1 //===--- CGStmtOpenMP.cpp - Emit LLVM Code from Statements ----------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This contains code to emit OpenMP nodes as LLVM code.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "CGCleanup.h"
14 #include "CGOpenMPRuntime.h"
15 #include "CodeGenFunction.h"
16 #include "CodeGenModule.h"
17 #include "TargetInfo.h"
18 #include "clang/AST/ASTContext.h"
19 #include "clang/AST/Attr.h"
20 #include "clang/AST/DeclOpenMP.h"
21 #include "clang/AST/OpenMPClause.h"
22 #include "clang/AST/Stmt.h"
23 #include "clang/AST/StmtOpenMP.h"
24 #include "clang/AST/StmtVisitor.h"
25 #include "clang/Basic/OpenMPKinds.h"
26 #include "clang/Basic/PrettyStackTrace.h"
27 #include "llvm/ADT/SmallSet.h"
28 #include "llvm/BinaryFormat/Dwarf.h"
29 #include "llvm/Frontend/OpenMP/OMPConstants.h"
30 #include "llvm/Frontend/OpenMP/OMPIRBuilder.h"
31 #include "llvm/IR/Constants.h"
32 #include "llvm/IR/DebugInfoMetadata.h"
33 #include "llvm/IR/Instructions.h"
34 #include "llvm/IR/IntrinsicInst.h"
35 #include "llvm/IR/Metadata.h"
36 #include "llvm/Support/AtomicOrdering.h"
37 using namespace clang;
38 using namespace CodeGen;
39 using namespace llvm::omp;
40 
41 static const VarDecl *getBaseDecl(const Expr *Ref);
42 
43 namespace {
44 /// Lexical scope for OpenMP executable constructs, that handles correct codegen
45 /// for captured expressions.
46 class OMPLexicalScope : public CodeGenFunction::LexicalScope {
47   void emitPreInitStmt(CodeGenFunction &CGF, const OMPExecutableDirective &S) {
48     for (const auto *C : S.clauses()) {
49       if (const auto *CPI = OMPClauseWithPreInit::get(C)) {
50         if (const auto *PreInit =
51                 cast_or_null<DeclStmt>(CPI->getPreInitStmt())) {
52           for (const auto *I : PreInit->decls()) {
53             if (!I->hasAttr<OMPCaptureNoInitAttr>()) {
54               CGF.EmitVarDecl(cast<VarDecl>(*I));
55             } else {
56               CodeGenFunction::AutoVarEmission Emission =
57                   CGF.EmitAutoVarAlloca(cast<VarDecl>(*I));
58               CGF.EmitAutoVarCleanups(Emission);
59             }
60           }
61         }
62       }
63     }
64   }
65   CodeGenFunction::OMPPrivateScope InlinedShareds;
66 
67   static bool isCapturedVar(CodeGenFunction &CGF, const VarDecl *VD) {
68     return CGF.LambdaCaptureFields.lookup(VD) ||
69            (CGF.CapturedStmtInfo && CGF.CapturedStmtInfo->lookup(VD)) ||
70            (CGF.CurCodeDecl && isa<BlockDecl>(CGF.CurCodeDecl) &&
71             cast<BlockDecl>(CGF.CurCodeDecl)->capturesVariable(VD));
72   }
73 
74 public:
75   OMPLexicalScope(
76       CodeGenFunction &CGF, const OMPExecutableDirective &S,
77       const llvm::Optional<OpenMPDirectiveKind> CapturedRegion = llvm::None,
78       const bool EmitPreInitStmt = true)
79       : CodeGenFunction::LexicalScope(CGF, S.getSourceRange()),
80         InlinedShareds(CGF) {
81     if (EmitPreInitStmt)
82       emitPreInitStmt(CGF, S);
83     if (!CapturedRegion.hasValue())
84       return;
85     assert(S.hasAssociatedStmt() &&
86            "Expected associated statement for inlined directive.");
87     const CapturedStmt *CS = S.getCapturedStmt(*CapturedRegion);
88     for (const auto &C : CS->captures()) {
89       if (C.capturesVariable() || C.capturesVariableByCopy()) {
90         auto *VD = C.getCapturedVar();
91         assert(VD == VD->getCanonicalDecl() &&
92                "Canonical decl must be captured.");
93         DeclRefExpr DRE(
94             CGF.getContext(), const_cast<VarDecl *>(VD),
95             isCapturedVar(CGF, VD) || (CGF.CapturedStmtInfo &&
96                                        InlinedShareds.isGlobalVarCaptured(VD)),
97             VD->getType().getNonReferenceType(), VK_LValue, C.getLocation());
98         InlinedShareds.addPrivate(VD, CGF.EmitLValue(&DRE).getAddress(CGF));
99       }
100     }
101     (void)InlinedShareds.Privatize();
102   }
103 };
104 
105 /// Lexical scope for OpenMP parallel construct, that handles correct codegen
106 /// for captured expressions.
107 class OMPParallelScope final : public OMPLexicalScope {
108   bool EmitPreInitStmt(const OMPExecutableDirective &S) {
109     OpenMPDirectiveKind Kind = S.getDirectiveKind();
110     return !(isOpenMPTargetExecutionDirective(Kind) ||
111              isOpenMPLoopBoundSharingDirective(Kind)) &&
112            isOpenMPParallelDirective(Kind);
113   }
114 
115 public:
116   OMPParallelScope(CodeGenFunction &CGF, const OMPExecutableDirective &S)
117       : OMPLexicalScope(CGF, S, /*CapturedRegion=*/llvm::None,
118                         EmitPreInitStmt(S)) {}
119 };
120 
121 /// Lexical scope for OpenMP teams construct, that handles correct codegen
122 /// for captured expressions.
123 class OMPTeamsScope final : public OMPLexicalScope {
124   bool EmitPreInitStmt(const OMPExecutableDirective &S) {
125     OpenMPDirectiveKind Kind = S.getDirectiveKind();
126     return !isOpenMPTargetExecutionDirective(Kind) &&
127            isOpenMPTeamsDirective(Kind);
128   }
129 
130 public:
131   OMPTeamsScope(CodeGenFunction &CGF, const OMPExecutableDirective &S)
132       : OMPLexicalScope(CGF, S, /*CapturedRegion=*/llvm::None,
133                         EmitPreInitStmt(S)) {}
134 };
135 
136 /// Private scope for OpenMP loop-based directives, that supports capturing
137 /// of used expression from loop statement.
138 class OMPLoopScope : public CodeGenFunction::RunCleanupsScope {
139   void emitPreInitStmt(CodeGenFunction &CGF, const OMPLoopBasedDirective &S) {
140     const DeclStmt *PreInits;
141     CodeGenFunction::OMPMapVars PreCondVars;
142     if (auto *LD = dyn_cast<OMPLoopDirective>(&S)) {
143       llvm::DenseSet<const VarDecl *> EmittedAsPrivate;
144       for (const auto *E : LD->counters()) {
145         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
146         EmittedAsPrivate.insert(VD->getCanonicalDecl());
147         (void)PreCondVars.setVarAddr(
148             CGF, VD, CGF.CreateMemTemp(VD->getType().getNonReferenceType()));
149       }
150       // Mark private vars as undefs.
151       for (const auto *C : LD->getClausesOfKind<OMPPrivateClause>()) {
152         for (const Expr *IRef : C->varlists()) {
153           const auto *OrigVD =
154               cast<VarDecl>(cast<DeclRefExpr>(IRef)->getDecl());
155           if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
156             QualType OrigVDTy = OrigVD->getType().getNonReferenceType();
157             (void)PreCondVars.setVarAddr(
158                 CGF, OrigVD,
159                 Address(llvm::UndefValue::get(CGF.ConvertTypeForMem(
160                             CGF.getContext().getPointerType(OrigVDTy))),
161                         CGF.ConvertTypeForMem(OrigVDTy),
162                         CGF.getContext().getDeclAlign(OrigVD)));
163           }
164         }
165       }
166       (void)PreCondVars.apply(CGF);
167       // Emit init, __range and __end variables for C++ range loops.
168       (void)OMPLoopBasedDirective::doForAllLoops(
169           LD->getInnermostCapturedStmt()->getCapturedStmt(),
170           /*TryImperfectlyNestedLoops=*/true, LD->getLoopsNumber(),
171           [&CGF](unsigned Cnt, const Stmt *CurStmt) {
172             if (const auto *CXXFor = dyn_cast<CXXForRangeStmt>(CurStmt)) {
173               if (const Stmt *Init = CXXFor->getInit())
174                 CGF.EmitStmt(Init);
175               CGF.EmitStmt(CXXFor->getRangeStmt());
176               CGF.EmitStmt(CXXFor->getEndStmt());
177             }
178             return false;
179           });
180       PreInits = cast_or_null<DeclStmt>(LD->getPreInits());
181     } else if (const auto *Tile = dyn_cast<OMPTileDirective>(&S)) {
182       PreInits = cast_or_null<DeclStmt>(Tile->getPreInits());
183     } else if (const auto *Unroll = dyn_cast<OMPUnrollDirective>(&S)) {
184       PreInits = cast_or_null<DeclStmt>(Unroll->getPreInits());
185     } else {
186       llvm_unreachable("Unknown loop-based directive kind.");
187     }
188     if (PreInits) {
189       for (const auto *I : PreInits->decls())
190         CGF.EmitVarDecl(cast<VarDecl>(*I));
191     }
192     PreCondVars.restore(CGF);
193   }
194 
195 public:
196   OMPLoopScope(CodeGenFunction &CGF, const OMPLoopBasedDirective &S)
197       : CodeGenFunction::RunCleanupsScope(CGF) {
198     emitPreInitStmt(CGF, S);
199   }
200 };
201 
202 class OMPSimdLexicalScope : public CodeGenFunction::LexicalScope {
203   CodeGenFunction::OMPPrivateScope InlinedShareds;
204 
205   static bool isCapturedVar(CodeGenFunction &CGF, const VarDecl *VD) {
206     return CGF.LambdaCaptureFields.lookup(VD) ||
207            (CGF.CapturedStmtInfo && CGF.CapturedStmtInfo->lookup(VD)) ||
208            (CGF.CurCodeDecl && isa<BlockDecl>(CGF.CurCodeDecl) &&
209             cast<BlockDecl>(CGF.CurCodeDecl)->capturesVariable(VD));
210   }
211 
212 public:
213   OMPSimdLexicalScope(CodeGenFunction &CGF, const OMPExecutableDirective &S)
214       : CodeGenFunction::LexicalScope(CGF, S.getSourceRange()),
215         InlinedShareds(CGF) {
216     for (const auto *C : S.clauses()) {
217       if (const auto *CPI = OMPClauseWithPreInit::get(C)) {
218         if (const auto *PreInit =
219                 cast_or_null<DeclStmt>(CPI->getPreInitStmt())) {
220           for (const auto *I : PreInit->decls()) {
221             if (!I->hasAttr<OMPCaptureNoInitAttr>()) {
222               CGF.EmitVarDecl(cast<VarDecl>(*I));
223             } else {
224               CodeGenFunction::AutoVarEmission Emission =
225                   CGF.EmitAutoVarAlloca(cast<VarDecl>(*I));
226               CGF.EmitAutoVarCleanups(Emission);
227             }
228           }
229         }
230       } else if (const auto *UDP = dyn_cast<OMPUseDevicePtrClause>(C)) {
231         for (const Expr *E : UDP->varlists()) {
232           const Decl *D = cast<DeclRefExpr>(E)->getDecl();
233           if (const auto *OED = dyn_cast<OMPCapturedExprDecl>(D))
234             CGF.EmitVarDecl(*OED);
235         }
236       } else if (const auto *UDP = dyn_cast<OMPUseDeviceAddrClause>(C)) {
237         for (const Expr *E : UDP->varlists()) {
238           const Decl *D = getBaseDecl(E);
239           if (const auto *OED = dyn_cast<OMPCapturedExprDecl>(D))
240             CGF.EmitVarDecl(*OED);
241         }
242       }
243     }
244     if (!isOpenMPSimdDirective(S.getDirectiveKind()))
245       CGF.EmitOMPPrivateClause(S, InlinedShareds);
246     if (const auto *TG = dyn_cast<OMPTaskgroupDirective>(&S)) {
247       if (const Expr *E = TG->getReductionRef())
248         CGF.EmitVarDecl(*cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()));
249     }
250     // Temp copy arrays for inscan reductions should not be emitted as they are
251     // not used in simd only mode.
252     llvm::DenseSet<CanonicalDeclPtr<const Decl>> CopyArrayTemps;
253     for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) {
254       if (C->getModifier() != OMPC_REDUCTION_inscan)
255         continue;
256       for (const Expr *E : C->copy_array_temps())
257         CopyArrayTemps.insert(cast<DeclRefExpr>(E)->getDecl());
258     }
259     const auto *CS = cast_or_null<CapturedStmt>(S.getAssociatedStmt());
260     while (CS) {
261       for (auto &C : CS->captures()) {
262         if (C.capturesVariable() || C.capturesVariableByCopy()) {
263           auto *VD = C.getCapturedVar();
264           if (CopyArrayTemps.contains(VD))
265             continue;
266           assert(VD == VD->getCanonicalDecl() &&
267                  "Canonical decl must be captured.");
268           DeclRefExpr DRE(CGF.getContext(), const_cast<VarDecl *>(VD),
269                           isCapturedVar(CGF, VD) ||
270                               (CGF.CapturedStmtInfo &&
271                                InlinedShareds.isGlobalVarCaptured(VD)),
272                           VD->getType().getNonReferenceType(), VK_LValue,
273                           C.getLocation());
274           InlinedShareds.addPrivate(VD, CGF.EmitLValue(&DRE).getAddress(CGF));
275         }
276       }
277       CS = dyn_cast<CapturedStmt>(CS->getCapturedStmt());
278     }
279     (void)InlinedShareds.Privatize();
280   }
281 };
282 
283 } // namespace
284 
285 static void emitCommonOMPTargetDirective(CodeGenFunction &CGF,
286                                          const OMPExecutableDirective &S,
287                                          const RegionCodeGenTy &CodeGen);
288 
289 LValue CodeGenFunction::EmitOMPSharedLValue(const Expr *E) {
290   if (const auto *OrigDRE = dyn_cast<DeclRefExpr>(E)) {
291     if (const auto *OrigVD = dyn_cast<VarDecl>(OrigDRE->getDecl())) {
292       OrigVD = OrigVD->getCanonicalDecl();
293       bool IsCaptured =
294           LambdaCaptureFields.lookup(OrigVD) ||
295           (CapturedStmtInfo && CapturedStmtInfo->lookup(OrigVD)) ||
296           (CurCodeDecl && isa<BlockDecl>(CurCodeDecl));
297       DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(OrigVD), IsCaptured,
298                       OrigDRE->getType(), VK_LValue, OrigDRE->getExprLoc());
299       return EmitLValue(&DRE);
300     }
301   }
302   return EmitLValue(E);
303 }
304 
305 llvm::Value *CodeGenFunction::getTypeSize(QualType Ty) {
306   ASTContext &C = getContext();
307   llvm::Value *Size = nullptr;
308   auto SizeInChars = C.getTypeSizeInChars(Ty);
309   if (SizeInChars.isZero()) {
310     // getTypeSizeInChars() returns 0 for a VLA.
311     while (const VariableArrayType *VAT = C.getAsVariableArrayType(Ty)) {
312       VlaSizePair VlaSize = getVLASize(VAT);
313       Ty = VlaSize.Type;
314       Size =
315           Size ? Builder.CreateNUWMul(Size, VlaSize.NumElts) : VlaSize.NumElts;
316     }
317     SizeInChars = C.getTypeSizeInChars(Ty);
318     if (SizeInChars.isZero())
319       return llvm::ConstantInt::get(SizeTy, /*V=*/0);
320     return Builder.CreateNUWMul(Size, CGM.getSize(SizeInChars));
321   }
322   return CGM.getSize(SizeInChars);
323 }
324 
325 void CodeGenFunction::GenerateOpenMPCapturedVars(
326     const CapturedStmt &S, SmallVectorImpl<llvm::Value *> &CapturedVars) {
327   const RecordDecl *RD = S.getCapturedRecordDecl();
328   auto CurField = RD->field_begin();
329   auto CurCap = S.captures().begin();
330   for (CapturedStmt::const_capture_init_iterator I = S.capture_init_begin(),
331                                                  E = S.capture_init_end();
332        I != E; ++I, ++CurField, ++CurCap) {
333     if (CurField->hasCapturedVLAType()) {
334       const VariableArrayType *VAT = CurField->getCapturedVLAType();
335       llvm::Value *Val = VLASizeMap[VAT->getSizeExpr()];
336       CapturedVars.push_back(Val);
337     } else if (CurCap->capturesThis()) {
338       CapturedVars.push_back(CXXThisValue);
339     } else if (CurCap->capturesVariableByCopy()) {
340       llvm::Value *CV = EmitLoadOfScalar(EmitLValue(*I), CurCap->getLocation());
341 
342       // If the field is not a pointer, we need to save the actual value
343       // and load it as a void pointer.
344       if (!CurField->getType()->isAnyPointerType()) {
345         ASTContext &Ctx = getContext();
346         Address DstAddr = CreateMemTemp(
347             Ctx.getUIntPtrType(),
348             Twine(CurCap->getCapturedVar()->getName(), ".casted"));
349         LValue DstLV = MakeAddrLValue(DstAddr, Ctx.getUIntPtrType());
350 
351         llvm::Value *SrcAddrVal = EmitScalarConversion(
352             DstAddr.getPointer(), Ctx.getPointerType(Ctx.getUIntPtrType()),
353             Ctx.getPointerType(CurField->getType()), CurCap->getLocation());
354         LValue SrcLV =
355             MakeNaturalAlignAddrLValue(SrcAddrVal, CurField->getType());
356 
357         // Store the value using the source type pointer.
358         EmitStoreThroughLValue(RValue::get(CV), SrcLV);
359 
360         // Load the value using the destination type pointer.
361         CV = EmitLoadOfScalar(DstLV, CurCap->getLocation());
362       }
363       CapturedVars.push_back(CV);
364     } else {
365       assert(CurCap->capturesVariable() && "Expected capture by reference.");
366       CapturedVars.push_back(EmitLValue(*I).getAddress(*this).getPointer());
367     }
368   }
369 }
370 
371 static Address castValueFromUintptr(CodeGenFunction &CGF, SourceLocation Loc,
372                                     QualType DstType, StringRef Name,
373                                     LValue AddrLV) {
374   ASTContext &Ctx = CGF.getContext();
375 
376   llvm::Value *CastedPtr = CGF.EmitScalarConversion(
377       AddrLV.getAddress(CGF).getPointer(), Ctx.getUIntPtrType(),
378       Ctx.getPointerType(DstType), Loc);
379   Address TmpAddr =
380       CGF.MakeNaturalAlignAddrLValue(CastedPtr, DstType).getAddress(CGF);
381   return TmpAddr;
382 }
383 
384 static QualType getCanonicalParamType(ASTContext &C, QualType T) {
385   if (T->isLValueReferenceType())
386     return C.getLValueReferenceType(
387         getCanonicalParamType(C, T.getNonReferenceType()),
388         /*SpelledAsLValue=*/false);
389   if (T->isPointerType())
390     return C.getPointerType(getCanonicalParamType(C, T->getPointeeType()));
391   if (const ArrayType *A = T->getAsArrayTypeUnsafe()) {
392     if (const auto *VLA = dyn_cast<VariableArrayType>(A))
393       return getCanonicalParamType(C, VLA->getElementType());
394     if (!A->isVariablyModifiedType())
395       return C.getCanonicalType(T);
396   }
397   return C.getCanonicalParamType(T);
398 }
399 
400 namespace {
401 /// Contains required data for proper outlined function codegen.
402 struct FunctionOptions {
403   /// Captured statement for which the function is generated.
404   const CapturedStmt *S = nullptr;
405   /// true if cast to/from  UIntPtr is required for variables captured by
406   /// value.
407   const bool UIntPtrCastRequired = true;
408   /// true if only casted arguments must be registered as local args or VLA
409   /// sizes.
410   const bool RegisterCastedArgsOnly = false;
411   /// Name of the generated function.
412   const StringRef FunctionName;
413   /// Location of the non-debug version of the outlined function.
414   SourceLocation Loc;
415   explicit FunctionOptions(const CapturedStmt *S, bool UIntPtrCastRequired,
416                            bool RegisterCastedArgsOnly, StringRef FunctionName,
417                            SourceLocation Loc)
418       : S(S), UIntPtrCastRequired(UIntPtrCastRequired),
419         RegisterCastedArgsOnly(UIntPtrCastRequired && RegisterCastedArgsOnly),
420         FunctionName(FunctionName), Loc(Loc) {}
421 };
422 } // namespace
423 
424 static llvm::Function *emitOutlinedFunctionPrologue(
425     CodeGenFunction &CGF, FunctionArgList &Args,
426     llvm::MapVector<const Decl *, std::pair<const VarDecl *, Address>>
427         &LocalAddrs,
428     llvm::DenseMap<const Decl *, std::pair<const Expr *, llvm::Value *>>
429         &VLASizes,
430     llvm::Value *&CXXThisValue, const FunctionOptions &FO) {
431   const CapturedDecl *CD = FO.S->getCapturedDecl();
432   const RecordDecl *RD = FO.S->getCapturedRecordDecl();
433   assert(CD->hasBody() && "missing CapturedDecl body");
434 
435   CXXThisValue = nullptr;
436   // Build the argument list.
437   CodeGenModule &CGM = CGF.CGM;
438   ASTContext &Ctx = CGM.getContext();
439   FunctionArgList TargetArgs;
440   Args.append(CD->param_begin(),
441               std::next(CD->param_begin(), CD->getContextParamPosition()));
442   TargetArgs.append(
443       CD->param_begin(),
444       std::next(CD->param_begin(), CD->getContextParamPosition()));
445   auto I = FO.S->captures().begin();
446   FunctionDecl *DebugFunctionDecl = nullptr;
447   if (!FO.UIntPtrCastRequired) {
448     FunctionProtoType::ExtProtoInfo EPI;
449     QualType FunctionTy = Ctx.getFunctionType(Ctx.VoidTy, llvm::None, EPI);
450     DebugFunctionDecl = FunctionDecl::Create(
451         Ctx, Ctx.getTranslationUnitDecl(), FO.S->getBeginLoc(),
452         SourceLocation(), DeclarationName(), FunctionTy,
453         Ctx.getTrivialTypeSourceInfo(FunctionTy), SC_Static,
454         /*UsesFPIntrin=*/false, /*isInlineSpecified=*/false,
455         /*hasWrittenPrototype=*/false);
456   }
457   for (const FieldDecl *FD : RD->fields()) {
458     QualType ArgType = FD->getType();
459     IdentifierInfo *II = nullptr;
460     VarDecl *CapVar = nullptr;
461 
462     // If this is a capture by copy and the type is not a pointer, the outlined
463     // function argument type should be uintptr and the value properly casted to
464     // uintptr. This is necessary given that the runtime library is only able to
465     // deal with pointers. We can pass in the same way the VLA type sizes to the
466     // outlined function.
467     if (FO.UIntPtrCastRequired &&
468         ((I->capturesVariableByCopy() && !ArgType->isAnyPointerType()) ||
469          I->capturesVariableArrayType()))
470       ArgType = Ctx.getUIntPtrType();
471 
472     if (I->capturesVariable() || I->capturesVariableByCopy()) {
473       CapVar = I->getCapturedVar();
474       II = CapVar->getIdentifier();
475     } else if (I->capturesThis()) {
476       II = &Ctx.Idents.get("this");
477     } else {
478       assert(I->capturesVariableArrayType());
479       II = &Ctx.Idents.get("vla");
480     }
481     if (ArgType->isVariablyModifiedType())
482       ArgType = getCanonicalParamType(Ctx, ArgType);
483     VarDecl *Arg;
484     if (CapVar && (CapVar->getTLSKind() != clang::VarDecl::TLS_None)) {
485       Arg = ImplicitParamDecl::Create(Ctx, /*DC=*/nullptr, FD->getLocation(),
486                                       II, ArgType,
487                                       ImplicitParamDecl::ThreadPrivateVar);
488     } else if (DebugFunctionDecl && (CapVar || I->capturesThis())) {
489       Arg = ParmVarDecl::Create(
490           Ctx, DebugFunctionDecl,
491           CapVar ? CapVar->getBeginLoc() : FD->getBeginLoc(),
492           CapVar ? CapVar->getLocation() : FD->getLocation(), II, ArgType,
493           /*TInfo=*/nullptr, SC_None, /*DefArg=*/nullptr);
494     } else {
495       Arg = ImplicitParamDecl::Create(Ctx, /*DC=*/nullptr, FD->getLocation(),
496                                       II, ArgType, ImplicitParamDecl::Other);
497     }
498     Args.emplace_back(Arg);
499     // Do not cast arguments if we emit function with non-original types.
500     TargetArgs.emplace_back(
501         FO.UIntPtrCastRequired
502             ? Arg
503             : CGM.getOpenMPRuntime().translateParameter(FD, Arg));
504     ++I;
505   }
506   Args.append(std::next(CD->param_begin(), CD->getContextParamPosition() + 1),
507               CD->param_end());
508   TargetArgs.append(
509       std::next(CD->param_begin(), CD->getContextParamPosition() + 1),
510       CD->param_end());
511 
512   // Create the function declaration.
513   const CGFunctionInfo &FuncInfo =
514       CGM.getTypes().arrangeBuiltinFunctionDeclaration(Ctx.VoidTy, TargetArgs);
515   llvm::FunctionType *FuncLLVMTy = CGM.getTypes().GetFunctionType(FuncInfo);
516 
517   auto *F =
518       llvm::Function::Create(FuncLLVMTy, llvm::GlobalValue::InternalLinkage,
519                              FO.FunctionName, &CGM.getModule());
520   CGM.SetInternalFunctionAttributes(CD, F, FuncInfo);
521   if (CD->isNothrow())
522     F->setDoesNotThrow();
523   F->setDoesNotRecurse();
524 
525   // Always inline the outlined function if optimizations are enabled.
526   if (CGM.getCodeGenOpts().OptimizationLevel != 0) {
527     F->removeFnAttr(llvm::Attribute::NoInline);
528     F->addFnAttr(llvm::Attribute::AlwaysInline);
529   }
530 
531   // Generate the function.
532   CGF.StartFunction(CD, Ctx.VoidTy, F, FuncInfo, TargetArgs,
533                     FO.UIntPtrCastRequired ? FO.Loc : FO.S->getBeginLoc(),
534                     FO.UIntPtrCastRequired ? FO.Loc
535                                            : CD->getBody()->getBeginLoc());
536   unsigned Cnt = CD->getContextParamPosition();
537   I = FO.S->captures().begin();
538   for (const FieldDecl *FD : RD->fields()) {
539     // Do not map arguments if we emit function with non-original types.
540     Address LocalAddr(Address::invalid());
541     if (!FO.UIntPtrCastRequired && Args[Cnt] != TargetArgs[Cnt]) {
542       LocalAddr = CGM.getOpenMPRuntime().getParameterAddress(CGF, Args[Cnt],
543                                                              TargetArgs[Cnt]);
544     } else {
545       LocalAddr = CGF.GetAddrOfLocalVar(Args[Cnt]);
546     }
547     // If we are capturing a pointer by copy we don't need to do anything, just
548     // use the value that we get from the arguments.
549     if (I->capturesVariableByCopy() && FD->getType()->isAnyPointerType()) {
550       const VarDecl *CurVD = I->getCapturedVar();
551       if (!FO.RegisterCastedArgsOnly)
552         LocalAddrs.insert({Args[Cnt], {CurVD, LocalAddr}});
553       ++Cnt;
554       ++I;
555       continue;
556     }
557 
558     LValue ArgLVal = CGF.MakeAddrLValue(LocalAddr, Args[Cnt]->getType(),
559                                         AlignmentSource::Decl);
560     if (FD->hasCapturedVLAType()) {
561       if (FO.UIntPtrCastRequired) {
562         ArgLVal = CGF.MakeAddrLValue(
563             castValueFromUintptr(CGF, I->getLocation(), FD->getType(),
564                                  Args[Cnt]->getName(), ArgLVal),
565             FD->getType(), AlignmentSource::Decl);
566       }
567       llvm::Value *ExprArg = CGF.EmitLoadOfScalar(ArgLVal, I->getLocation());
568       const VariableArrayType *VAT = FD->getCapturedVLAType();
569       VLASizes.try_emplace(Args[Cnt], VAT->getSizeExpr(), ExprArg);
570     } else if (I->capturesVariable()) {
571       const VarDecl *Var = I->getCapturedVar();
572       QualType VarTy = Var->getType();
573       Address ArgAddr = ArgLVal.getAddress(CGF);
574       if (ArgLVal.getType()->isLValueReferenceType()) {
575         ArgAddr = CGF.EmitLoadOfReference(ArgLVal);
576       } else if (!VarTy->isVariablyModifiedType() || !VarTy->isPointerType()) {
577         assert(ArgLVal.getType()->isPointerType());
578         ArgAddr = CGF.EmitLoadOfPointer(
579             ArgAddr, ArgLVal.getType()->castAs<PointerType>());
580       }
581       if (!FO.RegisterCastedArgsOnly) {
582         LocalAddrs.insert(
583             {Args[Cnt], {Var, ArgAddr.withAlignment(Ctx.getDeclAlign(Var))}});
584       }
585     } else if (I->capturesVariableByCopy()) {
586       assert(!FD->getType()->isAnyPointerType() &&
587              "Not expecting a captured pointer.");
588       const VarDecl *Var = I->getCapturedVar();
589       LocalAddrs.insert({Args[Cnt],
590                          {Var, FO.UIntPtrCastRequired
591                                    ? castValueFromUintptr(
592                                          CGF, I->getLocation(), FD->getType(),
593                                          Args[Cnt]->getName(), ArgLVal)
594                                    : ArgLVal.getAddress(CGF)}});
595     } else {
596       // If 'this' is captured, load it into CXXThisValue.
597       assert(I->capturesThis());
598       CXXThisValue = CGF.EmitLoadOfScalar(ArgLVal, I->getLocation());
599       LocalAddrs.insert({Args[Cnt], {nullptr, ArgLVal.getAddress(CGF)}});
600     }
601     ++Cnt;
602     ++I;
603   }
604 
605   return F;
606 }
607 
608 llvm::Function *
609 CodeGenFunction::GenerateOpenMPCapturedStmtFunction(const CapturedStmt &S,
610                                                     SourceLocation Loc) {
611   assert(
612       CapturedStmtInfo &&
613       "CapturedStmtInfo should be set when generating the captured function");
614   const CapturedDecl *CD = S.getCapturedDecl();
615   // Build the argument list.
616   bool NeedWrapperFunction =
617       getDebugInfo() && CGM.getCodeGenOpts().hasReducedDebugInfo();
618   FunctionArgList Args;
619   llvm::MapVector<const Decl *, std::pair<const VarDecl *, Address>> LocalAddrs;
620   llvm::DenseMap<const Decl *, std::pair<const Expr *, llvm::Value *>> VLASizes;
621   SmallString<256> Buffer;
622   llvm::raw_svector_ostream Out(Buffer);
623   Out << CapturedStmtInfo->getHelperName();
624   if (NeedWrapperFunction)
625     Out << "_debug__";
626   FunctionOptions FO(&S, !NeedWrapperFunction, /*RegisterCastedArgsOnly=*/false,
627                      Out.str(), Loc);
628   llvm::Function *F = emitOutlinedFunctionPrologue(*this, Args, LocalAddrs,
629                                                    VLASizes, CXXThisValue, FO);
630   CodeGenFunction::OMPPrivateScope LocalScope(*this);
631   for (const auto &LocalAddrPair : LocalAddrs) {
632     if (LocalAddrPair.second.first) {
633       LocalScope.addPrivate(LocalAddrPair.second.first,
634                             LocalAddrPair.second.second);
635     }
636   }
637   (void)LocalScope.Privatize();
638   for (const auto &VLASizePair : VLASizes)
639     VLASizeMap[VLASizePair.second.first] = VLASizePair.second.second;
640   PGO.assignRegionCounters(GlobalDecl(CD), F);
641   CapturedStmtInfo->EmitBody(*this, CD->getBody());
642   (void)LocalScope.ForceCleanup();
643   FinishFunction(CD->getBodyRBrace());
644   if (!NeedWrapperFunction)
645     return F;
646 
647   FunctionOptions WrapperFO(&S, /*UIntPtrCastRequired=*/true,
648                             /*RegisterCastedArgsOnly=*/true,
649                             CapturedStmtInfo->getHelperName(), Loc);
650   CodeGenFunction WrapperCGF(CGM, /*suppressNewContext=*/true);
651   WrapperCGF.CapturedStmtInfo = CapturedStmtInfo;
652   Args.clear();
653   LocalAddrs.clear();
654   VLASizes.clear();
655   llvm::Function *WrapperF =
656       emitOutlinedFunctionPrologue(WrapperCGF, Args, LocalAddrs, VLASizes,
657                                    WrapperCGF.CXXThisValue, WrapperFO);
658   llvm::SmallVector<llvm::Value *, 4> CallArgs;
659   auto *PI = F->arg_begin();
660   for (const auto *Arg : Args) {
661     llvm::Value *CallArg;
662     auto I = LocalAddrs.find(Arg);
663     if (I != LocalAddrs.end()) {
664       LValue LV = WrapperCGF.MakeAddrLValue(
665           I->second.second,
666           I->second.first ? I->second.first->getType() : Arg->getType(),
667           AlignmentSource::Decl);
668       if (LV.getType()->isAnyComplexType())
669         LV.setAddress(WrapperCGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
670             LV.getAddress(WrapperCGF),
671             PI->getType()->getPointerTo(
672                 LV.getAddress(WrapperCGF).getAddressSpace()),
673             PI->getType()));
674       CallArg = WrapperCGF.EmitLoadOfScalar(LV, S.getBeginLoc());
675     } else {
676       auto EI = VLASizes.find(Arg);
677       if (EI != VLASizes.end()) {
678         CallArg = EI->second.second;
679       } else {
680         LValue LV =
681             WrapperCGF.MakeAddrLValue(WrapperCGF.GetAddrOfLocalVar(Arg),
682                                       Arg->getType(), AlignmentSource::Decl);
683         CallArg = WrapperCGF.EmitLoadOfScalar(LV, S.getBeginLoc());
684       }
685     }
686     CallArgs.emplace_back(WrapperCGF.EmitFromMemory(CallArg, Arg->getType()));
687     ++PI;
688   }
689   CGM.getOpenMPRuntime().emitOutlinedFunctionCall(WrapperCGF, Loc, F, CallArgs);
690   WrapperCGF.FinishFunction();
691   return WrapperF;
692 }
693 
694 //===----------------------------------------------------------------------===//
695 //                              OpenMP Directive Emission
696 //===----------------------------------------------------------------------===//
697 void CodeGenFunction::EmitOMPAggregateAssign(
698     Address DestAddr, Address SrcAddr, QualType OriginalType,
699     const llvm::function_ref<void(Address, Address)> CopyGen) {
700   // Perform element-by-element initialization.
701   QualType ElementTy;
702 
703   // Drill down to the base element type on both arrays.
704   const ArrayType *ArrayTy = OriginalType->getAsArrayTypeUnsafe();
705   llvm::Value *NumElements = emitArrayLength(ArrayTy, ElementTy, DestAddr);
706   SrcAddr = Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType());
707 
708   llvm::Value *SrcBegin = SrcAddr.getPointer();
709   llvm::Value *DestBegin = DestAddr.getPointer();
710   // Cast from pointer to array type to pointer to single element.
711   llvm::Value *DestEnd =
712       Builder.CreateGEP(DestAddr.getElementType(), DestBegin, NumElements);
713   // The basic structure here is a while-do loop.
714   llvm::BasicBlock *BodyBB = createBasicBlock("omp.arraycpy.body");
715   llvm::BasicBlock *DoneBB = createBasicBlock("omp.arraycpy.done");
716   llvm::Value *IsEmpty =
717       Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arraycpy.isempty");
718   Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB);
719 
720   // Enter the loop body, making that address the current address.
721   llvm::BasicBlock *EntryBB = Builder.GetInsertBlock();
722   EmitBlock(BodyBB);
723 
724   CharUnits ElementSize = getContext().getTypeSizeInChars(ElementTy);
725 
726   llvm::PHINode *SrcElementPHI =
727       Builder.CreatePHI(SrcBegin->getType(), 2, "omp.arraycpy.srcElementPast");
728   SrcElementPHI->addIncoming(SrcBegin, EntryBB);
729   Address SrcElementCurrent =
730       Address(SrcElementPHI, SrcAddr.getElementType(),
731               SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize));
732 
733   llvm::PHINode *DestElementPHI = Builder.CreatePHI(
734       DestBegin->getType(), 2, "omp.arraycpy.destElementPast");
735   DestElementPHI->addIncoming(DestBegin, EntryBB);
736   Address DestElementCurrent =
737       Address(DestElementPHI, DestAddr.getElementType(),
738               DestAddr.getAlignment().alignmentOfArrayElement(ElementSize));
739 
740   // Emit copy.
741   CopyGen(DestElementCurrent, SrcElementCurrent);
742 
743   // Shift the address forward by one element.
744   llvm::Value *DestElementNext =
745       Builder.CreateConstGEP1_32(DestAddr.getElementType(), DestElementPHI,
746                                  /*Idx0=*/1, "omp.arraycpy.dest.element");
747   llvm::Value *SrcElementNext =
748       Builder.CreateConstGEP1_32(SrcAddr.getElementType(), SrcElementPHI,
749                                  /*Idx0=*/1, "omp.arraycpy.src.element");
750   // Check whether we've reached the end.
751   llvm::Value *Done =
752       Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done");
753   Builder.CreateCondBr(Done, DoneBB, BodyBB);
754   DestElementPHI->addIncoming(DestElementNext, Builder.GetInsertBlock());
755   SrcElementPHI->addIncoming(SrcElementNext, Builder.GetInsertBlock());
756 
757   // Done.
758   EmitBlock(DoneBB, /*IsFinished=*/true);
759 }
760 
761 void CodeGenFunction::EmitOMPCopy(QualType OriginalType, Address DestAddr,
762                                   Address SrcAddr, const VarDecl *DestVD,
763                                   const VarDecl *SrcVD, const Expr *Copy) {
764   if (OriginalType->isArrayType()) {
765     const auto *BO = dyn_cast<BinaryOperator>(Copy);
766     if (BO && BO->getOpcode() == BO_Assign) {
767       // Perform simple memcpy for simple copying.
768       LValue Dest = MakeAddrLValue(DestAddr, OriginalType);
769       LValue Src = MakeAddrLValue(SrcAddr, OriginalType);
770       EmitAggregateAssign(Dest, Src, OriginalType);
771     } else {
772       // For arrays with complex element types perform element by element
773       // copying.
774       EmitOMPAggregateAssign(
775           DestAddr, SrcAddr, OriginalType,
776           [this, Copy, SrcVD, DestVD](Address DestElement, Address SrcElement) {
777             // Working with the single array element, so have to remap
778             // destination and source variables to corresponding array
779             // elements.
780             CodeGenFunction::OMPPrivateScope Remap(*this);
781             Remap.addPrivate(DestVD, DestElement);
782             Remap.addPrivate(SrcVD, SrcElement);
783             (void)Remap.Privatize();
784             EmitIgnoredExpr(Copy);
785           });
786     }
787   } else {
788     // Remap pseudo source variable to private copy.
789     CodeGenFunction::OMPPrivateScope Remap(*this);
790     Remap.addPrivate(SrcVD, SrcAddr);
791     Remap.addPrivate(DestVD, DestAddr);
792     (void)Remap.Privatize();
793     // Emit copying of the whole variable.
794     EmitIgnoredExpr(Copy);
795   }
796 }
797 
798 bool CodeGenFunction::EmitOMPFirstprivateClause(const OMPExecutableDirective &D,
799                                                 OMPPrivateScope &PrivateScope) {
800   if (!HaveInsertPoint())
801     return false;
802   bool DeviceConstTarget =
803       getLangOpts().OpenMPIsDevice &&
804       isOpenMPTargetExecutionDirective(D.getDirectiveKind());
805   bool FirstprivateIsLastprivate = false;
806   llvm::DenseMap<const VarDecl *, OpenMPLastprivateModifier> Lastprivates;
807   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
808     for (const auto *D : C->varlists())
809       Lastprivates.try_emplace(
810           cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl(),
811           C->getKind());
812   }
813   llvm::DenseSet<const VarDecl *> EmittedAsFirstprivate;
814   llvm::SmallVector<OpenMPDirectiveKind, 4> CaptureRegions;
815   getOpenMPCaptureRegions(CaptureRegions, D.getDirectiveKind());
816   // Force emission of the firstprivate copy if the directive does not emit
817   // outlined function, like omp for, omp simd, omp distribute etc.
818   bool MustEmitFirstprivateCopy =
819       CaptureRegions.size() == 1 && CaptureRegions.back() == OMPD_unknown;
820   for (const auto *C : D.getClausesOfKind<OMPFirstprivateClause>()) {
821     const auto *IRef = C->varlist_begin();
822     const auto *InitsRef = C->inits().begin();
823     for (const Expr *IInit : C->private_copies()) {
824       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
825       bool ThisFirstprivateIsLastprivate =
826           Lastprivates.count(OrigVD->getCanonicalDecl()) > 0;
827       const FieldDecl *FD = CapturedStmtInfo->lookup(OrigVD);
828       const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
829       if (!MustEmitFirstprivateCopy && !ThisFirstprivateIsLastprivate && FD &&
830           !FD->getType()->isReferenceType() &&
831           (!VD || !VD->hasAttr<OMPAllocateDeclAttr>())) {
832         EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl());
833         ++IRef;
834         ++InitsRef;
835         continue;
836       }
837       // Do not emit copy for firstprivate constant variables in target regions,
838       // captured by reference.
839       if (DeviceConstTarget && OrigVD->getType().isConstant(getContext()) &&
840           FD && FD->getType()->isReferenceType() &&
841           (!VD || !VD->hasAttr<OMPAllocateDeclAttr>())) {
842         EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl());
843         ++IRef;
844         ++InitsRef;
845         continue;
846       }
847       FirstprivateIsLastprivate =
848           FirstprivateIsLastprivate || ThisFirstprivateIsLastprivate;
849       if (EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl()).second) {
850         const auto *VDInit =
851             cast<VarDecl>(cast<DeclRefExpr>(*InitsRef)->getDecl());
852         bool IsRegistered;
853         DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(OrigVD),
854                         /*RefersToEnclosingVariableOrCapture=*/FD != nullptr,
855                         (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc());
856         LValue OriginalLVal;
857         if (!FD) {
858           // Check if the firstprivate variable is just a constant value.
859           ConstantEmission CE = tryEmitAsConstant(&DRE);
860           if (CE && !CE.isReference()) {
861             // Constant value, no need to create a copy.
862             ++IRef;
863             ++InitsRef;
864             continue;
865           }
866           if (CE && CE.isReference()) {
867             OriginalLVal = CE.getReferenceLValue(*this, &DRE);
868           } else {
869             assert(!CE && "Expected non-constant firstprivate.");
870             OriginalLVal = EmitLValue(&DRE);
871           }
872         } else {
873           OriginalLVal = EmitLValue(&DRE);
874         }
875         QualType Type = VD->getType();
876         if (Type->isArrayType()) {
877           // Emit VarDecl with copy init for arrays.
878           // Get the address of the original variable captured in current
879           // captured region.
880           AutoVarEmission Emission = EmitAutoVarAlloca(*VD);
881           const Expr *Init = VD->getInit();
882           if (!isa<CXXConstructExpr>(Init) || isTrivialInitializer(Init)) {
883             // Perform simple memcpy.
884             LValue Dest = MakeAddrLValue(Emission.getAllocatedAddress(), Type);
885             EmitAggregateAssign(Dest, OriginalLVal, Type);
886           } else {
887             EmitOMPAggregateAssign(
888                 Emission.getAllocatedAddress(), OriginalLVal.getAddress(*this),
889                 Type,
890                 [this, VDInit, Init](Address DestElement, Address SrcElement) {
891                   // Clean up any temporaries needed by the
892                   // initialization.
893                   RunCleanupsScope InitScope(*this);
894                   // Emit initialization for single element.
895                   setAddrOfLocalVar(VDInit, SrcElement);
896                   EmitAnyExprToMem(Init, DestElement,
897                                    Init->getType().getQualifiers(),
898                                    /*IsInitializer*/ false);
899                   LocalDeclMap.erase(VDInit);
900                 });
901           }
902           EmitAutoVarCleanups(Emission);
903           IsRegistered =
904               PrivateScope.addPrivate(OrigVD, Emission.getAllocatedAddress());
905         } else {
906           Address OriginalAddr = OriginalLVal.getAddress(*this);
907           // Emit private VarDecl with copy init.
908           // Remap temp VDInit variable to the address of the original
909           // variable (for proper handling of captured global variables).
910           setAddrOfLocalVar(VDInit, OriginalAddr);
911           EmitDecl(*VD);
912           LocalDeclMap.erase(VDInit);
913           Address VDAddr = GetAddrOfLocalVar(VD);
914           if (ThisFirstprivateIsLastprivate &&
915               Lastprivates[OrigVD->getCanonicalDecl()] ==
916                   OMPC_LASTPRIVATE_conditional) {
917             // Create/init special variable for lastprivate conditionals.
918             llvm::Value *V =
919                 EmitLoadOfScalar(MakeAddrLValue(VDAddr, (*IRef)->getType(),
920                                                 AlignmentSource::Decl),
921                                  (*IRef)->getExprLoc());
922             VDAddr = CGM.getOpenMPRuntime().emitLastprivateConditionalInit(
923                 *this, OrigVD);
924             EmitStoreOfScalar(V, MakeAddrLValue(VDAddr, (*IRef)->getType(),
925                                                 AlignmentSource::Decl));
926             LocalDeclMap.erase(VD);
927             setAddrOfLocalVar(VD, VDAddr);
928           }
929           IsRegistered = PrivateScope.addPrivate(OrigVD, VDAddr);
930         }
931         assert(IsRegistered &&
932                "firstprivate var already registered as private");
933         // Silence the warning about unused variable.
934         (void)IsRegistered;
935       }
936       ++IRef;
937       ++InitsRef;
938     }
939   }
940   return FirstprivateIsLastprivate && !EmittedAsFirstprivate.empty();
941 }
942 
943 void CodeGenFunction::EmitOMPPrivateClause(
944     const OMPExecutableDirective &D,
945     CodeGenFunction::OMPPrivateScope &PrivateScope) {
946   if (!HaveInsertPoint())
947     return;
948   llvm::DenseSet<const VarDecl *> EmittedAsPrivate;
949   for (const auto *C : D.getClausesOfKind<OMPPrivateClause>()) {
950     auto IRef = C->varlist_begin();
951     for (const Expr *IInit : C->private_copies()) {
952       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
953       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
954         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
955         EmitDecl(*VD);
956         // Emit private VarDecl with copy init.
