1044d5b5dSValentin Clement //===-- CodeGen.cpp -- bridge to lower to LLVM ----------------------------===// 2044d5b5dSValentin Clement // 3044d5b5dSValentin Clement // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4044d5b5dSValentin Clement // See https://llvm.org/LICENSE.txt for license information. 5044d5b5dSValentin Clement // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6044d5b5dSValentin Clement // 7044d5b5dSValentin Clement //===----------------------------------------------------------------------===// 8044d5b5dSValentin Clement // 9044d5b5dSValentin Clement // Coding style: https://mlir.llvm.org/getting_started/DeveloperGuide/ 10044d5b5dSValentin Clement // 11044d5b5dSValentin Clement //===----------------------------------------------------------------------===// 12044d5b5dSValentin Clement 13044d5b5dSValentin Clement #include "flang/Optimizer/CodeGen/CodeGen.h" 141f551032SValentin Clement #include "CGOps.h" 15044d5b5dSValentin Clement #include "PassDetail.h" 16b6e44ecdSValentin Clement #include "flang/ISO_Fortran_binding.h" 1739f4ef81SValentin Clement #include "flang/Optimizer/Dialect/FIRAttr.h" 18044d5b5dSValentin Clement #include "flang/Optimizer/Dialect/FIROps.h" 197dd7ccd2SJean Perier #include "flang/Optimizer/Support/InternalNames.h" 20af6ee580SValentin Clement #include "flang/Optimizer/Support/TypeCode.h" 217dd7ccd2SJean Perier #include "flang/Semantics/runtime-type-info.h" 22044d5b5dSValentin Clement #include "mlir/Conversion/ArithmeticToLLVM/ArithmeticToLLVM.h" 23ace01605SRiver Riddle #include "mlir/Conversion/ControlFlowToLLVM/ControlFlowToLLVM.h" 245a7b9194SRiver Riddle #include "mlir/Conversion/FuncToLLVM/ConvertFuncToLLVM.h" 25044d5b5dSValentin Clement #include "mlir/Conversion/LLVMCommon/Pattern.h" 26044d5b5dSValentin Clement #include "mlir/IR/BuiltinTypes.h" 273ae8e442SValentin Clement #include "mlir/IR/Matchers.h" 28044d5b5dSValentin Clement #include "mlir/Pass/Pass.h" 29853e79d8SValentin Clement #include "mlir/Target/LLVMIR/ModuleTranslation.h" 30044d5b5dSValentin Clement #include "llvm/ADT/ArrayRef.h" 31044d5b5dSValentin Clement 32044d5b5dSValentin Clement #define DEBUG_TYPE "flang-codegen" 33044d5b5dSValentin Clement 34044d5b5dSValentin Clement // fir::LLVMTypeConverter for converting to LLVM IR dialect types. 35044d5b5dSValentin Clement #include "TypeConverter.h" 36044d5b5dSValentin Clement 37af6ee580SValentin Clement // TODO: This should really be recovered from the specified target. 38af6ee580SValentin Clement static constexpr unsigned defaultAlign = 8; 39af6ee580SValentin Clement 40b6e44ecdSValentin Clement /// `fir.box` attribute values as defined for CFI_attribute_t in 41b6e44ecdSValentin Clement /// flang/ISO_Fortran_binding.h. 42b6e44ecdSValentin Clement static constexpr unsigned kAttrPointer = CFI_attribute_pointer; 43b6e44ecdSValentin Clement static constexpr unsigned kAttrAllocatable = CFI_attribute_allocatable; 44b6e44ecdSValentin Clement 45135d5d4aSKiran Chandramohan static inline mlir::Type getVoidPtrType(mlir::MLIRContext *context) { 46fa517555SKiran Chandramohan return mlir::LLVM::LLVMPointerType::get(mlir::IntegerType::get(context, 8)); 47fa517555SKiran Chandramohan } 48fa517555SKiran Chandramohan 491e6d9c06SDiana Picus static mlir::LLVM::ConstantOp 501e6d9c06SDiana Picus genConstantIndex(mlir::Location loc, mlir::Type ity, 511e6d9c06SDiana Picus mlir::ConversionPatternRewriter &rewriter, 521e6d9c06SDiana Picus std::int64_t offset) { 531e6d9c06SDiana Picus auto cattr = rewriter.getI64IntegerAttr(offset); 541e6d9c06SDiana Picus return rewriter.create<mlir::LLVM::ConstantOp>(loc, ity, cattr); 551e6d9c06SDiana Picus } 561e6d9c06SDiana Picus 5739f4ef81SValentin Clement static Block *createBlock(mlir::ConversionPatternRewriter &rewriter, 5839f4ef81SValentin Clement mlir::Block *insertBefore) { 5939f4ef81SValentin Clement assert(insertBefore && "expected valid insertion block"); 6039f4ef81SValentin Clement return rewriter.createBlock(insertBefore->getParent(), 6139f4ef81SValentin Clement mlir::Region::iterator(insertBefore)); 6239f4ef81SValentin Clement } 6339f4ef81SValentin Clement 64044d5b5dSValentin Clement namespace { 65044d5b5dSValentin Clement /// FIR conversion pattern template 66044d5b5dSValentin Clement template <typename FromOp> 67044d5b5dSValentin Clement class FIROpConversion : public mlir::ConvertOpToLLVMPattern<FromOp> { 68044d5b5dSValentin Clement public: 69013160f6SJean Perier explicit FIROpConversion(fir::LLVMTypeConverter &lowering, 70013160f6SJean Perier const fir::FIRToLLVMPassOptions &options) 71013160f6SJean Perier : mlir::ConvertOpToLLVMPattern<FromOp>(lowering), options(options) {} 72044d5b5dSValentin Clement 73044d5b5dSValentin Clement protected: 74044d5b5dSValentin Clement mlir::Type convertType(mlir::Type ty) const { 75044d5b5dSValentin Clement return lowerTy().convertType(ty); 76044d5b5dSValentin Clement } 77c2acd453SAlexisPerry mlir::Type voidPtrTy() const { return getVoidPtrType(); } 78044d5b5dSValentin Clement 795d27abe6SValentin Clement mlir::Type getVoidPtrType() const { 805d27abe6SValentin Clement return mlir::LLVM::LLVMPointerType::get( 815d27abe6SValentin Clement mlir::IntegerType::get(&lowerTy().getContext(), 8)); 825d27abe6SValentin Clement } 835d27abe6SValentin Clement 84df3b9810SValentin Clement mlir::LLVM::ConstantOp 85af6ee580SValentin Clement genI32Constant(mlir::Location loc, mlir::ConversionPatternRewriter &rewriter, 86af6ee580SValentin Clement int value) const { 87af6ee580SValentin Clement mlir::Type i32Ty = rewriter.getI32Type(); 88af6ee580SValentin Clement mlir::IntegerAttr attr = rewriter.getI32IntegerAttr(value); 89af6ee580SValentin Clement return rewriter.create<mlir::LLVM::ConstantOp>(loc, i32Ty, attr); 90af6ee580SValentin Clement } 91af6ee580SValentin Clement 92af6ee580SValentin Clement mlir::LLVM::ConstantOp 93df3b9810SValentin Clement genConstantOffset(mlir::Location loc, 94df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter, 95df3b9810SValentin Clement int offset) const { 96af6ee580SValentin Clement mlir::Type ity = lowerTy().offsetType(); 97af6ee580SValentin Clement mlir::IntegerAttr cattr = rewriter.getI32IntegerAttr(offset); 98df3b9810SValentin Clement return rewriter.create<mlir::LLVM::ConstantOp>(loc, ity, cattr); 99df3b9810SValentin Clement } 100df3b9810SValentin Clement 101dc48849fSKiran Chandramohan /// Perform an extension or truncation as needed on an integer value. Lowering 102dc48849fSKiran Chandramohan /// to the specific target may involve some sign-extending or truncation of 103dc48849fSKiran Chandramohan /// values, particularly to fit them from abstract box types to the 104dc48849fSKiran Chandramohan /// appropriate reified structures. 105dc48849fSKiran Chandramohan mlir::Value integerCast(mlir::Location loc, 106dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter, 107dc48849fSKiran Chandramohan mlir::Type ty, mlir::Value val) const { 108dc48849fSKiran Chandramohan auto valTy = val.getType(); 109dc48849fSKiran Chandramohan // If the value was not yet lowered, lower its type so that it can 110dc48849fSKiran Chandramohan // be used in getPrimitiveTypeSizeInBits. 111dc48849fSKiran Chandramohan if (!valTy.isa<mlir::IntegerType>()) 112dc48849fSKiran Chandramohan valTy = convertType(valTy); 113dc48849fSKiran Chandramohan auto toSize = mlir::LLVM::getPrimitiveTypeSizeInBits(ty); 114dc48849fSKiran Chandramohan auto fromSize = mlir::LLVM::getPrimitiveTypeSizeInBits(valTy); 115dc48849fSKiran Chandramohan if (toSize < fromSize) 116dc48849fSKiran Chandramohan return rewriter.create<mlir::LLVM::TruncOp>(loc, ty, val); 117dc48849fSKiran Chandramohan if (toSize > fromSize) 118dc48849fSKiran Chandramohan return rewriter.create<mlir::LLVM::SExtOp>(loc, ty, val); 119dc48849fSKiran Chandramohan return val; 120dc48849fSKiran Chandramohan } 121dc48849fSKiran Chandramohan 122b6e44ecdSValentin Clement /// Construct code sequence to extract the specifc value from a `fir.box`. 123b6e44ecdSValentin Clement mlir::Value getValueFromBox(mlir::Location loc, mlir::Value box, 124df3b9810SValentin Clement mlir::Type resultTy, 125b6e44ecdSValentin Clement mlir::ConversionPatternRewriter &rewriter, 126b6e44ecdSValentin Clement unsigned boxValue) const { 127df3b9810SValentin Clement mlir::LLVM::ConstantOp c0 = genConstantOffset(loc, rewriter, 0); 128b6e44ecdSValentin Clement mlir::LLVM::ConstantOp cValuePos = 129b6e44ecdSValentin Clement genConstantOffset(loc, rewriter, boxValue); 130df3b9810SValentin Clement auto pty = mlir::LLVM::LLVMPointerType::get(resultTy); 131df3b9810SValentin Clement auto p = rewriter.create<mlir::LLVM::GEPOp>( 13230122656SAlex Zinenko loc, pty, box, mlir::ValueRange{c0, cValuePos}); 133df3b9810SValentin Clement return rewriter.create<mlir::LLVM::LoadOp>(loc, resultTy, p); 134df3b9810SValentin Clement } 135df3b9810SValentin Clement 136df3b9810SValentin Clement /// Method to construct code sequence to get the triple for dimension `dim` 137df3b9810SValentin Clement /// from a box. 138df3b9810SValentin Clement SmallVector<mlir::Value, 3> 139df3b9810SValentin Clement getDimsFromBox(mlir::Location loc, ArrayRef<mlir::Type> retTys, 140df3b9810SValentin Clement mlir::Value box, mlir::Value dim, 141df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 142df3b9810SValentin Clement mlir::LLVM::ConstantOp c0 = genConstantOffset(loc, rewriter, 0); 143df3b9810SValentin Clement mlir::LLVM::ConstantOp cDims = 144df3b9810SValentin Clement genConstantOffset(loc, rewriter, kDimsPosInBox); 145df3b9810SValentin Clement mlir::LLVM::LoadOp l0 = 146df3b9810SValentin Clement loadFromOffset(loc, box, c0, cDims, dim, 0, retTys[0], rewriter); 147df3b9810SValentin Clement mlir::LLVM::LoadOp l1 = 148df3b9810SValentin Clement loadFromOffset(loc, box, c0, cDims, dim, 1, retTys[1], rewriter); 149df3b9810SValentin Clement mlir::LLVM::LoadOp l2 = 150df3b9810SValentin Clement loadFromOffset(loc, box, c0, cDims, dim, 2, retTys[2], rewriter); 151df3b9810SValentin Clement return {l0.getResult(), l1.getResult(), l2.getResult()}; 152df3b9810SValentin Clement } 153df3b9810SValentin Clement 154df3b9810SValentin Clement mlir::LLVM::LoadOp 155df3b9810SValentin Clement loadFromOffset(mlir::Location loc, mlir::Value a, mlir::LLVM::ConstantOp c0, 156df3b9810SValentin Clement mlir::LLVM::ConstantOp cDims, mlir::Value dim, int off, 157df3b9810SValentin Clement mlir::Type ty, 158df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 159df3b9810SValentin Clement auto pty = mlir::LLVM::LLVMPointerType::get(ty); 160df3b9810SValentin Clement mlir::LLVM::ConstantOp c = genConstantOffset(loc, rewriter, off); 161df3b9810SValentin Clement mlir::LLVM::GEPOp p = genGEP(loc, pty, rewriter, a, c0, cDims, dim, c); 162df3b9810SValentin Clement return rewriter.create<mlir::LLVM::LoadOp>(loc, ty, p); 163df3b9810SValentin Clement } 164df3b9810SValentin Clement 1655d27abe6SValentin Clement mlir::Value 1665d27abe6SValentin Clement loadStrideFromBox(mlir::Location loc, mlir::Value box, unsigned dim, 1675d27abe6SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 1685d27abe6SValentin Clement auto idxTy = lowerTy().indexType(); 1695d27abe6SValentin Clement auto c0 = genConstantOffset(loc, rewriter, 0); 1705d27abe6SValentin Clement auto cDims = genConstantOffset(loc, rewriter, kDimsPosInBox); 1715d27abe6SValentin Clement auto dimValue = genConstantIndex(loc, idxTy, rewriter, dim); 1725d27abe6SValentin Clement return loadFromOffset(loc, box, c0, cDims, dimValue, kDimStridePos, idxTy, 1735d27abe6SValentin Clement rewriter); 1745d27abe6SValentin Clement } 1755d27abe6SValentin Clement 176df3b9810SValentin Clement /// Read base address from a fir.box. Returned address has type ty. 177df3b9810SValentin Clement mlir::Value 178df3b9810SValentin Clement loadBaseAddrFromBox(mlir::Location loc, mlir::Type ty, mlir::Value box, 179df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 180df3b9810SValentin Clement mlir::LLVM::ConstantOp c0 = genConstantOffset(loc, rewriter, 0); 181df3b9810SValentin Clement mlir::LLVM::ConstantOp cAddr = 182df3b9810SValentin Clement genConstantOffset(loc, rewriter, kAddrPosInBox); 183df3b9810SValentin Clement auto pty = mlir::LLVM::LLVMPointerType::get(ty); 184df3b9810SValentin Clement mlir::LLVM::GEPOp p = genGEP(loc, pty, rewriter, box, c0, cAddr); 185df3b9810SValentin Clement return rewriter.create<mlir::LLVM::LoadOp>(loc, ty, p); 186df3b9810SValentin Clement } 187df3b9810SValentin Clement 188df3b9810SValentin Clement mlir::Value 189df3b9810SValentin Clement loadElementSizeFromBox(mlir::Location loc, mlir::Type ty, mlir::Value box, 190df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 191df3b9810SValentin Clement mlir::LLVM::ConstantOp c0 = genConstantOffset(loc, rewriter, 0); 192df3b9810SValentin Clement mlir::LLVM::ConstantOp cElemLen = 193df3b9810SValentin Clement genConstantOffset(loc, rewriter, kElemLenPosInBox); 194df3b9810SValentin Clement auto pty = mlir::LLVM::LLVMPointerType::get(ty); 195df3b9810SValentin Clement mlir::LLVM::GEPOp p = genGEP(loc, pty, rewriter, box, c0, cElemLen); 196df3b9810SValentin Clement return rewriter.create<mlir::LLVM::LoadOp>(loc, ty, p); 197df3b9810SValentin Clement } 198df3b9810SValentin Clement 199af6ee580SValentin Clement // Get the element type given an LLVM type that is of the form 200af6ee580SValentin Clement // [llvm.ptr](array|struct|vector)+ and the provided indexes. 201af6ee580SValentin Clement static mlir::Type getBoxEleTy(mlir::Type type, 202af6ee580SValentin Clement llvm::ArrayRef<unsigned> indexes) { 203af6ee580SValentin Clement if (auto t = type.dyn_cast<mlir::LLVM::LLVMPointerType>()) 204af6ee580SValentin Clement type = t.getElementType(); 205af6ee580SValentin Clement for (auto i : indexes) { 206af6ee580SValentin Clement if (auto t = type.dyn_cast<mlir::LLVM::LLVMStructType>()) { 207af6ee580SValentin Clement assert(!t.isOpaque() && i < t.getBody().size()); 208af6ee580SValentin Clement type = t.getBody()[i]; 209af6ee580SValentin Clement } else if (auto t = type.dyn_cast<mlir::LLVM::LLVMArrayType>()) { 210af6ee580SValentin Clement type = t.getElementType(); 211af6ee580SValentin Clement } else if (auto t = type.dyn_cast<mlir::VectorType>()) { 212af6ee580SValentin Clement type = t.getElementType(); 213af6ee580SValentin Clement } else { 214af6ee580SValentin Clement fir::emitFatalError(mlir::UnknownLoc::get(type.getContext()), 215af6ee580SValentin Clement "request for invalid box element type"); 216af6ee580SValentin Clement } 217af6ee580SValentin Clement } 218af6ee580SValentin Clement return type; 219af6ee580SValentin Clement } 220af6ee580SValentin Clement 2215d27abe6SValentin Clement // Return LLVM type of the base address given the LLVM type 2225d27abe6SValentin Clement // of the related descriptor (lowered fir.box type). 2235d27abe6SValentin Clement static mlir::Type getBaseAddrTypeFromBox(mlir::Type type) { 2245d27abe6SValentin Clement return getBoxEleTy(type, {kAddrPosInBox}); 2255d27abe6SValentin Clement } 2265d27abe6SValentin Clement 227dc48849fSKiran Chandramohan // Load the attribute from the \p box and perform a check against \p maskValue 228dc48849fSKiran Chandramohan // The final comparison is implemented as `(attribute & maskValue) != 0`. 229dc48849fSKiran Chandramohan mlir::Value genBoxAttributeCheck(mlir::Location loc, mlir::Value box, 230dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter, 231dc48849fSKiran Chandramohan unsigned maskValue) const { 232dc48849fSKiran Chandramohan mlir::Type attrTy = rewriter.getI32Type(); 233dc48849fSKiran Chandramohan mlir::Value attribute = 234dc48849fSKiran Chandramohan getValueFromBox(loc, box, attrTy, rewriter, kAttributePosInBox); 235dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp attrMask = 236dc48849fSKiran Chandramohan genConstantOffset(loc, rewriter, maskValue); 237dc48849fSKiran Chandramohan auto maskRes = 238dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::AndOp>(loc, attrTy, attribute, attrMask); 239dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp c0 = genConstantOffset(loc, rewriter, 0); 240dc48849fSKiran Chandramohan return rewriter.create<mlir::LLVM::ICmpOp>( 241dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::ne, maskRes, c0); 242dc48849fSKiran Chandramohan } 243dc48849fSKiran Chandramohan 244df3b9810SValentin Clement template <typename... ARGS> 245df3b9810SValentin Clement mlir::LLVM::GEPOp genGEP(mlir::Location loc, mlir::Type ty, 246df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter, 247df3b9810SValentin Clement mlir::Value base, ARGS... args) const { 248df3b9810SValentin Clement SmallVector<mlir::Value> cv{args...}; 249df3b9810SValentin Clement return rewriter.create<mlir::LLVM::GEPOp>(loc, ty, base, cv); 250df3b9810SValentin Clement } 251df3b9810SValentin Clement 252044d5b5dSValentin Clement fir::LLVMTypeConverter &lowerTy() const { 253044d5b5dSValentin Clement return *static_cast<fir::LLVMTypeConverter *>(this->getTypeConverter()); 254044d5b5dSValentin Clement } 255013160f6SJean Perier 256013160f6SJean Perier const fir::FIRToLLVMPassOptions &options; 257044d5b5dSValentin Clement }; 258044d5b5dSValentin Clement 2593ae8e442SValentin Clement /// FIR conversion pattern template 2603ae8e442SValentin Clement template <typename FromOp> 2613ae8e442SValentin Clement class FIROpAndTypeConversion : public FIROpConversion<FromOp> { 2623ae8e442SValentin Clement public: 2633ae8e442SValentin Clement using FIROpConversion<FromOp>::FIROpConversion; 2643ae8e442SValentin Clement using OpAdaptor = typename FromOp::Adaptor; 2653ae8e442SValentin Clement 2663ae8e442SValentin Clement mlir::LogicalResult 2673ae8e442SValentin Clement matchAndRewrite(FromOp op, OpAdaptor adaptor, 2683ae8e442SValentin Clement mlir::ConversionPatternRewriter &rewriter) const final { 2693ae8e442SValentin Clement mlir::Type ty = this->convertType(op.getType()); 2703ae8e442SValentin Clement return doRewrite(op, ty, adaptor, rewriter); 2713ae8e442SValentin Clement } 2723ae8e442SValentin Clement 2733ae8e442SValentin Clement virtual mlir::LogicalResult 2743ae8e442SValentin Clement doRewrite(FromOp addr, mlir::Type ty, OpAdaptor adaptor, 2753ae8e442SValentin Clement mlir::ConversionPatternRewriter &rewriter) const = 0; 2763ae8e442SValentin Clement }; 2773ae8e442SValentin Clement 2780c4a7a52SValentin Clement // Lower `fir.address_of` operation to `llvm.address_of` operation. 279044d5b5dSValentin Clement struct AddrOfOpConversion : public FIROpConversion<fir::AddrOfOp> { 280044d5b5dSValentin Clement using FIROpConversion::FIROpConversion; 281044d5b5dSValentin Clement 282044d5b5dSValentin Clement mlir::LogicalResult 283044d5b5dSValentin Clement matchAndRewrite(fir::AddrOfOp addr, OpAdaptor adaptor, 284044d5b5dSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 285044d5b5dSValentin Clement auto ty = convertType(addr.getType()); 286044d5b5dSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::AddressOfOp>( 287149ad3d5SShraiysh Vaishay addr, ty, addr.getSymbol().getRootReference().getValue()); 288044d5b5dSValentin Clement return success(); 289044d5b5dSValentin Clement } 290044d5b5dSValentin Clement }; 2911e6d9c06SDiana Picus } // namespace 2921e6d9c06SDiana Picus 2931e6d9c06SDiana Picus /// Lookup the function to compute the memory size of this parametric derived 2941e6d9c06SDiana Picus /// type. The size of the object may depend on the LEN type parameters of the 2951e6d9c06SDiana Picus /// derived type. 2961e6d9c06SDiana Picus static mlir::LLVM::LLVMFuncOp 2971e6d9c06SDiana Picus getDependentTypeMemSizeFn(fir::RecordType recTy, fir::AllocaOp op, 2981e6d9c06SDiana Picus mlir::ConversionPatternRewriter &rewriter) { 2991e6d9c06SDiana Picus auto module = op->getParentOfType<mlir::ModuleOp>(); 3001e6d9c06SDiana Picus std::string name = recTy.getName().str() + "P.mem.size"; 3011e6d9c06SDiana Picus return module.lookupSymbol<mlir::LLVM::LLVMFuncOp>(name); 3021e6d9c06SDiana Picus } 3031e6d9c06SDiana Picus 3041e6d9c06SDiana Picus namespace { 3051e6d9c06SDiana Picus /// convert to LLVM IR dialect `alloca` 3061e6d9c06SDiana Picus struct AllocaOpConversion : public FIROpConversion<fir::AllocaOp> { 3071e6d9c06SDiana Picus using FIROpConversion::FIROpConversion; 3081e6d9c06SDiana Picus 3091e6d9c06SDiana Picus mlir::LogicalResult 3101e6d9c06SDiana Picus matchAndRewrite(fir::AllocaOp alloc, OpAdaptor adaptor, 3111e6d9c06SDiana Picus mlir::ConversionPatternRewriter &rewriter) const override { 3121e6d9c06SDiana Picus mlir::ValueRange operands = adaptor.getOperands(); 3131e6d9c06SDiana Picus auto loc = alloc.getLoc(); 3141e6d9c06SDiana Picus mlir::Type ity = lowerTy().indexType(); 3151e6d9c06SDiana Picus unsigned i = 0; 3161e6d9c06SDiana Picus mlir::Value size = genConstantIndex(loc, ity, rewriter, 1).getResult(); 3171e6d9c06SDiana Picus mlir::Type ty = convertType(alloc.getType()); 3181e6d9c06SDiana Picus mlir::Type resultTy = ty; 3191e6d9c06SDiana Picus if (alloc.hasLenParams()) { 3201e6d9c06SDiana Picus unsigned end = alloc.numLenParams(); 3211e6d9c06SDiana Picus llvm::SmallVector<mlir::Value> lenParams; 3221e6d9c06SDiana Picus for (; i < end; ++i) 3231e6d9c06SDiana Picus lenParams.push_back(operands[i]); 3241e6d9c06SDiana Picus mlir::Type scalarType = fir::unwrapSequenceType(alloc.getInType()); 3251e6d9c06SDiana Picus if (auto chrTy = scalarType.dyn_cast<fir::CharacterType>()) { 3261e6d9c06SDiana Picus fir::CharacterType rawCharTy = fir::CharacterType::getUnknownLen( 3271e6d9c06SDiana Picus chrTy.getContext(), chrTy.getFKind()); 3281e6d9c06SDiana Picus ty = mlir::LLVM::LLVMPointerType::get(convertType(rawCharTy)); 3291e6d9c06SDiana Picus assert(end == 1); 3301e6d9c06SDiana Picus size = integerCast(loc, rewriter, ity, lenParams[0]); 3311e6d9c06SDiana Picus } else if (auto recTy = scalarType.dyn_cast<fir::RecordType>()) { 3321e6d9c06SDiana Picus mlir::LLVM::LLVMFuncOp memSizeFn = 3331e6d9c06SDiana Picus getDependentTypeMemSizeFn(recTy, alloc, rewriter); 3341e6d9c06SDiana Picus if (!memSizeFn) 3351e6d9c06SDiana Picus emitError(loc, "did not find allocation function"); 3361e6d9c06SDiana Picus mlir::NamedAttribute attr = rewriter.getNamedAttr( 3371e6d9c06SDiana Picus "callee", mlir::SymbolRefAttr::get(memSizeFn)); 3381e6d9c06SDiana Picus auto call = rewriter.create<mlir::LLVM::CallOp>( 3391e6d9c06SDiana Picus loc, ity, lenParams, llvm::ArrayRef<mlir::NamedAttribute>{attr}); 3401e6d9c06SDiana Picus size = call.getResult(0); 3411e6d9c06SDiana Picus ty = mlir::LLVM::LLVMPointerType::get( 3421e6d9c06SDiana Picus mlir::IntegerType::get(alloc.getContext(), 8)); 3431e6d9c06SDiana Picus } else { 3441e6d9c06SDiana Picus return emitError(loc, "unexpected type ") 3451e6d9c06SDiana Picus << scalarType << " with type parameters"; 3461e6d9c06SDiana Picus } 3471e6d9c06SDiana Picus } 3481e6d9c06SDiana Picus if (alloc.hasShapeOperands()) { 3491e6d9c06SDiana Picus mlir::Type allocEleTy = fir::unwrapRefType(alloc.getType()); 3501e6d9c06SDiana Picus // Scale the size by constant factors encoded in the array type. 351776d0ed6SDiana Picus // We only do this for arrays that don't have a constant interior, since 352776d0ed6SDiana Picus // those are the only ones that get decayed to a pointer to the element 353776d0ed6SDiana Picus // type. 3541e6d9c06SDiana Picus if (auto seqTy = allocEleTy.dyn_cast<fir::SequenceType>()) { 355776d0ed6SDiana Picus if (!seqTy.hasConstantInterior()) { 3561e6d9c06SDiana Picus fir::SequenceType::Extent constSize = 1; 3571e6d9c06SDiana Picus for (auto extent : seqTy.getShape()) 3581e6d9c06SDiana Picus if (extent != fir::SequenceType::getUnknownExtent()) 3591e6d9c06SDiana Picus constSize *= extent; 3601e6d9c06SDiana Picus mlir::Value constVal{ 3611e6d9c06SDiana Picus genConstantIndex(loc, ity, rewriter, constSize).getResult()}; 3621e6d9c06SDiana Picus size = rewriter.create<mlir::LLVM::MulOp>(loc, ity, size, constVal); 3631e6d9c06SDiana Picus } 364776d0ed6SDiana Picus } 3651e6d9c06SDiana Picus unsigned end = operands.size(); 3661e6d9c06SDiana Picus for (; i < end; ++i) 3671e6d9c06SDiana Picus size = rewriter.create<mlir::LLVM::MulOp>( 3681e6d9c06SDiana Picus loc, ity, size, integerCast(loc, rewriter, ity, operands[i])); 3691e6d9c06SDiana Picus } 3701e6d9c06SDiana Picus if (ty == resultTy) { 3711e6d9c06SDiana Picus // Do not emit the bitcast if ty and resultTy are the same. 3721e6d9c06SDiana Picus rewriter.replaceOpWithNewOp<mlir::LLVM::AllocaOp>(alloc, ty, size, 3731e6d9c06SDiana Picus alloc->getAttrs()); 3741e6d9c06SDiana Picus } else { 3751e6d9c06SDiana Picus auto al = rewriter.create<mlir::LLVM::AllocaOp>(loc, ty, size, 3761e6d9c06SDiana Picus alloc->getAttrs()); 3771e6d9c06SDiana Picus rewriter.replaceOpWithNewOp<mlir::LLVM::BitcastOp>(alloc, resultTy, al); 3781e6d9c06SDiana Picus } 3791e6d9c06SDiana Picus return success(); 3801e6d9c06SDiana Picus } 3811e6d9c06SDiana Picus }; 382dc48849fSKiran Chandramohan } // namespace 383044d5b5dSValentin Clement 384dc48849fSKiran Chandramohan /// Construct an `llvm.extractvalue` instruction. It will return value at 385dc48849fSKiran Chandramohan /// element \p x from \p tuple. 386dc48849fSKiran Chandramohan static mlir::LLVM::ExtractValueOp 387dc48849fSKiran Chandramohan genExtractValueWithIndex(mlir::Location loc, mlir::Value tuple, mlir::Type ty, 388dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter, 389dc48849fSKiran Chandramohan mlir::MLIRContext *ctx, int x) { 390dc48849fSKiran Chandramohan auto cx = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(x)); 391dc48849fSKiran Chandramohan auto xty = ty.cast<mlir::LLVM::LLVMStructType>().getBody()[x]; 392dc48849fSKiran Chandramohan return rewriter.create<mlir::LLVM::ExtractValueOp>(loc, xty, tuple, cx); 393dc48849fSKiran Chandramohan } 394dc48849fSKiran Chandramohan 395dc48849fSKiran Chandramohan namespace { 396df3b9810SValentin Clement /// Lower `fir.box_addr` to the sequence of operations to extract the first 397df3b9810SValentin Clement /// element of the box. 398df3b9810SValentin Clement struct BoxAddrOpConversion : public FIROpConversion<fir::BoxAddrOp> { 399df3b9810SValentin Clement using FIROpConversion::FIROpConversion; 400df3b9810SValentin Clement 401df3b9810SValentin Clement mlir::LogicalResult 402df3b9810SValentin Clement matchAndRewrite(fir::BoxAddrOp boxaddr, OpAdaptor adaptor, 403df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 404df3b9810SValentin Clement mlir::Value a = adaptor.getOperands()[0]; 405df3b9810SValentin Clement auto loc = boxaddr.getLoc(); 406df3b9810SValentin Clement mlir::Type ty = convertType(boxaddr.getType()); 407149ad3d5SShraiysh Vaishay if (auto argty = boxaddr.getVal().getType().dyn_cast<fir::BoxType>()) { 408df3b9810SValentin Clement rewriter.replaceOp(boxaddr, loadBaseAddrFromBox(loc, ty, a, rewriter)); 409df3b9810SValentin Clement } else { 410df3b9810SValentin Clement auto c0attr = rewriter.getI32IntegerAttr(0); 411df3b9810SValentin Clement auto c0 = mlir::ArrayAttr::get(boxaddr.getContext(), c0attr); 412df3b9810SValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::ExtractValueOp>(boxaddr, ty, a, 413df3b9810SValentin Clement c0); 414df3b9810SValentin Clement } 415df3b9810SValentin Clement return success(); 416df3b9810SValentin Clement } 417df3b9810SValentin Clement }; 418df3b9810SValentin Clement 419dc48849fSKiran Chandramohan /// Convert `!fir.boxchar_len` to `!llvm.extractvalue` for the 2nd part of the 420dc48849fSKiran Chandramohan /// boxchar. 421dc48849fSKiran Chandramohan struct BoxCharLenOpConversion : public FIROpConversion<fir::BoxCharLenOp> { 422dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 423dc48849fSKiran Chandramohan 424dc48849fSKiran Chandramohan mlir::LogicalResult 425dc48849fSKiran Chandramohan matchAndRewrite(fir::BoxCharLenOp boxCharLen, OpAdaptor adaptor, 426dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 427dc48849fSKiran Chandramohan mlir::Value boxChar = adaptor.getOperands()[0]; 428dc48849fSKiran Chandramohan mlir::Location loc = boxChar.getLoc(); 429dc48849fSKiran Chandramohan mlir::MLIRContext *ctx = boxChar.getContext(); 430dc48849fSKiran Chandramohan mlir::Type returnValTy = boxCharLen.getResult().getType(); 431dc48849fSKiran Chandramohan 432dc48849fSKiran Chandramohan constexpr int boxcharLenIdx = 1; 433dc48849fSKiran Chandramohan mlir::LLVM::ExtractValueOp len = genExtractValueWithIndex( 434dc48849fSKiran Chandramohan loc, boxChar, boxChar.getType(), rewriter, ctx, boxcharLenIdx); 435dc48849fSKiran Chandramohan mlir::Value lenAfterCast = integerCast(loc, rewriter, returnValTy, len); 436dc48849fSKiran Chandramohan rewriter.replaceOp(boxCharLen, lenAfterCast); 437dc48849fSKiran Chandramohan 438dc48849fSKiran Chandramohan return success(); 439dc48849fSKiran Chandramohan } 440dc48849fSKiran Chandramohan }; 441dc48849fSKiran Chandramohan 442df3b9810SValentin Clement /// Lower `fir.box_dims` to a sequence of operations to extract the requested 443df3b9810SValentin Clement /// dimension infomartion from the boxed value. 