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      1 //===---- CGObjC.cpp - Emit LLVM Code for Objective-C ---------------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 //
      9 // This contains code to emit Objective-C code as LLVM code.
     10 //
     11 //===----------------------------------------------------------------------===//
     12 
     13 #include "CGDebugInfo.h"
     14 #include "CGObjCRuntime.h"
     15 #include "CodeGenFunction.h"
     16 #include "CodeGenModule.h"
     17 #include "ConstantEmitter.h"
     18 #include "TargetInfo.h"
     19 #include "clang/AST/ASTContext.h"
     20 #include "clang/AST/Attr.h"
     21 #include "clang/AST/DeclObjC.h"
     22 #include "clang/AST/StmtObjC.h"
     23 #include "clang/Basic/Diagnostic.h"
     24 #include "clang/CodeGen/CGFunctionInfo.h"
     25 #include "llvm/ADT/STLExtras.h"
     26 #include "llvm/Analysis/ObjCARCUtil.h"
     27 #include "llvm/BinaryFormat/MachO.h"
     28 #include "llvm/IR/DataLayout.h"
     29 #include "llvm/IR/InlineAsm.h"
     30 using namespace clang;
     31 using namespace CodeGen;
     32 
     33 typedef llvm::PointerIntPair<llvm::Value*,1,bool> TryEmitResult;
     34 static TryEmitResult
     35 tryEmitARCRetainScalarExpr(CodeGenFunction &CGF, const Expr *e);
     36 static RValue AdjustObjCObjectType(CodeGenFunction &CGF,
     37                                    QualType ET,
     38                                    RValue Result);
     39 
     40 /// Given the address of a variable of pointer type, find the correct
     41 /// null to store into it.
     42 static llvm::Constant *getNullForVariable(Address addr) {
     43   llvm::Type *type = addr.getElementType();
     44   return llvm::ConstantPointerNull::get(cast<llvm::PointerType>(type));
     45 }
     46 
     47 /// Emits an instance of NSConstantString representing the object.
     48 llvm::Value *CodeGenFunction::EmitObjCStringLiteral(const ObjCStringLiteral *E)
     49 {
     50   llvm::Constant *C =
     51       CGM.getObjCRuntime().GenerateConstantString(E->getString()).getPointer();
     52   // FIXME: This bitcast should just be made an invariant on the Runtime.
     53   return llvm::ConstantExpr::getBitCast(C, ConvertType(E->getType()));
     54 }
     55 
     56 /// EmitObjCBoxedExpr - This routine generates code to call
     57 /// the appropriate expression boxing method. This will either be
     58 /// one of +[NSNumber numberWith<Type>:], or +[NSString stringWithUTF8String:],
     59 /// or [NSValue valueWithBytes:objCType:].
     60 ///
     61 llvm::Value *
     62 CodeGenFunction::EmitObjCBoxedExpr(const ObjCBoxedExpr *E) {
     63   // Generate the correct selector for this literal's concrete type.
     64   // Get the method.
     65   const ObjCMethodDecl *BoxingMethod = E->getBoxingMethod();
     66   const Expr *SubExpr = E->getSubExpr();
     67 
     68   if (E->isExpressibleAsConstantInitializer()) {
     69     ConstantEmitter ConstEmitter(CGM);
     70     return ConstEmitter.tryEmitAbstract(E, E->getType());
     71   }
     72 
     73   assert(BoxingMethod->isClassMethod() && "BoxingMethod must be a class method");
     74   Selector Sel = BoxingMethod->getSelector();
     75 
     76   // Generate a reference to the class pointer, which will be the receiver.
     77   // Assumes that the method was introduced in the class that should be
     78   // messaged (avoids pulling it out of the result type).
     79   CGObjCRuntime &Runtime = CGM.getObjCRuntime();
     80   const ObjCInterfaceDecl *ClassDecl = BoxingMethod->getClassInterface();
     81   llvm::Value *Receiver = Runtime.GetClass(*this, ClassDecl);
     82 
     83   CallArgList Args;
     84   const ParmVarDecl *ArgDecl = *BoxingMethod->param_begin();
     85   QualType ArgQT = ArgDecl->getType().getUnqualifiedType();
     86 
     87   // ObjCBoxedExpr supports boxing of structs and unions
     88   // via [NSValue valueWithBytes:objCType:]
     89   const QualType ValueType(SubExpr->getType().getCanonicalType());
     90   if (ValueType->isObjCBoxableRecordType()) {
     91     // Emit CodeGen for first parameter
     92     // and cast value to correct type
     93     Address Temporary = CreateMemTemp(SubExpr->getType());
     94     EmitAnyExprToMem(SubExpr, Temporary, Qualifiers(), /*isInit*/ true);
     95     Address BitCast = Builder.CreateBitCast(Temporary, ConvertType(ArgQT));
     96     Args.add(RValue::get(BitCast.getPointer()), ArgQT);
     97 
     98     // Create char array to store type encoding
     99     std::string Str;
    100     getContext().getObjCEncodingForType(ValueType, Str);
    101     llvm::Constant *GV = CGM.GetAddrOfConstantCString(Str).getPointer();
    102 
    103     // Cast type encoding to correct type
    104     const ParmVarDecl *EncodingDecl = BoxingMethod->parameters()[1];
    105     QualType EncodingQT = EncodingDecl->getType().getUnqualifiedType();
    106     llvm::Value *Cast = Builder.CreateBitCast(GV, ConvertType(EncodingQT));
    107 
    108     Args.add(RValue::get(Cast), EncodingQT);
    109   } else {
    110     Args.add(EmitAnyExpr(SubExpr), ArgQT);
    111   }
    112 
    113   RValue result = Runtime.GenerateMessageSend(
    114       *this, ReturnValueSlot(), BoxingMethod->getReturnType(), Sel, Receiver,
    115       Args, ClassDecl, BoxingMethod);
    116   return Builder.CreateBitCast(result.getScalarVal(),
    117                                ConvertType(E->getType()));
    118 }
    119 
    120 llvm::Value *CodeGenFunction::EmitObjCCollectionLiteral(const Expr *E,
    121                                     const ObjCMethodDecl *MethodWithObjects) {
    122   ASTContext &Context = CGM.getContext();
    123   const ObjCDictionaryLiteral *DLE = nullptr;
    124   const ObjCArrayLiteral *ALE = dyn_cast<ObjCArrayLiteral>(E);
    125   if (!ALE)
    126     DLE = cast<ObjCDictionaryLiteral>(E);
    127 
    128   // Optimize empty collections by referencing constants, when available.
    129   uint64_t NumElements =
    130     ALE ? ALE->getNumElements() : DLE->getNumElements();
    131   if (NumElements == 0 && CGM.getLangOpts().ObjCRuntime.hasEmptyCollections()) {
    132     StringRef ConstantName = ALE ? "__NSArray0__" : "__NSDictionary0__";
    133     QualType IdTy(CGM.getContext().getObjCIdType());
    134     llvm::Constant *Constant =
    135         CGM.CreateRuntimeVariable(ConvertType(IdTy), ConstantName);
    136     LValue LV = MakeNaturalAlignAddrLValue(Constant, IdTy);
    137     llvm::Value *Ptr = EmitLoadOfScalar(LV, E->getBeginLoc());
    138     cast<llvm::LoadInst>(Ptr)->setMetadata(
    139         CGM.getModule().getMDKindID("invariant.load"),
    140         llvm::MDNode::get(getLLVMContext(), None));
    141     return Builder.CreateBitCast(Ptr, ConvertType(E->getType()));
    142   }
    143 
    144   // Compute the type of the array we're initializing.
    145   llvm::APInt APNumElements(Context.getTypeSize(Context.getSizeType()),
    146                             NumElements);
    147   QualType ElementType = Context.getObjCIdType().withConst();
    148   QualType ElementArrayType
    149     = Context.getConstantArrayType(ElementType, APNumElements, nullptr,
    150                                    ArrayType::Normal, /*IndexTypeQuals=*/0);
    151 
    152   // Allocate the temporary array(s).
    153   Address Objects = CreateMemTemp(ElementArrayType, "objects");
    154   Address Keys = Address::invalid();
    155   if (DLE)
    156     Keys = CreateMemTemp(ElementArrayType, "keys");
    157 
    158   // In ARC, we may need to do extra work to keep all the keys and
    159   // values alive until after the call.
    160   SmallVector<llvm::Value *, 16> NeededObjects;
    161   bool TrackNeededObjects =
    162     (getLangOpts().ObjCAutoRefCount &&
    163     CGM.getCodeGenOpts().OptimizationLevel != 0);
    164 
    165   // Perform the actual initialialization of the array(s).
    166   for (uint64_t i = 0; i < NumElements; i++) {
    167     if (ALE) {
    168       // Emit the element and store it to the appropriate array slot.
    169       const Expr *Rhs = ALE->getElement(i);
    170       LValue LV = MakeAddrLValue(Builder.CreateConstArrayGEP(Objects, i),
    171                                  ElementType, AlignmentSource::Decl);
    172 
    173       llvm::Value *value = EmitScalarExpr(Rhs);
    174       EmitStoreThroughLValue(RValue::get(value), LV, true);
    175       if (TrackNeededObjects) {
    176         NeededObjects.push_back(value);
    177       }
    178     } else {
    179       // Emit the key and store it to the appropriate array slot.
    180       const Expr *Key = DLE->getKeyValueElement(i).Key;
    181       LValue KeyLV = MakeAddrLValue(Builder.CreateConstArrayGEP(Keys, i),
    182                                     ElementType, AlignmentSource::Decl);
    183       llvm::Value *keyValue = EmitScalarExpr(Key);
    184       EmitStoreThroughLValue(RValue::get(keyValue), KeyLV, /*isInit=*/true);
    185 
    186       // Emit the value and store it to the appropriate array slot.
    187       const Expr *Value = DLE->getKeyValueElement(i).Value;
    188       LValue ValueLV = MakeAddrLValue(Builder.CreateConstArrayGEP(Objects, i),
    189                                       ElementType, AlignmentSource::Decl);
    190       llvm::Value *valueValue = EmitScalarExpr(Value);
    191       EmitStoreThroughLValue(RValue::get(valueValue), ValueLV, /*isInit=*/true);
    192       if (TrackNeededObjects) {
    193         NeededObjects.push_back(keyValue);
    194         NeededObjects.push_back(valueValue);
    195       }
    196     }
    197   }
    198 
    199   // Generate the argument list.
    200   CallArgList Args;
    201   ObjCMethodDecl::param_const_iterator PI = MethodWithObjects->param_begin();
    202   const ParmVarDecl *argDecl = *PI++;
    203   QualType ArgQT = argDecl->getType().getUnqualifiedType();
    204   Args.add(RValue::get(Objects.getPointer()), ArgQT);
    205   if (DLE) {
    206     argDecl = *PI++;
    207     ArgQT = argDecl->getType().getUnqualifiedType();
    208     Args.add(RValue::get(Keys.getPointer()), ArgQT);
    209   }
    210   argDecl = *PI;
    211   ArgQT = argDecl->getType().getUnqualifiedType();
    212   llvm::Value *Count =
    213     llvm::ConstantInt::get(CGM.getTypes().ConvertType(ArgQT), NumElements);
    214   Args.add(RValue::get(Count), ArgQT);
    215 
    216   // Generate a reference to the class pointer, which will be the receiver.
    217   Selector Sel = MethodWithObjects->getSelector();
    218   QualType ResultType = E->getType();
    219   const ObjCObjectPointerType *InterfacePointerType
    220     = ResultType->getAsObjCInterfacePointerType();
    221   ObjCInterfaceDecl *Class
    222     = InterfacePointerType->getObjectType()->getInterface();
    223   CGObjCRuntime &Runtime = CGM.getObjCRuntime();
    224   llvm::Value *Receiver = Runtime.GetClass(*this, Class);
    225 
    226   // Generate the message send.
    227   RValue result = Runtime.GenerateMessageSend(
    228       *this, ReturnValueSlot(), MethodWithObjects->getReturnType(), Sel,
    229       Receiver, Args, Class, MethodWithObjects);
    230 
    231   // The above message send needs these objects, but in ARC they are
    232   // passed in a buffer that is essentially __unsafe_unretained.
    233   // Therefore we must prevent the optimizer from releasing them until
    234   // after the call.
    235   if (TrackNeededObjects) {
    236     EmitARCIntrinsicUse(NeededObjects);
    237   }
    238 
    239   return Builder.CreateBitCast(result.getScalarVal(),
    240                                ConvertType(E->getType()));
    241 }
    242 
    243 llvm::Value *CodeGenFunction::EmitObjCArrayLiteral(const ObjCArrayLiteral *E) {
    244   return EmitObjCCollectionLiteral(E, E->getArrayWithObjectsMethod());
    245 }
    246 
    247 llvm::Value *CodeGenFunction::EmitObjCDictionaryLiteral(
    248                                             const ObjCDictionaryLiteral *E) {
    249   return EmitObjCCollectionLiteral(E, E->getDictWithObjectsMethod());
    250 }
    251 
    252 /// Emit a selector.
    253 llvm::Value *CodeGenFunction::EmitObjCSelectorExpr(const ObjCSelectorExpr *E) {
    254   // Untyped selector.
    255   // Note that this implementation allows for non-constant strings to be passed
    256   // as arguments to @selector().  Currently, the only thing preventing this
    257   // behaviour is the type checking in the front end.
    258   return CGM.getObjCRuntime().GetSelector(*this, E->getSelector());
    259 }
    260 
    261 llvm::Value *CodeGenFunction::EmitObjCProtocolExpr(const ObjCProtocolExpr *E) {
    262   // FIXME: This should pass the Decl not the name.
    263   return CGM.getObjCRuntime().GenerateProtocolRef(*this, E->getProtocol());
    264 }
    265 
    266 /// Adjust the type of an Objective-C object that doesn't match up due
    267 /// to type erasure at various points, e.g., related result types or the use
    268 /// of parameterized classes.
    269 static RValue AdjustObjCObjectType(CodeGenFunction &CGF, QualType ExpT,
    270                                    RValue Result) {
    271   if (!ExpT->isObjCRetainableType())
    272     return Result;
    273 
    274   // If the converted types are the same, we're done.
    275   llvm::Type *ExpLLVMTy = CGF.ConvertType(ExpT);
    276   if (ExpLLVMTy == Result.getScalarVal()->getType())
    277     return Result;
    278 
    279   // We have applied a substitution. Cast the rvalue appropriately.
    280   return RValue::get(CGF.Builder.CreateBitCast(Result.getScalarVal(),
    281                                                ExpLLVMTy));
    282 }
    283 
    284 /// Decide whether to extend the lifetime of the receiver of a
    285 /// returns-inner-pointer message.
    286 static bool
    287 shouldExtendReceiverForInnerPointerMessage(const ObjCMessageExpr *message) {
    288   switch (message->getReceiverKind()) {
    289 
    290   // For a normal instance message, we should extend unless the
    291   // receiver is loaded from a variable with precise lifetime.
    292   case ObjCMessageExpr::Instance: {
    293     const Expr *receiver = message->getInstanceReceiver();
    294 
    295     // Look through OVEs.
    296     if (auto opaque = dyn_cast<OpaqueValueExpr>(receiver)) {
    297       if (opaque->getSourceExpr())
    298         receiver = opaque->getSourceExpr()->IgnoreParens();
    299     }
    300 
    301     const ImplicitCastExpr *ice = dyn_cast<ImplicitCastExpr>(receiver);
    302     if (!ice || ice->getCastKind() != CK_LValueToRValue) return true;
    303     receiver = ice->getSubExpr()->IgnoreParens();
    304 
    305     // Look through OVEs.
    306     if (auto opaque = dyn_cast<OpaqueValueExpr>(receiver)) {
    307       if (opaque->getSourceExpr())
    308         receiver = opaque->getSourceExpr()->IgnoreParens();
    309     }
    310 
    311     // Only __strong variables.
    312     if (receiver->getType().getObjCLifetime() != Qualifiers::OCL_Strong)
    313       return true;
    314 
    315     // All ivars and fields have precise lifetime.
    316     if (isa<MemberExpr>(receiver) || isa<ObjCIvarRefExpr>(receiver))
    317       return false;
    318 
    319     // Otherwise, check for variables.
    320     const DeclRefExpr *declRef = dyn_cast<DeclRefExpr>(ice->getSubExpr());
    321     if (!declRef) return true;
    322     const VarDecl *var = dyn_cast<VarDecl>(declRef->getDecl());
    323     if (!var) return true;
    324 
    325     // All variables have precise lifetime except local variables with
    326     // automatic storage duration that aren't specially marked.
    327     return (var->hasLocalStorage() &&
    328             !var->hasAttr<ObjCPreciseLifetimeAttr>());
    329   }
    330 
    331   case ObjCMessageExpr::Class:
    332   case ObjCMessageExpr::SuperClass:
    333     // It's never necessary for class objects.
    334     return false;
    335 
    336   case ObjCMessageExpr::SuperInstance:
    337     // We generally assume that 'self' lives throughout a method call.
    338     return false;
    339   }
    340 
    341   llvm_unreachable("invalid receiver kind");
    342 }
    343 
    344 /// Given an expression of ObjC pointer type, check whether it was
    345 /// immediately loaded from an ARC __weak l-value.
    346 static const Expr *findWeakLValue(const Expr *E) {
    347   assert(E->getType()->isObjCRetainableType());
    348   E = E->IgnoreParens();
    349   if (auto CE = dyn_cast<CastExpr>(E)) {
    350     if (CE->getCastKind() == CK_LValueToRValue) {
    351       if (CE->getSubExpr()->getType().getObjCLifetime() == Qualifiers::OCL_Weak)
    352         return CE->getSubExpr();
    353     }
    354   }
    355 
    356   return nullptr;
    357 }
    358 
    359 /// The ObjC runtime may provide entrypoints that are likely to be faster
    360 /// than an ordinary message send of the appropriate selector.
    361 ///
    362 /// The entrypoints are guaranteed to be equivalent to just sending the
    363 /// corresponding message.  If the entrypoint is implemented naively as just a
    364 /// message send, using it is a trade-off: it sacrifices a few cycles of
    365 /// overhead to save a small amount of code.  However, it's possible for
    366 /// runtimes to detect and special-case classes that use "standard"
    367 /// behavior; if that's dynamically a large proportion of all objects, using
    368 /// the entrypoint will also be faster than using a message send.
    369 ///
    370 /// If the runtime does support a required entrypoint, then this method will
    371 /// generate a call and return the resulting value.  Otherwise it will return
    372 /// None and the caller can generate a msgSend instead.
    373 static Optional<llvm::Value *>
    374 tryGenerateSpecializedMessageSend(CodeGenFunction &CGF, QualType ResultType,
    375                                   llvm::Value *Receiver,
    376                                   const CallArgList& Args, Selector Sel,
    377                                   const ObjCMethodDecl *method,
    378                                   bool isClassMessage) {
    379   auto &CGM = CGF.CGM;
    380   if (!CGM.getCodeGenOpts().ObjCConvertMessagesToRuntimeCalls)
    381     return None;
    382 
    383   auto &Runtime = CGM.getLangOpts().ObjCRuntime;
    384   switch (Sel.getMethodFamily()) {
    385   case OMF_alloc:
    386     if (isClassMessage &&
    387         Runtime.shouldUseRuntimeFunctionsForAlloc() &&
    388         ResultType->isObjCObjectPointerType()) {
    389         // [Foo alloc] -> objc_alloc(Foo) or
    390         // [self alloc] -> objc_alloc(self)
    391         if (Sel.isUnarySelector() && Sel.getNameForSlot(0) == "alloc")
    392           return CGF.EmitObjCAlloc(Receiver, CGF.ConvertType(ResultType));
    393         // [Foo allocWithZone:nil] -> objc_allocWithZone(Foo) or
    394         // [self allocWithZone:nil] -> objc_allocWithZone(self)
    395         if (Sel.isKeywordSelector() && Sel.getNumArgs() == 1 &&
    396             Args.size() == 1 && Args.front().getType()->isPointerType() &&
    397             Sel.getNameForSlot(0) == "allocWithZone") {
    398           const llvm::Value* arg = Args.front().getKnownRValue().getScalarVal();
    399           if (isa<llvm::ConstantPointerNull>(arg))
    400             return CGF.EmitObjCAllocWithZone(Receiver,
    401                                              CGF.ConvertType(ResultType));
    402           return None;
    403         }
    404     }
    405     break;
    406 
    407   case OMF_autorelease:
    408     if (ResultType->isObjCObjectPointerType() &&
    409         CGM.getLangOpts().getGC() == LangOptions::NonGC &&
    410         Runtime.shouldUseARCFunctionsForRetainRelease())
    411       return CGF.EmitObjCAutorelease(Receiver, CGF.ConvertType(ResultType));
    412     break;
    413 
    414   case OMF_retain:
    415     if (ResultType->isObjCObjectPointerType() &&
    416         CGM.getLangOpts().getGC() == LangOptions::NonGC &&
    417         Runtime.shouldUseARCFunctionsForRetainRelease())
    418       return CGF.EmitObjCRetainNonBlock(Receiver, CGF.ConvertType(ResultType));
    419     break;
    420 
    421   case OMF_release:
    422     if (ResultType->isVoidType() &&
    423         CGM.getLangOpts().getGC() == LangOptions::NonGC &&
    424         Runtime.shouldUseARCFunctionsForRetainRelease()) {
    425       CGF.EmitObjCRelease(Receiver, ARCPreciseLifetime);
    426       return nullptr;
    427     }
    428     break;
    429 
    430   default:
    431     break;
    432   }
    433   return None;
    434 }
    435 
    436 CodeGen::RValue CGObjCRuntime::GeneratePossiblySpecializedMessageSend(
    437     CodeGenFunction &CGF, ReturnValueSlot Return, QualType ResultType,
    438     Selector Sel, llvm::Value *Receiver, const CallArgList &Args,
    439     const ObjCInterfaceDecl *OID, const ObjCMethodDecl *Method,
    440     bool isClassMessage) {
    441   if (Optional<llvm::Value *> SpecializedResult =
    442           tryGenerateSpecializedMessageSend(CGF, ResultType, Receiver, Args,
    443                                             Sel, Method, isClassMessage)) {
    444     return RValue::get(SpecializedResult.getValue());
    445   }
    446   return GenerateMessageSend(CGF, Return, ResultType, Sel, Receiver, Args, OID,
    447                              Method);
    448 }
    449 
    450 static void AppendFirstImpliedRuntimeProtocols(
    451     const ObjCProtocolDecl *PD,
    452     llvm::UniqueVector<const ObjCProtocolDecl *> &PDs) {
    453   if (!PD->isNonRuntimeProtocol()) {
    454     const auto *Can = PD->getCanonicalDecl();
    455     PDs.insert(Can);
    456     return;
    457   }
    458 
    459   for (const auto *ParentPD : PD->protocols())
    460     AppendFirstImpliedRuntimeProtocols(ParentPD, PDs);
    461 }
    462 
    463 std::vector<const ObjCProtocolDecl *>
    464 CGObjCRuntime::GetRuntimeProtocolList(ObjCProtocolDecl::protocol_iterator begin,
    465                                       ObjCProtocolDecl::protocol_iterator end) {
    466   std::vector<const ObjCProtocolDecl *> RuntimePds;
    467   llvm::DenseSet<const ObjCProtocolDecl *> NonRuntimePDs;
    468 
    469   for (; begin != end; ++begin) {
    470     const auto *It = *begin;
    471     const auto *Can = It->getCanonicalDecl();
    472     if (Can->isNonRuntimeProtocol())
    473       NonRuntimePDs.insert(Can);
    474     else
    475       RuntimePds.push_back(Can);
    476   }
    477 
    478   // If there are no non-runtime protocols then we can just stop now.
