1cde4d5a6SJacques Pienaar //===- ModuleTranslation.cpp - MLIR to LLVM conversion --------------------===// 25d7231d8SStephan Herhut // 35d7231d8SStephan Herhut // Copyright 2019 The MLIR Authors. 45d7231d8SStephan Herhut // 55d7231d8SStephan Herhut // Licensed under the Apache License, Version 2.0 (the "License"); 65d7231d8SStephan Herhut // you may not use this file except in compliance with the License. 75d7231d8SStephan Herhut // You may obtain a copy of the License at 85d7231d8SStephan Herhut // 95d7231d8SStephan Herhut // http://www.apache.org/licenses/LICENSE-2.0 105d7231d8SStephan Herhut // 115d7231d8SStephan Herhut // Unless required by applicable law or agreed to in writing, software 125d7231d8SStephan Herhut // distributed under the License is distributed on an "AS IS" BASIS, 135d7231d8SStephan Herhut // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. 145d7231d8SStephan Herhut // See the License for the specific language governing permissions and 155d7231d8SStephan Herhut // limitations under the License. 165d7231d8SStephan Herhut // ============================================================================= 175d7231d8SStephan Herhut // 185d7231d8SStephan Herhut // This file implements the translation between an MLIR LLVM dialect module and 195d7231d8SStephan Herhut // the corresponding LLVMIR module. It only handles core LLVM IR operations. 205d7231d8SStephan Herhut // 215d7231d8SStephan Herhut //===----------------------------------------------------------------------===// 225d7231d8SStephan Herhut 235d7231d8SStephan Herhut #include "mlir/Target/LLVMIR/ModuleTranslation.h" 245d7231d8SStephan Herhut 25ba0fa925SRiver Riddle #include "mlir/Dialect/LLVMIR/LLVMDialect.h" 265d7231d8SStephan Herhut #include "mlir/IR/Attributes.h" 275d7231d8SStephan Herhut #include "mlir/IR/Module.h" 285d7231d8SStephan Herhut #include "mlir/Support/LLVM.h" 295d7231d8SStephan Herhut 305d7231d8SStephan Herhut #include "llvm/ADT/SetVector.h" 315d7231d8SStephan Herhut #include "llvm/IR/BasicBlock.h" 325d7231d8SStephan Herhut #include "llvm/IR/Constants.h" 335d7231d8SStephan Herhut #include "llvm/IR/DerivedTypes.h" 345d7231d8SStephan Herhut #include "llvm/IR/IRBuilder.h" 355d7231d8SStephan Herhut #include "llvm/IR/LLVMContext.h" 365d7231d8SStephan Herhut #include "llvm/IR/Module.h" 375d7231d8SStephan Herhut #include "llvm/Transforms/Utils/Cloning.h" 385d7231d8SStephan Herhut 395d7231d8SStephan Herhut namespace mlir { 405d7231d8SStephan Herhut namespace LLVM { 415d7231d8SStephan Herhut 425d7231d8SStephan Herhut // Convert an MLIR function type to LLVM IR. Arguments of the function must of 435d7231d8SStephan Herhut // MLIR LLVM IR dialect types. Use `loc` as a location when reporting errors. 445d7231d8SStephan Herhut // Return nullptr on errors. 455d7231d8SStephan Herhut static llvm::FunctionType *convertFunctionType(llvm::LLVMContext &llvmContext, 465d7231d8SStephan Herhut FunctionType type, Location loc, 475d7231d8SStephan Herhut bool isVarArgs) { 485d7231d8SStephan Herhut assert(type && "expected non-null type"); 495d7231d8SStephan Herhut if (type.getNumResults() > 1) 50a4c3a645SRiver Riddle return emitError(loc, "LLVM functions can only have 0 or 1 result"), 515d7231d8SStephan Herhut nullptr; 525d7231d8SStephan Herhut 535d7231d8SStephan Herhut SmallVector<llvm::Type *, 8> argTypes; 545d7231d8SStephan Herhut argTypes.reserve(type.getNumInputs()); 555d7231d8SStephan Herhut for (auto t : type.getInputs()) { 565d7231d8SStephan Herhut auto wrappedLLVMType = t.dyn_cast<LLVM::LLVMType>(); 575d7231d8SStephan Herhut if (!wrappedLLVMType) 58a4c3a645SRiver Riddle return emitError(loc, "non-LLVM function argument type"), nullptr; 595d7231d8SStephan Herhut argTypes.push_back(wrappedLLVMType.getUnderlyingType()); 605d7231d8SStephan Herhut } 615d7231d8SStephan Herhut 625d7231d8SStephan Herhut if (type.getNumResults() == 0) 635d7231d8SStephan Herhut return llvm::FunctionType::get(llvm::Type::getVoidTy(llvmContext), argTypes, 645d7231d8SStephan Herhut isVarArgs); 655d7231d8SStephan Herhut 665d7231d8SStephan Herhut auto wrappedResultType = type.getResult(0).dyn_cast<LLVM::LLVMType>(); 675d7231d8SStephan Herhut if (!wrappedResultType) 68a4c3a645SRiver Riddle return emitError(loc, "non-LLVM function result"), nullptr; 695d7231d8SStephan Herhut 705d7231d8SStephan Herhut return llvm::FunctionType::get(wrappedResultType.getUnderlyingType(), 715d7231d8SStephan Herhut argTypes, isVarArgs); 725d7231d8SStephan Herhut } 735d7231d8SStephan Herhut 745d7231d8SStephan Herhut // Create an LLVM IR constant of `llvmType` from the MLIR attribute `attr`. 