babylon.mesh.ts 145 KB

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  1. module BABYLON {
  2. export class _InstancesBatch {
  3. public mustReturn = false;
  4. public visibleInstances = new Array<Array<InstancedMesh>>();
  5. public renderSelf = new Array<boolean>();
  6. }
  7. export class Mesh extends AbstractMesh implements IGetSetVerticesData {
  8. // Consts
  9. public static _FRONTSIDE: number = 0;
  10. public static _BACKSIDE: number = 1;
  11. public static _DOUBLESIDE: number = 2;
  12. public static _DEFAULTSIDE: number = 0;
  13. public static _NO_CAP = 0;
  14. public static _CAP_START = 1;
  15. public static _CAP_END = 2;
  16. public static _CAP_ALL = 3;
  17. /**
  18. * Mesh side orientation : usually the external or front surface
  19. */
  20. public static get FRONTSIDE(): number {
  21. return Mesh._FRONTSIDE;
  22. }
  23. /**
  24. * Mesh side orientation : usually the internal or back surface
  25. */
  26. public static get BACKSIDE(): number {
  27. return Mesh._BACKSIDE;
  28. }
  29. /**
  30. * Mesh side orientation : both internal and external or front and back surfaces
  31. */
  32. public static get DOUBLESIDE(): number {
  33. return Mesh._DOUBLESIDE;
  34. }
  35. /**
  36. * Mesh side orientation : by default, `FRONTSIDE`
  37. */
  38. public static get DEFAULTSIDE(): number {
  39. return Mesh._DEFAULTSIDE;
  40. }
  41. /**
  42. * Mesh cap setting : no cap
  43. */
  44. public static get NO_CAP(): number {
  45. return Mesh._NO_CAP;
  46. }
  47. /**
  48. * Mesh cap setting : one cap at the beginning of the mesh
  49. */
  50. public static get CAP_START(): number {
  51. return Mesh._CAP_START;
  52. }
  53. /**
  54. * Mesh cap setting : one cap at the end of the mesh
  55. */
  56. public static get CAP_END(): number {
  57. return Mesh._CAP_END;
  58. }
  59. /**
  60. * Mesh cap setting : two caps, one at the beginning and one at the end of the mesh
  61. */
  62. public static get CAP_ALL(): number {
  63. return Mesh._CAP_ALL;
  64. }
  65. // Events
  66. /**
  67. * An event triggered before rendering the mesh
  68. * @type {BABYLON.Observable}
  69. */
  70. public onBeforeRenderObservable = new Observable<Mesh>();
  71. /**
  72. * An event triggered after rendering the mesh
  73. * @type {BABYLON.Observable}
  74. */
  75. public onAfterRenderObservable = new Observable<Mesh>();
  76. /**
  77. * An event triggered before drawing the mesh
  78. * @type {BABYLON.Observable}
  79. */
  80. public onBeforeDrawObservable = new Observable<Mesh>();
  81. private _onBeforeDrawObserver: Observer<Mesh>;
  82. public set onBeforeDraw(callback: () => void) {
  83. if (this._onBeforeDrawObserver) {
  84. this.onBeforeDrawObservable.remove(this._onBeforeDrawObserver);
  85. }
  86. this._onBeforeDrawObserver = this.onBeforeDrawObservable.add(callback);
  87. }
  88. // Members
  89. public delayLoadState = Engine.DELAYLOADSTATE_NONE;
  90. public instances = new Array<InstancedMesh>();
  91. public delayLoadingFile: string;
  92. public _binaryInfo: any;
  93. private _LODLevels = new Array<Internals.MeshLODLevel>();
  94. public onLODLevelSelection: (distance: number, mesh: Mesh, selectedLevel: Mesh) => void;
  95. // Morph
  96. private _morphTargetManager: MorphTargetManager;
  97. public get morphTargetManager(): MorphTargetManager {
  98. return this._morphTargetManager;
  99. }
  100. public set morphTargetManager(value: MorphTargetManager) {
  101. if (this._morphTargetManager === value) {
  102. return;
  103. }
  104. this._morphTargetManager = value;
  105. this._syncGeometryWithMorphTargetManager();
  106. }
  107. // Private
  108. public _geometry: Geometry;
  109. public _delayInfo; //ANY
  110. public _delayLoadingFunction: (any: any, mesh: Mesh) => void;
  111. public _visibleInstances: any = {};
  112. private _renderIdForInstances = new Array<number>();
  113. private _batchCache = new _InstancesBatch();
  114. private _instancesBufferSize = 32 * 16 * 4; // let's start with a maximum of 32 instances
  115. private _instancesBuffer: Buffer;
  116. private _instancesData: Float32Array;
  117. private _overridenInstanceCount: number;
  118. private _effectiveMaterial: Material;
  119. public _shouldGenerateFlatShading: boolean;
  120. private _preActivateId: number;
  121. private _sideOrientation: number = Mesh._DEFAULTSIDE;
  122. private _areNormalsFrozen: boolean = false; // Will be used by ribbons mainly
  123. private _sourcePositions: Float32Array; // Will be used to save original positions when using software skinning
  124. private _sourceNormals: Float32Array; // Will be used to save original normals when using software skinning
  125. // Will be used to save a source mesh reference, If any
  126. private _source: BABYLON.Mesh = null;
  127. public get source(): BABYLON.Mesh {
  128. return this._source;
  129. }
  130. /**
  131. * @constructor
  132. * @param {string} name The value used by scene.getMeshByName() to do a lookup.
  133. * @param {Scene} scene The scene to add this mesh to.
  134. * @param {Node} parent The parent of this mesh, if it has one
  135. * @param {Mesh} source An optional Mesh from which geometry is shared, cloned.
  136. * @param {boolean} doNotCloneChildren When cloning, skip cloning child meshes of source, default False.
  137. * When false, achieved by calling a clone(), also passing False.
  138. * This will make creation of children, recursive.
  139. * @param {boolean} clonePhysicsImpostor When cloning, include cloning mesh physics impostor, default True.
  140. */
  141. constructor(name: string, scene: Scene, parent: Node = null, source?: Mesh, doNotCloneChildren?: boolean, clonePhysicsImpostor: boolean = true) {
  142. super(name, scene);
  143. if (source) {
  144. // Source mesh
  145. this._source = source;
  146. // Geometry
  147. if (source._geometry) {
  148. source._geometry.applyToMesh(this);
  149. }
  150. // Deep copy
  151. Tools.DeepCopy(source, this, ["name", "material", "skeleton", "instances", "parent", "uniqueId"], ["_poseMatrix"]);
  152. // Parent
  153. this.parent = source.parent;
  154. // Pivot
  155. this.setPivotMatrix(source.getPivotMatrix());
  156. this.id = name + "." + source.id;
  157. // Material
  158. this.material = source.material;
  159. var index: number;
  160. if (!doNotCloneChildren) {
  161. // Children
  162. for (index = 0; index < scene.meshes.length; index++) {
  163. var mesh = scene.meshes[index];
  164. if (mesh.parent === source) {
  165. // doNotCloneChildren is always going to be False
  166. var newChild = mesh.clone(name + "." + mesh.name, this, doNotCloneChildren);
  167. }
  168. }
  169. }
  170. // Physics clone
  171. var physicsEngine = this.getScene().getPhysicsEngine();
  172. if (clonePhysicsImpostor && physicsEngine) {
  173. var impostor = physicsEngine.getImpostorForPhysicsObject(source);
  174. if (impostor) {
  175. this.physicsImpostor = impostor.clone(this);
  176. }
  177. }
  178. // Particles
  179. for (index = 0; index < scene.particleSystems.length; index++) {
  180. var system = scene.particleSystems[index];
  181. if (system.emitter === source) {
  182. system.clone(system.name, this);
  183. }
  184. }
  185. this.computeWorldMatrix(true);
  186. }
  187. // Parent
  188. if (parent !== null) {
  189. this.parent = parent;
  190. }
  191. }
  192. // Methods
  193. /**
  194. * Returns the string "Mesh".
  195. */
  196. public getClassName(): string {
  197. return "Mesh";
  198. }
  199. /**
  200. * Returns a string.
  201. * @param {boolean} fullDetails - support for multiple levels of logging within scene loading
  202. */
  203. public toString(fullDetails?: boolean): string {
  204. var ret = super.toString(fullDetails);
  205. ret += ", n vertices: " + this.getTotalVertices();
  206. ret += ", parent: " + (this._waitingParentId ? this._waitingParentId : (this.parent ? this.parent.name : "NONE"));
  207. if (this.animations) {
  208. for (var i = 0; i < this.animations.length; i++) {
  209. ret += ", animation[0]: " + this.animations[i].toString(fullDetails);
  210. }
  211. }
  212. if (fullDetails) {
  213. ret += ", flat shading: " + (this._geometry ? (this.getVerticesData(VertexBuffer.PositionKind).length / 3 === this.getIndices().length ? "YES" : "NO") : "UNKNOWN");
  214. }
  215. return ret;
  216. }
  217. /**
  218. * True if the mesh has some Levels Of Details (LOD).
  219. * Returns a boolean.
  220. */
  221. public get hasLODLevels(): boolean {
  222. return this._LODLevels.length > 0;
  223. }
  224. private _sortLODLevels(): void {
  225. this._LODLevels.sort((a, b) => {
  226. if (a.distance < b.distance) {
  227. return 1;
  228. }
  229. if (a.distance > b.distance) {
  230. return -1;
  231. }
  232. return 0;
  233. });
  234. }
  235. /**
  236. * Add a mesh as LOD level triggered at the given distance.
  237. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  238. * @param {number} distance The distance from the center of the object to show this level
  239. * @param {Mesh} mesh The mesh to be added as LOD level
  240. * @return {Mesh} This mesh (for chaining)
  241. */
  242. public addLODLevel(distance: number, mesh: Mesh): Mesh {
  243. if (mesh && mesh._masterMesh) {
  244. Tools.Warn("You cannot use a mesh as LOD level twice");
  245. return this;
  246. }
  247. var level = new Internals.MeshLODLevel(distance, mesh);
  248. this._LODLevels.push(level);
  249. if (mesh) {
  250. mesh._masterMesh = this;
  251. }
  252. this._sortLODLevels();
  253. return this;
  254. }
  255. /**
  256. * Returns the LOD level mesh at the passed distance or null if not found.
  257. * It is related to the method `addLODLevel(distance, mesh)`.
  258. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  259. * Returns an object Mesh or `null`.
  260. */
  261. public getLODLevelAtDistance(distance: number): Mesh {
  262. for (var index = 0; index < this._LODLevels.length; index++) {
  263. var level = this._LODLevels[index];
  264. if (level.distance === distance) {
  265. return level.mesh;
  266. }
  267. }
  268. return null;
  269. }
  270. /**
  271. * Remove a mesh from the LOD array
  272. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  273. * @param {Mesh} mesh The mesh to be removed.
  274. * @return {Mesh} This mesh (for chaining)
  275. */
  276. public removeLODLevel(mesh: Mesh): Mesh {
  277. for (var index = 0; index < this._LODLevels.length; index++) {
  278. if (this._LODLevels[index].mesh === mesh) {
  279. this._LODLevels.splice(index, 1);
  280. if (mesh) {
  281. mesh._masterMesh = null;
  282. }
  283. }
  284. }
  285. this._sortLODLevels();
  286. return this;
  287. }
  288. /**
  289. * Returns the registered LOD mesh distant from the parameter `camera` position if any, else returns the current mesh.
  290. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_LOD
  291. */
  292. public getLOD(camera: Camera, boundingSphere?: BoundingSphere): AbstractMesh {
  293. if (!this._LODLevels || this._LODLevels.length === 0) {
  294. return this;
  295. }
  296. var distanceToCamera = (boundingSphere ? boundingSphere : this.getBoundingInfo().boundingSphere).centerWorld.subtract(camera.globalPosition).length();
  297. if (this._LODLevels[this._LODLevels.length - 1].distance > distanceToCamera) {
  298. if (this.onLODLevelSelection) {
  299. this.onLODLevelSelection(distanceToCamera, this, this._LODLevels[this._LODLevels.length - 1].mesh);
  300. }
  301. return this;
  302. }
  303. for (var index = 0; index < this._LODLevels.length; index++) {
  304. var level = this._LODLevels[index];
  305. if (level.distance < distanceToCamera) {
  306. if (level.mesh) {
  307. level.mesh._preActivate();
  308. level.mesh._updateSubMeshesBoundingInfo(this.worldMatrixFromCache);
  309. }
  310. if (this.onLODLevelSelection) {
  311. this.onLODLevelSelection(distanceToCamera, this, level.mesh);
  312. }
  313. return level.mesh;
  314. }
  315. }
  316. if (this.onLODLevelSelection) {
  317. this.onLODLevelSelection(distanceToCamera, this, this);
  318. }
  319. return this;
  320. }
  321. /**
  322. * Returns the mesh internal Geometry object.
  323. */
  324. public get geometry(): Geometry {
  325. return this._geometry;
  326. }
  327. /**
  328. * Returns a positive integer : the total number of vertices within the mesh geometry or zero if the mesh has no geometry.
  329. */
  330. public getTotalVertices(): number {
  331. if (!this._geometry) {
  332. return 0;
  333. }
  334. return this._geometry.getTotalVertices();
  335. }
  336. /**
  337. * Returns an array of integers or floats, or a Float32Array, depending on the requested `kind` (positions, indices, normals, etc).
  338. * 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.
  339. * You can force the copy with forceCopy === true
  340. * Returns null if the mesh has no geometry or no vertex buffer.
  341. * Possible `kind` values :
  342. * - BABYLON.VertexBuffer.PositionKind
  343. * - BABYLON.VertexBuffer.UVKind
  344. * - BABYLON.VertexBuffer.UV2Kind
  345. * - BABYLON.VertexBuffer.UV3Kind
  346. * - BABYLON.VertexBuffer.UV4Kind
  347. * - BABYLON.VertexBuffer.UV5Kind
  348. * - BABYLON.VertexBuffer.UV6Kind
  349. * - BABYLON.VertexBuffer.ColorKind
  350. * - BABYLON.VertexBuffer.MatricesIndicesKind
  351. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  352. * - BABYLON.VertexBuffer.MatricesWeightsKind
  353. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  354. */
  355. public getVerticesData(kind: string, copyWhenShared?: boolean, forceCopy?: boolean): number[] | Float32Array {
  356. if (!this._geometry) {
  357. return null;
  358. }
  359. return this._geometry.getVerticesData(kind, copyWhenShared, forceCopy);
  360. }
  361. /**
  362. * Returns the mesh VertexBuffer object from the requested `kind` : positions, indices, normals, etc.
  363. * Returns `undefined` if the mesh has no geometry.
  364. * Possible `kind` values :
  365. * - BABYLON.VertexBuffer.PositionKind
  366. * - BABYLON.VertexBuffer.UVKind
  367. * - BABYLON.VertexBuffer.UV2Kind
  368. * - BABYLON.VertexBuffer.UV3Kind
  369. * - BABYLON.VertexBuffer.UV4Kind
  370. * - BABYLON.VertexBuffer.UV5Kind
  371. * - BABYLON.VertexBuffer.UV6Kind
  372. * - BABYLON.VertexBuffer.ColorKind
  373. * - BABYLON.VertexBuffer.MatricesIndicesKind
  374. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  375. * - BABYLON.VertexBuffer.MatricesWeightsKind
  376. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  377. */
  378. public getVertexBuffer(kind): VertexBuffer {
  379. if (!this._geometry) {
  380. return undefined;
  381. }
  382. return this._geometry.getVertexBuffer(kind);
  383. }
  384. /**
  385. * Returns a boolean depending on the existence of the Vertex Data for the requested `kind`.
