,0.),\nvec3(-0.688894,0.007843,0.),\nvec3(0.464034,-0.188818,0.),\nvec3(-0.440840,0.137486,0.),\nvec3(0.364483,0.511704,0.),\nvec3(0.034028,0.325968,0.),\nvec3(0.099094,-0.308023,0.),\nvec3(0.693960,-0.366253,0.),\nvec3(0.678884,-0.204688,0.),\nvec3(0.001801,0.780328,0.),\nvec3(0.145177,-0.898984,0.),\nvec3(0.062655,-0.611866,0.),\nvec3(0.315226,-0.604297,0.),\nvec3(-0.780145,0.486251,0.),\nvec3(-0.371868,0.882138,0.),\nvec3(0.200476,0.494430,0.),\nvec3(-0.494552,-0.711051,0.),\nvec3(0.612476,0.705252,0.),\nvec3(-0.578845,-0.768792,0.),\nvec3(-0.772454,-0.090976,0.),\nvec3(0.504440,0.372295,0.),\nvec3(0.155736,0.065157,0.),\nvec3(0.391522,0.849605,0.),\nvec3(-0.620106,-0.328104,0.),\nvec3(0.789239,-0.419965,0.),\nvec3(-0.545396,0.538133,0.),\nvec3(-0.178564,-0.596057,0.)\n);\n\n\n\n\n\nfloat computeShadowWithPCSS(vec4 vPositionFromLight,float depthMetric,sampler2D depthSampler,sampler2DShadow shadowSampler,float shadowMapSizeInverse,float lightSizeUV,float darkness,float frustumEdgeFalloff,int searchTapCount,int pcfTapCount,vec3[64] poissonSamplers)\n{\nif (depthMetric>1.0 || depthMetric<0.0) {\nreturn 1.0;\n}\nvec3 clipSpace=vPositionFromLight.xyz/vPositionFromLight.w;\nvec3 uvDepth=vec3(0.5*clipSpace.xyz+vec3(0.5));\nfloat blockerDepth=0.0;\nfloat sumBlockerDepth=0.0;\nfloat numBlocker=0.0;\nfor (int i=0; i<searchTapCount; i ++) {\nblockerDepth=texture(depthSampler,uvDepth.xy+(lightSizeUV*shadowMapSizeInverse*PoissonSamplers32[i].xy)).r;\nif (blockerDepth<depthMetric) {\nsumBlockerDepth+=blockerDepth;\nnumBlocker++;\n}\n}\nif (numBlocker<1.0) {\nreturn 1.0;\n}\nfloat avgBlockerDepth=sumBlockerDepth/numBlocker;\n\nfloat AAOffset=shadowMapSizeInverse*10.;\n\n\nfloat penumbraRatio=((depthMetric-avgBlockerDepth)+AAOffset);\nfloat filterRadius=penumbraRatio*lightSizeUV*shadowMapSizeInverse;\nfloat random=getRand(vPositionFromLight.xy);\nfloat rotationAngle=random*3.1415926;\nvec2 rotationVector=vec2(cos(rotationAngle),sin(rotationAngle));\nfloat shadow=0.;\nfor (int i=0; i<pcfTapCount; i++) {\nvec3 offset=poissonSamplers[i];\n\noffset=vec3(offset.x*rotationVector.x-offset.y*rotationVector.y,offset.y*rotationVector.x+offset.x*rotationVector.y,0.);\nshadow+=texture2D(shadowSampler,uvDepth+offset*filterRadius);\n}\nshadow/=float(pcfTapCount);\n\nshadow=mix(shadow,1.,depthMetric-avgBlockerDepth);\n\nshadow=mix(darkness,1.,shadow);\n\nreturn computeFallOff(shadow,clipSpace.xy,frustumEdgeFalloff);\n}\nfloat computeShadowWithPCSS16(vec4 vPositionFromLight,float depthMetric,sampler2D depthSampler,sampler2DShadow shadowSampler,float shadowMapSizeInverse,float lightSizeUV,float darkness,float frustumEdgeFalloff)\n{\nreturn computeShadowWithPCSS(vPositionFromLight,depthMetric,depthSampler,shadowSampler,shadowMapSizeInverse,lightSizeUV,darkness,frustumEdgeFalloff,16,16,PoissonSamplers32);\n}\nfloat computeShadowWithPCSS32(vec4 vPositionFromLight,float depthMetric,sampler2D depthSampler,sampler2DShadow shadowSampler,float shadowMapSizeInverse,float lightSizeUV,float darkness,float frustumEdgeFalloff)\n{\nreturn computeShadowWithPCSS(vPositionFromLight,depthMetric,depthSampler,shadowSampler,shadowMapSizeInverse,lightSizeUV,darkness,frustumEdgeFalloff,16,32,PoissonSamplers32);\n}\nfloat computeShadowWithPCSS64(vec4 vPositionFromLight,float depthMetric,sampler2D depthSampler,sampler2DShadow shadowSampler,float shadowMapSizeInverse,float lightSizeUV,float darkness,float frustumEdgeFalloff)\n{\nreturn computeShadowWithPCSS(vPositionFromLight,depthMetric,depthSampler,shadowSampler,shadowMapSizeInverse,lightSizeUV,darkness,frustumEdgeFalloff,32,64,PoissonSamplers64);\n}\n#endif\n#endif\n","fresnelFunction":"#ifdef FRESNEL\nfloat computeFresnelTerm(vec3 viewDirection,vec3 worldNormal,float bias,float power)\n{\nfloat fresnelTerm=pow(bias+abs(dot(viewDirection,worldNormal)),power);\nreturn clamp(fresnelTerm,0.,1.);\n}\n#endif","reflectionFunction":"#ifdef USE_LOCAL_REFLECTIONMAP_CUBIC\nvec3 parallaxCorrectNormal( vec3 vertexPos,vec3 origVec,vec3 cubeSize,vec3 cubePos ) {\n\nvec3 invOrigVec=vec3(1.0,1.0,1.0)/origVec;\nvec3 halfSize=cubeSize*0.5;\nvec3 intersecAtMaxPlane=(cubePos+halfSize-vertexPos)*invOrigVec;\nvec3 intersecAtMinPlane=(cubePos-halfSize-vertexPos)*invOrigVec;\n\nvec3 largestIntersec=max(intersecAtMaxPlane,intersecAtMinPlane);\n\nfloat distance=min(min(largestIntersec.x,largestIntersec.y),largestIntersec.z);\n\nvec3 intersectPositionWS=vertexPos+origVec*distance;\n\nreturn intersectPositionWS-cubePos;\n}\n#endif\nvec3 computeReflectionCoords(vec4 worldPos,vec3 worldNormal)\n{\n#if defined(REFLECTIONMAP_EQUIRECTANGULAR_FIXED) || defined(REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED)\nvec3 direction=normalize(vDirectionW);\nfloat lon=atan(direction.z,direction.x);\nfloat lat=acos(direction.y);\nvec2 sphereCoords=vec2(lon,lat)*RECIPROCAL_PI2*2.0;\nfloat s=sphereCoords.x*0.5+0.5;\nfloat t=sphereCoords.y; \n#ifdef REFLECTIONMAP_MIRROREDEQUIRECTANGULAR_FIXED\nreturn vec3(1.0-s,t,0);\n#else\nreturn vec3(s,t,0);\n#endif\n#endif\n#ifdef REFLECTIONMAP_EQUIRECTANGULAR\nvec3 cameraToVertex=normalize(worldPos.xyz-vEyePosition.xyz);\nvec3 r=normalize(reflect(cameraToVertex,worldNormal));\nfloat lon=atan(r.z,r.x);\nfloat lat=acos(r.y);\nvec2 sphereCoords=vec2(lon,lat)*RECIPROCAL_PI2*2.0;\nfloat s=sphereCoords.x*0.5+0.5;\nfloat t=sphereCoords.y; \nreturn vec3(s,t,0);\n#endif\n#ifdef REFLECTIONMAP_SPHERICAL\nvec3 