geometryc.cpp 22 KB

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  1. /*
  2. * Copyright 2011-2013 Branimir Karadzic. All rights reserved.
  3. * License: http://www.opensource.org/licenses/BSD-2-Clause
  4. */
  5. #include <bgfx.h>
  6. #include "../../src/vertexdecl.h"
  7. #include <stdio.h>
  8. #include <stdlib.h>
  9. #include <string.h>
  10. #include <algorithm>
  11. #include <vector>
  12. namespace std { namespace tr1 {} using namespace tr1; } // namespace std
  13. #include <unordered_map>
  14. #include <forsythtriangleorderoptimizer.h>
  15. #if 0
  16. # define BX_TRACE(_format, ...) \
  17. do { \
  18. printf(BX_FILE_LINE_LITERAL "BGFX " _format "\n", ##__VA_ARGS__); \
  19. } while(0)
  20. # define BX_WARN(_condition, _format, ...) \
  21. do { \
  22. if (!(_condition) ) \
  23. { \
  24. BX_TRACE(BX_FILE_LINE_LITERAL "WARN " _format, ##__VA_ARGS__); \
  25. } \
  26. } while(0)
  27. # define BX_CHECK(_condition, _format, ...) \
  28. do { \
  29. if (!(_condition) ) \
  30. { \
  31. BX_TRACE(BX_FILE_LINE_LITERAL "CHECK " _format, ##__VA_ARGS__); \
  32. bx::debugBreak(); \
  33. } \
  34. } while(0)
  35. #endif // 0
  36. #define EXPECT(_condition) \
  37. do { \
  38. if (!(_condition) ) \
  39. { \
  40. printf("Error parsing at:\n" BX_FILE_LINE_LITERAL "\nExpected: " #_condition "\n"); \
  41. exit(EXIT_FAILURE); \
  42. } \
  43. } while(0)
  44. #include <bx/bx.h>
  45. #include <bx/debug.h>
  46. #include <bx/countof.h>
  47. #include <bx/commandline.h>
  48. #include <bx/timer.h>
  49. #include <bx/readerwriter.h>
  50. #include <bx/hash.h>
  51. #include <bx/uint32_t.h>
  52. #include "tokenizecmd.h"
  53. #include "bounds.h"
  54. #include "math.h"
  55. struct Vector3
  56. {
  57. float x;
  58. float y;
  59. float z;
  60. };
  61. typedef std::vector<Vector3> Vector3Array;
  62. struct Index3
  63. {
  64. int32_t m_position;
  65. int32_t m_texcoord;
  66. int32_t m_normal;
  67. int32_t m_vertexIndex;
  68. };
  69. typedef std::unordered_map<uint64_t, Index3> Index3Map;
  70. struct Triangle
  71. {
  72. uint64_t m_index[3];
  73. };
  74. typedef std::vector<Triangle> TriangleArray;
  75. struct Group
  76. {
  77. uint32_t m_startTriangle;
  78. uint32_t m_numTriangles;
  79. std::string m_name;
  80. std::string m_material;
  81. };
  82. typedef std::vector<Group> GroupArray;
  83. struct Primitive
  84. {
  85. uint32_t m_startVertex;
  86. uint32_t m_startIndex;
  87. uint32_t m_numVertices;
  88. uint32_t m_numIndices;
  89. std::string m_name;
  90. };
  91. typedef std::vector<Primitive> PrimitiveArray;
  92. static uint32_t s_obbSteps = 17;
  93. #define BGFX_CHUNK_MAGIC_GEO BX_MAKEFOURCC('G', 'E', 'O', 0x0)
  94. #define BGFX_CHUNK_MAGIC_VB BX_MAKEFOURCC('V', 'B', ' ', 0x0)
  95. #define BGFX_CHUNK_MAGIC_IB BX_MAKEFOURCC('I', 'B', ' ', 0x0)
  96. #define BGFX_CHUNK_MAGIC_PRI BX_MAKEFOURCC('P', 'R', 'I', 0x0)
  97. long int fsize(FILE* _file)
  98. {
  99. long int pos = ftell(_file);
  100. fseek(_file, 0L, SEEK_END);
  101. long int size = ftell(_file);
  102. fseek(_file, pos, SEEK_SET);
  103. return size;
  104. }
