1 //===- SCFToSPIRV.cpp - SCF to SPIR-V Patterns ----------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements patterns to convert SCF dialect to SPIR-V dialect. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "mlir/Conversion/SCFToSPIRV/SCFToSPIRV.h" 14 #include "mlir/Dialect/SCF/SCF.h" 15 #include "mlir/Dialect/SPIRV/IR/SPIRVDialect.h" 16 #include "mlir/Dialect/SPIRV/IR/SPIRVOps.h" 17 #include "mlir/Dialect/SPIRV/Transforms/SPIRVConversion.h" 18 #include "mlir/IR/BuiltinOps.h" 19 #include "mlir/Transforms/DialectConversion.h" 20 21 using namespace mlir; 22 23 //===----------------------------------------------------------------------===// 24 // Context 25 //===----------------------------------------------------------------------===// 26 27 namespace mlir { 28 struct ScfToSPIRVContextImpl { 29 // Map between the spirv region control flow operation (spv.mlir.loop or 30 // spv.mlir.selection) to the VariableOp created to store the region results. 31 // The order of the VariableOp matches the order of the results. 32 DenseMap<Operation *, SmallVector<spirv::VariableOp, 8>> outputVars; 33 }; 34 } // namespace mlir 35 36 /// We use ScfToSPIRVContext to store information about the lowering of the scf 37 /// region that need to be used later on. When we lower scf.for/scf.if we create 38 /// VariableOp to store the results. We need to keep track of the VariableOp 39 /// created as we need to insert stores into them when lowering Yield. Those 40 /// StoreOp cannot be created earlier as they may use a different type than 41 /// yield operands. 42 ScfToSPIRVContext::ScfToSPIRVContext() { 43 impl = std::make_unique<ScfToSPIRVContextImpl>(); 44 } 45 46 ScfToSPIRVContext::~ScfToSPIRVContext() = default; 47 48 //===----------------------------------------------------------------------===// 49 // Pattern Declarations 50 //===----------------------------------------------------------------------===// 51 52 namespace { 53 /// Common class for all vector to GPU patterns. 54 template <typename OpTy> 55 class SCFToSPIRVPattern : public OpConversionPattern<OpTy> { 56 public: 57 SCFToSPIRVPattern<OpTy>(MLIRContext *context, SPIRVTypeConverter &converter, 58 ScfToSPIRVContextImpl *scfToSPIRVContext) 59 : OpConversionPattern<OpTy>::OpConversionPattern(context), 60 scfToSPIRVContext(scfToSPIRVContext), typeConverter(converter) {} 61 62 protected: 63 ScfToSPIRVContextImpl *scfToSPIRVContext; 64 // FIXME: We explicitly keep a reference of the type converter here instead of 65 // passing it to OpConversionPattern during construction. This effectively 66 // bypasses the conversion framework's automation on type conversion. This is 67 // needed right now because the conversion framework will unconditionally 68 // legalize all types used by SCF ops upon discovering them, for example, the 69 // types of loop carried values. We use SPIR-V variables for those loop 70 // carried values. Depending on the available capabilities, the SPIR-V 71 // variable can be different, for example, cooperative matrix or normal 72 // variable. We'd like to detach the conversion of the loop carried values 73 // from the SCF ops (which is mainly a region). So we need to "mark" types 74 // used by SCF ops as legal, if to use the conversion framework for type 75 // conversion. There isn't a straightforward way to do that yet, as when 76 // converting types, ops aren't taken into consideration. Therefore, we just 77 // bypass the framework's type conversion for now. 78 SPIRVTypeConverter &typeConverter; 79 }; 80 81 /// Pattern to convert a scf::ForOp within kernel functions into spirv::LoopOp. 