viewDir=normalize(vec3(view*worldPos));\nvec3 viewNormal=normalize(vec3(view*vec4(worldNormal,0.0)));\nvec3 r=reflect(viewDir,viewNormal);\nr.z=r.z-1.0;\nfloat m=2.0*length(r);\nreturn vec3(r.x/m+0.5,1.0-r.y/m-0.5,0);\n#endif\n#ifdef REFLECTIONMAP_PLANAR\nvec3 viewDir=worldPos.xyz-vEyePosition.xyz;\nvec3 coords=normalize(reflect(viewDir,worldNormal));\nreturn vec3(reflectionMatrix*vec4(coords,1));\n#endif\n#ifdef REFLECTIONMAP_CUBIC\nvec3 viewDir=normalize(worldPos.xyz-vEyePosition.xyz);\n\nvec3 coords=reflect(viewDir,worldNormal);\n#ifdef USE_LOCAL_REFLECTIONMAP_CUBIC\ncoords=parallaxCorrectNormal(worldPos.xyz,coords,vReflectionSize,vReflectionPosition);\n#endif\ncoords=vec3(reflectionMatrix*vec4(coords,0));\n#ifdef INVERTCUBICMAP\ncoords.y*=-1.0;\n#endif\nreturn coords;\n#endif\n#ifdef REFLECTIONMAP_PROJECTION\nreturn vec3(reflectionMatrix*(view*worldPos));\n#endif\n#ifdef REFLECTIONMAP_SKYBOX\nreturn vPositionUVW;\n#endif\n#ifdef REFLECTIONMAP_EXPLICIT\nreturn vec3(0,0,0);\n#endif\n}","imageProcessingDeclaration":"#ifdef EXPOSURE\nuniform float exposureLinear;\n#endif\n#ifdef CONTRAST\nuniform float contrast;\n#endif\n#ifdef VIGNETTE\nuniform vec2 vInverseScreenSize;\nuniform vec4 vignetteSettings1;\nuniform vec4 vignetteSettings2;\n#endif\n#ifdef COLORCURVES\nuniform vec4 vCameraColorCurveNegative;\nuniform vec4 vCameraColorCurveNeutral;\nuniform vec4 vCameraColorCurvePositive;\n#endif\n#ifdef COLORGRADING\n#ifdef COLORGRADING3D\nuniform highp sampler3D txColorTransform;\n#else\nuniform sampler2D txColorTransform;\n#endif\nuniform vec4 colorTransformSettings;\n#endif","imageProcessingFunctions":"#if defined(COLORGRADING) && !defined(COLORGRADING3D)\n\nvec3 sampleTexture3D(sampler2D colorTransform,vec3 color,vec2 sampler3dSetting)\n{\nfloat sliceSize=2.0*sampler3dSetting.x; \n#ifdef SAMPLER3DGREENDEPTH\nfloat sliceContinuous=(color.g-sampler3dSetting.x)*sampler3dSetting.y;\n#else\nfloat sliceContinuous=(color.b-sampler3dSetting.x)*sampler3dSetting.y;\n#endif\nfloat sliceInteger=floor(sliceContinuous);\n\n\nfloat sliceFraction=sliceContinuous-sliceInteger;\n#ifdef SAMPLER3DGREENDEPTH\nvec2 sliceUV=color.rb;\n#else\nvec2 sliceUV=color.rg;\n#endif\nsliceUV.x*=sliceSize;\nsliceUV.x+=sliceInteger*sliceSize;\nsliceUV=clamp(sliceUV,0.,1.);\nvec4 slice0Color=texture2D(colorTransform,sliceUV);\nsliceUV.x+=sliceSize;\nsliceUV=clamp(sliceUV,0.,1.);\nvec4 slice1Color=texture2D(colorTransform,sliceUV);\nvec3 result=mix(slice0Color.rgb,slice1Color.rgb,sliceFraction);\n#ifdef SAMPLER3DBGRMAP\ncolor.rgb=result.rgb;\n#else\ncolor.rgb=result.bgr;\n#endif\nreturn color;\n}\n#endif\n#ifdef TONEMAPPING_ACES\n\n\n\n\n\nconst mat3 ACESInputMat=mat3(\nvec3(0.59719,0.07600,0.02840),\nvec3(0.35458,0.90834,0.13383),\nvec3(0.04823,0.01566,0.83777)\n);\n\nconst mat3 ACESOutputMat=mat3(\nvec3( 1.60475,-0.10208,-0.00327),\nvec3(-0.53108,1.10813,-0.07276),\nvec3(-0.07367,-0.00605,1.07602)\n);\nvec3 RRTAndODTFit(vec3 v)\n{\nvec3 a=v*(v+0.0245786)-0.000090537;\nvec3 b=v*(0.983729*v+0.4329510)+0.238081;\nreturn a/b;\n}\nvec3 ACESFitted(vec3 color)\n{\ncolor=ACESInputMat*color;\n\ncolor=RRTAndODTFit(color);\ncolor=ACESOutputMat*color;\n\ncolor=clamp(color,0.0,1.0);\nreturn color;\n}\n#endif\nvec4 applyImageProcessing(vec4 result) {\n#ifdef EXPOSURE\nresult.rgb*=exposureLinear;\n#endif\n#ifdef VIGNETTE\n\nvec2 viewportXY=gl_FragCoord.xy*vInverseScreenSize;\nviewportXY=viewportXY*2.0-1.0;\nvec3 vignetteXY1=vec3(viewportXY*vignetteSettings1.xy+vignetteSettings1.zw,1.0);\nfloat vignetteTerm=dot(vignetteXY1,vignetteXY1);\nfloat vignette=pow(vignetteTerm,vignetteSettings2.w);\n\nvec3 vignetteColor=vignetteSettings2.rgb;\n#ifdef VIGNETTEBLENDMODEMULTIPLY\nvec3 vignetteColorMultiplier=mix(vignetteColor,vec3(1,1,1),vignette);\nresult.rgb*=vignetteColorMultiplier;\n#endif\n#ifdef VIGNETTEBLENDMODEOPAQUE\nresult.rgb=mix(vignetteColor,result.rgb,vignette);\n#endif\n#endif\n#ifdef TONEMAPPING\n#ifdef TONEMAPPING_ACES\nresult.rgb=ACESFitted(result.rgb);\n#else\nconst float tonemappingCalibration=1.590579;\nresult.rgb=1.0-exp2(-tonemappingCalibration*result.rgb);\n#endif\n#endif\n\nresult.rgb=toGammaSpace(result.rgb);\nresult.rgb=clamp(result.rgb,0.0,1.0);\n#ifdef CONTRAST\n\nvec3 resultHighContrast=applyEaseInOut(result.rgb);\nif (contrast<1.0) {\n\nresult.rgb=mix(vec3(0.5,0.5,0.5),result.rgb,contrast);\n} else {\n\nresult.rgb=mix(result.rgb,resultHighContrast,contrast-1.0);\n}\n#endif\n\n#ifdef COLORGRADING\nvec3 colorTransformInput=result.rgb*colorTransformSettings.xxx+colorTransformSettings.yyy;\n#ifdef COLORGRADING3D\nvec3 colorTransformOutput=texture(txColorTransform,colorTransformInput).rgb;\n#else\nvec3 colorTransformOutput=sampleTexture3D(txColorTransform,colorTransformInput,colorTransformSettings.yz).rgb;\n#endif\nresult.rgb=mix(result.rgb,colorTransformOutput,colorTransformSettings.www);\n#endif\n#ifdef COLORCURVES\n\nfloat luma=getLuminance(result.rgb);\nvec2 curveMix=clamp(vec2(luma*3.0-1.5,luma*-3.0+1.5),vec2(0.0),vec2(1.0));\nvec4 colorCurve=vCameraColorCurveNeutral+curveMix.x*vCameraColorCurvePositive-curveMix.y*vCameraColorCurveNegative;\nresult.rgb*=colorCurve.rgb;\nresult.rgb=mix(vec3(luma),result.rgb,colorCurve.a);\n#endif\nreturn result;\n}","bumpFragmentFunctions":"#ifdef BUMP\n#if BUMPDIRECTUV == 1\n#define vBumpUV vMainUV1\n#elif BUMPDIRECTUV == 2\n#define vBumpUV vMainUV2\n#else\nvarying vec2 