FBXLoader.js 99 KB

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  1. /**
  2. * @author Kyle-Larson https://github.com/Kyle-Larson
  3. * @author Takahiro https://github.com/takahirox
  4. * @author Lewy Blue https://github.com/looeee
  5. *
  6. * Loader loads FBX file and generates Group representing FBX scene.
  7. * Requires FBX file to be >= 7.0 and in ASCII or >= 6400 in Binary format
  8. * Versions lower than this may load but will probably have errors
  9. *
  10. * Needs Support:
  11. * Morph normals / blend shape normals
  12. *
  13. * FBX format references:
  14. * https://wiki.blender.org/index.php/User:Mont29/Foundation/FBX_File_Structure
  15. * http://help.autodesk.com/view/FBX/2017/ENU/?guid=__cpp_ref_index_html (C++ SDK reference)
  16. *
  17. * Binary format specification:
  18. * https://code.blender.org/2013/08/fbx-binary-file-format-specification/
  19. */
  20. THREE.FBXLoader = ( function () {
  21. var fbxTree;
  22. var connections;
  23. var sceneGraph;
  24. function FBXLoader( manager ) {
  25. this.manager = ( manager !== undefined ) ? manager : THREE.DefaultLoadingManager;
  26. }
  27. FBXLoader.prototype = {
  28. constructor: FBXLoader,
  29. crossOrigin: 'anonymous',
  30. load: function ( url, onLoad, onProgress, onError ) {
  31. var self = this;
  32. var path = ( self.path === undefined ) ? THREE.LoaderUtils.extractUrlBase( url ) : self.path;
  33. var loader = new THREE.FileLoader( this.manager );
  34. loader.setPath( self.path );
  35. loader.setResponseType( 'arraybuffer' );
  36. loader.load( url, function ( buffer ) {
  37. try {
  38. onLoad( self.parse( buffer, path ) );
  39. } catch ( error ) {
  40. setTimeout( function () {
  41. if ( onError ) onError( error );
  42. self.manager.itemError( url );
  43. }, 0 );
  44. }
  45. }, onProgress, onError );
  46. },
  47. setPath: function ( value ) {
  48. this.path = value;
  49. return this;
  50. },
  51. setResourcePath: function ( value ) {
  52. this.resourcePath = value;
  53. return this;
  54. },
  55. setCrossOrigin: function ( value ) {
  56. this.crossOrigin = value;
  57. return this;
  58. },
  59. parse: function ( FBXBuffer, path ) {
  60. if ( isFbxFormatBinary( FBXBuffer ) ) {
  61. fbxTree = new BinaryParser().parse( FBXBuffer );
  62. } else {
  63. var FBXText = convertArrayBufferToString( FBXBuffer );
  64. if ( ! isFbxFormatASCII( FBXText ) ) {
  65. throw new Error( 'THREE.FBXLoader: Unknown format.' );
  66. }
  67. if ( getFbxVersion( FBXText ) < 7000 ) {
  68. throw new Error( 'THREE.FBXLoader: FBX version not supported, FileVersion: ' + getFbxVersion( FBXText ) );
  69. }
  70. fbxTree = new TextParser().parse( FBXText );
  71. }
  72. // console.log( fbxTree );
  73. var textureLoader = new THREE.TextureLoader( this.manager ).setPath( this.resourcePath || path ).setCrossOrigin( this.crossOrigin );
  74. return new FBXTreeParser( textureLoader ).parse( fbxTree );
  75. }
  76. };
  77. // Parse the FBXTree object returned by the BinaryParser or TextParser and return a THREE.Group
  78. function FBXTreeParser( textureLoader ) {
  79. this.textureLoader = textureLoader;
  80. }
  81. FBXTreeParser.prototype = {
  82. constructor: FBXTreeParser,
  83. parse: function () {
  84. connections = this.parseConnections();
  85. var images = this.parseImages();
  86. var textures = this.parseTextures( images );
  87. var materials = this.parseMaterials( textures );
  88. var deformers = this.parseDeformers();
  89. var geometryMap = new GeometryParser().parse( deformers );
  90. this.parseScene( deformers, geometryMap, materials );
  91. return sceneGraph;
  92. },
  93. // Parses FBXTree.Connections which holds parent-child connections between objects (e.g. material -> texture, model->geometry )
  94. // and details the connection type
  95. parseConnections: function () {
  96. var connectionMap = new Map();
  97. if ( 'Connections' in fbxTree ) {
  98. var rawConnections = fbxTree.Connections.connections;
  99. rawConnections.forEach( function ( rawConnection ) {
  100. var fromID = rawConnection[ 0 ];
  101. var toID = rawConnection[ 1 ];
  102. var relationship = rawConnection[ 2 ];
  103. if ( ! connectionMap.has( fromID ) ) {
  104. connectionMap.set( fromID, {
  105. parents: [],
  106. children: []
  107. } );
  108. }
  109. var parentRelationship = { ID: toID, relationship: relationship };
  110. connectionMap.get( fromID ).parents.push( parentRelationship );
  111. if ( ! connectionMap.has( toID ) ) {
  112. connectionMap.set( toID, {
  113. parents: [],
  114. children: []
  115. } );
  116. }
  117. var childRelationship = { ID: fromID, relationship: relationship };
  118. connectionMap.get( toID ).children.push( childRelationship );
  119. } );
  120. }
  121. return connectionMap;
  122. },
  123. // Parse FBXTree.Objects.Video for embedded image data
  124. // These images are connected to textures in FBXTree.Objects.Textures
  125. // via FBXTree.Connections.
  126. parseImages: function () {
  127. var images = {};
  128. var blobs = {};
  129. if ( 'Video' in fbxTree.Objects ) {
  130. var videoNodes = fbxTree.Objects.Video;
  131. for ( var nodeID in videoNodes ) {
  132. var videoNode = videoNodes[ nodeID ];
  133. var id = parseInt( nodeID );
  134. images[ id ] = videoNode.RelativeFilename || videoNode.Filename;
  135. // raw image data is in videoNode.Content
  136. if ( 'Content' in videoNode ) {
  137. var arrayBufferContent = ( videoNode.Content instanceof ArrayBuffer ) && ( videoNode.Content.byteLength > 0 );
  138. var base64Content = ( typeof videoNode.Content === 'string' ) && ( videoNode.Content !== '' );
  139. if ( arrayBufferContent || base64Content ) {
  140. var image = this.parseImage( videoNodes[ nodeID ] );
  141. blobs[ videoNode.RelativeFilename || videoNode.Filename ] = image;
  142. }
  143. }
  144. }
  145. }
  146. for ( var id in images ) {
  147. var filename = images[ id ];
  148. if ( blobs[ filename ] !== undefined ) images[ id ] = blobs[ filename ];
  149. else images[ id ] = images[ id ].split( '\\' ).pop();
  150. }
  151. return images;
  152. },
  153. // Parse embedded image data in FBXTree.Video.Content
  154. parseImage: function ( videoNode ) {
  155. var content = videoNode.Content;
  156. var fileName = videoNode.RelativeFilename || videoNode.Filename;
  157. var extension = fileName.slice( fileName.lastIndexOf( '.' ) + 1 ).toLowerCase();
  158. var type;
  159. switch ( extension ) {
  160. case 'bmp':
  161. type = 'image/bmp';
  162. break;
  163. case 'jpg':
  164. case 'jpeg':
  165. type = 'image/jpeg';
  166. break;
  167. case 'png':
  168. type = 'image/png';
  169. break;
  170. case 'tif':
  171. type = 'image/tiff';
  172. break;
  173. case 'tga':
  174. if ( THREE.Loader.Handlers.get( '.tga' ) === null ) {
  175. console.warn( 'FBXLoader: TGA loader not found, skipping ', fileName );
  176. }
  177. type = 'image/tga';
  178. break;
  179. default:
  180. console.warn( 'FBXLoader: Image type "' + extension + '" is not supported.' );
  181. return;
  182. }
  183. if ( typeof content === 'string' ) { // ASCII format
  184. return 'data:' + type + ';base64,' + content;
  185. } else { // Binary Format
  186. var array = new Uint8Array( content );
  187. return window.URL.createObjectURL( new Blob( [ array ], { type: type } ) );
  188. }
  189. },
  190. // Parse nodes in FBXTree.Objects.Texture
  191. // These contain details such as UV scaling, cropping, rotation etc and are connected
  192. // to images in FBXTree.Objects.Video
  193. parseTextures: function ( images ) {
  194. var textureMap = new Map();
  195. if ( 'Texture' in fbxTree.Objects ) {
  196. var textureNodes = fbxTree.Objects.Texture;
  197. for ( var nodeID in textureNodes ) {
  198. var texture = this.parseTexture( textureNodes[ nodeID ], images );
  199. textureMap.set( parseInt( nodeID ), texture );
  200. }
  201. }
  202. return textureMap;
  203. },
  204. // Parse individual node in FBXTree.Objects.Texture
  205. parseTexture: function ( textureNode, images ) {
  206. var texture = this.loadTexture( textureNode, images );
  207. texture.ID = textureNode.id;
  208. texture.name = textureNode.attrName;
  209. var wrapModeU = textureNode.WrapModeU;
  210. var wrapModeV = textureNode.WrapModeV;
  211. var valueU = wrapModeU !== undefined ? wrapModeU.value : 0;
  212. var valueV = wrapModeV !== undefined ? wrapModeV.value : 0;
  213. // http://download.autodesk.com/us/fbx/SDKdocs/FBX_SDK_Help/files/fbxsdkref/class_k_fbx_texture.html#889640e63e2e681259ea81061b85143a
  214. // 0: repeat(default), 1: clamp
  215. texture.wrapS = valueU === 0 ? THREE.RepeatWrapping : THREE.ClampToEdgeWrapping;
  216. texture.wrapT = valueV === 0 ? THREE.RepeatWrapping : THREE.ClampToEdgeWrapping;
  217. if ( 'Scaling' in textureNode ) {
  218. var values = textureNode.Scaling.value;
  219. texture.repeat.x = values[ 0 ];
  220. texture.repeat.y = values[ 1 ];
  221. }
  222. return texture;
  223. },
  224. // load a texture specified as a blob or data URI, or via an external URL using THREE.TextureLoader
  225. loadTexture: function ( textureNode, images ) {
  226. var fileName;
  227. var currentPath = this.textureLoader.path;
  228. var children = connections.get( textureNode.id ).children;
  229. if ( children !== undefined && children.length > 0 && images[ children[ 0 ].ID ] !== undefined ) {
  230. fileName = images[ children[ 0 ].ID ];
  231. if ( fileName.indexOf( 'blob:' ) === 0 || fileName.indexOf( 'data:' ) === 0 ) {
  232. this.textureLoader.setPath( undefined );
  233. }
  234. }
  235. var texture;
  236. var extension = textureNode.FileName.slice( - 3 ).toLowerCase();
  237. if ( extension === 'tga' ) {
  238. var loader = THREE.Loader.Handlers.get( '.tga' );
  239. if ( loader === null ) {
  240. console.warn( 'FBXLoader: TGA loader not found, creating placeholder texture for', textureNode.RelativeFilename );
  241. texture = new THREE.Texture();
  242. } else {
  243. texture = loader.load( fileName );
  244. }
  245. } else if ( extension === 'psd' ) {
  246. console.warn( 'FBXLoader: PSD textures are not supported, creating placeholder texture for', textureNode.RelativeFilename );
  247. texture = new THREE.Texture();
  248. } else {
  249. texture = this.textureLoader.load( fileName );
  250. }
  251. this.textureLoader.setPath( currentPath );
  252. return texture;
  253. },
  254. // Parse nodes in FBXTree.Objects.Material
  255. parseMaterials: function ( textureMap ) {
  256. var materialMap = new Map();
  257. if ( 'Material' in fbxTree.Objects ) {
  258. var materialNodes = fbxTree.Objects.Material;
  259. for ( var nodeID in materialNodes ) {
  260. var material = this.parseMaterial( materialNodes[ nodeID ], textureMap );
  261. if ( material !== null ) materialMap.set( parseInt( nodeID ), material );
  262. }
  263. }
  264. return materialMap;
  265. },
  266. // Parse single node in FBXTree.Objects.Material
  267. // Materials are connected to texture maps in FBXTree.Objects.Textures
  268. // FBX format currently only supports Lambert and Phong shading models
  269. parseMaterial: function ( materialNode, textureMap ) {
  270. var ID = materialNode.id;
  271. var name = materialNode.attrName;
  272. var type = materialNode.ShadingModel;
  273. // Case where FBX wraps shading model in property object.
  274. if ( typeof type === 'object' ) {
  275. type = type.value;
  276. }
  277. // Ignore unused materials which don't have any connections.
  278. if ( ! connections.has( ID ) ) return null;
  279. var parameters = this.parseParameters( materialNode, textureMap, ID );
  280. var material;
  281. switch ( type.toLowerCase() ) {
  282. case 'phong':
  283. material = new THREE.MeshPhongMaterial();
  284. break;
  285. case 'lambert':
  286. material = new THREE.MeshLambertMaterial();
  287. break;
  288. default:
  289. console.warn( 'THREE.FBXLoader: unknown material type "%s". Defaulting to MeshPhongMaterial.', type );
  290. material = new THREE.MeshPhongMaterial();
  291. break;
  292. }
  293. material.setValues( parameters );
  294. material.name = name;
  295. return material;
  296. },
  297. // Parse FBX material and return parameters suitable for a three.js material
  298. // Also parse the texture map and return any textures associated with the material
  299. parseParameters: function ( materialNode, textureMap, ID ) {
  300. var parameters = {};
  301. if ( materialNode.BumpFactor ) {
  302. parameters.bumpScale = materialNode.BumpFactor.value;
  303. }
  304. if ( materialNode.Diffuse ) {
  305. parameters.color = new THREE.Color().fromArray( materialNode.Diffuse.value );
  306. } else if ( materialNode.DiffuseColor && materialNode.DiffuseColor.type === 'Color' ) {
  307. // The blender exporter exports diffuse here instead of in materialNode.Diffuse
  308. parameters.color = new THREE.Color().fromArray( materialNode.DiffuseColor.value );
  309. }
  310. if ( materialNode.DisplacementFactor ) {
  311. parameters.displacementScale = materialNode.DisplacementFactor.value;
  312. }
  313. if ( materialNode.Emissive ) {
  314. parameters.emissive = new THREE.Color().fromArray( materialNode.Emissive.value );
  315. } else if ( materialNode.EmissiveColor && materialNode.EmissiveColor.type === 'Color' ) {
  316. // The blender exporter exports emissive color here instead of in materialNode.Emissive
  317. parameters.emissive = new THREE.Color().fromArray( materialNode.EmissiveColor.value );
  318. }
  319. if ( materialNode.EmissiveFactor ) {
  320. parameters.emissiveIntensity = parseFloat( materialNode.EmissiveFactor.value );
  321. }
  322. if ( materialNode.Opacity ) {
  323. parameters.opacity = parseFloat( materialNode.Opacity.value );
  324. }
  325. if ( parameters.opacity < 1.0 ) {
  326. parameters.transparent = true;
  327. }
  328. if ( materialNode.ReflectionFactor ) {
  329. parameters.reflectivity = materialNode.ReflectionFactor.value;
  330. }
  331. if ( materialNode.Shininess ) {
  332. parameters.shininess = materialNode.Shininess.value;
  333. }
  334. if ( materialNode.Specular ) {
  335. parameters.specular = new THREE.Color().fromArray( materialNode.Specular.value );
  336. } else if ( materialNode.SpecularColor && materialNode.SpecularColor.type === 'Color' ) {
  337. // The blender exporter exports specular color here instead of in materialNode.Specular
  338. parameters.specular = new THREE.Color().fromArray( materialNode.SpecularColor.value );
  339. }
  340. var self = this;
  341. connections.get( ID ).children.forEach( function ( child ) {
  342. var type = child.relationship;
  343. switch ( type ) {
  344. case 'Bump':
  345. parameters.bumpMap = self.getTexture( textureMap, child.ID );
  346. break;
  347. case 'Maya|TEX_ao_map':
  348. parameters.aoMap = self.getTexture( textureMap, child.ID );
  349. break;
  350. case 'DiffuseColor':
  351. case 'Maya|TEX_color_map':
  352. parameters.map = self.getTexture( textureMap, child.ID );
  353. parameters.map.encoding = THREE.sRGBEncoding;
  354. break;
  355. case 'DisplacementColor':
  356. parameters.displacementMap = self.getTexture( textureMap, child.ID );
  357. break;
  358. case 'EmissiveColor':
  359. parameters.emissiveMap = self.getTexture( textureMap, child.ID );
  360. parameters.emissiveMap.encoding = THREE.sRGBEncoding;
  361. break;
  362. case 'NormalMap':
  363. case 'Maya|TEX_normal_map':
  364. parameters.normalMap = self.getTexture( textureMap, child.ID );
  365. break;
  366. case 'ReflectionColor':
  367. parameters.envMap = self.getTexture( textureMap, child.ID );
  368. parameters.envMap.mapping = THREE.EquirectangularReflectionMapping;
  369. parameters.envMap.encoding = THREE.sRGBEncoding;
  370. break;
  371. case 'SpecularColor':
  372. parameters.specularMap = self.getTexture( textureMap, child.ID );
  373. parameters.specularMap.encoding = THREE.sRGBEncoding;
  374. break;
  375. case 'TransparentColor':
  376. parameters.alphaMap = self.getTexture( textureMap, child.ID );
  377. parameters.transparent = true;
  378. break;
  379. case 'AmbientColor':
  380. case 'ShininessExponent': // AKA glossiness map
  381. case 'SpecularFactor': // AKA specularLevel
  382. case 'VectorDisplacementColor': // NOTE: Seems to be a copy of DisplacementColor
  383. default:
  384. console.warn( 'THREE.FBXLoader: %s map is not supported in three.js, skipping texture.', type );
  385. break;
  386. }
  387. } );
  388. return parameters;
  389. },
  390. // get a texture from the textureMap for use by a material.
