1 //===----- CGOpenMPRuntime.cpp - Interface to OpenMP Runtimes -------------===// 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 provides a class for OpenMP runtime code generation. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "CGCXXABI.h" 15 #include "CGCleanup.h" 16 #include "CGOpenMPRuntime.h" 17 #include "CodeGenFunction.h" 18 #include "clang/CodeGen/ConstantInitBuilder.h" 19 #include "clang/AST/Decl.h" 20 #include "clang/AST/StmtOpenMP.h" 21 #include "llvm/ADT/ArrayRef.h" 22 #include "llvm/ADT/BitmaskEnum.h" 23 #include "llvm/Bitcode/BitcodeReader.h" 24 #include "llvm/IR/CallSite.h" 25 #include "llvm/IR/DerivedTypes.h" 26 #include "llvm/IR/GlobalValue.h" 27 #include "llvm/IR/Value.h" 28 #include "llvm/Support/Format.h" 29 #include "llvm/Support/raw_ostream.h" 30 #include <cassert> 31 32 using namespace clang; 33 using namespace CodeGen; 34 35 namespace { 36 /// \brief Base class for handling code generation inside OpenMP regions. 37 class CGOpenMPRegionInfo : public CodeGenFunction::CGCapturedStmtInfo { 38 public: 39 /// \brief Kinds of OpenMP regions used in codegen. 40 enum CGOpenMPRegionKind { 41 /// \brief Region with outlined function for standalone 'parallel' 42 /// directive. 43 ParallelOutlinedRegion, 44 /// \brief Region with outlined function for standalone 'task' directive. 45 TaskOutlinedRegion, 46 /// \brief Region for constructs that do not require function outlining, 47 /// like 'for', 'sections', 'atomic' etc. directives. 48 InlinedRegion, 49 /// \brief Region with outlined function for standalone 'target' directive. 50 TargetRegion, 51 }; 52 53 CGOpenMPRegionInfo(const CapturedStmt &CS, 54 const CGOpenMPRegionKind RegionKind, 55 const RegionCodeGenTy &CodeGen, OpenMPDirectiveKind Kind, 56 bool HasCancel) 57 : CGCapturedStmtInfo(CS, CR_OpenMP), RegionKind(RegionKind), 58 CodeGen(CodeGen), Kind(Kind), HasCancel(HasCancel) {} 59 60 CGOpenMPRegionInfo(const CGOpenMPRegionKind RegionKind, 61 const RegionCodeGenTy &CodeGen, OpenMPDirectiveKind Kind, 62 bool HasCancel) 63 : CGCapturedStmtInfo(CR_OpenMP), RegionKind(RegionKind), CodeGen(CodeGen), 64 Kind(Kind), HasCancel(HasCancel) {} 65 66 /// \brief Get a variable or parameter for storing global thread id 67 /// inside OpenMP construct. 68 virtual const VarDecl *getThreadIDVariable() const = 0; 69 70 /// \brief Emit the captured statement body. 71 void EmitBody(CodeGenFunction &CGF, const Stmt *S) override; 72 73 /// \brief Get an LValue for the current ThreadID variable. 74 /// \return LValue for thread id variable. This LValue always has type int32*. 75 virtual LValue getThreadIDVariableLValue(CodeGenFunction &CGF); 76 77 virtual void emitUntiedSwitch(CodeGenFunction & /*CGF*/) {} 78 79 CGOpenMPRegionKind getRegionKind() const { return RegionKind; } 80 81 OpenMPDirectiveKind getDirectiveKind() const { return Kind; } 82 83 bool hasCancel() const { return HasCancel; } 84 85 static bool classof(const CGCapturedStmtInfo *Info) { 86 return Info->getKind() == CR_OpenMP; 87 } 88 89 ~CGOpenMPRegionInfo() override = default; 90 91 protected: 92 CGOpenMPRegionKind RegionKind; 93 RegionCodeGenTy CodeGen; 94 OpenMPDirectiveKind Kind; 95 bool HasCancel; 96 }; 97 98 /// \brief API for captured statement code generation in OpenMP constructs. 99 class CGOpenMPOutlinedRegionInfo final : public CGOpenMPRegionInfo { 100 public: 101 CGOpenMPOutlinedRegionInfo(const CapturedStmt &CS, const VarDecl *ThreadIDVar, 102 const RegionCodeGenTy &CodeGen, 103 OpenMPDirectiveKind Kind, bool HasCancel, 104 StringRef HelperName) 105 : CGOpenMPRegionInfo(CS, ParallelOutlinedRegion, CodeGen, Kind, 106 HasCancel), 107 ThreadIDVar(ThreadIDVar), HelperName(HelperName) { 108 assert(ThreadIDVar != nullptr && "No ThreadID in OpenMP region."); 109 } 110 111 /// \brief Get a variable or parameter for storing global thread id 112 /// inside OpenMP construct. 113 const VarDecl *getThreadIDVariable() const override { return ThreadIDVar; } 114 115 /// \brief Get the name of the capture helper. 116 StringRef getHelperName() const override { return HelperName; } 117 118 static bool classof(const CGCapturedStmtInfo *Info) { 119 return CGOpenMPRegionInfo::classof(Info) && 120 cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == 121 ParallelOutlinedRegion; 122 } 123 124 private: 125 /// \brief A variable or parameter storing global thread id for OpenMP 126 /// constructs. 127 const VarDecl *ThreadIDVar; 128 StringRef HelperName; 129 }; 130 131 /// \brief API for captured statement code generation in OpenMP constructs. 132 class CGOpenMPTaskOutlinedRegionInfo final : public CGOpenMPRegionInfo { 133 public: 134 class UntiedTaskActionTy final : public PrePostActionTy { 135 bool Untied; 136 const VarDecl *PartIDVar; 137 const RegionCodeGenTy UntiedCodeGen; 138 llvm::SwitchInst *UntiedSwitch = nullptr; 139 140 public: 141 UntiedTaskActionTy(bool Tied, const VarDecl *PartIDVar, 142 const RegionCodeGenTy &UntiedCodeGen) 143 : Untied(!Tied), PartIDVar(PartIDVar), UntiedCodeGen(UntiedCodeGen) {} 144 void Enter(CodeGenFunction &CGF) override { 145 if (Untied) { 146 // Emit task switching point. 147 auto PartIdLVal = CGF.EmitLoadOfPointerLValue( 148 CGF.GetAddrOfLocalVar(PartIDVar), 149 PartIDVar->getType()->castAs<PointerType>()); 150 auto *Res = CGF.EmitLoadOfScalar(PartIdLVal, SourceLocation()); 151 auto *DoneBB = CGF.createBasicBlock(".untied.done."); 152 UntiedSwitch = CGF.Builder.CreateSwitch(Res, DoneBB); 153 CGF.EmitBlock(DoneBB); 154 CGF.EmitBranchThroughCleanup(CGF.ReturnBlock); 155 CGF.EmitBlock(CGF.createBasicBlock(".untied.jmp.")); 156 UntiedSwitch->addCase(CGF.Builder.getInt32(0), 157 CGF.Builder.GetInsertBlock()); 158 emitUntiedSwitch(CGF); 159 } 160 } 161 void emitUntiedSwitch(CodeGenFunction &CGF) const { 162 if (Untied) { 163 auto PartIdLVal = CGF.EmitLoadOfPointerLValue( 164 CGF.GetAddrOfLocalVar(PartIDVar), 165 PartIDVar->getType()->castAs<PointerType>()); 166 CGF.EmitStoreOfScalar(CGF.Builder.getInt32(UntiedSwitch->getNumCases()), 167 PartIdLVal); 168 UntiedCodeGen(CGF); 169 CodeGenFunction::JumpDest CurPoint = 170 CGF.getJumpDestInCurrentScope(".untied.next."); 171 CGF.EmitBranchThroughCleanup(CGF.ReturnBlock); 172 CGF.EmitBlock(CGF.createBasicBlock(".untied.jmp.")); 173 UntiedSwitch->addCase(CGF.Builder.getInt32(UntiedSwitch->getNumCases()), 174 CGF.Builder.GetInsertBlock()); 175 CGF.EmitBranchThroughCleanup(CurPoint); 176 CGF.EmitBlock(CurPoint.getBlock()); 177 } 178 } 179 unsigned getNumberOfParts() const { return UntiedSwitch->getNumCases(); } 180 }; 181 CGOpenMPTaskOutlinedRegionInfo(const CapturedStmt &CS, 182 const VarDecl *ThreadIDVar, 183 const RegionCodeGenTy &CodeGen, 184 OpenMPDirectiveKind Kind, bool HasCancel, 185 const UntiedTaskActionTy &Action) 186 : CGOpenMPRegionInfo(CS, TaskOutlinedRegion, CodeGen, Kind, HasCancel), 187 ThreadIDVar(ThreadIDVar), Action(Action) { 188 assert(ThreadIDVar != nullptr && "No ThreadID in OpenMP region."); 189 } 190 191 /// \brief Get a variable or parameter for storing global thread id 192 /// inside OpenMP construct. 193 const VarDecl *getThreadIDVariable() const override { return ThreadIDVar; } 194 195 /// \brief Get an LValue for the current ThreadID variable. 196 LValue getThreadIDVariableLValue(CodeGenFunction &CGF) override; 197 198 /// \brief Get the name of the capture helper. 199 StringRef getHelperName() const override { return ".omp_outlined."; } 200 201 void emitUntiedSwitch(CodeGenFunction &CGF) override { 202 Action.emitUntiedSwitch(CGF); 203 } 204 205 static bool classof(const CGCapturedStmtInfo *Info) { 206 return CGOpenMPRegionInfo::classof(Info) && 207 cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == 208 TaskOutlinedRegion; 209 } 210 211 private: 212 /// \brief A variable or parameter storing global thread id for OpenMP 213 /// constructs. 214 const VarDecl *ThreadIDVar; 215 /// Action for emitting code for untied tasks. 216 const UntiedTaskActionTy &Action; 217 }; 218 219 /// \brief API for inlined captured statement code generation in OpenMP 220 /// constructs. 221 class CGOpenMPInlinedRegionInfo : public CGOpenMPRegionInfo { 222 public: 223 CGOpenMPInlinedRegionInfo(CodeGenFunction::CGCapturedStmtInfo *OldCSI, 224 const RegionCodeGenTy &CodeGen, 225 OpenMPDirectiveKind Kind, bool HasCancel) 226 : CGOpenMPRegionInfo(InlinedRegion, CodeGen, Kind, HasCancel), 227 OldCSI(OldCSI), 228 OuterRegionInfo(dyn_cast_or_null<CGOpenMPRegionInfo>(OldCSI)) {} 229 230 // \brief Retrieve the value of the context parameter. 231 llvm::Value *getContextValue() const override { 232 if (OuterRegionInfo) 233 return OuterRegionInfo->getContextValue(); 234 llvm_unreachable("No context value for inlined OpenMP region"); 235 } 236 237 void setContextValue(llvm::Value *V) override { 238 if (OuterRegionInfo) { 239 OuterRegionInfo->setContextValue(V); 240 return; 241 } 242 llvm_unreachable("No context value for inlined OpenMP region"); 243 } 244 245 /// \brief Lookup the captured field decl for a variable. 246 const FieldDecl *lookup(const VarDecl *VD) const override { 247 if (OuterRegionInfo) 248 return OuterRegionInfo->lookup(VD); 249 // If there is no outer outlined region,no need to lookup in a list of 250 // captured variables, we can use the original one. 251 return nullptr; 252 } 253 254 FieldDecl *getThisFieldDecl() const override { 255 if (OuterRegionInfo) 256 return OuterRegionInfo->getThisFieldDecl(); 257 return nullptr; 258 } 259 260 /// \brief Get a variable or parameter for storing global thread id 261 /// inside OpenMP construct. 262 const VarDecl *getThreadIDVariable() const override { 263 if (OuterRegionInfo) 264 return OuterRegionInfo->getThreadIDVariable(); 265 return nullptr; 266 } 267 268 /// \brief Get an LValue for the current ThreadID variable. 269 LValue getThreadIDVariableLValue(CodeGenFunction &CGF) override { 270 if (OuterRegionInfo) 271 return OuterRegionInfo->getThreadIDVariableLValue(CGF); 272 llvm_unreachable("No LValue for inlined OpenMP construct"); 273 } 274 275 /// \brief Get the name of the capture helper. 276 StringRef getHelperName() const override { 277 if (auto *OuterRegionInfo = getOldCSI()) 278 return OuterRegionInfo->getHelperName(); 279 llvm_unreachable("No helper name for inlined OpenMP construct"); 280 } 281 282 void emitUntiedSwitch(CodeGenFunction &CGF) override { 283 if (OuterRegionInfo) 284 OuterRegionInfo->emitUntiedSwitch(CGF); 285 } 286 287 CodeGenFunction::CGCapturedStmtInfo *getOldCSI() const { return OldCSI; } 288 289 static bool classof(const CGCapturedStmtInfo *Info) { 290 return CGOpenMPRegionInfo::classof(Info) && 291 cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == InlinedRegion; 292 } 293 294 ~CGOpenMPInlinedRegionInfo() override = default; 295 296 private: 297 /// \brief CodeGen info about outer OpenMP region. 298 CodeGenFunction::CGCapturedStmtInfo *OldCSI; 299 CGOpenMPRegionInfo *OuterRegionInfo; 300 }; 301 302 /// \brief API for captured statement code generation in OpenMP target 303 /// constructs. For this captures, implicit parameters are used instead of the 304 /// captured fields. The name of the target region has to be unique in a given 305 /// application so it is provided by the client, because only the client has 306 /// the information to generate that. 307 class CGOpenMPTargetRegionInfo final : public CGOpenMPRegionInfo { 308 public: 309 CGOpenMPTargetRegionInfo(const CapturedStmt &CS, 310 const RegionCodeGenTy &CodeGen, StringRef HelperName) 311 : CGOpenMPRegionInfo(CS, TargetRegion, CodeGen, OMPD_target, 312 /*HasCancel=*/false), 313 HelperName(HelperName) {} 314 315 /// \brief This is unused for target regions because each starts executing 316 /// with a single thread. 317 const VarDecl *getThreadIDVariable() const override { return nullptr; } 318 319 /// \brief Get the name of the capture helper. 320 StringRef getHelperName() const override { return HelperName; } 321 322 static bool classof(const CGCapturedStmtInfo *Info) { 323 return CGOpenMPRegionInfo::classof(Info) && 324 cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == TargetRegion; 325 } 326 327 private: 328 StringRef HelperName; 329 }; 330 331 static void EmptyCodeGen(CodeGenFunction &, PrePostActionTy &) { 332 llvm_unreachable("No codegen for expressions"); 333 } 334 /// \brief API for generation of expressions captured in a innermost OpenMP 335 /// region. 336 class CGOpenMPInnerExprInfo final : public CGOpenMPInlinedRegionInfo { 337 public: 338 CGOpenMPInnerExprInfo(CodeGenFunction &CGF, const CapturedStmt &CS) 339 : CGOpenMPInlinedRegionInfo(CGF.CapturedStmtInfo, EmptyCodeGen, 340 OMPD_unknown, 341 /*HasCancel=*/false), 342 PrivScope(CGF) { 343 // Make sure the globals captured in the provided statement are local by 344 // using the privatization logic. We assume the same variable is not 345 // captured more than once. 346 for (auto &C : CS.captures()) { 347 if (!C.capturesVariable() && !C.capturesVariableByCopy()) 348 continue; 349 350 const VarDecl *VD = C.getCapturedVar(); 351 if (VD->isLocalVarDeclOrParm()) 352 continue; 353 354 DeclRefExpr DRE(const_cast<VarDecl *>(VD), 355 /*RefersToEnclosingVariableOrCapture=*/false, 356 VD->getType().getNonReferenceType(), VK_LValue, 357 SourceLocation()); 358 PrivScope.addPrivate(VD, [&CGF, &DRE]() -> Address { 359 return CGF.EmitLValue(&DRE).getAddress(); 360 }); 361 } 362 (void)PrivScope.Privatize(); 363 } 364 365 /// \brief Lookup the captured field decl for a variable. 366 const FieldDecl *lookup(const VarDecl *VD) const override { 367 if (auto *FD = CGOpenMPInlinedRegionInfo::lookup(VD)) 368 return FD; 369 return nullptr; 370 } 371 372 /// \brief Emit the captured statement body. 373 void EmitBody(CodeGenFunction &CGF, const Stmt *S) override { 374 llvm_unreachable("No body for expressions"); 375 } 376 377 /// \brief Get a variable or parameter for storing global thread id 378 /// inside OpenMP construct. 379 const VarDecl *getThreadIDVariable() const override { 380 llvm_unreachable("No thread id for expressions"); 381 } 382 383 /// \brief Get the name of the capture helper. 384 StringRef getHelperName() const override { 385 llvm_unreachable("No helper name for expressions"); 386 } 387 388 static bool classof(const CGCapturedStmtInfo *Info) { return false; } 389 390 private: 391 /// Private scope to capture global variables. 392 CodeGenFunction::OMPPrivateScope PrivScope; 393 }; 394 395 /// \brief RAII for emitting code of OpenMP constructs. 396 class InlinedOpenMPRegionRAII { 397 CodeGenFunction &CGF; 398 llvm::DenseMap<const VarDecl *, FieldDecl *> LambdaCaptureFields; 399 FieldDecl *LambdaThisCaptureField = nullptr; 400 const CodeGen::CGBlockInfo *BlockInfo = nullptr; 401 402 public: 403 /// \brief Constructs region for combined constructs. 404 /// \param CodeGen Code generation sequence for combined directives. Includes 405 /// a list of functions used for code generation of implicitly inlined 406 /// regions. 407 InlinedOpenMPRegionRAII(CodeGenFunction &CGF, const RegionCodeGenTy &CodeGen, 408 OpenMPDirectiveKind Kind, bool HasCancel) 409 : CGF(CGF) { 410 // Start emission for the construct. 411 CGF.CapturedStmtInfo = new CGOpenMPInlinedRegionInfo( 412 CGF.CapturedStmtInfo, CodeGen, Kind, HasCancel); 413 std::swap(CGF.LambdaCaptureFields, LambdaCaptureFields); 414 LambdaThisCaptureField = CGF.LambdaThisCaptureField; 415 CGF.LambdaThisCaptureField = nullptr; 416 BlockInfo = CGF.BlockInfo; 417 CGF.BlockInfo = nullptr; 418 } 419 420 ~InlinedOpenMPRegionRAII() { 421 // Restore original CapturedStmtInfo only if we're done with code emission. 422 auto *OldCSI = 423 cast<CGOpenMPInlinedRegionInfo>(CGF.CapturedStmtInfo)->getOldCSI(); 424 delete CGF.CapturedStmtInfo; 425 CGF.CapturedStmtInfo = OldCSI; 426 std::swap(CGF.LambdaCaptureFields, LambdaCaptureFields); 427 CGF.LambdaThisCaptureField = LambdaThisCaptureField; 428 CGF.BlockInfo = BlockInfo; 429 } 430 }; 431 432 /// \brief Values for bit flags used in the ident_t to describe the fields. 433 /// All enumeric elements are named and described in accordance with the code 434 /// from http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h 435 enum OpenMPLocationFlags : unsigned { 436 /// \brief Use trampoline for internal microtask. 437 OMP_IDENT_IMD = 0x01, 438 /// \brief Use c-style ident structure. 439 OMP_IDENT_KMPC = 0x02, 440 /// \brief Atomic reduction option for kmpc_reduce. 441 OMP_ATOMIC_REDUCE = 0x10, 442 /// \brief Explicit 'barrier' directive. 443 OMP_IDENT_BARRIER_EXPL = 0x20, 444 /// \brief Implicit barrier in code. 445 OMP_IDENT_BARRIER_IMPL = 0x40, 446 /// \brief Implicit barrier in 'for' directive. 447 OMP_IDENT_BARRIER_IMPL_FOR = 0x40, 448 /// \brief Implicit barrier in 'sections' directive. 449 OMP_IDENT_BARRIER_IMPL_SECTIONS = 0xC0, 450 /// \brief Implicit barrier in 'single' directive. 451 OMP_IDENT_BARRIER_IMPL_SINGLE = 0x140, 452 /// Call of __kmp_for_static_init for static loop. 453 OMP_IDENT_WORK_LOOP = 0x200, 454 /// Call of __kmp_for_static_init for sections. 455 OMP_IDENT_WORK_SECTIONS = 0x400, 456 /// Call of __kmp_for_static_init for distribute. 457 OMP_IDENT_WORK_DISTRIBUTE = 0x800, 458 LLVM_MARK_AS_BITMASK_ENUM(/*LargestValue=*/OMP_IDENT_WORK_DISTRIBUTE) 459 }; 460 461 /// \brief Describes ident structure that describes a source location. 462 /// All descriptions are taken from 463 /// http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h 464 /// Original structure: 465 /// typedef struct ident { 466 /// kmp_int32 reserved_1; /**< might be used in Fortran; 467 /// see above */ 468 /// kmp_int32 flags; /**< also f.flags; KMP_IDENT_xxx flags; 469 /// KMP_IDENT_KMPC identifies this union 470 /// member */ 471 /// kmp_int32 reserved_2; /**< not really used in Fortran any more; 472 /// see above */ 473 ///#if USE_ITT_BUILD 474 /// /* but currently used for storing 475 /// region-specific ITT */ 476 /// /* contextual information. */ 477 ///#endif /* USE_ITT_BUILD */ 478 /// kmp_int32 reserved_3; /**< source[4] in Fortran, do not use for 479 /// C++ */ 480 /// char const *psource; /**< String describing the source location. 481 /// The string is composed of semi-colon separated 482 // fields which describe the source file, 483 /// the function and a pair of line numbers that 484 /// delimit the construct. 485 /// */ 486 /// } ident_t; 487 enum IdentFieldIndex { 488 /// \brief might be used in Fortran 489 IdentField_Reserved_1, 490 /// \brief OMP_IDENT_xxx flags; OMP_IDENT_KMPC identifies this union member. 491 IdentField_Flags, 492 /// \brief Not really used in Fortran any more 493 IdentField_Reserved_2, 494 /// \brief Source[4] in Fortran, do not use for C++ 495 IdentField_Reserved_3, 496 /// \brief String describing the source location. The string is composed of 497 /// semi-colon separated fields which describe the source file, the function 498 /// and a pair of line numbers that delimit the construct. 499 IdentField_PSource 500 }; 501 502 /// \brief Schedule types for 'omp for' loops (these enumerators are taken from 503 /// the enum sched_type in kmp.h). 504 enum OpenMPSchedType { 505 /// \brief Lower bound for default (unordered) versions. 506 OMP_sch_lower = 32, 507 OMP_sch_static_chunked = 33, 508 OMP_sch_static = 34, 509 OMP_sch_dynamic_chunked = 35, 510 OMP_sch_guided_chunked = 36, 511 OMP_sch_runtime = 37, 512 OMP_sch_auto = 38, 513 /// static with chunk adjustment (e.g., simd) 514 OMP_sch_static_balanced_chunked = 45, 515 /// \brief Lower bound for 'ordered' versions. 516 OMP_ord_lower = 64, 517 OMP_ord_static_chunked = 65, 518 OMP_ord_static = 66, 519 OMP_ord_dynamic_chunked = 67, 520 OMP_ord_guided_chunked = 68, 521 OMP_ord_runtime = 69, 522 OMP_ord_auto = 70, 523 OMP_sch_default = OMP_sch_static, 524 /// \brief dist_schedule types 525 OMP_dist_sch_static_chunked = 91, 526 OMP_dist_sch_static = 92, 527 /// Support for OpenMP 4.5 monotonic and nonmonotonic schedule modifiers. 528 /// Set if the monotonic schedule modifier was present. 529 OMP_sch_modifier_monotonic = (1 << 29), 530 /// Set if the nonmonotonic schedule modifier was present. 531 OMP_sch_modifier_nonmonotonic = (1 << 30), 532 }; 533 534 enum OpenMPRTLFunction { 535 /// \brief Call to void __kmpc_fork_call(ident_t *loc, kmp_int32 argc, 536 /// kmpc_micro microtask, ...); 537 OMPRTL__kmpc_fork_call, 538 /// \brief Call to void *__kmpc_threadprivate_cached(ident_t *loc, 539 /// kmp_int32 global_tid, void *data, size_t size, void ***cache); 540 OMPRTL__kmpc_threadprivate_cached, 541 /// \brief Call to void __kmpc_threadprivate_register( ident_t *, 542 /// void *data, kmpc_ctor ctor, kmpc_cctor cctor, kmpc_dtor dtor); 543 OMPRTL__kmpc_threadprivate_register, 544 // Call to __kmpc_int32 kmpc_global_thread_num(ident_t *loc); 545 OMPRTL__kmpc_global_thread_num, 546 // Call to void __kmpc_critical(ident_t *loc, kmp_int32 global_tid, 547 // kmp_critical_name *crit); 548 OMPRTL__kmpc_critical, 549 // Call to void __kmpc_critical_with_hint(ident_t *loc, kmp_int32 550 // global_tid, kmp_critical_name *crit, uintptr_t hint); 551 OMPRTL__kmpc_critical_with_hint, 552 // Call to void __kmpc_end_critical(ident_t *loc, kmp_int32 global_tid, 553 // kmp_critical_name *crit); 554 OMPRTL__kmpc_end_critical, 555 // Call to kmp_int32 __kmpc_cancel_barrier(ident_t *loc, kmp_int32 556 // global_tid); 557 OMPRTL__kmpc_cancel_barrier, 558 // Call to void __kmpc_barrier(ident_t *loc, kmp_int32 global_tid); 559 OMPRTL__kmpc_barrier, 560 // Call to void __kmpc_for_static_fini(ident_t *loc, kmp_int32 global_tid); 561 OMPRTL__kmpc_for_static_fini, 562 // Call to void __kmpc_serialized_parallel(ident_t *loc, kmp_int32 563 // global_tid); 564 OMPRTL__kmpc_serialized_parallel, 565 // Call to void __kmpc_end_serialized_parallel(ident_t *loc, kmp_int32 566 // global_tid); 567 OMPRTL__kmpc_end_serialized_parallel, 568 // Call to void __kmpc_push_num_threads(ident_t *loc, kmp_int32 global_tid, 569 // kmp_int32 num_threads); 570 OMPRTL__kmpc_push_num_threads, 571 // Call to void __kmpc_flush(ident_t *loc); 572 OMPRTL__kmpc_flush, 573 // Call to kmp_int32 __kmpc_master(ident_t *, kmp_int32 global_tid); 574 OMPRTL__kmpc_master, 575 // Call to void __kmpc_end_master(ident_t *, kmp_int32 global_tid); 576 OMPRTL__kmpc_end_master, 577 // Call to kmp_int32 __kmpc_omp_taskyield(ident_t *, kmp_int32 global_tid, 578 // int end_part); 579 OMPRTL__kmpc_omp_taskyield, 580 // Call to kmp_int32 __kmpc_single(ident_t *, kmp_int32 global_tid); 581 OMPRTL__kmpc_single, 582 // Call to void __kmpc_end_single(ident_t *, kmp_int32 global_tid); 583 OMPRTL__kmpc_end_single, 584 // Call to kmp_task_t * __kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid, 585 // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds, 586 // kmp_routine_entry_t *task_entry); 587 OMPRTL__kmpc_omp_task_alloc, 588 // Call to kmp_int32 __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t * 589 // new_task); 590 OMPRTL__kmpc_omp_task, 591 // Call to void __kmpc_copyprivate(ident_t *loc, kmp_int32 global_tid, 592 // size_t cpy_size, void *cpy_data, void(*cpy_func)(void *, void *), 593 // kmp_int32 didit); 594 OMPRTL__kmpc_copyprivate, 595 // Call to kmp_int32 __kmpc_reduce(ident_t *loc, kmp_int32 global_tid, 596 // kmp_int32 num_vars, size_t reduce_size, void *reduce_data, void 597 // (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name *lck); 598 OMPRTL__kmpc_reduce, 599 // Call to kmp_int32 __kmpc_reduce_nowait(ident_t *loc, kmp_int32 600 // global_tid, kmp_int32 num_vars, size_t reduce_size, void *reduce_data, 601 // void (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name 602 // *lck); 603 OMPRTL__kmpc_reduce_nowait, 604 // Call to void __kmpc_end_reduce(ident_t *loc, kmp_int32 global_tid, 605 // kmp_critical_name *lck); 606 OMPRTL__kmpc_end_reduce, 607 // Call to void __kmpc_end_reduce_nowait(ident_t *loc, kmp_int32 global_tid, 608 // kmp_critical_name *lck); 609 OMPRTL__kmpc_end_reduce_nowait, 610 // Call to void __kmpc_omp_task_begin_if0(ident_t *, kmp_int32 gtid, 611 // kmp_task_t * new_task); 612 OMPRTL__kmpc_omp_task_begin_if0, 613 // Call to void __kmpc_omp_task_complete_if0(ident_t *, kmp_int32 gtid, 614 // kmp_task_t * new_task); 615 OMPRTL__kmpc_omp_task_complete_if0, 616 // Call to void __kmpc_ordered(ident_t *loc, kmp_int32 global_tid); 617 OMPRTL__kmpc_ordered, 618 // Call to void __kmpc_end_ordered(ident_t *loc, kmp_int32 global_tid); 619 OMPRTL__kmpc_end_ordered, 620 // Call to kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32 621 // global_tid); 622 OMPRTL__kmpc_omp_taskwait, 623 // Call to void __kmpc_taskgroup(ident_t *loc, kmp_int32 global_tid); 624 OMPRTL__kmpc_taskgroup, 625 // Call to void __kmpc_end_taskgroup(ident_t *loc, kmp_int32 global_tid); 626 OMPRTL__kmpc_end_taskgroup, 627 // Call to void __kmpc_push_proc_bind(ident_t *loc, kmp_int32 global_tid, 628 // int proc_bind); 629 OMPRTL__kmpc_push_proc_bind, 630 // Call to kmp_int32 __kmpc_omp_task_with_deps(ident_t *loc_ref, kmp_int32 631 // gtid, kmp_task_t * new_task, kmp_int32 ndeps, kmp_depend_info_t 632 // *dep_list, kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list); 633 OMPRTL__kmpc_omp_task_with_deps, 634 // Call to void __kmpc_omp_wait_deps(ident_t *loc_ref, kmp_int32 635 // gtid, kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32 636 // ndeps_noalias, kmp_depend_info_t *noalias_dep_list); 637 OMPRTL__kmpc_omp_wait_deps, 638 // Call to kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32 639 // global_tid, kmp_int32 cncl_kind); 640 OMPRTL__kmpc_cancellationpoint, 641 // Call to kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid, 642 // kmp_int32 cncl_kind); 643 OMPRTL__kmpc_cancel, 644 // Call to void __kmpc_push_num_teams(ident_t *loc, kmp_int32 global_tid, 645 // kmp_int32 num_teams, kmp_int32 thread_limit); 646 OMPRTL__kmpc_push_num_teams, 647 // Call to void __kmpc_fork_teams(ident_t *loc, kmp_int32 argc, kmpc_micro 648 // microtask, ...); 649 OMPRTL__kmpc_fork_teams, 650 // Call to void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int 651 // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int 652 // sched, kmp_uint64 grainsize, void *task_dup); 653 OMPRTL__kmpc_taskloop, 654 // Call to void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid, kmp_int32 655 // num_dims, struct kmp_dim *dims); 656 OMPRTL__kmpc_doacross_init, 657 // Call to void __kmpc_doacross_fini(ident_t *loc, kmp_int32 gtid); 658 OMPRTL__kmpc_doacross_fini, 659 // Call to void __kmpc_doacross_post(ident_t *loc, kmp_int32 gtid, kmp_int64 660 // *vec); 661 OMPRTL__kmpc_doacross_post, 662 // Call to void __kmpc_doacross_wait(ident_t *loc, kmp_int32 gtid, kmp_int64 663 // *vec); 664 OMPRTL__kmpc_doacross_wait, 665 // Call to void *__kmpc_task_reduction_init(int gtid, int num_data, void 666 // *data); 667 OMPRTL__kmpc_task_reduction_init, 668 // Call to void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void 669 // *d); 670 OMPRTL__kmpc_task_reduction_get_th_data, 671 672 // 673 // Offloading related calls 674 // 675 // Call to int32_t __tgt_target(int64_t device_id, void *host_ptr, int32_t 676 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 677 // *arg_types); 678 OMPRTL__tgt_target, 679 // Call to int32_t __tgt_target_nowait(int64_t device_id, void *host_ptr, 680 // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 681 // *arg_types); 682 OMPRTL__tgt_target_nowait, 683 // Call to int32_t __tgt_target_teams(int64_t device_id, void *host_ptr, 684 // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 685 // *arg_types, int32_t num_teams, int32_t thread_limit); 686 OMPRTL__tgt_target_teams, 687 // Call to int32_t __tgt_target_teams_nowait(int64_t device_id, void 688 // *host_ptr, int32_t arg_num, void** args_base, void **args, size_t 689 // *arg_sizes, int64_t *arg_types, int32_t num_teams, int32_t thread_limit); 690 OMPRTL__tgt_target_teams_nowait, 691 // Call to void __tgt_register_lib(__tgt_bin_desc *desc); 692 OMPRTL__tgt_register_lib, 693 // Call to void __tgt_unregister_lib(__tgt_bin_desc *desc); 694 OMPRTL__tgt_unregister_lib, 695 // Call to void __tgt_target_data_begin(int64_t device_id, int32_t arg_num, 696 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 697 OMPRTL__tgt_target_data_begin, 698 // Call to void __tgt_target_data_begin_nowait(int64_t device_id, int32_t 699 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 700 // *arg_types); 701 OMPRTL__tgt_target_data_begin_nowait, 702 // Call to void __tgt_target_data_end(int64_t device_id, int32_t arg_num, 703 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 704 OMPRTL__tgt_target_data_end, 705 // Call to void __tgt_target_data_end_nowait(int64_t device_id, int32_t 706 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 707 // *arg_types); 708 OMPRTL__tgt_target_data_end_nowait, 709 // Call to void __tgt_target_data_update(int64_t device_id, int32_t arg_num, 710 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 711 OMPRTL__tgt_target_data_update, 712 // Call to void __tgt_target_data_update_nowait(int64_t device_id, int32_t 713 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 714 // *arg_types); 715 OMPRTL__tgt_target_data_update_nowait, 716 }; 717 718 /// A basic class for pre|post-action for advanced codegen sequence for OpenMP 719 /// region. 720 class CleanupTy final : public EHScopeStack::Cleanup { 721 PrePostActionTy *Action; 722 723 public: 724 explicit CleanupTy(PrePostActionTy *Action) : Action(Action) {} 725 void Emit(CodeGenFunction &CGF, Flags /*flags*/) override { 726 if (!CGF.HaveInsertPoint()) 727 return; 728 Action->Exit(CGF); 729 } 730 }; 731 732 } // anonymous namespace 733 734 void RegionCodeGenTy::operator()(CodeGenFunction &CGF) const { 735 CodeGenFunction::RunCleanupsScope Scope(CGF); 736 if (PrePostAction) { 737 CGF.EHStack.pushCleanup<CleanupTy>(NormalAndEHCleanup, PrePostAction); 738 Callback(CodeGen, CGF, *PrePostAction); 739 } else { 740 PrePostActionTy Action; 741 Callback(CodeGen, CGF, Action); 742 } 743 } 744 745 /// Check if the combiner is a call to UDR combiner and if it is so return the 746 /// UDR decl used for reduction. 747 static const OMPDeclareReductionDecl * 748 getReductionInit(const Expr *ReductionOp) { 749 if (auto *CE = dyn_cast<CallExpr>(ReductionOp)) 750 if (auto *OVE = dyn_cast<OpaqueValueExpr>(CE->getCallee())) 751 if (auto *DRE = 752 dyn_cast<DeclRefExpr>(OVE->getSourceExpr()->IgnoreImpCasts())) 753 if (auto *DRD = dyn_cast<OMPDeclareReductionDecl>(DRE->getDecl())) 754 return DRD; 755 return nullptr; 756 } 757 758 static void emitInitWithReductionInitializer(CodeGenFunction &CGF, 759 const OMPDeclareReductionDecl *DRD, 760 const Expr *InitOp, 761 Address Private, Address Original, 762 QualType Ty) { 763 if (DRD->getInitializer()) { 764 std::pair<llvm::Function *, llvm::Function *> Reduction = 765 CGF.CGM.getOpenMPRuntime().getUserDefinedReduction(DRD); 766 auto *CE = cast<CallExpr>(InitOp); 767 auto *OVE = cast<OpaqueValueExpr>(CE->getCallee()); 768 const Expr *LHS = CE->getArg(/*Arg=*/0)->IgnoreParenImpCasts(); 769 const Expr *RHS = CE->getArg(/*Arg=*/1)->IgnoreParenImpCasts(); 770 auto *LHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(LHS)->getSubExpr()); 771 auto *RHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(RHS)->getSubExpr()); 772 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 773 PrivateScope.addPrivate(cast<VarDecl>(LHSDRE->getDecl()), 774 [=]() -> Address { return Private; }); 775 PrivateScope.addPrivate(cast<VarDecl>(RHSDRE->getDecl()), 776 [=]() -> Address { return Original; }); 777 (void)PrivateScope.Privatize(); 778 RValue Func = RValue::get(Reduction.second); 779 CodeGenFunction::OpaqueValueMapping Map(CGF, OVE, Func); 780 CGF.EmitIgnoredExpr(InitOp); 781 } else { 782 llvm::Constant *Init = CGF.CGM.EmitNullConstant(Ty); 783 auto *GV = new llvm::GlobalVariable( 784 CGF.CGM.getModule(), Init->getType(), /*isConstant=*/true, 785 llvm::GlobalValue::PrivateLinkage, Init, ".init"); 786 LValue LV = CGF.MakeNaturalAlignAddrLValue(GV, Ty); 787 RValue InitRVal; 788 switch (CGF.getEvaluationKind(Ty)) { 789 case TEK_Scalar: 790 InitRVal = CGF.EmitLoadOfLValue(LV, SourceLocation()); 791 break; 792 case TEK_Complex: 793 InitRVal = 794 RValue::getComplex(CGF.EmitLoadOfComplex(LV, SourceLocation())); 795 break; 796 case TEK_Aggregate: 797 InitRVal = RValue::getAggregate(LV.getAddress()); 798 break; 799 } 800 OpaqueValueExpr OVE(SourceLocation(), Ty, VK_RValue); 801 CodeGenFunction::OpaqueValueMapping OpaqueMap(CGF, &OVE, InitRVal); 802 CGF.EmitAnyExprToMem(&OVE, Private, Ty.getQualifiers(), 803 /*IsInitializer=*/false); 804 } 805 } 806 807 /// \brief Emit initialization of arrays of complex types. 808 /// \param DestAddr Address of the array. 809 /// \param Type Type of array. 810 /// \param Init Initial expression of array. 811 /// \param SrcAddr Address of the original array. 812 static void EmitOMPAggregateInit(CodeGenFunction &CGF, Address DestAddr, 813 QualType Type, bool EmitDeclareReductionInit, 814 const Expr *Init, 815 const OMPDeclareReductionDecl *DRD, 816 Address SrcAddr = Address::invalid()) { 817 // Perform element-by-element initialization. 818 QualType ElementTy; 819 820 // Drill down to the base element type on both arrays. 821 auto ArrayTy = Type->getAsArrayTypeUnsafe(); 822 auto NumElements = CGF.emitArrayLength(ArrayTy, ElementTy, DestAddr); 823 DestAddr = 824 CGF.Builder.CreateElementBitCast(DestAddr, DestAddr.getElementType()); 825 if (DRD) 826 SrcAddr = 827 CGF.Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType()); 828 829 llvm::Value *SrcBegin = nullptr; 830 if (DRD) 831 SrcBegin = SrcAddr.getPointer(); 832 auto DestBegin = DestAddr.getPointer(); 833 // Cast from pointer to array type to pointer to single element. 834 auto DestEnd = CGF.Builder.CreateGEP(DestBegin, NumElements); 835 // The basic structure here is a while-do loop. 836 auto BodyBB = CGF.createBasicBlock("omp.arrayinit.body"); 837 auto DoneBB = CGF.createBasicBlock("omp.arrayinit.done"); 838 auto IsEmpty = 839 CGF.Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arrayinit.isempty"); 840 CGF.Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB); 841 842 // Enter the loop body, making that address the current address. 843 auto EntryBB = CGF.Builder.GetInsertBlock(); 844 CGF.EmitBlock(BodyBB); 845 846 CharUnits ElementSize = CGF.getContext().getTypeSizeInChars(ElementTy); 847 848 llvm::PHINode *SrcElementPHI = nullptr; 849 Address SrcElementCurrent = Address::invalid(); 850 if (DRD) { 851 SrcElementPHI = CGF.Builder.CreatePHI(SrcBegin->getType(), 2, 852 "omp.arraycpy.srcElementPast"); 853 SrcElementPHI->addIncoming(SrcBegin, EntryBB); 854 SrcElementCurrent = 855 Address(SrcElementPHI, 856 SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 857 } 858 llvm::PHINode *DestElementPHI = CGF.Builder.CreatePHI( 859 DestBegin->getType(), 2, "omp.arraycpy.destElementPast"); 860 DestElementPHI->addIncoming(DestBegin, EntryBB); 861 Address DestElementCurrent = 862 Address(DestElementPHI, 863 DestAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 864 865 // Emit copy. 866 { 867 CodeGenFunction::RunCleanupsScope InitScope(CGF); 868 if (EmitDeclareReductionInit) { 869 emitInitWithReductionInitializer(CGF, DRD, Init, DestElementCurrent, 870 SrcElementCurrent, ElementTy); 871 } else 872 CGF.EmitAnyExprToMem(Init, DestElementCurrent, ElementTy.getQualifiers(), 873 /*IsInitializer=*/false); 874 } 875 876 if (DRD) { 877 // Shift the address forward by one element. 878 auto SrcElementNext = CGF.Builder.CreateConstGEP1_32( 879 SrcElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element"); 880 SrcElementPHI->addIncoming(SrcElementNext, CGF.Builder.GetInsertBlock()); 881 } 882 883 // Shift the address forward by one element. 884 auto DestElementNext = CGF.Builder.CreateConstGEP1_32( 885 DestElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element"); 886 // Check whether we've reached the end. 887 auto Done = 888 CGF.Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done"); 889 CGF.Builder.CreateCondBr(Done, DoneBB, BodyBB); 890 DestElementPHI->addIncoming(DestElementNext, CGF.Builder.GetInsertBlock()); 891 892 // Done. 893 CGF.EmitBlock(DoneBB, /*IsFinished=*/true); 894 } 895 896 LValue ReductionCodeGen::emitSharedLValue(CodeGenFunction &CGF, const Expr *E) { 897 return CGF.EmitOMPSharedLValue(E); 898 } 899 900 LValue ReductionCodeGen::emitSharedLValueUB(CodeGenFunction &CGF, 901 const Expr *E) { 902 if (const auto *OASE = dyn_cast<OMPArraySectionExpr>(E)) 903 return CGF.EmitOMPArraySectionExpr(OASE, /*IsLowerBound=*/false); 904 return LValue(); 905 } 906 907 void ReductionCodeGen::emitAggregateInitialization( 908 CodeGenFunction &CGF, unsigned N, Address PrivateAddr, LValue SharedLVal, 909 const OMPDeclareReductionDecl *DRD) { 910 // Emit VarDecl with copy init for arrays. 911 // Get the address of the original variable captured in current 912 // captured region. 913 auto *PrivateVD = 914 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 915 bool EmitDeclareReductionInit = 916 DRD && (DRD->getInitializer() || !PrivateVD->hasInit()); 917 EmitOMPAggregateInit(CGF, PrivateAddr, PrivateVD->getType(), 918 EmitDeclareReductionInit, 919 EmitDeclareReductionInit ? ClausesData[N].ReductionOp 920 : PrivateVD->getInit(), 921 DRD, SharedLVal.getAddress()); 922 } 923 924 ReductionCodeGen::ReductionCodeGen(ArrayRef<const Expr *> Shareds, 925 ArrayRef<const Expr *> Privates, 926 ArrayRef<const Expr *> ReductionOps) { 927 ClausesData.reserve(Shareds.size()); 928 SharedAddresses.reserve(Shareds.size()); 929 Sizes.reserve(Shareds.size()); 930 BaseDecls.reserve(Shareds.size()); 931 auto IPriv = Privates.begin(); 932 auto IRed = ReductionOps.begin(); 933 for (const auto *Ref : Shareds) { 934 ClausesData.emplace_back(Ref, *IPriv, *IRed); 935 std::advance(IPriv, 1); 936 std::advance(IRed, 1); 937 } 938 } 939 940 void ReductionCodeGen::emitSharedLValue(CodeGenFunction &CGF, unsigned N) { 941 assert(SharedAddresses.size() == N && 942 "Number of generated lvalues must be exactly N."); 943 LValue First = emitSharedLValue(CGF, ClausesData[N].Ref); 944 LValue Second = emitSharedLValueUB(CGF, ClausesData[N].Ref); 945 SharedAddresses.emplace_back(First, Second); 946 } 947 948 void ReductionCodeGen::emitAggregateType(CodeGenFunction &CGF, unsigned N) { 949 auto *PrivateVD = 950 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 951 QualType PrivateType = PrivateVD->getType(); 952 bool AsArraySection = isa<OMPArraySectionExpr>(ClausesData[N].Ref); 953 if (!PrivateType->isVariablyModifiedType()) { 954 Sizes.emplace_back( 955 CGF.getTypeSize( 956 SharedAddresses[N].first.getType().getNonReferenceType()), 957 nullptr); 958 return; 959 } 960 llvm::Value *Size; 961 llvm::Value *SizeInChars; 962 llvm::Type *ElemType = 963 cast<llvm::PointerType>(SharedAddresses[N].first.getPointer()->getType()) 964 ->getElementType(); 965 auto *ElemSizeOf = llvm::ConstantExpr::getSizeOf(ElemType); 966 if (AsArraySection) { 967 Size = CGF.Builder.CreatePtrDiff(SharedAddresses[N].second.getPointer(), 968 SharedAddresses[N].first.getPointer()); 969 Size = CGF.Builder.CreateNUWAdd( 970 Size, llvm::ConstantInt::get(Size->getType(), /*V=*/1)); 971 SizeInChars = CGF.Builder.CreateNUWMul(Size, ElemSizeOf); 972 } else { 973 SizeInChars = CGF.getTypeSize( 974 SharedAddresses[N].first.getType().getNonReferenceType()); 975 Size = CGF.Builder.CreateExactUDiv(SizeInChars, ElemSizeOf); 976 } 977 Sizes.emplace_back(SizeInChars, Size); 978 CodeGenFunction::OpaqueValueMapping OpaqueMap( 979 CGF, 980 cast<OpaqueValueExpr>( 981 CGF.getContext().getAsVariableArrayType(PrivateType)->getSizeExpr()), 982 RValue::get(Size)); 983 CGF.EmitVariablyModifiedType(PrivateType); 984 } 985 986 void ReductionCodeGen::emitAggregateType(CodeGenFunction &CGF, unsigned N, 987 llvm::Value *Size) { 988 auto *PrivateVD = 989 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 990 QualType PrivateType = PrivateVD->getType(); 991 if (!PrivateType->isVariablyModifiedType()) { 992 assert(!Size && !Sizes[N].second && 993 "Size should be nullptr for non-variably modified reduction " 994 "items."); 995 return; 996 } 997 CodeGenFunction::OpaqueValueMapping OpaqueMap( 998 CGF, 999 cast<OpaqueValueExpr>( 1000 CGF.getContext().getAsVariableArrayType(PrivateType)->getSizeExpr()), 1001 RValue::get(Size)); 1002 CGF.EmitVariablyModifiedType(PrivateType); 1003 } 1004 1005 void ReductionCodeGen::emitInitialization( 1006 CodeGenFunction &CGF, unsigned N, Address PrivateAddr, LValue SharedLVal, 1007 llvm::function_ref<bool(CodeGenFunction &)> DefaultInit) { 1008 assert(SharedAddresses.size() > N && "No variable was generated"); 1009 auto *PrivateVD = 1010 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 1011 auto *DRD = getReductionInit(ClausesData[N].ReductionOp); 1012 QualType PrivateType = PrivateVD->getType(); 1013 PrivateAddr = CGF.Builder.CreateElementBitCast( 1014 PrivateAddr, CGF.ConvertTypeForMem(PrivateType)); 1015 QualType SharedType = SharedAddresses[N].first.getType(); 1016 SharedLVal = CGF.MakeAddrLValue( 1017 CGF.Builder.CreateElementBitCast(SharedLVal.getAddress(), 1018 CGF.ConvertTypeForMem(SharedType)), 1019 SharedType, SharedAddresses[N].first.getBaseInfo(), 1020 CGF.CGM.getTBAAInfoForSubobject(SharedAddresses[N].first, SharedType)); 1021 if (CGF.getContext().getAsArrayType(PrivateVD->getType())) { 1022 emitAggregateInitialization(CGF, N, PrivateAddr, SharedLVal, DRD); 1023 } else if (DRD && (DRD->getInitializer() || !PrivateVD->hasInit())) { 1024 emitInitWithReductionInitializer(CGF, DRD, ClausesData[N].ReductionOp, 1025 PrivateAddr, SharedLVal.getAddress(), 1026 SharedLVal.getType()); 1027 } else if (!DefaultInit(CGF) && PrivateVD->hasInit() && 1028 !CGF.isTrivialInitializer(PrivateVD->getInit())) { 1029 CGF.EmitAnyExprToMem(PrivateVD->getInit(), PrivateAddr, 1030 PrivateVD->getType().getQualifiers(), 1031 /*IsInitializer=*/false); 1032 } 1033 } 1034 1035 bool ReductionCodeGen::needCleanups(unsigned N) { 1036 auto *PrivateVD = 1037 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 1038 QualType PrivateType = PrivateVD->getType(); 1039 QualType::DestructionKind DTorKind = PrivateType.isDestructedType(); 1040 return DTorKind != QualType::DK_none; 1041 } 1042 1043 void ReductionCodeGen::emitCleanups(CodeGenFunction &CGF, unsigned N, 1044 Address PrivateAddr) { 1045 auto *PrivateVD = 1046 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl()); 1047 QualType PrivateType = PrivateVD->getType(); 1048 QualType::DestructionKind DTorKind = PrivateType.isDestructedType(); 1049 if (needCleanups(N)) { 1050 PrivateAddr = CGF.Builder.CreateElementBitCast( 1051 PrivateAddr, CGF.ConvertTypeForMem(PrivateType)); 1052 CGF.pushDestroy(DTorKind, PrivateAddr, PrivateType); 1053 } 1054 } 1055 1056 static LValue loadToBegin(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy, 1057 LValue BaseLV) { 1058 BaseTy = BaseTy.getNonReferenceType(); 1059 while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) && 1060 !CGF.getContext().hasSameType(BaseTy, ElTy)) { 1061 if (auto *PtrTy = BaseTy->getAs<PointerType>()) 1062 BaseLV = CGF.EmitLoadOfPointerLValue(BaseLV.getAddress(), PtrTy); 1063 else { 1064 LValue RefLVal = CGF.MakeAddrLValue(BaseLV.getAddress(), BaseTy); 1065 BaseLV = CGF.EmitLoadOfReferenceLValue(RefLVal); 1066 } 1067 BaseTy = BaseTy->getPointeeType(); 1068 } 1069 return CGF.MakeAddrLValue( 1070 CGF.Builder.CreateElementBitCast(BaseLV.getAddress(), 1071 CGF.ConvertTypeForMem(ElTy)), 1072 BaseLV.getType(), BaseLV.getBaseInfo(), 1073 CGF.CGM.getTBAAInfoForSubobject(BaseLV, BaseLV.getType())); 1074 } 1075 1076 static Address castToBase(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy, 1077 llvm::Type *BaseLVType, CharUnits BaseLVAlignment, 1078 llvm::Value *Addr) { 1079 Address Tmp = Address::invalid(); 1080 Address TopTmp = Address::invalid(); 1081 Address MostTopTmp = Address::invalid(); 1082 BaseTy = BaseTy.getNonReferenceType(); 1083 while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) && 1084 !CGF.getContext().hasSameType(BaseTy, ElTy)) { 1085 Tmp = CGF.CreateMemTemp(BaseTy); 1086 if (TopTmp.isValid()) 1087 CGF.Builder.CreateStore(Tmp.getPointer(), TopTmp); 1088 else 1089 MostTopTmp = Tmp; 1090 TopTmp = Tmp; 1091 BaseTy = BaseTy->getPointeeType(); 1092 } 1093 llvm::Type *Ty = BaseLVType; 1094 if (Tmp.isValid()) 1095 Ty = Tmp.getElementType(); 1096 Addr = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(Addr, Ty); 1097 if (Tmp.isValid()) { 1098 CGF.Builder.CreateStore(Addr, Tmp); 1099 return MostTopTmp; 1100 } 1101 return Address(Addr, BaseLVAlignment); 1102 } 1103 1104 Address ReductionCodeGen::adjustPrivateAddress(CodeGenFunction &CGF, unsigned N, 1105 Address PrivateAddr) { 1106 const DeclRefExpr *DE; 1107 const VarDecl *OrigVD = nullptr; 1108 if (auto *OASE = dyn_cast<OMPArraySectionExpr>(ClausesData[N].Ref)) { 1109 auto *Base = OASE->getBase()->IgnoreParenImpCasts(); 1110 while (auto *TempOASE = dyn_cast<OMPArraySectionExpr>(Base)) 1111 Base = TempOASE->getBase()->IgnoreParenImpCasts(); 1112 while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base)) 1113 Base = TempASE->getBase()->IgnoreParenImpCasts(); 1114 DE = cast<DeclRefExpr>(Base); 1115 OrigVD = cast<VarDecl>(DE->getDecl()); 1116 } else if (auto *ASE = dyn_cast<ArraySubscriptExpr>(ClausesData[N].Ref)) { 1117 auto *Base = ASE->getBase()->IgnoreParenImpCasts(); 1118 while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base)) 1119 Base = TempASE->getBase()->IgnoreParenImpCasts(); 1120 DE = cast<DeclRefExpr>(Base); 1121 OrigVD = cast<VarDecl>(DE->getDecl()); 1122 } 1123 if (OrigVD) { 1124 BaseDecls.emplace_back(OrigVD); 1125 auto OriginalBaseLValue = CGF.EmitLValue(DE); 1126 LValue BaseLValue = 1127 loadToBegin(CGF, OrigVD->getType(), SharedAddresses[N].first.getType(), 1128 OriginalBaseLValue); 1129 llvm::Value *Adjustment = CGF.Builder.CreatePtrDiff( 1130 BaseLValue.getPointer(), SharedAddresses[N].first.getPointer()); 1131 llvm::Value *PrivatePointer = 1132 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 1133 PrivateAddr.getPointer(), 1134 SharedAddresses[N].first.getAddress().getType()); 1135 llvm::Value *Ptr = CGF.Builder.CreateGEP(PrivatePointer, Adjustment); 1136 return castToBase(CGF, OrigVD->getType(), 1137 SharedAddresses[N].first.getType(), 1138 OriginalBaseLValue.getAddress().getType(), 1139 OriginalBaseLValue.getAlignment(), Ptr); 1140 } 1141 BaseDecls.emplace_back( 1142 cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Ref)->getDecl())); 1143 return PrivateAddr; 1144 } 1145 1146 bool ReductionCodeGen::usesReductionInitializer(unsigned N) const { 1147 auto *DRD = getReductionInit(ClausesData[N].ReductionOp); 1148 return DRD && DRD->getInitializer(); 1149 } 1150 1151 LValue CGOpenMPRegionInfo::getThreadIDVariableLValue(CodeGenFunction &CGF) { 1152 return CGF.EmitLoadOfPointerLValue( 1153 CGF.GetAddrOfLocalVar(getThreadIDVariable()), 1154 getThreadIDVariable()->getType()->castAs<PointerType>()); 1155 } 1156 1157 void CGOpenMPRegionInfo::EmitBody(CodeGenFunction &CGF, const Stmt * /*S*/) { 1158 if (!CGF.HaveInsertPoint()) 1159 return; 1160 // 1.2.2 OpenMP Language Terminology 1161 // Structured block - An executable statement with a single entry at the 1162 // top and a single exit at the bottom. 