    479   if (NonRuntimePDs.empty())
    480     return RuntimePds;
    481 
    482   // Else we have to search through the non-runtime protocol's inheritancy
    483   // hierarchy DAG stopping whenever a branch either finds a runtime protocol or
    484   // a non-runtime protocol without any parents. These are the "first-implied"
    485   // protocols from a non-runtime protocol.
    486   llvm::UniqueVector<const ObjCProtocolDecl *> FirstImpliedProtos;
    487   for (const auto *PD : NonRuntimePDs)
    488     AppendFirstImpliedRuntimeProtocols(PD, FirstImpliedProtos);
    489 
    490   // Walk the Runtime list to get all protocols implied via the inclusion of
    491   // this protocol, e.g. all protocols it inherits from including itself.
    492   llvm::DenseSet<const ObjCProtocolDecl *> AllImpliedProtocols;
    493   for (const auto *PD : RuntimePds) {
    494     const auto *Can = PD->getCanonicalDecl();
    495     AllImpliedProtocols.insert(Can);
    496     Can->getImpliedProtocols(AllImpliedProtocols);
    497   }
    498 
    499   // Similar to above, walk the list of first-implied protocols to find the set
    500   // all the protocols implied excluding the listed protocols themselves since
    501   // they are not yet a part of the `RuntimePds` list.
    502   for (const auto *PD : FirstImpliedProtos) {
    503     PD->getImpliedProtocols(AllImpliedProtocols);
    504   }
    505 
    506   // From the first-implied list we have to finish building the final protocol
    507   // list. If a protocol in the first-implied list was already implied via some
    508   // inheritance path through some other protocols then it would be redundant to
    509   // add it here and so we skip over it.
    510   for (const auto *PD : FirstImpliedProtos) {
    511     if (!AllImpliedProtocols.contains(PD)) {
    512       RuntimePds.push_back(PD);
    513     }
    514   }
    515 
    516   return RuntimePds;
    517 }
    518 
    519 /// Instead of '[[MyClass alloc] init]', try to generate
    520 /// 'objc_alloc_init(MyClass)'. This provides a code size improvement on the
    521 /// caller side, as well as the optimized objc_alloc.
    522 static Optional<llvm::Value *>
    523 tryEmitSpecializedAllocInit(CodeGenFunction &CGF, const ObjCMessageExpr *OME) {
    524   auto &Runtime = CGF.getLangOpts().ObjCRuntime;
    525   if (!Runtime.shouldUseRuntimeFunctionForCombinedAllocInit())
    526     return None;
    527 
    528   // Match the exact pattern '[[MyClass alloc] init]'.
    529   Selector Sel = OME->getSelector();
    530   if (OME->getReceiverKind() != ObjCMessageExpr::Instance ||
    531       !OME->getType()->isObjCObjectPointerType() || !Sel.isUnarySelector() ||
    532       Sel.getNameForSlot(0) != "init")
    533     return None;
    534 
    535   // Okay, this is '[receiver init]', check if 'receiver' is '[cls alloc]'
    536   // with 'cls' a Class.
    537   auto *SubOME =
    538       dyn_cast<ObjCMessageExpr>(OME->getInstanceReceiver()->IgnoreParenCasts());
    539   if (!SubOME)
    540     return None;
    541   Selector SubSel = SubOME->getSelector();
    542 
    543   if (!SubOME->getType()->isObjCObjectPointerType() ||
    544       !SubSel.isUnarySelector() || SubSel.getNameForSlot(0) != "alloc")
    545     return None;
    546 
    547   llvm::Value *Receiver = nullptr;
    548   switch (SubOME->getReceiverKind()) {
    549   case ObjCMessageExpr::Instance:
    550     if (!SubOME->getInstanceReceiver()->getType()->isObjCClassType())
    551       return None;
    552     Receiver = CGF.EmitScalarExpr(SubOME->getInstanceReceiver());
    553     break;
    554 
    555   case ObjCMessageExpr::Class: {
    556     QualType ReceiverType = SubOME->getClassReceiver();
    557     const ObjCObjectType *ObjTy = ReceiverType->castAs<ObjCObjectType>();
    558     const ObjCInterfaceDecl *ID = ObjTy->getInterface();
    559     assert(ID && "null interface should be impossible here");
    560     Receiver = CGF.CGM.getObjCRuntime().GetClass(CGF, ID);
    561     break;
    562   }
    563   case ObjCMessageExpr::SuperInstance:
    564   case ObjCMessageExpr::SuperClass:
    565     return None;
    566   }
    567 
    568   return CGF.EmitObjCAllocInit(Receiver, CGF.ConvertType(OME->getType()));
    569 }
    570 
    571 RValue CodeGenFunction::EmitObjCMessageExpr(const ObjCMessageExpr *E,
    572                                             ReturnValueSlot Return) {
    573   // Only the lookup mechanism and first two arguments of the method
    574   // implementation vary between runtimes.  We can get the receiver and
    575   // arguments in generic code.
    576 
    577   bool isDelegateInit = E->isDelegateInitCall();
    578 
    579   const ObjCMethodDecl *method = E->getMethodDecl();
    580 
    581   // If the method is -retain, and the receiver's being loaded from
    582   // a __weak variable, peephole the entire operation to objc_loadWeakRetained.
    583   if (method && E->getReceiverKind() == ObjCMessageExpr::Instance &&
    584       method->getMethodFamily() == OMF_retain) {
    585     if (auto lvalueExpr = findWeakLValue(E->getInstanceReceiver())) {
    586       LValue lvalue = EmitLValue(lvalueExpr);
    587       llvm::Value *result = EmitARCLoadWeakRetained(lvalue.getAddress(*this));
    588       return AdjustObjCObjectType(*this, E->getType(), RValue::get(result));
    589     }
    590   }
    591 
    592   if (Optional<llvm::Value *> Val = tryEmitSpecializedAllocInit(*this, E))
    593     return AdjustObjCObjectType(*this, E->getType(), RValue::get(*Val));
    594 
    595   // We don't retain the receiver in delegate init calls, and this is
    596   // safe because the receiver value is always loaded from 'self',
    597   // which we zero out.  We don't want to Block_copy block receivers,
    598   // though.
    599   bool retainSelf =
    600     (!isDelegateInit &&
    601      CGM.getLangOpts().ObjCAutoRefCount &&
    602      method &&
    603      method->hasAttr<NSConsumesSelfAttr>());
    604 
    605   CGObjCRuntime &Runtime = CGM.getObjCRuntime();
    606   bool isSuperMessage = false;
    607   bool isClassMessage = false;
    608   ObjCInterfaceDecl *OID = nullptr;
    609   // Find the receiver
    610   QualType ReceiverType;
    611   llvm::Value *Receiver = nullptr;
    612   switch (E->getReceiverKind()) {
    613   case ObjCMessageExpr::Instance:
    614     ReceiverType = E->getInstanceReceiver()->getType();
    615     isClassMessage = ReceiverType->isObjCClassType();
    616     if (retainSelf) {
    617       TryEmitResult ter = tryEmitARCRetainScalarExpr(*this,
    618                                                    E->getInstanceReceiver());
    619       Receiver = ter.getPointer();
    620       if (ter.getInt()) retainSelf = false;
    621     } else
    622       Receiver = EmitScalarExpr(E->getInstanceReceiver());
    623     break;
    624 
    625   case ObjCMessageExpr::Class: {
    626     ReceiverType = E->getClassReceiver();
    627     OID = ReceiverType->castAs<ObjCObjectType>()->getInterface();
    628     assert(OID && "Invalid Objective-C class message send");
    629     Receiver = Runtime.GetClass(*this, OID);
    630     isClassMessage = true;
    631     break;
    632   }
    633 
    634   case ObjCMessageExpr::SuperInstance:
    635     ReceiverType = E->getSuperType();
    636     Receiver = LoadObjCSelf();
    637     isSuperMessage = true;
    638     break;
    639 
    640   case ObjCMessageExpr::SuperClass:
    641     ReceiverType = E->getSuperType();
    642     Receiver = LoadObjCSelf();
    643     isSuperMessage = true;
    644     isClassMessage = true;
    645     break;
    646   }
    647 
    648   if (retainSelf)
    649     Receiver = EmitARCRetainNonBlock(Receiver);
    650 
    651   // In ARC, we sometimes want to "extend the lifetime"
    652   // (i.e. retain+autorelease) of receivers of returns-inner-pointer
    653   // messages.
    654   if (getLangOpts().ObjCAutoRefCount && method &&
    655       method->hasAttr<ObjCReturnsInnerPointerAttr>() &&
    656       shouldExtendReceiverForInnerPointerMessage(E))
    657     Receiver = EmitARCRetainAutorelease(ReceiverType, Receiver);
    658 
    659   QualType ResultType = method ? method->getReturnType() : E->getType();
    660 
    661   CallArgList Args;
    662   EmitCallArgs(Args, method, E->arguments(), /*AC*/AbstractCallee(method));
    663 
    664   // For delegate init calls in ARC, do an unsafe store of null into
    665   // self.  This represents the call taking direct ownership of that
    666   // value.  We have to do this after emitting the other call
    667   // arguments because they might also reference self, but we don't
    668   // have to worry about any of them modifying self because that would
    669   // be an undefined read and write of an object in unordered
    670   // expressions.
    671   if (isDelegateInit) {
    672     assert(getLangOpts().ObjCAutoRefCount &&
    673            "delegate init calls should only be marked in ARC");
    674 
    675     // Do an unsafe store of null into self.
    676     Address selfAddr =
    677       GetAddrOfLocalVar(cast<ObjCMethodDecl>(CurCodeDecl)->getSelfDecl());
    678     Builder.CreateStore(getNullForVariable(selfAddr), selfAddr);
    679   }
    680 
    681   RValue result;
    682   if (isSuperMessage) {
    683     // super is only valid in an Objective-C method
    684     const ObjCMethodDecl *OMD = cast<ObjCMethodDecl>(CurFuncDecl);
    685     bool isCategoryImpl = isa<ObjCCategoryImplDecl>(OMD->getDeclContext());
    686     result = Runtime.GenerateMessageSendSuper(*this, Return, ResultType,
    687                                               E->getSelector(),
    688                                               OMD->getClassInterface(),
    689                                               isCategoryImpl,
    690                                               Receiver,
    691                                               isClassMessage,
    692                                               Args,
    693                                               method);
    694   } else {
    695     // Call runtime methods directly if we can.
    696     result = Runtime.GeneratePossiblySpecializedMessageSend(
    697         *this, Return, ResultType, E->getSelector(), Receiver, Args, OID,
    698         method, isClassMessage);
    699   }
    700 
    701   // For delegate init calls in ARC, implicitly store the result of
    702   // the call back into self.  This takes ownership of the value.
    703   if (isDelegateInit) {
    704     Address selfAddr =
    705       GetAddrOfLocalVar(cast<ObjCMethodDecl>(CurCodeDecl)->getSelfDecl());
    706     llvm::Value *newSelf = result.getScalarVal();
    707 
    708     // The delegate return type isn't necessarily a matching type; in
    709     // fact, it's quite likely to be 'id'.
    710     llvm::Type *selfTy = selfAddr.getElementType();
    711     newSelf = Builder.CreateBitCast(newSelf, selfTy);
    712 
    713     Builder.CreateStore(newSelf, selfAddr);
    714   }
    715 
    716   return AdjustObjCObjectType(*this, E->getType(), result);
    717 }
    718 
    719 namespace {
    720 struct FinishARCDealloc final : EHScopeStack::Cleanup {
    721   void Emit(CodeGenFunction &CGF, Flags flags) override {
    722     const ObjCMethodDecl *method = cast<ObjCMethodDecl>(CGF.CurCodeDecl);
    723 
    724     const ObjCImplDecl *impl = cast<ObjCImplDecl>(method->getDeclContext());
    725     const ObjCInterfaceDecl *iface = impl->getClassInterface();
    726     if (!iface->getSuperClass()) return;
    727 
    728     bool isCategory = isa<ObjCCategoryImplDecl>(impl);
    729 
    730     // Call [super dealloc] if we have a superclass.
    731     llvm::Value *self = CGF.LoadObjCSelf();
    732 
    733     CallArgList args;
    734     CGF.CGM.getObjCRuntime().GenerateMessageSendSuper(CGF, ReturnValueSlot(),
    735                                                       CGF.getContext().VoidTy,
    736                                                       method->getSelector(),
    737                                                       iface,
    738                                                       isCategory,
    739                                                       self,
    740                                                       /*is class msg*/ false,
    741                                                       args,
    742                                                       method);
    743   }
    744 };
    745 }
    746 
    747 /// StartObjCMethod - Begin emission of an ObjCMethod. This generates
    748 /// the LLVM function and sets the other context used by
    749 /// CodeGenFunction.
    750 void CodeGenFunction::StartObjCMethod(const ObjCMethodDecl *OMD,
    751                                       const ObjCContainerDecl *CD) {
    752   SourceLocation StartLoc = OMD->getBeginLoc();
    753   FunctionArgList args;
    754   // Check if we should generate debug info for this method.
    755   if (OMD->hasAttr<NoDebugAttr>())
    756     DebugInfo = nullptr; // disable debug info indefinitely for this function
    757 
    758   llvm::Function *Fn = CGM.getObjCRuntime().GenerateMethod(OMD, CD);
    759 
    760   const CGFunctionInfo &FI = CGM.getTypes().arrangeObjCMethodDeclaration(OMD);
    761   if (OMD->isDirectMethod()) {
    762     Fn->setVisibility(llvm::Function::HiddenVisibility);
    763     CGM.SetLLVMFunctionAttributes(OMD, FI, Fn, /*IsThunk=*/false);
    764     CGM.SetLLVMFunctionAttributesForDefinition(OMD, Fn);
    765   } else {
    766     CGM.SetInternalFunctionAttributes(OMD, Fn, FI);
    767   }
    768 
    769   args.push_back(OMD->getSelfDecl());
    770   args.push_back(OMD->getCmdDecl());
    771 
    772   args.append(OMD->param_begin(), OMD->param_end());
    773 
    774   CurGD = OMD;
    775   CurEHLocation = OMD->getEndLoc();
    776 
    777   StartFunction(OMD, OMD->getReturnType(), Fn, FI, args,
    778                 OMD->getLocation(), StartLoc);
    779 
    780   if (OMD->isDirectMethod()) {
    781     // This function is a direct call, it has to implement a nil check
    782     // on entry.
    783     //
    784     // TODO: possibly have several entry points to elide the check
    785     CGM.getObjCRuntime().GenerateDirectMethodPrologue(*this, Fn, OMD, CD);
    786   }
    787 
    788   // In ARC, certain methods get an extra cleanup.
    789   if (CGM.getLangOpts().ObjCAutoRefCount &&
    790       OMD->isInstanceMethod() &&
    791       OMD->getSelector().isUnarySelector()) {
    792     const IdentifierInfo *ident =
    793       OMD->getSelector().getIdentifierInfoForSlot(0);
    794     if (ident->isStr("dealloc"))
    795       EHStack.pushCleanup<FinishARCDealloc>(getARCCleanupKind());
    796   }
    797 }
    798 
    799 static llvm::Value *emitARCRetainLoadOfScalar(CodeGenFunction &CGF,
    800                                               LValue lvalue, QualType type);
    801 
    802 /// Generate an Objective-C method.  An Objective-C method is a C function with
    803 /// its pointer, name, and types registered in the class structure.
    804 void CodeGenFunction::GenerateObjCMethod(const ObjCMethodDecl *OMD) {
    805   StartObjCMethod(OMD, OMD->getClassInterface());
    806   PGO.assignRegionCounters(GlobalDecl(OMD), CurFn);
    807   assert(isa<CompoundStmt>(OMD->getBody()));
    808   incrementProfileCounter(OMD->getBody());
    809   EmitCompoundStmtWithoutScope(*cast<CompoundStmt>(OMD->getBody()));
    810   FinishFunction(OMD->getBodyRBrace());
    811 }
    812 
    813 /// emitStructGetterCall - Call the runtime function to load a property
    814 /// into the return value slot.
    815 static void emitStructGetterCall(CodeGenFunction &CGF, ObjCIvarDecl *ivar,
    816                                  bool isAtomic, bool hasStrong) {
    817   ASTContext &Context = CGF.getContext();
    818 
    819   Address src =
    820       CGF.EmitLValueForIvar(CGF.TypeOfSelfObject(), CGF.LoadObjCSelf(), ivar, 0)
    821           .getAddress(CGF);
    822 
    823   // objc_copyStruct (ReturnValue, &structIvar,
    824   //                  sizeof (Type of Ivar), isAtomic, false);
    825   CallArgList args;
    826 
    827   Address dest = CGF.Builder.CreateBitCast(CGF.ReturnValue, CGF.VoidPtrTy);
    828   args.add(RValue::get(dest.getPointer()), Context.VoidPtrTy);
    829 
    830   src = CGF.Builder.CreateBitCast(src, CGF.VoidPtrTy);
    831   args.add(RValue::get(src.getPointer()), Context.VoidPtrTy);
    832 
    833   CharUnits size = CGF.getContext().getTypeSizeInChars(ivar->getType());
    834   args.add(RValue::get(CGF.CGM.getSize(size)), Context.getSizeType());
    835   args.add(RValue::get(CGF.Builder.getInt1(isAtomic)), Context.BoolTy);
    836   args.add(RValue::get(CGF.Builder.getInt1(hasStrong)), Context.BoolTy);
    837 
    838   llvm::FunctionCallee fn = CGF.CGM.getObjCRuntime().GetGetStructFunction();
    839   CGCallee callee = CGCallee::forDirect(fn);
    840   CGF.EmitCall(CGF.getTypes().arrangeBuiltinFunctionCall(Context.VoidTy, args),
    841                callee, ReturnValueSlot(), args);
    842 }
    843 
    844 /// Determine whether the given architecture supports unaligned atomic
    845 /// accesses.  They don't have to be fast, just faster than a function
    846 /// call and a mutex.
    847 static bool hasUnalignedAtomics(llvm::Triple::ArchType arch) {
    848   // FIXME: Allow unaligned atomic load/store on x86.  (It is not
    849   // currently supported by the backend.)
    850   return 0;
    851 }
    852 
    853 /// Return the maximum size that permits atomic accesses for the given
    854 /// architecture.
    855 static CharUnits getMaxAtomicAccessSize(CodeGenModule &CGM,
    856                                         llvm::Triple::ArchType arch) {
    857   // ARM has 8-byte atomic accesses, but it's not clear whether we
    858   // want to rely on them here.
    859 
    860   // In the default case, just assume that any size up to a pointer is
    861   // fine given adequate alignment.
    862   return CharUnits::fromQuantity(CGM.PointerSizeInBytes);
    863 }
    864 
    865 namespace {
    866   class PropertyImplStrategy {
    867   public:
    868     enum StrategyKind {
    869       /// The 'native' strategy is to use the architecture's provided
    870       /// reads and writes.
    871       Native,
    872 
    873       /// Use objc_setProperty and objc_getProperty.
    874       GetSetProperty,
    875 
    876       /// Use objc_setProperty for the setter, but use expression
    877       /// evaluation for the getter.
    878       SetPropertyAndExpressionGet,
    879 
    880       /// Use objc_copyStruct.
    881       CopyStruct,
    882 
    883       /// The 'expression' strategy is to emit normal assignment or
    884       /// lvalue-to-rvalue expressions.
    885       Expression
    886     };
    887 
    888     StrategyKind getKind() const { return StrategyKind(Kind); }
    889 
    890     bool hasStrongMember() const { return HasStrong; }
    891     bool isAtomic() const { return IsAtomic; }
    892     bool isCopy() const { return IsCopy; }
    893 
    894     CharUnits getIvarSize() const { return IvarSize; }
    895     CharUnits getIvarAlignment() const { return IvarAlignment; }
    896 
    897     PropertyImplStrategy(CodeGenModule &CGM,
    898                          const ObjCPropertyImplDecl *propImpl);
    899 
    900   private:
    901     unsigned Kind : 8;
    902     unsigned IsAtomic : 1;
    903     unsigned IsCopy : 1;
    904     unsigned HasStrong : 1;
    905 
    906     CharUnits IvarSize;
    907     CharUnits IvarAlignment;
    908   };
    909 }
    910 
    911 /// Pick an implementation strategy for the given property synthesis.
    912 PropertyImplStrategy::PropertyImplStrategy(CodeGenModule &CGM,
    913                                      const ObjCPropertyImplDecl *propImpl) {
    914   const ObjCPropertyDecl *prop = propImpl->getPropertyDecl();
    915   ObjCPropertyDecl::SetterKind setterKind = prop->getSetterKind();
    916 
    917   IsCopy = (setterKind == ObjCPropertyDecl::Copy);
    918   IsAtomic = prop->isAtomic();
    919   HasStrong = false; // doesn't matter here.
    920 
    921   // Evaluate the ivar's size and alignment.
    922   ObjCIvarDecl *ivar = propImpl->getPropertyIvarDecl();
    923   QualType ivarType = ivar->getType();
    924   auto TInfo = CGM.getContext().getTypeInfoInChars(ivarType);
    925   IvarSize = TInfo.Width;
    926   IvarAlignment = TInfo.Align;
    927 
    928   // If we have a copy property, we always have to use getProperty/setProperty.
    929   // TODO: we could actually use setProperty and an expression for non-atomics.
    930   if (IsCopy) {
    931     Kind = GetSetProperty;
    932     return;
    933   }
    934 
    935   // Handle retain.
    936   if (setterKind == ObjCPropertyDecl::Retain) {
    937     // In GC-only, there's nothing special that needs to be done.
    938     if (CGM.getLangOpts().getGC() == LangOptions::GCOnly) {
    939       // fallthrough
    940 
    941     // In ARC, if the property is non-atomic, use expression emission,
    942     // which translates to objc_storeStrong.  This isn't required, but
    943     // it's slightly nicer.
    944     } else if (CGM.getLangOpts().ObjCAutoRefCount && !IsAtomic) {
    945       // Using standard expression emission for the setter is only
    946       // acceptable if the ivar is __strong, which won't be true if
    947       // the property is annotated with __attribute__((NSObject)).
    948       // TODO: falling all the way back to objc_setProperty here is
    949       // just laziness, though;  we could still use objc_storeStrong
    950       // if we hacked it right.
    951       if (ivarType.getObjCLifetime() == Qualifiers::OCL_Strong)
    952         Kind = Expression;
    953       else
    954         Kind = SetPropertyAndExpressionGet;
    955       return;
    956 
    957     // Otherwise, we need to at least use setProperty.  However, if
    958     // the property isn't atomic, we can use normal expression
    959     // emission for the getter.
    960     } else if (!IsAtomic) {
    961       Kind = SetPropertyAndExpressionGet;
    962       return;
    963 
    964     // Otherwise, we have to use both setProperty and getProperty.
    965     } else {
    966       Kind = GetSetProperty;
    967       return;
    968     }
    969   }
    970 
    971   // If we're not atomic, just use expression accesses.
    972   if (!IsAtomic) {
    973     Kind = Expression;
    974     return;
    975   }
    976 
    977   // Properties on bitfield ivars need to be emitted using expression
    978   // accesses even if they're nominally atomic.
    979   if (ivar->isBitField()) {
    980     Kind = Expression;
    981     return;
    982   }
    983 
    984   // GC-qualified or ARC-qualified ivars need to be emitted as
    985   // expressions.  This actually works out to being atomic anyway,
    986   // except for ARC __strong, but that should trigger the above code.
