1 //===--- CGStmtOpenMP.cpp - Emit LLVM Code from Statements ----------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This contains code to emit OpenMP nodes as LLVM code. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "CGCleanup.h" 15 #include "CGOpenMPRuntime.h" 16 #include "CodeGenFunction.h" 17 #include "CodeGenModule.h" 18 #include "TargetInfo.h" 19 #include "clang/AST/Stmt.h" 20 #include "clang/AST/StmtOpenMP.h" 21 #include "clang/AST/DeclOpenMP.h" 22 #include "llvm/IR/CallSite.h" 23 using namespace clang; 24 using namespace CodeGen; 25 26 namespace { 27 /// Lexical scope for OpenMP executable constructs, that handles correct codegen 28 /// for captured expressions. 29 class OMPLexicalScope : public CodeGenFunction::LexicalScope { 30 void emitPreInitStmt(CodeGenFunction &CGF, const OMPExecutableDirective &S) { 31 for (const auto *C : S.clauses()) { 32 if (auto *CPI = OMPClauseWithPreInit::get(C)) { 33 if (auto *PreInit = cast_or_null<DeclStmt>(CPI->getPreInitStmt())) { 34 for (const auto *I : PreInit->decls()) { 35 if (!I->hasAttr<OMPCaptureNoInitAttr>()) 36 CGF.EmitVarDecl(cast<VarDecl>(*I)); 37 else { 38 CodeGenFunction::AutoVarEmission Emission = 39 CGF.EmitAutoVarAlloca(cast<VarDecl>(*I)); 40 CGF.EmitAutoVarCleanups(Emission); 41 } 42 } 43 } 44 } 45 } 46 } 47 CodeGenFunction::OMPPrivateScope InlinedShareds; 48 49 static bool isCapturedVar(CodeGenFunction &CGF, const VarDecl *VD) { 50 return CGF.LambdaCaptureFields.lookup(VD) || 51 (CGF.CapturedStmtInfo && CGF.CapturedStmtInfo->lookup(VD)) || 52 (CGF.CurCodeDecl && isa<BlockDecl>(CGF.CurCodeDecl)); 53 } 54 55 public: 56 OMPLexicalScope( 57 CodeGenFunction &CGF, const OMPExecutableDirective &S, 58 const llvm::Optional<OpenMPDirectiveKind> CapturedRegion = llvm::None, 59 const bool EmitPreInitStmt = true) 60 : CodeGenFunction::LexicalScope(CGF, S.getSourceRange()), 61 InlinedShareds(CGF) { 62 if (EmitPreInitStmt) 63 emitPreInitStmt(CGF, S); 64 if (!CapturedRegion.hasValue()) 65 return; 66 assert(S.hasAssociatedStmt() && 67 "Expected associated statement for inlined directive."); 68 const CapturedStmt *CS = S.getCapturedStmt(*CapturedRegion); 69 for (auto &C : CS->captures()) { 70 if (C.capturesVariable() || C.capturesVariableByCopy()) { 71 auto *VD = C.getCapturedVar(); 72 assert(VD == VD->getCanonicalDecl() && 73 "Canonical decl must be captured."); 74 DeclRefExpr DRE( 75 const_cast<VarDecl *>(VD), 76 isCapturedVar(CGF, VD) || (CGF.CapturedStmtInfo && 77 InlinedShareds.isGlobalVarCaptured(VD)), 78 VD->getType().getNonReferenceType(), VK_LValue, C.getLocation()); 79 InlinedShareds.addPrivate(VD, [&CGF, &DRE]() -> Address { 80 return CGF.EmitLValue(&DRE).getAddress(); 81 }); 82 } 83 } 84 (void)InlinedShareds.Privatize(); 85 } 86 }; 87 88 /// Lexical scope for OpenMP parallel construct, that handles correct codegen 89 /// for captured expressions. 90 class OMPParallelScope final : public OMPLexicalScope { 91 bool EmitPreInitStmt(const OMPExecutableDirective &S) { 92 OpenMPDirectiveKind Kind = S.getDirectiveKind(); 93 return !(isOpenMPTargetExecutionDirective(Kind) || 94 isOpenMPLoopBoundSharingDirective(Kind)) && 95 isOpenMPParallelDirective(Kind); 96 } 97 98 public: 99 OMPParallelScope(CodeGenFunction &CGF, const OMPExecutableDirective &S) 100 : OMPLexicalScope(CGF, S, /*CapturedRegion=*/llvm::None, 101 EmitPreInitStmt(S)) {} 102 }; 103 104 /// Lexical scope for OpenMP teams construct, that handles correct codegen 105 /// for captured expressions. 106 class OMPTeamsScope final : public OMPLexicalScope { 107 bool EmitPreInitStmt(const OMPExecutableDirective &S) { 108 OpenMPDirectiveKind Kind = S.getDirectiveKind(); 109 return !isOpenMPTargetExecutionDirective(Kind) && 110 isOpenMPTeamsDirective(Kind); 111 } 112 113 public: 114 OMPTeamsScope(CodeGenFunction &CGF, const OMPExecutableDirective &S) 115 : OMPLexicalScope(CGF, S, /*CapturedRegion=*/llvm::None, 116 EmitPreInitStmt(S)) {} 117 }; 118 119 /// Private scope for OpenMP loop-based directives, that supports capturing 120 /// of used expression from loop statement. 121 class OMPLoopScope : public CodeGenFunction::RunCleanupsScope { 122 void emitPreInitStmt(CodeGenFunction &CGF, const OMPLoopDirective &S) { 123 CodeGenFunction::OMPPrivateScope PreCondScope(CGF); 124 for (auto *E : S.counters()) { 125 const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 126 (void)PreCondScope.addPrivate(VD, [&CGF, VD]() { 127 return CGF.CreateMemTemp(VD->getType().getNonReferenceType()); 128 }); 129 } 130 (void)PreCondScope.Privatize(); 131 if (auto *LD = dyn_cast<OMPLoopDirective>(&S)) { 132 if (auto *PreInits = cast_or_null<DeclStmt>(LD->getPreInits())) { 133 for (const auto *I : PreInits->decls()) 134 CGF.EmitVarDecl(cast<VarDecl>(*I)); 135 } 136 } 137 } 138 139 public: 140 OMPLoopScope(CodeGenFunction &CGF, const OMPLoopDirective &S) 141 : CodeGenFunction::RunCleanupsScope(CGF) { 142 emitPreInitStmt(CGF, S); 143 } 144 }; 145 146 class OMPSimdLexicalScope : public CodeGenFunction::LexicalScope { 147 CodeGenFunction::OMPPrivateScope InlinedShareds; 148 149 static bool isCapturedVar(CodeGenFunction &CGF, const VarDecl *VD) { 150 return CGF.LambdaCaptureFields.lookup(VD) || 151 (CGF.CapturedStmtInfo && CGF.CapturedStmtInfo->lookup(VD)) || 152 (CGF.CurCodeDecl && isa<BlockDecl>(CGF.CurCodeDecl) && 153 cast<BlockDecl>(CGF.CurCodeDecl)->capturesVariable(VD)); 154 } 155 156 public: 157 OMPSimdLexicalScope(CodeGenFunction &CGF, const OMPExecutableDirective &S) 158 : CodeGenFunction::LexicalScope(CGF, S.getSourceRange()), 159 InlinedShareds(CGF) { 160 for (const auto *C : S.clauses()) { 161 if (auto *CPI = OMPClauseWithPreInit::get(C)) { 162 if (auto *PreInit = cast_or_null<DeclStmt>(CPI->getPreInitStmt())) { 163 for (const auto *I : PreInit->decls()) { 164 if (!I->hasAttr<OMPCaptureNoInitAttr>()) 165 CGF.EmitVarDecl(cast<VarDecl>(*I)); 166 else { 167 CodeGenFunction::AutoVarEmission Emission = 168 CGF.EmitAutoVarAlloca(cast<VarDecl>(*I)); 169 CGF.EmitAutoVarCleanups(Emission); 170 } 171 } 172 } 173 } else if (const auto *UDP = dyn_cast<OMPUseDevicePtrClause>(C)) { 174 for (const Expr *E : UDP->varlists()) { 175 const Decl *D = cast<DeclRefExpr>(E)->getDecl(); 176 if (const auto *OED = dyn_cast<OMPCapturedExprDecl>(D)) 177 CGF.EmitVarDecl(*OED); 178 } 179 } 180 } 181 if (!isOpenMPSimdDirective(S.getDirectiveKind())) 182 CGF.EmitOMPPrivateClause(S, InlinedShareds); 183 if (const auto *TG = dyn_cast<OMPTaskgroupDirective>(&S)) { 184 if (const Expr *E = TG->getReductionRef()) 185 CGF.EmitVarDecl(*cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl())); 186 } 187 const auto *CS = cast_or_null<CapturedStmt>(S.getAssociatedStmt()); 188 while (CS) { 189 for (auto &C : CS->captures()) { 190 if (C.capturesVariable() || C.capturesVariableByCopy()) { 191 auto *VD = C.getCapturedVar(); 192 assert(VD == VD->getCanonicalDecl() && 193 "Canonical decl must be captured."); 194 DeclRefExpr DRE(const_cast<VarDecl *>(VD), 195 isCapturedVar(CGF, VD) || 196 (CGF.CapturedStmtInfo && 197 InlinedShareds.isGlobalVarCaptured(VD)), 198 VD->getType().getNonReferenceType(), VK_LValue, 199 C.getLocation()); 200 InlinedShareds.addPrivate(VD, [&CGF, &DRE]() -> Address { 201 return CGF.EmitLValue(&DRE).getAddress(); 202 }); 203 } 204 } 205 CS = dyn_cast<CapturedStmt>(CS->getCapturedStmt()); 206 } 207 (void)InlinedShareds.Privatize(); 208 } 209 }; 210 211 } // namespace 212 213 static void emitCommonOMPTargetDirective(CodeGenFunction &CGF, 214 const OMPExecutableDirective &S, 215 const RegionCodeGenTy &CodeGen); 216 217 LValue CodeGenFunction::EmitOMPSharedLValue(const Expr *E) { 218 if (auto *OrigDRE = dyn_cast<DeclRefExpr>(E)) { 219 if (auto *OrigVD = dyn_cast<VarDecl>(OrigDRE->getDecl())) { 220 OrigVD = OrigVD->getCanonicalDecl(); 221 bool IsCaptured = 222 LambdaCaptureFields.lookup(OrigVD) || 223 (CapturedStmtInfo && CapturedStmtInfo->lookup(OrigVD)) || 224 (CurCodeDecl && isa<BlockDecl>(CurCodeDecl)); 225 DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD), IsCaptured, 226 OrigDRE->getType(), VK_LValue, OrigDRE->getExprLoc()); 227 return EmitLValue(&DRE); 228 } 229 } 230 return EmitLValue(E); 231 } 232 233 llvm::Value *CodeGenFunction::getTypeSize(QualType Ty) { 234 auto &C = getContext(); 235 llvm::Value *Size = nullptr; 236 auto SizeInChars = C.getTypeSizeInChars(Ty); 237 if (SizeInChars.isZero()) { 238 // getTypeSizeInChars() returns 0 for a VLA. 239 while (auto *VAT = C.getAsVariableArrayType(Ty)) { 240 auto VlaSize = getVLASize(VAT); 241 Ty = VlaSize.Type; 242 Size = Size ? Builder.CreateNUWMul(Size, VlaSize.NumElts) 243 : VlaSize.NumElts; 244 } 245 SizeInChars = C.getTypeSizeInChars(Ty); 246 if (SizeInChars.isZero()) 247 return llvm::ConstantInt::get(SizeTy, /*V=*/0); 248 Size = Builder.CreateNUWMul(Size, CGM.getSize(SizeInChars)); 249 } else 250 Size = CGM.getSize(SizeInChars); 251 return Size; 252 } 253 254 void CodeGenFunction::GenerateOpenMPCapturedVars( 255 const CapturedStmt &S, SmallVectorImpl<llvm::Value *> &CapturedVars) { 256 const RecordDecl *RD = S.getCapturedRecordDecl(); 257 auto CurField = RD->field_begin(); 258 auto CurCap = S.captures().begin(); 259 for (CapturedStmt::const_capture_init_iterator I = S.capture_init_begin(), 260 E = S.capture_init_end(); 261 I != E; ++I, ++CurField, ++CurCap) { 262 if (CurField->hasCapturedVLAType()) { 263 auto VAT = CurField->getCapturedVLAType(); 264 auto *Val = VLASizeMap[VAT->getSizeExpr()]; 265 CapturedVars.push_back(Val); 266 } else if (CurCap->capturesThis()) 267 CapturedVars.push_back(CXXThisValue); 268 else if (CurCap->capturesVariableByCopy()) { 269 llvm::Value *CV = EmitLoadOfScalar(EmitLValue(*I), CurCap->getLocation()); 270 271 // If the field is not a pointer, we need to save the actual value 272 // and load it as a void pointer. 273 if (!CurField->getType()->isAnyPointerType()) { 274 auto &Ctx = getContext(); 275 auto DstAddr = CreateMemTemp( 276 Ctx.getUIntPtrType(), 277 Twine(CurCap->getCapturedVar()->getName()) + ".casted"); 278 LValue DstLV = MakeAddrLValue(DstAddr, Ctx.getUIntPtrType()); 279 280 auto *SrcAddrVal = EmitScalarConversion( 281 DstAddr.getPointer(), Ctx.getPointerType(Ctx.getUIntPtrType()), 282 Ctx.getPointerType(CurField->getType()), CurCap->getLocation()); 283 LValue SrcLV = 284 MakeNaturalAlignAddrLValue(SrcAddrVal, CurField->getType()); 285 286 // Store the value using the source type pointer. 287 EmitStoreThroughLValue(RValue::get(CV), SrcLV); 288 289 // Load the value using the destination type pointer. 290 CV = EmitLoadOfScalar(DstLV, CurCap->getLocation()); 291 } 292 CapturedVars.push_back(CV); 293 } else { 294 assert(CurCap->capturesVariable() && "Expected capture by reference."); 295 CapturedVars.push_back(EmitLValue(*I).getAddress().getPointer()); 296 } 297 } 298 } 299 300 static Address castValueFromUintptr(CodeGenFunction &CGF, SourceLocation Loc, 301 QualType DstType, StringRef Name, 302 LValue AddrLV, 303 bool isReferenceType = false) { 304 ASTContext &Ctx = CGF.getContext(); 305 306 auto *CastedPtr = CGF.EmitScalarConversion(AddrLV.getAddress().getPointer(), 307 Ctx.getUIntPtrType(), 308 Ctx.getPointerType(DstType), Loc); 309 auto TmpAddr = 310 CGF.MakeNaturalAlignAddrLValue(CastedPtr, Ctx.getPointerType(DstType)) 311 .getAddress(); 312 313 // If we are dealing with references we need to return the address of the 314 // reference instead of the reference of the value. 315 if (isReferenceType) { 316 QualType RefType = Ctx.getLValueReferenceType(DstType); 317 auto *RefVal = TmpAddr.getPointer(); 318 TmpAddr = CGF.CreateMemTemp(RefType, Twine(Name) + ".ref"); 319 auto TmpLVal = CGF.MakeAddrLValue(TmpAddr, RefType); 320 CGF.EmitStoreThroughLValue(RValue::get(RefVal), TmpLVal, /*isInit*/ true); 321 } 322 323 return TmpAddr; 324 } 325 326 static QualType getCanonicalParamType(ASTContext &C, QualType T) { 327 if (T->isLValueReferenceType()) { 328 return C.getLValueReferenceType( 329 getCanonicalParamType(C, T.getNonReferenceType()), 330 /*SpelledAsLValue=*/false); 331 } 332 if (T->isPointerType()) 333 return C.getPointerType(getCanonicalParamType(C, T->getPointeeType())); 334 if (auto *A = T->getAsArrayTypeUnsafe()) { 335 if (auto *VLA = dyn_cast<VariableArrayType>(A)) 336 return getCanonicalParamType(C, VLA->getElementType()); 337 else if (!A->isVariablyModifiedType()) 338 return C.getCanonicalType(T); 339 } 340 return C.getCanonicalParamType(T); 341 } 342 343 namespace { 344 /// Contains required data for proper outlined function codegen. 345 struct FunctionOptions { 346 /// Captured statement for which the function is generated. 347 const CapturedStmt *S = nullptr; 348 /// true if cast to/from UIntPtr is required for variables captured by 349 /// value. 350 const bool UIntPtrCastRequired = true; 351 /// true if only casted arguments must be registered as local args or VLA 352 /// sizes. 353 const bool RegisterCastedArgsOnly = false; 354 /// Name of the generated function. 355 const StringRef FunctionName; 356 explicit FunctionOptions(const CapturedStmt *S, bool UIntPtrCastRequired, 357 bool RegisterCastedArgsOnly, 358 StringRef FunctionName) 359 : S(S), UIntPtrCastRequired(UIntPtrCastRequired), 360 RegisterCastedArgsOnly(UIntPtrCastRequired && RegisterCastedArgsOnly), 361 FunctionName(FunctionName) {} 362 }; 363 } 364 365 static llvm::Function *emitOutlinedFunctionPrologue( 366 CodeGenFunction &CGF, FunctionArgList &Args, 367 llvm::MapVector<const Decl *, std::pair<const VarDecl *, Address>> 368 &LocalAddrs, 369 llvm::DenseMap<const Decl *, std::pair<const Expr *, llvm::Value *>> 370 &VLASizes, 371 llvm::Value *&CXXThisValue, const FunctionOptions &FO) { 372 const CapturedDecl *CD = FO.S->getCapturedDecl(); 373 const RecordDecl *RD = FO.S->getCapturedRecordDecl(); 374 assert(CD->hasBody() && "missing CapturedDecl body"); 375 376 CXXThisValue = nullptr; 377 // Build the argument list. 378 CodeGenModule &CGM = CGF.CGM; 379 ASTContext &Ctx = CGM.getContext(); 380 FunctionArgList TargetArgs; 381 Args.append(CD->param_begin(), 382 std::next(CD->param_begin(), CD->getContextParamPosition())); 383 TargetArgs.append( 384 CD->param_begin(), 385 std::next(CD->param_begin(), CD->getContextParamPosition())); 386 auto I = FO.S->captures().begin(); 387 FunctionDecl *DebugFunctionDecl = nullptr; 388 if (!FO.UIntPtrCastRequired) { 389 FunctionProtoType::ExtProtoInfo EPI; 390 DebugFunctionDecl = FunctionDecl::Create( 391 Ctx, Ctx.getTranslationUnitDecl(), FO.S->getLocStart(), 392 SourceLocation(), DeclarationName(), Ctx.VoidTy, 393 Ctx.getTrivialTypeSourceInfo( 394 Ctx.getFunctionType(Ctx.VoidTy, llvm::None, EPI)), 395 SC_Static, /*isInlineSpecified=*/false, /*hasWrittenPrototype=*/false); 396 } 397 for (auto *FD : RD->fields()) { 398 QualType ArgType = FD->getType(); 399 IdentifierInfo *II = nullptr; 400 VarDecl *CapVar = nullptr; 401 402 // If this is a capture by copy and the type is not a pointer, the outlined 403 // function argument type should be uintptr and the value properly casted to 404 // uintptr. This is necessary given that the runtime library is only able to 405 // deal with pointers. We can pass in the same way the VLA type sizes to the 406 // outlined function. 407 if ((I->capturesVariableByCopy() && !ArgType->isAnyPointerType()) || 408 I->capturesVariableArrayType()) { 409 if (FO.UIntPtrCastRequired) 410 ArgType = Ctx.getUIntPtrType(); 411 } 412 413 if (I->capturesVariable() || I->capturesVariableByCopy()) { 414 CapVar = I->getCapturedVar(); 415 II = CapVar->getIdentifier(); 416 } else if (I->capturesThis()) 417 II = &Ctx.Idents.get("this"); 418 else { 419 assert(I->capturesVariableArrayType()); 420 II = &Ctx.Idents.get("vla"); 421 } 422 if (ArgType->isVariablyModifiedType()) 423 ArgType = getCanonicalParamType(Ctx, ArgType); 424 VarDecl *Arg; 425 if (DebugFunctionDecl && (CapVar || I->capturesThis())) { 426 Arg = ParmVarDecl::Create( 427 Ctx, DebugFunctionDecl, 428 CapVar ? CapVar->getLocStart() : FD->getLocStart(), 429 CapVar ? CapVar->getLocation() : FD->getLocation(), II, ArgType, 430 /*TInfo=*/nullptr, SC_None, /*DefArg=*/nullptr); 431 } else { 432 Arg = ImplicitParamDecl::Create(Ctx, /*DC=*/nullptr, FD->getLocation(), 433 II, ArgType, ImplicitParamDecl::Other); 434 } 435 Args.emplace_back(Arg); 436 // Do not cast arguments if we emit function with non-original types. 437 TargetArgs.emplace_back( 438 FO.UIntPtrCastRequired 439 ? Arg 440 : CGM.getOpenMPRuntime().translateParameter(FD, Arg)); 441 ++I; 442 } 443 Args.append( 444 std::next(CD->param_begin(), CD->getContextParamPosition() + 1), 445 CD->param_end()); 446 TargetArgs.append( 447 std::next(CD->param_begin(), CD->getContextParamPosition() + 1), 448 CD->param_end()); 449 450 // Create the function declaration. 451 const CGFunctionInfo &FuncInfo = 452 CGM.getTypes().arrangeBuiltinFunctionDeclaration(Ctx.VoidTy, TargetArgs); 453 llvm::FunctionType *FuncLLVMTy = CGM.getTypes().GetFunctionType(FuncInfo); 454 455 llvm::Function *F = 456 llvm::Function::Create(FuncLLVMTy, llvm::GlobalValue::InternalLinkage, 457 FO.FunctionName, &CGM.getModule()); 458 CGM.SetInternalFunctionAttributes(CD, F, FuncInfo); 459 if (CD->isNothrow()) 460 F->setDoesNotThrow(); 461 462 // Generate the function. 463 CGF.StartFunction(CD, Ctx.VoidTy, F, FuncInfo, TargetArgs, 464 FO.S->getLocStart(), CD->getBody()->getLocStart()); 465 unsigned Cnt = CD->getContextParamPosition(); 466 I = FO.S->captures().begin(); 467 for (auto *FD : RD->fields()) { 468 // Do not map arguments if we emit function with non-original types. 469 Address LocalAddr(Address::invalid()); 470 if (!FO.UIntPtrCastRequired && Args[Cnt] != TargetArgs[Cnt]) { 471 LocalAddr = CGM.getOpenMPRuntime().getParameterAddress(CGF, Args[Cnt], 472 TargetArgs[Cnt]); 473 } else { 474 LocalAddr = CGF.GetAddrOfLocalVar(Args[Cnt]); 475 } 476 // If we are capturing a pointer by copy we don't need to do anything, just 477 // use the value that we get from the arguments. 478 if (I->capturesVariableByCopy() && FD->getType()->isAnyPointerType()) { 479 const VarDecl *CurVD = I->getCapturedVar(); 480 // If the variable is a reference we need to materialize it here. 481 if (CurVD->getType()->isReferenceType()) { 482 Address RefAddr = CGF.CreateMemTemp( 483 CurVD->getType(), CGM.getPointerAlign(), ".materialized_ref"); 484 CGF.EmitStoreOfScalar(LocalAddr.getPointer(), RefAddr, 485 /*Volatile=*/false, CurVD->getType()); 486 LocalAddr = RefAddr; 487 } 488 if (!FO.RegisterCastedArgsOnly) 489 LocalAddrs.insert({Args[Cnt], {CurVD, LocalAddr}}); 490 ++Cnt; 491 ++I; 492 continue; 493 } 494 495 LValue ArgLVal = CGF.MakeAddrLValue(LocalAddr, Args[Cnt]->getType(), 496 AlignmentSource::Decl); 497 if (FD->hasCapturedVLAType()) { 498 if (FO.UIntPtrCastRequired) { 499 ArgLVal = CGF.MakeAddrLValue( 500 castValueFromUintptr(CGF, I->getLocation(), FD->getType(), 501 Args[Cnt]->getName(), ArgLVal), 502 FD->getType(), AlignmentSource::Decl); 503 } 504 auto *ExprArg = CGF.EmitLoadOfScalar(ArgLVal, I->getLocation()); 505 auto VAT = FD->getCapturedVLAType(); 506 VLASizes.insert({Args[Cnt], {VAT->getSizeExpr(), ExprArg}}); 507 } else if (I->capturesVariable()) { 508 auto *Var = I->getCapturedVar(); 509 QualType VarTy = Var->getType(); 510 Address ArgAddr = ArgLVal.getAddress(); 511 if (!VarTy->isReferenceType()) { 512 if (ArgLVal.getType()->isLValueReferenceType()) { 513 ArgAddr = CGF.EmitLoadOfReference(ArgLVal); 514 } else if (!VarTy->isVariablyModifiedType() || !VarTy->isPointerType()) { 515 assert(ArgLVal.getType()->isPointerType()); 516 ArgAddr = CGF.EmitLoadOfPointer( 517 ArgAddr, ArgLVal.getType()->castAs<PointerType>()); 518 } 519 } 520 if (!FO.RegisterCastedArgsOnly) { 521 LocalAddrs.insert( 522 {Args[Cnt], 523 {Var, Address(ArgAddr.getPointer(), Ctx.getDeclAlign(Var))}}); 524 } 525 } else if (I->capturesVariableByCopy()) { 526 assert(!FD->getType()->isAnyPointerType() && 527 "Not expecting a captured pointer."); 528 auto *Var = I->getCapturedVar(); 529 QualType VarTy = Var->getType(); 530 LocalAddrs.insert( 531 {Args[Cnt], 532 {Var, FO.UIntPtrCastRequired 533 ? castValueFromUintptr(CGF, I->getLocation(), 534 FD->getType(), Args[Cnt]->getName(), 535 ArgLVal, VarTy->isReferenceType()) 536 : ArgLVal.getAddress()}}); 537 } else { 538 // If 'this' is captured, load it into CXXThisValue. 539 assert(I->capturesThis()); 540 CXXThisValue = CGF.EmitLoadOfScalar(ArgLVal, I->getLocation()); 541 LocalAddrs.insert({Args[Cnt], {nullptr, ArgLVal.getAddress()}}); 542 } 543 ++Cnt; 544 ++I; 545 } 546 547 return F; 548 } 549 550 llvm::Function * 551 CodeGenFunction::GenerateOpenMPCapturedStmtFunction(const CapturedStmt &S) { 552 assert( 553 CapturedStmtInfo && 554 "CapturedStmtInfo should be set when generating the captured function"); 555 const CapturedDecl *CD = S.getCapturedDecl(); 556 // Build the argument list. 557 bool NeedWrapperFunction = 558 getDebugInfo() && 559 CGM.getCodeGenOpts().getDebugInfo() >= codegenoptions::LimitedDebugInfo; 560 FunctionArgList Args; 561 llvm::MapVector<const Decl *, std::pair<const VarDecl *, Address>> LocalAddrs; 562 llvm::DenseMap<const Decl *, std::pair<const Expr *, llvm::Value *>> VLASizes; 563 SmallString<256> Buffer; 564 llvm::raw_svector_ostream Out(Buffer); 565 Out << CapturedStmtInfo->getHelperName(); 566 if (NeedWrapperFunction) 567 Out << "_debug__"; 568 FunctionOptions FO(&S, !NeedWrapperFunction, /*RegisterCastedArgsOnly=*/false, 569 Out.str()); 570 llvm::Function *F = emitOutlinedFunctionPrologue(*this, Args, LocalAddrs, 571 VLASizes, CXXThisValue, FO); 572 for (const auto &LocalAddrPair : LocalAddrs) { 573 if (LocalAddrPair.second.first) { 574 setAddrOfLocalVar(LocalAddrPair.second.first, 575 LocalAddrPair.second.second); 576 } 577 } 578 for (const auto &VLASizePair : VLASizes) 579 VLASizeMap[VLASizePair.second.first] = VLASizePair.second.second; 580 PGO.assignRegionCounters(GlobalDecl(CD), F); 581 CapturedStmtInfo->EmitBody(*this, CD->getBody()); 582 FinishFunction(CD->getBodyRBrace()); 583 if (!NeedWrapperFunction) 584 return F; 585 586 FunctionOptions WrapperFO(&S, /*UIntPtrCastRequired=*/true, 587 /*RegisterCastedArgsOnly=*/true, 588 CapturedStmtInfo->getHelperName()); 589 CodeGenFunction WrapperCGF(CGM, /*suppressNewContext=*/true); 590 Args.clear(); 591 LocalAddrs.clear(); 592 VLASizes.clear(); 593 llvm::Function *WrapperF = 594 emitOutlinedFunctionPrologue(WrapperCGF, Args, LocalAddrs, VLASizes, 595 WrapperCGF.CXXThisValue, WrapperFO); 596 llvm::SmallVector<llvm::Value *, 4> CallArgs; 597 for (const auto *Arg : Args) { 598 llvm::Value *CallArg; 599 auto I = LocalAddrs.find(Arg); 600 if (I != LocalAddrs.end()) { 601 LValue LV = WrapperCGF.MakeAddrLValue( 602 I->second.second, 603 I->second.first ? I->second.first->getType() : Arg->getType(), 604 AlignmentSource::Decl); 605 CallArg = WrapperCGF.EmitLoadOfScalar(LV, S.getLocStart()); 606 } else { 607 auto EI = VLASizes.find(Arg); 608 if (EI != VLASizes.end()) 609 CallArg = EI->second.second; 610 else { 611 LValue LV = WrapperCGF.MakeAddrLValue(WrapperCGF.GetAddrOfLocalVar(Arg), 612 Arg->getType(), 613 AlignmentSource::Decl); 614 CallArg = WrapperCGF.EmitLoadOfScalar(LV, S.getLocStart()); 615 } 616 } 617 CallArgs.emplace_back(WrapperCGF.EmitFromMemory(CallArg, Arg->getType())); 618 } 619 CGM.getOpenMPRuntime().emitOutlinedFunctionCall(WrapperCGF, S.getLocStart(), 620 F, CallArgs); 621 WrapperCGF.FinishFunction(); 622 return WrapperF; 623 } 624 625 //===----------------------------------------------------------------------===// 626 // OpenMP Directive Emission 627 //===----------------------------------------------------------------------===// 628 void CodeGenFunction::EmitOMPAggregateAssign( 629 Address DestAddr, Address SrcAddr, QualType OriginalType, 630 const llvm::function_ref<void(Address, Address)> &CopyGen) { 631 // Perform element-by-element initialization. 632 QualType ElementTy; 633 634 // Drill down to the base element type on both arrays. 635 auto ArrayTy = OriginalType->getAsArrayTypeUnsafe(); 636 auto NumElements = emitArrayLength(ArrayTy, ElementTy, DestAddr); 637 SrcAddr = Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType()); 638 639 auto SrcBegin = SrcAddr.getPointer(); 640 auto DestBegin = DestAddr.getPointer(); 641 // Cast from pointer to array type to pointer to single element. 642 auto DestEnd = Builder.CreateGEP(DestBegin, NumElements); 643 // The basic structure here is a while-do loop. 644 auto BodyBB = createBasicBlock("omp.arraycpy.body"); 645 auto DoneBB = createBasicBlock("omp.arraycpy.done"); 646 auto IsEmpty = 647 Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arraycpy.isempty"); 648 Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB); 649 650 // Enter the loop body, making that address the current address. 