1 //===--- CGDecl.cpp - Emit LLVM Code for declarations ---------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This contains code to emit Decl nodes as LLVM code.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "CodeGenFunction.h"
15 #include "CGDebugInfo.h"
16 #include "CGOpenCLRuntime.h"
17 #include "CodeGenModule.h"
18 #include "clang/AST/ASTContext.h"
19 #include "clang/AST/CharUnits.h"
20 #include "clang/AST/Decl.h"
21 #include "clang/AST/DeclObjC.h"
22 #include "clang/Basic/SourceManager.h"
23 #include "clang/Basic/TargetInfo.h"
24 #include "clang/CodeGen/CGFunctionInfo.h"
25 #include "clang/Frontend/CodeGenOptions.h"
26 #include "llvm/IR/DataLayout.h"
27 #include "llvm/IR/GlobalVariable.h"
28 #include "llvm/IR/Intrinsics.h"
29 #include "llvm/IR/Type.h"
30 using namespace clang;
31 using namespace CodeGen;
32 
33 
34 void CodeGenFunction::EmitDecl(const Decl &D) {
35   switch (D.getKind()) {
36   case Decl::TranslationUnit:
37   case Decl::Namespace:
38   case Decl::UnresolvedUsingTypename:
39   case Decl::ClassTemplateSpecialization:
40   case Decl::ClassTemplatePartialSpecialization:
41   case Decl::VarTemplateSpecialization:
42   case Decl::VarTemplatePartialSpecialization:
43   case Decl::TemplateTypeParm:
44   case Decl::UnresolvedUsingValue:
45   case Decl::NonTypeTemplateParm:
46   case Decl::CXXMethod:
47   case Decl::CXXConstructor:
48   case Decl::CXXDestructor:
49   case Decl::CXXConversion:
50   case Decl::Field:
51   case Decl::MSProperty:
52   case Decl::IndirectField:
53   case Decl::ObjCIvar:
54   case Decl::ObjCAtDefsField:
55   case Decl::ParmVar:
56   case Decl::ImplicitParam:
57   case Decl::ClassTemplate:
58   case Decl::VarTemplate:
59   case Decl::FunctionTemplate:
60   case Decl::TypeAliasTemplate:
61   case Decl::TemplateTemplateParm:
62   case Decl::ObjCMethod:
63   case Decl::ObjCCategory:
64   case Decl::ObjCProtocol:
65   case Decl::ObjCInterface:
66   case Decl::ObjCCategoryImpl:
67   case Decl::ObjCImplementation:
68   case Decl::ObjCProperty:
69   case Decl::ObjCCompatibleAlias:
70   case Decl::AccessSpec:
71   case Decl::LinkageSpec:
72   case Decl::ObjCPropertyImpl:
73   case Decl::FileScopeAsm:
74   case Decl::Friend:
75   case Decl::FriendTemplate:
76   case Decl::Block:
77   case Decl::Captured:
78   case Decl::ClassScopeFunctionSpecialization:
79   case Decl::UsingShadow:
80     llvm_unreachable("Declaration should not be in declstmts!");
81   case Decl::Function:  // void X();
82   case Decl::Record:    // struct/union/class X;
83   case Decl::Enum:      // enum X;
84   case Decl::EnumConstant: // enum ? { X = ? }
85   case Decl::CXXRecord: // struct/union/class X; [C++]
86   case Decl::StaticAssert: // static_assert(X, ""); [C++0x]
87   case Decl::Label:        // __label__ x;
88   case Decl::Import:
89   case Decl::OMPThreadPrivate:
90   case Decl::Empty:
91     // None of these decls require codegen support.
92     return;
93 
94   case Decl::NamespaceAlias:
95     if (CGDebugInfo *DI = getDebugInfo())
96         DI->EmitNamespaceAlias(cast<NamespaceAliasDecl>(D));
97     return;
98   case Decl::Using:          // using X; [C++]
99     if (CGDebugInfo *DI = getDebugInfo())
100         DI->EmitUsingDecl(cast<UsingDecl>(D));
101     return;
102   case Decl::UsingDirective: // using namespace X; [C++]
103     if (CGDebugInfo *DI = getDebugInfo())
104       DI->EmitUsingDirective(cast<UsingDirectiveDecl>(D));
105     return;
106   case Decl::Var: {
107     const VarDecl &VD = cast<VarDecl>(D);
108     assert(VD.isLocalVarDecl() &&
109            "Should not see file-scope variables inside a function!");
110     return EmitVarDecl(VD);
111   }
112 
113   case Decl::Typedef:      // typedef int X;
114   case Decl::TypeAlias: {  // using X = int; [C++0x]
115     const TypedefNameDecl &TD = cast<TypedefNameDecl>(D);
116     QualType Ty = TD.getUnderlyingType();
117 
118     if (Ty->isVariablyModifiedType())
119       EmitVariablyModifiedType(Ty);
120   }
121   }
122 }
123 
124 /// EmitVarDecl - This method handles emission of any variable declaration
125 /// inside a function, including static vars etc.
126 void CodeGenFunction::EmitVarDecl(const VarDecl &D) {
127   if (D.isStaticLocal()) {
128     llvm::GlobalValue::LinkageTypes Linkage =
129         CGM.getLLVMLinkageVarDefinition(&D, /*isConstant=*/false);
130 
131     // FIXME: We need to force the emission/use of a guard variable for
132     // some variables even if we can constant-evaluate them because
133     // we can't guarantee every translation unit will constant-evaluate them.
134 
135     return EmitStaticVarDecl(D, Linkage);
136   }
137 
138   if (D.hasExternalStorage())
139     // Don't emit it now, allow it to be emitted lazily on its first use.
140     return;
141 
142   if (D.getStorageClass() == SC_OpenCLWorkGroupLocal)
143     return CGM.getOpenCLRuntime().EmitWorkGroupLocalVarDecl(*this, D);
144 
145   assert(D.hasLocalStorage());
146   return EmitAutoVarDecl(D);
147 }
148 
149 static std::string getStaticDeclName(CodeGenModule &CGM, const VarDecl &D) {
150   if (CGM.getLangOpts().CPlusPlus)
151     return CGM.getMangledName(&D).str();
152 
153   // If this isn't C++, we don't need a mangled name, just a pretty one.
154   assert(!D.isExternallyVisible() && "name shouldn't matter");
155   std::string ContextName;
156   const DeclContext *DC = D.getDeclContext();
157   if (const auto *FD = dyn_cast<FunctionDecl>(DC))
158     ContextName = CGM.getMangledName(FD);
159   else if (const auto *BD = dyn_cast<BlockDecl>(DC))
160     ContextName = CGM.getBlockMangledName(GlobalDecl(), BD);
161   else if (const auto *OMD = dyn_cast<ObjCMethodDecl>(DC))
162     ContextName = OMD->getSelector().getAsString();
163   else
164     llvm_unreachable("Unknown context for static var decl");
165 
166   ContextName += "." + D.getNameAsString();
167   return ContextName;
168 }
169 
170 llvm::Constant *CodeGenModule::getOrCreateStaticVarDecl(
171     const VarDecl &D, llvm::GlobalValue::LinkageTypes Linkage) {
172   // In general, we don't always emit static var decls once before we reference
173   // them. It is possible to reference them before emitting the function that
174   // contains them, and it is possible to emit the containing function multiple
175   // times.
176   if (llvm::Constant *ExistingGV = StaticLocalDeclMap[&D])
177     return ExistingGV;
178 
179   QualType Ty = D.getType();
180   assert(Ty->isConstantSizeType() && "VLAs can't be static");
181 
182   // Use the label if the variable is renamed with the asm-label extension.
183   std::string Name;
184   if (D.hasAttr<AsmLabelAttr>())
185     Name = getMangledName(&D);
186   else
187     Name = getStaticDeclName(*this, D);
188 
189   llvm::Type *LTy = getTypes().ConvertTypeForMem(Ty);
190   unsigned AddrSpace =
191       GetGlobalVarAddressSpace(&D, getContext().getTargetAddressSpace(Ty));
192   llvm::GlobalVariable *GV =
193     new llvm::GlobalVariable(getModule(), LTy,
194                              Ty.isConstant(getContext()), Linkage,
195                              EmitNullConstant(D.getType()), Name, nullptr,
196                              llvm::GlobalVariable::NotThreadLocal,
197                              AddrSpace);
198   GV->setAlignment(getContext().getDeclAlign(&D).getQuantity());
199   setGlobalVisibility(GV, &D);
200 
201   if (D.getTLSKind())
202     setTLSMode(GV, D);
203 
204   if (D.isExternallyVisible()) {
205     if (D.hasAttr<DLLImportAttr>())
206       GV->setDLLStorageClass(llvm::GlobalVariable::DLLImportStorageClass);
207     else if (D.hasAttr<DLLExportAttr>())
208       GV->setDLLStorageClass(llvm::GlobalVariable::DLLExportStorageClass);
209   }
210 
211   // Make sure the result is of the correct type.
212   unsigned ExpectedAddrSpace = getContext().getTargetAddressSpace(Ty);
213   llvm::Constant *Addr = GV;
214   if (AddrSpace != ExpectedAddrSpace) {
215     llvm::PointerType *PTy = llvm::PointerType::get(LTy, ExpectedAddrSpace);
216     Addr = llvm::ConstantExpr::getAddrSpaceCast(GV, PTy);
217   }
218 
219   setStaticLocalDeclAddress(&D, Addr);
220 
221   // Ensure that the static local gets initialized by making sure the parent
222   // function gets emitted eventually.
223   const Decl *DC = cast<Decl>(D.getDeclContext());
224 
225   // We can't name blocks or captured statements directly, so try to emit their
226   // parents.
227   if (isa<BlockDecl>(DC) || isa<CapturedDecl>(DC)) {
228     DC = DC->getNonClosureContext();
229     // FIXME: Ensure that global blocks get emitted.
230     if (!DC)
231       return Addr;
232   }
233 
234   GlobalDecl GD;
235   if (const auto *CD = dyn_cast<CXXConstructorDecl>(DC))
236     GD = GlobalDecl(CD, Ctor_Base);
237   else if (const auto *DD = dyn_cast<CXXDestructorDecl>(DC))
238     GD = GlobalDecl(DD, Dtor_Base);
239   else if (const auto *FD = dyn_cast<FunctionDecl>(DC))
240     GD = GlobalDecl(FD);
241   else {
242     // Don't do anything for Obj-C method decls or global closures. We should
243     // never defer them.