vBumpUV;\n#endif\nuniform sampler2D bumpSampler;\n#if defined(TANGENT) && defined(NORMAL) \nvarying mat3 vTBN;\n#endif\n#ifdef OBJECTSPACE_NORMALMAP\nuniform mat4 normalMatrix;\n#endif\n\nmat3 cotangent_frame(vec3 normal,vec3 p,vec2 uv)\n{\n\nuv=gl_FrontFacing ? uv : -uv;\n\nvec3 dp1=dFdx(p);\nvec3 dp2=dFdy(p);\nvec2 duv1=dFdx(uv);\nvec2 duv2=dFdy(uv);\n\nvec3 dp2perp=cross(dp2,normal);\nvec3 dp1perp=cross(normal,dp1);\nvec3 tangent=dp2perp*duv1.x+dp1perp*duv2.x;\nvec3 bitangent=dp2perp*duv1.y+dp1perp*duv2.y;\n\ntangent*=vTangentSpaceParams.x;\nbitangent*=vTangentSpaceParams.y;\n\nfloat invmax=inversesqrt(max(dot(tangent,tangent),dot(bitangent,bitangent)));\nreturn mat3(tangent*invmax,bitangent*invmax,normal);\n}\nvec3 perturbNormal(mat3 cotangentFrame,vec2 uv)\n{\nvec3 map=texture2D(bumpSampler,uv).xyz;\nmap=map*2.0-1.0;\n#ifdef NORMALXYSCALE\nmap=normalize(map*vec3(vBumpInfos.y,vBumpInfos.y,1.0));\n#endif\nreturn normalize(cotangentFrame*map);\n}\n#ifdef PARALLAX\nconst float minSamples=4.;\nconst float maxSamples=15.;\nconst int iMaxSamples=15;\n\nvec2 parallaxOcclusion(vec3 vViewDirCoT,vec3 vNormalCoT,vec2 texCoord,float parallaxScale) {\nfloat parallaxLimit=length(vViewDirCoT.xy)/vViewDirCoT.z;\nparallaxLimit*=parallaxScale;\nvec2 vOffsetDir=normalize(vViewDirCoT.xy);\nvec2 vMaxOffset=vOffsetDir*parallaxLimit;\nfloat numSamples=maxSamples+(dot(vViewDirCoT,vNormalCoT)*(minSamples-maxSamples));\nfloat stepSize=1.0/numSamples;\n\nfloat currRayHeight=1.0;\nvec2 vCurrOffset=vec2(0,0);\nvec2 vLastOffset=vec2(0,0);\nfloat lastSampledHeight=1.0;\nfloat currSampledHeight=1.0;\nfor (int i=0; i<iMaxSamples; i++)\n{\ncurrSampledHeight=texture2D(bumpSampler,vBumpUV+vCurrOffset).w;\n\nif (currSampledHeight>currRayHeight)\n{\nfloat delta1=currSampledHeight-currRayHeight;\nfloat delta2=(currRayHeight+stepSize)-lastSampledHeight;\nfloat ratio=delta1/(delta1+delta2);\nvCurrOffset=(ratio)* vLastOffset+(1.0-ratio)*vCurrOffset;\n\nbreak;\n}\nelse\n{\ncurrRayHeight-=stepSize;\nvLastOffset=vCurrOffset;\nvCurrOffset+=stepSize*vMaxOffset;\nlastSampledHeight=currSampledHeight;\n}\n}\nreturn vCurrOffset;\n}\nvec2 parallaxOffset(vec3 viewDir,float heightScale)\n{\n\nfloat height=texture2D(bumpSampler,vBumpUV).w;\nvec2 texCoordOffset=heightScale*viewDir.xy*height;\nreturn -texCoordOffset;\n}\n#endif\n#endif","clipPlaneFragmentDeclaration":"#ifdef CLIPPLANE\nvarying float fClipDistance;\n#endif\n#ifdef CLIPPLANE2\nvarying float fClipDistance2;\n#endif\n#ifdef CLIPPLANE3\nvarying float fClipDistance3;\n#endif\n#ifdef CLIPPLANE4\nvarying float fClipDistance4;\n#endif","fogFragmentDeclaration":"#ifdef FOG\n#define FOGMODE_NONE 0.\n#define FOGMODE_EXP 1.\n#define FOGMODE_EXP2 2.\n#define FOGMODE_LINEAR 3.\n#define E 2.71828\nuniform vec4 vFogInfos;\nuniform vec3 vFogColor;\nvarying vec3 vFogDistance;\nfloat CalcFogFactor()\n{\nfloat fogCoeff=1.0;\nfloat fogStart=vFogInfos.y;\nfloat fogEnd=vFogInfos.z;\nfloat fogDensity=vFogInfos.w;\nfloat fogDistance=length(vFogDistance);\nif (FOGMODE_LINEAR == vFogInfos.x)\n{\nfogCoeff=(fogEnd-fogDistance)/(fogEnd-fogStart);\n}\nelse if (FOGMODE_EXP == vFogInfos.x)\n{\nfogCoeff=1.0/pow(E,fogDistance*fogDensity);\n}\nelse if (FOGMODE_EXP2 == vFogInfos.x)\n{\nfogCoeff=1.0/pow(E,fogDistance*fogDistance*fogDensity*fogDensity);\n}\nreturn clamp(fogCoeff,0.0,1.0);\n}\n#endif","clipPlaneFragment":"#ifdef CLIPPLANE\nif (fClipDistance>0.0)\n{\ndiscard;\n}\n#endif\n#ifdef CLIPPLANE2\nif (fClipDistance2>0.0)\n{\ndiscard;\n}\n#endif\n#ifdef CLIPPLANE3\nif (fClipDistance3>0.0)\n{\ndiscard;\n}\n#endif\n#ifdef CLIPPLANE4\nif (fClipDistance4>0.0)\n{\ndiscard;\n}\n#endif","bumpFragment":"vec2 uvOffset=vec2(0.0,0.0);\n#if defined(BUMP) || defined(PARALLAX)\n#ifdef NORMALXYSCALE\nfloat normalScale=1.0;\n#else \nfloat normalScale=vBumpInfos.y;\n#endif\n#if defined(TANGENT) && defined(NORMAL)\nmat3 TBN=vTBN;\n#else\nmat3 TBN=cotangent_frame(normalW*normalScale,vPositionW,vBumpUV);\n#endif\n#endif\n#ifdef PARALLAX\nmat3 invTBN=transposeMat3(TBN);\n#ifdef PARALLAXOCCLUSION\nuvOffset=parallaxOcclusion(invTBN*-viewDirectionW,invTBN*normalW,vBumpUV,vBumpInfos.z);\n#else\nuvOffset=parallaxOffset(invTBN*viewDirectionW,vBumpInfos.z);\n#endif\n#endif\n#ifdef BUMP\n#ifdef OBJECTSPACE_NORMALMAP\nnormalW=normalize(texture2D(bumpSampler,vBumpUV).xyz*2.0-1.0);\nnormalW=normalize(mat3(normalMatrix)*normalW); \n#else\nnormalW=perturbNormal(TBN,vBumpUV+uvOffset);\n#endif\n#endif","lightFragment":"#ifdef LIGHT{X}\n#if defined(SHADOWONLY) || (defined(LIGHTMAP) && defined(LIGHTMAPEXCLUDED{X}) && defined(LIGHTMAPNOSPECULAR{X}))\n\n#else\n#ifdef PBR\n#ifdef SPOTLIGHT{X}\nspotInfo=computeSpotLightingInfo(light{X}.vLightData);\n#ifdef LIGHT_FALLOFF_GLTF{X}\nspotInfo.attenuation=computeDistanceLightFalloff_GLTF(spotInfo.lightDistanceSquared,light{X}.vLightFalloff.y);\nspotInfo.attenuation*=computeDirectionalLightFalloff_GLTF(light{X}.vLightDirection.xyz,spotInfo.directionToLightCenterW,light{X}.vLightFalloff.z,light{X}.vLightFalloff.w);\n#elif defined(LIGHT_FALLOFF_PHYSICAL{X})\nspotInfo.attenuation=computeDistanceLightFalloff_Physical(spotInfo.lightDistanceSquared);\nspotInfo.attenuation*=computeDirectionalLightFalloff_Physical(light{X}.vLightDirection.xyz,spotInfo.directionToLightCenterW,light{X}.vLightDirection.w);\n#elif