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506 lines
20 KiB
C++
506 lines
20 KiB
C++
//===- TestPatterns.cpp - Test dialect pattern driver ---------------------===//
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//
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// Part of the MLIR 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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#include "TestDialect.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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using namespace mlir;
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// Native function for testing NativeCodeCall
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static Value chooseOperand(Value input1, Value input2, BoolAttr choice) {
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return choice.getValue() ? input1 : input2;
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}
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static void createOpI(PatternRewriter &rewriter, Value input) {
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rewriter.create<OpI>(rewriter.getUnknownLoc(), input);
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}
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static void handleNoResultOp(PatternRewriter &rewriter,
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OpSymbolBindingNoResult op) {
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// Turn the no result op to a one-result op.
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rewriter.create<OpSymbolBindingB>(op.getLoc(), op.operand().getType(),
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op.operand());
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}
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namespace {
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#include "TestPatterns.inc"
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} // end anonymous namespace
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//===----------------------------------------------------------------------===//
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// Canonicalizer Driver.
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//===----------------------------------------------------------------------===//
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namespace {
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struct TestPatternDriver : public FunctionPass<TestPatternDriver> {
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void runOnFunction() override {
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mlir::OwningRewritePatternList patterns;
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populateWithGenerated(&getContext(), &patterns);
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// Verify named pattern is generated with expected name.
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patterns.insert<TestNamedPatternRule>(&getContext());
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applyPatternsGreedily(getFunction(), patterns);
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}
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};
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} // end anonymous namespace
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static mlir::PassRegistration<TestPatternDriver>
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pass("test-patterns", "Run test dialect patterns");
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//===----------------------------------------------------------------------===//
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// ReturnType Driver.
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//===----------------------------------------------------------------------===//
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namespace {
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struct ReturnTypeOpMatch : public RewritePattern {
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ReturnTypeOpMatch(MLIRContext *ctx)
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: RewritePattern(OpWithInferTypeInterfaceOp::getOperationName(), 1, ctx) {
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}
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PatternMatchResult matchAndRewrite(Operation *op,
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PatternRewriter &rewriter) const final {
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if (auto retTypeFn = dyn_cast<InferTypeOpInterface>(op)) {
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SmallVector<Value, 4> values(op->getOperands());
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SmallVector<Type, 2> inferedReturnTypes;
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if (failed(retTypeFn.inferReturnTypes(op->getLoc(), values,
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op->getAttrs(), op->getRegions(),
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inferedReturnTypes)))
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return matchFailure();
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SmallVector<Type, 1> resultTypes(op->getResultTypes());
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if (!retTypeFn.isCompatibleReturnTypes(inferedReturnTypes, resultTypes))
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return op->emitOpError(
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"inferred type incompatible with return type of operation"),
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matchFailure();
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// TODO(jpienaar): Split this out to make the test more focused.
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// Create new op with unknown location to verify building with
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// InferTypeOpInterface is triggered.
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auto fop = op->getParentOfType<FuncOp>();
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if (values[0] == fop.getArgument(0)) {
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// Use the 2nd function argument if the first function argument is used
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// when constructing the new op so that a new return type is inferred.
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values[0] = fop.getArgument(1);
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values[1] = fop.getArgument(1);
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// TODO(jpienaar): Expand to regions.
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rewriter.create<OpWithInferTypeInterfaceOp>(
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UnknownLoc::get(op->getContext()), values, op->getAttrs());
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}
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}
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return matchFailure();
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}
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};
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struct TestReturnTypeDriver : public FunctionPass<TestReturnTypeDriver> {
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void runOnFunction() override {
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mlir::OwningRewritePatternList patterns;
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populateWithGenerated(&getContext(), &patterns);
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patterns.insert<ReturnTypeOpMatch>(&getContext());
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applyPatternsGreedily(getFunction(), patterns);
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}
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};
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} // end anonymous namespace
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static mlir::PassRegistration<TestReturnTypeDriver>
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rt_pass("test-return-type", "Run return type functions");
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//===----------------------------------------------------------------------===//
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// Legalization Driver.
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//===----------------------------------------------------------------------===//
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namespace {
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//===----------------------------------------------------------------------===//
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// Region-Block Rewrite Testing
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/// This pattern is a simple pattern that inlines the first region of a given
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/// operation into the parent region.
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struct TestRegionRewriteBlockMovement : public ConversionPattern {
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TestRegionRewriteBlockMovement(MLIRContext *ctx)
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: ConversionPattern("test.region", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// Inline this region into the parent region.
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auto &parentRegion = *op->getParentRegion();
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if (op->getAttr("legalizer.should_clone"))
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rewriter.cloneRegionBefore(op->getRegion(0), parentRegion,
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parentRegion.end());
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else
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rewriter.inlineRegionBefore(op->getRegion(0), parentRegion,
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parentRegion.end());
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// Drop this operation.