    987   if (ivarType.hasNonTrivialObjCLifetime() ||
    988       (CGM.getLangOpts().getGC() &&
    989        CGM.getContext().getObjCGCAttrKind(ivarType))) {
    990     Kind = Expression;
    991     return;
    992   }
    993 
    994   // Compute whether the ivar has strong members.
    995   if (CGM.getLangOpts().getGC())
    996     if (const RecordType *recordType = ivarType->getAs<RecordType>())
    997       HasStrong = recordType->getDecl()->hasObjectMember();
    998 
    999   // We can never access structs with object members with a native
   1000   // access, because we need to use write barriers.  This is what
   1001   // objc_copyStruct is for.
   1002   if (HasStrong) {
   1003     Kind = CopyStruct;
   1004     return;
   1005   }
   1006 
   1007   // Otherwise, this is target-dependent and based on the size and
   1008   // alignment of the ivar.
   1009 
   1010   // If the size of the ivar is not a power of two, give up.  We don't
   1011   // want to get into the business of doing compare-and-swaps.
   1012   if (!IvarSize.isPowerOfTwo()) {
   1013     Kind = CopyStruct;
   1014     return;
   1015   }
   1016 
   1017   llvm::Triple::ArchType arch =
   1018     CGM.getTarget().getTriple().getArch();
   1019 
   1020   // Most architectures require memory to fit within a single cache
   1021   // line, so the alignment has to be at least the size of the access.
   1022   // Otherwise we have to grab a lock.
   1023   if (IvarAlignment < IvarSize && !hasUnalignedAtomics(arch)) {
   1024     Kind = CopyStruct;
   1025     return;
   1026   }
   1027 
   1028   // If the ivar's size exceeds the architecture's maximum atomic
   1029   // access size, we have to use CopyStruct.
   1030   if (IvarSize > getMaxAtomicAccessSize(CGM, arch)) {
   1031     Kind = CopyStruct;
   1032     return;
   1033   }
   1034 
   1035   // Otherwise, we can use native loads and stores.
   1036   Kind = Native;
   1037 }
   1038 
   1039 /// Generate an Objective-C property getter function.
   1040 ///
   1041 /// The given Decl must be an ObjCImplementationDecl. \@synthesize
   1042 /// is illegal within a category.
   1043 void CodeGenFunction::GenerateObjCGetter(ObjCImplementationDecl *IMP,
   1044                                          const ObjCPropertyImplDecl *PID) {
   1045   llvm::Constant *AtomicHelperFn =
   1046       CodeGenFunction(CGM).GenerateObjCAtomicGetterCopyHelperFunction(PID);
   1047   ObjCMethodDecl *OMD = PID->getGetterMethodDecl();
   1048   assert(OMD && "Invalid call to generate getter (empty method)");
   1049   StartObjCMethod(OMD, IMP->getClassInterface());
   1050 
   1051   generateObjCGetterBody(IMP, PID, OMD, AtomicHelperFn);
   1052 
   1053   FinishFunction(OMD->getEndLoc());
   1054 }
   1055 
   1056 static bool hasTrivialGetExpr(const ObjCPropertyImplDecl *propImpl) {
   1057   const Expr *getter = propImpl->getGetterCXXConstructor();
   1058   if (!getter) return true;
   1059 
   1060   // Sema only makes only of these when the ivar has a C++ class type,
   1061   // so the form is pretty constrained.
   1062 
   1063   // If the property has a reference type, we might just be binding a
   1064   // reference, in which case the result will be a gl-value.  We should
   1065   // treat this as a non-trivial operation.
   1066   if (getter->isGLValue())
   1067     return false;
   1068 
   1069   // If we selected a trivial copy-constructor, we're okay.
   1070   if (const CXXConstructExpr *construct = dyn_cast<CXXConstructExpr>(getter))
   1071     return (construct->getConstructor()->isTrivial());
   1072 
   1073   // The constructor might require cleanups (in which case it's never
   1074   // trivial).
   1075   assert(isa<ExprWithCleanups>(getter));
   1076   return false;
   1077 }
   1078 
   1079 /// emitCPPObjectAtomicGetterCall - Call the runtime function to
   1080 /// copy the ivar into the resturn slot.
   1081 static void emitCPPObjectAtomicGetterCall(CodeGenFunction &CGF,
   1082                                           llvm::Value *returnAddr,
   1083                                           ObjCIvarDecl *ivar,
   1084                                           llvm::Constant *AtomicHelperFn) {
   1085   // objc_copyCppObjectAtomic (&returnSlot, &CppObjectIvar,
   1086   //                           AtomicHelperFn);
   1087   CallArgList args;
   1088 
   1089   // The 1st argument is the return Slot.
   1090   args.add(RValue::get(returnAddr), CGF.getContext().VoidPtrTy);
   1091 
   1092   // The 2nd argument is the address of the ivar.
   1093   llvm::Value *ivarAddr =
   1094       CGF.EmitLValueForIvar(CGF.TypeOfSelfObject(), CGF.LoadObjCSelf(), ivar, 0)
   1095           .getPointer(CGF);
   1096   ivarAddr = CGF.Builder.CreateBitCast(ivarAddr, CGF.Int8PtrTy);
   1097   args.add(RValue::get(ivarAddr), CGF.getContext().VoidPtrTy);
   1098 
   1099   // Third argument is the helper function.
   1100   args.add(RValue::get(AtomicHelperFn), CGF.getContext().VoidPtrTy);
   1101 
   1102   llvm::FunctionCallee copyCppAtomicObjectFn =
   1103       CGF.CGM.getObjCRuntime().GetCppAtomicObjectGetFunction();
   1104   CGCallee callee = CGCallee::forDirect(copyCppAtomicObjectFn);
   1105   CGF.EmitCall(
   1106       CGF.getTypes().arrangeBuiltinFunctionCall(CGF.getContext().VoidTy, args),
   1107                callee, ReturnValueSlot(), args);
   1108 }
   1109 
   1110 void
   1111 CodeGenFunction::generateObjCGetterBody(const ObjCImplementationDecl *classImpl,
   1112                                         const ObjCPropertyImplDecl *propImpl,
   1113                                         const ObjCMethodDecl *GetterMethodDecl,
   1114                                         llvm::Constant *AtomicHelperFn) {
   1115   // If there's a non-trivial 'get' expression, we just have to emit that.
   1116   if (!hasTrivialGetExpr(propImpl)) {
   1117     if (!AtomicHelperFn) {
   1118       auto *ret = ReturnStmt::Create(getContext(), SourceLocation(),
   1119                                      propImpl->getGetterCXXConstructor(),
   1120                                      /* NRVOCandidate=*/nullptr);
   1121       EmitReturnStmt(*ret);
   1122     }
   1123     else {
   1124       ObjCIvarDecl *ivar = propImpl->getPropertyIvarDecl();
   1125       emitCPPObjectAtomicGetterCall(*this, ReturnValue.getPointer(),
   1126                                     ivar, AtomicHelperFn);
   1127     }
   1128     return;
   1129   }
   1130 
   1131   const ObjCPropertyDecl *prop = propImpl->getPropertyDecl();
   1132   QualType propType = prop->getType();
   1133   ObjCMethodDecl *getterMethod = propImpl->getGetterMethodDecl();
   1134 
   1135   ObjCIvarDecl *ivar = propImpl->getPropertyIvarDecl();
   1136 
   1137   // Pick an implementation strategy.
   1138   PropertyImplStrategy strategy(CGM, propImpl);
   1139   switch (strategy.getKind()) {
   1140   case PropertyImplStrategy::Native: {
   1141     // We don't need to do anything for a zero-size struct.
   1142     if (strategy.getIvarSize().isZero())
   1143       return;
   1144 
   1145     LValue LV = EmitLValueForIvar(TypeOfSelfObject(), LoadObjCSelf(), ivar, 0);
   1146 
   1147     // Currently, all atomic accesses have to be through integer
   1148     // types, so there's no point in trying to pick a prettier type.
   1149     uint64_t ivarSize = getContext().toBits(strategy.getIvarSize());
   1150     llvm::Type *bitcastType = llvm::Type::getIntNTy(getLLVMContext(), ivarSize);
   1151     bitcastType = bitcastType->getPointerTo(); // addrspace 0 okay
   1152 
   1153     // Perform an atomic load.  This does not impose ordering constraints.
   1154     Address ivarAddr = LV.getAddress(*this);
   1155     ivarAddr = Builder.CreateBitCast(ivarAddr, bitcastType);
   1156     llvm::LoadInst *load = Builder.CreateLoad(ivarAddr, "load");
   1157     load->setAtomic(llvm::AtomicOrdering::Unordered);
   1158 
   1159     // Store that value into the return address.  Doing this with a
   1160     // bitcast is likely to produce some pretty ugly IR, but it's not
   1161     // the *most* terrible thing in the world.
   1162     llvm::Type *retTy = ConvertType(getterMethod->getReturnType());
   1163     uint64_t retTySize = CGM.getDataLayout().getTypeSizeInBits(retTy);
   1164     llvm::Value *ivarVal = load;
   1165     if (ivarSize > retTySize) {
   1166       llvm::Type *newTy = llvm::Type::getIntNTy(getLLVMContext(), retTySize);
   1167       ivarVal = Builder.CreateTrunc(load, newTy);
   1168       bitcastType = newTy->getPointerTo();
   1169     }
   1170     Builder.CreateStore(ivarVal,
   1171                         Builder.CreateBitCast(ReturnValue, bitcastType));
   1172 
   1173     // Make sure we don't do an autorelease.
   1174     AutoreleaseResult = false;
   1175     return;
   1176   }
   1177 
   1178   case PropertyImplStrategy::GetSetProperty: {
   1179     llvm::FunctionCallee getPropertyFn =
   1180         CGM.getObjCRuntime().GetPropertyGetFunction();
   1181     if (!getPropertyFn) {
   1182       CGM.ErrorUnsupported(propImpl, "Obj-C getter requiring atomic copy");
   1183       return;
   1184     }
   1185     CGCallee callee = CGCallee::forDirect(getPropertyFn);
   1186 
   1187     // Return (ivar-type) objc_getProperty((id) self, _cmd, offset, true).
   1188     // FIXME: Can't this be simpler? This might even be worse than the
   1189     // corresponding gcc code.
   1190     llvm::Value *cmd =
   1191       Builder.CreateLoad(GetAddrOfLocalVar(getterMethod->getCmdDecl()), "cmd");
   1192     llvm::Value *self = Builder.CreateBitCast(LoadObjCSelf(), VoidPtrTy);
   1193     llvm::Value *ivarOffset =
   1194       EmitIvarOffset(classImpl->getClassInterface(), ivar);
   1195 
   1196     CallArgList args;
   1197     args.add(RValue::get(self), getContext().getObjCIdType());
   1198     args.add(RValue::get(cmd), getContext().getObjCSelType());
   1199     args.add(RValue::get(ivarOffset), getContext().getPointerDiffType());
   1200     args.add(RValue::get(Builder.getInt1(strategy.isAtomic())),
   1201              getContext().BoolTy);
   1202 
   1203     // FIXME: We shouldn't need to get the function info here, the
   1204     // runtime already should have computed it to build the function.
   1205     llvm::CallBase *CallInstruction;
   1206     RValue RV = EmitCall(getTypes().arrangeBuiltinFunctionCall(
   1207                              getContext().getObjCIdType(), args),
   1208                          callee, ReturnValueSlot(), args, &CallInstruction);
   1209     if (llvm::CallInst *call = dyn_cast<llvm::CallInst>(CallInstruction))
   1210       call->setTailCall();
   1211 
   1212     // We need to fix the type here. Ivars with copy & retain are
   1213     // always objects so we don't need to worry about complex or
   1214     // aggregates.
   1215     RV = RValue::get(Builder.CreateBitCast(
   1216         RV.getScalarVal(),
   1217         getTypes().ConvertType(getterMethod->getReturnType())));
   1218 
   1219     EmitReturnOfRValue(RV, propType);
   1220 
   1221     // objc_getProperty does an autorelease, so we should suppress ours.
   1222     AutoreleaseResult = false;
   1223 
   1224     return;
   1225   }
   1226 
   1227   case PropertyImplStrategy::CopyStruct:
   1228     emitStructGetterCall(*this, ivar, strategy.isAtomic(),
   1229                          strategy.hasStrongMember());
   1230     return;
   1231 
   1232   case PropertyImplStrategy::Expression:
   1233   case PropertyImplStrategy::SetPropertyAndExpressionGet: {
   1234     LValue LV = EmitLValueForIvar(TypeOfSelfObject(), LoadObjCSelf(), ivar, 0);
   1235 
   1236     QualType ivarType = ivar->getType();
   1237     switch (getEvaluationKind(ivarType)) {
   1238     case TEK_Complex: {
   1239       ComplexPairTy pair = EmitLoadOfComplex(LV, SourceLocation());
   1240       EmitStoreOfComplex(pair, MakeAddrLValue(ReturnValue, ivarType),
   1241                          /*init*/ true);
   1242       return;
   1243     }
   1244     case TEK_Aggregate: {
   1245       // The return value slot is guaranteed to not be aliased, but
   1246       // that's not necessarily the same as "on the stack", so
   1247       // we still potentially need objc_memmove_collectable.
   1248       EmitAggregateCopy(/* Dest= */ MakeAddrLValue(ReturnValue, ivarType),
   1249                         /* Src= */ LV, ivarType, getOverlapForReturnValue());
   1250       return;
   1251     }
   1252     case TEK_Scalar: {
   1253       llvm::Value *value;
   1254       if (propType->isReferenceType()) {
   1255         value = LV.getAddress(*this).getPointer();
   1256       } else {
   1257         // We want to load and autoreleaseReturnValue ARC __weak ivars.
   1258         if (LV.getQuals().getObjCLifetime() == Qualifiers::OCL_Weak) {
   1259           if (getLangOpts().ObjCAutoRefCount) {
   1260             value = emitARCRetainLoadOfScalar(*this, LV, ivarType);
   1261           } else {
   1262             value = EmitARCLoadWeak(LV.getAddress(*this));
   1263           }
   1264 
   1265         // Otherwise we want to do a simple load, suppressing the
   1266         // final autorelease.
   1267         } else {
   1268           value = EmitLoadOfLValue(LV, SourceLocation()).getScalarVal();
   1269           AutoreleaseResult = false;
   1270         }
   1271 
   1272         value = Builder.CreateBitCast(
   1273             value, ConvertType(GetterMethodDecl->getReturnType()));
   1274       }
   1275 
   1276       EmitReturnOfRValue(RValue::get(value), propType);
   1277       return;
   1278     }
   1279     }
   1280     llvm_unreachable("bad evaluation kind");
   1281   }
   1282 
   1283   }
   1284   llvm_unreachable("bad @property implementation strategy!");
   1285 }
   1286 
   1287 /// emitStructSetterCall - Call the runtime function to store the value
   1288 /// from the first formal parameter into the given ivar.
   1289 static void emitStructSetterCall(CodeGenFunction &CGF, ObjCMethodDecl *OMD,
   1290                                  ObjCIvarDecl *ivar) {
   1291   // objc_copyStruct (&structIvar, &Arg,
   1292   //                  sizeof (struct something), true, false);
   1293   CallArgList args;
   1294 
   1295   // The first argument is the address of the ivar.
   1296   llvm::Value *ivarAddr =
   1297       CGF.EmitLValueForIvar(CGF.TypeOfSelfObject(), CGF.LoadObjCSelf(), ivar, 0)
   1298           .getPointer(CGF);
   1299   ivarAddr = CGF.Builder.CreateBitCast(ivarAddr, CGF.Int8PtrTy);
   1300   args.add(RValue::get(ivarAddr), CGF.getContext().VoidPtrTy);
   1301 
   1302   // The second argument is the address of the parameter variable.
   1303   ParmVarDecl *argVar = *OMD->param_begin();
   1304   DeclRefExpr argRef(CGF.getContext(), argVar, false,
   1305                      argVar->getType().getNonReferenceType(), VK_LValue,
   1306                      SourceLocation());
   1307   llvm::Value *argAddr = CGF.EmitLValue(&argRef).getPointer(CGF);
   1308   argAddr = CGF.Builder.CreateBitCast(argAddr, CGF.Int8PtrTy);
   1309   args.add(RValue::get(argAddr), CGF.getContext().VoidPtrTy);
   1310 
   1311   // The third argument is the sizeof the type.
   1312   llvm::Value *size =
   1313     CGF.CGM.getSize(CGF.getContext().getTypeSizeInChars(ivar->getType()));
   1314   args.add(RValue::get(size), CGF.getContext().getSizeType());
   1315 
   1316   // The fourth argument is the 'isAtomic' flag.
   1317   args.add(RValue::get(CGF.Builder.getTrue()), CGF.getContext().BoolTy);
   1318 
   1319   // The fifth argument is the 'hasStrong' flag.
   1320   // FIXME: should this really always be false?
   1321   args.add(RValue::get(CGF.Builder.getFalse()), CGF.getContext().BoolTy);
   1322 
   1323   llvm::FunctionCallee fn = CGF.CGM.getObjCRuntime().GetSetStructFunction();
   1324   CGCallee callee = CGCallee::forDirect(fn);
   1325   CGF.EmitCall(
   1326       CGF.getTypes().arrangeBuiltinFunctionCall(CGF.getContext().VoidTy, args),
   1327                callee, ReturnValueSlot(), args);
   1328 }
   1329 
   1330 /// emitCPPObjectAtomicSetterCall - Call the runtime function to store
   1331 /// the value from the first formal parameter into the given ivar, using
   1332 /// the Cpp API for atomic Cpp objects with non-trivial copy assignment.
   1333 static void emitCPPObjectAtomicSetterCall(CodeGenFunction &CGF,
   1334                                           ObjCMethodDecl *OMD,
   1335                                           ObjCIvarDecl *ivar,
   1336                                           llvm::Constant *AtomicHelperFn) {
   1337   // objc_copyCppObjectAtomic (&CppObjectIvar, &Arg,
   1338   //                           AtomicHelperFn);
   1339   CallArgList args;
   1340 
   1341   // The first argument is the address of the ivar.
   1342   llvm::Value *ivarAddr =
   1343       CGF.EmitLValueForIvar(CGF.TypeOfSelfObject(), CGF.LoadObjCSelf(), ivar, 0)
   1344           .getPointer(CGF);
   1345   ivarAddr = CGF.Builder.CreateBitCast(ivarAddr, CGF.Int8PtrTy);
   1346   args.add(RValue::get(ivarAddr), CGF.getContext().VoidPtrTy);
   1347 
   1348   // The second argument is the address of the parameter variable.
   1349   ParmVarDecl *argVar = *OMD->param_begin();
   1350   DeclRefExpr argRef(CGF.getContext(), argVar, false,
   1351                      argVar->getType().getNonReferenceType(), VK_LValue,
   1352                      SourceLocation());
   1353   llvm::Value *argAddr = CGF.EmitLValue(&argRef).getPointer(CGF);
   1354   argAddr = CGF.Builder.CreateBitCast(argAddr, CGF.Int8PtrTy);
   1355   args.add(RValue::get(argAddr), CGF.getContext().VoidPtrTy);
   1356 
   1357   // Third argument is the helper function.
   1358   args.add(RValue::get(AtomicHelperFn), CGF.getContext().VoidPtrTy);
   1359 
   1360   llvm::FunctionCallee fn =
   1361       CGF.CGM.getObjCRuntime().GetCppAtomicObjectSetFunction();
   1362   CGCallee callee = CGCallee::forDirect(fn);
   1363   CGF.EmitCall(
   1364       CGF.getTypes().arrangeBuiltinFunctionCall(CGF.getContext().VoidTy, args),
   1365                callee, ReturnValueSlot(), args);
   1366 }
   1367 
   1368 
   1369 static bool hasTrivialSetExpr(const ObjCPropertyImplDecl *PID) {
   1370   Expr *setter = PID->getSetterCXXAssignment();
   1371   if (!setter) return true;
   1372 
   1373   // Sema only makes only of these when the ivar has a C++ class type,
   1374   // so the form is pretty constrained.
   1375 
   1376   // An operator call is trivial if the function it calls is trivial.
   1377   // This also implies that there's nothing non-trivial going on with
   1378   // the arguments, because operator= can only be trivial if it's a
   1379   // synthesized assignment operator and therefore both parameters are
   1380   // references.
   1381   if (CallExpr *call = dyn_cast<CallExpr>(setter)) {
   1382     if (const FunctionDecl *callee
   1383           = dyn_cast_or_null<FunctionDecl>(call->getCalleeDecl()))
   1384       if (callee->isTrivial())
   1385         return true;
   1386     return false;
   1387   }
   1388 
   1389   assert(isa<ExprWithCleanups>(setter));
   1390   return false;
   1391 }
   1392 
   1393 static bool UseOptimizedSetter(CodeGenModule &CGM) {
   1394   if (CGM.getLangOpts().getGC() != LangOptions::NonGC)
   1395     return false;
   1396   return CGM.getLangOpts().ObjCRuntime.hasOptimizedSetter();
   1397 }
   1398 
   1399 void
   1400 CodeGenFunction::generateObjCSetterBody(const ObjCImplementationDecl *classImpl,
   1401                                         const ObjCPropertyImplDecl *propImpl,
   1402                                         llvm::Constant *AtomicHelperFn) {
   1403   ObjCIvarDecl *ivar = propImpl->getPropertyIvarDecl();
   1404   ObjCMethodDecl *setterMethod = propImpl->getSetterMethodDecl();
   1405 
   1406   // Just use the setter expression if Sema gave us one and it's
   1407   // non-trivial.
   1408   if (!hasTrivialSetExpr(propImpl)) {
   1409     if (!AtomicHelperFn)
   1410       // If non-atomic, assignment is called directly.
   1411       EmitStmt(propImpl->getSetterCXXAssignment());
   1412     else
   1413       // If atomic, assignment is called via a locking api.
   1414       emitCPPObjectAtomicSetterCall(*this, setterMethod, ivar,
   1415                                     AtomicHelperFn);
   1416     return;
   1417   }
   1418 
   1419   PropertyImplStrategy strategy(CGM, propImpl);
   1420   switch (strategy.getKind()) {
   1421   case PropertyImplStrategy::Native: {
   1422     // We don't need to do anything for a zero-size struct.
   1423     if (strategy.getIvarSize().isZero())
   1424       return;
   1425 
   1426     Address argAddr = GetAddrOfLocalVar(*setterMethod->param_begin());
   1427 
   1428     LValue ivarLValue =
   1429       EmitLValueForIvar(TypeOfSelfObject(), LoadObjCSelf(), ivar, /*quals*/ 0);
   1430     Address ivarAddr = ivarLValue.getAddress(*this);
   1431 
   1432     // Currently, all atomic accesses have to be through integer
   1433     // types, so there's no point in trying to pick a prettier type.
   1434     llvm::Type *bitcastType =
   1435       llvm::Type::getIntNTy(getLLVMContext(),
   1436                             getContext().toBits(strategy.getIvarSize()));
   1437 
   1438     // Cast both arguments to the chosen operation type.
   1439     argAddr = Builder.CreateElementBitCast(argAddr, bitcastType);
   1440     ivarAddr = Builder.CreateElementBitCast(ivarAddr, bitcastType);
   1441 
   1442     // This bitcast load is likely to cause some nasty IR.
   1443     llvm::Value *load = Builder.CreateLoad(argAddr);
   1444 
   1445     // Perform an atomic store.  There are no memory ordering requirements.