1163 // The point of exit cannot be a branch out of the structured block. 1164 // longjmp() and throw() must not violate the entry/exit criteria. 1165 CGF.EHStack.pushTerminate(); 1166 CodeGen(CGF); 1167 CGF.EHStack.popTerminate(); 1168 } 1169 1170 LValue CGOpenMPTaskOutlinedRegionInfo::getThreadIDVariableLValue( 1171 CodeGenFunction &CGF) { 1172 return CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(getThreadIDVariable()), 1173 getThreadIDVariable()->getType(), 1174 AlignmentSource::Decl); 1175 } 1176 1177 CGOpenMPRuntime::CGOpenMPRuntime(CodeGenModule &CGM) 1178 : CGM(CGM), OffloadEntriesInfoManager(CGM) { 1179 IdentTy = llvm::StructType::create( 1180 "ident_t", CGM.Int32Ty /* reserved_1 */, CGM.Int32Ty /* flags */, 1181 CGM.Int32Ty /* reserved_2 */, CGM.Int32Ty /* reserved_3 */, 1182 CGM.Int8PtrTy /* psource */); 1183 KmpCriticalNameTy = llvm::ArrayType::get(CGM.Int32Ty, /*NumElements*/ 8); 1184 1185 loadOffloadInfoMetadata(); 1186 } 1187 1188 void CGOpenMPRuntime::clear() { 1189 InternalVars.clear(); 1190 } 1191 1192 static llvm::Function * 1193 emitCombinerOrInitializer(CodeGenModule &CGM, QualType Ty, 1194 const Expr *CombinerInitializer, const VarDecl *In, 1195 const VarDecl *Out, bool IsCombiner) { 1196 // void .omp_combiner.(Ty *in, Ty *out); 1197 auto &C = CGM.getContext(); 1198 QualType PtrTy = C.getPointerType(Ty).withRestrict(); 1199 FunctionArgList Args; 1200 ImplicitParamDecl OmpOutParm(C, /*DC=*/nullptr, Out->getLocation(), 1201 /*Id=*/nullptr, PtrTy, ImplicitParamDecl::Other); 1202 ImplicitParamDecl OmpInParm(C, /*DC=*/nullptr, In->getLocation(), 1203 /*Id=*/nullptr, PtrTy, ImplicitParamDecl::Other); 1204 Args.push_back(&OmpOutParm); 1205 Args.push_back(&OmpInParm); 1206 auto &FnInfo = 1207 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 1208 auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo); 1209 auto *Fn = llvm::Function::Create( 1210 FnTy, llvm::GlobalValue::InternalLinkage, 1211 IsCombiner ? ".omp_combiner." : ".omp_initializer.", &CGM.getModule()); 1212 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo); 1213 Fn->removeFnAttr(llvm::Attribute::NoInline); 1214 Fn->removeFnAttr(llvm::Attribute::OptimizeNone); 1215 Fn->addFnAttr(llvm::Attribute::AlwaysInline); 1216 CodeGenFunction CGF(CGM); 1217 // Map "T omp_in;" variable to "*omp_in_parm" value in all expressions. 1218 // Map "T omp_out;" variable to "*omp_out_parm" value in all expressions. 1219 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, In->getLocation(), 1220 Out->getLocation()); 1221 CodeGenFunction::OMPPrivateScope Scope(CGF); 1222 Address AddrIn = CGF.GetAddrOfLocalVar(&OmpInParm); 1223 Scope.addPrivate(In, [&CGF, AddrIn, PtrTy]() -> Address { 1224 return CGF.EmitLoadOfPointerLValue(AddrIn, PtrTy->castAs<PointerType>()) 1225 .getAddress(); 1226 }); 1227 Address AddrOut = CGF.GetAddrOfLocalVar(&OmpOutParm); 1228 Scope.addPrivate(Out, [&CGF, AddrOut, PtrTy]() -> Address { 1229 return CGF.EmitLoadOfPointerLValue(AddrOut, PtrTy->castAs<PointerType>()) 1230 .getAddress(); 1231 }); 1232 (void)Scope.Privatize(); 1233 if (!IsCombiner && Out->hasInit() && 1234 !CGF.isTrivialInitializer(Out->getInit())) { 1235 CGF.EmitAnyExprToMem(Out->getInit(), CGF.GetAddrOfLocalVar(Out), 1236 Out->getType().getQualifiers(), 1237 /*IsInitializer=*/true); 1238 } 1239 if (CombinerInitializer) 1240 CGF.EmitIgnoredExpr(CombinerInitializer); 1241 Scope.ForceCleanup(); 1242 CGF.FinishFunction(); 1243 return Fn; 1244 } 1245 1246 void CGOpenMPRuntime::emitUserDefinedReduction( 1247 CodeGenFunction *CGF, const OMPDeclareReductionDecl *D) { 1248 if (UDRMap.count(D) > 0) 1249 return; 1250 auto &C = CGM.getContext(); 1251 if (!In || !Out) { 1252 In = &C.Idents.get("omp_in"); 1253 Out = &C.Idents.get("omp_out"); 1254 } 1255 llvm::Function *Combiner = emitCombinerOrInitializer( 1256 CGM, D->getType(), D->getCombiner(), cast<VarDecl>(D->lookup(In).front()), 1257 cast<VarDecl>(D->lookup(Out).front()), 1258 /*IsCombiner=*/true); 1259 llvm::Function *Initializer = nullptr; 1260 if (auto *Init = D->getInitializer()) { 1261 if (!Priv || !Orig) { 1262 Priv = &C.Idents.get("omp_priv"); 1263 Orig = &C.Idents.get("omp_orig"); 1264 } 1265 Initializer = emitCombinerOrInitializer( 1266 CGM, D->getType(), 1267 D->getInitializerKind() == OMPDeclareReductionDecl::CallInit ? Init 1268 : nullptr, 1269 cast<VarDecl>(D->lookup(Orig).front()), 1270 cast<VarDecl>(D->lookup(Priv).front()), 1271 /*IsCombiner=*/false); 1272 } 1273 UDRMap.insert(std::make_pair(D, std::make_pair(Combiner, Initializer))); 1274 if (CGF) { 1275 auto &Decls = FunctionUDRMap.FindAndConstruct(CGF->CurFn); 1276 Decls.second.push_back(D); 1277 } 1278 } 1279 1280 std::pair<llvm::Function *, llvm::Function *> 1281 CGOpenMPRuntime::getUserDefinedReduction(const OMPDeclareReductionDecl *D) { 1282 auto I = UDRMap.find(D); 1283 if (I != UDRMap.end()) 1284 return I->second; 1285 emitUserDefinedReduction(/*CGF=*/nullptr, D); 1286 return UDRMap.lookup(D); 1287 } 1288 1289 // Layout information for ident_t. 1290 static CharUnits getIdentAlign(CodeGenModule &CGM) { 1291 return CGM.getPointerAlign(); 1292 } 1293 static CharUnits getIdentSize(CodeGenModule &CGM) { 1294 assert((4 * CGM.getPointerSize()).isMultipleOf(CGM.getPointerAlign())); 1295 return CharUnits::fromQuantity(16) + CGM.getPointerSize(); 1296 } 1297 static CharUnits getOffsetOfIdentField(IdentFieldIndex Field) { 1298 // All the fields except the last are i32, so this works beautifully. 1299 return unsigned(Field) * CharUnits::fromQuantity(4); 1300 } 1301 static Address createIdentFieldGEP(CodeGenFunction &CGF, Address Addr, 1302 IdentFieldIndex Field, 1303 const llvm::Twine &Name = "") { 1304 auto Offset = getOffsetOfIdentField(Field); 1305 return CGF.Builder.CreateStructGEP(Addr, Field, Offset, Name); 1306 } 1307 1308 static llvm::Value *emitParallelOrTeamsOutlinedFunction( 1309 CodeGenModule &CGM, const OMPExecutableDirective &D, const CapturedStmt *CS, 1310 const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind, 1311 const StringRef OutlinedHelperName, const RegionCodeGenTy &CodeGen) { 1312 assert(ThreadIDVar->getType()->isPointerType() && 1313 "thread id variable must be of type kmp_int32 *"); 1314 CodeGenFunction CGF(CGM, true); 1315 bool HasCancel = false; 1316 if (auto *OPD = dyn_cast<OMPParallelDirective>(&D)) 1317 HasCancel = OPD->hasCancel(); 1318 else if (auto *OPSD = dyn_cast<OMPParallelSectionsDirective>(&D)) 1319 HasCancel = OPSD->hasCancel(); 1320 else if (auto *OPFD = dyn_cast<OMPParallelForDirective>(&D)) 1321 HasCancel = OPFD->hasCancel(); 1322 else if (auto *OPFD = dyn_cast<OMPTargetParallelForDirective>(&D)) 1323 HasCancel = OPFD->hasCancel(); 1324 else if (auto *OPFD = dyn_cast<OMPDistributeParallelForDirective>(&D)) 1325 HasCancel = OPFD->hasCancel(); 1326 else if (auto *OPFD = dyn_cast<OMPTeamsDistributeParallelForDirective>(&D)) 1327 HasCancel = OPFD->hasCancel(); 1328 else if (auto *OPFD = 1329 dyn_cast<OMPTargetTeamsDistributeParallelForDirective>(&D)) 1330 HasCancel = OPFD->hasCancel(); 1331 CGOpenMPOutlinedRegionInfo CGInfo(*CS, ThreadIDVar, CodeGen, InnermostKind, 1332 HasCancel, OutlinedHelperName); 1333 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo); 1334 return CGF.GenerateOpenMPCapturedStmtFunction(*CS); 1335 } 1336 1337 llvm::Value *CGOpenMPRuntime::emitParallelOutlinedFunction( 1338 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 1339 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) { 1340 const CapturedStmt *CS = D.getCapturedStmt(OMPD_parallel); 1341 return emitParallelOrTeamsOutlinedFunction( 1342 CGM, D, CS, ThreadIDVar, InnermostKind, getOutlinedHelperName(), CodeGen); 1343 } 1344 1345 llvm::Value *CGOpenMPRuntime::emitTeamsOutlinedFunction( 1346 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 1347 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) { 1348 const CapturedStmt *CS = D.getCapturedStmt(OMPD_teams); 1349 return emitParallelOrTeamsOutlinedFunction( 1350 CGM, D, CS, ThreadIDVar, InnermostKind, getOutlinedHelperName(), CodeGen); 1351 } 1352 1353 llvm::Value *CGOpenMPRuntime::emitTaskOutlinedFunction( 1354 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 1355 const VarDecl *PartIDVar, const VarDecl *TaskTVar, 1356 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen, 1357 bool Tied, unsigned &NumberOfParts) { 1358 auto &&UntiedCodeGen = [this, &D, TaskTVar](CodeGenFunction &CGF, 1359 PrePostActionTy &) { 1360 auto *ThreadID = getThreadID(CGF, D.getLocStart()); 1361 auto *UpLoc = emitUpdateLocation(CGF, D.getLocStart()); 1362 llvm::Value *TaskArgs[] = { 1363 UpLoc, ThreadID, 1364 CGF.EmitLoadOfPointerLValue(CGF.GetAddrOfLocalVar(TaskTVar), 1365 TaskTVar->getType()->castAs<PointerType>()) 1366 .getPointer()}; 1367 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_task), TaskArgs); 1368 }; 1369 CGOpenMPTaskOutlinedRegionInfo::UntiedTaskActionTy Action(Tied, PartIDVar, 1370 UntiedCodeGen); 1371 CodeGen.setAction(Action); 1372 assert(!ThreadIDVar->getType()->isPointerType() && 1373 "thread id variable must be of type kmp_int32 for tasks"); 1374 auto *CS = cast<CapturedStmt>(D.getAssociatedStmt()); 1375 auto *TD = dyn_cast<OMPTaskDirective>(&D); 1376 CodeGenFunction CGF(CGM, true); 1377 CGOpenMPTaskOutlinedRegionInfo CGInfo(*CS, ThreadIDVar, CodeGen, 1378 InnermostKind, 1379 TD ? TD->hasCancel() : false, Action); 1380 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo); 1381 auto *Res = CGF.GenerateCapturedStmtFunction(*CS); 1382 if (!Tied) 1383 NumberOfParts = Action.getNumberOfParts(); 1384 return Res; 1385 } 1386 1387 Address CGOpenMPRuntime::getOrCreateDefaultLocation(unsigned Flags) { 1388 CharUnits Align = getIdentAlign(CGM); 1389 llvm::Value *Entry = OpenMPDefaultLocMap.lookup(Flags); 1390 if (!Entry) { 1391 if (!DefaultOpenMPPSource) { 1392 // Initialize default location for psource field of ident_t structure of 1393 // all ident_t objects. Format is ";file;function;line;column;;". 1394 // Taken from 1395 // http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp_str.c 1396 DefaultOpenMPPSource = 1397 CGM.GetAddrOfConstantCString(";unknown;unknown;0;0;;").getPointer(); 1398 DefaultOpenMPPSource = 1399 llvm::ConstantExpr::getBitCast(DefaultOpenMPPSource, CGM.Int8PtrTy); 1400 } 1401 1402 ConstantInitBuilder builder(CGM); 1403 auto fields = builder.beginStruct(IdentTy); 1404 fields.addInt(CGM.Int32Ty, 0); 1405 fields.addInt(CGM.Int32Ty, Flags); 1406 fields.addInt(CGM.Int32Ty, 0); 1407 fields.addInt(CGM.Int32Ty, 0); 1408 fields.add(DefaultOpenMPPSource); 1409 auto DefaultOpenMPLocation = 1410 fields.finishAndCreateGlobal("", Align, /*isConstant*/ true, 1411 llvm::GlobalValue::PrivateLinkage); 1412 DefaultOpenMPLocation->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global); 1413 1414 OpenMPDefaultLocMap[Flags] = Entry = DefaultOpenMPLocation; 1415 } 1416 return Address(Entry, Align); 1417 } 1418 1419 llvm::Value *CGOpenMPRuntime::emitUpdateLocation(CodeGenFunction &CGF, 1420 SourceLocation Loc, 1421 unsigned Flags) { 1422 Flags |= OMP_IDENT_KMPC; 1423 // If no debug info is generated - return global default location. 1424 if (CGM.getCodeGenOpts().getDebugInfo() == codegenoptions::NoDebugInfo || 1425 Loc.isInvalid()) 1426 return getOrCreateDefaultLocation(Flags).getPointer(); 1427 1428 assert(CGF.CurFn && "No function in current CodeGenFunction."); 1429 1430 Address LocValue = Address::invalid(); 1431 auto I = OpenMPLocThreadIDMap.find(CGF.CurFn); 1432 if (I != OpenMPLocThreadIDMap.end()) 1433 LocValue = Address(I->second.DebugLoc, getIdentAlign(CGF.CGM)); 1434 1435 // OpenMPLocThreadIDMap may have null DebugLoc and non-null ThreadID, if 1436 // GetOpenMPThreadID was called before this routine. 1437 if (!LocValue.isValid()) { 1438 // Generate "ident_t .kmpc_loc.addr;" 1439 Address AI = CGF.CreateTempAlloca(IdentTy, getIdentAlign(CGF.CGM), 1440 ".kmpc_loc.addr"); 1441 auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn); 1442 Elem.second.DebugLoc = AI.getPointer(); 1443 LocValue = AI; 1444 1445 CGBuilderTy::InsertPointGuard IPG(CGF.Builder); 1446 CGF.Builder.SetInsertPoint(CGF.AllocaInsertPt); 1447 CGF.Builder.CreateMemCpy(LocValue, getOrCreateDefaultLocation(Flags), 1448 CGM.getSize(getIdentSize(CGF.CGM))); 1449 } 1450 1451 // char **psource = &.kmpc_loc_<flags>.addr.psource; 1452 Address PSource = createIdentFieldGEP(CGF, LocValue, IdentField_PSource); 1453 1454 auto OMPDebugLoc = OpenMPDebugLocMap.lookup(Loc.getRawEncoding()); 1455 if (OMPDebugLoc == nullptr) { 1456 SmallString<128> Buffer2; 1457 llvm::raw_svector_ostream OS2(Buffer2); 1458 // Build debug location 1459 PresumedLoc PLoc = CGF.getContext().getSourceManager().getPresumedLoc(Loc); 1460 OS2 << ";" << PLoc.getFilename() << ";"; 1461 if (const FunctionDecl *FD = 1462 dyn_cast_or_null<FunctionDecl>(CGF.CurFuncDecl)) { 1463 OS2 << FD->getQualifiedNameAsString(); 1464 } 1465 OS2 << ";" << PLoc.getLine() << ";" << PLoc.getColumn() << ";;"; 1466 OMPDebugLoc = CGF.Builder.CreateGlobalStringPtr(OS2.str()); 1467 OpenMPDebugLocMap[Loc.getRawEncoding()] = OMPDebugLoc; 1468 } 1469 // *psource = ";<File>;<Function>;<Line>;<Column>;;"; 1470 CGF.Builder.CreateStore(OMPDebugLoc, PSource); 1471 1472 // Our callers always pass this to a runtime function, so for 1473 // convenience, go ahead and return a naked pointer. 1474 return LocValue.getPointer(); 1475 } 1476 1477 llvm::Value *CGOpenMPRuntime::getThreadID(CodeGenFunction &CGF, 1478 SourceLocation Loc) { 1479 assert(CGF.CurFn && "No function in current CodeGenFunction."); 1480 1481 llvm::Value *ThreadID = nullptr; 1482 // Check whether we've already cached a load of the thread id in this 1483 // function. 1484 auto I = OpenMPLocThreadIDMap.find(CGF.CurFn); 1485 if (I != OpenMPLocThreadIDMap.end()) { 1486 ThreadID = I->second.ThreadID; 1487 if (ThreadID != nullptr) 1488 return ThreadID; 1489 } 1490 // If exceptions are enabled, do not use parameter to avoid possible crash. 1491 if (!CGF.EHStack.requiresLandingPad() || !CGF.getLangOpts().Exceptions || 1492 !CGF.getLangOpts().CXXExceptions || 1493 CGF.Builder.GetInsertBlock() == CGF.AllocaInsertPt->getParent()) { 1494 if (auto *OMPRegionInfo = 1495 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) { 1496 if (OMPRegionInfo->getThreadIDVariable()) { 1497 // Check if this an outlined function with thread id passed as argument. 1498 auto LVal = OMPRegionInfo->getThreadIDVariableLValue(CGF); 1499 ThreadID = CGF.EmitLoadOfLValue(LVal, Loc).getScalarVal(); 1500 // If value loaded in entry block, cache it and use it everywhere in 1501 // function. 1502 if (CGF.Builder.GetInsertBlock() == CGF.AllocaInsertPt->getParent()) { 1503 auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn); 1504 Elem.second.ThreadID = ThreadID; 1505 } 1506 return ThreadID; 1507 } 1508 } 1509 } 1510 1511 // This is not an outlined function region - need to call __kmpc_int32 1512 // kmpc_global_thread_num(ident_t *loc). 1513 // Generate thread id value and cache this value for use across the 1514 // function. 1515 CGBuilderTy::InsertPointGuard IPG(CGF.Builder); 1516 CGF.Builder.SetInsertPoint(CGF.AllocaInsertPt); 1517 auto *Call = CGF.Builder.CreateCall( 1518 createRuntimeFunction(OMPRTL__kmpc_global_thread_num), 1519 emitUpdateLocation(CGF, Loc)); 1520 Call->setCallingConv(CGF.getRuntimeCC()); 1521 auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn); 1522 Elem.second.ThreadID = Call; 1523 return Call; 1524 } 1525 1526 void CGOpenMPRuntime::functionFinished(CodeGenFunction &CGF) { 1527 assert(CGF.CurFn && "No function in current CodeGenFunction."); 1528 if (OpenMPLocThreadIDMap.count(CGF.CurFn)) 1529 OpenMPLocThreadIDMap.erase(CGF.CurFn); 1530 if (FunctionUDRMap.count(CGF.CurFn) > 0) { 1531 for(auto *D : FunctionUDRMap[CGF.CurFn]) { 1532 UDRMap.erase(D); 1533 } 1534 FunctionUDRMap.erase(CGF.CurFn); 1535 } 1536 } 1537 1538 llvm::Type *CGOpenMPRuntime::getIdentTyPointerTy() { 1539 if (!IdentTy) { 1540 } 1541 return llvm::PointerType::getUnqual(IdentTy); 1542 } 1543 1544 llvm::Type *CGOpenMPRuntime::getKmpc_MicroPointerTy() { 1545 if (!Kmpc_MicroTy) { 1546 // Build void (*kmpc_micro)(kmp_int32 *global_tid, kmp_int32 *bound_tid,...) 1547 llvm::Type *MicroParams[] = {llvm::PointerType::getUnqual(CGM.Int32Ty), 1548 llvm::PointerType::getUnqual(CGM.Int32Ty)}; 1549 Kmpc_MicroTy = llvm::FunctionType::get(CGM.VoidTy, MicroParams, true); 1550 } 1551 return llvm::PointerType::getUnqual(Kmpc_MicroTy); 1552 } 1553 1554 llvm::Constant * 1555 CGOpenMPRuntime::createRuntimeFunction(unsigned Function) { 1556 llvm::Constant *RTLFn = nullptr; 1557 switch (static_cast<OpenMPRTLFunction>(Function)) { 1558 case OMPRTL__kmpc_fork_call: { 1559 // Build void __kmpc_fork_call(ident_t *loc, kmp_int32 argc, kmpc_micro 1560 // microtask, ...); 1561 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1562 getKmpc_MicroPointerTy()}; 1563 llvm::FunctionType *FnTy = 1564 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ true); 1565 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_fork_call"); 1566 break; 1567 } 1568 case OMPRTL__kmpc_global_thread_num: { 1569 // Build kmp_int32 __kmpc_global_thread_num(ident_t *loc); 1570 llvm::Type *TypeParams[] = {getIdentTyPointerTy()}; 1571 llvm::FunctionType *FnTy = 1572 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 1573 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_global_thread_num"); 1574 break; 1575 } 1576 case OMPRTL__kmpc_threadprivate_cached: { 1577 // Build void *__kmpc_threadprivate_cached(ident_t *loc, 1578 // kmp_int32 global_tid, void *data, size_t size, void ***cache); 1579 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1580 CGM.VoidPtrTy, CGM.SizeTy, 1581 CGM.VoidPtrTy->getPointerTo()->getPointerTo()}; 1582 llvm::FunctionType *FnTy = 1583 llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg*/ false); 1584 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_threadprivate_cached"); 1585 break; 1586 } 1587 case OMPRTL__kmpc_critical: { 1588 // Build void __kmpc_critical(ident_t *loc, kmp_int32 global_tid, 1589 // kmp_critical_name *crit); 1590 llvm::Type *TypeParams[] = { 1591 getIdentTyPointerTy(), CGM.Int32Ty, 1592 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1593 llvm::FunctionType *FnTy = 1594 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1595 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_critical"); 1596 break; 1597 } 1598 case OMPRTL__kmpc_critical_with_hint: { 1599 // Build void __kmpc_critical_with_hint(ident_t *loc, kmp_int32 global_tid, 1600 // kmp_critical_name *crit, uintptr_t hint); 1601 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1602 llvm::PointerType::getUnqual(KmpCriticalNameTy), 1603 CGM.IntPtrTy}; 1604 llvm::FunctionType *FnTy = 1605 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1606 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_critical_with_hint"); 1607 break; 1608 } 1609 case OMPRTL__kmpc_threadprivate_register: { 1610 // Build void __kmpc_threadprivate_register(ident_t *, void *data, 1611 // kmpc_ctor ctor, kmpc_cctor cctor, kmpc_dtor dtor); 1612 // typedef void *(*kmpc_ctor)(void *); 1613 auto KmpcCtorTy = 1614 llvm::FunctionType::get(CGM.VoidPtrTy, CGM.VoidPtrTy, 1615 /*isVarArg*/ false)->getPointerTo(); 1616 // typedef void *(*kmpc_cctor)(void *, void *); 1617 llvm::Type *KmpcCopyCtorTyArgs[] = {CGM.VoidPtrTy, CGM.VoidPtrTy}; 1618 auto KmpcCopyCtorTy = 1619 llvm::FunctionType::get(CGM.VoidPtrTy, KmpcCopyCtorTyArgs, 1620 /*isVarArg*/ false)->getPointerTo(); 1621 // typedef void (*kmpc_dtor)(void *); 1622 auto KmpcDtorTy = 1623 llvm::FunctionType::get(CGM.VoidTy, CGM.VoidPtrTy, /*isVarArg*/ false) 1624 ->getPointerTo(); 1625 llvm::Type *FnTyArgs[] = {getIdentTyPointerTy(), CGM.VoidPtrTy, KmpcCtorTy, 1626 KmpcCopyCtorTy, KmpcDtorTy}; 1627 auto FnTy = llvm::FunctionType::get(CGM.VoidTy, FnTyArgs, 1628 /*isVarArg*/ false); 1629 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_threadprivate_register"); 1630 break; 1631 } 1632 case OMPRTL__kmpc_end_critical: { 1633 // Build void __kmpc_end_critical(ident_t *loc, kmp_int32 global_tid, 1634 // kmp_critical_name *crit); 1635 llvm::Type *TypeParams[] = { 1636 getIdentTyPointerTy(), CGM.Int32Ty, 1637 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1638 llvm::FunctionType *FnTy = 1639 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1640 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_critical"); 1641 break; 1642 } 1643 case OMPRTL__kmpc_cancel_barrier: { 1644 // Build kmp_int32 __kmpc_cancel_barrier(ident_t *loc, kmp_int32 1645 // global_tid); 1646 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1647 llvm::FunctionType *FnTy = 1648 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 1649 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name*/ "__kmpc_cancel_barrier"); 1650 break; 1651 } 1652 case OMPRTL__kmpc_barrier: { 1653 // Build void __kmpc_barrier(ident_t *loc, kmp_int32 global_tid); 1654 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1655 llvm::FunctionType *FnTy = 1656 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1657 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name*/ "__kmpc_barrier"); 1658 break; 1659 } 1660 case OMPRTL__kmpc_for_static_fini: { 1661 // Build void __kmpc_for_static_fini(ident_t *loc, kmp_int32 global_tid); 1662 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1663 llvm::FunctionType *FnTy = 1664 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1665 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_for_static_fini"); 1666 break; 1667 } 1668 case OMPRTL__kmpc_push_num_threads: { 1669 // Build void __kmpc_push_num_threads(ident_t *loc, kmp_int32 global_tid, 1670 // kmp_int32 num_threads) 1671 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1672 CGM.Int32Ty}; 1673 llvm::FunctionType *FnTy = 1674 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1675 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_num_threads"); 1676 break; 1677 } 1678 case OMPRTL__kmpc_serialized_parallel: { 1679 // Build void __kmpc_serialized_parallel(ident_t *loc, kmp_int32 1680 // global_tid); 1681 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1682 llvm::FunctionType *FnTy = 1683 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1684 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_serialized_parallel"); 1685 break; 1686 } 1687 case OMPRTL__kmpc_end_serialized_parallel: { 1688 // Build void __kmpc_end_serialized_parallel(ident_t *loc, kmp_int32 1689 // global_tid); 1690 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1691 llvm::FunctionType *FnTy = 1692 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1693 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_serialized_parallel"); 1694 break; 1695 } 1696 case OMPRTL__kmpc_flush: { 1697 // Build void __kmpc_flush(ident_t *loc); 1698 llvm::Type *TypeParams[] = {getIdentTyPointerTy()}; 1699 llvm::FunctionType *FnTy = 1700 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1701 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_flush"); 1702 break; 1703 } 1704 case OMPRTL__kmpc_master: { 1705 // Build kmp_int32 __kmpc_master(ident_t *loc, kmp_int32 global_tid); 1706 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1707 llvm::FunctionType *FnTy = 1708 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1709 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_master"); 1710 break; 1711 } 1712 case OMPRTL__kmpc_end_master: { 1713 // Build void __kmpc_end_master(ident_t *loc, kmp_int32 global_tid); 1714 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1715 llvm::FunctionType *FnTy = 1716 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1717 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_master"); 1718 break; 1719 } 1720 case OMPRTL__kmpc_omp_taskyield: { 1721 // Build kmp_int32 __kmpc_omp_taskyield(ident_t *, kmp_int32 global_tid, 1722 // int end_part); 1723 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy}; 1724 llvm::FunctionType *FnTy = 1725 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1726 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_taskyield"); 1727 break; 1728 } 1729 case OMPRTL__kmpc_single: { 1730 // Build kmp_int32 __kmpc_single(ident_t *loc, kmp_int32 global_tid); 1731 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1732 llvm::FunctionType *FnTy = 1733 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1734 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_single"); 1735 break; 1736 } 1737 case OMPRTL__kmpc_end_single: { 1738 // Build void __kmpc_end_single(ident_t *loc, kmp_int32 global_tid); 1739 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1740 llvm::FunctionType *FnTy = 1741 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1742 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_single"); 1743 break; 1744 } 1745 case OMPRTL__kmpc_omp_task_alloc: { 1746 // Build kmp_task_t *__kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid, 1747 // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds, 1748 // kmp_routine_entry_t *task_entry); 1749 assert(KmpRoutineEntryPtrTy != nullptr && 1750 "Type kmp_routine_entry_t must be created."); 1751 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, 1752 CGM.SizeTy, CGM.SizeTy, KmpRoutineEntryPtrTy}; 1753 // Return void * and then cast to particular kmp_task_t type. 1754 llvm::FunctionType *FnTy = 1755 llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false); 1756 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_alloc"); 1757 break; 1758 } 1759 case OMPRTL__kmpc_omp_task: { 1760 // Build kmp_int32 __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t 1761 // *new_task); 1762 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1763 CGM.VoidPtrTy}; 1764 llvm::FunctionType *FnTy = 1765 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1766 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task"); 1767 break; 1768 } 1769 case OMPRTL__kmpc_copyprivate: { 1770 // Build void __kmpc_copyprivate(ident_t *loc, kmp_int32 global_tid, 1771 // size_t cpy_size, void *cpy_data, void(*cpy_func)(void *, void *), 1772 // kmp_int32 didit); 1773 llvm::Type *CpyTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy}; 1774 auto *CpyFnTy = 1775 llvm::FunctionType::get(CGM.VoidTy, CpyTypeParams, /*isVarArg=*/false); 1776 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.SizeTy, 1777 CGM.VoidPtrTy, CpyFnTy->getPointerTo(), 1778 CGM.Int32Ty}; 1779 llvm::FunctionType *FnTy = 1780 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1781 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_copyprivate"); 1782 break; 1783 } 1784 case OMPRTL__kmpc_reduce: { 1785 // Build kmp_int32 __kmpc_reduce(ident_t *loc, kmp_int32 global_tid, 1786 // kmp_int32 num_vars, size_t reduce_size, void *reduce_data, void 1787 // (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name *lck); 1788 llvm::Type *ReduceTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy}; 1789 auto *ReduceFnTy = llvm::FunctionType::get(CGM.VoidTy, ReduceTypeParams, 1790 /*isVarArg=*/false); 1791 llvm::Type *TypeParams[] = { 1792 getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, CGM.SizeTy, 1793 CGM.VoidPtrTy, ReduceFnTy->getPointerTo(), 1794 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1795 llvm::FunctionType *FnTy = 1796 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1797 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_reduce"); 1798 break; 1799 } 1800 case OMPRTL__kmpc_reduce_nowait: { 1801 // Build kmp_int32 __kmpc_reduce_nowait(ident_t *loc, kmp_int32 1802 // global_tid, kmp_int32 num_vars, size_t reduce_size, void *reduce_data, 1803 // void (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name 1804 // *lck); 1805 llvm::Type *ReduceTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy}; 1806 auto *ReduceFnTy = llvm::FunctionType::get(CGM.VoidTy, ReduceTypeParams, 1807 /*isVarArg=*/false); 1808 llvm::Type *TypeParams[] = { 1809 getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, CGM.SizeTy, 1810 CGM.VoidPtrTy, ReduceFnTy->getPointerTo(), 1811 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1812 llvm::FunctionType *FnTy = 1813 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1814 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_reduce_nowait"); 1815 break; 1816 } 1817 case OMPRTL__kmpc_end_reduce: { 1818 // Build void __kmpc_end_reduce(ident_t *loc, kmp_int32 global_tid, 1819 // kmp_critical_name *lck); 1820 llvm::Type *TypeParams[] = { 1821 getIdentTyPointerTy(), CGM.Int32Ty, 1822 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1823 llvm::FunctionType *FnTy = 1824 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1825 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_reduce"); 1826 break; 1827 } 1828 case OMPRTL__kmpc_end_reduce_nowait: { 1829 // Build __kmpc_end_reduce_nowait(ident_t *loc, kmp_int32 global_tid, 1830 // kmp_critical_name *lck); 1831 llvm::Type *TypeParams[] = { 1832 getIdentTyPointerTy(), CGM.Int32Ty, 1833 llvm::PointerType::getUnqual(KmpCriticalNameTy)}; 1834 llvm::FunctionType *FnTy = 1835 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1836 RTLFn = 1837 CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_reduce_nowait"); 1838 break; 1839 } 1840 case OMPRTL__kmpc_omp_task_begin_if0: { 1841 // Build void __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t 1842 // *new_task); 1843 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1844 CGM.VoidPtrTy}; 1845 llvm::FunctionType *FnTy = 1846 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1847 RTLFn = 1848 CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_begin_if0"); 1849 break; 1850 } 1851 case OMPRTL__kmpc_omp_task_complete_if0: { 1852 // Build void __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t 1853 // *new_task); 1854 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1855 CGM.VoidPtrTy}; 1856 llvm::FunctionType *FnTy = 1857 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1858 RTLFn = CGM.CreateRuntimeFunction(FnTy, 1859 /*Name=*/"__kmpc_omp_task_complete_if0"); 1860 break; 1861 } 1862 case OMPRTL__kmpc_ordered: { 1863 // Build void __kmpc_ordered(ident_t *loc, kmp_int32 global_tid); 1864 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1865 llvm::FunctionType *FnTy = 1866 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1867 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_ordered"); 1868 break; 1869 } 1870 case OMPRTL__kmpc_end_ordered: { 1871 // Build void __kmpc_end_ordered(ident_t *loc, kmp_int32 global_tid); 1872 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1873 llvm::FunctionType *FnTy = 1874 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1875 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_ordered"); 1876 break; 1877 } 1878 case OMPRTL__kmpc_omp_taskwait: { 1879 // Build kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32 global_tid); 1880 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1881 llvm::FunctionType *FnTy = 1882 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1883 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_omp_taskwait"); 1884 break; 1885 } 1886 case OMPRTL__kmpc_taskgroup: { 1887 // Build void __kmpc_taskgroup(ident_t *loc, kmp_int32 global_tid); 1888 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1889 llvm::FunctionType *FnTy = 1890 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1891 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_taskgroup"); 1892 break; 1893 } 1894 case OMPRTL__kmpc_end_taskgroup: { 1895 // Build void __kmpc_end_taskgroup(ident_t *loc, kmp_int32 global_tid); 1896 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 1897 llvm::FunctionType *FnTy = 1898 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1899 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_taskgroup"); 1900 break; 1901 } 1902 case OMPRTL__kmpc_push_proc_bind: { 1903 // Build void __kmpc_push_proc_bind(ident_t *loc, kmp_int32 global_tid, 1904 // int proc_bind) 1905 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy}; 1906 llvm::FunctionType *FnTy = 1907 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 1908 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_proc_bind"); 1909 break; 1910 } 1911 case OMPRTL__kmpc_omp_task_with_deps: { 1912 // Build kmp_int32 __kmpc_omp_task_with_deps(ident_t *, kmp_int32 gtid, 1913 // kmp_task_t *new_task, kmp_int32 ndeps, kmp_depend_info_t *dep_list, 1914 // kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list); 1915 llvm::Type *TypeParams[] = { 1916 getIdentTyPointerTy(), CGM.Int32Ty, CGM.VoidPtrTy, CGM.Int32Ty, 1917 CGM.VoidPtrTy, CGM.Int32Ty, CGM.VoidPtrTy}; 1918 llvm::FunctionType *FnTy = 1919 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false); 1920 RTLFn = 1921 CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_with_deps"); 1922 break; 1923 } 1924 case OMPRTL__kmpc_omp_wait_deps: { 1925 // Build void __kmpc_omp_wait_deps(ident_t *, kmp_int32 gtid, 1926 // kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32 ndeps_noalias, 1927 // kmp_depend_info_t *noalias_dep_list); 1928 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1929 CGM.Int32Ty, CGM.VoidPtrTy, 1930 CGM.Int32Ty, CGM.VoidPtrTy}; 1931 llvm::FunctionType *FnTy = 1932 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1933 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_wait_deps"); 1934 break; 1935 } 1936 case OMPRTL__kmpc_cancellationpoint: { 1937 // Build kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32 1938 // global_tid, kmp_int32 cncl_kind) 1939 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy}; 1940 llvm::FunctionType *FnTy = 1941 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 1942 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_cancellationpoint"); 1943 break; 1944 } 1945 case OMPRTL__kmpc_cancel: { 1946 // Build kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid, 1947 // kmp_int32 cncl_kind) 1948 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy}; 1949 llvm::FunctionType *FnTy = 1950 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 1951 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_cancel"); 1952 break; 1953 } 1954 case OMPRTL__kmpc_push_num_teams: { 1955 // Build void kmpc_push_num_teams (ident_t loc, kmp_int32 global_tid, 1956 // kmp_int32 num_teams, kmp_int32 num_threads) 1957 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, 1958 CGM.Int32Ty}; 1959 llvm::FunctionType *FnTy = 1960 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 1961 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_num_teams"); 1962 break; 1963 } 1964 case OMPRTL__kmpc_fork_teams: { 1965 // Build void __kmpc_fork_teams(ident_t *loc, kmp_int32 argc, kmpc_micro 1966 // microtask, ...); 1967 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 1968 getKmpc_MicroPointerTy()}; 1969 llvm::FunctionType *FnTy = 1970 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ true); 1971 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_fork_teams"); 1972 break; 1973 } 1974 case OMPRTL__kmpc_taskloop: { 1975 // Build void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int 1976 // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int 1977 // sched, kmp_uint64 grainsize, void *task_dup); 1978 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), 1979 CGM.IntTy, 1980 CGM.VoidPtrTy, 1981 CGM.IntTy, 1982 CGM.Int64Ty->getPointerTo(), 1983 CGM.Int64Ty->getPointerTo(), 1984 CGM.Int64Ty, 1985 CGM.IntTy, 1986 CGM.IntTy, 1987 CGM.Int64Ty, 1988 CGM.VoidPtrTy}; 1989 llvm::FunctionType *FnTy = 1990 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 1991 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_taskloop"); 1992 break; 1993 } 1994 case OMPRTL__kmpc_doacross_init: { 1995 // Build void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid, kmp_int32 1996 // num_dims, struct kmp_dim *dims); 1997 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), 1998 CGM.Int32Ty, 1999 CGM.Int32Ty, 2000 CGM.VoidPtrTy}; 2001 llvm::FunctionType *FnTy = 2002 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2003 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_init"); 2004 break; 2005 } 2006 case OMPRTL__kmpc_doacross_fini: { 2007 // Build void __kmpc_doacross_fini(ident_t *loc, kmp_int32 gtid); 2008 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty}; 2009 llvm::FunctionType *FnTy = 2010 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2011 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_fini"); 2012 break; 2013 } 2014 case OMPRTL__kmpc_doacross_post: { 2015 // Build void __kmpc_doacross_post(ident_t *loc, kmp_int32 gtid, kmp_int64 2016 // *vec); 2017 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 2018 CGM.Int64Ty->getPointerTo()}; 2019 llvm::FunctionType *FnTy = 2020 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2021 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_post"); 2022 break; 2023 } 2024 case OMPRTL__kmpc_doacross_wait: { 2025 // Build void __kmpc_doacross_wait(ident_t *loc, kmp_int32 gtid, kmp_int64 2026 // *vec); 2027 llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, 2028 CGM.Int64Ty->getPointerTo()}; 2029 llvm::FunctionType *FnTy = 2030 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2031 RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_wait"); 2032 break; 2033 } 2034 case OMPRTL__kmpc_task_reduction_init: { 2035 // Build void *__kmpc_task_reduction_init(int gtid, int num_data, void 2036 // *data); 2037 llvm::Type *TypeParams[] = {CGM.IntTy, CGM.IntTy, CGM.VoidPtrTy}; 2038 llvm::FunctionType *FnTy = 2039 llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false); 2040 RTLFn = 2041 CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_task_reduction_init"); 