1 //===----- CGOpenMPRuntime.cpp - Interface to OpenMP Runtimes -------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This provides a class for OpenMP runtime code generation.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "CGCXXABI.h"
15 #include "CGCleanup.h"
16 #include "CGOpenMPRuntime.h"
17 #include "CodeGenFunction.h"
18 #include "clang/CodeGen/ConstantInitBuilder.h"
19 #include "clang/AST/Decl.h"
20 #include "clang/AST/StmtOpenMP.h"
21 #include "llvm/ADT/ArrayRef.h"
22 #include "llvm/ADT/BitmaskEnum.h"
23 #include "llvm/Bitcode/BitcodeReader.h"
24 #include "llvm/IR/CallSite.h"
25 #include "llvm/IR/DerivedTypes.h"
26 #include "llvm/IR/GlobalValue.h"
27 #include "llvm/IR/Value.h"
28 #include "llvm/Support/Format.h"
29 #include "llvm/Support/raw_ostream.h"
30 #include <cassert>
31 
32 using namespace clang;
33 using namespace CodeGen;
34 
35 namespace {
36 /// \brief Base class for handling code generation inside OpenMP regions.
37 class CGOpenMPRegionInfo : public CodeGenFunction::CGCapturedStmtInfo {
38 public:
39   /// \brief Kinds of OpenMP regions used in codegen.
40   enum CGOpenMPRegionKind {
41     /// \brief Region with outlined function for standalone 'parallel'
42     /// directive.
43     ParallelOutlinedRegion,
44     /// \brief Region with outlined function for standalone 'task' directive.
45     TaskOutlinedRegion,
46     /// \brief Region for constructs that do not require function outlining,
47     /// like 'for', 'sections', 'atomic' etc. directives.
48     InlinedRegion,
49     /// \brief Region with outlined function for standalone 'target' directive.
50     TargetRegion,
51   };
52 
53   CGOpenMPRegionInfo(const CapturedStmt &CS,
54                      const CGOpenMPRegionKind RegionKind,
55                      const RegionCodeGenTy &CodeGen, OpenMPDirectiveKind Kind,
56                      bool HasCancel)
57       : CGCapturedStmtInfo(CS, CR_OpenMP), RegionKind(RegionKind),
58         CodeGen(CodeGen), Kind(Kind), HasCancel(HasCancel) {}
59 
60   CGOpenMPRegionInfo(const CGOpenMPRegionKind RegionKind,
61                      const RegionCodeGenTy &CodeGen, OpenMPDirectiveKind Kind,
62                      bool HasCancel)
63       : CGCapturedStmtInfo(CR_OpenMP), RegionKind(RegionKind), CodeGen(CodeGen),
64         Kind(Kind), HasCancel(HasCancel) {}
65 
66   /// \brief Get a variable or parameter for storing global thread id
67   /// inside OpenMP construct.
68   virtual const VarDecl *getThreadIDVariable() const = 0;
69 
70   /// \brief Emit the captured statement body.
71   void EmitBody(CodeGenFunction &CGF, const Stmt *S) override;
72 
73   /// \brief Get an LValue for the current ThreadID variable.
74   /// \return LValue for thread id variable. This LValue always has type int32*.
75   virtual LValue getThreadIDVariableLValue(CodeGenFunction &CGF);
76 
77   virtual void emitUntiedSwitch(CodeGenFunction & /*CGF*/) {}
78 
79   CGOpenMPRegionKind getRegionKind() const { return RegionKind; }
80 
81   OpenMPDirectiveKind getDirectiveKind() const { return Kind; }
82 
83   bool hasCancel() const { return HasCancel; }
84 
85   static bool classof(const CGCapturedStmtInfo *Info) {
86     return Info->getKind() == CR_OpenMP;
87   }
88 
89   ~CGOpenMPRegionInfo() override = default;
90 
91 protected:
92   CGOpenMPRegionKind RegionKind;
93   RegionCodeGenTy CodeGen;
94   OpenMPDirectiveKind Kind;
95   bool HasCancel;
96 };
97 
98 /// \brief API for captured statement code generation in OpenMP constructs.
99 class CGOpenMPOutlinedRegionInfo final : public CGOpenMPRegionInfo {
100 public:
101   CGOpenMPOutlinedRegionInfo(const CapturedStmt &CS, const VarDecl *ThreadIDVar,
102                              const RegionCodeGenTy &CodeGen,
103                              OpenMPDirectiveKind Kind, bool HasCancel,
104                              StringRef HelperName)
105       : CGOpenMPRegionInfo(CS, ParallelOutlinedRegion, CodeGen, Kind,
106                            HasCancel),
107         ThreadIDVar(ThreadIDVar), HelperName(HelperName) {
108     assert(ThreadIDVar != nullptr && "No ThreadID in OpenMP region.");
109   }
110 
111   /// \brief Get a variable or parameter for storing global thread id
112   /// inside OpenMP construct.
113   const VarDecl *getThreadIDVariable() const override { return ThreadIDVar; }
114 
115   /// \brief Get the name of the capture helper.
116   StringRef getHelperName() const override { return HelperName; }
117 
118   static bool classof(const CGCapturedStmtInfo *Info) {
119     return CGOpenMPRegionInfo::classof(Info) &&
120            cast<CGOpenMPRegionInfo>(Info)->getRegionKind() ==
121                ParallelOutlinedRegion;
122   }
123 
124 private:
125   /// \brief A variable or parameter storing global thread id for OpenMP
126   /// constructs.
127   const VarDecl *ThreadIDVar;
128   StringRef HelperName;
129 };
130 
131 /// \brief API for captured statement code generation in OpenMP constructs.
132 class CGOpenMPTaskOutlinedRegionInfo final : public CGOpenMPRegionInfo {
133 public:
134   class UntiedTaskActionTy final : public PrePostActionTy {
135     bool Untied;
136     const VarDecl *PartIDVar;
137     const RegionCodeGenTy UntiedCodeGen;
138     llvm::SwitchInst *UntiedSwitch = nullptr;
139 
140   public:
141     UntiedTaskActionTy(bool Tied, const VarDecl *PartIDVar,
142                        const RegionCodeGenTy &UntiedCodeGen)
143         : Untied(!Tied), PartIDVar(PartIDVar), UntiedCodeGen(UntiedCodeGen) {}
144     void Enter(CodeGenFunction &CGF) override {
145       if (Untied) {
146         // Emit task switching point.
147         auto PartIdLVal = CGF.EmitLoadOfPointerLValue(
148             CGF.GetAddrOfLocalVar(PartIDVar),
149             PartIDVar->getType()->castAs<PointerType>());
150         auto *Res = CGF.EmitLoadOfScalar(PartIdLVal, SourceLocation());
151         auto *DoneBB = CGF.createBasicBlock(".untied.done.");
152         UntiedSwitch = CGF.Builder.CreateSwitch(Res, DoneBB);
153         CGF.EmitBlock(DoneBB);
154         CGF.EmitBranchThroughCleanup(CGF.ReturnBlock);
155         CGF.EmitBlock(CGF.createBasicBlock(".untied.jmp."));
156         UntiedSwitch->addCase(CGF.Builder.getInt32(0),
157                               CGF.Builder.GetInsertBlock());
158         emitUntiedSwitch(CGF);
159       }
160     }
161     void emitUntiedSwitch(CodeGenFunction &CGF) const {
162       if (Untied) {
163         auto PartIdLVal = CGF.EmitLoadOfPointerLValue(
164             CGF.GetAddrOfLocalVar(PartIDVar),
165             PartIDVar->getType()->castAs<PointerType>());
166         CGF.EmitStoreOfScalar(CGF.Builder.getInt32(UntiedSwitch->getNumCases()),
167                               PartIdLVal);
168         UntiedCodeGen(CGF);
169         CodeGenFunction::JumpDest CurPoint =
170             CGF.getJumpDestInCurrentScope(".untied.next.");
171         CGF.EmitBranchThroughCleanup(CGF.ReturnBlock);
172         CGF.EmitBlock(CGF.createBasicBlock(".untied.jmp."));
173         UntiedSwitch->addCase(CGF.Builder.getInt32(UntiedSwitch->getNumCases()),
174                               CGF.Builder.GetInsertBlock());
175         CGF.EmitBranchThroughCleanup(CurPoint);
176         CGF.EmitBlock(CurPoint.getBlock());
177       }
178     }
179     unsigned getNumberOfParts() const { return UntiedSwitch->getNumCases(); }
180   };
181   CGOpenMPTaskOutlinedRegionInfo(const CapturedStmt &CS,
182                                  const VarDecl *ThreadIDVar,
183                                  const RegionCodeGenTy &CodeGen,
184                                  OpenMPDirectiveKind Kind, bool HasCancel,
185                                  const UntiedTaskActionTy &Action)
186       : CGOpenMPRegionInfo(CS, TaskOutlinedRegion, CodeGen, Kind, HasCancel),
187         ThreadIDVar(ThreadIDVar), Action(Action) {
188     assert(ThreadIDVar != nullptr && "No ThreadID in OpenMP region.");
189   }
190 
191   /// \brief Get a variable or parameter for storing global thread id
192   /// inside OpenMP construct.
193   const VarDecl *getThreadIDVariable() const override { return ThreadIDVar; }
194 
195   /// \brief Get an LValue for the current ThreadID variable.
196   LValue getThreadIDVariableLValue(CodeGenFunction &CGF) override;
197 
198   /// \brief Get the name of the capture helper.
199   StringRef getHelperName() const override { return ".omp_outlined."; }
200 
201   void emitUntiedSwitch(CodeGenFunction &CGF) override {
202     Action.emitUntiedSwitch(CGF);
203   }
204 
205   static bool classof(const CGCapturedStmtInfo *Info) {
206     return CGOpenMPRegionInfo::classof(Info) &&
207            cast<CGOpenMPRegionInfo>(Info)->getRegionKind() ==
208                TaskOutlinedRegion;
209   }
210 
211 private:
212   /// \brief A variable or parameter storing global thread id for OpenMP
213   /// constructs.
214   const VarDecl *ThreadIDVar;
215   /// Action for emitting code for untied tasks.
216   const UntiedTaskActionTy &Action;
217 };
218 
219 /// \brief API for inlined captured statement code generation in OpenMP
220 /// constructs.
221 class CGOpenMPInlinedRegionInfo : public CGOpenMPRegionInfo {
222 public:
223   CGOpenMPInlinedRegionInfo(CodeGenFunction::CGCapturedStmtInfo *OldCSI,
224                             const RegionCodeGenTy &CodeGen,
225                             OpenMPDirectiveKind Kind, bool HasCancel)
226       : CGOpenMPRegionInfo(InlinedRegion, CodeGen, Kind, HasCancel),
227         OldCSI(OldCSI),
228         OuterRegionInfo(dyn_cast_or_null<CGOpenMPRegionInfo>(OldCSI)) {}
229 
230   // \brief Retrieve the value of the context parameter.
231   llvm::Value *getContextValue() const override {
232     if (OuterRegionInfo)
233       return OuterRegionInfo->getContextValue();
234     llvm_unreachable("No context value for inlined OpenMP region");
235   }
236 
237   void setContextValue(llvm::Value *V) override {
238     if (OuterRegionInfo) {
239       OuterRegionInfo->setContextValue(V);
240       return;
241     }
242     llvm_unreachable("No context value for inlined OpenMP region");
243   }
244 
245   /// \brief Lookup the captured field decl for a variable.
246   const FieldDecl *lookup(const VarDecl *VD) const override {
247     if (OuterRegionInfo)
248       return OuterRegionInfo->lookup(VD);
249     // If there is no outer outlined region,no need to lookup in a list of
250     // captured variables, we can use the original one.
251     return nullptr;
252   }
253 
254   FieldDecl *getThisFieldDecl() const override {
255     if (OuterRegionInfo)
256       return OuterRegionInfo->getThisFieldDecl();
257     return nullptr;
258   }
259 
260   /// \brief Get a variable or parameter for storing global thread id
261   /// inside OpenMP construct.
262   const VarDecl *getThreadIDVariable() const override {
263     if (OuterRegionInfo)
264       return OuterRegionInfo->getThreadIDVariable();
265     return nullptr;
266   }
267 
268   /// \brief Get an LValue for the current ThreadID variable.
269   LValue getThreadIDVariableLValue(CodeGenFunction &CGF) override {
270     if (OuterRegionInfo)
271       return OuterRegionInfo->getThreadIDVariableLValue(CGF);
272     llvm_unreachable("No LValue for inlined OpenMP construct");
273   }
274 
275   /// \brief Get the name of the capture helper.
276   StringRef getHelperName() const override {
277     if (auto *OuterRegionInfo = getOldCSI())
278       return OuterRegionInfo->getHelperName();
279     llvm_unreachable("No helper name for inlined OpenMP construct");
280   }
281 
282   void emitUntiedSwitch(CodeGenFunction &CGF) override {
283     if (OuterRegionInfo)
284       OuterRegionInfo->emitUntiedSwitch(CGF);
285   }
286 
287   CodeGenFunction::CGCapturedStmtInfo *getOldCSI() const { return OldCSI; }
288 
289   static bool classof(const CGCapturedStmtInfo *Info) {
290     return CGOpenMPRegionInfo::classof(Info) &&
291            cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == InlinedRegion;
292   }
293 
294   ~CGOpenMPInlinedRegionInfo() override = default;
295 
296 private:
297   /// \brief CodeGen info about outer OpenMP region.
298   CodeGenFunction::CGCapturedStmtInfo *OldCSI;
299   CGOpenMPRegionInfo *OuterRegionInfo;
300 };
301 
302 /// \brief API for captured statement code generation in OpenMP target
303 /// constructs. For this captures, implicit parameters are used instead of the
304 /// captured fields. The name of the target region has to be unique in a given
305 /// application so it is provided by the client, because only the client has
306 /// the information to generate that.
307 class CGOpenMPTargetRegionInfo final : public CGOpenMPRegionInfo {
308 public:
309   CGOpenMPTargetRegionInfo(const CapturedStmt &CS,
310                            const RegionCodeGenTy &CodeGen, StringRef HelperName)
311       : CGOpenMPRegionInfo(CS, TargetRegion, CodeGen, OMPD_target,
312                            /*HasCancel=*/false),
313         HelperName(HelperName) {}
314 
315   /// \brief This is unused for target regions because each starts executing
316   /// with a single thread.
317   const VarDecl *getThreadIDVariable() const override { return nullptr; }
318 
319   /// \brief Get the name of the capture helper.
320   StringRef getHelperName() const override { return HelperName; }
321 
322   static bool classof(const CGCapturedStmtInfo *Info) {
323     return CGOpenMPRegionInfo::classof(Info) &&
324            cast<CGOpenMPRegionInfo>(Info)->getRegionKind() == TargetRegion;
325   }
326 
327 private:
328   StringRef HelperName;
329 };
330 
331 static void EmptyCodeGen(CodeGenFunction &, PrePostActionTy &) {
332   llvm_unreachable("No codegen for expressions");
333 }
334 /// \brief API for generation of expressions captured in a innermost OpenMP
335 /// region.
336 class CGOpenMPInnerExprInfo final : public CGOpenMPInlinedRegionInfo {
337 public:
338   CGOpenMPInnerExprInfo(CodeGenFunction &CGF, const CapturedStmt &CS)
339       : CGOpenMPInlinedRegionInfo(CGF.CapturedStmtInfo, EmptyCodeGen,
340                                   OMPD_unknown,
341                                   /*HasCancel=*/false),
342         PrivScope(CGF) {
343     // Make sure the globals captured in the provided statement are local by
344     // using the privatization logic. We assume the same variable is not
345     // captured more than once.
346     for (auto &C : CS.captures()) {
347       if (!C.capturesVariable() && !C.capturesVariableByCopy())
348         continue;
349 
350       const VarDecl *VD = C.getCapturedVar();
351       if (VD->isLocalVarDeclOrParm())
352         continue;
353 
354       DeclRefExpr DRE(const_cast<VarDecl *>(VD),
355                       /*RefersToEnclosingVariableOrCapture=*/false,
356                       VD->getType().getNonReferenceType(), VK_LValue,
357                       SourceLocation());
358       PrivScope.addPrivate(VD, [&CGF, &DRE]() -> Address {
359         return CGF.EmitLValue(&DRE).getAddress();
360       });
361     }
362     (void)PrivScope.Privatize();
363   }
364 
365   /// \brief Lookup the captured field decl for a variable.
366   const FieldDecl *lookup(const VarDecl *VD) const override {
367     if (auto *FD = CGOpenMPInlinedRegionInfo::lookup(VD))
368       return FD;
369     return nullptr;
370   }
371 
372   /// \brief Emit the captured statement body.
373   void EmitBody(CodeGenFunction &CGF, const Stmt *S) override {
374     llvm_unreachable("No body for expressions");
375   }
376 
377   /// \brief Get a variable or parameter for storing global thread id
378   /// inside OpenMP construct.
379   const VarDecl *getThreadIDVariable() const override {
380     llvm_unreachable("No thread id for expressions");
381   }
382 
383   /// \brief Get the name of the capture helper.
384   StringRef getHelperName() const override {
385     llvm_unreachable("No helper name for expressions");
386   }
387 
388   static bool classof(const CGCapturedStmtInfo *Info) { return false; }
389 
390 private:
391   /// Private scope to capture global variables.
392   CodeGenFunction::OMPPrivateScope PrivScope;
393 };
394 
395 /// \brief RAII for emitting code of OpenMP constructs.
396 class InlinedOpenMPRegionRAII {
397   CodeGenFunction &CGF;
398   llvm::DenseMap<const VarDecl *, FieldDecl *> LambdaCaptureFields;
399   FieldDecl *LambdaThisCaptureField = nullptr;
400   const CodeGen::CGBlockInfo *BlockInfo = nullptr;
401 
402 public:
403   /// \brief Constructs region for combined constructs.
404   /// \param CodeGen Code generation sequence for combined directives. Includes
405   /// a list of functions used for code generation of implicitly inlined
406   /// regions.
407   InlinedOpenMPRegionRAII(CodeGenFunction &CGF, const RegionCodeGenTy &CodeGen,
408                           OpenMPDirectiveKind Kind, bool HasCancel)
409       : CGF(CGF) {
410     // Start emission for the construct.
411     CGF.CapturedStmtInfo = new CGOpenMPInlinedRegionInfo(
412         CGF.CapturedStmtInfo, CodeGen, Kind, HasCancel);
413     std::swap(CGF.LambdaCaptureFields, LambdaCaptureFields);
414     LambdaThisCaptureField = CGF.LambdaThisCaptureField;
415     CGF.LambdaThisCaptureField = nullptr;
416     BlockInfo = CGF.BlockInfo;
417     CGF.BlockInfo = nullptr;
418   }
419 
420   ~InlinedOpenMPRegionRAII() {
421     // Restore original CapturedStmtInfo only if we're done with code emission.
422     auto *OldCSI =
423         cast<CGOpenMPInlinedRegionInfo>(CGF.CapturedStmtInfo)->getOldCSI();
424     delete CGF.CapturedStmtInfo;
425     CGF.CapturedStmtInfo = OldCSI;
426     std::swap(CGF.LambdaCaptureFields, LambdaCaptureFields);
427     CGF.LambdaThisCaptureField = LambdaThisCaptureField;
428     CGF.BlockInfo = BlockInfo;
429   }
430 };
431 
432 /// \brief Values for bit flags used in the ident_t to describe the fields.
433 /// All enumeric elements are named and described in accordance with the code
434 /// from http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h
435 enum OpenMPLocationFlags : unsigned {
436   /// \brief Use trampoline for internal microtask.
437   OMP_IDENT_IMD = 0x01,
438   /// \brief Use c-style ident structure.
439   OMP_IDENT_KMPC = 0x02,
440   /// \brief Atomic reduction option for kmpc_reduce.
441   OMP_ATOMIC_REDUCE = 0x10,
442   /// \brief Explicit 'barrier' directive.
443   OMP_IDENT_BARRIER_EXPL = 0x20,
444   /// \brief Implicit barrier in code.
445   OMP_IDENT_BARRIER_IMPL = 0x40,
446   /// \brief Implicit barrier in 'for' directive.
447   OMP_IDENT_BARRIER_IMPL_FOR = 0x40,
448   /// \brief Implicit barrier in 'sections' directive.
449   OMP_IDENT_BARRIER_IMPL_SECTIONS = 0xC0,
450   /// \brief Implicit barrier in 'single' directive.
451   OMP_IDENT_BARRIER_IMPL_SINGLE = 0x140,
452   /// Call of __kmp_for_static_init for static loop.
453   OMP_IDENT_WORK_LOOP = 0x200,
454   /// Call of __kmp_for_static_init for sections.
455   OMP_IDENT_WORK_SECTIONS = 0x400,
456   /// Call of __kmp_for_static_init for distribute.
457   OMP_IDENT_WORK_DISTRIBUTE = 0x800,
458   LLVM_MARK_AS_BITMASK_ENUM(/*LargestValue=*/OMP_IDENT_WORK_DISTRIBUTE)
459 };
460 
461 /// \brief Describes ident structure that describes a source location.
462 /// All descriptions are taken from
463 /// http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h
464 /// Original structure:
465 /// typedef struct ident {
466 ///    kmp_int32 reserved_1;   /**<  might be used in Fortran;
467 ///                                  see above  */
468 ///    kmp_int32 flags;        /**<  also f.flags; KMP_IDENT_xxx flags;
469 ///                                  KMP_IDENT_KMPC identifies this union
470 ///                                  member  */
471 ///    kmp_int32 reserved_2;   /**<  not really used in Fortran any more;
472 ///                                  see above */
473 ///#if USE_ITT_BUILD
474 ///                            /*  but currently used for storing
475 ///                                region-specific ITT */
476 ///                            /*  contextual information. */
477 ///#endif /* USE_ITT_BUILD */
478 ///    kmp_int32 reserved_3;   /**< source[4] in Fortran, do not use for
479 ///                                 C++  */
480 ///    char const *psource;    /**< String describing the source location.
481 ///                            The string is composed of semi-colon separated
482 //                             fields which describe the source file,
483 ///                            the function and a pair of line numbers that
484 ///                            delimit the construct.
485 ///                             */
486 /// } ident_t;
487 enum IdentFieldIndex {
488   /// \brief might be used in Fortran
489   IdentField_Reserved_1,
490   /// \brief OMP_IDENT_xxx flags; OMP_IDENT_KMPC identifies this union member.
491   IdentField_Flags,
492   /// \brief Not really used in Fortran any more
493   IdentField_Reserved_2,
494   /// \brief Source[4] in Fortran, do not use for C++
495   IdentField_Reserved_3,
496   /// \brief String describing the source location. The string is composed of
497   /// semi-colon separated fields which describe the source file, the function
498   /// and a pair of line numbers that delimit the construct.
499   IdentField_PSource
500 };
501 
502 /// \brief Schedule types for 'omp for' loops (these enumerators are taken from
503 /// the enum sched_type in kmp.h).
504 enum OpenMPSchedType {
505   /// \brief Lower bound for default (unordered) versions.
506   OMP_sch_lower = 32,
507   OMP_sch_static_chunked = 33,
508   OMP_sch_static = 34,
509   OMP_sch_dynamic_chunked = 35,
510   OMP_sch_guided_chunked = 36,
511   OMP_sch_runtime = 37,
512   OMP_sch_auto = 38,
513   /// static with chunk adjustment (e.g., simd)
514   OMP_sch_static_balanced_chunked = 45,
515   /// \brief Lower bound for 'ordered' versions.
516   OMP_ord_lower = 64,
517   OMP_ord_static_chunked = 65,
518   OMP_ord_static = 66,
519   OMP_ord_dynamic_chunked = 67,
520   OMP_ord_guided_chunked = 68,
521   OMP_ord_runtime = 69,
522   OMP_ord_auto = 70,
523   OMP_sch_default = OMP_sch_static,
524   /// \brief dist_schedule types
525   OMP_dist_sch_static_chunked = 91,
526   OMP_dist_sch_static = 92,
527   /// Support for OpenMP 4.5 monotonic and nonmonotonic schedule modifiers.
528   /// Set if the monotonic schedule modifier was present.
529   OMP_sch_modifier_monotonic = (1 << 29),
530   /// Set if the nonmonotonic schedule modifier was present.
531   OMP_sch_modifier_nonmonotonic = (1 << 30),
532 };
533 
534 enum OpenMPRTLFunction {
535   /// \brief Call to void __kmpc_fork_call(ident_t *loc, kmp_int32 argc,
536   /// kmpc_micro microtask, ...);
537   OMPRTL__kmpc_fork_call,
538   /// \brief Call to void *__kmpc_threadprivate_cached(ident_t *loc,
539   /// kmp_int32 global_tid, void *data, size_t size, void ***cache);
540   OMPRTL__kmpc_threadprivate_cached,
541   /// \brief Call to void __kmpc_threadprivate_register( ident_t *,
542   /// void *data, kmpc_ctor ctor, kmpc_cctor cctor, kmpc_dtor dtor);
543   OMPRTL__kmpc_threadprivate_register,
544   // Call to __kmpc_int32 kmpc_global_thread_num(ident_t *loc);
545   OMPRTL__kmpc_global_thread_num,
546   // Call to void __kmpc_critical(ident_t *loc, kmp_int32 global_tid,
547   // kmp_critical_name *crit);
548   OMPRTL__kmpc_critical,
549   // Call to void __kmpc_critical_with_hint(ident_t *loc, kmp_int32
550   // global_tid, kmp_critical_name *crit, uintptr_t hint);
551   OMPRTL__kmpc_critical_with_hint,
552   // Call to void __kmpc_end_critical(ident_t *loc, kmp_int32 global_tid,
553   // kmp_critical_name *crit);
554   OMPRTL__kmpc_end_critical,
555   // Call to kmp_int32 __kmpc_cancel_barrier(ident_t *loc, kmp_int32
556   // global_tid);
557   OMPRTL__kmpc_cancel_barrier,
558   // Call to void __kmpc_barrier(ident_t *loc, kmp_int32 global_tid);
559   OMPRTL__kmpc_barrier,
560   // Call to void __kmpc_for_static_fini(ident_t *loc, kmp_int32 global_tid);
561   OMPRTL__kmpc_for_static_fini,
562   // Call to void __kmpc_serialized_parallel(ident_t *loc, kmp_int32
563   // global_tid);
564   OMPRTL__kmpc_serialized_parallel,
565   // Call to void __kmpc_end_serialized_parallel(ident_t *loc, kmp_int32
566   // global_tid);
567   OMPRTL__kmpc_end_serialized_parallel,
568   // Call to void __kmpc_push_num_threads(ident_t *loc, kmp_int32 global_tid,
569   // kmp_int32 num_threads);
570   OMPRTL__kmpc_push_num_threads,
571   // Call to void __kmpc_flush(ident_t *loc);
572   OMPRTL__kmpc_flush,
573   // Call to kmp_int32 __kmpc_master(ident_t *, kmp_int32 global_tid);
574   OMPRTL__kmpc_master,
575   // Call to void __kmpc_end_master(ident_t *, kmp_int32 global_tid);
576   OMPRTL__kmpc_end_master,
577   // Call to kmp_int32 __kmpc_omp_taskyield(ident_t *, kmp_int32 global_tid,
578   // int end_part);
579   OMPRTL__kmpc_omp_taskyield,
580   // Call to kmp_int32 __kmpc_single(ident_t *, kmp_int32 global_tid);
581   OMPRTL__kmpc_single,
582   // Call to void __kmpc_end_single(ident_t *, kmp_int32 global_tid);
583   OMPRTL__kmpc_end_single,
584   // Call to kmp_task_t * __kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid,
585   // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds,
586   // kmp_routine_entry_t *task_entry);
587   OMPRTL__kmpc_omp_task_alloc,
588   // Call to kmp_int32 __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t *
589   // new_task);
590   OMPRTL__kmpc_omp_task,
591   // Call to void __kmpc_copyprivate(ident_t *loc, kmp_int32 global_tid,
592   // size_t cpy_size, void *cpy_data, void(*cpy_func)(void *, void *),
593   // kmp_int32 didit);
594   OMPRTL__kmpc_copyprivate,
595   // Call to kmp_int32 __kmpc_reduce(ident_t *loc, kmp_int32 global_tid,
596   // kmp_int32 num_vars, size_t reduce_size, void *reduce_data, void
597   // (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name *lck);
598   OMPRTL__kmpc_reduce,
599   // Call to kmp_int32 __kmpc_reduce_nowait(ident_t *loc, kmp_int32
600   // global_tid, kmp_int32 num_vars, size_t reduce_size, void *reduce_data,
601   // void (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name
602   // *lck);
603   OMPRTL__kmpc_reduce_nowait,
604   // Call to void __kmpc_end_reduce(ident_t *loc, kmp_int32 global_tid,
605   // kmp_critical_name *lck);
606   OMPRTL__kmpc_end_reduce,
607   // Call to void __kmpc_end_reduce_nowait(ident_t *loc, kmp_int32 global_tid,
608   // kmp_critical_name *lck);
609   OMPRTL__kmpc_end_reduce_nowait,
610   // Call to void __kmpc_omp_task_begin_if0(ident_t *, kmp_int32 gtid,
611   // kmp_task_t * new_task);
612   OMPRTL__kmpc_omp_task_begin_if0,
613   // Call to void __kmpc_omp_task_complete_if0(ident_t *, kmp_int32 gtid,
614   // kmp_task_t * new_task);
615   OMPRTL__kmpc_omp_task_complete_if0,
616   // Call to void __kmpc_ordered(ident_t *loc, kmp_int32 global_tid);
617   OMPRTL__kmpc_ordered,
618   // Call to void __kmpc_end_ordered(ident_t *loc, kmp_int32 global_tid);
619   OMPRTL__kmpc_end_ordered,
620   // Call to kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32
621   // global_tid);
622   OMPRTL__kmpc_omp_taskwait,
623   // Call to void __kmpc_taskgroup(ident_t *loc, kmp_int32 global_tid);
624   OMPRTL__kmpc_taskgroup,
625   // Call to void __kmpc_end_taskgroup(ident_t *loc, kmp_int32 global_tid);
626   OMPRTL__kmpc_end_taskgroup,
627   // Call to void __kmpc_push_proc_bind(ident_t *loc, kmp_int32 global_tid,
628   // int proc_bind);
629   OMPRTL__kmpc_push_proc_bind,
630   // Call to kmp_int32 __kmpc_omp_task_with_deps(ident_t *loc_ref, kmp_int32
631   // gtid, kmp_task_t * new_task, kmp_int32 ndeps, kmp_depend_info_t
632   // *dep_list, kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list);
633   OMPRTL__kmpc_omp_task_with_deps,
634   // Call to void __kmpc_omp_wait_deps(ident_t *loc_ref, kmp_int32
635   // gtid, kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32
636   // ndeps_noalias, kmp_depend_info_t *noalias_dep_list);
637   OMPRTL__kmpc_omp_wait_deps,
638   // Call to kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32
639   // global_tid, kmp_int32 cncl_kind);
640   OMPRTL__kmpc_cancellationpoint,
641   // Call to kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid,
642   // kmp_int32 cncl_kind);
643   OMPRTL__kmpc_cancel,
644   // Call to void __kmpc_push_num_teams(ident_t *loc, kmp_int32 global_tid,
645   // kmp_int32 num_teams, kmp_int32 thread_limit);
646   OMPRTL__kmpc_push_num_teams,
647   // Call to void __kmpc_fork_teams(ident_t *loc, kmp_int32 argc, kmpc_micro
648   // microtask, ...);
649   OMPRTL__kmpc_fork_teams,
650   // Call to void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int
651   // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int
652   // sched, kmp_uint64 grainsize, void *task_dup);
653   OMPRTL__kmpc_taskloop,
654   // Call to void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid, kmp_int32
655   // num_dims, struct kmp_dim *dims);
656   OMPRTL__kmpc_doacross_init,
657   // Call to void __kmpc_doacross_fini(ident_t *loc, kmp_int32 gtid);
658   OMPRTL__kmpc_doacross_fini,
659   // Call to void __kmpc_doacross_post(ident_t *loc, kmp_int32 gtid, kmp_int64
660   // *vec);
661   OMPRTL__kmpc_doacross_post,
662   // Call to void __kmpc_doacross_wait(ident_t *loc, kmp_int32 gtid, kmp_int64
663   // *vec);
664   OMPRTL__kmpc_doacross_wait,
665   // Call to void *__kmpc_task_reduction_init(int gtid, int num_data, void
666   // *data);
667   OMPRTL__kmpc_task_reduction_init,
668   // Call to void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void
669   // *d);
670   OMPRTL__kmpc_task_reduction_get_th_data,
671 
672   //
673   // Offloading related calls
674   //
675   // Call to int32_t __tgt_target(int64_t device_id, void *host_ptr, int32_t
676   // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
677   // *arg_types);
678   OMPRTL__tgt_target,
679   // Call to int32_t __tgt_target_nowait(int64_t device_id, void *host_ptr,
680   // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
681   // *arg_types);
682   OMPRTL__tgt_target_nowait,
683   // Call to int32_t __tgt_target_teams(int64_t device_id, void *host_ptr,
684   // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
685   // *arg_types, int32_t num_teams, int32_t thread_limit);
686   OMPRTL__tgt_target_teams,
687   // Call to int32_t __tgt_target_teams_nowait(int64_t device_id, void
688   // *host_ptr, int32_t arg_num, void** args_base, void **args, size_t
689   // *arg_sizes, int64_t *arg_types, int32_t num_teams, int32_t thread_limit);
690   OMPRTL__tgt_target_teams_nowait,
691   // Call to void __tgt_register_lib(__tgt_bin_desc *desc);
692   OMPRTL__tgt_register_lib,
693   // Call to void __tgt_unregister_lib(__tgt_bin_desc *desc);
694   OMPRTL__tgt_unregister_lib,
695   // Call to void __tgt_target_data_begin(int64_t device_id, int32_t arg_num,
696   // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
697   OMPRTL__tgt_target_data_begin,
698   // Call to void __tgt_target_data_begin_nowait(int64_t device_id, int32_t
699   // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
700   // *arg_types);
701   OMPRTL__tgt_target_data_begin_nowait,
702   // Call to void __tgt_target_data_end(int64_t device_id, int32_t arg_num,
703   // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
704   OMPRTL__tgt_target_data_end,
705   // Call to void __tgt_target_data_end_nowait(int64_t device_id, int32_t
706   // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
707   // *arg_types);
708   OMPRTL__tgt_target_data_end_nowait,
709   // Call to void __tgt_target_data_update(int64_t device_id, int32_t arg_num,
710   // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
711   OMPRTL__tgt_target_data_update,
712   // Call to void __tgt_target_data_update_nowait(int64_t device_id, int32_t
713   // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
714   // *arg_types);
715   OMPRTL__tgt_target_data_update_nowait,
716 };
717 
718 /// A basic class for pre|post-action for advanced codegen sequence for OpenMP
719 /// region.
720 class CleanupTy final : public EHScopeStack::Cleanup {
721   PrePostActionTy *Action;
722 
723 public:
724   explicit CleanupTy(PrePostActionTy *Action) : Action(Action) {}
725   void Emit(CodeGenFunction &CGF, Flags /*flags*/) override {
726     if (!CGF.HaveInsertPoint())
727       return;
728     Action->Exit(CGF);
729   }
730 };
731 
732 } // anonymous namespace
733 
734 void RegionCodeGenTy::operator()(CodeGenFunction &CGF) const {
735   CodeGenFunction::RunCleanupsScope Scope(CGF);
736   if (PrePostAction) {
737     CGF.EHStack.pushCleanup<CleanupTy>(NormalAndEHCleanup, PrePostAction);
738     Callback(CodeGen, CGF, *PrePostAction);
739   } else {
740     PrePostActionTy Action;
741     Callback(CodeGen, CGF, Action);
742   }
743 }
744 
745 /// Check if the combiner is a call to UDR combiner and if it is so return the
746 /// UDR decl used for reduction.
747 static const OMPDeclareReductionDecl *
748 getReductionInit(const Expr *ReductionOp) {
749   if (auto *CE = dyn_cast<CallExpr>(ReductionOp))
750     if (auto *OVE = dyn_cast<OpaqueValueExpr>(CE->getCallee()))
751       if (auto *DRE =
752               dyn_cast<DeclRefExpr>(OVE->getSourceExpr()->IgnoreImpCasts()))
753         if (auto *DRD = dyn_cast<OMPDeclareReductionDecl>(DRE->getDecl()))
754           return DRD;
755   return nullptr;
756 }
757 
758 static void emitInitWithReductionInitializer(CodeGenFunction &CGF,
759                                              const OMPDeclareReductionDecl *DRD,
760                                              const Expr *InitOp,
761                                              Address Private, Address Original,
762                                              QualType Ty) {
763   if (DRD->getInitializer()) {
764     std::pair<llvm::Function *, llvm::Function *> Reduction =
765         CGF.CGM.getOpenMPRuntime().getUserDefinedReduction(DRD);
766     auto *CE = cast<CallExpr>(InitOp);
767     auto *OVE = cast<OpaqueValueExpr>(CE->getCallee());
768     const Expr *LHS = CE->getArg(/*Arg=*/0)->IgnoreParenImpCasts();
769     const Expr *RHS = CE->getArg(/*Arg=*/1)->IgnoreParenImpCasts();
770     auto *LHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(LHS)->getSubExpr());
771     auto *RHSDRE = cast<DeclRefExpr>(cast<UnaryOperator>(RHS)->getSubExpr());
772     CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
773     PrivateScope.addPrivate(cast<VarDecl>(LHSDRE->getDecl()),
774                             [=]() -> Address { return Private; });
775     PrivateScope.addPrivate(cast<VarDecl>(RHSDRE->getDecl()),
776                             [=]() -> Address { return Original; });
777     (void)PrivateScope.Privatize();
778     RValue Func = RValue::get(Reduction.second);
779     CodeGenFunction::OpaqueValueMapping Map(CGF, OVE, Func);
780     CGF.EmitIgnoredExpr(InitOp);
781   } else {
782     llvm::Constant *Init = CGF.CGM.EmitNullConstant(Ty);
783     auto *GV = new llvm::GlobalVariable(
784         CGF.CGM.getModule(), Init->getType(), /*isConstant=*/true,
785         llvm::GlobalValue::PrivateLinkage, Init, ".init");
786     LValue LV = CGF.MakeNaturalAlignAddrLValue(GV, Ty);
787     RValue InitRVal;
788     switch (CGF.getEvaluationKind(Ty)) {
789     case TEK_Scalar:
790       InitRVal = CGF.EmitLoadOfLValue(LV, SourceLocation());
791       break;
792     case TEK_Complex:
793       InitRVal =
794           RValue::getComplex(CGF.EmitLoadOfComplex(LV, SourceLocation()));
795       break;
796     case TEK_Aggregate:
797       InitRVal = RValue::getAggregate(LV.getAddress());
798       break;
799     }
800     OpaqueValueExpr OVE(SourceLocation(), Ty, VK_RValue);
801     CodeGenFunction::OpaqueValueMapping OpaqueMap(CGF, &OVE, InitRVal);
802     CGF.EmitAnyExprToMem(&OVE, Private, Ty.getQualifiers(),
803                          /*IsInitializer=*/false);
804   }
805 }
806 
807 /// \brief Emit initialization of arrays of complex types.
808 /// \param DestAddr Address of the array.
809 /// \param Type Type of array.
810 /// \param Init Initial expression of array.
811 /// \param SrcAddr Address of the original array.
812 static void EmitOMPAggregateInit(CodeGenFunction &CGF, Address DestAddr,
813                                  QualType Type, bool EmitDeclareReductionInit,
814                                  const Expr *Init,
815                                  const OMPDeclareReductionDecl *DRD,
816                                  Address SrcAddr = Address::invalid()) {
817   // Perform element-by-element initialization.
818   QualType ElementTy;
819 
820   // Drill down to the base element type on both arrays.
821   auto ArrayTy = Type->getAsArrayTypeUnsafe();
822   auto NumElements = CGF.emitArrayLength(ArrayTy, ElementTy, DestAddr);
823   DestAddr =
824       CGF.Builder.CreateElementBitCast(DestAddr, DestAddr.getElementType());
825   if (DRD)
826     SrcAddr =
827         CGF.Builder.CreateElementBitCast(SrcAddr, DestAddr.getElementType());
828 
829   llvm::Value *SrcBegin = nullptr;
830   if (DRD)
831     SrcBegin = SrcAddr.getPointer();
832   auto DestBegin = DestAddr.getPointer();
833   // Cast from pointer to array type to pointer to single element.
834   auto DestEnd = CGF.Builder.CreateGEP(DestBegin, NumElements);
835   // The basic structure here is a while-do loop.
836   auto BodyBB = CGF.createBasicBlock("omp.arrayinit.body");
837   auto DoneBB = CGF.createBasicBlock("omp.arrayinit.done");
838   auto IsEmpty =
839       CGF.Builder.CreateICmpEQ(DestBegin, DestEnd, "omp.arrayinit.isempty");
840   CGF.Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB);
841 
842   // Enter the loop body, making that address the current address.
843   auto EntryBB = CGF.Builder.GetInsertBlock();
844   CGF.EmitBlock(BodyBB);
845 
846   CharUnits ElementSize = CGF.getContext().getTypeSizeInChars(ElementTy);
847 
848   llvm::PHINode *SrcElementPHI = nullptr;
849   Address SrcElementCurrent = Address::invalid();
850   if (DRD) {
851     SrcElementPHI = CGF.Builder.CreatePHI(SrcBegin->getType(), 2,
852                                           "omp.arraycpy.srcElementPast");
853     SrcElementPHI->addIncoming(SrcBegin, EntryBB);
854     SrcElementCurrent =
855         Address(SrcElementPHI,
856                 SrcAddr.getAlignment().alignmentOfArrayElement(ElementSize));
857   }
858   llvm::PHINode *DestElementPHI = CGF.Builder.CreatePHI(
859       DestBegin->getType(), 2, "omp.arraycpy.destElementPast");
860   DestElementPHI->addIncoming(DestBegin, EntryBB);
861   Address DestElementCurrent =
862       Address(DestElementPHI,
863               DestAddr.getAlignment().alignmentOfArrayElement(ElementSize));
864 
865   // Emit copy.
866   {
867     CodeGenFunction::RunCleanupsScope InitScope(CGF);
868     if (EmitDeclareReductionInit) {
869       emitInitWithReductionInitializer(CGF, DRD, Init, DestElementCurrent,
870                                        SrcElementCurrent, ElementTy);
871     } else
872       CGF.EmitAnyExprToMem(Init, DestElementCurrent, ElementTy.getQualifiers(),
873                            /*IsInitializer=*/false);
874   }
875 
876   if (DRD) {
877     // Shift the address forward by one element.
878     auto SrcElementNext = CGF.Builder.CreateConstGEP1_32(
879         SrcElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
880     SrcElementPHI->addIncoming(SrcElementNext, CGF.Builder.GetInsertBlock());
881   }
882 
883   // Shift the address forward by one element.
884   auto DestElementNext = CGF.Builder.CreateConstGEP1_32(
885       DestElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
886   // Check whether we've reached the end.
887   auto Done =
888       CGF.Builder.CreateICmpEQ(DestElementNext, DestEnd, "omp.arraycpy.done");
889   CGF.Builder.CreateCondBr(Done, DoneBB, BodyBB);
890   DestElementPHI->addIncoming(DestElementNext, CGF.Builder.GetInsertBlock());
891 
892   // Done.
893   CGF.EmitBlock(DoneBB, /*IsFinished=*/true);
894 }
895 
896 LValue ReductionCodeGen::emitSharedLValue(CodeGenFunction &CGF, const Expr *E) {
897   return CGF.EmitOMPSharedLValue(E);
898 }
899 
900 LValue ReductionCodeGen::emitSharedLValueUB(CodeGenFunction &CGF,
901                                             const Expr *E) {
902   if (const auto *OASE = dyn_cast<OMPArraySectionExpr>(E))
903     return CGF.EmitOMPArraySectionExpr(OASE, /*IsLowerBound=*/false);
904   return LValue();
905 }
906 
907 void ReductionCodeGen::emitAggregateInitialization(
908     CodeGenFunction &CGF, unsigned N, Address PrivateAddr, LValue SharedLVal,
909     const OMPDeclareReductionDecl *DRD) {
910   // Emit VarDecl with copy init for arrays.
911   // Get the address of the original variable captured in current
912   // captured region.
913   auto *PrivateVD =
914       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
915   bool EmitDeclareReductionInit =
916       DRD && (DRD->getInitializer() || !PrivateVD->hasInit());
917   EmitOMPAggregateInit(CGF, PrivateAddr, PrivateVD->getType(),
918                        EmitDeclareReductionInit,
919                        EmitDeclareReductionInit ? ClausesData[N].ReductionOp
920                                                 : PrivateVD->getInit(),
921                        DRD, SharedLVal.getAddress());
922 }
923 
924 ReductionCodeGen::ReductionCodeGen(ArrayRef<const Expr *> Shareds,
925                                    ArrayRef<const Expr *> Privates,
926                                    ArrayRef<const Expr *> ReductionOps) {
927   ClausesData.reserve(Shareds.size());
928   SharedAddresses.reserve(Shareds.size());
929   Sizes.reserve(Shareds.size());
930   BaseDecls.reserve(Shareds.size());
931   auto IPriv = Privates.begin();
932   auto IRed = ReductionOps.begin();
933   for (const auto *Ref : Shareds) {
934     ClausesData.emplace_back(Ref, *IPriv, *IRed);
935     std::advance(IPriv, 1);
936     std::advance(IRed, 1);
937   }
938 }
939 
940 void ReductionCodeGen::emitSharedLValue(CodeGenFunction &CGF, unsigned N) {
941   assert(SharedAddresses.size() == N &&
942          "Number of generated lvalues must be exactly N.");
943   LValue First = emitSharedLValue(CGF, ClausesData[N].Ref);
944   LValue Second = emitSharedLValueUB(CGF, ClausesData[N].Ref);
945   SharedAddresses.emplace_back(First, Second);
946 }
947 
948 void ReductionCodeGen::emitAggregateType(CodeGenFunction &CGF, unsigned N) {
949   auto *PrivateVD =
950       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
951   QualType PrivateType = PrivateVD->getType();
952   bool AsArraySection = isa<OMPArraySectionExpr>(ClausesData[N].Ref);
953   if (!PrivateType->isVariablyModifiedType()) {
954     Sizes.emplace_back(
955         CGF.getTypeSize(
956             SharedAddresses[N].first.getType().getNonReferenceType()),
957         nullptr);
958     return;
959   }
960   llvm::Value *Size;
961   llvm::Value *SizeInChars;
962   llvm::Type *ElemType =
963       cast<llvm::PointerType>(SharedAddresses[N].first.getPointer()->getType())
964           ->getElementType();
965   auto *ElemSizeOf = llvm::ConstantExpr::getSizeOf(ElemType);
966   if (AsArraySection) {
967     Size = CGF.Builder.CreatePtrDiff(SharedAddresses[N].second.getPointer(),
968                                      SharedAddresses[N].first.getPointer());
969     Size = CGF.Builder.CreateNUWAdd(
970         Size, llvm::ConstantInt::get(Size->getType(), /*V=*/1));
971     SizeInChars = CGF.Builder.CreateNUWMul(Size, ElemSizeOf);
972   } else {
973     SizeInChars = CGF.getTypeSize(
974         SharedAddresses[N].first.getType().getNonReferenceType());
975     Size = CGF.Builder.CreateExactUDiv(SizeInChars, ElemSizeOf);
976   }
977   Sizes.emplace_back(SizeInChars, Size);
978   CodeGenFunction::OpaqueValueMapping OpaqueMap(
979       CGF,
980       cast<OpaqueValueExpr>(
981           CGF.getContext().getAsVariableArrayType(PrivateType)->getSizeExpr()),
982       RValue::get(Size));
983   CGF.EmitVariablyModifiedType(PrivateType);
984 }
985 
986 void ReductionCodeGen::emitAggregateType(CodeGenFunction &CGF, unsigned N,
987                                          llvm::Value *Size) {
988   auto *PrivateVD =
989       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
990   QualType PrivateType = PrivateVD->getType();
991   if (!PrivateType->isVariablyModifiedType()) {
992     assert(!Size && !Sizes[N].second &&
993            "Size should be nullptr for non-variably modified reduction "
994            "items.");
995     return;
996   }
997   CodeGenFunction::OpaqueValueMapping OpaqueMap(
998       CGF,
999       cast<OpaqueValueExpr>(
1000           CGF.getContext().getAsVariableArrayType(PrivateType)->getSizeExpr()),
1001       RValue::get(Size));
1002   CGF.EmitVariablyModifiedType(PrivateType);
1003 }
1004 
1005 void ReductionCodeGen::emitInitialization(
1006     CodeGenFunction &CGF, unsigned N, Address PrivateAddr, LValue SharedLVal,
1007     llvm::function_ref<bool(CodeGenFunction &)> DefaultInit) {
1008   assert(SharedAddresses.size() > N && "No variable was generated");
1009   auto *PrivateVD =
1010       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
1011   auto *DRD = getReductionInit(ClausesData[N].ReductionOp);
1012   QualType PrivateType = PrivateVD->getType();
1013   PrivateAddr = CGF.Builder.CreateElementBitCast(
1014       PrivateAddr, CGF.ConvertTypeForMem(PrivateType));
1015   QualType SharedType = SharedAddresses[N].first.getType();
1016   SharedLVal = CGF.MakeAddrLValue(
1017       CGF.Builder.CreateElementBitCast(SharedLVal.getAddress(),
1018                                        CGF.ConvertTypeForMem(SharedType)),
1019       SharedType, SharedAddresses[N].first.getBaseInfo(),
1020       CGF.CGM.getTBAAInfoForSubobject(SharedAddresses[N].first, SharedType));
1021   if (CGF.getContext().getAsArrayType(PrivateVD->getType())) {
1022     emitAggregateInitialization(CGF, N, PrivateAddr, SharedLVal, DRD);
1023   } else if (DRD && (DRD->getInitializer() || !PrivateVD->hasInit())) {
1024     emitInitWithReductionInitializer(CGF, DRD, ClausesData[N].ReductionOp,
1025                                      PrivateAddr, SharedLVal.getAddress(),
1026                                      SharedLVal.getType());
1027   } else if (!DefaultInit(CGF) && PrivateVD->hasInit() &&
1028              !CGF.isTrivialInitializer(PrivateVD->getInit())) {
1029     CGF.EmitAnyExprToMem(PrivateVD->getInit(), PrivateAddr,
1030                          PrivateVD->getType().getQualifiers(),
1031                          /*IsInitializer=*/false);
1032   }
1033 }
1034 
1035 bool ReductionCodeGen::needCleanups(unsigned N) {
1036   auto *PrivateVD =
1037       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
1038   QualType PrivateType = PrivateVD->getType();
1039   QualType::DestructionKind DTorKind = PrivateType.isDestructedType();
1040   return DTorKind != QualType::DK_none;
1041 }
1042 
1043 void ReductionCodeGen::emitCleanups(CodeGenFunction &CGF, unsigned N,
1044                                     Address PrivateAddr) {
1045   auto *PrivateVD =
1046       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Private)->getDecl());
1047   QualType PrivateType = PrivateVD->getType();
1048   QualType::DestructionKind DTorKind = PrivateType.isDestructedType();
1049   if (needCleanups(N)) {
1050     PrivateAddr = CGF.Builder.CreateElementBitCast(
1051         PrivateAddr, CGF.ConvertTypeForMem(PrivateType));
1052     CGF.pushDestroy(DTorKind, PrivateAddr, PrivateType);
1053   }
1054 }
1055 
1056 static LValue loadToBegin(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy,
1057                           LValue BaseLV) {
1058   BaseTy = BaseTy.getNonReferenceType();
1059   while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) &&
1060          !CGF.getContext().hasSameType(BaseTy, ElTy)) {
1061     if (auto *PtrTy = BaseTy->getAs<PointerType>())
1062       BaseLV = CGF.EmitLoadOfPointerLValue(BaseLV.getAddress(), PtrTy);
1063     else {
1064       LValue RefLVal = CGF.MakeAddrLValue(BaseLV.getAddress(), BaseTy);
1065       BaseLV = CGF.EmitLoadOfReferenceLValue(RefLVal);
1066     }
1067     BaseTy = BaseTy->getPointeeType();
1068   }
1069   return CGF.MakeAddrLValue(
1070       CGF.Builder.CreateElementBitCast(BaseLV.getAddress(),
1071                                        CGF.ConvertTypeForMem(ElTy)),
1072       BaseLV.getType(), BaseLV.getBaseInfo(),
1073       CGF.CGM.getTBAAInfoForSubobject(BaseLV, BaseLV.getType()));
1074 }
1075 
1076 static Address castToBase(CodeGenFunction &CGF, QualType BaseTy, QualType ElTy,
1077                           llvm::Type *BaseLVType, CharUnits BaseLVAlignment,
1078                           llvm::Value *Addr) {
1079   Address Tmp = Address::invalid();
1080   Address TopTmp = Address::invalid();
1081   Address MostTopTmp = Address::invalid();
1082   BaseTy = BaseTy.getNonReferenceType();
1083   while ((BaseTy->isPointerType() || BaseTy->isReferenceType()) &&
1084          !CGF.getContext().hasSameType(BaseTy, ElTy)) {
1085     Tmp = CGF.CreateMemTemp(BaseTy);
1086     if (TopTmp.isValid())
1087       CGF.Builder.CreateStore(Tmp.getPointer(), TopTmp);
1088     else
1089       MostTopTmp = Tmp;
1090     TopTmp = Tmp;
1091     BaseTy = BaseTy->getPointeeType();
1092   }
1093   llvm::Type *Ty = BaseLVType;
1094   if (Tmp.isValid())
1095     Ty = Tmp.getElementType();
1096   Addr = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(Addr, Ty);
1097   if (Tmp.isValid()) {
1098     CGF.Builder.CreateStore(Addr, Tmp);
1099     return MostTopTmp;
1100   }
1101   return Address(Addr, BaseLVAlignment);
1102 }
1103 
1104 Address ReductionCodeGen::adjustPrivateAddress(CodeGenFunction &CGF, unsigned N,
1105                                                Address PrivateAddr) {
1106   const DeclRefExpr *DE;
1107   const VarDecl *OrigVD = nullptr;
1108   if (auto *OASE = dyn_cast<OMPArraySectionExpr>(ClausesData[N].Ref)) {
1109     auto *Base = OASE->getBase()->IgnoreParenImpCasts();
1110     while (auto *TempOASE = dyn_cast<OMPArraySectionExpr>(Base))
1111       Base = TempOASE->getBase()->IgnoreParenImpCasts();
1112     while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
1113       Base = TempASE->getBase()->IgnoreParenImpCasts();
1114     DE = cast<DeclRefExpr>(Base);
1115     OrigVD = cast<VarDecl>(DE->getDecl());
1116   } else if (auto *ASE = dyn_cast<ArraySubscriptExpr>(ClausesData[N].Ref)) {
1117     auto *Base = ASE->getBase()->IgnoreParenImpCasts();
1118     while (auto *TempASE = dyn_cast<ArraySubscriptExpr>(Base))
1119       Base = TempASE->getBase()->IgnoreParenImpCasts();
1120     DE = cast<DeclRefExpr>(Base);
1121     OrigVD = cast<VarDecl>(DE->getDecl());
1122   }
1123   if (OrigVD) {
1124     BaseDecls.emplace_back(OrigVD);
1125     auto OriginalBaseLValue = CGF.EmitLValue(DE);
1126     LValue BaseLValue =
1127         loadToBegin(CGF, OrigVD->getType(), SharedAddresses[N].first.getType(),
1128                     OriginalBaseLValue);
1129     llvm::Value *Adjustment = CGF.Builder.CreatePtrDiff(
1130         BaseLValue.getPointer(), SharedAddresses[N].first.getPointer());
1131     llvm::Value *PrivatePointer =
1132         CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
1133             PrivateAddr.getPointer(),
1134             SharedAddresses[N].first.getAddress().getType());
1135     llvm::Value *Ptr = CGF.Builder.CreateGEP(PrivatePointer, Adjustment);
1136     return castToBase(CGF, OrigVD->getType(),
1137                       SharedAddresses[N].first.getType(),
1138                       OriginalBaseLValue.getAddress().getType(),
1139                       OriginalBaseLValue.getAlignment(), Ptr);
1140   }
1141   BaseDecls.emplace_back(
1142       cast<VarDecl>(cast<DeclRefExpr>(ClausesData[N].Ref)->getDecl()));
1143   return PrivateAddr;
1144 }
1145 
1146 bool ReductionCodeGen::usesReductionInitializer(unsigned N) const {
1147   auto *DRD = getReductionInit(ClausesData[N].ReductionOp);
1148   return DRD && DRD->getInitializer();
1149 }
1150 
1151 LValue CGOpenMPRegionInfo::getThreadIDVariableLValue(CodeGenFunction &CGF) {
1152   return CGF.EmitLoadOfPointerLValue(
1153       CGF.GetAddrOfLocalVar(getThreadIDVariable()),
1154       getThreadIDVariable()->getType()->castAs<PointerType>());
1155 }
1156 
1157 void CGOpenMPRegionInfo::EmitBody(CodeGenFunction &CGF, const Stmt * /*S*/) {
1158   if (!CGF.HaveInsertPoint())
1159     return;
1160   // 1.2.2 OpenMP Language Terminology
1161   // Structured block - An executable statement with a single entry at the
1162   // top and a single exit at the bottom.
