1 //===--- CGStmtOpenMP.cpp - Emit LLVM Code from Statements ----------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This contains code to emit OpenMP nodes as LLVM code.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "CGCleanup.h"
15 #include "CGOpenMPRuntime.h"
16 #include "CodeGenFunction.h"
17 #include "CodeGenModule.h"
18 #include "TargetInfo.h"
19 #include "clang/AST/Stmt.h"
20 #include "clang/AST/StmtOpenMP.h"
21 #include "clang/AST/DeclOpenMP.h"
22 #include "llvm/IR/CallSite.h"
23 using namespace clang;
24 using namespace CodeGen;
25 
26 namespace {
27 /// Lexical scope for OpenMP executable constructs, that handles correct codegen
28 /// for captured expressions.
29 class OMPLexicalScope final : public CodeGenFunction::LexicalScope {
30   void emitPreInitStmt(CodeGenFunction &CGF, const OMPExecutableDirective &S) {
31     for (const auto *C : S.clauses()) {
32       if (auto *CPI = OMPClauseWithPreInit::get(C)) {
33         if (auto *PreInit = cast_or_null<DeclStmt>(CPI->getPreInitStmt())) {
34           for (const auto *I : PreInit->decls()) {
35             if (!I->hasAttr<OMPCaptureNoInitAttr>())
36               CGF.EmitVarDecl(cast<VarDecl>(*I));
37             else {
38               CodeGenFunction::AutoVarEmission Emission =
39                   CGF.EmitAutoVarAlloca(cast<VarDecl>(*I));
40               CGF.EmitAutoVarCleanups(Emission);
41             }
42           }
43         }
44       }
45     }
46   }
47   CodeGenFunction::OMPPrivateScope InlinedShareds;
48 
49   static bool isCapturedVar(CodeGenFunction &CGF, const VarDecl *VD) {
50     return CGF.LambdaCaptureFields.lookup(VD) ||
51            (CGF.CapturedStmtInfo && CGF.CapturedStmtInfo->lookup(VD)) ||
52            (CGF.CurCodeDecl && isa<BlockDecl>(CGF.CurCodeDecl));
53   }
54 
55 public:
56   OMPLexicalScope(CodeGenFunction &CGF, const OMPExecutableDirective &S,
57                   bool AsInlined = false)
58       : CodeGenFunction::LexicalScope(CGF, S.getSourceRange()),
59         InlinedShareds(CGF) {
60     emitPreInitStmt(CGF, S);
61     if (AsInlined) {
62       if (S.hasAssociatedStmt()) {
63         auto *CS = cast<CapturedStmt>(S.getAssociatedStmt());
64         for (auto &C : CS->captures()) {
65           if (C.capturesVariable() || C.capturesVariableByCopy()) {
66             auto *VD = C.getCapturedVar();
67             DeclRefExpr DRE(const_cast<VarDecl *>(VD),
68                             isCapturedVar(CGF, VD) ||
69                                 (CGF.CapturedStmtInfo &&
70                                  InlinedShareds.isGlobalVarCaptured(VD)),
71                             VD->getType().getNonReferenceType(), VK_LValue,
72                             SourceLocation());
73             InlinedShareds.addPrivate(VD, [&CGF, &DRE]() -> Address {
74               return CGF.EmitLValue(&DRE).getAddress();
75             });
76           }
77         }
78         (void)InlinedShareds.Privatize();
79       }
80     }
81   }
82 };
83 
84 /// Private scope for OpenMP loop-based directives, that supports capturing
85 /// of used expression from loop statement.
86 class OMPLoopScope : public CodeGenFunction::RunCleanupsScope {
87   void emitPreInitStmt(CodeGenFunction &CGF, const OMPLoopDirective &S) {
88     if (auto *LD = dyn_cast<OMPLoopDirective>(&S)) {
89       if (auto *PreInits = cast_or_null<DeclStmt>(LD->getPreInits())) {
90         for (const auto *I : PreInits->decls())
91           CGF.EmitVarDecl(cast<VarDecl>(*I));
92       }
93     }
94   }
95 
96 public:
97   OMPLoopScope(CodeGenFunction &CGF, const OMPLoopDirective &S)
98       : CodeGenFunction::RunCleanupsScope(CGF) {
99     emitPreInitStmt(CGF, S);
100   }
101 };
102 
103 } // namespace
104 
105 llvm::Value *CodeGenFunction::getTypeSize(QualType Ty) {
106   auto &C = getContext();
107   llvm::Value *Size = nullptr;
108   auto SizeInChars = C.getTypeSizeInChars(Ty);
109   if (SizeInChars.isZero()) {
110     // getTypeSizeInChars() returns 0 for a VLA.
111     while (auto *VAT = C.getAsVariableArrayType(Ty)) {
112       llvm::Value *ArraySize;
113       std::tie(ArraySize, Ty) = getVLASize(VAT);
114       Size = Size ? Builder.CreateNUWMul(Size, ArraySize) : ArraySize;
115     }
116     SizeInChars = C.getTypeSizeInChars(Ty);
117     if (SizeInChars.isZero())
118       return llvm::ConstantInt::get(SizeTy, /*V=*/0);
119     Size = Builder.CreateNUWMul(Size, CGM.getSize(SizeInChars));
120   } else
121     Size = CGM.getSize(SizeInChars);
122   return Size;
123 }
124 
125 void CodeGenFunction::GenerateOpenMPCapturedVars(
126     const CapturedStmt &S, SmallVectorImpl<llvm::Value *> &CapturedVars) {
127   const RecordDecl *RD = S.getCapturedRecordDecl();
128   auto CurField = RD->field_begin();
129   auto CurCap = S.captures().begin();
130   for (CapturedStmt::const_capture_init_iterator I = S.capture_init_begin(),
131                                                  E = S.capture_init_end();
132        I != E; ++I, ++CurField, ++CurCap) {
133     if (CurField->hasCapturedVLAType()) {
134       auto VAT = CurField->getCapturedVLAType();
135       auto *Val = VLASizeMap[VAT->getSizeExpr()];
136       CapturedVars.push_back(Val);
137     } else if (CurCap->capturesThis())
138       CapturedVars.push_back(CXXThisValue);
139     else if (CurCap->capturesVariableByCopy()) {
140       llvm::Value *CV =
141           EmitLoadOfLValue(EmitLValue(*I), SourceLocation()).getScalarVal();
142 
143       // If the field is not a pointer, we need to save the actual value
144       // and load it as a void pointer.
145       if (!CurField->getType()->isAnyPointerType()) {
146         auto &Ctx = getContext();
147         auto DstAddr = CreateMemTemp(
148             Ctx.getUIntPtrType(),
149             Twine(CurCap->getCapturedVar()->getName()) + ".casted");
150         LValue DstLV = MakeAddrLValue(DstAddr, Ctx.getUIntPtrType());
151 
152         auto *SrcAddrVal = EmitScalarConversion(
153             DstAddr.getPointer(), Ctx.getPointerType(Ctx.getUIntPtrType()),
154             Ctx.getPointerType(CurField->getType()), SourceLocation());
155         LValue SrcLV =
156             MakeNaturalAlignAddrLValue(SrcAddrVal, CurField->getType());
157 
158         // Store the value using the source type pointer.
159         EmitStoreThroughLValue(RValue::get(CV), SrcLV);
160 
161         // Load the value using the destination type pointer.
162         CV = EmitLoadOfLValue(DstLV, SourceLocation()).getScalarVal();
163       }
164       CapturedVars.push_back(CV);
165     } else {
166       assert(CurCap->capturesVariable() && "Expected capture by reference.");
167       CapturedVars.push_back(EmitLValue(*I).getAddress().getPointer());
168     }
169   }
170 }
171 
172 static Address castValueFromUintptr(CodeGenFunction &CGF, QualType DstType,
173                                     StringRef Name, LValue AddrLV,
174                                     bool isReferenceType = false) {
175   ASTContext &Ctx = CGF.getContext();
176 
177   auto *CastedPtr = CGF.EmitScalarConversion(
178       AddrLV.getAddress().getPointer(), Ctx.getUIntPtrType(),
179       Ctx.getPointerType(DstType), SourceLocation());
180   auto TmpAddr =
181       CGF.MakeNaturalAlignAddrLValue(CastedPtr, Ctx.getPointerType(DstType))
182           .getAddress();
183 
184   // If we are dealing with references we need to return the address of the
185   // reference instead of the reference of the value.
186   if (isReferenceType) {
187     QualType RefType = Ctx.getLValueReferenceType(DstType);
188     auto *RefVal = TmpAddr.getPointer();
189     TmpAddr = CGF.CreateMemTemp(RefType, Twine(Name) + ".ref");
190     auto TmpLVal = CGF.MakeAddrLValue(TmpAddr, RefType);
191     CGF.EmitScalarInit(RefVal, TmpLVal);
192   }
193 
194   return TmpAddr;
195 }
196 
197 llvm::Function *
198 CodeGenFunction::GenerateOpenMPCapturedStmtFunction(const CapturedStmt &S) {
199   assert(
200       CapturedStmtInfo &&
201       "CapturedStmtInfo should be set when generating the captured function");
202   const CapturedDecl *CD = S.getCapturedDecl();
203   const RecordDecl *RD = S.getCapturedRecordDecl();
204   assert(CD->hasBody() && "missing CapturedDecl body");
205 
206   // Build the argument list.
207   ASTContext &Ctx = CGM.getContext();
208   FunctionArgList Args;
209   Args.append(CD->param_begin(),
210               std::next(CD->param_begin(), CD->getContextParamPosition()));
211   auto I = S.captures().begin();
212   for (auto *FD : RD->fields()) {
213     QualType ArgType = FD->getType();
214     IdentifierInfo *II = nullptr;
215     VarDecl *CapVar = nullptr;
216 
217     // If this is a capture by copy and the type is not a pointer, the outlined
218     // function argument type should be uintptr and the value properly casted to
219     // uintptr. This is necessary given that the runtime library is only able to
220     // deal with pointers. We can pass in the same way the VLA type sizes to the
221     // outlined function.
222     if ((I->capturesVariableByCopy() && !ArgType->isAnyPointerType()) ||
223         I->capturesVariableArrayType())
224       ArgType = Ctx.getUIntPtrType();
225 
226     if (I->capturesVariable() || I->capturesVariableByCopy()) {
227       CapVar = I->getCapturedVar();
228       II = CapVar->getIdentifier();
229     } else if (I->capturesThis())
230       II = &getContext().Idents.get("this");
231     else {
232       assert(I->capturesVariableArrayType());
233       II = &getContext().Idents.get("vla");
234     }
235     if (ArgType->isVariablyModifiedType())
236       ArgType = getContext().getVariableArrayDecayedType(ArgType);
237     Args.push_back(ImplicitParamDecl::Create(getContext(), nullptr,
238                                              FD->getLocation(), II, ArgType));
239     ++I;
240   }
241   Args.append(
242       std::next(CD->param_begin(), CD->getContextParamPosition() + 1),
243       CD->param_end());
244 
245   // Create the function declaration.
246   FunctionType::ExtInfo ExtInfo;
247   const CGFunctionInfo &FuncInfo =
248       CGM.getTypes().arrangeBuiltinFunctionDeclaration(Ctx.VoidTy, Args);
249   llvm::FunctionType *FuncLLVMTy = CGM.getTypes().GetFunctionType(FuncInfo);
250 
251   llvm::Function *F = llvm::Function::Create(
252       FuncLLVMTy, llvm::GlobalValue::InternalLinkage,
253       CapturedStmtInfo->getHelperName(), &CGM.getModule());
254   CGM.SetInternalFunctionAttributes(CD, F, FuncInfo);
255   if (CD->isNothrow())
256     F->addFnAttr(llvm::Attribute::NoUnwind);
257 
258   // Generate the function.
259   StartFunction(CD, Ctx.VoidTy, F, FuncInfo, Args, CD->getLocation(),
260                 CD->getBody()->getLocStart());
261   unsigned Cnt = CD->getContextParamPosition();
262   I = S.captures().begin();
263   for (auto *FD : RD->fields()) {
264     // If we are capturing a pointer by copy we don't need to do anything, just
265     // use the value that we get from the arguments.
266     if (I->capturesVariableByCopy() && FD->getType()->isAnyPointerType()) {
267       setAddrOfLocalVar(I->getCapturedVar(), GetAddrOfLocalVar(Args[Cnt]));
268       ++Cnt;
269       ++I;
270       continue;
271     }
272 
273     LValue ArgLVal =
274         MakeAddrLValue(GetAddrOfLocalVar(Args[Cnt]), Args[Cnt]->getType(),
275                        AlignmentSource::Decl);
276     if (FD->hasCapturedVLAType()) {
277       LValue CastedArgLVal =
278           MakeAddrLValue(castValueFromUintptr(*this, FD->getType(),
279                                               Args[Cnt]->getName(), ArgLVal),
280                          FD->getType(), AlignmentSource::Decl);
281       auto *ExprArg =
282           EmitLoadOfLValue(CastedArgLVal, SourceLocation()).getScalarVal();
283       auto VAT = FD->getCapturedVLAType();
284       VLASizeMap[VAT->getSizeExpr()] = ExprArg;
285     } else if (I->capturesVariable()) {
286       auto *Var = I->getCapturedVar();
287       QualType VarTy = Var->getType();
288       Address ArgAddr = ArgLVal.getAddress();
289       if (!VarTy->isReferenceType()) {
290         ArgAddr = EmitLoadOfReference(
291             ArgAddr, ArgLVal.getType()->castAs<ReferenceType>());
292       }
293       setAddrOfLocalVar(
294           Var, Address(ArgAddr.getPointer(), getContext().getDeclAlign(Var)));
295     } else if (I->capturesVariableByCopy()) {
296       assert(!FD->getType()->isAnyPointerType() &&
297              "Not expecting a captured pointer.");
298       auto *Var = I->getCapturedVar();
299       QualType VarTy = Var->getType();
300       setAddrOfLocalVar(Var, castValueFromUintptr(*this, FD->getType(),
301                                                   Args[Cnt]->getName(), ArgLVal,
302                                                   VarTy->isReferenceType()));
303     } else {
304       // If 'this' is captured, load it into CXXThisValue.
305       assert(I->capturesThis());
306       CXXThisValue =
307           EmitLoadOfLValue(ArgLVal, Args[Cnt]->getLocation()).getScalarVal();
308     }
309     ++Cnt;
310     ++I;
311   }
312 
313   PGO.assignRegionCounters(GlobalDecl(CD), F);
314   CapturedStmtInfo->EmitBody(*this, CD->getBody());
315   FinishFunction(CD->getBodyRBrace());
316 
317   return F;
318 }
319 
320 //===----------------------------------------------------------------------===//
321 //                              OpenMP Directive Emission
322 //===----------------------------------------------------------------------===//
323 void CodeGenFunction::EmitOMPAggregateAssign(
324     Address DestAddr, Address SrcAddr, QualType OriginalType,
325     const llvm::function_ref<void(Address, Address)> &CopyGen) {
326   // Perform element-by-element initialization.
327   QualType ElementTy;
328 
329   // Drill down to the base element type on both arrays.
330   auto ArrayTy = OriginalType->getAsArrayTypeUnsafe();
331   auto NumElements = emitArrayLength(ArrayTy, ElementTy, DestAddr);
332   SrcAddr = Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType());
333 
334   auto SrcBegin = SrcAddr.getPointer();
335   auto DestBegin = DestAddr.getPointer();
336   // Cast from pointer to array type to pointer to single element.
337   auto DestEnd = Builder.CreateGEP(DestBegin, NumElements);
338   // The basic structure here is a while-do loop.
339   auto BodyBB = createBasicBlock("omp.arraycpy.body");
340   auto DoneBB = createBasicBlock("omp.arraycpy.done");
341   auto IsEmpty =
342       Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arraycpy.isempty");
343   Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB);
344 
345   // Enter the loop body, making that address the current address.
346   auto EntryBB = Builder.GetInsertBlock();
347   EmitBlock(BodyBB);
348 
349   CharUnits ElementSize = getContext().getTypeSizeInChars(ElementTy);
350 
351   llvm::PHINode *SrcElementPHI =
352     Builder.CreatePHI(SrcBegin->getType(), 2, "omp.arraycpy.srcElementPast");
353   SrcElementPHI->addIncoming(SrcBegin, EntryBB);
354   Address SrcElementCurrent =
355       Address(SrcElementPHI,
356               SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize));
357 
358   llvm::PHINode *DestElementPHI =
359     Builder.CreatePHI(DestBegin->getType(), 2, "omp.arraycpy.destElementPast");
360   DestElementPHI->addIncoming(DestBegin, EntryBB);
361   Address DestElementCurrent =
362     Address(DestElementPHI,
363             DestAddr.getAlignment().alignmentOfArrayElement(ElementSize));
364 
365   // Emit copy.
366   CopyGen(DestElementCurrent, SrcElementCurrent);
367 
368   // Shift the address forward by one element.
369   auto DestElementNext = Builder.CreateConstGEP1_32(
370       DestElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
371   auto SrcElementNext = Builder.CreateConstGEP1_32(
372       SrcElementPHI, /*Idx0=*/1, "omp.arraycpy.src.element");
373   // Check whether we've reached the end.
374   auto Done =
375       Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done");
376   Builder.CreateCondBr(Done, DoneBB, BodyBB);
377   DestElementPHI->addIncoming(DestElementNext, Builder.GetInsertBlock());
378   SrcElementPHI->addIncoming(SrcElementNext, Builder.GetInsertBlock());
379 
380   // Done.
381   EmitBlock(DoneBB, /*IsFinished=*/true);
382 }
383 
384 /// Check if the combiner is a call to UDR combiner and if it is so return the
385 /// UDR decl used for reduction.
386 static const OMPDeclareReductionDecl *
387 getReductionInit(const Expr *ReductionOp) {
388   if (auto *CE = dyn_cast<CallExpr>(ReductionOp))
389     if (auto *OVE = dyn_cast<OpaqueValueExpr>(CE->getCallee()))
390       if (auto *DRE =
391               dyn_cast<DeclRefExpr>(OVE->getSourceExpr()->IgnoreImpCasts()))
392         if (auto *DRD = dyn_cast<OMPDeclareReductionDecl>(DRE->getDecl()))
393           return DRD;
394   return nullptr;
395 }
396 
397 static void emitInitWithReductionInitializer(CodeGenFunction &CGF,
398                                              const OMPDeclareReductionDecl *DRD,
399                                              const Expr *InitOp,
400                                              Address Private, Address Original,
401                                              QualType Ty) {
402   if (DRD->getInitializer()) {
403     std::pair<llvm::Function *, llvm::Function *> Reduction =
404         CGF.CGM.getOpenMPRuntime().getUserDefinedReduction(DRD);
405     auto *CE = cast<CallExpr>(InitOp);
406     auto *OVE = cast<OpaqueValueExpr>(CE->getCallee());
407     const Expr *LHS = CE->getArg(/*Arg=*/0)->IgnoreParenImpCasts();
408     const Expr *RHS = CE->getArg(/*Arg=*/1)->IgnoreParenImpCasts();
409     auto *LHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(LHS)->getSubExpr());
410     auto *RHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(RHS)->getSubExpr());
411     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
412     PrivateScope.addPrivate(cast<VarDecl>(LHSDRE->getDecl()),
413                             [=]() -> Address { return Private; });
414     PrivateScope.addPrivate(cast<VarDecl>(RHSDRE->getDecl()),
415                             [=]() -> Address { return Original; });
416     (void)PrivateScope.Privatize();
417     RValue Func = RValue::get(Reduction.second);
418     CodeGenFunction::OpaqueValueMapping Map(CGF, OVE, Func);
419     CGF.EmitIgnoredExpr(InitOp);
420   } else {
421     llvm::Constant *Init = CGF.CGM.EmitNullConstant(Ty);
422     auto *GV = new llvm::GlobalVariable(
423         CGF.CGM.getModule(), Init->getType(), /*isConstant=*/true,
424         llvm::GlobalValue::PrivateLinkage, Init, ".init");
425     LValue LV = CGF.MakeNaturalAlignAddrLValue(GV, Ty);
426     RValue InitRVal;
427     switch (CGF.getEvaluationKind(Ty)) {
428     case TEK_Scalar:
429       InitRVal = CGF.EmitLoadOfLValue(LV, SourceLocation());
430       break;
431     case TEK_Complex:
432       InitRVal =
433           RValue::getComplex(CGF.EmitLoadOfComplex(LV, SourceLocation()));
434       break;
435     case TEK_Aggregate:
436       InitRVal = RValue::getAggregate(LV.getAddress());
437       break;
438     }
439     OpaqueValueExpr OVE(SourceLocation(), Ty, VK_RValue);
440     CodeGenFunction::OpaqueValueMapping OpaqueMap(CGF, &OVE, InitRVal);
441     CGF.EmitAnyExprToMem(&OVE, Private, Ty.getQualifiers(),
442                          /*IsInitializer=*/false);
443   }
444 }
445 
446 /// \brief Emit initialization of arrays of complex types.
