1 //===- ModuleTranslation.cpp - MLIR to LLVM conversion --------------------===//
2 //
3 // Copyright 2019 The MLIR Authors.
4 //
5 // Licensed under the Apache License, Version 2.0 (the "License");
6 // you may not use this file except in compliance with the License.
7 // You may obtain a copy of the License at
8 //
9 //   http://www.apache.org/licenses/LICENSE-2.0
10 //
11 // Unless required by applicable law or agreed to in writing, software
12 // distributed under the License is distributed on an "AS IS" BASIS,
13 // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14 // See the License for the specific language governing permissions and
15 // limitations under the License.
16 // =============================================================================
17 //
18 // This file implements the translation between an MLIR LLVM dialect module and
19 // the corresponding LLVMIR module. It only handles core LLVM IR operations.
20 //
21 //===----------------------------------------------------------------------===//
22 
23 #include "mlir/Target/LLVMIR/ModuleTranslation.h"
24 
25 #include "mlir/Dialect/LLVMIR/LLVMDialect.h"
26 #include "mlir/IR/Attributes.h"
27 #include "mlir/IR/Module.h"
28 #include "mlir/Support/LLVM.h"
29 
30 #include "llvm/ADT/SetVector.h"
31 #include "llvm/IR/BasicBlock.h"
32 #include "llvm/IR/Constants.h"
33 #include "llvm/IR/DerivedTypes.h"
34 #include "llvm/IR/IRBuilder.h"
35 #include "llvm/IR/LLVMContext.h"
36 #include "llvm/IR/Module.h"
37 #include "llvm/Transforms/Utils/Cloning.h"
38 
39 namespace mlir {
40 namespace LLVM {
41 
42 // Convert an MLIR function type to LLVM IR.  Arguments of the function must of
43 // MLIR LLVM IR dialect types.  Use `loc` as a location when reporting errors.
44 // Return nullptr on errors.
45 static llvm::FunctionType *convertFunctionType(llvm::LLVMContext &llvmContext,
46                                                FunctionType type, Location loc,
47                                                bool isVarArgs) {
48   assert(type && "expected non-null type");
49   if (type.getNumResults() > 1)
50     return emitError(loc, "LLVM functions can only have 0 or 1 result"),
51            nullptr;
52 
53   SmallVector<llvm::Type *, 8> argTypes;
54   argTypes.reserve(type.getNumInputs());
55   for (auto t : type.getInputs()) {
56     auto wrappedLLVMType = t.dyn_cast<LLVM::LLVMType>();
57     if (!wrappedLLVMType)
58       return emitError(loc, "non-LLVM function argument type"), nullptr;
59     argTypes.push_back(wrappedLLVMType.getUnderlyingType());
60   }
61 
62   if (type.getNumResults() == 0)
63     return llvm::FunctionType::get(llvm::Type::getVoidTy(llvmContext), argTypes,
64                                    isVarArgs);
65 
66   auto wrappedResultType = type.getResult(0).dyn_cast<LLVM::LLVMType>();
67   if (!wrappedResultType)
68     return emitError(loc, "non-LLVM function result"), nullptr;
69 
70   return llvm::FunctionType::get(wrappedResultType.getUnderlyingType(),
71                                  argTypes, isVarArgs);
72 }
73 
74 // Create an LLVM IR constant of `llvmType` from the MLIR attribute `attr`.
75 // This currently supports integer, floating point, splat and dense element
76 // attributes and combinations thereof.  In case of error, report it to `loc`
77 // and return nullptr.