2042 break; 2043 } 2044 case OMPRTL__kmpc_task_reduction_get_th_data: { 2045 // Build void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void 2046 // *d); 2047 llvm::Type *TypeParams[] = {CGM.IntTy, CGM.VoidPtrTy, CGM.VoidPtrTy}; 2048 llvm::FunctionType *FnTy = 2049 llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false); 2050 RTLFn = CGM.CreateRuntimeFunction( 2051 FnTy, /*Name=*/"__kmpc_task_reduction_get_th_data"); 2052 break; 2053 } 2054 case OMPRTL__tgt_target: { 2055 // Build int32_t __tgt_target(int64_t device_id, void *host_ptr, int32_t 2056 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 2057 // *arg_types); 2058 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2059 CGM.VoidPtrTy, 2060 CGM.Int32Ty, 2061 CGM.VoidPtrPtrTy, 2062 CGM.VoidPtrPtrTy, 2063 CGM.SizeTy->getPointerTo(), 2064 CGM.Int64Ty->getPointerTo()}; 2065 llvm::FunctionType *FnTy = 2066 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2067 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target"); 2068 break; 2069 } 2070 case OMPRTL__tgt_target_nowait: { 2071 // Build int32_t __tgt_target_nowait(int64_t device_id, void *host_ptr, 2072 // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, 2073 // int64_t *arg_types); 2074 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2075 CGM.VoidPtrTy, 2076 CGM.Int32Ty, 2077 CGM.VoidPtrPtrTy, 2078 CGM.VoidPtrPtrTy, 2079 CGM.SizeTy->getPointerTo(), 2080 CGM.Int64Ty->getPointerTo()}; 2081 llvm::FunctionType *FnTy = 2082 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2083 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_nowait"); 2084 break; 2085 } 2086 case OMPRTL__tgt_target_teams: { 2087 // Build int32_t __tgt_target_teams(int64_t device_id, void *host_ptr, 2088 // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, 2089 // int64_t *arg_types, int32_t num_teams, int32_t thread_limit); 2090 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2091 CGM.VoidPtrTy, 2092 CGM.Int32Ty, 2093 CGM.VoidPtrPtrTy, 2094 CGM.VoidPtrPtrTy, 2095 CGM.SizeTy->getPointerTo(), 2096 CGM.Int64Ty->getPointerTo(), 2097 CGM.Int32Ty, 2098 CGM.Int32Ty}; 2099 llvm::FunctionType *FnTy = 2100 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2101 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_teams"); 2102 break; 2103 } 2104 case OMPRTL__tgt_target_teams_nowait: { 2105 // Build int32_t __tgt_target_teams_nowait(int64_t device_id, void 2106 // *host_ptr, int32_t arg_num, void** args_base, void **args, size_t 2107 // *arg_sizes, int64_t *arg_types, int32_t num_teams, int32_t thread_limit); 2108 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2109 CGM.VoidPtrTy, 2110 CGM.Int32Ty, 2111 CGM.VoidPtrPtrTy, 2112 CGM.VoidPtrPtrTy, 2113 CGM.SizeTy->getPointerTo(), 2114 CGM.Int64Ty->getPointerTo(), 2115 CGM.Int32Ty, 2116 CGM.Int32Ty}; 2117 llvm::FunctionType *FnTy = 2118 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2119 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_teams_nowait"); 2120 break; 2121 } 2122 case OMPRTL__tgt_register_lib: { 2123 // Build void __tgt_register_lib(__tgt_bin_desc *desc); 2124 QualType ParamTy = 2125 CGM.getContext().getPointerType(getTgtBinaryDescriptorQTy()); 2126 llvm::Type *TypeParams[] = {CGM.getTypes().ConvertTypeForMem(ParamTy)}; 2127 llvm::FunctionType *FnTy = 2128 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2129 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_register_lib"); 2130 break; 2131 } 2132 case OMPRTL__tgt_unregister_lib: { 2133 // Build void __tgt_unregister_lib(__tgt_bin_desc *desc); 2134 QualType ParamTy = 2135 CGM.getContext().getPointerType(getTgtBinaryDescriptorQTy()); 2136 llvm::Type *TypeParams[] = {CGM.getTypes().ConvertTypeForMem(ParamTy)}; 2137 llvm::FunctionType *FnTy = 2138 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2139 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_unregister_lib"); 2140 break; 2141 } 2142 case OMPRTL__tgt_target_data_begin: { 2143 // Build void __tgt_target_data_begin(int64_t device_id, int32_t arg_num, 2144 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 2145 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2146 CGM.Int32Ty, 2147 CGM.VoidPtrPtrTy, 2148 CGM.VoidPtrPtrTy, 2149 CGM.SizeTy->getPointerTo(), 2150 CGM.Int64Ty->getPointerTo()}; 2151 llvm::FunctionType *FnTy = 2152 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 2153 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_begin"); 2154 break; 2155 } 2156 case OMPRTL__tgt_target_data_begin_nowait: { 2157 // Build void __tgt_target_data_begin_nowait(int64_t device_id, int32_t 2158 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 2159 // *arg_types); 2160 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2161 CGM.Int32Ty, 2162 CGM.VoidPtrPtrTy, 2163 CGM.VoidPtrPtrTy, 2164 CGM.SizeTy->getPointerTo(), 2165 CGM.Int64Ty->getPointerTo()}; 2166 auto *FnTy = 2167 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2168 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_begin_nowait"); 2169 break; 2170 } 2171 case OMPRTL__tgt_target_data_end: { 2172 // Build void __tgt_target_data_end(int64_t device_id, int32_t arg_num, 2173 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 2174 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2175 CGM.Int32Ty, 2176 CGM.VoidPtrPtrTy, 2177 CGM.VoidPtrPtrTy, 2178 CGM.SizeTy->getPointerTo(), 2179 CGM.Int64Ty->getPointerTo()}; 2180 llvm::FunctionType *FnTy = 2181 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 2182 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_end"); 2183 break; 2184 } 2185 case OMPRTL__tgt_target_data_end_nowait: { 2186 // Build void __tgt_target_data_end_nowait(int64_t device_id, int32_t 2187 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 2188 // *arg_types); 2189 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2190 CGM.Int32Ty, 2191 CGM.VoidPtrPtrTy, 2192 CGM.VoidPtrPtrTy, 2193 CGM.SizeTy->getPointerTo(), 2194 CGM.Int64Ty->getPointerTo()}; 2195 auto *FnTy = 2196 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2197 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_end_nowait"); 2198 break; 2199 } 2200 case OMPRTL__tgt_target_data_update: { 2201 // Build void __tgt_target_data_update(int64_t device_id, int32_t arg_num, 2202 // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types); 2203 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2204 CGM.Int32Ty, 2205 CGM.VoidPtrPtrTy, 2206 CGM.VoidPtrPtrTy, 2207 CGM.SizeTy->getPointerTo(), 2208 CGM.Int64Ty->getPointerTo()}; 2209 llvm::FunctionType *FnTy = 2210 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 2211 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_update"); 2212 break; 2213 } 2214 case OMPRTL__tgt_target_data_update_nowait: { 2215 // Build void __tgt_target_data_update_nowait(int64_t device_id, int32_t 2216 // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t 2217 // *arg_types); 2218 llvm::Type *TypeParams[] = {CGM.Int64Ty, 2219 CGM.Int32Ty, 2220 CGM.VoidPtrPtrTy, 2221 CGM.VoidPtrPtrTy, 2222 CGM.SizeTy->getPointerTo(), 2223 CGM.Int64Ty->getPointerTo()}; 2224 auto *FnTy = 2225 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2226 RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_update_nowait"); 2227 break; 2228 } 2229 } 2230 assert(RTLFn && "Unable to find OpenMP runtime function"); 2231 return RTLFn; 2232 } 2233 2234 llvm::Constant *CGOpenMPRuntime::createForStaticInitFunction(unsigned IVSize, 2235 bool IVSigned) { 2236 assert((IVSize == 32 || IVSize == 64) && 2237 "IV size is not compatible with the omp runtime"); 2238 auto Name = IVSize == 32 ? (IVSigned ? "__kmpc_for_static_init_4" 2239 : "__kmpc_for_static_init_4u") 2240 : (IVSigned ? "__kmpc_for_static_init_8" 2241 : "__kmpc_for_static_init_8u"); 2242 auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty; 2243 auto PtrTy = llvm::PointerType::getUnqual(ITy); 2244 llvm::Type *TypeParams[] = { 2245 getIdentTyPointerTy(), // loc 2246 CGM.Int32Ty, // tid 2247 CGM.Int32Ty, // schedtype 2248 llvm::PointerType::getUnqual(CGM.Int32Ty), // p_lastiter 2249 PtrTy, // p_lower 2250 PtrTy, // p_upper 2251 PtrTy, // p_stride 2252 ITy, // incr 2253 ITy // chunk 2254 }; 2255 llvm::FunctionType *FnTy = 2256 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 2257 return CGM.CreateRuntimeFunction(FnTy, Name); 2258 } 2259 2260 llvm::Constant *CGOpenMPRuntime::createDispatchInitFunction(unsigned IVSize, 2261 bool IVSigned) { 2262 assert((IVSize == 32 || IVSize == 64) && 2263 "IV size is not compatible with the omp runtime"); 2264 auto Name = 2265 IVSize == 32 2266 ? (IVSigned ? "__kmpc_dispatch_init_4" : "__kmpc_dispatch_init_4u") 2267 : (IVSigned ? "__kmpc_dispatch_init_8" : "__kmpc_dispatch_init_8u"); 2268 auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty; 2269 llvm::Type *TypeParams[] = { getIdentTyPointerTy(), // loc 2270 CGM.Int32Ty, // tid 2271 CGM.Int32Ty, // schedtype 2272 ITy, // lower 2273 ITy, // upper 2274 ITy, // stride 2275 ITy // chunk 2276 }; 2277 llvm::FunctionType *FnTy = 2278 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false); 2279 return CGM.CreateRuntimeFunction(FnTy, Name); 2280 } 2281 2282 llvm::Constant *CGOpenMPRuntime::createDispatchFiniFunction(unsigned IVSize, 2283 bool IVSigned) { 2284 assert((IVSize == 32 || IVSize == 64) && 2285 "IV size is not compatible with the omp runtime"); 2286 auto Name = 2287 IVSize == 32 2288 ? (IVSigned ? "__kmpc_dispatch_fini_4" : "__kmpc_dispatch_fini_4u") 2289 : (IVSigned ? "__kmpc_dispatch_fini_8" : "__kmpc_dispatch_fini_8u"); 2290 llvm::Type *TypeParams[] = { 2291 getIdentTyPointerTy(), // loc 2292 CGM.Int32Ty, // tid 2293 }; 2294 llvm::FunctionType *FnTy = 2295 llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false); 2296 return CGM.CreateRuntimeFunction(FnTy, Name); 2297 } 2298 2299 llvm::Constant *CGOpenMPRuntime::createDispatchNextFunction(unsigned IVSize, 2300 bool IVSigned) { 2301 assert((IVSize == 32 || IVSize == 64) && 2302 "IV size is not compatible with the omp runtime"); 2303 auto Name = 2304 IVSize == 32 2305 ? (IVSigned ? "__kmpc_dispatch_next_4" : "__kmpc_dispatch_next_4u") 2306 : (IVSigned ? "__kmpc_dispatch_next_8" : "__kmpc_dispatch_next_8u"); 2307 auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty; 2308 auto PtrTy = llvm::PointerType::getUnqual(ITy); 2309 llvm::Type *TypeParams[] = { 2310 getIdentTyPointerTy(), // loc 2311 CGM.Int32Ty, // tid 2312 llvm::PointerType::getUnqual(CGM.Int32Ty), // p_lastiter 2313 PtrTy, // p_lower 2314 PtrTy, // p_upper 2315 PtrTy // p_stride 2316 }; 2317 llvm::FunctionType *FnTy = 2318 llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false); 2319 return CGM.CreateRuntimeFunction(FnTy, Name); 2320 } 2321 2322 llvm::Constant * 2323 CGOpenMPRuntime::getOrCreateThreadPrivateCache(const VarDecl *VD) { 2324 assert(!CGM.getLangOpts().OpenMPUseTLS || 2325 !CGM.getContext().getTargetInfo().isTLSSupported()); 2326 // Lookup the entry, lazily creating it if necessary. 2327 return getOrCreateInternalVariable(CGM.Int8PtrPtrTy, 2328 Twine(CGM.getMangledName(VD)) + ".cache."); 2329 } 2330 2331 Address CGOpenMPRuntime::getAddrOfThreadPrivate(CodeGenFunction &CGF, 2332 const VarDecl *VD, 2333 Address VDAddr, 2334 SourceLocation Loc) { 2335 if (CGM.getLangOpts().OpenMPUseTLS && 2336 CGM.getContext().getTargetInfo().isTLSSupported()) 2337 return VDAddr; 2338 2339 auto VarTy = VDAddr.getElementType(); 2340 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 2341 CGF.Builder.CreatePointerCast(VDAddr.getPointer(), 2342 CGM.Int8PtrTy), 2343 CGM.getSize(CGM.GetTargetTypeStoreSize(VarTy)), 2344 getOrCreateThreadPrivateCache(VD)}; 2345 return Address(CGF.EmitRuntimeCall( 2346 createRuntimeFunction(OMPRTL__kmpc_threadprivate_cached), Args), 2347 VDAddr.getAlignment()); 2348 } 2349 2350 void CGOpenMPRuntime::emitThreadPrivateVarInit( 2351 CodeGenFunction &CGF, Address VDAddr, llvm::Value *Ctor, 2352 llvm::Value *CopyCtor, llvm::Value *Dtor, SourceLocation Loc) { 2353 // Call kmp_int32 __kmpc_global_thread_num(&loc) to init OpenMP runtime 2354 // library. 2355 auto OMPLoc = emitUpdateLocation(CGF, Loc); 2356 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_global_thread_num), 2357 OMPLoc); 2358 // Call __kmpc_threadprivate_register(&loc, &var, ctor, cctor/*NULL*/, dtor) 2359 // to register constructor/destructor for variable. 2360 llvm::Value *Args[] = {OMPLoc, 2361 CGF.Builder.CreatePointerCast(VDAddr.getPointer(), 2362 CGM.VoidPtrTy), 2363 Ctor, CopyCtor, Dtor}; 2364 CGF.EmitRuntimeCall( 2365 createRuntimeFunction(OMPRTL__kmpc_threadprivate_register), Args); 2366 } 2367 2368 llvm::Function *CGOpenMPRuntime::emitThreadPrivateVarDefinition( 2369 const VarDecl *VD, Address VDAddr, SourceLocation Loc, 2370 bool PerformInit, CodeGenFunction *CGF) { 2371 if (CGM.getLangOpts().OpenMPUseTLS && 2372 CGM.getContext().getTargetInfo().isTLSSupported()) 2373 return nullptr; 2374 2375 VD = VD->getDefinition(CGM.getContext()); 2376 if (VD && ThreadPrivateWithDefinition.count(VD) == 0) { 2377 ThreadPrivateWithDefinition.insert(VD); 2378 QualType ASTTy = VD->getType(); 2379 2380 llvm::Value *Ctor = nullptr, *CopyCtor = nullptr, *Dtor = nullptr; 2381 auto Init = VD->getAnyInitializer(); 2382 if (CGM.getLangOpts().CPlusPlus && PerformInit) { 2383 // Generate function that re-emits the declaration's initializer into the 2384 // threadprivate copy of the variable VD 2385 CodeGenFunction CtorCGF(CGM); 2386 FunctionArgList Args; 2387 ImplicitParamDecl Dst(CGM.getContext(), /*DC=*/nullptr, Loc, 2388 /*Id=*/nullptr, CGM.getContext().VoidPtrTy, 2389 ImplicitParamDecl::Other); 2390 Args.push_back(&Dst); 2391 2392 auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration( 2393 CGM.getContext().VoidPtrTy, Args); 2394 auto FTy = CGM.getTypes().GetFunctionType(FI); 2395 auto Fn = CGM.CreateGlobalInitOrDestructFunction( 2396 FTy, ".__kmpc_global_ctor_.", FI, Loc); 2397 CtorCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidPtrTy, Fn, FI, 2398 Args, Loc, Loc); 2399 auto ArgVal = CtorCGF.EmitLoadOfScalar( 2400 CtorCGF.GetAddrOfLocalVar(&Dst), /*Volatile=*/false, 2401 CGM.getContext().VoidPtrTy, Dst.getLocation()); 2402 Address Arg = Address(ArgVal, VDAddr.getAlignment()); 2403 Arg = CtorCGF.Builder.CreateElementBitCast( 2404 Arg, CtorCGF.ConvertTypeForMem(ASTTy)); 2405 CtorCGF.EmitAnyExprToMem(Init, Arg, Init->getType().getQualifiers(), 2406 /*IsInitializer=*/true); 2407 ArgVal = CtorCGF.EmitLoadOfScalar( 2408 CtorCGF.GetAddrOfLocalVar(&Dst), /*Volatile=*/false, 2409 CGM.getContext().VoidPtrTy, Dst.getLocation()); 2410 CtorCGF.Builder.CreateStore(ArgVal, CtorCGF.ReturnValue); 2411 CtorCGF.FinishFunction(); 2412 Ctor = Fn; 2413 } 2414 if (VD->getType().isDestructedType() != QualType::DK_none) { 2415 // Generate function that emits destructor call for the threadprivate copy 2416 // of the variable VD 2417 CodeGenFunction DtorCGF(CGM); 2418 FunctionArgList Args; 2419 ImplicitParamDecl Dst(CGM.getContext(), /*DC=*/nullptr, Loc, 2420 /*Id=*/nullptr, CGM.getContext().VoidPtrTy, 2421 ImplicitParamDecl::Other); 2422 Args.push_back(&Dst); 2423 2424 auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration( 2425 CGM.getContext().VoidTy, Args); 2426 auto FTy = CGM.getTypes().GetFunctionType(FI); 2427 auto Fn = CGM.CreateGlobalInitOrDestructFunction( 2428 FTy, ".__kmpc_global_dtor_.", FI, Loc); 2429 auto NL = ApplyDebugLocation::CreateEmpty(DtorCGF); 2430 DtorCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidTy, Fn, FI, Args, 2431 Loc, Loc); 2432 // Create a scope with an artificial location for the body of this function. 2433 auto AL = ApplyDebugLocation::CreateArtificial(DtorCGF); 2434 auto ArgVal = DtorCGF.EmitLoadOfScalar( 2435 DtorCGF.GetAddrOfLocalVar(&Dst), 2436 /*Volatile=*/false, CGM.getContext().VoidPtrTy, Dst.getLocation()); 2437 DtorCGF.emitDestroy(Address(ArgVal, VDAddr.getAlignment()), ASTTy, 2438 DtorCGF.getDestroyer(ASTTy.isDestructedType()), 2439 DtorCGF.needsEHCleanup(ASTTy.isDestructedType())); 2440 DtorCGF.FinishFunction(); 2441 Dtor = Fn; 2442 } 2443 // Do not emit init function if it is not required. 2444 if (!Ctor && !Dtor) 2445 return nullptr; 2446 2447 llvm::Type *CopyCtorTyArgs[] = {CGM.VoidPtrTy, CGM.VoidPtrTy}; 2448 auto CopyCtorTy = 2449 llvm::FunctionType::get(CGM.VoidPtrTy, CopyCtorTyArgs, 2450 /*isVarArg=*/false)->getPointerTo(); 2451 // Copying constructor for the threadprivate variable. 2452 // Must be NULL - reserved by runtime, but currently it requires that this 2453 // parameter is always NULL. Otherwise it fires assertion. 2454 CopyCtor = llvm::Constant::getNullValue(CopyCtorTy); 2455 if (Ctor == nullptr) { 2456 auto CtorTy = llvm::FunctionType::get(CGM.VoidPtrTy, CGM.VoidPtrTy, 2457 /*isVarArg=*/false)->getPointerTo(); 2458 Ctor = llvm::Constant::getNullValue(CtorTy); 2459 } 2460 if (Dtor == nullptr) { 2461 auto DtorTy = llvm::FunctionType::get(CGM.VoidTy, CGM.VoidPtrTy, 2462 /*isVarArg=*/false)->getPointerTo(); 2463 Dtor = llvm::Constant::getNullValue(DtorTy); 2464 } 2465 if (!CGF) { 2466 auto InitFunctionTy = 2467 llvm::FunctionType::get(CGM.VoidTy, /*isVarArg*/ false); 2468 auto InitFunction = CGM.CreateGlobalInitOrDestructFunction( 2469 InitFunctionTy, ".__omp_threadprivate_init_.", 2470 CGM.getTypes().arrangeNullaryFunction()); 2471 CodeGenFunction InitCGF(CGM); 2472 FunctionArgList ArgList; 2473 InitCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidTy, InitFunction, 2474 CGM.getTypes().arrangeNullaryFunction(), ArgList, 2475 Loc, Loc); 2476 emitThreadPrivateVarInit(InitCGF, VDAddr, Ctor, CopyCtor, Dtor, Loc); 2477 InitCGF.FinishFunction(); 2478 return InitFunction; 2479 } 2480 emitThreadPrivateVarInit(*CGF, VDAddr, Ctor, CopyCtor, Dtor, Loc); 2481 } 2482 return nullptr; 2483 } 2484 2485 Address CGOpenMPRuntime::getAddrOfArtificialThreadPrivate(CodeGenFunction &CGF, 2486 QualType VarType, 2487 StringRef Name) { 2488 llvm::Twine VarName(Name, ".artificial."); 2489 llvm::Type *VarLVType = CGF.ConvertTypeForMem(VarType); 2490 llvm::Value *GAddr = getOrCreateInternalVariable(VarLVType, VarName); 2491 llvm::Value *Args[] = { 2492 emitUpdateLocation(CGF, SourceLocation()), 2493 getThreadID(CGF, SourceLocation()), 2494 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(GAddr, CGM.VoidPtrTy), 2495 CGF.Builder.CreateIntCast(CGF.getTypeSize(VarType), CGM.SizeTy, 2496 /*IsSigned=*/false), 2497 getOrCreateInternalVariable(CGM.VoidPtrPtrTy, VarName + ".cache.")}; 2498 return Address( 2499 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 2500 CGF.EmitRuntimeCall( 2501 createRuntimeFunction(OMPRTL__kmpc_threadprivate_cached), Args), 2502 VarLVType->getPointerTo(/*AddrSpace=*/0)), 2503 CGM.getPointerAlign()); 2504 } 2505 2506 /// \brief Emits code for OpenMP 'if' clause using specified \a CodeGen 2507 /// function. Here is the logic: 2508 /// if (Cond) { 2509 /// ThenGen(); 2510 /// } else { 2511 /// ElseGen(); 2512 /// } 2513 void CGOpenMPRuntime::emitOMPIfClause(CodeGenFunction &CGF, const Expr *Cond, 2514 const RegionCodeGenTy &ThenGen, 2515 const RegionCodeGenTy &ElseGen) { 2516 CodeGenFunction::LexicalScope ConditionScope(CGF, Cond->getSourceRange()); 2517 2518 // If the condition constant folds and can be elided, try to avoid emitting 2519 // the condition and the dead arm of the if/else. 2520 bool CondConstant; 2521 if (CGF.ConstantFoldsToSimpleInteger(Cond, CondConstant)) { 2522 if (CondConstant) 2523 ThenGen(CGF); 2524 else 2525 ElseGen(CGF); 2526 return; 2527 } 2528 2529 // Otherwise, the condition did not fold, or we couldn't elide it. Just 2530 // emit the conditional branch. 2531 auto ThenBlock = CGF.createBasicBlock("omp_if.then"); 2532 auto ElseBlock = CGF.createBasicBlock("omp_if.else"); 2533 auto ContBlock = CGF.createBasicBlock("omp_if.end"); 2534 CGF.EmitBranchOnBoolExpr(Cond, ThenBlock, ElseBlock, /*TrueCount=*/0); 2535 2536 // Emit the 'then' code. 2537 CGF.EmitBlock(ThenBlock); 2538 ThenGen(CGF); 2539 CGF.EmitBranch(ContBlock); 2540 // Emit the 'else' code if present. 2541 // There is no need to emit line number for unconditional branch. 2542 (void)ApplyDebugLocation::CreateEmpty(CGF); 2543 CGF.EmitBlock(ElseBlock); 2544 ElseGen(CGF); 2545 // There is no need to emit line number for unconditional branch. 2546 (void)ApplyDebugLocation::CreateEmpty(CGF); 2547 CGF.EmitBranch(ContBlock); 2548 // Emit the continuation block for code after the if. 2549 CGF.EmitBlock(ContBlock, /*IsFinished=*/true); 2550 } 2551 2552 void CGOpenMPRuntime::emitParallelCall(CodeGenFunction &CGF, SourceLocation Loc, 2553 llvm::Value *OutlinedFn, 2554 ArrayRef<llvm::Value *> CapturedVars, 2555 const Expr *IfCond) { 2556 if (!CGF.HaveInsertPoint()) 2557 return; 2558 auto *RTLoc = emitUpdateLocation(CGF, Loc); 2559 auto &&ThenGen = [OutlinedFn, CapturedVars, RTLoc](CodeGenFunction &CGF, 2560 PrePostActionTy &) { 2561 // Build call __kmpc_fork_call(loc, n, microtask, var1, .., varn); 2562 auto &RT = CGF.CGM.getOpenMPRuntime(); 2563 llvm::Value *Args[] = { 2564 RTLoc, 2565 CGF.Builder.getInt32(CapturedVars.size()), // Number of captured vars 2566 CGF.Builder.CreateBitCast(OutlinedFn, RT.getKmpc_MicroPointerTy())}; 2567 llvm::SmallVector<llvm::Value *, 16> RealArgs; 2568 RealArgs.append(std::begin(Args), std::end(Args)); 2569 RealArgs.append(CapturedVars.begin(), CapturedVars.end()); 2570 2571 auto RTLFn = RT.createRuntimeFunction(OMPRTL__kmpc_fork_call); 2572 CGF.EmitRuntimeCall(RTLFn, RealArgs); 2573 }; 2574 auto &&ElseGen = [OutlinedFn, CapturedVars, RTLoc, Loc](CodeGenFunction &CGF, 2575 PrePostActionTy &) { 2576 auto &RT = CGF.CGM.getOpenMPRuntime(); 2577 auto ThreadID = RT.getThreadID(CGF, Loc); 2578 // Build calls: 2579 // __kmpc_serialized_parallel(&Loc, GTid); 2580 llvm::Value *Args[] = {RTLoc, ThreadID}; 2581 CGF.EmitRuntimeCall( 2582 RT.createRuntimeFunction(OMPRTL__kmpc_serialized_parallel), Args); 2583 2584 // OutlinedFn(>id, &zero, CapturedStruct); 2585 auto ThreadIDAddr = RT.emitThreadIDAddress(CGF, Loc); 2586 Address ZeroAddr = 2587 CGF.CreateTempAlloca(CGF.Int32Ty, CharUnits::fromQuantity(4), 2588 /*Name*/ ".zero.addr"); 2589 CGF.InitTempAlloca(ZeroAddr, CGF.Builder.getInt32(/*C*/ 0)); 2590 llvm::SmallVector<llvm::Value *, 16> OutlinedFnArgs; 2591 OutlinedFnArgs.push_back(ThreadIDAddr.getPointer()); 2592 OutlinedFnArgs.push_back(ZeroAddr.getPointer()); 2593 OutlinedFnArgs.append(CapturedVars.begin(), CapturedVars.end()); 2594 RT.emitOutlinedFunctionCall(CGF, Loc, OutlinedFn, OutlinedFnArgs); 2595 2596 // __kmpc_end_serialized_parallel(&Loc, GTid); 2597 llvm::Value *EndArgs[] = {RT.emitUpdateLocation(CGF, Loc), ThreadID}; 2598 CGF.EmitRuntimeCall( 2599 RT.createRuntimeFunction(OMPRTL__kmpc_end_serialized_parallel), 2600 EndArgs); 2601 }; 2602 if (IfCond) 2603 emitOMPIfClause(CGF, IfCond, ThenGen, ElseGen); 2604 else { 2605 RegionCodeGenTy ThenRCG(ThenGen); 2606 ThenRCG(CGF); 2607 } 2608 } 2609 2610 // If we're inside an (outlined) parallel region, use the region info's 2611 // thread-ID variable (it is passed in a first argument of the outlined function 2612 // as "kmp_int32 *gtid"). Otherwise, if we're not inside parallel region, but in 2613 // regular serial code region, get thread ID by calling kmp_int32 2614 // kmpc_global_thread_num(ident_t *loc), stash this thread ID in a temporary and 2615 // return the address of that temp. 2616 Address CGOpenMPRuntime::emitThreadIDAddress(CodeGenFunction &CGF, 2617 SourceLocation Loc) { 2618 if (auto *OMPRegionInfo = 2619 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) 2620 if (OMPRegionInfo->getThreadIDVariable()) 2621 return OMPRegionInfo->getThreadIDVariableLValue(CGF).getAddress(); 2622 2623 auto ThreadID = getThreadID(CGF, Loc); 2624 auto Int32Ty = 2625 CGF.getContext().getIntTypeForBitwidth(/*DestWidth*/ 32, /*Signed*/ true); 2626 auto ThreadIDTemp = CGF.CreateMemTemp(Int32Ty, /*Name*/ ".threadid_temp."); 2627 CGF.EmitStoreOfScalar(ThreadID, 2628 CGF.MakeAddrLValue(ThreadIDTemp, Int32Ty)); 2629 2630 return ThreadIDTemp; 2631 } 2632 2633 llvm::Constant * 2634 CGOpenMPRuntime::getOrCreateInternalVariable(llvm::Type *Ty, 2635 const llvm::Twine &Name) { 2636 SmallString<256> Buffer; 2637 llvm::raw_svector_ostream Out(Buffer); 2638 Out << Name; 2639 auto RuntimeName = Out.str(); 2640 auto &Elem = *InternalVars.insert(std::make_pair(RuntimeName, nullptr)).first; 2641 if (Elem.second) { 2642 assert(Elem.second->getType()->getPointerElementType() == Ty && 2643 "OMP internal variable has different type than requested"); 2644 return &*Elem.second; 2645 } 2646 2647 return Elem.second = new llvm::GlobalVariable( 2648 CGM.getModule(), Ty, /*IsConstant*/ false, 2649 llvm::GlobalValue::CommonLinkage, llvm::Constant::getNullValue(Ty), 2650 Elem.first()); 2651 } 2652 2653 llvm::Value *CGOpenMPRuntime::getCriticalRegionLock(StringRef CriticalName) { 2654 llvm::Twine Name(".gomp_critical_user_", CriticalName); 2655 return getOrCreateInternalVariable(KmpCriticalNameTy, Name.concat(".var")); 2656 } 2657 2658 namespace { 2659 /// Common pre(post)-action for different OpenMP constructs. 2660 class CommonActionTy final : public PrePostActionTy { 2661 llvm::Value *EnterCallee; 2662 ArrayRef<llvm::Value *> EnterArgs; 2663 llvm::Value *ExitCallee; 2664 ArrayRef<llvm::Value *> ExitArgs; 2665 bool Conditional; 2666 llvm::BasicBlock *ContBlock = nullptr; 2667 2668 public: 2669 CommonActionTy(llvm::Value *EnterCallee, ArrayRef<llvm::Value *> EnterArgs, 2670 llvm::Value *ExitCallee, ArrayRef<llvm::Value *> ExitArgs, 2671 bool Conditional = false) 2672 : EnterCallee(EnterCallee), EnterArgs(EnterArgs), ExitCallee(ExitCallee), 2673 ExitArgs(ExitArgs), Conditional(Conditional) {} 2674 void Enter(CodeGenFunction &CGF) override { 2675 llvm::Value *EnterRes = CGF.EmitRuntimeCall(EnterCallee, EnterArgs); 2676 if (Conditional) { 2677 llvm::Value *CallBool = CGF.Builder.CreateIsNotNull(EnterRes); 2678 auto *ThenBlock = CGF.createBasicBlock("omp_if.then"); 2679 ContBlock = CGF.createBasicBlock("omp_if.end"); 2680 // Generate the branch (If-stmt) 2681 CGF.Builder.CreateCondBr(CallBool, ThenBlock, ContBlock); 2682 CGF.EmitBlock(ThenBlock); 2683 } 2684 } 2685 void Done(CodeGenFunction &CGF) { 2686 // Emit the rest of blocks/branches 2687 CGF.EmitBranch(ContBlock); 2688 CGF.EmitBlock(ContBlock, true); 2689 } 2690 void Exit(CodeGenFunction &CGF) override { 2691 CGF.EmitRuntimeCall(ExitCallee, ExitArgs); 2692 } 2693 }; 2694 } // anonymous namespace 2695 2696 void CGOpenMPRuntime::emitCriticalRegion(CodeGenFunction &CGF, 2697 StringRef CriticalName, 2698 const RegionCodeGenTy &CriticalOpGen, 2699 SourceLocation Loc, const Expr *Hint) { 2700 // __kmpc_critical[_with_hint](ident_t *, gtid, Lock[, hint]); 2701 // CriticalOpGen(); 2702 // __kmpc_end_critical(ident_t *, gtid, Lock); 2703 // Prepare arguments and build a call to __kmpc_critical 2704 if (!CGF.HaveInsertPoint()) 2705 return; 2706 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 2707 getCriticalRegionLock(CriticalName)}; 2708 llvm::SmallVector<llvm::Value *, 4> EnterArgs(std::begin(Args), 2709 std::end(Args)); 2710 if (Hint) { 2711 EnterArgs.push_back(CGF.Builder.CreateIntCast( 2712 CGF.EmitScalarExpr(Hint), CGM.IntPtrTy, /*isSigned=*/false)); 2713 } 2714 CommonActionTy Action( 2715 createRuntimeFunction(Hint ? OMPRTL__kmpc_critical_with_hint 2716 : OMPRTL__kmpc_critical), 2717 EnterArgs, createRuntimeFunction(OMPRTL__kmpc_end_critical), Args); 2718 CriticalOpGen.setAction(Action); 2719 emitInlinedDirective(CGF, OMPD_critical, CriticalOpGen); 2720 } 2721 2722 void CGOpenMPRuntime::emitMasterRegion(CodeGenFunction &CGF, 2723 const RegionCodeGenTy &MasterOpGen, 2724 SourceLocation Loc) { 2725 if (!CGF.HaveInsertPoint()) 2726 return; 2727 // if(__kmpc_master(ident_t *, gtid)) { 2728 // MasterOpGen(); 2729 // __kmpc_end_master(ident_t *, gtid); 2730 // } 2731 // Prepare arguments and build a call to __kmpc_master 2732 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 2733 CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_master), Args, 2734 createRuntimeFunction(OMPRTL__kmpc_end_master), Args, 2735 /*Conditional=*/true); 2736 MasterOpGen.setAction(Action); 2737 emitInlinedDirective(CGF, OMPD_master, MasterOpGen); 2738 Action.Done(CGF); 2739 } 2740 2741 void CGOpenMPRuntime::emitTaskyieldCall(CodeGenFunction &CGF, 2742 SourceLocation Loc) { 2743 if (!CGF.HaveInsertPoint()) 2744 return; 2745 // Build call __kmpc_omp_taskyield(loc, thread_id, 0); 2746 llvm::Value *Args[] = { 2747 emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 2748 llvm::ConstantInt::get(CGM.IntTy, /*V=*/0, /*isSigned=*/true)}; 2749 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_taskyield), Args); 2750 if (auto *Region = dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) 2751 Region->emitUntiedSwitch(CGF); 2752 } 2753 2754 void CGOpenMPRuntime::emitTaskgroupRegion(CodeGenFunction &CGF, 2755 const RegionCodeGenTy &TaskgroupOpGen, 2756 SourceLocation Loc) { 2757 if (!CGF.HaveInsertPoint()) 2758 return; 2759 // __kmpc_taskgroup(ident_t *, gtid); 2760 // TaskgroupOpGen(); 2761 // __kmpc_end_taskgroup(ident_t *, gtid); 2762 // Prepare arguments and build a call to __kmpc_taskgroup 2763 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 2764 CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_taskgroup), Args, 2765 createRuntimeFunction(OMPRTL__kmpc_end_taskgroup), 2766 Args); 2767 TaskgroupOpGen.setAction(Action); 2768 emitInlinedDirective(CGF, OMPD_taskgroup, TaskgroupOpGen); 2769 } 2770 2771 /// Given an array of pointers to variables, project the address of a 2772 /// given variable. 2773 static Address emitAddrOfVarFromArray(CodeGenFunction &CGF, Address Array, 2774 unsigned Index, const VarDecl *Var) { 2775 // Pull out the pointer to the variable. 2776 Address PtrAddr = 2777 CGF.Builder.CreateConstArrayGEP(Array, Index, CGF.getPointerSize()); 2778 llvm::Value *Ptr = CGF.Builder.CreateLoad(PtrAddr); 2779 2780 Address Addr = Address(Ptr, CGF.getContext().getDeclAlign(Var)); 2781 Addr = CGF.Builder.CreateElementBitCast( 2782 Addr, CGF.ConvertTypeForMem(Var->getType())); 2783 return Addr; 2784 } 2785 2786 static llvm::Value *emitCopyprivateCopyFunction( 2787 CodeGenModule &CGM, llvm::Type *ArgsType, 2788 ArrayRef<const Expr *> CopyprivateVars, ArrayRef<const Expr *> DestExprs, 2789 ArrayRef<const Expr *> SrcExprs, ArrayRef<const Expr *> AssignmentOps, 2790 SourceLocation Loc) { 2791 auto &C = CGM.getContext(); 2792 // void copy_func(void *LHSArg, void *RHSArg); 2793 FunctionArgList Args; 2794 ImplicitParamDecl LHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 2795 ImplicitParamDecl::Other); 2796 ImplicitParamDecl RHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 2797 ImplicitParamDecl::Other); 2798 Args.push_back(&LHSArg); 2799 Args.push_back(&RHSArg); 2800 auto &CGFI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 2801 auto *Fn = llvm::Function::Create( 2802 CGM.getTypes().GetFunctionType(CGFI), llvm::GlobalValue::InternalLinkage, 2803 ".omp.copyprivate.copy_func", &CGM.getModule()); 2804 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, CGFI); 2805 CodeGenFunction CGF(CGM); 2806 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, CGFI, Args, Loc, Loc); 2807 // Dest = (void*[n])(LHSArg); 2808 // Src = (void*[n])(RHSArg); 2809 Address LHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 2810 CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&LHSArg)), 2811 ArgsType), CGF.getPointerAlign()); 2812 Address RHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 2813 CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&RHSArg)), 2814 ArgsType), CGF.getPointerAlign()); 2815 // *(Type0*)Dst[0] = *(Type0*)Src[0]; 2816 // *(Type1*)Dst[1] = *(Type1*)Src[1]; 2817 // ... 2818 // *(Typen*)Dst[n] = *(Typen*)Src[n]; 2819 for (unsigned I = 0, E = AssignmentOps.size(); I < E; ++I) { 2820 auto DestVar = cast<VarDecl>(cast<DeclRefExpr>(DestExprs[I])->getDecl()); 2821 Address DestAddr = emitAddrOfVarFromArray(CGF, LHS, I, DestVar); 2822 2823 auto SrcVar = cast<VarDecl>(cast<DeclRefExpr>(SrcExprs[I])->getDecl()); 2824 Address SrcAddr = emitAddrOfVarFromArray(CGF, RHS, I, SrcVar); 2825 2826 auto *VD = cast<DeclRefExpr>(CopyprivateVars[I])->getDecl(); 2827 QualType Type = VD->getType(); 2828 CGF.EmitOMPCopy(Type, DestAddr, SrcAddr, DestVar, SrcVar, AssignmentOps[I]); 2829 } 2830 CGF.FinishFunction(); 2831 return Fn; 2832 } 2833 2834 void CGOpenMPRuntime::emitSingleRegion(CodeGenFunction &CGF, 2835 const RegionCodeGenTy &SingleOpGen, 2836 SourceLocation Loc, 2837 ArrayRef<const Expr *> CopyprivateVars, 2838 ArrayRef<const Expr *> SrcExprs, 2839 ArrayRef<const Expr *> DstExprs, 2840 ArrayRef<const Expr *> AssignmentOps) { 2841 if (!CGF.HaveInsertPoint()) 2842 return; 2843 assert(CopyprivateVars.size() == SrcExprs.size() && 2844 CopyprivateVars.size() == DstExprs.size() && 2845 CopyprivateVars.size() == AssignmentOps.size()); 2846 auto &C = CGM.getContext(); 2847 // int32 did_it = 0; 2848 // if(__kmpc_single(ident_t *, gtid)) { 2849 // SingleOpGen(); 2850 // __kmpc_end_single(ident_t *, gtid); 2851 // did_it = 1; 2852 // } 2853 // call __kmpc_copyprivate(ident_t *, gtid, <buf_size>, <copyprivate list>, 2854 // <copy_func>, did_it); 2855 2856 Address DidIt = Address::invalid(); 2857 if (!CopyprivateVars.empty()) { 2858 // int32 did_it = 0; 2859 auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1); 2860 DidIt = CGF.CreateMemTemp(KmpInt32Ty, ".omp.copyprivate.did_it"); 2861 CGF.Builder.CreateStore(CGF.Builder.getInt32(0), DidIt); 2862 } 2863 // Prepare arguments and build a call to __kmpc_single 2864 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 2865 CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_single), Args, 2866 createRuntimeFunction(OMPRTL__kmpc_end_single), Args, 2867 /*Conditional=*/true); 2868 SingleOpGen.setAction(Action); 2869 emitInlinedDirective(CGF, OMPD_single, SingleOpGen); 2870 if (DidIt.isValid()) { 2871 // did_it = 1; 2872 CGF.Builder.CreateStore(CGF.Builder.getInt32(1), DidIt); 2873 } 2874 Action.Done(CGF); 2875 // call __kmpc_copyprivate(ident_t *, gtid, <buf_size>, <copyprivate list>, 2876 // <copy_func>, did_it); 2877 if (DidIt.isValid()) { 2878 llvm::APInt ArraySize(/*unsigned int numBits=*/32, CopyprivateVars.size()); 2879 auto CopyprivateArrayTy = 2880 C.getConstantArrayType(C.VoidPtrTy, ArraySize, ArrayType::Normal, 2881 /*IndexTypeQuals=*/0); 2882 // Create a list of all private variables for copyprivate. 2883 Address CopyprivateList = 2884 CGF.CreateMemTemp(CopyprivateArrayTy, ".omp.copyprivate.cpr_list"); 2885 for (unsigned I = 0, E = CopyprivateVars.size(); I < E; ++I) { 2886 Address Elem = CGF.Builder.CreateConstArrayGEP( 2887 CopyprivateList, I, CGF.getPointerSize()); 2888 CGF.Builder.CreateStore( 2889 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 2890 CGF.EmitLValue(CopyprivateVars[I]).getPointer(), CGF.VoidPtrTy), 2891 Elem); 2892 } 2893 // Build function that copies private values from single region to all other 2894 // threads in the corresponding parallel region. 2895 auto *CpyFn = emitCopyprivateCopyFunction( 2896 CGM, CGF.ConvertTypeForMem(CopyprivateArrayTy)->getPointerTo(), 2897 CopyprivateVars, SrcExprs, DstExprs, AssignmentOps, Loc); 2898 auto *BufSize = CGF.getTypeSize(CopyprivateArrayTy); 2899 Address CL = 2900 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(CopyprivateList, 2901 CGF.VoidPtrTy); 2902 auto *DidItVal = CGF.Builder.CreateLoad(DidIt); 2903 llvm::Value *Args[] = { 2904 emitUpdateLocation(CGF, Loc), // ident_t *<loc> 2905 getThreadID(CGF, Loc), // i32 <gtid> 2906 BufSize, // size_t <buf_size> 2907 CL.getPointer(), // void *<copyprivate list> 2908 CpyFn, // void (*) (void *, void *) <copy_func> 2909 DidItVal // i32 did_it 2910 }; 2911 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_copyprivate), Args); 2912 } 2913 } 2914 2915 void CGOpenMPRuntime::emitOrderedRegion(CodeGenFunction &CGF, 2916 const RegionCodeGenTy &OrderedOpGen, 2917 SourceLocation Loc, bool IsThreads) { 2918 if (!CGF.HaveInsertPoint()) 2919 return; 2920 // __kmpc_ordered(ident_t *, gtid); 2921 // OrderedOpGen(); 2922 // __kmpc_end_ordered(ident_t *, gtid); 2923 // Prepare arguments and build a call to __kmpc_ordered 2924 if (IsThreads) { 2925 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 2926 CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_ordered), Args, 2927 createRuntimeFunction(OMPRTL__kmpc_end_ordered), 2928 Args); 2929 OrderedOpGen.setAction(Action); 2930 emitInlinedDirective(CGF, OMPD_ordered, OrderedOpGen); 2931 return; 2932 } 2933 emitInlinedDirective(CGF, OMPD_ordered, OrderedOpGen); 2934 } 2935 2936 void CGOpenMPRuntime::emitBarrierCall(CodeGenFunction &CGF, SourceLocation Loc, 2937 OpenMPDirectiveKind Kind, bool EmitChecks, 2938 bool ForceSimpleCall) { 2939 if (!CGF.HaveInsertPoint()) 2940 return; 2941 // Build call __kmpc_cancel_barrier(loc, thread_id); 2942 // Build call __kmpc_barrier(loc, thread_id); 2943 unsigned Flags; 2944 if (Kind == OMPD_for) 2945 Flags = OMP_IDENT_BARRIER_IMPL_FOR; 2946 else if (Kind == OMPD_sections) 2947 Flags = OMP_IDENT_BARRIER_IMPL_SECTIONS; 2948 else if (Kind == OMPD_single) 2949 Flags = OMP_IDENT_BARRIER_IMPL_SINGLE; 2950 else if (Kind == OMPD_barrier) 2951 Flags = OMP_IDENT_BARRIER_EXPL; 2952 else 2953 Flags = OMP_IDENT_BARRIER_IMPL; 2954 // Build call __kmpc_cancel_barrier(loc, thread_id) or __kmpc_barrier(loc, 2955 // thread_id); 2956 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc, Flags), 2957 getThreadID(CGF, Loc)}; 2958 if (auto *OMPRegionInfo = 2959 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) { 2960 if (!ForceSimpleCall && OMPRegionInfo->hasCancel()) { 2961 auto *Result = CGF.EmitRuntimeCall( 2962 createRuntimeFunction(OMPRTL__kmpc_cancel_barrier), Args); 2963 if (EmitChecks) { 2964 // if (__kmpc_cancel_barrier()) { 2965 // exit from construct; 2966 // } 2967 auto *ExitBB = CGF.createBasicBlock(".cancel.exit"); 2968 auto *ContBB = CGF.createBasicBlock(".cancel.continue"); 2969 auto *Cmp = CGF.Builder.CreateIsNotNull(Result); 2970 CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB); 2971 CGF.EmitBlock(ExitBB); 2972 // exit from construct; 2973 auto CancelDestination = 2974 CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind()); 2975 CGF.EmitBranchThroughCleanup(CancelDestination); 2976 CGF.EmitBlock(ContBB, /*IsFinished=*/true); 2977 } 2978 return; 2979 } 2980 } 2981 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_barrier), Args); 2982 } 2983 2984 /// \brief Map the OpenMP loop schedule to the runtime enumeration. 2985 static OpenMPSchedType getRuntimeSchedule(OpenMPScheduleClauseKind ScheduleKind, 2986 bool Chunked, bool Ordered) { 2987 switch (ScheduleKind) { 2988 case OMPC_SCHEDULE_static: 2989 return Chunked ? (Ordered ? OMP_ord_static_chunked : OMP_sch_static_chunked) 2990 : (Ordered ? OMP_ord_static : OMP_sch_static); 2991 case OMPC_SCHEDULE_dynamic: 2992 return Ordered ? OMP_ord_dynamic_chunked : OMP_sch_dynamic_chunked; 2993 case OMPC_SCHEDULE_guided: 2994 return Ordered ? OMP_ord_guided_chunked : OMP_sch_guided_chunked; 2995 case OMPC_SCHEDULE_runtime: 2996 return Ordered ? OMP_ord_runtime : OMP_sch_runtime; 2997 case OMPC_SCHEDULE_auto: 2998 return Ordered ? OMP_ord_auto : OMP_sch_auto; 2999 case OMPC_SCHEDULE_unknown: 3000 assert(!Chunked && "chunk was specified but schedule kind not known"); 3001 return Ordered ? OMP_ord_static : OMP_sch_static; 3002 } 3003 llvm_unreachable("Unexpected runtime schedule"); 3004 } 3005 3006 /// \brief Map the OpenMP distribute schedule to the runtime enumeration. 3007 static OpenMPSchedType 3008 getRuntimeSchedule(OpenMPDistScheduleClauseKind ScheduleKind, bool Chunked) { 3009 // only static is allowed for dist_schedule 3010 return Chunked ? OMP_dist_sch_static_chunked : OMP_dist_sch_static; 3011 } 3012 3013 bool CGOpenMPRuntime::isStaticNonchunked(OpenMPScheduleClauseKind ScheduleKind, 3014 bool Chunked) const { 3015 auto Schedule = getRuntimeSchedule(ScheduleKind, Chunked, /*Ordered=*/false); 3016 return Schedule == OMP_sch_static; 3017 } 3018 3019 bool CGOpenMPRuntime::isStaticNonchunked( 3020 OpenMPDistScheduleClauseKind ScheduleKind, bool Chunked) const { 3021 auto Schedule = getRuntimeSchedule(ScheduleKind, Chunked); 3022 return Schedule == OMP_dist_sch_static; 3023 } 3024 3025 3026 bool CGOpenMPRuntime::isDynamic(OpenMPScheduleClauseKind ScheduleKind) const { 3027 auto Schedule = 3028 getRuntimeSchedule(ScheduleKind, /*Chunked=*/false, /*Ordered=*/false); 3029 assert(Schedule != OMP_sch_static_chunked && "cannot be chunked here"); 3030 return Schedule != OMP_sch_static; 3031 } 3032 3033 static int addMonoNonMonoModifier(OpenMPSchedType Schedule, 3034 OpenMPScheduleClauseModifier M1, 3035 OpenMPScheduleClauseModifier M2) { 3036 int Modifier = 0; 3037 switch (M1) { 3038 case OMPC_SCHEDULE_MODIFIER_monotonic: 3039 Modifier = OMP_sch_modifier_monotonic; 3040 break; 3041 case OMPC_SCHEDULE_MODIFIER_nonmonotonic: 3042 Modifier = OMP_sch_modifier_nonmonotonic; 3043 break; 3044 case OMPC_SCHEDULE_MODIFIER_simd: 3045 if (Schedule == OMP_sch_static_chunked) 3046 Schedule = OMP_sch_static_balanced_chunked; 3047 break; 3048 case OMPC_SCHEDULE_MODIFIER_last: 3049 case OMPC_SCHEDULE_MODIFIER_unknown: 3050 break; 3051 } 3052 switch (M2) { 3053 case OMPC_SCHEDULE_MODIFIER_monotonic: 3054 Modifier = OMP_sch_modifier_monotonic; 3055 break; 3056 case OMPC_SCHEDULE_MODIFIER_nonmonotonic: 3057 Modifier = OMP_sch_modifier_nonmonotonic; 3058 break; 3059 case OMPC_SCHEDULE_MODIFIER_simd: 3060 if (Schedule == OMP_sch_static_chunked) 3061 Schedule = OMP_sch_static_balanced_chunked; 3062 break; 3063 case OMPC_SCHEDULE_MODIFIER_last: 3064 case OMPC_SCHEDULE_MODIFIER_unknown: 3065 break; 3066 } 3067 return Schedule | Modifier; 3068 } 3069 3070 void CGOpenMPRuntime::emitForDispatchInit( 3071 CodeGenFunction &CGF, SourceLocation Loc, 3072 const OpenMPScheduleTy &ScheduleKind, unsigned IVSize, bool IVSigned, 3073 bool Ordered, const DispatchRTInput &DispatchValues) { 3074 if (!CGF.HaveInsertPoint()) 3075 return; 3076 OpenMPSchedType Schedule = getRuntimeSchedule( 3077 ScheduleKind.Schedule, DispatchValues.Chunk != nullptr, Ordered); 3078 assert(Ordered || 3079 (Schedule != OMP_sch_static && Schedule != OMP_sch_static_chunked && 3080 Schedule != OMP_ord_static && Schedule != OMP_ord_static_chunked && 3081 Schedule != OMP_sch_static_balanced_chunked)); 3082 // Call __kmpc_dispatch_init( 3083 // ident_t *loc, kmp_int32 tid, kmp_int32 schedule, 3084 // kmp_int[32|64] lower, kmp_int[32|64] upper, 3085 // kmp_int[32|64] stride, kmp_int[32|64] chunk); 3086 3087 // If the Chunk was not specified in the clause - use default value 1. 