447 /// \param DestAddr Address of the array.
448 /// \param Type Type of array.
449 /// \param Init Initial expression of array.
450 /// \param SrcAddr Address of the original array.
451 static void EmitOMPAggregateInit(CodeGenFunction &CGF, Address DestAddr,
452                                  QualType Type, const Expr *Init,
453                                  Address SrcAddr = Address::invalid()) {
454   auto *DRD = getReductionInit(Init);
455   // Perform element-by-element initialization.
456   QualType ElementTy;
457 
458   // Drill down to the base element type on both arrays.
459   auto ArrayTy = Type->getAsArrayTypeUnsafe();
460   auto NumElements = CGF.emitArrayLength(ArrayTy, ElementTy, DestAddr);
461   DestAddr =
462       CGF.Builder.CreateElementBitCast(DestAddr, DestAddr.getElementType());
463   if (DRD)
464     SrcAddr =
465         CGF.Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType());
466 
467   llvm::Value *SrcBegin = nullptr;
468   if (DRD)
469     SrcBegin = SrcAddr.getPointer();
470   auto DestBegin = DestAddr.getPointer();
471   // Cast from pointer to array type to pointer to single element.
472   auto DestEnd = CGF.Builder.CreateGEP(DestBegin, NumElements);
473   // The basic structure here is a while-do loop.
474   auto BodyBB = CGF.createBasicBlock("omp.arrayinit.body");
475   auto DoneBB = CGF.createBasicBlock("omp.arrayinit.done");
476   auto IsEmpty =
477       CGF.Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arrayinit.isempty");
478   CGF.Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB);
479 
480   // Enter the loop body, making that address the current address.
481   auto EntryBB = CGF.Builder.GetInsertBlock();
482   CGF.EmitBlock(BodyBB);
483 
484   CharUnits ElementSize = CGF.getContext().getTypeSizeInChars(ElementTy);
485 
486   llvm::PHINode *SrcElementPHI = nullptr;
487   Address SrcElementCurrent = Address::invalid();
488   if (DRD) {
489     SrcElementPHI = CGF.Builder.CreatePHI(SrcBegin->getType(), 2,
490                                           "omp.arraycpy.srcElementPast");
491     SrcElementPHI->addIncoming(SrcBegin, EntryBB);
492     SrcElementCurrent =
493         Address(SrcElementPHI,
494                 SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize));
495   }
496   llvm::PHINode *DestElementPHI = CGF.Builder.CreatePHI(
497       DestBegin->getType(), 2, "omp.arraycpy.destElementPast");
498   DestElementPHI->addIncoming(DestBegin, EntryBB);
499   Address DestElementCurrent =
500       Address(DestElementPHI,
501               DestAddr.getAlignment().alignmentOfArrayElement(ElementSize));
502 
503   // Emit copy.
504   {
505     CodeGenFunction::RunCleanupsScope InitScope(CGF);
506     if (DRD && (DRD->getInitializer() || !Init)) {
507       emitInitWithReductionInitializer(CGF, DRD, Init, DestElementCurrent,
508                                        SrcElementCurrent, ElementTy);
509     } else
510       CGF.EmitAnyExprToMem(Init, DestElementCurrent, ElementTy.getQualifiers(),
511                            /*IsInitializer=*/false);
512   }
513 
514   if (DRD) {
515     // Shift the address forward by one element.
516     auto SrcElementNext = CGF.Builder.CreateConstGEP1_32(
517         SrcElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
518     SrcElementPHI->addIncoming(SrcElementNext, CGF.Builder.GetInsertBlock());
519   }
520 
521   // Shift the address forward by one element.
522   auto DestElementNext = CGF.Builder.CreateConstGEP1_32(
523       DestElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
524   // Check whether we've reached the end.
525   auto Done =
526       CGF.Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done");
527   CGF.Builder.CreateCondBr(Done, DoneBB, BodyBB);
528   DestElementPHI->addIncoming(DestElementNext, CGF.Builder.GetInsertBlock());
529 
530   // Done.
531   CGF.EmitBlock(DoneBB, /*IsFinished=*/true);
532 }
533 
534 void CodeGenFunction::EmitOMPCopy(QualType OriginalType, Address DestAddr,
535                                   Address SrcAddr, const VarDecl *DestVD,
536                                   const VarDecl *SrcVD, const Expr *Copy) {
537   if (OriginalType->isArrayType()) {
538     auto *BO = dyn_cast<BinaryOperator>(Copy);
539     if (BO && BO->getOpcode() == BO_Assign) {
540       // Perform simple memcpy for simple copying.
541       EmitAggregateAssign(DestAddr, SrcAddr, OriginalType);
542     } else {
543       // For arrays with complex element types perform element by element
544       // copying.
545       EmitOMPAggregateAssign(
546           DestAddr, SrcAddr, OriginalType,
547           [this, Copy, SrcVD, DestVD](Address DestElement, Address SrcElement) {
548             // Working with the single array element, so have to remap
549             // destination and source variables to corresponding array
550             // elements.
551             CodeGenFunction::OMPPrivateScope Remap(*this);
552             Remap.addPrivate(DestVD, [DestElement]() -> Address {
553               return DestElement;
554             });
555             Remap.addPrivate(
556                 SrcVD, [SrcElement]() -> Address { return SrcElement; });
557             (void)Remap.Privatize();
558             EmitIgnoredExpr(Copy);
559           });
560     }
561   } else {
562     // Remap pseudo source variable to private copy.
563     CodeGenFunction::OMPPrivateScope Remap(*this);
564     Remap.addPrivate(SrcVD, [SrcAddr]() -> Address { return SrcAddr; });
565     Remap.addPrivate(DestVD, [DestAddr]() -> Address { return DestAddr; });
566     (void)Remap.Privatize();
567     // Emit copying of the whole variable.
568     EmitIgnoredExpr(Copy);
569   }
570 }
571 
572 bool CodeGenFunction::EmitOMPFirstprivateClause(const OMPExecutableDirective &D,
573                                                 OMPPrivateScope &PrivateScope) {
574   if (!HaveInsertPoint())
575     return false;
576   bool FirstprivateIsLastprivate = false;
577   llvm::DenseSet<const VarDecl *> Lastprivates;
578   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
579     for (const auto *D : C->varlists())
580       Lastprivates.insert(
581           cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl());
582   }
583   llvm::DenseSet<const VarDecl *> EmittedAsFirstprivate;
584   CGCapturedStmtInfo CapturesInfo(cast<CapturedStmt>(*D.getAssociatedStmt()));
585   for (const auto *C : D.getClausesOfKind<OMPFirstprivateClause>()) {
586     auto IRef = C->varlist_begin();
587     auto InitsRef = C->inits().begin();
588     for (auto IInit : C->private_copies()) {
589       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
590       bool ThisFirstprivateIsLastprivate =
591           Lastprivates.count(OrigVD->getCanonicalDecl()) > 0;
592       auto *CapFD = CapturesInfo.lookup(OrigVD);
593       auto *FD = CapturedStmtInfo->lookup(OrigVD);
594       if (!ThisFirstprivateIsLastprivate && FD && (FD == CapFD) &&
595           !FD->getType()->isReferenceType()) {
596         EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl());
597         ++IRef;
598         ++InitsRef;
599         continue;
600       }
601       FirstprivateIsLastprivate =
602           FirstprivateIsLastprivate || ThisFirstprivateIsLastprivate;
603       if (EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl()).second) {
604         auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
605         auto *VDInit = cast<VarDecl>(cast<DeclRefExpr>(*InitsRef)->getDecl());
606         bool IsRegistered;
607         DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD),
608                         /*RefersToEnclosingVariableOrCapture=*/FD != nullptr,
609                         (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc());
610         Address OriginalAddr = EmitLValue(&DRE).getAddress();
611         QualType Type = VD->getType();
612         if (Type->isArrayType()) {
613           // Emit VarDecl with copy init for arrays.
614           // Get the address of the original variable captured in current
615           // captured region.
616           IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address {
617             auto Emission = EmitAutoVarAlloca(*VD);
618             auto *Init = VD->getInit();
619             if (!isa<CXXConstructExpr>(Init) || isTrivialInitializer(Init)) {
620               // Perform simple memcpy.
621               EmitAggregateAssign(Emission.getAllocatedAddress(), OriginalAddr,
622                                   Type);
623             } else {
624               EmitOMPAggregateAssign(
625                   Emission.getAllocatedAddress(), OriginalAddr, Type,
626                   [this, VDInit, Init](Address DestElement,
627                                        Address SrcElement) {
628                     // Clean up any temporaries needed by the initialization.
629                     RunCleanupsScope InitScope(*this);
630                     // Emit initialization for single element.
631                     setAddrOfLocalVar(VDInit, SrcElement);
632                     EmitAnyExprToMem(Init, DestElement,
633                                      Init->getType().getQualifiers(),
634                                      /*IsInitializer*/ false);
635                     LocalDeclMap.erase(VDInit);
636                   });
637             }
638             EmitAutoVarCleanups(Emission);
639             return Emission.getAllocatedAddress();
640           });
641         } else {
642           IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address {
643             // Emit private VarDecl with copy init.
644             // Remap temp VDInit variable to the address of the original
645             // variable
646             // (for proper handling of captured global variables).
647             setAddrOfLocalVar(VDInit, OriginalAddr);
648             EmitDecl(*VD);
649             LocalDeclMap.erase(VDInit);
650             return GetAddrOfLocalVar(VD);
651           });
652         }
653         assert(IsRegistered &&
654                "firstprivate var already registered as private");
655         // Silence the warning about unused variable.
656         (void)IsRegistered;
657       }
658       ++IRef;
659       ++InitsRef;
660     }
661   }
662   return FirstprivateIsLastprivate && !EmittedAsFirstprivate.empty();
663 }
664 
665 void CodeGenFunction::EmitOMPPrivateClause(
666     const OMPExecutableDirective &D,
667     CodeGenFunction::OMPPrivateScope &PrivateScope) {
668   if (!HaveInsertPoint())
669     return;
670   llvm::DenseSet<const VarDecl *> EmittedAsPrivate;
671   for (const auto *C : D.getClausesOfKind<OMPPrivateClause>()) {
672     auto IRef = C->varlist_begin();
673     for (auto IInit : C->private_copies()) {
674       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
675       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
676         auto VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
677         bool IsRegistered =
678             PrivateScope.addPrivate(OrigVD, [&]() -> Address {
679               // Emit private VarDecl with copy init.
680               EmitDecl(*VD);
681               return GetAddrOfLocalVar(VD);
682             });
683         assert(IsRegistered && "private var already registered as private");
684         // Silence the warning about unused variable.
685         (void)IsRegistered;
686       }
687       ++IRef;
688     }
689   }
690 }
691 
692 bool CodeGenFunction::EmitOMPCopyinClause(const OMPExecutableDirective &D) {
693   if (!HaveInsertPoint())
694     return false;
695   // threadprivate_var1 = master_threadprivate_var1;
696   // operator=(threadprivate_var2, master_threadprivate_var2);
697   // ...
698   // __kmpc_barrier(&loc, global_tid);
699   llvm::DenseSet<const VarDecl *> CopiedVars;
700   llvm::BasicBlock *CopyBegin = nullptr, *CopyEnd = nullptr;
701   for (const auto *C : D.getClausesOfKind<OMPCopyinClause>()) {
702     auto IRef = C->varlist_begin();
703     auto ISrcRef = C->source_exprs().begin();
704     auto IDestRef = C->destination_exprs().begin();
705     for (auto *AssignOp : C->assignment_ops()) {
706       auto *VD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
707       QualType Type = VD->getType();
708       if (CopiedVars.insert(VD->getCanonicalDecl()).second) {
709         // Get the address of the master variable. If we are emitting code with
710         // TLS support, the address is passed from the master as field in the
711         // captured declaration.
712         Address MasterAddr = Address::invalid();
713         if (getLangOpts().OpenMPUseTLS &&
714             getContext().getTargetInfo().isTLSSupported()) {
715           assert(CapturedStmtInfo->lookup(VD) &&
716                  "Copyin threadprivates should have been captured!");
717           DeclRefExpr DRE(const_cast<VarDecl *>(VD), true, (*IRef)->getType(),
718                           VK_LValue, (*IRef)->getExprLoc());
719           MasterAddr = EmitLValue(&DRE).getAddress();
720           LocalDeclMap.erase(VD);
721         } else {
722           MasterAddr =
723             Address(VD->isStaticLocal() ? CGM.getStaticLocalDeclAddress(VD)
724                                         : CGM.GetAddrOfGlobal(VD),
725                     getContext().getDeclAlign(VD));
726         }
727         // Get the address of the threadprivate variable.
728         Address PrivateAddr = EmitLValue(*IRef).getAddress();
729         if (CopiedVars.size() == 1) {
730           // At first check if current thread is a master thread. If it is, no
731           // need to copy data.
732           CopyBegin = createBasicBlock("copyin.not.master");
733           CopyEnd = createBasicBlock("copyin.not.master.end");
734           Builder.CreateCondBr(
735               Builder.CreateICmpNE(
736                   Builder.CreatePtrToInt(MasterAddr.getPointer(), CGM.IntPtrTy),
737                   Builder.CreatePtrToInt(PrivateAddr.getPointer(), CGM.IntPtrTy)),
738               CopyBegin, CopyEnd);
739           EmitBlock(CopyBegin);
740         }
741         auto *SrcVD = cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl());
742         auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
743         EmitOMPCopy(Type, PrivateAddr, MasterAddr, DestVD, SrcVD, AssignOp);
744       }
745       ++IRef;
746       ++ISrcRef;
747       ++IDestRef;
748     }
749   }
750   if (CopyEnd) {
751     // Exit out of copying procedure for non-master thread.
752     EmitBlock(CopyEnd, /*IsFinished=*/true);
753     return true;
754   }
755   return false;
756 }
757 
758 bool CodeGenFunction::EmitOMPLastprivateClauseInit(
759     const OMPExecutableDirective &D, OMPPrivateScope &PrivateScope) {
760   if (!HaveInsertPoint())
761     return false;
762   bool HasAtLeastOneLastprivate = false;
763   llvm::DenseSet<const VarDecl *> SIMDLCVs;
764   if (isOpenMPSimdDirective(D.getDirectiveKind())) {
765     auto *LoopDirective = cast<OMPLoopDirective>(&D);
766     for (auto *C : LoopDirective->counters()) {
767       SIMDLCVs.insert(
768           cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl());
769     }
770   }
771   llvm::DenseSet<const VarDecl *> AlreadyEmittedVars;
772   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
773     HasAtLeastOneLastprivate = true;
774     if (isOpenMPTaskLoopDirective(D.getDirectiveKind()))
775       break;
776     auto IRef = C->varlist_begin();
777     auto IDestRef = C->destination_exprs().begin();
778     for (auto *IInit : C->private_copies()) {
779       // Keep the address of the original variable for future update at the end
780       // of the loop.
781       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
782       // Taskloops do not require additional initialization, it is done in
783       // runtime support library.
784       if (AlreadyEmittedVars.insert(OrigVD->getCanonicalDecl()).second) {
785         auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
786         PrivateScope.addPrivate(DestVD, [this, OrigVD, IRef]() -> Address {
787           DeclRefExpr DRE(
788               const_cast<VarDecl *>(OrigVD),
789               /*RefersToEnclosingVariableOrCapture=*/CapturedStmtInfo->lookup(
790                   OrigVD) != nullptr,
791               (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc());
792           return EmitLValue(&DRE).getAddress();
793         });
794         // Check if the variable is also a firstprivate: in this case IInit is
795         // not generated. Initialization of this variable will happen in codegen
796         // for 'firstprivate' clause.
797         if (IInit && !SIMDLCVs.count(OrigVD->getCanonicalDecl())) {
798           auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
799           bool IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address {
800             // Emit private VarDecl with copy init.
801             EmitDecl(*VD);
802             return GetAddrOfLocalVar(VD);
803           });
804           assert(IsRegistered &&
805                  "lastprivate var already registered as private");
806           (void)IsRegistered;
807         }
808       }
809       ++IRef;
810       ++IDestRef;
811     }
812   }
813   return HasAtLeastOneLastprivate;
814 }
815 
816 void CodeGenFunction::EmitOMPLastprivateClauseFinal(
817     const OMPExecutableDirective &D, bool NoFinals,
818     llvm::Value *IsLastIterCond) {
819   if (!HaveInsertPoint())
820     return;
821   // Emit following code:
822   // if (<IsLastIterCond>) {
823   //   orig_var1 = private_orig_var1;
824   //   ...
825   //   orig_varn = private_orig_varn;
826   // }
827   llvm::BasicBlock *ThenBB = nullptr;
828   llvm::BasicBlock *DoneBB = nullptr;
829   if (IsLastIterCond) {
830     ThenBB = createBasicBlock(".omp.lastprivate.then");
831     DoneBB = createBasicBlock(".omp.lastprivate.done");
832     Builder.CreateCondBr(IsLastIterCond, ThenBB, DoneBB);
833     EmitBlock(ThenBB);
834   }
835   llvm::DenseSet<const VarDecl *> AlreadyEmittedVars;
836   llvm::DenseMap<const VarDecl *, const Expr *> LoopCountersAndUpdates;
837   if (auto *LoopDirective = dyn_cast<OMPLoopDirective>(&D)) {
838     auto IC = LoopDirective->counters().begin();
839     for (auto F : LoopDirective->finals()) {
840       auto *D =
841           cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl())->getCanonicalDecl();
842       if (NoFinals)
843         AlreadyEmittedVars.insert(D);
844       else
845         LoopCountersAndUpdates[D] = F;
846       ++IC;
847     }
848   }
849   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
850     auto IRef = C->varlist_begin();
851     auto ISrcRef = C->source_exprs().begin();
852     auto IDestRef = C->destination_exprs().begin();
853     for (auto *AssignOp : C->assignment_ops()) {
854       auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
855       QualType Type = PrivateVD->getType();
856       auto *CanonicalVD = PrivateVD->getCanonicalDecl();
857       if (AlreadyEmittedVars.insert(CanonicalVD).second) {
858         // If lastprivate variable is a loop control variable for loop-based
859         // directive, update its value before copyin back to original
860         // variable.
861         if (auto *FinalExpr = LoopCountersAndUpdates.lookup(CanonicalVD))
862           EmitIgnoredExpr(FinalExpr);
863         auto *SrcVD = cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl());
864         auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
865         // Get the address of the original variable.
866         Address OriginalAddr = GetAddrOfLocalVar(DestVD);
867         // Get the address of the private variable.
868         Address PrivateAddr = GetAddrOfLocalVar(PrivateVD);
869         if (auto RefTy = PrivateVD->getType()->getAs<ReferenceType>())
870           PrivateAddr =
871               Address(Builder.CreateLoad(PrivateAddr),
872                       getNaturalTypeAlignment(RefTy->getPointeeType()));
873         EmitOMPCopy(Type, OriginalAddr, PrivateAddr, DestVD, SrcVD, AssignOp);
874       }
875       ++IRef;
876       ++ISrcRef;
877       ++IDestRef;
878     }
879     if (auto *PostUpdate = C->getPostUpdateExpr())
880       EmitIgnoredExpr(PostUpdate);
881   }
882   if (IsLastIterCond)
883     EmitBlock(DoneBB, /*IsFinished=*/true);
884 }
885 
886 static Address castToBase(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy,
887                           LValue BaseLV, llvm::Value *Addr) {
888   Address Tmp = Address::invalid();
889   Address TopTmp = Address::invalid();
890   Address MostTopTmp = Address::invalid();
891   BaseTy = BaseTy.getNonReferenceType();
892   while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) &&
893          !CGF.getContext().hasSameType(BaseTy, ElTy)) {
894     Tmp = CGF.CreateMemTemp(BaseTy);
895     if (TopTmp.isValid())
896       CGF.Builder.CreateStore(Tmp.getPointer(), TopTmp);
897     else
898       MostTopTmp = Tmp;
899     TopTmp = Tmp;
900     BaseTy = BaseTy->getPointeeType();
901   }
902   llvm::Type *Ty = BaseLV.getPointer()->getType();
903   if (Tmp.isValid())
904     Ty = Tmp.getElementType();
905   Addr = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(Addr, Ty);
906   if (Tmp.isValid()) {
907     CGF.Builder.CreateStore(Addr, Tmp);
908     return MostTopTmp;
909   }
910   return Address(Addr, BaseLV.getAlignment());
911 }
912 
913 static LValue loadToBegin(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy,
914                           LValue BaseLV) {
915   BaseTy = BaseTy.getNonReferenceType();
916   while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) &&
917          !CGF.getContext().hasSameType(BaseTy, ElTy)) {
918     if (auto *PtrTy = BaseTy->getAs<PointerType>())
919       BaseLV = CGF.EmitLoadOfPointerLValue(BaseLV.getAddress(), PtrTy);
920     else {
921       BaseLV = CGF.EmitLoadOfReferenceLValue(BaseLV.getAddress(),
922                                              BaseTy->castAs<ReferenceType>());
923     }
924     BaseTy = BaseTy->getPointeeType();
925   }
926   return CGF.MakeAddrLValue(
927       Address(
928           CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
929               BaseLV.getPointer(), CGF.ConvertTypeForMem(ElTy)->getPointerTo()),
930           BaseLV.getAlignment()),
931       BaseLV.getType(), BaseLV.getAlignmentSource());
932 }
933 
934 void CodeGenFunction::EmitOMPReductionClauseInit(
935     const OMPExecutableDirective &D,
936     CodeGenFunction::OMPPrivateScope &PrivateScope) {
937   if (!HaveInsertPoint())
938     return;
939   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
940     auto ILHS = C->lhs_exprs().begin();
941     auto IRHS = C->rhs_exprs().begin();
942     auto IPriv = C->privates().begin();
943     auto IRed = C->reduction_ops().begin();
944     for (auto IRef : C->varlists()) {
945       auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
946       auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
947       auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*IPriv)->getDecl());
948       auto *DRD = getReductionInit(*IRed);
949       if (auto *OASE = dyn_cast<OMPArraySectionExpr>(IRef)) {
950         auto *Base = OASE->getBase()->IgnoreParenImpCasts();
951         while (auto *TempOASE = dyn_cast<OMPArraySectionExpr>(Base))
952           Base = TempOASE->getBase()->IgnoreParenImpCasts();
953         while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
954           Base = TempASE->getBase()->IgnoreParenImpCasts();
955         auto *DE = cast<DeclRefExpr>(Base);
956         auto *OrigVD = cast<VarDecl>(DE->getDecl());
957         auto OASELValueLB = EmitOMPArraySectionExpr(OASE);
958         auto OASELValueUB =
959             EmitOMPArraySectionExpr(OASE, /*IsLowerBound=*/false);
960         auto OriginalBaseLValue = EmitLValue(DE);
961         LValue BaseLValue =
962             loadToBegin(*this, OrigVD->getType(), OASELValueLB.getType(),
963                         OriginalBaseLValue);
964         // Store the address of the original variable associated with the LHS
965         // implicit variable.
