1 //===- TestPatterns.cpp - Test dialect pattern driver ---------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "TestDialect.h" 10 #include "TestTypes.h" 11 #include "mlir/Dialect/Arithmetic/IR/Arithmetic.h" 12 #include "mlir/Dialect/StandardOps/IR/Ops.h" 13 #include "mlir/Dialect/StandardOps/Transforms/FuncConversions.h" 14 #include "mlir/Dialect/Tensor/IR/Tensor.h" 15 #include "mlir/IR/Matchers.h" 16 #include "mlir/Pass/Pass.h" 17 #include "mlir/Transforms/DialectConversion.h" 18 #include "mlir/Transforms/FoldUtils.h" 19 #include "mlir/Transforms/GreedyPatternRewriteDriver.h" 20 21 using namespace mlir; 22 using namespace test; 23 24 // Native function for testing NativeCodeCall 25 static Value chooseOperand(Value input1, Value input2, BoolAttr choice) { 26 return choice.getValue() ? input1 : input2; 27 } 28 29 static void createOpI(PatternRewriter &rewriter, Location loc, Value input) { 30 rewriter.create<OpI>(loc, input); 31 } 32 33 static void handleNoResultOp(PatternRewriter &rewriter, 34 OpSymbolBindingNoResult op) { 35 // Turn the no result op to a one-result op. 36 rewriter.create<OpSymbolBindingB>(op.getLoc(), op.getOperand().getType(), 37 op.getOperand()); 38 } 39 40 static bool getFirstI32Result(Operation *op, Value &value) { 41 if (!Type(op->getResult(0).getType()).isSignlessInteger(32)) 42 return false; 43 value = op->getResult(0); 44 return true; 45 } 46 47 static Value bindNativeCodeCallResult(Value value) { return value; } 48 49 static SmallVector<Value, 2> bindMultipleNativeCodeCallResult(Value input1, 50 Value input2) { 51 return SmallVector<Value, 2>({input2, input1}); 52 } 53 54 // Test that natives calls are only called once during rewrites. 55 // OpM_Test will return Pi, increased by 1 for each subsequent calls. 56 // This let us check the number of times OpM_Test was called by inspecting 57 // the returned value in the MLIR output. 58 static int64_t opMIncreasingValue = 314159265; 59 static Attribute opMTest(PatternRewriter &rewriter, Value val) { 60 int64_t i = opMIncreasingValue++; 61 return rewriter.getIntegerAttr(rewriter.getIntegerType(32), i); 62 } 63 64 namespace { 65 #include "TestPatterns.inc" 66 } // namespace 67 68 //===----------------------------------------------------------------------===// 69 // Test Reduce Pattern Interface 70 //===----------------------------------------------------------------------===// 71 72 void test::populateTestReductionPatterns(RewritePatternSet &patterns) { 73 populateWithGenerated(patterns); 74 } 75 76 //===----------------------------------------------------------------------===// 77 // Canonicalizer Driver. 78 //===----------------------------------------------------------------------===// 79 80 namespace { 81 struct FoldingPattern : public RewritePattern { 82 public: 83 FoldingPattern(MLIRContext *context) 84 : RewritePattern(TestOpInPlaceFoldAnchor::getOperationName(), 85 /*benefit=*/1, context) {} 86 87 LogicalResult matchAndRewrite(Operation *op, 88 PatternRewriter &rewriter) const override { 89 // Exercise OperationFolder API for a single-result operation that is folded 90 // upon construction. The operation being created through the folder has an 91 // in-place folder, and it should be still present in the output. 92 // Furthermore, the folder should not crash when attempting to recover the 93 // (unchanged) operation result. 94 OperationFolder folder(op->getContext()); 95 Value result = folder.create<TestOpInPlaceFold>( 96 rewriter, op->getLoc(), rewriter.getIntegerType(32), op->getOperand(0), 97 rewriter.getI32IntegerAttr(0)); 98 assert(result); 99 rewriter.replaceOp(op, result); 100 return success(); 101 } 102 }; 103 104 /// This pattern creates a foldable operation at the entry point of the block. 105 /// This tests the situation where the operation folder will need to replace an 106 /// operation with a previously created constant that does not initially 107 /// dominate the operation to replace. 108 struct FolderInsertBeforePreviouslyFoldedConstantPattern 109 : public OpRewritePattern<TestCastOp> { 110 public: 111 using OpRewritePattern<TestCastOp>::OpRewritePattern; 112 113 LogicalResult matchAndRewrite(TestCastOp op, 114 PatternRewriter &rewriter) const override { 115 if (!op->hasAttr("test_fold_before_previously_folded_op")) 116 return failure(); 117 rewriter.setInsertionPointToStart(op->getBlock()); 118 119 auto constOp = rewriter.create<arith::ConstantOp>( 120 op.getLoc(), rewriter.getBoolAttr(true)); 121 rewriter.replaceOpWithNewOp<TestCastOp>(op, rewriter.getI32Type(), 122 Value(constOp)); 123 return success(); 124 } 125 }; 126 127 struct TestPatternDriver 128 : public PassWrapper<TestPatternDriver, OperationPass<FuncOp>> { 129 StringRef getArgument() const final { return "test-patterns"; } 130 StringRef getDescription() const final { return "Run test dialect patterns"; } 131 void runOnOperation() override { 132 mlir::RewritePatternSet patterns(&getContext()); 133 populateWithGenerated(patterns); 134 135 // Verify named pattern is generated with expected name. 136 patterns.add<FoldingPattern, TestNamedPatternRule, 137 FolderInsertBeforePreviouslyFoldedConstantPattern>( 138 &getContext()); 139 140 (void)applyPatternsAndFoldGreedily(getOperation(), std::move(patterns)); 141 } 142 }; 143 } // namespace 144 145 //===----------------------------------------------------------------------===// 146 // ReturnType Driver. 147 //===----------------------------------------------------------------------===// 148 149 namespace { 150 // Generate ops for each instance where the type can be successfully inferred. 151 template <typename OpTy> 152 static void invokeCreateWithInferredReturnType(Operation *op) { 153 auto *context = op->getContext(); 154 auto fop = op->getParentOfType<FuncOp>(); 155 auto location = UnknownLoc::get(context); 156 OpBuilder b(op); 157 b.setInsertionPointAfter(op); 158 159 // Use permutations of 2 args as operands. 160 assert(fop.getNumArguments() >= 2); 161 for (int i = 0, e = fop.getNumArguments(); i < e; ++i) { 162 for (int j = 0; j < e; ++j) { 163 std::array<Value, 2> values = {{fop.getArgument(i), fop.getArgument(j)}}; 164 SmallVector<Type, 2> inferredReturnTypes; 165 if (succeeded(OpTy::inferReturnTypes( 166 context, llvm::None, values, op->getAttrDictionary(), 167 op->getRegions(), inferredReturnTypes))) { 168 OperationState state(location, OpTy::getOperationName()); 169 // TODO: Expand to regions. 