defined(LIGHT_FALLOFF_STANDARD{X})\nspotInfo.attenuation=computeDistanceLightFalloff_Standard(spotInfo.lightOffset,light{X}.vLightFalloff.x);\nspotInfo.attenuation*=computeDirectionalLightFalloff_Standard(light{X}.vLightDirection.xyz,spotInfo.directionToLightCenterW,light{X}.vLightDirection.w,light{X}.vLightData.w);\n#else\nspotInfo.attenuation=computeDistanceLightFalloff(spotInfo.lightOffset,spotInfo.lightDistanceSquared,light{X}.vLightFalloff.x,light{X}.vLightFalloff.y);\nspotInfo.attenuation*=computeDirectionalLightFalloff(light{X}.vLightDirection.xyz,spotInfo.directionToLightCenterW,light{X}.vLightDirection.w,light{X}.vLightData.w,light{X}.vLightFalloff.z,light{X}.vLightFalloff.w);\n#endif\ninfo=computeSpotLighting(spotInfo,viewDirectionW,normalW,light{X}.vLightDirection,light{X}.vLightDiffuse.rgb,light{X}.vLightDiffuse.a,roughness,NdotV,specularEnvironmentR0,specularEnvironmentR90,geometricRoughnessFactor,NdotL);\n#elif defined(POINTLIGHT{X})\npointInfo=computePointLightingInfo(light{X}.vLightData);\n#ifdef LIGHT_FALLOFF_GLTF{X}\npointInfo.attenuation=computeDistanceLightFalloff_GLTF(pointInfo.lightDistanceSquared,light{X}.vLightFalloff.y);\n#elif defined(LIGHT_FALLOFF_PHYSICAL{X})\npointInfo.attenuation=computeDistanceLightFalloff_Physical(pointInfo.lightDistanceSquared);\n#elif defined(LIGHT_FALLOFF_STANDARD{X})\npointInfo.attenuation=computeDistanceLightFalloff_Standard(pointInfo.lightOffset,light{X}.vLightFalloff.x);\n#else\npointInfo.attenuation=computeDistanceLightFalloff(pointInfo.lightOffset,pointInfo.lightDistanceSquared,light{X}.vLightFalloff.x,light{X}.vLightFalloff.y);\n#endif\ninfo=computePointLighting(pointInfo,viewDirectionW,normalW,light{X}.vLightDiffuse.rgb,light{X}.vLightDiffuse.a,roughness,NdotV,specularEnvironmentR0,specularEnvironmentR90,geometricRoughnessFactor,NdotL);\n#elif defined(HEMILIGHT{X})\ninfo=computeHemisphericLighting(viewDirectionW,normalW,light{X}.vLightData,light{X}.vLightDiffuse.rgb,light{X}.vLightSpecular,light{X}.vLightGround,roughness,NdotV,specularEnvironmentR0,specularEnvironmentR90,geometricRoughnessFactor,NdotL);\n#elif defined(DIRLIGHT{X})\ninfo=computeDirectionalLighting(viewDirectionW,normalW,light{X}.vLightData,light{X}.vLightDiffuse.rgb,light{X}.vLightSpecular,light{X}.vLightDiffuse.a,roughness,NdotV,specularEnvironmentR0,specularEnvironmentR90,geometricRoughnessFactor,NdotL);\n#endif\n#else\n#ifdef SPOTLIGHT{X}\ninfo=computeSpotLighting(viewDirectionW,normalW,light{X}.vLightData,light{X}.vLightDirection,light{X}.vLightDiffuse.rgb,light{X}.vLightSpecular,light{X}.vLightDiffuse.a,glossiness);\n#elif defined(HEMILIGHT{X})\ninfo=computeHemisphericLighting(viewDirectionW,normalW,light{X}.vLightData,light{X}.vLightDiffuse.rgb,light{X}.vLightSpecular,light{X}.vLightGround,glossiness);\n#elif defined(POINTLIGHT{X}) || defined(DIRLIGHT{X})\ninfo=computeLighting(viewDirectionW,normalW,light{X}.vLightData,light{X}.vLightDiffuse.rgb,light{X}.vLightSpecular,light{X}.vLightDiffuse.a,glossiness);\n#endif\n#endif\n#ifdef PROJECTEDLIGHTTEXTURE{X}\ninfo.diffuse*=computeProjectionTextureDiffuseLighting(projectionLightSampler{X},textureProjectionMatrix{X});\n#endif\n#endif\n#ifdef SHADOW{X}\n#ifdef SHADOWCLOSEESM{X}\n#if defined(SHADOWCUBE{X})\nshadow=computeShadowWithCloseESMCube(light{X}.vLightData.xyz,shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.z,light{X}.depthValues);\n#else\nshadow=computeShadowWithCloseESM(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.z,light{X}.shadowsInfo.w);\n#endif\n#elif defined(SHADOWESM{X})\n#if defined(SHADOWCUBE{X})\nshadow=computeShadowWithESMCube(light{X}.vLightData.xyz,shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.z,light{X}.depthValues);\n#else\nshadow=computeShadowWithESM(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.z,light{X}.shadowsInfo.w);\n#endif\n#elif defined(SHADOWPOISSON{X})\n#if defined(SHADOWCUBE{X})\nshadow=computeShadowWithPoissonSamplingCube(light{X}.vLightData.xyz,shadowSampler{X},light{X}.shadowsInfo.y,light{X}.shadowsInfo.x,light{X}.depthValues);\n#else\nshadow=computeShadowWithPoissonSampling(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.y,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#endif\n#elif defined(SHADOWPCF{X})\n#if defined(SHADOWLOWQUALITY{X})\nshadow=computeShadowWithPCF1(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#elif defined(SHADOWMEDIUMQUALITY{X})\nshadow=computeShadowWithPCF3(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.yz,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#else\nshadow=computeShadowWithPCF5(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.yz,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#endif\n#elif defined(SHADOWPCSS{X})\n#if defined(SHADOWLOWQUALITY{X})\nshadow=computeShadowWithPCSS16(vPositionFromLight{X},vDepthMetric{X},depthSampler{X},shadowSampler{X},light{X}.shadowsInfo.y,light{X}.shadowsInfo.z,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#elif defined(SHADOWMEDIUMQUALITY{X})\nshadow=computeShadowWithPCSS32(vPositionFromLight{X},vDepthMetric{X},depthSampler{X},shadowSampler{X},light{X}.shadowsInfo.y,light{X}.shadowsInfo.z,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#else\nshadow=computeShadowWithPCSS64(vPositionFromLight{X},vDepthMetric{X},depthSampler{X},shadowSampler{X},light{X}.shadowsInfo.y,light{X}.shadowsInfo.z,light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#endif\n#else\n#if