  386. * Possible `kind` values :
  387. * - BABYLON.VertexBuffer.PositionKind
  388. * - BABYLON.VertexBuffer.UVKind
  389. * - BABYLON.VertexBuffer.UV2Kind
  390. * - BABYLON.VertexBuffer.UV3Kind
  391. * - BABYLON.VertexBuffer.UV4Kind
  392. * - BABYLON.VertexBuffer.UV5Kind
  393. * - BABYLON.VertexBuffer.UV6Kind
  394. * - BABYLON.VertexBuffer.ColorKind
  395. * - BABYLON.VertexBuffer.MatricesIndicesKind
  396. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  397. * - BABYLON.VertexBuffer.MatricesWeightsKind
  398. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  399. */
  400. public isVerticesDataPresent(kind: string): boolean {
  401. if (!this._geometry) {
  402. if (this._delayInfo) {
  403. return this._delayInfo.indexOf(kind) !== -1;
  404. }
  405. return false;
  406. }
  407. return this._geometry.isVerticesDataPresent(kind);
  408. }
  409. /**
  410. * Returns a string : the list of existing `kinds` of Vertex Data for this mesh.
  411. * Possible `kind` values :
  412. * - BABYLON.VertexBuffer.PositionKind
  413. * - BABYLON.VertexBuffer.UVKind
  414. * - BABYLON.VertexBuffer.UV2Kind
  415. * - BABYLON.VertexBuffer.UV3Kind
  416. * - BABYLON.VertexBuffer.UV4Kind
  417. * - BABYLON.VertexBuffer.UV5Kind
  418. * - BABYLON.VertexBuffer.UV6Kind
  419. * - BABYLON.VertexBuffer.ColorKind
  420. * - BABYLON.VertexBuffer.MatricesIndicesKind
  421. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  422. * - BABYLON.VertexBuffer.MatricesWeightsKind
  423. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  424. */
  425. public getVerticesDataKinds(): string[] {
  426. if (!this._geometry) {
  427. var result = [];
  428. if (this._delayInfo) {
  429. this._delayInfo.forEach(function (kind, index, array) {
  430. result.push(kind);
  431. });
  432. }
  433. return result;
  434. }
  435. return this._geometry.getVerticesDataKinds();
  436. }
  437. /**
  438. * Returns a positive integer : the total number of indices in this mesh geometry.
  439. * Returns zero if the mesh has no geometry.
  440. */
  441. public getTotalIndices(): number {
  442. if (!this._geometry) {
  443. return 0;
  444. }
  445. return this._geometry.getTotalIndices();
  446. }
  447. /**
  448. * Returns an array of integers or a typed array (Int32Array, Uint32Array, Uint16Array) populated with the mesh indices.
  449. * If the parameter `copyWhenShared` is 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.
  450. * Returns an empty array if the mesh has no geometry.
  451. */
  452. public getIndices(copyWhenShared?: boolean): IndicesArray {
  453. if (!this._geometry) {
  454. return [];
  455. }
  456. return this._geometry.getIndices(copyWhenShared);
  457. }
  458. public get isBlocked(): boolean {
  459. return this._masterMesh !== null && this._masterMesh !== undefined;
  460. }
  461. /**
  462. * Boolean : true once the mesh is ready after all the delayed process (loading, etc) are complete.
  463. */
  464. public isReady(): boolean {
  465. if (this.delayLoadState === Engine.DELAYLOADSTATE_LOADING) {
  466. return false;
  467. }
  468. return super.isReady();
  469. }
  470. public get sideOrientation(): number {
  471. return this._sideOrientation;
  472. }
  473. /**
  474. * Sets the mesh side orientation : BABYLON.Mesh.FRONTSIDE, BABYLON.Mesh.BACKSIDE, BABYLON.Mesh.DOUBLESIDE or BABYLON.Mesh.DEFAULTSIDE
  475. * tuto : http://doc.babylonjs.com/tutorials/Discover_Basic_Elements#side-orientation
  476. */
  477. public set sideOrientation(sideO: number) {
  478. this._sideOrientation = sideO;
  479. }
  480. /**
  481. * Boolean : true if the normals aren't to be recomputed on next mesh `positions` array update.
  482. * This property is pertinent only for updatable parametric shapes.
  483. */
  484. public get areNormalsFrozen(): boolean {
  485. return this._areNormalsFrozen;
  486. }
  487. /**
  488. * This function affects parametric shapes on vertex position update only : ribbons, tubes, etc.
  489. * It has no effect at all on other shapes.
  490. * It prevents the mesh normals from being recomputed on next `positions` array update.
  491. * Returns the Mesh.
  492. */
  493. public freezeNormals(): Mesh {
  494. this._areNormalsFrozen = true;
  495. return this;
  496. }
  497. /**
  498. * This function affects parametric shapes on vertex position update only : ribbons, tubes, etc.
  499. * It has no effect at all on other shapes.
  500. * It reactivates the mesh normals computation if it was previously frozen.
  501. * Returns the Mesh.
  502. */
  503. public unfreezeNormals(): Mesh {
  504. this._areNormalsFrozen = false;
  505. return this;
  506. }
  507. /**
  508. * Overrides instance count. Only applicable when custom instanced InterleavedVertexBuffer are used rather than InstancedMeshs
  509. */
  510. public set overridenInstanceCount(count: number) {
  511. this._overridenInstanceCount = count;
  512. }
  513. // Methods
  514. public _preActivate(): Mesh {
  515. var sceneRenderId = this.getScene().getRenderId();
  516. if (this._preActivateId === sceneRenderId) {
  517. return this;
  518. }
  519. this._preActivateId = sceneRenderId;
  520. this._visibleInstances = null;
  521. return this;
  522. }
  523. public _preActivateForIntermediateRendering(renderId: number): Mesh {
  524. if (this._visibleInstances) {
  525. this._visibleInstances.intermediateDefaultRenderId = renderId;
  526. }
  527. return this;
  528. }
  529. public _registerInstanceForRenderId(instance: InstancedMesh, renderId: number): Mesh {
  530. if (!this._visibleInstances) {
  531. this._visibleInstances = {};
  532. this._visibleInstances.defaultRenderId = renderId;
  533. this._visibleInstances.selfDefaultRenderId = this._renderId;
  534. }
  535. if (!this._visibleInstances[renderId]) {
  536. this._visibleInstances[renderId] = new Array<InstancedMesh>();
  537. }
  538. this._visibleInstances[renderId].push(instance);
  539. return this;
  540. }
  541. /**
  542. * This method recomputes and sets a new BoundingInfo to the mesh unless it is locked.
  543. * This means the mesh underlying bounding box and sphere are recomputed.
  544. * Returns the Mesh.
  545. */
  546. public refreshBoundingInfo(): Mesh {
  547. if (this._boundingInfo.isLocked) {
  548. return;
  549. }
  550. var data = this.getVerticesData(VertexBuffer.PositionKind);
  551. if (data) {
  552. var extend = Tools.ExtractMinAndMax(data, 0, this.getTotalVertices());
  553. this._boundingInfo = new BoundingInfo(extend.minimum, extend.maximum);
  554. }
  555. if (this.subMeshes) {
  556. for (var index = 0; index < this.subMeshes.length; index++) {
  557. this.subMeshes[index].refreshBoundingInfo();
  558. }
  559. }
  560. this._updateBoundingInfo();
  561. return this;
  562. }
  563. public _createGlobalSubMesh(force: boolean): SubMesh {
  564. var totalVertices = this.getTotalVertices();
  565. if (!totalVertices || !this.getIndices()) {
  566. return null;
  567. }
  568. // Check if we need to recreate the submeshes
  569. if (this.subMeshes && this.subMeshes.length > 0) {
  570. var totalIndices = this.getIndices().length;
  571. let needToRecreate = false;
  572. if (force) {
  573. needToRecreate = true;
  574. } else {
  575. for (var submesh of this.subMeshes) {
  576. if (submesh.indexStart + submesh.indexCount >= totalIndices) {
  577. needToRecreate = true;
  578. break;
  579. }
  580. if (submesh.verticesStart + submesh.verticesCount >= totalVertices) {
  581. needToRecreate = true;
  582. break;
  583. }
  584. }
  585. }
  586. if (!needToRecreate) {
  587. return;
  588. }
  589. }
  590. this.releaseSubMeshes();
  591. return new SubMesh(0, 0, totalVertices, 0, this.getTotalIndices(), this);
  592. }
  593. public subdivide(count: number): void {
  594. if (count < 1) {
  595. return;
  596. }
  597. var totalIndices = this.getTotalIndices();
  598. var subdivisionSize = (totalIndices / count) | 0;
  599. var offset = 0;
  600. // Ensure that subdivisionSize is a multiple of 3
  601. while (subdivisionSize % 3 !== 0) {
  602. subdivisionSize++;
  603. }
  604. this.releaseSubMeshes();
  605. for (var index = 0; index < count; index++) {
  606. if (offset >= totalIndices) {
  607. break;
  608. }
  609. SubMesh.CreateFromIndices(0, offset, Math.min(subdivisionSize, totalIndices - offset), this);
  610. offset += subdivisionSize;
  611. }
  612. this.synchronizeInstances();
  613. }
  614. /**
  615. * Sets the vertex data of the mesh geometry for the requested `kind`.
  616. * If the mesh has no geometry, a new Geometry object is set to the mesh and then passed this vertex data.
  617. * The `data` are either a numeric array either a Float32Array.
  618. * The parameter `updatable` is passed as is to the underlying Geometry object constructor (if initianilly none) or updater.
  619. * 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).
  620. * Note that a new underlying VertexBuffer object is created each call.
  621. * If the `kind` is the `PositionKind`, the mesh BoundingInfo is renewed, so the bounding box and sphere, and the mesh World Matrix is recomputed.
  622. *
  623. * Possible `kind` values :
  624. * - BABYLON.VertexBuffer.PositionKind
  625. * - BABYLON.VertexBuffer.UVKind
  626. * - BABYLON.VertexBuffer.UV2Kind
  627. * - BABYLON.VertexBuffer.UV3Kind
  628. * - BABYLON.VertexBuffer.UV4Kind
  629. * - BABYLON.VertexBuffer.UV5Kind
  630. * - BABYLON.VertexBuffer.UV6Kind
  631. * - BABYLON.VertexBuffer.ColorKind
  632. * - BABYLON.VertexBuffer.MatricesIndicesKind
  633. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  634. * - BABYLON.VertexBuffer.MatricesWeightsKind
  635. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  636. *
  637. * Returns the Mesh.
  638. */
  639. public setVerticesData(kind: string, data: number[] | Float32Array, updatable?: boolean, stride?: number): Mesh {
  640. if (!this._geometry) {
  641. var vertexData = new VertexData();
  642. vertexData.set(data, kind);
  643. var scene = this.getScene();
  644. new Geometry(Geometry.RandomId(), scene, vertexData, updatable, this);
  645. }
  646. else {
  647. this._geometry.setVerticesData(kind, data, updatable, stride);
  648. }
  649. return this;
  650. }
  651. public markVerticesDataAsUpdatable(kind: string, updatable = true) {
  652. if (this.getVertexBuffer(kind).isUpdatable() === updatable) {
  653. return;
  654. }
  655. this.setVerticesData(kind, this.getVerticesData(kind), updatable);
  656. }
  657. /**
  658. * Sets the mesh VertexBuffer.
  659. * Returns the Mesh.
  660. */
  661. public setVerticesBuffer(buffer: VertexBuffer): Mesh {
  662. if (!this._geometry) {
  663. var scene = this.getScene();
  664. new Geometry(Geometry.RandomId(), scene).applyToMesh(this);
  665. }
  666. this._geometry.setVerticesBuffer(buffer);
  667. return this;
  668. }
  669. /**
  670. * Updates the existing vertex data of the mesh geometry for the requested `kind`.
  671. * If the mesh has no geometry, it is simply returned as it is.
  672. * The `data` are either a numeric array either a Float32Array.
  673. * No new underlying VertexBuffer object is created.
  674. * 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.
  675. * If the parameter `makeItUnique` is true, a new global geometry is created from this positions and is set to the mesh.
  676. *
  677. * Possible `kind` values :
  678. * - BABYLON.VertexBuffer.PositionKind
  679. * - BABYLON.VertexBuffer.UVKind
  680. * - BABYLON.VertexBuffer.UV2Kind
  681. * - BABYLON.VertexBuffer.UV3Kind
  682. * - BABYLON.VertexBuffer.UV4Kind
  683. * - BABYLON.VertexBuffer.UV5Kind
  684. * - BABYLON.VertexBuffer.UV6Kind
  685. * - BABYLON.VertexBuffer.ColorKind
  686. * - BABYLON.VertexBuffer.MatricesIndicesKind
  687. * - BABYLON.VertexBuffer.MatricesIndicesExtraKind
  688. * - BABYLON.VertexBuffer.MatricesWeightsKind
  689. * - BABYLON.VertexBuffer.MatricesWeightsExtraKind
  690. *
  691. * Returns the Mesh.
  692. */
  693. public updateVerticesData(kind: string, data: number[] | Float32Array, updateExtends?: boolean, makeItUnique?: boolean): Mesh {
  694. if (!this._geometry) {
  695. return;
  696. }
  697. if (!makeItUnique) {
  698. this._geometry.updateVerticesData(kind, data, updateExtends);
  699. }
  700. else {
  701. this.makeGeometryUnique();
  702. this.updateVerticesData(kind, data, updateExtends, false);
  703. }
  704. return this;
  705. }
  706. /**
  707. * This method updates the vertex positions of an updatable mesh according to the `positionFunction` returned values.
  708. * tuto : http://doc.babylonjs.com/tutorials/How_to_dynamically_morph_a_mesh#other-shapes-updatemeshpositions
  709. * The parameter `positionFunction` is a simple JS function what is passed the mesh `positions` array. It doesn't need to return anything.
  710. * The parameter `computeNormals` is a boolean (default true) to enable/disable the mesh normal recomputation after the vertex position update.
  711. * Returns the Mesh.
  712. */
  713. public updateMeshPositions(positionFunction, computeNormals: boolean = true): Mesh {
  714. var positions = this.getVerticesData(VertexBuffer.PositionKind);
  715. positionFunction(positions);
  716. this.updateVerticesData(VertexBuffer.PositionKind, positions, false, false);
  717. if (computeNormals) {
  718. var indices = this.getIndices();
  719. var normals = this.getVerticesData(VertexBuffer.NormalKind);
  720. VertexData.ComputeNormals(positions, indices, normals);
  721. this.updateVerticesData(VertexBuffer.NormalKind, normals, false, false);
  722. }
  723. return this;
  724. }
  725. /**
  726. * Creates a un-shared specific occurence of the geometry for the mesh.
  727. * Returns the Mesh.
  728. */
  729. public makeGeometryUnique(): Mesh {
  730. if (!this._geometry) {
  731. return;
  732. }
  733. var oldGeometry = this._geometry;
  734. var geometry = this._geometry.copy(Geometry.RandomId());
  735. oldGeometry.releaseForMesh(this, true);
  736. geometry.applyToMesh(this);
  737. return this;
  738. }
  739. /**
  740. * Sets the mesh indices.
  741. * Expects an array populated with integers or a typed array (Int32Array, Uint32Array, Uint16Array).
  742. * If the mesh has no geometry, a new Geometry object is created and set to the mesh.
  743. * This method creates a new index buffer each call.
  744. * Returns the Mesh.