   1446     llvm::StoreInst *store = Builder.CreateStore(load, ivarAddr);
   1447     store->setAtomic(llvm::AtomicOrdering::Unordered);
   1448     return;
   1449   }
   1450 
   1451   case PropertyImplStrategy::GetSetProperty:
   1452   case PropertyImplStrategy::SetPropertyAndExpressionGet: {
   1453 
   1454     llvm::FunctionCallee setOptimizedPropertyFn = nullptr;
   1455     llvm::FunctionCallee setPropertyFn = nullptr;
   1456     if (UseOptimizedSetter(CGM)) {
   1457       // 10.8 and iOS 6.0 code and GC is off
   1458       setOptimizedPropertyFn =
   1459           CGM.getObjCRuntime().GetOptimizedPropertySetFunction(
   1460               strategy.isAtomic(), strategy.isCopy());
   1461       if (!setOptimizedPropertyFn) {
   1462         CGM.ErrorUnsupported(propImpl, "Obj-C optimized setter - NYI");
   1463         return;
   1464       }
   1465     }
   1466     else {
   1467       setPropertyFn = CGM.getObjCRuntime().GetPropertySetFunction();
   1468       if (!setPropertyFn) {
   1469         CGM.ErrorUnsupported(propImpl, "Obj-C setter requiring atomic copy");
   1470         return;
   1471       }
   1472     }
   1473 
   1474     // Emit objc_setProperty((id) self, _cmd, offset, arg,
   1475     //                       <is-atomic>, <is-copy>).
   1476     llvm::Value *cmd =
   1477       Builder.CreateLoad(GetAddrOfLocalVar(setterMethod->getCmdDecl()));
   1478     llvm::Value *self =
   1479       Builder.CreateBitCast(LoadObjCSelf(), VoidPtrTy);
   1480     llvm::Value *ivarOffset =
   1481       EmitIvarOffset(classImpl->getClassInterface(), ivar);
   1482     Address argAddr = GetAddrOfLocalVar(*setterMethod->param_begin());
   1483     llvm::Value *arg = Builder.CreateLoad(argAddr, "arg");
   1484     arg = Builder.CreateBitCast(arg, VoidPtrTy);
   1485 
   1486     CallArgList args;
   1487     args.add(RValue::get(self), getContext().getObjCIdType());
   1488     args.add(RValue::get(cmd), getContext().getObjCSelType());
   1489     if (setOptimizedPropertyFn) {
   1490       args.add(RValue::get(arg), getContext().getObjCIdType());
   1491       args.add(RValue::get(ivarOffset), getContext().getPointerDiffType());
   1492       CGCallee callee = CGCallee::forDirect(setOptimizedPropertyFn);
   1493       EmitCall(getTypes().arrangeBuiltinFunctionCall(getContext().VoidTy, args),
   1494                callee, ReturnValueSlot(), args);
   1495     } else {
   1496       args.add(RValue::get(ivarOffset), getContext().getPointerDiffType());
   1497       args.add(RValue::get(arg), getContext().getObjCIdType());
   1498       args.add(RValue::get(Builder.getInt1(strategy.isAtomic())),
   1499                getContext().BoolTy);
   1500       args.add(RValue::get(Builder.getInt1(strategy.isCopy())),
   1501                getContext().BoolTy);
   1502       // FIXME: We shouldn't need to get the function info here, the runtime
   1503       // already should have computed it to build the function.
   1504       CGCallee callee = CGCallee::forDirect(setPropertyFn);
   1505       EmitCall(getTypes().arrangeBuiltinFunctionCall(getContext().VoidTy, args),
   1506                callee, ReturnValueSlot(), args);
   1507     }
   1508 
   1509     return;
   1510   }
   1511 
   1512   case PropertyImplStrategy::CopyStruct:
   1513     emitStructSetterCall(*this, setterMethod, ivar);
   1514     return;
   1515 
   1516   case PropertyImplStrategy::Expression:
   1517     break;
   1518   }
   1519 
   1520   // Otherwise, fake up some ASTs and emit a normal assignment.
   1521   ValueDecl *selfDecl = setterMethod->getSelfDecl();
   1522   DeclRefExpr self(getContext(), selfDecl, false, selfDecl->getType(),
   1523                    VK_LValue, SourceLocation());
   1524   ImplicitCastExpr selfLoad(ImplicitCastExpr::OnStack, selfDecl->getType(),
   1525                             CK_LValueToRValue, &self, VK_RValue,
   1526                             FPOptionsOverride());
   1527   ObjCIvarRefExpr ivarRef(ivar, ivar->getType().getNonReferenceType(),
   1528                           SourceLocation(), SourceLocation(),
   1529                           &selfLoad, true, true);
   1530 
   1531   ParmVarDecl *argDecl = *setterMethod->param_begin();
   1532   QualType argType = argDecl->getType().getNonReferenceType();
   1533   DeclRefExpr arg(getContext(), argDecl, false, argType, VK_LValue,
   1534                   SourceLocation());
   1535   ImplicitCastExpr argLoad(ImplicitCastExpr::OnStack,
   1536                            argType.getUnqualifiedType(), CK_LValueToRValue,
   1537                            &arg, VK_RValue, FPOptionsOverride());
   1538 
   1539   // The property type can differ from the ivar type in some situations with
   1540   // Objective-C pointer types, we can always bit cast the RHS in these cases.
   1541   // The following absurdity is just to ensure well-formed IR.
   1542   CastKind argCK = CK_NoOp;
   1543   if (ivarRef.getType()->isObjCObjectPointerType()) {
   1544     if (argLoad.getType()->isObjCObjectPointerType())
   1545       argCK = CK_BitCast;
   1546     else if (argLoad.getType()->isBlockPointerType())
   1547       argCK = CK_BlockPointerToObjCPointerCast;
   1548     else
   1549       argCK = CK_CPointerToObjCPointerCast;
   1550   } else if (ivarRef.getType()->isBlockPointerType()) {
   1551      if (argLoad.getType()->isBlockPointerType())
   1552       argCK = CK_BitCast;
   1553     else
   1554       argCK = CK_AnyPointerToBlockPointerCast;
   1555   } else if (ivarRef.getType()->isPointerType()) {
   1556     argCK = CK_BitCast;
   1557   }
   1558   ImplicitCastExpr argCast(ImplicitCastExpr::OnStack, ivarRef.getType(), argCK,
   1559                            &argLoad, VK_RValue, FPOptionsOverride());
   1560   Expr *finalArg = &argLoad;
   1561   if (!getContext().hasSameUnqualifiedType(ivarRef.getType(),
   1562                                            argLoad.getType()))
   1563     finalArg = &argCast;
   1564 
   1565   BinaryOperator *assign = BinaryOperator::Create(
   1566       getContext(), &ivarRef, finalArg, BO_Assign, ivarRef.getType(), VK_RValue,
   1567       OK_Ordinary, SourceLocation(), FPOptionsOverride());
   1568   EmitStmt(assign);
   1569 }
   1570 
   1571 /// Generate an Objective-C property setter function.
   1572 ///
   1573 /// The given Decl must be an ObjCImplementationDecl. \@synthesize
   1574 /// is illegal within a category.
   1575 void CodeGenFunction::GenerateObjCSetter(ObjCImplementationDecl *IMP,
   1576                                          const ObjCPropertyImplDecl *PID) {
   1577   llvm::Constant *AtomicHelperFn =
   1578       CodeGenFunction(CGM).GenerateObjCAtomicSetterCopyHelperFunction(PID);
   1579   ObjCMethodDecl *OMD = PID->getSetterMethodDecl();
   1580   assert(OMD && "Invalid call to generate setter (empty method)");
   1581   StartObjCMethod(OMD, IMP->getClassInterface());
   1582 
   1583   generateObjCSetterBody(IMP, PID, AtomicHelperFn);
   1584 
   1585   FinishFunction(OMD->getEndLoc());
   1586 }
   1587 
   1588 namespace {
   1589   struct DestroyIvar final : EHScopeStack::Cleanup {
   1590   private:
   1591     llvm::Value *addr;
   1592     const ObjCIvarDecl *ivar;
   1593     CodeGenFunction::Destroyer *destroyer;
   1594     bool useEHCleanupForArray;
   1595   public:
   1596     DestroyIvar(llvm::Value *addr, const ObjCIvarDecl *ivar,
   1597                 CodeGenFunction::Destroyer *destroyer,
   1598                 bool useEHCleanupForArray)
   1599       : addr(addr), ivar(ivar), destroyer(destroyer),
   1600         useEHCleanupForArray(useEHCleanupForArray) {}
   1601 
   1602     void Emit(CodeGenFunction &CGF, Flags flags) override {
   1603       LValue lvalue
   1604         = CGF.EmitLValueForIvar(CGF.TypeOfSelfObject(), addr, ivar, /*CVR*/ 0);
   1605       CGF.emitDestroy(lvalue.getAddress(CGF), ivar->getType(), destroyer,
   1606                       flags.isForNormalCleanup() && useEHCleanupForArray);
   1607     }
   1608   };
   1609 }
   1610 
   1611 /// Like CodeGenFunction::destroyARCStrong, but do it with a call.
   1612 static void destroyARCStrongWithStore(CodeGenFunction &CGF,
   1613                                       Address addr,
   1614                                       QualType type) {
   1615   llvm::Value *null = getNullForVariable(addr);
   1616   CGF.EmitARCStoreStrongCall(addr, null, /*ignored*/ true);
   1617 }
   1618 
   1619 static void emitCXXDestructMethod(CodeGenFunction &CGF,
   1620                                   ObjCImplementationDecl *impl) {
   1621   CodeGenFunction::RunCleanupsScope scope(CGF);
   1622 
   1623   llvm::Value *self = CGF.LoadObjCSelf();
   1624 
   1625   const ObjCInterfaceDecl *iface = impl->getClassInterface();
   1626   for (const ObjCIvarDecl *ivar = iface->all_declared_ivar_begin();
   1627        ivar; ivar = ivar->getNextIvar()) {
   1628     QualType type = ivar->getType();
   1629 
   1630     // Check whether the ivar is a destructible type.
   1631     QualType::DestructionKind dtorKind = type.isDestructedType();
   1632     if (!dtorKind) continue;
   1633 
   1634     CodeGenFunction::Destroyer *destroyer = nullptr;
   1635 
   1636     // Use a call to objc_storeStrong to destroy strong ivars, for the
   1637     // general benefit of the tools.
   1638     if (dtorKind == QualType::DK_objc_strong_lifetime) {
   1639       destroyer = destroyARCStrongWithStore;
   1640 
   1641     // Otherwise use the default for the destruction kind.
   1642     } else {
   1643       destroyer = CGF.getDestroyer(dtorKind);
   1644     }
   1645 
   1646     CleanupKind cleanupKind = CGF.getCleanupKind(dtorKind);
   1647 
   1648     CGF.EHStack.pushCleanup<DestroyIvar>(cleanupKind, self, ivar, destroyer,
   1649                                          cleanupKind & EHCleanup);
   1650   }
   1651 
   1652   assert(scope.requiresCleanups() && "nothing to do in .cxx_destruct?");
   1653 }
   1654 
   1655 void CodeGenFunction::GenerateObjCCtorDtorMethod(ObjCImplementationDecl *IMP,
   1656                                                  ObjCMethodDecl *MD,
   1657                                                  bool ctor) {
   1658   MD->createImplicitParams(CGM.getContext(), IMP->getClassInterface());
   1659   StartObjCMethod(MD, IMP->getClassInterface());
   1660 
   1661   // Emit .cxx_construct.
   1662   if (ctor) {
   1663     // Suppress the final autorelease in ARC.
   1664     AutoreleaseResult = false;
   1665 
   1666     for (const auto *IvarInit : IMP->inits()) {
   1667       FieldDecl *Field = IvarInit->getAnyMember();
   1668       ObjCIvarDecl *Ivar = cast<ObjCIvarDecl>(Field);
   1669       LValue LV = EmitLValueForIvar(TypeOfSelfObject(),
   1670                                     LoadObjCSelf(), Ivar, 0);
   1671       EmitAggExpr(IvarInit->getInit(),
   1672                   AggValueSlot::forLValue(LV, *this, AggValueSlot::IsDestructed,
   1673                                           AggValueSlot::DoesNotNeedGCBarriers,
   1674                                           AggValueSlot::IsNotAliased,
   1675                                           AggValueSlot::DoesNotOverlap));
   1676     }
   1677     // constructor returns 'self'.
   1678     CodeGenTypes &Types = CGM.getTypes();
   1679     QualType IdTy(CGM.getContext().getObjCIdType());
   1680     llvm::Value *SelfAsId =
   1681       Builder.CreateBitCast(LoadObjCSelf(), Types.ConvertType(IdTy));
   1682     EmitReturnOfRValue(RValue::get(SelfAsId), IdTy);
   1683 
   1684   // Emit .cxx_destruct.
   1685   } else {
   1686     emitCXXDestructMethod(*this, IMP);
   1687   }
   1688   FinishFunction();
   1689 }
   1690 
   1691 llvm::Value *CodeGenFunction::LoadObjCSelf() {
   1692   VarDecl *Self = cast<ObjCMethodDecl>(CurFuncDecl)->getSelfDecl();
   1693   DeclRefExpr DRE(getContext(), Self,
   1694                   /*is enclosing local*/ (CurFuncDecl != CurCodeDecl),
   1695                   Self->getType(), VK_LValue, SourceLocation());
   1696   return EmitLoadOfScalar(EmitDeclRefLValue(&DRE), SourceLocation());
   1697 }
   1698 
   1699 QualType CodeGenFunction::TypeOfSelfObject() {
   1700   const ObjCMethodDecl *OMD = cast<ObjCMethodDecl>(CurFuncDecl);
   1701   ImplicitParamDecl *selfDecl = OMD->getSelfDecl();
   1702   const ObjCObjectPointerType *PTy = cast<ObjCObjectPointerType>(
   1703     getContext().getCanonicalType(selfDecl->getType()));
   1704   return PTy->getPointeeType();
   1705 }
   1706 
   1707 void CodeGenFunction::EmitObjCForCollectionStmt(const ObjCForCollectionStmt &S){
   1708   llvm::FunctionCallee EnumerationMutationFnPtr =
   1709       CGM.getObjCRuntime().EnumerationMutationFunction();
   1710   if (!EnumerationMutationFnPtr) {
   1711     CGM.ErrorUnsupported(&S, "Obj-C fast enumeration for this runtime");
   1712     return;
   1713   }
   1714   CGCallee EnumerationMutationFn =
   1715     CGCallee::forDirect(EnumerationMutationFnPtr);
   1716 
   1717   CGDebugInfo *DI = getDebugInfo();
   1718   if (DI)
   1719     DI->EmitLexicalBlockStart(Builder, S.getSourceRange().getBegin());
   1720 
   1721   RunCleanupsScope ForScope(*this);
   1722 
   1723   // The local variable comes into scope immediately.
   1724   AutoVarEmission variable = AutoVarEmission::invalid();
   1725   if (const DeclStmt *SD = dyn_cast<DeclStmt>(S.getElement()))
   1726     variable = EmitAutoVarAlloca(*cast<VarDecl>(SD->getSingleDecl()));
   1727 
   1728   JumpDest LoopEnd = getJumpDestInCurrentScope("forcoll.end");
   1729 
   1730   // Fast enumeration state.
   1731   QualType StateTy = CGM.getObjCFastEnumerationStateType();
   1732   Address StatePtr = CreateMemTemp(StateTy, "state.ptr");
   1733   EmitNullInitialization(StatePtr, StateTy);
   1734 
   1735   // Number of elements in the items array.
   1736   static const unsigned NumItems = 16;
   1737 
   1738   // Fetch the countByEnumeratingWithState:objects:count: selector.
   1739   IdentifierInfo *II[] = {
   1740     &CGM.getContext().Idents.get("countByEnumeratingWithState"),
   1741     &CGM.getContext().Idents.get("objects"),
   1742     &CGM.getContext().Idents.get("count")
   1743   };
   1744   Selector FastEnumSel =
   1745     CGM.getContext().Selectors.getSelector(llvm::array_lengthof(II), &II[0]);
   1746 
   1747   QualType ItemsTy =
   1748     getContext().getConstantArrayType(getContext().getObjCIdType(),
   1749                                       llvm::APInt(32, NumItems), nullptr,
   1750                                       ArrayType::Normal, 0);
   1751   Address ItemsPtr = CreateMemTemp(ItemsTy, "items.ptr");
   1752 
   1753   // Emit the collection pointer.  In ARC, we do a retain.
   1754   llvm::Value *Collection;
   1755   if (getLangOpts().ObjCAutoRefCount) {
   1756     Collection = EmitARCRetainScalarExpr(S.getCollection());
   1757 
   1758     // Enter a cleanup to do the release.
   1759     EmitObjCConsumeObject(S.getCollection()->getType(), Collection);
   1760   } else {
   1761     Collection = EmitScalarExpr(S.getCollection());
   1762   }
   1763 
   1764   // The 'continue' label needs to appear within the cleanup for the
   1765   // collection object.
   1766   JumpDest AfterBody = getJumpDestInCurrentScope("forcoll.next");
   1767 
   1768   // Send it our message:
   1769   CallArgList Args;
   1770 
   1771   // The first argument is a temporary of the enumeration-state type.
   1772   Args.add(RValue::get(StatePtr.getPointer()),
   1773            getContext().getPointerType(StateTy));
   1774 
   1775   // The second argument is a temporary array with space for NumItems
   1776   // pointers.  We'll actually be loading elements from the array
   1777   // pointer written into the control state; this buffer is so that
   1778   // collections that *aren't* backed by arrays can still queue up
   1779   // batches of elements.
   1780   Args.add(RValue::get(ItemsPtr.getPointer()),
   1781            getContext().getPointerType(ItemsTy));
   1782 
   1783   // The third argument is the capacity of that temporary array.
   1784   llvm::Type *NSUIntegerTy = ConvertType(getContext().getNSUIntegerType());
   1785   llvm::Constant *Count = llvm::ConstantInt::get(NSUIntegerTy, NumItems);
   1786   Args.add(RValue::get(Count), getContext().getNSUIntegerType());
   1787 
   1788   // Start the enumeration.
   1789   RValue CountRV =
   1790       CGM.getObjCRuntime().GenerateMessageSend(*this, ReturnValueSlot(),
   1791                                                getContext().getNSUIntegerType(),
   1792                                                FastEnumSel, Collection, Args);
   1793 
   1794   // The initial number of objects that were returned in the buffer.
   1795   llvm::Value *initialBufferLimit = CountRV.getScalarVal();
   1796 
   1797   llvm::BasicBlock *EmptyBB = createBasicBlock("forcoll.empty");
   1798   llvm::BasicBlock *LoopInitBB = createBasicBlock("forcoll.loopinit");
   1799 
   1800   llvm::Value *zero = llvm::Constant::getNullValue(NSUIntegerTy);
   1801 
   1802   // If the limit pointer was zero to begin with, the collection is
   1803   // empty; skip all this. Set the branch weight assuming this has the same
   1804   // probability of exiting the loop as any other loop exit.
   1805   uint64_t EntryCount = getCurrentProfileCount();
   1806   Builder.CreateCondBr(
   1807       Builder.CreateICmpEQ(initialBufferLimit, zero, "iszero"), EmptyBB,
   1808       LoopInitBB,
   1809       createProfileWeights(EntryCount, getProfileCount(S.getBody())));
   1810 
   1811   // Otherwise, initialize the loop.
   1812   EmitBlock(LoopInitBB);
   1813 
   1814   // Save the initial mutations value.  This is the value at an
   1815   // address that was written into the state object by
   1816   // countByEnumeratingWithState:objects:count:.
   1817   Address StateMutationsPtrPtr =
   1818       Builder.CreateStructGEP(StatePtr, 2, "mutationsptr.ptr");
   1819   llvm::Value *StateMutationsPtr
   1820     = Builder.CreateLoad(StateMutationsPtrPtr, "mutationsptr");
   1821 
   1822   llvm::Type *UnsignedLongTy = ConvertType(getContext().UnsignedLongTy);
   1823   llvm::Value *initialMutations =
   1824     Builder.CreateAlignedLoad(UnsignedLongTy, StateMutationsPtr,
   1825                               getPointerAlign(), "forcoll.initial-mutations");
   1826 
   1827   // Start looping.  This is the point we return to whenever we have a
   1828   // fresh, non-empty batch of objects.
   1829   llvm::BasicBlock *LoopBodyBB = createBasicBlock("forcoll.loopbody");
   1830   EmitBlock(LoopBodyBB);
   1831 
   1832   // The current index into the buffer.
   1833   llvm::PHINode *index = Builder.CreatePHI(NSUIntegerTy, 3, "forcoll.index");
   1834   index->addIncoming(zero, LoopInitBB);
   1835 
   1836   // The current buffer size.
   1837   llvm::PHINode *count = Builder.CreatePHI(NSUIntegerTy, 3, "forcoll.count");
   1838   count->addIncoming(initialBufferLimit, LoopInitBB);
   1839 
   1840   incrementProfileCounter(&S);
   1841 
   1842   // Check whether the mutations value has changed from where it was
   1843   // at start.  StateMutationsPtr should actually be invariant between
   1844   // refreshes.
   1845   StateMutationsPtr = Builder.CreateLoad(StateMutationsPtrPtr, "mutationsptr");
   1846   llvm::Value *currentMutations
   1847     = Builder.CreateAlignedLoad(UnsignedLongTy, StateMutationsPtr,
   1848                                 getPointerAlign(), "statemutations");
   1849 
   1850   llvm::BasicBlock *WasMutatedBB = createBasicBlock("forcoll.mutated");
   1851   llvm::BasicBlock *WasNotMutatedBB = createBasicBlock("forcoll.notmutated");
   1852 
   1853   Builder.CreateCondBr(Builder.CreateICmpEQ(currentMutations, initialMutations),
   1854                        WasNotMutatedBB, WasMutatedBB);
   1855 
   1856   // If so, call the enumeration-mutation function.
   1857   EmitBlock(WasMutatedBB);
   1858   llvm::Type *ObjCIdType = ConvertType(getContext().getObjCIdType());
   1859   llvm::Value *V =
   1860     Builder.CreateBitCast(Collection, ObjCIdType);
   1861   CallArgList Args2;
   1862   Args2.add(RValue::get(V), getContext().getObjCIdType());
   1863   // FIXME: We shouldn't need to get the function info here, the runtime already
   1864   // should have computed it to build the function.
   1865   EmitCall(
   1866           CGM.getTypes().arrangeBuiltinFunctionCall(getContext().VoidTy, Args2),
   1867            EnumerationMutationFn, ReturnValueSlot(), Args2);
   1868 
   1869   // Otherwise, or if the mutation function returns, just continue.
   1870   EmitBlock(WasNotMutatedBB);
   1871 
   1872   // Initialize the element variable.
   1873   RunCleanupsScope elementVariableScope(*this);
   1874   bool elementIsVariable;
   1875   LValue elementLValue;
   1876   QualType elementType;
   1877   if (const DeclStmt *SD = dyn_cast<DeclStmt>(S.getElement())) {
   1878     // Initialize the variable, in case it's a __block variable or something.
   1879     EmitAutoVarInit(variable);
   1880 
   1881     const VarDecl *D = cast<VarDecl>(SD->getSingleDecl());
   1882     DeclRefExpr tempDRE(getContext(), const_cast<VarDecl *>(D), false,
   1883                         D->getType(), VK_LValue, SourceLocation());
   1884     elementLValue = EmitLValue(&tempDRE);
   1885     elementType = D->getType();
   1886     elementIsVariable = true;
   1887 
   1888     if (D->isARCPseudoStrong())
   1889       elementLValue.getQuals().setObjCLifetime(Qualifiers::OCL_ExplicitNone);
   1890   } else {
   1891     elementLValue = LValue(); // suppress warning
   1892     elementType = cast<Expr>(S.getElement())->getType();
   1893     elementIsVariable = false;
   1894   }
   1895   llvm::Type *convertedElementType = ConvertType(elementType);
   1896 
   1897   // Fetch the buffer out of the enumeration state.
