1 //===- SCFToOpenMP.cpp - Structured Control Flow to OpenMP conversion -----===//
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 // This file implements a pass to convert scf.parallel operations into OpenMP
10 // parallel loops.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "mlir/Conversion/SCFToOpenMP/SCFToOpenMP.h"
15 #include "../PassDetail.h"
16 #include "mlir/Analysis/LoopAnalysis.h"
17 #include "mlir/Dialect/LLVMIR/LLVMDialect.h"
18 #include "mlir/Dialect/OpenMP/OpenMPDialect.h"
19 #include "mlir/Dialect/SCF/SCF.h"
20 #include "mlir/Dialect/StandardOps/IR/Ops.h"
21 #include "mlir/IR/ImplicitLocOpBuilder.h"
22 #include "mlir/IR/SymbolTable.h"
23 #include "mlir/Transforms/DialectConversion.h"
24 
25 using namespace mlir;
26 
27 /// Matches a block containing a "simple" reduction. The expected shape of the
28 /// block is as follows.
29 ///
30 ///   ^bb(%arg0, %arg1):
31 ///     %0 = OpTy(%arg0, %arg1)
32 ///     scf.reduce.return %0
33 template <typename... OpTy>
34 static bool matchSimpleReduction(Block &block) {
35   if (block.empty() || llvm::hasSingleElement(block) ||
36       std::next(block.begin(), 2) != block.end())
37     return false;
38 
39   if (block.getNumArguments() != 2)
40     return false;
41 
42   SmallVector<Operation *, 4> combinerOps;
43   Value reducedVal = matchReduction({block.getArguments()[1]},
44                                     /*redPos=*/0, combinerOps);
45 
46   if (!reducedVal || !reducedVal.isa<BlockArgument>() ||
47       combinerOps.size() != 1)
48     return false;
49 
50   return isa<OpTy...>(combinerOps[0]) &&
51          isa<scf::ReduceReturnOp>(block.back()) &&
52          block.front().getOperands() == block.getArguments();
53 }
54 
55 /// Matches a block containing a select-based min/max reduction. The types of
56 /// select and compare operations are provided as template arguments. The
57 /// comparison predicates suitable for min and max are provided as function
58 /// arguments. If a reduction is matched, `ifMin` will be set if the reduction
59 /// compute the minimum and unset if it computes the maximum, otherwise it
60 /// remains unmodified. The expected shape of the block is as follows.
61 ///
62 ///   ^bb(%arg0, %arg1):
63 ///     %0 = CompareOpTy(<one-of-predicates>, %arg0, %arg1)
64 ///     %1 = SelectOpTy(%0, %arg0, %arg1)  // %arg0, %arg1 may be swapped here.
65 ///     scf.reduce.return %1
66 template <
67     typename CompareOpTy, typename SelectOpTy,
68     typename Predicate = decltype(std::declval<CompareOpTy>().predicate())>
69 static bool
70 matchSelectReduction(Block &block, ArrayRef<Predicate> lessThanPredicates,
71                      ArrayRef<Predicate> greaterThanPredicates, bool &isMin) {
72   static_assert(llvm::is_one_of<SelectOpTy, SelectOp, LLVM::SelectOp>::value,
73                 "only std and llvm select ops are supported");
74 
75   // Expect exactly three operations in the block.
76   if (block.empty() || llvm::hasSingleElement(block) ||
77       std::next(block.begin(), 2) == block.end() ||
78       std::next(block.begin(), 3) != block.end())
79     return false;
80 
81   // Check op kinds.
82   auto compare = dyn_cast<CompareOpTy>(block.front());
83   auto select = dyn_cast<SelectOpTy>(block.front().getNextNode());
84   auto terminator = dyn_cast<scf::ReduceReturnOp>(block.back());
85   if (!compare || !select || !terminator)
86     return false;
87 
88   // Block arguments must be compared.
89   if (compare->getOperands() != block.getArguments())
90     return false;
91 
92   // Detect whether the comparison is less-than or greater-than, otherwise bail.
93   bool isLess;
94   if (llvm::find(lessThanPredicates, compare.predicate()) !=
95       lessThanPredicates.end()) {
96     isLess = true;
97   } else if (llvm::find(greaterThanPredicates, compare.predicate()) !=
98              greaterThanPredicates.end()) {
99     isLess = false;
100   } else {
101     return false;
102   }
103 
104   if (select.condition() != compare.getResult())
105     return false;
106 
107   // Detect if the operands are swapped between cmpf and select. Match the
108   // comparison type with the requested type or with the opposite of the
109   // requested type if the operands are swapped. Use generic accessors because
110   // std and LLVM versions of select have different operand names but identical
111   // positions.