82 class ForOpConversion final : public SCFToSPIRVPattern<scf::ForOp> { 83 public: 84 using SCFToSPIRVPattern<scf::ForOp>::SCFToSPIRVPattern; 85 86 LogicalResult 87 matchAndRewrite(scf::ForOp forOp, OpAdaptor adaptor, 88 ConversionPatternRewriter &rewriter) const override; 89 }; 90 91 /// Pattern to convert a scf::IfOp within kernel functions into 92 /// spirv::SelectionOp. 93 class IfOpConversion final : public SCFToSPIRVPattern<scf::IfOp> { 94 public: 95 using SCFToSPIRVPattern<scf::IfOp>::SCFToSPIRVPattern; 96 97 LogicalResult 98 matchAndRewrite(scf::IfOp ifOp, OpAdaptor adaptor, 99 ConversionPatternRewriter &rewriter) const override; 100 }; 101 102 class TerminatorOpConversion final : public SCFToSPIRVPattern<scf::YieldOp> { 103 public: 104 using SCFToSPIRVPattern<scf::YieldOp>::SCFToSPIRVPattern; 105 106 LogicalResult 107 matchAndRewrite(scf::YieldOp terminatorOp, OpAdaptor adaptor, 108 ConversionPatternRewriter &rewriter) const override; 109 }; 110 } // namespace 111 112 /// Helper function to replaces SCF op outputs with SPIR-V variable loads. 113 /// We create VariableOp to handle the results value of the control flow region. 114 /// spv.mlir.loop/spv.mlir.selection currently don't yield value. Right after 115 /// the loop we load the value from the allocation and use it as the SCF op 116 /// result. 117 template <typename ScfOp, typename OpTy> 118 static void replaceSCFOutputValue(ScfOp scfOp, OpTy newOp, 119 ConversionPatternRewriter &rewriter, 120 ScfToSPIRVContextImpl *scfToSPIRVContext, 121 ArrayRef<Type> returnTypes) { 122 123 Location loc = scfOp.getLoc(); 124 auto &allocas = scfToSPIRVContext->outputVars[newOp]; 125 // Clearing the allocas is necessary in case a dialect conversion path failed 126 // previously, and this is the second attempt of this conversion. 127 allocas.clear(); 128 SmallVector<Value, 8> resultValue; 129 for (Type convertedType : returnTypes) { 130 auto pointerType = 131 spirv::PointerType::get(convertedType, spirv::StorageClass::Function); 132 rewriter.setInsertionPoint(newOp); 133 auto alloc = rewriter.create<spirv::VariableOp>( 134 loc, pointerType, spirv::StorageClass::Function, 135 /*initializer=*/nullptr); 136 allocas.push_back(alloc); 137 rewriter.setInsertionPointAfter(newOp); 138 Value loadResult = rewriter.create<spirv::LoadOp>(loc, alloc); 139 resultValue.push_back(loadResult); 140 } 141 rewriter.replaceOp(scfOp, resultValue); 142 } 143 144 //===----------------------------------------------------------------------===// 145 // scf::ForOp 146 //===----------------------------------------------------------------------===// 147 148 LogicalResult 149 ForOpConversion::matchAndRewrite(scf::ForOp forOp, OpAdaptor adaptor, 150 ConversionPatternRewriter &rewriter) const { 151 // scf::ForOp can be lowered to the structured control flow represented by 152 // spirv::LoopOp by making the continue block of the spirv::LoopOp the loop 153 // latch and the merge block the exit block. The resulting spirv::LoopOp has a 154 // single back edge from the continue to header block, and a single exit from 155 // header to merge. 156 auto loc = forOp.getLoc(); 157 auto loopOp = rewriter.create<spirv::LoopOp>(loc, spirv::LoopControl::None); 158 loopOp.addEntryAndMergeBlock(); 159 160 OpBuilder::InsertionGuard guard(rewriter); 161 // Create the block for the header. 162 auto *header = new Block(); 163 // Insert the header. 