78 llvm::Constant *ModuleTranslation::getLLVMConstant(llvm::Type *llvmType,
79                                                    Attribute attr,
80                                                    Location loc) {
81   if (auto intAttr = attr.dyn_cast<IntegerAttr>())
82     return llvm::ConstantInt::get(llvmType, intAttr.getValue());
83   if (auto floatAttr = attr.dyn_cast<FloatAttr>())
84     return llvm::ConstantFP::get(llvmType, floatAttr.getValue());
85   if (auto funcAttr = attr.dyn_cast<SymbolRefAttr>())
86     return functionMapping.lookup(funcAttr.getValue());
87   if (auto splatAttr = attr.dyn_cast<SplatElementsAttr>()) {
88     auto *vectorType = cast<llvm::VectorType>(llvmType);
89     auto *child = getLLVMConstant(vectorType->getElementType(),
90                                   splatAttr.getSplatValue(), loc);
91     return llvm::ConstantVector::getSplat(vectorType->getNumElements(), child);
92   }
93   if (auto elementsAttr = attr.dyn_cast<ElementsAttr>()) {
94     auto *vectorType = cast<llvm::VectorType>(llvmType);
95     SmallVector<llvm::Constant *, 8> constants;
96     uint64_t numElements = vectorType->getNumElements();
97     constants.reserve(numElements);
98     for (auto n : elementsAttr.getValues<Attribute>()) {
99       constants.push_back(
100           getLLVMConstant(vectorType->getElementType(), n, loc));
101       if (!constants.back())
102         return nullptr;
103     }
104     return llvm::ConstantVector::get(constants);
105   }
106   if (auto stringAttr = attr.dyn_cast<StringAttr>()) {
107     return llvm::ConstantDataArray::get(
108         llvmModule->getContext(), ArrayRef<char>{stringAttr.getValue().data(),
109                                                  stringAttr.getValue().size()});
110   }
111   emitError(loc, "unsupported constant value");
112   return nullptr;
113 }
114 
115 // Convert MLIR integer comparison predicate to LLVM IR comparison predicate.
116 static llvm::CmpInst::Predicate getLLVMCmpPredicate(ICmpPredicate p) {
117   switch (p) {
118   case LLVM::ICmpPredicate::eq:
119     return llvm::CmpInst::Predicate::ICMP_EQ;
120   case LLVM::ICmpPredicate::ne:
121     return llvm::CmpInst::Predicate::ICMP_NE;
122   case LLVM::ICmpPredicate::slt:
123     return llvm::CmpInst::Predicate::ICMP_SLT;
124   case LLVM::ICmpPredicate::sle:
125     return llvm::CmpInst::Predicate::ICMP_SLE;
126   case LLVM::ICmpPredicate::sgt:
127     return llvm::CmpInst::Predicate::ICMP_SGT;
128   case LLVM::ICmpPredicate::sge:
129     return llvm::CmpInst::Predicate::ICMP_SGE;
130   case LLVM::ICmpPredicate::ult:
131     return llvm::CmpInst::Predicate::ICMP_ULT;
132   case LLVM::ICmpPredicate::ule:
133     return llvm::CmpInst::Predicate::ICMP_ULE;
134   case LLVM::ICmpPredicate::ugt:
135     return llvm::CmpInst::Predicate::ICMP_UGT;
136   case LLVM::ICmpPredicate::uge:
137     return llvm::CmpInst::Predicate::ICMP_UGE;
138   }
139   llvm_unreachable("incorrect comparison predicate");
140 }
141 
142 static llvm::CmpInst::Predicate getLLVMCmpPredicate(FCmpPredicate p) {
143   switch (p) {
144   case LLVM::FCmpPredicate::_false:
145     return llvm::CmpInst::Predicate::FCMP_FALSE;
146   case LLVM::FCmpPredicate::oeq:
147     return llvm::CmpInst::Predicate::FCMP_OEQ;
148   case LLVM::FCmpPredicate::ogt:
149     return llvm::CmpInst::Predicate::FCMP_OGT;
150   case LLVM::FCmpPredicate::oge:
151     return llvm::CmpInst::Predicate::FCMP_OGE;
152   case LLVM::FCmpPredicate::olt:
153     return llvm::CmpInst::Predicate::FCMP_OLT;
154   case LLVM::FCmpPredicate::ole:
