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CGOpenMPRuntimeGPU.cpp
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1//===---- CGOpenMPRuntimeGPU.cpp - Interface to OpenMP GPU Runtimes ----===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This provides a generalized class for OpenMP runtime code generation
10// specialized by GPU targets NVPTX and AMDGCN.
11//
12//===----------------------------------------------------------------------===//
13
14#include "CGOpenMPRuntimeGPU.h"
15#include "CGDebugInfo.h"
16#include "CodeGenFunction.h"
17#include "clang/AST/Attr.h"
22#include "clang/Basic/Cuda.h"
23#include "llvm/ADT/SmallPtrSet.h"
24#include "llvm/Frontend/OpenMP/OMPDeviceConstants.h"
25#include "llvm/Frontend/OpenMP/OMPGridValues.h"
26
27using namespace clang;
28using namespace CodeGen;
29using namespace llvm::omp;
30
31namespace {
32/// Pre(post)-action for different OpenMP constructs specialized for NVPTX.
33class NVPTXActionTy final : public PrePostActionTy {
34 llvm::FunctionCallee EnterCallee = nullptr;
35 ArrayRef<llvm::Value *> EnterArgs;
36 llvm::FunctionCallee ExitCallee = nullptr;
37 ArrayRef<llvm::Value *> ExitArgs;
38 bool Conditional = false;
39 llvm::BasicBlock *ContBlock = nullptr;
40
41public:
42 NVPTXActionTy(llvm::FunctionCallee EnterCallee,
43 ArrayRef<llvm::Value *> EnterArgs,
44 llvm::FunctionCallee ExitCallee,
45 ArrayRef<llvm::Value *> ExitArgs, bool Conditional = false)
46 : EnterCallee(EnterCallee), EnterArgs(EnterArgs), ExitCallee(ExitCallee),
47 ExitArgs(ExitArgs), Conditional(Conditional) {}
48 void Enter(CodeGenFunction &CGF) override {
49 llvm::Value *EnterRes = CGF.EmitRuntimeCall(EnterCallee, EnterArgs);
50 if (Conditional) {
51 llvm::Value *CallBool = CGF.Builder.CreateIsNotNull(EnterRes);
52 auto *ThenBlock = CGF.createBasicBlock("omp_if.then");
53 ContBlock = CGF.createBasicBlock("omp_if.end");
54 // Generate the branch (If-stmt)
55 CGF.Builder.CreateCondBr(CallBool, ThenBlock, ContBlock);
56 CGF.EmitBlock(ThenBlock);
57 }
58 }
59 void Done(CodeGenFunction &CGF) {
60 // Emit the rest of blocks/branches
61 CGF.EmitBranch(ContBlock);
62 CGF.EmitBlock(ContBlock, true);
63 }
64 void Exit(CodeGenFunction &CGF) override {
65 CGF.EmitRuntimeCall(ExitCallee, ExitArgs);
66 }
67};
68
69/// A class to track the execution mode when codegening directives within
70/// a target region. The appropriate mode (SPMD|NON-SPMD) is set on entry
71/// to the target region and used by containing directives such as 'parallel'
72/// to emit optimized code.
73class ExecutionRuntimeModesRAII {
74private:
78
79public:
80 ExecutionRuntimeModesRAII(CGOpenMPRuntimeGPU::ExecutionMode &ExecMode,
82 : ExecMode(ExecMode) {
83 SavedExecMode = ExecMode;
84 ExecMode = EntryMode;
85 }
86 ~ExecutionRuntimeModesRAII() { ExecMode = SavedExecMode; }
87};
88
89static const ValueDecl *getPrivateItem(const Expr *RefExpr) {
90 RefExpr = RefExpr->IgnoreParens();
91 if (const auto *ASE = dyn_cast<ArraySubscriptExpr>(RefExpr)) {
92 const Expr *Base = ASE->getBase()->IgnoreParenImpCasts();
93 while (const auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
94 Base = TempASE->getBase()->IgnoreParenImpCasts();
95 RefExpr = Base;
96 } else if (auto *OASE = dyn_cast<ArraySectionExpr>(RefExpr)) {
97 const Expr *Base = OASE->getBase()->IgnoreParenImpCasts();
98 while (const auto *TempOASE = dyn_cast<ArraySectionExpr>(Base))
99 Base = TempOASE->getBase()->IgnoreParenImpCasts();
100 while (const auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
101 Base = TempASE->getBase()->IgnoreParenImpCasts();
102 RefExpr = Base;
103 }
104 RefExpr = RefExpr->IgnoreParenImpCasts();
105 if (const auto *DE = dyn_cast<DeclRefExpr>(RefExpr))
106 return cast<ValueDecl>(DE->getDecl()->getCanonicalDecl());
107 const auto *ME = cast<MemberExpr>(RefExpr);
108 return cast<ValueDecl>(ME->getMemberDecl()->getCanonicalDecl());
109}
110
111static RecordDecl *buildRecordForGlobalizedVars(
113 ArrayRef<const ValueDecl *> EscapedDeclsForTeams,
114 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *>
115 &MappedDeclsFields,
116 int BufSize) {
117 using VarsDataTy = std::pair<CharUnits /*Align*/, const ValueDecl *>;
118 if (EscapedDecls.empty() && EscapedDeclsForTeams.empty())
119 return nullptr;
120 SmallVector<VarsDataTy, 4> GlobalizedVars;
121 for (const ValueDecl *D : EscapedDecls)
122 GlobalizedVars.emplace_back(C.getDeclAlign(D), D);
123 for (const ValueDecl *D : EscapedDeclsForTeams)
124 GlobalizedVars.emplace_back(C.getDeclAlign(D), D);
125
126 // Build struct _globalized_locals_ty {
127 // /* globalized vars */[WarSize] align (decl_align)
128 // /* globalized vars */ for EscapedDeclsForTeams
129 // };
130 RecordDecl *GlobalizedRD = C.buildImplicitRecord("_globalized_locals_ty");
131 GlobalizedRD->startDefinition();
132 llvm::SmallPtrSet<const ValueDecl *, 16> SingleEscaped(llvm::from_range,
133 EscapedDeclsForTeams);
134 for (const auto &Pair : GlobalizedVars) {
135 const ValueDecl *VD = Pair.second;
136 QualType Type = VD->getType();
138 Type = C.getPointerType(Type.getNonReferenceType());
139 else
140 Type = Type.getNonReferenceType();
141 SourceLocation Loc = VD->getLocation();
142 FieldDecl *Field;
143 if (SingleEscaped.count(VD)) {
144 Field = FieldDecl::Create(
145 C, GlobalizedRD, Loc, Loc, VD->getIdentifier(), Type,
146 C.getTrivialTypeSourceInfo(Type, SourceLocation()),
147 /*BW=*/nullptr, /*Mutable=*/false,
148 /*InitStyle=*/ICIS_NoInit);
149 Field->setAccess(AS_public);
150 if (VD->hasAttrs()) {
151 for (specific_attr_iterator<AlignedAttr> I(VD->getAttrs().begin()),
152 E(VD->getAttrs().end());
153 I != E; ++I)
154 Field->addAttr(*I);
155 }
156 } else {
157 if (BufSize > 1) {
158 llvm::APInt ArraySize(32, BufSize);
159 Type = C.getConstantArrayType(Type, ArraySize, nullptr,
161 }
162 Field = FieldDecl::Create(
163 C, GlobalizedRD, Loc, Loc, VD->getIdentifier(), Type,
164 C.getTrivialTypeSourceInfo(Type, SourceLocation()),
165 /*BW=*/nullptr, /*Mutable=*/false,
166 /*InitStyle=*/ICIS_NoInit);
167 Field->setAccess(AS_public);
168 llvm::APInt Align(32, Pair.first.getQuantity());
169 Field->addAttr(AlignedAttr::CreateImplicit(
170 C, /*IsAlignmentExpr=*/true,
172 C.getIntTypeForBitwidth(32, /*Signed=*/0),
174 {}, AlignedAttr::GNU_aligned));
175 }
176 GlobalizedRD->addDecl(Field);
177 MappedDeclsFields.try_emplace(VD, Field);
178 }
179 GlobalizedRD->completeDefinition();
180 return GlobalizedRD;
181}
182
183/// Get the list of variables that can escape their declaration context.
184class CheckVarsEscapingDeclContext final
185 : public ConstStmtVisitor<CheckVarsEscapingDeclContext> {
186 CodeGenFunction &CGF;
187 llvm::SetVector<const ValueDecl *> EscapedDecls;
188 llvm::SetVector<const ValueDecl *> EscapedVariableLengthDecls;
189 llvm::SetVector<const ValueDecl *> DelayedVariableLengthDecls;
190 llvm::SmallPtrSet<const Decl *, 4> EscapedParameters;
191 RecordDecl *GlobalizedRD = nullptr;
192 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *> MappedDeclsFields;
193 bool AllEscaped = false;
194 bool IsForCombinedParallelRegion = false;
195
196 void markAsEscaped(const ValueDecl *VD) {
197 // Do not globalize declare target variables.
198 if (!isa<VarDecl>(VD) ||
199 OMPDeclareTargetDeclAttr::isDeclareTargetDeclaration(VD))
200 return;
202 // Use user-specified allocation.
203 if (VD->hasAttrs() && VD->hasAttr<OMPAllocateDeclAttr>())
204 return;
205 // Variables captured by value must be globalized.
206 bool IsCaptured = false;
207 if (auto *CSI = CGF.CapturedStmtInfo) {
208 if (const FieldDecl *FD = CSI->lookup(cast<VarDecl>(VD))) {
209 // Check if need to capture the variable that was already captured by
210 // value in the outer region.
211 IsCaptured = true;
212 if (!IsForCombinedParallelRegion) {
213 if (!FD->hasAttrs())
214 return;
215 const auto *Attr = FD->getAttr<OMPCaptureKindAttr>();
216 if (!Attr)
217 return;
218 if (((Attr->getCaptureKind() != OMPC_map) &&
219 !isOpenMPPrivate(Attr->getCaptureKind())) ||
220 ((Attr->getCaptureKind() == OMPC_map) &&
221 !FD->getType()->isAnyPointerType()))
222 return;
223 }
224 if (!FD->getType()->isReferenceType()) {
225 assert(!VD->getType()->isVariablyModifiedType() &&
226 "Parameter captured by value with variably modified type");
227 EscapedParameters.insert(VD);
228 } else if (!IsForCombinedParallelRegion) {
229 return;
230 }
231 }
232 }
233 if ((!CGF.CapturedStmtInfo ||
234 (IsForCombinedParallelRegion && CGF.CapturedStmtInfo)) &&
235 VD->getType()->isReferenceType())
236 // Do not globalize variables with reference type.
237 return;
238 if (VD->getType()->isVariablyModifiedType()) {
239 // If not captured at the target region level then mark the escaped
240 // variable as delayed.
241 if (IsCaptured)
242 EscapedVariableLengthDecls.insert(VD);
243 else
244 DelayedVariableLengthDecls.insert(VD);
245 } else
246 EscapedDecls.insert(VD);
247 }
248
249 void VisitValueDecl(const ValueDecl *VD) {
250 if (VD->getType()->isLValueReferenceType())
251 markAsEscaped(VD);
252 if (const auto *VarD = dyn_cast<VarDecl>(VD)) {
253 if (!isa<ParmVarDecl>(VarD) && VarD->hasInit()) {
254 const bool SavedAllEscaped = AllEscaped;
255 AllEscaped = VD->getType()->isLValueReferenceType();
256 Visit(VarD->getInit());
257 AllEscaped = SavedAllEscaped;
258 }
259 }
260 }
261 void VisitOpenMPCapturedStmt(const CapturedStmt *S,
262 ArrayRef<OMPClause *> Clauses,
263 bool IsCombinedParallelRegion) {
264 if (!S)
265 return;
266 for (const CapturedStmt::Capture &C : S->captures()) {
267 if (C.capturesVariable() && !C.capturesVariableByCopy()) {
268 const ValueDecl *VD = C.getCapturedVar();
269 bool SavedIsForCombinedParallelRegion = IsForCombinedParallelRegion;
270 if (IsCombinedParallelRegion) {
271 // Check if the variable is privatized in the combined construct and
272 // those private copies must be shared in the inner parallel
273 // directive.
274 IsForCombinedParallelRegion = false;
275 for (const OMPClause *C : Clauses) {
276 if (!isOpenMPPrivate(C->getClauseKind()) ||
277 C->getClauseKind() == OMPC_reduction ||
278 C->getClauseKind() == OMPC_linear ||
279 C->getClauseKind() == OMPC_private)
280 continue;
281 ArrayRef<const Expr *> Vars;
282 if (const auto *PC = dyn_cast<OMPFirstprivateClause>(C))
283 Vars = PC->getVarRefs();
284 else if (const auto *PC = dyn_cast<OMPLastprivateClause>(C))
285 Vars = PC->getVarRefs();
286 else
287 llvm_unreachable("Unexpected clause.");
288 for (const auto *E : Vars) {
289 const Decl *D =
290 cast<DeclRefExpr>(E)->getDecl()->getCanonicalDecl();
291 if (D == VD->getCanonicalDecl()) {
292 IsForCombinedParallelRegion = true;
293 break;
294 }
295 }
296 if (IsForCombinedParallelRegion)
297 break;
298 }
299 }
300 markAsEscaped(VD);
302 VisitValueDecl(VD);
303 IsForCombinedParallelRegion = SavedIsForCombinedParallelRegion;
304 }
305 }
306 }
307
308 void buildRecordForGlobalizedVars(bool IsInTTDRegion) {
309 assert(!GlobalizedRD &&
310 "Record for globalized variables is built already.");
311 ArrayRef<const ValueDecl *> EscapedDeclsForParallel, EscapedDeclsForTeams;
312 unsigned WarpSize = CGF.getTarget().getGridValue().GV_Warp_Size;
313 if (IsInTTDRegion)
314 EscapedDeclsForTeams = EscapedDecls.getArrayRef();
315 else
316 EscapedDeclsForParallel = EscapedDecls.getArrayRef();
317 GlobalizedRD = ::buildRecordForGlobalizedVars(
318 CGF.getContext(), EscapedDeclsForParallel, EscapedDeclsForTeams,
319 MappedDeclsFields, WarpSize);
320 }
321
322public:
323 CheckVarsEscapingDeclContext(CodeGenFunction &CGF,
324 ArrayRef<const ValueDecl *> TeamsReductions)
325 : CGF(CGF), EscapedDecls(llvm::from_range, TeamsReductions) {}
326 ~CheckVarsEscapingDeclContext() = default;
327 void VisitDeclStmt(const DeclStmt *S) {
328 if (!S)
329 return;
330 for (const Decl *D : S->decls())
331 if (const auto *VD = dyn_cast_or_null<ValueDecl>(D))
332 VisitValueDecl(VD);
333 }
334 void VisitOMPExecutableDirective(const OMPExecutableDirective *D) {
335 if (!D)
336 return;
337 if (!D->hasAssociatedStmt())
338 return;
339 if (const auto *S =
340 dyn_cast_or_null<CapturedStmt>(D->getAssociatedStmt())) {
341 // Do not analyze directives that do not actually require capturing,
342 // like `omp for` or `omp simd` directives.