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rewriter.eraseOp(op);
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return matchSuccess();
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}
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};
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/// This pattern is a simple pattern that generates a region containing an
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/// illegal operation.
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struct TestRegionRewriteUndo : public RewritePattern {
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TestRegionRewriteUndo(MLIRContext *ctx)
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: RewritePattern("test.region_builder", 1, ctx) {}
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PatternMatchResult matchAndRewrite(Operation *op,
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PatternRewriter &rewriter) const final {
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// Create the region operation with an entry block containing arguments.
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OperationState newRegion(op->getLoc(), "test.region");
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newRegion.addRegion();
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auto *regionOp = rewriter.createOperation(newRegion);
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auto *entryBlock = rewriter.createBlock(®ionOp->getRegion(0));
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entryBlock->addArgument(rewriter.getIntegerType(64));
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// Add an explicitly illegal operation to ensure the conversion fails.
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rewriter.create<ILLegalOpF>(op->getLoc(), rewriter.getIntegerType(32));
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rewriter.create<TestValidOp>(op->getLoc(), ArrayRef<Value>());
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// Drop this operation.
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rewriter.eraseOp(op);
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return matchSuccess();
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}
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};
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//===----------------------------------------------------------------------===//
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// Type-Conversion Rewrite Testing
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/// This patterns erases a region operation that has had a type conversion.
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struct TestDropOpSignatureConversion : public ConversionPattern {
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TestDropOpSignatureConversion(MLIRContext *ctx, TypeConverter &converter)
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: ConversionPattern("test.drop_region_op", 1, ctx), converter(converter) {
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}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const override {
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Region ®ion = op->getRegion(0);
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Block *entry = ®ion.front();
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// Convert the original entry arguments.
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TypeConverter::SignatureConversion result(entry->getNumArguments());
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for (unsigned i = 0, e = entry->getNumArguments(); i != e; ++i)
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if (failed(converter.convertSignatureArg(
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i, entry->getArgument(i).getType(), result)))
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return matchFailure();
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// Convert the region signature and just drop the operation.
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rewriter.applySignatureConversion(®ion, result);
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rewriter.eraseOp(op);
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return matchSuccess();
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}
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/// The type converter to use when rewriting the signature.
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TypeConverter &converter;
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};
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/// This pattern simply updates the operands of the given operation.
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struct TestPassthroughInvalidOp : public ConversionPattern {
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TestPassthroughInvalidOp(MLIRContext *ctx)
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: ConversionPattern("test.invalid", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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rewriter.replaceOpWithNewOp<TestValidOp>(op, llvm::None, operands,
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llvm::None);
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return matchSuccess();
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}
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};
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/// This pattern handles the case of a split return value.
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struct TestSplitReturnType : public ConversionPattern {
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TestSplitReturnType(MLIRContext *ctx)
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: ConversionPattern("test.return", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// Check for a return of F32.
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if (op->getNumOperands() != 1 || !op->getOperand(0).getType().isF32())
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return matchFailure();
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// Check if the first operation is a cast operation, if it is we use the
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// results directly.
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auto *defOp = operands[0].getDefiningOp();
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if (auto packerOp = llvm::dyn_cast_or_null<TestCastOp>(defOp)) {
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rewriter.replaceOpWithNewOp<TestReturnOp>(op, packerOp.getOperands());
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return matchSuccess();
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}
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// Otherwise, fail to match.
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return matchFailure();
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}
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};
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//===----------------------------------------------------------------------===//
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// Multi-Level Type-Conversion Rewrite Testing
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struct TestChangeProducerTypeI32ToF32 : public ConversionPattern {
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TestChangeProducerTypeI32ToF32(MLIRContext *ctx)
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: ConversionPattern("test.type_producer", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// If the type is I32, change the type to F32.
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if (!(*op->result_type_begin()).isInteger(32))
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return matchFailure();
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rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getF32Type());
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return matchSuccess();
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}
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};
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struct TestChangeProducerTypeF32ToF64 : public ConversionPattern {
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TestChangeProducerTypeF32ToF64(MLIRContext *ctx)
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: ConversionPattern("test.type_producer", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// If the type is F32, change the type to F64.
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if (!(*op->result_type_begin()).isF32())
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return matchFailure();
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rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getF64Type());
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return matchSuccess();
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}
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};
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struct TestChangeProducerTypeF32ToInvalid : public ConversionPattern {
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TestChangeProducerTypeF32ToInvalid(MLIRContext *ctx)
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: ConversionPattern("test.type_producer", 10, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// Always convert to B16, even though it is not a legal type. This tests
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// that values are unmapped correctly.
