* feat(3d): FBX/GLTF/OBJ 加载器与骨骼动画支持 * chore: 更新 pnpm-lock.yaml * fix: 移除未使用的变量和方法 * fix: 修复 mesh-3d-editor tsconfig 引用路径 * fix: 修复正则表达式 ReDoS 漏洞
565 lines
20 KiB
JavaScript
565 lines
20 KiB
JavaScript
/**
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* Debug Runtime Animation Flow
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* 调试运行时动画流程
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*
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* This script mimics exactly what ModelPreview3D does when rendering
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* and outputs detailed debug info at each step.
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*/
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import { readFileSync } from 'fs';
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import pako from 'pako';
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const { inflate } = pako;
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const FBX_TIME_SECOND = 46186158000n;
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const filePath = process.argv[2] || 'F:\\MyProject4\\assets\\octopus.fbx';
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console.log(`=== Debug Runtime Animation: ${filePath} ===\n`);
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const buffer = readFileSync(filePath);
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const view = new DataView(buffer.buffer, buffer.byteOffset, buffer.byteLength);
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const version = view.getUint32(23, true);
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const is64Bit = version >= 7500;
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let offset = 27;
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function readNode() {
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let endOffset, numProperties, propertyListLen, nameLen;
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if (is64Bit) {
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endOffset = Number(view.getBigUint64(offset, true));
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numProperties = Number(view.getBigUint64(offset + 8, true));
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propertyListLen = Number(view.getBigUint64(offset + 16, true));
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nameLen = view.getUint8(offset + 24);
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offset += 25;
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} else {
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endOffset = view.getUint32(offset, true);
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numProperties = view.getUint32(offset + 4, true);
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propertyListLen = view.getUint32(offset + 8, true);
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nameLen = view.getUint8(offset + 12);
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offset += 13;
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}
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if (endOffset === 0) return null;
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const name = new TextDecoder().decode(buffer.slice(offset, offset + nameLen));
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offset += nameLen;
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const properties = [];
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const propsEnd = offset + propertyListLen;
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while (offset < propsEnd) {
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const typeCode = String.fromCharCode(buffer[offset]);
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offset++;
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switch (typeCode) {
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case 'Y':
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properties.push(view.getInt16(offset, true));
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offset += 2;
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break;
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case 'C':
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properties.push(buffer[offset] !== 0);
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offset += 1;
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break;
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case 'I':
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properties.push(view.getInt32(offset, true));
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offset += 4;
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break;
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case 'F':
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properties.push(view.getFloat32(offset, true));
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offset += 4;
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break;
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case 'D':
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properties.push(view.getFloat64(offset, true));
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offset += 8;
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break;
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case 'L':
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properties.push(view.getBigInt64(offset, true));
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offset += 8;
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break;
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case 'S':
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case 'R':
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const strLen = view.getUint32(offset, true);
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offset += 4;
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if (typeCode === 'S') {
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properties.push(new TextDecoder().decode(buffer.slice(offset, offset + strLen)));
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} else {
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properties.push(buffer.slice(offset, offset + strLen));
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}
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offset += strLen;
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break;
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case 'f':
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case 'd':
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case 'l':
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case 'i':
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case 'b':
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const arrayLen = view.getUint32(offset, true);
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const encoding = view.getUint32(offset + 4, true);
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const compressedLen = view.getUint32(offset + 8, true);
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offset += 12;
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if (encoding === 0) {
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const elemSize = typeCode === 'd' || typeCode === 'l' ? 8 : 4;
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const arr = [];
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for (let i = 0; i < arrayLen; i++) {
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if (typeCode === 'd') arr.push(view.getFloat64(offset + i * 8, true));