755d7231d8SStephan Herhut // This currently supports integer, floating point, splat and dense element 765d7231d8SStephan Herhut // attributes and combinations thereof. In case of error, report it to `loc` 775d7231d8SStephan Herhut // and return nullptr. 785d7231d8SStephan Herhut llvm::Constant *ModuleTranslation::getLLVMConstant(llvm::Type *llvmType, 795d7231d8SStephan Herhut Attribute attr, 805d7231d8SStephan Herhut Location loc) { 81*33a3a91bSChristian Sigg if (!attr) 82*33a3a91bSChristian Sigg return llvm::UndefValue::get(llvmType); 835d7231d8SStephan Herhut if (auto intAttr = attr.dyn_cast<IntegerAttr>()) 845d7231d8SStephan Herhut return llvm::ConstantInt::get(llvmType, intAttr.getValue()); 855d7231d8SStephan Herhut if (auto floatAttr = attr.dyn_cast<FloatAttr>()) 865d7231d8SStephan Herhut return llvm::ConstantFP::get(llvmType, floatAttr.getValue()); 879dbef0bfSRiver Riddle if (auto funcAttr = attr.dyn_cast<SymbolRefAttr>()) 885d7231d8SStephan Herhut return functionMapping.lookup(funcAttr.getValue()); 895d7231d8SStephan Herhut if (auto splatAttr = attr.dyn_cast<SplatElementsAttr>()) { 902f13df13SMLIR Team auto *sequentialType = cast<llvm::SequentialType>(llvmType); 912f13df13SMLIR Team auto elementType = sequentialType->getElementType(); 922f13df13SMLIR Team uint64_t numElements = sequentialType->getNumElements(); 932f13df13SMLIR Team auto *child = getLLVMConstant(elementType, splatAttr.getSplatValue(), loc); 942f13df13SMLIR Team if (llvmType->isVectorTy()) 952f13df13SMLIR Team return llvm::ConstantVector::getSplat(numElements, child); 962f13df13SMLIR Team if (llvmType->isArrayTy()) { 972f13df13SMLIR Team auto arrayType = llvm::ArrayType::get(elementType, numElements); 982f13df13SMLIR Team SmallVector<llvm::Constant *, 8> constants(numElements, child); 992f13df13SMLIR Team return llvm::ConstantArray::get(arrayType, constants); 1002f13df13SMLIR Team } 1015d7231d8SStephan Herhut } 102d906f84bSRiver Riddle if (auto elementsAttr = attr.dyn_cast<ElementsAttr>()) { 1032f13df13SMLIR Team auto *sequentialType = cast<llvm::SequentialType>(llvmType); 1042f13df13SMLIR Team auto elementType = sequentialType->getElementType(); 1052f13df13SMLIR Team uint64_t numElements = sequentialType->getNumElements(); 1065d7231d8SStephan Herhut SmallVector<llvm::Constant *, 8> constants; 1075d7231d8SStephan Herhut constants.reserve(numElements); 108d906f84bSRiver Riddle for (auto n : elementsAttr.getValues<Attribute>()) { 1092f13df13SMLIR Team constants.push_back(getLLVMConstant(elementType, n, loc)); 1105d7231d8SStephan Herhut if (!constants.back()) 1115d7231d8SStephan Herhut return nullptr; 1125d7231d8SStephan Herhut } 1132f13df13SMLIR Team if (llvmType->isVectorTy()) 1145d7231d8SStephan Herhut return llvm::ConstantVector::get(constants); 1152f13df13SMLIR Team if (llvmType->isArrayTy()) { 1162f13df13SMLIR Team auto arrayType = llvm::ArrayType::get(elementType, numElements); 1172f13df13SMLIR Team return llvm::ConstantArray::get(arrayType, constants); 1182f13df13SMLIR Team } 1195d7231d8SStephan Herhut } 120cb348dffSStephan Herhut if (auto stringAttr = attr.dyn_cast<StringAttr>()) { 121cb348dffSStephan Herhut return llvm::ConstantDataArray::get( 122cb348dffSStephan Herhut llvmModule->getContext(), ArrayRef<char>{stringAttr.getValue().data(), 123cb348dffSStephan Herhut stringAttr.getValue().size()}); 124cb348dffSStephan Herhut } 125a4c3a645SRiver Riddle emitError(loc, "unsupported constant value"); 1265d7231d8SStephan Herhut return nullptr; 1275d7231d8SStephan Herhut } 1285d7231d8SStephan Herhut 1295d7231d8SStephan Herhut // Convert MLIR integer comparison predicate to LLVM IR comparison predicate. 