  745. */
  746. public setIndices(indices: IndicesArray, totalVertices?: number): Mesh {
  747. if (!this._geometry) {
  748. var vertexData = new VertexData();
  749. vertexData.indices = indices;
  750. var scene = this.getScene();
  751. new Geometry(Geometry.RandomId(), scene, vertexData, false, this);
  752. }
  753. else {
  754. this._geometry.setIndices(indices, totalVertices);
  755. }
  756. return this;
  757. }
  758. /**
  759. * Invert the geometry to move from a right handed system to a left handed one.
  760. * Returns the Mesh.
  761. */
  762. public toLeftHanded(): Mesh {
  763. if (!this._geometry) {
  764. return;
  765. }
  766. this._geometry.toLeftHanded();
  767. return this;
  768. }
  769. public _bind(subMesh: SubMesh, effect: Effect, fillMode: number): Mesh {
  770. var engine = this.getScene().getEngine();
  771. // Wireframe
  772. var indexToBind;
  773. if (this._unIndexed) {
  774. indexToBind = null;
  775. } else {
  776. switch (fillMode) {
  777. case Material.PointFillMode:
  778. indexToBind = null;
  779. break;
  780. case Material.WireFrameFillMode:
  781. indexToBind = subMesh.getLinesIndexBuffer(this.getIndices(), engine);
  782. break;
  783. default:
  784. case Material.TriangleFillMode:
  785. indexToBind = this._unIndexed ? null : this._geometry.getIndexBuffer();
  786. break;
  787. }
  788. }
  789. // VBOs
  790. this._geometry._bind(effect, indexToBind);
  791. return this;
  792. }
  793. public _draw(subMesh: SubMesh, fillMode: number, instancesCount?: number, alternate = false): Mesh {
  794. if (!this._geometry || !this._geometry.getVertexBuffers() || !this._geometry.getIndexBuffer()) {
  795. return this;
  796. }
  797. this.onBeforeDrawObservable.notifyObservers(this);
  798. let scene = this.getScene();
  799. let engine = scene.getEngine();
  800. // Draw order
  801. switch (fillMode) {
  802. case Material.PointFillMode:
  803. engine.drawPointClouds(subMesh.verticesStart, subMesh.verticesCount, instancesCount);
  804. break;
  805. case Material.WireFrameFillMode:
  806. if (this._unIndexed) {
  807. engine.drawUnIndexed(false, subMesh.verticesStart, subMesh.verticesCount, instancesCount);
  808. } else {
  809. engine.draw(false, 0, subMesh.linesIndexCount, instancesCount);
  810. }
  811. break;
  812. default:
  813. if (this._unIndexed) {
  814. engine.drawUnIndexed(true, subMesh.verticesStart, subMesh.verticesCount, instancesCount);
  815. } else {
  816. engine.draw(true, subMesh.indexStart, subMesh.indexCount, instancesCount);
  817. }
  818. }
  819. if (scene._isAlternateRenderingEnabled && !alternate) {
  820. let effect = subMesh.effect || this._effectiveMaterial.getEffect();
  821. scene._switchToAlternateCameraConfiguration(true);
  822. this._effectiveMaterial.bindView(effect);
  823. this._effectiveMaterial.bindViewProjection(effect);
  824. engine.setViewport(scene.activeCamera._alternateCamera.viewport);
  825. this._draw(subMesh, fillMode, instancesCount, true);
  826. scene._switchToAlternateCameraConfiguration(false);
  827. engine.setViewport(scene.activeCamera.viewport);
  828. }
  829. return this;
  830. }
  831. /**
  832. * Registers for this mesh a javascript function called just before the rendering process.
  833. * This function is passed the current mesh.
  834. * Return the Mesh.
  835. */
  836. public registerBeforeRender(func: (mesh: AbstractMesh) => void): Mesh {
  837. this.onBeforeRenderObservable.add(func);
  838. return this;
  839. }
  840. /**
  841. * Disposes a previously registered javascript function called before the rendering.
  842. * This function is passed the current mesh.
  843. * Returns the Mesh.
  844. */
  845. public unregisterBeforeRender(func: (mesh: AbstractMesh) => void): Mesh {
  846. this.onBeforeRenderObservable.removeCallback(func);
  847. return this;
  848. }
  849. /**
  850. * Registers for this mesh a javascript function called just after the rendering is complete.
  851. * This function is passed the current mesh.
  852. * Returns the Mesh.
  853. */
  854. public registerAfterRender(func: (mesh: AbstractMesh) => void): Mesh {
  855. this.onAfterRenderObservable.add(func);
  856. return this;
  857. }
  858. /**
  859. * Disposes a previously registered javascript function called after the rendering.
  860. * This function is passed the current mesh.
  861. * Return the Mesh.
  862. */
  863. public unregisterAfterRender(func: (mesh: AbstractMesh) => void): Mesh {
  864. this.onAfterRenderObservable.removeCallback(func);
  865. return this;
  866. }
  867. public _getInstancesRenderList(subMeshId: number): _InstancesBatch {
  868. var scene = this.getScene();
  869. this._batchCache.mustReturn = false;
  870. this._batchCache.renderSelf[subMeshId] = this.isEnabled() && this.isVisible;
  871. this._batchCache.visibleInstances[subMeshId] = null;
  872. if (this._visibleInstances) {
  873. var currentRenderId = scene.getRenderId();
  874. var defaultRenderId = (scene._isInIntermediateRendering() ? this._visibleInstances.intermediateDefaultRenderId : this._visibleInstances.defaultRenderId);
  875. this._batchCache.visibleInstances[subMeshId] = this._visibleInstances[currentRenderId];
  876. var selfRenderId = this._renderId;
  877. if (!this._batchCache.visibleInstances[subMeshId] && defaultRenderId) {
  878. this._batchCache.visibleInstances[subMeshId] = this._visibleInstances[defaultRenderId];
  879. currentRenderId = Math.max(defaultRenderId, currentRenderId);
  880. selfRenderId = Math.max(this._visibleInstances.selfDefaultRenderId, currentRenderId);
  881. }
  882. if (this._batchCache.visibleInstances[subMeshId] && this._batchCache.visibleInstances[subMeshId].length) {
  883. if (this._renderIdForInstances[subMeshId] === currentRenderId) {
  884. this._batchCache.mustReturn = true;
  885. return this._batchCache;
  886. }
  887. if (currentRenderId !== selfRenderId) {
  888. this._batchCache.renderSelf[subMeshId] = false;
  889. }
  890. }
  891. this._renderIdForInstances[subMeshId] = currentRenderId;
  892. }
  893. return this._batchCache;
  894. }
  895. public _renderWithInstances(subMesh: SubMesh, fillMode: number, batch: _InstancesBatch, effect: Effect, engine: Engine): Mesh {
  896. var visibleInstances = batch.visibleInstances[subMesh._id];
  897. var matricesCount = visibleInstances.length + 1;
  898. var bufferSize = matricesCount * 16 * 4;
  899. var currentInstancesBufferSize = this._instancesBufferSize;
  900. var instancesBuffer = this._instancesBuffer;
  901. while (this._instancesBufferSize < bufferSize) {
  902. this._instancesBufferSize *= 2;
  903. }
  904. if (!this._instancesData || currentInstancesBufferSize != this._instancesBufferSize) {
  905. this._instancesData = new Float32Array(this._instancesBufferSize / 4);
  906. }
  907. var offset = 0;
  908. var instancesCount = 0;
  909. var world = this.getWorldMatrix();
  910. if (batch.renderSelf[subMesh._id]) {
  911. world.copyToArray(this._instancesData, offset);
  912. offset += 16;
  913. instancesCount++;
  914. }
  915. if (visibleInstances) {
  916. for (var instanceIndex = 0; instanceIndex < visibleInstances.length; instanceIndex++) {
  917. var instance = visibleInstances[instanceIndex];
  918. instance.getWorldMatrix().copyToArray(this._instancesData, offset);
  919. offset += 16;
  920. instancesCount++;
  921. }
  922. }
  923. if (!instancesBuffer || currentInstancesBufferSize != this._instancesBufferSize) {
  924. if (instancesBuffer) {
  925. instancesBuffer.dispose();
  926. }
  927. instancesBuffer = new Buffer(engine, this._instancesData, true, 16, false, true);
  928. this._instancesBuffer = instancesBuffer;
  929. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world0", 0, 4));
  930. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world1", 4, 4));
  931. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world2", 8, 4));
  932. this.setVerticesBuffer(instancesBuffer.createVertexBuffer("world3", 12, 4));
  933. } else {
  934. instancesBuffer.updateDirectly(this._instancesData, 0, instancesCount);
  935. }
  936. this._bind(subMesh, effect, fillMode);
  937. this._draw(subMesh, fillMode, instancesCount);
  938. engine.unbindInstanceAttributes();
  939. return this;
  940. }
  941. public _processRendering(subMesh: SubMesh, effect: Effect, fillMode: number, batch: _InstancesBatch, hardwareInstancedRendering: boolean,
  942. onBeforeDraw: (isInstance: boolean, world: Matrix, effectiveMaterial?: Material) => void, effectiveMaterial?: Material): Mesh {
  943. var scene = this.getScene();
  944. var engine = scene.getEngine();
  945. if (hardwareInstancedRendering) {
  946. this._renderWithInstances(subMesh, fillMode, batch, effect, engine);
  947. } else {
  948. if (batch.renderSelf[subMesh._id]) {
  949. // Draw
  950. if (onBeforeDraw) {
  951. onBeforeDraw(false, this.getWorldMatrix(), effectiveMaterial);
  952. }
  953. this._draw(subMesh, fillMode, this._overridenInstanceCount);
  954. }
  955. if (batch.visibleInstances[subMesh._id]) {
  956. for (var instanceIndex = 0; instanceIndex < batch.visibleInstances[subMesh._id].length; instanceIndex++) {
  957. var instance = batch.visibleInstances[subMesh._id][instanceIndex];
  958. // World
  959. var world = instance.getWorldMatrix();
  960. if (onBeforeDraw) {
  961. onBeforeDraw(true, world, effectiveMaterial);
  962. }
  963. // Draw
  964. this._draw(subMesh, fillMode);
  965. }
  966. }
  967. }
  968. return this;
  969. }
  970. /**
  971. * Triggers the draw call for the mesh.
  972. * Usually, you don't need to call this method by your own because the mesh rendering is handled by the scene rendering manager.
  973. * Returns the Mesh.
  974. */
  975. public render(subMesh: SubMesh, enableAlphaMode: boolean): Mesh {
  976. this.checkOcclusionQuery();
  977. if (this._isOccluded) {
  978. return;
  979. }
  980. var scene = this.getScene();
  981. // Managing instances
  982. var batch = this._getInstancesRenderList(subMesh._id);
  983. if (batch.mustReturn) {
  984. return this;
  985. }
  986. // Checking geometry state
  987. if (!this._geometry || !this._geometry.getVertexBuffers() || !this._geometry.getIndexBuffer()) {
  988. return this;
  989. }
  990. var callbackIndex: number;
  991. this.onBeforeRenderObservable.notifyObservers(this);
  992. var engine = scene.getEngine();
  993. var hardwareInstancedRendering = (engine.getCaps().instancedArrays) && (batch.visibleInstances[subMesh._id] !== null) && (batch.visibleInstances[subMesh._id] !== undefined);
  994. // Material
  995. this._effectiveMaterial = subMesh.getMaterial();
  996. if (!this._effectiveMaterial) {
  997. return this;
  998. }
  999. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  1000. if (!this._effectiveMaterial.isReadyForSubMesh(this, subMesh, hardwareInstancedRendering)) {
  1001. return this;
  1002. }
  1003. } else if (!this._effectiveMaterial.isReady(this, hardwareInstancedRendering)) {
  1004. return this;
  1005. }
  1006. // Alpha mode
  1007. if (enableAlphaMode) {
  1008. engine.setAlphaMode(this._effectiveMaterial.alphaMode);
  1009. }
  1010. // Outline - step 1
  1011. var savedDepthWrite = engine.getDepthWrite();
  1012. if (this.renderOutline) {
  1013. engine.setDepthWrite(false);
  1014. scene.getOutlineRenderer().render(subMesh, batch);
  1015. engine.setDepthWrite(savedDepthWrite);
  1016. }
  1017. var effect: Effect;
  1018. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  1019. effect = subMesh.effect;
  1020. } else {
  1021. effect = this._effectiveMaterial.getEffect();
  1022. }
  1023. this._effectiveMaterial._preBind(effect);
  1024. // Bind
  1025. var fillMode = scene.forcePointsCloud ? Material.PointFillMode : (scene.forceWireframe ? Material.WireFrameFillMode : this._effectiveMaterial.fillMode);
  1026. if (!hardwareInstancedRendering) { // Binding will be done later because we need to add more info to the VB
  1027. this._bind(subMesh, effect, fillMode);
  1028. }
  1029. var world = this.getWorldMatrix();
  1030. if (this._effectiveMaterial.storeEffectOnSubMeshes) {
  1031. this._effectiveMaterial.bindForSubMesh(world, this, subMesh);
  1032. } else {
  1033. this._effectiveMaterial.bind(world, this);
  1034. }
  1035. // Draw
  1036. this._processRendering(subMesh, effect, fillMode, batch, hardwareInstancedRendering, this._onBeforeDraw, this._effectiveMaterial);
  1037. // Unbind
  1038. this._effectiveMaterial.unbind();
  1039. // Outline - step 2
  1040. if (this.renderOutline && savedDepthWrite) {
  1041. engine.setDepthWrite(true);
  1042. engine.setColorWrite(false);
  1043. scene.getOutlineRenderer().render(subMesh, batch);
  1044. engine.setColorWrite(true);
  1045. }
  1046. // Overlay
  1047. if (this.renderOverlay) {
  1048. var currentMode = engine.getAlphaMode();
  1049. engine.setAlphaMode(Engine.ALPHA_COMBINE);
  1050. scene.getOutlineRenderer().render(subMesh, batch, true);
  1051. engine.setAlphaMode(currentMode);
  1052. }
  1053. this.onAfterRenderObservable.notifyObservers(this);
  1054. return this;
  1055. }
  1056. private _onBeforeDraw(isInstance: boolean, world: Matrix, effectiveMaterial: Material): Mesh {
  1057. if (isInstance) {
  1058. effectiveMaterial.bindOnlyWorldMatrix(world);
  1059. }
  1060. return this;
  1061. }
  1062. /**
  1063. * Returns an array populated with ParticleSystem objects whose the mesh is the emitter.
  1064. */
  1065. public getEmittedParticleSystems(): IParticleSystem[] {
  1066. var results = new Array<IParticleSystem>();
  1067. for (var index = 0; index < this.getScene().particleSystems.length; index++) {
  1068. var particleSystem = this.getScene().particleSystems[index];
  1069. if (particleSystem.emitter === this) {
  1070. results.push(particleSystem);
  1071. }
  1072. }
  1073. return results;
  1074. }
  1075. /**
  1076. * Returns an array populated with ParticleSystem objects whose the mesh or its children are the emitter.
