ModuleBuilder.cpp 40 KB

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  1. //===--- ModuleBuilder.cpp - SPIR-V builder implementation ----*- C++ -*---===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is distributed under the University of Illinois Open Source
  6. // License. See LICENSE.TXT for details.
  7. //
  8. //===----------------------------------------------------------------------===//
  9. #include "clang/SPIRV/ModuleBuilder.h"
  10. #include "TypeTranslator.h"
  11. #include "spirv/1.0//spirv.hpp11"
  12. #include "clang/SPIRV/InstBuilder.h"
  13. #include "llvm/llvm_assert/assert.h"
  14. namespace clang {
  15. namespace spirv {
  16. ModuleBuilder::ModuleBuilder(SPIRVContext *C)
  17. : theContext(*C), theModule(), theFunction(nullptr), insertPoint(nullptr),
  18. instBuilder(nullptr), glslExtSetId(0) {
  19. instBuilder.setConsumer([this](std::vector<uint32_t> &&words) {
  20. this->constructSite = std::move(words);
  21. });
  22. }
  23. std::vector<uint32_t> ModuleBuilder::takeModule() {
  24. theModule.setBound(theContext.getNextId());
  25. std::vector<uint32_t> binary;
  26. auto ib = InstBuilder([&binary](std::vector<uint32_t> &&words) {
  27. binary.insert(binary.end(), words.begin(), words.end());
  28. });
  29. theModule.take(&ib);
  30. return binary;
  31. }
  32. uint32_t ModuleBuilder::beginFunction(uint32_t funcType, uint32_t returnType,
  33. llvm::StringRef funcName, uint32_t fId) {
  34. if (theFunction) {
  35. assert(false && "found nested function");
  36. return 0;
  37. }
  38. // If the caller doesn't supply a function <result-id>, we need to get one.
  39. if (!fId)
  40. fId = theContext.takeNextId();
  41. theFunction = llvm::make_unique<Function>(
  42. returnType, fId, spv::FunctionControlMask::MaskNone, funcType);
  43. theModule.addDebugName(fId, funcName);
  44. return fId;
  45. }
  46. uint32_t ModuleBuilder::addFnParam(uint32_t ptrType, llvm::StringRef name) {
  47. assert(theFunction && "found detached parameter");
  48. const uint32_t paramId = theContext.takeNextId();
  49. theFunction->addParameter(ptrType, paramId);
  50. theModule.addDebugName(paramId, name);
  51. return paramId;
  52. }
  53. uint32_t ModuleBuilder::addFnVar(uint32_t varType, llvm::StringRef name,
  54. llvm::Optional<uint32_t> init) {
  55. assert(theFunction && "found detached local variable");
  56. const uint32_t ptrType = getPointerType(varType, spv::StorageClass::Function);
  57. const uint32_t varId = theContext.takeNextId();
  58. theFunction->addVariable(ptrType, varId, init);
  59. theModule.addDebugName(varId, name);
  60. return varId;
  61. }
  62. bool ModuleBuilder::endFunction() {
  63. if (theFunction == nullptr) {
  64. assert(false && "no active function");
  65. return false;
  66. }
  67. // Move all basic blocks into the current function.
  68. // TODO: we should adjust the order the basic blocks according to
  69. // SPIR-V validation rules.
  70. for (auto &bb : basicBlocks) {
  71. theFunction->addBasicBlock(std::move(bb.second));
  72. }
  73. basicBlocks.clear();
  74. theModule.addFunction(std::move(theFunction));
  75. theFunction.reset(nullptr);
  76. insertPoint = nullptr;
  77. return true;
  78. }
  79. uint32_t ModuleBuilder::createBasicBlock(llvm::StringRef name) {
  80. if (theFunction == nullptr) {
  81. assert(false && "found detached basic block");
  82. return 0;
  83. }
  84. const uint32_t labelId = theContext.takeNextId();
  85. basicBlocks[labelId] = llvm::make_unique<BasicBlock>(labelId, name);
  86. return labelId;
  87. }
  88. void ModuleBuilder::addSuccessor(uint32_t successorLabel) {
  89. assert(insertPoint && "null insert point");
  90. insertPoint->addSuccessor(getBasicBlock(successorLabel));
  91. }
  92. void ModuleBuilder::setMergeTarget(uint32_t mergeLabel) {
  93. assert(insertPoint && "null insert point");
  94. insertPoint->setMergeTarget(getBasicBlock(mergeLabel));
  95. }
  96. void ModuleBuilder::setContinueTarget(uint32_t continueLabel) {
  97. assert(insertPoint && "null insert point");
  98. insertPoint->setContinueTarget(getBasicBlock(continueLabel));
  99. }
  100. void ModuleBuilder::setInsertPoint(uint32_t labelId) {
  101. insertPoint = getBasicBlock(labelId);
  102. }
  103. uint32_t
  104. ModuleBuilder::createCompositeConstruct(uint32_t resultType,
  105. llvm::ArrayRef<uint32_t> constituents) {
  106. assert(insertPoint && "null insert point");
  107. const uint32_t resultId = theContext.takeNextId();
  108. instBuilder.opCompositeConstruct(resultType, resultId, constituents).x();
  109. insertPoint->appendInstruction(std::move(constructSite));
  110. return resultId;
  111. }
  112. uint32_t
  113. ModuleBuilder::createCompositeExtract(uint32_t resultType, uint32_t composite,
  114. llvm::ArrayRef<uint32_t> indexes) {
  115. assert(insertPoint && "null insert point");
  116. const uint32_t resultId = theContext.takeNextId();
  117. instBuilder.opCompositeExtract(resultType, resultId, composite, indexes).x();