444df3b9810SValentin Clement /// Result in a triple set of GEPs and loads. 445df3b9810SValentin Clement struct BoxDimsOpConversion : public FIROpConversion<fir::BoxDimsOp> { 446df3b9810SValentin Clement using FIROpConversion::FIROpConversion; 447df3b9810SValentin Clement 448df3b9810SValentin Clement mlir::LogicalResult 449df3b9810SValentin Clement matchAndRewrite(fir::BoxDimsOp boxdims, OpAdaptor adaptor, 450df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 451df3b9810SValentin Clement SmallVector<mlir::Type, 3> resultTypes = { 452df3b9810SValentin Clement convertType(boxdims.getResult(0).getType()), 453df3b9810SValentin Clement convertType(boxdims.getResult(1).getType()), 454df3b9810SValentin Clement convertType(boxdims.getResult(2).getType()), 455df3b9810SValentin Clement }; 456df3b9810SValentin Clement auto results = 457df3b9810SValentin Clement getDimsFromBox(boxdims.getLoc(), resultTypes, adaptor.getOperands()[0], 458df3b9810SValentin Clement adaptor.getOperands()[1], rewriter); 459df3b9810SValentin Clement rewriter.replaceOp(boxdims, results); 460df3b9810SValentin Clement return success(); 461df3b9810SValentin Clement } 462df3b9810SValentin Clement }; 463df3b9810SValentin Clement 464df3b9810SValentin Clement /// Lower `fir.box_elesize` to a sequence of operations ro extract the size of 465df3b9810SValentin Clement /// an element in the boxed value. 466df3b9810SValentin Clement struct BoxEleSizeOpConversion : public FIROpConversion<fir::BoxEleSizeOp> { 467df3b9810SValentin Clement using FIROpConversion::FIROpConversion; 468df3b9810SValentin Clement 469df3b9810SValentin Clement mlir::LogicalResult 470df3b9810SValentin Clement matchAndRewrite(fir::BoxEleSizeOp boxelesz, OpAdaptor adaptor, 471df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 472df3b9810SValentin Clement mlir::Value a = adaptor.getOperands()[0]; 473df3b9810SValentin Clement auto loc = boxelesz.getLoc(); 474df3b9810SValentin Clement auto ty = convertType(boxelesz.getType()); 475b6e44ecdSValentin Clement auto elemSize = getValueFromBox(loc, a, ty, rewriter, kElemLenPosInBox); 476b6e44ecdSValentin Clement rewriter.replaceOp(boxelesz, elemSize); 477b6e44ecdSValentin Clement return success(); 478b6e44ecdSValentin Clement } 479b6e44ecdSValentin Clement }; 480b6e44ecdSValentin Clement 481b6e44ecdSValentin Clement /// Lower `fir.box_isalloc` to a sequence of operations to determine if the 482b6e44ecdSValentin Clement /// boxed value was from an ALLOCATABLE entity. 483b6e44ecdSValentin Clement struct BoxIsAllocOpConversion : public FIROpConversion<fir::BoxIsAllocOp> { 484b6e44ecdSValentin Clement using FIROpConversion::FIROpConversion; 485b6e44ecdSValentin Clement 486b6e44ecdSValentin Clement mlir::LogicalResult 487b6e44ecdSValentin Clement matchAndRewrite(fir::BoxIsAllocOp boxisalloc, OpAdaptor adaptor, 488b6e44ecdSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 489b6e44ecdSValentin Clement mlir::Value box = adaptor.getOperands()[0]; 490b6e44ecdSValentin Clement auto loc = boxisalloc.getLoc(); 491b6e44ecdSValentin Clement mlir::Value check = 492b6e44ecdSValentin Clement genBoxAttributeCheck(loc, box, rewriter, kAttrAllocatable); 493b6e44ecdSValentin Clement rewriter.replaceOp(boxisalloc, check); 494b6e44ecdSValentin Clement return success(); 495b6e44ecdSValentin Clement } 496b6e44ecdSValentin Clement }; 497b6e44ecdSValentin Clement 498b6e44ecdSValentin Clement /// Lower `fir.box_isarray` to a sequence of operations to determine if the 499b6e44ecdSValentin Clement /// boxed is an array. 500b6e44ecdSValentin Clement struct BoxIsArrayOpConversion : public FIROpConversion<fir::BoxIsArrayOp> { 501b6e44ecdSValentin Clement using FIROpConversion::FIROpConversion; 502b6e44ecdSValentin Clement 503b6e44ecdSValentin Clement mlir::LogicalResult 504b6e44ecdSValentin Clement matchAndRewrite(fir::BoxIsArrayOp boxisarray, OpAdaptor adaptor, 505b6e44ecdSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 506b6e44ecdSValentin Clement mlir::Value a = adaptor.getOperands()[0]; 507b6e44ecdSValentin Clement auto loc = boxisarray.getLoc(); 508b6e44ecdSValentin Clement auto rank = 509b6e44ecdSValentin Clement getValueFromBox(loc, a, rewriter.getI32Type(), rewriter, kRankPosInBox); 510b6e44ecdSValentin Clement auto c0 = genConstantOffset(loc, rewriter, 0); 511b6e44ecdSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::ICmpOp>( 512b6e44ecdSValentin Clement boxisarray, mlir::LLVM::ICmpPredicate::ne, rank, c0); 513b6e44ecdSValentin Clement return success(); 514b6e44ecdSValentin Clement } 515b6e44ecdSValentin Clement }; 516b6e44ecdSValentin Clement 517b6e44ecdSValentin Clement /// Lower `fir.box_isptr` to a sequence of operations to determined if the 518b6e44ecdSValentin Clement /// boxed value was from a POINTER entity. 519b6e44ecdSValentin Clement struct BoxIsPtrOpConversion : public FIROpConversion<fir::BoxIsPtrOp> { 520b6e44ecdSValentin Clement using FIROpConversion::FIROpConversion; 521b6e44ecdSValentin Clement 522b6e44ecdSValentin Clement mlir::LogicalResult 523b6e44ecdSValentin Clement matchAndRewrite(fir::BoxIsPtrOp boxisptr, OpAdaptor adaptor, 524b6e44ecdSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 525b6e44ecdSValentin Clement mlir::Value box = adaptor.getOperands()[0]; 526b6e44ecdSValentin Clement auto loc = boxisptr.getLoc(); 527b6e44ecdSValentin Clement mlir::Value check = genBoxAttributeCheck(loc, box, rewriter, kAttrPointer); 528b6e44ecdSValentin Clement rewriter.replaceOp(boxisptr, check); 529df3b9810SValentin Clement return success(); 530df3b9810SValentin Clement } 531df3b9810SValentin Clement }; 532df3b9810SValentin Clement 533df3b9810SValentin Clement /// Lower `fir.box_rank` to the sequence of operation to extract the rank from 534df3b9810SValentin Clement /// the box. 535df3b9810SValentin Clement struct BoxRankOpConversion : public FIROpConversion<fir::BoxRankOp> { 536df3b9810SValentin Clement using FIROpConversion::FIROpConversion; 537df3b9810SValentin Clement 538df3b9810SValentin Clement mlir::LogicalResult 539df3b9810SValentin Clement matchAndRewrite(fir::BoxRankOp boxrank, OpAdaptor adaptor, 540df3b9810SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 541df3b9810SValentin Clement mlir::Value a = adaptor.getOperands()[0]; 542df3b9810SValentin Clement auto loc = boxrank.getLoc(); 543df3b9810SValentin Clement mlir::Type ty = convertType(boxrank.getType()); 544b6e44ecdSValentin Clement auto result = getValueFromBox(loc, a, ty, rewriter, kRankPosInBox); 545df3b9810SValentin Clement rewriter.replaceOp(boxrank, result); 546df3b9810SValentin Clement return success(); 547df3b9810SValentin Clement } 548df3b9810SValentin Clement }; 549df3b9810SValentin Clement 550cc505c0bSKiran Chandramohan /// Lower `fir.boxproc_host` operation. Extracts the host pointer from the 551cc505c0bSKiran Chandramohan /// boxproc. 552cc505c0bSKiran Chandramohan /// TODO: Part of supporting Fortran 2003 procedure pointers. 553cc505c0bSKiran Chandramohan struct BoxProcHostOpConversion : public FIROpConversion<fir::BoxProcHostOp> { 554cc505c0bSKiran Chandramohan using FIROpConversion::FIROpConversion; 555cc505c0bSKiran Chandramohan 556cc505c0bSKiran Chandramohan mlir::LogicalResult 557cc505c0bSKiran Chandramohan matchAndRewrite(fir::BoxProcHostOp boxprochost, OpAdaptor adaptor, 558cc505c0bSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 5597ce8c6fcSKiran Chandramohan TODO(boxprochost.getLoc(), "fir.boxproc_host codegen"); 5607ce8c6fcSKiran Chandramohan return failure(); 561cc505c0bSKiran Chandramohan } 562cc505c0bSKiran Chandramohan }; 563cc505c0bSKiran Chandramohan 564e38ef2ffSValentin Clement /// Lower `fir.box_tdesc` to the sequence of operations to extract the type 565e38ef2ffSValentin Clement /// descriptor from the box. 566e38ef2ffSValentin Clement struct BoxTypeDescOpConversion : public FIROpConversion<fir::BoxTypeDescOp> { 567e38ef2ffSValentin Clement using FIROpConversion::FIROpConversion; 568e38ef2ffSValentin Clement 569e38ef2ffSValentin Clement mlir::LogicalResult 570e38ef2ffSValentin Clement matchAndRewrite(fir::BoxTypeDescOp boxtypedesc, OpAdaptor adaptor, 571e38ef2ffSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 572e38ef2ffSValentin Clement mlir::Value box = adaptor.getOperands()[0]; 573e38ef2ffSValentin Clement auto loc = boxtypedesc.getLoc(); 574e38ef2ffSValentin Clement mlir::Type typeTy = 575e38ef2ffSValentin Clement fir::getDescFieldTypeModel<kTypePosInBox>()(boxtypedesc.getContext()); 576e38ef2ffSValentin Clement auto result = getValueFromBox(loc, box, typeTy, rewriter, kTypePosInBox); 577e38ef2ffSValentin Clement auto typePtrTy = mlir::LLVM::LLVMPointerType::get(typeTy); 578e38ef2ffSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::IntToPtrOp>(boxtypedesc, typePtrTy, 579e38ef2ffSValentin Clement result); 580e38ef2ffSValentin Clement return success(); 581e38ef2ffSValentin Clement } 582e38ef2ffSValentin Clement }; 583e38ef2ffSValentin Clement 584dc48849fSKiran Chandramohan /// Lower `fir.string_lit` to LLVM IR dialect operation. 585dc48849fSKiran Chandramohan struct StringLitOpConversion : public FIROpConversion<fir::StringLitOp> { 586dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 587dc48849fSKiran Chandramohan 588dc48849fSKiran Chandramohan mlir::LogicalResult 589dc48849fSKiran Chandramohan matchAndRewrite(fir::StringLitOp constop, OpAdaptor adaptor, 590dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 591dc48849fSKiran Chandramohan auto ty = convertType(constop.getType()); 592dc48849fSKiran Chandramohan auto attr = constop.getValue(); 593dc48849fSKiran Chandramohan if (attr.isa<mlir::StringAttr>()) { 594dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::ConstantOp>(constop, ty, attr); 595dc48849fSKiran Chandramohan return success(); 596dc48849fSKiran Chandramohan } 597dc48849fSKiran Chandramohan 598dc48849fSKiran Chandramohan auto arr = attr.cast<mlir::ArrayAttr>(); 599dc48849fSKiran Chandramohan auto charTy = constop.getType().cast<fir::CharacterType>(); 600dc48849fSKiran Chandramohan unsigned bits = lowerTy().characterBitsize(charTy); 601dc48849fSKiran Chandramohan mlir::Type intTy = rewriter.getIntegerType(bits); 602dc48849fSKiran Chandramohan auto attrs = llvm::map_range( 603dc48849fSKiran Chandramohan arr.getValue(), [intTy, bits](mlir::Attribute attr) -> Attribute { 604dc48849fSKiran Chandramohan return mlir::IntegerAttr::get( 605dc48849fSKiran Chandramohan intTy, 606dc48849fSKiran Chandramohan attr.cast<mlir::IntegerAttr>().getValue().sextOrTrunc(bits)); 607dc48849fSKiran Chandramohan }); 608dc48849fSKiran Chandramohan mlir::Type vecType = mlir::VectorType::get(arr.size(), intTy); 609dc48849fSKiran Chandramohan auto denseAttr = mlir::DenseElementsAttr::get( 610dc48849fSKiran Chandramohan vecType.cast<mlir::ShapedType>(), llvm::to_vector<8>(attrs)); 611dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::arith::ConstantOp>(constop, ty, 612dc48849fSKiran Chandramohan denseAttr); 613dc48849fSKiran Chandramohan return success(); 614dc48849fSKiran Chandramohan } 615dc48849fSKiran Chandramohan }; 616dc48849fSKiran Chandramohan 617ddd11b9aSAndrzej Warzynski // `fir.call` -> `llvm.call` 618ddd11b9aSAndrzej Warzynski struct CallOpConversion : public FIROpConversion<fir::CallOp> { 619ddd11b9aSAndrzej Warzynski using FIROpConversion::FIROpConversion; 620ddd11b9aSAndrzej Warzynski 621ddd11b9aSAndrzej Warzynski mlir::LogicalResult 622ddd11b9aSAndrzej Warzynski matchAndRewrite(fir::CallOp call, OpAdaptor adaptor, 623ddd11b9aSAndrzej Warzynski mlir::ConversionPatternRewriter &rewriter) const override { 624ddd11b9aSAndrzej Warzynski SmallVector<mlir::Type> resultTys; 625ddd11b9aSAndrzej Warzynski for (auto r : call.getResults()) 626ddd11b9aSAndrzej Warzynski resultTys.push_back(convertType(r.getType())); 627ddd11b9aSAndrzej Warzynski rewriter.replaceOpWithNewOp<mlir::LLVM::CallOp>( 628ddd11b9aSAndrzej Warzynski call, resultTys, adaptor.getOperands(), call->getAttrs()); 629ddd11b9aSAndrzej Warzynski return success(); 630ddd11b9aSAndrzej Warzynski } 631ddd11b9aSAndrzej Warzynski }; 632c2acd453SAlexisPerry } // namespace 633ddd11b9aSAndrzej Warzynski 634092cee5fSValentin Clement static mlir::Type getComplexEleTy(mlir::Type complex) { 635092cee5fSValentin Clement if (auto cc = complex.dyn_cast<mlir::ComplexType>()) 636092cee5fSValentin Clement return cc.getElementType(); 637092cee5fSValentin Clement return complex.cast<fir::ComplexType>().getElementType(); 638092cee5fSValentin Clement } 639092cee5fSValentin Clement 640c2acd453SAlexisPerry namespace { 641f1dfc027SDiana Picus /// Compare complex values 642f1dfc027SDiana Picus /// 643f1dfc027SDiana Picus /// Per 10.1, the only comparisons available are .EQ. (oeq) and .NE. (une). 644f1dfc027SDiana Picus /// 645f1dfc027SDiana Picus /// For completeness, all other comparison are done on the real component only. 646f1dfc027SDiana Picus struct CmpcOpConversion : public FIROpConversion<fir::CmpcOp> { 647f1dfc027SDiana Picus using FIROpConversion::FIROpConversion; 648f1dfc027SDiana Picus 649f1dfc027SDiana Picus mlir::LogicalResult 650f1dfc027SDiana Picus matchAndRewrite(fir::CmpcOp cmp, OpAdaptor adaptor, 651f1dfc027SDiana Picus mlir::ConversionPatternRewriter &rewriter) const override { 652f1dfc027SDiana Picus mlir::ValueRange operands = adaptor.getOperands(); 653f1dfc027SDiana Picus mlir::MLIRContext *ctxt = cmp.getContext(); 654149ad3d5SShraiysh Vaishay mlir::Type eleTy = convertType(getComplexEleTy(cmp.getLhs().getType())); 655f1dfc027SDiana Picus mlir::Type resTy = convertType(cmp.getType()); 656f1dfc027SDiana Picus mlir::Location loc = cmp.getLoc(); 657f1dfc027SDiana Picus auto pos0 = mlir::ArrayAttr::get(ctxt, rewriter.getI32IntegerAttr(0)); 658f1dfc027SDiana Picus SmallVector<mlir::Value, 2> rp{rewriter.create<mlir::LLVM::ExtractValueOp>( 659f1dfc027SDiana Picus loc, eleTy, operands[0], pos0), 660f1dfc027SDiana Picus rewriter.create<mlir::LLVM::ExtractValueOp>( 661f1dfc027SDiana Picus loc, eleTy, operands[1], pos0)}; 662f1dfc027SDiana Picus auto rcp = 663f1dfc027SDiana Picus rewriter.create<mlir::LLVM::FCmpOp>(loc, resTy, rp, cmp->getAttrs()); 664f1dfc027SDiana Picus auto pos1 = mlir::ArrayAttr::get(ctxt, rewriter.getI32IntegerAttr(1)); 665f1dfc027SDiana Picus SmallVector<mlir::Value, 2> ip{rewriter.create<mlir::LLVM::ExtractValueOp>( 666f1dfc027SDiana Picus loc, eleTy, operands[0], pos1), 667f1dfc027SDiana Picus rewriter.create<mlir::LLVM::ExtractValueOp>( 668f1dfc027SDiana Picus loc, eleTy, operands[1], pos1)}; 669f1dfc027SDiana Picus auto icp = 670f1dfc027SDiana Picus rewriter.create<mlir::LLVM::FCmpOp>(loc, resTy, ip, cmp->getAttrs()); 671f1dfc027SDiana Picus SmallVector<mlir::Value, 2> cp{rcp, icp}; 672f1dfc027SDiana Picus switch (cmp.getPredicate()) { 673f1dfc027SDiana Picus case mlir::arith::CmpFPredicate::OEQ: // .EQ. 674f1dfc027SDiana Picus rewriter.replaceOpWithNewOp<mlir::LLVM::AndOp>(cmp, resTy, cp); 675f1dfc027SDiana Picus break; 676f1dfc027SDiana Picus case mlir::arith::CmpFPredicate::UNE: // .NE. 677f1dfc027SDiana Picus rewriter.replaceOpWithNewOp<mlir::LLVM::OrOp>(cmp, resTy, cp); 678f1dfc027SDiana Picus break; 679f1dfc027SDiana Picus default: 680f1dfc027SDiana Picus rewriter.replaceOp(cmp, rcp.getResult()); 681f1dfc027SDiana Picus break; 682f1dfc027SDiana Picus } 683f1dfc027SDiana Picus return success(); 684f1dfc027SDiana Picus } 685f1dfc027SDiana Picus }; 686f1dfc027SDiana Picus 687e81d73edSDiana Picus /// Lower complex constants 688e81d73edSDiana Picus struct ConstcOpConversion : public FIROpConversion<fir::ConstcOp> { 689e81d73edSDiana Picus using FIROpConversion::FIROpConversion; 690e81d73edSDiana Picus 691e81d73edSDiana Picus mlir::LogicalResult 692e81d73edSDiana Picus matchAndRewrite(fir::ConstcOp conc, OpAdaptor, 693e81d73edSDiana Picus mlir::ConversionPatternRewriter &rewriter) const override { 694e81d73edSDiana Picus mlir::Location loc = conc.getLoc(); 695e81d73edSDiana Picus mlir::MLIRContext *ctx = conc.getContext(); 696e81d73edSDiana Picus mlir::Type ty = convertType(conc.getType()); 697e81d73edSDiana Picus mlir::Type ety = convertType(getComplexEleTy(conc.getType())); 698e81d73edSDiana Picus auto realFloatAttr = mlir::FloatAttr::get(ety, getValue(conc.getReal())); 699e81d73edSDiana Picus auto realPart = 700e81d73edSDiana Picus rewriter.create<mlir::LLVM::ConstantOp>(loc, ety, realFloatAttr); 701e81d73edSDiana Picus auto imFloatAttr = mlir::FloatAttr::get(ety, getValue(conc.getImaginary())); 702e81d73edSDiana Picus auto imPart = 703e81d73edSDiana Picus rewriter.create<mlir::LLVM::ConstantOp>(loc, ety, imFloatAttr); 704e81d73edSDiana Picus auto realIndex = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 705e81d73edSDiana Picus auto imIndex = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(1)); 706e81d73edSDiana Picus auto undef = rewriter.create<mlir::LLVM::UndefOp>(loc, ty); 707e81d73edSDiana Picus auto setReal = rewriter.create<mlir::LLVM::InsertValueOp>( 708e81d73edSDiana Picus loc, ty, undef, realPart, realIndex); 709e81d73edSDiana Picus rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>(conc, ty, setReal, 710e81d73edSDiana Picus imPart, imIndex); 711e81d73edSDiana Picus return success(); 712e81d73edSDiana Picus } 713e81d73edSDiana Picus 714e81d73edSDiana Picus inline APFloat getValue(mlir::Attribute attr) const { 715e81d73edSDiana Picus return attr.cast<fir::RealAttr>().getValue(); 716e81d73edSDiana Picus } 717e81d73edSDiana Picus }; 718e81d73edSDiana Picus 719092cee5fSValentin Clement /// convert value of from-type to value of to-type 720092cee5fSValentin Clement struct ConvertOpConversion : public FIROpConversion<fir::ConvertOp> { 721092cee5fSValentin Clement using FIROpConversion::FIROpConversion; 722092cee5fSValentin Clement 723092cee5fSValentin Clement static bool isFloatingPointTy(mlir::Type ty) { 724092cee5fSValentin Clement return ty.isa<mlir::FloatType>(); 725092cee5fSValentin Clement } 726092cee5fSValentin Clement 727092cee5fSValentin Clement mlir::LogicalResult 728092cee5fSValentin Clement matchAndRewrite(fir::ConvertOp convert, OpAdaptor adaptor, 729092cee5fSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 730*3b7ec85aSJean Perier auto fromFirTy = convert.getValue().getType(); 731*3b7ec85aSJean Perier auto toFirTy = convert.getRes().getType(); 732*3b7ec85aSJean Perier auto fromTy = convertType(fromFirTy); 733*3b7ec85aSJean Perier auto toTy = convertType(toFirTy); 734092cee5fSValentin Clement mlir::Value op0 = adaptor.getOperands()[0]; 735092cee5fSValentin Clement if (fromTy == toTy) { 736092cee5fSValentin Clement rewriter.replaceOp(convert, op0); 737092cee5fSValentin Clement return success(); 738092cee5fSValentin Clement } 739092cee5fSValentin Clement auto loc = convert.getLoc(); 740092cee5fSValentin Clement auto convertFpToFp = [&](mlir::Value val, unsigned fromBits, 741092cee5fSValentin Clement unsigned toBits, mlir::Type toTy) -> mlir::Value { 742092cee5fSValentin Clement if (fromBits == toBits) { 743092cee5fSValentin Clement // TODO: Converting between two floating-point representations with the 744092cee5fSValentin Clement // same bitwidth is not allowed for now. 745092cee5fSValentin Clement mlir::emitError(loc, 746092cee5fSValentin Clement "cannot implicitly convert between two floating-point " 747092cee5fSValentin Clement "representations of the same bitwidth"); 748092cee5fSValentin Clement return {}; 749092cee5fSValentin Clement } 750092cee5fSValentin Clement if (fromBits > toBits) 751092cee5fSValentin Clement return rewriter.create<mlir::LLVM::FPTruncOp>(loc, toTy, val); 752092cee5fSValentin Clement return rewriter.create<mlir::LLVM::FPExtOp>(loc, toTy, val); 753092cee5fSValentin Clement }; 754092cee5fSValentin Clement // Complex to complex conversion. 755*3b7ec85aSJean Perier if (fir::isa_complex(fromFirTy) && fir::isa_complex(toFirTy)) { 756092cee5fSValentin Clement // Special case: handle the conversion of a complex such that both the 757092cee5fSValentin Clement // real and imaginary parts are converted together. 758092cee5fSValentin Clement auto zero = mlir::ArrayAttr::get(convert.getContext(), 759092cee5fSValentin Clement rewriter.getI32IntegerAttr(0)); 760092cee5fSValentin Clement auto one = mlir::ArrayAttr::get(convert.getContext(), 761092cee5fSValentin Clement rewriter.getI32IntegerAttr(1)); 762149ad3d5SShraiysh Vaishay auto ty = convertType(getComplexEleTy(convert.getValue().getType())); 763092cee5fSValentin Clement auto rp = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, ty, op0, zero); 764092cee5fSValentin Clement auto ip = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, ty, op0, one); 765149ad3d5SShraiysh Vaishay auto nt = convertType(getComplexEleTy(convert.getRes().getType())); 766092cee5fSValentin Clement auto fromBits = mlir::LLVM::getPrimitiveTypeSizeInBits(ty); 767092cee5fSValentin Clement auto toBits = mlir::LLVM::getPrimitiveTypeSizeInBits(nt); 768092cee5fSValentin Clement auto rc = convertFpToFp(rp, fromBits, toBits, nt); 769092cee5fSValentin Clement auto ic = convertFpToFp(ip, fromBits, toBits, nt); 770092cee5fSValentin Clement auto un = rewriter.create<mlir::LLVM::UndefOp>(loc, toTy); 771092cee5fSValentin Clement auto i1 = 772092cee5fSValentin Clement rewriter.create<mlir::LLVM::InsertValueOp>(loc, toTy, un, rc, zero); 773092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>(convert, toTy, i1, 774092cee5fSValentin Clement ic, one); 775092cee5fSValentin Clement return mlir::success(); 776092cee5fSValentin Clement } 777*3b7ec85aSJean Perier 778*3b7ec85aSJean Perier // Follow UNIX F77 convention for logicals: 779*3b7ec85aSJean Perier // 1. underlying integer is not zero => logical is .TRUE. 780*3b7ec85aSJean Perier // 2. logical is .TRUE. => set underlying integer to 1. 781*3b7ec85aSJean Perier auto i1Type = mlir::IntegerType::get(convert.getContext(), 1); 782*3b7ec85aSJean Perier if (fromFirTy.isa<fir::LogicalType>() && toFirTy == i1Type) { 783*3b7ec85aSJean Perier mlir::Value zero = genConstantIndex(loc, fromTy, rewriter, 0); 784*3b7ec85aSJean Perier rewriter.replaceOpWithNewOp<mlir::LLVM::ICmpOp>( 785*3b7ec85aSJean Perier convert, mlir::LLVM::ICmpPredicate::ne, op0, zero); 786*3b7ec85aSJean Perier return mlir::success(); 787*3b7ec85aSJean Perier } 788*3b7ec85aSJean Perier if (fromFirTy == i1Type && toFirTy.isa<fir::LogicalType>()) { 789*3b7ec85aSJean Perier rewriter.replaceOpWithNewOp<mlir::LLVM::ZExtOp>(convert, toTy, op0); 790*3b7ec85aSJean Perier return mlir::success(); 791*3b7ec85aSJean Perier } 792*3b7ec85aSJean Perier 793092cee5fSValentin Clement // Floating point to floating point conversion. 794092cee5fSValentin Clement if (isFloatingPointTy(fromTy)) { 795092cee5fSValentin Clement if (isFloatingPointTy(toTy)) { 796092cee5fSValentin Clement auto fromBits = mlir::LLVM::getPrimitiveTypeSizeInBits(fromTy); 797092cee5fSValentin Clement auto toBits = mlir::LLVM::getPrimitiveTypeSizeInBits(toTy); 798092cee5fSValentin Clement auto v = convertFpToFp(op0, fromBits, toBits, toTy); 799092cee5fSValentin Clement rewriter.replaceOp(convert, v); 800092cee5fSValentin Clement return mlir::success(); 801092cee5fSValentin Clement } 802092cee5fSValentin Clement if (toTy.isa<mlir::IntegerType>()) { 803092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::FPToSIOp>(convert, toTy, op0); 804092cee5fSValentin Clement return mlir::success(); 805092cee5fSValentin Clement } 806092cee5fSValentin Clement } else if (fromTy.isa<mlir::IntegerType>()) { 807092cee5fSValentin Clement // Integer to integer conversion. 808092cee5fSValentin Clement if (toTy.isa<mlir::IntegerType>()) { 809092cee5fSValentin Clement auto fromBits = mlir::LLVM::getPrimitiveTypeSizeInBits(fromTy); 810092cee5fSValentin Clement auto toBits = mlir::LLVM::getPrimitiveTypeSizeInBits(toTy); 811092cee5fSValentin Clement assert(fromBits != toBits); 812092cee5fSValentin Clement if (fromBits > toBits) { 813092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::TruncOp>(convert, toTy, op0); 814092cee5fSValentin Clement return mlir::success(); 815092cee5fSValentin Clement } 816092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::SExtOp>(convert, toTy, op0); 817092cee5fSValentin Clement return mlir::success(); 818092cee5fSValentin Clement } 819092cee5fSValentin Clement // Integer to floating point conversion. 820092cee5fSValentin Clement if (isFloatingPointTy(toTy)) { 821092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::SIToFPOp>(convert, toTy, op0); 822092cee5fSValentin Clement return mlir::success(); 823092cee5fSValentin Clement } 824092cee5fSValentin Clement // Integer to pointer conversion. 825092cee5fSValentin Clement if (toTy.isa<mlir::LLVM::LLVMPointerType>()) { 826092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::IntToPtrOp>(convert, toTy, op0); 827092cee5fSValentin Clement return mlir::success(); 828092cee5fSValentin Clement } 829092cee5fSValentin Clement } else if (fromTy.isa<mlir::LLVM::LLVMPointerType>()) { 830092cee5fSValentin Clement // Pointer to integer conversion. 831092cee5fSValentin Clement if (toTy.isa<mlir::IntegerType>()) { 832092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::PtrToIntOp>(convert, toTy, op0); 833092cee5fSValentin Clement return mlir::success(); 834092cee5fSValentin Clement } 835092cee5fSValentin Clement // Pointer to pointer conversion. 836092cee5fSValentin Clement if (toTy.isa<mlir::LLVM::LLVMPointerType>()) { 837092cee5fSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::BitcastOp>(convert, toTy, op0); 838092cee5fSValentin Clement return mlir::success(); 839092cee5fSValentin Clement } 840092cee5fSValentin Clement } 841092cee5fSValentin Clement return emitError(loc) << "cannot convert " << fromTy << " to " << toTy; 842092cee5fSValentin Clement } 843092cee5fSValentin Clement }; 844092cee5fSValentin Clement 8459534e361SValentin Clement /// Lower `fir.dispatch` operation. A virtual call to a method in a dispatch 8469534e361SValentin Clement /// table. 8479534e361SValentin Clement struct DispatchOpConversion : public FIROpConversion<fir::DispatchOp> { 8489534e361SValentin Clement using FIROpConversion::FIROpConversion; 8499534e361SValentin Clement 8509534e361SValentin Clement mlir::LogicalResult 8519534e361SValentin Clement matchAndRewrite(fir::DispatchOp dispatch, OpAdaptor adaptor, 8529534e361SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 8537ce8c6fcSKiran Chandramohan TODO(dispatch.getLoc(), "fir.dispatch codegen"); 8547ce8c6fcSKiran Chandramohan return failure(); 8559534e361SValentin Clement } 8569534e361SValentin Clement }; 8579534e361SValentin Clement 8589534e361SValentin Clement /// Lower `fir.dispatch_table` operation. The dispatch table for a Fortran 8599534e361SValentin Clement /// derived type. 8609534e361SValentin Clement struct DispatchTableOpConversion 8619534e361SValentin Clement : public FIROpConversion<fir::DispatchTableOp> { 8629534e361SValentin Clement using FIROpConversion::FIROpConversion; 8639534e361SValentin Clement 8649534e361SValentin Clement mlir::LogicalResult 8659534e361SValentin Clement matchAndRewrite(fir::DispatchTableOp dispTab, OpAdaptor adaptor, 8669534e361SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 8677ce8c6fcSKiran Chandramohan TODO(dispTab.getLoc(), "fir.dispatch_table codegen"); 8687ce8c6fcSKiran Chandramohan return failure(); 8699534e361SValentin Clement } 8709534e361SValentin Clement }; 8719534e361SValentin Clement 8729534e361SValentin Clement /// Lower `fir.dt_entry` operation. An entry in a dispatch table; binds a 8739534e361SValentin Clement /// method-name to a function. 