3088 llvm::Value *Chunk = DispatchValues.Chunk ? DispatchValues.Chunk 3089 : CGF.Builder.getIntN(IVSize, 1); 3090 llvm::Value *Args[] = { 3091 emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 3092 CGF.Builder.getInt32(addMonoNonMonoModifier( 3093 Schedule, ScheduleKind.M1, ScheduleKind.M2)), // Schedule type 3094 DispatchValues.LB, // Lower 3095 DispatchValues.UB, // Upper 3096 CGF.Builder.getIntN(IVSize, 1), // Stride 3097 Chunk // Chunk 3098 }; 3099 CGF.EmitRuntimeCall(createDispatchInitFunction(IVSize, IVSigned), Args); 3100 } 3101 3102 static void emitForStaticInitCall( 3103 CodeGenFunction &CGF, llvm::Value *UpdateLocation, llvm::Value *ThreadId, 3104 llvm::Constant *ForStaticInitFunction, OpenMPSchedType Schedule, 3105 OpenMPScheduleClauseModifier M1, OpenMPScheduleClauseModifier M2, 3106 const CGOpenMPRuntime::StaticRTInput &Values) { 3107 if (!CGF.HaveInsertPoint()) 3108 return; 3109 3110 assert(!Values.Ordered); 3111 assert(Schedule == OMP_sch_static || Schedule == OMP_sch_static_chunked || 3112 Schedule == OMP_sch_static_balanced_chunked || 3113 Schedule == OMP_ord_static || Schedule == OMP_ord_static_chunked || 3114 Schedule == OMP_dist_sch_static || 3115 Schedule == OMP_dist_sch_static_chunked); 3116 3117 // Call __kmpc_for_static_init( 3118 // ident_t *loc, kmp_int32 tid, kmp_int32 schedtype, 3119 // kmp_int32 *p_lastiter, kmp_int[32|64] *p_lower, 3120 // kmp_int[32|64] *p_upper, kmp_int[32|64] *p_stride, 3121 // kmp_int[32|64] incr, kmp_int[32|64] chunk); 3122 llvm::Value *Chunk = Values.Chunk; 3123 if (Chunk == nullptr) { 3124 assert((Schedule == OMP_sch_static || Schedule == OMP_ord_static || 3125 Schedule == OMP_dist_sch_static) && 3126 "expected static non-chunked schedule"); 3127 // If the Chunk was not specified in the clause - use default value 1. 3128 Chunk = CGF.Builder.getIntN(Values.IVSize, 1); 3129 } else { 3130 assert((Schedule == OMP_sch_static_chunked || 3131 Schedule == OMP_sch_static_balanced_chunked || 3132 Schedule == OMP_ord_static_chunked || 3133 Schedule == OMP_dist_sch_static_chunked) && 3134 "expected static chunked schedule"); 3135 } 3136 llvm::Value *Args[] = { 3137 UpdateLocation, 3138 ThreadId, 3139 CGF.Builder.getInt32(addMonoNonMonoModifier(Schedule, M1, 3140 M2)), // Schedule type 3141 Values.IL.getPointer(), // &isLastIter 3142 Values.LB.getPointer(), // &LB 3143 Values.UB.getPointer(), // &UB 3144 Values.ST.getPointer(), // &Stride 3145 CGF.Builder.getIntN(Values.IVSize, 1), // Incr 3146 Chunk // Chunk 3147 }; 3148 CGF.EmitRuntimeCall(ForStaticInitFunction, Args); 3149 } 3150 3151 void CGOpenMPRuntime::emitForStaticInit(CodeGenFunction &CGF, 3152 SourceLocation Loc, 3153 OpenMPDirectiveKind DKind, 3154 const OpenMPScheduleTy &ScheduleKind, 3155 const StaticRTInput &Values) { 3156 OpenMPSchedType ScheduleNum = getRuntimeSchedule( 3157 ScheduleKind.Schedule, Values.Chunk != nullptr, Values.Ordered); 3158 assert(isOpenMPWorksharingDirective(DKind) && 3159 "Expected loop-based or sections-based directive."); 3160 auto *UpdatedLocation = emitUpdateLocation(CGF, Loc, 3161 isOpenMPLoopDirective(DKind) 3162 ? OMP_IDENT_WORK_LOOP 3163 : OMP_IDENT_WORK_SECTIONS); 3164 auto *ThreadId = getThreadID(CGF, Loc); 3165 auto *StaticInitFunction = 3166 createForStaticInitFunction(Values.IVSize, Values.IVSigned); 3167 emitForStaticInitCall(CGF, UpdatedLocation, ThreadId, StaticInitFunction, 3168 ScheduleNum, ScheduleKind.M1, ScheduleKind.M2, Values); 3169 } 3170 3171 void CGOpenMPRuntime::emitDistributeStaticInit( 3172 CodeGenFunction &CGF, SourceLocation Loc, 3173 OpenMPDistScheduleClauseKind SchedKind, 3174 const CGOpenMPRuntime::StaticRTInput &Values) { 3175 OpenMPSchedType ScheduleNum = 3176 getRuntimeSchedule(SchedKind, Values.Chunk != nullptr); 3177 auto *UpdatedLocation = 3178 emitUpdateLocation(CGF, Loc, OMP_IDENT_WORK_DISTRIBUTE); 3179 auto *ThreadId = getThreadID(CGF, Loc); 3180 auto *StaticInitFunction = 3181 createForStaticInitFunction(Values.IVSize, Values.IVSigned); 3182 emitForStaticInitCall(CGF, UpdatedLocation, ThreadId, StaticInitFunction, 3183 ScheduleNum, OMPC_SCHEDULE_MODIFIER_unknown, 3184 OMPC_SCHEDULE_MODIFIER_unknown, Values); 3185 } 3186 3187 void CGOpenMPRuntime::emitForStaticFinish(CodeGenFunction &CGF, 3188 SourceLocation Loc, 3189 OpenMPDirectiveKind DKind) { 3190 if (!CGF.HaveInsertPoint()) 3191 return; 3192 // Call __kmpc_for_static_fini(ident_t *loc, kmp_int32 tid); 3193 llvm::Value *Args[] = { 3194 emitUpdateLocation(CGF, Loc, 3195 isOpenMPDistributeDirective(DKind) 3196 ? OMP_IDENT_WORK_DISTRIBUTE 3197 : isOpenMPLoopDirective(DKind) 3198 ? OMP_IDENT_WORK_LOOP 3199 : OMP_IDENT_WORK_SECTIONS), 3200 getThreadID(CGF, Loc)}; 3201 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_for_static_fini), 3202 Args); 3203 } 3204 3205 void CGOpenMPRuntime::emitForOrderedIterationEnd(CodeGenFunction &CGF, 3206 SourceLocation Loc, 3207 unsigned IVSize, 3208 bool IVSigned) { 3209 if (!CGF.HaveInsertPoint()) 3210 return; 3211 // Call __kmpc_for_dynamic_fini_(4|8)[u](ident_t *loc, kmp_int32 tid); 3212 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 3213 CGF.EmitRuntimeCall(createDispatchFiniFunction(IVSize, IVSigned), Args); 3214 } 3215 3216 llvm::Value *CGOpenMPRuntime::emitForNext(CodeGenFunction &CGF, 3217 SourceLocation Loc, unsigned IVSize, 3218 bool IVSigned, Address IL, 3219 Address LB, Address UB, 3220 Address ST) { 3221 // Call __kmpc_dispatch_next( 3222 // ident_t *loc, kmp_int32 tid, kmp_int32 *p_lastiter, 3223 // kmp_int[32|64] *p_lower, kmp_int[32|64] *p_upper, 3224 // kmp_int[32|64] *p_stride); 3225 llvm::Value *Args[] = { 3226 emitUpdateLocation(CGF, Loc), 3227 getThreadID(CGF, Loc), 3228 IL.getPointer(), // &isLastIter 3229 LB.getPointer(), // &Lower 3230 UB.getPointer(), // &Upper 3231 ST.getPointer() // &Stride 3232 }; 3233 llvm::Value *Call = 3234 CGF.EmitRuntimeCall(createDispatchNextFunction(IVSize, IVSigned), Args); 3235 return CGF.EmitScalarConversion( 3236 Call, CGF.getContext().getIntTypeForBitwidth(32, /* Signed */ true), 3237 CGF.getContext().BoolTy, Loc); 3238 } 3239 3240 void CGOpenMPRuntime::emitNumThreadsClause(CodeGenFunction &CGF, 3241 llvm::Value *NumThreads, 3242 SourceLocation Loc) { 3243 if (!CGF.HaveInsertPoint()) 3244 return; 3245 // Build call __kmpc_push_num_threads(&loc, global_tid, num_threads) 3246 llvm::Value *Args[] = { 3247 emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 3248 CGF.Builder.CreateIntCast(NumThreads, CGF.Int32Ty, /*isSigned*/ true)}; 3249 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_num_threads), 3250 Args); 3251 } 3252 3253 void CGOpenMPRuntime::emitProcBindClause(CodeGenFunction &CGF, 3254 OpenMPProcBindClauseKind ProcBind, 3255 SourceLocation Loc) { 3256 if (!CGF.HaveInsertPoint()) 3257 return; 3258 // Constants for proc bind value accepted by the runtime. 3259 enum ProcBindTy { 3260 ProcBindFalse = 0, 3261 ProcBindTrue, 3262 ProcBindMaster, 3263 ProcBindClose, 3264 ProcBindSpread, 3265 ProcBindIntel, 3266 ProcBindDefault 3267 } RuntimeProcBind; 3268 switch (ProcBind) { 3269 case OMPC_PROC_BIND_master: 3270 RuntimeProcBind = ProcBindMaster; 3271 break; 3272 case OMPC_PROC_BIND_close: 3273 RuntimeProcBind = ProcBindClose; 3274 break; 3275 case OMPC_PROC_BIND_spread: 3276 RuntimeProcBind = ProcBindSpread; 3277 break; 3278 case OMPC_PROC_BIND_unknown: 3279 llvm_unreachable("Unsupported proc_bind value."); 3280 } 3281 // Build call __kmpc_push_proc_bind(&loc, global_tid, proc_bind) 3282 llvm::Value *Args[] = { 3283 emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 3284 llvm::ConstantInt::get(CGM.IntTy, RuntimeProcBind, /*isSigned=*/true)}; 3285 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_proc_bind), Args); 3286 } 3287 3288 void CGOpenMPRuntime::emitFlush(CodeGenFunction &CGF, ArrayRef<const Expr *>, 3289 SourceLocation Loc) { 3290 if (!CGF.HaveInsertPoint()) 3291 return; 3292 // Build call void __kmpc_flush(ident_t *loc) 3293 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_flush), 3294 emitUpdateLocation(CGF, Loc)); 3295 } 3296 3297 namespace { 3298 /// \brief Indexes of fields for type kmp_task_t. 3299 enum KmpTaskTFields { 3300 /// \brief List of shared variables. 3301 KmpTaskTShareds, 3302 /// \brief Task routine. 3303 KmpTaskTRoutine, 3304 /// \brief Partition id for the untied tasks. 3305 KmpTaskTPartId, 3306 /// Function with call of destructors for private variables. 3307 Data1, 3308 /// Task priority. 3309 Data2, 3310 /// (Taskloops only) Lower bound. 3311 KmpTaskTLowerBound, 3312 /// (Taskloops only) Upper bound. 3313 KmpTaskTUpperBound, 3314 /// (Taskloops only) Stride. 3315 KmpTaskTStride, 3316 /// (Taskloops only) Is last iteration flag. 3317 KmpTaskTLastIter, 3318 /// (Taskloops only) Reduction data. 3319 KmpTaskTReductions, 3320 }; 3321 } // anonymous namespace 3322 3323 bool CGOpenMPRuntime::OffloadEntriesInfoManagerTy::empty() const { 3324 // FIXME: Add other entries type when they become supported. 3325 return OffloadEntriesTargetRegion.empty(); 3326 } 3327 3328 /// \brief Initialize target region entry. 3329 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy:: 3330 initializeTargetRegionEntryInfo(unsigned DeviceID, unsigned FileID, 3331 StringRef ParentName, unsigned LineNum, 3332 unsigned Order) { 3333 assert(CGM.getLangOpts().OpenMPIsDevice && "Initialization of entries is " 3334 "only required for the device " 3335 "code generation."); 3336 OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum] = 3337 OffloadEntryInfoTargetRegion(Order, /*Addr=*/nullptr, /*ID=*/nullptr, 3338 /*Flags=*/0); 3339 ++OffloadingEntriesNum; 3340 } 3341 3342 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy:: 3343 registerTargetRegionEntryInfo(unsigned DeviceID, unsigned FileID, 3344 StringRef ParentName, unsigned LineNum, 3345 llvm::Constant *Addr, llvm::Constant *ID, 3346 int32_t Flags) { 3347 // If we are emitting code for a target, the entry is already initialized, 3348 // only has to be registered. 3349 if (CGM.getLangOpts().OpenMPIsDevice) { 3350 assert(hasTargetRegionEntryInfo(DeviceID, FileID, ParentName, LineNum) && 3351 "Entry must exist."); 3352 auto &Entry = 3353 OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum]; 3354 assert(Entry.isValid() && "Entry not initialized!"); 3355 Entry.setAddress(Addr); 3356 Entry.setID(ID); 3357 Entry.setFlags(Flags); 3358 return; 3359 } else { 3360 OffloadEntryInfoTargetRegion Entry(OffloadingEntriesNum++, Addr, ID, Flags); 3361 OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum] = Entry; 3362 } 3363 } 3364 3365 bool CGOpenMPRuntime::OffloadEntriesInfoManagerTy::hasTargetRegionEntryInfo( 3366 unsigned DeviceID, unsigned FileID, StringRef ParentName, 3367 unsigned LineNum) const { 3368 auto PerDevice = OffloadEntriesTargetRegion.find(DeviceID); 3369 if (PerDevice == OffloadEntriesTargetRegion.end()) 3370 return false; 3371 auto PerFile = PerDevice->second.find(FileID); 3372 if (PerFile == PerDevice->second.end()) 3373 return false; 3374 auto PerParentName = PerFile->second.find(ParentName); 3375 if (PerParentName == PerFile->second.end()) 3376 return false; 3377 auto PerLine = PerParentName->second.find(LineNum); 3378 if (PerLine == PerParentName->second.end()) 3379 return false; 3380 // Fail if this entry is already registered. 3381 if (PerLine->second.getAddress() || PerLine->second.getID()) 3382 return false; 3383 return true; 3384 } 3385 3386 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy::actOnTargetRegionEntriesInfo( 3387 const OffloadTargetRegionEntryInfoActTy &Action) { 3388 // Scan all target region entries and perform the provided action. 3389 for (auto &D : OffloadEntriesTargetRegion) 3390 for (auto &F : D.second) 3391 for (auto &P : F.second) 3392 for (auto &L : P.second) 3393 Action(D.first, F.first, P.first(), L.first, L.second); 3394 } 3395 3396 /// \brief Create a Ctor/Dtor-like function whose body is emitted through 3397 /// \a Codegen. This is used to emit the two functions that register and 3398 /// unregister the descriptor of the current compilation unit. 3399 static llvm::Function * 3400 createOffloadingBinaryDescriptorFunction(CodeGenModule &CGM, StringRef Name, 3401 const RegionCodeGenTy &Codegen) { 3402 auto &C = CGM.getContext(); 3403 FunctionArgList Args; 3404 ImplicitParamDecl DummyPtr(C, C.VoidPtrTy, ImplicitParamDecl::Other); 3405 Args.push_back(&DummyPtr); 3406 3407 CodeGenFunction CGF(CGM); 3408 // Disable debug info for global (de-)initializer because they are not part of 3409 // some particular construct. 3410 CGF.disableDebugInfo(); 3411 auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 3412 auto FTy = CGM.getTypes().GetFunctionType(FI); 3413 auto *Fn = CGM.CreateGlobalInitOrDestructFunction(FTy, Name, FI); 3414 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FI, Args); 3415 Codegen(CGF); 3416 CGF.FinishFunction(); 3417 return Fn; 3418 } 3419 3420 llvm::Function * 3421 CGOpenMPRuntime::createOffloadingBinaryDescriptorRegistration() { 3422 // If we don't have entries or if we are emitting code for the device, we 3423 // don't need to do anything. 3424 if (CGM.getLangOpts().OpenMPIsDevice || OffloadEntriesInfoManager.empty()) 3425 return nullptr; 3426 3427 auto &M = CGM.getModule(); 3428 auto &C = CGM.getContext(); 3429 3430 // Get list of devices we care about 3431 auto &Devices = CGM.getLangOpts().OMPTargetTriples; 3432 3433 // We should be creating an offloading descriptor only if there are devices 3434 // specified. 3435 assert(!Devices.empty() && "No OpenMP offloading devices??"); 3436 3437 // Create the external variables that will point to the begin and end of the 3438 // host entries section. These will be defined by the linker. 3439 auto *OffloadEntryTy = 3440 CGM.getTypes().ConvertTypeForMem(getTgtOffloadEntryQTy()); 3441 llvm::GlobalVariable *HostEntriesBegin = new llvm::GlobalVariable( 3442 M, OffloadEntryTy, /*isConstant=*/true, 3443 llvm::GlobalValue::ExternalLinkage, /*Initializer=*/nullptr, 3444 ".omp_offloading.entries_begin"); 3445 llvm::GlobalVariable *HostEntriesEnd = new llvm::GlobalVariable( 3446 M, OffloadEntryTy, /*isConstant=*/true, 3447 llvm::GlobalValue::ExternalLinkage, /*Initializer=*/nullptr, 3448 ".omp_offloading.entries_end"); 3449 3450 // Create all device images 3451 auto *DeviceImageTy = cast<llvm::StructType>( 3452 CGM.getTypes().ConvertTypeForMem(getTgtDeviceImageQTy())); 3453 ConstantInitBuilder DeviceImagesBuilder(CGM); 3454 auto DeviceImagesEntries = DeviceImagesBuilder.beginArray(DeviceImageTy); 3455 3456 for (unsigned i = 0; i < Devices.size(); ++i) { 3457 StringRef T = Devices[i].getTriple(); 3458 auto *ImgBegin = new llvm::GlobalVariable( 3459 M, CGM.Int8Ty, /*isConstant=*/true, llvm::GlobalValue::ExternalLinkage, 3460 /*Initializer=*/nullptr, 3461 Twine(".omp_offloading.img_start.") + Twine(T)); 3462 auto *ImgEnd = new llvm::GlobalVariable( 3463 M, CGM.Int8Ty, /*isConstant=*/true, llvm::GlobalValue::ExternalLinkage, 3464 /*Initializer=*/nullptr, Twine(".omp_offloading.img_end.") + Twine(T)); 3465 3466 auto Dev = DeviceImagesEntries.beginStruct(DeviceImageTy); 3467 Dev.add(ImgBegin); 3468 Dev.add(ImgEnd); 3469 Dev.add(HostEntriesBegin); 3470 Dev.add(HostEntriesEnd); 3471 Dev.finishAndAddTo(DeviceImagesEntries); 3472 } 3473 3474 // Create device images global array. 3475 llvm::GlobalVariable *DeviceImages = 3476 DeviceImagesEntries.finishAndCreateGlobal(".omp_offloading.device_images", 3477 CGM.getPointerAlign(), 3478 /*isConstant=*/true); 3479 DeviceImages->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global); 3480 3481 // This is a Zero array to be used in the creation of the constant expressions 3482 llvm::Constant *Index[] = {llvm::Constant::getNullValue(CGM.Int32Ty), 3483 llvm::Constant::getNullValue(CGM.Int32Ty)}; 3484 3485 // Create the target region descriptor. 3486 auto *BinaryDescriptorTy = cast<llvm::StructType>( 3487 CGM.getTypes().ConvertTypeForMem(getTgtBinaryDescriptorQTy())); 3488 ConstantInitBuilder DescBuilder(CGM); 3489 auto DescInit = DescBuilder.beginStruct(BinaryDescriptorTy); 3490 DescInit.addInt(CGM.Int32Ty, Devices.size()); 3491 DescInit.add(llvm::ConstantExpr::getGetElementPtr(DeviceImages->getValueType(), 3492 DeviceImages, 3493 Index)); 3494 DescInit.add(HostEntriesBegin); 3495 DescInit.add(HostEntriesEnd); 3496 3497 auto *Desc = DescInit.finishAndCreateGlobal(".omp_offloading.descriptor", 3498 CGM.getPointerAlign(), 3499 /*isConstant=*/true); 3500 3501 // Emit code to register or unregister the descriptor at execution 3502 // startup or closing, respectively. 3503 3504 // Create a variable to drive the registration and unregistration of the 3505 // descriptor, so we can reuse the logic that emits Ctors and Dtors. 3506 auto *IdentInfo = &C.Idents.get(".omp_offloading.reg_unreg_var"); 3507 ImplicitParamDecl RegUnregVar(C, C.getTranslationUnitDecl(), SourceLocation(), 3508 IdentInfo, C.CharTy, ImplicitParamDecl::Other); 3509 3510 auto *UnRegFn = createOffloadingBinaryDescriptorFunction( 3511 CGM, ".omp_offloading.descriptor_unreg", 3512 [&](CodeGenFunction &CGF, PrePostActionTy &) { 3513 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_unregister_lib), 3514 Desc); 3515 }); 3516 auto *RegFn = createOffloadingBinaryDescriptorFunction( 3517 CGM, ".omp_offloading.descriptor_reg", 3518 [&](CodeGenFunction &CGF, PrePostActionTy &) { 3519 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_register_lib), 3520 Desc); 3521 CGM.getCXXABI().registerGlobalDtor(CGF, RegUnregVar, UnRegFn, Desc); 3522 }); 3523 if (CGM.supportsCOMDAT()) { 3524 // It is sufficient to call registration function only once, so create a 3525 // COMDAT group for registration/unregistration functions and associated 3526 // data. That would reduce startup time and code size. Registration 3527 // function serves as a COMDAT group key. 3528 auto ComdatKey = M.getOrInsertComdat(RegFn->getName()); 3529 RegFn->setLinkage(llvm::GlobalValue::LinkOnceAnyLinkage); 3530 RegFn->setVisibility(llvm::GlobalValue::HiddenVisibility); 3531 RegFn->setComdat(ComdatKey); 3532 UnRegFn->setComdat(ComdatKey); 3533 DeviceImages->setComdat(ComdatKey); 3534 Desc->setComdat(ComdatKey); 3535 } 3536 return RegFn; 3537 } 3538 3539 void CGOpenMPRuntime::createOffloadEntry(llvm::Constant *ID, 3540 llvm::Constant *Addr, uint64_t Size, 3541 int32_t Flags) { 3542 StringRef Name = Addr->getName(); 3543 auto *TgtOffloadEntryType = cast<llvm::StructType>( 3544 CGM.getTypes().ConvertTypeForMem(getTgtOffloadEntryQTy())); 3545 llvm::LLVMContext &C = CGM.getModule().getContext(); 3546 llvm::Module &M = CGM.getModule(); 3547 3548 // Make sure the address has the right type. 3549 llvm::Constant *AddrPtr = llvm::ConstantExpr::getBitCast(ID, CGM.VoidPtrTy); 3550 3551 // Create constant string with the name. 3552 llvm::Constant *StrPtrInit = llvm::ConstantDataArray::getString(C, Name); 3553 3554 llvm::GlobalVariable *Str = 3555 new llvm::GlobalVariable(M, StrPtrInit->getType(), /*isConstant=*/true, 3556 llvm::GlobalValue::InternalLinkage, StrPtrInit, 3557 ".omp_offloading.entry_name"); 3558 Str->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global); 3559 llvm::Constant *StrPtr = llvm::ConstantExpr::getBitCast(Str, CGM.Int8PtrTy); 3560 3561 // We can't have any padding between symbols, so we need to have 1-byte 3562 // alignment. 3563 auto Align = CharUnits::fromQuantity(1); 3564 3565 // Create the entry struct. 3566 ConstantInitBuilder EntryBuilder(CGM); 3567 auto EntryInit = EntryBuilder.beginStruct(TgtOffloadEntryType); 3568 EntryInit.add(AddrPtr); 3569 EntryInit.add(StrPtr); 3570 EntryInit.addInt(CGM.SizeTy, Size); 3571 EntryInit.addInt(CGM.Int32Ty, Flags); 3572 EntryInit.addInt(CGM.Int32Ty, 0); 3573 llvm::GlobalVariable *Entry = 3574 EntryInit.finishAndCreateGlobal(".omp_offloading.entry", 3575 Align, 3576 /*constant*/ true, 3577 llvm::GlobalValue::ExternalLinkage); 3578 3579 // The entry has to be created in the section the linker expects it to be. 3580 Entry->setSection(".omp_offloading.entries"); 3581 } 3582 3583 void CGOpenMPRuntime::createOffloadEntriesAndInfoMetadata() { 3584 // Emit the offloading entries and metadata so that the device codegen side 3585 // can easily figure out what to emit. The produced metadata looks like 3586 // this: 3587 // 3588 // !omp_offload.info = !{!1, ...} 3589 // 3590 // Right now we only generate metadata for function that contain target 3591 // regions. 3592 3593 // If we do not have entries, we dont need to do anything. 3594 if (OffloadEntriesInfoManager.empty()) 3595 return; 3596 3597 llvm::Module &M = CGM.getModule(); 3598 llvm::LLVMContext &C = M.getContext(); 3599 SmallVector<OffloadEntriesInfoManagerTy::OffloadEntryInfo *, 16> 3600 OrderedEntries(OffloadEntriesInfoManager.size()); 3601 3602 // Create the offloading info metadata node. 3603 llvm::NamedMDNode *MD = M.getOrInsertNamedMetadata("omp_offload.info"); 3604 3605 // Auxiliary methods to create metadata values and strings. 3606 auto getMDInt = [&](unsigned v) { 3607 return llvm::ConstantAsMetadata::get( 3608 llvm::ConstantInt::get(llvm::Type::getInt32Ty(C), v)); 3609 }; 3610 3611 auto getMDString = [&](StringRef v) { return llvm::MDString::get(C, v); }; 3612 3613 // Create function that emits metadata for each target region entry; 3614 auto &&TargetRegionMetadataEmitter = [&]( 3615 unsigned DeviceID, unsigned FileID, StringRef ParentName, unsigned Line, 3616 OffloadEntriesInfoManagerTy::OffloadEntryInfoTargetRegion &E) { 3617 llvm::SmallVector<llvm::Metadata *, 32> Ops; 3618 // Generate metadata for target regions. Each entry of this metadata 3619 // contains: 3620 // - Entry 0 -> Kind of this type of metadata (0). 3621 // - Entry 1 -> Device ID of the file where the entry was identified. 3622 // - Entry 2 -> File ID of the file where the entry was identified. 3623 // - Entry 3 -> Mangled name of the function where the entry was identified. 3624 // - Entry 4 -> Line in the file where the entry was identified. 3625 // - Entry 5 -> Order the entry was created. 3626 // The first element of the metadata node is the kind. 3627 Ops.push_back(getMDInt(E.getKind())); 3628 Ops.push_back(getMDInt(DeviceID)); 3629 Ops.push_back(getMDInt(FileID)); 3630 Ops.push_back(getMDString(ParentName)); 3631 Ops.push_back(getMDInt(Line)); 3632 Ops.push_back(getMDInt(E.getOrder())); 3633 3634 // Save this entry in the right position of the ordered entries array. 3635 OrderedEntries[E.getOrder()] = &E; 3636 3637 // Add metadata to the named metadata node. 3638 MD->addOperand(llvm::MDNode::get(C, Ops)); 3639 }; 3640 3641 OffloadEntriesInfoManager.actOnTargetRegionEntriesInfo( 3642 TargetRegionMetadataEmitter); 3643 3644 for (auto *E : OrderedEntries) { 3645 assert(E && "All ordered entries must exist!"); 3646 if (auto *CE = 3647 dyn_cast<OffloadEntriesInfoManagerTy::OffloadEntryInfoTargetRegion>( 3648 E)) { 3649 assert(CE->getID() && CE->getAddress() && 3650 "Entry ID and Addr are invalid!"); 3651 createOffloadEntry(CE->getID(), CE->getAddress(), /*Size=*/0); 3652 } else 3653 llvm_unreachable("Unsupported entry kind."); 3654 } 3655 } 3656 3657 /// \brief Loads all the offload entries information from the host IR 3658 /// metadata. 3659 void CGOpenMPRuntime::loadOffloadInfoMetadata() { 3660 // If we are in target mode, load the metadata from the host IR. This code has 3661 // to match the metadaata creation in createOffloadEntriesAndInfoMetadata(). 3662 3663 if (!CGM.getLangOpts().OpenMPIsDevice) 3664 return; 3665 3666 if (CGM.getLangOpts().OMPHostIRFile.empty()) 3667 return; 3668 3669 auto Buf = llvm::MemoryBuffer::getFile(CGM.getLangOpts().OMPHostIRFile); 3670 if (Buf.getError()) 3671 return; 3672 3673 llvm::LLVMContext C; 3674 auto ME = expectedToErrorOrAndEmitErrors( 3675 C, llvm::parseBitcodeFile(Buf.get()->getMemBufferRef(), C)); 3676 3677 if (ME.getError()) 3678 return; 3679 3680 llvm::NamedMDNode *MD = ME.get()->getNamedMetadata("omp_offload.info"); 3681 if (!MD) 3682 return; 3683 3684 for (auto I : MD->operands()) { 3685 llvm::MDNode *MN = cast<llvm::MDNode>(I); 3686 3687 auto getMDInt = [&](unsigned Idx) { 3688 llvm::ConstantAsMetadata *V = 3689 cast<llvm::ConstantAsMetadata>(MN->getOperand(Idx)); 3690 return cast<llvm::ConstantInt>(V->getValue())->getZExtValue(); 3691 }; 3692 3693 auto getMDString = [&](unsigned Idx) { 3694 llvm::MDString *V = cast<llvm::MDString>(MN->getOperand(Idx)); 3695 return V->getString(); 3696 }; 3697 3698 switch (getMDInt(0)) { 3699 default: 3700 llvm_unreachable("Unexpected metadata!"); 3701 break; 3702 case OffloadEntriesInfoManagerTy::OffloadEntryInfo:: 3703 OFFLOAD_ENTRY_INFO_TARGET_REGION: 3704 OffloadEntriesInfoManager.initializeTargetRegionEntryInfo( 3705 /*DeviceID=*/getMDInt(1), /*FileID=*/getMDInt(2), 3706 /*ParentName=*/getMDString(3), /*Line=*/getMDInt(4), 3707 /*Order=*/getMDInt(5)); 3708 break; 3709 } 3710 } 3711 } 3712 3713 void CGOpenMPRuntime::emitKmpRoutineEntryT(QualType KmpInt32Ty) { 3714 if (!KmpRoutineEntryPtrTy) { 3715 // Build typedef kmp_int32 (* kmp_routine_entry_t)(kmp_int32, void *); type. 3716 auto &C = CGM.getContext(); 3717 QualType KmpRoutineEntryTyArgs[] = {KmpInt32Ty, C.VoidPtrTy}; 3718 FunctionProtoType::ExtProtoInfo EPI; 3719 KmpRoutineEntryPtrQTy = C.getPointerType( 3720 C.getFunctionType(KmpInt32Ty, KmpRoutineEntryTyArgs, EPI)); 3721 KmpRoutineEntryPtrTy = CGM.getTypes().ConvertType(KmpRoutineEntryPtrQTy); 3722 } 3723 } 3724 3725 static FieldDecl *addFieldToRecordDecl(ASTContext &C, DeclContext *DC, 3726 QualType FieldTy) { 3727 auto *Field = FieldDecl::Create( 3728 C, DC, SourceLocation(), SourceLocation(), /*Id=*/nullptr, FieldTy, 3729 C.getTrivialTypeSourceInfo(FieldTy, SourceLocation()), 3730 /*BW=*/nullptr, /*Mutable=*/false, /*InitStyle=*/ICIS_NoInit); 3731 Field->setAccess(AS_public); 3732 DC->addDecl(Field); 3733 return Field; 3734 } 3735 3736 QualType CGOpenMPRuntime::getTgtOffloadEntryQTy() { 3737 3738 // Make sure the type of the entry is already created. This is the type we 3739 // have to create: 3740 // struct __tgt_offload_entry{ 3741 // void *addr; // Pointer to the offload entry info. 3742 // // (function or global) 3743 // char *name; // Name of the function or global. 3744 // size_t size; // Size of the entry info (0 if it a function). 3745 // int32_t flags; // Flags associated with the entry, e.g. 'link'. 3746 // int32_t reserved; // Reserved, to use by the runtime library. 3747 // }; 3748 if (TgtOffloadEntryQTy.isNull()) { 3749 ASTContext &C = CGM.getContext(); 3750 auto *RD = C.buildImplicitRecord("__tgt_offload_entry"); 3751 RD->startDefinition(); 3752 addFieldToRecordDecl(C, RD, C.VoidPtrTy); 3753 addFieldToRecordDecl(C, RD, C.getPointerType(C.CharTy)); 3754 addFieldToRecordDecl(C, RD, C.getSizeType()); 3755 addFieldToRecordDecl( 3756 C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true)); 3757 addFieldToRecordDecl( 3758 C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true)); 3759 RD->completeDefinition(); 3760 TgtOffloadEntryQTy = C.getRecordType(RD); 3761 } 3762 return TgtOffloadEntryQTy; 3763 } 3764 3765 QualType CGOpenMPRuntime::getTgtDeviceImageQTy() { 3766 // These are the types we need to build: 3767 // struct __tgt_device_image{ 3768 // void *ImageStart; // Pointer to the target code start. 3769 // void *ImageEnd; // Pointer to the target code end. 3770 // // We also add the host entries to the device image, as it may be useful 3771 // // for the target runtime to have access to that information. 3772 // __tgt_offload_entry *EntriesBegin; // Begin of the table with all 3773 // // the entries. 3774 // __tgt_offload_entry *EntriesEnd; // End of the table with all the 3775 // // entries (non inclusive). 3776 // }; 3777 if (TgtDeviceImageQTy.isNull()) { 3778 ASTContext &C = CGM.getContext(); 3779 auto *RD = C.buildImplicitRecord("__tgt_device_image"); 3780 RD->startDefinition(); 3781 addFieldToRecordDecl(C, RD, C.VoidPtrTy); 3782 addFieldToRecordDecl(C, RD, C.VoidPtrTy); 3783 addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy())); 3784 addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy())); 3785 RD->completeDefinition(); 3786 TgtDeviceImageQTy = C.getRecordType(RD); 3787 } 3788 return TgtDeviceImageQTy; 3789 } 3790 3791 QualType CGOpenMPRuntime::getTgtBinaryDescriptorQTy() { 3792 // struct __tgt_bin_desc{ 3793 // int32_t NumDevices; // Number of devices supported. 3794 // __tgt_device_image *DeviceImages; // Arrays of device images 3795 // // (one per device). 3796 // __tgt_offload_entry *EntriesBegin; // Begin of the table with all the 3797 // // entries. 3798 // __tgt_offload_entry *EntriesEnd; // End of the table with all the 3799 // // entries (non inclusive). 3800 // }; 3801 if (TgtBinaryDescriptorQTy.isNull()) { 3802 ASTContext &C = CGM.getContext(); 3803 auto *RD = C.buildImplicitRecord("__tgt_bin_desc"); 3804 RD->startDefinition(); 3805 addFieldToRecordDecl( 3806 C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true)); 3807 addFieldToRecordDecl(C, RD, C.getPointerType(getTgtDeviceImageQTy())); 3808 addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy())); 3809 addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy())); 3810 RD->completeDefinition(); 3811 TgtBinaryDescriptorQTy = C.getRecordType(RD); 3812 } 3813 return TgtBinaryDescriptorQTy; 3814 } 3815 3816 namespace { 3817 struct PrivateHelpersTy { 3818 PrivateHelpersTy(const VarDecl *Original, const VarDecl *PrivateCopy, 3819 const VarDecl *PrivateElemInit) 3820 : Original(Original), PrivateCopy(PrivateCopy), 3821 PrivateElemInit(PrivateElemInit) {} 3822 const VarDecl *Original; 3823 const VarDecl *PrivateCopy; 3824 const VarDecl *PrivateElemInit; 3825 }; 3826 typedef std::pair<CharUnits /*Align*/, PrivateHelpersTy> PrivateDataTy; 3827 } // anonymous namespace 3828 3829 static RecordDecl * 3830 createPrivatesRecordDecl(CodeGenModule &CGM, ArrayRef<PrivateDataTy> Privates) { 3831 if (!Privates.empty()) { 3832 auto &C = CGM.getContext(); 3833 // Build struct .kmp_privates_t. { 3834 // /* private vars */ 3835 // }; 3836 auto *RD = C.buildImplicitRecord(".kmp_privates.t"); 3837 RD->startDefinition(); 3838 for (auto &&Pair : Privates) { 3839 auto *VD = Pair.second.Original; 3840 auto Type = VD->getType(); 3841 Type = Type.getNonReferenceType(); 3842 auto *FD = addFieldToRecordDecl(C, RD, Type); 3843 if (VD->hasAttrs()) { 3844 for (specific_attr_iterator<AlignedAttr> I(VD->getAttrs().begin()), 3845 E(VD->getAttrs().end()); 3846 I != E; ++I) 3847 FD->addAttr(*I); 3848 } 3849 } 3850 RD->completeDefinition(); 3851 return RD; 3852 } 3853 return nullptr; 3854 } 3855 3856 static RecordDecl * 3857 createKmpTaskTRecordDecl(CodeGenModule &CGM, OpenMPDirectiveKind Kind, 3858 QualType KmpInt32Ty, 3859 QualType KmpRoutineEntryPointerQTy) { 3860 auto &C = CGM.getContext(); 3861 // Build struct kmp_task_t { 3862 // void * shareds; 3863 // kmp_routine_entry_t routine; 3864 // kmp_int32 part_id; 3865 // kmp_cmplrdata_t data1; 3866 // kmp_cmplrdata_t data2; 3867 // For taskloops additional fields: 3868 // kmp_uint64 lb; 3869 // kmp_uint64 ub; 3870 // kmp_int64 st; 3871 // kmp_int32 liter; 3872 // void * reductions; 3873 // }; 3874 auto *UD = C.buildImplicitRecord("kmp_cmplrdata_t", TTK_Union); 3875 UD->startDefinition(); 3876 addFieldToRecordDecl(C, UD, KmpInt32Ty); 3877 addFieldToRecordDecl(C, UD, KmpRoutineEntryPointerQTy); 3878 UD->completeDefinition(); 3879 QualType KmpCmplrdataTy = C.getRecordType(UD); 3880 auto *RD = C.buildImplicitRecord("kmp_task_t"); 3881 RD->startDefinition(); 3882 addFieldToRecordDecl(C, RD, C.VoidPtrTy); 3883 addFieldToRecordDecl(C, RD, KmpRoutineEntryPointerQTy); 3884 addFieldToRecordDecl(C, RD, KmpInt32Ty); 3885 addFieldToRecordDecl(C, RD, KmpCmplrdataTy); 3886 addFieldToRecordDecl(C, RD, KmpCmplrdataTy); 3887 if (isOpenMPTaskLoopDirective(Kind)) { 3888 QualType KmpUInt64Ty = 3889 CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/0); 3890 QualType KmpInt64Ty = 3891 CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/1); 3892 addFieldToRecordDecl(C, RD, KmpUInt64Ty); 3893 addFieldToRecordDecl(C, RD, KmpUInt64Ty); 3894 addFieldToRecordDecl(C, RD, KmpInt64Ty); 3895 addFieldToRecordDecl(C, RD, KmpInt32Ty); 3896 addFieldToRecordDecl(C, RD, C.VoidPtrTy); 3897 } 3898 RD->completeDefinition(); 3899 return RD; 3900 } 3901 3902 static RecordDecl * 3903 createKmpTaskTWithPrivatesRecordDecl(CodeGenModule &CGM, QualType KmpTaskTQTy, 3904 ArrayRef<PrivateDataTy> Privates) { 3905 auto &C = CGM.getContext(); 3906 // Build struct kmp_task_t_with_privates { 3907 // kmp_task_t task_data; 3908 // .kmp_privates_t. privates; 3909 // }; 3910 auto *RD = C.buildImplicitRecord("kmp_task_t_with_privates"); 3911 RD->startDefinition(); 3912 addFieldToRecordDecl(C, RD, KmpTaskTQTy); 3913 if (auto *PrivateRD = createPrivatesRecordDecl(CGM, Privates)) { 3914 addFieldToRecordDecl(C, RD, C.getRecordType(PrivateRD)); 3915 } 3916 RD->completeDefinition(); 3917 return RD; 3918 } 3919 3920 /// \brief Emit a proxy function which accepts kmp_task_t as the second 3921 /// argument. 3922 /// \code 3923 /// kmp_int32 .omp_task_entry.(kmp_int32 gtid, kmp_task_t *tt) { 3924 /// TaskFunction(gtid, tt->part_id, &tt->privates, task_privates_map, tt, 3925 /// For taskloops: 3926 /// tt->task_data.lb, tt->task_data.ub, tt->task_data.st, tt->task_data.liter, 3927 /// tt->reductions, tt->shareds); 3928 /// return 0; 3929 /// } 3930 /// \endcode 3931 static llvm::Value * 3932 emitProxyTaskFunction(CodeGenModule &CGM, SourceLocation Loc, 3933 OpenMPDirectiveKind Kind, QualType KmpInt32Ty, 3934 QualType KmpTaskTWithPrivatesPtrQTy, 3935 QualType KmpTaskTWithPrivatesQTy, QualType KmpTaskTQTy, 3936 QualType SharedsPtrTy, llvm::Value *TaskFunction, 3937 llvm::Value *TaskPrivatesMap) { 3938 auto &C = CGM.getContext(); 3939 FunctionArgList Args; 3940 ImplicitParamDecl GtidArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, KmpInt32Ty, 3941 ImplicitParamDecl::Other); 3942 ImplicitParamDecl TaskTypeArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 3943 KmpTaskTWithPrivatesPtrQTy.withRestrict(), 3944 ImplicitParamDecl::Other); 3945 Args.push_back(&GtidArg); 3946 Args.push_back(&TaskTypeArg); 3947 auto &TaskEntryFnInfo = 3948 CGM.getTypes().arrangeBuiltinFunctionDeclaration(KmpInt32Ty, Args); 3949 auto *TaskEntryTy = CGM.getTypes().GetFunctionType(TaskEntryFnInfo); 3950 auto *TaskEntry = 3951 llvm::Function::Create(TaskEntryTy, llvm::GlobalValue::InternalLinkage, 3952 ".omp_task_entry.", &CGM.getModule()); 3953 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskEntry, TaskEntryFnInfo); 3954 CodeGenFunction CGF(CGM); 3955 CGF.StartFunction(GlobalDecl(), KmpInt32Ty, TaskEntry, TaskEntryFnInfo, Args, 3956 Loc, Loc); 3957 3958 // TaskFunction(gtid, tt->task_data.part_id, &tt->privates, task_privates_map, 3959 // tt, 3960 // For taskloops: 3961 // tt->task_data.lb, tt->task_data.ub, tt->task_data.st, tt->task_data.liter, 3962 // tt->task_data.shareds); 3963 auto *GtidParam = CGF.EmitLoadOfScalar( 3964 CGF.GetAddrOfLocalVar(&GtidArg), /*Volatile=*/false, KmpInt32Ty, Loc); 3965 LValue TDBase = CGF.EmitLoadOfPointerLValue( 3966 CGF.GetAddrOfLocalVar(&TaskTypeArg), 3967 KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>()); 3968 auto *KmpTaskTWithPrivatesQTyRD = 3969 cast<RecordDecl>(KmpTaskTWithPrivatesQTy->getAsTagDecl()); 3970 LValue Base = 3971 CGF.EmitLValueForField(TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin()); 3972 auto *KmpTaskTQTyRD = cast<RecordDecl>(KmpTaskTQTy->getAsTagDecl()); 3973 auto PartIdFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTPartId); 3974 auto PartIdLVal = CGF.EmitLValueForField(Base, *PartIdFI); 3975 auto *PartidParam = PartIdLVal.getPointer(); 3976 3977 auto SharedsFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTShareds); 3978 auto SharedsLVal = CGF.EmitLValueForField(Base, *SharedsFI); 3979 auto *SharedsParam = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 3980 CGF.EmitLoadOfLValue(SharedsLVal, Loc).getScalarVal(), 3981 CGF.ConvertTypeForMem(SharedsPtrTy)); 3982 3983 auto PrivatesFI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin(), 1); 3984 llvm::Value *PrivatesParam; 3985 if (PrivatesFI != KmpTaskTWithPrivatesQTyRD->field_end()) { 3986 auto PrivatesLVal = CGF.EmitLValueForField(TDBase, *PrivatesFI); 3987 PrivatesParam = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 3988 PrivatesLVal.getPointer(), CGF.VoidPtrTy); 3989 } else 3990 PrivatesParam = llvm::ConstantPointerNull::get(CGF.VoidPtrTy); 3991 3992 llvm::Value *CommonArgs[] = {GtidParam, PartidParam, PrivatesParam, 3993 TaskPrivatesMap, 3994 CGF.Builder 3995 .CreatePointerBitCastOrAddrSpaceCast( 3996 TDBase.getAddress(), CGF.VoidPtrTy) 3997 .getPointer()}; 3998 SmallVector<llvm::Value *, 16> CallArgs(std::begin(CommonArgs), 3999 std::end(CommonArgs)); 4000 if (isOpenMPTaskLoopDirective(Kind)) { 4001 auto LBFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLowerBound); 4002 auto LBLVal = CGF.EmitLValueForField(Base, *LBFI); 4003 auto *LBParam = CGF.EmitLoadOfLValue(LBLVal, Loc).getScalarVal(); 4004 auto UBFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTUpperBound); 4005 auto UBLVal = CGF.EmitLValueForField(Base, *UBFI); 4006 auto *UBParam = CGF.EmitLoadOfLValue(UBLVal, Loc).getScalarVal(); 4007 auto StFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTStride); 4008 auto StLVal = CGF.EmitLValueForField(Base, *StFI); 4009 auto *StParam = CGF.EmitLoadOfLValue(StLVal, Loc).getScalarVal(); 4010 auto LIFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLastIter); 4011 auto LILVal = CGF.EmitLValueForField(Base, *LIFI); 4012 auto *LIParam = CGF.EmitLoadOfLValue(LILVal, Loc).getScalarVal(); 4013 auto RFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTReductions); 4014 auto RLVal = CGF.EmitLValueForField(Base, *RFI); 4015 auto *RParam = CGF.EmitLoadOfLValue(RLVal, Loc).getScalarVal(); 4016 CallArgs.push_back(LBParam); 4017 CallArgs.push_back(UBParam); 4018 CallArgs.push_back(StParam); 4019 CallArgs.push_back(LIParam); 4020 CallArgs.push_back(RParam); 4021 } 4022 CallArgs.push_back(SharedsParam); 4023 4024 CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, Loc, TaskFunction, 4025 CallArgs); 4026 CGF.EmitStoreThroughLValue( 4027 RValue::get(CGF.Builder.getInt32(/*C=*/0)), 4028 CGF.MakeAddrLValue(CGF.ReturnValue, KmpInt32Ty)); 4029 CGF.FinishFunction(); 4030 return TaskEntry; 4031 } 4032 4033 static llvm::Value *emitDestructorsFunction(CodeGenModule &CGM, 4034 SourceLocation Loc, 4035 QualType KmpInt32Ty, 4036 QualType KmpTaskTWithPrivatesPtrQTy, 4037 QualType KmpTaskTWithPrivatesQTy) { 4038 auto &C = CGM.getContext(); 4039 FunctionArgList Args; 4040 ImplicitParamDecl GtidArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, KmpInt32Ty, 4041 ImplicitParamDecl::Other); 4042 ImplicitParamDecl TaskTypeArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4043 KmpTaskTWithPrivatesPtrQTy.withRestrict(), 4044 ImplicitParamDecl::Other); 4045 Args.push_back(&GtidArg); 4046 Args.push_back(&TaskTypeArg); 4047 auto &DestructorFnInfo = 4048 CGM.getTypes().arrangeBuiltinFunctionDeclaration(KmpInt32Ty, Args); 4049 auto *DestructorFnTy = CGM.getTypes().GetFunctionType(DestructorFnInfo); 4050 auto *DestructorFn = 4051 llvm::Function::Create(DestructorFnTy, llvm::GlobalValue::InternalLinkage, 4052 ".omp_task_destructor.", &CGM.getModule()); 4053 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, DestructorFn, 4054 DestructorFnInfo); 4055 CodeGenFunction CGF(CGM); 4056 CGF.StartFunction(GlobalDecl(), KmpInt32Ty, DestructorFn, DestructorFnInfo, 4057 Args, Loc, Loc); 4058 4059 LValue Base = CGF.EmitLoadOfPointerLValue( 4060 CGF.GetAddrOfLocalVar(&TaskTypeArg), 4061 KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>()); 4062 auto *KmpTaskTWithPrivatesQTyRD = 4063 cast<RecordDecl>(KmpTaskTWithPrivatesQTy->getAsTagDecl()); 4064 auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin()); 4065 Base = CGF.EmitLValueForField(Base, *FI); 4066 for (auto *Field : 4067 cast<RecordDecl>(FI->getType()->getAsTagDecl())->fields()) { 4068 if (auto DtorKind = Field->getType().isDestructedType()) { 4069 auto FieldLValue = CGF.EmitLValueForField(Base, Field); 4070 CGF.pushDestroy(DtorKind, FieldLValue.getAddress(), Field->getType()); 4071 } 4072 } 4073 CGF.FinishFunction(); 4074 return DestructorFn; 4075 } 4076 4077 /// \brief Emit a privates mapping function for correct handling of private and 4078 /// firstprivate variables. 4079 /// \code 4080 /// void .omp_task_privates_map.