  391. getTexture: function ( textureMap, id ) {
  392. // if the texture is a layered texture, just use the first layer and issue a warning
  393. if ( 'LayeredTexture' in fbxTree.Objects && id in fbxTree.Objects.LayeredTexture ) {
  394. console.warn( 'THREE.FBXLoader: layered textures are not supported in three.js. Discarding all but first layer.' );
  395. id = connections.get( id ).children[ 0 ].ID;
  396. }
  397. return textureMap.get( id );
  398. },
  399. // Parse nodes in FBXTree.Objects.Deformer
  400. // Deformer node can contain skinning or Vertex Cache animation data, however only skinning is supported here
  401. // Generates map of Skeleton-like objects for use later when generating and binding skeletons.
  402. parseDeformers: function () {
  403. var skeletons = {};
  404. var morphTargets = {};
  405. if ( 'Deformer' in fbxTree.Objects ) {
  406. var DeformerNodes = fbxTree.Objects.Deformer;
  407. for ( var nodeID in DeformerNodes ) {
  408. var deformerNode = DeformerNodes[ nodeID ];
  409. var relationships = connections.get( parseInt( nodeID ) );
  410. if ( deformerNode.attrType === 'Skin' ) {
  411. var skeleton = this.parseSkeleton( relationships, DeformerNodes );
  412. skeleton.ID = nodeID;
  413. if ( relationships.parents.length > 1 ) console.warn( 'THREE.FBXLoader: skeleton attached to more than one geometry is not supported.' );
  414. skeleton.geometryID = relationships.parents[ 0 ].ID;
  415. skeletons[ nodeID ] = skeleton;
  416. } else if ( deformerNode.attrType === 'BlendShape' ) {
  417. var morphTarget = {
  418. id: nodeID,
  419. };
  420. morphTarget.rawTargets = this.parseMorphTargets( relationships, DeformerNodes );
  421. morphTarget.id = nodeID;
  422. if ( relationships.parents.length > 1 ) console.warn( 'THREE.FBXLoader: morph target attached to more than one geometry is not supported.' );
  423. morphTargets[ nodeID ] = morphTarget;
  424. }
  425. }
  426. }
  427. return {
  428. skeletons: skeletons,
  429. morphTargets: morphTargets,
  430. };
  431. },
  432. // Parse single nodes in FBXTree.Objects.Deformer
  433. // The top level skeleton node has type 'Skin' and sub nodes have type 'Cluster'
  434. // Each skin node represents a skeleton and each cluster node represents a bone
  435. parseSkeleton: function ( relationships, deformerNodes ) {
  436. var rawBones = [];
  437. relationships.children.forEach( function ( child ) {
  438. var boneNode = deformerNodes[ child.ID ];
  439. if ( boneNode.attrType !== 'Cluster' ) return;
  440. var rawBone = {
  441. ID: child.ID,
  442. indices: [],
  443. weights: [],
  444. transformLink: new THREE.Matrix4().fromArray( boneNode.TransformLink.a ),
  445. // transform: new THREE.Matrix4().fromArray( boneNode.Transform.a ),
  446. // linkMode: boneNode.Mode,
  447. };
  448. if ( 'Indexes' in boneNode ) {
  449. rawBone.indices = boneNode.Indexes.a;
  450. rawBone.weights = boneNode.Weights.a;
  451. }
  452. rawBones.push( rawBone );
  453. } );
  454. return {
  455. rawBones: rawBones,
  456. bones: []
  457. };
  458. },
  459. // The top level morph deformer node has type "BlendShape" and sub nodes have type "BlendShapeChannel"
  460. parseMorphTargets: function ( relationships, deformerNodes ) {
  461. var rawMorphTargets = [];
  462. for ( var i = 0; i < relationships.children.length; i ++ ) {
  463. var child = relationships.children[ i ];
  464. var morphTargetNode = deformerNodes[ child.ID ];
  465. var rawMorphTarget = {
  466. name: morphTargetNode.attrName,
  467. initialWeight: morphTargetNode.DeformPercent,
  468. id: morphTargetNode.id,
  469. fullWeights: morphTargetNode.FullWeights.a
  470. };
  471. if ( morphTargetNode.attrType !== 'BlendShapeChannel' ) return;
  472. rawMorphTarget.geoID = connections.get( parseInt( child.ID ) ).children.filter( function ( child ) {
  473. return child.relationship === undefined;
  474. } )[ 0 ].ID;
  475. rawMorphTargets.push( rawMorphTarget );
  476. }
  477. return rawMorphTargets;
  478. },
  479. // create the main THREE.Group() to be returned by the loader
  480. parseScene: function ( deformers, geometryMap, materialMap ) {
  481. sceneGraph = new THREE.Group();
  482. var modelMap = this.parseModels( deformers.skeletons, geometryMap, materialMap );
  483. var modelNodes = fbxTree.Objects.Model;
  484. var self = this;
  485. modelMap.forEach( function ( model ) {
  486. var modelNode = modelNodes[ model.ID ];
  487. self.setLookAtProperties( model, modelNode );
  488. var parentConnections = connections.get( model.ID ).parents;
  489. parentConnections.forEach( function ( connection ) {
  490. var parent = modelMap.get( connection.ID );
  491. if ( parent !== undefined ) parent.add( model );
  492. } );
  493. if ( model.parent === null ) {
  494. sceneGraph.add( model );
  495. }
  496. } );
  497. this.bindSkeleton( deformers.skeletons, geometryMap, modelMap );
  498. this.createAmbientLight();
  499. this.setupMorphMaterials();
  500. sceneGraph.traverse( function ( node ) {
  501. if ( node.userData.transformData ) {
  502. if ( node.parent ) node.userData.transformData.parentMatrixWorld = node.parent.matrix;
  503. var transform = generateTransform( node.userData.transformData );
  504. node.applyMatrix( transform );
  505. }
  506. } );
  507. var animations = new AnimationParser().parse();
  508. // if all the models where already combined in a single group, just return that
  509. if ( sceneGraph.children.length === 1 && sceneGraph.children[ 0 ].isGroup ) {
  510. sceneGraph.children[ 0 ].animations = animations;
  511. sceneGraph = sceneGraph.children[ 0 ];
  512. }
  513. sceneGraph.animations = animations;
  514. },
  515. // parse nodes in FBXTree.Objects.Model
  516. parseModels: function ( skeletons, geometryMap, materialMap ) {
  517. var modelMap = new Map();
  518. var modelNodes = fbxTree.Objects.Model;
  519. for ( var nodeID in modelNodes ) {
  520. var id = parseInt( nodeID );
  521. var node = modelNodes[ nodeID ];
  522. var relationships = connections.get( id );
  523. var model = this.buildSkeleton( relationships, skeletons, id, node.attrName );
  524. if ( ! model ) {
  525. switch ( node.attrType ) {
  526. case 'Camera':
  527. model = this.createCamera( relationships );
  528. break;
  529. case 'Light':
  530. model = this.createLight( relationships );
  531. break;
  532. case 'Mesh':
  533. model = this.createMesh( relationships, geometryMap, materialMap );
  534. break;
  535. case 'NurbsCurve':
  536. model = this.createCurve( relationships, geometryMap );
  537. break;
  538. case 'LimbNode':
  539. case 'Root':
  540. model = new THREE.Bone();
  541. break;
  542. case 'Null':
  543. default:
  544. model = new THREE.Group();
  545. break;
  546. }
  547. model.name = THREE.PropertyBinding.sanitizeNodeName( node.attrName );
  548. model.ID = id;
  549. }
  550. this.getTransformData( model, node );
  551. modelMap.set( id, model );
  552. }
  553. return modelMap;
  554. },
  555. buildSkeleton: function ( relationships, skeletons, id, name ) {
  556. var bone = null;
  557. relationships.parents.forEach( function ( parent ) {
  558. for ( var ID in skeletons ) {
  559. var skeleton = skeletons[ ID ];
  560. skeleton.rawBones.forEach( function ( rawBone, i ) {
  561. if ( rawBone.ID === parent.ID ) {
  562. var subBone = bone;
  563. bone = new THREE.Bone();
  564. bone.matrixWorld.copy( rawBone.transformLink );
  565. // set name and id here - otherwise in cases where "subBone" is created it will not have a name / id
  566. bone.name = THREE.PropertyBinding.sanitizeNodeName( name );
  567. bone.ID = id;
  568. skeleton.bones[ i ] = bone;
  569. // In cases where a bone is shared between multiple meshes
  570. // duplicate the bone here and and it as a child of the first bone
  571. if ( subBone !== null ) {
  572. bone.add( subBone );
  573. }
  574. }
  575. } );
  576. }
  577. } );
  578. return bone;
  579. },
  580. // create a THREE.PerspectiveCamera or THREE.OrthographicCamera
  581. createCamera: function ( relationships ) {
  582. var model;
  583. var cameraAttribute;
  584. relationships.children.forEach( function ( child ) {
  585. var attr = fbxTree.Objects.NodeAttribute[ child.ID ];
  586. if ( attr !== undefined ) {
  587. cameraAttribute = attr;
  588. }
  589. } );
  590. if ( cameraAttribute === undefined ) {
  591. model = new THREE.Object3D();
  592. } else {
  593. var type = 0;
  594. if ( cameraAttribute.CameraProjectionType !== undefined && cameraAttribute.CameraProjectionType.value === 1 ) {
  595. type = 1;
  596. }
  597. var nearClippingPlane = 1;
  598. if ( cameraAttribute.NearPlane !== undefined ) {
  599. nearClippingPlane = cameraAttribute.NearPlane.value / 1000;
  600. }
  601. var farClippingPlane = 1000;
  602. if ( cameraAttribute.FarPlane !== undefined ) {
  603. farClippingPlane = cameraAttribute.FarPlane.value / 1000;
  604. }
  605. var width = window.innerWidth;
  606. var height = window.innerHeight;
  607. if ( cameraAttribute.AspectWidth !== undefined && cameraAttribute.AspectHeight !== undefined ) {
  608. width = cameraAttribute.AspectWidth.value;
  609. height = cameraAttribute.AspectHeight.value;
  610. }
  611. var aspect = width / height;
  612. var fov = 45;
  613. if ( cameraAttribute.FieldOfView !== undefined ) {
  614. fov = cameraAttribute.FieldOfView.value;
  615. }
  616. var focalLength = cameraAttribute.FocalLength ? cameraAttribute.FocalLength.value : null;
  617. switch ( type ) {
  618. case 0: // Perspective
  619. model = new THREE.PerspectiveCamera( fov, aspect, nearClippingPlane, farClippingPlane );
  620. if ( focalLength !== null ) model.setFocalLength( focalLength );
  621. break;
  622. case 1: // Orthographic
  623. model = new THREE.OrthographicCamera( - width / 2, width / 2, height / 2, - height / 2, nearClippingPlane, farClippingPlane );
  624. break;
  625. default:
  626. console.warn( 'THREE.FBXLoader: Unknown camera type ' + type + '.' );
  627. model = new THREE.Object3D();
  628. break;
  629. }
  630. }
  631. return model;
  632. },
  633. // Create a THREE.DirectionalLight, THREE.PointLight or THREE.SpotLight
  634. createLight: function ( relationships ) {
  635. var model;
  636. var lightAttribute;
  637. relationships.children.forEach( function ( child ) {
  638. var attr = fbxTree.Objects.NodeAttribute[ child.ID ];
  639. if ( attr !== undefined ) {
  640. lightAttribute = attr;
  641. }
  642. } );
  643. if ( lightAttribute === undefined ) {
  644. model = new THREE.Object3D();
  645. } else {
  646. var type;
  647. // LightType can be undefined for Point lights
  648. if ( lightAttribute.LightType === undefined ) {
  649. type = 0;
  650. } else {
  651. type = lightAttribute.LightType.value;
  652. }
  653. var color = 0xffffff;
  654. if ( lightAttribute.Color !== undefined ) {
  655. color = new THREE.Color().fromArray( lightAttribute.Color.value );
  656. }
  657. var intensity = ( lightAttribute.Intensity === undefined ) ? 1 : lightAttribute.Intensity.value / 100;
  658. // light disabled
  659. if ( lightAttribute.CastLightOnObject !== undefined && lightAttribute.CastLightOnObject.value === 0 ) {
  660. intensity = 0;
  661. }
  662. var distance = 0;
  663. if ( lightAttribute.FarAttenuationEnd !== undefined ) {
  664. if ( lightAttribute.EnableFarAttenuation !== undefined && lightAttribute.EnableFarAttenuation.value === 0 ) {
  665. distance = 0;
  666. } else {
  667. distance = lightAttribute.FarAttenuationEnd.value;
  668. }
  669. }
  670. // TODO: could this be calculated linearly from FarAttenuationStart to FarAttenuationEnd?