957         bool IsRegistered =
958             PrivateScope.addPrivate(OrigVD, GetAddrOfLocalVar(VD));
959         assert(IsRegistered && "private var already registered as private");
960         // Silence the warning about unused variable.
961         (void)IsRegistered;
962       }
963       ++IRef;
964     }
965   }
966 }
967 
968 bool CodeGenFunction::EmitOMPCopyinClause(const OMPExecutableDirective &D) {
969   if (!HaveInsertPoint())
970     return false;
971   // threadprivate_var1 = master_threadprivate_var1;
972   // operator=(threadprivate_var2, master_threadprivate_var2);
973   // ...
974   // __kmpc_barrier(&loc, global_tid);
975   llvm::DenseSet<const VarDecl *> CopiedVars;
976   llvm::BasicBlock *CopyBegin = nullptr, *CopyEnd = nullptr;
977   for (const auto *C : D.getClausesOfKind<OMPCopyinClause>()) {
978     auto IRef = C->varlist_begin();
979     auto ISrcRef = C->source_exprs().begin();
980     auto IDestRef = C->destination_exprs().begin();
981     for (const Expr *AssignOp : C->assignment_ops()) {
982       const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
983       QualType Type = VD->getType();
984       if (CopiedVars.insert(VD->getCanonicalDecl()).second) {
985         // Get the address of the master variable. If we are emitting code with
986         // TLS support, the address is passed from the master as field in the
987         // captured declaration.
988         Address MasterAddr = Address::invalid();
989         if (getLangOpts().OpenMPUseTLS &&
990             getContext().getTargetInfo().isTLSSupported()) {
991           assert(CapturedStmtInfo->lookup(VD) &&
992                  "Copyin threadprivates should have been captured!");
993           DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(VD), true,
994                           (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc());
995           MasterAddr = EmitLValue(&DRE).getAddress(*this);
996           LocalDeclMap.erase(VD);
997         } else {
998           MasterAddr =
999               Address(VD->isStaticLocal() ? CGM.getStaticLocalDeclAddress(VD)
1000                                           : CGM.GetAddrOfGlobal(VD),
1001                       CGM.getTypes().ConvertTypeForMem(VD->getType()),
1002                       getContext().getDeclAlign(VD));
1003         }
1004         // Get the address of the threadprivate variable.
1005         Address PrivateAddr = EmitLValue(*IRef).getAddress(*this);
1006         if (CopiedVars.size() == 1) {
1007           // At first check if current thread is a master thread. If it is, no
1008           // need to copy data.
1009           CopyBegin = createBasicBlock("copyin.not.master");
1010           CopyEnd = createBasicBlock("copyin.not.master.end");
1011           // TODO: Avoid ptrtoint conversion.
1012           auto *MasterAddrInt =
1013               Builder.CreatePtrToInt(MasterAddr.getPointer(), CGM.IntPtrTy);
1014           auto *PrivateAddrInt =
1015               Builder.CreatePtrToInt(PrivateAddr.getPointer(), CGM.IntPtrTy);
1016           Builder.CreateCondBr(
1017               Builder.CreateICmpNE(MasterAddrInt, PrivateAddrInt), CopyBegin,
1018               CopyEnd);
1019           EmitBlock(CopyBegin);
1020         }
1021         const auto *SrcVD =
1022             cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl());
1023         const auto *DestVD =
1024             cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
1025         EmitOMPCopy(Type, PrivateAddr, MasterAddr, DestVD, SrcVD, AssignOp);
1026       }
1027       ++IRef;
1028       ++ISrcRef;
1029       ++IDestRef;
1030     }
1031   }
1032   if (CopyEnd) {
1033     // Exit out of copying procedure for non-master thread.
1034     EmitBlock(CopyEnd, /*IsFinished=*/true);
1035     return true;
1036   }
1037   return false;
1038 }
1039 
1040 bool CodeGenFunction::EmitOMPLastprivateClauseInit(
1041     const OMPExecutableDirective &D, OMPPrivateScope &PrivateScope) {
1042   if (!HaveInsertPoint())
1043     return false;
1044   bool HasAtLeastOneLastprivate = false;
1045   llvm::DenseSet<const VarDecl *> SIMDLCVs;
1046   if (isOpenMPSimdDirective(D.getDirectiveKind())) {
1047     const auto *LoopDirective = cast<OMPLoopDirective>(&D);
1048     for (const Expr *C : LoopDirective->counters()) {
1049       SIMDLCVs.insert(
1050           cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl());
1051     }
1052   }
1053   llvm::DenseSet<const VarDecl *> AlreadyEmittedVars;
1054   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
1055     HasAtLeastOneLastprivate = true;
1056     if (isOpenMPTaskLoopDirective(D.getDirectiveKind()) &&
1057         !getLangOpts().OpenMPSimd)
1058       break;
1059     const auto *IRef = C->varlist_begin();
1060     const auto *IDestRef = C->destination_exprs().begin();
1061     for (const Expr *IInit : C->private_copies()) {
1062       // Keep the address of the original variable for future update at the end
1063       // of the loop.
1064       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
1065       // Taskloops do not require additional initialization, it is done in
1066       // runtime support library.
1067       if (AlreadyEmittedVars.insert(OrigVD->getCanonicalDecl()).second) {
1068         const auto *DestVD =
1069             cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
1070         DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(OrigVD),
1071                         /*RefersToEnclosingVariableOrCapture=*/
1072                         CapturedStmtInfo->lookup(OrigVD) != nullptr,
1073                         (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc());
1074         PrivateScope.addPrivate(DestVD, EmitLValue(&DRE).getAddress(*this));
1075         // Check if the variable is also a firstprivate: in this case IInit is
1076         // not generated. Initialization of this variable will happen in codegen
1077         // for 'firstprivate' clause.
1078         if (IInit && !SIMDLCVs.count(OrigVD->getCanonicalDecl())) {
1079           const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl());
1080           Address VDAddr = Address::invalid();
1081           if (C->getKind() == OMPC_LASTPRIVATE_conditional) {
1082             VDAddr = CGM.getOpenMPRuntime().emitLastprivateConditionalInit(
1083                 *this, OrigVD);
1084             setAddrOfLocalVar(VD, VDAddr);
1085           } else {
1086             // Emit private VarDecl with copy init.
1087             EmitDecl(*VD);
1088             VDAddr = GetAddrOfLocalVar(VD);
1089           }
1090           bool IsRegistered = PrivateScope.addPrivate(OrigVD, VDAddr);
1091           assert(IsRegistered &&
1092                  "lastprivate var already registered as private");
1093           (void)IsRegistered;
1094         }
1095       }
1096       ++IRef;
1097       ++IDestRef;
1098     }
1099   }
1100   return HasAtLeastOneLastprivate;
1101 }
1102 
1103 void CodeGenFunction::EmitOMPLastprivateClauseFinal(
1104     const OMPExecutableDirective &D, bool NoFinals,
1105     llvm::Value *IsLastIterCond) {
1106   if (!HaveInsertPoint())
1107     return;
1108   // Emit following code:
1109   // if (<IsLastIterCond>) {
1110   //   orig_var1 = private_orig_var1;
1111   //   ...
1112   //   orig_varn = private_orig_varn;
1113   // }
1114   llvm::BasicBlock *ThenBB = nullptr;
1115   llvm::BasicBlock *DoneBB = nullptr;
1116   if (IsLastIterCond) {
1117     // Emit implicit barrier if at least one lastprivate conditional is found
1118     // and this is not a simd mode.
1119     if (!getLangOpts().OpenMPSimd &&
1120         llvm::any_of(D.getClausesOfKind<OMPLastprivateClause>(),
1121                      [](const OMPLastprivateClause *C) {
1122                        return C->getKind() == OMPC_LASTPRIVATE_conditional;
1123                      })) {
1124       CGM.getOpenMPRuntime().emitBarrierCall(*this, D.getBeginLoc(),
1125                                              OMPD_unknown,
1126                                              /*EmitChecks=*/false,
1127                                              /*ForceSimpleCall=*/true);
1128     }
1129     ThenBB = createBasicBlock(".omp.lastprivate.then");
1130     DoneBB = createBasicBlock(".omp.lastprivate.done");
1131     Builder.CreateCondBr(IsLastIterCond, ThenBB, DoneBB);
1132     EmitBlock(ThenBB);
1133   }
1134   llvm::DenseSet<const VarDecl *> AlreadyEmittedVars;
1135   llvm::DenseMap<const VarDecl *, const Expr *> LoopCountersAndUpdates;
1136   if (const auto *LoopDirective = dyn_cast<OMPLoopDirective>(&D)) {
1137     auto IC = LoopDirective->counters().begin();
1138     for (const Expr *F : LoopDirective->finals()) {
1139       const auto *D =
1140           cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl())->getCanonicalDecl();
1141       if (NoFinals)
1142         AlreadyEmittedVars.insert(D);
1143       else
1144         LoopCountersAndUpdates[D] = F;
1145       ++IC;
1146     }
1147   }
1148   for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) {
1149     auto IRef = C->varlist_begin();
1150     auto ISrcRef = C->source_exprs().begin();
1151     auto IDestRef = C->destination_exprs().begin();
1152     for (const Expr *AssignOp : C->assignment_ops()) {
1153       const auto *PrivateVD =
1154           cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
1155       QualType Type = PrivateVD->getType();
1156       const auto *CanonicalVD = PrivateVD->getCanonicalDecl();
1157       if (AlreadyEmittedVars.insert(CanonicalVD).second) {
1158         // If lastprivate variable is a loop control variable for loop-based
1159         // directive, update its value before copyin back to original
1160         // variable.
1161         if (const Expr *FinalExpr = LoopCountersAndUpdates.lookup(CanonicalVD))
1162           EmitIgnoredExpr(FinalExpr);
1163         const auto *SrcVD =
1164             cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl());
1165         const auto *DestVD =
1166             cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl());
1167         // Get the address of the private variable.
1168         Address PrivateAddr = GetAddrOfLocalVar(PrivateVD);
1169         if (const auto *RefTy = PrivateVD->getType()->getAs<ReferenceType>())
1170           PrivateAddr = Address(
1171               Builder.CreateLoad(PrivateAddr),
1172               CGM.getTypes().ConvertTypeForMem(RefTy->getPointeeType()),
1173               CGM.getNaturalTypeAlignment(RefTy->getPointeeType()));
1174         // Store the last value to the private copy in the last iteration.
1175         if (C->getKind() == OMPC_LASTPRIVATE_conditional)
1176           CGM.getOpenMPRuntime().emitLastprivateConditionalFinalUpdate(
1177               *this, MakeAddrLValue(PrivateAddr, (*IRef)->getType()), PrivateVD,
1178               (*IRef)->getExprLoc());
1179         // Get the address of the original variable.
1180         Address OriginalAddr = GetAddrOfLocalVar(DestVD);
1181         EmitOMPCopy(Type, OriginalAddr, PrivateAddr, DestVD, SrcVD, AssignOp);
1182       }
1183       ++IRef;
1184       ++ISrcRef;
1185       ++IDestRef;
1186     }
1187     if (const Expr *PostUpdate = C->getPostUpdateExpr())
1188       EmitIgnoredExpr(PostUpdate);
1189   }
1190   if (IsLastIterCond)
1191     EmitBlock(DoneBB, /*IsFinished=*/true);
1192 }
1193 
1194 void CodeGenFunction::EmitOMPReductionClauseInit(
1195     const OMPExecutableDirective &D,
1196     CodeGenFunction::OMPPrivateScope &PrivateScope, bool ForInscan) {
1197   if (!HaveInsertPoint())
1198     return;
1199   SmallVector<const Expr *, 4> Shareds;
1200   SmallVector<const Expr *, 4> Privates;
1201   SmallVector<const Expr *, 4> ReductionOps;
1202   SmallVector<const Expr *, 4> LHSs;
1203   SmallVector<const Expr *, 4> RHSs;
1204   OMPTaskDataTy Data;
1205   SmallVector<const Expr *, 4> TaskLHSs;
1206   SmallVector<const Expr *, 4> TaskRHSs;
1207   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
1208     if (ForInscan != (C->getModifier() == OMPC_REDUCTION_inscan))
1209       continue;
1210     Shareds.append(C->varlist_begin(), C->varlist_end());
1211     Privates.append(C->privates().begin(), C->privates().end());
1212     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
1213     LHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
1214     RHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
1215     if (C->getModifier() == OMPC_REDUCTION_task) {
1216       Data.ReductionVars.append(C->privates().begin(), C->privates().end());
1217       Data.ReductionOrigs.append(C->varlist_begin(), C->varlist_end());
1218       Data.ReductionCopies.append(C->privates().begin(), C->privates().end());
1219       Data.ReductionOps.append(C->reduction_ops().begin(),
1220                                C->reduction_ops().end());
1221       TaskLHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
1222       TaskRHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
1223     }
1224   }
1225   ReductionCodeGen RedCG(Shareds, Shareds, Privates, ReductionOps);
1226   unsigned Count = 0;
1227   auto *ILHS = LHSs.begin();
1228   auto *IRHS = RHSs.begin();
1229   auto *IPriv = Privates.begin();
1230   for (const Expr *IRef : Shareds) {
1231     const auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*IPriv)->getDecl());
1232     // Emit private VarDecl with reduction init.
1233     RedCG.emitSharedOrigLValue(*this, Count);
1234     RedCG.emitAggregateType(*this, Count);
1235     AutoVarEmission Emission = EmitAutoVarAlloca(*PrivateVD);
1236     RedCG.emitInitialization(*this, Count, Emission.getAllocatedAddress(),
1237                              RedCG.getSharedLValue(Count).getAddress(*this),
1238                              [&Emission](CodeGenFunction &CGF) {
1239                                CGF.EmitAutoVarInit(Emission);
1240                                return true;
1241                              });
1242     EmitAutoVarCleanups(Emission);
1243     Address BaseAddr = RedCG.adjustPrivateAddress(
1244         *this, Count, Emission.getAllocatedAddress());
1245     bool IsRegistered =
1246         PrivateScope.addPrivate(RedCG.getBaseDecl(Count), BaseAddr);
1247     assert(IsRegistered && "private var already registered as private");
1248     // Silence the warning about unused variable.
1249     (void)IsRegistered;
1250 
1251     const auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
1252     const auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
1253     QualType Type = PrivateVD->getType();
1254     bool isaOMPArraySectionExpr = isa<OMPArraySectionExpr>(IRef);
1255     if (isaOMPArraySectionExpr && Type->isVariablyModifiedType()) {
1256       // Store the address of the original variable associated with the LHS
1257       // implicit variable.
1258       PrivateScope.addPrivate(LHSVD,
1259                               RedCG.getSharedLValue(Count).getAddress(*this));
1260       PrivateScope.addPrivate(RHSVD, GetAddrOfLocalVar(PrivateVD));
1261     } else if ((isaOMPArraySectionExpr && Type->isScalarType()) ||
1262                isa<ArraySubscriptExpr>(IRef)) {
1263       // Store the address of the original variable associated with the LHS
1264       // implicit variable.
1265       PrivateScope.addPrivate(LHSVD,
1266                               RedCG.getSharedLValue(Count).getAddress(*this));
1267       PrivateScope.addPrivate(RHSVD, Builder.CreateElementBitCast(
1268                                          GetAddrOfLocalVar(PrivateVD),
1269                                          ConvertTypeForMem(RHSVD->getType()),
1270                                          "rhs.begin"));
1271     } else {
1272       QualType Type = PrivateVD->getType();
1273       bool IsArray = getContext().getAsArrayType(Type) != nullptr;
1274       Address OriginalAddr = RedCG.getSharedLValue(Count).getAddress(*this);
1275       // Store the address of the original variable associated with the LHS
1276       // implicit variable.
1277       if (IsArray) {
1278         OriginalAddr = Builder.CreateElementBitCast(
1279             OriginalAddr, ConvertTypeForMem(LHSVD->getType()), "lhs.begin");
1280       }
1281       PrivateScope.addPrivate(LHSVD, OriginalAddr);
1282       PrivateScope.addPrivate(
1283           RHSVD, IsArray ? Builder.CreateElementBitCast(
1284                                GetAddrOfLocalVar(PrivateVD),
1285                                ConvertTypeForMem(RHSVD->getType()), "rhs.begin")
1286                          : GetAddrOfLocalVar(PrivateVD));
1287     }
1288     ++ILHS;
1289     ++IRHS;
1290     ++IPriv;
1291     ++Count;
1292   }
1293   if (!Data.ReductionVars.empty()) {
1294     Data.IsReductionWithTaskMod = true;
1295     Data.IsWorksharingReduction =
1296         isOpenMPWorksharingDirective(D.getDirectiveKind());
1297     llvm::Value *ReductionDesc = CGM.getOpenMPRuntime().emitTaskReductionInit(
1298         *this, D.getBeginLoc(), TaskLHSs, TaskRHSs, Data);
1299     const Expr *TaskRedRef = nullptr;
1300     switch (D.getDirectiveKind()) {
1301     case OMPD_parallel:
1302       TaskRedRef = cast<OMPParallelDirective>(D).getTaskReductionRefExpr();
1303       break;
1304     case OMPD_for:
1305       TaskRedRef = cast<OMPForDirective>(D).getTaskReductionRefExpr();
1306       break;
1307     case OMPD_sections:
1308       TaskRedRef = cast<OMPSectionsDirective>(D).getTaskReductionRefExpr();
1309       break;
1310     case OMPD_parallel_for:
1311       TaskRedRef = cast<OMPParallelForDirective>(D).getTaskReductionRefExpr();
1312       break;
1313     case OMPD_parallel_master:
1314       TaskRedRef =
1315           cast<OMPParallelMasterDirective>(D).getTaskReductionRefExpr();
1316       break;
1317     case OMPD_parallel_sections:
1318       TaskRedRef =
1319           cast<OMPParallelSectionsDirective>(D).getTaskReductionRefExpr();
1320       break;
1321     case OMPD_target_parallel:
1322       TaskRedRef =
1323           cast<OMPTargetParallelDirective>(D).getTaskReductionRefExpr();
1324       break;
1325     case OMPD_target_parallel_for:
1326       TaskRedRef =
1327           cast<OMPTargetParallelForDirective>(D).getTaskReductionRefExpr();
1328       break;
1329     case OMPD_distribute_parallel_for:
1330       TaskRedRef =
1331           cast<OMPDistributeParallelForDirective>(D).getTaskReductionRefExpr();
1332       break;
1333     case OMPD_teams_distribute_parallel_for:
1334       TaskRedRef = cast<OMPTeamsDistributeParallelForDirective>(D)
1335                        .getTaskReductionRefExpr();
1336       break;
1337     case OMPD_target_teams_distribute_parallel_for:
1338       TaskRedRef = cast<OMPTargetTeamsDistributeParallelForDirective>(D)
1339                        .getTaskReductionRefExpr();
1340       break;
1341     case OMPD_simd:
1342     case OMPD_for_simd:
1343     case OMPD_section:
1344     case OMPD_single:
1345     case OMPD_master:
1346     case OMPD_critical:
1347     case OMPD_parallel_for_simd:
1348     case OMPD_task:
1349     case OMPD_taskyield:
1350     case OMPD_barrier:
1351     case OMPD_taskwait:
1352     case OMPD_taskgroup:
1353     case OMPD_flush:
1354     case OMPD_depobj:
1355     case OMPD_scan:
1356     case OMPD_ordered:
1357     case OMPD_atomic:
1358     case OMPD_teams:
1359     case OMPD_target:
1360     case OMPD_cancellation_point:
1361     case OMPD_cancel:
1362     case OMPD_target_data:
1363     case OMPD_target_enter_data:
1364     case OMPD_target_exit_data:
1365     case OMPD_taskloop:
1366     case OMPD_taskloop_simd:
1367     case OMPD_master_taskloop:
1368     case OMPD_master_taskloop_simd:
1369     case OMPD_parallel_master_taskloop:
1370     case OMPD_parallel_master_taskloop_simd:
1371     case OMPD_distribute:
1372     case OMPD_target_update:
1373     case OMPD_distribute_parallel_for_simd:
1374     case OMPD_distribute_simd:
1375     case OMPD_target_parallel_for_simd:
1376     case OMPD_target_simd:
1377     case OMPD_teams_distribute:
1378     case OMPD_teams_distribute_simd:
1379     case OMPD_teams_distribute_parallel_for_simd:
1380     case OMPD_target_teams:
1381     case OMPD_target_teams_distribute:
1382     case OMPD_target_teams_distribute_parallel_for_simd:
1383     case OMPD_target_teams_distribute_simd:
1384     case OMPD_declare_target:
1385     case OMPD_end_declare_target:
1386     case OMPD_threadprivate:
1387     case OMPD_allocate:
1388     case OMPD_declare_reduction:
1389     case OMPD_declare_mapper:
1390     case OMPD_declare_simd:
1391     case OMPD_requires:
1392     case OMPD_declare_variant:
1393     case OMPD_begin_declare_variant:
1394     case OMPD_end_declare_variant:
1395     case OMPD_unknown:
1396     default:
1397       llvm_unreachable("Enexpected directive with task reductions.");
1398     }
1399 
1400     const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(TaskRedRef)->getDecl());
1401     EmitVarDecl(*VD);
1402     EmitStoreOfScalar(ReductionDesc, GetAddrOfLocalVar(VD),
1403                       /*Volatile=*/false, TaskRedRef->getType());
1404   }
1405 }
1406 
1407 void CodeGenFunction::EmitOMPReductionClauseFinal(
1408     const OMPExecutableDirective &D, const OpenMPDirectiveKind ReductionKind) {
1409   if (!HaveInsertPoint())
1410     return;
1411   llvm::SmallVector<const Expr *, 8> Privates;
1412   llvm::SmallVector<const Expr *, 8> LHSExprs;
1413   llvm::SmallVector<const Expr *, 8> RHSExprs;
1414   llvm::SmallVector<const Expr *, 8> ReductionOps;
1415   bool HasAtLeastOneReduction = false;
1416   bool IsReductionWithTaskMod = false;
1417   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
1418     // Do not emit for inscan reductions.
1419     if (C->getModifier() == OMPC_REDUCTION_inscan)
1420       continue;
1421     HasAtLeastOneReduction = true;
1422     Privates.append(C->privates().begin(), C->privates().end());
1423     LHSExprs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
1424     RHSExprs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
1425     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
1426     IsReductionWithTaskMod =
1427         IsReductionWithTaskMod || C->getModifier() == OMPC_REDUCTION_task;
1428   }
1429   if (HasAtLeastOneReduction) {
1430     if (IsReductionWithTaskMod) {
1431       CGM.getOpenMPRuntime().emitTaskReductionFini(
1432           *this, D.getBeginLoc(),
1433           isOpenMPWorksharingDirective(D.getDirectiveKind()));
1434     }
1435     bool WithNowait = D.getSingleClause<OMPNowaitClause>() ||
1436                       isOpenMPParallelDirective(D.getDirectiveKind()) ||
1437                       ReductionKind == OMPD_simd;
1438     bool SimpleReduction = ReductionKind == OMPD_simd;
1439     // Emit nowait reduction if nowait clause is present or directive is a
1440     // parallel directive (it always has implicit barrier).
1441     CGM.getOpenMPRuntime().emitReduction(
1442         *this, D.getEndLoc(), Privates, LHSExprs, RHSExprs, ReductionOps,
1443         {WithNowait, SimpleReduction, ReductionKind});
1444   }
1445 }
1446 
1447 static void emitPostUpdateForReductionClause(
1448     CodeGenFunction &CGF, const OMPExecutableDirective &D,
1449     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> CondGen) {
1450   if (!CGF.HaveInsertPoint())
1451     return;
1452   llvm::BasicBlock *DoneBB = nullptr;
1453   for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
1454     if (const Expr *PostUpdate = C->getPostUpdateExpr()) {
1455       if (!DoneBB) {
1456         if (llvm::Value *Cond = CondGen(CGF)) {
1457           // If the first post-update expression is found, emit conditional
1458           // block if it was requested.
1459           llvm::BasicBlock *ThenBB = CGF.createBasicBlock(".omp.reduction.pu");
1460           DoneBB = CGF.createBasicBlock(".omp.reduction.pu.done");
1461           CGF.Builder.CreateCondBr(Cond, ThenBB, DoneBB);
1462           CGF.EmitBlock(ThenBB);
1463         }
1464       }
1465       CGF.EmitIgnoredExpr(PostUpdate);
1466     }
1467   }
1468   if (DoneBB)
1469     CGF.EmitBlock(DoneBB, /*IsFinished=*/true);
1470 }
1471 
1472 namespace {
1473 /// Codegen lambda for appending distribute lower and upper bounds to outlined
1474 /// parallel function. This is necessary for combined constructs such as
1475 /// 'distribute parallel for'
1476 typedef llvm::function_ref<void(CodeGenFunction &,
1477                                 const OMPExecutableDirective &,
1478                                 llvm::SmallVectorImpl<llvm::Value *> &)>
1479     CodeGenBoundParametersTy;
1480 } // anonymous namespace
1481 
1482 static void
1483 checkForLastprivateConditionalUpdate(CodeGenFunction &CGF,
1484                                      const OMPExecutableDirective &S) {
1485   if (CGF.getLangOpts().OpenMP < 50)
1486     return;
1487   llvm::DenseSet<CanonicalDeclPtr<const VarDecl>> PrivateDecls;
1488   for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) {
1489     for (const Expr *Ref : C->varlists()) {
1490       if (!Ref->getType()->isScalarType())
1491         continue;
1492       const auto *DRE = dyn_cast<DeclRefExpr>(Ref->IgnoreParenImpCasts());
1493       if (!DRE)
1494         continue;
1495       PrivateDecls.insert(cast<VarDecl>(DRE->getDecl()));
1496       CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, Ref);
1497     }
1498   }
1499   for (const auto *C : S.getClausesOfKind<OMPLastprivateClause>()) {
1500     for (const Expr *Ref : C->varlists()) {
1501       if (!Ref->getType()->isScalarType())
1502         continue;
1503       const auto *DRE = dyn_cast<DeclRefExpr>(Ref->IgnoreParenImpCasts());
1504       if (!DRE)
1505         continue;
1506       PrivateDecls.insert(cast<VarDecl>(DRE->getDecl()));
1507       CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, Ref);
1508     }
1509   }
1510   for (const auto *C : S.getClausesOfKind<OMPLinearClause>()) {
1511     for (const Expr *Ref : C->varlists()) {
1512       if (!Ref->getType()->isScalarType())
1513         continue;
1514       const auto *DRE = dyn_cast<DeclRefExpr>(Ref->IgnoreParenImpCasts());
1515       if (!DRE)
1516         continue;
1517       PrivateDecls.insert(cast<VarDecl>(DRE->getDecl()));
1518       CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, Ref);
1519     }
1520   }
1521   // Privates should ne analyzed since they are not captured at all.
1522   // Task reductions may be skipped - tasks are ignored.
1523   // Firstprivates do not return value but may be passed by reference - no need
1524   // to check for updated lastprivate conditional.
1525   for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) {
1526     for (const Expr *Ref : C->varlists()) {
1527       if (!Ref->getType()->isScalarType())
1528         continue;
1529       const auto *DRE = dyn_cast<DeclRefExpr>(Ref->IgnoreParenImpCasts());
1530       if (!DRE)
1531         continue;
1532       PrivateDecls.insert(cast<VarDecl>(DRE->getDecl()));
1533     }
1534   }
1535   CGF.CGM.getOpenMPRuntime().checkAndEmitSharedLastprivateConditional(
1536       CGF, S, PrivateDecls);
1537 }
1538 
1539 static void emitCommonOMPParallelDirective(
1540     CodeGenFunction &CGF, const OMPExecutableDirective &S,
1541     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen,
1542     const CodeGenBoundParametersTy &CodeGenBoundParameters) {
1543   const CapturedStmt *CS = S.getCapturedStmt(OMPD_parallel);
1544   llvm::Value *NumThreads = nullptr;
1545   llvm::Function *OutlinedFn =
1546       CGF.CGM.getOpenMPRuntime().emitParallelOutlinedFunction(
1547           S, *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen);
1548   if (const auto *NumThreadsClause = S.getSingleClause<OMPNumThreadsClause>()) {
1549     CodeGenFunction::RunCleanupsScope NumThreadsScope(CGF);
1550     NumThreads = CGF.EmitScalarExpr(NumThreadsClause->getNumThreads(),
1551                                     /*IgnoreResultAssign=*/true);
1552     CGF.CGM.getOpenMPRuntime().emitNumThreadsClause(
1553         CGF, NumThreads, NumThreadsClause->getBeginLoc());
1554   }
1555   if (const auto *ProcBindClause = S.getSingleClause<OMPProcBindClause>()) {
1556     CodeGenFunction::RunCleanupsScope ProcBindScope(CGF);
1557     CGF.CGM.getOpenMPRuntime().emitProcBindClause(
1558         CGF, ProcBindClause->getProcBindKind(), ProcBindClause->getBeginLoc());
1559   }
1560   const Expr *IfCond = nullptr;
1561   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
1562     if (C->getNameModifier() == OMPD_unknown ||
1563         C->getNameModifier() == OMPD_parallel) {
1564       IfCond = C->getCondition();
1565       break;
1566     }
1567   }
1568 
1569   OMPParallelScope Scope(CGF, S);
1570   llvm::SmallVector<llvm::Value *, 16> CapturedVars;
1571   // Combining 'distribute' with 'for' requires sharing each 'distribute' chunk
1572   // lower and upper bounds with the pragma 'for' chunking mechanism.
1573   // The following lambda takes care of appending the lower and upper bound
1574   // parameters when necessary
1575   CodeGenBoundParameters(CGF, S, CapturedVars);
1576   CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
1577   CGF.CGM.getOpenMPRuntime().emitParallelCall(CGF, S.getBeginLoc(), OutlinedFn,
1578                                               CapturedVars, IfCond, NumThreads);
1579 }
1580 
1581 static bool isAllocatableDecl(const VarDecl *VD) {
1582   const VarDecl *CVD = VD->getCanonicalDecl();
1583   if (!CVD->hasAttr<OMPAllocateDeclAttr>())
1584     return false;
1585   const auto *AA = CVD->getAttr<OMPAllocateDeclAttr>();
1586   // Use the default allocation.
1587   return !((AA->getAllocatorType() == OMPAllocateDeclAttr::OMPDefaultMemAlloc ||
1588             AA->getAllocatorType() == OMPAllocateDeclAttr::OMPNullMemAlloc) &&
1589            !AA->getAllocator());
1590 }
1591 
1592 static void emitEmptyBoundParameters(CodeGenFunction &,
1593                                      const OMPExecutableDirective &,
1594                                      llvm::SmallVectorImpl<llvm::Value *> &) {}
1595 
1596 Address CodeGenFunction::OMPBuilderCBHelpers::getAddressOfLocalVariable(
1597     CodeGenFunction &CGF, const VarDecl *VD) {
1598   CodeGenModule &CGM = CGF.CGM;
1599   auto &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
1600 
1601   if (!VD)
1602     return Address::invalid();
1603   const VarDecl *CVD = VD->getCanonicalDecl();
1604   if (!isAllocatableDecl(CVD))
1605     return Address::invalid();
1606   llvm::Value *Size;
1607   CharUnits Align = CGM.getContext().getDeclAlign(CVD);
1608   if (CVD->getType()->isVariablyModifiedType()) {
1609     Size = CGF.getTypeSize(CVD->getType());
1610     // Align the size: ((size + align - 1) / align) * align
1611     Size = CGF.Builder.CreateNUWAdd(
1612         Size, CGM.getSize(Align - CharUnits::fromQuantity(1)));
1613     Size = CGF.Builder.CreateUDiv(Size, CGM.getSize(Align));
1614     Size = CGF.Builder.CreateNUWMul(Size, CGM.getSize(Align));
1615   } else {
1616     CharUnits Sz = CGM.getContext().getTypeSizeInChars(CVD->getType());
1617     Size = CGM.getSize(Sz.alignTo(Align));
1618   }
1619 
1620   const auto *AA = CVD->getAttr<OMPAllocateDeclAttr>();
1621   assert(AA->getAllocator() &&
1622          "Expected allocator expression for non-default allocator.");
1623   llvm::Value *Allocator = CGF.EmitScalarExpr(AA->getAllocator());
1624   // According to the standard, the original allocator type is a enum (integer).
1625   // Convert to pointer type, if required.
1626   if (Allocator->getType()->isIntegerTy())
1627     Allocator = CGF.Builder.CreateIntToPtr(Allocator, CGM.VoidPtrTy);
1628   else if (Allocator->getType()->isPointerTy())
1629     Allocator = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(Allocator,
1630                                                                 CGM.VoidPtrTy);
1631 
1632   llvm::Value *Addr = OMPBuilder.createOMPAlloc(
1633       CGF.Builder, Size, Allocator,
1634       getNameWithSeparators({CVD->getName(), ".void.addr"}, ".", "."));
1635   llvm::CallInst *FreeCI =
1636       OMPBuilder.createOMPFree(CGF.Builder, Addr, Allocator);
1637 
1638   CGF.EHStack.pushCleanup<OMPAllocateCleanupTy>(NormalAndEHCleanup, FreeCI);
1639   Addr = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
1640       Addr,
1641       CGF.ConvertTypeForMem(CGM.getContext().getPointerType(CVD->getType())),
1642       getNameWithSeparators({CVD->getName(), ".addr"}, ".", "."));
1643   return Address(Addr, CGF.ConvertTypeForMem(CVD->getType()), Align);
1644 }
1645 
1646 Address CodeGenFunction::OMPBuilderCBHelpers::getAddrOfThreadPrivate(
1647     CodeGenFunction &CGF, const VarDecl *VD, Address VDAddr,
1648     SourceLocation Loc) {
1649   CodeGenModule &CGM = CGF.CGM;
1650   if (CGM.getLangOpts().OpenMPUseTLS &&
1651       CGM.getContext().getTargetInfo().isTLSSupported())
1652     return VDAddr;
1653 
1654   llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
1655 
1656   llvm::Type *VarTy = VDAddr.getElementType();
1657   llvm::Value *Data =
1658       CGF.Builder.CreatePointerCast(VDAddr.getPointer(), CGM.Int8PtrTy);
1659   llvm::ConstantInt *Size = CGM.getSize(CGM.GetTargetTypeStoreSize(VarTy));
1660   std::string Suffix = getNameWithSeparators({"cache", ""});
1661   llvm::Twine CacheName = Twine(CGM.getMangledName(VD)).concat(Suffix);
1662 
1663   llvm::CallInst *ThreadPrivateCacheCall =
1664       OMPBuilder.createCachedThreadPrivate(CGF.Builder, Data, Size, CacheName);
1665 
1666   return Address(ThreadPrivateCacheCall, CGM.Int8Ty, VDAddr.getAlignment());
1667 }
1668 
1669 std::string CodeGenFunction::OMPBuilderCBHelpers::getNameWithSeparators(
1670     ArrayRef<StringRef> Parts, StringRef FirstSeparator, StringRef Separator) {
1671   SmallString<128> Buffer;
1672   llvm::raw_svector_ostream OS(Buffer);
1673   StringRef Sep = FirstSeparator;
1674   for (StringRef Part : Parts) {
1675     OS << Sep << Part;
1676     Sep = Separator;
1677   }
1678   return OS.str().str();
1679 }
1680 
1681 void CodeGenFunction::OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
1682     CodeGenFunction &CGF, const Stmt *RegionBodyStmt, InsertPointTy AllocaIP,
1683     InsertPointTy CodeGenIP, Twine RegionName) {
1684   CGBuilderTy &Builder = CGF.Builder;
1685   Builder.restoreIP(CodeGenIP);
1686   llvm::BasicBlock *FiniBB = splitBBWithSuffix(Builder, /*CreateBranch=*/false,
1687                                                "." + RegionName + ".after");
1688 
1689   {
1690     OMPBuilderCBHelpers::InlinedRegionBodyRAII IRB(CGF, AllocaIP, *FiniBB);
1691     CGF.EmitStmt(RegionBodyStmt);
1692   }
1693 
1694   if (Builder.saveIP().isSet())
1695     Builder.CreateBr(FiniBB);
1696 }
1697 
1698 void CodeGenFunction::OMPBuilderCBHelpers::EmitOMPOutlinedRegionBody(
1699     CodeGenFunction &CGF, const Stmt *RegionBodyStmt, InsertPointTy AllocaIP,
1700     InsertPointTy CodeGenIP, Twine RegionName) {
1701   CGBuilderTy &Builder = CGF.Builder;
1702   Builder.restoreIP(CodeGenIP);
1703   llvm::BasicBlock *FiniBB = splitBBWithSuffix(Builder, /*CreateBranch=*/false,
1704                                                "." + RegionName + ".after");
1705 
1706   {
1707     OMPBuilderCBHelpers::OutlinedRegionBodyRAII IRB(CGF, AllocaIP, *FiniBB);
1708     CGF.EmitStmt(RegionBodyStmt);
1709   }
1710 
1711   if (Builder.saveIP().isSet())
1712     Builder.CreateBr(FiniBB);
1713 }
1714 
1715 void CodeGenFunction::EmitOMPParallelDirective(const OMPParallelDirective &S) {
1716   if (CGM.getLangOpts().OpenMPIRBuilder) {
1717     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
1718     // Check if we have any if clause associated with the directive.
1719     llvm::Value *IfCond = nullptr;
1720     if (const auto *C = S.getSingleClause<OMPIfClause>())
1721       IfCond = EmitScalarExpr(C->getCondition(),
1722                               /*IgnoreResultAssign=*/true);
1723 
1724     llvm::Value *NumThreads = nullptr;
1725     if (const auto *NumThreadsClause = S.getSingleClause<OMPNumThreadsClause>())
1726       NumThreads = EmitScalarExpr(NumThreadsClause->getNumThreads(),
1727                                   /*IgnoreResultAssign=*/true);
1728 
1729     ProcBindKind ProcBind = OMP_PROC_BIND_default;
1730     if (const auto *ProcBindClause = S.getSingleClause<OMPProcBindClause>())
1731       ProcBind = ProcBindClause->getProcBindKind();
1732 
1733     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
1734 
1735     // The cleanup callback that finalizes all variabels at the given location,
1736     // thus calls destructors etc.
1737     auto FiniCB = [this](InsertPointTy IP) {
1738       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
1739     };
1740 
1741     // Privatization callback that performs appropriate action for
1742     // shared/private/firstprivate/lastprivate/copyin/... variables.
1743     //
1744     // TODO: This defaults to shared right now.
1745     auto PrivCB = [](InsertPointTy AllocaIP, InsertPointTy CodeGenIP,
1746                      llvm::Value &, llvm::Value &Val, llvm::Value *&ReplVal) {
1747       // The next line is appropriate only for variables (Val) with the
1748       // data-sharing attribute "shared".
1749       ReplVal = &Val;
1750 
1751       return CodeGenIP;
1752     };
1753 
1754     const CapturedStmt *CS = S.getCapturedStmt(OMPD_parallel);
1755     const Stmt *ParallelRegionBodyStmt = CS->getCapturedStmt();
1756 
1757     auto BodyGenCB = [&, this](InsertPointTy AllocaIP,
1758                                InsertPointTy CodeGenIP) {
1759       OMPBuilderCBHelpers::EmitOMPOutlinedRegionBody(
1760           *this, ParallelRegionBodyStmt, AllocaIP, CodeGenIP, "parallel");
1761     };
1762 
1763     CGCapturedStmtInfo CGSI(*CS, CR_OpenMP);
1764     CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(*this, &CGSI);
1765     llvm::OpenMPIRBuilder::InsertPointTy AllocaIP(
1766         AllocaInsertPt->getParent(), AllocaInsertPt->getIterator());
1767     Builder.restoreIP(
1768         OMPBuilder.createParallel(Builder, AllocaIP, BodyGenCB, PrivCB, FiniCB,
1769                                   IfCond, NumThreads, ProcBind, S.hasCancel()));
1770     return;
1771   }
1772 
1773   // Emit parallel region as a standalone region.
1774   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
1775     Action.Enter(CGF);
1776     OMPPrivateScope PrivateScope(CGF);
1777     bool Copyins = CGF.EmitOMPCopyinClause(S);
1778     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
1779     if (Copyins) {
1780       // Emit implicit barrier to synchronize threads and avoid data races on
1781       // propagation master's thread values of threadprivate variables to local
1782       // instances of that variables of all other implicit threads.
1783       CGF.CGM.getOpenMPRuntime().emitBarrierCall(
1784           CGF, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
1785           /*ForceSimpleCall=*/true);
1786     }
1787     CGF.EmitOMPPrivateClause(S, PrivateScope);
1788     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
1789     (void)PrivateScope.Privatize();
1790     CGF.EmitStmt(S.getCapturedStmt(OMPD_parallel)->getCapturedStmt());
1791     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel);
1792   };
1793   {
1794     auto LPCRegion =
1795         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
1796     emitCommonOMPParallelDirective(*this, S, OMPD_parallel, CodeGen,
1797                                    emitEmptyBoundParameters);
1798     emitPostUpdateForReductionClause(*this, S,
1799                                      [](CodeGenFunction &) { return nullptr; });
1800   }
1801   // Check for outer lastprivate conditional update.
1802   checkForLastprivateConditionalUpdate(*this, S);
1803 }
1804 
1805 void CodeGenFunction::EmitOMPMetaDirective(const OMPMetaDirective &S) {
1806   EmitStmt(S.getIfStmt());
1807 }
1808 
1809 namespace {
1810 /// RAII to handle scopes for loop transformation directives.
1811 class OMPTransformDirectiveScopeRAII {
1812   OMPLoopScope *Scope = nullptr;
1813   CodeGenFunction::CGCapturedStmtInfo *CGSI = nullptr;
1814   CodeGenFunction::CGCapturedStmtRAII *CapInfoRAII = nullptr;
1815 
1816 public:
1817   OMPTransformDirectiveScopeRAII(CodeGenFunction &CGF, const Stmt *S) {
1818     if (const auto *Dir = dyn_cast<OMPLoopBasedDirective>(S)) {
1819       Scope = new OMPLoopScope(CGF, *Dir);
1820       CGSI = new CodeGenFunction::CGCapturedStmtInfo(CR_OpenMP);
1821       CapInfoRAII = new CodeGenFunction::CGCapturedStmtRAII(CGF, CGSI);
1822     }
1823   }
1824   ~OMPTransformDirectiveScopeRAII() {
1825     if (!Scope)
1826       return;
1827     delete CapInfoRAII;
1828     delete CGSI;
1829     delete Scope;
1830   }
1831 };
1832 } // namespace
1833 
1834 static void emitBody(CodeGenFunction &CGF, const Stmt *S, const Stmt *NextLoop,
1835                      int MaxLevel, int Level = 0) {
1836   assert(Level < MaxLevel && "Too deep lookup during loop body codegen.");
1837   const Stmt *SimplifiedS = S->IgnoreContainers();
1838   if (const auto *CS = dyn_cast<CompoundStmt>(SimplifiedS)) {
1839     PrettyStackTraceLoc CrashInfo(
1840         CGF.getContext().getSourceManager(), CS->getLBracLoc(),
1841         "LLVM IR generation of compound statement ('{}')");
1842 
1843     // Keep track of the current cleanup stack depth, including debug scopes.
1844     CodeGenFunction::LexicalScope Scope(CGF, S->getSourceRange());
1845     for (const Stmt *CurStmt : CS->body())
1846       emitBody(CGF, CurStmt, NextLoop, MaxLevel, Level);
1847     return;
1848   }
1849   if (SimplifiedS == NextLoop) {
1850     if (auto *Dir = dyn_cast<OMPLoopTransformationDirective>(SimplifiedS))
1851       SimplifiedS = Dir->getTransformedStmt();
1852     if (const auto *CanonLoop = dyn_cast<OMPCanonicalLoop>(SimplifiedS))
1853       SimplifiedS = CanonLoop->getLoopStmt();
1854     if (const auto *For = dyn_cast<ForStmt>(SimplifiedS)) {
1855       S = For->getBody();
1856     } else {
1857       assert(isa<CXXForRangeStmt>(SimplifiedS) &&
1858              "Expected canonical for loop or range-based for loop.");
1859       const auto *CXXFor = cast<CXXForRangeStmt>(SimplifiedS);
1860       CGF.EmitStmt(CXXFor->getLoopVarStmt());
1861       S = CXXFor->getBody();
1862     }
1863     if (Level + 1 < MaxLevel) {
1864       NextLoop = OMPLoopDirective::tryToFindNextInnerLoop(
1865           S, /*TryImperfectlyNestedLoops=*/true);
1866       emitBody(CGF, S, NextLoop, MaxLevel, Level + 1);
1867       return;
1868     }
1869   }
1870   CGF.EmitStmt(S);
1871 }
1872 
1873 void CodeGenFunction::EmitOMPLoopBody(const OMPLoopDirective &D,
1874                                       JumpDest LoopExit) {
1875   RunCleanupsScope BodyScope(*this);
1876   // Update counters values on current iteration.
1877   for (const Expr *UE : D.updates())
1878     EmitIgnoredExpr(UE);
1879   // Update the linear variables.
1880   // In distribute directives only loop counters may be marked as linear, no
1881   // need to generate the code for them.
1882   if (!isOpenMPDistributeDirective(D.getDirectiveKind())) {
1883     for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
1884       for (const Expr *UE : C->updates())
1885         EmitIgnoredExpr(UE);
1886     }
1887   }
1888 
1889   // On a continue in the body, jump to the end.
1890   JumpDest Continue = getJumpDestInCurrentScope("omp.body.continue");
1891   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
1892   for (const Expr *E : D.finals_conditions()) {
1893     if (!E)
1894       continue;
1895     // Check that loop counter in non-rectangular nest fits into the iteration
1896     // space.
1897     llvm::BasicBlock *NextBB = createBasicBlock("omp.body.next");
1898     EmitBranchOnBoolExpr(E, NextBB, Continue.getBlock(),
1899                          getProfileCount(D.getBody()));
1900     EmitBlock(NextBB);
1901   }
1902 
1903   OMPPrivateScope InscanScope(*this);
1904   EmitOMPReductionClauseInit(D, InscanScope, /*ForInscan=*/true);
1905   bool IsInscanRegion = InscanScope.Privatize();
1906   if (IsInscanRegion) {
1907     // Need to remember the block before and after scan directive
1908     // to dispatch them correctly depending on the clause used in
1909     // this directive, inclusive or exclusive. For inclusive scan the natural
1910     // order of the blocks is used, for exclusive clause the blocks must be
1911     // executed in reverse order.