651 auto EntryBB = Builder.GetInsertBlock(); 652 EmitBlock(BodyBB); 653 654 CharUnits ElementSize = getContext().getTypeSizeInChars(ElementTy); 655 656 llvm::PHINode *SrcElementPHI = 657 Builder.CreatePHI(SrcBegin->getType(), 2, "omp.arraycpy.srcElementPast"); 658 SrcElementPHI->addIncoming(SrcBegin, EntryBB); 659 Address SrcElementCurrent = 660 Address(SrcElementPHI, 661 SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 662 663 llvm::PHINode *DestElementPHI = 664 Builder.CreatePHI(DestBegin->getType(), 2, "omp.arraycpy.destElementPast"); 665 DestElementPHI->addIncoming(DestBegin, EntryBB); 666 Address DestElementCurrent = 667 Address(DestElementPHI, 668 DestAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 669 670 // Emit copy. 671 CopyGen(DestElementCurrent, SrcElementCurrent); 672 673 // Shift the address forward by one element. 674 auto DestElementNext = Builder.CreateConstGEP1_32( 675 DestElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element"); 676 auto SrcElementNext = Builder.CreateConstGEP1_32( 677 SrcElementPHI, /*Idx0=*/1, "omp.arraycpy.src.element"); 678 // Check whether we've reached the end. 679 auto Done = 680 Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done"); 681 Builder.CreateCondBr(Done, DoneBB, BodyBB); 682 DestElementPHI->addIncoming(DestElementNext, Builder.GetInsertBlock()); 683 SrcElementPHI->addIncoming(SrcElementNext, Builder.GetInsertBlock()); 684 685 // Done. 686 EmitBlock(DoneBB, /*IsFinished=*/true); 687 } 688 689 void CodeGenFunction::EmitOMPCopy(QualType OriginalType, Address DestAddr, 690 Address SrcAddr, const VarDecl *DestVD, 691 const VarDecl *SrcVD, const Expr *Copy) { 692 if (OriginalType->isArrayType()) { 693 auto *BO = dyn_cast<BinaryOperator>(Copy); 694 if (BO && BO->getOpcode() == BO_Assign) { 695 // Perform simple memcpy for simple copying. 696 LValue Dest = MakeAddrLValue(DestAddr, OriginalType); 697 LValue Src = MakeAddrLValue(SrcAddr, OriginalType); 698 EmitAggregateAssign(Dest, Src, OriginalType); 699 } else { 700 // For arrays with complex element types perform element by element 701 // copying. 702 EmitOMPAggregateAssign( 703 DestAddr, SrcAddr, OriginalType, 704 [this, Copy, SrcVD, DestVD](Address DestElement, Address SrcElement) { 705 // Working with the single array element, so have to remap 706 // destination and source variables to corresponding array 707 // elements. 708 CodeGenFunction::OMPPrivateScope Remap(*this); 709 Remap.addPrivate(DestVD, [DestElement]() -> Address { 710 return DestElement; 711 }); 712 Remap.addPrivate( 713 SrcVD, [SrcElement]() -> Address { return SrcElement; }); 714 (void)Remap.Privatize(); 715 EmitIgnoredExpr(Copy); 716 }); 717 } 718 } else { 719 // Remap pseudo source variable to private copy. 720 CodeGenFunction::OMPPrivateScope Remap(*this); 721 Remap.addPrivate(SrcVD, [SrcAddr]() -> Address { return SrcAddr; }); 722 Remap.addPrivate(DestVD, [DestAddr]() -> Address { return DestAddr; }); 723 (void)Remap.Privatize(); 724 // Emit copying of the whole variable. 725 EmitIgnoredExpr(Copy); 726 } 727 } 728 729 bool CodeGenFunction::EmitOMPFirstprivateClause(const OMPExecutableDirective &D, 730 OMPPrivateScope &PrivateScope) { 731 if (!HaveInsertPoint()) 732 return false; 733 bool FirstprivateIsLastprivate = false; 734 llvm::DenseSet<const VarDecl *> Lastprivates; 735 for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) { 736 for (const auto *D : C->varlists()) 737 Lastprivates.insert( 738 cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl()); 739 } 740 llvm::DenseSet<const VarDecl *> EmittedAsFirstprivate; 741 llvm::SmallVector<OpenMPDirectiveKind, 4> CaptureRegions; 742 getOpenMPCaptureRegions(CaptureRegions, D.getDirectiveKind()); 743 // Force emission of the firstprivate copy if the directive does not emit 744 // outlined function, like omp for, omp simd, omp distribute etc. 745 bool MustEmitFirstprivateCopy = 746 CaptureRegions.size() == 1 && CaptureRegions.back() == OMPD_unknown; 747 for (const auto *C : D.getClausesOfKind<OMPFirstprivateClause>()) { 748 auto IRef = C->varlist_begin(); 749 auto InitsRef = C->inits().begin(); 750 for (auto IInit : C->private_copies()) { 751 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 752 bool ThisFirstprivateIsLastprivate = 753 Lastprivates.count(OrigVD->getCanonicalDecl()) > 0; 754 auto *FD = CapturedStmtInfo->lookup(OrigVD); 755 if (!MustEmitFirstprivateCopy && !ThisFirstprivateIsLastprivate && FD && 756 !FD->getType()->isReferenceType()) { 757 EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl()); 758 ++IRef; 759 ++InitsRef; 760 continue; 761 } 762 FirstprivateIsLastprivate = 763 FirstprivateIsLastprivate || ThisFirstprivateIsLastprivate; 764 if (EmittedAsFirstprivate.insert(OrigVD->getCanonicalDecl()).second) { 765 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl()); 766 auto *VDInit = cast<VarDecl>(cast<DeclRefExpr>(*InitsRef)->getDecl()); 767 bool IsRegistered; 768 DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD), 769 /*RefersToEnclosingVariableOrCapture=*/FD != nullptr, 770 (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc()); 771 LValue OriginalLVal = EmitLValue(&DRE); 772 Address OriginalAddr = OriginalLVal.getAddress(); 773 QualType Type = VD->getType(); 774 if (Type->isArrayType()) { 775 // Emit VarDecl with copy init for arrays. 776 // Get the address of the original variable captured in current 777 // captured region. 778 IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address { 779 auto Emission = EmitAutoVarAlloca(*VD); 780 auto *Init = VD->getInit(); 781 if (!isa<CXXConstructExpr>(Init) || isTrivialInitializer(Init)) { 782 // Perform simple memcpy. 783 LValue Dest = MakeAddrLValue(Emission.getAllocatedAddress(), 784 Type); 785 EmitAggregateAssign(Dest, OriginalLVal, Type); 786 } else { 787 EmitOMPAggregateAssign( 788 Emission.getAllocatedAddress(), OriginalAddr, Type, 789 [this, VDInit, Init](Address DestElement, 790 Address SrcElement) { 791 // Clean up any temporaries needed by the initialization. 792 RunCleanupsScope InitScope(*this); 793 // Emit initialization for single element. 794 setAddrOfLocalVar(VDInit, SrcElement); 795 EmitAnyExprToMem(Init, DestElement, 796 Init->getType().getQualifiers(), 797 /*IsInitializer*/ false); 798 LocalDeclMap.erase(VDInit); 799 }); 800 } 801 EmitAutoVarCleanups(Emission); 802 return Emission.getAllocatedAddress(); 803 }); 804 } else { 805 IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address { 806 // Emit private VarDecl with copy init. 807 // Remap temp VDInit variable to the address of the original 808 // variable 809 // (for proper handling of captured global variables). 810 setAddrOfLocalVar(VDInit, OriginalAddr); 811 EmitDecl(*VD); 812 LocalDeclMap.erase(VDInit); 813 return GetAddrOfLocalVar(VD); 814 }); 815 } 816 assert(IsRegistered && 817 "firstprivate var already registered as private"); 818 // Silence the warning about unused variable. 819 (void)IsRegistered; 820 } 821 ++IRef; 822 ++InitsRef; 823 } 824 } 825 return FirstprivateIsLastprivate && !EmittedAsFirstprivate.empty(); 826 } 827 828 void CodeGenFunction::EmitOMPPrivateClause( 829 const OMPExecutableDirective &D, 830 CodeGenFunction::OMPPrivateScope &PrivateScope) { 831 if (!HaveInsertPoint()) 832 return; 833 llvm::DenseSet<const VarDecl *> EmittedAsPrivate; 834 for (const auto *C : D.getClausesOfKind<OMPPrivateClause>()) { 835 auto IRef = C->varlist_begin(); 836 for (auto IInit : C->private_copies()) { 837 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 838 if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) { 839 auto VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl()); 840 bool IsRegistered = 841 PrivateScope.addPrivate(OrigVD, [&]() -> Address { 842 // Emit private VarDecl with copy init. 843 EmitDecl(*VD); 844 return GetAddrOfLocalVar(VD); 845 }); 846 assert(IsRegistered && "private var already registered as private"); 847 // Silence the warning about unused variable. 848 (void)IsRegistered; 849 } 850 ++IRef; 851 } 852 } 853 } 854 855 bool CodeGenFunction::EmitOMPCopyinClause(const OMPExecutableDirective &D) { 856 if (!HaveInsertPoint()) 857 return false; 858 // threadprivate_var1 = master_threadprivate_var1; 859 // operator=(threadprivate_var2, master_threadprivate_var2); 860 // ... 861 // __kmpc_barrier(&loc, global_tid); 862 llvm::DenseSet<const VarDecl *> CopiedVars; 863 llvm::BasicBlock *CopyBegin = nullptr, *CopyEnd = nullptr; 864 for (const auto *C : D.getClausesOfKind<OMPCopyinClause>()) { 865 auto IRef = C->varlist_begin(); 866 auto ISrcRef = C->source_exprs().begin(); 867 auto IDestRef = C->destination_exprs().begin(); 868 for (auto *AssignOp : C->assignment_ops()) { 869 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 870 QualType Type = VD->getType(); 871 if (CopiedVars.insert(VD->getCanonicalDecl()).second) { 872 // Get the address of the master variable. If we are emitting code with 873 // TLS support, the address is passed from the master as field in the 874 // captured declaration. 875 Address MasterAddr = Address::invalid(); 876 if (getLangOpts().OpenMPUseTLS && 877 getContext().getTargetInfo().isTLSSupported()) { 878 assert(CapturedStmtInfo->lookup(VD) && 879 "Copyin threadprivates should have been captured!"); 880 DeclRefExpr DRE(const_cast<VarDecl *>(VD), true, (*IRef)->getType(), 881 VK_LValue, (*IRef)->getExprLoc()); 882 MasterAddr = EmitLValue(&DRE).getAddress(); 883 LocalDeclMap.erase(VD); 884 } else { 885 MasterAddr = 886 Address(VD->isStaticLocal() ? CGM.getStaticLocalDeclAddress(VD) 887 : CGM.GetAddrOfGlobal(VD), 888 getContext().getDeclAlign(VD)); 889 } 890 // Get the address of the threadprivate variable. 891 Address PrivateAddr = EmitLValue(*IRef).getAddress(); 892 if (CopiedVars.size() == 1) { 893 // At first check if current thread is a master thread. If it is, no 894 // need to copy data. 895 CopyBegin = createBasicBlock("copyin.not.master"); 896 CopyEnd = createBasicBlock("copyin.not.master.end"); 897 Builder.CreateCondBr( 898 Builder.CreateICmpNE( 899 Builder.CreatePtrToInt(MasterAddr.getPointer(), CGM.IntPtrTy), 900 Builder.CreatePtrToInt(PrivateAddr.getPointer(), CGM.IntPtrTy)), 901 CopyBegin, CopyEnd); 902 EmitBlock(CopyBegin); 903 } 904 auto *SrcVD = cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl()); 905 auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl()); 906 EmitOMPCopy(Type, PrivateAddr, MasterAddr, DestVD, SrcVD, AssignOp); 907 } 908 ++IRef; 909 ++ISrcRef; 910 ++IDestRef; 911 } 912 } 913 if (CopyEnd) { 914 // Exit out of copying procedure for non-master thread. 915 EmitBlock(CopyEnd, /*IsFinished=*/true); 916 return true; 917 } 918 return false; 919 } 920 921 bool CodeGenFunction::EmitOMPLastprivateClauseInit( 922 const OMPExecutableDirective &D, OMPPrivateScope &PrivateScope) { 923 if (!HaveInsertPoint()) 924 return false; 925 bool HasAtLeastOneLastprivate = false; 926 llvm::DenseSet<const VarDecl *> SIMDLCVs; 927 if (isOpenMPSimdDirective(D.getDirectiveKind())) { 928 auto *LoopDirective = cast<OMPLoopDirective>(&D); 929 for (auto *C : LoopDirective->counters()) { 930 SIMDLCVs.insert( 931 cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl()); 932 } 933 } 934 llvm::DenseSet<const VarDecl *> AlreadyEmittedVars; 935 for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) { 936 HasAtLeastOneLastprivate = true; 937 if (isOpenMPTaskLoopDirective(D.getDirectiveKind()) && 938 !getLangOpts().OpenMPSimd) 939 break; 940 auto IRef = C->varlist_begin(); 941 auto IDestRef = C->destination_exprs().begin(); 942 for (auto *IInit : C->private_copies()) { 943 // Keep the address of the original variable for future update at the end 944 // of the loop. 945 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 946 // Taskloops do not require additional initialization, it is done in 947 // runtime support library. 948 if (AlreadyEmittedVars.insert(OrigVD->getCanonicalDecl()).second) { 949 auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl()); 950 PrivateScope.addPrivate(DestVD, [this, OrigVD, IRef]() -> Address { 951 DeclRefExpr DRE( 952 const_cast<VarDecl *>(OrigVD), 953 /*RefersToEnclosingVariableOrCapture=*/CapturedStmtInfo->lookup( 954 OrigVD) != nullptr, 955 (*IRef)->getType(), VK_LValue, (*IRef)->getExprLoc()); 956 return EmitLValue(&DRE).getAddress(); 957 }); 958 // Check if the variable is also a firstprivate: in this case IInit is 959 // not generated. Initialization of this variable will happen in codegen 960 // for 'firstprivate' clause. 961 if (IInit && !SIMDLCVs.count(OrigVD->getCanonicalDecl())) { 962 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(IInit)->getDecl()); 963 bool IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address { 964 // Emit private VarDecl with copy init. 965 EmitDecl(*VD); 966 return GetAddrOfLocalVar(VD); 967 }); 968 assert(IsRegistered && 969 "lastprivate var already registered as private"); 970 (void)IsRegistered; 971 } 972 } 973 ++IRef; 974 ++IDestRef; 975 } 976 } 977 return HasAtLeastOneLastprivate; 978 } 979 980 void CodeGenFunction::EmitOMPLastprivateClauseFinal( 981 const OMPExecutableDirective &D, bool NoFinals, 982 llvm::Value *IsLastIterCond) { 983 if (!HaveInsertPoint()) 984 return; 985 // Emit following code: 986 // if (<IsLastIterCond>) { 987 // orig_var1 = private_orig_var1; 988 // ... 989 // orig_varn = private_orig_varn; 990 // } 991 llvm::BasicBlock *ThenBB = nullptr; 992 llvm::BasicBlock *DoneBB = nullptr; 993 if (IsLastIterCond) { 994 ThenBB = createBasicBlock(".omp.lastprivate.then"); 995 DoneBB = createBasicBlock(".omp.lastprivate.done"); 996 Builder.CreateCondBr(IsLastIterCond, ThenBB, DoneBB); 997 EmitBlock(ThenBB); 998 } 999 llvm::DenseSet<const VarDecl *> AlreadyEmittedVars; 1000 llvm::DenseMap<const VarDecl *, const Expr *> LoopCountersAndUpdates; 1001 if (auto *LoopDirective = dyn_cast<OMPLoopDirective>(&D)) { 1002 auto IC = LoopDirective->counters().begin(); 1003 for (auto F : LoopDirective->finals()) { 1004 auto *D = 1005 cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl())->getCanonicalDecl(); 1006 if (NoFinals) 1007 AlreadyEmittedVars.insert(D); 1008 else 1009 LoopCountersAndUpdates[D] = F; 1010 ++IC; 1011 } 1012 } 1013 for (const auto *C : D.getClausesOfKind<OMPLastprivateClause>()) { 1014 auto IRef = C->varlist_begin(); 1015 auto ISrcRef = C->source_exprs().begin(); 1016 auto IDestRef = C->destination_exprs().begin(); 1017 for (auto *AssignOp : C->assignment_ops()) { 1018 auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 1019 QualType Type = PrivateVD->getType(); 1020 auto *CanonicalVD = PrivateVD->getCanonicalDecl(); 1021 if (AlreadyEmittedVars.insert(CanonicalVD).second) { 1022 // If lastprivate variable is a loop control variable for loop-based 1023 // directive, update its value before copyin back to original 1024 // variable. 1025 if (auto *FinalExpr = LoopCountersAndUpdates.lookup(CanonicalVD)) 1026 EmitIgnoredExpr(FinalExpr); 1027 auto *SrcVD = cast<VarDecl>(cast<DeclRefExpr>(*ISrcRef)->getDecl()); 1028 auto *DestVD = cast<VarDecl>(cast<DeclRefExpr>(*IDestRef)->getDecl()); 1029 // Get the address of the original variable. 1030 Address OriginalAddr = GetAddrOfLocalVar(DestVD); 1031 // Get the address of the private variable. 1032 Address PrivateAddr = GetAddrOfLocalVar(PrivateVD); 1033 if (auto RefTy = PrivateVD->getType()->getAs<ReferenceType>()) 1034 PrivateAddr = 1035 Address(Builder.CreateLoad(PrivateAddr), 1036 getNaturalTypeAlignment(RefTy->getPointeeType())); 1037 EmitOMPCopy(Type, OriginalAddr, PrivateAddr, DestVD, SrcVD, AssignOp); 1038 } 1039 ++IRef; 1040 ++ISrcRef; 1041 ++IDestRef; 1042 } 1043 if (auto *PostUpdate = C->getPostUpdateExpr()) 1044 EmitIgnoredExpr(PostUpdate); 1045 } 1046 if (IsLastIterCond) 1047 EmitBlock(DoneBB, /*IsFinished=*/true); 1048 } 1049 1050 void CodeGenFunction::EmitOMPReductionClauseInit( 1051 const OMPExecutableDirective &D, 1052 CodeGenFunction::OMPPrivateScope &PrivateScope) { 1053 if (!HaveInsertPoint()) 1054 return; 1055 SmallVector<const Expr *, 4> Shareds; 1056 SmallVector<const Expr *, 4> Privates; 1057 SmallVector<const Expr *, 4> ReductionOps; 1058 SmallVector<const Expr *, 4> LHSs; 1059 SmallVector<const Expr *, 4> RHSs; 1060 for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) { 1061 auto IPriv = C->privates().begin(); 1062 auto IRed = C->reduction_ops().begin(); 1063 auto ILHS = C->lhs_exprs().begin(); 1064 auto IRHS = C->rhs_exprs().begin(); 1065 for (const auto *Ref : C->varlists()) { 1066 Shareds.emplace_back(Ref); 1067 Privates.emplace_back(*IPriv); 1068 ReductionOps.emplace_back(*IRed); 1069 LHSs.emplace_back(*ILHS); 1070 RHSs.emplace_back(*IRHS); 1071 std::advance(IPriv, 1); 1072 std::advance(IRed, 1); 1073 std::advance(ILHS, 1); 1074 std::advance(IRHS, 1); 1075 } 1076 } 1077 ReductionCodeGen RedCG(Shareds, Privates, ReductionOps); 1078 unsigned Count = 0; 1079 auto ILHS = LHSs.begin(); 1080 auto IRHS = RHSs.begin(); 1081 auto IPriv = Privates.begin(); 1082 for (const auto *IRef : Shareds) { 1083 auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*IPriv)->getDecl()); 1084 // Emit private VarDecl with reduction init. 1085 RedCG.emitSharedLValue(*this, Count); 1086 RedCG.emitAggregateType(*this, Count); 1087 auto Emission = EmitAutoVarAlloca(*PrivateVD); 1088 RedCG.emitInitialization(*this, Count, Emission.getAllocatedAddress(), 1089 RedCG.getSharedLValue(Count), 1090 [&Emission](CodeGenFunction &CGF) { 1091 CGF.EmitAutoVarInit(Emission); 1092 return true; 1093 }); 1094 EmitAutoVarCleanups(Emission); 1095 Address BaseAddr = RedCG.adjustPrivateAddress( 1096 *this, Count, Emission.getAllocatedAddress()); 1097 bool IsRegistered = PrivateScope.addPrivate( 1098 RedCG.getBaseDecl(Count), [BaseAddr]() -> Address { return BaseAddr; }); 1099 assert(IsRegistered && "private var already registered as private"); 1100 // Silence the warning about unused variable. 1101 (void)IsRegistered; 1102 1103 auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl()); 1104 auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl()); 1105 QualType Type = PrivateVD->getType(); 1106 bool isaOMPArraySectionExpr = isa<OMPArraySectionExpr>(IRef); 1107 if (isaOMPArraySectionExpr && Type->isVariablyModifiedType()) { 1108 // Store the address of the original variable associated with the LHS 1109 // implicit variable. 1110 PrivateScope.addPrivate(LHSVD, [&RedCG, Count]() -> Address { 1111 return RedCG.getSharedLValue(Count).getAddress(); 1112 }); 1113 PrivateScope.addPrivate(RHSVD, [this, PrivateVD]() -> Address { 1114 return GetAddrOfLocalVar(PrivateVD); 1115 }); 1116 } else if ((isaOMPArraySectionExpr && Type->isScalarType()) || 1117 isa<ArraySubscriptExpr>(IRef)) { 1118 // Store the address of the original variable associated with the LHS 1119 // implicit variable. 1120 PrivateScope.addPrivate(LHSVD, [&RedCG, Count]() -> Address { 1121 return RedCG.getSharedLValue(Count).getAddress(); 1122 }); 1123 PrivateScope.addPrivate(RHSVD, [this, PrivateVD, RHSVD]() -> Address { 1124 return Builder.CreateElementBitCast(GetAddrOfLocalVar(PrivateVD), 1125 ConvertTypeForMem(RHSVD->getType()), 1126 "rhs.begin"); 1127 }); 1128 } else { 1129 QualType Type = PrivateVD->getType(); 1130 bool IsArray = getContext().getAsArrayType(Type) != nullptr; 1131 Address OriginalAddr = RedCG.getSharedLValue(Count).getAddress(); 1132 // Store the address of the original variable associated with the LHS 1133 // implicit variable. 1134 if (IsArray) { 1135 OriginalAddr = Builder.CreateElementBitCast( 1136 OriginalAddr, ConvertTypeForMem(LHSVD->getType()), "lhs.begin"); 1137 } 1138 PrivateScope.addPrivate( 1139 LHSVD, [OriginalAddr]() -> Address { return OriginalAddr; }); 1140 PrivateScope.addPrivate( 1141 RHSVD, [this, PrivateVD, RHSVD, IsArray]() -> Address { 1142 return IsArray 1143 ? Builder.CreateElementBitCast( 1144 GetAddrOfLocalVar(PrivateVD), 1145 ConvertTypeForMem(RHSVD->getType()), "rhs.begin") 1146 : GetAddrOfLocalVar(PrivateVD); 1147 }); 1148 } 1149 ++ILHS; 1150 ++IRHS; 1151 ++IPriv; 1152 ++Count; 1153 } 1154 } 1155 1156 void CodeGenFunction::EmitOMPReductionClauseFinal( 1157 const OMPExecutableDirective &D, const OpenMPDirectiveKind ReductionKind) { 1158 if (!HaveInsertPoint()) 1159 return; 1160 llvm::SmallVector<const Expr *, 8> Privates; 1161 llvm::SmallVector<const Expr *, 8> LHSExprs; 1162 llvm::SmallVector<const Expr *, 8> RHSExprs; 1163 llvm::SmallVector<const Expr *, 8> ReductionOps; 1164 bool HasAtLeastOneReduction = false; 1165 for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) { 1166 HasAtLeastOneReduction = true; 1167 Privates.append(C->privates().begin(), C->privates().end()); 1168 LHSExprs.append(C->lhs_exprs().begin(), C->lhs_exprs().end()); 1169 RHSExprs.append(C->rhs_exprs().begin(), C->rhs_exprs().end()); 1170 ReductionOps.append(C->reduction_ops().begin(), C->reduction_ops().end()); 1171 } 1172 if (HasAtLeastOneReduction) { 1173 bool WithNowait = D.getSingleClause<OMPNowaitClause>() || 1174 isOpenMPParallelDirective(D.getDirectiveKind()) || 1175 ReductionKind == OMPD_simd; 1176 bool SimpleReduction = ReductionKind == OMPD_simd; 1177 // Emit nowait reduction if nowait clause is present or directive is a 1178 // parallel directive (it always has implicit barrier). 1179 CGM.getOpenMPRuntime().emitReduction( 1180 *this, D.getLocEnd(), Privates, LHSExprs, RHSExprs, ReductionOps, 1181 {WithNowait, SimpleReduction, ReductionKind}); 1182 } 1183 } 1184 1185 static void emitPostUpdateForReductionClause( 1186 CodeGenFunction &CGF, const OMPExecutableDirective &D, 1187 const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) { 1188 if (!CGF.HaveInsertPoint()) 1189 return; 1190 llvm::BasicBlock *DoneBB = nullptr; 1191 for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) { 1192 if (auto *PostUpdate = C->getPostUpdateExpr()) { 1193 if (!DoneBB) { 1194 if (auto *Cond = CondGen(CGF)) { 1195 // If the first post-update expression is found, emit conditional 1196 // block if it was requested. 1197 auto *ThenBB = CGF.createBasicBlock(".omp.reduction.pu"); 1198 DoneBB = CGF.createBasicBlock(".omp.reduction.pu.done"); 1199 CGF.Builder.CreateCondBr(Cond, ThenBB, DoneBB); 1200 CGF.EmitBlock(ThenBB); 1201 } 1202 } 1203 CGF.EmitIgnoredExpr(PostUpdate); 1204 } 1205 } 1206 if (DoneBB) 1207 CGF.EmitBlock(DoneBB, /*IsFinished=*/true); 1208 } 1209 1210 namespace { 1211 /// Codegen lambda for appending distribute lower and upper bounds to outlined 1212 /// parallel function. This is necessary for combined constructs such as 1213 /// 'distribute parallel for' 1214 typedef llvm::function_ref<void(CodeGenFunction &, 1215 const OMPExecutableDirective &, 1216 llvm::SmallVectorImpl<llvm::Value *> &)> 1217 CodeGenBoundParametersTy; 1218 } // anonymous namespace 1219 1220 static void emitCommonOMPParallelDirective( 1221 CodeGenFunction &CGF, const OMPExecutableDirective &S, 1222 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen, 1223 const CodeGenBoundParametersTy &CodeGenBoundParameters) { 1224 const CapturedStmt *CS = S.getCapturedStmt(OMPD_parallel); 1225 auto OutlinedFn = CGF.CGM.getOpenMPRuntime().emitParallelOutlinedFunction( 1226 S, *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen); 1227 if (const auto *NumThreadsClause = S.getSingleClause<OMPNumThreadsClause>()) { 1228 CodeGenFunction::RunCleanupsScope NumThreadsScope(CGF); 1229 auto NumThreads = CGF.EmitScalarExpr(NumThreadsClause->getNumThreads(), 1230 /*IgnoreResultAssign*/ true); 1231 CGF.CGM.getOpenMPRuntime().emitNumThreadsClause( 1232 CGF, NumThreads, NumThreadsClause->getLocStart()); 1233 } 1234 if (const auto *ProcBindClause = S.getSingleClause<OMPProcBindClause>()) { 1235 CodeGenFunction::RunCleanupsScope ProcBindScope(CGF); 1236 CGF.CGM.getOpenMPRuntime().emitProcBindClause( 1237 CGF, ProcBindClause->getProcBindKind(), ProcBindClause->getLocStart()); 1238 } 1239 const Expr *IfCond = nullptr; 1240 for (const auto *C : S.getClausesOfKind<OMPIfClause>()) { 1241 if (C->getNameModifier() == OMPD_unknown || 1242 C->getNameModifier() == OMPD_parallel) { 1243 IfCond = C->getCondition(); 1244 break; 1245 } 1246 } 1247 1248 OMPParallelScope Scope(CGF, S); 1249 llvm::SmallVector<llvm::Value *, 16> CapturedVars; 1250 // Combining 'distribute' with 'for' requires sharing each 'distribute' chunk 1251 // lower and upper bounds with the pragma 'for' chunking mechanism. 1252 // The following lambda takes care of appending the lower and upper bound 1253 // parameters when necessary 1254 CodeGenBoundParameters(CGF, S, CapturedVars); 1255 CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars); 1256 CGF.CGM.getOpenMPRuntime().emitParallelCall(CGF, S.getLocStart(), OutlinedFn, 1257 CapturedVars, IfCond); 1258 } 1259 1260 static void emitEmptyBoundParameters(CodeGenFunction &, 1261 const OMPExecutableDirective &, 1262 llvm::SmallVectorImpl<llvm::Value *> &) {} 1263 1264 void CodeGenFunction::EmitOMPParallelDirective(const OMPParallelDirective &S) { 1265 // Emit parallel region as a standalone region. 1266 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 1267 OMPPrivateScope PrivateScope(CGF); 1268 bool Copyins = CGF.EmitOMPCopyinClause(S); 1269 (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope); 1270 if (Copyins) { 1271 // Emit implicit barrier to synchronize threads and avoid data races on 1272 // propagation master's thread values of threadprivate variables to local 1273 // instances of that variables of all other implicit threads. 