  105. void triangleReorder(uint16_t* _indices, uint32_t _numIndices, uint32_t _numVertices, uint16_t _cacheSize)
  106. {
  107. uint16_t* newIndexList = new uint16_t[_numIndices];
  108. Forsyth::OptimizeFaces(_indices, _numIndices, _numVertices, newIndexList, _cacheSize);
  109. memcpy(_indices, newIndexList, _numIndices*2);
  110. delete [] newIndexList;
  111. }
  112. void calcTangents(void* _vertices, uint16_t _numVertices, bgfx::VertexDecl _decl, const uint16_t* _indices, uint32_t _numIndices)
  113. {
  114. struct PosTexcoord
  115. {
  116. float m_x;
  117. float m_y;
  118. float m_z;
  119. float m_pad0;
  120. float m_u;
  121. float m_v;
  122. float m_pad1;
  123. float m_pad2;
  124. };
  125. float* tangents = new float[6*_numVertices];
  126. memset(tangents, 0, 6*_numVertices*sizeof(float) );
  127. PosTexcoord v0;
  128. PosTexcoord v1;
  129. PosTexcoord v2;
  130. for (uint32_t ii = 0, num = _numIndices/3; ii < num; ++ii)
  131. {
  132. const uint16_t* indices = &_indices[ii*3];
  133. uint32_t i0 = indices[0];
  134. uint32_t i1 = indices[1];
  135. uint32_t i2 = indices[2];
  136. bgfx::vertexUnpack(&v0.m_x, bgfx::Attrib::Position, _decl, _vertices, i0);
  137. bgfx::vertexUnpack(&v0.m_u, bgfx::Attrib::TexCoord0, _decl, _vertices, i0);
  138. bgfx::vertexUnpack(&v1.m_x, bgfx::Attrib::Position, _decl, _vertices, i1);
  139. bgfx::vertexUnpack(&v1.m_u, bgfx::Attrib::TexCoord0, _decl, _vertices, i1);
  140. bgfx::vertexUnpack(&v2.m_x, bgfx::Attrib::Position, _decl, _vertices, i2);
  141. bgfx::vertexUnpack(&v2.m_u, bgfx::Attrib::TexCoord0, _decl, _vertices, i2);
  142. const float bax = v1.m_x - v0.m_x;
  143. const float bay = v1.m_y - v0.m_y;
  144. const float baz = v1.m_z - v0.m_z;
  145. const float bau = v1.m_u - v0.m_u;
  146. const float bav = v1.m_v - v0.m_v;
  147. const float cax = v2.m_x - v0.m_x;
  148. const float cay = v2.m_y - v0.m_y;
  149. const float caz = v2.m_z - v0.m_z;
  150. const float cau = v2.m_u - v0.m_u;
  151. const float cav = v2.m_v - v0.m_v;
  152. const float det = (bau * cav - bav * cau);
  153. const float invDet = 1.0f / det;
  154. const float tx = (bax * cav - cax * bav) * invDet;
  155. const float ty = (bay * cav - cay * bav) * invDet;
  156. const float tz = (baz * cav - caz * bav) * invDet;
  157. const float bx = (cax * bau - bax * cau) * invDet;
  158. const float by = (cay * bau - bay * cau) * invDet;
  159. const float bz = (caz * bau - baz * cau) * invDet;
  160. for (uint32_t jj = 0; jj < 3; ++jj)
  161. {
  162. float* tanu = &tangents[indices[jj]*6];
  163. float* tanv = &tanu[3];
  164. tanu[0] += tx;
  165. tanu[1] += ty;
  166. tanu[2] += tz;
  167. tanv[0] += bx;
  168. tanv[1] += by;
  169. tanv[2] += bz;
  170. }
  171. }
  172. for (uint32_t ii = 0; ii < _numVertices; ++ii)
  173. {
  174. const float* tanu = &tangents[ii*6];
  175. const float* tanv = &tangents[ii*6 + 3];
  176. float normal[4];
  177. bgfx::vertexUnpack(normal, bgfx::Attrib::Normal, _decl, _vertices, ii);
  178. float ndt = vec3Dot(normal, tanu);
  179. float nxt[3];
  180. vec3Cross(nxt, normal, tanu);
  181. float tmp[3];
  182. tmp[0] = tanu[0] - normal[0] * ndt;