1163   // The point of exit cannot be a branch out of the structured block.
1164   // longjmp() and throw() must not violate the entry/exit criteria.
1165   CGF.EHStack.pushTerminate();
1166   CodeGen(CGF);
1167   CGF.EHStack.popTerminate();
1168 }
1169 
1170 LValue CGOpenMPTaskOutlinedRegionInfo::getThreadIDVariableLValue(
1171     CodeGenFunction &CGF) {
1172   return CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(getThreadIDVariable()),
1173                             getThreadIDVariable()->getType(),
1174                             AlignmentSource::Decl);
1175 }
1176 
1177 CGOpenMPRuntime::CGOpenMPRuntime(CodeGenModule &CGM)
1178     : CGM(CGM), OffloadEntriesInfoManager(CGM) {
1179   IdentTy = llvm::StructType::create(
1180       "ident_t", CGM.Int32Ty /* reserved_1 */, CGM.Int32Ty /* flags */,
1181       CGM.Int32Ty /* reserved_2 */, CGM.Int32Ty /* reserved_3 */,
1182       CGM.Int8PtrTy /* psource */);
1183   KmpCriticalNameTy = llvm::ArrayType::get(CGM.Int32Ty, /*NumElements*/ 8);
1184 
1185   loadOffloadInfoMetadata();
1186 }
1187 
1188 void CGOpenMPRuntime::clear() {
1189   InternalVars.clear();
1190 }
1191 
1192 static llvm::Function *
1193 emitCombinerOrInitializer(CodeGenModule &CGM, QualType Ty,
1194                           const Expr *CombinerInitializer, const VarDecl *In,
1195                           const VarDecl *Out, bool IsCombiner) {
1196   // void .omp_combiner.(Ty *in, Ty *out);
1197   auto &C = CGM.getContext();
1198   QualType PtrTy = C.getPointerType(Ty).withRestrict();
1199   FunctionArgList Args;
1200   ImplicitParamDecl OmpOutParm(C, /*DC=*/nullptr, Out->getLocation(),
1201                                /*Id=*/nullptr, PtrTy, ImplicitParamDecl::Other);
1202   ImplicitParamDecl OmpInParm(C, /*DC=*/nullptr, In->getLocation(),
1203                               /*Id=*/nullptr, PtrTy, ImplicitParamDecl::Other);
1204   Args.push_back(&OmpOutParm);
1205   Args.push_back(&OmpInParm);
1206   auto &FnInfo =
1207       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
1208   auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo);
1209   auto *Fn = llvm::Function::Create(
1210       FnTy, llvm::GlobalValue::InternalLinkage,
1211       IsCombiner ? ".omp_combiner." : ".omp_initializer.", &CGM.getModule());
1212   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo);
1213   Fn->removeFnAttr(llvm::Attribute::NoInline);
1214   Fn->removeFnAttr(llvm::Attribute::OptimizeNone);
1215   Fn->addFnAttr(llvm::Attribute::AlwaysInline);
1216   CodeGenFunction CGF(CGM);
1217   // Map "T omp_in;" variable to "*omp_in_parm" value in all expressions.
1218   // Map "T omp_out;" variable to "*omp_out_parm" value in all expressions.
1219   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, In->getLocation(),
1220                     Out->getLocation());
1221   CodeGenFunction::OMPPrivateScope Scope(CGF);
1222   Address AddrIn = CGF.GetAddrOfLocalVar(&OmpInParm);
1223   Scope.addPrivate(In, [&CGF, AddrIn, PtrTy]() -> Address {
1224     return CGF.EmitLoadOfPointerLValue(AddrIn, PtrTy->castAs<PointerType>())
1225         .getAddress();
1226   });
1227   Address AddrOut = CGF.GetAddrOfLocalVar(&OmpOutParm);
1228   Scope.addPrivate(Out, [&CGF, AddrOut, PtrTy]() -> Address {
1229     return CGF.EmitLoadOfPointerLValue(AddrOut, PtrTy->castAs<PointerType>())
1230         .getAddress();
1231   });
1232   (void)Scope.Privatize();
1233   if (!IsCombiner && Out->hasInit() &&
1234       !CGF.isTrivialInitializer(Out->getInit())) {
1235     CGF.EmitAnyExprToMem(Out->getInit(), CGF.GetAddrOfLocalVar(Out),
1236                          Out->getType().getQualifiers(),
1237                          /*IsInitializer=*/true);
1238   }
1239   if (CombinerInitializer)
1240     CGF.EmitIgnoredExpr(CombinerInitializer);
1241   Scope.ForceCleanup();
1242   CGF.FinishFunction();
1243   return Fn;
1244 }
1245 
1246 void CGOpenMPRuntime::emitUserDefinedReduction(
1247     CodeGenFunction *CGF, const OMPDeclareReductionDecl *D) {
1248   if (UDRMap.count(D) > 0)
1249     return;
1250   auto &C = CGM.getContext();
1251   if (!In || !Out) {
1252     In = &C.Idents.get("omp_in");
1253     Out = &C.Idents.get("omp_out");
1254   }
1255   llvm::Function *Combiner = emitCombinerOrInitializer(
1256       CGM, D->getType(), D->getCombiner(), cast<VarDecl>(D->lookup(In).front()),
1257       cast<VarDecl>(D->lookup(Out).front()),
1258       /*IsCombiner=*/true);
1259   llvm::Function *Initializer = nullptr;
1260   if (auto *Init = D->getInitializer()) {
1261     if (!Priv || !Orig) {
1262       Priv = &C.Idents.get("omp_priv");
1263       Orig = &C.Idents.get("omp_orig");
1264     }
1265     Initializer = emitCombinerOrInitializer(
1266         CGM, D->getType(),
1267         D->getInitializerKind() == OMPDeclareReductionDecl::CallInit ? Init
1268                                                                      : nullptr,
1269         cast<VarDecl>(D->lookup(Orig).front()),
1270         cast<VarDecl>(D->lookup(Priv).front()),
1271         /*IsCombiner=*/false);
1272   }
1273   UDRMap.insert(std::make_pair(D, std::make_pair(Combiner, Initializer)));
1274   if (CGF) {
1275     auto &Decls = FunctionUDRMap.FindAndConstruct(CGF->CurFn);
1276     Decls.second.push_back(D);
1277   }
1278 }
1279 
1280 std::pair<llvm::Function *, llvm::Function *>
1281 CGOpenMPRuntime::getUserDefinedReduction(const OMPDeclareReductionDecl *D) {
1282   auto I = UDRMap.find(D);
1283   if (I != UDRMap.end())
1284     return I->second;
1285   emitUserDefinedReduction(/*CGF=*/nullptr, D);
1286   return UDRMap.lookup(D);
1287 }
1288 
1289 // Layout information for ident_t.
1290 static CharUnits getIdentAlign(CodeGenModule &CGM) {
1291   return CGM.getPointerAlign();
1292 }
1293 static CharUnits getIdentSize(CodeGenModule &CGM) {
1294   assert((4 * CGM.getPointerSize()).isMultipleOf(CGM.getPointerAlign()));
1295   return CharUnits::fromQuantity(16) + CGM.getPointerSize();
1296 }
1297 static CharUnits getOffsetOfIdentField(IdentFieldIndex Field) {
1298   // All the fields except the last are i32, so this works beautifully.
1299   return unsigned(Field) * CharUnits::fromQuantity(4);
1300 }
1301 static Address createIdentFieldGEP(CodeGenFunction &CGF, Address Addr,
1302                                    IdentFieldIndex Field,
1303                                    const llvm::Twine &Name = "") {
1304   auto Offset = getOffsetOfIdentField(Field);
1305   return CGF.Builder.CreateStructGEP(Addr, Field, Offset, Name);
1306 }
1307 
1308 static llvm::Value *emitParallelOrTeamsOutlinedFunction(
1309     CodeGenModule &CGM, const OMPExecutableDirective &D, const CapturedStmt *CS,
1310     const VarDecl *ThreadIDVar, OpenMPDirectiveKind InnermostKind,
1311     const StringRef OutlinedHelperName, const RegionCodeGenTy &CodeGen) {
1312   assert(ThreadIDVar->getType()->isPointerType() &&
1313          "thread id variable must be of type kmp_int32 *");
1314   CodeGenFunction CGF(CGM, true);
1315   bool HasCancel = false;
1316   if (auto *OPD = dyn_cast<OMPParallelDirective>(&D))
1317     HasCancel = OPD->hasCancel();
1318   else if (auto *OPSD = dyn_cast<OMPParallelSectionsDirective>(&D))
1319     HasCancel = OPSD->hasCancel();
1320   else if (auto *OPFD = dyn_cast<OMPParallelForDirective>(&D))
1321     HasCancel = OPFD->hasCancel();
1322   else if (auto *OPFD = dyn_cast<OMPTargetParallelForDirective>(&D))
1323     HasCancel = OPFD->hasCancel();
1324   else if (auto *OPFD = dyn_cast<OMPDistributeParallelForDirective>(&D))
1325     HasCancel = OPFD->hasCancel();
1326   else if (auto *OPFD = dyn_cast<OMPTeamsDistributeParallelForDirective>(&D))
1327     HasCancel = OPFD->hasCancel();
1328   else if (auto *OPFD =
1329                dyn_cast<OMPTargetTeamsDistributeParallelForDirective>(&D))
1330     HasCancel = OPFD->hasCancel();
1331   CGOpenMPOutlinedRegionInfo CGInfo(*CS, ThreadIDVar, CodeGen, InnermostKind,
1332                                     HasCancel, OutlinedHelperName);
1333   CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo);
1334   return CGF.GenerateOpenMPCapturedStmtFunction(*CS);
1335 }
1336 
1337 llvm::Value *CGOpenMPRuntime::emitParallelOutlinedFunction(
1338     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
1339     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) {
1340   const CapturedStmt *CS = D.getCapturedStmt(OMPD_parallel);
1341   return emitParallelOrTeamsOutlinedFunction(
1342       CGM, D, CS, ThreadIDVar, InnermostKind, getOutlinedHelperName(), CodeGen);
1343 }
1344 
1345 llvm::Value *CGOpenMPRuntime::emitTeamsOutlinedFunction(
1346     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
1347     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) {
1348   const CapturedStmt *CS = D.getCapturedStmt(OMPD_teams);
1349   return emitParallelOrTeamsOutlinedFunction(
1350       CGM, D, CS, ThreadIDVar, InnermostKind, getOutlinedHelperName(), CodeGen);
1351 }
1352 
1353 llvm::Value *CGOpenMPRuntime::emitTaskOutlinedFunction(
1354     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
1355     const VarDecl *PartIDVar, const VarDecl *TaskTVar,
1356     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen,
1357     bool Tied, unsigned &NumberOfParts) {
1358   auto &&UntiedCodeGen = [this, &D, TaskTVar](CodeGenFunction &CGF,
1359                                               PrePostActionTy &) {
1360     auto *ThreadID = getThreadID(CGF, D.getLocStart());
1361     auto *UpLoc = emitUpdateLocation(CGF, D.getLocStart());
1362     llvm::Value *TaskArgs[] = {
1363         UpLoc, ThreadID,
1364         CGF.EmitLoadOfPointerLValue(CGF.GetAddrOfLocalVar(TaskTVar),
1365                                     TaskTVar->getType()->castAs<PointerType>())
1366             .getPointer()};
1367     CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_task), TaskArgs);
1368   };
1369   CGOpenMPTaskOutlinedRegionInfo::UntiedTaskActionTy Action(Tied, PartIDVar,
1370                                                             UntiedCodeGen);
1371   CodeGen.setAction(Action);
1372   assert(!ThreadIDVar->getType()->isPointerType() &&
1373          "thread id variable must be of type kmp_int32 for tasks");
1374   auto *CS = cast<CapturedStmt>(D.getAssociatedStmt());
1375   auto *TD = dyn_cast<OMPTaskDirective>(&D);
1376   CodeGenFunction CGF(CGM, true);
1377   CGOpenMPTaskOutlinedRegionInfo CGInfo(*CS, ThreadIDVar, CodeGen,
1378                                         InnermostKind,
1379                                         TD ? TD->hasCancel() : false, Action);
1380   CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo);
1381   auto *Res = CGF.GenerateCapturedStmtFunction(*CS);
1382   if (!Tied)
1383     NumberOfParts = Action.getNumberOfParts();
1384   return Res;
1385 }
1386 
1387 Address CGOpenMPRuntime::getOrCreateDefaultLocation(unsigned Flags) {
1388   CharUnits Align = getIdentAlign(CGM);
1389   llvm::Value *Entry = OpenMPDefaultLocMap.lookup(Flags);
1390   if (!Entry) {
1391     if (!DefaultOpenMPPSource) {
1392       // Initialize default location for psource field of ident_t structure of
1393       // all ident_t objects. Format is ";file;function;line;column;;".
1394       // Taken from
1395       // http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp_str.c
1396       DefaultOpenMPPSource =
1397           CGM.GetAddrOfConstantCString(";unknown;unknown;0;0;;").getPointer();
1398       DefaultOpenMPPSource =
1399           llvm::ConstantExpr::getBitCast(DefaultOpenMPPSource, CGM.Int8PtrTy);
1400     }
1401 
1402     ConstantInitBuilder builder(CGM);
1403     auto fields = builder.beginStruct(IdentTy);
1404     fields.addInt(CGM.Int32Ty, 0);
1405     fields.addInt(CGM.Int32Ty, Flags);
1406     fields.addInt(CGM.Int32Ty, 0);
1407     fields.addInt(CGM.Int32Ty, 0);
1408     fields.add(DefaultOpenMPPSource);
1409     auto DefaultOpenMPLocation =
1410       fields.finishAndCreateGlobal("", Align, /*isConstant*/ true,
1411                                    llvm::GlobalValue::PrivateLinkage);
1412     DefaultOpenMPLocation->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
1413 
1414     OpenMPDefaultLocMap[Flags] = Entry = DefaultOpenMPLocation;
1415   }
1416   return Address(Entry, Align);
1417 }
1418 
1419 llvm::Value *CGOpenMPRuntime::emitUpdateLocation(CodeGenFunction &CGF,
1420                                                  SourceLocation Loc,
1421                                                  unsigned Flags) {
1422   Flags |= OMP_IDENT_KMPC;
1423   // If no debug info is generated - return global default location.
1424   if (CGM.getCodeGenOpts().getDebugInfo() == codegenoptions::NoDebugInfo ||
1425       Loc.isInvalid())
1426     return getOrCreateDefaultLocation(Flags).getPointer();
1427 
1428   assert(CGF.CurFn && "No function in current CodeGenFunction.");
1429 
1430   Address LocValue = Address::invalid();
1431   auto I = OpenMPLocThreadIDMap.find(CGF.CurFn);
1432   if (I != OpenMPLocThreadIDMap.end())
1433     LocValue = Address(I->second.DebugLoc, getIdentAlign(CGF.CGM));
1434 
1435   // OpenMPLocThreadIDMap may have null DebugLoc and non-null ThreadID, if
1436   // GetOpenMPThreadID was called before this routine.
1437   if (!LocValue.isValid()) {
1438     // Generate "ident_t .kmpc_loc.addr;"
1439     Address AI = CGF.CreateTempAlloca(IdentTy, getIdentAlign(CGF.CGM),
1440                                       ".kmpc_loc.addr");
1441     auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn);
1442     Elem.second.DebugLoc = AI.getPointer();
1443     LocValue = AI;
1444 
1445     CGBuilderTy::InsertPointGuard IPG(CGF.Builder);
1446     CGF.Builder.SetInsertPoint(CGF.AllocaInsertPt);
1447     CGF.Builder.CreateMemCpy(LocValue, getOrCreateDefaultLocation(Flags),
1448                              CGM.getSize(getIdentSize(CGF.CGM)));
1449   }
1450 
1451   // char **psource = &.kmpc_loc_<flags>.addr.psource;
1452   Address PSource = createIdentFieldGEP(CGF, LocValue, IdentField_PSource);
1453 
1454   auto OMPDebugLoc = OpenMPDebugLocMap.lookup(Loc.getRawEncoding());
1455   if (OMPDebugLoc == nullptr) {
1456     SmallString<128> Buffer2;
1457     llvm::raw_svector_ostream OS2(Buffer2);
1458     // Build debug location
1459     PresumedLoc PLoc = CGF.getContext().getSourceManager().getPresumedLoc(Loc);
1460     OS2 << ";" << PLoc.getFilename() << ";";
1461     if (const FunctionDecl *FD =
1462             dyn_cast_or_null<FunctionDecl>(CGF.CurFuncDecl)) {
1463       OS2 << FD->getQualifiedNameAsString();
1464     }
1465     OS2 << ";" << PLoc.getLine() << ";" << PLoc.getColumn() << ";;";
1466     OMPDebugLoc = CGF.Builder.CreateGlobalStringPtr(OS2.str());
1467     OpenMPDebugLocMap[Loc.getRawEncoding()] = OMPDebugLoc;
1468   }
1469   // *psource = ";<File>;<Function>;<Line>;<Column>;;";
1470   CGF.Builder.CreateStore(OMPDebugLoc, PSource);
1471 
1472   // Our callers always pass this to a runtime function, so for
1473   // convenience, go ahead and return a naked pointer.
1474   return LocValue.getPointer();
1475 }
1476 
1477 llvm::Value *CGOpenMPRuntime::getThreadID(CodeGenFunction &CGF,
1478                                           SourceLocation Loc) {
1479   assert(CGF.CurFn && "No function in current CodeGenFunction.");
1480 
1481   llvm::Value *ThreadID = nullptr;
1482   // Check whether we've already cached a load of the thread id in this
1483   // function.
1484   auto I = OpenMPLocThreadIDMap.find(CGF.CurFn);
1485   if (I != OpenMPLocThreadIDMap.end()) {
1486     ThreadID = I->second.ThreadID;
1487     if (ThreadID != nullptr)
1488       return ThreadID;
1489   }
1490   // If exceptions are enabled, do not use parameter to avoid possible crash.
1491   if (!CGF.EHStack.requiresLandingPad() || !CGF.getLangOpts().Exceptions ||
1492       !CGF.getLangOpts().CXXExceptions ||
1493       CGF.Builder.GetInsertBlock() == CGF.AllocaInsertPt->getParent()) {
1494     if (auto *OMPRegionInfo =
1495             dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) {
1496       if (OMPRegionInfo->getThreadIDVariable()) {
1497         // Check if this an outlined function with thread id passed as argument.
1498         auto LVal = OMPRegionInfo->getThreadIDVariableLValue(CGF);
1499         ThreadID = CGF.EmitLoadOfLValue(LVal, Loc).getScalarVal();
1500         // If value loaded in entry block, cache it and use it everywhere in
1501         // function.
1502         if (CGF.Builder.GetInsertBlock() == CGF.AllocaInsertPt->getParent()) {
1503           auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn);
1504           Elem.second.ThreadID = ThreadID;
1505         }
1506         return ThreadID;
1507       }
1508     }
1509   }
1510 
1511   // This is not an outlined function region - need to call __kmpc_int32
1512   // kmpc_global_thread_num(ident_t *loc).
1513   // Generate thread id value and cache this value for use across the
1514   // function.
1515   CGBuilderTy::InsertPointGuard IPG(CGF.Builder);
1516   CGF.Builder.SetInsertPoint(CGF.AllocaInsertPt);
1517   auto *Call = CGF.Builder.CreateCall(
1518       createRuntimeFunction(OMPRTL__kmpc_global_thread_num),
1519       emitUpdateLocation(CGF, Loc));
1520   Call->setCallingConv(CGF.getRuntimeCC());
1521   auto &Elem = OpenMPLocThreadIDMap.FindAndConstruct(CGF.CurFn);
1522   Elem.second.ThreadID = Call;
1523   return Call;
1524 }
1525 
1526 void CGOpenMPRuntime::functionFinished(CodeGenFunction &CGF) {
1527   assert(CGF.CurFn && "No function in current CodeGenFunction.");
1528   if (OpenMPLocThreadIDMap.count(CGF.CurFn))
1529     OpenMPLocThreadIDMap.erase(CGF.CurFn);
1530   if (FunctionUDRMap.count(CGF.CurFn) > 0) {
1531     for(auto *D : FunctionUDRMap[CGF.CurFn]) {
1532       UDRMap.erase(D);
1533     }
1534     FunctionUDRMap.erase(CGF.CurFn);
1535   }
1536 }
1537 
1538 llvm::Type *CGOpenMPRuntime::getIdentTyPointerTy() {
1539   if (!IdentTy) {
1540   }
1541   return llvm::PointerType::getUnqual(IdentTy);
1542 }
1543 
1544 llvm::Type *CGOpenMPRuntime::getKmpc_MicroPointerTy() {
1545   if (!Kmpc_MicroTy) {
1546     // Build void (*kmpc_micro)(kmp_int32 *global_tid, kmp_int32 *bound_tid,...)
1547     llvm::Type *MicroParams[] = {llvm::PointerType::getUnqual(CGM.Int32Ty),
1548                                  llvm::PointerType::getUnqual(CGM.Int32Ty)};
1549     Kmpc_MicroTy = llvm::FunctionType::get(CGM.VoidTy, MicroParams, true);
1550   }
1551   return llvm::PointerType::getUnqual(Kmpc_MicroTy);
1552 }
1553 
1554 llvm::Constant *
1555 CGOpenMPRuntime::createRuntimeFunction(unsigned Function) {
1556   llvm::Constant *RTLFn = nullptr;
1557   switch (static_cast<OpenMPRTLFunction>(Function)) {
1558   case OMPRTL__kmpc_fork_call: {
1559     // Build void __kmpc_fork_call(ident_t *loc, kmp_int32 argc, kmpc_micro
1560     // microtask, ...);
1561     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1562                                 getKmpc_MicroPointerTy()};
1563     llvm::FunctionType *FnTy =
1564         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ true);
1565     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_fork_call");
1566     break;
1567   }
1568   case OMPRTL__kmpc_global_thread_num: {
1569     // Build kmp_int32 __kmpc_global_thread_num(ident_t *loc);
1570     llvm::Type *TypeParams[] = {getIdentTyPointerTy()};
1571     llvm::FunctionType *FnTy =
1572         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
1573     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_global_thread_num");
1574     break;
1575   }
1576   case OMPRTL__kmpc_threadprivate_cached: {
1577     // Build void *__kmpc_threadprivate_cached(ident_t *loc,
1578     // kmp_int32 global_tid, void *data, size_t size, void ***cache);
1579     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1580                                 CGM.VoidPtrTy, CGM.SizeTy,
1581                                 CGM.VoidPtrTy->getPointerTo()->getPointerTo()};
1582     llvm::FunctionType *FnTy =
1583         llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg*/ false);
1584     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_threadprivate_cached");
1585     break;
1586   }
1587   case OMPRTL__kmpc_critical: {
1588     // Build void __kmpc_critical(ident_t *loc, kmp_int32 global_tid,
1589     // kmp_critical_name *crit);
1590     llvm::Type *TypeParams[] = {
1591         getIdentTyPointerTy(), CGM.Int32Ty,
1592         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1593     llvm::FunctionType *FnTy =
1594         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1595     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_critical");
1596     break;
1597   }
1598   case OMPRTL__kmpc_critical_with_hint: {
1599     // Build void __kmpc_critical_with_hint(ident_t *loc, kmp_int32 global_tid,
1600     // kmp_critical_name *crit, uintptr_t hint);
1601     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1602                                 llvm::PointerType::getUnqual(KmpCriticalNameTy),
1603                                 CGM.IntPtrTy};
1604     llvm::FunctionType *FnTy =
1605         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1606     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_critical_with_hint");
1607     break;
1608   }
1609   case OMPRTL__kmpc_threadprivate_register: {
1610     // Build void __kmpc_threadprivate_register(ident_t *, void *data,
1611     // kmpc_ctor ctor, kmpc_cctor cctor, kmpc_dtor dtor);
1612     // typedef void *(*kmpc_ctor)(void *);
1613     auto KmpcCtorTy =
1614         llvm::FunctionType::get(CGM.VoidPtrTy, CGM.VoidPtrTy,
1615                                 /*isVarArg*/ false)->getPointerTo();
1616     // typedef void *(*kmpc_cctor)(void *, void *);
1617     llvm::Type *KmpcCopyCtorTyArgs[] = {CGM.VoidPtrTy, CGM.VoidPtrTy};
1618     auto KmpcCopyCtorTy =
1619         llvm::FunctionType::get(CGM.VoidPtrTy, KmpcCopyCtorTyArgs,
1620                                 /*isVarArg*/ false)->getPointerTo();
1621     // typedef void (*kmpc_dtor)(void *);
1622     auto KmpcDtorTy =
1623         llvm::FunctionType::get(CGM.VoidTy, CGM.VoidPtrTy, /*isVarArg*/ false)
1624             ->getPointerTo();
1625     llvm::Type *FnTyArgs[] = {getIdentTyPointerTy(), CGM.VoidPtrTy, KmpcCtorTy,
1626                               KmpcCopyCtorTy, KmpcDtorTy};
1627     auto FnTy = llvm::FunctionType::get(CGM.VoidTy, FnTyArgs,
1628                                         /*isVarArg*/ false);
1629     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_threadprivate_register");
1630     break;
1631   }
1632   case OMPRTL__kmpc_end_critical: {
1633     // Build void __kmpc_end_critical(ident_t *loc, kmp_int32 global_tid,
1634     // kmp_critical_name *crit);
1635     llvm::Type *TypeParams[] = {
1636         getIdentTyPointerTy(), CGM.Int32Ty,
1637         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1638     llvm::FunctionType *FnTy =
1639         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1640     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_critical");
1641     break;
1642   }
1643   case OMPRTL__kmpc_cancel_barrier: {
1644     // Build kmp_int32 __kmpc_cancel_barrier(ident_t *loc, kmp_int32
1645     // global_tid);
1646     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1647     llvm::FunctionType *FnTy =
1648         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
1649     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name*/ "__kmpc_cancel_barrier");
1650     break;
1651   }
1652   case OMPRTL__kmpc_barrier: {
1653     // Build void __kmpc_barrier(ident_t *loc, kmp_int32 global_tid);
1654     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1655     llvm::FunctionType *FnTy =
1656         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1657     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name*/ "__kmpc_barrier");
1658     break;
1659   }
1660   case OMPRTL__kmpc_for_static_fini: {
1661     // Build void __kmpc_for_static_fini(ident_t *loc, kmp_int32 global_tid);
1662     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1663     llvm::FunctionType *FnTy =
1664         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1665     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_for_static_fini");
1666     break;
1667   }
1668   case OMPRTL__kmpc_push_num_threads: {
1669     // Build void __kmpc_push_num_threads(ident_t *loc, kmp_int32 global_tid,
1670     // kmp_int32 num_threads)
1671     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1672                                 CGM.Int32Ty};
1673     llvm::FunctionType *FnTy =
1674         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1675     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_num_threads");
1676     break;
1677   }
1678   case OMPRTL__kmpc_serialized_parallel: {
1679     // Build void __kmpc_serialized_parallel(ident_t *loc, kmp_int32
1680     // global_tid);
1681     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1682     llvm::FunctionType *FnTy =
1683         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1684     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_serialized_parallel");
1685     break;
1686   }
1687   case OMPRTL__kmpc_end_serialized_parallel: {
1688     // Build void __kmpc_end_serialized_parallel(ident_t *loc, kmp_int32
1689     // global_tid);
1690     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1691     llvm::FunctionType *FnTy =
1692         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1693     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_serialized_parallel");
1694     break;
1695   }
1696   case OMPRTL__kmpc_flush: {
1697     // Build void __kmpc_flush(ident_t *loc);
1698     llvm::Type *TypeParams[] = {getIdentTyPointerTy()};
1699     llvm::FunctionType *FnTy =
1700         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1701     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_flush");
1702     break;
1703   }
1704   case OMPRTL__kmpc_master: {
1705     // Build kmp_int32 __kmpc_master(ident_t *loc, kmp_int32 global_tid);
1706     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1707     llvm::FunctionType *FnTy =
1708         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1709     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_master");
1710     break;
1711   }
1712   case OMPRTL__kmpc_end_master: {
1713     // Build void __kmpc_end_master(ident_t *loc, kmp_int32 global_tid);
1714     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1715     llvm::FunctionType *FnTy =
1716         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1717     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_master");
1718     break;
1719   }
1720   case OMPRTL__kmpc_omp_taskyield: {
1721     // Build kmp_int32 __kmpc_omp_taskyield(ident_t *, kmp_int32 global_tid,
1722     // int end_part);
1723     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy};
1724     llvm::FunctionType *FnTy =
1725         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1726     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_taskyield");
1727     break;
1728   }
1729   case OMPRTL__kmpc_single: {
1730     // Build kmp_int32 __kmpc_single(ident_t *loc, kmp_int32 global_tid);
1731     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1732     llvm::FunctionType *FnTy =
1733         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1734     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_single");
1735     break;
1736   }
1737   case OMPRTL__kmpc_end_single: {
1738     // Build void __kmpc_end_single(ident_t *loc, kmp_int32 global_tid);
1739     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1740     llvm::FunctionType *FnTy =
1741         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1742     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_single");
1743     break;
1744   }
1745   case OMPRTL__kmpc_omp_task_alloc: {
1746     // Build kmp_task_t *__kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid,
1747     // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds,
1748     // kmp_routine_entry_t *task_entry);
1749     assert(KmpRoutineEntryPtrTy != nullptr &&
1750            "Type kmp_routine_entry_t must be created.");
1751     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty,
1752                                 CGM.SizeTy, CGM.SizeTy, KmpRoutineEntryPtrTy};
1753     // Return void * and then cast to particular kmp_task_t type.
1754     llvm::FunctionType *FnTy =
1755         llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false);
1756     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_alloc");
1757     break;
1758   }
1759   case OMPRTL__kmpc_omp_task: {
1760     // Build kmp_int32 __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t
1761     // *new_task);
1762     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1763                                 CGM.VoidPtrTy};
1764     llvm::FunctionType *FnTy =
1765         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1766     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task");
1767     break;
1768   }
1769   case OMPRTL__kmpc_copyprivate: {
1770     // Build void __kmpc_copyprivate(ident_t *loc, kmp_int32 global_tid,
1771     // size_t cpy_size, void *cpy_data, void(*cpy_func)(void *, void *),
1772     // kmp_int32 didit);
1773     llvm::Type *CpyTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy};
1774     auto *CpyFnTy =
1775         llvm::FunctionType::get(CGM.VoidTy, CpyTypeParams, /*isVarArg=*/false);
1776     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.SizeTy,
1777                                 CGM.VoidPtrTy, CpyFnTy->getPointerTo(),
1778                                 CGM.Int32Ty};
1779     llvm::FunctionType *FnTy =
1780         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1781     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_copyprivate");
1782     break;
1783   }
1784   case OMPRTL__kmpc_reduce: {
1785     // Build kmp_int32 __kmpc_reduce(ident_t *loc, kmp_int32 global_tid,
1786     // kmp_int32 num_vars, size_t reduce_size, void *reduce_data, void
1787     // (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name *lck);
1788     llvm::Type *ReduceTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy};
1789     auto *ReduceFnTy = llvm::FunctionType::get(CGM.VoidTy, ReduceTypeParams,
1790                                                /*isVarArg=*/false);
1791     llvm::Type *TypeParams[] = {
1792         getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, CGM.SizeTy,
1793         CGM.VoidPtrTy, ReduceFnTy->getPointerTo(),
1794         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1795     llvm::FunctionType *FnTy =
1796         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1797     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_reduce");
1798     break;
1799   }
1800   case OMPRTL__kmpc_reduce_nowait: {
1801     // Build kmp_int32 __kmpc_reduce_nowait(ident_t *loc, kmp_int32
1802     // global_tid, kmp_int32 num_vars, size_t reduce_size, void *reduce_data,
1803     // void (*reduce_func)(void *lhs_data, void *rhs_data), kmp_critical_name
1804     // *lck);
1805     llvm::Type *ReduceTypeParams[] = {CGM.VoidPtrTy, CGM.VoidPtrTy};
1806     auto *ReduceFnTy = llvm::FunctionType::get(CGM.VoidTy, ReduceTypeParams,
1807                                                /*isVarArg=*/false);
1808     llvm::Type *TypeParams[] = {
1809         getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty, CGM.SizeTy,
1810         CGM.VoidPtrTy, ReduceFnTy->getPointerTo(),
1811         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1812     llvm::FunctionType *FnTy =
1813         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1814     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_reduce_nowait");
1815     break;
1816   }
1817   case OMPRTL__kmpc_end_reduce: {
1818     // Build void __kmpc_end_reduce(ident_t *loc, kmp_int32 global_tid,
1819     // kmp_critical_name *lck);
1820     llvm::Type *TypeParams[] = {
1821         getIdentTyPointerTy(), CGM.Int32Ty,
1822         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1823     llvm::FunctionType *FnTy =
1824         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1825     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_reduce");
1826     break;
1827   }
1828   case OMPRTL__kmpc_end_reduce_nowait: {
1829     // Build __kmpc_end_reduce_nowait(ident_t *loc, kmp_int32 global_tid,
1830     // kmp_critical_name *lck);
1831     llvm::Type *TypeParams[] = {
1832         getIdentTyPointerTy(), CGM.Int32Ty,
1833         llvm::PointerType::getUnqual(KmpCriticalNameTy)};
1834     llvm::FunctionType *FnTy =
1835         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1836     RTLFn =
1837         CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_end_reduce_nowait");
1838     break;
1839   }
1840   case OMPRTL__kmpc_omp_task_begin_if0: {
1841     // Build void __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t
1842     // *new_task);
1843     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1844                                 CGM.VoidPtrTy};
1845     llvm::FunctionType *FnTy =
1846         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1847     RTLFn =
1848         CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_begin_if0");
1849     break;
1850   }
1851   case OMPRTL__kmpc_omp_task_complete_if0: {
1852     // Build void __kmpc_omp_task(ident_t *, kmp_int32 gtid, kmp_task_t
1853     // *new_task);
1854     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1855                                 CGM.VoidPtrTy};
1856     llvm::FunctionType *FnTy =
1857         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1858     RTLFn = CGM.CreateRuntimeFunction(FnTy,
1859                                       /*Name=*/"__kmpc_omp_task_complete_if0");
1860     break;
1861   }
1862   case OMPRTL__kmpc_ordered: {
1863     // Build void __kmpc_ordered(ident_t *loc, kmp_int32 global_tid);
1864     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1865     llvm::FunctionType *FnTy =
1866         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1867     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_ordered");
1868     break;
1869   }
1870   case OMPRTL__kmpc_end_ordered: {
1871     // Build void __kmpc_end_ordered(ident_t *loc, kmp_int32 global_tid);
1872     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1873     llvm::FunctionType *FnTy =
1874         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1875     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_ordered");
1876     break;
1877   }
1878   case OMPRTL__kmpc_omp_taskwait: {
1879     // Build kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32 global_tid);
1880     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1881     llvm::FunctionType *FnTy =
1882         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1883     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_omp_taskwait");
1884     break;
1885   }
1886   case OMPRTL__kmpc_taskgroup: {
1887     // Build void __kmpc_taskgroup(ident_t *loc, kmp_int32 global_tid);
1888     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1889     llvm::FunctionType *FnTy =
1890         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1891     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_taskgroup");
1892     break;
1893   }
1894   case OMPRTL__kmpc_end_taskgroup: {
1895     // Build void __kmpc_end_taskgroup(ident_t *loc, kmp_int32 global_tid);
1896     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
1897     llvm::FunctionType *FnTy =
1898         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1899     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_end_taskgroup");
1900     break;
1901   }
1902   case OMPRTL__kmpc_push_proc_bind: {
1903     // Build void __kmpc_push_proc_bind(ident_t *loc, kmp_int32 global_tid,
1904     // int proc_bind)
1905     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy};
1906     llvm::FunctionType *FnTy =
1907         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
1908     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_proc_bind");
1909     break;
1910   }
1911   case OMPRTL__kmpc_omp_task_with_deps: {
1912     // Build kmp_int32 __kmpc_omp_task_with_deps(ident_t *, kmp_int32 gtid,
1913     // kmp_task_t *new_task, kmp_int32 ndeps, kmp_depend_info_t *dep_list,
1914     // kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list);
1915     llvm::Type *TypeParams[] = {
1916         getIdentTyPointerTy(), CGM.Int32Ty, CGM.VoidPtrTy, CGM.Int32Ty,
1917         CGM.VoidPtrTy,         CGM.Int32Ty, CGM.VoidPtrTy};
1918     llvm::FunctionType *FnTy =
1919         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg=*/false);
1920     RTLFn =
1921         CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_task_with_deps");
1922     break;
1923   }
1924   case OMPRTL__kmpc_omp_wait_deps: {
1925     // Build void __kmpc_omp_wait_deps(ident_t *, kmp_int32 gtid,
1926     // kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32 ndeps_noalias,
1927     // kmp_depend_info_t *noalias_dep_list);
1928     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1929                                 CGM.Int32Ty,           CGM.VoidPtrTy,
1930                                 CGM.Int32Ty,           CGM.VoidPtrTy};
1931     llvm::FunctionType *FnTy =
1932         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1933     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_omp_wait_deps");
1934     break;
1935   }
1936   case OMPRTL__kmpc_cancellationpoint: {
1937     // Build kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32
1938     // global_tid, kmp_int32 cncl_kind)
1939     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy};
1940     llvm::FunctionType *FnTy =
1941         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
1942     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_cancellationpoint");
1943     break;
1944   }
1945   case OMPRTL__kmpc_cancel: {
1946     // Build kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid,
1947     // kmp_int32 cncl_kind)
1948     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.IntTy};
1949     llvm::FunctionType *FnTy =
1950         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
1951     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_cancel");
1952     break;
1953   }
1954   case OMPRTL__kmpc_push_num_teams: {
1955     // Build void kmpc_push_num_teams (ident_t loc, kmp_int32 global_tid,
1956     // kmp_int32 num_teams, kmp_int32 num_threads)
1957     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty, CGM.Int32Ty,
1958         CGM.Int32Ty};
1959     llvm::FunctionType *FnTy =
1960         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
1961     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_push_num_teams");
1962     break;
1963   }
1964   case OMPRTL__kmpc_fork_teams: {
1965     // Build void __kmpc_fork_teams(ident_t *loc, kmp_int32 argc, kmpc_micro
1966     // microtask, ...);
1967     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
1968                                 getKmpc_MicroPointerTy()};
1969     llvm::FunctionType *FnTy =
1970         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ true);
1971     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__kmpc_fork_teams");
1972     break;
1973   }
1974   case OMPRTL__kmpc_taskloop: {
1975     // Build void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int
1976     // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int
1977     // sched, kmp_uint64 grainsize, void *task_dup);
1978     llvm::Type *TypeParams[] = {getIdentTyPointerTy(),
1979                                 CGM.IntTy,
1980                                 CGM.VoidPtrTy,
1981                                 CGM.IntTy,
1982                                 CGM.Int64Ty->getPointerTo(),
1983                                 CGM.Int64Ty->getPointerTo(),
1984                                 CGM.Int64Ty,
1985                                 CGM.IntTy,
1986                                 CGM.IntTy,
1987                                 CGM.Int64Ty,
1988                                 CGM.VoidPtrTy};
1989     llvm::FunctionType *FnTy =
1990         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
1991     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_taskloop");
1992     break;
1993   }
1994   case OMPRTL__kmpc_doacross_init: {
1995     // Build void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid, kmp_int32
1996     // num_dims, struct kmp_dim *dims);
1997     llvm::Type *TypeParams[] = {getIdentTyPointerTy(),
1998                                 CGM.Int32Ty,
1999                                 CGM.Int32Ty,
2000                                 CGM.VoidPtrTy};
2001     llvm::FunctionType *FnTy =
2002         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2003     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_init");
2004     break;
2005   }
2006   case OMPRTL__kmpc_doacross_fini: {
2007     // Build void __kmpc_doacross_fini(ident_t *loc, kmp_int32 gtid);
2008     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty};
2009     llvm::FunctionType *FnTy =
2010         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2011     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_fini");
2012     break;
2013   }
2014   case OMPRTL__kmpc_doacross_post: {
2015     // Build void __kmpc_doacross_post(ident_t *loc, kmp_int32 gtid, kmp_int64
2016     // *vec);
2017     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
2018                                 CGM.Int64Ty->getPointerTo()};
2019     llvm::FunctionType *FnTy =
2020         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2021     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_post");
2022     break;
2023   }
2024   case OMPRTL__kmpc_doacross_wait: {
2025     // Build void __kmpc_doacross_wait(ident_t *loc, kmp_int32 gtid, kmp_int64
2026     // *vec);
2027     llvm::Type *TypeParams[] = {getIdentTyPointerTy(), CGM.Int32Ty,
2028                                 CGM.Int64Ty->getPointerTo()};
2029     llvm::FunctionType *FnTy =
2030         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2031     RTLFn = CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_doacross_wait");
2032     break;
2033   }
2034   case OMPRTL__kmpc_task_reduction_init: {
2035     // Build void *__kmpc_task_reduction_init(int gtid, int num_data, void
2036     // *data);
2037     llvm::Type *TypeParams[] = {CGM.IntTy, CGM.IntTy, CGM.VoidPtrTy};
2038     llvm::FunctionType *FnTy =
2039         llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false);
2040     RTLFn =
2041         CGM.CreateRuntimeFunction(FnTy, /*Name=*/"__kmpc_task_reduction_init");
2042     break;
2043   }
2044   case OMPRTL__kmpc_task_reduction_get_th_data: {
2045     // Build void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void
2046     // *d);
2047     llvm::Type *TypeParams[] = {CGM.IntTy, CGM.VoidPtrTy, CGM.VoidPtrTy};
2048     llvm::FunctionType *FnTy =
2049         llvm::FunctionType::get(CGM.VoidPtrTy, TypeParams, /*isVarArg=*/false);
2050     RTLFn = CGM.CreateRuntimeFunction(
2051         FnTy, /*Name=*/"__kmpc_task_reduction_get_th_data");
2052     break;
2053   }
2054   case OMPRTL__tgt_target: {
2055     // Build int32_t __tgt_target(int64_t device_id, void *host_ptr, int32_t
2056     // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
2057     // *arg_types);
2058     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2059                                 CGM.VoidPtrTy,
2060                                 CGM.Int32Ty,
2061                                 CGM.VoidPtrPtrTy,
2062                                 CGM.VoidPtrPtrTy,
2063                                 CGM.SizeTy->getPointerTo(),
2064                                 CGM.Int64Ty->getPointerTo()};
2065     llvm::FunctionType *FnTy =
2066         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2067     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target");
2068     break;
2069   }
2070   case OMPRTL__tgt_target_nowait: {
2071     // Build int32_t __tgt_target_nowait(int64_t device_id, void *host_ptr,
2072     // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes,
2073     // int64_t *arg_types);
2074     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2075                                 CGM.VoidPtrTy,
2076                                 CGM.Int32Ty,
2077                                 CGM.VoidPtrPtrTy,
2078                                 CGM.VoidPtrPtrTy,
2079                                 CGM.SizeTy->getPointerTo(),
2080                                 CGM.Int64Ty->getPointerTo()};
2081     llvm::FunctionType *FnTy =
2082         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2083     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_nowait");
2084     break;
2085   }
2086   case OMPRTL__tgt_target_teams: {
2087     // Build int32_t __tgt_target_teams(int64_t device_id, void *host_ptr,
2088     // int32_t arg_num, void** args_base, void **args, size_t *arg_sizes,
2089     // int64_t *arg_types, int32_t num_teams, int32_t thread_limit);
2090     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2091                                 CGM.VoidPtrTy,
2092                                 CGM.Int32Ty,
2093                                 CGM.VoidPtrPtrTy,
2094                                 CGM.VoidPtrPtrTy,
2095                                 CGM.SizeTy->getPointerTo(),
2096                                 CGM.Int64Ty->getPointerTo(),
2097                                 CGM.Int32Ty,
2098                                 CGM.Int32Ty};
2099     llvm::FunctionType *FnTy =
2100         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2101     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_teams");
2102     break;
2103   }
2104   case OMPRTL__tgt_target_teams_nowait: {
2105     // Build int32_t __tgt_target_teams_nowait(int64_t device_id, void
2106     // *host_ptr, int32_t arg_num, void** args_base, void **args, size_t
2107     // *arg_sizes, int64_t *arg_types, int32_t num_teams, int32_t thread_limit);
2108     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2109                                 CGM.VoidPtrTy,
2110                                 CGM.Int32Ty,
2111                                 CGM.VoidPtrPtrTy,
2112                                 CGM.VoidPtrPtrTy,
2113                                 CGM.SizeTy->getPointerTo(),
2114                                 CGM.Int64Ty->getPointerTo(),
2115                                 CGM.Int32Ty,
2116                                 CGM.Int32Ty};
2117     llvm::FunctionType *FnTy =
2118         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2119     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_teams_nowait");
2120     break;
2121   }
2122   case OMPRTL__tgt_register_lib: {
2123     // Build void __tgt_register_lib(__tgt_bin_desc *desc);
2124     QualType ParamTy =
2125         CGM.getContext().getPointerType(getTgtBinaryDescriptorQTy());
2126     llvm::Type *TypeParams[] = {CGM.getTypes().ConvertTypeForMem(ParamTy)};
2127     llvm::FunctionType *FnTy =
2128         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2129     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_register_lib");
2130     break;
2131   }
2132   case OMPRTL__tgt_unregister_lib: {
2133     // Build void __tgt_unregister_lib(__tgt_bin_desc *desc);
2134     QualType ParamTy =
2135         CGM.getContext().getPointerType(getTgtBinaryDescriptorQTy());
2136     llvm::Type *TypeParams[] = {CGM.getTypes().ConvertTypeForMem(ParamTy)};
2137     llvm::FunctionType *FnTy =
2138         llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2139     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_unregister_lib");
2140     break;
2141   }
2142   case OMPRTL__tgt_target_data_begin: {
2143     // Build void __tgt_target_data_begin(int64_t device_id, int32_t arg_num,
2144     // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
2145     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2146                                 CGM.Int32Ty,
2147                                 CGM.VoidPtrPtrTy,
2148                                 CGM.VoidPtrPtrTy,
2149                                 CGM.SizeTy->getPointerTo(),
2150                                 CGM.Int64Ty->getPointerTo()};
2151     llvm::FunctionType *FnTy =
2152         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
2153     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_begin");
2154     break;
2155   }
2156   case OMPRTL__tgt_target_data_begin_nowait: {
2157     // Build void __tgt_target_data_begin_nowait(int64_t device_id, int32_t
2158     // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
2159     // *arg_types);
2160     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2161                                 CGM.Int32Ty,
2162                                 CGM.VoidPtrPtrTy,
2163                                 CGM.VoidPtrPtrTy,
2164                                 CGM.SizeTy->getPointerTo(),
2165                                 CGM.Int64Ty->getPointerTo()};
2166     auto *FnTy =
2167         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2168     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_begin_nowait");
2169     break;
2170   }
2171   case OMPRTL__tgt_target_data_end: {
2172     // Build void __tgt_target_data_end(int64_t device_id, int32_t arg_num,
2173     // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
2174     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2175                                 CGM.Int32Ty,
2176                                 CGM.VoidPtrPtrTy,
2177                                 CGM.VoidPtrPtrTy,
2178                                 CGM.SizeTy->getPointerTo(),
2179                                 CGM.Int64Ty->getPointerTo()};
2180     llvm::FunctionType *FnTy =
2181         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
2182     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_end");
2183     break;
2184   }
2185   case OMPRTL__tgt_target_data_end_nowait: {
2186     // Build void __tgt_target_data_end_nowait(int64_t device_id, int32_t
2187     // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
2188     // *arg_types);
2189     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2190                                 CGM.Int32Ty,
2191                                 CGM.VoidPtrPtrTy,
2192                                 CGM.VoidPtrPtrTy,
2193                                 CGM.SizeTy->getPointerTo(),
2194                                 CGM.Int64Ty->getPointerTo()};
2195     auto *FnTy =
2196         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2197     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_end_nowait");
2198     break;
2199   }
2200   case OMPRTL__tgt_target_data_update: {
2201     // Build void __tgt_target_data_update(int64_t device_id, int32_t arg_num,
2202     // void** args_base, void **args, size_t *arg_sizes, int64_t *arg_types);
2203     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2204                                 CGM.Int32Ty,
2205                                 CGM.VoidPtrPtrTy,
2206                                 CGM.VoidPtrPtrTy,
2207                                 CGM.SizeTy->getPointerTo(),
2208                                 CGM.Int64Ty->getPointerTo()};
2209     llvm::FunctionType *FnTy =
2210         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
2211     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_update");
2212     break;
2213   }
2214   case OMPRTL__tgt_target_data_update_nowait: {
2215     // Build void __tgt_target_data_update_nowait(int64_t device_id, int32_t
2216     // arg_num, void** args_base, void **args, size_t *arg_sizes, int64_t
2217     // *arg_types);
2218     llvm::Type *TypeParams[] = {CGM.Int64Ty,
2219                                 CGM.Int32Ty,
2220                                 CGM.VoidPtrPtrTy,
2221                                 CGM.VoidPtrPtrTy,
2222                                 CGM.SizeTy->getPointerTo(),
2223                                 CGM.Int64Ty->getPointerTo()};
2224     auto *FnTy =
2225         llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2226     RTLFn = CGM.CreateRuntimeFunction(FnTy, "__tgt_target_data_update_nowait");
2227     break;
2228   }
2229   }
2230   assert(RTLFn && "Unable to find OpenMP runtime function");
2231   return RTLFn;
2232 }
2233 
2234 llvm::Constant *CGOpenMPRuntime::createForStaticInitFunction(unsigned IVSize,
2235                                                              bool IVSigned) {
2236   assert((IVSize == 32 || IVSize == 64) &&
2237          "IV size is not compatible with the omp runtime");
2238   auto Name = IVSize == 32 ? (IVSigned ? "__kmpc_for_static_init_4"
2239                                        : "__kmpc_for_static_init_4u")
2240                            : (IVSigned ? "__kmpc_for_static_init_8"
2241                                        : "__kmpc_for_static_init_8u");
2242   auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty;
2243   auto PtrTy = llvm::PointerType::getUnqual(ITy);
2244   llvm::Type *TypeParams[] = {
2245     getIdentTyPointerTy(),                     // loc
2246     CGM.Int32Ty,                               // tid
2247     CGM.Int32Ty,                               // schedtype
2248     llvm::PointerType::getUnqual(CGM.Int32Ty), // p_lastiter
2249     PtrTy,                                     // p_lower
2250     PtrTy,                                     // p_upper
2251     PtrTy,                                     // p_stride
2252     ITy,                                       // incr
2253     ITy                                        // chunk
2254   };
2255   llvm::FunctionType *FnTy =
2256       llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
2257   return CGM.CreateRuntimeFunction(FnTy, Name);
2258 }
2259 
2260 llvm::Constant *CGOpenMPRuntime::createDispatchInitFunction(unsigned IVSize,
2261                                                             bool IVSigned) {
2262   assert((IVSize == 32 || IVSize == 64) &&
2263          "IV size is not compatible with the omp runtime");
2264   auto Name =
2265       IVSize == 32
2266           ? (IVSigned ? "__kmpc_dispatch_init_4" : "__kmpc_dispatch_init_4u")
2267           : (IVSigned ? "__kmpc_dispatch_init_8" : "__kmpc_dispatch_init_8u");
2268   auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty;
2269   llvm::Type *TypeParams[] = { getIdentTyPointerTy(), // loc
2270                                CGM.Int32Ty,           // tid
2271                                CGM.Int32Ty,           // schedtype
2272                                ITy,                   // lower
2273                                ITy,                   // upper
2274                                ITy,                   // stride
2275                                ITy                    // chunk
2276   };
2277   llvm::FunctionType *FnTy =
2278       llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg*/ false);
2279   return CGM.CreateRuntimeFunction(FnTy, Name);
2280 }
2281 
2282 llvm::Constant *CGOpenMPRuntime::createDispatchFiniFunction(unsigned IVSize,
2283                                                             bool IVSigned) {
2284   assert((IVSize == 32 || IVSize == 64) &&
2285          "IV size is not compatible with the omp runtime");
2286   auto Name =
2287       IVSize == 32
2288           ? (IVSigned ? "__kmpc_dispatch_fini_4" : "__kmpc_dispatch_fini_4u")
2289           : (IVSigned ? "__kmpc_dispatch_fini_8" : "__kmpc_dispatch_fini_8u");
2290   llvm::Type *TypeParams[] = {
2291       getIdentTyPointerTy(), // loc
2292       CGM.Int32Ty,           // tid
2293   };
2294   llvm::FunctionType *FnTy =
2295       llvm::FunctionType::get(CGM.VoidTy, TypeParams, /*isVarArg=*/false);
2296   return CGM.CreateRuntimeFunction(FnTy, Name);
2297 }
2298 
2299 llvm::Constant *CGOpenMPRuntime::createDispatchNextFunction(unsigned IVSize,
2300                                                             bool IVSigned) {
2301   assert((IVSize == 32 || IVSize == 64) &&
2302          "IV size is not compatible with the omp runtime");
2303   auto Name =
2304       IVSize == 32
2305           ? (IVSigned ? "__kmpc_dispatch_next_4" : "__kmpc_dispatch_next_4u")
2306           : (IVSigned ? "__kmpc_dispatch_next_8" : "__kmpc_dispatch_next_8u");
2307   auto ITy = IVSize == 32 ? CGM.Int32Ty : CGM.Int64Ty;
2308   auto PtrTy = llvm::PointerType::getUnqual(ITy);
2309   llvm::Type *TypeParams[] = {
2310     getIdentTyPointerTy(),                     // loc
2311     CGM.Int32Ty,                               // tid
2312     llvm::PointerType::getUnqual(CGM.Int32Ty), // p_lastiter
2313     PtrTy,                                     // p_lower
2314     PtrTy,                                     // p_upper
2315     PtrTy                                      // p_stride
2316   };
2317   llvm::FunctionType *FnTy =
2318       llvm::FunctionType::get(CGM.Int32Ty, TypeParams, /*isVarArg*/ false);
2319   return CGM.CreateRuntimeFunction(FnTy, Name);
2320 }
2321 
2322 llvm::Constant *
2323 CGOpenMPRuntime::getOrCreateThreadPrivateCache(const VarDecl *VD) {
2324   assert(!CGM.getLangOpts().OpenMPUseTLS ||
2325          !CGM.getContext().getTargetInfo().isTLSSupported());
2326   // Lookup the entry, lazily creating it if necessary.