343 llvm::SmallVector<OpenMPDirectiveKind, 4> CaptureRegions;
344 getOpenMPCaptureRegions(CaptureRegions, D->getDirectiveKind());
345 if (CaptureRegions.size() == 1 && CaptureRegions.back() == OMPD_unknown) {
346 VisitStmt(S->getCapturedStmt());
347 return;
348 }
349 VisitOpenMPCapturedStmt(
350 S, D->clauses(),
351 CaptureRegions.back() == OMPD_parallel &&
352 isOpenMPDistributeDirective(D->getDirectiveKind()));
353 }
354 }
355 void VisitCapturedStmt(const CapturedStmt *S) {
356 if (!S)
357 return;
358 for (const CapturedStmt::Capture &C : S->captures()) {
359 if (C.capturesVariable() && !C.capturesVariableByCopy()) {
360 const ValueDecl *VD = C.getCapturedVar();
361 markAsEscaped(VD);
363 VisitValueDecl(VD);
364 }
365 }
366 }
367 void VisitLambdaExpr(const LambdaExpr *E) {
368 if (!E)
369 return;
370 for (const LambdaCapture &C : E->captures()) {
371 if (C.capturesVariable()) {
372 if (C.getCaptureKind() == LCK_ByRef) {
373 const ValueDecl *VD = C.getCapturedVar();
374 markAsEscaped(VD);
376 VisitValueDecl(VD);
377 }
378 }
379 }
380 }
381 void VisitBlockExpr(const BlockExpr *E) {
382 if (!E)
383 return;
384 for (const BlockDecl::Capture &C : E->getBlockDecl()->captures()) {
385 if (C.isByRef()) {
386 const VarDecl *VD = C.getVariable();
387 markAsEscaped(VD);
389 VisitValueDecl(VD);
390 }
391 }
392 }
393 void VisitCallExpr(const CallExpr *E) {
394 if (!E)
395 return;
396 for (const Expr *Arg : E->arguments()) {
397 if (!Arg)
398 continue;
399 if (Arg->isLValue()) {
400 const bool SavedAllEscaped = AllEscaped;
401 AllEscaped = true;
402 Visit(Arg);
403 AllEscaped = SavedAllEscaped;
404 } else {
405 Visit(Arg);
406 }
407 }
408 Visit(E->getCallee());
409 }
410 void VisitDeclRefExpr(const DeclRefExpr *E) {
411 if (!E)
412 return;
413 const ValueDecl *VD = E->getDecl();
414 if (AllEscaped)
415 markAsEscaped(VD);
417 VisitValueDecl(VD);
418 else if (VD->isInitCapture())
419 VisitValueDecl(VD);
420 }
421 void VisitUnaryOperator(const UnaryOperator *E) {
422 if (!E)
423 return;
424 if (E->getOpcode() == UO_AddrOf) {
425 const bool SavedAllEscaped = AllEscaped;
426 AllEscaped = true;
427 Visit(E->getSubExpr());
428 AllEscaped = SavedAllEscaped;
429 } else {
430 Visit(E->getSubExpr());
431 }
432 }
433 void VisitImplicitCastExpr(const ImplicitCastExpr *E) {
434 if (!E)
435 return;
436 if (E->getCastKind() == CK_ArrayToPointerDecay) {
437 const bool SavedAllEscaped = AllEscaped;
438 AllEscaped = true;
439 Visit(E->getSubExpr());
440 AllEscaped = SavedAllEscaped;
441 } else {
442 Visit(E->getSubExpr());
443 }
444 }
445 void VisitExpr(const Expr *E) {
446 if (!E)
447 return;
448 bool SavedAllEscaped = AllEscaped;
449 if (!E->isLValue())
450 AllEscaped = false;
451 for (const Stmt *Child : E->children())
452 if (Child)
453 Visit(Child);
454 AllEscaped = SavedAllEscaped;
455 }
456 void VisitStmt(const Stmt *S) {
457 if (!S)
458 return;
459 for (const Stmt *Child : S->children())
460 if (Child)
461 Visit(Child);
462 }
463
464 /// Returns the record that handles all the escaped local variables and used
465 /// instead of their original storage.
466 const RecordDecl *getGlobalizedRecord(bool IsInTTDRegion) {
467 if (!GlobalizedRD)
468 buildRecordForGlobalizedVars(IsInTTDRegion);
469 return GlobalizedRD;
470 }
471
472 /// Returns the field in the globalized record for the escaped variable.
473 const FieldDecl *getFieldForGlobalizedVar(const ValueDecl *VD) const {
474 assert(GlobalizedRD &&
475 "Record for globalized variables must be generated already.");
476 return MappedDeclsFields.lookup(VD);
477 }
478
479 /// Returns the list of the escaped local variables/parameters.
480 ArrayRef<const ValueDecl *> getEscapedDecls() const {
481 return EscapedDecls.getArrayRef();
482 }
483
484 /// Checks if the escaped local variable is actually a parameter passed by
485 /// value.
486 const llvm::SmallPtrSetImpl<const Decl *> &getEscapedParameters() const {
487 return EscapedParameters;
488 }
489
490 /// Returns the list of the escaped variables with the variably modified
491 /// types.
492 ArrayRef<const ValueDecl *> getEscapedVariableLengthDecls() const {
493 return EscapedVariableLengthDecls.getArrayRef();
494 }
495
496 /// Returns the list of the delayed variables with the variably modified
497 /// types.
498 ArrayRef<const ValueDecl *> getDelayedVariableLengthDecls() const {
499 return DelayedVariableLengthDecls.getArrayRef();
500 }
501};
502} // anonymous namespace
503
505CGOpenMPRuntimeGPU::getExecutionMode() const {
506 return CurrentExecutionMode;
507}
508
510CGOpenMPRuntimeGPU::getDataSharingMode() const {
511 return CurrentDataSharingMode;
512}
513
514/// Check for inner (nested) SPMD construct, if any
516 const OMPExecutableDirective &D) {
517 const auto *CS = D.getInnermostCapturedStmt();
518 const auto *Body =
519 CS->getCapturedStmt()->IgnoreContainers(/*IgnoreCaptured=*/true);
520 const Stmt *ChildStmt = CGOpenMPRuntime::getSingleCompoundChild(Ctx, Body);
521
522 if (const auto *NestedDir =
523 dyn_cast_or_null<OMPExecutableDirective>(ChildStmt)) {
524 OpenMPDirectiveKind DKind = NestedDir->getDirectiveKind();
525 switch (D.getDirectiveKind()) {
526 case OMPD_target:
527 if (isOpenMPParallelDirective(DKind))
528 return true;
529 if (DKind == OMPD_teams) {
530 Body = NestedDir->getInnermostCapturedStmt()->IgnoreContainers(
531 /*IgnoreCaptured=*/true);
532 if (!Body)
533 return false;
534 ChildStmt = CGOpenMPRuntime::getSingleCompoundChild(Ctx, Body);
535 if (const auto *NND =
536 dyn_cast_or_null<OMPExecutableDirective>(ChildStmt)) {
537 DKind = NND->getDirectiveKind();
538 if (isOpenMPParallelDirective(DKind))
539 return true;
540 }
541 }
542 return false;
543 case OMPD_target_teams:
544 return isOpenMPParallelDirective(DKind);
545 case OMPD_target_simd:
546 case OMPD_target_parallel:
547 case OMPD_target_parallel_for:
548 case OMPD_target_parallel_for_simd:
549 case OMPD_target_teams_distribute:
550 case OMPD_target_teams_distribute_simd:
551 case OMPD_target_teams_distribute_parallel_for:
552 case OMPD_target_teams_distribute_parallel_for_simd:
553 case OMPD_parallel:
554 case OMPD_for:
555 case OMPD_parallel_for:
556 case OMPD_parallel_master:
557 case OMPD_parallel_sections:
558 case OMPD_for_simd:
559 case OMPD_parallel_for_simd:
560 case OMPD_cancel:
561 case OMPD_cancellation_point:
562 case OMPD_ordered:
563 case OMPD_threadprivate:
564 case OMPD_allocate:
565 case OMPD_task:
566 case OMPD_simd:
567 case OMPD_sections:
568 case OMPD_section:
569 case OMPD_single:
570 case OMPD_master:
571 case OMPD_critical:
572 case OMPD_taskyield:
573 case OMPD_barrier:
574 case OMPD_taskwait:
575 case OMPD_taskgroup:
576 case OMPD_atomic:
577 case OMPD_flush:
578 case OMPD_depobj:
579 case OMPD_scan:
580 case OMPD_teams:
581 case OMPD_target_data:
582 case OMPD_target_exit_data:
583 case OMPD_target_enter_data:
584 case OMPD_distribute:
585 case OMPD_distribute_simd:
586 case OMPD_distribute_parallel_for:
587 case OMPD_distribute_parallel_for_simd:
588 case OMPD_teams_distribute:
589 case OMPD_teams_distribute_simd:
590 case OMPD_teams_distribute_parallel_for:
591 case OMPD_teams_distribute_parallel_for_simd:
592 case OMPD_target_update:
593 case OMPD_declare_simd:
594 case OMPD_declare_variant:
595 case OMPD_begin_declare_variant:
596 case OMPD_end_declare_variant:
597 case OMPD_declare_target:
598 case OMPD_end_declare_target:
599 case OMPD_declare_reduction:
600 case OMPD_declare_mapper:
601 case OMPD_taskloop:
602 case OMPD_taskloop_simd:
603 case OMPD_master_taskloop:
604 case OMPD_master_taskloop_simd:
605 case OMPD_parallel_master_taskloop:
606 case OMPD_parallel_master_taskloop_simd:
607 case OMPD_requires:
608 case OMPD_unknown:
609 default:
610 llvm_unreachable("Unexpected directive.");
611 }
612 }
613
614 return false;
615}
616
618 const OMPExecutableDirective &D) {
619 OpenMPDirectiveKind DirectiveKind = D.getDirectiveKind();
620 switch (DirectiveKind) {
621 case OMPD_target:
622 case OMPD_target_teams:
623 return hasNestedSPMDDirective(Ctx, D);
624 case OMPD_target_parallel_loop:
625 case OMPD_target_parallel:
626 case OMPD_target_parallel_for:
627 case OMPD_target_parallel_for_simd:
628 case OMPD_target_teams_distribute_parallel_for:
629 case OMPD_target_teams_distribute_parallel_for_simd:
630 case OMPD_target_simd:
631 case OMPD_target_teams_distribute_simd:
632 return true;
633 case OMPD_target_teams_distribute:
634 return false;
635 case OMPD_target_teams_loop:
636 // Whether this is true or not depends on how the directive will
637 // eventually be emitted.
638 if (auto *TTLD = dyn_cast<OMPTargetTeamsGenericLoopDirective>(&D))
639 return TTLD->canBeParallelFor();
640 return false;
641 case OMPD_parallel:
642 case OMPD_for:
643 case OMPD_parallel_for:
644 case OMPD_parallel_master:
645 case OMPD_parallel_sections:
646 case OMPD_for_simd:
647 case OMPD_parallel_for_simd:
648 case OMPD_cancel:
649 case OMPD_cancellation_point:
650 case OMPD_ordered:
651 case OMPD_threadprivate:
652 case OMPD_allocate:
653 case OMPD_task:
654 case OMPD_simd:
655 case OMPD_sections:
656 case OMPD_section:
657 case OMPD_single:
658 case OMPD_master:
659 case OMPD_critical:
660 case OMPD_taskyield:
661 case OMPD_barrier:
662 case OMPD_taskwait:
663 case OMPD_taskgroup:
664 case OMPD_atomic:
665 case OMPD_flush:
666 case OMPD_depobj:
667 case OMPD_scan:
668 case OMPD_teams:
669 case OMPD_target_data:
670 case OMPD_target_exit_data:
671 case OMPD_target_enter_data:
672 case OMPD_distribute:
673 case OMPD_distribute_simd:
674 case OMPD_distribute_parallel_for:
675 case OMPD_distribute_parallel_for_simd:
676 case OMPD_teams_distribute:
677 case OMPD_teams_distribute_simd:
678 case OMPD_teams_distribute_parallel_for:
679 case OMPD_teams_distribute_parallel_for_simd:
680 case OMPD_target_update:
681 case OMPD_declare_simd:
682 case OMPD_declare_variant:
683 case OMPD_begin_declare_variant:
684 case OMPD_end_declare_variant:
685 case OMPD_declare_target:
686 case OMPD_end_declare_target:
687 case OMPD_declare_reduction:
688 case OMPD_declare_mapper:
689 case OMPD_taskloop:
690 case OMPD_taskloop_simd:
691 case OMPD_master_taskloop:
692 case OMPD_master_taskloop_simd:
693 case OMPD_parallel_master_taskloop:
694 case OMPD_parallel_master_taskloop_simd:
695 case OMPD_requires:
696 case OMPD_unknown:
697 default:
698 break;
699 }
700 llvm_unreachable(
701 "Unknown programming model for OpenMP directive on NVPTX target.");
702}
703
704void CGOpenMPRuntimeGPU::emitNonSPMDKernel(const OMPExecutableDirective &D,
705 StringRef ParentName,
706 llvm::Function *&OutlinedFn,
707 llvm::Constant *&OutlinedFnID,
708 bool IsOffloadEntry,
709 const RegionCodeGenTy &CodeGen) {
710 ExecutionRuntimeModesRAII ModeRAII(CurrentExecutionMode, EM_NonSPMD);
711 EntryFunctionState EST;
712 WrapperFunctionsMap.clear();
713
714 [[maybe_unused]] bool IsBareKernel = D.getSingleClause<OMPXBareClause>();
715 assert(!IsBareKernel && "bare kernel should not be at generic mode");
716
717 // Emit target region as a standalone region.
718 class NVPTXPrePostActionTy : public PrePostActionTy {
719 CGOpenMPRuntimeGPU::EntryFunctionState &EST;
720 const OMPExecutableDirective &D;
721
722 public:
723 NVPTXPrePostActionTy(CGOpenMPRuntimeGPU::EntryFunctionState &EST,
724 const OMPExecutableDirective &D)
725 : EST(EST), D(D) {}
726 void Enter(CodeGenFunction &CGF) override {
727 auto &RT = static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime());
728 RT.emitKernelInit(D, CGF, EST, /* IsSPMD */ false);
729 // Skip target region initialization.
730 RT.setLocThreadIdInsertPt(CGF, /*AtCurrentPoint=*/true);
731 }
732 void Exit(CodeGenFunction &CGF) override {
733 auto &RT = static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime());
734 RT.clearLocThreadIdInsertPt(CGF);
735 RT.emitKernelDeinit(CGF, EST, /* IsSPMD */ false);
736 }
737 } Action(EST, D);
738 CodeGen.setAction(Action);
739 IsInTTDRegion = true;
740 emitTargetOutlinedFunctionHelper(D, ParentName, OutlinedFn, OutlinedFnID,
741 IsOffloadEntry, CodeGen);
742 IsInTTDRegion = false;
743}
744
745void CGOpenMPRuntimeGPU::emitKernelInit(const OMPExecutableDirective &D,
746 CodeGenFunction &CGF,
747 EntryFunctionState &EST, bool IsSPMD) {
748 llvm::OpenMPIRBuilder::TargetKernelDefaultAttrs Attrs;
749 Attrs.ExecFlags =
750 IsSPMD ? llvm::omp::OMPTgtExecModeFlags::OMP_TGT_EXEC_MODE_SPMD
751 : llvm::omp::OMPTgtExecModeFlags::OMP_TGT_EXEC_MODE_GENERIC;
752 computeMinAndMaxThreadsAndTeams(D, CGF, Attrs);
753
754 CGBuilderTy &Bld = CGF.Builder;
755 Bld.restoreIP(OMPBuilder.createTargetInit(Bld, Attrs));
756 if (!IsSPMD)
757 emitGenericVarsProlog(CGF, EST.Loc);
758}
759
760void CGOpenMPRuntimeGPU::emitKernelDeinit(CodeGenFunction &CGF,
761 EntryFunctionState &EST,
762 bool IsSPMD) {
763 if (!IsSPMD)
764 emitGenericVarsEpilog(CGF);
765
766 // This is temporary until we remove the fixed sized buffer.
767 ASTContext &C = CGM.getContext();
768 RecordDecl *StaticRD = C.buildImplicitRecord(
769 "_openmp_teams_reduction_type_$_", RecordDecl::TagKind::Union);
770 StaticRD->startDefinition();
771 for (const RecordDecl *TeamReductionRec : TeamsReductions) {
772 CanQualType RecTy = C.getCanonicalTagType(TeamReductionRec);
773 auto *Field = FieldDecl::Create(
774 C, StaticRD, SourceLocation(), SourceLocation(), nullptr, RecTy,
775 C.getTrivialTypeSourceInfo(RecTy, SourceLocation()),
776 /*BW=*/nullptr, /*Mutable=*/false,
777 /*InitStyle=*/ICIS_NoInit);
778 Field->setAccess(AS_public);
779 StaticRD->addDecl(Field);
780 }
781 StaticRD->completeDefinition();
782 CanQualType StaticTy = C.getCanonicalTagType(StaticRD);
783 llvm::Type *LLVMReductionsBufferTy =
784 CGM.getTypes().ConvertTypeForMem(StaticTy);
785 const auto &DL = CGM.getModule().getDataLayout();
786 uint64_t ReductionDataSize =
787 TeamsReductions.empty()
788 ? 0
789 : DL.getTypeAllocSize(LLVMReductionsBufferTy).getFixedValue();
790 CGBuilderTy &Bld = CGF.Builder;
791 OMPBuilder.createTargetDeinit(Bld, ReductionDataSize,
792 C.getLangOpts().OpenMPCUDAReductionBufNum);
793 TeamsReductions.clear();
794}
795
796void CGOpenMPRuntimeGPU::emitSPMDKernel(const OMPExecutableDirective &D,
797 StringRef ParentName,
798 llvm::Function *&OutlinedFn,
799 llvm::Constant *&OutlinedFnID,
800 bool IsOffloadEntry,
801 const RegionCodeGenTy &CodeGen) {
802 ExecutionRuntimeModesRAII ModeRAII(CurrentExecutionMode, EM_SPMD);
803 EntryFunctionState EST;
804
805 bool IsBareKernel = D.getSingleClause<OMPXBareClause>();
806
807 // Emit target region as a standalone region.
808 class NVPTXPrePostActionTy : public PrePostActionTy {
809 CGOpenMPRuntimeGPU &RT;
810 CGOpenMPRuntimeGPU::EntryFunctionState &EST;
811 bool IsBareKernel;
812 DataSharingMode Mode;
813 const OMPExecutableDirective &D;
814
815 public:
816 NVPTXPrePostActionTy(CGOpenMPRuntimeGPU &RT,
817 CGOpenMPRuntimeGPU::EntryFunctionState &EST,
818 bool IsBareKernel, const OMPExecutableDirective &D)
819 : RT(RT), EST(EST), IsBareKernel(IsBareKernel),
820 Mode(RT.CurrentDataSharingMode), D(D) {}
821 void Enter(CodeGenFunction &CGF) override {
822 if (IsBareKernel) {
823 RT.CurrentDataSharingMode = DataSharingMode::DS_CUDA;
824 return;
825 }
826 RT.emitKernelInit(D, CGF, EST, /* IsSPMD */ true);
827 // Skip target region initialization.