  183. tmp[1] = tanu[1] - normal[1] * ndt;
  184. tmp[2] = tanu[2] - normal[2] * ndt;
  185. float tangent[4];
  186. vec3Norm(tangent, tmp);
  187. tangent[3] = vec3Dot(nxt, tanv) < 0.0f ? -1.0f : 1.0f;
  188. bgfx::vertexPack(tangent, true, bgfx::Attrib::Tangent, _decl, _vertices, ii);
  189. }
  190. delete [] tangents;
  191. }
  192. void writeBounds(bx::WriterI* _writer, const void* _vertices, uint32_t _numVertices, uint32_t _stride)
  193. {
  194. Sphere maxSphere;
  195. calcMaxBoundingSphere(maxSphere, _vertices, _numVertices, _stride);
  196. Sphere minSphere;
  197. calcMinBoundingSphere(minSphere, _vertices, _numVertices, _stride);
  198. if (minSphere.m_radius > maxSphere.m_radius)
  199. {
  200. bx::write(_writer, maxSphere);
  201. }
  202. else
  203. {
  204. bx::write(_writer, minSphere);
  205. }
  206. Aabb aabb;
  207. calcAabb(aabb, _vertices, _numVertices, _stride);
  208. bx::write(_writer, aabb);
  209. Obb obb;
  210. calcObb(obb, _vertices, _numVertices, _stride, s_obbSteps);
  211. bx::write(_writer, obb);
  212. }
  213. void write(bx::WriterI* _writer, const uint8_t* _vertices, uint32_t _numVertices, const bgfx::VertexDecl& _decl, const uint16_t* _indices, uint32_t _numIndices, const std::string& _material, const PrimitiveArray& _primitives)
  214. {
  215. uint32_t stride = _decl.getStride();
  216. bx::write(_writer, BGFX_CHUNK_MAGIC_VB);
  217. writeBounds(_writer, _vertices, _numVertices, stride);
  218. bx::write(_writer, _decl);
  219. bx::write(_writer, uint16_t(_numVertices) );
  220. bx::write(_writer, _vertices, _numVertices*stride);
  221. bx::write(_writer, BGFX_CHUNK_MAGIC_IB);
  222. bx::write(_writer, _numIndices);
  223. bx::write(_writer, _indices, _numIndices*2);
  224. bx::write(_writer, BGFX_CHUNK_MAGIC_PRI);
  225. uint16_t nameLen = uint16_t(_material.size() );
  226. bx::write(_writer, nameLen);
  227. bx::write(_writer, _material.c_str(), nameLen);
  228. bx::write(_writer, uint16_t(_primitives.size() ) );
  229. for (PrimitiveArray::const_iterator primIt = _primitives.begin(); primIt != _primitives.end(); ++primIt)
  230. {
  231. const Primitive& prim = *primIt;
  232. nameLen = uint16_t(prim.m_name.size() );
  233. bx::write(_writer, nameLen);
  234. bx::write(_writer, prim.m_name.c_str(), nameLen);
  235. bx::write(_writer, prim.m_startIndex);
  236. bx::write(_writer, prim.m_numIndices);
  237. bx::write(_writer, prim.m_startVertex);
  238. bx::write(_writer, prim.m_numVertices);
  239. writeBounds(_writer, &_vertices[prim.m_startVertex*stride], prim.m_numVertices, stride);
  240. }
  241. }
  242. void help(const char* _error = NULL)
  243. {
  244. if (NULL != _error)
  245. {
  246. fprintf(stderr, "Error:\n%s\n\n", _error);
  247. }
  248. fprintf(stderr
  249. , "geometryc, bgfx geometry compiler tool\n"
  250. "Copyright 2011-2013 Branimir Karadzic. All rights reserved.\n"
  251. "License: http://www.opensource.org/licenses/BSD-2-Clause\n\n"
  252. );
  253. fprintf(stderr
  254. , "Usage: geometryc -f <in> -o <out>\n"
  255. "\n"
  256. "Supported input file types:\n"
  257. " *.obj Wavefront\n"
  258. "\n"
  259. "Options:\n"