1912     OMPBeforeScanBlock = createBasicBlock("omp.before.scan.bb");
1913     OMPAfterScanBlock = createBasicBlock("omp.after.scan.bb");
1914     // No need to allocate inscan exit block, in simd mode it is selected in the
1915     // codegen for the scan directive.
1916     if (D.getDirectiveKind() != OMPD_simd && !getLangOpts().OpenMPSimd)
1917       OMPScanExitBlock = createBasicBlock("omp.exit.inscan.bb");
1918     OMPScanDispatch = createBasicBlock("omp.inscan.dispatch");
1919     EmitBranch(OMPScanDispatch);
1920     EmitBlock(OMPBeforeScanBlock);
1921   }
1922 
1923   // Emit loop variables for C++ range loops.
1924   const Stmt *Body =
1925       D.getInnermostCapturedStmt()->getCapturedStmt()->IgnoreContainers();
1926   // Emit loop body.
1927   emitBody(*this, Body,
1928            OMPLoopBasedDirective::tryToFindNextInnerLoop(
1929                Body, /*TryImperfectlyNestedLoops=*/true),
1930            D.getLoopsNumber());
1931 
1932   // Jump to the dispatcher at the end of the loop body.
1933   if (IsInscanRegion)
1934     EmitBranch(OMPScanExitBlock);
1935 
1936   // The end (updates/cleanups).
1937   EmitBlock(Continue.getBlock());
1938   BreakContinueStack.pop_back();
1939 }
1940 
1941 using EmittedClosureTy = std::pair<llvm::Function *, llvm::Value *>;
1942 
1943 /// Emit a captured statement and return the function as well as its captured
1944 /// closure context.
1945 static EmittedClosureTy emitCapturedStmtFunc(CodeGenFunction &ParentCGF,
1946                                              const CapturedStmt *S) {
1947   LValue CapStruct = ParentCGF.InitCapturedStruct(*S);
1948   CodeGenFunction CGF(ParentCGF.CGM, /*suppressNewContext=*/true);
1949   std::unique_ptr<CodeGenFunction::CGCapturedStmtInfo> CSI =
1950       std::make_unique<CodeGenFunction::CGCapturedStmtInfo>(*S);
1951   CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, CSI.get());
1952   llvm::Function *F = CGF.GenerateCapturedStmtFunction(*S);
1953 
1954   return {F, CapStruct.getPointer(ParentCGF)};
1955 }
1956 
1957 /// Emit a call to a previously captured closure.
1958 static llvm::CallInst *
1959 emitCapturedStmtCall(CodeGenFunction &ParentCGF, EmittedClosureTy Cap,
1960                      llvm::ArrayRef<llvm::Value *> Args) {
1961   // Append the closure context to the argument.
1962   SmallVector<llvm::Value *> EffectiveArgs;
1963   EffectiveArgs.reserve(Args.size() + 1);
1964   llvm::append_range(EffectiveArgs, Args);
1965   EffectiveArgs.push_back(Cap.second);
1966 
1967   return ParentCGF.Builder.CreateCall(Cap.first, EffectiveArgs);
1968 }
1969 
1970 llvm::CanonicalLoopInfo *
1971 CodeGenFunction::EmitOMPCollapsedCanonicalLoopNest(const Stmt *S, int Depth) {
1972   assert(Depth == 1 && "Nested loops with OpenMPIRBuilder not yet implemented");
1973 
1974   // The caller is processing the loop-associated directive processing the \p
1975   // Depth loops nested in \p S. Put the previous pending loop-associated
1976   // directive to the stack. If the current loop-associated directive is a loop
1977   // transformation directive, it will push its generated loops onto the stack
1978   // such that together with the loops left here they form the combined loop
1979   // nest for the parent loop-associated directive.
1980   int ParentExpectedOMPLoopDepth = ExpectedOMPLoopDepth;
1981   ExpectedOMPLoopDepth = Depth;
1982 
1983   EmitStmt(S);
1984   assert(OMPLoopNestStack.size() >= (size_t)Depth && "Found too few loops");
1985 
1986   // The last added loop is the outermost one.
1987   llvm::CanonicalLoopInfo *Result = OMPLoopNestStack.back();
1988 
1989   // Pop the \p Depth loops requested by the call from that stack and restore
1990   // the previous context.
1991   OMPLoopNestStack.pop_back_n(Depth);
1992   ExpectedOMPLoopDepth = ParentExpectedOMPLoopDepth;
1993 
1994   return Result;
1995 }
1996 
1997 void CodeGenFunction::EmitOMPCanonicalLoop(const OMPCanonicalLoop *S) {
1998   const Stmt *SyntacticalLoop = S->getLoopStmt();
1999   if (!getLangOpts().OpenMPIRBuilder) {
2000     // Ignore if OpenMPIRBuilder is not enabled.
2001     EmitStmt(SyntacticalLoop);
2002     return;
2003   }
2004 
2005   LexicalScope ForScope(*this, S->getSourceRange());
2006 
2007   // Emit init statements. The Distance/LoopVar funcs may reference variable
2008   // declarations they contain.
2009   const Stmt *BodyStmt;
2010   if (const auto *For = dyn_cast<ForStmt>(SyntacticalLoop)) {
2011     if (const Stmt *InitStmt = For->getInit())
2012       EmitStmt(InitStmt);
2013     BodyStmt = For->getBody();
2014   } else if (const auto *RangeFor =
2015                  dyn_cast<CXXForRangeStmt>(SyntacticalLoop)) {
2016     if (const DeclStmt *RangeStmt = RangeFor->getRangeStmt())
2017       EmitStmt(RangeStmt);
2018     if (const DeclStmt *BeginStmt = RangeFor->getBeginStmt())
2019       EmitStmt(BeginStmt);
2020     if (const DeclStmt *EndStmt = RangeFor->getEndStmt())
2021       EmitStmt(EndStmt);
2022     if (const DeclStmt *LoopVarStmt = RangeFor->getLoopVarStmt())
2023       EmitStmt(LoopVarStmt);
2024     BodyStmt = RangeFor->getBody();
2025   } else
2026     llvm_unreachable("Expected for-stmt or range-based for-stmt");
2027 
2028   // Emit closure for later use. By-value captures will be captured here.
2029   const CapturedStmt *DistanceFunc = S->getDistanceFunc();
2030   EmittedClosureTy DistanceClosure = emitCapturedStmtFunc(*this, DistanceFunc);
2031   const CapturedStmt *LoopVarFunc = S->getLoopVarFunc();
2032   EmittedClosureTy LoopVarClosure = emitCapturedStmtFunc(*this, LoopVarFunc);
2033 
2034   // Call the distance function to get the number of iterations of the loop to
2035   // come.
2036   QualType LogicalTy = DistanceFunc->getCapturedDecl()
2037                            ->getParam(0)
2038                            ->getType()
2039                            .getNonReferenceType();
2040   Address CountAddr = CreateMemTemp(LogicalTy, ".count.addr");
2041   emitCapturedStmtCall(*this, DistanceClosure, {CountAddr.getPointer()});
2042   llvm::Value *DistVal = Builder.CreateLoad(CountAddr, ".count");
2043 
2044   // Emit the loop structure.
2045   llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
2046   auto BodyGen = [&, this](llvm::OpenMPIRBuilder::InsertPointTy CodeGenIP,
2047                            llvm::Value *IndVar) {
2048     Builder.restoreIP(CodeGenIP);
2049 
2050     // Emit the loop body: Convert the logical iteration number to the loop
2051     // variable and emit the body.
2052     const DeclRefExpr *LoopVarRef = S->getLoopVarRef();
2053     LValue LCVal = EmitLValue(LoopVarRef);
2054     Address LoopVarAddress = LCVal.getAddress(*this);
2055     emitCapturedStmtCall(*this, LoopVarClosure,
2056                          {LoopVarAddress.getPointer(), IndVar});
2057 
2058     RunCleanupsScope BodyScope(*this);
2059     EmitStmt(BodyStmt);
2060   };
2061   llvm::CanonicalLoopInfo *CL =
2062       OMPBuilder.createCanonicalLoop(Builder, BodyGen, DistVal);
2063 
2064   // Finish up the loop.
2065   Builder.restoreIP(CL->getAfterIP());
2066   ForScope.ForceCleanup();
2067 
2068   // Remember the CanonicalLoopInfo for parent AST nodes consuming it.
2069   OMPLoopNestStack.push_back(CL);
2070 }
2071 
2072 void CodeGenFunction::EmitOMPInnerLoop(
2073     const OMPExecutableDirective &S, bool RequiresCleanup, const Expr *LoopCond,
2074     const Expr *IncExpr,
2075     const llvm::function_ref<void(CodeGenFunction &)> BodyGen,
2076     const llvm::function_ref<void(CodeGenFunction &)> PostIncGen) {
2077   auto LoopExit = getJumpDestInCurrentScope("omp.inner.for.end");
2078 
2079   // Start the loop with a block that tests the condition.
2080   auto CondBlock = createBasicBlock("omp.inner.for.cond");
2081   EmitBlock(CondBlock);
2082   const SourceRange R = S.getSourceRange();
2083 
2084   // If attributes are attached, push to the basic block with them.
2085   const auto &OMPED = cast<OMPExecutableDirective>(S);
2086   const CapturedStmt *ICS = OMPED.getInnermostCapturedStmt();
2087   const Stmt *SS = ICS->getCapturedStmt();
2088   const AttributedStmt *AS = dyn_cast_or_null<AttributedStmt>(SS);
2089   OMPLoopNestStack.clear();
2090   if (AS)
2091     LoopStack.push(CondBlock, CGM.getContext(), CGM.getCodeGenOpts(),
2092                    AS->getAttrs(), SourceLocToDebugLoc(R.getBegin()),
2093                    SourceLocToDebugLoc(R.getEnd()));
2094   else
2095     LoopStack.push(CondBlock, SourceLocToDebugLoc(R.getBegin()),
2096                    SourceLocToDebugLoc(R.getEnd()));
2097 
2098   // If there are any cleanups between here and the loop-exit scope,
2099   // create a block to stage a loop exit along.
2100   llvm::BasicBlock *ExitBlock = LoopExit.getBlock();
2101   if (RequiresCleanup)
2102     ExitBlock = createBasicBlock("omp.inner.for.cond.cleanup");
2103 
2104   llvm::BasicBlock *LoopBody = createBasicBlock("omp.inner.for.body");
2105 
2106   // Emit condition.
2107   EmitBranchOnBoolExpr(LoopCond, LoopBody, ExitBlock, getProfileCount(&S));
2108   if (ExitBlock != LoopExit.getBlock()) {
2109     EmitBlock(ExitBlock);
2110     EmitBranchThroughCleanup(LoopExit);
2111   }
2112 
2113   EmitBlock(LoopBody);
2114   incrementProfileCounter(&S);
2115 
2116   // Create a block for the increment.
2117   JumpDest Continue = getJumpDestInCurrentScope("omp.inner.for.inc");
2118   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
2119 
2120   BodyGen(*this);
2121 
2122   // Emit "IV = IV + 1" and a back-edge to the condition block.
2123   EmitBlock(Continue.getBlock());
2124   EmitIgnoredExpr(IncExpr);
2125   PostIncGen(*this);
2126   BreakContinueStack.pop_back();
2127   EmitBranch(CondBlock);
2128   LoopStack.pop();
2129   // Emit the fall-through block.
2130   EmitBlock(LoopExit.getBlock());
2131 }
2132 
2133 bool CodeGenFunction::EmitOMPLinearClauseInit(const OMPLoopDirective &D) {
2134   if (!HaveInsertPoint())
2135     return false;
2136   // Emit inits for the linear variables.
2137   bool HasLinears = false;
2138   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
2139     for (const Expr *Init : C->inits()) {
2140       HasLinears = true;
2141       const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(Init)->getDecl());
2142       if (const auto *Ref =
2143               dyn_cast<DeclRefExpr>(VD->getInit()->IgnoreImpCasts())) {
2144         AutoVarEmission Emission = EmitAutoVarAlloca(*VD);
2145         const auto *OrigVD = cast<VarDecl>(Ref->getDecl());
2146         DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(OrigVD),
2147                         CapturedStmtInfo->lookup(OrigVD) != nullptr,
2148                         VD->getInit()->getType(), VK_LValue,
2149                         VD->getInit()->getExprLoc());
2150         EmitExprAsInit(
2151             &DRE, VD,
2152             MakeAddrLValue(Emission.getAllocatedAddress(), VD->getType()),
2153             /*capturedByInit=*/false);
2154         EmitAutoVarCleanups(Emission);
2155       } else {
2156         EmitVarDecl(*VD);
2157       }
2158     }
2159     // Emit the linear steps for the linear clauses.
2160     // If a step is not constant, it is pre-calculated before the loop.
2161     if (const auto *CS = cast_or_null<BinaryOperator>(C->getCalcStep()))
2162       if (const auto *SaveRef = cast<DeclRefExpr>(CS->getLHS())) {
2163         EmitVarDecl(*cast<VarDecl>(SaveRef->getDecl()));
2164         // Emit calculation of the linear step.
2165         EmitIgnoredExpr(CS);
2166       }
2167   }
2168   return HasLinears;
2169 }
2170 
2171 void CodeGenFunction::EmitOMPLinearClauseFinal(
2172     const OMPLoopDirective &D,
2173     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> CondGen) {
2174   if (!HaveInsertPoint())
2175     return;
2176   llvm::BasicBlock *DoneBB = nullptr;
2177   // Emit the final values of the linear variables.
2178   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
2179     auto IC = C->varlist_begin();
2180     for (const Expr *F : C->finals()) {
2181       if (!DoneBB) {
2182         if (llvm::Value *Cond = CondGen(*this)) {
2183           // If the first post-update expression is found, emit conditional
2184           // block if it was requested.
2185           llvm::BasicBlock *ThenBB = createBasicBlock(".omp.linear.pu");
2186           DoneBB = createBasicBlock(".omp.linear.pu.done");
2187           Builder.CreateCondBr(Cond, ThenBB, DoneBB);
2188           EmitBlock(ThenBB);
2189         }
2190       }
2191       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl());
2192       DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(OrigVD),
2193                       CapturedStmtInfo->lookup(OrigVD) != nullptr,
2194                       (*IC)->getType(), VK_LValue, (*IC)->getExprLoc());
2195       Address OrigAddr = EmitLValue(&DRE).getAddress(*this);
2196       CodeGenFunction::OMPPrivateScope VarScope(*this);
2197       VarScope.addPrivate(OrigVD, OrigAddr);
2198       (void)VarScope.Privatize();
2199       EmitIgnoredExpr(F);
2200       ++IC;
2201     }
2202     if (const Expr *PostUpdate = C->getPostUpdateExpr())
2203       EmitIgnoredExpr(PostUpdate);
2204   }
2205   if (DoneBB)
2206     EmitBlock(DoneBB, /*IsFinished=*/true);
2207 }
2208 
2209 static void emitAlignedClause(CodeGenFunction &CGF,
2210                               const OMPExecutableDirective &D) {
2211   if (!CGF.HaveInsertPoint())
2212     return;
2213   for (const auto *Clause : D.getClausesOfKind<OMPAlignedClause>()) {
2214     llvm::APInt ClauseAlignment(64, 0);
2215     if (const Expr *AlignmentExpr = Clause->getAlignment()) {
2216       auto *AlignmentCI =
2217           cast<llvm::ConstantInt>(CGF.EmitScalarExpr(AlignmentExpr));
2218       ClauseAlignment = AlignmentCI->getValue();
2219     }
2220     for (const Expr *E : Clause->varlists()) {
2221       llvm::APInt Alignment(ClauseAlignment);
2222       if (Alignment == 0) {
2223         // OpenMP [2.8.1, Description]
2224         // If no optional parameter is specified, implementation-defined default
2225         // alignments for SIMD instructions on the target platforms are assumed.
2226         Alignment =
2227             CGF.getContext()
2228                 .toCharUnitsFromBits(CGF.getContext().getOpenMPDefaultSimdAlign(
2229                     E->getType()->getPointeeType()))
2230                 .getQuantity();
2231       }
2232       assert((Alignment == 0 || Alignment.isPowerOf2()) &&
2233              "alignment is not power of 2");
2234       if (Alignment != 0) {
2235         llvm::Value *PtrValue = CGF.EmitScalarExpr(E);
2236         CGF.emitAlignmentAssumption(
2237             PtrValue, E, /*No second loc needed*/ SourceLocation(),
2238             llvm::ConstantInt::get(CGF.getLLVMContext(), Alignment));
2239       }
2240     }
2241   }
2242 }
2243 
2244 void CodeGenFunction::EmitOMPPrivateLoopCounters(
2245     const OMPLoopDirective &S, CodeGenFunction::OMPPrivateScope &LoopScope) {
2246   if (!HaveInsertPoint())
2247     return;
2248   auto I = S.private_counters().begin();
2249   for (const Expr *E : S.counters()) {
2250     const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2251     const auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl());
2252     // Emit var without initialization.
2253     AutoVarEmission VarEmission = EmitAutoVarAlloca(*PrivateVD);
2254     EmitAutoVarCleanups(VarEmission);
2255     LocalDeclMap.erase(PrivateVD);
2256     (void)LoopScope.addPrivate(VD, VarEmission.getAllocatedAddress());
2257     if (LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD) ||
2258         VD->hasGlobalStorage()) {
2259       DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(VD),
2260                       LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD),
2261                       E->getType(), VK_LValue, E->getExprLoc());
2262       (void)LoopScope.addPrivate(PrivateVD, EmitLValue(&DRE).getAddress(*this));
2263     } else {
2264       (void)LoopScope.addPrivate(PrivateVD, VarEmission.getAllocatedAddress());
2265     }
2266     ++I;
2267   }
2268   // Privatize extra loop counters used in loops for ordered(n) clauses.
2269   for (const auto *C : S.getClausesOfKind<OMPOrderedClause>()) {
2270     if (!C->getNumForLoops())
2271       continue;
2272     for (unsigned I = S.getLoopsNumber(), E = C->getLoopNumIterations().size();
2273          I < E; ++I) {
2274       const auto *DRE = cast<DeclRefExpr>(C->getLoopCounter(I));
2275       const auto *VD = cast<VarDecl>(DRE->getDecl());
2276       // Override only those variables that can be captured to avoid re-emission
2277       // of the variables declared within the loops.
2278       if (DRE->refersToEnclosingVariableOrCapture()) {
2279         (void)LoopScope.addPrivate(
2280             VD, CreateMemTemp(DRE->getType(), VD->getName()));
2281       }
2282     }
2283   }
2284 }
2285 
2286 static void emitPreCond(CodeGenFunction &CGF, const OMPLoopDirective &S,
2287                         const Expr *Cond, llvm::BasicBlock *TrueBlock,
2288                         llvm::BasicBlock *FalseBlock, uint64_t TrueCount) {
2289   if (!CGF.HaveInsertPoint())
2290     return;
2291   {
2292     CodeGenFunction::OMPPrivateScope PreCondScope(CGF);
2293     CGF.EmitOMPPrivateLoopCounters(S, PreCondScope);
2294     (void)PreCondScope.Privatize();
2295     // Get initial values of real counters.
2296     for (const Expr *I : S.inits()) {
2297       CGF.EmitIgnoredExpr(I);
2298     }
2299   }
2300   // Create temp loop control variables with their init values to support
2301   // non-rectangular loops.
2302   CodeGenFunction::OMPMapVars PreCondVars;
2303   for (const Expr *E : S.dependent_counters()) {
2304     if (!E)
2305       continue;
2306     assert(!E->getType().getNonReferenceType()->isRecordType() &&
2307            "dependent counter must not be an iterator.");
2308     const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2309     Address CounterAddr =
2310         CGF.CreateMemTemp(VD->getType().getNonReferenceType());
2311     (void)PreCondVars.setVarAddr(CGF, VD, CounterAddr);
2312   }
2313   (void)PreCondVars.apply(CGF);
2314   for (const Expr *E : S.dependent_inits()) {
2315     if (!E)
2316       continue;
2317     CGF.EmitIgnoredExpr(E);
2318   }
2319   // Check that loop is executed at least one time.
2320   CGF.EmitBranchOnBoolExpr(Cond, TrueBlock, FalseBlock, TrueCount);
2321   PreCondVars.restore(CGF);
2322 }
2323 
2324 void CodeGenFunction::EmitOMPLinearClause(
2325     const OMPLoopDirective &D, CodeGenFunction::OMPPrivateScope &PrivateScope) {
2326   if (!HaveInsertPoint())
2327     return;
2328   llvm::DenseSet<const VarDecl *> SIMDLCVs;
2329   if (isOpenMPSimdDirective(D.getDirectiveKind())) {
2330     const auto *LoopDirective = cast<OMPLoopDirective>(&D);
2331     for (const Expr *C : LoopDirective->counters()) {
2332       SIMDLCVs.insert(
2333           cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl());
2334     }
2335   }
2336   for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) {
2337     auto CurPrivate = C->privates().begin();
2338     for (const Expr *E : C->varlists()) {
2339       const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
2340       const auto *PrivateVD =
2341           cast<VarDecl>(cast<DeclRefExpr>(*CurPrivate)->getDecl());
2342       if (!SIMDLCVs.count(VD->getCanonicalDecl())) {
2343         // Emit private VarDecl with copy init.
2344         EmitVarDecl(*PrivateVD);
2345         bool IsRegistered =
2346             PrivateScope.addPrivate(VD, GetAddrOfLocalVar(PrivateVD));
2347         assert(IsRegistered && "linear var already registered as private");
2348         // Silence the warning about unused variable.
2349         (void)IsRegistered;
2350       } else {
2351         EmitVarDecl(*PrivateVD);
2352       }
2353       ++CurPrivate;
2354     }
2355   }
2356 }
2357 
2358 static void emitSimdlenSafelenClause(CodeGenFunction &CGF,
2359                                      const OMPExecutableDirective &D) {
2360   if (!CGF.HaveInsertPoint())
2361     return;
2362   if (const auto *C = D.getSingleClause<OMPSimdlenClause>()) {
2363     RValue Len = CGF.EmitAnyExpr(C->getSimdlen(), AggValueSlot::ignored(),
2364                                  /*ignoreResult=*/true);
2365     auto *Val = cast<llvm::ConstantInt>(Len.getScalarVal());
2366     CGF.LoopStack.setVectorizeWidth(Val->getZExtValue());
2367     // In presence of finite 'safelen', it may be unsafe to mark all
2368     // the memory instructions parallel, because loop-carried
2369     // dependences of 'safelen' iterations are possible.
2370     CGF.LoopStack.setParallel(!D.getSingleClause<OMPSafelenClause>());
2371   } else if (const auto *C = D.getSingleClause<OMPSafelenClause>()) {
2372     RValue Len = CGF.EmitAnyExpr(C->getSafelen(), AggValueSlot::ignored(),
2373                                  /*ignoreResult=*/true);
2374     auto *Val = cast<llvm::ConstantInt>(Len.getScalarVal());
2375     CGF.LoopStack.setVectorizeWidth(Val->getZExtValue());
2376     // In presence of finite 'safelen', it may be unsafe to mark all
2377     // the memory instructions parallel, because loop-carried
2378     // dependences of 'safelen' iterations are possible.
2379     CGF.LoopStack.setParallel(/*Enable=*/false);
2380   }
2381 }
2382 
2383 void CodeGenFunction::EmitOMPSimdInit(const OMPLoopDirective &D) {
2384   // Walk clauses and process safelen/lastprivate.
2385   LoopStack.setParallel(/*Enable=*/true);
2386   LoopStack.setVectorizeEnable();
2387   emitSimdlenSafelenClause(*this, D);
2388   if (const auto *C = D.getSingleClause<OMPOrderClause>())
2389     if (C->getKind() == OMPC_ORDER_concurrent)
2390       LoopStack.setParallel(/*Enable=*/true);
2391   if ((D.getDirectiveKind() == OMPD_simd ||
2392        (getLangOpts().OpenMPSimd &&
2393         isOpenMPSimdDirective(D.getDirectiveKind()))) &&
2394       llvm::any_of(D.getClausesOfKind<OMPReductionClause>(),
2395                    [](const OMPReductionClause *C) {
2396                      return C->getModifier() == OMPC_REDUCTION_inscan;
2397                    }))
2398     // Disable parallel access in case of prefix sum.
2399     LoopStack.setParallel(/*Enable=*/false);
2400 }
2401 
2402 void CodeGenFunction::EmitOMPSimdFinal(
2403     const OMPLoopDirective &D,
2404     const llvm::function_ref<llvm::Value *(CodeGenFunction &)> CondGen) {
2405   if (!HaveInsertPoint())
2406     return;
2407   llvm::BasicBlock *DoneBB = nullptr;
2408   auto IC = D.counters().begin();
2409   auto IPC = D.private_counters().begin();
2410   for (const Expr *F : D.finals()) {
2411     const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>((*IC))->getDecl());
2412     const auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>((*IPC))->getDecl());
2413     const auto *CED = dyn_cast<OMPCapturedExprDecl>(OrigVD);
2414     if (LocalDeclMap.count(OrigVD) || CapturedStmtInfo->lookup(OrigVD) ||
2415         OrigVD->hasGlobalStorage() || CED) {
2416       if (!DoneBB) {
2417         if (llvm::Value *Cond = CondGen(*this)) {
2418           // If the first post-update expression is found, emit conditional
2419           // block if it was requested.
2420           llvm::BasicBlock *ThenBB = createBasicBlock(".omp.final.then");
2421           DoneBB = createBasicBlock(".omp.final.done");
2422           Builder.CreateCondBr(Cond, ThenBB, DoneBB);
2423           EmitBlock(ThenBB);
2424         }
2425       }
2426       Address OrigAddr = Address::invalid();
2427       if (CED) {
2428         OrigAddr =
2429             EmitLValue(CED->getInit()->IgnoreImpCasts()).getAddress(*this);
2430       } else {
2431         DeclRefExpr DRE(getContext(), const_cast<VarDecl *>(PrivateVD),
2432                         /*RefersToEnclosingVariableOrCapture=*/false,
2433                         (*IPC)->getType(), VK_LValue, (*IPC)->getExprLoc());
2434         OrigAddr = EmitLValue(&DRE).getAddress(*this);
2435       }
2436       OMPPrivateScope VarScope(*this);
2437       VarScope.addPrivate(OrigVD, OrigAddr);
2438       (void)VarScope.Privatize();
2439       EmitIgnoredExpr(F);
2440     }
2441     ++IC;
2442     ++IPC;
2443   }
2444   if (DoneBB)
2445     EmitBlock(DoneBB, /*IsFinished=*/true);
2446 }
2447 
2448 static void emitOMPLoopBodyWithStopPoint(CodeGenFunction &CGF,
2449                                          const OMPLoopDirective &S,
2450                                          CodeGenFunction::JumpDest LoopExit) {
2451   CGF.EmitOMPLoopBody(S, LoopExit);
2452   CGF.EmitStopPoint(&S);
2453 }
2454 
2455 /// Emit a helper variable and return corresponding lvalue.
2456 static LValue EmitOMPHelperVar(CodeGenFunction &CGF,
2457                                const DeclRefExpr *Helper) {
2458   auto VDecl = cast<VarDecl>(Helper->getDecl());
2459   CGF.EmitVarDecl(*VDecl);
2460   return CGF.EmitLValue(Helper);
2461 }
2462 
2463 static void emitCommonSimdLoop(CodeGenFunction &CGF, const OMPLoopDirective &S,
2464                                const RegionCodeGenTy &SimdInitGen,
2465                                const RegionCodeGenTy &BodyCodeGen) {
2466   auto &&ThenGen = [&S, &SimdInitGen, &BodyCodeGen](CodeGenFunction &CGF,
2467                                                     PrePostActionTy &) {
2468     CGOpenMPRuntime::NontemporalDeclsRAII NontemporalsRegion(CGF.CGM, S);
2469     CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
2470     SimdInitGen(CGF);
2471 
2472     BodyCodeGen(CGF);
2473   };
2474   auto &&ElseGen = [&BodyCodeGen](CodeGenFunction &CGF, PrePostActionTy &) {
2475     CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
2476     CGF.LoopStack.setVectorizeEnable(/*Enable=*/false);
2477 
2478     BodyCodeGen(CGF);
2479   };
2480   const Expr *IfCond = nullptr;
2481   if (isOpenMPSimdDirective(S.getDirectiveKind())) {
2482     for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
2483       if (CGF.getLangOpts().OpenMP >= 50 &&
2484           (C->getNameModifier() == OMPD_unknown ||
2485            C->getNameModifier() == OMPD_simd)) {
2486         IfCond = C->getCondition();
2487         break;
2488       }
2489     }
2490   }
2491   if (IfCond) {
2492     CGF.CGM.getOpenMPRuntime().emitIfClause(CGF, IfCond, ThenGen, ElseGen);
2493   } else {
2494     RegionCodeGenTy ThenRCG(ThenGen);
2495     ThenRCG(CGF);
2496   }
2497 }
2498 
2499 static void emitOMPSimdRegion(CodeGenFunction &CGF, const OMPLoopDirective &S,
2500                               PrePostActionTy &Action) {
2501   Action.Enter(CGF);
2502   assert(isOpenMPSimdDirective(S.getDirectiveKind()) &&
2503          "Expected simd directive");
2504   OMPLoopScope PreInitScope(CGF, S);
2505   // if (PreCond) {
2506   //   for (IV in 0..LastIteration) BODY;
2507   //   <Final counter/linear vars updates>;
2508   // }
2509   //
2510   if (isOpenMPDistributeDirective(S.getDirectiveKind()) ||
2511       isOpenMPWorksharingDirective(S.getDirectiveKind()) ||
2512       isOpenMPTaskLoopDirective(S.getDirectiveKind())) {
2513     (void)EmitOMPHelperVar(CGF, cast<DeclRefExpr>(S.getLowerBoundVariable()));
2514     (void)EmitOMPHelperVar(CGF, cast<DeclRefExpr>(S.getUpperBoundVariable()));
2515   }
2516 
2517   // Emit: if (PreCond) - begin.
2518   // If the condition constant folds and can be elided, avoid emitting the
2519   // whole loop.
2520   bool CondConstant;
2521   llvm::BasicBlock *ContBlock = nullptr;
2522   if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
2523     if (!CondConstant)
2524       return;
2525   } else {
2526     llvm::BasicBlock *ThenBlock = CGF.createBasicBlock("simd.if.then");
2527     ContBlock = CGF.createBasicBlock("simd.if.end");
2528     emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock,
2529                 CGF.getProfileCount(&S));
2530     CGF.EmitBlock(ThenBlock);
2531     CGF.incrementProfileCounter(&S);
2532   }
2533 
2534   // Emit the loop iteration variable.
2535   const Expr *IVExpr = S.getIterationVariable();
2536   const auto *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl());
2537   CGF.EmitVarDecl(*IVDecl);
2538   CGF.EmitIgnoredExpr(S.getInit());
2539 
2540   // Emit the iterations count variable.
2541   // If it is not a variable, Sema decided to calculate iterations count on
2542   // each iteration (e.g., it is foldable into a constant).
2543   if (const auto *LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
2544     CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
2545     // Emit calculation of the iterations count.
2546     CGF.EmitIgnoredExpr(S.getCalcLastIteration());
2547   }
2548 
2549   emitAlignedClause(CGF, S);
2550   (void)CGF.EmitOMPLinearClauseInit(S);
2551   {
2552     CodeGenFunction::OMPPrivateScope LoopScope(CGF);
2553     CGF.EmitOMPPrivateLoopCounters(S, LoopScope);
2554     CGF.EmitOMPLinearClause(S, LoopScope);
2555     CGF.EmitOMPPrivateClause(S, LoopScope);
2556     CGF.EmitOMPReductionClauseInit(S, LoopScope);
2557     CGOpenMPRuntime::LastprivateConditionalRAII LPCRegion(
2558         CGF, S, CGF.EmitLValue(S.getIterationVariable()));
2559     bool HasLastprivateClause = CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
2560     (void)LoopScope.Privatize();
2561     if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
2562       CGF.CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(CGF, S);
2563 
2564     emitCommonSimdLoop(
2565         CGF, S,
2566         [&S](CodeGenFunction &CGF, PrePostActionTy &) {
2567           CGF.EmitOMPSimdInit(S);
2568         },
2569         [&S, &LoopScope](CodeGenFunction &CGF, PrePostActionTy &) {
2570           CGF.EmitOMPInnerLoop(
2571               S, LoopScope.requiresCleanups(), S.getCond(), S.getInc(),
2572               [&S](CodeGenFunction &CGF) {
2573                 emitOMPLoopBodyWithStopPoint(CGF, S,
2574                                              CodeGenFunction::JumpDest());
2575               },
2576               [](CodeGenFunction &) {});
2577         });
2578     CGF.EmitOMPSimdFinal(S, [](CodeGenFunction &) { return nullptr; });
2579     // Emit final copy of the lastprivate variables at the end of loops.
2580     if (HasLastprivateClause)
2581       CGF.EmitOMPLastprivateClauseFinal(S, /*NoFinals=*/true);
2582     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_simd);
2583     emitPostUpdateForReductionClause(CGF, S,
2584                                      [](CodeGenFunction &) { return nullptr; });
2585   }
2586   CGF.EmitOMPLinearClauseFinal(S, [](CodeGenFunction &) { return nullptr; });
2587   // Emit: if (PreCond) - end.
2588   if (ContBlock) {
2589     CGF.EmitBranch(ContBlock);
2590     CGF.EmitBlock(ContBlock, true);
2591   }
2592 }
2593 
2594 static bool isSupportedByOpenMPIRBuilder(const OMPExecutableDirective &S) {
2595   // Check for unsupported clauses
2596   if (!S.clauses().empty()) {
2597     // Currently no clause is supported
2598     return false;
2599   }
2600 
2601   // Check if we have a statement with the ordered directive.
2602   // Visit the statement hierarchy to find a compound statement
2603   // with a ordered directive in it.
2604   if (const auto *CanonLoop = dyn_cast<OMPCanonicalLoop>(S.getRawStmt())) {
2605     if (const Stmt *SyntacticalLoop = CanonLoop->getLoopStmt()) {
2606       for (const Stmt *SubStmt : SyntacticalLoop->children()) {
2607         if (!SubStmt)
2608           continue;
2609         if (const CompoundStmt *CS = dyn_cast<CompoundStmt>(SubStmt)) {
2610           for (const Stmt *CSSubStmt : CS->children()) {
2611             if (!CSSubStmt)
2612               continue;
2613             if (isa<OMPOrderedDirective>(CSSubStmt)) {
2614               return false;
2615             }
2616           }
2617         }
2618       }
2619     }
2620   }
2621   return true;
2622 }
2623 
2624 void CodeGenFunction::EmitOMPSimdDirective(const OMPSimdDirective &S) {
2625   bool UseOMPIRBuilder =
2626       CGM.getLangOpts().OpenMPIRBuilder && isSupportedByOpenMPIRBuilder(S);
2627   if (UseOMPIRBuilder) {
2628     auto &&CodeGenIRBuilder = [this, &S, UseOMPIRBuilder](CodeGenFunction &CGF,
2629                                                           PrePostActionTy &) {
2630       // Use the OpenMPIRBuilder if enabled.
2631       if (UseOMPIRBuilder) {
2632         // Emit the associated statement and get its loop representation.
2633         llvm::DebugLoc DL = SourceLocToDebugLoc(S.getBeginLoc());
2634         const Stmt *Inner = S.getRawStmt();
2635         llvm::CanonicalLoopInfo *CLI =
2636             EmitOMPCollapsedCanonicalLoopNest(Inner, 1);
2637 
2638         llvm::OpenMPIRBuilder &OMPBuilder =
2639             CGM.getOpenMPRuntime().getOMPBuilder();
2640         // Add SIMD specific metadata
2641         OMPBuilder.applySimd(DL, CLI);
2642         return;
2643       }
2644     };
2645     {
2646       auto LPCRegion =
2647           CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
2648       OMPLexicalScope Scope(*this, S, OMPD_unknown);
2649       CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd,
2650                                                   CodeGenIRBuilder);
2651     }
2652     return;
2653   }
2654 
2655   ParentLoopDirectiveForScanRegion ScanRegion(*this, S);
2656   OMPFirstScanLoop = true;
2657   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
2658     emitOMPSimdRegion(CGF, S, Action);
2659   };
2660   {
2661     auto LPCRegion =
2662         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
2663     OMPLexicalScope Scope(*this, S, OMPD_unknown);
2664     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen);
2665   }
2666   // Check for outer lastprivate conditional update.
2667   checkForLastprivateConditionalUpdate(*this, S);
2668 }
2669 
2670 void CodeGenFunction::EmitOMPTileDirective(const OMPTileDirective &S) {
2671   // Emit the de-sugared statement.
2672   OMPTransformDirectiveScopeRAII TileScope(*this, &S);
2673   EmitStmt(S.getTransformedStmt());
2674 }
2675 
2676 void CodeGenFunction::EmitOMPUnrollDirective(const OMPUnrollDirective &S) {
2677   bool UseOMPIRBuilder = CGM.getLangOpts().OpenMPIRBuilder;
2678 
2679   if (UseOMPIRBuilder) {
2680     auto DL = SourceLocToDebugLoc(S.getBeginLoc());
2681     const Stmt *Inner = S.getRawStmt();
2682 
2683     // Consume nested loop. Clear the entire remaining loop stack because a
2684     // fully unrolled loop is non-transformable. For partial unrolling the
2685     // generated outer loop is pushed back to the stack.
2686     llvm::CanonicalLoopInfo *CLI = EmitOMPCollapsedCanonicalLoopNest(Inner, 1);
2687     OMPLoopNestStack.clear();
2688 
2689     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
2690 
2691     bool NeedsUnrolledCLI = ExpectedOMPLoopDepth >= 1;
2692     llvm::CanonicalLoopInfo *UnrolledCLI = nullptr;
2693 
2694     if (S.hasClausesOfKind<OMPFullClause>()) {
2695       assert(ExpectedOMPLoopDepth == 0);
2696       OMPBuilder.unrollLoopFull(DL, CLI);
2697     } else if (auto *PartialClause = S.getSingleClause<OMPPartialClause>()) {
2698       uint64_t Factor = 0;
2699       if (Expr *FactorExpr = PartialClause->getFactor()) {
2700         Factor = FactorExpr->EvaluateKnownConstInt(getContext()).getZExtValue();
2701         assert(Factor >= 1 && "Only positive factors are valid");
2702       }
2703       OMPBuilder.unrollLoopPartial(DL, CLI, Factor,
2704                                    NeedsUnrolledCLI ? &UnrolledCLI : nullptr);
2705     } else {
2706       OMPBuilder.unrollLoopHeuristic(DL, CLI);
2707     }
2708 
2709     assert((!NeedsUnrolledCLI || UnrolledCLI) &&
2710            "NeedsUnrolledCLI implies UnrolledCLI to be set");
2711     if (UnrolledCLI)
2712       OMPLoopNestStack.push_back(UnrolledCLI);
2713 
2714     return;
2715   }
2716 
2717   // This function is only called if the unrolled loop is not consumed by any
2718   // other loop-associated construct. Such a loop-associated construct will have
2719   // used the transformed AST.
2720 
2721   // Set the unroll metadata for the next emitted loop.
2722   LoopStack.setUnrollState(LoopAttributes::Enable);
2723 
2724   if (S.hasClausesOfKind<OMPFullClause>()) {
2725     LoopStack.setUnrollState(LoopAttributes::Full);
2726   } else if (auto *PartialClause = S.getSingleClause<OMPPartialClause>()) {
2727     if (Expr *FactorExpr = PartialClause->getFactor()) {
2728       uint64_t Factor =
2729           FactorExpr->EvaluateKnownConstInt(getContext()).getZExtValue();
2730       assert(Factor >= 1 && "Only positive factors are valid");
2731       LoopStack.setUnrollCount(Factor);
2732     }
2733   }
2734 
2735   EmitStmt(S.getAssociatedStmt());
2736 }
2737 
2738 void CodeGenFunction::EmitOMPOuterLoop(
2739     bool DynamicOrOrdered, bool IsMonotonic, const OMPLoopDirective &S,
2740     CodeGenFunction::OMPPrivateScope &LoopScope,
2741     const CodeGenFunction::OMPLoopArguments &LoopArgs,
2742     const CodeGenFunction::CodeGenLoopTy &CodeGenLoop,
2743     const CodeGenFunction::CodeGenOrderedTy &CodeGenOrdered) {
2744   CGOpenMPRuntime &RT = CGM.getOpenMPRuntime();
2745 
2746   const Expr *IVExpr = S.getIterationVariable();
2747   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
2748   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
2749 
2750   JumpDest LoopExit = getJumpDestInCurrentScope("omp.dispatch.end");
2751 
2752   // Start the loop with a block that tests the condition.
2753   llvm::BasicBlock *CondBlock = createBasicBlock("omp.dispatch.cond");
2754   EmitBlock(CondBlock);
2755   const SourceRange R = S.getSourceRange();
2756   OMPLoopNestStack.clear();
2757   LoopStack.push(CondBlock, SourceLocToDebugLoc(R.getBegin()),
2758                  SourceLocToDebugLoc(R.getEnd()));
2759 
2760   llvm::Value *BoolCondVal = nullptr;
2761   if (!DynamicOrOrdered) {
2762     // UB = min(UB, GlobalUB) or
2763     // UB = min(UB, PrevUB) for combined loop sharing constructs (e.g.
2764     // 'distribute parallel for')
2765     EmitIgnoredExpr(LoopArgs.EUB);
2766     // IV = LB
2767     EmitIgnoredExpr(LoopArgs.Init);
2768     // IV < UB
2769     BoolCondVal = EvaluateExprAsBool(LoopArgs.Cond);
2770   } else {
2771     BoolCondVal =
2772         RT.emitForNext(*this, S.getBeginLoc(), IVSize, IVSigned, LoopArgs.IL,
2773                        LoopArgs.LB, LoopArgs.UB, LoopArgs.ST);
2774   }
2775 
2776   // If there are any cleanups between here and the loop-exit scope,
2777   // create a block to stage a loop exit along.
2778   llvm::BasicBlock *ExitBlock = LoopExit.getBlock();
2779   if (LoopScope.requiresCleanups())
2780     ExitBlock = createBasicBlock("omp.dispatch.cleanup");
2781 
2782   llvm::BasicBlock *LoopBody = createBasicBlock("omp.dispatch.body");
2783   Builder.CreateCondBr(BoolCondVal, LoopBody, ExitBlock);
2784   if (ExitBlock != LoopExit.getBlock()) {
2785     EmitBlock(ExitBlock);
2786     EmitBranchThroughCleanup(LoopExit);
2787   }
2788   EmitBlock(LoopBody);
2789 
2790   // Emit "IV = LB" (in case of static schedule, we have already calculated new
2791   // LB for loop condition and emitted it above).
2792   if (DynamicOrOrdered)
2793     EmitIgnoredExpr(LoopArgs.Init);
2794 
2795   // Create a block for the increment.
2796   JumpDest Continue = getJumpDestInCurrentScope("omp.dispatch.inc");
2797   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
2798 
2799   emitCommonSimdLoop(
2800       *this, S,
2801       [&S, IsMonotonic](CodeGenFunction &CGF, PrePostActionTy &) {
2802         // Generate !llvm.loop.parallel metadata for loads and stores for loops
2803         // with dynamic/guided scheduling and without ordered clause.
2804         if (!isOpenMPSimdDirective(S.getDirectiveKind())) {
2805           CGF.LoopStack.setParallel(!IsMonotonic);
2806           if (const auto *C = S.getSingleClause<OMPOrderClause>())
2807             if (C->getKind() == OMPC_ORDER_concurrent)
2808               CGF.LoopStack.setParallel(/*Enable=*/true);
2809         } else {
2810           CGF.EmitOMPSimdInit(S);
2811         }
2812       },
2813       [&S, &LoopArgs, LoopExit, &CodeGenLoop, IVSize, IVSigned, &CodeGenOrdered,
2814        &LoopScope](CodeGenFunction &CGF, PrePostActionTy &) {
2815         SourceLocation Loc = S.getBeginLoc();
2816         // when 'distribute' is not combined with a 'for':
2817         // while (idx <= UB) { BODY; ++idx; }
2818         // when 'distribute' is combined with a 'for'
2819         // (e.g. 'distribute parallel for')
2820         // while (idx <= UB) { <CodeGen rest of pragma>; idx += ST; }
2821         CGF.EmitOMPInnerLoop(
2822             S, LoopScope.requiresCleanups(), LoopArgs.Cond, LoopArgs.IncExpr,
2823             [&S, LoopExit, &CodeGenLoop](CodeGenFunction &CGF) {
2824               CodeGenLoop(CGF, S, LoopExit);
2825             },
2826             [IVSize, IVSigned, Loc, &CodeGenOrdered](CodeGenFunction &CGF) {
2827               CodeGenOrdered(CGF, Loc, IVSize, IVSigned);
2828             });
2829       });
2830 
2831   EmitBlock(Continue.getBlock());
2832   BreakContinueStack.pop_back();
2833   if (!DynamicOrOrdered) {
2834     // Emit "LB = LB + Stride", "UB = UB + Stride".
2835     EmitIgnoredExpr(LoopArgs.NextLB);
2836     EmitIgnoredExpr(LoopArgs.NextUB);
2837   }
2838 
2839   EmitBranch(CondBlock);
2840   OMPLoopNestStack.clear();
2841   LoopStack.pop();
2842   // Emit the fall-through block.
2843   EmitBlock(LoopExit.getBlock());
2844 
2845   // Tell the runtime we are done.
2846   auto &&CodeGen = [DynamicOrOrdered, &S](CodeGenFunction &CGF) {
2847     if (!DynamicOrOrdered)
2848       CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getEndLoc(),
2849                                                      S.getDirectiveKind());
2850   };
2851   OMPCancelStack.emitExit(*this, S.getDirectiveKind(), CodeGen);
2852 }
2853 
2854 void CodeGenFunction::EmitOMPForOuterLoop(
2855     const OpenMPScheduleTy &ScheduleKind, bool IsMonotonic,
2856     const OMPLoopDirective &S, OMPPrivateScope &LoopScope, bool Ordered,
2857     const OMPLoopArguments &LoopArgs,
2858     const CodeGenDispatchBoundsTy &CGDispatchBounds) {
2859   CGOpenMPRuntime &RT = CGM.getOpenMPRuntime();
2860 
2861   // Dynamic scheduling of the outer loop (dynamic, guided, auto, runtime).