828 RT.setLocThreadIdInsertPt(CGF, /*AtCurrentPoint=*/true);
829 }
830 void Exit(CodeGenFunction &CGF) override {
831 if (IsBareKernel) {
832 RT.CurrentDataSharingMode = Mode;
833 return;
834 }
835 RT.clearLocThreadIdInsertPt(CGF);
836 RT.emitKernelDeinit(CGF, EST, /* IsSPMD */ true);
837 }
838 } Action(*this, EST, IsBareKernel, D);
839 CodeGen.setAction(Action);
840 IsInTTDRegion = true;
841 emitTargetOutlinedFunctionHelper(D, ParentName, OutlinedFn, OutlinedFnID,
842 IsOffloadEntry, CodeGen);
843 IsInTTDRegion = false;
844}
845
846void CGOpenMPRuntimeGPU::emitTargetOutlinedFunction(
847 const OMPExecutableDirective &D, StringRef ParentName,
848 llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID,
849 bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) {
850 if (!IsOffloadEntry) // Nothing to do.
851 return;
852
853 assert(!ParentName.empty() && "Invalid target region parent name!");
854
855 bool Mode = supportsSPMDExecutionMode(CGM.getContext(), D);
856 bool IsBareKernel = D.getSingleClause<OMPXBareClause>();
857 if (Mode || IsBareKernel)
858 emitSPMDKernel(D, ParentName, OutlinedFn, OutlinedFnID, IsOffloadEntry,
859 CodeGen);
860 else
861 emitNonSPMDKernel(D, ParentName, OutlinedFn, OutlinedFnID, IsOffloadEntry,
862 CodeGen);
863}
864
867 llvm::OpenMPIRBuilderConfig Config(
868 CGM.getLangOpts().OpenMPIsTargetDevice, isGPU(),
869 CGM.getLangOpts().OpenMPOffloadMandatory,
870 /*HasRequiresReverseOffload*/ false, /*HasRequiresUnifiedAddress*/ false,
871 hasRequiresUnifiedSharedMemory(), /*HasRequiresDynamicAllocators*/ false);
872 OMPBuilder.setConfig(Config);
873
874 if (!CGM.getLangOpts().OpenMPIsTargetDevice)
875 llvm_unreachable("OpenMP can only handle device code.");
876
877 if (CGM.getLangOpts().OpenMPCUDAMode)
878 CurrentDataSharingMode = CGOpenMPRuntimeGPU::DS_CUDA;
879
880 llvm::OpenMPIRBuilder &OMPBuilder = getOMPBuilder();
881 if (CGM.getLangOpts().NoGPULib || CGM.getLangOpts().OMPHostIRFile.empty())
882 return;
883
884 OMPBuilder.createGlobalFlag(CGM.getLangOpts().OpenMPTargetDebug,
885 "__omp_rtl_debug_kind");
886 OMPBuilder.createGlobalFlag(CGM.getLangOpts().OpenMPTeamSubscription,
887 "__omp_rtl_assume_teams_oversubscription");
888 OMPBuilder.createGlobalFlag(CGM.getLangOpts().OpenMPThreadSubscription,
889 "__omp_rtl_assume_threads_oversubscription");
890 OMPBuilder.createGlobalFlag(CGM.getLangOpts().OpenMPNoThreadState,
891 "__omp_rtl_assume_no_thread_state");
892 OMPBuilder.createGlobalFlag(CGM.getLangOpts().OpenMPNoNestedParallelism,
893 "__omp_rtl_assume_no_nested_parallelism");
894}
895
897 ProcBindKind ProcBind,
898 SourceLocation Loc) {
899 // Nothing to do.
900}
901
903 const Expr *Message,
904 SourceLocation Loc) {
905 CGM.getDiags().Report(Loc, diag::warn_omp_gpu_unsupported_clause)
906 << getOpenMPClauseName(OMPC_message);
907 return nullptr;
908}
909
910llvm::Value *
912 SourceLocation Loc) {
913 CGM.getDiags().Report(Loc, diag::warn_omp_gpu_unsupported_clause)
914 << getOpenMPClauseName(OMPC_severity);
915 return nullptr;
916}
917
919 CodeGenFunction &CGF, llvm::Value *NumThreads, SourceLocation Loc,
921 SourceLocation SeverityLoc, const Expr *Message,
922 SourceLocation MessageLoc) {
923 if (Modifier == OMPC_NUMTHREADS_strict) {
924 CGM.getDiags().Report(Loc,
925 diag::warn_omp_gpu_unsupported_modifier_for_clause)
926 << "strict" << getOpenMPClauseName(OMPC_num_threads);
927 return;
928 }
929
930 // Nothing to do.
931}
932
934 const Expr *NumTeams,
935 const Expr *ThreadLimit,
936 SourceLocation Loc) {}
937
940 const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind,
941 const RegionCodeGenTy &CodeGen) {
942 // Emit target region as a standalone region.
943 bool PrevIsInTTDRegion = IsInTTDRegion;
944 IsInTTDRegion = false;
945 auto *OutlinedFun =
947 CGF, D, ThreadIDVar, InnermostKind, CodeGen));
948 IsInTTDRegion = PrevIsInTTDRegion;
949 if (getExecutionMode() != CGOpenMPRuntimeGPU::EM_SPMD) {
950 llvm::Function *WrapperFun =
951 createParallelDataSharingWrapper(OutlinedFun, D);
952 WrapperFunctionsMap[OutlinedFun] = WrapperFun;
953 }
954
955 return OutlinedFun;
956}
957
958/// Get list of lastprivate variables from the teams distribute ... or
959/// teams {distribute ...} directives.
960static void
963 assert(isOpenMPTeamsDirective(D.getDirectiveKind()) &&
964 "expected teams directive.");
965 const OMPExecutableDirective *Dir = &D;
966 if (!isOpenMPDistributeDirective(D.getDirectiveKind())) {
968 Ctx,
969 D.getInnermostCapturedStmt()->getCapturedStmt()->IgnoreContainers(
970 /*IgnoreCaptured=*/true))) {
971 Dir = dyn_cast_or_null<OMPExecutableDirective>(S);
972 if (Dir && !isOpenMPDistributeDirective(Dir->getDirectiveKind()))
973 Dir = nullptr;
974 }
975 }
976 if (!Dir)
977 return;
978 for (const auto *C : Dir->getClausesOfKind<OMPLastprivateClause>()) {
979 for (const Expr *E : C->getVarRefs())
980 Vars.push_back(getPrivateItem(E));
981 }
982}
983
984/// Get list of reduction variables from the teams ... directives.
985static void
988 assert(isOpenMPTeamsDirective(D.getDirectiveKind()) &&
989 "expected teams directive.");
990 for (const auto *C : D.getClausesOfKind<OMPReductionClause>()) {
991 for (const Expr *E : C->privates())
992 Vars.push_back(getPrivateItem(E));
993 }
994}
995
998 const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind,
999 const RegionCodeGenTy &CodeGen) {
1000 SourceLocation Loc = D.getBeginLoc();
1001
1002 const RecordDecl *GlobalizedRD = nullptr;
1003 llvm::SmallVector<const ValueDecl *, 4> LastPrivatesReductions;
1004 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *> MappedDeclsFields;
1005 unsigned WarpSize = CGM.getTarget().getGridValue().GV_Warp_Size;
1006 // Globalize team reductions variable unconditionally in all modes.
1007 if (getExecutionMode() != CGOpenMPRuntimeGPU::EM_SPMD)
1008 getTeamsReductionVars(CGM.getContext(), D, LastPrivatesReductions);
1009 if (getExecutionMode() == CGOpenMPRuntimeGPU::EM_SPMD) {
1010 getDistributeLastprivateVars(CGM.getContext(), D, LastPrivatesReductions);
1011 if (!LastPrivatesReductions.empty()) {
1012 GlobalizedRD = ::buildRecordForGlobalizedVars(
1013 CGM.getContext(), {}, LastPrivatesReductions, MappedDeclsFields,
1014 WarpSize);
1015 }
1016 } else if (!LastPrivatesReductions.empty()) {
1017 assert(!TeamAndReductions.first &&
1018 "Previous team declaration is not expected.");
1019 TeamAndReductions.first = D.getCapturedStmt(OMPD_teams)->getCapturedDecl();
1020 std::swap(TeamAndReductions.second, LastPrivatesReductions);
1021 }
1022
1023 // Emit target region as a standalone region.
1024 class NVPTXPrePostActionTy : public PrePostActionTy {
1025 SourceLocation &Loc;
1026 const RecordDecl *GlobalizedRD;
1027 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *>
1028 &MappedDeclsFields;
1029
1030 public:
1031 NVPTXPrePostActionTy(
1032 SourceLocation &Loc, const RecordDecl *GlobalizedRD,
1033 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *>
1034 &MappedDeclsFields)
1035 : Loc(Loc), GlobalizedRD(GlobalizedRD),
1036 MappedDeclsFields(MappedDeclsFields) {}
1037 void Enter(CodeGenFunction &CGF) override {
1038 auto &Rt =
1039 static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime());
1040 if (GlobalizedRD) {
1041 auto I = Rt.FunctionGlobalizedDecls.try_emplace(CGF.CurFn).first;
1042 I->getSecond().MappedParams =
1043 std::make_unique<CodeGenFunction::OMPMapVars>();
1044 DeclToAddrMapTy &Data = I->getSecond().LocalVarData;
1045 for (const auto &Pair : MappedDeclsFields) {
1046 assert(Pair.getFirst()->isCanonicalDecl() &&
1047 "Expected canonical declaration");
1048 Data.try_emplace(Pair.getFirst());
1049 }
1050 }
1051 Rt.emitGenericVarsProlog(CGF, Loc);
1052 }
1053 void Exit(CodeGenFunction &CGF) override {
1054 static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime())
1055 .emitGenericVarsEpilog(CGF);
1056 }
1057 } Action(Loc, GlobalizedRD, MappedDeclsFields);
1058 CodeGen.setAction(Action);
1059 llvm::Function *OutlinedFun = CGOpenMPRuntime::emitTeamsOutlinedFunction(
1060 CGF, D, ThreadIDVar, InnermostKind, CodeGen);
1061
1062 return OutlinedFun;
1063}
1064
1065void CGOpenMPRuntimeGPU::emitGenericVarsProlog(CodeGenFunction &CGF,
1066 SourceLocation Loc) {
1067 if (getDataSharingMode() != CGOpenMPRuntimeGPU::DS_Generic)
1068 return;
1069
1070 CGBuilderTy &Bld = CGF.Builder;
1071
1072 const auto I = FunctionGlobalizedDecls.find(CGF.CurFn);
1073 if (I == FunctionGlobalizedDecls.end())
1074 return;
1075
1076 for (auto &Rec : I->getSecond().LocalVarData) {
1077 const auto *VD = cast<VarDecl>(Rec.first);
1078 bool EscapedParam = I->getSecond().EscapedParameters.count(Rec.first);
1079 QualType VarTy = VD->getType();
1080
1081 // Get the local allocation of a firstprivate variable before sharing
1082 llvm::Value *ParValue;
1083 if (EscapedParam) {
1084 LValue ParLVal =
1085 CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(VD), VD->getType());
1086 ParValue = CGF.EmitLoadOfScalar(ParLVal, Loc);
1087 }
1088
1089 // Allocate space for the variable to be globalized
1090 llvm::Value *AllocArgs[] = {CGF.getTypeSize(VD->getType())};
1091 llvm::CallBase *VoidPtr =
1092 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1093 CGM.getModule(), OMPRTL___kmpc_alloc_shared),
1094 AllocArgs, VD->getName());
1095 // FIXME: We should use the variables actual alignment as an argument.
1096 VoidPtr->addRetAttr(llvm::Attribute::get(
1097 CGM.getLLVMContext(), llvm::Attribute::Alignment,
1099
1100 // Cast the void pointer and get the address of the globalized variable.
1101 llvm::Value *CastedVoidPtr = Bld.CreatePointerBitCastOrAddrSpaceCast(
1102 VoidPtr, Bld.getPtrTy(0), VD->getName() + "_on_stack");
1103 LValue VarAddr =
1104 CGF.MakeNaturalAlignPointeeRawAddrLValue(CastedVoidPtr, VarTy);
1105 Rec.second.PrivateAddr = VarAddr.getAddress();
1106 Rec.second.GlobalizedVal = VoidPtr;
1107
1108 // Assign the local allocation to the newly globalized location.
1109 if (EscapedParam) {
1110 CGF.EmitStoreOfScalar(ParValue, VarAddr);
1111 I->getSecond().MappedParams->setVarAddr(CGF, VD, VarAddr.getAddress());
1112 }
1113 if (auto *DI = CGF.getDebugInfo())
1114 VoidPtr->setDebugLoc(DI->SourceLocToDebugLoc(VD->getLocation()));
1115 }
1116
1117 for (const auto *ValueD : I->getSecond().EscapedVariableLengthDecls) {
1118 const auto *VD = cast<VarDecl>(ValueD);
1119 std::pair<llvm::Value *, llvm::Value *> AddrSizePair =
1120 getKmpcAllocShared(CGF, VD);
1121 I->getSecond().EscapedVariableLengthDeclsAddrs.emplace_back(AddrSizePair);
1122 LValue Base = CGF.MakeAddrLValue(AddrSizePair.first, VD->getType(),
1123 CGM.getContext().getDeclAlign(VD),
1125 I->getSecond().MappedParams->setVarAddr(CGF, VD, Base.getAddress());
1126 }
1127 I->getSecond().MappedParams->apply(CGF);
1128}
1129
1131 const VarDecl *VD) const {
1132 const auto I = FunctionGlobalizedDecls.find(CGF.CurFn);
1133 if (I == FunctionGlobalizedDecls.end())
1134 return false;
1135
1136 // Check variable declaration is delayed:
1137 return llvm::is_contained(I->getSecond().DelayedVariableLengthDecls, VD);
1138}
1139
1140std::pair<llvm::Value *, llvm::Value *>
1142 const VarDecl *VD) {
1143 CGBuilderTy &Bld = CGF.Builder;
1144
1145 // Compute size and alignment.
1146 llvm::Value *Size = CGF.getTypeSize(VD->getType());
1147 CharUnits Align = CGM.getContext().getDeclAlign(VD);
1148 Size = Bld.CreateNUWAdd(
1149 Size, llvm::ConstantInt::get(CGF.SizeTy, Align.getQuantity() - 1));
1150 llvm::Value *AlignVal =
1151 llvm::ConstantInt::get(CGF.SizeTy, Align.getQuantity());
1152 Size = Bld.CreateUDiv(Size, AlignVal);
1153 Size = Bld.CreateNUWMul(Size, AlignVal);
1154
1155 // Allocate space for this VLA object to be globalized.
1156 llvm::Value *AllocArgs[] = {Size};
1157 llvm::CallBase *VoidPtr =
1158 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1159 CGM.getModule(), OMPRTL___kmpc_alloc_shared),
1160 AllocArgs, VD->getName());
1161 VoidPtr->addRetAttr(llvm::Attribute::get(
1162 CGM.getLLVMContext(), llvm::Attribute::Alignment, Align.getQuantity()));
1163
1164 return std::make_pair(VoidPtr, Size);
1165}
1166
1168 CodeGenFunction &CGF,
1169 const std::pair<llvm::Value *, llvm::Value *> &AddrSizePair) {
1170 // Deallocate the memory for each globalized VLA object
1171 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1172 CGM.getModule(), OMPRTL___kmpc_free_shared),
1173 {AddrSizePair.first, AddrSizePair.second});
1174}
1175
1176void CGOpenMPRuntimeGPU::emitGenericVarsEpilog(CodeGenFunction &CGF) {
1177 if (getDataSharingMode() != CGOpenMPRuntimeGPU::DS_Generic)
1178 return;
1179
1180 const auto I = FunctionGlobalizedDecls.find(CGF.CurFn);
1181 if (I != FunctionGlobalizedDecls.end()) {
1182 // Deallocate the memory for each globalized VLA object that was
1183 // globalized in the prolog (i.e. emitGenericVarsProlog).