8749534e361SValentin Clement struct DTEntryOpConversion : public FIROpConversion<fir::DTEntryOp> { 8759534e361SValentin Clement using FIROpConversion::FIROpConversion; 8769534e361SValentin Clement 8779534e361SValentin Clement mlir::LogicalResult 8789534e361SValentin Clement matchAndRewrite(fir::DTEntryOp dtEnt, OpAdaptor adaptor, 8799534e361SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 8807ce8c6fcSKiran Chandramohan TODO(dtEnt.getLoc(), "fir.dt_entry codegen"); 8817ce8c6fcSKiran Chandramohan return failure(); 8829534e361SValentin Clement } 8839534e361SValentin Clement }; 8849534e361SValentin Clement 885677df8c7SValentin Clement /// Lower `fir.global_len` operation. 886677df8c7SValentin Clement struct GlobalLenOpConversion : public FIROpConversion<fir::GlobalLenOp> { 887677df8c7SValentin Clement using FIROpConversion::FIROpConversion; 888677df8c7SValentin Clement 889677df8c7SValentin Clement mlir::LogicalResult 890677df8c7SValentin Clement matchAndRewrite(fir::GlobalLenOp globalLen, OpAdaptor adaptor, 891677df8c7SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 8927ce8c6fcSKiran Chandramohan TODO(globalLen.getLoc(), "fir.global_len codegen"); 8937ce8c6fcSKiran Chandramohan return failure(); 894677df8c7SValentin Clement } 895677df8c7SValentin Clement }; 896677df8c7SValentin Clement 897cdc476abSDiana Picus /// Lower fir.len_param_index 898cdc476abSDiana Picus struct LenParamIndexOpConversion 899cdc476abSDiana Picus : public FIROpConversion<fir::LenParamIndexOp> { 900cdc476abSDiana Picus using FIROpConversion::FIROpConversion; 901cdc476abSDiana Picus 902cdc476abSDiana Picus // FIXME: this should be specialized by the runtime target 903cdc476abSDiana Picus mlir::LogicalResult 904cdc476abSDiana Picus matchAndRewrite(fir::LenParamIndexOp lenp, OpAdaptor, 905cdc476abSDiana Picus mlir::ConversionPatternRewriter &rewriter) const override { 9067ce8c6fcSKiran Chandramohan TODO(lenp.getLoc(), "fir.len_param_index codegen"); 907cdc476abSDiana Picus } 908cdc476abSDiana Picus }; 909cdc476abSDiana Picus 910dc48849fSKiran Chandramohan /// Convert `!fir.emboxchar<!fir.char<KIND, ?>, #n>` into a sequence of 911dc48849fSKiran Chandramohan /// instructions that generate `!llvm.struct<(ptr<ik>, i64)>`. The 1st element 912dc48849fSKiran Chandramohan /// in this struct is a pointer. Its type is determined from `KIND`. The 2nd 913dc48849fSKiran Chandramohan /// element is the length of the character buffer (`#n`). 914dc48849fSKiran Chandramohan struct EmboxCharOpConversion : public FIROpConversion<fir::EmboxCharOp> { 91531246187SValentin Clement using FIROpConversion::FIROpConversion; 91631246187SValentin Clement 91731246187SValentin Clement mlir::LogicalResult 918dc48849fSKiran Chandramohan matchAndRewrite(fir::EmboxCharOp emboxChar, OpAdaptor adaptor, 91931246187SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 920dc48849fSKiran Chandramohan mlir::ValueRange operands = adaptor.getOperands(); 921dc48849fSKiran Chandramohan MLIRContext *ctx = emboxChar.getContext(); 922dc48849fSKiran Chandramohan 923dc48849fSKiran Chandramohan mlir::Value charBuffer = operands[0]; 924dc48849fSKiran Chandramohan mlir::Value charBufferLen = operands[1]; 925dc48849fSKiran Chandramohan 926dc48849fSKiran Chandramohan mlir::Location loc = emboxChar.getLoc(); 927dc48849fSKiran Chandramohan mlir::Type llvmStructTy = convertType(emboxChar.getType()); 928dc48849fSKiran Chandramohan auto llvmStruct = rewriter.create<mlir::LLVM::UndefOp>(loc, llvmStructTy); 929dc48849fSKiran Chandramohan 930dc48849fSKiran Chandramohan mlir::Type lenTy = 931dc48849fSKiran Chandramohan llvmStructTy.cast<mlir::LLVM::LLVMStructType>().getBody()[1]; 932dc48849fSKiran Chandramohan mlir::Value lenAfterCast = integerCast(loc, rewriter, lenTy, charBufferLen); 933dc48849fSKiran Chandramohan 934dc48849fSKiran Chandramohan auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 935dc48849fSKiran Chandramohan auto c1 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(1)); 936dc48849fSKiran Chandramohan auto insertBufferOp = rewriter.create<mlir::LLVM::InsertValueOp>( 937dc48849fSKiran Chandramohan loc, llvmStructTy, llvmStruct, charBuffer, c0); 938dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>( 939dc48849fSKiran Chandramohan emboxChar, llvmStructTy, insertBufferOp, lenAfterCast, c1); 940dc48849fSKiran Chandramohan 941dc48849fSKiran Chandramohan return success(); 94231246187SValentin Clement } 94331246187SValentin Clement }; 944c2acd453SAlexisPerry } // namespace 945c2acd453SAlexisPerry 946c2acd453SAlexisPerry /// Return the LLVMFuncOp corresponding to the standard malloc call. 947c2acd453SAlexisPerry static mlir::LLVM::LLVMFuncOp 948c2acd453SAlexisPerry getMalloc(fir::AllocMemOp op, mlir::ConversionPatternRewriter &rewriter) { 949c2acd453SAlexisPerry auto module = op->getParentOfType<mlir::ModuleOp>(); 950c2acd453SAlexisPerry if (mlir::LLVM::LLVMFuncOp mallocFunc = 951c2acd453SAlexisPerry module.lookupSymbol<mlir::LLVM::LLVMFuncOp>("malloc")) 952c2acd453SAlexisPerry return mallocFunc; 953c2acd453SAlexisPerry mlir::OpBuilder moduleBuilder( 954c2acd453SAlexisPerry op->getParentOfType<mlir::ModuleOp>().getBodyRegion()); 955c2acd453SAlexisPerry auto indexType = mlir::IntegerType::get(op.getContext(), 64); 956c2acd453SAlexisPerry return moduleBuilder.create<mlir::LLVM::LLVMFuncOp>( 957c2acd453SAlexisPerry rewriter.getUnknownLoc(), "malloc", 958c2acd453SAlexisPerry mlir::LLVM::LLVMFunctionType::get(getVoidPtrType(op.getContext()), 959c2acd453SAlexisPerry indexType, 960c2acd453SAlexisPerry /*isVarArg=*/false)); 961c2acd453SAlexisPerry } 962c2acd453SAlexisPerry 963c2acd453SAlexisPerry /// Helper function for generating the LLVM IR that computes the size 964c2acd453SAlexisPerry /// in bytes for a derived type. 965c2acd453SAlexisPerry static mlir::Value 966c2acd453SAlexisPerry computeDerivedTypeSize(mlir::Location loc, mlir::Type ptrTy, mlir::Type idxTy, 967c2acd453SAlexisPerry mlir::ConversionPatternRewriter &rewriter) { 968c2acd453SAlexisPerry auto nullPtr = rewriter.create<mlir::LLVM::NullOp>(loc, ptrTy); 969c2acd453SAlexisPerry mlir::Value one = genConstantIndex(loc, idxTy, rewriter, 1); 97030122656SAlex Zinenko llvm::SmallVector<mlir::Value> args{one}; 97130122656SAlex Zinenko auto gep = rewriter.create<mlir::LLVM::GEPOp>(loc, ptrTy, nullPtr, args); 972c2acd453SAlexisPerry return rewriter.create<mlir::LLVM::PtrToIntOp>(loc, idxTy, gep); 973c2acd453SAlexisPerry } 974c2acd453SAlexisPerry 975c2acd453SAlexisPerry namespace { 976c2acd453SAlexisPerry /// Lower a `fir.allocmem` instruction into `llvm.call @malloc` 977c2acd453SAlexisPerry struct AllocMemOpConversion : public FIROpConversion<fir::AllocMemOp> { 978c2acd453SAlexisPerry using FIROpConversion::FIROpConversion; 979c2acd453SAlexisPerry 980c2acd453SAlexisPerry mlir::LogicalResult 981c2acd453SAlexisPerry matchAndRewrite(fir::AllocMemOp heap, OpAdaptor adaptor, 982c2acd453SAlexisPerry mlir::ConversionPatternRewriter &rewriter) const override { 983c45bd4b9SEric Schweitz auto heapTy = heap.getType(); 984c45bd4b9SEric Schweitz auto ty = convertType(heapTy); 985c2acd453SAlexisPerry mlir::LLVM::LLVMFuncOp mallocFunc = getMalloc(heap, rewriter); 986c2acd453SAlexisPerry mlir::Location loc = heap.getLoc(); 987c2acd453SAlexisPerry auto ity = lowerTy().indexType(); 988c45bd4b9SEric Schweitz auto dataTy = fir::unwrapRefType(heapTy); 989c45bd4b9SEric Schweitz if (fir::isRecordWithTypeParameters(fir::unwrapSequenceType(dataTy))) 990c45bd4b9SEric Schweitz TODO(loc, "fir.allocmem codegen of derived type with length parameters"); 991c2acd453SAlexisPerry mlir::Value size = genTypeSizeInBytes(loc, ity, rewriter, ty); 992c45bd4b9SEric Schweitz // !fir.array<NxMx!fir.char<K,?>> sets `size` to the width of !fir.char<K>. 993c45bd4b9SEric Schweitz // So multiply the constant dimensions here. 994c45bd4b9SEric Schweitz if (fir::hasDynamicSize(dataTy)) 995c45bd4b9SEric Schweitz if (auto seqTy = dataTy.dyn_cast<fir::SequenceType>()) 996c45bd4b9SEric Schweitz if (fir::characterWithDynamicLen(seqTy.getEleTy())) { 997c45bd4b9SEric Schweitz fir::SequenceType::Extent arrSize = 1; 998c45bd4b9SEric Schweitz for (auto d : seqTy.getShape()) 999c45bd4b9SEric Schweitz if (d != fir::SequenceType::getUnknownExtent()) 1000c45bd4b9SEric Schweitz arrSize *= d; 1001c45bd4b9SEric Schweitz size = rewriter.create<mlir::LLVM::MulOp>( 1002c45bd4b9SEric Schweitz loc, ity, size, genConstantIndex(loc, ity, rewriter, arrSize)); 1003c45bd4b9SEric Schweitz } 1004c2acd453SAlexisPerry for (mlir::Value opnd : adaptor.getOperands()) 1005c2acd453SAlexisPerry size = rewriter.create<mlir::LLVM::MulOp>( 1006c2acd453SAlexisPerry loc, ity, size, integerCast(loc, rewriter, ity, opnd)); 1007c2acd453SAlexisPerry heap->setAttr("callee", mlir::SymbolRefAttr::get(mallocFunc)); 1008c2acd453SAlexisPerry auto malloc = rewriter.create<mlir::LLVM::CallOp>( 1009c2acd453SAlexisPerry loc, ::getVoidPtrType(heap.getContext()), size, heap->getAttrs()); 1010c2acd453SAlexisPerry rewriter.replaceOpWithNewOp<mlir::LLVM::BitcastOp>(heap, ty, 1011c2acd453SAlexisPerry malloc.getResult(0)); 1012c2acd453SAlexisPerry return success(); 1013c2acd453SAlexisPerry } 1014c2acd453SAlexisPerry 1015c2acd453SAlexisPerry // Compute the (allocation) size of the allocmem type in bytes. 1016c2acd453SAlexisPerry mlir::Value genTypeSizeInBytes(mlir::Location loc, mlir::Type idxTy, 1017c2acd453SAlexisPerry mlir::ConversionPatternRewriter &rewriter, 1018c2acd453SAlexisPerry mlir::Type llTy) const { 1019c2acd453SAlexisPerry // Use the primitive size, if available. 1020c2acd453SAlexisPerry auto ptrTy = llTy.dyn_cast<mlir::LLVM::LLVMPointerType>(); 1021c2acd453SAlexisPerry if (auto size = 1022c2acd453SAlexisPerry mlir::LLVM::getPrimitiveTypeSizeInBits(ptrTy.getElementType())) 1023c2acd453SAlexisPerry return genConstantIndex(loc, idxTy, rewriter, size / 8); 1024c2acd453SAlexisPerry 1025c2acd453SAlexisPerry // Otherwise, generate the GEP trick in LLVM IR to compute the size. 1026c2acd453SAlexisPerry return computeDerivedTypeSize(loc, ptrTy, idxTy, rewriter); 1027c2acd453SAlexisPerry } 1028c2acd453SAlexisPerry }; 1029c2acd453SAlexisPerry } // namespace 1030c2acd453SAlexisPerry 1031c2acd453SAlexisPerry /// Return the LLVMFuncOp corresponding to the standard free call. 1032c2acd453SAlexisPerry static mlir::LLVM::LLVMFuncOp 1033c2acd453SAlexisPerry getFree(fir::FreeMemOp op, mlir::ConversionPatternRewriter &rewriter) { 1034c2acd453SAlexisPerry auto module = op->getParentOfType<mlir::ModuleOp>(); 1035c2acd453SAlexisPerry if (mlir::LLVM::LLVMFuncOp freeFunc = 1036c2acd453SAlexisPerry module.lookupSymbol<mlir::LLVM::LLVMFuncOp>("free")) 1037c2acd453SAlexisPerry return freeFunc; 1038c2acd453SAlexisPerry mlir::OpBuilder moduleBuilder(module.getBodyRegion()); 1039c2acd453SAlexisPerry auto voidType = mlir::LLVM::LLVMVoidType::get(op.getContext()); 1040c2acd453SAlexisPerry return moduleBuilder.create<mlir::LLVM::LLVMFuncOp>( 1041c2acd453SAlexisPerry rewriter.getUnknownLoc(), "free", 1042c2acd453SAlexisPerry mlir::LLVM::LLVMFunctionType::get(voidType, 1043c2acd453SAlexisPerry getVoidPtrType(op.getContext()), 1044c2acd453SAlexisPerry /*isVarArg=*/false)); 1045c2acd453SAlexisPerry } 1046c2acd453SAlexisPerry 1047c2acd453SAlexisPerry namespace { 1048c2acd453SAlexisPerry /// Lower a `fir.freemem` instruction into `llvm.call @free` 1049c2acd453SAlexisPerry struct FreeMemOpConversion : public FIROpConversion<fir::FreeMemOp> { 1050c2acd453SAlexisPerry using FIROpConversion::FIROpConversion; 1051c2acd453SAlexisPerry 1052c2acd453SAlexisPerry mlir::LogicalResult 1053c2acd453SAlexisPerry matchAndRewrite(fir::FreeMemOp freemem, OpAdaptor adaptor, 1054c2acd453SAlexisPerry mlir::ConversionPatternRewriter &rewriter) const override { 1055c2acd453SAlexisPerry mlir::LLVM::LLVMFuncOp freeFunc = getFree(freemem, rewriter); 1056c2acd453SAlexisPerry mlir::Location loc = freemem.getLoc(); 1057c2acd453SAlexisPerry auto bitcast = rewriter.create<mlir::LLVM::BitcastOp>( 1058c2acd453SAlexisPerry freemem.getLoc(), voidPtrTy(), adaptor.getOperands()[0]); 1059c2acd453SAlexisPerry freemem->setAttr("callee", mlir::SymbolRefAttr::get(freeFunc)); 1060c2acd453SAlexisPerry rewriter.create<mlir::LLVM::CallOp>( 1061c2acd453SAlexisPerry loc, mlir::TypeRange{}, mlir::ValueRange{bitcast}, freemem->getAttrs()); 1062c2acd453SAlexisPerry rewriter.eraseOp(freemem); 1063c2acd453SAlexisPerry return success(); 1064c2acd453SAlexisPerry } 1065c2acd453SAlexisPerry }; 1066c2acd453SAlexisPerry } // namespace 1067044d5b5dSValentin Clement 1068dc48849fSKiran Chandramohan namespace {} // namespace 106932e08248SAndrzej Warzynski 1070af6ee580SValentin Clement /// Common base class for embox to descriptor conversion. 1071af6ee580SValentin Clement template <typename OP> 1072af6ee580SValentin Clement struct EmboxCommonConversion : public FIROpConversion<OP> { 1073af6ee580SValentin Clement using FIROpConversion<OP>::FIROpConversion; 1074af6ee580SValentin Clement 1075af6ee580SValentin Clement // Find the LLVMFuncOp in whose entry block the alloca should be inserted. 1076af6ee580SValentin Clement // The order to find the LLVMFuncOp is as follows: 1077af6ee580SValentin Clement // 1. The parent operation of the current block if it is a LLVMFuncOp. 1078af6ee580SValentin Clement // 2. The first ancestor that is a LLVMFuncOp. 1079af6ee580SValentin Clement mlir::LLVM::LLVMFuncOp 1080af6ee580SValentin Clement getFuncForAllocaInsert(mlir::ConversionPatternRewriter &rewriter) const { 1081af6ee580SValentin Clement mlir::Operation *parentOp = rewriter.getInsertionBlock()->getParentOp(); 1082af6ee580SValentin Clement return mlir::isa<mlir::LLVM::LLVMFuncOp>(parentOp) 1083af6ee580SValentin Clement ? mlir::cast<mlir::LLVM::LLVMFuncOp>(parentOp) 1084af6ee580SValentin Clement : parentOp->getParentOfType<mlir::LLVM::LLVMFuncOp>(); 1085af6ee580SValentin Clement } 1086af6ee580SValentin Clement 1087af6ee580SValentin Clement // Generate an alloca of size 1 and type \p toTy. 1088af6ee580SValentin Clement mlir::LLVM::AllocaOp 1089af6ee580SValentin Clement genAllocaWithType(mlir::Location loc, mlir::Type toTy, unsigned alignment, 1090af6ee580SValentin Clement mlir::ConversionPatternRewriter &rewriter) const { 1091af6ee580SValentin Clement auto thisPt = rewriter.saveInsertionPoint(); 1092af6ee580SValentin Clement mlir::LLVM::LLVMFuncOp func = getFuncForAllocaInsert(rewriter); 1093af6ee580SValentin Clement rewriter.setInsertionPointToStart(&func.front()); 1094af6ee580SValentin Clement auto size = this->genI32Constant(loc, rewriter, 1); 1095af6ee580SValentin Clement auto al = rewriter.create<mlir::LLVM::AllocaOp>(loc, toTy, size, alignment); 1096af6ee580SValentin Clement rewriter.restoreInsertionPoint(thisPt); 1097af6ee580SValentin Clement return al; 1098af6ee580SValentin Clement } 1099af6ee580SValentin Clement 1100af6ee580SValentin Clement static int getCFIAttr(fir::BoxType boxTy) { 1101af6ee580SValentin Clement auto eleTy = boxTy.getEleTy(); 1102af6ee580SValentin Clement if (eleTy.isa<fir::PointerType>()) 1103af6ee580SValentin Clement return CFI_attribute_pointer; 1104af6ee580SValentin Clement if (eleTy.isa<fir::HeapType>()) 1105af6ee580SValentin Clement return CFI_attribute_allocatable; 1106af6ee580SValentin Clement return CFI_attribute_other; 1107af6ee580SValentin Clement } 1108af6ee580SValentin Clement 1109af6ee580SValentin Clement static fir::RecordType unwrapIfDerived(fir::BoxType boxTy) { 1110af6ee580SValentin Clement return fir::unwrapSequenceType(fir::dyn_cast_ptrOrBoxEleTy(boxTy)) 1111af6ee580SValentin Clement .template dyn_cast<fir::RecordType>(); 1112af6ee580SValentin Clement } 1113af6ee580SValentin Clement static bool isDerivedTypeWithLenParams(fir::BoxType boxTy) { 1114af6ee580SValentin Clement auto recTy = unwrapIfDerived(boxTy); 1115af6ee580SValentin Clement return recTy && recTy.getNumLenParams() > 0; 1116af6ee580SValentin Clement } 1117af6ee580SValentin Clement static bool isDerivedType(fir::BoxType boxTy) { 1118af6ee580SValentin Clement return unwrapIfDerived(boxTy) != nullptr; 1119af6ee580SValentin Clement } 1120af6ee580SValentin Clement 1121af6ee580SValentin Clement // Get the element size and CFI type code of the boxed value. 1122af6ee580SValentin Clement std::tuple<mlir::Value, mlir::Value> getSizeAndTypeCode( 1123af6ee580SValentin Clement mlir::Location loc, mlir::ConversionPatternRewriter &rewriter, 1124af6ee580SValentin Clement mlir::Type boxEleTy, mlir::ValueRange lenParams = {}) const { 1125af6ee580SValentin Clement auto doInteger = 1126af6ee580SValentin Clement [&](unsigned width) -> std::tuple<mlir::Value, mlir::Value> { 1127af6ee580SValentin Clement int typeCode = fir::integerBitsToTypeCode(width); 1128af6ee580SValentin Clement return {this->genConstantOffset(loc, rewriter, width / 8), 1129af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, typeCode)}; 1130af6ee580SValentin Clement }; 1131af6ee580SValentin Clement auto doLogical = 1132af6ee580SValentin Clement [&](unsigned width) -> std::tuple<mlir::Value, mlir::Value> { 1133af6ee580SValentin Clement int typeCode = fir::logicalBitsToTypeCode(width); 1134af6ee580SValentin Clement return {this->genConstantOffset(loc, rewriter, width / 8), 1135af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, typeCode)}; 1136af6ee580SValentin Clement }; 1137af6ee580SValentin Clement auto doFloat = [&](unsigned width) -> std::tuple<mlir::Value, mlir::Value> { 1138af6ee580SValentin Clement int typeCode = fir::realBitsToTypeCode(width); 1139af6ee580SValentin Clement return {this->genConstantOffset(loc, rewriter, width / 8), 1140af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, typeCode)}; 1141af6ee580SValentin Clement }; 1142af6ee580SValentin Clement auto doComplex = 1143af6ee580SValentin Clement [&](unsigned width) -> std::tuple<mlir::Value, mlir::Value> { 1144af6ee580SValentin Clement auto typeCode = fir::complexBitsToTypeCode(width); 1145af6ee580SValentin Clement return {this->genConstantOffset(loc, rewriter, width / 8 * 2), 1146af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, typeCode)}; 1147af6ee580SValentin Clement }; 1148af6ee580SValentin Clement auto doCharacter = 1149af6ee580SValentin Clement [&](unsigned width, 1150af6ee580SValentin Clement mlir::Value len) -> std::tuple<mlir::Value, mlir::Value> { 1151af6ee580SValentin Clement auto typeCode = fir::characterBitsToTypeCode(width); 1152af6ee580SValentin Clement auto typeCodeVal = this->genConstantOffset(loc, rewriter, typeCode); 1153af6ee580SValentin Clement if (width == 8) 1154af6ee580SValentin Clement return {len, typeCodeVal}; 1155af6ee580SValentin Clement auto byteWidth = this->genConstantOffset(loc, rewriter, width / 8); 1156af6ee580SValentin Clement auto i64Ty = mlir::IntegerType::get(&this->lowerTy().getContext(), 64); 1157af6ee580SValentin Clement auto size = 1158af6ee580SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, i64Ty, byteWidth, len); 1159af6ee580SValentin Clement return {size, typeCodeVal}; 1160af6ee580SValentin Clement }; 1161af6ee580SValentin Clement auto getKindMap = [&]() -> fir::KindMapping & { 1162af6ee580SValentin Clement return this->lowerTy().getKindMap(); 1163af6ee580SValentin Clement }; 1164af6ee580SValentin Clement // Pointer-like types. 1165af6ee580SValentin Clement if (auto eleTy = fir::dyn_cast_ptrEleTy(boxEleTy)) 1166af6ee580SValentin Clement boxEleTy = eleTy; 1167af6ee580SValentin Clement // Integer types. 1168af6ee580SValentin Clement if (fir::isa_integer(boxEleTy)) { 1169af6ee580SValentin Clement if (auto ty = boxEleTy.dyn_cast<mlir::IntegerType>()) 1170af6ee580SValentin Clement return doInteger(ty.getWidth()); 1171af6ee580SValentin Clement auto ty = boxEleTy.cast<fir::IntegerType>(); 1172af6ee580SValentin Clement return doInteger(getKindMap().getIntegerBitsize(ty.getFKind())); 1173af6ee580SValentin Clement } 1174af6ee580SValentin Clement // Floating point types. 1175af6ee580SValentin Clement if (fir::isa_real(boxEleTy)) { 1176af6ee580SValentin Clement if (auto ty = boxEleTy.dyn_cast<mlir::FloatType>()) 1177af6ee580SValentin Clement return doFloat(ty.getWidth()); 1178af6ee580SValentin Clement auto ty = boxEleTy.cast<fir::RealType>(); 1179af6ee580SValentin Clement return doFloat(getKindMap().getRealBitsize(ty.getFKind())); 1180af6ee580SValentin Clement } 1181af6ee580SValentin Clement // Complex types. 1182af6ee580SValentin Clement if (fir::isa_complex(boxEleTy)) { 1183af6ee580SValentin Clement if (auto ty = boxEleTy.dyn_cast<mlir::ComplexType>()) 1184af6ee580SValentin Clement return doComplex( 1185af6ee580SValentin Clement ty.getElementType().cast<mlir::FloatType>().getWidth()); 1186af6ee580SValentin Clement auto ty = boxEleTy.cast<fir::ComplexType>(); 1187af6ee580SValentin Clement return doComplex(getKindMap().getRealBitsize(ty.getFKind())); 1188af6ee580SValentin Clement } 1189af6ee580SValentin Clement // Character types. 1190af6ee580SValentin Clement if (auto ty = boxEleTy.dyn_cast<fir::CharacterType>()) { 1191af6ee580SValentin Clement auto charWidth = getKindMap().getCharacterBitsize(ty.getFKind()); 1192af6ee580SValentin Clement if (ty.getLen() != fir::CharacterType::unknownLen()) { 1193af6ee580SValentin Clement auto len = this->genConstantOffset(loc, rewriter, ty.getLen()); 1194af6ee580SValentin Clement return doCharacter(charWidth, len); 1195af6ee580SValentin Clement } 1196af6ee580SValentin Clement assert(!lenParams.empty()); 1197af6ee580SValentin Clement return doCharacter(charWidth, lenParams.back()); 1198af6ee580SValentin Clement } 1199af6ee580SValentin Clement // Logical type. 1200af6ee580SValentin Clement if (auto ty = boxEleTy.dyn_cast<fir::LogicalType>()) 1201af6ee580SValentin Clement return doLogical(getKindMap().getLogicalBitsize(ty.getFKind())); 1202af6ee580SValentin Clement // Array types. 1203af6ee580SValentin Clement if (auto seqTy = boxEleTy.dyn_cast<fir::SequenceType>()) 1204af6ee580SValentin Clement return getSizeAndTypeCode(loc, rewriter, seqTy.getEleTy(), lenParams); 1205af6ee580SValentin Clement // Derived-type types. 1206af6ee580SValentin Clement if (boxEleTy.isa<fir::RecordType>()) { 1207af6ee580SValentin Clement auto ptrTy = mlir::LLVM::LLVMPointerType::get( 1208af6ee580SValentin Clement this->lowerTy().convertType(boxEleTy)); 1209af6ee580SValentin Clement auto nullPtr = rewriter.create<mlir::LLVM::NullOp>(loc, ptrTy); 1210af6ee580SValentin Clement auto one = 1211af6ee580SValentin Clement genConstantIndex(loc, this->lowerTy().offsetType(), rewriter, 1); 121230122656SAlex Zinenko auto gep = rewriter.create<mlir::LLVM::GEPOp>(loc, ptrTy, nullPtr, 121330122656SAlex Zinenko mlir::ValueRange{one}); 1214af6ee580SValentin Clement auto eleSize = rewriter.create<mlir::LLVM::PtrToIntOp>( 1215af6ee580SValentin Clement loc, this->lowerTy().indexType(), gep); 1216af6ee580SValentin Clement return {eleSize, 1217af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, fir::derivedToTypeCode())}; 1218af6ee580SValentin Clement } 1219af6ee580SValentin Clement // Reference type. 1220af6ee580SValentin Clement if (fir::isa_ref_type(boxEleTy)) { 1221af6ee580SValentin Clement // FIXME: use the target pointer size rather than sizeof(void*) 1222af6ee580SValentin Clement return {this->genConstantOffset(loc, rewriter, sizeof(void *)), 1223af6ee580SValentin Clement this->genConstantOffset(loc, rewriter, CFI_type_cptr)}; 1224af6ee580SValentin Clement } 1225af6ee580SValentin Clement fir::emitFatalError(loc, "unhandled type in fir.box code generation"); 1226af6ee580SValentin Clement } 1227af6ee580SValentin Clement 1228af6ee580SValentin Clement /// Basic pattern to write a field in the descriptor 1229af6ee580SValentin Clement mlir::Value insertField(mlir::ConversionPatternRewriter &rewriter, 1230af6ee580SValentin Clement mlir::Location loc, mlir::Value dest, 1231af6ee580SValentin Clement ArrayRef<unsigned> fldIndexes, mlir::Value value, 1232af6ee580SValentin Clement bool bitcast = false) const { 1233af6ee580SValentin Clement auto boxTy = dest.getType(); 1234af6ee580SValentin Clement auto fldTy = this->getBoxEleTy(boxTy, fldIndexes); 1235af6ee580SValentin Clement if (bitcast) 1236af6ee580SValentin Clement value = rewriter.create<mlir::LLVM::BitcastOp>(loc, fldTy, value); 1237af6ee580SValentin Clement else 1238af6ee580SValentin Clement value = this->integerCast(loc, rewriter, fldTy, value); 1239af6ee580SValentin Clement SmallVector<mlir::Attribute, 2> attrs; 1240af6ee580SValentin Clement for (auto i : fldIndexes) 1241af6ee580SValentin Clement attrs.push_back(rewriter.getI32IntegerAttr(i)); 1242af6ee580SValentin Clement auto indexesAttr = mlir::ArrayAttr::get(rewriter.getContext(), attrs); 1243af6ee580SValentin Clement return rewriter.create<mlir::LLVM::InsertValueOp>(loc, boxTy, dest, value, 1244af6ee580SValentin Clement indexesAttr); 1245af6ee580SValentin Clement } 1246af6ee580SValentin Clement 1247af6ee580SValentin Clement inline mlir::Value 1248af6ee580SValentin Clement insertBaseAddress(mlir::ConversionPatternRewriter &rewriter, 1249af6ee580SValentin Clement mlir::Location loc, mlir::Value dest, 1250af6ee580SValentin Clement mlir::Value base) const { 12511f551032SValentin Clement return insertField(rewriter, loc, dest, {kAddrPosInBox}, base, 12521f551032SValentin Clement /*bitCast=*/true); 12531f551032SValentin Clement } 12541f551032SValentin Clement 12551f551032SValentin Clement inline mlir::Value insertLowerBound(mlir::ConversionPatternRewriter &rewriter, 12561f551032SValentin Clement mlir::Location loc, mlir::Value dest, 12571f551032SValentin Clement unsigned dim, mlir::Value lb) const { 12581f551032SValentin Clement return insertField(rewriter, loc, dest, 12591f551032SValentin Clement {kDimsPosInBox, dim, kDimLowerBoundPos}, lb); 12601f551032SValentin Clement } 12611f551032SValentin Clement 12621f551032SValentin Clement inline mlir::Value insertExtent(mlir::ConversionPatternRewriter &rewriter, 12631f551032SValentin Clement mlir::Location loc, mlir::Value dest, 12641f551032SValentin Clement unsigned dim, mlir::Value extent) const { 12651f551032SValentin Clement return insertField(rewriter, loc, dest, {kDimsPosInBox, dim, kDimExtentPos}, 12661f551032SValentin Clement extent); 12671f551032SValentin Clement } 12681f551032SValentin Clement 12691f551032SValentin Clement inline mlir::Value insertStride(mlir::ConversionPatternRewriter &rewriter, 12701f551032SValentin Clement mlir::Location loc, mlir::Value dest, 12711f551032SValentin Clement unsigned dim, mlir::Value stride) const { 12721f551032SValentin Clement return insertField(rewriter, loc, dest, {kDimsPosInBox, dim, kDimStridePos}, 12731f551032SValentin Clement stride); 1274af6ee580SValentin Clement } 1275af6ee580SValentin Clement 1276af6ee580SValentin Clement /// Get the address of the type descriptor global variable that was created by 1277af6ee580SValentin Clement /// lowering for derived type \p recType. 1278af6ee580SValentin Clement template <typename BOX> 1279af6ee580SValentin Clement mlir::Value 1280af6ee580SValentin Clement getTypeDescriptor(BOX box, mlir::ConversionPatternRewriter &rewriter, 1281af6ee580SValentin Clement mlir::Location loc, fir::RecordType recType) const { 1282013160f6SJean Perier std::string name = 1283013160f6SJean Perier fir::NameUniquer::getTypeDescriptorName(recType.getName()); 1284af6ee580SValentin Clement auto module = box->template getParentOfType<mlir::ModuleOp>(); 1285af6ee580SValentin Clement if (auto global = module.template lookupSymbol<fir::GlobalOp>(name)) { 1286af6ee580SValentin Clement auto ty = mlir::LLVM::LLVMPointerType::get( 1287af6ee580SValentin Clement this->lowerTy().convertType(global.getType())); 1288af6ee580SValentin Clement return rewriter.create<mlir::LLVM::AddressOfOp>(loc, ty, 1289feeee78aSJacques Pienaar global.getSymName()); 1290af6ee580SValentin Clement } 1291af6ee580SValentin Clement if (auto global = 1292af6ee580SValentin Clement module.template lookupSymbol<mlir::LLVM::GlobalOp>(name)) { 1293af6ee580SValentin Clement // The global may have already been translated to LLVM. 1294af6ee580SValentin Clement auto ty = mlir::LLVM::LLVMPointerType::get(global.getType()); 1295af6ee580SValentin Clement return rewriter.create<mlir::LLVM::AddressOfOp>(loc, ty, 1296feeee78aSJacques Pienaar global.getSymName()); 1297af6ee580SValentin Clement } 12987dd7ccd2SJean Perier // Type info derived types do not have type descriptors since they are the 12997dd7ccd2SJean Perier // types defining type descriptors. 