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else if (typeCode === 'f') arr.push(view.getFloat32(offset + i * 4, true));
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else if (typeCode === 'l') arr.push(view.getBigInt64(offset + i * 8, true));
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else if (typeCode === 'i') arr.push(view.getInt32(offset + i * 4, true));
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}
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properties.push({ type: typeCode, data: arr });
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offset += arrayLen * elemSize;
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} else {
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const compData = buffer.slice(offset, offset + compressedLen);
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try {
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const decompressed = inflate(compData);
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const elemSize = typeCode === 'd' || typeCode === 'l' ? 8 : 4;
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const dataView = new DataView(decompressed.buffer, decompressed.byteOffset, decompressed.byteLength);
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const arr = [];
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for (let i = 0; i < arrayLen; i++) {
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if (typeCode === 'd') arr.push(dataView.getFloat64(i * 8, true));
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else if (typeCode === 'f') arr.push(dataView.getFloat32(i * 4, true));
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else if (typeCode === 'l') arr.push(dataView.getBigInt64(i * 8, true));
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else if (typeCode === 'i') arr.push(dataView.getInt32(i * 4, true));
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}
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properties.push({ type: typeCode, data: arr });
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} catch (e) {
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properties.push({ type: typeCode, compressed: true, len: arrayLen });
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}
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offset += compressedLen;
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}
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break;
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default:
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offset = propsEnd;
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}
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}
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const children = [];
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while (offset < endOffset) {
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const child = readNode();
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if (child) children.push(child);
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else break;
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}
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offset = endOffset;
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return { name, properties, children };
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}
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// Parse root nodes
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const rootNodes = [];
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while (offset < buffer.length - 100) {
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const node = readNode();
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if (node) rootNodes.push(node);
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else break;
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}
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const objectsNode = rootNodes.find(n => n.name === 'Objects');
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const connectionsNode = rootNodes.find(n => n.name === 'Connections');
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// Parse connections
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const connections = connectionsNode.children.map(c => ({
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type: c.properties[0].split('\0')[0],
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fromId: c.properties[1],
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toId: c.properties[2],
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property: c.properties[3]?.split?.('\0')[0]
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}));
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// Parse Models with their transforms
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const models = objectsNode.children
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.filter(n => n.name === 'Model')
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.map(n => {
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const position = [0, 0, 0];
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const rotation = [0, 0, 0];
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const scale = [1, 1, 1];
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const preRotation = null;
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for (const child of n.children) {
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if (child.name === 'Properties70') {
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for (const prop of child.children) {
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if (prop.properties[0] === 'Lcl Translation') {
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position[0] = prop.properties[4];
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position[1] = prop.properties[5];
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position[2] = prop.properties[6];
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} else if (prop.properties[0] === 'Lcl Rotation') {
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rotation[0] = prop.properties[4];
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rotation[1] = prop.properties[5];
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rotation[2] = prop.properties[6];
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} else if (prop.properties[0] === 'Lcl Scaling') {
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scale[0] = prop.properties[4];
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scale[1] = prop.properties[5];
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scale[2] = prop.properties[6];
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}
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}
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}
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}
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return {
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id: n.properties[0],
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name: n.properties[1]?.split?.('\0')[0] || 'Model',
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position,
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rotation,
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scale,
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preRotation
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};
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});