1184 for (const auto &AddrSizePair :
1185 llvm::reverse(I->getSecond().EscapedVariableLengthDeclsAddrs)) {
1186 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1187 CGM.getModule(), OMPRTL___kmpc_free_shared),
1188 {AddrSizePair.first, AddrSizePair.second});
1189 }
1190 // Deallocate the memory for each globalized value
1191 for (auto &Rec : llvm::reverse(I->getSecond().LocalVarData)) {
1192 const auto *VD = cast<VarDecl>(Rec.first);
1193 I->getSecond().MappedParams->restore(CGF);
1194
1195 llvm::Value *FreeArgs[] = {Rec.second.GlobalizedVal,
1196 CGF.getTypeSize(VD->getType())};
1197 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1198 CGM.getModule(), OMPRTL___kmpc_free_shared),
1199 FreeArgs);
1200 }
1201 }
1202}
1203
1205 const OMPExecutableDirective &D,
1206 SourceLocation Loc,
1207 llvm::Function *OutlinedFn,
1208 ArrayRef<llvm::Value *> CapturedVars) {
1209 if (!CGF.HaveInsertPoint())
1210 return;
1211
1212 bool IsBareKernel = D.getSingleClause<OMPXBareClause>();
1213
1215 /*Name=*/".zero.addr");
1216 CGF.Builder.CreateStore(CGF.Builder.getInt32(/*C*/ 0), ZeroAddr);
1218 // We don't emit any thread id function call in bare kernel, but because the
1219 // outlined function has a pointer argument, we emit a nullptr here.
1220 if (IsBareKernel)
1221 OutlinedFnArgs.push_back(llvm::ConstantPointerNull::get(CGM.VoidPtrTy));
1222 else
1223 OutlinedFnArgs.push_back(emitThreadIDAddress(CGF, Loc).emitRawPointer(CGF));
1224 OutlinedFnArgs.push_back(ZeroAddr.getPointer());
1225 OutlinedFnArgs.append(CapturedVars.begin(), CapturedVars.end());
1226 emitOutlinedFunctionCall(CGF, Loc, OutlinedFn, OutlinedFnArgs);
1227}
1228
1230 CodeGenFunction &CGF, SourceLocation Loc, llvm::Function *OutlinedFn,
1231 ArrayRef<llvm::Value *> CapturedVars, const Expr *IfCond,
1232 llvm::Value *NumThreads, OpenMPNumThreadsClauseModifier NumThreadsModifier,
1233 OpenMPSeverityClauseKind Severity, const Expr *Message) {
1234 if (!CGF.HaveInsertPoint())
1235 return;
1236
1237 auto &&ParallelGen = [this, Loc, OutlinedFn, CapturedVars, IfCond,
1238 NumThreads](CodeGenFunction &CGF,
1239 PrePostActionTy &Action) {
1240 CGBuilderTy &Bld = CGF.Builder;
1241 llvm::Value *NumThreadsVal = NumThreads;
1242 llvm::Function *WFn = WrapperFunctionsMap[OutlinedFn];
1243 llvm::Value *ID = llvm::ConstantPointerNull::get(CGM.Int8PtrTy);
1244 if (WFn)
1245 ID = Bld.CreateBitOrPointerCast(WFn, CGM.Int8PtrTy);
1246 llvm::Value *FnPtr = Bld.CreateBitOrPointerCast(OutlinedFn, CGM.Int8PtrTy);
1247
1248 // Create a private scope that will globalize the arguments
1249 // passed from the outside of the target region.
1250 // TODO: Is that needed?
1251 CodeGenFunction::OMPPrivateScope PrivateArgScope(CGF);
1252
1253 Address CapturedVarsAddrs = CGF.CreateDefaultAlignTempAlloca(
1254 llvm::ArrayType::get(CGM.VoidPtrTy, CapturedVars.size()),
1255 "captured_vars_addrs");
1256 // There's something to share.
1257 if (!CapturedVars.empty()) {
1258 // Prepare for parallel region. Indicate the outlined function.
1259 ASTContext &Ctx = CGF.getContext();
1260 unsigned Idx = 0;
1261 for (llvm::Value *V : CapturedVars) {
1262 Address Dst = Bld.CreateConstArrayGEP(CapturedVarsAddrs, Idx);
1263 llvm::Value *PtrV;
1264 if (V->getType()->isIntegerTy())
1265 PtrV = Bld.CreateIntToPtr(V, CGF.VoidPtrTy);
1266 else
1268 CGF.EmitStoreOfScalar(PtrV, Dst, /*Volatile=*/false,
1269 Ctx.getPointerType(Ctx.VoidPtrTy));
1270 ++Idx;
1271 }
1272 }
1273
1274 llvm::Value *IfCondVal = nullptr;
1275 if (IfCond)
1276 IfCondVal = Bld.CreateIntCast(CGF.EvaluateExprAsBool(IfCond), CGF.Int32Ty,
1277 /* isSigned */ false);
1278 else
1279 IfCondVal = llvm::ConstantInt::get(CGF.Int32Ty, 1);
1280
1281 if (!NumThreadsVal)
1282 NumThreadsVal = llvm::ConstantInt::get(CGF.Int32Ty, -1);
1283 else
1284 NumThreadsVal = Bld.CreateZExtOrTrunc(NumThreadsVal, CGF.Int32Ty);
1285
1286 assert(IfCondVal && "Expected a value");
1287 llvm::Value *RTLoc = emitUpdateLocation(CGF, Loc);
1288 llvm::Value *Args[] = {
1289 RTLoc,
1290 getThreadID(CGF, Loc),
1291 IfCondVal,
1292 NumThreadsVal,
1293 llvm::ConstantInt::get(CGF.Int32Ty, -1),
1294 FnPtr,
1295 ID,
1296 Bld.CreateBitOrPointerCast(CapturedVarsAddrs.emitRawPointer(CGF),
1297 CGF.VoidPtrPtrTy),
1298 llvm::ConstantInt::get(CGM.SizeTy, CapturedVars.size())};
1299 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1300 CGM.getModule(), OMPRTL___kmpc_parallel_51),
1301 Args);
1302 };
1303
1304 RegionCodeGenTy RCG(ParallelGen);
1305 RCG(CGF);
1306}
1307
1308void CGOpenMPRuntimeGPU::syncCTAThreads(CodeGenFunction &CGF) {
1309 // Always emit simple barriers!
1310 if (!CGF.HaveInsertPoint())
1311 return;
1312 // Build call __kmpc_barrier_simple_spmd(nullptr, 0);
1313 // This function does not use parameters, so we can emit just default values.
1314 llvm::Value *Args[] = {
1315 llvm::ConstantPointerNull::get(
1317 llvm::ConstantInt::get(CGF.Int32Ty, /*V=*/0, /*isSigned=*/true)};
1318 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1319 CGM.getModule(), OMPRTL___kmpc_barrier_simple_spmd),
1320 Args);
1321}
1322
1324 SourceLocation Loc,
1325 OpenMPDirectiveKind Kind, bool,
1326 bool) {
1327 // Always emit simple barriers!
1328 if (!CGF.HaveInsertPoint())
1329 return;
1330 // Build call __kmpc_cancel_barrier(loc, thread_id);
1331 unsigned Flags = getDefaultFlagsForBarriers(Kind);
1332 llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc, Flags),
1333 getThreadID(CGF, Loc)};
1334
1335 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1336 CGM.getModule(), OMPRTL___kmpc_barrier),
1337 Args);
1338}
1339
1341 CodeGenFunction &CGF, StringRef CriticalName,
1342 const RegionCodeGenTy &CriticalOpGen, SourceLocation Loc,
1343 const Expr *Hint) {
1344 llvm::BasicBlock *LoopBB = CGF.createBasicBlock("omp.critical.loop");
1345 llvm::BasicBlock *TestBB = CGF.createBasicBlock("omp.critical.test");
1346 llvm::BasicBlock *SyncBB = CGF.createBasicBlock("omp.critical.sync");
1347 llvm::BasicBlock *BodyBB = CGF.createBasicBlock("omp.critical.body");
1348 llvm::BasicBlock *ExitBB = CGF.createBasicBlock("omp.critical.exit");
1349
1350 auto &RT = static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime());
1351
1352 // Get the mask of active threads in the warp.
1353 llvm::Value *Mask = CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1354 CGM.getModule(), OMPRTL___kmpc_warp_active_thread_mask));
1355 // Fetch team-local id of the thread.
1356 llvm::Value *ThreadID = RT.getGPUThreadID(CGF);
1357
1358 // Get the width of the team.
1359 llvm::Value *TeamWidth = RT.getGPUNumThreads(CGF);
1360
1361 // Initialize the counter variable for the loop.
1362 QualType Int32Ty =
1363 CGF.getContext().getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/0);
1364 Address Counter = CGF.CreateMemTemp(Int32Ty, "critical_counter");
1365 LValue CounterLVal = CGF.MakeAddrLValue(Counter, Int32Ty);
1366 CGF.EmitStoreOfScalar(llvm::Constant::getNullValue(CGM.Int32Ty), CounterLVal,
1367 /*isInit=*/true);
1368
1369 // Block checks if loop counter exceeds upper bound.
1370 CGF.EmitBlock(LoopBB);
1371 llvm::Value *CounterVal = CGF.EmitLoadOfScalar(CounterLVal, Loc);
1372 llvm::Value *CmpLoopBound = CGF.Builder.CreateICmpSLT(CounterVal, TeamWidth);
1373 CGF.Builder.CreateCondBr(CmpLoopBound, TestBB, ExitBB);
1374
1375 // Block tests which single thread should execute region, and which threads
1376 // should go straight to synchronisation point.
1377 CGF.EmitBlock(TestBB);
1378 CounterVal = CGF.EmitLoadOfScalar(CounterLVal, Loc);
1379 llvm::Value *CmpThreadToCounter =
1380 CGF.Builder.CreateICmpEQ(ThreadID, CounterVal);
1381 CGF.Builder.CreateCondBr(CmpThreadToCounter, BodyBB, SyncBB);
1382
1383 // Block emits the body of the critical region.
1384 CGF.EmitBlock(BodyBB);
1385
1386 // Output the critical statement.
1387 CGOpenMPRuntime::emitCriticalRegion(CGF, CriticalName, CriticalOpGen, Loc,
1388 Hint);
1389
1390 // After the body surrounded by the critical region, the single executing
1391 // thread will jump to the synchronisation point.
1392 // Block waits for all threads in current team to finish then increments the
1393 // counter variable and returns to the loop.
1394 CGF.EmitBlock(SyncBB);
1395 // Reconverge active threads in the warp.
1396 (void)CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1397 CGM.getModule(), OMPRTL___kmpc_syncwarp),
1398 Mask);
1399
1400 llvm::Value *IncCounterVal =
1401 CGF.Builder.CreateNSWAdd(CounterVal, CGF.Builder.getInt32(1));
1402 CGF.EmitStoreOfScalar(IncCounterVal, CounterLVal);
1403 CGF.EmitBranch(LoopBB);
1404
1405 // Block that is reached when all threads in the team complete the region.
1406 CGF.EmitBlock(ExitBB, /*IsFinished=*/true);
1407}
1408
1409/// Cast value to the specified type.
1410static llvm::Value *castValueToType(CodeGenFunction &CGF, llvm::Value *Val,
1411 QualType ValTy, QualType CastTy,
1412 SourceLocation Loc) {
1413 assert(!CGF.getContext().getTypeSizeInChars(CastTy).isZero() &&
1414 "Cast type must sized.");
1415 assert(!CGF.getContext().getTypeSizeInChars(ValTy).isZero() &&
1416 "Val type must sized.");
1417 llvm::Type *LLVMCastTy = CGF.ConvertTypeForMem(CastTy);
1418 if (ValTy == CastTy)
1419 return Val;
1420 if (CGF.getContext().getTypeSizeInChars(ValTy) ==
1421 CGF.getContext().getTypeSizeInChars(CastTy))
1422 return CGF.Builder.CreateBitCast(Val, LLVMCastTy);
1423 if (CastTy->isIntegerType() && ValTy->isIntegerType())
1424 return CGF.Builder.CreateIntCast(Val, LLVMCastTy,
1426 Address CastItem = CGF.CreateMemTemp(CastTy);
1427 Address ValCastItem = CastItem.withElementType(Val->getType());
1428 CGF.EmitStoreOfScalar(Val, ValCastItem, /*Volatile=*/false, ValTy,
1430 TBAAAccessInfo());
1431 return CGF.EmitLoadOfScalar(CastItem, /*Volatile=*/false, CastTy, Loc,
1433 TBAAAccessInfo());
1434}
1435
1436///
1437/// Design of OpenMP reductions on the GPU
1438///
1439/// Consider a typical OpenMP program with one or more reduction
1440/// clauses:
1441///
1442/// float foo;
1443/// double bar;
1444/// #pragma omp target teams distribute parallel for \
1445/// reduction(+:foo) reduction(*:bar)
1446/// for (int i = 0; i < N; i++) {
1447/// foo += A[i]; bar *= B[i];
1448/// }
1449///
1450/// where 'foo' and 'bar' are reduced across all OpenMP threads in
1451/// all teams. In our OpenMP implementation on the NVPTX device an
1452/// OpenMP team is mapped to a CUDA threadblock and OpenMP threads
1453/// within a team are mapped to CUDA threads within a threadblock.
1454/// Our goal is to efficiently aggregate values across all OpenMP
1455/// threads such that:
1456///
1457/// - the compiler and runtime are logically concise, and
1458/// - the reduction is performed efficiently in a hierarchical
1459/// manner as follows: within OpenMP threads in the same warp,
1460/// across warps in a threadblock, and finally across teams on
1461/// the NVPTX device.
1462///
1463/// Introduction to Decoupling
1464///
1465/// We would like to decouple the compiler and the runtime so that the
1466/// latter is ignorant of the reduction variables (number, data types)
1467/// and the reduction operators. This allows a simpler interface
1468/// and implementation while still attaining good performance.
1469///
1470/// Pseudocode for the aforementioned OpenMP program generated by the
1471/// compiler is as follows:
1472///
1473/// 1. Create private copies of reduction variables on each OpenMP
1474/// thread: 'foo_private', 'bar_private'
1475/// 2. Each OpenMP thread reduces the chunk of 'A' and 'B' assigned
1476/// to it and writes the result in 'foo_private' and 'bar_private'
1477/// respectively.
1478/// 3. Call the OpenMP runtime on the GPU to reduce within a team
1479/// and store the result on the team master:
1480///
1481/// __kmpc_nvptx_parallel_reduce_nowait_v2(...,
1482/// reduceData, shuffleReduceFn, interWarpCpyFn)
1483///
1484/// where:
1485/// struct ReduceData {
1486/// double *foo;
1487/// double *bar;
1488/// } reduceData
1489/// reduceData.foo = &foo_private
1490/// reduceData.bar = &bar_private
1491///
1492/// 'shuffleReduceFn' and 'interWarpCpyFn' are pointers to two
1493/// auxiliary functions generated by the compiler that operate on
1494/// variables of type 'ReduceData'. They aid the runtime perform
1495/// algorithmic steps in a data agnostic manner.
1496///
1497/// 'shuffleReduceFn' is a pointer to a function that reduces data
1498/// of type 'ReduceData' across two OpenMP threads (lanes) in the
1499/// same warp. It takes the following arguments as input:
1500///
1501/// a. variable of type 'ReduceData' on the calling lane,
1502/// b. its lane_id,
1503/// c. an offset relative to the current lane_id to generate a
1504/// remote_lane_id. The remote lane contains the second
1505/// variable of type 'ReduceData' that is to be reduced.
1506/// d. an algorithm version parameter determining which reduction
1507/// algorithm to use.
1508///
1509/// 'shuffleReduceFn' retrieves data from the remote lane using
1510/// efficient GPU shuffle intrinsics and reduces, using the
1511/// algorithm specified by the 4th parameter, the two operands
1512/// element-wise. The result is written to the first operand.
1513///
1514/// Different reduction algorithms are implemented in different
1515/// runtime functions, all calling 'shuffleReduceFn' to perform
1516/// the essential reduction step. Therefore, based on the 4th
1517/// parameter, this function behaves slightly differently to
1518/// cooperate with the runtime to ensure correctness under
1519/// different circumstances.
1520///
1521/// 'InterWarpCpyFn' is a pointer to a function that transfers
1522/// reduced variables across warps. It tunnels, through CUDA
1523/// shared memory, the thread-private data of type 'ReduceData'
1524/// from lane 0 of each warp to a lane in the first warp.
1525/// 4. Call the OpenMP runtime on the GPU to reduce across teams.
1526/// The last team writes the global reduced value to memory.
1527///
1528/// ret = __kmpc_nvptx_teams_reduce_nowait(...,
1529/// reduceData, shuffleReduceFn, interWarpCpyFn,
1530/// scratchpadCopyFn, loadAndReduceFn)
1531///
1532/// 'scratchpadCopyFn' is a helper that stores reduced
1533/// data from the team master to a scratchpad array in
1534/// global memory.
1535///
1536/// 'loadAndReduceFn' is a helper that loads data from
1537/// the scratchpad array and reduces it with the input
1538/// operand.
1539///
1540/// These compiler generated functions hide address
1541/// calculation and alignment information from the runtime.
1542/// 5. if ret == 1:
1543/// The team master of the last team stores the reduced
1544/// result to the globals in memory.
1545/// foo += reduceData.foo; bar *= reduceData.bar
1546///
1547///
1548/// Warp Reduction Algorithms
1549///
1550/// On the warp level, we have three algorithms implemented in the
1551/// OpenMP runtime depending on the number of active lanes:
1552///
1553/// Full Warp Reduction
1554///
1555/// The reduce algorithm within a warp where all lanes are active
1556/// is implemented in the runtime as follows:
1557///
1558/// full_warp_reduce(void *reduce_data,
1559/// kmp_ShuffleReductFctPtr ShuffleReduceFn) {
1560/// for (int offset = WARPSIZE/2; offset > 0; offset /= 2)
1561/// ShuffleReduceFn(reduce_data, 0, offset, 0);
1562/// }
1563///
1564/// The algorithm completes in log(2, WARPSIZE) steps.