  118. insertPoint->appendInstruction(std::move(constructSite));
  119. return resultId;
  120. }
  121. uint32_t ModuleBuilder::createCompositeInsert(uint32_t resultType,
  122. uint32_t composite,
  123. llvm::ArrayRef<uint32_t> indices,
  124. uint32_t object) {
  125. assert(insertPoint && "null insert point");
  126. const uint32_t resultId = theContext.takeNextId();
  127. instBuilder
  128. .opCompositeInsert(resultType, resultId, object, composite, indices)
  129. .x();
  130. insertPoint->appendInstruction(std::move(constructSite));
  131. return resultId;
  132. }
  133. uint32_t
  134. ModuleBuilder::createVectorShuffle(uint32_t resultType, uint32_t vector1,
  135. uint32_t vector2,
  136. llvm::ArrayRef<uint32_t> selectors) {
  137. assert(insertPoint && "null insert point");
  138. const uint32_t resultId = theContext.takeNextId();
  139. instBuilder.opVectorShuffle(resultType, resultId, vector1, vector2, selectors)
  140. .x();
  141. insertPoint->appendInstruction(std::move(constructSite));
  142. return resultId;
  143. }
  144. uint32_t ModuleBuilder::createLoad(uint32_t resultType, uint32_t pointer) {
  145. assert(insertPoint && "null insert point");
  146. const uint32_t resultId = theContext.takeNextId();
  147. instBuilder.opLoad(resultType, resultId, pointer, llvm::None).x();
  148. insertPoint->appendInstruction(std::move(constructSite));
  149. return resultId;
  150. }
  151. void ModuleBuilder::createStore(uint32_t address, uint32_t value) {
  152. assert(insertPoint && "null insert point");
  153. instBuilder.opStore(address, value, llvm::None).x();
  154. insertPoint->appendInstruction(std::move(constructSite));
  155. }
  156. uint32_t ModuleBuilder::createFunctionCall(uint32_t returnType,
  157. uint32_t functionId,
  158. llvm::ArrayRef<uint32_t> params) {
  159. assert(insertPoint && "null insert point");
  160. const uint32_t id = theContext.takeNextId();
  161. instBuilder.opFunctionCall(returnType, id, functionId, params).x();
  162. insertPoint->appendInstruction(std::move(constructSite));
  163. return id;
  164. }
  165. uint32_t ModuleBuilder::createAccessChain(uint32_t resultType, uint32_t base,
  166. llvm::ArrayRef<uint32_t> indexes) {
  167. assert(insertPoint && "null insert point");
  168. const uint32_t id = theContext.takeNextId();
  169. instBuilder.opAccessChain(resultType, id, base, indexes).x();
  170. insertPoint->appendInstruction(std::move(constructSite));
  171. return id;
  172. }
  173. uint32_t ModuleBuilder::createUnaryOp(spv::Op op, uint32_t resultType,
  174. uint32_t operand) {
  175. assert(insertPoint && "null insert point");
  176. const uint32_t id = theContext.takeNextId();
  177. instBuilder.unaryOp(op, resultType, id, operand).x();
  178. insertPoint->appendInstruction(std::move(constructSite));
  179. return id;
  180. }
  181. uint32_t ModuleBuilder::createBinaryOp(spv::Op op, uint32_t resultType,
  182. uint32_t lhs, uint32_t rhs) {
  183. assert(insertPoint && "null insert point");
  184. const uint32_t id = theContext.takeNextId();
  185. instBuilder.binaryOp(op, resultType, id, lhs, rhs).x();
  186. insertPoint->appendInstruction(std::move(constructSite));
  187. return id;
  188. }
  189. uint32_t ModuleBuilder::createAtomicOp(spv::Op opcode, uint32_t resultType,
  190. uint32_t orignalValuePtr,
  191. uint32_t scopeId,
  192. uint32_t memorySemanticsId,
  193. uint32_t valueToOp) {
  194. assert(insertPoint && "null insert point");
  195. const uint32_t id = theContext.takeNextId();
  196. switch (opcode) {
  197. case spv::Op::OpAtomicIAdd:
  198. instBuilder.opAtomicIAdd(resultType, id, orignalValuePtr, scopeId,
  199. memorySemanticsId, valueToOp);
  200. break;
  201. case spv::Op::OpAtomicISub:
  202. instBuilder.opAtomicISub(resultType, id, orignalValuePtr, scopeId,
  203. memorySemanticsId, valueToOp);
  204. break;
  205. case spv::Op::OpAtomicAnd:
  206. instBuilder.opAtomicAnd(resultType, id, orignalValuePtr, scopeId,
  207. memorySemanticsId, valueToOp);
  208. break;
  209. case spv::Op::OpAtomicOr:
  210. instBuilder.opAtomicOr(resultType, id, orignalValuePtr, scopeId,
  211. memorySemanticsId, valueToOp);
  212. break;
  213. case spv::Op::OpAtomicXor:
  214. instBuilder.opAtomicXor(resultType, id, orignalValuePtr, scopeId,
  215. memorySemanticsId, valueToOp);
  216. break;
  217. case spv::Op::OpAtomicUMax:
  218. instBuilder.opAtomicUMax(resultType, id, orignalValuePtr, scopeId,
  219. memorySemanticsId, valueToOp);
  220. break;
  221. case spv::Op::OpAtomicUMin:
  222. instBuilder.opAtomicUMin(resultType, id, orignalValuePtr, scopeId,
  223. memorySemanticsId, valueToOp);
  224. break;
  225. case spv::Op::OpAtomicSMax:
  226. instBuilder.opAtomicSMax(resultType, id, orignalValuePtr, scopeId,
  227. memorySemanticsId, valueToOp);
  228. break;
  229. case spv::Op::OpAtomicSMin:
  230. instBuilder.opAtomicSMin(resultType, id, orignalValuePtr, scopeId,