  1077. */
  1078. public getHierarchyEmittedParticleSystems(): IParticleSystem[] {
  1079. var results = new Array<IParticleSystem>();
  1080. var descendants = this.getDescendants();
  1081. descendants.push(this);
  1082. for (var index = 0; index < this.getScene().particleSystems.length; index++) {
  1083. var particleSystem = this.getScene().particleSystems[index];
  1084. let emitter: any = particleSystem.emitter;
  1085. if (emitter.position && descendants.indexOf(emitter) !== -1) {
  1086. results.push(particleSystem);
  1087. }
  1088. }
  1089. return results;
  1090. }
  1091. public _checkDelayState(): Mesh {
  1092. var scene = this.getScene();
  1093. if (this._geometry) {
  1094. this._geometry.load(scene);
  1095. }
  1096. else if (this.delayLoadState === Engine.DELAYLOADSTATE_NOTLOADED) {
  1097. this.delayLoadState = Engine.DELAYLOADSTATE_LOADING;
  1098. this._queueLoad(this, scene);
  1099. }
  1100. return this;
  1101. }
  1102. private _queueLoad(mesh: Mesh, scene: Scene): Mesh {
  1103. scene._addPendingData(mesh);
  1104. var getBinaryData = (this.delayLoadingFile.indexOf(".babylonbinarymeshdata") !== -1);
  1105. Tools.LoadFile(this.delayLoadingFile, data => {
  1106. if (data instanceof ArrayBuffer) {
  1107. this._delayLoadingFunction(data, this);
  1108. }
  1109. else {
  1110. this._delayLoadingFunction(JSON.parse(data), this);
  1111. }
  1112. this.instances.forEach(instance => {
  1113. instance._syncSubMeshes();
  1114. });
  1115. this.delayLoadState = Engine.DELAYLOADSTATE_LOADED;
  1116. scene._removePendingData(this);
  1117. }, () => { }, scene.database, getBinaryData);
  1118. return this;
  1119. }
  1120. /**
  1121. * Boolean, true is the mesh in the frustum defined by the Plane objects from the `frustumPlanes` array parameter.
  1122. */
  1123. public isInFrustum(frustumPlanes: Plane[]): boolean {
  1124. if (this.delayLoadState === Engine.DELAYLOADSTATE_LOADING) {
  1125. return false;
  1126. }
  1127. if (!super.isInFrustum(frustumPlanes)) {
  1128. return false;
  1129. }
  1130. this._checkDelayState();
  1131. return true;
  1132. }
  1133. /**
  1134. * Sets the mesh material by the material or multiMaterial `id` property.
  1135. * The material `id` is a string identifying the material or the multiMaterial.
  1136. * This method returns the Mesh.
  1137. */
  1138. public setMaterialByID(id: string): Mesh {
  1139. var materials = this.getScene().materials;
  1140. var index: number;
  1141. for (index = materials.length - 1; index > -1; index--) {
  1142. if (materials[index].id === id) {
  1143. this.material = materials[index];
  1144. return this;
  1145. }
  1146. }
  1147. // Multi
  1148. var multiMaterials = this.getScene().multiMaterials;
  1149. for (index = multiMaterials.length - 1; index > -1; index--) {
  1150. if (multiMaterials[index].id === id) {
  1151. this.material = multiMaterials[index];
  1152. return this;
  1153. }
  1154. }
  1155. return this;
  1156. }
  1157. /**
  1158. * Returns as a new array populated with the mesh material and/or skeleton, if any.
  1159. */
  1160. public getAnimatables(): IAnimatable[] {
  1161. var results = [];
  1162. if (this.material) {
  1163. results.push(this.material);
  1164. }
  1165. if (this.skeleton) {
  1166. results.push(this.skeleton);
  1167. }
  1168. return results;
  1169. }
  1170. /**
  1171. * Modifies the mesh geometry according to the passed transformation matrix.
  1172. * This method returns nothing but it really modifies the mesh even if it's originally not set as updatable.
  1173. * The mesh normals are modified accordingly the same transformation.
  1174. * tuto : http://doc.babylonjs.com/tutorials/How_Rotations_and_Translations_Work#baking-transform
  1175. * Note that, under the hood, this method sets a new VertexBuffer each call.
  1176. * Returns the Mesh.
  1177. */
  1178. public bakeTransformIntoVertices(transform: Matrix): Mesh {
  1179. // Position
  1180. if (!this.isVerticesDataPresent(VertexBuffer.PositionKind)) {
  1181. return this;
  1182. }
  1183. var submeshes = this.subMeshes.splice(0);
  1184. this._resetPointsArrayCache();
  1185. var data = this.getVerticesData(VertexBuffer.PositionKind);
  1186. var temp = [];
  1187. var index: number;
  1188. for (index = 0; index < data.length; index += 3) {
  1189. Vector3.TransformCoordinates(Vector3.FromArray(data, index), transform).toArray(temp, index);
  1190. }
  1191. this.setVerticesData(VertexBuffer.PositionKind, temp, this.getVertexBuffer(VertexBuffer.PositionKind).isUpdatable());
  1192. // Normals
  1193. if (!this.isVerticesDataPresent(VertexBuffer.NormalKind)) {
  1194. return this;
  1195. }
  1196. data = this.getVerticesData(VertexBuffer.NormalKind);
  1197. temp = [];
  1198. for (index = 0; index < data.length; index += 3) {
  1199. Vector3.TransformNormal(Vector3.FromArray(data, index), transform).normalize().toArray(temp, index);
  1200. }
  1201. this.setVerticesData(VertexBuffer.NormalKind, temp, this.getVertexBuffer(VertexBuffer.NormalKind).isUpdatable());
  1202. // flip faces?
  1203. if (transform.m[0] * transform.m[5] * transform.m[10] < 0) { this.flipFaces(); }
  1204. // Restore submeshes
  1205. this.releaseSubMeshes();
  1206. this.subMeshes = submeshes;
  1207. return this;
  1208. }
  1209. /**
  1210. * Modifies the mesh geometry according to its own current World Matrix.
  1211. * The mesh World Matrix is then reset.
  1212. * This method returns nothing but really modifies the mesh even if it's originally not set as updatable.
  1213. * tuto : tuto : http://doc.babylonjs.com/tutorials/How_Rotations_and_Translations_Work#baking-transform
  1214. * Note that, under the hood, this method sets a new VertexBuffer each call.
  1215. * Returns the Mesh.
  1216. */
  1217. public bakeCurrentTransformIntoVertices(): Mesh {
  1218. this.bakeTransformIntoVertices(this.computeWorldMatrix(true));
  1219. this.scaling.copyFromFloats(1, 1, 1);
  1220. this.position.copyFromFloats(0, 0, 0);
  1221. this.rotation.copyFromFloats(0, 0, 0);
  1222. //only if quaternion is already set
  1223. if (this.rotationQuaternion) {
  1224. this.rotationQuaternion = Quaternion.Identity();
  1225. }
  1226. this._worldMatrix = Matrix.Identity();
  1227. return this;
  1228. }
  1229. // Cache
  1230. public get _positions(): Vector3[] {
  1231. if (this._geometry) {
  1232. return this._geometry._positions;
  1233. }
  1234. return null;
  1235. }
  1236. public _resetPointsArrayCache(): Mesh {
  1237. if (this._geometry) {
  1238. this._geometry._resetPointsArrayCache();
  1239. }
  1240. return this;
  1241. }
  1242. public _generatePointsArray(): boolean {
  1243. if (this._geometry) {
  1244. return this._geometry._generatePointsArray();
  1245. }
  1246. return false;
  1247. }
  1248. /**
  1249. * Returns a new Mesh object generated from the current mesh properties.
  1250. * This method must not get confused with createInstance().
  1251. * The parameter `name` is a string, the name given to the new mesh.
  1252. * The optional parameter `newParent` can be any Node object (default `null`).
  1253. * The optional parameter `doNotCloneChildren` (default `false`) allows/denies the recursive cloning of the original mesh children if any.
  1254. * 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.
  1255. */
  1256. public clone(name: string, newParent?: Node, doNotCloneChildren?: boolean, clonePhysicsImpostor: boolean = true): Mesh {
  1257. return new Mesh(name, this.getScene(), newParent, this, doNotCloneChildren, clonePhysicsImpostor);
  1258. }
  1259. /**
  1260. * Disposes the mesh.
  1261. * This also frees the memory allocated under the hood to all the buffers used by WebGL.
  1262. */
  1263. public dispose(doNotRecurse?: boolean): void {
  1264. this.morphTargetManager = undefined;
  1265. if (this._geometry) {
  1266. this._geometry.releaseForMesh(this, true);
  1267. }
  1268. // Sources
  1269. var meshes = this.getScene().meshes;
  1270. meshes.forEach((mesh: Mesh) => {
  1271. if (mesh._source && mesh._source === this) {
  1272. mesh._source = null;
  1273. }
  1274. });
  1275. this._source = null;
  1276. // Instances
  1277. if (this._instancesBuffer) {
  1278. this._instancesBuffer.dispose();
  1279. this._instancesBuffer = null;
  1280. }
  1281. while (this.instances.length) {
  1282. this.instances[0].dispose();
  1283. }
  1284. // Highlight layers.
  1285. let highlightLayers = this.getScene().highlightLayers;
  1286. for (let i = 0; i < highlightLayers.length; i++) {
  1287. let highlightLayer = highlightLayers[i];
  1288. if (highlightLayer) {
  1289. highlightLayer.removeMesh(this);
  1290. highlightLayer.removeExcludedMesh(this);
  1291. }
  1292. }
  1293. super.dispose(doNotRecurse);
  1294. }
  1295. /**
  1296. * Modifies the mesh geometry according to a displacement map.
  1297. * 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.
  1298. * The mesh must be set as updatable. Its internal geometry is directly modified, no new buffer are allocated.
  1299. * This method returns nothing.
  1300. * The parameter `url` is a string, the URL from the image file is to be downloaded.
  1301. * The parameters `minHeight` and `maxHeight` are the lower and upper limits of the displacement.
  1302. * The parameter `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.
  1303. * The parameter `uvOffset` is an optional vector2 used to offset UV.
  1304. * The parameter `uvScale` is an optional vector2 used to scale UV.
  1305. *
  1306. * Returns the Mesh.
  1307. */
  1308. public applyDisplacementMap(url: string, minHeight: number, maxHeight: number, onSuccess?: (mesh: Mesh) => void, uvOffset?: Vector2, uvScale?: Vector2): Mesh {
  1309. var scene = this.getScene();
  1310. var onload = img => {
  1311. // Getting height map data
  1312. var canvas = document.createElement("canvas");
  1313. var context = canvas.getContext("2d");
  1314. var heightMapWidth = img.width;
  1315. var heightMapHeight = img.height;
  1316. canvas.width = heightMapWidth;
  1317. canvas.height = heightMapHeight;
  1318. context.drawImage(img, 0, 0);
  1319. // Create VertexData from map data
  1320. //Cast is due to wrong definition in lib.d.ts from ts 1.3 - https://github.com/Microsoft/TypeScript/issues/949
  1321. var buffer = <Uint8Array>(<any>context.getImageData(0, 0, heightMapWidth, heightMapHeight).data);
  1322. this.applyDisplacementMapFromBuffer(buffer, heightMapWidth, heightMapHeight, minHeight, maxHeight, uvOffset, uvScale);
  1323. //execute success callback, if set
  1324. if (onSuccess) {
  1325. onSuccess(this);
  1326. }
  1327. };
  1328. Tools.LoadImage(url, onload, () => { }, scene.database);
  1329. return this;
  1330. }
  1331. /**
  1332. * Modifies the mesh geometry according to a displacementMap buffer.
  1333. * 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.
  1334. * The mesh must be set as updatable. Its internal geometry is directly modified, no new buffer are allocated.
  1335. * This method returns nothing.
  1336. * The parameter `buffer` is a `Uint8Array` buffer containing series of `Uint8` lower than 255, the red, green, blue and alpha values of each successive pixel.
  1337. * The parameters `heightMapWidth` and `heightMapHeight` are positive integers to set the width and height of the buffer image.
  1338. * The parameters `minHeight` and `maxHeight` are the lower and upper limits of the displacement.
  1339. * The parameter `uvOffset` is an optional vector2 used to offset UV.
  1340. * The parameter `uvScale` is an optional vector2 used to scale UV.
  1341. *
  1342. * Returns the Mesh.
  1343. */
  1344. public applyDisplacementMapFromBuffer(buffer: Uint8Array, heightMapWidth: number, heightMapHeight: number, minHeight: number, maxHeight: number, uvOffset?: Vector2, uvScale?: Vector2): Mesh {
  1345. if (!this.isVerticesDataPresent(VertexBuffer.PositionKind)
  1346. || !this.isVerticesDataPresent(VertexBuffer.NormalKind)
  1347. || !this.isVerticesDataPresent(VertexBuffer.UVKind)) {
  1348. Tools.Warn("Cannot call applyDisplacementMap: Given mesh is not complete. Position, Normal or UV are missing");
  1349. return this;
  1350. }
  1351. var positions = this.getVerticesData(VertexBuffer.PositionKind);
  1352. var normals = this.getVerticesData(VertexBuffer.NormalKind);
  1353. var uvs = this.getVerticesData(VertexBuffer.UVKind);
  1354. var position = Vector3.Zero();
  1355. var normal = Vector3.Zero();
  1356. var uv = Vector2.Zero();
  1357. uvOffset = uvOffset || Vector2.Zero();
  1358. uvScale = uvScale || new Vector2(1, 1);
  1359. for (var index = 0; index < positions.length; index += 3) {
  1360. Vector3.FromArrayToRef(positions, index, position);
  1361. Vector3.FromArrayToRef(normals, index, normal);
  1362. Vector2.FromArrayToRef(uvs, (index / 3) * 2, uv);
  1363. // Compute height
  1364. var u = ((Math.abs(uv.x * uvScale.x + uvOffset.x) * heightMapWidth) % heightMapWidth) | 0;
  1365. var v = ((Math.abs(uv.y * uvScale.y + uvOffset.y) * heightMapHeight) % heightMapHeight) | 0;
  1366. var pos = (u + v * heightMapWidth) * 4;
  1367. var r = buffer[pos] / 255.0;
  1368. var g = buffer[pos + 1] / 255.0;
  1369. var b = buffer[pos + 2] / 255.0;
  1370. var gradient = r * 0.3 + g * 0.59 + b * 0.11;
  1371. normal.normalize();
  1372. normal.scaleInPlace(minHeight + (maxHeight - minHeight) * gradient);
  1373. position = position.add(normal);
  1374. position.toArray(positions, index);
  1375. }
  1376. VertexData.ComputeNormals(positions, this.getIndices(), normals);
  1377. this.updateVerticesData(VertexBuffer.PositionKind, positions);
  1378. this.updateVerticesData(VertexBuffer.NormalKind, normals);
  1379. return this;
  1380. }
  1381. /**
  1382. * Modify the mesh to get a flat shading rendering.
  1383. * This means each mesh facet will then have its own normals. Usually new vertices are added in the mesh geometry to get this result.
  1384. * This method returns the Mesh.
  1385. * Warning : the mesh is really modified even if not set originally as updatable and, under the hood, a new VertexBuffer is allocated.