164 loopOp.body().getBlocks().insert(std::next(loopOp.body().begin(), 1), header); 165 166 // Create the new induction variable to use. 167 BlockArgument newIndVar = header->addArgument(adaptor.lowerBound().getType()); 168 for (Value arg : adaptor.initArgs()) 169 header->addArgument(arg.getType()); 170 Block *body = forOp.getBody(); 171 172 // Apply signature conversion to the body of the forOp. It has a single block, 173 // with argument which is the induction variable. That has to be replaced with 174 // the new induction variable. 175 TypeConverter::SignatureConversion signatureConverter( 176 body->getNumArguments()); 177 signatureConverter.remapInput(0, newIndVar); 178 for (unsigned i = 1, e = body->getNumArguments(); i < e; i++) 179 signatureConverter.remapInput(i, header->getArgument(i)); 180 body = rewriter.applySignatureConversion(&forOp.getLoopBody(), 181 signatureConverter); 182 183 // Move the blocks from the forOp into the loopOp. This is the body of the 184 // loopOp. 185 rewriter.inlineRegionBefore(forOp->getRegion(0), loopOp.body(), 186 std::next(loopOp.body().begin(), 2)); 187 188 SmallVector<Value, 8> args(1, adaptor.lowerBound()); 189 args.append(adaptor.initArgs().begin(), adaptor.initArgs().end()); 190 // Branch into it from the entry. 191 rewriter.setInsertionPointToEnd(&(loopOp.body().front())); 192 rewriter.create<spirv::BranchOp>(loc, header, args); 193 194 // Generate the rest of the loop header. 195 rewriter.setInsertionPointToEnd(header); 196 auto *mergeBlock = loopOp.getMergeBlock(); 197 auto cmpOp = rewriter.create<spirv::SLessThanOp>( 198 loc, rewriter.getI1Type(), newIndVar, adaptor.upperBound()); 199 200 rewriter.create<spirv::BranchConditionalOp>( 201 loc, cmpOp, body, ArrayRef<Value>(), mergeBlock, ArrayRef<Value>()); 202 203 // Generate instructions to increment the step of the induction variable and 204 // branch to the header. 205 Block *continueBlock = loopOp.getContinueBlock(); 206 rewriter.setInsertionPointToEnd(continueBlock); 207 208 // Add the step to the induction variable and branch to the header. 209 Value updatedIndVar = rewriter.create<spirv::IAddOp>( 210 loc, newIndVar.getType(), newIndVar, adaptor.step()); 211 rewriter.create<spirv::BranchOp>(loc, header, updatedIndVar); 212 213 // Infer the return types from the init operands. Vector type may get 214 // converted to CooperativeMatrix or to Vector type, to avoid having complex 215 // extra logic to figure out the right type we just infer it from the Init 216 // operands. 217 SmallVector<Type, 8> initTypes; 218 for (auto arg : adaptor.initArgs()) 219 initTypes.push_back(arg.getType()); 220 replaceSCFOutputValue(forOp, loopOp, rewriter, scfToSPIRVContext, initTypes); 221 return success(); 222 } 223 224 //===----------------------------------------------------------------------===// 225 // scf::IfOp 226 //===----------------------------------------------------------------------===// 227 228 LogicalResult 229 IfOpConversion::matchAndRewrite(scf::IfOp ifOp, OpAdaptor adaptor, 230 ConversionPatternRewriter &rewriter) const { 231 // When lowering `scf::IfOp` we explicitly create a selection header block 232 // before the control flow diverges and a merge block where control flow 233 // subsequently converges. 234 auto loc = ifOp.getLoc(); 235 236 // Create `spv.selection` operation, selection header block and merge block. 