  260. " -f <file path> Input file path.\n"
  261. " -o <file path> Output file path.\n"
  262. " -s, --scale <num> Scale factor.\n"
  263. " --ccw Counter-clockwise winding order.\n"
  264. " --flipv Flip texture coordinate V.\n"
  265. " --obb <num> Number of steps for calculating oriented bounding box.\n"
  266. " Default value is 17. Less steps less precise OBB is.\n"
  267. " More steps slower calculation.\n"
  268. " --packnormal <num> Normal packing.\n"
  269. " 0 - unpacked 12 bytes (default).\n"
  270. " 1 - packed 4 bytes.\n"
  271. " --packuv <num> Texture coordinate packing.\n"
  272. " 0 - unpacked 8 bytes (default).\n"
  273. " 1 - packed 4 bytes.\n"
  274. " --tangent Calculate tangent vectors (packing mode is the same as normal).\n"
  275. "\n"
  276. "For additional information, see https://github.com/bkaradzic/bgfx\n"
  277. );
  278. }
  279. inline uint32_t rgbaToAbgr(uint8_t _r, uint8_t _g, uint8_t _b, uint8_t _a)
  280. {
  281. return (uint32_t(_r)<<0)
  282. | (uint32_t(_g)<<8)
  283. | (uint32_t(_b)<<16)
  284. | (uint32_t(_a)<<24)
  285. ;
  286. }
  287. int main(int _argc, const char* _argv[])
  288. {
  289. bx::CommandLine cmdLine(_argc, _argv);
  290. const char* filePath = cmdLine.findOption('f');
  291. if (NULL == filePath)
  292. {
  293. help("Input file name must be specified.");
  294. return EXIT_FAILURE;
  295. }
  296. const char* outFilePath = cmdLine.findOption('o');
  297. if (NULL == outFilePath)
  298. {
  299. help("Output file name must be specified.");
  300. return EXIT_FAILURE;
  301. }
  302. float scale = 1.0f;
  303. const char* scaleArg = cmdLine.findOption('s', "scale");
  304. if (NULL != scaleArg)
  305. {
  306. scale = (float)atof(scaleArg);
  307. }
  308. cmdLine.hasArg(s_obbSteps, '\0', "obb");
  309. s_obbSteps = bx::uint32_min(bx::uint32_max(s_obbSteps, 1), 90);
  310. uint32_t packNormal = 0;
  311. cmdLine.hasArg(packNormal, '\0', "packnormal");
  312. uint32_t packUv = 0;
  313. cmdLine.hasArg(packUv, '\0', "packuv");
  314. bool ccw = cmdLine.hasArg("ccw");
  315. bool flipV = cmdLine.hasArg("flipv");
  316. bool hasTangent = cmdLine.hasArg("tangent");
  317. FILE* file = fopen(filePath, "r");
  318. if (NULL == file)
  319. {
  320. printf("Unable to open input file '%s'.", filePath);
  321. exit(EXIT_FAILURE);
  322. }
  323. int64_t parseElapsed = -bx::getHPCounter();
  324. int64_t triReorderElapsed = 0;
  325. uint32_t size = (uint32_t)fsize(file);
  326. char* data = new char[size+1];
  327. size = (uint32_t)fread(data, 1, size, file);
  328. data[size] = '\0';
  329. fclose(file);
  330. // https://en.wikipedia.org/wiki/Wavefront_.obj_file
  331. Vector3Array positions;
  332. Vector3Array normals;
  333. Vector3Array texcoords;
  334. Index3Map indexMap;
  335. TriangleArray triangles;
  336. GroupArray groups;
  337. uint32_t num = 0;
  338. Group group;
  339. group.m_startTriangle = 0;
  340. group.m_numTriangles = 0;
  341. char commandLine[2048];
  342. uint32_t len = sizeof(commandLine);
  343. int argc;
  344. char* argv[64];
  345. const char* next = data;
  346. do
  347. {