130ec82e1c9SAlex Zinenko static llvm::CmpInst::Predicate getLLVMCmpPredicate(ICmpPredicate p) { 1315d7231d8SStephan Herhut switch (p) { 132ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::eq: 1335d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_EQ; 134ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::ne: 1355d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_NE; 136ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::slt: 1375d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_SLT; 138ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::sle: 1395d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_SLE; 140ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::sgt: 1415d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_SGT; 142ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::sge: 1435d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_SGE; 144ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::ult: 1455d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_ULT; 146ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::ule: 1475d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_ULE; 148ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::ugt: 1495d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_UGT; 150ec82e1c9SAlex Zinenko case LLVM::ICmpPredicate::uge: 1515d7231d8SStephan Herhut return llvm::CmpInst::Predicate::ICMP_UGE; 1525d7231d8SStephan Herhut } 153e6365f3dSJacques Pienaar llvm_unreachable("incorrect comparison predicate"); 1545d7231d8SStephan Herhut } 1555d7231d8SStephan Herhut 15648fdc8d7SNagy Mostafa static llvm::CmpInst::Predicate getLLVMCmpPredicate(FCmpPredicate p) { 15748fdc8d7SNagy Mostafa switch (p) { 15848fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::_false: 15948fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_FALSE; 16048fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::oeq: 16148fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_OEQ; 16248fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ogt: 16348fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_OGT; 16448fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::oge: 16548fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_OGE; 16648fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::olt: 16748fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_OLT; 16848fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ole: 16948fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_OLE; 17048fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::one: 17148fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_ONE; 17248fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ord: 17348fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_ORD; 17448fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ueq: 17548fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_UEQ; 17648fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ugt: 17748fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_UGT; 17848fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::uge: 17948fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_UGE; 18048fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ult: 18148fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_ULT; 18248fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::ule: 18348fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_ULE; 18448fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::une: 18548fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_UNE; 18648fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::uno: 18748fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_UNO; 18848fdc8d7SNagy Mostafa case LLVM::FCmpPredicate::_true: 18948fdc8d7SNagy Mostafa return llvm::CmpInst::Predicate::FCMP_TRUE; 19048fdc8d7SNagy Mostafa } 191e6365f3dSJacques Pienaar llvm_unreachable("incorrect comparison predicate"); 19248fdc8d7SNagy Mostafa } 19348fdc8d7SNagy Mostafa 1945d7231d8SStephan Herhut // A helper to look up remapped operands in the value remapping table. 