155     return llvm::CmpInst::Predicate::FCMP_OLE;
156   case LLVM::FCmpPredicate::one:
157     return llvm::CmpInst::Predicate::FCMP_ONE;
158   case LLVM::FCmpPredicate::ord:
159     return llvm::CmpInst::Predicate::FCMP_ORD;
160   case LLVM::FCmpPredicate::ueq:
161     return llvm::CmpInst::Predicate::FCMP_UEQ;
162   case LLVM::FCmpPredicate::ugt:
163     return llvm::CmpInst::Predicate::FCMP_UGT;
164   case LLVM::FCmpPredicate::uge:
165     return llvm::CmpInst::Predicate::FCMP_UGE;
166   case LLVM::FCmpPredicate::ult:
167     return llvm::CmpInst::Predicate::FCMP_ULT;
168   case LLVM::FCmpPredicate::ule:
169     return llvm::CmpInst::Predicate::FCMP_ULE;
170   case LLVM::FCmpPredicate::une:
171     return llvm::CmpInst::Predicate::FCMP_UNE;
172   case LLVM::FCmpPredicate::uno:
173     return llvm::CmpInst::Predicate::FCMP_UNO;
174   case LLVM::FCmpPredicate::_true:
175     return llvm::CmpInst::Predicate::FCMP_TRUE;
176   }
177   llvm_unreachable("incorrect comparison predicate");
178 }
179 
180 // A helper to look up remapped operands in the value remapping table.
181 template <typename Range>
182 SmallVector<llvm::Value *, 8> ModuleTranslation::lookupValues(Range &&values) {
183   SmallVector<llvm::Value *, 8> remapped;
184   remapped.reserve(llvm::size(values));
185   for (Value *v : values) {
186     remapped.push_back(valueMapping.lookup(v));
187   }
188   return remapped;
189 }
190 
191 // Given a single MLIR operation, create the corresponding LLVM IR operation
192 // using the `builder`.  LLVM IR Builder does not have a generic interface so
193 // this has to be a long chain of `if`s calling different functions with a
194 // different number of arguments.
195 LogicalResult ModuleTranslation::convertOperation(Operation &opInst,
196                                                   llvm::IRBuilder<> &builder) {
197   auto extractPosition = [](ArrayAttr attr) {
198     SmallVector<unsigned, 4> position;
199     position.reserve(attr.size());
200     for (Attribute v : attr)
201       position.push_back(v.cast<IntegerAttr>().getValue().getZExtValue());
202     return position;
203   };
204 
205 #include "mlir/Dialect/LLVMIR/LLVMConversions.inc"
206 
207   // Emit function calls.  If the "callee" attribute is present, this is a
208   // direct function call and we also need to look up the remapped function
209   // itself.  Otherwise, this is an indirect call and the callee is the first
210   // operand, look it up as a normal value.  Return the llvm::Value representing
211   // the function result, which may be of llvm::VoidTy type.
212   auto convertCall = [this, &builder](Operation &op) -> llvm::Value * {
213     auto operands = lookupValues(op.getOperands());
214     ArrayRef<llvm::Value *> operandsRef(operands);
215     if (auto attr = op.getAttrOfType<SymbolRefAttr>("callee")) {
216       return builder.CreateCall(functionMapping.lookup(attr.getValue()),
217                                 operandsRef);
218     } else {
219       return builder.CreateCall(operandsRef.front(), operandsRef.drop_front());
220     }
221   };
222 
223   // Emit calls.  If the called function has a result, remap the corresponding
224   // value.  Note that LLVM IR dialect CallOp has either 0 or 1 result.
225   if (isa<LLVM::CallOp>(opInst)) {
226     llvm::Value *result = convertCall(opInst);
227     if (opInst.getNumResults() != 0) {
228       valueMapping[opInst.getResult(0)] = result;
229       return success();
230     }
231     // Check that LLVM call returns void for 0-result functions.