  231. memorySemanticsId, valueToOp);
  232. break;
  233. case spv::Op::OpAtomicExchange:
  234. instBuilder.opAtomicExchange(resultType, id, orignalValuePtr, scopeId,
  235. memorySemanticsId, valueToOp);
  236. break;
  237. default:
  238. assert(false && "unimplemented atomic opcode");
  239. }
  240. instBuilder.x();
  241. insertPoint->appendInstruction(std::move(constructSite));
  242. return id;
  243. }
  244. uint32_t ModuleBuilder::createAtomicCompareExchange(
  245. uint32_t resultType, uint32_t orignalValuePtr, uint32_t scopeId,
  246. uint32_t equalMemorySemanticsId, uint32_t unequalMemorySemanticsId,
  247. uint32_t valueToOp, uint32_t comparator) {
  248. assert(insertPoint && "null insert point");
  249. const uint32_t id = theContext.takeNextId();
  250. instBuilder.opAtomicCompareExchange(
  251. resultType, id, orignalValuePtr, scopeId, equalMemorySemanticsId,
  252. unequalMemorySemanticsId, valueToOp, comparator);
  253. instBuilder.x();
  254. insertPoint->appendInstruction(std::move(constructSite));
  255. return id;
  256. }
  257. spv::ImageOperandsMask ModuleBuilder::composeImageOperandsMask(
  258. uint32_t bias, uint32_t lod, const std::pair<uint32_t, uint32_t> &grad,
  259. uint32_t constOffset, uint32_t varOffset, uint32_t constOffsets,
  260. uint32_t sample, uint32_t minLod,
  261. llvm::SmallVectorImpl<uint32_t> *orderedParams) {
  262. using spv::ImageOperandsMask;
  263. // SPIR-V Image Operands from least significant bit to most significant bit
  264. // Bias, Lod, Grad, ConstOffset, Offset, ConstOffsets, Sample, MinLod
  265. auto mask = ImageOperandsMask::MaskNone;
  266. orderedParams->clear();
  267. if (bias) {
  268. mask = mask | ImageOperandsMask::Bias;
  269. orderedParams->push_back(bias);
  270. }
  271. if (lod) {
  272. mask = mask | ImageOperandsMask::Lod;
  273. orderedParams->push_back(lod);
  274. }
  275. if (grad.first && grad.second) {
  276. mask = mask | ImageOperandsMask::Grad;
  277. orderedParams->push_back(grad.first);
  278. orderedParams->push_back(grad.second);
  279. }
  280. if (constOffset) {
  281. mask = mask | ImageOperandsMask::ConstOffset;
  282. orderedParams->push_back(constOffset);
  283. }
  284. if (varOffset) {
  285. mask = mask | ImageOperandsMask::Offset;
  286. requireCapability(spv::Capability::ImageGatherExtended);
  287. orderedParams->push_back(varOffset);
  288. }
  289. if (constOffsets) {
  290. mask = mask | ImageOperandsMask::ConstOffsets;
  291. orderedParams->push_back(constOffsets);
  292. }
  293. if (sample) {
  294. mask = mask | ImageOperandsMask::Sample;
  295. orderedParams->push_back(sample);
  296. }
  297. if (minLod) {
  298. requireCapability(spv::Capability::MinLod);
  299. mask = mask | ImageOperandsMask::MinLod;
  300. orderedParams->push_back(minLod);
  301. }
  302. return mask;
  303. }
  304. uint32_t
  305. ModuleBuilder::createImageSparseTexelsResident(uint32_t resident_code) {
  306. assert(insertPoint && "null insert point");
  307. // Result type must be a boolean
  308. const uint32_t result_type = getBoolType();
  309. const uint32_t id = theContext.takeNextId();
  310. instBuilder.opImageSparseTexelsResident(result_type, id, resident_code).x();
  311. insertPoint->appendInstruction(std::move(constructSite));
  312. return id;
  313. }
  314. uint32_t ModuleBuilder::createImageTexelPointer(uint32_t resultType,
  315. uint32_t imageId,
  316. uint32_t coordinate,
  317. uint32_t sample) {
  318. assert(insertPoint && "null insert point");
  319. const uint32_t id = theContext.takeNextId();
  320. instBuilder.opImageTexelPointer(resultType, id, imageId, coordinate, sample)
  321. .x();
  322. insertPoint->appendInstruction(std::move(constructSite));
  323. return id;
  324. }
  325. uint32_t ModuleBuilder::createImageSample(
  326. uint32_t texelType, uint32_t imageType, uint32_t image, uint32_t sampler,
  327. uint32_t coordinate, uint32_t compareVal, uint32_t bias, uint32_t lod,
  328. std::pair<uint32_t, uint32_t> grad, uint32_t constOffset,
  329. uint32_t varOffset, uint32_t constOffsets, uint32_t sample, uint32_t minLod,
  330. uint32_t residencyCodeId) {
  331. assert(insertPoint && "null insert point");
  332. // The Lod and Grad image operands requires explicit-lod instructions.
  333. // Otherwise we use implicit-lod instructions.
  334. const bool isExplicit = lod || (grad.first && grad.second);
  335. const bool isSparse = (residencyCodeId != 0);
  336. // minLod is only valid with Implicit instructions and Grad instructions.
  337. // This means that we cannot have Lod and minLod together because Lod requires
  338. // explicit insturctions. So either lod or minLod or both must be zero.
  339. assert(lod == 0 || minLod == 0);
  340. uint32_t retType = texelType;
  341. if (isSparse) {
  342. requireCapability(spv::Capability::SparseResidency);
  343. retType = getSparseResidencyStructType(texelType);
  344. }
  345. // An OpSampledImage is required to do the image sampling.
