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CmMeshData.cpp 16 KB

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  1. #include "CmMeshData.h"
  2. #include "CmVector2.h"
  3. #include "CmVector3.h"
  4. #include "CmHardwareBufferManager.h"
  5. #include "CmMeshDataRTTI.h"
  6. #include "CmVertexDeclaration.h"
  7. #include "CmException.h"
  8. namespace CamelotFramework
  9. {
  10. MeshData::MeshData(UINT32 numVertices, IndexBuffer::IndexType indexType)
  11. :mNumVertices(numVertices), mIndexType(indexType), mData(nullptr), mDescBuilding(false)
  12. {
  13. }
  14. MeshData::~MeshData()
  15. {
  16. }
  17. void MeshData::beginDesc()
  18. {
  19. if(mDescBuilding)
  20. CM_EXCEPT(InternalErrorException, "beginDesc() but description building has already began.");
  21. mVertexElements.clear();
  22. mSubMeshes.clear();
  23. mDescBuilding = true;
  24. }
  25. void MeshData::endDesc()
  26. {
  27. if(!mDescBuilding)
  28. CM_EXCEPT(InternalErrorException, "endDesc() called without beginDesc().");
  29. allocateInternalBuffer();
  30. mDescBuilding = false;
  31. }
  32. void MeshData::addVertElem(VertexElementType type, VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  33. {
  34. if(!mDescBuilding)
  35. CM_EXCEPT(InternalErrorException, "Cannot add vertex element when not building description. Call beginDesc() first.");
  36. clearIfItExists(type, semantic, semanticIdx, streamIdx);
  37. VertexElement newElement(streamIdx, 0, type, semantic, semanticIdx);
  38. // Insert it so it is sorted by stream
  39. UINT32 insertToIndex = (UINT32)mVertexElements.size();
  40. UINT32 idx = 0;
  41. for(auto& elem : mVertexElements)
  42. {
  43. if(elem.getStreamIdx() > streamIdx)
  44. {
  45. insertToIndex = idx;
  46. break;
  47. }
  48. idx++;
  49. }
  50. mVertexElements.insert(mVertexElements.begin() + insertToIndex, newElement);
  51. }
  52. void MeshData::addSubMesh(UINT32 numIndices, UINT32 subMesh)
  53. {
  54. if(!mDescBuilding)
  55. CM_EXCEPT(InternalErrorException, "Cannot add indices when not building description. Call beginDesc() first.");
  56. if(subMesh >= mSubMeshes.size())
  57. mSubMeshes.resize(subMesh + 1);
  58. IndexElementData indexData = mSubMeshes[subMesh];
  59. indexData.numIndices = numIndices;
  60. indexData.elementSize = getIndexElementSize();
  61. indexData.subMesh = subMesh;
  62. mSubMeshes[subMesh] = indexData;
  63. }
  64. VertexDeclarationPtr MeshData::createDeclaration() const
  65. {
  66. VertexDeclarationPtr declaration = HardwareBufferManager::instance().createVertexDeclaration();
  67. UINT32 maxStreamIdx = getMaxStreamIdx();
  68. UINT32 numStreams = maxStreamIdx + 1;
  69. UINT32* streamOffsets = cm_newN<UINT32, ScratchAlloc>(numStreams);
  70. for(UINT32 i = 0; i < numStreams; i++)
  71. streamOffsets[i] = 0;
  72. for(auto& vertElem : mVertexElements)
  73. {
  74. UINT32 streamIdx = vertElem.getStreamIdx();
  75. declaration->addElement(streamIdx, streamOffsets[streamIdx], vertElem.getType(), vertElem.getSemantic(), vertElem.getSemanticIdx());
  76. streamOffsets[streamIdx] += vertElem.getSize();
  77. }
  78. cm_deleteN<ScratchAlloc>(streamOffsets, numStreams);
  79. return declaration;
  80. }
  81. UINT32 MeshData::getNumIndices(UINT32 subMesh) const
  82. {
  83. return mSubMeshes.at(subMesh).numIndices;
  84. }
  85. UINT32 MeshData::getNumIndices() const
  86. {
  87. UINT32 count = 0;
  88. for(UINT32 i = 0; i < getNumSubmeshes(); i++)