170 OpTy::build(b, state, values, op->getAttrs()); 171 (void)b.createOperation(state); 172 } 173 } 174 } 175 } 176 177 static void reifyReturnShape(Operation *op) { 178 OpBuilder b(op); 179 180 // Use permutations of 2 args as operands. 181 auto shapedOp = cast<OpWithShapedTypeInferTypeInterfaceOp>(op); 182 SmallVector<Value, 2> shapes; 183 if (failed(shapedOp.reifyReturnTypeShapes(b, op->getOperands(), shapes)) || 184 !llvm::hasSingleElement(shapes)) 185 return; 186 for (const auto &it : llvm::enumerate(shapes)) { 187 op->emitRemark() << "value " << it.index() << ": " 188 << it.value().getDefiningOp(); 189 } 190 } 191 192 struct TestReturnTypeDriver 193 : public PassWrapper<TestReturnTypeDriver, OperationPass<FuncOp>> { 194 void getDependentDialects(DialectRegistry ®istry) const override { 195 registry.insert<tensor::TensorDialect>(); 196 } 197 StringRef getArgument() const final { return "test-return-type"; } 198 StringRef getDescription() const final { return "Run return type functions"; } 199 200 void runOnOperation() override { 201 if (getOperation().getName() == "testCreateFunctions") { 202 std::vector<Operation *> ops; 203 // Collect ops to avoid triggering on inserted ops. 204 for (auto &op : getOperation().getBody().front()) 205 ops.push_back(&op); 206 // Generate test patterns for each, but skip terminator. 207 for (auto *op : llvm::makeArrayRef(ops).drop_back()) { 208 // Test create method of each of the Op classes below. The resultant 209 // output would be in reverse order underneath `op` from which 210 // the attributes and regions are used. 211 invokeCreateWithInferredReturnType<OpWithInferTypeInterfaceOp>(op); 212 invokeCreateWithInferredReturnType< 213 OpWithShapedTypeInferTypeInterfaceOp>(op); 214 }; 215 return; 216 } 217 if (getOperation().getName() == "testReifyFunctions") { 218 std::vector<Operation *> ops; 219 // Collect ops to avoid triggering on inserted ops. 220 for (auto &op : getOperation().getBody().front()) 221 if (isa<OpWithShapedTypeInferTypeInterfaceOp>(op)) 222 ops.push_back(&op); 223 // Generate test patterns for each, but skip terminator. 224 for (auto *op : ops) 225 reifyReturnShape(op); 226 } 227 } 228 }; 229 } // namespace 230 231 namespace { 232 struct TestDerivedAttributeDriver 233 : public PassWrapper<TestDerivedAttributeDriver, OperationPass<FuncOp>> { 234 StringRef getArgument() const final { return "test-derived-attr"; } 235 StringRef getDescription() const final { 236 return "Run test derived attributes"; 237 } 238 void runOnOperation() override; 239 }; 240 } // namespace 241 242 void TestDerivedAttributeDriver::runOnOperation() { 243 getOperation().walk([](DerivedAttributeOpInterface dOp) { 244 auto dAttr = dOp.materializeDerivedAttributes(); 245 if (!dAttr) 246 return; 247 for (auto d : dAttr) 248 dOp.emitRemark() << d.getName().getValue() << " = " << d.getValue(); 249 }); 250 } 251 252 //===----------------------------------------------------------------------===// 253 // Legalization Driver. 254 //===----------------------------------------------------------------------===// 255 256 namespace { 257 //===----------------------------------------------------------------------===// 258 // Region-Block Rewrite Testing 259 260 /// This pattern is a simple pattern that inlines the first region of a given 261 /// operation into the parent region. 262 struct TestRegionRewriteBlockMovement : public ConversionPattern { 263 TestRegionRewriteBlockMovement(MLIRContext *ctx) 264 : ConversionPattern("test.region", 1, ctx) {} 265 266 LogicalResult 267 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 268 ConversionPatternRewriter &rewriter) const final { 269 // Inline this region into the parent region. 270 auto &parentRegion = *op->getParentRegion(); 271 auto &opRegion = op->getRegion(0); 272 if (op->getAttr("legalizer.should_clone")) 273 rewriter.cloneRegionBefore(opRegion, parentRegion, parentRegion.end()); 274 else 275 rewriter.inlineRegionBefore(opRegion, parentRegion, parentRegion.end()); 276 277 if (op->getAttr("legalizer.erase_old_blocks")) { 278 while (!opRegion.empty()) 279 rewriter.eraseBlock(&opRegion.front()); 280 } 281 282 // Drop this operation. 283 rewriter.eraseOp(op); 284 return success(); 285 } 286 }; 287 /// This pattern is a simple pattern that generates a region containing an 288 /// illegal operation. 289 struct TestRegionRewriteUndo : public RewritePattern { 290 TestRegionRewriteUndo(MLIRContext *ctx) 291 : RewritePattern("test.region_builder", 1, ctx) {} 292 293 LogicalResult matchAndRewrite(Operation *op, 294 PatternRewriter &rewriter) const final { 295 // Create the region operation with an entry block containing arguments. 296 OperationState newRegion(op->getLoc(), "test.region"); 297 newRegion.addRegion(); 298 auto *regionOp = rewriter.createOperation(newRegion); 299 auto *entryBlock = rewriter.createBlock(®ionOp->getRegion(0)); 300 entryBlock->addArgument(rewriter.getIntegerType(64)); 301 302 // Add an explicitly illegal operation to ensure the conversion fails. 303 rewriter.create<ILLegalOpF>(op->getLoc(), rewriter.getIntegerType(32)); 304 rewriter.create<TestValidOp>(op->getLoc(), ArrayRef<Value>()); 305 306 // Drop this operation. 307 rewriter.eraseOp(op); 308 return success(); 309 } 310 }; 311 /// A simple pattern that creates a block at the end of the parent region of the 312 /// matched operation. 313 struct TestCreateBlock : public RewritePattern { 314 TestCreateBlock(MLIRContext *ctx) 315 : RewritePattern("test.create_block", /*benefit=*/1, ctx) {} 316 317 LogicalResult matchAndRewrite(Operation *op, 318 PatternRewriter &rewriter) const final { 319 Region ®ion = *op->getParentRegion(); 320 Type i32Type = rewriter.getIntegerType(32); 321 rewriter.createBlock(®ion, region.end(), {i32Type, i32Type}); 322 rewriter.create<TerminatorOp>(op->getLoc()); 323 rewriter.replaceOp(op, {}); 324 return success(); 325 } 326 }; 327 328 /// A simple pattern that creates a block containing an invalid operation in 329 /// order to trigger the block creation undo mechanism. 330 struct TestCreateIllegalBlock : public RewritePattern { 331 TestCreateIllegalBlock(MLIRContext *ctx) 332 : RewritePattern("test.create_illegal_block", /*benefit=*/1, ctx) {} 333 334 LogicalResult matchAndRewrite(Operation *op, 335 PatternRewriter &rewriter) const final { 336 Region ®ion = *op->getParentRegion(); 337 Type i32Type = rewriter.getIntegerType(32); 338 rewriter.createBlock(®ion, region.end(), {i32Type, i32Type}); 339 // Create an illegal op to ensure the conversion fails. 