  671. var decay = 1;
  672. switch ( type ) {
  673. case 0: // Point
  674. model = new THREE.PointLight( color, intensity, distance, decay );
  675. break;
  676. case 1: // Directional
  677. model = new THREE.DirectionalLight( color, intensity );
  678. break;
  679. case 2: // Spot
  680. var angle = Math.PI / 3;
  681. if ( lightAttribute.InnerAngle !== undefined ) {
  682. angle = THREE.Math.degToRad( lightAttribute.InnerAngle.value );
  683. }
  684. var penumbra = 0;
  685. if ( lightAttribute.OuterAngle !== undefined ) {
  686. // TODO: this is not correct - FBX calculates outer and inner angle in degrees
  687. // with OuterAngle > InnerAngle && OuterAngle <= Math.PI
  688. // while three.js uses a penumbra between (0, 1) to attenuate the inner angle
  689. penumbra = THREE.Math.degToRad( lightAttribute.OuterAngle.value );
  690. penumbra = Math.max( penumbra, 1 );
  691. }
  692. model = new THREE.SpotLight( color, intensity, distance, angle, penumbra, decay );
  693. break;
  694. default:
  695. console.warn( 'THREE.FBXLoader: Unknown light type ' + lightAttribute.LightType.value + ', defaulting to a THREE.PointLight.' );
  696. model = new THREE.PointLight( color, intensity );
  697. break;
  698. }
  699. if ( lightAttribute.CastShadows !== undefined && lightAttribute.CastShadows.value === 1 ) {
  700. model.castShadow = true;
  701. }
  702. }
  703. return model;
  704. },
  705. createMesh: function ( relationships, geometryMap, materialMap ) {
  706. var model;
  707. var geometry = null;
  708. var material = null;
  709. var materials = [];
  710. // get geometry and materials(s) from connections
  711. relationships.children.forEach( function ( child ) {
  712. if ( geometryMap.has( child.ID ) ) {
  713. geometry = geometryMap.get( child.ID );
  714. }
  715. if ( materialMap.has( child.ID ) ) {
  716. materials.push( materialMap.get( child.ID ) );
  717. }
  718. } );
  719. if ( materials.length > 1 ) {
  720. material = materials;
  721. } else if ( materials.length > 0 ) {
  722. material = materials[ 0 ];
  723. } else {
  724. material = new THREE.MeshPhongMaterial( { color: 0xcccccc } );
  725. materials.push( material );
  726. }
  727. if ( 'color' in geometry.attributes ) {
  728. materials.forEach( function ( material ) {
  729. material.vertexColors = THREE.VertexColors;
  730. } );
  731. }
  732. if ( geometry.FBX_Deformer ) {
  733. materials.forEach( function ( material ) {
  734. material.skinning = true;
  735. } );
  736. model = new THREE.SkinnedMesh( geometry, material );
  737. model.normalizeSkinWeights();
  738. } else {
  739. model = new THREE.Mesh( geometry, material );
  740. }
  741. return model;
  742. },
  743. createCurve: function ( relationships, geometryMap ) {
  744. var geometry = relationships.children.reduce( function ( geo, child ) {
  745. if ( geometryMap.has( child.ID ) ) geo = geometryMap.get( child.ID );
  746. return geo;
  747. }, null );
  748. // FBX does not list materials for Nurbs lines, so we'll just put our own in here.
  749. var material = new THREE.LineBasicMaterial( { color: 0x3300ff, linewidth: 1 } );
  750. return new THREE.Line( geometry, material );
  751. },
  752. // parse the model node for transform data
  753. getTransformData: function ( model, modelNode ) {
  754. var transformData = {};
  755. if ( 'InheritType' in modelNode ) transformData.inheritType = parseInt( modelNode.InheritType.value );
  756. if ( 'RotationOrder' in modelNode ) transformData.eulerOrder = getEulerOrder( modelNode.RotationOrder.value );
  757. else transformData.eulerOrder = 'ZYX';
  758. if ( 'Lcl_Translation' in modelNode ) transformData.translation = modelNode.Lcl_Translation.value;
  759. if ( 'PreRotation' in modelNode ) transformData.preRotation = modelNode.PreRotation.value;
  760. if ( 'Lcl_Rotation' in modelNode ) transformData.rotation = modelNode.Lcl_Rotation.value;
  761. if ( 'PostRotation' in modelNode ) transformData.postRotation = modelNode.PostRotation.value;
  762. if ( 'Lcl_Scaling' in modelNode ) transformData.scale = modelNode.Lcl_Scaling.value;
  763. if ( 'ScalingOffset' in modelNode ) transformData.scalingOffset = modelNode.ScalingOffset.value;
  764. if ( 'ScalingPivot' in modelNode ) transformData.scalingPivot = modelNode.ScalingPivot.value;
  765. if ( 'RotationOffset' in modelNode ) transformData.rotationOffset = modelNode.RotationOffset.value;
  766. if ( 'RotationPivot' in modelNode ) transformData.rotationPivot = modelNode.RotationPivot.value;
  767. model.userData.transformData = transformData;
  768. },
  769. setLookAtProperties: function ( model, modelNode ) {
  770. if ( 'LookAtProperty' in modelNode ) {
  771. var children = connections.get( model.ID ).children;
  772. children.forEach( function ( child ) {
  773. if ( child.relationship === 'LookAtProperty' ) {
  774. var lookAtTarget = fbxTree.Objects.Model[ child.ID ];
  775. if ( 'Lcl_Translation' in lookAtTarget ) {
  776. var pos = lookAtTarget.Lcl_Translation.value;
  777. // DirectionalLight, SpotLight
  778. if ( model.target !== undefined ) {
  779. model.target.position.fromArray( pos );
  780. sceneGraph.add( model.target );
  781. } else { // Cameras and other Object3Ds
  782. model.lookAt( new THREE.Vector3().fromArray( pos ) );
  783. }
  784. }
  785. }
  786. } );
  787. }
  788. },
  789. bindSkeleton: function ( skeletons, geometryMap, modelMap ) {
  790. var bindMatrices = this.parsePoseNodes();
  791. for ( var ID in skeletons ) {
  792. var skeleton = skeletons[ ID ];
  793. var parents = connections.get( parseInt( skeleton.ID ) ).parents;
  794. parents.forEach( function ( parent ) {
  795. if ( geometryMap.has( parent.ID ) ) {
  796. var geoID = parent.ID;
  797. var geoRelationships = connections.get( geoID );
  798. geoRelationships.parents.forEach( function ( geoConnParent ) {
  799. if ( modelMap.has( geoConnParent.ID ) ) {
  800. var model = modelMap.get( geoConnParent.ID );
  801. model.bind( new THREE.Skeleton( skeleton.bones ), bindMatrices[ geoConnParent.ID ] );
  802. }
  803. } );
  804. }
  805. } );
  806. }
  807. },
  808. parsePoseNodes: function () {
  809. var bindMatrices = {};
  810. if ( 'Pose' in fbxTree.Objects ) {
  811. var BindPoseNode = fbxTree.Objects.Pose;
  812. for ( var nodeID in BindPoseNode ) {
  813. if ( BindPoseNode[ nodeID ].attrType === 'BindPose' ) {
  814. var poseNodes = BindPoseNode[ nodeID ].PoseNode;
  815. if ( Array.isArray( poseNodes ) ) {
  816. poseNodes.forEach( function ( poseNode ) {
  817. bindMatrices[ poseNode.Node ] = new THREE.Matrix4().fromArray( poseNode.Matrix.a );
  818. } );
  819. } else {
  820. bindMatrices[ poseNodes.Node ] = new THREE.Matrix4().fromArray( poseNodes.Matrix.a );
  821. }
  822. }
  823. }
  824. }
  825. return bindMatrices;
  826. },
  827. // Parse ambient color in FBXTree.GlobalSettings - if it's not set to black (default), create an ambient light
  828. createAmbientLight: function () {
  829. if ( 'GlobalSettings' in fbxTree && 'AmbientColor' in fbxTree.GlobalSettings ) {
  830. var ambientColor = fbxTree.GlobalSettings.AmbientColor.value;
  831. var r = ambientColor[ 0 ];
  832. var g = ambientColor[ 1 ];
  833. var b = ambientColor[ 2 ];
  834. if ( r !== 0 || g !== 0 || b !== 0 ) {
  835. var color = new THREE.Color( r, g, b );
  836. sceneGraph.add( new THREE.AmbientLight( color, 1 ) );
  837. }
  838. }
  839. },
  840. setupMorphMaterials: function () {
  841. var self = this;
  842. sceneGraph.traverse( function ( child ) {
  843. if ( child.isMesh ) {
  844. if ( child.geometry.morphAttributes.position && child.geometry.morphAttributes.position.length ) {
  845. if ( Array.isArray( child.material ) ) {
  846. child.material.forEach( function ( material, i ) {
  847. self.setupMorphMaterial( child, material, i );
  848. } );
  849. } else {
  850. self.setupMorphMaterial( child, child.material );
  851. }
  852. }
  853. }
  854. } );
  855. },
  856. setupMorphMaterial: function ( child, material, index ) {
  857. var uuid = child.uuid;
  858. var matUuid = material.uuid;
  859. // if a geometry has morph targets, it cannot share the material with other geometries
  860. var sharedMat = false;
  861. sceneGraph.traverse( function ( node ) {
  862. if ( node.isMesh ) {
  863. if ( Array.isArray( node.material ) ) {
  864. node.material.forEach( function ( mat ) {
  865. if ( mat.uuid === matUuid && node.uuid !== uuid ) sharedMat = true;
  866. } );
  867. } else if ( node.material.uuid === matUuid && node.uuid !== uuid ) sharedMat = true;
  868. }
  869. } );
  870. if ( sharedMat === true ) {
  871. var clonedMat = material.clone();
  872. clonedMat.morphTargets = true;
  873. if ( index === undefined ) child.material = clonedMat;
  874. else child.material[ index ] = clonedMat;
  875. } else material.morphTargets = true;
  876. }
  877. };
  878. // parse Geometry data from FBXTree and return map of BufferGeometries
  879. function GeometryParser() {}
  880. GeometryParser.prototype = {
  881. constructor: GeometryParser,
  882. // Parse nodes in FBXTree.Objects.Geometry
  883. parse: function ( deformers ) {
  884. var geometryMap = new Map();
  885. if ( 'Geometry' in fbxTree.Objects ) {
  886. var geoNodes = fbxTree.Objects.Geometry;
  887. for ( var nodeID in geoNodes ) {
  888. var relationships = connections.get( parseInt( nodeID ) );
  889. var geo = this.parseGeometry( relationships, geoNodes[ nodeID ], deformers );
  890. geometryMap.set( parseInt( nodeID ), geo );
  891. }
  892. }
  893. return geometryMap;
  894. },
  895. // Parse single node in FBXTree.Objects.Geometry
  896. parseGeometry: function ( relationships, geoNode, deformers ) {
  897. switch ( geoNode.attrType ) {
  898. case 'Mesh':
  899. return this.parseMeshGeometry( relationships, geoNode, deformers );
  900. break;
  901. case 'NurbsCurve':
  902. return this.parseNurbsGeometry( geoNode );
  903. break;
  904. }
  905. },
  906. // Parse single node mesh geometry in FBXTree.Objects.Geometry
  907. parseMeshGeometry: function ( relationships, geoNode, deformers ) {
  908. var skeletons = deformers.skeletons;
  909. var morphTargets = deformers.morphTargets;
  910. var modelNodes = relationships.parents.map( function ( parent ) {
  911. return fbxTree.Objects.Model[ parent.ID ];
  912. } );
  913. // don't create geometry if it is not associated with any models
  914. if ( modelNodes.length === 0 ) return;
  915. var skeleton = relationships.children.reduce( function ( skeleton, child ) {
  916. if ( skeletons[ child.ID ] !== undefined ) skeleton = skeletons[ child.ID ];
  917. return skeleton;
  918. }, null );
  919. var morphTarget = relationships.children.reduce( function ( morphTarget, child ) {
  920. if ( morphTargets[ child.ID ] !== undefined ) morphTarget = morphTargets[ child.ID ];
  921. return morphTarget;
  922. }, null );
  923. // Assume one model and get the preRotation from that
  924. // if there is more than one model associated with the geometry this may cause problems
  925. var modelNode = modelNodes[ 0 ];
  926. var transformData = {};
  927. if ( 'RotationOrder' in modelNode ) transformData.eulerOrder = getEulerOrder( modelNode.RotationOrder.value );
  928. if ( 'InheritType' in modelNode ) transformData.inheritType = parseInt( modelNode.InheritType.value );
  929. if ( 'GeometricTranslation' in modelNode ) transformData.translation = modelNode.GeometricTranslation.value;
  930. if ( 'GeometricRotation' in modelNode ) transformData.rotation = modelNode.GeometricRotation.value;
  931. if ( 'GeometricScaling' in modelNode ) transformData.scale = modelNode.GeometricScaling.value;
  932. var transform = generateTransform( transformData );
  933. return this.genGeometry( geoNode, skeleton, morphTarget, transform );
  934. },
  935. // Generate a THREE.BufferGeometry from a node in FBXTree.Objects.Geometry
  936. genGeometry: function ( geoNode, skeleton, morphTarget, preTransform ) {
  937. var geo = new THREE.BufferGeometry();
  938. if ( geoNode.attrName ) geo.name = geoNode.attrName;
  939. var geoInfo = this.parseGeoNode( geoNode, skeleton );
  940. var buffers = this.genBuffers( geoInfo );
  941. var positionAttribute = new THREE.Float32BufferAttribute( buffers.vertex, 3 );
  942. preTransform.applyToBufferAttribute( positionAttribute );
  943. geo.addAttribute( 'position', positionAttribute );
  944. if ( buffers.colors.length > 0 ) {
  945. geo.addAttribute( 'color', new THREE.Float32BufferAttribute( buffers.colors, 3 ) );
  946. }
  947. if ( skeleton ) {
  948. geo.addAttribute( 'skinIndex', new THREE.Uint16BufferAttribute( buffers.weightsIndices, 4 ) );
  949. geo.addAttribute( 'skinWeight', new THREE.Float32BufferAttribute( buffers.vertexWeights, 4 ) );
  950. // used later to bind the skeleton to the model
  951. geo.FBX_Deformer = skeleton;
  952. }
  953. if ( buffers.normal.length > 0 ) {
  954. var normalAttribute = new THREE.Float32BufferAttribute( buffers.normal, 3 );
  955. var normalMatrix = new THREE.Matrix3().getNormalMatrix( preTransform );
  956. normalMatrix.applyToBufferAttribute( normalAttribute );
  957. geo.addAttribute( 'normal', normalAttribute );
  958. }
  959. buffers.uvs.forEach( function ( uvBuffer, i ) {
  960. // subsequent uv buffers are called 'uv1', 'uv2', ...
  961. var name = 'uv' + ( i + 1 ).toString();
  962. // the first uv buffer is just called 'uv'
  963. if ( i === 0 ) {
  964. name = 'uv';
  965. }
  966. geo.addAttribute( name, new THREE.Float32BufferAttribute( buffers.uvs[ i ], 2 ) );
  967. } );
  968. if ( geoInfo.material && geoInfo.material.mappingType !== 'AllSame' ) {
  969. // Convert the material indices of each vertex into rendering groups on the geometry.
  970. var prevMaterialIndex = buffers.materialIndex[ 0 ];
  971. var startIndex = 0;
  972. buffers.materialIndex.forEach( function ( currentIndex, i ) {
  973. if ( currentIndex !== prevMaterialIndex ) {
  974. geo.addGroup( startIndex, i - startIndex, prevMaterialIndex );
  975. prevMaterialIndex = currentIndex;
  976. startIndex = i;
  977. }
  978. } );
  979. // the loop above doesn't add the last group, do that here.
