230 lines
9.1 KiB
C++
230 lines
9.1 KiB
C++
//===- ControlFlowToLLVM.cpp - ControlFlow to LLVM dialect conversion -----===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements a pass to convert MLIR standard and builtin dialects
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// into the LLVM IR dialect.
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//
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//===----------------------------------------------------------------------===//
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#include "mlir/Conversion/ControlFlowToLLVM/ControlFlowToLLVM.h"
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#include "mlir/Conversion/LLVMCommon/ConversionTarget.h"
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#include "mlir/Conversion/LLVMCommon/Pattern.h"
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#include "mlir/Conversion/LLVMCommon/VectorPattern.h"
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#include "mlir/Dialect/ControlFlow/IR/ControlFlowOps.h"
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#include "mlir/Dialect/LLVMIR/FunctionCallUtils.h"
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#include "mlir/Dialect/LLVMIR/LLVMDialect.h"
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#include "mlir/IR/BuiltinOps.h"
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#include "mlir/IR/PatternMatch.h"
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#include "mlir/Pass/Pass.h"
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#include "mlir/Transforms/DialectConversion.h"
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#include "llvm/ADT/StringRef.h"
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#include <functional>
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namespace mlir {
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#define GEN_PASS_DEF_CONVERTCONTROLFLOWTOLLVM
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#include "mlir/Conversion/Passes.h.inc"
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} // namespace mlir
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using namespace mlir;
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#define PASS_NAME "convert-cf-to-llvm"
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namespace {
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/// Lower `cf.assert`. The default lowering calls the `abort` function if the
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/// assertion is violated and has no effect otherwise. The failure message is
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/// ignored by the default lowering but should be propagated by any custom
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/// lowering.
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struct AssertOpLowering : public ConvertOpToLLVMPattern<cf::AssertOp> {
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using ConvertOpToLLVMPattern<cf::AssertOp>::ConvertOpToLLVMPattern;
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LogicalResult
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matchAndRewrite(cf::AssertOp op, OpAdaptor adaptor,
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ConversionPatternRewriter &rewriter) const override {
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auto loc = op.getLoc();
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// Insert the `abort` declaration if necessary.
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auto module = op->getParentOfType<ModuleOp>();
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auto abortFunc = module.lookupSymbol<LLVM::LLVMFuncOp>("abort");
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if (!abortFunc) {
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OpBuilder::InsertionGuard guard(rewriter);
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rewriter.setInsertionPointToStart(module.getBody());
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auto abortFuncTy = LLVM::LLVMFunctionType::get(getVoidType(), {});
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abortFunc = rewriter.create<LLVM::LLVMFuncOp>(rewriter.getUnknownLoc(),
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"abort", abortFuncTy);
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}
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// Split block at `assert` operation.
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Block *opBlock = rewriter.getInsertionBlock();
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auto opPosition = rewriter.getInsertionPoint();
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Block *continuationBlock = rewriter.splitBlock(opBlock, opPosition);
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// Generate IR to call `abort`.
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Block *failureBlock = rewriter.createBlock(opBlock->getParent());
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rewriter.create<LLVM::CallOp>(loc, abortFunc, std::nullopt);
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rewriter.create<LLVM::UnreachableOp>(loc);
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// Generate assertion test.
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rewriter.setInsertionPointToEnd(opBlock);
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rewriter.replaceOpWithNewOp<LLVM::CondBrOp>(
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op, adaptor.getArg(), continuationBlock, failureBlock);
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return success();
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}
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};
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/// The cf->LLVM lowerings for branching ops require that the blocks they jump
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/// to first have updated types which should be handled by a pattern operating
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/// on the parent op.
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static LogicalResult verifyMatchingValues(ConversionPatternRewriter &rewriter,
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ValueRange operands,
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ValueRange blockArgs, Location loc,
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llvm::StringRef messagePrefix) {
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for (const auto &idxAndTypes :
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llvm::enumerate(llvm::zip(blockArgs, operands))) {
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int64_t i = idxAndTypes.index();
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Value argValue =
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rewriter.getRemappedValue(std::get<0>(idxAndTypes.value()));
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Type operandType = std::get<1>(idxAndTypes.value()).getType();
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// In the case of an invalid jump, the block argument will have been
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// remapped to an UnrealizedConversionCast. In the case of a valid jump,
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// there might still be a no-op conversion cast with both types being equal.
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// Consider both of these details to see if the jump would be invalid.