1300013160f6SJean Perier if (!this->options.ignoreMissingTypeDescriptors && 1301013160f6SJean Perier !fir::NameUniquer::belongsToModule( 1302013160f6SJean Perier name, Fortran::semantics::typeInfoBuiltinModule)) 1303013160f6SJean Perier fir::emitFatalError( 1304013160f6SJean Perier loc, "runtime derived type info descriptor was not generated"); 13055bde97b1SJean Perier return rewriter.create<mlir::LLVM::NullOp>( 13065bde97b1SJean Perier loc, ::getVoidPtrType(box.getContext())); 13077dd7ccd2SJean Perier } 1308af6ee580SValentin Clement 1309af6ee580SValentin Clement template <typename BOX> 1310af6ee580SValentin Clement std::tuple<fir::BoxType, mlir::Value, mlir::Value> 1311af6ee580SValentin Clement consDescriptorPrefix(BOX box, mlir::ConversionPatternRewriter &rewriter, 1312af6ee580SValentin Clement unsigned rank, mlir::ValueRange lenParams) const { 1313af6ee580SValentin Clement auto loc = box.getLoc(); 1314af6ee580SValentin Clement auto boxTy = box.getType().template dyn_cast<fir::BoxType>(); 1315af6ee580SValentin Clement auto convTy = this->lowerTy().convertBoxType(boxTy, rank); 1316af6ee580SValentin Clement auto llvmBoxPtrTy = convTy.template cast<mlir::LLVM::LLVMPointerType>(); 1317af6ee580SValentin Clement auto llvmBoxTy = llvmBoxPtrTy.getElementType(); 1318af6ee580SValentin Clement mlir::Value descriptor = 1319af6ee580SValentin Clement rewriter.create<mlir::LLVM::UndefOp>(loc, llvmBoxTy); 1320af6ee580SValentin Clement 1321af6ee580SValentin Clement llvm::SmallVector<mlir::Value> typeparams = lenParams; 1322af6ee580SValentin Clement if constexpr (!std::is_same_v<BOX, fir::EmboxOp>) { 1323af6ee580SValentin Clement if (!box.substr().empty() && fir::hasDynamicSize(boxTy.getEleTy())) 1324af6ee580SValentin Clement typeparams.push_back(box.substr()[1]); 1325af6ee580SValentin Clement } 1326af6ee580SValentin Clement 1327af6ee580SValentin Clement // Write each of the fields with the appropriate values 1328af6ee580SValentin Clement auto [eleSize, cfiTy] = 1329af6ee580SValentin Clement getSizeAndTypeCode(loc, rewriter, boxTy.getEleTy(), typeparams); 1330af6ee580SValentin Clement descriptor = 1331af6ee580SValentin Clement insertField(rewriter, loc, descriptor, {kElemLenPosInBox}, eleSize); 1332af6ee580SValentin Clement descriptor = insertField(rewriter, loc, descriptor, {kVersionPosInBox}, 1333af6ee580SValentin Clement this->genI32Constant(loc, rewriter, CFI_VERSION)); 1334af6ee580SValentin Clement descriptor = insertField(rewriter, loc, descriptor, {kRankPosInBox}, 1335af6ee580SValentin Clement this->genI32Constant(loc, rewriter, rank)); 1336af6ee580SValentin Clement descriptor = insertField(rewriter, loc, descriptor, {kTypePosInBox}, cfiTy); 1337af6ee580SValentin Clement descriptor = 1338af6ee580SValentin Clement insertField(rewriter, loc, descriptor, {kAttributePosInBox}, 1339af6ee580SValentin Clement this->genI32Constant(loc, rewriter, getCFIAttr(boxTy))); 1340af6ee580SValentin Clement const bool hasAddendum = isDerivedType(boxTy); 1341af6ee580SValentin Clement descriptor = 1342af6ee580SValentin Clement insertField(rewriter, loc, descriptor, {kF18AddendumPosInBox}, 1343af6ee580SValentin Clement this->genI32Constant(loc, rewriter, hasAddendum ? 1 : 0)); 1344af6ee580SValentin Clement 1345af6ee580SValentin Clement if (hasAddendum) { 1346af6ee580SValentin Clement auto isArray = 1347af6ee580SValentin Clement fir::dyn_cast_ptrOrBoxEleTy(boxTy).template isa<fir::SequenceType>(); 1348af6ee580SValentin Clement unsigned typeDescFieldId = isArray ? kOptTypePtrPosInBox : kDimsPosInBox; 1349af6ee580SValentin Clement auto typeDesc = 1350af6ee580SValentin Clement getTypeDescriptor(box, rewriter, loc, unwrapIfDerived(boxTy)); 1351af6ee580SValentin Clement descriptor = 1352af6ee580SValentin Clement insertField(rewriter, loc, descriptor, {typeDescFieldId}, typeDesc, 1353af6ee580SValentin Clement /*bitCast=*/true); 1354af6ee580SValentin Clement } 1355af6ee580SValentin Clement 1356af6ee580SValentin Clement return {boxTy, descriptor, eleSize}; 1357af6ee580SValentin Clement } 1358af6ee580SValentin Clement 13591f551032SValentin Clement /// Compute the base address of a substring given the base address of a scalar 13601f551032SValentin Clement /// string and the zero based string lower bound. 13611f551032SValentin Clement mlir::Value shiftSubstringBase(mlir::ConversionPatternRewriter &rewriter, 13621f551032SValentin Clement mlir::Location loc, mlir::Value base, 13631f551032SValentin Clement mlir::Value lowerBound) const { 13641f551032SValentin Clement llvm::SmallVector<mlir::Value> gepOperands; 13651f551032SValentin Clement auto baseType = 13661f551032SValentin Clement base.getType().cast<mlir::LLVM::LLVMPointerType>().getElementType(); 13671f551032SValentin Clement if (baseType.isa<mlir::LLVM::LLVMArrayType>()) { 13681f551032SValentin Clement auto idxTy = this->lowerTy().indexType(); 13691f551032SValentin Clement mlir::Value zero = genConstantIndex(loc, idxTy, rewriter, 0); 13701f551032SValentin Clement gepOperands.push_back(zero); 13711f551032SValentin Clement } 13721f551032SValentin Clement gepOperands.push_back(lowerBound); 13731f551032SValentin Clement return this->genGEP(loc, base.getType(), rewriter, base, gepOperands); 13741f551032SValentin Clement } 13751f551032SValentin Clement 1376af6ee580SValentin Clement /// If the embox is not in a globalOp body, allocate storage for the box; 1377af6ee580SValentin Clement /// store the value inside and return the generated alloca. Return the input 1378af6ee580SValentin Clement /// value otherwise. 1379af6ee580SValentin Clement mlir::Value 1380af6ee580SValentin Clement placeInMemoryIfNotGlobalInit(mlir::ConversionPatternRewriter &rewriter, 1381af6ee580SValentin Clement mlir::Location loc, mlir::Value boxValue) const { 1382af6ee580SValentin Clement auto *thisBlock = rewriter.getInsertionBlock(); 1383af6ee580SValentin Clement if (thisBlock && mlir::isa<mlir::LLVM::GlobalOp>(thisBlock->getParentOp())) 1384af6ee580SValentin Clement return boxValue; 1385af6ee580SValentin Clement auto boxPtrTy = mlir::LLVM::LLVMPointerType::get(boxValue.getType()); 1386af6ee580SValentin Clement auto alloca = genAllocaWithType(loc, boxPtrTy, defaultAlign, rewriter); 1387af6ee580SValentin Clement rewriter.create<mlir::LLVM::StoreOp>(loc, boxValue, alloca); 1388af6ee580SValentin Clement return alloca; 1389af6ee580SValentin Clement } 1390af6ee580SValentin Clement }; 1391af6ee580SValentin Clement 13921f551032SValentin Clement /// Compute the extent of a triplet slice (lb:ub:step). 13931f551032SValentin Clement static mlir::Value 13941f551032SValentin Clement computeTripletExtent(mlir::ConversionPatternRewriter &rewriter, 13951f551032SValentin Clement mlir::Location loc, mlir::Value lb, mlir::Value ub, 13961f551032SValentin Clement mlir::Value step, mlir::Value zero, mlir::Type type) { 13971f551032SValentin Clement mlir::Value extent = rewriter.create<mlir::LLVM::SubOp>(loc, type, ub, lb); 13981f551032SValentin Clement extent = rewriter.create<mlir::LLVM::AddOp>(loc, type, extent, step); 13991f551032SValentin Clement extent = rewriter.create<mlir::LLVM::SDivOp>(loc, type, extent, step); 14001f551032SValentin Clement // If the resulting extent is negative (`ub-lb` and `step` have different 14011f551032SValentin Clement // signs), zero must be returned instead. 14021f551032SValentin Clement auto cmp = rewriter.create<mlir::LLVM::ICmpOp>( 14031f551032SValentin Clement loc, mlir::LLVM::ICmpPredicate::sgt, extent, zero); 14041f551032SValentin Clement return rewriter.create<mlir::LLVM::SelectOp>(loc, cmp, extent, zero); 14051f551032SValentin Clement } 14061f551032SValentin Clement 1407af6ee580SValentin Clement /// Create a generic box on a memory reference. This conversions lowers the 1408af6ee580SValentin Clement /// abstract box to the appropriate, initialized descriptor. 1409af6ee580SValentin Clement struct EmboxOpConversion : public EmboxCommonConversion<fir::EmboxOp> { 1410af6ee580SValentin Clement using EmboxCommonConversion::EmboxCommonConversion; 1411af6ee580SValentin Clement 1412af6ee580SValentin Clement mlir::LogicalResult 1413af6ee580SValentin Clement matchAndRewrite(fir::EmboxOp embox, OpAdaptor adaptor, 1414af6ee580SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 1415af6ee580SValentin Clement assert(!embox.getShape() && "There should be no dims on this embox op"); 1416af6ee580SValentin Clement auto [boxTy, dest, eleSize] = 1417af6ee580SValentin Clement consDescriptorPrefix(embox, rewriter, /*rank=*/0, 1418af6ee580SValentin Clement /*lenParams=*/adaptor.getOperands().drop_front(1)); 1419af6ee580SValentin Clement dest = insertBaseAddress(rewriter, embox.getLoc(), dest, 1420af6ee580SValentin Clement adaptor.getOperands()[0]); 14217ce8c6fcSKiran Chandramohan if (isDerivedTypeWithLenParams(boxTy)) { 14227ce8c6fcSKiran Chandramohan TODO(embox.getLoc(), 14237ce8c6fcSKiran Chandramohan "fir.embox codegen of derived with length parameters"); 14247ce8c6fcSKiran Chandramohan return failure(); 14257ce8c6fcSKiran Chandramohan } 1426af6ee580SValentin Clement auto result = placeInMemoryIfNotGlobalInit(rewriter, embox.getLoc(), dest); 1427af6ee580SValentin Clement rewriter.replaceOp(embox, result); 1428af6ee580SValentin Clement return success(); 1429af6ee580SValentin Clement } 1430af6ee580SValentin Clement }; 1431af6ee580SValentin Clement 14321f551032SValentin Clement /// Create a generic box on a memory reference. 14331f551032SValentin Clement struct XEmboxOpConversion : public EmboxCommonConversion<fir::cg::XEmboxOp> { 14341f551032SValentin Clement using EmboxCommonConversion::EmboxCommonConversion; 14351f551032SValentin Clement 14361f551032SValentin Clement mlir::LogicalResult 14371f551032SValentin Clement matchAndRewrite(fir::cg::XEmboxOp xbox, OpAdaptor adaptor, 14381f551032SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 14391f551032SValentin Clement auto [boxTy, dest, eleSize] = consDescriptorPrefix( 14401f551032SValentin Clement xbox, rewriter, xbox.getOutRank(), 14411f551032SValentin Clement adaptor.getOperands().drop_front(xbox.lenParamOffset())); 14421f551032SValentin Clement // Generate the triples in the dims field of the descriptor 14431f551032SValentin Clement mlir::ValueRange operands = adaptor.getOperands(); 14441f551032SValentin Clement auto i64Ty = mlir::IntegerType::get(xbox.getContext(), 64); 14451f551032SValentin Clement mlir::Value base = operands[0]; 14461f551032SValentin Clement assert(!xbox.shape().empty() && "must have a shape"); 14471f551032SValentin Clement unsigned shapeOffset = xbox.shapeOffset(); 14481f551032SValentin Clement bool hasShift = !xbox.shift().empty(); 14491f551032SValentin Clement unsigned shiftOffset = xbox.shiftOffset(); 14501f551032SValentin Clement bool hasSlice = !xbox.slice().empty(); 14511f551032SValentin Clement unsigned sliceOffset = xbox.sliceOffset(); 14521f551032SValentin Clement mlir::Location loc = xbox.getLoc(); 14531f551032SValentin Clement mlir::Value zero = genConstantIndex(loc, i64Ty, rewriter, 0); 14541f551032SValentin Clement mlir::Value one = genConstantIndex(loc, i64Ty, rewriter, 1); 14551f551032SValentin Clement mlir::Value prevDim = integerCast(loc, rewriter, i64Ty, eleSize); 14561f551032SValentin Clement mlir::Value prevPtrOff = one; 14571f551032SValentin Clement mlir::Type eleTy = boxTy.getEleTy(); 14581f551032SValentin Clement const unsigned rank = xbox.getRank(); 14591f551032SValentin Clement llvm::SmallVector<mlir::Value> gepArgs; 14601f551032SValentin Clement unsigned constRows = 0; 14611f551032SValentin Clement mlir::Value ptrOffset = zero; 14621f551032SValentin Clement if (auto memEleTy = fir::dyn_cast_ptrEleTy(xbox.memref().getType())) 14631f551032SValentin Clement if (auto seqTy = memEleTy.dyn_cast<fir::SequenceType>()) { 14641f551032SValentin Clement mlir::Type seqEleTy = seqTy.getEleTy(); 14651f551032SValentin Clement // Adjust the element scaling factor if the element is a dependent type. 14661f551032SValentin Clement if (fir::hasDynamicSize(seqEleTy)) { 14671f551032SValentin Clement if (fir::isa_char(seqEleTy)) { 14681f551032SValentin Clement assert(xbox.lenParams().size() == 1); 14691f551032SValentin Clement prevPtrOff = integerCast(loc, rewriter, i64Ty, 14701f551032SValentin Clement operands[xbox.lenParamOffset()]); 14711f551032SValentin Clement } else if (seqEleTy.isa<fir::RecordType>()) { 14721f551032SValentin Clement TODO(loc, "generate call to calculate size of PDT"); 14731f551032SValentin Clement } else { 14741f551032SValentin Clement return rewriter.notifyMatchFailure(xbox, "unexpected dynamic type"); 14751f551032SValentin Clement } 14761f551032SValentin Clement } else { 14771f551032SValentin Clement constRows = seqTy.getConstantRows(); 14781f551032SValentin Clement } 14791f551032SValentin Clement } 14801f551032SValentin Clement 14811f551032SValentin Clement bool hasSubcomp = !xbox.subcomponent().empty(); 14821f551032SValentin Clement mlir::Value stepExpr; 14831f551032SValentin Clement if (hasSubcomp) { 14841f551032SValentin Clement // We have a subcomponent. The step value needs to be the number of 14851f551032SValentin Clement // bytes per element (which is a derived type). 14861f551032SValentin Clement mlir::Type ty0 = base.getType(); 14871f551032SValentin Clement [[maybe_unused]] auto ptrTy = ty0.dyn_cast<mlir::LLVM::LLVMPointerType>(); 14881f551032SValentin Clement assert(ptrTy && "expected pointer type"); 14891f551032SValentin Clement mlir::Type memEleTy = fir::dyn_cast_ptrEleTy(xbox.memref().getType()); 14901f551032SValentin Clement assert(memEleTy && "expected fir pointer type"); 14911f551032SValentin Clement auto seqTy = memEleTy.dyn_cast<fir::SequenceType>(); 14921f551032SValentin Clement assert(seqTy && "expected sequence type"); 14931f551032SValentin Clement mlir::Type seqEleTy = seqTy.getEleTy(); 14941f551032SValentin Clement auto eleTy = mlir::LLVM::LLVMPointerType::get(convertType(seqEleTy)); 14951f551032SValentin Clement stepExpr = computeDerivedTypeSize(loc, eleTy, i64Ty, rewriter); 14961f551032SValentin Clement } 14971f551032SValentin Clement 14981f551032SValentin Clement // Process the array subspace arguments (shape, shift, etc.), if any, 14991f551032SValentin Clement // translating everything to values in the descriptor wherever the entity 15001f551032SValentin Clement // has a dynamic array dimension. 15011f551032SValentin Clement for (unsigned di = 0, descIdx = 0; di < rank; ++di) { 15021f551032SValentin Clement mlir::Value extent = operands[shapeOffset]; 15031f551032SValentin Clement mlir::Value outerExtent = extent; 15041f551032SValentin Clement bool skipNext = false; 15051f551032SValentin Clement if (hasSlice) { 15061f551032SValentin Clement mlir::Value off = operands[sliceOffset]; 15071f551032SValentin Clement mlir::Value adj = one; 15081f551032SValentin Clement if (hasShift) 15091f551032SValentin Clement adj = operands[shiftOffset]; 15101f551032SValentin Clement auto ao = rewriter.create<mlir::LLVM::SubOp>(loc, i64Ty, off, adj); 15111f551032SValentin Clement if (constRows > 0) { 15121f551032SValentin Clement gepArgs.push_back(ao); 15131f551032SValentin Clement --constRows; 15141f551032SValentin Clement } else { 15151f551032SValentin Clement auto dimOff = 15161f551032SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, i64Ty, ao, prevPtrOff); 15171f551032SValentin Clement ptrOffset = 15181f551032SValentin Clement rewriter.create<mlir::LLVM::AddOp>(loc, i64Ty, dimOff, ptrOffset); 15191f551032SValentin Clement } 15201f551032SValentin Clement if (mlir::isa_and_nonnull<fir::UndefOp>( 15211f551032SValentin Clement xbox.slice()[3 * di + 1].getDefiningOp())) { 15221f551032SValentin Clement // This dimension contains a scalar expression in the array slice op. 15231f551032SValentin Clement // The dimension is loop invariant, will be dropped, and will not 15241f551032SValentin Clement // appear in the descriptor. 15251f551032SValentin Clement skipNext = true; 15261f551032SValentin Clement } 15271f551032SValentin Clement } 15281f551032SValentin Clement if (!skipNext) { 15291f551032SValentin Clement // store lower bound (normally 0) 15301f551032SValentin Clement mlir::Value lb = zero; 15311f551032SValentin Clement if (eleTy.isa<fir::PointerType>() || eleTy.isa<fir::HeapType>()) { 15321f551032SValentin Clement lb = one; 15331f551032SValentin Clement if (hasShift) 15341f551032SValentin Clement lb = operands[shiftOffset]; 15351f551032SValentin Clement } 15361f551032SValentin Clement dest = insertLowerBound(rewriter, loc, dest, descIdx, lb); 15371f551032SValentin Clement 15381f551032SValentin Clement // store extent 15391f551032SValentin Clement if (hasSlice) 15401f551032SValentin Clement extent = computeTripletExtent(rewriter, loc, operands[sliceOffset], 15411f551032SValentin Clement operands[sliceOffset + 1], 15421f551032SValentin Clement operands[sliceOffset + 2], zero, i64Ty); 15431f551032SValentin Clement dest = insertExtent(rewriter, loc, dest, descIdx, extent); 15441f551032SValentin Clement 15451f551032SValentin Clement // store step (scaled by shaped extent) 15461f551032SValentin Clement 15471f551032SValentin Clement mlir::Value step = hasSubcomp ? stepExpr : prevDim; 15481f551032SValentin Clement if (hasSlice) 15491f551032SValentin Clement step = rewriter.create<mlir::LLVM::MulOp>(loc, i64Ty, step, 15501f551032SValentin Clement operands[sliceOffset + 2]); 15511f551032SValentin Clement dest = insertStride(rewriter, loc, dest, descIdx, step); 15521f551032SValentin Clement ++descIdx; 15531f551032SValentin Clement } 15541f551032SValentin Clement 15551f551032SValentin Clement // compute the stride and offset for the next natural dimension 15561f551032SValentin Clement prevDim = 15571f551032SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, i64Ty, prevDim, outerExtent); 15581f551032SValentin Clement if (constRows == 0) 15591f551032SValentin Clement prevPtrOff = rewriter.create<mlir::LLVM::MulOp>(loc, i64Ty, prevPtrOff, 15601f551032SValentin Clement outerExtent); 15611f551032SValentin Clement 15621f551032SValentin Clement // increment iterators 15631f551032SValentin Clement ++shapeOffset; 15641f551032SValentin Clement if (hasShift) 15651f551032SValentin Clement ++shiftOffset; 15661f551032SValentin Clement if (hasSlice) 15671f551032SValentin Clement sliceOffset += 3; 15681f551032SValentin Clement } 15691f551032SValentin Clement if (hasSlice || hasSubcomp || !xbox.substr().empty()) { 157030122656SAlex Zinenko llvm::SmallVector<mlir::Value> args = {ptrOffset}; 15711f551032SValentin Clement args.append(gepArgs.rbegin(), gepArgs.rend()); 15721f551032SValentin Clement if (hasSubcomp) { 15731f551032SValentin Clement // For each field in the path add the offset to base via the args list. 15741f551032SValentin Clement // In the most general case, some offsets must be computed since 15751f551032SValentin Clement // they are not be known until runtime. 15761f551032SValentin Clement if (fir::hasDynamicSize(fir::unwrapSequenceType( 15771f551032SValentin Clement fir::unwrapPassByRefType(xbox.memref().getType())))) 15781f551032SValentin Clement TODO(loc, "fir.embox codegen dynamic size component in derived type"); 15791f551032SValentin Clement args.append(operands.begin() + xbox.subcomponentOffset(), 15801f551032SValentin Clement operands.begin() + xbox.subcomponentOffset() + 15811f551032SValentin Clement xbox.subcomponent().size()); 15821f551032SValentin Clement } 158330122656SAlex Zinenko base = 158430122656SAlex Zinenko rewriter.create<mlir::LLVM::GEPOp>(loc, base.getType(), base, args); 15851f551032SValentin Clement if (!xbox.substr().empty()) 15861f551032SValentin Clement base = shiftSubstringBase(rewriter, loc, base, 15871f551032SValentin Clement operands[xbox.substrOffset()]); 15881f551032SValentin Clement } 15891f551032SValentin Clement dest = insertBaseAddress(rewriter, loc, dest, base); 15901f551032SValentin Clement if (isDerivedTypeWithLenParams(boxTy)) 15911f551032SValentin Clement TODO(loc, "fir.embox codegen of derived with length parameters"); 15921f551032SValentin Clement 15931f551032SValentin Clement mlir::Value result = placeInMemoryIfNotGlobalInit(rewriter, loc, dest); 15941f551032SValentin Clement rewriter.replaceOp(xbox, result); 15951f551032SValentin Clement return success(); 15961f551032SValentin Clement } 15971f551032SValentin Clement }; 15981f551032SValentin Clement 1599fa517555SKiran Chandramohan /// Create a new box given a box reference. 1600fa517555SKiran Chandramohan struct XReboxOpConversion : public EmboxCommonConversion<fir::cg::XReboxOp> { 1601fa517555SKiran Chandramohan using EmboxCommonConversion::EmboxCommonConversion; 1602fa517555SKiran Chandramohan 1603fa517555SKiran Chandramohan mlir::LogicalResult 1604fa517555SKiran Chandramohan matchAndRewrite(fir::cg::XReboxOp rebox, OpAdaptor adaptor, 1605fa517555SKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 1606fa517555SKiran Chandramohan mlir::Location loc = rebox.getLoc(); 1607fa517555SKiran Chandramohan mlir::Type idxTy = lowerTy().indexType(); 1608fa517555SKiran Chandramohan mlir::Value loweredBox = adaptor.getOperands()[0]; 1609fa517555SKiran Chandramohan mlir::ValueRange operands = adaptor.getOperands(); 1610fa517555SKiran Chandramohan 1611fa517555SKiran Chandramohan // Create new descriptor and fill its non-shape related data. 1612fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value, 2> lenParams; 1613fa517555SKiran Chandramohan mlir::Type inputEleTy = getInputEleTy(rebox); 1614fa517555SKiran Chandramohan if (auto charTy = inputEleTy.dyn_cast<fir::CharacterType>()) { 1615fa517555SKiran Chandramohan mlir::Value len = 1616fa517555SKiran Chandramohan loadElementSizeFromBox(loc, idxTy, loweredBox, rewriter); 1617fa517555SKiran Chandramohan if (charTy.getFKind() != 1) { 1618fa517555SKiran Chandramohan mlir::Value width = 1619fa517555SKiran Chandramohan genConstantIndex(loc, idxTy, rewriter, charTy.getFKind()); 1620fa517555SKiran Chandramohan len = rewriter.create<mlir::LLVM::SDivOp>(loc, idxTy, len, width); 1621fa517555SKiran Chandramohan } 1622fa517555SKiran Chandramohan lenParams.emplace_back(len); 1623fa517555SKiran Chandramohan } else if (auto recTy = inputEleTy.dyn_cast<fir::RecordType>()) { 1624fa517555SKiran Chandramohan if (recTy.getNumLenParams() != 0) 1625fa517555SKiran Chandramohan TODO(loc, "reboxing descriptor of derived type with length parameters"); 1626fa517555SKiran Chandramohan } 1627fa517555SKiran Chandramohan auto [boxTy, dest, eleSize] = 1628fa517555SKiran Chandramohan consDescriptorPrefix(rebox, rewriter, rebox.getOutRank(), lenParams); 1629fa517555SKiran Chandramohan 1630fa517555SKiran Chandramohan // Read input extents, strides, and base address 1631fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> inputExtents; 1632fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> inputStrides; 1633fa517555SKiran Chandramohan const unsigned inputRank = rebox.getRank(); 1634fa517555SKiran Chandramohan for (unsigned i = 0; i < inputRank; ++i) { 1635fa517555SKiran Chandramohan mlir::Value dim = genConstantIndex(loc, idxTy, rewriter, i); 1636fa517555SKiran Chandramohan SmallVector<mlir::Value, 3> dimInfo = 1637fa517555SKiran Chandramohan getDimsFromBox(loc, {idxTy, idxTy, idxTy}, loweredBox, dim, rewriter); 1638fa517555SKiran Chandramohan inputExtents.emplace_back(dimInfo[1]); 1639fa517555SKiran Chandramohan inputStrides.emplace_back(dimInfo[2]); 1640fa517555SKiran Chandramohan } 1641fa517555SKiran Chandramohan 1642fa517555SKiran Chandramohan mlir::Type baseTy = getBaseAddrTypeFromBox(loweredBox.getType()); 1643fa517555SKiran Chandramohan mlir::Value baseAddr = 1644fa517555SKiran Chandramohan loadBaseAddrFromBox(loc, baseTy, loweredBox, rewriter); 1645fa517555SKiran Chandramohan 1646fa517555SKiran Chandramohan if (!rebox.slice().empty() || !rebox.subcomponent().empty()) 1647fa517555SKiran Chandramohan return sliceBox(rebox, dest, baseAddr, inputExtents, inputStrides, 1648fa517555SKiran Chandramohan operands, rewriter); 1649fa517555SKiran Chandramohan return reshapeBox(rebox, dest, baseAddr, inputExtents, inputStrides, 1650fa517555SKiran Chandramohan operands, rewriter); 1651fa517555SKiran Chandramohan } 1652fa517555SKiran Chandramohan 1653fa517555SKiran Chandramohan private: 1654fa517555SKiran Chandramohan /// Write resulting shape and base address in descriptor, and replace rebox 1655fa517555SKiran Chandramohan /// op. 1656fa517555SKiran Chandramohan mlir::LogicalResult 1657fa517555SKiran Chandramohan finalizeRebox(fir::cg::XReboxOp rebox, mlir::Value dest, mlir::Value base, 1658fa517555SKiran Chandramohan mlir::ValueRange lbounds, mlir::ValueRange extents, 1659fa517555SKiran Chandramohan mlir::ValueRange strides, 1660fa517555SKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const { 1661fa517555SKiran Chandramohan mlir::Location loc = rebox.getLoc(); 1662fa517555SKiran Chandramohan mlir::Value one = genConstantIndex(loc, lowerTy().indexType(), rewriter, 1); 1663fa517555SKiran Chandramohan for (auto iter : llvm::enumerate(llvm::zip(extents, strides))) { 1664fa517555SKiran Chandramohan unsigned dim = iter.index(); 1665fa517555SKiran Chandramohan mlir::Value lb = lbounds.empty() ? one : lbounds[dim]; 1666fa517555SKiran Chandramohan dest = insertLowerBound(rewriter, loc, dest, dim, lb); 1667fa517555SKiran Chandramohan dest = insertExtent(rewriter, loc, dest, dim, std::get<0>(iter.value())); 1668fa517555SKiran Chandramohan dest = insertStride(rewriter, loc, dest, dim, std::get<1>(iter.value())); 1669fa517555SKiran Chandramohan } 1670fa517555SKiran Chandramohan dest = insertBaseAddress(rewriter, loc, dest, base); 1671fa517555SKiran Chandramohan mlir::Value result = 1672fa517555SKiran Chandramohan placeInMemoryIfNotGlobalInit(rewriter, rebox.getLoc(), dest); 1673fa517555SKiran Chandramohan rewriter.replaceOp(rebox, result); 1674fa517555SKiran Chandramohan return success(); 1675fa517555SKiran Chandramohan } 1676fa517555SKiran Chandramohan 1677fa517555SKiran Chandramohan // Apply slice given the base address, extents and strides of the input box. 1678fa517555SKiran Chandramohan mlir::LogicalResult 1679fa517555SKiran Chandramohan sliceBox(fir::cg::XReboxOp rebox, mlir::Value dest, mlir::Value base, 1680fa517555SKiran Chandramohan mlir::ValueRange inputExtents, mlir::ValueRange inputStrides, 1681fa517555SKiran Chandramohan mlir::ValueRange operands, 1682fa517555SKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const { 1683fa517555SKiran Chandramohan mlir::Location loc = rebox.getLoc(); 1684fa517555SKiran Chandramohan mlir::Type voidPtrTy = ::getVoidPtrType(rebox.getContext()); 1685fa517555SKiran Chandramohan mlir::Type idxTy = lowerTy().indexType(); 1686fa517555SKiran Chandramohan mlir::Value zero = genConstantIndex(loc, idxTy, rewriter, 0); 1687fa517555SKiran Chandramohan // Apply subcomponent and substring shift on base address. 1688fa517555SKiran Chandramohan if (!rebox.subcomponent().empty() || !rebox.substr().empty()) { 1689fa517555SKiran Chandramohan // Cast to inputEleTy* so that a GEP can be used. 1690fa517555SKiran Chandramohan mlir::Type inputEleTy = getInputEleTy(rebox); 1691fa517555SKiran Chandramohan auto llvmElePtrTy = 1692fa517555SKiran Chandramohan mlir::LLVM::LLVMPointerType::get(convertType(inputEleTy)); 1693fa517555SKiran Chandramohan base = rewriter.create<mlir::LLVM::BitcastOp>(loc, llvmElePtrTy, base); 1694fa517555SKiran Chandramohan 1695fa517555SKiran Chandramohan if (!rebox.subcomponent().empty()) { 1696fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> gepOperands = {zero}; 1697fa517555SKiran Chandramohan for (unsigned i = 0; i < rebox.subcomponent().size(); ++i) 1698fa517555SKiran Chandramohan gepOperands.push_back(operands[rebox.subcomponentOffset() + i]); 1699fa517555SKiran Chandramohan base = genGEP(loc, llvmElePtrTy, rewriter, base, gepOperands); 1700fa517555SKiran Chandramohan } 1701fa517555SKiran Chandramohan if (!rebox.substr().empty()) 1702fa517555SKiran Chandramohan base = shiftSubstringBase(rewriter, loc, base, 1703fa517555SKiran Chandramohan operands[rebox.substrOffset()]); 1704fa517555SKiran Chandramohan } 1705fa517555SKiran Chandramohan 1706fa517555SKiran Chandramohan if (rebox.slice().empty()) 1707fa517555SKiran Chandramohan // The array section is of the form array[%component][substring], keep 1708fa517555SKiran Chandramohan // the input array extents and strides. 