232     return success(result->getType()->isVoidTy());
233   }
234 
235   // Emit branches.  We need to look up the remapped blocks and ignore the block
236   // arguments that were transformed into PHI nodes.
237   if (auto brOp = dyn_cast<LLVM::BrOp>(opInst)) {
238     builder.CreateBr(blockMapping[brOp.getSuccessor(0)]);
239     return success();
240   }
241   if (auto condbrOp = dyn_cast<LLVM::CondBrOp>(opInst)) {
242     builder.CreateCondBr(valueMapping.lookup(condbrOp.getOperand(0)),
243                          blockMapping[condbrOp.getSuccessor(0)],
244                          blockMapping[condbrOp.getSuccessor(1)]);
245     return success();
246   }
247 
248   // Emit addressof.  We need to look up the global value referenced by the
249   // operation and store it in the MLIR-to-LLVM value mapping.  This does not
250   // emit any LLVM instruction.
251   if (auto addressOfOp = dyn_cast<LLVM::AddressOfOp>(opInst)) {
252     LLVM::GlobalOp global = addressOfOp.getGlobal();
253     // The verifier should not have allowed this.
254     assert(global && "referencing an undefined global");
255 
256     valueMapping[addressOfOp.getResult()] = globalsMapping.lookup(global);
257     return success();
258   }
259 
260   return opInst.emitError("unsupported or non-LLVM operation: ")
261          << opInst.getName();
262 }
263 
264 // Convert block to LLVM IR.  Unless `ignoreArguments` is set, emit PHI nodes
265 // to define values corresponding to the MLIR block arguments.  These nodes
266 // are not connected to the source basic blocks, which may not exist yet.
267 LogicalResult ModuleTranslation::convertBlock(Block &bb, bool ignoreArguments) {
268   llvm::IRBuilder<> builder(blockMapping[&bb]);
269 
270   // Before traversing operations, make block arguments available through
271   // value remapping and PHI nodes, but do not add incoming edges for the PHI
272   // nodes just yet: those values may be defined by this or following blocks.
273   // This step is omitted if "ignoreArguments" is set.  The arguments of the
274   // first block have been already made available through the remapping of
275   // LLVM function arguments.
276   if (!ignoreArguments) {
277     auto predecessors = bb.getPredecessors();
278     unsigned numPredecessors =
279         std::distance(predecessors.begin(), predecessors.end());
280     for (auto *arg : bb.getArguments()) {
281       auto wrappedType = arg->getType().dyn_cast<LLVM::LLVMType>();
282       if (!wrappedType)
283         return emitError(bb.front().getLoc(),
284                          "block argument does not have an LLVM type");
285       llvm::Type *type = wrappedType.getUnderlyingType();
286       llvm::PHINode *phi = builder.CreatePHI(type, numPredecessors);
287       valueMapping[arg] = phi;
288     }
289   }
290 
291   // Traverse operations.
292   for (auto &op : bb) {
293     if (failed(convertOperation(op, builder)))
294       return failure();
295   }
296 
297   return success();
298 }
299 
300 // Create named global variables that correspond to llvm.global definitions.
301 void ModuleTranslation::convertGlobals() {
302   for (auto op : mlirModule.getOps<LLVM::GlobalOp>()) {
303     llvm::Constant *cst;
304     llvm::Type *type;
305     // String attributes are treated separately because they cannot appear as
306     // in-function constants and are thus not supported by getLLVMConstant.
307     if (auto strAttr = op.value().dyn_cast<StringAttr>()) {
308       cst = llvm::ConstantDataArray::getString(
309           llvmModule->getContext(), strAttr.getValue(), /*AddNull=*/false);
310       type = cst->getType();
311     } else {
312       type = op.getType().getUnderlyingType();
313       cst = getLLVMConstant(type, op.value(), op.getLoc());
314     }
315 
316     auto *var = new llvm::GlobalVariable(*llvmModule, type, op.constant(),
317                                          llvm::GlobalValue::InternalLinkage,
318                                          cst, op.sym_name());
319     globalsMapping.try_emplace(op, var);
320   }
321 }
322 
323 // Get the SSA value passed to the current block from the terminator operation
324 // of its predecessor.