(const .privates. *noalias privs, <ty1> 4081 /// **noalias priv1,..., <tyn> **noalias privn) { 4082 /// *priv1 = &.privates.priv1; 4083 /// ...; 4084 /// *privn = &.privates.privn; 4085 /// } 4086 /// \endcode 4087 static llvm::Value * 4088 emitTaskPrivateMappingFunction(CodeGenModule &CGM, SourceLocation Loc, 4089 ArrayRef<const Expr *> PrivateVars, 4090 ArrayRef<const Expr *> FirstprivateVars, 4091 ArrayRef<const Expr *> LastprivateVars, 4092 QualType PrivatesQTy, 4093 ArrayRef<PrivateDataTy> Privates) { 4094 auto &C = CGM.getContext(); 4095 FunctionArgList Args; 4096 ImplicitParamDecl TaskPrivatesArg( 4097 C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4098 C.getPointerType(PrivatesQTy).withConst().withRestrict(), 4099 ImplicitParamDecl::Other); 4100 Args.push_back(&TaskPrivatesArg); 4101 llvm::DenseMap<const VarDecl *, unsigned> PrivateVarsPos; 4102 unsigned Counter = 1; 4103 for (auto *E: PrivateVars) { 4104 Args.push_back(ImplicitParamDecl::Create( 4105 C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4106 C.getPointerType(C.getPointerType(E->getType())) 4107 .withConst() 4108 .withRestrict(), 4109 ImplicitParamDecl::Other)); 4110 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4111 PrivateVarsPos[VD] = Counter; 4112 ++Counter; 4113 } 4114 for (auto *E : FirstprivateVars) { 4115 Args.push_back(ImplicitParamDecl::Create( 4116 C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4117 C.getPointerType(C.getPointerType(E->getType())) 4118 .withConst() 4119 .withRestrict(), 4120 ImplicitParamDecl::Other)); 4121 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4122 PrivateVarsPos[VD] = Counter; 4123 ++Counter; 4124 } 4125 for (auto *E: LastprivateVars) { 4126 Args.push_back(ImplicitParamDecl::Create( 4127 C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4128 C.getPointerType(C.getPointerType(E->getType())) 4129 .withConst() 4130 .withRestrict(), 4131 ImplicitParamDecl::Other)); 4132 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4133 PrivateVarsPos[VD] = Counter; 4134 ++Counter; 4135 } 4136 auto &TaskPrivatesMapFnInfo = 4137 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 4138 auto *TaskPrivatesMapTy = 4139 CGM.getTypes().GetFunctionType(TaskPrivatesMapFnInfo); 4140 auto *TaskPrivatesMap = llvm::Function::Create( 4141 TaskPrivatesMapTy, llvm::GlobalValue::InternalLinkage, 4142 ".omp_task_privates_map.", &CGM.getModule()); 4143 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskPrivatesMap, 4144 TaskPrivatesMapFnInfo); 4145 TaskPrivatesMap->removeFnAttr(llvm::Attribute::NoInline); 4146 TaskPrivatesMap->removeFnAttr(llvm::Attribute::OptimizeNone); 4147 TaskPrivatesMap->addFnAttr(llvm::Attribute::AlwaysInline); 4148 CodeGenFunction CGF(CGM); 4149 CGF.StartFunction(GlobalDecl(), C.VoidTy, TaskPrivatesMap, 4150 TaskPrivatesMapFnInfo, Args, Loc, Loc); 4151 4152 // *privi = &.privates.privi; 4153 LValue Base = CGF.EmitLoadOfPointerLValue( 4154 CGF.GetAddrOfLocalVar(&TaskPrivatesArg), 4155 TaskPrivatesArg.getType()->castAs<PointerType>()); 4156 auto *PrivatesQTyRD = cast<RecordDecl>(PrivatesQTy->getAsTagDecl()); 4157 Counter = 0; 4158 for (auto *Field : PrivatesQTyRD->fields()) { 4159 auto FieldLVal = CGF.EmitLValueForField(Base, Field); 4160 auto *VD = Args[PrivateVarsPos[Privates[Counter].second.Original]]; 4161 auto RefLVal = CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(VD), VD->getType()); 4162 auto RefLoadLVal = CGF.EmitLoadOfPointerLValue( 4163 RefLVal.getAddress(), RefLVal.getType()->castAs<PointerType>()); 4164 CGF.EmitStoreOfScalar(FieldLVal.getPointer(), RefLoadLVal); 4165 ++Counter; 4166 } 4167 CGF.FinishFunction(); 4168 return TaskPrivatesMap; 4169 } 4170 4171 static bool stable_sort_comparator(const PrivateDataTy P1, 4172 const PrivateDataTy P2) { 4173 return P1.first > P2.first; 4174 } 4175 4176 /// Emit initialization for private variables in task-based directives. 4177 static void emitPrivatesInit(CodeGenFunction &CGF, 4178 const OMPExecutableDirective &D, 4179 Address KmpTaskSharedsPtr, LValue TDBase, 4180 const RecordDecl *KmpTaskTWithPrivatesQTyRD, 4181 QualType SharedsTy, QualType SharedsPtrTy, 4182 const OMPTaskDataTy &Data, 4183 ArrayRef<PrivateDataTy> Privates, bool ForDup) { 4184 auto &C = CGF.getContext(); 4185 auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin()); 4186 LValue PrivatesBase = CGF.EmitLValueForField(TDBase, *FI); 4187 LValue SrcBase; 4188 bool IsTargetTask = 4189 isOpenMPTargetDataManagementDirective(D.getDirectiveKind()) || 4190 isOpenMPTargetExecutionDirective(D.getDirectiveKind()); 4191 // For target-based directives skip 3 firstprivate arrays BasePointersArray, 4192 // PointersArray and SizesArray. The original variables for these arrays are 4193 // not captured and we get their addresses explicitly. 4194 if ((!IsTargetTask && !Data.FirstprivateVars.empty()) || 4195 (IsTargetTask && Data.FirstprivateVars.size() > 3)) { 4196 SrcBase = CGF.MakeAddrLValue( 4197 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4198 KmpTaskSharedsPtr, CGF.ConvertTypeForMem(SharedsPtrTy)), 4199 SharedsTy); 4200 } 4201 OpenMPDirectiveKind Kind = isOpenMPTaskLoopDirective(D.getDirectiveKind()) 4202 ? OMPD_taskloop 4203 : OMPD_task; 4204 CodeGenFunction::CGCapturedStmtInfo CapturesInfo(*D.getCapturedStmt(Kind)); 4205 FI = cast<RecordDecl>(FI->getType()->getAsTagDecl())->field_begin(); 4206 for (auto &&Pair : Privates) { 4207 auto *VD = Pair.second.PrivateCopy; 4208 auto *Init = VD->getAnyInitializer(); 4209 if (Init && (!ForDup || (isa<CXXConstructExpr>(Init) && 4210 !CGF.isTrivialInitializer(Init)))) { 4211 LValue PrivateLValue = CGF.EmitLValueForField(PrivatesBase, *FI); 4212 if (auto *Elem = Pair.second.PrivateElemInit) { 4213 auto *OriginalVD = Pair.second.Original; 4214 // Check if the variable is the target-based BasePointersArray, 4215 // PointersArray or SizesArray. 4216 LValue SharedRefLValue; 4217 QualType Type = OriginalVD->getType(); 4218 if (IsTargetTask && isa<ImplicitParamDecl>(OriginalVD) && 4219 isa<CapturedDecl>(OriginalVD->getDeclContext()) && 4220 cast<CapturedDecl>(OriginalVD->getDeclContext())->getNumParams() == 4221 0 && 4222 isa<TranslationUnitDecl>( 4223 cast<CapturedDecl>(OriginalVD->getDeclContext()) 4224 ->getDeclContext())) { 4225 SharedRefLValue = 4226 CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(OriginalVD), Type); 4227 } else { 4228 auto *SharedField = CapturesInfo.lookup(OriginalVD); 4229 SharedRefLValue = CGF.EmitLValueForField(SrcBase, SharedField); 4230 SharedRefLValue = CGF.MakeAddrLValue( 4231 Address(SharedRefLValue.getPointer(), C.getDeclAlign(OriginalVD)), 4232 SharedRefLValue.getType(), LValueBaseInfo(AlignmentSource::Decl), 4233 SharedRefLValue.getTBAAInfo()); 4234 } 4235 if (Type->isArrayType()) { 4236 // Initialize firstprivate array. 4237 if (!isa<CXXConstructExpr>(Init) || CGF.isTrivialInitializer(Init)) { 4238 // Perform simple memcpy. 4239 CGF.EmitAggregateAssign(PrivateLValue.getAddress(), 4240 SharedRefLValue.getAddress(), Type); 4241 } else { 4242 // Initialize firstprivate array using element-by-element 4243 // initialization. 4244 CGF.EmitOMPAggregateAssign( 4245 PrivateLValue.getAddress(), SharedRefLValue.getAddress(), Type, 4246 [&CGF, Elem, Init, &CapturesInfo](Address DestElement, 4247 Address SrcElement) { 4248 // Clean up any temporaries needed by the initialization. 4249 CodeGenFunction::OMPPrivateScope InitScope(CGF); 4250 InitScope.addPrivate( 4251 Elem, [SrcElement]() -> Address { return SrcElement; }); 4252 (void)InitScope.Privatize(); 4253 // Emit initialization for single element. 4254 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII( 4255 CGF, &CapturesInfo); 4256 CGF.EmitAnyExprToMem(Init, DestElement, 4257 Init->getType().getQualifiers(), 4258 /*IsInitializer=*/false); 4259 }); 4260 } 4261 } else { 4262 CodeGenFunction::OMPPrivateScope InitScope(CGF); 4263 InitScope.addPrivate(Elem, [SharedRefLValue]() -> Address { 4264 return SharedRefLValue.getAddress(); 4265 }); 4266 (void)InitScope.Privatize(); 4267 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CapturesInfo); 4268 CGF.EmitExprAsInit(Init, VD, PrivateLValue, 4269 /*capturedByInit=*/false); 4270 } 4271 } else 4272 CGF.EmitExprAsInit(Init, VD, PrivateLValue, /*capturedByInit=*/false); 4273 } 4274 ++FI; 4275 } 4276 } 4277 4278 /// Check if duplication function is required for taskloops. 4279 static bool checkInitIsRequired(CodeGenFunction &CGF, 4280 ArrayRef<PrivateDataTy> Privates) { 4281 bool InitRequired = false; 4282 for (auto &&Pair : Privates) { 4283 auto *VD = Pair.second.PrivateCopy; 4284 auto *Init = VD->getAnyInitializer(); 4285 InitRequired = InitRequired || (Init && isa<CXXConstructExpr>(Init) && 4286 !CGF.isTrivialInitializer(Init)); 4287 } 4288 return InitRequired; 4289 } 4290 4291 4292 /// Emit task_dup function (for initialization of 4293 /// private/firstprivate/lastprivate vars and last_iter flag) 4294 /// \code 4295 /// void __task_dup_entry(kmp_task_t *task_dst, const kmp_task_t *task_src, int 4296 /// lastpriv) { 4297 /// // setup lastprivate flag 4298 /// task_dst->last = lastpriv; 4299 /// // could be constructor calls here... 4300 /// } 4301 /// \endcode 4302 static llvm::Value * 4303 emitTaskDupFunction(CodeGenModule &CGM, SourceLocation Loc, 4304 const OMPExecutableDirective &D, 4305 QualType KmpTaskTWithPrivatesPtrQTy, 4306 const RecordDecl *KmpTaskTWithPrivatesQTyRD, 4307 const RecordDecl *KmpTaskTQTyRD, QualType SharedsTy, 4308 QualType SharedsPtrTy, const OMPTaskDataTy &Data, 4309 ArrayRef<PrivateDataTy> Privates, bool WithLastIter) { 4310 auto &C = CGM.getContext(); 4311 FunctionArgList Args; 4312 ImplicitParamDecl DstArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4313 KmpTaskTWithPrivatesPtrQTy, 4314 ImplicitParamDecl::Other); 4315 ImplicitParamDecl SrcArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 4316 KmpTaskTWithPrivatesPtrQTy, 4317 ImplicitParamDecl::Other); 4318 ImplicitParamDecl LastprivArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.IntTy, 4319 ImplicitParamDecl::Other); 4320 Args.push_back(&DstArg); 4321 Args.push_back(&SrcArg); 4322 Args.push_back(&LastprivArg); 4323 auto &TaskDupFnInfo = 4324 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 4325 auto *TaskDupTy = CGM.getTypes().GetFunctionType(TaskDupFnInfo); 4326 auto *TaskDup = 4327 llvm::Function::Create(TaskDupTy, llvm::GlobalValue::InternalLinkage, 4328 ".omp_task_dup.", &CGM.getModule()); 4329 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskDup, TaskDupFnInfo); 4330 CodeGenFunction CGF(CGM); 4331 CGF.StartFunction(GlobalDecl(), C.VoidTy, TaskDup, TaskDupFnInfo, Args, Loc, 4332 Loc); 4333 4334 LValue TDBase = CGF.EmitLoadOfPointerLValue( 4335 CGF.GetAddrOfLocalVar(&DstArg), 4336 KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>()); 4337 // task_dst->liter = lastpriv; 4338 if (WithLastIter) { 4339 auto LIFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLastIter); 4340 LValue Base = CGF.EmitLValueForField( 4341 TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin()); 4342 LValue LILVal = CGF.EmitLValueForField(Base, *LIFI); 4343 llvm::Value *Lastpriv = CGF.EmitLoadOfScalar( 4344 CGF.GetAddrOfLocalVar(&LastprivArg), /*Volatile=*/false, C.IntTy, Loc); 4345 CGF.EmitStoreOfScalar(Lastpriv, LILVal); 4346 } 4347 4348 // Emit initial values for private copies (if any). 4349 assert(!Privates.empty()); 4350 Address KmpTaskSharedsPtr = Address::invalid(); 4351 if (!Data.FirstprivateVars.empty()) { 4352 LValue TDBase = CGF.EmitLoadOfPointerLValue( 4353 CGF.GetAddrOfLocalVar(&SrcArg), 4354 KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>()); 4355 LValue Base = CGF.EmitLValueForField( 4356 TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin()); 4357 KmpTaskSharedsPtr = Address( 4358 CGF.EmitLoadOfScalar(CGF.EmitLValueForField( 4359 Base, *std::next(KmpTaskTQTyRD->field_begin(), 4360 KmpTaskTShareds)), 4361 Loc), 4362 CGF.getNaturalTypeAlignment(SharedsTy)); 4363 } 4364 emitPrivatesInit(CGF, D, KmpTaskSharedsPtr, TDBase, KmpTaskTWithPrivatesQTyRD, 4365 SharedsTy, SharedsPtrTy, Data, Privates, /*ForDup=*/true); 4366 CGF.FinishFunction(); 4367 return TaskDup; 4368 } 4369 4370 /// Checks if destructor function is required to be generated. 4371 /// \return true if cleanups are required, false otherwise. 4372 static bool 4373 checkDestructorsRequired(const RecordDecl *KmpTaskTWithPrivatesQTyRD) { 4374 bool NeedsCleanup = false; 4375 auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin()); 4376 auto *PrivateRD = cast<RecordDecl>(FI->getType()->getAsTagDecl()); 4377 for (auto *FD : PrivateRD->fields()) { 4378 NeedsCleanup = NeedsCleanup || FD->getType().isDestructedType(); 4379 if (NeedsCleanup) 4380 break; 4381 } 4382 return NeedsCleanup; 4383 } 4384 4385 CGOpenMPRuntime::TaskResultTy 4386 CGOpenMPRuntime::emitTaskInit(CodeGenFunction &CGF, SourceLocation Loc, 4387 const OMPExecutableDirective &D, 4388 llvm::Value *TaskFunction, QualType SharedsTy, 4389 Address Shareds, const OMPTaskDataTy &Data) { 4390 auto &C = CGM.getContext(); 4391 llvm::SmallVector<PrivateDataTy, 4> Privates; 4392 // Aggregate privates and sort them by the alignment. 4393 auto I = Data.PrivateCopies.begin(); 4394 for (auto *E : Data.PrivateVars) { 4395 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4396 Privates.push_back(std::make_pair( 4397 C.getDeclAlign(VD), 4398 PrivateHelpersTy(VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()), 4399 /*PrivateElemInit=*/nullptr))); 4400 ++I; 4401 } 4402 I = Data.FirstprivateCopies.begin(); 4403 auto IElemInitRef = Data.FirstprivateInits.begin(); 4404 for (auto *E : Data.FirstprivateVars) { 4405 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4406 Privates.push_back(std::make_pair( 4407 C.getDeclAlign(VD), 4408 PrivateHelpersTy( 4409 VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()), 4410 cast<VarDecl>(cast<DeclRefExpr>(*IElemInitRef)->getDecl())))); 4411 ++I; 4412 ++IElemInitRef; 4413 } 4414 I = Data.LastprivateCopies.begin(); 4415 for (auto *E : Data.LastprivateVars) { 4416 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl()); 4417 Privates.push_back(std::make_pair( 4418 C.getDeclAlign(VD), 4419 PrivateHelpersTy(VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()), 4420 /*PrivateElemInit=*/nullptr))); 4421 ++I; 4422 } 4423 std::stable_sort(Privates.begin(), Privates.end(), stable_sort_comparator); 4424 auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1); 4425 // Build type kmp_routine_entry_t (if not built yet). 4426 emitKmpRoutineEntryT(KmpInt32Ty); 4427 // Build type kmp_task_t (if not built yet). 4428 if (isOpenMPTaskLoopDirective(D.getDirectiveKind())) { 4429 if (SavedKmpTaskloopTQTy.isNull()) { 4430 SavedKmpTaskloopTQTy = C.getRecordType(createKmpTaskTRecordDecl( 4431 CGM, D.getDirectiveKind(), KmpInt32Ty, KmpRoutineEntryPtrQTy)); 4432 } 4433 KmpTaskTQTy = SavedKmpTaskloopTQTy; 4434 } else { 4435 assert((D.getDirectiveKind() == OMPD_task || 4436 isOpenMPTargetExecutionDirective(D.getDirectiveKind()) || 4437 isOpenMPTargetDataManagementDirective(D.getDirectiveKind())) && 4438 "Expected taskloop, task or target directive"); 4439 if (SavedKmpTaskTQTy.isNull()) { 4440 SavedKmpTaskTQTy = C.getRecordType(createKmpTaskTRecordDecl( 4441 CGM, D.getDirectiveKind(), KmpInt32Ty, KmpRoutineEntryPtrQTy)); 4442 } 4443 KmpTaskTQTy = SavedKmpTaskTQTy; 4444 } 4445 auto *KmpTaskTQTyRD = cast<RecordDecl>(KmpTaskTQTy->getAsTagDecl()); 4446 // Build particular struct kmp_task_t for the given task. 4447 auto *KmpTaskTWithPrivatesQTyRD = 4448 createKmpTaskTWithPrivatesRecordDecl(CGM, KmpTaskTQTy, Privates); 4449 auto KmpTaskTWithPrivatesQTy = C.getRecordType(KmpTaskTWithPrivatesQTyRD); 4450 QualType KmpTaskTWithPrivatesPtrQTy = 4451 C.getPointerType(KmpTaskTWithPrivatesQTy); 4452 auto *KmpTaskTWithPrivatesTy = CGF.ConvertType(KmpTaskTWithPrivatesQTy); 4453 auto *KmpTaskTWithPrivatesPtrTy = KmpTaskTWithPrivatesTy->getPointerTo(); 4454 auto *KmpTaskTWithPrivatesTySize = CGF.getTypeSize(KmpTaskTWithPrivatesQTy); 4455 QualType SharedsPtrTy = C.getPointerType(SharedsTy); 4456 4457 // Emit initial values for private copies (if any). 4458 llvm::Value *TaskPrivatesMap = nullptr; 4459 auto *TaskPrivatesMapTy = 4460 std::next(cast<llvm::Function>(TaskFunction)->arg_begin(), 3)->getType(); 4461 if (!Privates.empty()) { 4462 auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin()); 4463 TaskPrivatesMap = emitTaskPrivateMappingFunction( 4464 CGM, Loc, Data.PrivateVars, Data.FirstprivateVars, Data.LastprivateVars, 4465 FI->getType(), Privates); 4466 TaskPrivatesMap = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4467 TaskPrivatesMap, TaskPrivatesMapTy); 4468 } else { 4469 TaskPrivatesMap = llvm::ConstantPointerNull::get( 4470 cast<llvm::PointerType>(TaskPrivatesMapTy)); 4471 } 4472 // Build a proxy function kmp_int32 .omp_task_entry.(kmp_int32 gtid, 4473 // kmp_task_t *tt); 4474 auto *TaskEntry = emitProxyTaskFunction( 4475 CGM, Loc, D.getDirectiveKind(), KmpInt32Ty, KmpTaskTWithPrivatesPtrQTy, 4476 KmpTaskTWithPrivatesQTy, KmpTaskTQTy, SharedsPtrTy, TaskFunction, 4477 TaskPrivatesMap); 4478 4479 // Build call kmp_task_t * __kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid, 4480 // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds, 4481 // kmp_routine_entry_t *task_entry); 4482 // Task flags. Format is taken from 4483 // http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h, 4484 // description of kmp_tasking_flags struct. 4485 enum { 4486 TiedFlag = 0x1, 4487 FinalFlag = 0x2, 4488 DestructorsFlag = 0x8, 4489 PriorityFlag = 0x20 4490 }; 4491 unsigned Flags = Data.Tied ? TiedFlag : 0; 4492 bool NeedsCleanup = false; 4493 if (!Privates.empty()) { 4494 NeedsCleanup = checkDestructorsRequired(KmpTaskTWithPrivatesQTyRD); 4495 if (NeedsCleanup) 4496 Flags = Flags | DestructorsFlag; 4497 } 4498 if (Data.Priority.getInt()) 4499 Flags = Flags | PriorityFlag; 4500 auto *TaskFlags = 4501 Data.Final.getPointer() 4502 ? CGF.Builder.CreateSelect(Data.Final.getPointer(), 4503 CGF.Builder.getInt32(FinalFlag), 4504 CGF.Builder.getInt32(/*C=*/0)) 4505 : CGF.Builder.getInt32(Data.Final.getInt() ? FinalFlag : 0); 4506 TaskFlags = CGF.Builder.CreateOr(TaskFlags, CGF.Builder.getInt32(Flags)); 4507 auto *SharedsSize = CGM.getSize(C.getTypeSizeInChars(SharedsTy)); 4508 llvm::Value *AllocArgs[] = {emitUpdateLocation(CGF, Loc), 4509 getThreadID(CGF, Loc), TaskFlags, 4510 KmpTaskTWithPrivatesTySize, SharedsSize, 4511 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4512 TaskEntry, KmpRoutineEntryPtrTy)}; 4513 auto *NewTask = CGF.EmitRuntimeCall( 4514 createRuntimeFunction(OMPRTL__kmpc_omp_task_alloc), AllocArgs); 4515 auto *NewTaskNewTaskTTy = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4516 NewTask, KmpTaskTWithPrivatesPtrTy); 4517 LValue Base = CGF.MakeNaturalAlignAddrLValue(NewTaskNewTaskTTy, 4518 KmpTaskTWithPrivatesQTy); 4519 LValue TDBase = 4520 CGF.EmitLValueForField(Base, *KmpTaskTWithPrivatesQTyRD->field_begin()); 4521 // Fill the data in the resulting kmp_task_t record. 4522 // Copy shareds if there are any. 4523 Address KmpTaskSharedsPtr = Address::invalid(); 4524 if (!SharedsTy->getAsStructureType()->getDecl()->field_empty()) { 4525 KmpTaskSharedsPtr = 4526 Address(CGF.EmitLoadOfScalar( 4527 CGF.EmitLValueForField( 4528 TDBase, *std::next(KmpTaskTQTyRD->field_begin(), 4529 KmpTaskTShareds)), 4530 Loc), 4531 CGF.getNaturalTypeAlignment(SharedsTy)); 4532 CGF.EmitAggregateCopy(KmpTaskSharedsPtr, Shareds, SharedsTy); 4533 } 4534 // Emit initial values for private copies (if any). 4535 TaskResultTy Result; 4536 if (!Privates.empty()) { 4537 emitPrivatesInit(CGF, D, KmpTaskSharedsPtr, Base, KmpTaskTWithPrivatesQTyRD, 4538 SharedsTy, SharedsPtrTy, Data, Privates, 4539 /*ForDup=*/false); 4540 if (isOpenMPTaskLoopDirective(D.getDirectiveKind()) && 4541 (!Data.LastprivateVars.empty() || checkInitIsRequired(CGF, Privates))) { 4542 Result.TaskDupFn = emitTaskDupFunction( 4543 CGM, Loc, D, KmpTaskTWithPrivatesPtrQTy, KmpTaskTWithPrivatesQTyRD, 4544 KmpTaskTQTyRD, SharedsTy, SharedsPtrTy, Data, Privates, 4545 /*WithLastIter=*/!Data.LastprivateVars.empty()); 4546 } 4547 } 4548 // Fields of union "kmp_cmplrdata_t" for destructors and priority. 4549 enum { Priority = 0, Destructors = 1 }; 4550 // Provide pointer to function with destructors for privates. 4551 auto FI = std::next(KmpTaskTQTyRD->field_begin(), Data1); 4552 auto *KmpCmplrdataUD = (*FI)->getType()->getAsUnionType()->getDecl(); 4553 if (NeedsCleanup) { 4554 llvm::Value *DestructorFn = emitDestructorsFunction( 4555 CGM, Loc, KmpInt32Ty, KmpTaskTWithPrivatesPtrQTy, 4556 KmpTaskTWithPrivatesQTy); 4557 LValue Data1LV = CGF.EmitLValueForField(TDBase, *FI); 4558 LValue DestructorsLV = CGF.EmitLValueForField( 4559 Data1LV, *std::next(KmpCmplrdataUD->field_begin(), Destructors)); 4560 CGF.EmitStoreOfScalar(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4561 DestructorFn, KmpRoutineEntryPtrTy), 4562 DestructorsLV); 4563 } 4564 // Set priority. 4565 if (Data.Priority.getInt()) { 4566 LValue Data2LV = CGF.EmitLValueForField( 4567 TDBase, *std::next(KmpTaskTQTyRD->field_begin(), Data2)); 4568 LValue PriorityLV = CGF.EmitLValueForField( 4569 Data2LV, *std::next(KmpCmplrdataUD->field_begin(), Priority)); 4570 CGF.EmitStoreOfScalar(Data.Priority.getPointer(), PriorityLV); 4571 } 4572 Result.NewTask = NewTask; 4573 Result.TaskEntry = TaskEntry; 4574 Result.NewTaskNewTaskTTy = NewTaskNewTaskTTy; 4575 Result.TDBase = TDBase; 4576 Result.KmpTaskTQTyRD = KmpTaskTQTyRD; 4577 return Result; 4578 } 4579 4580 void CGOpenMPRuntime::emitTaskCall(CodeGenFunction &CGF, SourceLocation Loc, 4581 const OMPExecutableDirective &D, 4582 llvm::Value *TaskFunction, 4583 QualType SharedsTy, Address Shareds, 4584 const Expr *IfCond, 4585 const OMPTaskDataTy &Data) { 4586 if (!CGF.HaveInsertPoint()) 4587 return; 4588 4589 TaskResultTy Result = 4590 emitTaskInit(CGF, Loc, D, TaskFunction, SharedsTy, Shareds, Data); 4591 llvm::Value *NewTask = Result.NewTask; 4592 llvm::Value *TaskEntry = Result.TaskEntry; 4593 llvm::Value *NewTaskNewTaskTTy = Result.NewTaskNewTaskTTy; 4594 LValue TDBase = Result.TDBase; 4595 RecordDecl *KmpTaskTQTyRD = Result.KmpTaskTQTyRD; 4596 auto &C = CGM.getContext(); 4597 // Process list of dependences. 4598 Address DependenciesArray = Address::invalid(); 4599 unsigned NumDependencies = Data.Dependences.size(); 4600 if (NumDependencies) { 4601 // Dependence kind for RTL. 4602 enum RTLDependenceKindTy { DepIn = 0x01, DepInOut = 0x3 }; 4603 enum RTLDependInfoFieldsTy { BaseAddr, Len, Flags }; 4604 RecordDecl *KmpDependInfoRD; 4605 QualType FlagsTy = 4606 C.getIntTypeForBitwidth(C.getTypeSize(C.BoolTy), /*Signed=*/false); 4607 llvm::Type *LLVMFlagsTy = CGF.ConvertTypeForMem(FlagsTy); 4608 if (KmpDependInfoTy.isNull()) { 4609 KmpDependInfoRD = C.buildImplicitRecord("kmp_depend_info"); 4610 KmpDependInfoRD->startDefinition(); 4611 addFieldToRecordDecl(C, KmpDependInfoRD, C.getIntPtrType()); 4612 addFieldToRecordDecl(C, KmpDependInfoRD, C.getSizeType()); 4613 addFieldToRecordDecl(C, KmpDependInfoRD, FlagsTy); 4614 KmpDependInfoRD->completeDefinition(); 4615 KmpDependInfoTy = C.getRecordType(KmpDependInfoRD); 4616 } else 4617 KmpDependInfoRD = cast<RecordDecl>(KmpDependInfoTy->getAsTagDecl()); 4618 CharUnits DependencySize = C.getTypeSizeInChars(KmpDependInfoTy); 4619 // Define type kmp_depend_info[<Dependences.size()>]; 4620 QualType KmpDependInfoArrayTy = C.getConstantArrayType( 4621 KmpDependInfoTy, llvm::APInt(/*numBits=*/64, NumDependencies), 4622 ArrayType::Normal, /*IndexTypeQuals=*/0); 4623 // kmp_depend_info[<Dependences.size()>] deps; 4624 DependenciesArray = 4625 CGF.CreateMemTemp(KmpDependInfoArrayTy, ".dep.arr.addr"); 4626 for (unsigned i = 0; i < NumDependencies; ++i) { 4627 const Expr *E = Data.Dependences[i].second; 4628 auto Addr = CGF.EmitLValue(E); 4629 llvm::Value *Size; 4630 QualType Ty = E->getType(); 4631 if (auto *ASE = dyn_cast<OMPArraySectionExpr>(E->IgnoreParenImpCasts())) { 4632 LValue UpAddrLVal = 4633 CGF.EmitOMPArraySectionExpr(ASE, /*LowerBound=*/false); 4634 llvm::Value *UpAddr = 4635 CGF.Builder.CreateConstGEP1_32(UpAddrLVal.getPointer(), /*Idx0=*/1); 4636 llvm::Value *LowIntPtr = 4637 CGF.Builder.CreatePtrToInt(Addr.getPointer(), CGM.SizeTy); 4638 llvm::Value *UpIntPtr = CGF.Builder.CreatePtrToInt(UpAddr, CGM.SizeTy); 4639 Size = CGF.Builder.CreateNUWSub(UpIntPtr, LowIntPtr); 4640 } else 4641 Size = CGF.getTypeSize(Ty); 4642 auto Base = CGF.MakeAddrLValue( 4643 CGF.Builder.CreateConstArrayGEP(DependenciesArray, i, DependencySize), 4644 KmpDependInfoTy); 4645 // deps[i].base_addr = &<Dependences[i].second>; 4646 auto BaseAddrLVal = CGF.EmitLValueForField( 4647 Base, *std::next(KmpDependInfoRD->field_begin(), BaseAddr)); 4648 CGF.EmitStoreOfScalar( 4649 CGF.Builder.CreatePtrToInt(Addr.getPointer(), CGF.IntPtrTy), 4650 BaseAddrLVal); 4651 // deps[i].len = sizeof(<Dependences[i].second>); 4652 auto LenLVal = CGF.EmitLValueForField( 4653 Base, *std::next(KmpDependInfoRD->field_begin(), Len)); 4654 CGF.EmitStoreOfScalar(Size, LenLVal); 4655 // deps[i].flags = <Dependences[i].first>; 4656 RTLDependenceKindTy DepKind; 4657 switch (Data.Dependences[i].first) { 4658 case OMPC_DEPEND_in: 4659 DepKind = DepIn; 4660 break; 4661 // Out and InOut dependencies must use the same code. 4662 case OMPC_DEPEND_out: 4663 case OMPC_DEPEND_inout: 4664 DepKind = DepInOut; 4665 break; 4666 case OMPC_DEPEND_source: 4667 case OMPC_DEPEND_sink: 4668 case OMPC_DEPEND_unknown: 4669 llvm_unreachable("Unknown task dependence type"); 4670 } 4671 auto FlagsLVal = CGF.EmitLValueForField( 4672 Base, *std::next(KmpDependInfoRD->field_begin(), Flags)); 4673 CGF.EmitStoreOfScalar(llvm::ConstantInt::get(LLVMFlagsTy, DepKind), 4674 FlagsLVal); 4675 } 4676 DependenciesArray = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4677 CGF.Builder.CreateStructGEP(DependenciesArray, 0, CharUnits::Zero()), 4678 CGF.VoidPtrTy); 4679 } 4680 4681 // NOTE: routine and part_id fields are intialized by __kmpc_omp_task_alloc() 4682 // libcall. 4683 // Build kmp_int32 __kmpc_omp_task_with_deps(ident_t *, kmp_int32 gtid, 4684 // kmp_task_t *new_task, kmp_int32 ndeps, kmp_depend_info_t *dep_list, 4685 // kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list) if dependence 4686 // list is not empty 4687 auto *ThreadID = getThreadID(CGF, Loc); 4688 auto *UpLoc = emitUpdateLocation(CGF, Loc); 4689 llvm::Value *TaskArgs[] = { UpLoc, ThreadID, NewTask }; 4690 llvm::Value *DepTaskArgs[7]; 4691 if (NumDependencies) { 4692 DepTaskArgs[0] = UpLoc; 4693 DepTaskArgs[1] = ThreadID; 4694 DepTaskArgs[2] = NewTask; 4695 DepTaskArgs[3] = CGF.Builder.getInt32(NumDependencies); 4696 DepTaskArgs[4] = DependenciesArray.getPointer(); 4697 DepTaskArgs[5] = CGF.Builder.getInt32(0); 4698 DepTaskArgs[6] = llvm::ConstantPointerNull::get(CGF.VoidPtrTy); 4699 } 4700 auto &&ThenCodeGen = [this, &Data, TDBase, KmpTaskTQTyRD, NumDependencies, 4701 &TaskArgs, 4702 &DepTaskArgs](CodeGenFunction &CGF, PrePostActionTy &) { 4703 if (!Data.Tied) { 4704 auto PartIdFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTPartId); 4705 auto PartIdLVal = CGF.EmitLValueForField(TDBase, *PartIdFI); 4706 CGF.EmitStoreOfScalar(CGF.Builder.getInt32(0), PartIdLVal); 4707 } 4708 if (NumDependencies) { 4709 CGF.EmitRuntimeCall( 4710 createRuntimeFunction(OMPRTL__kmpc_omp_task_with_deps), DepTaskArgs); 4711 } else { 4712 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_task), 4713 TaskArgs); 4714 } 4715 // Check if parent region is untied and build return for untied task; 4716 if (auto *Region = 4717 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) 4718 Region->emitUntiedSwitch(CGF); 4719 }; 4720 4721 llvm::Value *DepWaitTaskArgs[6]; 4722 if (NumDependencies) { 4723 DepWaitTaskArgs[0] = UpLoc; 4724 DepWaitTaskArgs[1] = ThreadID; 4725 DepWaitTaskArgs[2] = CGF.Builder.getInt32(NumDependencies); 4726 DepWaitTaskArgs[3] = DependenciesArray.getPointer(); 4727 DepWaitTaskArgs[4] = CGF.Builder.getInt32(0); 4728 DepWaitTaskArgs[5] = llvm::ConstantPointerNull::get(CGF.VoidPtrTy); 4729 } 4730 auto &&ElseCodeGen = [&TaskArgs, ThreadID, NewTaskNewTaskTTy, TaskEntry, 4731 NumDependencies, &DepWaitTaskArgs, 4732 Loc](CodeGenFunction &CGF, PrePostActionTy &) { 4733 auto &RT = CGF.CGM.getOpenMPRuntime(); 4734 CodeGenFunction::RunCleanupsScope LocalScope(CGF); 4735 // Build void __kmpc_omp_wait_deps(ident_t *, kmp_int32 gtid, 4736 // kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32 4737 // ndeps_noalias, kmp_depend_info_t *noalias_dep_list); if dependence info 4738 // is specified. 4739 if (NumDependencies) 4740 CGF.EmitRuntimeCall(RT.createRuntimeFunction(OMPRTL__kmpc_omp_wait_deps), 4741 DepWaitTaskArgs); 4742 // Call proxy_task_entry(gtid, new_task); 4743 auto &&CodeGen = [TaskEntry, ThreadID, NewTaskNewTaskTTy, 4744 Loc](CodeGenFunction &CGF, PrePostActionTy &Action) { 4745 Action.Enter(CGF); 4746 llvm::Value *OutlinedFnArgs[] = {ThreadID, NewTaskNewTaskTTy}; 4747 CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, Loc, TaskEntry, 4748 OutlinedFnArgs); 4749 }; 4750 4751 // Build void __kmpc_omp_task_begin_if0(ident_t *, kmp_int32 gtid, 4752 // kmp_task_t *new_task); 4753 // Build void __kmpc_omp_task_complete_if0(ident_t *, kmp_int32 gtid, 4754 // kmp_task_t *new_task); 4755 RegionCodeGenTy RCG(CodeGen); 4756 CommonActionTy Action( 4757 RT.createRuntimeFunction(OMPRTL__kmpc_omp_task_begin_if0), TaskArgs, 4758 RT.createRuntimeFunction(OMPRTL__kmpc_omp_task_complete_if0), TaskArgs); 4759 RCG.setAction(Action); 4760 RCG(CGF); 4761 }; 4762 4763 if (IfCond) 4764 emitOMPIfClause(CGF, IfCond, ThenCodeGen, ElseCodeGen); 4765 else { 4766 RegionCodeGenTy ThenRCG(ThenCodeGen); 4767 ThenRCG(CGF); 4768 } 4769 } 4770 4771 void CGOpenMPRuntime::emitTaskLoopCall(CodeGenFunction &CGF, SourceLocation Loc, 4772 const OMPLoopDirective &D, 4773 llvm::Value *TaskFunction, 4774 QualType SharedsTy, Address Shareds, 4775 const Expr *IfCond, 4776 const OMPTaskDataTy &Data) { 4777 if (!CGF.HaveInsertPoint()) 4778 return; 4779 TaskResultTy Result = 4780 emitTaskInit(CGF, Loc, D, TaskFunction, SharedsTy, Shareds, Data); 4781 // NOTE: routine and part_id fields are intialized by __kmpc_omp_task_alloc() 4782 // libcall. 4783 // Call to void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int 4784 // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int 4785 // sched, kmp_uint64 grainsize, void *task_dup); 4786 llvm::Value *ThreadID = getThreadID(CGF, Loc); 4787 llvm::Value *UpLoc = emitUpdateLocation(CGF, Loc); 4788 llvm::Value *IfVal; 4789 if (IfCond) { 4790 IfVal = CGF.Builder.CreateIntCast(CGF.EvaluateExprAsBool(IfCond), CGF.IntTy, 4791 /*isSigned=*/true); 4792 } else 4793 IfVal = llvm::ConstantInt::getSigned(CGF.IntTy, /*V=*/1); 4794 4795 LValue LBLVal = CGF.EmitLValueForField( 4796 Result.TDBase, 4797 *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTLowerBound)); 4798 auto *LBVar = 4799 cast<VarDecl>(cast<DeclRefExpr>(D.getLowerBoundVariable())->getDecl()); 4800 CGF.EmitAnyExprToMem(LBVar->getInit(), LBLVal.getAddress(), LBLVal.getQuals(), 4801 /*IsInitializer=*/true); 4802 LValue UBLVal = CGF.EmitLValueForField( 4803 Result.TDBase, 4804 *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTUpperBound)); 4805 auto *UBVar = 4806 cast<VarDecl>(cast<DeclRefExpr>(D.getUpperBoundVariable())->getDecl()); 4807 CGF.EmitAnyExprToMem(UBVar->getInit(), UBLVal.getAddress(), UBLVal.getQuals(), 4808 /*IsInitializer=*/true); 4809 LValue StLVal = CGF.EmitLValueForField( 4810 Result.TDBase, 4811 *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTStride)); 4812 auto *StVar = 4813 cast<VarDecl>(cast<DeclRefExpr>(D.getStrideVariable())->getDecl()); 4814 CGF.EmitAnyExprToMem(StVar->getInit(), StLVal.getAddress(), StLVal.getQuals(), 4815 /*IsInitializer=*/true); 4816 // Store reductions address. 4817 LValue RedLVal = CGF.EmitLValueForField( 4818 Result.TDBase, 4819 *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTReductions)); 4820 if (Data.Reductions) 4821 CGF.EmitStoreOfScalar(Data.Reductions, RedLVal); 4822 else { 4823 CGF.EmitNullInitialization(RedLVal.getAddress(), 4824 CGF.getContext().VoidPtrTy); 4825 } 4826 enum { NoSchedule = 0, Grainsize = 1, NumTasks = 2 }; 4827 llvm::Value *TaskArgs[] = { 4828 UpLoc, 4829 ThreadID, 4830 Result.NewTask, 4831 IfVal, 4832 LBLVal.getPointer(), 4833 UBLVal.getPointer(), 4834 CGF.EmitLoadOfScalar(StLVal, SourceLocation()), 4835 llvm::ConstantInt::getNullValue( 4836 CGF.IntTy), // Always 0 because taskgroup emitted by the compiler 4837 llvm::ConstantInt::getSigned( 4838 CGF.IntTy, Data.Schedule.getPointer() 4839 ? Data.Schedule.getInt() ? NumTasks : Grainsize 4840 : NoSchedule), 4841 Data.Schedule.getPointer() 4842 ? CGF.Builder.CreateIntCast(Data.Schedule.getPointer(), CGF.Int64Ty, 4843 /*isSigned=*/false) 4844 : llvm::ConstantInt::get(CGF.Int64Ty, /*V=*/0), 4845 Result.TaskDupFn ? CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4846 Result.TaskDupFn, CGF.VoidPtrTy) 4847 : llvm::ConstantPointerNull::get(CGF.VoidPtrTy)}; 4848 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_taskloop), TaskArgs); 4849 } 4850 4851 /// \brief Emit reduction operation for each element of array (required for 4852 /// array sections) LHS op = RHS. 4853 /// \param Type Type of array. 4854 /// \param LHSVar Variable on the left side of the reduction operation 4855 /// (references element of array in original variable). 4856 /// \param RHSVar Variable on the right side of the reduction operation 4857 /// (references element of array in original variable). 4858 /// \param RedOpGen Generator of reduction operation with use of LHSVar and 4859 /// RHSVar. 4860 static void EmitOMPAggregateReduction( 4861 CodeGenFunction &CGF, QualType Type, const VarDecl *LHSVar, 4862 const VarDecl *RHSVar, 4863 const llvm::function_ref<void(CodeGenFunction &CGF, const Expr *, 4864 const Expr *, const Expr *)> &RedOpGen, 4865 const Expr *XExpr = nullptr, const Expr *EExpr = nullptr, 4866 const Expr *UpExpr = nullptr) { 4867 // Perform element-by-element initialization. 4868 QualType ElementTy; 4869 Address LHSAddr = CGF.GetAddrOfLocalVar(LHSVar); 4870 Address RHSAddr = CGF.GetAddrOfLocalVar(RHSVar); 4871 4872 // Drill down to the base element type on both arrays. 4873 auto ArrayTy = Type->getAsArrayTypeUnsafe(); 4874 auto NumElements = CGF.emitArrayLength(ArrayTy, ElementTy, LHSAddr); 4875 4876 auto RHSBegin = RHSAddr.getPointer(); 4877 auto LHSBegin = LHSAddr.getPointer(); 4878 // Cast from pointer to array type to pointer to single element. 4879 auto LHSEnd = CGF.Builder.CreateGEP(LHSBegin, NumElements); 4880 // The basic structure here is a while-do loop. 4881 auto BodyBB = CGF.createBasicBlock("omp.arraycpy.body"); 4882 auto DoneBB = CGF.createBasicBlock("omp.arraycpy.done"); 4883 auto IsEmpty = 4884 CGF.Builder.CreateICmpEQ(LHSBegin, LHSEnd, "omp.arraycpy.isempty"); 4885 CGF.Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB); 4886 4887 // Enter the loop body, making that address the current address. 4888 auto EntryBB = CGF.Builder.GetInsertBlock(); 4889 CGF.EmitBlock(BodyBB); 4890 4891 CharUnits ElementSize = CGF.getContext().getTypeSizeInChars(ElementTy); 4892 4893 llvm::PHINode *RHSElementPHI = CGF.Builder.CreatePHI( 4894 RHSBegin->getType(), 2, "omp.arraycpy.srcElementPast"); 4895 RHSElementPHI->addIncoming(RHSBegin, EntryBB); 4896 Address RHSElementCurrent = 4897 Address(RHSElementPHI, 4898 RHSAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 4899 4900 llvm::PHINode *LHSElementPHI = CGF.Builder.CreatePHI( 4901 LHSBegin->getType(), 2, "omp.arraycpy.destElementPast"); 4902 LHSElementPHI->addIncoming(LHSBegin, EntryBB); 4903 Address LHSElementCurrent = 4904 Address(LHSElementPHI, 4905 LHSAddr.getAlignment().alignmentOfArrayElement(ElementSize)); 4906 4907 // Emit copy. 4908 CodeGenFunction::OMPPrivateScope Scope(CGF); 4909 Scope.addPrivate(LHSVar, [=]() -> Address { return LHSElementCurrent; }); 4910 Scope.addPrivate(RHSVar, [=]() -> Address { return RHSElementCurrent; }); 4911 Scope.Privatize(); 4912 RedOpGen(CGF, XExpr, EExpr, UpExpr); 4913 Scope.ForceCleanup(); 4914 4915 // Shift the address forward by one element. 4916 auto LHSElementNext = CGF.Builder.CreateConstGEP1_32( 4917 LHSElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element"); 4918 auto RHSElementNext = CGF.Builder.CreateConstGEP1_32( 4919 RHSElementPHI, /*Idx0=*/1, "omp.arraycpy.src.element"); 4920 // Check whether we've reached the end. 4921 auto Done = 4922 CGF.Builder.CreateICmpEQ(LHSElementNext, LHSEnd, "omp.arraycpy.done"); 4923 CGF.Builder.CreateCondBr(Done, DoneBB, BodyBB); 4924 LHSElementPHI->addIncoming(LHSElementNext, CGF.Builder.GetInsertBlock()); 4925 RHSElementPHI->addIncoming(RHSElementNext, CGF.Builder.GetInsertBlock()); 4926 4927 // Done. 4928 CGF.EmitBlock(DoneBB, /*IsFinished=*/true); 4929 } 4930 4931 /// Emit reduction combiner. If the combiner is a simple expression emit it as 4932 /// is, otherwise consider it as combiner of UDR decl and emit it as a call of 4933 /// UDR combiner function. 4934 static void emitReductionCombiner(CodeGenFunction &CGF, 4935 const Expr *ReductionOp) { 4936 if (auto *CE = dyn_cast<CallExpr>(ReductionOp)) 4937 if (auto *OVE = dyn_cast<OpaqueValueExpr>(CE->getCallee())) 4938 if (auto *DRE = 4939 dyn_cast<DeclRefExpr>(OVE->getSourceExpr()->IgnoreImpCasts())) 4940 if (auto *DRD = dyn_cast<OMPDeclareReductionDecl>(DRE->getDecl())) { 4941 std::pair<llvm::Function *, llvm::Function *> Reduction = 4942 CGF.CGM.getOpenMPRuntime().getUserDefinedReduction(DRD); 4943 RValue Func = RValue::get(Reduction.first); 4944 CodeGenFunction::OpaqueValueMapping Map(CGF, OVE, Func); 4945 CGF.EmitIgnoredExpr(ReductionOp); 4946 return; 4947 } 4948 CGF.EmitIgnoredExpr(ReductionOp); 4949 } 4950 4951 llvm::Value *CGOpenMPRuntime::emitReductionFunction( 4952 CodeGenModule &CGM, SourceLocation Loc, llvm::Type *ArgsType, 4953 ArrayRef<const Expr *> Privates, ArrayRef<const Expr *> LHSExprs, 4954 ArrayRef<const Expr *> RHSExprs, ArrayRef<const Expr *> ReductionOps) { 4955 auto &C = CGM.getContext(); 4956 4957 // void reduction_func(void *LHSArg, void *RHSArg); 4958 FunctionArgList Args; 4959 ImplicitParamDecl LHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 4960 ImplicitParamDecl::Other); 4961 ImplicitParamDecl RHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 4962 ImplicitParamDecl::Other); 4963 Args.push_back(&LHSArg); 4964 Args.push_back(&RHSArg); 4965 auto &CGFI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 4966 auto *Fn = llvm::Function::Create( 4967 CGM.getTypes().GetFunctionType(CGFI), llvm::GlobalValue::InternalLinkage, 4968 ".omp.reduction.reduction_func", &CGM.getModule()); 4969 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, CGFI); 4970 CodeGenFunction CGF(CGM); 4971 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, CGFI, Args, Loc, Loc); 4972 4973 // Dst = (void*[n])(LHSArg); 4974 // Src = (void*[n])(RHSArg); 4975 Address LHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4976 CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&LHSArg)), 4977 ArgsType), CGF.getPointerAlign()); 4978 Address RHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 4979 CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&RHSArg)), 4980 ArgsType), CGF.getPointerAlign()); 4981 4982 // ... 4983 // *(Type<i>*)lhs[i] = RedOp<i>(*(Type<i>*)lhs[i], *(Type<i>*)rhs[i]); 4984 // ... 4985 CodeGenFunction::OMPPrivateScope Scope(CGF); 4986 auto IPriv = Privates.begin(); 4987 unsigned Idx = 0; 4988 for (unsigned I = 0, E = ReductionOps.size(); I < E; ++I, ++IPriv, ++Idx) { 4989 auto RHSVar = cast<VarDecl>(cast<DeclRefExpr>(RHSExprs[I])->getDecl()); 4990 Scope.addPrivate(RHSVar, [&]() -> Address { 4991 return emitAddrOfVarFromArray(CGF, RHS, Idx, RHSVar); 4992 }); 4993 auto LHSVar = cast<VarDecl>(cast<DeclRefExpr>(LHSExprs[I])->getDecl()); 4994 Scope.addPrivate(LHSVar, [&]() -> Address { 4995 return emitAddrOfVarFromArray(CGF, LHS, Idx, LHSVar); 4996 }); 4997 QualType PrivTy = (*IPriv)->getType(); 4998 if (PrivTy->isVariablyModifiedType()) { 4999 // Get array size and emit VLA type. 5000 ++Idx; 5001 Address Elem = 5002 CGF.Builder.CreateConstArrayGEP(LHS, Idx, CGF.getPointerSize()); 5003 llvm::Value *Ptr = CGF.Builder.CreateLoad(Elem); 5004 auto *VLA = CGF.getContext().getAsVariableArrayType(PrivTy); 5005 auto *OVE = cast<OpaqueValueExpr>(VLA->getSizeExpr()); 5006 CodeGenFunction::OpaqueValueMapping OpaqueMap( 5007 CGF, OVE, RValue::get(CGF.Builder.CreatePtrToInt(Ptr, CGF.SizeTy))); 5008 CGF.EmitVariablyModifiedType(PrivTy); 5009 } 5010 } 5011 Scope.Privatize(); 5012 IPriv = Privates.begin(); 5013 auto ILHS = LHSExprs.begin(); 5014 auto IRHS = RHSExprs.begin(); 5015 for (auto *E : ReductionOps) { 5016 if ((*IPriv)->getType()->isArrayType()) { 5017 // Emit reduction for array section. 5018 auto *LHSVar = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl()); 5019 auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl()); 5020 EmitOMPAggregateReduction( 5021 CGF, (*IPriv)->getType(), LHSVar, RHSVar, 5022 [=](CodeGenFunction &CGF, const Expr *, const Expr *, const Expr *) { 5023 emitReductionCombiner(CGF, E); 5024 }); 5025 } else 5026 // Emit reduction for array subscript or single variable. 5027 emitReductionCombiner(CGF, E); 5028 ++IPriv; 5029 ++ILHS; 5030 ++IRHS; 5031 } 5032 Scope.ForceCleanup(); 5033 CGF.FinishFunction(); 5034 return Fn; 5035 } 5036 5037 void CGOpenMPRuntime::emitSingleReductionCombiner(CodeGenFunction &CGF, 5038 const Expr *ReductionOp, 5039 const Expr *PrivateRef, 5040 const DeclRefExpr *LHS, 5041 const DeclRefExpr *RHS) { 5042 if (PrivateRef->getType()->isArrayType()) { 5043 // Emit reduction for array section. 5044 auto *LHSVar = cast<VarDecl>(LHS->getDecl()); 5045 auto *RHSVar = cast<VarDecl>(RHS->getDecl()); 5046 EmitOMPAggregateReduction( 5047 CGF, PrivateRef->getType(), LHSVar, RHSVar, 5048 [=](CodeGenFunction &CGF, const Expr *, const Expr *, const Expr *) { 5049 emitReductionCombiner(CGF, ReductionOp); 5050 }); 5051 } else 5052 // Emit reduction for array subscript or single variable. 5053 emitReductionCombiner(CGF, ReductionOp); 5054 } 5055 5056 void CGOpenMPRuntime::emitReduction(CodeGenFunction &CGF, SourceLocation Loc, 5057 ArrayRef<const Expr *> Privates, 5058 ArrayRef<const Expr *> LHSExprs, 5059 ArrayRef<const Expr *> RHSExprs, 5060 ArrayRef<const Expr *> ReductionOps, 5061 ReductionOptionsTy Options) { 5062 if (!CGF.HaveInsertPoint()) 5063 return; 5064 5065 bool WithNowait = Options.WithNowait; 5066 bool SimpleReduction = Options.SimpleReduction; 5067 5068 // Next code should be emitted for reduction: 5069 // 5070 // static kmp_critical_name lock = { 0 }; 5071 // 5072 // void reduce_func(void *lhs[<n>], void *rhs[<n>]) { 5073 // *(Type0*)lhs[0] = ReductionOperation0(*(Type0*)lhs[0], *(Type0*)rhs[0]); 5074 // ... 5075 // *(Type<n>-1*)lhs[<n>-1] = ReductionOperation<n>-1(*(Type<n>-1*)lhs[<n>-1], 5076 // *(Type<n>-1*)rhs[<n>-1]); 5077 // } 5078 // 5079 // ... 5080 // void *RedList[<n>] = {&<RHSExprs>[0], ..., &<RHSExprs>[<n>-1]}; 5081 // switch (__kmpc_reduce{_nowait}(<loc>, <gtid>, <n>, sizeof(RedList), 5082 // RedList, reduce_func, &<lock>)) { 5083 // case 1: 5084 // ... 5085 // <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]); 5086 // ... 5087 // __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>); 5088 // break; 5089 // case 2: 5090 // ... 5091 // Atomic(<LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i])); 5092 // ... 5093 // [__kmpc_end_reduce(<loc>, <gtid>, &<lock>);] 5094 // break; 5095 // default:; 5096 // } 5097 // 5098 // if SimpleReduction is true, only the next code is generated: 5099 // ... 5100 // <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]); 5101 // ... 5102 5103 auto &C = CGM.getContext(); 5104 5105 if (SimpleReduction) { 5106 CodeGenFunction::RunCleanupsScope Scope(CGF); 5107 auto IPriv = Privates.begin(); 5108 auto ILHS = LHSExprs.begin(); 5109 auto IRHS = RHSExprs.begin(); 5110 for (auto *E : ReductionOps) { 5111 emitSingleReductionCombiner(CGF, E, *IPriv, cast<DeclRefExpr>(*ILHS), 5112 cast<DeclRefExpr>(*IRHS)); 5113 ++IPriv; 5114 ++ILHS; 5115 ++IRHS; 5116 } 5117 return; 5118 } 5119 5120 // 1. Build a list of reduction variables. 