1274 CGF.CGM.getOpenMPRuntime().emitBarrierCall( 1275 CGF, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false, 1276 /*ForceSimpleCall=*/true); 1277 } 1278 CGF.EmitOMPPrivateClause(S, PrivateScope); 1279 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 1280 (void)PrivateScope.Privatize(); 1281 CGF.EmitStmt(S.getCapturedStmt(OMPD_parallel)->getCapturedStmt()); 1282 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel); 1283 }; 1284 emitCommonOMPParallelDirective(*this, S, OMPD_parallel, CodeGen, 1285 emitEmptyBoundParameters); 1286 emitPostUpdateForReductionClause( 1287 *this, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 1288 } 1289 1290 void CodeGenFunction::EmitOMPLoopBody(const OMPLoopDirective &D, 1291 JumpDest LoopExit) { 1292 RunCleanupsScope BodyScope(*this); 1293 // Update counters values on current iteration. 1294 for (auto I : D.updates()) { 1295 EmitIgnoredExpr(I); 1296 } 1297 // Update the linear variables. 1298 // In distribute directives only loop counters may be marked as linear, no 1299 // need to generate the code for them. 1300 if (!isOpenMPDistributeDirective(D.getDirectiveKind())) { 1301 for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) { 1302 for (auto *U : C->updates()) 1303 EmitIgnoredExpr(U); 1304 } 1305 } 1306 1307 // On a continue in the body, jump to the end. 1308 auto Continue = getJumpDestInCurrentScope("omp.body.continue"); 1309 BreakContinueStack.push_back(BreakContinue(LoopExit, Continue)); 1310 // Emit loop body. 1311 EmitStmt(D.getBody()); 1312 // The end (updates/cleanups). 1313 EmitBlock(Continue.getBlock()); 1314 BreakContinueStack.pop_back(); 1315 } 1316 1317 void CodeGenFunction::EmitOMPInnerLoop( 1318 const Stmt &S, bool RequiresCleanup, const Expr *LoopCond, 1319 const Expr *IncExpr, 1320 const llvm::function_ref<void(CodeGenFunction &)> &BodyGen, 1321 const llvm::function_ref<void(CodeGenFunction &)> &PostIncGen) { 1322 auto LoopExit = getJumpDestInCurrentScope("omp.inner.for.end"); 1323 1324 // Start the loop with a block that tests the condition. 1325 auto CondBlock = createBasicBlock("omp.inner.for.cond"); 1326 EmitBlock(CondBlock); 1327 const SourceRange &R = S.getSourceRange(); 1328 LoopStack.push(CondBlock, SourceLocToDebugLoc(R.getBegin()), 1329 SourceLocToDebugLoc(R.getEnd())); 1330 1331 // If there are any cleanups between here and the loop-exit scope, 1332 // create a block to stage a loop exit along. 1333 auto ExitBlock = LoopExit.getBlock(); 1334 if (RequiresCleanup) 1335 ExitBlock = createBasicBlock("omp.inner.for.cond.cleanup"); 1336 1337 auto LoopBody = createBasicBlock("omp.inner.for.body"); 1338 1339 // Emit condition. 1340 EmitBranchOnBoolExpr(LoopCond, LoopBody, ExitBlock, getProfileCount(&S)); 1341 if (ExitBlock != LoopExit.getBlock()) { 1342 EmitBlock(ExitBlock); 1343 EmitBranchThroughCleanup(LoopExit); 1344 } 1345 1346 EmitBlock(LoopBody); 1347 incrementProfileCounter(&S); 1348 1349 // Create a block for the increment. 1350 auto Continue = getJumpDestInCurrentScope("omp.inner.for.inc"); 1351 BreakContinueStack.push_back(BreakContinue(LoopExit, Continue)); 1352 1353 BodyGen(*this); 1354 1355 // Emit "IV = IV + 1" and a back-edge to the condition block. 1356 EmitBlock(Continue.getBlock()); 1357 EmitIgnoredExpr(IncExpr); 1358 PostIncGen(*this); 1359 BreakContinueStack.pop_back(); 1360 EmitBranch(CondBlock); 1361 LoopStack.pop(); 1362 // Emit the fall-through block. 1363 EmitBlock(LoopExit.getBlock()); 1364 } 1365 1366 bool CodeGenFunction::EmitOMPLinearClauseInit(const OMPLoopDirective &D) { 1367 if (!HaveInsertPoint()) 1368 return false; 1369 // Emit inits for the linear variables. 1370 bool HasLinears = false; 1371 for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) { 1372 for (auto *Init : C->inits()) { 1373 HasLinears = true; 1374 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(Init)->getDecl()); 1375 if (auto *Ref = dyn_cast<DeclRefExpr>(VD->getInit()->IgnoreImpCasts())) { 1376 AutoVarEmission Emission = EmitAutoVarAlloca(*VD); 1377 auto *OrigVD = cast<VarDecl>(Ref->getDecl()); 1378 DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD), 1379 CapturedStmtInfo->lookup(OrigVD) != nullptr, 1380 VD->getInit()->getType(), VK_LValue, 1381 VD->getInit()->getExprLoc()); 1382 EmitExprAsInit(&DRE, VD, MakeAddrLValue(Emission.getAllocatedAddress(), 1383 VD->getType()), 1384 /*capturedByInit=*/false); 1385 EmitAutoVarCleanups(Emission); 1386 } else 1387 EmitVarDecl(*VD); 1388 } 1389 // Emit the linear steps for the linear clauses. 1390 // If a step is not constant, it is pre-calculated before the loop. 1391 if (auto CS = cast_or_null<BinaryOperator>(C->getCalcStep())) 1392 if (auto SaveRef = cast<DeclRefExpr>(CS->getLHS())) { 1393 EmitVarDecl(*cast<VarDecl>(SaveRef->getDecl())); 1394 // Emit calculation of the linear step. 1395 EmitIgnoredExpr(CS); 1396 } 1397 } 1398 return HasLinears; 1399 } 1400 1401 void CodeGenFunction::EmitOMPLinearClauseFinal( 1402 const OMPLoopDirective &D, 1403 const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) { 1404 if (!HaveInsertPoint()) 1405 return; 1406 llvm::BasicBlock *DoneBB = nullptr; 1407 // Emit the final values of the linear variables. 1408 for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) { 1409 auto IC = C->varlist_begin(); 1410 for (auto *F : C->finals()) { 1411 if (!DoneBB) { 1412 if (auto *Cond = CondGen(*this)) { 1413 // If the first post-update expression is found, emit conditional 1414 // block if it was requested. 1415 auto *ThenBB = createBasicBlock(".omp.linear.pu"); 1416 DoneBB = createBasicBlock(".omp.linear.pu.done"); 1417 Builder.CreateCondBr(Cond, ThenBB, DoneBB); 1418 EmitBlock(ThenBB); 1419 } 1420 } 1421 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IC)->getDecl()); 1422 DeclRefExpr DRE(const_cast<VarDecl *>(OrigVD), 1423 CapturedStmtInfo->lookup(OrigVD) != nullptr, 1424 (*IC)->getType(), VK_LValue, (*IC)->getExprLoc()); 1425 Address OrigAddr = EmitLValue(&DRE).getAddress(); 1426 CodeGenFunction::OMPPrivateScope VarScope(*this); 1427 VarScope.addPrivate(OrigVD, [OrigAddr]() -> Address { return OrigAddr; }); 1428 (void)VarScope.Privatize(); 1429 EmitIgnoredExpr(F); 1430 ++IC; 1431 } 1432 if (auto *PostUpdate = C->getPostUpdateExpr()) 1433 EmitIgnoredExpr(PostUpdate); 1434 } 1435 if (DoneBB) 1436 EmitBlock(DoneBB, /*IsFinished=*/true); 1437 } 1438 1439 static void emitAlignedClause(CodeGenFunction &CGF, 1440 const OMPExecutableDirective &D) { 1441 if (!CGF.HaveInsertPoint()) 1442 return; 1443 for (const auto *Clause : D.getClausesOfKind<OMPAlignedClause>()) { 1444 unsigned ClauseAlignment = 0; 1445 if (auto AlignmentExpr = Clause->getAlignment()) { 1446 auto AlignmentCI = 1447 cast<llvm::ConstantInt>(CGF.EmitScalarExpr(AlignmentExpr)); 1448 ClauseAlignment = static_cast<unsigned>(AlignmentCI->getZExtValue()); 1449 } 1450 for (auto E : Clause->varlists()) { 1451 unsigned Alignment = ClauseAlignment; 1452 if (Alignment == 0) { 1453 // OpenMP [2.8.1, Description] 1454 // If no optional parameter is specified, implementation-defined default 1455 // alignments for SIMD instructions on the target platforms are assumed. 1456 Alignment = 1457 CGF.getContext() 1458 .toCharUnitsFromBits(CGF.getContext().getOpenMPDefaultSimdAlign( 1459 E->getType()->getPointeeType())) 1460 .getQuantity(); 1461 } 1462 assert((Alignment == 0 || llvm::isPowerOf2_32(Alignment)) && 1463 "alignment is not power of 2"); 1464 if (Alignment != 0) { 1465 llvm::Value *PtrValue = CGF.EmitScalarExpr(E); 1466 CGF.EmitAlignmentAssumption(PtrValue, Alignment); 1467 } 1468 } 1469 } 1470 } 1471 1472 void CodeGenFunction::EmitOMPPrivateLoopCounters( 1473 const OMPLoopDirective &S, CodeGenFunction::OMPPrivateScope &LoopScope) { 1474 if (!HaveInsertPoint()) 1475 return; 1476 auto I = S.private_counters().begin(); 1477 for (auto *E : S.counters()) { 1478 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 1479 auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()); 1480 (void)LoopScope.addPrivate(VD, [&]() -> Address { 1481 // Emit var without initialization. 1482 if (!LocalDeclMap.count(PrivateVD)) { 1483 auto VarEmission = EmitAutoVarAlloca(*PrivateVD); 1484 EmitAutoVarCleanups(VarEmission); 1485 } 1486 DeclRefExpr DRE(const_cast<VarDecl *>(PrivateVD), 1487 /*RefersToEnclosingVariableOrCapture=*/false, 1488 (*I)->getType(), VK_LValue, (*I)->getExprLoc()); 1489 return EmitLValue(&DRE).getAddress(); 1490 }); 1491 if (LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD) || 1492 VD->hasGlobalStorage()) { 1493 (void)LoopScope.addPrivate(PrivateVD, [&]() -> Address { 1494 DeclRefExpr DRE(const_cast<VarDecl *>(VD), 1495 LocalDeclMap.count(VD) || CapturedStmtInfo->lookup(VD), 1496 E->getType(), VK_LValue, E->getExprLoc()); 1497 return EmitLValue(&DRE).getAddress(); 1498 }); 1499 } 1500 ++I; 1501 } 1502 } 1503 1504 static void emitPreCond(CodeGenFunction &CGF, const OMPLoopDirective &S, 1505 const Expr *Cond, llvm::BasicBlock *TrueBlock, 1506 llvm::BasicBlock *FalseBlock, uint64_t TrueCount) { 1507 if (!CGF.HaveInsertPoint()) 1508 return; 1509 { 1510 CodeGenFunction::OMPPrivateScope PreCondScope(CGF); 1511 CGF.EmitOMPPrivateLoopCounters(S, PreCondScope); 1512 (void)PreCondScope.Privatize(); 1513 // Get initial values of real counters. 1514 for (auto I : S.inits()) { 1515 CGF.EmitIgnoredExpr(I); 1516 } 1517 } 1518 // Check that loop is executed at least one time. 1519 CGF.EmitBranchOnBoolExpr(Cond, TrueBlock, FalseBlock, TrueCount); 1520 } 1521 1522 void CodeGenFunction::EmitOMPLinearClause( 1523 const OMPLoopDirective &D, CodeGenFunction::OMPPrivateScope &PrivateScope) { 1524 if (!HaveInsertPoint()) 1525 return; 1526 llvm::DenseSet<const VarDecl *> SIMDLCVs; 1527 if (isOpenMPSimdDirective(D.getDirectiveKind())) { 1528 auto *LoopDirective = cast<OMPLoopDirective>(&D); 1529 for (auto *C : LoopDirective->counters()) { 1530 SIMDLCVs.insert( 1531 cast<VarDecl>(cast<DeclRefExpr>(C)->getDecl())->getCanonicalDecl()); 1532 } 1533 } 1534 for (const auto *C : D.getClausesOfKind<OMPLinearClause>()) { 1535 auto CurPrivate = C->privates().begin(); 1536 for (auto *E : C->varlists()) { 1537 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 1538 auto *PrivateVD = 1539 cast<VarDecl>(cast<DeclRefExpr>(*CurPrivate)->getDecl()); 1540 if (!SIMDLCVs.count(VD->getCanonicalDecl())) { 1541 bool IsRegistered = PrivateScope.addPrivate(VD, [&]() -> Address { 1542 // Emit private VarDecl with copy init. 1543 EmitVarDecl(*PrivateVD); 1544 return GetAddrOfLocalVar(PrivateVD); 1545 }); 1546 assert(IsRegistered && "linear var already registered as private"); 1547 // Silence the warning about unused variable. 1548 (void)IsRegistered; 1549 } else 1550 EmitVarDecl(*PrivateVD); 1551 ++CurPrivate; 1552 } 1553 } 1554 } 1555 1556 static void emitSimdlenSafelenClause(CodeGenFunction &CGF, 1557 const OMPExecutableDirective &D, 1558 bool IsMonotonic) { 1559 if (!CGF.HaveInsertPoint()) 1560 return; 1561 if (const auto *C = D.getSingleClause<OMPSimdlenClause>()) { 1562 RValue Len = CGF.EmitAnyExpr(C->getSimdlen(), AggValueSlot::ignored(), 1563 /*ignoreResult=*/true); 1564 llvm::ConstantInt *Val = cast<llvm::ConstantInt>(Len.getScalarVal()); 1565 CGF.LoopStack.setVectorizeWidth(Val->getZExtValue()); 1566 // In presence of finite 'safelen', it may be unsafe to mark all 1567 // the memory instructions parallel, because loop-carried 1568 // dependences of 'safelen' iterations are possible. 1569 if (!IsMonotonic) 1570 CGF.LoopStack.setParallel(!D.getSingleClause<OMPSafelenClause>()); 1571 } else if (const auto *C = D.getSingleClause<OMPSafelenClause>()) { 1572 RValue Len = CGF.EmitAnyExpr(C->getSafelen(), AggValueSlot::ignored(), 1573 /*ignoreResult=*/true); 1574 llvm::ConstantInt *Val = cast<llvm::ConstantInt>(Len.getScalarVal()); 1575 CGF.LoopStack.setVectorizeWidth(Val->getZExtValue()); 1576 // In presence of finite 'safelen', it may be unsafe to mark all 1577 // the memory instructions parallel, because loop-carried 1578 // dependences of 'safelen' iterations are possible. 1579 CGF.LoopStack.setParallel(false); 1580 } 1581 } 1582 1583 void CodeGenFunction::EmitOMPSimdInit(const OMPLoopDirective &D, 1584 bool IsMonotonic) { 1585 // Walk clauses and process safelen/lastprivate. 1586 LoopStack.setParallel(!IsMonotonic); 1587 LoopStack.setVectorizeEnable(true); 1588 emitSimdlenSafelenClause(*this, D, IsMonotonic); 1589 } 1590 1591 void CodeGenFunction::EmitOMPSimdFinal( 1592 const OMPLoopDirective &D, 1593 const llvm::function_ref<llvm::Value *(CodeGenFunction &)> &CondGen) { 1594 if (!HaveInsertPoint()) 1595 return; 1596 llvm::BasicBlock *DoneBB = nullptr; 1597 auto IC = D.counters().begin(); 1598 auto IPC = D.private_counters().begin(); 1599 for (auto F : D.finals()) { 1600 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>((*IC))->getDecl()); 1601 auto *PrivateVD = cast<VarDecl>(cast<DeclRefExpr>((*IPC))->getDecl()); 1602 auto *CED = dyn_cast<OMPCapturedExprDecl>(OrigVD); 1603 if (LocalDeclMap.count(OrigVD) || CapturedStmtInfo->lookup(OrigVD) || 1604 OrigVD->hasGlobalStorage() || CED) { 1605 if (!DoneBB) { 1606 if (auto *Cond = CondGen(*this)) { 1607 // If the first post-update expression is found, emit conditional 1608 // block if it was requested. 1609 auto *ThenBB = createBasicBlock(".omp.final.then"); 1610 DoneBB = createBasicBlock(".omp.final.done"); 1611 Builder.CreateCondBr(Cond, ThenBB, DoneBB); 1612 EmitBlock(ThenBB); 1613 } 1614 } 1615 Address OrigAddr = Address::invalid(); 1616 if (CED) 1617 OrigAddr = EmitLValue(CED->getInit()->IgnoreImpCasts()).getAddress(); 1618 else { 1619 DeclRefExpr DRE(const_cast<VarDecl *>(PrivateVD), 1620 /*RefersToEnclosingVariableOrCapture=*/false, 1621 (*IPC)->getType(), VK_LValue, (*IPC)->getExprLoc()); 1622 OrigAddr = EmitLValue(&DRE).getAddress(); 1623 } 1624 OMPPrivateScope VarScope(*this); 1625 VarScope.addPrivate(OrigVD, 1626 [OrigAddr]() -> Address { return OrigAddr; }); 1627 (void)VarScope.Privatize(); 1628 EmitIgnoredExpr(F); 1629 } 1630 ++IC; 1631 ++IPC; 1632 } 1633 if (DoneBB) 1634 EmitBlock(DoneBB, /*IsFinished=*/true); 1635 } 1636 1637 static void emitOMPLoopBodyWithStopPoint(CodeGenFunction &CGF, 1638 const OMPLoopDirective &S, 1639 CodeGenFunction::JumpDest LoopExit) { 1640 CGF.EmitOMPLoopBody(S, LoopExit); 1641 CGF.EmitStopPoint(&S); 1642 } 1643 1644 /// Emit a helper variable and return corresponding lvalue. 1645 static LValue EmitOMPHelperVar(CodeGenFunction &CGF, 1646 const DeclRefExpr *Helper) { 1647 auto VDecl = cast<VarDecl>(Helper->getDecl()); 1648 CGF.EmitVarDecl(*VDecl); 1649 return CGF.EmitLValue(Helper); 1650 } 1651 1652 static void emitOMPSimdRegion(CodeGenFunction &CGF, const OMPLoopDirective &S, 1653 PrePostActionTy &Action) { 1654 Action.Enter(CGF); 1655 assert(isOpenMPSimdDirective(S.getDirectiveKind()) && 1656 "Expected simd directive"); 1657 OMPLoopScope PreInitScope(CGF, S); 1658 // if (PreCond) { 1659 // for (IV in 0..LastIteration) BODY; 1660 // <Final counter/linear vars updates>; 1661 // } 1662 // 1663 if (isOpenMPDistributeDirective(S.getDirectiveKind()) || 1664 isOpenMPWorksharingDirective(S.getDirectiveKind()) || 1665 isOpenMPTaskLoopDirective(S.getDirectiveKind())) { 1666 (void)EmitOMPHelperVar(CGF, cast<DeclRefExpr>(S.getLowerBoundVariable())); 1667 (void)EmitOMPHelperVar(CGF, cast<DeclRefExpr>(S.getUpperBoundVariable())); 1668 } 1669 1670 // Emit: if (PreCond) - begin. 1671 // If the condition constant folds and can be elided, avoid emitting the 1672 // whole loop. 1673 bool CondConstant; 1674 llvm::BasicBlock *ContBlock = nullptr; 1675 if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) { 1676 if (!CondConstant) 1677 return; 1678 } else { 1679 auto *ThenBlock = CGF.createBasicBlock("simd.if.then"); 1680 ContBlock = CGF.createBasicBlock("simd.if.end"); 1681 emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock, 1682 CGF.getProfileCount(&S)); 1683 CGF.EmitBlock(ThenBlock); 1684 CGF.incrementProfileCounter(&S); 1685 } 1686 1687 // Emit the loop iteration variable. 1688 const Expr *IVExpr = S.getIterationVariable(); 1689 const VarDecl *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl()); 1690 CGF.EmitVarDecl(*IVDecl); 1691 CGF.EmitIgnoredExpr(S.getInit()); 1692 1693 // Emit the iterations count variable. 1694 // If it is not a variable, Sema decided to calculate iterations count on 1695 // each iteration (e.g., it is foldable into a constant). 1696 if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) { 1697 CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl())); 1698 // Emit calculation of the iterations count. 1699 CGF.EmitIgnoredExpr(S.getCalcLastIteration()); 1700 } 1701 1702 CGF.EmitOMPSimdInit(S); 1703 1704 emitAlignedClause(CGF, S); 1705 (void)CGF.EmitOMPLinearClauseInit(S); 1706 { 1707 CodeGenFunction::OMPPrivateScope LoopScope(CGF); 1708 CGF.EmitOMPPrivateLoopCounters(S, LoopScope); 1709 CGF.EmitOMPLinearClause(S, LoopScope); 1710 CGF.EmitOMPPrivateClause(S, LoopScope); 1711 CGF.EmitOMPReductionClauseInit(S, LoopScope); 1712 bool HasLastprivateClause = CGF.EmitOMPLastprivateClauseInit(S, LoopScope); 1713 (void)LoopScope.Privatize(); 1714 CGF.EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(), 1715 S.getInc(), 1716 [&S](CodeGenFunction &CGF) { 1717 CGF.EmitOMPLoopBody(S, CodeGenFunction::JumpDest()); 1718 CGF.EmitStopPoint(&S); 1719 }, 1720 [](CodeGenFunction &) {}); 1721 CGF.EmitOMPSimdFinal( 1722 S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 1723 // Emit final copy of the lastprivate variables at the end of loops. 1724 if (HasLastprivateClause) 1725 CGF.EmitOMPLastprivateClauseFinal(S, /*NoFinals=*/true); 1726 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_simd); 1727 emitPostUpdateForReductionClause( 1728 CGF, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 1729 } 1730 CGF.EmitOMPLinearClauseFinal( 1731 S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 1732 // Emit: if (PreCond) - end. 1733 if (ContBlock) { 1734 CGF.EmitBranch(ContBlock); 1735 CGF.EmitBlock(ContBlock, true); 1736 } 1737 } 1738 1739 void CodeGenFunction::EmitOMPSimdDirective(const OMPSimdDirective &S) { 1740 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 1741 emitOMPSimdRegion(CGF, S, Action); 1742 }; 1743 OMPLexicalScope Scope(*this, S, OMPD_unknown); 1744 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen); 1745 } 1746 1747 void CodeGenFunction::EmitOMPOuterLoop( 1748 bool DynamicOrOrdered, bool IsMonotonic, const OMPLoopDirective &S, 1749 CodeGenFunction::OMPPrivateScope &LoopScope, 1750 const CodeGenFunction::OMPLoopArguments &LoopArgs, 1751 const CodeGenFunction::CodeGenLoopTy &CodeGenLoop, 1752 const CodeGenFunction::CodeGenOrderedTy &CodeGenOrdered) { 1753 auto &RT = CGM.getOpenMPRuntime(); 1754 1755 const Expr *IVExpr = S.getIterationVariable(); 1756 const unsigned IVSize = getContext().getTypeSize(IVExpr->getType()); 1757 const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation(); 1758 1759 auto LoopExit = getJumpDestInCurrentScope("omp.dispatch.end"); 1760 1761 // Start the loop with a block that tests the condition. 1762 auto CondBlock = createBasicBlock("omp.dispatch.cond"); 1763 EmitBlock(CondBlock); 1764 const SourceRange &R = S.getSourceRange(); 1765 LoopStack.push(CondBlock, SourceLocToDebugLoc(R.getBegin()), 1766 SourceLocToDebugLoc(R.getEnd())); 1767 1768 llvm::Value *BoolCondVal = nullptr; 1769 if (!DynamicOrOrdered) { 1770 // UB = min(UB, GlobalUB) or 1771 // UB = min(UB, PrevUB) for combined loop sharing constructs (e.g. 1772 // 'distribute parallel for') 1773 EmitIgnoredExpr(LoopArgs.EUB); 1774 // IV = LB 1775 EmitIgnoredExpr(LoopArgs.Init); 1776 // IV < UB 1777 BoolCondVal = EvaluateExprAsBool(LoopArgs.Cond); 1778 } else { 1779 BoolCondVal = 1780 RT.emitForNext(*this, S.getLocStart(), IVSize, IVSigned, LoopArgs.IL, 1781 LoopArgs.LB, LoopArgs.UB, LoopArgs.ST); 1782 } 1783 1784 // If there are any cleanups between here and the loop-exit scope, 1785 // create a block to stage a loop exit along. 1786 auto ExitBlock = LoopExit.getBlock(); 1787 if (LoopScope.requiresCleanups()) 1788 ExitBlock = createBasicBlock("omp.dispatch.cleanup"); 1789 1790 auto LoopBody = createBasicBlock("omp.dispatch.body"); 1791 Builder.CreateCondBr(BoolCondVal, LoopBody, ExitBlock); 1792 if (ExitBlock != LoopExit.getBlock()) { 1793 EmitBlock(ExitBlock); 1794 EmitBranchThroughCleanup(LoopExit); 1795 } 1796 EmitBlock(LoopBody); 1797 1798 // Emit "IV = LB" (in case of static schedule, we have already calculated new 1799 // LB for loop condition and emitted it above). 1800 if (DynamicOrOrdered) 1801 EmitIgnoredExpr(LoopArgs.Init); 1802 1803 // Create a block for the increment. 1804 auto Continue = getJumpDestInCurrentScope("omp.dispatch.inc"); 1805 BreakContinueStack.push_back(BreakContinue(LoopExit, Continue)); 1806 1807 // Generate !llvm.loop.parallel metadata for loads and stores for loops 1808 // with dynamic/guided scheduling and without ordered clause. 1809 if (!isOpenMPSimdDirective(S.getDirectiveKind())) 1810 LoopStack.setParallel(!IsMonotonic); 1811 else 1812 EmitOMPSimdInit(S, IsMonotonic); 1813 1814 SourceLocation Loc = S.getLocStart(); 1815 1816 // when 'distribute' is not combined with a 'for': 1817 // while (idx <= UB) { BODY; ++idx; } 1818 // when 'distribute' is combined with a 'for' 1819 // (e.g. 'distribute parallel for') 1820 // while (idx <= UB) { <CodeGen rest of pragma>; idx += ST; } 1821 EmitOMPInnerLoop( 1822 S, LoopScope.requiresCleanups(), LoopArgs.Cond, LoopArgs.IncExpr, 1823 [&S, LoopExit, &CodeGenLoop](CodeGenFunction &CGF) { 1824 CodeGenLoop(CGF, S, LoopExit); 1825 }, 1826 [IVSize, IVSigned, Loc, &CodeGenOrdered](CodeGenFunction &CGF) { 1827 CodeGenOrdered(CGF, Loc, IVSize, IVSigned); 1828 }); 1829 1830 EmitBlock(Continue.getBlock()); 1831 BreakContinueStack.pop_back(); 1832 if (!DynamicOrOrdered) { 1833 // Emit "LB = LB + Stride", "UB = UB + Stride". 1834 EmitIgnoredExpr(LoopArgs.NextLB); 1835 EmitIgnoredExpr(LoopArgs.NextUB); 1836 } 1837 1838 EmitBranch(CondBlock); 1839 LoopStack.pop(); 1840 // Emit the fall-through block. 1841 EmitBlock(LoopExit.getBlock()); 1842 1843 // Tell the runtime we are done. 1844 auto &&CodeGen = [DynamicOrOrdered, &S](CodeGenFunction &CGF) { 1845 if (!DynamicOrOrdered) 1846 CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getLocEnd(), 1847 S.getDirectiveKind()); 1848 }; 1849 OMPCancelStack.emitExit(*this, S.getDirectiveKind(), CodeGen); 1850 } 1851 1852 void CodeGenFunction::EmitOMPForOuterLoop( 1853 const OpenMPScheduleTy &ScheduleKind, bool IsMonotonic, 1854 const OMPLoopDirective &S, OMPPrivateScope &LoopScope, bool Ordered, 1855 const OMPLoopArguments &LoopArgs, 1856 const CodeGenDispatchBoundsTy &CGDispatchBounds) { 1857 auto &RT = CGM.getOpenMPRuntime(); 1858 1859 // Dynamic scheduling of the outer loop (dynamic, guided, auto, runtime). 1860 const bool DynamicOrOrdered = 1861 Ordered || RT.isDynamic(ScheduleKind.Schedule); 1862 1863 assert((Ordered || 1864 !RT.isStaticNonchunked(ScheduleKind.Schedule, 1865 LoopArgs.Chunk != nullptr)) && 1866 "static non-chunked schedule does not need outer loop"); 1867 1868 // Emit outer loop. 1869 // 1870 // OpenMP [2.7.1, Loop Construct, Description, table 2-1] 1871 // When schedule(dynamic,chunk_size) is specified, the iterations are 1872 // distributed to threads in the team in chunks as the threads request them. 1873 // Each thread executes a chunk of iterations, then requests another chunk, 1874 // until no chunks remain to be distributed. Each chunk contains chunk_size 1875 // iterations, except for the last chunk to be distributed, which may have 1876 // fewer iterations. When no chunk_size is specified, it defaults to 1. 1877 // 1878 // When schedule(guided,chunk_size) is specified, the iterations are assigned 1879 // to threads in the team in chunks as the executing threads request them. 1880 // Each thread executes a chunk of iterations, then requests another chunk, 1881 // until no chunks remain to be assigned. For a chunk_size of 1, the size of 1882 // each chunk is proportional to the number of unassigned iterations divided 1883 // by the number of threads in the team, decreasing to 1. For a chunk_size 1884 // with value k (greater than 1), the size of each chunk is determined in the 1885 // same way, with the restriction that the chunks do not contain fewer than k 1886 // iterations (except for the last chunk to be assigned, which may have fewer 1887 // than k iterations). 