244     assert(isa<ObjCMethodDecl>(DC) && "unexpected parent code decl");
245   }
246   if (GD.getDecl())
247     (void)GetAddrOfGlobal(GD);
248 
249   return Addr;
250 }
251 
252 /// hasNontrivialDestruction - Determine whether a type's destruction is
253 /// non-trivial. If so, and the variable uses static initialization, we must
254 /// register its destructor to run on exit.
255 static bool hasNontrivialDestruction(QualType T) {
256   CXXRecordDecl *RD = T->getBaseElementTypeUnsafe()->getAsCXXRecordDecl();
257   return RD && !RD->hasTrivialDestructor();
258 }
259 
260 /// AddInitializerToStaticVarDecl - Add the initializer for 'D' to the
261 /// global variable that has already been created for it.  If the initializer
262 /// has a different type than GV does, this may free GV and return a different
263 /// one.  Otherwise it just returns GV.
264 llvm::GlobalVariable *
265 CodeGenFunction::AddInitializerToStaticVarDecl(const VarDecl &D,
266                                                llvm::GlobalVariable *GV) {
267   llvm::Constant *Init = CGM.EmitConstantInit(D, this);
268 
269   // If constant emission failed, then this should be a C++ static
270   // initializer.
271   if (!Init) {
272     if (!getLangOpts().CPlusPlus)
273       CGM.ErrorUnsupported(D.getInit(), "constant l-value expression");
274     else if (Builder.GetInsertBlock()) {
275       // Since we have a static initializer, this global variable can't
276       // be constant.
277       GV->setConstant(false);
278 
279       EmitCXXGuardedInit(D, GV, /*PerformInit*/true);
280     }
281     return GV;
282   }
283 
284   // The initializer may differ in type from the global. Rewrite
285   // the global to match the initializer.  (We have to do this
286   // because some types, like unions, can't be completely represented
287   // in the LLVM type system.)
288   if (GV->getType()->getElementType() != Init->getType()) {
289     llvm::GlobalVariable *OldGV = GV;
290 
291     GV = new llvm::GlobalVariable(CGM.getModule(), Init->getType(),
292                                   OldGV->isConstant(),
293                                   OldGV->getLinkage(), Init, "",
294                                   /*InsertBefore*/ OldGV,
295                                   OldGV->getThreadLocalMode(),
296                            CGM.getContext().getTargetAddressSpace(D.getType()));
297     GV->setVisibility(OldGV->getVisibility());
298 
299     // Steal the name of the old global
300     GV->takeName(OldGV);
301 
302     // Replace all uses of the old global with the new global
303     llvm::Constant *NewPtrForOldDecl =
304     llvm::ConstantExpr::getBitCast(GV, OldGV->getType());
305     OldGV->replaceAllUsesWith(NewPtrForOldDecl);
306 
307     // Erase the old global, since it is no longer used.
308     OldGV->eraseFromParent();
309   }
310 
311   GV->setConstant(CGM.isTypeConstant(D.getType(), true));
312   GV->setInitializer(Init);
313 
314   if (hasNontrivialDestruction(D.getType())) {
315     // We have a constant initializer, but a nontrivial destructor. We still
316     // need to perform a guarded "initialization" in order to register the
317     // destructor.
318     EmitCXXGuardedInit(D, GV, /*PerformInit*/false);
319   }
320 
321   return GV;
322 }
323 
324 void CodeGenFunction::EmitStaticVarDecl(const VarDecl &D,
325                                       llvm::GlobalValue::LinkageTypes Linkage) {
326   llvm::Value *&DMEntry = LocalDeclMap[&D];
327   assert(!DMEntry && "Decl already exists in localdeclmap!");
328 
329   // Check to see if we already have a global variable for this
330   // declaration.  This can happen when double-emitting function
331   // bodies, e.g. with complete and base constructors.
332   llvm::Constant *addr = CGM.getOrCreateStaticVarDecl(D, Linkage);
333 
334   // Store into LocalDeclMap before generating initializer to handle
335   // circular references.
336   DMEntry = addr;
337 
338   // We can't have a VLA here, but we can have a pointer to a VLA,
339   // even though that doesn't really make any sense.
340   // Make sure to evaluate VLA bounds now so that we have them for later.
341   if (D.getType()->isVariablyModifiedType())
342     EmitVariablyModifiedType(D.getType());
343 
344   // Save the type in case adding the initializer forces a type change.
345   llvm::Type *expectedType = addr->getType();
346 
347   llvm::GlobalVariable *var =
348     cast<llvm::GlobalVariable>(addr->stripPointerCasts());
349   // If this value has an initializer, emit it.
350   if (D.getInit())
351     var = AddInitializerToStaticVarDecl(D, var);
352 
353   var->setAlignment(getContext().getDeclAlign(&D).getQuantity());
354 
355   if (D.hasAttr<AnnotateAttr>())
356     CGM.AddGlobalAnnotations(&D, var);
357 
358   if (const SectionAttr *SA = D.getAttr<SectionAttr>())
359     var->setSection(SA->getName());
360 
361   if (D.hasAttr<UsedAttr>())
362     CGM.addUsedGlobal(var);
363 
364   // We may have to cast the constant because of the initializer
365   // mismatch above.
366   //
367   // FIXME: It is really dangerous to store this in the map; if anyone
368   // RAUW's the GV uses of this constant will be invalid.
369   llvm::Constant *castedAddr =
370     llvm::ConstantExpr::getPointerBitCastOrAddrSpaceCast(var, expectedType);
371   DMEntry = castedAddr;
372   CGM.setStaticLocalDeclAddress(&D, castedAddr);
373 
374   CGM.getSanitizerMetadata()->reportGlobalToASan(var, D);
375 
376   // Emit global variable debug descriptor for static vars.
377   CGDebugInfo *DI = getDebugInfo();
378   if (DI &&
379       CGM.getCodeGenOpts().getDebugInfo() >= CodeGenOptions::LimitedDebugInfo) {
380     DI->setLocation(D.getLocation());
381     DI->EmitGlobalVariable(var, &D);
382   }
383 }
384 
385 namespace {
386   struct DestroyObject : EHScopeStack::Cleanup {
387     DestroyObject(llvm::Value *addr, QualType type,
388                   CodeGenFunction::Destroyer *destroyer,
389                   bool useEHCleanupForArray)
390       : addr(addr), type(type), destroyer(destroyer),
391         useEHCleanupForArray(useEHCleanupForArray) {}
392 
393     llvm::Value *addr;
394     QualType type;
395     CodeGenFunction::Destroyer *destroyer;
396     bool useEHCleanupForArray;
397 
398     void Emit(CodeGenFunction &CGF, Flags flags) override {
399       // Don't use an EH cleanup recursively from an EH cleanup.
400       bool useEHCleanupForArray =
401         flags.isForNormalCleanup() && this->useEHCleanupForArray;
402 
403       CGF.emitDestroy(addr, type, destroyer, useEHCleanupForArray);
404     }
405   };
406 
407   struct DestroyNRVOVariable : EHScopeStack::Cleanup {
408     DestroyNRVOVariable(llvm::Value *addr,
409                         const CXXDestructorDecl *Dtor,
410                         llvm::Value *NRVOFlag)
411       : Dtor(Dtor), NRVOFlag(NRVOFlag), Loc(addr) {}
412 
413     const CXXDestructorDecl *Dtor;
414     llvm::Value *NRVOFlag;
415     llvm::Value *Loc;
416 
417     void Emit(CodeGenFunction &CGF, Flags flags) override {
418       // Along the exceptions path we always execute the dtor.
419       bool NRVO = flags.isForNormalCleanup() && NRVOFlag;
420 
421       llvm::BasicBlock *SkipDtorBB = nullptr;
422       if (NRVO) {
423         // If we exited via NRVO, we skip the destructor call.
424         llvm::BasicBlock *RunDtorBB = CGF.createBasicBlock("nrvo.unused");
425         SkipDtorBB = CGF.createBasicBlock("nrvo.skipdtor");
426         llvm::Value *DidNRVO = CGF.Builder.CreateLoad(NRVOFlag, "nrvo.val");
427         CGF.Builder.CreateCondBr(DidNRVO, SkipDtorBB, RunDtorBB);
428         CGF.EmitBlock(RunDtorBB);
429       }
430 
431       CGF.EmitCXXDestructorCall(Dtor, Dtor_Complete,
432                                 /*ForVirtualBase=*/false,
433                                 /*Delegating=*/false,
434                                 Loc);
435 
436       if (NRVO) CGF.EmitBlock(SkipDtorBB);
437     }
438   };
439 
440   struct CallStackRestore : EHScopeStack::Cleanup {
441     llvm::Value *Stack;
442     CallStackRestore(llvm::Value *Stack) : Stack(Stack) {}
443     void Emit(CodeGenFunction &CGF, Flags flags) override {
444       llvm::Value *V = CGF.Builder.CreateLoad(Stack);
445       llvm::Value *F = CGF.CGM.getIntrinsic(llvm::Intrinsic::stackrestore);
446       CGF.Builder.CreateCall(F, V);
447     }
448   };
449 
450   struct ExtendGCLifetime : EHScopeStack::Cleanup {
451     const VarDecl &Var;
452     ExtendGCLifetime(const VarDecl *var) : Var(*var) {}
453 
454     void Emit(CodeGenFunction &CGF, Flags flags) override {
455       // Compute the address of the local variable, in case it's a
456       // byref or something.
457       DeclRefExpr DRE(const_cast<VarDecl*>(&Var), false,
458                       Var.getType(), VK_LValue, SourceLocation());
459       llvm::Value *value = CGF.EmitLoadOfScalar(CGF.EmitDeclRefLValue(&DRE),
460                                                 SourceLocation());
461       CGF.EmitExtendGCLifetime(value);
462     }
463   };
464 
465   struct CallCleanupFunction : EHScopeStack::Cleanup {
466     llvm::Constant *CleanupFn;
467     const CGFunctionInfo &FnInfo;
468     const VarDecl &Var;
469 
470     CallCleanupFunction(llvm::Constant *CleanupFn, const CGFunctionInfo *Info,
471                         const VarDecl *Var)
472       : CleanupFn(CleanupFn), FnInfo(*Info), Var(*Var) {}
473 
474     void Emit(CodeGenFunction &CGF, Flags flags) override {
475       DeclRefExpr DRE(const_cast<VarDecl*>(&Var), false,
476                       Var.getType(), VK_LValue, SourceLocation());
477       // Compute the address of the local variable, in case it's a byref
478       // or something.