5121 // void *RedList[<n>] = {<ReductionVars>[0], ..., <ReductionVars>[<n>-1]}; 5122 auto Size = RHSExprs.size(); 5123 for (auto *E : Privates) { 5124 if (E->getType()->isVariablyModifiedType()) 5125 // Reserve place for array size. 5126 ++Size; 5127 } 5128 llvm::APInt ArraySize(/*unsigned int numBits=*/32, Size); 5129 QualType ReductionArrayTy = 5130 C.getConstantArrayType(C.VoidPtrTy, ArraySize, ArrayType::Normal, 5131 /*IndexTypeQuals=*/0); 5132 Address ReductionList = 5133 CGF.CreateMemTemp(ReductionArrayTy, ".omp.reduction.red_list"); 5134 auto IPriv = Privates.begin(); 5135 unsigned Idx = 0; 5136 for (unsigned I = 0, E = RHSExprs.size(); I < E; ++I, ++IPriv, ++Idx) { 5137 Address Elem = 5138 CGF.Builder.CreateConstArrayGEP(ReductionList, Idx, CGF.getPointerSize()); 5139 CGF.Builder.CreateStore( 5140 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 5141 CGF.EmitLValue(RHSExprs[I]).getPointer(), CGF.VoidPtrTy), 5142 Elem); 5143 if ((*IPriv)->getType()->isVariablyModifiedType()) { 5144 // Store array size. 5145 ++Idx; 5146 Elem = CGF.Builder.CreateConstArrayGEP(ReductionList, Idx, 5147 CGF.getPointerSize()); 5148 llvm::Value *Size = CGF.Builder.CreateIntCast( 5149 CGF.getVLASize( 5150 CGF.getContext().getAsVariableArrayType((*IPriv)->getType())) 5151 .first, 5152 CGF.SizeTy, /*isSigned=*/false); 5153 CGF.Builder.CreateStore(CGF.Builder.CreateIntToPtr(Size, CGF.VoidPtrTy), 5154 Elem); 5155 } 5156 } 5157 5158 // 2. Emit reduce_func(). 5159 auto *ReductionFn = emitReductionFunction( 5160 CGM, Loc, CGF.ConvertTypeForMem(ReductionArrayTy)->getPointerTo(), 5161 Privates, LHSExprs, RHSExprs, ReductionOps); 5162 5163 // 3. Create static kmp_critical_name lock = { 0 }; 5164 auto *Lock = getCriticalRegionLock(".reduction"); 5165 5166 // 4. Build res = __kmpc_reduce{_nowait}(<loc>, <gtid>, <n>, sizeof(RedList), 5167 // RedList, reduce_func, &<lock>); 5168 auto *IdentTLoc = emitUpdateLocation(CGF, Loc, OMP_ATOMIC_REDUCE); 5169 auto *ThreadId = getThreadID(CGF, Loc); 5170 auto *ReductionArrayTySize = CGF.getTypeSize(ReductionArrayTy); 5171 auto *RL = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 5172 ReductionList.getPointer(), CGF.VoidPtrTy); 5173 llvm::Value *Args[] = { 5174 IdentTLoc, // ident_t *<loc> 5175 ThreadId, // i32 <gtid> 5176 CGF.Builder.getInt32(RHSExprs.size()), // i32 <n> 5177 ReductionArrayTySize, // size_type sizeof(RedList) 5178 RL, // void *RedList 5179 ReductionFn, // void (*) (void *, void *) <reduce_func> 5180 Lock // kmp_critical_name *&<lock> 5181 }; 5182 auto Res = CGF.EmitRuntimeCall( 5183 createRuntimeFunction(WithNowait ? OMPRTL__kmpc_reduce_nowait 5184 : OMPRTL__kmpc_reduce), 5185 Args); 5186 5187 // 5. Build switch(res) 5188 auto *DefaultBB = CGF.createBasicBlock(".omp.reduction.default"); 5189 auto *SwInst = CGF.Builder.CreateSwitch(Res, DefaultBB, /*NumCases=*/2); 5190 5191 // 6. Build case 1: 5192 // ... 5193 // <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]); 5194 // ... 5195 // __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>); 5196 // break; 5197 auto *Case1BB = CGF.createBasicBlock(".omp.reduction.case1"); 5198 SwInst->addCase(CGF.Builder.getInt32(1), Case1BB); 5199 CGF.EmitBlock(Case1BB); 5200 5201 // Add emission of __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>); 5202 llvm::Value *EndArgs[] = { 5203 IdentTLoc, // ident_t *<loc> 5204 ThreadId, // i32 <gtid> 5205 Lock // kmp_critical_name *&<lock> 5206 }; 5207 auto &&CodeGen = [&Privates, &LHSExprs, &RHSExprs, &ReductionOps]( 5208 CodeGenFunction &CGF, PrePostActionTy &Action) { 5209 auto &RT = CGF.CGM.getOpenMPRuntime(); 5210 auto IPriv = Privates.begin(); 5211 auto ILHS = LHSExprs.begin(); 5212 auto IRHS = RHSExprs.begin(); 5213 for (auto *E : ReductionOps) { 5214 RT.emitSingleReductionCombiner(CGF, E, *IPriv, cast<DeclRefExpr>(*ILHS), 5215 cast<DeclRefExpr>(*IRHS)); 5216 ++IPriv; 5217 ++ILHS; 5218 ++IRHS; 5219 } 5220 }; 5221 RegionCodeGenTy RCG(CodeGen); 5222 CommonActionTy Action( 5223 nullptr, llvm::None, 5224 createRuntimeFunction(WithNowait ? OMPRTL__kmpc_end_reduce_nowait 5225 : OMPRTL__kmpc_end_reduce), 5226 EndArgs); 5227 RCG.setAction(Action); 5228 RCG(CGF); 5229 5230 CGF.EmitBranch(DefaultBB); 5231 5232 // 7. Build case 2: 5233 // ... 5234 // Atomic(<LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i])); 5235 // ... 5236 // break; 5237 auto *Case2BB = CGF.createBasicBlock(".omp.reduction.case2"); 5238 SwInst->addCase(CGF.Builder.getInt32(2), Case2BB); 5239 CGF.EmitBlock(Case2BB); 5240 5241 auto &&AtomicCodeGen = [Loc, &Privates, &LHSExprs, &RHSExprs, &ReductionOps]( 5242 CodeGenFunction &CGF, PrePostActionTy &Action) { 5243 auto ILHS = LHSExprs.begin(); 5244 auto IRHS = RHSExprs.begin(); 5245 auto IPriv = Privates.begin(); 5246 for (auto *E : ReductionOps) { 5247 const Expr *XExpr = nullptr; 5248 const Expr *EExpr = nullptr; 5249 const Expr *UpExpr = nullptr; 5250 BinaryOperatorKind BO = BO_Comma; 5251 if (auto *BO = dyn_cast<BinaryOperator>(E)) { 5252 if (BO->getOpcode() == BO_Assign) { 5253 XExpr = BO->getLHS(); 5254 UpExpr = BO->getRHS(); 5255 } 5256 } 5257 // Try to emit update expression as a simple atomic. 5258 auto *RHSExpr = UpExpr; 5259 if (RHSExpr) { 5260 // Analyze RHS part of the whole expression. 5261 if (auto *ACO = dyn_cast<AbstractConditionalOperator>( 5262 RHSExpr->IgnoreParenImpCasts())) { 5263 // If this is a conditional operator, analyze its condition for 5264 // min/max reduction operator. 5265 RHSExpr = ACO->getCond(); 5266 } 5267 if (auto *BORHS = 5268 dyn_cast<BinaryOperator>(RHSExpr->IgnoreParenImpCasts())) { 5269 EExpr = BORHS->getRHS(); 5270 BO = BORHS->getOpcode(); 5271 } 5272 } 5273 if (XExpr) { 5274 auto *VD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl()); 5275 auto &&AtomicRedGen = [BO, VD, 5276 Loc](CodeGenFunction &CGF, const Expr *XExpr, 5277 const Expr *EExpr, const Expr *UpExpr) { 5278 LValue X = CGF.EmitLValue(XExpr); 5279 RValue E; 5280 if (EExpr) 5281 E = CGF.EmitAnyExpr(EExpr); 5282 CGF.EmitOMPAtomicSimpleUpdateExpr( 5283 X, E, BO, /*IsXLHSInRHSPart=*/true, 5284 llvm::AtomicOrdering::Monotonic, Loc, 5285 [&CGF, UpExpr, VD, Loc](RValue XRValue) { 5286 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 5287 PrivateScope.addPrivate( 5288 VD, [&CGF, VD, XRValue, Loc]() -> Address { 5289 Address LHSTemp = CGF.CreateMemTemp(VD->getType()); 5290 CGF.emitOMPSimpleStore( 5291 CGF.MakeAddrLValue(LHSTemp, VD->getType()), XRValue, 5292 VD->getType().getNonReferenceType(), Loc); 5293 return LHSTemp; 5294 }); 5295 (void)PrivateScope.Privatize(); 5296 return CGF.EmitAnyExpr(UpExpr); 5297 }); 5298 }; 5299 if ((*IPriv)->getType()->isArrayType()) { 5300 // Emit atomic reduction for array section. 5301 auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl()); 5302 EmitOMPAggregateReduction(CGF, (*IPriv)->getType(), VD, RHSVar, 5303 AtomicRedGen, XExpr, EExpr, UpExpr); 5304 } else 5305 // Emit atomic reduction for array subscript or single variable. 5306 AtomicRedGen(CGF, XExpr, EExpr, UpExpr); 5307 } else { 5308 // Emit as a critical region. 5309 auto &&CritRedGen = [E, Loc](CodeGenFunction &CGF, const Expr *, 5310 const Expr *, const Expr *) { 5311 auto &RT = CGF.CGM.getOpenMPRuntime(); 5312 RT.emitCriticalRegion( 5313 CGF, ".atomic_reduction", 5314 [=](CodeGenFunction &CGF, PrePostActionTy &Action) { 5315 Action.Enter(CGF); 5316 emitReductionCombiner(CGF, E); 5317 }, 5318 Loc); 5319 }; 5320 if ((*IPriv)->getType()->isArrayType()) { 5321 auto *LHSVar = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl()); 5322 auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl()); 5323 EmitOMPAggregateReduction(CGF, (*IPriv)->getType(), LHSVar, RHSVar, 5324 CritRedGen); 5325 } else 5326 CritRedGen(CGF, nullptr, nullptr, nullptr); 5327 } 5328 ++ILHS; 5329 ++IRHS; 5330 ++IPriv; 5331 } 5332 }; 5333 RegionCodeGenTy AtomicRCG(AtomicCodeGen); 5334 if (!WithNowait) { 5335 // Add emission of __kmpc_end_reduce(<loc>, <gtid>, &<lock>); 5336 llvm::Value *EndArgs[] = { 5337 IdentTLoc, // ident_t *<loc> 5338 ThreadId, // i32 <gtid> 5339 Lock // kmp_critical_name *&<lock> 5340 }; 5341 CommonActionTy Action(nullptr, llvm::None, 5342 createRuntimeFunction(OMPRTL__kmpc_end_reduce), 5343 EndArgs); 5344 AtomicRCG.setAction(Action); 5345 AtomicRCG(CGF); 5346 } else 5347 AtomicRCG(CGF); 5348 5349 CGF.EmitBranch(DefaultBB); 5350 CGF.EmitBlock(DefaultBB, /*IsFinished=*/true); 5351 } 5352 5353 /// Generates unique name for artificial threadprivate variables. 5354 /// Format is: <Prefix> "." <Loc_raw_encoding> "_" <N> 5355 static std::string generateUniqueName(StringRef Prefix, SourceLocation Loc, 5356 unsigned N) { 5357 SmallString<256> Buffer; 5358 llvm::raw_svector_ostream Out(Buffer); 5359 Out << Prefix << "." << Loc.getRawEncoding() << "_" << N; 5360 return Out.str(); 5361 } 5362 5363 /// Emits reduction initializer function: 5364 /// \code 5365 /// void @.red_init(void* %arg) { 5366 /// %0 = bitcast void* %arg to <type>* 5367 /// store <type> <init>, <type>* %0 5368 /// ret void 5369 /// } 5370 /// \endcode 5371 static llvm::Value *emitReduceInitFunction(CodeGenModule &CGM, 5372 SourceLocation Loc, 5373 ReductionCodeGen &RCG, unsigned N) { 5374 auto &C = CGM.getContext(); 5375 FunctionArgList Args; 5376 ImplicitParamDecl Param(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 5377 ImplicitParamDecl::Other); 5378 Args.emplace_back(&Param); 5379 auto &FnInfo = 5380 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 5381 auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo); 5382 auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage, 5383 ".red_init.", &CGM.getModule()); 5384 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo); 5385 CodeGenFunction CGF(CGM); 5386 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc); 5387 Address PrivateAddr = CGF.EmitLoadOfPointer( 5388 CGF.GetAddrOfLocalVar(&Param), 5389 C.getPointerType(C.VoidPtrTy).castAs<PointerType>()); 5390 llvm::Value *Size = nullptr; 5391 // If the size of the reduction item is non-constant, load it from global 5392 // threadprivate variable. 5393 if (RCG.getSizes(N).second) { 5394 Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate( 5395 CGF, CGM.getContext().getSizeType(), 5396 generateUniqueName("reduction_size", Loc, N)); 5397 Size = 5398 CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false, 5399 CGM.getContext().getSizeType(), SourceLocation()); 5400 } 5401 RCG.emitAggregateType(CGF, N, Size); 5402 LValue SharedLVal; 5403 // If initializer uses initializer from declare reduction construct, emit a 5404 // pointer to the address of the original reduction item (reuired by reduction 5405 // initializer) 5406 if (RCG.usesReductionInitializer(N)) { 5407 Address SharedAddr = 5408 CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate( 5409 CGF, CGM.getContext().VoidPtrTy, 5410 generateUniqueName("reduction", Loc, N)); 5411 SharedLVal = CGF.MakeAddrLValue(SharedAddr, CGM.getContext().VoidPtrTy); 5412 } else { 5413 SharedLVal = CGF.MakeNaturalAlignAddrLValue( 5414 llvm::ConstantPointerNull::get(CGM.VoidPtrTy), 5415 CGM.getContext().VoidPtrTy); 5416 } 5417 // Emit the initializer: 5418 // %0 = bitcast void* %arg to <type>* 5419 // store <type> <init>, <type>* %0 5420 RCG.emitInitialization(CGF, N, PrivateAddr, SharedLVal, 5421 [](CodeGenFunction &) { return false; }); 5422 CGF.FinishFunction(); 5423 return Fn; 5424 } 5425 5426 /// Emits reduction combiner function: 5427 /// \code 5428 /// void @.red_comb(void* %arg0, void* %arg1) { 5429 /// %lhs = bitcast void* %arg0 to <type>* 5430 /// %rhs = bitcast void* %arg1 to <type>* 5431 /// %2 = <ReductionOp>(<type>* %lhs, <type>* %rhs) 5432 /// store <type> %2, <type>* %lhs 5433 /// ret void 5434 /// } 5435 /// \endcode 5436 static llvm::Value *emitReduceCombFunction(CodeGenModule &CGM, 5437 SourceLocation Loc, 5438 ReductionCodeGen &RCG, unsigned N, 5439 const Expr *ReductionOp, 5440 const Expr *LHS, const Expr *RHS, 5441 const Expr *PrivateRef) { 5442 auto &C = CGM.getContext(); 5443 auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(LHS)->getDecl()); 5444 auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(RHS)->getDecl()); 5445 FunctionArgList Args; 5446 ImplicitParamDecl ParamInOut(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, 5447 C.VoidPtrTy, ImplicitParamDecl::Other); 5448 ImplicitParamDecl ParamIn(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 5449 ImplicitParamDecl::Other); 5450 Args.emplace_back(&ParamInOut); 5451 Args.emplace_back(&ParamIn); 5452 auto &FnInfo = 5453 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 5454 auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo); 5455 auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage, 5456 ".red_comb.", &CGM.getModule()); 5457 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo); 5458 CodeGenFunction CGF(CGM); 5459 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc); 5460 llvm::Value *Size = nullptr; 5461 // If the size of the reduction item is non-constant, load it from global 5462 // threadprivate variable. 5463 if (RCG.getSizes(N).second) { 5464 Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate( 5465 CGF, CGM.getContext().getSizeType(), 5466 generateUniqueName("reduction_size", Loc, N)); 5467 Size = 5468 CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false, 5469 CGM.getContext().getSizeType(), SourceLocation()); 5470 } 5471 RCG.emitAggregateType(CGF, N, Size); 5472 // Remap lhs and rhs variables to the addresses of the function arguments. 5473 // %lhs = bitcast void* %arg0 to <type>* 5474 // %rhs = bitcast void* %arg1 to <type>* 5475 CodeGenFunction::OMPPrivateScope PrivateScope(CGF); 5476 PrivateScope.addPrivate(LHSVD, [&C, &CGF, &ParamInOut, LHSVD]() -> Address { 5477 // Pull out the pointer to the variable. 5478 Address PtrAddr = CGF.EmitLoadOfPointer( 5479 CGF.GetAddrOfLocalVar(&ParamInOut), 5480 C.getPointerType(C.VoidPtrTy).castAs<PointerType>()); 5481 return CGF.Builder.CreateElementBitCast( 5482 PtrAddr, CGF.ConvertTypeForMem(LHSVD->getType())); 5483 }); 5484 PrivateScope.addPrivate(RHSVD, [&C, &CGF, &ParamIn, RHSVD]() -> Address { 5485 // Pull out the pointer to the variable. 5486 Address PtrAddr = CGF.EmitLoadOfPointer( 5487 CGF.GetAddrOfLocalVar(&ParamIn), 5488 C.getPointerType(C.VoidPtrTy).castAs<PointerType>()); 5489 return CGF.Builder.CreateElementBitCast( 5490 PtrAddr, CGF.ConvertTypeForMem(RHSVD->getType())); 5491 }); 5492 PrivateScope.Privatize(); 5493 // Emit the combiner body: 5494 // %2 = <ReductionOp>(<type> *%lhs, <type> *%rhs) 5495 // store <type> %2, <type>* %lhs 5496 CGM.getOpenMPRuntime().emitSingleReductionCombiner( 5497 CGF, ReductionOp, PrivateRef, cast<DeclRefExpr>(LHS), 5498 cast<DeclRefExpr>(RHS)); 5499 CGF.FinishFunction(); 5500 return Fn; 5501 } 5502 5503 /// Emits reduction finalizer function: 5504 /// \code 5505 /// void @.red_fini(void* %arg) { 5506 /// %0 = bitcast void* %arg to <type>* 5507 /// <destroy>(<type>* %0) 5508 /// ret void 5509 /// } 5510 /// \endcode 5511 static llvm::Value *emitReduceFiniFunction(CodeGenModule &CGM, 5512 SourceLocation Loc, 5513 ReductionCodeGen &RCG, unsigned N) { 5514 if (!RCG.needCleanups(N)) 5515 return nullptr; 5516 auto &C = CGM.getContext(); 5517 FunctionArgList Args; 5518 ImplicitParamDecl Param(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy, 5519 ImplicitParamDecl::Other); 5520 Args.emplace_back(&Param); 5521 auto &FnInfo = 5522 CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args); 5523 auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo); 5524 auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage, 5525 ".red_fini.", &CGM.getModule()); 5526 CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo); 5527 CodeGenFunction CGF(CGM); 5528 CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc); 5529 Address PrivateAddr = CGF.EmitLoadOfPointer( 5530 CGF.GetAddrOfLocalVar(&Param), 5531 C.getPointerType(C.VoidPtrTy).castAs<PointerType>()); 5532 llvm::Value *Size = nullptr; 5533 // If the size of the reduction item is non-constant, load it from global 5534 // threadprivate variable. 5535 if (RCG.getSizes(N).second) { 5536 Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate( 5537 CGF, CGM.getContext().getSizeType(), 5538 generateUniqueName("reduction_size", Loc, N)); 5539 Size = 5540 CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false, 5541 CGM.getContext().getSizeType(), SourceLocation()); 5542 } 5543 RCG.emitAggregateType(CGF, N, Size); 5544 // Emit the finalizer body: 5545 // <destroy>(<type>* %0) 5546 RCG.emitCleanups(CGF, N, PrivateAddr); 5547 CGF.FinishFunction(); 5548 return Fn; 5549 } 5550 5551 llvm::Value *CGOpenMPRuntime::emitTaskReductionInit( 5552 CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> LHSExprs, 5553 ArrayRef<const Expr *> RHSExprs, const OMPTaskDataTy &Data) { 5554 if (!CGF.HaveInsertPoint() || Data.ReductionVars.empty()) 5555 return nullptr; 5556 5557 // Build typedef struct: 5558 // kmp_task_red_input { 5559 // void *reduce_shar; // shared reduction item 5560 // size_t reduce_size; // size of data item 5561 // void *reduce_init; // data initialization routine 5562 // void *reduce_fini; // data finalization routine 5563 // void *reduce_comb; // data combiner routine 5564 // kmp_task_red_flags_t flags; // flags for additional info from compiler 5565 // } kmp_task_red_input_t; 5566 ASTContext &C = CGM.getContext(); 5567 auto *RD = C.buildImplicitRecord("kmp_task_red_input_t"); 5568 RD->startDefinition(); 5569 const FieldDecl *SharedFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy); 5570 const FieldDecl *SizeFD = addFieldToRecordDecl(C, RD, C.getSizeType()); 5571 const FieldDecl *InitFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy); 5572 const FieldDecl *FiniFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy); 5573 const FieldDecl *CombFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy); 5574 const FieldDecl *FlagsFD = addFieldToRecordDecl( 5575 C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/false)); 5576 RD->completeDefinition(); 5577 QualType RDType = C.getRecordType(RD); 5578 unsigned Size = Data.ReductionVars.size(); 5579 llvm::APInt ArraySize(/*numBits=*/64, Size); 5580 QualType ArrayRDType = C.getConstantArrayType( 5581 RDType, ArraySize, ArrayType::Normal, /*IndexTypeQuals=*/0); 5582 // kmp_task_red_input_t .rd_input.[Size]; 5583 Address TaskRedInput = CGF.CreateMemTemp(ArrayRDType, ".rd_input."); 5584 ReductionCodeGen RCG(Data.ReductionVars, Data.ReductionCopies, 5585 Data.ReductionOps); 5586 for (unsigned Cnt = 0; Cnt < Size; ++Cnt) { 5587 // kmp_task_red_input_t &ElemLVal = .rd_input.[Cnt]; 5588 llvm::Value *Idxs[] = {llvm::ConstantInt::get(CGM.SizeTy, /*V=*/0), 5589 llvm::ConstantInt::get(CGM.SizeTy, Cnt)}; 5590 llvm::Value *GEP = CGF.EmitCheckedInBoundsGEP( 5591 TaskRedInput.getPointer(), Idxs, 5592 /*SignedIndices=*/false, /*IsSubtraction=*/false, Loc, 5593 ".rd_input.gep."); 5594 LValue ElemLVal = CGF.MakeNaturalAlignAddrLValue(GEP, RDType); 5595 // ElemLVal.reduce_shar = &Shareds[Cnt]; 5596 LValue SharedLVal = CGF.EmitLValueForField(ElemLVal, SharedFD); 5597 RCG.emitSharedLValue(CGF, Cnt); 5598 llvm::Value *CastedShared = 5599 CGF.EmitCastToVoidPtr(RCG.getSharedLValue(Cnt).getPointer()); 5600 CGF.EmitStoreOfScalar(CastedShared, SharedLVal); 5601 RCG.emitAggregateType(CGF, Cnt); 5602 llvm::Value *SizeValInChars; 5603 llvm::Value *SizeVal; 5604 std::tie(SizeValInChars, SizeVal) = RCG.getSizes(Cnt); 5605 // We use delayed creation/initialization for VLAs, array sections and 5606 // custom reduction initializations. It is required because runtime does not 5607 // provide the way to pass the sizes of VLAs/array sections to 5608 // initializer/combiner/finalizer functions and does not pass the pointer to 5609 // original reduction item to the initializer. Instead threadprivate global 5610 // variables are used to store these values and use them in the functions. 5611 bool DelayedCreation = !!SizeVal; 5612 SizeValInChars = CGF.Builder.CreateIntCast(SizeValInChars, CGM.SizeTy, 5613 /*isSigned=*/false); 5614 LValue SizeLVal = CGF.EmitLValueForField(ElemLVal, SizeFD); 5615 CGF.EmitStoreOfScalar(SizeValInChars, SizeLVal); 5616 // ElemLVal.reduce_init = init; 5617 LValue InitLVal = CGF.EmitLValueForField(ElemLVal, InitFD); 5618 llvm::Value *InitAddr = 5619 CGF.EmitCastToVoidPtr(emitReduceInitFunction(CGM, Loc, RCG, Cnt)); 5620 CGF.EmitStoreOfScalar(InitAddr, InitLVal); 5621 DelayedCreation = DelayedCreation || RCG.usesReductionInitializer(Cnt); 5622 // ElemLVal.reduce_fini = fini; 5623 LValue FiniLVal = CGF.EmitLValueForField(ElemLVal, FiniFD); 5624 llvm::Value *Fini = emitReduceFiniFunction(CGM, Loc, RCG, Cnt); 5625 llvm::Value *FiniAddr = Fini 5626 ? CGF.EmitCastToVoidPtr(Fini) 5627 : llvm::ConstantPointerNull::get(CGM.VoidPtrTy); 5628 CGF.EmitStoreOfScalar(FiniAddr, FiniLVal); 5629 // ElemLVal.reduce_comb = comb; 5630 LValue CombLVal = CGF.EmitLValueForField(ElemLVal, CombFD); 5631 llvm::Value *CombAddr = CGF.EmitCastToVoidPtr(emitReduceCombFunction( 5632 CGM, Loc, RCG, Cnt, Data.ReductionOps[Cnt], LHSExprs[Cnt], 5633 RHSExprs[Cnt], Data.ReductionCopies[Cnt])); 5634 CGF.EmitStoreOfScalar(CombAddr, CombLVal); 5635 // ElemLVal.flags = 0; 5636 LValue FlagsLVal = CGF.EmitLValueForField(ElemLVal, FlagsFD); 5637 if (DelayedCreation) { 5638 CGF.EmitStoreOfScalar( 5639 llvm::ConstantInt::get(CGM.Int32Ty, /*V=*/1, /*IsSigned=*/true), 5640 FlagsLVal); 5641 } else 5642 CGF.EmitNullInitialization(FlagsLVal.getAddress(), FlagsLVal.getType()); 5643 } 5644 // Build call void *__kmpc_task_reduction_init(int gtid, int num_data, void 5645 // *data); 5646 llvm::Value *Args[] = { 5647 CGF.Builder.CreateIntCast(getThreadID(CGF, Loc), CGM.IntTy, 5648 /*isSigned=*/true), 5649 llvm::ConstantInt::get(CGM.IntTy, Size, /*isSigned=*/true), 5650 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(TaskRedInput.getPointer(), 5651 CGM.VoidPtrTy)}; 5652 return CGF.EmitRuntimeCall( 5653 createRuntimeFunction(OMPRTL__kmpc_task_reduction_init), Args); 5654 } 5655 5656 void CGOpenMPRuntime::emitTaskReductionFixups(CodeGenFunction &CGF, 5657 SourceLocation Loc, 5658 ReductionCodeGen &RCG, 5659 unsigned N) { 5660 auto Sizes = RCG.getSizes(N); 5661 // Emit threadprivate global variable if the type is non-constant 5662 // (Sizes.second = nullptr). 5663 if (Sizes.second) { 5664 llvm::Value *SizeVal = CGF.Builder.CreateIntCast(Sizes.second, CGM.SizeTy, 5665 /*isSigned=*/false); 5666 Address SizeAddr = getAddrOfArtificialThreadPrivate( 5667 CGF, CGM.getContext().getSizeType(), 5668 generateUniqueName("reduction_size", Loc, N)); 5669 CGF.Builder.CreateStore(SizeVal, SizeAddr, /*IsVolatile=*/false); 5670 } 5671 // Store address of the original reduction item if custom initializer is used. 5672 if (RCG.usesReductionInitializer(N)) { 5673 Address SharedAddr = getAddrOfArtificialThreadPrivate( 5674 CGF, CGM.getContext().VoidPtrTy, 5675 generateUniqueName("reduction", Loc, N)); 5676 CGF.Builder.CreateStore( 5677 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 5678 RCG.getSharedLValue(N).getPointer(), CGM.VoidPtrTy), 5679 SharedAddr, /*IsVolatile=*/false); 5680 } 5681 } 5682 5683 Address CGOpenMPRuntime::getTaskReductionItem(CodeGenFunction &CGF, 5684 SourceLocation Loc, 5685 llvm::Value *ReductionsPtr, 5686 LValue SharedLVal) { 5687 // Build call void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void 5688 // *d); 5689 llvm::Value *Args[] = { 5690 CGF.Builder.CreateIntCast(getThreadID(CGF, Loc), CGM.IntTy, 5691 /*isSigned=*/true), 5692 ReductionsPtr, 5693 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(SharedLVal.getPointer(), 5694 CGM.VoidPtrTy)}; 5695 return Address( 5696 CGF.EmitRuntimeCall( 5697 createRuntimeFunction(OMPRTL__kmpc_task_reduction_get_th_data), Args), 5698 SharedLVal.getAlignment()); 5699 } 5700 5701 void CGOpenMPRuntime::emitTaskwaitCall(CodeGenFunction &CGF, 5702 SourceLocation Loc) { 5703 if (!CGF.HaveInsertPoint()) 5704 return; 5705 // Build call kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32 5706 // global_tid); 5707 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)}; 5708 // Ignore return result until untied tasks are supported. 5709 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_taskwait), Args); 5710 if (auto *Region = dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) 5711 Region->emitUntiedSwitch(CGF); 5712 } 5713 5714 void CGOpenMPRuntime::emitInlinedDirective(CodeGenFunction &CGF, 5715 OpenMPDirectiveKind InnerKind, 5716 const RegionCodeGenTy &CodeGen, 5717 bool HasCancel) { 5718 if (!CGF.HaveInsertPoint()) 5719 return; 5720 InlinedOpenMPRegionRAII Region(CGF, CodeGen, InnerKind, HasCancel); 5721 CGF.CapturedStmtInfo->EmitBody(CGF, /*S=*/nullptr); 5722 } 5723 5724 namespace { 5725 enum RTCancelKind { 5726 CancelNoreq = 0, 5727 CancelParallel = 1, 5728 CancelLoop = 2, 5729 CancelSections = 3, 5730 CancelTaskgroup = 4 5731 }; 5732 } // anonymous namespace 5733 5734 static RTCancelKind getCancellationKind(OpenMPDirectiveKind CancelRegion) { 5735 RTCancelKind CancelKind = CancelNoreq; 5736 if (CancelRegion == OMPD_parallel) 5737 CancelKind = CancelParallel; 5738 else if (CancelRegion == OMPD_for) 5739 CancelKind = CancelLoop; 5740 else if (CancelRegion == OMPD_sections) 5741 CancelKind = CancelSections; 5742 else { 5743 assert(CancelRegion == OMPD_taskgroup); 5744 CancelKind = CancelTaskgroup; 5745 } 5746 return CancelKind; 5747 } 5748 5749 void CGOpenMPRuntime::emitCancellationPointCall( 5750 CodeGenFunction &CGF, SourceLocation Loc, 5751 OpenMPDirectiveKind CancelRegion) { 5752 if (!CGF.HaveInsertPoint()) 5753 return; 5754 // Build call kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32 5755 // global_tid, kmp_int32 cncl_kind); 5756 if (auto *OMPRegionInfo = 5757 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) { 5758 // For 'cancellation point taskgroup', the task region info may not have a 5759 // cancel. This may instead happen in another adjacent task. 5760 if (CancelRegion == OMPD_taskgroup || OMPRegionInfo->hasCancel()) { 5761 llvm::Value *Args[] = { 5762 emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc), 5763 CGF.Builder.getInt32(getCancellationKind(CancelRegion))}; 5764 // Ignore return result until untied tasks are supported. 5765 auto *Result = CGF.EmitRuntimeCall( 5766 createRuntimeFunction(OMPRTL__kmpc_cancellationpoint), Args); 5767 // if (__kmpc_cancellationpoint()) { 5768 // exit from construct; 5769 // } 5770 auto *ExitBB = CGF.createBasicBlock(".cancel.exit"); 5771 auto *ContBB = CGF.createBasicBlock(".cancel.continue"); 5772 auto *Cmp = CGF.Builder.CreateIsNotNull(Result); 5773 CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB); 5774 CGF.EmitBlock(ExitBB); 5775 // exit from construct; 5776 auto CancelDest = 5777 CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind()); 5778 CGF.EmitBranchThroughCleanup(CancelDest); 5779 CGF.EmitBlock(ContBB, /*IsFinished=*/true); 5780 } 5781 } 5782 } 5783 5784 void CGOpenMPRuntime::emitCancelCall(CodeGenFunction &CGF, SourceLocation Loc, 5785 const Expr *IfCond, 5786 OpenMPDirectiveKind CancelRegion) { 5787 if (!CGF.HaveInsertPoint()) 5788 return; 5789 // Build call kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid, 5790 // kmp_int32 cncl_kind); 5791 if (auto *OMPRegionInfo = 5792 dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) { 5793 auto &&ThenGen = [Loc, CancelRegion, OMPRegionInfo](CodeGenFunction &CGF, 5794 PrePostActionTy &) { 5795 auto &RT = CGF.CGM.getOpenMPRuntime(); 5796 llvm::Value *Args[] = { 5797 RT.emitUpdateLocation(CGF, Loc), RT.getThreadID(CGF, Loc), 5798 CGF.Builder.getInt32(getCancellationKind(CancelRegion))}; 5799 // Ignore return result until untied tasks are supported. 5800 auto *Result = CGF.EmitRuntimeCall( 5801 RT.createRuntimeFunction(OMPRTL__kmpc_cancel), Args); 5802 // if (__kmpc_cancel()) { 5803 // exit from construct; 5804 // } 5805 auto *ExitBB = CGF.createBasicBlock(".cancel.exit"); 5806 auto *ContBB = CGF.createBasicBlock(".cancel.continue"); 5807 auto *Cmp = CGF.Builder.CreateIsNotNull(Result); 5808 CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB); 5809 CGF.EmitBlock(ExitBB); 5810 // exit from construct; 5811 auto CancelDest = 5812 CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind()); 5813 CGF.EmitBranchThroughCleanup(CancelDest); 5814 CGF.EmitBlock(ContBB, /*IsFinished=*/true); 5815 }; 5816 if (IfCond) 5817 emitOMPIfClause(CGF, IfCond, ThenGen, 5818 [](CodeGenFunction &, PrePostActionTy &) {}); 5819 else { 5820 RegionCodeGenTy ThenRCG(ThenGen); 5821 ThenRCG(CGF); 5822 } 5823 } 5824 } 5825 5826 /// \brief Obtain information that uniquely identifies a target entry. This 5827 /// consists of the file and device IDs as well as line number associated with 5828 /// the relevant entry source location. 5829 static void getTargetEntryUniqueInfo(ASTContext &C, SourceLocation Loc, 5830 unsigned &DeviceID, unsigned &FileID, 5831 unsigned &LineNum) { 5832 5833 auto &SM = C.getSourceManager(); 5834 5835 // The loc should be always valid and have a file ID (the user cannot use 5836 // #pragma directives in macros) 5837 5838 assert(Loc.isValid() && "Source location is expected to be always valid."); 5839 assert(Loc.isFileID() && "Source location is expected to refer to a file."); 5840 5841 PresumedLoc PLoc = SM.getPresumedLoc(Loc); 5842 assert(PLoc.isValid() && "Source location is expected to be always valid."); 5843 5844 llvm::sys::fs::UniqueID ID; 5845 if (llvm::sys::fs::getUniqueID(PLoc.getFilename(), ID)) 5846 llvm_unreachable("Source file with target region no longer exists!"); 5847 5848 DeviceID = ID.getDevice(); 5849 FileID = ID.getFile(); 5850 LineNum = PLoc.getLine(); 5851 } 5852 5853 void CGOpenMPRuntime::emitTargetOutlinedFunction( 5854 const OMPExecutableDirective &D, StringRef ParentName, 5855 llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID, 5856 bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) { 5857 assert(!ParentName.empty() && "Invalid target region parent name!"); 5858 5859 emitTargetOutlinedFunctionHelper(D, ParentName, OutlinedFn, OutlinedFnID, 5860 IsOffloadEntry, CodeGen); 5861 } 5862 5863 void CGOpenMPRuntime::emitTargetOutlinedFunctionHelper( 5864 const OMPExecutableDirective &D, StringRef ParentName, 5865 llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID, 5866 bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) { 5867 // Create a unique name for the entry function using the source location 5868 // information of the current target region. The name will be something like: 5869 // 5870 // __omp_offloading_DD_FFFF_PP_lBB 5871 // 5872 // where DD_FFFF is an ID unique to the file (device and file IDs), PP is the 5873 // mangled name of the function that encloses the target region and BB is the 5874 // line number of the target region. 5875 5876 unsigned DeviceID; 5877 unsigned FileID; 5878 unsigned Line; 5879 getTargetEntryUniqueInfo(CGM.getContext(), D.getLocStart(), DeviceID, FileID, 5880 Line); 5881 SmallString<64> EntryFnName; 5882 { 5883 llvm::raw_svector_ostream OS(EntryFnName); 5884 OS << "__omp_offloading" << llvm::format("_%x", DeviceID) 5885 << llvm::format("_%x_", FileID) << ParentName << "_l" << Line; 5886 } 5887 5888 const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt()); 5889 5890 CodeGenFunction CGF(CGM, true); 5891 CGOpenMPTargetRegionInfo CGInfo(CS, CodeGen, EntryFnName); 5892 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo); 5893 5894 OutlinedFn = CGF.GenerateOpenMPCapturedStmtFunction(CS); 5895 5896 // If this target outline function is not an offload entry, we don't need to 5897 // register it. 5898 if (!IsOffloadEntry) 5899 return; 5900 5901 // The target region ID is used by the runtime library to identify the current 5902 // target region, so it only has to be unique and not necessarily point to 5903 // anything. It could be the pointer to the outlined function that implements 5904 // the target region, but we aren't using that so that the compiler doesn't 5905 // need to keep that, and could therefore inline the host function if proven 5906 // worthwhile during optimization. In the other hand, if emitting code for the 5907 // device, the ID has to be the function address so that it can retrieved from 5908 // the offloading entry and launched by the runtime library. We also mark the 5909 // outlined function to have external linkage in case we are emitting code for 5910 // the device, because these functions will be entry points to the device. 5911 5912 if (CGM.getLangOpts().OpenMPIsDevice) { 5913 OutlinedFnID = llvm::ConstantExpr::getBitCast(OutlinedFn, CGM.Int8PtrTy); 5914 OutlinedFn->setLinkage(llvm::GlobalValue::ExternalLinkage); 5915 } else 5916 OutlinedFnID = new llvm::GlobalVariable( 5917 CGM.getModule(), CGM.Int8Ty, /*isConstant=*/true, 5918 llvm::GlobalValue::PrivateLinkage, 5919 llvm::Constant::getNullValue(CGM.Int8Ty), ".omp_offload.region_id"); 5920 5921 // Register the information for the entry associated with this target region. 5922 OffloadEntriesInfoManager.registerTargetRegionEntryInfo( 5923 DeviceID, FileID, ParentName, Line, OutlinedFn, OutlinedFnID, 5924 /*Flags=*/0); 5925 } 5926 5927 /// discard all CompoundStmts intervening between two constructs 5928 static const Stmt *ignoreCompoundStmts(const Stmt *Body) { 5929 while (auto *CS = dyn_cast_or_null<CompoundStmt>(Body)) 5930 Body = CS->body_front(); 5931 5932 return Body; 5933 } 5934 5935 /// Emit the number of teams for a target directive. Inspect the num_teams 5936 /// clause associated with a teams construct combined or closely nested 5937 /// with the target directive. 5938 /// 5939 /// Emit a team of size one for directives such as 'target parallel' that 5940 /// have no associated teams construct. 5941 /// 5942 /// Otherwise, return nullptr. 5943 static llvm::Value * 5944 emitNumTeamsForTargetDirective(CGOpenMPRuntime &OMPRuntime, 5945 CodeGenFunction &CGF, 5946 const OMPExecutableDirective &D) { 5947 5948 assert(!CGF.getLangOpts().OpenMPIsDevice && "Clauses associated with the " 5949 "teams directive expected to be " 5950 "emitted only for the host!"); 5951 5952 auto &Bld = CGF.Builder; 5953 5954 // If the target directive is combined with a teams directive: 5955 // Return the value in the num_teams clause, if any. 5956 // Otherwise, return 0 to denote the runtime default. 5957 if (isOpenMPTeamsDirective(D.getDirectiveKind())) { 5958 if (const auto *NumTeamsClause = D.getSingleClause<OMPNumTeamsClause>()) { 5959 CodeGenFunction::RunCleanupsScope NumTeamsScope(CGF); 5960 auto NumTeams = CGF.EmitScalarExpr(NumTeamsClause->getNumTeams(), 5961 /*IgnoreResultAssign*/ true); 5962 return Bld.CreateIntCast(NumTeams, CGF.Int32Ty, 5963 /*IsSigned=*/true); 5964 } 5965 5966 // The default value is 0. 5967 return Bld.getInt32(0); 5968 } 5969 5970 // If the target directive is combined with a parallel directive but not a 5971 // teams directive, start one team. 5972 if (isOpenMPParallelDirective(D.getDirectiveKind())) 5973 return Bld.getInt32(1); 5974 5975 // If the current target region has a teams region enclosed, we need to get 5976 // the number of teams to pass to the runtime function call. This is done 5977 // by generating the expression in a inlined region. This is required because 5978 // the expression is captured in the enclosing target environment when the 5979 // teams directive is not combined with target. 5980 5981 const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt()); 5982 5983 if (auto *TeamsDir = dyn_cast_or_null<OMPExecutableDirective>( 5984 ignoreCompoundStmts(CS.getCapturedStmt()))) { 5985 if (isOpenMPTeamsDirective(TeamsDir->getDirectiveKind())) { 5986 if (auto *NTE = TeamsDir->getSingleClause<OMPNumTeamsClause>()) { 5987 CGOpenMPInnerExprInfo CGInfo(CGF, CS); 5988 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo); 5989 llvm::Value *NumTeams = CGF.EmitScalarExpr(NTE->getNumTeams()); 5990 return Bld.CreateIntCast(NumTeams, CGF.Int32Ty, 5991 /*IsSigned=*/true); 5992 } 5993 5994 // If we have an enclosed teams directive but no num_teams clause we use 5995 // the default value 0. 5996 return Bld.getInt32(0); 5997 } 5998 } 5999 6000 // No teams associated with the directive. 6001 return nullptr; 6002 } 6003 6004 /// Emit the number of threads for a target directive. Inspect the 6005 /// thread_limit clause associated with a teams construct combined or closely 6006 /// nested with the target directive. 6007 /// 6008 /// Emit the num_threads clause for directives such as 'target parallel' that 6009 /// have no associated teams construct. 6010 /// 6011 /// Otherwise, return nullptr. 6012 static llvm::Value * 6013 emitNumThreadsForTargetDirective(CGOpenMPRuntime &OMPRuntime, 6014 CodeGenFunction &CGF, 6015 const OMPExecutableDirective &D) { 6016 6017 assert(!CGF.getLangOpts().OpenMPIsDevice && "Clauses associated with the " 6018 "teams directive expected to be " 6019 "emitted only for the host!"); 6020 6021 auto &Bld = CGF.Builder; 6022 6023 // 6024 // If the target directive is combined with a teams directive: 6025 // Return the value in the thread_limit clause, if any. 6026 // 6027 // If the target directive is combined with a parallel directive: 6028 // Return the value in the num_threads clause, if any. 6029 // 6030 // If both clauses are set, select the minimum of the two. 6031 // 6032 // If neither teams or parallel combined directives set the number of threads 6033 // in a team, return 0 to denote the runtime default. 6034 // 6035 // If this is not a teams directive return nullptr. 6036 6037 if (isOpenMPTeamsDirective(D.getDirectiveKind()) || 6038 isOpenMPParallelDirective(D.getDirectiveKind())) { 6039 llvm::Value *DefaultThreadLimitVal = Bld.getInt32(0); 6040 llvm::Value *NumThreadsVal = nullptr; 6041 llvm::Value *ThreadLimitVal = nullptr; 6042 6043 if (const auto *ThreadLimitClause = 6044 D.getSingleClause<OMPThreadLimitClause>()) { 6045 CodeGenFunction::RunCleanupsScope ThreadLimitScope(CGF); 6046 auto ThreadLimit = CGF.EmitScalarExpr(ThreadLimitClause->getThreadLimit(), 6047 /*IgnoreResultAssign*/ true); 6048 ThreadLimitVal = Bld.CreateIntCast(ThreadLimit, CGF.Int32Ty, 6049 /*IsSigned=*/true); 6050 } 6051 6052 if (const auto *NumThreadsClause = 6053 D.getSingleClause<OMPNumThreadsClause>()) { 6054 CodeGenFunction::RunCleanupsScope NumThreadsScope(CGF); 6055 llvm::Value *NumThreads = 6056 CGF.EmitScalarExpr(NumThreadsClause->getNumThreads(), 6057 /*IgnoreResultAssign*/ true); 6058 NumThreadsVal = 6059 Bld.CreateIntCast(NumThreads, CGF.Int32Ty, /*IsSigned=*/true); 6060 } 6061 6062 // Select the lesser of thread_limit and num_threads. 6063 if (NumThreadsVal) 6064 ThreadLimitVal = ThreadLimitVal 6065 ? Bld.CreateSelect(Bld.CreateICmpSLT(NumThreadsVal, 6066 ThreadLimitVal), 6067 NumThreadsVal, ThreadLimitVal) 6068 : NumThreadsVal; 6069 6070 // Set default value passed to the runtime if either teams or a target 6071 // parallel type directive is found but no clause is specified. 6072 if (!ThreadLimitVal) 6073 ThreadLimitVal = DefaultThreadLimitVal; 6074 6075 return ThreadLimitVal; 6076 } 6077 6078 // If the current target region has a teams region enclosed, we need to get 6079 // the thread limit to pass to the runtime function call. This is done 6080 // by generating the expression in a inlined region. This is required because 6081 // the expression is captured in the enclosing target environment when the 6082 // teams directive is not combined with target. 6083 6084 const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt()); 6085 6086 if (auto *TeamsDir = dyn_cast_or_null<OMPExecutableDirective>( 6087 ignoreCompoundStmts(CS.getCapturedStmt()))) { 6088 if (isOpenMPTeamsDirective(TeamsDir->getDirectiveKind())) { 6089 if (auto *TLE = TeamsDir->getSingleClause<OMPThreadLimitClause>()) { 6090 CGOpenMPInnerExprInfo CGInfo(CGF, CS); 6091 CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo); 6092 llvm::Value *ThreadLimit = CGF.EmitScalarExpr(TLE->getThreadLimit()); 6093 return CGF.Builder.CreateIntCast(ThreadLimit, CGF.Int32Ty, 6094 /*IsSigned=*/true); 6095 } 6096 6097 // If we have an enclosed teams directive but no thread_limit clause we 6098 // use the default value 0. 6099 return CGF.Builder.getInt32(0); 6100 } 6101 } 6102 6103 // No teams associated with the directive. 6104 return nullptr; 6105 } 6106 6107 namespace { 6108 // \brief Utility to handle information from clauses associated with a given 6109 // construct that use mappable expressions (e.g. 'map' clause, 'to' clause). 6110 // It provides a convenient interface to obtain the information and generate 6111 // code for that information. 6112 class MappableExprsHandler { 6113 public: 6114 /// \brief Values for bit flags used to specify the mapping type for 6115 /// offloading. 6116 enum OpenMPOffloadMappingFlags { 6117 /// \brief Allocate memory on the device and move data from host to device. 6118 OMP_MAP_TO = 0x01, 6119 /// \brief Allocate memory on the device and move data from device to host. 6120 OMP_MAP_FROM = 0x02, 6121 /// \brief Always perform the requested mapping action on the element, even 6122 /// if it was already mapped before. 6123 OMP_MAP_ALWAYS = 0x04, 6124 /// \brief Delete the element from the device environment, ignoring the 6125 /// current reference count associated with the element. 6126 OMP_MAP_DELETE = 0x08, 6127 /// \brief The element being mapped is a pointer-pointee pair; both the 6128 /// pointer and the pointee should be mapped. 6129 OMP_MAP_PTR_AND_OBJ = 0x10, 6130 /// \brief This flags signals that the base address of an entry should be 6131 /// passed to the target kernel as an argument. 6132 OMP_MAP_TARGET_PARAM = 0x20, 6133 /// \brief Signal that the runtime library has to return the device pointer 6134 /// in the current position for the data being mapped. Used when we have the 6135 /// use_device_ptr clause. 6136 OMP_MAP_RETURN_PARAM = 0x40, 6137 /// \brief This flag signals that the reference being passed is a pointer to 6138 /// private data. 6139 OMP_MAP_PRIVATE = 0x80, 6140 /// \brief Pass the element to the device by value. 6141 OMP_MAP_LITERAL = 0x100, 6142 /// Implicit map 6143 OMP_MAP_IMPLICIT = 0x200, 6144 }; 6145 6146 /// Class that associates information with a base pointer to be passed to the 6147 /// runtime library. 6148 class BasePointerInfo { 6149 /// The base pointer. 