1709fa517555SKiran Chandramohan return finalizeRebox(rebox, dest, base, /*lbounds*/ llvm::None, 1710fa517555SKiran Chandramohan inputExtents, inputStrides, rewriter); 1711fa517555SKiran Chandramohan 1712fa517555SKiran Chandramohan // Strides from the fir.box are in bytes. 1713fa517555SKiran Chandramohan base = rewriter.create<mlir::LLVM::BitcastOp>(loc, voidPtrTy, base); 1714fa517555SKiran Chandramohan 1715fa517555SKiran Chandramohan // The slice is of the form array(i:j:k)[%component]. Compute new extents 1716fa517555SKiran Chandramohan // and strides. 1717fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> slicedExtents; 1718fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> slicedStrides; 1719fa517555SKiran Chandramohan mlir::Value one = genConstantIndex(loc, idxTy, rewriter, 1); 1720fa517555SKiran Chandramohan const bool sliceHasOrigins = !rebox.shift().empty(); 1721fa517555SKiran Chandramohan unsigned sliceOps = rebox.sliceOffset(); 1722fa517555SKiran Chandramohan unsigned shiftOps = rebox.shiftOffset(); 1723fa517555SKiran Chandramohan auto strideOps = inputStrides.begin(); 1724fa517555SKiran Chandramohan const unsigned inputRank = inputStrides.size(); 1725fa517555SKiran Chandramohan for (unsigned i = 0; i < inputRank; 1726fa517555SKiran Chandramohan ++i, ++strideOps, ++shiftOps, sliceOps += 3) { 1727fa517555SKiran Chandramohan mlir::Value sliceLb = 1728fa517555SKiran Chandramohan integerCast(loc, rewriter, idxTy, operands[sliceOps]); 1729fa517555SKiran Chandramohan mlir::Value inputStride = *strideOps; // already idxTy 1730fa517555SKiran Chandramohan // Apply origin shift: base += (lb-shift)*input_stride 1731fa517555SKiran Chandramohan mlir::Value sliceOrigin = 1732fa517555SKiran Chandramohan sliceHasOrigins 1733fa517555SKiran Chandramohan ? integerCast(loc, rewriter, idxTy, operands[shiftOps]) 1734fa517555SKiran Chandramohan : one; 1735fa517555SKiran Chandramohan mlir::Value diff = 1736fa517555SKiran Chandramohan rewriter.create<mlir::LLVM::SubOp>(loc, idxTy, sliceLb, sliceOrigin); 1737fa517555SKiran Chandramohan mlir::Value offset = 1738fa517555SKiran Chandramohan rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, diff, inputStride); 1739fa517555SKiran Chandramohan base = genGEP(loc, voidPtrTy, rewriter, base, offset); 1740fa517555SKiran Chandramohan // Apply upper bound and step if this is a triplet. Otherwise, the 1741fa517555SKiran Chandramohan // dimension is dropped and no extents/strides are computed. 1742fa517555SKiran Chandramohan mlir::Value upper = operands[sliceOps + 1]; 1743fa517555SKiran Chandramohan const bool isTripletSlice = 1744fa517555SKiran Chandramohan !mlir::isa_and_nonnull<mlir::LLVM::UndefOp>(upper.getDefiningOp()); 1745fa517555SKiran Chandramohan if (isTripletSlice) { 1746fa517555SKiran Chandramohan mlir::Value step = 1747fa517555SKiran Chandramohan integerCast(loc, rewriter, idxTy, operands[sliceOps + 2]); 1748fa517555SKiran Chandramohan // extent = ub-lb+step/step 1749fa517555SKiran Chandramohan mlir::Value sliceUb = integerCast(loc, rewriter, idxTy, upper); 1750fa517555SKiran Chandramohan mlir::Value extent = computeTripletExtent(rewriter, loc, sliceLb, 1751fa517555SKiran Chandramohan sliceUb, step, zero, idxTy); 1752fa517555SKiran Chandramohan slicedExtents.emplace_back(extent); 1753fa517555SKiran Chandramohan // stride = step*input_stride 1754fa517555SKiran Chandramohan mlir::Value stride = 1755fa517555SKiran Chandramohan rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, step, inputStride); 1756fa517555SKiran Chandramohan slicedStrides.emplace_back(stride); 1757fa517555SKiran Chandramohan } 1758fa517555SKiran Chandramohan } 1759fa517555SKiran Chandramohan return finalizeRebox(rebox, dest, base, /*lbounds*/ llvm::None, 1760fa517555SKiran Chandramohan slicedExtents, slicedStrides, rewriter); 1761fa517555SKiran Chandramohan } 1762fa517555SKiran Chandramohan 1763fa517555SKiran Chandramohan /// Apply a new shape to the data described by a box given the base address, 1764fa517555SKiran Chandramohan /// extents and strides of the box. 1765fa517555SKiran Chandramohan mlir::LogicalResult 1766fa517555SKiran Chandramohan reshapeBox(fir::cg::XReboxOp rebox, mlir::Value dest, mlir::Value base, 1767fa517555SKiran Chandramohan mlir::ValueRange inputExtents, mlir::ValueRange inputStrides, 1768fa517555SKiran Chandramohan mlir::ValueRange operands, 1769fa517555SKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const { 1770fa517555SKiran Chandramohan mlir::ValueRange reboxShifts{operands.begin() + rebox.shiftOffset(), 1771fa517555SKiran Chandramohan operands.begin() + rebox.shiftOffset() + 1772fa517555SKiran Chandramohan rebox.shift().size()}; 1773fa517555SKiran Chandramohan if (rebox.shape().empty()) { 1774fa517555SKiran Chandramohan // Only setting new lower bounds. 1775fa517555SKiran Chandramohan return finalizeRebox(rebox, dest, base, reboxShifts, inputExtents, 1776fa517555SKiran Chandramohan inputStrides, rewriter); 1777fa517555SKiran Chandramohan } 1778fa517555SKiran Chandramohan 1779fa517555SKiran Chandramohan mlir::Location loc = rebox.getLoc(); 1780fa517555SKiran Chandramohan // Strides from the fir.box are in bytes. 1781fa517555SKiran Chandramohan mlir::Type voidPtrTy = ::getVoidPtrType(rebox.getContext()); 1782fa517555SKiran Chandramohan base = rewriter.create<mlir::LLVM::BitcastOp>(loc, voidPtrTy, base); 1783fa517555SKiran Chandramohan 1784fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> newStrides; 1785fa517555SKiran Chandramohan llvm::SmallVector<mlir::Value> newExtents; 1786fa517555SKiran Chandramohan mlir::Type idxTy = lowerTy().indexType(); 1787fa517555SKiran Chandramohan // First stride from input box is kept. The rest is assumed contiguous 1788fa517555SKiran Chandramohan // (it is not possible to reshape otherwise). If the input is scalar, 1789fa517555SKiran Chandramohan // which may be OK if all new extents are ones, the stride does not 1790fa517555SKiran Chandramohan // matter, use one. 1791fa517555SKiran Chandramohan mlir::Value stride = inputStrides.empty() 1792fa517555SKiran Chandramohan ? genConstantIndex(loc, idxTy, rewriter, 1) 1793fa517555SKiran Chandramohan : inputStrides[0]; 1794fa517555SKiran Chandramohan for (unsigned i = 0; i < rebox.shape().size(); ++i) { 1795fa517555SKiran Chandramohan mlir::Value rawExtent = operands[rebox.shapeOffset() + i]; 1796fa517555SKiran Chandramohan mlir::Value extent = integerCast(loc, rewriter, idxTy, rawExtent); 1797fa517555SKiran Chandramohan newExtents.emplace_back(extent); 1798fa517555SKiran Chandramohan newStrides.emplace_back(stride); 1799fa517555SKiran Chandramohan // nextStride = extent * stride; 1800fa517555SKiran Chandramohan stride = rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, extent, stride); 1801fa517555SKiran Chandramohan } 1802fa517555SKiran Chandramohan return finalizeRebox(rebox, dest, base, reboxShifts, newExtents, newStrides, 1803fa517555SKiran Chandramohan rewriter); 1804fa517555SKiran Chandramohan } 1805fa517555SKiran Chandramohan 1806fa517555SKiran Chandramohan /// Return scalar element type of the input box. 1807fa517555SKiran Chandramohan static mlir::Type getInputEleTy(fir::cg::XReboxOp rebox) { 1808fa517555SKiran Chandramohan auto ty = fir::dyn_cast_ptrOrBoxEleTy(rebox.box().getType()); 1809fa517555SKiran Chandramohan if (auto seqTy = ty.dyn_cast<fir::SequenceType>()) 1810fa517555SKiran Chandramohan return seqTy.getEleTy(); 1811fa517555SKiran Chandramohan return ty; 1812fa517555SKiran Chandramohan } 1813fa517555SKiran Chandramohan }; 1814fa517555SKiran Chandramohan 1815dc48849fSKiran Chandramohan /// Lower `fir.emboxproc` operation. Creates a procedure box. 1816dc48849fSKiran Chandramohan /// TODO: Part of supporting Fortran 2003 procedure pointers. 1817dc48849fSKiran Chandramohan struct EmboxProcOpConversion : public FIROpConversion<fir::EmboxProcOp> { 1818dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 1819dc48849fSKiran Chandramohan 1820dc48849fSKiran Chandramohan mlir::LogicalResult 1821dc48849fSKiran Chandramohan matchAndRewrite(fir::EmboxProcOp emboxproc, OpAdaptor adaptor, 1822dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 1823dc48849fSKiran Chandramohan TODO(emboxproc.getLoc(), "fir.emboxproc codegen"); 1824dc48849fSKiran Chandramohan return failure(); 1825dc48849fSKiran Chandramohan } 1826dc48849fSKiran Chandramohan }; 1827dc48849fSKiran Chandramohan 182854c56347SValentin Clement // Code shared between insert_value and extract_value Ops. 182954c56347SValentin Clement struct ValueOpCommon { 183054c56347SValentin Clement // Translate the arguments pertaining to any multidimensional array to 183154c56347SValentin Clement // row-major order for LLVM-IR. 183254c56347SValentin Clement static void toRowMajor(SmallVectorImpl<mlir::Attribute> &attrs, 183354c56347SValentin Clement mlir::Type ty) { 183454c56347SValentin Clement assert(ty && "type is null"); 183554c56347SValentin Clement const auto end = attrs.size(); 183654c56347SValentin Clement for (std::remove_const_t<decltype(end)> i = 0; i < end; ++i) { 183754c56347SValentin Clement if (auto seq = ty.dyn_cast<mlir::LLVM::LLVMArrayType>()) { 183854c56347SValentin Clement const auto dim = getDimension(seq); 183954c56347SValentin Clement if (dim > 1) { 184054c56347SValentin Clement auto ub = std::min(i + dim, end); 184154c56347SValentin Clement std::reverse(attrs.begin() + i, attrs.begin() + ub); 184254c56347SValentin Clement i += dim - 1; 184354c56347SValentin Clement } 184454c56347SValentin Clement ty = getArrayElementType(seq); 184554c56347SValentin Clement } else if (auto st = ty.dyn_cast<mlir::LLVM::LLVMStructType>()) { 184654c56347SValentin Clement ty = st.getBody()[attrs[i].cast<mlir::IntegerAttr>().getInt()]; 184754c56347SValentin Clement } else { 184854c56347SValentin Clement llvm_unreachable("index into invalid type"); 184954c56347SValentin Clement } 185054c56347SValentin Clement } 185154c56347SValentin Clement } 185254c56347SValentin Clement 185354c56347SValentin Clement static llvm::SmallVector<mlir::Attribute> 185454c56347SValentin Clement collectIndices(mlir::ConversionPatternRewriter &rewriter, 185554c56347SValentin Clement mlir::ArrayAttr arrAttr) { 185654c56347SValentin Clement llvm::SmallVector<mlir::Attribute> attrs; 185754c56347SValentin Clement for (auto i = arrAttr.begin(), e = arrAttr.end(); i != e; ++i) { 185854c56347SValentin Clement if (i->isa<mlir::IntegerAttr>()) { 185954c56347SValentin Clement attrs.push_back(*i); 186054c56347SValentin Clement } else { 186154c56347SValentin Clement auto fieldName = i->cast<mlir::StringAttr>().getValue(); 186254c56347SValentin Clement ++i; 186354c56347SValentin Clement auto ty = i->cast<mlir::TypeAttr>().getValue(); 186454c56347SValentin Clement auto index = ty.cast<fir::RecordType>().getFieldIndex(fieldName); 186554c56347SValentin Clement attrs.push_back(mlir::IntegerAttr::get(rewriter.getI32Type(), index)); 186654c56347SValentin Clement } 186754c56347SValentin Clement } 186854c56347SValentin Clement return attrs; 186954c56347SValentin Clement } 187054c56347SValentin Clement 187154c56347SValentin Clement private: 187254c56347SValentin Clement static unsigned getDimension(mlir::LLVM::LLVMArrayType ty) { 187354c56347SValentin Clement unsigned result = 1; 187454c56347SValentin Clement for (auto eleTy = ty.getElementType().dyn_cast<mlir::LLVM::LLVMArrayType>(); 187554c56347SValentin Clement eleTy; 187654c56347SValentin Clement eleTy = eleTy.getElementType().dyn_cast<mlir::LLVM::LLVMArrayType>()) 187754c56347SValentin Clement ++result; 187854c56347SValentin Clement return result; 187954c56347SValentin Clement } 188054c56347SValentin Clement 188154c56347SValentin Clement static mlir::Type getArrayElementType(mlir::LLVM::LLVMArrayType ty) { 188254c56347SValentin Clement auto eleTy = ty.getElementType(); 188354c56347SValentin Clement while (auto arrTy = eleTy.dyn_cast<mlir::LLVM::LLVMArrayType>()) 188454c56347SValentin Clement eleTy = arrTy.getElementType(); 188554c56347SValentin Clement return eleTy; 188654c56347SValentin Clement } 188754c56347SValentin Clement }; 188854c56347SValentin Clement 1889c2acd453SAlexisPerry namespace { 189054c56347SValentin Clement /// Extract a subobject value from an ssa-value of aggregate type 189154c56347SValentin Clement struct ExtractValueOpConversion 189254c56347SValentin Clement : public FIROpAndTypeConversion<fir::ExtractValueOp>, 189354c56347SValentin Clement public ValueOpCommon { 189454c56347SValentin Clement using FIROpAndTypeConversion::FIROpAndTypeConversion; 189554c56347SValentin Clement 189654c56347SValentin Clement mlir::LogicalResult 189754c56347SValentin Clement doRewrite(fir::ExtractValueOp extractVal, mlir::Type ty, OpAdaptor adaptor, 189854c56347SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 1899149ad3d5SShraiysh Vaishay auto attrs = collectIndices(rewriter, extractVal.getCoor()); 190054c56347SValentin Clement toRowMajor(attrs, adaptor.getOperands()[0].getType()); 190154c56347SValentin Clement auto position = mlir::ArrayAttr::get(extractVal.getContext(), attrs); 190254c56347SValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::ExtractValueOp>( 190354c56347SValentin Clement extractVal, ty, adaptor.getOperands()[0], position); 190454c56347SValentin Clement return success(); 190554c56347SValentin Clement } 190654c56347SValentin Clement }; 190754c56347SValentin Clement 190854c56347SValentin Clement /// InsertValue is the generalized instruction for the composition of new 190954c56347SValentin Clement /// aggregate type values. 191054c56347SValentin Clement struct InsertValueOpConversion 191154c56347SValentin Clement : public FIROpAndTypeConversion<fir::InsertValueOp>, 191254c56347SValentin Clement public ValueOpCommon { 191354c56347SValentin Clement using FIROpAndTypeConversion::FIROpAndTypeConversion; 191454c56347SValentin Clement 191554c56347SValentin Clement mlir::LogicalResult 191654c56347SValentin Clement doRewrite(fir::InsertValueOp insertVal, mlir::Type ty, OpAdaptor adaptor, 191754c56347SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 1918149ad3d5SShraiysh Vaishay auto attrs = collectIndices(rewriter, insertVal.getCoor()); 191954c56347SValentin Clement toRowMajor(attrs, adaptor.getOperands()[0].getType()); 192054c56347SValentin Clement auto position = mlir::ArrayAttr::get(insertVal.getContext(), attrs); 192154c56347SValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>( 192254c56347SValentin Clement insertVal, ty, adaptor.getOperands()[0], adaptor.getOperands()[1], 192354c56347SValentin Clement position); 192454c56347SValentin Clement return success(); 192554c56347SValentin Clement } 192654c56347SValentin Clement }; 192754c56347SValentin Clement 19283ae8e442SValentin Clement /// InsertOnRange inserts a value into a sequence over a range of offsets. 19293ae8e442SValentin Clement struct InsertOnRangeOpConversion 19303ae8e442SValentin Clement : public FIROpAndTypeConversion<fir::InsertOnRangeOp> { 19313ae8e442SValentin Clement using FIROpAndTypeConversion::FIROpAndTypeConversion; 19323ae8e442SValentin Clement 19333ae8e442SValentin Clement // Increments an array of subscripts in a row major fasion. 19343ae8e442SValentin Clement void incrementSubscripts(const SmallVector<uint64_t> &dims, 19353ae8e442SValentin Clement SmallVector<uint64_t> &subscripts) const { 19363ae8e442SValentin Clement for (size_t i = dims.size(); i > 0; --i) { 19373ae8e442SValentin Clement if (++subscripts[i - 1] < dims[i - 1]) { 19383ae8e442SValentin Clement return; 19393ae8e442SValentin Clement } 19403ae8e442SValentin Clement subscripts[i - 1] = 0; 19413ae8e442SValentin Clement } 19423ae8e442SValentin Clement } 19433ae8e442SValentin Clement 19443ae8e442SValentin Clement mlir::LogicalResult 19453ae8e442SValentin Clement doRewrite(fir::InsertOnRangeOp range, mlir::Type ty, OpAdaptor adaptor, 19463ae8e442SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 19473ae8e442SValentin Clement 19483ae8e442SValentin Clement llvm::SmallVector<uint64_t> dims; 19493ae8e442SValentin Clement auto type = adaptor.getOperands()[0].getType(); 19503ae8e442SValentin Clement 19513ae8e442SValentin Clement // Iteratively extract the array dimensions from the type. 19523ae8e442SValentin Clement while (auto t = type.dyn_cast<mlir::LLVM::LLVMArrayType>()) { 19533ae8e442SValentin Clement dims.push_back(t.getNumElements()); 19543ae8e442SValentin Clement type = t.getElementType(); 19553ae8e442SValentin Clement } 19563ae8e442SValentin Clement 19573ae8e442SValentin Clement SmallVector<uint64_t> lBounds; 19583ae8e442SValentin Clement SmallVector<uint64_t> uBounds; 19593ae8e442SValentin Clement 19603ae8e442SValentin Clement // Unzip the upper and lower bound and convert to a row major format. 1961149ad3d5SShraiysh Vaishay mlir::DenseIntElementsAttr coor = range.getCoor(); 19628ec0f221SMehdi Amini auto reversedCoor = llvm::reverse(coor.getValues<int64_t>()); 19638ec0f221SMehdi Amini for (auto i = reversedCoor.begin(), e = reversedCoor.end(); i != e; ++i) { 19643ae8e442SValentin Clement uBounds.push_back(*i++); 19653ae8e442SValentin Clement lBounds.push_back(*i); 19663ae8e442SValentin Clement } 19673ae8e442SValentin Clement 19683ae8e442SValentin Clement auto &subscripts = lBounds; 19693ae8e442SValentin Clement auto loc = range.getLoc(); 19703ae8e442SValentin Clement mlir::Value lastOp = adaptor.getOperands()[0]; 19713ae8e442SValentin Clement mlir::Value insertVal = adaptor.getOperands()[1]; 19723ae8e442SValentin Clement 19733ae8e442SValentin Clement auto i64Ty = rewriter.getI64Type(); 19743ae8e442SValentin Clement while (subscripts != uBounds) { 19753ae8e442SValentin Clement // Convert uint64_t's to Attribute's. 19763ae8e442SValentin Clement SmallVector<mlir::Attribute> subscriptAttrs; 19773ae8e442SValentin Clement for (const auto &subscript : subscripts) 19783ae8e442SValentin Clement subscriptAttrs.push_back(IntegerAttr::get(i64Ty, subscript)); 19793ae8e442SValentin Clement lastOp = rewriter.create<mlir::LLVM::InsertValueOp>( 19803ae8e442SValentin Clement loc, ty, lastOp, insertVal, 19813ae8e442SValentin Clement ArrayAttr::get(range.getContext(), subscriptAttrs)); 19823ae8e442SValentin Clement 19833ae8e442SValentin Clement incrementSubscripts(dims, subscripts); 19843ae8e442SValentin Clement } 19853ae8e442SValentin Clement 19863ae8e442SValentin Clement // Convert uint64_t's to Attribute's. 19873ae8e442SValentin Clement SmallVector<mlir::Attribute> subscriptAttrs; 19883ae8e442SValentin Clement for (const auto &subscript : subscripts) 19893ae8e442SValentin Clement subscriptAttrs.push_back( 19903ae8e442SValentin Clement IntegerAttr::get(rewriter.getI64Type(), subscript)); 19913ae8e442SValentin Clement mlir::ArrayRef<mlir::Attribute> arrayRef(subscriptAttrs); 19923ae8e442SValentin Clement 19933ae8e442SValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>( 19943ae8e442SValentin Clement range, ty, lastOp, insertVal, 19953ae8e442SValentin Clement ArrayAttr::get(range.getContext(), arrayRef)); 19963ae8e442SValentin Clement 19973ae8e442SValentin Clement return success(); 19983ae8e442SValentin Clement } 19993ae8e442SValentin Clement }; 2000c2acd453SAlexisPerry } // namespace 20017b5132daSValentin Clement 2002dc48849fSKiran Chandramohan namespace { 20035d27abe6SValentin Clement /// XArrayCoor is the address arithmetic on a dynamically shaped, sliced, 20045d27abe6SValentin Clement /// shifted etc. array. 20055d27abe6SValentin Clement /// (See the static restriction on coordinate_of.) array_coor determines the 20065d27abe6SValentin Clement /// coordinate (location) of a specific element. 20075d27abe6SValentin Clement struct XArrayCoorOpConversion 20085d27abe6SValentin Clement : public FIROpAndTypeConversion<fir::cg::XArrayCoorOp> { 20095d27abe6SValentin Clement using FIROpAndTypeConversion::FIROpAndTypeConversion; 20105d27abe6SValentin Clement 20115d27abe6SValentin Clement mlir::LogicalResult 20125d27abe6SValentin Clement doRewrite(fir::cg::XArrayCoorOp coor, mlir::Type ty, OpAdaptor adaptor, 20135d27abe6SValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 20145d27abe6SValentin Clement auto loc = coor.getLoc(); 20155d27abe6SValentin Clement mlir::ValueRange operands = adaptor.getOperands(); 20165d27abe6SValentin Clement unsigned rank = coor.getRank(); 20175d27abe6SValentin Clement assert(coor.indices().size() == rank); 20185d27abe6SValentin Clement assert(coor.shape().empty() || coor.shape().size() == rank); 20195d27abe6SValentin Clement assert(coor.shift().empty() || coor.shift().size() == rank); 20205d27abe6SValentin Clement assert(coor.slice().empty() || coor.slice().size() == 3 * rank); 20215d27abe6SValentin Clement mlir::Type idxTy = lowerTy().indexType(); 20225d27abe6SValentin Clement mlir::Value one = genConstantIndex(loc, idxTy, rewriter, 1); 20235d27abe6SValentin Clement mlir::Value prevExt = one; 20245d27abe6SValentin Clement mlir::Value zero = genConstantIndex(loc, idxTy, rewriter, 0); 20255d27abe6SValentin Clement mlir::Value offset = zero; 20265d27abe6SValentin Clement const bool isShifted = !coor.shift().empty(); 20275d27abe6SValentin Clement const bool isSliced = !coor.slice().empty(); 20285d27abe6SValentin Clement const bool baseIsBoxed = coor.memref().getType().isa<fir::BoxType>(); 20295d27abe6SValentin Clement 20305d27abe6SValentin Clement auto indexOps = coor.indices().begin(); 20315d27abe6SValentin Clement auto shapeOps = coor.shape().begin(); 20325d27abe6SValentin Clement auto shiftOps = coor.shift().begin(); 20335d27abe6SValentin Clement auto sliceOps = coor.slice().begin(); 20345d27abe6SValentin Clement // For each dimension of the array, generate the offset calculation. 20355d27abe6SValentin Clement for (unsigned i = 0; i < rank; 20365d27abe6SValentin Clement ++i, ++indexOps, ++shapeOps, ++shiftOps, sliceOps += 3) { 20375d27abe6SValentin Clement mlir::Value index = 20385d27abe6SValentin Clement integerCast(loc, rewriter, idxTy, operands[coor.indicesOffset() + i]); 20395d27abe6SValentin Clement mlir::Value lb = isShifted ? integerCast(loc, rewriter, idxTy, 20405d27abe6SValentin Clement operands[coor.shiftOffset() + i]) 20415d27abe6SValentin Clement : one; 20425d27abe6SValentin Clement mlir::Value step = one; 20435d27abe6SValentin Clement bool normalSlice = isSliced; 20445d27abe6SValentin Clement // Compute zero based index in dimension i of the element, applying 20455d27abe6SValentin Clement // potential triplets and lower bounds. 20465d27abe6SValentin Clement if (isSliced) { 20475d27abe6SValentin Clement mlir::Value ub = *(sliceOps + 1); 20485d27abe6SValentin Clement normalSlice = !mlir::isa_and_nonnull<fir::UndefOp>(ub.getDefiningOp()); 20495d27abe6SValentin Clement if (normalSlice) 20505d27abe6SValentin Clement step = integerCast(loc, rewriter, idxTy, *(sliceOps + 2)); 20515d27abe6SValentin Clement } 20525d27abe6SValentin Clement auto idx = rewriter.create<mlir::LLVM::SubOp>(loc, idxTy, index, lb); 20535d27abe6SValentin Clement mlir::Value diff = 20545d27abe6SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, idx, step); 20555d27abe6SValentin Clement if (normalSlice) { 20565d27abe6SValentin Clement mlir::Value sliceLb = 20575d27abe6SValentin Clement integerCast(loc, rewriter, idxTy, operands[coor.sliceOffset() + i]); 20585d27abe6SValentin Clement auto adj = rewriter.create<mlir::LLVM::SubOp>(loc, idxTy, sliceLb, lb); 20595d27abe6SValentin Clement diff = rewriter.create<mlir::LLVM::AddOp>(loc, idxTy, diff, adj); 20605d27abe6SValentin Clement } 20615d27abe6SValentin Clement // Update the offset given the stride and the zero based index `diff` 20625d27abe6SValentin Clement // that was just computed. 20635d27abe6SValentin Clement if (baseIsBoxed) { 20645d27abe6SValentin Clement // Use stride in bytes from the descriptor. 20655d27abe6SValentin Clement mlir::Value stride = 20665d27abe6SValentin Clement loadStrideFromBox(loc, adaptor.getOperands()[0], i, rewriter); 20675d27abe6SValentin Clement auto sc = rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, diff, stride); 20685d27abe6SValentin Clement offset = rewriter.create<mlir::LLVM::AddOp>(loc, idxTy, sc, offset); 20695d27abe6SValentin Clement } else { 20705d27abe6SValentin Clement // Use stride computed at last iteration. 20715d27abe6SValentin Clement auto sc = rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, diff, prevExt); 20725d27abe6SValentin Clement offset = rewriter.create<mlir::LLVM::AddOp>(loc, idxTy, sc, offset); 20735d27abe6SValentin Clement // Compute next stride assuming contiguity of the base array 20745d27abe6SValentin Clement // (in element number). 20755d27abe6SValentin Clement auto nextExt = 20765d27abe6SValentin Clement integerCast(loc, rewriter, idxTy, operands[coor.shapeOffset() + i]); 20775d27abe6SValentin Clement prevExt = 20785d27abe6SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, prevExt, nextExt); 20795d27abe6SValentin Clement } 20805d27abe6SValentin Clement } 20815d27abe6SValentin Clement 20825d27abe6SValentin Clement // Add computed offset to the base address. 20835d27abe6SValentin Clement if (baseIsBoxed) { 20845d27abe6SValentin Clement // Working with byte offsets. The base address is read from the fir.box. 20855d27abe6SValentin Clement // and need to be casted to i8* to do the pointer arithmetic. 20865d27abe6SValentin Clement mlir::Type baseTy = 20875d27abe6SValentin Clement getBaseAddrTypeFromBox(adaptor.getOperands()[0].getType()); 20885d27abe6SValentin Clement mlir::Value base = 20895d27abe6SValentin Clement loadBaseAddrFromBox(loc, baseTy, adaptor.getOperands()[0], rewriter); 20905d27abe6SValentin Clement mlir::Type voidPtrTy = getVoidPtrType(); 20915d27abe6SValentin Clement base = rewriter.create<mlir::LLVM::BitcastOp>(loc, voidPtrTy, base); 209230122656SAlex Zinenko llvm::SmallVector<mlir::Value> args{offset}; 209330122656SAlex Zinenko auto addr = 209430122656SAlex Zinenko rewriter.create<mlir::LLVM::GEPOp>(loc, voidPtrTy, base, args); 20955d27abe6SValentin Clement if (coor.subcomponent().empty()) { 20965d27abe6SValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::BitcastOp>(coor, baseTy, addr); 20975d27abe6SValentin Clement return success(); 20985d27abe6SValentin Clement } 20995d27abe6SValentin Clement auto casted = rewriter.create<mlir::LLVM::BitcastOp>(loc, baseTy, addr); 21005d27abe6SValentin Clement args.clear(); 21015d27abe6SValentin Clement args.push_back(zero); 21025d27abe6SValentin Clement if (!coor.lenParams().empty()) { 21035d27abe6SValentin Clement // If type parameters are present, then we don't want to use a GEPOp 21045d27abe6SValentin Clement // as below, as the LLVM struct type cannot be statically defined. 21055d27abe6SValentin Clement TODO(loc, "derived type with type parameters"); 21065d27abe6SValentin Clement } 21075d27abe6SValentin Clement // TODO: array offset subcomponents must be converted to LLVM's 21085d27abe6SValentin Clement // row-major layout here. 21095d27abe6SValentin Clement for (auto i = coor.subcomponentOffset(); i != coor.indicesOffset(); ++i) 21105d27abe6SValentin Clement args.push_back(operands[i]); 211130122656SAlex Zinenko rewriter.replaceOpWithNewOp<mlir::LLVM::GEPOp>(coor, baseTy, casted, 211230122656SAlex Zinenko args); 21135d27abe6SValentin Clement return success(); 21145d27abe6SValentin Clement } 21155d27abe6SValentin Clement 21165d27abe6SValentin Clement // The array was not boxed, so it must be contiguous. offset is therefore an 21175d27abe6SValentin Clement // element offset and the base type is kept in the GEP unless the element 21185d27abe6SValentin Clement // type size is itself dynamic. 21195d27abe6SValentin Clement mlir::Value base; 21205d27abe6SValentin Clement if (coor.subcomponent().empty()) { 21215d27abe6SValentin Clement // No subcomponent. 21225d27abe6SValentin Clement if (!coor.lenParams().empty()) { 21235d27abe6SValentin Clement // Type parameters. Adjust element size explicitly. 