966         PrivateScope.addPrivate(LHSVD, [this, OASELValueLB]() -> Address {
967           return OASELValueLB.getAddress();
968         });
969         // Emit reduction copy.
970         bool IsRegistered = PrivateScope.addPrivate(
971             OrigVD, [this, OrigVD, PrivateVD, BaseLValue, OASELValueLB,
972                      OASELValueUB, OriginalBaseLValue, DRD, IRed]() -> Address {
973               // Emit VarDecl with copy init for arrays.
974               // Get the address of the original variable captured in current
975               // captured region.
976               auto *Size = Builder.CreatePtrDiff(OASELValueUB.getPointer(),
977                                                  OASELValueLB.getPointer());
978               Size = Builder.CreateNUWAdd(
979                   Size, llvm::ConstantInt::get(Size->getType(), /*V=*/1));
980               CodeGenFunction::OpaqueValueMapping OpaqueMap(
981                   *this, cast<OpaqueValueExpr>(
982                              getContext()
983                                  .getAsVariableArrayType(PrivateVD->getType())
984                                  ->getSizeExpr()),
985                   RValue::get(Size));
986               EmitVariablyModifiedType(PrivateVD->getType());
987               auto Emission = EmitAutoVarAlloca(*PrivateVD);
988               auto Addr = Emission.getAllocatedAddress();
989               auto *Init = PrivateVD->getInit();
990               EmitOMPAggregateInit(*this, Addr, PrivateVD->getType(),
991                                    DRD ? *IRed : Init,
992                                    OASELValueLB.getAddress());
993               EmitAutoVarCleanups(Emission);
994               // Emit private VarDecl with reduction init.
995               auto *Offset = Builder.CreatePtrDiff(BaseLValue.getPointer(),
996                                                    OASELValueLB.getPointer());
997               auto *Ptr = Builder.CreateGEP(Addr.getPointer(), Offset);
998               return castToBase(*this, OrigVD->getType(),
999                                 OASELValueLB.getType(), OriginalBaseLValue,
1000                                 Ptr);
1001             });
1002         assert(IsRegistered && "private var already registered as private");
1003         // Silence the warning about unused variable.
1004         (void)IsRegistered;
1005         PrivateScope.addPrivate(RHSVD, [this, PrivateVD]() -> Address {
1006           return GetAddrOfLocalVar(PrivateVD);
1007         });
1008       } else if (auto *ASE = dyn_cast<ArraySubscriptExpr>(IRef)) {
1009         auto *Base = ASE->getBase()->IgnoreParenImpCasts();
1010         while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
1011           Base = TempASE->getBase()->IgnoreParenImpCasts();
1012         auto *DE = cast<DeclRefExpr>(Base);
1013         auto *OrigVD = cast<VarDecl>(DE->getDecl());
1014         auto ASELValue = EmitLValue(ASE);
1015         auto OriginalBaseLValue = EmitLValue(DE);
1016         LValue BaseLValue = loadToBegin(
1017             *this, OrigVD->getType(), ASELValue.getType(), OriginalBaseLValue);
1018         // Store the address of the original variable associated with the LHS
1019         // implicit variable.
1020         PrivateScope.addPrivate(LHSVD, [this, ASELValue]() -> Address {
1021           return ASELValue.getAddress();
1022         });
1023         // Emit reduction copy.
1024         bool IsRegistered = PrivateScope.addPrivate(
1025             OrigVD, [this, OrigVD, PrivateVD, BaseLValue, ASELValue,
1026                      OriginalBaseLValue, DRD, IRed]() -> Address {
1027               // Emit private VarDecl with reduction init.
1028               AutoVarEmission Emission = EmitAutoVarAlloca(*PrivateVD);
1029               auto Addr = Emission.getAllocatedAddress();
1030               if (DRD && (DRD->getInitializer() || !PrivateVD->hasInit())) {
1031                 emitInitWithReductionInitializer(*this, DRD, *IRed, Addr,
1032                                                  ASELValue.getAddress(),
1033                                                  ASELValue.getType());
1034               } else
1035                 EmitAutoVarInit(Emission);
1036               EmitAutoVarCleanups(Emission);
1037               auto *Offset = Builder.CreatePtrDiff(BaseLValue.getPointer(),
1038                                                    ASELValue.getPointer());
1039               auto *Ptr = Builder.CreateGEP(Addr.getPointer(), Offset);
1040               return castToBase(*this, OrigVD->getType(), ASELValue.getType(),
1041                                 OriginalBaseLValue, Ptr);
1042             });
1043         assert(IsRegistered && "private var already registered as private");
1044         // Silence the warning about unused variable.
1045         (void)IsRegistered;
1046         PrivateScope.addPrivate(RHSVD, [this, PrivateVD, RHSVD]() -> Address {
1047           return Builder.CreateElementBitCast(
1048               GetAddrOfLocalVar(PrivateVD), ConvertTypeForMem(RHSVD->getType()),
1049               "rhs.begin");
1050         });
1051       } else {
1052         auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(IRef)->getDecl());
1053         QualType Type = PrivateVD->getType();
1054         if (getContext().getAsArrayType(Type)) {
1055           // Store the address of the original variable associated with the LHS
1056           // implicit variable.
1057           DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD),
1058                           CapturedStmtInfo->lookup(OrigVD) != nullptr,
1059                           IRef->getType(), VK_LValue, IRef->getExprLoc());
1060           Address OriginalAddr = EmitLValue(&DRE).getAddress();
1061           PrivateScope.addPrivate(LHSVD, [this, &OriginalAddr,
1062                                           LHSVD]() -> Address {
1063             OriginalAddr = Builder.CreateElementBitCast(
1064                 OriginalAddr, ConvertTypeForMem(LHSVD->getType()), "lhs.begin");
1065             return OriginalAddr;
1066           });
1067           bool IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address {
1068             if (Type->isVariablyModifiedType()) {
1069               CodeGenFunction::OpaqueValueMapping OpaqueMap(
1070                   *this, cast<OpaqueValueExpr>(
1071                              getContext()
1072                                  .getAsVariableArrayType(PrivateVD->getType())
1073                                  ->getSizeExpr()),
1074                   RValue::get(
1075                       getTypeSize(OrigVD->getType().getNonReferenceType())));
1076               EmitVariablyModifiedType(Type);
1077             }
1078             auto Emission = EmitAutoVarAlloca(*PrivateVD);
1079             auto Addr = Emission.getAllocatedAddress();
1080             auto *Init = PrivateVD->getInit();
1081             EmitOMPAggregateInit(*this, Addr, PrivateVD->getType(),
1082                                  DRD ? *IRed : Init, OriginalAddr);
1083             EmitAutoVarCleanups(Emission);
1084             return Emission.getAllocatedAddress();
1085           });
1086           assert(IsRegistered && "private var already registered as private");
1087           // Silence the warning about unused variable.
1088           (void)IsRegistered;
1089           PrivateScope.addPrivate(RHSVD, [this, PrivateVD, RHSVD]() -> Address {
1090             return Builder.CreateElementBitCast(
1091                 GetAddrOfLocalVar(PrivateVD),
1092                 ConvertTypeForMem(RHSVD->getType()), "rhs.begin");
1093           });
1094         } else {
1095           // Store the address of the original variable associated with the LHS
1096           // implicit variable.
1097           Address OriginalAddr = Address::invalid();
1098           PrivateScope.addPrivate(LHSVD, [this, OrigVD, IRef,
1099                                           &OriginalAddr]() -> Address {
1100             DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD),
1101                             CapturedStmtInfo->lookup(OrigVD) != nullptr,
1102                             IRef->getType(), VK_LValue, IRef->getExprLoc());
1103             OriginalAddr = EmitLValue(&DRE).getAddress();
1104             return OriginalAddr;
1105           });
1106           // Emit reduction copy.
1107           bool IsRegistered = PrivateScope.addPrivate(
1108               OrigVD, [this, PrivateVD, OriginalAddr, DRD, IRed]() -> Address {
1109                 // Emit private VarDecl with reduction init.
1110                 AutoVarEmission Emission = EmitAutoVarAlloca(*PrivateVD);
1111                 auto Addr = Emission.getAllocatedAddress();
1112                 if (DRD && (DRD->getInitializer() || !PrivateVD->hasInit())) {
1113                   emitInitWithReductionInitializer(*this, DRD, *IRed, Addr,
1114                                                    OriginalAddr,
1115                                                    PrivateVD->getType());
1116                 } else
1117                   EmitAutoVarInit(Emission);
1118                 EmitAutoVarCleanups(Emission);
1119                 return Addr;
1120               });
1121           assert(IsRegistered && "private var already registered as private");
1122           // Silence the warning about unused variable.
1123           (void)IsRegistered;
1124           PrivateScope.addPrivate(RHSVD, [this, PrivateVD]() -> Address {
1125             return GetAddrOfLocalVar(PrivateVD);
1126           });
1127         }
1128       }
1129       ++ILHS;
1130       ++IRHS;
1131       ++IPriv;
1132       ++IRed;
1133     }
1134   }
1135 }
1136 
1137 void CodeGenFunction::EmitOMPReductionClauseFinal(
1138     const OMPExecutableDirective &D) {
1139   if (!HaveInsertPoint())
1140     return;
1141   llvm::SmallVector<const Expr *, 8> Privates;
1142   llvm::SmallVector<const Expr *, 8> LHSExprs;
1143   llvm::SmallVector<const Expr *, 8> RHSExprs;
1144   llvm::SmallVector<const Expr *, 8> ReductionOps;
1145   bool HasAtLeastOneReduction = false;
1146   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
1147     HasAtLeastOneReduction = true;
1148     Privates.append(C->privates().begin(), C->privates().end());
1149     LHSExprs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
1150     RHSExprs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
1151     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
1152   }
1153   if (HasAtLeastOneReduction) {
1154     // Emit nowait reduction if nowait clause is present or directive is a
1155     // parallel directive (it always has implicit barrier).
1156     CGM.getOpenMPRuntime().emitReduction(
1157         *this, D.getLocEnd(), Privates, LHSExprs, RHSExprs, ReductionOps,
1158         D.getSingleClause<OMPNowaitClause>() ||
1159             isOpenMPParallelDirective(D.getDirectiveKind()) ||
1160             D.getDirectiveKind() == OMPD_simd,
1161         D.getDirectiveKind() == OMPD_simd);
1162   }
1163 }
1164 
1165 static void emitPostUpdateForReductionClause(
1166     CodeGenFunction &CGF, const OMPExecutableDirective &D,
1167     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) {
1168   if (!CGF.HaveInsertPoint())
1169     return;
1170   llvm::BasicBlock *DoneBB = nullptr;
1171   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
1172     if (auto *PostUpdate = C->getPostUpdateExpr()) {
1173       if (!DoneBB) {
1174         if (auto *Cond = CondGen(CGF)) {
1175           // If the first post-update expression is found, emit conditional
1176           // block if it was requested.
1177           auto *ThenBB = CGF.createBasicBlock(".omp.reduction.pu");
1178           DoneBB = CGF.createBasicBlock(".omp.reduction.pu.done");
1179           CGF.Builder.CreateCondBr(Cond, ThenBB, DoneBB);
1180           CGF.EmitBlock(ThenBB);
1181         }
1182       }
1183       CGF.EmitIgnoredExpr(PostUpdate);
1184     }
1185   }
1186   if (DoneBB)
1187     CGF.EmitBlock(DoneBB, /*IsFinished=*/true);
1188 }
1189 
1190 static void emitCommonOMPParallelDirective(CodeGenFunction &CGF,
1191                                            const OMPExecutableDirective &S,
1192                                            OpenMPDirectiveKind InnermostKind,
1193                                            const RegionCodeGenTy &CodeGen) {
1194   auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
1195   auto OutlinedFn = CGF.CGM.getOpenMPRuntime().
1196       emitParallelOrTeamsOutlinedFunction(S,
1197           *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen);
1198   if (const auto *NumThreadsClause = S.getSingleClause<OMPNumThreadsClause>()) {
1199     CodeGenFunction::RunCleanupsScope NumThreadsScope(CGF);
1200     auto NumThreads = CGF.EmitScalarExpr(NumThreadsClause->getNumThreads(),
1201                                          /*IgnoreResultAssign*/ true);
1202     CGF.CGM.getOpenMPRuntime().emitNumThreadsClause(
1203         CGF, NumThreads, NumThreadsClause->getLocStart());
1204   }
1205   if (const auto *ProcBindClause = S.getSingleClause<OMPProcBindClause>()) {
1206     CodeGenFunction::RunCleanupsScope ProcBindScope(CGF);
1207     CGF.CGM.getOpenMPRuntime().emitProcBindClause(
1208         CGF, ProcBindClause->getProcBindKind(), ProcBindClause->getLocStart());
1209   }
1210   const Expr *IfCond = nullptr;
1211   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
1212     if (C->getNameModifier() == OMPD_unknown ||
1213         C->getNameModifier() == OMPD_parallel) {
1214       IfCond = C->getCondition();
1215       break;
1216     }
1217   }
1218 
1219   OMPLexicalScope Scope(CGF, S);
1220   llvm::SmallVector<llvm::Value *, 16> CapturedVars;
1221   CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
1222   CGF.CGM.getOpenMPRuntime().emitParallelCall(CGF, S.getLocStart(), OutlinedFn,
1223                                               CapturedVars, IfCond);
1224 }
1225 
1226 void CodeGenFunction::EmitOMPParallelDirective(const OMPParallelDirective &S) {
1227   // Emit parallel region as a standalone region.
1228   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
1229     OMPPrivateScope PrivateScope(CGF);
1230     bool Copyins = CGF.EmitOMPCopyinClause(S);
1231     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
1232     if (Copyins) {
1233       // Emit implicit barrier to synchronize threads and avoid data races on
1234       // propagation master's thread values of threadprivate variables to local
1235       // instances of that variables of all other implicit threads.
1236       CGF.CGM.getOpenMPRuntime().emitBarrierCall(
1237           CGF, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false,
1238           /*ForceSimpleCall=*/true);
1239     }
1240     CGF.EmitOMPPrivateClause(S, PrivateScope);
1241     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
1242     (void)PrivateScope.Privatize();
1243     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
1244     CGF.EmitOMPReductionClauseFinal(S);
1245   };
1246   emitCommonOMPParallelDirective(*this, S, OMPD_parallel, CodeGen);
1247   emitPostUpdateForReductionClause(
1248       *this, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; });
1249 }
1250 
1251 void CodeGenFunction::EmitOMPLoopBody(const OMPLoopDirective &D,
1252                                       JumpDest LoopExit) {
1253   RunCleanupsScope BodyScope(*this);
1254   // Update counters values on current iteration.
1255   for (auto I : D.updates()) {
1256     EmitIgnoredExpr(I);
1257   }
1258   // Update the linear variables.
1259   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
1260     for (auto *U : C->updates())
1261       EmitIgnoredExpr(U);
1262   }
1263 
1264   // On a continue in the body, jump to the end.
1265   auto Continue = getJumpDestInCurrentScope("omp.body.continue");
1266   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
1267   // Emit loop body.
1268   EmitStmt(D.getBody());
1269   // The end (updates/cleanups).
1270   EmitBlock(Continue.getBlock());
1271   BreakContinueStack.pop_back();
1272 }
1273 
1274 void CodeGenFunction::EmitOMPInnerLoop(
1275     const Stmt &S, bool RequiresCleanup, const Expr *LoopCond,
1276     const Expr *IncExpr,
1277     const llvm::function_ref<void(CodeGenFunction &)> &BodyGen,
1278     const llvm::function_ref<void(CodeGenFunction &)> &PostIncGen) {
1279   auto LoopExit = getJumpDestInCurrentScope("omp.inner.for.end");
1280 
1281   // Start the loop with a block that tests the condition.
1282   auto CondBlock = createBasicBlock("omp.inner.for.cond");
1283   EmitBlock(CondBlock);
1284   LoopStack.push(CondBlock, Builder.getCurrentDebugLocation());
1285 
1286   // If there are any cleanups between here and the loop-exit scope,
1287   // create a block to stage a loop exit along.
1288   auto ExitBlock = LoopExit.getBlock();
1289   if (RequiresCleanup)
1290     ExitBlock = createBasicBlock("omp.inner.for.cond.cleanup");
1291 
1292   auto LoopBody = createBasicBlock("omp.inner.for.body");
1293 
1294   // Emit condition.
1295   EmitBranchOnBoolExpr(LoopCond, LoopBody, ExitBlock, getProfileCount(&S));
1296   if (ExitBlock != LoopExit.getBlock()) {
1297     EmitBlock(ExitBlock);
1298     EmitBranchThroughCleanup(LoopExit);
1299   }
1300 
1301   EmitBlock(LoopBody);
1302   incrementProfileCounter(&S);
1303 
1304   // Create a block for the increment.
1305   auto Continue = getJumpDestInCurrentScope("omp.inner.for.inc");
1306   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
1307 
1308   BodyGen(*this);
1309 
1310   // Emit "IV = IV + 1" and a back-edge to the condition block.
1311   EmitBlock(Continue.getBlock());
1312   EmitIgnoredExpr(IncExpr);
1313   PostIncGen(*this);
1314   BreakContinueStack.pop_back();
1315   EmitBranch(CondBlock);
1316   LoopStack.pop();
1317   // Emit the fall-through block.
1318   EmitBlock(LoopExit.getBlock());
1319 }
1320 
1321 void CodeGenFunction::EmitOMPLinearClauseInit(const OMPLoopDirective &D) {
1322   if (!HaveInsertPoint())
1323     return;
1324   // Emit inits for the linear variables.
1325   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
1326     for (auto *Init : C->inits()) {
1327       auto *VD = cast<VarDecl>(cast<DeclRefExpr>(Init)->getDecl());
1328       if (auto *Ref = dyn_cast<DeclRefExpr>(VD->getInit()->IgnoreImpCasts())) {
1329         AutoVarEmission Emission = EmitAutoVarAlloca(*VD);
1330         auto *OrigVD = cast<VarDecl>(Ref->getDecl());
1331         DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD),
1332                         CapturedStmtInfo->lookup(OrigVD) != nullptr,
1333                         VD->getInit()->getType(), VK_LValue,
1334                         VD->getInit()->getExprLoc());
1335         EmitExprAsInit(&DRE, VD, MakeAddrLValue(Emission.getAllocatedAddress(),
1336                                                 VD->getType()),
1337                        /*capturedByInit=*/false);
1338         EmitAutoVarCleanups(Emission);
1339       } else
1340         EmitVarDecl(*VD);
1341     }
1342     // Emit the linear steps for the linear clauses.
1343     // If a step is not constant, it is pre-calculated before the loop.
1344     if (auto CS = cast_or_null<BinaryOperator>(C->getCalcStep()))
1345       if (auto SaveRef = cast<DeclRefExpr>(CS->getLHS())) {
1346         EmitVarDecl(*cast<VarDecl>(SaveRef->getDecl()));
1347         // Emit calculation of the linear step.