  980. if ( geo.groups.length > 0 ) {
  981. var lastGroup = geo.groups[ geo.groups.length - 1 ];
  982. var lastIndex = lastGroup.start + lastGroup.count;
  983. if ( lastIndex !== buffers.materialIndex.length ) {
  984. geo.addGroup( lastIndex, buffers.materialIndex.length - lastIndex, prevMaterialIndex );
  985. }
  986. }
  987. // case where there are multiple materials but the whole geometry is only
  988. // using one of them
  989. if ( geo.groups.length === 0 ) {
  990. geo.addGroup( 0, buffers.materialIndex.length, buffers.materialIndex[ 0 ] );
  991. }
  992. }
  993. this.addMorphTargets( geo, geoNode, morphTarget, preTransform );
  994. return geo;
  995. },
  996. parseGeoNode: function ( geoNode, skeleton ) {
  997. var geoInfo = {};
  998. geoInfo.vertexPositions = ( geoNode.Vertices !== undefined ) ? geoNode.Vertices.a : [];
  999. geoInfo.vertexIndices = ( geoNode.PolygonVertexIndex !== undefined ) ? geoNode.PolygonVertexIndex.a : [];
  1000. if ( geoNode.LayerElementColor ) {
  1001. geoInfo.color = this.parseVertexColors( geoNode.LayerElementColor[ 0 ] );
  1002. }
  1003. if ( geoNode.LayerElementMaterial ) {
  1004. geoInfo.material = this.parseMaterialIndices( geoNode.LayerElementMaterial[ 0 ] );
  1005. }
  1006. if ( geoNode.LayerElementNormal ) {
  1007. geoInfo.normal = this.parseNormals( geoNode.LayerElementNormal[ 0 ] );
  1008. }
  1009. if ( geoNode.LayerElementUV ) {
  1010. geoInfo.uv = [];
  1011. var i = 0;
  1012. while ( geoNode.LayerElementUV[ i ] ) {
  1013. geoInfo.uv.push( this.parseUVs( geoNode.LayerElementUV[ i ] ) );
  1014. i ++;
  1015. }
  1016. }
  1017. geoInfo.weightTable = {};
  1018. if ( skeleton !== null ) {
  1019. geoInfo.skeleton = skeleton;
  1020. skeleton.rawBones.forEach( function ( rawBone, i ) {
  1021. // loop over the bone's vertex indices and weights
  1022. rawBone.indices.forEach( function ( index, j ) {
  1023. if ( geoInfo.weightTable[ index ] === undefined ) geoInfo.weightTable[ index ] = [];
  1024. geoInfo.weightTable[ index ].push( {
  1025. id: i,
  1026. weight: rawBone.weights[ j ],
  1027. } );
  1028. } );
  1029. } );
  1030. }
  1031. return geoInfo;
  1032. },
  1033. genBuffers: function ( geoInfo ) {
  1034. var buffers = {
  1035. vertex: [],
  1036. normal: [],
  1037. colors: [],
  1038. uvs: [],
  1039. materialIndex: [],
  1040. vertexWeights: [],
  1041. weightsIndices: [],
  1042. };
  1043. var polygonIndex = 0;
  1044. var faceLength = 0;
  1045. var displayedWeightsWarning = false;
  1046. // these will hold data for a single face
  1047. var facePositionIndexes = [];
  1048. var faceNormals = [];
  1049. var faceColors = [];
  1050. var faceUVs = [];
  1051. var faceWeights = [];
  1052. var faceWeightIndices = [];
  1053. var self = this;
  1054. geoInfo.vertexIndices.forEach( function ( vertexIndex, polygonVertexIndex ) {
  1055. var endOfFace = false;
  1056. // Face index and vertex index arrays are combined in a single array
  1057. // A cube with quad faces looks like this:
  1058. // PolygonVertexIndex: *24 {
  1059. // a: 0, 1, 3, -3, 2, 3, 5, -5, 4, 5, 7, -7, 6, 7, 1, -1, 1, 7, 5, -4, 6, 0, 2, -5
  1060. // }
  1061. // Negative numbers mark the end of a face - first face here is 0, 1, 3, -3
  1062. // to find index of last vertex bit shift the index: ^ - 1
  1063. if ( vertexIndex < 0 ) {
  1064. vertexIndex = vertexIndex ^ - 1; // equivalent to ( x * -1 ) - 1
  1065. endOfFace = true;
  1066. }
  1067. var weightIndices = [];
  1068. var weights = [];
  1069. facePositionIndexes.push( vertexIndex * 3, vertexIndex * 3 + 1, vertexIndex * 3 + 2 );
  1070. if ( geoInfo.color ) {
  1071. var data = getData( polygonVertexIndex, polygonIndex, vertexIndex, geoInfo.color );
  1072. faceColors.push( data[ 0 ], data[ 1 ], data[ 2 ] );
  1073. }
  1074. if ( geoInfo.skeleton ) {
  1075. if ( geoInfo.weightTable[ vertexIndex ] !== undefined ) {
  1076. geoInfo.weightTable[ vertexIndex ].forEach( function ( wt ) {
  1077. weights.push( wt.weight );
  1078. weightIndices.push( wt.id );
  1079. } );
  1080. }
  1081. if ( weights.length > 4 ) {
  1082. if ( ! displayedWeightsWarning ) {
  1083. console.warn( 'THREE.FBXLoader: Vertex has more than 4 skinning weights assigned to vertex. Deleting additional weights.' );
  1084. displayedWeightsWarning = true;
  1085. }
  1086. var wIndex = [ 0, 0, 0, 0 ];
  1087. var Weight = [ 0, 0, 0, 0 ];
  1088. weights.forEach( function ( weight, weightIndex ) {
  1089. var currentWeight = weight;
  1090. var currentIndex = weightIndices[ weightIndex ];
  1091. Weight.forEach( function ( comparedWeight, comparedWeightIndex, comparedWeightArray ) {
  1092. if ( currentWeight > comparedWeight ) {
  1093. comparedWeightArray[ comparedWeightIndex ] = currentWeight;
  1094. currentWeight = comparedWeight;
  1095. var tmp = wIndex[ comparedWeightIndex ];
  1096. wIndex[ comparedWeightIndex ] = currentIndex;
  1097. currentIndex = tmp;
  1098. }
  1099. } );
  1100. } );
  1101. weightIndices = wIndex;
  1102. weights = Weight;
  1103. }
  1104. // if the weight array is shorter than 4 pad with 0s
  1105. while ( weights.length < 4 ) {
  1106. weights.push( 0 );
  1107. weightIndices.push( 0 );
  1108. }
  1109. for ( var i = 0; i < 4; ++ i ) {
  1110. faceWeights.push( weights[ i ] );
  1111. faceWeightIndices.push( weightIndices[ i ] );
  1112. }
  1113. }
  1114. if ( geoInfo.normal ) {
  1115. var data = getData( polygonVertexIndex, polygonIndex, vertexIndex, geoInfo.normal );
  1116. faceNormals.push( data[ 0 ], data[ 1 ], data[ 2 ] );
  1117. }
  1118. if ( geoInfo.material && geoInfo.material.mappingType !== 'AllSame' ) {
  1119. var materialIndex = getData( polygonVertexIndex, polygonIndex, vertexIndex, geoInfo.material )[ 0 ];
  1120. }
  1121. if ( geoInfo.uv ) {
  1122. geoInfo.uv.forEach( function ( uv, i ) {
  1123. var data = getData( polygonVertexIndex, polygonIndex, vertexIndex, uv );
  1124. if ( faceUVs[ i ] === undefined ) {
  1125. faceUVs[ i ] = [];
  1126. }
  1127. faceUVs[ i ].push( data[ 0 ] );
  1128. faceUVs[ i ].push( data[ 1 ] );
  1129. } );
  1130. }
  1131. faceLength ++;
  1132. if ( endOfFace ) {
  1133. self.genFace( buffers, geoInfo, facePositionIndexes, materialIndex, faceNormals, faceColors, faceUVs, faceWeights, faceWeightIndices, faceLength );
  1134. polygonIndex ++;
  1135. faceLength = 0;
  1136. // reset arrays for the next face
  1137. facePositionIndexes = [];
  1138. faceNormals = [];
  1139. faceColors = [];
  1140. faceUVs = [];
  1141. faceWeights = [];
  1142. faceWeightIndices = [];
  1143. }
  1144. } );
  1145. return buffers;
  1146. },
  1147. // Generate data for a single face in a geometry. If the face is a quad then split it into 2 tris
  1148. genFace: function ( buffers, geoInfo, facePositionIndexes, materialIndex, faceNormals, faceColors, faceUVs, faceWeights, faceWeightIndices, faceLength ) {
  1149. for ( var i = 2; i < faceLength; i ++ ) {
  1150. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ 0 ] ] );
  1151. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ 1 ] ] );
  1152. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ 2 ] ] );
  1153. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ ( i - 1 ) * 3 ] ] );
  1154. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ ( i - 1 ) * 3 + 1 ] ] );
  1155. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ ( i - 1 ) * 3 + 2 ] ] );
  1156. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ i * 3 ] ] );
  1157. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ i * 3 + 1 ] ] );
  1158. buffers.vertex.push( geoInfo.vertexPositions[ facePositionIndexes[ i * 3 + 2 ] ] );
  1159. if ( geoInfo.skeleton ) {
  1160. buffers.vertexWeights.push( faceWeights[ 0 ] );
  1161. buffers.vertexWeights.push( faceWeights[ 1 ] );
  1162. buffers.vertexWeights.push( faceWeights[ 2 ] );
  1163. buffers.vertexWeights.push( faceWeights[ 3 ] );
  1164. buffers.vertexWeights.push( faceWeights[ ( i - 1 ) * 4 ] );
  1165. buffers.vertexWeights.push( faceWeights[ ( i - 1 ) * 4 + 1 ] );
  1166. buffers.vertexWeights.push( faceWeights[ ( i - 1 ) * 4 + 2 ] );
  1167. buffers.vertexWeights.push( faceWeights[ ( i - 1 ) * 4 + 3 ] );
  1168. buffers.vertexWeights.push( faceWeights[ i * 4 ] );
  1169. buffers.vertexWeights.push( faceWeights[ i * 4 + 1 ] );
  1170. buffers.vertexWeights.push( faceWeights[ i * 4 + 2 ] );
  1171. buffers.vertexWeights.push( faceWeights[ i * 4 + 3 ] );
  1172. buffers.weightsIndices.push( faceWeightIndices[ 0 ] );
  1173. buffers.weightsIndices.push( faceWeightIndices[ 1 ] );
  1174. buffers.weightsIndices.push( faceWeightIndices[ 2 ] );
  1175. buffers.weightsIndices.push( faceWeightIndices[ 3 ] );
  1176. buffers.weightsIndices.push( faceWeightIndices[ ( i - 1 ) * 4 ] );
  1177. buffers.weightsIndices.push( faceWeightIndices[ ( i - 1 ) * 4 + 1 ] );
  1178. buffers.weightsIndices.push( faceWeightIndices[ ( i - 1 ) * 4 + 2 ] );
  1179. buffers.weightsIndices.push( faceWeightIndices[ ( i - 1 ) * 4 + 3 ] );
  1180. buffers.weightsIndices.push( faceWeightIndices[ i * 4 ] );
  1181. buffers.weightsIndices.push( faceWeightIndices[ i * 4 + 1 ] );
  1182. buffers.weightsIndices.push( faceWeightIndices[ i * 4 + 2 ] );
  1183. buffers.weightsIndices.push( faceWeightIndices[ i * 4 + 3 ] );
  1184. }
  1185. if ( geoInfo.color ) {
  1186. buffers.colors.push( faceColors[ 0 ] );
  1187. buffers.colors.push( faceColors[ 1 ] );
  1188. buffers.colors.push( faceColors[ 2 ] );
  1189. buffers.colors.push( faceColors[ ( i - 1 ) * 3 ] );
  1190. buffers.colors.push( faceColors[ ( i - 1 ) * 3 + 1 ] );
  1191. buffers.colors.push( faceColors[ ( i - 1 ) * 3 + 2 ] );
  1192. buffers.colors.push( faceColors[ i * 3 ] );
  1193. buffers.colors.push( faceColors[ i * 3 + 1 ] );
  1194. buffers.colors.push( faceColors[ i * 3 + 2 ] );
  1195. }
  1196. if ( geoInfo.material && geoInfo.material.mappingType !== 'AllSame' ) {
  1197. buffers.materialIndex.push( materialIndex );
  1198. buffers.materialIndex.push( materialIndex );
  1199. buffers.materialIndex.push( materialIndex );
  1200. }
  1201. if ( geoInfo.normal ) {
  1202. buffers.normal.push( faceNormals[ 0 ] );
  1203. buffers.normal.push( faceNormals[ 1 ] );
  1204. buffers.normal.push( faceNormals[ 2 ] );
  1205. buffers.normal.push( faceNormals[ ( i - 1 ) * 3 ] );
  1206. buffers.normal.push( faceNormals[ ( i - 1 ) * 3 + 1 ] );
  1207. buffers.normal.push( faceNormals[ ( i - 1 ) * 3 + 2 ] );
  1208. buffers.normal.push( faceNormals[ i * 3 ] );
  1209. buffers.normal.push( faceNormals[ i * 3 + 1 ] );
  1210. buffers.normal.push( faceNormals[ i * 3 + 2 ] );
  1211. }
  1212. if ( geoInfo.uv ) {
  1213. geoInfo.uv.forEach( function ( uv, j ) {
  1214. if ( buffers.uvs[ j ] === undefined ) buffers.uvs[ j ] = [];
  1215. buffers.uvs[ j ].push( faceUVs[ j ][ 0 ] );
  1216. buffers.uvs[ j ].push( faceUVs[ j ][ 1 ] );
  1217. buffers.uvs[ j ].push( faceUVs[ j ][ ( i - 1 ) * 2 ] );
  1218. buffers.uvs[ j ].push( faceUVs[ j ][ ( i - 1 ) * 2 + 1 ] );
  1219. buffers.uvs[ j ].push( faceUVs[ j ][ i * 2 ] );
  1220. buffers.uvs[ j ].push( faceUVs[ j ][ i * 2 + 1 ] );
  1221. } );
  1222. }
  1223. }
  1224. },
  1225. addMorphTargets: function ( parentGeo, parentGeoNode, morphTarget, preTransform ) {
  1226. if ( morphTarget === null ) return;
  1227. parentGeo.morphAttributes.position = [];
  1228. // parentGeo.morphAttributes.normal = []; // not implemented
  1229. var self = this;
  1230. morphTarget.rawTargets.forEach( function ( rawTarget ) {
  1231. var morphGeoNode = fbxTree.Objects.Geometry[ rawTarget.geoID ];
  1232. if ( morphGeoNode !== undefined ) {
  1233. self.genMorphGeometry( parentGeo, parentGeoNode, morphGeoNode, preTransform, rawTarget.name );
  1234. }
  1235. } );
  1236. },
  1237. // a morph geometry node is similar to a standard node, and the node is also contained
  1238. // in FBXTree.Objects.Geometry, however it can only have attributes for position, normal
  1239. // and a special attribute Index defining which vertices of the original geometry are affected
  1240. // Normal and position attributes only have data for the vertices that are affected by the morph
  1241. genMorphGeometry: function ( parentGeo, parentGeoNode, morphGeoNode, preTransform, name ) {
  1242. var morphGeo = new THREE.BufferGeometry();
  1243. if ( morphGeoNode.attrName ) morphGeo.name = morphGeoNode.attrName;
  1244. var vertexIndices = ( parentGeoNode.PolygonVertexIndex !== undefined ) ? parentGeoNode.PolygonVertexIndex.a : [];
  1245. // make a copy of the parent's vertex positions
  1246. var vertexPositions = ( parentGeoNode.Vertices !== undefined ) ? parentGeoNode.Vertices.a.slice() : [];
  1247. var morphPositions = ( morphGeoNode.Vertices !== undefined ) ? morphGeoNode.Vertices.a : [];
  1248. var indices = ( morphGeoNode.Indexes !== undefined ) ? morphGeoNode.Indexes.a : [];
  1249. for ( var i = 0; i < indices.length; i ++ ) {
  1250. var morphIndex = indices[ i ] * 3;
  1251. // FBX format uses blend shapes rather than morph targets. This can be converted
  1252. // by additively combining the blend shape positions with the original geometry's positions
  1253. vertexPositions[ morphIndex ] += morphPositions[ i * 3 ];
  1254. vertexPositions[ morphIndex + 1 ] += morphPositions[ i * 3 + 1 ];
  1255. vertexPositions[ morphIndex + 2 ] += morphPositions[ i * 3 + 2 ];
  1256. }
  1257. // TODO: add morph normal support
  1258. var morphGeoInfo = {