2862   const bool DynamicOrOrdered = Ordered || RT.isDynamic(ScheduleKind.Schedule);
2863 
2864   assert((Ordered || !RT.isStaticNonchunked(ScheduleKind.Schedule,
2865                                             LoopArgs.Chunk != nullptr)) &&
2866          "static non-chunked schedule does not need outer loop");
2867 
2868   // Emit outer loop.
2869   //
2870   // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
2871   // When schedule(dynamic,chunk_size) is specified, the iterations are
2872   // distributed to threads in the team in chunks as the threads request them.
2873   // Each thread executes a chunk of iterations, then requests another chunk,
2874   // until no chunks remain to be distributed. Each chunk contains chunk_size
2875   // iterations, except for the last chunk to be distributed, which may have
2876   // fewer iterations. When no chunk_size is specified, it defaults to 1.
2877   //
2878   // When schedule(guided,chunk_size) is specified, the iterations are assigned
2879   // to threads in the team in chunks as the executing threads request them.
2880   // Each thread executes a chunk of iterations, then requests another chunk,
2881   // until no chunks remain to be assigned. For a chunk_size of 1, the size of
2882   // each chunk is proportional to the number of unassigned iterations divided
2883   // by the number of threads in the team, decreasing to 1. For a chunk_size
2884   // with value k (greater than 1), the size of each chunk is determined in the
2885   // same way, with the restriction that the chunks do not contain fewer than k
2886   // iterations (except for the last chunk to be assigned, which may have fewer
2887   // than k iterations).
2888   //
2889   // When schedule(auto) is specified, the decision regarding scheduling is
2890   // delegated to the compiler and/or runtime system. The programmer gives the
2891   // implementation the freedom to choose any possible mapping of iterations to
2892   // threads in the team.
2893   //
2894   // When schedule(runtime) is specified, the decision regarding scheduling is
2895   // deferred until run time, and the schedule and chunk size are taken from the
2896   // run-sched-var ICV. If the ICV is set to auto, the schedule is
2897   // implementation defined
2898   //
2899   // while(__kmpc_dispatch_next(&LB, &UB)) {
2900   //   idx = LB;
2901   //   while (idx <= UB) { BODY; ++idx;
2902   //   __kmpc_dispatch_fini_(4|8)[u](); // For ordered loops only.
2903   //   } // inner loop
2904   // }
2905   //
2906   // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
2907   // When schedule(static, chunk_size) is specified, iterations are divided into
2908   // chunks of size chunk_size, and the chunks are assigned to the threads in
2909   // the team in a round-robin fashion in the order of the thread number.
2910   //
2911   // while(UB = min(UB, GlobalUB), idx = LB, idx < UB) {
2912   //   while (idx <= UB) { BODY; ++idx; } // inner loop
2913   //   LB = LB + ST;
2914   //   UB = UB + ST;
2915   // }
2916   //
2917 
2918   const Expr *IVExpr = S.getIterationVariable();
2919   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
2920   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
2921 
2922   if (DynamicOrOrdered) {
2923     const std::pair<llvm::Value *, llvm::Value *> DispatchBounds =
2924         CGDispatchBounds(*this, S, LoopArgs.LB, LoopArgs.UB);
2925     llvm::Value *LBVal = DispatchBounds.first;
2926     llvm::Value *UBVal = DispatchBounds.second;
2927     CGOpenMPRuntime::DispatchRTInput DipatchRTInputValues = {LBVal, UBVal,
2928                                                              LoopArgs.Chunk};
2929     RT.emitForDispatchInit(*this, S.getBeginLoc(), ScheduleKind, IVSize,
2930                            IVSigned, Ordered, DipatchRTInputValues);
2931   } else {
2932     CGOpenMPRuntime::StaticRTInput StaticInit(
2933         IVSize, IVSigned, Ordered, LoopArgs.IL, LoopArgs.LB, LoopArgs.UB,
2934         LoopArgs.ST, LoopArgs.Chunk);
2935     RT.emitForStaticInit(*this, S.getBeginLoc(), S.getDirectiveKind(),
2936                          ScheduleKind, StaticInit);
2937   }
2938 
2939   auto &&CodeGenOrdered = [Ordered](CodeGenFunction &CGF, SourceLocation Loc,
2940                                     const unsigned IVSize,
2941                                     const bool IVSigned) {
2942     if (Ordered) {
2943       CGF.CGM.getOpenMPRuntime().emitForOrderedIterationEnd(CGF, Loc, IVSize,
2944                                                             IVSigned);
2945     }
2946   };
2947 
2948   OMPLoopArguments OuterLoopArgs(LoopArgs.LB, LoopArgs.UB, LoopArgs.ST,
2949                                  LoopArgs.IL, LoopArgs.Chunk, LoopArgs.EUB);
2950   OuterLoopArgs.IncExpr = S.getInc();
2951   OuterLoopArgs.Init = S.getInit();
2952   OuterLoopArgs.Cond = S.getCond();
2953   OuterLoopArgs.NextLB = S.getNextLowerBound();
2954   OuterLoopArgs.NextUB = S.getNextUpperBound();
2955   EmitOMPOuterLoop(DynamicOrOrdered, IsMonotonic, S, LoopScope, OuterLoopArgs,
2956                    emitOMPLoopBodyWithStopPoint, CodeGenOrdered);
2957 }
2958 
2959 static void emitEmptyOrdered(CodeGenFunction &, SourceLocation Loc,
2960                              const unsigned IVSize, const bool IVSigned) {}
2961 
2962 void CodeGenFunction::EmitOMPDistributeOuterLoop(
2963     OpenMPDistScheduleClauseKind ScheduleKind, const OMPLoopDirective &S,
2964     OMPPrivateScope &LoopScope, const OMPLoopArguments &LoopArgs,
2965     const CodeGenLoopTy &CodeGenLoopContent) {
2966 
2967   CGOpenMPRuntime &RT = CGM.getOpenMPRuntime();
2968 
2969   // Emit outer loop.
2970   // Same behavior as a OMPForOuterLoop, except that schedule cannot be
2971   // dynamic
2972   //
2973 
2974   const Expr *IVExpr = S.getIterationVariable();
2975   const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
2976   const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
2977 
2978   CGOpenMPRuntime::StaticRTInput StaticInit(
2979       IVSize, IVSigned, /* Ordered = */ false, LoopArgs.IL, LoopArgs.LB,
2980       LoopArgs.UB, LoopArgs.ST, LoopArgs.Chunk);
2981   RT.emitDistributeStaticInit(*this, S.getBeginLoc(), ScheduleKind, StaticInit);
2982 
2983   // for combined 'distribute' and 'for' the increment expression of distribute
2984   // is stored in DistInc. For 'distribute' alone, it is in Inc.
2985   Expr *IncExpr;
2986   if (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()))
2987     IncExpr = S.getDistInc();
2988   else
2989     IncExpr = S.getInc();
2990 
2991   // this routine is shared by 'omp distribute parallel for' and
2992   // 'omp distribute': select the right EUB expression depending on the
2993   // directive
2994   OMPLoopArguments OuterLoopArgs;
2995   OuterLoopArgs.LB = LoopArgs.LB;
2996   OuterLoopArgs.UB = LoopArgs.UB;
2997   OuterLoopArgs.ST = LoopArgs.ST;
2998   OuterLoopArgs.IL = LoopArgs.IL;
2999   OuterLoopArgs.Chunk = LoopArgs.Chunk;
3000   OuterLoopArgs.EUB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
3001                           ? S.getCombinedEnsureUpperBound()
3002                           : S.getEnsureUpperBound();
3003   OuterLoopArgs.IncExpr = IncExpr;
3004   OuterLoopArgs.Init = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
3005                            ? S.getCombinedInit()
3006                            : S.getInit();
3007   OuterLoopArgs.Cond = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
3008                            ? S.getCombinedCond()
3009                            : S.getCond();
3010   OuterLoopArgs.NextLB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
3011                              ? S.getCombinedNextLowerBound()
3012                              : S.getNextLowerBound();
3013   OuterLoopArgs.NextUB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
3014                              ? S.getCombinedNextUpperBound()
3015                              : S.getNextUpperBound();
3016 
3017   EmitOMPOuterLoop(/* DynamicOrOrdered = */ false, /* IsMonotonic = */ false, S,
3018                    LoopScope, OuterLoopArgs, CodeGenLoopContent,
3019                    emitEmptyOrdered);
3020 }
3021 
3022 static std::pair<LValue, LValue>
3023 emitDistributeParallelForInnerBounds(CodeGenFunction &CGF,
3024                                      const OMPExecutableDirective &S) {
3025   const OMPLoopDirective &LS = cast<OMPLoopDirective>(S);
3026   LValue LB =
3027       EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getLowerBoundVariable()));
3028   LValue UB =
3029       EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getUpperBoundVariable()));
3030 
3031   // When composing 'distribute' with 'for' (e.g. as in 'distribute
3032   // parallel for') we need to use the 'distribute'
3033   // chunk lower and upper bounds rather than the whole loop iteration
3034   // space. These are parameters to the outlined function for 'parallel'
3035   // and we copy the bounds of the previous schedule into the
3036   // the current ones.
3037   LValue PrevLB = CGF.EmitLValue(LS.getPrevLowerBoundVariable());
3038   LValue PrevUB = CGF.EmitLValue(LS.getPrevUpperBoundVariable());
3039   llvm::Value *PrevLBVal = CGF.EmitLoadOfScalar(
3040       PrevLB, LS.getPrevLowerBoundVariable()->getExprLoc());
3041   PrevLBVal = CGF.EmitScalarConversion(
3042       PrevLBVal, LS.getPrevLowerBoundVariable()->getType(),
3043       LS.getIterationVariable()->getType(),
3044       LS.getPrevLowerBoundVariable()->getExprLoc());
3045   llvm::Value *PrevUBVal = CGF.EmitLoadOfScalar(
3046       PrevUB, LS.getPrevUpperBoundVariable()->getExprLoc());
3047   PrevUBVal = CGF.EmitScalarConversion(
3048       PrevUBVal, LS.getPrevUpperBoundVariable()->getType(),
3049       LS.getIterationVariable()->getType(),
3050       LS.getPrevUpperBoundVariable()->getExprLoc());
3051 
3052   CGF.EmitStoreOfScalar(PrevLBVal, LB);
3053   CGF.EmitStoreOfScalar(PrevUBVal, UB);
3054 
3055   return {LB, UB};
3056 }
3057 
3058 /// if the 'for' loop has a dispatch schedule (e.g. dynamic, guided) then
3059 /// we need to use the LB and UB expressions generated by the worksharing
3060 /// code generation support, whereas in non combined situations we would
3061 /// just emit 0 and the LastIteration expression
3062 /// This function is necessary due to the difference of the LB and UB
3063 /// types for the RT emission routines for 'for_static_init' and
3064 /// 'for_dispatch_init'
3065 static std::pair<llvm::Value *, llvm::Value *>
3066 emitDistributeParallelForDispatchBounds(CodeGenFunction &CGF,
3067                                         const OMPExecutableDirective &S,
3068                                         Address LB, Address UB) {
3069   const OMPLoopDirective &LS = cast<OMPLoopDirective>(S);
3070   const Expr *IVExpr = LS.getIterationVariable();
3071   // when implementing a dynamic schedule for a 'for' combined with a
3072   // 'distribute' (e.g. 'distribute parallel for'), the 'for' loop
3073   // is not normalized as each team only executes its own assigned
3074   // distribute chunk
3075   QualType IteratorTy = IVExpr->getType();
3076   llvm::Value *LBVal =
3077       CGF.EmitLoadOfScalar(LB, /*Volatile=*/false, IteratorTy, S.getBeginLoc());
3078   llvm::Value *UBVal =
3079       CGF.EmitLoadOfScalar(UB, /*Volatile=*/false, IteratorTy, S.getBeginLoc());
3080   return {LBVal, UBVal};
3081 }
3082 
3083 static void emitDistributeParallelForDistributeInnerBoundParams(
3084     CodeGenFunction &CGF, const OMPExecutableDirective &S,
3085     llvm::SmallVectorImpl<llvm::Value *> &CapturedVars) {
3086   const auto &Dir = cast<OMPLoopDirective>(S);
3087   LValue LB =
3088       CGF.EmitLValue(cast<DeclRefExpr>(Dir.getCombinedLowerBoundVariable()));
3089   llvm::Value *LBCast =
3090       CGF.Builder.CreateIntCast(CGF.Builder.CreateLoad(LB.getAddress(CGF)),
3091                                 CGF.SizeTy, /*isSigned=*/false);
3092   CapturedVars.push_back(LBCast);
3093   LValue UB =
3094       CGF.EmitLValue(cast<DeclRefExpr>(Dir.getCombinedUpperBoundVariable()));
3095 
3096   llvm::Value *UBCast =
3097       CGF.Builder.CreateIntCast(CGF.Builder.CreateLoad(UB.getAddress(CGF)),
3098                                 CGF.SizeTy, /*isSigned=*/false);
3099   CapturedVars.push_back(UBCast);
3100 }
3101 
3102 static void
3103 emitInnerParallelForWhenCombined(CodeGenFunction &CGF,
3104                                  const OMPLoopDirective &S,
3105                                  CodeGenFunction::JumpDest LoopExit) {
3106   auto &&CGInlinedWorksharingLoop = [&S](CodeGenFunction &CGF,
3107                                          PrePostActionTy &Action) {
3108     Action.Enter(CGF);
3109     bool HasCancel = false;
3110     if (!isOpenMPSimdDirective(S.getDirectiveKind())) {
3111       if (const auto *D = dyn_cast<OMPTeamsDistributeParallelForDirective>(&S))
3112         HasCancel = D->hasCancel();
3113       else if (const auto *D = dyn_cast<OMPDistributeParallelForDirective>(&S))
3114         HasCancel = D->hasCancel();
3115       else if (const auto *D =
3116                    dyn_cast<OMPTargetTeamsDistributeParallelForDirective>(&S))
3117         HasCancel = D->hasCancel();
3118     }
3119     CodeGenFunction::OMPCancelStackRAII CancelRegion(CGF, S.getDirectiveKind(),
3120                                                      HasCancel);
3121     CGF.EmitOMPWorksharingLoop(S, S.getPrevEnsureUpperBound(),
3122                                emitDistributeParallelForInnerBounds,
3123                                emitDistributeParallelForDispatchBounds);
3124   };
3125 
3126   emitCommonOMPParallelDirective(
3127       CGF, S,
3128       isOpenMPSimdDirective(S.getDirectiveKind()) ? OMPD_for_simd : OMPD_for,
3129       CGInlinedWorksharingLoop,
3130       emitDistributeParallelForDistributeInnerBoundParams);
3131 }
3132 
3133 void CodeGenFunction::EmitOMPDistributeParallelForDirective(
3134     const OMPDistributeParallelForDirective &S) {
3135   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3136     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
3137                               S.getDistInc());
3138   };
3139   OMPLexicalScope Scope(*this, S, OMPD_parallel);
3140   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen);
3141 }
3142 
3143 void CodeGenFunction::EmitOMPDistributeParallelForSimdDirective(
3144     const OMPDistributeParallelForSimdDirective &S) {
3145   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3146     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
3147                               S.getDistInc());
3148   };
3149   OMPLexicalScope Scope(*this, S, OMPD_parallel);
3150   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen);
3151 }
3152 
3153 void CodeGenFunction::EmitOMPDistributeSimdDirective(
3154     const OMPDistributeSimdDirective &S) {
3155   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3156     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
3157   };
3158   OMPLexicalScope Scope(*this, S, OMPD_unknown);
3159   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen);
3160 }
3161 
3162 void CodeGenFunction::EmitOMPTargetSimdDeviceFunction(
3163     CodeGenModule &CGM, StringRef ParentName, const OMPTargetSimdDirective &S) {
3164   // Emit SPMD target parallel for region as a standalone region.
3165   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
3166     emitOMPSimdRegion(CGF, S, Action);
3167   };
3168   llvm::Function *Fn;
3169   llvm::Constant *Addr;
3170   // Emit target region as a standalone region.
3171   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
3172       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
3173   assert(Fn && Addr && "Target device function emission failed.");
3174 }
3175 
3176 void CodeGenFunction::EmitOMPTargetSimdDirective(
3177     const OMPTargetSimdDirective &S) {
3178   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
3179     emitOMPSimdRegion(CGF, S, Action);
3180   };
3181   emitCommonOMPTargetDirective(*this, S, CodeGen);
3182 }
3183 
3184 namespace {
3185 struct ScheduleKindModifiersTy {
3186   OpenMPScheduleClauseKind Kind;
3187   OpenMPScheduleClauseModifier M1;
3188   OpenMPScheduleClauseModifier M2;
3189   ScheduleKindModifiersTy(OpenMPScheduleClauseKind Kind,
3190                           OpenMPScheduleClauseModifier M1,
3191                           OpenMPScheduleClauseModifier M2)
3192       : Kind(Kind), M1(M1), M2(M2) {}
3193 };
3194 } // namespace
3195 
3196 bool CodeGenFunction::EmitOMPWorksharingLoop(
3197     const OMPLoopDirective &S, Expr *EUB,
3198     const CodeGenLoopBoundsTy &CodeGenLoopBounds,
3199     const CodeGenDispatchBoundsTy &CGDispatchBounds) {
3200   // Emit the loop iteration variable.
3201   const auto *IVExpr = cast<DeclRefExpr>(S.getIterationVariable());
3202   const auto *IVDecl = cast<VarDecl>(IVExpr->getDecl());
3203   EmitVarDecl(*IVDecl);
3204 
3205   // Emit the iterations count variable.
3206   // If it is not a variable, Sema decided to calculate iterations count on each
3207   // iteration (e.g., it is foldable into a constant).
3208   if (const auto *LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
3209     EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
3210     // Emit calculation of the iterations count.
3211     EmitIgnoredExpr(S.getCalcLastIteration());
3212   }
3213 
3214   CGOpenMPRuntime &RT = CGM.getOpenMPRuntime();
3215 
3216   bool HasLastprivateClause;
3217   // Check pre-condition.
3218   {
3219     OMPLoopScope PreInitScope(*this, S);
3220     // Skip the entire loop if we don't meet the precondition.
3221     // If the condition constant folds and can be elided, avoid emitting the
3222     // whole loop.
3223     bool CondConstant;
3224     llvm::BasicBlock *ContBlock = nullptr;
3225     if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
3226       if (!CondConstant)
3227         return false;
3228     } else {
3229       llvm::BasicBlock *ThenBlock = createBasicBlock("omp.precond.then");
3230       ContBlock = createBasicBlock("omp.precond.end");
3231       emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock,
3232                   getProfileCount(&S));
3233       EmitBlock(ThenBlock);
3234       incrementProfileCounter(&S);
3235     }
3236 
3237     RunCleanupsScope DoacrossCleanupScope(*this);
3238     bool Ordered = false;
3239     if (const auto *OrderedClause = S.getSingleClause<OMPOrderedClause>()) {
3240       if (OrderedClause->getNumForLoops())
3241         RT.emitDoacrossInit(*this, S, OrderedClause->getLoopNumIterations());
3242       else
3243         Ordered = true;
3244     }
3245 
3246     llvm::DenseSet<const Expr *> EmittedFinals;
3247     emitAlignedClause(*this, S);
3248     bool HasLinears = EmitOMPLinearClauseInit(S);
3249     // Emit helper vars inits.
3250 
3251     std::pair<LValue, LValue> Bounds = CodeGenLoopBounds(*this, S);
3252     LValue LB = Bounds.first;
3253     LValue UB = Bounds.second;
3254     LValue ST =
3255         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable()));
3256     LValue IL =
3257         EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable()));
3258 
3259     // Emit 'then' code.
3260     {
3261       OMPPrivateScope LoopScope(*this);
3262       if (EmitOMPFirstprivateClause(S, LoopScope) || HasLinears) {
3263         // Emit implicit barrier to synchronize threads and avoid data races on
3264         // initialization of firstprivate variables and post-update of
3265         // lastprivate variables.
3266         CGM.getOpenMPRuntime().emitBarrierCall(
3267             *this, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
3268             /*ForceSimpleCall=*/true);
3269       }
3270       EmitOMPPrivateClause(S, LoopScope);
3271       CGOpenMPRuntime::LastprivateConditionalRAII LPCRegion(
3272           *this, S, EmitLValue(S.getIterationVariable()));
3273       HasLastprivateClause = EmitOMPLastprivateClauseInit(S, LoopScope);
3274       EmitOMPReductionClauseInit(S, LoopScope);
3275       EmitOMPPrivateLoopCounters(S, LoopScope);
3276       EmitOMPLinearClause(S, LoopScope);
3277       (void)LoopScope.Privatize();
3278       if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
3279         CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(*this, S);
3280 
3281       // Detect the loop schedule kind and chunk.
3282       const Expr *ChunkExpr = nullptr;
3283       OpenMPScheduleTy ScheduleKind;
3284       if (const auto *C = S.getSingleClause<OMPScheduleClause>()) {
3285         ScheduleKind.Schedule = C->getScheduleKind();
3286         ScheduleKind.M1 = C->getFirstScheduleModifier();
3287         ScheduleKind.M2 = C->getSecondScheduleModifier();
3288         ChunkExpr = C->getChunkSize();
3289       } else {
3290         // Default behaviour for schedule clause.
3291         CGM.getOpenMPRuntime().getDefaultScheduleAndChunk(
3292             *this, S, ScheduleKind.Schedule, ChunkExpr);
3293       }
3294       bool HasChunkSizeOne = false;
3295       llvm::Value *Chunk = nullptr;
3296       if (ChunkExpr) {
3297         Chunk = EmitScalarExpr(ChunkExpr);
3298         Chunk = EmitScalarConversion(Chunk, ChunkExpr->getType(),
3299                                      S.getIterationVariable()->getType(),
3300                                      S.getBeginLoc());
3301         Expr::EvalResult Result;
3302         if (ChunkExpr->EvaluateAsInt(Result, getContext())) {
3303           llvm::APSInt EvaluatedChunk = Result.Val.getInt();
3304           HasChunkSizeOne = (EvaluatedChunk.getLimitedValue() == 1);
3305         }
3306       }
3307       const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
3308       const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
3309       // OpenMP 4.5, 2.7.1 Loop Construct, Description.
3310       // If the static schedule kind is specified or if the ordered clause is
3311       // specified, and if no monotonic modifier is specified, the effect will
3312       // be as if the monotonic modifier was specified.
3313       bool StaticChunkedOne =
3314           RT.isStaticChunked(ScheduleKind.Schedule,
3315                              /* Chunked */ Chunk != nullptr) &&
3316           HasChunkSizeOne &&
3317           isOpenMPLoopBoundSharingDirective(S.getDirectiveKind());
3318       bool IsMonotonic =
3319           Ordered ||
3320           (ScheduleKind.Schedule == OMPC_SCHEDULE_static &&
3321            !(ScheduleKind.M1 == OMPC_SCHEDULE_MODIFIER_nonmonotonic ||
3322              ScheduleKind.M2 == OMPC_SCHEDULE_MODIFIER_nonmonotonic)) ||
3323           ScheduleKind.M1 == OMPC_SCHEDULE_MODIFIER_monotonic ||
3324           ScheduleKind.M2 == OMPC_SCHEDULE_MODIFIER_monotonic;
3325       if ((RT.isStaticNonchunked(ScheduleKind.Schedule,
3326                                  /* Chunked */ Chunk != nullptr) ||
3327            StaticChunkedOne) &&
3328           !Ordered) {
3329         JumpDest LoopExit =
3330             getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit"));
3331         emitCommonSimdLoop(
3332             *this, S,
3333             [&S](CodeGenFunction &CGF, PrePostActionTy &) {
3334               if (isOpenMPSimdDirective(S.getDirectiveKind())) {
3335                 CGF.EmitOMPSimdInit(S);
3336               } else if (const auto *C = S.getSingleClause<OMPOrderClause>()) {
3337                 if (C->getKind() == OMPC_ORDER_concurrent)
3338                   CGF.LoopStack.setParallel(/*Enable=*/true);
3339               }
3340             },
3341             [IVSize, IVSigned, Ordered, IL, LB, UB, ST, StaticChunkedOne, Chunk,
3342              &S, ScheduleKind, LoopExit,
3343              &LoopScope](CodeGenFunction &CGF, PrePostActionTy &) {
3344               // OpenMP [2.7.1, Loop Construct, Description, table 2-1]
3345               // When no chunk_size is specified, the iteration space is divided
3346               // into chunks that are approximately equal in size, and at most
3347               // one chunk is distributed to each thread. Note that the size of
3348               // the chunks is unspecified in this case.
3349               CGOpenMPRuntime::StaticRTInput StaticInit(
3350                   IVSize, IVSigned, Ordered, IL.getAddress(CGF),
3351                   LB.getAddress(CGF), UB.getAddress(CGF), ST.getAddress(CGF),
3352                   StaticChunkedOne ? Chunk : nullptr);
3353               CGF.CGM.getOpenMPRuntime().emitForStaticInit(
3354                   CGF, S.getBeginLoc(), S.getDirectiveKind(), ScheduleKind,
3355                   StaticInit);
3356               // UB = min(UB, GlobalUB);
3357               if (!StaticChunkedOne)
3358                 CGF.EmitIgnoredExpr(S.getEnsureUpperBound());
3359               // IV = LB;
3360               CGF.EmitIgnoredExpr(S.getInit());
3361               // For unchunked static schedule generate:
3362               //
3363               // while (idx <= UB) {
3364               //   BODY;
3365               //   ++idx;
3366               // }
3367               //
3368               // For static schedule with chunk one:
3369               //
3370               // while (IV <= PrevUB) {
3371               //   BODY;
3372               //   IV += ST;
3373               // }
3374               CGF.EmitOMPInnerLoop(
3375                   S, LoopScope.requiresCleanups(),
3376                   StaticChunkedOne ? S.getCombinedParForInDistCond()
3377                                    : S.getCond(),
3378                   StaticChunkedOne ? S.getDistInc() : S.getInc(),
3379                   [&S, LoopExit](CodeGenFunction &CGF) {
3380                     emitOMPLoopBodyWithStopPoint(CGF, S, LoopExit);
3381                   },
3382                   [](CodeGenFunction &) {});
3383             });
3384         EmitBlock(LoopExit.getBlock());
3385         // Tell the runtime we are done.
3386         auto &&CodeGen = [&S](CodeGenFunction &CGF) {
3387           CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getEndLoc(),
3388                                                          S.getDirectiveKind());
3389         };
3390         OMPCancelStack.emitExit(*this, S.getDirectiveKind(), CodeGen);
3391       } else {
3392         // Emit the outer loop, which requests its work chunk [LB..UB] from
3393         // runtime and runs the inner loop to process it.
3394         const OMPLoopArguments LoopArguments(
3395             LB.getAddress(*this), UB.getAddress(*this), ST.getAddress(*this),
3396             IL.getAddress(*this), Chunk, EUB);
3397         EmitOMPForOuterLoop(ScheduleKind, IsMonotonic, S, LoopScope, Ordered,
3398                             LoopArguments, CGDispatchBounds);
3399       }
3400       if (isOpenMPSimdDirective(S.getDirectiveKind())) {
3401         EmitOMPSimdFinal(S, [IL, &S](CodeGenFunction &CGF) {
3402           return CGF.Builder.CreateIsNotNull(
3403               CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
3404         });
3405       }
3406       EmitOMPReductionClauseFinal(
3407           S, /*ReductionKind=*/isOpenMPSimdDirective(S.getDirectiveKind())
3408                  ? /*Parallel and Simd*/ OMPD_parallel_for_simd
3409                  : /*Parallel only*/ OMPD_parallel);
3410       // Emit post-update of the reduction variables if IsLastIter != 0.
3411       emitPostUpdateForReductionClause(
3412           *this, S, [IL, &S](CodeGenFunction &CGF) {
3413             return CGF.Builder.CreateIsNotNull(
3414                 CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
3415           });
3416       // Emit final copy of the lastprivate variables if IsLastIter != 0.
3417       if (HasLastprivateClause)
3418         EmitOMPLastprivateClauseFinal(
3419             S, isOpenMPSimdDirective(S.getDirectiveKind()),
3420             Builder.CreateIsNotNull(EmitLoadOfScalar(IL, S.getBeginLoc())));
3421     }
3422     EmitOMPLinearClauseFinal(S, [IL, &S](CodeGenFunction &CGF) {
3423       return CGF.Builder.CreateIsNotNull(
3424           CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
3425     });
3426     DoacrossCleanupScope.ForceCleanup();
3427     // We're now done with the loop, so jump to the continuation block.
3428     if (ContBlock) {
3429       EmitBranch(ContBlock);
3430       EmitBlock(ContBlock, /*IsFinished=*/true);
3431     }
3432   }
3433   return HasLastprivateClause;
3434 }
3435 
3436 /// The following two functions generate expressions for the loop lower
3437 /// and upper bounds in case of static and dynamic (dispatch) schedule
3438 /// of the associated 'for' or 'distribute' loop.
3439 static std::pair<LValue, LValue>
3440 emitForLoopBounds(CodeGenFunction &CGF, const OMPExecutableDirective &S) {
3441   const auto &LS = cast<OMPLoopDirective>(S);
3442   LValue LB =
3443       EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getLowerBoundVariable()));
3444   LValue UB =
3445       EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getUpperBoundVariable()));
3446   return {LB, UB};
3447 }
3448 
3449 /// When dealing with dispatch schedules (e.g. dynamic, guided) we do not
3450 /// consider the lower and upper bound expressions generated by the
3451 /// worksharing loop support, but we use 0 and the iteration space size as
3452 /// constants
3453 static std::pair<llvm::Value *, llvm::Value *>
3454 emitDispatchForLoopBounds(CodeGenFunction &CGF, const OMPExecutableDirective &S,
3455                           Address LB, Address UB) {
3456   const auto &LS = cast<OMPLoopDirective>(S);
3457   const Expr *IVExpr = LS.getIterationVariable();
3458   const unsigned IVSize = CGF.getContext().getTypeSize(IVExpr->getType());
3459   llvm::Value *LBVal = CGF.Builder.getIntN(IVSize, 0);
3460   llvm::Value *UBVal = CGF.EmitScalarExpr(LS.getLastIteration());
3461   return {LBVal, UBVal};
3462 }
3463 
3464 /// Emits internal temp array declarations for the directive with inscan
3465 /// reductions.
3466 /// The code is the following:
3467 /// \code
3468 /// size num_iters = <num_iters>;
3469 /// <type> buffer[num_iters];
3470 /// \endcode
3471 static void emitScanBasedDirectiveDecls(
3472     CodeGenFunction &CGF, const OMPLoopDirective &S,
3473     llvm::function_ref<llvm::Value *(CodeGenFunction &)> NumIteratorsGen) {
3474   llvm::Value *OMPScanNumIterations = CGF.Builder.CreateIntCast(
3475       NumIteratorsGen(CGF), CGF.SizeTy, /*isSigned=*/false);
3476   SmallVector<const Expr *, 4> Shareds;
3477   SmallVector<const Expr *, 4> Privates;
3478   SmallVector<const Expr *, 4> ReductionOps;
3479   SmallVector<const Expr *, 4> CopyArrayTemps;
3480   for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) {
3481     assert(C->getModifier() == OMPC_REDUCTION_inscan &&
3482            "Only inscan reductions are expected.");
3483     Shareds.append(C->varlist_begin(), C->varlist_end());
3484     Privates.append(C->privates().begin(), C->privates().end());
3485     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
3486     CopyArrayTemps.append(C->copy_array_temps().begin(),
3487                           C->copy_array_temps().end());
3488   }
3489   {
3490     // Emit buffers for each reduction variables.
3491     // ReductionCodeGen is required to emit correctly the code for array
3492     // reductions.
3493     ReductionCodeGen RedCG(Shareds, Shareds, Privates, ReductionOps);
3494     unsigned Count = 0;
3495     auto *ITA = CopyArrayTemps.begin();
3496     for (const Expr *IRef : Privates) {
3497       const auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(IRef)->getDecl());
3498       // Emit variably modified arrays, used for arrays/array sections
3499       // reductions.
3500       if (PrivateVD->getType()->isVariablyModifiedType()) {
3501         RedCG.emitSharedOrigLValue(CGF, Count);
3502         RedCG.emitAggregateType(CGF, Count);
3503       }
3504       CodeGenFunction::OpaqueValueMapping DimMapping(
3505           CGF,
3506           cast<OpaqueValueExpr>(
3507               cast<VariableArrayType>((*ITA)->getType()->getAsArrayTypeUnsafe())
3508                   ->getSizeExpr()),
3509           RValue::get(OMPScanNumIterations));
3510       // Emit temp buffer.
3511       CGF.EmitVarDecl(*cast<VarDecl>(cast<DeclRefExpr>(*ITA)->getDecl()));
3512       ++ITA;
3513       ++Count;
3514     }
3515   }
3516 }
3517 
3518 /// Emits the code for the directive with inscan reductions.
3519 /// The code is the following:
3520 /// \code
3521 /// #pragma omp ...
3522 /// for (i: 0..<num_iters>) {
3523 ///   <input phase>;
3524 ///   buffer[i] = red;
3525 /// }
3526 /// #pragma omp master // in parallel region
3527 /// for (int k = 0; k != ceil(log2(num_iters)); ++k)
3528 /// for (size cnt = last_iter; cnt >= pow(2, k); --k)
3529 ///   buffer[i] op= buffer[i-pow(2,k)];
3530 /// #pragma omp barrier // in parallel region
3531 /// #pragma omp ...
3532 /// for (0..<num_iters>) {
3533 ///   red = InclusiveScan ? buffer[i] : buffer[i-1];
3534 ///   <scan phase>;
3535 /// }
3536 /// \endcode
3537 static void emitScanBasedDirective(
3538     CodeGenFunction &CGF, const OMPLoopDirective &S,
3539     llvm::function_ref<llvm::Value *(CodeGenFunction &)> NumIteratorsGen,
3540     llvm::function_ref<void(CodeGenFunction &)> FirstGen,
3541     llvm::function_ref<void(CodeGenFunction &)> SecondGen) {
3542   llvm::Value *OMPScanNumIterations = CGF.Builder.CreateIntCast(
3543       NumIteratorsGen(CGF), CGF.SizeTy, /*isSigned=*/false);
3544   SmallVector<const Expr *, 4> Privates;
3545   SmallVector<const Expr *, 4> ReductionOps;
3546   SmallVector<const Expr *, 4> LHSs;
3547   SmallVector<const Expr *, 4> RHSs;
3548   SmallVector<const Expr *, 4> CopyArrayElems;
3549   for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) {
3550     assert(C->getModifier() == OMPC_REDUCTION_inscan &&
3551            "Only inscan reductions are expected.");
3552     Privates.append(C->privates().begin(), C->privates().end());
3553     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
3554     LHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
3555     RHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
3556     CopyArrayElems.append(C->copy_array_elems().begin(),
3557                           C->copy_array_elems().end());
3558   }
3559   CodeGenFunction::ParentLoopDirectiveForScanRegion ScanRegion(CGF, S);
3560   {
3561     // Emit loop with input phase:
3562     // #pragma omp ...
3563     // for (i: 0..<num_iters>) {
3564     //   <input phase>;
3565     //   buffer[i] = red;
3566     // }
3567     CGF.OMPFirstScanLoop = true;
3568     CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
3569     FirstGen(CGF);
3570   }
3571   // #pragma omp barrier // in parallel region
3572   auto &&CodeGen = [&S, OMPScanNumIterations, &LHSs, &RHSs, &CopyArrayElems,
3573                     &ReductionOps,
3574                     &Privates](CodeGenFunction &CGF, PrePostActionTy &Action) {
3575     Action.Enter(CGF);
3576     // Emit prefix reduction:
3577     // #pragma omp master // in parallel region
3578     // for (int k = 0; k <= ceil(log2(n)); ++k)
3579     llvm::BasicBlock *InputBB = CGF.Builder.GetInsertBlock();
3580     llvm::BasicBlock *LoopBB = CGF.createBasicBlock("omp.outer.log.scan.body");
3581     llvm::BasicBlock *ExitBB = CGF.createBasicBlock("omp.outer.log.scan.exit");
3582     llvm::Function *F =
3583         CGF.CGM.getIntrinsic(llvm::Intrinsic::log2, CGF.DoubleTy);
3584     llvm::Value *Arg =
3585         CGF.Builder.CreateUIToFP(OMPScanNumIterations, CGF.DoubleTy);
3586     llvm::Value *LogVal = CGF.EmitNounwindRuntimeCall(F, Arg);
3587     F = CGF.CGM.getIntrinsic(llvm::Intrinsic::ceil, CGF.DoubleTy);
3588     LogVal = CGF.EmitNounwindRuntimeCall(F, LogVal);
3589     LogVal = CGF.Builder.CreateFPToUI(LogVal, CGF.IntTy);
3590     llvm::Value *NMin1 = CGF.Builder.CreateNUWSub(
3591         OMPScanNumIterations, llvm::ConstantInt::get(CGF.SizeTy, 1));
3592     auto DL = ApplyDebugLocation::CreateDefaultArtificial(CGF, S.getBeginLoc());
3593     CGF.EmitBlock(LoopBB);
3594     auto *Counter = CGF.Builder.CreatePHI(CGF.IntTy, 2);
3595     // size pow2k = 1;
3596     auto *Pow2K = CGF.Builder.CreatePHI(CGF.SizeTy, 2);
3597     Counter->addIncoming(llvm::ConstantInt::get(CGF.IntTy, 0), InputBB);
3598     Pow2K->addIncoming(llvm::ConstantInt::get(CGF.SizeTy, 1), InputBB);
3599     // for (size i = n - 1; i >= 2 ^ k; --i)
3600     //   tmp[i] op= tmp[i-pow2k];
3601     llvm::BasicBlock *InnerLoopBB =
3602         CGF.createBasicBlock("omp.inner.log.scan.body");
3603     llvm::BasicBlock *InnerExitBB =
3604         CGF.createBasicBlock("omp.inner.log.scan.exit");
3605     llvm::Value *CmpI = CGF.Builder.CreateICmpUGE(NMin1, Pow2K);
3606     CGF.Builder.CreateCondBr(CmpI, InnerLoopBB, InnerExitBB);
3607     CGF.EmitBlock(InnerLoopBB);
3608     auto *IVal = CGF.Builder.CreatePHI(CGF.SizeTy, 2);
3609     IVal->addIncoming(NMin1, LoopBB);
3610     {
3611       CodeGenFunction::OMPPrivateScope PrivScope(CGF);
3612       auto *ILHS = LHSs.begin();
3613       auto *IRHS = RHSs.begin();
3614       for (const Expr *CopyArrayElem : CopyArrayElems) {
3615         const auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
3616         const auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
3617         Address LHSAddr = Address::invalid();
3618         {
3619           CodeGenFunction::OpaqueValueMapping IdxMapping(
3620               CGF,
3621               cast<OpaqueValueExpr>(
3622                   cast<ArraySubscriptExpr>(CopyArrayElem)->getIdx()),
3623               RValue::get(IVal));
3624           LHSAddr = CGF.EmitLValue(CopyArrayElem).getAddress(CGF);
3625         }
3626         PrivScope.addPrivate(LHSVD, LHSAddr);
3627         Address RHSAddr = Address::invalid();
3628         {
3629           llvm::Value *OffsetIVal = CGF.Builder.CreateNUWSub(IVal, Pow2K);
3630           CodeGenFunction::OpaqueValueMapping IdxMapping(
3631               CGF,
3632               cast<OpaqueValueExpr>(
3633                   cast<ArraySubscriptExpr>(CopyArrayElem)->getIdx()),
3634               RValue::get(OffsetIVal));
3635           RHSAddr = CGF.EmitLValue(CopyArrayElem).getAddress(CGF);
3636         }
3637         PrivScope.addPrivate(RHSVD, RHSAddr);
3638         ++ILHS;
3639         ++IRHS;
3640       }
3641       PrivScope.Privatize();
3642       CGF.CGM.getOpenMPRuntime().emitReduction(
3643           CGF, S.getEndLoc(), Privates, LHSs, RHSs, ReductionOps,
3644           {/*WithNowait=*/true, /*SimpleReduction=*/true, OMPD_unknown});
3645     }
3646     llvm::Value *NextIVal =
3647         CGF.Builder.CreateNUWSub(IVal, llvm::ConstantInt::get(CGF.SizeTy, 1));
3648     IVal->addIncoming(NextIVal, CGF.Builder.GetInsertBlock());
3649     CmpI = CGF.Builder.CreateICmpUGE(NextIVal, Pow2K);
3650     CGF.Builder.CreateCondBr(CmpI, InnerLoopBB, InnerExitBB);
3651     CGF.EmitBlock(InnerExitBB);
3652     llvm::Value *Next =
3653         CGF.Builder.CreateNUWAdd(Counter, llvm::ConstantInt::get(CGF.IntTy, 1));
3654     Counter->addIncoming(Next, CGF.Builder.GetInsertBlock());
3655     // pow2k <<= 1;
3656     llvm::Value *NextPow2K =
3657         CGF.Builder.CreateShl(Pow2K, 1, "", /*HasNUW=*/true);
3658     Pow2K->addIncoming(NextPow2K, CGF.Builder.GetInsertBlock());
3659     llvm::Value *Cmp = CGF.Builder.CreateICmpNE(Next, LogVal);
3660     CGF.Builder.CreateCondBr(Cmp, LoopBB, ExitBB);
3661     auto DL1 = ApplyDebugLocation::CreateDefaultArtificial(CGF, S.getEndLoc());
3662     CGF.EmitBlock(ExitBB);
3663   };
3664   if (isOpenMPParallelDirective(S.getDirectiveKind())) {
3665     CGF.CGM.getOpenMPRuntime().emitMasterRegion(CGF, CodeGen, S.getBeginLoc());
3666     CGF.CGM.getOpenMPRuntime().emitBarrierCall(
3667         CGF, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
3668         /*ForceSimpleCall=*/true);
3669   } else {
3670     RegionCodeGenTy RCG(CodeGen);
3671     RCG(CGF);
3672   }
3673 
3674   CGF.OMPFirstScanLoop = false;
3675   SecondGen(CGF);
3676 }
3677 
3678 static bool emitWorksharingDirective(CodeGenFunction &CGF,
3679                                      const OMPLoopDirective &S,
3680                                      bool HasCancel) {
3681   bool HasLastprivates;
3682   if (llvm::any_of(S.getClausesOfKind<OMPReductionClause>(),
3683                    [](const OMPReductionClause *C) {
3684                      return C->getModifier() == OMPC_REDUCTION_inscan;
3685                    })) {
3686     const auto &&NumIteratorsGen = [&S](CodeGenFunction &CGF) {
3687       CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
3688       OMPLoopScope LoopScope(CGF, S);
3689       return CGF.EmitScalarExpr(S.getNumIterations());
3690     };
3691     const auto &&FirstGen = [&S, HasCancel](CodeGenFunction &CGF) {
3692       CodeGenFunction::OMPCancelStackRAII CancelRegion(
3693           CGF, S.getDirectiveKind(), HasCancel);
3694       (void)CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(),
3695                                        emitForLoopBounds,
3696                                        emitDispatchForLoopBounds);
3697       // Emit an implicit barrier at the end.
3698       CGF.CGM.getOpenMPRuntime().emitBarrierCall(CGF, S.getBeginLoc(),
3699                                                  OMPD_for);
3700     };
3701     const auto &&SecondGen = [&S, HasCancel,
3702                               &HasLastprivates](CodeGenFunction &CGF) {
3703       CodeGenFunction::OMPCancelStackRAII CancelRegion(
3704           CGF, S.getDirectiveKind(), HasCancel);
3705       HasLastprivates = CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(),
3706                                                    emitForLoopBounds,
3707                                                    emitDispatchForLoopBounds);
3708     };
3709     if (!isOpenMPParallelDirective(S.getDirectiveKind()))
3710       emitScanBasedDirectiveDecls(CGF, S, NumIteratorsGen);
3711     emitScanBasedDirective(CGF, S, NumIteratorsGen, FirstGen, SecondGen);
3712   } else {
3713     CodeGenFunction::OMPCancelStackRAII CancelRegion(CGF, S.getDirectiveKind(),
3714                                                      HasCancel);
3715     HasLastprivates = CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(),
3716                                                  emitForLoopBounds,
3717                                                  emitDispatchForLoopBounds);
3718   }
3719   return HasLastprivates;
3720 }
3721 
3722 static bool isSupportedByOpenMPIRBuilder(const OMPForDirective &S) {
3723   if (S.hasCancel())
3724     return false;
3725   for (OMPClause *C : S.clauses()) {
3726     if (isa<OMPNowaitClause>(C))
3727       continue;
3728 
3729     if (auto *SC = dyn_cast<OMPScheduleClause>(C)) {
3730       if (SC->getFirstScheduleModifier() != OMPC_SCHEDULE_MODIFIER_unknown)
3731         return false;
3732       if (SC->getSecondScheduleModifier() != OMPC_SCHEDULE_MODIFIER_unknown)
3733         return false;
3734       switch (SC->getScheduleKind()) {
3735       case OMPC_SCHEDULE_auto:
3736       case OMPC_SCHEDULE_dynamic:
3737       case OMPC_SCHEDULE_runtime:
3738       case OMPC_SCHEDULE_guided:
3739       case OMPC_SCHEDULE_static:
3740         continue;
3741       case OMPC_SCHEDULE_unknown:
3742         return false;
3743       }
3744     }
3745 
3746     return false;
3747   }
3748 
3749   return true;
3750 }
3751 
3752 static llvm::omp::ScheduleKind
3753 convertClauseKindToSchedKind(OpenMPScheduleClauseKind ScheduleClauseKind) {
3754   switch (ScheduleClauseKind) {
3755   case OMPC_SCHEDULE_unknown:
3756     return llvm::omp::OMP_SCHEDULE_Default;
3757   case OMPC_SCHEDULE_auto:
3758     return llvm::omp::OMP_SCHEDULE_Auto;
3759   case OMPC_SCHEDULE_dynamic:
3760     return llvm::omp::OMP_SCHEDULE_Dynamic;
3761   case OMPC_SCHEDULE_guided:
3762     return llvm::omp::OMP_SCHEDULE_Guided;
3763   case OMPC_SCHEDULE_runtime:
3764     return llvm::omp::OMP_SCHEDULE_Runtime;
3765   case OMPC_SCHEDULE_static:
3766     return llvm::omp::OMP_SCHEDULE_Static;
3767   }
3768   llvm_unreachable("Unhandled schedule kind");
3769 }
3770 
3771 void CodeGenFunction::EmitOMPForDirective(const OMPForDirective &S) {
3772   bool HasLastprivates = false;
3773   bool UseOMPIRBuilder =
3774       CGM.getLangOpts().OpenMPIRBuilder && isSupportedByOpenMPIRBuilder(S);
3775   auto &&CodeGen = [this, &S, &HasLastprivates,
3776                     UseOMPIRBuilder](CodeGenFunction &CGF, PrePostActionTy &) {
3777     // Use the OpenMPIRBuilder if enabled.