1348         EmitIgnoredExpr(CS);
1349       }
1350   }
1351 }
1352 
1353 void CodeGenFunction::EmitOMPLinearClauseFinal(
1354     const OMPLoopDirective &D,
1355     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) {
1356   if (!HaveInsertPoint())
1357     return;
1358   llvm::BasicBlock *DoneBB = nullptr;
1359   // Emit the final values of the linear variables.
1360   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
1361     auto IC = C->varlist_begin();
1362     for (auto *F : C->finals()) {
1363       if (!DoneBB) {
1364         if (auto *Cond = CondGen(*this)) {
1365           // If the first post-update expression is found, emit conditional
1366           // block if it was requested.
1367           auto *ThenBB = createBasicBlock(".omp.linear.pu");
1368           DoneBB = createBasicBlock(".omp.linear.pu.done");
1369           Builder.CreateCondBr(Cond, ThenBB, DoneBB);
1370           EmitBlock(ThenBB);
1371         }
1372       }
1373       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl());
1374       DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD),
1375                       CapturedStmtInfo->lookup(OrigVD) != nullptr,
1376                       (*IC)->getType(), VK_LValue, (*IC)->getExprLoc());
1377       Address OrigAddr = EmitLValue(&DRE).getAddress();
1378       CodeGenFunction::OMPPrivateScope VarScope(*this);
1379       VarScope.addPrivate(OrigVD, [OrigAddr]() -> Address { return OrigAddr; });
1380       (void)VarScope.Privatize();
1381       EmitIgnoredExpr(F);
1382       ++IC;
1383     }
1384     if (auto *PostUpdate = C->getPostUpdateExpr())
1385       EmitIgnoredExpr(PostUpdate);
1386   }
1387   if (DoneBB)
1388     EmitBlock(DoneBB, /*IsFinished=*/true);
1389 }
1390 
1391 static void emitAlignedClause(CodeGenFunction &CGF,
1392                               const OMPExecutableDirective &D) {
1393   if (!CGF.HaveInsertPoint())
1394     return;
1395   for (const auto *Clause : D.getClausesOfKind<OMPAlignedClause>()) {
1396     unsigned ClauseAlignment = 0;
1397     if (auto AlignmentExpr = Clause->getAlignment()) {
1398       auto AlignmentCI =
1399           cast<llvm::ConstantInt>(CGF.EmitScalarExpr(AlignmentExpr));
1400       ClauseAlignment = static_cast<unsigned>(AlignmentCI->getZExtValue());
1401     }
1402     for (auto E : Clause->varlists()) {
1403       unsigned Alignment = ClauseAlignment;
1404       if (Alignment == 0) {
1405         // OpenMP [2.8.1, Description]
1406         // If no optional parameter is specified, implementation-defined default
1407         // alignments for SIMD instructions on the target platforms are assumed.
1408         Alignment =
1409             CGF.getContext()
1410                 .toCharUnitsFromBits(CGF.getContext().getOpenMPDefaultSimdAlign(
1411                     E->getType()->getPointeeType()))
1412                 .getQuantity();
1413       }
1414       assert((Alignment == 0 || llvm::isPowerOf2_32(Alignment)) &&
1415              "alignment is not power of 2");
1416       if (Alignment != 0) {
1417         llvm::Value *PtrValue = CGF.EmitScalarExpr(E);
1418         CGF.EmitAlignmentAssumption(PtrValue, Alignment);
1419       }
1420     }
1421   }
1422 }
1423 
1424 void CodeGenFunction::EmitOMPPrivateLoopCounters(
1425     const OMPLoopDirective &S, CodeGenFunction::OMPPrivateScope &LoopScope) {
1426   if (!HaveInsertPoint())
1427     return;
1428   auto I = S.private_counters().begin();
1429   for (auto *E : S.counters()) {
1430     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
1431     auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl());
1432     (void)LoopScope.addPrivate(VD, [&]() -> Address {
1433       // Emit var without initialization.
1434       if (!LocalDeclMap.count(PrivateVD)) {
1435         auto VarEmission = EmitAutoVarAlloca(*PrivateVD);
1436         EmitAutoVarCleanups(VarEmission);
1437       }
1438       DeclRefExpr DRE(const_cast<VarDecl *>(PrivateVD),
1439                       /*RefersToEnclosingVariableOrCapture=*/false,
1440                       (*I)->getType(), VK_LValue, (*I)->getExprLoc());
1441       return EmitLValue(&DRE).getAddress();
1442     });
1443     if (LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD) ||
1444         VD->hasGlobalStorage()) {
1445       (void)LoopScope.addPrivate(PrivateVD, [&]() -> Address {
1446         DeclRefExpr DRE(const_cast<VarDecl *>(VD),
1447                         LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD),
1448                         E->getType(), VK_LValue, E->getExprLoc());
1449         return EmitLValue(&DRE).getAddress();
1450       });
1451     }
1452     ++I;
1453   }
1454 }
1455 
1456 static void emitPreCond(CodeGenFunction &CGF, const OMPLoopDirective &S,
1457                         const Expr *Cond, llvm::BasicBlock *TrueBlock,
1458                         llvm::BasicBlock *FalseBlock, uint64_t TrueCount) {
1459   if (!CGF.HaveInsertPoint())
1460     return;
1461   {
1462     CodeGenFunction::OMPPrivateScope PreCondScope(CGF);
1463     CGF.EmitOMPPrivateLoopCounters(S, PreCondScope);
1464     (void)PreCondScope.Privatize();
1465     // Get initial values of real counters.
1466     for (auto I : S.inits()) {
1467       CGF.EmitIgnoredExpr(I);
1468     }
1469   }
1470   // Check that loop is executed at least one time.
1471   CGF.EmitBranchOnBoolExpr(Cond, TrueBlock, FalseBlock, TrueCount);
1472 }
1473 
1474 void CodeGenFunction::EmitOMPLinearClause(
1475     const OMPLoopDirective &D, CodeGenFunction::OMPPrivateScope &PrivateScope) {
1476   if (!HaveInsertPoint())
1477     return;
1478   llvm::DenseSet<const VarDecl *> SIMDLCVs;
1479   if (isOpenMPSimdDirective(D.getDirectiveKind())) {
1480     auto *LoopDirective = cast<OMPLoopDirective>(&D);
1481     for (auto *C : LoopDirective->counters()) {
1482       SIMDLCVs.insert(
1483           cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl());
1484     }
1485   }
1486   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
1487     auto CurPrivate = C->privates().begin();
1488     for (auto *E : C->varlists()) {
1489       auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
1490       auto *PrivateVD =
1491           cast<VarDecl>(cast<DeclRefExpr>(*CurPrivate)->getDecl());
1492       if (!SIMDLCVs.count(VD->getCanonicalDecl())) {
1493         bool IsRegistered = PrivateScope.addPrivate(VD, [&]() -> Address {
1494           // Emit private VarDecl with copy init.
1495           EmitVarDecl(*PrivateVD);
1496           return GetAddrOfLocalVar(PrivateVD);
1497         });
1498         assert(IsRegistered && "linear var already registered as private");
1499         // Silence the warning about unused variable.
1500         (void)IsRegistered;
1501       } else
1502         EmitVarDecl(*PrivateVD);
1503       ++CurPrivate;
1504     }
1505   }
1506 }
1507 
1508 static void emitSimdlenSafelenClause(CodeGenFunction &CGF,
1509                                      const OMPExecutableDirective &D,
1510                                      bool IsMonotonic) {
1511   if (!CGF.HaveInsertPoint())
1512     return;
1513   if (const auto *C = D.getSingleClause<OMPSimdlenClause>()) {
1514     RValue Len = CGF.EmitAnyExpr(C->getSimdlen(), AggValueSlot::ignored(),
1515                                  /*ignoreResult=*/true);
1516     llvm::ConstantInt *Val = cast<llvm::ConstantInt>(Len.getScalarVal());
1517     CGF.LoopStack.setVectorizeWidth(Val->getZExtValue());
1518     // In presence of finite 'safelen', it may be unsafe to mark all
1519     // the memory instructions parallel, because loop-carried
1520     // dependences of 'safelen' iterations are possible.
1521     if (!IsMonotonic)
1522       CGF.LoopStack.setParallel(!D.getSingleClause<OMPSafelenClause>());
1523   } else if (const auto *C = D.getSingleClause<OMPSafelenClause>()) {
1524     RValue Len = CGF.EmitAnyExpr(C->getSafelen(), AggValueSlot::ignored(),
1525                                  /*ignoreResult=*/true);
1526     llvm::ConstantInt *Val = cast<llvm::ConstantInt>(Len.getScalarVal());
1527     CGF.LoopStack.setVectorizeWidth(Val->getZExtValue());
1528     // In presence of finite 'safelen', it may be unsafe to mark all
1529     // the memory instructions parallel, because loop-carried
1530     // dependences of 'safelen' iterations are possible.
1531     CGF.LoopStack.setParallel(false);
1532   }
1533 }
1534 
1535 void CodeGenFunction::EmitOMPSimdInit(const OMPLoopDirective &D,
1536                                       bool IsMonotonic) {
1537   // Walk clauses and process safelen/lastprivate.
1538   LoopStack.setParallel(!IsMonotonic);
1539   LoopStack.setVectorizeEnable(true);
1540   emitSimdlenSafelenClause(*this, D, IsMonotonic);
1541 }
1542 
1543 void CodeGenFunction::EmitOMPSimdFinal(
1544     const OMPLoopDirective &D,
1545     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) {
1546   if (!HaveInsertPoint())
1547     return;
1548   llvm::BasicBlock *DoneBB = nullptr;
1549   auto IC = D.counters().begin();
1550   auto IPC = D.private_counters().begin();
1551   for (auto F : D.finals()) {
1552     auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>((*IC))->getDecl());
1553     auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>((*IPC))->getDecl());
1554     auto *CED = dyn_cast<OMPCapturedExprDecl>(OrigVD);
1555     if (LocalDeclMap.count(OrigVD) || CapturedStmtInfo->lookup(OrigVD) ||
1556         OrigVD->hasGlobalStorage() || CED) {
1557       if (!DoneBB) {
1558         if (auto *Cond = CondGen(*this)) {
1559           // If the first post-update expression is found, emit conditional
1560           // block if it was requested.
1561           auto *ThenBB = createBasicBlock(".omp.final.then");
1562           DoneBB = createBasicBlock(".omp.final.done");
1563           Builder.CreateCondBr(Cond, ThenBB, DoneBB);
1564           EmitBlock(ThenBB);
1565         }
1566       }
1567       Address OrigAddr = Address::invalid();
1568       if (CED)
1569         OrigAddr = EmitLValue(CED->getInit()->IgnoreImpCasts()).getAddress();
1570       else {
1571         DeclRefExpr DRE(const_cast<VarDecl *>(PrivateVD),
1572                         /*RefersToEnclosingVariableOrCapture=*/false,
1573                         (*IPC)->getType(), VK_LValue, (*IPC)->getExprLoc());
1574         OrigAddr = EmitLValue(&DRE).getAddress();
1575       }
1576       OMPPrivateScope VarScope(*this);
1577       VarScope.addPrivate(OrigVD,
1578                           [OrigAddr]() -> Address { return OrigAddr; });
1579       (void)VarScope.Privatize();
1580       EmitIgnoredExpr(F);
1581     }
1582     ++IC;
1583     ++IPC;
1584   }
1585   if (DoneBB)
1586     EmitBlock(DoneBB, /*IsFinished=*/true);
1587 }
1588 
1589 void CodeGenFunction::EmitOMPSimdDirective(const OMPSimdDirective &S) {
1590   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
1591     OMPLoopScope PreInitScope(CGF, S);
1592     // if (PreCond) {
1593     //   for (IV in 0..LastIteration) BODY;
1594     //   <Final counter/linear vars updates>;
1595     // }
1596     //
1597 
1598     // Emit: if (PreCond) - begin.
1599     // If the condition constant folds and can be elided, avoid emitting the
1600     // whole loop.
1601     bool CondConstant;
1602     llvm::BasicBlock *ContBlock = nullptr;
1603     if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
1604       if (!CondConstant)
1605         return;
1606     } else {
1607       auto *ThenBlock = CGF.createBasicBlock("simd.if.then");
1608       ContBlock = CGF.createBasicBlock("simd.if.end");
1609       emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock,
1610                   CGF.getProfileCount(&S));
1611       CGF.EmitBlock(ThenBlock);
1612       CGF.incrementProfileCounter(&S);
1613     }
1614 
1615     // Emit the loop iteration variable.
1616     const Expr *IVExpr = S.getIterationVariable();
1617     const VarDecl *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl());
1618     CGF.EmitVarDecl(*IVDecl);
1619     CGF.EmitIgnoredExpr(S.getInit());
1620 
1621     // Emit the iterations count variable.
1622     // If it is not a variable, Sema decided to calculate iterations count on
1623     // each iteration (e.g., it is foldable into a constant).
1624     if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
1625       CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
1626       // Emit calculation of the iterations count.
1627       CGF.EmitIgnoredExpr(S.getCalcLastIteration());
1628     }
1629 
1630     CGF.EmitOMPSimdInit(S);
1631 
1632     emitAlignedClause(CGF, S);
1633     CGF.EmitOMPLinearClauseInit(S);
1634     {
1635       OMPPrivateScope LoopScope(CGF);
1636       CGF.EmitOMPPrivateLoopCounters(S, LoopScope);
1637       CGF.EmitOMPLinearClause(S, LoopScope);
1638       CGF.EmitOMPPrivateClause(S, LoopScope);
1639       CGF.EmitOMPReductionClauseInit(S, LoopScope);
1640       bool HasLastprivateClause =
1641           CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
1642       (void)LoopScope.Privatize();
1643       CGF.EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(),
1644                            S.getInc(),
1645                            [&S](CodeGenFunction &CGF) {
1646                              CGF.EmitOMPLoopBody(S, JumpDest());
1647                              CGF.EmitStopPoint(&S);
1648                            },
1649                            [](CodeGenFunction &) {});
1650       CGF.EmitOMPSimdFinal(
1651           S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; });
1652       // Emit final copy of the lastprivate variables at the end of loops.
1653       if (HasLastprivateClause)
1654         CGF.EmitOMPLastprivateClauseFinal(S, /*NoFinals=*/true);
1655       CGF.EmitOMPReductionClauseFinal(S);
1656       emitPostUpdateForReductionClause(
1657           CGF, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; });
1658     }
1659     CGF.EmitOMPLinearClauseFinal(
1660         S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; });
1661     // Emit: if (PreCond) - end.
1662     if (ContBlock) {
1663       CGF.EmitBranch(ContBlock);
1664       CGF.EmitBlock(ContBlock, true);
1665     }
1666   };
1667   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
1668   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen);
1669 }
1670 
1671 void CodeGenFunction::EmitOMPOuterLoop(bool DynamicOrOrdered, bool IsMonotonic,
1672     const OMPLoopDirective &S, OMPPrivateScope &LoopScope, bool Ordered,
1673     Address LB, Address UB, Address ST, Address IL, llvm::Value *Chunk) {
1674   auto &RT = CGM.getOpenMPRuntime();
1675 
1676   const Expr *IVExpr = S.getIterationVariable();
1677   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
1678   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
1679 
1680   auto LoopExit = getJumpDestInCurrentScope("omp.dispatch.end");
1681 
1682   // Start the loop with a block that tests the condition.
1683   auto CondBlock = createBasicBlock("omp.dispatch.cond");
1684   EmitBlock(CondBlock);
1685   LoopStack.push(CondBlock, Builder.getCurrentDebugLocation());
1686 
1687   llvm::Value *BoolCondVal = nullptr;
1688   if (!DynamicOrOrdered) {
1689     // UB = min(UB, GlobalUB)
1690     EmitIgnoredExpr(S.getEnsureUpperBound());
1691     // IV = LB
1692     EmitIgnoredExpr(S.getInit());
1693     // IV < UB
1694     BoolCondVal = EvaluateExprAsBool(S.getCond());
1695   } else {
1696     BoolCondVal = RT.emitForNext(*this, S.getLocStart(), IVSize, IVSigned, IL,
1697                                  LB, UB, ST);
1698   }
1699 
1700   // If there are any cleanups between here and the loop-exit scope,
1701   // create a block to stage a loop exit along.
1702   auto ExitBlock = LoopExit.getBlock();
1703   if (LoopScope.requiresCleanups())
1704     ExitBlock = createBasicBlock("omp.dispatch.cleanup");
1705 
1706   auto LoopBody = createBasicBlock("omp.dispatch.body");
1707   Builder.CreateCondBr(BoolCondVal, LoopBody, ExitBlock);
1708   if (ExitBlock != LoopExit.getBlock()) {
1709     EmitBlock(ExitBlock);
1710     EmitBranchThroughCleanup(LoopExit);
1711   }
1712   EmitBlock(LoopBody);
1713 
1714   // Emit "IV = LB" (in case of static schedule, we have already calculated new
1715   // LB for loop condition and emitted it above).
1716   if (DynamicOrOrdered)
1717     EmitIgnoredExpr(S.getInit());
1718 
1719   // Create a block for the increment.
1720   auto Continue = getJumpDestInCurrentScope("omp.dispatch.inc");
1721   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
1722 
1723   // Generate !llvm.loop.parallel metadata for loads and stores for loops
1724   // with dynamic/guided scheduling and without ordered clause.
1725   if (!isOpenMPSimdDirective(S.getDirectiveKind()))
1726     LoopStack.setParallel(!IsMonotonic);
1727   else
1728     EmitOMPSimdInit(S, IsMonotonic);
1729 
1730   SourceLocation Loc = S.getLocStart();
1731   EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(), S.getInc(),
1732                    [&S, LoopExit](CodeGenFunction &CGF) {
1733                      CGF.EmitOMPLoopBody(S, LoopExit);
1734                      CGF.EmitStopPoint(&S);
1735                    },
1736                    [Ordered, IVSize, IVSigned, Loc](CodeGenFunction &CGF) {
1737                      if (Ordered) {
1738                        CGF.CGM.getOpenMPRuntime().emitForOrderedIterationEnd(
1739                            CGF, Loc, IVSize, IVSigned);
1740                      }
1741                    });
1742 
1743   EmitBlock(Continue.getBlock());
1744   BreakContinueStack.pop_back();
1745   if (!DynamicOrOrdered) {
1746     // Emit "LB = LB + Stride", "UB = UB + Stride".
1747     EmitIgnoredExpr(S.getNextLowerBound());
1748     EmitIgnoredExpr(S.getNextUpperBound());
1749   }
1750 
1751   EmitBranch(CondBlock);
1752   LoopStack.pop();
1753   // Emit the fall-through block.
1754   EmitBlock(LoopExit.getBlock());
1755 
1756   // Tell the runtime we are done.
1757   if (!DynamicOrOrdered)
1758     RT.emitForStaticFinish(*this, S.getLocEnd());
1759 
1760 }
1761 
1762 void CodeGenFunction::EmitOMPForOuterLoop(
1763     const OpenMPScheduleTy &ScheduleKind, bool IsMonotonic,
1764     const OMPLoopDirective &S, OMPPrivateScope &LoopScope, bool Ordered,
1765     Address LB, Address UB, Address ST, Address IL, llvm::Value *Chunk) {
1766   auto &RT = CGM.getOpenMPRuntime();
1767 
1768   // Dynamic scheduling of the outer loop (dynamic, guided, auto, runtime).
1769   const bool DynamicOrOrdered =
1770       Ordered || RT.isDynamic(ScheduleKind.Schedule);
1771 
1772   assert((Ordered ||
1773           !RT.isStaticNonchunked(ScheduleKind.Schedule,
1774                                  /*Chunked=*/Chunk != nullptr)) &&
1775          "static non-chunked schedule does not need outer loop");
1776 
1777   // Emit outer loop.
1778   //
1779   // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
1780   // When schedule(dynamic,chunk_size) is specified, the iterations are
1781   // distributed to threads in the team in chunks as the threads request them.
1782   // Each thread executes a chunk of iterations, then requests another chunk,
1783   // until no chunks remain to be distributed. Each chunk contains chunk_size
1784   // iterations, except for the last chunk to be distributed, which may have
1785   // fewer iterations. When no chunk_size is specified, it defaults to 1.
1786   //
1787   // When schedule(guided,chunk_size) is specified, the iterations are assigned
1788   // to threads in the team in chunks as the executing threads request them.
1789   // Each thread executes a chunk of iterations, then requests another chunk,
1790   // until no chunks remain to be assigned. For a chunk_size of 1, the size of
1791   // each chunk is proportional to the number of unassigned iterations divided
1792   // by the number of threads in the team, decreasing to 1. For a chunk_size
1793   // with value k (greater than 1), the size of each chunk is determined in the
1794   // same way, with the restriction that the chunks do not contain fewer than k
1795   // iterations (except for the last chunk to be assigned, which may have fewer
1796   // than k iterations).
1797   //
1798   // When schedule(auto) is specified, the decision regarding scheduling is
1799   // delegated to the compiler and/or runtime system. The programmer gives the
1800   // implementation the freedom to choose any possible mapping of iterations to
1801   // threads in the team.