  1259. vertexIndices: vertexIndices,
  1260. vertexPositions: vertexPositions,
  1261. };
  1262. var morphBuffers = this.genBuffers( morphGeoInfo );
  1263. var positionAttribute = new THREE.Float32BufferAttribute( morphBuffers.vertex, 3 );
  1264. positionAttribute.name = name || morphGeoNode.attrName;
  1265. preTransform.applyToBufferAttribute( positionAttribute );
  1266. parentGeo.morphAttributes.position.push( positionAttribute );
  1267. },
  1268. // Parse normal from FBXTree.Objects.Geometry.LayerElementNormal if it exists
  1269. parseNormals: function ( NormalNode ) {
  1270. var mappingType = NormalNode.MappingInformationType;
  1271. var referenceType = NormalNode.ReferenceInformationType;
  1272. var buffer = NormalNode.Normals.a;
  1273. var indexBuffer = [];
  1274. if ( referenceType === 'IndexToDirect' ) {
  1275. if ( 'NormalIndex' in NormalNode ) {
  1276. indexBuffer = NormalNode.NormalIndex.a;
  1277. } else if ( 'NormalsIndex' in NormalNode ) {
  1278. indexBuffer = NormalNode.NormalsIndex.a;
  1279. }
  1280. }
  1281. return {
  1282. dataSize: 3,
  1283. buffer: buffer,
  1284. indices: indexBuffer,
  1285. mappingType: mappingType,
  1286. referenceType: referenceType
  1287. };
  1288. },
  1289. // Parse UVs from FBXTree.Objects.Geometry.LayerElementUV if it exists
  1290. parseUVs: function ( UVNode ) {
  1291. var mappingType = UVNode.MappingInformationType;
  1292. var referenceType = UVNode.ReferenceInformationType;
  1293. var buffer = UVNode.UV.a;
  1294. var indexBuffer = [];
  1295. if ( referenceType === 'IndexToDirect' ) {
  1296. indexBuffer = UVNode.UVIndex.a;
  1297. }
  1298. return {
  1299. dataSize: 2,
  1300. buffer: buffer,
  1301. indices: indexBuffer,
  1302. mappingType: mappingType,
  1303. referenceType: referenceType
  1304. };
  1305. },
  1306. // Parse Vertex Colors from FBXTree.Objects.Geometry.LayerElementColor if it exists
  1307. parseVertexColors: function ( ColorNode ) {
  1308. var mappingType = ColorNode.MappingInformationType;
  1309. var referenceType = ColorNode.ReferenceInformationType;
  1310. var buffer = ColorNode.Colors.a;
  1311. var indexBuffer = [];
  1312. if ( referenceType === 'IndexToDirect' ) {
  1313. indexBuffer = ColorNode.ColorIndex.a;
  1314. }
  1315. return {
  1316. dataSize: 4,
  1317. buffer: buffer,
  1318. indices: indexBuffer,
  1319. mappingType: mappingType,
  1320. referenceType: referenceType
  1321. };
  1322. },
  1323. // Parse mapping and material data in FBXTree.Objects.Geometry.LayerElementMaterial if it exists
  1324. parseMaterialIndices: function ( MaterialNode ) {
  1325. var mappingType = MaterialNode.MappingInformationType;
  1326. var referenceType = MaterialNode.ReferenceInformationType;
  1327. if ( mappingType === 'NoMappingInformation' ) {
  1328. return {
  1329. dataSize: 1,
  1330. buffer: [ 0 ],
  1331. indices: [ 0 ],
  1332. mappingType: 'AllSame',
  1333. referenceType: referenceType
  1334. };
  1335. }
  1336. var materialIndexBuffer = MaterialNode.Materials.a;
  1337. // Since materials are stored as indices, there's a bit of a mismatch between FBX and what
  1338. // we expect.So we create an intermediate buffer that points to the index in the buffer,
  1339. // for conforming with the other functions we've written for other data.
  1340. var materialIndices = [];
  1341. for ( var i = 0; i < materialIndexBuffer.length; ++ i ) {
  1342. materialIndices.push( i );
  1343. }
  1344. return {
  1345. dataSize: 1,
  1346. buffer: materialIndexBuffer,
  1347. indices: materialIndices,
  1348. mappingType: mappingType,
  1349. referenceType: referenceType
  1350. };
  1351. },
  1352. // Generate a NurbGeometry from a node in FBXTree.Objects.Geometry
  1353. parseNurbsGeometry: function ( geoNode ) {
  1354. if ( THREE.NURBSCurve === undefined ) {
  1355. console.error( 'THREE.FBXLoader: The loader relies on THREE.NURBSCurve for any nurbs present in the model. Nurbs will show up as empty geometry.' );
  1356. return new THREE.BufferGeometry();
  1357. }
  1358. var order = parseInt( geoNode.Order );
  1359. if ( isNaN( order ) ) {
  1360. console.error( 'THREE.FBXLoader: Invalid Order %s given for geometry ID: %s', geoNode.Order, geoNode.id );
  1361. return new THREE.BufferGeometry();
  1362. }
  1363. var degree = order - 1;
  1364. var knots = geoNode.KnotVector.a;
  1365. var controlPoints = [];
  1366. var pointsValues = geoNode.Points.a;
  1367. for ( var i = 0, l = pointsValues.length; i < l; i += 4 ) {
  1368. controlPoints.push( new THREE.Vector4().fromArray( pointsValues, i ) );
  1369. }
  1370. var startKnot, endKnot;
  1371. if ( geoNode.Form === 'Closed' ) {
  1372. controlPoints.push( controlPoints[ 0 ] );
  1373. } else if ( geoNode.Form === 'Periodic' ) {
  1374. startKnot = degree;
  1375. endKnot = knots.length - 1 - startKnot;
  1376. for ( var i = 0; i < degree; ++ i ) {
  1377. controlPoints.push( controlPoints[ i ] );
  1378. }
  1379. }
  1380. var curve = new THREE.NURBSCurve( degree, knots, controlPoints, startKnot, endKnot );
  1381. var vertices = curve.getPoints( controlPoints.length * 7 );
  1382. var positions = new Float32Array( vertices.length * 3 );
  1383. vertices.forEach( function ( vertex, i ) {
  1384. vertex.toArray( positions, i * 3 );
  1385. } );
  1386. var geometry = new THREE.BufferGeometry();
  1387. geometry.addAttribute( 'position', new THREE.BufferAttribute( positions, 3 ) );
  1388. return geometry;
  1389. },
  1390. };
  1391. // parse animation data from FBXTree
  1392. function AnimationParser() {}
  1393. AnimationParser.prototype = {
  1394. constructor: AnimationParser,
  1395. // take raw animation clips and turn them into three.js animation clips
  1396. parse: function () {
  1397. var animationClips = [];
  1398. var rawClips = this.parseClips();
  1399. if ( rawClips !== undefined ) {
  1400. for ( var key in rawClips ) {
  1401. var rawClip = rawClips[ key ];
  1402. var clip = this.addClip( rawClip );
  1403. animationClips.push( clip );
  1404. }
  1405. }
  1406. return animationClips;
  1407. },
  1408. parseClips: function () {
  1409. // since the actual transformation data is stored in FBXTree.Objects.AnimationCurve,
  1410. // if this is undefined we can safely assume there are no animations
  1411. if ( fbxTree.Objects.AnimationCurve === undefined ) return undefined;
  1412. var curveNodesMap = this.parseAnimationCurveNodes();
  1413. this.parseAnimationCurves( curveNodesMap );
  1414. var layersMap = this.parseAnimationLayers( curveNodesMap );
  1415. var rawClips = this.parseAnimStacks( layersMap );
  1416. return rawClips;
  1417. },
  1418. // parse nodes in FBXTree.Objects.AnimationCurveNode
  1419. // each AnimationCurveNode holds data for an animation transform for a model (e.g. left arm rotation )
  1420. // and is referenced by an AnimationLayer
  1421. parseAnimationCurveNodes: function () {
  1422. var rawCurveNodes = fbxTree.Objects.AnimationCurveNode;
  1423. var curveNodesMap = new Map();
  1424. for ( var nodeID in rawCurveNodes ) {
  1425. var rawCurveNode = rawCurveNodes[ nodeID ];
  1426. if ( rawCurveNode.attrName.match( /S|R|T|DeformPercent/ ) !== null ) {
  1427. var curveNode = {
  1428. id: rawCurveNode.id,
  1429. attr: rawCurveNode.attrName,
  1430. curves: {},
  1431. };
  1432. curveNodesMap.set( curveNode.id, curveNode );
  1433. }
  1434. }
  1435. return curveNodesMap;
  1436. },
  1437. // parse nodes in FBXTree.Objects.AnimationCurve and connect them up to
  1438. // previously parsed AnimationCurveNodes. Each AnimationCurve holds data for a single animated
  1439. // axis ( e.g. times and values of x rotation)
  1440. parseAnimationCurves: function ( curveNodesMap ) {
  1441. var rawCurves = fbxTree.Objects.AnimationCurve;
  1442. // TODO: Many values are identical up to roundoff error, but won't be optimised
  1443. // e.g. position times: [0, 0.4, 0. 8]
  1444. // position values: [7.23538335023477e-7, 93.67518615722656, -0.9982695579528809, 7.23538335023477e-7, 93.67518615722656, -0.9982695579528809, 7.235384487103147e-7, 93.67520904541016, -0.9982695579528809]
  1445. // clearly, this should be optimised to
  1446. // times: [0], positions [7.23538335023477e-7, 93.67518615722656, -0.9982695579528809]
  1447. // this shows up in nearly every FBX file, and generally time array is length > 100
  1448. for ( var nodeID in rawCurves ) {
  1449. var animationCurve = {
  1450. id: rawCurves[ nodeID ].id,
  1451. times: rawCurves[ nodeID ].KeyTime.a.map( convertFBXTimeToSeconds ),
  1452. values: rawCurves[ nodeID ].KeyValueFloat.a,
  1453. };
  1454. var relationships = connections.get( animationCurve.id );
  1455. if ( relationships !== undefined ) {
  1456. var animationCurveID = relationships.parents[ 0 ].ID;
  1457. var animationCurveRelationship = relationships.parents[ 0 ].relationship;
  1458. if ( animationCurveRelationship.match( /X/ ) ) {
  1459. curveNodesMap.get( animationCurveID ).curves[ 'x' ] = animationCurve;
  1460. } else if ( animationCurveRelationship.match( /Y/ ) ) {
  1461. curveNodesMap.get( animationCurveID ).curves[ 'y' ] = animationCurve;
  1462. } else if ( animationCurveRelationship.match( /Z/ ) ) {
  1463. curveNodesMap.get( animationCurveID ).curves[ 'z' ] = animationCurve;
  1464. } else if ( animationCurveRelationship.match( /d|DeformPercent/ ) && curveNodesMap.has( animationCurveID ) ) {
  1465. curveNodesMap.get( animationCurveID ).curves[ 'morph' ] = animationCurve;
  1466. }
  1467. }
  1468. }
  1469. },
  1470. // parse nodes in FBXTree.Objects.AnimationLayer. Each layers holds references
  1471. // to various AnimationCurveNodes and is referenced by an AnimationStack node
  1472. // note: theoretically a stack can have multiple layers, however in practice there always seems to be one per stack
  1473. parseAnimationLayers: function ( curveNodesMap ) {
  1474. var rawLayers = fbxTree.Objects.AnimationLayer;
  1475. var layersMap = new Map();
  1476. for ( var nodeID in rawLayers ) {
  1477. var layerCurveNodes = [];
  1478. var connection = connections.get( parseInt( nodeID ) );
  1479. if ( connection !== undefined ) {
  1480. // all the animationCurveNodes used in the layer
  1481. var children = connection.children;
  1482. children.forEach( function ( child, i ) {
  1483. if ( curveNodesMap.has( child.ID ) ) {
  1484. var curveNode = curveNodesMap.get( child.ID );
  1485. // check that the curves are defined for at least one axis, otherwise ignore the curveNode
  1486. if ( curveNode.curves.x !== undefined || curveNode.curves.y !== undefined || curveNode.curves.z !== undefined ) {
  1487. if ( layerCurveNodes[ i ] === undefined ) {
  1488. var modelID = connections.get( child.ID ).parents.filter( function ( parent ) {
  1489. return parent.relationship !== undefined;
  1490. } )[ 0 ].ID;
  1491. if ( modelID !== undefined ) {
  1492. var rawModel = fbxTree.Objects.Model[ modelID.toString() ];
  1493. var node = {
  1494. modelName: THREE.PropertyBinding.sanitizeNodeName( rawModel.attrName ),
  1495. ID: rawModel.id,
  1496. initialPosition: [ 0, 0, 0 ],
  1497. initialRotation: [ 0, 0, 0 ],
  1498. initialScale: [ 1, 1, 1 ],
  1499. };
  1500. sceneGraph.traverse( function ( child ) {
  1501. if ( child.ID === rawModel.id ) {
  1502. node.transform = child.matrix;
  1503. if ( child.userData.transformData ) node.eulerOrder = child.userData.transformData.eulerOrder;
  1504. }
  1505. } );
  1506. if ( ! node.transform ) node.transform = new THREE.Matrix4();
  1507. // if the animated model is pre rotated, we'll have to apply the pre rotations to every
  1508. // animation value as well
  1509. if ( 'PreRotation' in rawModel ) node.preRotation = rawModel.PreRotation.value;
  1510. if ( 'PostRotation' in rawModel ) node.postRotation = rawModel.PostRotation.value;
  1511. layerCurveNodes[ i ] = node;
  1512. }
  1513. }
  1514. if ( layerCurveNodes[ i ] ) layerCurveNodes[ i ][ curveNode.attr ] = curveNode;
  1515. } else if ( curveNode.curves.morph !== undefined ) {
  1516. if ( layerCurveNodes[ i ] === undefined ) {
  1517. var deformerID = connections.get( child.ID ).parents.filter( function ( parent ) {
  1518. return parent.relationship !== undefined;
  1519. } )[ 0 ].ID;
  1520. var morpherID = connections.get( deformerID ).parents[ 0 ].ID;
  1521. var geoID = connections.get( morpherID ).parents[ 0 ].ID;
  1522. // assuming geometry is not used in more than one model
  1523. var modelID = connections.get( geoID ).parents[ 0 ].ID;
  1524. var rawModel = fbxTree.Objects.Model[ modelID ];
  1525. var node = {
  1526. modelName: THREE.PropertyBinding.sanitizeNodeName( rawModel.attrName ),
  1527. morphName: fbxTree.Objects.Deformer[ deformerID ].attrName,
  1528. };
  1529. layerCurveNodes[ i ] = node;
  1530. }
  1531. layerCurveNodes[ i ][ curveNode.attr ] = curveNode;
  1532. }
  1533. }
  1534. } );
  1535. layersMap.set( parseInt( nodeID ), layerCurveNodes );
  1536. }
  1537. }
  1538. return layersMap;
  1539. },
  1540. // parse nodes in FBXTree.Objects.AnimationStack. These are the top level node in the animation
  1541. // hierarchy. Each Stack node will be used to create a THREE.AnimationClip
  1542. parseAnimStacks: function ( layersMap ) {
  1543. var rawStacks = fbxTree.Objects.AnimationStack;
  1544. // connect the stacks (clips) up to the layers
  1545. var rawClips = {};
  1546. for ( var nodeID in rawStacks ) {
