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