   1898   // TODO: this pointer should actually be invariant between
   1899   // refreshes, which would help us do certain loop optimizations.
   1900   Address StateItemsPtr =
   1901       Builder.CreateStructGEP(StatePtr, 1, "stateitems.ptr");
   1902   llvm::Value *EnumStateItems =
   1903     Builder.CreateLoad(StateItemsPtr, "stateitems");
   1904 
   1905   // Fetch the value at the current index from the buffer.
   1906   llvm::Value *CurrentItemPtr =
   1907     Builder.CreateGEP(EnumStateItems, index, "currentitem.ptr");
   1908   llvm::Value *CurrentItem =
   1909     Builder.CreateAlignedLoad(ObjCIdType, CurrentItemPtr, getPointerAlign());
   1910 
   1911   if (SanOpts.has(SanitizerKind::ObjCCast)) {
   1912     // Before using an item from the collection, check that the implicit cast
   1913     // from id to the element type is valid. This is done with instrumentation
   1914     // roughly corresponding to:
   1915     //
   1916     //   if (![item isKindOfClass:expectedCls]) { /* emit diagnostic */ }
   1917     const ObjCObjectPointerType *ObjPtrTy =
   1918         elementType->getAsObjCInterfacePointerType();
   1919     const ObjCInterfaceType *InterfaceTy =
   1920         ObjPtrTy ? ObjPtrTy->getInterfaceType() : nullptr;
   1921     if (InterfaceTy) {
   1922       SanitizerScope SanScope(this);
   1923       auto &C = CGM.getContext();
   1924       assert(InterfaceTy->getDecl() && "No decl for ObjC interface type");
   1925       Selector IsKindOfClassSel = GetUnarySelector("isKindOfClass", C);
   1926       CallArgList IsKindOfClassArgs;
   1927       llvm::Value *Cls =
   1928           CGM.getObjCRuntime().GetClass(*this, InterfaceTy->getDecl());
   1929       IsKindOfClassArgs.add(RValue::get(Cls), C.getObjCClassType());
   1930       llvm::Value *IsClass =
   1931           CGM.getObjCRuntime()
   1932               .GenerateMessageSend(*this, ReturnValueSlot(), C.BoolTy,
   1933                                    IsKindOfClassSel, CurrentItem,
   1934                                    IsKindOfClassArgs)
   1935               .getScalarVal();
   1936       llvm::Constant *StaticData[] = {
   1937           EmitCheckSourceLocation(S.getBeginLoc()),
   1938           EmitCheckTypeDescriptor(QualType(InterfaceTy, 0))};
   1939       EmitCheck({{IsClass, SanitizerKind::ObjCCast}},
   1940                 SanitizerHandler::InvalidObjCCast,
   1941                 ArrayRef<llvm::Constant *>(StaticData), CurrentItem);
   1942     }
   1943   }
   1944 
   1945   // Cast that value to the right type.
   1946   CurrentItem = Builder.CreateBitCast(CurrentItem, convertedElementType,
   1947                                       "currentitem");
   1948 
   1949   // Make sure we have an l-value.  Yes, this gets evaluated every
   1950   // time through the loop.
   1951   if (!elementIsVariable) {
   1952     elementLValue = EmitLValue(cast<Expr>(S.getElement()));
   1953     EmitStoreThroughLValue(RValue::get(CurrentItem), elementLValue);
   1954   } else {
   1955     EmitStoreThroughLValue(RValue::get(CurrentItem), elementLValue,
   1956                            /*isInit*/ true);
   1957   }
   1958 
   1959   // If we do have an element variable, this assignment is the end of
   1960   // its initialization.
   1961   if (elementIsVariable)
   1962     EmitAutoVarCleanups(variable);
   1963 
   1964   // Perform the loop body, setting up break and continue labels.
   1965   BreakContinueStack.push_back(BreakContinue(LoopEnd, AfterBody));
   1966   {
   1967     RunCleanupsScope Scope(*this);
   1968     EmitStmt(S.getBody());
   1969   }
   1970   BreakContinueStack.pop_back();
   1971 
   1972   // Destroy the element variable now.
   1973   elementVariableScope.ForceCleanup();
   1974 
   1975   // Check whether there are more elements.
   1976   EmitBlock(AfterBody.getBlock());
   1977 
   1978   llvm::BasicBlock *FetchMoreBB = createBasicBlock("forcoll.refetch");
   1979 
   1980   // First we check in the local buffer.
   1981   llvm::Value *indexPlusOne =
   1982       Builder.CreateAdd(index, llvm::ConstantInt::get(NSUIntegerTy, 1));
   1983 
   1984   // If we haven't overrun the buffer yet, we can continue.
   1985   // Set the branch weights based on the simplifying assumption that this is
   1986   // like a while-loop, i.e., ignoring that the false branch fetches more
   1987   // elements and then returns to the loop.
   1988   Builder.CreateCondBr(
   1989       Builder.CreateICmpULT(indexPlusOne, count), LoopBodyBB, FetchMoreBB,
   1990       createProfileWeights(getProfileCount(S.getBody()), EntryCount));
   1991 
   1992   index->addIncoming(indexPlusOne, AfterBody.getBlock());
   1993   count->addIncoming(count, AfterBody.getBlock());
   1994 
   1995   // Otherwise, we have to fetch more elements.
   1996   EmitBlock(FetchMoreBB);
   1997 
   1998   CountRV =
   1999       CGM.getObjCRuntime().GenerateMessageSend(*this, ReturnValueSlot(),
   2000                                                getContext().getNSUIntegerType(),
   2001                                                FastEnumSel, Collection, Args);
   2002 
   2003   // If we got a zero count, we're done.
   2004   llvm::Value *refetchCount = CountRV.getScalarVal();
   2005 
   2006   // (note that the message send might split FetchMoreBB)
   2007   index->addIncoming(zero, Builder.GetInsertBlock());
   2008   count->addIncoming(refetchCount, Builder.GetInsertBlock());
   2009 
   2010   Builder.CreateCondBr(Builder.CreateICmpEQ(refetchCount, zero),
   2011                        EmptyBB, LoopBodyBB);
   2012 
   2013   // No more elements.
   2014   EmitBlock(EmptyBB);
   2015 
   2016   if (!elementIsVariable) {
   2017     // If the element was not a declaration, set it to be null.
   2018 
   2019     llvm::Value *null = llvm::Constant::getNullValue(convertedElementType);
   2020     elementLValue = EmitLValue(cast<Expr>(S.getElement()));
   2021     EmitStoreThroughLValue(RValue::get(null), elementLValue);
   2022   }
   2023 
   2024   if (DI)
   2025     DI->EmitLexicalBlockEnd(Builder, S.getSourceRange().getEnd());
   2026 
   2027   ForScope.ForceCleanup();
   2028   EmitBlock(LoopEnd.getBlock());
   2029 }
   2030 
   2031 void CodeGenFunction::EmitObjCAtTryStmt(const ObjCAtTryStmt &S) {
   2032   CGM.getObjCRuntime().EmitTryStmt(*this, S);
   2033 }
   2034 
   2035 void CodeGenFunction::EmitObjCAtThrowStmt(const ObjCAtThrowStmt &S) {
   2036   CGM.getObjCRuntime().EmitThrowStmt(*this, S);
   2037 }
   2038 
   2039 void CodeGenFunction::EmitObjCAtSynchronizedStmt(
   2040                                               const ObjCAtSynchronizedStmt &S) {
   2041   CGM.getObjCRuntime().EmitSynchronizedStmt(*this, S);
   2042 }
   2043 
   2044 namespace {
   2045   struct CallObjCRelease final : EHScopeStack::Cleanup {
   2046     CallObjCRelease(llvm::Value *object) : object(object) {}
   2047     llvm::Value *object;
   2048 
   2049     void Emit(CodeGenFunction &CGF, Flags flags) override {
   2050       // Releases at the end of the full-expression are imprecise.
   2051       CGF.EmitARCRelease(object, ARCImpreciseLifetime);
   2052     }
   2053   };
   2054 }
   2055 
   2056 /// Produce the code for a CK_ARCConsumeObject.  Does a primitive
   2057 /// release at the end of the full-expression.
   2058 llvm::Value *CodeGenFunction::EmitObjCConsumeObject(QualType type,
   2059                                                     llvm::Value *object) {
   2060   // If we're in a conditional branch, we need to make the cleanup
   2061   // conditional.
   2062   pushFullExprCleanup<CallObjCRelease>(getARCCleanupKind(), object);
   2063   return object;
   2064 }
   2065 
   2066 llvm::Value *CodeGenFunction::EmitObjCExtendObjectLifetime(QualType type,
   2067                                                            llvm::Value *value) {
   2068   return EmitARCRetainAutorelease(type, value);
   2069 }
   2070 
   2071 /// Given a number of pointers, inform the optimizer that they're
   2072 /// being intrinsically used up until this point in the program.
   2073 void CodeGenFunction::EmitARCIntrinsicUse(ArrayRef<llvm::Value*> values) {
   2074   llvm::Function *&fn = CGM.getObjCEntrypoints().clang_arc_use;
   2075   if (!fn)
   2076     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_clang_arc_use);
   2077 
   2078   // This isn't really a "runtime" function, but as an intrinsic it
   2079   // doesn't really matter as long as we align things up.
   2080   EmitNounwindRuntimeCall(fn, values);
   2081 }
   2082 
   2083 /// Emit a call to "clang.arc.noop.use", which consumes the result of a call
   2084 /// that has operand bundle "clang.arc.attachedcall".
   2085 void CodeGenFunction::EmitARCNoopIntrinsicUse(ArrayRef<llvm::Value *> values) {
   2086   llvm::Function *&fn = CGM.getObjCEntrypoints().clang_arc_noop_use;
   2087   if (!fn)
   2088     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_clang_arc_noop_use);
   2089   EmitNounwindRuntimeCall(fn, values);
   2090 }
   2091 
   2092 static void setARCRuntimeFunctionLinkage(CodeGenModule &CGM, llvm::Value *RTF) {
   2093   if (auto *F = dyn_cast<llvm::Function>(RTF)) {
   2094     // If the target runtime doesn't naturally support ARC, emit weak
   2095     // references to the runtime support library.  We don't really
   2096     // permit this to fail, but we need a particular relocation style.
   2097     if (!CGM.getLangOpts().ObjCRuntime.hasNativeARC() &&
   2098         !CGM.getTriple().isOSBinFormatCOFF()) {
   2099       F->setLinkage(llvm::Function::ExternalWeakLinkage);
   2100     }
   2101   }
   2102 }
   2103 
   2104 static void setARCRuntimeFunctionLinkage(CodeGenModule &CGM,
   2105                                          llvm::FunctionCallee RTF) {
   2106   setARCRuntimeFunctionLinkage(CGM, RTF.getCallee());
   2107 }
   2108 
   2109 /// Perform an operation having the signature
   2110 ///   i8* (i8*)
   2111 /// where a null input causes a no-op and returns null.
   2112 static llvm::Value *emitARCValueOperation(
   2113     CodeGenFunction &CGF, llvm::Value *value, llvm::Type *returnType,
   2114     llvm::Function *&fn, llvm::Intrinsic::ID IntID,
   2115     llvm::CallInst::TailCallKind tailKind = llvm::CallInst::TCK_None) {
   2116   if (isa<llvm::ConstantPointerNull>(value))
   2117     return value;
   2118 
   2119   if (!fn) {
   2120     fn = CGF.CGM.getIntrinsic(IntID);
   2121     setARCRuntimeFunctionLinkage(CGF.CGM, fn);
   2122   }
   2123 
   2124   // Cast the argument to 'id'.
   2125   llvm::Type *origType = returnType ? returnType : value->getType();
   2126   value = CGF.Builder.CreateBitCast(value, CGF.Int8PtrTy);
   2127 
   2128   // Call the function.
   2129   llvm::CallInst *call = CGF.EmitNounwindRuntimeCall(fn, value);
   2130   call->setTailCallKind(tailKind);
   2131 
   2132   // Cast the result back to the original type.
   2133   return CGF.Builder.CreateBitCast(call, origType);
   2134 }
   2135 
   2136 /// Perform an operation having the following signature:
   2137 ///   i8* (i8**)
   2138 static llvm::Value *emitARCLoadOperation(CodeGenFunction &CGF, Address addr,
   2139                                          llvm::Function *&fn,
   2140                                          llvm::Intrinsic::ID IntID) {
   2141   if (!fn) {
   2142     fn = CGF.CGM.getIntrinsic(IntID);
   2143     setARCRuntimeFunctionLinkage(CGF.CGM, fn);
   2144   }
   2145 
   2146   // Cast the argument to 'id*'.
   2147   llvm::Type *origType = addr.getElementType();
   2148   addr = CGF.Builder.CreateBitCast(addr, CGF.Int8PtrPtrTy);
   2149 
   2150   // Call the function.
   2151   llvm::Value *result = CGF.EmitNounwindRuntimeCall(fn, addr.getPointer());
   2152 
   2153   // Cast the result back to a dereference of the original type.
   2154   if (origType != CGF.Int8PtrTy)
   2155     result = CGF.Builder.CreateBitCast(result, origType);
   2156 
   2157   return result;
   2158 }
   2159 
   2160 /// Perform an operation having the following signature:
   2161 ///   i8* (i8**, i8*)
   2162 static llvm::Value *emitARCStoreOperation(CodeGenFunction &CGF, Address addr,
   2163                                           llvm::Value *value,
   2164                                           llvm::Function *&fn,
   2165                                           llvm::Intrinsic::ID IntID,
   2166                                           bool ignored) {
   2167   assert(addr.getElementType() == value->getType());
   2168 
   2169   if (!fn) {
   2170     fn = CGF.CGM.getIntrinsic(IntID);
   2171     setARCRuntimeFunctionLinkage(CGF.CGM, fn);
   2172   }
   2173 
   2174   llvm::Type *origType = value->getType();
   2175 
   2176   llvm::Value *args[] = {
   2177     CGF.Builder.CreateBitCast(addr.getPointer(), CGF.Int8PtrPtrTy),
   2178     CGF.Builder.CreateBitCast(value, CGF.Int8PtrTy)
   2179   };
   2180   llvm::CallInst *result = CGF.EmitNounwindRuntimeCall(fn, args);
   2181 
   2182   if (ignored) return nullptr;
   2183 
   2184   return CGF.Builder.CreateBitCast(result, origType);
   2185 }
   2186 
   2187 /// Perform an operation having the following signature:
   2188 ///   void (i8**, i8**)
   2189 static void emitARCCopyOperation(CodeGenFunction &CGF, Address dst, Address src,
   2190                                  llvm::Function *&fn,
   2191                                  llvm::Intrinsic::ID IntID) {
   2192   assert(dst.getType() == src.getType());
   2193 
   2194   if (!fn) {
   2195     fn = CGF.CGM.getIntrinsic(IntID);
   2196     setARCRuntimeFunctionLinkage(CGF.CGM, fn);
   2197   }
   2198 
   2199   llvm::Value *args[] = {
   2200     CGF.Builder.CreateBitCast(dst.getPointer(), CGF.Int8PtrPtrTy),
   2201     CGF.Builder.CreateBitCast(src.getPointer(), CGF.Int8PtrPtrTy)
   2202   };
   2203   CGF.EmitNounwindRuntimeCall(fn, args);
   2204 }
   2205 
   2206 /// Perform an operation having the signature
   2207 ///   i8* (i8*)
   2208 /// where a null input causes a no-op and returns null.
   2209 static llvm::Value *emitObjCValueOperation(CodeGenFunction &CGF,
   2210                                            llvm::Value *value,
   2211                                            llvm::Type *returnType,
   2212                                            llvm::FunctionCallee &fn,
   2213                                            StringRef fnName) {
   2214   if (isa<llvm::ConstantPointerNull>(value))
   2215     return value;
   2216 
   2217   if (!fn) {
   2218     llvm::FunctionType *fnType =
   2219       llvm::FunctionType::get(CGF.Int8PtrTy, CGF.Int8PtrTy, false);
   2220     fn = CGF.CGM.CreateRuntimeFunction(fnType, fnName);
   2221 
   2222     // We have Native ARC, so set nonlazybind attribute for performance
   2223     if (llvm::Function *f = dyn_cast<llvm::Function>(fn.getCallee()))
   2224       if (fnName == "objc_retain")
   2225         f->addFnAttr(llvm::Attribute::NonLazyBind);
   2226   }
   2227 
   2228   // Cast the argument to 'id'.
   2229   llvm::Type *origType = returnType ? returnType : value->getType();
   2230   value = CGF.Builder.CreateBitCast(value, CGF.Int8PtrTy);
   2231 
   2232   // Call the function.
   2233   llvm::CallBase *Inst = CGF.EmitCallOrInvoke(fn, value);
   2234 
   2235   // Mark calls to objc_autorelease as tail on the assumption that methods
   2236   // overriding autorelease do not touch anything on the stack.
   2237   if (fnName == "objc_autorelease")
   2238     if (auto *Call = dyn_cast<llvm::CallInst>(Inst))
   2239       Call->setTailCall();
   2240 
   2241   // Cast the result back to the original type.
   2242   return CGF.Builder.CreateBitCast(Inst, origType);
   2243 }
   2244 
   2245 /// Produce the code to do a retain.  Based on the type, calls one of:
   2246 ///   call i8* \@objc_retain(i8* %value)
   2247 ///   call i8* \@objc_retainBlock(i8* %value)
   2248 llvm::Value *CodeGenFunction::EmitARCRetain(QualType type, llvm::Value *value) {
   2249   if (type->isBlockPointerType())
   2250     return EmitARCRetainBlock(value, /*mandatory*/ false);
   2251   else
   2252     return EmitARCRetainNonBlock(value);
   2253 }
   2254 
   2255 /// Retain the given object, with normal retain semantics.
   2256 ///   call i8* \@objc_retain(i8* %value)
   2257 llvm::Value *CodeGenFunction::EmitARCRetainNonBlock(llvm::Value *value) {
   2258   return emitARCValueOperation(*this, value, nullptr,
   2259                                CGM.getObjCEntrypoints().objc_retain,
   2260                                llvm::Intrinsic::objc_retain);
   2261 }
   2262 
   2263 /// Retain the given block, with _Block_copy semantics.
   2264 ///   call i8* \@objc_retainBlock(i8* %value)
   2265 ///
   2266 /// \param mandatory - If false, emit the call with metadata
   2267 /// indicating that it's okay for the optimizer to eliminate this call
   2268 /// if it can prove that the block never escapes except down the stack.
   2269 llvm::Value *CodeGenFunction::EmitARCRetainBlock(llvm::Value *value,
   2270                                                  bool mandatory) {
   2271   llvm::Value *result
   2272     = emitARCValueOperation(*this, value, nullptr,
   2273                             CGM.getObjCEntrypoints().objc_retainBlock,
   2274                             llvm::Intrinsic::objc_retainBlock);
   2275 
   2276   // If the copy isn't mandatory, add !clang.arc.copy_on_escape to
   2277   // tell the optimizer that it doesn't need to do this copy if the
   2278   // block doesn't escape, where being passed as an argument doesn't
   2279   // count as escaping.
   2280   if (!mandatory && isa<llvm::Instruction>(result)) {
   2281     llvm::CallInst *call
   2282       = cast<llvm::CallInst>(result->stripPointerCasts());
   2283     assert(call->getCalledOperand() ==
   2284            CGM.getObjCEntrypoints().objc_retainBlock);
   2285 
   2286     call->setMetadata("clang.arc.copy_on_escape",
   2287                       llvm::MDNode::get(Builder.getContext(), None));
   2288   }
   2289 
   2290   return result;
   2291 }
   2292 
   2293 static void emitAutoreleasedReturnValueMarker(CodeGenFunction &CGF) {
   2294   // Fetch the void(void) inline asm which marks that we're going to
   2295   // do something with the autoreleased return value.
   2296   llvm::InlineAsm *&marker
   2297     = CGF.CGM.getObjCEntrypoints().retainAutoreleasedReturnValueMarker;
   2298   if (!marker) {
   2299     StringRef assembly
   2300       = CGF.CGM.getTargetCodeGenInfo()
   2301            .getARCRetainAutoreleasedReturnValueMarker();
   2302 
   2303     // If we have an empty assembly string, there's nothing to do.
   2304     if (assembly.empty()) {
   2305 
   2306     // Otherwise, at -O0, build an inline asm that we're going to call
   2307     // in a moment.
   2308     } else if (CGF.CGM.getCodeGenOpts().OptimizationLevel == 0) {
   2309       llvm::FunctionType *type =
   2310         llvm::FunctionType::get(CGF.VoidTy, /*variadic*/false);
   2311 
   2312       marker = llvm::InlineAsm::get(type, assembly, "", /*sideeffects*/ true);
   2313 
   2314     // If we're at -O1 and above, we don't want to litter the code
   2315     // with this marker yet, so leave a breadcrumb for the ARC
   2316     // optimizer to pick up.
   2317     } else {
   2318       const char *retainRVMarkerKey = llvm::objcarc::getRVMarkerModuleFlagStr();
   2319       if (!CGF.CGM.getModule().getModuleFlag(retainRVMarkerKey)) {
   2320         auto *str = llvm::MDString::get(CGF.getLLVMContext(), assembly);
   2321         CGF.CGM.getModule().addModuleFlag(llvm::Module::Error,
   2322                                           retainRVMarkerKey, str);
   2323       }
   2324     }
   2325   }
   2326 
   2327   // Call the marker asm if we made one, which we do only at -O0.
   2328   if (marker)
   2329     CGF.Builder.CreateCall(marker, None, CGF.getBundlesForFunclet(marker));
   2330 }
   2331 
   2332 static llvm::Value *emitOptimizedARCReturnCall(llvm::Value *value,
   2333                                                bool IsRetainRV,
   2334                                                CodeGenFunction &CGF) {
   2335   emitAutoreleasedReturnValueMarker(CGF);
   2336 
   2337   // Add operand bundle "clang.arc.attachedcall" to the call instead of emitting
   2338   // retainRV or claimRV calls in the IR. We currently do this only when the
   2339   // optimization level isn't -O0 since global-isel, which is currently run at
   2340   // -O0, doesn't know about the operand bundle.
   2341 
   2342   // FIXME: Do this when the target isn't aarch64.