6150 llvm::Value *Ptr = nullptr; 6151 /// The base declaration that refers to this device pointer, or null if 6152 /// there is none. 6153 const ValueDecl *DevPtrDecl = nullptr; 6154 6155 public: 6156 BasePointerInfo(llvm::Value *Ptr, const ValueDecl *DevPtrDecl = nullptr) 6157 : Ptr(Ptr), DevPtrDecl(DevPtrDecl) {} 6158 llvm::Value *operator*() const { return Ptr; } 6159 const ValueDecl *getDevicePtrDecl() const { return DevPtrDecl; } 6160 void setDevicePtrDecl(const ValueDecl *D) { DevPtrDecl = D; } 6161 }; 6162 6163 typedef SmallVector<BasePointerInfo, 16> MapBaseValuesArrayTy; 6164 typedef SmallVector<llvm::Value *, 16> MapValuesArrayTy; 6165 typedef SmallVector<uint64_t, 16> MapFlagsArrayTy; 6166 6167 private: 6168 /// \brief Directive from where the map clauses were extracted. 6169 const OMPExecutableDirective &CurDir; 6170 6171 /// \brief Function the directive is being generated for. 6172 CodeGenFunction &CGF; 6173 6174 /// \brief Set of all first private variables in the current directive. 6175 llvm::SmallPtrSet<const VarDecl *, 8> FirstPrivateDecls; 6176 /// Set of all reduction variables in the current directive. 6177 llvm::SmallPtrSet<const VarDecl *, 8> ReductionDecls; 6178 6179 /// Map between device pointer declarations and their expression components. 6180 /// The key value for declarations in 'this' is null. 6181 llvm::DenseMap< 6182 const ValueDecl *, 6183 SmallVector<OMPClauseMappableExprCommon::MappableExprComponentListRef, 4>> 6184 DevPointersMap; 6185 6186 llvm::Value *getExprTypeSize(const Expr *E) const { 6187 auto ExprTy = E->getType().getCanonicalType(); 6188 6189 // Reference types are ignored for mapping purposes. 6190 if (auto *RefTy = ExprTy->getAs<ReferenceType>()) 6191 ExprTy = RefTy->getPointeeType().getCanonicalType(); 6192 6193 // Given that an array section is considered a built-in type, we need to 6194 // do the calculation based on the length of the section instead of relying 6195 // on CGF.getTypeSize(E->getType()). 6196 if (const auto *OAE = dyn_cast<OMPArraySectionExpr>(E)) { 6197 QualType BaseTy = OMPArraySectionExpr::getBaseOriginalType( 6198 OAE->getBase()->IgnoreParenImpCasts()) 6199 .getCanonicalType(); 6200 6201 // If there is no length associated with the expression, that means we 6202 // are using the whole length of the base. 6203 if (!OAE->getLength() && OAE->getColonLoc().isValid()) 6204 return CGF.getTypeSize(BaseTy); 6205 6206 llvm::Value *ElemSize; 6207 if (auto *PTy = BaseTy->getAs<PointerType>()) 6208 ElemSize = CGF.getTypeSize(PTy->getPointeeType().getCanonicalType()); 6209 else { 6210 auto *ATy = cast<ArrayType>(BaseTy.getTypePtr()); 6211 assert(ATy && "Expecting array type if not a pointer type."); 6212 ElemSize = CGF.getTypeSize(ATy->getElementType().getCanonicalType()); 6213 } 6214 6215 // If we don't have a length at this point, that is because we have an 6216 // array section with a single element. 6217 if (!OAE->getLength()) 6218 return ElemSize; 6219 6220 auto *LengthVal = CGF.EmitScalarExpr(OAE->getLength()); 6221 LengthVal = 6222 CGF.Builder.CreateIntCast(LengthVal, CGF.SizeTy, /*isSigned=*/false); 6223 return CGF.Builder.CreateNUWMul(LengthVal, ElemSize); 6224 } 6225 return CGF.getTypeSize(ExprTy); 6226 } 6227 6228 /// \brief Return the corresponding bits for a given map clause modifier. Add 6229 /// a flag marking the map as a pointer if requested. Add a flag marking the 6230 /// map as the first one of a series of maps that relate to the same map 6231 /// expression. 6232 uint64_t getMapTypeBits(OpenMPMapClauseKind MapType, 6233 OpenMPMapClauseKind MapTypeModifier, bool AddPtrFlag, 6234 bool AddIsTargetParamFlag) const { 6235 uint64_t Bits = 0u; 6236 switch (MapType) { 6237 case OMPC_MAP_alloc: 6238 case OMPC_MAP_release: 6239 // alloc and release is the default behavior in the runtime library, i.e. 6240 // if we don't pass any bits alloc/release that is what the runtime is 6241 // going to do. Therefore, we don't need to signal anything for these two 6242 // type modifiers. 6243 break; 6244 case OMPC_MAP_to: 6245 Bits = OMP_MAP_TO; 6246 break; 6247 case OMPC_MAP_from: 6248 Bits = OMP_MAP_FROM; 6249 break; 6250 case OMPC_MAP_tofrom: 6251 Bits = OMP_MAP_TO | OMP_MAP_FROM; 6252 break; 6253 case OMPC_MAP_delete: 6254 Bits = OMP_MAP_DELETE; 6255 break; 6256 default: 6257 llvm_unreachable("Unexpected map type!"); 6258 break; 6259 } 6260 if (AddPtrFlag) 6261 Bits |= OMP_MAP_PTR_AND_OBJ; 6262 if (AddIsTargetParamFlag) 6263 Bits |= OMP_MAP_TARGET_PARAM; 6264 if (MapTypeModifier == OMPC_MAP_always) 6265 Bits |= OMP_MAP_ALWAYS; 6266 return Bits; 6267 } 6268 6269 /// \brief Return true if the provided expression is a final array section. A 6270 /// final array section, is one whose length can't be proved to be one. 6271 bool isFinalArraySectionExpression(const Expr *E) const { 6272 auto *OASE = dyn_cast<OMPArraySectionExpr>(E); 6273 6274 // It is not an array section and therefore not a unity-size one. 6275 if (!OASE) 6276 return false; 6277 6278 // An array section with no colon always refer to a single element. 6279 if (OASE->getColonLoc().isInvalid()) 6280 return false; 6281 6282 auto *Length = OASE->getLength(); 6283 6284 // If we don't have a length we have to check if the array has size 1 6285 // for this dimension. Also, we should always expect a length if the 6286 // base type is pointer. 6287 if (!Length) { 6288 auto BaseQTy = OMPArraySectionExpr::getBaseOriginalType( 6289 OASE->getBase()->IgnoreParenImpCasts()) 6290 .getCanonicalType(); 6291 if (auto *ATy = dyn_cast<ConstantArrayType>(BaseQTy.getTypePtr())) 6292 return ATy->getSize().getSExtValue() != 1; 6293 // If we don't have a constant dimension length, we have to consider 6294 // the current section as having any size, so it is not necessarily 6295 // unitary. If it happen to be unity size, that's user fault. 6296 return true; 6297 } 6298 6299 // Check if the length evaluates to 1. 6300 llvm::APSInt ConstLength; 6301 if (!Length->EvaluateAsInt(ConstLength, CGF.getContext())) 6302 return true; // Can have more that size 1. 6303 6304 return ConstLength.getSExtValue() != 1; 6305 } 6306 6307 /// \brief Generate the base pointers, section pointers, sizes and map type 6308 /// bits for the provided map type, map modifier, and expression components. 6309 /// \a IsFirstComponent should be set to true if the provided set of 6310 /// components is the first associated with a capture. 6311 void generateInfoForComponentList( 6312 OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapTypeModifier, 6313 OMPClauseMappableExprCommon::MappableExprComponentListRef Components, 6314 MapBaseValuesArrayTy &BasePointers, MapValuesArrayTy &Pointers, 6315 MapValuesArrayTy &Sizes, MapFlagsArrayTy &Types, 6316 bool IsFirstComponentList, bool IsImplicit) const { 6317 6318 // The following summarizes what has to be generated for each map and the 6319 // types bellow. The generated information is expressed in this order: 6320 // base pointer, section pointer, size, flags 6321 // (to add to the ones that come from the map type and modifier). 6322 // 6323 // double d; 6324 // int i[100]; 6325 // float *p; 6326 // 6327 // struct S1 { 6328 // int i; 6329 // float f[50]; 6330 // } 6331 // struct S2 { 6332 // int i; 6333 // float f[50]; 6334 // S1 s; 6335 // double *p; 6336 // struct S2 *ps; 6337 // } 6338 // S2 s; 6339 // S2 *ps; 6340 // 6341 // map(d) 6342 // &d, &d, sizeof(double), noflags 6343 // 6344 // map(i) 6345 // &i, &i, 100*sizeof(int), noflags 6346 // 6347 // map(i[1:23]) 6348 // &i(=&i[0]), &i[1], 23*sizeof(int), noflags 6349 // 6350 // map(p) 6351 // &p, &p, sizeof(float*), noflags 6352 // 6353 // map(p[1:24]) 6354 // p, &p[1], 24*sizeof(float), noflags 6355 // 6356 // map(s) 6357 // &s, &s, sizeof(S2), noflags 6358 // 6359 // map(s.i) 6360 // &s, &(s.i), sizeof(int), noflags 6361 // 6362 // map(s.s.f) 6363 // &s, &(s.i.f), 50*sizeof(int), noflags 6364 // 6365 // map(s.p) 6366 // &s, &(s.p), sizeof(double*), noflags 6367 // 6368 // map(s.p[:22], s.a s.b) 6369 // &s, &(s.p), sizeof(double*), noflags 6370 // &(s.p), &(s.p[0]), 22*sizeof(double), ptr_flag 6371 // 6372 // map(s.ps) 6373 // &s, &(s.ps), sizeof(S2*), noflags 6374 // 6375 // map(s.ps->s.i) 6376 // &s, &(s.ps), sizeof(S2*), noflags 6377 // &(s.ps), &(s.ps->s.i), sizeof(int), ptr_flag 6378 // 6379 // map(s.ps->ps) 6380 // &s, &(s.ps), sizeof(S2*), noflags 6381 // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag 6382 // 6383 // map(s.ps->ps->ps) 6384 // &s, &(s.ps), sizeof(S2*), noflags 6385 // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag 6386 // &(s.ps->ps), &(s.ps->ps->ps), sizeof(S2*), ptr_flag 6387 // 6388 // map(s.ps->ps->s.f[:22]) 6389 // &s, &(s.ps), sizeof(S2*), noflags 6390 // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag 6391 // &(s.ps->ps), &(s.ps->ps->s.f[0]), 22*sizeof(float), ptr_flag 6392 // 6393 // map(ps) 6394 // &ps, &ps, sizeof(S2*), noflags 6395 // 6396 // map(ps->i) 6397 // ps, &(ps->i), sizeof(int), noflags 6398 // 6399 // map(ps->s.f) 6400 // ps, &(ps->s.f[0]), 50*sizeof(float), noflags 6401 // 6402 // map(ps->p) 6403 // ps, &(ps->p), sizeof(double*), noflags 6404 // 6405 // map(ps->p[:22]) 6406 // ps, &(ps->p), sizeof(double*), noflags 6407 // &(ps->p), &(ps->p[0]), 22*sizeof(double), ptr_flag 6408 // 6409 // map(ps->ps) 6410 // ps, &(ps->ps), sizeof(S2*), noflags 6411 // 6412 // map(ps->ps->s.i) 6413 // ps, &(ps->ps), sizeof(S2*), noflags 6414 // &(ps->ps), &(ps->ps->s.i), sizeof(int), ptr_flag 6415 // 6416 // map(ps->ps->ps) 6417 // ps, &(ps->ps), sizeof(S2*), noflags 6418 // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag 6419 // 6420 // map(ps->ps->ps->ps) 6421 // ps, &(ps->ps), sizeof(S2*), noflags 6422 // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag 6423 // &(ps->ps->ps), &(ps->ps->ps->ps), sizeof(S2*), ptr_flag 6424 // 6425 // map(ps->ps->ps->s.f[:22]) 6426 // ps, &(ps->ps), sizeof(S2*), noflags 6427 // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag 6428 // &(ps->ps->ps), &(ps->ps->ps->s.f[0]), 22*sizeof(float), ptr_flag 6429 6430 // Track if the map information being generated is the first for a capture. 6431 bool IsCaptureFirstInfo = IsFirstComponentList; 6432 6433 // Scan the components from the base to the complete expression. 6434 auto CI = Components.rbegin(); 6435 auto CE = Components.rend(); 6436 auto I = CI; 6437 6438 // Track if the map information being generated is the first for a list of 6439 // components. 6440 bool IsExpressionFirstInfo = true; 6441 llvm::Value *BP = nullptr; 6442 6443 if (auto *ME = dyn_cast<MemberExpr>(I->getAssociatedExpression())) { 6444 // The base is the 'this' pointer. The content of the pointer is going 6445 // to be the base of the field being mapped. 6446 BP = CGF.EmitScalarExpr(ME->getBase()); 6447 } else { 6448 // The base is the reference to the variable. 6449 // BP = &Var. 6450 BP = CGF.EmitOMPSharedLValue(I->getAssociatedExpression()).getPointer(); 6451 6452 // If the variable is a pointer and is being dereferenced (i.e. is not 6453 // the last component), the base has to be the pointer itself, not its 6454 // reference. References are ignored for mapping purposes. 6455 QualType Ty = 6456 I->getAssociatedDeclaration()->getType().getNonReferenceType(); 6457 if (Ty->isAnyPointerType() && std::next(I) != CE) { 6458 auto PtrAddr = CGF.MakeNaturalAlignAddrLValue(BP, Ty); 6459 BP = CGF.EmitLoadOfPointerLValue(PtrAddr.getAddress(), 6460 Ty->castAs<PointerType>()) 6461 .getPointer(); 6462 6463 // We do not need to generate individual map information for the 6464 // pointer, it can be associated with the combined storage. 6465 ++I; 6466 } 6467 } 6468 6469 uint64_t DefaultFlags = IsImplicit ? OMP_MAP_IMPLICIT : 0; 6470 for (; I != CE; ++I) { 6471 auto Next = std::next(I); 6472 6473 // We need to generate the addresses and sizes if this is the last 6474 // component, if the component is a pointer or if it is an array section 6475 // whose length can't be proved to be one. If this is a pointer, it 6476 // becomes the base address for the following components. 6477 6478 // A final array section, is one whose length can't be proved to be one. 6479 bool IsFinalArraySection = 6480 isFinalArraySectionExpression(I->getAssociatedExpression()); 6481 6482 // Get information on whether the element is a pointer. Have to do a 6483 // special treatment for array sections given that they are built-in 6484 // types. 6485 const auto *OASE = 6486 dyn_cast<OMPArraySectionExpr>(I->getAssociatedExpression()); 6487 bool IsPointer = 6488 (OASE && 6489 OMPArraySectionExpr::getBaseOriginalType(OASE) 6490 .getCanonicalType() 6491 ->isAnyPointerType()) || 6492 I->getAssociatedExpression()->getType()->isAnyPointerType(); 6493 6494 if (Next == CE || IsPointer || IsFinalArraySection) { 6495 6496 // If this is not the last component, we expect the pointer to be 6497 // associated with an array expression or member expression. 6498 assert((Next == CE || 6499 isa<MemberExpr>(Next->getAssociatedExpression()) || 6500 isa<ArraySubscriptExpr>(Next->getAssociatedExpression()) || 6501 isa<OMPArraySectionExpr>(Next->getAssociatedExpression())) && 6502 "Unexpected expression"); 6503 6504 llvm::Value *LB = 6505 CGF.EmitOMPSharedLValue(I->getAssociatedExpression()).getPointer(); 6506 auto *Size = getExprTypeSize(I->getAssociatedExpression()); 6507 6508 // If we have a member expression and the current component is a 6509 // reference, we have to map the reference too. Whenever we have a 6510 // reference, the section that reference refers to is going to be a 6511 // load instruction from the storage assigned to the reference. 6512 if (isa<MemberExpr>(I->getAssociatedExpression()) && 6513 I->getAssociatedDeclaration()->getType()->isReferenceType()) { 6514 auto *LI = cast<llvm::LoadInst>(LB); 6515 auto *RefAddr = LI->getPointerOperand(); 6516 6517 BasePointers.push_back(BP); 6518 Pointers.push_back(RefAddr); 6519 Sizes.push_back(CGF.getTypeSize(CGF.getContext().VoidPtrTy)); 6520 Types.push_back(DefaultFlags | 6521 getMapTypeBits( 6522 /*MapType*/ OMPC_MAP_alloc, 6523 /*MapTypeModifier=*/OMPC_MAP_unknown, 6524 !IsExpressionFirstInfo, IsCaptureFirstInfo)); 6525 IsExpressionFirstInfo = false; 6526 IsCaptureFirstInfo = false; 6527 // The reference will be the next base address. 6528 BP = RefAddr; 6529 } 6530 6531 BasePointers.push_back(BP); 6532 Pointers.push_back(LB); 6533 Sizes.push_back(Size); 6534 6535 // We need to add a pointer flag for each map that comes from the 6536 // same expression except for the first one. We also need to signal 6537 // this map is the first one that relates with the current capture 6538 // (there is a set of entries for each capture). 6539 Types.push_back(DefaultFlags | getMapTypeBits(MapType, MapTypeModifier, 6540 !IsExpressionFirstInfo, 6541 IsCaptureFirstInfo)); 6542 6543 // If we have a final array section, we are done with this expression. 6544 if (IsFinalArraySection) 6545 break; 6546 6547 // The pointer becomes the base for the next element. 6548 if (Next != CE) 6549 BP = LB; 6550 6551 IsExpressionFirstInfo = false; 6552 IsCaptureFirstInfo = false; 6553 } 6554 } 6555 } 6556 6557 /// \brief Return the adjusted map modifiers if the declaration a capture 6558 /// refers to appears in a first-private clause. This is expected to be used 6559 /// only with directives that start with 'target'. 6560 unsigned adjustMapModifiersForPrivateClauses(const CapturedStmt::Capture &Cap, 6561 unsigned CurrentModifiers) { 6562 assert(Cap.capturesVariable() && "Expected capture by reference only!"); 6563 6564 // A first private variable captured by reference will use only the 6565 // 'private ptr' and 'map to' flag. Return the right flags if the captured 6566 // declaration is known as first-private in this handler. 6567 if (FirstPrivateDecls.count(Cap.getCapturedVar())) 6568 return MappableExprsHandler::OMP_MAP_PRIVATE | 6569 MappableExprsHandler::OMP_MAP_TO; 6570 // Reduction variable will use only the 'private ptr' and 'map to_from' 6571 // flag. 6572 if (ReductionDecls.count(Cap.getCapturedVar())) { 6573 return MappableExprsHandler::OMP_MAP_TO | 6574 MappableExprsHandler::OMP_MAP_FROM; 6575 } 6576 6577 // We didn't modify anything. 6578 return CurrentModifiers; 6579 } 6580 6581 public: 6582 MappableExprsHandler(const OMPExecutableDirective &Dir, CodeGenFunction &CGF) 6583 : CurDir(Dir), CGF(CGF) { 6584 // Extract firstprivate clause information. 6585 for (const auto *C : Dir.getClausesOfKind<OMPFirstprivateClause>()) 6586 for (const auto *D : C->varlists()) 6587 FirstPrivateDecls.insert( 6588 cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl()); 6589 for (const auto *C : Dir.getClausesOfKind<OMPReductionClause>()) { 6590 for (const auto *D : C->varlists()) { 6591 ReductionDecls.insert( 6592 cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl()); 6593 } 6594 } 6595 // Extract device pointer clause information. 6596 for (const auto *C : Dir.getClausesOfKind<OMPIsDevicePtrClause>()) 6597 for (auto L : C->component_lists()) 6598 DevPointersMap[L.first].push_back(L.second); 6599 } 6600 6601 /// \brief Generate all the base pointers, section pointers, sizes and map 6602 /// types for the extracted mappable expressions. Also, for each item that 6603 /// relates with a device pointer, a pair of the relevant declaration and 6604 /// index where it occurs is appended to the device pointers info array. 6605 void generateAllInfo(MapBaseValuesArrayTy &BasePointers, 6606 MapValuesArrayTy &Pointers, MapValuesArrayTy &Sizes, 6607 MapFlagsArrayTy &Types) const { 6608 BasePointers.clear(); 6609 Pointers.clear(); 6610 Sizes.clear(); 6611 Types.clear(); 6612 6613 struct MapInfo { 6614 /// Kind that defines how a device pointer has to be returned. 6615 enum ReturnPointerKind { 6616 // Don't have to return any pointer. 6617 RPK_None, 6618 // Pointer is the base of the declaration. 6619 RPK_Base, 6620 // Pointer is a member of the base declaration - 'this' 6621 RPK_Member, 6622 // Pointer is a reference and a member of the base declaration - 'this' 6623 RPK_MemberReference, 6624 }; 6625 OMPClauseMappableExprCommon::MappableExprComponentListRef Components; 6626 OpenMPMapClauseKind MapType = OMPC_MAP_unknown; 6627 OpenMPMapClauseKind MapTypeModifier = OMPC_MAP_unknown; 6628 ReturnPointerKind ReturnDevicePointer = RPK_None; 6629 bool IsImplicit = false; 6630 6631 MapInfo() = default; 6632 MapInfo( 6633 OMPClauseMappableExprCommon::MappableExprComponentListRef Components, 6634 OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapTypeModifier, 6635 ReturnPointerKind ReturnDevicePointer, bool IsImplicit) 6636 : Components(Components), MapType(MapType), 6637 MapTypeModifier(MapTypeModifier), 6638 ReturnDevicePointer(ReturnDevicePointer), IsImplicit(IsImplicit) {} 6639 }; 6640 6641 // We have to process the component lists that relate with the same 6642 // declaration in a single chunk so that we can generate the map flags 6643 // correctly. Therefore, we organize all lists in a map. 6644 llvm::MapVector<const ValueDecl *, SmallVector<MapInfo, 8>> Info; 6645 6646 // Helper function to fill the information map for the different supported 6647 // clauses. 6648 auto &&InfoGen = [&Info]( 6649 const ValueDecl *D, 6650 OMPClauseMappableExprCommon::MappableExprComponentListRef L, 6651 OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapModifier, 6652 MapInfo::ReturnPointerKind ReturnDevicePointer, bool IsImplicit) { 6653 const ValueDecl *VD = 6654 D ? cast<ValueDecl>(D->getCanonicalDecl()) : nullptr; 6655 Info[VD].emplace_back(L, MapType, MapModifier, ReturnDevicePointer, 6656 IsImplicit); 6657 }; 6658 6659 // FIXME: MSVC 2013 seems to require this-> to find member CurDir. 6660 for (auto *C : this->CurDir.getClausesOfKind<OMPMapClause>()) 6661 for (auto L : C->component_lists()) { 6662 InfoGen(L.first, L.second, C->getMapType(), C->getMapTypeModifier(), 6663 MapInfo::RPK_None, C->isImplicit()); 6664 } 6665 for (auto *C : this->CurDir.getClausesOfKind<OMPToClause>()) 6666 for (auto L : C->component_lists()) { 6667 InfoGen(L.first, L.second, OMPC_MAP_to, OMPC_MAP_unknown, 6668 MapInfo::RPK_None, C->isImplicit()); 6669 } 6670 for (auto *C : this->CurDir.getClausesOfKind<OMPFromClause>()) 6671 for (auto L : C->component_lists()) { 6672 InfoGen(L.first, L.second, OMPC_MAP_from, OMPC_MAP_unknown, 6673 MapInfo::RPK_None, C->isImplicit()); 6674 } 6675 6676 // Look at the use_device_ptr clause information and mark the existing map 6677 // entries as such. If there is no map information for an entry in the 6678 // use_device_ptr list, we create one with map type 'alloc' and zero size 6679 // section. It is the user fault if that was not mapped before. 6680 // FIXME: MSVC 2013 seems to require this-> to find member CurDir. 6681 for (auto *C : this->CurDir.getClausesOfKind<OMPUseDevicePtrClause>()) 6682 for (auto L : C->component_lists()) { 6683 assert(!L.second.empty() && "Not expecting empty list of components!"); 6684 const ValueDecl *VD = L.second.back().getAssociatedDeclaration(); 6685 VD = cast<ValueDecl>(VD->getCanonicalDecl()); 6686 auto *IE = L.second.back().getAssociatedExpression(); 6687 // If the first component is a member expression, we have to look into 6688 // 'this', which maps to null in the map of map information. Otherwise 6689 // look directly for the information. 6690 auto It = Info.find(isa<MemberExpr>(IE) ? nullptr : VD); 6691 6692 // We potentially have map information for this declaration already. 6693 // Look for the first set of components that refer to it. 6694 if (It != Info.end()) { 6695 auto CI = std::find_if( 6696 It->second.begin(), It->second.end(), [VD](const MapInfo &MI) { 6697 return MI.Components.back().getAssociatedDeclaration() == VD; 6698 }); 6699 // If we found a map entry, signal that the pointer has to be returned 6700 // and move on to the next declaration. 6701 if (CI != It->second.end()) { 6702 CI->ReturnDevicePointer = isa<MemberExpr>(IE) 6703 ? (VD->getType()->isReferenceType() 6704 ? MapInfo::RPK_MemberReference 6705 : MapInfo::RPK_Member) 6706 : MapInfo::RPK_Base; 6707 continue; 6708 } 6709 } 6710 6711 // We didn't find any match in our map information - generate a zero 6712 // size array section. 6713 // FIXME: MSVC 2013 seems to require this-> to find member CGF. 6714 llvm::Value *Ptr = 6715 this->CGF 6716 .EmitLoadOfLValue(this->CGF.EmitLValue(IE), SourceLocation()) 6717 .getScalarVal(); 6718 BasePointers.push_back({Ptr, VD}); 6719 Pointers.push_back(Ptr); 6720 Sizes.push_back(llvm::Constant::getNullValue(this->CGF.SizeTy)); 6721 Types.push_back(OMP_MAP_RETURN_PARAM | OMP_MAP_TARGET_PARAM); 6722 } 6723 6724 for (auto &M : Info) { 6725 // We need to know when we generate information for the first component 6726 // associated with a capture, because the mapping flags depend on it. 6727 bool IsFirstComponentList = true; 6728 for (MapInfo &L : M.second) { 6729 assert(!L.Components.empty() && 6730 "Not expecting declaration with no component lists."); 6731 6732 // Remember the current base pointer index. 6733 unsigned CurrentBasePointersIdx = BasePointers.size(); 6734 // FIXME: MSVC 2013 seems to require this-> to find the member method. 6735 this->generateInfoForComponentList( 6736 L.MapType, L.MapTypeModifier, L.Components, BasePointers, Pointers, 6737 Sizes, Types, IsFirstComponentList, L.IsImplicit); 6738 6739 // If this entry relates with a device pointer, set the relevant 6740 // declaration and add the 'return pointer' flag. 6741 if (IsFirstComponentList && 6742 L.ReturnDevicePointer != MapInfo::RPK_None) { 6743 // If the pointer is not the base of the map, we need to skip the 6744 // base. If it is a reference in a member field, we also need to skip 6745 // the map of the reference. 6746 if (L.ReturnDevicePointer != MapInfo::RPK_Base) { 6747 ++CurrentBasePointersIdx; 6748 if (L.ReturnDevicePointer == MapInfo::RPK_MemberReference) 6749 ++CurrentBasePointersIdx; 6750 } 6751 assert(BasePointers.size() > CurrentBasePointersIdx && 6752 "Unexpected number of mapped base pointers."); 6753 6754 auto *RelevantVD = L.Components.back().getAssociatedDeclaration(); 6755 assert(RelevantVD && 6756 "No relevant declaration related with device pointer??"); 6757 6758 BasePointers[CurrentBasePointersIdx].setDevicePtrDecl(RelevantVD); 6759 Types[CurrentBasePointersIdx] |= OMP_MAP_RETURN_PARAM; 6760 } 6761 IsFirstComponentList = false; 6762 } 6763 } 6764 } 6765 6766 /// \brief Generate the base pointers, section pointers, sizes and map types 6767 /// associated to a given capture. 6768 void generateInfoForCapture(const CapturedStmt::Capture *Cap, 6769 llvm::Value *Arg, 6770 MapBaseValuesArrayTy &BasePointers, 6771 MapValuesArrayTy &Pointers, 6772 MapValuesArrayTy &Sizes, 6773 MapFlagsArrayTy &Types) const { 6774 assert(!Cap->capturesVariableArrayType() && 6775 "Not expecting to generate map info for a variable array type!"); 6776 6777 BasePointers.clear(); 6778 Pointers.clear(); 6779 Sizes.clear(); 6780 Types.clear(); 6781 6782 // We need to know when we generating information for the first component 6783 // associated with a capture, because the mapping flags depend on it. 6784 bool IsFirstComponentList = true; 6785 6786 const ValueDecl *VD = 6787 Cap->capturesThis() 6788 ? nullptr 6789 : cast<ValueDecl>(Cap->getCapturedVar()->getCanonicalDecl()); 6790 6791 // If this declaration appears in a is_device_ptr clause we just have to 6792 // pass the pointer by value. If it is a reference to a declaration, we just 6793 // pass its value, otherwise, if it is a member expression, we need to map 6794 // 'to' the field. 6795 if (!VD) { 6796 auto It = DevPointersMap.find(VD); 6797 if (It != DevPointersMap.end()) { 6798 for (auto L : It->second) { 6799 generateInfoForComponentList( 6800 /*MapType=*/OMPC_MAP_to, /*MapTypeModifier=*/OMPC_MAP_unknown, L, 6801 BasePointers, Pointers, Sizes, Types, IsFirstComponentList, 6802 /*IsImplicit=*/false); 6803 IsFirstComponentList = false; 6804 } 6805 return; 6806 } 6807 } else if (DevPointersMap.count(VD)) { 6808 BasePointers.push_back({Arg, VD}); 6809 Pointers.push_back(Arg); 6810 Sizes.push_back(CGF.getTypeSize(CGF.getContext().VoidPtrTy)); 6811 Types.push_back(OMP_MAP_LITERAL | OMP_MAP_TARGET_PARAM); 6812 return; 6813 } 6814 6815 // FIXME: MSVC 2013 seems to require this-> to find member CurDir. 6816 for (auto *C : this->CurDir.getClausesOfKind<OMPMapClause>()) 6817 for (auto L : C->decl_component_lists(VD)) { 6818 assert(L.first == VD && 6819 "We got information for the wrong declaration??"); 6820 assert(!L.second.empty() && 6821 "Not expecting declaration with no component lists."); 6822 generateInfoForComponentList( 6823 C->getMapType(), C->getMapTypeModifier(), L.second, BasePointers, 6824 Pointers, Sizes, Types, IsFirstComponentList, C->isImplicit()); 6825 IsFirstComponentList = false; 6826 } 6827 6828 return; 6829 } 6830 6831 /// \brief Generate the default map information for a given capture \a CI, 6832 /// record field declaration \a RI and captured value \a CV. 6833 void generateDefaultMapInfo(const CapturedStmt::Capture &CI, 6834 const FieldDecl &RI, llvm::Value *CV, 6835 MapBaseValuesArrayTy &CurBasePointers, 6836 MapValuesArrayTy &CurPointers, 6837 MapValuesArrayTy &CurSizes, 6838 MapFlagsArrayTy &CurMapTypes) { 6839 6840 // Do the default mapping. 6841 if (CI.capturesThis()) { 6842 CurBasePointers.push_back(CV); 6843 CurPointers.push_back(CV); 6844 const PointerType *PtrTy = cast<PointerType>(RI.getType().getTypePtr()); 6845 CurSizes.push_back(CGF.getTypeSize(PtrTy->getPointeeType())); 6846 // Default map type. 6847 CurMapTypes.push_back(OMP_MAP_TO | OMP_MAP_FROM); 6848 } else if (CI.capturesVariableByCopy()) { 6849 CurBasePointers.push_back(CV); 6850 CurPointers.push_back(CV); 6851 if (!RI.getType()->isAnyPointerType()) { 6852 // We have to signal to the runtime captures passed by value that are 6853 // not pointers. 6854 CurMapTypes.push_back(OMP_MAP_LITERAL); 6855 CurSizes.push_back(CGF.getTypeSize(RI.getType())); 6856 } else { 6857 // Pointers are implicitly mapped with a zero size and no flags 6858 // (other than first map that is added for all implicit maps). 6859 CurMapTypes.push_back(0u); 6860 CurSizes.push_back(llvm::Constant::getNullValue(CGF.SizeTy)); 6861 } 6862 } else { 6863 assert(CI.capturesVariable() && "Expected captured reference."); 6864 CurBasePointers.push_back(CV); 6865 CurPointers.push_back(CV); 6866 6867 const ReferenceType *PtrTy = 6868 cast<ReferenceType>(RI.getType().getTypePtr()); 6869 QualType ElementType = PtrTy->getPointeeType(); 6870 CurSizes.push_back(CGF.getTypeSize(ElementType)); 6871 // The default map type for a scalar/complex type is 'to' because by 6872 // default the value doesn't have to be retrieved. For an aggregate 6873 // type, the default is 'tofrom'. 6874 CurMapTypes.emplace_back(adjustMapModifiersForPrivateClauses( 6875 CI, ElementType->isAggregateType() ? (OMP_MAP_TO | OMP_MAP_FROM) 6876 : OMP_MAP_TO)); 6877 } 6878 // Every default map produces a single argument which is a target parameter. 6879 CurMapTypes.back() |= OMP_MAP_TARGET_PARAM; 6880 } 6881 }; 6882 6883 enum OpenMPOffloadingReservedDeviceIDs { 6884 /// \brief Device ID if the device was not defined, runtime should get it 6885 /// from environment variables in the spec. 6886 OMP_DEVICEID_UNDEF = -1, 6887 }; 6888 } // anonymous namespace 6889 6890 /// \brief Emit the arrays used to pass the captures and map information to the 6891 /// offloading runtime library. If there is no map or capture information, 6892 /// return nullptr by reference. 6893 static void 6894 emitOffloadingArrays(CodeGenFunction &CGF, 6895 MappableExprsHandler::MapBaseValuesArrayTy &BasePointers, 6896 MappableExprsHandler::MapValuesArrayTy &Pointers, 6897 MappableExprsHandler::MapValuesArrayTy &Sizes, 6898 MappableExprsHandler::MapFlagsArrayTy &MapTypes, 6899 CGOpenMPRuntime::TargetDataInfo &Info) { 6900 auto &CGM = CGF.CGM; 6901 auto &Ctx = CGF.getContext(); 6902 6903 // Reset the array information. 6904 Info.clearArrayInfo(); 6905 Info.NumberOfPtrs = BasePointers.size(); 6906 6907 if (Info.NumberOfPtrs) { 6908 // Detect if we have any capture size requiring runtime evaluation of the 6909 // size so that a constant array could be eventually used. 6910 bool hasRuntimeEvaluationCaptureSize = false; 6911 for (auto *S : Sizes) 6912 if (!isa<llvm::Constant>(S)) { 6913 hasRuntimeEvaluationCaptureSize = true; 6914 break; 6915 } 6916 6917 llvm::APInt PointerNumAP(32, Info.NumberOfPtrs, /*isSigned=*/true); 6918 QualType PointerArrayType = 6919 Ctx.getConstantArrayType(Ctx.VoidPtrTy, PointerNumAP, ArrayType::Normal, 6920 /*IndexTypeQuals=*/0); 6921 6922 Info.BasePointersArray = 6923 CGF.CreateMemTemp(PointerArrayType, ".offload_baseptrs").getPointer(); 6924 Info.PointersArray = 6925 CGF.CreateMemTemp(PointerArrayType, ".offload_ptrs").getPointer(); 6926 6927 // If we don't have any VLA types or other types that require runtime 6928 // evaluation, we can use a constant array for the map sizes, otherwise we 6929 // need to fill up the arrays as we do for the pointers. 6930 if (hasRuntimeEvaluationCaptureSize) { 6931 QualType SizeArrayType = Ctx.getConstantArrayType( 6932 Ctx.getSizeType(), PointerNumAP, ArrayType::Normal, 6933 /*IndexTypeQuals=*/0); 6934 Info.SizesArray = 6935 CGF.CreateMemTemp(SizeArrayType, ".offload_sizes").getPointer(); 6936 } else { 6937 // We expect all the sizes to be constant, so we collect them to create 6938 // a constant array. 6939 SmallVector<llvm::Constant *, 16> ConstSizes; 6940 for (auto S : Sizes) 6941 ConstSizes.push_back(cast<llvm::Constant>(S)); 6942 6943 auto *SizesArrayInit = llvm::ConstantArray::get( 6944 llvm::ArrayType::get(CGM.SizeTy, ConstSizes.size()), ConstSizes); 6945 auto *SizesArrayGbl = new llvm::GlobalVariable( 6946 CGM.getModule(), SizesArrayInit->getType(), 6947 /*isConstant=*/true, llvm::GlobalValue::PrivateLinkage, 6948 SizesArrayInit, ".offload_sizes"); 6949 SizesArrayGbl->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global); 6950 Info.SizesArray = SizesArrayGbl; 6951 } 6952 6953 // The map types are always constant so we don't need to generate code to 6954 // fill arrays. Instead, we create an array constant. 6955 llvm::Constant *MapTypesArrayInit = 6956 llvm::ConstantDataArray::get(CGF.Builder.getContext(), MapTypes); 6957 auto *MapTypesArrayGbl = new llvm::GlobalVariable( 6958 CGM.getModule(), MapTypesArrayInit->getType(), 6959 /*isConstant=*/true, llvm::GlobalValue::PrivateLinkage, 6960 MapTypesArrayInit, ".offload_maptypes"); 6961 MapTypesArrayGbl->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global); 6962 Info.MapTypesArray = MapTypesArrayGbl; 6963 6964 for (unsigned i = 0; i < Info.NumberOfPtrs; ++i) { 6965 llvm::Value *BPVal = *BasePointers[i]; 6966 llvm::Value *BP = CGF.Builder.CreateConstInBoundsGEP2_32( 6967 llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs), 6968 Info.BasePointersArray, 0, i); 6969 BP = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 6970 BP, BPVal->getType()->getPointerTo(/*AddrSpace=*/0)); 6971 Address BPAddr(BP, Ctx.getTypeAlignInChars(Ctx.VoidPtrTy)); 6972 CGF.Builder.CreateStore(BPVal, BPAddr); 6973 6974 if (Info.requiresDevicePointerInfo()) 6975 if (auto *DevVD = BasePointers[i].getDevicePtrDecl()) 6976 Info.CaptureDeviceAddrMap.insert(std::make_pair(DevVD, BPAddr)); 6977 6978 llvm::Value *PVal = Pointers[i]; 6979 llvm::Value *P = CGF.Builder.CreateConstInBoundsGEP2_32( 6980 llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs), 6981 Info.PointersArray, 0, i); 6982 P = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 6983 P, PVal->getType()->getPointerTo(/*AddrSpace=*/0)); 6984 Address PAddr(P, Ctx.getTypeAlignInChars(Ctx.VoidPtrTy)); 6985 CGF.Builder.CreateStore(PVal, PAddr); 6986 6987 if (hasRuntimeEvaluationCaptureSize) { 6988 llvm::Value *S = CGF.Builder.CreateConstInBoundsGEP2_32( 6989 llvm::ArrayType::get(CGM.SizeTy, Info.NumberOfPtrs), 6990 Info.SizesArray, 6991 /*Idx0=*/0, 6992 /*Idx1=*/i); 6993 Address SAddr(S, Ctx.getTypeAlignInChars(Ctx.getSizeType())); 6994 CGF.Builder.CreateStore( 6995 CGF.Builder.CreateIntCast(Sizes[i], CGM.SizeTy, /*isSigned=*/true), 6996 SAddr); 6997 } 6998 } 6999 } 7000 } 7001 /// \brief Emit the arguments to be passed to the runtime library based on the 7002 /// arrays of pointers, sizes and map types. 7003 static void emitOffloadingArraysArgument( 7004 CodeGenFunction &CGF, llvm::Value *&BasePointersArrayArg, 7005 llvm::Value *&PointersArrayArg, llvm::Value *&SizesArrayArg, 7006 llvm::Value *&MapTypesArrayArg, CGOpenMPRuntime::TargetDataInfo &Info) { 7007 auto &CGM = CGF.CGM; 7008 if (Info.NumberOfPtrs) { 7009 BasePointersArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32( 7010 llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs), 7011 Info.BasePointersArray, 7012 /*Idx0=*/0, /*Idx1=*/0); 7013 PointersArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32( 7014 llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs), 7015 Info.PointersArray, 7016 /*Idx0=*/0, 7017 /*Idx1=*/0); 7018 SizesArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32( 7019 llvm::ArrayType::get(CGM.SizeTy, Info.NumberOfPtrs), Info.SizesArray, 7020 /*Idx0=*/0, /*Idx1=*/0); 7021 MapTypesArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32( 7022 llvm::ArrayType::get(CGM.Int64Ty, Info.NumberOfPtrs), 7023 Info.MapTypesArray, 7024 /*Idx0=*/0, 7025 /*Idx1=*/0); 7026 } else { 7027 BasePointersArrayArg = llvm::ConstantPointerNull::get(CGM.VoidPtrPtrTy); 7028 PointersArrayArg = llvm::ConstantPointerNull::get(CGM.VoidPtrPtrTy); 7029 SizesArrayArg = llvm::ConstantPointerNull::get(CGM.SizeTy->getPointerTo()); 7030 MapTypesArrayArg = 7031 llvm::ConstantPointerNull::get(CGM.Int64Ty->getPointerTo()); 7032 } 7033 } 7034 7035 void CGOpenMPRuntime::emitTargetCall(CodeGenFunction &CGF, 7036 const OMPExecutableDirective &D, 7037 llvm::Value *OutlinedFn, 7038 llvm::Value *OutlinedFnID, 7039 const Expr *IfCond, const Expr *Device, 7040 ArrayRef<llvm::Value *> CapturedVars) { 7041 if (!CGF.HaveInsertPoint()) 7042 return; 7043 7044 assert(OutlinedFn && "Invalid outlined function!"); 7045 7046 // Fill up the arrays with all the captured variables. 7047 MappableExprsHandler::MapValuesArrayTy KernelArgs; 7048 MappableExprsHandler::MapBaseValuesArrayTy BasePointers; 7049 MappableExprsHandler::MapValuesArrayTy Pointers; 7050 MappableExprsHandler::MapValuesArrayTy Sizes; 7051 MappableExprsHandler::MapFlagsArrayTy MapTypes; 7052 7053 MappableExprsHandler::MapBaseValuesArrayTy CurBasePointers; 7054 MappableExprsHandler::MapValuesArrayTy CurPointers; 7055 MappableExprsHandler::MapValuesArrayTy CurSizes; 7056 MappableExprsHandler::MapFlagsArrayTy CurMapTypes; 7057 7058 // Get mappable expression information. 7059 MappableExprsHandler MEHandler(D, CGF); 7060 7061 const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt()); 7062 auto RI = CS.getCapturedRecordDecl()->field_begin(); 7063 auto CV = CapturedVars.begin(); 7064 for (CapturedStmt::const_capture_iterator CI = CS.capture_begin(), 7065 CE = CS.capture_end(); 7066 CI != CE; ++CI, ++RI, ++CV) { 7067 CurBasePointers.clear(); 7068 CurPointers.clear(); 7069 CurSizes.clear(); 7070 CurMapTypes.clear(); 7071 7072 // VLA sizes are passed to the outlined region by copy and do not have map 7073 // information associated. 7074 if (CI->capturesVariableArrayType()) { 7075 CurBasePointers.push_back(*CV); 7076 CurPointers.push_back(*CV); 7077 CurSizes.push_back(CGF.getTypeSize(RI->getType())); 7078 // Copy to the device as an argument. No need to retrieve it. 7079 CurMapTypes.push_back(MappableExprsHandler::OMP_MAP_LITERAL | 7080 MappableExprsHandler::OMP_MAP_TARGET_PARAM); 7081 } else { 7082 // If we have any information in the map clause, we use it, otherwise we 7083 // just do a default mapping. 7084 MEHandler.generateInfoForCapture(CI, *CV, CurBasePointers, CurPointers, 7085 CurSizes, CurMapTypes); 7086 if (CurBasePointers.empty()) 7087 MEHandler.generateDefaultMapInfo(*CI, **RI, *CV, CurBasePointers, 7088 CurPointers, CurSizes, CurMapTypes); 7089 } 7090 // We expect to have at least an element of information for this capture. 7091 assert(!CurBasePointers.empty() && "Non-existing map pointer for capture!"); 7092 assert(CurBasePointers.size() == CurPointers.size() && 7093 CurBasePointers.size() == CurSizes.size() && 7094 CurBasePointers.size() == CurMapTypes.size() && 7095 "Inconsistent map information sizes!"); 7096 7097 // The kernel args are always the first elements of the base pointers 7098 // associated with a capture. 7099 KernelArgs.push_back(*CurBasePointers.front()); 7100 // We need to append the results of this capture to what we already have. 7101 BasePointers.append(CurBasePointers.begin(), CurBasePointers.end()); 7102 Pointers.append(CurPointers.begin(), CurPointers.end()); 7103 Sizes.append(CurSizes.begin(), CurSizes.end()); 7104 MapTypes.append(CurMapTypes.begin(), CurMapTypes.end()); 7105 } 7106 7107 // Fill up the pointer arrays and transfer execution to the device. 7108 auto &&ThenGen = [this, &BasePointers, &Pointers, &Sizes, &MapTypes, Device, 7109 OutlinedFn, OutlinedFnID, &D, 7110 &KernelArgs](CodeGenFunction &CGF, PrePostActionTy &) { 7111 auto &RT = CGF.CGM.getOpenMPRuntime(); 7112 // Emit the offloading arrays. 7113 TargetDataInfo Info; 7114 emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info); 7115 emitOffloadingArraysArgument(CGF, Info.BasePointersArray, 7116 Info.PointersArray, Info.SizesArray, 7117 Info.MapTypesArray, Info); 7118 7119 // On top of the arrays that were filled up, the target offloading call 7120 // takes as arguments the device id as well as the host pointer. The host 7121 // pointer is used by the runtime library to identify the current target 7122 // region, so it only has to be unique and not necessarily point to 7123 // anything. It could be the pointer to the outlined function that 7124 // implements the target region, but we aren't using that so that the 7125 // compiler doesn't need to keep that, and could therefore inline the host 7126 // function if proven worthwhile during optimization. 7127 7128 // From this point on, we need to have an ID of the target region defined. 7129 assert(OutlinedFnID && "Invalid outlined function ID!"); 7130 7131 // Emit device ID if any. 7132 llvm::Value *DeviceID; 7133 if (Device) { 7134 DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device), 7135 CGF.Int64Ty, /*isSigned=*/true); 7136 } else { 7137 DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF); 7138 } 7139 7140 // Emit the number of elements in the offloading arrays. 7141 llvm::Value *PointerNum = CGF.Builder.getInt32(BasePointers.size()); 7142 7143 // Return value of the runtime offloading call. 7144 llvm::Value *Return; 7145 7146 auto *NumTeams = emitNumTeamsForTargetDirective(RT, CGF, D); 7147 auto *NumThreads = emitNumThreadsForTargetDirective(RT, CGF, D); 7148 7149 bool HasNowait = D.hasClausesOfKind<OMPNowaitClause>(); 7150 // The target region is an outlined function launched by the runtime 7151 // via calls __tgt_target() or __tgt_target_teams(). 7152 // 7153 // __tgt_target() launches a target region with one team and one thread, 7154 // executing a serial region. This master thread may in turn launch 7155 // more threads within its team upon encountering a parallel region, 7156 // however, no additional teams can be launched on the device. 7157 // 7158 // __tgt_target_teams() launches a target region with one or more teams, 7159 // each with one or more threads. This call is required for target 7160 // constructs such as: 7161 // 'target teams' 7162 // 'target' / 'teams' 7163 // 'target teams distribute parallel for' 7164 // 'target parallel' 7165 // and so on. 7166 // 7167 // Note that on the host and CPU targets, the runtime implementation of 7168 // these calls simply call the outlined function without forking threads. 7169 // The outlined functions themselves have runtime calls to 7170 // __kmpc_fork_teams() and __kmpc_fork() for this purpose, codegen'd by 7171 // the compiler in emitTeamsCall() and emitParallelCall(). 7172 // 7173 // In contrast, on the NVPTX target, the implementation of 7174 // __tgt_target_teams() launches a GPU kernel with the requested number 7175 // of teams and threads so no additional calls to the runtime are required. 