  1386. */
  1387. public convertToFlatShadedMesh(): Mesh {
  1388. /// <summary>Update normals and vertices to get a flat shading rendering.</summary>
  1389. /// <summary>Warning: This may imply adding vertices to the mesh in order to get exactly 3 vertices per face</summary>
  1390. var kinds = this.getVerticesDataKinds();
  1391. var vbs = [];
  1392. var data = [];
  1393. var newdata = [];
  1394. var updatableNormals = false;
  1395. var kindIndex: number;
  1396. var kind: string;
  1397. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1398. kind = kinds[kindIndex];
  1399. var vertexBuffer = this.getVertexBuffer(kind);
  1400. if (kind === VertexBuffer.NormalKind) {
  1401. updatableNormals = vertexBuffer.isUpdatable();
  1402. kinds.splice(kindIndex, 1);
  1403. kindIndex--;
  1404. continue;
  1405. }
  1406. vbs[kind] = vertexBuffer;
  1407. data[kind] = vbs[kind].getData();
  1408. newdata[kind] = [];
  1409. }
  1410. // Save previous submeshes
  1411. var previousSubmeshes = this.subMeshes.slice(0);
  1412. var indices = this.getIndices();
  1413. var totalIndices = this.getTotalIndices();
  1414. // Generating unique vertices per face
  1415. var index: number;
  1416. for (index = 0; index < totalIndices; index++) {
  1417. var vertexIndex = indices[index];
  1418. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1419. kind = kinds[kindIndex];
  1420. var stride = vbs[kind].getStrideSize();
  1421. for (var offset = 0; offset < stride; offset++) {
  1422. newdata[kind].push(data[kind][vertexIndex * stride + offset]);
  1423. }
  1424. }
  1425. }
  1426. // Updating faces & normal
  1427. var normals = [];
  1428. var positions = newdata[VertexBuffer.PositionKind];
  1429. for (index = 0; index < totalIndices; index += 3) {
  1430. indices[index] = index;
  1431. indices[index + 1] = index + 1;
  1432. indices[index + 2] = index + 2;
  1433. var p1 = Vector3.FromArray(positions, index * 3);
  1434. var p2 = Vector3.FromArray(positions, (index + 1) * 3);
  1435. var p3 = Vector3.FromArray(positions, (index + 2) * 3);
  1436. var p1p2 = p1.subtract(p2);
  1437. var p3p2 = p3.subtract(p2);
  1438. var normal = Vector3.Normalize(Vector3.Cross(p1p2, p3p2));
  1439. // Store same normals for every vertex
  1440. for (var localIndex = 0; localIndex < 3; localIndex++) {
  1441. normals.push(normal.x);
  1442. normals.push(normal.y);
  1443. normals.push(normal.z);
  1444. }
  1445. }
  1446. this.setIndices(indices);
  1447. this.setVerticesData(VertexBuffer.NormalKind, normals, updatableNormals);
  1448. // Updating vertex buffers
  1449. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1450. kind = kinds[kindIndex];
  1451. this.setVerticesData(kind, newdata[kind], vbs[kind].isUpdatable());
  1452. }
  1453. // Updating submeshes
  1454. this.releaseSubMeshes();
  1455. for (var submeshIndex = 0; submeshIndex < previousSubmeshes.length; submeshIndex++) {
  1456. var previousOne = previousSubmeshes[submeshIndex];
  1457. var subMesh = new SubMesh(previousOne.materialIndex, previousOne.indexStart, previousOne.indexCount, previousOne.indexStart, previousOne.indexCount, this);
  1458. }
  1459. this.synchronizeInstances();
  1460. return this;
  1461. }
  1462. /**
  1463. * This method removes all the mesh indices and add new vertices (duplication) in order to unfold facets into buffers.
  1464. * In other words, more vertices, no more indices and a single bigger VBO.
  1465. * The mesh is really modified even if not set originally as updatable. Under the hood, a new VertexBuffer is allocated.
  1466. * Returns the Mesh.
  1467. */
  1468. public convertToUnIndexedMesh(): Mesh {
  1469. /// <summary>Remove indices by unfolding faces into buffers</summary>
  1470. /// <summary>Warning: This implies adding vertices to the mesh in order to get exactly 3 vertices per face</summary>
  1471. var kinds = this.getVerticesDataKinds();
  1472. var vbs = [];
  1473. var data = [];
  1474. var newdata = [];
  1475. var updatableNormals = false;
  1476. var kindIndex: number;
  1477. var kind: string;
  1478. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1479. kind = kinds[kindIndex];
  1480. var vertexBuffer = this.getVertexBuffer(kind);
  1481. vbs[kind] = vertexBuffer;
  1482. data[kind] = vbs[kind].getData();
  1483. newdata[kind] = [];
  1484. }
  1485. // Save previous submeshes
  1486. var previousSubmeshes = this.subMeshes.slice(0);
  1487. var indices = this.getIndices();
  1488. var totalIndices = this.getTotalIndices();
  1489. // Generating unique vertices per face
  1490. var index: number;
  1491. for (index = 0; index < totalIndices; index++) {
  1492. var vertexIndex = indices[index];
  1493. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1494. kind = kinds[kindIndex];
  1495. var stride = vbs[kind].getStrideSize();
  1496. for (var offset = 0; offset < stride; offset++) {
  1497. newdata[kind].push(data[kind][vertexIndex * stride + offset]);
  1498. }
  1499. }
  1500. }
  1501. // Updating indices
  1502. for (index = 0; index < totalIndices; index += 3) {
  1503. indices[index] = index;
  1504. indices[index + 1] = index + 1;
  1505. indices[index + 2] = index + 2;
  1506. }
  1507. this.setIndices(indices);
  1508. // Updating vertex buffers
  1509. for (kindIndex = 0; kindIndex < kinds.length; kindIndex++) {
  1510. kind = kinds[kindIndex];
  1511. this.setVerticesData(kind, newdata[kind], vbs[kind].isUpdatable());
  1512. }
  1513. // Updating submeshes
  1514. this.releaseSubMeshes();
  1515. for (var submeshIndex = 0; submeshIndex < previousSubmeshes.length; submeshIndex++) {
  1516. var previousOne = previousSubmeshes[submeshIndex];
  1517. var subMesh = new SubMesh(previousOne.materialIndex, previousOne.indexStart, previousOne.indexCount, previousOne.indexStart, previousOne.indexCount, this);
  1518. }
  1519. this._unIndexed = true;
  1520. this.synchronizeInstances();
  1521. return this;
  1522. }
  1523. /**
  1524. * Inverses facet orientations and inverts also the normals with `flipNormals` (default `false`) if true.
  1525. * This method returns the Mesh.
  1526. * Warning : the mesh is really modified even if not set originally as updatable. A new VertexBuffer is created under the hood each call.
  1527. */
  1528. public flipFaces(flipNormals: boolean = false): Mesh {
  1529. var vertex_data = VertexData.ExtractFromMesh(this);
  1530. var i: number;
  1531. if (flipNormals && this.isVerticesDataPresent(VertexBuffer.NormalKind)) {
  1532. for (i = 0; i < vertex_data.normals.length; i++) {
  1533. vertex_data.normals[i] *= -1;
  1534. }
  1535. }
  1536. var temp;
  1537. for (i = 0; i < vertex_data.indices.length; i += 3) {
  1538. // reassign indices
  1539. temp = vertex_data.indices[i + 1];
  1540. vertex_data.indices[i + 1] = vertex_data.indices[i + 2];
  1541. vertex_data.indices[i + 2] = temp;
  1542. }
  1543. vertex_data.applyToMesh(this);
  1544. return this;
  1545. }
  1546. // Instances
  1547. /**
  1548. * Creates a new InstancedMesh object from the mesh model.
  1549. * An instance shares the same properties and the same material than its model.
  1550. * Only these properties of each instance can then be set individually :
  1551. * - position
  1552. * - rotation
  1553. * - rotationQuaternion
  1554. * - setPivotMatrix
  1555. * - scaling
  1556. * tuto : http://doc.babylonjs.com/tutorials/How_to_use_Instances
  1557. * Warning : this method is not supported for Line mesh and LineSystem
  1558. */
  1559. public createInstance(name: string): InstancedMesh {
  1560. return new InstancedMesh(name, this);
  1561. }
  1562. /**
  1563. * Synchronises all the mesh instance submeshes to the current mesh submeshes, if any.
  1564. * After this call, all the mesh instances have the same submeshes than the current mesh.
  1565. * This method returns the Mesh.
  1566. */
  1567. public synchronizeInstances(): Mesh {
  1568. for (var instanceIndex = 0; instanceIndex < this.instances.length; instanceIndex++) {
  1569. var instance = this.instances[instanceIndex];
  1570. instance._syncSubMeshes();
  1571. }
  1572. return this;
  1573. }
  1574. /**
  1575. * Simplify the mesh according to the given array of settings.
  1576. * Function will return immediately and will simplify async. It returns the Mesh.
  1577. * @param settings a collection of simplification settings.
  1578. * @param parallelProcessing should all levels calculate parallel or one after the other.
  1579. * @param type the type of simplification to run.
  1580. * @param successCallback optional success callback to be called after the simplification finished processing all settings.
  1581. */
  1582. public simplify(settings: Array<ISimplificationSettings>, parallelProcessing: boolean = true, simplificationType: SimplificationType = SimplificationType.QUADRATIC, successCallback?: (mesh?: Mesh, submeshIndex?: number) => void): Mesh {
  1583. this.getScene().simplificationQueue.addTask({
  1584. settings: settings,
  1585. parallelProcessing: parallelProcessing,
  1586. mesh: this,
  1587. simplificationType: simplificationType,
  1588. successCallback: successCallback
  1589. });
  1590. return this;
  1591. }
  1592. /**
  1593. * Optimization of the mesh's indices, in case a mesh has duplicated vertices.
  1594. * The function will only reorder the indices and will not remove unused vertices to avoid problems with submeshes.
  1595. * This should be used together with the simplification to avoid disappearing triangles.
  1596. * Returns the Mesh.
  1597. * @param successCallback an optional success callback to be called after the optimization finished.
  1598. */
  1599. public optimizeIndices(successCallback?: (mesh?: Mesh) => void): Mesh {
  1600. var indices = this.getIndices();
  1601. var positions = this.getVerticesData(VertexBuffer.PositionKind);
  1602. var vectorPositions = [];
  1603. for (var pos = 0; pos < positions.length; pos = pos + 3) {
  1604. vectorPositions.push(Vector3.FromArray(positions, pos));
  1605. }
  1606. var dupes = [];
  1607. AsyncLoop.SyncAsyncForLoop(vectorPositions.length, 40, (iteration) => {
  1608. var realPos = vectorPositions.length - 1 - iteration;
  1609. var testedPosition = vectorPositions[realPos];
  1610. for (var j = 0; j < realPos; ++j) {
  1611. var againstPosition = vectorPositions[j];
  1612. if (testedPosition.equals(againstPosition)) {
  1613. dupes[realPos] = j;
  1614. break;
  1615. }
  1616. }
  1617. }, () => {
  1618. for (var i = 0; i < indices.length; ++i) {
  1619. indices[i] = dupes[indices[i]] || indices[i];
  1620. }
  1621. //indices are now reordered
  1622. var originalSubMeshes = this.subMeshes.slice(0);
  1623. this.setIndices(indices);
  1624. this.subMeshes = originalSubMeshes;
  1625. if (successCallback) {
  1626. successCallback(this);
  1627. }
  1628. });
  1629. return this;
  1630. }
  1631. public serialize(serializationObject: any): void {
  1632. serializationObject.name = this.name;
  1633. serializationObject.id = this.id;
  1634. serializationObject.type = this.getClassName();
  1635. if (Tags && Tags.HasTags(this)) {
  1636. serializationObject.tags = Tags.GetTags(this);
  1637. }
  1638. serializationObject.position = this.position.asArray();
  1639. if (this.rotationQuaternion) {
  1640. serializationObject.rotationQuaternion = this.rotationQuaternion.asArray();
  1641. } else if (this.rotation) {
  1642. serializationObject.rotation = this.rotation.asArray();
  1643. }
  1644. serializationObject.scaling = this.scaling.asArray();
  1645. serializationObject.localMatrix = this.getPivotMatrix().asArray();
  1646. serializationObject.isEnabled = this.isEnabled();
  1647. serializationObject.isVisible = this.isVisible;
  1648. serializationObject.infiniteDistance = this.infiniteDistance;
  1649. serializationObject.pickable = this.isPickable;
  1650. serializationObject.receiveShadows = this.receiveShadows;
  1651. serializationObject.billboardMode = this.billboardMode;
  1652. serializationObject.visibility = this.visibility;
  1653. serializationObject.checkCollisions = this.checkCollisions;
  1654. serializationObject.isBlocker = this.isBlocker;
  1655. // Parent
  1656. if (this.parent) {
  1657. serializationObject.parentId = this.parent.id;
  1658. }
  1659. // Geometry
  1660. var geometry = this._geometry;
  1661. if (geometry) {
  1662. var geometryId = geometry.id;
  1663. serializationObject.geometryId = geometryId;
  1664. // SubMeshes
  1665. serializationObject.subMeshes = [];
  1666. for (var subIndex = 0; subIndex < this.subMeshes.length; subIndex++) {
  1667. var subMesh = this.subMeshes[subIndex];
  1668. serializationObject.subMeshes.push({
  1669. materialIndex: subMesh.materialIndex,
  1670. verticesStart: subMesh.verticesStart,
  1671. verticesCount: subMesh.verticesCount,
  1672. indexStart: subMesh.indexStart,
  1673. indexCount: subMesh.indexCount
  1674. });
  1675. }
  1676. }
  1677. // Material
  1678. if (this.material) {
  1679. serializationObject.materialId = this.material.id;
  1680. } else {
  1681. this.material = null;
  1682. }
  1683. // Morph targets
  1684. if (this.morphTargetManager) {
  1685. serializationObject.morphTargetManagerId = this.morphTargetManager.uniqueId;
  1686. }
  1687. // Skeleton
  1688. if (this.skeleton) {
  1689. serializationObject.skeletonId = this.skeleton.id;
  1690. }
  1691. // Physics
  1692. //TODO implement correct serialization for physics impostors.
  1693. if (this.getPhysicsImpostor()) {
  1694. var impostor = this.getPhysicsImpostor();
  1695. serializationObject.physicsMass = impostor.getParam("mass");
  1696. serializationObject.physicsFriction = impostor.getParam("friction");
  1697. serializationObject.physicsRestitution = impostor.getParam("mass");
  1698. serializationObject.physicsImpostor = this.getPhysicsImpostor().type;
  1699. }
  1700. // Metadata
  1701. if (this.metadata) {
  1702. serializationObject.metadata = this.metadata;
  1703. }
  1704. // Instances
  1705. serializationObject.instances = [];
  1706. for (var index = 0; index < this.instances.length; index++) {
  1707. var instance = this.instances[index];
  1708. var serializationInstance: any = {
  1709. name: instance.name,
  1710. position: instance.position.asArray(),
  1711. scaling: instance.scaling.asArray()
  1712. };
  1713. if (instance.rotationQuaternion) {
  1714. serializationInstance.rotationQuaternion = instance.rotationQuaternion.asArray();
  1715. } else if (instance.rotation) {
  1716. serializationInstance.rotation = instance.rotation.asArray();
  1717. }
  1718. serializationObject.instances.push(serializationInstance);
  1719. // Animations
  1720. Animation.AppendSerializedAnimations(instance, serializationInstance);
  1721. serializationInstance.ranges = instance.serializeAnimationRanges();
  1722. }
  1723. //
  1724. // Animations
  1725. Animation.AppendSerializedAnimations(this, serializationObject);
  1726. serializationObject.ranges = this.serializeAnimationRanges();
  1727. // Layer mask
  1728. serializationObject.layerMask = this.layerMask;
  1729. // Alpha
  1730. serializationObject.alphaIndex = this.alphaIndex;
  1731. serializationObject.hasVertexAlpha = this.hasVertexAlpha;
  1732. // Overlay
  1733. serializationObject.overlayAlpha = this.overlayAlpha;
  1734. serializationObject.overlayColor = this.overlayColor.asArray();
  1735. serializationObject.renderOverlay = this.renderOverlay;
  1736. // Fog
  1737. serializationObject.applyFog = this.applyFog;
  1738. // Action Manager
  1739. if (this.actionManager) {
  1740. serializationObject.actions = this.actionManager.serialize(this.name);
  1741. }
  1742. }
  1743. public _syncGeometryWithMorphTargetManager() {
  1744. if (!this.geometry) {
  1745. return;
  1746. }
  1747. this._markSubMeshesAsAttributesDirty();
  1748. if (this._morphTargetManager && this._morphTargetManager.vertexCount) {
  1749. if (this._morphTargetManager.vertexCount !== this.getTotalVertices()) {
  1750. Tools.Error("Mesh is incompatible with morph targets. Targets and mesh must all have the same vertices count.");
  1751. this.morphTargetManager = undefined;
  1752. return;
  1753. }
  1754. for (var index = 0; index < this.morphTargetManager.numInfluencers; index++) {
  1755. var morphTarget = this.morphTargetManager.getActiveTarget(index);
  1756. this.geometry.setVerticesData(VertexBuffer.PositionKind + index, morphTarget.getPositions(), false, 3);
  1757. if (morphTarget.hasNormals) {
  1758. this.geometry.setVerticesData(VertexBuffer.NormalKind + index, morphTarget.getNormals(), false, 3);
  1759. }
  1760. if (morphTarget.hasTangents) {
  1761. this.geometry.setVerticesData(VertexBuffer.TangentKind + index, morphTarget.getTangents(), false, 3);
  1762. }
  1763. }
  1764. } else {
  1765. var index = 0;
  1766. // Positions
  1767. while (this.geometry.isVerticesDataPresent(VertexBuffer.PositionKind + index)) {
  1768. this.geometry.removeVerticesData(VertexBuffer.PositionKind + index);
  1769. if (this.geometry.isVerticesDataPresent(VertexBuffer.NormalKind + index)) {
  1770. this.geometry.removeVerticesData(VertexBuffer.NormalKind + index);
  1771. }
  1772. if (this.geometry.isVerticesDataPresent(VertexBuffer.TangentKind + index)) {
  1773. this.geometry.removeVerticesData(VertexBuffer.TangentKind + index);
  1774. }
  1775. index++;
  1776. }
  1777. }
  1778. }
  1779. // Statics
  1780. /**
  1781. * Returns a new Mesh object what is a deep copy of the passed mesh.