325 static Value *getPHISourceValue(Block *current, Block *pred,
326                                 unsigned numArguments, unsigned index) {
327   auto &terminator = *pred->getTerminator();
328   if (isa<LLVM::BrOp>(terminator)) {
329     return terminator.getOperand(index);
330   }
331 
332   // For conditional branches, we need to check if the current block is reached
333   // through the "true" or the "false" branch and take the relevant operands.
334   auto condBranchOp = dyn_cast<LLVM::CondBrOp>(terminator);
335   assert(condBranchOp &&
336          "only branch operations can be terminators of a block that "
337          "has successors");
338   assert((condBranchOp.getSuccessor(0) != condBranchOp.getSuccessor(1)) &&
339          "successors with arguments in LLVM conditional branches must be "
340          "different blocks");
341 
342   return condBranchOp.getSuccessor(0) == current
343              ? terminator.getSuccessorOperand(0, index)
344              : terminator.getSuccessorOperand(1, index);
345 }
346 
347 void ModuleTranslation::connectPHINodes(FuncOp func) {
348   // Skip the first block, it cannot be branched to and its arguments correspond
349   // to the arguments of the LLVM function.
350   for (auto it = std::next(func.begin()), eit = func.end(); it != eit; ++it) {
351     Block *bb = &*it;
352     llvm::BasicBlock *llvmBB = blockMapping.lookup(bb);
353     auto phis = llvmBB->phis();
354     auto numArguments = bb->getNumArguments();
355     assert(numArguments == std::distance(phis.begin(), phis.end()));
356     for (auto &numberedPhiNode : llvm::enumerate(phis)) {
357       auto &phiNode = numberedPhiNode.value();
358       unsigned index = numberedPhiNode.index();
359       for (auto *pred : bb->getPredecessors()) {
360         phiNode.addIncoming(valueMapping.lookup(getPHISourceValue(
361                                 bb, pred, numArguments, index)),
362                             blockMapping.lookup(pred));
363       }
364     }
365   }
366 }
367 
368 // TODO(mlir-team): implement an iterative version
369 static void topologicalSortImpl(llvm::SetVector<Block *> &blocks, Block *b) {
370   blocks.insert(b);
371   for (Block *bb : b->getSuccessors()) {
372     if (blocks.count(bb) == 0)
373       topologicalSortImpl(blocks, bb);
374   }
375 }
376 
377 // Sort function blocks topologically.
378 static llvm::SetVector<Block *> topologicalSort(FuncOp f) {
379   // For each blocks that has not been visited yet (i.e. that has no
380   // predecessors), add it to the list and traverse its successors in DFS
381   // preorder.
382   llvm::SetVector<Block *> blocks;
383   for (Block &b : f.getBlocks()) {
384     if (blocks.count(&b) == 0)
385       topologicalSortImpl(blocks, &b);
386   }
387   assert(blocks.size() == f.getBlocks().size() && "some blocks are not sorted");
388 
389   return blocks;
390 }
391 
392 LogicalResult ModuleTranslation::convertOneFunction(FuncOp func) {
393   // Clear the block and value mappings, they are only relevant within one
394   // function.
395   blockMapping.clear();
396   valueMapping.clear();
397   llvm::Function *llvmFunc = functionMapping.lookup(func.getName());
398   // Add function arguments to the value remapping table.
399   // If there was noalias info then we decorate each argument accordingly.
400   unsigned int argIdx = 0;
401   for (const auto &kvp : llvm::zip(func.getArguments(), llvmFunc->args())) {
402     llvm::Argument &llvmArg = std::get<1>(kvp);
403     BlockArgument *mlirArg = std::get<0>(kvp);
404 
405     if (auto attr = func.getArgAttrOfType<BoolAttr>(argIdx, "llvm.noalias")) {
406       // NB: Attribute already verified to be boolean, so check if we can indeed
407       // attach the attribute to this argument, based on its type.