1565///
1566/// 'ShuffleReduceFn' is used here with lane_id set to 0 because it is
1567/// not used therefore we save instructions by not retrieving lane_id
1568/// from the corresponding special registers. The 4th parameter, which
1569/// represents the version of the algorithm being used, is set to 0 to
1570/// signify full warp reduction.
1571///
1572/// In this version, 'ShuffleReduceFn' behaves, per element, as follows:
1573///
1574/// #reduce_elem refers to an element in the local lane's data structure
1575/// #remote_elem is retrieved from a remote lane
1576/// remote_elem = shuffle_down(reduce_elem, offset, WARPSIZE);
1577/// reduce_elem = reduce_elem REDUCE_OP remote_elem;
1578///
1579/// Contiguous Partial Warp Reduction
1580///
1581/// This reduce algorithm is used within a warp where only the first
1582/// 'n' (n <= WARPSIZE) lanes are active. It is typically used when the
1583/// number of OpenMP threads in a parallel region is not a multiple of
1584/// WARPSIZE. The algorithm is implemented in the runtime as follows:
1585///
1586/// void
1587/// contiguous_partial_reduce(void *reduce_data,
1588/// kmp_ShuffleReductFctPtr ShuffleReduceFn,
1589/// int size, int lane_id) {
1590/// int curr_size;
1591/// int offset;
1592/// curr_size = size;
1593/// mask = curr_size/2;
1594/// while (offset>0) {
1595/// ShuffleReduceFn(reduce_data, lane_id, offset, 1);
1596/// curr_size = (curr_size+1)/2;
1597/// offset = curr_size/2;
1598/// }
1599/// }
1600///
1601/// In this version, 'ShuffleReduceFn' behaves, per element, as follows:
1602///
1603/// remote_elem = shuffle_down(reduce_elem, offset, WARPSIZE);
1604/// if (lane_id < offset)
1605/// reduce_elem = reduce_elem REDUCE_OP remote_elem
1606/// else
1607/// reduce_elem = remote_elem
1608///
1609/// This algorithm assumes that the data to be reduced are located in a
1610/// contiguous subset of lanes starting from the first. When there is
1611/// an odd number of active lanes, the data in the last lane is not
1612/// aggregated with any other lane's dat but is instead copied over.
1613///
1614/// Dispersed Partial Warp Reduction
1615///
1616/// This algorithm is used within a warp when any discontiguous subset of
1617/// lanes are active. It is used to implement the reduction operation
1618/// across lanes in an OpenMP simd region or in a nested parallel region.
1619///
1620/// void
1621/// dispersed_partial_reduce(void *reduce_data,
1622/// kmp_ShuffleReductFctPtr ShuffleReduceFn) {
1623/// int size, remote_id;
1624/// int logical_lane_id = number_of_active_lanes_before_me() * 2;
1625/// do {
1626/// remote_id = next_active_lane_id_right_after_me();
1627/// # the above function returns 0 of no active lane
1628/// # is present right after the current lane.
1629/// size = number_of_active_lanes_in_this_warp();
1630/// logical_lane_id /= 2;
1631/// ShuffleReduceFn(reduce_data, logical_lane_id,
1632/// remote_id-1-threadIdx.x, 2);
1633/// } while (logical_lane_id % 2 == 0 && size > 1);
1634/// }
1635///
1636/// There is no assumption made about the initial state of the reduction.
1637/// Any number of lanes (>=1) could be active at any position. The reduction
1638/// result is returned in the first active lane.
1639///
1640/// In this version, 'ShuffleReduceFn' behaves, per element, as follows:
1641///
1642/// remote_elem = shuffle_down(reduce_elem, offset, WARPSIZE);
1643/// if (lane_id % 2 == 0 && offset > 0)
1644/// reduce_elem = reduce_elem REDUCE_OP remote_elem
1645/// else
1646/// reduce_elem = remote_elem
1647///
1648///
1649/// Intra-Team Reduction
1650///
1651/// This function, as implemented in the runtime call
1652/// '__kmpc_nvptx_parallel_reduce_nowait_v2', aggregates data across OpenMP
1653/// threads in a team. It first reduces within a warp using the
1654/// aforementioned algorithms. We then proceed to gather all such
1655/// reduced values at the first warp.
1656///
1657/// The runtime makes use of the function 'InterWarpCpyFn', which copies
1658/// data from each of the "warp master" (zeroth lane of each warp, where
1659/// warp-reduced data is held) to the zeroth warp. This step reduces (in
1660/// a mathematical sense) the problem of reduction across warp masters in
1661/// a block to the problem of warp reduction.
1662///
1663///
1664/// Inter-Team Reduction
1665///
1666/// Once a team has reduced its data to a single value, it is stored in
1667/// a global scratchpad array. Since each team has a distinct slot, this
1668/// can be done without locking.
1669///
1670/// The last team to write to the scratchpad array proceeds to reduce the
1671/// scratchpad array. One or more workers in the last team use the helper
1672/// 'loadAndReduceDataFn' to load and reduce values from the array, i.e.,
1673/// the k'th worker reduces every k'th element.
1674///
1675/// Finally, a call is made to '__kmpc_nvptx_parallel_reduce_nowait_v2' to
1676/// reduce across workers and compute a globally reduced value.
1677///
1681 ArrayRef<const Expr *> ReductionOps, ReductionOptionsTy Options) {
1682 if (!CGF.HaveInsertPoint())
1683 return;
1684
1685 bool ParallelReduction = isOpenMPParallelDirective(Options.ReductionKind);
1686 bool TeamsReduction = isOpenMPTeamsDirective(Options.ReductionKind);
1687
1688 ASTContext &C = CGM.getContext();
1689
1690 if (Options.SimpleReduction) {
1691 assert(!TeamsReduction && !ParallelReduction &&
1692 "Invalid reduction selection in emitReduction.");
1693 (void)ParallelReduction;
1694 CGOpenMPRuntime::emitReduction(CGF, Loc, Privates, LHSExprs, RHSExprs,
1695 ReductionOps, Options);
1696 return;
1697 }
1698
1699 llvm::SmallDenseMap<const ValueDecl *, const FieldDecl *> VarFieldMap;
1700 llvm::SmallVector<const ValueDecl *, 4> PrivatesReductions(Privates.size());
1701 int Cnt = 0;
1702 for (const Expr *DRE : Privates) {
1703 PrivatesReductions[Cnt] = cast<DeclRefExpr>(DRE)->getDecl();
1704 ++Cnt;
1705 }
1706 const RecordDecl *ReductionRec = ::buildRecordForGlobalizedVars(
1707 CGM.getContext(), PrivatesReductions, {}, VarFieldMap, 1);
1708
1709 if (TeamsReduction)
1710 TeamsReductions.push_back(ReductionRec);
1711
1712 // Source location for the ident struct
1713 llvm::Value *RTLoc = emitUpdateLocation(CGF, Loc);
1714
1715 using InsertPointTy = llvm::OpenMPIRBuilder::InsertPointTy;
1716 InsertPointTy AllocaIP(CGF.AllocaInsertPt->getParent(),
1717 CGF.AllocaInsertPt->getIterator());
1718 InsertPointTy CodeGenIP(CGF.Builder.GetInsertBlock(),
1719 CGF.Builder.GetInsertPoint());
1720 llvm::OpenMPIRBuilder::LocationDescription OmpLoc(
1721 CodeGenIP, CGF.SourceLocToDebugLoc(Loc));
1723
1725 unsigned Idx = 0;
1726 for (const Expr *Private : Privates) {
1727 llvm::Type *ElementType;
1728 llvm::Value *Variable;
1729 llvm::Value *PrivateVariable;
1730 llvm::OpenMPIRBuilder::ReductionGenAtomicCBTy AtomicReductionGen = nullptr;
1731 ElementType = CGF.ConvertTypeForMem(Private->getType());
1732 const auto *RHSVar =
1733 cast<VarDecl>(cast<DeclRefExpr>(RHSExprs[Idx])->getDecl());
1734 PrivateVariable = CGF.GetAddrOfLocalVar(RHSVar).emitRawPointer(CGF);
1735 const auto *LHSVar =
1736 cast<VarDecl>(cast<DeclRefExpr>(LHSExprs[Idx])->getDecl());
1737 Variable = CGF.GetAddrOfLocalVar(LHSVar).emitRawPointer(CGF);
1738 llvm::OpenMPIRBuilder::EvalKind EvalKind;
1739 switch (CGF.getEvaluationKind(Private->getType())) {
1740 case TEK_Scalar:
1741 EvalKind = llvm::OpenMPIRBuilder::EvalKind::Scalar;
1742 break;
1743 case TEK_Complex:
1744 EvalKind = llvm::OpenMPIRBuilder::EvalKind::Complex;
1745 break;
1746 case TEK_Aggregate:
1747 EvalKind = llvm::OpenMPIRBuilder::EvalKind::Aggregate;
1748 break;
1749 }
1750 auto ReductionGen = [&](InsertPointTy CodeGenIP, unsigned I,
1751 llvm::Value **LHSPtr, llvm::Value **RHSPtr,
1752 llvm::Function *NewFunc) {
1753 CGF.Builder.restoreIP(CodeGenIP);
1754 auto *CurFn = CGF.CurFn;
1755 CGF.CurFn = NewFunc;
1756
1757 *LHSPtr = CGF.GetAddrOfLocalVar(
1758 cast<VarDecl>(cast<DeclRefExpr>(LHSExprs[I])->getDecl()))
1759 .emitRawPointer(CGF);
1760 *RHSPtr = CGF.GetAddrOfLocalVar(
1761 cast<VarDecl>(cast<DeclRefExpr>(RHSExprs[I])->getDecl()))
1762 .emitRawPointer(CGF);
1763
1764 emitSingleReductionCombiner(CGF, ReductionOps[I], Privates[I],
1765 cast<DeclRefExpr>(LHSExprs[I]),
1766 cast<DeclRefExpr>(RHSExprs[I]));
1767
1768 CGF.CurFn = CurFn;
1769
1770 return InsertPointTy(CGF.Builder.GetInsertBlock(),
1771 CGF.Builder.GetInsertPoint());
1772 };
1773 ReductionInfos.emplace_back(llvm::OpenMPIRBuilder::ReductionInfo(
1774 ElementType, Variable, PrivateVariable, EvalKind,
1775 /*ReductionGen=*/nullptr, ReductionGen, AtomicReductionGen));
1776 Idx++;
1777 }
1778
1779 llvm::OpenMPIRBuilder::InsertPointTy AfterIP =
1780 cantFail(OMPBuilder.createReductionsGPU(
1781 OmpLoc, AllocaIP, CodeGenIP, ReductionInfos, false, TeamsReduction,
1782 llvm::OpenMPIRBuilder::ReductionGenCBKind::Clang,
1783 CGF.getTarget().getGridValue(),
1784 C.getLangOpts().OpenMPCUDAReductionBufNum, RTLoc));
1785 CGF.Builder.restoreIP(AfterIP);
1786}
1787
1788const VarDecl *
1790 const VarDecl *NativeParam) const {
1791 if (!NativeParam->getType()->isReferenceType())
1792 return NativeParam;
1793 QualType ArgType = NativeParam->getType();
1795 const Type *NonQualTy = QC.strip(ArgType);
1796 QualType PointeeTy = cast<ReferenceType>(NonQualTy)->getPointeeType();
1797 if (const auto *Attr = FD->getAttr<OMPCaptureKindAttr>()) {
1798 if (Attr->getCaptureKind() == OMPC_map) {
1799 PointeeTy = CGM.getContext().getAddrSpaceQualType(PointeeTy,
1801 }
1802 }
1803 ArgType = CGM.getContext().getPointerType(PointeeTy);
1804 QC.addRestrict();
1805 enum { NVPTX_local_addr = 5 };
1806 QC.addAddressSpace(getLangASFromTargetAS(NVPTX_local_addr));
1807 ArgType = QC.apply(CGM.getContext(), ArgType);
1808 if (isa<ImplicitParamDecl>(NativeParam))
1810 CGM.getContext(), /*DC=*/nullptr, NativeParam->getLocation(),
1812 return ParmVarDecl::Create(
1813 CGM.getContext(),
1814 const_cast<DeclContext *>(NativeParam->getDeclContext()),
1815 NativeParam->getBeginLoc(), NativeParam->getLocation(),
1816 NativeParam->getIdentifier(), ArgType,
1817 /*TInfo=*/nullptr, SC_None, /*DefArg=*/nullptr);
1818}
1819
1820Address
1822 const VarDecl *NativeParam,
1823 const VarDecl *TargetParam) const {
1824 assert(NativeParam != TargetParam &&
1825 NativeParam->getType()->isReferenceType() &&
1826 "Native arg must not be the same as target arg.");
1827 Address LocalAddr = CGF.GetAddrOfLocalVar(TargetParam);
1828 QualType NativeParamType = NativeParam->getType();
1830 const Type *NonQualTy = QC.strip(NativeParamType);
1831 QualType NativePointeeTy = cast<ReferenceType>(NonQualTy)->getPointeeType();
1832 unsigned NativePointeeAddrSpace =
1833 CGF.getTypes().getTargetAddressSpace(NativePointeeTy);
1834 QualType TargetTy = TargetParam->getType();
1835 llvm::Value *TargetAddr = CGF.EmitLoadOfScalar(LocalAddr, /*Volatile=*/false,
1836 TargetTy, SourceLocation());
1837 // Cast to native address space.
1839 TargetAddr,
1840 llvm::PointerType::get(CGF.getLLVMContext(), NativePointeeAddrSpace));
1841 Address NativeParamAddr = CGF.CreateMemTemp(NativeParamType);
1842 CGF.EmitStoreOfScalar(TargetAddr, NativeParamAddr, /*Volatile=*/false,
1843 NativeParamType);
1844 return NativeParamAddr;
1845}
1846
1848 CodeGenFunction &CGF, SourceLocation Loc, llvm::FunctionCallee OutlinedFn,
1849 ArrayRef<llvm::Value *> Args) const {
1851 TargetArgs.reserve(Args.size());
1852 auto *FnType = OutlinedFn.getFunctionType();
1853 for (unsigned I = 0, E = Args.size(); I < E; ++I) {
1854 if (FnType->isVarArg() && FnType->getNumParams() <= I) {
1855 TargetArgs.append(std::next(Args.begin(), I), Args.end());
1856 break;
1857 }
1858 llvm::Type *TargetType = FnType->getParamType(I);
1859 llvm::Value *NativeArg = Args[I];
1860 if (!TargetType->isPointerTy()) {
1861 TargetArgs.emplace_back(NativeArg);
1862 continue;
1863 }
1864 TargetArgs.emplace_back(
1865 CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(NativeArg, TargetType));
1866 }
1867 CGOpenMPRuntime::emitOutlinedFunctionCall(CGF, Loc, OutlinedFn, TargetArgs);
1868}
1869
1870/// Emit function which wraps the outline parallel region
1871/// and controls the arguments which are passed to this function.
1872/// The wrapper ensures that the outlined function is called
1873/// with the correct arguments when data is shared.
1874llvm::Function *CGOpenMPRuntimeGPU::createParallelDataSharingWrapper(
1875 llvm::Function *OutlinedParallelFn, const OMPExecutableDirective &D) {
1876 ASTContext &Ctx = CGM.getContext();
1877 const auto &CS = *D.getCapturedStmt(OMPD_parallel);
1878
1879 // Create a function that takes as argument the source thread.
1880 FunctionArgList WrapperArgs;
1881 QualType Int16QTy =
1882 Ctx.getIntTypeForBitwidth(/*DestWidth=*/16, /*Signed=*/false);
1883 QualType Int32QTy =
1884 Ctx.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/false);
1885 ImplicitParamDecl ParallelLevelArg(Ctx, /*DC=*/nullptr, D.getBeginLoc(),
1886 /*Id=*/nullptr, Int16QTy,
1888 ImplicitParamDecl WrapperArg(Ctx, /*DC=*/nullptr, D.getBeginLoc(),
1889 /*Id=*/nullptr, Int32QTy,
1891 WrapperArgs.emplace_back(&ParallelLevelArg);
1892 WrapperArgs.emplace_back(&WrapperArg);
1893
1894 const CGFunctionInfo &CGFI =
1896
1897 auto *Fn = llvm::Function::Create(
1898 CGM.getTypes().GetFunctionType(CGFI), llvm::GlobalValue::InternalLinkage,
1899 Twine(OutlinedParallelFn->getName(), "_wrapper"), &CGM.getModule());
1900
1901 // Ensure we do not inline the function. This is trivially true for the ones
1902 // passed to __kmpc_fork_call but the ones calles in serialized regions
1903 // could be inlined. This is not a perfect but it is closer to the invariant
1904 // we want, namely, every data environment starts with a new function.
1905 // TODO: We should pass the if condition to the runtime function and do the
1906 // handling there. Much cleaner code.