2327   return getOrCreateInternalVariable(CGM.Int8PtrPtrTy,
2328                                      Twine(CGM.getMangledName(VD)) + ".cache.");
2329 }
2330 
2331 Address CGOpenMPRuntime::getAddrOfThreadPrivate(CodeGenFunction &CGF,
2332                                                 const VarDecl *VD,
2333                                                 Address VDAddr,
2334                                                 SourceLocation Loc) {
2335   if (CGM.getLangOpts().OpenMPUseTLS &&
2336       CGM.getContext().getTargetInfo().isTLSSupported())
2337     return VDAddr;
2338 
2339   auto VarTy = VDAddr.getElementType();
2340   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
2341                          CGF.Builder.CreatePointerCast(VDAddr.getPointer(),
2342                                                        CGM.Int8PtrTy),
2343                          CGM.getSize(CGM.GetTargetTypeStoreSize(VarTy)),
2344                          getOrCreateThreadPrivateCache(VD)};
2345   return Address(CGF.EmitRuntimeCall(
2346       createRuntimeFunction(OMPRTL__kmpc_threadprivate_cached), Args),
2347                  VDAddr.getAlignment());
2348 }
2349 
2350 void CGOpenMPRuntime::emitThreadPrivateVarInit(
2351     CodeGenFunction &CGF, Address VDAddr, llvm::Value *Ctor,
2352     llvm::Value *CopyCtor, llvm::Value *Dtor, SourceLocation Loc) {
2353   // Call kmp_int32 __kmpc_global_thread_num(&loc) to init OpenMP runtime
2354   // library.
2355   auto OMPLoc = emitUpdateLocation(CGF, Loc);
2356   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_global_thread_num),
2357                       OMPLoc);
2358   // Call __kmpc_threadprivate_register(&loc, &var, ctor, cctor/*NULL*/, dtor)
2359   // to register constructor/destructor for variable.
2360   llvm::Value *Args[] = {OMPLoc,
2361                          CGF.Builder.CreatePointerCast(VDAddr.getPointer(),
2362                                                        CGM.VoidPtrTy),
2363                          Ctor, CopyCtor, Dtor};
2364   CGF.EmitRuntimeCall(
2365       createRuntimeFunction(OMPRTL__kmpc_threadprivate_register), Args);
2366 }
2367 
2368 llvm::Function *CGOpenMPRuntime::emitThreadPrivateVarDefinition(
2369     const VarDecl *VD, Address VDAddr, SourceLocation Loc,
2370     bool PerformInit, CodeGenFunction *CGF) {
2371   if (CGM.getLangOpts().OpenMPUseTLS &&
2372       CGM.getContext().getTargetInfo().isTLSSupported())
2373     return nullptr;
2374 
2375   VD = VD->getDefinition(CGM.getContext());
2376   if (VD && ThreadPrivateWithDefinition.count(VD) == 0) {
2377     ThreadPrivateWithDefinition.insert(VD);
2378     QualType ASTTy = VD->getType();
2379 
2380     llvm::Value *Ctor = nullptr, *CopyCtor = nullptr, *Dtor = nullptr;
2381     auto Init = VD->getAnyInitializer();
2382     if (CGM.getLangOpts().CPlusPlus && PerformInit) {
2383       // Generate function that re-emits the declaration's initializer into the
2384       // threadprivate copy of the variable VD
2385       CodeGenFunction CtorCGF(CGM);
2386       FunctionArgList Args;
2387       ImplicitParamDecl Dst(CGM.getContext(), /*DC=*/nullptr, Loc,
2388                             /*Id=*/nullptr, CGM.getContext().VoidPtrTy,
2389                             ImplicitParamDecl::Other);
2390       Args.push_back(&Dst);
2391 
2392       auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(
2393           CGM.getContext().VoidPtrTy, Args);
2394       auto FTy = CGM.getTypes().GetFunctionType(FI);
2395       auto Fn = CGM.CreateGlobalInitOrDestructFunction(
2396           FTy, ".__kmpc_global_ctor_.", FI, Loc);
2397       CtorCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidPtrTy, Fn, FI,
2398                             Args, Loc, Loc);
2399       auto ArgVal = CtorCGF.EmitLoadOfScalar(
2400           CtorCGF.GetAddrOfLocalVar(&Dst), /*Volatile=*/false,
2401           CGM.getContext().VoidPtrTy, Dst.getLocation());
2402       Address Arg = Address(ArgVal, VDAddr.getAlignment());
2403       Arg = CtorCGF.Builder.CreateElementBitCast(
2404           Arg, CtorCGF.ConvertTypeForMem(ASTTy));
2405       CtorCGF.EmitAnyExprToMem(Init, Arg, Init->getType().getQualifiers(),
2406                                /*IsInitializer=*/true);
2407       ArgVal = CtorCGF.EmitLoadOfScalar(
2408           CtorCGF.GetAddrOfLocalVar(&Dst), /*Volatile=*/false,
2409           CGM.getContext().VoidPtrTy, Dst.getLocation());
2410       CtorCGF.Builder.CreateStore(ArgVal, CtorCGF.ReturnValue);
2411       CtorCGF.FinishFunction();
2412       Ctor = Fn;
2413     }
2414     if (VD->getType().isDestructedType() != QualType::DK_none) {
2415       // Generate function that emits destructor call for the threadprivate copy
2416       // of the variable VD
2417       CodeGenFunction DtorCGF(CGM);
2418       FunctionArgList Args;
2419       ImplicitParamDecl Dst(CGM.getContext(), /*DC=*/nullptr, Loc,
2420                             /*Id=*/nullptr, CGM.getContext().VoidPtrTy,
2421                             ImplicitParamDecl::Other);
2422       Args.push_back(&Dst);
2423 
2424       auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(
2425           CGM.getContext().VoidTy, Args);
2426       auto FTy = CGM.getTypes().GetFunctionType(FI);
2427       auto Fn = CGM.CreateGlobalInitOrDestructFunction(
2428           FTy, ".__kmpc_global_dtor_.", FI, Loc);
2429       auto NL = ApplyDebugLocation::CreateEmpty(DtorCGF);
2430       DtorCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidTy, Fn, FI, Args,
2431                             Loc, Loc);
2432       // Create a scope with an artificial location for the body of this function.
2433       auto AL = ApplyDebugLocation::CreateArtificial(DtorCGF);
2434       auto ArgVal = DtorCGF.EmitLoadOfScalar(
2435           DtorCGF.GetAddrOfLocalVar(&Dst),
2436           /*Volatile=*/false, CGM.getContext().VoidPtrTy, Dst.getLocation());
2437       DtorCGF.emitDestroy(Address(ArgVal, VDAddr.getAlignment()), ASTTy,
2438                           DtorCGF.getDestroyer(ASTTy.isDestructedType()),
2439                           DtorCGF.needsEHCleanup(ASTTy.isDestructedType()));
2440       DtorCGF.FinishFunction();
2441       Dtor = Fn;
2442     }
2443     // Do not emit init function if it is not required.
2444     if (!Ctor && !Dtor)
2445       return nullptr;
2446 
2447     llvm::Type *CopyCtorTyArgs[] = {CGM.VoidPtrTy, CGM.VoidPtrTy};
2448     auto CopyCtorTy =
2449         llvm::FunctionType::get(CGM.VoidPtrTy, CopyCtorTyArgs,
2450                                 /*isVarArg=*/false)->getPointerTo();
2451     // Copying constructor for the threadprivate variable.
2452     // Must be NULL - reserved by runtime, but currently it requires that this
2453     // parameter is always NULL. Otherwise it fires assertion.
2454     CopyCtor = llvm::Constant::getNullValue(CopyCtorTy);
2455     if (Ctor == nullptr) {
2456       auto CtorTy = llvm::FunctionType::get(CGM.VoidPtrTy, CGM.VoidPtrTy,
2457                                             /*isVarArg=*/false)->getPointerTo();
2458       Ctor = llvm::Constant::getNullValue(CtorTy);
2459     }
2460     if (Dtor == nullptr) {
2461       auto DtorTy = llvm::FunctionType::get(CGM.VoidTy, CGM.VoidPtrTy,
2462                                             /*isVarArg=*/false)->getPointerTo();
2463       Dtor = llvm::Constant::getNullValue(DtorTy);
2464     }
2465     if (!CGF) {
2466       auto InitFunctionTy =
2467           llvm::FunctionType::get(CGM.VoidTy, /*isVarArg*/ false);
2468       auto InitFunction = CGM.CreateGlobalInitOrDestructFunction(
2469           InitFunctionTy, ".__omp_threadprivate_init_.",
2470           CGM.getTypes().arrangeNullaryFunction());
2471       CodeGenFunction InitCGF(CGM);
2472       FunctionArgList ArgList;
2473       InitCGF.StartFunction(GlobalDecl(), CGM.getContext().VoidTy, InitFunction,
2474                             CGM.getTypes().arrangeNullaryFunction(), ArgList,
2475                             Loc, Loc);
2476       emitThreadPrivateVarInit(InitCGF, VDAddr, Ctor, CopyCtor, Dtor, Loc);
2477       InitCGF.FinishFunction();
2478       return InitFunction;
2479     }
2480     emitThreadPrivateVarInit(*CGF, VDAddr, Ctor, CopyCtor, Dtor, Loc);
2481   }
2482   return nullptr;
2483 }
2484 
2485 Address CGOpenMPRuntime::getAddrOfArtificialThreadPrivate(CodeGenFunction &CGF,
2486                                                           QualType VarType,
2487                                                           StringRef Name) {
2488   llvm::Twine VarName(Name, ".artificial.");
2489   llvm::Type *VarLVType = CGF.ConvertTypeForMem(VarType);
2490   llvm::Value *GAddr = getOrCreateInternalVariable(VarLVType, VarName);
2491   llvm::Value *Args[] = {
2492       emitUpdateLocation(CGF, SourceLocation()),
2493       getThreadID(CGF, SourceLocation()),
2494       CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(GAddr, CGM.VoidPtrTy),
2495       CGF.Builder.CreateIntCast(CGF.getTypeSize(VarType), CGM.SizeTy,
2496                                 /*IsSigned=*/false),
2497       getOrCreateInternalVariable(CGM.VoidPtrPtrTy, VarName + ".cache.")};
2498   return Address(
2499       CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
2500           CGF.EmitRuntimeCall(
2501               createRuntimeFunction(OMPRTL__kmpc_threadprivate_cached), Args),
2502           VarLVType->getPointerTo(/*AddrSpace=*/0)),
2503       CGM.getPointerAlign());
2504 }
2505 
2506 /// \brief Emits code for OpenMP 'if' clause using specified \a CodeGen
2507 /// function. Here is the logic:
2508 /// if (Cond) {
2509 ///   ThenGen();
2510 /// } else {
2511 ///   ElseGen();
2512 /// }
2513 void CGOpenMPRuntime::emitOMPIfClause(CodeGenFunction &CGF, const Expr *Cond,
2514                                       const RegionCodeGenTy &ThenGen,
2515                                       const RegionCodeGenTy &ElseGen) {
2516   CodeGenFunction::LexicalScope ConditionScope(CGF, Cond->getSourceRange());
2517 
2518   // If the condition constant folds and can be elided, try to avoid emitting
2519   // the condition and the dead arm of the if/else.
2520   bool CondConstant;
2521   if (CGF.ConstantFoldsToSimpleInteger(Cond, CondConstant)) {
2522     if (CondConstant)
2523       ThenGen(CGF);
2524     else
2525       ElseGen(CGF);
2526     return;
2527   }
2528 
2529   // Otherwise, the condition did not fold, or we couldn't elide it.  Just
2530   // emit the conditional branch.
2531   auto ThenBlock = CGF.createBasicBlock("omp_if.then");
2532   auto ElseBlock = CGF.createBasicBlock("omp_if.else");
2533   auto ContBlock = CGF.createBasicBlock("omp_if.end");
2534   CGF.EmitBranchOnBoolExpr(Cond, ThenBlock, ElseBlock, /*TrueCount=*/0);
2535 
2536   // Emit the 'then' code.
2537   CGF.EmitBlock(ThenBlock);
2538   ThenGen(CGF);
2539   CGF.EmitBranch(ContBlock);
2540   // Emit the 'else' code if present.
2541   // There is no need to emit line number for unconditional branch.
2542   (void)ApplyDebugLocation::CreateEmpty(CGF);
2543   CGF.EmitBlock(ElseBlock);
2544   ElseGen(CGF);
2545   // There is no need to emit line number for unconditional branch.
2546   (void)ApplyDebugLocation::CreateEmpty(CGF);
2547   CGF.EmitBranch(ContBlock);
2548   // Emit the continuation block for code after the if.
2549   CGF.EmitBlock(ContBlock, /*IsFinished=*/true);
2550 }
2551 
2552 void CGOpenMPRuntime::emitParallelCall(CodeGenFunction &CGF, SourceLocation Loc,
2553                                        llvm::Value *OutlinedFn,
2554                                        ArrayRef<llvm::Value *> CapturedVars,
2555                                        const Expr *IfCond) {
2556   if (!CGF.HaveInsertPoint())
2557     return;
2558   auto *RTLoc = emitUpdateLocation(CGF, Loc);
2559   auto &&ThenGen = [OutlinedFn, CapturedVars, RTLoc](CodeGenFunction &CGF,
2560                                                      PrePostActionTy &) {
2561     // Build call __kmpc_fork_call(loc, n, microtask, var1, .., varn);
2562     auto &RT = CGF.CGM.getOpenMPRuntime();
2563     llvm::Value *Args[] = {
2564         RTLoc,
2565         CGF.Builder.getInt32(CapturedVars.size()), // Number of captured vars
2566         CGF.Builder.CreateBitCast(OutlinedFn, RT.getKmpc_MicroPointerTy())};
2567     llvm::SmallVector<llvm::Value *, 16> RealArgs;
2568     RealArgs.append(std::begin(Args), std::end(Args));
2569     RealArgs.append(CapturedVars.begin(), CapturedVars.end());
2570 
2571     auto RTLFn = RT.createRuntimeFunction(OMPRTL__kmpc_fork_call);
2572     CGF.EmitRuntimeCall(RTLFn, RealArgs);
2573   };
2574   auto &&ElseGen = [OutlinedFn, CapturedVars, RTLoc, Loc](CodeGenFunction &CGF,
2575                                                           PrePostActionTy &) {
2576     auto &RT = CGF.CGM.getOpenMPRuntime();
2577     auto ThreadID = RT.getThreadID(CGF, Loc);
2578     // Build calls:
2579     // __kmpc_serialized_parallel(&Loc, GTid);
2580     llvm::Value *Args[] = {RTLoc, ThreadID};
2581     CGF.EmitRuntimeCall(
2582         RT.createRuntimeFunction(OMPRTL__kmpc_serialized_parallel), Args);
2583 
2584     // OutlinedFn(&GTid, &zero, CapturedStruct);
2585     auto ThreadIDAddr = RT.emitThreadIDAddress(CGF, Loc);
2586     Address ZeroAddr =
2587         CGF.CreateTempAlloca(CGF.Int32Ty, CharUnits::fromQuantity(4),
2588                              /*Name*/ ".zero.addr");
2589     CGF.InitTempAlloca(ZeroAddr, CGF.Builder.getInt32(/*C*/ 0));
2590     llvm::SmallVector<llvm::Value *, 16> OutlinedFnArgs;
2591     OutlinedFnArgs.push_back(ThreadIDAddr.getPointer());
2592     OutlinedFnArgs.push_back(ZeroAddr.getPointer());
2593     OutlinedFnArgs.append(CapturedVars.begin(), CapturedVars.end());
2594     RT.emitOutlinedFunctionCall(CGF, Loc, OutlinedFn, OutlinedFnArgs);
2595 
2596     // __kmpc_end_serialized_parallel(&Loc, GTid);
2597     llvm::Value *EndArgs[] = {RT.emitUpdateLocation(CGF, Loc), ThreadID};
2598     CGF.EmitRuntimeCall(
2599         RT.createRuntimeFunction(OMPRTL__kmpc_end_serialized_parallel),
2600         EndArgs);
2601   };
2602   if (IfCond)
2603     emitOMPIfClause(CGF, IfCond, ThenGen, ElseGen);
2604   else {
2605     RegionCodeGenTy ThenRCG(ThenGen);
2606     ThenRCG(CGF);
2607   }
2608 }
2609 
2610 // If we're inside an (outlined) parallel region, use the region info's
2611 // thread-ID variable (it is passed in a first argument of the outlined function
2612 // as "kmp_int32 *gtid"). Otherwise, if we're not inside parallel region, but in
2613 // regular serial code region, get thread ID by calling kmp_int32
2614 // kmpc_global_thread_num(ident_t *loc), stash this thread ID in a temporary and
2615 // return the address of that temp.
2616 Address CGOpenMPRuntime::emitThreadIDAddress(CodeGenFunction &CGF,
2617                                              SourceLocation Loc) {
2618   if (auto *OMPRegionInfo =
2619           dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo))
2620     if (OMPRegionInfo->getThreadIDVariable())
2621       return OMPRegionInfo->getThreadIDVariableLValue(CGF).getAddress();
2622 
2623   auto ThreadID = getThreadID(CGF, Loc);
2624   auto Int32Ty =
2625       CGF.getContext().getIntTypeForBitwidth(/*DestWidth*/ 32, /*Signed*/ true);
2626   auto ThreadIDTemp = CGF.CreateMemTemp(Int32Ty, /*Name*/ ".threadid_temp.");
2627   CGF.EmitStoreOfScalar(ThreadID,
2628                         CGF.MakeAddrLValue(ThreadIDTemp, Int32Ty));
2629 
2630   return ThreadIDTemp;
2631 }
2632 
2633 llvm::Constant *
2634 CGOpenMPRuntime::getOrCreateInternalVariable(llvm::Type *Ty,
2635                                              const llvm::Twine &Name) {
2636   SmallString<256> Buffer;
2637   llvm::raw_svector_ostream Out(Buffer);
2638   Out << Name;
2639   auto RuntimeName = Out.str();
2640   auto &Elem = *InternalVars.insert(std::make_pair(RuntimeName, nullptr)).first;
2641   if (Elem.second) {
2642     assert(Elem.second->getType()->getPointerElementType() == Ty &&
2643            "OMP internal variable has different type than requested");
2644     return &*Elem.second;
2645   }
2646 
2647   return Elem.second = new llvm::GlobalVariable(
2648              CGM.getModule(), Ty, /*IsConstant*/ false,
2649              llvm::GlobalValue::CommonLinkage, llvm::Constant::getNullValue(Ty),
2650              Elem.first());
2651 }
2652 
2653 llvm::Value *CGOpenMPRuntime::getCriticalRegionLock(StringRef CriticalName) {
2654   llvm::Twine Name(".gomp_critical_user_", CriticalName);
2655   return getOrCreateInternalVariable(KmpCriticalNameTy, Name.concat(".var"));
2656 }
2657 
2658 namespace {
2659 /// Common pre(post)-action for different OpenMP constructs.
2660 class CommonActionTy final : public PrePostActionTy {
2661   llvm::Value *EnterCallee;
2662   ArrayRef<llvm::Value *> EnterArgs;
2663   llvm::Value *ExitCallee;
2664   ArrayRef<llvm::Value *> ExitArgs;
2665   bool Conditional;
2666   llvm::BasicBlock *ContBlock = nullptr;
2667 
2668 public:
2669   CommonActionTy(llvm::Value *EnterCallee, ArrayRef<llvm::Value *> EnterArgs,
2670                  llvm::Value *ExitCallee, ArrayRef<llvm::Value *> ExitArgs,
2671                  bool Conditional = false)
2672       : EnterCallee(EnterCallee), EnterArgs(EnterArgs), ExitCallee(ExitCallee),
2673         ExitArgs(ExitArgs), Conditional(Conditional) {}
2674   void Enter(CodeGenFunction &CGF) override {
2675     llvm::Value *EnterRes = CGF.EmitRuntimeCall(EnterCallee, EnterArgs);
2676     if (Conditional) {
2677       llvm::Value *CallBool = CGF.Builder.CreateIsNotNull(EnterRes);
2678       auto *ThenBlock = CGF.createBasicBlock("omp_if.then");
2679       ContBlock = CGF.createBasicBlock("omp_if.end");
2680       // Generate the branch (If-stmt)
2681       CGF.Builder.CreateCondBr(CallBool, ThenBlock, ContBlock);
2682       CGF.EmitBlock(ThenBlock);
2683     }
2684   }
2685   void Done(CodeGenFunction &CGF) {
2686     // Emit the rest of blocks/branches
2687     CGF.EmitBranch(ContBlock);
2688     CGF.EmitBlock(ContBlock, true);
2689   }
2690   void Exit(CodeGenFunction &CGF) override {
2691     CGF.EmitRuntimeCall(ExitCallee, ExitArgs);
2692   }
2693 };
2694 } // anonymous namespace
2695 
2696 void CGOpenMPRuntime::emitCriticalRegion(CodeGenFunction &CGF,
2697                                          StringRef CriticalName,
2698                                          const RegionCodeGenTy &CriticalOpGen,
2699                                          SourceLocation Loc, const Expr *Hint) {
2700   // __kmpc_critical[_with_hint](ident_t *, gtid, Lock[, hint]);
2701   // CriticalOpGen();
2702   // __kmpc_end_critical(ident_t *, gtid, Lock);
2703   // Prepare arguments and build a call to __kmpc_critical
2704   if (!CGF.HaveInsertPoint())
2705     return;
2706   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
2707                          getCriticalRegionLock(CriticalName)};
2708   llvm::SmallVector<llvm::Value *, 4> EnterArgs(std::begin(Args),
2709                                                 std::end(Args));
2710   if (Hint) {
2711     EnterArgs.push_back(CGF.Builder.CreateIntCast(
2712         CGF.EmitScalarExpr(Hint), CGM.IntPtrTy, /*isSigned=*/false));
2713   }
2714   CommonActionTy Action(
2715       createRuntimeFunction(Hint ? OMPRTL__kmpc_critical_with_hint
2716                                  : OMPRTL__kmpc_critical),
2717       EnterArgs, createRuntimeFunction(OMPRTL__kmpc_end_critical), Args);
2718   CriticalOpGen.setAction(Action);
2719   emitInlinedDirective(CGF, OMPD_critical, CriticalOpGen);
2720 }
2721 
2722 void CGOpenMPRuntime::emitMasterRegion(CodeGenFunction &CGF,
2723                                        const RegionCodeGenTy &MasterOpGen,
2724                                        SourceLocation Loc) {
2725   if (!CGF.HaveInsertPoint())
2726     return;
2727   // if(__kmpc_master(ident_t *, gtid)) {
2728   //   MasterOpGen();
2729   //   __kmpc_end_master(ident_t *, gtid);
2730   // }
2731   // Prepare arguments and build a call to __kmpc_master
2732   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
2733   CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_master), Args,
2734                         createRuntimeFunction(OMPRTL__kmpc_end_master), Args,
2735                         /*Conditional=*/true);
2736   MasterOpGen.setAction(Action);
2737   emitInlinedDirective(CGF, OMPD_master, MasterOpGen);
2738   Action.Done(CGF);
2739 }
2740 
2741 void CGOpenMPRuntime::emitTaskyieldCall(CodeGenFunction &CGF,
2742                                         SourceLocation Loc) {
2743   if (!CGF.HaveInsertPoint())
2744     return;
2745   // Build call __kmpc_omp_taskyield(loc, thread_id, 0);
2746   llvm::Value *Args[] = {
2747       emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
2748       llvm::ConstantInt::get(CGM.IntTy, /*V=*/0, /*isSigned=*/true)};
2749   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_taskyield), Args);
2750   if (auto *Region = dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo))
2751     Region->emitUntiedSwitch(CGF);
2752 }
2753 
2754 void CGOpenMPRuntime::emitTaskgroupRegion(CodeGenFunction &CGF,
2755                                           const RegionCodeGenTy &TaskgroupOpGen,
2756                                           SourceLocation Loc) {
2757   if (!CGF.HaveInsertPoint())
2758     return;
2759   // __kmpc_taskgroup(ident_t *, gtid);
2760   // TaskgroupOpGen();
2761   // __kmpc_end_taskgroup(ident_t *, gtid);
2762   // Prepare arguments and build a call to __kmpc_taskgroup
2763   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
2764   CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_taskgroup), Args,
2765                         createRuntimeFunction(OMPRTL__kmpc_end_taskgroup),
2766                         Args);
2767   TaskgroupOpGen.setAction(Action);
2768   emitInlinedDirective(CGF, OMPD_taskgroup, TaskgroupOpGen);
2769 }
2770 
2771 /// Given an array of pointers to variables, project the address of a
2772 /// given variable.
2773 static Address emitAddrOfVarFromArray(CodeGenFunction &CGF, Address Array,
2774                                       unsigned Index, const VarDecl *Var) {
2775   // Pull out the pointer to the variable.
2776   Address PtrAddr =
2777       CGF.Builder.CreateConstArrayGEP(Array, Index, CGF.getPointerSize());
2778   llvm::Value *Ptr = CGF.Builder.CreateLoad(PtrAddr);
2779 
2780   Address Addr = Address(Ptr, CGF.getContext().getDeclAlign(Var));
2781   Addr = CGF.Builder.CreateElementBitCast(
2782       Addr, CGF.ConvertTypeForMem(Var->getType()));
2783   return Addr;
2784 }
2785 
2786 static llvm::Value *emitCopyprivateCopyFunction(
2787     CodeGenModule &CGM, llvm::Type *ArgsType,
2788     ArrayRef<const Expr *> CopyprivateVars, ArrayRef<const Expr *> DestExprs,
2789     ArrayRef<const Expr *> SrcExprs, ArrayRef<const Expr *> AssignmentOps,
2790     SourceLocation Loc) {
2791   auto &C = CGM.getContext();
2792   // void copy_func(void *LHSArg, void *RHSArg);
2793   FunctionArgList Args;
2794   ImplicitParamDecl LHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
2795                            ImplicitParamDecl::Other);
2796   ImplicitParamDecl RHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
2797                            ImplicitParamDecl::Other);
2798   Args.push_back(&LHSArg);
2799   Args.push_back(&RHSArg);
2800   auto &CGFI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
2801   auto *Fn = llvm::Function::Create(
2802       CGM.getTypes().GetFunctionType(CGFI), llvm::GlobalValue::InternalLinkage,
2803       ".omp.copyprivate.copy_func", &CGM.getModule());
2804   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, CGFI);
2805   CodeGenFunction CGF(CGM);
2806   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, CGFI, Args, Loc, Loc);
2807   // Dest = (void*[n])(LHSArg);
2808   // Src = (void*[n])(RHSArg);
2809   Address LHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
2810       CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&LHSArg)),
2811       ArgsType), CGF.getPointerAlign());
2812   Address RHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
2813       CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&RHSArg)),
2814       ArgsType), CGF.getPointerAlign());
2815   // *(Type0*)Dst[0] = *(Type0*)Src[0];
2816   // *(Type1*)Dst[1] = *(Type1*)Src[1];
2817   // ...
2818   // *(Typen*)Dst[n] = *(Typen*)Src[n];
2819   for (unsigned I = 0, E = AssignmentOps.size(); I < E; ++I) {
2820     auto DestVar = cast<VarDecl>(cast<DeclRefExpr>(DestExprs[I])->getDecl());
2821     Address DestAddr = emitAddrOfVarFromArray(CGF, LHS, I, DestVar);
2822 
2823     auto SrcVar = cast<VarDecl>(cast<DeclRefExpr>(SrcExprs[I])->getDecl());
2824     Address SrcAddr = emitAddrOfVarFromArray(CGF, RHS, I, SrcVar);
2825 
2826     auto *VD = cast<DeclRefExpr>(CopyprivateVars[I])->getDecl();
2827     QualType Type = VD->getType();
2828     CGF.EmitOMPCopy(Type, DestAddr, SrcAddr, DestVar, SrcVar, AssignmentOps[I]);
2829   }
2830   CGF.FinishFunction();
2831   return Fn;
2832 }
2833 
2834 void CGOpenMPRuntime::emitSingleRegion(CodeGenFunction &CGF,
2835                                        const RegionCodeGenTy &SingleOpGen,
2836                                        SourceLocation Loc,
2837                                        ArrayRef<const Expr *> CopyprivateVars,
2838                                        ArrayRef<const Expr *> SrcExprs,
2839                                        ArrayRef<const Expr *> DstExprs,
2840                                        ArrayRef<const Expr *> AssignmentOps) {
2841   if (!CGF.HaveInsertPoint())
2842     return;
2843   assert(CopyprivateVars.size() == SrcExprs.size() &&
2844          CopyprivateVars.size() == DstExprs.size() &&
2845          CopyprivateVars.size() == AssignmentOps.size());
2846   auto &C = CGM.getContext();
2847   // int32 did_it = 0;
2848   // if(__kmpc_single(ident_t *, gtid)) {
2849   //   SingleOpGen();
2850   //   __kmpc_end_single(ident_t *, gtid);
2851   //   did_it = 1;
2852   // }
2853   // call __kmpc_copyprivate(ident_t *, gtid, <buf_size>, <copyprivate list>,
2854   // <copy_func>, did_it);
2855 
2856   Address DidIt = Address::invalid();
2857   if (!CopyprivateVars.empty()) {
2858     // int32 did_it = 0;
2859     auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1);
2860     DidIt = CGF.CreateMemTemp(KmpInt32Ty, ".omp.copyprivate.did_it");
2861     CGF.Builder.CreateStore(CGF.Builder.getInt32(0), DidIt);
2862   }
2863   // Prepare arguments and build a call to __kmpc_single
2864   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
2865   CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_single), Args,
2866                         createRuntimeFunction(OMPRTL__kmpc_end_single), Args,
2867                         /*Conditional=*/true);
2868   SingleOpGen.setAction(Action);
2869   emitInlinedDirective(CGF, OMPD_single, SingleOpGen);
2870   if (DidIt.isValid()) {
2871     // did_it = 1;
2872     CGF.Builder.CreateStore(CGF.Builder.getInt32(1), DidIt);
2873   }
2874   Action.Done(CGF);
2875   // call __kmpc_copyprivate(ident_t *, gtid, <buf_size>, <copyprivate list>,
2876   // <copy_func>, did_it);
2877   if (DidIt.isValid()) {
2878     llvm::APInt ArraySize(/*unsigned int numBits=*/32, CopyprivateVars.size());
2879     auto CopyprivateArrayTy =
2880         C.getConstantArrayType(C.VoidPtrTy, ArraySize, ArrayType::Normal,
2881                                /*IndexTypeQuals=*/0);
2882     // Create a list of all private variables for copyprivate.
2883     Address CopyprivateList =
2884         CGF.CreateMemTemp(CopyprivateArrayTy, ".omp.copyprivate.cpr_list");
2885     for (unsigned I = 0, E = CopyprivateVars.size(); I < E; ++I) {
2886       Address Elem = CGF.Builder.CreateConstArrayGEP(
2887           CopyprivateList, I, CGF.getPointerSize());
2888       CGF.Builder.CreateStore(
2889           CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
2890               CGF.EmitLValue(CopyprivateVars[I]).getPointer(), CGF.VoidPtrTy),
2891           Elem);
2892     }
2893     // Build function that copies private values from single region to all other
2894     // threads in the corresponding parallel region.
2895     auto *CpyFn = emitCopyprivateCopyFunction(
2896         CGM, CGF.ConvertTypeForMem(CopyprivateArrayTy)->getPointerTo(),
2897         CopyprivateVars, SrcExprs, DstExprs, AssignmentOps, Loc);
2898     auto *BufSize = CGF.getTypeSize(CopyprivateArrayTy);
2899     Address CL =
2900       CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(CopyprivateList,
2901                                                       CGF.VoidPtrTy);
2902     auto *DidItVal = CGF.Builder.CreateLoad(DidIt);
2903     llvm::Value *Args[] = {
2904         emitUpdateLocation(CGF, Loc), // ident_t *<loc>
2905         getThreadID(CGF, Loc),        // i32 <gtid>
2906         BufSize,                      // size_t <buf_size>
2907         CL.getPointer(),              // void *<copyprivate list>
2908         CpyFn,                        // void (*) (void *, void *) <copy_func>
2909         DidItVal                      // i32 did_it
2910     };
2911     CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_copyprivate), Args);
2912   }
2913 }
2914 
2915 void CGOpenMPRuntime::emitOrderedRegion(CodeGenFunction &CGF,
2916                                         const RegionCodeGenTy &OrderedOpGen,
2917                                         SourceLocation Loc, bool IsThreads) {
2918   if (!CGF.HaveInsertPoint())
2919     return;
2920   // __kmpc_ordered(ident_t *, gtid);
2921   // OrderedOpGen();
2922   // __kmpc_end_ordered(ident_t *, gtid);
2923   // Prepare arguments and build a call to __kmpc_ordered
2924   if (IsThreads) {
2925     llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
2926     CommonActionTy Action(createRuntimeFunction(OMPRTL__kmpc_ordered), Args,
2927                           createRuntimeFunction(OMPRTL__kmpc_end_ordered),
2928                           Args);
2929     OrderedOpGen.setAction(Action);
2930     emitInlinedDirective(CGF, OMPD_ordered, OrderedOpGen);
2931     return;
2932   }
2933   emitInlinedDirective(CGF, OMPD_ordered, OrderedOpGen);
2934 }
2935 
2936 void CGOpenMPRuntime::emitBarrierCall(CodeGenFunction &CGF, SourceLocation Loc,
2937                                       OpenMPDirectiveKind Kind, bool EmitChecks,
2938                                       bool ForceSimpleCall) {
2939   if (!CGF.HaveInsertPoint())
2940     return;
2941   // Build call __kmpc_cancel_barrier(loc, thread_id);
2942   // Build call __kmpc_barrier(loc, thread_id);
2943   unsigned Flags;
2944   if (Kind == OMPD_for)
2945     Flags = OMP_IDENT_BARRIER_IMPL_FOR;
2946   else if (Kind == OMPD_sections)
2947     Flags = OMP_IDENT_BARRIER_IMPL_SECTIONS;
2948   else if (Kind == OMPD_single)
2949     Flags = OMP_IDENT_BARRIER_IMPL_SINGLE;
2950   else if (Kind == OMPD_barrier)
2951     Flags = OMP_IDENT_BARRIER_EXPL;
2952   else
2953     Flags = OMP_IDENT_BARRIER_IMPL;
2954   // Build call __kmpc_cancel_barrier(loc, thread_id) or __kmpc_barrier(loc,
2955   // thread_id);
2956   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc, Flags),
2957                          getThreadID(CGF, Loc)};
2958   if (auto *OMPRegionInfo =
2959           dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) {
2960     if (!ForceSimpleCall && OMPRegionInfo->hasCancel()) {
2961       auto *Result = CGF.EmitRuntimeCall(
2962           createRuntimeFunction(OMPRTL__kmpc_cancel_barrier), Args);
2963       if (EmitChecks) {
2964         // if (__kmpc_cancel_barrier()) {
2965         //   exit from construct;
2966         // }
2967         auto *ExitBB = CGF.createBasicBlock(".cancel.exit");
2968         auto *ContBB = CGF.createBasicBlock(".cancel.continue");
2969         auto *Cmp = CGF.Builder.CreateIsNotNull(Result);
2970         CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB);
2971         CGF.EmitBlock(ExitBB);
2972         //   exit from construct;
2973         auto CancelDestination =
2974             CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind());
2975         CGF.EmitBranchThroughCleanup(CancelDestination);
2976         CGF.EmitBlock(ContBB, /*IsFinished=*/true);
2977       }
2978       return;
2979     }
2980   }
2981   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_barrier), Args);
2982 }
2983 
2984 /// \brief Map the OpenMP loop schedule to the runtime enumeration.
2985 static OpenMPSchedType getRuntimeSchedule(OpenMPScheduleClauseKind ScheduleKind,
2986                                           bool Chunked, bool Ordered) {
2987   switch (ScheduleKind) {
2988   case OMPC_SCHEDULE_static:
2989     return Chunked ? (Ordered ? OMP_ord_static_chunked : OMP_sch_static_chunked)
2990                    : (Ordered ? OMP_ord_static : OMP_sch_static);
2991   case OMPC_SCHEDULE_dynamic:
2992     return Ordered ? OMP_ord_dynamic_chunked : OMP_sch_dynamic_chunked;
2993   case OMPC_SCHEDULE_guided:
2994     return Ordered ? OMP_ord_guided_chunked : OMP_sch_guided_chunked;
2995   case OMPC_SCHEDULE_runtime:
2996     return Ordered ? OMP_ord_runtime : OMP_sch_runtime;
2997   case OMPC_SCHEDULE_auto:
2998     return Ordered ? OMP_ord_auto : OMP_sch_auto;
2999   case OMPC_SCHEDULE_unknown:
3000     assert(!Chunked && "chunk was specified but schedule kind not known");
3001     return Ordered ? OMP_ord_static : OMP_sch_static;
3002   }
3003   llvm_unreachable("Unexpected runtime schedule");
3004 }
3005 
3006 /// \brief Map the OpenMP distribute schedule to the runtime enumeration.
3007 static OpenMPSchedType
3008 getRuntimeSchedule(OpenMPDistScheduleClauseKind ScheduleKind, bool Chunked) {
3009   // only static is allowed for dist_schedule
3010   return Chunked ? OMP_dist_sch_static_chunked : OMP_dist_sch_static;
3011 }
3012 
3013 bool CGOpenMPRuntime::isStaticNonchunked(OpenMPScheduleClauseKind ScheduleKind,
3014                                          bool Chunked) const {
3015   auto Schedule = getRuntimeSchedule(ScheduleKind, Chunked, /*Ordered=*/false);
3016   return Schedule == OMP_sch_static;
3017 }
3018 
3019 bool CGOpenMPRuntime::isStaticNonchunked(
3020     OpenMPDistScheduleClauseKind ScheduleKind, bool Chunked) const {
3021   auto Schedule = getRuntimeSchedule(ScheduleKind, Chunked);
3022   return Schedule == OMP_dist_sch_static;
3023 }
3024 
3025 
3026 bool CGOpenMPRuntime::isDynamic(OpenMPScheduleClauseKind ScheduleKind) const {
3027   auto Schedule =
3028       getRuntimeSchedule(ScheduleKind, /*Chunked=*/false, /*Ordered=*/false);
3029   assert(Schedule != OMP_sch_static_chunked && "cannot be chunked here");
3030   return Schedule != OMP_sch_static;
3031 }
3032 
3033 static int addMonoNonMonoModifier(OpenMPSchedType Schedule,
3034                                   OpenMPScheduleClauseModifier M1,
3035                                   OpenMPScheduleClauseModifier M2) {
3036   int Modifier = 0;
3037   switch (M1) {
3038   case OMPC_SCHEDULE_MODIFIER_monotonic:
3039     Modifier = OMP_sch_modifier_monotonic;
3040     break;
3041   case OMPC_SCHEDULE_MODIFIER_nonmonotonic:
3042     Modifier = OMP_sch_modifier_nonmonotonic;
3043     break;
3044   case OMPC_SCHEDULE_MODIFIER_simd:
3045     if (Schedule == OMP_sch_static_chunked)
3046       Schedule = OMP_sch_static_balanced_chunked;
3047     break;
3048   case OMPC_SCHEDULE_MODIFIER_last:
3049   case OMPC_SCHEDULE_MODIFIER_unknown:
3050     break;
3051   }
3052   switch (M2) {
3053   case OMPC_SCHEDULE_MODIFIER_monotonic:
3054     Modifier = OMP_sch_modifier_monotonic;
3055     break;
3056   case OMPC_SCHEDULE_MODIFIER_nonmonotonic:
3057     Modifier = OMP_sch_modifier_nonmonotonic;
3058     break;
3059   case OMPC_SCHEDULE_MODIFIER_simd:
3060     if (Schedule == OMP_sch_static_chunked)
3061       Schedule = OMP_sch_static_balanced_chunked;
3062     break;
3063   case OMPC_SCHEDULE_MODIFIER_last:
3064   case OMPC_SCHEDULE_MODIFIER_unknown:
3065     break;
3066   }
3067   return Schedule | Modifier;
3068 }
3069 
3070 void CGOpenMPRuntime::emitForDispatchInit(
3071     CodeGenFunction &CGF, SourceLocation Loc,
3072     const OpenMPScheduleTy &ScheduleKind, unsigned IVSize, bool IVSigned,
3073     bool Ordered, const DispatchRTInput &DispatchValues) {
3074   if (!CGF.HaveInsertPoint())
3075     return;
3076   OpenMPSchedType Schedule = getRuntimeSchedule(
3077       ScheduleKind.Schedule, DispatchValues.Chunk != nullptr, Ordered);
3078   assert(Ordered ||
3079          (Schedule != OMP_sch_static && Schedule != OMP_sch_static_chunked &&
3080           Schedule != OMP_ord_static && Schedule != OMP_ord_static_chunked &&
3081           Schedule != OMP_sch_static_balanced_chunked));
3082   // Call __kmpc_dispatch_init(
3083   //          ident_t *loc, kmp_int32 tid, kmp_int32 schedule,
3084   //          kmp_int[32|64] lower, kmp_int[32|64] upper,
3085   //          kmp_int[32|64] stride, kmp_int[32|64] chunk);
3086 
3087   // If the Chunk was not specified in the clause - use default value 1.
3088   llvm::Value *Chunk = DispatchValues.Chunk ? DispatchValues.Chunk
3089                                             : CGF.Builder.getIntN(IVSize, 1);
3090   llvm::Value *Args[] = {
3091       emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
3092       CGF.Builder.getInt32(addMonoNonMonoModifier(
3093           Schedule, ScheduleKind.M1, ScheduleKind.M2)), // Schedule type
3094       DispatchValues.LB,                                // Lower
3095       DispatchValues.UB,                                // Upper
3096       CGF.Builder.getIntN(IVSize, 1),                   // Stride
3097       Chunk                                             // Chunk
3098   };
3099   CGF.EmitRuntimeCall(createDispatchInitFunction(IVSize, IVSigned), Args);
3100 }
3101 
3102 static void emitForStaticInitCall(
3103     CodeGenFunction &CGF, llvm::Value *UpdateLocation, llvm::Value *ThreadId,
3104     llvm::Constant *ForStaticInitFunction, OpenMPSchedType Schedule,
3105     OpenMPScheduleClauseModifier M1, OpenMPScheduleClauseModifier M2,
3106     const CGOpenMPRuntime::StaticRTInput &Values) {
3107   if (!CGF.HaveInsertPoint())
3108     return;
3109 
3110   assert(!Values.Ordered);
3111   assert(Schedule == OMP_sch_static || Schedule == OMP_sch_static_chunked ||
3112          Schedule == OMP_sch_static_balanced_chunked ||
3113          Schedule == OMP_ord_static || Schedule == OMP_ord_static_chunked ||
3114          Schedule == OMP_dist_sch_static ||
3115          Schedule == OMP_dist_sch_static_chunked);
3116 
3117   // Call __kmpc_for_static_init(
3118   //          ident_t *loc, kmp_int32 tid, kmp_int32 schedtype,
3119   //          kmp_int32 *p_lastiter, kmp_int[32|64] *p_lower,
3120   //          kmp_int[32|64] *p_upper, kmp_int[32|64] *p_stride,
3121   //          kmp_int[32|64] incr, kmp_int[32|64] chunk);
3122   llvm::Value *Chunk = Values.Chunk;
3123   if (Chunk == nullptr) {
3124     assert((Schedule == OMP_sch_static || Schedule == OMP_ord_static ||
3125             Schedule == OMP_dist_sch_static) &&
3126            "expected static non-chunked schedule");
3127     // If the Chunk was not specified in the clause - use default value 1.