479       llvm::Value *Addr = CGF.EmitDeclRefLValue(&DRE).getAddress();
480 
481       // In some cases, the type of the function argument will be different from
482       // the type of the pointer. An example of this is
483       // void f(void* arg);
484       // __attribute__((cleanup(f))) void *g;
485       //
486       // To fix this we insert a bitcast here.
487       QualType ArgTy = FnInfo.arg_begin()->type;
488       llvm::Value *Arg =
489         CGF.Builder.CreateBitCast(Addr, CGF.ConvertType(ArgTy));
490 
491       CallArgList Args;
492       Args.add(RValue::get(Arg),
493                CGF.getContext().getPointerType(Var.getType()));
494       CGF.EmitCall(FnInfo, CleanupFn, ReturnValueSlot(), Args);
495     }
496   };
497 
498   /// A cleanup to call @llvm.lifetime.end.
499   class CallLifetimeEnd : public EHScopeStack::Cleanup {
500     llvm::Value *Addr;
501     llvm::Value *Size;
502   public:
503     CallLifetimeEnd(llvm::Value *addr, llvm::Value *size)
504       : Addr(addr), Size(size) {}
505 
506     void Emit(CodeGenFunction &CGF, Flags flags) override {
507       CGF.EmitLifetimeEnd(Size, Addr);
508     }
509   };
510 
511 }
512 
513 /// EmitAutoVarWithLifetime - Does the setup required for an automatic
514 /// variable with lifetime.
515 static void EmitAutoVarWithLifetime(CodeGenFunction &CGF, const VarDecl &var,
516                                     llvm::Value *addr,
517                                     Qualifiers::ObjCLifetime lifetime) {
518   switch (lifetime) {
519   case Qualifiers::OCL_None:
520     llvm_unreachable("present but none");
521 
522   case Qualifiers::OCL_ExplicitNone:
523     // nothing to do
524     break;
525 
526   case Qualifiers::OCL_Strong: {
527     CodeGenFunction::Destroyer *destroyer =
528       (var.hasAttr<ObjCPreciseLifetimeAttr>()
529        ? CodeGenFunction::destroyARCStrongPrecise
530        : CodeGenFunction::destroyARCStrongImprecise);
531 
532     CleanupKind cleanupKind = CGF.getARCCleanupKind();
533     CGF.pushDestroy(cleanupKind, addr, var.getType(), destroyer,
534                     cleanupKind & EHCleanup);
535     break;
536   }
537   case Qualifiers::OCL_Autoreleasing:
538     // nothing to do
539     break;
540 
541   case Qualifiers::OCL_Weak:
542     // __weak objects always get EH cleanups; otherwise, exceptions
543     // could cause really nasty crashes instead of mere leaks.
544     CGF.pushDestroy(NormalAndEHCleanup, addr, var.getType(),
545                     CodeGenFunction::destroyARCWeak,
546                     /*useEHCleanup*/ true);
547     break;
548   }
549 }
550 
551 static bool isAccessedBy(const VarDecl &var, const Stmt *s) {
552   if (const Expr *e = dyn_cast<Expr>(s)) {
553     // Skip the most common kinds of expressions that make
554     // hierarchy-walking expensive.
555     s = e = e->IgnoreParenCasts();
556 
557     if (const DeclRefExpr *ref = dyn_cast<DeclRefExpr>(e))
558       return (ref->getDecl() == &var);
559     if (const BlockExpr *be = dyn_cast<BlockExpr>(e)) {
560       const BlockDecl *block = be->getBlockDecl();
561       for (const auto &I : block->captures()) {
562         if (I.getVariable() == &var)
563           return true;
564       }
565     }
566   }
567 
568   for (Stmt::const_child_range children = s->children(); children; ++children)
569     // children might be null; as in missing decl or conditional of an if-stmt.
570     if ((*children) && isAccessedBy(var, *children))
571       return true;
572 
573   return false;
574 }
575 
576 static bool isAccessedBy(const ValueDecl *decl, const Expr *e) {
577   if (!decl) return false;
578   if (!isa<VarDecl>(decl)) return false;
579   const VarDecl *var = cast<VarDecl>(decl);
580   return isAccessedBy(*var, e);
581 }
582 
583 static void drillIntoBlockVariable(CodeGenFunction &CGF,
584                                    LValue &lvalue,
585                                    const VarDecl *var) {
586   lvalue.setAddress(CGF.BuildBlockByrefAddress(lvalue.getAddress(), var));
587 }
588 
589 void CodeGenFunction::EmitScalarInit(const Expr *init,
590                                      const ValueDecl *D,
591                                      LValue lvalue,
592                                      bool capturedByInit) {
593   Qualifiers::ObjCLifetime lifetime = lvalue.getObjCLifetime();
594   if (!lifetime) {
595     llvm::Value *value = EmitScalarExpr(init);
596     if (capturedByInit)
597       drillIntoBlockVariable(*this, lvalue, cast<VarDecl>(D));
598     EmitStoreThroughLValue(RValue::get(value), lvalue, true);
599     return;
600   }
601 
602   if (const CXXDefaultInitExpr *DIE = dyn_cast<CXXDefaultInitExpr>(init))
603     init = DIE->getExpr();
604 
605   // If we're emitting a value with lifetime, we have to do the
606   // initialization *before* we leave the cleanup scopes.
607   if (const ExprWithCleanups *ewc = dyn_cast<ExprWithCleanups>(init)) {
608     enterFullExpression(ewc);
609     init = ewc->getSubExpr();
610   }
611   CodeGenFunction::RunCleanupsScope Scope(*this);
612 
613   // We have to maintain the illusion that the variable is
614   // zero-initialized.  If the variable might be accessed in its
615   // initializer, zero-initialize before running the initializer, then
616   // actually perform the initialization with an assign.
617   bool accessedByInit = false;
618   if (lifetime != Qualifiers::OCL_ExplicitNone)
619     accessedByInit = (capturedByInit || isAccessedBy(D, init));
620   if (accessedByInit) {
621     LValue tempLV = lvalue;
622     // Drill down to the __block object if necessary.
623     if (capturedByInit) {
624       // We can use a simple GEP for this because it can't have been
625       // moved yet.
626       tempLV.setAddress(Builder.CreateStructGEP(tempLV.getAddress(),
627                                    getByRefValueLLVMField(cast<VarDecl>(D))));
628     }
629 
630     llvm::PointerType *ty
631       = cast<llvm::PointerType>(tempLV.getAddress()->getType());
632     ty = cast<llvm::PointerType>(ty->getElementType());
633 
634     llvm::Value *zero = llvm::ConstantPointerNull::get(ty);
635 
636     // If __weak, we want to use a barrier under certain conditions.
637     if (lifetime == Qualifiers::OCL_Weak)
638       EmitARCInitWeak(tempLV.getAddress(), zero);
639 
640     // Otherwise just do a simple store.
641     else
642       EmitStoreOfScalar(zero, tempLV, /* isInitialization */ true);
643   }
644 
645   // Emit the initializer.
646   llvm::Value *value = nullptr;
647 
648   switch (lifetime) {
649   case Qualifiers::OCL_None:
650     llvm_unreachable("present but none");
651 
652   case Qualifiers::OCL_ExplicitNone:
653     // nothing to do
654     value = EmitScalarExpr(init);
655     break;
656 
657   case Qualifiers::OCL_Strong: {
658     value = EmitARCRetainScalarExpr(init);
659     break;
660   }
661 
662   case Qualifiers::OCL_Weak: {
663     // No way to optimize a producing initializer into this.  It's not
664     // worth optimizing for, because the value will immediately
665     // disappear in the common case.
666     value = EmitScalarExpr(init);
667 
668     if (capturedByInit) drillIntoBlockVariable(*this, lvalue, cast<VarDecl>(D));
669     if (accessedByInit)
670       EmitARCStoreWeak(lvalue.getAddress(), value, /*ignored*/ true);
671     else
672       EmitARCInitWeak(lvalue.getAddress(), value);
673     return;
674   }
675 
676   case Qualifiers::OCL_Autoreleasing:
677     value = EmitARCRetainAutoreleaseScalarExpr(init);
678     break;
679   }
680 
681   if (capturedByInit) drillIntoBlockVariable(*this, lvalue, cast<VarDecl>(D));
682 
683   // If the variable might have been accessed by its initializer, we
684   // might have to initialize with a barrier.  We have to do this for
685   // both __weak and __strong, but __weak got filtered out above.
686   if (accessedByInit && lifetime == Qualifiers::OCL_Strong) {
687     llvm::Value *oldValue = EmitLoadOfScalar(lvalue, init->getExprLoc());
688     EmitStoreOfScalar(value, lvalue, /* isInitialization */ true);
689     EmitARCRelease(oldValue, ARCImpreciseLifetime);
690     return;
691   }
692 
693   EmitStoreOfScalar(value, lvalue, /* isInitialization */ true);
694 }
695 
696 /// EmitScalarInit - Initialize the given lvalue with the given object.
697 void CodeGenFunction::EmitScalarInit(llvm::Value *init, LValue lvalue) {
698   Qualifiers::ObjCLifetime lifetime = lvalue.getObjCLifetime();
699   if (!lifetime)
700     return EmitStoreThroughLValue(RValue::get(init), lvalue, true);
701 
702   switch (lifetime) {
703   case Qualifiers::OCL_None:
704     llvm_unreachable("present but none");
705 
706   case Qualifiers::OCL_ExplicitNone:
707     // nothing to do
708     break;
709 
710   case Qualifiers::OCL_Strong:
711     init = EmitARCRetain(lvalue.getType(), init);
712     break;
713 
714   case Qualifiers::OCL_Weak:
715     // Initialize and then skip the primitive store.