   2343   if (CGF.CGM.getCodeGenOpts().OptimizationLevel > 0 &&
   2344       CGF.CGM.getTarget().getTriple().isAArch64()) {
   2345     llvm::Value *bundleArgs[] = {llvm::ConstantInt::get(
   2346         CGF.Int64Ty,
   2347         llvm::objcarc::getAttachedCallOperandBundleEnum(IsRetainRV))};
   2348     llvm::OperandBundleDef OB("clang.arc.attachedcall", bundleArgs);
   2349     auto *oldCall = cast<llvm::CallBase>(value);
   2350     llvm::CallBase *newCall = llvm::CallBase::addOperandBundle(
   2351         oldCall, llvm::LLVMContext::OB_clang_arc_attachedcall, OB, oldCall);
   2352     newCall->copyMetadata(*oldCall);
   2353     oldCall->replaceAllUsesWith(newCall);
   2354     oldCall->eraseFromParent();
   2355     CGF.EmitARCNoopIntrinsicUse(newCall);
   2356     return newCall;
   2357   }
   2358 
   2359   bool isNoTail =
   2360       CGF.CGM.getTargetCodeGenInfo().markARCOptimizedReturnCallsAsNoTail();
   2361   llvm::CallInst::TailCallKind tailKind =
   2362       isNoTail ? llvm::CallInst::TCK_NoTail : llvm::CallInst::TCK_None;
   2363   ObjCEntrypoints &EPs = CGF.CGM.getObjCEntrypoints();
   2364   llvm::Function *&EP = IsRetainRV
   2365                             ? EPs.objc_retainAutoreleasedReturnValue
   2366                             : EPs.objc_unsafeClaimAutoreleasedReturnValue;
   2367   llvm::Intrinsic::ID IID =
   2368       IsRetainRV ? llvm::Intrinsic::objc_retainAutoreleasedReturnValue
   2369                  : llvm::Intrinsic::objc_unsafeClaimAutoreleasedReturnValue;
   2370   return emitARCValueOperation(CGF, value, nullptr, EP, IID, tailKind);
   2371 }
   2372 
   2373 /// Retain the given object which is the result of a function call.
   2374 ///   call i8* \@objc_retainAutoreleasedReturnValue(i8* %value)
   2375 ///
   2376 /// Yes, this function name is one character away from a different
   2377 /// call with completely different semantics.
   2378 llvm::Value *
   2379 CodeGenFunction::EmitARCRetainAutoreleasedReturnValue(llvm::Value *value) {
   2380   return emitOptimizedARCReturnCall(value, true, *this);
   2381 }
   2382 
   2383 /// Claim a possibly-autoreleased return value at +0.  This is only
   2384 /// valid to do in contexts which do not rely on the retain to keep
   2385 /// the object valid for all of its uses; for example, when
   2386 /// the value is ignored, or when it is being assigned to an
   2387 /// __unsafe_unretained variable.
   2388 ///
   2389 ///   call i8* \@objc_unsafeClaimAutoreleasedReturnValue(i8* %value)
   2390 llvm::Value *
   2391 CodeGenFunction::EmitARCUnsafeClaimAutoreleasedReturnValue(llvm::Value *value) {
   2392   return emitOptimizedARCReturnCall(value, false, *this);
   2393 }
   2394 
   2395 /// Release the given object.
   2396 ///   call void \@objc_release(i8* %value)
   2397 void CodeGenFunction::EmitARCRelease(llvm::Value *value,
   2398                                      ARCPreciseLifetime_t precise) {
   2399   if (isa<llvm::ConstantPointerNull>(value)) return;
   2400 
   2401   llvm::Function *&fn = CGM.getObjCEntrypoints().objc_release;
   2402   if (!fn) {
   2403     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_release);
   2404     setARCRuntimeFunctionLinkage(CGM, fn);
   2405   }
   2406 
   2407   // Cast the argument to 'id'.
   2408   value = Builder.CreateBitCast(value, Int8PtrTy);
   2409 
   2410   // Call objc_release.
   2411   llvm::CallInst *call = EmitNounwindRuntimeCall(fn, value);
   2412 
   2413   if (precise == ARCImpreciseLifetime) {
   2414     call->setMetadata("clang.imprecise_release",
   2415                       llvm::MDNode::get(Builder.getContext(), None));
   2416   }
   2417 }
   2418 
   2419 /// Destroy a __strong variable.
   2420 ///
   2421 /// At -O0, emit a call to store 'null' into the address;
   2422 /// instrumenting tools prefer this because the address is exposed,
   2423 /// but it's relatively cumbersome to optimize.
   2424 ///
   2425 /// At -O1 and above, just load and call objc_release.
   2426 ///
   2427 ///   call void \@objc_storeStrong(i8** %addr, i8* null)
   2428 void CodeGenFunction::EmitARCDestroyStrong(Address addr,
   2429                                            ARCPreciseLifetime_t precise) {
   2430   if (CGM.getCodeGenOpts().OptimizationLevel == 0) {
   2431     llvm::Value *null = getNullForVariable(addr);
   2432     EmitARCStoreStrongCall(addr, null, /*ignored*/ true);
   2433     return;
   2434   }
   2435 
   2436   llvm::Value *value = Builder.CreateLoad(addr);
   2437   EmitARCRelease(value, precise);
   2438 }
   2439 
   2440 /// Store into a strong object.  Always calls this:
   2441 ///   call void \@objc_storeStrong(i8** %addr, i8* %value)
   2442 llvm::Value *CodeGenFunction::EmitARCStoreStrongCall(Address addr,
   2443                                                      llvm::Value *value,
   2444                                                      bool ignored) {
   2445   assert(addr.getElementType() == value->getType());
   2446 
   2447   llvm::Function *&fn = CGM.getObjCEntrypoints().objc_storeStrong;
   2448   if (!fn) {
   2449     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_storeStrong);
   2450     setARCRuntimeFunctionLinkage(CGM, fn);
   2451   }
   2452 
   2453   llvm::Value *args[] = {
   2454     Builder.CreateBitCast(addr.getPointer(), Int8PtrPtrTy),
   2455     Builder.CreateBitCast(value, Int8PtrTy)
   2456   };
   2457   EmitNounwindRuntimeCall(fn, args);
   2458 
   2459   if (ignored) return nullptr;
   2460   return value;
   2461 }
   2462 
   2463 /// Store into a strong object.  Sometimes calls this:
   2464 ///   call void \@objc_storeStrong(i8** %addr, i8* %value)
   2465 /// Other times, breaks it down into components.
   2466 llvm::Value *CodeGenFunction::EmitARCStoreStrong(LValue dst,
   2467                                                  llvm::Value *newValue,
   2468                                                  bool ignored) {
   2469   QualType type = dst.getType();
   2470   bool isBlock = type->isBlockPointerType();
   2471 
   2472   // Use a store barrier at -O0 unless this is a block type or the
   2473   // lvalue is inadequately aligned.
   2474   if (shouldUseFusedARCCalls() &&
   2475       !isBlock &&
   2476       (dst.getAlignment().isZero() ||
   2477        dst.getAlignment() >= CharUnits::fromQuantity(PointerAlignInBytes))) {
   2478     return EmitARCStoreStrongCall(dst.getAddress(*this), newValue, ignored);
   2479   }
   2480 
   2481   // Otherwise, split it out.
   2482 
   2483   // Retain the new value.
   2484   newValue = EmitARCRetain(type, newValue);
   2485 
   2486   // Read the old value.
   2487   llvm::Value *oldValue = EmitLoadOfScalar(dst, SourceLocation());
   2488 
   2489   // Store.  We do this before the release so that any deallocs won't
   2490   // see the old value.
   2491   EmitStoreOfScalar(newValue, dst);
   2492 
   2493   // Finally, release the old value.
   2494   EmitARCRelease(oldValue, dst.isARCPreciseLifetime());
   2495 
   2496   return newValue;
   2497 }
   2498 
   2499 /// Autorelease the given object.
   2500 ///   call i8* \@objc_autorelease(i8* %value)
   2501 llvm::Value *CodeGenFunction::EmitARCAutorelease(llvm::Value *value) {
   2502   return emitARCValueOperation(*this, value, nullptr,
   2503                                CGM.getObjCEntrypoints().objc_autorelease,
   2504                                llvm::Intrinsic::objc_autorelease);
   2505 }
   2506 
   2507 /// Autorelease the given object.
   2508 ///   call i8* \@objc_autoreleaseReturnValue(i8* %value)
   2509 llvm::Value *
   2510 CodeGenFunction::EmitARCAutoreleaseReturnValue(llvm::Value *value) {
   2511   return emitARCValueOperation(*this, value, nullptr,
   2512                             CGM.getObjCEntrypoints().objc_autoreleaseReturnValue,
   2513                                llvm::Intrinsic::objc_autoreleaseReturnValue,
   2514                                llvm::CallInst::TCK_Tail);
   2515 }
   2516 
   2517 /// Do a fused retain/autorelease of the given object.
   2518 ///   call i8* \@objc_retainAutoreleaseReturnValue(i8* %value)
   2519 llvm::Value *
   2520 CodeGenFunction::EmitARCRetainAutoreleaseReturnValue(llvm::Value *value) {
   2521   return emitARCValueOperation(*this, value, nullptr,
   2522                      CGM.getObjCEntrypoints().objc_retainAutoreleaseReturnValue,
   2523                              llvm::Intrinsic::objc_retainAutoreleaseReturnValue,
   2524                                llvm::CallInst::TCK_Tail);
   2525 }
   2526 
   2527 /// Do a fused retain/autorelease of the given object.
   2528 ///   call i8* \@objc_retainAutorelease(i8* %value)
   2529 /// or
   2530 ///   %retain = call i8* \@objc_retainBlock(i8* %value)
   2531 ///   call i8* \@objc_autorelease(i8* %retain)
   2532 llvm::Value *CodeGenFunction::EmitARCRetainAutorelease(QualType type,
   2533                                                        llvm::Value *value) {
   2534   if (!type->isBlockPointerType())
   2535     return EmitARCRetainAutoreleaseNonBlock(value);
   2536 
   2537   if (isa<llvm::ConstantPointerNull>(value)) return value;
   2538 
   2539   llvm::Type *origType = value->getType();
   2540   value = Builder.CreateBitCast(value, Int8PtrTy);
   2541   value = EmitARCRetainBlock(value, /*mandatory*/ true);
   2542   value = EmitARCAutorelease(value);
   2543   return Builder.CreateBitCast(value, origType);
   2544 }
   2545 
   2546 /// Do a fused retain/autorelease of the given object.
   2547 ///   call i8* \@objc_retainAutorelease(i8* %value)
   2548 llvm::Value *
   2549 CodeGenFunction::EmitARCRetainAutoreleaseNonBlock(llvm::Value *value) {
   2550   return emitARCValueOperation(*this, value, nullptr,
   2551                                CGM.getObjCEntrypoints().objc_retainAutorelease,
   2552                                llvm::Intrinsic::objc_retainAutorelease);
   2553 }
   2554 
   2555 /// i8* \@objc_loadWeak(i8** %addr)
   2556 /// Essentially objc_autorelease(objc_loadWeakRetained(addr)).
   2557 llvm::Value *CodeGenFunction::EmitARCLoadWeak(Address addr) {
   2558   return emitARCLoadOperation(*this, addr,
   2559                               CGM.getObjCEntrypoints().objc_loadWeak,
   2560                               llvm::Intrinsic::objc_loadWeak);
   2561 }
   2562 
   2563 /// i8* \@objc_loadWeakRetained(i8** %addr)
   2564 llvm::Value *CodeGenFunction::EmitARCLoadWeakRetained(Address addr) {
   2565   return emitARCLoadOperation(*this, addr,
   2566                               CGM.getObjCEntrypoints().objc_loadWeakRetained,
   2567                               llvm::Intrinsic::objc_loadWeakRetained);
   2568 }
   2569 
   2570 /// i8* \@objc_storeWeak(i8** %addr, i8* %value)
   2571 /// Returns %value.
   2572 llvm::Value *CodeGenFunction::EmitARCStoreWeak(Address addr,
   2573                                                llvm::Value *value,
   2574                                                bool ignored) {
   2575   return emitARCStoreOperation(*this, addr, value,
   2576                                CGM.getObjCEntrypoints().objc_storeWeak,
   2577                                llvm::Intrinsic::objc_storeWeak, ignored);
   2578 }
   2579 
   2580 /// i8* \@objc_initWeak(i8** %addr, i8* %value)
   2581 /// Returns %value.  %addr is known to not have a current weak entry.
   2582 /// Essentially equivalent to:
   2583 ///   *addr = nil; objc_storeWeak(addr, value);
   2584 void CodeGenFunction::EmitARCInitWeak(Address addr, llvm::Value *value) {
   2585   // If we're initializing to null, just write null to memory; no need
   2586   // to get the runtime involved.  But don't do this if optimization
   2587   // is enabled, because accounting for this would make the optimizer
   2588   // much more complicated.
   2589   if (isa<llvm::ConstantPointerNull>(value) &&
   2590       CGM.getCodeGenOpts().OptimizationLevel == 0) {
   2591     Builder.CreateStore(value, addr);
   2592     return;
   2593   }
   2594 
   2595   emitARCStoreOperation(*this, addr, value,
   2596                         CGM.getObjCEntrypoints().objc_initWeak,
   2597                         llvm::Intrinsic::objc_initWeak, /*ignored*/ true);
   2598 }
   2599 
   2600 /// void \@objc_destroyWeak(i8** %addr)
   2601 /// Essentially objc_storeWeak(addr, nil).
   2602 void CodeGenFunction::EmitARCDestroyWeak(Address addr) {
   2603   llvm::Function *&fn = CGM.getObjCEntrypoints().objc_destroyWeak;
   2604   if (!fn) {
   2605     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_destroyWeak);
   2606     setARCRuntimeFunctionLinkage(CGM, fn);
   2607   }
   2608 
   2609   // Cast the argument to 'id*'.
   2610   addr = Builder.CreateBitCast(addr, Int8PtrPtrTy);
   2611 
   2612   EmitNounwindRuntimeCall(fn, addr.getPointer());
   2613 }
   2614 
   2615 /// void \@objc_moveWeak(i8** %dest, i8** %src)
   2616 /// Disregards the current value in %dest.  Leaves %src pointing to nothing.
   2617 /// Essentially (objc_copyWeak(dest, src), objc_destroyWeak(src)).
   2618 void CodeGenFunction::EmitARCMoveWeak(Address dst, Address src) {
   2619   emitARCCopyOperation(*this, dst, src,
   2620                        CGM.getObjCEntrypoints().objc_moveWeak,
   2621                        llvm::Intrinsic::objc_moveWeak);
   2622 }
   2623 
   2624 /// void \@objc_copyWeak(i8** %dest, i8** %src)
   2625 /// Disregards the current value in %dest.  Essentially
   2626 ///   objc_release(objc_initWeak(dest, objc_readWeakRetained(src)))
   2627 void CodeGenFunction::EmitARCCopyWeak(Address dst, Address src) {
   2628   emitARCCopyOperation(*this, dst, src,
   2629                        CGM.getObjCEntrypoints().objc_copyWeak,
   2630                        llvm::Intrinsic::objc_copyWeak);
   2631 }
   2632 
   2633 void CodeGenFunction::emitARCCopyAssignWeak(QualType Ty, Address DstAddr,
   2634                                             Address SrcAddr) {
   2635   llvm::Value *Object = EmitARCLoadWeakRetained(SrcAddr);
   2636   Object = EmitObjCConsumeObject(Ty, Object);
   2637   EmitARCStoreWeak(DstAddr, Object, false);
   2638 }
   2639 
   2640 void CodeGenFunction::emitARCMoveAssignWeak(QualType Ty, Address DstAddr,
   2641                                             Address SrcAddr) {
   2642   llvm::Value *Object = EmitARCLoadWeakRetained(SrcAddr);
   2643   Object = EmitObjCConsumeObject(Ty, Object);
   2644   EmitARCStoreWeak(DstAddr, Object, false);
   2645   EmitARCDestroyWeak(SrcAddr);
   2646 }
   2647 
   2648 /// Produce the code to do a objc_autoreleasepool_push.
   2649 ///   call i8* \@objc_autoreleasePoolPush(void)
   2650 llvm::Value *CodeGenFunction::EmitObjCAutoreleasePoolPush() {
   2651   llvm::Function *&fn = CGM.getObjCEntrypoints().objc_autoreleasePoolPush;
   2652   if (!fn) {
   2653     fn = CGM.getIntrinsic(llvm::Intrinsic::objc_autoreleasePoolPush);
   2654     setARCRuntimeFunctionLinkage(CGM, fn);
   2655   }
   2656 
   2657   return EmitNounwindRuntimeCall(fn);
   2658 }
   2659 
   2660 /// Produce the code to do a primitive release.
   2661 ///   call void \@objc_autoreleasePoolPop(i8* %ptr)
   2662 void CodeGenFunction::EmitObjCAutoreleasePoolPop(llvm::Value *value) {
   2663   assert(value->getType() == Int8PtrTy);
   2664 
   2665   if (getInvokeDest()) {
   2666     // Call the runtime method not the intrinsic if we are handling exceptions
   2667     llvm::FunctionCallee &fn =
   2668         CGM.getObjCEntrypoints().objc_autoreleasePoolPopInvoke;
   2669     if (!fn) {
   2670       llvm::FunctionType *fnType =
   2671         llvm::FunctionType::get(Builder.getVoidTy(), Int8PtrTy, false);
   2672       fn = CGM.CreateRuntimeFunction(fnType, "objc_autoreleasePoolPop");
   2673       setARCRuntimeFunctionLinkage(CGM, fn);
   2674     }
   2675 
   2676     // objc_autoreleasePoolPop can throw.
   2677     EmitRuntimeCallOrInvoke(fn, value);
   2678   } else {
   2679     llvm::FunctionCallee &fn = CGM.getObjCEntrypoints().objc_autoreleasePoolPop;
   2680     if (!fn) {
   2681       fn = CGM.getIntrinsic(llvm::Intrinsic::objc_autoreleasePoolPop);
   2682       setARCRuntimeFunctionLinkage(CGM, fn);
   2683     }
   2684 
   2685     EmitRuntimeCall(fn, value);
   2686   }
   2687 }
   2688 
   2689 /// Produce the code to do an MRR version objc_autoreleasepool_push.
   2690 /// Which is: [[NSAutoreleasePool alloc] init];
   2691 /// Where alloc is declared as: + (id) alloc; in NSAutoreleasePool class.
   2692 /// init is declared as: - (id) init; in its NSObject super class.
   2693 ///
   2694 llvm::Value *CodeGenFunction::EmitObjCMRRAutoreleasePoolPush() {
   2695   CGObjCRuntime &Runtime = CGM.getObjCRuntime();
   2696   llvm::Value *Receiver = Runtime.EmitNSAutoreleasePoolClassRef(*this);
   2697   // [NSAutoreleasePool alloc]
   2698   IdentifierInfo *II = &CGM.getContext().Idents.get("alloc");
   2699   Selector AllocSel = getContext().Selectors.getSelector(0, &II);
   2700   CallArgList Args;
   2701   RValue AllocRV =
   2702     Runtime.GenerateMessageSend(*this, ReturnValueSlot(),
   2703                                 getContext().getObjCIdType(),
   2704                                 AllocSel, Receiver, Args);
   2705 
   2706   // [Receiver init]
   2707   Receiver = AllocRV.getScalarVal();
   2708   II = &CGM.getContext().Idents.get("init");
   2709   Selector InitSel = getContext().Selectors.getSelector(0, &II);
   2710   RValue InitRV =
   2711     Runtime.GenerateMessageSend(*this, ReturnValueSlot(),
   2712                                 getContext().getObjCIdType(),
   2713                                 InitSel, Receiver, Args);
   2714   return InitRV.getScalarVal();
   2715 }
   2716 
   2717 /// Allocate the given objc object.
   2718 ///   call i8* \@objc_alloc(i8* %value)
   2719 llvm::Value *CodeGenFunction::EmitObjCAlloc(llvm::Value *value,
   2720                                             llvm::Type *resultType) {
   2721   return emitObjCValueOperation(*this, value, resultType,
   2722                                 CGM.getObjCEntrypoints().objc_alloc,
   2723                                 "objc_alloc");
   2724 }
   2725 
   2726 /// Allocate the given objc object.
   2727 ///   call i8* \@objc_allocWithZone(i8* %value)
   2728 llvm::Value *CodeGenFunction::EmitObjCAllocWithZone(llvm::Value *value,
   2729                                                     llvm::Type *resultType) {
   2730   return emitObjCValueOperation(*this, value, resultType,
   2731                                 CGM.getObjCEntrypoints().objc_allocWithZone,
   2732                                 "objc_allocWithZone");
   2733 }
   2734 
   2735 llvm::Value *CodeGenFunction::EmitObjCAllocInit(llvm::Value *value,
   2736                                                 llvm::Type *resultType) {
   2737   return emitObjCValueOperation(*this, value, resultType,
   2738                                 CGM.getObjCEntrypoints().objc_alloc_init,
   2739                                 "objc_alloc_init");
   2740 }
   2741 
   2742 /// Produce the code to do a primitive release.
   2743 /// [tmp drain];
   2744 void CodeGenFunction::EmitObjCMRRAutoreleasePoolPop(llvm::Value *Arg) {
   2745   IdentifierInfo *II = &CGM.getContext().Idents.get("drain");
   2746   Selector DrainSel = getContext().Selectors.getSelector(0, &II);
   2747   CallArgList Args;
   2748   CGM.getObjCRuntime().GenerateMessageSend(*this, ReturnValueSlot(),
   2749                               getContext().VoidTy, DrainSel, Arg, Args);
   2750 }
   2751 
   2752 void CodeGenFunction::destroyARCStrongPrecise(CodeGenFunction &CGF,
   2753                                               Address addr,
   2754                                               QualType type) {
   2755   CGF.EmitARCDestroyStrong(addr, ARCPreciseLifetime);
   2756 }
   2757 
   2758 void CodeGenFunction::destroyARCStrongImprecise(CodeGenFunction &CGF,
   2759                                                 Address addr,
   2760                                                 QualType type) {
   2761   CGF.EmitARCDestroyStrong(addr, ARCImpreciseLifetime);
   2762 }
   2763 
   2764 void CodeGenFunction::destroyARCWeak(CodeGenFunction &CGF,
   2765                                      Address addr,
   2766                                      QualType type) {
   2767   CGF.EmitARCDestroyWeak(addr);
   2768 }
   2769 
   2770 void CodeGenFunction::emitARCIntrinsicUse(CodeGenFunction &CGF, Address addr,
   2771                                           QualType type) {
   2772   llvm::Value *value = CGF.Builder.CreateLoad(addr);
   2773   CGF.EmitARCIntrinsicUse(value);
   2774 }
   2775 
   2776 /// Autorelease the given object.
   2777 ///   call i8* \@objc_autorelease(i8* %value)
   2778 llvm::Value *CodeGenFunction::EmitObjCAutorelease(llvm::Value *value,
   2779                                                   llvm::Type *returnType) {
   2780   return emitObjCValueOperation(
   2781       *this, value, returnType,
   2782       CGM.getObjCEntrypoints().objc_autoreleaseRuntimeFunction,
   2783       "objc_autorelease");
   2784 }
   2785 
   2786 /// Retain the given object, with normal retain semantics.
   2787 ///   call i8* \@objc_retain(i8* %value)
   2788 llvm::Value *CodeGenFunction::EmitObjCRetainNonBlock(llvm::Value *value,
   2789                                                      llvm::Type *returnType) {
   2790   return emitObjCValueOperation(
   2791       *this, value, returnType,
   2792       CGM.getObjCEntrypoints().objc_retainRuntimeFunction, "objc_retain");
   2793 }
   2794 
   2795 /// Release the given object.
   2796 ///   call void \@objc_release(i8* %value)
   2797 void CodeGenFunction::EmitObjCRelease(llvm::Value *value,
   2798                                       ARCPreciseLifetime_t precise) {
   2799   if (isa<llvm::ConstantPointerNull>(value)) return;
   2800 
   2801   llvm::FunctionCallee &fn =
   2802       CGM.getObjCEntrypoints().objc_releaseRuntimeFunction;
   2803   if (!fn) {
   2804     llvm::FunctionType *fnType =
   2805         llvm::FunctionType::get(Builder.getVoidTy(), Int8PtrTy, false);
   2806     fn = CGM.CreateRuntimeFunction(fnType, "objc_release");
   2807     setARCRuntimeFunctionLinkage(CGM, fn);
   2808     // We have Native ARC, so set nonlazybind attribute for performance
   2809     if (llvm::Function *f = dyn_cast<llvm::Function>(fn.getCallee()))
   2810       f->addFnAttr(llvm::Attribute::NonLazyBind);
   2811   }
   2812 
   2813   // Cast the argument to 'id'.