112   constexpr unsigned kTrueValue = 1;
113   constexpr unsigned kFalseValue = 2;
114   bool sameOperands = select.getOperand(kTrueValue) == compare.lhs() &&
115                       select.getOperand(kFalseValue) == compare.rhs();
116   bool swappedOperands = select.getOperand(kTrueValue) == compare.rhs() &&
117                          select.getOperand(kFalseValue) == compare.lhs();
118   if (!sameOperands && !swappedOperands)
119     return false;
120 
121   if (select.getResult() != terminator.result())
122     return false;
123 
124   // The reduction is a min if it uses less-than predicates with same operands
125   // or greather-than predicates with swapped operands. Similarly for max.
126   isMin = (isLess && sameOperands) || (!isLess && swappedOperands);
127   return isMin || (isLess & swappedOperands) || (!isLess && sameOperands);
128 }
129 
130 /// Returns the float semantics for the given float type.
131 static const llvm::fltSemantics &fltSemanticsForType(FloatType type) {
132   if (type.isF16())
133     return llvm::APFloat::IEEEhalf();
134   if (type.isF32())
135     return llvm::APFloat::IEEEsingle();
136   if (type.isF64())
137     return llvm::APFloat::IEEEdouble();
138   if (type.isF128())
139     return llvm::APFloat::IEEEquad();
140   if (type.isBF16())
141     return llvm::APFloat::BFloat();
142   if (type.isF80())
143     return llvm::APFloat::x87DoubleExtended();
144   llvm_unreachable("unknown float type");
145 }
146 
147 /// Returns an attribute with the minimum (if `min` is set) or the maximum value
148 /// (otherwise) for the given float type.
149 static Attribute minMaxValueForFloat(Type type, bool min) {
150   auto fltType = type.cast<FloatType>();
151   return FloatAttr::get(
152       type, llvm::APFloat::getLargest(fltSemanticsForType(fltType), min));
153 }
154 
155 /// Returns an attribute with the signed integer minimum (if `min` is set) or
156 /// the maximum value (otherwise) for the given integer type, regardless of its
157 /// signedness semantics (only the width is considered).
158 static Attribute minMaxValueForSignedInt(Type type, bool min) {
159   auto intType = type.cast<IntegerType>();
160   unsigned bitwidth = intType.getWidth();
161   return IntegerAttr::get(type, min ? llvm::APInt::getSignedMinValue(bitwidth)
162                                     : llvm::APInt::getSignedMaxValue(bitwidth));
163 }
164 
165 /// Returns an attribute with the unsigned integer minimum (if `min` is set) or
166 /// the maximum value (otherwise) for the given integer type, regardless of its
167 /// signedness semantics (only the width is considered).
168 static Attribute minMaxValueForUnsignedInt(Type type, bool min) {
169   auto intType = type.cast<IntegerType>();
170   unsigned bitwidth = intType.getWidth();
171   return IntegerAttr::get(type, min ? llvm::APInt::getNullValue(bitwidth)
172                                     : llvm::APInt::getAllOnesValue(bitwidth));
173 }
174 
175 /// Creates an OpenMP reduction declaration and inserts it into the provided
176 /// symbol table. The declaration has a constant initializer with the neutral
177 /// value `initValue`, and the reduction combiner carried over from `reduce`.
178 static omp::ReductionDeclareOp createDecl(PatternRewriter &builder,
179                                           SymbolTable &symbolTable,
180                                           scf::ReduceOp reduce,
181                                           Attribute initValue) {
182   OpBuilder::InsertionGuard guard(builder);
183   auto decl = builder.create<omp::ReductionDeclareOp>(
184       reduce.getLoc(), "__scf_reduction", reduce.operand().getType());
185   symbolTable.insert(decl);
186 
187   Type type = reduce.operand().getType();
188   builder.createBlock(&decl.initializerRegion(), decl.initializerRegion().end(),
189                       {type});
190   builder.setInsertionPointToEnd(&decl.initializerRegion().back());
191   Value init =
192       builder.create<LLVM::ConstantOp>(reduce.getLoc(), type, initValue);
193   builder.create<omp::YieldOp>(reduce.getLoc(), init);
194 
195   Operation *terminator = &reduce.getRegion().front().back();
196   assert(isa<scf::ReduceReturnOp>(terminator) &&
197          "expected reduce op to be terminated by redure return");
198   builder.setInsertionPoint(terminator);
199   builder.replaceOpWithNewOp<omp::YieldOp>(terminator,
200                                            terminator->getOperands());
201   builder.inlineRegionBefore(reduce.getRegion(), decl.reductionRegion(),
202                              decl.reductionRegion().end());
203   return decl;
204 }
205 
206 /// Adds an atomic reduction combiner to the given OpenMP reduction declaration
207 /// using llvm.atomicrmw of the given kind.