defined(SHADOWCUBE{X})\nshadow=computeShadowCube(light{X}.vLightData.xyz,shadowSampler{X},light{X}.shadowsInfo.x,light{X}.depthValues);\n#else\nshadow=computeShadow(vPositionFromLight{X},vDepthMetric{X},shadowSampler{X},light{X}.shadowsInfo.x,light{X}.shadowsInfo.w);\n#endif\n#endif\n#ifdef SHADOWONLY\n#ifndef SHADOWINUSE\n#define SHADOWINUSE\n#endif\nglobalShadow+=shadow;\nshadowLightCount+=1.0;\n#endif\n#else\nshadow=1.;\n#endif\n#ifndef SHADOWONLY\n#ifdef CUSTOMUSERLIGHTING\ndiffuseBase+=computeCustomDiffuseLighting(info,diffuseBase,shadow);\n#ifdef SPECULARTERM\nspecularBase+=computeCustomSpecularLighting(info,specularBase,shadow);\n#endif\n#elif defined(LIGHTMAP) && defined(LIGHTMAPEXCLUDED{X})\ndiffuseBase+=lightmapColor*shadow;\n#ifdef SPECULARTERM\n#ifndef LIGHTMAPNOSPECULAR{X}\nspecularBase+=info.specular*shadow*lightmapColor;\n#endif\n#endif\n#else\ndiffuseBase+=info.diffuse*shadow;\n#ifdef SPECULARTERM\nspecularBase+=info.specular*shadow;\n#endif\n#endif\n#endif\n#endif","logDepthFragment":"#ifdef LOGARITHMICDEPTH\ngl_FragDepthEXT=log2(vFragmentDepth)*logarithmicDepthConstant*0.5;\n#endif","fogFragment":"#ifdef FOG\nfloat fog=CalcFogFactor();\ncolor.rgb=fog*color.rgb+(1.0-fog)*vFogColor;\n#endif","pbrVertexDeclaration":"uniform mat4 view;\nuniform mat4 viewProjection;\n#ifdef ALBEDO\nuniform mat4 albedoMatrix;\nuniform vec2 vAlbedoInfos;\n#endif\n#ifdef AMBIENT\nuniform mat4 ambientMatrix;\nuniform vec4 vAmbientInfos;\n#endif\n#ifdef OPACITY\nuniform mat4 opacityMatrix;\nuniform vec2 vOpacityInfos;\n#endif\n#ifdef EMISSIVE\nuniform vec2 vEmissiveInfos;\nuniform mat4 emissiveMatrix;\n#endif\n#ifdef LIGHTMAP\nuniform vec2 vLightmapInfos;\nuniform mat4 lightmapMatrix;\n#endif\n#ifdef REFLECTIVITY \nuniform vec3 vReflectivityInfos;\nuniform mat4 reflectivityMatrix;\n#endif\n#ifdef MICROSURFACEMAP\nuniform vec2 vMicroSurfaceSamplerInfos;\nuniform mat4 microSurfaceSamplerMatrix;\n#endif\n#ifdef BUMP\nuniform vec3 vBumpInfos;\nuniform mat4 bumpMatrix;\n#endif\n#ifdef POINTSIZE\nuniform float pointSize;\n#endif\n\n#ifdef REFRACTION\nuniform vec4 vRefractionInfos;\nuniform mat4 refractionMatrix;\nuniform vec3 vRefractionMicrosurfaceInfos;\n#endif\n\n#ifdef REFLECTION\nuniform vec2 vReflectionInfos;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionMicrosurfaceInfos;\n#endif\n","pbrFragmentDeclaration":"uniform vec3 vReflectionColor;\nuniform vec4 vAlbedoColor;\n\nuniform vec4 vLightingIntensity;\nuniform vec4 vReflectivityColor;\nuniform vec3 vEmissiveColor;\n\n#ifdef ALBEDO\nuniform vec2 vAlbedoInfos;\n#endif\n#ifdef AMBIENT\nuniform vec4 vAmbientInfos;\n#endif\n#ifdef BUMP\nuniform vec3 vBumpInfos;\nuniform vec2 vTangentSpaceParams;\n#endif\n#ifdef OPACITY \nuniform vec2 vOpacityInfos;\n#endif\n#ifdef EMISSIVE\nuniform vec2 vEmissiveInfos;\n#endif\n#ifdef LIGHTMAP\nuniform vec2 vLightmapInfos;\n#endif\n#ifdef REFLECTIVITY\nuniform vec3 vReflectivityInfos;\n#endif\n#ifdef MICROSURFACEMAP\nuniform vec2 vMicroSurfaceSamplerInfos;\n#endif\n\n#if defined(REFLECTIONMAP_SPHERICAL) || defined(REFLECTIONMAP_PROJECTION) || defined(REFRACTION)\nuniform mat4 view;\n#endif\n\n#ifdef REFRACTION\nuniform vec4 vRefractionInfos;\nuniform mat4 refractionMatrix;\nuniform vec3 vRefractionMicrosurfaceInfos;\n#endif\n\n#ifdef REFLECTION\nuniform vec2 vReflectionInfos;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionMicrosurfaceInfos;\n#if defined(USE_LOCAL_REFLECTIONMAP_CUBIC) && defined(REFLECTIONMAP_CUBIC)\nuniform vec3 vReflectionPosition;\nuniform vec3 vReflectionSize; \n#endif\n#endif","pbrUboDeclaration":"layout(std140,column_major) uniform;\nuniform Material\n{\nuniform vec2 vAlbedoInfos;\nuniform vec4 vAmbientInfos;\nuniform vec2 vOpacityInfos;\nuniform vec2 vEmissiveInfos;\nuniform vec2 vLightmapInfos;\nuniform vec3 vReflectivityInfos;\nuniform vec2 vMicroSurfaceSamplerInfos;\nuniform vec4 vRefractionInfos;\nuniform vec2 vReflectionInfos;\nuniform vec3 vReflectionPosition;\nuniform vec3 vReflectionSize; \nuniform vec3 vBumpInfos;\nuniform mat4 albedoMatrix;\nuniform mat4 ambientMatrix;\nuniform mat4 opacityMatrix;\nuniform mat4 emissiveMatrix;\nuniform mat4 lightmapMatrix;\nuniform mat4 reflectivityMatrix;\nuniform mat4 microSurfaceSamplerMatrix;\nuniform mat4 bumpMatrix;\nuniform vec2 vTangentSpaceParams;\nuniform mat4 refractionMatrix;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionColor;\nuniform vec4 vAlbedoColor;\nuniform vec4 vLightingIntensity;\nuniform vec3 vRefractionMicrosurfaceInfos;\nuniform vec3 vReflectionMicrosurfaceInfos;\nuniform vec4 vReflectivityColor;\nuniform vec3 vEmissiveColor;\nuniform float pointSize;\n};\nuniform Scene {\nmat4 viewProjection;\nmat4 view;\n};","pbrFunctions":"\n#define RECIPROCAL_PI2 0.15915494\n#define FRESNEL_MAXIMUM_ON_ROUGH 0.25\n\nconst float kRougnhessToAlphaScale=0.1;\nconst float kRougnhessToAlphaOffset=0.29248125;\nfloat convertRoughnessToAverageSlope(float roughness)\n{\n\nconst float kMinimumVariance=0.0005;\nfloat alphaG=square(roughness)+kMinimumVariance;\nreturn alphaG;\n}\n\nfloat smithVisibilityG1_TrowbridgeReitzGGX(float dot,float alphaG)\n{\nfloat tanSquared=(1.0-dot*dot)/(dot*dot);\nreturn 2.0/(1.0+sqrt(1.0+alphaG*alphaG*tanSquared));\n}\nfloat smithVisibilityG_TrowbridgeReitzGGX_Walter(float NdotL,float NdotV,float alphaG)\n{\nreturn smithVisibilityG1_TrowbridgeReitzGGX(NdotL,alphaG)*smithVisibilityG1_TrowbridgeReitzGGX(NdotV,alphaG);\n}\n\n\nfloat normalDistributionFunction_TrowbridgeReitzGGX(float