1955d7231d8SStephan Herhut template <typename Range> 1965d7231d8SStephan Herhut SmallVector<llvm::Value *, 8> ModuleTranslation::lookupValues(Range &&values) { 1975d7231d8SStephan Herhut SmallVector<llvm::Value *, 8> remapped; 1985d7231d8SStephan Herhut remapped.reserve(llvm::size(values)); 1995d7231d8SStephan Herhut for (Value *v : values) { 2005d7231d8SStephan Herhut remapped.push_back(valueMapping.lookup(v)); 2015d7231d8SStephan Herhut } 2025d7231d8SStephan Herhut return remapped; 2035d7231d8SStephan Herhut } 2045d7231d8SStephan Herhut 2055d7231d8SStephan Herhut // Given a single MLIR operation, create the corresponding LLVM IR operation 2065d7231d8SStephan Herhut // using the `builder`. LLVM IR Builder does not have a generic interface so 2075d7231d8SStephan Herhut // this has to be a long chain of `if`s calling different functions with a 2085d7231d8SStephan Herhut // different number of arguments. 209baa1ec22SAlex Zinenko LogicalResult ModuleTranslation::convertOperation(Operation &opInst, 2105d7231d8SStephan Herhut llvm::IRBuilder<> &builder) { 2115d7231d8SStephan Herhut auto extractPosition = [](ArrayAttr attr) { 2125d7231d8SStephan Herhut SmallVector<unsigned, 4> position; 2135d7231d8SStephan Herhut position.reserve(attr.size()); 2145d7231d8SStephan Herhut for (Attribute v : attr) 2155d7231d8SStephan Herhut position.push_back(v.cast<IntegerAttr>().getValue().getZExtValue()); 2165d7231d8SStephan Herhut return position; 2175d7231d8SStephan Herhut }; 2185d7231d8SStephan Herhut 219ba0fa925SRiver Riddle #include "mlir/Dialect/LLVMIR/LLVMConversions.inc" 2205d7231d8SStephan Herhut 2215d7231d8SStephan Herhut // Emit function calls. If the "callee" attribute is present, this is a 2225d7231d8SStephan Herhut // direct function call and we also need to look up the remapped function 2235d7231d8SStephan Herhut // itself. Otherwise, this is an indirect call and the callee is the first 2245d7231d8SStephan Herhut // operand, look it up as a normal value. Return the llvm::Value representing 2255d7231d8SStephan Herhut // the function result, which may be of llvm::VoidTy type. 2265d7231d8SStephan Herhut auto convertCall = [this, &builder](Operation &op) -> llvm::Value * { 2275d7231d8SStephan Herhut auto operands = lookupValues(op.getOperands()); 2285d7231d8SStephan Herhut ArrayRef<llvm::Value *> operandsRef(operands); 2299dbef0bfSRiver Riddle if (auto attr = op.getAttrOfType<SymbolRefAttr>("callee")) { 2305d7231d8SStephan Herhut return builder.CreateCall(functionMapping.lookup(attr.getValue()), 2315d7231d8SStephan Herhut operandsRef); 2325d7231d8SStephan Herhut } else { 2335d7231d8SStephan Herhut return builder.CreateCall(operandsRef.front(), operandsRef.drop_front()); 2345d7231d8SStephan Herhut } 2355d7231d8SStephan Herhut }; 2365d7231d8SStephan Herhut 2375d7231d8SStephan Herhut // Emit calls. If the called function has a result, remap the corresponding 2385d7231d8SStephan Herhut // value. Note that LLVM IR dialect CallOp has either 0 or 1 result. 239d5b60ee8SRiver Riddle if (isa<LLVM::CallOp>(opInst)) { 2405d7231d8SStephan Herhut llvm::Value *result = convertCall(opInst); 2415d7231d8SStephan Herhut if (opInst.getNumResults() != 0) { 2425d7231d8SStephan Herhut valueMapping[opInst.getResult(0)] = result; 243baa1ec22SAlex Zinenko return success(); 2445d7231d8SStephan Herhut } 2455d7231d8SStephan Herhut // Check that LLVM call returns void for 0-result functions. 246baa1ec22SAlex Zinenko return success(result->getType()->isVoidTy()); 2475d7231d8SStephan Herhut } 2485d7231d8SStephan Herhut 2495d7231d8SStephan Herhut // Emit branches. We need to look up the remapped blocks and ignore the block 2505d7231d8SStephan Herhut // arguments that were transformed into PHI nodes. 