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if (auto op = dyn_cast_or_null<UnrealizedConversionCastOp>(
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argValue.getDefiningOp())) {
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if (op.getOperandTypes().front() != operandType) {
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return rewriter.notifyMatchFailure(loc, [&](Diagnostic &diag) {
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diag << messagePrefix;
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diag << "mismatched types from operand # " << i << " ";
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diag << operandType;
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diag << " not compatible with destination block argument type ";
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diag << op.getOperandTypes().front();
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diag << " which should be converted with the parent op.";
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});
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}
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}
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}
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return success();
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}
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/// Ensure that all block types were updated and then create an LLVM::BrOp
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struct BranchOpLowering : public ConvertOpToLLVMPattern<cf::BranchOp> {
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using ConvertOpToLLVMPattern<cf::BranchOp>::ConvertOpToLLVMPattern;
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LogicalResult
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matchAndRewrite(cf::BranchOp op, typename cf::BranchOp::Adaptor adaptor,
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ConversionPatternRewriter &rewriter) const override {
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if (failed(verifyMatchingValues(rewriter, adaptor.getDestOperands(),
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op.getSuccessor()->getArguments(),
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op.getLoc(),
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/*messagePrefix=*/"")))
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return failure();
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rewriter.replaceOpWithNewOp<LLVM::BrOp>(
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op, adaptor.getOperands(), op->getSuccessors(), op->getAttrs());
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return success();
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}
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};
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/// Ensure that all block types were updated and then create an LLVM::CondBrOp
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struct CondBranchOpLowering : public ConvertOpToLLVMPattern<cf::CondBranchOp> {
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using ConvertOpToLLVMPattern<cf::CondBranchOp>::ConvertOpToLLVMPattern;
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LogicalResult
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matchAndRewrite(cf::CondBranchOp op,
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typename cf::CondBranchOp::Adaptor adaptor,
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ConversionPatternRewriter &rewriter) const override {
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if (failed(verifyMatchingValues(rewriter, adaptor.getFalseDestOperands(),
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op.getFalseDest()->getArguments(),
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op.getLoc(), "in false case branch ")))
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return failure();
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if (failed(verifyMatchingValues(rewriter, adaptor.getTrueDestOperands(),
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op.getTrueDest()->getArguments(),
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op.getLoc(), "in true case branch ")))
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return failure();
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rewriter.replaceOpWithNewOp<LLVM::CondBrOp>(
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op, adaptor.getOperands(), op->getSuccessors(), op->getAttrs());
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return success();
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}
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};
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/// Ensure that all block types were updated and then create an LLVM::SwitchOp
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struct SwitchOpLowering : public ConvertOpToLLVMPattern<cf::SwitchOp> {
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using ConvertOpToLLVMPattern<cf::SwitchOp>::ConvertOpToLLVMPattern;
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LogicalResult
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matchAndRewrite(cf::SwitchOp op, typename cf::SwitchOp::Adaptor adaptor,
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ConversionPatternRewriter &rewriter) const override {
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if (failed(verifyMatchingValues(rewriter, adaptor.getDefaultOperands(),
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op.getDefaultDestination()->getArguments(),
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op.getLoc(), "in switch default case ")))
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return failure();
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for (const auto &i : llvm::enumerate(
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llvm::zip(adaptor.getCaseOperands(), op.getCaseDestinations()))) {
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if (failed(verifyMatchingValues(
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rewriter, std::get<0>(i.value()),
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std::get<1>(i.value())->getArguments(), op.getLoc(),
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"in switch case " + std::to_string(i.index()) + " "))) {
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return failure();
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}
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}
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rewriter.replaceOpWithNewOp<LLVM::SwitchOp>(
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op, adaptor.getOperands(), op->getSuccessors(), op->getAttrs());
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return success();
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}
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};
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} // namespace
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void mlir::cf::populateControlFlowToLLVMConversionPatterns(
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LLVMTypeConverter &converter, RewritePatternSet &patterns) {
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// clang-format off
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patterns.add<
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AssertOpLowering,
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BranchOpLowering,
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CondBranchOpLowering,
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SwitchOpLowering>(converter);
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// clang-format on
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}
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//===----------------------------------------------------------------------===//
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// Pass Definition
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//===----------------------------------------------------------------------===//
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namespace {
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/// A pass converting MLIR operations into the LLVM IR dialect.
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struct ConvertControlFlowToLLVM
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: public impl::ConvertControlFlowToLLVMBase<ConvertControlFlowToLLVM> {
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ConvertControlFlowToLLVM() = default;
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/// Run the dialect converter on the module.
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void runOnOperation() override {
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LLVMConversionTarget target(getContext());
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RewritePatternSet patterns(&getContext());
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LowerToLLVMOptions options(&getContext());
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if (indexBitwidth != kDeriveIndexBitwidthFromDataLayout)
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options.overrideIndexBitwidth(indexBitwidth);
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LLVMTypeConverter converter(&getContext(), options);
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mlir::cf::populateControlFlowToLLVMConversionPatterns(converter, patterns);
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if (failed(applyPartialConversion(getOperation(), target,
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std::move(patterns))))
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signalPassFailure();
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}
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};
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} // namespace
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std::unique_ptr<Pass> mlir::cf::createConvertControlFlowToLLVMPass() {
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return std::make_unique<ConvertControlFlowToLLVM>();
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}
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