1888 // 1889 // When schedule(auto) is specified, the decision regarding scheduling is 1890 // delegated to the compiler and/or runtime system. The programmer gives the 1891 // implementation the freedom to choose any possible mapping of iterations to 1892 // threads in the team. 1893 // 1894 // When schedule(runtime) is specified, the decision regarding scheduling is 1895 // deferred until run time, and the schedule and chunk size are taken from the 1896 // run-sched-var ICV. If the ICV is set to auto, the schedule is 1897 // implementation defined 1898 // 1899 // while(__kmpc_dispatch_next(&LB, &UB)) { 1900 // idx = LB; 1901 // while (idx <= UB) { BODY; ++idx; 1902 // __kmpc_dispatch_fini_(4|8)[u](); // For ordered loops only. 1903 // } // inner loop 1904 // } 1905 // 1906 // OpenMP [2.7.1, Loop Construct, Description, table 2-1] 1907 // When schedule(static, chunk_size) is specified, iterations are divided into 1908 // chunks of size chunk_size, and the chunks are assigned to the threads in 1909 // the team in a round-robin fashion in the order of the thread number. 1910 // 1911 // while(UB = min(UB, GlobalUB), idx = LB, idx < UB) { 1912 // while (idx <= UB) { BODY; ++idx; } // inner loop 1913 // LB = LB + ST; 1914 // UB = UB + ST; 1915 // } 1916 // 1917 1918 const Expr *IVExpr = S.getIterationVariable(); 1919 const unsigned IVSize = getContext().getTypeSize(IVExpr->getType()); 1920 const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation(); 1921 1922 if (DynamicOrOrdered) { 1923 auto DispatchBounds = CGDispatchBounds(*this, S, LoopArgs.LB, LoopArgs.UB); 1924 llvm::Value *LBVal = DispatchBounds.first; 1925 llvm::Value *UBVal = DispatchBounds.second; 1926 CGOpenMPRuntime::DispatchRTInput DipatchRTInputValues = {LBVal, UBVal, 1927 LoopArgs.Chunk}; 1928 RT.emitForDispatchInit(*this, S.getLocStart(), ScheduleKind, IVSize, 1929 IVSigned, Ordered, DipatchRTInputValues); 1930 } else { 1931 CGOpenMPRuntime::StaticRTInput StaticInit( 1932 IVSize, IVSigned, Ordered, LoopArgs.IL, LoopArgs.LB, LoopArgs.UB, 1933 LoopArgs.ST, LoopArgs.Chunk); 1934 RT.emitForStaticInit(*this, S.getLocStart(), S.getDirectiveKind(), 1935 ScheduleKind, StaticInit); 1936 } 1937 1938 auto &&CodeGenOrdered = [Ordered](CodeGenFunction &CGF, SourceLocation Loc, 1939 const unsigned IVSize, 1940 const bool IVSigned) { 1941 if (Ordered) { 1942 CGF.CGM.getOpenMPRuntime().emitForOrderedIterationEnd(CGF, Loc, IVSize, 1943 IVSigned); 1944 } 1945 }; 1946 1947 OMPLoopArguments OuterLoopArgs(LoopArgs.LB, LoopArgs.UB, LoopArgs.ST, 1948 LoopArgs.IL, LoopArgs.Chunk, LoopArgs.EUB); 1949 OuterLoopArgs.IncExpr = S.getInc(); 1950 OuterLoopArgs.Init = S.getInit(); 1951 OuterLoopArgs.Cond = S.getCond(); 1952 OuterLoopArgs.NextLB = S.getNextLowerBound(); 1953 OuterLoopArgs.NextUB = S.getNextUpperBound(); 1954 EmitOMPOuterLoop(DynamicOrOrdered, IsMonotonic, S, LoopScope, OuterLoopArgs, 1955 emitOMPLoopBodyWithStopPoint, CodeGenOrdered); 1956 } 1957 1958 static void emitEmptyOrdered(CodeGenFunction &, SourceLocation Loc, 1959 const unsigned IVSize, const bool IVSigned) {} 1960 1961 void CodeGenFunction::EmitOMPDistributeOuterLoop( 1962 OpenMPDistScheduleClauseKind ScheduleKind, const OMPLoopDirective &S, 1963 OMPPrivateScope &LoopScope, const OMPLoopArguments &LoopArgs, 1964 const CodeGenLoopTy &CodeGenLoopContent) { 1965 1966 auto &RT = CGM.getOpenMPRuntime(); 1967 1968 // Emit outer loop. 1969 // Same behavior as a OMPForOuterLoop, except that schedule cannot be 1970 // dynamic 1971 // 1972 1973 const Expr *IVExpr = S.getIterationVariable(); 1974 const unsigned IVSize = getContext().getTypeSize(IVExpr->getType()); 1975 const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation(); 1976 1977 CGOpenMPRuntime::StaticRTInput StaticInit( 1978 IVSize, IVSigned, /* Ordered = */ false, LoopArgs.IL, LoopArgs.LB, 1979 LoopArgs.UB, LoopArgs.ST, LoopArgs.Chunk); 1980 RT.emitDistributeStaticInit(*this, S.getLocStart(), ScheduleKind, StaticInit); 1981 1982 // for combined 'distribute' and 'for' the increment expression of distribute 1983 // is store in DistInc. For 'distribute' alone, it is in Inc. 1984 Expr *IncExpr; 1985 if (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind())) 1986 IncExpr = S.getDistInc(); 1987 else 1988 IncExpr = S.getInc(); 1989 1990 // this routine is shared by 'omp distribute parallel for' and 1991 // 'omp distribute': select the right EUB expression depending on the 1992 // directive 1993 OMPLoopArguments OuterLoopArgs; 1994 OuterLoopArgs.LB = LoopArgs.LB; 1995 OuterLoopArgs.UB = LoopArgs.UB; 1996 OuterLoopArgs.ST = LoopArgs.ST; 1997 OuterLoopArgs.IL = LoopArgs.IL; 1998 OuterLoopArgs.Chunk = LoopArgs.Chunk; 1999 OuterLoopArgs.EUB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 2000 ? S.getCombinedEnsureUpperBound() 2001 : S.getEnsureUpperBound(); 2002 OuterLoopArgs.IncExpr = IncExpr; 2003 OuterLoopArgs.Init = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 2004 ? S.getCombinedInit() 2005 : S.getInit(); 2006 OuterLoopArgs.Cond = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 2007 ? S.getCombinedCond() 2008 : S.getCond(); 2009 OuterLoopArgs.NextLB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 2010 ? S.getCombinedNextLowerBound() 2011 : S.getNextLowerBound(); 2012 OuterLoopArgs.NextUB = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 2013 ? S.getCombinedNextUpperBound() 2014 : S.getNextUpperBound(); 2015 2016 EmitOMPOuterLoop(/* DynamicOrOrdered = */ false, /* IsMonotonic = */ false, S, 2017 LoopScope, OuterLoopArgs, CodeGenLoopContent, 2018 emitEmptyOrdered); 2019 } 2020 2021 static std::pair<LValue, LValue> 2022 emitDistributeParallelForInnerBounds(CodeGenFunction &CGF, 2023 const OMPExecutableDirective &S) { 2024 const OMPLoopDirective &LS = cast<OMPLoopDirective>(S); 2025 LValue LB = 2026 EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getLowerBoundVariable())); 2027 LValue UB = 2028 EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getUpperBoundVariable())); 2029 2030 // When composing 'distribute' with 'for' (e.g. as in 'distribute 2031 // parallel for') we need to use the 'distribute' 2032 // chunk lower and upper bounds rather than the whole loop iteration 2033 // space. These are parameters to the outlined function for 'parallel' 2034 // and we copy the bounds of the previous schedule into the 2035 // the current ones. 2036 LValue PrevLB = CGF.EmitLValue(LS.getPrevLowerBoundVariable()); 2037 LValue PrevUB = CGF.EmitLValue(LS.getPrevUpperBoundVariable()); 2038 llvm::Value *PrevLBVal = CGF.EmitLoadOfScalar( 2039 PrevLB, LS.getPrevLowerBoundVariable()->getExprLoc()); 2040 PrevLBVal = CGF.EmitScalarConversion( 2041 PrevLBVal, LS.getPrevLowerBoundVariable()->getType(), 2042 LS.getIterationVariable()->getType(), 2043 LS.getPrevLowerBoundVariable()->getExprLoc()); 2044 llvm::Value *PrevUBVal = CGF.EmitLoadOfScalar( 2045 PrevUB, LS.getPrevUpperBoundVariable()->getExprLoc()); 2046 PrevUBVal = CGF.EmitScalarConversion( 2047 PrevUBVal, LS.getPrevUpperBoundVariable()->getType(), 2048 LS.getIterationVariable()->getType(), 2049 LS.getPrevUpperBoundVariable()->getExprLoc()); 2050 2051 CGF.EmitStoreOfScalar(PrevLBVal, LB); 2052 CGF.EmitStoreOfScalar(PrevUBVal, UB); 2053 2054 return {LB, UB}; 2055 } 2056 2057 /// if the 'for' loop has a dispatch schedule (e.g. dynamic, guided) then 2058 /// we need to use the LB and UB expressions generated by the worksharing 2059 /// code generation support, whereas in non combined situations we would 2060 /// just emit 0 and the LastIteration expression 2061 /// This function is necessary due to the difference of the LB and UB 2062 /// types for the RT emission routines for 'for_static_init' and 2063 /// 'for_dispatch_init' 2064 static std::pair<llvm::Value *, llvm::Value *> 2065 emitDistributeParallelForDispatchBounds(CodeGenFunction &CGF, 2066 const OMPExecutableDirective &S, 2067 Address LB, Address UB) { 2068 const OMPLoopDirective &LS = cast<OMPLoopDirective>(S); 2069 const Expr *IVExpr = LS.getIterationVariable(); 2070 // when implementing a dynamic schedule for a 'for' combined with a 2071 // 'distribute' (e.g. 'distribute parallel for'), the 'for' loop 2072 // is not normalized as each team only executes its own assigned 2073 // distribute chunk 2074 QualType IteratorTy = IVExpr->getType(); 2075 llvm::Value *LBVal = 2076 CGF.EmitLoadOfScalar(LB, /*Volatile=*/false, IteratorTy, S.getLocStart()); 2077 llvm::Value *UBVal = 2078 CGF.EmitLoadOfScalar(UB, /*Volatile=*/false, IteratorTy, S.getLocStart()); 2079 return {LBVal, UBVal}; 2080 } 2081 2082 static void emitDistributeParallelForDistributeInnerBoundParams( 2083 CodeGenFunction &CGF, const OMPExecutableDirective &S, 2084 llvm::SmallVectorImpl<llvm::Value *> &CapturedVars) { 2085 const auto &Dir = cast<OMPLoopDirective>(S); 2086 LValue LB = 2087 CGF.EmitLValue(cast<DeclRefExpr>(Dir.getCombinedLowerBoundVariable())); 2088 auto LBCast = CGF.Builder.CreateIntCast( 2089 CGF.Builder.CreateLoad(LB.getAddress()), CGF.SizeTy, /*isSigned=*/false); 2090 CapturedVars.push_back(LBCast); 2091 LValue UB = 2092 CGF.EmitLValue(cast<DeclRefExpr>(Dir.getCombinedUpperBoundVariable())); 2093 2094 auto UBCast = CGF.Builder.CreateIntCast( 2095 CGF.Builder.CreateLoad(UB.getAddress()), CGF.SizeTy, /*isSigned=*/false); 2096 CapturedVars.push_back(UBCast); 2097 } 2098 2099 static void 2100 emitInnerParallelForWhenCombined(CodeGenFunction &CGF, 2101 const OMPLoopDirective &S, 2102 CodeGenFunction::JumpDest LoopExit) { 2103 auto &&CGInlinedWorksharingLoop = [&S](CodeGenFunction &CGF, 2104 PrePostActionTy &) { 2105 bool HasCancel = false; 2106 if (!isOpenMPSimdDirective(S.getDirectiveKind())) { 2107 if (const auto *D = dyn_cast<OMPTeamsDistributeParallelForDirective>(&S)) 2108 HasCancel = D->hasCancel(); 2109 else if (const auto *D = dyn_cast<OMPDistributeParallelForDirective>(&S)) 2110 HasCancel = D->hasCancel(); 2111 else if (const auto *D = 2112 dyn_cast<OMPTargetTeamsDistributeParallelForDirective>(&S)) 2113 HasCancel = D->hasCancel(); 2114 } 2115 CodeGenFunction::OMPCancelStackRAII CancelRegion(CGF, S.getDirectiveKind(), 2116 HasCancel); 2117 CGF.EmitOMPWorksharingLoop(S, S.getPrevEnsureUpperBound(), 2118 emitDistributeParallelForInnerBounds, 2119 emitDistributeParallelForDispatchBounds); 2120 }; 2121 2122 emitCommonOMPParallelDirective( 2123 CGF, S, 2124 isOpenMPSimdDirective(S.getDirectiveKind()) ? OMPD_for_simd : OMPD_for, 2125 CGInlinedWorksharingLoop, 2126 emitDistributeParallelForDistributeInnerBoundParams); 2127 } 2128 2129 void CodeGenFunction::EmitOMPDistributeParallelForDirective( 2130 const OMPDistributeParallelForDirective &S) { 2131 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2132 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 2133 S.getDistInc()); 2134 }; 2135 OMPLexicalScope Scope(*this, S, OMPD_parallel); 2136 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen); 2137 } 2138 2139 void CodeGenFunction::EmitOMPDistributeParallelForSimdDirective( 2140 const OMPDistributeParallelForSimdDirective &S) { 2141 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2142 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 2143 S.getDistInc()); 2144 }; 2145 OMPLexicalScope Scope(*this, S, OMPD_parallel); 2146 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen); 2147 } 2148 2149 void CodeGenFunction::EmitOMPDistributeSimdDirective( 2150 const OMPDistributeSimdDirective &S) { 2151 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2152 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 2153 }; 2154 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2155 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen); 2156 } 2157 2158 void CodeGenFunction::EmitOMPTargetSimdDeviceFunction( 2159 CodeGenModule &CGM, StringRef ParentName, const OMPTargetSimdDirective &S) { 2160 // Emit SPMD target parallel for region as a standalone region. 2161 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 2162 emitOMPSimdRegion(CGF, S, Action); 2163 }; 2164 llvm::Function *Fn; 2165 llvm::Constant *Addr; 2166 // Emit target region as a standalone region. 2167 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 2168 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 2169 assert(Fn && Addr && "Target device function emission failed."); 2170 } 2171 2172 void CodeGenFunction::EmitOMPTargetSimdDirective( 2173 const OMPTargetSimdDirective &S) { 2174 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 2175 emitOMPSimdRegion(CGF, S, Action); 2176 }; 2177 emitCommonOMPTargetDirective(*this, S, CodeGen); 2178 } 2179 2180 namespace { 2181 struct ScheduleKindModifiersTy { 2182 OpenMPScheduleClauseKind Kind; 2183 OpenMPScheduleClauseModifier M1; 2184 OpenMPScheduleClauseModifier M2; 2185 ScheduleKindModifiersTy(OpenMPScheduleClauseKind Kind, 2186 OpenMPScheduleClauseModifier M1, 2187 OpenMPScheduleClauseModifier M2) 2188 : Kind(Kind), M1(M1), M2(M2) {} 2189 }; 2190 } // namespace 2191 2192 bool CodeGenFunction::EmitOMPWorksharingLoop( 2193 const OMPLoopDirective &S, Expr *EUB, 2194 const CodeGenLoopBoundsTy &CodeGenLoopBounds, 2195 const CodeGenDispatchBoundsTy &CGDispatchBounds) { 2196 // Emit the loop iteration variable. 2197 auto IVExpr = cast<DeclRefExpr>(S.getIterationVariable()); 2198 auto IVDecl = cast<VarDecl>(IVExpr->getDecl()); 2199 EmitVarDecl(*IVDecl); 2200 2201 // Emit the iterations count variable. 2202 // If it is not a variable, Sema decided to calculate iterations count on each 2203 // iteration (e.g., it is foldable into a constant). 2204 if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) { 2205 EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl())); 2206 // Emit calculation of the iterations count. 2207 EmitIgnoredExpr(S.getCalcLastIteration()); 2208 } 2209 2210 auto &RT = CGM.getOpenMPRuntime(); 2211 2212 bool HasLastprivateClause; 2213 // Check pre-condition. 2214 { 2215 OMPLoopScope PreInitScope(*this, S); 2216 // Skip the entire loop if we don't meet the precondition. 2217 // If the condition constant folds and can be elided, avoid emitting the 2218 // whole loop. 2219 bool CondConstant; 2220 llvm::BasicBlock *ContBlock = nullptr; 2221 if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) { 2222 if (!CondConstant) 2223 return false; 2224 } else { 2225 auto *ThenBlock = createBasicBlock("omp.precond.then"); 2226 ContBlock = createBasicBlock("omp.precond.end"); 2227 emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock, 2228 getProfileCount(&S)); 2229 EmitBlock(ThenBlock); 2230 incrementProfileCounter(&S); 2231 } 2232 2233 RunCleanupsScope DoacrossCleanupScope(*this); 2234 bool Ordered = false; 2235 if (auto *OrderedClause = S.getSingleClause<OMPOrderedClause>()) { 2236 if (OrderedClause->getNumForLoops()) 2237 RT.emitDoacrossInit(*this, S); 2238 else 2239 Ordered = true; 2240 } 2241 2242 llvm::DenseSet<const Expr *> EmittedFinals; 2243 emitAlignedClause(*this, S); 2244 bool HasLinears = EmitOMPLinearClauseInit(S); 2245 // Emit helper vars inits. 2246 2247 std::pair<LValue, LValue> Bounds = CodeGenLoopBounds(*this, S); 2248 LValue LB = Bounds.first; 2249 LValue UB = Bounds.second; 2250 LValue ST = 2251 EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable())); 2252 LValue IL = 2253 EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable())); 2254 2255 // Emit 'then' code. 2256 { 2257 OMPPrivateScope LoopScope(*this); 2258 if (EmitOMPFirstprivateClause(S, LoopScope) || HasLinears) { 2259 // Emit implicit barrier to synchronize threads and avoid data races on 2260 // initialization of firstprivate variables and post-update of 2261 // lastprivate variables. 2262 CGM.getOpenMPRuntime().emitBarrierCall( 2263 *this, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false, 2264 /*ForceSimpleCall=*/true); 2265 } 2266 EmitOMPPrivateClause(S, LoopScope); 2267 HasLastprivateClause = EmitOMPLastprivateClauseInit(S, LoopScope); 2268 EmitOMPReductionClauseInit(S, LoopScope); 2269 EmitOMPPrivateLoopCounters(S, LoopScope); 2270 EmitOMPLinearClause(S, LoopScope); 2271 (void)LoopScope.Privatize(); 2272 2273 // Detect the loop schedule kind and chunk. 2274 llvm::Value *Chunk = nullptr; 2275 OpenMPScheduleTy ScheduleKind; 2276 if (auto *C = S.getSingleClause<OMPScheduleClause>()) { 2277 ScheduleKind.Schedule = C->getScheduleKind(); 2278 ScheduleKind.M1 = C->getFirstScheduleModifier(); 2279 ScheduleKind.M2 = C->getSecondScheduleModifier(); 2280 if (const auto *Ch = C->getChunkSize()) { 2281 Chunk = EmitScalarExpr(Ch); 2282 Chunk = EmitScalarConversion(Chunk, Ch->getType(), 2283 S.getIterationVariable()->getType(), 2284 S.getLocStart()); 2285 } 2286 } 2287 const unsigned IVSize = getContext().getTypeSize(IVExpr->getType()); 2288 const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation(); 2289 // OpenMP 4.5, 2.7.1 Loop Construct, Description. 2290 // If the static schedule kind is specified or if the ordered clause is 2291 // specified, and if no monotonic modifier is specified, the effect will 2292 // be as if the monotonic modifier was specified. 2293 if (RT.isStaticNonchunked(ScheduleKind.Schedule, 2294 /* Chunked */ Chunk != nullptr) && 2295 !Ordered) { 2296 if (isOpenMPSimdDirective(S.getDirectiveKind())) 2297 EmitOMPSimdInit(S, /*IsMonotonic=*/true); 2298 // OpenMP [2.7.1, Loop Construct, Description, table 2-1] 2299 // When no chunk_size is specified, the iteration space is divided into 2300 // chunks that are approximately equal in size, and at most one chunk is 2301 // distributed to each thread. Note that the size of the chunks is 2302 // unspecified in this case. 2303 CGOpenMPRuntime::StaticRTInput StaticInit( 2304 IVSize, IVSigned, Ordered, IL.getAddress(), LB.getAddress(), 2305 UB.getAddress(), ST.getAddress()); 2306 RT.emitForStaticInit(*this, S.getLocStart(), S.getDirectiveKind(), 2307 ScheduleKind, StaticInit); 2308 auto LoopExit = 2309 getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit")); 2310 // UB = min(UB, GlobalUB); 2311 EmitIgnoredExpr(S.getEnsureUpperBound()); 2312 // IV = LB; 2313 EmitIgnoredExpr(S.getInit()); 2314 // while (idx <= UB) { BODY; ++idx; } 2315 EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(), 2316 S.getInc(), 2317 [&S, LoopExit](CodeGenFunction &CGF) { 2318 CGF.EmitOMPLoopBody(S, LoopExit); 2319 CGF.EmitStopPoint(&S); 2320 }, 2321 [](CodeGenFunction &) {}); 2322 EmitBlock(LoopExit.getBlock()); 2323 // Tell the runtime we are done. 2324 auto &&CodeGen = [&S](CodeGenFunction &CGF) { 2325 CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getLocEnd(), 2326 S.getDirectiveKind()); 2327 }; 2328 OMPCancelStack.emitExit(*this, S.getDirectiveKind(), CodeGen); 2329 } else { 2330 const bool IsMonotonic = 2331 Ordered || ScheduleKind.Schedule == OMPC_SCHEDULE_static || 2332 ScheduleKind.Schedule == OMPC_SCHEDULE_unknown || 2333 ScheduleKind.M1 == OMPC_SCHEDULE_MODIFIER_monotonic || 2334 ScheduleKind.M2 == OMPC_SCHEDULE_MODIFIER_monotonic; 2335 // Emit the outer loop, which requests its work chunk [LB..UB] from 2336 // runtime and runs the inner loop to process it. 2337 const OMPLoopArguments LoopArguments(LB.getAddress(), UB.getAddress(), 2338 ST.getAddress(), IL.getAddress(), 2339 Chunk, EUB); 2340 EmitOMPForOuterLoop(ScheduleKind, IsMonotonic, S, LoopScope, Ordered, 2341 LoopArguments, CGDispatchBounds); 2342 } 2343 if (isOpenMPSimdDirective(S.getDirectiveKind())) { 2344 EmitOMPSimdFinal(S, 2345 [&](CodeGenFunction &CGF) -> llvm::Value * { 2346 return CGF.Builder.CreateIsNotNull( 2347 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 2348 }); 2349 } 2350 EmitOMPReductionClauseFinal( 2351 S, /*ReductionKind=*/isOpenMPSimdDirective(S.getDirectiveKind()) 2352 ? /*Parallel and Simd*/ OMPD_parallel_for_simd 2353 : /*Parallel only*/ OMPD_parallel); 2354 // Emit post-update of the reduction variables if IsLastIter != 0. 2355 emitPostUpdateForReductionClause( 2356 *this, S, [&](CodeGenFunction &CGF) -> llvm::Value * { 2357 return CGF.Builder.CreateIsNotNull( 2358 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 2359 }); 2360 // Emit final copy of the lastprivate variables if IsLastIter != 0. 2361 if (HasLastprivateClause) 2362 EmitOMPLastprivateClauseFinal( 2363 S, isOpenMPSimdDirective(S.getDirectiveKind()), 2364 Builder.CreateIsNotNull(EmitLoadOfScalar(IL, S.getLocStart()))); 2365 } 2366 EmitOMPLinearClauseFinal(S, [&](CodeGenFunction &CGF) -> llvm::Value * { 2367 return CGF.Builder.CreateIsNotNull( 2368 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 2369 }); 2370 DoacrossCleanupScope.ForceCleanup(); 2371 // We're now done with the loop, so jump to the continuation block. 2372 if (ContBlock) { 2373 EmitBranch(ContBlock); 2374 EmitBlock(ContBlock, true); 2375 } 2376 } 2377 return HasLastprivateClause; 2378 } 2379 2380 /// The following two functions generate expressions for the loop lower 2381 /// and upper bounds in case of static and dynamic (dispatch) schedule 2382 /// of the associated 'for' or 'distribute' loop. 2383 static std::pair<LValue, LValue> 2384 emitForLoopBounds(CodeGenFunction &CGF, const OMPExecutableDirective &S) { 2385 const OMPLoopDirective &LS = cast<OMPLoopDirective>(S); 2386 LValue LB = 2387 EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getLowerBoundVariable())); 2388 LValue UB = 2389 EmitOMPHelperVar(CGF, cast<DeclRefExpr>(LS.getUpperBoundVariable())); 2390 return {LB, UB}; 2391 } 2392 2393 /// When dealing with dispatch schedules (e.g. dynamic, guided) we do not 2394 /// consider the lower and upper bound expressions generated by the 2395 /// worksharing loop support, but we use 0 and the iteration space size as 2396 /// constants 2397 static std::pair<llvm::Value *, llvm::Value *> 2398 emitDispatchForLoopBounds(CodeGenFunction &CGF, const OMPExecutableDirective &S, 2399 Address LB, Address UB) { 2400 const OMPLoopDirective &LS = cast<OMPLoopDirective>(S); 2401 const Expr *IVExpr = LS.getIterationVariable(); 2402 const unsigned IVSize = CGF.getContext().getTypeSize(IVExpr->getType()); 2403 llvm::Value *LBVal = CGF.Builder.getIntN(IVSize, 0); 2404 llvm::Value *UBVal = CGF.EmitScalarExpr(LS.getLastIteration()); 2405 return {LBVal, UBVal}; 2406 } 2407 2408 void CodeGenFunction::EmitOMPForDirective(const OMPForDirective &S) { 2409 bool HasLastprivates = false; 2410 auto &&CodeGen = [&S, &HasLastprivates](CodeGenFunction &CGF, 2411 PrePostActionTy &) { 2412 OMPCancelStackRAII CancelRegion(CGF, OMPD_for, S.hasCancel()); 2413 HasLastprivates = CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), 2414 emitForLoopBounds, 2415 emitDispatchForLoopBounds); 2416 }; 2417 { 2418 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2419 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_for, CodeGen, 2420 S.hasCancel()); 2421 } 2422 2423 // Emit an implicit barrier at the end. 2424 if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates) { 2425 CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_for); 2426 } 2427 } 2428 2429 void CodeGenFunction::EmitOMPForSimdDirective(const OMPForSimdDirective &S) { 2430 bool HasLastprivates = false; 2431 auto &&CodeGen = [&S, &HasLastprivates](CodeGenFunction &CGF, 2432 PrePostActionTy &) { 2433 HasLastprivates = CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), 2434 emitForLoopBounds, 2435 emitDispatchForLoopBounds); 2436 }; 2437 { 2438 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2439 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_simd, CodeGen); 2440 } 2441 2442 // Emit an implicit barrier at the end. 2443 if (!S.getSingleClause<OMPNowaitClause>() || HasLastprivates) { 2444 CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_for); 2445 } 2446 } 2447 2448 static LValue createSectionLVal(CodeGenFunction &CGF, QualType Ty, 2449 const Twine &Name, 2450 llvm::Value *Init = nullptr) { 2451 auto LVal = CGF.MakeAddrLValue(CGF.CreateMemTemp(Ty, Name), Ty); 2452 if (Init) 2453 CGF.EmitStoreThroughLValue(RValue::get(Init), LVal, /*isInit*/ true); 2454 return LVal; 2455 } 2456 2457 void CodeGenFunction::EmitSections(const OMPExecutableDirective &S) { 2458 const Stmt *Stmt = S.getInnermostCapturedStmt()->getCapturedStmt(); 2459 const auto *CS = dyn_cast<CompoundStmt>(Stmt); 2460 bool HasLastprivates = false; 2461 auto &&CodeGen = [&S, Stmt, CS, &HasLastprivates](CodeGenFunction &CGF, 2462 PrePostActionTy &) { 2463 auto &C = CGF.CGM.getContext(); 2464 auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1); 2465 // Emit helper vars inits. 2466 LValue LB = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.lb.", 2467 CGF.Builder.getInt32(0)); 2468 auto *GlobalUBVal = CS != nullptr ? CGF.Builder.getInt32(CS->size() - 1) 2469 : CGF.Builder.getInt32(0); 2470 LValue UB = 2471 createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.ub.", GlobalUBVal); 2472 LValue ST = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.st.", 2473 CGF.Builder.getInt32(1)); 2474 LValue IL = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.il.", 2475 CGF.Builder.getInt32(0)); 2476 // Loop counter. 2477 LValue IV = createSectionLVal(CGF, KmpInt32Ty, ".omp.sections.iv."); 2478 OpaqueValueExpr IVRefExpr(S.getLocStart(), KmpInt32Ty, VK_LValue); 2479 CodeGenFunction::OpaqueValueMapping OpaqueIV(CGF, &IVRefExpr, IV); 2480 OpaqueValueExpr UBRefExpr(S.getLocStart(), KmpInt32Ty, VK_LValue); 2481 CodeGenFunction::OpaqueValueMapping OpaqueUB(CGF, &UBRefExpr, UB); 2482 // Generate condition for loop. 2483 BinaryOperator Cond(&IVRefExpr, &UBRefExpr, BO_LE, C.BoolTy, VK_RValue, 2484 OK_Ordinary, S.getLocStart(), FPOptions()); 2485 // Increment for loop counter. 