3778     if (UseOMPIRBuilder) {
3779       bool NeedsBarrier = !S.getSingleClause<OMPNowaitClause>();
3780 
3781       llvm::omp::ScheduleKind SchedKind = llvm::omp::OMP_SCHEDULE_Default;
3782       llvm::Value *ChunkSize = nullptr;
3783       if (auto *SchedClause = S.getSingleClause<OMPScheduleClause>()) {
3784         SchedKind =
3785             convertClauseKindToSchedKind(SchedClause->getScheduleKind());
3786         if (const Expr *ChunkSizeExpr = SchedClause->getChunkSize())
3787           ChunkSize = EmitScalarExpr(ChunkSizeExpr);
3788       }
3789 
3790       // Emit the associated statement and get its loop representation.
3791       const Stmt *Inner = S.getRawStmt();
3792       llvm::CanonicalLoopInfo *CLI =
3793           EmitOMPCollapsedCanonicalLoopNest(Inner, 1);
3794 
3795       llvm::OpenMPIRBuilder &OMPBuilder =
3796           CGM.getOpenMPRuntime().getOMPBuilder();
3797       llvm::OpenMPIRBuilder::InsertPointTy AllocaIP(
3798           AllocaInsertPt->getParent(), AllocaInsertPt->getIterator());
3799       OMPBuilder.applyWorkshareLoop(
3800           Builder.getCurrentDebugLocation(), CLI, AllocaIP, NeedsBarrier,
3801           SchedKind, ChunkSize, /*HasSimdModifier=*/false,
3802           /*HasMonotonicModifier=*/false, /*HasNonmonotonicModifier=*/false,
3803           /*HasOrderedClause=*/false);
3804       return;
3805     }
3806 
3807     HasLastprivates = emitWorksharingDirective(CGF, S, S.hasCancel());
3808   };
3809   {
3810     auto LPCRegion =
3811         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
3812     OMPLexicalScope Scope(*this, S, OMPD_unknown);
3813     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_for, CodeGen,
3814                                                 S.hasCancel());
3815   }
3816 
3817   if (!UseOMPIRBuilder) {
3818     // Emit an implicit barrier at the end.
3819     if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates)
3820       CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getBeginLoc(), OMPD_for);
3821   }
3822   // Check for outer lastprivate conditional update.
3823   checkForLastprivateConditionalUpdate(*this, S);
3824 }
3825 
3826 void CodeGenFunction::EmitOMPForSimdDirective(const OMPForSimdDirective &S) {
3827   bool HasLastprivates = false;
3828   auto &&CodeGen = [&S, &HasLastprivates](CodeGenFunction &CGF,
3829                                           PrePostActionTy &) {
3830     HasLastprivates = emitWorksharingDirective(CGF, S, /*HasCancel=*/false);
3831   };
3832   {
3833     auto LPCRegion =
3834         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
3835     OMPLexicalScope Scope(*this, S, OMPD_unknown);
3836     CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen);
3837   }
3838 
3839   // Emit an implicit barrier at the end.
3840   if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates)
3841     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getBeginLoc(), OMPD_for);
3842   // Check for outer lastprivate conditional update.
3843   checkForLastprivateConditionalUpdate(*this, S);
3844 }
3845 
3846 static LValue createSectionLVal(CodeGenFunction &CGF, QualType Ty,
3847                                 const Twine &Name,
3848                                 llvm::Value *Init = nullptr) {
3849   LValue LVal = CGF.MakeAddrLValue(CGF.CreateMemTemp(Ty, Name), Ty);
3850   if (Init)
3851     CGF.EmitStoreThroughLValue(RValue::get(Init), LVal, /*isInit*/ true);
3852   return LVal;
3853 }
3854 
3855 void CodeGenFunction::EmitSections(const OMPExecutableDirective &S) {
3856   const Stmt *CapturedStmt = S.getInnermostCapturedStmt()->getCapturedStmt();
3857   const auto *CS = dyn_cast<CompoundStmt>(CapturedStmt);
3858   bool HasLastprivates = false;
3859   auto &&CodeGen = [&S, CapturedStmt, CS,
3860                     &HasLastprivates](CodeGenFunction &CGF, PrePostActionTy &) {
3861     const ASTContext &C = CGF.getContext();
3862     QualType KmpInt32Ty =
3863         C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1);
3864     // Emit helper vars inits.
3865     LValue LB = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.lb.",
3866                                   CGF.Builder.getInt32(0));
3867     llvm::ConstantInt *GlobalUBVal = CS != nullptr
3868                                          ? CGF.Builder.getInt32(CS->size() - 1)
3869                                          : CGF.Builder.getInt32(0);
3870     LValue UB =
3871         createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.ub.", GlobalUBVal);
3872     LValue ST = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.st.",
3873                                   CGF.Builder.getInt32(1));
3874     LValue IL = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.il.",
3875                                   CGF.Builder.getInt32(0));
3876     // Loop counter.
3877     LValue IV = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.iv.");
3878     OpaqueValueExpr IVRefExpr(S.getBeginLoc(), KmpInt32Ty, VK_LValue);
3879     CodeGenFunction::OpaqueValueMapping OpaqueIV(CGF, &IVRefExpr, IV);
3880     OpaqueValueExpr UBRefExpr(S.getBeginLoc(), KmpInt32Ty, VK_LValue);
3881     CodeGenFunction::OpaqueValueMapping OpaqueUB(CGF, &UBRefExpr, UB);
3882     // Generate condition for loop.
3883     BinaryOperator *Cond = BinaryOperator::Create(
3884         C, &IVRefExpr, &UBRefExpr, BO_LE, C.BoolTy, VK_PRValue, OK_Ordinary,
3885         S.getBeginLoc(), FPOptionsOverride());
3886     // Increment for loop counter.
3887     UnaryOperator *Inc = UnaryOperator::Create(
3888         C, &IVRefExpr, UO_PreInc, KmpInt32Ty, VK_PRValue, OK_Ordinary,
3889         S.getBeginLoc(), true, FPOptionsOverride());
3890     auto &&BodyGen = [CapturedStmt, CS, &S, &IV](CodeGenFunction &CGF) {
3891       // Iterate through all sections and emit a switch construct:
3892       // switch (IV) {
3893       //   case 0:
3894       //     <SectionStmt[0]>;
3895       //     break;
3896       // ...
3897       //   case <NumSection> - 1:
3898       //     <SectionStmt[<NumSection> - 1]>;
3899       //     break;
3900       // }
3901       // .omp.sections.exit:
3902       llvm::BasicBlock *ExitBB = CGF.createBasicBlock(".omp.sections.exit");
3903       llvm::SwitchInst *SwitchStmt =
3904           CGF.Builder.CreateSwitch(CGF.EmitLoadOfScalar(IV, S.getBeginLoc()),
3905                                    ExitBB, CS == nullptr ? 1 : CS->size());
3906       if (CS) {
3907         unsigned CaseNumber = 0;
3908         for (const Stmt *SubStmt : CS->children()) {
3909           auto CaseBB = CGF.createBasicBlock(".omp.sections.case");
3910           CGF.EmitBlock(CaseBB);
3911           SwitchStmt->addCase(CGF.Builder.getInt32(CaseNumber), CaseBB);
3912           CGF.EmitStmt(SubStmt);
3913           CGF.EmitBranch(ExitBB);
3914           ++CaseNumber;
3915         }
3916       } else {
3917         llvm::BasicBlock *CaseBB = CGF.createBasicBlock(".omp.sections.case");
3918         CGF.EmitBlock(CaseBB);
3919         SwitchStmt->addCase(CGF.Builder.getInt32(0), CaseBB);
3920         CGF.EmitStmt(CapturedStmt);
3921         CGF.EmitBranch(ExitBB);
3922       }
3923       CGF.EmitBlock(ExitBB, /*IsFinished=*/true);
3924     };
3925 
3926     CodeGenFunction::OMPPrivateScope LoopScope(CGF);
3927     if (CGF.EmitOMPFirstprivateClause(S, LoopScope)) {
3928       // Emit implicit barrier to synchronize threads and avoid data races on
3929       // initialization of firstprivate variables and post-update of lastprivate
3930       // variables.
3931       CGF.CGM.getOpenMPRuntime().emitBarrierCall(
3932           CGF, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
3933           /*ForceSimpleCall=*/true);
3934     }
3935     CGF.EmitOMPPrivateClause(S, LoopScope);
3936     CGOpenMPRuntime::LastprivateConditionalRAII LPCRegion(CGF, S, IV);
3937     HasLastprivates = CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
3938     CGF.EmitOMPReductionClauseInit(S, LoopScope);
3939     (void)LoopScope.Privatize();
3940     if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
3941       CGF.CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(CGF, S);
3942 
3943     // Emit static non-chunked loop.
3944     OpenMPScheduleTy ScheduleKind;
3945     ScheduleKind.Schedule = OMPC_SCHEDULE_static;
3946     CGOpenMPRuntime::StaticRTInput StaticInit(
3947         /*IVSize=*/32, /*IVSigned=*/true, /*Ordered=*/false, IL.getAddress(CGF),
3948         LB.getAddress(CGF), UB.getAddress(CGF), ST.getAddress(CGF));
3949     CGF.CGM.getOpenMPRuntime().emitForStaticInit(
3950         CGF, S.getBeginLoc(), S.getDirectiveKind(), ScheduleKind, StaticInit);
3951     // UB = min(UB, GlobalUB);
3952     llvm::Value *UBVal = CGF.EmitLoadOfScalar(UB, S.getBeginLoc());
3953     llvm::Value *MinUBGlobalUB = CGF.Builder.CreateSelect(
3954         CGF.Builder.CreateICmpSLT(UBVal, GlobalUBVal), UBVal, GlobalUBVal);
3955     CGF.EmitStoreOfScalar(MinUBGlobalUB, UB);
3956     // IV = LB;
3957     CGF.EmitStoreOfScalar(CGF.EmitLoadOfScalar(LB, S.getBeginLoc()), IV);
3958     // while (idx <= UB) { BODY; ++idx; }
3959     CGF.EmitOMPInnerLoop(S, /*RequiresCleanup=*/false, Cond, Inc, BodyGen,
3960                          [](CodeGenFunction &) {});
3961     // Tell the runtime we are done.
3962     auto &&CodeGen = [&S](CodeGenFunction &CGF) {
3963       CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getEndLoc(),
3964                                                      S.getDirectiveKind());
3965     };
3966     CGF.OMPCancelStack.emitExit(CGF, S.getDirectiveKind(), CodeGen);
3967     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel);
3968     // Emit post-update of the reduction variables if IsLastIter != 0.
3969     emitPostUpdateForReductionClause(CGF, S, [IL, &S](CodeGenFunction &CGF) {
3970       return CGF.Builder.CreateIsNotNull(
3971           CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
3972     });
3973 
3974     // Emit final copy of the lastprivate variables if IsLastIter != 0.
3975     if (HasLastprivates)
3976       CGF.EmitOMPLastprivateClauseFinal(
3977           S, /*NoFinals=*/false,
3978           CGF.Builder.CreateIsNotNull(
3979               CGF.EmitLoadOfScalar(IL, S.getBeginLoc())));
3980   };
3981 
3982   bool HasCancel = false;
3983   if (auto *OSD = dyn_cast<OMPSectionsDirective>(&S))
3984     HasCancel = OSD->hasCancel();
3985   else if (auto *OPSD = dyn_cast<OMPParallelSectionsDirective>(&S))
3986     HasCancel = OPSD->hasCancel();
3987   OMPCancelStackRAII CancelRegion(*this, S.getDirectiveKind(), HasCancel);
3988   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_sections, CodeGen,
3989                                               HasCancel);
3990   // Emit barrier for lastprivates only if 'sections' directive has 'nowait'
3991   // clause. Otherwise the barrier will be generated by the codegen for the
3992   // directive.
3993   if (HasLastprivates && S.getSingleClause<OMPNowaitClause>()) {
3994     // Emit implicit barrier to synchronize threads and avoid data races on
3995     // initialization of firstprivate variables.
3996     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getBeginLoc(),
3997                                            OMPD_unknown);
3998   }
3999 }
4000 
4001 void CodeGenFunction::EmitOMPSectionsDirective(const OMPSectionsDirective &S) {
4002   if (CGM.getLangOpts().OpenMPIRBuilder) {
4003     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
4004     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
4005     using BodyGenCallbackTy = llvm::OpenMPIRBuilder::StorableBodyGenCallbackTy;
4006 
4007     auto FiniCB = [this](InsertPointTy IP) {
4008       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
4009     };
4010 
4011     const CapturedStmt *ICS = S.getInnermostCapturedStmt();
4012     const Stmt *CapturedStmt = S.getInnermostCapturedStmt()->getCapturedStmt();
4013     const auto *CS = dyn_cast<CompoundStmt>(CapturedStmt);
4014     llvm::SmallVector<BodyGenCallbackTy, 4> SectionCBVector;
4015     if (CS) {
4016       for (const Stmt *SubStmt : CS->children()) {
4017         auto SectionCB = [this, SubStmt](InsertPointTy AllocaIP,
4018                                          InsertPointTy CodeGenIP) {
4019           OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4020               *this, SubStmt, AllocaIP, CodeGenIP, "section");
4021         };
4022         SectionCBVector.push_back(SectionCB);
4023       }
4024     } else {
4025       auto SectionCB = [this, CapturedStmt](InsertPointTy AllocaIP,
4026                                             InsertPointTy CodeGenIP) {
4027         OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4028             *this, CapturedStmt, AllocaIP, CodeGenIP, "section");
4029       };
4030       SectionCBVector.push_back(SectionCB);
4031     }
4032 
4033     // Privatization callback that performs appropriate action for
4034     // shared/private/firstprivate/lastprivate/copyin/... variables.
4035     //
4036     // TODO: This defaults to shared right now.
4037     auto PrivCB = [](InsertPointTy AllocaIP, InsertPointTy CodeGenIP,
4038                      llvm::Value &, llvm::Value &Val, llvm::Value *&ReplVal) {
4039       // The next line is appropriate only for variables (Val) with the
4040       // data-sharing attribute "shared".
4041       ReplVal = &Val;
4042 
4043       return CodeGenIP;
4044     };
4045 
4046     CGCapturedStmtInfo CGSI(*ICS, CR_OpenMP);
4047     CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(*this, &CGSI);
4048     llvm::OpenMPIRBuilder::InsertPointTy AllocaIP(
4049         AllocaInsertPt->getParent(), AllocaInsertPt->getIterator());
4050     Builder.restoreIP(OMPBuilder.createSections(
4051         Builder, AllocaIP, SectionCBVector, PrivCB, FiniCB, S.hasCancel(),
4052         S.getSingleClause<OMPNowaitClause>()));
4053     return;
4054   }
4055   {
4056     auto LPCRegion =
4057         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4058     OMPLexicalScope Scope(*this, S, OMPD_unknown);
4059     EmitSections(S);
4060   }
4061   // Emit an implicit barrier at the end.
4062   if (!S.getSingleClause<OMPNowaitClause>()) {
4063     CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getBeginLoc(),
4064                                            OMPD_sections);
4065   }
4066   // Check for outer lastprivate conditional update.
4067   checkForLastprivateConditionalUpdate(*this, S);
4068 }
4069 
4070 void CodeGenFunction::EmitOMPSectionDirective(const OMPSectionDirective &S) {
4071   if (CGM.getLangOpts().OpenMPIRBuilder) {
4072     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
4073     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
4074 
4075     const Stmt *SectionRegionBodyStmt = S.getAssociatedStmt();
4076     auto FiniCB = [this](InsertPointTy IP) {
4077       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
4078     };
4079 
4080     auto BodyGenCB = [SectionRegionBodyStmt, this](InsertPointTy AllocaIP,
4081                                                    InsertPointTy CodeGenIP) {
4082       OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4083           *this, SectionRegionBodyStmt, AllocaIP, CodeGenIP, "section");
4084     };
4085 
4086     LexicalScope Scope(*this, S.getSourceRange());
4087     EmitStopPoint(&S);
4088     Builder.restoreIP(OMPBuilder.createSection(Builder, BodyGenCB, FiniCB));
4089 
4090     return;
4091   }
4092   LexicalScope Scope(*this, S.getSourceRange());
4093   EmitStopPoint(&S);
4094   EmitStmt(S.getAssociatedStmt());
4095 }
4096 
4097 void CodeGenFunction::EmitOMPSingleDirective(const OMPSingleDirective &S) {
4098   llvm::SmallVector<const Expr *, 8> CopyprivateVars;
4099   llvm::SmallVector<const Expr *, 8> DestExprs;
4100   llvm::SmallVector<const Expr *, 8> SrcExprs;
4101   llvm::SmallVector<const Expr *, 8> AssignmentOps;
4102   // Check if there are any 'copyprivate' clauses associated with this
4103   // 'single' construct.
4104   // Build a list of copyprivate variables along with helper expressions
4105   // (<source>, <destination>, <destination>=<source> expressions)
4106   for (const auto *C : S.getClausesOfKind<OMPCopyprivateClause>()) {
4107     CopyprivateVars.append(C->varlists().begin(), C->varlists().end());
4108     DestExprs.append(C->destination_exprs().begin(),
4109                      C->destination_exprs().end());
4110     SrcExprs.append(C->source_exprs().begin(), C->source_exprs().end());
4111     AssignmentOps.append(C->assignment_ops().begin(),
4112                          C->assignment_ops().end());
4113   }
4114   // Emit code for 'single' region along with 'copyprivate' clauses
4115   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4116     Action.Enter(CGF);
4117     OMPPrivateScope SingleScope(CGF);
4118     (void)CGF.EmitOMPFirstprivateClause(S, SingleScope);
4119     CGF.EmitOMPPrivateClause(S, SingleScope);
4120     (void)SingleScope.Privatize();
4121     CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt());
4122   };
4123   {
4124     auto LPCRegion =
4125         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4126     OMPLexicalScope Scope(*this, S, OMPD_unknown);
4127     CGM.getOpenMPRuntime().emitSingleRegion(*this, CodeGen, S.getBeginLoc(),
4128                                             CopyprivateVars, DestExprs,
4129                                             SrcExprs, AssignmentOps);
4130   }
4131   // Emit an implicit barrier at the end (to avoid data race on firstprivate
4132   // init or if no 'nowait' clause was specified and no 'copyprivate' clause).
4133   if (!S.getSingleClause<OMPNowaitClause>() && CopyprivateVars.empty()) {
4134     CGM.getOpenMPRuntime().emitBarrierCall(
4135         *this, S.getBeginLoc(),
4136         S.getSingleClause<OMPNowaitClause>() ? OMPD_unknown : OMPD_single);
4137   }
4138   // Check for outer lastprivate conditional update.
4139   checkForLastprivateConditionalUpdate(*this, S);
4140 }
4141 
4142 static void emitMaster(CodeGenFunction &CGF, const OMPExecutableDirective &S) {
4143   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4144     Action.Enter(CGF);
4145     CGF.EmitStmt(S.getRawStmt());
4146   };
4147   CGF.CGM.getOpenMPRuntime().emitMasterRegion(CGF, CodeGen, S.getBeginLoc());
4148 }
4149 
4150 void CodeGenFunction::EmitOMPMasterDirective(const OMPMasterDirective &S) {
4151   if (CGM.getLangOpts().OpenMPIRBuilder) {
4152     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
4153     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
4154 
4155     const Stmt *MasterRegionBodyStmt = S.getAssociatedStmt();
4156 
4157     auto FiniCB = [this](InsertPointTy IP) {
4158       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
4159     };
4160 
4161     auto BodyGenCB = [MasterRegionBodyStmt, this](InsertPointTy AllocaIP,
4162                                                   InsertPointTy CodeGenIP) {
4163       OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4164           *this, MasterRegionBodyStmt, AllocaIP, CodeGenIP, "master");
4165     };
4166 
4167     LexicalScope Scope(*this, S.getSourceRange());
4168     EmitStopPoint(&S);
4169     Builder.restoreIP(OMPBuilder.createMaster(Builder, BodyGenCB, FiniCB));
4170 
4171     return;
4172   }
4173   LexicalScope Scope(*this, S.getSourceRange());
4174   EmitStopPoint(&S);
4175   emitMaster(*this, S);
4176 }
4177 
4178 static void emitMasked(CodeGenFunction &CGF, const OMPExecutableDirective &S) {
4179   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4180     Action.Enter(CGF);
4181     CGF.EmitStmt(S.getRawStmt());
4182   };
4183   Expr *Filter = nullptr;
4184   if (const auto *FilterClause = S.getSingleClause<OMPFilterClause>())
4185     Filter = FilterClause->getThreadID();
4186   CGF.CGM.getOpenMPRuntime().emitMaskedRegion(CGF, CodeGen, S.getBeginLoc(),
4187                                               Filter);
4188 }
4189 
4190 void CodeGenFunction::EmitOMPMaskedDirective(const OMPMaskedDirective &S) {
4191   if (CGM.getLangOpts().OpenMPIRBuilder) {
4192     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
4193     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
4194 
4195     const Stmt *MaskedRegionBodyStmt = S.getAssociatedStmt();
4196     const Expr *Filter = nullptr;
4197     if (const auto *FilterClause = S.getSingleClause<OMPFilterClause>())
4198       Filter = FilterClause->getThreadID();
4199     llvm::Value *FilterVal = Filter
4200                                  ? EmitScalarExpr(Filter, CGM.Int32Ty)
4201                                  : llvm::ConstantInt::get(CGM.Int32Ty, /*V=*/0);
4202 
4203     auto FiniCB = [this](InsertPointTy IP) {
4204       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
4205     };
4206 
4207     auto BodyGenCB = [MaskedRegionBodyStmt, this](InsertPointTy AllocaIP,
4208                                                   InsertPointTy CodeGenIP) {
4209       OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4210           *this, MaskedRegionBodyStmt, AllocaIP, CodeGenIP, "masked");
4211     };
4212 
4213     LexicalScope Scope(*this, S.getSourceRange());
4214     EmitStopPoint(&S);
4215     Builder.restoreIP(
4216         OMPBuilder.createMasked(Builder, BodyGenCB, FiniCB, FilterVal));
4217 
4218     return;
4219   }
4220   LexicalScope Scope(*this, S.getSourceRange());
4221   EmitStopPoint(&S);
4222   emitMasked(*this, S);
4223 }
4224 
4225 void CodeGenFunction::EmitOMPCriticalDirective(const OMPCriticalDirective &S) {
4226   if (CGM.getLangOpts().OpenMPIRBuilder) {
4227     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
4228     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
4229 
4230     const Stmt *CriticalRegionBodyStmt = S.getAssociatedStmt();
4231     const Expr *Hint = nullptr;
4232     if (const auto *HintClause = S.getSingleClause<OMPHintClause>())
4233       Hint = HintClause->getHint();
4234 
4235     // TODO: This is slightly different from what's currently being done in
4236     // clang. Fix the Int32Ty to IntPtrTy (pointer width size) when everything
4237     // about typing is final.
4238     llvm::Value *HintInst = nullptr;
4239     if (Hint)
4240       HintInst =
4241           Builder.CreateIntCast(EmitScalarExpr(Hint), CGM.Int32Ty, false);
4242 
4243     auto FiniCB = [this](InsertPointTy IP) {
4244       OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
4245     };
4246 
4247     auto BodyGenCB = [CriticalRegionBodyStmt, this](InsertPointTy AllocaIP,
4248                                                     InsertPointTy CodeGenIP) {
4249       OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
4250           *this, CriticalRegionBodyStmt, AllocaIP, CodeGenIP, "critical");
4251     };
4252 
4253     LexicalScope Scope(*this, S.getSourceRange());
4254     EmitStopPoint(&S);
4255     Builder.restoreIP(OMPBuilder.createCritical(
4256         Builder, BodyGenCB, FiniCB, S.getDirectiveName().getAsString(),
4257         HintInst));
4258 
4259     return;
4260   }
4261 
4262   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4263     Action.Enter(CGF);
4264     CGF.EmitStmt(S.getAssociatedStmt());
4265   };
4266   const Expr *Hint = nullptr;
4267   if (const auto *HintClause = S.getSingleClause<OMPHintClause>())
4268     Hint = HintClause->getHint();
4269   LexicalScope Scope(*this, S.getSourceRange());
4270   EmitStopPoint(&S);
4271   CGM.getOpenMPRuntime().emitCriticalRegion(*this,
4272                                             S.getDirectiveName().getAsString(),
4273                                             CodeGen, S.getBeginLoc(), Hint);
4274 }
4275 
4276 void CodeGenFunction::EmitOMPParallelForDirective(
4277     const OMPParallelForDirective &S) {
4278   // Emit directive as a combined directive that consists of two implicit
4279   // directives: 'parallel' with 'for' directive.
4280   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4281     Action.Enter(CGF);
4282     (void)emitWorksharingDirective(CGF, S, S.hasCancel());
4283   };
4284   {
4285     if (llvm::any_of(S.getClausesOfKind<OMPReductionClause>(),
4286                      [](const OMPReductionClause *C) {
4287                        return C->getModifier() == OMPC_REDUCTION_inscan;
4288                      })) {
4289       const auto &&NumIteratorsGen = [&S](CodeGenFunction &CGF) {
4290         CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
4291         CGCapturedStmtInfo CGSI(CR_OpenMP);
4292         CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGSI);
4293         OMPLoopScope LoopScope(CGF, S);
4294         return CGF.EmitScalarExpr(S.getNumIterations());
4295       };
4296       emitScanBasedDirectiveDecls(*this, S, NumIteratorsGen);
4297     }
4298     auto LPCRegion =
4299         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4300     emitCommonOMPParallelDirective(*this, S, OMPD_for, CodeGen,
4301                                    emitEmptyBoundParameters);
4302   }
4303   // Check for outer lastprivate conditional update.
4304   checkForLastprivateConditionalUpdate(*this, S);
4305 }
4306 
4307 void CodeGenFunction::EmitOMPParallelForSimdDirective(
4308     const OMPParallelForSimdDirective &S) {
4309   // Emit directive as a combined directive that consists of two implicit
4310   // directives: 'parallel' with 'for' directive.
4311   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4312     Action.Enter(CGF);
4313     (void)emitWorksharingDirective(CGF, S, /*HasCancel=*/false);
4314   };
4315   {
4316     if (llvm::any_of(S.getClausesOfKind<OMPReductionClause>(),
4317                      [](const OMPReductionClause *C) {
4318                        return C->getModifier() == OMPC_REDUCTION_inscan;
4319                      })) {
4320       const auto &&NumIteratorsGen = [&S](CodeGenFunction &CGF) {
4321         CodeGenFunction::OMPLocalDeclMapRAII Scope(CGF);
4322         CGCapturedStmtInfo CGSI(CR_OpenMP);
4323         CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGSI);
4324         OMPLoopScope LoopScope(CGF, S);
4325         return CGF.EmitScalarExpr(S.getNumIterations());
4326       };
4327       emitScanBasedDirectiveDecls(*this, S, NumIteratorsGen);
4328     }
4329     auto LPCRegion =
4330         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4331     emitCommonOMPParallelDirective(*this, S, OMPD_for_simd, CodeGen,
4332                                    emitEmptyBoundParameters);
4333   }
4334   // Check for outer lastprivate conditional update.
4335   checkForLastprivateConditionalUpdate(*this, S);
4336 }
4337 
4338 void CodeGenFunction::EmitOMPParallelMasterDirective(
4339     const OMPParallelMasterDirective &S) {
4340   // Emit directive as a combined directive that consists of two implicit
4341   // directives: 'parallel' with 'master' directive.
4342   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4343     Action.Enter(CGF);
4344     OMPPrivateScope PrivateScope(CGF);
4345     bool Copyins = CGF.EmitOMPCopyinClause(S);
4346     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
4347     if (Copyins) {
4348       // Emit implicit barrier to synchronize threads and avoid data races on
4349       // propagation master's thread values of threadprivate variables to local
4350       // instances of that variables of all other implicit threads.
4351       CGF.CGM.getOpenMPRuntime().emitBarrierCall(
4352           CGF, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
4353           /*ForceSimpleCall=*/true);
4354     }
4355     CGF.EmitOMPPrivateClause(S, PrivateScope);
4356     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
4357     (void)PrivateScope.Privatize();
4358     emitMaster(CGF, S);
4359     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel);
4360   };
4361   {
4362     auto LPCRegion =
4363         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4364     emitCommonOMPParallelDirective(*this, S, OMPD_master, CodeGen,
4365                                    emitEmptyBoundParameters);
4366     emitPostUpdateForReductionClause(*this, S,
4367                                      [](CodeGenFunction &) { return nullptr; });
4368   }
4369   // Check for outer lastprivate conditional update.
4370   checkForLastprivateConditionalUpdate(*this, S);
4371 }
4372 
4373 void CodeGenFunction::EmitOMPParallelSectionsDirective(
4374     const OMPParallelSectionsDirective &S) {
4375   // Emit directive as a combined directive that consists of two implicit
4376   // directives: 'parallel' with 'sections' directive.
4377   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
4378     Action.Enter(CGF);
4379     CGF.EmitSections(S);
4380   };
4381   {
4382     auto LPCRegion =
4383         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
4384     emitCommonOMPParallelDirective(*this, S, OMPD_sections, CodeGen,
4385                                    emitEmptyBoundParameters);
4386   }
4387   // Check for outer lastprivate conditional update.
4388   checkForLastprivateConditionalUpdate(*this, S);
4389 }
4390 
4391 namespace {
4392 /// Get the list of variables declared in the context of the untied tasks.
4393 class CheckVarsEscapingUntiedTaskDeclContext final
4394     : public ConstStmtVisitor<CheckVarsEscapingUntiedTaskDeclContext> {
4395   llvm::SmallVector<const VarDecl *, 4> PrivateDecls;
4396 
4397 public:
4398   explicit CheckVarsEscapingUntiedTaskDeclContext() = default;
4399   virtual ~CheckVarsEscapingUntiedTaskDeclContext() = default;
4400   void VisitDeclStmt(const DeclStmt *S) {
4401     if (!S)
4402       return;
4403     // Need to privatize only local vars, static locals can be processed as is.
4404     for (const Decl *D : S->decls()) {
4405       if (const auto *VD = dyn_cast_or_null<VarDecl>(D))
4406         if (VD->hasLocalStorage())
4407           PrivateDecls.push_back(VD);
4408     }
4409   }
4410   void VisitOMPExecutableDirective(const OMPExecutableDirective *) {}
4411   void VisitCapturedStmt(const CapturedStmt *) {}
4412   void VisitLambdaExpr(const LambdaExpr *) {}
4413   void VisitBlockExpr(const BlockExpr *) {}
4414   void VisitStmt(const Stmt *S) {
4415     if (!S)
4416       return;
4417     for (const Stmt *Child : S->children())
4418       if (Child)
4419         Visit(Child);
4420   }
4421 
4422   /// Swaps list of vars with the provided one.
4423   ArrayRef<const VarDecl *> getPrivateDecls() const { return PrivateDecls; }
4424 };
4425 } // anonymous namespace
4426 
4427 void CodeGenFunction::EmitOMPTaskBasedDirective(
4428     const OMPExecutableDirective &S, const OpenMPDirectiveKind CapturedRegion,
4429     const RegionCodeGenTy &BodyGen, const TaskGenTy &TaskGen,
4430     OMPTaskDataTy &Data) {
4431   // Emit outlined function for task construct.
4432   const CapturedStmt *CS = S.getCapturedStmt(CapturedRegion);
4433   auto I = CS->getCapturedDecl()->param_begin();
4434   auto PartId = std::next(I);
4435   auto TaskT = std::next(I, 4);
4436   // Check if the task is final
4437   if (const auto *Clause = S.getSingleClause<OMPFinalClause>()) {
4438     // If the condition constant folds and can be elided, try to avoid emitting
4439     // the condition and the dead arm of the if/else.
4440     const Expr *Cond = Clause->getCondition();
4441     bool CondConstant;
4442     if (ConstantFoldsToSimpleInteger(Cond, CondConstant))
4443       Data.Final.setInt(CondConstant);
4444     else
4445       Data.Final.setPointer(EvaluateExprAsBool(Cond));
4446   } else {
4447     // By default the task is not final.
4448     Data.Final.setInt(/*IntVal=*/false);
4449   }
4450   // Check if the task has 'priority' clause.
4451   if (const auto *Clause = S.getSingleClause<OMPPriorityClause>()) {
4452     const Expr *Prio = Clause->getPriority();
4453     Data.Priority.setInt(/*IntVal=*/true);
4454     Data.Priority.setPointer(EmitScalarConversion(
4455         EmitScalarExpr(Prio), Prio->getType(),
4456         getContext().getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1),
4457         Prio->getExprLoc()));
4458   }
4459   // The first function argument for tasks is a thread id, the second one is a
4460   // part id (0 for tied tasks, >=0 for untied task).
4461   llvm::DenseSet<const VarDecl *> EmittedAsPrivate;
4462   // Get list of private variables.
4463   for (const auto *C : S.getClausesOfKind<OMPPrivateClause>()) {
4464     auto IRef = C->varlist_begin();
4465     for (const Expr *IInit : C->private_copies()) {
4466       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
4467       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
4468         Data.PrivateVars.push_back(*IRef);
4469         Data.PrivateCopies.push_back(IInit);
4470       }
4471       ++IRef;
4472     }
4473   }
4474   EmittedAsPrivate.clear();
4475   // Get list of firstprivate variables.
4476   for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) {
4477     auto IRef = C->varlist_begin();
4478     auto IElemInitRef = C->inits().begin();
4479     for (const Expr *IInit : C->private_copies()) {
4480       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
4481       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
4482         Data.FirstprivateVars.push_back(*IRef);
4483         Data.FirstprivateCopies.push_back(IInit);
4484         Data.FirstprivateInits.push_back(*IElemInitRef);
4485       }
4486       ++IRef;
4487       ++IElemInitRef;
4488     }
4489   }
4490   // Get list of lastprivate variables (for taskloops).
4491   llvm::MapVector<const VarDecl *, const DeclRefExpr *> LastprivateDstsOrigs;
4492   for (const auto *C : S.getClausesOfKind<OMPLastprivateClause>()) {
4493     auto IRef = C->varlist_begin();
4494     auto ID = C->destination_exprs().begin();
4495     for (const Expr *IInit : C->private_copies()) {
4496       const auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl());
4497       if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) {
4498         Data.LastprivateVars.push_back(*IRef);
4499         Data.LastprivateCopies.push_back(IInit);
4500       }
4501       LastprivateDstsOrigs.insert(
4502           std::make_pair(cast<VarDecl>(cast<DeclRefExpr>(*ID)->getDecl()),
4503                          cast<DeclRefExpr>(*IRef)));
4504       ++IRef;
4505       ++ID;
4506     }
4507   }
4508   SmallVector<const Expr *, 4> LHSs;
4509   SmallVector<const Expr *, 4> RHSs;
4510   for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) {
4511     Data.ReductionVars.append(C->varlist_begin(), C->varlist_end());
4512     Data.ReductionOrigs.append(C->varlist_begin(), C->varlist_end());
4513     Data.ReductionCopies.append(C->privates().begin(), C->privates().end());
4514     Data.ReductionOps.append(C->reduction_ops().begin(),
4515                              C->reduction_ops().end());
4516     LHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
4517     RHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
4518   }
4519   Data.Reductions = CGM.getOpenMPRuntime().emitTaskReductionInit(
4520       *this, S.getBeginLoc(), LHSs, RHSs, Data);
4521   // Build list of dependences.
4522   for (const auto *C : S.getClausesOfKind<OMPDependClause>()) {
4523     OMPTaskDataTy::DependData &DD =
4524         Data.Dependences.emplace_back(C->getDependencyKind(), C->getModifier());
4525     DD.DepExprs.append(C->varlist_begin(), C->varlist_end());
4526   }
4527   // Get list of local vars for untied tasks.
4528   if (!Data.Tied) {
4529     CheckVarsEscapingUntiedTaskDeclContext Checker;
4530     Checker.Visit(S.getInnermostCapturedStmt()->getCapturedStmt());
4531     Data.PrivateLocals.append(Checker.getPrivateDecls().begin(),
4532                               Checker.getPrivateDecls().end());
4533   }
4534   auto &&CodeGen = [&Data, &S, CS, &BodyGen, &LastprivateDstsOrigs,
4535                     CapturedRegion](CodeGenFunction &CGF,
4536                                     PrePostActionTy &Action) {
4537     llvm::MapVector<CanonicalDeclPtr<const VarDecl>,
4538                     std::pair<Address, Address>>
4539         UntiedLocalVars;
4540     // Set proper addresses for generated private copies.
4541     OMPPrivateScope Scope(CGF);
4542     // Generate debug info for variables present in shared clause.
4543     if (auto *DI = CGF.getDebugInfo()) {
4544       llvm::SmallDenseMap<const VarDecl *, FieldDecl *> CaptureFields =
4545           CGF.CapturedStmtInfo->getCaptureFields();
4546       llvm::Value *ContextValue = CGF.CapturedStmtInfo->getContextValue();
4547       if (CaptureFields.size() && ContextValue) {
4548         unsigned CharWidth = CGF.getContext().getCharWidth();
4549         // The shared variables are packed together as members of structure.
4550         // So the address of each shared variable can be computed by adding
4551         // offset of it (within record) to the base address of record. For each
4552         // shared variable, debug intrinsic llvm.dbg.declare is generated with
4553         // appropriate expressions (DIExpression).
4554         // Ex:
4555         //  %12 = load %struct.anon*, %struct.anon** %__context.addr.i
4556         //  call void @llvm.dbg.declare(metadata %struct.anon* %12,
4557         //            metadata !svar1,
4558         //            metadata !DIExpression(DW_OP_deref))
4559         //  call void @llvm.dbg.declare(metadata %struct.anon* %12,
4560         //            metadata !svar2,
4561         //            metadata !DIExpression(DW_OP_plus_uconst, 8, DW_OP_deref))
4562         for (auto It = CaptureFields.begin(); It != CaptureFields.end(); ++It) {
4563           const VarDecl *SharedVar = It->first;
4564           RecordDecl *CaptureRecord = It->second->getParent();
4565           const ASTRecordLayout &Layout =
4566               CGF.getContext().getASTRecordLayout(CaptureRecord);
4567           unsigned Offset =
4568               Layout.getFieldOffset(It->second->getFieldIndex()) / CharWidth;
4569           if (CGF.CGM.getCodeGenOpts().hasReducedDebugInfo())
4570             (void)DI->EmitDeclareOfAutoVariable(SharedVar, ContextValue,
4571                                                 CGF.Builder, false);
4572           llvm::Instruction &Last = CGF.Builder.GetInsertBlock()->back();
4573           // Get the call dbg.declare instruction we just created and update
4574           // its DIExpression to add offset to base address.
4575           if (auto DDI = dyn_cast<llvm::DbgVariableIntrinsic>(&Last)) {
4576             SmallVector<uint64_t, 8> Ops;
4577             // Add offset to the base address if non zero.
4578             if (Offset) {
4579               Ops.push_back(llvm::dwarf::DW_OP_plus_uconst);
4580               Ops.push_back(Offset);
4581             }
4582             Ops.push_back(llvm::dwarf::DW_OP_deref);
4583             auto &Ctx = DDI->getContext();
4584             llvm::DIExpression *DIExpr = llvm::DIExpression::get(Ctx, Ops);
4585             Last.setOperand(2, llvm::MetadataAsValue::get(Ctx, DIExpr));
4586           }
4587         }
4588       }
4589     }
4590     llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> FirstprivatePtrs;
4591     if (!Data.PrivateVars.empty() || !Data.FirstprivateVars.empty() ||
4592         !Data.LastprivateVars.empty() || !Data.PrivateLocals.empty()) {
4593       enum { PrivatesParam = 2, CopyFnParam = 3 };
4594       llvm::Value *CopyFn = CGF.Builder.CreateLoad(
4595           CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(CopyFnParam)));
4596       llvm::Value *PrivatesPtr = CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(
4597           CS->getCapturedDecl()->getParam(PrivatesParam)));
4598       // Map privates.
4599       llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> PrivatePtrs;
4600       llvm::SmallVector<llvm::Value *, 16> CallArgs;
4601       llvm::SmallVector<llvm::Type *, 4> ParamTypes;
4602       CallArgs.push_back(PrivatesPtr);
4603       ParamTypes.push_back(PrivatesPtr->getType());
4604       for (const Expr *E : Data.PrivateVars) {
4605         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4606         Address PrivatePtr = CGF.CreateMemTemp(
4607             CGF.getContext().getPointerType(E->getType()), ".priv.ptr.addr");
4608         PrivatePtrs.emplace_back(VD, PrivatePtr);
4609         CallArgs.push_back(PrivatePtr.getPointer());
4610         ParamTypes.push_back(PrivatePtr.getType());
4611       }
4612       for (const Expr *E : Data.FirstprivateVars) {
4613         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4614         Address PrivatePtr =
4615             CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()),
4616                               ".firstpriv.ptr.addr");
4617         PrivatePtrs.emplace_back(VD, PrivatePtr);
4618         FirstprivatePtrs.emplace_back(VD, PrivatePtr);
4619         CallArgs.push_back(PrivatePtr.getPointer());
4620         ParamTypes.push_back(PrivatePtr.getType());
4621       }
4622       for (const Expr *E : Data.LastprivateVars) {
4623         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4624         Address PrivatePtr =
4625             CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()),
4626                               ".lastpriv.ptr.addr");
4627         PrivatePtrs.emplace_back(VD, PrivatePtr);
4628         CallArgs.push_back(PrivatePtr.getPointer());
4629         ParamTypes.push_back(PrivatePtr.getType());
4630       }
4631       for (const VarDecl *VD : Data.PrivateLocals) {
4632         QualType Ty = VD->getType().getNonReferenceType();
4633         if (VD->getType()->isLValueReferenceType())
4634           Ty = CGF.getContext().getPointerType(Ty);
4635         if (isAllocatableDecl(VD))
4636           Ty = CGF.getContext().getPointerType(Ty);
4637         Address PrivatePtr = CGF.CreateMemTemp(
4638             CGF.getContext().getPointerType(Ty), ".local.ptr.addr");
4639         auto Result = UntiedLocalVars.insert(
4640             std::make_pair(VD, std::make_pair(PrivatePtr, Address::invalid())));
4641         // If key exists update in place.
4642         if (Result.second == false)
4643           *Result.first = std::make_pair(
4644               VD, std::make_pair(PrivatePtr, Address::invalid()));
4645         CallArgs.push_back(PrivatePtr.getPointer());
4646         ParamTypes.push_back(PrivatePtr.getType());
4647       }
4648       auto *CopyFnTy = llvm::FunctionType::get(CGF.Builder.getVoidTy(),
4649                                                ParamTypes, /*isVarArg=*/false);
4650       CopyFn = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4651           CopyFn, CopyFnTy->getPointerTo());
4652       CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(
4653           CGF, S.getBeginLoc(), {CopyFnTy, CopyFn}, CallArgs);
4654       for (const auto &Pair : LastprivateDstsOrigs) {
4655         const auto *OrigVD = cast<VarDecl>(Pair.second->getDecl());
4656         DeclRefExpr DRE(CGF.getContext(), const_cast<VarDecl *>(OrigVD),
4657                         /*RefersToEnclosingVariableOrCapture=*/
4658                         CGF.CapturedStmtInfo->lookup(OrigVD) != nullptr,
4659                         Pair.second->getType(), VK_LValue,
4660                         Pair.second->getExprLoc());
4661         Scope.addPrivate(Pair.first, CGF.EmitLValue(&DRE).getAddress(CGF));
4662       }
4663       for (const auto &Pair : PrivatePtrs) {
4664         Address Replacement = Address(
4665             CGF.Builder.CreateLoad(Pair.second),
4666             CGF.ConvertTypeForMem(Pair.first->getType().getNonReferenceType()),
4667             CGF.getContext().getDeclAlign(Pair.first));
4668         Scope.addPrivate(Pair.first, Replacement);
4669         if (auto *DI = CGF.getDebugInfo())
4670           if (CGF.CGM.getCodeGenOpts().hasReducedDebugInfo())
4671             (void)DI->EmitDeclareOfAutoVariable(
4672                 Pair.first, Pair.second.getPointer(), CGF.Builder,
4673                 /*UsePointerValue*/ true);
4674       }
4675       // Adjust mapping for internal locals by mapping actual memory instead of
4676       // a pointer to this memory.
4677       for (auto &Pair : UntiedLocalVars) {
4678         QualType VDType = Pair.first->getType().getNonReferenceType();
4679         if (isAllocatableDecl(Pair.first)) {
4680           llvm::Value *Ptr = CGF.Builder.CreateLoad(Pair.second.first);
4681           Address Replacement(
4682               Ptr,
4683               CGF.ConvertTypeForMem(CGF.getContext().getPointerType(VDType)),
4684               CGF.getPointerAlign());
4685           Pair.second.first = Replacement;
4686           Ptr = CGF.Builder.CreateLoad(Replacement);
4687           Replacement = Address(Ptr, CGF.ConvertTypeForMem(VDType),
4688                                 CGF.getContext().getDeclAlign(Pair.first));
4689           Pair.second.second = Replacement;
4690         } else {
4691           llvm::Value *Ptr = CGF.Builder.CreateLoad(Pair.second.first);
4692           Address Replacement(Ptr, CGF.ConvertTypeForMem(VDType),
4693                               CGF.getContext().getDeclAlign(Pair.first));
4694           Pair.second.first = Replacement;
4695         }
4696       }
4697     }
4698     if (Data.Reductions) {
4699       OMPPrivateScope FirstprivateScope(CGF);
4700       for (const auto &Pair : FirstprivatePtrs) {
4701         Address Replacement(
4702             CGF.Builder.CreateLoad(Pair.second),
4703             CGF.ConvertTypeForMem(Pair.first->getType().getNonReferenceType()),
4704             CGF.getContext().getDeclAlign(Pair.first));
4705         FirstprivateScope.addPrivate(Pair.first, Replacement);
4706       }
4707       (void)FirstprivateScope.Privatize();
4708       OMPLexicalScope LexScope(CGF, S, CapturedRegion);
4709       ReductionCodeGen RedCG(Data.ReductionVars, Data.ReductionVars,
4710                              Data.ReductionCopies, Data.ReductionOps);
4711       llvm::Value *ReductionsPtr = CGF.Builder.CreateLoad(
4712           CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(9)));
4713       for (unsigned Cnt = 0, E = Data.ReductionVars.size(); Cnt < E; ++Cnt) {
4714         RedCG.emitSharedOrigLValue(CGF, Cnt);
4715         RedCG.emitAggregateType(CGF, Cnt);
4716         // FIXME: This must removed once the runtime library is fixed.