  1547. var children = connections.get( parseInt( nodeID ) ).children;
  1548. if ( children.length > 1 ) {
  1549. // it seems like stacks will always be associated with a single layer. But just in case there are files
  1550. // where there are multiple layers per stack, we'll display a warning
  1551. console.warn( 'THREE.FBXLoader: Encountered an animation stack with multiple layers, this is currently not supported. Ignoring subsequent layers.' );
  1552. }
  1553. var layer = layersMap.get( children[ 0 ].ID );
  1554. rawClips[ nodeID ] = {
  1555. name: rawStacks[ nodeID ].attrName,
  1556. layer: layer,
  1557. };
  1558. }
  1559. return rawClips;
  1560. },
  1561. addClip: function ( rawClip ) {
  1562. var tracks = [];
  1563. var self = this;
  1564. rawClip.layer.forEach( function ( rawTracks ) {
  1565. tracks = tracks.concat( self.generateTracks( rawTracks ) );
  1566. } );
  1567. return new THREE.AnimationClip( rawClip.name, - 1, tracks );
  1568. },
  1569. generateTracks: function ( rawTracks ) {
  1570. var tracks = [];
  1571. var initialPosition = new THREE.Vector3();
  1572. var initialRotation = new THREE.Quaternion();
  1573. var initialScale = new THREE.Vector3();
  1574. if ( rawTracks.transform ) rawTracks.transform.decompose( initialPosition, initialRotation, initialScale );
  1575. initialPosition = initialPosition.toArray();
  1576. initialRotation = new THREE.Euler().setFromQuaternion( initialRotation, rawTracks.eulerOrder ).toArray();
  1577. initialScale = initialScale.toArray();
  1578. if ( rawTracks.T !== undefined && Object.keys( rawTracks.T.curves ).length > 0 ) {
  1579. var positionTrack = this.generateVectorTrack( rawTracks.modelName, rawTracks.T.curves, initialPosition, 'position' );
  1580. if ( positionTrack !== undefined ) tracks.push( positionTrack );
  1581. }
  1582. if ( rawTracks.R !== undefined && Object.keys( rawTracks.R.curves ).length > 0 ) {
  1583. var rotationTrack = this.generateRotationTrack( rawTracks.modelName, rawTracks.R.curves, initialRotation, rawTracks.preRotation, rawTracks.postRotation, rawTracks.eulerOrder );
  1584. if ( rotationTrack !== undefined ) tracks.push( rotationTrack );
  1585. }
  1586. if ( rawTracks.S !== undefined && Object.keys( rawTracks.S.curves ).length > 0 ) {
  1587. var scaleTrack = this.generateVectorTrack( rawTracks.modelName, rawTracks.S.curves, initialScale, 'scale' );
  1588. if ( scaleTrack !== undefined ) tracks.push( scaleTrack );
  1589. }
  1590. if ( rawTracks.DeformPercent !== undefined ) {
  1591. var morphTrack = this.generateMorphTrack( rawTracks );
  1592. if ( morphTrack !== undefined ) tracks.push( morphTrack );
  1593. }
  1594. return tracks;
  1595. },
  1596. generateVectorTrack: function ( modelName, curves, initialValue, type ) {
  1597. var times = this.getTimesForAllAxes( curves );
  1598. var values = this.getKeyframeTrackValues( times, curves, initialValue );
  1599. return new THREE.VectorKeyframeTrack( modelName + '.' + type, times, values );
  1600. },
  1601. generateRotationTrack: function ( modelName, curves, initialValue, preRotation, postRotation, eulerOrder ) {
  1602. if ( curves.x !== undefined ) {
  1603. this.interpolateRotations( curves.x );
  1604. curves.x.values = curves.x.values.map( THREE.Math.degToRad );
  1605. }
  1606. if ( curves.y !== undefined ) {
  1607. this.interpolateRotations( curves.y );
  1608. curves.y.values = curves.y.values.map( THREE.Math.degToRad );
  1609. }
  1610. if ( curves.z !== undefined ) {
  1611. this.interpolateRotations( curves.z );
  1612. curves.z.values = curves.z.values.map( THREE.Math.degToRad );
  1613. }
  1614. var times = this.getTimesForAllAxes( curves );
  1615. var values = this.getKeyframeTrackValues( times, curves, initialValue );
  1616. if ( preRotation !== undefined ) {
  1617. preRotation = preRotation.map( THREE.Math.degToRad );
  1618. preRotation.push( eulerOrder );
  1619. preRotation = new THREE.Euler().fromArray( preRotation );
  1620. preRotation = new THREE.Quaternion().setFromEuler( preRotation );
  1621. }
  1622. if ( postRotation !== undefined ) {
  1623. postRotation = postRotation.map( THREE.Math.degToRad );
  1624. postRotation.push( eulerOrder );
  1625. postRotation = new THREE.Euler().fromArray( postRotation );
  1626. postRotation = new THREE.Quaternion().setFromEuler( postRotation ).inverse();
  1627. }
  1628. var quaternion = new THREE.Quaternion();
  1629. var euler = new THREE.Euler();
  1630. var quaternionValues = [];
  1631. for ( var i = 0; i < values.length; i += 3 ) {
  1632. euler.set( values[ i ], values[ i + 1 ], values[ i + 2 ], eulerOrder );
  1633. quaternion.setFromEuler( euler );
  1634. if ( preRotation !== undefined ) quaternion.premultiply( preRotation );
  1635. if ( postRotation !== undefined ) quaternion.multiply( postRotation );
  1636. quaternion.toArray( quaternionValues, ( i / 3 ) * 4 );
  1637. }
  1638. return new THREE.QuaternionKeyframeTrack( modelName + '.quaternion', times, quaternionValues );
  1639. },
  1640. generateMorphTrack: function ( rawTracks ) {
  1641. var curves = rawTracks.DeformPercent.curves.morph;
  1642. var values = curves.values.map( function ( val ) {
  1643. return val / 100;
  1644. } );
  1645. var morphNum = sceneGraph.getObjectByName( rawTracks.modelName ).morphTargetDictionary[ rawTracks.morphName ];
  1646. return new THREE.NumberKeyframeTrack( rawTracks.modelName + '.morphTargetInfluences[' + morphNum + ']', curves.times, values );
  1647. },
  1648. // For all animated objects, times are defined separately for each axis
  1649. // Here we'll combine the times into one sorted array without duplicates
  1650. getTimesForAllAxes: function ( curves ) {
  1651. var times = [];
  1652. // first join together the times for each axis, if defined
  1653. if ( curves.x !== undefined ) times = times.concat( curves.x.times );
  1654. if ( curves.y !== undefined ) times = times.concat( curves.y.times );
  1655. if ( curves.z !== undefined ) times = times.concat( curves.z.times );
  1656. // then sort them and remove duplicates
  1657. times = times.sort( function ( a, b ) {
  1658. return a - b;
  1659. } ).filter( function ( elem, index, array ) {
  1660. return array.indexOf( elem ) == index;
  1661. } );
  1662. return times;
  1663. },
  1664. getKeyframeTrackValues: function ( times, curves, initialValue ) {
  1665. var prevValue = initialValue;
  1666. var values = [];
  1667. var xIndex = - 1;
  1668. var yIndex = - 1;
  1669. var zIndex = - 1;
  1670. times.forEach( function ( time ) {
  1671. if ( curves.x ) xIndex = curves.x.times.indexOf( time );
  1672. if ( curves.y ) yIndex = curves.y.times.indexOf( time );
  1673. if ( curves.z ) zIndex = curves.z.times.indexOf( time );
  1674. // if there is an x value defined for this frame, use that
  1675. if ( xIndex !== - 1 ) {
  1676. var xValue = curves.x.values[ xIndex ];
  1677. values.push( xValue );
  1678. prevValue[ 0 ] = xValue;
  1679. } else {
  1680. // otherwise use the x value from the previous frame
  1681. values.push( prevValue[ 0 ] );
  1682. }
  1683. if ( yIndex !== - 1 ) {
  1684. var yValue = curves.y.values[ yIndex ];
  1685. values.push( yValue );
  1686. prevValue[ 1 ] = yValue;
  1687. } else {
  1688. values.push( prevValue[ 1 ] );
  1689. }
  1690. if ( zIndex !== - 1 ) {
  1691. var zValue = curves.z.values[ zIndex ];
  1692. values.push( zValue );
  1693. prevValue[ 2 ] = zValue;
  1694. } else {
  1695. values.push( prevValue[ 2 ] );
  1696. }
  1697. } );
  1698. return values;
  1699. },
  1700. // Rotations are defined as Euler angles which can have values of any size
  1701. // These will be converted to quaternions which don't support values greater than
  1702. // PI, so we'll interpolate large rotations
  1703. interpolateRotations: function ( curve ) {
  1704. for ( var i = 1; i < curve.values.length; i ++ ) {
  1705. var initialValue = curve.values[ i - 1 ];
  1706. var valuesSpan = curve.values[ i ] - initialValue;
  1707. var absoluteSpan = Math.abs( valuesSpan );
  1708. if ( absoluteSpan >= 180 ) {
  1709. var numSubIntervals = absoluteSpan / 180;
  1710. var step = valuesSpan / numSubIntervals;
  1711. var nextValue = initialValue + step;
  1712. var initialTime = curve.times[ i - 1 ];
  1713. var timeSpan = curve.times[ i ] - initialTime;
  1714. var interval = timeSpan / numSubIntervals;
  1715. var nextTime = initialTime + interval;
  1716. var interpolatedTimes = [];
  1717. var interpolatedValues = [];
  1718. while ( nextTime < curve.times[ i ] ) {
  1719. interpolatedTimes.push( nextTime );
  1720. nextTime += interval;
  1721. interpolatedValues.push( nextValue );
  1722. nextValue += step;
  1723. }
  1724. curve.times = inject( curve.times, i, interpolatedTimes );
  1725. curve.values = inject( curve.values, i, interpolatedValues );
  1726. }
  1727. }
  1728. },
  1729. };
  1730. // parse an FBX file in ASCII format
  1731. function TextParser() {}
  1732. TextParser.prototype = {
  1733. constructor: TextParser,
  1734. getPrevNode: function () {
  1735. return this.nodeStack[ this.currentIndent - 2 ];
  1736. },
  1737. getCurrentNode: function () {
  1738. return this.nodeStack[ this.currentIndent - 1 ];
  1739. },
  1740. getCurrentProp: function () {
  1741. return this.currentProp;
  1742. },
  1743. pushStack: function ( node ) {
  1744. this.nodeStack.push( node );
  1745. this.currentIndent += 1;
  1746. },
  1747. popStack: function () {
  1748. this.nodeStack.pop();
  1749. this.currentIndent -= 1;
  1750. },
  1751. setCurrentProp: function ( val, name ) {
  1752. this.currentProp = val;
  1753. this.currentPropName = name;
  1754. },
  1755. parse: function ( text ) {
  1756. this.currentIndent = 0;
  1757. this.allNodes = new FBXTree();
  1758. this.nodeStack = [];
  1759. this.currentProp = [];
  1760. this.currentPropName = '';
  1761. var self = this;
  1762. var split = text.split( /[\r\n]+/ );
  1763. split.forEach( function ( line, i ) {
  1764. var matchComment = line.match( /^[\s\t]*;/ );
  1765. var matchEmpty = line.match( /^[\s\t]*$/ );
  1766. if ( matchComment || matchEmpty ) return;
  1767. var matchBeginning = line.match( '^\\t{' + self.currentIndent + '}(\\w+):(.*){', '' );
  1768. var matchProperty = line.match( '^\\t{' + ( self.currentIndent ) + '}(\\w+):[\\s\\t\\r\\n](.*)' );
  1769. var matchEnd = line.match( '^\\t{' + ( self.currentIndent - 1 ) + '}}' );
  1770. if ( matchBeginning ) {
  1771. self.parseNodeBegin( line, matchBeginning );
  1772. } else if ( matchProperty ) {
  1773. self.parseNodeProperty( line, matchProperty, split[ ++ i ] );
  1774. } else if ( matchEnd ) {
  1775. self.popStack();
  1776. } else if ( line.match( /^[^\s\t}]/ ) ) {
  1777. // large arrays are split over multiple lines terminated with a ',' character
  1778. // if this is encountered the line needs to be joined to the previous line
  1779. self.parseNodePropertyContinued( line );
  1780. }
  1781. } );
  1782. return this.allNodes;
  1783. },
  1784. parseNodeBegin: function ( line, property ) {
  1785. var nodeName = property[ 1 ].trim().replace( /^"/, '' ).replace( /"$/, '' );
  1786. var nodeAttrs = property[ 2 ].split( ',' ).map( function ( attr ) {
  1787. return attr.trim().replace( /^"/, '' ).replace( /"$/, '' );
  1788. } );
  1789. var node = { name: nodeName };
  1790. var attrs = this.parseNodeAttr( nodeAttrs );
  1791. var currentNode = this.getCurrentNode();
  1792. // a top node
  1793. if ( this.currentIndent === 0 ) {
  1794. this.allNodes.add( nodeName, node );
  1795. } else { // a subnode
  1796. // if the subnode already exists, append it
  1797. if ( nodeName in currentNode ) {
  1798. // special case Pose needs PoseNodes as an array
  1799. if ( nodeName === 'PoseNode' ) {
  1800. currentNode.PoseNode.push( node );
  1801. } else if ( currentNode[ nodeName ].id !== undefined ) {
  1802. currentNode[ nodeName ] = {};
  1803. currentNode[ nodeName ][ currentNode[ nodeName ].id ] = currentNode[ nodeName ];
  1804. }
  1805. if ( attrs.id !== '' ) currentNode[ nodeName ][ attrs.id ] = node;
  1806. } else if ( typeof attrs.id === 'number' ) {
  1807. currentNode[ nodeName ] = {};
  1808. currentNode[ nodeName ][ attrs.id ] = node;
  1809. } else if ( nodeName !== 'Properties70' ) {
  1810. if ( nodeName === 'PoseNode' ) currentNode[ nodeName ] = [ node ];
  1811. else currentNode[ nodeName ] = node;
  1812. }
  1813. }
  1814. if ( typeof attrs.id === 'number' ) node.id = attrs.id;
  1815. if ( attrs.name !== '' ) node.attrName = attrs.name;
  1816. if ( attrs.type !== '' ) node.attrType = attrs.type;
  1817. this.pushStack( node );
  1818. },
  1819. parseNodeAttr: function ( attrs ) {
  1820. var id = attrs[ 0 ];
  1821. if ( attrs[ 0 ] !== '' ) {
  1822. id = parseInt( attrs[ 0 ] );
  1823. if ( isNaN( id ) ) {
  1824. id = attrs[ 0 ];
  1825. }
  1826. }
  1827. var name = '', type = '';
  1828. if ( attrs.length > 1 ) {
  1829. name = attrs[ 1 ].replace( /^(\w+)::/, '' );
  1830. type = attrs[ 2 ];
  1831. }
  1832. return { id: id, name: name, type: type };
  1833. },
  1834. parseNodeProperty: function ( line, property, contentLine ) {
  1835. var propName = property[ 1 ].replace( /^"/, '' ).replace( /"$/, '' ).trim();
  1836. var propValue = property[ 2 ].replace( /^"/, '' ).replace( /"$/, '' ).trim();
  1837. // for special case: base64 image data follows "Content: ," line
  1838. // Content: ,
  1839. // "/9j/4RDaRXhpZgAATU0A..."