  346. const uint32_t sampledImgId = theContext.takeNextId();
  347. const uint32_t sampledImgTy = getSampledImageType(imageType);
  348. instBuilder.opSampledImage(sampledImgTy, sampledImgId, image, sampler).x();
  349. insertPoint->appendInstruction(std::move(constructSite));
  350. uint32_t texelId = theContext.takeNextId();
  351. llvm::SmallVector<uint32_t, 4> params;
  352. const auto mask =
  353. composeImageOperandsMask(bias, lod, grad, constOffset, varOffset,
  354. constOffsets, sample, minLod, &params);
  355. instBuilder.opImageSample(retType, texelId, sampledImgId, coordinate,
  356. compareVal, mask, isExplicit, isSparse);
  357. for (const auto param : params)
  358. instBuilder.idRef(param);
  359. instBuilder.x();
  360. insertPoint->appendInstruction(std::move(constructSite));
  361. if (isSparse) {
  362. // Write the Residency Code
  363. const auto status = createCompositeExtract(getUint32Type(), texelId, {0});
  364. createStore(residencyCodeId, status);
  365. // Extract the real result from the struct
  366. texelId = createCompositeExtract(texelType, texelId, {1});
  367. }
  368. return texelId;
  369. }
  370. void ModuleBuilder::createImageWrite(QualType imageType, uint32_t imageId,
  371. uint32_t coordId, uint32_t texelId) {
  372. assert(insertPoint && "null insert point");
  373. requireCapability(
  374. TypeTranslator::getCapabilityForStorageImageReadWrite(imageType));
  375. instBuilder.opImageWrite(imageId, coordId, texelId, llvm::None).x();
  376. insertPoint->appendInstruction(std::move(constructSite));
  377. }
  378. uint32_t ModuleBuilder::createImageFetchOrRead(
  379. bool doImageFetch, uint32_t texelType, QualType imageType, uint32_t image,
  380. uint32_t coordinate, uint32_t lod, uint32_t constOffset, uint32_t varOffset,
  381. uint32_t constOffsets, uint32_t sample, uint32_t residencyCodeId) {
  382. assert(insertPoint && "null insert point");
  383. llvm::SmallVector<uint32_t, 2> params;
  384. const auto mask =
  385. llvm::Optional<spv::ImageOperandsMask>(composeImageOperandsMask(
  386. /*bias*/ 0, lod, std::make_pair(0, 0), constOffset, varOffset,
  387. constOffsets, sample, /*minLod*/ 0, &params));
  388. const bool isSparse = (residencyCodeId != 0);
  389. uint32_t retType = texelType;
  390. if (isSparse) {
  391. requireCapability(spv::Capability::SparseResidency);
  392. retType = getSparseResidencyStructType(texelType);
  393. }
  394. if (!doImageFetch) {
  395. requireCapability(
  396. TypeTranslator::getCapabilityForStorageImageReadWrite(imageType));
  397. }
  398. uint32_t texelId = theContext.takeNextId();
  399. instBuilder.opImageFetchRead(retType, texelId, image, coordinate, mask,
  400. doImageFetch, isSparse);
  401. for (const auto param : params)
  402. instBuilder.idRef(param);
  403. instBuilder.x();
  404. insertPoint->appendInstruction(std::move(constructSite));
  405. if (isSparse) {
  406. // Write the Residency Code
  407. const auto status = createCompositeExtract(getUint32Type(), texelId, {0});
  408. createStore(residencyCodeId, status);
  409. // Extract the real result from the struct
  410. texelId = createCompositeExtract(texelType, texelId, {1});
  411. }
  412. return texelId;
  413. }
  414. uint32_t ModuleBuilder::createImageGather(
  415. uint32_t texelType, uint32_t imageType, uint32_t image, uint32_t sampler,
  416. uint32_t coordinate, uint32_t component, uint32_t compareVal,
  417. uint32_t constOffset, uint32_t varOffset, uint32_t constOffsets,
  418. uint32_t sample, uint32_t residencyCodeId) {
  419. assert(insertPoint && "null insert point");
  420. uint32_t sparseRetType = 0;
  421. if (residencyCodeId) {
  422. requireCapability(spv::Capability::SparseResidency);
  423. sparseRetType = getSparseResidencyStructType(texelType);
  424. }
  425. // An OpSampledImage is required to do the image sampling.
  426. const uint32_t sampledImgId = theContext.takeNextId();
  427. const uint32_t sampledImgTy = getSampledImageType(imageType);
  428. instBuilder.opSampledImage(sampledImgTy, sampledImgId, image, sampler).x();
  429. insertPoint->appendInstruction(std::move(constructSite));
  430. llvm::SmallVector<uint32_t, 2> params;
  431. // TODO: Update ImageGather to accept minLod if necessary.
  432. const auto mask =
  433. llvm::Optional<spv::ImageOperandsMask>(composeImageOperandsMask(
  434. /*bias*/ 0, /*lod*/ 0, std::make_pair(0, 0), constOffset, varOffset,
  435. constOffsets, sample, /*minLod*/ 0, &params));
  436. uint32_t texelId = theContext.takeNextId();
  437. if (compareVal) {
  438. if (residencyCodeId) {
  439. // Note: OpImageSparseDrefGather does not take the component parameter.
  440. instBuilder.opImageSparseDrefGather(sparseRetType, texelId, sampledImgId,
  441. coordinate, compareVal, mask);
  442. } else {
  443. // Note: OpImageDrefGather does not take the component parameter.
  444. instBuilder.opImageDrefGather(texelType, texelId, sampledImgId,
  445. coordinate, compareVal, mask);
  446. }
  447. } else {
  448. if (residencyCodeId) {
  449. instBuilder.opImageSparseGather(sparseRetType, texelId, sampledImgId,
  450. coordinate, component, mask);
  451. } else {
  452. instBuilder.opImageGather(texelType, texelId, sampledImgId, coordinate,
  453. component, mask);
  454. }
  455. }
  456. for (const auto param : params)
  457. instBuilder.idRef(param);
  458. instBuilder.x();
  459. insertPoint->appendInstruction(std::move(constructSite));
  460. if (residencyCodeId) {
  461. // Write the Residency Code
  462. const auto status = createCompositeExtract(getUint32Type(), texelId, {0});
  463. createStore(residencyCodeId, status);
  464. // Extract the real result from the struct
  465. texelId = createCompositeExtract(texelType, texelId, {1});
  466. }
  467. return texelId;
  468. }
  469. uint32_t ModuleBuilder::createSelect(uint32_t resultType, uint32_t condition,
  470. uint32_t trueValue, uint32_t falseValue) {
  471. assert(insertPoint && "null insert point");
  472. const uint32_t id = theContext.takeNextId();
  473. instBuilder.opSelect(resultType, id, condition, trueValue, falseValue).x();
  474. insertPoint->appendInstruction(std::move(constructSite));
  475. return id;
  476. }
  477. void ModuleBuilder::createSwitch(
  478. uint32_t mergeLabel, uint32_t selector, uint32_t defaultLabel,
  479. llvm::ArrayRef<std::pair<uint32_t, uint32_t>> target) {
  480. assert(insertPoint && "null insert point");
  481. // Create the OpSelectioMerege.