340 rewriter.create<ILLegalOpF>(op->getLoc(), i32Type); 341 rewriter.create<TerminatorOp>(op->getLoc()); 342 rewriter.replaceOp(op, {}); 343 return success(); 344 } 345 }; 346 347 /// A simple pattern that tests the undo mechanism when replacing the uses of a 348 /// block argument. 349 struct TestUndoBlockArgReplace : public ConversionPattern { 350 TestUndoBlockArgReplace(MLIRContext *ctx) 351 : ConversionPattern("test.undo_block_arg_replace", /*benefit=*/1, ctx) {} 352 353 LogicalResult 354 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 355 ConversionPatternRewriter &rewriter) const final { 356 auto illegalOp = 357 rewriter.create<ILLegalOpF>(op->getLoc(), rewriter.getF32Type()); 358 rewriter.replaceUsesOfBlockArgument(op->getRegion(0).getArgument(0), 359 illegalOp); 360 rewriter.updateRootInPlace(op, [] {}); 361 return success(); 362 } 363 }; 364 365 /// A rewrite pattern that tests the undo mechanism when erasing a block. 366 struct TestUndoBlockErase : public ConversionPattern { 367 TestUndoBlockErase(MLIRContext *ctx) 368 : ConversionPattern("test.undo_block_erase", /*benefit=*/1, ctx) {} 369 370 LogicalResult 371 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 372 ConversionPatternRewriter &rewriter) const final { 373 Block *secondBlock = &*std::next(op->getRegion(0).begin()); 374 rewriter.setInsertionPointToStart(secondBlock); 375 rewriter.create<ILLegalOpF>(op->getLoc(), rewriter.getF32Type()); 376 rewriter.eraseBlock(secondBlock); 377 rewriter.updateRootInPlace(op, [] {}); 378 return success(); 379 } 380 }; 381 382 //===----------------------------------------------------------------------===// 383 // Type-Conversion Rewrite Testing 384 385 /// This patterns erases a region operation that has had a type conversion. 386 struct TestDropOpSignatureConversion : public ConversionPattern { 387 TestDropOpSignatureConversion(MLIRContext *ctx, TypeConverter &converter) 388 : ConversionPattern(converter, "test.drop_region_op", 1, ctx) {} 389 LogicalResult 390 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 391 ConversionPatternRewriter &rewriter) const override { 392 Region ®ion = op->getRegion(0); 393 Block *entry = ®ion.front(); 394 395 // Convert the original entry arguments. 396 TypeConverter &converter = *getTypeConverter(); 397 TypeConverter::SignatureConversion result(entry->getNumArguments()); 398 if (failed(converter.convertSignatureArgs(entry->getArgumentTypes(), 399 result)) || 400 failed(rewriter.convertRegionTypes(®ion, converter, &result))) 401 return failure(); 402 403 // Convert the region signature and just drop the operation. 404 rewriter.eraseOp(op); 405 return success(); 406 } 407 }; 408 /// This pattern simply updates the operands of the given operation. 409 struct TestPassthroughInvalidOp : public ConversionPattern { 410 TestPassthroughInvalidOp(MLIRContext *ctx) 411 : ConversionPattern("test.invalid", 1, ctx) {} 412 LogicalResult 413 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 414 ConversionPatternRewriter &rewriter) const final { 415 rewriter.replaceOpWithNewOp<TestValidOp>(op, llvm::None, operands, 416 llvm::None); 417 return success(); 418 } 419 }; 420 /// This pattern handles the case of a split return value. 421 struct TestSplitReturnType : public ConversionPattern { 422 TestSplitReturnType(MLIRContext *ctx) 423 : ConversionPattern("test.return", 1, ctx) {} 424 LogicalResult 425 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 426 ConversionPatternRewriter &rewriter) const final { 427 // Check for a return of F32. 428 if (op->getNumOperands() != 1 || !op->getOperand(0).getType().isF32()) 429 return failure(); 430 431 // Check if the first operation is a cast operation, if it is we use the 432 // results directly. 433 auto *defOp = operands[0].getDefiningOp(); 434 if (auto packerOp = 435 llvm::dyn_cast_or_null<UnrealizedConversionCastOp>(defOp)) { 436 rewriter.replaceOpWithNewOp<TestReturnOp>(op, packerOp.getOperands()); 437 return success(); 438 } 439 440 // Otherwise, fail to match. 441 return failure(); 442 } 443 }; 444 445 //===----------------------------------------------------------------------===// 446 // Multi-Level Type-Conversion Rewrite Testing 447 struct TestChangeProducerTypeI32ToF32 : public ConversionPattern { 448 TestChangeProducerTypeI32ToF32(MLIRContext *ctx) 449 : ConversionPattern("test.type_producer", 1, ctx) {} 450 LogicalResult 451 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 452 ConversionPatternRewriter &rewriter) const final { 453 // If the type is I32, change the type to F32. 454 if (!Type(*op->result_type_begin()).isSignlessInteger(32)) 455 return failure(); 456 rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getF32Type()); 457 return success(); 458 } 459 }; 460 struct TestChangeProducerTypeF32ToF64 : public ConversionPattern { 461 TestChangeProducerTypeF32ToF64(MLIRContext *ctx) 462 : ConversionPattern("test.type_producer", 1, ctx) {} 463 LogicalResult 464 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 465 ConversionPatternRewriter &rewriter) const final { 466 // If the type is F32, change the type to F64. 467 if (!Type(*op->result_type_begin()).isF32()) 468 return rewriter.notifyMatchFailure(op, "expected single f32 operand"); 469 rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getF64Type()); 470 return success(); 471 } 472 }; 473 struct TestChangeProducerTypeF32ToInvalid : public ConversionPattern { 474 TestChangeProducerTypeF32ToInvalid(MLIRContext *ctx) 475 : ConversionPattern("test.type_producer", 10, ctx) {} 476 LogicalResult 477 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 478 ConversionPatternRewriter &rewriter) const final { 479 // Always convert to B16, even though it is not a legal type. This tests 480 // that values are unmapped correctly. 481 rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, rewriter.getBF16Type()); 482 return success(); 483 } 484 }; 485 struct TestUpdateConsumerType : public ConversionPattern { 486 TestUpdateConsumerType(MLIRContext *ctx) 487 : ConversionPattern("test.type_consumer", 1, ctx) {} 488 LogicalResult 489 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 490 ConversionPatternRewriter &rewriter) const final { 491 // Verify that the incoming operand has been successfully remapped to F64. 