251c5ecf991SRiver Riddle if (auto brOp = dyn_cast<LLVM::BrOp>(opInst)) { 2525d7231d8SStephan Herhut builder.CreateBr(blockMapping[brOp.getSuccessor(0)]); 253baa1ec22SAlex Zinenko return success(); 2545d7231d8SStephan Herhut } 255c5ecf991SRiver Riddle if (auto condbrOp = dyn_cast<LLVM::CondBrOp>(opInst)) { 2565d7231d8SStephan Herhut builder.CreateCondBr(valueMapping.lookup(condbrOp.getOperand(0)), 2575d7231d8SStephan Herhut blockMapping[condbrOp.getSuccessor(0)], 2585d7231d8SStephan Herhut blockMapping[condbrOp.getSuccessor(1)]); 259baa1ec22SAlex Zinenko return success(); 2605d7231d8SStephan Herhut } 2615d7231d8SStephan Herhut 2622dd38b09SAlex Zinenko // Emit addressof. We need to look up the global value referenced by the 2632dd38b09SAlex Zinenko // operation and store it in the MLIR-to-LLVM value mapping. This does not 2642dd38b09SAlex Zinenko // emit any LLVM instruction. 2652dd38b09SAlex Zinenko if (auto addressOfOp = dyn_cast<LLVM::AddressOfOp>(opInst)) { 2662dd38b09SAlex Zinenko LLVM::GlobalOp global = addressOfOp.getGlobal(); 2672dd38b09SAlex Zinenko // The verifier should not have allowed this. 2682dd38b09SAlex Zinenko assert(global && "referencing an undefined global"); 2692dd38b09SAlex Zinenko 2702dd38b09SAlex Zinenko valueMapping[addressOfOp.getResult()] = globalsMapping.lookup(global); 2712dd38b09SAlex Zinenko return success(); 2722dd38b09SAlex Zinenko } 2732dd38b09SAlex Zinenko 274baa1ec22SAlex Zinenko return opInst.emitError("unsupported or non-LLVM operation: ") 275baa1ec22SAlex Zinenko << opInst.getName(); 2765d7231d8SStephan Herhut } 2775d7231d8SStephan Herhut 2785d7231d8SStephan Herhut // Convert block to LLVM IR. Unless `ignoreArguments` is set, emit PHI nodes 2795d7231d8SStephan Herhut // to define values corresponding to the MLIR block arguments. These nodes 2805d7231d8SStephan Herhut // are not connected to the source basic blocks, which may not exist yet. 281baa1ec22SAlex Zinenko LogicalResult ModuleTranslation::convertBlock(Block &bb, bool ignoreArguments) { 2825d7231d8SStephan Herhut llvm::IRBuilder<> builder(blockMapping[&bb]); 2835d7231d8SStephan Herhut 2845d7231d8SStephan Herhut // Before traversing operations, make block arguments available through 2855d7231d8SStephan Herhut // value remapping and PHI nodes, but do not add incoming edges for the PHI 2865d7231d8SStephan Herhut // nodes just yet: those values may be defined by this or following blocks. 2875d7231d8SStephan Herhut // This step is omitted if "ignoreArguments" is set. The arguments of the 2885d7231d8SStephan Herhut // first block have been already made available through the remapping of 2895d7231d8SStephan Herhut // LLVM function arguments. 2905d7231d8SStephan Herhut if (!ignoreArguments) { 2915d7231d8SStephan Herhut auto predecessors = bb.getPredecessors(); 2925d7231d8SStephan Herhut unsigned numPredecessors = 2935d7231d8SStephan Herhut std::distance(predecessors.begin(), predecessors.end()); 2945d7231d8SStephan Herhut for (auto *arg : bb.getArguments()) { 2955d7231d8SStephan Herhut auto wrappedType = arg->getType().dyn_cast<LLVM::LLVMType>(); 296baa1ec22SAlex Zinenko if (!wrappedType) 297baa1ec22SAlex Zinenko return emitError(bb.front().getLoc(), 298a4c3a645SRiver Riddle "block argument does not have an LLVM type"); 2995d7231d8SStephan Herhut llvm::Type *type = wrappedType.getUnderlyingType(); 3005d7231d8SStephan Herhut llvm::PHINode *phi = builder.CreatePHI(type, numPredecessors); 3015d7231d8SStephan Herhut valueMapping[arg] = phi; 3025d7231d8SStephan Herhut } 3035d7231d8SStephan Herhut } 3045d7231d8SStephan Herhut 3055d7231d8SStephan Herhut // Traverse operations. 3065d7231d8SStephan Herhut for (auto &op : bb) { 307baa1ec22SAlex Zinenko if (failed(convertOperation(op, builder))) 308baa1ec22SAlex Zinenko return failure(); 3095d7231d8SStephan Herhut } 3105d7231d8SStephan Herhut 311baa1ec22SAlex Zinenko return success(); 3125d7231d8SStephan Herhut } 3135d7231d8SStephan Herhut 314c335d9d3SAlex Zinenko // Create named global variables that correspond to llvm.mlir.global 315c335d9d3SAlex Zinenko // definitions. 