3128     Chunk = CGF.Builder.getIntN(Values.IVSize, 1);
3129   } else {
3130     assert((Schedule == OMP_sch_static_chunked ||
3131             Schedule == OMP_sch_static_balanced_chunked ||
3132             Schedule == OMP_ord_static_chunked ||
3133             Schedule == OMP_dist_sch_static_chunked) &&
3134            "expected static chunked schedule");
3135   }
3136   llvm::Value *Args[] = {
3137       UpdateLocation,
3138       ThreadId,
3139       CGF.Builder.getInt32(addMonoNonMonoModifier(Schedule, M1,
3140                                                   M2)), // Schedule type
3141       Values.IL.getPointer(),                           // &isLastIter
3142       Values.LB.getPointer(),                           // &LB
3143       Values.UB.getPointer(),                           // &UB
3144       Values.ST.getPointer(),                           // &Stride
3145       CGF.Builder.getIntN(Values.IVSize, 1),            // Incr
3146       Chunk                                             // Chunk
3147   };
3148   CGF.EmitRuntimeCall(ForStaticInitFunction, Args);
3149 }
3150 
3151 void CGOpenMPRuntime::emitForStaticInit(CodeGenFunction &CGF,
3152                                         SourceLocation Loc,
3153                                         OpenMPDirectiveKind DKind,
3154                                         const OpenMPScheduleTy &ScheduleKind,
3155                                         const StaticRTInput &Values) {
3156   OpenMPSchedType ScheduleNum = getRuntimeSchedule(
3157       ScheduleKind.Schedule, Values.Chunk != nullptr, Values.Ordered);
3158   assert(isOpenMPWorksharingDirective(DKind) &&
3159          "Expected loop-based or sections-based directive.");
3160   auto *UpdatedLocation = emitUpdateLocation(CGF, Loc,
3161                                              isOpenMPLoopDirective(DKind)
3162                                                  ? OMP_IDENT_WORK_LOOP
3163                                                  : OMP_IDENT_WORK_SECTIONS);
3164   auto *ThreadId = getThreadID(CGF, Loc);
3165   auto *StaticInitFunction =
3166       createForStaticInitFunction(Values.IVSize, Values.IVSigned);
3167   emitForStaticInitCall(CGF, UpdatedLocation, ThreadId, StaticInitFunction,
3168                         ScheduleNum, ScheduleKind.M1, ScheduleKind.M2, Values);
3169 }
3170 
3171 void CGOpenMPRuntime::emitDistributeStaticInit(
3172     CodeGenFunction &CGF, SourceLocation Loc,
3173     OpenMPDistScheduleClauseKind SchedKind,
3174     const CGOpenMPRuntime::StaticRTInput &Values) {
3175   OpenMPSchedType ScheduleNum =
3176       getRuntimeSchedule(SchedKind, Values.Chunk != nullptr);
3177   auto *UpdatedLocation =
3178       emitUpdateLocation(CGF, Loc, OMP_IDENT_WORK_DISTRIBUTE);
3179   auto *ThreadId = getThreadID(CGF, Loc);
3180   auto *StaticInitFunction =
3181       createForStaticInitFunction(Values.IVSize, Values.IVSigned);
3182   emitForStaticInitCall(CGF, UpdatedLocation, ThreadId, StaticInitFunction,
3183                         ScheduleNum, OMPC_SCHEDULE_MODIFIER_unknown,
3184                         OMPC_SCHEDULE_MODIFIER_unknown, Values);
3185 }
3186 
3187 void CGOpenMPRuntime::emitForStaticFinish(CodeGenFunction &CGF,
3188                                           SourceLocation Loc,
3189                                           OpenMPDirectiveKind DKind) {
3190   if (!CGF.HaveInsertPoint())
3191     return;
3192   // Call __kmpc_for_static_fini(ident_t *loc, kmp_int32 tid);
3193   llvm::Value *Args[] = {
3194       emitUpdateLocation(CGF, Loc,
3195                          isOpenMPDistributeDirective(DKind)
3196                              ? OMP_IDENT_WORK_DISTRIBUTE
3197                              : isOpenMPLoopDirective(DKind)
3198                                    ? OMP_IDENT_WORK_LOOP
3199                                    : OMP_IDENT_WORK_SECTIONS),
3200       getThreadID(CGF, Loc)};
3201   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_for_static_fini),
3202                       Args);
3203 }
3204 
3205 void CGOpenMPRuntime::emitForOrderedIterationEnd(CodeGenFunction &CGF,
3206                                                  SourceLocation Loc,
3207                                                  unsigned IVSize,
3208                                                  bool IVSigned) {
3209   if (!CGF.HaveInsertPoint())
3210     return;
3211   // Call __kmpc_for_dynamic_fini_(4|8)[u](ident_t *loc, kmp_int32 tid);
3212   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
3213   CGF.EmitRuntimeCall(createDispatchFiniFunction(IVSize, IVSigned), Args);
3214 }
3215 
3216 llvm::Value *CGOpenMPRuntime::emitForNext(CodeGenFunction &CGF,
3217                                           SourceLocation Loc, unsigned IVSize,
3218                                           bool IVSigned, Address IL,
3219                                           Address LB, Address UB,
3220                                           Address ST) {
3221   // Call __kmpc_dispatch_next(
3222   //          ident_t *loc, kmp_int32 tid, kmp_int32 *p_lastiter,
3223   //          kmp_int[32|64] *p_lower, kmp_int[32|64] *p_upper,
3224   //          kmp_int[32|64] *p_stride);
3225   llvm::Value *Args[] = {
3226       emitUpdateLocation(CGF, Loc),
3227       getThreadID(CGF, Loc),
3228       IL.getPointer(), // &isLastIter
3229       LB.getPointer(), // &Lower
3230       UB.getPointer(), // &Upper
3231       ST.getPointer()  // &Stride
3232   };
3233   llvm::Value *Call =
3234       CGF.EmitRuntimeCall(createDispatchNextFunction(IVSize, IVSigned), Args);
3235   return CGF.EmitScalarConversion(
3236       Call, CGF.getContext().getIntTypeForBitwidth(32, /* Signed */ true),
3237       CGF.getContext().BoolTy, Loc);
3238 }
3239 
3240 void CGOpenMPRuntime::emitNumThreadsClause(CodeGenFunction &CGF,
3241                                            llvm::Value *NumThreads,
3242                                            SourceLocation Loc) {
3243   if (!CGF.HaveInsertPoint())
3244     return;
3245   // Build call __kmpc_push_num_threads(&loc, global_tid, num_threads)
3246   llvm::Value *Args[] = {
3247       emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
3248       CGF.Builder.CreateIntCast(NumThreads, CGF.Int32Ty, /*isSigned*/ true)};
3249   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_num_threads),
3250                       Args);
3251 }
3252 
3253 void CGOpenMPRuntime::emitProcBindClause(CodeGenFunction &CGF,
3254                                          OpenMPProcBindClauseKind ProcBind,
3255                                          SourceLocation Loc) {
3256   if (!CGF.HaveInsertPoint())
3257     return;
3258   // Constants for proc bind value accepted by the runtime.
3259   enum ProcBindTy {
3260     ProcBindFalse = 0,
3261     ProcBindTrue,
3262     ProcBindMaster,
3263     ProcBindClose,
3264     ProcBindSpread,
3265     ProcBindIntel,
3266     ProcBindDefault
3267   } RuntimeProcBind;
3268   switch (ProcBind) {
3269   case OMPC_PROC_BIND_master:
3270     RuntimeProcBind = ProcBindMaster;
3271     break;
3272   case OMPC_PROC_BIND_close:
3273     RuntimeProcBind = ProcBindClose;
3274     break;
3275   case OMPC_PROC_BIND_spread:
3276     RuntimeProcBind = ProcBindSpread;
3277     break;
3278   case OMPC_PROC_BIND_unknown:
3279     llvm_unreachable("Unsupported proc_bind value.");
3280   }
3281   // Build call __kmpc_push_proc_bind(&loc, global_tid, proc_bind)
3282   llvm::Value *Args[] = {
3283       emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
3284       llvm::ConstantInt::get(CGM.IntTy, RuntimeProcBind, /*isSigned=*/true)};
3285   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_proc_bind), Args);
3286 }
3287 
3288 void CGOpenMPRuntime::emitFlush(CodeGenFunction &CGF, ArrayRef<const Expr *>,
3289                                 SourceLocation Loc) {
3290   if (!CGF.HaveInsertPoint())
3291     return;
3292   // Build call void __kmpc_flush(ident_t *loc)
3293   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_flush),
3294                       emitUpdateLocation(CGF, Loc));
3295 }
3296 
3297 namespace {
3298 /// \brief Indexes of fields for type kmp_task_t.
3299 enum KmpTaskTFields {
3300   /// \brief List of shared variables.
3301   KmpTaskTShareds,
3302   /// \brief Task routine.
3303   KmpTaskTRoutine,
3304   /// \brief Partition id for the untied tasks.
3305   KmpTaskTPartId,
3306   /// Function with call of destructors for private variables.
3307   Data1,
3308   /// Task priority.
3309   Data2,
3310   /// (Taskloops only) Lower bound.
3311   KmpTaskTLowerBound,
3312   /// (Taskloops only) Upper bound.
3313   KmpTaskTUpperBound,
3314   /// (Taskloops only) Stride.
3315   KmpTaskTStride,
3316   /// (Taskloops only) Is last iteration flag.
3317   KmpTaskTLastIter,
3318   /// (Taskloops only) Reduction data.
3319   KmpTaskTReductions,
3320 };
3321 } // anonymous namespace
3322 
3323 bool CGOpenMPRuntime::OffloadEntriesInfoManagerTy::empty() const {
3324   // FIXME: Add other entries type when they become supported.
3325   return OffloadEntriesTargetRegion.empty();
3326 }
3327 
3328 /// \brief Initialize target region entry.
3329 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy::
3330     initializeTargetRegionEntryInfo(unsigned DeviceID, unsigned FileID,
3331                                     StringRef ParentName, unsigned LineNum,
3332                                     unsigned Order) {
3333   assert(CGM.getLangOpts().OpenMPIsDevice && "Initialization of entries is "
3334                                              "only required for the device "
3335                                              "code generation.");
3336   OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum] =
3337       OffloadEntryInfoTargetRegion(Order, /*Addr=*/nullptr, /*ID=*/nullptr,
3338                                    /*Flags=*/0);
3339   ++OffloadingEntriesNum;
3340 }
3341 
3342 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy::
3343     registerTargetRegionEntryInfo(unsigned DeviceID, unsigned FileID,
3344                                   StringRef ParentName, unsigned LineNum,
3345                                   llvm::Constant *Addr, llvm::Constant *ID,
3346                                   int32_t Flags) {
3347   // If we are emitting code for a target, the entry is already initialized,
3348   // only has to be registered.
3349   if (CGM.getLangOpts().OpenMPIsDevice) {
3350     assert(hasTargetRegionEntryInfo(DeviceID, FileID, ParentName, LineNum) &&
3351            "Entry must exist.");
3352     auto &Entry =
3353         OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum];
3354     assert(Entry.isValid() && "Entry not initialized!");
3355     Entry.setAddress(Addr);
3356     Entry.setID(ID);
3357     Entry.setFlags(Flags);
3358     return;
3359   } else {
3360     OffloadEntryInfoTargetRegion Entry(OffloadingEntriesNum++, Addr, ID, Flags);
3361     OffloadEntriesTargetRegion[DeviceID][FileID][ParentName][LineNum] = Entry;
3362   }
3363 }
3364 
3365 bool CGOpenMPRuntime::OffloadEntriesInfoManagerTy::hasTargetRegionEntryInfo(
3366     unsigned DeviceID, unsigned FileID, StringRef ParentName,
3367     unsigned LineNum) const {
3368   auto PerDevice = OffloadEntriesTargetRegion.find(DeviceID);
3369   if (PerDevice == OffloadEntriesTargetRegion.end())
3370     return false;
3371   auto PerFile = PerDevice->second.find(FileID);
3372   if (PerFile == PerDevice->second.end())
3373     return false;
3374   auto PerParentName = PerFile->second.find(ParentName);
3375   if (PerParentName == PerFile->second.end())
3376     return false;
3377   auto PerLine = PerParentName->second.find(LineNum);
3378   if (PerLine == PerParentName->second.end())
3379     return false;
3380   // Fail if this entry is already registered.
3381   if (PerLine->second.getAddress() || PerLine->second.getID())
3382     return false;
3383   return true;
3384 }
3385 
3386 void CGOpenMPRuntime::OffloadEntriesInfoManagerTy::actOnTargetRegionEntriesInfo(
3387     const OffloadTargetRegionEntryInfoActTy &Action) {
3388   // Scan all target region entries and perform the provided action.
3389   for (auto &D : OffloadEntriesTargetRegion)
3390     for (auto &F : D.second)
3391       for (auto &P : F.second)
3392         for (auto &L : P.second)
3393           Action(D.first, F.first, P.first(), L.first, L.second);
3394 }
3395 
3396 /// \brief Create a Ctor/Dtor-like function whose body is emitted through
3397 /// \a Codegen. This is used to emit the two functions that register and
3398 /// unregister the descriptor of the current compilation unit.
3399 static llvm::Function *
3400 createOffloadingBinaryDescriptorFunction(CodeGenModule &CGM, StringRef Name,
3401                                          const RegionCodeGenTy &Codegen) {
3402   auto &C = CGM.getContext();
3403   FunctionArgList Args;
3404   ImplicitParamDecl DummyPtr(C, C.VoidPtrTy, ImplicitParamDecl::Other);
3405   Args.push_back(&DummyPtr);
3406 
3407   CodeGenFunction CGF(CGM);
3408   // Disable debug info for global (de-)initializer because they are not part of
3409   // some particular construct.
3410   CGF.disableDebugInfo();
3411   auto &FI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
3412   auto FTy = CGM.getTypes().GetFunctionType(FI);
3413   auto *Fn = CGM.CreateGlobalInitOrDestructFunction(FTy, Name, FI);
3414   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FI, Args);
3415   Codegen(CGF);
3416   CGF.FinishFunction();
3417   return Fn;
3418 }
3419 
3420 llvm::Function *
3421 CGOpenMPRuntime::createOffloadingBinaryDescriptorRegistration() {
3422   // If we don't have entries or if we are emitting code for the device, we
3423   // don't need to do anything.
3424   if (CGM.getLangOpts().OpenMPIsDevice || OffloadEntriesInfoManager.empty())
3425     return nullptr;
3426 
3427   auto &M = CGM.getModule();
3428   auto &C = CGM.getContext();
3429 
3430   // Get list of devices we care about
3431   auto &Devices = CGM.getLangOpts().OMPTargetTriples;
3432 
3433   // We should be creating an offloading descriptor only if there are devices
3434   // specified.
3435   assert(!Devices.empty() && "No OpenMP offloading devices??");
3436 
3437   // Create the external variables that will point to the begin and end of the
3438   // host entries section. These will be defined by the linker.
3439   auto *OffloadEntryTy =
3440       CGM.getTypes().ConvertTypeForMem(getTgtOffloadEntryQTy());
3441   llvm::GlobalVariable *HostEntriesBegin = new llvm::GlobalVariable(
3442       M, OffloadEntryTy, /*isConstant=*/true,
3443       llvm::GlobalValue::ExternalLinkage, /*Initializer=*/nullptr,
3444       ".omp_offloading.entries_begin");
3445   llvm::GlobalVariable *HostEntriesEnd = new llvm::GlobalVariable(
3446       M, OffloadEntryTy, /*isConstant=*/true,
3447       llvm::GlobalValue::ExternalLinkage, /*Initializer=*/nullptr,
3448       ".omp_offloading.entries_end");
3449 
3450   // Create all device images
3451   auto *DeviceImageTy = cast<llvm::StructType>(
3452       CGM.getTypes().ConvertTypeForMem(getTgtDeviceImageQTy()));
3453   ConstantInitBuilder DeviceImagesBuilder(CGM);
3454   auto DeviceImagesEntries = DeviceImagesBuilder.beginArray(DeviceImageTy);
3455 
3456   for (unsigned i = 0; i < Devices.size(); ++i) {
3457     StringRef T = Devices[i].getTriple();
3458     auto *ImgBegin = new llvm::GlobalVariable(
3459         M, CGM.Int8Ty, /*isConstant=*/true, llvm::GlobalValue::ExternalLinkage,
3460         /*Initializer=*/nullptr,
3461         Twine(".omp_offloading.img_start.") + Twine(T));
3462     auto *ImgEnd = new llvm::GlobalVariable(
3463         M, CGM.Int8Ty, /*isConstant=*/true, llvm::GlobalValue::ExternalLinkage,
3464         /*Initializer=*/nullptr, Twine(".omp_offloading.img_end.") + Twine(T));
3465 
3466     auto Dev = DeviceImagesEntries.beginStruct(DeviceImageTy);
3467     Dev.add(ImgBegin);
3468     Dev.add(ImgEnd);
3469     Dev.add(HostEntriesBegin);
3470     Dev.add(HostEntriesEnd);
3471     Dev.finishAndAddTo(DeviceImagesEntries);
3472   }
3473 
3474   // Create device images global array.
3475   llvm::GlobalVariable *DeviceImages =
3476     DeviceImagesEntries.finishAndCreateGlobal(".omp_offloading.device_images",
3477                                               CGM.getPointerAlign(),
3478                                               /*isConstant=*/true);
3479   DeviceImages->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
3480 
3481   // This is a Zero array to be used in the creation of the constant expressions
3482   llvm::Constant *Index[] = {llvm::Constant::getNullValue(CGM.Int32Ty),
3483                              llvm::Constant::getNullValue(CGM.Int32Ty)};
3484 
3485   // Create the target region descriptor.
3486   auto *BinaryDescriptorTy = cast<llvm::StructType>(
3487       CGM.getTypes().ConvertTypeForMem(getTgtBinaryDescriptorQTy()));
3488   ConstantInitBuilder DescBuilder(CGM);
3489   auto DescInit = DescBuilder.beginStruct(BinaryDescriptorTy);
3490   DescInit.addInt(CGM.Int32Ty, Devices.size());
3491   DescInit.add(llvm::ConstantExpr::getGetElementPtr(DeviceImages->getValueType(),
3492                                                     DeviceImages,
3493                                                     Index));
3494   DescInit.add(HostEntriesBegin);
3495   DescInit.add(HostEntriesEnd);
3496 
3497   auto *Desc = DescInit.finishAndCreateGlobal(".omp_offloading.descriptor",
3498                                               CGM.getPointerAlign(),
3499                                               /*isConstant=*/true);
3500 
3501   // Emit code to register or unregister the descriptor at execution
3502   // startup or closing, respectively.
3503 
3504   // Create a variable to drive the registration and unregistration of the
3505   // descriptor, so we can reuse the logic that emits Ctors and Dtors.
3506   auto *IdentInfo = &C.Idents.get(".omp_offloading.reg_unreg_var");
3507   ImplicitParamDecl RegUnregVar(C, C.getTranslationUnitDecl(), SourceLocation(),
3508                                 IdentInfo, C.CharTy, ImplicitParamDecl::Other);
3509 
3510   auto *UnRegFn = createOffloadingBinaryDescriptorFunction(
3511       CGM, ".omp_offloading.descriptor_unreg",
3512       [&](CodeGenFunction &CGF, PrePostActionTy &) {
3513         CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_unregister_lib),
3514                             Desc);
3515       });
3516   auto *RegFn = createOffloadingBinaryDescriptorFunction(
3517       CGM, ".omp_offloading.descriptor_reg",
3518       [&](CodeGenFunction &CGF, PrePostActionTy &) {
3519         CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_register_lib),
3520                             Desc);
3521         CGM.getCXXABI().registerGlobalDtor(CGF, RegUnregVar, UnRegFn, Desc);
3522       });
3523   if (CGM.supportsCOMDAT()) {
3524     // It is sufficient to call registration function only once, so create a
3525     // COMDAT group for registration/unregistration functions and associated
3526     // data. That would reduce startup time and code size. Registration
3527     // function serves as a COMDAT group key.
3528     auto ComdatKey = M.getOrInsertComdat(RegFn->getName());
3529     RegFn->setLinkage(llvm::GlobalValue::LinkOnceAnyLinkage);
3530     RegFn->setVisibility(llvm::GlobalValue::HiddenVisibility);
3531     RegFn->setComdat(ComdatKey);
3532     UnRegFn->setComdat(ComdatKey);
3533     DeviceImages->setComdat(ComdatKey);
3534     Desc->setComdat(ComdatKey);
3535   }
3536   return RegFn;
3537 }
3538 
3539 void CGOpenMPRuntime::createOffloadEntry(llvm::Constant *ID,
3540                                          llvm::Constant *Addr, uint64_t Size,
3541                                          int32_t Flags) {
3542   StringRef Name = Addr->getName();
3543   auto *TgtOffloadEntryType = cast<llvm::StructType>(
3544       CGM.getTypes().ConvertTypeForMem(getTgtOffloadEntryQTy()));
3545   llvm::LLVMContext &C = CGM.getModule().getContext();
3546   llvm::Module &M = CGM.getModule();
3547 
3548   // Make sure the address has the right type.
3549   llvm::Constant *AddrPtr = llvm::ConstantExpr::getBitCast(ID, CGM.VoidPtrTy);
3550 
3551   // Create constant string with the name.
3552   llvm::Constant *StrPtrInit = llvm::ConstantDataArray::getString(C, Name);
3553 
3554   llvm::GlobalVariable *Str =
3555       new llvm::GlobalVariable(M, StrPtrInit->getType(), /*isConstant=*/true,
3556                                llvm::GlobalValue::InternalLinkage, StrPtrInit,
3557                                ".omp_offloading.entry_name");
3558   Str->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
3559   llvm::Constant *StrPtr = llvm::ConstantExpr::getBitCast(Str, CGM.Int8PtrTy);
3560 
3561   // We can't have any padding between symbols, so we need to have 1-byte
3562   // alignment.
3563   auto Align = CharUnits::fromQuantity(1);
3564 
3565   // Create the entry struct.
3566   ConstantInitBuilder EntryBuilder(CGM);
3567   auto EntryInit = EntryBuilder.beginStruct(TgtOffloadEntryType);
3568   EntryInit.add(AddrPtr);
3569   EntryInit.add(StrPtr);
3570   EntryInit.addInt(CGM.SizeTy, Size);
3571   EntryInit.addInt(CGM.Int32Ty, Flags);
3572   EntryInit.addInt(CGM.Int32Ty, 0);
3573   llvm::GlobalVariable *Entry =
3574     EntryInit.finishAndCreateGlobal(".omp_offloading.entry",
3575                                     Align,
3576                                     /*constant*/ true,
3577                                     llvm::GlobalValue::ExternalLinkage);
3578 
3579   // The entry has to be created in the section the linker expects it to be.
3580   Entry->setSection(".omp_offloading.entries");
3581 }
3582 
3583 void CGOpenMPRuntime::createOffloadEntriesAndInfoMetadata() {
3584   // Emit the offloading entries and metadata so that the device codegen side
3585   // can easily figure out what to emit. The produced metadata looks like
3586   // this:
3587   //
3588   // !omp_offload.info = !{!1, ...}
3589   //
3590   // Right now we only generate metadata for function that contain target
3591   // regions.
3592 
3593   // If we do not have entries, we dont need to do anything.
3594   if (OffloadEntriesInfoManager.empty())
3595     return;
3596 
3597   llvm::Module &M = CGM.getModule();
3598   llvm::LLVMContext &C = M.getContext();
3599   SmallVector<OffloadEntriesInfoManagerTy::OffloadEntryInfo *, 16>
3600       OrderedEntries(OffloadEntriesInfoManager.size());
3601 
3602   // Create the offloading info metadata node.
3603   llvm::NamedMDNode *MD = M.getOrInsertNamedMetadata("omp_offload.info");
3604 
3605   // Auxiliary methods to create metadata values and strings.
3606   auto getMDInt = [&](unsigned v) {
3607     return llvm::ConstantAsMetadata::get(
3608         llvm::ConstantInt::get(llvm::Type::getInt32Ty(C), v));
3609   };
3610 
3611   auto getMDString = [&](StringRef v) { return llvm::MDString::get(C, v); };
3612 
3613   // Create function that emits metadata for each target region entry;
3614   auto &&TargetRegionMetadataEmitter = [&](
3615       unsigned DeviceID, unsigned FileID, StringRef ParentName, unsigned Line,
3616       OffloadEntriesInfoManagerTy::OffloadEntryInfoTargetRegion &E) {
3617     llvm::SmallVector<llvm::Metadata *, 32> Ops;
3618     // Generate metadata for target regions. Each entry of this metadata
3619     // contains:
3620     // - Entry 0 -> Kind of this type of metadata (0).
3621     // - Entry 1 -> Device ID of the file where the entry was identified.
3622     // - Entry 2 -> File ID of the file where the entry was identified.
3623     // - Entry 3 -> Mangled name of the function where the entry was identified.
3624     // - Entry 4 -> Line in the file where the entry was identified.
3625     // - Entry 5 -> Order the entry was created.
3626     // The first element of the metadata node is the kind.
3627     Ops.push_back(getMDInt(E.getKind()));
3628     Ops.push_back(getMDInt(DeviceID));
3629     Ops.push_back(getMDInt(FileID));
3630     Ops.push_back(getMDString(ParentName));
3631     Ops.push_back(getMDInt(Line));
3632     Ops.push_back(getMDInt(E.getOrder()));
3633 
3634     // Save this entry in the right position of the ordered entries array.
3635     OrderedEntries[E.getOrder()] = &E;
3636 
3637     // Add metadata to the named metadata node.
3638     MD->addOperand(llvm::MDNode::get(C, Ops));
3639   };
3640 
3641   OffloadEntriesInfoManager.actOnTargetRegionEntriesInfo(
3642       TargetRegionMetadataEmitter);
3643 
3644   for (auto *E : OrderedEntries) {
3645     assert(E && "All ordered entries must exist!");
3646     if (auto *CE =
3647             dyn_cast<OffloadEntriesInfoManagerTy::OffloadEntryInfoTargetRegion>(
3648                 E)) {
3649       assert(CE->getID() && CE->getAddress() &&
3650              "Entry ID and Addr are invalid!");
3651       createOffloadEntry(CE->getID(), CE->getAddress(), /*Size=*/0);
3652     } else
3653       llvm_unreachable("Unsupported entry kind.");
3654   }
3655 }
3656 
3657 /// \brief Loads all the offload entries information from the host IR
3658 /// metadata.
3659 void CGOpenMPRuntime::loadOffloadInfoMetadata() {
3660   // If we are in target mode, load the metadata from the host IR. This code has
3661   // to match the metadaata creation in createOffloadEntriesAndInfoMetadata().
3662 
3663   if (!CGM.getLangOpts().OpenMPIsDevice)
3664     return;
3665 
3666   if (CGM.getLangOpts().OMPHostIRFile.empty())
3667     return;
3668 
3669   auto Buf = llvm::MemoryBuffer::getFile(CGM.getLangOpts().OMPHostIRFile);
3670   if (Buf.getError())
3671     return;
3672 
3673   llvm::LLVMContext C;
3674   auto ME = expectedToErrorOrAndEmitErrors(
3675       C, llvm::parseBitcodeFile(Buf.get()->getMemBufferRef(), C));
3676 
3677   if (ME.getError())
3678     return;
3679 
3680   llvm::NamedMDNode *MD = ME.get()->getNamedMetadata("omp_offload.info");
3681   if (!MD)
3682     return;
3683 
3684   for (auto I : MD->operands()) {
3685     llvm::MDNode *MN = cast<llvm::MDNode>(I);
3686 
3687     auto getMDInt = [&](unsigned Idx) {
3688       llvm::ConstantAsMetadata *V =
3689           cast<llvm::ConstantAsMetadata>(MN->getOperand(Idx));
3690       return cast<llvm::ConstantInt>(V->getValue())->getZExtValue();
3691     };
3692 
3693     auto getMDString = [&](unsigned Idx) {
3694       llvm::MDString *V = cast<llvm::MDString>(MN->getOperand(Idx));
3695       return V->getString();
3696     };
3697 
3698     switch (getMDInt(0)) {
3699     default:
3700       llvm_unreachable("Unexpected metadata!");
3701       break;
3702     case OffloadEntriesInfoManagerTy::OffloadEntryInfo::
3703         OFFLOAD_ENTRY_INFO_TARGET_REGION:
3704       OffloadEntriesInfoManager.initializeTargetRegionEntryInfo(
3705           /*DeviceID=*/getMDInt(1), /*FileID=*/getMDInt(2),
3706           /*ParentName=*/getMDString(3), /*Line=*/getMDInt(4),
3707           /*Order=*/getMDInt(5));
3708       break;
3709     }
3710   }
3711 }
3712 
3713 void CGOpenMPRuntime::emitKmpRoutineEntryT(QualType KmpInt32Ty) {
3714   if (!KmpRoutineEntryPtrTy) {
3715     // Build typedef kmp_int32 (* kmp_routine_entry_t)(kmp_int32, void *); type.
3716     auto &C = CGM.getContext();
3717     QualType KmpRoutineEntryTyArgs[] = {KmpInt32Ty, C.VoidPtrTy};
3718     FunctionProtoType::ExtProtoInfo EPI;
3719     KmpRoutineEntryPtrQTy = C.getPointerType(
3720         C.getFunctionType(KmpInt32Ty, KmpRoutineEntryTyArgs, EPI));
3721     KmpRoutineEntryPtrTy = CGM.getTypes().ConvertType(KmpRoutineEntryPtrQTy);
3722   }
3723 }
3724 
3725 static FieldDecl *addFieldToRecordDecl(ASTContext &C, DeclContext *DC,
3726                                        QualType FieldTy) {
3727   auto *Field = FieldDecl::Create(
3728       C, DC, SourceLocation(), SourceLocation(), /*Id=*/nullptr, FieldTy,
3729       C.getTrivialTypeSourceInfo(FieldTy, SourceLocation()),
3730       /*BW=*/nullptr, /*Mutable=*/false, /*InitStyle=*/ICIS_NoInit);
3731   Field->setAccess(AS_public);
3732   DC->addDecl(Field);
3733   return Field;
3734 }
3735 
3736 QualType CGOpenMPRuntime::getTgtOffloadEntryQTy() {
3737 
3738   // Make sure the type of the entry is already created. This is the type we
3739   // have to create:
3740   // struct __tgt_offload_entry{
3741   //   void      *addr;       // Pointer to the offload entry info.
3742   //                          // (function or global)
3743   //   char      *name;       // Name of the function or global.
3744   //   size_t     size;       // Size of the entry info (0 if it a function).
3745   //   int32_t    flags;      // Flags associated with the entry, e.g. 'link'.
3746   //   int32_t    reserved;   // Reserved, to use by the runtime library.
3747   // };
3748   if (TgtOffloadEntryQTy.isNull()) {
3749     ASTContext &C = CGM.getContext();
3750     auto *RD = C.buildImplicitRecord("__tgt_offload_entry");
3751     RD->startDefinition();
3752     addFieldToRecordDecl(C, RD, C.VoidPtrTy);
3753     addFieldToRecordDecl(C, RD, C.getPointerType(C.CharTy));
3754     addFieldToRecordDecl(C, RD, C.getSizeType());
3755     addFieldToRecordDecl(
3756         C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true));
3757     addFieldToRecordDecl(
3758         C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true));
3759     RD->completeDefinition();
3760     TgtOffloadEntryQTy = C.getRecordType(RD);
3761   }
3762   return TgtOffloadEntryQTy;
3763 }
3764 
3765 QualType CGOpenMPRuntime::getTgtDeviceImageQTy() {
3766   // These are the types we need to build:
3767   // struct __tgt_device_image{
3768   // void   *ImageStart;       // Pointer to the target code start.
3769   // void   *ImageEnd;         // Pointer to the target code end.
3770   // // We also add the host entries to the device image, as it may be useful
3771   // // for the target runtime to have access to that information.
3772   // __tgt_offload_entry  *EntriesBegin;   // Begin of the table with all
3773   //                                       // the entries.
3774   // __tgt_offload_entry  *EntriesEnd;     // End of the table with all the
3775   //                                       // entries (non inclusive).
3776   // };
3777   if (TgtDeviceImageQTy.isNull()) {
3778     ASTContext &C = CGM.getContext();
3779     auto *RD = C.buildImplicitRecord("__tgt_device_image");
3780     RD->startDefinition();
3781     addFieldToRecordDecl(C, RD, C.VoidPtrTy);
3782     addFieldToRecordDecl(C, RD, C.VoidPtrTy);
3783     addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy()));
3784     addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy()));
3785     RD->completeDefinition();
3786     TgtDeviceImageQTy = C.getRecordType(RD);
3787   }
3788   return TgtDeviceImageQTy;
3789 }
3790 
3791 QualType CGOpenMPRuntime::getTgtBinaryDescriptorQTy() {
3792   // struct __tgt_bin_desc{
3793   //   int32_t              NumDevices;      // Number of devices supported.
3794   //   __tgt_device_image   *DeviceImages;   // Arrays of device images
3795   //                                         // (one per device).
3796   //   __tgt_offload_entry  *EntriesBegin;   // Begin of the table with all the
3797   //                                         // entries.
3798   //   __tgt_offload_entry  *EntriesEnd;     // End of the table with all the
3799   //                                         // entries (non inclusive).
3800   // };
3801   if (TgtBinaryDescriptorQTy.isNull()) {
3802     ASTContext &C = CGM.getContext();
3803     auto *RD = C.buildImplicitRecord("__tgt_bin_desc");
3804     RD->startDefinition();
3805     addFieldToRecordDecl(
3806         C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/true));
3807     addFieldToRecordDecl(C, RD, C.getPointerType(getTgtDeviceImageQTy()));
3808     addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy()));
3809     addFieldToRecordDecl(C, RD, C.getPointerType(getTgtOffloadEntryQTy()));
3810     RD->completeDefinition();
3811     TgtBinaryDescriptorQTy = C.getRecordType(RD);
3812   }
3813   return TgtBinaryDescriptorQTy;
3814 }
3815 
3816 namespace {
3817 struct PrivateHelpersTy {
3818   PrivateHelpersTy(const VarDecl *Original, const VarDecl *PrivateCopy,
3819                    const VarDecl *PrivateElemInit)
3820       : Original(Original), PrivateCopy(PrivateCopy),
3821         PrivateElemInit(PrivateElemInit) {}
3822   const VarDecl *Original;
3823   const VarDecl *PrivateCopy;
3824   const VarDecl *PrivateElemInit;
3825 };
3826 typedef std::pair<CharUnits /*Align*/, PrivateHelpersTy> PrivateDataTy;
3827 } // anonymous namespace
3828 
3829 static RecordDecl *
3830 createPrivatesRecordDecl(CodeGenModule &CGM, ArrayRef<PrivateDataTy> Privates) {
3831   if (!Privates.empty()) {
3832     auto &C = CGM.getContext();
3833     // Build struct .kmp_privates_t. {
3834     //         /*  private vars  */
3835     //       };
3836     auto *RD = C.buildImplicitRecord(".kmp_privates.t");
3837     RD->startDefinition();
3838     for (auto &&Pair : Privates) {
3839       auto *VD = Pair.second.Original;
3840       auto Type = VD->getType();
3841       Type = Type.getNonReferenceType();
3842       auto *FD = addFieldToRecordDecl(C, RD, Type);
3843       if (VD->hasAttrs()) {
3844         for (specific_attr_iterator<AlignedAttr> I(VD->getAttrs().begin()),
3845              E(VD->getAttrs().end());
3846              I != E; ++I)
3847           FD->addAttr(*I);
3848       }
3849     }
3850     RD->completeDefinition();
3851     return RD;
3852   }
3853   return nullptr;
3854 }
3855 
3856 static RecordDecl *
3857 createKmpTaskTRecordDecl(CodeGenModule &CGM, OpenMPDirectiveKind Kind,
3858                          QualType KmpInt32Ty,
3859                          QualType KmpRoutineEntryPointerQTy) {
3860   auto &C = CGM.getContext();
3861   // Build struct kmp_task_t {
3862   //         void *              shareds;
3863   //         kmp_routine_entry_t routine;
3864   //         kmp_int32           part_id;
3865   //         kmp_cmplrdata_t data1;
3866   //         kmp_cmplrdata_t data2;
3867   // For taskloops additional fields:
3868   //         kmp_uint64          lb;
3869   //         kmp_uint64          ub;
3870   //         kmp_int64           st;
3871   //         kmp_int32           liter;
3872   //         void *              reductions;
3873   //       };
3874   auto *UD = C.buildImplicitRecord("kmp_cmplrdata_t", TTK_Union);
3875   UD->startDefinition();
3876   addFieldToRecordDecl(C, UD, KmpInt32Ty);
3877   addFieldToRecordDecl(C, UD, KmpRoutineEntryPointerQTy);
3878   UD->completeDefinition();
3879   QualType KmpCmplrdataTy = C.getRecordType(UD);
3880   auto *RD = C.buildImplicitRecord("kmp_task_t");
3881   RD->startDefinition();
3882   addFieldToRecordDecl(C, RD, C.VoidPtrTy);
3883   addFieldToRecordDecl(C, RD, KmpRoutineEntryPointerQTy);
3884   addFieldToRecordDecl(C, RD, KmpInt32Ty);
3885   addFieldToRecordDecl(C, RD, KmpCmplrdataTy);
3886   addFieldToRecordDecl(C, RD, KmpCmplrdataTy);
3887   if (isOpenMPTaskLoopDirective(Kind)) {
3888     QualType KmpUInt64Ty =
3889         CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/0);
3890     QualType KmpInt64Ty =
3891         CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/1);
3892     addFieldToRecordDecl(C, RD, KmpUInt64Ty);
3893     addFieldToRecordDecl(C, RD, KmpUInt64Ty);
3894     addFieldToRecordDecl(C, RD, KmpInt64Ty);
3895     addFieldToRecordDecl(C, RD, KmpInt32Ty);
3896     addFieldToRecordDecl(C, RD, C.VoidPtrTy);
3897   }
3898   RD->completeDefinition();
3899   return RD;
3900 }
3901 
3902 static RecordDecl *
3903 createKmpTaskTWithPrivatesRecordDecl(CodeGenModule &CGM, QualType KmpTaskTQTy,
3904                                      ArrayRef<PrivateDataTy> Privates) {
3905   auto &C = CGM.getContext();
3906   // Build struct kmp_task_t_with_privates {
3907   //         kmp_task_t task_data;
3908   //         .kmp_privates_t. privates;
3909   //       };
3910   auto *RD = C.buildImplicitRecord("kmp_task_t_with_privates");
3911   RD->startDefinition();
3912   addFieldToRecordDecl(C, RD, KmpTaskTQTy);
3913   if (auto *PrivateRD = createPrivatesRecordDecl(CGM, Privates)) {
3914     addFieldToRecordDecl(C, RD, C.getRecordType(PrivateRD));
3915   }
3916   RD->completeDefinition();
3917   return RD;
3918 }
3919 
3920 /// \brief Emit a proxy function which accepts kmp_task_t as the second
3921 /// argument.
3922 /// \code
3923 /// kmp_int32 .omp_task_entry.(kmp_int32 gtid, kmp_task_t *tt) {
3924 ///   TaskFunction(gtid, tt->part_id, &tt->privates, task_privates_map, tt,
3925 ///   For taskloops:
3926 ///   tt->task_data.lb, tt->task_data.ub, tt->task_data.st, tt->task_data.liter,
3927 ///   tt->reductions, tt->shareds);
3928 ///   return 0;
3929 /// }
3930 /// \endcode
3931 static llvm::Value *
3932 emitProxyTaskFunction(CodeGenModule &CGM, SourceLocation Loc,
3933                       OpenMPDirectiveKind Kind, QualType KmpInt32Ty,
3934                       QualType KmpTaskTWithPrivatesPtrQTy,
3935                       QualType KmpTaskTWithPrivatesQTy, QualType KmpTaskTQTy,
3936                       QualType SharedsPtrTy, llvm::Value *TaskFunction,
3937                       llvm::Value *TaskPrivatesMap) {
3938   auto &C = CGM.getContext();
3939   FunctionArgList Args;
3940   ImplicitParamDecl GtidArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, KmpInt32Ty,
3941                             ImplicitParamDecl::Other);
3942   ImplicitParamDecl TaskTypeArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
3943                                 KmpTaskTWithPrivatesPtrQTy.withRestrict(),
3944                                 ImplicitParamDecl::Other);
3945   Args.push_back(&GtidArg);
3946   Args.push_back(&TaskTypeArg);
3947   auto &TaskEntryFnInfo =
3948       CGM.getTypes().arrangeBuiltinFunctionDeclaration(KmpInt32Ty, Args);
3949   auto *TaskEntryTy = CGM.getTypes().GetFunctionType(TaskEntryFnInfo);
3950   auto *TaskEntry =
3951       llvm::Function::Create(TaskEntryTy, llvm::GlobalValue::InternalLinkage,
3952                              ".omp_task_entry.", &CGM.getModule());
3953   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskEntry, TaskEntryFnInfo);
3954   CodeGenFunction CGF(CGM);
3955   CGF.StartFunction(GlobalDecl(), KmpInt32Ty, TaskEntry, TaskEntryFnInfo, Args,
3956                     Loc, Loc);
3957 
3958   // TaskFunction(gtid, tt->task_data.part_id, &tt->privates, task_privates_map,
3959   // tt,
3960   // For taskloops:
3961   // tt->task_data.lb, tt->task_data.ub, tt->task_data.st, tt->task_data.liter,
3962   // tt->task_data.shareds);
3963   auto *GtidParam = CGF.EmitLoadOfScalar(
3964       CGF.GetAddrOfLocalVar(&GtidArg), /*Volatile=*/false, KmpInt32Ty, Loc);
3965   LValue TDBase = CGF.EmitLoadOfPointerLValue(
3966       CGF.GetAddrOfLocalVar(&TaskTypeArg),
3967       KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>());
3968   auto *KmpTaskTWithPrivatesQTyRD =
3969       cast<RecordDecl>(KmpTaskTWithPrivatesQTy->getAsTagDecl());
3970   LValue Base =
3971       CGF.EmitLValueForField(TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin());
3972   auto *KmpTaskTQTyRD = cast<RecordDecl>(KmpTaskTQTy->getAsTagDecl());
3973   auto PartIdFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTPartId);
3974   auto PartIdLVal = CGF.EmitLValueForField(Base, *PartIdFI);
3975   auto *PartidParam = PartIdLVal.getPointer();
3976 
3977   auto SharedsFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTShareds);
3978   auto SharedsLVal = CGF.EmitLValueForField(Base, *SharedsFI);
3979   auto *SharedsParam = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
3980       CGF.EmitLoadOfLValue(SharedsLVal, Loc).getScalarVal(),
3981       CGF.ConvertTypeForMem(SharedsPtrTy));
3982 
3983   auto PrivatesFI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin(), 1);
3984   llvm::Value *PrivatesParam;
3985   if (PrivatesFI != KmpTaskTWithPrivatesQTyRD->field_end()) {
3986     auto PrivatesLVal = CGF.EmitLValueForField(TDBase, *PrivatesFI);
3987     PrivatesParam = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
3988         PrivatesLVal.getPointer(), CGF.VoidPtrTy);
3989   } else
3990     PrivatesParam = llvm::ConstantPointerNull::get(CGF.VoidPtrTy);
3991 
3992   llvm::Value *CommonArgs[] = {GtidParam, PartidParam, PrivatesParam,
3993                                TaskPrivatesMap,
3994                                CGF.Builder
3995                                    .CreatePointerBitCastOrAddrSpaceCast(
3996                                        TDBase.getAddress(), CGF.VoidPtrTy)
3997                                    .getPointer()};
3998   SmallVector<llvm::Value *, 16> CallArgs(std::begin(CommonArgs),
3999                                           std::end(CommonArgs));
4000   if (isOpenMPTaskLoopDirective(Kind)) {
4001     auto LBFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLowerBound);
4002     auto LBLVal = CGF.EmitLValueForField(Base, *LBFI);
4003     auto *LBParam = CGF.EmitLoadOfLValue(LBLVal, Loc).getScalarVal();
4004     auto UBFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTUpperBound);
4005     auto UBLVal = CGF.EmitLValueForField(Base, *UBFI);
4006     auto *UBParam = CGF.EmitLoadOfLValue(UBLVal, Loc).getScalarVal();
4007     auto StFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTStride);
4008     auto StLVal = CGF.EmitLValueForField(Base, *StFI);
4009     auto *StParam = CGF.EmitLoadOfLValue(StLVal, Loc).getScalarVal();
4010     auto LIFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLastIter);
4011     auto LILVal = CGF.EmitLValueForField(Base, *LIFI);
4012     auto *LIParam = CGF.EmitLoadOfLValue(LILVal, Loc).getScalarVal();
4013     auto RFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTReductions);
4014     auto RLVal = CGF.EmitLValueForField(Base, *RFI);
4015     auto *RParam = CGF.EmitLoadOfLValue(RLVal, Loc).getScalarVal();
4016     CallArgs.push_back(LBParam);
4017     CallArgs.push_back(UBParam);
4018     CallArgs.push_back(StParam);
4019     CallArgs.push_back(LIParam);
4020     CallArgs.push_back(RParam);
4021   }
4022   CallArgs.push_back(SharedsParam);
4023 
4024   CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, Loc, TaskFunction,
4025                                                   CallArgs);
4026   CGF.EmitStoreThroughLValue(
4027       RValue::get(CGF.Builder.getInt32(/*C=*/0)),
4028       CGF.MakeAddrLValue(CGF.ReturnValue, KmpInt32Ty));
4029   CGF.FinishFunction();
4030   return TaskEntry;
4031 }
4032 
4033 static llvm::Value *emitDestructorsFunction(CodeGenModule &CGM,
4034                                             SourceLocation Loc,
4035                                             QualType KmpInt32Ty,
4036                                             QualType KmpTaskTWithPrivatesPtrQTy,
4037                                             QualType KmpTaskTWithPrivatesQTy) {
4038   auto &C = CGM.getContext();
4039   FunctionArgList Args;
4040   ImplicitParamDecl GtidArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, KmpInt32Ty,
4041                             ImplicitParamDecl::Other);
4042   ImplicitParamDecl TaskTypeArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4043                                 KmpTaskTWithPrivatesPtrQTy.withRestrict(),
4044                                 ImplicitParamDecl::Other);
4045   Args.push_back(&GtidArg);
4046   Args.push_back(&TaskTypeArg);
4047   auto &DestructorFnInfo =
4048       CGM.getTypes().arrangeBuiltinFunctionDeclaration(KmpInt32Ty, Args);
4049   auto *DestructorFnTy = CGM.getTypes().GetFunctionType(DestructorFnInfo);
4050   auto *DestructorFn =
4051       llvm::Function::Create(DestructorFnTy, llvm::GlobalValue::InternalLinkage,
4052                              ".omp_task_destructor.", &CGM.getModule());
4053   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, DestructorFn,
4054                                     DestructorFnInfo);
4055   CodeGenFunction CGF(CGM);
4056   CGF.StartFunction(GlobalDecl(), KmpInt32Ty, DestructorFn, DestructorFnInfo,
4057                     Args, Loc, Loc);
4058 
4059   LValue Base = CGF.EmitLoadOfPointerLValue(
4060       CGF.GetAddrOfLocalVar(&TaskTypeArg),
4061       KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>());
4062   auto *KmpTaskTWithPrivatesQTyRD =
4063       cast<RecordDecl>(KmpTaskTWithPrivatesQTy->getAsTagDecl());
4064   auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin());
4065   Base = CGF.EmitLValueForField(Base, *FI);
4066   for (auto *Field :
4067        cast<RecordDecl>(FI->getType()->getAsTagDecl())->fields()) {
4068     if (auto DtorKind = Field->getType().isDestructedType()) {
4069       auto FieldLValue = CGF.EmitLValueForField(Base, Field);
4070       CGF.pushDestroy(DtorKind, FieldLValue.getAddress(), Field->getType());
4071     }
4072   }
4073   CGF.FinishFunction();
4074   return DestructorFn;
4075 }
4076 
4077 /// \brief Emit a privates mapping function for correct handling of private and
4078 /// firstprivate variables.
4079 /// \code
4080 /// void .omp_task_privates_map.(const .privates. *noalias privs, <ty1>
4081 /// **noalias priv1,...,  <tyn> **noalias privn) {
4082 ///   *priv1 = &.privates.priv1;
4083 ///   ...;
4084 ///   *privn = &.privates.privn;
4085 /// }
4086 /// \endcode
4087 static llvm::Value *
4088 emitTaskPrivateMappingFunction(CodeGenModule &CGM, SourceLocation Loc,
4089                                ArrayRef<const Expr *> PrivateVars,
4090                                ArrayRef<const Expr *> FirstprivateVars,
4091                                ArrayRef<const Expr *> LastprivateVars,
4092                                QualType PrivatesQTy,
4093                                ArrayRef<PrivateDataTy> Privates) {
4094   auto &C = CGM.getContext();
4095   FunctionArgList Args;
4096   ImplicitParamDecl TaskPrivatesArg(
4097       C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4098       C.getPointerType(PrivatesQTy).withConst().withRestrict(),
4099       ImplicitParamDecl::Other);
4100   Args.push_back(&TaskPrivatesArg);
4101   llvm::DenseMap<const VarDecl *, unsigned> PrivateVarsPos;
4102   unsigned Counter = 1;
4103   for (auto *E: PrivateVars) {
4104     Args.push_back(ImplicitParamDecl::Create(
4105         C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4106         C.getPointerType(C.getPointerType(E->getType()))
4107             .withConst()
4108             .withRestrict(),
4109         ImplicitParamDecl::Other));
4110     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4111     PrivateVarsPos[VD] = Counter;
4112     ++Counter;
4113   }
4114   for (auto *E : FirstprivateVars) {
4115     Args.push_back(ImplicitParamDecl::Create(
4116         C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4117         C.getPointerType(C.getPointerType(E->getType()))
4118             .withConst()
4119             .withRestrict(),
4120         ImplicitParamDecl::Other));
4121     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4122     PrivateVarsPos[VD] = Counter;
4123     ++Counter;
4124   }
4125   for (auto *E: LastprivateVars) {
4126     Args.push_back(ImplicitParamDecl::Create(
4127         C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4128         C.getPointerType(C.getPointerType(E->getType()))
4129             .withConst()
4130             .withRestrict(),
4131         ImplicitParamDecl::Other));
4132     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4133     PrivateVarsPos[VD] = Counter;
4134     ++Counter;
4135   }
4136   auto &TaskPrivatesMapFnInfo =
4137       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
4138   auto *TaskPrivatesMapTy =
4139       CGM.getTypes().GetFunctionType(TaskPrivatesMapFnInfo);
4140   auto *TaskPrivatesMap = llvm::Function::Create(
4141       TaskPrivatesMapTy, llvm::GlobalValue::InternalLinkage,
4142       ".omp_task_privates_map.", &CGM.getModule());
4143   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskPrivatesMap,
4144                                     TaskPrivatesMapFnInfo);
4145   TaskPrivatesMap->removeFnAttr(llvm::Attribute::NoInline);
4146   TaskPrivatesMap->removeFnAttr(llvm::Attribute::OptimizeNone);
4147   TaskPrivatesMap->addFnAttr(llvm::Attribute::AlwaysInline);
4148   CodeGenFunction CGF(CGM);
4149   CGF.StartFunction(GlobalDecl(), C.VoidTy, TaskPrivatesMap,
4150                     TaskPrivatesMapFnInfo, Args, Loc, Loc);
4151 
4152   // *privi = &.privates.privi;
4153   LValue Base = CGF.EmitLoadOfPointerLValue(
4154       CGF.GetAddrOfLocalVar(&TaskPrivatesArg),
4155       TaskPrivatesArg.getType()->castAs<PointerType>());
4156   auto *PrivatesQTyRD = cast<RecordDecl>(PrivatesQTy->getAsTagDecl());
4157   Counter = 0;
4158   for (auto *Field : PrivatesQTyRD->fields()) {
4159     auto FieldLVal = CGF.EmitLValueForField(Base, Field);
4160     auto *VD = Args[PrivateVarsPos[Privates[Counter].second.Original]];
4161     auto RefLVal = CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(VD), VD->getType());
4162     auto RefLoadLVal = CGF.EmitLoadOfPointerLValue(
4163         RefLVal.getAddress(), RefLVal.getType()->castAs<PointerType>());
4164     CGF.EmitStoreOfScalar(FieldLVal.getPointer(), RefLoadLVal);
4165     ++Counter;
4166   }
4167   CGF.FinishFunction();
4168   return TaskPrivatesMap;
4169 }
4170 
4171 static bool stable_sort_comparator(const PrivateDataTy P1,
4172                                    const PrivateDataTy P2) {
4173   return P1.first > P2.first;
4174 }
4175 
4176 /// Emit initialization for private variables in task-based directives.
4177 static void emitPrivatesInit(CodeGenFunction &CGF,
4178                              const OMPExecutableDirective &D,
4179                              Address KmpTaskSharedsPtr, LValue TDBase,
4180                              const RecordDecl *KmpTaskTWithPrivatesQTyRD,
4181                              QualType SharedsTy, QualType SharedsPtrTy,
4182                              const OMPTaskDataTy &Data,
4183                              ArrayRef<PrivateDataTy> Privates, bool ForDup) {
4184   auto &C = CGF.getContext();
4185   auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin());
4186   LValue PrivatesBase = CGF.EmitLValueForField(TDBase, *FI);
4187   LValue SrcBase;
4188   bool IsTargetTask =
4189       isOpenMPTargetDataManagementDirective(D.getDirectiveKind()) ||
4190       isOpenMPTargetExecutionDirective(D.getDirectiveKind());
4191   // For target-based directives skip 3 firstprivate arrays BasePointersArray,
4192   // PointersArray and SizesArray. The original variables for these arrays are
4193   // not captured and we get their addresses explicitly.