208 static omp::ReductionDeclareOp addAtomicRMW(OpBuilder &builder,
209                                             LLVM::AtomicBinOp atomicKind,
210                                             omp::ReductionDeclareOp decl,
211                                             scf::ReduceOp reduce) {
212   OpBuilder::InsertionGuard guard(builder);
213   Type type = reduce.operand().getType();
214   Type ptrType = LLVM::LLVMPointerType::get(type);
215   builder.createBlock(&decl.atomicReductionRegion(),
216                       decl.atomicReductionRegion().end(), {ptrType, ptrType});
217   Block *atomicBlock = &decl.atomicReductionRegion().back();
218   builder.setInsertionPointToEnd(atomicBlock);
219   Value loaded = builder.create<LLVM::LoadOp>(reduce.getLoc(),
220                                               atomicBlock->getArgument(1));
221   builder.create<LLVM::AtomicRMWOp>(reduce.getLoc(), type, atomicKind,
222                                     atomicBlock->getArgument(0), loaded,
223                                     LLVM::AtomicOrdering::monotonic);
224   builder.create<omp::YieldOp>(reduce.getLoc(), ArrayRef<Value>());
225   return decl;
226 }
227 
228 /// Creates an OpenMP reduction declaration that corresponds to the given SCF
229 /// reduction and returns it. Recognizes common reductions in order to identify
230 /// the neutral value, necessary for the OpenMP declaration. If the reduction
231 /// cannot be recognized, returns null.
232 static omp::ReductionDeclareOp declareReduction(PatternRewriter &builder,
233                                                 scf::ReduceOp reduce) {
234   Operation *container = SymbolTable::getNearestSymbolTable(reduce);
235   SymbolTable symbolTable(container);
236 
237   // Insert reduction declarations in the symbol-table ancestor before the
238   // ancestor of the current insertion point.
239   Operation *insertionPoint = reduce;
240   while (insertionPoint->getParentOp() != container)
241     insertionPoint = insertionPoint->getParentOp();
242   OpBuilder::InsertionGuard guard(builder);
243   builder.setInsertionPoint(insertionPoint);
244 
245   assert(llvm::hasSingleElement(reduce.getRegion()) &&
246          "expected reduction region to have a single element");
247 
248   // Match simple binary reductions that can be expressed with atomicrmw.
249   Type type = reduce.operand().getType();
250   Block &reduction = reduce.getRegion().front();
251   if (matchSimpleReduction<AddFOp, LLVM::FAddOp>(reduction)) {
252     omp::ReductionDeclareOp decl = createDecl(builder, symbolTable, reduce,
253                                               builder.getFloatAttr(type, 0.0));
254     return addAtomicRMW(builder, LLVM::AtomicBinOp::fadd, decl, reduce);
255   }
256   if (matchSimpleReduction<AddIOp, LLVM::AddOp>(reduction)) {
257     omp::ReductionDeclareOp decl = createDecl(builder, symbolTable, reduce,
258                                               builder.getIntegerAttr(type, 0));
259     return addAtomicRMW(builder, LLVM::AtomicBinOp::add, decl, reduce);
260   }
261   if (matchSimpleReduction<OrOp, LLVM::OrOp>(reduction)) {
262     omp::ReductionDeclareOp decl = createDecl(builder, symbolTable, reduce,
263                                               builder.getIntegerAttr(type, 0));
264     return addAtomicRMW(builder, LLVM::AtomicBinOp::_or, decl, reduce);
265   }
266   if (matchSimpleReduction<XOrOp, LLVM::XOrOp>(reduction)) {
267     omp::ReductionDeclareOp decl = createDecl(builder, symbolTable, reduce,
268                                               builder.getIntegerAttr(type, 0));
269     return addAtomicRMW(builder, LLVM::AtomicBinOp::_xor, decl, reduce);
270   }
271   if (matchSimpleReduction<AndOp, LLVM::AndOp>(reduction)) {
272     omp::ReductionDeclareOp decl = createDecl(
273         builder, symbolTable, reduce,
274         builder.getIntegerAttr(
275             type, llvm::APInt::getAllOnesValue(type.getIntOrFloatBitWidth())));
276     return addAtomicRMW(builder, LLVM::AtomicBinOp::_and, decl, reduce);
277   }
278 
279   // Match simple binary reductions that cannot be expressed with atomicrmw.