492 if (!operands[0].getType().isF64()) 493 return failure(); 494 rewriter.replaceOpWithNewOp<TestTypeConsumerOp>(op, operands[0]); 495 return success(); 496 } 497 }; 498 499 //===----------------------------------------------------------------------===// 500 // Non-Root Replacement Rewrite Testing 501 /// This pattern generates an invalid operation, but replaces it before the 502 /// pattern is finished. This checks that we don't need to legalize the 503 /// temporary op. 504 struct TestNonRootReplacement : public RewritePattern { 505 TestNonRootReplacement(MLIRContext *ctx) 506 : RewritePattern("test.replace_non_root", 1, ctx) {} 507 508 LogicalResult matchAndRewrite(Operation *op, 509 PatternRewriter &rewriter) const final { 510 auto resultType = *op->result_type_begin(); 511 auto illegalOp = rewriter.create<ILLegalOpF>(op->getLoc(), resultType); 512 auto legalOp = rewriter.create<LegalOpB>(op->getLoc(), resultType); 513 514 rewriter.replaceOp(illegalOp, {legalOp}); 515 rewriter.replaceOp(op, {illegalOp}); 516 return success(); 517 } 518 }; 519 520 //===----------------------------------------------------------------------===// 521 // Recursive Rewrite Testing 522 /// This pattern is applied to the same operation multiple times, but has a 523 /// bounded recursion. 524 struct TestBoundedRecursiveRewrite 525 : public OpRewritePattern<TestRecursiveRewriteOp> { 526 using OpRewritePattern<TestRecursiveRewriteOp>::OpRewritePattern; 527 528 void initialize() { 529 // The conversion target handles bounding the recursion of this pattern. 530 setHasBoundedRewriteRecursion(); 531 } 532 533 LogicalResult matchAndRewrite(TestRecursiveRewriteOp op, 534 PatternRewriter &rewriter) const final { 535 // Decrement the depth of the op in-place. 536 rewriter.updateRootInPlace(op, [&] { 537 op->setAttr("depth", rewriter.getI64IntegerAttr(op.getDepth() - 1)); 538 }); 539 return success(); 540 } 541 }; 542 543 struct TestNestedOpCreationUndoRewrite 544 : public OpRewritePattern<IllegalOpWithRegionAnchor> { 545 using OpRewritePattern<IllegalOpWithRegionAnchor>::OpRewritePattern; 546 547 LogicalResult matchAndRewrite(IllegalOpWithRegionAnchor op, 548 PatternRewriter &rewriter) const final { 549 // rewriter.replaceOpWithNewOp<IllegalOpWithRegion>(op); 550 rewriter.replaceOpWithNewOp<IllegalOpWithRegion>(op); 551 return success(); 552 }; 553 }; 554 555 // This pattern matches `test.blackhole` and delete this op and its producer. 556 struct TestReplaceEraseOp : public OpRewritePattern<BlackHoleOp> { 557 using OpRewritePattern<BlackHoleOp>::OpRewritePattern; 558 559 LogicalResult matchAndRewrite(BlackHoleOp op, 560 PatternRewriter &rewriter) const final { 561 Operation *producer = op.getOperand().getDefiningOp(); 562 // Always erase the user before the producer, the framework should handle 563 // this correctly. 564 rewriter.eraseOp(op); 565 rewriter.eraseOp(producer); 566 return success(); 567 }; 568 }; 569 570 // This pattern replaces explicitly illegal op with explicitly legal op, 571 // but in addition creates unregistered operation. 572 struct TestCreateUnregisteredOp : public OpRewritePattern<ILLegalOpG> { 573 using OpRewritePattern<ILLegalOpG>::OpRewritePattern; 574 575 LogicalResult matchAndRewrite(ILLegalOpG op, 576 PatternRewriter &rewriter) const final { 577 IntegerAttr attr = rewriter.getI32IntegerAttr(0); 578 Value val = rewriter.create<ConstantOp>(op->getLoc(), attr); 579 rewriter.replaceOpWithNewOp<LegalOpC>(op, val); 580 return success(); 581 }; 582 }; 583 } // namespace 584 585 namespace { 586 struct TestTypeConverter : public TypeConverter { 587 using TypeConverter::TypeConverter; 588 TestTypeConverter() { 589 addConversion(convertType); 590 addArgumentMaterialization(materializeCast); 591 addSourceMaterialization(materializeCast); 592 } 593 594 static LogicalResult convertType(Type t, SmallVectorImpl<Type> &results) { 595 // Drop I16 types. 596 if (t.isSignlessInteger(16)) 597 return success(); 598 599 // Convert I64 to F64. 600 if (t.isSignlessInteger(64)) { 601 results.push_back(FloatType::getF64(t.getContext())); 602 return success(); 603 } 604 605 // Convert I42 to I43. 606 if (t.isInteger(42)) { 607 results.push_back(IntegerType::get(t.getContext(), 43)); 608 return success(); 609 } 610 611 // Split F32 into F16,F16. 612 if (t.isF32()) { 613 results.assign(2, FloatType::getF16(t.getContext())); 614 return success(); 615 } 616 617 // Otherwise, convert the type directly. 618 results.push_back(t); 619 return success(); 620 } 621 622 /// Hook for materializing a conversion. This is necessary because we generate 623 /// 1->N type mappings. 624 static Optional<Value> materializeCast(OpBuilder &builder, Type resultType, 625 ValueRange inputs, Location loc) { 626 return builder.create<TestCastOp>(loc, resultType, inputs).getResult(); 627 } 628 }; 629 630 struct TestLegalizePatternDriver 631 : public PassWrapper<TestLegalizePatternDriver, OperationPass<ModuleOp>> { 632 StringRef getArgument() const final { return "test-legalize-patterns"; } 633 StringRef getDescription() const final { 634 return "Run test dialect legalization patterns"; 635 } 636 /// The mode of conversion to use with the driver. 637 enum class ConversionMode { Analysis, Full, Partial }; 638 639 TestLegalizePatternDriver(ConversionMode mode) : mode(mode) {} 640 641 void getDependentDialects(DialectRegistry ®istry) const override { 642 registry.insert<StandardOpsDialect>(); 643 } 644 645 void runOnOperation() override { 646 TestTypeConverter converter; 647 mlir::RewritePatternSet patterns(&getContext()); 648 populateWithGenerated(patterns); 649 patterns 650 .add<TestRegionRewriteBlockMovement, TestRegionRewriteUndo, 651 TestCreateBlock, TestCreateIllegalBlock, TestUndoBlockArgReplace, 652 TestUndoBlockErase, TestPassthroughInvalidOp, TestSplitReturnType, 653 TestChangeProducerTypeI32ToF32, TestChangeProducerTypeF32ToF64, 654 TestChangeProducerTypeF32ToInvalid, TestUpdateConsumerType, 655 TestNonRootReplacement, TestBoundedRecursiveRewrite, 656 TestNestedOpCreationUndoRewrite, TestReplaceEraseOp, 657 TestCreateUnregisteredOp>(&getContext()); 658 patterns.add<TestDropOpSignatureConversion>(&getContext(), converter); 659 mlir::populateFunctionLikeTypeConversionPattern<FuncOp>(patterns, converter); 660 mlir::populateCallOpTypeConversionPattern(patterns, converter); 661 662 // Define the conversion target used for the test. 663 ConversionTarget target(getContext()); 664 target.addLegalOp<ModuleOp>(); 665 target.addLegalOp<LegalOpA, LegalOpB, LegalOpC, TestCastOp, TestValidOp, 666 TerminatorOp>(); 667 target 668 .addIllegalOp<ILLegalOpF, TestRegionBuilderOp, TestOpWithRegionFold>(); 669 target.addDynamicallyLegalOp<TestReturnOp>([](TestReturnOp op) { 670 // Don't allow F32 operands. 