237 auto selectionOp = 238 rewriter.create<spirv::SelectionOp>(loc, spirv::SelectionControl::None); 239 auto *mergeBlock = 240 rewriter.createBlock(&selectionOp.body(), selectionOp.body().end()); 241 rewriter.create<spirv::MergeOp>(loc); 242 243 OpBuilder::InsertionGuard guard(rewriter); 244 auto *selectionHeaderBlock = 245 rewriter.createBlock(&selectionOp.body().front()); 246 247 // Inline `then` region before the merge block and branch to it. 248 auto &thenRegion = ifOp.thenRegion(); 249 auto *thenBlock = &thenRegion.front(); 250 rewriter.setInsertionPointToEnd(&thenRegion.back()); 251 rewriter.create<spirv::BranchOp>(loc, mergeBlock); 252 rewriter.inlineRegionBefore(thenRegion, mergeBlock); 253 254 auto *elseBlock = mergeBlock; 255 // If `else` region is not empty, inline that region before the merge block 256 // and branch to it. 257 if (!ifOp.elseRegion().empty()) { 258 auto &elseRegion = ifOp.elseRegion(); 259 elseBlock = &elseRegion.front(); 260 rewriter.setInsertionPointToEnd(&elseRegion.back()); 261 rewriter.create<spirv::BranchOp>(loc, mergeBlock); 262 rewriter.inlineRegionBefore(elseRegion, mergeBlock); 263 } 264 265 // Create a `spv.BranchConditional` operation for selection header block. 266 rewriter.setInsertionPointToEnd(selectionHeaderBlock); 267 rewriter.create<spirv::BranchConditionalOp>(loc, adaptor.condition(), 268 thenBlock, ArrayRef<Value>(), 269 elseBlock, ArrayRef<Value>()); 270 271 SmallVector<Type, 8> returnTypes; 272 for (auto result : ifOp.results()) { 273 auto convertedType = typeConverter.convertType(result.getType()); 274 returnTypes.push_back(convertedType); 275 } 276 replaceSCFOutputValue(ifOp, selectionOp, rewriter, scfToSPIRVContext, 277 returnTypes); 278 return success(); 279 } 280 281 //===----------------------------------------------------------------------===// 282 // scf::YieldOp 283 //===----------------------------------------------------------------------===// 284 285 /// Yield is lowered to stores to the VariableOp created during lowering of the 286 /// parent region. For loops we also need to update the branch looping back to 287 /// the header with the loop carried values. 288 LogicalResult TerminatorOpConversion::matchAndRewrite( 289 scf::YieldOp terminatorOp, OpAdaptor adaptor, 290 ConversionPatternRewriter &rewriter) const { 291 ValueRange operands = adaptor.getOperands(); 292 293 // If the region is return values, store each value into the associated 294 // VariableOp created during lowering of the parent region. 295 if (!operands.empty()) { 296 auto loc = terminatorOp.getLoc(); 297 auto &allocas = scfToSPIRVContext->outputVars[terminatorOp->getParentOp()]; 298 assert(allocas.size() == operands.size()); 299 for (unsigned i = 0, e = operands.size(); i < e; i++) 300 rewriter.create<spirv::StoreOp>(loc, allocas[i], operands[i]); 301 if (isa<spirv::LoopOp>(terminatorOp->getParentOp())) { 302 // For loops we also need to update the branch jumping back to the header. 303 auto br = 304 cast<spirv::BranchOp>(rewriter.getInsertionBlock()->getTerminator()); 305 SmallVector<Value, 8> args(br.getBlockArguments()); 306 args.append(operands.begin(), operands.end()); 307 rewriter.setInsertionPoint(br); 308 rewriter.create<spirv::BranchOp>(terminatorOp.getLoc(), br.getTarget(), 309 args); 310 rewriter.eraseOp(br); 311 } 312 } 313 rewriter.eraseOp(terminatorOp); 314 return success(); 315 } 316 317 //===----------------------------------------------------------------------===// 318 // Hooks 319 //===----------------------------------------------------------------------===// 320 321 void mlir::populateSCFToSPIRVPatterns(SPIRVTypeConverter &typeConverter, 322 ScfToSPIRVContext &scfToSPIRVContext, 323 RewritePatternSet &patterns) { 324 patterns.add<ForOpConversion, IfOpConversion, TerminatorOpConversion>( 325 patterns.getContext(), typeConverter, scfToSPIRVContext.getImpl()); 326 } 327