  482. instBuilder.opSelectionMerge(mergeLabel, spv::SelectionControlMask::MaskNone)
  483. .x();
  484. insertPoint->appendInstruction(std::move(constructSite));
  485. // Create the OpSwitch.
  486. instBuilder.opSwitch(selector, defaultLabel, target).x();
  487. insertPoint->appendInstruction(std::move(constructSite));
  488. }
  489. void ModuleBuilder::createKill() {
  490. assert(insertPoint && "null insert point");
  491. assert(!isCurrentBasicBlockTerminated());
  492. instBuilder.opKill().x();
  493. insertPoint->appendInstruction(std::move(constructSite));
  494. }
  495. void ModuleBuilder::createBranch(uint32_t targetLabel, uint32_t mergeBB,
  496. uint32_t continueBB,
  497. spv::LoopControlMask loopControl) {
  498. assert(insertPoint && "null insert point");
  499. if (mergeBB && continueBB) {
  500. instBuilder.opLoopMerge(mergeBB, continueBB, loopControl).x();
  501. insertPoint->appendInstruction(std::move(constructSite));
  502. }
  503. instBuilder.opBranch(targetLabel).x();
  504. insertPoint->appendInstruction(std::move(constructSite));
  505. }
  506. void ModuleBuilder::createConditionalBranch(
  507. uint32_t condition, uint32_t trueLabel, uint32_t falseLabel,
  508. uint32_t mergeLabel, uint32_t continueLabel,
  509. spv::SelectionControlMask selectionControl,
  510. spv::LoopControlMask loopControl) {
  511. assert(insertPoint && "null insert point");
  512. if (mergeLabel) {
  513. if (continueLabel) {
  514. instBuilder.opLoopMerge(mergeLabel, continueLabel, loopControl).x();
  515. insertPoint->appendInstruction(std::move(constructSite));
  516. } else {
  517. instBuilder.opSelectionMerge(mergeLabel, selectionControl).x();
  518. insertPoint->appendInstruction(std::move(constructSite));
  519. }
  520. }
  521. instBuilder.opBranchConditional(condition, trueLabel, falseLabel, {}).x();
  522. insertPoint->appendInstruction(std::move(constructSite));
  523. }
  524. void ModuleBuilder::createReturn() {
  525. assert(insertPoint && "null insert point");
  526. instBuilder.opReturn().x();
  527. insertPoint->appendInstruction(std::move(constructSite));
  528. }
  529. void ModuleBuilder::createReturnValue(uint32_t value) {
  530. assert(insertPoint && "null insert point");
  531. instBuilder.opReturnValue(value).x();
  532. insertPoint->appendInstruction(std::move(constructSite));
  533. }
  534. uint32_t ModuleBuilder::createExtInst(uint32_t resultType, uint32_t setId,
  535. uint32_t instId,
  536. llvm::ArrayRef<uint32_t> operands) {
  537. assert(insertPoint && "null insert point");
  538. uint32_t resultId = theContext.takeNextId();
  539. instBuilder.opExtInst(resultType, resultId, setId, instId, operands).x();
  540. insertPoint->appendInstruction(std::move(constructSite));
  541. return resultId;
  542. }
  543. void ModuleBuilder::createBarrier(uint32_t execution, uint32_t memory,
  544. uint32_t semantics) {
  545. assert(insertPoint && "null insert point");
  546. if (execution)
  547. instBuilder.opControlBarrier(execution, memory, semantics).x();
  548. else
  549. instBuilder.opMemoryBarrier(memory, semantics).x();
  550. insertPoint->appendInstruction(std::move(constructSite));
  551. }
  552. uint32_t ModuleBuilder::createBitFieldExtract(uint32_t resultType,
  553. uint32_t base, uint32_t offset,
  554. uint32_t count, bool isSigned) {
  555. assert(insertPoint && "null insert point");
  556. uint32_t resultId = theContext.takeNextId();
  557. if (isSigned)
  558. instBuilder.opBitFieldSExtract(resultType, resultId, base, offset, count);
  559. else
  560. instBuilder.opBitFieldUExtract(resultType, resultId, base, offset, count);
  561. instBuilder.x();
  562. insertPoint->appendInstruction(std::move(constructSite));
  563. return resultId;
  564. }
  565. uint32_t ModuleBuilder::createBitFieldInsert(uint32_t resultType, uint32_t base,
  566. uint32_t insert, uint32_t offset,
  567. uint32_t count) {
  568. assert(insertPoint && "null insert point");
  569. uint32_t resultId = theContext.takeNextId();
  570. instBuilder
  571. .opBitFieldInsert(resultType, resultId, base, insert, offset, count)
  572. .x();
  573. insertPoint->appendInstruction(std::move(constructSite));
  574. return resultId;
  575. }
  576. void ModuleBuilder::createEmitVertex() {
  577. assert(insertPoint && "null insert point");
  578. instBuilder.opEmitVertex().x();
  579. insertPoint->appendInstruction(std::move(constructSite));
  580. }
  581. void ModuleBuilder::createEndPrimitive() {
  582. assert(insertPoint && "null insert point");
  583. instBuilder.opEndPrimitive().x();
  584. insertPoint->appendInstruction(std::move(constructSite));
  585. }
  586. void ModuleBuilder::addExecutionMode(uint32_t entryPointId,
  587. spv::ExecutionMode em,
  588. llvm::ArrayRef<uint32_t> params) {
  589. instBuilder.opExecutionMode(entryPointId, em);
  590. for (const auto &param : params) {
  591. instBuilder.literalInteger(param);
  592. }
  593. instBuilder.x();
  594. theModule.addExecutionMode(std::move(constructSite));
  595. }
  596. uint32_t ModuleBuilder::getGLSLExtInstSet() {
  597. if (glslExtSetId == 0) {
  598. glslExtSetId = theContext.takeNextId();
  599. theModule.addExtInstSet(glslExtSetId, "GLSL.std.450");
  600. }