NdotH,float alphaG)\n{\n\n\n\nfloat a2=square(alphaG);\nfloat d=NdotH*NdotH*(a2-1.0)+1.0;\nreturn a2/(PI*d*d);\n}\nvec3 fresnelSchlickGGX(float VdotH,vec3 reflectance0,vec3 reflectance90)\n{\nreturn reflectance0+(reflectance90-reflectance0)*pow(clamp(1.0-VdotH,0.,1.),5.0);\n}\nvec3 fresnelSchlickEnvironmentGGX(float VdotN,vec3 reflectance0,vec3 reflectance90,float smoothness)\n{\n\nfloat weight=mix(FRESNEL_MAXIMUM_ON_ROUGH,1.0,smoothness);\nreturn reflectance0+weight*(reflectance90-reflectance0)*pow(clamp(1.0-VdotN,0.,1.),5.0);\n}\n\nvec3 computeSpecularTerm(float NdotH,float NdotL,float NdotV,float VdotH,float roughness,vec3 reflectance0,vec3 reflectance90,float geometricRoughnessFactor)\n{\nroughness=max(roughness,geometricRoughnessFactor);\nfloat alphaG=convertRoughnessToAverageSlope(roughness);\nfloat distribution=normalDistributionFunction_TrowbridgeReitzGGX(NdotH,alphaG);\nfloat visibility=smithVisibilityG_TrowbridgeReitzGGX_Walter(NdotL,NdotV,alphaG);\nvisibility/=(4.0*NdotL*NdotV); \nfloat specTerm=max(0.,visibility*distribution)*NdotL;\nvec3 fresnel=fresnelSchlickGGX(VdotH,reflectance0,reflectance90);\nreturn fresnel*specTerm;\n}\nfloat computeDiffuseTerm(float NdotL,float NdotV,float VdotH,float roughness)\n{\n\n\nfloat diffuseFresnelNV=pow(clamp(1.0-NdotL,0.000001,1.),5.0);\nfloat diffuseFresnelNL=pow(clamp(1.0-NdotV,0.000001,1.),5.0);\nfloat diffuseFresnel90=0.5+2.0*VdotH*VdotH*roughness;\nfloat fresnel =\n(1.0+(diffuseFresnel90-1.0)*diffuseFresnelNL) *\n(1.0+(diffuseFresnel90-1.0)*diffuseFresnelNV);\nreturn fresnel*NdotL/PI;\n}\nfloat adjustRoughnessFromLightProperties(float roughness,float lightRadius,float lightDistance)\n{\n#if defined(USEPHYSICALLIGHTFALLOFF) || defined(USEGLTFLIGHTFALLOFF)\n\nfloat lightRoughness=lightRadius/lightDistance;\n\nfloat totalRoughness=clamp(lightRoughness+roughness,0.,1.);\nreturn totalRoughness;\n#else\nreturn roughness;\n#endif\n}\nfloat computeDefaultMicroSurface(float microSurface,vec3 reflectivityColor)\n{\nconst float kReflectivityNoAlphaWorkflow_SmoothnessMax=0.95;\nfloat reflectivityLuminance=getLuminance(reflectivityColor);\nfloat reflectivityLuma=sqrt(reflectivityLuminance);\nmicroSurface=reflectivityLuma*kReflectivityNoAlphaWorkflow_SmoothnessMax;\nreturn microSurface;\n}\n\n\nfloat fresnelGrazingReflectance(float reflectance0) {\nfloat reflectance90=clamp(reflectance0*25.0,0.0,1.0);\nreturn reflectance90;\n}\n\n\n#define UNPACK_LOD(x) (1.0-x)*255.0\nfloat getLodFromAlphaG(float cubeMapDimensionPixels,float alphaG,float NdotV) {\nfloat microsurfaceAverageSlope=alphaG;\n\n\n\n\n\n\nmicrosurfaceAverageSlope*=sqrt(abs(NdotV));\nfloat microsurfaceAverageSlopeTexels=microsurfaceAverageSlope*cubeMapDimensionPixels;\nfloat lod=log2(microsurfaceAverageSlopeTexels);\nreturn lod;\n}\nfloat environmentRadianceOcclusion(float ambientOcclusion,float NdotVUnclamped) {\n\n\nfloat temp=NdotVUnclamped+ambientOcclusion;\nreturn clamp(square(temp)-1.0+ambientOcclusion,0.0,1.0);\n}\nfloat environmentHorizonOcclusion(vec3 view,vec3 normal) {\n\nvec3 reflection=reflect(view,normal);\nfloat temp=clamp( 1.0+1.1*dot(reflection,normal),0.0,1.0);\nreturn square(temp);\n}","harmonicsFunctions":"#ifdef USESPHERICALFROMREFLECTIONMAP\nuniform vec3 vSphericalX;\nuniform vec3 vSphericalY;\nuniform vec3 vSphericalZ;\nuniform vec3 vSphericalXX_ZZ;\nuniform vec3 vSphericalYY_ZZ;\nuniform vec3 vSphericalZZ;\nuniform vec3 vSphericalXY;\nuniform vec3 vSphericalYZ;\nuniform vec3 vSphericalZX;\nvec3 quaternionVectorRotation_ScaledSqrtTwo(vec4 Q,vec3 V){\nvec3 T=cross(Q.xyz,V);\nT+=Q.www*V;\nreturn cross(Q.xyz,T)+V;\n}\nvec3 environmentIrradianceJones(vec3 normal)\n{\n\n\n\n\n\n\n\n\n\nfloat Nx=normal.x;\nfloat Ny=normal.y;\nfloat Nz=normal.z;\nvec3 C1=vSphericalZZ.rgb;\nvec3 Cx=vSphericalX.rgb;\nvec3 Cy=vSphericalY.rgb;\nvec3 Cz=vSphericalZ.rgb;\nvec3 Cxx_zz=vSphericalXX_ZZ.rgb;\nvec3 Cyy_zz=vSphericalYY_ZZ.rgb;\nvec3 Cxy=vSphericalXY.rgb;\nvec3 Cyz=vSphericalYZ.rgb;\nvec3 Czx=vSphericalZX.rgb;\nvec3 a1=Cyy_zz*Ny+Cy;\nvec3 a2=Cyz*Nz+a1;\nvec3 b1=Czx*Nz+Cx;\nvec3 b2=Cxy*Ny+b1;\nvec3 b3=Cxx_zz*Nx+b2;\nvec3 t1=Cz*Nz+C1;\nvec3 t2=a2*Ny+t1;\nvec3 t3=b3*Nx+t2;\nreturn t3;\n}\n#endif","pbrLightFunctions":"\nstruct lightingInfo\n{\nvec3 diffuse;\n#ifdef SPECULARTERM\nvec3 specular;\n#endif\n};\nstruct pointLightingInfo\n{\nvec3 lightOffset;\nfloat lightDistanceSquared;\nfloat attenuation;\n};\nstruct spotLightingInfo\n{\nvec3 lightOffset;\nfloat lightDistanceSquared;\nvec3 directionToLightCenterW;\nfloat attenuation;\n};\nfloat computeDistanceLightFalloff_Standard(vec3 lightOffset,float range)\n{\nreturn max(0.,1.0-length(lightOffset)/range);\n}\nfloat computeDistanceLightFalloff_Physical(float lightDistanceSquared)\n{\nreturn 1.0/((lightDistanceSquared+0.001));\n}\nfloat computeDistanceLightFalloff_GLTF(float lightDistanceSquared,float inverseSquaredRange)\n{\nconst float minDistanceSquared=0.01*0.01;\nfloat lightDistanceFalloff=1.0/(max(lightDistanceSquared,minDistanceSquared));\nfloat factor=lightDistanceSquared*inverseSquaredRange;\nfloat attenuation=clamp(1.0-factor*factor,0.,1.);\nattenuation*=attenuation;\n\nlightDistanceFalloff*=attenuation;\nreturn lightDistanceFalloff;\n}\nfloat computeDistanceLightFalloff(vec3 lightOffset,float lightDistanceSquared,float range,float inverseSquaredRange)\n{ \n#ifdef USEPHYSICALLIGHTFALLOFF\nreturn