1802   //
1803   // When schedule(runtime) is specified, the decision regarding scheduling is
1804   // deferred until run time, and the schedule and chunk size are taken from the
1805   // run-sched-var ICV. If the ICV is set to auto, the schedule is
1806   // implementation defined
1807   //
1808   // while(__kmpc_dispatch_next(&LB, &UB)) {
1809   //   idx = LB;
1810   //   while (idx <= UB) { BODY; ++idx;
1811   //   __kmpc_dispatch_fini_(4|8)[u](); // For ordered loops only.
1812   //   } // inner loop
1813   // }
1814   //
1815   // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
1816   // When schedule(static, chunk_size) is specified, iterations are divided into
1817   // chunks of size chunk_size, and the chunks are assigned to the threads in
1818   // the team in a round-robin fashion in the order of the thread number.
1819   //
1820   // while(UB = min(UB, GlobalUB), idx = LB, idx < UB) {
1821   //   while (idx <= UB) { BODY; ++idx; } // inner loop
1822   //   LB = LB + ST;
1823   //   UB = UB + ST;
1824   // }
1825   //
1826 
1827   const Expr *IVExpr = S.getIterationVariable();
1828   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
1829   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
1830 
1831   if (DynamicOrOrdered) {
1832     llvm::Value *UBVal = EmitScalarExpr(S.getLastIteration());
1833     RT.emitForDispatchInit(*this, S.getLocStart(), ScheduleKind, IVSize,
1834                            IVSigned, Ordered, UBVal, Chunk);
1835   } else {
1836     RT.emitForStaticInit(*this, S.getLocStart(), ScheduleKind, IVSize, IVSigned,
1837                          Ordered, IL, LB, UB, ST, Chunk);
1838   }
1839 
1840   EmitOMPOuterLoop(DynamicOrOrdered, IsMonotonic, S, LoopScope, Ordered, LB, UB,
1841                    ST, IL, Chunk);
1842 }
1843 
1844 void CodeGenFunction::EmitOMPDistributeOuterLoop(
1845     OpenMPDistScheduleClauseKind ScheduleKind,
1846     const OMPDistributeDirective &S, OMPPrivateScope &LoopScope,
1847     Address LB, Address UB, Address ST, Address IL, llvm::Value *Chunk) {
1848 
1849   auto &RT = CGM.getOpenMPRuntime();
1850 
1851   // Emit outer loop.
1852   // Same behavior as a OMPForOuterLoop, except that schedule cannot be
1853   // dynamic
1854   //
1855 
1856   const Expr *IVExpr = S.getIterationVariable();
1857   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
1858   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
1859 
1860   RT.emitDistributeStaticInit(*this, S.getLocStart(), ScheduleKind,
1861                               IVSize, IVSigned, /* Ordered = */ false,
1862                               IL, LB, UB, ST, Chunk);
1863 
1864   EmitOMPOuterLoop(/* DynamicOrOrdered = */ false, /* IsMonotonic = */ false,
1865                    S, LoopScope, /* Ordered = */ false, LB, UB, ST, IL, Chunk);
1866 }
1867 
1868 void CodeGenFunction::EmitOMPDistributeParallelForDirective(
1869     const OMPDistributeParallelForDirective &S) {
1870   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
1871   CGM.getOpenMPRuntime().emitInlinedDirective(
1872       *this, OMPD_distribute_parallel_for,
1873       [&S](CodeGenFunction &CGF, PrePostActionTy &) {
1874         OMPLoopScope PreInitScope(CGF, S);
1875         CGF.EmitStmt(
1876             cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
1877       });
1878 }
1879 
1880 void CodeGenFunction::EmitOMPDistributeParallelForSimdDirective(
1881     const OMPDistributeParallelForSimdDirective &S) {
1882   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
1883   CGM.getOpenMPRuntime().emitInlinedDirective(
1884       *this, OMPD_distribute_parallel_for_simd,
1885       [&S](CodeGenFunction &CGF, PrePostActionTy &) {
1886         OMPLoopScope PreInitScope(CGF, S);
1887         CGF.EmitStmt(
1888             cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
1889       });
1890 }
1891 /// \brief Emit a helper variable and return corresponding lvalue.
1892 static LValue EmitOMPHelperVar(CodeGenFunction &CGF,
1893                                const DeclRefExpr *Helper) {
1894   auto VDecl = cast<VarDecl>(Helper->getDecl());
1895   CGF.EmitVarDecl(*VDecl);
1896   return CGF.EmitLValue(Helper);
1897 }
1898 
1899 namespace {
1900   struct ScheduleKindModifiersTy {
1901     OpenMPScheduleClauseKind Kind;
1902     OpenMPScheduleClauseModifier M1;
1903     OpenMPScheduleClauseModifier M2;
1904     ScheduleKindModifiersTy(OpenMPScheduleClauseKind Kind,
1905                             OpenMPScheduleClauseModifier M1,
1906                             OpenMPScheduleClauseModifier M2)
1907         : Kind(Kind), M1(M1), M2(M2) {}
1908   };
1909 } // namespace
1910 
1911 bool CodeGenFunction::EmitOMPWorksharingLoop(const OMPLoopDirective &S) {
1912   // Emit the loop iteration variable.
1913   auto IVExpr = cast<DeclRefExpr>(S.getIterationVariable());
1914   auto IVDecl = cast<VarDecl>(IVExpr->getDecl());
1915   EmitVarDecl(*IVDecl);
1916 
1917   // Emit the iterations count variable.
1918   // If it is not a variable, Sema decided to calculate iterations count on each
1919   // iteration (e.g., it is foldable into a constant).
1920   if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
1921     EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
1922     // Emit calculation of the iterations count.
1923     EmitIgnoredExpr(S.getCalcLastIteration());
1924   }
1925 
1926   auto &RT = CGM.getOpenMPRuntime();
1927 
1928   bool HasLastprivateClause;
1929   // Check pre-condition.
1930   {
1931     OMPLoopScope PreInitScope(*this, S);
1932     // Skip the entire loop if we don't meet the precondition.
1933     // If the condition constant folds and can be elided, avoid emitting the
1934     // whole loop.
1935     bool CondConstant;
1936     llvm::BasicBlock *ContBlock = nullptr;
1937     if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
1938       if (!CondConstant)
1939         return false;
1940     } else {
1941       auto *ThenBlock = createBasicBlock("omp.precond.then");
1942       ContBlock = createBasicBlock("omp.precond.end");
1943       emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock,
1944                   getProfileCount(&S));
1945       EmitBlock(ThenBlock);
1946       incrementProfileCounter(&S);
1947     }
1948 
1949     bool Ordered = false;
1950     if (auto *OrderedClause = S.getSingleClause<OMPOrderedClause>()) {
1951       if (OrderedClause->getNumForLoops())
1952         RT.emitDoacrossInit(*this, S);
1953       else
1954         Ordered = true;
1955     }
1956 
1957     llvm::DenseSet<const Expr *> EmittedFinals;
1958     emitAlignedClause(*this, S);
1959     EmitOMPLinearClauseInit(S);
1960     // Emit helper vars inits.
1961     LValue LB =
1962         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getLowerBoundVariable()));
1963     LValue UB =
1964         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getUpperBoundVariable()));
1965     LValue ST =
1966         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable()));
1967     LValue IL =
1968         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable()));
1969 
1970     // Emit 'then' code.
1971     {
1972       OMPPrivateScope LoopScope(*this);
1973       if (EmitOMPFirstprivateClause(S, LoopScope)) {
1974         // Emit implicit barrier to synchronize threads and avoid data races on
1975         // initialization of firstprivate variables and post-update of
1976         // lastprivate variables.
1977         CGM.getOpenMPRuntime().emitBarrierCall(
1978             *this, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false,
1979             /*ForceSimpleCall=*/true);
1980       }
1981       EmitOMPPrivateClause(S, LoopScope);
1982       HasLastprivateClause = EmitOMPLastprivateClauseInit(S, LoopScope);
1983       EmitOMPReductionClauseInit(S, LoopScope);
1984       EmitOMPPrivateLoopCounters(S, LoopScope);
1985       EmitOMPLinearClause(S, LoopScope);
1986       (void)LoopScope.Privatize();
1987 
1988       // Detect the loop schedule kind and chunk.
1989       llvm::Value *Chunk = nullptr;
1990       OpenMPScheduleTy ScheduleKind;
1991       if (auto *C = S.getSingleClause<OMPScheduleClause>()) {
1992         ScheduleKind.Schedule = C->getScheduleKind();
1993         ScheduleKind.M1 = C->getFirstScheduleModifier();
1994         ScheduleKind.M2 = C->getSecondScheduleModifier();
1995         if (const auto *Ch = C->getChunkSize()) {
1996           Chunk = EmitScalarExpr(Ch);
1997           Chunk = EmitScalarConversion(Chunk, Ch->getType(),
1998                                        S.getIterationVariable()->getType(),
1999                                        S.getLocStart());
2000         }
2001       }
2002       const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
2003       const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
2004       // OpenMP 4.5, 2.7.1 Loop Construct, Description.
2005       // If the static schedule kind is specified or if the ordered clause is
2006       // specified, and if no monotonic modifier is specified, the effect will
2007       // be as if the monotonic modifier was specified.
2008       if (RT.isStaticNonchunked(ScheduleKind.Schedule,
2009                                 /* Chunked */ Chunk != nullptr) &&
2010           !Ordered) {
2011         if (isOpenMPSimdDirective(S.getDirectiveKind()))
2012           EmitOMPSimdInit(S, /*IsMonotonic=*/true);
2013         // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
2014         // When no chunk_size is specified, the iteration space is divided into
2015         // chunks that are approximately equal in size, and at most one chunk is
2016         // distributed to each thread. Note that the size of the chunks is
2017         // unspecified in this case.
2018         RT.emitForStaticInit(*this, S.getLocStart(), ScheduleKind,
2019                              IVSize, IVSigned, Ordered,
2020                              IL.getAddress(), LB.getAddress(),
2021                              UB.getAddress(), ST.getAddress());
2022         auto LoopExit =
2023             getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit"));
2024         // UB = min(UB, GlobalUB);
2025         EmitIgnoredExpr(S.getEnsureUpperBound());
2026         // IV = LB;
2027         EmitIgnoredExpr(S.getInit());
2028         // while (idx <= UB) { BODY; ++idx; }
2029         EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(),
2030                          S.getInc(),
2031                          [&S, LoopExit](CodeGenFunction &CGF) {
2032                            CGF.EmitOMPLoopBody(S, LoopExit);
2033                            CGF.EmitStopPoint(&S);
2034                          },
2035                          [](CodeGenFunction &) {});
2036         EmitBlock(LoopExit.getBlock());
2037         // Tell the runtime we are done.
2038         RT.emitForStaticFinish(*this, S.getLocStart());
2039       } else {
2040         const bool IsMonotonic =
2041             Ordered || ScheduleKind.Schedule == OMPC_SCHEDULE_static ||
2042             ScheduleKind.Schedule == OMPC_SCHEDULE_unknown ||
2043             ScheduleKind.M1 == OMPC_SCHEDULE_MODIFIER_monotonic ||
2044             ScheduleKind.M2 == OMPC_SCHEDULE_MODIFIER_monotonic;
2045         // Emit the outer loop, which requests its work chunk [LB..UB] from
2046         // runtime and runs the inner loop to process it.
2047         EmitOMPForOuterLoop(ScheduleKind, IsMonotonic, S, LoopScope, Ordered,
2048                             LB.getAddress(), UB.getAddress(), ST.getAddress(),
2049                             IL.getAddress(), Chunk);
2050       }
2051       if (isOpenMPSimdDirective(S.getDirectiveKind())) {
2052         EmitOMPSimdFinal(S,
2053                          [&](CodeGenFunction &CGF) -> llvm::Value * {
2054                            return CGF.Builder.CreateIsNotNull(
2055                                CGF.EmitLoadOfScalar(IL, S.getLocStart()));
2056                          });
2057       }
2058       EmitOMPReductionClauseFinal(S);
2059       // Emit post-update of the reduction variables if IsLastIter != 0.
2060       emitPostUpdateForReductionClause(
2061           *this, S, [&](CodeGenFunction &CGF) -> llvm::Value * {
2062             return CGF.Builder.CreateIsNotNull(
2063                 CGF.EmitLoadOfScalar(IL, S.getLocStart()));
2064           });
2065       // Emit final copy of the lastprivate variables if IsLastIter != 0.
2066       if (HasLastprivateClause)
2067         EmitOMPLastprivateClauseFinal(
2068             S, isOpenMPSimdDirective(S.getDirectiveKind()),
2069             Builder.CreateIsNotNull(EmitLoadOfScalar(IL, S.getLocStart())));
2070     }
2071     EmitOMPLinearClauseFinal(S, [&](CodeGenFunction &CGF) -> llvm::Value * {
2072       return CGF.Builder.CreateIsNotNull(
2073           CGF.EmitLoadOfScalar(IL, S.getLocStart()));
2074     });
2075     // We're now done with the loop, so jump to the continuation block.
2076     if (ContBlock) {
2077       EmitBranch(ContBlock);
2078       EmitBlock(ContBlock, true);
2079     }
2080   }
2081   return HasLastprivateClause;
2082 }
2083 
2084 void CodeGenFunction::EmitOMPForDirective(const OMPForDirective &S) {
2085   bool HasLastprivates = false;
2086   auto &&CodeGen = [&S, &HasLastprivates](CodeGenFunction &CGF,
2087                                           PrePostActionTy &) {
2088     HasLastprivates = CGF.EmitOMPWorksharingLoop(S);
2089   };
2090   {
2091     OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2092     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_for, CodeGen,
2093                                                 S.hasCancel());
2094   }
2095 
2096   // Emit an implicit barrier at the end.
2097   if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates) {
2098     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_for);
2099   }
2100 }
2101 
2102 void CodeGenFunction::EmitOMPForSimdDirective(const OMPForSimdDirective &S) {
2103   bool HasLastprivates = false;
2104   auto &&CodeGen = [&S, &HasLastprivates](CodeGenFunction &CGF,
2105                                           PrePostActionTy &) {
2106     HasLastprivates = CGF.EmitOMPWorksharingLoop(S);
2107   };
2108   {
2109     OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2110     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen);
2111   }
2112 
2113   // Emit an implicit barrier at the end.
2114   if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates) {
2115     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_for);
2116   }
2117 }
2118 
2119 static LValue createSectionLVal(CodeGenFunction &CGF, QualType Ty,
2120                                 const Twine &Name,
2121                                 llvm::Value *Init = nullptr) {
2122   auto LVal = CGF.MakeAddrLValue(CGF.CreateMemTemp(Ty, Name), Ty);
2123   if (Init)
2124     CGF.EmitScalarInit(Init, LVal);
2125   return LVal;
2126 }
2127 
2128 void CodeGenFunction::EmitSections(const OMPExecutableDirective &S) {
2129   auto *Stmt = cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt();
2130   auto *CS = dyn_cast<CompoundStmt>(Stmt);
2131   bool HasLastprivates = false;
2132   auto &&CodeGen = [&S, Stmt, CS, &HasLastprivates](CodeGenFunction &CGF,
2133                                                     PrePostActionTy &) {
2134     auto &C = CGF.CGM.getContext();
2135     auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1);
2136     // Emit helper vars inits.
2137     LValue LB = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.lb.",
2138                                   CGF.Builder.getInt32(0));
2139     auto *GlobalUBVal = CS != nullptr ? CGF.Builder.getInt32(CS->size() - 1)
2140                                       : CGF.Builder.getInt32(0);
2141     LValue UB =
2142         createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.ub.", GlobalUBVal);
2143     LValue ST = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.st.",
2144                                   CGF.Builder.getInt32(1));
2145     LValue IL = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.il.",
2146                                   CGF.Builder.getInt32(0));
2147     // Loop counter.
2148     LValue IV = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.iv.");
2149     OpaqueValueExpr IVRefExpr(S.getLocStart(), KmpInt32Ty, VK_LValue);
2150     CodeGenFunction::OpaqueValueMapping OpaqueIV(CGF, &IVRefExpr, IV);
2151     OpaqueValueExpr UBRefExpr(S.getLocStart(), KmpInt32Ty, VK_LValue);
2152     CodeGenFunction::OpaqueValueMapping OpaqueUB(CGF, &UBRefExpr, UB);
2153     // Generate condition for loop.
2154     BinaryOperator Cond(&IVRefExpr, &UBRefExpr, BO_LE, C.BoolTy, VK_RValue,
2155                         OK_Ordinary, S.getLocStart(),
2156                         /*fpContractable=*/false);
2157     // Increment for loop counter.
2158     UnaryOperator Inc(&IVRefExpr, UO_PreInc, KmpInt32Ty, VK_RValue, OK_Ordinary,
2159                       S.getLocStart());
2160     auto BodyGen = [Stmt, CS, &S, &IV](CodeGenFunction &CGF) {
2161       // Iterate through all sections and emit a switch construct:
2162       // switch (IV) {
2163       //   case 0:
2164       //     <SectionStmt[0]>;
2165       //     break;
2166       // ...
2167       //   case <NumSection> - 1:
2168       //     <SectionStmt[<NumSection> - 1]>;
2169       //     break;
2170       // }
2171       // .omp.sections.exit:
2172       auto *ExitBB = CGF.createBasicBlock(".omp.sections.exit");
2173       auto *SwitchStmt = CGF.Builder.CreateSwitch(
2174           CGF.EmitLoadOfLValue(IV, S.getLocStart()).getScalarVal(), ExitBB,
2175           CS == nullptr ? 1 : CS->size());
2176       if (CS) {
2177         unsigned CaseNumber = 0;
2178         for (auto *SubStmt : CS->children()) {
2179           auto CaseBB = CGF.createBasicBlock(".omp.sections.case");
2180           CGF.EmitBlock(CaseBB);
2181           SwitchStmt->addCase(CGF.Builder.getInt32(CaseNumber), CaseBB);
2182           CGF.EmitStmt(SubStmt);
2183           CGF.EmitBranch(ExitBB);
2184           ++CaseNumber;
2185         }
2186       } else {
2187         auto CaseBB = CGF.createBasicBlock(".omp.sections.case");
2188         CGF.EmitBlock(CaseBB);
2189         SwitchStmt->addCase(CGF.Builder.getInt32(0), CaseBB);
2190         CGF.EmitStmt(Stmt);
2191         CGF.EmitBranch(ExitBB);
2192       }
2193       CGF.EmitBlock(ExitBB, /*IsFinished=*/true);
2194     };
2195 
2196     CodeGenFunction::OMPPrivateScope LoopScope(CGF);
2197     if (CGF.EmitOMPFirstprivateClause(S, LoopScope)) {
2198       // Emit implicit barrier to synchronize threads and avoid data races on
2199       // initialization of firstprivate variables and post-update of lastprivate
2200       // variables.
2201       CGF.CGM.getOpenMPRuntime().emitBarrierCall(
2202           CGF, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false,
2203           /*ForceSimpleCall=*/true);
2204     }
2205     CGF.EmitOMPPrivateClause(S, LoopScope);
2206     HasLastprivates = CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
2207     CGF.EmitOMPReductionClauseInit(S, LoopScope);
2208     (void)LoopScope.Privatize();
2209 
2210     // Emit static non-chunked loop.
2211     OpenMPScheduleTy ScheduleKind;
2212     ScheduleKind.Schedule = OMPC_SCHEDULE_static;
2213     CGF.CGM.getOpenMPRuntime().emitForStaticInit(
2214         CGF, S.getLocStart(), ScheduleKind, /*IVSize=*/32,
2215         /*IVSigned=*/true, /*Ordered=*/false, IL.getAddress(), LB.getAddress(),
2216         UB.getAddress(), ST.getAddress());
2217     // UB = min(UB, GlobalUB);
2218     auto *UBVal = CGF.EmitLoadOfScalar(UB, S.getLocStart());
2219     auto *MinUBGlobalUB = CGF.Builder.CreateSelect(
2220         CGF.Builder.CreateICmpSLT(UBVal, GlobalUBVal), UBVal, GlobalUBVal);
2221     CGF.EmitStoreOfScalar(MinUBGlobalUB, UB);
2222     // IV = LB;
2223     CGF.EmitStoreOfScalar(CGF.EmitLoadOfScalar(LB, S.getLocStart()), IV);
2224     // while (idx <= UB) { BODY; ++idx; }
2225     CGF.EmitOMPInnerLoop(S, /*RequiresCleanup=*/false, &Cond, &Inc, BodyGen,
2226                          [](CodeGenFunction &) {});
2227     // Tell the runtime we are done.
2228     CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getLocStart());
2229     CGF.EmitOMPReductionClauseFinal(S);
2230     // Emit post-update of the reduction variables if IsLastIter != 0.
2231     emitPostUpdateForReductionClause(
2232         CGF, S, [&](CodeGenFunction &CGF) -> llvm::Value * {
2233           return CGF.Builder.CreateIsNotNull(
2234               CGF.EmitLoadOfScalar(IL, S.getLocStart()));
2235         });
2236 
2237     // Emit final copy of the lastprivate variables if IsLastIter != 0.