  89. {
  90. count += mSubMeshes[i].numIndices;
  91. }
  92. return count;
  93. }
  94. UINT16* MeshData::getIndices16(UINT32 subMesh) const
  95. {
  96. if(mIndexType != IndexBuffer::IT_16BIT)
  97. CM_EXCEPT(InternalErrorException, "Attempting to get 16bit index buffer, but internally allocated buffer is 32 bit.");
  98. UINT32 indexBufferOffset = getIndexBufferOffset(subMesh);
  99. return (UINT16*)(getData() + indexBufferOffset);
  100. }
  101. UINT32* MeshData::getIndices32(UINT32 subMesh) const
  102. {
  103. if(mIndexType != IndexBuffer::IT_32BIT)
  104. CM_EXCEPT(InternalErrorException, "Attempting to get 32bit index buffer, but internally allocated buffer is 16 bit.");
  105. UINT32 indexBufferOffset = getIndexBufferOffset(subMesh);
  106. return (UINT32*)(getData() + indexBufferOffset);
  107. }
  108. UINT32 MeshData::getMaxStreamIdx() const
  109. {
  110. UINT32 maxStreamIdx = 0;
  111. for(auto& vertElems : mVertexElements)
  112. {
  113. UINT32 offset = 0;
  114. for(auto& vertElem : mVertexElements)
  115. {
  116. maxStreamIdx = std::max((UINT32)maxStreamIdx, (UINT32)vertElem.getStreamIdx());
  117. }
  118. }
  119. return maxStreamIdx;
  120. }
  121. bool MeshData::hasStream(UINT32 streamIdx) const
  122. {
  123. for(auto& vertElem : mVertexElements)
  124. {
  125. if(vertElem.getStreamIdx() == streamIdx)
  126. return true;
  127. }
  128. return false;
  129. }
  130. UINT32 MeshData::getInternalBufferSize()
  131. {
  132. return getIndexBufferSize() + getStreamSize();
  133. }
  134. // TODO - This doesn't handle the case where multiple elements in same slot have different data types
  135. // - actually it will likely corrupt memory in that case
  136. MeshDataPtr MeshData::combine(const vector<MeshDataPtr>::type& meshes)
  137. {
  138. UINT32 totalVertexCount = 0;
  139. for(auto& meshData : meshes)
  140. {
  141. UINT32 numVertices = meshData->getNumVertices();
  142. totalVertexCount += numVertices;
  143. }
  144. MeshDataPtr combinedMeshData(CM_NEW(MeshData, PoolAlloc) MeshData(totalVertexCount),
  145. &MemAllocDeleter<MeshData, PoolAlloc>::deleter);
  146. combinedMeshData->beginDesc();
  147. UINT32 subMeshIndex = 0;
  148. for(auto& meshData : meshes)
  149. {
  150. for(UINT32 i = 0; i < meshData->getNumSubmeshes(); i++)
  151. {
  152. UINT32 numIndices = meshData->getNumIndices(i);
  153. combinedMeshData->addSubMesh(numIndices, subMeshIndex);
  154. subMeshIndex++;
  155. }
  156. }
  157. vector<VertexElement>::type combinedVertexElements;
  158. for(auto& meshData : meshes)
  159. {
  160. for(auto& newElement : meshData->mVertexElements)
  161. {
  162. INT32 alreadyExistsIdx = -1;
  163. UINT32 idx = 0;
  164. for(auto& existingElement : combinedVertexElements)
  165. {
  166. if(newElement.getSemantic() == existingElement.getSemantic() && newElement.getSemanticIdx() == existingElement.getSemanticIdx()
  167. && newElement.getStreamIdx() == existingElement.getStreamIdx())
  168. {
  169. if(newElement.getType() != existingElement.getType())
  170. {
  171. CM_EXCEPT(NotImplementedException, "Two elements have same semantics but different types. This is not supported yet.");
  172. }
  173. alreadyExistsIdx = idx;
  174. break;
  175. }
  176. idx++;
  177. }
  178. if(alreadyExistsIdx == -1)
  179. {
  180. combinedVertexElements.push_back(newElement);
  181. combinedMeshData->addVertElem(newElement.getType(), newElement.getSemantic(), newElement.getSemanticIdx(), newElement.getStreamIdx());