4194   if ((!IsTargetTask && !Data.FirstprivateVars.empty()) ||
4195       (IsTargetTask && Data.FirstprivateVars.size() > 3)) {
4196     SrcBase = CGF.MakeAddrLValue(
4197         CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4198             KmpTaskSharedsPtr, CGF.ConvertTypeForMem(SharedsPtrTy)),
4199         SharedsTy);
4200   }
4201   OpenMPDirectiveKind Kind = isOpenMPTaskLoopDirective(D.getDirectiveKind())
4202                                  ? OMPD_taskloop
4203                                  : OMPD_task;
4204   CodeGenFunction::CGCapturedStmtInfo CapturesInfo(*D.getCapturedStmt(Kind));
4205   FI = cast<RecordDecl>(FI->getType()->getAsTagDecl())->field_begin();
4206   for (auto &&Pair : Privates) {
4207     auto *VD = Pair.second.PrivateCopy;
4208     auto *Init = VD->getAnyInitializer();
4209     if (Init && (!ForDup || (isa<CXXConstructExpr>(Init) &&
4210                              !CGF.isTrivialInitializer(Init)))) {
4211       LValue PrivateLValue = CGF.EmitLValueForField(PrivatesBase, *FI);
4212       if (auto *Elem = Pair.second.PrivateElemInit) {
4213         auto *OriginalVD = Pair.second.Original;
4214         // Check if the variable is the target-based BasePointersArray,
4215         // PointersArray or SizesArray.
4216         LValue SharedRefLValue;
4217         QualType Type = OriginalVD->getType();
4218         if (IsTargetTask && isa<ImplicitParamDecl>(OriginalVD) &&
4219             isa<CapturedDecl>(OriginalVD->getDeclContext()) &&
4220             cast<CapturedDecl>(OriginalVD->getDeclContext())->getNumParams() ==
4221                 0 &&
4222             isa<TranslationUnitDecl>(
4223                 cast<CapturedDecl>(OriginalVD->getDeclContext())
4224                     ->getDeclContext())) {
4225           SharedRefLValue =
4226               CGF.MakeAddrLValue(CGF.GetAddrOfLocalVar(OriginalVD), Type);
4227         } else {
4228           auto *SharedField = CapturesInfo.lookup(OriginalVD);
4229           SharedRefLValue = CGF.EmitLValueForField(SrcBase, SharedField);
4230           SharedRefLValue = CGF.MakeAddrLValue(
4231               Address(SharedRefLValue.getPointer(), C.getDeclAlign(OriginalVD)),
4232               SharedRefLValue.getType(), LValueBaseInfo(AlignmentSource::Decl),
4233               SharedRefLValue.getTBAAInfo());
4234         }
4235         if (Type->isArrayType()) {
4236           // Initialize firstprivate array.
4237           if (!isa<CXXConstructExpr>(Init) || CGF.isTrivialInitializer(Init)) {
4238             // Perform simple memcpy.
4239             CGF.EmitAggregateAssign(PrivateLValue.getAddress(),
4240                                     SharedRefLValue.getAddress(), Type);
4241           } else {
4242             // Initialize firstprivate array using element-by-element
4243             // initialization.
4244             CGF.EmitOMPAggregateAssign(
4245                 PrivateLValue.getAddress(), SharedRefLValue.getAddress(), Type,
4246                 [&CGF, Elem, Init, &CapturesInfo](Address DestElement,
4247                                                   Address SrcElement) {
4248                   // Clean up any temporaries needed by the initialization.
4249                   CodeGenFunction::OMPPrivateScope InitScope(CGF);
4250                   InitScope.addPrivate(
4251                       Elem, [SrcElement]() -> Address { return SrcElement; });
4252                   (void)InitScope.Privatize();
4253                   // Emit initialization for single element.
4254                   CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(
4255                       CGF, &CapturesInfo);
4256                   CGF.EmitAnyExprToMem(Init, DestElement,
4257                                        Init->getType().getQualifiers(),
4258                                        /*IsInitializer=*/false);
4259                 });
4260           }
4261         } else {
4262           CodeGenFunction::OMPPrivateScope InitScope(CGF);
4263           InitScope.addPrivate(Elem, [SharedRefLValue]() -> Address {
4264             return SharedRefLValue.getAddress();
4265           });
4266           (void)InitScope.Privatize();
4267           CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CapturesInfo);
4268           CGF.EmitExprAsInit(Init, VD, PrivateLValue,
4269                              /*capturedByInit=*/false);
4270         }
4271       } else
4272         CGF.EmitExprAsInit(Init, VD, PrivateLValue, /*capturedByInit=*/false);
4273     }
4274     ++FI;
4275   }
4276 }
4277 
4278 /// Check if duplication function is required for taskloops.
4279 static bool checkInitIsRequired(CodeGenFunction &CGF,
4280                                 ArrayRef<PrivateDataTy> Privates) {
4281   bool InitRequired = false;
4282   for (auto &&Pair : Privates) {
4283     auto *VD = Pair.second.PrivateCopy;
4284     auto *Init = VD->getAnyInitializer();
4285     InitRequired = InitRequired || (Init && isa<CXXConstructExpr>(Init) &&
4286                                     !CGF.isTrivialInitializer(Init));
4287   }
4288   return InitRequired;
4289 }
4290 
4291 
4292 /// Emit task_dup function (for initialization of
4293 /// private/firstprivate/lastprivate vars and last_iter flag)
4294 /// \code
4295 /// void __task_dup_entry(kmp_task_t *task_dst, const kmp_task_t *task_src, int
4296 /// lastpriv) {
4297 /// // setup lastprivate flag
4298 ///    task_dst->last = lastpriv;
4299 /// // could be constructor calls here...
4300 /// }
4301 /// \endcode
4302 static llvm::Value *
4303 emitTaskDupFunction(CodeGenModule &CGM, SourceLocation Loc,
4304                     const OMPExecutableDirective &D,
4305                     QualType KmpTaskTWithPrivatesPtrQTy,
4306                     const RecordDecl *KmpTaskTWithPrivatesQTyRD,
4307                     const RecordDecl *KmpTaskTQTyRD, QualType SharedsTy,
4308                     QualType SharedsPtrTy, const OMPTaskDataTy &Data,
4309                     ArrayRef<PrivateDataTy> Privates, bool WithLastIter) {
4310   auto &C = CGM.getContext();
4311   FunctionArgList Args;
4312   ImplicitParamDecl DstArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4313                            KmpTaskTWithPrivatesPtrQTy,
4314                            ImplicitParamDecl::Other);
4315   ImplicitParamDecl SrcArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
4316                            KmpTaskTWithPrivatesPtrQTy,
4317                            ImplicitParamDecl::Other);
4318   ImplicitParamDecl LastprivArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.IntTy,
4319                                 ImplicitParamDecl::Other);
4320   Args.push_back(&DstArg);
4321   Args.push_back(&SrcArg);
4322   Args.push_back(&LastprivArg);
4323   auto &TaskDupFnInfo =
4324       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
4325   auto *TaskDupTy = CGM.getTypes().GetFunctionType(TaskDupFnInfo);
4326   auto *TaskDup =
4327       llvm::Function::Create(TaskDupTy, llvm::GlobalValue::InternalLinkage,
4328                              ".omp_task_dup.", &CGM.getModule());
4329   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, TaskDup, TaskDupFnInfo);
4330   CodeGenFunction CGF(CGM);
4331   CGF.StartFunction(GlobalDecl(), C.VoidTy, TaskDup, TaskDupFnInfo, Args, Loc,
4332                     Loc);
4333 
4334   LValue TDBase = CGF.EmitLoadOfPointerLValue(
4335       CGF.GetAddrOfLocalVar(&DstArg),
4336       KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>());
4337   // task_dst->liter = lastpriv;
4338   if (WithLastIter) {
4339     auto LIFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTLastIter);
4340     LValue Base = CGF.EmitLValueForField(
4341         TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin());
4342     LValue LILVal = CGF.EmitLValueForField(Base, *LIFI);
4343     llvm::Value *Lastpriv = CGF.EmitLoadOfScalar(
4344         CGF.GetAddrOfLocalVar(&LastprivArg), /*Volatile=*/false, C.IntTy, Loc);
4345     CGF.EmitStoreOfScalar(Lastpriv, LILVal);
4346   }
4347 
4348   // Emit initial values for private copies (if any).
4349   assert(!Privates.empty());
4350   Address KmpTaskSharedsPtr = Address::invalid();
4351   if (!Data.FirstprivateVars.empty()) {
4352     LValue TDBase = CGF.EmitLoadOfPointerLValue(
4353         CGF.GetAddrOfLocalVar(&SrcArg),
4354         KmpTaskTWithPrivatesPtrQTy->castAs<PointerType>());
4355     LValue Base = CGF.EmitLValueForField(
4356         TDBase, *KmpTaskTWithPrivatesQTyRD->field_begin());
4357     KmpTaskSharedsPtr = Address(
4358         CGF.EmitLoadOfScalar(CGF.EmitLValueForField(
4359                                  Base, *std::next(KmpTaskTQTyRD->field_begin(),
4360                                                   KmpTaskTShareds)),
4361                              Loc),
4362         CGF.getNaturalTypeAlignment(SharedsTy));
4363   }
4364   emitPrivatesInit(CGF, D, KmpTaskSharedsPtr, TDBase, KmpTaskTWithPrivatesQTyRD,
4365                    SharedsTy, SharedsPtrTy, Data, Privates, /*ForDup=*/true);
4366   CGF.FinishFunction();
4367   return TaskDup;
4368 }
4369 
4370 /// Checks if destructor function is required to be generated.
4371 /// \return true if cleanups are required, false otherwise.
4372 static bool
4373 checkDestructorsRequired(const RecordDecl *KmpTaskTWithPrivatesQTyRD) {
4374   bool NeedsCleanup = false;
4375   auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin());
4376   auto *PrivateRD = cast<RecordDecl>(FI->getType()->getAsTagDecl());
4377   for (auto *FD : PrivateRD->fields()) {
4378     NeedsCleanup = NeedsCleanup || FD->getType().isDestructedType();
4379     if (NeedsCleanup)
4380       break;
4381   }
4382   return NeedsCleanup;
4383 }
4384 
4385 CGOpenMPRuntime::TaskResultTy
4386 CGOpenMPRuntime::emitTaskInit(CodeGenFunction &CGF, SourceLocation Loc,
4387                               const OMPExecutableDirective &D,
4388                               llvm::Value *TaskFunction, QualType SharedsTy,
4389                               Address Shareds, const OMPTaskDataTy &Data) {
4390   auto &C = CGM.getContext();
4391   llvm::SmallVector<PrivateDataTy, 4> Privates;
4392   // Aggregate privates and sort them by the alignment.
4393   auto I = Data.PrivateCopies.begin();
4394   for (auto *E : Data.PrivateVars) {
4395     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4396     Privates.push_back(std::make_pair(
4397         C.getDeclAlign(VD),
4398         PrivateHelpersTy(VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()),
4399                          /*PrivateElemInit=*/nullptr)));
4400     ++I;
4401   }
4402   I = Data.FirstprivateCopies.begin();
4403   auto IElemInitRef = Data.FirstprivateInits.begin();
4404   for (auto *E : Data.FirstprivateVars) {
4405     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4406     Privates.push_back(std::make_pair(
4407         C.getDeclAlign(VD),
4408         PrivateHelpersTy(
4409             VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()),
4410             cast<VarDecl>(cast<DeclRefExpr>(*IElemInitRef)->getDecl()))));
4411     ++I;
4412     ++IElemInitRef;
4413   }
4414   I = Data.LastprivateCopies.begin();
4415   for (auto *E : Data.LastprivateVars) {
4416     auto *VD = cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl());
4417     Privates.push_back(std::make_pair(
4418         C.getDeclAlign(VD),
4419         PrivateHelpersTy(VD, cast<VarDecl>(cast<DeclRefExpr>(*I)->getDecl()),
4420                          /*PrivateElemInit=*/nullptr)));
4421     ++I;
4422   }
4423   std::stable_sort(Privates.begin(), Privates.end(), stable_sort_comparator);
4424   auto KmpInt32Ty = C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/1);
4425   // Build type kmp_routine_entry_t (if not built yet).
4426   emitKmpRoutineEntryT(KmpInt32Ty);
4427   // Build type kmp_task_t (if not built yet).
4428   if (isOpenMPTaskLoopDirective(D.getDirectiveKind())) {
4429     if (SavedKmpTaskloopTQTy.isNull()) {
4430       SavedKmpTaskloopTQTy = C.getRecordType(createKmpTaskTRecordDecl(
4431           CGM, D.getDirectiveKind(), KmpInt32Ty, KmpRoutineEntryPtrQTy));
4432     }
4433     KmpTaskTQTy = SavedKmpTaskloopTQTy;
4434   } else {
4435     assert((D.getDirectiveKind() == OMPD_task ||
4436             isOpenMPTargetExecutionDirective(D.getDirectiveKind()) ||
4437             isOpenMPTargetDataManagementDirective(D.getDirectiveKind())) &&
4438            "Expected taskloop, task or target directive");
4439     if (SavedKmpTaskTQTy.isNull()) {
4440       SavedKmpTaskTQTy = C.getRecordType(createKmpTaskTRecordDecl(
4441           CGM, D.getDirectiveKind(), KmpInt32Ty, KmpRoutineEntryPtrQTy));
4442     }
4443     KmpTaskTQTy = SavedKmpTaskTQTy;
4444   }
4445   auto *KmpTaskTQTyRD = cast<RecordDecl>(KmpTaskTQTy->getAsTagDecl());
4446   // Build particular struct kmp_task_t for the given task.
4447   auto *KmpTaskTWithPrivatesQTyRD =
4448       createKmpTaskTWithPrivatesRecordDecl(CGM, KmpTaskTQTy, Privates);
4449   auto KmpTaskTWithPrivatesQTy = C.getRecordType(KmpTaskTWithPrivatesQTyRD);
4450   QualType KmpTaskTWithPrivatesPtrQTy =
4451       C.getPointerType(KmpTaskTWithPrivatesQTy);
4452   auto *KmpTaskTWithPrivatesTy = CGF.ConvertType(KmpTaskTWithPrivatesQTy);
4453   auto *KmpTaskTWithPrivatesPtrTy = KmpTaskTWithPrivatesTy->getPointerTo();
4454   auto *KmpTaskTWithPrivatesTySize = CGF.getTypeSize(KmpTaskTWithPrivatesQTy);
4455   QualType SharedsPtrTy = C.getPointerType(SharedsTy);
4456 
4457   // Emit initial values for private copies (if any).
4458   llvm::Value *TaskPrivatesMap = nullptr;
4459   auto *TaskPrivatesMapTy =
4460       std::next(cast<llvm::Function>(TaskFunction)->arg_begin(), 3)->getType();
4461   if (!Privates.empty()) {
4462     auto FI = std::next(KmpTaskTWithPrivatesQTyRD->field_begin());
4463     TaskPrivatesMap = emitTaskPrivateMappingFunction(
4464         CGM, Loc, Data.PrivateVars, Data.FirstprivateVars, Data.LastprivateVars,
4465         FI->getType(), Privates);
4466     TaskPrivatesMap = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4467         TaskPrivatesMap, TaskPrivatesMapTy);
4468   } else {
4469     TaskPrivatesMap = llvm::ConstantPointerNull::get(
4470         cast<llvm::PointerType>(TaskPrivatesMapTy));
4471   }
4472   // Build a proxy function kmp_int32 .omp_task_entry.(kmp_int32 gtid,
4473   // kmp_task_t *tt);
4474   auto *TaskEntry = emitProxyTaskFunction(
4475       CGM, Loc, D.getDirectiveKind(), KmpInt32Ty, KmpTaskTWithPrivatesPtrQTy,
4476       KmpTaskTWithPrivatesQTy, KmpTaskTQTy, SharedsPtrTy, TaskFunction,
4477       TaskPrivatesMap);
4478 
4479   // Build call kmp_task_t * __kmpc_omp_task_alloc(ident_t *, kmp_int32 gtid,
4480   // kmp_int32 flags, size_t sizeof_kmp_task_t, size_t sizeof_shareds,
4481   // kmp_routine_entry_t *task_entry);
4482   // Task flags. Format is taken from
4483   // http://llvm.org/svn/llvm-project/openmp/trunk/runtime/src/kmp.h,
4484   // description of kmp_tasking_flags struct.
4485   enum {
4486     TiedFlag = 0x1,
4487     FinalFlag = 0x2,
4488     DestructorsFlag = 0x8,
4489     PriorityFlag = 0x20
4490   };
4491   unsigned Flags = Data.Tied ? TiedFlag : 0;
4492   bool NeedsCleanup = false;
4493   if (!Privates.empty()) {
4494     NeedsCleanup = checkDestructorsRequired(KmpTaskTWithPrivatesQTyRD);
4495     if (NeedsCleanup)
4496       Flags = Flags | DestructorsFlag;
4497   }
4498   if (Data.Priority.getInt())
4499     Flags = Flags | PriorityFlag;
4500   auto *TaskFlags =
4501       Data.Final.getPointer()
4502           ? CGF.Builder.CreateSelect(Data.Final.getPointer(),
4503                                      CGF.Builder.getInt32(FinalFlag),
4504                                      CGF.Builder.getInt32(/*C=*/0))
4505           : CGF.Builder.getInt32(Data.Final.getInt() ? FinalFlag : 0);
4506   TaskFlags = CGF.Builder.CreateOr(TaskFlags, CGF.Builder.getInt32(Flags));
4507   auto *SharedsSize = CGM.getSize(C.getTypeSizeInChars(SharedsTy));
4508   llvm::Value *AllocArgs[] = {emitUpdateLocation(CGF, Loc),
4509                               getThreadID(CGF, Loc), TaskFlags,
4510                               KmpTaskTWithPrivatesTySize, SharedsSize,
4511                               CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4512                                   TaskEntry, KmpRoutineEntryPtrTy)};
4513   auto *NewTask = CGF.EmitRuntimeCall(
4514       createRuntimeFunction(OMPRTL__kmpc_omp_task_alloc), AllocArgs);
4515   auto *NewTaskNewTaskTTy = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4516       NewTask, KmpTaskTWithPrivatesPtrTy);
4517   LValue Base = CGF.MakeNaturalAlignAddrLValue(NewTaskNewTaskTTy,
4518                                                KmpTaskTWithPrivatesQTy);
4519   LValue TDBase =
4520       CGF.EmitLValueForField(Base, *KmpTaskTWithPrivatesQTyRD->field_begin());
4521   // Fill the data in the resulting kmp_task_t record.
4522   // Copy shareds if there are any.
4523   Address KmpTaskSharedsPtr = Address::invalid();
4524   if (!SharedsTy->getAsStructureType()->getDecl()->field_empty()) {
4525     KmpTaskSharedsPtr =
4526         Address(CGF.EmitLoadOfScalar(
4527                     CGF.EmitLValueForField(
4528                         TDBase, *std::next(KmpTaskTQTyRD->field_begin(),
4529                                            KmpTaskTShareds)),
4530                     Loc),
4531                 CGF.getNaturalTypeAlignment(SharedsTy));
4532     CGF.EmitAggregateCopy(KmpTaskSharedsPtr, Shareds, SharedsTy);
4533   }
4534   // Emit initial values for private copies (if any).
4535   TaskResultTy Result;
4536   if (!Privates.empty()) {
4537     emitPrivatesInit(CGF, D, KmpTaskSharedsPtr, Base, KmpTaskTWithPrivatesQTyRD,
4538                      SharedsTy, SharedsPtrTy, Data, Privates,
4539                      /*ForDup=*/false);
4540     if (isOpenMPTaskLoopDirective(D.getDirectiveKind()) &&
4541         (!Data.LastprivateVars.empty() || checkInitIsRequired(CGF, Privates))) {
4542       Result.TaskDupFn = emitTaskDupFunction(
4543           CGM, Loc, D, KmpTaskTWithPrivatesPtrQTy, KmpTaskTWithPrivatesQTyRD,
4544           KmpTaskTQTyRD, SharedsTy, SharedsPtrTy, Data, Privates,
4545           /*WithLastIter=*/!Data.LastprivateVars.empty());
4546     }
4547   }
4548   // Fields of union "kmp_cmplrdata_t" for destructors and priority.
4549   enum { Priority = 0, Destructors = 1 };
4550   // Provide pointer to function with destructors for privates.
4551   auto FI = std::next(KmpTaskTQTyRD->field_begin(), Data1);
4552   auto *KmpCmplrdataUD = (*FI)->getType()->getAsUnionType()->getDecl();
4553   if (NeedsCleanup) {
4554     llvm::Value *DestructorFn = emitDestructorsFunction(
4555         CGM, Loc, KmpInt32Ty, KmpTaskTWithPrivatesPtrQTy,
4556         KmpTaskTWithPrivatesQTy);
4557     LValue Data1LV = CGF.EmitLValueForField(TDBase, *FI);
4558     LValue DestructorsLV = CGF.EmitLValueForField(
4559         Data1LV, *std::next(KmpCmplrdataUD->field_begin(), Destructors));
4560     CGF.EmitStoreOfScalar(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4561                               DestructorFn, KmpRoutineEntryPtrTy),
4562                           DestructorsLV);
4563   }
4564   // Set priority.
4565   if (Data.Priority.getInt()) {
4566     LValue Data2LV = CGF.EmitLValueForField(
4567         TDBase, *std::next(KmpTaskTQTyRD->field_begin(), Data2));
4568     LValue PriorityLV = CGF.EmitLValueForField(
4569         Data2LV, *std::next(KmpCmplrdataUD->field_begin(), Priority));
4570     CGF.EmitStoreOfScalar(Data.Priority.getPointer(), PriorityLV);
4571   }
4572   Result.NewTask = NewTask;
4573   Result.TaskEntry = TaskEntry;
4574   Result.NewTaskNewTaskTTy = NewTaskNewTaskTTy;
4575   Result.TDBase = TDBase;
4576   Result.KmpTaskTQTyRD = KmpTaskTQTyRD;
4577   return Result;
4578 }
4579 
4580 void CGOpenMPRuntime::emitTaskCall(CodeGenFunction &CGF, SourceLocation Loc,
4581                                    const OMPExecutableDirective &D,
4582                                    llvm::Value *TaskFunction,
4583                                    QualType SharedsTy, Address Shareds,
4584                                    const Expr *IfCond,
4585                                    const OMPTaskDataTy &Data) {
4586   if (!CGF.HaveInsertPoint())
4587     return;
4588 
4589   TaskResultTy Result =
4590       emitTaskInit(CGF, Loc, D, TaskFunction, SharedsTy, Shareds, Data);
4591   llvm::Value *NewTask = Result.NewTask;
4592   llvm::Value *TaskEntry = Result.TaskEntry;
4593   llvm::Value *NewTaskNewTaskTTy = Result.NewTaskNewTaskTTy;
4594   LValue TDBase = Result.TDBase;
4595   RecordDecl *KmpTaskTQTyRD = Result.KmpTaskTQTyRD;
4596   auto &C = CGM.getContext();
4597   // Process list of dependences.
4598   Address DependenciesArray = Address::invalid();
4599   unsigned NumDependencies = Data.Dependences.size();
4600   if (NumDependencies) {
4601     // Dependence kind for RTL.
4602     enum RTLDependenceKindTy { DepIn = 0x01, DepInOut = 0x3 };
4603     enum RTLDependInfoFieldsTy { BaseAddr, Len, Flags };
4604     RecordDecl *KmpDependInfoRD;
4605     QualType FlagsTy =
4606         C.getIntTypeForBitwidth(C.getTypeSize(C.BoolTy), /*Signed=*/false);
4607     llvm::Type *LLVMFlagsTy = CGF.ConvertTypeForMem(FlagsTy);
4608     if (KmpDependInfoTy.isNull()) {
4609       KmpDependInfoRD = C.buildImplicitRecord("kmp_depend_info");
4610       KmpDependInfoRD->startDefinition();
4611       addFieldToRecordDecl(C, KmpDependInfoRD, C.getIntPtrType());
4612       addFieldToRecordDecl(C, KmpDependInfoRD, C.getSizeType());
4613       addFieldToRecordDecl(C, KmpDependInfoRD, FlagsTy);
4614       KmpDependInfoRD->completeDefinition();
4615       KmpDependInfoTy = C.getRecordType(KmpDependInfoRD);
4616     } else
4617       KmpDependInfoRD = cast<RecordDecl>(KmpDependInfoTy->getAsTagDecl());
4618     CharUnits DependencySize = C.getTypeSizeInChars(KmpDependInfoTy);
4619     // Define type kmp_depend_info[<Dependences.size()>];
4620     QualType KmpDependInfoArrayTy = C.getConstantArrayType(
4621         KmpDependInfoTy, llvm::APInt(/*numBits=*/64, NumDependencies),
4622         ArrayType::Normal, /*IndexTypeQuals=*/0);
4623     // kmp_depend_info[<Dependences.size()>] deps;
4624     DependenciesArray =
4625         CGF.CreateMemTemp(KmpDependInfoArrayTy, ".dep.arr.addr");
4626     for (unsigned i = 0; i < NumDependencies; ++i) {
4627       const Expr *E = Data.Dependences[i].second;
4628       auto Addr = CGF.EmitLValue(E);
4629       llvm::Value *Size;
4630       QualType Ty = E->getType();
4631       if (auto *ASE = dyn_cast<OMPArraySectionExpr>(E->IgnoreParenImpCasts())) {
4632         LValue UpAddrLVal =
4633             CGF.EmitOMPArraySectionExpr(ASE, /*LowerBound=*/false);
4634         llvm::Value *UpAddr =
4635             CGF.Builder.CreateConstGEP1_32(UpAddrLVal.getPointer(), /*Idx0=*/1);
4636         llvm::Value *LowIntPtr =
4637             CGF.Builder.CreatePtrToInt(Addr.getPointer(), CGM.SizeTy);
4638         llvm::Value *UpIntPtr = CGF.Builder.CreatePtrToInt(UpAddr, CGM.SizeTy);
4639         Size = CGF.Builder.CreateNUWSub(UpIntPtr, LowIntPtr);
4640       } else
4641         Size = CGF.getTypeSize(Ty);
4642       auto Base = CGF.MakeAddrLValue(
4643           CGF.Builder.CreateConstArrayGEP(DependenciesArray, i, DependencySize),
4644           KmpDependInfoTy);
4645       // deps[i].base_addr = &<Dependences[i].second>;
4646       auto BaseAddrLVal = CGF.EmitLValueForField(
4647           Base, *std::next(KmpDependInfoRD->field_begin(), BaseAddr));
4648       CGF.EmitStoreOfScalar(
4649           CGF.Builder.CreatePtrToInt(Addr.getPointer(), CGF.IntPtrTy),
4650           BaseAddrLVal);
4651       // deps[i].len = sizeof(<Dependences[i].second>);
4652       auto LenLVal = CGF.EmitLValueForField(
4653           Base, *std::next(KmpDependInfoRD->field_begin(), Len));
4654       CGF.EmitStoreOfScalar(Size, LenLVal);
4655       // deps[i].flags = <Dependences[i].first>;
4656       RTLDependenceKindTy DepKind;
4657       switch (Data.Dependences[i].first) {
4658       case OMPC_DEPEND_in:
4659         DepKind = DepIn;
4660         break;
4661       // Out and InOut dependencies must use the same code.
4662       case OMPC_DEPEND_out:
4663       case OMPC_DEPEND_inout:
4664         DepKind = DepInOut;
4665         break;
4666       case OMPC_DEPEND_source:
4667       case OMPC_DEPEND_sink:
4668       case OMPC_DEPEND_unknown:
4669         llvm_unreachable("Unknown task dependence type");
4670       }
4671       auto FlagsLVal = CGF.EmitLValueForField(
4672           Base, *std::next(KmpDependInfoRD->field_begin(), Flags));
4673       CGF.EmitStoreOfScalar(llvm::ConstantInt::get(LLVMFlagsTy, DepKind),
4674                             FlagsLVal);
4675     }
4676     DependenciesArray = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4677         CGF.Builder.CreateStructGEP(DependenciesArray, 0, CharUnits::Zero()),
4678         CGF.VoidPtrTy);
4679   }
4680 
4681   // NOTE: routine and part_id fields are intialized by __kmpc_omp_task_alloc()
4682   // libcall.
4683   // Build kmp_int32 __kmpc_omp_task_with_deps(ident_t *, kmp_int32 gtid,
4684   // kmp_task_t *new_task, kmp_int32 ndeps, kmp_depend_info_t *dep_list,
4685   // kmp_int32 ndeps_noalias, kmp_depend_info_t *noalias_dep_list) if dependence
4686   // list is not empty
4687   auto *ThreadID = getThreadID(CGF, Loc);
4688   auto *UpLoc = emitUpdateLocation(CGF, Loc);
4689   llvm::Value *TaskArgs[] = { UpLoc, ThreadID, NewTask };
4690   llvm::Value *DepTaskArgs[7];
4691   if (NumDependencies) {
4692     DepTaskArgs[0] = UpLoc;
4693     DepTaskArgs[1] = ThreadID;
4694     DepTaskArgs[2] = NewTask;
4695     DepTaskArgs[3] = CGF.Builder.getInt32(NumDependencies);
4696     DepTaskArgs[4] = DependenciesArray.getPointer();
4697     DepTaskArgs[5] = CGF.Builder.getInt32(0);
4698     DepTaskArgs[6] = llvm::ConstantPointerNull::get(CGF.VoidPtrTy);
4699   }
4700   auto &&ThenCodeGen = [this, &Data, TDBase, KmpTaskTQTyRD, NumDependencies,
4701                         &TaskArgs,
4702                         &DepTaskArgs](CodeGenFunction &CGF, PrePostActionTy &) {
4703     if (!Data.Tied) {
4704       auto PartIdFI = std::next(KmpTaskTQTyRD->field_begin(), KmpTaskTPartId);
4705       auto PartIdLVal = CGF.EmitLValueForField(TDBase, *PartIdFI);
4706       CGF.EmitStoreOfScalar(CGF.Builder.getInt32(0), PartIdLVal);
4707     }
4708     if (NumDependencies) {
4709       CGF.EmitRuntimeCall(
4710           createRuntimeFunction(OMPRTL__kmpc_omp_task_with_deps), DepTaskArgs);
4711     } else {
4712       CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_task),
4713                           TaskArgs);
4714     }
4715     // Check if parent region is untied and build return for untied task;
4716     if (auto *Region =
4717             dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo))
4718       Region->emitUntiedSwitch(CGF);
4719   };
4720 
4721   llvm::Value *DepWaitTaskArgs[6];
4722   if (NumDependencies) {
4723     DepWaitTaskArgs[0] = UpLoc;
4724     DepWaitTaskArgs[1] = ThreadID;
4725     DepWaitTaskArgs[2] = CGF.Builder.getInt32(NumDependencies);
4726     DepWaitTaskArgs[3] = DependenciesArray.getPointer();
4727     DepWaitTaskArgs[4] = CGF.Builder.getInt32(0);
4728     DepWaitTaskArgs[5] = llvm::ConstantPointerNull::get(CGF.VoidPtrTy);
4729   }
4730   auto &&ElseCodeGen = [&TaskArgs, ThreadID, NewTaskNewTaskTTy, TaskEntry,
4731                         NumDependencies, &DepWaitTaskArgs,
4732                         Loc](CodeGenFunction &CGF, PrePostActionTy &) {
4733     auto &RT = CGF.CGM.getOpenMPRuntime();
4734     CodeGenFunction::RunCleanupsScope LocalScope(CGF);
4735     // Build void __kmpc_omp_wait_deps(ident_t *, kmp_int32 gtid,
4736     // kmp_int32 ndeps, kmp_depend_info_t *dep_list, kmp_int32
4737     // ndeps_noalias, kmp_depend_info_t *noalias_dep_list); if dependence info
4738     // is specified.
4739     if (NumDependencies)
4740       CGF.EmitRuntimeCall(RT.createRuntimeFunction(OMPRTL__kmpc_omp_wait_deps),
4741                           DepWaitTaskArgs);
4742     // Call proxy_task_entry(gtid, new_task);
4743     auto &&CodeGen = [TaskEntry, ThreadID, NewTaskNewTaskTTy,
4744                       Loc](CodeGenFunction &CGF, PrePostActionTy &Action) {
4745       Action.Enter(CGF);
4746       llvm::Value *OutlinedFnArgs[] = {ThreadID, NewTaskNewTaskTTy};
4747       CGF.CGM.getOpenMPRuntime().emitOutlinedFunctionCall(CGF, Loc, TaskEntry,
4748                                                           OutlinedFnArgs);
4749     };
4750 
4751     // Build void __kmpc_omp_task_begin_if0(ident_t *, kmp_int32 gtid,
4752     // kmp_task_t *new_task);
4753     // Build void __kmpc_omp_task_complete_if0(ident_t *, kmp_int32 gtid,
4754     // kmp_task_t *new_task);
4755     RegionCodeGenTy RCG(CodeGen);
4756     CommonActionTy Action(
4757         RT.createRuntimeFunction(OMPRTL__kmpc_omp_task_begin_if0), TaskArgs,
4758         RT.createRuntimeFunction(OMPRTL__kmpc_omp_task_complete_if0), TaskArgs);
4759     RCG.setAction(Action);
4760     RCG(CGF);
4761   };
4762 
4763   if (IfCond)
4764     emitOMPIfClause(CGF, IfCond, ThenCodeGen, ElseCodeGen);
4765   else {
4766     RegionCodeGenTy ThenRCG(ThenCodeGen);
4767     ThenRCG(CGF);
4768   }
4769 }
4770 
4771 void CGOpenMPRuntime::emitTaskLoopCall(CodeGenFunction &CGF, SourceLocation Loc,
4772                                        const OMPLoopDirective &D,
4773                                        llvm::Value *TaskFunction,
4774                                        QualType SharedsTy, Address Shareds,
4775                                        const Expr *IfCond,
4776                                        const OMPTaskDataTy &Data) {
4777   if (!CGF.HaveInsertPoint())
4778     return;
4779   TaskResultTy Result =
4780       emitTaskInit(CGF, Loc, D, TaskFunction, SharedsTy, Shareds, Data);
4781   // NOTE: routine and part_id fields are intialized by __kmpc_omp_task_alloc()
4782   // libcall.
4783   // Call to void __kmpc_taskloop(ident_t *loc, int gtid, kmp_task_t *task, int
4784   // if_val, kmp_uint64 *lb, kmp_uint64 *ub, kmp_int64 st, int nogroup, int
4785   // sched, kmp_uint64 grainsize, void *task_dup);
4786   llvm::Value *ThreadID = getThreadID(CGF, Loc);
4787   llvm::Value *UpLoc = emitUpdateLocation(CGF, Loc);
4788   llvm::Value *IfVal;
4789   if (IfCond) {
4790     IfVal = CGF.Builder.CreateIntCast(CGF.EvaluateExprAsBool(IfCond), CGF.IntTy,
4791                                       /*isSigned=*/true);
4792   } else
4793     IfVal = llvm::ConstantInt::getSigned(CGF.IntTy, /*V=*/1);
4794 
4795   LValue LBLVal = CGF.EmitLValueForField(
4796       Result.TDBase,
4797       *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTLowerBound));
4798   auto *LBVar =
4799       cast<VarDecl>(cast<DeclRefExpr>(D.getLowerBoundVariable())->getDecl());
4800   CGF.EmitAnyExprToMem(LBVar->getInit(), LBLVal.getAddress(), LBLVal.getQuals(),
4801                        /*IsInitializer=*/true);
4802   LValue UBLVal = CGF.EmitLValueForField(
4803       Result.TDBase,
4804       *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTUpperBound));
4805   auto *UBVar =
4806       cast<VarDecl>(cast<DeclRefExpr>(D.getUpperBoundVariable())->getDecl());
4807   CGF.EmitAnyExprToMem(UBVar->getInit(), UBLVal.getAddress(), UBLVal.getQuals(),
4808                        /*IsInitializer=*/true);
4809   LValue StLVal = CGF.EmitLValueForField(
4810       Result.TDBase,
4811       *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTStride));
4812   auto *StVar =
4813       cast<VarDecl>(cast<DeclRefExpr>(D.getStrideVariable())->getDecl());
4814   CGF.EmitAnyExprToMem(StVar->getInit(), StLVal.getAddress(), StLVal.getQuals(),
4815                        /*IsInitializer=*/true);
4816   // Store reductions address.
4817   LValue RedLVal = CGF.EmitLValueForField(
4818       Result.TDBase,
4819       *std::next(Result.KmpTaskTQTyRD->field_begin(), KmpTaskTReductions));
4820   if (Data.Reductions)
4821     CGF.EmitStoreOfScalar(Data.Reductions, RedLVal);
4822   else {
4823     CGF.EmitNullInitialization(RedLVal.getAddress(),
4824                                CGF.getContext().VoidPtrTy);
4825   }
4826   enum { NoSchedule = 0, Grainsize = 1, NumTasks = 2 };
4827   llvm::Value *TaskArgs[] = {
4828       UpLoc,
4829       ThreadID,
4830       Result.NewTask,
4831       IfVal,
4832       LBLVal.getPointer(),
4833       UBLVal.getPointer(),
4834       CGF.EmitLoadOfScalar(StLVal, SourceLocation()),
4835       llvm::ConstantInt::getNullValue(
4836           CGF.IntTy), // Always 0 because taskgroup emitted by the compiler
4837       llvm::ConstantInt::getSigned(
4838           CGF.IntTy, Data.Schedule.getPointer()
4839                          ? Data.Schedule.getInt() ? NumTasks : Grainsize
4840                          : NoSchedule),
4841       Data.Schedule.getPointer()
4842           ? CGF.Builder.CreateIntCast(Data.Schedule.getPointer(), CGF.Int64Ty,
4843                                       /*isSigned=*/false)
4844           : llvm::ConstantInt::get(CGF.Int64Ty, /*V=*/0),
4845       Result.TaskDupFn ? CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4846                              Result.TaskDupFn, CGF.VoidPtrTy)
4847                        : llvm::ConstantPointerNull::get(CGF.VoidPtrTy)};
4848   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_taskloop), TaskArgs);
4849 }
4850 
4851 /// \brief Emit reduction operation for each element of array (required for
4852 /// array sections) LHS op = RHS.
4853 /// \param Type Type of array.
4854 /// \param LHSVar Variable on the left side of the reduction operation
4855 /// (references element of array in original variable).
4856 /// \param RHSVar Variable on the right side of the reduction operation
4857 /// (references element of array in original variable).
4858 /// \param RedOpGen Generator of reduction operation with use of LHSVar and
4859 /// RHSVar.
4860 static void EmitOMPAggregateReduction(
4861     CodeGenFunction &CGF, QualType Type, const VarDecl *LHSVar,
4862     const VarDecl *RHSVar,
4863     const llvm::function_ref<void(CodeGenFunction &CGF, const Expr *,
4864                                   const Expr *, const Expr *)> &RedOpGen,
4865     const Expr *XExpr = nullptr, const Expr *EExpr = nullptr,
4866     const Expr *UpExpr = nullptr) {
4867   // Perform element-by-element initialization.
4868   QualType ElementTy;
4869   Address LHSAddr = CGF.GetAddrOfLocalVar(LHSVar);
4870   Address RHSAddr = CGF.GetAddrOfLocalVar(RHSVar);
4871 
4872   // Drill down to the base element type on both arrays.
4873   auto ArrayTy = Type->getAsArrayTypeUnsafe();
4874   auto NumElements = CGF.emitArrayLength(ArrayTy, ElementTy, LHSAddr);
4875 
4876   auto RHSBegin = RHSAddr.getPointer();
4877   auto LHSBegin = LHSAddr.getPointer();
4878   // Cast from pointer to array type to pointer to single element.
4879   auto LHSEnd = CGF.Builder.CreateGEP(LHSBegin, NumElements);
4880   // The basic structure here is a while-do loop.
4881   auto BodyBB = CGF.createBasicBlock("omp.arraycpy.body");
4882   auto DoneBB = CGF.createBasicBlock("omp.arraycpy.done");
4883   auto IsEmpty =
4884       CGF.Builder.CreateICmpEQ(LHSBegin, LHSEnd, "omp.arraycpy.isempty");
4885   CGF.Builder.CreateCondBr(IsEmpty, DoneBB, BodyBB);
4886 
4887   // Enter the loop body, making that address the current address.
4888   auto EntryBB = CGF.Builder.GetInsertBlock();
4889   CGF.EmitBlock(BodyBB);
4890 
4891   CharUnits ElementSize = CGF.getContext().getTypeSizeInChars(ElementTy);
4892 
4893   llvm::PHINode *RHSElementPHI = CGF.Builder.CreatePHI(
4894       RHSBegin->getType(), 2, "omp.arraycpy.srcElementPast");
4895   RHSElementPHI->addIncoming(RHSBegin, EntryBB);
4896   Address RHSElementCurrent =
4897       Address(RHSElementPHI,
4898               RHSAddr.getAlignment().alignmentOfArrayElement(ElementSize));
4899 
4900   llvm::PHINode *LHSElementPHI = CGF.Builder.CreatePHI(
4901       LHSBegin->getType(), 2, "omp.arraycpy.destElementPast");
4902   LHSElementPHI->addIncoming(LHSBegin, EntryBB);
4903   Address LHSElementCurrent =
4904       Address(LHSElementPHI,
4905               LHSAddr.getAlignment().alignmentOfArrayElement(ElementSize));
4906 
4907   // Emit copy.
4908   CodeGenFunction::OMPPrivateScope Scope(CGF);
4909   Scope.addPrivate(LHSVar, [=]() -> Address { return LHSElementCurrent; });
4910   Scope.addPrivate(RHSVar, [=]() -> Address { return RHSElementCurrent; });
4911   Scope.Privatize();
4912   RedOpGen(CGF, XExpr, EExpr, UpExpr);
4913   Scope.ForceCleanup();
4914 
4915   // Shift the address forward by one element.
4916   auto LHSElementNext = CGF.Builder.CreateConstGEP1_32(
4917       LHSElementPHI, /*Idx0=*/1, "omp.arraycpy.dest.element");
4918   auto RHSElementNext = CGF.Builder.CreateConstGEP1_32(
4919       RHSElementPHI, /*Idx0=*/1, "omp.arraycpy.src.element");
4920   // Check whether we've reached the end.
4921   auto Done =
4922       CGF.Builder.CreateICmpEQ(LHSElementNext, LHSEnd, "omp.arraycpy.done");
4923   CGF.Builder.CreateCondBr(Done, DoneBB, BodyBB);
4924   LHSElementPHI->addIncoming(LHSElementNext, CGF.Builder.GetInsertBlock());
4925   RHSElementPHI->addIncoming(RHSElementNext, CGF.Builder.GetInsertBlock());
4926 
4927   // Done.
4928   CGF.EmitBlock(DoneBB, /*IsFinished=*/true);
4929 }
4930 
4931 /// Emit reduction combiner. If the combiner is a simple expression emit it as
4932 /// is, otherwise consider it as combiner of UDR decl and emit it as a call of
4933 /// UDR combiner function.
4934 static void emitReductionCombiner(CodeGenFunction &CGF,
4935                                   const Expr *ReductionOp) {
4936   if (auto *CE = dyn_cast<CallExpr>(ReductionOp))
4937     if (auto *OVE = dyn_cast<OpaqueValueExpr>(CE->getCallee()))
4938       if (auto *DRE =
4939               dyn_cast<DeclRefExpr>(OVE->getSourceExpr()->IgnoreImpCasts()))
4940         if (auto *DRD = dyn_cast<OMPDeclareReductionDecl>(DRE->getDecl())) {
4941           std::pair<llvm::Function *, llvm::Function *> Reduction =
4942               CGF.CGM.getOpenMPRuntime().getUserDefinedReduction(DRD);
4943           RValue Func = RValue::get(Reduction.first);
4944           CodeGenFunction::OpaqueValueMapping Map(CGF, OVE, Func);
4945           CGF.EmitIgnoredExpr(ReductionOp);
4946           return;
4947         }
4948   CGF.EmitIgnoredExpr(ReductionOp);
4949 }
4950 
4951 llvm::Value *CGOpenMPRuntime::emitReductionFunction(
4952     CodeGenModule &CGM, SourceLocation Loc, llvm::Type *ArgsType,
4953     ArrayRef<const Expr *> Privates, ArrayRef<const Expr *> LHSExprs,
4954     ArrayRef<const Expr *> RHSExprs, ArrayRef<const Expr *> ReductionOps) {
4955   auto &C = CGM.getContext();
4956 
4957   // void reduction_func(void *LHSArg, void *RHSArg);
4958   FunctionArgList Args;
4959   ImplicitParamDecl LHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
4960                            ImplicitParamDecl::Other);
4961   ImplicitParamDecl RHSArg(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
4962                            ImplicitParamDecl::Other);
4963   Args.push_back(&LHSArg);
4964   Args.push_back(&RHSArg);
4965   auto &CGFI = CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
4966   auto *Fn = llvm::Function::Create(
4967       CGM.getTypes().GetFunctionType(CGFI), llvm::GlobalValue::InternalLinkage,
4968       ".omp.reduction.reduction_func", &CGM.getModule());
4969   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, CGFI);
4970   CodeGenFunction CGF(CGM);
4971   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, CGFI, Args, Loc, Loc);
4972 
4973   // Dst = (void*[n])(LHSArg);
4974   // Src = (void*[n])(RHSArg);
4975   Address LHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4976       CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&LHSArg)),
4977       ArgsType), CGF.getPointerAlign());
4978   Address RHS(CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
4979       CGF.Builder.CreateLoad(CGF.GetAddrOfLocalVar(&RHSArg)),
4980       ArgsType), CGF.getPointerAlign());
4981 
4982   //  ...
4983   //  *(Type<i>*)lhs[i] = RedOp<i>(*(Type<i>*)lhs[i], *(Type<i>*)rhs[i]);
4984   //  ...
4985   CodeGenFunction::OMPPrivateScope Scope(CGF);
4986   auto IPriv = Privates.begin();
4987   unsigned Idx = 0;
4988   for (unsigned I = 0, E = ReductionOps.size(); I < E; ++I, ++IPriv, ++Idx) {
4989     auto RHSVar = cast<VarDecl>(cast<DeclRefExpr>(RHSExprs[I])->getDecl());
4990     Scope.addPrivate(RHSVar, [&]() -> Address {
4991       return emitAddrOfVarFromArray(CGF, RHS, Idx, RHSVar);
4992     });
4993     auto LHSVar = cast<VarDecl>(cast<DeclRefExpr>(LHSExprs[I])->getDecl());
4994     Scope.addPrivate(LHSVar, [&]() -> Address {
4995       return emitAddrOfVarFromArray(CGF, LHS, Idx, LHSVar);
4996     });
4997     QualType PrivTy = (*IPriv)->getType();
4998     if (PrivTy->isVariablyModifiedType()) {
4999       // Get array size and emit VLA type.
5000       ++Idx;
5001       Address Elem =
5002           CGF.Builder.CreateConstArrayGEP(LHS, Idx, CGF.getPointerSize());
5003       llvm::Value *Ptr = CGF.Builder.CreateLoad(Elem);
5004       auto *VLA = CGF.getContext().getAsVariableArrayType(PrivTy);
5005       auto *OVE = cast<OpaqueValueExpr>(VLA->getSizeExpr());
5006       CodeGenFunction::OpaqueValueMapping OpaqueMap(
5007           CGF, OVE, RValue::get(CGF.Builder.CreatePtrToInt(Ptr, CGF.SizeTy)));
5008       CGF.EmitVariablyModifiedType(PrivTy);
5009     }
5010   }
5011   Scope.Privatize();
5012   IPriv = Privates.begin();
5013   auto ILHS = LHSExprs.begin();
5014   auto IRHS = RHSExprs.begin();
5015   for (auto *E : ReductionOps) {
5016     if ((*IPriv)->getType()->isArrayType()) {
5017       // Emit reduction for array section.
5018       auto *LHSVar = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
5019       auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
5020       EmitOMPAggregateReduction(
5021           CGF, (*IPriv)->getType(), LHSVar, RHSVar,
5022           [=](CodeGenFunction &CGF, const Expr *, const Expr *, const Expr *) {
5023             emitReductionCombiner(CGF, E);
5024           });
5025     } else
5026       // Emit reduction for array subscript or single variable.
5027       emitReductionCombiner(CGF, E);
5028     ++IPriv;
5029     ++ILHS;
5030     ++IRHS;
5031   }
5032   Scope.ForceCleanup();
5033   CGF.FinishFunction();
5034   return Fn;
5035 }
5036 
5037 void CGOpenMPRuntime::emitSingleReductionCombiner(CodeGenFunction &CGF,
5038                                                   const Expr *ReductionOp,
5039                                                   const Expr *PrivateRef,
5040                                                   const DeclRefExpr *LHS,
5041                                                   const DeclRefExpr *RHS) {
5042   if (PrivateRef->getType()->isArrayType()) {
5043     // Emit reduction for array section.
5044     auto *LHSVar = cast<VarDecl>(LHS->getDecl());
5045     auto *RHSVar = cast<VarDecl>(RHS->getDecl());
5046     EmitOMPAggregateReduction(
5047         CGF, PrivateRef->getType(), LHSVar, RHSVar,
5048         [=](CodeGenFunction &CGF, const Expr *, const Expr *, const Expr *) {
5049           emitReductionCombiner(CGF, ReductionOp);
5050         });
5051   } else
5052     // Emit reduction for array subscript or single variable.
5053     emitReductionCombiner(CGF, ReductionOp);
5054 }
5055 
5056 void CGOpenMPRuntime::emitReduction(CodeGenFunction &CGF, SourceLocation Loc,
5057                                     ArrayRef<const Expr *> Privates,
5058                                     ArrayRef<const Expr *> LHSExprs,
5059                                     ArrayRef<const Expr *> RHSExprs,
5060                                     ArrayRef<const Expr *> ReductionOps,
5061                                     ReductionOptionsTy Options) {
5062   if (!CGF.HaveInsertPoint())
5063     return;
5064 
5065   bool WithNowait = Options.WithNowait;
5066   bool SimpleReduction = Options.SimpleReduction;
5067 
5068   // Next code should be emitted for reduction:
5069   //
5070   // static kmp_critical_name lock = { 0 };
5071   //
5072   // void reduce_func(void *lhs[<n>], void *rhs[<n>]) {
5073   //  *(Type0*)lhs[0] = ReductionOperation0(*(Type0*)lhs[0], *(Type0*)rhs[0]);
5074   //  ...
5075   //  *(Type<n>-1*)lhs[<n>-1] = ReductionOperation<n>-1(*(Type<n>-1*)lhs[<n>-1],
5076   //  *(Type<n>-1*)rhs[<n>-1]);
5077   // }
5078   //
5079   // ...
5080   // void *RedList[<n>] = {&<RHSExprs>[0], ..., &<RHSExprs>[<n>-1]};
5081   // switch (__kmpc_reduce{_nowait}(<loc>, <gtid>, <n>, sizeof(RedList),
5082   // RedList, reduce_func, &<lock>)) {
5083   // case 1:
5084   //  ...
5085   //  <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]);
5086   //  ...
5087   // __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>);
5088   // break;
5089   // case 2:
5090   //  ...
5091   //  Atomic(<LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]));
5092   //  ...
5093   // [__kmpc_end_reduce(<loc>, <gtid>, &<lock>);]
5094   // break;
5095   // default:;
5096   // }
5097   //
5098   // if SimpleReduction is true, only the next code is generated:
5099   //  ...
5100   //  <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]);
5101   //  ...
5102 
5103   auto &C = CGM.getContext();
5104 
5105   if (SimpleReduction) {
5106     CodeGenFunction::RunCleanupsScope Scope(CGF);
5107     auto IPriv = Privates.begin();
5108     auto ILHS = LHSExprs.begin();
5109     auto IRHS = RHSExprs.begin();
5110     for (auto *E : ReductionOps) {
5111       emitSingleReductionCombiner(CGF, E, *IPriv, cast<DeclRefExpr>(*ILHS),
5112                                   cast<DeclRefExpr>(*IRHS));
5113       ++IPriv;
5114       ++ILHS;
5115       ++IRHS;
5116     }
5117     return;
5118   }
5119 
5120   // 1. Build a list of reduction variables.