2486 UnaryOperator Inc(&IVRefExpr, UO_PreInc, KmpInt32Ty, VK_RValue, OK_Ordinary, 2487 S.getLocStart(), true); 2488 auto BodyGen = [Stmt, CS, &S, &IV](CodeGenFunction &CGF) { 2489 // Iterate through all sections and emit a switch construct: 2490 // switch (IV) { 2491 // case 0: 2492 // <SectionStmt[0]>; 2493 // break; 2494 // ... 2495 // case <NumSection> - 1: 2496 // <SectionStmt[<NumSection> - 1]>; 2497 // break; 2498 // } 2499 // .omp.sections.exit: 2500 auto *ExitBB = CGF.createBasicBlock(".omp.sections.exit"); 2501 auto *SwitchStmt = 2502 CGF.Builder.CreateSwitch(CGF.EmitLoadOfScalar(IV, S.getLocStart()), 2503 ExitBB, CS == nullptr ? 1 : CS->size()); 2504 if (CS) { 2505 unsigned CaseNumber = 0; 2506 for (auto *SubStmt : CS->children()) { 2507 auto CaseBB = CGF.createBasicBlock(".omp.sections.case"); 2508 CGF.EmitBlock(CaseBB); 2509 SwitchStmt->addCase(CGF.Builder.getInt32(CaseNumber), CaseBB); 2510 CGF.EmitStmt(SubStmt); 2511 CGF.EmitBranch(ExitBB); 2512 ++CaseNumber; 2513 } 2514 } else { 2515 auto CaseBB = CGF.createBasicBlock(".omp.sections.case"); 2516 CGF.EmitBlock(CaseBB); 2517 SwitchStmt->addCase(CGF.Builder.getInt32(0), CaseBB); 2518 CGF.EmitStmt(Stmt); 2519 CGF.EmitBranch(ExitBB); 2520 } 2521 CGF.EmitBlock(ExitBB, /*IsFinished=*/true); 2522 }; 2523 2524 CodeGenFunction::OMPPrivateScope LoopScope(CGF); 2525 if (CGF.EmitOMPFirstprivateClause(S, LoopScope)) { 2526 // Emit implicit barrier to synchronize threads and avoid data races on 2527 // initialization of firstprivate variables and post-update of lastprivate 2528 // variables. 2529 CGF.CGM.getOpenMPRuntime().emitBarrierCall( 2530 CGF, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false, 2531 /*ForceSimpleCall=*/true); 2532 } 2533 CGF.EmitOMPPrivateClause(S, LoopScope); 2534 HasLastprivates = CGF.EmitOMPLastprivateClauseInit(S, LoopScope); 2535 CGF.EmitOMPReductionClauseInit(S, LoopScope); 2536 (void)LoopScope.Privatize(); 2537 2538 // Emit static non-chunked loop. 2539 OpenMPScheduleTy ScheduleKind; 2540 ScheduleKind.Schedule = OMPC_SCHEDULE_static; 2541 CGOpenMPRuntime::StaticRTInput StaticInit( 2542 /*IVSize=*/32, /*IVSigned=*/true, /*Ordered=*/false, IL.getAddress(), 2543 LB.getAddress(), UB.getAddress(), ST.getAddress()); 2544 CGF.CGM.getOpenMPRuntime().emitForStaticInit( 2545 CGF, S.getLocStart(), S.getDirectiveKind(), ScheduleKind, StaticInit); 2546 // UB = min(UB, GlobalUB); 2547 auto *UBVal = CGF.EmitLoadOfScalar(UB, S.getLocStart()); 2548 auto *MinUBGlobalUB = CGF.Builder.CreateSelect( 2549 CGF.Builder.CreateICmpSLT(UBVal, GlobalUBVal), UBVal, GlobalUBVal); 2550 CGF.EmitStoreOfScalar(MinUBGlobalUB, UB); 2551 // IV = LB; 2552 CGF.EmitStoreOfScalar(CGF.EmitLoadOfScalar(LB, S.getLocStart()), IV); 2553 // while (idx <= UB) { BODY; ++idx; } 2554 CGF.EmitOMPInnerLoop(S, /*RequiresCleanup=*/false, &Cond, &Inc, BodyGen, 2555 [](CodeGenFunction &) {}); 2556 // Tell the runtime we are done. 2557 auto &&CodeGen = [&S](CodeGenFunction &CGF) { 2558 CGF.CGM.getOpenMPRuntime().emitForStaticFinish(CGF, S.getLocEnd(), 2559 S.getDirectiveKind()); 2560 }; 2561 CGF.OMPCancelStack.emitExit(CGF, S.getDirectiveKind(), CodeGen); 2562 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel); 2563 // Emit post-update of the reduction variables if IsLastIter != 0. 2564 emitPostUpdateForReductionClause( 2565 CGF, S, [&](CodeGenFunction &CGF) -> llvm::Value * { 2566 return CGF.Builder.CreateIsNotNull( 2567 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 2568 }); 2569 2570 // Emit final copy of the lastprivate variables if IsLastIter != 0. 2571 if (HasLastprivates) 2572 CGF.EmitOMPLastprivateClauseFinal( 2573 S, /*NoFinals=*/false, 2574 CGF.Builder.CreateIsNotNull( 2575 CGF.EmitLoadOfScalar(IL, S.getLocStart()))); 2576 }; 2577 2578 bool HasCancel = false; 2579 if (auto *OSD = dyn_cast<OMPSectionsDirective>(&S)) 2580 HasCancel = OSD->hasCancel(); 2581 else if (auto *OPSD = dyn_cast<OMPParallelSectionsDirective>(&S)) 2582 HasCancel = OPSD->hasCancel(); 2583 OMPCancelStackRAII CancelRegion(*this, S.getDirectiveKind(), HasCancel); 2584 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_sections, CodeGen, 2585 HasCancel); 2586 // Emit barrier for lastprivates only if 'sections' directive has 'nowait' 2587 // clause. Otherwise the barrier will be generated by the codegen for the 2588 // directive. 2589 if (HasLastprivates && S.getSingleClause<OMPNowaitClause>()) { 2590 // Emit implicit barrier to synchronize threads and avoid data races on 2591 // initialization of firstprivate variables. 2592 CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), 2593 OMPD_unknown); 2594 } 2595 } 2596 2597 void CodeGenFunction::EmitOMPSectionsDirective(const OMPSectionsDirective &S) { 2598 { 2599 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2600 EmitSections(S); 2601 } 2602 // Emit an implicit barrier at the end. 2603 if (!S.getSingleClause<OMPNowaitClause>()) { 2604 CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), 2605 OMPD_sections); 2606 } 2607 } 2608 2609 void CodeGenFunction::EmitOMPSectionDirective(const OMPSectionDirective &S) { 2610 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2611 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 2612 }; 2613 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2614 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_section, CodeGen, 2615 S.hasCancel()); 2616 } 2617 2618 void CodeGenFunction::EmitOMPSingleDirective(const OMPSingleDirective &S) { 2619 llvm::SmallVector<const Expr *, 8> CopyprivateVars; 2620 llvm::SmallVector<const Expr *, 8> DestExprs; 2621 llvm::SmallVector<const Expr *, 8> SrcExprs; 2622 llvm::SmallVector<const Expr *, 8> AssignmentOps; 2623 // Check if there are any 'copyprivate' clauses associated with this 2624 // 'single' construct. 2625 // Build a list of copyprivate variables along with helper expressions 2626 // (<source>, <destination>, <destination>=<source> expressions) 2627 for (const auto *C : S.getClausesOfKind<OMPCopyprivateClause>()) { 2628 CopyprivateVars.append(C->varlists().begin(), C->varlists().end()); 2629 DestExprs.append(C->destination_exprs().begin(), 2630 C->destination_exprs().end()); 2631 SrcExprs.append(C->source_exprs().begin(), C->source_exprs().end()); 2632 AssignmentOps.append(C->assignment_ops().begin(), 2633 C->assignment_ops().end()); 2634 } 2635 // Emit code for 'single' region along with 'copyprivate' clauses 2636 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 2637 Action.Enter(CGF); 2638 OMPPrivateScope SingleScope(CGF); 2639 (void)CGF.EmitOMPFirstprivateClause(S, SingleScope); 2640 CGF.EmitOMPPrivateClause(S, SingleScope); 2641 (void)SingleScope.Privatize(); 2642 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 2643 }; 2644 { 2645 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2646 CGM.getOpenMPRuntime().emitSingleRegion(*this, CodeGen, S.getLocStart(), 2647 CopyprivateVars, DestExprs, 2648 SrcExprs, AssignmentOps); 2649 } 2650 // Emit an implicit barrier at the end (to avoid data race on firstprivate 2651 // init or if no 'nowait' clause was specified and no 'copyprivate' clause). 2652 if (!S.getSingleClause<OMPNowaitClause>() && CopyprivateVars.empty()) { 2653 CGM.getOpenMPRuntime().emitBarrierCall( 2654 *this, S.getLocStart(), 2655 S.getSingleClause<OMPNowaitClause>() ? OMPD_unknown : OMPD_single); 2656 } 2657 } 2658 2659 void CodeGenFunction::EmitOMPMasterDirective(const OMPMasterDirective &S) { 2660 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 2661 Action.Enter(CGF); 2662 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 2663 }; 2664 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2665 CGM.getOpenMPRuntime().emitMasterRegion(*this, CodeGen, S.getLocStart()); 2666 } 2667 2668 void CodeGenFunction::EmitOMPCriticalDirective(const OMPCriticalDirective &S) { 2669 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 2670 Action.Enter(CGF); 2671 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 2672 }; 2673 Expr *Hint = nullptr; 2674 if (auto *HintClause = S.getSingleClause<OMPHintClause>()) 2675 Hint = HintClause->getHint(); 2676 OMPLexicalScope Scope(*this, S, OMPD_unknown); 2677 CGM.getOpenMPRuntime().emitCriticalRegion(*this, 2678 S.getDirectiveName().getAsString(), 2679 CodeGen, S.getLocStart(), Hint); 2680 } 2681 2682 void CodeGenFunction::EmitOMPParallelForDirective( 2683 const OMPParallelForDirective &S) { 2684 // Emit directive as a combined directive that consists of two implicit 2685 // directives: 'parallel' with 'for' directive. 2686 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2687 OMPCancelStackRAII CancelRegion(CGF, OMPD_parallel_for, S.hasCancel()); 2688 CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds, 2689 emitDispatchForLoopBounds); 2690 }; 2691 emitCommonOMPParallelDirective(*this, S, OMPD_for, CodeGen, 2692 emitEmptyBoundParameters); 2693 } 2694 2695 void CodeGenFunction::EmitOMPParallelForSimdDirective( 2696 const OMPParallelForSimdDirective &S) { 2697 // Emit directive as a combined directive that consists of two implicit 2698 // directives: 'parallel' with 'for' directive. 2699 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2700 CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds, 2701 emitDispatchForLoopBounds); 2702 }; 2703 emitCommonOMPParallelDirective(*this, S, OMPD_simd, CodeGen, 2704 emitEmptyBoundParameters); 2705 } 2706 2707 void CodeGenFunction::EmitOMPParallelSectionsDirective( 2708 const OMPParallelSectionsDirective &S) { 2709 // Emit directive as a combined directive that consists of two implicit 2710 // directives: 'parallel' with 'sections' directive. 2711 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 2712 CGF.EmitSections(S); 2713 }; 2714 emitCommonOMPParallelDirective(*this, S, OMPD_sections, CodeGen, 2715 emitEmptyBoundParameters); 2716 } 2717 2718 void CodeGenFunction::EmitOMPTaskBasedDirective( 2719 const OMPExecutableDirective &S, const OpenMPDirectiveKind CapturedRegion, 2720 const RegionCodeGenTy &BodyGen, const TaskGenTy &TaskGen, 2721 OMPTaskDataTy &Data) { 2722 // Emit outlined function for task construct. 2723 const CapturedStmt *CS = S.getCapturedStmt(CapturedRegion); 2724 auto *I = CS->getCapturedDecl()->param_begin(); 2725 auto *PartId = std::next(I); 2726 auto *TaskT = std::next(I, 4); 2727 // Check if the task is final 2728 if (const auto *Clause = S.getSingleClause<OMPFinalClause>()) { 2729 // If the condition constant folds and can be elided, try to avoid emitting 2730 // the condition and the dead arm of the if/else. 2731 auto *Cond = Clause->getCondition(); 2732 bool CondConstant; 2733 if (ConstantFoldsToSimpleInteger(Cond, CondConstant)) 2734 Data.Final.setInt(CondConstant); 2735 else 2736 Data.Final.setPointer(EvaluateExprAsBool(Cond)); 2737 } else { 2738 // By default the task is not final. 2739 Data.Final.setInt(/*IntVal=*/false); 2740 } 2741 // Check if the task has 'priority' clause. 2742 if (const auto *Clause = S.getSingleClause<OMPPriorityClause>()) { 2743 auto *Prio = Clause->getPriority(); 2744 Data.Priority.setInt(/*IntVal=*/true); 2745 Data.Priority.setPointer(EmitScalarConversion( 2746 EmitScalarExpr(Prio), Prio->getType(), 2747 getContext().getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1), 2748 Prio->getExprLoc())); 2749 } 2750 // The first function argument for tasks is a thread id, the second one is a 2751 // part id (0 for tied tasks, >=0 for untied task). 2752 llvm::DenseSet<const VarDecl *> EmittedAsPrivate; 2753 // Get list of private variables. 2754 for (const auto *C : S.getClausesOfKind<OMPPrivateClause>()) { 2755 auto IRef = C->varlist_begin(); 2756 for (auto *IInit : C->private_copies()) { 2757 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 2758 if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) { 2759 Data.PrivateVars.push_back(*IRef); 2760 Data.PrivateCopies.push_back(IInit); 2761 } 2762 ++IRef; 2763 } 2764 } 2765 EmittedAsPrivate.clear(); 2766 // Get list of firstprivate variables. 2767 for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) { 2768 auto IRef = C->varlist_begin(); 2769 auto IElemInitRef = C->inits().begin(); 2770 for (auto *IInit : C->private_copies()) { 2771 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 2772 if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) { 2773 Data.FirstprivateVars.push_back(*IRef); 2774 Data.FirstprivateCopies.push_back(IInit); 2775 Data.FirstprivateInits.push_back(*IElemInitRef); 2776 } 2777 ++IRef; 2778 ++IElemInitRef; 2779 } 2780 } 2781 // Get list of lastprivate variables (for taskloops). 2782 llvm::DenseMap<const VarDecl *, const DeclRefExpr *> LastprivateDstsOrigs; 2783 for (const auto *C : S.getClausesOfKind<OMPLastprivateClause>()) { 2784 auto IRef = C->varlist_begin(); 2785 auto ID = C->destination_exprs().begin(); 2786 for (auto *IInit : C->private_copies()) { 2787 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*IRef)->getDecl()); 2788 if (EmittedAsPrivate.insert(OrigVD->getCanonicalDecl()).second) { 2789 Data.LastprivateVars.push_back(*IRef); 2790 Data.LastprivateCopies.push_back(IInit); 2791 } 2792 LastprivateDstsOrigs.insert( 2793 {cast<VarDecl>(cast<DeclRefExpr>(*ID)->getDecl()), 2794 cast<DeclRefExpr>(*IRef)}); 2795 ++IRef; 2796 ++ID; 2797 } 2798 } 2799 SmallVector<const Expr *, 4> LHSs; 2800 SmallVector<const Expr *, 4> RHSs; 2801 for (const auto *C : S.getClausesOfKind<OMPReductionClause>()) { 2802 auto IPriv = C->privates().begin(); 2803 auto IRed = C->reduction_ops().begin(); 2804 auto ILHS = C->lhs_exprs().begin(); 2805 auto IRHS = C->rhs_exprs().begin(); 2806 for (const auto *Ref : C->varlists()) { 2807 Data.ReductionVars.emplace_back(Ref); 2808 Data.ReductionCopies.emplace_back(*IPriv); 2809 Data.ReductionOps.emplace_back(*IRed); 2810 LHSs.emplace_back(*ILHS); 2811 RHSs.emplace_back(*IRHS); 2812 std::advance(IPriv, 1); 2813 std::advance(IRed, 1); 2814 std::advance(ILHS, 1); 2815 std::advance(IRHS, 1); 2816 } 2817 } 2818 Data.Reductions = CGM.getOpenMPRuntime().emitTaskReductionInit( 2819 *this, S.getLocStart(), LHSs, RHSs, Data); 2820 // Build list of dependences. 2821 for (const auto *C : S.getClausesOfKind<OMPDependClause>()) 2822 for (auto *IRef : C->varlists()) 2823 Data.Dependences.push_back(std::make_pair(C->getDependencyKind(), IRef)); 2824 auto &&CodeGen = [&Data, &S, CS, &BodyGen, &LastprivateDstsOrigs, 2825 CapturedRegion](CodeGenFunction &CGF, 2826 PrePostActionTy &Action) { 2827 // Set proper addresses for generated private copies. 2828 OMPPrivateScope Scope(CGF); 2829 if (!Data.PrivateVars.empty() || !Data.FirstprivateVars.empty() || 2830 !Data.LastprivateVars.empty()) { 2831 enum { PrivatesParam = 2, CopyFnParam = 3 }; 2832 auto *CopyFn = CGF.Builder.CreateLoad( 2833 CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(3))); 2834 auto *PrivatesPtr = CGF.Builder.CreateLoad( 2835 CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(2))); 2836 // Map privates. 2837 llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> PrivatePtrs; 2838 llvm::SmallVector<llvm::Value *, 16> CallArgs; 2839 CallArgs.push_back(PrivatesPtr); 2840 for (auto *E : Data.PrivateVars) { 2841 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 2842 Address PrivatePtr = CGF.CreateMemTemp( 2843 CGF.getContext().getPointerType(E->getType()), ".priv.ptr.addr"); 2844 PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr)); 2845 CallArgs.push_back(PrivatePtr.getPointer()); 2846 } 2847 for (auto *E : Data.FirstprivateVars) { 2848 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 2849 Address PrivatePtr = 2850 CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()), 2851 ".firstpriv.ptr.addr"); 2852 PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr)); 2853 CallArgs.push_back(PrivatePtr.getPointer()); 2854 } 2855 for (auto *E : Data.LastprivateVars) { 2856 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 2857 Address PrivatePtr = 2858 CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()), 2859 ".lastpriv.ptr.addr"); 2860 PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr)); 2861 CallArgs.push_back(PrivatePtr.getPointer()); 2862 } 2863 CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, S.getLocStart(), 2864 CopyFn, CallArgs); 2865 for (auto &&Pair : LastprivateDstsOrigs) { 2866 auto *OrigVD = cast<VarDecl>(Pair.second->getDecl()); 2867 DeclRefExpr DRE( 2868 const_cast<VarDecl *>(OrigVD), 2869 /*RefersToEnclosingVariableOrCapture=*/CGF.CapturedStmtInfo->lookup( 2870 OrigVD) != nullptr, 2871 Pair.second->getType(), VK_LValue, Pair.second->getExprLoc()); 2872 Scope.addPrivate(Pair.first, [&CGF, &DRE]() { 2873 return CGF.EmitLValue(&DRE).getAddress(); 2874 }); 2875 } 2876 for (auto &&Pair : PrivatePtrs) { 2877 Address Replacement(CGF.Builder.CreateLoad(Pair.second), 2878 CGF.getContext().getDeclAlign(Pair.first)); 2879 Scope.addPrivate(Pair.first, [Replacement]() { return Replacement; }); 2880 } 2881 } 2882 if (Data.Reductions) { 2883 OMPLexicalScope LexScope(CGF, S, CapturedRegion); 2884 ReductionCodeGen RedCG(Data.ReductionVars, Data.ReductionCopies, 2885 Data.ReductionOps); 2886 llvm::Value *ReductionsPtr = CGF.Builder.CreateLoad( 2887 CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(9))); 2888 for (unsigned Cnt = 0, E = Data.ReductionVars.size(); Cnt < E; ++Cnt) { 2889 RedCG.emitSharedLValue(CGF, Cnt); 2890 RedCG.emitAggregateType(CGF, Cnt); 2891 Address Replacement = CGF.CGM.getOpenMPRuntime().getTaskReductionItem( 2892 CGF, S.getLocStart(), ReductionsPtr, RedCG.getSharedLValue(Cnt)); 2893 Replacement = 2894 Address(CGF.EmitScalarConversion( 2895 Replacement.getPointer(), CGF.getContext().VoidPtrTy, 2896 CGF.getContext().getPointerType( 2897 Data.ReductionCopies[Cnt]->getType()), 2898 Data.ReductionCopies[Cnt]->getExprLoc()), 2899 Replacement.getAlignment()); 2900 Replacement = RedCG.adjustPrivateAddress(CGF, Cnt, Replacement); 2901 Scope.addPrivate(RedCG.getBaseDecl(Cnt), 2902 [Replacement]() { return Replacement; }); 2903 // FIXME: This must removed once the runtime library is fixed. 2904 // Emit required threadprivate variables for 2905 // initilizer/combiner/finalizer. 2906 CGF.CGM.getOpenMPRuntime().emitTaskReductionFixups(CGF, S.getLocStart(), 2907 RedCG, Cnt); 2908 } 2909 } 2910 // Privatize all private variables except for in_reduction items. 2911 (void)Scope.Privatize(); 2912 SmallVector<const Expr *, 4> InRedVars; 2913 SmallVector<const Expr *, 4> InRedPrivs; 2914 SmallVector<const Expr *, 4> InRedOps; 2915 SmallVector<const Expr *, 4> TaskgroupDescriptors; 2916 for (const auto *C : S.getClausesOfKind<OMPInReductionClause>()) { 2917 auto IPriv = C->privates().begin(); 2918 auto IRed = C->reduction_ops().begin(); 2919 auto ITD = C->taskgroup_descriptors().begin(); 2920 for (const auto *Ref : C->varlists()) { 2921 InRedVars.emplace_back(Ref); 2922 InRedPrivs.emplace_back(*IPriv); 2923 InRedOps.emplace_back(*IRed); 2924 TaskgroupDescriptors.emplace_back(*ITD); 2925 std::advance(IPriv, 1); 2926 std::advance(IRed, 1); 2927 std::advance(ITD, 1); 2928 } 2929 } 2930 // Privatize in_reduction items here, because taskgroup descriptors must be 2931 // privatized earlier. 2932 OMPPrivateScope InRedScope(CGF); 2933 if (!InRedVars.empty()) { 2934 ReductionCodeGen RedCG(InRedVars, InRedPrivs, InRedOps); 2935 for (unsigned Cnt = 0, E = InRedVars.size(); Cnt < E; ++Cnt) { 2936 RedCG.emitSharedLValue(CGF, Cnt); 2937 RedCG.emitAggregateType(CGF, Cnt); 2938 // The taskgroup descriptor variable is always implicit firstprivate and 2939 // privatized already during procoessing of the firstprivates. 2940 llvm::Value *ReductionsPtr = 2941 CGF.EmitLoadOfScalar(CGF.EmitLValue(TaskgroupDescriptors[Cnt]), 2942 TaskgroupDescriptors[Cnt]->getExprLoc()); 2943 Address Replacement = CGF.CGM.getOpenMPRuntime().getTaskReductionItem( 2944 CGF, S.getLocStart(), ReductionsPtr, RedCG.getSharedLValue(Cnt)); 2945 Replacement = Address( 2946 CGF.EmitScalarConversion( 2947 Replacement.getPointer(), CGF.getContext().VoidPtrTy, 2948 CGF.getContext().getPointerType(InRedPrivs[Cnt]->getType()), 2949 InRedPrivs[Cnt]->getExprLoc()), 2950 Replacement.getAlignment()); 2951 Replacement = RedCG.adjustPrivateAddress(CGF, Cnt, Replacement); 2952 InRedScope.addPrivate(RedCG.getBaseDecl(Cnt), 2953 [Replacement]() { return Replacement; }); 2954 // FIXME: This must removed once the runtime library is fixed. 2955 // Emit required threadprivate variables for 2956 // initilizer/combiner/finalizer. 2957 CGF.CGM.getOpenMPRuntime().emitTaskReductionFixups(CGF, S.getLocStart(), 2958 RedCG, Cnt); 2959 } 2960 } 2961 (void)InRedScope.Privatize(); 2962 2963 Action.Enter(CGF); 2964 BodyGen(CGF); 2965 }; 2966 auto *OutlinedFn = CGM.getOpenMPRuntime().emitTaskOutlinedFunction( 2967 S, *I, *PartId, *TaskT, S.getDirectiveKind(), CodeGen, Data.Tied, 2968 Data.NumberOfParts); 2969 OMPLexicalScope Scope(*this, S); 2970 TaskGen(*this, OutlinedFn, Data); 2971 } 2972 2973 static ImplicitParamDecl * 2974 createImplicitFirstprivateForType(ASTContext &C, OMPTaskDataTy &Data, 2975 QualType Ty, CapturedDecl *CD, 2976 SourceLocation Loc) { 2977 auto *OrigVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, Ty, 2978 ImplicitParamDecl::Other); 2979 auto *OrigRef = DeclRefExpr::Create( 2980 C, NestedNameSpecifierLoc(), SourceLocation(), OrigVD, 2981 /*RefersToEnclosingVariableOrCapture=*/false, Loc, Ty, VK_LValue); 2982 auto *PrivateVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, Ty, 2983 ImplicitParamDecl::Other); 2984 auto *PrivateRef = DeclRefExpr::Create( 2985 C, NestedNameSpecifierLoc(), SourceLocation(), PrivateVD, 2986 /*RefersToEnclosingVariableOrCapture=*/false, Loc, Ty, VK_LValue); 2987 QualType ElemType = C.getBaseElementType(Ty); 2988 auto *InitVD = ImplicitParamDecl::Create(C, CD, Loc, /*Id=*/nullptr, ElemType, 2989 ImplicitParamDecl::Other); 2990 auto *InitRef = DeclRefExpr::Create( 2991 C, NestedNameSpecifierLoc(), SourceLocation(), InitVD, 2992 /*RefersToEnclosingVariableOrCapture=*/false, Loc, ElemType, VK_LValue); 2993 PrivateVD->setInitStyle(VarDecl::CInit); 2994 PrivateVD->setInit(ImplicitCastExpr::Create(C, ElemType, CK_LValueToRValue, 2995 InitRef, /*BasePath=*/nullptr, 2996 VK_RValue)); 2997 Data.FirstprivateVars.emplace_back(OrigRef); 2998 Data.FirstprivateCopies.emplace_back(PrivateRef); 2999 Data.FirstprivateInits.emplace_back(InitRef); 3000 return OrigVD; 3001 } 3002 3003 void CodeGenFunction::EmitOMPTargetTaskBasedDirective( 3004 const OMPExecutableDirective &S, const RegionCodeGenTy &BodyGen, 3005 OMPTargetDataInfo &InputInfo) { 3006 // Emit outlined function for task construct. 3007 auto CS = S.getCapturedStmt(OMPD_task); 3008 auto CapturedStruct = GenerateCapturedStmtArgument(*CS); 3009 auto SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl()); 3010 auto *I = CS->getCapturedDecl()->param_begin(); 3011 auto *PartId = std::next(I); 3012 auto *TaskT = std::next(I, 4); 3013 OMPTaskDataTy Data; 3014 // The task is not final. 3015 Data.Final.setInt(/*IntVal=*/false); 3016 // Get list of firstprivate variables. 3017 for (const auto *C : S.getClausesOfKind<OMPFirstprivateClause>()) { 3018 auto IRef = C->varlist_begin(); 3019 auto IElemInitRef = C->inits().begin(); 3020 for (auto *IInit : C->private_copies()) { 3021 Data.FirstprivateVars.push_back(*IRef); 3022 Data.FirstprivateCopies.push_back(IInit); 3023 Data.FirstprivateInits.push_back(*IElemInitRef); 3024 ++IRef; 3025 ++IElemInitRef; 3026 } 3027 } 3028 OMPPrivateScope TargetScope(*this); 3029 VarDecl *BPVD = nullptr; 3030 VarDecl *PVD = nullptr; 3031 VarDecl *SVD = nullptr; 3032 if (InputInfo.NumberOfTargetItems > 0) { 3033 auto *CD = CapturedDecl::Create( 3034 getContext(), getContext().getTranslationUnitDecl(), /*NumParams=*/0); 3035 llvm::APInt ArrSize(/*numBits=*/32, InputInfo.NumberOfTargetItems); 3036 QualType BaseAndPointersType = getContext().getConstantArrayType( 3037 getContext().VoidPtrTy, ArrSize, ArrayType::Normal, 3038 /*IndexTypeQuals=*/0); 3039 BPVD = createImplicitFirstprivateForType( 3040 getContext(), Data, BaseAndPointersType, CD, S.getLocStart()); 3041 PVD = createImplicitFirstprivateForType( 3042 getContext(), Data, BaseAndPointersType, CD, S.getLocStart()); 3043 QualType SizesType = getContext().getConstantArrayType( 3044 getContext().getSizeType(), ArrSize, ArrayType::Normal, 3045 /*IndexTypeQuals=*/0); 3046 SVD = createImplicitFirstprivateForType(getContext(), Data, SizesType, CD, 3047 S.getLocStart()); 3048 TargetScope.addPrivate( 3049 BPVD, [&InputInfo]() { return InputInfo.BasePointersArray; }); 3050 TargetScope.addPrivate(PVD, 3051 [&InputInfo]() { return InputInfo.PointersArray; }); 3052 TargetScope.addPrivate(SVD, 3053 [&InputInfo]() { return InputInfo.SizesArray; }); 3054 } 3055 (void)TargetScope.Privatize(); 3056 // Build list of dependences. 