671 return llvm::none_of(op.getOperandTypes(), 672 [](Type type) { return type.isF32(); }); 673 }); 674 target.addDynamicallyLegalOp<FuncOp>([&](FuncOp op) { 675 return converter.isSignatureLegal(op.getType()) && 676 converter.isLegal(&op.getBody()); 677 }); 678 target.addDynamicallyLegalOp<CallOp>( 679 [&](CallOp op) { return converter.isLegal(op); }); 680 681 // TestCreateUnregisteredOp creates `arith.constant` operation, 682 // which was not added to target intentionally to test 683 // correct error code from conversion driver. 684 target.addDynamicallyLegalOp<ILLegalOpG>([](ILLegalOpG) { return false; }); 685 686 // Expect the type_producer/type_consumer operations to only operate on f64. 687 target.addDynamicallyLegalOp<TestTypeProducerOp>( 688 [](TestTypeProducerOp op) { return op.getType().isF64(); }); 689 target.addDynamicallyLegalOp<TestTypeConsumerOp>([](TestTypeConsumerOp op) { 690 return op.getOperand().getType().isF64(); 691 }); 692 693 // Check support for marking certain operations as recursively legal. 694 target.markOpRecursivelyLegal<FuncOp, ModuleOp>([](Operation *op) { 695 return static_cast<bool>( 696 op->getAttrOfType<UnitAttr>("test.recursively_legal")); 697 }); 698 699 // Mark the bound recursion operation as dynamically legal. 700 target.addDynamicallyLegalOp<TestRecursiveRewriteOp>( 701 [](TestRecursiveRewriteOp op) { return op.getDepth() == 0; }); 702 703 // Handle a partial conversion. 704 if (mode == ConversionMode::Partial) { 705 DenseSet<Operation *> unlegalizedOps; 706 if (failed(applyPartialConversion( 707 getOperation(), target, std::move(patterns), &unlegalizedOps))) { 708 getOperation()->emitRemark() << "applyPartialConversion failed"; 709 } 710 // Emit remarks for each legalizable operation. 711 for (auto *op : unlegalizedOps) 712 op->emitRemark() << "op '" << op->getName() << "' is not legalizable"; 713 return; 714 } 715 716 // Handle a full conversion. 717 if (mode == ConversionMode::Full) { 718 // Check support for marking unknown operations as dynamically legal. 719 target.markUnknownOpDynamicallyLegal([](Operation *op) { 720 return (bool)op->getAttrOfType<UnitAttr>("test.dynamically_legal"); 721 }); 722 723 if (failed(applyFullConversion(getOperation(), target, 724 std::move(patterns)))) { 725 getOperation()->emitRemark() << "applyFullConversion failed"; 726 } 727 return; 728 } 729 730 // Otherwise, handle an analysis conversion. 731 assert(mode == ConversionMode::Analysis); 732 733 // Analyze the convertible operations. 734 DenseSet<Operation *> legalizedOps; 735 if (failed(applyAnalysisConversion(getOperation(), target, 736 std::move(patterns), legalizedOps))) 737 return signalPassFailure(); 738 739 // Emit remarks for each legalizable operation. 740 for (auto *op : legalizedOps) 741 op->emitRemark() << "op '" << op->getName() << "' is legalizable"; 742 } 743 744 /// The mode of conversion to use. 745 ConversionMode mode; 746 }; 747 } // namespace 748 749 static llvm::cl::opt<TestLegalizePatternDriver::ConversionMode> 750 legalizerConversionMode( 751 "test-legalize-mode", 752 llvm::cl::desc("The legalization mode to use with the test driver"), 753 llvm::cl::init(TestLegalizePatternDriver::ConversionMode::Partial), 754 llvm::cl::values( 755 clEnumValN(TestLegalizePatternDriver::ConversionMode::Analysis, 756 "analysis", "Perform an analysis conversion"), 757 clEnumValN(TestLegalizePatternDriver::ConversionMode::Full, "full", 758 "Perform a full conversion"), 759 clEnumValN(TestLegalizePatternDriver::ConversionMode::Partial, 760 "partial", "Perform a partial conversion"))); 761 762 //===----------------------------------------------------------------------===// 763 // ConversionPatternRewriter::getRemappedValue testing. This method is used 764 // to get the remapped value of an original value that was replaced using 765 // ConversionPatternRewriter. 766 namespace { 767 struct TestRemapValueTypeConverter : public TypeConverter { 768 using TypeConverter::TypeConverter; 769 770 TestRemapValueTypeConverter() { 771 addConversion( 772 [](Float32Type type) { return Float64Type::get(type.getContext()); }); 773 addConversion([](Type type) { return type; }); 774 } 775 }; 776 777 /// Converter that replaces a one-result one-operand OneVResOneVOperandOp1 with 778 /// a one-operand two-result OneVResOneVOperandOp1 by replicating its original 779 /// operand twice. 780 /// 781 /// Example: 782 /// %1 = test.one_variadic_out_one_variadic_in1"(%0) 783 /// is replaced with: 784 /// %1 = test.one_variadic_out_one_variadic_in1"(%0, %0) 785 struct OneVResOneVOperandOp1Converter 786 : public OpConversionPattern<OneVResOneVOperandOp1> { 787 using OpConversionPattern<OneVResOneVOperandOp1>::OpConversionPattern; 788 789 LogicalResult 790 matchAndRewrite(OneVResOneVOperandOp1 op, OpAdaptor adaptor, 791 ConversionPatternRewriter &rewriter) const override { 792 auto origOps = op.getOperands(); 793 assert(std::distance(origOps.begin(), origOps.end()) == 1 && 794 "One operand expected"); 795 Value origOp = *origOps.begin(); 796 SmallVector<Value, 2> remappedOperands; 797 // Replicate the remapped original operand twice. Note that we don't used 798 // the remapped 'operand' since the goal is testing 'getRemappedValue'. 799 remappedOperands.push_back(rewriter.getRemappedValue(origOp)); 800 remappedOperands.push_back(rewriter.getRemappedValue(origOp)); 801 802 rewriter.replaceOpWithNewOp<OneVResOneVOperandOp1>(op, op.getResultTypes(), 803 remappedOperands); 804 return success(); 805 } 806 }; 807 808 /// A rewriter pattern that tests that blocks can be merged. 809 struct TestRemapValueInRegion 810 : public OpConversionPattern<TestRemappedValueRegionOp> { 811 using OpConversionPattern<TestRemappedValueRegionOp>::OpConversionPattern; 812 813 LogicalResult 814 matchAndRewrite(TestRemappedValueRegionOp op, OpAdaptor adaptor, 815 ConversionPatternRewriter &rewriter) const final { 816 Block &block = op.getBody().front(); 817 Operation *terminator = block.getTerminator(); 818 819 // Merge the block into the parent region. 820 Block *parentBlock = op->getBlock(); 821 Block *finalBlock = rewriter.splitBlock(parentBlock, op->getIterator()); 822 rewriter.mergeBlocks(&block, parentBlock, ValueRange()); 823 rewriter.mergeBlocks(finalBlock, parentBlock, ValueRange()); 824 825 // Replace the results of this operation with the remapped terminator 826 // values. 