  182. }
  183. }
  184. }
  185. combinedMeshData->endDesc();
  186. // Copy indices
  187. subMeshIndex = 0;
  188. UINT32 vertexOffset = 0;
  189. for(auto& meshData : meshes)
  190. {
  191. for(UINT32 i = 0; i < meshData->getNumSubmeshes(); i++)
  192. {
  193. UINT32 numIndices = meshData->getNumIndices(i);
  194. UINT32* srcData = meshData->getIndices32(i);
  195. UINT32* dstData = combinedMeshData->getIndices32(subMeshIndex);
  196. for(UINT32 j = 0; j < numIndices; j++)
  197. dstData[j] = srcData[j] + vertexOffset;
  198. subMeshIndex++;
  199. }
  200. vertexOffset += meshData->getNumVertices();
  201. }
  202. // Copy vertices
  203. vertexOffset = 0;
  204. for(auto& meshData : meshes)
  205. {
  206. for(auto& element : combinedMeshData->mVertexElements)
  207. {
  208. UINT32 dstVertexStride = combinedMeshData->getVertexStride(element.getStreamIdx());
  209. UINT8* dstData = combinedMeshData->getElementData(element.getSemantic(), element.getSemanticIdx(), element.getStreamIdx());
  210. dstData += vertexOffset * dstVertexStride;
  211. UINT32 numSrcVertices = meshData->getNumVertices();
  212. UINT32 vertexSize = combinedMeshData->getElementSize(element.getSemantic(), element.getSemanticIdx(), element.getStreamIdx());
  213. if(meshData->hasElement(element.getSemantic(), element.getSemanticIdx(), element.getStreamIdx()))
  214. {
  215. UINT32 srcVertexStride = meshData->getVertexStride(element.getStreamIdx());
  216. UINT8* srcData = meshData->getElementData(element.getSemantic(), element.getSemanticIdx(), element.getStreamIdx());
  217. for(UINT32 i = 0; i < numSrcVertices; i++)
  218. {
  219. memcpy(dstData, srcData, vertexSize);
  220. dstData += dstVertexStride;
  221. srcData += srcVertexStride;
  222. }
  223. }
  224. else
  225. {
  226. for(UINT32 i = 0; i < numSrcVertices; i++)
  227. {
  228. memset(dstData, 0, vertexSize);
  229. dstData += dstVertexStride;
  230. }
  231. }
  232. }
  233. vertexOffset += meshData->getNumVertices();
  234. }
  235. return combinedMeshData;
  236. }
  237. bool MeshData::hasElement(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx) const
  238. {
  239. auto findIter = std::find_if(mVertexElements.begin(), mVertexElements.end(),
  240. [semantic, semanticIdx, streamIdx] (const VertexElement& x)
  241. {
  242. return x.getSemantic() == semantic && x.getSemanticIdx() == semanticIdx && x.getStreamIdx() == streamIdx;
  243. });
  244. if(findIter != mVertexElements.end())
  245. {
  246. return true;
  247. }
  248. return false;
  249. }
  250. void MeshData::setVertexData(VertexElementSemantic semantic, UINT8* data, UINT32 size, UINT32 semanticIdx, UINT32 streamIdx)
  251. {
  252. assert(data != nullptr);
  253. if(!hasElement(semantic, semanticIdx, streamIdx))
  254. {
  255. CM_EXCEPT(InvalidParametersException, "MeshData doesn't contain an element of specified type: Semantic: " + toString(semantic) + ", Semantic index: "
  256. + toString(semanticIdx) + ", Stream index: " + toString(streamIdx));
  257. }
  258. UINT32 elementSize = getElementSize(semantic, semanticIdx, streamIdx);
  259. UINT32 totalSize = elementSize * mNumVertices;
  260. if(totalSize != size)
  261. {
  262. CM_EXCEPT(InvalidParametersException, "Buffer sizes don't match. Expected: " + toString(totalSize) + ". Got: " + toString(size));
  263. }
  264. UINT32 indexBufferOffset = getIndexBufferSize();