  601. return glslExtSetId;
  602. }
  603. uint32_t ModuleBuilder::addStageIOVar(uint32_t type,
  604. spv::StorageClass storageClass,
  605. std::string name) {
  606. const uint32_t pointerType = getPointerType(type, storageClass);
  607. const uint32_t varId = theContext.takeNextId();
  608. instBuilder.opVariable(pointerType, varId, storageClass, llvm::None).x();
  609. theModule.addVariable(std::move(constructSite));
  610. theModule.addDebugName(varId, name);
  611. return varId;
  612. }
  613. uint32_t ModuleBuilder::addStageBuiltinVar(uint32_t type, spv::StorageClass sc,
  614. spv::BuiltIn builtin) {
  615. const uint32_t pointerType = getPointerType(type, sc);
  616. const uint32_t varId = theContext.takeNextId();
  617. instBuilder.opVariable(pointerType, varId, sc, llvm::None).x();
  618. theModule.addVariable(std::move(constructSite));
  619. // Decorate with the specified Builtin
  620. const Decoration *d = Decoration::getBuiltIn(theContext, builtin);
  621. theModule.addDecoration(d, varId);
  622. return varId;
  623. }
  624. uint32_t ModuleBuilder::addModuleVar(uint32_t type, spv::StorageClass sc,
  625. llvm::StringRef name,
  626. llvm::Optional<uint32_t> init) {
  627. assert(sc != spv::StorageClass::Function);
  628. // TODO: basically duplicated code of addFileVar()
  629. const uint32_t pointerType = getPointerType(type, sc);
  630. const uint32_t varId = theContext.takeNextId();
  631. instBuilder.opVariable(pointerType, varId, sc, init).x();
  632. theModule.addVariable(std::move(constructSite));
  633. theModule.addDebugName(varId, name);
  634. return varId;
  635. }
  636. void ModuleBuilder::decorateDSetBinding(uint32_t targetId, uint32_t setNumber,
  637. uint32_t bindingNumber) {
  638. const auto *d = Decoration::getDescriptorSet(theContext, setNumber);
  639. theModule.addDecoration(d, targetId);
  640. d = Decoration::getBinding(theContext, bindingNumber);
  641. theModule.addDecoration(d, targetId);
  642. }
  643. void ModuleBuilder::decorateLocation(uint32_t targetId, uint32_t location) {
  644. const Decoration *d =
  645. Decoration::getLocation(theContext, location, llvm::None);
  646. theModule.addDecoration(d, targetId);
  647. }
  648. void ModuleBuilder::decorate(uint32_t targetId, spv::Decoration decoration) {
  649. const Decoration *d = nullptr;
  650. switch (decoration) {
  651. case spv::Decoration::Centroid:
  652. d = Decoration::getCentroid(theContext);
  653. break;
  654. case spv::Decoration::Flat:
  655. d = Decoration::getFlat(theContext);
  656. break;
  657. case spv::Decoration::NoPerspective:
  658. d = Decoration::getNoPerspective(theContext);
  659. break;
  660. case spv::Decoration::Sample:
  661. d = Decoration::getSample(theContext);
  662. break;
  663. case spv::Decoration::Block:
  664. d = Decoration::getBlock(theContext);
  665. break;
  666. case spv::Decoration::RelaxedPrecision:
  667. d = Decoration::getRelaxedPrecision(theContext);
  668. break;
  669. case spv::Decoration::Patch:
  670. d = Decoration::getPatch(theContext);
  671. break;
  672. }
  673. assert(d && "unimplemented decoration");
  674. theModule.addDecoration(d, targetId);
  675. }
  676. #define IMPL_GET_PRIMITIVE_TYPE(ty) \
  677. \
  678. uint32_t ModuleBuilder::get##ty##Type() { \
  679. const Type *type = Type::get##ty(theContext); \
  680. const uint32_t typeId = theContext.getResultIdForType(type); \
  681. theModule.addType(type, typeId); \
  682. return typeId; \
  683. }
  684. IMPL_GET_PRIMITIVE_TYPE(Void)
  685. IMPL_GET_PRIMITIVE_TYPE(Bool)
  686. IMPL_GET_PRIMITIVE_TYPE(Int32)
  687. IMPL_GET_PRIMITIVE_TYPE(Uint32)
  688. IMPL_GET_PRIMITIVE_TYPE(Float32)
  689. #undef IMPL_GET_PRIMITIVE_TYPE
  690. #define IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(ty, cap) \
  691. \
  692. uint32_t ModuleBuilder::get##ty##Type() { \
  693. requireCapability(spv::Capability::cap); \
  694. if (spv::Capability::cap == spv::Capability::Float16) \
  695. theModule.addExtension("SPV_AMD_gpu_shader_half_float"); \
  696. const Type *type = Type::get##ty(theContext); \
  697. const uint32_t typeId = theContext.getResultIdForType(type); \
  698. theModule.addType(type, typeId); \
  699. return typeId; \
  700. }
  701. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Int64, Int64)
  702. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Uint64, Int64)
  703. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Float64, Float64)
  704. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Int16, Int16)
  705. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Uint16, Int16)
  706. IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY(Float16, Float16)
  707. #undef IMPL_GET_PRIMITIVE_TYPE_WITH_CAPABILITY
  708. uint32_t ModuleBuilder::getVecType(uint32_t elemType, uint32_t elemCount) {
  709. const Type *type = nullptr;
  710. switch (elemCount) {
  711. case 2:
  712. type = Type::getVec2(theContext, elemType);
  713. break;
  714. case 3:
  715. type = Type::getVec3(theContext, elemType);
  716. break;
  717. case 4:
  718. type = Type::getVec4(theContext, elemType);
  719. break;
  720. default:
  721. assert(false && "unhandled vector size");
  722. // Error found. Return 0 as the <result-id> directly.