2238     if (HasLastprivates)
2239       CGF.EmitOMPLastprivateClauseFinal(
2240           S, /*NoFinals=*/false,
2241           CGF.Builder.CreateIsNotNull(
2242               CGF.EmitLoadOfScalar(IL, S.getLocStart())));
2243   };
2244 
2245   bool HasCancel = false;
2246   if (auto *OSD = dyn_cast<OMPSectionsDirective>(&S))
2247     HasCancel = OSD->hasCancel();
2248   else if (auto *OPSD = dyn_cast<OMPParallelSectionsDirective>(&S))
2249     HasCancel = OPSD->hasCancel();
2250   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_sections, CodeGen,
2251                                               HasCancel);
2252   // Emit barrier for lastprivates only if 'sections' directive has 'nowait'
2253   // clause. Otherwise the barrier will be generated by the codegen for the
2254   // directive.
2255   if (HasLastprivates && S.getSingleClause<OMPNowaitClause>()) {
2256     // Emit implicit barrier to synchronize threads and avoid data races on
2257     // initialization of firstprivate variables.
2258     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(),
2259                                            OMPD_unknown);
2260   }
2261 }
2262 
2263 void CodeGenFunction::EmitOMPSectionsDirective(const OMPSectionsDirective &S) {
2264   {
2265     OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2266     EmitSections(S);
2267   }
2268   // Emit an implicit barrier at the end.
2269   if (!S.getSingleClause<OMPNowaitClause>()) {
2270     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(),
2271                                            OMPD_sections);
2272   }
2273 }
2274 
2275 void CodeGenFunction::EmitOMPSectionDirective(const OMPSectionDirective &S) {
2276   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2277     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2278   };
2279   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2280   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_section, CodeGen,
2281                                               S.hasCancel());
2282 }
2283 
2284 void CodeGenFunction::EmitOMPSingleDirective(const OMPSingleDirective &S) {
2285   llvm::SmallVector<const Expr *, 8> CopyprivateVars;
2286   llvm::SmallVector<const Expr *, 8> DestExprs;
2287   llvm::SmallVector<const Expr *, 8> SrcExprs;
2288   llvm::SmallVector<const Expr *, 8> AssignmentOps;
2289   // Check if there are any 'copyprivate' clauses associated with this
2290   // 'single' construct.
2291   // Build a list of copyprivate variables along with helper expressions
2292   // (<source>, <destination>, <destination>=<source> expressions)
2293   for (const auto *C : S.getClausesOfKind<OMPCopyprivateClause>()) {
2294     CopyprivateVars.append(C->varlists().begin(), C->varlists().end());
2295     DestExprs.append(C->destination_exprs().begin(),
2296                      C->destination_exprs().end());
2297     SrcExprs.append(C->source_exprs().begin(), C->source_exprs().end());
2298     AssignmentOps.append(C->assignment_ops().begin(),
2299                          C->assignment_ops().end());
2300   }
2301   // Emit code for 'single' region along with 'copyprivate' clauses
2302   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
2303     Action.Enter(CGF);
2304     OMPPrivateScope SingleScope(CGF);
2305     (void)CGF.EmitOMPFirstprivateClause(S, SingleScope);
2306     CGF.EmitOMPPrivateClause(S, SingleScope);
2307     (void)SingleScope.Privatize();
2308     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2309   };
2310   {
2311     OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2312     CGM.getOpenMPRuntime().emitSingleRegion(*this, CodeGen, S.getLocStart(),
2313                                             CopyprivateVars, DestExprs,
2314                                             SrcExprs, AssignmentOps);
2315   }
2316   // Emit an implicit barrier at the end (to avoid data race on firstprivate
2317   // init or if no 'nowait' clause was specified and no 'copyprivate' clause).
2318   if (!S.getSingleClause<OMPNowaitClause>() && CopyprivateVars.empty()) {
2319     CGM.getOpenMPRuntime().emitBarrierCall(
2320         *this, S.getLocStart(),
2321         S.getSingleClause<OMPNowaitClause>() ? OMPD_unknown : OMPD_single);
2322   }
2323 }
2324 
2325 void CodeGenFunction::EmitOMPMasterDirective(const OMPMasterDirective &S) {
2326   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
2327     Action.Enter(CGF);
2328     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2329   };
2330   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2331   CGM.getOpenMPRuntime().emitMasterRegion(*this, CodeGen, S.getLocStart());
2332 }
2333 
2334 void CodeGenFunction::EmitOMPCriticalDirective(const OMPCriticalDirective &S) {
2335   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
2336     Action.Enter(CGF);
2337     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2338   };
2339   Expr *Hint = nullptr;
2340   if (auto *HintClause = S.getSingleClause<OMPHintClause>())
2341     Hint = HintClause->getHint();
2342   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2343   CGM.getOpenMPRuntime().emitCriticalRegion(*this,
2344                                             S.getDirectiveName().getAsString(),
2345                                             CodeGen, S.getLocStart(), Hint);
2346 }
2347 
2348 void CodeGenFunction::EmitOMPParallelForDirective(
2349     const OMPParallelForDirective &S) {
2350   // Emit directive as a combined directive that consists of two implicit
2351   // directives: 'parallel' with 'for' directive.
2352   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2353     CGF.EmitOMPWorksharingLoop(S);
2354   };
2355   emitCommonOMPParallelDirective(*this, S, OMPD_for, CodeGen);
2356 }
2357 
2358 void CodeGenFunction::EmitOMPParallelForSimdDirective(
2359     const OMPParallelForSimdDirective &S) {
2360   // Emit directive as a combined directive that consists of two implicit
2361   // directives: 'parallel' with 'for' directive.
2362   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2363     CGF.EmitOMPWorksharingLoop(S);
2364   };
2365   emitCommonOMPParallelDirective(*this, S, OMPD_simd, CodeGen);
2366 }
2367 
2368 void CodeGenFunction::EmitOMPParallelSectionsDirective(
2369     const OMPParallelSectionsDirective &S) {
2370   // Emit directive as a combined directive that consists of two implicit
2371   // directives: 'parallel' with 'sections' directive.
2372   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2373     CGF.EmitSections(S);
2374   };
2375   emitCommonOMPParallelDirective(*this, S, OMPD_sections, CodeGen);
2376 }
2377 
2378 void CodeGenFunction::EmitOMPTaskBasedDirective(const OMPExecutableDirective &S,
2379                                                 const RegionCodeGenTy &BodyGen,
2380                                                 const TaskGenTy &TaskGen,
2381                                                 OMPTaskDataTy &Data) {
2382   // Emit outlined function for task construct.
2383   auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
2384   auto *I = CS->getCapturedDecl()->param_begin();
2385   auto *PartId = std::next(I);
2386   auto *TaskT = std::next(I, 4);
2387   // Check if the task is final
2388   if (const auto *Clause = S.getSingleClause<OMPFinalClause>()) {
2389     // If the condition constant folds and can be elided, try to avoid emitting
2390     // the condition and the dead arm of the if/else.
2391     auto *Cond = Clause->getCondition();
2392     bool CondConstant;
2393     if (ConstantFoldsToSimpleInteger(Cond, CondConstant))
2394       Data.Final.setInt(CondConstant);
2395     else
2396       Data.Final.setPointer(EvaluateExprAsBool(Cond));
2397   } else {
2398     // By default the task is not final.
2399     Data.Final.setInt(/*IntVal=*/false);
2400   }
2401   // Check if the task has 'priority' clause.
2402   if (const auto *Clause = S.getSingleClause<OMPPriorityClause>()) {
2403     // Runtime currently does not support codegen for priority clause argument.
2404     // TODO: Add codegen for priority clause arg when runtime lib support it.
2405     auto *Prio = Clause->getPriority();
2406     Data.Priority.setInt(Prio);
2407     Data.Priority.setPointer(EmitScalarConversion(
2408         EmitScalarExpr(Prio), Prio->getType(),
2409         getContext().getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1),
2410         Prio->getExprLoc()));
2411   }
2412   // The first function argument for tasks is a thread id, the second one is a
2413   // part id (0 for tied tasks, >=0 for untied task).
2414   llvm::DenseSet<const VarDecl *> EmittedAsPrivate;
2415   // Get list of private variables.
2416   for (const auto *C : S.getClausesOfKind<OMPPrivateClause>()) {
2417     auto IRef = C->varlist_begin();
2418     for (auto *IInit : C->private_copies()) {
2419       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
2420       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
2421         Data.PrivateVars.push_back(*IRef);
2422         Data.PrivateCopies.push_back(IInit);
2423       }
2424       ++IRef;
2425     }
2426   }
2427   EmittedAsPrivate.clear();
2428   // Get list of firstprivate variables.
2429   for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) {
2430     auto IRef = C->varlist_begin();
2431     auto IElemInitRef = C->inits().begin();
2432     for (auto *IInit : C->private_copies()) {
2433       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
2434       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
2435         Data.FirstprivateVars.push_back(*IRef);
2436         Data.FirstprivateCopies.push_back(IInit);
2437         Data.FirstprivateInits.push_back(*IElemInitRef);
2438       }
2439       ++IRef;
2440       ++IElemInitRef;
2441     }
2442   }
2443   // Get list of lastprivate variables (for taskloops).
2444   llvm::DenseMap<const VarDecl *, const DeclRefExpr *> LastprivateDstsOrigs;
2445   for (const auto *C : S.getClausesOfKind<OMPLastprivateClause>()) {
2446     auto IRef = C->varlist_begin();
2447     auto ID = C->destination_exprs().begin();
2448     for (auto *IInit : C->private_copies()) {
2449       auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
2450       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
2451         Data.LastprivateVars.push_back(*IRef);
2452         Data.LastprivateCopies.push_back(IInit);
2453       }
2454       LastprivateDstsOrigs.insert(
2455           {cast<VarDecl>(cast<DeclRefExpr>(*ID)->getDecl()),
2456            cast<DeclRefExpr>(*IRef)});
2457       ++IRef;
2458       ++ID;
2459     }
2460   }
2461   // Build list of dependences.
2462   for (const auto *C : S.getClausesOfKind<OMPDependClause>())
2463     for (auto *IRef : C->varlists())
2464       Data.Dependences.push_back(std::make_pair(C->getDependencyKind(), IRef));
2465   auto &&CodeGen = [PartId, &S, &Data, CS, &BodyGen, &LastprivateDstsOrigs](
2466       CodeGenFunction &CGF, PrePostActionTy &Action) {
2467     // Set proper addresses for generated private copies.
2468     OMPPrivateScope Scope(CGF);
2469     if (!Data.PrivateVars.empty() || !Data.FirstprivateVars.empty() ||
2470         !Data.LastprivateVars.empty()) {
2471       auto *CopyFn = CGF.Builder.CreateLoad(
2472           CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(3)));
2473       auto *PrivatesPtr = CGF.Builder.CreateLoad(
2474           CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(2)));
2475       // Map privates.
2476       llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> PrivatePtrs;
2477       llvm::SmallVector<llvm::Value *, 16> CallArgs;
2478       CallArgs.push_back(PrivatesPtr);
2479       for (auto *E : Data.PrivateVars) {
2480         auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2481         Address PrivatePtr = CGF.CreateMemTemp(
2482             CGF.getContext().getPointerType(E->getType()), ".priv.ptr.addr");
2483         PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr));
2484         CallArgs.push_back(PrivatePtr.getPointer());
2485       }
2486       for (auto *E : Data.FirstprivateVars) {
2487         auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2488         Address PrivatePtr =
2489             CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()),
2490                               ".firstpriv.ptr.addr");
2491         PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr));
2492         CallArgs.push_back(PrivatePtr.getPointer());
2493       }
2494       for (auto *E : Data.LastprivateVars) {
2495         auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2496         Address PrivatePtr =
2497             CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()),
2498                               ".lastpriv.ptr.addr");
2499         PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr));
2500         CallArgs.push_back(PrivatePtr.getPointer());
2501       }
2502       CGF.EmitRuntimeCall(CopyFn, CallArgs);
2503       for (auto &&Pair : LastprivateDstsOrigs) {
2504         auto *OrigVD = cast<VarDecl>(Pair.second->getDecl());
2505         DeclRefExpr DRE(
2506             const_cast<VarDecl *>(OrigVD),
2507             /*RefersToEnclosingVariableOrCapture=*/CGF.CapturedStmtInfo->lookup(
2508                 OrigVD) != nullptr,
2509             Pair.second->getType(), VK_LValue, Pair.second->getExprLoc());
2510         Scope.addPrivate(Pair.first, [&CGF, &DRE]() {
2511           return CGF.EmitLValue(&DRE).getAddress();
2512         });
2513       }
2514       for (auto &&Pair : PrivatePtrs) {
2515         Address Replacement(CGF.Builder.CreateLoad(Pair.second),
2516                             CGF.getContext().getDeclAlign(Pair.first));
2517         Scope.addPrivate(Pair.first, [Replacement]() { return Replacement; });
2518       }
2519     }
2520     (void)Scope.Privatize();
2521 
2522     Action.Enter(CGF);
2523     BodyGen(CGF);
2524   };
2525   auto *OutlinedFn = CGM.getOpenMPRuntime().emitTaskOutlinedFunction(
2526       S, *I, *PartId, *TaskT, S.getDirectiveKind(), CodeGen, Data.Tied,
2527       Data.NumberOfParts);
2528   OMPLexicalScope Scope(*this, S);
2529   TaskGen(*this, OutlinedFn, Data);
2530 }
2531 
2532 void CodeGenFunction::EmitOMPTaskDirective(const OMPTaskDirective &S) {
2533   // Emit outlined function for task construct.
2534   auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
2535   auto CapturedStruct = GenerateCapturedStmtArgument(*CS);
2536   auto SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl());
2537   const Expr *IfCond = nullptr;
2538   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
2539     if (C->getNameModifier() == OMPD_unknown ||
2540         C->getNameModifier() == OMPD_task) {
2541       IfCond = C->getCondition();
2542       break;
2543     }
2544   }
2545 
2546   OMPTaskDataTy Data;
2547   // Check if we should emit tied or untied task.
2548   Data.Tied = !S.getSingleClause<OMPUntiedClause>();
2549   auto &&BodyGen = [CS](CodeGenFunction &CGF, PrePostActionTy &) {
2550     CGF.EmitStmt(CS->getCapturedStmt());
2551   };
2552   auto &&TaskGen = [&S, SharedsTy, CapturedStruct,
2553                     IfCond](CodeGenFunction &CGF, llvm::Value *OutlinedFn,
2554                             const OMPTaskDataTy &Data) {
2555     CGF.CGM.getOpenMPRuntime().emitTaskCall(CGF, S.getLocStart(), S, OutlinedFn,
2556                                             SharedsTy, CapturedStruct, IfCond,
2557                                             Data);
2558   };
2559   EmitOMPTaskBasedDirective(S, BodyGen, TaskGen, Data);
2560 }
2561 
2562 void CodeGenFunction::EmitOMPTaskyieldDirective(
2563     const OMPTaskyieldDirective &S) {
2564   CGM.getOpenMPRuntime().emitTaskyieldCall(*this, S.getLocStart());
2565 }
2566 
2567 void CodeGenFunction::EmitOMPBarrierDirective(const OMPBarrierDirective &S) {
2568   CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_barrier);
2569 }
2570 
2571 void CodeGenFunction::EmitOMPTaskwaitDirective(const OMPTaskwaitDirective &S) {
2572   CGM.getOpenMPRuntime().emitTaskwaitCall(*this, S.getLocStart());
2573 }
2574 
2575 void CodeGenFunction::EmitOMPTaskgroupDirective(
2576     const OMPTaskgroupDirective &S) {
2577   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
2578     Action.Enter(CGF);
2579     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2580   };
2581   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2582   CGM.getOpenMPRuntime().emitTaskgroupRegion(*this, CodeGen, S.getLocStart());
2583 }
2584 
2585 void CodeGenFunction::EmitOMPFlushDirective(const OMPFlushDirective &S) {
2586   CGM.getOpenMPRuntime().emitFlush(*this, [&]() -> ArrayRef<const Expr *> {
2587     if (const auto *FlushClause = S.getSingleClause<OMPFlushClause>()) {
2588       return llvm::makeArrayRef(FlushClause->varlist_begin(),
2589                                 FlushClause->varlist_end());
2590     }
2591     return llvm::None;
2592   }(), S.getLocStart());
2593 }
2594 
2595 void CodeGenFunction::EmitOMPDistributeLoop(const OMPDistributeDirective &S) {
2596   // Emit the loop iteration variable.
2597   auto IVExpr = cast<DeclRefExpr>(S.getIterationVariable());
2598   auto IVDecl = cast<VarDecl>(IVExpr->getDecl());
2599   EmitVarDecl(*IVDecl);
2600 
2601   // Emit the iterations count variable.
2602   // If it is not a variable, Sema decided to calculate iterations count on each
2603   // iteration (e.g., it is foldable into a constant).
2604   if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
2605     EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
2606     // Emit calculation of the iterations count.
2607     EmitIgnoredExpr(S.getCalcLastIteration());
2608   }
2609 
2610   auto &RT = CGM.getOpenMPRuntime();
2611 
2612   // Check pre-condition.
2613   {
2614     OMPLoopScope PreInitScope(*this, S);
2615     // Skip the entire loop if we don't meet the precondition.
2616     // If the condition constant folds and can be elided, avoid emitting the
2617     // whole loop.
2618     bool CondConstant;
2619     llvm::BasicBlock *ContBlock = nullptr;
2620     if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
2621       if (!CondConstant)
2622         return;
2623     } else {
2624       auto *ThenBlock = createBasicBlock("omp.precond.then");
2625       ContBlock = createBasicBlock("omp.precond.end");
2626       emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock,
2627                   getProfileCount(&S));
2628       EmitBlock(ThenBlock);
2629       incrementProfileCounter(&S);
2630     }
2631 
2632     // Emit 'then' code.
2633     {
2634       // Emit helper vars inits.
2635       LValue LB =
2636           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getLowerBoundVariable()));
2637       LValue UB =
2638           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getUpperBoundVariable()));
2639       LValue ST =
2640           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable()));
2641       LValue IL =
2642           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable()));
2643 
2644       OMPPrivateScope LoopScope(*this);
2645       EmitOMPPrivateLoopCounters(S, LoopScope);
2646       (void)LoopScope.Privatize();
2647 
2648       // Detect the distribute schedule kind and chunk.
2649       llvm::Value *Chunk = nullptr;
2650       OpenMPDistScheduleClauseKind ScheduleKind = OMPC_DIST_SCHEDULE_unknown;
2651       if (auto *C = S.getSingleClause<OMPDistScheduleClause>()) {
2652         ScheduleKind = C->getDistScheduleKind();
2653         if (const auto *Ch = C->getChunkSize()) {
2654           Chunk = EmitScalarExpr(Ch);
2655           Chunk = EmitScalarConversion(Chunk, Ch->getType(),
2656           S.getIterationVariable()->getType(),
2657           S.getLocStart());
2658         }
2659       }
2660       const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
2661       const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
2662 
2663       // OpenMP [2.10.8, distribute Construct, Description]
2664       // If dist_schedule is specified, kind must be static. If specified,
2665       // iterations are divided into chunks of size chunk_size, chunks are
2666       // assigned to the teams of the league in a round-robin fashion in the
2667       // order of the team number. When no chunk_size is specified, the
2668       // iteration space is divided into chunks that are approximately equal
2669       // in size, and at most one chunk is distributed to each team of the
2670       // league. The size of the chunks is unspecified in this case.
2671       if (RT.isStaticNonchunked(ScheduleKind,
2672                                 /* Chunked */ Chunk != nullptr)) {
2673         RT.emitDistributeStaticInit(*this, S.getLocStart(), ScheduleKind,
2674                              IVSize, IVSigned, /* Ordered = */ false,
2675                              IL.getAddress(), LB.getAddress(),
2676                              UB.getAddress(), ST.getAddress());
2677         auto LoopExit =
2678             getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit"));
2679         // UB = min(UB, GlobalUB);
2680         EmitIgnoredExpr(S.getEnsureUpperBound());
2681         // IV = LB;
2682         EmitIgnoredExpr(S.getInit());
2683         // while (idx <= UB) { BODY; ++idx; }
2684         EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(),
2685                          S.getInc(),
2686                          [&S, LoopExit](CodeGenFunction &CGF) {
2687                            CGF.EmitOMPLoopBody(S, LoopExit);
2688                            CGF.EmitStopPoint(&S);
2689                          },
2690                          [](CodeGenFunction &) {});
2691         EmitBlock(LoopExit.getBlock());
2692         // Tell the runtime we are done.
2693         RT.emitForStaticFinish(*this, S.getLocStart());
2694       } else {
2695         // Emit the outer loop, which requests its work chunk [LB..UB] from
2696         // runtime and runs the inner loop to process it.
2697         EmitOMPDistributeOuterLoop(ScheduleKind, S, LoopScope,
2698                             LB.getAddress(), UB.getAddress(), ST.getAddress(),
2699                             IL.getAddress(), Chunk);
2700       }
2701     }
2702 
2703     // We're now done with the loop, so jump to the continuation block.