408       auto argTy = mlirArg->getType().dyn_cast<LLVM::LLVMType>();
409       if (!argTy.getUnderlyingType()->isPointerTy())
410         return func.emitError(
411             "llvm.noalias attribute attached to LLVM non-pointer argument");
412       if (attr.getValue())
413         llvmArg.addAttr(llvm::Attribute::AttrKind::NoAlias);
414     }
415     valueMapping[mlirArg] = &llvmArg;
416     argIdx++;
417   }
418 
419   // First, create all blocks so we can jump to them.
420   llvm::LLVMContext &llvmContext = llvmFunc->getContext();
421   for (auto &bb : func) {
422     auto *llvmBB = llvm::BasicBlock::Create(llvmContext);
423     llvmBB->insertInto(llvmFunc);
424     blockMapping[&bb] = llvmBB;
425   }
426 
427   // Then, convert blocks one by one in topological order to ensure defs are
428   // converted before uses.
429   auto blocks = topologicalSort(func);
430   for (auto indexedBB : llvm::enumerate(blocks)) {
431     auto *bb = indexedBB.value();
432     if (failed(convertBlock(*bb, /*ignoreArguments=*/indexedBB.index() == 0)))
433       return failure();
434   }
435 
436   // Finally, after all blocks have been traversed and values mapped, connect
437   // the PHI nodes to the results of preceding blocks.
438   connectPHINodes(func);
439   return success();
440 }
441 
442 LogicalResult ModuleTranslation::convertFunctions() {
443   // Declare all functions first because there may be function calls that form a
444   // call graph with cycles.
445   for (FuncOp function : mlirModule.getOps<FuncOp>()) {
446     mlir::BoolAttr isVarArgsAttr =
447         function.getAttrOfType<BoolAttr>("std.varargs");
448     bool isVarArgs = isVarArgsAttr && isVarArgsAttr.getValue();
449     llvm::FunctionType *functionType =
450         convertFunctionType(llvmModule->getContext(), function.getType(),
451                             function.getLoc(), isVarArgs);
452     if (!functionType)
453       return failure();
454     llvm::FunctionCallee llvmFuncCst =
455         llvmModule->getOrInsertFunction(function.getName(), functionType);
456     assert(isa<llvm::Function>(llvmFuncCst.getCallee()));
457     functionMapping[function.getName()] =
458         cast<llvm::Function>(llvmFuncCst.getCallee());
459   }
460 
461   // Convert functions.
462   for (FuncOp function : mlirModule.getOps<FuncOp>()) {
463     // Ignore external functions.
464     if (function.isExternal())
465       continue;
466 
467     if (failed(convertOneFunction(function)))
468       return failure();
469   }
470 
471   return success();
472 }
473 
474 std::unique_ptr<llvm::Module> ModuleTranslation::prepareLLVMModule(ModuleOp m) {
475   auto *dialect = m.getContext()->getRegisteredDialect<LLVM::LLVMDialect>();
476   assert(dialect && "LLVM dialect must be registered");
477 
478   auto llvmModule = llvm::CloneModule(dialect->getLLVMModule());
479   if (!llvmModule)
480     return nullptr;
481 
482   llvm::LLVMContext &llvmContext = llvmModule->getContext();
483   llvm::IRBuilder<> builder(llvmContext);
484 
485   // Inject declarations for `malloc` and `free` functions that can be used in
486   // memref allocation/deallocation coming from standard ops lowering.
487   llvmModule->getOrInsertFunction("malloc", builder.getInt8PtrTy(),
488                                   builder.getInt64Ty());
489   llvmModule->getOrInsertFunction("free", builder.getVoidTy(),
490                                   builder.getInt8PtrTy());
491 
492   return llvmModule;
493 }
494 
495 } // namespace LLVM
496 } // namespace mlir
497