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console.log(`Models: ${models.length}`);
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// Parse Clusters with TransformLink
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const clusters = objectsNode.children
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.filter(n => n.name === 'Deformer' && n.properties[2]?.split?.('\0')[0] === 'Cluster')
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.map(n => {
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const cluster = {
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id: n.properties[0],
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name: n.properties[1]?.split?.('\0')[0] || 'Cluster',
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transformLink: null
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};
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for (const child of n.children) {
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if (child.name === 'TransformLink') {
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const data = child.properties[0]?.data;
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if (data && data.length === 16) {
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cluster.transformLink = new Float32Array(data);
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}
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}
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}
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return cluster;
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});
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// Build cluster to bone mapping
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const clusterToBone = new Map();
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for (const conn of connections) {
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if (conn.type === 'OO') {
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const cluster = clusters.find(c => c.id === conn.toId);
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if (cluster) {
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clusterToBone.set(cluster.id, conn.fromId);
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}
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}
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}
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// Build model ID to index
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const modelToIndex = new Map();
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models.forEach((m, i) => modelToIndex.set(m.id, i));
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// Build parent relationships
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const modelParent = new Map();
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for (const conn of connections) {
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if (conn.type === 'OO') {
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if (modelToIndex.has(conn.fromId) && modelToIndex.has(conn.toId)) {
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modelParent.set(conn.fromId, conn.toId);
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}
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}
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}
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// Euler to quaternion (XYZ intrinsic)
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function eulerToQuaternion(x, y, z) {
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const cx = Math.cos(x / 2), sx = Math.sin(x / 2);
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const cy = Math.cos(y / 2), sy = Math.sin(y / 2);
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const cz = Math.cos(z / 2), sz = Math.sin(z / 2);
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return [
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sx * cy * cz - cx * sy * sz,
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cx * sy * cz + sx * cy * sz,
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cx * cy * sz - sx * sy * cz,
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cx * cy * cz + sx * sy * sz
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];
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}
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// Create transform matrix from position, rotation (quaternion), scale
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function createTransformMatrix(position, rotation, scale) {
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const [qx, qy, qz, qw] = rotation;
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const [sx, sy, sz] = scale;
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const xx = qx * qx, xy = qx * qy, xz = qx * qz, xw = qx * qw;
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const yy = qy * qy, yz = qy * qz, yw = qy * qw;
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const zz = qz * qz, zw = qz * qw;
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return new Float32Array([
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(1 - 2 * (yy + zz)) * sx, 2 * (xy + zw) * sx, 2 * (xz - yw) * sx, 0,
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2 * (xy - zw) * sy, (1 - 2 * (xx + zz)) * sy, 2 * (yz + xw) * sy, 0,
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2 * (xz + yw) * sz, 2 * (yz - xw) * sz, (1 - 2 * (xx + yy)) * sz, 0,
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position[0], position[1], position[2], 1
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]);
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}
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// Invert matrix
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function invertMatrix4(m) {
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const out = new Float32Array(16);
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const m00 = m[0], m01 = m[1], m02 = m[2], m03 = m[3];
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const m10 = m[4], m11 = m[5], m12 = m[6], m13 = m[7];
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const m20 = m[8], m21 = m[9], m22 = m[10], m23 = m[11];
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const m30 = m[12], m31 = m[13], m32 = m[14], m33 = m[15];
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const b00 = m00 * m11 - m01 * m10;
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const b01 = m00 * m12 - m02 * m10;
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const b02 = m00 * m13 - m03 * m10;
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const b03 = m01 * m12 - m02 * m11;
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const b04 = m01 * m13 - m03 * m11;
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const b05 = m02 * m13 - m03 * m12;
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const b06 = m20 * m31 - m21 * m30;
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const b07 = m20 * m32 - m22 * m30;
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const b08 = m20 * m33 - m23 * m30;
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const b09 = m21 * m32 - m22 * m31;
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const b10 = m21 * m33 - m23 * m31;
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const b11 = m22 * m33 - m23 * m32;
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let det = b00 * b11 - b01 * b10 + b02 * b09 + b03 * b08 - b04 * b07 + b05 * b06;