  1782. * The parameter `parsedMesh` is the mesh to be copied.
  1783. * The parameter `rootUrl` is a string, it's the root URL to prefix the `delayLoadingFile` property with
  1784. */
  1785. public static Parse(parsedMesh: any, scene: Scene, rootUrl: string): Mesh {
  1786. var mesh: Mesh;
  1787. if (parsedMesh.type && parsedMesh.type === "GroundMesh") {
  1788. mesh = GroundMesh.Parse(parsedMesh, scene);
  1789. } else {
  1790. mesh = new Mesh(parsedMesh.name, scene);
  1791. }
  1792. mesh.id = parsedMesh.id;
  1793. if (Tags) {
  1794. Tags.AddTagsTo(mesh, parsedMesh.tags);
  1795. }
  1796. mesh.position = Vector3.FromArray(parsedMesh.position);
  1797. if (parsedMesh.metadata !== undefined) {
  1798. mesh.metadata = parsedMesh.metadata;
  1799. }
  1800. if (parsedMesh.rotationQuaternion) {
  1801. mesh.rotationQuaternion = Quaternion.FromArray(parsedMesh.rotationQuaternion);
  1802. } else if (parsedMesh.rotation) {
  1803. mesh.rotation = Vector3.FromArray(parsedMesh.rotation);
  1804. }
  1805. mesh.scaling = Vector3.FromArray(parsedMesh.scaling);
  1806. if (parsedMesh.localMatrix) {
  1807. mesh.setPivotMatrix(Matrix.FromArray(parsedMesh.localMatrix));
  1808. } else if (parsedMesh.pivotMatrix) {
  1809. mesh.setPivotMatrix(Matrix.FromArray(parsedMesh.pivotMatrix));
  1810. }
  1811. mesh.setEnabled(parsedMesh.isEnabled);
  1812. mesh.isVisible = parsedMesh.isVisible;
  1813. mesh.infiniteDistance = parsedMesh.infiniteDistance;
  1814. mesh.showBoundingBox = parsedMesh.showBoundingBox;
  1815. mesh.showSubMeshesBoundingBox = parsedMesh.showSubMeshesBoundingBox;
  1816. if (parsedMesh.applyFog !== undefined) {
  1817. mesh.applyFog = parsedMesh.applyFog;
  1818. }
  1819. if (parsedMesh.pickable !== undefined) {
  1820. mesh.isPickable = parsedMesh.pickable;
  1821. }
  1822. if (parsedMesh.alphaIndex !== undefined) {
  1823. mesh.alphaIndex = parsedMesh.alphaIndex;
  1824. }
  1825. mesh.receiveShadows = parsedMesh.receiveShadows;
  1826. mesh.billboardMode = parsedMesh.billboardMode;
  1827. if (parsedMesh.visibility !== undefined) {
  1828. mesh.visibility = parsedMesh.visibility;
  1829. }
  1830. mesh.checkCollisions = parsedMesh.checkCollisions;
  1831. if (parsedMesh.isBlocker !== undefined) {
  1832. mesh.isBlocker = parsedMesh.isBlocker;
  1833. }
  1834. mesh._shouldGenerateFlatShading = parsedMesh.useFlatShading;
  1835. // freezeWorldMatrix
  1836. if (parsedMesh.freezeWorldMatrix) {
  1837. mesh._waitingFreezeWorldMatrix = parsedMesh.freezeWorldMatrix;
  1838. }
  1839. // Parent
  1840. if (parsedMesh.parentId) {
  1841. mesh._waitingParentId = parsedMesh.parentId;
  1842. }
  1843. // Actions
  1844. if (parsedMesh.actions !== undefined) {
  1845. mesh._waitingActions = parsedMesh.actions;
  1846. }
  1847. // Overlay
  1848. if (parsedMesh.overlayAlpha !== undefined) {
  1849. mesh.overlayAlpha = parsedMesh.overlayAlpha;
  1850. }
  1851. if (parsedMesh.overlayColor !== undefined) {
  1852. mesh.overlayColor = Color3.FromArray(parsedMesh.overlayColor);
  1853. }
  1854. if (parsedMesh.renderOverlay !== undefined) {
  1855. mesh.renderOverlay = parsedMesh.renderOverlay;
  1856. }
  1857. // Geometry
  1858. mesh.hasVertexAlpha = parsedMesh.hasVertexAlpha;
  1859. if (parsedMesh.delayLoadingFile) {
  1860. mesh.delayLoadState = Engine.DELAYLOADSTATE_NOTLOADED;
  1861. mesh.delayLoadingFile = rootUrl + parsedMesh.delayLoadingFile;
  1862. mesh._boundingInfo = new BoundingInfo(Vector3.FromArray(parsedMesh.boundingBoxMinimum), Vector3.FromArray(parsedMesh.boundingBoxMaximum));
  1863. if (parsedMesh._binaryInfo) {
  1864. mesh._binaryInfo = parsedMesh._binaryInfo;
  1865. }
  1866. mesh._delayInfo = [];
  1867. if (parsedMesh.hasUVs) {
  1868. mesh._delayInfo.push(VertexBuffer.UVKind);
  1869. }
  1870. if (parsedMesh.hasUVs2) {
  1871. mesh._delayInfo.push(VertexBuffer.UV2Kind);
  1872. }
  1873. if (parsedMesh.hasUVs3) {
  1874. mesh._delayInfo.push(VertexBuffer.UV3Kind);
  1875. }
  1876. if (parsedMesh.hasUVs4) {
  1877. mesh._delayInfo.push(VertexBuffer.UV4Kind);
  1878. }
  1879. if (parsedMesh.hasUVs5) {
  1880. mesh._delayInfo.push(VertexBuffer.UV5Kind);
  1881. }
  1882. if (parsedMesh.hasUVs6) {
  1883. mesh._delayInfo.push(VertexBuffer.UV6Kind);
  1884. }
  1885. if (parsedMesh.hasColors) {
  1886. mesh._delayInfo.push(VertexBuffer.ColorKind);
  1887. }
  1888. if (parsedMesh.hasMatricesIndices) {
  1889. mesh._delayInfo.push(VertexBuffer.MatricesIndicesKind);
  1890. }
  1891. if (parsedMesh.hasMatricesWeights) {
  1892. mesh._delayInfo.push(VertexBuffer.MatricesWeightsKind);
  1893. }
  1894. mesh._delayLoadingFunction = Geometry.ImportGeometry;
  1895. if (SceneLoader.ForceFullSceneLoadingForIncremental) {
  1896. mesh._checkDelayState();
  1897. }
  1898. } else {
  1899. Geometry.ImportGeometry(parsedMesh, mesh);
  1900. }
  1901. // Material
  1902. if (parsedMesh.materialId) {
  1903. mesh.setMaterialByID(parsedMesh.materialId);
  1904. } else {
  1905. mesh.material = null;
  1906. }
  1907. // Morph targets
  1908. if (parsedMesh.morphTargetManagerId > -1) {
  1909. mesh.morphTargetManager = scene.getMorphTargetManagerById(parsedMesh.morphTargetManagerId);
  1910. }
  1911. // Skeleton
  1912. if (parsedMesh.skeletonId > -1) {
  1913. mesh.skeleton = scene.getLastSkeletonByID(parsedMesh.skeletonId);
  1914. if (parsedMesh.numBoneInfluencers) {
  1915. mesh.numBoneInfluencers = parsedMesh.numBoneInfluencers;
  1916. }
  1917. }
  1918. // Animations
  1919. if (parsedMesh.animations) {
  1920. for (var animationIndex = 0; animationIndex < parsedMesh.animations.length; animationIndex++) {
  1921. var parsedAnimation = parsedMesh.animations[animationIndex];
  1922. mesh.animations.push(Animation.Parse(parsedAnimation));
  1923. }
  1924. Node.ParseAnimationRanges(mesh, parsedMesh, scene);
  1925. }
  1926. if (parsedMesh.autoAnimate) {
  1927. scene.beginAnimation(mesh, parsedMesh.autoAnimateFrom, parsedMesh.autoAnimateTo, parsedMesh.autoAnimateLoop, parsedMesh.autoAnimateSpeed || 1.0);
  1928. }
  1929. // Layer Mask
  1930. if (parsedMesh.layerMask && (!isNaN(parsedMesh.layerMask))) {
  1931. mesh.layerMask = Math.abs(parseInt(parsedMesh.layerMask));
  1932. } else {
  1933. mesh.layerMask = 0x0FFFFFFF;
  1934. }
  1935. // Physics
  1936. if (parsedMesh.physicsImpostor) {
  1937. mesh.physicsImpostor = new BABYLON.PhysicsImpostor(mesh, parsedMesh.physicsImpostor, {
  1938. mass: parsedMesh.physicsMass,
  1939. friction: parsedMesh.physicsFriction,
  1940. restitution: parsedMesh.physicsRestitution
  1941. }, scene);
  1942. }
  1943. // Instances
  1944. if (parsedMesh.instances) {
  1945. for (var index = 0; index < parsedMesh.instances.length; index++) {
  1946. var parsedInstance = parsedMesh.instances[index];
  1947. var instance = mesh.createInstance(parsedInstance.name);
  1948. if (Tags) {
  1949. Tags.AddTagsTo(instance, parsedInstance.tags);
  1950. }
  1951. instance.position = Vector3.FromArray(parsedInstance.position);
  1952. if (parsedInstance.parentId) {
  1953. instance._waitingParentId = parsedInstance.parentId;
  1954. }
  1955. if (parsedInstance.rotationQuaternion) {
  1956. instance.rotationQuaternion = Quaternion.FromArray(parsedInstance.rotationQuaternion);
  1957. } else if (parsedInstance.rotation) {
  1958. instance.rotation = Vector3.FromArray(parsedInstance.rotation);
  1959. }
  1960. instance.scaling = Vector3.FromArray(parsedInstance.scaling);
  1961. instance.checkCollisions = mesh.checkCollisions;
  1962. if (parsedMesh.animations) {
  1963. for (animationIndex = 0; animationIndex < parsedMesh.animations.length; animationIndex++) {
  1964. parsedAnimation = parsedMesh.animations[animationIndex];
  1965. instance.animations.push(Animation.Parse(parsedAnimation));
  1966. }
  1967. Node.ParseAnimationRanges(instance, parsedMesh, scene);
  1968. }
  1969. }
  1970. }
  1971. return mesh;
  1972. }
  1973. /**
  1974. * Creates a ribbon mesh.
  1975. * Please consider using the same method from the MeshBuilder class instead.
  1976. * The ribbon is a parametric shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  1977. *
  1978. * Please read this full tutorial to understand how to design a ribbon : http://doc.babylonjs.com/tutorials/Ribbon_Tutorial
  1979. * The parameter `pathArray` is a required array of paths, what are each an array of successive Vector3. The pathArray parameter depicts the ribbon geometry.
  1980. * The parameter `closeArray` (boolean, default false) creates a seam between the first and the last paths of the path array.
  1981. * The parameter `closePath` (boolean, default false) creates a seam between the first and the last points of each path of the path array.
  1982. * 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.
  1983. * 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.
  1984. * 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
  1985. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  1986. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  1987. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  1988. */
  1989. public static CreateRibbon(name: string, pathArray: Vector3[][], closeArray: boolean, closePath: boolean, offset: number, scene?: Scene, updatable?: boolean, sideOrientation?: number, instance?: Mesh): Mesh {
  1990. return MeshBuilder.CreateRibbon(name, {
  1991. pathArray: pathArray,
  1992. closeArray: closeArray,
  1993. closePath: closePath,
  1994. offset: offset,
  1995. updatable: updatable,
  1996. sideOrientation: sideOrientation,
  1997. instance: instance
  1998. }, scene);
  1999. }
  2000. /**
  2001. * Creates a plane polygonal mesh. By default, this is a disc.
  2002. * Please consider using the same method from the MeshBuilder class instead.
  2003. * The parameter `radius` sets the radius size (float) of the polygon (default 0.5).
  2004. * 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.
  2005. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2006. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2007. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2008. */
  2009. public static CreateDisc(name: string, radius: number, tessellation: number, scene?: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2010. var options = {
  2011. radius: radius,
  2012. tessellation: tessellation,
  2013. sideOrientation: sideOrientation,
  2014. updatable: updatable
  2015. }
  2016. return MeshBuilder.CreateDisc(name, options, scene);
  2017. }
  2018. /**
  2019. * Creates a box mesh.
  2020. * Please consider using the same method from the MeshBuilder class instead.
  2021. * The parameter `size` sets the size (float) of each box side (default 1).
  2022. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2023. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2024. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2025. */
  2026. public static CreateBox(name: string, size: number, scene?: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2027. var options = {
  2028. size: size,
  2029. sideOrientation: sideOrientation,
  2030. updatable: updatable
  2031. };
  2032. return MeshBuilder.CreateBox(name, options, scene);
  2033. }
  2034. /**
  2035. * Creates a sphere mesh.
  2036. * Please consider using the same method from the MeshBuilder class instead.
  2037. * The parameter `diameter` sets the diameter size (float) of the sphere (default 1).
  2038. * The parameter `segments` sets the sphere number of horizontal stripes (positive integer, default 32).
  2039. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2040. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2041. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2042. */
  2043. public static CreateSphere(name: string, segments: number, diameter: number, scene?: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2044. var options = {
  2045. segments: segments,
  2046. diameterX: diameter,
  2047. diameterY: diameter,
  2048. diameterZ: diameter,
  2049. sideOrientation: sideOrientation,
  2050. updatable: updatable
  2051. }
  2052. return MeshBuilder.CreateSphere(name, options, scene);
  2053. }
  2054. /**
  2055. * Creates a cylinder or a cone mesh.
  2056. * Please consider using the same method from the MeshBuilder class instead.
  2057. * The parameter `height` sets the height size (float) of the cylinder/cone (float, default 2).
  2058. * The parameter `diameter` sets the diameter of the top and bottom cap at once (float, default 1).