827 SmallVector<Value> terminatorOperands; 828 if (failed(rewriter.getRemappedValues(terminator->getOperands(), 829 terminatorOperands))) 830 return failure(); 831 832 rewriter.eraseOp(terminator); 833 rewriter.replaceOp(op, terminatorOperands); 834 return success(); 835 } 836 }; 837 838 struct TestRemappedValue 839 : public mlir::PassWrapper<TestRemappedValue, OperationPass<FuncOp>> { 840 StringRef getArgument() const final { return "test-remapped-value"; } 841 StringRef getDescription() const final { 842 return "Test public remapped value mechanism in ConversionPatternRewriter"; 843 } 844 void runOnOperation() override { 845 TestRemapValueTypeConverter typeConverter; 846 847 mlir::RewritePatternSet patterns(&getContext()); 848 patterns.add<OneVResOneVOperandOp1Converter>(&getContext()); 849 patterns.add<TestChangeProducerTypeF32ToF64, TestUpdateConsumerType>( 850 &getContext()); 851 patterns.add<TestRemapValueInRegion>(typeConverter, &getContext()); 852 853 mlir::ConversionTarget target(getContext()); 854 target.addLegalOp<ModuleOp, FuncOp, TestReturnOp>(); 855 856 // Expect the type_producer/type_consumer operations to only operate on f64. 857 target.addDynamicallyLegalOp<TestTypeProducerOp>( 858 [](TestTypeProducerOp op) { return op.getType().isF64(); }); 859 target.addDynamicallyLegalOp<TestTypeConsumerOp>([](TestTypeConsumerOp op) { 860 return op.getOperand().getType().isF64(); 861 }); 862 863 // We make OneVResOneVOperandOp1 legal only when it has more that one 864 // operand. This will trigger the conversion that will replace one-operand 865 // OneVResOneVOperandOp1 with two-operand OneVResOneVOperandOp1. 866 target.addDynamicallyLegalOp<OneVResOneVOperandOp1>( 867 [](Operation *op) { return op->getNumOperands() > 1; }); 868 869 if (failed(mlir::applyFullConversion(getOperation(), target, 870 std::move(patterns)))) { 871 signalPassFailure(); 872 } 873 } 874 }; 875 } // namespace 876 877 //===----------------------------------------------------------------------===// 878 // Test patterns without a specific root operation kind 879 //===----------------------------------------------------------------------===// 880 881 namespace { 882 /// This pattern matches and removes any operation in the test dialect. 883 struct RemoveTestDialectOps : public RewritePattern { 884 RemoveTestDialectOps(MLIRContext *context) 885 : RewritePattern(MatchAnyOpTypeTag(), /*benefit=*/1, context) {} 886 887 LogicalResult matchAndRewrite(Operation *op, 888 PatternRewriter &rewriter) const override { 889 if (!isa<TestDialect>(op->getDialect())) 890 return failure(); 891 rewriter.eraseOp(op); 892 return success(); 893 } 894 }; 895 896 struct TestUnknownRootOpDriver 897 : public mlir::PassWrapper<TestUnknownRootOpDriver, OperationPass<FuncOp>> { 898 StringRef getArgument() const final { 899 return "test-legalize-unknown-root-patterns"; 900 } 901 StringRef getDescription() const final { 902 return "Test public remapped value mechanism in ConversionPatternRewriter"; 903 } 904 void runOnOperation() override { 905 mlir::RewritePatternSet patterns(&getContext()); 906 patterns.add<RemoveTestDialectOps>(&getContext()); 907 908 mlir::ConversionTarget target(getContext()); 909 target.addIllegalDialect<TestDialect>(); 910 if (failed(applyPartialConversion(getOperation(), target, 911 std::move(patterns)))) 912 signalPassFailure(); 913 } 914 }; 915 } // namespace 916 917 //===----------------------------------------------------------------------===// 918 // Test type conversions 919 //===----------------------------------------------------------------------===// 920 921 namespace { 922 struct TestTypeConversionProducer 923 : public OpConversionPattern<TestTypeProducerOp> { 924 using OpConversionPattern<TestTypeProducerOp>::OpConversionPattern; 925 LogicalResult 926 matchAndRewrite(TestTypeProducerOp op, OpAdaptor adaptor, 927 ConversionPatternRewriter &rewriter) const final { 928 Type resultType = op.getType(); 929 Type convertedType = getTypeConverter() 930 ? getTypeConverter()->convertType(resultType) 931 : resultType; 932 if (resultType.isa<FloatType>()) 933 resultType = rewriter.getF64Type(); 934 else if (resultType.isInteger(16)) 935 resultType = rewriter.getIntegerType(64); 936 else if (resultType.isa<test::TestRecursiveType>() && 937 convertedType != resultType) 938 resultType = convertedType; 939 else 940 return failure(); 941 942 rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, resultType); 943 return success(); 944 } 945 }; 946 947 /// Call signature conversion and then fail the rewrite to trigger the undo 948 /// mechanism. 949 struct TestSignatureConversionUndo 950 : public OpConversionPattern<TestSignatureConversionUndoOp> { 951 using OpConversionPattern<TestSignatureConversionUndoOp>::OpConversionPattern; 952 953 LogicalResult 954 matchAndRewrite(TestSignatureConversionUndoOp op, OpAdaptor adaptor, 955 ConversionPatternRewriter &rewriter) const final { 956 (void)rewriter.convertRegionTypes(&op->getRegion(0), *getTypeConverter()); 957 return failure(); 958 } 959 }; 960 961 /// Call signature conversion without providing a type converter to handle 962 /// materializations. 963 struct TestTestSignatureConversionNoConverter 964 : public OpConversionPattern<TestSignatureConversionNoConverterOp> { 965 TestTestSignatureConversionNoConverter(TypeConverter &converter, 966 MLIRContext *context) 967 : OpConversionPattern<TestSignatureConversionNoConverterOp>(context), 968 converter(converter) {} 969 970 LogicalResult 971 matchAndRewrite(TestSignatureConversionNoConverterOp op, OpAdaptor adaptor, 972 ConversionPatternRewriter &rewriter) const final { 973 Region ®ion = op->getRegion(0); 974 Block *entry = ®ion.front(); 975 976 // Convert the original entry arguments. 977 TypeConverter::SignatureConversion result(entry->getNumArguments()); 978 if (failed( 979 converter.convertSignatureArgs(entry->getArgumentTypes(), result))) 980 return failure(); 981 rewriter.updateRootInPlace( 982 op, [&] { rewriter.applySignatureConversion(®ion, result); }); 983 return success(); 984 } 985 986 TypeConverter &converter; 987 }; 988 989 /// Just forward the operands to the root op. This is essentially a no-op 990 /// pattern that is used to trigger target materialization. 