1907 Fn->addFnAttr(llvm::Attribute::NoInline);
1908
1910 Fn->setLinkage(llvm::GlobalValue::InternalLinkage);
1911 Fn->setDoesNotRecurse();
1912
1913 CodeGenFunction CGF(CGM, /*suppressNewContext=*/true);
1914 CGF.StartFunction(GlobalDecl(), Ctx.VoidTy, Fn, CGFI, WrapperArgs,
1915 D.getBeginLoc(), D.getBeginLoc());
1916
1917 const auto *RD = CS.getCapturedRecordDecl();
1918 auto CurField = RD->field_begin();
1919
1920 Address ZeroAddr = CGF.CreateDefaultAlignTempAlloca(CGF.Int32Ty,
1921 /*Name=*/".zero.addr");
1922 CGF.Builder.CreateStore(CGF.Builder.getInt32(/*C*/ 0), ZeroAddr);
1923 // Get the array of arguments.
1925
1926 Args.emplace_back(CGF.GetAddrOfLocalVar(&WrapperArg).emitRawPointer(CGF));
1927 Args.emplace_back(ZeroAddr.emitRawPointer(CGF));
1928
1929 CGBuilderTy &Bld = CGF.Builder;
1930 auto CI = CS.capture_begin();
1931
1932 // Use global memory for data sharing.
1933 // Handle passing of global args to workers.
1934 RawAddress GlobalArgs =
1935 CGF.CreateDefaultAlignTempAlloca(CGF.VoidPtrPtrTy, "global_args");
1936 llvm::Value *GlobalArgsPtr = GlobalArgs.getPointer();
1937 llvm::Value *DataSharingArgs[] = {GlobalArgsPtr};
1938 CGF.EmitRuntimeCall(OMPBuilder.getOrCreateRuntimeFunction(
1939 CGM.getModule(), OMPRTL___kmpc_get_shared_variables),
1940 DataSharingArgs);
1941
1942 // Retrieve the shared variables from the list of references returned
1943 // by the runtime. Pass the variables to the outlined function.
1944 Address SharedArgListAddress = Address::invalid();
1945 if (CS.capture_size() > 0 ||
1946 isOpenMPLoopBoundSharingDirective(D.getDirectiveKind())) {
1947 SharedArgListAddress = CGF.EmitLoadOfPointer(
1948 GlobalArgs, CGF.getContext()
1950 .castAs<PointerType>());
1951 }
1952 unsigned Idx = 0;
1953 if (isOpenMPLoopBoundSharingDirective(D.getDirectiveKind())) {
1954 Address Src = Bld.CreateConstInBoundsGEP(SharedArgListAddress, Idx);
1956 Src, Bld.getPtrTy(0), CGF.SizeTy);
1957 llvm::Value *LB = CGF.EmitLoadOfScalar(
1958 TypedAddress,
1959 /*Volatile=*/false,
1961 cast<OMPLoopDirective>(D).getLowerBoundVariable()->getExprLoc());
1962 Args.emplace_back(LB);
1963 ++Idx;
1964 Src = Bld.CreateConstInBoundsGEP(SharedArgListAddress, Idx);
1965 TypedAddress = Bld.CreatePointerBitCastOrAddrSpaceCast(Src, Bld.getPtrTy(0),
1966 CGF.SizeTy);
1967 llvm::Value *UB = CGF.EmitLoadOfScalar(
1968 TypedAddress,
1969 /*Volatile=*/false,
1971 cast<OMPLoopDirective>(D).getUpperBoundVariable()->getExprLoc());
1972 Args.emplace_back(UB);
1973 ++Idx;
1974 }
1975 if (CS.capture_size() > 0) {
1976 ASTContext &CGFContext = CGF.getContext();
1977 for (unsigned I = 0, E = CS.capture_size(); I < E; ++I, ++CI, ++CurField) {
1978 QualType ElemTy = CurField->getType();
1979 Address Src = Bld.CreateConstInBoundsGEP(SharedArgListAddress, I + Idx);
1980 Address TypedAddress = Bld.CreatePointerBitCastOrAddrSpaceCast(
1981 Src, CGF.ConvertTypeForMem(CGFContext.getPointerType(ElemTy)),
1982 CGF.ConvertTypeForMem(ElemTy));
1983 llvm::Value *Arg = CGF.EmitLoadOfScalar(TypedAddress,
1984 /*Volatile=*/false,
1985 CGFContext.getPointerType(ElemTy),
1986 CI->getLocation());
1987 if (CI->capturesVariableByCopy() &&
1988 !CI->getCapturedVar()->getType()->isAnyPointerType()) {
1989 Arg = castValueToType(CGF, Arg, ElemTy, CGFContext.getUIntPtrType(),
1990 CI->getLocation());
1991 }
1992 Args.emplace_back(Arg);
1993 }
1994 }
1995
1996 emitOutlinedFunctionCall(CGF, D.getBeginLoc(), OutlinedParallelFn, Args);
1997 CGF.FinishFunction();
1998 return Fn;
1999}
2000
2002 const Decl *D) {
2003 if (getDataSharingMode() != CGOpenMPRuntimeGPU::DS_Generic)
2004 return;
2005
2006 assert(D && "Expected function or captured|block decl.");
2007 assert(FunctionGlobalizedDecls.count(CGF.CurFn) == 0 &&
2008 "Function is registered already.");
2009 assert((!TeamAndReductions.first || TeamAndReductions.first == D) &&
2010 "Team is set but not processed.");
2011 const Stmt *Body = nullptr;
2012 bool NeedToDelayGlobalization = false;
2013 if (const auto *FD = dyn_cast<FunctionDecl>(D)) {
2014 Body = FD->getBody();
2015 } else if (const auto *BD = dyn_cast<BlockDecl>(D)) {
2016 Body = BD->getBody();
2017 } else if (const auto *CD = dyn_cast<CapturedDecl>(D)) {
2018 Body = CD->getBody();
2019 NeedToDelayGlobalization = CGF.CapturedStmtInfo->getKind() == CR_OpenMP;
2020 if (NeedToDelayGlobalization &&
2021 getExecutionMode() == CGOpenMPRuntimeGPU::EM_SPMD)
2022 return;
2023 }
2024 if (!Body)
2025 return;
2026 CheckVarsEscapingDeclContext VarChecker(CGF, TeamAndReductions.second);
2027 VarChecker.Visit(Body);
2028 const RecordDecl *GlobalizedVarsRecord =
2029 VarChecker.getGlobalizedRecord(IsInTTDRegion);
2030 TeamAndReductions.first = nullptr;
2031 TeamAndReductions.second.clear();
2032 ArrayRef<const ValueDecl *> EscapedVariableLengthDecls =
2033 VarChecker.getEscapedVariableLengthDecls();
2034 ArrayRef<const ValueDecl *> DelayedVariableLengthDecls =
2035 VarChecker.getDelayedVariableLengthDecls();
2036 if (!GlobalizedVarsRecord && EscapedVariableLengthDecls.empty() &&
2037 DelayedVariableLengthDecls.empty())
2038 return;
2039 auto I = FunctionGlobalizedDecls.try_emplace(CGF.CurFn).first;
2040 I->getSecond().MappedParams =
2041 std::make_unique<CodeGenFunction::OMPMapVars>();
2042 I->getSecond().EscapedParameters.insert(
2043 VarChecker.getEscapedParameters().begin(),
2044 VarChecker.getEscapedParameters().end());
2045 I->getSecond().EscapedVariableLengthDecls.append(
2046 EscapedVariableLengthDecls.begin(), EscapedVariableLengthDecls.end());
2047 I->getSecond().DelayedVariableLengthDecls.append(
2048 DelayedVariableLengthDecls.begin(), DelayedVariableLengthDecls.end());
2049 DeclToAddrMapTy &Data = I->getSecond().LocalVarData;
2050 for (const ValueDecl *VD : VarChecker.getEscapedDecls()) {
2051 assert(VD->isCanonicalDecl() && "Expected canonical declaration");
2052 Data.try_emplace(VD);
2053 }
2054 if (!NeedToDelayGlobalization) {
2055 emitGenericVarsProlog(CGF, D->getBeginLoc());
2056 struct GlobalizationScope final : EHScopeStack::Cleanup {
2057 GlobalizationScope() = default;
2058
2059 void Emit(CodeGenFunction &CGF, Flags flags) override {
2060 static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime())
2061 .emitGenericVarsEpilog(CGF);
2062 }
2063 };
2064 CGF.EHStack.pushCleanup<GlobalizationScope>(NormalAndEHCleanup);
2065 }
2066}
2067
2069 const VarDecl *VD) {
2070 if (VD && VD->hasAttr<OMPAllocateDeclAttr>()) {
2071 const auto *A = VD->getAttr<OMPAllocateDeclAttr>();
2072 auto AS = LangAS::Default;
2073 switch (A->getAllocatorType()) {
2074 case OMPAllocateDeclAttr::OMPNullMemAlloc:
2075 case OMPAllocateDeclAttr::OMPDefaultMemAlloc:
2076 case OMPAllocateDeclAttr::OMPHighBWMemAlloc:
2077 case OMPAllocateDeclAttr::OMPLowLatMemAlloc:
2078 break;
2079 case OMPAllocateDeclAttr::OMPThreadMemAlloc:
2080 return Address::invalid();
2081 case OMPAllocateDeclAttr::OMPUserDefinedMemAlloc:
2082 // TODO: implement aupport for user-defined allocators.
2083 return Address::invalid();
2084 case OMPAllocateDeclAttr::OMPConstMemAlloc:
2086 break;
2087 case OMPAllocateDeclAttr::OMPPTeamMemAlloc:
2089 break;
2090 case OMPAllocateDeclAttr::OMPLargeCapMemAlloc:
2091 case OMPAllocateDeclAttr::OMPCGroupMemAlloc:
2092 break;
2093 }
2094 llvm::Type *VarTy = CGF.ConvertTypeForMem(VD->getType());
2095 auto *GV = new llvm::GlobalVariable(
2096 CGM.getModule(), VarTy, /*isConstant=*/false,
2097 llvm::GlobalValue::InternalLinkage, llvm::PoisonValue::get(VarTy),
2098 VD->getName(),
2099 /*InsertBefore=*/nullptr, llvm::GlobalValue::NotThreadLocal,
2100 CGM.getContext().getTargetAddressSpace(AS));
2101 CharUnits Align = CGM.getContext().getDeclAlign(VD);
2102 GV->setAlignment(Align.getAsAlign());
2103 return Address(
2105 GV, CGF.Builder.getPtrTy(CGM.getContext().getTargetAddressSpace(
2106 VD->getType().getAddressSpace()))),
2107 VarTy, Align);
2108 }
2109
2110 if (getDataSharingMode() != CGOpenMPRuntimeGPU::DS_Generic)
2111 return Address::invalid();
2112
2113 VD = VD->getCanonicalDecl();
2114 auto I = FunctionGlobalizedDecls.find(CGF.CurFn);
2115 if (I == FunctionGlobalizedDecls.end())
2116 return Address::invalid();
2117 auto VDI = I->getSecond().LocalVarData.find(VD);
2118 if (VDI != I->getSecond().LocalVarData.end())
2119 return VDI->second.PrivateAddr;
2120 if (VD->hasAttrs()) {
2122 E(VD->attr_end());
2123 IT != E; ++IT) {
2124 auto VDI = I->getSecond().LocalVarData.find(
2125 cast<VarDecl>(cast<DeclRefExpr>(IT->getRef())->getDecl())
2126 ->getCanonicalDecl());
2127 if (VDI != I->getSecond().LocalVarData.end())
2128 return VDI->second.PrivateAddr;
2129 }
2130 }
2131
2132 return Address::invalid();
2133}
2134
2136 FunctionGlobalizedDecls.erase(CGF.CurFn);
2138}
2139
2141 CodeGenFunction &CGF, const OMPLoopDirective &S,
2142 OpenMPDistScheduleClauseKind &ScheduleKind,
2143 llvm::Value *&Chunk) const {
2144 auto &RT = static_cast<CGOpenMPRuntimeGPU &>(CGF.CGM.getOpenMPRuntime());
2145 if (getExecutionMode() == CGOpenMPRuntimeGPU::EM_SPMD) {
2146 ScheduleKind = OMPC_DIST_SCHEDULE_static;
2147 Chunk = CGF.EmitScalarConversion(
2148 RT.getGPUNumThreads(CGF),
2149 CGF.getContext().getIntTypeForBitwidth(32, /*Signed=*/0),
2150 S.getIterationVariable()->getType(), S.getBeginLoc());
2151 return;
2152 }
2154 CGF, S, ScheduleKind, Chunk);
2155}
2156
2158 CodeGenFunction &CGF, const OMPLoopDirective &S,
2159 OpenMPScheduleClauseKind &ScheduleKind,
2160 const Expr *&ChunkExpr) const {
2161 ScheduleKind = OMPC_SCHEDULE_static;
2162 // Chunk size is 1 in this case.
2163 llvm::APInt ChunkSize(32, 1);
2164 ChunkExpr = IntegerLiteral::Create(CGF.getContext(), ChunkSize,
2165 CGF.getContext().getIntTypeForBitwidth(32, /*Signed=*/0),
2166 SourceLocation());
2167}
2168
2170 CodeGenFunction &CGF, const OMPExecutableDirective &D) const {
2171 assert(isOpenMPTargetExecutionDirective(D.getDirectiveKind()) &&
2172 " Expected target-based directive.");
2173 const CapturedStmt *CS = D.getCapturedStmt(OMPD_target);
2174 for (const CapturedStmt::Capture &C : CS->captures()) {
2175 // Capture variables captured by reference in lambdas for target-based
2176 // directives.
2177 if (!C.capturesVariable())
2178 continue;
2179 const VarDecl *VD = C.getCapturedVar();
2180 const auto *RD = VD->getType()
2184 if (!RD || !RD->isLambda())
2185 continue;
2186 Address VDAddr = CGF.GetAddrOfLocalVar(VD);
2187 LValue VDLVal;
2189 VDLVal = CGF.EmitLoadOfReferenceLValue(VDAddr, VD->getType());
2190 else
2191 VDLVal = CGF.MakeAddrLValue(
2192 VDAddr, VD->getType().getCanonicalType().getNonReferenceType());
2193 llvm::DenseMap<const ValueDecl *, FieldDecl *> Captures;
2194 FieldDecl *ThisCapture = nullptr;
2195 RD->getCaptureFields(Captures, ThisCapture);
2196 if (ThisCapture && CGF.CapturedStmtInfo->isCXXThisExprCaptured()) {
2197 LValue ThisLVal =
2198 CGF.EmitLValueForFieldInitialization(VDLVal, ThisCapture);
2199 llvm::Value *CXXThis = CGF.LoadCXXThis();
2200 CGF.EmitStoreOfScalar(CXXThis, ThisLVal);
2201 }
2202 for (const LambdaCapture &LC : RD->captures()) {
2203 if (LC.getCaptureKind() != LCK_ByRef)
2204 continue;
2205 const ValueDecl *VD = LC.getCapturedVar();
2206 // FIXME: For now VD is always a VarDecl because OpenMP does not support
2207 // capturing structured bindings in lambdas yet.
2208 if (!CS->capturesVariable(cast<VarDecl>(VD)))
2209 continue;
2210 auto It = Captures.find(VD);
2211 assert(It != Captures.end() && "Found lambda capture without field.");
2212 LValue VarLVal = CGF.EmitLValueForFieldInitialization(VDLVal, It->second);
2213 Address VDAddr = CGF.GetAddrOfLocalVar(cast<VarDecl>(VD));
2215 VDAddr = CGF.EmitLoadOfReferenceLValue(VDAddr,
2216 VD->getType().getCanonicalType())
2217 .getAddress();
2218 CGF.EmitStoreOfScalar(VDAddr.emitRawPointer(CGF), VarLVal);
2219 }
2220 }
2221}
2222
2224 LangAS &AS) {
2225 if (!VD || !VD->hasAttr<OMPAllocateDeclAttr>())
2226 return false;
2227 const auto *A = VD->getAttr<OMPAllocateDeclAttr>();
2228 switch(A->getAllocatorType()) {
2229 case OMPAllocateDeclAttr::OMPNullMemAlloc:
2230 case OMPAllocateDeclAttr::OMPDefaultMemAlloc:
2231 // Not supported, fallback to the default mem space.
2232 case OMPAllocateDeclAttr::OMPLargeCapMemAlloc:
2233 case OMPAllocateDeclAttr::OMPCGroupMemAlloc:
2234 case OMPAllocateDeclAttr::OMPHighBWMemAlloc:
2235 case OMPAllocateDeclAttr::OMPLowLatMemAlloc:
2236 case OMPAllocateDeclAttr::OMPThreadMemAlloc:
2237 AS = LangAS::Default;
2238 return true;
2239 case OMPAllocateDeclAttr::OMPConstMemAlloc:
2241 return true;
2242 case OMPAllocateDeclAttr::OMPPTeamMemAlloc:
2244 return true;
2245 case OMPAllocateDeclAttr::OMPUserDefinedMemAlloc:
2246 llvm_unreachable("Expected predefined allocator for the variables with the "
2247 "static storage.");
2248 }
2249 return false;
2250}
2251
2252// Get current OffloadArch and ignore any unknown values
2254 if (!CGM.getTarget().hasFeature("ptx"))
2255 return OffloadArch::UNKNOWN;
2256 for (const auto &Feature : CGM.getTarget().getTargetOpts().FeatureMap) {
2257 if (Feature.getValue()) {
2260 return Arch;
2261 }
2262 }
2263 return OffloadArch::UNKNOWN;
2264}
2265
2266/// Check to see if target architecture supports unified addressing which is
2267/// a restriction for OpenMP requires clause "unified_shared_memory".