5121   // void *RedList[<n>] = {<ReductionVars>[0], ..., <ReductionVars>[<n>-1]};
5122   auto Size = RHSExprs.size();
5123   for (auto *E : Privates) {
5124     if (E->getType()->isVariablyModifiedType())
5125       // Reserve place for array size.
5126       ++Size;
5127   }
5128   llvm::APInt ArraySize(/*unsigned int numBits=*/32, Size);
5129   QualType ReductionArrayTy =
5130       C.getConstantArrayType(C.VoidPtrTy, ArraySize, ArrayType::Normal,
5131                              /*IndexTypeQuals=*/0);
5132   Address ReductionList =
5133       CGF.CreateMemTemp(ReductionArrayTy, ".omp.reduction.red_list");
5134   auto IPriv = Privates.begin();
5135   unsigned Idx = 0;
5136   for (unsigned I = 0, E = RHSExprs.size(); I < E; ++I, ++IPriv, ++Idx) {
5137     Address Elem =
5138       CGF.Builder.CreateConstArrayGEP(ReductionList, Idx, CGF.getPointerSize());
5139     CGF.Builder.CreateStore(
5140         CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
5141             CGF.EmitLValue(RHSExprs[I]).getPointer(), CGF.VoidPtrTy),
5142         Elem);
5143     if ((*IPriv)->getType()->isVariablyModifiedType()) {
5144       // Store array size.
5145       ++Idx;
5146       Elem = CGF.Builder.CreateConstArrayGEP(ReductionList, Idx,
5147                                              CGF.getPointerSize());
5148       llvm::Value *Size = CGF.Builder.CreateIntCast(
5149           CGF.getVLASize(
5150                  CGF.getContext().getAsVariableArrayType((*IPriv)->getType()))
5151               .first,
5152           CGF.SizeTy, /*isSigned=*/false);
5153       CGF.Builder.CreateStore(CGF.Builder.CreateIntToPtr(Size, CGF.VoidPtrTy),
5154                               Elem);
5155     }
5156   }
5157 
5158   // 2. Emit reduce_func().
5159   auto *ReductionFn = emitReductionFunction(
5160       CGM, Loc, CGF.ConvertTypeForMem(ReductionArrayTy)->getPointerTo(),
5161       Privates, LHSExprs, RHSExprs, ReductionOps);
5162 
5163   // 3. Create static kmp_critical_name lock = { 0 };
5164   auto *Lock = getCriticalRegionLock(".reduction");
5165 
5166   // 4. Build res = __kmpc_reduce{_nowait}(<loc>, <gtid>, <n>, sizeof(RedList),
5167   // RedList, reduce_func, &<lock>);
5168   auto *IdentTLoc = emitUpdateLocation(CGF, Loc, OMP_ATOMIC_REDUCE);
5169   auto *ThreadId = getThreadID(CGF, Loc);
5170   auto *ReductionArrayTySize = CGF.getTypeSize(ReductionArrayTy);
5171   auto *RL = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
5172       ReductionList.getPointer(), CGF.VoidPtrTy);
5173   llvm::Value *Args[] = {
5174       IdentTLoc,                             // ident_t *<loc>
5175       ThreadId,                              // i32 <gtid>
5176       CGF.Builder.getInt32(RHSExprs.size()), // i32 <n>
5177       ReductionArrayTySize,                  // size_type sizeof(RedList)
5178       RL,                                    // void *RedList
5179       ReductionFn, // void (*) (void *, void *) <reduce_func>
5180       Lock         // kmp_critical_name *&<lock>
5181   };
5182   auto Res = CGF.EmitRuntimeCall(
5183       createRuntimeFunction(WithNowait ? OMPRTL__kmpc_reduce_nowait
5184                                        : OMPRTL__kmpc_reduce),
5185       Args);
5186 
5187   // 5. Build switch(res)
5188   auto *DefaultBB = CGF.createBasicBlock(".omp.reduction.default");
5189   auto *SwInst = CGF.Builder.CreateSwitch(Res, DefaultBB, /*NumCases=*/2);
5190 
5191   // 6. Build case 1:
5192   //  ...
5193   //  <LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]);
5194   //  ...
5195   // __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>);
5196   // break;
5197   auto *Case1BB = CGF.createBasicBlock(".omp.reduction.case1");
5198   SwInst->addCase(CGF.Builder.getInt32(1), Case1BB);
5199   CGF.EmitBlock(Case1BB);
5200 
5201   // Add emission of __kmpc_end_reduce{_nowait}(<loc>, <gtid>, &<lock>);
5202   llvm::Value *EndArgs[] = {
5203       IdentTLoc, // ident_t *<loc>
5204       ThreadId,  // i32 <gtid>
5205       Lock       // kmp_critical_name *&<lock>
5206   };
5207   auto &&CodeGen = [&Privates, &LHSExprs, &RHSExprs, &ReductionOps](
5208       CodeGenFunction &CGF, PrePostActionTy &Action) {
5209     auto &RT = CGF.CGM.getOpenMPRuntime();
5210     auto IPriv = Privates.begin();
5211     auto ILHS = LHSExprs.begin();
5212     auto IRHS = RHSExprs.begin();
5213     for (auto *E : ReductionOps) {
5214       RT.emitSingleReductionCombiner(CGF, E, *IPriv, cast<DeclRefExpr>(*ILHS),
5215                                      cast<DeclRefExpr>(*IRHS));
5216       ++IPriv;
5217       ++ILHS;
5218       ++IRHS;
5219     }
5220   };
5221   RegionCodeGenTy RCG(CodeGen);
5222   CommonActionTy Action(
5223       nullptr, llvm::None,
5224       createRuntimeFunction(WithNowait ? OMPRTL__kmpc_end_reduce_nowait
5225                                        : OMPRTL__kmpc_end_reduce),
5226       EndArgs);
5227   RCG.setAction(Action);
5228   RCG(CGF);
5229 
5230   CGF.EmitBranch(DefaultBB);
5231 
5232   // 7. Build case 2:
5233   //  ...
5234   //  Atomic(<LHSExprs>[i] = RedOp<i>(*<LHSExprs>[i], *<RHSExprs>[i]));
5235   //  ...
5236   // break;
5237   auto *Case2BB = CGF.createBasicBlock(".omp.reduction.case2");
5238   SwInst->addCase(CGF.Builder.getInt32(2), Case2BB);
5239   CGF.EmitBlock(Case2BB);
5240 
5241   auto &&AtomicCodeGen = [Loc, &Privates, &LHSExprs, &RHSExprs, &ReductionOps](
5242       CodeGenFunction &CGF, PrePostActionTy &Action) {
5243     auto ILHS = LHSExprs.begin();
5244     auto IRHS = RHSExprs.begin();
5245     auto IPriv = Privates.begin();
5246     for (auto *E : ReductionOps) {
5247       const Expr *XExpr = nullptr;
5248       const Expr *EExpr = nullptr;
5249       const Expr *UpExpr = nullptr;
5250       BinaryOperatorKind BO = BO_Comma;
5251       if (auto *BO = dyn_cast<BinaryOperator>(E)) {
5252         if (BO->getOpcode() == BO_Assign) {
5253           XExpr = BO->getLHS();
5254           UpExpr = BO->getRHS();
5255         }
5256       }
5257       // Try to emit update expression as a simple atomic.
5258       auto *RHSExpr = UpExpr;
5259       if (RHSExpr) {
5260         // Analyze RHS part of the whole expression.
5261         if (auto *ACO = dyn_cast<AbstractConditionalOperator>(
5262                 RHSExpr->IgnoreParenImpCasts())) {
5263           // If this is a conditional operator, analyze its condition for
5264           // min/max reduction operator.
5265           RHSExpr = ACO->getCond();
5266         }
5267         if (auto *BORHS =
5268                 dyn_cast<BinaryOperator>(RHSExpr->IgnoreParenImpCasts())) {
5269           EExpr = BORHS->getRHS();
5270           BO = BORHS->getOpcode();
5271         }
5272       }
5273       if (XExpr) {
5274         auto *VD = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
5275         auto &&AtomicRedGen = [BO, VD,
5276                                Loc](CodeGenFunction &CGF, const Expr *XExpr,
5277                                     const Expr *EExpr, const Expr *UpExpr) {
5278           LValue X = CGF.EmitLValue(XExpr);
5279           RValue E;
5280           if (EExpr)
5281             E = CGF.EmitAnyExpr(EExpr);
5282           CGF.EmitOMPAtomicSimpleUpdateExpr(
5283               X, E, BO, /*IsXLHSInRHSPart=*/true,
5284               llvm::AtomicOrdering::Monotonic, Loc,
5285               [&CGF, UpExpr, VD, Loc](RValue XRValue) {
5286                 CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
5287                 PrivateScope.addPrivate(
5288                     VD, [&CGF, VD, XRValue, Loc]() -> Address {
5289                       Address LHSTemp = CGF.CreateMemTemp(VD->getType());
5290                       CGF.emitOMPSimpleStore(
5291                           CGF.MakeAddrLValue(LHSTemp, VD->getType()), XRValue,
5292                           VD->getType().getNonReferenceType(), Loc);
5293                       return LHSTemp;
5294                     });
5295                 (void)PrivateScope.Privatize();
5296                 return CGF.EmitAnyExpr(UpExpr);
5297               });
5298         };
5299         if ((*IPriv)->getType()->isArrayType()) {
5300           // Emit atomic reduction for array section.
5301           auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
5302           EmitOMPAggregateReduction(CGF, (*IPriv)->getType(), VD, RHSVar,
5303                                     AtomicRedGen, XExpr, EExpr, UpExpr);
5304         } else
5305           // Emit atomic reduction for array subscript or single variable.
5306           AtomicRedGen(CGF, XExpr, EExpr, UpExpr);
5307       } else {
5308         // Emit as a critical region.
5309         auto &&CritRedGen = [E, Loc](CodeGenFunction &CGF, const Expr *,
5310                                      const Expr *, const Expr *) {
5311           auto &RT = CGF.CGM.getOpenMPRuntime();
5312           RT.emitCriticalRegion(
5313               CGF, ".atomic_reduction",
5314               [=](CodeGenFunction &CGF, PrePostActionTy &Action) {
5315                 Action.Enter(CGF);
5316                 emitReductionCombiner(CGF, E);
5317               },
5318               Loc);
5319         };
5320         if ((*IPriv)->getType()->isArrayType()) {
5321           auto *LHSVar = cast<VarDecl>(cast<DeclRefExpr>(*ILHS)->getDecl());
5322           auto *RHSVar = cast<VarDecl>(cast<DeclRefExpr>(*IRHS)->getDecl());
5323           EmitOMPAggregateReduction(CGF, (*IPriv)->getType(), LHSVar, RHSVar,
5324                                     CritRedGen);
5325         } else
5326           CritRedGen(CGF, nullptr, nullptr, nullptr);
5327       }
5328       ++ILHS;
5329       ++IRHS;
5330       ++IPriv;
5331     }
5332   };
5333   RegionCodeGenTy AtomicRCG(AtomicCodeGen);
5334   if (!WithNowait) {
5335     // Add emission of __kmpc_end_reduce(<loc>, <gtid>, &<lock>);
5336     llvm::Value *EndArgs[] = {
5337         IdentTLoc, // ident_t *<loc>
5338         ThreadId,  // i32 <gtid>
5339         Lock       // kmp_critical_name *&<lock>
5340     };
5341     CommonActionTy Action(nullptr, llvm::None,
5342                           createRuntimeFunction(OMPRTL__kmpc_end_reduce),
5343                           EndArgs);
5344     AtomicRCG.setAction(Action);
5345     AtomicRCG(CGF);
5346   } else
5347     AtomicRCG(CGF);
5348 
5349   CGF.EmitBranch(DefaultBB);
5350   CGF.EmitBlock(DefaultBB, /*IsFinished=*/true);
5351 }
5352 
5353 /// Generates unique name for artificial threadprivate variables.
5354 /// Format is: <Prefix> "." <Loc_raw_encoding> "_" <N>
5355 static std::string generateUniqueName(StringRef Prefix, SourceLocation Loc,
5356                                       unsigned N) {
5357   SmallString<256> Buffer;
5358   llvm::raw_svector_ostream Out(Buffer);
5359   Out << Prefix << "." << Loc.getRawEncoding() << "_" << N;
5360   return Out.str();
5361 }
5362 
5363 /// Emits reduction initializer function:
5364 /// \code
5365 /// void @.red_init(void* %arg) {
5366 /// %0 = bitcast void* %arg to <type>*
5367 /// store <type> <init>, <type>* %0
5368 /// ret void
5369 /// }
5370 /// \endcode
5371 static llvm::Value *emitReduceInitFunction(CodeGenModule &CGM,
5372                                            SourceLocation Loc,
5373                                            ReductionCodeGen &RCG, unsigned N) {
5374   auto &C = CGM.getContext();
5375   FunctionArgList Args;
5376   ImplicitParamDecl Param(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
5377                           ImplicitParamDecl::Other);
5378   Args.emplace_back(&Param);
5379   auto &FnInfo =
5380       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
5381   auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo);
5382   auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage,
5383                                     ".red_init.", &CGM.getModule());
5384   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo);
5385   CodeGenFunction CGF(CGM);
5386   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc);
5387   Address PrivateAddr = CGF.EmitLoadOfPointer(
5388       CGF.GetAddrOfLocalVar(&Param),
5389       C.getPointerType(C.VoidPtrTy).castAs<PointerType>());
5390   llvm::Value *Size = nullptr;
5391   // If the size of the reduction item is non-constant, load it from global
5392   // threadprivate variable.
5393   if (RCG.getSizes(N).second) {
5394     Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate(
5395         CGF, CGM.getContext().getSizeType(),
5396         generateUniqueName("reduction_size", Loc, N));
5397     Size =
5398         CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false,
5399                              CGM.getContext().getSizeType(), SourceLocation());
5400   }
5401   RCG.emitAggregateType(CGF, N, Size);
5402   LValue SharedLVal;
5403   // If initializer uses initializer from declare reduction construct, emit a
5404   // pointer to the address of the original reduction item (reuired by reduction
5405   // initializer)
5406   if (RCG.usesReductionInitializer(N)) {
5407     Address SharedAddr =
5408         CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate(
5409             CGF, CGM.getContext().VoidPtrTy,
5410             generateUniqueName("reduction", Loc, N));
5411     SharedLVal = CGF.MakeAddrLValue(SharedAddr, CGM.getContext().VoidPtrTy);
5412   } else {
5413     SharedLVal = CGF.MakeNaturalAlignAddrLValue(
5414         llvm::ConstantPointerNull::get(CGM.VoidPtrTy),
5415         CGM.getContext().VoidPtrTy);
5416   }
5417   // Emit the initializer:
5418   // %0 = bitcast void* %arg to <type>*
5419   // store <type> <init>, <type>* %0
5420   RCG.emitInitialization(CGF, N, PrivateAddr, SharedLVal,
5421                          [](CodeGenFunction &) { return false; });
5422   CGF.FinishFunction();
5423   return Fn;
5424 }
5425 
5426 /// Emits reduction combiner function:
5427 /// \code
5428 /// void @.red_comb(void* %arg0, void* %arg1) {
5429 /// %lhs = bitcast void* %arg0 to <type>*
5430 /// %rhs = bitcast void* %arg1 to <type>*
5431 /// %2 = <ReductionOp>(<type>* %lhs, <type>* %rhs)
5432 /// store <type> %2, <type>* %lhs
5433 /// ret void
5434 /// }
5435 /// \endcode
5436 static llvm::Value *emitReduceCombFunction(CodeGenModule &CGM,
5437                                            SourceLocation Loc,
5438                                            ReductionCodeGen &RCG, unsigned N,
5439                                            const Expr *ReductionOp,
5440                                            const Expr *LHS, const Expr *RHS,
5441                                            const Expr *PrivateRef) {
5442   auto &C = CGM.getContext();
5443   auto *LHSVD = cast<VarDecl>(cast<DeclRefExpr>(LHS)->getDecl());
5444   auto *RHSVD = cast<VarDecl>(cast<DeclRefExpr>(RHS)->getDecl());
5445   FunctionArgList Args;
5446   ImplicitParamDecl ParamInOut(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr,
5447                                C.VoidPtrTy, ImplicitParamDecl::Other);
5448   ImplicitParamDecl ParamIn(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
5449                             ImplicitParamDecl::Other);
5450   Args.emplace_back(&ParamInOut);
5451   Args.emplace_back(&ParamIn);
5452   auto &FnInfo =
5453       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
5454   auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo);
5455   auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage,
5456                                     ".red_comb.", &CGM.getModule());
5457   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo);
5458   CodeGenFunction CGF(CGM);
5459   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc);
5460   llvm::Value *Size = nullptr;
5461   // If the size of the reduction item is non-constant, load it from global
5462   // threadprivate variable.
5463   if (RCG.getSizes(N).second) {
5464     Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate(
5465         CGF, CGM.getContext().getSizeType(),
5466         generateUniqueName("reduction_size", Loc, N));
5467     Size =
5468         CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false,
5469                              CGM.getContext().getSizeType(), SourceLocation());
5470   }
5471   RCG.emitAggregateType(CGF, N, Size);
5472   // Remap lhs and rhs variables to the addresses of the function arguments.
5473   // %lhs = bitcast void* %arg0 to <type>*
5474   // %rhs = bitcast void* %arg1 to <type>*
5475   CodeGenFunction::OMPPrivateScope PrivateScope(CGF);
5476   PrivateScope.addPrivate(LHSVD, [&C, &CGF, &ParamInOut, LHSVD]() -> Address {
5477     // Pull out the pointer to the variable.
5478     Address PtrAddr = CGF.EmitLoadOfPointer(
5479         CGF.GetAddrOfLocalVar(&ParamInOut),
5480         C.getPointerType(C.VoidPtrTy).castAs<PointerType>());
5481     return CGF.Builder.CreateElementBitCast(
5482         PtrAddr, CGF.ConvertTypeForMem(LHSVD->getType()));
5483   });
5484   PrivateScope.addPrivate(RHSVD, [&C, &CGF, &ParamIn, RHSVD]() -> Address {
5485     // Pull out the pointer to the variable.
5486     Address PtrAddr = CGF.EmitLoadOfPointer(
5487         CGF.GetAddrOfLocalVar(&ParamIn),
5488         C.getPointerType(C.VoidPtrTy).castAs<PointerType>());
5489     return CGF.Builder.CreateElementBitCast(
5490         PtrAddr, CGF.ConvertTypeForMem(RHSVD->getType()));
5491   });
5492   PrivateScope.Privatize();
5493   // Emit the combiner body:
5494   // %2 = <ReductionOp>(<type> *%lhs, <type> *%rhs)
5495   // store <type> %2, <type>* %lhs
5496   CGM.getOpenMPRuntime().emitSingleReductionCombiner(
5497       CGF, ReductionOp, PrivateRef, cast<DeclRefExpr>(LHS),
5498       cast<DeclRefExpr>(RHS));
5499   CGF.FinishFunction();
5500   return Fn;
5501 }
5502 
5503 /// Emits reduction finalizer function:
5504 /// \code
5505 /// void @.red_fini(void* %arg) {
5506 /// %0 = bitcast void* %arg to <type>*
5507 /// <destroy>(<type>* %0)
5508 /// ret void
5509 /// }
5510 /// \endcode
5511 static llvm::Value *emitReduceFiniFunction(CodeGenModule &CGM,
5512                                            SourceLocation Loc,
5513                                            ReductionCodeGen &RCG, unsigned N) {
5514   if (!RCG.needCleanups(N))
5515     return nullptr;
5516   auto &C = CGM.getContext();
5517   FunctionArgList Args;
5518   ImplicitParamDecl Param(C, /*DC=*/nullptr, Loc, /*Id=*/nullptr, C.VoidPtrTy,
5519                           ImplicitParamDecl::Other);
5520   Args.emplace_back(&Param);
5521   auto &FnInfo =
5522       CGM.getTypes().arrangeBuiltinFunctionDeclaration(C.VoidTy, Args);
5523   auto *FnTy = CGM.getTypes().GetFunctionType(FnInfo);
5524   auto *Fn = llvm::Function::Create(FnTy, llvm::GlobalValue::InternalLinkage,
5525                                     ".red_fini.", &CGM.getModule());
5526   CGM.SetInternalFunctionAttributes(/*D=*/nullptr, Fn, FnInfo);
5527   CodeGenFunction CGF(CGM);
5528   CGF.StartFunction(GlobalDecl(), C.VoidTy, Fn, FnInfo, Args, Loc, Loc);
5529   Address PrivateAddr = CGF.EmitLoadOfPointer(
5530       CGF.GetAddrOfLocalVar(&Param),
5531       C.getPointerType(C.VoidPtrTy).castAs<PointerType>());
5532   llvm::Value *Size = nullptr;
5533   // If the size of the reduction item is non-constant, load it from global
5534   // threadprivate variable.
5535   if (RCG.getSizes(N).second) {
5536     Address SizeAddr = CGM.getOpenMPRuntime().getAddrOfArtificialThreadPrivate(
5537         CGF, CGM.getContext().getSizeType(),
5538         generateUniqueName("reduction_size", Loc, N));
5539     Size =
5540         CGF.EmitLoadOfScalar(SizeAddr, /*Volatile=*/false,
5541                              CGM.getContext().getSizeType(), SourceLocation());
5542   }
5543   RCG.emitAggregateType(CGF, N, Size);
5544   // Emit the finalizer body:
5545   // <destroy>(<type>* %0)
5546   RCG.emitCleanups(CGF, N, PrivateAddr);
5547   CGF.FinishFunction();
5548   return Fn;
5549 }
5550 
5551 llvm::Value *CGOpenMPRuntime::emitTaskReductionInit(
5552     CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> LHSExprs,
5553     ArrayRef<const Expr *> RHSExprs, const OMPTaskDataTy &Data) {
5554   if (!CGF.HaveInsertPoint() || Data.ReductionVars.empty())
5555     return nullptr;
5556 
5557   // Build typedef struct:
5558   // kmp_task_red_input {
5559   //   void *reduce_shar; // shared reduction item
5560   //   size_t reduce_size; // size of data item
5561   //   void *reduce_init; // data initialization routine
5562   //   void *reduce_fini; // data finalization routine
5563   //   void *reduce_comb; // data combiner routine
5564   //   kmp_task_red_flags_t flags; // flags for additional info from compiler
5565   // } kmp_task_red_input_t;
5566   ASTContext &C = CGM.getContext();
5567   auto *RD = C.buildImplicitRecord("kmp_task_red_input_t");
5568   RD->startDefinition();
5569   const FieldDecl *SharedFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy);
5570   const FieldDecl *SizeFD = addFieldToRecordDecl(C, RD, C.getSizeType());
5571   const FieldDecl *InitFD  = addFieldToRecordDecl(C, RD, C.VoidPtrTy);
5572   const FieldDecl *FiniFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy);
5573   const FieldDecl *CombFD = addFieldToRecordDecl(C, RD, C.VoidPtrTy);
5574   const FieldDecl *FlagsFD = addFieldToRecordDecl(
5575       C, RD, C.getIntTypeForBitwidth(/*DestWidth=*/32, /*Signed=*/false));
5576   RD->completeDefinition();
5577   QualType RDType = C.getRecordType(RD);
5578   unsigned Size = Data.ReductionVars.size();
5579   llvm::APInt ArraySize(/*numBits=*/64, Size);
5580   QualType ArrayRDType = C.getConstantArrayType(
5581       RDType, ArraySize, ArrayType::Normal, /*IndexTypeQuals=*/0);
5582   // kmp_task_red_input_t .rd_input.[Size];
5583   Address TaskRedInput = CGF.CreateMemTemp(ArrayRDType, ".rd_input.");
5584   ReductionCodeGen RCG(Data.ReductionVars, Data.ReductionCopies,
5585                        Data.ReductionOps);
5586   for (unsigned Cnt = 0; Cnt < Size; ++Cnt) {
5587     // kmp_task_red_input_t &ElemLVal = .rd_input.[Cnt];
5588     llvm::Value *Idxs[] = {llvm::ConstantInt::get(CGM.SizeTy, /*V=*/0),
5589                            llvm::ConstantInt::get(CGM.SizeTy, Cnt)};
5590     llvm::Value *GEP = CGF.EmitCheckedInBoundsGEP(
5591         TaskRedInput.getPointer(), Idxs,
5592         /*SignedIndices=*/false, /*IsSubtraction=*/false, Loc,
5593         ".rd_input.gep.");
5594     LValue ElemLVal = CGF.MakeNaturalAlignAddrLValue(GEP, RDType);
5595     // ElemLVal.reduce_shar = &Shareds[Cnt];
5596     LValue SharedLVal = CGF.EmitLValueForField(ElemLVal, SharedFD);
5597     RCG.emitSharedLValue(CGF, Cnt);
5598     llvm::Value *CastedShared =
5599         CGF.EmitCastToVoidPtr(RCG.getSharedLValue(Cnt).getPointer());
5600     CGF.EmitStoreOfScalar(CastedShared, SharedLVal);
5601     RCG.emitAggregateType(CGF, Cnt);
5602     llvm::Value *SizeValInChars;
5603     llvm::Value *SizeVal;
5604     std::tie(SizeValInChars, SizeVal) = RCG.getSizes(Cnt);
5605     // We use delayed creation/initialization for VLAs, array sections and
5606     // custom reduction initializations. It is required because runtime does not
5607     // provide the way to pass the sizes of VLAs/array sections to
5608     // initializer/combiner/finalizer functions and does not pass the pointer to
5609     // original reduction item to the initializer. Instead threadprivate global
5610     // variables are used to store these values and use them in the functions.
5611     bool DelayedCreation = !!SizeVal;
5612     SizeValInChars = CGF.Builder.CreateIntCast(SizeValInChars, CGM.SizeTy,
5613                                                /*isSigned=*/false);
5614     LValue SizeLVal = CGF.EmitLValueForField(ElemLVal, SizeFD);
5615     CGF.EmitStoreOfScalar(SizeValInChars, SizeLVal);
5616     // ElemLVal.reduce_init = init;
5617     LValue InitLVal = CGF.EmitLValueForField(ElemLVal, InitFD);
5618     llvm::Value *InitAddr =
5619         CGF.EmitCastToVoidPtr(emitReduceInitFunction(CGM, Loc, RCG, Cnt));
5620     CGF.EmitStoreOfScalar(InitAddr, InitLVal);
5621     DelayedCreation = DelayedCreation || RCG.usesReductionInitializer(Cnt);
5622     // ElemLVal.reduce_fini = fini;
5623     LValue FiniLVal = CGF.EmitLValueForField(ElemLVal, FiniFD);
5624     llvm::Value *Fini = emitReduceFiniFunction(CGM, Loc, RCG, Cnt);
5625     llvm::Value *FiniAddr = Fini
5626                                 ? CGF.EmitCastToVoidPtr(Fini)
5627                                 : llvm::ConstantPointerNull::get(CGM.VoidPtrTy);
5628     CGF.EmitStoreOfScalar(FiniAddr, FiniLVal);
5629     // ElemLVal.reduce_comb = comb;
5630     LValue CombLVal = CGF.EmitLValueForField(ElemLVal, CombFD);
5631     llvm::Value *CombAddr = CGF.EmitCastToVoidPtr(emitReduceCombFunction(
5632         CGM, Loc, RCG, Cnt, Data.ReductionOps[Cnt], LHSExprs[Cnt],
5633         RHSExprs[Cnt], Data.ReductionCopies[Cnt]));
5634     CGF.EmitStoreOfScalar(CombAddr, CombLVal);
5635     // ElemLVal.flags = 0;
5636     LValue FlagsLVal = CGF.EmitLValueForField(ElemLVal, FlagsFD);
5637     if (DelayedCreation) {
5638       CGF.EmitStoreOfScalar(
5639           llvm::ConstantInt::get(CGM.Int32Ty, /*V=*/1, /*IsSigned=*/true),
5640           FlagsLVal);
5641     } else
5642       CGF.EmitNullInitialization(FlagsLVal.getAddress(), FlagsLVal.getType());
5643   }
5644   // Build call void *__kmpc_task_reduction_init(int gtid, int num_data, void
5645   // *data);
5646   llvm::Value *Args[] = {
5647       CGF.Builder.CreateIntCast(getThreadID(CGF, Loc), CGM.IntTy,
5648                                 /*isSigned=*/true),
5649       llvm::ConstantInt::get(CGM.IntTy, Size, /*isSigned=*/true),
5650       CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(TaskRedInput.getPointer(),
5651                                                       CGM.VoidPtrTy)};
5652   return CGF.EmitRuntimeCall(
5653       createRuntimeFunction(OMPRTL__kmpc_task_reduction_init), Args);
5654 }
5655 
5656 void CGOpenMPRuntime::emitTaskReductionFixups(CodeGenFunction &CGF,
5657                                               SourceLocation Loc,
5658                                               ReductionCodeGen &RCG,
5659                                               unsigned N) {
5660   auto Sizes = RCG.getSizes(N);
5661   // Emit threadprivate global variable if the type is non-constant
5662   // (Sizes.second = nullptr).
5663   if (Sizes.second) {
5664     llvm::Value *SizeVal = CGF.Builder.CreateIntCast(Sizes.second, CGM.SizeTy,
5665                                                      /*isSigned=*/false);
5666     Address SizeAddr = getAddrOfArtificialThreadPrivate(
5667         CGF, CGM.getContext().getSizeType(),
5668         generateUniqueName("reduction_size", Loc, N));
5669     CGF.Builder.CreateStore(SizeVal, SizeAddr, /*IsVolatile=*/false);
5670   }
5671   // Store address of the original reduction item if custom initializer is used.
5672   if (RCG.usesReductionInitializer(N)) {
5673     Address SharedAddr = getAddrOfArtificialThreadPrivate(
5674         CGF, CGM.getContext().VoidPtrTy,
5675         generateUniqueName("reduction", Loc, N));
5676     CGF.Builder.CreateStore(
5677         CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
5678             RCG.getSharedLValue(N).getPointer(), CGM.VoidPtrTy),
5679         SharedAddr, /*IsVolatile=*/false);
5680   }
5681 }
5682 
5683 Address CGOpenMPRuntime::getTaskReductionItem(CodeGenFunction &CGF,
5684                                               SourceLocation Loc,
5685                                               llvm::Value *ReductionsPtr,
5686                                               LValue SharedLVal) {
5687   // Build call void *__kmpc_task_reduction_get_th_data(int gtid, void *tg, void
5688   // *d);
5689   llvm::Value *Args[] = {
5690       CGF.Builder.CreateIntCast(getThreadID(CGF, Loc), CGM.IntTy,
5691                                 /*isSigned=*/true),
5692       ReductionsPtr,
5693       CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(SharedLVal.getPointer(),
5694                                                       CGM.VoidPtrTy)};
5695   return Address(
5696       CGF.EmitRuntimeCall(
5697           createRuntimeFunction(OMPRTL__kmpc_task_reduction_get_th_data), Args),
5698       SharedLVal.getAlignment());
5699 }
5700 
5701 void CGOpenMPRuntime::emitTaskwaitCall(CodeGenFunction &CGF,
5702                                        SourceLocation Loc) {
5703   if (!CGF.HaveInsertPoint())
5704     return;
5705   // Build call kmp_int32 __kmpc_omp_taskwait(ident_t *loc, kmp_int32
5706   // global_tid);
5707   llvm::Value *Args[] = {emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc)};
5708   // Ignore return result until untied tasks are supported.
5709   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_omp_taskwait), Args);
5710   if (auto *Region = dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo))
5711     Region->emitUntiedSwitch(CGF);
5712 }
5713 
5714 void CGOpenMPRuntime::emitInlinedDirective(CodeGenFunction &CGF,
5715                                            OpenMPDirectiveKind InnerKind,
5716                                            const RegionCodeGenTy &CodeGen,
5717                                            bool HasCancel) {
5718   if (!CGF.HaveInsertPoint())
5719     return;
5720   InlinedOpenMPRegionRAII Region(CGF, CodeGen, InnerKind, HasCancel);
5721   CGF.CapturedStmtInfo->EmitBody(CGF, /*S=*/nullptr);
5722 }
5723 
5724 namespace {
5725 enum RTCancelKind {
5726   CancelNoreq = 0,
5727   CancelParallel = 1,
5728   CancelLoop = 2,
5729   CancelSections = 3,
5730   CancelTaskgroup = 4
5731 };
5732 } // anonymous namespace
5733 
5734 static RTCancelKind getCancellationKind(OpenMPDirectiveKind CancelRegion) {
5735   RTCancelKind CancelKind = CancelNoreq;
5736   if (CancelRegion == OMPD_parallel)
5737     CancelKind = CancelParallel;
5738   else if (CancelRegion == OMPD_for)
5739     CancelKind = CancelLoop;
5740   else if (CancelRegion == OMPD_sections)
5741     CancelKind = CancelSections;
5742   else {
5743     assert(CancelRegion == OMPD_taskgroup);
5744     CancelKind = CancelTaskgroup;
5745   }
5746   return CancelKind;
5747 }
5748 
5749 void CGOpenMPRuntime::emitCancellationPointCall(
5750     CodeGenFunction &CGF, SourceLocation Loc,
5751     OpenMPDirectiveKind CancelRegion) {
5752   if (!CGF.HaveInsertPoint())
5753     return;
5754   // Build call kmp_int32 __kmpc_cancellationpoint(ident_t *loc, kmp_int32
5755   // global_tid, kmp_int32 cncl_kind);
5756   if (auto *OMPRegionInfo =
5757           dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) {
5758     // For 'cancellation point taskgroup', the task region info may not have a
5759     // cancel. This may instead happen in another adjacent task.
5760     if (CancelRegion == OMPD_taskgroup || OMPRegionInfo->hasCancel()) {
5761       llvm::Value *Args[] = {
5762           emitUpdateLocation(CGF, Loc), getThreadID(CGF, Loc),
5763           CGF.Builder.getInt32(getCancellationKind(CancelRegion))};
5764       // Ignore return result until untied tasks are supported.
5765       auto *Result = CGF.EmitRuntimeCall(
5766           createRuntimeFunction(OMPRTL__kmpc_cancellationpoint), Args);
5767       // if (__kmpc_cancellationpoint()) {
5768       //   exit from construct;
5769       // }
5770       auto *ExitBB = CGF.createBasicBlock(".cancel.exit");
5771       auto *ContBB = CGF.createBasicBlock(".cancel.continue");
5772       auto *Cmp = CGF.Builder.CreateIsNotNull(Result);
5773       CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB);
5774       CGF.EmitBlock(ExitBB);
5775       // exit from construct;
5776       auto CancelDest =
5777           CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind());
5778       CGF.EmitBranchThroughCleanup(CancelDest);
5779       CGF.EmitBlock(ContBB, /*IsFinished=*/true);
5780     }
5781   }
5782 }
5783 
5784 void CGOpenMPRuntime::emitCancelCall(CodeGenFunction &CGF, SourceLocation Loc,
5785                                      const Expr *IfCond,
5786                                      OpenMPDirectiveKind CancelRegion) {
5787   if (!CGF.HaveInsertPoint())
5788     return;
5789   // Build call kmp_int32 __kmpc_cancel(ident_t *loc, kmp_int32 global_tid,
5790   // kmp_int32 cncl_kind);
5791   if (auto *OMPRegionInfo =
5792           dyn_cast_or_null<CGOpenMPRegionInfo>(CGF.CapturedStmtInfo)) {
5793     auto &&ThenGen = [Loc, CancelRegion, OMPRegionInfo](CodeGenFunction &CGF,
5794                                                         PrePostActionTy &) {
5795       auto &RT = CGF.CGM.getOpenMPRuntime();
5796       llvm::Value *Args[] = {
5797           RT.emitUpdateLocation(CGF, Loc), RT.getThreadID(CGF, Loc),
5798           CGF.Builder.getInt32(getCancellationKind(CancelRegion))};
5799       // Ignore return result until untied tasks are supported.
5800       auto *Result = CGF.EmitRuntimeCall(
5801           RT.createRuntimeFunction(OMPRTL__kmpc_cancel), Args);
5802       // if (__kmpc_cancel()) {
5803       //   exit from construct;
5804       // }
5805       auto *ExitBB = CGF.createBasicBlock(".cancel.exit");
5806       auto *ContBB = CGF.createBasicBlock(".cancel.continue");
5807       auto *Cmp = CGF.Builder.CreateIsNotNull(Result);
5808       CGF.Builder.CreateCondBr(Cmp, ExitBB, ContBB);
5809       CGF.EmitBlock(ExitBB);
5810       // exit from construct;
5811       auto CancelDest =
5812           CGF.getOMPCancelDestination(OMPRegionInfo->getDirectiveKind());
5813       CGF.EmitBranchThroughCleanup(CancelDest);
5814       CGF.EmitBlock(ContBB, /*IsFinished=*/true);
5815     };
5816     if (IfCond)
5817       emitOMPIfClause(CGF, IfCond, ThenGen,
5818                       [](CodeGenFunction &, PrePostActionTy &) {});
5819     else {
5820       RegionCodeGenTy ThenRCG(ThenGen);
5821       ThenRCG(CGF);
5822     }
5823   }
5824 }
5825 
5826 /// \brief Obtain information that uniquely identifies a target entry. This
5827 /// consists of the file and device IDs as well as line number associated with
5828 /// the relevant entry source location.
5829 static void getTargetEntryUniqueInfo(ASTContext &C, SourceLocation Loc,
5830                                      unsigned &DeviceID, unsigned &FileID,
5831                                      unsigned &LineNum) {
5832 
5833   auto &SM = C.getSourceManager();
5834 
5835   // The loc should be always valid and have a file ID (the user cannot use
5836   // #pragma directives in macros)
5837 
5838   assert(Loc.isValid() && "Source location is expected to be always valid.");
5839   assert(Loc.isFileID() && "Source location is expected to refer to a file.");
5840 
5841   PresumedLoc PLoc = SM.getPresumedLoc(Loc);
5842   assert(PLoc.isValid() && "Source location is expected to be always valid.");
5843 
5844   llvm::sys::fs::UniqueID ID;
5845   if (llvm::sys::fs::getUniqueID(PLoc.getFilename(), ID))
5846     llvm_unreachable("Source file with target region no longer exists!");
5847 
5848   DeviceID = ID.getDevice();
5849   FileID = ID.getFile();
5850   LineNum = PLoc.getLine();
5851 }
5852 
5853 void CGOpenMPRuntime::emitTargetOutlinedFunction(
5854     const OMPExecutableDirective &D, StringRef ParentName,
5855     llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID,
5856     bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) {
5857   assert(!ParentName.empty() && "Invalid target region parent name!");
5858 
5859   emitTargetOutlinedFunctionHelper(D, ParentName, OutlinedFn, OutlinedFnID,
5860                                    IsOffloadEntry, CodeGen);
5861 }
5862 
5863 void CGOpenMPRuntime::emitTargetOutlinedFunctionHelper(
5864     const OMPExecutableDirective &D, StringRef ParentName,
5865     llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID,
5866     bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) {
5867   // Create a unique name for the entry function using the source location
5868   // information of the current target region. The name will be something like:
5869   //
5870   // __omp_offloading_DD_FFFF_PP_lBB
5871   //
5872   // where DD_FFFF is an ID unique to the file (device and file IDs), PP is the
5873   // mangled name of the function that encloses the target region and BB is the
5874   // line number of the target region.
5875 
5876   unsigned DeviceID;
5877   unsigned FileID;
5878   unsigned Line;
5879   getTargetEntryUniqueInfo(CGM.getContext(), D.getLocStart(), DeviceID, FileID,
5880                            Line);
5881   SmallString<64> EntryFnName;
5882   {
5883     llvm::raw_svector_ostream OS(EntryFnName);
5884     OS << "__omp_offloading" << llvm::format("_%x", DeviceID)
5885        << llvm::format("_%x_", FileID) << ParentName << "_l" << Line;
5886   }
5887 
5888   const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt());
5889 
5890   CodeGenFunction CGF(CGM, true);
5891   CGOpenMPTargetRegionInfo CGInfo(CS, CodeGen, EntryFnName);
5892   CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo);
5893 
5894   OutlinedFn = CGF.GenerateOpenMPCapturedStmtFunction(CS);
5895 
5896   // If this target outline function is not an offload entry, we don't need to
5897   // register it.
5898   if (!IsOffloadEntry)
5899     return;
5900 
5901   // The target region ID is used by the runtime library to identify the current
5902   // target region, so it only has to be unique and not necessarily point to
5903   // anything. It could be the pointer to the outlined function that implements
5904   // the target region, but we aren't using that so that the compiler doesn't
5905   // need to keep that, and could therefore inline the host function if proven
5906   // worthwhile during optimization. In the other hand, if emitting code for the
5907   // device, the ID has to be the function address so that it can retrieved from
5908   // the offloading entry and launched by the runtime library. We also mark the
5909   // outlined function to have external linkage in case we are emitting code for
5910   // the device, because these functions will be entry points to the device.
5911 
5912   if (CGM.getLangOpts().OpenMPIsDevice) {
5913     OutlinedFnID = llvm::ConstantExpr::getBitCast(OutlinedFn, CGM.Int8PtrTy);
5914     OutlinedFn->setLinkage(llvm::GlobalValue::ExternalLinkage);
5915   } else
5916     OutlinedFnID = new llvm::GlobalVariable(
5917         CGM.getModule(), CGM.Int8Ty, /*isConstant=*/true,
5918         llvm::GlobalValue::PrivateLinkage,
5919         llvm::Constant::getNullValue(CGM.Int8Ty), ".omp_offload.region_id");
5920 
5921   // Register the information for the entry associated with this target region.
5922   OffloadEntriesInfoManager.registerTargetRegionEntryInfo(
5923       DeviceID, FileID, ParentName, Line, OutlinedFn, OutlinedFnID,
5924       /*Flags=*/0);
5925 }
5926 
5927 /// discard all CompoundStmts intervening between two constructs
5928 static const Stmt *ignoreCompoundStmts(const Stmt *Body) {
5929   while (auto *CS = dyn_cast_or_null<CompoundStmt>(Body))
5930     Body = CS->body_front();
5931 
5932   return Body;
5933 }
5934 
5935 /// Emit the number of teams for a target directive.  Inspect the num_teams
5936 /// clause associated with a teams construct combined or closely nested
5937 /// with the target directive.
5938 ///
5939 /// Emit a team of size one for directives such as 'target parallel' that
5940 /// have no associated teams construct.
5941 ///
5942 /// Otherwise, return nullptr.
5943 static llvm::Value *
5944 emitNumTeamsForTargetDirective(CGOpenMPRuntime &OMPRuntime,
5945                                CodeGenFunction &CGF,
5946                                const OMPExecutableDirective &D) {
5947 
5948   assert(!CGF.getLangOpts().OpenMPIsDevice && "Clauses associated with the "
5949                                               "teams directive expected to be "
5950                                               "emitted only for the host!");
5951 
5952   auto &Bld = CGF.Builder;
5953 
5954   // If the target directive is combined with a teams directive:
5955   //   Return the value in the num_teams clause, if any.
5956   //   Otherwise, return 0 to denote the runtime default.
5957   if (isOpenMPTeamsDirective(D.getDirectiveKind())) {
5958     if (const auto *NumTeamsClause = D.getSingleClause<OMPNumTeamsClause>()) {
5959       CodeGenFunction::RunCleanupsScope NumTeamsScope(CGF);
5960       auto NumTeams = CGF.EmitScalarExpr(NumTeamsClause->getNumTeams(),
5961                                          /*IgnoreResultAssign*/ true);
5962       return Bld.CreateIntCast(NumTeams, CGF.Int32Ty,
5963                                /*IsSigned=*/true);
5964     }
5965 
5966     // The default value is 0.
5967     return Bld.getInt32(0);
5968   }
5969 
5970   // If the target directive is combined with a parallel directive but not a
5971   // teams directive, start one team.
5972   if (isOpenMPParallelDirective(D.getDirectiveKind()))
5973     return Bld.getInt32(1);
5974 
5975   // If the current target region has a teams region enclosed, we need to get
5976   // the number of teams to pass to the runtime function call. This is done
5977   // by generating the expression in a inlined region. This is required because
5978   // the expression is captured in the enclosing target environment when the
5979   // teams directive is not combined with target.
5980 
5981   const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt());
5982 
5983   if (auto *TeamsDir = dyn_cast_or_null<OMPExecutableDirective>(
5984           ignoreCompoundStmts(CS.getCapturedStmt()))) {
5985     if (isOpenMPTeamsDirective(TeamsDir->getDirectiveKind())) {
5986       if (auto *NTE = TeamsDir->getSingleClause<OMPNumTeamsClause>()) {
5987         CGOpenMPInnerExprInfo CGInfo(CGF, CS);
5988         CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo);
5989         llvm::Value *NumTeams = CGF.EmitScalarExpr(NTE->getNumTeams());
5990         return Bld.CreateIntCast(NumTeams, CGF.Int32Ty,
5991                                  /*IsSigned=*/true);
5992       }
5993 
5994       // If we have an enclosed teams directive but no num_teams clause we use
5995       // the default value 0.
5996       return Bld.getInt32(0);
5997     }
5998   }
5999 
6000   // No teams associated with the directive.
6001   return nullptr;
6002 }
6003 
6004 /// Emit the number of threads for a target directive.  Inspect the
6005 /// thread_limit clause associated with a teams construct combined or closely
6006 /// nested with the target directive.
6007 ///
6008 /// Emit the num_threads clause for directives such as 'target parallel' that
6009 /// have no associated teams construct.
6010 ///
6011 /// Otherwise, return nullptr.
6012 static llvm::Value *
6013 emitNumThreadsForTargetDirective(CGOpenMPRuntime &OMPRuntime,
6014                                  CodeGenFunction &CGF,
6015                                  const OMPExecutableDirective &D) {
6016 
6017   assert(!CGF.getLangOpts().OpenMPIsDevice && "Clauses associated with the "
6018                                               "teams directive expected to be "
6019                                               "emitted only for the host!");
6020 
6021   auto &Bld = CGF.Builder;
6022 
6023   //
6024   // If the target directive is combined with a teams directive:
6025   //   Return the value in the thread_limit clause, if any.
6026   //
6027   // If the target directive is combined with a parallel directive:
6028   //   Return the value in the num_threads clause, if any.
6029   //
6030   // If both clauses are set, select the minimum of the two.
6031   //
6032   // If neither teams or parallel combined directives set the number of threads
6033   // in a team, return 0 to denote the runtime default.
6034   //
6035   // If this is not a teams directive return nullptr.
6036 
6037   if (isOpenMPTeamsDirective(D.getDirectiveKind()) ||
6038       isOpenMPParallelDirective(D.getDirectiveKind())) {
6039     llvm::Value *DefaultThreadLimitVal = Bld.getInt32(0);
6040     llvm::Value *NumThreadsVal = nullptr;
6041     llvm::Value *ThreadLimitVal = nullptr;
6042 
6043     if (const auto *ThreadLimitClause =
6044             D.getSingleClause<OMPThreadLimitClause>()) {
6045       CodeGenFunction::RunCleanupsScope ThreadLimitScope(CGF);
6046       auto ThreadLimit = CGF.EmitScalarExpr(ThreadLimitClause->getThreadLimit(),
6047                                             /*IgnoreResultAssign*/ true);
6048       ThreadLimitVal = Bld.CreateIntCast(ThreadLimit, CGF.Int32Ty,
6049                                          /*IsSigned=*/true);
6050     }
6051 
6052     if (const auto *NumThreadsClause =
6053             D.getSingleClause<OMPNumThreadsClause>()) {
6054       CodeGenFunction::RunCleanupsScope NumThreadsScope(CGF);
6055       llvm::Value *NumThreads =
6056           CGF.EmitScalarExpr(NumThreadsClause->getNumThreads(),
6057                              /*IgnoreResultAssign*/ true);
6058       NumThreadsVal =
6059           Bld.CreateIntCast(NumThreads, CGF.Int32Ty, /*IsSigned=*/true);
6060     }
6061 
6062     // Select the lesser of thread_limit and num_threads.
6063     if (NumThreadsVal)
6064       ThreadLimitVal = ThreadLimitVal
6065                            ? Bld.CreateSelect(Bld.CreateICmpSLT(NumThreadsVal,
6066                                                                 ThreadLimitVal),
6067                                               NumThreadsVal, ThreadLimitVal)
6068                            : NumThreadsVal;
6069 
6070     // Set default value passed to the runtime if either teams or a target
6071     // parallel type directive is found but no clause is specified.
6072     if (!ThreadLimitVal)
6073       ThreadLimitVal = DefaultThreadLimitVal;
6074 
6075     return ThreadLimitVal;
6076   }
6077 
6078   // If the current target region has a teams region enclosed, we need to get
6079   // the thread limit to pass to the runtime function call. This is done
6080   // by generating the expression in a inlined region. This is required because
6081   // the expression is captured in the enclosing target environment when the
6082   // teams directive is not combined with target.
6083 
6084   const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt());
6085 
6086   if (auto *TeamsDir = dyn_cast_or_null<OMPExecutableDirective>(
6087           ignoreCompoundStmts(CS.getCapturedStmt()))) {
6088     if (isOpenMPTeamsDirective(TeamsDir->getDirectiveKind())) {
6089       if (auto *TLE = TeamsDir->getSingleClause<OMPThreadLimitClause>()) {
6090         CGOpenMPInnerExprInfo CGInfo(CGF, CS);
6091         CodeGenFunction::CGCapturedStmtRAII CapInfoRAII(CGF, &CGInfo);
6092         llvm::Value *ThreadLimit = CGF.EmitScalarExpr(TLE->getThreadLimit());
6093         return CGF.Builder.CreateIntCast(ThreadLimit, CGF.Int32Ty,
6094                                          /*IsSigned=*/true);
6095       }
6096 
6097       // If we have an enclosed teams directive but no thread_limit clause we
6098       // use the default value 0.
6099       return CGF.Builder.getInt32(0);
6100     }
6101   }
6102 
6103   // No teams associated with the directive.
6104   return nullptr;
6105 }
6106 
6107 namespace {
6108 // \brief Utility to handle information from clauses associated with a given
6109 // construct that use mappable expressions (e.g. 'map' clause, 'to' clause).
6110 // It provides a convenient interface to obtain the information and generate
6111 // code for that information.
6112 class MappableExprsHandler {
6113 public:
6114   /// \brief Values for bit flags used to specify the mapping type for
6115   /// offloading.
6116   enum OpenMPOffloadMappingFlags {
6117     /// \brief Allocate memory on the device and move data from host to device.
6118     OMP_MAP_TO = 0x01,
6119     /// \brief Allocate memory on the device and move data from device to host.
6120     OMP_MAP_FROM = 0x02,
6121     /// \brief Always perform the requested mapping action on the element, even
6122     /// if it was already mapped before.
6123     OMP_MAP_ALWAYS = 0x04,
6124     /// \brief Delete the element from the device environment, ignoring the
6125     /// current reference count associated with the element.
6126     OMP_MAP_DELETE = 0x08,
6127     /// \brief The element being mapped is a pointer-pointee pair; both the
6128     /// pointer and the pointee should be mapped.
6129     OMP_MAP_PTR_AND_OBJ = 0x10,
6130     /// \brief This flags signals that the base address of an entry should be
6131     /// passed to the target kernel as an argument.
6132     OMP_MAP_TARGET_PARAM = 0x20,
6133     /// \brief Signal that the runtime library has to return the device pointer
6134     /// in the current position for the data being mapped. Used when we have the
6135     /// use_device_ptr clause.
6136     OMP_MAP_RETURN_PARAM = 0x40,
6137     /// \brief This flag signals that the reference being passed is a pointer to
6138     /// private data.
6139     OMP_MAP_PRIVATE = 0x80,
6140     /// \brief Pass the element to the device by value.
6141     OMP_MAP_LITERAL = 0x100,
6142     /// Implicit map
6143     OMP_MAP_IMPLICIT = 0x200,
6144   };
6145 
6146   /// Class that associates information with a base pointer to be passed to the
6147   /// runtime library.
6148   class BasePointerInfo {
6149     /// The base pointer.