  348. next = tokenizeCommandLine(next, commandLine, len, argc, argv, countof(argv), '\n');
  349. if (0 < argc)
  350. {
  351. if (0 == strcmp(argv[0], "#") )
  352. {
  353. if (2 < argc
  354. && 0 == strcmp(argv[2], "polygons") )
  355. {
  356. }
  357. }
  358. else if (0 == strcmp(argv[0], "f") )
  359. {
  360. Triangle triangle;
  361. memset(&triangle, 0, sizeof(Triangle) );
  362. for (uint32_t edge = 0, numEdges = argc-1; edge < numEdges; ++edge)
  363. {
  364. Index3 index;
  365. index.m_texcoord = -1;
  366. index.m_normal = -1;
  367. index.m_vertexIndex = -1;
  368. char* vertex = argv[edge+1];
  369. char* texcoord = strchr(vertex, '/');
  370. if (NULL != texcoord)
  371. {
  372. *texcoord++ = '\0';
  373. char* normal = strchr(texcoord, '/');
  374. if (NULL != normal)
  375. {
  376. *normal++ = '\0';
  377. index.m_normal = atoi(normal)-1;
  378. }
  379. index.m_texcoord = atoi(texcoord)-1;
  380. }
  381. index.m_position = atoi(vertex)-1;
  382. uint64_t hash0 = index.m_position;
  383. uint64_t hash1 = uint64_t(index.m_texcoord)<<20;
  384. uint64_t hash2 = uint64_t(index.m_normal)<<40;
  385. uint64_t hash = hash0^hash1^hash2;
  386. std::pair<Index3Map::iterator, bool> result = indexMap.insert(std::make_pair(hash, index) );
  387. if (!result.second)
  388. {
  389. Index3& oldIndex = result.first->second;
  390. BX_UNUSED(oldIndex);
  391. BX_CHECK(oldIndex.m_position == index.m_position
  392. && oldIndex.m_texcoord == index.m_texcoord
  393. && oldIndex.m_normal == index.m_normal
  394. , "Hash collision!"
  395. );
  396. }
  397. switch (edge)
  398. {
  399. case 0:
  400. case 1:
  401. case 2:
  402. triangle.m_index[edge] = hash;
  403. if (2 == edge)
  404. {
  405. if (ccw)
  406. {
  407. std::swap(triangle.m_index[1], triangle.m_index[2]);
  408. }
  409. triangles.push_back(triangle);
  410. }
  411. break;
  412. default:
  413. if (ccw)
  414. {
  415. triangle.m_index[2] = triangle.m_index[1];
  416. triangle.m_index[1] = hash;
  417. }
  418. else
  419. {
  420. triangle.m_index[1] = triangle.m_index[2];
  421. triangle.m_index[2] = hash;
  422. }
  423. triangles.push_back(triangle);
  424. break;
  425. }
  426. }
  427. }
  428. else if (0 == strcmp(argv[0], "g") )
  429. {
  430. EXPECT(1 < argc);
  431. group.m_name = argv[1];
  432. }
  433. else if (*argv[0] == 'v')
  434. {
  435. group.m_numTriangles = (uint32_t)(triangles.size() ) - group.m_startTriangle;
  436. if (0 < group.m_numTriangles)
  437. {
  438. groups.push_back(group);
  439. group.m_startTriangle = (uint32_t)(triangles.size() );
  440. group.m_numTriangles = 0;
  441. }
  442. if (0 == strcmp(argv[0], "vn") )
  443. {
  444. Vector3 normal;
  445. normal.x = (float)atof(argv[1]);
  446. normal.y = (float)atof(argv[2]);
  447. normal.z = (float)atof(argv[3]);
  448. normals.push_back(normal);
  449. }
  450. else if (0 == strcmp(argv[0], "vp") )
  451. {
  452. static bool once = true;
  453. if (once)
  454. {
  455. once = false;
  456. printf("warning: 'parameter space vertices' are unsupported.\n");
  457. }
  458. }
  459. else if (0 == strcmp(argv[0], "vt") )
  460. {
  461. Vector3 texcoord;