280   // TODO: add atomic region using cmpxchg (which needs atomic load to be
281   // available as an op).
282   if (matchSimpleReduction<MulFOp, LLVM::FMulOp>(reduction)) {
283     return createDecl(builder, symbolTable, reduce,
284                       builder.getFloatAttr(type, 1.0));
285   }
286 
287   // Match select-based min/max reductions.
288   bool isMin;
289   if (matchSelectReduction<CmpFOp, SelectOp>(
290           reduction, {CmpFPredicate::OLT, CmpFPredicate::OLE},
291           {CmpFPredicate::OGT, CmpFPredicate::OGE}, isMin) ||
292       matchSelectReduction<LLVM::FCmpOp, LLVM::SelectOp>(
293           reduction, {LLVM::FCmpPredicate::olt, LLVM::FCmpPredicate::ole},
294           {LLVM::FCmpPredicate::ogt, LLVM::FCmpPredicate::oge}, isMin)) {
295     return createDecl(builder, symbolTable, reduce,
296                       minMaxValueForFloat(type, !isMin));
297   }
298   if (matchSelectReduction<CmpIOp, SelectOp>(
299           reduction, {CmpIPredicate::slt, CmpIPredicate::sle},
300           {CmpIPredicate::sgt, CmpIPredicate::sge}, isMin) ||
301       matchSelectReduction<LLVM::ICmpOp, LLVM::SelectOp>(
302           reduction, {LLVM::ICmpPredicate::slt, LLVM::ICmpPredicate::sle},
303           {LLVM::ICmpPredicate::sgt, LLVM::ICmpPredicate::sge}, isMin)) {
304     omp::ReductionDeclareOp decl = createDecl(
305         builder, symbolTable, reduce, minMaxValueForSignedInt(type, !isMin));
306     return addAtomicRMW(builder,
307                         isMin ? LLVM::AtomicBinOp::min : LLVM::AtomicBinOp::max,
308                         decl, reduce);
309   }
310   if (matchSelectReduction<CmpIOp, SelectOp>(
311           reduction, {CmpIPredicate::ult, CmpIPredicate::ule},
312           {CmpIPredicate::ugt, CmpIPredicate::uge}, isMin) ||
313       matchSelectReduction<LLVM::ICmpOp, LLVM::SelectOp>(
314           reduction, {LLVM::ICmpPredicate::ugt, LLVM::ICmpPredicate::ule},
315           {LLVM::ICmpPredicate::ugt, LLVM::ICmpPredicate::uge}, isMin)) {
316     omp::ReductionDeclareOp decl = createDecl(
317         builder, symbolTable, reduce, minMaxValueForUnsignedInt(type, !isMin));
318     return addAtomicRMW(
319         builder, isMin ? LLVM::AtomicBinOp::umin : LLVM::AtomicBinOp::umax,
320         decl, reduce);
321   }
322 
323   return nullptr;
324 }
325 
326 namespace {
327 
328 struct ParallelOpLowering : public OpRewritePattern<scf::ParallelOp> {
329   using OpRewritePattern<scf::ParallelOp>::OpRewritePattern;
330 
331   LogicalResult matchAndRewrite(scf::ParallelOp parallelOp,
332                                 PatternRewriter &rewriter) const override {
333     // Replace SCF yield with OpenMP yield.
334     {
335       OpBuilder::InsertionGuard guard(rewriter);
336       rewriter.setInsertionPointToEnd(parallelOp.getBody());
337       assert(llvm::hasSingleElement(parallelOp.region()) &&
338              "expected scf.parallel to have one block");
339       rewriter.replaceOpWithNewOp<omp::YieldOp>(
340           parallelOp.getBody()->getTerminator(), ValueRange());
341     }
342 
343     // Declare reductions.
344     // TODO: consider checking it here is already a compatible reduction
345     // declaration and use it instead of redeclaring.
346     SmallVector<Attribute> reductionDeclSymbols;
347     for (auto reduce : parallelOp.getOps<scf::ReduceOp>()) {
348       omp::ReductionDeclareOp decl = declareReduction(rewriter, reduce);
349       if (!decl)
350         return failure();
351       reductionDeclSymbols.push_back(
352           SymbolRefAttr::get(rewriter.getContext(), decl.sym_name()));
353     }
354 
355     // Allocate reduction variables. Make sure the we don't overflow the stack
356     // with local `alloca`s by saving and restoring the stack pointer.