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rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getBF16Type());
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return matchSuccess();
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}
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};
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struct TestUpdateConsumerType : public ConversionPattern {
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TestUpdateConsumerType(MLIRContext *ctx)
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: ConversionPattern("test.type_consumer", 1, ctx) {}
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PatternMatchResult
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matchAndRewrite(Operation *op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const final {
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// Verify that the incoming operand has been successfully remapped to F64.
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if (!operands[0].getType().isF64())
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return matchFailure();
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rewriter.replaceOpWithNewOp<TestTypeConsumerOp>(op, operands[0]);
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return matchSuccess();
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}
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};
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//===----------------------------------------------------------------------===//
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// Non-Root Replacement Rewrite Testing
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/// This pattern generates an invalid operation, but replaces it before the
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/// pattern is finished. This checks that we don't need to legalize the
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/// temporary op.
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struct TestNonRootReplacement : public RewritePattern {
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TestNonRootReplacement(MLIRContext *ctx)
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: RewritePattern("test.replace_non_root", 1, ctx) {}
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PatternMatchResult matchAndRewrite(Operation *op,
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PatternRewriter &rewriter) const final {
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auto resultType = *op->result_type_begin();
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auto illegalOp = rewriter.create<ILLegalOpF>(op->getLoc(), resultType);
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auto legalOp = rewriter.create<LegalOpB>(op->getLoc(), resultType);
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rewriter.replaceOp(illegalOp, {legalOp});
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rewriter.replaceOp(op, {illegalOp});
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return matchSuccess();
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}
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};
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} // namespace
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namespace {
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struct TestTypeConverter : public TypeConverter {
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using TypeConverter::TypeConverter;
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LogicalResult convertType(Type t, SmallVectorImpl<Type> &results) override {
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// Drop I16 types.
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if (t.isInteger(16))
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return success();
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// Convert I64 to F64.
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if (t.isInteger(64)) {
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results.push_back(FloatType::getF64(t.getContext()));
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return success();
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}
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// Split F32 into F16,F16.
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if (t.isF32()) {
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results.assign(2, FloatType::getF16(t.getContext()));
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return success();
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}
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// Otherwise, convert the type directly.
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results.push_back(t);
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return success();
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}
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/// Override the hook to materialize a conversion. This is necessary because
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/// we generate 1->N type mappings.
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Operation *materializeConversion(PatternRewriter &rewriter, Type resultType,
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ArrayRef<Value> inputs,
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Location loc) override {
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return rewriter.create<TestCastOp>(loc, resultType, inputs);
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}
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};
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struct TestLegalizePatternDriver
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: public ModulePass<TestLegalizePatternDriver> {
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/// The mode of conversion to use with the driver.
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enum class ConversionMode { Analysis, Full, Partial };
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TestLegalizePatternDriver(ConversionMode mode) : mode(mode) {}
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void runOnModule() override {
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TestTypeConverter converter;
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mlir::OwningRewritePatternList patterns;
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populateWithGenerated(&getContext(), &patterns);
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patterns
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.insert<TestRegionRewriteBlockMovement, TestRegionRewriteUndo,
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TestPassthroughInvalidOp, TestSplitReturnType,
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TestChangeProducerTypeI32ToF32, TestChangeProducerTypeF32ToF64,
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TestChangeProducerTypeF32ToInvalid, TestUpdateConsumerType,
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TestNonRootReplacement>(&getContext());
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patterns.insert<TestDropOpSignatureConversion>(&getContext(), converter);
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mlir::populateFuncOpTypeConversionPattern(patterns, &getContext(),
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converter);
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// Define the conversion target used for the test.
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ConversionTarget target(getContext());
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target.addLegalOp<ModuleOp, ModuleTerminatorOp>();
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target.addLegalOp<LegalOpA, LegalOpB, TestCastOp, TestValidOp>();
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target
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.addIllegalOp<ILLegalOpF, TestRegionBuilderOp, TestOpWithRegionFold>();
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target.addDynamicallyLegalOp<TestReturnOp>([](TestReturnOp op) {
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// Don't allow F32 operands.
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return llvm::none_of(op.getOperandTypes(),
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[](Type type) { return type.isF32(); });
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});
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target.addDynamicallyLegalOp<FuncOp>(
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[&](FuncOp op) { return converter.isSignatureLegal(op.getType()); });
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// Expect the type_producer/type_consumer operations to only operate on f64.
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target.addDynamicallyLegalOp<TestTypeProducerOp>(
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[](TestTypeProducerOp op) { return op.getType().isF64(); });
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target.addDynamicallyLegalOp<TestTypeConsumerOp>([](TestTypeConsumerOp op) {
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return op.getOperand().getType().isF64();
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});
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// Check support for marking certain operations as recursively legal.
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target.markOpRecursivelyLegal<FuncOp, ModuleOp>([](Operation *op) {
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return static_cast<bool>(
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op->getAttrOfType<UnitAttr>("test.recursively_legal"));
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});
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// Handle a partial conversion.