716     EmitARCInitWeak(lvalue.getAddress(), init);
717     return;
718 
719   case Qualifiers::OCL_Autoreleasing:
720     init = EmitARCRetainAutorelease(lvalue.getType(), init);
721     break;
722   }
723 
724   EmitStoreOfScalar(init, lvalue, /* isInitialization */ true);
725 }
726 
727 /// canEmitInitWithFewStoresAfterMemset - Decide whether we can emit the
728 /// non-zero parts of the specified initializer with equal or fewer than
729 /// NumStores scalar stores.
730 static bool canEmitInitWithFewStoresAfterMemset(llvm::Constant *Init,
731                                                 unsigned &NumStores) {
732   // Zero and Undef never requires any extra stores.
733   if (isa<llvm::ConstantAggregateZero>(Init) ||
734       isa<llvm::ConstantPointerNull>(Init) ||
735       isa<llvm::UndefValue>(Init))
736     return true;
737   if (isa<llvm::ConstantInt>(Init) || isa<llvm::ConstantFP>(Init) ||
738       isa<llvm::ConstantVector>(Init) || isa<llvm::BlockAddress>(Init) ||
739       isa<llvm::ConstantExpr>(Init))
740     return Init->isNullValue() || NumStores--;
741 
742   // See if we can emit each element.
743   if (isa<llvm::ConstantArray>(Init) || isa<llvm::ConstantStruct>(Init)) {
744     for (unsigned i = 0, e = Init->getNumOperands(); i != e; ++i) {
745       llvm::Constant *Elt = cast<llvm::Constant>(Init->getOperand(i));
746       if (!canEmitInitWithFewStoresAfterMemset(Elt, NumStores))
747         return false;
748     }
749     return true;
750   }
751 
752   if (llvm::ConstantDataSequential *CDS =
753         dyn_cast<llvm::ConstantDataSequential>(Init)) {
754     for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) {
755       llvm::Constant *Elt = CDS->getElementAsConstant(i);
756       if (!canEmitInitWithFewStoresAfterMemset(Elt, NumStores))
757         return false;
758     }
759     return true;
760   }
761 
762   // Anything else is hard and scary.
763   return false;
764 }
765 
766 /// emitStoresForInitAfterMemset - For inits that
767 /// canEmitInitWithFewStoresAfterMemset returned true for, emit the scalar
768 /// stores that would be required.
769 static void emitStoresForInitAfterMemset(llvm::Constant *Init, llvm::Value *Loc,
770                                          bool isVolatile, CGBuilderTy &Builder) {
771   assert(!Init->isNullValue() && !isa<llvm::UndefValue>(Init) &&
772          "called emitStoresForInitAfterMemset for zero or undef value.");
773 
774   if (isa<llvm::ConstantInt>(Init) || isa<llvm::ConstantFP>(Init) ||
775       isa<llvm::ConstantVector>(Init) || isa<llvm::BlockAddress>(Init) ||
776       isa<llvm::ConstantExpr>(Init)) {
777     Builder.CreateStore(Init, Loc, isVolatile);
778     return;
779   }
780 
781   if (llvm::ConstantDataSequential *CDS =
782         dyn_cast<llvm::ConstantDataSequential>(Init)) {
783     for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) {
784       llvm::Constant *Elt = CDS->getElementAsConstant(i);
785 
786       // If necessary, get a pointer to the element and emit it.
787       if (!Elt->isNullValue() && !isa<llvm::UndefValue>(Elt))
788         emitStoresForInitAfterMemset(Elt, Builder.CreateConstGEP2_32(Loc, 0, i),
789                                      isVolatile, Builder);
790     }
791     return;
792   }
793 
794   assert((isa<llvm::ConstantStruct>(Init) || isa<llvm::ConstantArray>(Init)) &&
795          "Unknown value type!");
796 
797   for (unsigned i = 0, e = Init->getNumOperands(); i != e; ++i) {
798     llvm::Constant *Elt = cast<llvm::Constant>(Init->getOperand(i));
799 
800     // If necessary, get a pointer to the element and emit it.
801     if (!Elt->isNullValue() && !isa<llvm::UndefValue>(Elt))
802       emitStoresForInitAfterMemset(Elt, Builder.CreateConstGEP2_32(Loc, 0, i),
803                                    isVolatile, Builder);
804   }
805 }
806 
807 
808 /// shouldUseMemSetPlusStoresToInitialize - Decide whether we should use memset
809 /// plus some stores to initialize a local variable instead of using a memcpy
810 /// from a constant global.  It is beneficial to use memset if the global is all
811 /// zeros, or mostly zeros and large.
812 static bool shouldUseMemSetPlusStoresToInitialize(llvm::Constant *Init,
813                                                   uint64_t GlobalSize) {
814   // If a global is all zeros, always use a memset.
815   if (isa<llvm::ConstantAggregateZero>(Init)) return true;
816 
817   // If a non-zero global is <= 32 bytes, always use a memcpy.  If it is large,
818   // do it if it will require 6 or fewer scalar stores.
819   // TODO: Should budget depends on the size?  Avoiding a large global warrants
820   // plopping in more stores.
821   unsigned StoreBudget = 6;
822   uint64_t SizeLimit = 32;
823 
824   return GlobalSize > SizeLimit &&
825          canEmitInitWithFewStoresAfterMemset(Init, StoreBudget);
826 }
827 
828 /// Should we use the LLVM lifetime intrinsics for the given local variable?
829 static bool shouldUseLifetimeMarkers(CodeGenFunction &CGF, uint64_t Size) {
830   // For now, only in optimized builds.
831   if (CGF.CGM.getCodeGenOpts().OptimizationLevel == 0)
832     return false;
833 
834   // Limit the size of marked objects to 32 bytes. We don't want to increase
835   // compile time by marking tiny objects.
836   unsigned SizeThreshold = 32;
837 
838   return Size > SizeThreshold;
839 }
840 
841 /// EmitAutoVarDecl - Emit code and set up an entry in LocalDeclMap for a
842 /// variable declaration with auto, register, or no storage class specifier.
843 /// These turn into simple stack objects, or GlobalValues depending on target.
844 void CodeGenFunction::EmitAutoVarDecl(const VarDecl &D) {
845   AutoVarEmission emission = EmitAutoVarAlloca(D);
846   EmitAutoVarInit(emission);
847   EmitAutoVarCleanups(emission);
848 }
849 
850 /// Emit a lifetime.begin marker if some criteria are satisfied.
851 /// \return a pointer to the temporary size Value if a marker was emitted, null
852 /// otherwise
853 llvm::Value *CodeGenFunction::EmitLifetimeStart(uint64_t Size,
854                                                 llvm::Value *Addr) {
855   if (!shouldUseLifetimeMarkers(*this, Size))
856     return nullptr;
857 
858   llvm::Value *SizeV = llvm::ConstantInt::get(Int64Ty, Size);
859   llvm::Value *CastAddr = Builder.CreateBitCast(Addr, Int8PtrTy);
860   Builder.CreateCall2(CGM.getLLVMLifetimeStartFn(), SizeV, CastAddr)
861       ->setDoesNotThrow();
862   return SizeV;
863 }
864 
865 void CodeGenFunction::EmitLifetimeEnd(llvm::Value *Size, llvm::Value *Addr) {
866   llvm::Value *CastAddr = Builder.CreateBitCast(Addr, Int8PtrTy);
867   Builder.CreateCall2(CGM.getLLVMLifetimeEndFn(), Size, CastAddr)
868       ->setDoesNotThrow();
869 }
870 
871 /// EmitAutoVarAlloca - Emit the alloca and debug information for a
872 /// local variable.  Does not emit initialization or destruction.
873 CodeGenFunction::AutoVarEmission
874 CodeGenFunction::EmitAutoVarAlloca(const VarDecl &D) {
875   QualType Ty = D.getType();
876 
877   AutoVarEmission emission(D);
878 
879   bool isByRef = D.hasAttr<BlocksAttr>();
880   emission.IsByRef = isByRef;
881 
882   CharUnits alignment = getContext().getDeclAlign(&D);
883   emission.Alignment = alignment;
884 
885   // If the type is variably-modified, emit all the VLA sizes for it.
886   if (Ty->isVariablyModifiedType())
887     EmitVariablyModifiedType(Ty);
888 
889   llvm::Value *DeclPtr;
890   if (Ty->isConstantSizeType()) {
891     bool NRVO = getLangOpts().ElideConstructors &&
892       D.isNRVOVariable();
893 
894     // If this value is an array or struct with a statically determinable
895     // constant initializer, there are optimizations we can do.
896     //
897     // TODO: We should constant-evaluate the initializer of any variable,
898     // as long as it is initialized by a constant expression. Currently,
899     // isConstantInitializer produces wrong answers for structs with
900     // reference or bitfield members, and a few other cases, and checking
901     // for POD-ness protects us from some of these.
902     if (D.getInit() && (Ty->isArrayType() || Ty->isRecordType()) &&
903         (D.isConstexpr() ||
904          ((Ty.isPODType(getContext()) ||
905            getContext().getBaseElementType(Ty)->isObjCObjectPointerType()) &&
906           D.getInit()->isConstantInitializer(getContext(), false)))) {
907 
908       // If the variable's a const type, and it's neither an NRVO
909       // candidate nor a __block variable and has no mutable members,
910       // emit it as a global instead.
911       if (CGM.getCodeGenOpts().MergeAllConstants && !NRVO && !isByRef &&
912           CGM.isTypeConstant(Ty, true)) {
913         EmitStaticVarDecl(D, llvm::GlobalValue::InternalLinkage);
914 
915         emission.Address = nullptr; // signal this condition to later callbacks
916         assert(emission.wasEmittedAsGlobal());
917         return emission;
918       }
919 
920       // Otherwise, tell the initialization code that we're in this case.
921       emission.IsConstantAggregate = true;
922     }
923 
924     // A normal fixed sized variable becomes an alloca in the entry block,
925     // unless it's an NRVO variable.
926     llvm::Type *LTy = ConvertTypeForMem(Ty);
927 
928     if (NRVO) {
929       // The named return value optimization: allocate this variable in the
930       // return slot, so that we can elide the copy when returning this
931       // variable (C++0x [class.copy]p34).
932       DeclPtr = ReturnValue;
933 
934       if (const RecordType *RecordTy = Ty->getAs<RecordType>()) {
935         if (!cast<CXXRecordDecl>(RecordTy->getDecl())->hasTrivialDestructor()) {
936           // Create a flag that is used to indicate when the NRVO was applied
937           // to this variable. Set it to zero to indicate that NRVO was not
938           // applied.