computeDistanceLightFalloff_Physical(lightDistanceSquared);\n#elif defined(USEGLTFLIGHTFALLOFF)\nreturn computeDistanceLightFalloff_GLTF(lightDistanceSquared,inverseSquaredRange);\n#else\nreturn computeDistanceLightFalloff_Standard(lightOffset,range);\n#endif\n}\nfloat computeDirectionalLightFalloff_Standard(vec3 lightDirection,vec3 directionToLightCenterW,float cosHalfAngle,float exponent)\n{\nfloat falloff=0.0;\nfloat cosAngle=max(0.000000000000001,dot(-lightDirection,directionToLightCenterW));\nif (cosAngle>=cosHalfAngle)\n{\nfalloff=max(0.,pow(cosAngle,exponent));\n}\nreturn falloff;\n}\nfloat computeDirectionalLightFalloff_Physical(vec3 lightDirection,vec3 directionToLightCenterW,float cosHalfAngle)\n{\nconst float kMinusLog2ConeAngleIntensityRatio=6.64385618977; \n\n\n\n\n\nfloat concentrationKappa=kMinusLog2ConeAngleIntensityRatio/(1.0-cosHalfAngle);\n\n\nvec4 lightDirectionSpreadSG=vec4(-lightDirection*concentrationKappa,-concentrationKappa);\nfloat falloff=exp2(dot(vec4(directionToLightCenterW,1.0),lightDirectionSpreadSG));\nreturn falloff;\n}\nfloat computeDirectionalLightFalloff_GLTF(vec3 lightDirection,vec3 directionToLightCenterW,float lightAngleScale,float lightAngleOffset)\n{\n\n\n\nfloat cd=dot(-lightDirection,directionToLightCenterW);\nfloat falloff=clamp(cd*lightAngleScale+lightAngleOffset,0.,1.);\n\nfalloff*=falloff;\nreturn falloff;\n}\nfloat computeDirectionalLightFalloff(vec3 lightDirection,vec3 directionToLightCenterW,float cosHalfAngle,float exponent,float lightAngleScale,float lightAngleOffset)\n{\n#ifdef USEPHYSICALLIGHTFALLOFF\nreturn computeDirectionalLightFalloff_Physical(lightDirection,directionToLightCenterW,cosHalfAngle);\n#elif defined(USEGLTFLIGHTFALLOFF)\nreturn computeDirectionalLightFalloff_GLTF(lightDirection,directionToLightCenterW,lightAngleScale,lightAngleOffset);\n#else\nreturn computeDirectionalLightFalloff_Standard(lightDirection,directionToLightCenterW,cosHalfAngle,exponent);\n#endif\n}\npointLightingInfo computePointLightingInfo(vec4 lightData) {\npointLightingInfo result;\nresult.lightOffset=lightData.xyz-vPositionW;\nresult.lightDistanceSquared=dot(result.lightOffset,result.lightOffset);\nreturn result;\n}\nspotLightingInfo computeSpotLightingInfo(vec4 lightData) {\nspotLightingInfo result;\nresult.lightOffset=lightData.xyz-vPositionW;\nresult.directionToLightCenterW=normalize(result.lightOffset);\nresult.lightDistanceSquared=dot(result.lightOffset,result.lightOffset);\nreturn result;\n}\nlightingInfo computePointLighting(pointLightingInfo info,vec3 viewDirectionW,vec3 vNormal,vec3 diffuseColor,float lightRadius,float roughness,float NdotV,vec3 reflectance0,vec3 reflectance90,float geometricRoughnessFactor,out float NdotL) {\nlightingInfo result;\nfloat lightDistance=sqrt(info.lightDistanceSquared);\nvec3 lightDirection=normalize(info.lightOffset);\n\nroughness=adjustRoughnessFromLightProperties(roughness,lightRadius,lightDistance);\n\nvec3 H=normalize(viewDirectionW+lightDirection);\nNdotL=clamp(dot(vNormal,lightDirection),0.00000000001,1.0);\nfloat VdotH=clamp(dot(viewDirectionW,H),0.0,1.0);\nfloat diffuseTerm=computeDiffuseTerm(NdotL,NdotV,VdotH,roughness);\nresult.diffuse=diffuseTerm*diffuseColor*info.attenuation;\n#ifdef SPECULARTERM\n\nfloat NdotH=clamp(dot(vNormal,H),0.000000000001,1.0);\nvec3 specTerm=computeSpecularTerm(NdotH,NdotL,NdotV,VdotH,roughness,reflectance0,reflectance90,geometricRoughnessFactor);\nresult.specular=specTerm*diffuseColor*info.attenuation;\n#endif\nreturn result;\n}\nlightingInfo computeSpotLighting(spotLightingInfo info,vec3 viewDirectionW,vec3 vNormal,vec4 lightDirection,vec3 diffuseColor,float lightRadius,float roughness,float NdotV,vec3 reflectance0,vec3 reflectance90,float geometricRoughnessFactor,out float NdotL) {\nlightingInfo result;\n\nfloat lightDistance=sqrt(info.lightDistanceSquared);\nroughness=adjustRoughnessFromLightProperties(roughness,lightRadius,lightDistance);\n\nvec3 H=normalize(viewDirectionW+info.directionToLightCenterW);\nNdotL=clamp(dot(vNormal,info.directionToLightCenterW),0.000000000001,1.0);\nfloat VdotH=clamp(dot(viewDirectionW,H),0.0,1.0);\nfloat diffuseTerm=computeDiffuseTerm(NdotL,NdotV,VdotH,roughness);\nresult.diffuse=diffuseTerm*diffuseColor*info.attenuation;\n#ifdef SPECULARTERM\n\nfloat NdotH=clamp(dot(vNormal,H),0.000000000001,1.0);\nvec3 specTerm=computeSpecularTerm(NdotH,NdotL,NdotV,VdotH,roughness,reflectance0,reflectance90,geometricRoughnessFactor);\nresult.specular=specTerm*diffuseColor*info.attenuation;\n#endif\nreturn result;\n}\nlightingInfo computeDirectionalLighting(vec3 viewDirectionW,vec3 vNormal,vec4 lightData,vec3 diffuseColor,vec3 specularColor,float lightRadius,float roughness,float NdotV,vec3 reflectance0,vec3 reflectance90,float geometricRoughnessFactor,out float NdotL) {\nlightingInfo result;\nfloat lightDistance=length(-lightData.xyz);\nvec3 lightDirection=normalize(-lightData.xyz);\n\nroughness=adjustRoughnessFromLightProperties(roughness,lightRadius,lightDistance);\n\nvec3 H=normalize(viewDirectionW+lightDirection);\nNdotL=clamp(dot(vNormal,lightDirection),0.00000000001,1.0);\nfloat VdotH=clamp(dot(viewDirectionW,H),0.0,1.0);\nfloat diffuseTerm=computeDiffuseTerm(NdotL,NdotV,VdotH,roughness);\nresult.diffuse=diffuseTerm*diffuseColor;\n#ifdef SPECULARTERM\n\nfloat NdotH=clamp(dot(vNormal,H),0.000000000001,1.0);\nvec3 