  462. texcoord.x = (float)atof(argv[1]);
  463. texcoord.y = 0.0f;
  464. texcoord.z = 0.0f;
  465. switch (argc)
  466. {
  467. case 4:
  468. texcoord.z = (float)atof(argv[3]);
  469. // fallthrough
  470. case 3:
  471. texcoord.y = (float)atof(argv[2]);
  472. break;
  473. default:
  474. break;
  475. }
  476. texcoords.push_back(texcoord);
  477. }
  478. else
  479. {
  480. float px = (float)atof(argv[1]);
  481. float py = (float)atof(argv[2]);
  482. float pz = (float)atof(argv[3]);
  483. float pw = 1.0f;
  484. if (argc > 4)
  485. {
  486. pw = (float)atof(argv[4]);
  487. }
  488. float invW = scale/pw;
  489. px *= invW;
  490. py *= invW;
  491. pz *= invW;
  492. Vector3 pos;
  493. pos.x = px;
  494. pos.y = py;
  495. pos.z = pz;
  496. positions.push_back(pos);
  497. }
  498. }
  499. else if (0 == strcmp(argv[0], "usemtl") )
  500. {
  501. std::string material(argv[1]);
  502. if (material != group.m_material)
  503. {
  504. group.m_numTriangles = (uint32_t)(triangles.size() ) - group.m_startTriangle;
  505. if (0 < group.m_numTriangles)
  506. {
  507. groups.push_back(group);
  508. group.m_startTriangle = (uint32_t)(triangles.size() );
  509. group.m_numTriangles = 0;
  510. }
  511. }
  512. group.m_material = material;
  513. }
  514. // unsupported tags
  515. // else if (0 == strcmp(argv[0], "mtllib") )
  516. // {
  517. // }
  518. // else if (0 == strcmp(argv[0], "o") )
  519. // {
  520. // }
  521. // else if (0 == strcmp(argv[0], "s") )
  522. // {
  523. // }
  524. }
  525. ++num;
  526. }
  527. while ('\0' != *next);
  528. group.m_numTriangles = (uint32_t)(triangles.size() ) - group.m_startTriangle;
  529. if (0 < group.m_numTriangles)
  530. {
  531. groups.push_back(group);
  532. group.m_startTriangle = (uint32_t)(triangles.size() );
  533. group.m_numTriangles = 0;
  534. }
  535. delete [] data;
  536. int64_t now = bx::getHPCounter();
  537. parseElapsed += now;
  538. int64_t convertElapsed = -now;
  539. struct GroupSortByMaterial
  540. {
  541. bool operator()(const Group& _lhs, const Group& _rhs)
  542. {
  543. return _lhs.m_material < _rhs.m_material;
  544. }
  545. };
  546. std::sort(groups.begin(), groups.end(), GroupSortByMaterial() );
  547. bool hasColor = false;
  548. bool hasNormal;
  549. bool hasTexcoord;
  550. {
  551. Index3Map::const_iterator it = indexMap.begin();
  552. hasNormal = -1 != it->second.m_normal;
  553. hasTexcoord = -1 != it->second.m_texcoord;
  554. if (!hasTexcoord
  555. && texcoords.size() == positions.size() )
  556. {
  557. hasTexcoord = true;
  558. for (Index3Map::iterator it = indexMap.begin(), itEnd = indexMap.end(); it != itEnd; ++it)
  559. {
  560. it->second.m_texcoord = it->second.m_position;
  561. }
  562. }
  563. if (!hasNormal
  564. && normals.size() == positions.size() )
  565. {
  566. hasNormal = true;
  567. for (Index3Map::iterator it = indexMap.begin(), itEnd = indexMap.end(); it != itEnd; ++it)
  568. {
  569. it->second.m_normal = it->second.m_position;
  570. }
  571. }
  572. }
  573. bgfx::VertexDecl decl;
  574. decl.begin();
  575. decl.add(bgfx::Attrib::Position, 3, bgfx::AttribType::Float);