3057 for (const auto *C : S.getClausesOfKind<OMPDependClause>()) 3058 for (auto *IRef : C->varlists()) 3059 Data.Dependences.push_back(std::make_pair(C->getDependencyKind(), IRef)); 3060 auto &&CodeGen = [&Data, &S, CS, &BodyGen, BPVD, PVD, SVD, 3061 &InputInfo](CodeGenFunction &CGF, PrePostActionTy &Action) { 3062 // Set proper addresses for generated private copies. 3063 OMPPrivateScope Scope(CGF); 3064 if (!Data.FirstprivateVars.empty()) { 3065 enum { PrivatesParam = 2, CopyFnParam = 3 }; 3066 auto *CopyFn = CGF.Builder.CreateLoad( 3067 CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(3))); 3068 auto *PrivatesPtr = CGF.Builder.CreateLoad( 3069 CGF.GetAddrOfLocalVar(CS->getCapturedDecl()->getParam(2))); 3070 // Map privates. 3071 llvm::SmallVector<std::pair<const VarDecl *, Address>, 16> PrivatePtrs; 3072 llvm::SmallVector<llvm::Value *, 16> CallArgs; 3073 CallArgs.push_back(PrivatesPtr); 3074 for (auto *E : Data.FirstprivateVars) { 3075 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 3076 Address PrivatePtr = 3077 CGF.CreateMemTemp(CGF.getContext().getPointerType(E->getType()), 3078 ".firstpriv.ptr.addr"); 3079 PrivatePtrs.push_back(std::make_pair(VD, PrivatePtr)); 3080 CallArgs.push_back(PrivatePtr.getPointer()); 3081 } 3082 CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, S.getLocStart(), 3083 CopyFn, CallArgs); 3084 for (auto &&Pair : PrivatePtrs) { 3085 Address Replacement(CGF.Builder.CreateLoad(Pair.second), 3086 CGF.getContext().getDeclAlign(Pair.first)); 3087 Scope.addPrivate(Pair.first, [Replacement]() { return Replacement; }); 3088 } 3089 } 3090 // Privatize all private variables except for in_reduction items. 3091 (void)Scope.Privatize(); 3092 if (InputInfo.NumberOfTargetItems > 0) { 3093 InputInfo.BasePointersArray = CGF.Builder.CreateConstArrayGEP( 3094 CGF.GetAddrOfLocalVar(BPVD), /*Index=*/0, CGF.getPointerSize()); 3095 InputInfo.PointersArray = CGF.Builder.CreateConstArrayGEP( 3096 CGF.GetAddrOfLocalVar(PVD), /*Index=*/0, CGF.getPointerSize()); 3097 InputInfo.SizesArray = CGF.Builder.CreateConstArrayGEP( 3098 CGF.GetAddrOfLocalVar(SVD), /*Index=*/0, CGF.getSizeSize()); 3099 } 3100 3101 Action.Enter(CGF); 3102 OMPLexicalScope LexScope(CGF, S, OMPD_task, /*EmitPreInitStmt=*/false); 3103 BodyGen(CGF); 3104 }; 3105 auto *OutlinedFn = CGM.getOpenMPRuntime().emitTaskOutlinedFunction( 3106 S, *I, *PartId, *TaskT, S.getDirectiveKind(), CodeGen, /*Tied=*/true, 3107 Data.NumberOfParts); 3108 llvm::APInt TrueOrFalse(32, S.hasClausesOfKind<OMPNowaitClause>() ? 1 : 0); 3109 IntegerLiteral IfCond(getContext(), TrueOrFalse, 3110 getContext().getIntTypeForBitwidth(32, /*Signed=*/0), 3111 SourceLocation()); 3112 3113 CGM.getOpenMPRuntime().emitTaskCall(*this, S.getLocStart(), S, OutlinedFn, 3114 SharedsTy, CapturedStruct, &IfCond, Data); 3115 } 3116 3117 void CodeGenFunction::EmitOMPTaskDirective(const OMPTaskDirective &S) { 3118 // Emit outlined function for task construct. 3119 const CapturedStmt *CS = S.getCapturedStmt(OMPD_task); 3120 auto CapturedStruct = GenerateCapturedStmtArgument(*CS); 3121 auto SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl()); 3122 const Expr *IfCond = nullptr; 3123 for (const auto *C : S.getClausesOfKind<OMPIfClause>()) { 3124 if (C->getNameModifier() == OMPD_unknown || 3125 C->getNameModifier() == OMPD_task) { 3126 IfCond = C->getCondition(); 3127 break; 3128 } 3129 } 3130 3131 OMPTaskDataTy Data; 3132 // Check if we should emit tied or untied task. 3133 Data.Tied = !S.getSingleClause<OMPUntiedClause>(); 3134 auto &&BodyGen = [CS](CodeGenFunction &CGF, PrePostActionTy &) { 3135 CGF.EmitStmt(CS->getCapturedStmt()); 3136 }; 3137 auto &&TaskGen = [&S, SharedsTy, CapturedStruct, 3138 IfCond](CodeGenFunction &CGF, llvm::Value *OutlinedFn, 3139 const OMPTaskDataTy &Data) { 3140 CGF.CGM.getOpenMPRuntime().emitTaskCall(CGF, S.getLocStart(), S, OutlinedFn, 3141 SharedsTy, CapturedStruct, IfCond, 3142 Data); 3143 }; 3144 EmitOMPTaskBasedDirective(S, OMPD_task, BodyGen, TaskGen, Data); 3145 } 3146 3147 void CodeGenFunction::EmitOMPTaskyieldDirective( 3148 const OMPTaskyieldDirective &S) { 3149 CGM.getOpenMPRuntime().emitTaskyieldCall(*this, S.getLocStart()); 3150 } 3151 3152 void CodeGenFunction::EmitOMPBarrierDirective(const OMPBarrierDirective &S) { 3153 CGM.getOpenMPRuntime().emitBarrierCall(*this, S.getLocStart(), OMPD_barrier); 3154 } 3155 3156 void CodeGenFunction::EmitOMPTaskwaitDirective(const OMPTaskwaitDirective &S) { 3157 CGM.getOpenMPRuntime().emitTaskwaitCall(*this, S.getLocStart()); 3158 } 3159 3160 void CodeGenFunction::EmitOMPTaskgroupDirective( 3161 const OMPTaskgroupDirective &S) { 3162 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 3163 Action.Enter(CGF); 3164 if (const Expr *E = S.getReductionRef()) { 3165 SmallVector<const Expr *, 4> LHSs; 3166 SmallVector<const Expr *, 4> RHSs; 3167 OMPTaskDataTy Data; 3168 for (const auto *C : S.getClausesOfKind<OMPTaskReductionClause>()) { 3169 auto IPriv = C->privates().begin(); 3170 auto IRed = C->reduction_ops().begin(); 3171 auto ILHS = C->lhs_exprs().begin(); 3172 auto IRHS = C->rhs_exprs().begin(); 3173 for (const auto *Ref : C->varlists()) { 3174 Data.ReductionVars.emplace_back(Ref); 3175 Data.ReductionCopies.emplace_back(*IPriv); 3176 Data.ReductionOps.emplace_back(*IRed); 3177 LHSs.emplace_back(*ILHS); 3178 RHSs.emplace_back(*IRHS); 3179 std::advance(IPriv, 1); 3180 std::advance(IRed, 1); 3181 std::advance(ILHS, 1); 3182 std::advance(IRHS, 1); 3183 } 3184 } 3185 llvm::Value *ReductionDesc = 3186 CGF.CGM.getOpenMPRuntime().emitTaskReductionInit(CGF, S.getLocStart(), 3187 LHSs, RHSs, Data); 3188 const auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 3189 CGF.EmitVarDecl(*VD); 3190 CGF.EmitStoreOfScalar(ReductionDesc, CGF.GetAddrOfLocalVar(VD), 3191 /*Volatile=*/false, E->getType()); 3192 } 3193 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 3194 }; 3195 OMPLexicalScope Scope(*this, S, OMPD_unknown); 3196 CGM.getOpenMPRuntime().emitTaskgroupRegion(*this, CodeGen, S.getLocStart()); 3197 } 3198 3199 void CodeGenFunction::EmitOMPFlushDirective(const OMPFlushDirective &S) { 3200 CGM.getOpenMPRuntime().emitFlush(*this, [&]() -> ArrayRef<const Expr *> { 3201 if (const auto *FlushClause = S.getSingleClause<OMPFlushClause>()) { 3202 return llvm::makeArrayRef(FlushClause->varlist_begin(), 3203 FlushClause->varlist_end()); 3204 } 3205 return llvm::None; 3206 }(), S.getLocStart()); 3207 } 3208 3209 void CodeGenFunction::EmitOMPDistributeLoop(const OMPLoopDirective &S, 3210 const CodeGenLoopTy &CodeGenLoop, 3211 Expr *IncExpr) { 3212 // Emit the loop iteration variable. 3213 auto IVExpr = cast<DeclRefExpr>(S.getIterationVariable()); 3214 auto IVDecl = cast<VarDecl>(IVExpr->getDecl()); 3215 EmitVarDecl(*IVDecl); 3216 3217 // Emit the iterations count variable. 3218 // If it is not a variable, Sema decided to calculate iterations count on each 3219 // iteration (e.g., it is foldable into a constant). 3220 if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) { 3221 EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl())); 3222 // Emit calculation of the iterations count. 3223 EmitIgnoredExpr(S.getCalcLastIteration()); 3224 } 3225 3226 auto &RT = CGM.getOpenMPRuntime(); 3227 3228 bool HasLastprivateClause = false; 3229 // Check pre-condition. 3230 { 3231 OMPLoopScope PreInitScope(*this, S); 3232 // Skip the entire loop if we don't meet the precondition. 3233 // If the condition constant folds and can be elided, avoid emitting the 3234 // whole loop. 3235 bool CondConstant; 3236 llvm::BasicBlock *ContBlock = nullptr; 3237 if (ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) { 3238 if (!CondConstant) 3239 return; 3240 } else { 3241 auto *ThenBlock = createBasicBlock("omp.precond.then"); 3242 ContBlock = createBasicBlock("omp.precond.end"); 3243 emitPreCond(*this, S, S.getPreCond(), ThenBlock, ContBlock, 3244 getProfileCount(&S)); 3245 EmitBlock(ThenBlock); 3246 incrementProfileCounter(&S); 3247 } 3248 3249 emitAlignedClause(*this, S); 3250 // Emit 'then' code. 3251 { 3252 // Emit helper vars inits. 3253 3254 LValue LB = EmitOMPHelperVar( 3255 *this, cast<DeclRefExpr>( 3256 (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 3257 ? S.getCombinedLowerBoundVariable() 3258 : S.getLowerBoundVariable()))); 3259 LValue UB = EmitOMPHelperVar( 3260 *this, cast<DeclRefExpr>( 3261 (isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 3262 ? S.getCombinedUpperBoundVariable() 3263 : S.getUpperBoundVariable()))); 3264 LValue ST = 3265 EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getStrideVariable())); 3266 LValue IL = 3267 EmitOMPHelperVar(*this, cast<DeclRefExpr>(S.getIsLastIterVariable())); 3268 3269 OMPPrivateScope LoopScope(*this); 3270 if (EmitOMPFirstprivateClause(S, LoopScope)) { 3271 // Emit implicit barrier to synchronize threads and avoid data races 3272 // on initialization of firstprivate variables and post-update of 3273 // lastprivate variables. 3274 CGM.getOpenMPRuntime().emitBarrierCall( 3275 *this, S.getLocStart(), OMPD_unknown, /*EmitChecks=*/false, 3276 /*ForceSimpleCall=*/true); 3277 } 3278 EmitOMPPrivateClause(S, LoopScope); 3279 if (isOpenMPSimdDirective(S.getDirectiveKind()) && 3280 !isOpenMPParallelDirective(S.getDirectiveKind()) && 3281 !isOpenMPTeamsDirective(S.getDirectiveKind())) 3282 EmitOMPReductionClauseInit(S, LoopScope); 3283 HasLastprivateClause = EmitOMPLastprivateClauseInit(S, LoopScope); 3284 EmitOMPPrivateLoopCounters(S, LoopScope); 3285 (void)LoopScope.Privatize(); 3286 3287 // Detect the distribute schedule kind and chunk. 3288 llvm::Value *Chunk = nullptr; 3289 OpenMPDistScheduleClauseKind ScheduleKind = OMPC_DIST_SCHEDULE_unknown; 3290 if (auto *C = S.getSingleClause<OMPDistScheduleClause>()) { 3291 ScheduleKind = C->getDistScheduleKind(); 3292 if (const auto *Ch = C->getChunkSize()) { 3293 Chunk = EmitScalarExpr(Ch); 3294 Chunk = EmitScalarConversion(Chunk, Ch->getType(), 3295 S.getIterationVariable()->getType(), 3296 S.getLocStart()); 3297 } 3298 } 3299 const unsigned IVSize = getContext().getTypeSize(IVExpr->getType()); 3300 const bool IVSigned = IVExpr->getType()->hasSignedIntegerRepresentation(); 3301 3302 // OpenMP [2.10.8, distribute Construct, Description] 3303 // If dist_schedule is specified, kind must be static. If specified, 3304 // iterations are divided into chunks of size chunk_size, chunks are 3305 // assigned to the teams of the league in a round-robin fashion in the 3306 // order of the team number. When no chunk_size is specified, the 3307 // iteration space is divided into chunks that are approximately equal 3308 // in size, and at most one chunk is distributed to each team of the 3309 // league. The size of the chunks is unspecified in this case. 3310 if (RT.isStaticNonchunked(ScheduleKind, 3311 /* Chunked */ Chunk != nullptr)) { 3312 if (isOpenMPSimdDirective(S.getDirectiveKind())) 3313 EmitOMPSimdInit(S, /*IsMonotonic=*/true); 3314 CGOpenMPRuntime::StaticRTInput StaticInit( 3315 IVSize, IVSigned, /* Ordered = */ false, IL.getAddress(), 3316 LB.getAddress(), UB.getAddress(), ST.getAddress()); 3317 RT.emitDistributeStaticInit(*this, S.getLocStart(), ScheduleKind, 3318 StaticInit); 3319 auto LoopExit = 3320 getJumpDestInCurrentScope(createBasicBlock("omp.loop.exit")); 3321 // UB = min(UB, GlobalUB); 3322 EmitIgnoredExpr(isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 3323 ? S.getCombinedEnsureUpperBound() 3324 : S.getEnsureUpperBound()); 3325 // IV = LB; 3326 EmitIgnoredExpr(isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 3327 ? S.getCombinedInit() 3328 : S.getInit()); 3329 3330 Expr *Cond = isOpenMPLoopBoundSharingDirective(S.getDirectiveKind()) 3331 ? S.getCombinedCond() 3332 : S.getCond(); 3333 3334 // for distribute alone, codegen 3335 // while (idx <= UB) { BODY; ++idx; } 3336 // when combined with 'for' (e.g. as in 'distribute parallel for') 3337 // while (idx <= UB) { <CodeGen rest of pragma>; idx += ST; } 3338 EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), Cond, IncExpr, 3339 [&S, LoopExit, &CodeGenLoop](CodeGenFunction &CGF) { 3340 CodeGenLoop(CGF, S, LoopExit); 3341 }, 3342 [](CodeGenFunction &) {}); 3343 EmitBlock(LoopExit.getBlock()); 3344 // Tell the runtime we are done. 3345 RT.emitForStaticFinish(*this, S.getLocStart(), S.getDirectiveKind()); 3346 } else { 3347 // Emit the outer loop, which requests its work chunk [LB..UB] from 3348 // runtime and runs the inner loop to process it. 3349 const OMPLoopArguments LoopArguments = { 3350 LB.getAddress(), UB.getAddress(), ST.getAddress(), IL.getAddress(), 3351 Chunk}; 3352 EmitOMPDistributeOuterLoop(ScheduleKind, S, LoopScope, LoopArguments, 3353 CodeGenLoop); 3354 } 3355 if (isOpenMPSimdDirective(S.getDirectiveKind())) { 3356 EmitOMPSimdFinal(S, [&](CodeGenFunction &CGF) -> llvm::Value * { 3357 return CGF.Builder.CreateIsNotNull( 3358 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 3359 }); 3360 } 3361 if (isOpenMPSimdDirective(S.getDirectiveKind()) && 3362 !isOpenMPParallelDirective(S.getDirectiveKind()) && 3363 !isOpenMPTeamsDirective(S.getDirectiveKind())) { 3364 OpenMPDirectiveKind ReductionKind = OMPD_unknown; 3365 if (isOpenMPParallelDirective(S.getDirectiveKind()) && 3366 isOpenMPSimdDirective(S.getDirectiveKind())) { 3367 ReductionKind = OMPD_parallel_for_simd; 3368 } else if (isOpenMPParallelDirective(S.getDirectiveKind())) { 3369 ReductionKind = OMPD_parallel_for; 3370 } else if (isOpenMPSimdDirective(S.getDirectiveKind())) { 3371 ReductionKind = OMPD_simd; 3372 } else if (!isOpenMPTeamsDirective(S.getDirectiveKind()) && 3373 S.hasClausesOfKind<OMPReductionClause>()) { 3374 llvm_unreachable( 3375 "No reduction clauses is allowed in distribute directive."); 3376 } 3377 EmitOMPReductionClauseFinal(S, ReductionKind); 3378 // Emit post-update of the reduction variables if IsLastIter != 0. 3379 emitPostUpdateForReductionClause( 3380 *this, S, [&](CodeGenFunction &CGF) -> llvm::Value * { 3381 return CGF.Builder.CreateIsNotNull( 3382 CGF.EmitLoadOfScalar(IL, S.getLocStart())); 3383 }); 3384 } 3385 // Emit final copy of the lastprivate variables if IsLastIter != 0. 3386 if (HasLastprivateClause) { 3387 EmitOMPLastprivateClauseFinal( 3388 S, /*NoFinals=*/false, 3389 Builder.CreateIsNotNull(EmitLoadOfScalar(IL, S.getLocStart()))); 3390 } 3391 } 3392 3393 // We're now done with the loop, so jump to the continuation block. 3394 if (ContBlock) { 3395 EmitBranch(ContBlock); 3396 EmitBlock(ContBlock, true); 3397 } 3398 } 3399 } 3400 3401 void CodeGenFunction::EmitOMPDistributeDirective( 3402 const OMPDistributeDirective &S) { 3403 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 3404 3405 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 3406 }; 3407 OMPLexicalScope Scope(*this, S, OMPD_unknown); 3408 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_distribute, CodeGen); 3409 } 3410 3411 static llvm::Function *emitOutlinedOrderedFunction(CodeGenModule &CGM, 3412 const CapturedStmt *S) { 3413 CodeGenFunction CGF(CGM, /*suppressNewContext=*/true); 3414 CodeGenFunction::CGCapturedStmtInfo CapStmtInfo; 3415 CGF.CapturedStmtInfo = &CapStmtInfo; 3416 auto *Fn = CGF.GenerateOpenMPCapturedStmtFunction(*S); 3417 Fn->addFnAttr(llvm::Attribute::NoInline); 3418 return Fn; 3419 } 3420 3421 void CodeGenFunction::EmitOMPOrderedDirective(const OMPOrderedDirective &S) { 3422 if (S.hasClausesOfKind<OMPDependClause>()) { 3423 assert(!S.getAssociatedStmt() && 3424 "No associated statement must be in ordered depend construct."); 3425 for (const auto *DC : S.getClausesOfKind<OMPDependClause>()) 3426 CGM.getOpenMPRuntime().emitDoacrossOrdered(*this, DC); 3427 return; 3428 } 3429 auto *C = S.getSingleClause<OMPSIMDClause>(); 3430 auto &&CodeGen = [&S, C, this](CodeGenFunction &CGF, 3431 PrePostActionTy &Action) { 3432 const CapturedStmt *CS = S.getInnermostCapturedStmt(); 3433 if (C) { 3434 llvm::SmallVector<llvm::Value *, 16> CapturedVars; 3435 CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars); 3436 auto *OutlinedFn = emitOutlinedOrderedFunction(CGM, CS); 3437 CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, S.getLocStart(), 3438 OutlinedFn, CapturedVars); 3439 } else { 3440 Action.Enter(CGF); 3441 CGF.EmitStmt(CS->getCapturedStmt()); 3442 } 3443 }; 3444 OMPLexicalScope Scope(*this, S, OMPD_unknown); 3445 CGM.getOpenMPRuntime().emitOrderedRegion(*this, CodeGen, S.getLocStart(), !C); 3446 } 3447 3448 static llvm::Value *convertToScalarValue(CodeGenFunction &CGF, RValue Val, 3449 QualType SrcType, QualType DestType, 3450 SourceLocation Loc) { 3451 assert(CGF.hasScalarEvaluationKind(DestType) && 3452 "DestType must have scalar evaluation kind."); 3453 assert(!Val.isAggregate() && "Must be a scalar or complex."); 3454 return Val.isScalar() 3455 ? CGF.EmitScalarConversion(Val.getScalarVal(), SrcType, DestType, 3456 Loc) 3457 : CGF.EmitComplexToScalarConversion(Val.getComplexVal(), SrcType, 3458 DestType, Loc); 3459 } 3460 3461 static CodeGenFunction::ComplexPairTy 3462 convertToComplexValue(CodeGenFunction &CGF, RValue Val, QualType SrcType, 3463 QualType DestType, SourceLocation Loc) { 3464 assert(CGF.getEvaluationKind(DestType) == TEK_Complex && 3465 "DestType must have complex evaluation kind."); 3466 CodeGenFunction::ComplexPairTy ComplexVal; 3467 if (Val.isScalar()) { 3468 // Convert the input element to the element type of the complex. 3469 auto DestElementType = DestType->castAs<ComplexType>()->getElementType(); 3470 auto ScalarVal = CGF.EmitScalarConversion(Val.getScalarVal(), SrcType, 3471 DestElementType, Loc); 3472 ComplexVal = CodeGenFunction::ComplexPairTy( 3473 ScalarVal, llvm::Constant::getNullValue(ScalarVal->getType())); 3474 } else { 3475 assert(Val.isComplex() && "Must be a scalar or complex."); 3476 auto SrcElementType = SrcType->castAs<ComplexType>()->getElementType(); 3477 auto DestElementType = DestType->castAs<ComplexType>()->getElementType(); 3478 ComplexVal.first = CGF.EmitScalarConversion( 3479 Val.getComplexVal().first, SrcElementType, DestElementType, Loc); 3480 ComplexVal.second = CGF.EmitScalarConversion( 3481 Val.getComplexVal().second, SrcElementType, DestElementType, Loc); 3482 } 3483 return ComplexVal; 3484 } 3485 3486 static void emitSimpleAtomicStore(CodeGenFunction &CGF, bool IsSeqCst, 3487 LValue LVal, RValue RVal) { 3488 if (LVal.isGlobalReg()) { 3489 CGF.EmitStoreThroughGlobalRegLValue(RVal, LVal); 3490 } else { 3491 CGF.EmitAtomicStore(RVal, LVal, 3492 IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent 3493 : llvm::AtomicOrdering::Monotonic, 3494 LVal.isVolatile(), /*IsInit=*/false); 3495 } 3496 } 3497 3498 void CodeGenFunction::emitOMPSimpleStore(LValue LVal, RValue RVal, 3499 QualType RValTy, SourceLocation Loc) { 3500 switch (getEvaluationKind(LVal.getType())) { 3501 case TEK_Scalar: 3502 EmitStoreThroughLValue(RValue::get(convertToScalarValue( 3503 *this, RVal, RValTy, LVal.getType(), Loc)), 3504 LVal); 3505 break; 3506 case TEK_Complex: 3507 EmitStoreOfComplex( 3508 convertToComplexValue(*this, RVal, RValTy, LVal.getType(), Loc), LVal, 3509 /*isInit=*/false); 3510 break; 3511 case TEK_Aggregate: 3512 llvm_unreachable("Must be a scalar or complex."); 3513 } 3514 } 3515 3516 static void EmitOMPAtomicReadExpr(CodeGenFunction &CGF, bool IsSeqCst, 3517 const Expr *X, const Expr *V, 3518 SourceLocation Loc) { 3519 // v = x; 3520 assert(V->isLValue() && "V of 'omp atomic read' is not lvalue"); 3521 assert(X->isLValue() && "X of 'omp atomic read' is not lvalue"); 3522 LValue XLValue = CGF.EmitLValue(X); 3523 LValue VLValue = CGF.EmitLValue(V); 3524 RValue Res = XLValue.isGlobalReg() 3525 ? CGF.EmitLoadOfLValue(XLValue, Loc) 3526 : CGF.EmitAtomicLoad( 3527 XLValue, Loc, 3528 IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent 3529 : llvm::AtomicOrdering::Monotonic, 3530 XLValue.isVolatile()); 3531 // OpenMP, 2.12.6, atomic Construct 3532 // Any atomic construct with a seq_cst clause forces the atomically 3533 // performed operation to include an implicit flush operation without a 3534 // list. 3535 if (IsSeqCst) 3536 CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc); 3537 CGF.emitOMPSimpleStore(VLValue, Res, X->getType().getNonReferenceType(), Loc); 3538 } 3539 3540 static void EmitOMPAtomicWriteExpr(CodeGenFunction &CGF, bool IsSeqCst, 3541 const Expr *X, const Expr *E, 3542 SourceLocation Loc) { 3543 // x = expr; 3544 assert(X->isLValue() && "X of 'omp atomic write' is not lvalue"); 3545 emitSimpleAtomicStore(CGF, IsSeqCst, CGF.EmitLValue(X), CGF.EmitAnyExpr(E)); 3546 // OpenMP, 2.12.6, atomic Construct 3547 // Any atomic construct with a seq_cst clause forces the atomically 3548 // performed operation to include an implicit flush operation without a 3549 // list. 3550 if (IsSeqCst) 3551 CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc); 3552 } 3553 3554 static std::pair<bool, RValue> emitOMPAtomicRMW(CodeGenFunction &CGF, LValue X, 3555 RValue Update, 3556 BinaryOperatorKind BO, 3557 llvm::AtomicOrdering AO, 3558 bool IsXLHSInRHSPart) { 3559 auto &Context = CGF.CGM.getContext(); 3560 // Allow atomicrmw only if 'x' and 'update' are integer values, lvalue for 'x' 3561 // expression is simple and atomic is allowed for the given type for the 3562 // target platform. 3563 if (BO == BO_Comma || !Update.isScalar() || 3564 !Update.getScalarVal()->getType()->isIntegerTy() || 3565 !X.isSimple() || (!isa<llvm::ConstantInt>(Update.getScalarVal()) && 3566 (Update.getScalarVal()->getType() != 3567 X.getAddress().getElementType())) || 3568 !X.getAddress().getElementType()->isIntegerTy() || 3569 !Context.getTargetInfo().hasBuiltinAtomic( 3570 Context.getTypeSize(X.getType()), Context.toBits(X.getAlignment()))) 3571 return std::make_pair(false, RValue::get(nullptr)); 3572 3573 llvm::AtomicRMWInst::BinOp RMWOp; 3574 switch (BO) { 3575 case BO_Add: 3576 RMWOp = llvm::AtomicRMWInst::Add; 3577 break; 3578 case BO_Sub: 3579 if (!IsXLHSInRHSPart) 3580 return std::make_pair(false, RValue::get(nullptr)); 3581 RMWOp = llvm::AtomicRMWInst::Sub; 3582 break; 3583 case BO_And: 3584 RMWOp = llvm::AtomicRMWInst::And; 3585 break; 3586 case BO_Or: 3587 RMWOp = llvm::AtomicRMWInst::Or; 3588 break; 3589 case BO_Xor: 3590 RMWOp = llvm::AtomicRMWInst::Xor; 3591 break; 3592 case BO_LT: 3593 RMWOp = X.getType()->hasSignedIntegerRepresentation() 3594 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Min 3595 : llvm::AtomicRMWInst::Max) 3596 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMin 3597 : llvm::AtomicRMWInst::UMax); 3598 break; 3599 case BO_GT: 3600 RMWOp = X.getType()->hasSignedIntegerRepresentation() 3601 ? (IsXLHSInRHSPart ? llvm::AtomicRMWInst::Max 3602 : llvm::AtomicRMWInst::Min) 3603 : (IsXLHSInRHSPart ? llvm::AtomicRMWInst::UMax 3604 : llvm::AtomicRMWInst::UMin); 3605 break; 3606 case BO_Assign: 3607 RMWOp = llvm::AtomicRMWInst::Xchg; 3608 break; 3609 case BO_Mul: 3610 case BO_Div: 3611 case BO_Rem: 3612 case BO_Shl: 3613 case BO_Shr: 3614 case BO_LAnd: 3615 case BO_LOr: 3616 return std::make_pair(false, RValue::get(nullptr)); 3617 case BO_PtrMemD: 3618 case BO_PtrMemI: 3619 case BO_LE: 3620 case BO_GE: 3621 case BO_EQ: 3622 case BO_NE: 3623 case BO_Cmp: 3624 case BO_AddAssign: 3625 case BO_SubAssign: 3626 case BO_AndAssign: 3627 case BO_OrAssign: 3628 case BO_XorAssign: 3629 case BO_MulAssign: 3630 case BO_DivAssign: 3631 case BO_RemAssign: 3632 case BO_ShlAssign: 3633 case BO_ShrAssign: 3634 case BO_Comma: 3635 llvm_unreachable("Unsupported atomic update operation"); 3636 } 3637 auto *UpdateVal = Update.getScalarVal(); 3638 if (auto *IC = dyn_cast<llvm::ConstantInt>(UpdateVal)) { 3639 UpdateVal = CGF.Builder.CreateIntCast( 3640 IC, X.getAddress().getElementType(), 3641 X.getType()->hasSignedIntegerRepresentation()); 3642 } 3643 auto *Res = CGF.Builder.CreateAtomicRMW(RMWOp, X.getPointer(), UpdateVal, AO); 3644 return std::make_pair(true, RValue::get(Res)); 3645 } 3646 3647 std::pair<bool, RValue> CodeGenFunction::EmitOMPAtomicSimpleUpdateExpr( 3648 LValue X, RValue E, BinaryOperatorKind BO, bool IsXLHSInRHSPart, 3649 llvm::AtomicOrdering AO, SourceLocation Loc, 3650 const llvm::function_ref<RValue(RValue)> &CommonGen) { 3651 // Update expressions are allowed to have the following forms: 3652 // x binop= expr; -> xrval + expr; 3653 // x++, ++x -> xrval + 1; 3654 // x--, --x -> xrval - 1; 3655 // x = x binop expr; -> xrval binop expr 3656 // x = expr Op x; - > expr binop xrval; 3657 auto Res = emitOMPAtomicRMW(*this, X, E, BO, AO, IsXLHSInRHSPart); 3658 if (!Res.first) { 3659 if (X.isGlobalReg()) { 3660 // Emit an update expression: 'xrval' binop 'expr' or 'expr' binop 3661 // 'xrval'. 3662 EmitStoreThroughLValue(CommonGen(EmitLoadOfLValue(X, Loc)), X); 3663 } else { 3664 // Perform compare-and-swap procedure. 