316b9ff2dd8SAlex Zinenko void ModuleTranslation::convertGlobals() { 317b9ff2dd8SAlex Zinenko for (auto op : mlirModule.getOps<LLVM::GlobalOp>()) { 3182dd38b09SAlex Zinenko llvm::Constant *cst; 3192dd38b09SAlex Zinenko llvm::Type *type; 32068451df2SAlex Zinenko // String attributes are treated separately because they cannot appear as 32168451df2SAlex Zinenko // in-function constants and are thus not supported by getLLVMConstant. 322*33a3a91bSChristian Sigg if (auto strAttr = op.getValueOrNull().dyn_cast_or_null<StringAttr>()) { 3232dd38b09SAlex Zinenko cst = llvm::ConstantDataArray::getString( 32468451df2SAlex Zinenko llvmModule->getContext(), strAttr.getValue(), /*AddNull=*/false); 3252dd38b09SAlex Zinenko type = cst->getType(); 3262dd38b09SAlex Zinenko } else { 3272dd38b09SAlex Zinenko type = op.getType().getUnderlyingType(); 328*33a3a91bSChristian Sigg cst = getLLVMConstant(type, op.getValueOrNull(), op.getLoc()); 32968451df2SAlex Zinenko } 33068451df2SAlex Zinenko 331e79bfefbSMLIR Team auto addrSpace = op.addr_space().getLimitedValue(); 332e79bfefbSMLIR Team auto *var = new llvm::GlobalVariable( 333e79bfefbSMLIR Team *llvmModule, type, op.constant(), llvm::GlobalValue::InternalLinkage, 334e79bfefbSMLIR Team cst, op.sym_name(), /*InsertBefore=*/nullptr, 335e79bfefbSMLIR Team llvm::GlobalValue::NotThreadLocal, addrSpace); 336e79bfefbSMLIR Team 3372dd38b09SAlex Zinenko globalsMapping.try_emplace(op, var); 338b9ff2dd8SAlex Zinenko } 339b9ff2dd8SAlex Zinenko } 340b9ff2dd8SAlex Zinenko 3415d7231d8SStephan Herhut // Get the SSA value passed to the current block from the terminator operation 3425d7231d8SStephan Herhut // of its predecessor. 3435d7231d8SStephan Herhut static Value *getPHISourceValue(Block *current, Block *pred, 3445d7231d8SStephan Herhut unsigned numArguments, unsigned index) { 3455d7231d8SStephan Herhut auto &terminator = *pred->getTerminator(); 346d5b60ee8SRiver Riddle if (isa<LLVM::BrOp>(terminator)) { 3475d7231d8SStephan Herhut return terminator.getOperand(index); 3485d7231d8SStephan Herhut } 3495d7231d8SStephan Herhut 3505d7231d8SStephan Herhut // For conditional branches, we need to check if the current block is reached 3515d7231d8SStephan Herhut // through the "true" or the "false" branch and take the relevant operands. 352c5ecf991SRiver Riddle auto condBranchOp = dyn_cast<LLVM::CondBrOp>(terminator); 3535d7231d8SStephan Herhut assert(condBranchOp && 3545d7231d8SStephan Herhut "only branch operations can be terminators of a block that " 3555d7231d8SStephan Herhut "has successors"); 3565d7231d8SStephan Herhut assert((condBranchOp.getSuccessor(0) != condBranchOp.getSuccessor(1)) && 3575d7231d8SStephan Herhut "successors with arguments in LLVM conditional branches must be " 3585d7231d8SStephan Herhut "different blocks"); 3595d7231d8SStephan Herhut 3605d7231d8SStephan Herhut return condBranchOp.getSuccessor(0) == current 3615d7231d8SStephan Herhut ? terminator.getSuccessorOperand(0, index) 3625d7231d8SStephan Herhut : terminator.getSuccessorOperand(1, index); 3635d7231d8SStephan Herhut } 3645d7231d8SStephan Herhut 3658c443678SRiver Riddle void ModuleTranslation::connectPHINodes(FuncOp func) { 3665d7231d8SStephan Herhut // Skip the first block, it cannot be branched to and its arguments correspond 3675d7231d8SStephan Herhut // to the arguments of the LLVM function. 3685d7231d8SStephan Herhut for (auto it = std::next(func.begin()), eit = func.end(); it != eit; ++it) { 3695d7231d8SStephan Herhut Block *bb = &*it; 3705d7231d8SStephan Herhut llvm::BasicBlock *llvmBB = blockMapping.lookup(bb); 3715d7231d8SStephan Herhut auto phis = llvmBB->phis(); 3725d7231d8SStephan Herhut auto numArguments = bb->getNumArguments(); 3735d7231d8SStephan Herhut assert(numArguments == std::distance(phis.begin(), phis.end())); 3745d7231d8SStephan Herhut for (auto &numberedPhiNode : llvm::enumerate(phis)) { 3755d7231d8SStephan Herhut auto &phiNode = numberedPhiNode.value(); 3765d7231d8SStephan Herhut unsigned index = numberedPhiNode.index(); 3775d7231d8SStephan Herhut for (auto *pred : bb->getPredecessors()) { 3785d7231d8SStephan Herhut phiNode.addIncoming(valueMapping.lookup(getPHISourceValue( 