  576. if (hasColor)
  577. {
  578. decl.add(bgfx::Attrib::Color0, 4, bgfx::AttribType::Uint8, true);
  579. }
  580. if (hasTexcoord)
  581. {
  582. switch (packUv)
  583. {
  584. default:
  585. case 0:
  586. decl.add(bgfx::Attrib::TexCoord0, 2, bgfx::AttribType::Float);
  587. break;
  588. case 1:
  589. decl.add(bgfx::Attrib::TexCoord0, 2, bgfx::AttribType::Half);
  590. break;
  591. }
  592. }
  593. if (hasNormal)
  594. {
  595. hasTangent &= hasTexcoord;
  596. switch (packNormal)
  597. {
  598. default:
  599. case 0:
  600. decl.add(bgfx::Attrib::Normal, 3, bgfx::AttribType::Float);
  601. if (hasTangent)
  602. {
  603. decl.add(bgfx::Attrib::Tangent, 4, bgfx::AttribType::Float);
  604. }
  605. break;
  606. case 1:
  607. decl.add(bgfx::Attrib::Normal, 4, bgfx::AttribType::Uint8, true, true);
  608. if (hasTangent)
  609. {
  610. decl.add(bgfx::Attrib::Tangent, 4, bgfx::AttribType::Uint8, true, true);
  611. }
  612. break;
  613. }
  614. }
  615. decl.end();
  616. uint32_t stride = decl.getStride();
  617. uint8_t* vertexData = new uint8_t[triangles.size() * 3 * stride];
  618. uint16_t* indexData = new uint16_t[triangles.size() * 3];
  619. int32_t numVertices = 0;
  620. int32_t numIndices = 0;
  621. int32_t numPrimitives = 0;
  622. uint8_t* vertices = vertexData;
  623. uint16_t* indices = indexData;
  624. std::string material = groups.begin()->m_material;
  625. PrimitiveArray primitives;
  626. bx::CrtFileWriter writer;
  627. if (0 != writer.open(outFilePath) )
  628. {
  629. printf("Unable to open output file '%s'.", outFilePath);
  630. exit(EXIT_FAILURE);
  631. }
  632. Primitive prim;
  633. prim.m_startVertex = 0;
  634. prim.m_startIndex = 0;
  635. uint32_t positionOffset = decl.getOffset(bgfx::Attrib::Position);
  636. uint32_t color0Offset = decl.getOffset(bgfx::Attrib::Color0);
  637. uint32_t ii = 0;
  638. for (GroupArray::const_iterator groupIt = groups.begin(); groupIt != groups.end(); ++groupIt, ++ii)
  639. {
  640. for (uint32_t tri = groupIt->m_startTriangle, end = tri + groupIt->m_numTriangles; tri < end; ++tri)
  641. {
  642. if (material != groupIt->m_material
  643. || 65533 < numVertices)
  644. {
  645. prim.m_numVertices = numVertices - prim.m_startVertex;
  646. prim.m_numIndices = numIndices - prim.m_startIndex;
  647. if (0 < prim.m_numVertices)
  648. {
  649. primitives.push_back(prim);
  650. }
  651. triReorderElapsed -= bx::getHPCounter();
  652. for (PrimitiveArray::const_iterator primIt = primitives.begin(); primIt != primitives.end(); ++primIt)
  653. {
  654. const Primitive& prim = *primIt;
  655. triangleReorder(indexData + prim.m_startIndex, prim.m_numIndices, numVertices, 32);
  656. }
  657. triReorderElapsed += bx::getHPCounter();
  658. if (hasTangent)
  659. {
  660. calcTangents(vertexData, numVertices, decl, indexData, numIndices);
  661. }
  662. write(&writer, vertexData, numVertices, decl, indexData, numIndices, material, primitives);
  663. primitives.clear();
  664. for (Index3Map::iterator indexIt = indexMap.begin(); indexIt != indexMap.end(); ++indexIt)
  665. {
  666. indexIt->second.m_vertexIndex = -1;