939           llvm::Value *Zero = Builder.getFalse();
940           llvm::Value *NRVOFlag = CreateTempAlloca(Zero->getType(), "nrvo");
941           EnsureInsertPoint();
942           Builder.CreateStore(Zero, NRVOFlag);
943 
944           // Record the NRVO flag for this variable.
945           NRVOFlags[&D] = NRVOFlag;
946           emission.NRVOFlag = NRVOFlag;
947         }
948       }
949     } else {
950       if (isByRef)
951         LTy = BuildByRefType(&D);
952 
953       llvm::AllocaInst *Alloc = CreateTempAlloca(LTy);
954       Alloc->setName(D.getName());
955 
956       CharUnits allocaAlignment = alignment;
957       if (isByRef)
958         allocaAlignment = std::max(allocaAlignment,
959             getContext().toCharUnitsFromBits(getTarget().getPointerAlign(0)));
960       Alloc->setAlignment(allocaAlignment.getQuantity());
961       DeclPtr = Alloc;
962 
963       // Emit a lifetime intrinsic if meaningful.  There's no point
964       // in doing this if we don't have a valid insertion point (?).
965       uint64_t size = CGM.getDataLayout().getTypeAllocSize(LTy);
966       if (HaveInsertPoint() && EmitLifetimeStart(size, Alloc)) {
967         emission.SizeForLifetimeMarkers = llvm::ConstantInt::get(Int64Ty, size);
968       } else {
969         assert(!emission.useLifetimeMarkers());
970       }
971     }
972   } else {
973     EnsureInsertPoint();
974 
975     if (!DidCallStackSave) {
976       // Save the stack.
977       llvm::Value *Stack = CreateTempAlloca(Int8PtrTy, "saved_stack");
978 
979       llvm::Value *F = CGM.getIntrinsic(llvm::Intrinsic::stacksave);
980       llvm::Value *V = Builder.CreateCall(F);
981 
982       Builder.CreateStore(V, Stack);
983 
984       DidCallStackSave = true;
985 
986       // Push a cleanup block and restore the stack there.
987       // FIXME: in general circumstances, this should be an EH cleanup.
988       pushStackRestore(NormalCleanup, Stack);
989     }
990 
991     llvm::Value *elementCount;
992     QualType elementType;
993     std::tie(elementCount, elementType) = getVLASize(Ty);
994 
995     llvm::Type *llvmTy = ConvertTypeForMem(elementType);
996 
997     // Allocate memory for the array.
998     llvm::AllocaInst *vla = Builder.CreateAlloca(llvmTy, elementCount, "vla");
999     vla->setAlignment(alignment.getQuantity());
1000 
1001     DeclPtr = vla;
1002   }
1003 
1004   llvm::Value *&DMEntry = LocalDeclMap[&D];
1005   assert(!DMEntry && "Decl already exists in localdeclmap!");
1006   DMEntry = DeclPtr;
1007   emission.Address = DeclPtr;
1008 
1009   // Emit debug info for local var declaration.
1010   if (HaveInsertPoint())
1011     if (CGDebugInfo *DI = getDebugInfo()) {
1012       if (CGM.getCodeGenOpts().getDebugInfo()
1013             >= CodeGenOptions::LimitedDebugInfo) {
1014         DI->setLocation(D.getLocation());
1015         DI->EmitDeclareOfAutoVariable(&D, DeclPtr, Builder);
1016       }
1017     }
1018 
1019   if (D.hasAttr<AnnotateAttr>())
1020       EmitVarAnnotations(&D, emission.Address);
1021 
1022   return emission;
1023 }
1024 
1025 /// Determines whether the given __block variable is potentially
1026 /// captured by the given expression.
1027 static bool isCapturedBy(const VarDecl &var, const Expr *e) {
1028   // Skip the most common kinds of expressions that make
1029   // hierarchy-walking expensive.
1030   e = e->IgnoreParenCasts();
1031 
1032   if (const BlockExpr *be = dyn_cast<BlockExpr>(e)) {
1033     const BlockDecl *block = be->getBlockDecl();
1034     for (const auto &I : block->captures()) {
1035       if (I.getVariable() == &var)
1036         return true;
1037     }
1038 
1039     // No need to walk into the subexpressions.
1040     return false;
1041   }
1042 
1043   if (const StmtExpr *SE = dyn_cast<StmtExpr>(e)) {
1044     const CompoundStmt *CS = SE->getSubStmt();
1045     for (const auto *BI : CS->body())
1046       if (const auto *E = dyn_cast<Expr>(BI)) {
1047         if (isCapturedBy(var, E))
1048             return true;
1049       }
1050       else if (const auto *DS = dyn_cast<DeclStmt>(BI)) {
1051           // special case declarations
1052           for (const auto *I : DS->decls()) {
1053               if (const auto *VD = dyn_cast<VarDecl>((I))) {
1054                 const Expr *Init = VD->getInit();
1055                 if (Init && isCapturedBy(var, Init))
1056                   return true;
1057               }
1058           }
1059       }
1060       else
1061         // FIXME. Make safe assumption assuming arbitrary statements cause capturing.
1062         // Later, provide code to poke into statements for capture analysis.
1063         return true;
1064     return false;
1065   }
1066 
1067   for (Stmt::const_child_range children = e->children(); children; ++children)
1068     if (isCapturedBy(var, cast<Expr>(*children)))
1069       return true;
1070 
1071   return false;
1072 }
1073 
1074 /// \brief Determine whether the given initializer is trivial in the sense
1075 /// that it requires no code to be generated.
1076 static bool isTrivialInitializer(const Expr *Init) {
1077   if (!Init)
1078     return true;
1079 
1080   if (const CXXConstructExpr *Construct = dyn_cast<CXXConstructExpr>(Init))
1081     if (CXXConstructorDecl *Constructor = Construct->getConstructor())
1082       if (Constructor->isTrivial() &&
1083           Constructor->isDefaultConstructor() &&
1084           !Construct->requiresZeroInitialization())
1085         return true;
1086 
1087   return false;
1088 }
1089 void CodeGenFunction::EmitAutoVarInit(const AutoVarEmission &emission) {
1090   assert(emission.Variable && "emission was not valid!");
1091 
1092   // If this was emitted as a global constant, we're done.
1093   if (emission.wasEmittedAsGlobal()) return;
1094 
1095   const VarDecl &D = *emission.Variable;
1096   QualType type = D.getType();
1097 
1098   // If this local has an initializer, emit it now.
1099   const Expr *Init = D.getInit();
1100 
1101   // If we are at an unreachable point, we don't need to emit the initializer
1102   // unless it contains a label.
1103   if (!HaveInsertPoint()) {
1104     if (!Init || !ContainsLabel(Init)) return;
1105     EnsureInsertPoint();
1106   }
1107 
1108   // Initialize the structure of a __block variable.
1109   if (emission.IsByRef)
1110     emitByrefStructureInit(emission);
1111 
1112   if (isTrivialInitializer(Init))
1113     return;
1114 
1115   CharUnits alignment = emission.Alignment;
1116 
1117   // Check whether this is a byref variable that's potentially
1118   // captured and moved by its own initializer.  If so, we'll need to
1119   // emit the initializer first, then copy into the variable.
1120   bool capturedByInit = emission.IsByRef && isCapturedBy(D, Init);
1121 
1122   llvm::Value *Loc =
1123     capturedByInit ? emission.Address : emission.getObjectAddress(*this);
1124 
1125   llvm::Constant *constant = nullptr;
1126   if (emission.IsConstantAggregate || D.isConstexpr()) {
1127     assert(!capturedByInit && "constant init contains a capturing block?");
1128     constant = CGM.EmitConstantInit(D, this);
1129   }
1130 
1131   if (!constant) {
1132     LValue lv = MakeAddrLValue(Loc, type, alignment);
1133     lv.setNonGC(true);
1134     return EmitExprAsInit(Init, &D, lv, capturedByInit);
1135   }
1136 
1137   if (!emission.IsConstantAggregate) {
1138     // For simple scalar/complex initialization, store the value directly.
1139     LValue lv = MakeAddrLValue(Loc, type, alignment);
1140     lv.setNonGC(true);
1141     return EmitStoreThroughLValue(RValue::get(constant), lv, true);
1142   }
1143 
1144   // If this is a simple aggregate initialization, we can optimize it
1145   // in various ways.
1146   bool isVolatile = type.isVolatileQualified();
1147 
1148   llvm::Value *SizeVal =
1149     llvm::ConstantInt::get(IntPtrTy,
1150                            getContext().getTypeSizeInChars(type).getQuantity());
1151 
1152   llvm::Type *BP = Int8PtrTy;
1153   if (Loc->getType() != BP)
1154     Loc = Builder.CreateBitCast(Loc, BP);
1155 
1156   // If the initializer is all or mostly zeros, codegen with memset then do
1157   // a few stores afterward.
1158   if (shouldUseMemSetPlusStoresToInitialize(constant,
1159                 CGM.getDataLayout().getTypeAllocSize(constant->getType()))) {
1160     Builder.CreateMemSet(Loc, llvm::ConstantInt::get(Int8Ty, 0), SizeVal,
1161                          alignment.getQuantity(), isVolatile);
1162     // Zero and undef don't require a stores.
1163     if (!constant->isNullValue() && !isa<llvm::UndefValue>(constant)) {
1164       Loc = Builder.CreateBitCast(Loc, constant->getType()->getPointerTo());
1165       emitStoresForInitAfterMemset(constant, Loc, isVolatile, Builder);
1166     }
1167   } else {
1168     // Otherwise, create a temporary global with the initializer then
1169     // memcpy from the global to the alloca.
1170     std::string Name = getStaticDeclName(CGM, D);
1171     llvm::GlobalVariable *GV =
1172       new llvm::GlobalVariable(CGM.getModule(), constant->getType(), true,
1173                                llvm::GlobalValue::PrivateLinkage,
1174                                constant, Name);
1175     GV->setAlignment(alignment.getQuantity());
1176     GV->setUnnamedAddr(true);
1177 
1178     llvm::Value *SrcPtr = GV;
1179     if (SrcPtr->getType() != BP)
1180       SrcPtr = Builder.CreateBitCast(SrcPtr, BP);
1181 
1182     Builder.CreateMemCpy(Loc, SrcPtr, SizeVal, alignment.getQuantity(),
1183                          isVolatile);
1184   }
1185 }
1186 
1187 /// Emit an expression as an initializer for a variable at the given
1188 /// location.  The expression is not necessarily the normal
1189 /// initializer for the variable, and the address is not necessarily
1190 /// its normal location.