7176 if (NumTeams) { 7177 // If we have NumTeams defined this means that we have an enclosed teams 7178 // region. Therefore we also expect to have NumThreads defined. These two 7179 // values should be defined in the presence of a teams directive, 7180 // regardless of having any clauses associated. If the user is using teams 7181 // but no clauses, these two values will be the default that should be 7182 // passed to the runtime library - a 32-bit integer with the value zero. 7183 assert(NumThreads && "Thread limit expression should be available along " 7184 "with number of teams."); 7185 llvm::Value *OffloadingArgs[] = { 7186 DeviceID, OutlinedFnID, 7187 PointerNum, Info.BasePointersArray, 7188 Info.PointersArray, Info.SizesArray, 7189 Info.MapTypesArray, NumTeams, 7190 NumThreads}; 7191 Return = CGF.EmitRuntimeCall( 7192 RT.createRuntimeFunction(HasNowait ? OMPRTL__tgt_target_teams_nowait 7193 : OMPRTL__tgt_target_teams), 7194 OffloadingArgs); 7195 } else { 7196 llvm::Value *OffloadingArgs[] = { 7197 DeviceID, OutlinedFnID, 7198 PointerNum, Info.BasePointersArray, 7199 Info.PointersArray, Info.SizesArray, 7200 Info.MapTypesArray}; 7201 Return = CGF.EmitRuntimeCall( 7202 RT.createRuntimeFunction(HasNowait ? OMPRTL__tgt_target_nowait 7203 : OMPRTL__tgt_target), 7204 OffloadingArgs); 7205 } 7206 7207 // Check the error code and execute the host version if required. 7208 llvm::BasicBlock *OffloadFailedBlock = 7209 CGF.createBasicBlock("omp_offload.failed"); 7210 llvm::BasicBlock *OffloadContBlock = 7211 CGF.createBasicBlock("omp_offload.cont"); 7212 llvm::Value *Failed = CGF.Builder.CreateIsNotNull(Return); 7213 CGF.Builder.CreateCondBr(Failed, OffloadFailedBlock, OffloadContBlock); 7214 7215 CGF.EmitBlock(OffloadFailedBlock); 7216 emitOutlinedFunctionCall(CGF, D.getLocStart(), OutlinedFn, KernelArgs); 7217 CGF.EmitBranch(OffloadContBlock); 7218 7219 CGF.EmitBlock(OffloadContBlock, /*IsFinished=*/true); 7220 }; 7221 7222 // Notify that the host version must be executed. 7223 auto &&ElseGen = [this, &D, OutlinedFn, &KernelArgs](CodeGenFunction &CGF, 7224 PrePostActionTy &) { 7225 emitOutlinedFunctionCall(CGF, D.getLocStart(), OutlinedFn, 7226 KernelArgs); 7227 }; 7228 7229 // If we have a target function ID it means that we need to support 7230 // offloading, otherwise, just execute on the host. We need to execute on host 7231 // regardless of the conditional in the if clause if, e.g., the user do not 7232 // specify target triples. 7233 if (OutlinedFnID) { 7234 if (IfCond) 7235 emitOMPIfClause(CGF, IfCond, ThenGen, ElseGen); 7236 else { 7237 RegionCodeGenTy ThenRCG(ThenGen); 7238 ThenRCG(CGF); 7239 } 7240 } else { 7241 RegionCodeGenTy ElseRCG(ElseGen); 7242 ElseRCG(CGF); 7243 } 7244 } 7245 7246 void CGOpenMPRuntime::scanForTargetRegionsFunctions(const Stmt *S, 7247 StringRef ParentName) { 7248 if (!S) 7249 return; 7250 7251 // Codegen OMP target directives that offload compute to the device. 7252 bool requiresDeviceCodegen = 7253 isa<OMPExecutableDirective>(S) && 7254 isOpenMPTargetExecutionDirective( 7255 cast<OMPExecutableDirective>(S)->getDirectiveKind()); 7256 7257 if (requiresDeviceCodegen) { 7258 auto &E = *cast<OMPExecutableDirective>(S); 7259 unsigned DeviceID; 7260 unsigned FileID; 7261 unsigned Line; 7262 getTargetEntryUniqueInfo(CGM.getContext(), E.getLocStart(), DeviceID, 7263 FileID, Line); 7264 7265 // Is this a target region that should not be emitted as an entry point? If 7266 // so just signal we are done with this target region. 7267 if (!OffloadEntriesInfoManager.hasTargetRegionEntryInfo(DeviceID, FileID, 7268 ParentName, Line)) 7269 return; 7270 7271 switch (S->getStmtClass()) { 7272 case Stmt::OMPTargetDirectiveClass: 7273 CodeGenFunction::EmitOMPTargetDeviceFunction( 7274 CGM, ParentName, cast<OMPTargetDirective>(*S)); 7275 break; 7276 case Stmt::OMPTargetParallelDirectiveClass: 7277 CodeGenFunction::EmitOMPTargetParallelDeviceFunction( 7278 CGM, ParentName, cast<OMPTargetParallelDirective>(*S)); 7279 break; 7280 case Stmt::OMPTargetTeamsDirectiveClass: 7281 CodeGenFunction::EmitOMPTargetTeamsDeviceFunction( 7282 CGM, ParentName, cast<OMPTargetTeamsDirective>(*S)); 7283 break; 7284 case Stmt::OMPTargetTeamsDistributeDirectiveClass: 7285 CodeGenFunction::EmitOMPTargetTeamsDistributeDeviceFunction( 7286 CGM, ParentName, cast<OMPTargetTeamsDistributeDirective>(*S)); 7287 break; 7288 case Stmt::OMPTargetTeamsDistributeSimdDirectiveClass: 7289 CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDeviceFunction( 7290 CGM, ParentName, cast<OMPTargetTeamsDistributeSimdDirective>(*S)); 7291 break; 7292 case Stmt::OMPTargetParallelForDirectiveClass: 7293 CodeGenFunction::EmitOMPTargetParallelForDeviceFunction( 7294 CGM, ParentName, cast<OMPTargetParallelForDirective>(*S)); 7295 break; 7296 case Stmt::OMPTargetParallelForSimdDirectiveClass: 7297 CodeGenFunction::EmitOMPTargetParallelForSimdDeviceFunction( 7298 CGM, ParentName, cast<OMPTargetParallelForSimdDirective>(*S)); 7299 break; 7300 case Stmt::OMPTargetSimdDirectiveClass: 7301 CodeGenFunction::EmitOMPTargetSimdDeviceFunction( 7302 CGM, ParentName, cast<OMPTargetSimdDirective>(*S)); 7303 break; 7304 case Stmt::OMPTargetTeamsDistributeParallelForDirectiveClass: 7305 CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDeviceFunction( 7306 CGM, ParentName, 7307 cast<OMPTargetTeamsDistributeParallelForDirective>(*S)); 7308 break; 7309 default: 7310 llvm_unreachable("Unknown target directive for OpenMP device codegen."); 7311 } 7312 return; 7313 } 7314 7315 if (const OMPExecutableDirective *E = dyn_cast<OMPExecutableDirective>(S)) { 7316 if (!E->hasAssociatedStmt()) 7317 return; 7318 7319 scanForTargetRegionsFunctions( 7320 cast<CapturedStmt>(E->getAssociatedStmt())->getCapturedStmt(), 7321 ParentName); 7322 return; 7323 } 7324 7325 // If this is a lambda function, look into its body. 7326 if (auto *L = dyn_cast<LambdaExpr>(S)) 7327 S = L->getBody(); 7328 7329 // Keep looking for target regions recursively. 7330 for (auto *II : S->children()) 7331 scanForTargetRegionsFunctions(II, ParentName); 7332 } 7333 7334 bool CGOpenMPRuntime::emitTargetFunctions(GlobalDecl GD) { 7335 auto &FD = *cast<FunctionDecl>(GD.getDecl()); 7336 7337 // If emitting code for the host, we do not process FD here. Instead we do 7338 // the normal code generation. 7339 if (!CGM.getLangOpts().OpenMPIsDevice) 7340 return false; 7341 7342 // Try to detect target regions in the function. 7343 scanForTargetRegionsFunctions(FD.getBody(), CGM.getMangledName(GD)); 7344 7345 // We should not emit any function other that the ones created during the 7346 // scanning. Therefore, we signal that this function is completely dealt 7347 // with. 7348 return true; 7349 } 7350 7351 bool CGOpenMPRuntime::emitTargetGlobalVariable(GlobalDecl GD) { 7352 if (!CGM.getLangOpts().OpenMPIsDevice) 7353 return false; 7354 7355 // Check if there are Ctors/Dtors in this declaration and look for target 7356 // regions in it. We use the complete variant to produce the kernel name 7357 // mangling. 7358 QualType RDTy = cast<VarDecl>(GD.getDecl())->getType(); 7359 if (auto *RD = RDTy->getBaseElementTypeUnsafe()->getAsCXXRecordDecl()) { 7360 for (auto *Ctor : RD->ctors()) { 7361 StringRef ParentName = 7362 CGM.getMangledName(GlobalDecl(Ctor, Ctor_Complete)); 7363 scanForTargetRegionsFunctions(Ctor->getBody(), ParentName); 7364 } 7365 auto *Dtor = RD->getDestructor(); 7366 if (Dtor) { 7367 StringRef ParentName = 7368 CGM.getMangledName(GlobalDecl(Dtor, Dtor_Complete)); 7369 scanForTargetRegionsFunctions(Dtor->getBody(), ParentName); 7370 } 7371 } 7372 7373 // If we are in target mode, we do not emit any global (declare target is not 7374 // implemented yet). Therefore we signal that GD was processed in this case. 7375 return true; 7376 } 7377 7378 bool CGOpenMPRuntime::emitTargetGlobal(GlobalDecl GD) { 7379 auto *VD = GD.getDecl(); 7380 if (isa<FunctionDecl>(VD)) 7381 return emitTargetFunctions(GD); 7382 7383 return emitTargetGlobalVariable(GD); 7384 } 7385 7386 llvm::Function *CGOpenMPRuntime::emitRegistrationFunction() { 7387 // If we have offloading in the current module, we need to emit the entries 7388 // now and register the offloading descriptor. 7389 createOffloadEntriesAndInfoMetadata(); 7390 7391 // Create and register the offloading binary descriptors. This is the main 7392 // entity that captures all the information about offloading in the current 7393 // compilation unit. 7394 return createOffloadingBinaryDescriptorRegistration(); 7395 } 7396 7397 void CGOpenMPRuntime::emitTeamsCall(CodeGenFunction &CGF, 7398 const OMPExecutableDirective &D, 7399 SourceLocation Loc, 7400 llvm::Value *OutlinedFn, 7401 ArrayRef<llvm::Value *> CapturedVars) { 7402 if (!CGF.HaveInsertPoint()) 7403 return; 7404 7405 auto *RTLoc = emitUpdateLocation(CGF, Loc); 7406 CodeGenFunction::RunCleanupsScope Scope(CGF); 7407 7408 // Build call __kmpc_fork_teams(loc, n, microtask, var1, .., varn); 7409 llvm::Value *Args[] = { 7410 RTLoc, 7411 CGF.Builder.getInt32(CapturedVars.size()), // Number of captured vars 7412 CGF.Builder.CreateBitCast(OutlinedFn, getKmpc_MicroPointerTy())}; 7413 llvm::SmallVector<llvm::Value *, 16> RealArgs; 7414 RealArgs.append(std::begin(Args), std::end(Args)); 7415 RealArgs.append(CapturedVars.begin(), CapturedVars.end()); 7416 7417 auto RTLFn = createRuntimeFunction(OMPRTL__kmpc_fork_teams); 7418 CGF.EmitRuntimeCall(RTLFn, RealArgs); 7419 } 7420 7421 void CGOpenMPRuntime::emitNumTeamsClause(CodeGenFunction &CGF, 7422 const Expr *NumTeams, 7423 const Expr *ThreadLimit, 7424 SourceLocation Loc) { 7425 if (!CGF.HaveInsertPoint()) 7426 return; 7427 7428 auto *RTLoc = emitUpdateLocation(CGF, Loc); 7429 7430 llvm::Value *NumTeamsVal = 7431 (NumTeams) 7432 ? CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(NumTeams), 7433 CGF.CGM.Int32Ty, /* isSigned = */ true) 7434 : CGF.Builder.getInt32(0); 7435 7436 llvm::Value *ThreadLimitVal = 7437 (ThreadLimit) 7438 ? CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(ThreadLimit), 7439 CGF.CGM.Int32Ty, /* isSigned = */ true) 7440 : CGF.Builder.getInt32(0); 7441 7442 // Build call __kmpc_push_num_teamss(&loc, global_tid, num_teams, thread_limit) 7443 llvm::Value *PushNumTeamsArgs[] = {RTLoc, getThreadID(CGF, Loc), NumTeamsVal, 7444 ThreadLimitVal}; 7445 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_num_teams), 7446 PushNumTeamsArgs); 7447 } 7448 7449 void CGOpenMPRuntime::emitTargetDataCalls( 7450 CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond, 7451 const Expr *Device, const RegionCodeGenTy &CodeGen, TargetDataInfo &Info) { 7452 if (!CGF.HaveInsertPoint()) 7453 return; 7454 7455 // Action used to replace the default codegen action and turn privatization 7456 // off. 7457 PrePostActionTy NoPrivAction; 7458 7459 // Generate the code for the opening of the data environment. Capture all the 7460 // arguments of the runtime call by reference because they are used in the 7461 // closing of the region. 7462 auto &&BeginThenGen = [this, &D, Device, &Info, 7463 &CodeGen](CodeGenFunction &CGF, PrePostActionTy &) { 7464 // Fill up the arrays with all the mapped variables. 7465 MappableExprsHandler::MapBaseValuesArrayTy BasePointers; 7466 MappableExprsHandler::MapValuesArrayTy Pointers; 7467 MappableExprsHandler::MapValuesArrayTy Sizes; 7468 MappableExprsHandler::MapFlagsArrayTy MapTypes; 7469 7470 // Get map clause information. 7471 MappableExprsHandler MCHandler(D, CGF); 7472 MCHandler.generateAllInfo(BasePointers, Pointers, Sizes, MapTypes); 7473 7474 // Fill up the arrays and create the arguments. 7475 emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info); 7476 7477 llvm::Value *BasePointersArrayArg = nullptr; 7478 llvm::Value *PointersArrayArg = nullptr; 7479 llvm::Value *SizesArrayArg = nullptr; 7480 llvm::Value *MapTypesArrayArg = nullptr; 7481 emitOffloadingArraysArgument(CGF, BasePointersArrayArg, PointersArrayArg, 7482 SizesArrayArg, MapTypesArrayArg, Info); 7483 7484 // Emit device ID if any. 7485 llvm::Value *DeviceID = nullptr; 7486 if (Device) { 7487 DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device), 7488 CGF.Int64Ty, /*isSigned=*/true); 7489 } else { 7490 DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF); 7491 } 7492 7493 // Emit the number of elements in the offloading arrays. 7494 auto *PointerNum = CGF.Builder.getInt32(Info.NumberOfPtrs); 7495 7496 llvm::Value *OffloadingArgs[] = { 7497 DeviceID, PointerNum, BasePointersArrayArg, 7498 PointersArrayArg, SizesArrayArg, MapTypesArrayArg}; 7499 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_target_data_begin), 7500 OffloadingArgs); 7501 7502 // If device pointer privatization is required, emit the body of the region 7503 // here. It will have to be duplicated: with and without privatization. 7504 if (!Info.CaptureDeviceAddrMap.empty()) 7505 CodeGen(CGF); 7506 }; 7507 7508 // Generate code for the closing of the data region. 7509 auto &&EndThenGen = [this, Device, &Info](CodeGenFunction &CGF, 7510 PrePostActionTy &) { 7511 assert(Info.isValid() && "Invalid data environment closing arguments."); 7512 7513 llvm::Value *BasePointersArrayArg = nullptr; 7514 llvm::Value *PointersArrayArg = nullptr; 7515 llvm::Value *SizesArrayArg = nullptr; 7516 llvm::Value *MapTypesArrayArg = nullptr; 7517 emitOffloadingArraysArgument(CGF, BasePointersArrayArg, PointersArrayArg, 7518 SizesArrayArg, MapTypesArrayArg, Info); 7519 7520 // Emit device ID if any. 7521 llvm::Value *DeviceID = nullptr; 7522 if (Device) { 7523 DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device), 7524 CGF.Int64Ty, /*isSigned=*/true); 7525 } else { 7526 DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF); 7527 } 7528 7529 // Emit the number of elements in the offloading arrays. 7530 auto *PointerNum = CGF.Builder.getInt32(Info.NumberOfPtrs); 7531 7532 llvm::Value *OffloadingArgs[] = { 7533 DeviceID, PointerNum, BasePointersArrayArg, 7534 PointersArrayArg, SizesArrayArg, MapTypesArrayArg}; 7535 CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_target_data_end), 7536 OffloadingArgs); 7537 }; 7538 7539 // If we need device pointer privatization, we need to emit the body of the 7540 // region with no privatization in the 'else' branch of the conditional. 7541 // Otherwise, we don't have to do anything. 7542 auto &&BeginElseGen = [&Info, &CodeGen, &NoPrivAction](CodeGenFunction &CGF, 7543 PrePostActionTy &) { 7544 if (!Info.CaptureDeviceAddrMap.empty()) { 7545 CodeGen.setAction(NoPrivAction); 7546 CodeGen(CGF); 7547 } 7548 }; 7549 7550 // We don't have to do anything to close the region if the if clause evaluates 7551 // to false. 7552 auto &&EndElseGen = [](CodeGenFunction &CGF, PrePostActionTy &) {}; 7553 7554 if (IfCond) { 7555 emitOMPIfClause(CGF, IfCond, BeginThenGen, BeginElseGen); 7556 } else { 7557 RegionCodeGenTy RCG(BeginThenGen); 7558 RCG(CGF); 7559 } 7560 7561 // If we don't require privatization of device pointers, we emit the body in 7562 // between the runtime calls. This avoids duplicating the body code. 7563 if (Info.CaptureDeviceAddrMap.empty()) { 7564 CodeGen.setAction(NoPrivAction); 7565 CodeGen(CGF); 7566 } 7567 7568 if (IfCond) { 7569 emitOMPIfClause(CGF, IfCond, EndThenGen, EndElseGen); 7570 } else { 7571 RegionCodeGenTy RCG(EndThenGen); 7572 RCG(CGF); 7573 } 7574 } 7575 7576 void CGOpenMPRuntime::emitTargetDataStandAloneCall( 7577 CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond, 7578 const Expr *Device) { 7579 if (!CGF.HaveInsertPoint()) 7580 return; 7581 7582 assert((isa<OMPTargetEnterDataDirective>(D) || 7583 isa<OMPTargetExitDataDirective>(D) || 7584 isa<OMPTargetUpdateDirective>(D)) && 7585 "Expecting either target enter, exit data, or update directives."); 7586 7587 CodeGenFunction::OMPTargetDataInfo InputInfo; 7588 llvm::Value *MapTypesArray = nullptr; 7589 // Generate the code for the opening of the data environment. 7590 auto &&ThenGen = [this, &D, Device, &InputInfo, 7591 &MapTypesArray](CodeGenFunction &CGF, PrePostActionTy &) { 7592 // Emit device ID if any. 7593 llvm::Value *DeviceID = nullptr; 7594 if (Device) { 7595 DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device), 7596 CGF.Int64Ty, /*isSigned=*/true); 7597 } else { 7598 DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF); 7599 } 7600 7601 // Emit the number of elements in the offloading arrays. 7602 llvm::Constant *PointerNum = 7603 CGF.Builder.getInt32(InputInfo.NumberOfTargetItems); 7604 7605 llvm::Value *OffloadingArgs[] = {DeviceID, 7606 PointerNum, 7607 InputInfo.BasePointersArray.getPointer(), 7608 InputInfo.PointersArray.getPointer(), 7609 InputInfo.SizesArray.getPointer(), 7610 MapTypesArray}; 7611 7612 // Select the right runtime function call for each expected standalone 7613 // directive. 7614 const bool HasNowait = D.hasClausesOfKind<OMPNowaitClause>(); 7615 OpenMPRTLFunction RTLFn; 7616 switch (D.getDirectiveKind()) { 7617 default: 7618 llvm_unreachable("Unexpected standalone target data directive."); 7619 break; 7620 case OMPD_target_enter_data: 7621 RTLFn = HasNowait ? OMPRTL__tgt_target_data_begin_nowait 7622 : OMPRTL__tgt_target_data_begin; 7623 break; 7624 case OMPD_target_exit_data: 7625 RTLFn = HasNowait ? OMPRTL__tgt_target_data_end_nowait 7626 : OMPRTL__tgt_target_data_end; 7627 break; 7628 case OMPD_target_update: 7629 RTLFn = HasNowait ? OMPRTL__tgt_target_data_update_nowait 7630 : OMPRTL__tgt_target_data_update; 7631 break; 7632 } 7633 CGF.EmitRuntimeCall(createRuntimeFunction(RTLFn), OffloadingArgs); 7634 }; 7635 7636 auto &&TargetThenGen = [this, &ThenGen, &D, &InputInfo, &MapTypesArray]( 7637 CodeGenFunction &CGF, PrePostActionTy &) { 7638 // Fill up the arrays with all the mapped variables. 7639 MappableExprsHandler::MapBaseValuesArrayTy BasePointers; 7640 MappableExprsHandler::MapValuesArrayTy Pointers; 7641 MappableExprsHandler::MapValuesArrayTy Sizes; 7642 MappableExprsHandler::MapFlagsArrayTy MapTypes; 7643 7644 // Get map clause information. 7645 MappableExprsHandler MEHandler(D, CGF); 7646 MEHandler.generateAllInfo(BasePointers, Pointers, Sizes, MapTypes); 7647 7648 TargetDataInfo Info; 7649 // Fill up the arrays and create the arguments. 7650 emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info); 7651 emitOffloadingArraysArgument(CGF, Info.BasePointersArray, 7652 Info.PointersArray, Info.SizesArray, 7653 Info.MapTypesArray, Info); 7654 InputInfo.NumberOfTargetItems = Info.NumberOfPtrs; 7655 InputInfo.BasePointersArray = 7656 Address(Info.BasePointersArray, CGM.getPointerAlign()); 7657 InputInfo.PointersArray = 7658 Address(Info.PointersArray, CGM.getPointerAlign()); 7659 InputInfo.SizesArray = 7660 Address(Info.SizesArray, CGM.getPointerAlign()); 7661 MapTypesArray = Info.MapTypesArray; 7662 if (D.hasClausesOfKind<OMPDependClause>()) 7663 CGF.EmitOMPTargetTaskBasedDirective(D, ThenGen, InputInfo); 7664 else 7665 emitInlinedDirective(CGF, OMPD_target_update, ThenGen); 7666 }; 7667 7668 if (IfCond) 7669 emitOMPIfClause(CGF, IfCond, TargetThenGen, 7670 [](CodeGenFunction &CGF, PrePostActionTy &) {}); 7671 else { 7672 RegionCodeGenTy ThenRCG(TargetThenGen); 7673 ThenRCG(CGF); 7674 } 7675 } 7676 7677 namespace { 7678 /// Kind of parameter in a function with 'declare simd' directive. 7679 enum ParamKindTy { LinearWithVarStride, Linear, Uniform, Vector }; 7680 /// Attribute set of the parameter. 7681 struct ParamAttrTy { 7682 ParamKindTy Kind = Vector; 7683 llvm::APSInt StrideOrArg; 7684 llvm::APSInt Alignment; 7685 }; 7686 } // namespace 7687 7688 static unsigned evaluateCDTSize(const FunctionDecl *FD, 7689 ArrayRef<ParamAttrTy> ParamAttrs) { 7690 // Every vector variant of a SIMD-enabled function has a vector length (VLEN). 7691 // If OpenMP clause "simdlen" is used, the VLEN is the value of the argument 7692 // of that clause. The VLEN value must be power of 2. 7693 // In other case the notion of the function`s "characteristic data type" (CDT) 7694 // is used to compute the vector length. 7695 // CDT is defined in the following order: 7696 // a) For non-void function, the CDT is the return type. 7697 // b) If the function has any non-uniform, non-linear parameters, then the 7698 // CDT is the type of the first such parameter. 7699 // c) If the CDT determined by a) or b) above is struct, union, or class 7700 // type which is pass-by-value (except for the type that maps to the 7701 // built-in complex data type), the characteristic data type is int. 7702 // d) If none of the above three cases is applicable, the CDT is int. 7703 // The VLEN is then determined based on the CDT and the size of vector 7704 // register of that ISA for which current vector version is generated. The 7705 // VLEN is computed using the formula below: 7706 // VLEN = sizeof(vector_register) / sizeof(CDT), 7707 // where vector register size specified in section 3.2.1 Registers and the 7708 // Stack Frame of original AMD64 ABI document. 7709 QualType RetType = FD->getReturnType(); 7710 if (RetType.isNull()) 7711 return 0; 7712 ASTContext &C = FD->getASTContext(); 7713 QualType CDT; 7714 if (!RetType.isNull() && !RetType->isVoidType()) 7715 CDT = RetType; 7716 else { 7717 unsigned Offset = 0; 7718 if (auto *MD = dyn_cast<CXXMethodDecl>(FD)) { 7719 if (ParamAttrs[Offset].Kind == Vector) 7720 CDT = C.getPointerType(C.getRecordType(MD->getParent())); 7721 ++Offset; 7722 } 7723 if (CDT.isNull()) { 7724 for (unsigned I = 0, E = FD->getNumParams(); I < E; ++I) { 7725 if (ParamAttrs[I + Offset].Kind == Vector) { 7726 CDT = FD->getParamDecl(I)->getType(); 7727 break; 7728 } 7729 } 7730 } 7731 } 7732 if (CDT.isNull()) 7733 CDT = C.IntTy; 7734 CDT = CDT->getCanonicalTypeUnqualified(); 7735 if (CDT->isRecordType() || CDT->isUnionType()) 7736 CDT = C.IntTy; 7737 return C.getTypeSize(CDT); 7738 } 7739 7740 static void 7741 emitX86DeclareSimdFunction(const FunctionDecl *FD, llvm::Function *Fn, 7742 const llvm::APSInt &VLENVal, 7743 ArrayRef<ParamAttrTy> ParamAttrs, 7744 OMPDeclareSimdDeclAttr::BranchStateTy State) { 7745 struct ISADataTy { 7746 char ISA; 7747 unsigned VecRegSize; 7748 }; 7749 ISADataTy ISAData[] = { 7750 { 7751 'b', 128 7752 }, // SSE 7753 { 7754 'c', 256 7755 }, // AVX 7756 { 7757 'd', 256 7758 }, // AVX2 7759 { 7760 'e', 512 7761 }, // AVX512 7762 }; 7763 llvm::SmallVector<char, 2> Masked; 7764 switch (State) { 7765 case OMPDeclareSimdDeclAttr::BS_Undefined: 7766 Masked.push_back('N'); 7767 Masked.push_back('M'); 7768 break; 7769 case OMPDeclareSimdDeclAttr::BS_Notinbranch: 7770 Masked.push_back('N'); 7771 break; 7772 case OMPDeclareSimdDeclAttr::BS_Inbranch: 7773 Masked.push_back('M'); 7774 break; 7775 } 7776 for (auto Mask : Masked) { 7777 for (auto &Data : ISAData) { 7778 SmallString<256> Buffer; 7779 llvm::raw_svector_ostream Out(Buffer); 7780 Out << "_ZGV" << Data.ISA << Mask; 7781 if (!VLENVal) { 7782 Out << llvm::APSInt::getUnsigned(Data.VecRegSize / 7783 evaluateCDTSize(FD, ParamAttrs)); 7784 } else 7785 Out << VLENVal; 7786 for (auto &ParamAttr : ParamAttrs) { 7787 switch (ParamAttr.Kind){ 7788 case LinearWithVarStride: 7789 Out << 's' << ParamAttr.StrideOrArg; 7790 break; 7791 case Linear: 7792 Out << 'l'; 7793 if (!!ParamAttr.StrideOrArg) 7794 Out << ParamAttr.StrideOrArg; 7795 break; 7796 case Uniform: 7797 Out << 'u'; 7798 break; 7799 case Vector: 7800 Out << 'v'; 7801 break; 7802 } 7803 if (!!ParamAttr.Alignment) 7804 Out << 'a' << ParamAttr.Alignment; 7805 } 7806 Out << '_' << Fn->getName(); 7807 Fn->addFnAttr(Out.str()); 7808 } 7809 } 7810 } 7811 7812 void CGOpenMPRuntime::emitDeclareSimdFunction(const FunctionDecl *FD, 7813 llvm::Function *Fn) { 7814 ASTContext &C = CGM.getContext(); 7815 FD = FD->getCanonicalDecl(); 7816 // Map params to their positions in function decl. 7817 llvm::DenseMap<const Decl *, unsigned> ParamPositions; 7818 if (isa<CXXMethodDecl>(FD)) 7819 ParamPositions.insert({FD, 0}); 7820 unsigned ParamPos = ParamPositions.size(); 7821 for (auto *P : FD->parameters()) { 7822 ParamPositions.insert({P->getCanonicalDecl(), ParamPos}); 7823 ++ParamPos; 7824 } 7825 for (auto *Attr : FD->specific_attrs<OMPDeclareSimdDeclAttr>()) { 7826 llvm::SmallVector<ParamAttrTy, 8> ParamAttrs(ParamPositions.size()); 7827 // Mark uniform parameters. 7828 for (auto *E : Attr->uniforms()) { 7829 E = E->IgnoreParenImpCasts(); 7830 unsigned Pos; 7831 if (isa<CXXThisExpr>(E)) 7832 Pos = ParamPositions[FD]; 7833 else { 7834 auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl()) 7835 ->getCanonicalDecl(); 7836 Pos = ParamPositions[PVD]; 7837 } 7838 ParamAttrs[Pos].Kind = Uniform; 7839 } 7840 // Get alignment info. 7841 auto NI = Attr->alignments_begin(); 7842 for (auto *E : Attr->aligneds()) { 7843 E = E->IgnoreParenImpCasts(); 7844 unsigned Pos; 7845 QualType ParmTy; 7846 if (isa<CXXThisExpr>(E)) { 7847 Pos = ParamPositions[FD]; 7848 ParmTy = E->getType(); 7849 } else { 7850 auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl()) 7851 ->getCanonicalDecl(); 7852 Pos = ParamPositions[PVD]; 7853 ParmTy = PVD->getType(); 7854 } 7855 ParamAttrs[Pos].Alignment = 7856 (*NI) ? (*NI)->EvaluateKnownConstInt(C) 7857 : llvm::APSInt::getUnsigned( 7858 C.toCharUnitsFromBits(C.getOpenMPDefaultSimdAlign(ParmTy)) 7859 .getQuantity()); 7860 ++NI; 7861 } 7862 // Mark linear parameters. 7863 auto SI = Attr->steps_begin(); 7864 auto MI = Attr->modifiers_begin(); 7865 for (auto *E : Attr->linears()) { 7866 E = E->IgnoreParenImpCasts(); 7867 unsigned Pos; 7868 if (isa<CXXThisExpr>(E)) 7869 Pos = ParamPositions[FD]; 7870 else { 7871 auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl()) 7872 ->getCanonicalDecl(); 7873 Pos = ParamPositions[PVD]; 7874 } 7875 auto &ParamAttr = ParamAttrs[Pos]; 7876 ParamAttr.Kind = Linear; 7877 if (*SI) { 7878 if (!(*SI)->EvaluateAsInt(ParamAttr.StrideOrArg, C, 7879 Expr::SE_AllowSideEffects)) { 7880 if (auto *DRE = cast<DeclRefExpr>((*SI)->IgnoreParenImpCasts())) { 7881 if (auto *StridePVD = cast<ParmVarDecl>(DRE->getDecl())) { 7882 ParamAttr.Kind = LinearWithVarStride; 7883 ParamAttr.StrideOrArg = llvm::APSInt::getUnsigned( 7884 ParamPositions[StridePVD->getCanonicalDecl()]); 7885 } 7886 } 7887 } 7888 } 7889 ++SI; 7890 ++MI; 7891 } 7892 llvm::APSInt VLENVal; 7893 if (const Expr *VLEN = Attr->getSimdlen()) 7894 VLENVal = VLEN->EvaluateKnownConstInt(C); 7895 OMPDeclareSimdDeclAttr::BranchStateTy State = Attr->getBranchState(); 7896 if (CGM.getTriple().getArch() == llvm::Triple::x86 || 7897 CGM.getTriple().getArch() == llvm::Triple::x86_64) 7898 emitX86DeclareSimdFunction(FD, Fn, VLENVal, ParamAttrs, State); 7899 } 7900 } 7901 7902 namespace { 7903 /// Cleanup action for doacross support. 7904 class DoacrossCleanupTy final : public EHScopeStack::Cleanup { 7905 public: 7906 static const int DoacrossFinArgs = 2; 7907 7908 private: 7909 llvm::Value *RTLFn; 7910 llvm::Value *Args[DoacrossFinArgs]; 7911 7912 public: 7913 DoacrossCleanupTy(llvm::Value *RTLFn, ArrayRef<llvm::Value *> CallArgs) 7914 : RTLFn(RTLFn) { 7915 assert(CallArgs.size() == DoacrossFinArgs); 7916 std::copy(CallArgs.begin(), CallArgs.end(), std::begin(Args)); 7917 } 7918 void Emit(CodeGenFunction &CGF, Flags /*flags*/) override { 7919 if (!CGF.HaveInsertPoint()) 7920 return; 7921 CGF.EmitRuntimeCall(RTLFn, Args); 7922 } 7923 }; 7924 } // namespace 7925 7926 void CGOpenMPRuntime::emitDoacrossInit(CodeGenFunction &CGF, 7927 const OMPLoopDirective &D) { 7928 if (!CGF.HaveInsertPoint()) 7929 return; 7930 7931 ASTContext &C = CGM.getContext(); 7932 QualType Int64Ty = C.getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/true); 7933 RecordDecl *RD; 7934 if (KmpDimTy.isNull()) { 7935 // Build struct kmp_dim { // loop bounds info casted to kmp_int64 7936 // kmp_int64 lo; // lower 7937 // kmp_int64 up; // upper 7938 // kmp_int64 st; // stride 7939 // }; 7940 RD = C.buildImplicitRecord("kmp_dim"); 7941 RD->startDefinition(); 7942 addFieldToRecordDecl(C, RD, Int64Ty); 7943 addFieldToRecordDecl(C, RD, Int64Ty); 7944 addFieldToRecordDecl(C, RD, Int64Ty); 7945 RD->completeDefinition(); 7946 KmpDimTy = C.getRecordType(RD); 7947 } else 7948 RD = cast<RecordDecl>(KmpDimTy->getAsTagDecl()); 7949 7950 Address DimsAddr = CGF.CreateMemTemp(KmpDimTy, "dims"); 7951 CGF.EmitNullInitialization(DimsAddr, KmpDimTy); 7952 enum { LowerFD = 0, UpperFD, StrideFD }; 7953 // Fill dims with data. 7954 LValue DimsLVal = CGF.MakeAddrLValue(DimsAddr, KmpDimTy); 7955 // dims.upper = num_iterations; 7956 LValue UpperLVal = 7957 CGF.EmitLValueForField(DimsLVal, *std::next(RD->field_begin(), UpperFD)); 7958 llvm::Value *NumIterVal = CGF.EmitScalarConversion( 7959 CGF.EmitScalarExpr(D.getNumIterations()), D.getNumIterations()->getType(), 7960 Int64Ty, D.getNumIterations()->getExprLoc()); 7961 CGF.EmitStoreOfScalar(NumIterVal, UpperLVal); 7962 // dims.stride = 1; 7963 LValue StrideLVal = 7964 CGF.EmitLValueForField(DimsLVal, *std::next(RD->field_begin(), StrideFD)); 7965 CGF.EmitStoreOfScalar(llvm::ConstantInt::getSigned(CGM.Int64Ty, /*V=*/1), 7966 StrideLVal); 7967 7968 // Build call void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid, 7969 // kmp_int32 num_dims, struct kmp_dim * dims); 7970 llvm::Value *Args[] = {emitUpdateLocation(CGF, D.getLocStart()), 7971 getThreadID(CGF, D.getLocStart()), 7972 llvm::ConstantInt::getSigned(CGM.Int32Ty, 1), 7973 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast( 7974 DimsAddr.getPointer(), CGM.VoidPtrTy)}; 7975 7976 llvm::Value *RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_init); 7977 CGF.EmitRuntimeCall(RTLFn, Args); 7978 llvm::Value *FiniArgs[DoacrossCleanupTy::DoacrossFinArgs] = { 7979 emitUpdateLocation(CGF, D.getLocEnd()), getThreadID(CGF, D.getLocEnd())}; 7980 llvm::Value *FiniRTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_fini); 7981 CGF.EHStack.pushCleanup<DoacrossCleanupTy>(NormalAndEHCleanup, FiniRTLFn, 7982 llvm::makeArrayRef(FiniArgs)); 7983 } 7984 7985 void CGOpenMPRuntime::emitDoacrossOrdered(CodeGenFunction &CGF, 7986 const OMPDependClause *C) { 7987 QualType Int64Ty = 7988 CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/1); 7989 const Expr *CounterVal = C->getCounterValue(); 7990 assert(CounterVal); 7991 llvm::Value *CntVal = CGF.EmitScalarConversion(CGF.EmitScalarExpr(CounterVal), 7992 CounterVal->getType(), Int64Ty, 7993 CounterVal->getExprLoc()); 7994 Address CntAddr = CGF.CreateMemTemp(Int64Ty, ".cnt.addr"); 7995 CGF.EmitStoreOfScalar(CntVal, CntAddr, /*Volatile=*/false, Int64Ty); 7996 llvm::Value *Args[] = {emitUpdateLocation(CGF, C->getLocStart()), 7997 getThreadID(CGF, C->getLocStart()), 7998 CntAddr.getPointer()}; 7999 llvm::Value *RTLFn; 8000 if (C->getDependencyKind() == OMPC_DEPEND_source) 8001 RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_post); 8002 else { 8003 assert(C->getDependencyKind() == OMPC_DEPEND_sink); 8004 RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_wait); 8005 } 8006 CGF.EmitRuntimeCall(RTLFn, Args); 8007 } 8008 8009 void CGOpenMPRuntime::emitCall(CodeGenFunction &CGF, llvm::Value *Callee, 8010 ArrayRef<llvm::Value *> Args, 8011 SourceLocation Loc) const { 8012 auto DL = ApplyDebugLocation::CreateDefaultArtificial(CGF, Loc); 8013 8014 if (auto *Fn = dyn_cast<llvm::Function>(Callee)) { 8015 if (Fn->doesNotThrow()) { 8016 CGF.EmitNounwindRuntimeCall(Fn, Args); 8017 return; 8018 } 8019 } 8020 CGF.EmitRuntimeCall(Callee, Args); 8021 } 8022 8023 void CGOpenMPRuntime::emitOutlinedFunctionCall( 8024 CodeGenFunction &CGF, SourceLocation Loc, llvm::Value *OutlinedFn, 8025 ArrayRef<llvm::Value *> Args) const { 8026 assert(Loc.isValid() && "Outlined function call location must be valid."); 8027 emitCall(CGF, OutlinedFn, Args, Loc); 8028 } 8029 8030 Address CGOpenMPRuntime::getParameterAddress(CodeGenFunction &CGF, 8031 const VarDecl *NativeParam, 8032 const VarDecl *TargetParam) const { 8033 return CGF.GetAddrOfLocalVar(NativeParam); 8034 } 8035 8036 llvm::Value *CGOpenMPSIMDRuntime::emitParallelOutlinedFunction( 8037 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 8038 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) { 8039 llvm_unreachable("Not supported in SIMD-only mode"); 8040 } 8041 8042 llvm::Value *CGOpenMPSIMDRuntime::emitTeamsOutlinedFunction( 8043 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 8044 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) { 8045 llvm_unreachable("Not supported in SIMD-only mode"); 8046 } 8047 8048 llvm::Value *CGOpenMPSIMDRuntime::emitTaskOutlinedFunction( 8049 const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, 8050 const VarDecl *PartIDVar, const VarDecl *TaskTVar, 8051 OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen, 8052 bool Tied, unsigned &NumberOfParts) { 8053 llvm_unreachable("Not supported in SIMD-only mode"); 8054 } 8055 8056 void CGOpenMPSIMDRuntime::emitParallelCall(CodeGenFunction &CGF, 8057 SourceLocation Loc, 8058 llvm::Value *OutlinedFn, 8059 ArrayRef<llvm::Value *> CapturedVars, 8060 const Expr *IfCond) { 8061 llvm_unreachable("Not supported in SIMD-only mode"); 8062 } 8063 8064 void CGOpenMPSIMDRuntime::emitCriticalRegion( 8065 CodeGenFunction &CGF, StringRef CriticalName, 8066 const RegionCodeGenTy &CriticalOpGen, SourceLocation Loc, 8067 const Expr *Hint) { 8068 llvm_unreachable("Not supported in SIMD-only mode"); 8069 } 8070 8071 void CGOpenMPSIMDRuntime::emitMasterRegion(CodeGenFunction &CGF, 8072 const RegionCodeGenTy &MasterOpGen, 8073 SourceLocation Loc) { 8074 llvm_unreachable("Not supported in SIMD-only mode"); 8075 } 8076 8077 void CGOpenMPSIMDRuntime::emitTaskyieldCall(CodeGenFunction &CGF, 8078 SourceLocation Loc) { 8079 llvm_unreachable("Not supported in SIMD-only mode"); 8080 } 8081 8082 void CGOpenMPSIMDRuntime::emitTaskgroupRegion( 8083 CodeGenFunction &CGF, const RegionCodeGenTy &TaskgroupOpGen, 8084 SourceLocation Loc) { 8085 llvm_unreachable("Not supported in SIMD-only mode"); 8086 } 8087 8088 void CGOpenMPSIMDRuntime::emitSingleRegion( 8089 CodeGenFunction &CGF, const RegionCodeGenTy &SingleOpGen, 8090 SourceLocation Loc, ArrayRef<const Expr *> CopyprivateVars, 8091 ArrayRef<const Expr *> DestExprs, ArrayRef<const Expr *> SrcExprs, 8092 ArrayRef<const Expr *> AssignmentOps) { 8093 llvm_unreachable("Not supported in SIMD-only mode"); 8094 } 8095 8096 void CGOpenMPSIMDRuntime::emitOrderedRegion(CodeGenFunction &CGF, 8097 const RegionCodeGenTy &OrderedOpGen, 8098 SourceLocation Loc, 8099 bool IsThreads) { 8100 llvm_unreachable("Not supported in SIMD-only mode"); 8101 } 8102 8103 void CGOpenMPSIMDRuntime::emitBarrierCall(CodeGenFunction &CGF, 8104 SourceLocation Loc, 8105 OpenMPDirectiveKind Kind, 8106 bool EmitChecks, 8107 bool ForceSimpleCall) { 8108 llvm_unreachable("Not supported in SIMD-only mode"); 8109 } 8110 8111 void CGOpenMPSIMDRuntime::emitForDispatchInit( 8112 CodeGenFunction &CGF, SourceLocation Loc, 8113 const OpenMPScheduleTy &ScheduleKind, unsigned IVSize, bool IVSigned, 8114 bool Ordered, const DispatchRTInput &DispatchValues) { 8115 llvm_unreachable("Not supported in SIMD-only mode"); 8116 } 8117 8118 void CGOpenMPSIMDRuntime::emitForStaticInit( 8119 CodeGenFunction &CGF, SourceLocation Loc, OpenMPDirectiveKind DKind, 8120 const OpenMPScheduleTy &ScheduleKind, const StaticRTInput &Values) { 8121 llvm_unreachable("Not supported in SIMD-only mode"); 8122 } 8123 8124 void CGOpenMPSIMDRuntime::emitDistributeStaticInit( 8125 CodeGenFunction &CGF, SourceLocation Loc, 8126 OpenMPDistScheduleClauseKind SchedKind, const StaticRTInput &Values) { 8127 llvm_unreachable("Not supported in SIMD-only mode"); 8128 } 8129 8130 void CGOpenMPSIMDRuntime::emitForOrderedIterationEnd(CodeGenFunction &CGF, 8131 SourceLocation Loc, 8132 unsigned IVSize, 8133 bool IVSigned) { 8134 llvm_unreachable("Not supported in SIMD-only mode"); 8135 } 8136 8137 void CGOpenMPSIMDRuntime::emitForStaticFinish(CodeGenFunction &CGF, 8138 SourceLocation Loc, 8139 OpenMPDirectiveKind DKind) { 8140 llvm_unreachable("Not supported in SIMD-only mode"); 8141 } 8142 8143 llvm::Value *CGOpenMPSIMDRuntime::emitForNext(CodeGenFunction &CGF, 8144 SourceLocation Loc, 8145 unsigned IVSize, bool IVSigned, 8146 Address IL, Address LB, 8147 Address UB, Address ST) { 8148 llvm_unreachable("Not supported in SIMD-only mode"); 8149 } 8150 8151 void CGOpenMPSIMDRuntime::emitNumThreadsClause(CodeGenFunction &CGF, 8152 llvm::Value *NumThreads, 8153 SourceLocation Loc) { 8154 llvm_unreachable("Not supported in SIMD-only mode"); 8155 } 8156 8157 void CGOpenMPSIMDRuntime::emitProcBindClause(CodeGenFunction &CGF, 8158 OpenMPProcBindClauseKind ProcBind, 8159 SourceLocation Loc) { 8160 llvm_unreachable("Not supported in SIMD-only mode"); 8161 } 8162 8163 Address CGOpenMPSIMDRuntime::getAddrOfThreadPrivate(CodeGenFunction &CGF, 8164 const VarDecl *VD, 8165 Address VDAddr, 8166 SourceLocation Loc) { 8167 llvm_unreachable("Not supported in SIMD-only mode"); 8168 } 8169 8170 llvm::Function *CGOpenMPSIMDRuntime::emitThreadPrivateVarDefinition( 8171 const VarDecl *VD, Address VDAddr, SourceLocation Loc, bool PerformInit, 8172 CodeGenFunction *CGF) { 8173 llvm_unreachable("Not supported in SIMD-only mode"); 8174 } 8175 8176 Address CGOpenMPSIMDRuntime::getAddrOfArtificialThreadPrivate( 8177 CodeGenFunction &CGF, QualType VarType, StringRef Name) { 8178 llvm_unreachable("Not supported in SIMD-only mode"); 8179 } 8180 8181 void CGOpenMPSIMDRuntime::emitFlush(CodeGenFunction &CGF, 8182 ArrayRef<const Expr *> Vars, 8183 SourceLocation Loc) { 8184 llvm_unreachable("Not supported in SIMD-only mode"); 8185 } 8186 8187 void CGOpenMPSIMDRuntime::emitTaskCall(CodeGenFunction &CGF, SourceLocation Loc, 8188 const OMPExecutableDirective &D, 8189 llvm::Value *TaskFunction, 8190 QualType SharedsTy, Address Shareds, 8191 const Expr *IfCond, 8192 const OMPTaskDataTy &Data) { 8193 llvm_unreachable("Not supported in SIMD-only mode"); 8194 } 8195 8196 void CGOpenMPSIMDRuntime::emitTaskLoopCall( 8197 CodeGenFunction &CGF, SourceLocation Loc, const OMPLoopDirective &D, 8198 llvm::Value *TaskFunction, QualType SharedsTy, Address Shareds, 8199 const Expr *IfCond, const OMPTaskDataTy &Data) { 8200 llvm_unreachable("Not supported in SIMD-only mode"); 8201 } 8202 8203 void CGOpenMPSIMDRuntime::emitReduction( 8204 CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> Privates, 8205 ArrayRef<const Expr *> LHSExprs, ArrayRef<const Expr *> RHSExprs, 8206 ArrayRef<const Expr *> ReductionOps, ReductionOptionsTy Options) { 8207 assert(Options.SimpleReduction && "Only simple reduction is expected."); 8208 CGOpenMPRuntime::emitReduction(CGF, Loc, Privates, LHSExprs, RHSExprs, 8209 ReductionOps, Options); 8210 } 8211 8212 llvm::Value *CGOpenMPSIMDRuntime::emitTaskReductionInit( 8213 CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> LHSExprs, 8214 ArrayRef<const Expr *> RHSExprs, const OMPTaskDataTy &Data) { 8215 llvm_unreachable("Not supported in SIMD-only mode"); 8216 } 8217 8218 void CGOpenMPSIMDRuntime::emitTaskReductionFixups(CodeGenFunction &CGF, 8219 SourceLocation Loc, 8220 ReductionCodeGen &RCG, 8221 unsigned N) { 8222 llvm_unreachable("Not supported in SIMD-only mode"); 8223 } 8224 8225 Address CGOpenMPSIMDRuntime::getTaskReductionItem(CodeGenFunction &CGF, 8226 SourceLocation Loc, 8227 llvm::Value *ReductionsPtr, 8228 LValue SharedLVal) { 8229 llvm_unreachable("Not supported in SIMD-only mode"); 8230 } 8231 8232 void CGOpenMPSIMDRuntime::emitTaskwaitCall(CodeGenFunction &CGF, 8233 SourceLocation Loc) { 8234 llvm_unreachable("Not supported in SIMD-only mode"); 8235 } 8236 8237 void CGOpenMPSIMDRuntime::emitCancellationPointCall( 8238 CodeGenFunction &CGF, SourceLocation Loc, 8239 OpenMPDirectiveKind CancelRegion) { 8240 llvm_unreachable("Not supported in SIMD-only mode"); 8241 } 8242 8243 void CGOpenMPSIMDRuntime::emitCancelCall(CodeGenFunction &CGF, 8244 SourceLocation Loc, const Expr *IfCond, 8245 OpenMPDirectiveKind CancelRegion) { 8246 llvm_unreachable("Not supported in SIMD-only mode"); 8247 } 8248 8249 void CGOpenMPSIMDRuntime::emitTargetOutlinedFunction( 8250 const OMPExecutableDirective &D, StringRef ParentName, 8251 llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID, 8252 bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) { 8253 llvm_unreachable("Not supported in SIMD-only mode"); 8254 } 8255 8256 void CGOpenMPSIMDRuntime::emitTargetCall(CodeGenFunction &CGF, 8257 const OMPExecutableDirective &D, 8258 llvm::Value *OutlinedFn, 8259 llvm::Value *OutlinedFnID, 8260 const Expr *IfCond, const Expr *Device, 8261 ArrayRef<llvm::Value *> CapturedVars) { 8262 llvm_unreachable("Not supported in SIMD-only mode"); 8263 } 8264 8265 bool CGOpenMPSIMDRuntime::emitTargetFunctions(GlobalDecl GD) { 8266 llvm_unreachable("Not supported in SIMD-only mode"); 8267 } 8268 8269 bool CGOpenMPSIMDRuntime::emitTargetGlobalVariable(GlobalDecl GD) { 8270 llvm_unreachable("Not supported in SIMD-only mode"); 8271 } 8272 8273 bool CGOpenMPSIMDRuntime::emitTargetGlobal(GlobalDecl GD) { 8274 return false; 8275 } 8276 8277 llvm::Function *CGOpenMPSIMDRuntime::emitRegistrationFunction() { 8278 return nullptr; 8279 } 8280 8281 void CGOpenMPSIMDRuntime::emitTeamsCall(CodeGenFunction &CGF, 8282 const OMPExecutableDirective &D, 8283 SourceLocation Loc, 8284 llvm::Value *OutlinedFn, 8285 ArrayRef<llvm::Value *> CapturedVars) { 8286 llvm_unreachable("Not supported in SIMD-only mode"); 8287 } 8288 8289 void CGOpenMPSIMDRuntime::emitNumTeamsClause(CodeGenFunction &CGF, 8290 const Expr *NumTeams, 8291 const Expr *ThreadLimit, 8292 SourceLocation Loc) { 8293 llvm_unreachable("Not supported in SIMD-only mode"); 8294 } 8295 8296 void CGOpenMPSIMDRuntime::emitTargetDataCalls( 8297 CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond, 8298 const Expr *Device, const RegionCodeGenTy &CodeGen, TargetDataInfo &Info) { 8299 llvm_unreachable("Not supported in SIMD-only mode"); 8300 } 8301 8302 void CGOpenMPSIMDRuntime::emitTargetDataStandAloneCall( 8303 CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond, 8304 const Expr *Device) { 8305 llvm_unreachable("Not supported in SIMD-only mode"); 8306 } 8307 8308 void CGOpenMPSIMDRuntime::emitDoacrossInit(CodeGenFunction &CGF, 8309 const OMPLoopDirective &D) { 8310 llvm_unreachable("Not supported in SIMD-only mode"); 8311 } 8312 8313 void CGOpenMPSIMDRuntime::emitDoacrossOrdered(CodeGenFunction &CGF, 8314 const OMPDependClause *C) { 8315 llvm_unreachable("Not supported in SIMD-only mode"); 8316 } 8317 8318 const VarDecl * 8319 CGOpenMPSIMDRuntime::translateParameter(const FieldDecl *FD, 8320 const VarDecl *NativeParam) const { 8321 llvm_unreachable("Not supported in SIMD-only mode"); 8322 } 8323 8324 Address 8325 CGOpenMPSIMDRuntime::getParameterAddress(CodeGenFunction &CGF, 8326 const VarDecl *NativeParam, 8327 const VarDecl *TargetParam) const { 8328 llvm_unreachable("Not supported in SIMD-only mode"); 8329 } 8330 8331