6150     llvm::Value *Ptr = nullptr;
6151     /// The base declaration that refers to this device pointer, or null if
6152     /// there is none.
6153     const ValueDecl *DevPtrDecl = nullptr;
6154 
6155   public:
6156     BasePointerInfo(llvm::Value *Ptr, const ValueDecl *DevPtrDecl = nullptr)
6157         : Ptr(Ptr), DevPtrDecl(DevPtrDecl) {}
6158     llvm::Value *operator*() const { return Ptr; }
6159     const ValueDecl *getDevicePtrDecl() const { return DevPtrDecl; }
6160     void setDevicePtrDecl(const ValueDecl *D) { DevPtrDecl = D; }
6161   };
6162 
6163   typedef SmallVector<BasePointerInfo, 16> MapBaseValuesArrayTy;
6164   typedef SmallVector<llvm::Value *, 16> MapValuesArrayTy;
6165   typedef SmallVector<uint64_t, 16> MapFlagsArrayTy;
6166 
6167 private:
6168   /// \brief Directive from where the map clauses were extracted.
6169   const OMPExecutableDirective &CurDir;
6170 
6171   /// \brief Function the directive is being generated for.
6172   CodeGenFunction &CGF;
6173 
6174   /// \brief Set of all first private variables in the current directive.
6175   llvm::SmallPtrSet<const VarDecl *, 8> FirstPrivateDecls;
6176   /// Set of all reduction variables in the current directive.
6177   llvm::SmallPtrSet<const VarDecl *, 8> ReductionDecls;
6178 
6179   /// Map between device pointer declarations and their expression components.
6180   /// The key value for declarations in 'this' is null.
6181   llvm::DenseMap<
6182       const ValueDecl *,
6183       SmallVector<OMPClauseMappableExprCommon::MappableExprComponentListRef, 4>>
6184       DevPointersMap;
6185 
6186   llvm::Value *getExprTypeSize(const Expr *E) const {
6187     auto ExprTy = E->getType().getCanonicalType();
6188 
6189     // Reference types are ignored for mapping purposes.
6190     if (auto *RefTy = ExprTy->getAs<ReferenceType>())
6191       ExprTy = RefTy->getPointeeType().getCanonicalType();
6192 
6193     // Given that an array section is considered a built-in type, we need to
6194     // do the calculation based on the length of the section instead of relying
6195     // on CGF.getTypeSize(E->getType()).
6196     if (const auto *OAE = dyn_cast<OMPArraySectionExpr>(E)) {
6197       QualType BaseTy = OMPArraySectionExpr::getBaseOriginalType(
6198                             OAE->getBase()->IgnoreParenImpCasts())
6199                             .getCanonicalType();
6200 
6201       // If there is no length associated with the expression, that means we
6202       // are using the whole length of the base.
6203       if (!OAE->getLength() && OAE->getColonLoc().isValid())
6204         return CGF.getTypeSize(BaseTy);
6205 
6206       llvm::Value *ElemSize;
6207       if (auto *PTy = BaseTy->getAs<PointerType>())
6208         ElemSize = CGF.getTypeSize(PTy->getPointeeType().getCanonicalType());
6209       else {
6210         auto *ATy = cast<ArrayType>(BaseTy.getTypePtr());
6211         assert(ATy && "Expecting array type if not a pointer type.");
6212         ElemSize = CGF.getTypeSize(ATy->getElementType().getCanonicalType());
6213       }
6214 
6215       // If we don't have a length at this point, that is because we have an
6216       // array section with a single element.
6217       if (!OAE->getLength())
6218         return ElemSize;
6219 
6220       auto *LengthVal = CGF.EmitScalarExpr(OAE->getLength());
6221       LengthVal =
6222           CGF.Builder.CreateIntCast(LengthVal, CGF.SizeTy, /*isSigned=*/false);
6223       return CGF.Builder.CreateNUWMul(LengthVal, ElemSize);
6224     }
6225     return CGF.getTypeSize(ExprTy);
6226   }
6227 
6228   /// \brief Return the corresponding bits for a given map clause modifier. Add
6229   /// a flag marking the map as a pointer if requested. Add a flag marking the
6230   /// map as the first one of a series of maps that relate to the same map
6231   /// expression.
6232   uint64_t getMapTypeBits(OpenMPMapClauseKind MapType,
6233                           OpenMPMapClauseKind MapTypeModifier, bool AddPtrFlag,
6234                           bool AddIsTargetParamFlag) const {
6235     uint64_t Bits = 0u;
6236     switch (MapType) {
6237     case OMPC_MAP_alloc:
6238     case OMPC_MAP_release:
6239       // alloc and release is the default behavior in the runtime library,  i.e.
6240       // if we don't pass any bits alloc/release that is what the runtime is
6241       // going to do. Therefore, we don't need to signal anything for these two
6242       // type modifiers.
6243       break;
6244     case OMPC_MAP_to:
6245       Bits = OMP_MAP_TO;
6246       break;
6247     case OMPC_MAP_from:
6248       Bits = OMP_MAP_FROM;
6249       break;
6250     case OMPC_MAP_tofrom:
6251       Bits = OMP_MAP_TO | OMP_MAP_FROM;
6252       break;
6253     case OMPC_MAP_delete:
6254       Bits = OMP_MAP_DELETE;
6255       break;
6256     default:
6257       llvm_unreachable("Unexpected map type!");
6258       break;
6259     }
6260     if (AddPtrFlag)
6261       Bits |= OMP_MAP_PTR_AND_OBJ;
6262     if (AddIsTargetParamFlag)
6263       Bits |= OMP_MAP_TARGET_PARAM;
6264     if (MapTypeModifier == OMPC_MAP_always)
6265       Bits |= OMP_MAP_ALWAYS;
6266     return Bits;
6267   }
6268 
6269   /// \brief Return true if the provided expression is a final array section. A
6270   /// final array section, is one whose length can't be proved to be one.
6271   bool isFinalArraySectionExpression(const Expr *E) const {
6272     auto *OASE = dyn_cast<OMPArraySectionExpr>(E);
6273 
6274     // It is not an array section and therefore not a unity-size one.
6275     if (!OASE)
6276       return false;
6277 
6278     // An array section with no colon always refer to a single element.
6279     if (OASE->getColonLoc().isInvalid())
6280       return false;
6281 
6282     auto *Length = OASE->getLength();
6283 
6284     // If we don't have a length we have to check if the array has size 1
6285     // for this dimension. Also, we should always expect a length if the
6286     // base type is pointer.
6287     if (!Length) {
6288       auto BaseQTy = OMPArraySectionExpr::getBaseOriginalType(
6289                          OASE->getBase()->IgnoreParenImpCasts())
6290                          .getCanonicalType();
6291       if (auto *ATy = dyn_cast<ConstantArrayType>(BaseQTy.getTypePtr()))
6292         return ATy->getSize().getSExtValue() != 1;
6293       // If we don't have a constant dimension length, we have to consider
6294       // the current section as having any size, so it is not necessarily
6295       // unitary. If it happen to be unity size, that's user fault.
6296       return true;
6297     }
6298 
6299     // Check if the length evaluates to 1.
6300     llvm::APSInt ConstLength;
6301     if (!Length->EvaluateAsInt(ConstLength, CGF.getContext()))
6302       return true; // Can have more that size 1.
6303 
6304     return ConstLength.getSExtValue() != 1;
6305   }
6306 
6307   /// \brief Generate the base pointers, section pointers, sizes and map type
6308   /// bits for the provided map type, map modifier, and expression components.
6309   /// \a IsFirstComponent should be set to true if the provided set of
6310   /// components is the first associated with a capture.
6311   void generateInfoForComponentList(
6312       OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapTypeModifier,
6313       OMPClauseMappableExprCommon::MappableExprComponentListRef Components,
6314       MapBaseValuesArrayTy &BasePointers, MapValuesArrayTy &Pointers,
6315       MapValuesArrayTy &Sizes, MapFlagsArrayTy &Types,
6316       bool IsFirstComponentList, bool IsImplicit) const {
6317 
6318     // The following summarizes what has to be generated for each map and the
6319     // types bellow. The generated information is expressed in this order:
6320     // base pointer, section pointer, size, flags
6321     // (to add to the ones that come from the map type and modifier).
6322     //
6323     // double d;
6324     // int i[100];
6325     // float *p;
6326     //
6327     // struct S1 {
6328     //   int i;
6329     //   float f[50];
6330     // }
6331     // struct S2 {
6332     //   int i;
6333     //   float f[50];
6334     //   S1 s;
6335     //   double *p;
6336     //   struct S2 *ps;
6337     // }
6338     // S2 s;
6339     // S2 *ps;
6340     //
6341     // map(d)
6342     // &d, &d, sizeof(double), noflags
6343     //
6344     // map(i)
6345     // &i, &i, 100*sizeof(int), noflags
6346     //
6347     // map(i[1:23])
6348     // &i(=&i[0]), &i[1], 23*sizeof(int), noflags
6349     //
6350     // map(p)
6351     // &p, &p, sizeof(float*), noflags
6352     //
6353     // map(p[1:24])
6354     // p, &p[1], 24*sizeof(float), noflags
6355     //
6356     // map(s)
6357     // &s, &s, sizeof(S2), noflags
6358     //
6359     // map(s.i)
6360     // &s, &(s.i), sizeof(int), noflags
6361     //
6362     // map(s.s.f)
6363     // &s, &(s.i.f), 50*sizeof(int), noflags
6364     //
6365     // map(s.p)
6366     // &s, &(s.p), sizeof(double*), noflags
6367     //
6368     // map(s.p[:22], s.a s.b)
6369     // &s, &(s.p), sizeof(double*), noflags
6370     // &(s.p), &(s.p[0]), 22*sizeof(double), ptr_flag
6371     //
6372     // map(s.ps)
6373     // &s, &(s.ps), sizeof(S2*), noflags
6374     //
6375     // map(s.ps->s.i)
6376     // &s, &(s.ps), sizeof(S2*), noflags
6377     // &(s.ps), &(s.ps->s.i), sizeof(int), ptr_flag
6378     //
6379     // map(s.ps->ps)
6380     // &s, &(s.ps), sizeof(S2*), noflags
6381     // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag
6382     //
6383     // map(s.ps->ps->ps)
6384     // &s, &(s.ps), sizeof(S2*), noflags
6385     // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag
6386     // &(s.ps->ps), &(s.ps->ps->ps), sizeof(S2*), ptr_flag
6387     //
6388     // map(s.ps->ps->s.f[:22])
6389     // &s, &(s.ps), sizeof(S2*), noflags
6390     // &(s.ps), &(s.ps->ps), sizeof(S2*), ptr_flag
6391     // &(s.ps->ps), &(s.ps->ps->s.f[0]), 22*sizeof(float), ptr_flag
6392     //
6393     // map(ps)
6394     // &ps, &ps, sizeof(S2*), noflags
6395     //
6396     // map(ps->i)
6397     // ps, &(ps->i), sizeof(int), noflags
6398     //
6399     // map(ps->s.f)
6400     // ps, &(ps->s.f[0]), 50*sizeof(float), noflags
6401     //
6402     // map(ps->p)
6403     // ps, &(ps->p), sizeof(double*), noflags
6404     //
6405     // map(ps->p[:22])
6406     // ps, &(ps->p), sizeof(double*), noflags
6407     // &(ps->p), &(ps->p[0]), 22*sizeof(double), ptr_flag
6408     //
6409     // map(ps->ps)
6410     // ps, &(ps->ps), sizeof(S2*), noflags
6411     //
6412     // map(ps->ps->s.i)
6413     // ps, &(ps->ps), sizeof(S2*), noflags
6414     // &(ps->ps), &(ps->ps->s.i), sizeof(int), ptr_flag
6415     //
6416     // map(ps->ps->ps)
6417     // ps, &(ps->ps), sizeof(S2*), noflags
6418     // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag
6419     //
6420     // map(ps->ps->ps->ps)
6421     // ps, &(ps->ps), sizeof(S2*), noflags
6422     // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag
6423     // &(ps->ps->ps), &(ps->ps->ps->ps), sizeof(S2*), ptr_flag
6424     //
6425     // map(ps->ps->ps->s.f[:22])
6426     // ps, &(ps->ps), sizeof(S2*), noflags
6427     // &(ps->ps), &(ps->ps->ps), sizeof(S2*), ptr_flag
6428     // &(ps->ps->ps), &(ps->ps->ps->s.f[0]), 22*sizeof(float), ptr_flag
6429 
6430     // Track if the map information being generated is the first for a capture.
6431     bool IsCaptureFirstInfo = IsFirstComponentList;
6432 
6433     // Scan the components from the base to the complete expression.
6434     auto CI = Components.rbegin();
6435     auto CE = Components.rend();
6436     auto I = CI;
6437 
6438     // Track if the map information being generated is the first for a list of
6439     // components.
6440     bool IsExpressionFirstInfo = true;
6441     llvm::Value *BP = nullptr;
6442 
6443     if (auto *ME = dyn_cast<MemberExpr>(I->getAssociatedExpression())) {
6444       // The base is the 'this' pointer. The content of the pointer is going
6445       // to be the base of the field being mapped.
6446       BP = CGF.EmitScalarExpr(ME->getBase());
6447     } else {
6448       // The base is the reference to the variable.
6449       // BP = &Var.
6450       BP = CGF.EmitOMPSharedLValue(I->getAssociatedExpression()).getPointer();
6451 
6452       // If the variable is a pointer and is being dereferenced (i.e. is not
6453       // the last component), the base has to be the pointer itself, not its
6454       // reference. References are ignored for mapping purposes.
6455       QualType Ty =
6456           I->getAssociatedDeclaration()->getType().getNonReferenceType();
6457       if (Ty->isAnyPointerType() && std::next(I) != CE) {
6458         auto PtrAddr = CGF.MakeNaturalAlignAddrLValue(BP, Ty);
6459         BP = CGF.EmitLoadOfPointerLValue(PtrAddr.getAddress(),
6460                                          Ty->castAs<PointerType>())
6461                  .getPointer();
6462 
6463         // We do not need to generate individual map information for the
6464         // pointer, it can be associated with the combined storage.
6465         ++I;
6466       }
6467     }
6468 
6469     uint64_t DefaultFlags = IsImplicit ? OMP_MAP_IMPLICIT : 0;
6470     for (; I != CE; ++I) {
6471       auto Next = std::next(I);
6472 
6473       // We need to generate the addresses and sizes if this is the last
6474       // component, if the component is a pointer or if it is an array section
6475       // whose length can't be proved to be one. If this is a pointer, it
6476       // becomes the base address for the following components.
6477 
6478       // A final array section, is one whose length can't be proved to be one.
6479       bool IsFinalArraySection =
6480           isFinalArraySectionExpression(I->getAssociatedExpression());
6481 
6482       // Get information on whether the element is a pointer. Have to do a
6483       // special treatment for array sections given that they are built-in
6484       // types.
6485       const auto *OASE =
6486           dyn_cast<OMPArraySectionExpr>(I->getAssociatedExpression());
6487       bool IsPointer =
6488           (OASE &&
6489            OMPArraySectionExpr::getBaseOriginalType(OASE)
6490                .getCanonicalType()
6491                ->isAnyPointerType()) ||
6492           I->getAssociatedExpression()->getType()->isAnyPointerType();
6493 
6494       if (Next == CE || IsPointer || IsFinalArraySection) {
6495 
6496         // If this is not the last component, we expect the pointer to be
6497         // associated with an array expression or member expression.
6498         assert((Next == CE ||
6499                 isa<MemberExpr>(Next->getAssociatedExpression()) ||
6500                 isa<ArraySubscriptExpr>(Next->getAssociatedExpression()) ||
6501                 isa<OMPArraySectionExpr>(Next->getAssociatedExpression())) &&
6502                "Unexpected expression");
6503 
6504         llvm::Value *LB =
6505             CGF.EmitOMPSharedLValue(I->getAssociatedExpression()).getPointer();
6506         auto *Size = getExprTypeSize(I->getAssociatedExpression());
6507 
6508         // If we have a member expression and the current component is a
6509         // reference, we have to map the reference too. Whenever we have a
6510         // reference, the section that reference refers to is going to be a
6511         // load instruction from the storage assigned to the reference.
6512         if (isa<MemberExpr>(I->getAssociatedExpression()) &&
6513             I->getAssociatedDeclaration()->getType()->isReferenceType()) {
6514           auto *LI = cast<llvm::LoadInst>(LB);
6515           auto *RefAddr = LI->getPointerOperand();
6516 
6517           BasePointers.push_back(BP);
6518           Pointers.push_back(RefAddr);
6519           Sizes.push_back(CGF.getTypeSize(CGF.getContext().VoidPtrTy));
6520           Types.push_back(DefaultFlags |
6521                           getMapTypeBits(
6522                               /*MapType*/ OMPC_MAP_alloc,
6523                               /*MapTypeModifier=*/OMPC_MAP_unknown,
6524                               !IsExpressionFirstInfo, IsCaptureFirstInfo));
6525           IsExpressionFirstInfo = false;
6526           IsCaptureFirstInfo = false;
6527           // The reference will be the next base address.
6528           BP = RefAddr;
6529         }
6530 
6531         BasePointers.push_back(BP);
6532         Pointers.push_back(LB);
6533         Sizes.push_back(Size);
6534 
6535         // We need to add a pointer flag for each map that comes from the
6536         // same expression except for the first one. We also need to signal
6537         // this map is the first one that relates with the current capture
6538         // (there is a set of entries for each capture).
6539         Types.push_back(DefaultFlags | getMapTypeBits(MapType, MapTypeModifier,
6540                                                       !IsExpressionFirstInfo,
6541                                                       IsCaptureFirstInfo));
6542 
6543         // If we have a final array section, we are done with this expression.
6544         if (IsFinalArraySection)
6545           break;
6546 
6547         // The pointer becomes the base for the next element.
6548         if (Next != CE)
6549           BP = LB;
6550 
6551         IsExpressionFirstInfo = false;
6552         IsCaptureFirstInfo = false;
6553       }
6554     }
6555   }
6556 
6557   /// \brief Return the adjusted map modifiers if the declaration a capture
6558   /// refers to appears in a first-private clause. This is expected to be used
6559   /// only with directives that start with 'target'.
6560   unsigned adjustMapModifiersForPrivateClauses(const CapturedStmt::Capture &Cap,
6561                                                unsigned CurrentModifiers) {
6562     assert(Cap.capturesVariable() && "Expected capture by reference only!");
6563 
6564     // A first private variable captured by reference will use only the
6565     // 'private ptr' and 'map to' flag. Return the right flags if the captured
6566     // declaration is known as first-private in this handler.
6567     if (FirstPrivateDecls.count(Cap.getCapturedVar()))
6568       return MappableExprsHandler::OMP_MAP_PRIVATE |
6569              MappableExprsHandler::OMP_MAP_TO;
6570     // Reduction variable  will use only the 'private ptr' and 'map to_from'
6571     // flag.
6572     if (ReductionDecls.count(Cap.getCapturedVar())) {
6573       return MappableExprsHandler::OMP_MAP_TO |
6574              MappableExprsHandler::OMP_MAP_FROM;
6575     }
6576 
6577     // We didn't modify anything.
6578     return CurrentModifiers;
6579   }
6580 
6581 public:
6582   MappableExprsHandler(const OMPExecutableDirective &Dir, CodeGenFunction &CGF)
6583       : CurDir(Dir), CGF(CGF) {
6584     // Extract firstprivate clause information.
6585     for (const auto *C : Dir.getClausesOfKind<OMPFirstprivateClause>())
6586       for (const auto *D : C->varlists())
6587         FirstPrivateDecls.insert(
6588             cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl());
6589     for (const auto *C : Dir.getClausesOfKind<OMPReductionClause>()) {
6590       for (const auto *D : C->varlists()) {
6591         ReductionDecls.insert(
6592             cast<VarDecl>(cast<DeclRefExpr>(D)->getDecl())->getCanonicalDecl());
6593       }
6594     }
6595     // Extract device pointer clause information.
6596     for (const auto *C : Dir.getClausesOfKind<OMPIsDevicePtrClause>())
6597       for (auto L : C->component_lists())
6598         DevPointersMap[L.first].push_back(L.second);
6599   }
6600 
6601   /// \brief Generate all the base pointers, section pointers, sizes and map
6602   /// types for the extracted mappable expressions. Also, for each item that
6603   /// relates with a device pointer, a pair of the relevant declaration and
6604   /// index where it occurs is appended to the device pointers info array.
6605   void generateAllInfo(MapBaseValuesArrayTy &BasePointers,
6606                        MapValuesArrayTy &Pointers, MapValuesArrayTy &Sizes,
6607                        MapFlagsArrayTy &Types) const {
6608     BasePointers.clear();
6609     Pointers.clear();
6610     Sizes.clear();
6611     Types.clear();
6612 
6613     struct MapInfo {
6614       /// Kind that defines how a device pointer has to be returned.
6615       enum ReturnPointerKind {
6616         // Don't have to return any pointer.
6617         RPK_None,
6618         // Pointer is the base of the declaration.
6619         RPK_Base,
6620         // Pointer is a member of the base declaration - 'this'
6621         RPK_Member,
6622         // Pointer is a reference and a member of the base declaration - 'this'
6623         RPK_MemberReference,
6624       };
6625       OMPClauseMappableExprCommon::MappableExprComponentListRef Components;
6626       OpenMPMapClauseKind MapType = OMPC_MAP_unknown;
6627       OpenMPMapClauseKind MapTypeModifier = OMPC_MAP_unknown;
6628       ReturnPointerKind ReturnDevicePointer = RPK_None;
6629       bool IsImplicit = false;
6630 
6631       MapInfo() = default;
6632       MapInfo(
6633           OMPClauseMappableExprCommon::MappableExprComponentListRef Components,
6634           OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapTypeModifier,
6635           ReturnPointerKind ReturnDevicePointer, bool IsImplicit)
6636           : Components(Components), MapType(MapType),
6637             MapTypeModifier(MapTypeModifier),
6638             ReturnDevicePointer(ReturnDevicePointer), IsImplicit(IsImplicit) {}
6639     };
6640 
6641     // We have to process the component lists that relate with the same
6642     // declaration in a single chunk so that we can generate the map flags
6643     // correctly. Therefore, we organize all lists in a map.
6644     llvm::MapVector<const ValueDecl *, SmallVector<MapInfo, 8>> Info;
6645 
6646     // Helper function to fill the information map for the different supported
6647     // clauses.
6648     auto &&InfoGen = [&Info](
6649         const ValueDecl *D,
6650         OMPClauseMappableExprCommon::MappableExprComponentListRef L,
6651         OpenMPMapClauseKind MapType, OpenMPMapClauseKind MapModifier,
6652         MapInfo::ReturnPointerKind ReturnDevicePointer, bool IsImplicit) {
6653       const ValueDecl *VD =
6654           D ? cast<ValueDecl>(D->getCanonicalDecl()) : nullptr;
6655       Info[VD].emplace_back(L, MapType, MapModifier, ReturnDevicePointer,
6656                             IsImplicit);
6657     };
6658 
6659     // FIXME: MSVC 2013 seems to require this-> to find member CurDir.
6660     for (auto *C : this->CurDir.getClausesOfKind<OMPMapClause>())
6661       for (auto L : C->component_lists()) {
6662         InfoGen(L.first, L.second, C->getMapType(), C->getMapTypeModifier(),
6663                 MapInfo::RPK_None, C->isImplicit());
6664       }
6665     for (auto *C : this->CurDir.getClausesOfKind<OMPToClause>())
6666       for (auto L : C->component_lists()) {
6667         InfoGen(L.first, L.second, OMPC_MAP_to, OMPC_MAP_unknown,
6668                 MapInfo::RPK_None, C->isImplicit());
6669       }
6670     for (auto *C : this->CurDir.getClausesOfKind<OMPFromClause>())
6671       for (auto L : C->component_lists()) {
6672         InfoGen(L.first, L.second, OMPC_MAP_from, OMPC_MAP_unknown,
6673                 MapInfo::RPK_None, C->isImplicit());
6674       }
6675 
6676     // Look at the use_device_ptr clause information and mark the existing map
6677     // entries as such. If there is no map information for an entry in the
6678     // use_device_ptr list, we create one with map type 'alloc' and zero size
6679     // section. It is the user fault if that was not mapped before.
6680     // FIXME: MSVC 2013 seems to require this-> to find member CurDir.
6681     for (auto *C : this->CurDir.getClausesOfKind<OMPUseDevicePtrClause>())
6682       for (auto L : C->component_lists()) {
6683         assert(!L.second.empty() && "Not expecting empty list of components!");
6684         const ValueDecl *VD = L.second.back().getAssociatedDeclaration();
6685         VD = cast<ValueDecl>(VD->getCanonicalDecl());
6686         auto *IE = L.second.back().getAssociatedExpression();
6687         // If the first component is a member expression, we have to look into
6688         // 'this', which maps to null in the map of map information. Otherwise
6689         // look directly for the information.
6690         auto It = Info.find(isa<MemberExpr>(IE) ? nullptr : VD);
6691 
6692         // We potentially have map information for this declaration already.
6693         // Look for the first set of components that refer to it.
6694         if (It != Info.end()) {
6695           auto CI = std::find_if(
6696               It->second.begin(), It->second.end(), [VD](const MapInfo &MI) {
6697                 return MI.Components.back().getAssociatedDeclaration() == VD;
6698               });
6699           // If we found a map entry, signal that the pointer has to be returned
6700           // and move on to the next declaration.
6701           if (CI != It->second.end()) {
6702             CI->ReturnDevicePointer = isa<MemberExpr>(IE)
6703                                           ? (VD->getType()->isReferenceType()
6704                                                  ? MapInfo::RPK_MemberReference
6705                                                  : MapInfo::RPK_Member)
6706                                           : MapInfo::RPK_Base;
6707             continue;
6708           }
6709         }
6710 
6711         // We didn't find any match in our map information - generate a zero
6712         // size array section.
6713         // FIXME: MSVC 2013 seems to require this-> to find member CGF.
6714         llvm::Value *Ptr =
6715             this->CGF
6716                 .EmitLoadOfLValue(this->CGF.EmitLValue(IE), SourceLocation())
6717                 .getScalarVal();
6718         BasePointers.push_back({Ptr, VD});
6719         Pointers.push_back(Ptr);
6720         Sizes.push_back(llvm::Constant::getNullValue(this->CGF.SizeTy));
6721         Types.push_back(OMP_MAP_RETURN_PARAM | OMP_MAP_TARGET_PARAM);
6722       }
6723 
6724     for (auto &M : Info) {
6725       // We need to know when we generate information for the first component
6726       // associated with a capture, because the mapping flags depend on it.
6727       bool IsFirstComponentList = true;
6728       for (MapInfo &L : M.second) {
6729         assert(!L.Components.empty() &&
6730                "Not expecting declaration with no component lists.");
6731 
6732         // Remember the current base pointer index.
6733         unsigned CurrentBasePointersIdx = BasePointers.size();
6734         // FIXME: MSVC 2013 seems to require this-> to find the member method.
6735         this->generateInfoForComponentList(
6736             L.MapType, L.MapTypeModifier, L.Components, BasePointers, Pointers,
6737             Sizes, Types, IsFirstComponentList, L.IsImplicit);
6738 
6739         // If this entry relates with a device pointer, set the relevant
6740         // declaration and add the 'return pointer' flag.
6741         if (IsFirstComponentList &&
6742             L.ReturnDevicePointer != MapInfo::RPK_None) {
6743           // If the pointer is not the base of the map, we need to skip the
6744           // base. If it is a reference in a member field, we also need to skip
6745           // the map of the reference.
6746           if (L.ReturnDevicePointer != MapInfo::RPK_Base) {
6747             ++CurrentBasePointersIdx;
6748             if (L.ReturnDevicePointer == MapInfo::RPK_MemberReference)
6749               ++CurrentBasePointersIdx;
6750           }
6751           assert(BasePointers.size() > CurrentBasePointersIdx &&
6752                  "Unexpected number of mapped base pointers.");
6753 
6754           auto *RelevantVD = L.Components.back().getAssociatedDeclaration();
6755           assert(RelevantVD &&
6756                  "No relevant declaration related with device pointer??");
6757 
6758           BasePointers[CurrentBasePointersIdx].setDevicePtrDecl(RelevantVD);
6759           Types[CurrentBasePointersIdx] |= OMP_MAP_RETURN_PARAM;
6760         }
6761         IsFirstComponentList = false;
6762       }
6763     }
6764   }
6765 
6766   /// \brief Generate the base pointers, section pointers, sizes and map types
6767   /// associated to a given capture.
6768   void generateInfoForCapture(const CapturedStmt::Capture *Cap,
6769                               llvm::Value *Arg,
6770                               MapBaseValuesArrayTy &BasePointers,
6771                               MapValuesArrayTy &Pointers,
6772                               MapValuesArrayTy &Sizes,
6773                               MapFlagsArrayTy &Types) const {
6774     assert(!Cap->capturesVariableArrayType() &&
6775            "Not expecting to generate map info for a variable array type!");
6776 
6777     BasePointers.clear();
6778     Pointers.clear();
6779     Sizes.clear();
6780     Types.clear();
6781 
6782     // We need to know when we generating information for the first component
6783     // associated with a capture, because the mapping flags depend on it.
6784     bool IsFirstComponentList = true;
6785 
6786     const ValueDecl *VD =
6787         Cap->capturesThis()
6788             ? nullptr
6789             : cast<ValueDecl>(Cap->getCapturedVar()->getCanonicalDecl());
6790 
6791     // If this declaration appears in a is_device_ptr clause we just have to
6792     // pass the pointer by value. If it is a reference to a declaration, we just
6793     // pass its value, otherwise, if it is a member expression, we need to map
6794     // 'to' the field.
6795     if (!VD) {
6796       auto It = DevPointersMap.find(VD);
6797       if (It != DevPointersMap.end()) {
6798         for (auto L : It->second) {
6799           generateInfoForComponentList(
6800               /*MapType=*/OMPC_MAP_to, /*MapTypeModifier=*/OMPC_MAP_unknown, L,
6801               BasePointers, Pointers, Sizes, Types, IsFirstComponentList,
6802               /*IsImplicit=*/false);
6803           IsFirstComponentList = false;
6804         }
6805         return;
6806       }
6807     } else if (DevPointersMap.count(VD)) {
6808       BasePointers.push_back({Arg, VD});
6809       Pointers.push_back(Arg);
6810       Sizes.push_back(CGF.getTypeSize(CGF.getContext().VoidPtrTy));
6811       Types.push_back(OMP_MAP_LITERAL | OMP_MAP_TARGET_PARAM);
6812       return;
6813     }
6814 
6815     // FIXME: MSVC 2013 seems to require this-> to find member CurDir.
6816     for (auto *C : this->CurDir.getClausesOfKind<OMPMapClause>())
6817       for (auto L : C->decl_component_lists(VD)) {
6818         assert(L.first == VD &&
6819                "We got information for the wrong declaration??");
6820         assert(!L.second.empty() &&
6821                "Not expecting declaration with no component lists.");
6822         generateInfoForComponentList(
6823             C->getMapType(), C->getMapTypeModifier(), L.second, BasePointers,
6824             Pointers, Sizes, Types, IsFirstComponentList, C->isImplicit());
6825         IsFirstComponentList = false;
6826       }
6827 
6828     return;
6829   }
6830 
6831   /// \brief Generate the default map information for a given capture \a CI,
6832   /// record field declaration \a RI and captured value \a CV.
6833   void generateDefaultMapInfo(const CapturedStmt::Capture &CI,
6834                               const FieldDecl &RI, llvm::Value *CV,
6835                               MapBaseValuesArrayTy &CurBasePointers,
6836                               MapValuesArrayTy &CurPointers,
6837                               MapValuesArrayTy &CurSizes,
6838                               MapFlagsArrayTy &CurMapTypes) {
6839 
6840     // Do the default mapping.
6841     if (CI.capturesThis()) {
6842       CurBasePointers.push_back(CV);
6843       CurPointers.push_back(CV);
6844       const PointerType *PtrTy = cast<PointerType>(RI.getType().getTypePtr());
6845       CurSizes.push_back(CGF.getTypeSize(PtrTy->getPointeeType()));
6846       // Default map type.
6847       CurMapTypes.push_back(OMP_MAP_TO | OMP_MAP_FROM);
6848     } else if (CI.capturesVariableByCopy()) {
6849       CurBasePointers.push_back(CV);
6850       CurPointers.push_back(CV);
6851       if (!RI.getType()->isAnyPointerType()) {
6852         // We have to signal to the runtime captures passed by value that are
6853         // not pointers.
6854         CurMapTypes.push_back(OMP_MAP_LITERAL);
6855         CurSizes.push_back(CGF.getTypeSize(RI.getType()));
6856       } else {
6857         // Pointers are implicitly mapped with a zero size and no flags
6858         // (other than first map that is added for all implicit maps).
6859         CurMapTypes.push_back(0u);
6860         CurSizes.push_back(llvm::Constant::getNullValue(CGF.SizeTy));
6861       }
6862     } else {
6863       assert(CI.capturesVariable() && "Expected captured reference.");
6864       CurBasePointers.push_back(CV);
6865       CurPointers.push_back(CV);
6866 
6867       const ReferenceType *PtrTy =
6868           cast<ReferenceType>(RI.getType().getTypePtr());
6869       QualType ElementType = PtrTy->getPointeeType();
6870       CurSizes.push_back(CGF.getTypeSize(ElementType));
6871       // The default map type for a scalar/complex type is 'to' because by
6872       // default the value doesn't have to be retrieved. For an aggregate
6873       // type, the default is 'tofrom'.
6874       CurMapTypes.emplace_back(adjustMapModifiersForPrivateClauses(
6875           CI, ElementType->isAggregateType() ? (OMP_MAP_TO | OMP_MAP_FROM)
6876                                              : OMP_MAP_TO));
6877     }
6878     // Every default map produces a single argument which is a target parameter.
6879     CurMapTypes.back() |= OMP_MAP_TARGET_PARAM;
6880   }
6881 };
6882 
6883 enum OpenMPOffloadingReservedDeviceIDs {
6884   /// \brief Device ID if the device was not defined, runtime should get it
6885   /// from environment variables in the spec.
6886   OMP_DEVICEID_UNDEF = -1,
6887 };
6888 } // anonymous namespace
6889 
6890 /// \brief Emit the arrays used to pass the captures and map information to the
6891 /// offloading runtime library. If there is no map or capture information,
6892 /// return nullptr by reference.
6893 static void
6894 emitOffloadingArrays(CodeGenFunction &CGF,
6895                      MappableExprsHandler::MapBaseValuesArrayTy &BasePointers,
6896                      MappableExprsHandler::MapValuesArrayTy &Pointers,
6897                      MappableExprsHandler::MapValuesArrayTy &Sizes,
6898                      MappableExprsHandler::MapFlagsArrayTy &MapTypes,
6899                      CGOpenMPRuntime::TargetDataInfo &Info) {
6900   auto &CGM = CGF.CGM;
6901   auto &Ctx = CGF.getContext();
6902 
6903   // Reset the array information.
6904   Info.clearArrayInfo();
6905   Info.NumberOfPtrs = BasePointers.size();
6906 
6907   if (Info.NumberOfPtrs) {
6908     // Detect if we have any capture size requiring runtime evaluation of the
6909     // size so that a constant array could be eventually used.
6910     bool hasRuntimeEvaluationCaptureSize = false;
6911     for (auto *S : Sizes)
6912       if (!isa<llvm::Constant>(S)) {
6913         hasRuntimeEvaluationCaptureSize = true;
6914         break;
6915       }
6916 
6917     llvm::APInt PointerNumAP(32, Info.NumberOfPtrs, /*isSigned=*/true);
6918     QualType PointerArrayType =
6919         Ctx.getConstantArrayType(Ctx.VoidPtrTy, PointerNumAP, ArrayType::Normal,
6920                                  /*IndexTypeQuals=*/0);
6921 
6922     Info.BasePointersArray =
6923         CGF.CreateMemTemp(PointerArrayType, ".offload_baseptrs").getPointer();
6924     Info.PointersArray =
6925         CGF.CreateMemTemp(PointerArrayType, ".offload_ptrs").getPointer();
6926 
6927     // If we don't have any VLA types or other types that require runtime
6928     // evaluation, we can use a constant array for the map sizes, otherwise we
6929     // need to fill up the arrays as we do for the pointers.
6930     if (hasRuntimeEvaluationCaptureSize) {
6931       QualType SizeArrayType = Ctx.getConstantArrayType(
6932           Ctx.getSizeType(), PointerNumAP, ArrayType::Normal,
6933           /*IndexTypeQuals=*/0);
6934       Info.SizesArray =
6935           CGF.CreateMemTemp(SizeArrayType, ".offload_sizes").getPointer();
6936     } else {
6937       // We expect all the sizes to be constant, so we collect them to create
6938       // a constant array.
6939       SmallVector<llvm::Constant *, 16> ConstSizes;
6940       for (auto S : Sizes)
6941         ConstSizes.push_back(cast<llvm::Constant>(S));
6942 
6943       auto *SizesArrayInit = llvm::ConstantArray::get(
6944           llvm::ArrayType::get(CGM.SizeTy, ConstSizes.size()), ConstSizes);
6945       auto *SizesArrayGbl = new llvm::GlobalVariable(
6946           CGM.getModule(), SizesArrayInit->getType(),
6947           /*isConstant=*/true, llvm::GlobalValue::PrivateLinkage,
6948           SizesArrayInit, ".offload_sizes");
6949       SizesArrayGbl->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
6950       Info.SizesArray = SizesArrayGbl;
6951     }
6952 
6953     // The map types are always constant so we don't need to generate code to
6954     // fill arrays. Instead, we create an array constant.
6955     llvm::Constant *MapTypesArrayInit =
6956         llvm::ConstantDataArray::get(CGF.Builder.getContext(), MapTypes);
6957     auto *MapTypesArrayGbl = new llvm::GlobalVariable(
6958         CGM.getModule(), MapTypesArrayInit->getType(),
6959         /*isConstant=*/true, llvm::GlobalValue::PrivateLinkage,
6960         MapTypesArrayInit, ".offload_maptypes");
6961     MapTypesArrayGbl->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
6962     Info.MapTypesArray = MapTypesArrayGbl;
6963 
6964     for (unsigned i = 0; i < Info.NumberOfPtrs; ++i) {
6965       llvm::Value *BPVal = *BasePointers[i];
6966       llvm::Value *BP = CGF.Builder.CreateConstInBoundsGEP2_32(
6967           llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs),
6968           Info.BasePointersArray, 0, i);
6969       BP = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
6970           BP, BPVal->getType()->getPointerTo(/*AddrSpace=*/0));
6971       Address BPAddr(BP, Ctx.getTypeAlignInChars(Ctx.VoidPtrTy));
6972       CGF.Builder.CreateStore(BPVal, BPAddr);
6973 
6974       if (Info.requiresDevicePointerInfo())
6975         if (auto *DevVD = BasePointers[i].getDevicePtrDecl())
6976           Info.CaptureDeviceAddrMap.insert(std::make_pair(DevVD, BPAddr));
6977 
6978       llvm::Value *PVal = Pointers[i];
6979       llvm::Value *P = CGF.Builder.CreateConstInBoundsGEP2_32(
6980           llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs),
6981           Info.PointersArray, 0, i);
6982       P = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
6983           P, PVal->getType()->getPointerTo(/*AddrSpace=*/0));
6984       Address PAddr(P, Ctx.getTypeAlignInChars(Ctx.VoidPtrTy));
6985       CGF.Builder.CreateStore(PVal, PAddr);
6986 
6987       if (hasRuntimeEvaluationCaptureSize) {
6988         llvm::Value *S = CGF.Builder.CreateConstInBoundsGEP2_32(
6989             llvm::ArrayType::get(CGM.SizeTy, Info.NumberOfPtrs),
6990             Info.SizesArray,
6991             /*Idx0=*/0,
6992             /*Idx1=*/i);
6993         Address SAddr(S, Ctx.getTypeAlignInChars(Ctx.getSizeType()));
6994         CGF.Builder.CreateStore(
6995             CGF.Builder.CreateIntCast(Sizes[i], CGM.SizeTy, /*isSigned=*/true),
6996             SAddr);
6997       }
6998     }
6999   }
7000 }
7001 /// \brief Emit the arguments to be passed to the runtime library based on the
7002 /// arrays of pointers, sizes and map types.
7003 static void emitOffloadingArraysArgument(
7004     CodeGenFunction &CGF, llvm::Value *&BasePointersArrayArg,
7005     llvm::Value *&PointersArrayArg, llvm::Value *&SizesArrayArg,
7006     llvm::Value *&MapTypesArrayArg, CGOpenMPRuntime::TargetDataInfo &Info) {
7007   auto &CGM = CGF.CGM;
7008   if (Info.NumberOfPtrs) {
7009     BasePointersArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32(
7010         llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs),
7011         Info.BasePointersArray,
7012         /*Idx0=*/0, /*Idx1=*/0);
7013     PointersArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32(
7014         llvm::ArrayType::get(CGM.VoidPtrTy, Info.NumberOfPtrs),
7015         Info.PointersArray,
7016         /*Idx0=*/0,
7017         /*Idx1=*/0);
7018     SizesArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32(
7019         llvm::ArrayType::get(CGM.SizeTy, Info.NumberOfPtrs), Info.SizesArray,
7020         /*Idx0=*/0, /*Idx1=*/0);
7021     MapTypesArrayArg = CGF.Builder.CreateConstInBoundsGEP2_32(
7022         llvm::ArrayType::get(CGM.Int64Ty, Info.NumberOfPtrs),
7023         Info.MapTypesArray,
7024         /*Idx0=*/0,
7025         /*Idx1=*/0);
7026   } else {
7027     BasePointersArrayArg = llvm::ConstantPointerNull::get(CGM.VoidPtrPtrTy);
7028     PointersArrayArg = llvm::ConstantPointerNull::get(CGM.VoidPtrPtrTy);
7029     SizesArrayArg = llvm::ConstantPointerNull::get(CGM.SizeTy->getPointerTo());
7030     MapTypesArrayArg =
7031         llvm::ConstantPointerNull::get(CGM.Int64Ty->getPointerTo());
7032   }
7033 }
7034 
7035 void CGOpenMPRuntime::emitTargetCall(CodeGenFunction &CGF,
7036                                      const OMPExecutableDirective &D,
7037                                      llvm::Value *OutlinedFn,
7038                                      llvm::Value *OutlinedFnID,
7039                                      const Expr *IfCond, const Expr *Device,
7040                                      ArrayRef<llvm::Value *> CapturedVars) {
7041   if (!CGF.HaveInsertPoint())
7042     return;
7043 
7044   assert(OutlinedFn && "Invalid outlined function!");
7045 
7046   // Fill up the arrays with all the captured variables.
7047   MappableExprsHandler::MapValuesArrayTy KernelArgs;
7048   MappableExprsHandler::MapBaseValuesArrayTy BasePointers;
7049   MappableExprsHandler::MapValuesArrayTy Pointers;
7050   MappableExprsHandler::MapValuesArrayTy Sizes;
7051   MappableExprsHandler::MapFlagsArrayTy MapTypes;
7052 
7053   MappableExprsHandler::MapBaseValuesArrayTy CurBasePointers;
7054   MappableExprsHandler::MapValuesArrayTy CurPointers;
7055   MappableExprsHandler::MapValuesArrayTy CurSizes;
7056   MappableExprsHandler::MapFlagsArrayTy CurMapTypes;
7057 
7058   // Get mappable expression information.
7059   MappableExprsHandler MEHandler(D, CGF);
7060 
7061   const CapturedStmt &CS = *cast<CapturedStmt>(D.getAssociatedStmt());
7062   auto RI = CS.getCapturedRecordDecl()->field_begin();
7063   auto CV = CapturedVars.begin();
7064   for (CapturedStmt::const_capture_iterator CI = CS.capture_begin(),
7065                                             CE = CS.capture_end();
7066        CI != CE; ++CI, ++RI, ++CV) {
7067     CurBasePointers.clear();
7068     CurPointers.clear();
7069     CurSizes.clear();
7070     CurMapTypes.clear();
7071 
7072     // VLA sizes are passed to the outlined region by copy and do not have map
7073     // information associated.
7074     if (CI->capturesVariableArrayType()) {
7075       CurBasePointers.push_back(*CV);
7076       CurPointers.push_back(*CV);
7077       CurSizes.push_back(CGF.getTypeSize(RI->getType()));
7078       // Copy to the device as an argument. No need to retrieve it.
7079       CurMapTypes.push_back(MappableExprsHandler::OMP_MAP_LITERAL |
7080                             MappableExprsHandler::OMP_MAP_TARGET_PARAM);
7081     } else {
7082       // If we have any information in the map clause, we use it, otherwise we
7083       // just do a default mapping.
7084       MEHandler.generateInfoForCapture(CI, *CV, CurBasePointers, CurPointers,
7085                                        CurSizes, CurMapTypes);
7086       if (CurBasePointers.empty())
7087         MEHandler.generateDefaultMapInfo(*CI, **RI, *CV, CurBasePointers,
7088                                          CurPointers, CurSizes, CurMapTypes);
7089     }
7090     // We expect to have at least an element of information for this capture.
7091     assert(!CurBasePointers.empty() && "Non-existing map pointer for capture!");
7092     assert(CurBasePointers.size() == CurPointers.size() &&
7093            CurBasePointers.size() == CurSizes.size() &&
7094            CurBasePointers.size() == CurMapTypes.size() &&
7095            "Inconsistent map information sizes!");
7096 
7097     // The kernel args are always the first elements of the base pointers
7098     // associated with a capture.
7099     KernelArgs.push_back(*CurBasePointers.front());
7100     // We need to append the results of this capture to what we already have.
7101     BasePointers.append(CurBasePointers.begin(), CurBasePointers.end());
7102     Pointers.append(CurPointers.begin(), CurPointers.end());
7103     Sizes.append(CurSizes.begin(), CurSizes.end());
7104     MapTypes.append(CurMapTypes.begin(), CurMapTypes.end());
7105   }
7106 
7107   // Fill up the pointer arrays and transfer execution to the device.
7108   auto &&ThenGen = [this, &BasePointers, &Pointers, &Sizes, &MapTypes, Device,
7109                     OutlinedFn, OutlinedFnID, &D,
7110                     &KernelArgs](CodeGenFunction &CGF, PrePostActionTy &) {
7111     auto &RT = CGF.CGM.getOpenMPRuntime();
7112     // Emit the offloading arrays.
7113     TargetDataInfo Info;
7114     emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info);
7115     emitOffloadingArraysArgument(CGF, Info.BasePointersArray,
7116                                  Info.PointersArray, Info.SizesArray,
7117                                  Info.MapTypesArray, Info);
7118 
7119     // On top of the arrays that were filled up, the target offloading call
7120     // takes as arguments the device id as well as the host pointer. The host
7121     // pointer is used by the runtime library to identify the current target
7122     // region, so it only has to be unique and not necessarily point to
7123     // anything. It could be the pointer to the outlined function that
7124     // implements the target region, but we aren't using that so that the
7125     // compiler doesn't need to keep that, and could therefore inline the host
7126     // function if proven worthwhile during optimization.
7127 
7128     // From this point on, we need to have an ID of the target region defined.
7129     assert(OutlinedFnID && "Invalid outlined function ID!");
7130 
7131     // Emit device ID if any.
7132     llvm::Value *DeviceID;
7133     if (Device) {
7134       DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device),
7135                                            CGF.Int64Ty, /*isSigned=*/true);
7136     } else {
7137       DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF);
7138     }
7139 
7140     // Emit the number of elements in the offloading arrays.
7141     llvm::Value *PointerNum = CGF.Builder.getInt32(BasePointers.size());
7142 
7143     // Return value of the runtime offloading call.
7144     llvm::Value *Return;
7145 
7146     auto *NumTeams = emitNumTeamsForTargetDirective(RT, CGF, D);
7147     auto *NumThreads = emitNumThreadsForTargetDirective(RT, CGF, D);
7148 
7149     bool HasNowait = D.hasClausesOfKind<OMPNowaitClause>();
7150     // The target region is an outlined function launched by the runtime
7151     // via calls __tgt_target() or __tgt_target_teams().
7152     //
7153     // __tgt_target() launches a target region with one team and one thread,
7154     // executing a serial region.  This master thread may in turn launch
7155     // more threads within its team upon encountering a parallel region,
7156     // however, no additional teams can be launched on the device.
7157     //
7158     // __tgt_target_teams() launches a target region with one or more teams,
7159     // each with one or more threads.  This call is required for target
7160     // constructs such as:
7161     //  'target teams'
7162     //  'target' / 'teams'
7163     //  'target teams distribute parallel for'
7164     //  'target parallel'
7165     // and so on.
7166     //
7167     // Note that on the host and CPU targets, the runtime implementation of
7168     // these calls simply call the outlined function without forking threads.
7169     // The outlined functions themselves have runtime calls to
7170     // __kmpc_fork_teams() and __kmpc_fork() for this purpose, codegen'd by
7171     // the compiler in emitTeamsCall() and emitParallelCall().
7172     //
7173     // In contrast, on the NVPTX target, the implementation of
7174     // __tgt_target_teams() launches a GPU kernel with the requested number
7175     // of teams and threads so no additional calls to the runtime are required.
7176     if (NumTeams) {
7177       // If we have NumTeams defined this means that we have an enclosed teams
7178       // region. Therefore we also expect to have NumThreads defined. These two
7179       // values should be defined in the presence of a teams directive,
7180       // regardless of having any clauses associated. If the user is using teams
7181       // but no clauses, these two values will be the default that should be
7182       // passed to the runtime library - a 32-bit integer with the value zero.
7183       assert(NumThreads && "Thread limit expression should be available along "
7184                            "with number of teams.");
7185       llvm::Value *OffloadingArgs[] = {
7186           DeviceID,           OutlinedFnID,
7187           PointerNum,         Info.BasePointersArray,
7188           Info.PointersArray, Info.SizesArray,
7189           Info.MapTypesArray, NumTeams,
7190           NumThreads};
7191       Return = CGF.EmitRuntimeCall(
7192           RT.createRuntimeFunction(HasNowait ? OMPRTL__tgt_target_teams_nowait
7193                                              : OMPRTL__tgt_target_teams),
7194           OffloadingArgs);
7195     } else {
7196       llvm::Value *OffloadingArgs[] = {
7197           DeviceID,           OutlinedFnID,
7198           PointerNum,         Info.BasePointersArray,
7199           Info.PointersArray, Info.SizesArray,
7200           Info.MapTypesArray};
7201       Return = CGF.EmitRuntimeCall(
7202           RT.createRuntimeFunction(HasNowait ? OMPRTL__tgt_target_nowait
7203                                              : OMPRTL__tgt_target),
7204           OffloadingArgs);
7205     }
7206 
7207     // Check the error code and execute the host version if required.
7208     llvm::BasicBlock *OffloadFailedBlock =
7209         CGF.createBasicBlock("omp_offload.failed");
7210     llvm::BasicBlock *OffloadContBlock =
7211         CGF.createBasicBlock("omp_offload.cont");
7212     llvm::Value *Failed = CGF.Builder.CreateIsNotNull(Return);
7213     CGF.Builder.CreateCondBr(Failed, OffloadFailedBlock, OffloadContBlock);
7214 
7215     CGF.EmitBlock(OffloadFailedBlock);
7216     emitOutlinedFunctionCall(CGF, D.getLocStart(), OutlinedFn, KernelArgs);
7217     CGF.EmitBranch(OffloadContBlock);
7218 
7219     CGF.EmitBlock(OffloadContBlock, /*IsFinished=*/true);
7220   };
7221 
7222   // Notify that the host version must be executed.
7223   auto &&ElseGen = [this, &D, OutlinedFn, &KernelArgs](CodeGenFunction &CGF,
7224                                                       PrePostActionTy &) {
7225     emitOutlinedFunctionCall(CGF, D.getLocStart(), OutlinedFn,
7226                              KernelArgs);
7227   };
7228 
7229   // If we have a target function ID it means that we need to support
7230   // offloading, otherwise, just execute on the host. We need to execute on host
7231   // regardless of the conditional in the if clause if, e.g., the user do not
7232   // specify target triples.