991 struct TestTypeConsumerForward 992 : public OpConversionPattern<TestTypeConsumerOp> { 993 using OpConversionPattern<TestTypeConsumerOp>::OpConversionPattern; 994 995 LogicalResult 996 matchAndRewrite(TestTypeConsumerOp op, OpAdaptor adaptor, 997 ConversionPatternRewriter &rewriter) const final { 998 rewriter.updateRootInPlace(op, 999 [&] { op->setOperands(adaptor.getOperands()); }); 1000 return success(); 1001 } 1002 }; 1003 1004 struct TestTypeConversionAnotherProducer 1005 : public OpRewritePattern<TestAnotherTypeProducerOp> { 1006 using OpRewritePattern<TestAnotherTypeProducerOp>::OpRewritePattern; 1007 1008 LogicalResult matchAndRewrite(TestAnotherTypeProducerOp op, 1009 PatternRewriter &rewriter) const final { 1010 rewriter.replaceOpWithNewOp<TestTypeProducerOp>(op, op.getType()); 1011 return success(); 1012 } 1013 }; 1014 1015 struct TestTypeConversionDriver 1016 : public PassWrapper<TestTypeConversionDriver, OperationPass<ModuleOp>> { 1017 void getDependentDialects(DialectRegistry ®istry) const override { 1018 registry.insert<TestDialect>(); 1019 } 1020 StringRef getArgument() const final { 1021 return "test-legalize-type-conversion"; 1022 } 1023 StringRef getDescription() const final { 1024 return "Test various type conversion functionalities in DialectConversion"; 1025 } 1026 1027 void runOnOperation() override { 1028 // Initialize the type converter. 1029 TypeConverter converter; 1030 1031 /// Add the legal set of type conversions. 1032 converter.addConversion([](Type type) -> Type { 1033 // Treat F64 as legal. 1034 if (type.isF64()) 1035 return type; 1036 // Allow converting BF16/F16/F32 to F64. 1037 if (type.isBF16() || type.isF16() || type.isF32()) 1038 return FloatType::getF64(type.getContext()); 1039 // Otherwise, the type is illegal. 1040 return nullptr; 1041 }); 1042 converter.addConversion([](IntegerType type, SmallVectorImpl<Type> &) { 1043 // Drop all integer types. 1044 return success(); 1045 }); 1046 converter.addConversion( 1047 // Convert a recursive self-referring type into a non-self-referring 1048 // type named "outer_converted_type" that contains a SimpleAType. 1049 [&](test::TestRecursiveType type, SmallVectorImpl<Type> &results, 1050 ArrayRef<Type> callStack) -> Optional<LogicalResult> { 1051 // If the type is already converted, return it to indicate that it is 1052 // legal. 1053 if (type.getName() == "outer_converted_type") { 1054 results.push_back(type); 1055 return success(); 1056 } 1057 1058 // If the type is on the call stack more than once (it is there at 1059 // least once because of the _current_ call, which is always the last 1060 // element on the stack), we've hit the recursive case. Just return 1061 // SimpleAType here to create a non-recursive type as a result. 1062 if (llvm::is_contained(callStack.drop_back(), type)) { 1063 results.push_back(test::SimpleAType::get(type.getContext())); 1064 return success(); 1065 } 1066 1067 // Convert the body recursively. 1068 auto result = test::TestRecursiveType::get(type.getContext(), 1069 "outer_converted_type"); 1070 if (failed(result.setBody(converter.convertType(type.getBody())))) 1071 return failure(); 1072 results.push_back(result); 1073 return success(); 1074 }); 1075 1076 /// Add the legal set of type materializations. 1077 converter.addSourceMaterialization([](OpBuilder &builder, Type resultType, 1078 ValueRange inputs, 1079 Location loc) -> Value { 1080 // Allow casting from F64 back to F32. 1081 if (!resultType.isF16() && inputs.size() == 1 && 1082 inputs[0].getType().isF64()) 1083 return builder.create<TestCastOp>(loc, resultType, inputs).getResult(); 1084 // Allow producing an i32 or i64 from nothing. 1085 if ((resultType.isInteger(32) || resultType.isInteger(64)) && 1086 inputs.empty()) 1087 return builder.create<TestTypeProducerOp>(loc, resultType); 1088 // Allow producing an i64 from an integer. 1089 if (resultType.isa<IntegerType>() && inputs.size() == 1 && 1090 inputs[0].getType().isa<IntegerType>()) 1091 return builder.create<TestCastOp>(loc, resultType, inputs).getResult(); 1092 // Otherwise, fail. 1093 return nullptr; 1094 }); 1095 1096 // Initialize the conversion target. 1097 mlir::ConversionTarget target(getContext()); 1098 target.addDynamicallyLegalOp<TestTypeProducerOp>([](TestTypeProducerOp op) { 1099 auto recursiveType = op.getType().dyn_cast<test::TestRecursiveType>(); 1100 return op.getType().isF64() || op.getType().isInteger(64) || 1101 (recursiveType && 1102 recursiveType.getName() == "outer_converted_type"); 1103 }); 1104 target.addDynamicallyLegalOp<FuncOp>([&](FuncOp op) { 1105 return converter.isSignatureLegal(op.getType()) && 1106 converter.isLegal(&op.getBody()); 1107 }); 1108 target.addDynamicallyLegalOp<TestCastOp>([&](TestCastOp op) { 1109 // Allow casts from F64 to F32. 1110 return (*op.operand_type_begin()).isF64() && op.getType().isF32(); 1111 }); 1112 target.addDynamicallyLegalOp<TestSignatureConversionNoConverterOp>( 1113 [&](TestSignatureConversionNoConverterOp op) { 1114 return converter.isLegal(op.getRegion().front().getArgumentTypes()); 1115 }); 1116 1117 // Initialize the set of rewrite patterns. 1118 RewritePatternSet patterns(&getContext()); 1119 patterns.add<TestTypeConsumerForward, TestTypeConversionProducer, 1120 TestSignatureConversionUndo, 1121 TestTestSignatureConversionNoConverter>(converter, 1122 &getContext()); 1123 patterns.add<TestTypeConversionAnotherProducer>(&getContext()); 1124 mlir::populateFunctionLikeTypeConversionPattern<FuncOp>(patterns, converter); 1125 1126 if (failed(applyPartialConversion(getOperation(), target, 1127 std::move(patterns)))) 1128 signalPassFailure(); 1129 } 1130 }; 1131 } // namespace 1132 1133 //===----------------------------------------------------------------------===// 1134 // Test Block Merging 1135 //===----------------------------------------------------------------------===// 1136 1137 namespace { 1138 /// A rewriter pattern that tests that blocks can be merged. 1139 struct TestMergeBlock : public OpConversionPattern<TestMergeBlocksOp> { 1140 using OpConversionPattern<TestMergeBlocksOp>::OpConversionPattern; 1141 1142 LogicalResult 1143 matchAndRewrite(TestMergeBlocksOp op, OpAdaptor adaptor, 1144 ConversionPatternRewriter &rewriter) const final { 1145 Block &firstBlock = op.getBody().front(); 1146 Operation *branchOp = firstBlock.getTerminator(); 1147 Block *secondBlock = &*(std::next(op.getBody().begin())); 1148 auto succOperands = branchOp->getOperands(); 1149 SmallVector<Value, 2> replacements(succOperands); 1150 rewriter.eraseOp(branchOp); 1151 rewriter.mergeBlocks(secondBlock, &firstBlock, replacements); 1152 rewriter.updateRootInPlace(op, [] {}); 1153 return success(); 1154 } 1155 }; 1156 1157 /// A rewrite pattern to tests the undo mechanism of blocks being merged. 