  723. return 0;
  724. }
  725. const uint32_t typeId = theContext.getResultIdForType(type);
  726. theModule.addType(type, typeId);
  727. return typeId;
  728. }
  729. uint32_t ModuleBuilder::getMatType(uint32_t colType, uint32_t colCount) {
  730. const Type *type = Type::getMatrix(theContext, colType, colCount);
  731. const uint32_t typeId = theContext.getResultIdForType(type);
  732. theModule.addType(type, typeId);
  733. return typeId;
  734. }
  735. uint32_t ModuleBuilder::getPointerType(uint32_t pointeeType,
  736. spv::StorageClass storageClass) {
  737. const Type *type = Type::getPointer(theContext, storageClass, pointeeType);
  738. const uint32_t typeId = theContext.getResultIdForType(type);
  739. theModule.addType(type, typeId);
  740. return typeId;
  741. }
  742. uint32_t
  743. ModuleBuilder::getStructType(llvm::ArrayRef<uint32_t> fieldTypes,
  744. llvm::StringRef structName,
  745. llvm::ArrayRef<llvm::StringRef> fieldNames,
  746. Type::DecorationSet decorations) {
  747. const Type *type = Type::getStruct(theContext, fieldTypes, decorations);
  748. bool isRegistered = false;
  749. const uint32_t typeId = theContext.getResultIdForType(type, &isRegistered);
  750. theModule.addType(type, typeId);
  751. if (!isRegistered) {
  752. theModule.addDebugName(typeId, structName);
  753. if (!fieldNames.empty()) {
  754. assert(fieldNames.size() == fieldTypes.size());
  755. for (uint32_t i = 0; i < fieldNames.size(); ++i)
  756. theModule.addDebugName(typeId, fieldNames[i],
  757. llvm::Optional<uint32_t>(i));
  758. }
  759. }
  760. return typeId;
  761. }
  762. uint32_t ModuleBuilder::getSparseResidencyStructType(uint32_t type) {
  763. const auto uintType = getUint32Type();
  764. return getStructType({uintType, type}, "SparseResidencyStruct",
  765. {"Residency.Code", "Result.Type"});
  766. }
  767. uint32_t ModuleBuilder::getArrayType(uint32_t elemType, uint32_t count,
  768. Type::DecorationSet decorations) {
  769. const Type *type = Type::getArray(theContext, elemType, count, decorations);
  770. const uint32_t typeId = theContext.getResultIdForType(type);
  771. theModule.addType(type, typeId);
  772. return typeId;
  773. }
  774. uint32_t ModuleBuilder::getRuntimeArrayType(uint32_t elemType,
  775. Type::DecorationSet decorations) {
  776. const Type *type = Type::getRuntimeArray(theContext, elemType, decorations);
  777. const uint32_t typeId = theContext.getResultIdForType(type);
  778. theModule.addType(type, typeId);
  779. return typeId;
  780. }
  781. uint32_t ModuleBuilder::getFunctionType(uint32_t returnType,
  782. llvm::ArrayRef<uint32_t> paramTypes) {
  783. const Type *type = Type::getFunction(theContext, returnType, paramTypes);
  784. const uint32_t typeId = theContext.getResultIdForType(type);
  785. theModule.addType(type, typeId);
  786. return typeId;
  787. }
  788. uint32_t ModuleBuilder::getImageType(uint32_t sampledType, spv::Dim dim,
  789. uint32_t depth, bool isArray, uint32_t ms,
  790. uint32_t sampled,
  791. spv::ImageFormat format) {
  792. const Type *type = Type::getImage(theContext, sampledType, dim, depth,
  793. isArray, ms, sampled, format);
  794. bool isRegistered = false;
  795. const uint32_t typeId = theContext.getResultIdForType(type, &isRegistered);
  796. theModule.addType(type, typeId);
  797. switch (format) {
  798. case spv::ImageFormat::Rg32f:
  799. case spv::ImageFormat::Rg16f:
  800. case spv::ImageFormat::R11fG11fB10f:
  801. case spv::ImageFormat::R16f:
  802. case spv::ImageFormat::Rgba16:
  803. case spv::ImageFormat::Rgb10A2:
  804. case spv::ImageFormat::Rg16:
  805. case spv::ImageFormat::Rg8:
  806. case spv::ImageFormat::R16:
  807. case spv::ImageFormat::R8:
  808. case spv::ImageFormat::Rgba16Snorm:
  809. case spv::ImageFormat::Rg16Snorm:
  810. case spv::ImageFormat::Rg8Snorm:
  811. case spv::ImageFormat::R16Snorm:
  812. case spv::ImageFormat::R8Snorm:
  813. case spv::ImageFormat::Rg32i:
  814. case spv::ImageFormat::Rg16i:
  815. case spv::ImageFormat::Rg8i:
  816. case spv::ImageFormat::R16i:
  817. case spv::ImageFormat::R8i:
  818. case spv::ImageFormat::Rgb10a2ui:
  819. case spv::ImageFormat::Rg32ui:
  820. case spv::ImageFormat::Rg16ui:
  821. case spv::ImageFormat::Rg8ui:
  822. case spv::ImageFormat::R16ui:
  823. case spv::ImageFormat::R8ui:
  824. requireCapability(spv::Capability::StorageImageExtendedFormats);
  825. }
  826. if (dim == spv::Dim::Dim1D) {
  827. if (sampled == 2u) {
  828. requireCapability(spv::Capability::Image1D);
  829. } else {
  830. requireCapability(spv::Capability::Sampled1D);
  831. }
  832. }
  833. if (dim == spv::Dim::Buffer) {
  834. requireCapability(spv::Capability::SampledBuffer);
  835. }
  836. if (isArray && ms) {
  837. requireCapability(spv::Capability::ImageMSArray);
  838. }
  839. // Skip constructing the debug name if we have already done it before.