  2059. * 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.
  2060. * The parameter `tessellation` sets the number of cylinder sides (positive integer, default 24). Set it to 3 to get a prism for instance.
  2061. * The parameter `subdivisions` sets the number of rings along the cylinder height (positive integer, default 1).
  2062. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2063. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2064. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2065. */
  2066. public static CreateCylinder(name: string, height: number, diameterTop: number, diameterBottom: number, tessellation: number, subdivisions: any, scene?: Scene, updatable?: any, sideOrientation?: number): Mesh {
  2067. if (scene === undefined || !(scene instanceof Scene)) {
  2068. if (scene !== undefined) {
  2069. sideOrientation = updatable || Mesh.DEFAULTSIDE;
  2070. updatable = scene;
  2071. }
  2072. scene = <Scene>subdivisions;
  2073. subdivisions = 1;
  2074. }
  2075. var options = {
  2076. height: height,
  2077. diameterTop: diameterTop,
  2078. diameterBottom: diameterBottom,
  2079. tessellation: tessellation,
  2080. subdivisions: subdivisions,
  2081. sideOrientation: sideOrientation,
  2082. updatable: updatable
  2083. }
  2084. return MeshBuilder.CreateCylinder(name, options, scene);
  2085. }
  2086. // Torus (Code from SharpDX.org)
  2087. /**
  2088. * Creates a torus mesh.
  2089. * Please consider using the same method from the MeshBuilder class instead.
  2090. * The parameter `diameter` sets the diameter size (float) of the torus (default 1).
  2091. * The parameter `thickness` sets the diameter size of the tube of the torus (float, default 0.5).
  2092. * The parameter `tessellation` sets the number of torus sides (postive integer, default 16).
  2093. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2094. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2095. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2096. */
  2097. public static CreateTorus(name: string, diameter: number, thickness: number, tessellation: number, scene?: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2098. var options = {
  2099. diameter: diameter,
  2100. thickness: thickness,
  2101. tessellation: tessellation,
  2102. sideOrientation: sideOrientation,
  2103. updatable: updatable
  2104. }
  2105. return MeshBuilder.CreateTorus(name, options, scene);
  2106. }
  2107. /**
  2108. * Creates a torus knot mesh.
  2109. * Please consider using the same method from the MeshBuilder class instead.
  2110. * The parameter `radius` sets the global radius size (float) of the torus knot (default 2).
  2111. * The parameter `radialSegments` sets the number of sides on each tube segments (positive integer, default 32).
  2112. * The parameter `tubularSegments` sets the number of tubes to decompose the knot into (positive integer, default 32).
  2113. * The parameters `p` and `q` are the number of windings on each axis (positive integers, default 2 and 3).
  2114. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2115. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2116. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2117. */
  2118. public static CreateTorusKnot(name: string, radius: number, tube: number, radialSegments: number, tubularSegments: number, p: number, q: number, scene?: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2119. var options = {
  2120. radius: radius,
  2121. tube: tube,
  2122. radialSegments: radialSegments,
  2123. tubularSegments: tubularSegments,
  2124. p: p,
  2125. q: q,
  2126. sideOrientation: sideOrientation,
  2127. updatable: updatable
  2128. }
  2129. return MeshBuilder.CreateTorusKnot(name, options, scene);
  2130. }
  2131. /**
  2132. * Creates a line mesh.
  2133. * Please consider using the same method from the MeshBuilder class instead.
  2134. * 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.
  2135. * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function.
  2136. * The parameter `points` is an array successive Vector3.
  2137. * 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
  2138. * When updating an instance, remember that only point positions can change, not the number of points.
  2139. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2140. */
  2141. public static CreateLines(name: string, points: Vector3[], scene?: Scene, updatable?: boolean, instance?: LinesMesh): LinesMesh {
  2142. var options = {
  2143. points: points,
  2144. updatable: updatable,
  2145. instance: instance
  2146. }
  2147. return MeshBuilder.CreateLines(name, options, scene);
  2148. }
  2149. /**
  2150. * Creates a dashed line mesh.
  2151. * Please consider using the same method from the MeshBuilder class instead.
  2152. * 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.
  2153. * Like every other parametric shape, it is dynamically updatable by passing an existing instance of LineMesh to this static function.
  2154. * The parameter `points` is an array successive Vector3.
  2155. * The parameter `dashNb` is the intended total number of dashes (positive integer, default 200).
  2156. * The parameter `dashSize` is the size of the dashes relatively the dash number (positive float, default 3).
  2157. * The parameter `gapSize` is the size of the gap between two successive dashes relatively the dash number (positive float, default 1).
  2158. * 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
  2159. * When updating an instance, remember that only point positions can change, not the number of points.
  2160. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2161. */
  2162. public static CreateDashedLines(name: string, points: Vector3[], dashSize: number, gapSize: number, dashNb: number, scene?: Scene, updatable?: boolean, instance?: LinesMesh): LinesMesh {
  2163. var options = {
  2164. points: points,
  2165. dashSize: dashSize,
  2166. gapSize: gapSize,
  2167. dashNb: dashNb,
  2168. updatable: updatable,
  2169. instance: instance
  2170. }
  2171. return MeshBuilder.CreateDashedLines(name, options, scene);
  2172. }
  2173. /**
  2174. * Creates a polygon mesh.
  2175. * Please consider using the same method from the MeshBuilder class instead.
  2176. * The polygon's shape will depend on the input parameters and is constructed parallel to a ground mesh.
  2177. * 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.
  2178. * You can set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2179. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2180. * Remember you can only change the shape positions, not their number when updating a polygon.
  2181. */
  2182. public static CreatePolygon(name: string, shape: Vector3[], scene: Scene, holes?: Vector3[][], updatable?: boolean, sideOrientation?: number): Mesh {
  2183. var options = {
  2184. shape: shape,
  2185. holes: holes,
  2186. updatable: updatable,
  2187. sideOrientation: sideOrientation
  2188. }
  2189. return MeshBuilder.CreatePolygon(name, options, scene);
  2190. }
  2191. /**
  2192. * Creates an extruded polygon mesh, with depth in the Y direction.
  2193. * Please consider using the same method from the MeshBuilder class instead.
  2194. */
  2195. public static ExtrudePolygon(name: string, shape: Vector3[], depth: number, scene: Scene, holes?: Vector3[][], updatable?: boolean, sideOrientation?: number): Mesh {
  2196. var options = {
  2197. shape: shape,
  2198. holes: holes,
  2199. depth: depth,
  2200. updatable: updatable,
  2201. sideOrientation: sideOrientation
  2202. }
  2203. return MeshBuilder.ExtrudePolygon(name, options, scene);
  2204. }
  2205. /**
  2206. * Creates an extruded shape mesh.
  2207. * The extrusion is a parametric shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  2208. * Please consider using the same method from the MeshBuilder class instead.
  2209. *
  2210. * Please read this full tutorial to understand how to design an extruded shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes#extrusion
  2211. * 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
  2212. * extruded along the Z axis.
  2213. * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  2214. * 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.
  2215. * The parameter `scale` (float, default 1) is the value to scale the shape.
  2216. * 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
  2217. * 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
  2218. * Remember you can only change the shape or path point positions, not their number when updating an extruded shape.
  2219. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2220. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2221. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2222. */
  2223. public static ExtrudeShape(name: string, shape: Vector3[], path: Vector3[], scale: number, rotation: number, cap: number, scene?: Scene, updatable?: boolean, sideOrientation?: number, instance?: Mesh): Mesh {
  2224. var options = {
  2225. shape: shape,
  2226. path: path,
  2227. scale: scale,
  2228. rotation: rotation,
  2229. cap: (cap === 0) ? 0 : cap || Mesh.NO_CAP,
  2230. sideOrientation: sideOrientation,
  2231. instance: instance,
  2232. updatable: updatable
  2233. }
  2234. return MeshBuilder.ExtrudeShape(name, options, scene);
  2235. }
  2236. /**
  2237. * Creates an custom extruded shape mesh.
  2238. * The custom extrusion is a parametric shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  2239. * Please consider using the same method from the MeshBuilder class instead.
  2240. *
  2241. * Please read this full tutorial to understand how to design a custom extruded shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes#extrusion
  2242. * 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
  2243. * extruded along the Z axis.
  2244. * The parameter `path` is a required array of successive Vector3. This is the axis curve the shape is extruded along.
  2245. * 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
  2246. * and the distance of this point from the begining of the path :
  2247. * ```javascript
  2248. * var rotationFunction = function(i, distance) {
  2249. * // do things
  2250. * return rotationValue; }
  2251. * ```
  2252. * It must returns a float value that will be the rotation in radians applied to the shape on each path point.
  2253. * 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
  2254. * and the distance of this point from the begining of the path :
  2255. * ```javascript
  2256. * var scaleFunction = function(i, distance) {
  2257. * // do things
  2258. * return scaleValue;}
  2259. * ```
  2260. * It must returns a float value that will be the scale value applied to the shape on each path point.
  2261. * The parameter `ribbonClosePath` (boolean, default false) forces the extrusion underlying ribbon to close all the paths in its `pathArray`.
  2262. * The parameter `ribbonCloseArray` (boolean, default false) forces the extrusion underlying ribbon to close its `pathArray`.
  2263. * 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
  2264. * 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
  2265. * Remember you can only change the shape or path point positions, not their number when updating an extruded shape.
  2266. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2267. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2268. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2269. */
  2270. public static ExtrudeShapeCustom(name: string, shape: Vector3[], path: Vector3[], scaleFunction: Function, rotationFunction: Function, ribbonCloseArray: boolean, ribbonClosePath: boolean, cap: number, scene: Scene, updatable?: boolean, sideOrientation?: number, instance?: Mesh): Mesh {
  2271. var options = {
  2272. shape: shape,
  2273. path: path,
  2274. scaleFunction: scaleFunction,
  2275. rotationFunction: rotationFunction,
  2276. ribbonCloseArray: ribbonCloseArray,
  2277. ribbonClosePath: ribbonClosePath,
  2278. cap: (cap === 0) ? 0 : cap || Mesh.NO_CAP,
  2279. sideOrientation: sideOrientation,
  2280. instance: instance,
  2281. updatable: updatable
  2282. }
  2283. return MeshBuilder.ExtrudeShapeCustom(name, options, scene);
  2284. }
  2285. /**
  2286. * Creates lathe mesh.
  2287. * The lathe is a shape with a symetry axis : a 2D model shape is rotated around this axis to design the lathe.
  2288. * Please consider using the same method from the MeshBuilder class instead.
  2289. * 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
  2290. * rotated around the Y axis. It's usually a 2D shape, so the Vector3 z coordinates are often set to zero.
  2291. * The parameter `radius` (positive float, default 1) is the radius value of the lathe.
  2292. * The parameter `tessellation` (positive integer, default 64) is the side number of the lathe.
  2293. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2294. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2295. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2296. */
  2297. public static CreateLathe(name: string, shape: Vector3[], radius: number, tessellation: number, scene: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2298. var options = {
  2299. shape: shape,
  2300. radius: radius,
  2301. tessellation: tessellation,
  2302. sideOrientation: sideOrientation,
  2303. updatable: updatable
  2304. };
  2305. return MeshBuilder.CreateLathe(name, options, scene);
  2306. }
  2307. /**
  2308. * Creates a plane mesh.
  2309. * Please consider using the same method from the MeshBuilder class instead.
  2310. * The parameter `size` sets the size (float) of both sides of the plane at once (default 1).
  2311. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2312. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2313. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2314. */
  2315. public static CreatePlane(name: string, size: number, scene: Scene, updatable?: boolean, sideOrientation?: number): Mesh {
  2316. var options = {
  2317. size: size,
  2318. width: size,
  2319. height: size,
  2320. sideOrientation: sideOrientation,
  2321. updatable: updatable
  2322. }
  2323. return MeshBuilder.CreatePlane(name, options, scene);
  2324. }
  2325. /**
  2326. * Creates a ground mesh.
  2327. * Please consider using the same method from the MeshBuilder class instead.
  2328. * The parameters `width` and `height` (floats, default 1) set the width and height sizes of the ground.
  2329. * The parameter `subdivisions` (positive integer) sets the number of subdivisions per side.
  2330. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2331. */
  2332. public static CreateGround(name: string, width: number, height: number, subdivisions: number, scene?: Scene, updatable?: boolean): Mesh {
  2333. var options = {
  2334. width: width,
  2335. height: height,
  2336. subdivisions: subdivisions,
  2337. updatable: updatable
  2338. }
  2339. return MeshBuilder.CreateGround(name, options, scene);
  2340. }
  2341. /**
  2342. * Creates a tiled ground mesh.
  2343. * Please consider using the same method from the MeshBuilder class instead.
  2344. * The parameters `xmin` and `xmax` (floats, default -1 and 1) set the ground minimum and maximum X coordinates.
  2345. * The parameters `zmin` and `zmax` (floats, default -1 and 1) set the ground minimum and maximum Z coordinates.
  2346. * The parameter `subdivisions` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 6, h: 6}`). `w` and `h` are the
  2347. * numbers of subdivisions on the ground width and height. Each subdivision is called a tile.
  2348. * The parameter `precision` is a javascript object `{w: positive integer, h: positive integer}` (default `{w: 2, h: 2}`). `w` and `h` are the
  2349. * numbers of subdivisions on the ground width and height of each tile.
  2350. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2351. */
  2352. public static CreateTiledGround(name: string, xmin: number, zmin: number, xmax: number, zmax: number, subdivisions: { w: number; h: number; }, precision: { w: number; h: number; }, scene: Scene, updatable?: boolean): Mesh {
  2353. var options = {
  2354. xmin: xmin,
  2355. zmin: zmin,
  2356. xmax: xmax,
  2357. zmax: zmax,
  2358. subdivisions: subdivisions,
  2359. precision: precision,
  2360. updatable: updatable
  2361. }
  2362. return MeshBuilder.CreateTiledGround(name, options, scene);
  2363. }
  2364. /**
  2365. * Creates a ground mesh from a height map.
  2366. * tuto : http://doc.babylonjs.com/tutorials/14._Height_Map
  2367. * Please consider using the same method from the MeshBuilder class instead.
  2368. * The parameter `url` sets the URL of the height map image resource.
  2369. * The parameters `width` and `height` (positive floats, default 10) set the ground width and height sizes.
  2370. * The parameter `subdivisions` (positive integer, default 1) sets the number of subdivision per side.
  2371. * The parameter `minHeight` (float, default 0) is the minimum altitude on the ground.
  2372. * The parameter `maxHeight` (float, default 1) is the maximum altitude on the ground.
  2373. * 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).
  2374. * This function is passed the newly built mesh :
  2375. * ```javascript
  2376. * function(mesh) { // do things
  2377. * return; }
  2378. * ```
  2379. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2380. */
  2381. public static CreateGroundFromHeightMap(name: string, url: string, width: number, height: number, subdivisions: number, minHeight: number, maxHeight: number, scene: Scene, updatable?: boolean, onReady?: (mesh: GroundMesh) => void): GroundMesh {
  2382. var options = {
  2383. width: width,
  2384. height: height,
  2385. subdivisions: subdivisions,
  2386. minHeight: minHeight,
  2387. maxHeight: maxHeight,
  2388. updatable: updatable,
  2389. onReady: onReady
  2390. };
  2391. return MeshBuilder.CreateGroundFromHeightMap(name, url, options, scene);
  2392. }
  2393. /**
  2394. * Creates a tube mesh.
  2395. * The tube is a parametric shape : http://doc.babylonjs.com/tutorials/Parametric_Shapes. It has no predefined shape. Its final shape will depend on the input parameters.