2269 for (const OMPClause *Clause : D->clauselists()) {
2270 if (Clause->getClauseKind() == OMPC_unified_shared_memory) {
2272 switch (Arch) {
2273 case OffloadArch::SM_20:
2274 case OffloadArch::SM_21:
2275 case OffloadArch::SM_30:
2277 case OffloadArch::SM_35:
2278 case OffloadArch::SM_37:
2279 case OffloadArch::SM_50:
2280 case OffloadArch::SM_52:
2281 case OffloadArch::SM_53: {
2282 SmallString<256> Buffer;
2283 llvm::raw_svector_ostream Out(Buffer);
2284 Out << "Target architecture " << OffloadArchToString(Arch)
2285 << " does not support unified addressing";
2286 CGM.Error(Clause->getBeginLoc(), Out.str());
2287 return;
2288 }
2289 case OffloadArch::SM_60:
2290 case OffloadArch::SM_61:
2291 case OffloadArch::SM_62:
2292 case OffloadArch::SM_70:
2293 case OffloadArch::SM_72:
2294 case OffloadArch::SM_75:
2295 case OffloadArch::SM_80:
2296 case OffloadArch::SM_86:
2297 case OffloadArch::SM_87:
2298 case OffloadArch::SM_89:
2299 case OffloadArch::SM_90:
2370 break;
2371 case OffloadArch::LAST:
2372 llvm_unreachable("Unexpected GPU arch.");
2373 }
2374 }
2375 }
2377}
2378
2380 CGBuilderTy &Bld = CGF.Builder;
2381 llvm::Module *M = &CGF.CGM.getModule();
2382 const char *LocSize = "__kmpc_get_hardware_num_threads_in_block";
2383 llvm::Function *F = M->getFunction(LocSize);
2384 if (!F) {
2385 F = llvm::Function::Create(llvm::FunctionType::get(CGF.Int32Ty, {}, false),
2386 llvm::GlobalVariable::ExternalLinkage, LocSize,
2387 &CGF.CGM.getModule());
2388 }
2389 return Bld.CreateCall(F, {}, "nvptx_num_threads");
2390}
2391
2394 return CGF.EmitRuntimeCall(
2395 OMPBuilder.getOrCreateRuntimeFunction(
2396 CGM.getModule(), OMPRTL___kmpc_get_hardware_thread_id_in_block),
2397 Args);
2398}
#define V(N, I)
static void getTeamsReductionVars(ASTContext &Ctx, const OMPExecutableDirective &D, llvm::SmallVectorImpl< const ValueDecl * > &Vars)
Get list of reduction variables from the teams ... directives.
static llvm::Value * castValueToType(CodeGenFunction &CGF, llvm::Value *Val, QualType ValTy, QualType CastTy, SourceLocation Loc)
Cast value to the specified type.
static void getDistributeLastprivateVars(ASTContext &Ctx, const OMPExecutableDirective &D, llvm::SmallVectorImpl< const ValueDecl * > &Vars)
Get list of lastprivate variables from the teams distribute ... or teams {distribute ....
static bool hasNestedSPMDDirective(ASTContext &Ctx, const OMPExecutableDirective &D)
Check for inner (nested) SPMD construct, if any.
static bool supportsSPMDExecutionMode(ASTContext &Ctx, const OMPExecutableDirective &D)
static OffloadArch getOffloadArch(CodeGenModule &CGM)
This file defines OpenMP nodes for declarative directives.
This file defines OpenMP AST classes for clauses.
static std::pair< ValueDecl *, bool > getPrivateItem(Sema &S, Expr *&RefExpr, SourceLocation &ELoc, SourceRange &ERange, bool AllowArraySection=false, bool AllowAssumedSizeArray=false, StringRef DiagType="")
This file defines OpenMP AST classes for executable directives and clauses.
static FieldDecl * Create(const ASTContext &C, DeclContext *DC, SourceLocation StartLoc, SourceLocation IdLoc, const IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo, Expr *BW, bool Mutable, InClassInitStyle InitStyle)
Definition Decl.cpp:4641
Holds long-lived AST nodes (such as types and decls) that can be referred to throughout the semantic ...
Definition ASTContext.h:220
QualType getPointerType(QualType T) const
Return the uniqued reference to the type for a pointer to the specified type.
CanQualType VoidPtrTy
QualType getUIntPtrType() const
Return a type compatible with "uintptr_t" (C99 7.18.1.4), as defined by the target.
QualType getIntTypeForBitwidth(unsigned DestWidth, unsigned Signed) const
getIntTypeForBitwidth - sets integer QualTy according to specified details: bitwidth,...
CharUnits getTypeSizeInChars(QualType T) const
Return the size of the specified (complete) type T, in characters.
CanQualType VoidTy
QualType getSizeType() const
Return the unique type for "size_t" (C99 7.17), defined in <stddef.h>.
const TargetInfo & getTargetInfo() const
Definition ASTContext.h:891
Attr - This represents one attribute.
Definition Attr.h:44
ArrayRef< Capture > captures() const
Definition Decl.h:4778
const BlockDecl * getBlockDecl() const
Definition Expr.h:6570
Expr * getCallee()
Definition Expr.h:3024
arg_range arguments()
Definition Expr.h:3129
Describes the capture of either a variable, or 'this', or variable-length array type.
Definition Stmt.h:3899
This captures a statement into a function.
Definition Stmt.h:3886
bool capturesVariable(const VarDecl *Var) const
True if this variable has been captured.
Definition Stmt.cpp:1475
capture_range captures()
Definition Stmt.h:4024
CastKind getCastKind() const
Definition Expr.h:3654
Expr * getSubExpr()
Definition Expr.h:3660
CharUnits - This is an opaque type for sizes expressed in character units.
Definition CharUnits.h:38
bool isZero() const
isZero - Test whether the quantity equals zero.
Definition CharUnits.h:122
llvm::Align getAsAlign() const
getAsAlign - Returns Quantity as a valid llvm::Align, Beware llvm::Align assumes power of two 8-bit b...
Definition CharUnits.h:189
QuantityType getQuantity() const
getQuantity - Get the raw integer representation of this quantity.
Definition CharUnits.h:185
Like RawAddress, an abstract representation of an aligned address, but the pointer contained in this ...
Definition Address.h:128
static Address invalid()
Definition Address.h:176
llvm::Value * emitRawPointer(CodeGenFunction &CGF) const
Return the pointer contained in this class after authenticating it and adding offset to it if necessa...
Definition Address.h:253
Address withElementType(llvm::Type *ElemTy) const
Return address with different element type, but same pointer and alignment.
Definition Address.h:276
llvm::StoreInst * CreateStore(llvm::Value *Val, Address Addr, bool IsVolatile=false)
Definition CGBuilder.h:140
Address CreatePointerBitCastOrAddrSpaceCast(Address Addr, llvm::Type *Ty, llvm::Type *ElementTy, const llvm::Twine &Name="")
Definition CGBuilder.h:207
Address CreateConstArrayGEP(Address Addr, uint64_t Index, const llvm::Twine &Name="")
Given addr = [n x T]* ... produce name = getelementptr inbounds addr, i64 0, i64 index where i64 is a...
Definition CGBuilder.h:245
Address CreateConstInBoundsGEP(Address Addr, uint64_t Index, const llvm::Twine &Name="")
Given addr = T* ... produce name = getelementptr inbounds addr, i64 index where i64 is actually the t...
Definition CGBuilder.h:265
CGFunctionInfo - Class to encapsulate the information about a function definition.
llvm::Function * emitTeamsOutlinedFunction(CodeGenFunction &CGF, const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) override
Emits inlined function for the specified OpenMP teams.
void emitProcBindClause(CodeGenFunction &CGF, llvm::omp::ProcBindKind ProcBind, SourceLocation Loc) override
Emit call to void __kmpc_push_proc_bind(ident_t *loc, kmp_int32global_tid, int proc_bind) to generate...
void emitReduction(CodeGenFunction &CGF, SourceLocation Loc, ArrayRef< const Expr * > Privates, ArrayRef< const Expr * > LHSExprs, ArrayRef< const Expr * > RHSExprs, ArrayRef< const Expr * > ReductionOps, ReductionOptionsTy Options) override
Emit a code for reduction clause.
DataSharingMode
Target codegen is specialized based on two data-sharing modes: CUDA, in which the local variables are...
@ DS_Generic
Generic data-sharing mode.
void getDefaultDistScheduleAndChunk(CodeGenFunction &CGF, const OMPLoopDirective &S, OpenMPDistScheduleClauseKind &ScheduleKind, llvm::Value *&Chunk) const override
Choose a default value for the dist_schedule clause.
Address getAddressOfLocalVariable(CodeGenFunction &CGF, const VarDecl *VD) override
Gets the OpenMP-specific address of the local variable.
void emitFunctionProlog(CodeGenFunction &CGF, const Decl *D) override
Emits OpenMP-specific function prolog.
void getDefaultScheduleAndChunk(CodeGenFunction &CGF, const OMPLoopDirective &S, OpenMPScheduleClauseKind &ScheduleKind, const Expr *&ChunkExpr) const override
Choose a default value for the schedule clause.
void emitNumTeamsClause(CodeGenFunction &CGF, const Expr *NumTeams, const Expr *ThreadLimit, SourceLocation Loc) override
This function ought to emit, in the general case, a call to.
void emitCriticalRegion(CodeGenFunction &CGF, StringRef CriticalName, const RegionCodeGenTy &CriticalOpGen, SourceLocation Loc, const Expr *Hint=nullptr) override
Emits a critical region.
void emitTeamsCall(CodeGenFunction &CGF, const OMPExecutableDirective &D, SourceLocation Loc, llvm::Function *OutlinedFn, ArrayRef< llvm::Value * > CapturedVars) override
Emits code for teams call of the OutlinedFn with variables captured in a record which address is stor...
bool hasAllocateAttributeForGlobalVar(const VarDecl *VD, LangAS &AS) override
Checks if the variable has associated OMPAllocateDeclAttr attribute with the predefined allocator and...
void getKmpcFreeShared(CodeGenFunction &CGF, const std::pair< llvm::Value *, llvm::Value * > &AddrSizePair) override
Get call to __kmpc_free_shared.
llvm::Function * emitParallelOutlinedFunction(CodeGenFunction &CGF, const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) override
Emits inlined function for the specified OpenMP parallel.
void functionFinished(CodeGenFunction &CGF) override
Cleans up references to the objects in finished function.
llvm::Value * getGPUThreadID(CodeGenFunction &CGF)
Get the id of the current thread on the GPU.
void processRequiresDirective(const OMPRequiresDecl *D) override
Perform check on requires decl to ensure that target architecture supports unified addressing.
bool isDelayedVariableLengthDecl(CodeGenFunction &CGF, const VarDecl *VD) const override
Declare generalized virtual functions which need to be defined by all specializations of OpenMPGPURun...
void emitOutlinedFunctionCall(CodeGenFunction &CGF, SourceLocation Loc, llvm::FunctionCallee OutlinedFn, ArrayRef< llvm::Value * > Args={}) const override
Emits call of the outlined function with the provided arguments, translating these arguments to corre...
Address getParameterAddress(CodeGenFunction &CGF, const VarDecl *NativeParam, const VarDecl *TargetParam) const override
Gets the address of the native argument basing on the address of the target-specific parameter.
ExecutionMode
Defines the execution mode.
@ EM_NonSPMD
Non-SPMD execution mode (1 master thread, others are workers).
@ EM_Unknown
Unknown execution mode (orphaned directive).
@ EM_SPMD
SPMD execution mode (all threads are worker threads).
void emitBarrierCall(CodeGenFunction &CGF, SourceLocation Loc, OpenMPDirectiveKind Kind, bool EmitChecks=true, bool ForceSimpleCall=false) override
Emit an implicit/explicit barrier for OpenMP threads.
llvm::Value * getGPUNumThreads(CodeGenFunction &CGF)
Get the maximum number of threads in a block of the GPU.
const VarDecl * translateParameter(const FieldDecl *FD, const VarDecl *NativeParam) const override
Translates the native parameter of outlined function if this is required for target.
std::pair< llvm::Value *, llvm::Value * > getKmpcAllocShared(CodeGenFunction &CGF, const VarDecl *VD) override
Get call to __kmpc_alloc_shared.
bool isGPU() const override
Returns true if the current target is a GPU.
virtual llvm::Value * emitSeverityClause(OpenMPSeverityClauseKind Severity, SourceLocation Loc) override
llvm::Value * emitMessageClause(CodeGenFunction &CGF, const Expr *Message, SourceLocation Loc) override
void emitParallelCall(CodeGenFunction &CGF, SourceLocation Loc, llvm::Function *OutlinedFn, ArrayRef< llvm::Value * > CapturedVars, const Expr *IfCond, llvm::Value *NumThreads, OpenMPNumThreadsClauseModifier NumThreadsModifier=OMPC_NUMTHREADS_unknown, OpenMPSeverityClauseKind Severity=OMPC_SEVERITY_fatal, const Expr *Message=nullptr) override
Emits code for parallel or serial call of the OutlinedFn with variables captured in a record which ad...
void emitNumThreadsClause(CodeGenFunction &CGF, llvm::Value *NumThreads, SourceLocation Loc, OpenMPNumThreadsClauseModifier Modifier=OMPC_NUMTHREADS_unknown, OpenMPSeverityClauseKind Severity=OMPC_SEVERITY_fatal, SourceLocation SeverityLoc=SourceLocation(), const Expr *Message=nullptr, SourceLocation MessageLoc=SourceLocation()) override
Emits call to void __kmpc_push_num_threads(ident_t *loc, kmp_int32global_tid, kmp_int32 num_threads) ...
void adjustTargetSpecificDataForLambdas(CodeGenFunction &CGF, const OMPExecutableDirective &D) const override
Adjust some parameters for the target-based directives, like addresses of the variables captured by r...
virtual Address emitThreadIDAddress(CodeGenFunction &CGF, SourceLocation Loc)
Emits address of the word in a memory where current thread id is stored.
static const Stmt * getSingleCompoundChild(ASTContext &Ctx, const Stmt *Body)
Checks if the Body is the CompoundStmt and returns its child statement iff there is only one that is ...
llvm::Value * emitUpdateLocation(CodeGenFunction &CGF, SourceLocation Loc, unsigned Flags=0, bool EmitLoc=false)
Emits object of ident_t type with info for source location.
virtual void functionFinished(CodeGenFunction &CGF)
Cleans up references to the objects in finished function.
virtual llvm::Function * emitTeamsOutlinedFunction(CodeGenFunction &CGF, const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen)
Emits outlined function for the specified OpenMP teams directive D.
llvm::OpenMPIRBuilder OMPBuilder
An OpenMP-IR-Builder instance.
virtual void emitTargetOutlinedFunctionHelper(const OMPExecutableDirective &D, StringRef ParentName, llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID, bool IsOffloadEntry, const RegionCodeGenTy &CodeGen)
Helper to emit outlined function for 'target' directive.
bool hasRequiresUnifiedSharedMemory() const
Return whether the unified_shared_memory has been specified.
virtual void processRequiresDirective(const OMPRequiresDecl *D)
Perform check on requires decl to ensure that target architecture supports unified addressing.
llvm::Value * getThreadID(CodeGenFunction &CGF, SourceLocation Loc)
Gets thread id value for the current thread.
void computeMinAndMaxThreadsAndTeams(const OMPExecutableDirective &D, CodeGenFunction &CGF, llvm::OpenMPIRBuilder::TargetKernelDefaultAttrs &Attrs)
Helper to determine the min/max number of threads/teams for D.
static unsigned getDefaultFlagsForBarriers(OpenMPDirectiveKind Kind)
Returns default flags for the barriers depending on the directive, for which this barier is going to ...
virtual llvm::Function * emitParallelOutlinedFunction(CodeGenFunction &CGF, const OMPExecutableDirective &D, const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen)
Emits outlined function for the specified OpenMP parallel directive D.
virtual void getDefaultDistScheduleAndChunk(CodeGenFunction &CGF, const OMPLoopDirective &S, OpenMPDistScheduleClauseKind &ScheduleKind, llvm::Value *&Chunk) const
Choose default schedule type and chunk value for the dist_schedule clause.
llvm::Type * getIdentTyPointerTy()
Returns pointer to ident_t type.
void emitSingleReductionCombiner(CodeGenFunction &CGF, const Expr *ReductionOp, const Expr *PrivateRef, const DeclRefExpr *LHS, const DeclRefExpr *RHS)
Emits single reduction combiner.
llvm::OpenMPIRBuilder & getOMPBuilder()
virtual void emitCriticalRegion(CodeGenFunction &CGF, StringRef CriticalName, const RegionCodeGenTy &CriticalOpGen, SourceLocation Loc, const Expr *Hint=nullptr)
Emits a critical region.
virtual void emitOutlinedFunctionCall(CodeGenFunction &CGF, SourceLocation Loc, llvm::FunctionCallee OutlinedFn, ArrayRef< llvm::Value * > Args={}) const
Emits call of the outlined function with the provided arguments, translating these arguments to corre...
virtual void emitReduction(CodeGenFunction &CGF, SourceLocation Loc, ArrayRef< const Expr * > Privates, ArrayRef< const Expr * > LHSExprs, ArrayRef< const Expr * > RHSExprs, ArrayRef< const Expr * > ReductionOps, ReductionOptionsTy Options)
Emit a code for reduction clause.