2704     if (ContBlock) {
2705       EmitBranch(ContBlock);
2706       EmitBlock(ContBlock, true);
2707     }
2708   }
2709 }
2710 
2711 void CodeGenFunction::EmitOMPDistributeDirective(
2712     const OMPDistributeDirective &S) {
2713   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2714     CGF.EmitOMPDistributeLoop(S);
2715   };
2716   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2717   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen,
2718                                               false);
2719 }
2720 
2721 static llvm::Function *emitOutlinedOrderedFunction(CodeGenModule &CGM,
2722                                                    const CapturedStmt *S) {
2723   CodeGenFunction CGF(CGM, /*suppressNewContext=*/true);
2724   CodeGenFunction::CGCapturedStmtInfo CapStmtInfo;
2725   CGF.CapturedStmtInfo = &CapStmtInfo;
2726   auto *Fn = CGF.GenerateOpenMPCapturedStmtFunction(*S);
2727   Fn->addFnAttr(llvm::Attribute::NoInline);
2728   return Fn;
2729 }
2730 
2731 void CodeGenFunction::EmitOMPOrderedDirective(const OMPOrderedDirective &S) {
2732   if (!S.getAssociatedStmt()) {
2733     for (const auto *DC : S.getClausesOfKind<OMPDependClause>())
2734       CGM.getOpenMPRuntime().emitDoacrossOrdered(*this, DC);
2735     return;
2736   }
2737   auto *C = S.getSingleClause<OMPSIMDClause>();
2738   auto &&CodeGen = [&S, C, this](CodeGenFunction &CGF,
2739                                  PrePostActionTy &Action) {
2740     if (C) {
2741       auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
2742       llvm::SmallVector<llvm::Value *, 16> CapturedVars;
2743       CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
2744       auto *OutlinedFn = emitOutlinedOrderedFunction(CGM, CS);
2745       CGF.EmitNounwindRuntimeCall(OutlinedFn, CapturedVars);
2746     } else {
2747       Action.Enter(CGF);
2748       CGF.EmitStmt(
2749           cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
2750     }
2751   };
2752   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
2753   CGM.getOpenMPRuntime().emitOrderedRegion(*this, CodeGen, S.getLocStart(), !C);
2754 }
2755 
2756 static llvm::Value *convertToScalarValue(CodeGenFunction &CGF, RValue Val,
2757                                          QualType SrcType, QualType DestType,
2758                                          SourceLocation Loc) {
2759   assert(CGF.hasScalarEvaluationKind(DestType) &&
2760          "DestType must have scalar evaluation kind.");
2761   assert(!Val.isAggregate() && "Must be a scalar or complex.");
2762   return Val.isScalar()
2763              ? CGF.EmitScalarConversion(Val.getScalarVal(), SrcType, DestType,
2764                                         Loc)
2765              : CGF.EmitComplexToScalarConversion(Val.getComplexVal(), SrcType,
2766                                                  DestType, Loc);
2767 }
2768 
2769 static CodeGenFunction::ComplexPairTy
2770 convertToComplexValue(CodeGenFunction &CGF, RValue Val, QualType SrcType,
2771                       QualType DestType, SourceLocation Loc) {
2772   assert(CGF.getEvaluationKind(DestType) == TEK_Complex &&
2773          "DestType must have complex evaluation kind.");
2774   CodeGenFunction::ComplexPairTy ComplexVal;
2775   if (Val.isScalar()) {
2776     // Convert the input element to the element type of the complex.
2777     auto DestElementType = DestType->castAs<ComplexType>()->getElementType();
2778     auto ScalarVal = CGF.EmitScalarConversion(Val.getScalarVal(), SrcType,
2779                                               DestElementType, Loc);
2780     ComplexVal = CodeGenFunction::ComplexPairTy(
2781         ScalarVal, llvm::Constant::getNullValue(ScalarVal->getType()));
2782   } else {
2783     assert(Val.isComplex() && "Must be a scalar or complex.");
2784     auto SrcElementType = SrcType->castAs<ComplexType>()->getElementType();
2785     auto DestElementType = DestType->castAs<ComplexType>()->getElementType();
2786     ComplexVal.first = CGF.EmitScalarConversion(
2787         Val.getComplexVal().first, SrcElementType, DestElementType, Loc);
2788     ComplexVal.second = CGF.EmitScalarConversion(
2789         Val.getComplexVal().second, SrcElementType, DestElementType, Loc);
2790   }
2791   return ComplexVal;
2792 }
2793 
2794 static void emitSimpleAtomicStore(CodeGenFunction &CGF, bool IsSeqCst,
2795                                   LValue LVal, RValue RVal) {
2796   if (LVal.isGlobalReg()) {
2797     CGF.EmitStoreThroughGlobalRegLValue(RVal, LVal);
2798   } else {
2799     CGF.EmitAtomicStore(RVal, LVal,
2800                         IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent
2801                                  : llvm::AtomicOrdering::Monotonic,
2802                         LVal.isVolatile(), /*IsInit=*/false);
2803   }
2804 }
2805 
2806 void CodeGenFunction::emitOMPSimpleStore(LValue LVal, RValue RVal,
2807                                          QualType RValTy, SourceLocation Loc) {
2808   switch (getEvaluationKind(LVal.getType())) {
2809   case TEK_Scalar:
2810     EmitStoreThroughLValue(RValue::get(convertToScalarValue(
2811                                *this, RVal, RValTy, LVal.getType(), Loc)),
2812                            LVal);
2813     break;
2814   case TEK_Complex:
2815     EmitStoreOfComplex(
2816         convertToComplexValue(*this, RVal, RValTy, LVal.getType(), Loc), LVal,
2817         /*isInit=*/false);
2818     break;
2819   case TEK_Aggregate:
2820     llvm_unreachable("Must be a scalar or complex.");
2821   }
2822 }
2823 
2824 static void EmitOMPAtomicReadExpr(CodeGenFunction &CGF, bool IsSeqCst,
2825                                   const Expr *X, const Expr *V,
2826                                   SourceLocation Loc) {
2827   // v = x;
2828   assert(V->isLValue() && "V of 'omp atomic read' is not lvalue");
2829   assert(X->isLValue() && "X of 'omp atomic read' is not lvalue");
2830   LValue XLValue = CGF.EmitLValue(X);
2831   LValue VLValue = CGF.EmitLValue(V);
2832   RValue Res = XLValue.isGlobalReg()
2833                    ? CGF.EmitLoadOfLValue(XLValue, Loc)
2834                    : CGF.EmitAtomicLoad(
2835                          XLValue, Loc,
2836                          IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent
2837                                   : llvm::AtomicOrdering::Monotonic,
2838                          XLValue.isVolatile());
2839   // OpenMP, 2.12.6, atomic Construct
2840   // Any atomic construct with a seq_cst clause forces the atomically
2841   // performed operation to include an implicit flush operation without a
2842   // list.
2843   if (IsSeqCst)
2844     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc);
2845   CGF.emitOMPSimpleStore(VLValue, Res, X->getType().getNonReferenceType(), Loc);
2846 }
2847 
2848 static void EmitOMPAtomicWriteExpr(CodeGenFunction &CGF, bool IsSeqCst,
2849                                    const Expr *X, const Expr *E,
2850                                    SourceLocation Loc) {
2851   // x = expr;
2852   assert(X->isLValue() && "X of 'omp atomic write' is not lvalue");
2853   emitSimpleAtomicStore(CGF, IsSeqCst, CGF.EmitLValue(X), CGF.EmitAnyExpr(E));
2854   // OpenMP, 2.12.6, atomic Construct
2855   // Any atomic construct with a seq_cst clause forces the atomically
2856   // performed operation to include an implicit flush operation without a
2857   // list.
2858   if (IsSeqCst)
2859     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc);
2860 }
2861 
2862 static std::pair<bool, RValue> emitOMPAtomicRMW(CodeGenFunction &CGF, LValue X,
2863                                                 RValue Update,
2864                                                 BinaryOperatorKind BO,
2865                                                 llvm::AtomicOrdering AO,
2866                                                 bool IsXLHSInRHSPart) {
2867   auto &Context = CGF.CGM.getContext();
2868   // Allow atomicrmw only if 'x' and 'update' are integer values, lvalue for 'x'
2869   // expression is simple and atomic is allowed for the given type for the
2870   // target platform.
2871   if (BO == BO_Comma || !Update.isScalar() ||
2872       !Update.getScalarVal()->getType()->isIntegerTy() ||
2873       !X.isSimple() || (!isa<llvm::ConstantInt>(Update.getScalarVal()) &&
2874                         (Update.getScalarVal()->getType() !=
2875                          X.getAddress().getElementType())) ||
2876       !X.getAddress().getElementType()->isIntegerTy() ||
2877       !Context.getTargetInfo().hasBuiltinAtomic(
2878           Context.getTypeSize(X.getType()), Context.toBits(X.getAlignment())))
2879     return std::make_pair(false, RValue::get(nullptr));
2880 
2881   llvm::AtomicRMWInst::BinOp RMWOp;
2882   switch (BO) {
2883   case BO_Add:
2884     RMWOp = llvm::AtomicRMWInst::Add;
2885     break;
2886   case BO_Sub:
2887     if (!IsXLHSInRHSPart)
2888       return std::make_pair(false, RValue::get(nullptr));
2889     RMWOp = llvm::AtomicRMWInst::Sub;
2890     break;
2891   case BO_And:
2892     RMWOp = llvm::AtomicRMWInst::And;
2893     break;
2894   case BO_Or:
2895     RMWOp = llvm::AtomicRMWInst::Or;
2896     break;
2897   case BO_Xor:
2898     RMWOp = llvm::AtomicRMWInst::Xor;
2899     break;
2900   case BO_LT:
2901     RMWOp = X.getType()->hasSignedIntegerRepresentation()
2902                 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Min
2903                                    : llvm::AtomicRMWInst::Max)
2904                 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMin
2905                                    : llvm::AtomicRMWInst::UMax);
2906     break;
2907   case BO_GT:
2908     RMWOp = X.getType()->hasSignedIntegerRepresentation()
2909                 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Max
2910                                    : llvm::AtomicRMWInst::Min)
2911                 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMax
2912                                    : llvm::AtomicRMWInst::UMin);
2913     break;
2914   case BO_Assign:
2915     RMWOp = llvm::AtomicRMWInst::Xchg;
2916     break;
2917   case BO_Mul:
2918   case BO_Div:
2919   case BO_Rem:
2920   case BO_Shl:
2921   case BO_Shr:
2922   case BO_LAnd:
2923   case BO_LOr:
2924     return std::make_pair(false, RValue::get(nullptr));
2925   case BO_PtrMemD:
2926   case BO_PtrMemI:
2927   case BO_LE:
2928   case BO_GE:
2929   case BO_EQ:
2930   case BO_NE:
2931   case BO_AddAssign:
2932   case BO_SubAssign:
2933   case BO_AndAssign:
2934   case BO_OrAssign:
2935   case BO_XorAssign:
2936   case BO_MulAssign:
2937   case BO_DivAssign:
2938   case BO_RemAssign:
2939   case BO_ShlAssign:
2940   case BO_ShrAssign:
2941   case BO_Comma:
2942     llvm_unreachable("Unsupported atomic update operation");
2943   }
2944   auto *UpdateVal = Update.getScalarVal();
2945   if (auto *IC = dyn_cast<llvm::ConstantInt>(UpdateVal)) {
2946     UpdateVal = CGF.Builder.CreateIntCast(
2947         IC, X.getAddress().getElementType(),
2948         X.getType()->hasSignedIntegerRepresentation());
2949   }
2950   auto *Res = CGF.Builder.CreateAtomicRMW(RMWOp, X.getPointer(), UpdateVal, AO);
2951   return std::make_pair(true, RValue::get(Res));
2952 }
2953 
2954 std::pair<bool, RValue> CodeGenFunction::EmitOMPAtomicSimpleUpdateExpr(
2955     LValue X, RValue E, BinaryOperatorKind BO, bool IsXLHSInRHSPart,
2956     llvm::AtomicOrdering AO, SourceLocation Loc,
2957     const llvm::function_ref<RValue(RValue)> &CommonGen) {
2958   // Update expressions are allowed to have the following forms:
2959   // x binop= expr; -> xrval + expr;
2960   // x++, ++x -> xrval + 1;
2961   // x--, --x -> xrval - 1;
2962   // x = x binop expr; -> xrval binop expr
2963   // x = expr Op x; - > expr binop xrval;
2964   auto Res = emitOMPAtomicRMW(*this, X, E, BO, AO, IsXLHSInRHSPart);
2965   if (!Res.first) {
2966     if (X.isGlobalReg()) {
2967       // Emit an update expression: 'xrval' binop 'expr' or 'expr' binop
2968       // 'xrval'.
2969       EmitStoreThroughLValue(CommonGen(EmitLoadOfLValue(X, Loc)), X);
2970     } else {
2971       // Perform compare-and-swap procedure.
2972       EmitAtomicUpdate(X, AO, CommonGen, X.getType().isVolatileQualified());
2973     }
2974   }
2975   return Res;
2976 }
2977 
2978 static void EmitOMPAtomicUpdateExpr(CodeGenFunction &CGF, bool IsSeqCst,
2979                                     const Expr *X, const Expr *E,
2980                                     const Expr *UE, bool IsXLHSInRHSPart,
2981                                     SourceLocation Loc) {
2982   assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) &&
2983          "Update expr in 'atomic update' must be a binary operator.");
2984   auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts());
2985   // Update expressions are allowed to have the following forms:
2986   // x binop= expr; -> xrval + expr;
2987   // x++, ++x -> xrval + 1;
2988   // x--, --x -> xrval - 1;
2989   // x = x binop expr; -> xrval binop expr
2990   // x = expr Op x; - > expr binop xrval;
2991   assert(X->isLValue() && "X of 'omp atomic update' is not lvalue");
2992   LValue XLValue = CGF.EmitLValue(X);
2993   RValue ExprRValue = CGF.EmitAnyExpr(E);
2994   auto AO = IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent
2995                      : llvm::AtomicOrdering::Monotonic;
2996   auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts());
2997   auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts());
2998   auto *XRValExpr = IsXLHSInRHSPart ? LHS : RHS;
2999   auto *ERValExpr = IsXLHSInRHSPart ? RHS : LHS;
3000   auto Gen =
3001       [&CGF, UE, ExprRValue, XRValExpr, ERValExpr](RValue XRValue) -> RValue {
3002         CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
3003         CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue);
3004         return CGF.EmitAnyExpr(UE);
3005       };
3006   (void)CGF.EmitOMPAtomicSimpleUpdateExpr(
3007       XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen);
3008   // OpenMP, 2.12.6, atomic Construct
3009   // Any atomic construct with a seq_cst clause forces the atomically
3010   // performed operation to include an implicit flush operation without a
3011   // list.
3012   if (IsSeqCst)
3013     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc);
3014 }
3015 
3016 static RValue convertToType(CodeGenFunction &CGF, RValue Value,
3017                             QualType SourceType, QualType ResType,
3018                             SourceLocation Loc) {
3019   switch (CGF.getEvaluationKind(ResType)) {
3020   case TEK_Scalar:
3021     return RValue::get(
3022         convertToScalarValue(CGF, Value, SourceType, ResType, Loc));
3023   case TEK_Complex: {
3024     auto Res = convertToComplexValue(CGF, Value, SourceType, ResType, Loc);
3025     return RValue::getComplex(Res.first, Res.second);
3026   }
3027   case TEK_Aggregate:
3028     break;
3029   }
3030   llvm_unreachable("Must be a scalar or complex.");
3031 }
3032 
3033 static void EmitOMPAtomicCaptureExpr(CodeGenFunction &CGF, bool IsSeqCst,
3034                                      bool IsPostfixUpdate, const Expr *V,
3035                                      const Expr *X, const Expr *E,
3036                                      const Expr *UE, bool IsXLHSInRHSPart,
3037                                      SourceLocation Loc) {
3038   assert(X->isLValue() && "X of 'omp atomic capture' is not lvalue");
3039   assert(V->isLValue() && "V of 'omp atomic capture' is not lvalue");
3040   RValue NewVVal;
3041   LValue VLValue = CGF.EmitLValue(V);
3042   LValue XLValue = CGF.EmitLValue(X);
3043   RValue ExprRValue = CGF.EmitAnyExpr(E);
3044   auto AO = IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent
3045                      : llvm::AtomicOrdering::Monotonic;
3046   QualType NewVValType;
3047   if (UE) {
3048     // 'x' is updated with some additional value.
3049     assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) &&
3050            "Update expr in 'atomic capture' must be a binary operator.");
3051     auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts());
3052     // Update expressions are allowed to have the following forms:
3053     // x binop= expr; -> xrval + expr;
3054     // x++, ++x -> xrval + 1;
3055     // x--, --x -> xrval - 1;
3056     // x = x binop expr; -> xrval binop expr
3057     // x = expr Op x; - > expr binop xrval;
3058     auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts());
3059     auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts());
3060     auto *XRValExpr = IsXLHSInRHSPart ? LHS : RHS;
3061     NewVValType = XRValExpr->getType();
3062     auto *ERValExpr = IsXLHSInRHSPart ? RHS : LHS;
3063     auto &&Gen = [&CGF, &NewVVal, UE, ExprRValue, XRValExpr, ERValExpr,
3064                   IsSeqCst, IsPostfixUpdate](RValue XRValue) -> RValue {
3065       CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
3066       CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue);
3067       RValue Res = CGF.EmitAnyExpr(UE);
3068       NewVVal = IsPostfixUpdate ? XRValue : Res;
3069       return Res;
3070     };
3071     auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr(
3072         XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen);
3073     if (Res.first) {
3074       // 'atomicrmw' instruction was generated.
3075       if (IsPostfixUpdate) {
3076         // Use old value from 'atomicrmw'.
3077         NewVVal = Res.second;
3078       } else {
3079         // 'atomicrmw' does not provide new value, so evaluate it using old
3080         // value of 'x'.
3081         CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
3082         CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, Res.second);
3083         NewVVal = CGF.EmitAnyExpr(UE);
3084       }
3085     }
3086   } else {
3087     // 'x' is simply rewritten with some 'expr'.
3088     NewVValType = X->getType().getNonReferenceType();
3089     ExprRValue = convertToType(CGF, ExprRValue, E->getType(),
3090                                X->getType().getNonReferenceType(), Loc);
3091     auto &&Gen = [&CGF, &NewVVal, ExprRValue](RValue XRValue) -> RValue {
3092       NewVVal = XRValue;
3093       return ExprRValue;
3094     };
3095     // Try to perform atomicrmw xchg, otherwise simple exchange.
3096     auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr(
3097         XLValue, ExprRValue, /*BO=*/BO_Assign, /*IsXLHSInRHSPart=*/false, AO,
3098         Loc, Gen);
3099     if (Res.first) {
3100       // 'atomicrmw' instruction was generated.
3101       NewVVal = IsPostfixUpdate ? Res.second : ExprRValue;
3102     }
3103   }
3104   // Emit post-update store to 'v' of old/new 'x' value.
3105   CGF.emitOMPSimpleStore(VLValue, NewVVal, NewVValType, Loc);
3106   // OpenMP, 2.12.6, atomic Construct
3107   // Any atomic construct with a seq_cst clause forces the atomically
3108   // performed operation to include an implicit flush operation without a
3109   // list.
3110   if (IsSeqCst)
3111     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc);
3112 }
3113 
3114 static void EmitOMPAtomicExpr(CodeGenFunction &CGF, OpenMPClauseKind Kind,
3115                               bool IsSeqCst, bool IsPostfixUpdate,
3116                               const Expr *X, const Expr *V, const Expr *E,
3117                               const Expr *UE, bool IsXLHSInRHSPart,
3118                               SourceLocation Loc) {
3119   switch (Kind) {
3120   case OMPC_read:
3121     EmitOMPAtomicReadExpr(CGF, IsSeqCst, X, V, Loc);
3122     break;
3123   case OMPC_write:
3124     EmitOMPAtomicWriteExpr(CGF, IsSeqCst, X, E, Loc);
3125     break;
3126   case OMPC_unknown:
3127   case OMPC_update:
3128     EmitOMPAtomicUpdateExpr(CGF, IsSeqCst, X, E, UE, IsXLHSInRHSPart, Loc);
3129     break;
3130   case OMPC_capture:
3131     EmitOMPAtomicCaptureExpr(CGF, IsSeqCst, IsPostfixUpdate, V, X, E, UE,
3132                              IsXLHSInRHSPart, Loc);
3133     break;
3134   case OMPC_if:
3135   case OMPC_final:
3136   case OMPC_num_threads:
3137   case OMPC_private:
3138   case OMPC_firstprivate:
3139   case OMPC_lastprivate:
3140   case OMPC_reduction:
3141   case OMPC_safelen:
3142   case OMPC_simdlen:
3143   case OMPC_collapse:
3144   case OMPC_default:
3145   case OMPC_seq_cst:
3146   case OMPC_shared:
3147   case OMPC_linear:
3148   case OMPC_aligned:
3149   case OMPC_copyin:
3150   case OMPC_copyprivate:
3151   case OMPC_flush:
3152   case OMPC_proc_bind:
3153   case OMPC_schedule:
3154   case OMPC_ordered:
3155   case OMPC_nowait:
3156   case OMPC_untied:
3157   case OMPC_threadprivate:
3158   case OMPC_depend:
3159   case OMPC_mergeable:
3160   case OMPC_device:
3161   case OMPC_threads:
3162   case OMPC_simd:
3163   case OMPC_map:
3164   case OMPC_num_teams:
3165   case OMPC_thread_limit:
3166   case OMPC_priority:
3167   case OMPC_grainsize:
3168   case OMPC_nogroup:
3169   case OMPC_num_tasks:
3170   case OMPC_hint:
3171   case OMPC_dist_schedule:
3172   case OMPC_defaultmap:
3173   case OMPC_uniform:
3174   case OMPC_to:
3175   case OMPC_from:
3176     llvm_unreachable("Clause is not allowed in 'omp atomic'.");
3177   }
3178 }
3179 
3180 void CodeGenFunction::EmitOMPAtomicDirective(const OMPAtomicDirective &S) {
3181   bool IsSeqCst = S.getSingleClause<OMPSeqCstClause>();
3182   OpenMPClauseKind Kind = OMPC_unknown;
3183   for (auto *C : S.clauses()) {
3184     // Find first clause (skip seq_cst clause, if it is first).