7233   if (OutlinedFnID) {
7234     if (IfCond)
7235       emitOMPIfClause(CGF, IfCond, ThenGen, ElseGen);
7236     else {
7237       RegionCodeGenTy ThenRCG(ThenGen);
7238       ThenRCG(CGF);
7239     }
7240   } else {
7241     RegionCodeGenTy ElseRCG(ElseGen);
7242     ElseRCG(CGF);
7243   }
7244 }
7245 
7246 void CGOpenMPRuntime::scanForTargetRegionsFunctions(const Stmt *S,
7247                                                     StringRef ParentName) {
7248   if (!S)
7249     return;
7250 
7251   // Codegen OMP target directives that offload compute to the device.
7252   bool requiresDeviceCodegen =
7253       isa<OMPExecutableDirective>(S) &&
7254       isOpenMPTargetExecutionDirective(
7255           cast<OMPExecutableDirective>(S)->getDirectiveKind());
7256 
7257   if (requiresDeviceCodegen) {
7258     auto &E = *cast<OMPExecutableDirective>(S);
7259     unsigned DeviceID;
7260     unsigned FileID;
7261     unsigned Line;
7262     getTargetEntryUniqueInfo(CGM.getContext(), E.getLocStart(), DeviceID,
7263                              FileID, Line);
7264 
7265     // Is this a target region that should not be emitted as an entry point? If
7266     // so just signal we are done with this target region.
7267     if (!OffloadEntriesInfoManager.hasTargetRegionEntryInfo(DeviceID, FileID,
7268                                                             ParentName, Line))
7269       return;
7270 
7271     switch (S->getStmtClass()) {
7272     case Stmt::OMPTargetDirectiveClass:
7273       CodeGenFunction::EmitOMPTargetDeviceFunction(
7274           CGM, ParentName, cast<OMPTargetDirective>(*S));
7275       break;
7276     case Stmt::OMPTargetParallelDirectiveClass:
7277       CodeGenFunction::EmitOMPTargetParallelDeviceFunction(
7278           CGM, ParentName, cast<OMPTargetParallelDirective>(*S));
7279       break;
7280     case Stmt::OMPTargetTeamsDirectiveClass:
7281       CodeGenFunction::EmitOMPTargetTeamsDeviceFunction(
7282           CGM, ParentName, cast<OMPTargetTeamsDirective>(*S));
7283       break;
7284     case Stmt::OMPTargetTeamsDistributeDirectiveClass:
7285       CodeGenFunction::EmitOMPTargetTeamsDistributeDeviceFunction(
7286           CGM, ParentName, cast<OMPTargetTeamsDistributeDirective>(*S));
7287       break;
7288     case Stmt::OMPTargetTeamsDistributeSimdDirectiveClass:
7289       CodeGenFunction::EmitOMPTargetTeamsDistributeSimdDeviceFunction(
7290           CGM, ParentName, cast<OMPTargetTeamsDistributeSimdDirective>(*S));
7291       break;
7292     case Stmt::OMPTargetParallelForDirectiveClass:
7293       CodeGenFunction::EmitOMPTargetParallelForDeviceFunction(
7294           CGM, ParentName, cast<OMPTargetParallelForDirective>(*S));
7295       break;
7296     case Stmt::OMPTargetParallelForSimdDirectiveClass:
7297       CodeGenFunction::EmitOMPTargetParallelForSimdDeviceFunction(
7298           CGM, ParentName, cast<OMPTargetParallelForSimdDirective>(*S));
7299       break;
7300     case Stmt::OMPTargetSimdDirectiveClass:
7301       CodeGenFunction::EmitOMPTargetSimdDeviceFunction(
7302           CGM, ParentName, cast<OMPTargetSimdDirective>(*S));
7303       break;
7304     case Stmt::OMPTargetTeamsDistributeParallelForDirectiveClass:
7305       CodeGenFunction::EmitOMPTargetTeamsDistributeParallelForDeviceFunction(
7306           CGM, ParentName,
7307           cast<OMPTargetTeamsDistributeParallelForDirective>(*S));
7308       break;
7309     default:
7310       llvm_unreachable("Unknown target directive for OpenMP device codegen.");
7311     }
7312     return;
7313   }
7314 
7315   if (const OMPExecutableDirective *E = dyn_cast<OMPExecutableDirective>(S)) {
7316     if (!E->hasAssociatedStmt())
7317       return;
7318 
7319     scanForTargetRegionsFunctions(
7320         cast<CapturedStmt>(E->getAssociatedStmt())->getCapturedStmt(),
7321         ParentName);
7322     return;
7323   }
7324 
7325   // If this is a lambda function, look into its body.
7326   if (auto *L = dyn_cast<LambdaExpr>(S))
7327     S = L->getBody();
7328 
7329   // Keep looking for target regions recursively.
7330   for (auto *II : S->children())
7331     scanForTargetRegionsFunctions(II, ParentName);
7332 }
7333 
7334 bool CGOpenMPRuntime::emitTargetFunctions(GlobalDecl GD) {
7335   auto &FD = *cast<FunctionDecl>(GD.getDecl());
7336 
7337   // If emitting code for the host, we do not process FD here. Instead we do
7338   // the normal code generation.
7339   if (!CGM.getLangOpts().OpenMPIsDevice)
7340     return false;
7341 
7342   // Try to detect target regions in the function.
7343   scanForTargetRegionsFunctions(FD.getBody(), CGM.getMangledName(GD));
7344 
7345   // We should not emit any function other that the ones created during the
7346   // scanning. Therefore, we signal that this function is completely dealt
7347   // with.
7348   return true;
7349 }
7350 
7351 bool CGOpenMPRuntime::emitTargetGlobalVariable(GlobalDecl GD) {
7352   if (!CGM.getLangOpts().OpenMPIsDevice)
7353     return false;
7354 
7355   // Check if there are Ctors/Dtors in this declaration and look for target
7356   // regions in it. We use the complete variant to produce the kernel name
7357   // mangling.
7358   QualType RDTy = cast<VarDecl>(GD.getDecl())->getType();
7359   if (auto *RD = RDTy->getBaseElementTypeUnsafe()->getAsCXXRecordDecl()) {
7360     for (auto *Ctor : RD->ctors()) {
7361       StringRef ParentName =
7362           CGM.getMangledName(GlobalDecl(Ctor, Ctor_Complete));
7363       scanForTargetRegionsFunctions(Ctor->getBody(), ParentName);
7364     }
7365     auto *Dtor = RD->getDestructor();
7366     if (Dtor) {
7367       StringRef ParentName =
7368           CGM.getMangledName(GlobalDecl(Dtor, Dtor_Complete));
7369       scanForTargetRegionsFunctions(Dtor->getBody(), ParentName);
7370     }
7371   }
7372 
7373   // If we are in target mode, we do not emit any global (declare target is not
7374   // implemented yet). Therefore we signal that GD was processed in this case.
7375   return true;
7376 }
7377 
7378 bool CGOpenMPRuntime::emitTargetGlobal(GlobalDecl GD) {
7379   auto *VD = GD.getDecl();
7380   if (isa<FunctionDecl>(VD))
7381     return emitTargetFunctions(GD);
7382 
7383   return emitTargetGlobalVariable(GD);
7384 }
7385 
7386 llvm::Function *CGOpenMPRuntime::emitRegistrationFunction() {
7387   // If we have offloading in the current module, we need to emit the entries
7388   // now and register the offloading descriptor.
7389   createOffloadEntriesAndInfoMetadata();
7390 
7391   // Create and register the offloading binary descriptors. This is the main
7392   // entity that captures all the information about offloading in the current
7393   // compilation unit.
7394   return createOffloadingBinaryDescriptorRegistration();
7395 }
7396 
7397 void CGOpenMPRuntime::emitTeamsCall(CodeGenFunction &CGF,
7398                                     const OMPExecutableDirective &D,
7399                                     SourceLocation Loc,
7400                                     llvm::Value *OutlinedFn,
7401                                     ArrayRef<llvm::Value *> CapturedVars) {
7402   if (!CGF.HaveInsertPoint())
7403     return;
7404 
7405   auto *RTLoc = emitUpdateLocation(CGF, Loc);
7406   CodeGenFunction::RunCleanupsScope Scope(CGF);
7407 
7408   // Build call __kmpc_fork_teams(loc, n, microtask, var1, .., varn);
7409   llvm::Value *Args[] = {
7410       RTLoc,
7411       CGF.Builder.getInt32(CapturedVars.size()), // Number of captured vars
7412       CGF.Builder.CreateBitCast(OutlinedFn, getKmpc_MicroPointerTy())};
7413   llvm::SmallVector<llvm::Value *, 16> RealArgs;
7414   RealArgs.append(std::begin(Args), std::end(Args));
7415   RealArgs.append(CapturedVars.begin(), CapturedVars.end());
7416 
7417   auto RTLFn = createRuntimeFunction(OMPRTL__kmpc_fork_teams);
7418   CGF.EmitRuntimeCall(RTLFn, RealArgs);
7419 }
7420 
7421 void CGOpenMPRuntime::emitNumTeamsClause(CodeGenFunction &CGF,
7422                                          const Expr *NumTeams,
7423                                          const Expr *ThreadLimit,
7424                                          SourceLocation Loc) {
7425   if (!CGF.HaveInsertPoint())
7426     return;
7427 
7428   auto *RTLoc = emitUpdateLocation(CGF, Loc);
7429 
7430   llvm::Value *NumTeamsVal =
7431       (NumTeams)
7432           ? CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(NumTeams),
7433                                       CGF.CGM.Int32Ty, /* isSigned = */ true)
7434           : CGF.Builder.getInt32(0);
7435 
7436   llvm::Value *ThreadLimitVal =
7437       (ThreadLimit)
7438           ? CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(ThreadLimit),
7439                                       CGF.CGM.Int32Ty, /* isSigned = */ true)
7440           : CGF.Builder.getInt32(0);
7441 
7442   // Build call __kmpc_push_num_teamss(&loc, global_tid, num_teams, thread_limit)
7443   llvm::Value *PushNumTeamsArgs[] = {RTLoc, getThreadID(CGF, Loc), NumTeamsVal,
7444                                      ThreadLimitVal};
7445   CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__kmpc_push_num_teams),
7446                       PushNumTeamsArgs);
7447 }
7448 
7449 void CGOpenMPRuntime::emitTargetDataCalls(
7450     CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond,
7451     const Expr *Device, const RegionCodeGenTy &CodeGen, TargetDataInfo &Info) {
7452   if (!CGF.HaveInsertPoint())
7453     return;
7454 
7455   // Action used to replace the default codegen action and turn privatization
7456   // off.
7457   PrePostActionTy NoPrivAction;
7458 
7459   // Generate the code for the opening of the data environment. Capture all the
7460   // arguments of the runtime call by reference because they are used in the
7461   // closing of the region.
7462   auto &&BeginThenGen = [this, &D, Device, &Info,
7463                          &CodeGen](CodeGenFunction &CGF, PrePostActionTy &) {
7464     // Fill up the arrays with all the mapped variables.
7465     MappableExprsHandler::MapBaseValuesArrayTy BasePointers;
7466     MappableExprsHandler::MapValuesArrayTy Pointers;
7467     MappableExprsHandler::MapValuesArrayTy Sizes;
7468     MappableExprsHandler::MapFlagsArrayTy MapTypes;
7469 
7470     // Get map clause information.
7471     MappableExprsHandler MCHandler(D, CGF);
7472     MCHandler.generateAllInfo(BasePointers, Pointers, Sizes, MapTypes);
7473 
7474     // Fill up the arrays and create the arguments.
7475     emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info);
7476 
7477     llvm::Value *BasePointersArrayArg = nullptr;
7478     llvm::Value *PointersArrayArg = nullptr;
7479     llvm::Value *SizesArrayArg = nullptr;
7480     llvm::Value *MapTypesArrayArg = nullptr;
7481     emitOffloadingArraysArgument(CGF, BasePointersArrayArg, PointersArrayArg,
7482                                  SizesArrayArg, MapTypesArrayArg, Info);
7483 
7484     // Emit device ID if any.
7485     llvm::Value *DeviceID = nullptr;
7486     if (Device) {
7487       DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device),
7488                                            CGF.Int64Ty, /*isSigned=*/true);
7489     } else {
7490       DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF);
7491     }
7492 
7493     // Emit the number of elements in the offloading arrays.
7494     auto *PointerNum = CGF.Builder.getInt32(Info.NumberOfPtrs);
7495 
7496     llvm::Value *OffloadingArgs[] = {
7497         DeviceID,         PointerNum,    BasePointersArrayArg,
7498         PointersArrayArg, SizesArrayArg, MapTypesArrayArg};
7499     CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_target_data_begin),
7500                         OffloadingArgs);
7501 
7502     // If device pointer privatization is required, emit the body of the region
7503     // here. It will have to be duplicated: with and without privatization.
7504     if (!Info.CaptureDeviceAddrMap.empty())
7505       CodeGen(CGF);
7506   };
7507 
7508   // Generate code for the closing of the data region.
7509   auto &&EndThenGen = [this, Device, &Info](CodeGenFunction &CGF,
7510                                             PrePostActionTy &) {
7511     assert(Info.isValid() && "Invalid data environment closing arguments.");
7512 
7513     llvm::Value *BasePointersArrayArg = nullptr;
7514     llvm::Value *PointersArrayArg = nullptr;
7515     llvm::Value *SizesArrayArg = nullptr;
7516     llvm::Value *MapTypesArrayArg = nullptr;
7517     emitOffloadingArraysArgument(CGF, BasePointersArrayArg, PointersArrayArg,
7518                                  SizesArrayArg, MapTypesArrayArg, Info);
7519 
7520     // Emit device ID if any.
7521     llvm::Value *DeviceID = nullptr;
7522     if (Device) {
7523       DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device),
7524                                            CGF.Int64Ty, /*isSigned=*/true);
7525     } else {
7526       DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF);
7527     }
7528 
7529     // Emit the number of elements in the offloading arrays.
7530     auto *PointerNum = CGF.Builder.getInt32(Info.NumberOfPtrs);
7531 
7532     llvm::Value *OffloadingArgs[] = {
7533         DeviceID,         PointerNum,    BasePointersArrayArg,
7534         PointersArrayArg, SizesArrayArg, MapTypesArrayArg};
7535     CGF.EmitRuntimeCall(createRuntimeFunction(OMPRTL__tgt_target_data_end),
7536                         OffloadingArgs);
7537   };
7538 
7539   // If we need device pointer privatization, we need to emit the body of the
7540   // region with no privatization in the 'else' branch of the conditional.
7541   // Otherwise, we don't have to do anything.
7542   auto &&BeginElseGen = [&Info, &CodeGen, &NoPrivAction](CodeGenFunction &CGF,
7543                                                          PrePostActionTy &) {
7544     if (!Info.CaptureDeviceAddrMap.empty()) {
7545       CodeGen.setAction(NoPrivAction);
7546       CodeGen(CGF);
7547     }
7548   };
7549 
7550   // We don't have to do anything to close the region if the if clause evaluates
7551   // to false.
7552   auto &&EndElseGen = [](CodeGenFunction &CGF, PrePostActionTy &) {};
7553 
7554   if (IfCond) {
7555     emitOMPIfClause(CGF, IfCond, BeginThenGen, BeginElseGen);
7556   } else {
7557     RegionCodeGenTy RCG(BeginThenGen);
7558     RCG(CGF);
7559   }
7560 
7561   // If we don't require privatization of device pointers, we emit the body in
7562   // between the runtime calls. This avoids duplicating the body code.
7563   if (Info.CaptureDeviceAddrMap.empty()) {
7564     CodeGen.setAction(NoPrivAction);
7565     CodeGen(CGF);
7566   }
7567 
7568   if (IfCond) {
7569     emitOMPIfClause(CGF, IfCond, EndThenGen, EndElseGen);
7570   } else {
7571     RegionCodeGenTy RCG(EndThenGen);
7572     RCG(CGF);
7573   }
7574 }
7575 
7576 void CGOpenMPRuntime::emitTargetDataStandAloneCall(
7577     CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond,
7578     const Expr *Device) {
7579   if (!CGF.HaveInsertPoint())
7580     return;
7581 
7582   assert((isa<OMPTargetEnterDataDirective>(D) ||
7583           isa<OMPTargetExitDataDirective>(D) ||
7584           isa<OMPTargetUpdateDirective>(D)) &&
7585          "Expecting either target enter, exit data, or update directives.");
7586 
7587   CodeGenFunction::OMPTargetDataInfo InputInfo;
7588   llvm::Value *MapTypesArray = nullptr;
7589   // Generate the code for the opening of the data environment.
7590   auto &&ThenGen = [this, &D, Device, &InputInfo,
7591                     &MapTypesArray](CodeGenFunction &CGF, PrePostActionTy &) {
7592     // Emit device ID if any.
7593     llvm::Value *DeviceID = nullptr;
7594     if (Device) {
7595       DeviceID = CGF.Builder.CreateIntCast(CGF.EmitScalarExpr(Device),
7596                                            CGF.Int64Ty, /*isSigned=*/true);
7597     } else {
7598       DeviceID = CGF.Builder.getInt64(OMP_DEVICEID_UNDEF);
7599     }
7600 
7601     // Emit the number of elements in the offloading arrays.
7602     llvm::Constant *PointerNum =
7603         CGF.Builder.getInt32(InputInfo.NumberOfTargetItems);
7604 
7605     llvm::Value *OffloadingArgs[] = {DeviceID,
7606                                      PointerNum,
7607                                      InputInfo.BasePointersArray.getPointer(),
7608                                      InputInfo.PointersArray.getPointer(),
7609                                      InputInfo.SizesArray.getPointer(),
7610                                      MapTypesArray};
7611 
7612     // Select the right runtime function call for each expected standalone
7613     // directive.
7614     const bool HasNowait = D.hasClausesOfKind<OMPNowaitClause>();
7615     OpenMPRTLFunction RTLFn;
7616     switch (D.getDirectiveKind()) {
7617     default:
7618       llvm_unreachable("Unexpected standalone target data directive.");
7619       break;
7620     case OMPD_target_enter_data:
7621       RTLFn = HasNowait ? OMPRTL__tgt_target_data_begin_nowait
7622                         : OMPRTL__tgt_target_data_begin;
7623       break;
7624     case OMPD_target_exit_data:
7625       RTLFn = HasNowait ? OMPRTL__tgt_target_data_end_nowait
7626                         : OMPRTL__tgt_target_data_end;
7627       break;
7628     case OMPD_target_update:
7629       RTLFn = HasNowait ? OMPRTL__tgt_target_data_update_nowait
7630                         : OMPRTL__tgt_target_data_update;
7631       break;
7632     }
7633     CGF.EmitRuntimeCall(createRuntimeFunction(RTLFn), OffloadingArgs);
7634   };
7635 
7636   auto &&TargetThenGen = [this, &ThenGen, &D, &InputInfo, &MapTypesArray](
7637                              CodeGenFunction &CGF, PrePostActionTy &) {
7638     // Fill up the arrays with all the mapped variables.
7639     MappableExprsHandler::MapBaseValuesArrayTy BasePointers;
7640     MappableExprsHandler::MapValuesArrayTy Pointers;
7641     MappableExprsHandler::MapValuesArrayTy Sizes;
7642     MappableExprsHandler::MapFlagsArrayTy MapTypes;
7643 
7644     // Get map clause information.
7645     MappableExprsHandler MEHandler(D, CGF);
7646     MEHandler.generateAllInfo(BasePointers, Pointers, Sizes, MapTypes);
7647 
7648     TargetDataInfo Info;
7649     // Fill up the arrays and create the arguments.
7650     emitOffloadingArrays(CGF, BasePointers, Pointers, Sizes, MapTypes, Info);
7651     emitOffloadingArraysArgument(CGF, Info.BasePointersArray,
7652                                  Info.PointersArray, Info.SizesArray,
7653                                  Info.MapTypesArray, Info);
7654     InputInfo.NumberOfTargetItems = Info.NumberOfPtrs;
7655     InputInfo.BasePointersArray =
7656         Address(Info.BasePointersArray, CGM.getPointerAlign());
7657     InputInfo.PointersArray =
7658         Address(Info.PointersArray, CGM.getPointerAlign());
7659     InputInfo.SizesArray =
7660         Address(Info.SizesArray, CGM.getPointerAlign());
7661     MapTypesArray = Info.MapTypesArray;
7662     if (D.hasClausesOfKind<OMPDependClause>())
7663       CGF.EmitOMPTargetTaskBasedDirective(D, ThenGen, InputInfo);
7664     else
7665       emitInlinedDirective(CGF, OMPD_target_update, ThenGen);
7666   };
7667 
7668   if (IfCond)
7669     emitOMPIfClause(CGF, IfCond, TargetThenGen,
7670                     [](CodeGenFunction &CGF, PrePostActionTy &) {});
7671   else {
7672     RegionCodeGenTy ThenRCG(TargetThenGen);
7673     ThenRCG(CGF);
7674   }
7675 }
7676 
7677 namespace {
7678   /// Kind of parameter in a function with 'declare simd' directive.
7679   enum ParamKindTy { LinearWithVarStride, Linear, Uniform, Vector };
7680   /// Attribute set of the parameter.
7681   struct ParamAttrTy {
7682     ParamKindTy Kind = Vector;
7683     llvm::APSInt StrideOrArg;
7684     llvm::APSInt Alignment;
7685   };
7686 } // namespace
7687 
7688 static unsigned evaluateCDTSize(const FunctionDecl *FD,
7689                                 ArrayRef<ParamAttrTy> ParamAttrs) {
7690   // Every vector variant of a SIMD-enabled function has a vector length (VLEN).
7691   // If OpenMP clause "simdlen" is used, the VLEN is the value of the argument
7692   // of that clause. The VLEN value must be power of 2.
7693   // In other case the notion of the function`s "characteristic data type" (CDT)
7694   // is used to compute the vector length.
7695   // CDT is defined in the following order:
7696   //   a) For non-void function, the CDT is the return type.
7697   //   b) If the function has any non-uniform, non-linear parameters, then the
7698   //   CDT is the type of the first such parameter.
7699   //   c) If the CDT determined by a) or b) above is struct, union, or class
7700   //   type which is pass-by-value (except for the type that maps to the
7701   //   built-in complex data type), the characteristic data type is int.
7702   //   d) If none of the above three cases is applicable, the CDT is int.
7703   // The VLEN is then determined based on the CDT and the size of vector
7704   // register of that ISA for which current vector version is generated. The
7705   // VLEN is computed using the formula below:
7706   //   VLEN  = sizeof(vector_register) / sizeof(CDT),
7707   // where vector register size specified in section 3.2.1 Registers and the
7708   // Stack Frame of original AMD64 ABI document.
7709   QualType RetType = FD->getReturnType();
7710   if (RetType.isNull())
7711     return 0;
7712   ASTContext &C = FD->getASTContext();
7713   QualType CDT;
7714   if (!RetType.isNull() && !RetType->isVoidType())
7715     CDT = RetType;
7716   else {
7717     unsigned Offset = 0;
7718     if (auto *MD = dyn_cast<CXXMethodDecl>(FD)) {
7719       if (ParamAttrs[Offset].Kind == Vector)
7720         CDT = C.getPointerType(C.getRecordType(MD->getParent()));
7721       ++Offset;
7722     }
7723     if (CDT.isNull()) {
7724       for (unsigned I = 0, E = FD->getNumParams(); I < E; ++I) {
7725         if (ParamAttrs[I + Offset].Kind == Vector) {
7726           CDT = FD->getParamDecl(I)->getType();
7727           break;
7728         }
7729       }
7730     }
7731   }
7732   if (CDT.isNull())
7733     CDT = C.IntTy;
7734   CDT = CDT->getCanonicalTypeUnqualified();
7735   if (CDT->isRecordType() || CDT->isUnionType())
7736     CDT = C.IntTy;
7737   return C.getTypeSize(CDT);
7738 }
7739 
7740 static void
7741 emitX86DeclareSimdFunction(const FunctionDecl *FD, llvm::Function *Fn,
7742                            const llvm::APSInt &VLENVal,
7743                            ArrayRef<ParamAttrTy> ParamAttrs,
7744                            OMPDeclareSimdDeclAttr::BranchStateTy State) {
7745   struct ISADataTy {
7746     char ISA;
7747     unsigned VecRegSize;
7748   };
7749   ISADataTy ISAData[] = {
7750       {
7751           'b', 128
7752       }, // SSE
7753       {
7754           'c', 256
7755       }, // AVX
7756       {
7757           'd', 256
7758       }, // AVX2
7759       {
7760           'e', 512
7761       }, // AVX512
7762   };
7763   llvm::SmallVector<char, 2> Masked;
7764   switch (State) {
7765   case OMPDeclareSimdDeclAttr::BS_Undefined:
7766     Masked.push_back('N');
7767     Masked.push_back('M');
7768     break;
7769   case OMPDeclareSimdDeclAttr::BS_Notinbranch:
7770     Masked.push_back('N');
7771     break;
7772   case OMPDeclareSimdDeclAttr::BS_Inbranch:
7773     Masked.push_back('M');
7774     break;
7775   }
7776   for (auto Mask : Masked) {
7777     for (auto &Data : ISAData) {
7778       SmallString<256> Buffer;
7779       llvm::raw_svector_ostream Out(Buffer);
7780       Out << "_ZGV" << Data.ISA << Mask;
7781       if (!VLENVal) {
7782         Out << llvm::APSInt::getUnsigned(Data.VecRegSize /
7783                                          evaluateCDTSize(FD, ParamAttrs));
7784       } else
7785         Out << VLENVal;
7786       for (auto &ParamAttr : ParamAttrs) {
7787         switch (ParamAttr.Kind){
7788         case LinearWithVarStride:
7789           Out << 's' << ParamAttr.StrideOrArg;
7790           break;
7791         case Linear:
7792           Out << 'l';
7793           if (!!ParamAttr.StrideOrArg)
7794             Out << ParamAttr.StrideOrArg;
7795           break;
7796         case Uniform:
7797           Out << 'u';
7798           break;
7799         case Vector:
7800           Out << 'v';
7801           break;
7802         }
7803         if (!!ParamAttr.Alignment)
7804           Out << 'a' << ParamAttr.Alignment;
7805       }
7806       Out << '_' << Fn->getName();
7807       Fn->addFnAttr(Out.str());
7808     }
7809   }
7810 }
7811 
7812 void CGOpenMPRuntime::emitDeclareSimdFunction(const FunctionDecl *FD,
7813                                               llvm::Function *Fn) {
7814   ASTContext &C = CGM.getContext();
7815   FD = FD->getCanonicalDecl();
7816   // Map params to their positions in function decl.
7817   llvm::DenseMap<const Decl *, unsigned> ParamPositions;
7818   if (isa<CXXMethodDecl>(FD))
7819     ParamPositions.insert({FD, 0});
7820   unsigned ParamPos = ParamPositions.size();
7821   for (auto *P : FD->parameters()) {
7822     ParamPositions.insert({P->getCanonicalDecl(), ParamPos});
7823     ++ParamPos;
7824   }
7825   for (auto *Attr : FD->specific_attrs<OMPDeclareSimdDeclAttr>()) {
7826     llvm::SmallVector<ParamAttrTy, 8> ParamAttrs(ParamPositions.size());
7827     // Mark uniform parameters.
7828     for (auto *E : Attr->uniforms()) {
7829       E = E->IgnoreParenImpCasts();
7830       unsigned Pos;
7831       if (isa<CXXThisExpr>(E))
7832         Pos = ParamPositions[FD];
7833       else {
7834         auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl())
7835                         ->getCanonicalDecl();
7836         Pos = ParamPositions[PVD];
7837       }
7838       ParamAttrs[Pos].Kind = Uniform;
7839     }
7840     // Get alignment info.
7841     auto NI = Attr->alignments_begin();
7842     for (auto *E : Attr->aligneds()) {
7843       E = E->IgnoreParenImpCasts();
7844       unsigned Pos;
7845       QualType ParmTy;
7846       if (isa<CXXThisExpr>(E)) {
7847         Pos = ParamPositions[FD];
7848         ParmTy = E->getType();
7849       } else {
7850         auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl())
7851                         ->getCanonicalDecl();
7852         Pos = ParamPositions[PVD];
7853         ParmTy = PVD->getType();
7854       }
7855       ParamAttrs[Pos].Alignment =
7856           (*NI) ? (*NI)->EvaluateKnownConstInt(C)
7857                 : llvm::APSInt::getUnsigned(
7858                       C.toCharUnitsFromBits(C.getOpenMPDefaultSimdAlign(ParmTy))
7859                           .getQuantity());
7860       ++NI;
7861     }
7862     // Mark linear parameters.
7863     auto SI = Attr->steps_begin();
7864     auto MI = Attr->modifiers_begin();
7865     for (auto *E : Attr->linears()) {
7866       E = E->IgnoreParenImpCasts();
7867       unsigned Pos;
7868       if (isa<CXXThisExpr>(E))
7869         Pos = ParamPositions[FD];
7870       else {
7871         auto *PVD = cast<ParmVarDecl>(cast<DeclRefExpr>(E)->getDecl())
7872                         ->getCanonicalDecl();
7873         Pos = ParamPositions[PVD];
7874       }
7875       auto &ParamAttr = ParamAttrs[Pos];
7876       ParamAttr.Kind = Linear;
7877       if (*SI) {
7878         if (!(*SI)->EvaluateAsInt(ParamAttr.StrideOrArg, C,
7879                                   Expr::SE_AllowSideEffects)) {
7880           if (auto *DRE = cast<DeclRefExpr>((*SI)->IgnoreParenImpCasts())) {
7881             if (auto *StridePVD = cast<ParmVarDecl>(DRE->getDecl())) {
7882               ParamAttr.Kind = LinearWithVarStride;
7883               ParamAttr.StrideOrArg = llvm::APSInt::getUnsigned(
7884                   ParamPositions[StridePVD->getCanonicalDecl()]);
7885             }
7886           }
7887         }
7888       }
7889       ++SI;
7890       ++MI;
7891     }
7892     llvm::APSInt VLENVal;
7893     if (const Expr *VLEN = Attr->getSimdlen())
7894       VLENVal = VLEN->EvaluateKnownConstInt(C);
7895     OMPDeclareSimdDeclAttr::BranchStateTy State = Attr->getBranchState();
7896     if (CGM.getTriple().getArch() == llvm::Triple::x86 ||
7897         CGM.getTriple().getArch() == llvm::Triple::x86_64)
7898       emitX86DeclareSimdFunction(FD, Fn, VLENVal, ParamAttrs, State);
7899   }
7900 }
7901 
7902 namespace {
7903 /// Cleanup action for doacross support.
7904 class DoacrossCleanupTy final : public EHScopeStack::Cleanup {
7905 public:
7906   static const int DoacrossFinArgs = 2;
7907 
7908 private:
7909   llvm::Value *RTLFn;
7910   llvm::Value *Args[DoacrossFinArgs];
7911 
7912 public:
7913   DoacrossCleanupTy(llvm::Value *RTLFn, ArrayRef<llvm::Value *> CallArgs)
7914       : RTLFn(RTLFn) {
7915     assert(CallArgs.size() == DoacrossFinArgs);
7916     std::copy(CallArgs.begin(), CallArgs.end(), std::begin(Args));
7917   }
7918   void Emit(CodeGenFunction &CGF, Flags /*flags*/) override {
7919     if (!CGF.HaveInsertPoint())
7920       return;
7921     CGF.EmitRuntimeCall(RTLFn, Args);
7922   }
7923 };
7924 } // namespace
7925 
7926 void CGOpenMPRuntime::emitDoacrossInit(CodeGenFunction &CGF,
7927                                        const OMPLoopDirective &D) {
7928   if (!CGF.HaveInsertPoint())
7929     return;
7930 
7931   ASTContext &C = CGM.getContext();
7932   QualType Int64Ty = C.getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/true);
7933   RecordDecl *RD;
7934   if (KmpDimTy.isNull()) {
7935     // Build struct kmp_dim {  // loop bounds info casted to kmp_int64
7936     //  kmp_int64 lo; // lower
7937     //  kmp_int64 up; // upper
7938     //  kmp_int64 st; // stride
7939     // };
7940     RD = C.buildImplicitRecord("kmp_dim");
7941     RD->startDefinition();
7942     addFieldToRecordDecl(C, RD, Int64Ty);
7943     addFieldToRecordDecl(C, RD, Int64Ty);
7944     addFieldToRecordDecl(C, RD, Int64Ty);
7945     RD->completeDefinition();
7946     KmpDimTy = C.getRecordType(RD);
7947   } else
7948     RD = cast<RecordDecl>(KmpDimTy->getAsTagDecl());
7949 
7950   Address DimsAddr = CGF.CreateMemTemp(KmpDimTy, "dims");
7951   CGF.EmitNullInitialization(DimsAddr, KmpDimTy);
7952   enum { LowerFD = 0, UpperFD, StrideFD };
7953   // Fill dims with data.
7954   LValue DimsLVal = CGF.MakeAddrLValue(DimsAddr, KmpDimTy);
7955   // dims.upper = num_iterations;
7956   LValue UpperLVal =
7957       CGF.EmitLValueForField(DimsLVal, *std::next(RD->field_begin(), UpperFD));
7958   llvm::Value *NumIterVal = CGF.EmitScalarConversion(
7959       CGF.EmitScalarExpr(D.getNumIterations()), D.getNumIterations()->getType(),
7960       Int64Ty, D.getNumIterations()->getExprLoc());
7961   CGF.EmitStoreOfScalar(NumIterVal, UpperLVal);
7962   // dims.stride = 1;
7963   LValue StrideLVal =
7964       CGF.EmitLValueForField(DimsLVal, *std::next(RD->field_begin(), StrideFD));
7965   CGF.EmitStoreOfScalar(llvm::ConstantInt::getSigned(CGM.Int64Ty, /*V=*/1),
7966                         StrideLVal);
7967 
7968   // Build call void __kmpc_doacross_init(ident_t *loc, kmp_int32 gtid,
7969   // kmp_int32 num_dims, struct kmp_dim * dims);
7970   llvm::Value *Args[] = {emitUpdateLocation(CGF, D.getLocStart()),
7971                          getThreadID(CGF, D.getLocStart()),
7972                          llvm::ConstantInt::getSigned(CGM.Int32Ty, 1),
7973                          CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(
7974                              DimsAddr.getPointer(), CGM.VoidPtrTy)};
7975 
7976   llvm::Value *RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_init);
7977   CGF.EmitRuntimeCall(RTLFn, Args);
7978   llvm::Value *FiniArgs[DoacrossCleanupTy::DoacrossFinArgs] = {
7979       emitUpdateLocation(CGF, D.getLocEnd()), getThreadID(CGF, D.getLocEnd())};
7980   llvm::Value *FiniRTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_fini);
7981   CGF.EHStack.pushCleanup<DoacrossCleanupTy>(NormalAndEHCleanup, FiniRTLFn,
7982                                              llvm::makeArrayRef(FiniArgs));
7983 }
7984 
7985 void CGOpenMPRuntime::emitDoacrossOrdered(CodeGenFunction &CGF,
7986                                           const OMPDependClause *C) {
7987   QualType Int64Ty =
7988       CGM.getContext().getIntTypeForBitwidth(/*DestWidth=*/64, /*Signed=*/1);
7989   const Expr *CounterVal = C->getCounterValue();
7990   assert(CounterVal);
7991   llvm::Value *CntVal = CGF.EmitScalarConversion(CGF.EmitScalarExpr(CounterVal),
7992                                                  CounterVal->getType(), Int64Ty,
7993                                                  CounterVal->getExprLoc());
7994   Address CntAddr = CGF.CreateMemTemp(Int64Ty, ".cnt.addr");
7995   CGF.EmitStoreOfScalar(CntVal, CntAddr, /*Volatile=*/false, Int64Ty);
7996   llvm::Value *Args[] = {emitUpdateLocation(CGF, C->getLocStart()),
7997                          getThreadID(CGF, C->getLocStart()),
7998                          CntAddr.getPointer()};
7999   llvm::Value *RTLFn;
8000   if (C->getDependencyKind() == OMPC_DEPEND_source)
8001     RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_post);
8002   else {
8003     assert(C->getDependencyKind() == OMPC_DEPEND_sink);
8004     RTLFn = createRuntimeFunction(OMPRTL__kmpc_doacross_wait);
8005   }
8006   CGF.EmitRuntimeCall(RTLFn, Args);
8007 }
8008 
8009 void CGOpenMPRuntime::emitCall(CodeGenFunction &CGF, llvm::Value *Callee,
8010                                ArrayRef<llvm::Value *> Args,
8011                                SourceLocation Loc) const {
8012   auto DL = ApplyDebugLocation::CreateDefaultArtificial(CGF, Loc);
8013 
8014   if (auto *Fn = dyn_cast<llvm::Function>(Callee)) {
8015     if (Fn->doesNotThrow()) {
8016       CGF.EmitNounwindRuntimeCall(Fn, Args);
8017       return;
8018     }
8019   }
8020   CGF.EmitRuntimeCall(Callee, Args);
8021 }
8022 
8023 void CGOpenMPRuntime::emitOutlinedFunctionCall(
8024     CodeGenFunction &CGF, SourceLocation Loc, llvm::Value *OutlinedFn,
8025     ArrayRef<llvm::Value *> Args) const {
8026   assert(Loc.isValid() && "Outlined function call location must be valid.");
8027   emitCall(CGF, OutlinedFn, Args, Loc);
8028 }
8029 
8030 Address CGOpenMPRuntime::getParameterAddress(CodeGenFunction &CGF,
8031                                              const VarDecl *NativeParam,
8032                                              const VarDecl *TargetParam) const {
8033   return CGF.GetAddrOfLocalVar(NativeParam);
8034 }
8035 
8036 llvm::Value *CGOpenMPSIMDRuntime::emitParallelOutlinedFunction(
8037     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
8038     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) {
8039   llvm_unreachable("Not supported in SIMD-only mode");
8040 }
8041 
8042 llvm::Value *CGOpenMPSIMDRuntime::emitTeamsOutlinedFunction(
8043     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
8044     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen) {
8045   llvm_unreachable("Not supported in SIMD-only mode");
8046 }
8047 
8048 llvm::Value *CGOpenMPSIMDRuntime::emitTaskOutlinedFunction(
8049     const OMPExecutableDirective &D, const VarDecl *ThreadIDVar,
8050     const VarDecl *PartIDVar, const VarDecl *TaskTVar,
8051     OpenMPDirectiveKind InnermostKind, const RegionCodeGenTy &CodeGen,
8052     bool Tied, unsigned &NumberOfParts) {
8053   llvm_unreachable("Not supported in SIMD-only mode");
8054 }
8055 
8056 void CGOpenMPSIMDRuntime::emitParallelCall(CodeGenFunction &CGF,
8057                                            SourceLocation Loc,
8058                                            llvm::Value *OutlinedFn,
8059                                            ArrayRef<llvm::Value *> CapturedVars,
8060                                            const Expr *IfCond) {
8061   llvm_unreachable("Not supported in SIMD-only mode");
8062 }
8063 
8064 void CGOpenMPSIMDRuntime::emitCriticalRegion(
8065     CodeGenFunction &CGF, StringRef CriticalName,
8066     const RegionCodeGenTy &CriticalOpGen, SourceLocation Loc,
8067     const Expr *Hint) {
8068   llvm_unreachable("Not supported in SIMD-only mode");
8069 }
8070 
8071 void CGOpenMPSIMDRuntime::emitMasterRegion(CodeGenFunction &CGF,
8072                                            const RegionCodeGenTy &MasterOpGen,
8073                                            SourceLocation Loc) {
8074   llvm_unreachable("Not supported in SIMD-only mode");
8075 }
8076 
8077 void CGOpenMPSIMDRuntime::emitTaskyieldCall(CodeGenFunction &CGF,
8078                                             SourceLocation Loc) {
8079   llvm_unreachable("Not supported in SIMD-only mode");
8080 }
8081 
8082 void CGOpenMPSIMDRuntime::emitTaskgroupRegion(
8083     CodeGenFunction &CGF, const RegionCodeGenTy &TaskgroupOpGen,
8084     SourceLocation Loc) {
8085   llvm_unreachable("Not supported in SIMD-only mode");
8086 }
8087 
8088 void CGOpenMPSIMDRuntime::emitSingleRegion(
8089     CodeGenFunction &CGF, const RegionCodeGenTy &SingleOpGen,
8090     SourceLocation Loc, ArrayRef<const Expr *> CopyprivateVars,
8091     ArrayRef<const Expr *> DestExprs, ArrayRef<const Expr *> SrcExprs,
8092     ArrayRef<const Expr *> AssignmentOps) {
8093   llvm_unreachable("Not supported in SIMD-only mode");
8094 }
8095 
8096 void CGOpenMPSIMDRuntime::emitOrderedRegion(CodeGenFunction &CGF,
8097                                             const RegionCodeGenTy &OrderedOpGen,
8098                                             SourceLocation Loc,
8099                                             bool IsThreads) {
8100   llvm_unreachable("Not supported in SIMD-only mode");
8101 }
8102 
8103 void CGOpenMPSIMDRuntime::emitBarrierCall(CodeGenFunction &CGF,
8104                                           SourceLocation Loc,
8105                                           OpenMPDirectiveKind Kind,
8106                                           bool EmitChecks,
8107                                           bool ForceSimpleCall) {
8108   llvm_unreachable("Not supported in SIMD-only mode");
8109 }
8110 
8111 void CGOpenMPSIMDRuntime::emitForDispatchInit(
8112     CodeGenFunction &CGF, SourceLocation Loc,
8113     const OpenMPScheduleTy &ScheduleKind, unsigned IVSize, bool IVSigned,
8114     bool Ordered, const DispatchRTInput &DispatchValues) {
8115   llvm_unreachable("Not supported in SIMD-only mode");
8116 }
8117 
8118 void CGOpenMPSIMDRuntime::emitForStaticInit(
8119     CodeGenFunction &CGF, SourceLocation Loc, OpenMPDirectiveKind DKind,
8120     const OpenMPScheduleTy &ScheduleKind, const StaticRTInput &Values) {
8121   llvm_unreachable("Not supported in SIMD-only mode");
8122 }
8123 
8124 void CGOpenMPSIMDRuntime::emitDistributeStaticInit(
8125     CodeGenFunction &CGF, SourceLocation Loc,
8126     OpenMPDistScheduleClauseKind SchedKind, const StaticRTInput &Values) {
8127   llvm_unreachable("Not supported in SIMD-only mode");
8128 }
8129 
8130 void CGOpenMPSIMDRuntime::emitForOrderedIterationEnd(CodeGenFunction &CGF,
8131                                                      SourceLocation Loc,
8132                                                      unsigned IVSize,
8133                                                      bool IVSigned) {
8134   llvm_unreachable("Not supported in SIMD-only mode");
8135 }
8136 
8137 void CGOpenMPSIMDRuntime::emitForStaticFinish(CodeGenFunction &CGF,
8138                                               SourceLocation Loc,
8139                                               OpenMPDirectiveKind DKind) {
8140   llvm_unreachable("Not supported in SIMD-only mode");
8141 }
8142 
8143 llvm::Value *CGOpenMPSIMDRuntime::emitForNext(CodeGenFunction &CGF,
8144                                               SourceLocation Loc,
8145                                               unsigned IVSize, bool IVSigned,
8146                                               Address IL, Address LB,
8147                                               Address UB, Address ST) {
8148   llvm_unreachable("Not supported in SIMD-only mode");
8149 }
8150 
8151 void CGOpenMPSIMDRuntime::emitNumThreadsClause(CodeGenFunction &CGF,
8152                                                llvm::Value *NumThreads,
8153                                                SourceLocation Loc) {
8154   llvm_unreachable("Not supported in SIMD-only mode");
8155 }
8156 
8157 void CGOpenMPSIMDRuntime::emitProcBindClause(CodeGenFunction &CGF,
8158                                              OpenMPProcBindClauseKind ProcBind,
8159                                              SourceLocation Loc) {
8160   llvm_unreachable("Not supported in SIMD-only mode");
8161 }
8162 
8163 Address CGOpenMPSIMDRuntime::getAddrOfThreadPrivate(CodeGenFunction &CGF,
8164                                                     const VarDecl *VD,
8165                                                     Address VDAddr,
8166                                                     SourceLocation Loc) {
8167   llvm_unreachable("Not supported in SIMD-only mode");
8168 }
8169 
8170 llvm::Function *CGOpenMPSIMDRuntime::emitThreadPrivateVarDefinition(
8171     const VarDecl *VD, Address VDAddr, SourceLocation Loc, bool PerformInit,
8172     CodeGenFunction *CGF) {
8173   llvm_unreachable("Not supported in SIMD-only mode");
8174 }
8175 
8176 Address CGOpenMPSIMDRuntime::getAddrOfArtificialThreadPrivate(
8177     CodeGenFunction &CGF, QualType VarType, StringRef Name) {
8178   llvm_unreachable("Not supported in SIMD-only mode");
8179 }
8180 
8181 void CGOpenMPSIMDRuntime::emitFlush(CodeGenFunction &CGF,
8182                                     ArrayRef<const Expr *> Vars,
8183                                     SourceLocation Loc) {
8184   llvm_unreachable("Not supported in SIMD-only mode");
8185 }
8186 
8187 void CGOpenMPSIMDRuntime::emitTaskCall(CodeGenFunction &CGF, SourceLocation Loc,
8188                                        const OMPExecutableDirective &D,
8189                                        llvm::Value *TaskFunction,
8190                                        QualType SharedsTy, Address Shareds,
8191                                        const Expr *IfCond,
8192                                        const OMPTaskDataTy &Data) {
8193   llvm_unreachable("Not supported in SIMD-only mode");
8194 }
8195 
8196 void CGOpenMPSIMDRuntime::emitTaskLoopCall(
8197     CodeGenFunction &CGF, SourceLocation Loc, const OMPLoopDirective &D,
8198     llvm::Value *TaskFunction, QualType SharedsTy, Address Shareds,
8199     const Expr *IfCond, const OMPTaskDataTy &Data) {
8200   llvm_unreachable("Not supported in SIMD-only mode");
8201 }
8202 
8203 void CGOpenMPSIMDRuntime::emitReduction(
8204     CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> Privates,
8205     ArrayRef<const Expr *> LHSExprs, ArrayRef<const Expr *> RHSExprs,
8206     ArrayRef<const Expr *> ReductionOps, ReductionOptionsTy Options) {
8207   assert(Options.SimpleReduction && "Only simple reduction is expected.");
8208   CGOpenMPRuntime::emitReduction(CGF, Loc, Privates, LHSExprs, RHSExprs,
8209                                  ReductionOps, Options);
8210 }
8211 
8212 llvm::Value *CGOpenMPSIMDRuntime::emitTaskReductionInit(
8213     CodeGenFunction &CGF, SourceLocation Loc, ArrayRef<const Expr *> LHSExprs,
8214     ArrayRef<const Expr *> RHSExprs, const OMPTaskDataTy &Data) {
8215   llvm_unreachable("Not supported in SIMD-only mode");
8216 }
8217 
8218 void CGOpenMPSIMDRuntime::emitTaskReductionFixups(CodeGenFunction &CGF,
8219                                                   SourceLocation Loc,
8220                                                   ReductionCodeGen &RCG,
8221                                                   unsigned N) {
8222   llvm_unreachable("Not supported in SIMD-only mode");
8223 }
8224 
8225 Address CGOpenMPSIMDRuntime::getTaskReductionItem(CodeGenFunction &CGF,
8226                                                   SourceLocation Loc,
8227                                                   llvm::Value *ReductionsPtr,
8228                                                   LValue SharedLVal) {
8229   llvm_unreachable("Not supported in SIMD-only mode");
8230 }
8231 
8232 void CGOpenMPSIMDRuntime::emitTaskwaitCall(CodeGenFunction &CGF,
8233                                            SourceLocation Loc) {
8234   llvm_unreachable("Not supported in SIMD-only mode");
8235 }
8236 
8237 void CGOpenMPSIMDRuntime::emitCancellationPointCall(
8238     CodeGenFunction &CGF, SourceLocation Loc,
8239     OpenMPDirectiveKind CancelRegion) {
8240   llvm_unreachable("Not supported in SIMD-only mode");
8241 }
8242 
8243 void CGOpenMPSIMDRuntime::emitCancelCall(CodeGenFunction &CGF,
8244                                          SourceLocation Loc, const Expr *IfCond,
8245                                          OpenMPDirectiveKind CancelRegion) {
8246   llvm_unreachable("Not supported in SIMD-only mode");
8247 }
8248 
8249 void CGOpenMPSIMDRuntime::emitTargetOutlinedFunction(
8250     const OMPExecutableDirective &D, StringRef ParentName,
8251     llvm::Function *&OutlinedFn, llvm::Constant *&OutlinedFnID,
8252     bool IsOffloadEntry, const RegionCodeGenTy &CodeGen) {
8253   llvm_unreachable("Not supported in SIMD-only mode");
8254 }
8255 
8256 void CGOpenMPSIMDRuntime::emitTargetCall(CodeGenFunction &CGF,
8257                                          const OMPExecutableDirective &D,
8258                                          llvm::Value *OutlinedFn,
8259                                          llvm::Value *OutlinedFnID,
8260                                          const Expr *IfCond, const Expr *Device,
8261                                          ArrayRef<llvm::Value *> CapturedVars) {
8262   llvm_unreachable("Not supported in SIMD-only mode");
8263 }
8264 
8265 bool CGOpenMPSIMDRuntime::emitTargetFunctions(GlobalDecl GD) {
8266   llvm_unreachable("Not supported in SIMD-only mode");
8267 }
8268 
8269 bool CGOpenMPSIMDRuntime::emitTargetGlobalVariable(GlobalDecl GD) {
8270   llvm_unreachable("Not supported in SIMD-only mode");
8271 }
8272 
8273 bool CGOpenMPSIMDRuntime::emitTargetGlobal(GlobalDecl GD) {
8274   return false;
8275 }
8276 
8277 llvm::Function *CGOpenMPSIMDRuntime::emitRegistrationFunction() {
8278   return nullptr;
8279 }
8280 
8281 void CGOpenMPSIMDRuntime::emitTeamsCall(CodeGenFunction &CGF,
8282                                         const OMPExecutableDirective &D,
8283                                         SourceLocation Loc,
8284                                         llvm::Value *OutlinedFn,
8285                                         ArrayRef<llvm::Value *> CapturedVars) {
8286   llvm_unreachable("Not supported in SIMD-only mode");
8287 }
8288 
8289 void CGOpenMPSIMDRuntime::emitNumTeamsClause(CodeGenFunction &CGF,
8290                                              const Expr *NumTeams,
8291                                              const Expr *ThreadLimit,
8292                                              SourceLocation Loc) {
8293   llvm_unreachable("Not supported in SIMD-only mode");
8294 }
8295 
8296 void CGOpenMPSIMDRuntime::emitTargetDataCalls(
8297     CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond,
8298     const Expr *Device, const RegionCodeGenTy &CodeGen, TargetDataInfo &Info) {
8299   llvm_unreachable("Not supported in SIMD-only mode");
8300 }
8301 
8302 void CGOpenMPSIMDRuntime::emitTargetDataStandAloneCall(
8303     CodeGenFunction &CGF, const OMPExecutableDirective &D, const Expr *IfCond,
8304     const Expr *Device) {
8305   llvm_unreachable("Not supported in SIMD-only mode");
8306 }
8307 
8308 void CGOpenMPSIMDRuntime::emitDoacrossInit(CodeGenFunction &CGF,
8309                                            const OMPLoopDirective &D) {
8310   llvm_unreachable("Not supported in SIMD-only mode");
8311 }
8312 
8313 void CGOpenMPSIMDRuntime::emitDoacrossOrdered(CodeGenFunction &CGF,
8314                                               const OMPDependClause *C) {
8315   llvm_unreachable("Not supported in SIMD-only mode");
8316 }
8317 
8318 const VarDecl *
8319 CGOpenMPSIMDRuntime::translateParameter(const FieldDecl *FD,
8320                                         const VarDecl *NativeParam) const {
8321   llvm_unreachable("Not supported in SIMD-only mode");
8322 }
8323 
8324 Address
8325 CGOpenMPSIMDRuntime::getParameterAddress(CodeGenFunction &CGF,
8326                                          const VarDecl *NativeParam,
8327                                          const VarDecl *TargetParam) const {
8328   llvm_unreachable("Not supported in SIMD-only mode");
8329 }
8330 
8331