3795d7231d8SStephan Herhut bb, pred, numArguments, index)), 3805d7231d8SStephan Herhut blockMapping.lookup(pred)); 3815d7231d8SStephan Herhut } 3825d7231d8SStephan Herhut } 3835d7231d8SStephan Herhut } 3845d7231d8SStephan Herhut } 3855d7231d8SStephan Herhut 3865d7231d8SStephan Herhut // TODO(mlir-team): implement an iterative version 3875d7231d8SStephan Herhut static void topologicalSortImpl(llvm::SetVector<Block *> &blocks, Block *b) { 3885d7231d8SStephan Herhut blocks.insert(b); 3895d7231d8SStephan Herhut for (Block *bb : b->getSuccessors()) { 3905d7231d8SStephan Herhut if (blocks.count(bb) == 0) 3915d7231d8SStephan Herhut topologicalSortImpl(blocks, bb); 3925d7231d8SStephan Herhut } 3935d7231d8SStephan Herhut } 3945d7231d8SStephan Herhut 3955d7231d8SStephan Herhut // Sort function blocks topologically. 3968c443678SRiver Riddle static llvm::SetVector<Block *> topologicalSort(FuncOp f) { 3975d7231d8SStephan Herhut // For each blocks that has not been visited yet (i.e. that has no 3985d7231d8SStephan Herhut // predecessors), add it to the list and traverse its successors in DFS 3995d7231d8SStephan Herhut // preorder. 4005d7231d8SStephan Herhut llvm::SetVector<Block *> blocks; 4015d7231d8SStephan Herhut for (Block &b : f.getBlocks()) { 4025d7231d8SStephan Herhut if (blocks.count(&b) == 0) 4035d7231d8SStephan Herhut topologicalSortImpl(blocks, &b); 4045d7231d8SStephan Herhut } 4055d7231d8SStephan Herhut assert(blocks.size() == f.getBlocks().size() && "some blocks are not sorted"); 4065d7231d8SStephan Herhut 4075d7231d8SStephan Herhut return blocks; 4085d7231d8SStephan Herhut } 4095d7231d8SStephan Herhut 410baa1ec22SAlex Zinenko LogicalResult ModuleTranslation::convertOneFunction(FuncOp func) { 4115d7231d8SStephan Herhut // Clear the block and value mappings, they are only relevant within one 4125d7231d8SStephan Herhut // function. 4135d7231d8SStephan Herhut blockMapping.clear(); 4145d7231d8SStephan Herhut valueMapping.clear(); 415c33862b0SRiver Riddle llvm::Function *llvmFunc = functionMapping.lookup(func.getName()); 4165d7231d8SStephan Herhut // Add function arguments to the value remapping table. 4175d7231d8SStephan Herhut // If there was noalias info then we decorate each argument accordingly. 4185d7231d8SStephan Herhut unsigned int argIdx = 0; 4195d7231d8SStephan Herhut for (const auto &kvp : llvm::zip(func.getArguments(), llvmFunc->args())) { 4205d7231d8SStephan Herhut llvm::Argument &llvmArg = std::get<1>(kvp); 4215d7231d8SStephan Herhut BlockArgument *mlirArg = std::get<0>(kvp); 4225d7231d8SStephan Herhut 4235d7231d8SStephan Herhut if (auto attr = func.getArgAttrOfType<BoolAttr>(argIdx, "llvm.noalias")) { 4245d7231d8SStephan Herhut // NB: Attribute already verified to be boolean, so check if we can indeed 4255d7231d8SStephan Herhut // attach the attribute to this argument, based on its type. 4265d7231d8SStephan Herhut auto argTy = mlirArg->getType().dyn_cast<LLVM::LLVMType>(); 427baa1ec22SAlex Zinenko if (!argTy.getUnderlyingType()->isPointerTy()) 428baa1ec22SAlex Zinenko return func.emitError( 4295d7231d8SStephan Herhut "llvm.noalias attribute attached to LLVM non-pointer argument"); 4305d7231d8SStephan Herhut if (attr.getValue()) 4315d7231d8SStephan Herhut llvmArg.addAttr(llvm::Attribute::AttrKind::NoAlias); 4325d7231d8SStephan Herhut } 4335d7231d8SStephan Herhut valueMapping[mlirArg] = &llvmArg; 4345d7231d8SStephan Herhut argIdx++; 4355d7231d8SStephan Herhut } 4365d7231d8SStephan Herhut 4375d7231d8SStephan Herhut // First, create all blocks so we can jump to them. 4385d7231d8SStephan Herhut llvm::LLVMContext &llvmContext = llvmFunc->getContext(); 4395d7231d8SStephan Herhut for (auto &bb : func) { 4405d7231d8SStephan Herhut auto *llvmBB = llvm::BasicBlock::Create(llvmContext); 4415d7231d8SStephan Herhut llvmBB->insertInto(llvmFunc); 4425d7231d8SStephan Herhut blockMapping[&bb] = llvmBB; 4435d7231d8SStephan Herhut } 4445d7231d8SStephan Herhut 4455d7231d8SStephan Herhut // Then, convert blocks one by one in topological order to ensure