   2814   value = Builder.CreateBitCast(value, Int8PtrTy);
   2815 
   2816   // Call objc_release.
   2817   llvm::CallBase *call = EmitCallOrInvoke(fn, value);
   2818 
   2819   if (precise == ARCImpreciseLifetime) {
   2820     call->setMetadata("clang.imprecise_release",
   2821                       llvm::MDNode::get(Builder.getContext(), None));
   2822   }
   2823 }
   2824 
   2825 namespace {
   2826   struct CallObjCAutoreleasePoolObject final : EHScopeStack::Cleanup {
   2827     llvm::Value *Token;
   2828 
   2829     CallObjCAutoreleasePoolObject(llvm::Value *token) : Token(token) {}
   2830 
   2831     void Emit(CodeGenFunction &CGF, Flags flags) override {
   2832       CGF.EmitObjCAutoreleasePoolPop(Token);
   2833     }
   2834   };
   2835   struct CallObjCMRRAutoreleasePoolObject final : EHScopeStack::Cleanup {
   2836     llvm::Value *Token;
   2837 
   2838     CallObjCMRRAutoreleasePoolObject(llvm::Value *token) : Token(token) {}
   2839 
   2840     void Emit(CodeGenFunction &CGF, Flags flags) override {
   2841       CGF.EmitObjCMRRAutoreleasePoolPop(Token);
   2842     }
   2843   };
   2844 }
   2845 
   2846 void CodeGenFunction::EmitObjCAutoreleasePoolCleanup(llvm::Value *Ptr) {
   2847   if (CGM.getLangOpts().ObjCAutoRefCount)
   2848     EHStack.pushCleanup<CallObjCAutoreleasePoolObject>(NormalCleanup, Ptr);
   2849   else
   2850     EHStack.pushCleanup<CallObjCMRRAutoreleasePoolObject>(NormalCleanup, Ptr);
   2851 }
   2852 
   2853 static bool shouldRetainObjCLifetime(Qualifiers::ObjCLifetime lifetime) {
   2854   switch (lifetime) {
   2855   case Qualifiers::OCL_None:
   2856   case Qualifiers::OCL_ExplicitNone:
   2857   case Qualifiers::OCL_Strong:
   2858   case Qualifiers::OCL_Autoreleasing:
   2859     return true;
   2860 
   2861   case Qualifiers::OCL_Weak:
   2862     return false;
   2863   }
   2864 
   2865   llvm_unreachable("impossible lifetime!");
   2866 }
   2867 
   2868 static TryEmitResult tryEmitARCRetainLoadOfScalar(CodeGenFunction &CGF,
   2869                                                   LValue lvalue,
   2870                                                   QualType type) {
   2871   llvm::Value *result;
   2872   bool shouldRetain = shouldRetainObjCLifetime(type.getObjCLifetime());
   2873   if (shouldRetain) {
   2874     result = CGF.EmitLoadOfLValue(lvalue, SourceLocation()).getScalarVal();
   2875   } else {
   2876     assert(type.getObjCLifetime() == Qualifiers::OCL_Weak);
   2877     result = CGF.EmitARCLoadWeakRetained(lvalue.getAddress(CGF));
   2878   }
   2879   return TryEmitResult(result, !shouldRetain);
   2880 }
   2881 
   2882 static TryEmitResult tryEmitARCRetainLoadOfScalar(CodeGenFunction &CGF,
   2883                                                   const Expr *e) {
   2884   e = e->IgnoreParens();
   2885   QualType type = e->getType();
   2886 
   2887   // If we're loading retained from a __strong xvalue, we can avoid
   2888   // an extra retain/release pair by zeroing out the source of this
   2889   // "move" operation.
   2890   if (e->isXValue() &&
   2891       !type.isConstQualified() &&
   2892       type.getObjCLifetime() == Qualifiers::OCL_Strong) {
   2893     // Emit the lvalue.
   2894     LValue lv = CGF.EmitLValue(e);
   2895 
   2896     // Load the object pointer.
   2897     llvm::Value *result = CGF.EmitLoadOfLValue(lv,
   2898                                                SourceLocation()).getScalarVal();
   2899 
   2900     // Set the source pointer to NULL.
   2901     CGF.EmitStoreOfScalar(getNullForVariable(lv.getAddress(CGF)), lv);
   2902 
   2903     return TryEmitResult(result, true);
   2904   }
   2905 
   2906   // As a very special optimization, in ARC++, if the l-value is the
   2907   // result of a non-volatile assignment, do a simple retain of the
   2908   // result of the call to objc_storeWeak instead of reloading.
   2909   if (CGF.getLangOpts().CPlusPlus &&
   2910       !type.isVolatileQualified() &&
   2911       type.getObjCLifetime() == Qualifiers::OCL_Weak &&
   2912       isa<BinaryOperator>(e) &&
   2913       cast<BinaryOperator>(e)->getOpcode() == BO_Assign)
   2914     return TryEmitResult(CGF.EmitScalarExpr(e), false);
   2915 
   2916   // Try to emit code for scalar constant instead of emitting LValue and
   2917   // loading it because we are not guaranteed to have an l-value. One of such
   2918   // cases is DeclRefExpr referencing non-odr-used constant-evaluated variable.
   2919   if (const auto *decl_expr = dyn_cast<DeclRefExpr>(e)) {
   2920     auto *DRE = const_cast<DeclRefExpr *>(decl_expr);
   2921     if (CodeGenFunction::ConstantEmission constant = CGF.tryEmitAsConstant(DRE))
   2922       return TryEmitResult(CGF.emitScalarConstant(constant, DRE),
   2923                            !shouldRetainObjCLifetime(type.getObjCLifetime()));
   2924   }
   2925 
   2926   return tryEmitARCRetainLoadOfScalar(CGF, CGF.EmitLValue(e), type);
   2927 }
   2928 
   2929 typedef llvm::function_ref<llvm::Value *(CodeGenFunction &CGF,
   2930                                          llvm::Value *value)>
   2931   ValueTransform;
   2932 
   2933 /// Insert code immediately after a call.
   2934 
   2935 // FIXME: We should find a way to emit the runtime call immediately
   2936 // after the call is emitted to eliminate the need for this function.
   2937 static llvm::Value *emitARCOperationAfterCall(CodeGenFunction &CGF,
   2938                                               llvm::Value *value,
   2939                                               ValueTransform doAfterCall,
   2940                                               ValueTransform doFallback) {
   2941   CGBuilderTy::InsertPoint ip = CGF.Builder.saveIP();
   2942 
   2943   if (llvm::CallInst *call = dyn_cast<llvm::CallInst>(value)) {
   2944     // Place the retain immediately following the call.
   2945     CGF.Builder.SetInsertPoint(call->getParent(),
   2946                                ++llvm::BasicBlock::iterator(call));
   2947     value = doAfterCall(CGF, value);
   2948   } else if (llvm::InvokeInst *invoke = dyn_cast<llvm::InvokeInst>(value)) {
   2949     // Place the retain at the beginning of the normal destination block.
   2950     llvm::BasicBlock *BB = invoke->getNormalDest();
   2951     CGF.Builder.SetInsertPoint(BB, BB->begin());
   2952     value = doAfterCall(CGF, value);
   2953 
   2954   // Bitcasts can arise because of related-result returns.  Rewrite
   2955   // the operand.
   2956   } else if (llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(value)) {
   2957     // Change the insert point to avoid emitting the fall-back call after the
   2958     // bitcast.
   2959     CGF.Builder.SetInsertPoint(bitcast->getParent(), bitcast->getIterator());
   2960     llvm::Value *operand = bitcast->getOperand(0);
   2961     operand = emitARCOperationAfterCall(CGF, operand, doAfterCall, doFallback);
   2962     bitcast->setOperand(0, operand);
   2963     value = bitcast;
   2964   } else {
   2965     auto *phi = dyn_cast<llvm::PHINode>(value);
   2966     if (phi && phi->getNumIncomingValues() == 2 &&
   2967         isa<llvm::ConstantPointerNull>(phi->getIncomingValue(1)) &&
   2968         isa<llvm::CallBase>(phi->getIncomingValue(0))) {
   2969       // Handle phi instructions that are generated when it's necessary to check
   2970       // whether the receiver of a message is null.
   2971       llvm::Value *inVal = phi->getIncomingValue(0);
   2972       inVal = emitARCOperationAfterCall(CGF, inVal, doAfterCall, doFallback);
   2973       phi->setIncomingValue(0, inVal);
   2974       value = phi;
   2975     } else {
   2976       // Generic fall-back case.
   2977       // Retain using the non-block variant: we never need to do a copy
   2978       // of a block that's been returned to us.
   2979       value = doFallback(CGF, value);
   2980     }
   2981   }
   2982 
   2983   CGF.Builder.restoreIP(ip);
   2984   return value;
   2985 }
   2986 
   2987 /// Given that the given expression is some sort of call (which does
   2988 /// not return retained), emit a retain following it.
   2989 static llvm::Value *emitARCRetainCallResult(CodeGenFunction &CGF,
   2990                                             const Expr *e) {
   2991   llvm::Value *value = CGF.EmitScalarExpr(e);
   2992   return emitARCOperationAfterCall(CGF, value,
   2993            [](CodeGenFunction &CGF, llvm::Value *value) {
   2994              return CGF.EmitARCRetainAutoreleasedReturnValue(value);
   2995            },
   2996            [](CodeGenFunction &CGF, llvm::Value *value) {
   2997              return CGF.EmitARCRetainNonBlock(value);
   2998            });
   2999 }
   3000 
   3001 /// Given that the given expression is some sort of call (which does
   3002 /// not return retained), perform an unsafeClaim following it.
   3003 static llvm::Value *emitARCUnsafeClaimCallResult(CodeGenFunction &CGF,
   3004                                                  const Expr *e) {
   3005   llvm::Value *value = CGF.EmitScalarExpr(e);
   3006   return emitARCOperationAfterCall(CGF, value,
   3007            [](CodeGenFunction &CGF, llvm::Value *value) {
   3008              return CGF.EmitARCUnsafeClaimAutoreleasedReturnValue(value);
   3009            },
   3010            [](CodeGenFunction &CGF, llvm::Value *value) {
   3011              return value;
   3012            });
   3013 }
   3014 
   3015 llvm::Value *CodeGenFunction::EmitARCReclaimReturnedObject(const Expr *E,
   3016                                                       bool allowUnsafeClaim) {
   3017   if (allowUnsafeClaim &&
   3018       CGM.getLangOpts().ObjCRuntime.hasARCUnsafeClaimAutoreleasedReturnValue()) {
   3019     return emitARCUnsafeClaimCallResult(*this, E);
   3020   } else {
   3021     llvm::Value *value = emitARCRetainCallResult(*this, E);
   3022     return EmitObjCConsumeObject(E->getType(), value);
   3023   }
   3024 }
   3025 
   3026 /// Determine whether it might be important to emit a separate
   3027 /// objc_retain_block on the result of the given expression, or
   3028 /// whether it's okay to just emit it in a +1 context.
   3029 static bool shouldEmitSeparateBlockRetain(const Expr *e) {
   3030   assert(e->getType()->isBlockPointerType());
   3031   e = e->IgnoreParens();
   3032 
   3033   // For future goodness, emit block expressions directly in +1
   3034   // contexts if we can.
   3035   if (isa<BlockExpr>(e))
   3036     return false;
   3037 
   3038   if (const CastExpr *cast = dyn_cast<CastExpr>(e)) {
   3039     switch (cast->getCastKind()) {
   3040     // Emitting these operations in +1 contexts is goodness.
   3041     case CK_LValueToRValue:
   3042     case CK_ARCReclaimReturnedObject:
   3043     case CK_ARCConsumeObject:
   3044     case CK_ARCProduceObject:
   3045       return false;
   3046 
   3047     // These operations preserve a block type.
   3048     case CK_NoOp:
   3049     case CK_BitCast:
   3050       return shouldEmitSeparateBlockRetain(cast->getSubExpr());
   3051 
   3052     // These operations are known to be bad (or haven't been considered).
   3053     case CK_AnyPointerToBlockPointerCast:
   3054     default:
   3055       return true;
   3056     }
   3057   }
   3058 
   3059   return true;
   3060 }
   3061 
   3062 namespace {
   3063 /// A CRTP base class for emitting expressions of retainable object
   3064 /// pointer type in ARC.
   3065 template <typename Impl, typename Result> class ARCExprEmitter {
   3066 protected:
   3067   CodeGenFunction &CGF;
   3068   Impl &asImpl() { return *static_cast<Impl*>(this); }
   3069 
   3070   ARCExprEmitter(CodeGenFunction &CGF) : CGF(CGF) {}
   3071 
   3072 public:
   3073   Result visit(const Expr *e);
   3074   Result visitCastExpr(const CastExpr *e);
   3075   Result visitPseudoObjectExpr(const PseudoObjectExpr *e);
   3076   Result visitBlockExpr(const BlockExpr *e);
   3077   Result visitBinaryOperator(const BinaryOperator *e);
   3078   Result visitBinAssign(const BinaryOperator *e);
   3079   Result visitBinAssignUnsafeUnretained(const BinaryOperator *e);
   3080   Result visitBinAssignAutoreleasing(const BinaryOperator *e);
   3081   Result visitBinAssignWeak(const BinaryOperator *e);
   3082   Result visitBinAssignStrong(const BinaryOperator *e);
   3083 
   3084   // Minimal implementation:
   3085   //   Result visitLValueToRValue(const Expr *e)
   3086   //   Result visitConsumeObject(const Expr *e)
   3087   //   Result visitExtendBlockObject(const Expr *e)
   3088   //   Result visitReclaimReturnedObject(const Expr *e)
   3089   //   Result visitCall(const Expr *e)
   3090   //   Result visitExpr(const Expr *e)
   3091   //
   3092   //   Result emitBitCast(Result result, llvm::Type *resultType)
   3093   //   llvm::Value *getValueOfResult(Result result)
   3094 };
   3095 }
   3096 
   3097 /// Try to emit a PseudoObjectExpr under special ARC rules.
   3098 ///
   3099 /// This massively duplicates emitPseudoObjectRValue.
   3100 template <typename Impl, typename Result>
   3101 Result
   3102 ARCExprEmitter<Impl,Result>::visitPseudoObjectExpr(const PseudoObjectExpr *E) {
   3103   SmallVector<CodeGenFunction::OpaqueValueMappingData, 4> opaques;
   3104 
   3105   // Find the result expression.
   3106   const Expr *resultExpr = E->getResultExpr();
   3107   assert(resultExpr);
   3108   Result result;
   3109 
   3110   for (PseudoObjectExpr::const_semantics_iterator
   3111          i = E->semantics_begin(), e = E->semantics_end(); i != e; ++i) {
   3112     const Expr *semantic = *i;
   3113 
   3114     // If this semantic expression is an opaque value, bind it
   3115     // to the result of its source expression.
   3116     if (const OpaqueValueExpr *ov = dyn_cast<OpaqueValueExpr>(semantic)) {
   3117       typedef CodeGenFunction::OpaqueValueMappingData OVMA;
   3118       OVMA opaqueData;
   3119 
   3120       // If this semantic is the result of the pseudo-object
   3121       // expression, try to evaluate the source as +1.
   3122       if (ov == resultExpr) {
   3123         assert(!OVMA::shouldBindAsLValue(ov));
   3124         result = asImpl().visit(ov->getSourceExpr());
   3125         opaqueData = OVMA::bind(CGF, ov,
   3126                             RValue::get(asImpl().getValueOfResult(result)));
   3127 
   3128       // Otherwise, just bind it.
   3129       } else {
   3130         opaqueData = OVMA::bind(CGF, ov, ov->getSourceExpr());
   3131       }
   3132       opaques.push_back(opaqueData);
   3133 
   3134     // Otherwise, if the expression is the result, evaluate it
   3135     // and remember the result.
   3136     } else if (semantic == resultExpr) {
   3137       result = asImpl().visit(semantic);
   3138 
   3139     // Otherwise, evaluate the expression in an ignored context.
   3140     } else {
   3141       CGF.EmitIgnoredExpr(semantic);
   3142     }
   3143   }
   3144 
   3145   // Unbind all the opaques now.
   3146   for (unsigned i = 0, e = opaques.size(); i != e; ++i)
   3147     opaques[i].unbind(CGF);
   3148 
   3149   return result;
   3150 }
   3151 
   3152 template <typename Impl, typename Result>
   3153 Result ARCExprEmitter<Impl, Result>::visitBlockExpr(const BlockExpr *e) {
   3154   // The default implementation just forwards the expression to visitExpr.
   3155   return asImpl().visitExpr(e);
   3156 }
   3157 
   3158 template <typename Impl, typename Result>
   3159 Result ARCExprEmitter<Impl,Result>::visitCastExpr(const CastExpr *e) {
   3160   switch (e->getCastKind()) {
   3161 
   3162   // No-op casts don't change the type, so we just ignore them.
   3163   case CK_NoOp:
   3164     return asImpl().visit(e->getSubExpr());
   3165 
   3166   // These casts can change the type.
   3167   case CK_CPointerToObjCPointerCast:
   3168   case CK_BlockPointerToObjCPointerCast:
   3169   case CK_AnyPointerToBlockPointerCast:
   3170   case CK_BitCast: {
   3171     llvm::Type *resultType = CGF.ConvertType(e->getType());
   3172     assert(e->getSubExpr()->getType()->hasPointerRepresentation());
   3173     Result result = asImpl().visit(e->getSubExpr());
   3174     return asImpl().emitBitCast(result, resultType);
   3175   }
   3176 
   3177   // Handle some casts specially.
   3178   case CK_LValueToRValue:
   3179     return asImpl().visitLValueToRValue(e->getSubExpr());
   3180   case CK_ARCConsumeObject:
   3181     return asImpl().visitConsumeObject(e->getSubExpr());
   3182   case CK_ARCExtendBlockObject:
   3183     return asImpl().visitExtendBlockObject(e->getSubExpr());
   3184   case CK_ARCReclaimReturnedObject:
   3185     return asImpl().visitReclaimReturnedObject(e->getSubExpr());
   3186 
   3187   // Otherwise, use the default logic.
   3188   default:
   3189     return asImpl().visitExpr(e);
   3190   }
   3191 }
   3192 
   3193 template <typename Impl, typename Result>
   3194 Result
   3195 ARCExprEmitter<Impl,Result>::visitBinaryOperator(const BinaryOperator *e) {
   3196   switch (e->getOpcode()) {
   3197   case BO_Comma:
   3198     CGF.EmitIgnoredExpr(e->getLHS());
   3199     CGF.EnsureInsertPoint();
   3200     return asImpl().visit(e->getRHS());
   3201 
   3202   case BO_Assign:
   3203     return asImpl().visitBinAssign(e);
   3204 
   3205   default:
   3206     return asImpl().visitExpr(e);
   3207   }
   3208 }
   3209 
   3210 template <typename Impl, typename Result>
   3211 Result ARCExprEmitter<Impl,Result>::visitBinAssign(const BinaryOperator *e) {
   3212   switch (e->getLHS()->getType().getObjCLifetime()) {
   3213   case Qualifiers::OCL_ExplicitNone:
   3214     return asImpl().visitBinAssignUnsafeUnretained(e);
   3215 
   3216   case Qualifiers::OCL_Weak:
   3217     return asImpl().visitBinAssignWeak(e);
   3218 
   3219   case Qualifiers::OCL_Autoreleasing:
   3220     return asImpl().visitBinAssignAutoreleasing(e);
   3221 
   3222   case Qualifiers::OCL_Strong:
   3223     return asImpl().visitBinAssignStrong(e);
   3224 
   3225   case Qualifiers::OCL_None:
   3226     return asImpl().visitExpr(e);
   3227   }
   3228   llvm_unreachable("bad ObjC ownership qualifier");
   3229 }
   3230 
   3231 /// The default rule for __unsafe_unretained emits the RHS recursively,
   3232 /// stores into the unsafe variable, and propagates the result outward.
   3233 template <typename Impl, typename Result>
   3234 Result ARCExprEmitter<Impl,Result>::
   3235                     visitBinAssignUnsafeUnretained(const BinaryOperator *e) {
   3236   // Recursively emit the RHS.
   3237   // For __block safety, do this before emitting the LHS.
   3238   Result result = asImpl().visit(e->getRHS());
   3239 
   3240   // Perform the store.
   3241   LValue lvalue =
   3242     CGF.EmitCheckedLValue(e->getLHS(), CodeGenFunction::TCK_Store);
   3243   CGF.EmitStoreThroughLValue(RValue::get(asImpl().getValueOfResult(result)),
   3244                              lvalue);
   3245 
   3246   return result;
   3247 }
   3248 
   3249 template <typename Impl, typename Result>
   3250 Result
   3251 ARCExprEmitter<Impl,Result>::visitBinAssignAutoreleasing(const BinaryOperator *e) {
   3252   return asImpl().visitExpr(e);
   3253 }
   3254 
   3255 template <typename Impl, typename Result>
   3256 Result
   3257 ARCExprEmitter<Impl,Result>::visitBinAssignWeak(const BinaryOperator *e) {
   3258   return asImpl().visitExpr(e);
   3259 }
   3260 
   3261 template <typename Impl, typename Result>
   3262 Result
   3263 ARCExprEmitter<Impl,Result>::visitBinAssignStrong(const BinaryOperator *e) {
   3264   return asImpl().visitExpr(e);
   3265 }
   3266 
   3267 /// The general expression-emission logic.
   3268 template <typename Impl, typename Result>
   3269 Result ARCExprEmitter<Impl,Result>::visit(const Expr *e) {
   3270   // We should *never* see a nested full-expression here, because if
   3271   // we fail to emit at +1, our caller must not retain after we close
   3272   // out the full-expression.  This isn't as important in the unsafe
   3273   // emitter.
   3274   assert(!isa<ExprWithCleanups>(e));
   3275 
   3276   // Look through parens, __extension__, generic selection, etc.
   3277   e = e->IgnoreParens();
   3278 
   3279   // Handle certain kinds of casts.
   3280   if (const CastExpr *ce = dyn_cast<CastExpr>(e)) {
   3281     return asImpl().visitCastExpr(ce);
   3282 
   3283   // Handle the comma operator.
   3284   } else if (auto op = dyn_cast<BinaryOperator>(e)) {
   3285     return asImpl().visitBinaryOperator(op);
   3286 
   3287   // TODO: handle conditional operators here
   3288 
   3289   // For calls and message sends, use the retained-call logic.
   3290   // Delegate inits are a special case in that they're the only
   3291   // returns-retained expression that *isn't* surrounded by
   3292   // a consume.
   3293   } else if (isa<CallExpr>(e) ||
   3294              (isa<ObjCMessageExpr>(e) &&
   3295               !cast<ObjCMessageExpr>(e)->isDelegateInitCall())) {
   3296     return asImpl().visitCall(e);
   3297 
   3298   // Look through pseudo-object expressions.
   3299   } else if (const PseudoObjectExpr *pseudo = dyn_cast<PseudoObjectExpr>(e)) {
   3300     return asImpl().visitPseudoObjectExpr(pseudo);
   3301   } else if (auto *be = dyn_cast<BlockExpr>(e))
   3302     return asImpl().visitBlockExpr(be);
   3303 
   3304   return asImpl().visitExpr(e);
   3305 }
   3306 
   3307 namespace {
   3308 
   3309 /// An emitter for +1 results.