  265. UINT32 elementOffset = getElementOffset(semantic, semanticIdx, streamIdx);
  266. UINT32 vertexStride = getVertexStride(streamIdx);
  267. UINT8* dst = getData() + indexBufferOffset + elementOffset;
  268. UINT8* src = data;
  269. for(UINT32 i = 0; i < mNumVertices; i++)
  270. {
  271. memcpy(dst, src, elementSize);
  272. dst += vertexStride;
  273. src += elementSize;
  274. }
  275. }
  276. VertexElemIter<Vector2> MeshData::getVec2DataIter(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  277. {
  278. UINT8* data;
  279. UINT32 vertexStride;
  280. getDataForIterator(semantic, semanticIdx, streamIdx, data, vertexStride);
  281. return VertexElemIter<Vector2>(data, vertexStride, mNumVertices);
  282. }
  283. VertexElemIter<Vector3> MeshData::getVec3DataIter(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  284. {
  285. UINT8* data;
  286. UINT32 vertexStride;
  287. getDataForIterator(semantic, semanticIdx, streamIdx, data, vertexStride);
  288. return VertexElemIter<Vector3>(data, vertexStride, mNumVertices);
  289. }
  290. VertexElemIter<Vector4> MeshData::getVec4DataIter(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  291. {
  292. UINT8* data;
  293. UINT32 vertexStride;
  294. getDataForIterator(semantic, semanticIdx, streamIdx, data, vertexStride);
  295. return VertexElemIter<Vector4>(data, vertexStride, mNumVertices);
  296. }
  297. VertexElemIter<Color> MeshData::getColorDataIter(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  298. {
  299. UINT8* data;
  300. UINT32 vertexStride;
  301. getDataForIterator(semantic, semanticIdx, streamIdx, data, vertexStride);
  302. return VertexElemIter<Color>(data, vertexStride, mNumVertices);
  303. }
  304. VertexElemIter<UINT32> MeshData::getDWORDDataIter(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  305. {
  306. UINT8* data;
  307. UINT32 vertexStride;
  308. getDataForIterator(semantic, semanticIdx, streamIdx, data, vertexStride);
  309. return VertexElemIter<UINT32>(data, vertexStride, mNumVertices);
  310. }
  311. void MeshData::getDataForIterator(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx, UINT8*& data, UINT32& stride) const
  312. {
  313. if(!hasElement(semantic, semanticIdx, streamIdx))
  314. {
  315. CM_EXCEPT(InvalidParametersException, "MeshData doesn't contain an element of specified type: Semantic: " + toString(semantic) + ", Semantic index: "
  316. + toString(semanticIdx) + ", Stream index: " + toString(streamIdx));
  317. }
  318. UINT32 indexBufferOffset = getIndexBufferSize();
  319. UINT32 elementOffset = getElementOffset(semantic, semanticIdx, streamIdx);
  320. data = getData() + indexBufferOffset + elementOffset;
  321. stride = getVertexStride(streamIdx);
  322. }
  323. UINT32 MeshData::getIndexBufferOffset(UINT32 subMesh) const
  324. {
  325. if(subMesh < 0 || (subMesh > (UINT32)mSubMeshes.size()))
  326. {
  327. CM_EXCEPT(InvalidParametersException, "Submesh out of range: " + toString(subMesh) + ". Allowed range: 0 .. " + toString((UINT32)mSubMeshes.size()));
  328. }
  329. UINT32 offset = 0;
  330. for(UINT32 i = 0; i < subMesh; i++)
  331. {
  332. offset += mSubMeshes[i].numIndices * getIndexElementSize();
  333. }
  334. return offset;
  335. }
  336. UINT32 MeshData::getStreamOffset(UINT32 streamIdx) const
  337. {
  338. UINT32 streamOffset = 0;
  339. bool found = false;
  340. for(auto& element : mVertexElements)
  341. {
  342. if(element.getStreamIdx() == streamIdx)
  343. {
  344. found = true;