defs are 4465d7231d8SStephan Herhut // converted before uses. 4475d7231d8SStephan Herhut auto blocks = topologicalSort(func); 4485d7231d8SStephan Herhut for (auto indexedBB : llvm::enumerate(blocks)) { 4495d7231d8SStephan Herhut auto *bb = indexedBB.value(); 450baa1ec22SAlex Zinenko if (failed(convertBlock(*bb, /*ignoreArguments=*/indexedBB.index() == 0))) 451baa1ec22SAlex Zinenko return failure(); 4525d7231d8SStephan Herhut } 4535d7231d8SStephan Herhut 4545d7231d8SStephan Herhut // Finally, after all blocks have been traversed and values mapped, connect 4555d7231d8SStephan Herhut // the PHI nodes to the results of preceding blocks. 4565d7231d8SStephan Herhut connectPHINodes(func); 457baa1ec22SAlex Zinenko return success(); 4585d7231d8SStephan Herhut } 4595d7231d8SStephan Herhut 460baa1ec22SAlex Zinenko LogicalResult ModuleTranslation::convertFunctions() { 4615d7231d8SStephan Herhut // Declare all functions first because there may be function calls that form a 4625d7231d8SStephan Herhut // call graph with cycles. 4638c443678SRiver Riddle for (FuncOp function : mlirModule.getOps<FuncOp>()) { 4645d7231d8SStephan Herhut mlir::BoolAttr isVarArgsAttr = 4655d7231d8SStephan Herhut function.getAttrOfType<BoolAttr>("std.varargs"); 4665d7231d8SStephan Herhut bool isVarArgs = isVarArgsAttr && isVarArgsAttr.getValue(); 4675d7231d8SStephan Herhut llvm::FunctionType *functionType = 4685d7231d8SStephan Herhut convertFunctionType(llvmModule->getContext(), function.getType(), 4695d7231d8SStephan Herhut function.getLoc(), isVarArgs); 4705d7231d8SStephan Herhut if (!functionType) 471baa1ec22SAlex Zinenko return failure(); 4725d7231d8SStephan Herhut llvm::FunctionCallee llvmFuncCst = 4735d7231d8SStephan Herhut llvmModule->getOrInsertFunction(function.getName(), functionType); 4745d7231d8SStephan Herhut assert(isa<llvm::Function>(llvmFuncCst.getCallee())); 475c33862b0SRiver Riddle functionMapping[function.getName()] = 4765d7231d8SStephan Herhut cast<llvm::Function>(llvmFuncCst.getCallee()); 4775d7231d8SStephan Herhut } 4785d7231d8SStephan Herhut 4795d7231d8SStephan Herhut // Convert functions. 4808c443678SRiver Riddle for (FuncOp function : mlirModule.getOps<FuncOp>()) { 4815d7231d8SStephan Herhut // Ignore external functions. 4825d7231d8SStephan Herhut if (function.isExternal()) 4835d7231d8SStephan Herhut continue; 4845d7231d8SStephan Herhut 485baa1ec22SAlex Zinenko if (failed(convertOneFunction(function))) 486baa1ec22SAlex Zinenko return failure(); 4875d7231d8SStephan Herhut } 4885d7231d8SStephan Herhut 489baa1ec22SAlex Zinenko return success(); 4905d7231d8SStephan Herhut } 4915d7231d8SStephan Herhut 492fec20e59SRiver Riddle std::unique_ptr<llvm::Module> ModuleTranslation::prepareLLVMModule(ModuleOp m) { 493bc5c7378SRiver Riddle auto *dialect = m.getContext()->getRegisteredDialect<LLVM::LLVMDialect>(); 4945d7231d8SStephan Herhut assert(dialect && "LLVM dialect must be registered"); 4955d7231d8SStephan Herhut 496bc5c7378SRiver Riddle auto llvmModule = llvm::CloneModule(dialect->getLLVMModule()); 4975d7231d8SStephan Herhut if (!llvmModule) 4985d7231d8SStephan Herhut return nullptr; 4995d7231d8SStephan Herhut 5005d7231d8SStephan Herhut llvm::LLVMContext &llvmContext = llvmModule->getContext(); 5015d7231d8SStephan Herhut llvm::IRBuilder<> builder(llvmContext); 5025d7231d8SStephan Herhut 5035d7231d8SStephan Herhut // Inject declarations for `malloc` and `free` functions that can be used in 5045d7231d8SStephan Herhut // memref allocation/deallocation coming from standard ops lowering. 5055d7231d8SStephan Herhut llvmModule->getOrInsertFunction("malloc", builder.getInt8PtrTy(), 5065d7231d8SStephan Herhut builder.getInt64Ty()); 5075d7231d8SStephan Herhut llvmModule->getOrInsertFunction("free", builder.getVoidTy(), 5085d7231d8SStephan Herhut builder.getInt8PtrTy()); 5095d7231d8SStephan Herhut 5105d7231d8SStephan Herhut return llvmModule; 5115d7231d8SStephan Herhut } 5125d7231d8SStephan Herhut 5135d7231d8SStephan Herhut } // namespace LLVM 5145d7231d8SStephan Herhut } // namespace mlir 515