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if (Math.abs(det) < 1e-8) return new Float32Array([1,0,0,0, 0,1,0,0, 0,0,1,0, 0,0,0,1]);
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det = 1.0 / det;
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out[0] = (m11 * b11 - m12 * b10 + m13 * b09) * det;
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out[1] = (m02 * b10 - m01 * b11 - m03 * b09) * det;
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out[2] = (m31 * b05 - m32 * b04 + m33 * b03) * det;
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out[3] = (m22 * b04 - m21 * b05 - m23 * b03) * det;
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out[4] = (m12 * b08 - m10 * b11 - m13 * b07) * det;
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out[5] = (m00 * b11 - m02 * b08 + m03 * b07) * det;
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out[6] = (m32 * b02 - m30 * b05 - m33 * b01) * det;
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out[7] = (m20 * b05 - m22 * b02 + m23 * b01) * det;
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out[8] = (m10 * b10 - m11 * b08 + m13 * b06) * det;
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out[9] = (m01 * b08 - m00 * b10 - m03 * b06) * det;
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out[10] = (m30 * b04 - m31 * b02 + m33 * b00) * det;
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out[11] = (m21 * b02 - m20 * b04 - m23 * b00) * det;
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out[12] = (m11 * b07 - m10 * b09 - m12 * b06) * det;
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out[13] = (m00 * b09 - m01 * b07 + m02 * b06) * det;
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out[14] = (m31 * b01 - m30 * b03 - m32 * b00) * det;
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out[15] = (m20 * b03 - m21 * b01 + m22 * b00) * det;
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return out;
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}
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// Multiply matrices
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function multiplyMatrices(a, b) {
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const result = new Float32Array(16);
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for (let row = 0; row < 4; row++) {
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for (let col = 0; col < 4; col++) {
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let sum = 0;
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for (let k = 0; k < 4; k++) {
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sum += a[row + k * 4] * b[k + col * 4];
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}
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result[row + col * 4] = sum;
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}
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}
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return result;
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}
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function identity() {
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return new Float32Array([1,0,0,0, 0,1,0,0, 0,0,1,0, 0,0,0,1]);
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}
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// Build skeleton (simulating FBXLoader.buildSkeletonData)
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const joints = [];
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const boneModelIdToJointIndex = new Map();
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for (const cluster of clusters) {
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const boneModelId = clusterToBone.get(cluster.id);
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if (!boneModelId) continue;
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const nodeIndex = modelToIndex.get(boneModelId);
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if (nodeIndex === undefined) continue;
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const model = models[nodeIndex];
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const jointIndex = joints.length;
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boneModelIdToJointIndex.set(boneModelId, jointIndex);
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const inverseBindMatrix = cluster.transformLink
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? invertMatrix4(cluster.transformLink)
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: identity();
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joints.push({
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name: model.name,
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nodeIndex,
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parentIndex: -1,
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inverseBindMatrix
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});
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}
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// Set parent indices
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for (const cluster of clusters) {
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const boneModelId = clusterToBone.get(cluster.id);
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if (!boneModelId) continue;
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const jointIndex = boneModelIdToJointIndex.get(boneModelId);
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if (jointIndex === undefined) continue;
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let parentModelId = modelParent.get(boneModelId);
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while (parentModelId) {
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const parentJointIndex = boneModelIdToJointIndex.get(parentModelId);
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if (parentJointIndex !== undefined) {
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joints[jointIndex].parentIndex = parentJointIndex;
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break;
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}
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parentModelId = modelParent.get(parentModelId);
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}
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}
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console.log(`Skeleton joints: ${joints.length}`);
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// Build nodes (simulating FBXLoader node building)
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const nodes = models.map(model => {
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const rx = model.rotation[0] * Math.PI / 180;
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const ry = model.rotation[1] * Math.PI / 180;
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const rz = model.rotation[2] * Math.PI / 180;
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const quat = eulerToQuaternion(rx, ry, rz);
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return {
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name: model.name,
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transform: {
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position: model.position,
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rotation: quat,
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scale: model.scale
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}