  345. break;
  346. }
  347. streamOffset += element.getSize();
  348. }
  349. if(!found)
  350. CM_EXCEPT(InternalErrorException, "Cannot find the specified stream: " + toString(streamIdx));
  351. return streamOffset * mNumVertices;
  352. }
  353. UINT32 MeshData::getElementSize(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx) const
  354. {
  355. for(auto& element : mVertexElements)
  356. {
  357. if(element.getSemantic() == semantic && element.getSemanticIdx() == semanticIdx && element.getStreamIdx() == streamIdx)
  358. return element.getSize();
  359. }
  360. return -1;
  361. }
  362. UINT8* MeshData::getElementData(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx) const
  363. {
  364. return getData() + getIndexBufferSize() + getElementOffset(semantic, semanticIdx, streamIdx);
  365. }
  366. UINT8* MeshData::getStreamData(UINT32 streamIdx) const
  367. {
  368. return getData() + getIndexBufferSize() + getStreamOffset(streamIdx);
  369. }
  370. UINT32 MeshData::getIndexElementSize() const
  371. {
  372. return mIndexType == IndexBuffer::IT_32BIT ? sizeof(UINT32) : sizeof(UINT16);
  373. }
  374. UINT32 MeshData::getElementOffset(VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx) const
  375. {
  376. UINT32 streamOffset = getStreamOffset(streamIdx);
  377. UINT32 vertexOffset = 0;
  378. for(auto& element : mVertexElements)
  379. {
  380. if(element.getStreamIdx() != streamIdx)
  381. continue;
  382. if(element.getSemantic() == semantic && element.getSemanticIdx() == semanticIdx)
  383. break;
  384. vertexOffset += element.getSize();
  385. }
  386. return streamOffset * mNumVertices + vertexOffset;
  387. }
  388. UINT32 MeshData::getStreamSize(UINT32 streamIdx) const
  389. {
  390. UINT32 vertexStride = 0;
  391. for(auto& element : mVertexElements)
  392. {
  393. if(element.getStreamIdx() == streamIdx)
  394. vertexStride += element.getSize();
  395. }
  396. return vertexStride * mNumVertices;
  397. }
  398. UINT32 MeshData::getStreamSize() const
  399. {
  400. UINT32 vertexStride = 0;
  401. for(auto& element : mVertexElements)
  402. {
  403. vertexStride += element.getSize();
  404. }
  405. return vertexStride * mNumVertices;
  406. }
  407. UINT32 MeshData::getVertexStride(UINT32 streamIdx) const
  408. {
  409. UINT32 vertexStride = 0;
  410. for(auto& element : mVertexElements)
  411. {
  412. if(element.getStreamIdx() == streamIdx)
  413. vertexStride += element.getSize();
  414. }
  415. return vertexStride;
  416. }
  417. void MeshData::clearIfItExists(VertexElementType type, VertexElementSemantic semantic, UINT32 semanticIdx, UINT32 streamIdx)
  418. {
  419. auto findIter = std::find_if(mVertexElements.begin(), mVertexElements.end(),
  420. [semantic, semanticIdx, streamIdx] (const VertexElement& x)
  421. {
  422. return x.getSemantic() == semantic && x.getSemanticIdx() == semanticIdx && x.getStreamIdx() == streamIdx;
  423. });
  424. if(findIter != mVertexElements.end())
  425. {
  426. mVertexElements.erase(findIter);
  427. }
  428. }
  429. /************************************************************************/
  430. /* SERIALIZATION */
  431. /************************************************************************/
  432. RTTITypeBase* MeshData::getRTTIStatic()
  433. {
  434. return MeshDataRTTI::instance();
  435. }
  436. RTTITypeBase* MeshData::getRTTI() const
  437. {
  438. return MeshData::getRTTIStatic();
  439. }
  440. }