3665 EmitAtomicUpdate(X, AO, CommonGen, X.getType().isVolatileQualified()); 3666 } 3667 } 3668 return Res; 3669 } 3670 3671 static void EmitOMPAtomicUpdateExpr(CodeGenFunction &CGF, bool IsSeqCst, 3672 const Expr *X, const Expr *E, 3673 const Expr *UE, bool IsXLHSInRHSPart, 3674 SourceLocation Loc) { 3675 assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) && 3676 "Update expr in 'atomic update' must be a binary operator."); 3677 auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts()); 3678 // Update expressions are allowed to have the following forms: 3679 // x binop= expr; -> xrval + expr; 3680 // x++, ++x -> xrval + 1; 3681 // x--, --x -> xrval - 1; 3682 // x = x binop expr; -> xrval binop expr 3683 // x = expr Op x; - > expr binop xrval; 3684 assert(X->isLValue() && "X of 'omp atomic update' is not lvalue"); 3685 LValue XLValue = CGF.EmitLValue(X); 3686 RValue ExprRValue = CGF.EmitAnyExpr(E); 3687 auto AO = IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent 3688 : llvm::AtomicOrdering::Monotonic; 3689 auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts()); 3690 auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts()); 3691 auto *XRValExpr = IsXLHSInRHSPart ? LHS : RHS; 3692 auto *ERValExpr = IsXLHSInRHSPart ? RHS : LHS; 3693 auto Gen = 3694 [&CGF, UE, ExprRValue, XRValExpr, ERValExpr](RValue XRValue) -> RValue { 3695 CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue); 3696 CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue); 3697 return CGF.EmitAnyExpr(UE); 3698 }; 3699 (void)CGF.EmitOMPAtomicSimpleUpdateExpr( 3700 XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen); 3701 // OpenMP, 2.12.6, atomic Construct 3702 // Any atomic construct with a seq_cst clause forces the atomically 3703 // performed operation to include an implicit flush operation without a 3704 // list. 3705 if (IsSeqCst) 3706 CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc); 3707 } 3708 3709 static RValue convertToType(CodeGenFunction &CGF, RValue Value, 3710 QualType SourceType, QualType ResType, 3711 SourceLocation Loc) { 3712 switch (CGF.getEvaluationKind(ResType)) { 3713 case TEK_Scalar: 3714 return RValue::get( 3715 convertToScalarValue(CGF, Value, SourceType, ResType, Loc)); 3716 case TEK_Complex: { 3717 auto Res = convertToComplexValue(CGF, Value, SourceType, ResType, Loc); 3718 return RValue::getComplex(Res.first, Res.second); 3719 } 3720 case TEK_Aggregate: 3721 break; 3722 } 3723 llvm_unreachable("Must be a scalar or complex."); 3724 } 3725 3726 static void EmitOMPAtomicCaptureExpr(CodeGenFunction &CGF, bool IsSeqCst, 3727 bool IsPostfixUpdate, const Expr *V, 3728 const Expr *X, const Expr *E, 3729 const Expr *UE, bool IsXLHSInRHSPart, 3730 SourceLocation Loc) { 3731 assert(X->isLValue() && "X of 'omp atomic capture' is not lvalue"); 3732 assert(V->isLValue() && "V of 'omp atomic capture' is not lvalue"); 3733 RValue NewVVal; 3734 LValue VLValue = CGF.EmitLValue(V); 3735 LValue XLValue = CGF.EmitLValue(X); 3736 RValue ExprRValue = CGF.EmitAnyExpr(E); 3737 auto AO = IsSeqCst ? llvm::AtomicOrdering::SequentiallyConsistent 3738 : llvm::AtomicOrdering::Monotonic; 3739 QualType NewVValType; 3740 if (UE) { 3741 // 'x' is updated with some additional value. 3742 assert(isa<BinaryOperator>(UE->IgnoreImpCasts()) && 3743 "Update expr in 'atomic capture' must be a binary operator."); 3744 auto *BOUE = cast<BinaryOperator>(UE->IgnoreImpCasts()); 3745 // Update expressions are allowed to have the following forms: 3746 // x binop= expr; -> xrval + expr; 3747 // x++, ++x -> xrval + 1; 3748 // x--, --x -> xrval - 1; 3749 // x = x binop expr; -> xrval binop expr 3750 // x = expr Op x; - > expr binop xrval; 3751 auto *LHS = cast<OpaqueValueExpr>(BOUE->getLHS()->IgnoreImpCasts()); 3752 auto *RHS = cast<OpaqueValueExpr>(BOUE->getRHS()->IgnoreImpCasts()); 3753 auto *XRValExpr = IsXLHSInRHSPart ? LHS : RHS; 3754 NewVValType = XRValExpr->getType(); 3755 auto *ERValExpr = IsXLHSInRHSPart ? RHS : LHS; 3756 auto &&Gen = [&CGF, &NewVVal, UE, ExprRValue, XRValExpr, ERValExpr, 3757 IsPostfixUpdate](RValue XRValue) -> RValue { 3758 CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue); 3759 CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, XRValue); 3760 RValue Res = CGF.EmitAnyExpr(UE); 3761 NewVVal = IsPostfixUpdate ? XRValue : Res; 3762 return Res; 3763 }; 3764 auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr( 3765 XLValue, ExprRValue, BOUE->getOpcode(), IsXLHSInRHSPart, AO, Loc, Gen); 3766 if (Res.first) { 3767 // 'atomicrmw' instruction was generated. 3768 if (IsPostfixUpdate) { 3769 // Use old value from 'atomicrmw'. 3770 NewVVal = Res.second; 3771 } else { 3772 // 'atomicrmw' does not provide new value, so evaluate it using old 3773 // value of 'x'. 3774 CodeGenFunction::OpaqueValueMapping MapExpr(CGF, ERValExpr, ExprRValue); 3775 CodeGenFunction::OpaqueValueMapping MapX(CGF, XRValExpr, Res.second); 3776 NewVVal = CGF.EmitAnyExpr(UE); 3777 } 3778 } 3779 } else { 3780 // 'x' is simply rewritten with some 'expr'. 3781 NewVValType = X->getType().getNonReferenceType(); 3782 ExprRValue = convertToType(CGF, ExprRValue, E->getType(), 3783 X->getType().getNonReferenceType(), Loc); 3784 auto &&Gen = [&NewVVal, ExprRValue](RValue XRValue) -> RValue { 3785 NewVVal = XRValue; 3786 return ExprRValue; 3787 }; 3788 // Try to perform atomicrmw xchg, otherwise simple exchange. 3789 auto Res = CGF.EmitOMPAtomicSimpleUpdateExpr( 3790 XLValue, ExprRValue, /*BO=*/BO_Assign, /*IsXLHSInRHSPart=*/false, AO, 3791 Loc, Gen); 3792 if (Res.first) { 3793 // 'atomicrmw' instruction was generated. 3794 NewVVal = IsPostfixUpdate ? Res.second : ExprRValue; 3795 } 3796 } 3797 // Emit post-update store to 'v' of old/new 'x' value. 3798 CGF.emitOMPSimpleStore(VLValue, NewVVal, NewVValType, Loc); 3799 // OpenMP, 2.12.6, atomic Construct 3800 // Any atomic construct with a seq_cst clause forces the atomically 3801 // performed operation to include an implicit flush operation without a 3802 // list. 3803 if (IsSeqCst) 3804 CGF.CGM.getOpenMPRuntime().emitFlush(CGF, llvm::None, Loc); 3805 } 3806 3807 static void EmitOMPAtomicExpr(CodeGenFunction &CGF, OpenMPClauseKind Kind, 3808 bool IsSeqCst, bool IsPostfixUpdate, 3809 const Expr *X, const Expr *V, const Expr *E, 3810 const Expr *UE, bool IsXLHSInRHSPart, 3811 SourceLocation Loc) { 3812 switch (Kind) { 3813 case OMPC_read: 3814 EmitOMPAtomicReadExpr(CGF, IsSeqCst, X, V, Loc); 3815 break; 3816 case OMPC_write: 3817 EmitOMPAtomicWriteExpr(CGF, IsSeqCst, X, E, Loc); 3818 break; 3819 case OMPC_unknown: 3820 case OMPC_update: 3821 EmitOMPAtomicUpdateExpr(CGF, IsSeqCst, X, E, UE, IsXLHSInRHSPart, Loc); 3822 break; 3823 case OMPC_capture: 3824 EmitOMPAtomicCaptureExpr(CGF, IsSeqCst, IsPostfixUpdate, V, X, E, UE, 3825 IsXLHSInRHSPart, Loc); 3826 break; 3827 case OMPC_if: 3828 case OMPC_final: 3829 case OMPC_num_threads: 3830 case OMPC_private: 3831 case OMPC_firstprivate: 3832 case OMPC_lastprivate: 3833 case OMPC_reduction: 3834 case OMPC_task_reduction: 3835 case OMPC_in_reduction: 3836 case OMPC_safelen: 3837 case OMPC_simdlen: 3838 case OMPC_collapse: 3839 case OMPC_default: 3840 case OMPC_seq_cst: 3841 case OMPC_shared: 3842 case OMPC_linear: 3843 case OMPC_aligned: 3844 case OMPC_copyin: 3845 case OMPC_copyprivate: 3846 case OMPC_flush: 3847 case OMPC_proc_bind: 3848 case OMPC_schedule: 3849 case OMPC_ordered: 3850 case OMPC_nowait: 3851 case OMPC_untied: 3852 case OMPC_threadprivate: 3853 case OMPC_depend: 3854 case OMPC_mergeable: 3855 case OMPC_device: 3856 case OMPC_threads: 3857 case OMPC_simd: 3858 case OMPC_map: 3859 case OMPC_num_teams: 3860 case OMPC_thread_limit: 3861 case OMPC_priority: 3862 case OMPC_grainsize: 3863 case OMPC_nogroup: 3864 case OMPC_num_tasks: 3865 case OMPC_hint: 3866 case OMPC_dist_schedule: 3867 case OMPC_defaultmap: 3868 case OMPC_uniform: 3869 case OMPC_to: 3870 case OMPC_from: 3871 case OMPC_use_device_ptr: 3872 case OMPC_is_device_ptr: 3873 llvm_unreachable("Clause is not allowed in 'omp atomic'."); 3874 } 3875 } 3876 3877 void CodeGenFunction::EmitOMPAtomicDirective(const OMPAtomicDirective &S) { 3878 bool IsSeqCst = S.getSingleClause<OMPSeqCstClause>(); 3879 OpenMPClauseKind Kind = OMPC_unknown; 3880 for (auto *C : S.clauses()) { 3881 // Find first clause (skip seq_cst clause, if it is first). 3882 if (C->getClauseKind() != OMPC_seq_cst) { 3883 Kind = C->getClauseKind(); 3884 break; 3885 } 3886 } 3887 3888 const auto *CS = S.getInnermostCapturedStmt()->IgnoreContainers(); 3889 if (const auto *EWC = dyn_cast<ExprWithCleanups>(CS)) { 3890 enterFullExpression(EWC); 3891 } 3892 // Processing for statements under 'atomic capture'. 3893 if (const auto *Compound = dyn_cast<CompoundStmt>(CS)) { 3894 for (const auto *C : Compound->body()) { 3895 if (const auto *EWC = dyn_cast<ExprWithCleanups>(C)) { 3896 enterFullExpression(EWC); 3897 } 3898 } 3899 } 3900 3901 auto &&CodeGen = [&S, Kind, IsSeqCst, CS](CodeGenFunction &CGF, 3902 PrePostActionTy &) { 3903 CGF.EmitStopPoint(CS); 3904 EmitOMPAtomicExpr(CGF, Kind, IsSeqCst, S.isPostfixUpdate(), S.getX(), 3905 S.getV(), S.getExpr(), S.getUpdateExpr(), 3906 S.isXLHSInRHSPart(), S.getLocStart()); 3907 }; 3908 OMPLexicalScope Scope(*this, S, OMPD_unknown); 3909 CGM.getOpenMPRuntime().emitInlinedDirective(*this, OMPD_atomic, CodeGen); 3910 } 3911 3912 static void emitCommonOMPTargetDirective(CodeGenFunction &CGF, 3913 const OMPExecutableDirective &S, 3914 const RegionCodeGenTy &CodeGen) { 3915 assert(isOpenMPTargetExecutionDirective(S.getDirectiveKind())); 3916 CodeGenModule &CGM = CGF.CGM; 3917 3918 llvm::Function *Fn = nullptr; 3919 llvm::Constant *FnID = nullptr; 3920 3921 const Expr *IfCond = nullptr; 3922 // Check for the at most one if clause associated with the target region. 3923 for (const auto *C : S.getClausesOfKind<OMPIfClause>()) { 3924 if (C->getNameModifier() == OMPD_unknown || 3925 C->getNameModifier() == OMPD_target) { 3926 IfCond = C->getCondition(); 3927 break; 3928 } 3929 } 3930 3931 // Check if we have any device clause associated with the directive. 3932 const Expr *Device = nullptr; 3933 if (auto *C = S.getSingleClause<OMPDeviceClause>()) { 3934 Device = C->getDevice(); 3935 } 3936 3937 // Check if we have an if clause whose conditional always evaluates to false 3938 // or if we do not have any targets specified. If so the target region is not 3939 // an offload entry point. 3940 bool IsOffloadEntry = true; 3941 if (IfCond) { 3942 bool Val; 3943 if (CGF.ConstantFoldsToSimpleInteger(IfCond, Val) && !Val) 3944 IsOffloadEntry = false; 3945 } 3946 if (CGM.getLangOpts().OMPTargetTriples.empty()) 3947 IsOffloadEntry = false; 3948 3949 assert(CGF.CurFuncDecl && "No parent declaration for target region!"); 3950 StringRef ParentName; 3951 // In case we have Ctors/Dtors we use the complete type variant to produce 3952 // the mangling of the device outlined kernel. 3953 if (auto *D = dyn_cast<CXXConstructorDecl>(CGF.CurFuncDecl)) 3954 ParentName = CGM.getMangledName(GlobalDecl(D, Ctor_Complete)); 3955 else if (auto *D = dyn_cast<CXXDestructorDecl>(CGF.CurFuncDecl)) 3956 ParentName = CGM.getMangledName(GlobalDecl(D, Dtor_Complete)); 3957 else 3958 ParentName = 3959 CGM.getMangledName(GlobalDecl(cast<FunctionDecl>(CGF.CurFuncDecl))); 3960 3961 // Emit target region as a standalone region. 3962 CGM.getOpenMPRuntime().emitTargetOutlinedFunction(S, ParentName, Fn, FnID, 3963 IsOffloadEntry, CodeGen); 3964 OMPLexicalScope Scope(CGF, S, OMPD_task); 3965 CGM.getOpenMPRuntime().emitTargetCall(CGF, S, Fn, FnID, IfCond, Device); 3966 } 3967 3968 static void emitTargetRegion(CodeGenFunction &CGF, const OMPTargetDirective &S, 3969 PrePostActionTy &Action) { 3970 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 3971 (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope); 3972 CGF.EmitOMPPrivateClause(S, PrivateScope); 3973 (void)PrivateScope.Privatize(); 3974 3975 Action.Enter(CGF); 3976 CGF.EmitStmt(S.getCapturedStmt(OMPD_target)->getCapturedStmt()); 3977 } 3978 3979 void CodeGenFunction::EmitOMPTargetDeviceFunction(CodeGenModule &CGM, 3980 StringRef ParentName, 3981 const OMPTargetDirective &S) { 3982 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 3983 emitTargetRegion(CGF, S, Action); 3984 }; 3985 llvm::Function *Fn; 3986 llvm::Constant *Addr; 3987 // Emit target region as a standalone region. 3988 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 3989 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 3990 assert(Fn && Addr && "Target device function emission failed."); 3991 } 3992 3993 void CodeGenFunction::EmitOMPTargetDirective(const OMPTargetDirective &S) { 3994 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 3995 emitTargetRegion(CGF, S, Action); 3996 }; 3997 emitCommonOMPTargetDirective(*this, S, CodeGen); 3998 } 3999 4000 static void emitCommonOMPTeamsDirective(CodeGenFunction &CGF, 4001 const OMPExecutableDirective &S, 4002 OpenMPDirectiveKind InnermostKind, 4003 const RegionCodeGenTy &CodeGen) { 4004 const CapturedStmt *CS = S.getCapturedStmt(OMPD_teams); 4005 auto OutlinedFn = CGF.CGM.getOpenMPRuntime().emitTeamsOutlinedFunction( 4006 S, *CS->getCapturedDecl()->param_begin(), InnermostKind, CodeGen); 4007 4008 const OMPNumTeamsClause *NT = S.getSingleClause<OMPNumTeamsClause>(); 4009 const OMPThreadLimitClause *TL = S.getSingleClause<OMPThreadLimitClause>(); 4010 if (NT || TL) { 4011 Expr *NumTeams = (NT) ? NT->getNumTeams() : nullptr; 4012 Expr *ThreadLimit = (TL) ? TL->getThreadLimit() : nullptr; 4013 4014 CGF.CGM.getOpenMPRuntime().emitNumTeamsClause(CGF, NumTeams, ThreadLimit, 4015 S.getLocStart()); 4016 } 4017 4018 OMPTeamsScope Scope(CGF, S); 4019 llvm::SmallVector<llvm::Value *, 16> CapturedVars; 4020 CGF.GenerateOpenMPCapturedVars(*CS, CapturedVars); 4021 CGF.CGM.getOpenMPRuntime().emitTeamsCall(CGF, S, S.getLocStart(), OutlinedFn, 4022 CapturedVars); 4023 } 4024 4025 void CodeGenFunction::EmitOMPTeamsDirective(const OMPTeamsDirective &S) { 4026 // Emit teams region as a standalone region. 4027 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4028 OMPPrivateScope PrivateScope(CGF); 4029 (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope); 4030 CGF.EmitOMPPrivateClause(S, PrivateScope); 4031 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4032 (void)PrivateScope.Privatize(); 4033 CGF.EmitStmt(S.getCapturedStmt(OMPD_teams)->getCapturedStmt()); 4034 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4035 }; 4036 emitCommonOMPTeamsDirective(*this, S, OMPD_distribute, CodeGen); 4037 emitPostUpdateForReductionClause( 4038 *this, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 4039 } 4040 4041 static void emitTargetTeamsRegion(CodeGenFunction &CGF, PrePostActionTy &Action, 4042 const OMPTargetTeamsDirective &S) { 4043 auto *CS = S.getCapturedStmt(OMPD_teams); 4044 Action.Enter(CGF); 4045 // Emit teams region as a standalone region. 4046 auto &&CodeGen = [&S, CS](CodeGenFunction &CGF, PrePostActionTy &Action) { 4047 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4048 (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope); 4049 CGF.EmitOMPPrivateClause(S, PrivateScope); 4050 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4051 (void)PrivateScope.Privatize(); 4052 Action.Enter(CGF); 4053 CGF.EmitStmt(CS->getCapturedStmt()); 4054 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4055 }; 4056 emitCommonOMPTeamsDirective(CGF, S, OMPD_teams, CodeGen); 4057 emitPostUpdateForReductionClause( 4058 CGF, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 4059 } 4060 4061 void CodeGenFunction::EmitOMPTargetTeamsDeviceFunction( 4062 CodeGenModule &CGM, StringRef ParentName, 4063 const OMPTargetTeamsDirective &S) { 4064 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4065 emitTargetTeamsRegion(CGF, Action, S); 4066 }; 4067 llvm::Function *Fn; 4068 llvm::Constant *Addr; 4069 // Emit target region as a standalone region. 4070 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4071 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4072 assert(Fn && Addr && "Target device function emission failed."); 4073 } 4074 4075 void CodeGenFunction::EmitOMPTargetTeamsDirective( 4076 const OMPTargetTeamsDirective &S) { 4077 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4078 emitTargetTeamsRegion(CGF, Action, S); 4079 }; 4080 emitCommonOMPTargetDirective(*this, S, CodeGen); 4081 } 4082 4083 static void 4084 emitTargetTeamsDistributeRegion(CodeGenFunction &CGF, PrePostActionTy &Action, 4085 const OMPTargetTeamsDistributeDirective &S) { 4086 Action.Enter(CGF); 4087 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4088 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 4089 }; 4090 4091 // Emit teams region as a standalone region. 4092 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4093 PrePostActionTy &) { 4094 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4095 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4096 (void)PrivateScope.Privatize(); 4097 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute, 4098 CodeGenDistribute); 4099 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4100 }; 4101 emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute, CodeGen); 4102 emitPostUpdateForReductionClause(CGF, S, 4103 [](CodeGenFunction &) { return nullptr; }); 4104 } 4105 4106 void CodeGenFunction::EmitOMPTargetTeamsDistributeDeviceFunction( 4107 CodeGenModule &CGM, StringRef ParentName, 4108 const OMPTargetTeamsDistributeDirective &S) { 4109 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4110 emitTargetTeamsDistributeRegion(CGF, Action, S); 4111 }; 4112 llvm::Function *Fn; 4113 llvm::Constant *Addr; 4114 // Emit target region as a standalone region. 4115 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4116 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4117 assert(Fn && Addr && "Target device function emission failed."); 4118 } 4119 4120 void CodeGenFunction::EmitOMPTargetTeamsDistributeDirective( 4121 const OMPTargetTeamsDistributeDirective &S) { 4122 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4123 emitTargetTeamsDistributeRegion(CGF, Action, S); 4124 }; 4125 emitCommonOMPTargetDirective(*this, S, CodeGen); 4126 } 4127 4128 static void emitTargetTeamsDistributeSimdRegion( 4129 CodeGenFunction &CGF, PrePostActionTy &Action, 4130 const OMPTargetTeamsDistributeSimdDirective &S) { 4131 Action.Enter(CGF); 4132 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4133 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 4134 }; 4135 4136 // Emit teams region as a standalone region. 4137 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4138 PrePostActionTy &) { 4139 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4140 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4141 (void)PrivateScope.Privatize(); 4142 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute, 4143 CodeGenDistribute); 4144 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4145 }; 4146 emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_simd, CodeGen); 4147 emitPostUpdateForReductionClause(CGF, S, 4148 [](CodeGenFunction &) { return nullptr; }); 4149 } 4150 4151 void CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDeviceFunction( 4152 CodeGenModule &CGM, StringRef ParentName, 4153 const OMPTargetTeamsDistributeSimdDirective &S) { 4154 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4155 emitTargetTeamsDistributeSimdRegion(CGF, Action, S); 4156 }; 4157 llvm::Function *Fn; 4158 llvm::Constant *Addr; 4159 // Emit target region as a standalone region. 4160 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4161 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4162 assert(Fn && Addr && "Target device function emission failed."); 4163 } 4164 4165 void CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDirective( 4166 const OMPTargetTeamsDistributeSimdDirective &S) { 4167 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4168 emitTargetTeamsDistributeSimdRegion(CGF, Action, S); 4169 }; 4170 emitCommonOMPTargetDirective(*this, S, CodeGen); 4171 } 4172 4173 void CodeGenFunction::EmitOMPTeamsDistributeDirective( 4174 const OMPTeamsDistributeDirective &S) { 4175 4176 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4177 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 4178 }; 4179 4180 // Emit teams region as a standalone region. 4181 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4182 PrePostActionTy &) { 4183 OMPPrivateScope PrivateScope(CGF); 4184 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4185 (void)PrivateScope.Privatize(); 4186 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute, 4187 CodeGenDistribute); 4188 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4189 }; 4190 emitCommonOMPTeamsDirective(*this, S, OMPD_distribute, CodeGen); 4191 emitPostUpdateForReductionClause(*this, S, 4192 [](CodeGenFunction &) { return nullptr; }); 4193 } 4194 4195 void CodeGenFunction::EmitOMPTeamsDistributeSimdDirective( 4196 const OMPTeamsDistributeSimdDirective &S) { 4197 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4198 CGF.EmitOMPDistributeLoop(S, emitOMPLoopBodyWithStopPoint, S.getInc()); 4199 }; 4200 4201 // Emit teams region as a standalone region. 4202 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4203 PrePostActionTy &) { 4204 OMPPrivateScope PrivateScope(CGF); 4205 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4206 (void)PrivateScope.Privatize(); 4207 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_simd, 4208 CodeGenDistribute); 4209 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4210 }; 4211 emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_simd, CodeGen); 4212 emitPostUpdateForReductionClause(*this, S, 4213 [](CodeGenFunction &) { return nullptr; }); 4214 } 4215 4216 void CodeGenFunction::EmitOMPTeamsDistributeParallelForDirective( 4217 const OMPTeamsDistributeParallelForDirective &S) { 4218 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4219 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 4220 S.getDistInc()); 4221 }; 4222 4223 // Emit teams region as a standalone region. 4224 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4225 PrePostActionTy &) { 4226 OMPPrivateScope PrivateScope(CGF); 4227 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4228 (void)PrivateScope.Privatize(); 4229 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_distribute, 4230 CodeGenDistribute); 4231 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4232 }; 4233 emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_parallel_for, CodeGen); 4234 emitPostUpdateForReductionClause(*this, S, 4235 [](CodeGenFunction &) { return nullptr; }); 4236 } 4237 4238 void CodeGenFunction::EmitOMPTeamsDistributeParallelForSimdDirective( 4239 const OMPTeamsDistributeParallelForSimdDirective &S) { 4240 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4241 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 4242 S.getDistInc()); 4243 }; 4244 4245 // Emit teams region as a standalone region. 4246 auto &&CodeGen = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4247 PrePostActionTy &) { 4248 OMPPrivateScope PrivateScope(CGF); 4249 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4250 (void)PrivateScope.Privatize(); 4251 CGF.CGM.getOpenMPRuntime().emitInlinedDirective( 4252 CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false); 4253 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4254 }; 4255 emitCommonOMPTeamsDirective(*this, S, OMPD_distribute_parallel_for, CodeGen); 4256 emitPostUpdateForReductionClause(*this, S, 4257 [](CodeGenFunction &) { return nullptr; }); 4258 } 4259 4260 static void emitTargetTeamsDistributeParallelForRegion( 4261 CodeGenFunction &CGF, const OMPTargetTeamsDistributeParallelForDirective &S, 4262 PrePostActionTy &Action) { 4263 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4264 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 4265 S.getDistInc()); 4266 }; 4267 4268 // Emit teams region as a standalone region. 4269 auto &&CodeGenTeams = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4270 PrePostActionTy &) { 4271 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4272 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4273 (void)PrivateScope.Privatize(); 4274 CGF.CGM.getOpenMPRuntime().emitInlinedDirective( 4275 CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false); 4276 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4277 }; 4278 4279 emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_parallel_for, 4280 CodeGenTeams); 4281 emitPostUpdateForReductionClause(CGF, S, 4282 [](CodeGenFunction &) { return nullptr; }); 4283 } 4284 4285 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDeviceFunction( 4286 CodeGenModule &CGM, StringRef ParentName, 4287 const OMPTargetTeamsDistributeParallelForDirective &S) { 4288 // Emit SPMD target teams distribute parallel for region as a standalone 4289 // region. 4290 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4291 emitTargetTeamsDistributeParallelForRegion(CGF, S, Action); 4292 }; 4293 llvm::Function *Fn; 4294 llvm::Constant *Addr; 4295 // Emit target region as a standalone region. 