3185     if (C->getClauseKind() != OMPC_seq_cst) {
3186       Kind = C->getClauseKind();
3187       break;
3188     }
3189   }
3190 
3191   const auto *CS =
3192       S.getAssociatedStmt()->IgnoreContainers(/*IgnoreCaptured=*/true);
3193   if (const auto *EWC = dyn_cast<ExprWithCleanups>(CS)) {
3194     enterFullExpression(EWC);
3195   }
3196   // Processing for statements under 'atomic capture'.
3197   if (const auto *Compound = dyn_cast<CompoundStmt>(CS)) {
3198     for (const auto *C : Compound->body()) {
3199       if (const auto *EWC = dyn_cast<ExprWithCleanups>(C)) {
3200         enterFullExpression(EWC);
3201       }
3202     }
3203   }
3204 
3205   auto &&CodeGen = [&S, Kind, IsSeqCst, CS](CodeGenFunction &CGF,
3206                                             PrePostActionTy &) {
3207     CGF.EmitStopPoint(CS);
3208     EmitOMPAtomicExpr(CGF, Kind, IsSeqCst, S.isPostfixUpdate(), S.getX(),
3209                       S.getV(), S.getExpr(), S.getUpdateExpr(),
3210                       S.isXLHSInRHSPart(), S.getLocStart());
3211   };
3212   OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
3213   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_atomic, CodeGen);
3214 }
3215 
3216 std::pair<llvm::Function * /*OutlinedFn*/, llvm::Constant * /*OutlinedFnID*/>
3217 CodeGenFunction::EmitOMPTargetDirectiveOutlinedFunction(
3218     CodeGenModule &CGM, const OMPTargetDirective &S, StringRef ParentName,
3219     bool IsOffloadEntry) {
3220   llvm::Function *OutlinedFn = nullptr;
3221   llvm::Constant *OutlinedFnID = nullptr;
3222   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
3223     OMPPrivateScope PrivateScope(CGF);
3224     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
3225     CGF.EmitOMPPrivateClause(S, PrivateScope);
3226     (void)PrivateScope.Privatize();
3227 
3228     Action.Enter(CGF);
3229     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
3230   };
3231   // Emit target region as a standalone region.
3232   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
3233       S, ParentName, OutlinedFn, OutlinedFnID, IsOffloadEntry, CodeGen);
3234   return std::make_pair(OutlinedFn, OutlinedFnID);
3235 }
3236 
3237 void CodeGenFunction::EmitOMPTargetDirective(const OMPTargetDirective &S) {
3238   const CapturedStmt &CS = *cast<CapturedStmt>(S.getAssociatedStmt());
3239 
3240   llvm::SmallVector<llvm::Value *, 16> CapturedVars;
3241   GenerateOpenMPCapturedVars(CS, CapturedVars);
3242 
3243   llvm::Function *Fn = nullptr;
3244   llvm::Constant *FnID = nullptr;
3245 
3246   // Check if we have any if clause associated with the directive.
3247   const Expr *IfCond = nullptr;
3248 
3249   if (auto *C = S.getSingleClause<OMPIfClause>()) {
3250     IfCond = C->getCondition();
3251   }
3252 
3253   // Check if we have any device clause associated with the directive.
3254   const Expr *Device = nullptr;
3255   if (auto *C = S.getSingleClause<OMPDeviceClause>()) {
3256     Device = C->getDevice();
3257   }
3258 
3259   // Check if we have an if clause whose conditional always evaluates to false
3260   // or if we do not have any targets specified. If so the target region is not
3261   // an offload entry point.
3262   bool IsOffloadEntry = true;
3263   if (IfCond) {
3264     bool Val;
3265     if (ConstantFoldsToSimpleInteger(IfCond, Val) && !Val)
3266       IsOffloadEntry = false;
3267   }
3268   if (CGM.getLangOpts().OMPTargetTriples.empty())
3269     IsOffloadEntry = false;
3270 
3271   assert(CurFuncDecl && "No parent declaration for target region!");
3272   StringRef ParentName;
3273   // In case we have Ctors/Dtors we use the complete type variant to produce
3274   // the mangling of the device outlined kernel.
3275   if (auto *D = dyn_cast<CXXConstructorDecl>(CurFuncDecl))
3276     ParentName = CGM.getMangledName(GlobalDecl(D, Ctor_Complete));
3277   else if (auto *D = dyn_cast<CXXDestructorDecl>(CurFuncDecl))
3278     ParentName = CGM.getMangledName(GlobalDecl(D, Dtor_Complete));
3279   else
3280     ParentName =
3281         CGM.getMangledName(GlobalDecl(cast<FunctionDecl>(CurFuncDecl)));
3282 
3283   std::tie(Fn, FnID) = EmitOMPTargetDirectiveOutlinedFunction(
3284       CGM, S, ParentName, IsOffloadEntry);
3285   OMPLexicalScope Scope(*this, S);
3286   CGM.getOpenMPRuntime().emitTargetCall(*this, S, Fn, FnID, IfCond, Device,
3287                                         CapturedVars);
3288 }
3289 
3290 static void emitCommonOMPTeamsDirective(CodeGenFunction &CGF,
3291                                         const OMPExecutableDirective &S,
3292                                         OpenMPDirectiveKind InnermostKind,
3293                                         const RegionCodeGenTy &CodeGen) {
3294   auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
3295   auto OutlinedFn = CGF.CGM.getOpenMPRuntime().
3296       emitParallelOrTeamsOutlinedFunction(S,
3297           *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen);
3298 
3299   const OMPTeamsDirective &TD = *dyn_cast<OMPTeamsDirective>(&S);
3300   const OMPNumTeamsClause *NT = TD.getSingleClause<OMPNumTeamsClause>();
3301   const OMPThreadLimitClause *TL = TD.getSingleClause<OMPThreadLimitClause>();
3302   if (NT || TL) {
3303     Expr *NumTeams = (NT) ? NT->getNumTeams() : nullptr;
3304     Expr *ThreadLimit = (TL) ? TL->getThreadLimit() : nullptr;
3305 
3306     CGF.CGM.getOpenMPRuntime().emitNumTeamsClause(CGF, NumTeams, ThreadLimit,
3307                                                   S.getLocStart());
3308   }
3309 
3310   OMPLexicalScope Scope(CGF, S);
3311   llvm::SmallVector<llvm::Value *, 16> CapturedVars;
3312   CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
3313   CGF.CGM.getOpenMPRuntime().emitTeamsCall(CGF, S, S.getLocStart(), OutlinedFn,
3314                                            CapturedVars);
3315 }
3316 
3317 void CodeGenFunction::EmitOMPTeamsDirective(const OMPTeamsDirective &S) {
3318   // Emit parallel region as a standalone region.
3319   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3320     OMPPrivateScope PrivateScope(CGF);
3321     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
3322     CGF.EmitOMPPrivateClause(S, PrivateScope);
3323     (void)PrivateScope.Privatize();
3324     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
3325   };
3326   emitCommonOMPTeamsDirective(*this, S, OMPD_teams, CodeGen);
3327 }
3328 
3329 void CodeGenFunction::EmitOMPCancellationPointDirective(
3330     const OMPCancellationPointDirective &S) {
3331   CGM.getOpenMPRuntime().emitCancellationPointCall(*this, S.getLocStart(),
3332                                                    S.getCancelRegion());
3333 }
3334 
3335 void CodeGenFunction::EmitOMPCancelDirective(const OMPCancelDirective &S) {
3336   const Expr *IfCond = nullptr;
3337   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
3338     if (C->getNameModifier() == OMPD_unknown ||
3339         C->getNameModifier() == OMPD_cancel) {
3340       IfCond = C->getCondition();
3341       break;
3342     }
3343   }
3344   CGM.getOpenMPRuntime().emitCancelCall(*this, S.getLocStart(), IfCond,
3345                                         S.getCancelRegion());
3346 }
3347 
3348 CodeGenFunction::JumpDest
3349 CodeGenFunction::getOMPCancelDestination(OpenMPDirectiveKind Kind) {
3350   if (Kind == OMPD_parallel || Kind == OMPD_task)
3351     return ReturnBlock;
3352   assert(Kind == OMPD_for || Kind == OMPD_section || Kind == OMPD_sections ||
3353          Kind == OMPD_parallel_sections || Kind == OMPD_parallel_for);
3354   return BreakContinueStack.back().BreakBlock;
3355 }
3356 
3357 // Generate the instructions for '#pragma omp target data' directive.
3358 void CodeGenFunction::EmitOMPTargetDataDirective(
3359     const OMPTargetDataDirective &S) {
3360   // The target data enclosed region is implemented just by emitting the
3361   // statement.
3362   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3363     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
3364   };
3365 
3366   // If we don't have target devices, don't bother emitting the data mapping
3367   // code.
3368   if (CGM.getLangOpts().OMPTargetTriples.empty()) {
3369     OMPLexicalScope Scope(*this, S, /*AsInlined=*/true);
3370 
3371     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_target_data,
3372                                                 CodeGen);
3373     return;
3374   }
3375 
3376   // Check if we have any if clause associated with the directive.
3377   const Expr *IfCond = nullptr;
3378   if (auto *C = S.getSingleClause<OMPIfClause>())
3379     IfCond = C->getCondition();
3380 
3381   // Check if we have any device clause associated with the directive.
3382   const Expr *Device = nullptr;
3383   if (auto *C = S.getSingleClause<OMPDeviceClause>())
3384     Device = C->getDevice();
3385 
3386   CGM.getOpenMPRuntime().emitTargetDataCalls(*this, S, IfCond, Device, CodeGen);
3387 }
3388 
3389 void CodeGenFunction::EmitOMPTargetEnterDataDirective(
3390     const OMPTargetEnterDataDirective &S) {
3391   // If we don't have target devices, don't bother emitting the data mapping
3392   // code.
3393   if (CGM.getLangOpts().OMPTargetTriples.empty())
3394     return;
3395 
3396   // Check if we have any if clause associated with the directive.
3397   const Expr *IfCond = nullptr;
3398   if (auto *C = S.getSingleClause<OMPIfClause>())
3399     IfCond = C->getCondition();
3400 
3401   // Check if we have any device clause associated with the directive.
3402   const Expr *Device = nullptr;
3403   if (auto *C = S.getSingleClause<OMPDeviceClause>())
3404     Device = C->getDevice();
3405 
3406   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
3407 }
3408 
3409 void CodeGenFunction::EmitOMPTargetExitDataDirective(
3410     const OMPTargetExitDataDirective &S) {
3411   // If we don't have target devices, don't bother emitting the data mapping
3412   // code.
3413   if (CGM.getLangOpts().OMPTargetTriples.empty())
3414     return;
3415 
3416   // Check if we have any if clause associated with the directive.
3417   const Expr *IfCond = nullptr;
3418   if (auto *C = S.getSingleClause<OMPIfClause>())
3419     IfCond = C->getCondition();
3420 
3421   // Check if we have any device clause associated with the directive.
3422   const Expr *Device = nullptr;
3423   if (auto *C = S.getSingleClause<OMPDeviceClause>())
3424     Device = C->getDevice();
3425 
3426   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
3427 }
3428 
3429 void CodeGenFunction::EmitOMPTargetParallelDirective(
3430     const OMPTargetParallelDirective &S) {
3431   // TODO: codegen for target parallel.
3432 }
3433 
3434 void CodeGenFunction::EmitOMPTargetParallelForDirective(
3435     const OMPTargetParallelForDirective &S) {
3436   // TODO: codegen for target parallel for.
3437 }
3438 
3439 /// Emit a helper variable and return corresponding lvalue.
3440 static void mapParam(CodeGenFunction &CGF, const DeclRefExpr *Helper,
3441                      const ImplicitParamDecl *PVD,
3442                      CodeGenFunction::OMPPrivateScope &Privates) {
3443   auto *VDecl = cast<VarDecl>(Helper->getDecl());
3444   Privates.addPrivate(
3445       VDecl, [&CGF, PVD]() -> Address { return CGF.GetAddrOfLocalVar(PVD); });
3446 }
3447 
3448 void CodeGenFunction::EmitOMPTaskLoopBasedDirective(const OMPLoopDirective &S) {
3449   assert(isOpenMPTaskLoopDirective(S.getDirectiveKind()));
3450   // Emit outlined function for task construct.
3451   auto CS = cast<CapturedStmt>(S.getAssociatedStmt());
3452   auto CapturedStruct = GenerateCapturedStmtArgument(*CS);
3453   auto SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl());
3454   const Expr *IfCond = nullptr;
3455   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
3456     if (C->getNameModifier() == OMPD_unknown ||
3457         C->getNameModifier() == OMPD_taskloop) {
3458       IfCond = C->getCondition();
3459       break;
3460     }
3461   }
3462 
3463   OMPTaskDataTy Data;
3464   // Check if taskloop must be emitted without taskgroup.
3465   Data.Nogroup = S.getSingleClause<OMPNogroupClause>();
3466   // TODO: Check if we should emit tied or untied task.
3467   Data.Tied = true;
3468   // Set scheduling for taskloop
3469   if (const auto* Clause = S.getSingleClause<OMPGrainsizeClause>()) {
3470     // grainsize clause
3471     Data.Schedule.setInt(/*IntVal=*/false);
3472     Data.Schedule.setPointer(EmitScalarExpr(Clause->getGrainsize()));
3473   } else if (const auto* Clause = S.getSingleClause<OMPNumTasksClause>()) {
3474     // num_tasks clause
3475     Data.Schedule.setInt(/*IntVal=*/true);
3476     Data.Schedule.setPointer(EmitScalarExpr(Clause->getNumTasks()));
3477   }
3478 
3479   auto &&BodyGen = [CS, &S](CodeGenFunction &CGF, PrePostActionTy &) {
3480     // if (PreCond) {
3481     //   for (IV in 0..LastIteration) BODY;
3482     //   <Final counter/linear vars updates>;
3483     // }
3484     //
3485 
3486     // Emit: if (PreCond) - begin.
3487     // If the condition constant folds and can be elided, avoid emitting the
3488     // whole loop.
3489     bool CondConstant;
3490     llvm::BasicBlock *ContBlock = nullptr;
3491     OMPLoopScope PreInitScope(CGF, S);
3492     if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
3493       if (!CondConstant)
3494         return;
3495     } else {
3496       auto *ThenBlock = CGF.createBasicBlock("taskloop.if.then");
3497       ContBlock = CGF.createBasicBlock("taskloop.if.end");
3498       emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock,
3499                   CGF.getProfileCount(&S));
3500       CGF.EmitBlock(ThenBlock);
3501       CGF.incrementProfileCounter(&S);
3502     }
3503 
3504     if (isOpenMPSimdDirective(S.getDirectiveKind()))
3505       CGF.EmitOMPSimdInit(S);
3506 
3507     OMPPrivateScope LoopScope(CGF);
3508     // Emit helper vars inits.
3509     enum { LowerBound = 5, UpperBound, Stride, LastIter };
3510     auto *I = CS->getCapturedDecl()->param_begin();
3511     auto *LBP = std::next(I, LowerBound);
3512     auto *UBP = std::next(I, UpperBound);
3513     auto *STP = std::next(I, Stride);
3514     auto *LIP = std::next(I, LastIter);
3515     mapParam(CGF, cast<DeclRefExpr>(S.getLowerBoundVariable()), *LBP,
3516              LoopScope);
3517     mapParam(CGF, cast<DeclRefExpr>(S.getUpperBoundVariable()), *UBP,
3518              LoopScope);
3519     mapParam(CGF, cast<DeclRefExpr>(S.getStrideVariable()), *STP, LoopScope);
3520     mapParam(CGF, cast<DeclRefExpr>(S.getIsLastIterVariable()), *LIP,
3521              LoopScope);
3522     CGF.EmitOMPPrivateLoopCounters(S, LoopScope);
3523     bool HasLastprivateClause = CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
3524     (void)LoopScope.Privatize();
3525     // Emit the loop iteration variable.
3526     const Expr *IVExpr = S.getIterationVariable();
3527     const VarDecl *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl());
3528     CGF.EmitVarDecl(*IVDecl);
3529     CGF.EmitIgnoredExpr(S.getInit());
3530 
3531     // Emit the iterations count variable.
3532     // If it is not a variable, Sema decided to calculate iterations count on
3533     // each iteration (e.g., it is foldable into a constant).
3534     if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
3535       CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
3536       // Emit calculation of the iterations count.
3537       CGF.EmitIgnoredExpr(S.getCalcLastIteration());
3538     }
3539 
3540     CGF.EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(),
3541                          S.getInc(),
3542                          [&S](CodeGenFunction &CGF) {
3543                            CGF.EmitOMPLoopBody(S, JumpDest());
3544                            CGF.EmitStopPoint(&S);
3545                          },
3546                          [](CodeGenFunction &) {});
3547     // Emit: if (PreCond) - end.
3548     if (ContBlock) {
3549       CGF.EmitBranch(ContBlock);
3550       CGF.EmitBlock(ContBlock, true);
3551     }
3552     // Emit final copy of the lastprivate variables if IsLastIter != 0.
3553     if (HasLastprivateClause) {
3554       CGF.EmitOMPLastprivateClauseFinal(
3555           S, isOpenMPSimdDirective(S.getDirectiveKind()),
3556           CGF.Builder.CreateIsNotNull(CGF.EmitLoadOfScalar(
3557               CGF.GetAddrOfLocalVar(*LIP), /*Volatile=*/false,
3558               (*LIP)->getType(), S.getLocStart())));
3559     }
3560   };
3561   auto &&TaskGen = [&S, SharedsTy, CapturedStruct,
3562                     IfCond](CodeGenFunction &CGF, llvm::Value *OutlinedFn,
3563                             const OMPTaskDataTy &Data) {
3564     auto &&CodeGen = [&](CodeGenFunction &CGF, PrePostActionTy &) {
3565       OMPLoopScope PreInitScope(CGF, S);
3566       CGF.CGM.getOpenMPRuntime().emitTaskLoopCall(CGF, S.getLocStart(), S,
3567                                                   OutlinedFn, SharedsTy,
3568                                                   CapturedStruct, IfCond, Data);
3569     };
3570     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_taskloop,
3571                                                     CodeGen);
3572   };
3573   EmitOMPTaskBasedDirective(S, BodyGen, TaskGen, Data);
3574 }
3575 
3576 void CodeGenFunction::EmitOMPTaskLoopDirective(const OMPTaskLoopDirective &S) {
3577   EmitOMPTaskLoopBasedDirective(S);
3578 }
3579 
3580 void CodeGenFunction::EmitOMPTaskLoopSimdDirective(
3581     const OMPTaskLoopSimdDirective &S) {
3582   EmitOMPTaskLoopBasedDirective(S);
3583 }
3584 
3585 // Generate the instructions for '#pragma omp target update' directive.
3586 void CodeGenFunction::EmitOMPTargetUpdateDirective(
3587     const OMPTargetUpdateDirective &S) {
3588   // If we don't have target devices, don't bother emitting the data mapping
3589   // code.
3590   if (CGM.getLangOpts().OMPTargetTriples.empty())
3591     return;
3592 
3593   // Check if we have any if clause associated with the directive.
3594   const Expr *IfCond = nullptr;
3595   if (auto *C = S.getSingleClause<OMPIfClause>())
3596     IfCond = C->getCondition();
3597 
3598   // Check if we have any device clause associated with the directive.
3599   const Expr *Device = nullptr;
3600   if (auto *C = S.getSingleClause<OMPDeviceClause>())
3601     Device = C->getDevice();
3602 
3603   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
3604 }
3605