1158 struct TestUndoBlocksMerge : public ConversionPattern { 1159 TestUndoBlocksMerge(MLIRContext *ctx) 1160 : ConversionPattern("test.undo_blocks_merge", /*benefit=*/1, ctx) {} 1161 LogicalResult 1162 matchAndRewrite(Operation *op, ArrayRef<Value> operands, 1163 ConversionPatternRewriter &rewriter) const final { 1164 Block &firstBlock = op->getRegion(0).front(); 1165 Operation *branchOp = firstBlock.getTerminator(); 1166 Block *secondBlock = &*(std::next(op->getRegion(0).begin())); 1167 rewriter.setInsertionPointToStart(secondBlock); 1168 rewriter.create<ILLegalOpF>(op->getLoc(), rewriter.getF32Type()); 1169 auto succOperands = branchOp->getOperands(); 1170 SmallVector<Value, 2> replacements(succOperands); 1171 rewriter.eraseOp(branchOp); 1172 rewriter.mergeBlocks(secondBlock, &firstBlock, replacements); 1173 rewriter.updateRootInPlace(op, [] {}); 1174 return success(); 1175 } 1176 }; 1177 1178 /// A rewrite mechanism to inline the body of the op into its parent, when both 1179 /// ops can have a single block. 1180 struct TestMergeSingleBlockOps 1181 : public OpConversionPattern<SingleBlockImplicitTerminatorOp> { 1182 using OpConversionPattern< 1183 SingleBlockImplicitTerminatorOp>::OpConversionPattern; 1184 1185 LogicalResult 1186 matchAndRewrite(SingleBlockImplicitTerminatorOp op, OpAdaptor adaptor, 1187 ConversionPatternRewriter &rewriter) const final { 1188 SingleBlockImplicitTerminatorOp parentOp = 1189 op->getParentOfType<SingleBlockImplicitTerminatorOp>(); 1190 if (!parentOp) 1191 return failure(); 1192 Block &innerBlock = op.getRegion().front(); 1193 TerminatorOp innerTerminator = 1194 cast<TerminatorOp>(innerBlock.getTerminator()); 1195 rewriter.mergeBlockBefore(&innerBlock, op); 1196 rewriter.eraseOp(innerTerminator); 1197 rewriter.eraseOp(op); 1198 rewriter.updateRootInPlace(op, [] {}); 1199 return success(); 1200 } 1201 }; 1202 1203 struct TestMergeBlocksPatternDriver 1204 : public PassWrapper<TestMergeBlocksPatternDriver, 1205 OperationPass<ModuleOp>> { 1206 StringRef getArgument() const final { return "test-merge-blocks"; } 1207 StringRef getDescription() const final { 1208 return "Test Merging operation in ConversionPatternRewriter"; 1209 } 1210 void runOnOperation() override { 1211 MLIRContext *context = &getContext(); 1212 mlir::RewritePatternSet patterns(context); 1213 patterns.add<TestMergeBlock, TestUndoBlocksMerge, TestMergeSingleBlockOps>( 1214 context); 1215 ConversionTarget target(*context); 1216 target.addLegalOp<FuncOp, ModuleOp, TerminatorOp, TestBranchOp, 1217 TestTypeConsumerOp, TestTypeProducerOp, TestReturnOp>(); 1218 target.addIllegalOp<ILLegalOpF>(); 1219 1220 /// Expect the op to have a single block after legalization. 1221 target.addDynamicallyLegalOp<TestMergeBlocksOp>( 1222 [&](TestMergeBlocksOp op) -> bool { 1223 return llvm::hasSingleElement(op.getBody()); 1224 }); 1225 1226 /// Only allow `test.br` within test.merge_blocks op. 1227 target.addDynamicallyLegalOp<TestBranchOp>([&](TestBranchOp op) -> bool { 1228 return op->getParentOfType<TestMergeBlocksOp>(); 1229 }); 1230 1231 /// Expect that all nested test.SingleBlockImplicitTerminator ops are 1232 /// inlined. 1233 target.addDynamicallyLegalOp<SingleBlockImplicitTerminatorOp>( 1234 [&](SingleBlockImplicitTerminatorOp op) -> bool { 1235 return !op->getParentOfType<SingleBlockImplicitTerminatorOp>(); 1236 }); 1237 1238 DenseSet<Operation *> unlegalizedOps; 1239 (void)applyPartialConversion(getOperation(), target, std::move(patterns), 1240 &unlegalizedOps); 1241 for (auto *op : unlegalizedOps) 1242 op->emitRemark() << "op '" << op->getName() << "' is not legalizable"; 1243 } 1244 }; 1245 } // namespace 1246 1247 //===----------------------------------------------------------------------===// 1248 // Test Selective Replacement 1249 //===----------------------------------------------------------------------===// 1250 1251 namespace { 1252 /// A rewrite mechanism to inline the body of the op into its parent, when both 1253 /// ops can have a single block. 1254 struct TestSelectiveOpReplacementPattern : public OpRewritePattern<TestCastOp> { 1255 using OpRewritePattern<TestCastOp>::OpRewritePattern; 1256 1257 LogicalResult matchAndRewrite(TestCastOp op, 1258 PatternRewriter &rewriter) const final { 1259 if (op.getNumOperands() != 2) 1260 return failure(); 1261 OperandRange operands = op.getOperands(); 1262 1263 // Replace non-terminator uses with the first operand. 1264 rewriter.replaceOpWithIf(op, operands[0], [](OpOperand &operand) { 1265 return operand.getOwner()->hasTrait<OpTrait::IsTerminator>(); 1266 }); 1267 // Replace everything else with the second operand if the operation isn't 1268 // dead. 1269 rewriter.replaceOp(op, op.getOperand(1)); 1270 return success(); 1271 } 1272 }; 1273 1274 struct TestSelectiveReplacementPatternDriver 1275 : public PassWrapper<TestSelectiveReplacementPatternDriver, 1276 OperationPass<>> { 1277 StringRef getArgument() const final { 1278 return "test-pattern-selective-replacement"; 1279 } 1280 StringRef getDescription() const final { 1281 return "Test selective replacement in the PatternRewriter"; 1282 } 1283 void runOnOperation() override { 1284 MLIRContext *context = &getContext(); 1285 mlir::RewritePatternSet patterns(context); 1286 patterns.add<TestSelectiveOpReplacementPattern>(context); 1287 (void)applyPatternsAndFoldGreedily(getOperation()->getRegions(), 1288 std::move(patterns)); 1289 } 1290 }; 1291 } // namespace 1292 1293 //===----------------------------------------------------------------------===// 1294 // PassRegistration 1295 //===----------------------------------------------------------------------===// 1296 1297 namespace mlir { 1298 namespace test { 1299 void registerPatternsTestPass() { 1300 PassRegistration<TestReturnTypeDriver>(); 1301 1302 PassRegistration<TestDerivedAttributeDriver>(); 1303 1304 PassRegistration<TestPatternDriver>(); 1305 1306 PassRegistration<TestLegalizePatternDriver>([] { 1307 return std::make_unique<TestLegalizePatternDriver>(legalizerConversionMode); 1308 }); 1309 1310 PassRegistration<TestRemappedValue>(); 1311 1312 PassRegistration<TestUnknownRootOpDriver>(); 1313 1314 PassRegistration<TestTypeConversionDriver>(); 1315 1316 PassRegistration<TestMergeBlocksPatternDriver>(); 1317 PassRegistration<TestSelectiveReplacementPatternDriver>(); 1318 } 1319 } // namespace test 1320 } // namespace mlir 1321