specTerm=computeSpecularTerm(NdotH,NdotL,NdotV,VdotH,roughness,reflectance0,reflectance90,geometricRoughnessFactor);\nresult.specular=specTerm*diffuseColor;\n#endif\nreturn result;\n}\nlightingInfo computeHemisphericLighting(vec3 viewDirectionW,vec3 vNormal,vec4 lightData,vec3 diffuseColor,vec3 specularColor,vec3 groundColor,float roughness,float NdotV,vec3 reflectance0,vec3 reflectance90,float geometricRoughnessFactor,out float NdotL) {\nlightingInfo result;\n\n\n\nNdotL=dot(vNormal,lightData.xyz)*0.5+0.5;\nresult.diffuse=mix(groundColor,diffuseColor,NdotL);\n#ifdef SPECULARTERM\n\nvec3 lightVectorW=normalize(lightData.xyz);\nvec3 H=normalize(viewDirectionW+lightVectorW);\nfloat NdotH=clamp(dot(vNormal,H),0.000000000001,1.0);\nNdotL=clamp(NdotL,0.000000000001,1.0);\nfloat VdotH=clamp(dot(viewDirectionW,H),0.0,1.0);\nvec3 specTerm=computeSpecularTerm(NdotH,NdotL,NdotV,VdotH,roughness,reflectance0,reflectance90,geometricRoughnessFactor);\nresult.specular=specTerm*diffuseColor;\n#endif\nreturn result;\n}\nvec3 computeProjectionTextureDiffuseLighting(sampler2D projectionLightSampler,mat4 textureProjectionMatrix){\nvec4 strq=textureProjectionMatrix*vec4(vPositionW,1.0);\nstrq/=strq.w;\nvec3 textureColor=texture2D(projectionLightSampler,strq.xy).rgb;\nreturn toLinearSpace(textureColor);\n}","clipPlaneVertexDeclaration2":"#ifdef CLIPPLANE\nuniform vec4 vClipPlane;\nout float fClipDistance;\n#endif\n#ifdef CLIPPLANE2\nuniform vec4 vClipPlane2;\nout float fClipDistance2;\n#endif\n#ifdef CLIPPLANE3\nuniform vec4 vClipPlane3;\nout float fClipDistance3;\n#endif\n#ifdef CLIPPLANE4\nuniform vec4 vClipPlane4;\nout float fClipDistance4;\n#endif","clipPlaneFragmentDeclaration2":"#ifdef CLIPPLANE\nin float fClipDistance;\n#endif\n#ifdef CLIPPLANE2\nin float fClipDistance2;\n#endif\n#ifdef CLIPPLANE3\nin float fClipDistance3;\n#endif\n#ifdef CLIPPLANE4\nin float fClipDistance4;\n#endif","mrtFragmentDeclaration":"#if __VERSION__>=200\nlayout(location=0) out vec4 glFragData[{X}];\n#endif\n","bones300Declaration":"#if NUM_BONE_INFLUENCERS>0\nuniform mat4 mBones[BonesPerMesh];\nin vec4 matricesIndices;\nin vec4 matricesWeights;\n#if NUM_BONE_INFLUENCERS>4\nin vec4 matricesIndicesExtra;\nin vec4 matricesWeightsExtra;\n#endif\n#endif","instances300Declaration":"#ifdef INSTANCES\nin vec4 world0;\nin vec4 world1;\nin vec4 world2;\nin vec4 world3;\n#else\nuniform mat4 world;\n#endif","kernelBlurFragment":"#ifdef DOF\nfactor=sampleCoC(sampleCoord{X}); \ncomputedWeight=KERNEL_WEIGHT{X}*factor;\nsumOfWeights+=computedWeight;\n#else\ncomputedWeight=KERNEL_WEIGHT{X};\n#endif\n#ifdef PACKEDFLOAT\nblend+=unpack(texture2D(textureSampler,sampleCoord{X}))*computedWeight;\n#else\nblend+=texture2D(textureSampler,sampleCoord{X})*computedWeight;\n#endif","kernelBlurFragment2":"#ifdef DOF\nfactor=sampleCoC(sampleCenter+delta*KERNEL_DEP_OFFSET{X});\ncomputedWeight=KERNEL_DEP_WEIGHT{X}*factor;\nsumOfWeights+=computedWeight;\n#else\ncomputedWeight=KERNEL_DEP_WEIGHT{X};\n#endif\n#ifdef PACKEDFLOAT\nblend+=unpack(texture2D(textureSampler,sampleCenter+delta*KERNEL_DEP_OFFSET{X}))*computedWeight;\n#else\nblend+=texture2D(textureSampler,sampleCenter+delta*KERNEL_DEP_OFFSET{X})*computedWeight;\n#endif","kernelBlurVaryingDeclaration":"varying vec2 sampleCoord{X};","kernelBlurVertex":"sampleCoord{X}=sampleCenter+delta*KERNEL_OFFSET{X};","backgroundVertexDeclaration":"uniform mat4 view;\nuniform mat4 viewProjection;\nuniform float shadowLevel;\n#ifdef DIFFUSE\nuniform mat4 diffuseMatrix;\nuniform vec2 vDiffuseInfos;\n#endif\n#ifdef REFLECTION\nuniform vec2 vReflectionInfos;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionMicrosurfaceInfos;\nuniform float fFovMultiplier;\n#endif\n#ifdef POINTSIZE\nuniform float pointSize;\n#endif","backgroundFragmentDeclaration":" uniform vec4 vPrimaryColor;\n#ifdef USEHIGHLIGHTANDSHADOWCOLORS\nuniform vec4 vPrimaryColorShadow;\n#endif\nuniform float shadowLevel;\nuniform float alpha;\n#ifdef DIFFUSE\nuniform vec2 vDiffuseInfos;\n#endif\n#ifdef REFLECTION\nuniform vec2 vReflectionInfos;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionMicrosurfaceInfos;\n#endif\n#if defined(REFLECTIONFRESNEL) || defined(OPACITYFRESNEL)\nuniform vec3 vBackgroundCenter;\n#endif\n#ifdef REFLECTIONFRESNEL\nuniform vec4 vReflectionControl;\n#endif\n#if defined(REFLECTIONMAP_SPHERICAL) || defined(REFLECTIONMAP_PROJECTION) || defined(REFRACTION)\nuniform mat4 view;\n#endif","backgroundUboDeclaration":"layout(std140,column_major) uniform;\nuniform Material\n{\nuniform vec4 vPrimaryColor;\nuniform vec4 vPrimaryColorShadow;\nuniform vec2 vDiffuseInfos;\nuniform vec2 vReflectionInfos;\nuniform mat4 diffuseMatrix;\nuniform mat4 reflectionMatrix;\nuniform vec3 vReflectionMicrosurfaceInfos;\nuniform float fFovMultiplier;\nuniform float pointSize;\nuniform float shadowLevel;\nuniform float alpha;\n#if defined(REFLECTIONFRESNEL) || defined(OPACITYFRESNEL)\nuniform vec3 vBackgroundCenter;\n#endif\n#ifdef REFLECTIONFRESNEL\nuniform vec4 vReflectionControl;\n#endif\n};\nuniform Scene {\nmat4 viewProjection;\nmat4 view;\n};"};
  108574. var globalObject = (typeof global !== 'undefined') ? global : ((typeof window !== 'undefined') ? window : this);
  108575. globalObject["BABYLON"] = BABYLON;
  108576. //backwards compatibility
  108577. if(typeof earcut !== 'undefined') {
  108578. globalObject["Earcut"] = {
  108579. earcut: earcut
  108580. };
  108581. }
  108582. return BABYLON;
  108583. });