The scope used to remap some variables as private in the OpenMP loop body (or other captured region e...
CodeGenFunction - This class organizes the per-function state that is used while generating LLVM code...
LValue EmitLoadOfReferenceLValue(LValue RefLVal)
Definition CGExpr.cpp:3030
CGCapturedStmtInfo * CapturedStmtInfo
llvm::BasicBlock * createBasicBlock(const Twine &name="", llvm::Function *parent=nullptr, llvm::BasicBlock *before=nullptr)
createBasicBlock - Create an LLVM basic block.
Address EmitLoadOfPointer(Address Ptr, const PointerType *PtrTy, LValueBaseInfo *BaseInfo=nullptr, TBAAAccessInfo *TBAAInfo=nullptr)
Load a pointer with type PtrTy stored at address Ptr.
Definition CGExpr.cpp:3039
LValue MakeNaturalAlignPointeeRawAddrLValue(llvm::Value *V, QualType T)
Same as MakeNaturalAlignPointeeAddrLValue except that the pointer is known to be unsigned.
llvm::AssertingVH< llvm::Instruction > AllocaInsertPt
AllocaInsertPoint - This is an instruction in the entry block before which we prefer to insert alloca...
llvm::DebugLoc SourceLocToDebugLoc(SourceLocation Location)
Converts Location to a DebugLoc, if debug information is enabled.
RawAddress CreateDefaultAlignTempAlloca(llvm::Type *Ty, const Twine &Name="tmp")
CreateDefaultAlignedTempAlloca - This creates an alloca with the default ABI alignment of the given L...
Definition CGExpr.cpp:174
const TargetInfo & getTarget() const
void StartFunction(GlobalDecl GD, QualType RetTy, llvm::Function *Fn, const CGFunctionInfo &FnInfo, const FunctionArgList &Args, SourceLocation Loc=SourceLocation(), SourceLocation StartLoc=SourceLocation())
Emit code for the start of a function.
llvm::Value * EvaluateExprAsBool(const Expr *E)
EvaluateExprAsBool - Perform the usual unary conversions on the specified expression and compare the ...
Definition CGExpr.cpp:223
bool HaveInsertPoint() const
HaveInsertPoint - True if an insertion point is defined.
llvm::Value * getTypeSize(QualType Ty)
Returns calculated size of the specified type.
LValue EmitLValueForFieldInitialization(LValue Base, const FieldDecl *Field)
EmitLValueForFieldInitialization - Like EmitLValueForField, except that if the Field is a reference,...
Definition CGExpr.cpp:5426
llvm::Value * EmitLoadOfScalar(Address Addr, bool Volatile, QualType Ty, SourceLocation Loc, AlignmentSource Source=AlignmentSource::Type, bool isNontemporal=false)
EmitLoadOfScalar - Load a scalar value from an address, taking care to appropriately convert from the...
llvm::CallInst * EmitRuntimeCall(llvm::FunctionCallee callee, const Twine &name="")
llvm::Type * ConvertTypeForMem(QualType T)
CodeGenTypes & getTypes() const
static TypeEvaluationKind getEvaluationKind(QualType T)
getEvaluationKind - Return the TypeEvaluationKind of QualType T.
void EmitBranch(llvm::BasicBlock *Block)
EmitBranch - Emit a branch to the specified basic block from the current insert block,...
Definition CGStmt.cpp:672
RawAddress CreateMemTemp(QualType T, const Twine &Name="tmp", RawAddress *Alloca=nullptr)
CreateMemTemp - Create a temporary memory object of the given type, with appropriate alignmen and cas...
Definition CGExpr.cpp:186
LValue MakeAddrLValue(Address Addr, QualType T, AlignmentSource Source=AlignmentSource::Type)
void FinishFunction(SourceLocation EndLoc=SourceLocation())
FinishFunction - Complete IR generation of the current function.
llvm::Value * LoadCXXThis()
LoadCXXThis - Load the value of 'this'.
Address GetAddrOfLocalVar(const VarDecl *VD)
GetAddrOfLocalVar - Return the address of a local variable.
llvm::LLVMContext & getLLVMContext()
llvm::Value * EmitScalarConversion(llvm::Value *Src, QualType SrcTy, QualType DstTy, SourceLocation Loc)
Emit a conversion from the specified type to the specified destination type, both of which are LLVM s...
void EmitStoreOfScalar(llvm::Value *Value, Address Addr, bool Volatile, QualType Ty, AlignmentSource Source=AlignmentSource::Type, bool isInit=false, bool isNontemporal=false)
EmitStoreOfScalar - Store a scalar value to an address, taking care to appropriately convert from the...
void EmitBlock(llvm::BasicBlock *BB, bool IsFinished=false)
EmitBlock - Emit the given block.
Definition CGStmt.cpp:652
This class organizes the cross-function state that is used while generating LLVM code.
void SetInternalFunctionAttributes(GlobalDecl GD, llvm::Function *F, const CGFunctionInfo &FI)
Set the attributes on the LLVM function for the given decl and function info.
llvm::Module & getModule() const
const TargetInfo & getTarget() const
CGOpenMPRuntime & getOpenMPRuntime()
Return a reference to the configured OpenMP runtime.
ASTContext & getContext() const
llvm::LLVMContext & getLLVMContext()
llvm::FunctionType * GetFunctionType(const CGFunctionInfo &Info)
GetFunctionType - Get the LLVM function type for.
Definition CGCall.cpp:1701
const CGFunctionInfo & arrangeBuiltinFunctionDeclaration(QualType resultType, const FunctionArgList &args)
A builtin function is a freestanding function using the default C conventions.
Definition CGCall.cpp:739
unsigned getTargetAddressSpace(QualType T) const
FunctionArgList - Type for representing both the decl and type of parameters to a function.
Definition CGCall.h:375
LValue - This represents an lvalue references.
Definition CGValue.h:182
Address getAddress() const
Definition CGValue.h:361
A basic class for pre|post-action for advanced codegen sequence for OpenMP region.
An abstract representation of an aligned address.
Definition Address.h:42
llvm::Value * getPointer() const
Definition Address.h:66
Class provides a way to call simple version of codegen for OpenMP region, or an advanced with possibl...
void setAction(PrePostActionTy &Action) const
ConstStmtVisitor - This class implements a simple visitor for Stmt subclasses.
DeclContext - This is used only as base class of specific decl types that can act as declaration cont...
Definition DeclBase.h:1449
void addDecl(Decl *D)
Add the declaration D into this context.
ValueDecl * getDecl()
Definition Expr.h:1338
decl_range decls()
Definition Stmt.h:1659
T * getAttr() const
Definition DeclBase.h:573
bool hasAttrs() const
Definition DeclBase.h:518
attr_iterator attr_end() const
Definition DeclBase.h:542
bool isCanonicalDecl() const
Whether this particular Decl is a canonical one.
Definition DeclBase.h:984
attr_iterator attr_begin() const
Definition DeclBase.h:539
SourceLocation getLocation() const
Definition DeclBase.h:439
DeclContext * getDeclContext()
Definition DeclBase.h:448
SourceLocation getBeginLoc() const LLVM_READONLY
Definition DeclBase.h:431
AttrVec & getAttrs()
Definition DeclBase.h:524
bool hasAttr() const
Definition DeclBase.h:577
virtual Decl * getCanonicalDecl()
Retrieves the "canonical" declaration of the given declaration.
Definition DeclBase.h:978
SourceLocation getBeginLoc() const LLVM_READONLY
Definition Decl.h:830
This represents one expression.
Definition Expr.h:112
Expr * IgnoreParenImpCasts() LLVM_READONLY
Skip past any parentheses and implicit casts which might surround this expression until reaching a fi...
Definition Expr.cpp:3085
Expr * IgnoreParens() LLVM_READONLY
Skip past any parentheses which might surround this expression until reaching a fixed point.
Definition Expr.cpp:3081
bool isLValue() const
isLValue - True if this expression is an "l-value" according to the rules of the current language.
Definition Expr.h:284
Represents a member of a struct/union/class.
Definition Decl.h:3157
static FieldDecl * Create(const ASTContext &C, DeclContext *DC, SourceLocation StartLoc, SourceLocation IdLoc, const IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo, Expr *BW, bool Mutable, InClassInitStyle InitStyle)
Definition Decl.cpp:4641
GlobalDecl - represents a global declaration.
Definition GlobalDecl.h:57
static ImplicitParamDecl * Create(ASTContext &C, DeclContext *DC, SourceLocation IdLoc, IdentifierInfo *Id, QualType T, ImplicitParamKind ParamKind)
Create implicit parameter.
Definition Decl.cpp:5474
static IntegerLiteral * Create(const ASTContext &C, const llvm::APInt &V, QualType type, SourceLocation l)
Returns a new integer literal with value 'V' and type 'type'.
Definition Expr.cpp:971
Describes the capture of a variable or of this, or of a C++1y init-capture.
bool isInitCapture(const LambdaCapture *Capture) const
Determine whether one of this lambda's captures is an init-capture.
Definition ExprCXX.cpp:1358
capture_range captures() const
Retrieve this lambda's captures.
Definition ExprCXX.cpp:1371
IdentifierInfo * getIdentifier() const
Get the identifier that names this declaration, if there is one.
Definition Decl.h:294
StringRef getName() const
Get the name of identifier for this declaration as a StringRef.
Definition Decl.h:300
This is a basic class for representing single OpenMP clause.
This represents clause 'lastprivate' in the 'pragma omp ...' directives.
This represents clause 'reduction' in the 'pragma omp ...' directives.
This represents 'pragma omp requires...' directive.
Definition DeclOpenMP.h:479
clauselist_range clauselists()
Definition DeclOpenMP.h:504
This represents 'ompx_bare' clause in the 'pragma omp target teams ...' directive.
static ParmVarDecl * Create(ASTContext &C, DeclContext *DC, SourceLocation StartLoc, SourceLocation IdLoc, const IdentifierInfo *Id, QualType T, TypeSourceInfo *TInfo, StorageClass S, Expr *DefArg)
Definition Decl.cpp:2946
PointerType - C99 6.7.5.1 - Pointer Declarators.
Definition TypeBase.h:3328
A (possibly-)qualified type.
Definition TypeBase.h:937
LangAS getAddressSpace() const
Return the address space of this type.
Definition TypeBase.h:8413
QualType getNonReferenceType() const
If Type is a reference type (e.g., const int&), returns the type that the reference refers to ("const...
Definition TypeBase.h:8472
QualType getCanonicalType() const
Definition TypeBase.h:8339
A qualifier set is used to build a set of qualifiers.
Definition TypeBase.h:8227
const Type * strip(QualType type)
Collect any qualifiers on the given type and return an unqualified type.
Definition TypeBase.h:8234
QualType apply(const ASTContext &Context, QualType QT) const
Apply the collected qualifiers to the given type.
Definition Type.cpp:4666
void addAddressSpace(LangAS space)
Definition TypeBase.h:597
Represents a struct/union/class.
Definition Decl.h:4309
virtual void completeDefinition()
Note that the definition of this type is now complete.
Definition Decl.cpp:5170
Scope - A scope is a transient data structure that is used while parsing the program.
Definition Scope.h:41
Encodes a location in the source.
Stmt - This represents one statement.
Definition Stmt.h:85
child_range children()
Definition Stmt.cpp:295
void startDefinition()
Starts the definition of this tag declaration.
Definition Decl.cpp:4847
unsigned getNewAlign() const
Return the largest alignment for which a suitably-sized allocation with 'operator new(size_t)' is gua...
Definition TargetInfo.h:761
TargetOptions & getTargetOpts() const
Retrieve the target options.
Definition TargetInfo.h:323
virtual const llvm::omp::GV & getGridValue() const
virtual bool hasFeature(StringRef Feature) const
Determine whether the given target has the given feature.
llvm::StringMap< bool > FeatureMap
The map of which features have been enabled disabled based on the command line.
The base class of the type hierarchy.
Definition TypeBase.h:1833
CXXRecordDecl * getAsCXXRecordDecl() const
Retrieves the CXXRecordDecl that this type refers to, either because the type is a RecordType or beca...
Definition Type.h:26
bool isIntegerType() const
isIntegerType() does not include complex integers (a GCC extension).
Definition TypeBase.h:8924
bool isReferenceType() const
Definition TypeBase.h:8548
bool isLValueReferenceType() const
Definition TypeBase.h:8552
bool hasSignedIntegerRepresentation() const
Determine whether this type has an signed integer representation of some sort, e.g....
Definition Type.cpp:2243
bool isVariablyModifiedType() const
Whether this type is a variably-modified type (C99 6.7.5).
Definition TypeBase.h:2800
Expr * getSubExpr() const
Definition Expr.h:2285
Opcode getOpcode() const
Definition Expr.h:2280
Represent the declaration of a variable (in which case it is an lvalue) a function (in which case it ...
Definition Decl.h:711
QualType getType() const
Definition Decl.h:722
bool isInitCapture() const
Whether this variable is the implicit variable for a lambda init-capture.
Definition Decl.cpp:5459
Represents a variable declaration or definition.
Definition Decl.h:925
VarDecl * getCanonicalDecl() override
Retrieves the "canonical" declaration of the given declaration.
Definition Decl.cpp:2257
bool isInitCapture() const
Whether this variable is the implicit variable for a lambda init-capture.
Definition Decl.h:1577
specific_attr_iterator - Iterates over a subrange of an AttrVec, only providing attributes that are o...
@ Type
The l-value was considered opaque, so the alignment was determined from a type.
Definition CGValue.h:154
@ Decl
The l-value was an access to a declared entity or something equivalently strong, like the address of ...
Definition CGValue.h:145
The JSON file list parser is used to communicate input to InstallAPI.
CanQual< Type > CanQualType
Represents a canonical, potentially-qualified type.
bool isa(CodeGen::Address addr)
Definition Address.h:330
@ ICIS_NoInit
No in-class initializer.
Definition Specifiers.h:272
bool isOpenMPDistributeDirective(OpenMPDirectiveKind DKind)
Checks if the specified directive is a distribute directive.
@ LCK_ByRef
Capturing by reference.
Definition Lambda.h:37
@ Private
'private' clause, allowed on 'parallel', 'serial', 'loop', 'parallel loop', and 'serial loop' constru...
@ AS_public
Definition Specifiers.h:124
@ CR_OpenMP
bool isOpenMPParallelDirective(OpenMPDirectiveKind DKind)
Checks if the specified directive is a parallel-kind directive.
bool isOpenMPPrivate(OpenMPClauseKind Kind)
Checks if the specified clause is one of private clauses like 'private', 'firstprivate',...
@ SC_None
Definition Specifiers.h:250
OpenMPDistScheduleClauseKind
OpenMP attributes for 'dist_schedule' clause.
bool isOpenMPTargetExecutionDirective(OpenMPDirectiveKind DKind)
Checks if the specified directive is a target code offload directive.
bool isOpenMPTeamsDirective(OpenMPDirectiveKind DKind)
Checks if the specified directive is a teams-kind directive.
OffloadArch StringToOffloadArch(llvm::StringRef S)
OpenMPSeverityClauseKind
OpenMP attributes for 'severity' clause.
bool isOpenMPLoopBoundSharingDirective(OpenMPDirectiveKind Kind)
Checks if the specified directive kind is one of the composite or combined directives that need loop ...
LangAS
Defines the address space values used by the address space qualifier of QualType.
const char * OffloadArchToString(OffloadArch A)
llvm::omp::Directive OpenMPDirectiveKind
OpenMP directives.
Definition OpenMPKinds.h:25
void getOpenMPCaptureRegions(llvm::SmallVectorImpl< OpenMPDirectiveKind > &CaptureRegions, OpenMPDirectiveKind DKind)
Return the captured regions of an OpenMP directive.
OpenMPNumThreadsClauseModifier
U cast(CodeGen::Address addr)
Definition Address.h:327
LangAS getLangASFromTargetAS(unsigned TargetAS)
@ CXXThis
Parameter for C++ 'this' argument.
Definition Decl.h:1733
@ Other
Other implicit parameter.
Definition Decl.h:1745
OpenMPScheduleClauseKind
OpenMP attributes for 'schedule' clause.
Definition OpenMPKinds.h:31
unsigned long uint64_t