21245d27abe6SValentin Clement auto eleTy = fir::dyn_cast_ptrEleTy(coor.getType()); 21255d27abe6SValentin Clement assert(eleTy && "result must be a reference-like type"); 21265d27abe6SValentin Clement if (fir::characterWithDynamicLen(eleTy)) { 21275d27abe6SValentin Clement assert(coor.lenParams().size() == 1); 21285d27abe6SValentin Clement auto bitsInChar = lowerTy().getKindMap().getCharacterBitsize( 21295d27abe6SValentin Clement eleTy.cast<fir::CharacterType>().getFKind()); 21305d27abe6SValentin Clement auto scaling = genConstantIndex(loc, idxTy, rewriter, bitsInChar / 8); 21315d27abe6SValentin Clement auto scaledBySize = 21325d27abe6SValentin Clement rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, offset, scaling); 21335d27abe6SValentin Clement auto length = 21345d27abe6SValentin Clement integerCast(loc, rewriter, idxTy, 21355d27abe6SValentin Clement adaptor.getOperands()[coor.lenParamsOffset()]); 21365d27abe6SValentin Clement offset = rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, scaledBySize, 21375d27abe6SValentin Clement length); 21385d27abe6SValentin Clement } else { 21395d27abe6SValentin Clement TODO(loc, "compute size of derived type with type parameters"); 21405d27abe6SValentin Clement } 21415d27abe6SValentin Clement } 21425d27abe6SValentin Clement // Cast the base address to a pointer to T. 21435d27abe6SValentin Clement base = rewriter.create<mlir::LLVM::BitcastOp>(loc, ty, 21445d27abe6SValentin Clement adaptor.getOperands()[0]); 21455d27abe6SValentin Clement } else { 21465d27abe6SValentin Clement // Operand #0 must have a pointer type. For subcomponent slicing, we 21475d27abe6SValentin Clement // want to cast away the array type and have a plain struct type. 21485d27abe6SValentin Clement mlir::Type ty0 = adaptor.getOperands()[0].getType(); 21495d27abe6SValentin Clement auto ptrTy = ty0.dyn_cast<mlir::LLVM::LLVMPointerType>(); 21505d27abe6SValentin Clement assert(ptrTy && "expected pointer type"); 21515d27abe6SValentin Clement mlir::Type eleTy = ptrTy.getElementType(); 21525d27abe6SValentin Clement while (auto arrTy = eleTy.dyn_cast<mlir::LLVM::LLVMArrayType>()) 21535d27abe6SValentin Clement eleTy = arrTy.getElementType(); 21545d27abe6SValentin Clement auto newTy = mlir::LLVM::LLVMPointerType::get(eleTy); 21555d27abe6SValentin Clement base = rewriter.create<mlir::LLVM::BitcastOp>(loc, newTy, 21565d27abe6SValentin Clement adaptor.getOperands()[0]); 21575d27abe6SValentin Clement } 215830122656SAlex Zinenko SmallVector<mlir::Value> args = {offset}; 21595d27abe6SValentin Clement for (auto i = coor.subcomponentOffset(); i != coor.indicesOffset(); ++i) 21605d27abe6SValentin Clement args.push_back(operands[i]); 216130122656SAlex Zinenko rewriter.replaceOpWithNewOp<mlir::LLVM::GEPOp>(coor, ty, base, args); 21625d27abe6SValentin Clement return success(); 21635d27abe6SValentin Clement } 21645d27abe6SValentin Clement }; 2165dc48849fSKiran Chandramohan } // namespace 2166dc48849fSKiran Chandramohan 2167dc48849fSKiran Chandramohan /// Convert to (memory) reference to a reference to a subobject. 2168dc48849fSKiran Chandramohan /// The coordinate_of op is a Swiss army knife operation that can be used on 2169dc48849fSKiran Chandramohan /// (memory) references to records, arrays, complex, etc. as well as boxes. 2170dc48849fSKiran Chandramohan /// With unboxed arrays, there is the restriction that the array have a static 2171dc48849fSKiran Chandramohan /// shape in all but the last column. 2172dc48849fSKiran Chandramohan struct CoordinateOpConversion 2173dc48849fSKiran Chandramohan : public FIROpAndTypeConversion<fir::CoordinateOp> { 2174dc48849fSKiran Chandramohan using FIROpAndTypeConversion::FIROpAndTypeConversion; 2175dc48849fSKiran Chandramohan 2176dc48849fSKiran Chandramohan mlir::LogicalResult 2177dc48849fSKiran Chandramohan doRewrite(fir::CoordinateOp coor, mlir::Type ty, OpAdaptor adaptor, 2178dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2179dc48849fSKiran Chandramohan mlir::ValueRange operands = adaptor.getOperands(); 2180dc48849fSKiran Chandramohan 2181dc48849fSKiran Chandramohan mlir::Location loc = coor.getLoc(); 2182dc48849fSKiran Chandramohan mlir::Value base = operands[0]; 2183dc48849fSKiran Chandramohan mlir::Type baseObjectTy = coor.getBaseType(); 2184dc48849fSKiran Chandramohan mlir::Type objectTy = fir::dyn_cast_ptrOrBoxEleTy(baseObjectTy); 2185dc48849fSKiran Chandramohan assert(objectTy && "fir.coordinate_of expects a reference type"); 2186dc48849fSKiran Chandramohan 2187dc48849fSKiran Chandramohan // Complex type - basically, extract the real or imaginary part 2188dc48849fSKiran Chandramohan if (fir::isa_complex(objectTy)) { 2189dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp c0 = 2190dc48849fSKiran Chandramohan genConstantIndex(loc, lowerTy().indexType(), rewriter, 0); 2191dc48849fSKiran Chandramohan SmallVector<mlir::Value> offs = {c0, operands[1]}; 2192dc48849fSKiran Chandramohan mlir::Value gep = genGEP(loc, ty, rewriter, base, offs); 2193dc48849fSKiran Chandramohan rewriter.replaceOp(coor, gep); 2194dc48849fSKiran Chandramohan return success(); 2195dc48849fSKiran Chandramohan } 2196dc48849fSKiran Chandramohan 2197dc48849fSKiran Chandramohan // Boxed type - get the base pointer from the box 2198dc48849fSKiran Chandramohan if (baseObjectTy.dyn_cast<fir::BoxType>()) 2199dc48849fSKiran Chandramohan return doRewriteBox(coor, ty, operands, loc, rewriter); 2200dc48849fSKiran Chandramohan 2201dc48849fSKiran Chandramohan // Reference or pointer type 2202dc48849fSKiran Chandramohan if (baseObjectTy.isa<fir::ReferenceType, fir::PointerType>()) 2203dc48849fSKiran Chandramohan return doRewriteRefOrPtr(coor, ty, operands, loc, rewriter); 2204dc48849fSKiran Chandramohan 2205dc48849fSKiran Chandramohan return rewriter.notifyMatchFailure( 2206dc48849fSKiran Chandramohan coor, "fir.coordinate_of base operand has unsupported type"); 2207dc48849fSKiran Chandramohan } 2208dc48849fSKiran Chandramohan 2209dc48849fSKiran Chandramohan unsigned getFieldNumber(fir::RecordType ty, mlir::Value op) const { 2210dc48849fSKiran Chandramohan return fir::hasDynamicSize(ty) 2211dc48849fSKiran Chandramohan ? op.getDefiningOp() 2212dc48849fSKiran Chandramohan ->getAttrOfType<mlir::IntegerAttr>("field") 2213dc48849fSKiran Chandramohan .getInt() 2214dc48849fSKiran Chandramohan : getIntValue(op); 2215dc48849fSKiran Chandramohan } 2216dc48849fSKiran Chandramohan 2217dc48849fSKiran Chandramohan int64_t getIntValue(mlir::Value val) const { 2218dc48849fSKiran Chandramohan assert(val && val.dyn_cast<mlir::OpResult>() && "must not be null value"); 2219dc48849fSKiran Chandramohan mlir::Operation *defop = val.getDefiningOp(); 2220dc48849fSKiran Chandramohan 2221dc48849fSKiran Chandramohan if (auto constOp = dyn_cast<mlir::arith::ConstantIntOp>(defop)) 2222dc48849fSKiran Chandramohan return constOp.value(); 2223dc48849fSKiran Chandramohan if (auto llConstOp = dyn_cast<mlir::LLVM::ConstantOp>(defop)) 2224dc48849fSKiran Chandramohan if (auto attr = llConstOp.getValue().dyn_cast<mlir::IntegerAttr>()) 2225dc48849fSKiran Chandramohan return attr.getValue().getSExtValue(); 2226dc48849fSKiran Chandramohan fir::emitFatalError(val.getLoc(), "must be a constant"); 2227dc48849fSKiran Chandramohan } 2228dc48849fSKiran Chandramohan 2229dc48849fSKiran Chandramohan bool hasSubDimensions(mlir::Type type) const { 2230dc48849fSKiran Chandramohan return type.isa<fir::SequenceType, fir::RecordType, mlir::TupleType>(); 2231dc48849fSKiran Chandramohan } 2232dc48849fSKiran Chandramohan 2233dc48849fSKiran Chandramohan /// Check whether this form of `!fir.coordinate_of` is supported. These 2234dc48849fSKiran Chandramohan /// additional checks are required, because we are not yet able to convert 2235dc48849fSKiran Chandramohan /// all valid forms of `!fir.coordinate_of`. 2236dc48849fSKiran Chandramohan /// TODO: Either implement the unsupported cases or extend the verifier 2237dc48849fSKiran Chandramohan /// in FIROps.cpp instead. 2238dc48849fSKiran Chandramohan bool supportedCoordinate(mlir::Type type, mlir::ValueRange coors) const { 2239dc48849fSKiran Chandramohan const std::size_t numOfCoors = coors.size(); 2240dc48849fSKiran Chandramohan std::size_t i = 0; 2241dc48849fSKiran Chandramohan bool subEle = false; 2242dc48849fSKiran Chandramohan bool ptrEle = false; 2243dc48849fSKiran Chandramohan for (; i < numOfCoors; ++i) { 2244dc48849fSKiran Chandramohan mlir::Value nxtOpnd = coors[i]; 2245dc48849fSKiran Chandramohan if (auto arrTy = type.dyn_cast<fir::SequenceType>()) { 2246dc48849fSKiran Chandramohan subEle = true; 2247dc48849fSKiran Chandramohan i += arrTy.getDimension() - 1; 2248dc48849fSKiran Chandramohan type = arrTy.getEleTy(); 2249dc48849fSKiran Chandramohan } else if (auto recTy = type.dyn_cast<fir::RecordType>()) { 2250dc48849fSKiran Chandramohan subEle = true; 2251dc48849fSKiran Chandramohan type = recTy.getType(getFieldNumber(recTy, nxtOpnd)); 2252dc48849fSKiran Chandramohan } else if (auto tupTy = type.dyn_cast<mlir::TupleType>()) { 2253dc48849fSKiran Chandramohan subEle = true; 2254dc48849fSKiran Chandramohan type = tupTy.getType(getIntValue(nxtOpnd)); 2255dc48849fSKiran Chandramohan } else { 2256dc48849fSKiran Chandramohan ptrEle = true; 2257dc48849fSKiran Chandramohan } 2258dc48849fSKiran Chandramohan } 2259dc48849fSKiran Chandramohan if (ptrEle) 2260dc48849fSKiran Chandramohan return (!subEle) && (numOfCoors == 1); 2261dc48849fSKiran Chandramohan return subEle && (i >= numOfCoors); 2262dc48849fSKiran Chandramohan } 2263dc48849fSKiran Chandramohan 2264dc48849fSKiran Chandramohan /// Walk the abstract memory layout and determine if the path traverses any 2265dc48849fSKiran Chandramohan /// array types with unknown shape. Return true iff all the array types have a 2266dc48849fSKiran Chandramohan /// constant shape along the path. 2267dc48849fSKiran Chandramohan bool arraysHaveKnownShape(mlir::Type type, mlir::ValueRange coors) const { 2268dc48849fSKiran Chandramohan const std::size_t sz = coors.size(); 2269dc48849fSKiran Chandramohan std::size_t i = 0; 2270dc48849fSKiran Chandramohan for (; i < sz; ++i) { 2271dc48849fSKiran Chandramohan mlir::Value nxtOpnd = coors[i]; 2272dc48849fSKiran Chandramohan if (auto arrTy = type.dyn_cast<fir::SequenceType>()) { 2273dc48849fSKiran Chandramohan if (fir::sequenceWithNonConstantShape(arrTy)) 2274dc48849fSKiran Chandramohan return false; 2275dc48849fSKiran Chandramohan i += arrTy.getDimension() - 1; 2276dc48849fSKiran Chandramohan type = arrTy.getEleTy(); 2277dc48849fSKiran Chandramohan } else if (auto strTy = type.dyn_cast<fir::RecordType>()) { 2278dc48849fSKiran Chandramohan type = strTy.getType(getFieldNumber(strTy, nxtOpnd)); 2279dc48849fSKiran Chandramohan } else if (auto strTy = type.dyn_cast<mlir::TupleType>()) { 2280dc48849fSKiran Chandramohan type = strTy.getType(getIntValue(nxtOpnd)); 2281dc48849fSKiran Chandramohan } else { 2282dc48849fSKiran Chandramohan return true; 2283dc48849fSKiran Chandramohan } 2284dc48849fSKiran Chandramohan } 2285dc48849fSKiran Chandramohan return true; 2286dc48849fSKiran Chandramohan } 2287dc48849fSKiran Chandramohan 2288dc48849fSKiran Chandramohan private: 2289dc48849fSKiran Chandramohan mlir::LogicalResult 2290dc48849fSKiran Chandramohan doRewriteBox(fir::CoordinateOp coor, mlir::Type ty, mlir::ValueRange operands, 2291dc48849fSKiran Chandramohan mlir::Location loc, 2292dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const { 2293dc48849fSKiran Chandramohan mlir::Type boxObjTy = coor.getBaseType(); 2294dc48849fSKiran Chandramohan assert(boxObjTy.dyn_cast<fir::BoxType>() && "This is not a `fir.box`"); 2295dc48849fSKiran Chandramohan 2296dc48849fSKiran Chandramohan mlir::Value boxBaseAddr = operands[0]; 2297dc48849fSKiran Chandramohan 2298dc48849fSKiran Chandramohan // 1. SPECIAL CASE (uses `fir.len_param_index`): 2299dc48849fSKiran Chandramohan // %box = ... : !fir.box<!fir.type<derived{len1:i32}>> 2300dc48849fSKiran Chandramohan // %lenp = fir.len_param_index len1, !fir.type<derived{len1:i32}> 2301dc48849fSKiran Chandramohan // %addr = coordinate_of %box, %lenp 2302dc48849fSKiran Chandramohan if (coor.getNumOperands() == 2) { 2303dc48849fSKiran Chandramohan mlir::Operation *coordinateDef = 2304dc48849fSKiran Chandramohan (*coor.getCoor().begin()).getDefiningOp(); 2305dc48849fSKiran Chandramohan if (isa_and_nonnull<fir::LenParamIndexOp>(coordinateDef)) { 2306dc48849fSKiran Chandramohan TODO(loc, 2307dc48849fSKiran Chandramohan "fir.coordinate_of - fir.len_param_index is not supported yet"); 2308dc48849fSKiran Chandramohan } 2309dc48849fSKiran Chandramohan } 2310dc48849fSKiran Chandramohan 2311dc48849fSKiran Chandramohan // 2. GENERAL CASE: 2312dc48849fSKiran Chandramohan // 2.1. (`fir.array`) 2313dc48849fSKiran Chandramohan // %box = ... : !fix.box<!fir.array<?xU>> 2314dc48849fSKiran Chandramohan // %idx = ... : index 2315dc48849fSKiran Chandramohan // %resultAddr = coordinate_of %box, %idx : !fir.ref<U> 2316dc48849fSKiran Chandramohan // 2.2 (`fir.derived`) 2317dc48849fSKiran Chandramohan // %box = ... : !fix.box<!fir.type<derived_type{field_1:i32}>> 2318dc48849fSKiran Chandramohan // %idx = ... : i32 2319dc48849fSKiran Chandramohan // %resultAddr = coordinate_of %box, %idx : !fir.ref<i32> 2320dc48849fSKiran Chandramohan // 2.3 (`fir.derived` inside `fir.array`) 2321dc48849fSKiran Chandramohan // %box = ... : !fir.box<!fir.array<10 x !fir.type<derived_1{field_1:f32, 2322dc48849fSKiran Chandramohan // field_2:f32}>>> %idx1 = ... : index %idx2 = ... : i32 %resultAddr = 2323dc48849fSKiran Chandramohan // coordinate_of %box, %idx1, %idx2 : !fir.ref<f32> 2324dc48849fSKiran Chandramohan // 2.4. TODO: Either document or disable any other case that the following 2325dc48849fSKiran Chandramohan // implementation might convert. 2326dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp c0 = 2327dc48849fSKiran Chandramohan genConstantIndex(loc, lowerTy().indexType(), rewriter, 0); 2328dc48849fSKiran Chandramohan mlir::Value resultAddr = 2329dc48849fSKiran Chandramohan loadBaseAddrFromBox(loc, getBaseAddrTypeFromBox(boxBaseAddr.getType()), 2330dc48849fSKiran Chandramohan boxBaseAddr, rewriter); 2331dc48849fSKiran Chandramohan auto currentObjTy = fir::dyn_cast_ptrOrBoxEleTy(boxObjTy); 2332dc48849fSKiran Chandramohan mlir::Type voidPtrTy = ::getVoidPtrType(coor.getContext()); 2333dc48849fSKiran Chandramohan 2334dc48849fSKiran Chandramohan for (unsigned i = 1, last = operands.size(); i < last; ++i) { 2335dc48849fSKiran Chandramohan if (auto arrTy = currentObjTy.dyn_cast<fir::SequenceType>()) { 2336dc48849fSKiran Chandramohan if (i != 1) 2337dc48849fSKiran Chandramohan TODO(loc, "fir.array nested inside other array and/or derived type"); 2338dc48849fSKiran Chandramohan // Applies byte strides from the box. Ignore lower bound from box 2339dc48849fSKiran Chandramohan // since fir.coordinate_of indexes are zero based. Lowering takes care 2340dc48849fSKiran Chandramohan // of lower bound aspects. This both accounts for dynamically sized 2341dc48849fSKiran Chandramohan // types and non contiguous arrays. 2342dc48849fSKiran Chandramohan auto idxTy = lowerTy().indexType(); 2343dc48849fSKiran Chandramohan mlir::Value off = genConstantIndex(loc, idxTy, rewriter, 0); 2344dc48849fSKiran Chandramohan for (unsigned index = i, lastIndex = i + arrTy.getDimension(); 2345dc48849fSKiran Chandramohan index < lastIndex; ++index) { 2346dc48849fSKiran Chandramohan mlir::Value stride = 2347dc48849fSKiran Chandramohan loadStrideFromBox(loc, operands[0], index - i, rewriter); 2348dc48849fSKiran Chandramohan auto sc = rewriter.create<mlir::LLVM::MulOp>(loc, idxTy, 2349dc48849fSKiran Chandramohan operands[index], stride); 2350dc48849fSKiran Chandramohan off = rewriter.create<mlir::LLVM::AddOp>(loc, idxTy, sc, off); 2351dc48849fSKiran Chandramohan } 2352dc48849fSKiran Chandramohan auto voidPtrBase = 2353dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::BitcastOp>(loc, voidPtrTy, resultAddr); 2354dc48849fSKiran Chandramohan SmallVector<mlir::Value> args{off}; 2355dc48849fSKiran Chandramohan resultAddr = rewriter.create<mlir::LLVM::GEPOp>(loc, voidPtrTy, 2356dc48849fSKiran Chandramohan voidPtrBase, args); 2357dc48849fSKiran Chandramohan i += arrTy.getDimension() - 1; 2358dc48849fSKiran Chandramohan currentObjTy = arrTy.getEleTy(); 2359dc48849fSKiran Chandramohan } else if (auto recTy = currentObjTy.dyn_cast<fir::RecordType>()) { 2360dc48849fSKiran Chandramohan auto recRefTy = 2361dc48849fSKiran Chandramohan mlir::LLVM::LLVMPointerType::get(lowerTy().convertType(recTy)); 2362dc48849fSKiran Chandramohan mlir::Value nxtOpnd = operands[i]; 2363dc48849fSKiran Chandramohan auto memObj = 2364dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::BitcastOp>(loc, recRefTy, resultAddr); 2365dc48849fSKiran Chandramohan llvm::SmallVector<mlir::Value> args = {c0, nxtOpnd}; 2366dc48849fSKiran Chandramohan currentObjTy = recTy.getType(getFieldNumber(recTy, nxtOpnd)); 2367dc48849fSKiran Chandramohan auto llvmCurrentObjTy = lowerTy().convertType(currentObjTy); 2368dc48849fSKiran Chandramohan auto gep = rewriter.create<mlir::LLVM::GEPOp>( 2369dc48849fSKiran Chandramohan loc, mlir::LLVM::LLVMPointerType::get(llvmCurrentObjTy), memObj, 2370dc48849fSKiran Chandramohan args); 2371dc48849fSKiran Chandramohan resultAddr = 2372dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::BitcastOp>(loc, voidPtrTy, gep); 2373dc48849fSKiran Chandramohan } else { 2374dc48849fSKiran Chandramohan fir::emitFatalError(loc, "unexpected type in coordinate_of"); 2375dc48849fSKiran Chandramohan } 2376dc48849fSKiran Chandramohan } 2377dc48849fSKiran Chandramohan 2378dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::BitcastOp>(coor, ty, resultAddr); 2379dc48849fSKiran Chandramohan return success(); 2380dc48849fSKiran Chandramohan } 2381dc48849fSKiran Chandramohan 2382dc48849fSKiran Chandramohan mlir::LogicalResult 2383dc48849fSKiran Chandramohan doRewriteRefOrPtr(fir::CoordinateOp coor, mlir::Type ty, 2384dc48849fSKiran Chandramohan mlir::ValueRange operands, mlir::Location loc, 2385dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const { 2386dc48849fSKiran Chandramohan mlir::Type baseObjectTy = coor.getBaseType(); 2387dc48849fSKiran Chandramohan 2388dc48849fSKiran Chandramohan mlir::Type currentObjTy = fir::dyn_cast_ptrOrBoxEleTy(baseObjectTy); 2389dc48849fSKiran Chandramohan bool hasSubdimension = hasSubDimensions(currentObjTy); 2390dc48849fSKiran Chandramohan bool columnIsDeferred = !hasSubdimension; 2391dc48849fSKiran Chandramohan 2392dc48849fSKiran Chandramohan if (!supportedCoordinate(currentObjTy, operands.drop_front(1))) { 2393dc48849fSKiran Chandramohan TODO(loc, "unsupported combination of coordinate operands"); 2394dc48849fSKiran Chandramohan } 2395dc48849fSKiran Chandramohan 2396dc48849fSKiran Chandramohan const bool hasKnownShape = 2397dc48849fSKiran Chandramohan arraysHaveKnownShape(currentObjTy, operands.drop_front(1)); 2398dc48849fSKiran Chandramohan 2399dc48849fSKiran Chandramohan // If only the column is `?`, then we can simply place the column value in 2400dc48849fSKiran Chandramohan // the 0-th GEP position. 2401dc48849fSKiran Chandramohan if (auto arrTy = currentObjTy.dyn_cast<fir::SequenceType>()) { 2402dc48849fSKiran Chandramohan if (!hasKnownShape) { 2403dc48849fSKiran Chandramohan const unsigned sz = arrTy.getDimension(); 2404dc48849fSKiran Chandramohan if (arraysHaveKnownShape(arrTy.getEleTy(), 2405dc48849fSKiran Chandramohan operands.drop_front(1 + sz))) { 2406dc48849fSKiran Chandramohan llvm::ArrayRef<int64_t> shape = arrTy.getShape(); 2407dc48849fSKiran Chandramohan bool allConst = true; 2408dc48849fSKiran Chandramohan for (unsigned i = 0; i < sz - 1; ++i) { 2409dc48849fSKiran Chandramohan if (shape[i] < 0) { 2410dc48849fSKiran Chandramohan allConst = false; 2411dc48849fSKiran Chandramohan break; 2412dc48849fSKiran Chandramohan } 2413dc48849fSKiran Chandramohan } 2414dc48849fSKiran Chandramohan if (allConst) 2415dc48849fSKiran Chandramohan columnIsDeferred = true; 2416dc48849fSKiran Chandramohan } 2417dc48849fSKiran Chandramohan } 2418dc48849fSKiran Chandramohan } 2419dc48849fSKiran Chandramohan 2420dc48849fSKiran Chandramohan if (fir::hasDynamicSize(fir::unwrapSequenceType(currentObjTy))) { 2421dc48849fSKiran Chandramohan mlir::emitError( 2422dc48849fSKiran Chandramohan loc, "fir.coordinate_of with a dynamic element size is unsupported"); 2423dc48849fSKiran Chandramohan return failure(); 2424dc48849fSKiran Chandramohan } 2425dc48849fSKiran Chandramohan 2426dc48849fSKiran Chandramohan if (hasKnownShape || columnIsDeferred) { 2427dc48849fSKiran Chandramohan SmallVector<mlir::Value> offs; 2428dc48849fSKiran Chandramohan if (hasKnownShape && hasSubdimension) { 2429dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp c0 = 2430dc48849fSKiran Chandramohan genConstantIndex(loc, lowerTy().indexType(), rewriter, 0); 2431dc48849fSKiran Chandramohan offs.push_back(c0); 2432dc48849fSKiran Chandramohan } 2433dc48849fSKiran Chandramohan const std::size_t sz = operands.size(); 2434dc48849fSKiran Chandramohan Optional<int> dims; 2435dc48849fSKiran Chandramohan SmallVector<mlir::Value> arrIdx; 2436dc48849fSKiran Chandramohan for (std::size_t i = 1; i < sz; ++i) { 2437dc48849fSKiran Chandramohan mlir::Value nxtOpnd = operands[i]; 2438dc48849fSKiran Chandramohan 2439dc48849fSKiran Chandramohan if (!currentObjTy) { 2440dc48849fSKiran Chandramohan mlir::emitError(loc, "invalid coordinate/check failed"); 2441dc48849fSKiran Chandramohan return failure(); 2442dc48849fSKiran Chandramohan } 2443dc48849fSKiran Chandramohan 2444dc48849fSKiran Chandramohan // check if the i-th coordinate relates to an array 2445dc48849fSKiran Chandramohan if (dims.hasValue()) { 2446dc48849fSKiran Chandramohan arrIdx.push_back(nxtOpnd); 2447dc48849fSKiran Chandramohan int dimsLeft = *dims; 2448dc48849fSKiran Chandramohan if (dimsLeft > 1) { 2449dc48849fSKiran Chandramohan dims = dimsLeft - 1; 2450dc48849fSKiran Chandramohan continue; 2451dc48849fSKiran Chandramohan } 2452dc48849fSKiran Chandramohan currentObjTy = currentObjTy.cast<fir::SequenceType>().getEleTy(); 2453dc48849fSKiran Chandramohan // append array range in reverse (FIR arrays are column-major) 2454dc48849fSKiran Chandramohan offs.append(arrIdx.rbegin(), arrIdx.rend()); 2455dc48849fSKiran Chandramohan arrIdx.clear(); 2456dc48849fSKiran Chandramohan dims.reset(); 2457dc48849fSKiran Chandramohan continue; 2458dc48849fSKiran Chandramohan } 2459dc48849fSKiran Chandramohan if (auto arrTy = currentObjTy.dyn_cast<fir::SequenceType>()) { 2460dc48849fSKiran Chandramohan int d = arrTy.getDimension() - 1; 2461dc48849fSKiran Chandramohan if (d > 0) { 2462dc48849fSKiran Chandramohan dims = d; 2463dc48849fSKiran Chandramohan arrIdx.push_back(nxtOpnd); 2464dc48849fSKiran Chandramohan continue; 2465dc48849fSKiran Chandramohan } 2466dc48849fSKiran Chandramohan currentObjTy = currentObjTy.cast<fir::SequenceType>().getEleTy(); 2467dc48849fSKiran Chandramohan offs.push_back(nxtOpnd); 2468dc48849fSKiran Chandramohan continue; 2469dc48849fSKiran Chandramohan } 2470dc48849fSKiran Chandramohan 2471dc48849fSKiran Chandramohan // check if the i-th coordinate relates to a field 2472dc48849fSKiran Chandramohan if (auto recTy = currentObjTy.dyn_cast<fir::RecordType>()) 2473dc48849fSKiran Chandramohan currentObjTy = recTy.getType(getFieldNumber(recTy, nxtOpnd)); 2474dc48849fSKiran Chandramohan else if (auto tupTy = currentObjTy.dyn_cast<mlir::TupleType>()) 2475dc48849fSKiran Chandramohan currentObjTy = tupTy.getType(getIntValue(nxtOpnd)); 2476dc48849fSKiran Chandramohan else 2477dc48849fSKiran Chandramohan currentObjTy = nullptr; 2478dc48849fSKiran Chandramohan 2479dc48849fSKiran Chandramohan offs.push_back(nxtOpnd); 2480dc48849fSKiran Chandramohan } 2481dc48849fSKiran Chandramohan if (dims.hasValue()) 2482dc48849fSKiran Chandramohan offs.append(arrIdx.rbegin(), arrIdx.rend()); 2483dc48849fSKiran Chandramohan mlir::Value base = operands[0]; 2484dc48849fSKiran Chandramohan mlir::Value retval = genGEP(loc, ty, rewriter, base, offs); 2485dc48849fSKiran Chandramohan rewriter.replaceOp(coor, retval); 2486dc48849fSKiran Chandramohan return success(); 2487dc48849fSKiran Chandramohan } 2488dc48849fSKiran Chandramohan 2489dc48849fSKiran Chandramohan mlir::emitError(loc, "fir.coordinate_of base operand has unsupported type"); 2490dc48849fSKiran Chandramohan return failure(); 2491dc48849fSKiran Chandramohan } 2492dc48849fSKiran Chandramohan }; 2493dc48849fSKiran Chandramohan 2494dc48849fSKiran Chandramohan /// Convert `fir.field_index`. The conversion depends on whether the size of 2495dc48849fSKiran Chandramohan /// the record is static or dynamic. 2496dc48849fSKiran Chandramohan struct FieldIndexOpConversion : public FIROpConversion<fir::FieldIndexOp> { 2497dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2498dc48849fSKiran Chandramohan 2499dc48849fSKiran Chandramohan // NB: most field references should be resolved by this point 2500dc48849fSKiran Chandramohan mlir::LogicalResult 2501dc48849fSKiran Chandramohan matchAndRewrite(fir::FieldIndexOp field, OpAdaptor adaptor, 2502dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2503dc48849fSKiran Chandramohan auto recTy = field.getOnType().cast<fir::RecordType>(); 2504dc48849fSKiran Chandramohan unsigned index = recTy.getFieldIndex(field.getFieldId()); 2505dc48849fSKiran Chandramohan 2506dc48849fSKiran Chandramohan if (!fir::hasDynamicSize(recTy)) { 2507dc48849fSKiran Chandramohan // Derived type has compile-time constant layout. Return index of the 2508dc48849fSKiran Chandramohan // component type in the parent type (to be used in GEP). 2509dc48849fSKiran Chandramohan rewriter.replaceOp(field, mlir::ValueRange{genConstantOffset( 2510dc48849fSKiran Chandramohan field.getLoc(), rewriter, index)}); 2511dc48849fSKiran Chandramohan return success(); 2512dc48849fSKiran Chandramohan } 2513dc48849fSKiran Chandramohan 2514dc48849fSKiran Chandramohan // Derived type has compile-time constant layout. Call the compiler 2515dc48849fSKiran Chandramohan // generated function to determine the byte offset of the field at runtime. 2516dc48849fSKiran Chandramohan // This returns a non-constant. 2517dc48849fSKiran Chandramohan FlatSymbolRefAttr symAttr = mlir::SymbolRefAttr::get( 2518dc48849fSKiran Chandramohan field.getContext(), getOffsetMethodName(recTy, field.getFieldId())); 2519dc48849fSKiran Chandramohan NamedAttribute callAttr = rewriter.getNamedAttr("callee", symAttr); 2520dc48849fSKiran Chandramohan NamedAttribute fieldAttr = rewriter.getNamedAttr( 2521dc48849fSKiran Chandramohan "field", mlir::IntegerAttr::get(lowerTy().indexType(), index)); 2522dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::CallOp>( 2523dc48849fSKiran Chandramohan field, lowerTy().offsetType(), adaptor.getOperands(), 2524dc48849fSKiran Chandramohan llvm::ArrayRef<mlir::NamedAttribute>{callAttr, fieldAttr}); 2525dc48849fSKiran Chandramohan return success(); 2526dc48849fSKiran Chandramohan } 2527dc48849fSKiran Chandramohan 2528dc48849fSKiran Chandramohan // Re-Construct the name of the compiler generated method that calculates the 2529dc48849fSKiran Chandramohan // offset 2530dc48849fSKiran Chandramohan inline static std::string getOffsetMethodName(fir::RecordType recTy, 2531dc48849fSKiran Chandramohan llvm::StringRef field) { 2532dc48849fSKiran Chandramohan return recTy.getName().str() + "P." + field.str() + ".offset"; 2533dc48849fSKiran Chandramohan } 2534dc48849fSKiran Chandramohan }; 2535dc48849fSKiran Chandramohan 2536dc48849fSKiran Chandramohan /// Convert `fir.end` 2537dc48849fSKiran Chandramohan struct FirEndOpConversion : public FIROpConversion<fir::FirEndOp> { 2538dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2539dc48849fSKiran Chandramohan 2540dc48849fSKiran Chandramohan mlir::LogicalResult 2541dc48849fSKiran Chandramohan matchAndRewrite(fir::FirEndOp firEnd, OpAdaptor, 2542dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2543dc48849fSKiran Chandramohan TODO(firEnd.getLoc(), "fir.end codegen"); 2544dc48849fSKiran Chandramohan return failure(); 2545dc48849fSKiran Chandramohan } 2546dc48849fSKiran Chandramohan }; 2547dc48849fSKiran Chandramohan 2548dc48849fSKiran Chandramohan /// Lower `fir.gentypedesc` to a global constant. 