1191 ///
1192 /// \param init the initializing expression
1193 /// \param var the variable to act as if we're initializing
1194 /// \param loc the address to initialize; its type is a pointer
1195 ///   to the LLVM mapping of the variable's type
1196 /// \param alignment the alignment of the address
1197 /// \param capturedByInit true if the variable is a __block variable
1198 ///   whose address is potentially changed by the initializer
1199 void CodeGenFunction::EmitExprAsInit(const Expr *init,
1200                                      const ValueDecl *D,
1201                                      LValue lvalue,
1202                                      bool capturedByInit) {
1203   QualType type = D->getType();
1204 
1205   if (type->isReferenceType()) {
1206     RValue rvalue = EmitReferenceBindingToExpr(init);
1207     if (capturedByInit)
1208       drillIntoBlockVariable(*this, lvalue, cast<VarDecl>(D));
1209     EmitStoreThroughLValue(rvalue, lvalue, true);
1210     return;
1211   }
1212   switch (getEvaluationKind(type)) {
1213   case TEK_Scalar:
1214     EmitScalarInit(init, D, lvalue, capturedByInit);
1215     return;
1216   case TEK_Complex: {
1217     ComplexPairTy complex = EmitComplexExpr(init);
1218     if (capturedByInit)
1219       drillIntoBlockVariable(*this, lvalue, cast<VarDecl>(D));
1220     EmitStoreOfComplex(complex, lvalue, /*init*/ true);
1221     return;
1222   }
1223   case TEK_Aggregate:
1224     if (type->isAtomicType()) {
1225       EmitAtomicInit(const_cast<Expr*>(init), lvalue);
1226     } else {
1227       // TODO: how can we delay here if D is captured by its initializer?
1228       EmitAggExpr(init, AggValueSlot::forLValue(lvalue,
1229                                               AggValueSlot::IsDestructed,
1230                                          AggValueSlot::DoesNotNeedGCBarriers,
1231                                               AggValueSlot::IsNotAliased));
1232     }
1233     return;
1234   }
1235   llvm_unreachable("bad evaluation kind");
1236 }
1237 
1238 /// Enter a destroy cleanup for the given local variable.
1239 void CodeGenFunction::emitAutoVarTypeCleanup(
1240                             const CodeGenFunction::AutoVarEmission &emission,
1241                             QualType::DestructionKind dtorKind) {
1242   assert(dtorKind != QualType::DK_none);
1243 
1244   // Note that for __block variables, we want to destroy the
1245   // original stack object, not the possibly forwarded object.
1246   llvm::Value *addr = emission.getObjectAddress(*this);
1247 
1248   const VarDecl *var = emission.Variable;
1249   QualType type = var->getType();
1250 
1251   CleanupKind cleanupKind = NormalAndEHCleanup;
1252   CodeGenFunction::Destroyer *destroyer = nullptr;
1253 
1254   switch (dtorKind) {
1255   case QualType::DK_none:
1256     llvm_unreachable("no cleanup for trivially-destructible variable");
1257 
1258   case QualType::DK_cxx_destructor:
1259     // If there's an NRVO flag on the emission, we need a different
1260     // cleanup.
1261     if (emission.NRVOFlag) {
1262       assert(!type->isArrayType());
1263       CXXDestructorDecl *dtor = type->getAsCXXRecordDecl()->getDestructor();
1264       EHStack.pushCleanup<DestroyNRVOVariable>(cleanupKind, addr, dtor,
1265                                                emission.NRVOFlag);
1266       return;
1267     }
1268     break;
1269 
1270   case QualType::DK_objc_strong_lifetime:
1271     // Suppress cleanups for pseudo-strong variables.
1272     if (var->isARCPseudoStrong()) return;
1273 
1274     // Otherwise, consider whether to use an EH cleanup or not.
1275     cleanupKind = getARCCleanupKind();
1276 
1277     // Use the imprecise destroyer by default.
1278     if (!var->hasAttr<ObjCPreciseLifetimeAttr>())
1279       destroyer = CodeGenFunction::destroyARCStrongImprecise;
1280     break;
1281 
1282   case QualType::DK_objc_weak_lifetime:
1283     break;
1284   }
1285 
1286   // If we haven't chosen a more specific destroyer, use the default.
1287   if (!destroyer) destroyer = getDestroyer(dtorKind);
1288 
1289   // Use an EH cleanup in array destructors iff the destructor itself
1290   // is being pushed as an EH cleanup.
1291   bool useEHCleanup = (cleanupKind & EHCleanup);
1292   EHStack.pushCleanup<DestroyObject>(cleanupKind, addr, type, destroyer,
1293                                      useEHCleanup);
1294 }
1295 
1296 void CodeGenFunction::EmitAutoVarCleanups(const AutoVarEmission &emission) {
1297   assert(emission.Variable && "emission was not valid!");
1298 
1299   // If this was emitted as a global constant, we're done.
1300   if (emission.wasEmittedAsGlobal()) return;
1301 
1302   // If we don't have an insertion point, we're done.  Sema prevents
1303   // us from jumping into any of these scopes anyway.
1304   if (!HaveInsertPoint()) return;
1305 
1306   const VarDecl &D = *emission.Variable;
1307 
1308   // Make sure we call @llvm.lifetime.end.  This needs to happen
1309   // *last*, so the cleanup needs to be pushed *first*.
1310   if (emission.useLifetimeMarkers()) {
1311     EHStack.pushCleanup<CallLifetimeEnd>(NormalCleanup,
1312                                          emission.getAllocatedAddress(),
1313                                          emission.getSizeForLifetimeMarkers());
1314   }
1315 
1316   // Check the type for a cleanup.
1317   if (QualType::DestructionKind dtorKind = D.getType().isDestructedType())
1318     emitAutoVarTypeCleanup(emission, dtorKind);
1319 
1320   // In GC mode, honor objc_precise_lifetime.
1321   if (getLangOpts().getGC() != LangOptions::NonGC &&
1322       D.hasAttr<ObjCPreciseLifetimeAttr>()) {
1323     EHStack.pushCleanup<ExtendGCLifetime>(NormalCleanup, &D);
1324   }
1325 
1326   // Handle the cleanup attribute.
1327   if (const CleanupAttr *CA = D.getAttr<CleanupAttr>()) {
1328     const FunctionDecl *FD = CA->getFunctionDecl();
1329 
1330     llvm::Constant *F = CGM.GetAddrOfFunction(FD);
1331     assert(F && "Could not find function!");
1332 
1333     const CGFunctionInfo &Info = CGM.getTypes().arrangeFunctionDeclaration(FD);
1334     EHStack.pushCleanup<CallCleanupFunction>(NormalAndEHCleanup, F, &Info, &D);
1335   }
1336 
1337   // If this is a block variable, call _Block_object_destroy
1338   // (on the unforwarded address).
1339   if (emission.IsByRef)
1340     enterByrefCleanup(emission);
1341 }
1342 
1343 CodeGenFunction::Destroyer *
1344 CodeGenFunction::getDestroyer(QualType::DestructionKind kind) {
1345   switch (kind) {
1346   case QualType::DK_none: llvm_unreachable("no destroyer for trivial dtor");
1347   case QualType::DK_cxx_destructor:
1348     return destroyCXXObject;
1349   case QualType::DK_objc_strong_lifetime:
1350     return destroyARCStrongPrecise;
1351   case QualType::DK_objc_weak_lifetime:
1352     return destroyARCWeak;
1353   }
1354   llvm_unreachable("Unknown DestructionKind");
1355 }
1356 
1357 /// pushEHDestroy - Push the standard destructor for the given type as
1358 /// an EH-only cleanup.
1359 void CodeGenFunction::pushEHDestroy(QualType::DestructionKind dtorKind,
1360                                   llvm::Value *addr, QualType type) {
1361   assert(dtorKind && "cannot push destructor for trivial type");
1362   assert(needsEHCleanup(dtorKind));
1363 
1364   pushDestroy(EHCleanup, addr, type, getDestroyer(dtorKind), true);
1365 }
1366 
1367 /// pushDestroy - Push the standard destructor for the given type as
1368 /// at least a normal cleanup.
1369 void CodeGenFunction::pushDestroy(QualType::DestructionKind dtorKind,
1370                                   llvm::Value *addr, QualType type) {
1371   assert(dtorKind && "cannot push destructor for trivial type");
1372 
1373   CleanupKind cleanupKind = getCleanupKind(dtorKind);
1374   pushDestroy(cleanupKind, addr, type, getDestroyer(dtorKind),
1375               cleanupKind & EHCleanup);
1376 }
1377 
1378 void CodeGenFunction::pushDestroy(CleanupKind cleanupKind, llvm::Value *addr,
1379                                   QualType type, Destroyer *destroyer,
1380                                   bool useEHCleanupForArray) {
1381   pushFullExprCleanup<DestroyObject>(cleanupKind, addr, type,
1382                                      destroyer, useEHCleanupForArray);
1383 }
1384 
1385 void CodeGenFunction::pushStackRestore(CleanupKind Kind, llvm::Value *SPMem) {
1386   EHStack.pushCleanup<CallStackRestore>(Kind, SPMem);
1387 }
1388 
1389 void CodeGenFunction::pushLifetimeExtendedDestroy(
1390     CleanupKind cleanupKind, llvm::Value *addr, QualType type,
1391     Destroyer *destroyer, bool useEHCleanupForArray) {
1392   assert(!isInConditionalBranch() &&
1393          "performing lifetime extension from within conditional");
1394 
1395   // Push an EH-only cleanup for the object now.
1396   // FIXME: When popping normal cleanups, we need to keep this EH cleanup
1397   // around in case a temporary's destructor throws an exception.
1398   if (cleanupKind & EHCleanup)
1399     EHStack.pushCleanup<DestroyObject>(
1400         static_cast<CleanupKind>(cleanupKind & ~NormalCleanup), addr, type,
1401         destroyer, useEHCleanupForArray);
1402 
1403   // Remember that we need to push a full cleanup for the object at the
1404   // end of the full-expression.