  2396. * Please consider using the same method from the MeshBuilder class instead.
  2397. * The parameter `path` is a required array of successive Vector3. It is the curve used as the axis of the tube.
  2398. * The parameter `radius` (positive float, default 1) sets the tube radius size.
  2399. * The parameter `tessellation` (positive float, default 64) is the number of sides on the tubular surface.
  2400. * The parameter `radiusFunction` (javascript function, default null) is a vanilla javascript function. If it is not null, it overwrittes the parameter `radius`.
  2401. * 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.
  2402. * It must return a radius value (positive float) :
  2403. * ```javascript
  2404. * var radiusFunction = function(i, distance) {
  2405. * // do things
  2406. * return radius; }
  2407. * ```
  2408. * 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
  2409. * 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
  2410. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2411. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2412. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2413. */
  2414. public static CreateTube(name: string, path: Vector3[], radius: number, tessellation: number, radiusFunction: { (i: number, distance: number): number; }, cap: number, scene: Scene, updatable?: boolean, sideOrientation?: number, instance?: Mesh): Mesh {
  2415. var options = {
  2416. path: path,
  2417. radius: radius,
  2418. tessellation: tessellation,
  2419. radiusFunction: radiusFunction,
  2420. arc: 1,
  2421. cap: cap,
  2422. updatable: updatable,
  2423. sideOrientation: sideOrientation,
  2424. instance: instance
  2425. }
  2426. return MeshBuilder.CreateTube(name, options, scene);
  2427. }
  2428. /**
  2429. * Creates a polyhedron mesh.
  2430. * Please consider using the same method from the MeshBuilder class instead.
  2431. * 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
  2432. * to choose the wanted type.
  2433. * The parameter `size` (positive float, default 1) sets the polygon size.
  2434. * You can overwrite the `size` on each dimension bu using the parameters `sizeX`, `sizeY` or `sizeZ` (positive floats, default to `size` value).
  2435. * 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`.
  2436. * 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
  2437. * 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)`).
  2438. * 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
  2439. * 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.
  2440. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2441. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2442. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2443. */
  2444. public static CreatePolyhedron(name: string, options: { type?: number, size?: number, sizeX?: number, sizeY?: number, sizeZ?: number, custom?: any, faceUV?: Vector4[], faceColors?: Color4[], updatable?: boolean, sideOrientation?: number }, scene: Scene): Mesh {
  2445. return MeshBuilder.CreatePolyhedron(name, options, scene);
  2446. }
  2447. /**
  2448. * Creates a sphere based upon an icosahedron with 20 triangular faces which can be subdivided.
  2449. * Please consider using the same method from the MeshBuilder class instead.
  2450. * The parameter `radius` sets the radius size (float) of the icosphere (default 1).
  2451. * 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`).
  2452. * The parameter `subdivisions` sets the number of subdivisions (postive integer, default 4). The more subdivisions, the more faces on the icosphere whatever its size.
  2453. * 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.
  2454. * You can also set the mesh side orientation with the values : BABYLON.Mesh.FRONTSIDE (default), BABYLON.Mesh.BACKSIDE or BABYLON.Mesh.DOUBLESIDE
  2455. * Detail here : http://doc.babylonjs.com/tutorials/02._Discover_Basic_Elements#side-orientation
  2456. * The mesh can be set to updatable with the boolean parameter `updatable` (default false) if its internal geometry is supposed to change once created.
  2457. */
  2458. public static CreateIcoSphere(name: string, options: { radius?: number, flat?: boolean, subdivisions?: number, sideOrientation?: number, updatable?: boolean }, scene: Scene): Mesh {
  2459. return MeshBuilder.CreateIcoSphere(name, options, scene);
  2460. }
  2461. /**
  2462. * Creates a decal mesh.
  2463. * Please consider using the same method from the MeshBuilder class instead.
  2464. * 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.
  2465. * The parameter `position` (Vector3, default `(0, 0, 0)`) sets the position of the decal in World coordinates.
  2466. * The parameter `normal` (Vector3, default Vector3.Up) sets the normal of the mesh where the decal is applied onto in World coordinates.
  2467. * The parameter `size` (Vector3, default `(1, 1, 1)`) sets the decal scaling.
  2468. * The parameter `angle` (float in radian, default 0) sets the angle to rotate the decal.
  2469. */
  2470. public static CreateDecal(name: string, sourceMesh: AbstractMesh, position: Vector3, normal: Vector3, size: Vector3, angle: number): Mesh {
  2471. var options = {
  2472. position: position,
  2473. normal: normal,
  2474. size: size,
  2475. angle: angle
  2476. }
  2477. return MeshBuilder.CreateDecal(name, sourceMesh, options);
  2478. }
  2479. // Skeletons
  2480. /**
  2481. * @returns original positions used for CPU skinning. Useful for integrating Morphing with skeletons in same mesh.
  2482. */
  2483. public setPositionsForCPUSkinning(): Float32Array {
  2484. var source: number[] | Float32Array;
  2485. if (!this._sourcePositions) {
  2486. source = this.getVerticesData(VertexBuffer.PositionKind);
  2487. this._sourcePositions = new Float32Array(<any>source);
  2488. if (!this.getVertexBuffer(VertexBuffer.PositionKind).isUpdatable()) {
  2489. this.setVerticesData(VertexBuffer.PositionKind, source, true);
  2490. }
  2491. }
  2492. return this._sourcePositions;
  2493. }
  2494. /**
  2495. * @returns original normals used for CPU skinning. Useful for integrating Morphing with skeletons in same mesh.
  2496. */
  2497. public setNormalsForCPUSkinning(): Float32Array {
  2498. var source: number[] | Float32Array;
  2499. if (!this._sourceNormals) {
  2500. source = this.getVerticesData(VertexBuffer.NormalKind);
  2501. this._sourceNormals = new Float32Array(<any>source);
  2502. if (!this.getVertexBuffer(VertexBuffer.NormalKind).isUpdatable()) {
  2503. this.setVerticesData(VertexBuffer.NormalKind, source, true);
  2504. }
  2505. }
  2506. return this._sourceNormals;
  2507. }
  2508. /**
  2509. * Updates the vertex buffer by applying transformation from the bones.
  2510. * Returns the Mesh.
  2511. *
  2512. * @param {skeleton} skeleton to apply
  2513. */
  2514. public applySkeleton(skeleton: Skeleton): Mesh {
  2515. if (!this.geometry) {
  2516. return this;
  2517. }
  2518. if (this.geometry._softwareSkinningRenderId == this.getScene().getRenderId()) {
  2519. return this;
  2520. }
  2521. this.geometry._softwareSkinningRenderId = this.getScene().getRenderId();
  2522. if (!this.isVerticesDataPresent(VertexBuffer.PositionKind)) {
  2523. return this;
  2524. }
  2525. if (!this.isVerticesDataPresent(VertexBuffer.NormalKind)) {
  2526. return this;
  2527. }
  2528. if (!this.isVerticesDataPresent(VertexBuffer.MatricesIndicesKind)) {
  2529. return this;
  2530. }
  2531. if (!this.isVerticesDataPresent(VertexBuffer.MatricesWeightsKind)) {
  2532. return this;
  2533. }
  2534. if (!this._sourcePositions) {
  2535. var submeshes = this.subMeshes.slice();
  2536. this.setPositionsForCPUSkinning();
  2537. this.subMeshes = submeshes;
  2538. }
  2539. if (!this._sourceNormals) {
  2540. this.setNormalsForCPUSkinning();
  2541. }
  2542. // positionsData checks for not being Float32Array will only pass at most once
  2543. var positionsData = this.getVerticesData(VertexBuffer.PositionKind);
  2544. if (!(positionsData instanceof Float32Array)) {
  2545. positionsData = new Float32Array(positionsData);
  2546. }
  2547. // normalsData checks for not being Float32Array will only pass at most once
  2548. var normalsData = this.getVerticesData(VertexBuffer.NormalKind);
  2549. if (!(normalsData instanceof Float32Array)) {
  2550. normalsData = new Float32Array(normalsData);
  2551. }
  2552. var matricesIndicesData = this.getVerticesData(VertexBuffer.MatricesIndicesKind);
  2553. var matricesWeightsData = this.getVerticesData(VertexBuffer.MatricesWeightsKind);
  2554. var needExtras = this.numBoneInfluencers > 4;
  2555. var matricesIndicesExtraData = needExtras ? this.getVerticesData(VertexBuffer.MatricesIndicesExtraKind) : null;
  2556. var matricesWeightsExtraData = needExtras ? this.getVerticesData(VertexBuffer.MatricesWeightsExtraKind) : null;
  2557. var skeletonMatrices = skeleton.getTransformMatrices(this);
  2558. var tempVector3 = Vector3.Zero();
  2559. var finalMatrix = new Matrix();
  2560. var tempMatrix = new Matrix();
  2561. var matWeightIdx = 0;
  2562. var inf: number;
  2563. for (var index = 0; index < positionsData.length; index += 3, matWeightIdx += 4) {
  2564. var weight: number;
  2565. for (inf = 0; inf < 4; inf++) {
  2566. weight = matricesWeightsData[matWeightIdx + inf];
  2567. if (weight > 0) {
  2568. Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, matricesIndicesData[matWeightIdx + inf] * 16, weight, tempMatrix);
  2569. finalMatrix.addToSelf(tempMatrix);
  2570. } else break;
  2571. }
  2572. if (needExtras) {
  2573. for (inf = 0; inf < 4; inf++) {
  2574. weight = matricesWeightsExtraData[matWeightIdx + inf];
  2575. if (weight > 0) {
  2576. Matrix.FromFloat32ArrayToRefScaled(skeletonMatrices, matricesIndicesExtraData[matWeightIdx + inf] * 16, weight, tempMatrix);
  2577. finalMatrix.addToSelf(tempMatrix);
  2578. } else break;
  2579. }
  2580. }
  2581. Vector3.TransformCoordinatesFromFloatsToRef(this._sourcePositions[index], this._sourcePositions[index + 1], this._sourcePositions[index + 2], finalMatrix, tempVector3);
  2582. tempVector3.toArray(positionsData, index);
  2583. Vector3.TransformNormalFromFloatsToRef(this._sourceNormals[index], this._sourceNormals[index + 1], this._sourceNormals[index + 2], finalMatrix, tempVector3);
  2584. tempVector3.toArray(normalsData, index);
  2585. finalMatrix.reset();
  2586. }
  2587. this.updateVerticesData(VertexBuffer.PositionKind, positionsData);
  2588. this.updateVerticesData(VertexBuffer.NormalKind, normalsData);
  2589. return this;
  2590. }
  2591. // Tools
  2592. /**
  2593. * Returns an object `{min:` Vector3`, max:` Vector3`}`
  2594. * This min and max Vector3 are the minimum and maximum vectors of each mesh bounding box from the passed array, in the World system
  2595. */
  2596. public static MinMax(meshes: AbstractMesh[]): { min: Vector3; max: Vector3 } {
  2597. var minVector: Vector3 = null;
  2598. var maxVector: Vector3 = null;
  2599. meshes.forEach(function (mesh, index, array) {
  2600. var boundingBox = mesh.getBoundingInfo().boundingBox;
  2601. if (!minVector) {
  2602. minVector = boundingBox.minimumWorld;
  2603. maxVector = boundingBox.maximumWorld;
  2604. } else {
  2605. minVector.MinimizeInPlace(boundingBox.minimumWorld);
  2606. maxVector.MaximizeInPlace(boundingBox.maximumWorld);
  2607. }
  2608. });
  2609. return {
  2610. min: minVector,
  2611. max: maxVector
  2612. };
  2613. }
  2614. /**
  2615. * Returns a Vector3, the center of the `{min:` Vector3`, max:` Vector3`}` or the center of MinMax vector3 computed from a mesh array.
  2616. */
  2617. public static Center(meshesOrMinMaxVector): Vector3 {
  2618. var minMaxVector = (meshesOrMinMaxVector instanceof Array) ? BABYLON.Mesh.MinMax(meshesOrMinMaxVector) : meshesOrMinMaxVector;
  2619. return Vector3.Center(minMaxVector.min, minMaxVector.max);
  2620. }
  2621. /**
  2622. * Merge the array of meshes into a single mesh for performance reasons.
  2623. * @param {Array<Mesh>} meshes - The vertices source. They should all be of the same material. Entries can empty
  2624. * @param {boolean} disposeSource - When true (default), dispose of the vertices from the source meshes
  2625. * @param {boolean} allow32BitsIndices - When the sum of the vertices > 64k, this must be set to true.
  2626. * @param {Mesh} meshSubclass - When set, vertices inserted into this Mesh. Meshes can then be merged into a Mesh sub-class.
  2627. * @param {boolean} subdivideWithSubMeshes - When true (false default), subdivide mesh to his subMesh array with meshes source.
  2628. */
  2629. public static MergeMeshes(meshes: Array<Mesh>, disposeSource = true, allow32BitsIndices?: boolean, meshSubclass?: Mesh, subdivideWithSubMeshes?: boolean): Mesh {
  2630. var index: number;
  2631. if (!allow32BitsIndices) {
  2632. var totalVertices = 0;
  2633. // Counting vertices
  2634. for (index = 0; index < meshes.length; index++) {
  2635. if (meshes[index]) {
  2636. totalVertices += meshes[index].getTotalVertices();
  2637. if (totalVertices > 65536) {
  2638. Tools.Warn("Cannot merge meshes because resulting mesh will have more than 65536 vertices. Please use allow32BitsIndices = true to use 32 bits indices");
  2639. return null;
  2640. }
  2641. }
  2642. }
  2643. }
  2644. // Merge
  2645. var vertexData: VertexData;
  2646. var otherVertexData: VertexData;
  2647. var indiceArray: Array<number> = new Array<number>();
  2648. var source: Mesh;
  2649. for (index = 0; index < meshes.length; index++) {
  2650. if (meshes[index]) {
  2651. meshes[index].computeWorldMatrix(true);
  2652. otherVertexData = VertexData.ExtractFromMesh(meshes[index], true);
  2653. otherVertexData.transform(meshes[index].getWorldMatrix());
  2654. if (vertexData) {
  2655. vertexData.merge(otherVertexData);
  2656. } else {
  2657. vertexData = otherVertexData;
  2658. source = meshes[index];
  2659. }
  2660. if (subdivideWithSubMeshes) {
  2661. indiceArray.push(meshes[index].getTotalIndices());
  2662. }
  2663. }
  2664. }
  2665. if (!meshSubclass) {
  2666. meshSubclass = new Mesh(source.name + "_merged", source.getScene());
  2667. }
  2668. vertexData.applyToMesh(meshSubclass);
  2669. // Setting properties
  2670. meshSubclass.material = source.material;
  2671. meshSubclass.checkCollisions = source.checkCollisions;
  2672. // Cleaning
  2673. if (disposeSource) {
  2674. for (index = 0; index < meshes.length; index++) {
  2675. if (meshes[index]) {
  2676. meshes[index].dispose();
  2677. }
  2678. }
  2679. }
  2680. // Subdivide
  2681. if (subdivideWithSubMeshes) {
  2682. //-- Suppresions du submesh global
  2683. meshSubclass.releaseSubMeshes();
  2684. index = 0;
  2685. var offset = 0;
  2686. //-- aplique la subdivision en fonction du tableau d'indices
  2687. while (index < indiceArray.length) {
  2688. BABYLON.SubMesh.CreateFromIndices(0, offset, indiceArray[index], meshSubclass);
  2689. offset += indiceArray[index];
  2690. index++;
  2691. }
  2692. }
  2693. return meshSubclass;
  2694. }
  2695. }
  2696. }