2549dc48849fSKiran Chandramohan struct GenTypeDescOpConversion : public FIROpConversion<fir::GenTypeDescOp> { 2550dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2551dc48849fSKiran Chandramohan 2552dc48849fSKiran Chandramohan mlir::LogicalResult 2553dc48849fSKiran Chandramohan matchAndRewrite(fir::GenTypeDescOp gentypedesc, OpAdaptor adaptor, 2554dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2555dc48849fSKiran Chandramohan TODO(gentypedesc.getLoc(), "fir.gentypedesc codegen"); 2556dc48849fSKiran Chandramohan return failure(); 2557dc48849fSKiran Chandramohan } 2558dc48849fSKiran Chandramohan }; 2559dc48849fSKiran Chandramohan 2560dc48849fSKiran Chandramohan /// Lower `fir.has_value` operation to `llvm.return` operation. 2561dc48849fSKiran Chandramohan struct HasValueOpConversion : public FIROpConversion<fir::HasValueOp> { 2562dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2563dc48849fSKiran Chandramohan 2564dc48849fSKiran Chandramohan mlir::LogicalResult 2565dc48849fSKiran Chandramohan matchAndRewrite(fir::HasValueOp op, OpAdaptor adaptor, 2566dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2567dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<LLVM::ReturnOp>(op, adaptor.getOperands()); 2568dc48849fSKiran Chandramohan return success(); 2569dc48849fSKiran Chandramohan } 2570dc48849fSKiran Chandramohan }; 2571dc48849fSKiran Chandramohan 2572dc48849fSKiran Chandramohan /// Lower `fir.global` operation to `llvm.global` operation. 2573dc48849fSKiran Chandramohan /// `fir.insert_on_range` operations are replaced with constant dense attribute 2574dc48849fSKiran Chandramohan /// if they are applied on the full range. 2575dc48849fSKiran Chandramohan struct GlobalOpConversion : public FIROpConversion<fir::GlobalOp> { 2576dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2577dc48849fSKiran Chandramohan 2578dc48849fSKiran Chandramohan mlir::LogicalResult 2579dc48849fSKiran Chandramohan matchAndRewrite(fir::GlobalOp global, OpAdaptor adaptor, 2580dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2581dc48849fSKiran Chandramohan auto tyAttr = convertType(global.getType()); 2582dc48849fSKiran Chandramohan if (global.getType().isa<fir::BoxType>()) 2583dc48849fSKiran Chandramohan tyAttr = tyAttr.cast<mlir::LLVM::LLVMPointerType>().getElementType(); 2584dc48849fSKiran Chandramohan auto loc = global.getLoc(); 2585dc48849fSKiran Chandramohan mlir::Attribute initAttr{}; 2586dc48849fSKiran Chandramohan if (global.getInitVal()) 2587dc48849fSKiran Chandramohan initAttr = global.getInitVal().getValue(); 2588dc48849fSKiran Chandramohan auto linkage = convertLinkage(global.getLinkName()); 2589dc48849fSKiran Chandramohan auto isConst = global.getConstant().hasValue(); 2590dc48849fSKiran Chandramohan auto g = rewriter.create<mlir::LLVM::GlobalOp>( 2591dc48849fSKiran Chandramohan loc, tyAttr, isConst, linkage, global.getSymName(), initAttr); 2592dc48849fSKiran Chandramohan auto &gr = g.getInitializerRegion(); 2593dc48849fSKiran Chandramohan rewriter.inlineRegionBefore(global.getRegion(), gr, gr.end()); 2594dc48849fSKiran Chandramohan if (!gr.empty()) { 2595dc48849fSKiran Chandramohan // Replace insert_on_range with a constant dense attribute if the 2596dc48849fSKiran Chandramohan // initialization is on the full range. 2597dc48849fSKiran Chandramohan auto insertOnRangeOps = gr.front().getOps<fir::InsertOnRangeOp>(); 2598dc48849fSKiran Chandramohan for (auto insertOp : insertOnRangeOps) { 2599dc48849fSKiran Chandramohan if (isFullRange(insertOp.getCoor(), insertOp.getType())) { 2600dc48849fSKiran Chandramohan auto seqTyAttr = convertType(insertOp.getType()); 2601dc48849fSKiran Chandramohan auto *op = insertOp.getVal().getDefiningOp(); 2602dc48849fSKiran Chandramohan auto constant = mlir::dyn_cast<mlir::arith::ConstantOp>(op); 2603dc48849fSKiran Chandramohan if (!constant) { 2604dc48849fSKiran Chandramohan auto convertOp = mlir::dyn_cast<fir::ConvertOp>(op); 2605dc48849fSKiran Chandramohan if (!convertOp) 2606dc48849fSKiran Chandramohan continue; 2607dc48849fSKiran Chandramohan constant = cast<mlir::arith::ConstantOp>( 2608dc48849fSKiran Chandramohan convertOp.getValue().getDefiningOp()); 2609dc48849fSKiran Chandramohan } 2610dc48849fSKiran Chandramohan mlir::Type vecType = mlir::VectorType::get( 2611dc48849fSKiran Chandramohan insertOp.getType().getShape(), constant.getType()); 2612dc48849fSKiran Chandramohan auto denseAttr = mlir::DenseElementsAttr::get( 2613dc48849fSKiran Chandramohan vecType.cast<ShapedType>(), constant.getValue()); 2614dc48849fSKiran Chandramohan rewriter.setInsertionPointAfter(insertOp); 2615dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::arith::ConstantOp>( 2616dc48849fSKiran Chandramohan insertOp, seqTyAttr, denseAttr); 2617dc48849fSKiran Chandramohan } 2618dc48849fSKiran Chandramohan } 2619dc48849fSKiran Chandramohan } 2620dc48849fSKiran Chandramohan rewriter.eraseOp(global); 2621dc48849fSKiran Chandramohan return success(); 2622dc48849fSKiran Chandramohan } 2623dc48849fSKiran Chandramohan 2624dc48849fSKiran Chandramohan bool isFullRange(mlir::DenseIntElementsAttr indexes, 2625dc48849fSKiran Chandramohan fir::SequenceType seqTy) const { 2626dc48849fSKiran Chandramohan auto extents = seqTy.getShape(); 2627dc48849fSKiran Chandramohan if (indexes.size() / 2 != static_cast<int64_t>(extents.size())) 2628dc48849fSKiran Chandramohan return false; 2629dc48849fSKiran Chandramohan auto cur_index = indexes.value_begin<int64_t>(); 2630dc48849fSKiran Chandramohan for (unsigned i = 0; i < indexes.size(); i += 2) { 2631dc48849fSKiran Chandramohan if (*(cur_index++) != 0) 2632dc48849fSKiran Chandramohan return false; 2633dc48849fSKiran Chandramohan if (*(cur_index++) != extents[i / 2] - 1) 2634dc48849fSKiran Chandramohan return false; 2635dc48849fSKiran Chandramohan } 2636dc48849fSKiran Chandramohan return true; 2637dc48849fSKiran Chandramohan } 2638dc48849fSKiran Chandramohan 2639dc48849fSKiran Chandramohan // TODO: String comparaison should be avoided. Replace linkName with an 2640dc48849fSKiran Chandramohan // enumeration. 2641dc48849fSKiran Chandramohan mlir::LLVM::Linkage convertLinkage(Optional<StringRef> optLinkage) const { 2642dc48849fSKiran Chandramohan if (optLinkage.hasValue()) { 2643dc48849fSKiran Chandramohan auto name = optLinkage.getValue(); 2644dc48849fSKiran Chandramohan if (name == "internal") 2645dc48849fSKiran Chandramohan return mlir::LLVM::Linkage::Internal; 2646dc48849fSKiran Chandramohan if (name == "linkonce") 2647dc48849fSKiran Chandramohan return mlir::LLVM::Linkage::Linkonce; 2648dc48849fSKiran Chandramohan if (name == "common") 2649dc48849fSKiran Chandramohan return mlir::LLVM::Linkage::Common; 2650dc48849fSKiran Chandramohan if (name == "weak") 2651dc48849fSKiran Chandramohan return mlir::LLVM::Linkage::Weak; 2652dc48849fSKiran Chandramohan } 2653dc48849fSKiran Chandramohan return mlir::LLVM::Linkage::External; 2654dc48849fSKiran Chandramohan } 2655dc48849fSKiran Chandramohan }; 2656dc48849fSKiran Chandramohan 2657dc48849fSKiran Chandramohan /// `fir.load` --> `llvm.load` 2658dc48849fSKiran Chandramohan struct LoadOpConversion : public FIROpConversion<fir::LoadOp> { 2659dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2660dc48849fSKiran Chandramohan 2661dc48849fSKiran Chandramohan mlir::LogicalResult 2662dc48849fSKiran Chandramohan matchAndRewrite(fir::LoadOp load, OpAdaptor adaptor, 2663dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2664dc48849fSKiran Chandramohan // fir.box is a special case because it is considered as an ssa values in 2665dc48849fSKiran Chandramohan // fir, but it is lowered as a pointer to a descriptor. So fir.ref<fir.box> 2666dc48849fSKiran Chandramohan // and fir.box end up being the same llvm types and loading a 2667dc48849fSKiran Chandramohan // fir.ref<fir.box> is actually a no op in LLVM. 2668dc48849fSKiran Chandramohan if (load.getType().isa<fir::BoxType>()) { 2669dc48849fSKiran Chandramohan rewriter.replaceOp(load, adaptor.getOperands()[0]); 2670dc48849fSKiran Chandramohan } else { 2671dc48849fSKiran Chandramohan mlir::Type ty = convertType(load.getType()); 2672dc48849fSKiran Chandramohan ArrayRef<NamedAttribute> at = load->getAttrs(); 2673dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::LoadOp>( 2674dc48849fSKiran Chandramohan load, ty, adaptor.getOperands(), at); 2675dc48849fSKiran Chandramohan } 2676dc48849fSKiran Chandramohan return success(); 2677dc48849fSKiran Chandramohan } 2678dc48849fSKiran Chandramohan }; 2679dc48849fSKiran Chandramohan 2680dc48849fSKiran Chandramohan /// Lower `fir.no_reassoc` to LLVM IR dialect. 2681dc48849fSKiran Chandramohan /// TODO: how do we want to enforce this in LLVM-IR? Can we manipulate the fast 2682dc48849fSKiran Chandramohan /// math flags? 2683dc48849fSKiran Chandramohan struct NoReassocOpConversion : public FIROpConversion<fir::NoReassocOp> { 2684dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2685dc48849fSKiran Chandramohan 2686dc48849fSKiran Chandramohan mlir::LogicalResult 2687dc48849fSKiran Chandramohan matchAndRewrite(fir::NoReassocOp noreassoc, OpAdaptor adaptor, 2688dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2689dc48849fSKiran Chandramohan rewriter.replaceOp(noreassoc, adaptor.getOperands()[0]); 2690dc48849fSKiran Chandramohan return success(); 2691dc48849fSKiran Chandramohan } 2692dc48849fSKiran Chandramohan }; 2693dc48849fSKiran Chandramohan 2694dc48849fSKiran Chandramohan static void genCondBrOp(mlir::Location loc, mlir::Value cmp, mlir::Block *dest, 2695dc48849fSKiran Chandramohan Optional<mlir::ValueRange> destOps, 2696dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter, 2697dc48849fSKiran Chandramohan mlir::Block *newBlock) { 2698dc48849fSKiran Chandramohan if (destOps.hasValue()) 2699dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::CondBrOp>(loc, cmp, dest, destOps.getValue(), 2700dc48849fSKiran Chandramohan newBlock, mlir::ValueRange()); 2701dc48849fSKiran Chandramohan else 2702dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::CondBrOp>(loc, cmp, dest, newBlock); 2703dc48849fSKiran Chandramohan } 2704dc48849fSKiran Chandramohan 2705dc48849fSKiran Chandramohan template <typename A, typename B> 2706dc48849fSKiran Chandramohan static void genBrOp(A caseOp, mlir::Block *dest, Optional<B> destOps, 2707dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) { 2708dc48849fSKiran Chandramohan if (destOps.hasValue()) 2709dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::BrOp>(caseOp, destOps.getValue(), 2710dc48849fSKiran Chandramohan dest); 2711dc48849fSKiran Chandramohan else 2712dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::BrOp>(caseOp, llvm::None, dest); 2713dc48849fSKiran Chandramohan } 2714dc48849fSKiran Chandramohan 2715dc48849fSKiran Chandramohan static void genCaseLadderStep(mlir::Location loc, mlir::Value cmp, 2716dc48849fSKiran Chandramohan mlir::Block *dest, 2717dc48849fSKiran Chandramohan Optional<mlir::ValueRange> destOps, 2718dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) { 2719dc48849fSKiran Chandramohan auto *thisBlock = rewriter.getInsertionBlock(); 2720dc48849fSKiran Chandramohan auto *newBlock = createBlock(rewriter, dest); 2721dc48849fSKiran Chandramohan rewriter.setInsertionPointToEnd(thisBlock); 2722dc48849fSKiran Chandramohan genCondBrOp(loc, cmp, dest, destOps, rewriter, newBlock); 2723dc48849fSKiran Chandramohan rewriter.setInsertionPointToEnd(newBlock); 2724dc48849fSKiran Chandramohan } 2725dc48849fSKiran Chandramohan 2726dc48849fSKiran Chandramohan /// Conversion of `fir.select_case` 2727dc48849fSKiran Chandramohan /// 2728dc48849fSKiran Chandramohan /// The `fir.select_case` operation is converted to a if-then-else ladder. 2729dc48849fSKiran Chandramohan /// Depending on the case condition type, one or several comparison and 2730dc48849fSKiran Chandramohan /// conditional branching can be generated. 2731dc48849fSKiran Chandramohan /// 2732dc48849fSKiran Chandramohan /// A a point value case such as `case(4)`, a lower bound case such as 2733dc48849fSKiran Chandramohan /// `case(5:)` or an upper bound case such as `case(:3)` are converted to a 2734dc48849fSKiran Chandramohan /// simple comparison between the selector value and the constant value in the 2735dc48849fSKiran Chandramohan /// case. The block associated with the case condition is then executed if 2736dc48849fSKiran Chandramohan /// the comparison succeed otherwise it branch to the next block with the 2737dc48849fSKiran Chandramohan /// comparison for the the next case conditon. 2738dc48849fSKiran Chandramohan /// 2739dc48849fSKiran Chandramohan /// A closed interval case condition such as `case(7:10)` is converted with a 2740dc48849fSKiran Chandramohan /// first comparison and conditional branching for the lower bound. If 2741dc48849fSKiran Chandramohan /// successful, it branch to a second block with the comparison for the 2742dc48849fSKiran Chandramohan /// upper bound in the same case condition. 2743dc48849fSKiran Chandramohan /// 2744dc48849fSKiran Chandramohan /// TODO: lowering of CHARACTER type cases is not handled yet. 2745dc48849fSKiran Chandramohan struct SelectCaseOpConversion : public FIROpConversion<fir::SelectCaseOp> { 2746dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2747dc48849fSKiran Chandramohan 2748dc48849fSKiran Chandramohan mlir::LogicalResult 2749dc48849fSKiran Chandramohan matchAndRewrite(fir::SelectCaseOp caseOp, OpAdaptor adaptor, 2750dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2751dc48849fSKiran Chandramohan unsigned conds = caseOp.getNumConditions(); 2752dc48849fSKiran Chandramohan llvm::ArrayRef<mlir::Attribute> cases = caseOp.getCases().getValue(); 2753dc48849fSKiran Chandramohan // Type can be CHARACTER, INTEGER, or LOGICAL (C1145) 2754dc48849fSKiran Chandramohan auto ty = caseOp.getSelector().getType(); 2755dc48849fSKiran Chandramohan if (ty.isa<fir::CharacterType>()) { 2756dc48849fSKiran Chandramohan TODO(caseOp.getLoc(), "fir.select_case codegen with character type"); 2757dc48849fSKiran Chandramohan return failure(); 2758dc48849fSKiran Chandramohan } 2759dc48849fSKiran Chandramohan mlir::Value selector = caseOp.getSelector(adaptor.getOperands()); 2760dc48849fSKiran Chandramohan auto loc = caseOp.getLoc(); 2761dc48849fSKiran Chandramohan for (unsigned t = 0; t != conds; ++t) { 2762dc48849fSKiran Chandramohan mlir::Block *dest = caseOp.getSuccessor(t); 2763dc48849fSKiran Chandramohan llvm::Optional<mlir::ValueRange> destOps = 2764dc48849fSKiran Chandramohan caseOp.getSuccessorOperands(adaptor.getOperands(), t); 2765dc48849fSKiran Chandramohan llvm::Optional<mlir::ValueRange> cmpOps = 2766dc48849fSKiran Chandramohan *caseOp.getCompareOperands(adaptor.getOperands(), t); 2767dc48849fSKiran Chandramohan mlir::Value caseArg = *(cmpOps.getValue().begin()); 2768dc48849fSKiran Chandramohan mlir::Attribute attr = cases[t]; 2769dc48849fSKiran Chandramohan if (attr.isa<fir::PointIntervalAttr>()) { 2770dc48849fSKiran Chandramohan auto cmp = rewriter.create<mlir::LLVM::ICmpOp>( 2771dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::eq, selector, caseArg); 2772dc48849fSKiran Chandramohan genCaseLadderStep(loc, cmp, dest, destOps, rewriter); 2773dc48849fSKiran Chandramohan continue; 2774dc48849fSKiran Chandramohan } 2775dc48849fSKiran Chandramohan if (attr.isa<fir::LowerBoundAttr>()) { 2776dc48849fSKiran Chandramohan auto cmp = rewriter.create<mlir::LLVM::ICmpOp>( 2777dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::sle, caseArg, selector); 2778dc48849fSKiran Chandramohan genCaseLadderStep(loc, cmp, dest, destOps, rewriter); 2779dc48849fSKiran Chandramohan continue; 2780dc48849fSKiran Chandramohan } 2781dc48849fSKiran Chandramohan if (attr.isa<fir::UpperBoundAttr>()) { 2782dc48849fSKiran Chandramohan auto cmp = rewriter.create<mlir::LLVM::ICmpOp>( 2783dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::sle, selector, caseArg); 2784dc48849fSKiran Chandramohan genCaseLadderStep(loc, cmp, dest, destOps, rewriter); 2785dc48849fSKiran Chandramohan continue; 2786dc48849fSKiran Chandramohan } 2787dc48849fSKiran Chandramohan if (attr.isa<fir::ClosedIntervalAttr>()) { 2788dc48849fSKiran Chandramohan auto cmp = rewriter.create<mlir::LLVM::ICmpOp>( 2789dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::sle, caseArg, selector); 2790dc48849fSKiran Chandramohan auto *thisBlock = rewriter.getInsertionBlock(); 2791dc48849fSKiran Chandramohan auto *newBlock1 = createBlock(rewriter, dest); 2792dc48849fSKiran Chandramohan auto *newBlock2 = createBlock(rewriter, dest); 2793dc48849fSKiran Chandramohan rewriter.setInsertionPointToEnd(thisBlock); 2794dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::CondBrOp>(loc, cmp, newBlock1, newBlock2); 2795dc48849fSKiran Chandramohan rewriter.setInsertionPointToEnd(newBlock1); 2796dc48849fSKiran Chandramohan mlir::Value caseArg0 = *(cmpOps.getValue().begin() + 1); 2797dc48849fSKiran Chandramohan auto cmp0 = rewriter.create<mlir::LLVM::ICmpOp>( 2798dc48849fSKiran Chandramohan loc, mlir::LLVM::ICmpPredicate::sle, selector, caseArg0); 2799dc48849fSKiran Chandramohan genCondBrOp(loc, cmp0, dest, destOps, rewriter, newBlock2); 2800dc48849fSKiran Chandramohan rewriter.setInsertionPointToEnd(newBlock2); 2801dc48849fSKiran Chandramohan continue; 2802dc48849fSKiran Chandramohan } 2803dc48849fSKiran Chandramohan assert(attr.isa<mlir::UnitAttr>()); 2804dc48849fSKiran Chandramohan assert((t + 1 == conds) && "unit must be last"); 2805dc48849fSKiran Chandramohan genBrOp(caseOp, dest, destOps, rewriter); 2806dc48849fSKiran Chandramohan } 2807dc48849fSKiran Chandramohan return success(); 2808dc48849fSKiran Chandramohan } 2809dc48849fSKiran Chandramohan }; 2810dc48849fSKiran Chandramohan 2811dc48849fSKiran Chandramohan template <typename OP> 2812dc48849fSKiran Chandramohan static void selectMatchAndRewrite(fir::LLVMTypeConverter &lowering, OP select, 2813dc48849fSKiran Chandramohan typename OP::Adaptor adaptor, 2814dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) { 2815dc48849fSKiran Chandramohan unsigned conds = select.getNumConditions(); 2816dc48849fSKiran Chandramohan auto cases = select.getCases().getValue(); 2817dc48849fSKiran Chandramohan mlir::Value selector = adaptor.getSelector(); 2818dc48849fSKiran Chandramohan auto loc = select.getLoc(); 2819dc48849fSKiran Chandramohan assert(conds > 0 && "select must have cases"); 2820dc48849fSKiran Chandramohan 2821dc48849fSKiran Chandramohan llvm::SmallVector<mlir::Block *> destinations; 2822dc48849fSKiran Chandramohan llvm::SmallVector<mlir::ValueRange> destinationsOperands; 2823dc48849fSKiran Chandramohan mlir::Block *defaultDestination; 2824dc48849fSKiran Chandramohan mlir::ValueRange defaultOperands; 2825dc48849fSKiran Chandramohan llvm::SmallVector<int32_t> caseValues; 2826dc48849fSKiran Chandramohan 2827dc48849fSKiran Chandramohan for (unsigned t = 0; t != conds; ++t) { 2828dc48849fSKiran Chandramohan mlir::Block *dest = select.getSuccessor(t); 2829dc48849fSKiran Chandramohan auto destOps = select.getSuccessorOperands(adaptor.getOperands(), t); 2830dc48849fSKiran Chandramohan const mlir::Attribute &attr = cases[t]; 2831dc48849fSKiran Chandramohan if (auto intAttr = attr.template dyn_cast<mlir::IntegerAttr>()) { 2832dc48849fSKiran Chandramohan destinations.push_back(dest); 2833dc48849fSKiran Chandramohan destinationsOperands.push_back(destOps.hasValue() ? *destOps 2834dc48849fSKiran Chandramohan : ValueRange()); 2835dc48849fSKiran Chandramohan caseValues.push_back(intAttr.getInt()); 2836dc48849fSKiran Chandramohan continue; 2837dc48849fSKiran Chandramohan } 2838dc48849fSKiran Chandramohan assert(attr.template dyn_cast_or_null<mlir::UnitAttr>()); 2839dc48849fSKiran Chandramohan assert((t + 1 == conds) && "unit must be last"); 2840dc48849fSKiran Chandramohan defaultDestination = dest; 2841dc48849fSKiran Chandramohan defaultOperands = destOps.hasValue() ? *destOps : ValueRange(); 2842dc48849fSKiran Chandramohan } 2843dc48849fSKiran Chandramohan 2844dc48849fSKiran Chandramohan // LLVM::SwitchOp takes a i32 type for the selector. 2845dc48849fSKiran Chandramohan if (select.getSelector().getType() != rewriter.getI32Type()) 2846dc48849fSKiran Chandramohan selector = 2847dc48849fSKiran Chandramohan rewriter.create<LLVM::TruncOp>(loc, rewriter.getI32Type(), selector); 2848dc48849fSKiran Chandramohan 2849dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::SwitchOp>( 2850dc48849fSKiran Chandramohan select, selector, 2851dc48849fSKiran Chandramohan /*defaultDestination=*/defaultDestination, 2852dc48849fSKiran Chandramohan /*defaultOperands=*/defaultOperands, 2853dc48849fSKiran Chandramohan /*caseValues=*/caseValues, 2854dc48849fSKiran Chandramohan /*caseDestinations=*/destinations, 2855dc48849fSKiran Chandramohan /*caseOperands=*/destinationsOperands, 2856dc48849fSKiran Chandramohan /*branchWeights=*/ArrayRef<int32_t>()); 2857dc48849fSKiran Chandramohan } 2858dc48849fSKiran Chandramohan 2859dc48849fSKiran Chandramohan /// conversion of fir::SelectOp to an if-then-else ladder 2860dc48849fSKiran Chandramohan struct SelectOpConversion : public FIROpConversion<fir::SelectOp> { 2861dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2862dc48849fSKiran Chandramohan 2863dc48849fSKiran Chandramohan mlir::LogicalResult 2864dc48849fSKiran Chandramohan matchAndRewrite(fir::SelectOp op, OpAdaptor adaptor, 2865dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2866dc48849fSKiran Chandramohan selectMatchAndRewrite<fir::SelectOp>(lowerTy(), op, adaptor, rewriter); 2867dc48849fSKiran Chandramohan return success(); 2868dc48849fSKiran Chandramohan } 2869dc48849fSKiran Chandramohan }; 2870dc48849fSKiran Chandramohan 2871dc48849fSKiran Chandramohan /// conversion of fir::SelectRankOp to an if-then-else ladder 2872dc48849fSKiran Chandramohan struct SelectRankOpConversion : public FIROpConversion<fir::SelectRankOp> { 2873dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2874dc48849fSKiran Chandramohan 2875dc48849fSKiran Chandramohan mlir::LogicalResult 2876dc48849fSKiran Chandramohan matchAndRewrite(fir::SelectRankOp op, OpAdaptor adaptor, 2877dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2878dc48849fSKiran Chandramohan selectMatchAndRewrite<fir::SelectRankOp>(lowerTy(), op, adaptor, rewriter); 2879dc48849fSKiran Chandramohan return success(); 2880dc48849fSKiran Chandramohan } 2881dc48849fSKiran Chandramohan }; 2882dc48849fSKiran Chandramohan 2883dc48849fSKiran Chandramohan /// Lower `fir.select_type` to LLVM IR dialect. 2884dc48849fSKiran Chandramohan struct SelectTypeOpConversion : public FIROpConversion<fir::SelectTypeOp> { 2885dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2886dc48849fSKiran Chandramohan 2887dc48849fSKiran Chandramohan mlir::LogicalResult 2888dc48849fSKiran Chandramohan matchAndRewrite(fir::SelectTypeOp select, OpAdaptor adaptor, 2889dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2890dc48849fSKiran Chandramohan mlir::emitError(select.getLoc(), 2891dc48849fSKiran Chandramohan "fir.select_type should have already been converted"); 2892dc48849fSKiran Chandramohan return failure(); 2893dc48849fSKiran Chandramohan } 2894dc48849fSKiran Chandramohan }; 2895dc48849fSKiran Chandramohan 2896dc48849fSKiran Chandramohan /// `fir.store` --> `llvm.store` 2897dc48849fSKiran Chandramohan struct StoreOpConversion : public FIROpConversion<fir::StoreOp> { 2898dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2899dc48849fSKiran Chandramohan 2900dc48849fSKiran Chandramohan mlir::LogicalResult 2901dc48849fSKiran Chandramohan matchAndRewrite(fir::StoreOp store, OpAdaptor adaptor, 2902dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2903dc48849fSKiran Chandramohan if (store.getValue().getType().isa<fir::BoxType>()) { 2904dc48849fSKiran Chandramohan // fir.box value is actually in memory, load it first before storing it. 2905dc48849fSKiran Chandramohan mlir::Location loc = store.getLoc(); 2906dc48849fSKiran Chandramohan mlir::Type boxPtrTy = adaptor.getOperands()[0].getType(); 2907dc48849fSKiran Chandramohan auto val = rewriter.create<mlir::LLVM::LoadOp>( 2908dc48849fSKiran Chandramohan loc, boxPtrTy.cast<mlir::LLVM::LLVMPointerType>().getElementType(), 2909dc48849fSKiran Chandramohan adaptor.getOperands()[0]); 2910dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::StoreOp>( 2911dc48849fSKiran Chandramohan store, val, adaptor.getOperands()[1]); 2912dc48849fSKiran Chandramohan } else { 2913dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::StoreOp>( 2914dc48849fSKiran Chandramohan store, adaptor.getOperands()[0], adaptor.getOperands()[1]); 2915dc48849fSKiran Chandramohan } 2916dc48849fSKiran Chandramohan return success(); 2917dc48849fSKiran Chandramohan } 2918dc48849fSKiran Chandramohan }; 2919dc48849fSKiran Chandramohan 2920dc48849fSKiran Chandramohan namespace { 2921dc48849fSKiran Chandramohan 2922dc48849fSKiran Chandramohan /// Convert `fir.unboxchar` into two `llvm.extractvalue` instructions. One for 2923dc48849fSKiran Chandramohan /// the character buffer and one for the buffer length. 2924dc48849fSKiran Chandramohan struct UnboxCharOpConversion : public FIROpConversion<fir::UnboxCharOp> { 2925dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2926dc48849fSKiran Chandramohan 2927dc48849fSKiran Chandramohan mlir::LogicalResult 2928dc48849fSKiran Chandramohan matchAndRewrite(fir::UnboxCharOp unboxchar, OpAdaptor adaptor, 2929dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2930dc48849fSKiran Chandramohan MLIRContext *ctx = unboxchar.getContext(); 2931dc48849fSKiran Chandramohan 2932dc48849fSKiran Chandramohan mlir::Type lenTy = convertType(unboxchar.getType(1)); 2933dc48849fSKiran Chandramohan mlir::Value tuple = adaptor.getOperands()[0]; 2934dc48849fSKiran Chandramohan mlir::Type tupleTy = tuple.getType(); 2935dc48849fSKiran Chandramohan 2936dc48849fSKiran Chandramohan mlir::Location loc = unboxchar.getLoc(); 2937dc48849fSKiran Chandramohan mlir::Value ptrToBuffer = 2938dc48849fSKiran Chandramohan genExtractValueWithIndex(loc, tuple, tupleTy, rewriter, ctx, 0); 2939dc48849fSKiran Chandramohan 2940dc48849fSKiran Chandramohan mlir::LLVM::ExtractValueOp len = 2941dc48849fSKiran Chandramohan genExtractValueWithIndex(loc, tuple, tupleTy, rewriter, ctx, 1); 2942dc48849fSKiran Chandramohan mlir::Value lenAfterCast = integerCast(loc, rewriter, lenTy, len); 2943dc48849fSKiran Chandramohan 2944dc48849fSKiran Chandramohan rewriter.replaceOp(unboxchar, 2945dc48849fSKiran Chandramohan ArrayRef<mlir::Value>{ptrToBuffer, lenAfterCast}); 2946dc48849fSKiran Chandramohan return success(); 2947dc48849fSKiran Chandramohan } 2948dc48849fSKiran Chandramohan }; 2949dc48849fSKiran Chandramohan 2950dc48849fSKiran Chandramohan /// Lower `fir.unboxproc` operation. Unbox a procedure box value, yielding its 2951dc48849fSKiran Chandramohan /// components. 2952dc48849fSKiran Chandramohan /// TODO: Part of supporting Fortran 2003 procedure pointers. 2953dc48849fSKiran Chandramohan struct UnboxProcOpConversion : public FIROpConversion<fir::UnboxProcOp> { 2954dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2955dc48849fSKiran Chandramohan 2956dc48849fSKiran Chandramohan mlir::LogicalResult 2957dc48849fSKiran Chandramohan matchAndRewrite(fir::UnboxProcOp unboxproc, OpAdaptor adaptor, 2958dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2959dc48849fSKiran Chandramohan TODO(unboxproc.getLoc(), "fir.unboxproc codegen"); 2960dc48849fSKiran Chandramohan return failure(); 2961dc48849fSKiran Chandramohan } 2962dc48849fSKiran Chandramohan }; 2963dc48849fSKiran Chandramohan 2964dc48849fSKiran Chandramohan /// convert to LLVM IR dialect `undef` 2965dc48849fSKiran Chandramohan struct UndefOpConversion : public FIROpConversion<fir::UndefOp> { 2966dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2967dc48849fSKiran Chandramohan 2968dc48849fSKiran Chandramohan mlir::LogicalResult 2969dc48849fSKiran Chandramohan matchAndRewrite(fir::UndefOp undef, OpAdaptor, 2970dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2971dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::UndefOp>( 2972dc48849fSKiran Chandramohan undef, convertType(undef.getType())); 2973dc48849fSKiran Chandramohan return success(); 2974dc48849fSKiran Chandramohan } 2975dc48849fSKiran Chandramohan }; 2976dc48849fSKiran Chandramohan 2977dc48849fSKiran Chandramohan struct ZeroOpConversion : public FIROpConversion<fir::ZeroOp> { 2978dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 2979dc48849fSKiran Chandramohan 2980dc48849fSKiran Chandramohan mlir::LogicalResult 2981dc48849fSKiran Chandramohan matchAndRewrite(fir::ZeroOp zero, OpAdaptor, 2982dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 2983dc48849fSKiran Chandramohan mlir::Type ty = convertType(zero.getType()); 2984dc48849fSKiran Chandramohan if (ty.isa<mlir::LLVM::LLVMPointerType>()) { 2985dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::NullOp>(zero, ty); 2986dc48849fSKiran Chandramohan } else if (ty.isa<mlir::IntegerType>()) { 2987dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::ConstantOp>( 2988dc48849fSKiran Chandramohan zero, ty, mlir::IntegerAttr::get(zero.getType(), 0)); 2989dc48849fSKiran Chandramohan } else if (mlir::LLVM::isCompatibleFloatingPointType(ty)) { 2990dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::ConstantOp>( 2991dc48849fSKiran Chandramohan zero, ty, mlir::FloatAttr::get(zero.getType(), 0.0)); 2992dc48849fSKiran Chandramohan } else { 2993dc48849fSKiran Chandramohan // TODO: create ConstantAggregateZero for FIR aggregate/array types. 