4717         // Emit required threadprivate variables for
4718         // initializer/combiner/finalizer.
4719         CGF.CGM.getOpenMPRuntime().emitTaskReductionFixups(CGF, S.getBeginLoc(),
4720                                                            RedCG, Cnt);
4721         Address Replacement = CGF.CGM.getOpenMPRuntime().getTaskReductionItem(
4722             CGF, S.getBeginLoc(), ReductionsPtr, RedCG.getSharedLValue(Cnt));
4723         Replacement =
4724             Address(CGF.EmitScalarConversion(
4725                         Replacement.getPointer(), CGF.getContext().VoidPtrTy,
4726                         CGF.getContext().getPointerType(
4727                             Data.ReductionCopies[Cnt]->getType()),
4728                         Data.ReductionCopies[Cnt]->getExprLoc()),
4729                     CGF.ConvertTypeForMem(Data.ReductionCopies[Cnt]->getType()),
4730                     Replacement.getAlignment());
4731         Replacement = RedCG.adjustPrivateAddress(CGF, Cnt, Replacement);
4732         Scope.addPrivate(RedCG.getBaseDecl(Cnt), Replacement);
4733       }
4734     }
4735     // Privatize all private variables except for in_reduction items.
4736     (void)Scope.Privatize();
4737     SmallVector<const Expr *, 4> InRedVars;
4738     SmallVector<const Expr *, 4> InRedPrivs;
4739     SmallVector<const Expr *, 4> InRedOps;
4740     SmallVector<const Expr *, 4> TaskgroupDescriptors;
4741     for (const auto *C : S.getClausesOfKind<OMPInReductionClause>()) {
4742       auto IPriv = C->privates().begin();
4743       auto IRed = C->reduction_ops().begin();
4744       auto ITD = C->taskgroup_descriptors().begin();
4745       for (const Expr *Ref : C->varlists()) {
4746         InRedVars.emplace_back(Ref);
4747         InRedPrivs.emplace_back(*IPriv);
4748         InRedOps.emplace_back(*IRed);
4749         TaskgroupDescriptors.emplace_back(*ITD);
4750         std::advance(IPriv, 1);
4751         std::advance(IRed, 1);
4752         std::advance(ITD, 1);
4753       }
4754     }
4755     // Privatize in_reduction items here, because taskgroup descriptors must be
4756     // privatized earlier.
4757     OMPPrivateScope InRedScope(CGF);
4758     if (!InRedVars.empty()) {
4759       ReductionCodeGen RedCG(InRedVars, InRedVars, InRedPrivs, InRedOps);
4760       for (unsigned Cnt = 0, E = InRedVars.size(); Cnt < E; ++Cnt) {
4761         RedCG.emitSharedOrigLValue(CGF, Cnt);
4762         RedCG.emitAggregateType(CGF, Cnt);
4763         // The taskgroup descriptor variable is always implicit firstprivate and
4764         // privatized already during processing of the firstprivates.
4765         // FIXME: This must removed once the runtime library is fixed.
4766         // Emit required threadprivate variables for
4767         // initializer/combiner/finalizer.
4768         CGF.CGM.getOpenMPRuntime().emitTaskReductionFixups(CGF, S.getBeginLoc(),
4769                                                            RedCG, Cnt);
4770         llvm::Value *ReductionsPtr;
4771         if (const Expr *TRExpr = TaskgroupDescriptors[Cnt]) {
4772           ReductionsPtr = CGF.EmitLoadOfScalar(CGF.EmitLValue(TRExpr),
4773                                                TRExpr->getExprLoc());
4774         } else {
4775           ReductionsPtr = llvm::ConstantPointerNull::get(CGF.VoidPtrTy);
4776         }
4777         Address Replacement = CGF.CGM.getOpenMPRuntime().getTaskReductionItem(
4778             CGF, S.getBeginLoc(), ReductionsPtr, RedCG.getSharedLValue(Cnt));
4779         Replacement = Address(
4780             CGF.EmitScalarConversion(
4781                 Replacement.getPointer(), CGF.getContext().VoidPtrTy,
4782                 CGF.getContext().getPointerType(InRedPrivs[Cnt]->getType()),
4783                 InRedPrivs[Cnt]->getExprLoc()),
4784             CGF.ConvertTypeForMem(InRedPrivs[Cnt]->getType()),
4785             Replacement.getAlignment());
4786         Replacement = RedCG.adjustPrivateAddress(CGF, Cnt, Replacement);
4787         InRedScope.addPrivate(RedCG.getBaseDecl(Cnt), Replacement);
4788       }
4789     }
4790     (void)InRedScope.Privatize();
4791 
4792     CGOpenMPRuntime::UntiedTaskLocalDeclsRAII LocalVarsScope(CGF,
4793                                                              UntiedLocalVars);
4794     Action.Enter(CGF);
4795     BodyGen(CGF);
4796   };
4797   llvm::Function *OutlinedFn = CGM.getOpenMPRuntime().emitTaskOutlinedFunction(
4798       S, *I, *PartId, *TaskT, S.getDirectiveKind(), CodeGen, Data.Tied,
4799       Data.NumberOfParts);
4800   OMPLexicalScope Scope(*this, S, llvm::None,
4801                         !isOpenMPParallelDirective(S.getDirectiveKind()) &&
4802                             !isOpenMPSimdDirective(S.getDirectiveKind()));
4803   TaskGen(*this, OutlinedFn, Data);
4804 }
4805 
4806 static ImplicitParamDecl *
4807 createImplicitFirstprivateForType(ASTContext &C, OMPTaskDataTy &Data,
4808                                   QualType Ty, CapturedDecl *CD,
4809                                   SourceLocation Loc) {
4810   auto *OrigVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, Ty,
4811                                            ImplicitParamDecl::Other);
4812   auto *OrigRef = DeclRefExpr::Create(
4813       C, NestedNameSpecifierLoc(), SourceLocation(), OrigVD,
4814       /*RefersToEnclosingVariableOrCapture=*/false, Loc, Ty, VK_LValue);
4815   auto *PrivateVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, Ty,
4816                                               ImplicitParamDecl::Other);
4817   auto *PrivateRef = DeclRefExpr::Create(
4818       C, NestedNameSpecifierLoc(), SourceLocation(), PrivateVD,
4819       /*RefersToEnclosingVariableOrCapture=*/false, Loc, Ty, VK_LValue);
4820   QualType ElemType = C.getBaseElementType(Ty);
4821   auto *InitVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, ElemType,
4822                                            ImplicitParamDecl::Other);
4823   auto *InitRef = DeclRefExpr::Create(
4824       C, NestedNameSpecifierLoc(), SourceLocation(), InitVD,
4825       /*RefersToEnclosingVariableOrCapture=*/false, Loc, ElemType, VK_LValue);
4826   PrivateVD->setInitStyle(VarDecl::CInit);
4827   PrivateVD->setInit(ImplicitCastExpr::Create(C, ElemType, CK_LValueToRValue,
4828                                               InitRef, /*BasePath=*/nullptr,
4829                                               VK_PRValue, FPOptionsOverride()));
4830   Data.FirstprivateVars.emplace_back(OrigRef);
4831   Data.FirstprivateCopies.emplace_back(PrivateRef);
4832   Data.FirstprivateInits.emplace_back(InitRef);
4833   return OrigVD;
4834 }
4835 
4836 void CodeGenFunction::EmitOMPTargetTaskBasedDirective(
4837     const OMPExecutableDirective &S, const RegionCodeGenTy &BodyGen,
4838     OMPTargetDataInfo &InputInfo) {
4839   // Emit outlined function for task construct.
4840   const CapturedStmt *CS = S.getCapturedStmt(OMPD_task);
4841   Address CapturedStruct = GenerateCapturedStmtArgument(*CS);
4842   QualType SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl());
4843   auto I = CS->getCapturedDecl()->param_begin();
4844   auto PartId = std::next(I);
4845   auto TaskT = std::next(I, 4);
4846   OMPTaskDataTy Data;
4847   // The task is not final.
4848   Data.Final.setInt(/*IntVal=*/false);
4849   // Get list of firstprivate variables.
4850   for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) {
4851     auto IRef = C->varlist_begin();
4852     auto IElemInitRef = C->inits().begin();
4853     for (auto *IInit : C->private_copies()) {
4854       Data.FirstprivateVars.push_back(*IRef);
4855       Data.FirstprivateCopies.push_back(IInit);
4856       Data.FirstprivateInits.push_back(*IElemInitRef);
4857       ++IRef;
4858       ++IElemInitRef;
4859     }
4860   }
4861   OMPPrivateScope TargetScope(*this);
4862   VarDecl *BPVD = nullptr;
4863   VarDecl *PVD = nullptr;
4864   VarDecl *SVD = nullptr;
4865   VarDecl *MVD = nullptr;
4866   if (InputInfo.NumberOfTargetItems > 0) {
4867     auto *CD = CapturedDecl::Create(
4868         getContext(), getContext().getTranslationUnitDecl(), /*NumParams=*/0);
4869     llvm::APInt ArrSize(/*numBits=*/32, InputInfo.NumberOfTargetItems);
4870     QualType BaseAndPointerAndMapperType = getContext().getConstantArrayType(
4871         getContext().VoidPtrTy, ArrSize, nullptr, ArrayType::Normal,
4872         /*IndexTypeQuals=*/0);
4873     BPVD = createImplicitFirstprivateForType(
4874         getContext(), Data, BaseAndPointerAndMapperType, CD, S.getBeginLoc());
4875     PVD = createImplicitFirstprivateForType(
4876         getContext(), Data, BaseAndPointerAndMapperType, CD, S.getBeginLoc());
4877     QualType SizesType = getContext().getConstantArrayType(
4878         getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/1),
4879         ArrSize, nullptr, ArrayType::Normal,
4880         /*IndexTypeQuals=*/0);
4881     SVD = createImplicitFirstprivateForType(getContext(), Data, SizesType, CD,
4882                                             S.getBeginLoc());
4883     TargetScope.addPrivate(BPVD, InputInfo.BasePointersArray);
4884     TargetScope.addPrivate(PVD, InputInfo.PointersArray);
4885     TargetScope.addPrivate(SVD, InputInfo.SizesArray);
4886     // If there is no user-defined mapper, the mapper array will be nullptr. In
4887     // this case, we don't need to privatize it.
4888     if (!isa_and_nonnull<llvm::ConstantPointerNull>(
4889             InputInfo.MappersArray.getPointer())) {
4890       MVD = createImplicitFirstprivateForType(
4891           getContext(), Data, BaseAndPointerAndMapperType, CD, S.getBeginLoc());
4892       TargetScope.addPrivate(MVD, InputInfo.MappersArray);
4893     }
4894   }
4895   (void)TargetScope.Privatize();
4896   // Build list of dependences.
4897   for (const auto *C : S.getClausesOfKind<OMPDependClause>()) {
4898     OMPTaskDataTy::DependData &DD =
4899         Data.Dependences.emplace_back(C->getDependencyKind(), C->getModifier());
4900     DD.DepExprs.append(C->varlist_begin(), C->varlist_end());
4901   }
4902   auto &&CodeGen = [&Data, &S, CS, &BodyGen, BPVD, PVD, SVD, MVD,
4903                     &InputInfo](CodeGenFunction &CGF, PrePostActionTy &Action) {
4904     // Set proper addresses for generated private copies.
4905     OMPPrivateScope Scope(CGF);
4906     if (!Data.FirstprivateVars.empty()) {
4907       enum { PrivatesParam = 2, CopyFnParam = 3 };
4908       llvm::Value *CopyFn = CGF.Builder.CreateLoad(
4909           CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(CopyFnParam)));
4910       llvm::Value *PrivatesPtr = CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(
4911           CS->getCapturedDecl()->getParam(PrivatesParam)));
4912       // Map privates.
4913       llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> PrivatePtrs;
4914       llvm::SmallVector<llvm::Value *, 16> CallArgs;
4915       llvm::SmallVector<llvm::Type *, 4> ParamTypes;
4916       CallArgs.push_back(PrivatesPtr);
4917       ParamTypes.push_back(PrivatesPtr->getType());
4918       for (const Expr *E : Data.FirstprivateVars) {
4919         const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4920         Address PrivatePtr =
4921             CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()),
4922                               ".firstpriv.ptr.addr");
4923         PrivatePtrs.emplace_back(VD, PrivatePtr);
4924         CallArgs.push_back(PrivatePtr.getPointer());
4925         ParamTypes.push_back(PrivatePtr.getType());
4926       }
4927       auto *CopyFnTy = llvm::FunctionType::get(CGF.Builder.getVoidTy(),
4928                                                ParamTypes, /*isVarArg=*/false);
4929       CopyFn = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4930           CopyFn, CopyFnTy->getPointerTo());
4931       CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(
4932           CGF, S.getBeginLoc(), {CopyFnTy, CopyFn}, CallArgs);
4933       for (const auto &Pair : PrivatePtrs) {
4934         Address Replacement(
4935             CGF.Builder.CreateLoad(Pair.second),
4936             CGF.ConvertTypeForMem(Pair.first->getType().getNonReferenceType()),
4937             CGF.getContext().getDeclAlign(Pair.first));
4938         Scope.addPrivate(Pair.first, Replacement);
4939       }
4940     }
4941     // Privatize all private variables except for in_reduction items.
4942     (void)Scope.Privatize();
4943     if (InputInfo.NumberOfTargetItems > 0) {
4944       InputInfo.BasePointersArray = CGF.Builder.CreateConstArrayGEP(
4945           CGF.GetAddrOfLocalVar(BPVD), /*Index=*/0);
4946       InputInfo.PointersArray = CGF.Builder.CreateConstArrayGEP(
4947           CGF.GetAddrOfLocalVar(PVD), /*Index=*/0);
4948       InputInfo.SizesArray = CGF.Builder.CreateConstArrayGEP(
4949           CGF.GetAddrOfLocalVar(SVD), /*Index=*/0);
4950       // If MVD is nullptr, the mapper array is not privatized
4951       if (MVD)
4952         InputInfo.MappersArray = CGF.Builder.CreateConstArrayGEP(
4953             CGF.GetAddrOfLocalVar(MVD), /*Index=*/0);
4954     }
4955 
4956     Action.Enter(CGF);
4957     OMPLexicalScope LexScope(CGF, S, OMPD_task, /*EmitPreInitStmt=*/false);
4958     BodyGen(CGF);
4959   };
4960   llvm::Function *OutlinedFn = CGM.getOpenMPRuntime().emitTaskOutlinedFunction(
4961       S, *I, *PartId, *TaskT, S.getDirectiveKind(), CodeGen, /*Tied=*/true,
4962       Data.NumberOfParts);
4963   llvm::APInt TrueOrFalse(32, S.hasClausesOfKind<OMPNowaitClause>() ? 1 : 0);
4964   IntegerLiteral IfCond(getContext(), TrueOrFalse,
4965                         getContext().getIntTypeForBitwidth(32, /*Signed=*/0),
4966                         SourceLocation());
4967 
4968   CGM.getOpenMPRuntime().emitTaskCall(*this, S.getBeginLoc(), S, OutlinedFn,
4969                                       SharedsTy, CapturedStruct, &IfCond, Data);
4970 }
4971 
4972 void CodeGenFunction::EmitOMPTaskDirective(const OMPTaskDirective &S) {
4973   // Emit outlined function for task construct.
4974   const CapturedStmt *CS = S.getCapturedStmt(OMPD_task);
4975   Address CapturedStruct = GenerateCapturedStmtArgument(*CS);
4976   QualType SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl());
4977   const Expr *IfCond = nullptr;
4978   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
4979     if (C->getNameModifier() == OMPD_unknown ||
4980         C->getNameModifier() == OMPD_task) {
4981       IfCond = C->getCondition();
4982       break;
4983     }
4984   }
4985 
4986   OMPTaskDataTy Data;
4987   // Check if we should emit tied or untied task.
4988   Data.Tied = !S.getSingleClause<OMPUntiedClause>();
4989   auto &&BodyGen = [CS](CodeGenFunction &CGF, PrePostActionTy &) {
4990     CGF.EmitStmt(CS->getCapturedStmt());
4991   };
4992   auto &&TaskGen = [&S, SharedsTy, CapturedStruct,
4993                     IfCond](CodeGenFunction &CGF, llvm::Function *OutlinedFn,
4994                             const OMPTaskDataTy &Data) {
4995     CGF.CGM.getOpenMPRuntime().emitTaskCall(CGF, S.getBeginLoc(), S, OutlinedFn,
4996                                             SharedsTy, CapturedStruct, IfCond,
4997                                             Data);
4998   };
4999   auto LPCRegion =
5000       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
5001   EmitOMPTaskBasedDirective(S, OMPD_task, BodyGen, TaskGen, Data);
5002 }
5003 
5004 void CodeGenFunction::EmitOMPTaskyieldDirective(
5005     const OMPTaskyieldDirective &S) {
5006   CGM.getOpenMPRuntime().emitTaskyieldCall(*this, S.getBeginLoc());
5007 }
5008 
5009 void CodeGenFunction::EmitOMPBarrierDirective(const OMPBarrierDirective &S) {
5010   CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getBeginLoc(), OMPD_barrier);
5011 }
5012 
5013 void CodeGenFunction::EmitOMPTaskwaitDirective(const OMPTaskwaitDirective &S) {
5014   OMPTaskDataTy Data;
5015   // Build list of dependences
5016   for (const auto *C : S.getClausesOfKind<OMPDependClause>()) {
5017     OMPTaskDataTy::DependData &DD =
5018         Data.Dependences.emplace_back(C->getDependencyKind(), C->getModifier());
5019     DD.DepExprs.append(C->varlist_begin(), C->varlist_end());
5020   }
5021   CGM.getOpenMPRuntime().emitTaskwaitCall(*this, S.getBeginLoc(), Data);
5022 }
5023 
5024 void CodeGenFunction::EmitOMPTaskgroupDirective(
5025     const OMPTaskgroupDirective &S) {
5026   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
5027     Action.Enter(CGF);
5028     if (const Expr *E = S.getReductionRef()) {
5029       SmallVector<const Expr *, 4> LHSs;
5030       SmallVector<const Expr *, 4> RHSs;
5031       OMPTaskDataTy Data;
5032       for (const auto *C : S.getClausesOfKind<OMPTaskReductionClause>()) {
5033         Data.ReductionVars.append(C->varlist_begin(), C->varlist_end());
5034         Data.ReductionOrigs.append(C->varlist_begin(), C->varlist_end());
5035         Data.ReductionCopies.append(C->privates().begin(), C->privates().end());
5036         Data.ReductionOps.append(C->reduction_ops().begin(),
5037                                  C->reduction_ops().end());
5038         LHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
5039         RHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
5040       }
5041       llvm::Value *ReductionDesc =
5042           CGF.CGM.getOpenMPRuntime().emitTaskReductionInit(CGF, S.getBeginLoc(),
5043                                                            LHSs, RHSs, Data);
5044       const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
5045       CGF.EmitVarDecl(*VD);
5046       CGF.EmitStoreOfScalar(ReductionDesc, CGF.GetAddrOfLocalVar(VD),
5047                             /*Volatile=*/false, E->getType());
5048     }
5049     CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt());
5050   };
5051   OMPLexicalScope Scope(*this, S, OMPD_unknown);
5052   CGM.getOpenMPRuntime().emitTaskgroupRegion(*this, CodeGen, S.getBeginLoc());
5053 }
5054 
5055 void CodeGenFunction::EmitOMPFlushDirective(const OMPFlushDirective &S) {
5056   llvm::AtomicOrdering AO = S.getSingleClause<OMPFlushClause>()
5057                                 ? llvm::AtomicOrdering::NotAtomic
5058                                 : llvm::AtomicOrdering::AcquireRelease;
5059   CGM.getOpenMPRuntime().emitFlush(
5060       *this,
5061       [&S]() -> ArrayRef<const Expr *> {
5062         if (const auto *FlushClause = S.getSingleClause<OMPFlushClause>())
5063           return llvm::makeArrayRef(FlushClause->varlist_begin(),
5064                                     FlushClause->varlist_end());
5065         return llvm::None;
5066       }(),
5067       S.getBeginLoc(), AO);
5068 }
5069 
5070 void CodeGenFunction::EmitOMPDepobjDirective(const OMPDepobjDirective &S) {
5071   const auto *DO = S.getSingleClause<OMPDepobjClause>();
5072   LValue DOLVal = EmitLValue(DO->getDepobj());
5073   if (const auto *DC = S.getSingleClause<OMPDependClause>()) {
5074     OMPTaskDataTy::DependData Dependencies(DC->getDependencyKind(),
5075                                            DC->getModifier());
5076     Dependencies.DepExprs.append(DC->varlist_begin(), DC->varlist_end());
5077     Address DepAddr = CGM.getOpenMPRuntime().emitDepobjDependClause(
5078         *this, Dependencies, DC->getBeginLoc());
5079     EmitStoreOfScalar(DepAddr.getPointer(), DOLVal);
5080     return;
5081   }
5082   if (const auto *DC = S.getSingleClause<OMPDestroyClause>()) {
5083     CGM.getOpenMPRuntime().emitDestroyClause(*this, DOLVal, DC->getBeginLoc());
5084     return;
5085   }
5086   if (const auto *UC = S.getSingleClause<OMPUpdateClause>()) {
5087     CGM.getOpenMPRuntime().emitUpdateClause(
5088         *this, DOLVal, UC->getDependencyKind(), UC->getBeginLoc());
5089     return;
5090   }
5091 }
5092 
5093 void CodeGenFunction::EmitOMPScanDirective(const OMPScanDirective &S) {
5094   if (!OMPParentLoopDirectiveForScan)
5095     return;
5096   const OMPExecutableDirective &ParentDir = *OMPParentLoopDirectiveForScan;
5097   bool IsInclusive = S.hasClausesOfKind<OMPInclusiveClause>();
5098   SmallVector<const Expr *, 4> Shareds;
5099   SmallVector<const Expr *, 4> Privates;
5100   SmallVector<const Expr *, 4> LHSs;
5101   SmallVector<const Expr *, 4> RHSs;
5102   SmallVector<const Expr *, 4> ReductionOps;
5103   SmallVector<const Expr *, 4> CopyOps;
5104   SmallVector<const Expr *, 4> CopyArrayTemps;
5105   SmallVector<const Expr *, 4> CopyArrayElems;
5106   for (const auto *C : ParentDir.getClausesOfKind<OMPReductionClause>()) {
5107     if (C->getModifier() != OMPC_REDUCTION_inscan)
5108       continue;
5109     Shareds.append(C->varlist_begin(), C->varlist_end());
5110     Privates.append(C->privates().begin(), C->privates().end());
5111     LHSs.append(C->lhs_exprs().begin(), C->lhs_exprs().end());
5112     RHSs.append(C->rhs_exprs().begin(), C->rhs_exprs().end());
5113     ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end());
5114     CopyOps.append(C->copy_ops().begin(), C->copy_ops().end());
5115     CopyArrayTemps.append(C->copy_array_temps().begin(),
5116                           C->copy_array_temps().end());
5117     CopyArrayElems.append(C->copy_array_elems().begin(),
5118                           C->copy_array_elems().end());
5119   }
5120   if (ParentDir.getDirectiveKind() == OMPD_simd ||
5121       (getLangOpts().OpenMPSimd &&
5122        isOpenMPSimdDirective(ParentDir.getDirectiveKind()))) {
5123     // For simd directive and simd-based directives in simd only mode, use the
5124     // following codegen:
5125     // int x = 0;
5126     // #pragma omp simd reduction(inscan, +: x)
5127     // for (..) {
5128     //   <first part>
5129     //   #pragma omp scan inclusive(x)
5130     //   <second part>
5131     //  }
5132     // is transformed to:
5133     // int x = 0;
5134     // for (..) {
5135     //   int x_priv = 0;
5136     //   <first part>
5137     //   x = x_priv + x;
5138     //   x_priv = x;
5139     //   <second part>
5140     // }
5141     // and
5142     // int x = 0;
5143     // #pragma omp simd reduction(inscan, +: x)
5144     // for (..) {
5145     //   <first part>
5146     //   #pragma omp scan exclusive(x)
5147     //   <second part>
5148     // }
5149     // to
5150     // int x = 0;
5151     // for (..) {
5152     //   int x_priv = 0;
5153     //   <second part>
5154     //   int temp = x;
5155     //   x = x_priv + x;
5156     //   x_priv = temp;
5157     //   <first part>
5158     // }
5159     llvm::BasicBlock *OMPScanReduce = createBasicBlock("omp.inscan.reduce");
5160     EmitBranch(IsInclusive
5161                    ? OMPScanReduce
5162                    : BreakContinueStack.back().ContinueBlock.getBlock());
5163     EmitBlock(OMPScanDispatch);
5164     {
5165       // New scope for correct construction/destruction of temp variables for
5166       // exclusive scan.
5167       LexicalScope Scope(*this, S.getSourceRange());
5168       EmitBranch(IsInclusive ? OMPBeforeScanBlock : OMPAfterScanBlock);
5169       EmitBlock(OMPScanReduce);
5170       if (!IsInclusive) {
5171         // Create temp var and copy LHS value to this temp value.
5172         // TMP = LHS;
5173         for (unsigned I = 0, E = CopyArrayElems.size(); I < E; ++I) {
5174           const Expr *PrivateExpr = Privates[I];
5175           const Expr *TempExpr = CopyArrayTemps[I];
5176           EmitAutoVarDecl(
5177               *cast<VarDecl>(cast<DeclRefExpr>(TempExpr)->getDecl()));
5178           LValue DestLVal = EmitLValue(TempExpr);
5179           LValue SrcLVal = EmitLValue(LHSs[I]);
5180           EmitOMPCopy(PrivateExpr->getType(), DestLVal.getAddress(*this),
5181                       SrcLVal.getAddress(*this),
5182                       cast<VarDecl>(cast<DeclRefExpr>(LHSs[I])->getDecl()),
5183                       cast<VarDecl>(cast<DeclRefExpr>(RHSs[I])->getDecl()),
5184                       CopyOps[I]);
5185         }
5186       }
5187       CGM.getOpenMPRuntime().emitReduction(
5188           *this, ParentDir.getEndLoc(), Privates, LHSs, RHSs, ReductionOps,
5189           {/*WithNowait=*/true, /*SimpleReduction=*/true, OMPD_simd});
5190       for (unsigned I = 0, E = CopyArrayElems.size(); I < E; ++I) {
5191         const Expr *PrivateExpr = Privates[I];
5192         LValue DestLVal;
5193         LValue SrcLVal;
5194         if (IsInclusive) {
5195           DestLVal = EmitLValue(RHSs[I]);
5196           SrcLVal = EmitLValue(LHSs[I]);
5197         } else {
5198           const Expr *TempExpr = CopyArrayTemps[I];
5199           DestLVal = EmitLValue(RHSs[I]);
5200           SrcLVal = EmitLValue(TempExpr);
5201         }
5202         EmitOMPCopy(PrivateExpr->getType(), DestLVal.getAddress(*this),
5203                     SrcLVal.getAddress(*this),
5204                     cast<VarDecl>(cast<DeclRefExpr>(LHSs[I])->getDecl()),
5205                     cast<VarDecl>(cast<DeclRefExpr>(RHSs[I])->getDecl()),
5206                     CopyOps[I]);
5207       }
5208     }
5209     EmitBranch(IsInclusive ? OMPAfterScanBlock : OMPBeforeScanBlock);
5210     OMPScanExitBlock = IsInclusive
5211                            ? BreakContinueStack.back().ContinueBlock.getBlock()
5212                            : OMPScanReduce;
5213     EmitBlock(OMPAfterScanBlock);
5214     return;
5215   }
5216   if (!IsInclusive) {
5217     EmitBranch(BreakContinueStack.back().ContinueBlock.getBlock());
5218     EmitBlock(OMPScanExitBlock);
5219   }
5220   if (OMPFirstScanLoop) {
5221     // Emit buffer[i] = red; at the end of the input phase.
5222     const auto *IVExpr = cast<OMPLoopDirective>(ParentDir)
5223                              .getIterationVariable()
5224                              ->IgnoreParenImpCasts();
5225     LValue IdxLVal = EmitLValue(IVExpr);
5226     llvm::Value *IdxVal = EmitLoadOfScalar(IdxLVal, IVExpr->getExprLoc());
5227     IdxVal = Builder.CreateIntCast(IdxVal, SizeTy, /*isSigned=*/false);
5228     for (unsigned I = 0, E = CopyArrayElems.size(); I < E; ++I) {
5229       const Expr *PrivateExpr = Privates[I];
5230       const Expr *OrigExpr = Shareds[I];
5231       const Expr *CopyArrayElem = CopyArrayElems[I];
5232       OpaqueValueMapping IdxMapping(
5233           *this,
5234           cast<OpaqueValueExpr>(
5235               cast<ArraySubscriptExpr>(CopyArrayElem)->getIdx()),
5236           RValue::get(IdxVal));
5237       LValue DestLVal = EmitLValue(CopyArrayElem);
5238       LValue SrcLVal = EmitLValue(OrigExpr);
5239       EmitOMPCopy(PrivateExpr->getType(), DestLVal.getAddress(*this),
5240                   SrcLVal.getAddress(*this),
5241                   cast<VarDecl>(cast<DeclRefExpr>(LHSs[I])->getDecl()),
5242                   cast<VarDecl>(cast<DeclRefExpr>(RHSs[I])->getDecl()),
5243                   CopyOps[I]);
5244     }
5245   }
5246   EmitBranch(BreakContinueStack.back().ContinueBlock.getBlock());
5247   if (IsInclusive) {
5248     EmitBlock(OMPScanExitBlock);
5249     EmitBranch(BreakContinueStack.back().ContinueBlock.getBlock());
5250   }
5251   EmitBlock(OMPScanDispatch);
5252   if (!OMPFirstScanLoop) {
5253     // Emit red = buffer[i]; at the entrance to the scan phase.
5254     const auto *IVExpr = cast<OMPLoopDirective>(ParentDir)
5255                              .getIterationVariable()
5256                              ->IgnoreParenImpCasts();
5257     LValue IdxLVal = EmitLValue(IVExpr);
5258     llvm::Value *IdxVal = EmitLoadOfScalar(IdxLVal, IVExpr->getExprLoc());
5259     IdxVal = Builder.CreateIntCast(IdxVal, SizeTy, /*isSigned=*/false);
5260     llvm::BasicBlock *ExclusiveExitBB = nullptr;
5261     if (!IsInclusive) {
5262       llvm::BasicBlock *ContBB = createBasicBlock("omp.exclusive.dec");
5263       ExclusiveExitBB = createBasicBlock("omp.exclusive.copy.exit");
5264       llvm::Value *Cmp = Builder.CreateIsNull(IdxVal);
5265       Builder.CreateCondBr(Cmp, ExclusiveExitBB, ContBB);
5266       EmitBlock(ContBB);
5267       // Use idx - 1 iteration for exclusive scan.
5268       IdxVal = Builder.CreateNUWSub(IdxVal, llvm::ConstantInt::get(SizeTy, 1));
5269     }
5270     for (unsigned I = 0, E = CopyArrayElems.size(); I < E; ++I) {
5271       const Expr *PrivateExpr = Privates[I];
5272       const Expr *OrigExpr = Shareds[I];
5273       const Expr *CopyArrayElem = CopyArrayElems[I];
5274       OpaqueValueMapping IdxMapping(
5275           *this,
5276           cast<OpaqueValueExpr>(
5277               cast<ArraySubscriptExpr>(CopyArrayElem)->getIdx()),
5278           RValue::get(IdxVal));
5279       LValue SrcLVal = EmitLValue(CopyArrayElem);
5280       LValue DestLVal = EmitLValue(OrigExpr);
5281       EmitOMPCopy(PrivateExpr->getType(), DestLVal.getAddress(*this),
5282                   SrcLVal.getAddress(*this),
5283                   cast<VarDecl>(cast<DeclRefExpr>(LHSs[I])->getDecl()),
5284                   cast<VarDecl>(cast<DeclRefExpr>(RHSs[I])->getDecl()),
5285                   CopyOps[I]);
5286     }
5287     if (!IsInclusive) {
5288       EmitBlock(ExclusiveExitBB);
5289     }
5290   }
5291   EmitBranch((OMPFirstScanLoop == IsInclusive) ? OMPBeforeScanBlock
5292                                                : OMPAfterScanBlock);
5293   EmitBlock(OMPAfterScanBlock);
5294 }
5295 
5296 void CodeGenFunction::EmitOMPDistributeLoop(const OMPLoopDirective &S,
5297                                             const CodeGenLoopTy &CodeGenLoop,
5298                                             Expr *IncExpr) {
5299   // Emit the loop iteration variable.
5300   const auto *IVExpr = cast<DeclRefExpr>(S.getIterationVariable());
5301   const auto *IVDecl = cast<VarDecl>(IVExpr->getDecl());
5302   EmitVarDecl(*IVDecl);
5303 
5304   // Emit the iterations count variable.
5305   // If it is not a variable, Sema decided to calculate iterations count on each
5306   // iteration (e.g., it is foldable into a constant).
5307   if (const auto *LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
5308     EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
5309     // Emit calculation of the iterations count.
5310     EmitIgnoredExpr(S.getCalcLastIteration());
5311   }
5312 
5313   CGOpenMPRuntime &RT = CGM.getOpenMPRuntime();
5314 
5315   bool HasLastprivateClause = false;
5316   // Check pre-condition.
5317   {
5318     OMPLoopScope PreInitScope(*this, S);
5319     // Skip the entire loop if we don't meet the precondition.
5320     // If the condition constant folds and can be elided, avoid emitting the
5321     // whole loop.
5322     bool CondConstant;
5323     llvm::BasicBlock *ContBlock = nullptr;
5324     if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
5325       if (!CondConstant)
5326         return;
5327     } else {
5328       llvm::BasicBlock *ThenBlock = createBasicBlock("omp.precond.then");
5329       ContBlock = createBasicBlock("omp.precond.end");
5330       emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock,
5331                   getProfileCount(&S));
5332       EmitBlock(ThenBlock);
5333       incrementProfileCounter(&S);
5334     }
5335 
5336     emitAlignedClause(*this, S);
5337     // Emit 'then' code.
5338     {
5339       // Emit helper vars inits.
5340 
5341       LValue LB = EmitOMPHelperVar(
5342           *this, cast<DeclRefExpr>(
5343                      (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
5344                           ? S.getCombinedLowerBoundVariable()
5345                           : S.getLowerBoundVariable())));
5346       LValue UB = EmitOMPHelperVar(
5347           *this, cast<DeclRefExpr>(
5348                      (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
5349                           ? S.getCombinedUpperBoundVariable()
5350                           : S.getUpperBoundVariable())));
5351       LValue ST =
5352           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable()));
5353       LValue IL =
5354           EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable()));
5355 
5356       OMPPrivateScope LoopScope(*this);
5357       if (EmitOMPFirstprivateClause(S, LoopScope)) {
5358         // Emit implicit barrier to synchronize threads and avoid data races
5359         // on initialization of firstprivate variables and post-update of
5360         // lastprivate variables.
5361         CGM.getOpenMPRuntime().emitBarrierCall(
5362             *this, S.getBeginLoc(), OMPD_unknown, /*EmitChecks=*/false,
5363             /*ForceSimpleCall=*/true);
5364       }
5365       EmitOMPPrivateClause(S, LoopScope);
5366       if (isOpenMPSimdDirective(S.getDirectiveKind()) &&
5367           !isOpenMPParallelDirective(S.getDirectiveKind()) &&
5368           !isOpenMPTeamsDirective(S.getDirectiveKind()))
5369         EmitOMPReductionClauseInit(S, LoopScope);
5370       HasLastprivateClause = EmitOMPLastprivateClauseInit(S, LoopScope);
5371       EmitOMPPrivateLoopCounters(S, LoopScope);
5372       (void)LoopScope.Privatize();
5373       if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
5374         CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(*this, S);
5375 
5376       // Detect the distribute schedule kind and chunk.
5377       llvm::Value *Chunk = nullptr;
5378       OpenMPDistScheduleClauseKind ScheduleKind = OMPC_DIST_SCHEDULE_unknown;
5379       if (const auto *C = S.getSingleClause<OMPDistScheduleClause>()) {
5380         ScheduleKind = C->getDistScheduleKind();
5381         if (const Expr *Ch = C->getChunkSize()) {
5382           Chunk = EmitScalarExpr(Ch);
5383           Chunk = EmitScalarConversion(Chunk, Ch->getType(),
5384                                        S.getIterationVariable()->getType(),
5385                                        S.getBeginLoc());
5386         }
5387       } else {
5388         // Default behaviour for dist_schedule clause.
5389         CGM.getOpenMPRuntime().getDefaultDistScheduleAndChunk(
5390             *this, S, ScheduleKind, Chunk);
5391       }
5392       const unsigned IVSize = getContext().getTypeSize(IVExpr->getType());
5393       const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation();
5394 
5395       // OpenMP [2.10.8, distribute Construct, Description]
5396       // If dist_schedule is specified, kind must be static. If specified,
5397       // iterations are divided into chunks of size chunk_size, chunks are
5398       // assigned to the teams of the league in a round-robin fashion in the
5399       // order of the team number. When no chunk_size is specified, the
5400       // iteration space is divided into chunks that are approximately equal
5401       // in size, and at most one chunk is distributed to each team of the
5402       // league. The size of the chunks is unspecified in this case.
5403       bool StaticChunked =
5404           RT.isStaticChunked(ScheduleKind, /* Chunked */ Chunk != nullptr) &&
5405           isOpenMPLoopBoundSharingDirective(S.getDirectiveKind());
5406       if (RT.isStaticNonchunked(ScheduleKind,
5407                                 /* Chunked */ Chunk != nullptr) ||
5408           StaticChunked) {
5409         CGOpenMPRuntime::StaticRTInput StaticInit(
5410             IVSize, IVSigned, /* Ordered = */ false, IL.getAddress(*this),
5411             LB.getAddress(*this), UB.getAddress(*this), ST.getAddress(*this),
5412             StaticChunked ? Chunk : nullptr);
5413         RT.emitDistributeStaticInit(*this, S.getBeginLoc(), ScheduleKind,
5414                                     StaticInit);
5415         JumpDest LoopExit =
5416             getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit"));
5417         // UB = min(UB, GlobalUB);
5418         EmitIgnoredExpr(isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
5419                             ? S.getCombinedEnsureUpperBound()
5420                             : S.getEnsureUpperBound());
5421         // IV = LB;
5422         EmitIgnoredExpr(isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
5423                             ? S.getCombinedInit()
5424                             : S.getInit());
5425 
5426         const Expr *Cond =
5427             isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())
5428                 ? S.getCombinedCond()
5429                 : S.getCond();
5430 
5431         if (StaticChunked)
5432           Cond = S.getCombinedDistCond();
5433 
5434         // For static unchunked schedules generate:
5435         //
5436         //  1. For distribute alone, codegen
5437         //    while (idx <= UB) {
5438         //      BODY;
5439         //      ++idx;
5440         //    }
5441         //
5442         //  2. When combined with 'for' (e.g. as in 'distribute parallel for')
5443         //    while (idx <= UB) {
5444         //      <CodeGen rest of pragma>(LB, UB);
5445         //      idx += ST;
5446         //    }
5447         //
5448         // For static chunk one schedule generate:
5449         //
5450         // while (IV <= GlobalUB) {
5451         //   <CodeGen rest of pragma>(LB, UB);
5452         //   LB += ST;
5453         //   UB += ST;
5454         //   UB = min(UB, GlobalUB);
5455         //   IV = LB;
5456         // }
5457         //
5458         emitCommonSimdLoop(
5459             *this, S,
5460             [&S](CodeGenFunction &CGF, PrePostActionTy &) {
5461               if (isOpenMPSimdDirective(S.getDirectiveKind()))
5462                 CGF.EmitOMPSimdInit(S);
5463             },
5464             [&S, &LoopScope, Cond, IncExpr, LoopExit, &CodeGenLoop,
5465              StaticChunked](CodeGenFunction &CGF, PrePostActionTy &) {
5466               CGF.EmitOMPInnerLoop(
5467                   S, LoopScope.requiresCleanups(), Cond, IncExpr,
5468                   [&S, LoopExit, &CodeGenLoop](CodeGenFunction &CGF) {
5469                     CodeGenLoop(CGF, S, LoopExit);
5470                   },
5471                   [&S, StaticChunked](CodeGenFunction &CGF) {
5472                     if (StaticChunked) {
5473                       CGF.EmitIgnoredExpr(S.getCombinedNextLowerBound());
5474                       CGF.EmitIgnoredExpr(S.getCombinedNextUpperBound());
5475                       CGF.EmitIgnoredExpr(S.getCombinedEnsureUpperBound());
5476                       CGF.EmitIgnoredExpr(S.getCombinedInit());
5477                     }
5478                   });
5479             });
5480         EmitBlock(LoopExit.getBlock());
5481         // Tell the runtime we are done.
5482         RT.emitForStaticFinish(*this, S.getEndLoc(), S.getDirectiveKind());
5483       } else {
5484         // Emit the outer loop, which requests its work chunk [LB..UB] from
5485         // runtime and runs the inner loop to process it.
5486         const OMPLoopArguments LoopArguments = {
5487             LB.getAddress(*this), UB.getAddress(*this), ST.getAddress(*this),
5488             IL.getAddress(*this), Chunk};
5489         EmitOMPDistributeOuterLoop(ScheduleKind, S, LoopScope, LoopArguments,
5490                                    CodeGenLoop);
5491       }
5492       if (isOpenMPSimdDirective(S.getDirectiveKind())) {
5493         EmitOMPSimdFinal(S, [IL, &S](CodeGenFunction &CGF) {
5494           return CGF.Builder.CreateIsNotNull(
5495               CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
5496         });
5497       }
5498       if (isOpenMPSimdDirective(S.getDirectiveKind()) &&
5499           !isOpenMPParallelDirective(S.getDirectiveKind()) &&
5500           !isOpenMPTeamsDirective(S.getDirectiveKind())) {
5501         EmitOMPReductionClauseFinal(S, OMPD_simd);
5502         // Emit post-update of the reduction variables if IsLastIter != 0.
5503         emitPostUpdateForReductionClause(
5504             *this, S, [IL, &S](CodeGenFunction &CGF) {
5505               return CGF.Builder.CreateIsNotNull(
5506                   CGF.EmitLoadOfScalar(IL, S.getBeginLoc()));
5507             });
5508       }
5509       // Emit final copy of the lastprivate variables if IsLastIter != 0.
5510       if (HasLastprivateClause) {
5511         EmitOMPLastprivateClauseFinal(
5512             S, /*NoFinals=*/false,
5513             Builder.CreateIsNotNull(EmitLoadOfScalar(IL, S.getBeginLoc())));
5514       }
5515     }
5516 
5517     // We're now done with the loop, so jump to the continuation block.
5518     if (ContBlock) {
5519       EmitBranch(ContBlock);
5520       EmitBlock(ContBlock, true);
5521     }
5522   }
5523 }
5524 
5525 void CodeGenFunction::EmitOMPDistributeDirective(
5526     const OMPDistributeDirective &S) {
5527   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
5528     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
5529   };
5530   OMPLexicalScope Scope(*this, S, OMPD_unknown);
5531   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen);
5532 }
5533 
5534 static llvm::Function *emitOutlinedOrderedFunction(CodeGenModule &CGM,
5535                                                    const CapturedStmt *S,
5536                                                    SourceLocation Loc) {
5537   CodeGenFunction CGF(CGM, /*suppressNewContext=*/true);
5538   CodeGenFunction::CGCapturedStmtInfo CapStmtInfo;
5539   CGF.CapturedStmtInfo = &CapStmtInfo;
5540   llvm::Function *Fn = CGF.GenerateOpenMPCapturedStmtFunction(*S, Loc);
5541   Fn->setDoesNotRecurse();
5542   return Fn;
5543 }
5544 
5545 void CodeGenFunction::EmitOMPOrderedDirective(const OMPOrderedDirective &S) {
5546   if (CGM.getLangOpts().OpenMPIRBuilder) {
5547     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
5548     using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
5549 
5550     if (S.hasClausesOfKind<OMPDependClause>()) {
5551       // The ordered directive with depend clause.
5552       assert(!S.hasAssociatedStmt() &&
5553              "No associated statement must be in ordered depend construct.");
5554       InsertPointTy AllocaIP(AllocaInsertPt->getParent(),
5555                              AllocaInsertPt->getIterator());
5556       for (const auto *DC : S.getClausesOfKind<OMPDependClause>()) {
5557         unsigned NumLoops = DC->getNumLoops();
5558         QualType Int64Ty = CGM.getContext().getIntTypeForBitwidth(
5559             /*DestWidth=*/64, /*Signed=*/1);
5560         llvm::SmallVector<llvm::Value *> StoreValues;
5561         for (unsigned I = 0; I < NumLoops; I++) {
5562           const Expr *CounterVal = DC->getLoopData(I);
5563           assert(CounterVal);
5564           llvm::Value *StoreValue = EmitScalarConversion(
5565               EmitScalarExpr(CounterVal), CounterVal->getType(), Int64Ty,
5566               CounterVal->getExprLoc());
5567           StoreValues.emplace_back(StoreValue);
5568         }
5569         bool IsDependSource = false;
5570         if (DC->getDependencyKind() == OMPC_DEPEND_source)
5571           IsDependSource = true;
5572         Builder.restoreIP(OMPBuilder.createOrderedDepend(
5573             Builder, AllocaIP, NumLoops, StoreValues, ".cnt.addr",
5574             IsDependSource));
5575       }
5576     } else {
5577       // The ordered directive with threads or simd clause, or without clause.
5578       // Without clause, it behaves as if the threads clause is specified.