  1840. if ( propName === 'Content' && propValue === ',' ) {
  1841. propValue = contentLine.replace( /"/g, '' ).replace( /,$/, '' ).trim();
  1842. }
  1843. var currentNode = this.getCurrentNode();
  1844. var parentName = currentNode.name;
  1845. if ( parentName === 'Properties70' ) {
  1846. this.parseNodeSpecialProperty( line, propName, propValue );
  1847. return;
  1848. }
  1849. // Connections
  1850. if ( propName === 'C' ) {
  1851. var connProps = propValue.split( ',' ).slice( 1 );
  1852. var from = parseInt( connProps[ 0 ] );
  1853. var to = parseInt( connProps[ 1 ] );
  1854. var rest = propValue.split( ',' ).slice( 3 );
  1855. rest = rest.map( function ( elem ) {
  1856. return elem.trim().replace( /^"/, '' );
  1857. } );
  1858. propName = 'connections';
  1859. propValue = [ from, to ];
  1860. append( propValue, rest );
  1861. if ( currentNode[ propName ] === undefined ) {
  1862. currentNode[ propName ] = [];
  1863. }
  1864. }
  1865. // Node
  1866. if ( propName === 'Node' ) currentNode.id = propValue;
  1867. // connections
  1868. if ( propName in currentNode && Array.isArray( currentNode[ propName ] ) ) {
  1869. currentNode[ propName ].push( propValue );
  1870. } else {
  1871. if ( propName !== 'a' ) currentNode[ propName ] = propValue;
  1872. else currentNode.a = propValue;
  1873. }
  1874. this.setCurrentProp( currentNode, propName );
  1875. // convert string to array, unless it ends in ',' in which case more will be added to it
  1876. if ( propName === 'a' && propValue.slice( - 1 ) !== ',' ) {
  1877. currentNode.a = parseNumberArray( propValue );
  1878. }
  1879. },
  1880. parseNodePropertyContinued: function ( line ) {
  1881. var currentNode = this.getCurrentNode();
  1882. currentNode.a += line;
  1883. // if the line doesn't end in ',' we have reached the end of the property value
  1884. // so convert the string to an array
  1885. if ( line.slice( - 1 ) !== ',' ) {
  1886. currentNode.a = parseNumberArray( currentNode.a );
  1887. }
  1888. },
  1889. // parse "Property70"
  1890. parseNodeSpecialProperty: function ( line, propName, propValue ) {
  1891. // split this
  1892. // P: "Lcl Scaling", "Lcl Scaling", "", "A",1,1,1
  1893. // into array like below
  1894. // ["Lcl Scaling", "Lcl Scaling", "", "A", "1,1,1" ]
  1895. var props = propValue.split( '",' ).map( function ( prop ) {
  1896. return prop.trim().replace( /^\"/, '' ).replace( /\s/, '_' );
  1897. } );
  1898. var innerPropName = props[ 0 ];
  1899. var innerPropType1 = props[ 1 ];
  1900. var innerPropType2 = props[ 2 ];
  1901. var innerPropFlag = props[ 3 ];
  1902. var innerPropValue = props[ 4 ];
  1903. // cast values where needed, otherwise leave as strings
  1904. switch ( innerPropType1 ) {
  1905. case 'int':
  1906. case 'enum':
  1907. case 'bool':
  1908. case 'ULongLong':
  1909. case 'double':
  1910. case 'Number':
  1911. case 'FieldOfView':
  1912. innerPropValue = parseFloat( innerPropValue );
  1913. break;
  1914. case 'Color':
  1915. case 'ColorRGB':
  1916. case 'Vector3D':
  1917. case 'Lcl_Translation':
  1918. case 'Lcl_Rotation':
  1919. case 'Lcl_Scaling':
  1920. innerPropValue = parseNumberArray( innerPropValue );
  1921. break;
  1922. }
  1923. // CAUTION: these props must append to parent's parent
  1924. this.getPrevNode()[ innerPropName ] = {
  1925. 'type': innerPropType1,
  1926. 'type2': innerPropType2,
  1927. 'flag': innerPropFlag,
  1928. 'value': innerPropValue
  1929. };
  1930. this.setCurrentProp( this.getPrevNode(), innerPropName );
  1931. },
  1932. };
  1933. // Parse an FBX file in Binary format
  1934. function BinaryParser() {}
  1935. BinaryParser.prototype = {
  1936. constructor: BinaryParser,
  1937. parse: function ( buffer ) {
  1938. var reader = new BinaryReader( buffer );
  1939. reader.skip( 23 ); // skip magic 23 bytes
  1940. var version = reader.getUint32();
  1941. console.log( 'THREE.FBXLoader: FBX binary version: ' + version );
  1942. var allNodes = new FBXTree();
  1943. while ( ! this.endOfContent( reader ) ) {
  1944. var node = this.parseNode( reader, version );
  1945. if ( node !== null ) allNodes.add( node.name, node );
  1946. }
  1947. return allNodes;
  1948. },
  1949. // Check if reader has reached the end of content.
  1950. endOfContent: function ( reader ) {
  1951. // footer size: 160bytes + 16-byte alignment padding
  1952. // - 16bytes: magic
  1953. // - padding til 16-byte alignment (at least 1byte?)
  1954. // (seems like some exporters embed fixed 15 or 16bytes?)
  1955. // - 4bytes: magic
  1956. // - 4bytes: version
  1957. // - 120bytes: zero
  1958. // - 16bytes: magic
  1959. if ( reader.size() % 16 === 0 ) {
  1960. return ( ( reader.getOffset() + 160 + 16 ) & ~ 0xf ) >= reader.size();
  1961. } else {
  1962. return reader.getOffset() + 160 + 16 >= reader.size();
  1963. }
  1964. },
  1965. // recursively parse nodes until the end of the file is reached
  1966. parseNode: function ( reader, version ) {
  1967. var node = {};
  1968. // The first three data sizes depends on version.
  1969. var endOffset = ( version >= 7500 ) ? reader.getUint64() : reader.getUint32();
  1970. var numProperties = ( version >= 7500 ) ? reader.getUint64() : reader.getUint32();
  1971. // note: do not remove this even if you get a linter warning as it moves the buffer forward
  1972. var propertyListLen = ( version >= 7500 ) ? reader.getUint64() : reader.getUint32();
  1973. var nameLen = reader.getUint8();
  1974. var name = reader.getString( nameLen );
  1975. // Regards this node as NULL-record if endOffset is zero
  1976. if ( endOffset === 0 ) return null;
  1977. var propertyList = [];
  1978. for ( var i = 0; i < numProperties; i ++ ) {
  1979. propertyList.push( this.parseProperty( reader ) );
  1980. }
  1981. // Regards the first three elements in propertyList as id, attrName, and attrType
  1982. var id = propertyList.length > 0 ? propertyList[ 0 ] : '';
  1983. var attrName = propertyList.length > 1 ? propertyList[ 1 ] : '';
  1984. var attrType = propertyList.length > 2 ? propertyList[ 2 ] : '';
  1985. // check if this node represents just a single property
  1986. // like (name, 0) set or (name2, [0, 1, 2]) set of {name: 0, name2: [0, 1, 2]}
  1987. node.singleProperty = ( numProperties === 1 && reader.getOffset() === endOffset ) ? true : false;
  1988. while ( endOffset > reader.getOffset() ) {
  1989. var subNode = this.parseNode( reader, version );
  1990. if ( subNode !== null ) this.parseSubNode( name, node, subNode );
  1991. }
  1992. node.propertyList = propertyList; // raw property list used by parent
  1993. if ( typeof id === 'number' ) node.id = id;
  1994. if ( attrName !== '' ) node.attrName = attrName;
  1995. if ( attrType !== '' ) node.attrType = attrType;
  1996. if ( name !== '' ) node.name = name;
  1997. return node;
  1998. },
  1999. parseSubNode: function ( name, node, subNode ) {
  2000. // special case: child node is single property
  2001. if ( subNode.singleProperty === true ) {
  2002. var value = subNode.propertyList[ 0 ];
  2003. if ( Array.isArray( value ) ) {
  2004. node[ subNode.name ] = subNode;
  2005. subNode.a = value;
  2006. } else {
  2007. node[ subNode.name ] = value;
  2008. }
  2009. } else if ( name === 'Connections' && subNode.name === 'C' ) {
  2010. var array = [];
  2011. subNode.propertyList.forEach( function ( property, i ) {
  2012. // first Connection is FBX type (OO, OP, etc.). We'll discard these
  2013. if ( i !== 0 ) array.push( property );
  2014. } );
  2015. if ( node.connections === undefined ) {
  2016. node.connections = [];
  2017. }
  2018. node.connections.push( array );
  2019. } else if ( subNode.name === 'Properties70' ) {
  2020. var keys = Object.keys( subNode );
  2021. keys.forEach( function ( key ) {
  2022. node[ key ] = subNode[ key ];
  2023. } );
  2024. } else if ( name === 'Properties70' && subNode.name === 'P' ) {
  2025. var innerPropName = subNode.propertyList[ 0 ];
  2026. var innerPropType1 = subNode.propertyList[ 1 ];
  2027. var innerPropType2 = subNode.propertyList[ 2 ];
  2028. var innerPropFlag = subNode.propertyList[ 3 ];
  2029. var innerPropValue;
  2030. if ( innerPropName.indexOf( 'Lcl ' ) === 0 ) innerPropName = innerPropName.replace( 'Lcl ', 'Lcl_' );
  2031. if ( innerPropType1.indexOf( 'Lcl ' ) === 0 ) innerPropType1 = innerPropType1.replace( 'Lcl ', 'Lcl_' );
  2032. if ( innerPropType1 === 'Color' || innerPropType1 === 'ColorRGB' || innerPropType1 === 'Vector' || innerPropType1 === 'Vector3D' || innerPropType1.indexOf( 'Lcl_' ) === 0 ) {
  2033. innerPropValue = [
  2034. subNode.propertyList[ 4 ],
  2035. subNode.propertyList[ 5 ],
  2036. subNode.propertyList[ 6 ]
  2037. ];
  2038. } else {
  2039. innerPropValue = subNode.propertyList[ 4 ];
  2040. }
  2041. // this will be copied to parent, see above
  2042. node[ innerPropName ] = {
  2043. 'type': innerPropType1,
  2044. 'type2': innerPropType2,
  2045. 'flag': innerPropFlag,
  2046. 'value': innerPropValue
  2047. };
  2048. } else if ( node[ subNode.name ] === undefined ) {
  2049. if ( typeof subNode.id === 'number' ) {
  2050. node[ subNode.name ] = {};
  2051. node[ subNode.name ][ subNode.id ] = subNode;
  2052. } else {
  2053. node[ subNode.name ] = subNode;
  2054. }
  2055. } else {
  2056. if ( subNode.name === 'PoseNode' ) {
  2057. if ( ! Array.isArray( node[ subNode.name ] ) ) {
  2058. node[ subNode.name ] = [ node[ subNode.name ] ];
  2059. }
  2060. node[ subNode.name ].push( subNode );
  2061. } else if ( node[ subNode.name ][ subNode.id ] === undefined ) {
  2062. node[ subNode.name ][ subNode.id ] = subNode;
  2063. }
  2064. }
  2065. },
  2066. parseProperty: function ( reader ) {
  2067. var type = reader.getString( 1 );
  2068. switch ( type ) {
  2069. case 'C':
  2070. return reader.getBoolean();
  2071. case 'D':
  2072. return reader.getFloat64();
  2073. case 'F':
  2074. return reader.getFloat32();
  2075. case 'I':
  2076. return reader.getInt32();
  2077. case 'L':
  2078. return reader.getInt64();
  2079. case 'R':
  2080. var length = reader.getUint32();
  2081. return reader.getArrayBuffer( length );
  2082. case 'S':
  2083. var length = reader.getUint32();
  2084. return reader.getString( length );
  2085. case 'Y':
  2086. return reader.getInt16();
  2087. case 'b':
  2088. case 'c':
  2089. case 'd':
  2090. case 'f':
  2091. case 'i':
  2092. case 'l':
  2093. var arrayLength = reader.getUint32();
  2094. var encoding = reader.getUint32(); // 0: non-compressed, 1: compressed
  2095. var compressedLength = reader.getUint32();
  2096. if ( encoding === 0 ) {
  2097. switch ( type ) {
  2098. case 'b':
  2099. case 'c':
  2100. return reader.getBooleanArray( arrayLength );
  2101. case 'd':
  2102. return reader.getFloat64Array( arrayLength );
  2103. case 'f':
  2104. return reader.getFloat32Array( arrayLength );
  2105. case 'i':
  2106. return reader.getInt32Array( arrayLength );
  2107. case 'l':
  2108. return reader.getInt64Array( arrayLength );
  2109. }
  2110. }
  2111. if ( typeof Zlib === 'undefined' ) {
  2112. console.error( 'THREE.FBXLoader: External library Inflate.min.js required, obtain or import from https://github.com/imaya/zlib.js' );
  2113. }
  2114. var inflate = new Zlib.Inflate( new Uint8Array( reader.getArrayBuffer( compressedLength ) ) ); // eslint-disable-line no-undef
  2115. var reader2 = new BinaryReader( inflate.decompress().buffer );
  2116. switch ( type ) {
  2117. case 'b':
  2118. case 'c':
  2119. return reader2.getBooleanArray( arrayLength );
  2120. case 'd':
  2121. return reader2.getFloat64Array( arrayLength );
  2122. case 'f':
  2123. return reader2.getFloat32Array( arrayLength );
  2124. case 'i':
  2125. return reader2.getInt32Array( arrayLength );
  2126. case 'l':
  2127. return reader2.getInt64Array( arrayLength );
  2128. }
  2129. default:
  2130. throw new Error( 'THREE.FBXLoader: Unknown property type ' + type );
  2131. }
  2132. }
  2133. };
  2134. function BinaryReader( buffer, littleEndian ) {
  2135. this.dv = new DataView( buffer );
  2136. this.offset = 0;
  2137. this.littleEndian = ( littleEndian !== undefined ) ? littleEndian : true;
  2138. }
  2139. BinaryReader.prototype = {
  2140. constructor: BinaryReader,
  2141. getOffset: function () {
  2142. return this.offset;
  2143. },
  2144. size: function () {
  2145. return this.dv.buffer.byteLength;
  2146. },
  2147. skip: function ( length ) {
  2148. this.offset += length;
  2149. },
  2150. // seems like true/false representation depends on exporter.
  2151. // true: 1 or 'Y'(=0x59), false: 0 or 'T'(=0x54)
  2152. // then sees LSB.