2994dc48849fSKiran Chandramohan return rewriter.notifyMatchFailure( 2995dc48849fSKiran Chandramohan zero, 2996dc48849fSKiran Chandramohan "conversion of fir.zero with aggregate type not implemented yet"); 2997dc48849fSKiran Chandramohan } 2998dc48849fSKiran Chandramohan return success(); 2999dc48849fSKiran Chandramohan } 3000dc48849fSKiran Chandramohan }; 3001dc48849fSKiran Chandramohan 3002dc48849fSKiran Chandramohan /// `fir.unreachable` --> `llvm.unreachable` 3003dc48849fSKiran Chandramohan struct UnreachableOpConversion : public FIROpConversion<fir::UnreachableOp> { 3004dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 3005dc48849fSKiran Chandramohan 3006dc48849fSKiran Chandramohan mlir::LogicalResult 3007dc48849fSKiran Chandramohan matchAndRewrite(fir::UnreachableOp unreach, OpAdaptor adaptor, 3008dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 3009dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::UnreachableOp>(unreach); 3010dc48849fSKiran Chandramohan return success(); 3011dc48849fSKiran Chandramohan } 3012dc48849fSKiran Chandramohan }; 3013dc48849fSKiran Chandramohan 3014dc48849fSKiran Chandramohan /// `fir.is_present` --> 3015dc48849fSKiran Chandramohan /// ``` 3016dc48849fSKiran Chandramohan /// %0 = llvm.mlir.constant(0 : i64) 3017dc48849fSKiran Chandramohan /// %1 = llvm.ptrtoint %0 3018dc48849fSKiran Chandramohan /// %2 = llvm.icmp "ne" %1, %0 : i64 3019dc48849fSKiran Chandramohan /// ``` 3020dc48849fSKiran Chandramohan struct IsPresentOpConversion : public FIROpConversion<fir::IsPresentOp> { 3021dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 3022dc48849fSKiran Chandramohan 3023dc48849fSKiran Chandramohan mlir::LogicalResult 3024dc48849fSKiran Chandramohan matchAndRewrite(fir::IsPresentOp isPresent, OpAdaptor adaptor, 3025dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 3026dc48849fSKiran Chandramohan mlir::Type idxTy = lowerTy().indexType(); 3027dc48849fSKiran Chandramohan mlir::Location loc = isPresent.getLoc(); 3028dc48849fSKiran Chandramohan auto ptr = adaptor.getOperands()[0]; 3029dc48849fSKiran Chandramohan 3030dc48849fSKiran Chandramohan if (isPresent.getVal().getType().isa<fir::BoxCharType>()) { 3031dc48849fSKiran Chandramohan auto structTy = ptr.getType().cast<mlir::LLVM::LLVMStructType>(); 3032dc48849fSKiran Chandramohan assert(!structTy.isOpaque() && !structTy.getBody().empty()); 3033dc48849fSKiran Chandramohan 3034dc48849fSKiran Chandramohan mlir::Type ty = structTy.getBody()[0]; 3035dc48849fSKiran Chandramohan mlir::MLIRContext *ctx = isPresent.getContext(); 3036dc48849fSKiran Chandramohan auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 3037dc48849fSKiran Chandramohan ptr = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, ty, ptr, c0); 3038dc48849fSKiran Chandramohan } 3039dc48849fSKiran Chandramohan mlir::LLVM::ConstantOp c0 = 3040dc48849fSKiran Chandramohan genConstantIndex(isPresent.getLoc(), idxTy, rewriter, 0); 3041dc48849fSKiran Chandramohan auto addr = rewriter.create<mlir::LLVM::PtrToIntOp>(loc, idxTy, ptr); 3042dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::ICmpOp>( 3043dc48849fSKiran Chandramohan isPresent, mlir::LLVM::ICmpPredicate::ne, addr, c0); 3044dc48849fSKiran Chandramohan 3045dc48849fSKiran Chandramohan return success(); 3046dc48849fSKiran Chandramohan } 3047dc48849fSKiran Chandramohan }; 3048dc48849fSKiran Chandramohan 3049dc48849fSKiran Chandramohan /// Create value signaling an absent optional argument in a call, e.g. 3050dc48849fSKiran Chandramohan /// `fir.absent !fir.ref<i64>` --> `llvm.mlir.null : !llvm.ptr<i64>` 3051dc48849fSKiran Chandramohan struct AbsentOpConversion : public FIROpConversion<fir::AbsentOp> { 3052dc48849fSKiran Chandramohan using FIROpConversion::FIROpConversion; 3053dc48849fSKiran Chandramohan 3054dc48849fSKiran Chandramohan mlir::LogicalResult 3055dc48849fSKiran Chandramohan matchAndRewrite(fir::AbsentOp absent, OpAdaptor, 3056dc48849fSKiran Chandramohan mlir::ConversionPatternRewriter &rewriter) const override { 3057dc48849fSKiran Chandramohan mlir::Type ty = convertType(absent.getType()); 3058dc48849fSKiran Chandramohan mlir::Location loc = absent.getLoc(); 3059dc48849fSKiran Chandramohan 3060dc48849fSKiran Chandramohan if (absent.getType().isa<fir::BoxCharType>()) { 3061dc48849fSKiran Chandramohan auto structTy = ty.cast<mlir::LLVM::LLVMStructType>(); 3062dc48849fSKiran Chandramohan assert(!structTy.isOpaque() && !structTy.getBody().empty()); 3063dc48849fSKiran Chandramohan auto undefStruct = rewriter.create<mlir::LLVM::UndefOp>(loc, ty); 3064dc48849fSKiran Chandramohan auto nullField = 3065dc48849fSKiran Chandramohan rewriter.create<mlir::LLVM::NullOp>(loc, structTy.getBody()[0]); 3066dc48849fSKiran Chandramohan mlir::MLIRContext *ctx = absent.getContext(); 3067dc48849fSKiran Chandramohan auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 3068dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>( 3069dc48849fSKiran Chandramohan absent, ty, undefStruct, nullField, c0); 3070dc48849fSKiran Chandramohan } else { 3071dc48849fSKiran Chandramohan rewriter.replaceOpWithNewOp<mlir::LLVM::NullOp>(absent, ty); 3072dc48849fSKiran Chandramohan } 3073dc48849fSKiran Chandramohan return success(); 3074dc48849fSKiran Chandramohan } 3075dc48849fSKiran Chandramohan }; 30765d27abe6SValentin Clement 30777b5132daSValentin Clement // 30787b5132daSValentin Clement // Primitive operations on Complex types 30797b5132daSValentin Clement // 30807b5132daSValentin Clement 30817b5132daSValentin Clement /// Generate inline code for complex addition/subtraction 30827b5132daSValentin Clement template <typename LLVMOP, typename OPTY> 3083c2acd453SAlexisPerry static mlir::LLVM::InsertValueOp 3084c2acd453SAlexisPerry complexSum(OPTY sumop, mlir::ValueRange opnds, 30857b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter, 30867b5132daSValentin Clement fir::LLVMTypeConverter &lowering) { 30877b5132daSValentin Clement mlir::Value a = opnds[0]; 30887b5132daSValentin Clement mlir::Value b = opnds[1]; 30897b5132daSValentin Clement auto loc = sumop.getLoc(); 30907b5132daSValentin Clement auto ctx = sumop.getContext(); 30917b5132daSValentin Clement auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 30927b5132daSValentin Clement auto c1 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(1)); 30937b5132daSValentin Clement mlir::Type eleTy = lowering.convertType(getComplexEleTy(sumop.getType())); 30947b5132daSValentin Clement mlir::Type ty = lowering.convertType(sumop.getType()); 30957b5132daSValentin Clement auto x0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c0); 30967b5132daSValentin Clement auto y0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c1); 30977b5132daSValentin Clement auto x1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c0); 30987b5132daSValentin Clement auto y1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c1); 30997b5132daSValentin Clement auto rx = rewriter.create<LLVMOP>(loc, eleTy, x0, x1); 31007b5132daSValentin Clement auto ry = rewriter.create<LLVMOP>(loc, eleTy, y0, y1); 31017b5132daSValentin Clement auto r0 = rewriter.create<mlir::LLVM::UndefOp>(loc, ty); 31027b5132daSValentin Clement auto r1 = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, r0, rx, c0); 31037b5132daSValentin Clement return rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, r1, ry, c1); 31047b5132daSValentin Clement } 3105dc48849fSKiran Chandramohan } // namespace 31067b5132daSValentin Clement 3107c2acd453SAlexisPerry namespace { 31087b5132daSValentin Clement struct AddcOpConversion : public FIROpConversion<fir::AddcOp> { 31097b5132daSValentin Clement using FIROpConversion::FIROpConversion; 31107b5132daSValentin Clement 31117b5132daSValentin Clement mlir::LogicalResult 31127b5132daSValentin Clement matchAndRewrite(fir::AddcOp addc, OpAdaptor adaptor, 31137b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 31147b5132daSValentin Clement // given: (x + iy) + (x' + iy') 31157b5132daSValentin Clement // result: (x + x') + i(y + y') 31167b5132daSValentin Clement auto r = complexSum<mlir::LLVM::FAddOp>(addc, adaptor.getOperands(), 31177b5132daSValentin Clement rewriter, lowerTy()); 31187b5132daSValentin Clement rewriter.replaceOp(addc, r.getResult()); 31197b5132daSValentin Clement return success(); 31207b5132daSValentin Clement } 31217b5132daSValentin Clement }; 31227b5132daSValentin Clement 31237b5132daSValentin Clement struct SubcOpConversion : public FIROpConversion<fir::SubcOp> { 31247b5132daSValentin Clement using FIROpConversion::FIROpConversion; 31257b5132daSValentin Clement 31267b5132daSValentin Clement mlir::LogicalResult 31277b5132daSValentin Clement matchAndRewrite(fir::SubcOp subc, OpAdaptor adaptor, 31287b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 31297b5132daSValentin Clement // given: (x + iy) - (x' + iy') 31307b5132daSValentin Clement // result: (x - x') + i(y - y') 31317b5132daSValentin Clement auto r = complexSum<mlir::LLVM::FSubOp>(subc, adaptor.getOperands(), 31327b5132daSValentin Clement rewriter, lowerTy()); 31337b5132daSValentin Clement rewriter.replaceOp(subc, r.getResult()); 31347b5132daSValentin Clement return success(); 31357b5132daSValentin Clement } 31367b5132daSValentin Clement }; 31377b5132daSValentin Clement 31387b5132daSValentin Clement /// Inlined complex multiply 31397b5132daSValentin Clement struct MulcOpConversion : public FIROpConversion<fir::MulcOp> { 31407b5132daSValentin Clement using FIROpConversion::FIROpConversion; 31417b5132daSValentin Clement 31427b5132daSValentin Clement mlir::LogicalResult 31437b5132daSValentin Clement matchAndRewrite(fir::MulcOp mulc, OpAdaptor adaptor, 31447b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 31457b5132daSValentin Clement // TODO: Can we use a call to __muldc3 ? 31467b5132daSValentin Clement // given: (x + iy) * (x' + iy') 31477b5132daSValentin Clement // result: (xx'-yy')+i(xy'+yx') 31487b5132daSValentin Clement mlir::Value a = adaptor.getOperands()[0]; 31497b5132daSValentin Clement mlir::Value b = adaptor.getOperands()[1]; 31507b5132daSValentin Clement auto loc = mulc.getLoc(); 31517b5132daSValentin Clement auto *ctx = mulc.getContext(); 31527b5132daSValentin Clement auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 31537b5132daSValentin Clement auto c1 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(1)); 31547b5132daSValentin Clement mlir::Type eleTy = convertType(getComplexEleTy(mulc.getType())); 31557b5132daSValentin Clement mlir::Type ty = convertType(mulc.getType()); 31567b5132daSValentin Clement auto x0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c0); 31577b5132daSValentin Clement auto y0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c1); 31587b5132daSValentin Clement auto x1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c0); 31597b5132daSValentin Clement auto y1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c1); 31607b5132daSValentin Clement auto xx = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, x0, x1); 31617b5132daSValentin Clement auto yx = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, y0, x1); 31627b5132daSValentin Clement auto xy = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, x0, y1); 31637b5132daSValentin Clement auto ri = rewriter.create<mlir::LLVM::FAddOp>(loc, eleTy, xy, yx); 31647b5132daSValentin Clement auto yy = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, y0, y1); 31657b5132daSValentin Clement auto rr = rewriter.create<mlir::LLVM::FSubOp>(loc, eleTy, xx, yy); 31667b5132daSValentin Clement auto ra = rewriter.create<mlir::LLVM::UndefOp>(loc, ty); 31677b5132daSValentin Clement auto r1 = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, ra, rr, c0); 31687b5132daSValentin Clement auto r0 = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, r1, ri, c1); 31697b5132daSValentin Clement rewriter.replaceOp(mulc, r0.getResult()); 31707b5132daSValentin Clement return success(); 31717b5132daSValentin Clement } 31727b5132daSValentin Clement }; 31737b5132daSValentin Clement 31747b5132daSValentin Clement /// Inlined complex division 31757b5132daSValentin Clement struct DivcOpConversion : public FIROpConversion<fir::DivcOp> { 31767b5132daSValentin Clement using FIROpConversion::FIROpConversion; 31777b5132daSValentin Clement 31787b5132daSValentin Clement mlir::LogicalResult 31797b5132daSValentin Clement matchAndRewrite(fir::DivcOp divc, OpAdaptor adaptor, 31807b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 31817b5132daSValentin Clement // TODO: Can we use a call to __divdc3 instead? 31827b5132daSValentin Clement // Just generate inline code for now. 31837b5132daSValentin Clement // given: (x + iy) / (x' + iy') 31847b5132daSValentin Clement // result: ((xx'+yy')/d) + i((yx'-xy')/d) where d = x'x' + y'y' 31857b5132daSValentin Clement mlir::Value a = adaptor.getOperands()[0]; 31867b5132daSValentin Clement mlir::Value b = adaptor.getOperands()[1]; 31877b5132daSValentin Clement auto loc = divc.getLoc(); 31887b5132daSValentin Clement auto *ctx = divc.getContext(); 31897b5132daSValentin Clement auto c0 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(0)); 31907b5132daSValentin Clement auto c1 = mlir::ArrayAttr::get(ctx, rewriter.getI32IntegerAttr(1)); 31917b5132daSValentin Clement mlir::Type eleTy = convertType(getComplexEleTy(divc.getType())); 31927b5132daSValentin Clement mlir::Type ty = convertType(divc.getType()); 31937b5132daSValentin Clement auto x0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c0); 31947b5132daSValentin Clement auto y0 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, a, c1); 31957b5132daSValentin Clement auto x1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c0); 31967b5132daSValentin Clement auto y1 = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, b, c1); 31977b5132daSValentin Clement auto xx = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, x0, x1); 31987b5132daSValentin Clement auto x1x1 = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, x1, x1); 31997b5132daSValentin Clement auto yx = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, y0, x1); 32007b5132daSValentin Clement auto xy = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, x0, y1); 32017b5132daSValentin Clement auto yy = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, y0, y1); 32027b5132daSValentin Clement auto y1y1 = rewriter.create<mlir::LLVM::FMulOp>(loc, eleTy, y1, y1); 32037b5132daSValentin Clement auto d = rewriter.create<mlir::LLVM::FAddOp>(loc, eleTy, x1x1, y1y1); 32047b5132daSValentin Clement auto rrn = rewriter.create<mlir::LLVM::FAddOp>(loc, eleTy, xx, yy); 32057b5132daSValentin Clement auto rin = rewriter.create<mlir::LLVM::FSubOp>(loc, eleTy, yx, xy); 32067b5132daSValentin Clement auto rr = rewriter.create<mlir::LLVM::FDivOp>(loc, eleTy, rrn, d); 32077b5132daSValentin Clement auto ri = rewriter.create<mlir::LLVM::FDivOp>(loc, eleTy, rin, d); 32087b5132daSValentin Clement auto ra = rewriter.create<mlir::LLVM::UndefOp>(loc, ty); 32097b5132daSValentin Clement auto r1 = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, ra, rr, c0); 32107b5132daSValentin Clement auto r0 = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, r1, ri, c1); 32117b5132daSValentin Clement rewriter.replaceOp(divc, r0.getResult()); 32127b5132daSValentin Clement return success(); 32137b5132daSValentin Clement } 32147b5132daSValentin Clement }; 32157b5132daSValentin Clement 32167b5132daSValentin Clement /// Inlined complex negation 32177b5132daSValentin Clement struct NegcOpConversion : public FIROpConversion<fir::NegcOp> { 32187b5132daSValentin Clement using FIROpConversion::FIROpConversion; 32197b5132daSValentin Clement 32207b5132daSValentin Clement mlir::LogicalResult 32217b5132daSValentin Clement matchAndRewrite(fir::NegcOp neg, OpAdaptor adaptor, 32227b5132daSValentin Clement mlir::ConversionPatternRewriter &rewriter) const override { 32237b5132daSValentin Clement // given: -(x + iy) 32247b5132daSValentin Clement // result: -x - iy 32257b5132daSValentin Clement auto *ctxt = neg.getContext(); 32267b5132daSValentin Clement auto eleTy = convertType(getComplexEleTy(neg.getType())); 32277b5132daSValentin Clement auto ty = convertType(neg.getType()); 32287b5132daSValentin Clement auto loc = neg.getLoc(); 32297b5132daSValentin Clement mlir::Value o0 = adaptor.getOperands()[0]; 32307b5132daSValentin Clement auto c0 = mlir::ArrayAttr::get(ctxt, rewriter.getI32IntegerAttr(0)); 32317b5132daSValentin Clement auto c1 = mlir::ArrayAttr::get(ctxt, rewriter.getI32IntegerAttr(1)); 32327b5132daSValentin Clement auto rp = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, o0, c0); 32337b5132daSValentin Clement auto ip = rewriter.create<mlir::LLVM::ExtractValueOp>(loc, eleTy, o0, c1); 32347b5132daSValentin Clement auto nrp = rewriter.create<mlir::LLVM::FNegOp>(loc, eleTy, rp); 32357b5132daSValentin Clement auto nip = rewriter.create<mlir::LLVM::FNegOp>(loc, eleTy, ip); 32367b5132daSValentin Clement auto r = rewriter.create<mlir::LLVM::InsertValueOp>(loc, ty, o0, nrp, c0); 32377b5132daSValentin Clement rewriter.replaceOpWithNewOp<mlir::LLVM::InsertValueOp>(neg, ty, r, nip, c1); 32387b5132daSValentin Clement return success(); 32397b5132daSValentin Clement } 32407b5132daSValentin Clement }; 32417b5132daSValentin Clement 32421ed5a90fSValentin Clement /// Conversion pattern for operation that must be dead. The information in these 32431ed5a90fSValentin Clement /// operations is used by other operation. At this point they should not have 32441ed5a90fSValentin Clement /// anymore uses. 32451ed5a90fSValentin Clement /// These operations are normally dead after the pre-codegen pass. 32461ed5a90fSValentin Clement template <typename FromOp> 32471ed5a90fSValentin Clement struct MustBeDeadConversion : public FIROpConversion<FromOp> { 3248013160f6SJean Perier explicit MustBeDeadConversion(fir::LLVMTypeConverter &lowering, 3249013160f6SJean Perier const fir::FIRToLLVMPassOptions &options) 3250013160f6SJean Perier : FIROpConversion<FromOp>(lowering, options) {} 32511ed5a90fSValentin Clement using OpAdaptor = typename FromOp::Adaptor; 32521ed5a90fSValentin Clement 32531ed5a90fSValentin Clement mlir::LogicalResult 32541ed5a90fSValentin Clement matchAndRewrite(FromOp op, OpAdaptor adaptor, 32551ed5a90fSValentin Clement mlir::ConversionPatternRewriter &rewriter) const final { 32561ed5a90fSValentin Clement if (!op->getUses().empty()) 32571ed5a90fSValentin Clement return rewriter.notifyMatchFailure(op, "op must be dead"); 32581ed5a90fSValentin Clement rewriter.eraseOp(op); 32591ed5a90fSValentin Clement return success(); 32601ed5a90fSValentin Clement } 32611ed5a90fSValentin Clement }; 32621ed5a90fSValentin Clement 32631ed5a90fSValentin Clement struct ShapeOpConversion : public MustBeDeadConversion<fir::ShapeOp> { 32641ed5a90fSValentin Clement using MustBeDeadConversion::MustBeDeadConversion; 32651ed5a90fSValentin Clement }; 32661ed5a90fSValentin Clement 32671ed5a90fSValentin Clement struct ShapeShiftOpConversion : public MustBeDeadConversion<fir::ShapeShiftOp> { 32681ed5a90fSValentin Clement using MustBeDeadConversion::MustBeDeadConversion; 32691ed5a90fSValentin Clement }; 32701ed5a90fSValentin Clement 32711ed5a90fSValentin Clement struct ShiftOpConversion : public MustBeDeadConversion<fir::ShiftOp> { 32721ed5a90fSValentin Clement using MustBeDeadConversion::MustBeDeadConversion; 32731ed5a90fSValentin Clement }; 32741ed5a90fSValentin Clement 32751ed5a90fSValentin Clement struct SliceOpConversion : public MustBeDeadConversion<fir::SliceOp> { 32761ed5a90fSValentin Clement using MustBeDeadConversion::MustBeDeadConversion; 32771ed5a90fSValentin Clement }; 32781ed5a90fSValentin Clement 3279044d5b5dSValentin Clement } // namespace 3280044d5b5dSValentin Clement 3281044d5b5dSValentin Clement namespace { 3282044d5b5dSValentin Clement /// Convert FIR dialect to LLVM dialect 3283044d5b5dSValentin Clement /// 3284044d5b5dSValentin Clement /// This pass lowers all FIR dialect operations to LLVM IR dialect. An 3285044d5b5dSValentin Clement /// MLIR pass is used to lower residual Std dialect to LLVM IR dialect. 3286044d5b5dSValentin Clement /// 3287044d5b5dSValentin Clement /// This pass is not complete yet. We are upstreaming it in small patches. 3288044d5b5dSValentin Clement class FIRToLLVMLowering : public fir::FIRToLLVMLoweringBase<FIRToLLVMLowering> { 3289044d5b5dSValentin Clement public: 3290013160f6SJean Perier FIRToLLVMLowering() = default; 3291013160f6SJean Perier FIRToLLVMLowering(fir::FIRToLLVMPassOptions options) : options{options} {} 3292044d5b5dSValentin Clement mlir::ModuleOp getModule() { return getOperation(); } 3293044d5b5dSValentin Clement 3294044d5b5dSValentin Clement void runOnOperation() override final { 32957b5132daSValentin Clement auto mod = getModule(); 32967b5132daSValentin Clement if (!forcedTargetTriple.empty()) { 32977b5132daSValentin Clement fir::setTargetTriple(mod, forcedTargetTriple); 32987b5132daSValentin Clement } 32997b5132daSValentin Clement 3300044d5b5dSValentin Clement auto *context = getModule().getContext(); 3301044d5b5dSValentin Clement fir::LLVMTypeConverter typeConverter{getModule()}; 33029f85c198SRiver Riddle mlir::RewritePatternSet pattern(context); 3303df3b9810SValentin Clement pattern.insert< 3304420ad7ceSAndrzej Warzynski AbsentOpConversion, AddcOpConversion, AddrOfOpConversion, 3305c2acd453SAlexisPerry AllocaOpConversion, AllocMemOpConversion, BoxAddrOpConversion, 3306c2acd453SAlexisPerry BoxCharLenOpConversion, BoxDimsOpConversion, BoxEleSizeOpConversion, 3307c2acd453SAlexisPerry BoxIsAllocOpConversion, BoxIsArrayOpConversion, BoxIsPtrOpConversion, 3308c2acd453SAlexisPerry BoxProcHostOpConversion, BoxRankOpConversion, BoxTypeDescOpConversion, 3309c2acd453SAlexisPerry CallOpConversion, CmpcOpConversion, ConstcOpConversion, 3310e6e7da55SAndrzej Warzynski ConvertOpConversion, CoordinateOpConversion, DispatchOpConversion, 3311e6e7da55SAndrzej Warzynski DispatchTableOpConversion, DTEntryOpConversion, DivcOpConversion, 3312e6e7da55SAndrzej Warzynski EmboxOpConversion, EmboxCharOpConversion, EmboxProcOpConversion, 3313e6e7da55SAndrzej Warzynski ExtractValueOpConversion, FieldIndexOpConversion, FirEndOpConversion, 3314dc48849fSKiran Chandramohan FreeMemOpConversion, GenTypeDescOpConversion, GlobalLenOpConversion, 3315dc48849fSKiran Chandramohan GlobalOpConversion, HasValueOpConversion, InsertOnRangeOpConversion, 3316e6e7da55SAndrzej Warzynski InsertValueOpConversion, IsPresentOpConversion, 3317dc48849fSKiran Chandramohan LenParamIndexOpConversion, LoadOpConversion, MulcOpConversion, 3318dc48849fSKiran Chandramohan NegcOpConversion, NoReassocOpConversion, SelectCaseOpConversion, 3319e6e7da55SAndrzej Warzynski SelectOpConversion, SelectRankOpConversion, SelectTypeOpConversion, 3320e6e7da55SAndrzej Warzynski ShapeOpConversion, ShapeShiftOpConversion, ShiftOpConversion, 3321e6e7da55SAndrzej Warzynski SliceOpConversion, StoreOpConversion, StringLitOpConversion, 3322e6e7da55SAndrzej Warzynski SubcOpConversion, UnboxCharOpConversion, UnboxProcOpConversion, 3323e6e7da55SAndrzej Warzynski UndefOpConversion, UnreachableOpConversion, XArrayCoorOpConversion, 3324013160f6SJean Perier XEmboxOpConversion, XReboxOpConversion, ZeroOpConversion>(typeConverter, 3325013160f6SJean Perier options); 33265a7b9194SRiver Riddle mlir::populateFuncToLLVMConversionPatterns(typeConverter, pattern); 3327044d5b5dSValentin Clement mlir::arith::populateArithmeticToLLVMConversionPatterns(typeConverter, 3328044d5b5dSValentin Clement pattern); 3329ace01605SRiver Riddle mlir::cf::populateControlFlowToLLVMConversionPatterns(typeConverter, 3330ace01605SRiver Riddle pattern); 3331044d5b5dSValentin Clement mlir::ConversionTarget target{*context}; 3332044d5b5dSValentin Clement target.addLegalDialect<mlir::LLVM::LLVMDialect>(); 3333044d5b5dSValentin Clement 3334044d5b5dSValentin Clement // required NOPs for applying a full conversion 3335044d5b5dSValentin Clement target.addLegalOp<mlir::ModuleOp>(); 3336044d5b5dSValentin Clement 3337044d5b5dSValentin Clement // apply the patterns 3338044d5b5dSValentin Clement if (mlir::failed(mlir::applyFullConversion(getModule(), target, 3339044d5b5dSValentin Clement std::move(pattern)))) { 3340044d5b5dSValentin Clement signalPassFailure(); 3341044d5b5dSValentin Clement } 3342044d5b5dSValentin Clement } 3343013160f6SJean Perier 3344013160f6SJean Perier private: 3345013160f6SJean Perier fir::FIRToLLVMPassOptions options; 3346044d5b5dSValentin Clement }; 3347853e79d8SValentin Clement 3348853e79d8SValentin Clement /// Lower from LLVM IR dialect to proper LLVM-IR and dump the module 3349853e79d8SValentin Clement struct LLVMIRLoweringPass 3350853e79d8SValentin Clement : public mlir::PassWrapper<LLVMIRLoweringPass, 3351853e79d8SValentin Clement mlir::OperationPass<mlir::ModuleOp>> { 3352853e79d8SValentin Clement using Printer = fir::LLVMIRLoweringPrinter; 3353853e79d8SValentin Clement LLVMIRLoweringPass(raw_ostream &output, Printer p) 3354853e79d8SValentin Clement : output{output}, printer{p} {} 3355853e79d8SValentin Clement 3356853e79d8SValentin Clement mlir::ModuleOp getModule() { return getOperation(); } 3357853e79d8SValentin Clement 3358853e79d8SValentin Clement void runOnOperation() override final { 3359853e79d8SValentin Clement auto *ctx = getModule().getContext(); 3360853e79d8SValentin Clement auto optName = getModule().getName(); 3361853e79d8SValentin Clement llvm::LLVMContext llvmCtx; 3362853e79d8SValentin Clement if (auto llvmModule = mlir::translateModuleToLLVMIR( 3363853e79d8SValentin Clement getModule(), llvmCtx, optName ? *optName : "FIRModule")) { 3364853e79d8SValentin Clement printer(*llvmModule, output); 3365853e79d8SValentin Clement return; 3366853e79d8SValentin Clement } 3367853e79d8SValentin Clement 3368853e79d8SValentin Clement mlir::emitError(mlir::UnknownLoc::get(ctx), "could not emit LLVM-IR\n"); 3369853e79d8SValentin Clement signalPassFailure(); 3370853e79d8SValentin Clement } 3371853e79d8SValentin Clement 3372853e79d8SValentin Clement private: 3373853e79d8SValentin Clement raw_ostream &output; 3374853e79d8SValentin Clement Printer printer; 3375853e79d8SValentin Clement }; 3376853e79d8SValentin Clement 3377044d5b5dSValentin Clement } // namespace 3378044d5b5dSValentin Clement 3379044d5b5dSValentin Clement std::unique_ptr<mlir::Pass> fir::createFIRToLLVMPass() { 3380044d5b5dSValentin Clement return std::make_unique<FIRToLLVMLowering>(); 3381044d5b5dSValentin Clement } 3382853e79d8SValentin Clement 3383853e79d8SValentin Clement std::unique_ptr<mlir::Pass> 3384013160f6SJean Perier fir::createFIRToLLVMPass(FIRToLLVMPassOptions options) { 3385013160f6SJean Perier return std::make_unique<FIRToLLVMLowering>(options); 3386013160f6SJean Perier } 3387013160f6SJean Perier 3388013160f6SJean Perier std::unique_ptr<mlir::Pass> 3389853e79d8SValentin Clement fir::createLLVMDialectToLLVMPass(raw_ostream &output, 3390853e79d8SValentin Clement fir::LLVMIRLoweringPrinter printer) { 3391853e79d8SValentin Clement return std::make_unique<LLVMIRLoweringPass>(output, printer); 3392853e79d8SValentin Clement } 3393