5579       const auto *C = S.getSingleClause<OMPSIMDClause>();
5580 
5581       auto FiniCB = [this](InsertPointTy IP) {
5582         OMPBuilderCBHelpers::FinalizeOMPRegion(*this, IP);
5583       };
5584 
5585       auto BodyGenCB = [&S, C, this](InsertPointTy AllocaIP,
5586                                      InsertPointTy CodeGenIP) {
5587         Builder.restoreIP(CodeGenIP);
5588 
5589         const CapturedStmt *CS = S.getInnermostCapturedStmt();
5590         if (C) {
5591           llvm::BasicBlock *FiniBB = splitBBWithSuffix(
5592               Builder, /*CreateBranch=*/false, ".ordered.after");
5593           llvm::SmallVector<llvm::Value *, 16> CapturedVars;
5594           GenerateOpenMPCapturedVars(*CS, CapturedVars);
5595           llvm::Function *OutlinedFn =
5596               emitOutlinedOrderedFunction(CGM, CS, S.getBeginLoc());
5597           assert(S.getBeginLoc().isValid() &&
5598                  "Outlined function call location must be valid.");
5599           ApplyDebugLocation::CreateDefaultArtificial(*this, S.getBeginLoc());
5600           OMPBuilderCBHelpers::EmitCaptureStmt(*this, CodeGenIP, *FiniBB,
5601                                                OutlinedFn, CapturedVars);
5602         } else {
5603           OMPBuilderCBHelpers::EmitOMPInlinedRegionBody(
5604               *this, CS->getCapturedStmt(), AllocaIP, CodeGenIP, "ordered");
5605         }
5606       };
5607 
5608       OMPLexicalScope Scope(*this, S, OMPD_unknown);
5609       Builder.restoreIP(
5610           OMPBuilder.createOrderedThreadsSimd(Builder, BodyGenCB, FiniCB, !C));
5611     }
5612     return;
5613   }
5614 
5615   if (S.hasClausesOfKind<OMPDependClause>()) {
5616     assert(!S.hasAssociatedStmt() &&
5617            "No associated statement must be in ordered depend construct.");
5618     for (const auto *DC : S.getClausesOfKind<OMPDependClause>())
5619       CGM.getOpenMPRuntime().emitDoacrossOrdered(*this, DC);
5620     return;
5621   }
5622   const auto *C = S.getSingleClause<OMPSIMDClause>();
5623   auto &&CodeGen = [&S, C, this](CodeGenFunction &CGF,
5624                                  PrePostActionTy &Action) {
5625     const CapturedStmt *CS = S.getInnermostCapturedStmt();
5626     if (C) {
5627       llvm::SmallVector<llvm::Value *, 16> CapturedVars;
5628       CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
5629       llvm::Function *OutlinedFn =
5630           emitOutlinedOrderedFunction(CGM, CS, S.getBeginLoc());
5631       CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, S.getBeginLoc(),
5632                                                       OutlinedFn, CapturedVars);
5633     } else {
5634       Action.Enter(CGF);
5635       CGF.EmitStmt(CS->getCapturedStmt());
5636     }
5637   };
5638   OMPLexicalScope Scope(*this, S, OMPD_unknown);
5639   CGM.getOpenMPRuntime().emitOrderedRegion(*this, CodeGen, S.getBeginLoc(), !C);
5640 }
5641 
5642 static llvm::Value *convertToScalarValue(CodeGenFunction &CGF, RValue Val,
5643                                          QualType SrcType, QualType DestType,
5644                                          SourceLocation Loc) {
5645   assert(CGF.hasScalarEvaluationKind(DestType) &&
5646          "DestType must have scalar evaluation kind.");
5647   assert(!Val.isAggregate() && "Must be a scalar or complex.");
5648   return Val.isScalar() ? CGF.EmitScalarConversion(Val.getScalarVal(), SrcType,
5649                                                    DestType, Loc)
5650                         : CGF.EmitComplexToScalarConversion(
5651                               Val.getComplexVal(), SrcType, DestType, Loc);
5652 }
5653 
5654 static CodeGenFunction::ComplexPairTy
5655 convertToComplexValue(CodeGenFunction &CGF, RValue Val, QualType SrcType,
5656                       QualType DestType, SourceLocation Loc) {
5657   assert(CGF.getEvaluationKind(DestType) == TEK_Complex &&
5658          "DestType must have complex evaluation kind.");
5659   CodeGenFunction::ComplexPairTy ComplexVal;
5660   if (Val.isScalar()) {
5661     // Convert the input element to the element type of the complex.
5662     QualType DestElementType =
5663         DestType->castAs<ComplexType>()->getElementType();
5664     llvm::Value *ScalarVal = CGF.EmitScalarConversion(
5665         Val.getScalarVal(), SrcType, DestElementType, Loc);
5666     ComplexVal = CodeGenFunction::ComplexPairTy(
5667         ScalarVal, llvm::Constant::getNullValue(ScalarVal->getType()));
5668   } else {
5669     assert(Val.isComplex() && "Must be a scalar or complex.");
5670     QualType SrcElementType = SrcType->castAs<ComplexType>()->getElementType();
5671     QualType DestElementType =
5672         DestType->castAs<ComplexType>()->getElementType();
5673     ComplexVal.first = CGF.EmitScalarConversion(
5674         Val.getComplexVal().first, SrcElementType, DestElementType, Loc);
5675     ComplexVal.second = CGF.EmitScalarConversion(
5676         Val.getComplexVal().second, SrcElementType, DestElementType, Loc);
5677   }
5678   return ComplexVal;
5679 }
5680 
5681 static void emitSimpleAtomicStore(CodeGenFunction &CGF, llvm::AtomicOrdering AO,
5682                                   LValue LVal, RValue RVal) {
5683   if (LVal.isGlobalReg())
5684     CGF.EmitStoreThroughGlobalRegLValue(RVal, LVal);
5685   else
5686     CGF.EmitAtomicStore(RVal, LVal, AO, LVal.isVolatile(), /*isInit=*/false);
5687 }
5688 
5689 static RValue emitSimpleAtomicLoad(CodeGenFunction &CGF,
5690                                    llvm::AtomicOrdering AO, LValue LVal,
5691                                    SourceLocation Loc) {
5692   if (LVal.isGlobalReg())
5693     return CGF.EmitLoadOfLValue(LVal, Loc);
5694   return CGF.EmitAtomicLoad(
5695       LVal, Loc, llvm::AtomicCmpXchgInst::getStrongestFailureOrdering(AO),
5696       LVal.isVolatile());
5697 }
5698 
5699 void CodeGenFunction::emitOMPSimpleStore(LValue LVal, RValue RVal,
5700                                          QualType RValTy, SourceLocation Loc) {
5701   switch (getEvaluationKind(LVal.getType())) {
5702   case TEK_Scalar:
5703     EmitStoreThroughLValue(RValue::get(convertToScalarValue(
5704                                *this, RVal, RValTy, LVal.getType(), Loc)),
5705                            LVal);
5706     break;
5707   case TEK_Complex:
5708     EmitStoreOfComplex(
5709         convertToComplexValue(*this, RVal, RValTy, LVal.getType(), Loc), LVal,
5710         /*isInit=*/false);
5711     break;
5712   case TEK_Aggregate:
5713     llvm_unreachable("Must be a scalar or complex.");
5714   }
5715 }
5716 
5717 static void emitOMPAtomicReadExpr(CodeGenFunction &CGF, llvm::AtomicOrdering AO,
5718                                   const Expr *X, const Expr *V,
5719                                   SourceLocation Loc) {
5720   // v = x;
5721   assert(V->isLValue() && "V of 'omp atomic read' is not lvalue");
5722   assert(X->isLValue() && "X of 'omp atomic read' is not lvalue");
5723   LValue XLValue = CGF.EmitLValue(X);
5724   LValue VLValue = CGF.EmitLValue(V);
5725   RValue Res = emitSimpleAtomicLoad(CGF, AO, XLValue, Loc);
5726   // OpenMP, 2.17.7, atomic Construct
5727   // If the read or capture clause is specified and the acquire, acq_rel, or
5728   // seq_cst clause is specified then the strong flush on exit from the atomic
5729   // operation is also an acquire flush.
5730   switch (AO) {
5731   case llvm::AtomicOrdering::Acquire:
5732   case llvm::AtomicOrdering::AcquireRelease:
5733   case llvm::AtomicOrdering::SequentiallyConsistent:
5734     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc,
5735                                          llvm::AtomicOrdering::Acquire);
5736     break;
5737   case llvm::AtomicOrdering::Monotonic:
5738   case llvm::AtomicOrdering::Release:
5739     break;
5740   case llvm::AtomicOrdering::NotAtomic:
5741   case llvm::AtomicOrdering::Unordered:
5742     llvm_unreachable("Unexpected ordering.");
5743   }
5744   CGF.emitOMPSimpleStore(VLValue, Res, X->getType().getNonReferenceType(), Loc);
5745   CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, V);
5746 }
5747 
5748 static void emitOMPAtomicWriteExpr(CodeGenFunction &CGF,
5749                                    llvm::AtomicOrdering AO, const Expr *X,
5750                                    const Expr *E, SourceLocation Loc) {
5751   // x = expr;
5752   assert(X->isLValue() && "X of 'omp atomic write' is not lvalue");
5753   emitSimpleAtomicStore(CGF, AO, CGF.EmitLValue(X), CGF.EmitAnyExpr(E));
5754   CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, X);
5755   // OpenMP, 2.17.7, atomic Construct
5756   // If the write, update, or capture clause is specified and the release,
5757   // acq_rel, or seq_cst clause is specified then the strong flush on entry to
5758   // the atomic operation is also a release flush.
5759   switch (AO) {
5760   case llvm::AtomicOrdering::Release:
5761   case llvm::AtomicOrdering::AcquireRelease:
5762   case llvm::AtomicOrdering::SequentiallyConsistent:
5763     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc,
5764                                          llvm::AtomicOrdering::Release);
5765     break;
5766   case llvm::AtomicOrdering::Acquire:
5767   case llvm::AtomicOrdering::Monotonic:
5768     break;
5769   case llvm::AtomicOrdering::NotAtomic:
5770   case llvm::AtomicOrdering::Unordered:
5771     llvm_unreachable("Unexpected ordering.");
5772   }
5773 }
5774 
5775 static std::pair<bool, RValue> emitOMPAtomicRMW(CodeGenFunction &CGF, LValue X,
5776                                                 RValue Update,
5777                                                 BinaryOperatorKind BO,
5778                                                 llvm::AtomicOrdering AO,
5779                                                 bool IsXLHSInRHSPart) {
5780   ASTContext &Context = CGF.getContext();
5781   // Allow atomicrmw only if 'x' and 'update' are integer values, lvalue for 'x'
5782   // expression is simple and atomic is allowed for the given type for the
5783   // target platform.
5784   if (BO == BO_Comma || !Update.isScalar() ||
5785       !Update.getScalarVal()->getType()->isIntegerTy() || !X.isSimple() ||
5786       (!isa<llvm::ConstantInt>(Update.getScalarVal()) &&
5787        (Update.getScalarVal()->getType() !=
5788         X.getAddress(CGF).getElementType())) ||
5789       !X.getAddress(CGF).getElementType()->isIntegerTy() ||
5790       !Context.getTargetInfo().hasBuiltinAtomic(
5791           Context.getTypeSize(X.getType()), Context.toBits(X.getAlignment())))
5792     return std::make_pair(false, RValue::get(nullptr));
5793 
5794   llvm::AtomicRMWInst::BinOp RMWOp;
5795   switch (BO) {
5796   case BO_Add:
5797     RMWOp = llvm::AtomicRMWInst::Add;
5798     break;
5799   case BO_Sub:
5800     if (!IsXLHSInRHSPart)
5801       return std::make_pair(false, RValue::get(nullptr));
5802     RMWOp = llvm::AtomicRMWInst::Sub;
5803     break;
5804   case BO_And:
5805     RMWOp = llvm::AtomicRMWInst::And;
5806     break;
5807   case BO_Or:
5808     RMWOp = llvm::AtomicRMWInst::Or;
5809     break;
5810   case BO_Xor:
5811     RMWOp = llvm::AtomicRMWInst::Xor;
5812     break;
5813   case BO_LT:
5814     RMWOp = X.getType()->hasSignedIntegerRepresentation()
5815                 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Min
5816                                    : llvm::AtomicRMWInst::Max)
5817                 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMin
5818                                    : llvm::AtomicRMWInst::UMax);
5819     break;
5820   case BO_GT:
5821     RMWOp = X.getType()->hasSignedIntegerRepresentation()
5822                 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Max
5823                                    : llvm::AtomicRMWInst::Min)
5824                 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMax
5825                                    : llvm::AtomicRMWInst::UMin);
5826     break;
5827   case BO_Assign:
5828     RMWOp = llvm::AtomicRMWInst::Xchg;
5829     break;
5830   case BO_Mul:
5831   case BO_Div:
5832   case BO_Rem:
5833   case BO_Shl:
5834   case BO_Shr:
5835   case BO_LAnd:
5836   case BO_LOr:
5837     return std::make_pair(false, RValue::get(nullptr));
5838   case BO_PtrMemD:
5839   case BO_PtrMemI:
5840   case BO_LE:
5841   case BO_GE:
5842   case BO_EQ:
5843   case BO_NE:
5844   case BO_Cmp:
5845   case BO_AddAssign:
5846   case BO_SubAssign:
5847   case BO_AndAssign:
5848   case BO_OrAssign:
5849   case BO_XorAssign:
5850   case BO_MulAssign:
5851   case BO_DivAssign:
5852   case BO_RemAssign:
5853   case BO_ShlAssign:
5854   case BO_ShrAssign:
5855   case BO_Comma:
5856     llvm_unreachable("Unsupported atomic update operation");
5857   }
5858   llvm::Value *UpdateVal = Update.getScalarVal();
5859   if (auto *IC = dyn_cast<llvm::ConstantInt>(UpdateVal)) {
5860     UpdateVal = CGF.Builder.CreateIntCast(
5861         IC, X.getAddress(CGF).getElementType(),
5862         X.getType()->hasSignedIntegerRepresentation());
5863   }
5864   llvm::Value *Res =
5865       CGF.Builder.CreateAtomicRMW(RMWOp, X.getPointer(CGF), UpdateVal, AO);
5866   return std::make_pair(true, RValue::get(Res));
5867 }
5868 
5869 std::pair<bool, RValue> CodeGenFunction::EmitOMPAtomicSimpleUpdateExpr(
5870     LValue X, RValue E, BinaryOperatorKind BO, bool IsXLHSInRHSPart,
5871     llvm::AtomicOrdering AO, SourceLocation Loc,
5872     const llvm::function_ref<RValue(RValue)> CommonGen) {
5873   // Update expressions are allowed to have the following forms:
5874   // x binop= expr; -> xrval + expr;
5875   // x++, ++x -> xrval + 1;
5876   // x--, --x -> xrval - 1;
5877   // x = x binop expr; -> xrval binop expr
5878   // x = expr Op x; - > expr binop xrval;
5879   auto Res = emitOMPAtomicRMW(*this, X, E, BO, AO, IsXLHSInRHSPart);
5880   if (!Res.first) {
5881     if (X.isGlobalReg()) {
5882       // Emit an update expression: 'xrval' binop 'expr' or 'expr' binop
5883       // 'xrval'.
5884       EmitStoreThroughLValue(CommonGen(EmitLoadOfLValue(X, Loc)), X);
5885     } else {
5886       // Perform compare-and-swap procedure.
5887       EmitAtomicUpdate(X, AO, CommonGen, X.getType().isVolatileQualified());
5888     }
5889   }
5890   return Res;
5891 }
5892 
5893 static void emitOMPAtomicUpdateExpr(CodeGenFunction &CGF,
5894                                     llvm::AtomicOrdering AO, const Expr *X,
5895                                     const Expr *E, const Expr *UE,
5896                                     bool IsXLHSInRHSPart, SourceLocation Loc) {
5897   assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) &&
5898          "Update expr in 'atomic update' must be a binary operator.");
5899   const auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts());
5900   // Update expressions are allowed to have the following forms:
5901   // x binop= expr; -> xrval + expr;
5902   // x++, ++x -> xrval + 1;
5903   // x--, --x -> xrval - 1;
5904   // x = x binop expr; -> xrval binop expr
5905   // x = expr Op x; - > expr binop xrval;
5906   assert(X->isLValue() && "X of 'omp atomic update' is not lvalue");
5907   LValue XLValue = CGF.EmitLValue(X);
5908   RValue ExprRValue = CGF.EmitAnyExpr(E);
5909   const auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts());
5910   const auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts());
5911   const OpaqueValueExpr *XRValExpr = IsXLHSInRHSPart ? LHS : RHS;
5912   const OpaqueValueExpr *ERValExpr = IsXLHSInRHSPart ? RHS : LHS;
5913   auto &&Gen = [&CGF, UE, ExprRValue, XRValExpr, ERValExpr](RValue XRValue) {
5914     CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
5915     CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue);
5916     return CGF.EmitAnyExpr(UE);
5917   };
5918   (void)CGF.EmitOMPAtomicSimpleUpdateExpr(
5919       XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen);
5920   CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, X);
5921   // OpenMP, 2.17.7, atomic Construct
5922   // If the write, update, or capture clause is specified and the release,
5923   // acq_rel, or seq_cst clause is specified then the strong flush on entry to
5924   // the atomic operation is also a release flush.
5925   switch (AO) {
5926   case llvm::AtomicOrdering::Release:
5927   case llvm::AtomicOrdering::AcquireRelease:
5928   case llvm::AtomicOrdering::SequentiallyConsistent:
5929     CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc,
5930                                          llvm::AtomicOrdering::Release);
5931     break;
5932   case llvm::AtomicOrdering::Acquire:
5933   case llvm::AtomicOrdering::Monotonic:
5934     break;
5935   case llvm::AtomicOrdering::NotAtomic:
5936   case llvm::AtomicOrdering::Unordered:
5937     llvm_unreachable("Unexpected ordering.");
5938   }
5939 }
5940 
5941 static RValue convertToType(CodeGenFunction &CGF, RValue Value,
5942                             QualType SourceType, QualType ResType,
5943                             SourceLocation Loc) {
5944   switch (CGF.getEvaluationKind(ResType)) {
5945   case TEK_Scalar:
5946     return RValue::get(
5947         convertToScalarValue(CGF, Value, SourceType, ResType, Loc));
5948   case TEK_Complex: {
5949     auto Res = convertToComplexValue(CGF, Value, SourceType, ResType, Loc);
5950     return RValue::getComplex(Res.first, Res.second);
5951   }
5952   case TEK_Aggregate:
5953     break;
5954   }
5955   llvm_unreachable("Must be a scalar or complex.");
5956 }
5957 
5958 static void emitOMPAtomicCaptureExpr(CodeGenFunction &CGF,
5959                                      llvm::AtomicOrdering AO,
5960                                      bool IsPostfixUpdate, const Expr *V,
5961                                      const Expr *X, const Expr *E,
5962                                      const Expr *UE, bool IsXLHSInRHSPart,
5963                                      SourceLocation Loc) {
5964   assert(X->isLValue() && "X of 'omp atomic capture' is not lvalue");
5965   assert(V->isLValue() && "V of 'omp atomic capture' is not lvalue");
5966   RValue NewVVal;
5967   LValue VLValue = CGF.EmitLValue(V);
5968   LValue XLValue = CGF.EmitLValue(X);
5969   RValue ExprRValue = CGF.EmitAnyExpr(E);
5970   QualType NewVValType;
5971   if (UE) {
5972     // 'x' is updated with some additional value.
5973     assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) &&
5974            "Update expr in 'atomic capture' must be a binary operator.");
5975     const auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts());
5976     // Update expressions are allowed to have the following forms:
5977     // x binop= expr; -> xrval + expr;
5978     // x++, ++x -> xrval + 1;
5979     // x--, --x -> xrval - 1;
5980     // x = x binop expr; -> xrval binop expr
5981     // x = expr Op x; - > expr binop xrval;
5982     const auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts());
5983     const auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts());
5984     const OpaqueValueExpr *XRValExpr = IsXLHSInRHSPart ? LHS : RHS;
5985     NewVValType = XRValExpr->getType();
5986     const OpaqueValueExpr *ERValExpr = IsXLHSInRHSPart ? RHS : LHS;
5987     auto &&Gen = [&CGF, &NewVVal, UE, ExprRValue, XRValExpr, ERValExpr,
5988                   IsPostfixUpdate](RValue XRValue) {
5989       CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
5990       CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue);
5991       RValue Res = CGF.EmitAnyExpr(UE);
5992       NewVVal = IsPostfixUpdate ? XRValue : Res;
5993       return Res;
5994     };
5995     auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr(
5996         XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen);
5997     CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, X);
5998     if (Res.first) {
5999       // 'atomicrmw' instruction was generated.
6000       if (IsPostfixUpdate) {
6001         // Use old value from 'atomicrmw'.
6002         NewVVal = Res.second;
6003       } else {
6004         // 'atomicrmw' does not provide new value, so evaluate it using old
6005         // value of 'x'.
6006         CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue);
6007         CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, Res.second);
6008         NewVVal = CGF.EmitAnyExpr(UE);
6009       }
6010     }
6011   } else {
6012     // 'x' is simply rewritten with some 'expr'.
6013     NewVValType = X->getType().getNonReferenceType();
6014     ExprRValue = convertToType(CGF, ExprRValue, E->getType(),
6015                                X->getType().getNonReferenceType(), Loc);
6016     auto &&Gen = [&NewVVal, ExprRValue](RValue XRValue) {
6017       NewVVal = XRValue;
6018       return ExprRValue;
6019     };
6020     // Try to perform atomicrmw xchg, otherwise simple exchange.
6021     auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr(
6022         XLValue, ExprRValue, /*BO=*/BO_Assign, /*IsXLHSInRHSPart=*/false, AO,
6023         Loc, Gen);
6024     CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, X);
6025     if (Res.first) {
6026       // 'atomicrmw' instruction was generated.
6027       NewVVal = IsPostfixUpdate ? Res.second : ExprRValue;
6028     }
6029   }
6030   // Emit post-update store to 'v' of old/new 'x' value.
6031   CGF.emitOMPSimpleStore(VLValue, NewVVal, NewVValType, Loc);
6032   CGF.CGM.getOpenMPRuntime().checkAndEmitLastprivateConditional(CGF, V);
6033   // OpenMP 5.1 removes the required flush for capture clause.
6034   if (CGF.CGM.getLangOpts().OpenMP < 51) {
6035     // OpenMP, 2.17.7, atomic Construct
6036     // If the write, update, or capture clause is specified and the release,
6037     // acq_rel, or seq_cst clause is specified then the strong flush on entry to
6038     // the atomic operation is also a release flush.
6039     // If the read or capture clause is specified and the acquire, acq_rel, or
6040     // seq_cst clause is specified then the strong flush on exit from the atomic
6041     // operation is also an acquire flush.
6042     switch (AO) {
6043     case llvm::AtomicOrdering::Release:
6044       CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc,
6045                                            llvm::AtomicOrdering::Release);
6046       break;
6047     case llvm::AtomicOrdering::Acquire:
6048       CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc,
6049                                            llvm::AtomicOrdering::Acquire);
6050       break;
6051     case llvm::AtomicOrdering::AcquireRelease:
6052     case llvm::AtomicOrdering::SequentiallyConsistent:
6053       CGF.CGM.getOpenMPRuntime().emitFlush(
6054           CGF, llvm::None, Loc, llvm::AtomicOrdering::AcquireRelease);
6055       break;
6056     case llvm::AtomicOrdering::Monotonic:
6057       break;
6058     case llvm::AtomicOrdering::NotAtomic:
6059     case llvm::AtomicOrdering::Unordered:
6060       llvm_unreachable("Unexpected ordering.");
6061     }
6062   }
6063 }
6064 
6065 static void emitOMPAtomicCompareExpr(CodeGenFunction &CGF,
6066                                      llvm::AtomicOrdering AO, const Expr *X,
6067                                      const Expr *E, const Expr *D,
6068                                      const Expr *CE, bool IsXBinopExpr,
6069                                      SourceLocation Loc) {
6070   llvm::OpenMPIRBuilder &OMPBuilder =
6071       CGF.CGM.getOpenMPRuntime().getOMPBuilder();
6072 
6073   OMPAtomicCompareOp Op;
6074   assert(isa<BinaryOperator>(CE) && "CE is not a BinaryOperator");
6075   switch (cast<BinaryOperator>(CE)->getOpcode()) {
6076   case BO_EQ:
6077     Op = OMPAtomicCompareOp::EQ;
6078     break;
6079   case BO_LT:
6080     Op = OMPAtomicCompareOp::MIN;
6081     break;
6082   case BO_GT:
6083     Op = OMPAtomicCompareOp::MAX;
6084     break;
6085   default:
6086     llvm_unreachable("unsupported atomic compare binary operator");
6087   }
6088 
6089   LValue XLVal = CGF.EmitLValue(X);
6090   Address XAddr = XLVal.getAddress(CGF);
6091   llvm::Value *EVal = CGF.EmitScalarExpr(E);
6092   llvm::Value *DVal = D ? CGF.EmitScalarExpr(D) : nullptr;
6093 
6094   llvm::OpenMPIRBuilder::AtomicOpValue XOpVal{
6095       XAddr.getPointer(), XAddr.getElementType(),
6096       X->getType().isVolatileQualified(),
6097       X->getType()->hasSignedIntegerRepresentation()};
6098 
6099   CGF.Builder.restoreIP(OMPBuilder.createAtomicCompare(
6100       CGF.Builder, XOpVal, EVal, DVal, AO, Op, IsXBinopExpr));
6101 }
6102 
6103 static void emitOMPAtomicExpr(CodeGenFunction &CGF, OpenMPClauseKind Kind,
6104                               llvm::AtomicOrdering AO, bool IsPostfixUpdate,
6105                               const Expr *X, const Expr *V, const Expr *E,
6106                               const Expr *UE, const Expr *D, const Expr *CE,
6107                               bool IsXLHSInRHSPart, bool IsCompareCapture,
6108                               SourceLocation Loc) {
6109   switch (Kind) {
6110   case OMPC_read:
6111     emitOMPAtomicReadExpr(CGF, AO, X, V, Loc);
6112     break;
6113   case OMPC_write:
6114     emitOMPAtomicWriteExpr(CGF, AO, X, E, Loc);
6115     break;
6116   case OMPC_unknown:
6117   case OMPC_update:
6118     emitOMPAtomicUpdateExpr(CGF, AO, X, E, UE, IsXLHSInRHSPart, Loc);
6119     break;
6120   case OMPC_capture:
6121     emitOMPAtomicCaptureExpr(CGF, AO, IsPostfixUpdate, V, X, E, UE,
6122                              IsXLHSInRHSPart, Loc);
6123     break;
6124   case OMPC_compare: {
6125     if (IsCompareCapture) {
6126       // Emit an error here.
6127       unsigned DiagID = CGF.CGM.getDiags().getCustomDiagID(
6128           DiagnosticsEngine::Error,
6129           "'atomic compare capture' is not supported for now");
6130       CGF.CGM.getDiags().Report(DiagID);
6131     } else {
6132       emitOMPAtomicCompareExpr(CGF, AO, X, E, D, CE, IsXLHSInRHSPart, Loc);
6133     }
6134     break;
6135   }
6136   case OMPC_if:
6137   case OMPC_final:
6138   case OMPC_num_threads:
6139   case OMPC_private:
6140   case OMPC_firstprivate:
6141   case OMPC_lastprivate:
6142   case OMPC_reduction:
6143   case OMPC_task_reduction:
6144   case OMPC_in_reduction:
6145   case OMPC_safelen:
6146   case OMPC_simdlen:
6147   case OMPC_sizes:
6148   case OMPC_full:
6149   case OMPC_partial:
6150   case OMPC_allocator:
6151   case OMPC_allocate:
6152   case OMPC_collapse:
6153   case OMPC_default:
6154   case OMPC_seq_cst:
6155   case OMPC_acq_rel:
6156   case OMPC_acquire:
6157   case OMPC_release:
6158   case OMPC_relaxed:
6159   case OMPC_shared:
6160   case OMPC_linear:
6161   case OMPC_aligned:
6162   case OMPC_copyin:
6163   case OMPC_copyprivate:
6164   case OMPC_flush:
6165   case OMPC_depobj:
6166   case OMPC_proc_bind:
6167   case OMPC_schedule:
6168   case OMPC_ordered:
6169   case OMPC_nowait:
6170   case OMPC_untied:
6171   case OMPC_threadprivate:
6172   case OMPC_depend:
6173   case OMPC_mergeable:
6174   case OMPC_device:
6175   case OMPC_threads:
6176   case OMPC_simd:
6177   case OMPC_map:
6178   case OMPC_num_teams:
6179   case OMPC_thread_limit:
6180   case OMPC_priority:
6181   case OMPC_grainsize:
6182   case OMPC_nogroup:
6183   case OMPC_num_tasks:
6184   case OMPC_hint:
6185   case OMPC_dist_schedule:
6186   case OMPC_defaultmap:
6187   case OMPC_uniform:
6188   case OMPC_to:
6189   case OMPC_from:
6190   case OMPC_use_device_ptr:
6191   case OMPC_use_device_addr:
6192   case OMPC_is_device_ptr:
6193   case OMPC_has_device_addr:
6194   case OMPC_unified_address:
6195   case OMPC_unified_shared_memory:
6196   case OMPC_reverse_offload:
6197   case OMPC_dynamic_allocators:
6198   case OMPC_atomic_default_mem_order:
6199   case OMPC_device_type:
6200   case OMPC_match:
6201   case OMPC_nontemporal:
6202   case OMPC_order:
6203   case OMPC_destroy:
6204   case OMPC_detach:
6205   case OMPC_inclusive:
6206   case OMPC_exclusive:
6207   case OMPC_uses_allocators:
6208   case OMPC_affinity:
6209   case OMPC_init:
6210   case OMPC_inbranch:
6211   case OMPC_notinbranch:
6212   case OMPC_link:
6213   case OMPC_indirect:
6214   case OMPC_use:
6215   case OMPC_novariants:
6216   case OMPC_nocontext:
6217   case OMPC_filter:
6218   case OMPC_when:
6219   case OMPC_adjust_args:
6220   case OMPC_append_args:
6221   case OMPC_memory_order:
6222   case OMPC_bind:
6223   case OMPC_align:
6224     llvm_unreachable("Clause is not allowed in 'omp atomic'.");
6225   }
6226 }
6227 
6228 void CodeGenFunction::EmitOMPAtomicDirective(const OMPAtomicDirective &S) {
6229   llvm::AtomicOrdering AO = llvm::AtomicOrdering::Monotonic;
6230   bool MemOrderingSpecified = false;
6231   if (S.getSingleClause<OMPSeqCstClause>()) {
6232     AO = llvm::AtomicOrdering::SequentiallyConsistent;
6233     MemOrderingSpecified = true;
6234   } else if (S.getSingleClause<OMPAcqRelClause>()) {
6235     AO = llvm::AtomicOrdering::AcquireRelease;
6236     MemOrderingSpecified = true;
6237   } else if (S.getSingleClause<OMPAcquireClause>()) {
6238     AO = llvm::AtomicOrdering::Acquire;
6239     MemOrderingSpecified = true;
6240   } else if (S.getSingleClause<OMPReleaseClause>()) {
6241     AO = llvm::AtomicOrdering::Release;
6242     MemOrderingSpecified = true;
6243   } else if (S.getSingleClause<OMPRelaxedClause>()) {
6244     AO = llvm::AtomicOrdering::Monotonic;
6245     MemOrderingSpecified = true;
6246   }
6247   llvm::SmallSet<OpenMPClauseKind, 2> KindsEncountered;
6248   OpenMPClauseKind Kind = OMPC_unknown;
6249   for (const OMPClause *C : S.clauses()) {
6250     // Find first clause (skip seq_cst|acq_rel|aqcuire|release|relaxed clause,
6251     // if it is first).
6252     OpenMPClauseKind K = C->getClauseKind();
6253     if (K == OMPC_seq_cst || K == OMPC_acq_rel || K == OMPC_acquire ||
6254         K == OMPC_release || K == OMPC_relaxed || K == OMPC_hint)
6255       continue;
6256     Kind = K;
6257     KindsEncountered.insert(K);
6258   }
6259   bool IsCompareCapture = false;
6260   if (KindsEncountered.contains(OMPC_compare) &&
6261       KindsEncountered.contains(OMPC_capture)) {
6262     IsCompareCapture = true;
6263     Kind = OMPC_compare;
6264   }
6265   if (!MemOrderingSpecified) {
6266     llvm::AtomicOrdering DefaultOrder =
6267         CGM.getOpenMPRuntime().getDefaultMemoryOrdering();
6268     if (DefaultOrder == llvm::AtomicOrdering::Monotonic ||
6269         DefaultOrder == llvm::AtomicOrdering::SequentiallyConsistent ||
6270         (DefaultOrder == llvm::AtomicOrdering::AcquireRelease &&
6271          Kind == OMPC_capture)) {
6272       AO = DefaultOrder;
6273     } else if (DefaultOrder == llvm::AtomicOrdering::AcquireRelease) {
6274       if (Kind == OMPC_unknown || Kind == OMPC_update || Kind == OMPC_write) {
6275         AO = llvm::AtomicOrdering::Release;
6276       } else if (Kind == OMPC_read) {
6277         assert(Kind == OMPC_read && "Unexpected atomic kind.");
6278         AO = llvm::AtomicOrdering::Acquire;
6279       }
6280     }
6281   }
6282 
6283   LexicalScope Scope(*this, S.getSourceRange());
6284   EmitStopPoint(S.getAssociatedStmt());
6285   emitOMPAtomicExpr(*this, Kind, AO, S.isPostfixUpdate(), S.getX(), S.getV(),
6286                     S.getExpr(), S.getUpdateExpr(), S.getD(), S.getCondExpr(),
6287                     S.isXLHSInRHSPart(), IsCompareCapture, S.getBeginLoc());
6288 }
6289 
6290 static void emitCommonOMPTargetDirective(CodeGenFunction &CGF,
6291                                          const OMPExecutableDirective &S,
6292                                          const RegionCodeGenTy &CodeGen) {
6293   assert(isOpenMPTargetExecutionDirective(S.getDirectiveKind()));
6294   CodeGenModule &CGM = CGF.CGM;
6295 
6296   // On device emit this construct as inlined code.
6297   if (CGM.getLangOpts().OpenMPIsDevice) {
6298     OMPLexicalScope Scope(CGF, S, OMPD_target);
6299     CGM.getOpenMPRuntime().emitInlinedDirective(
6300         CGF, OMPD_target, [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6301           CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt());
6302         });
6303     return;
6304   }
6305 
6306   auto LPCRegion = CGOpenMPRuntime::LastprivateConditionalRAII::disable(CGF, S);
6307   llvm::Function *Fn = nullptr;
6308   llvm::Constant *FnID = nullptr;
6309 
6310   const Expr *IfCond = nullptr;
6311   // Check for the at most one if clause associated with the target region.
6312   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
6313     if (C->getNameModifier() == OMPD_unknown ||
6314         C->getNameModifier() == OMPD_target) {
6315       IfCond = C->getCondition();
6316       break;
6317     }
6318   }
6319 
6320   // Check if we have any device clause associated with the directive.
6321   llvm::PointerIntPair<const Expr *, 2, OpenMPDeviceClauseModifier> Device(
6322       nullptr, OMPC_DEVICE_unknown);
6323   if (auto *C = S.getSingleClause<OMPDeviceClause>())
6324     Device.setPointerAndInt(C->getDevice(), C->getModifier());
6325 
6326   // Check if we have an if clause whose conditional always evaluates to false
6327   // or if we do not have any targets specified. If so the target region is not
6328   // an offload entry point.
6329   bool IsOffloadEntry = true;
6330   if (IfCond) {
6331     bool Val;
6332     if (CGF.ConstantFoldsToSimpleInteger(IfCond, Val) && !Val)
6333       IsOffloadEntry = false;
6334   }
6335   if (CGM.getLangOpts().OMPTargetTriples.empty())
6336     IsOffloadEntry = false;
6337 
6338   if (CGM.getLangOpts().OpenMPOffloadMandatory && !IsOffloadEntry) {
6339     unsigned DiagID = CGM.getDiags().getCustomDiagID(
6340         DiagnosticsEngine::Error,
6341         "No offloading entry generated while offloading is mandatory.");
6342     CGM.getDiags().Report(DiagID);
6343   }
6344 
6345   assert(CGF.CurFuncDecl && "No parent declaration for target region!");
6346   StringRef ParentName;
6347   // In case we have Ctors/Dtors we use the complete type variant to produce
6348   // the mangling of the device outlined kernel.
6349   if (const auto *D = dyn_cast<CXXConstructorDecl>(CGF.CurFuncDecl))
6350     ParentName = CGM.getMangledName(GlobalDecl(D, Ctor_Complete));
6351   else if (const auto *D = dyn_cast<CXXDestructorDecl>(CGF.CurFuncDecl))
6352     ParentName = CGM.getMangledName(GlobalDecl(D, Dtor_Complete));
6353   else
6354     ParentName =
6355         CGM.getMangledName(GlobalDecl(cast<FunctionDecl>(CGF.CurFuncDecl)));
6356 
6357   // Emit target region as a standalone region.
6358   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(S, ParentName, Fn, FnID,
6359                                                     IsOffloadEntry, CodeGen);
6360   OMPLexicalScope Scope(CGF, S, OMPD_task);
6361   auto &&SizeEmitter =
6362       [IsOffloadEntry](CodeGenFunction &CGF,
6363                        const OMPLoopDirective &D) -> llvm::Value * {
6364     if (IsOffloadEntry) {
6365       OMPLoopScope(CGF, D);
6366       // Emit calculation of the iterations count.
6367       llvm::Value *NumIterations = CGF.EmitScalarExpr(D.getNumIterations());
6368       NumIterations = CGF.Builder.CreateIntCast(NumIterations, CGF.Int64Ty,
6369                                                 /*isSigned=*/false);
6370       return NumIterations;
6371     }
6372     return nullptr;
6373   };
6374   CGM.getOpenMPRuntime().emitTargetCall(CGF, S, Fn, FnID, IfCond, Device,
6375                                         SizeEmitter);
6376 }
6377 
6378 static void emitTargetRegion(CodeGenFunction &CGF, const OMPTargetDirective &S,
6379                              PrePostActionTy &Action) {
6380   Action.Enter(CGF);
6381   CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6382   (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
6383   CGF.EmitOMPPrivateClause(S, PrivateScope);
6384   (void)PrivateScope.Privatize();
6385   if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
6386     CGF.CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(CGF, S);
6387 
6388   CGF.EmitStmt(S.getCapturedStmt(OMPD_target)->getCapturedStmt());
6389   CGF.EnsureInsertPoint();
6390 }
6391 
6392 void CodeGenFunction::EmitOMPTargetDeviceFunction(CodeGenModule &CGM,
6393                                                   StringRef ParentName,
6394                                                   const OMPTargetDirective &S) {
6395   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6396     emitTargetRegion(CGF, S, Action);
6397   };
6398   llvm::Function *Fn;
6399   llvm::Constant *Addr;
6400   // Emit target region as a standalone region.
6401   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6402       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6403   assert(Fn && Addr && "Target device function emission failed.");
6404 }
6405 
6406 void CodeGenFunction::EmitOMPTargetDirective(const OMPTargetDirective &S) {
6407   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6408     emitTargetRegion(CGF, S, Action);
6409   };
6410   emitCommonOMPTargetDirective(*this, S, CodeGen);
6411 }
6412 
6413 static void emitCommonOMPTeamsDirective(CodeGenFunction &CGF,
6414                                         const OMPExecutableDirective &S,
6415                                         OpenMPDirectiveKind InnermostKind,
6416                                         const RegionCodeGenTy &CodeGen) {
6417   const CapturedStmt *CS = S.getCapturedStmt(OMPD_teams);
6418   llvm::Function *OutlinedFn =
6419       CGF.CGM.getOpenMPRuntime().emitTeamsOutlinedFunction(
6420           S, *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen);
6421 
6422   const auto *NT = S.getSingleClause<OMPNumTeamsClause>();
6423   const auto *TL = S.getSingleClause<OMPThreadLimitClause>();
6424   if (NT || TL) {
6425     const Expr *NumTeams = NT ? NT->getNumTeams() : nullptr;
6426     const Expr *ThreadLimit = TL ? TL->getThreadLimit() : nullptr;
6427 
6428     CGF.CGM.getOpenMPRuntime().emitNumTeamsClause(CGF, NumTeams, ThreadLimit,
6429                                                   S.getBeginLoc());
6430   }
6431 
6432   OMPTeamsScope Scope(CGF, S);
6433   llvm::SmallVector<llvm::Value *, 16> CapturedVars;
6434   CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars);
6435   CGF.CGM.getOpenMPRuntime().emitTeamsCall(CGF, S, S.getBeginLoc(), OutlinedFn,
6436                                            CapturedVars);
6437 }
6438 
6439 void CodeGenFunction::EmitOMPTeamsDirective(const OMPTeamsDirective &S) {
6440   // Emit teams region as a standalone region.
6441   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6442     Action.Enter(CGF);
6443     OMPPrivateScope PrivateScope(CGF);
6444     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
6445     CGF.EmitOMPPrivateClause(S, PrivateScope);
6446     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6447     (void)PrivateScope.Privatize();
6448     CGF.EmitStmt(S.getCapturedStmt(OMPD_teams)->getCapturedStmt());
6449     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6450   };
6451   emitCommonOMPTeamsDirective(*this, S, OMPD_distribute, CodeGen);
6452   emitPostUpdateForReductionClause(*this, S,
6453                                    [](CodeGenFunction &) { return nullptr; });
6454 }
6455 
6456 static void emitTargetTeamsRegion(CodeGenFunction &CGF, PrePostActionTy &Action,
6457                                   const OMPTargetTeamsDirective &S) {
6458   auto *CS = S.getCapturedStmt(OMPD_teams);
6459   Action.Enter(CGF);
6460   // Emit teams region as a standalone region.
6461   auto &&CodeGen = [&S, CS](CodeGenFunction &CGF, PrePostActionTy &Action) {
6462     Action.Enter(CGF);
6463     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6464     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
6465     CGF.EmitOMPPrivateClause(S, PrivateScope);
6466     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6467     (void)PrivateScope.Privatize();
6468     if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
6469       CGF.CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(CGF, S);
6470     CGF.EmitStmt(CS->getCapturedStmt());
6471     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6472   };
6473   emitCommonOMPTeamsDirective(CGF, S, OMPD_teams, CodeGen);
6474   emitPostUpdateForReductionClause(CGF, S,
6475                                    [](CodeGenFunction &) { return nullptr; });
6476 }
6477 
6478 void CodeGenFunction::EmitOMPTargetTeamsDeviceFunction(
6479     CodeGenModule &CGM, StringRef ParentName,
6480     const OMPTargetTeamsDirective &S) {
6481   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6482     emitTargetTeamsRegion(CGF, Action, S);
6483   };
6484   llvm::Function *Fn;
6485   llvm::Constant *Addr;
6486   // Emit target region as a standalone region.
6487   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6488       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6489   assert(Fn && Addr && "Target device function emission failed.");
6490 }
6491 
6492 void CodeGenFunction::EmitOMPTargetTeamsDirective(
6493     const OMPTargetTeamsDirective &S) {
6494   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6495     emitTargetTeamsRegion(CGF, Action, S);
6496   };
6497   emitCommonOMPTargetDirective(*this, S, CodeGen);
6498 }
6499 
6500 static void
6501 emitTargetTeamsDistributeRegion(CodeGenFunction &CGF, PrePostActionTy &Action,
6502                                 const OMPTargetTeamsDistributeDirective &S) {
6503   Action.Enter(CGF);
6504   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6505     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
6506   };
6507 
6508   // Emit teams region as a standalone region.
6509   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6510                                             PrePostActionTy &Action) {
6511     Action.Enter(CGF);
6512     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6513     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6514     (void)PrivateScope.Privatize();
6515     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute,
6516                                                     CodeGenDistribute);
6517     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6518   };
6519   emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute, CodeGen);
6520   emitPostUpdateForReductionClause(CGF, S,
6521                                    [](CodeGenFunction &) { return nullptr; });
6522 }
6523 
6524 void CodeGenFunction::EmitOMPTargetTeamsDistributeDeviceFunction(
6525     CodeGenModule &CGM, StringRef ParentName,
6526     const OMPTargetTeamsDistributeDirective &S) {
6527   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6528     emitTargetTeamsDistributeRegion(CGF, Action, S);
6529   };
6530   llvm::Function *Fn;
6531   llvm::Constant *Addr;
6532   // Emit target region as a standalone region.
6533   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6534       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6535   assert(Fn && Addr && "Target device function emission failed.");
6536 }
6537 
6538 void CodeGenFunction::EmitOMPTargetTeamsDistributeDirective(
6539     const OMPTargetTeamsDistributeDirective &S) {
6540   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6541     emitTargetTeamsDistributeRegion(CGF, Action, S);
6542   };
6543   emitCommonOMPTargetDirective(*this, S, CodeGen);
6544 }
6545 
6546 static void emitTargetTeamsDistributeSimdRegion(
6547     CodeGenFunction &CGF, PrePostActionTy &Action,
6548     const OMPTargetTeamsDistributeSimdDirective &S) {
6549   Action.Enter(CGF);
6550   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6551     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
6552   };
6553 
6554   // Emit teams region as a standalone region.
6555   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6556                                             PrePostActionTy &Action) {
6557     Action.Enter(CGF);
6558     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6559     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6560     (void)PrivateScope.Privatize();
6561     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute,
6562                                                     CodeGenDistribute);
6563     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6564   };
6565   emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_simd, CodeGen);
6566   emitPostUpdateForReductionClause(CGF, S,
6567                                    [](CodeGenFunction &) { return nullptr; });
6568 }
6569 
6570 void CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDeviceFunction(
6571     CodeGenModule &CGM, StringRef ParentName,
6572     const OMPTargetTeamsDistributeSimdDirective &S) {
6573   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6574     emitTargetTeamsDistributeSimdRegion(CGF, Action, S);
6575   };
6576   llvm::Function *Fn;
6577   llvm::Constant *Addr;
6578   // Emit target region as a standalone region.
6579   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6580       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6581   assert(Fn && Addr && "Target device function emission failed.");
6582 }
6583 
6584 void CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDirective(
6585     const OMPTargetTeamsDistributeSimdDirective &S) {
6586   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6587     emitTargetTeamsDistributeSimdRegion(CGF, Action, S);
6588   };
6589   emitCommonOMPTargetDirective(*this, S, CodeGen);
6590 }
6591 
6592 void CodeGenFunction::EmitOMPTeamsDistributeDirective(
6593     const OMPTeamsDistributeDirective &S) {
6594 
6595   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6596     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
6597   };
6598 
6599   // Emit teams region as a standalone region.
6600   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6601                                             PrePostActionTy &Action) {
6602     Action.Enter(CGF);
6603     OMPPrivateScope PrivateScope(CGF);
6604     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6605     (void)PrivateScope.Privatize();
6606     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute,
6607                                                     CodeGenDistribute);
6608     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6609   };
6610   emitCommonOMPTeamsDirective(*this, S, OMPD_distribute, CodeGen);
6611   emitPostUpdateForReductionClause(*this, S,
6612                                    [](CodeGenFunction &) { return nullptr; });
6613 }
6614 
6615 void CodeGenFunction::EmitOMPTeamsDistributeSimdDirective(
6616     const OMPTeamsDistributeSimdDirective &S) {
6617   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6618     CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc());
6619   };
6620 
6621   // Emit teams region as a standalone region.