  667. }
  668. vertices = vertexData;
  669. indices = indexData;
  670. numVertices = 0;
  671. numIndices = 0;
  672. prim.m_startVertex = 0;
  673. prim.m_startIndex = 0;
  674. ++numPrimitives;
  675. material = groupIt->m_material;
  676. }
  677. Triangle& triangle = triangles[tri];
  678. for (uint32_t edge = 0; edge < 3; ++edge)
  679. {
  680. uint64_t hash = triangle.m_index[edge];
  681. Index3& index = indexMap[hash];
  682. if (index.m_vertexIndex == -1)
  683. {
  684. index.m_vertexIndex = numVertices++;
  685. float* position = (float*)(vertices + positionOffset);
  686. memcpy(position, &positions[index.m_position], 3*sizeof(float) );
  687. if (hasColor)
  688. {
  689. uint32_t* color0 = (uint32_t*)(vertices + color0Offset);
  690. *color0 = rgbaToAbgr(numVertices%255, numIndices%255, 0, 0xff);
  691. }
  692. if (hasTexcoord)
  693. {
  694. float uv[2];
  695. memcpy(uv, &texcoords[index.m_texcoord], 2*sizeof(float) );
  696. if (flipV)
  697. {
  698. uv[1] = -uv[1];
  699. }
  700. bgfx::vertexPack(uv, true, bgfx::Attrib::TexCoord0, decl, vertices);
  701. }
  702. if (hasNormal)
  703. {
  704. float normal[4];
  705. vec3Norm(normal, (float*)&normals[index.m_normal]);
  706. bgfx::vertexPack(normal, true, bgfx::Attrib::Normal, decl, vertices);
  707. }
  708. vertices += stride;
  709. }
  710. *indices++ = (uint16_t)index.m_vertexIndex;
  711. ++numIndices;
  712. }
  713. }
  714. if (0 < numVertices)
  715. {
  716. prim.m_numVertices = numVertices - prim.m_startVertex;
  717. prim.m_numIndices = numIndices - prim.m_startIndex;
  718. prim.m_name = groupIt->m_name;
  719. primitives.push_back(prim);
  720. prim.m_startVertex = numVertices;
  721. prim.m_startIndex = numIndices;
  722. }
  723. BX_TRACE("%3d: s %5d, n %5d, %s\n"
  724. , ii
  725. , groupIt->m_startTriangle
  726. , groupIt->m_numTriangles
  727. , groupIt->m_material.c_str()
  728. );
  729. }
  730. if (0 < primitives.size() )
  731. {
  732. triReorderElapsed -= bx::getHPCounter();
  733. for (PrimitiveArray::const_iterator primIt = primitives.begin(); primIt != primitives.end(); ++primIt)
  734. {
  735. const Primitive& prim = *primIt;
  736. triangleReorder(indexData + prim.m_startIndex, prim.m_numIndices, numVertices, 32);
  737. }
  738. triReorderElapsed += bx::getHPCounter();
  739. if (hasTangent)
  740. {
  741. calcTangents(vertexData, numVertices, decl, indexData, numIndices);
  742. }
  743. write(&writer, vertexData, numVertices, decl, indexData, numIndices, material, primitives);
  744. }
  745. printf("size: %d\n", uint32_t(writer.seek() ) );
  746. writer.close();
  747. delete [] indexData;
  748. delete [] vertexData;
  749. now = bx::getHPCounter();
  750. convertElapsed += now;
  751. printf("parse %f [s]\ntri reorder %f [s]\nconvert %f [s]\n# %d, g %d, p %d, v %d, i %d\n"
  752. , double(parseElapsed)/bx::getHPFrequency()
  753. , double(triReorderElapsed)/bx::getHPFrequency()
  754. , double(convertElapsed)/bx::getHPFrequency()
  755. , num
  756. , uint32_t(groups.size() )
  757. , numPrimitives
  758. , numVertices
  759. , numIndices
  760. );
  761. return EXIT_SUCCESS;
  762. }