4296 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4297 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4298 assert(Fn && Addr && "Target device function emission failed."); 4299 } 4300 4301 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDirective( 4302 const OMPTargetTeamsDistributeParallelForDirective &S) { 4303 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4304 emitTargetTeamsDistributeParallelForRegion(CGF, S, Action); 4305 }; 4306 emitCommonOMPTargetDirective(*this, S, CodeGen); 4307 } 4308 4309 static void emitTargetTeamsDistributeParallelForSimdRegion( 4310 CodeGenFunction &CGF, 4311 const OMPTargetTeamsDistributeParallelForSimdDirective &S, 4312 PrePostActionTy &Action) { 4313 auto &&CodeGenDistribute = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4314 CGF.EmitOMPDistributeLoop(S, emitInnerParallelForWhenCombined, 4315 S.getDistInc()); 4316 }; 4317 4318 // Emit teams region as a standalone region. 4319 auto &&CodeGenTeams = [&S, &CodeGenDistribute](CodeGenFunction &CGF, 4320 PrePostActionTy &) { 4321 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4322 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4323 (void)PrivateScope.Privatize(); 4324 CGF.CGM.getOpenMPRuntime().emitInlinedDirective( 4325 CGF, OMPD_distribute, CodeGenDistribute, /*HasCancel=*/false); 4326 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_teams); 4327 }; 4328 4329 emitCommonOMPTeamsDirective(CGF, S, OMPD_distribute_parallel_for_simd, 4330 CodeGenTeams); 4331 emitPostUpdateForReductionClause(CGF, S, 4332 [](CodeGenFunction &) { return nullptr; }); 4333 } 4334 4335 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForSimdDeviceFunction( 4336 CodeGenModule &CGM, StringRef ParentName, 4337 const OMPTargetTeamsDistributeParallelForSimdDirective &S) { 4338 // Emit SPMD target teams distribute parallel for simd region as a standalone 4339 // region. 4340 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4341 emitTargetTeamsDistributeParallelForSimdRegion(CGF, S, Action); 4342 }; 4343 llvm::Function *Fn; 4344 llvm::Constant *Addr; 4345 // Emit target region as a standalone region. 4346 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4347 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4348 assert(Fn && Addr && "Target device function emission failed."); 4349 } 4350 4351 void CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForSimdDirective( 4352 const OMPTargetTeamsDistributeParallelForSimdDirective &S) { 4353 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4354 emitTargetTeamsDistributeParallelForSimdRegion(CGF, S, Action); 4355 }; 4356 emitCommonOMPTargetDirective(*this, S, CodeGen); 4357 } 4358 4359 void CodeGenFunction::EmitOMPCancellationPointDirective( 4360 const OMPCancellationPointDirective &S) { 4361 CGM.getOpenMPRuntime().emitCancellationPointCall(*this, S.getLocStart(), 4362 S.getCancelRegion()); 4363 } 4364 4365 void CodeGenFunction::EmitOMPCancelDirective(const OMPCancelDirective &S) { 4366 const Expr *IfCond = nullptr; 4367 for (const auto *C : S.getClausesOfKind<OMPIfClause>()) { 4368 if (C->getNameModifier() == OMPD_unknown || 4369 C->getNameModifier() == OMPD_cancel) { 4370 IfCond = C->getCondition(); 4371 break; 4372 } 4373 } 4374 CGM.getOpenMPRuntime().emitCancelCall(*this, S.getLocStart(), IfCond, 4375 S.getCancelRegion()); 4376 } 4377 4378 CodeGenFunction::JumpDest 4379 CodeGenFunction::getOMPCancelDestination(OpenMPDirectiveKind Kind) { 4380 if (Kind == OMPD_parallel || Kind == OMPD_task || 4381 Kind == OMPD_target_parallel) 4382 return ReturnBlock; 4383 assert(Kind == OMPD_for || Kind == OMPD_section || Kind == OMPD_sections || 4384 Kind == OMPD_parallel_sections || Kind == OMPD_parallel_for || 4385 Kind == OMPD_distribute_parallel_for || 4386 Kind == OMPD_target_parallel_for || 4387 Kind == OMPD_teams_distribute_parallel_for || 4388 Kind == OMPD_target_teams_distribute_parallel_for); 4389 return OMPCancelStack.getExitBlock(); 4390 } 4391 4392 void CodeGenFunction::EmitOMPUseDevicePtrClause( 4393 const OMPClause &NC, OMPPrivateScope &PrivateScope, 4394 const llvm::DenseMap<const ValueDecl *, Address> &CaptureDeviceAddrMap) { 4395 const auto &C = cast<OMPUseDevicePtrClause>(NC); 4396 auto OrigVarIt = C.varlist_begin(); 4397 auto InitIt = C.inits().begin(); 4398 for (auto PvtVarIt : C.private_copies()) { 4399 auto *OrigVD = cast<VarDecl>(cast<DeclRefExpr>(*OrigVarIt)->getDecl()); 4400 auto *InitVD = cast<VarDecl>(cast<DeclRefExpr>(*InitIt)->getDecl()); 4401 auto *PvtVD = cast<VarDecl>(cast<DeclRefExpr>(PvtVarIt)->getDecl()); 4402 4403 // In order to identify the right initializer we need to match the 4404 // declaration used by the mapping logic. In some cases we may get 4405 // OMPCapturedExprDecl that refers to the original declaration. 4406 const ValueDecl *MatchingVD = OrigVD; 4407 if (auto *OED = dyn_cast<OMPCapturedExprDecl>(MatchingVD)) { 4408 // OMPCapturedExprDecl are used to privative fields of the current 4409 // structure. 4410 auto *ME = cast<MemberExpr>(OED->getInit()); 4411 assert(isa<CXXThisExpr>(ME->getBase()) && 4412 "Base should be the current struct!"); 4413 MatchingVD = ME->getMemberDecl(); 4414 } 4415 4416 // If we don't have information about the current list item, move on to 4417 // the next one. 4418 auto InitAddrIt = CaptureDeviceAddrMap.find(MatchingVD); 4419 if (InitAddrIt == CaptureDeviceAddrMap.end()) 4420 continue; 4421 4422 bool IsRegistered = PrivateScope.addPrivate(OrigVD, [&]() -> Address { 4423 // Initialize the temporary initialization variable with the address we 4424 // get from the runtime library. We have to cast the source address 4425 // because it is always a void *. References are materialized in the 4426 // privatization scope, so the initialization here disregards the fact 4427 // the original variable is a reference. 4428 QualType AddrQTy = 4429 getContext().getPointerType(OrigVD->getType().getNonReferenceType()); 4430 llvm::Type *AddrTy = ConvertTypeForMem(AddrQTy); 4431 Address InitAddr = Builder.CreateBitCast(InitAddrIt->second, AddrTy); 4432 setAddrOfLocalVar(InitVD, InitAddr); 4433 4434 // Emit private declaration, it will be initialized by the value we 4435 // declaration we just added to the local declarations map. 4436 EmitDecl(*PvtVD); 4437 4438 // The initialization variables reached its purpose in the emission 4439 // ofthe previous declaration, so we don't need it anymore. 4440 LocalDeclMap.erase(InitVD); 4441 4442 // Return the address of the private variable. 4443 return GetAddrOfLocalVar(PvtVD); 4444 }); 4445 assert(IsRegistered && "firstprivate var already registered as private"); 4446 // Silence the warning about unused variable. 4447 (void)IsRegistered; 4448 4449 ++OrigVarIt; 4450 ++InitIt; 4451 } 4452 } 4453 4454 // Generate the instructions for '#pragma omp target data' directive. 4455 void CodeGenFunction::EmitOMPTargetDataDirective( 4456 const OMPTargetDataDirective &S) { 4457 CGOpenMPRuntime::TargetDataInfo Info(/*RequiresDevicePointerInfo=*/true); 4458 4459 // Create a pre/post action to signal the privatization of the device pointer. 4460 // This action can be replaced by the OpenMP runtime code generation to 4461 // deactivate privatization. 4462 bool PrivatizeDevicePointers = false; 4463 class DevicePointerPrivActionTy : public PrePostActionTy { 4464 bool &PrivatizeDevicePointers; 4465 4466 public: 4467 explicit DevicePointerPrivActionTy(bool &PrivatizeDevicePointers) 4468 : PrePostActionTy(), PrivatizeDevicePointers(PrivatizeDevicePointers) {} 4469 void Enter(CodeGenFunction &CGF) override { 4470 PrivatizeDevicePointers = true; 4471 } 4472 }; 4473 DevicePointerPrivActionTy PrivAction(PrivatizeDevicePointers); 4474 4475 auto &&CodeGen = [&S, &Info, &PrivatizeDevicePointers]( 4476 CodeGenFunction &CGF, PrePostActionTy &Action) { 4477 auto &&InnermostCodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4478 CGF.EmitStmt(S.getInnermostCapturedStmt()->getCapturedStmt()); 4479 }; 4480 4481 // Codegen that selects wheather to generate the privatization code or not. 4482 auto &&PrivCodeGen = [&S, &Info, &PrivatizeDevicePointers, 4483 &InnermostCodeGen](CodeGenFunction &CGF, 4484 PrePostActionTy &Action) { 4485 RegionCodeGenTy RCG(InnermostCodeGen); 4486 PrivatizeDevicePointers = false; 4487 4488 // Call the pre-action to change the status of PrivatizeDevicePointers if 4489 // needed. 4490 Action.Enter(CGF); 4491 4492 if (PrivatizeDevicePointers) { 4493 OMPPrivateScope PrivateScope(CGF); 4494 // Emit all instances of the use_device_ptr clause. 4495 for (const auto *C : S.getClausesOfKind<OMPUseDevicePtrClause>()) 4496 CGF.EmitOMPUseDevicePtrClause(*C, PrivateScope, 4497 Info.CaptureDeviceAddrMap); 4498 (void)PrivateScope.Privatize(); 4499 RCG(CGF); 4500 } else 4501 RCG(CGF); 4502 }; 4503 4504 // Forward the provided action to the privatization codegen. 4505 RegionCodeGenTy PrivRCG(PrivCodeGen); 4506 PrivRCG.setAction(Action); 4507 4508 // Notwithstanding the body of the region is emitted as inlined directive, 4509 // we don't use an inline scope as changes in the references inside the 4510 // region are expected to be visible outside, so we do not privative them. 4511 OMPLexicalScope Scope(CGF, S); 4512 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_target_data, 4513 PrivRCG); 4514 }; 4515 4516 RegionCodeGenTy RCG(CodeGen); 4517 4518 // If we don't have target devices, don't bother emitting the data mapping 4519 // code. 4520 if (CGM.getLangOpts().OMPTargetTriples.empty()) { 4521 RCG(*this); 4522 return; 4523 } 4524 4525 // Check if we have any if clause associated with the directive. 4526 const Expr *IfCond = nullptr; 4527 if (auto *C = S.getSingleClause<OMPIfClause>()) 4528 IfCond = C->getCondition(); 4529 4530 // Check if we have any device clause associated with the directive. 4531 const Expr *Device = nullptr; 4532 if (auto *C = S.getSingleClause<OMPDeviceClause>()) 4533 Device = C->getDevice(); 4534 4535 // Set the action to signal privatization of device pointers. 4536 RCG.setAction(PrivAction); 4537 4538 // Emit region code. 4539 CGM.getOpenMPRuntime().emitTargetDataCalls(*this, S, IfCond, Device, RCG, 4540 Info); 4541 } 4542 4543 void CodeGenFunction::EmitOMPTargetEnterDataDirective( 4544 const OMPTargetEnterDataDirective &S) { 4545 // If we don't have target devices, don't bother emitting the data mapping 4546 // code. 4547 if (CGM.getLangOpts().OMPTargetTriples.empty()) 4548 return; 4549 4550 // Check if we have any if clause associated with the directive. 4551 const Expr *IfCond = nullptr; 4552 if (auto *C = S.getSingleClause<OMPIfClause>()) 4553 IfCond = C->getCondition(); 4554 4555 // Check if we have any device clause associated with the directive. 4556 const Expr *Device = nullptr; 4557 if (auto *C = S.getSingleClause<OMPDeviceClause>()) 4558 Device = C->getDevice(); 4559 4560 OMPLexicalScope Scope(*this, S, OMPD_task); 4561 CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device); 4562 } 4563 4564 void CodeGenFunction::EmitOMPTargetExitDataDirective( 4565 const OMPTargetExitDataDirective &S) { 4566 // If we don't have target devices, don't bother emitting the data mapping 4567 // code. 4568 if (CGM.getLangOpts().OMPTargetTriples.empty()) 4569 return; 4570 4571 // Check if we have any if clause associated with the directive. 4572 const Expr *IfCond = nullptr; 4573 if (auto *C = S.getSingleClause<OMPIfClause>()) 4574 IfCond = C->getCondition(); 4575 4576 // Check if we have any device clause associated with the directive. 4577 const Expr *Device = nullptr; 4578 if (auto *C = S.getSingleClause<OMPDeviceClause>()) 4579 Device = C->getDevice(); 4580 4581 OMPLexicalScope Scope(*this, S, OMPD_task); 4582 CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device); 4583 } 4584 4585 static void emitTargetParallelRegion(CodeGenFunction &CGF, 4586 const OMPTargetParallelDirective &S, 4587 PrePostActionTy &Action) { 4588 // Get the captured statement associated with the 'parallel' region. 4589 auto *CS = S.getCapturedStmt(OMPD_parallel); 4590 Action.Enter(CGF); 4591 auto &&CodeGen = [&S, CS](CodeGenFunction &CGF, PrePostActionTy &) { 4592 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 4593 (void)CGF.EmitOMPFirstprivateClause(S, PrivateScope); 4594 CGF.EmitOMPPrivateClause(S, PrivateScope); 4595 CGF.EmitOMPReductionClauseInit(S, PrivateScope); 4596 (void)PrivateScope.Privatize(); 4597 // TODO: Add support for clauses. 4598 CGF.EmitStmt(CS->getCapturedStmt()); 4599 CGF.EmitOMPReductionClauseFinal(S, /*ReductionKind=*/OMPD_parallel); 4600 }; 4601 emitCommonOMPParallelDirective(CGF, S, OMPD_parallel, CodeGen, 4602 emitEmptyBoundParameters); 4603 emitPostUpdateForReductionClause( 4604 CGF, S, [](CodeGenFunction &) -> llvm::Value * { return nullptr; }); 4605 } 4606 4607 void CodeGenFunction::EmitOMPTargetParallelDeviceFunction( 4608 CodeGenModule &CGM, StringRef ParentName, 4609 const OMPTargetParallelDirective &S) { 4610 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4611 emitTargetParallelRegion(CGF, S, Action); 4612 }; 4613 llvm::Function *Fn; 4614 llvm::Constant *Addr; 4615 // Emit target region as a standalone region. 4616 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4617 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4618 assert(Fn && Addr && "Target device function emission failed."); 4619 } 4620 4621 void CodeGenFunction::EmitOMPTargetParallelDirective( 4622 const OMPTargetParallelDirective &S) { 4623 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4624 emitTargetParallelRegion(CGF, S, Action); 4625 }; 4626 emitCommonOMPTargetDirective(*this, S, CodeGen); 4627 } 4628 4629 static void emitTargetParallelForRegion(CodeGenFunction &CGF, 4630 const OMPTargetParallelForDirective &S, 4631 PrePostActionTy &Action) { 4632 Action.Enter(CGF); 4633 // Emit directive as a combined directive that consists of two implicit 4634 // directives: 'parallel' with 'for' directive. 4635 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4636 CodeGenFunction::OMPCancelStackRAII CancelRegion( 4637 CGF, OMPD_target_parallel_for, S.hasCancel()); 4638 CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds, 4639 emitDispatchForLoopBounds); 4640 }; 4641 emitCommonOMPParallelDirective(CGF, S, OMPD_for, CodeGen, 4642 emitEmptyBoundParameters); 4643 } 4644 4645 void CodeGenFunction::EmitOMPTargetParallelForDeviceFunction( 4646 CodeGenModule &CGM, StringRef ParentName, 4647 const OMPTargetParallelForDirective &S) { 4648 // Emit SPMD target parallel for region as a standalone region. 4649 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4650 emitTargetParallelForRegion(CGF, S, Action); 4651 }; 4652 llvm::Function *Fn; 4653 llvm::Constant *Addr; 4654 // Emit target region as a standalone region. 4655 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4656 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4657 assert(Fn && Addr && "Target device function emission failed."); 4658 } 4659 4660 void CodeGenFunction::EmitOMPTargetParallelForDirective( 4661 const OMPTargetParallelForDirective &S) { 4662 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4663 emitTargetParallelForRegion(CGF, S, Action); 4664 }; 4665 emitCommonOMPTargetDirective(*this, S, CodeGen); 4666 } 4667 4668 static void 4669 emitTargetParallelForSimdRegion(CodeGenFunction &CGF, 4670 const OMPTargetParallelForSimdDirective &S, 4671 PrePostActionTy &Action) { 4672 Action.Enter(CGF); 4673 // Emit directive as a combined directive that consists of two implicit 4674 // directives: 'parallel' with 'for' directive. 4675 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &) { 4676 CGF.EmitOMPWorksharingLoop(S, S.getEnsureUpperBound(), emitForLoopBounds, 4677 emitDispatchForLoopBounds); 4678 }; 4679 emitCommonOMPParallelDirective(CGF, S, OMPD_simd, CodeGen, 4680 emitEmptyBoundParameters); 4681 } 4682 4683 void CodeGenFunction::EmitOMPTargetParallelForSimdDeviceFunction( 4684 CodeGenModule &CGM, StringRef ParentName, 4685 const OMPTargetParallelForSimdDirective &S) { 4686 // Emit SPMD target parallel for region as a standalone region. 4687 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4688 emitTargetParallelForSimdRegion(CGF, S, Action); 4689 }; 4690 llvm::Function *Fn; 4691 llvm::Constant *Addr; 4692 // Emit target region as a standalone region. 4693 CGM.getOpenMPRuntime().emitTargetOutlinedFunction( 4694 S, ParentName, Fn, Addr, /*IsOffloadEntry=*/true, CodeGen); 4695 assert(Fn && Addr && "Target device function emission failed."); 4696 } 4697 4698 void CodeGenFunction::EmitOMPTargetParallelForSimdDirective( 4699 const OMPTargetParallelForSimdDirective &S) { 4700 auto &&CodeGen = [&S](CodeGenFunction &CGF, PrePostActionTy &Action) { 4701 emitTargetParallelForSimdRegion(CGF, S, Action); 4702 }; 4703 emitCommonOMPTargetDirective(*this, S, CodeGen); 4704 } 4705 4706 /// Emit a helper variable and return corresponding lvalue. 4707 static void mapParam(CodeGenFunction &CGF, const DeclRefExpr *Helper, 4708 const ImplicitParamDecl *PVD, 4709 CodeGenFunction::OMPPrivateScope &Privates) { 4710 auto *VDecl = cast<VarDecl>(Helper->getDecl()); 4711 Privates.addPrivate( 4712 VDecl, [&CGF, PVD]() -> Address { return CGF.GetAddrOfLocalVar(PVD); }); 4713 } 4714 4715 void CodeGenFunction::EmitOMPTaskLoopBasedDirective(const OMPLoopDirective &S) { 4716 assert(isOpenMPTaskLoopDirective(S.getDirectiveKind())); 4717 // Emit outlined function for task construct. 4718 const CapturedStmt *CS = S.getCapturedStmt(OMPD_taskloop); 4719 auto CapturedStruct = GenerateCapturedStmtArgument(*CS); 4720 auto SharedsTy = getContext().getRecordType(CS->getCapturedRecordDecl()); 4721 const Expr *IfCond = nullptr; 4722 for (const auto *C : S.getClausesOfKind<OMPIfClause>()) { 4723 if (C->getNameModifier() == OMPD_unknown || 4724 C->getNameModifier() == OMPD_taskloop) { 4725 IfCond = C->getCondition(); 4726 break; 4727 } 4728 } 4729 4730 OMPTaskDataTy Data; 4731 // Check if taskloop must be emitted without taskgroup. 4732 Data.Nogroup = S.getSingleClause<OMPNogroupClause>(); 4733 // TODO: Check if we should emit tied or untied task. 4734 Data.Tied = true; 4735 // Set scheduling for taskloop 4736 if (const auto* Clause = S.getSingleClause<OMPGrainsizeClause>()) { 4737 // grainsize clause 4738 Data.Schedule.setInt(/*IntVal=*/false); 4739 Data.Schedule.setPointer(EmitScalarExpr(Clause->getGrainsize())); 4740 } else if (const auto* Clause = S.getSingleClause<OMPNumTasksClause>()) { 4741 // num_tasks clause 4742 Data.Schedule.setInt(/*IntVal=*/true); 4743 Data.Schedule.setPointer(EmitScalarExpr(Clause->getNumTasks())); 4744 } 4745 4746 auto &&BodyGen = [CS, &S](CodeGenFunction &CGF, PrePostActionTy &) { 4747 // if (PreCond) { 4748 // for (IV in 0..LastIteration) BODY; 4749 // <Final counter/linear vars updates>; 4750 // } 4751 // 4752 4753 // Emit: if (PreCond) - begin. 4754 // If the condition constant folds and can be elided, avoid emitting the 4755 // whole loop. 4756 bool CondConstant; 4757 llvm::BasicBlock *ContBlock = nullptr; 4758 OMPLoopScope PreInitScope(CGF, S); 4759 if (CGF.ConstantFoldsToSimpleInteger(S.getPreCond(), CondConstant)) { 4760 if (!CondConstant) 4761 return; 4762 } else { 4763 auto *ThenBlock = CGF.createBasicBlock("taskloop.if.then"); 4764 ContBlock = CGF.createBasicBlock("taskloop.if.end"); 4765 emitPreCond(CGF, S, S.getPreCond(), ThenBlock, ContBlock, 4766 CGF.getProfileCount(&S)); 4767 CGF.EmitBlock(ThenBlock); 4768 CGF.incrementProfileCounter(&S); 4769 } 4770 4771 if (isOpenMPSimdDirective(S.getDirectiveKind())) 4772 CGF.EmitOMPSimdInit(S); 4773 4774 OMPPrivateScope LoopScope(CGF); 4775 // Emit helper vars inits. 4776 enum { LowerBound = 5, UpperBound, Stride, LastIter }; 4777 auto *I = CS->getCapturedDecl()->param_begin(); 4778 auto *LBP = std::next(I, LowerBound); 4779 auto *UBP = std::next(I, UpperBound); 4780 auto *STP = std::next(I, Stride); 4781 auto *LIP = std::next(I, LastIter); 4782 mapParam(CGF, cast<DeclRefExpr>(S.getLowerBoundVariable()), *LBP, 4783 LoopScope); 4784 mapParam(CGF, cast<DeclRefExpr>(S.getUpperBoundVariable()), *UBP, 4785 LoopScope); 4786 mapParam(CGF, cast<DeclRefExpr>(S.getStrideVariable()), *STP, LoopScope); 4787 mapParam(CGF, cast<DeclRefExpr>(S.getIsLastIterVariable()), *LIP, 4788 LoopScope); 4789 CGF.EmitOMPPrivateLoopCounters(S, LoopScope); 4790 bool HasLastprivateClause = CGF.EmitOMPLastprivateClauseInit(S, LoopScope); 4791 (void)LoopScope.Privatize(); 4792 // Emit the loop iteration variable. 4793 const Expr *IVExpr = S.getIterationVariable(); 4794 const VarDecl *IVDecl = cast<VarDecl>(cast<DeclRefExpr>(IVExpr)->getDecl()); 4795 CGF.EmitVarDecl(*IVDecl); 4796 CGF.EmitIgnoredExpr(S.getInit()); 4797 4798 // Emit the iterations count variable. 4799 // If it is not a variable, Sema decided to calculate iterations count on 4800 // each iteration (e.g., it is foldable into a constant). 4801 if (auto LIExpr = dyn_cast<DeclRefExpr>(S.getLastIteration())) { 4802 CGF.EmitVarDecl(*cast<VarDecl>(LIExpr->getDecl())); 4803 // Emit calculation of the iterations count. 4804 CGF.EmitIgnoredExpr(S.getCalcLastIteration()); 4805 } 4806 4807 CGF.EmitOMPInnerLoop(S, LoopScope.requiresCleanups(), S.getCond(), 4808 S.getInc(), 4809 [&S](CodeGenFunction &CGF) { 4810 CGF.EmitOMPLoopBody(S, JumpDest()); 4811 CGF.EmitStopPoint(&S); 4812 }, 4813 [](CodeGenFunction &) {}); 4814 // Emit: if (PreCond) - end. 4815 if (ContBlock) { 4816 CGF.EmitBranch(ContBlock); 4817 CGF.EmitBlock(ContBlock, true); 4818 } 4819 // Emit final copy of the lastprivate variables if IsLastIter != 0. 4820 if (HasLastprivateClause) { 4821 CGF.EmitOMPLastprivateClauseFinal( 4822 S, isOpenMPSimdDirective(S.getDirectiveKind()), 4823 CGF.Builder.CreateIsNotNull(CGF.EmitLoadOfScalar( 4824 CGF.GetAddrOfLocalVar(*LIP), /*Volatile=*/false, 4825 (*LIP)->getType(), S.getLocStart()))); 4826 } 4827 }; 4828 auto &&TaskGen = [&S, SharedsTy, CapturedStruct, 4829 IfCond](CodeGenFunction &CGF, llvm::Value *OutlinedFn, 4830 const OMPTaskDataTy &Data) { 4831 auto &&CodeGen = [&](CodeGenFunction &CGF, PrePostActionTy &) { 4832 OMPLoopScope PreInitScope(CGF, S); 4833 CGF.CGM.getOpenMPRuntime().emitTaskLoopCall(CGF, S.getLocStart(), S, 4834 OutlinedFn, SharedsTy, 4835 CapturedStruct, IfCond, Data); 4836 }; 4837 CGF.CGM.getOpenMPRuntime().emitInlinedDirective(CGF, OMPD_taskloop, 4838 CodeGen); 4839 }; 4840 if (Data.Nogroup) { 4841 EmitOMPTaskBasedDirective(S, OMPD_taskloop, BodyGen, TaskGen, Data); 4842 } else { 4843 CGM.getOpenMPRuntime().emitTaskgroupRegion( 4844 *this, 4845 [&S, &BodyGen, &TaskGen, &Data](CodeGenFunction &CGF, 4846 PrePostActionTy &Action) { 4847 Action.Enter(CGF); 4848 CGF.EmitOMPTaskBasedDirective(S, OMPD_taskloop, BodyGen, TaskGen, 4849 Data); 4850 }, 4851 S.getLocStart()); 4852 } 4853 } 4854 4855 void CodeGenFunction::EmitOMPTaskLoopDirective(const OMPTaskLoopDirective &S) { 4856 EmitOMPTaskLoopBasedDirective(S); 4857 } 4858 4859 void CodeGenFunction::EmitOMPTaskLoopSimdDirective( 4860 const OMPTaskLoopSimdDirective &S) { 4861 EmitOMPTaskLoopBasedDirective(S); 4862 } 4863 4864 // Generate the instructions for '#pragma omp target update' directive. 4865 void CodeGenFunction::EmitOMPTargetUpdateDirective( 4866 const OMPTargetUpdateDirective &S) { 4867 // If we don't have target devices, don't bother emitting the data mapping 4868 // code. 4869 if (CGM.getLangOpts().OMPTargetTriples.empty()) 4870 return; 4871 4872 // Check if we have any if clause associated with the directive. 4873 const Expr *IfCond = nullptr; 4874 if (auto *C = S.getSingleClause<OMPIfClause>()) 4875 IfCond = C->getCondition(); 4876 4877 // Check if we have any device clause associated with the directive. 4878 const Expr *Device = nullptr; 4879 if (auto *C = S.getSingleClause<OMPDeviceClause>()) 4880 Device = C->getDevice(); 4881 4882 OMPLexicalScope Scope(*this, S, OMPD_task); 4883 CGM.getOpenMPRuntime().emitTargetDataStandAloneCall(*this, S, IfCond, Device); 4884 } 4885 4886 void CodeGenFunction::EmitSimpleOMPExecutableDirective( 4887 const OMPExecutableDirective &D) { 4888 if (!D.hasAssociatedStmt() || !D.getAssociatedStmt()) 4889 return; 4890 auto &&CodeGen = [&D](CodeGenFunction &CGF, PrePostActionTy &Action) { 4891 if (isOpenMPSimdDirective(D.getDirectiveKind())) { 4892 emitOMPSimdRegion(CGF, cast<OMPLoopDirective>(D), Action); 4893 } else { 4894 if (const auto *LD = dyn_cast<OMPLoopDirective>(&D)) { 4895 for (const auto *E : LD->counters()) { 4896 if (const auto *VD = dyn_cast<OMPCapturedExprDecl>( 4897 cast<DeclRefExpr>(E)->getDecl())) { 4898 // Emit only those that were not explicitly referenced in clauses. 4899 if (!CGF.LocalDeclMap.count(VD)) 4900 CGF.EmitVarDecl(*VD); 4901 } 4902 } 4903 } 4904 CGF.EmitStmt(D.getInnermostCapturedStmt()->getCapturedStmt()); 4905 } 4906 }; 4907 OMPSimdLexicalScope Scope(*this, D); 4908 CGM.getOpenMPRuntime().emitInlinedDirective( 4909 *this, 4910 isOpenMPSimdDirective(D.getDirectiveKind()) ? OMPD_simd 4911 : D.getDirectiveKind(), 4912 CodeGen); 4913 } 4914