6622   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6623                                             PrePostActionTy &Action) {
6624     Action.Enter(CGF);
6625     OMPPrivateScope PrivateScope(CGF);
6626     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6627     (void)PrivateScope.Privatize();
6628     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_simd,
6629                                                     CodeGenDistribute);
6630     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6631   };
6632   emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_simd, CodeGen);
6633   emitPostUpdateForReductionClause(*this, S,
6634                                    [](CodeGenFunction &) { return nullptr; });
6635 }
6636 
6637 void CodeGenFunction::EmitOMPTeamsDistributeParallelForDirective(
6638     const OMPTeamsDistributeParallelForDirective &S) {
6639   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6640     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
6641                               S.getDistInc());
6642   };
6643 
6644   // Emit teams region as a standalone region.
6645   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6646                                             PrePostActionTy &Action) {
6647     Action.Enter(CGF);
6648     OMPPrivateScope PrivateScope(CGF);
6649     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6650     (void)PrivateScope.Privatize();
6651     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute,
6652                                                     CodeGenDistribute);
6653     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6654   };
6655   emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_parallel_for, CodeGen);
6656   emitPostUpdateForReductionClause(*this, S,
6657                                    [](CodeGenFunction &) { return nullptr; });
6658 }
6659 
6660 void CodeGenFunction::EmitOMPTeamsDistributeParallelForSimdDirective(
6661     const OMPTeamsDistributeParallelForSimdDirective &S) {
6662   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6663     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
6664                               S.getDistInc());
6665   };
6666 
6667   // Emit teams region as a standalone region.
6668   auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6669                                             PrePostActionTy &Action) {
6670     Action.Enter(CGF);
6671     OMPPrivateScope PrivateScope(CGF);
6672     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6673     (void)PrivateScope.Privatize();
6674     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(
6675         CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false);
6676     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6677   };
6678   emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_parallel_for_simd,
6679                               CodeGen);
6680   emitPostUpdateForReductionClause(*this, S,
6681                                    [](CodeGenFunction &) { return nullptr; });
6682 }
6683 
6684 void CodeGenFunction::EmitOMPInteropDirective(const OMPInteropDirective &S) {
6685   llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
6686   llvm::Value *Device = nullptr;
6687   if (const auto *C = S.getSingleClause<OMPDeviceClause>())
6688     Device = EmitScalarExpr(C->getDevice());
6689 
6690   llvm::Value *NumDependences = nullptr;
6691   llvm::Value *DependenceAddress = nullptr;
6692   if (const auto *DC = S.getSingleClause<OMPDependClause>()) {
6693     OMPTaskDataTy::DependData Dependencies(DC->getDependencyKind(),
6694                                            DC->getModifier());
6695     Dependencies.DepExprs.append(DC->varlist_begin(), DC->varlist_end());
6696     std::pair<llvm::Value *, Address> DependencePair =
6697         CGM.getOpenMPRuntime().emitDependClause(*this, Dependencies,
6698                                                 DC->getBeginLoc());
6699     NumDependences = DependencePair.first;
6700     DependenceAddress = Builder.CreatePointerCast(
6701         DependencePair.second.getPointer(), CGM.Int8PtrTy);
6702   }
6703 
6704   assert(!(S.hasClausesOfKind<OMPNowaitClause>() &&
6705            !(S.getSingleClause<OMPInitClause>() ||
6706              S.getSingleClause<OMPDestroyClause>() ||
6707              S.getSingleClause<OMPUseClause>())) &&
6708          "OMPNowaitClause clause is used separately in OMPInteropDirective.");
6709 
6710   if (const auto *C = S.getSingleClause<OMPInitClause>()) {
6711     llvm::Value *InteropvarPtr =
6712         EmitLValue(C->getInteropVar()).getPointer(*this);
6713     llvm::omp::OMPInteropType InteropType = llvm::omp::OMPInteropType::Unknown;
6714     if (C->getIsTarget()) {
6715       InteropType = llvm::omp::OMPInteropType::Target;
6716     } else {
6717       assert(C->getIsTargetSync() && "Expected interop-type target/targetsync");
6718       InteropType = llvm::omp::OMPInteropType::TargetSync;
6719     }
6720     OMPBuilder.createOMPInteropInit(Builder, InteropvarPtr, InteropType, Device,
6721                                     NumDependences, DependenceAddress,
6722                                     S.hasClausesOfKind<OMPNowaitClause>());
6723   } else if (const auto *C = S.getSingleClause<OMPDestroyClause>()) {
6724     llvm::Value *InteropvarPtr =
6725         EmitLValue(C->getInteropVar()).getPointer(*this);
6726     OMPBuilder.createOMPInteropDestroy(Builder, InteropvarPtr, Device,
6727                                        NumDependences, DependenceAddress,
6728                                        S.hasClausesOfKind<OMPNowaitClause>());
6729   } else if (const auto *C = S.getSingleClause<OMPUseClause>()) {
6730     llvm::Value *InteropvarPtr =
6731         EmitLValue(C->getInteropVar()).getPointer(*this);
6732     OMPBuilder.createOMPInteropUse(Builder, InteropvarPtr, Device,
6733                                    NumDependences, DependenceAddress,
6734                                    S.hasClausesOfKind<OMPNowaitClause>());
6735   }
6736 }
6737 
6738 static void emitTargetTeamsDistributeParallelForRegion(
6739     CodeGenFunction &CGF, const OMPTargetTeamsDistributeParallelForDirective &S,
6740     PrePostActionTy &Action) {
6741   Action.Enter(CGF);
6742   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6743     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
6744                               S.getDistInc());
6745   };
6746 
6747   // Emit teams region as a standalone region.
6748   auto &&CodeGenTeams = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6749                                                  PrePostActionTy &Action) {
6750     Action.Enter(CGF);
6751     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6752     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6753     (void)PrivateScope.Privatize();
6754     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(
6755         CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false);
6756     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6757   };
6758 
6759   emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_parallel_for,
6760                               CodeGenTeams);
6761   emitPostUpdateForReductionClause(CGF, S,
6762                                    [](CodeGenFunction &) { return nullptr; });
6763 }
6764 
6765 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDeviceFunction(
6766     CodeGenModule &CGM, StringRef ParentName,
6767     const OMPTargetTeamsDistributeParallelForDirective &S) {
6768   // Emit SPMD target teams distribute parallel for region as a standalone
6769   // region.
6770   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6771     emitTargetTeamsDistributeParallelForRegion(CGF, S, Action);
6772   };
6773   llvm::Function *Fn;
6774   llvm::Constant *Addr;
6775   // Emit target region as a standalone region.
6776   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6777       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6778   assert(Fn && Addr && "Target device function emission failed.");
6779 }
6780 
6781 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDirective(
6782     const OMPTargetTeamsDistributeParallelForDirective &S) {
6783   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6784     emitTargetTeamsDistributeParallelForRegion(CGF, S, Action);
6785   };
6786   emitCommonOMPTargetDirective(*this, S, CodeGen);
6787 }
6788 
6789 static void emitTargetTeamsDistributeParallelForSimdRegion(
6790     CodeGenFunction &CGF,
6791     const OMPTargetTeamsDistributeParallelForSimdDirective &S,
6792     PrePostActionTy &Action) {
6793   Action.Enter(CGF);
6794   auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
6795     CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined,
6796                               S.getDistInc());
6797   };
6798 
6799   // Emit teams region as a standalone region.
6800   auto &&CodeGenTeams = [&S, &CodeGenDistribute](CodeGenFunction &CGF,
6801                                                  PrePostActionTy &Action) {
6802     Action.Enter(CGF);
6803     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
6804     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
6805     (void)PrivateScope.Privatize();
6806     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(
6807         CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false);
6808     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams);
6809   };
6810 
6811   emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_parallel_for_simd,
6812                               CodeGenTeams);
6813   emitPostUpdateForReductionClause(CGF, S,
6814                                    [](CodeGenFunction &) { return nullptr; });
6815 }
6816 
6817 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForSimdDeviceFunction(
6818     CodeGenModule &CGM, StringRef ParentName,
6819     const OMPTargetTeamsDistributeParallelForSimdDirective &S) {
6820   // Emit SPMD target teams distribute parallel for simd region as a standalone
6821   // region.
6822   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6823     emitTargetTeamsDistributeParallelForSimdRegion(CGF, S, Action);
6824   };
6825   llvm::Function *Fn;
6826   llvm::Constant *Addr;
6827   // Emit target region as a standalone region.
6828   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
6829       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
6830   assert(Fn && Addr && "Target device function emission failed.");
6831 }
6832 
6833 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForSimdDirective(
6834     const OMPTargetTeamsDistributeParallelForSimdDirective &S) {
6835   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
6836     emitTargetTeamsDistributeParallelForSimdRegion(CGF, S, Action);
6837   };
6838   emitCommonOMPTargetDirective(*this, S, CodeGen);
6839 }
6840 
6841 void CodeGenFunction::EmitOMPCancellationPointDirective(
6842     const OMPCancellationPointDirective &S) {
6843   CGM.getOpenMPRuntime().emitCancellationPointCall(*this, S.getBeginLoc(),
6844                                                    S.getCancelRegion());
6845 }
6846 
6847 void CodeGenFunction::EmitOMPCancelDirective(const OMPCancelDirective &S) {
6848   const Expr *IfCond = nullptr;
6849   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
6850     if (C->getNameModifier() == OMPD_unknown ||
6851         C->getNameModifier() == OMPD_cancel) {
6852       IfCond = C->getCondition();
6853       break;
6854     }
6855   }
6856   if (CGM.getLangOpts().OpenMPIRBuilder) {
6857     llvm::OpenMPIRBuilder &OMPBuilder = CGM.getOpenMPRuntime().getOMPBuilder();
6858     // TODO: This check is necessary as we only generate `omp parallel` through
6859     // the OpenMPIRBuilder for now.
6860     if (S.getCancelRegion() == OMPD_parallel ||
6861         S.getCancelRegion() == OMPD_sections ||
6862         S.getCancelRegion() == OMPD_section) {
6863       llvm::Value *IfCondition = nullptr;
6864       if (IfCond)
6865         IfCondition = EmitScalarExpr(IfCond,
6866                                      /*IgnoreResultAssign=*/true);
6867       return Builder.restoreIP(
6868           OMPBuilder.createCancel(Builder, IfCondition, S.getCancelRegion()));
6869     }
6870   }
6871 
6872   CGM.getOpenMPRuntime().emitCancelCall(*this, S.getBeginLoc(), IfCond,
6873                                         S.getCancelRegion());
6874 }
6875 
6876 CodeGenFunction::JumpDest
6877 CodeGenFunction::getOMPCancelDestination(OpenMPDirectiveKind Kind) {
6878   if (Kind == OMPD_parallel || Kind == OMPD_task ||
6879       Kind == OMPD_target_parallel || Kind == OMPD_taskloop ||
6880       Kind == OMPD_master_taskloop || Kind == OMPD_parallel_master_taskloop)
6881     return ReturnBlock;
6882   assert(Kind == OMPD_for || Kind == OMPD_section || Kind == OMPD_sections ||
6883          Kind == OMPD_parallel_sections || Kind == OMPD_parallel_for ||
6884          Kind == OMPD_distribute_parallel_for ||
6885          Kind == OMPD_target_parallel_for ||
6886          Kind == OMPD_teams_distribute_parallel_for ||
6887          Kind == OMPD_target_teams_distribute_parallel_for);
6888   return OMPCancelStack.getExitBlock();
6889 }
6890 
6891 void CodeGenFunction::EmitOMPUseDevicePtrClause(
6892     const OMPUseDevicePtrClause &C, OMPPrivateScope &PrivateScope,
6893     const llvm::DenseMap<const ValueDecl *, Address> &CaptureDeviceAddrMap) {
6894   auto OrigVarIt = C.varlist_begin();
6895   auto InitIt = C.inits().begin();
6896   for (const Expr *PvtVarIt : C.private_copies()) {
6897     const auto *OrigVD =
6898         cast<VarDecl>(cast<DeclRefExpr>(*OrigVarIt)->getDecl());
6899     const auto *InitVD = cast<VarDecl>(cast<DeclRefExpr>(*InitIt)->getDecl());
6900     const auto *PvtVD = cast<VarDecl>(cast<DeclRefExpr>(PvtVarIt)->getDecl());
6901 
6902     // In order to identify the right initializer we need to match the
6903     // declaration used by the mapping logic. In some cases we may get
6904     // OMPCapturedExprDecl that refers to the original declaration.
6905     const ValueDecl *MatchingVD = OrigVD;
6906     if (const auto *OED = dyn_cast<OMPCapturedExprDecl>(MatchingVD)) {
6907       // OMPCapturedExprDecl are used to privative fields of the current
6908       // structure.
6909       const auto *ME = cast<MemberExpr>(OED->getInit());
6910       assert(isa<CXXThisExpr>(ME->getBase()) &&
6911              "Base should be the current struct!");
6912       MatchingVD = ME->getMemberDecl();
6913     }
6914 
6915     // If we don't have information about the current list item, move on to
6916     // the next one.
6917     auto InitAddrIt = CaptureDeviceAddrMap.find(MatchingVD);
6918     if (InitAddrIt == CaptureDeviceAddrMap.end())
6919       continue;
6920 
6921     // Initialize the temporary initialization variable with the address
6922     // we get from the runtime library. We have to cast the source address
6923     // because it is always a void *. References are materialized in the
6924     // privatization scope, so the initialization here disregards the fact
6925     // the original variable is a reference.
6926     llvm::Type *Ty = ConvertTypeForMem(OrigVD->getType().getNonReferenceType());
6927     Address InitAddr = Builder.CreateElementBitCast(InitAddrIt->second, Ty);
6928     setAddrOfLocalVar(InitVD, InitAddr);
6929 
6930     // Emit private declaration, it will be initialized by the value we
6931     // declaration we just added to the local declarations map.
6932     EmitDecl(*PvtVD);
6933 
6934     // The initialization variables reached its purpose in the emission
6935     // of the previous declaration, so we don't need it anymore.
6936     LocalDeclMap.erase(InitVD);
6937 
6938     // Return the address of the private variable.
6939     bool IsRegistered =
6940         PrivateScope.addPrivate(OrigVD, GetAddrOfLocalVar(PvtVD));
6941     assert(IsRegistered && "firstprivate var already registered as private");
6942     // Silence the warning about unused variable.
6943     (void)IsRegistered;
6944 
6945     ++OrigVarIt;
6946     ++InitIt;
6947   }
6948 }
6949 
6950 static const VarDecl *getBaseDecl(const Expr *Ref) {
6951   const Expr *Base = Ref->IgnoreParenImpCasts();
6952   while (const auto *OASE = dyn_cast<OMPArraySectionExpr>(Base))
6953     Base = OASE->getBase()->IgnoreParenImpCasts();
6954   while (const auto *ASE = dyn_cast<ArraySubscriptExpr>(Base))
6955     Base = ASE->getBase()->IgnoreParenImpCasts();
6956   return cast<VarDecl>(cast<DeclRefExpr>(Base)->getDecl());
6957 }
6958 
6959 void CodeGenFunction::EmitOMPUseDeviceAddrClause(
6960     const OMPUseDeviceAddrClause &C, OMPPrivateScope &PrivateScope,
6961     const llvm::DenseMap<const ValueDecl *, Address> &CaptureDeviceAddrMap) {
6962   llvm::SmallDenseSet<CanonicalDeclPtr<const Decl>, 4> Processed;
6963   for (const Expr *Ref : C.varlists()) {
6964     const VarDecl *OrigVD = getBaseDecl(Ref);
6965     if (!Processed.insert(OrigVD).second)
6966       continue;
6967     // In order to identify the right initializer we need to match the
6968     // declaration used by the mapping logic. In some cases we may get
6969     // OMPCapturedExprDecl that refers to the original declaration.
6970     const ValueDecl *MatchingVD = OrigVD;
6971     if (const auto *OED = dyn_cast<OMPCapturedExprDecl>(MatchingVD)) {
6972       // OMPCapturedExprDecl are used to privative fields of the current
6973       // structure.
6974       const auto *ME = cast<MemberExpr>(OED->getInit());
6975       assert(isa<CXXThisExpr>(ME->getBase()) &&
6976              "Base should be the current struct!");
6977       MatchingVD = ME->getMemberDecl();
6978     }
6979 
6980     // If we don't have information about the current list item, move on to
6981     // the next one.
6982     auto InitAddrIt = CaptureDeviceAddrMap.find(MatchingVD);
6983     if (InitAddrIt == CaptureDeviceAddrMap.end())
6984       continue;
6985 
6986     Address PrivAddr = InitAddrIt->getSecond();
6987     // For declrefs and variable length array need to load the pointer for
6988     // correct mapping, since the pointer to the data was passed to the runtime.
6989     if (isa<DeclRefExpr>(Ref->IgnoreParenImpCasts()) ||
6990         MatchingVD->getType()->isArrayType()) {
6991       QualType PtrTy = getContext().getPointerType(
6992           OrigVD->getType().getNonReferenceType());
6993       PrivAddr = EmitLoadOfPointer(
6994           Builder.CreateElementBitCast(PrivAddr, ConvertTypeForMem(PtrTy)),
6995           PtrTy->castAs<PointerType>());
6996     }
6997 
6998     (void)PrivateScope.addPrivate(OrigVD, PrivAddr);
6999   }
7000 }
7001 
7002 // Generate the instructions for '#pragma omp target data' directive.
7003 void CodeGenFunction::EmitOMPTargetDataDirective(
7004     const OMPTargetDataDirective &S) {
7005   CGOpenMPRuntime::TargetDataInfo Info(/*RequiresDevicePointerInfo=*/true,
7006                                        /*SeparateBeginEndCalls=*/true);
7007 
7008   // Create a pre/post action to signal the privatization of the device pointer.
7009   // This action can be replaced by the OpenMP runtime code generation to
7010   // deactivate privatization.
7011   bool PrivatizeDevicePointers = false;
7012   class DevicePointerPrivActionTy : public PrePostActionTy {
7013     bool &PrivatizeDevicePointers;
7014 
7015   public:
7016     explicit DevicePointerPrivActionTy(bool &PrivatizeDevicePointers)
7017         : PrivatizeDevicePointers(PrivatizeDevicePointers) {}
7018     void Enter(CodeGenFunction &CGF) override {
7019       PrivatizeDevicePointers = true;
7020     }
7021   };
7022   DevicePointerPrivActionTy PrivAction(PrivatizeDevicePointers);
7023 
7024   auto &&CodeGen = [&S, &Info, &PrivatizeDevicePointers](
7025                        CodeGenFunction &CGF, PrePostActionTy &Action) {
7026     auto &&InnermostCodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) {
7027       CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt());
7028     };
7029 
7030     // Codegen that selects whether to generate the privatization code or not.
7031     auto &&PrivCodeGen = [&S, &Info, &PrivatizeDevicePointers,
7032                           &InnermostCodeGen](CodeGenFunction &CGF,
7033                                              PrePostActionTy &Action) {
7034       RegionCodeGenTy RCG(InnermostCodeGen);
7035       PrivatizeDevicePointers = false;
7036 
7037       // Call the pre-action to change the status of PrivatizeDevicePointers if
7038       // needed.
7039       Action.Enter(CGF);
7040 
7041       if (PrivatizeDevicePointers) {
7042         OMPPrivateScope PrivateScope(CGF);
7043         // Emit all instances of the use_device_ptr clause.
7044         for (const auto *C : S.getClausesOfKind<OMPUseDevicePtrClause>())
7045           CGF.EmitOMPUseDevicePtrClause(*C, PrivateScope,
7046                                         Info.CaptureDeviceAddrMap);
7047         for (const auto *C : S.getClausesOfKind<OMPUseDeviceAddrClause>())
7048           CGF.EmitOMPUseDeviceAddrClause(*C, PrivateScope,
7049                                          Info.CaptureDeviceAddrMap);
7050         (void)PrivateScope.Privatize();
7051         RCG(CGF);
7052       } else {
7053         OMPLexicalScope Scope(CGF, S, OMPD_unknown);
7054         RCG(CGF);
7055       }
7056     };
7057 
7058     // Forward the provided action to the privatization codegen.
7059     RegionCodeGenTy PrivRCG(PrivCodeGen);
7060     PrivRCG.setAction(Action);
7061 
7062     // Notwithstanding the body of the region is emitted as inlined directive,
7063     // we don't use an inline scope as changes in the references inside the
7064     // region are expected to be visible outside, so we do not privative them.
7065     OMPLexicalScope Scope(CGF, S);
7066     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_target_data,
7067                                                     PrivRCG);
7068   };
7069 
7070   RegionCodeGenTy RCG(CodeGen);
7071 
7072   // If we don't have target devices, don't bother emitting the data mapping
7073   // code.
7074   if (CGM.getLangOpts().OMPTargetTriples.empty()) {
7075     RCG(*this);
7076     return;
7077   }
7078 
7079   // Check if we have any if clause associated with the directive.
7080   const Expr *IfCond = nullptr;
7081   if (const auto *C = S.getSingleClause<OMPIfClause>())
7082     IfCond = C->getCondition();
7083 
7084   // Check if we have any device clause associated with the directive.
7085   const Expr *Device = nullptr;
7086   if (const auto *C = S.getSingleClause<OMPDeviceClause>())
7087     Device = C->getDevice();
7088 
7089   // Set the action to signal privatization of device pointers.
7090   RCG.setAction(PrivAction);
7091 
7092   // Emit region code.
7093   CGM.getOpenMPRuntime().emitTargetDataCalls(*this, S, IfCond, Device, RCG,
7094                                              Info);
7095 }
7096 
7097 void CodeGenFunction::EmitOMPTargetEnterDataDirective(
7098     const OMPTargetEnterDataDirective &S) {
7099   // If we don't have target devices, don't bother emitting the data mapping
7100   // code.
7101   if (CGM.getLangOpts().OMPTargetTriples.empty())
7102     return;
7103 
7104   // Check if we have any if clause associated with the directive.
7105   const Expr *IfCond = nullptr;
7106   if (const auto *C = S.getSingleClause<OMPIfClause>())
7107     IfCond = C->getCondition();
7108 
7109   // Check if we have any device clause associated with the directive.
7110   const Expr *Device = nullptr;
7111   if (const auto *C = S.getSingleClause<OMPDeviceClause>())
7112     Device = C->getDevice();
7113 
7114   OMPLexicalScope Scope(*this, S, OMPD_task);
7115   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
7116 }
7117 
7118 void CodeGenFunction::EmitOMPTargetExitDataDirective(
7119     const OMPTargetExitDataDirective &S) {
7120   // If we don't have target devices, don't bother emitting the data mapping
7121   // code.
7122   if (CGM.getLangOpts().OMPTargetTriples.empty())
7123     return;
7124 
7125   // Check if we have any if clause associated with the directive.
7126   const Expr *IfCond = nullptr;
7127   if (const auto *C = S.getSingleClause<OMPIfClause>())
7128     IfCond = C->getCondition();
7129 
7130   // Check if we have any device clause associated with the directive.
7131   const Expr *Device = nullptr;
7132   if (const auto *C = S.getSingleClause<OMPDeviceClause>())
7133     Device = C->getDevice();
7134 
7135   OMPLexicalScope Scope(*this, S, OMPD_task);
7136   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
7137 }
7138 
7139 static void emitTargetParallelRegion(CodeGenFunction &CGF,
7140                                      const OMPTargetParallelDirective &S,
7141                                      PrePostActionTy &Action) {
7142   // Get the captured statement associated with the 'parallel' region.
7143   const CapturedStmt *CS = S.getCapturedStmt(OMPD_parallel);
7144   Action.Enter(CGF);
7145   auto &&CodeGen = [&S, CS](CodeGenFunction &CGF, PrePostActionTy &Action) {
7146     Action.Enter(CGF);
7147     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
7148     (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope);
7149     CGF.EmitOMPPrivateClause(S, PrivateScope);
7150     CGF.EmitOMPReductionClauseInit(S, PrivateScope);
7151     (void)PrivateScope.Privatize();
7152     if (isOpenMPTargetExecutionDirective(S.getDirectiveKind()))
7153       CGF.CGM.getOpenMPRuntime().adjustTargetSpecificDataForLambdas(CGF, S);
7154     // TODO: Add support for clauses.
7155     CGF.EmitStmt(CS->getCapturedStmt());
7156     CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel);
7157   };
7158   emitCommonOMPParallelDirective(CGF, S, OMPD_parallel, CodeGen,
7159                                  emitEmptyBoundParameters);
7160   emitPostUpdateForReductionClause(CGF, S,
7161                                    [](CodeGenFunction &) { return nullptr; });
7162 }
7163 
7164 void CodeGenFunction::EmitOMPTargetParallelDeviceFunction(
7165     CodeGenModule &CGM, StringRef ParentName,
7166     const OMPTargetParallelDirective &S) {
7167   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7168     emitTargetParallelRegion(CGF, S, Action);
7169   };
7170   llvm::Function *Fn;
7171   llvm::Constant *Addr;
7172   // Emit target region as a standalone region.
7173   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
7174       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
7175   assert(Fn && Addr && "Target device function emission failed.");
7176 }
7177 
7178 void CodeGenFunction::EmitOMPTargetParallelDirective(
7179     const OMPTargetParallelDirective &S) {
7180   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7181     emitTargetParallelRegion(CGF, S, Action);
7182   };
7183   emitCommonOMPTargetDirective(*this, S, CodeGen);
7184 }
7185 
7186 static void emitTargetParallelForRegion(CodeGenFunction &CGF,
7187                                         const OMPTargetParallelForDirective &S,
7188                                         PrePostActionTy &Action) {
7189   Action.Enter(CGF);
7190   // Emit directive as a combined directive that consists of two implicit
7191   // directives: 'parallel' with 'for' directive.
7192   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7193     Action.Enter(CGF);
7194     CodeGenFunction::OMPCancelStackRAII CancelRegion(
7195         CGF, OMPD_target_parallel_for, S.hasCancel());
7196     CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds,
7197                                emitDispatchForLoopBounds);
7198   };
7199   emitCommonOMPParallelDirective(CGF, S, OMPD_for, CodeGen,
7200                                  emitEmptyBoundParameters);
7201 }
7202 
7203 void CodeGenFunction::EmitOMPTargetParallelForDeviceFunction(
7204     CodeGenModule &CGM, StringRef ParentName,
7205     const OMPTargetParallelForDirective &S) {
7206   // Emit SPMD target parallel for region as a standalone region.
7207   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7208     emitTargetParallelForRegion(CGF, S, Action);
7209   };
7210   llvm::Function *Fn;
7211   llvm::Constant *Addr;
7212   // Emit target region as a standalone region.
7213   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
7214       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
7215   assert(Fn && Addr && "Target device function emission failed.");
7216 }
7217 
7218 void CodeGenFunction::EmitOMPTargetParallelForDirective(
7219     const OMPTargetParallelForDirective &S) {
7220   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7221     emitTargetParallelForRegion(CGF, S, Action);
7222   };
7223   emitCommonOMPTargetDirective(*this, S, CodeGen);
7224 }
7225 
7226 static void
7227 emitTargetParallelForSimdRegion(CodeGenFunction &CGF,
7228                                 const OMPTargetParallelForSimdDirective &S,
7229                                 PrePostActionTy &Action) {
7230   Action.Enter(CGF);
7231   // Emit directive as a combined directive that consists of two implicit
7232   // directives: 'parallel' with 'for' directive.
7233   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7234     Action.Enter(CGF);
7235     CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds,
7236                                emitDispatchForLoopBounds);
7237   };
7238   emitCommonOMPParallelDirective(CGF, S, OMPD_simd, CodeGen,
7239                                  emitEmptyBoundParameters);
7240 }
7241 
7242 void CodeGenFunction::EmitOMPTargetParallelForSimdDeviceFunction(
7243     CodeGenModule &CGM, StringRef ParentName,
7244     const OMPTargetParallelForSimdDirective &S) {
7245   // Emit SPMD target parallel for region as a standalone region.
7246   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7247     emitTargetParallelForSimdRegion(CGF, S, Action);
7248   };
7249   llvm::Function *Fn;
7250   llvm::Constant *Addr;
7251   // Emit target region as a standalone region.
7252   CGM.getOpenMPRuntime().emitTargetOutlinedFunction(
7253       S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen);
7254   assert(Fn && Addr && "Target device function emission failed.");
7255 }
7256 
7257 void CodeGenFunction::EmitOMPTargetParallelForSimdDirective(
7258     const OMPTargetParallelForSimdDirective &S) {
7259   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7260     emitTargetParallelForSimdRegion(CGF, S, Action);
7261   };
7262   emitCommonOMPTargetDirective(*this, S, CodeGen);
7263 }
7264 
7265 /// Emit a helper variable and return corresponding lvalue.
7266 static void mapParam(CodeGenFunction &CGF, const DeclRefExpr *Helper,
7267                      const ImplicitParamDecl *PVD,
7268                      CodeGenFunction::OMPPrivateScope &Privates) {
7269   const auto *VDecl = cast<VarDecl>(Helper->getDecl());
7270   Privates.addPrivate(VDecl, CGF.GetAddrOfLocalVar(PVD));
7271 }
7272 
7273 void CodeGenFunction::EmitOMPTaskLoopBasedDirective(const OMPLoopDirective &S) {
7274   assert(isOpenMPTaskLoopDirective(S.getDirectiveKind()));
7275   // Emit outlined function for task construct.
7276   const CapturedStmt *CS = S.getCapturedStmt(OMPD_taskloop);
7277   Address CapturedStruct = Address::invalid();
7278   {
7279     OMPLexicalScope Scope(*this, S, OMPD_taskloop, /*EmitPreInitStmt=*/false);
7280     CapturedStruct = GenerateCapturedStmtArgument(*CS);
7281   }
7282   QualType SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl());
7283   const Expr *IfCond = nullptr;
7284   for (const auto *C : S.getClausesOfKind<OMPIfClause>()) {
7285     if (C->getNameModifier() == OMPD_unknown ||
7286         C->getNameModifier() == OMPD_taskloop) {
7287       IfCond = C->getCondition();
7288       break;
7289     }
7290   }
7291 
7292   OMPTaskDataTy Data;
7293   // Check if taskloop must be emitted without taskgroup.
7294   Data.Nogroup = S.getSingleClause<OMPNogroupClause>();
7295   // TODO: Check if we should emit tied or untied task.
7296   Data.Tied = true;
7297   // Set scheduling for taskloop
7298   if (const auto *Clause = S.getSingleClause<OMPGrainsizeClause>()) {
7299     // grainsize clause
7300     Data.Schedule.setInt(/*IntVal=*/false);
7301     Data.Schedule.setPointer(EmitScalarExpr(Clause->getGrainsize()));
7302   } else if (const auto *Clause = S.getSingleClause<OMPNumTasksClause>()) {
7303     // num_tasks clause
7304     Data.Schedule.setInt(/*IntVal=*/true);
7305     Data.Schedule.setPointer(EmitScalarExpr(Clause->getNumTasks()));
7306   }
7307 
7308   auto &&BodyGen = [CS, &S](CodeGenFunction &CGF, PrePostActionTy &) {
7309     // if (PreCond) {
7310     //   for (IV in 0..LastIteration) BODY;
7311     //   <Final counter/linear vars updates>;
7312     // }
7313     //
7314 
7315     // Emit: if (PreCond) - begin.
7316     // If the condition constant folds and can be elided, avoid emitting the
7317     // whole loop.
7318     bool CondConstant;
7319     llvm::BasicBlock *ContBlock = nullptr;
7320     OMPLoopScope PreInitScope(CGF, S);
7321     if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) {
7322       if (!CondConstant)
7323         return;
7324     } else {
7325       llvm::BasicBlock *ThenBlock = CGF.createBasicBlock("taskloop.if.then");
7326       ContBlock = CGF.createBasicBlock("taskloop.if.end");
7327       emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock,
7328                   CGF.getProfileCount(&S));
7329       CGF.EmitBlock(ThenBlock);
7330       CGF.incrementProfileCounter(&S);
7331     }
7332 
7333     (void)CGF.EmitOMPLinearClauseInit(S);
7334 
7335     OMPPrivateScope LoopScope(CGF);
7336     // Emit helper vars inits.
7337     enum { LowerBound = 5, UpperBound, Stride, LastIter };
7338     auto *I = CS->getCapturedDecl()->param_begin();
7339     auto *LBP = std::next(I, LowerBound);
7340     auto *UBP = std::next(I, UpperBound);
7341     auto *STP = std::next(I, Stride);
7342     auto *LIP = std::next(I, LastIter);
7343     mapParam(CGF, cast<DeclRefExpr>(S.getLowerBoundVariable()), *LBP,
7344              LoopScope);
7345     mapParam(CGF, cast<DeclRefExpr>(S.getUpperBoundVariable()), *UBP,
7346              LoopScope);
7347     mapParam(CGF, cast<DeclRefExpr>(S.getStrideVariable()), *STP, LoopScope);
7348     mapParam(CGF, cast<DeclRefExpr>(S.getIsLastIterVariable()), *LIP,
7349              LoopScope);
7350     CGF.EmitOMPPrivateLoopCounters(S, LoopScope);
7351     CGF.EmitOMPLinearClause(S, LoopScope);
7352     bool HasLastprivateClause = CGF.EmitOMPLastprivateClauseInit(S, LoopScope);
7353     (void)LoopScope.Privatize();
7354     // Emit the loop iteration variable.
7355     const Expr *IVExpr = S.getIterationVariable();
7356     const auto *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl());
7357     CGF.EmitVarDecl(*IVDecl);
7358     CGF.EmitIgnoredExpr(S.getInit());
7359 
7360     // Emit the iterations count variable.
7361     // If it is not a variable, Sema decided to calculate iterations count on
7362     // each iteration (e.g., it is foldable into a constant).
7363     if (const auto *LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) {
7364       CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl()));
7365       // Emit calculation of the iterations count.
7366       CGF.EmitIgnoredExpr(S.getCalcLastIteration());
7367     }
7368 
7369     {
7370       OMPLexicalScope Scope(CGF, S, OMPD_taskloop, /*EmitPreInitStmt=*/false);
7371       emitCommonSimdLoop(
7372           CGF, S,
7373           [&S](CodeGenFunction &CGF, PrePostActionTy &) {
7374             if (isOpenMPSimdDirective(S.getDirectiveKind()))
7375               CGF.EmitOMPSimdInit(S);
7376           },
7377           [&S, &LoopScope](CodeGenFunction &CGF, PrePostActionTy &) {
7378             CGF.EmitOMPInnerLoop(
7379                 S, LoopScope.requiresCleanups(), S.getCond(), S.getInc(),
7380                 [&S](CodeGenFunction &CGF) {
7381                   emitOMPLoopBodyWithStopPoint(CGF, S,
7382                                                CodeGenFunction::JumpDest());
7383                 },
7384                 [](CodeGenFunction &) {});
7385           });
7386     }
7387     // Emit: if (PreCond) - end.
7388     if (ContBlock) {
7389       CGF.EmitBranch(ContBlock);
7390       CGF.EmitBlock(ContBlock, true);
7391     }
7392     // Emit final copy of the lastprivate variables if IsLastIter != 0.
7393     if (HasLastprivateClause) {
7394       CGF.EmitOMPLastprivateClauseFinal(
7395           S, isOpenMPSimdDirective(S.getDirectiveKind()),
7396           CGF.Builder.CreateIsNotNull(CGF.EmitLoadOfScalar(
7397               CGF.GetAddrOfLocalVar(*LIP), /*Volatile=*/false,
7398               (*LIP)->getType(), S.getBeginLoc())));
7399     }
7400     CGF.EmitOMPLinearClauseFinal(S, [LIP, &S](CodeGenFunction &CGF) {
7401       return CGF.Builder.CreateIsNotNull(
7402           CGF.EmitLoadOfScalar(CGF.GetAddrOfLocalVar(*LIP), /*Volatile=*/false,
7403                                (*LIP)->getType(), S.getBeginLoc()));
7404     });
7405   };
7406   auto &&TaskGen = [&S, SharedsTy, CapturedStruct,
7407                     IfCond](CodeGenFunction &CGF, llvm::Function *OutlinedFn,
7408                             const OMPTaskDataTy &Data) {
7409     auto &&CodeGen = [&S, OutlinedFn, SharedsTy, CapturedStruct, IfCond,
7410                       &Data](CodeGenFunction &CGF, PrePostActionTy &) {
7411       OMPLoopScope PreInitScope(CGF, S);
7412       CGF.CGM.getOpenMPRuntime().emitTaskLoopCall(CGF, S.getBeginLoc(), S,
7413                                                   OutlinedFn, SharedsTy,
7414                                                   CapturedStruct, IfCond, Data);
7415     };
7416     CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_taskloop,
7417                                                     CodeGen);
7418   };
7419   if (Data.Nogroup) {
7420     EmitOMPTaskBasedDirective(S, OMPD_taskloop, BodyGen, TaskGen, Data);
7421   } else {
7422     CGM.getOpenMPRuntime().emitTaskgroupRegion(
7423         *this,
7424         [&S, &BodyGen, &TaskGen, &Data](CodeGenFunction &CGF,
7425                                         PrePostActionTy &Action) {
7426           Action.Enter(CGF);
7427           CGF.EmitOMPTaskBasedDirective(S, OMPD_taskloop, BodyGen, TaskGen,
7428                                         Data);
7429         },
7430         S.getBeginLoc());
7431   }
7432 }
7433 
7434 void CodeGenFunction::EmitOMPTaskLoopDirective(const OMPTaskLoopDirective &S) {
7435   auto LPCRegion =
7436       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7437   EmitOMPTaskLoopBasedDirective(S);
7438 }
7439 
7440 void CodeGenFunction::EmitOMPTaskLoopSimdDirective(
7441     const OMPTaskLoopSimdDirective &S) {
7442   auto LPCRegion =
7443       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7444   OMPLexicalScope Scope(*this, S);
7445   EmitOMPTaskLoopBasedDirective(S);
7446 }
7447 
7448 void CodeGenFunction::EmitOMPMasterTaskLoopDirective(
7449     const OMPMasterTaskLoopDirective &S) {
7450   auto &&CodeGen = [this, &S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7451     Action.Enter(CGF);
7452     EmitOMPTaskLoopBasedDirective(S);
7453   };
7454   auto LPCRegion =
7455       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7456   OMPLexicalScope Scope(*this, S, llvm::None, /*EmitPreInitStmt=*/false);
7457   CGM.getOpenMPRuntime().emitMasterRegion(*this, CodeGen, S.getBeginLoc());
7458 }
7459 
7460 void CodeGenFunction::EmitOMPMasterTaskLoopSimdDirective(
7461     const OMPMasterTaskLoopSimdDirective &S) {
7462   auto &&CodeGen = [this, &S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7463     Action.Enter(CGF);
7464     EmitOMPTaskLoopBasedDirective(S);
7465   };
7466   auto LPCRegion =
7467       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7468   OMPLexicalScope Scope(*this, S);
7469   CGM.getOpenMPRuntime().emitMasterRegion(*this, CodeGen, S.getBeginLoc());
7470 }
7471 
7472 void CodeGenFunction::EmitOMPParallelMasterTaskLoopDirective(
7473     const OMPParallelMasterTaskLoopDirective &S) {
7474   auto &&CodeGen = [this, &S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7475     auto &&TaskLoopCodeGen = [&S](CodeGenFunction &CGF,
7476                                   PrePostActionTy &Action) {
7477       Action.Enter(CGF);
7478       CGF.EmitOMPTaskLoopBasedDirective(S);
7479     };
7480     OMPLexicalScope Scope(CGF, S, OMPD_parallel, /*EmitPreInitStmt=*/false);
7481     CGM.getOpenMPRuntime().emitMasterRegion(CGF, TaskLoopCodeGen,
7482                                             S.getBeginLoc());
7483   };
7484   auto LPCRegion =
7485       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7486   emitCommonOMPParallelDirective(*this, S, OMPD_master_taskloop, CodeGen,
7487                                  emitEmptyBoundParameters);
7488 }
7489 
7490 void CodeGenFunction::EmitOMPParallelMasterTaskLoopSimdDirective(
7491     const OMPParallelMasterTaskLoopSimdDirective &S) {
7492   auto &&CodeGen = [this, &S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7493     auto &&TaskLoopCodeGen = [&S](CodeGenFunction &CGF,
7494                                   PrePostActionTy &Action) {
7495       Action.Enter(CGF);
7496       CGF.EmitOMPTaskLoopBasedDirective(S);
7497     };
7498     OMPLexicalScope Scope(CGF, S, OMPD_parallel, /*EmitPreInitStmt=*/false);
7499     CGM.getOpenMPRuntime().emitMasterRegion(CGF, TaskLoopCodeGen,
7500                                             S.getBeginLoc());
7501   };
7502   auto LPCRegion =
7503       CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, S);
7504   emitCommonOMPParallelDirective(*this, S, OMPD_master_taskloop_simd, CodeGen,
7505                                  emitEmptyBoundParameters);
7506 }
7507 
7508 // Generate the instructions for '#pragma omp target update' directive.
7509 void CodeGenFunction::EmitOMPTargetUpdateDirective(
7510     const OMPTargetUpdateDirective &S) {
7511   // If we don't have target devices, don't bother emitting the data mapping
7512   // code.
7513   if (CGM.getLangOpts().OMPTargetTriples.empty())
7514     return;
7515 
7516   // Check if we have any if clause associated with the directive.
7517   const Expr *IfCond = nullptr;
7518   if (const auto *C = S.getSingleClause<OMPIfClause>())
7519     IfCond = C->getCondition();
7520 
7521   // Check if we have any device clause associated with the directive.
7522   const Expr *Device = nullptr;
7523   if (const auto *C = S.getSingleClause<OMPDeviceClause>())
7524     Device = C->getDevice();
7525 
7526   OMPLexicalScope Scope(*this, S, OMPD_task);
7527   CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device);
7528 }
7529 
7530 void CodeGenFunction::EmitOMPGenericLoopDirective(
7531     const OMPGenericLoopDirective &S) {
7532   // Unimplemented, just inline the underlying statement for now.
7533   auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) {
7534     CGF.EmitStmt(cast<CapturedStmt>(S.getAssociatedStmt())->getCapturedStmt());
7535   };
7536   OMPLexicalScope Scope(*this, S, OMPD_unknown);
7537   CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_loop, CodeGen);
7538 }
7539 
7540 void CodeGenFunction::EmitSimpleOMPExecutableDirective(
7541     const OMPExecutableDirective &D) {
7542   if (const auto *SD = dyn_cast<OMPScanDirective>(&D)) {
7543     EmitOMPScanDirective(*SD);
7544     return;
7545   }
7546   if (!D.hasAssociatedStmt() || !D.getAssociatedStmt())
7547     return;
7548   auto &&CodeGen = [&D](CodeGenFunction &CGF, PrePostActionTy &Action) {
7549     OMPPrivateScope GlobalsScope(CGF);
7550     if (isOpenMPTaskingDirective(D.getDirectiveKind())) {
7551       // Capture global firstprivates to avoid crash.
7552       for (const auto *C : D.getClausesOfKind<OMPFirstprivateClause>()) {
7553         for (const Expr *Ref : C->varlists()) {
7554           const auto *DRE = cast<DeclRefExpr>(Ref->IgnoreParenImpCasts());
7555           if (!DRE)
7556             continue;
7557           const auto *VD = dyn_cast<VarDecl>(DRE->getDecl());
7558           if (!VD || VD->hasLocalStorage())
7559             continue;
7560           if (!CGF.LocalDeclMap.count(VD)) {
7561             LValue GlobLVal = CGF.EmitLValue(Ref);
7562             GlobalsScope.addPrivate(VD, GlobLVal.getAddress(CGF));
7563           }
7564         }
7565       }
7566     }
7567     if (isOpenMPSimdDirective(D.getDirectiveKind())) {
7568       (void)GlobalsScope.Privatize();
7569       ParentLoopDirectiveForScanRegion ScanRegion(CGF, D);
7570       emitOMPSimdRegion(CGF, cast<OMPLoopDirective>(D), Action);
7571     } else {
7572       if (const auto *LD = dyn_cast<OMPLoopDirective>(&D)) {
7573         for (const Expr *E : LD->counters()) {
7574           const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
7575           if (!VD->hasLocalStorage() && !CGF.LocalDeclMap.count(VD)) {
7576             LValue GlobLVal = CGF.EmitLValue(E);
7577             GlobalsScope.addPrivate(VD, GlobLVal.getAddress(CGF));
7578           }
7579           if (isa<OMPCapturedExprDecl>(VD)) {
7580             // Emit only those that were not explicitly referenced in clauses.
7581             if (!CGF.LocalDeclMap.count(VD))
7582               CGF.EmitVarDecl(*VD);
7583           }
7584         }
7585         for (const auto *C : D.getClausesOfKind<OMPOrderedClause>()) {
7586           if (!C->getNumForLoops())
7587             continue;
7588           for (unsigned I = LD->getLoopsNumber(),
7589                         E = C->getLoopNumIterations().size();
7590                I < E; ++I) {
7591             if (const auto *VD = dyn_cast<OMPCapturedExprDecl>(
7592                     cast<DeclRefExpr>(C->getLoopCounter(I))->getDecl())) {
7593               // Emit only those that were not explicitly referenced in clauses.
7594               if (!CGF.LocalDeclMap.count(VD))
7595                 CGF.EmitVarDecl(*VD);
7596             }
7597           }
7598         }
7599       }
7600       (void)GlobalsScope.Privatize();
7601       CGF.EmitStmt(D.getInnermostCapturedStmt()->getCapturedStmt());
7602     }
7603   };
7604   if (D.getDirectiveKind() == OMPD_atomic ||
7605       D.getDirectiveKind() == OMPD_critical ||
7606       D.getDirectiveKind() == OMPD_section ||
7607       D.getDirectiveKind() == OMPD_master ||
7608       D.getDirectiveKind() == OMPD_masked) {
7609     EmitStmt(D.getAssociatedStmt());
7610   } else {
7611     auto LPCRegion =
7612         CGOpenMPRuntime::LastprivateConditionalRAII::disable(*this, D);
7613     OMPSimdLexicalScope Scope(*this, D);
7614     CGM.getOpenMPRuntime().emitInlinedDirective(
7615         *this,
7616         isOpenMPSimdDirective(D.getDirectiveKind()) ? OMPD_simd
7617                                                     : D.getDirectiveKind(),
7618         CodeGen);
7619   }
7620   // Check for outer lastprivate conditional update.
7621   checkForLastprivateConditionalUpdate(*this, D);
7622 }
7623