1405   pushCleanupAfterFullExpr<DestroyObject>(
1406       cleanupKind, addr, type, destroyer, useEHCleanupForArray);
1407 }
1408 
1409 void
1410 CodeGenFunction::pushLifetimeEndMarker(StorageDuration SD,
1411                                        llvm::Value *ReferenceTemporary,
1412                                        llvm::Value *SizeForLifeTimeMarkers) {
1413   // SizeForLifeTimeMarkers is null in case no corresponding
1414   // @llvm.lifetime.start was emitted: there is nothing to do then.
1415   if (!SizeForLifeTimeMarkers)
1416     return;
1417 
1418   switch (SD) {
1419   case SD_FullExpression:
1420     pushFullExprCleanup<CallLifetimeEnd>(NormalAndEHCleanup, ReferenceTemporary,
1421                                          SizeForLifeTimeMarkers);
1422     return;
1423   case SD_Automatic:
1424     EHStack.pushCleanup<CallLifetimeEnd>(static_cast<CleanupKind>(EHCleanup),
1425                                          ReferenceTemporary,
1426                                          SizeForLifeTimeMarkers);
1427     pushCleanupAfterFullExpr<CallLifetimeEnd>(
1428         NormalAndEHCleanup, ReferenceTemporary, SizeForLifeTimeMarkers);
1429     return;
1430   default:
1431     llvm_unreachable("unexpected storage duration for Lifetime markers");
1432   }
1433 }
1434 
1435 /// emitDestroy - Immediately perform the destruction of the given
1436 /// object.
1437 ///
1438 /// \param addr - the address of the object; a type*
1439 /// \param type - the type of the object; if an array type, all
1440 ///   objects are destroyed in reverse order
1441 /// \param destroyer - the function to call to destroy individual
1442 ///   elements
1443 /// \param useEHCleanupForArray - whether an EH cleanup should be
1444 ///   used when destroying array elements, in case one of the
1445 ///   destructions throws an exception
1446 void CodeGenFunction::emitDestroy(llvm::Value *addr, QualType type,
1447                                   Destroyer *destroyer,
1448                                   bool useEHCleanupForArray) {
1449   const ArrayType *arrayType = getContext().getAsArrayType(type);
1450   if (!arrayType)
1451     return destroyer(*this, addr, type);
1452 
1453   llvm::Value *begin = addr;
1454   llvm::Value *length = emitArrayLength(arrayType, type, begin);
1455 
1456   // Normally we have to check whether the array is zero-length.
1457   bool checkZeroLength = true;
1458 
1459   // But if the array length is constant, we can suppress that.
1460   if (llvm::ConstantInt *constLength = dyn_cast<llvm::ConstantInt>(length)) {
1461     // ...and if it's constant zero, we can just skip the entire thing.
1462     if (constLength->isZero()) return;
1463     checkZeroLength = false;
1464   }
1465 
1466   llvm::Value *end = Builder.CreateInBoundsGEP(begin, length);
1467   emitArrayDestroy(begin, end, type, destroyer,
1468                    checkZeroLength, useEHCleanupForArray);
1469 }
1470 
1471 /// emitArrayDestroy - Destroys all the elements of the given array,
1472 /// beginning from last to first.  The array cannot be zero-length.
1473 ///
1474 /// \param begin - a type* denoting the first element of the array
1475 /// \param end - a type* denoting one past the end of the array
1476 /// \param type - the element type of the array
1477 /// \param destroyer - the function to call to destroy elements
1478 /// \param useEHCleanup - whether to push an EH cleanup to destroy
1479 ///   the remaining elements in case the destruction of a single
1480 ///   element throws
1481 void CodeGenFunction::emitArrayDestroy(llvm::Value *begin,
1482                                        llvm::Value *end,
1483                                        QualType type,
1484                                        Destroyer *destroyer,
1485                                        bool checkZeroLength,
1486                                        bool useEHCleanup) {
1487   assert(!type->isArrayType());
1488 
1489   // The basic structure here is a do-while loop, because we don't
1490   // need to check for the zero-element case.
1491   llvm::BasicBlock *bodyBB = createBasicBlock("arraydestroy.body");
1492   llvm::BasicBlock *doneBB = createBasicBlock("arraydestroy.done");
1493 
1494   if (checkZeroLength) {
1495     llvm::Value *isEmpty = Builder.CreateICmpEQ(begin, end,
1496                                                 "arraydestroy.isempty");
1497     Builder.CreateCondBr(isEmpty, doneBB, bodyBB);
1498   }
1499 
1500   // Enter the loop body, making that address the current address.
1501   llvm::BasicBlock *entryBB = Builder.GetInsertBlock();
1502   EmitBlock(bodyBB);
1503   llvm::PHINode *elementPast =
1504     Builder.CreatePHI(begin->getType(), 2, "arraydestroy.elementPast");
1505   elementPast->addIncoming(end, entryBB);
1506 
1507   // Shift the address back by one element.
1508   llvm::Value *negativeOne = llvm::ConstantInt::get(SizeTy, -1, true);
1509   llvm::Value *element = Builder.CreateInBoundsGEP(elementPast, negativeOne,
1510                                                    "arraydestroy.element");
1511 
1512   if (useEHCleanup)
1513     pushRegularPartialArrayCleanup(begin, element, type, destroyer);
1514 
1515   // Perform the actual destruction there.
1516   destroyer(*this, element, type);
1517 
1518   if (useEHCleanup)
1519     PopCleanupBlock();
1520 
1521   // Check whether we've reached the end.
1522   llvm::Value *done = Builder.CreateICmpEQ(element, begin, "arraydestroy.done");
1523   Builder.CreateCondBr(done, doneBB, bodyBB);
1524   elementPast->addIncoming(element, Builder.GetInsertBlock());
1525 
1526   // Done.
1527   EmitBlock(doneBB);
1528 }
1529 
1530 /// Perform partial array destruction as if in an EH cleanup.  Unlike
1531 /// emitArrayDestroy, the element type here may still be an array type.
1532 static void emitPartialArrayDestroy(CodeGenFunction &CGF,
1533                                     llvm::Value *begin, llvm::Value *end,
1534                                     QualType type,
1535                                     CodeGenFunction::Destroyer *destroyer) {
1536   // If the element type is itself an array, drill down.
1537   unsigned arrayDepth = 0;
1538   while (const ArrayType *arrayType = CGF.getContext().getAsArrayType(type)) {
1539     // VLAs don't require a GEP index to walk into.
1540     if (!isa<VariableArrayType>(arrayType))
1541       arrayDepth++;
1542     type = arrayType->getElementType();
1543   }
1544 
1545   if (arrayDepth) {
1546     llvm::Value *zero = llvm::ConstantInt::get(CGF.SizeTy, arrayDepth+1);
1547 
1548     SmallVector<llvm::Value*,4> gepIndices(arrayDepth, zero);
1549     begin = CGF.Builder.CreateInBoundsGEP(begin, gepIndices, "pad.arraybegin");
1550     end = CGF.Builder.CreateInBoundsGEP(end, gepIndices, "pad.arrayend");
1551   }
1552 
1553   // Destroy the array.  We don't ever need an EH cleanup because we
1554   // assume that we're in an EH cleanup ourselves, so a throwing
1555   // destructor causes an immediate terminate.
1556   CGF.emitArrayDestroy(begin, end, type, destroyer,
1557                        /*checkZeroLength*/ true, /*useEHCleanup*/ false);
1558 }
1559 
1560 namespace {
1561   /// RegularPartialArrayDestroy - a cleanup which performs a partial
1562   /// array destroy where the end pointer is regularly determined and
1563   /// does not need to be loaded from a local.
1564   class RegularPartialArrayDestroy : public EHScopeStack::Cleanup {
1565     llvm::Value *ArrayBegin;
1566     llvm::Value *ArrayEnd;
1567     QualType ElementType;
1568     CodeGenFunction::Destroyer *Destroyer;
1569   public:
1570     RegularPartialArrayDestroy(llvm::Value *arrayBegin, llvm::Value *arrayEnd,
1571                                QualType elementType,
1572                                CodeGenFunction::Destroyer *destroyer)
1573       : ArrayBegin(arrayBegin), ArrayEnd(arrayEnd),
1574         ElementType(elementType), Destroyer(destroyer) {}
1575 
1576     void Emit(CodeGenFunction &CGF, Flags flags) override {
1577       emitPartialArrayDestroy(CGF, ArrayBegin, ArrayEnd,
1578                               ElementType, Destroyer);
1579     }
1580   };
1581 
1582   /// IrregularPartialArrayDestroy - a cleanup which performs a
1583   /// partial array destroy where the end pointer is irregularly
1584   /// determined and must be loaded from a local.
1585   class IrregularPartialArrayDestroy : public EHScopeStack::Cleanup {
1586     llvm::Value *ArrayBegin;
1587     llvm::Value *ArrayEndPointer;
1588     QualType ElementType;
1589     CodeGenFunction::Destroyer *Destroyer;
1590   public:
1591     IrregularPartialArrayDestroy(llvm::Value *arrayBegin,
1592                                  llvm::Value *arrayEndPointer,
1593                                  QualType elementType,
1594                                  CodeGenFunction::Destroyer *destroyer)
1595       : ArrayBegin(arrayBegin), ArrayEndPointer(arrayEndPointer),
1596         ElementType(elementType), Destroyer(destroyer) {}
1597 
1598     void Emit(CodeGenFunction &CGF, Flags flags) override {
1599       llvm::Value *arrayEnd = CGF.Builder.CreateLoad(ArrayEndPointer);
1600       emitPartialArrayDestroy(CGF, ArrayBegin, arrayEnd,
1601                               ElementType, Destroyer);
1602     }
1603   };
1604 }
1605 
1606 /// pushIrregularPartialArrayCleanup - Push an EH cleanup to destroy
1607 /// already-constructed elements of the given array.  The cleanup
1608 /// may be popped with DeactivateCleanupBlock or PopCleanupBlock.