  2153. getBoolean: function () {
  2154. return ( this.getUint8() & 1 ) === 1;
  2155. },
  2156. getBooleanArray: function ( size ) {
  2157. var a = [];
  2158. for ( var i = 0; i < size; i ++ ) {
  2159. a.push( this.getBoolean() );
  2160. }
  2161. return a;
  2162. },
  2163. getUint8: function () {
  2164. var value = this.dv.getUint8( this.offset );
  2165. this.offset += 1;
  2166. return value;
  2167. },
  2168. getInt16: function () {
  2169. var value = this.dv.getInt16( this.offset, this.littleEndian );
  2170. this.offset += 2;
  2171. return value;
  2172. },
  2173. getInt32: function () {
  2174. var value = this.dv.getInt32( this.offset, this.littleEndian );
  2175. this.offset += 4;
  2176. return value;
  2177. },
  2178. getInt32Array: function ( size ) {
  2179. var a = [];
  2180. for ( var i = 0; i < size; i ++ ) {
  2181. a.push( this.getInt32() );
  2182. }
  2183. return a;
  2184. },
  2185. getUint32: function () {
  2186. var value = this.dv.getUint32( this.offset, this.littleEndian );
  2187. this.offset += 4;
  2188. return value;
  2189. },
  2190. // JavaScript doesn't support 64-bit integer so calculate this here
  2191. // 1 << 32 will return 1 so using multiply operation instead here.
  2192. // There's a possibility that this method returns wrong value if the value
  2193. // is out of the range between Number.MAX_SAFE_INTEGER and Number.MIN_SAFE_INTEGER.
  2194. // TODO: safely handle 64-bit integer
  2195. getInt64: function () {
  2196. var low, high;
  2197. if ( this.littleEndian ) {
  2198. low = this.getUint32();
  2199. high = this.getUint32();
  2200. } else {
  2201. high = this.getUint32();
  2202. low = this.getUint32();
  2203. }
  2204. // calculate negative value
  2205. if ( high & 0x80000000 ) {
  2206. high = ~ high & 0xFFFFFFFF;
  2207. low = ~ low & 0xFFFFFFFF;
  2208. if ( low === 0xFFFFFFFF ) high = ( high + 1 ) & 0xFFFFFFFF;
  2209. low = ( low + 1 ) & 0xFFFFFFFF;
  2210. return - ( high * 0x100000000 + low );
  2211. }
  2212. return high * 0x100000000 + low;
  2213. },
  2214. getInt64Array: function ( size ) {
  2215. var a = [];
  2216. for ( var i = 0; i < size; i ++ ) {
  2217. a.push( this.getInt64() );
  2218. }
  2219. return a;
  2220. },
  2221. // Note: see getInt64() comment
  2222. getUint64: function () {
  2223. var low, high;
  2224. if ( this.littleEndian ) {
  2225. low = this.getUint32();
  2226. high = this.getUint32();
  2227. } else {
  2228. high = this.getUint32();
  2229. low = this.getUint32();
  2230. }
  2231. return high * 0x100000000 + low;
  2232. },
  2233. getFloat32: function () {
  2234. var value = this.dv.getFloat32( this.offset, this.littleEndian );
  2235. this.offset += 4;
  2236. return value;
  2237. },
  2238. getFloat32Array: function ( size ) {
  2239. var a = [];
  2240. for ( var i = 0; i < size; i ++ ) {
  2241. a.push( this.getFloat32() );
  2242. }
  2243. return a;
  2244. },
  2245. getFloat64: function () {
  2246. var value = this.dv.getFloat64( this.offset, this.littleEndian );
  2247. this.offset += 8;
  2248. return value;
  2249. },
  2250. getFloat64Array: function ( size ) {
  2251. var a = [];
  2252. for ( var i = 0; i < size; i ++ ) {
  2253. a.push( this.getFloat64() );
  2254. }
  2255. return a;
  2256. },
  2257. getArrayBuffer: function ( size ) {
  2258. var value = this.dv.buffer.slice( this.offset, this.offset + size );
  2259. this.offset += size;
  2260. return value;
  2261. },
  2262. getString: function ( size ) {
  2263. // note: safari 9 doesn't support Uint8Array.indexOf; create intermediate array instead
  2264. var a = [];
  2265. for ( var i = 0; i < size; i ++ ) {
  2266. a[ i ] = this.getUint8();
  2267. }
  2268. var nullByte = a.indexOf( 0 );
  2269. if ( nullByte >= 0 ) a = a.slice( 0, nullByte );
  2270. return THREE.LoaderUtils.decodeText( new Uint8Array( a ) );
  2271. }
  2272. };
  2273. // FBXTree holds a representation of the FBX data, returned by the TextParser ( FBX ASCII format)
  2274. // and BinaryParser( FBX Binary format)
  2275. function FBXTree() {}
  2276. FBXTree.prototype = {
  2277. constructor: FBXTree,
  2278. add: function ( key, val ) {
  2279. this[ key ] = val;
  2280. },
  2281. };
  2282. // ************** UTILITY FUNCTIONS **************
  2283. function isFbxFormatBinary( buffer ) {
  2284. var CORRECT = 'Kaydara FBX Binary \0';
  2285. return buffer.byteLength >= CORRECT.length && CORRECT === convertArrayBufferToString( buffer, 0, CORRECT.length );
  2286. }
  2287. function isFbxFormatASCII( text ) {
  2288. var CORRECT = [ 'K', 'a', 'y', 'd', 'a', 'r', 'a', '\\', 'F', 'B', 'X', '\\', 'B', 'i', 'n', 'a', 'r', 'y', '\\', '\\' ];
  2289. var cursor = 0;
  2290. function read( offset ) {
  2291. var result = text[ offset - 1 ];
  2292. text = text.slice( cursor + offset );
  2293. cursor ++;
  2294. return result;
  2295. }
  2296. for ( var i = 0; i < CORRECT.length; ++ i ) {
  2297. var num = read( 1 );
  2298. if ( num === CORRECT[ i ] ) {
  2299. return false;
  2300. }
  2301. }
  2302. return true;
  2303. }
  2304. function getFbxVersion( text ) {
  2305. var versionRegExp = /FBXVersion: (\d+)/;
  2306. var match = text.match( versionRegExp );
  2307. if ( match ) {
  2308. var version = parseInt( match[ 1 ] );
  2309. return version;
  2310. }
  2311. throw new Error( 'THREE.FBXLoader: Cannot find the version number for the file given.' );
  2312. }
  2313. // Converts FBX ticks into real time seconds.
  2314. function convertFBXTimeToSeconds( time ) {
  2315. return time / 46186158000;
  2316. }
  2317. var dataArray = [];
  2318. // extracts the data from the correct position in the FBX array based on indexing type
  2319. function getData( polygonVertexIndex, polygonIndex, vertexIndex, infoObject ) {
  2320. var index;
  2321. switch ( infoObject.mappingType ) {
  2322. case 'ByPolygonVertex' :
  2323. index = polygonVertexIndex;
  2324. break;
  2325. case 'ByPolygon' :
  2326. index = polygonIndex;
  2327. break;
  2328. case 'ByVertice' :
  2329. index = vertexIndex;
  2330. break;
  2331. case 'AllSame' :
  2332. index = infoObject.indices[ 0 ];
  2333. break;
  2334. default :
  2335. console.warn( 'THREE.FBXLoader: unknown attribute mapping type ' + infoObject.mappingType );
  2336. }
  2337. if ( infoObject.referenceType === 'IndexToDirect' ) index = infoObject.indices[ index ];
  2338. var from = index * infoObject.dataSize;
  2339. var to = from + infoObject.dataSize;
  2340. return slice( dataArray, infoObject.buffer, from, to );
  2341. }
  2342. var tempEuler = new THREE.Euler();
  2343. var tempVec = new THREE.Vector3();
  2344. // generate transformation from FBX transform data
  2345. // ref: https://help.autodesk.com/view/FBX/2017/ENU/?guid=__files_GUID_10CDD63C_79C1_4F2D_BB28_AD2BE65A02ED_htm
  2346. // ref: http://docs.autodesk.com/FBX/2014/ENU/FBX-SDK-Documentation/index.html?url=cpp_ref/_transformations_2main_8cxx-example.html,topicNumber=cpp_ref__transformations_2main_8cxx_example_htmlfc10a1e1-b18d-4e72-9dc0-70d0f1959f5e
  2347. function generateTransform( transformData ) {
  2348. var lTranslationM = new THREE.Matrix4();
  2349. var lPreRotationM = new THREE.Matrix4();
  2350. var lRotationM = new THREE.Matrix4();
  2351. var lPostRotationM = new THREE.Matrix4();
  2352. var lScalingM = new THREE.Matrix4();
  2353. var lScalingPivotM = new THREE.Matrix4();
  2354. var lScalingOffsetM = new THREE.Matrix4();
  2355. var lRotationOffsetM = new THREE.Matrix4();
  2356. var lRotationPivotM = new THREE.Matrix4();
  2357. var lParentGX = new THREE.Matrix4();
  2358. var lGlobalT = new THREE.Matrix4();
  2359. var inheritType = ( transformData.inheritType ) ? transformData.inheritType : 0;
  2360. if ( transformData.translation ) lTranslationM.setPosition( tempVec.fromArray( transformData.translation ) );
  2361. if ( transformData.preRotation ) {
  2362. var array = transformData.preRotation.map( THREE.Math.degToRad );
  2363. array.push( transformData.eulerOrder );
  2364. lPreRotationM.makeRotationFromEuler( tempEuler.fromArray( array ) );
  2365. }
  2366. if ( transformData.rotation ) {
  2367. var array = transformData.rotation.map( THREE.Math.degToRad );
  2368. array.push( transformData.eulerOrder );
  2369. lRotationM.makeRotationFromEuler( tempEuler.fromArray( array ) );
  2370. }
  2371. if ( transformData.postRotation ) {
  2372. var array = transformData.postRotation.map( THREE.Math.degToRad );
  2373. array.push( transformData.eulerOrder );
  2374. lPostRotationM.makeRotationFromEuler( tempEuler.fromArray( array ) );
  2375. }
  2376. if ( transformData.scale ) lScalingM.scale( tempVec.fromArray( transformData.scale ) );
  2377. // Pivots and offsets
  2378. if ( transformData.scalingOffset ) lScalingOffsetM.setPosition( tempVec.fromArray( transformData.scalingOffset ) );
  2379. if ( transformData.scalingPivot ) lScalingPivotM.setPosition( tempVec.fromArray( transformData.scalingPivot ) );
  2380. if ( transformData.rotationOffset ) lRotationOffsetM.setPosition( tempVec.fromArray( transformData.rotationOffset ) );
  2381. if ( transformData.rotationPivot ) lRotationPivotM.setPosition( tempVec.fromArray( transformData.rotationPivot ) );
  2382. // parent transform
  2383. if ( transformData.parentMatrixWorld ) lParentGX = transformData.parentMatrixWorld;
  2384. // Global Rotation
  2385. var lLRM = lPreRotationM.multiply( lRotationM ).multiply( lPostRotationM );
  2386. var lParentGRM = new THREE.Matrix4();
  2387. lParentGX.extractRotation( lParentGRM );
  2388. // Global Shear*Scaling
  2389. var lParentTM = new THREE.Matrix4();
  2390. var lLSM;
  2391. var lParentGSM;
  2392. var lParentGRSM;
  2393. lParentTM.copyPosition( lParentGX );
  2394. lParentGRSM = lParentTM.getInverse( lParentTM ).multiply( lParentGX );
  2395. lParentGSM = lParentGRM.getInverse( lParentGRM ).multiply( lParentGRSM );
  2396. lLSM = lScalingM;
  2397. var lGlobalRS;
  2398. if ( inheritType === 0 ) {
  2399. lGlobalRS = lParentGRM.multiply( lLRM ).multiply( lParentGSM ).multiply( lLSM );
  2400. } else if ( inheritType === 1 ) {
  2401. lGlobalRS = lParentGRM.multiply( lParentGSM ).multiply( lLRM ).multiply( lLSM );
  2402. } else {
  2403. var lParentLSM = new THREE.Matrix4().copy( lScalingM );
  2404. var lParentGSM_noLocal = lParentGSM.multiply( lParentLSM.getInverse( lParentLSM ) );
  2405. lGlobalRS = lParentGRM.multiply( lLRM ).multiply( lParentGSM_noLocal ).multiply( lLSM );
  2406. }
  2407. // Calculate the local transform matrix
  2408. var lTransform = lTranslationM.multiply( lRotationOffsetM ).multiply( lRotationPivotM ).multiply( lPreRotationM ).multiply( lRotationM ).multiply( lPostRotationM ).multiply( lRotationPivotM.getInverse( lRotationPivotM ) ).multiply( lScalingOffsetM ).multiply( lScalingPivotM ).multiply( lScalingM ).multiply( lScalingPivotM.getInverse( lScalingPivotM ) );
  2409. var lLocalTWithAllPivotAndOffsetInfo = new THREE.Matrix4().copyPosition( lTransform );
  2410. var lGlobalTranslation = lParentGX.multiply( lLocalTWithAllPivotAndOffsetInfo );
  2411. lGlobalT.copyPosition( lGlobalTranslation );
  2412. lTransform = lGlobalT.multiply( lGlobalRS );
  2413. return lTransform;
  2414. }
  2415. // Returns the three.js intrinsic Euler order corresponding to FBX extrinsic Euler order
  2416. // ref: http://help.autodesk.com/view/FBX/2017/ENU/?guid=__cpp_ref_class_fbx_euler_html
  2417. function getEulerOrder( order ) {
  2418. order = order || 0;
  2419. var enums = [
  2420. 'ZYX', // -> XYZ extrinsic
  2421. 'YZX', // -> XZY extrinsic
  2422. 'XZY', // -> YZX extrinsic
  2423. 'ZXY', // -> YXZ extrinsic
  2424. 'YXZ', // -> ZXY extrinsic
  2425. 'XYZ', // -> ZYX extrinsic
  2426. //'SphericXYZ', // not possible to support
  2427. ];
  2428. if ( order === 6 ) {
  2429. console.warn( 'THREE.FBXLoader: unsupported Euler Order: Spherical XYZ. Animations and rotations may be incorrect.' );
  2430. return enums[ 0 ];
  2431. }
  2432. return enums[ order ];
  2433. }
  2434. // Parses comma separated list of numbers and returns them an array.
  2435. // Used internally by the TextParser
  2436. function parseNumberArray( value ) {
  2437. var array = value.split( ',' ).map( function ( val ) {
  2438. return parseFloat( val );
  2439. } );
  2440. return array;
  2441. }
  2442. function convertArrayBufferToString( buffer, from, to ) {
  2443. if ( from === undefined ) from = 0;
  2444. if ( to === undefined ) to = buffer.byteLength;
  2445. return THREE.LoaderUtils.decodeText( new Uint8Array( buffer, from, to ) );
  2446. }
  2447. function append( a, b ) {
  2448. for ( var i = 0, j = a.length, l = b.length; i < l; i ++, j ++ ) {
  2449. a[ j ] = b[ i ];
  2450. }
  2451. }
  2452. function slice( a, b, from, to ) {
  2453. for ( var i = from, j = 0; i < to; i ++, j ++ ) {
  2454. a[ j ] = b[ i ];
  2455. }
  2456. return a;
  2457. }
  2458. // inject array a2 into array a1 at index
  2459. function inject( a1, index, a2 ) {
  2460. return a1.slice( 0, index ).concat( a2 ).concat( a1.slice( index ) );
  2461. }
  2462. return FBXLoader;
  2463. } )();