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if (mode == ConversionMode::Partial) {
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(void)applyPartialConversion(getModule(), target, patterns, &converter);
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return;
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}
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// Handle a full conversion.
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if (mode == ConversionMode::Full) {
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(void)applyFullConversion(getModule(), target, patterns, &converter);
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return;
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}
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// Otherwise, handle an analysis conversion.
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assert(mode == ConversionMode::Analysis);
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// Analyze the convertible operations.
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DenseSet<Operation *> legalizedOps;
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if (failed(applyAnalysisConversion(getModule(), target, patterns,
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legalizedOps, &converter)))
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return signalPassFailure();
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// Emit remarks for each legalizable operation.
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for (auto *op : legalizedOps)
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op->emitRemark() << "op '" << op->getName() << "' is legalizable";
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}
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/// The mode of conversion to use.
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ConversionMode mode;
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};
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} // end anonymous namespace
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static llvm::cl::opt<TestLegalizePatternDriver::ConversionMode>
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legalizerConversionMode(
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"test-legalize-mode",
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llvm::cl::desc("The legalization mode to use with the test driver"),
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llvm::cl::init(TestLegalizePatternDriver::ConversionMode::Partial),
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llvm::cl::values(
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clEnumValN(TestLegalizePatternDriver::ConversionMode::Analysis,
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"analysis", "Perform an analysis conversion"),
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clEnumValN(TestLegalizePatternDriver::ConversionMode::Full, "full",
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"Perform a full conversion"),
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clEnumValN(TestLegalizePatternDriver::ConversionMode::Partial,
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"partial", "Perform a partial conversion")));
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static mlir::PassRegistration<TestLegalizePatternDriver>
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legalizer_pass("test-legalize-patterns",
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"Run test dialect legalization patterns", [] {
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return std::make_unique<TestLegalizePatternDriver>(
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legalizerConversionMode);
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});
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//===----------------------------------------------------------------------===//
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// ConversionPatternRewriter::getRemappedValue testing. This method is used
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// to get the remapped value of a original value that was replaced using
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// ConversionPatternRewriter.
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namespace {
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/// Converter that replaces a one-result one-operand OneVResOneVOperandOp1 with
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/// a one-operand two-result OneVResOneVOperandOp1 by replicating its original
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/// operand twice.
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///
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/// Example:
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/// %1 = test.one_variadic_out_one_variadic_in1"(%0)
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/// is replaced with:
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/// %1 = test.one_variadic_out_one_variadic_in1"(%0, %0)
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struct OneVResOneVOperandOp1Converter
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: public OpConversionPattern<OneVResOneVOperandOp1> {
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using OpConversionPattern<OneVResOneVOperandOp1>::OpConversionPattern;
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PatternMatchResult
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matchAndRewrite(OneVResOneVOperandOp1 op, ArrayRef<Value> operands,
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ConversionPatternRewriter &rewriter) const override {
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auto origOps = op.getOperands();
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assert(std::distance(origOps.begin(), origOps.end()) == 1 &&
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"One operand expected");
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Value origOp = *origOps.begin();
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SmallVector<Value, 2> remappedOperands;
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// Replicate the remapped original operand twice. Note that we don't used
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// the remapped 'operand' since the goal is testing 'getRemappedValue'.
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remappedOperands.push_back(rewriter.getRemappedValue(origOp));
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remappedOperands.push_back(rewriter.getRemappedValue(origOp));
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SmallVector<Type, 1> resultTypes(op.getResultTypes());
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rewriter.replaceOpWithNewOp<OneVResOneVOperandOp1>(op, resultTypes,
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remappedOperands);
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return matchSuccess();
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}
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};
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struct TestRemappedValue : public mlir::FunctionPass<TestRemappedValue> {
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void runOnFunction() override {
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mlir::OwningRewritePatternList patterns;
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patterns.insert<OneVResOneVOperandOp1Converter>(&getContext());
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mlir::ConversionTarget target(getContext());
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target.addLegalOp<ModuleOp, ModuleTerminatorOp, FuncOp, TestReturnOp>();
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// We make OneVResOneVOperandOp1 legal only when it has more that one
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// operand. This will trigger the conversion that will replace one-operand
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// OneVResOneVOperandOp1 with two-operand OneVResOneVOperandOp1.
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target.addDynamicallyLegalOp<OneVResOneVOperandOp1>(
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[](Operation *op) -> bool {
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return std::distance(op->operand_begin(), op->operand_end()) > 1;
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});
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if (failed(mlir::applyFullConversion(getFunction(), target, patterns))) {
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signalPassFailure();
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}
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}
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};
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} // end anonymous namespace
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static PassRegistration<TestRemappedValue> remapped_value_pass(
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"test-remapped-value",
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"Test public remapped value mechanism in ConversionPatternRewriter");
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