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};
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});
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console.log(`\n=== KEY DEBUG INFO ===`);
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// Check a specific joint
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const jointToDebug = 0;
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const joint = joints[jointToDebug];
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const node = nodes[joint.nodeIndex];
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console.log(`\nJoint[${jointToDebug}] "${joint.name}":`);
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console.log(` nodeIndex: ${joint.nodeIndex}`);
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console.log(` parentIndex: ${joint.parentIndex}`);
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console.log(` node.transform.position: [${node.transform.position.join(', ')}]`);
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console.log(` node.transform.rotation: [${node.transform.rotation.map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` node.transform.scale: [${node.transform.scale.join(', ')}]`);
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// Create local matrix from node transform
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const localMatrix = createTransformMatrix(
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node.transform.position,
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node.transform.rotation,
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node.transform.scale
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);
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console.log(`\n localMatrix (from node.transform):`);
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console.log(` [${localMatrix.slice(0, 4).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${localMatrix.slice(4, 8).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${localMatrix.slice(8, 12).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${localMatrix.slice(12, 16).map(v => v.toFixed(4)).join(', ')}]`);
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// Show inverseBindMatrix
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console.log(`\n inverseBindMatrix:`);
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console.log(` [${joint.inverseBindMatrix.slice(0, 4).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${joint.inverseBindMatrix.slice(4, 8).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${joint.inverseBindMatrix.slice(8, 12).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${joint.inverseBindMatrix.slice(12, 16).map(v => v.toFixed(4)).join(', ')}]`);
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// Calculate skinMatrix = worldMatrix * inverseBindMatrix (for root, worldMatrix = localMatrix)
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const skinMatrix = multiplyMatrices(localMatrix, joint.inverseBindMatrix);
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console.log(`\n skinMatrix = worldMatrix * IBM (should be near identity at bind pose):`);
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console.log(` [${skinMatrix.slice(0, 4).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${skinMatrix.slice(4, 8).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${skinMatrix.slice(8, 12).map(v => v.toFixed(4)).join(', ')}]`);
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console.log(` [${skinMatrix.slice(12, 16).map(v => v.toFixed(4)).join(', ')}]`);
|
|
|
|
// Check if skinMatrix is identity
|
|
function isNearIdentity(m, tol = 0.001) {
|
|
const id = [1,0,0,0, 0,1,0,0, 0,0,1,0, 0,0,0,1];
|
|
for (let i = 0; i < 16; i++) {
|
|
if (Math.abs(m[i] - id[i]) > tol) return false;
|
|
}
|
|
return true;
|
|
}
|
|
|
|
console.log(`\n Is skinMatrix near identity? ${isNearIdentity(skinMatrix) ? 'YES ✅' : 'NO ❌'}`);
|
|
|
|
// Now simulate what happens when no animation is playing
|
|
// In ModelPreview3D, when there's no animTransform for a joint, it uses node.transform
|
|
console.log(`\n=== SIMULATING ModelPreview3D calculateBoneMatrices (no animation) ===`);
|
|
|
|
// This is what ModelPreview3D does:
|
|
// 1. For each joint, get animTransform or fall back to node.transform
|
|
// 2. Create localMatrix from pos/rot/scale
|
|
// 3. Calculate worldMatrix = parent.worldMatrix * localMatrix
|
|
// 4. Calculate skinMatrix = worldMatrix * inverseBindMatrix
|
|
|
|
const worldMatrices = new Array(joints.length);
|
|
const skinMatrices = new Array(joints.length);
|
|
|
|
// Build processing order
|
|
const processingOrder = [];
|
|
const processed = new Set();
|
|
|
|
function addJoint(jointIndex) {
|
|
if (processed.has(jointIndex)) return;
|
|
const joint = joints[jointIndex];
|
|
if (joint.parentIndex >= 0 && !processed.has(joint.parentIndex)) {
|
|
addJoint(joint.parentIndex);
|
|
}
|
|
processingOrder.push(jointIndex);
|
|
processed.add(jointIndex);
|
|
}
|
|
|
|
for (let i = 0; i < joints.length; i++) {
|
|
addJoint(i);
|
|
}
|
|
|
|
for (const jointIndex of processingOrder) {
|
|
const joint = joints[jointIndex];
|
|
const node = nodes[joint.nodeIndex];
|
|
|
|
const pos = node.transform.position;
|
|
const rot = node.transform.rotation;
|
|
const scl = node.transform.scale;
|
|
|
|
const localMatrix = createTransformMatrix(pos, rot, scl);
|
|
|
|
if (joint.parentIndex >= 0) {
|
|
worldMatrices[jointIndex] = multiplyMatrices(worldMatrices[joint.parentIndex], localMatrix);
|
|
} else {
|
|
worldMatrices[jointIndex] = localMatrix;
|
|
}
|
|
|
|
skinMatrices[jointIndex] = multiplyMatrices(worldMatrices[jointIndex], joint.inverseBindMatrix);
|
|
}
|
|
|
|
// Count how many are near identity
|
|
let identityCount = 0;
|
|
let maxDiff = 0;
|
|
|
|
for (let i = 0; i < joints.length; i++) {
|
|
const sm = skinMatrices[i];
|
|
const id = [1,0,0,0, 0,1,0,0, 0,0,1,0, 0,0,0,1];
|
|
let diff = 0;
|
|
for (let j = 0; j < 16; j++) {
|
|
diff = Math.max(diff, Math.abs(sm[j] - id[j]));
|
|
}
|
|
if (diff < 0.001) identityCount++;
|
|
if (diff > maxDiff) maxDiff = diff;
|
|
}
|
|
|
|
console.log(`\nAt bind pose (no animation):`);
|
|
console.log(` Identity matrices: ${identityCount}/${joints.length}`);
|
|
console.log(` Max diff from identity: ${maxDiff.toFixed(6)}`);
|
|
|
|
if (identityCount !== joints.length) {
|
|
console.log(`\n ⚠️ WARNING: Not all skin matrices are identity at bind pose!`);
|
|
console.log(` This suggests the node.transform doesn't match the TransformLink.`);
|
|
|
|
// Show first non-identity matrix
|
|
for (let i = 0; i < joints.length; i++) {
|
|
const sm = skinMatrices[i];
|
|
const id = [1,0,0,0, 0,1,0,0, 0,0,1,0, 0,0,0,1];
|
|
let diff = 0;
|
|
for (let j = 0; j < 16; j++) {
|
|
diff = Math.max(diff, Math.abs(sm[j] - id[j]));
|
|
}
|
|
if (diff >= 0.001) {
|
|
const joint = joints[i];
|
|
const node = nodes[joint.nodeIndex];
|
|
console.log(`\n First non-identity: Joint[${i}] "${joint.name}"`);
|
|
console.log(` node.transform: pos=[${node.transform.position.join(',')}]`);
|
|
console.log(` skinMatrix:`);
|
|
console.log(` [${sm.slice(0, 4).map(v => v.toFixed(4)).join(', ')}]`);
|
|
console.log(` [${sm.slice(4, 8).map(v => v.toFixed(4)).join(', ')}]`);
|
|
console.log(` [${sm.slice(8, 12).map(v => v.toFixed(4)).join(', ')}]`);
|
|
console.log(` [${sm.slice(12, 16).map(v => v.toFixed(4)).join(', ')}]`);
|
|
break;
|
|
}
|
|
}
|
|
} else {
|
|
console.log(` ✅ All skin matrices are identity - bind pose is correct!`);
|
|
}
|
|
|
|
console.log('\nDone!');
|