  840. if (!isRegistered) {
  841. const char *dimStr = "";
  842. switch (dim) {
  843. case spv::Dim::Dim1D:
  844. dimStr = "1d.";
  845. break;
  846. case spv::Dim::Dim2D:
  847. dimStr = "2d.";
  848. break;
  849. case spv::Dim::Dim3D:
  850. dimStr = "3d.";
  851. break;
  852. case spv::Dim::Cube:
  853. dimStr = "cube.";
  854. break;
  855. case spv::Dim::Rect:
  856. dimStr = "rect.";
  857. break;
  858. case spv::Dim::Buffer:
  859. dimStr = "buffer.";
  860. break;
  861. case spv::Dim::SubpassData:
  862. dimStr = "subpass.";
  863. break;
  864. default:
  865. break;
  866. }
  867. std::string name =
  868. std::string("type.") + dimStr + "image" + (isArray ? ".array" : "");
  869. theModule.addDebugName(typeId, name);
  870. }
  871. return typeId;
  872. }
  873. uint32_t ModuleBuilder::getSamplerType() {
  874. const Type *type = Type::getSampler(theContext);
  875. const uint32_t typeId = theContext.getResultIdForType(type);
  876. theModule.addType(type, typeId);
  877. theModule.addDebugName(typeId, "type.sampler");
  878. return typeId;
  879. }
  880. uint32_t ModuleBuilder::getSampledImageType(uint32_t imageType) {
  881. const Type *type = Type::getSampledImage(theContext, imageType);
  882. const uint32_t typeId = theContext.getResultIdForType(type);
  883. theModule.addType(type, typeId);
  884. theModule.addDebugName(typeId, "type.sampled.image");
  885. return typeId;
  886. }
  887. uint32_t ModuleBuilder::getByteAddressBufferType(bool isRW) {
  888. // Create a uint RuntimeArray with Array Stride of 4.
  889. const uint32_t uintType = getUint32Type();
  890. const auto *arrStride4 = Decoration::getArrayStride(theContext, 4u);
  891. const Type *raType =
  892. Type::getRuntimeArray(theContext, uintType, {arrStride4});
  893. const uint32_t raTypeId = theContext.getResultIdForType(raType);
  894. theModule.addType(raType, raTypeId);
  895. // Create a struct containing the runtime array as its only member.
  896. // The struct must also be decorated as BufferBlock. The offset decoration
  897. // should also be applied to the first (only) member. NonWritable decoration
  898. // should also be applied to the first member if isRW is true.
  899. llvm::SmallVector<const Decoration *, 3> typeDecs;
  900. typeDecs.push_back(Decoration::getBufferBlock(theContext));
  901. typeDecs.push_back(Decoration::getOffset(theContext, 0, 0));
  902. if (!isRW)
  903. typeDecs.push_back(Decoration::getNonWritable(theContext, 0));
  904. const Type *type = Type::getStruct(theContext, {raTypeId}, typeDecs);
  905. const uint32_t typeId = theContext.getResultIdForType(type);
  906. theModule.addType(type, typeId);
  907. theModule.addDebugName(typeId, isRW ? "type.RWByteAddressBuffer"
  908. : "type.ByteAddressBuffer");
  909. return typeId;
  910. }
  911. uint32_t ModuleBuilder::getConstantBool(bool value) {
  912. const uint32_t typeId = getBoolType();
  913. const Constant *constant = value ? Constant::getTrue(theContext, typeId)
  914. : Constant::getFalse(theContext, typeId);
  915. const uint32_t constId = theContext.getResultIdForConstant(constant);
  916. theModule.addConstant(constant, constId);
  917. return constId;
  918. }
  919. #define IMPL_GET_PRIMITIVE_CONST(builderTy, cppTy) \
  920. \
  921. uint32_t ModuleBuilder::getConstant##builderTy(cppTy value) { \
  922. const uint32_t typeId = get##builderTy##Type(); \
  923. const Constant *constant = \
  924. Constant::get##builderTy(theContext, typeId, value); \
  925. const uint32_t constId = theContext.getResultIdForConstant(constant); \
  926. theModule.addConstant(constant, constId); \
  927. return constId; \
  928. }
  929. IMPL_GET_PRIMITIVE_CONST(Int16, int16_t)
  930. IMPL_GET_PRIMITIVE_CONST(Int32, int32_t)
  931. IMPL_GET_PRIMITIVE_CONST(Uint16, uint16_t)
  932. IMPL_GET_PRIMITIVE_CONST(Uint32, uint32_t)
  933. IMPL_GET_PRIMITIVE_CONST(Float16, int16_t)
  934. IMPL_GET_PRIMITIVE_CONST(Float32, float)
  935. IMPL_GET_PRIMITIVE_CONST(Float64, double)
  936. IMPL_GET_PRIMITIVE_CONST(Int64, int64_t)
  937. IMPL_GET_PRIMITIVE_CONST(Uint64, uint64_t)
  938. #undef IMPL_GET_PRIMITIVE_VALUE
  939. uint32_t
  940. ModuleBuilder::getConstantComposite(uint32_t typeId,
  941. llvm::ArrayRef<uint32_t> constituents) {
  942. const Constant *constant =
  943. Constant::getComposite(theContext, typeId, constituents);
  944. const uint32_t constId = theContext.getResultIdForConstant(constant);
  945. theModule.addConstant(constant, constId);
  946. return constId;
  947. }
  948. uint32_t ModuleBuilder::getConstantNull(uint32_t typeId) {
  949. const Constant *constant = Constant::getNull(theContext, typeId);
  950. const uint32_t constId = theContext.getResultIdForConstant(constant);
  951. theModule.addConstant(constant, constId);
  952. return constId;
  953. }
  954. BasicBlock *ModuleBuilder::getBasicBlock(uint32_t labelId) {
  955. auto it = basicBlocks.find(labelId);
  956. if (it == basicBlocks.end()) {
  957. assert(false && "invalid <label-id>");
  958. return nullptr;
  959. }
  960. return it->second.get();
  961. }
  962. } // end namespace spirv
  963. } // end namespace clang