357     Location loc = parallelOp.getLoc();
358     Value one = rewriter.create<LLVM::ConstantOp>(
359         loc, rewriter.getIntegerType(64), rewriter.getI64IntegerAttr(1));
360     SmallVector<Value> reductionVariables;
361     reductionVariables.reserve(parallelOp.getNumReductions());
362     Value token = rewriter.create<LLVM::StackSaveOp>(
363         loc, LLVM::LLVMPointerType::get(rewriter.getIntegerType(8)));
364     for (Value init : parallelOp.initVals()) {
365       assert((LLVM::isCompatibleType(init.getType()) ||
366               init.getType().isa<LLVM::PointerElementTypeInterface>()) &&
367              "cannot create a reduction variable if the type is not an LLVM "
368              "pointer element");
369       Value storage = rewriter.create<LLVM::AllocaOp>(
370           loc, LLVM::LLVMPointerType::get(init.getType()), one, 0);
371       rewriter.create<LLVM::StoreOp>(loc, init, storage);
372       reductionVariables.push_back(storage);
373     }
374 
375     // Replace the reduction operations contained in this loop. Must be done
376     // here rather than in a separate pattern to have access to the list of
377     // reduction variables.
378     for (auto pair :
379          llvm::zip(parallelOp.getOps<scf::ReduceOp>(), reductionVariables)) {
380       OpBuilder::InsertionGuard guard(rewriter);
381       scf::ReduceOp reduceOp = std::get<0>(pair);
382       rewriter.setInsertionPoint(reduceOp);
383       rewriter.replaceOpWithNewOp<omp::ReductionOp>(
384           reduceOp, reduceOp.operand(), std::get<1>(pair));
385     }
386 
387     // Create the parallel wrapper.
388     auto ompParallel = rewriter.create<omp::ParallelOp>(loc);
389     {
390       OpBuilder::InsertionGuard guard(rewriter);
391       rewriter.createBlock(&ompParallel.region());
392 
393       // Replace SCF yield with OpenMP yield.
394       {
395         OpBuilder::InsertionGuard innerGuard(rewriter);
396         rewriter.setInsertionPointToEnd(parallelOp.getBody());
397         assert(llvm::hasSingleElement(parallelOp.region()) &&
398                "expected scf.parallel to have one block");
399         rewriter.replaceOpWithNewOp<omp::YieldOp>(
400             parallelOp.getBody()->getTerminator(), ValueRange());
401       }
402 
403       // Replace the loop.
404       auto loop = rewriter.create<omp::WsLoopOp>(
405           parallelOp.getLoc(), parallelOp.lowerBound(), parallelOp.upperBound(),
406           parallelOp.step());
407       rewriter.create<omp::TerminatorOp>(loc);
408 
409       rewriter.inlineRegionBefore(parallelOp.region(), loop.region(),
410                                   loop.region().begin());
411       if (!reductionVariables.empty()) {
412         loop.reductionsAttr(
413             ArrayAttr::get(rewriter.getContext(), reductionDeclSymbols));
414         loop.reduction_varsMutable().append(reductionVariables);
415       }
416     }
417 
418     // Load loop results.
419     SmallVector<Value> results;
420     results.reserve(reductionVariables.size());
421     for (Value variable : reductionVariables) {
422       Value res = rewriter.create<LLVM::LoadOp>(loc, variable);
423       results.push_back(res);
424     }
425     rewriter.replaceOp(parallelOp, results);
426 
427     rewriter.create<LLVM::StackRestoreOp>(loc, token);
428     return success();
429   }
430 };
431 
432 /// Applies the conversion patterns in the given function.
433 static LogicalResult applyPatterns(ModuleOp module) {
434   ConversionTarget target(*module.getContext());
435   target.addIllegalOp<scf::ReduceOp, scf::ReduceReturnOp, scf::ParallelOp>();
436   target.addLegalDialect<omp::OpenMPDialect, LLVM::LLVMDialect>();
437 
438   RewritePatternSet patterns(module.getContext());
439   patterns.add<ParallelOpLowering>(module.getContext());
440   FrozenRewritePatternSet frozen(std::move(patterns));
441   return applyPartialConversion(module, target, frozen);
442 }
443 
444 /// A pass converting SCF operations to OpenMP operations.
445 struct SCFToOpenMPPass : public ConvertSCFToOpenMPBase<SCFToOpenMPPass> {
446   /// Pass entry point.
447   void runOnOperation() override {
448     if (failed(applyPatterns(getOperation())))
449       signalPassFailure();
450   }
451 };
452 
453 } // end namespace
454 
455 std::unique_ptr<OperationPass<ModuleOp>> mlir::createConvertSCFToOpenMPPass() {
456   return std::make_unique<SCFToOpenMPPass>();
457 }
458