1609 ///
1610 /// \param elementType - the immediate element type of the array;
1611 ///   possibly still an array type
1612 void CodeGenFunction::pushIrregularPartialArrayCleanup(llvm::Value *arrayBegin,
1613                                                  llvm::Value *arrayEndPointer,
1614                                                        QualType elementType,
1615                                                        Destroyer *destroyer) {
1616   pushFullExprCleanup<IrregularPartialArrayDestroy>(EHCleanup,
1617                                                     arrayBegin, arrayEndPointer,
1618                                                     elementType, destroyer);
1619 }
1620 
1621 /// pushRegularPartialArrayCleanup - Push an EH cleanup to destroy
1622 /// already-constructed elements of the given array.  The cleanup
1623 /// may be popped with DeactivateCleanupBlock or PopCleanupBlock.
1624 ///
1625 /// \param elementType - the immediate element type of the array;
1626 ///   possibly still an array type
1627 void CodeGenFunction::pushRegularPartialArrayCleanup(llvm::Value *arrayBegin,
1628                                                      llvm::Value *arrayEnd,
1629                                                      QualType elementType,
1630                                                      Destroyer *destroyer) {
1631   pushFullExprCleanup<RegularPartialArrayDestroy>(EHCleanup,
1632                                                   arrayBegin, arrayEnd,
1633                                                   elementType, destroyer);
1634 }
1635 
1636 /// Lazily declare the @llvm.lifetime.start intrinsic.
1637 llvm::Constant *CodeGenModule::getLLVMLifetimeStartFn() {
1638   if (LifetimeStartFn) return LifetimeStartFn;
1639   LifetimeStartFn = llvm::Intrinsic::getDeclaration(&getModule(),
1640                                             llvm::Intrinsic::lifetime_start);
1641   return LifetimeStartFn;
1642 }
1643 
1644 /// Lazily declare the @llvm.lifetime.end intrinsic.
1645 llvm::Constant *CodeGenModule::getLLVMLifetimeEndFn() {
1646   if (LifetimeEndFn) return LifetimeEndFn;
1647   LifetimeEndFn = llvm::Intrinsic::getDeclaration(&getModule(),
1648                                               llvm::Intrinsic::lifetime_end);
1649   return LifetimeEndFn;
1650 }
1651 
1652 namespace {
1653   /// A cleanup to perform a release of an object at the end of a
1654   /// function.  This is used to balance out the incoming +1 of a
1655   /// ns_consumed argument when we can't reasonably do that just by
1656   /// not doing the initial retain for a __block argument.
1657   struct ConsumeARCParameter : EHScopeStack::Cleanup {
1658     ConsumeARCParameter(llvm::Value *param,
1659                         ARCPreciseLifetime_t precise)
1660       : Param(param), Precise(precise) {}
1661 
1662     llvm::Value *Param;
1663     ARCPreciseLifetime_t Precise;
1664 
1665     void Emit(CodeGenFunction &CGF, Flags flags) override {
1666       CGF.EmitARCRelease(Param, Precise);
1667     }
1668   };
1669 }
1670 
1671 /// Emit an alloca (or GlobalValue depending on target)
1672 /// for the specified parameter and set up LocalDeclMap.
1673 void CodeGenFunction::EmitParmDecl(const VarDecl &D, llvm::Value *Arg,
1674                                    bool ArgIsPointer, unsigned ArgNo) {
1675   // FIXME: Why isn't ImplicitParamDecl a ParmVarDecl?
1676   assert((isa<ParmVarDecl>(D) || isa<ImplicitParamDecl>(D)) &&
1677          "Invalid argument to EmitParmDecl");
1678 
1679   Arg->setName(D.getName());
1680 
1681   QualType Ty = D.getType();
1682 
1683   // Use better IR generation for certain implicit parameters.
1684   if (isa<ImplicitParamDecl>(D)) {
1685     // The only implicit argument a block has is its literal.
1686     if (BlockInfo) {
1687       LocalDeclMap[&D] = Arg;
1688       llvm::Value *LocalAddr = nullptr;
1689       if (CGM.getCodeGenOpts().OptimizationLevel == 0) {
1690         // Allocate a stack slot to let the debug info survive the RA.
1691         llvm::AllocaInst *Alloc = CreateTempAlloca(ConvertTypeForMem(Ty),
1692                                                    D.getName() + ".addr");
1693         Alloc->setAlignment(getContext().getDeclAlign(&D).getQuantity());
1694         LValue lv = MakeAddrLValue(Alloc, Ty, getContext().getDeclAlign(&D));
1695         EmitStoreOfScalar(Arg, lv, /* isInitialization */ true);
1696         LocalAddr = Builder.CreateLoad(Alloc);
1697       }
1698 
1699       if (CGDebugInfo *DI = getDebugInfo()) {
1700         if (CGM.getCodeGenOpts().getDebugInfo()
1701               >= CodeGenOptions::LimitedDebugInfo) {
1702           DI->setLocation(D.getLocation());
1703           DI->EmitDeclareOfBlockLiteralArgVariable(*BlockInfo, Arg, ArgNo,
1704                                                    LocalAddr, Builder);
1705         }
1706       }
1707 
1708       return;
1709     }
1710   }
1711 
1712   llvm::Value *DeclPtr;
1713   bool DoStore = false;
1714   bool IsScalar = hasScalarEvaluationKind(Ty);
1715   CharUnits Align = getContext().getDeclAlign(&D);
1716   // If we already have a pointer to the argument, reuse the input pointer.
1717   if (ArgIsPointer) {
1718     // If we have a prettier pointer type at this point, bitcast to that.
1719     unsigned AS = cast<llvm::PointerType>(Arg->getType())->getAddressSpace();
1720     llvm::Type *IRTy = ConvertTypeForMem(Ty)->getPointerTo(AS);
1721     DeclPtr = Arg->getType() == IRTy ? Arg : Builder.CreateBitCast(Arg, IRTy,
1722                                                                    D.getName());
1723     // Push a destructor cleanup for this parameter if the ABI requires it.
1724     // Don't push a cleanup in a thunk for a method that will also emit a
1725     // cleanup.
1726     if (!IsScalar && !CurFuncIsThunk &&
1727         getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()) {
1728       const CXXRecordDecl *RD = Ty->getAsCXXRecordDecl();
1729       if (RD && RD->hasNonTrivialDestructor())
1730         pushDestroy(QualType::DK_cxx_destructor, DeclPtr, Ty);
1731     }
1732   } else {
1733     // Otherwise, create a temporary to hold the value.
1734     llvm::AllocaInst *Alloc = CreateTempAlloca(ConvertTypeForMem(Ty),
1735                                                D.getName() + ".addr");
1736     Alloc->setAlignment(Align.getQuantity());
1737     DeclPtr = Alloc;
1738     DoStore = true;
1739   }
1740 
1741   LValue lv = MakeAddrLValue(DeclPtr, Ty, Align);
1742   if (IsScalar) {
1743     Qualifiers qs = Ty.getQualifiers();
1744     if (Qualifiers::ObjCLifetime lt = qs.getObjCLifetime()) {
1745       // We honor __attribute__((ns_consumed)) for types with lifetime.
1746       // For __strong, it's handled by just skipping the initial retain;
1747       // otherwise we have to balance out the initial +1 with an extra
1748       // cleanup to do the release at the end of the function.
1749       bool isConsumed = D.hasAttr<NSConsumedAttr>();
1750 
1751       // 'self' is always formally __strong, but if this is not an
1752       // init method then we don't want to retain it.
1753       if (D.isARCPseudoStrong()) {
1754         const ObjCMethodDecl *method = cast<ObjCMethodDecl>(CurCodeDecl);
1755         assert(&D == method->getSelfDecl());
1756         assert(lt == Qualifiers::OCL_Strong);
1757         assert(qs.hasConst());
1758         assert(method->getMethodFamily() != OMF_init);
1759         (void) method;
1760         lt = Qualifiers::OCL_ExplicitNone;
1761       }
1762 
1763       if (lt == Qualifiers::OCL_Strong) {
1764         if (!isConsumed) {
1765           if (CGM.getCodeGenOpts().OptimizationLevel == 0) {
1766             // use objc_storeStrong(&dest, value) for retaining the
1767             // object. But first, store a null into 'dest' because
1768             // objc_storeStrong attempts to release its old value.
1769             llvm::Value *Null = CGM.EmitNullConstant(D.getType());
1770             EmitStoreOfScalar(Null, lv, /* isInitialization */ true);
1771             EmitARCStoreStrongCall(lv.getAddress(), Arg, true);
1772             DoStore = false;
1773           }
1774           else
1775           // Don't use objc_retainBlock for block pointers, because we
1776           // don't want to Block_copy something just because we got it
1777           // as a parameter.
1778             Arg = EmitARCRetainNonBlock(Arg);
1779         }
1780       } else {
1781         // Push the cleanup for a consumed parameter.
1782         if (isConsumed) {
1783           ARCPreciseLifetime_t precise = (D.hasAttr<ObjCPreciseLifetimeAttr>()
1784                                 ? ARCPreciseLifetime : ARCImpreciseLifetime);
1785           EHStack.pushCleanup<ConsumeARCParameter>(getARCCleanupKind(), Arg,
1786                                                    precise);
1787         }
1788 
1789         if (lt == Qualifiers::OCL_Weak) {
1790           EmitARCInitWeak(DeclPtr, Arg);
1791           DoStore = false; // The weak init is a store, no need to do two.
1792         }
1793       }
1794 
1795       // Enter the cleanup scope.
1796       EmitAutoVarWithLifetime(*this, D, DeclPtr, lt);
1797     }
1798   }
1799 
1800   // Store the initial value into the alloca.
1801   if (DoStore)
1802     EmitStoreOfScalar(Arg, lv, /* isInitialization */ true);
1803 
1804   llvm::Value *&DMEntry = LocalDeclMap[&D];
1805   assert(!DMEntry && "Decl already exists in localdeclmap!");
1806   DMEntry = DeclPtr;
1807 
1808   // Emit debug info for param declaration.
1809   if (CGDebugInfo *DI = getDebugInfo()) {
1810     if (CGM.getCodeGenOpts().getDebugInfo()
1811           >= CodeGenOptions::LimitedDebugInfo) {
1812       DI->EmitDeclareOfArgVariable(&D, DeclPtr, ArgNo, Builder);
1813     }
1814   }
1815 
1816   if (D.hasAttr<AnnotateAttr>())
1817       EmitVarAnnotations(&D, DeclPtr);
1818 }
1819