   3310 struct ARCRetainExprEmitter :
   3311   public ARCExprEmitter<ARCRetainExprEmitter, TryEmitResult> {
   3312 
   3313   ARCRetainExprEmitter(CodeGenFunction &CGF) : ARCExprEmitter(CGF) {}
   3314 
   3315   llvm::Value *getValueOfResult(TryEmitResult result) {
   3316     return result.getPointer();
   3317   }
   3318 
   3319   TryEmitResult emitBitCast(TryEmitResult result, llvm::Type *resultType) {
   3320     llvm::Value *value = result.getPointer();
   3321     value = CGF.Builder.CreateBitCast(value, resultType);
   3322     result.setPointer(value);
   3323     return result;
   3324   }
   3325 
   3326   TryEmitResult visitLValueToRValue(const Expr *e) {
   3327     return tryEmitARCRetainLoadOfScalar(CGF, e);
   3328   }
   3329 
   3330   /// For consumptions, just emit the subexpression and thus elide
   3331   /// the retain/release pair.
   3332   TryEmitResult visitConsumeObject(const Expr *e) {
   3333     llvm::Value *result = CGF.EmitScalarExpr(e);
   3334     return TryEmitResult(result, true);
   3335   }
   3336 
   3337   TryEmitResult visitBlockExpr(const BlockExpr *e) {
   3338     TryEmitResult result = visitExpr(e);
   3339     // Avoid the block-retain if this is a block literal that doesn't need to be
   3340     // copied to the heap.
   3341     if (e->getBlockDecl()->canAvoidCopyToHeap())
   3342       result.setInt(true);
   3343     return result;
   3344   }
   3345 
   3346   /// Block extends are net +0.  Naively, we could just recurse on
   3347   /// the subexpression, but actually we need to ensure that the
   3348   /// value is copied as a block, so there's a little filter here.
   3349   TryEmitResult visitExtendBlockObject(const Expr *e) {
   3350     llvm::Value *result; // will be a +0 value
   3351 
   3352     // If we can't safely assume the sub-expression will produce a
   3353     // block-copied value, emit the sub-expression at +0.
   3354     if (shouldEmitSeparateBlockRetain(e)) {
   3355       result = CGF.EmitScalarExpr(e);
   3356 
   3357     // Otherwise, try to emit the sub-expression at +1 recursively.
   3358     } else {
   3359       TryEmitResult subresult = asImpl().visit(e);
   3360 
   3361       // If that produced a retained value, just use that.
   3362       if (subresult.getInt()) {
   3363         return subresult;
   3364       }
   3365 
   3366       // Otherwise it's +0.
   3367       result = subresult.getPointer();
   3368     }
   3369 
   3370     // Retain the object as a block.
   3371     result = CGF.EmitARCRetainBlock(result, /*mandatory*/ true);
   3372     return TryEmitResult(result, true);
   3373   }
   3374 
   3375   /// For reclaims, emit the subexpression as a retained call and
   3376   /// skip the consumption.
   3377   TryEmitResult visitReclaimReturnedObject(const Expr *e) {
   3378     llvm::Value *result = emitARCRetainCallResult(CGF, e);
   3379     return TryEmitResult(result, true);
   3380   }
   3381 
   3382   /// When we have an undecorated call, retroactively do a claim.
   3383   TryEmitResult visitCall(const Expr *e) {
   3384     llvm::Value *result = emitARCRetainCallResult(CGF, e);
   3385     return TryEmitResult(result, true);
   3386   }
   3387 
   3388   // TODO: maybe special-case visitBinAssignWeak?
   3389 
   3390   TryEmitResult visitExpr(const Expr *e) {
   3391     // We didn't find an obvious production, so emit what we've got and
   3392     // tell the caller that we didn't manage to retain.
   3393     llvm::Value *result = CGF.EmitScalarExpr(e);
   3394     return TryEmitResult(result, false);
   3395   }
   3396 };
   3397 }
   3398 
   3399 static TryEmitResult
   3400 tryEmitARCRetainScalarExpr(CodeGenFunction &CGF, const Expr *e) {
   3401   return ARCRetainExprEmitter(CGF).visit(e);
   3402 }
   3403 
   3404 static llvm::Value *emitARCRetainLoadOfScalar(CodeGenFunction &CGF,
   3405                                                 LValue lvalue,
   3406                                                 QualType type) {
   3407   TryEmitResult result = tryEmitARCRetainLoadOfScalar(CGF, lvalue, type);
   3408   llvm::Value *value = result.getPointer();
   3409   if (!result.getInt())
   3410     value = CGF.EmitARCRetain(type, value);
   3411   return value;
   3412 }
   3413 
   3414 /// EmitARCRetainScalarExpr - Semantically equivalent to
   3415 /// EmitARCRetainObject(e->getType(), EmitScalarExpr(e)), but making a
   3416 /// best-effort attempt to peephole expressions that naturally produce
   3417 /// retained objects.
   3418 llvm::Value *CodeGenFunction::EmitARCRetainScalarExpr(const Expr *e) {
   3419   // The retain needs to happen within the full-expression.
   3420   if (const ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(e)) {
   3421     RunCleanupsScope scope(*this);
   3422     return EmitARCRetainScalarExpr(cleanups->getSubExpr());
   3423   }
   3424 
   3425   TryEmitResult result = tryEmitARCRetainScalarExpr(*this, e);
   3426   llvm::Value *value = result.getPointer();
   3427   if (!result.getInt())
   3428     value = EmitARCRetain(e->getType(), value);
   3429   return value;
   3430 }
   3431 
   3432 llvm::Value *
   3433 CodeGenFunction::EmitARCRetainAutoreleaseScalarExpr(const Expr *e) {
   3434   // The retain needs to happen within the full-expression.
   3435   if (const ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(e)) {
   3436     RunCleanupsScope scope(*this);
   3437     return EmitARCRetainAutoreleaseScalarExpr(cleanups->getSubExpr());
   3438   }
   3439 
   3440   TryEmitResult result = tryEmitARCRetainScalarExpr(*this, e);
   3441   llvm::Value *value = result.getPointer();
   3442   if (result.getInt())
   3443     value = EmitARCAutorelease(value);
   3444   else
   3445     value = EmitARCRetainAutorelease(e->getType(), value);
   3446   return value;
   3447 }
   3448 
   3449 llvm::Value *CodeGenFunction::EmitARCExtendBlockObject(const Expr *e) {
   3450   llvm::Value *result;
   3451   bool doRetain;
   3452 
   3453   if (shouldEmitSeparateBlockRetain(e)) {
   3454     result = EmitScalarExpr(e);
   3455     doRetain = true;
   3456   } else {
   3457     TryEmitResult subresult = tryEmitARCRetainScalarExpr(*this, e);
   3458     result = subresult.getPointer();
   3459     doRetain = !subresult.getInt();
   3460   }
   3461 
   3462   if (doRetain)
   3463     result = EmitARCRetainBlock(result, /*mandatory*/ true);
   3464   return EmitObjCConsumeObject(e->getType(), result);
   3465 }
   3466 
   3467 llvm::Value *CodeGenFunction::EmitObjCThrowOperand(const Expr *expr) {
   3468   // In ARC, retain and autorelease the expression.
   3469   if (getLangOpts().ObjCAutoRefCount) {
   3470     // Do so before running any cleanups for the full-expression.
   3471     // EmitARCRetainAutoreleaseScalarExpr does this for us.
   3472     return EmitARCRetainAutoreleaseScalarExpr(expr);
   3473   }
   3474 
   3475   // Otherwise, use the normal scalar-expression emission.  The
   3476   // exception machinery doesn't do anything special with the
   3477   // exception like retaining it, so there's no safety associated with
   3478   // only running cleanups after the throw has started, and when it
   3479   // matters it tends to be substantially inferior code.
   3480   return EmitScalarExpr(expr);
   3481 }
   3482 
   3483 namespace {
   3484 
   3485 /// An emitter for assigning into an __unsafe_unretained context.
   3486 struct ARCUnsafeUnretainedExprEmitter :
   3487   public ARCExprEmitter<ARCUnsafeUnretainedExprEmitter, llvm::Value*> {
   3488 
   3489   ARCUnsafeUnretainedExprEmitter(CodeGenFunction &CGF) : ARCExprEmitter(CGF) {}
   3490 
   3491   llvm::Value *getValueOfResult(llvm::Value *value) {
   3492     return value;
   3493   }
   3494 
   3495   llvm::Value *emitBitCast(llvm::Value *value, llvm::Type *resultType) {
   3496     return CGF.Builder.CreateBitCast(value, resultType);
   3497   }
   3498 
   3499   llvm::Value *visitLValueToRValue(const Expr *e) {
   3500     return CGF.EmitScalarExpr(e);
   3501   }
   3502 
   3503   /// For consumptions, just emit the subexpression and perform the
   3504   /// consumption like normal.
   3505   llvm::Value *visitConsumeObject(const Expr *e) {
   3506     llvm::Value *value = CGF.EmitScalarExpr(e);
   3507     return CGF.EmitObjCConsumeObject(e->getType(), value);
   3508   }
   3509 
   3510   /// No special logic for block extensions.  (This probably can't
   3511   /// actually happen in this emitter, though.)
   3512   llvm::Value *visitExtendBlockObject(const Expr *e) {
   3513     return CGF.EmitARCExtendBlockObject(e);
   3514   }
   3515 
   3516   /// For reclaims, perform an unsafeClaim if that's enabled.
   3517   llvm::Value *visitReclaimReturnedObject(const Expr *e) {
   3518     return CGF.EmitARCReclaimReturnedObject(e, /*unsafe*/ true);
   3519   }
   3520 
   3521   /// When we have an undecorated call, just emit it without adding
   3522   /// the unsafeClaim.
   3523   llvm::Value *visitCall(const Expr *e) {
   3524     return CGF.EmitScalarExpr(e);
   3525   }
   3526 
   3527   /// Just do normal scalar emission in the default case.
   3528   llvm::Value *visitExpr(const Expr *e) {
   3529     return CGF.EmitScalarExpr(e);
   3530   }
   3531 };
   3532 }
   3533 
   3534 static llvm::Value *emitARCUnsafeUnretainedScalarExpr(CodeGenFunction &CGF,
   3535                                                       const Expr *e) {
   3536   return ARCUnsafeUnretainedExprEmitter(CGF).visit(e);
   3537 }
   3538 
   3539 /// EmitARCUnsafeUnretainedScalarExpr - Semantically equivalent to
   3540 /// immediately releasing the resut of EmitARCRetainScalarExpr, but
   3541 /// avoiding any spurious retains, including by performing reclaims
   3542 /// with objc_unsafeClaimAutoreleasedReturnValue.
   3543 llvm::Value *CodeGenFunction::EmitARCUnsafeUnretainedScalarExpr(const Expr *e) {
   3544   // Look through full-expressions.
   3545   if (const ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(e)) {
   3546     RunCleanupsScope scope(*this);
   3547     return emitARCUnsafeUnretainedScalarExpr(*this, cleanups->getSubExpr());
   3548   }
   3549 
   3550   return emitARCUnsafeUnretainedScalarExpr(*this, e);
   3551 }
   3552 
   3553 std::pair<LValue,llvm::Value*>
   3554 CodeGenFunction::EmitARCStoreUnsafeUnretained(const BinaryOperator *e,
   3555                                               bool ignored) {
   3556   // Evaluate the RHS first.  If we're ignoring the result, assume
   3557   // that we can emit at an unsafe +0.
   3558   llvm::Value *value;
   3559   if (ignored) {
   3560     value = EmitARCUnsafeUnretainedScalarExpr(e->getRHS());
   3561   } else {
   3562     value = EmitScalarExpr(e->getRHS());
   3563   }
   3564 
   3565   // Emit the LHS and perform the store.
   3566   LValue lvalue = EmitLValue(e->getLHS());
   3567   EmitStoreOfScalar(value, lvalue);
   3568 
   3569   return std::pair<LValue,llvm::Value*>(std::move(lvalue), value);
   3570 }
   3571 
   3572 std::pair<LValue,llvm::Value*>
   3573 CodeGenFunction::EmitARCStoreStrong(const BinaryOperator *e,
   3574                                     bool ignored) {
   3575   // Evaluate the RHS first.
   3576   TryEmitResult result = tryEmitARCRetainScalarExpr(*this, e->getRHS());
   3577   llvm::Value *value = result.getPointer();
   3578 
   3579   bool hasImmediateRetain = result.getInt();
   3580 
   3581   // If we didn't emit a retained object, and the l-value is of block
   3582   // type, then we need to emit the block-retain immediately in case
   3583   // it invalidates the l-value.
   3584   if (!hasImmediateRetain && e->getType()->isBlockPointerType()) {
   3585     value = EmitARCRetainBlock(value, /*mandatory*/ false);
   3586     hasImmediateRetain = true;
   3587   }
   3588 
   3589   LValue lvalue = EmitLValue(e->getLHS());
   3590 
   3591   // If the RHS was emitted retained, expand this.
   3592   if (hasImmediateRetain) {
   3593     llvm::Value *oldValue = EmitLoadOfScalar(lvalue, SourceLocation());
   3594     EmitStoreOfScalar(value, lvalue);
   3595     EmitARCRelease(oldValue, lvalue.isARCPreciseLifetime());
   3596   } else {
   3597     value = EmitARCStoreStrong(lvalue, value, ignored);
   3598   }
   3599 
   3600   return std::pair<LValue,llvm::Value*>(lvalue, value);
   3601 }
   3602 
   3603 std::pair<LValue,llvm::Value*>
   3604 CodeGenFunction::EmitARCStoreAutoreleasing(const BinaryOperator *e) {
   3605   llvm::Value *value = EmitARCRetainAutoreleaseScalarExpr(e->getRHS());
   3606   LValue lvalue = EmitLValue(e->getLHS());
   3607 
   3608   EmitStoreOfScalar(value, lvalue);
   3609 
   3610   return std::pair<LValue,llvm::Value*>(lvalue, value);
   3611 }
   3612 
   3613 void CodeGenFunction::EmitObjCAutoreleasePoolStmt(
   3614                                           const ObjCAutoreleasePoolStmt &ARPS) {
   3615   const Stmt *subStmt = ARPS.getSubStmt();
   3616   const CompoundStmt &S = cast<CompoundStmt>(*subStmt);
   3617 
   3618   CGDebugInfo *DI = getDebugInfo();
   3619   if (DI)
   3620     DI->EmitLexicalBlockStart(Builder, S.getLBracLoc());
   3621 
   3622   // Keep track of the current cleanup stack depth.
   3623   RunCleanupsScope Scope(*this);
   3624   if (CGM.getLangOpts().ObjCRuntime.hasNativeARC()) {
   3625     llvm::Value *token = EmitObjCAutoreleasePoolPush();
   3626     EHStack.pushCleanup<CallObjCAutoreleasePoolObject>(NormalCleanup, token);
   3627   } else {
   3628     llvm::Value *token = EmitObjCMRRAutoreleasePoolPush();
   3629     EHStack.pushCleanup<CallObjCMRRAutoreleasePoolObject>(NormalCleanup, token);
   3630   }
   3631 
   3632   for (const auto *I : S.body())
   3633     EmitStmt(I);
   3634 
   3635   if (DI)
   3636     DI->EmitLexicalBlockEnd(Builder, S.getRBracLoc());
   3637 }
   3638 
   3639 /// EmitExtendGCLifetime - Given a pointer to an Objective-C object,
   3640 /// make sure it survives garbage collection until this point.
   3641 void CodeGenFunction::EmitExtendGCLifetime(llvm::Value *object) {
   3642   // We just use an inline assembly.
   3643   llvm::FunctionType *extenderType
   3644     = llvm::FunctionType::get(VoidTy, VoidPtrTy, RequiredArgs::All);
   3645   llvm::InlineAsm *extender = llvm::InlineAsm::get(extenderType,
   3646                                                    /* assembly */ "",
   3647                                                    /* constraints */ "r",
   3648                                                    /* side effects */ true);
   3649 
   3650   object = Builder.CreateBitCast(object, VoidPtrTy);
   3651   EmitNounwindRuntimeCall(extender, object);
   3652 }
   3653 
   3654 /// GenerateObjCAtomicSetterCopyHelperFunction - Given a c++ object type with
   3655 /// non-trivial copy assignment function, produce following helper function.
   3656 /// static void copyHelper(Ty *dest, const Ty *source) { *dest = *source; }
   3657 ///
   3658 llvm::Constant *
   3659 CodeGenFunction::GenerateObjCAtomicSetterCopyHelperFunction(
   3660                                         const ObjCPropertyImplDecl *PID) {
   3661   if (!getLangOpts().CPlusPlus ||
   3662       !getLangOpts().ObjCRuntime.hasAtomicCopyHelper())
   3663     return nullptr;
   3664   QualType Ty = PID->getPropertyIvarDecl()->getType();
   3665   if (!Ty->isRecordType())
   3666     return nullptr;
   3667   const ObjCPropertyDecl *PD = PID->getPropertyDecl();
   3668   if ((!(PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_atomic)))
   3669     return nullptr;
   3670   llvm::Constant *HelperFn = nullptr;
   3671   if (hasTrivialSetExpr(PID))
   3672     return nullptr;
   3673   assert(PID->getSetterCXXAssignment() && "SetterCXXAssignment - null");
   3674   if ((HelperFn = CGM.getAtomicSetterHelperFnMap(Ty)))
   3675     return HelperFn;
   3676 
   3677   ASTContext &C = getContext();
   3678   IdentifierInfo *II
   3679     = &CGM.getContext().Idents.get("__assign_helper_atomic_property_");
   3680 
   3681   QualType ReturnTy = C.VoidTy;
   3682   QualType DestTy = C.getPointerType(Ty);
   3683   QualType SrcTy = Ty;
   3684   SrcTy.addConst();
   3685   SrcTy = C.getPointerType(SrcTy);
   3686 
   3687   SmallVector<QualType, 2> ArgTys;
   3688   ArgTys.push_back(DestTy);
   3689   ArgTys.push_back(SrcTy);
   3690   QualType FunctionTy = C.getFunctionType(ReturnTy, ArgTys, {});
   3691 
   3692   FunctionDecl *FD = FunctionDecl::Create(
   3693       C, C.getTranslationUnitDecl(), SourceLocation(), SourceLocation(), II,
   3694       FunctionTy, nullptr, SC_Static, false, false);
   3695 
   3696   FunctionArgList args;
   3697   ImplicitParamDecl DstDecl(C, FD, SourceLocation(), /*Id=*/nullptr, DestTy,
   3698                             ImplicitParamDecl::Other);
   3699   args.push_back(&DstDecl);
   3700   ImplicitParamDecl SrcDecl(C, FD, SourceLocation(), /*Id=*/nullptr, SrcTy,
   3701                             ImplicitParamDecl::Other);
   3702   args.push_back(&SrcDecl);
   3703 
   3704   const CGFunctionInfo &FI =
   3705       CGM.getTypes().arrangeBuiltinFunctionDeclaration(ReturnTy, args);
   3706 
   3707   llvm::FunctionType *LTy = CGM.getTypes().GetFunctionType(FI);
   3708 
   3709   llvm::Function *Fn =
   3710     llvm::Function::Create(LTy, llvm::GlobalValue::InternalLinkage,
   3711                            "__assign_helper_atomic_property_",
   3712                            &CGM.getModule());
   3713 
   3714   CGM.SetInternalFunctionAttributes(GlobalDecl(), Fn, FI);
   3715 
   3716   StartFunction(FD, ReturnTy, Fn, FI, args);
   3717 
   3718   DeclRefExpr DstExpr(C, &DstDecl, false, DestTy, VK_RValue, SourceLocation());
   3719   UnaryOperator *DST = UnaryOperator::Create(
   3720       C, &DstExpr, UO_Deref, DestTy->getPointeeType(), VK_LValue, OK_Ordinary,
   3721       SourceLocation(), false, FPOptionsOverride());
   3722 
   3723   DeclRefExpr SrcExpr(C, &SrcDecl, false, SrcTy, VK_RValue, SourceLocation());
   3724   UnaryOperator *SRC = UnaryOperator::Create(
   3725       C, &SrcExpr, UO_Deref, SrcTy->getPointeeType(), VK_LValue, OK_Ordinary,
   3726       SourceLocation(), false, FPOptionsOverride());
   3727 
   3728   Expr *Args[2] = {DST, SRC};
   3729   CallExpr *CalleeExp = cast<CallExpr>(PID->getSetterCXXAssignment());
   3730   CXXOperatorCallExpr *TheCall = CXXOperatorCallExpr::Create(
   3731       C, OO_Equal, CalleeExp->getCallee(), Args, DestTy->getPointeeType(),
   3732       VK_LValue, SourceLocation(), FPOptionsOverride());
   3733 
   3734   EmitStmt(TheCall);
   3735 
   3736   FinishFunction();
   3737   HelperFn = llvm::ConstantExpr::getBitCast(Fn, VoidPtrTy);
   3738   CGM.setAtomicSetterHelperFnMap(Ty, HelperFn);
   3739   return HelperFn;
   3740 }
   3741 
   3742 llvm::Constant *
   3743 CodeGenFunction::GenerateObjCAtomicGetterCopyHelperFunction(
   3744                                             const ObjCPropertyImplDecl *PID) {
   3745   if (!getLangOpts().CPlusPlus ||
   3746       !getLangOpts().ObjCRuntime.hasAtomicCopyHelper())
   3747     return nullptr;
   3748   const ObjCPropertyDecl *PD = PID->getPropertyDecl();
   3749   QualType Ty = PD->getType();
   3750   if (!Ty->isRecordType())
   3751     return nullptr;
   3752   if ((!(PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_atomic)))
   3753     return nullptr;
   3754   llvm::Constant *HelperFn = nullptr;
   3755   if (hasTrivialGetExpr(PID))
   3756     return nullptr;
   3757   assert(PID->getGetterCXXConstructor() && "getGetterCXXConstructor - null");
   3758   if ((HelperFn = CGM.getAtomicGetterHelperFnMap(Ty)))
   3759     return HelperFn;
   3760 
   3761   ASTContext &C = getContext();
   3762   IdentifierInfo *II =
   3763       &CGM.getContext().Idents.get("__copy_helper_atomic_property_");
   3764 
   3765   QualType ReturnTy = C.VoidTy;
   3766   QualType DestTy = C.getPointerType(Ty);
   3767   QualType SrcTy = Ty;
   3768   SrcTy.addConst();
   3769   SrcTy = C.getPointerType(SrcTy);
   3770 
   3771   SmallVector<QualType, 2> ArgTys;
   3772   ArgTys.push_back(DestTy);
   3773   ArgTys.push_back(SrcTy);
   3774   QualType FunctionTy = C.getFunctionType(ReturnTy, ArgTys, {});
   3775 
   3776   FunctionDecl *FD = FunctionDecl::Create(
   3777       C, C.getTranslationUnitDecl(), SourceLocation(), SourceLocation(), II,
   3778       FunctionTy, nullptr, SC_Static, false, false);
   3779 
   3780   FunctionArgList args;
   3781   ImplicitParamDecl DstDecl(C, FD, SourceLocation(), /*Id=*/nullptr, DestTy,
   3782                             ImplicitParamDecl::Other);
   3783   args.push_back(&DstDecl);
   3784   ImplicitParamDecl SrcDecl(C, FD, SourceLocation(), /*Id=*/nullptr, SrcTy,
   3785                             ImplicitParamDecl::Other);
   3786   args.push_back(&SrcDecl);
   3787 
   3788   const CGFunctionInfo &FI =
   3789       CGM.getTypes().arrangeBuiltinFunctionDeclaration(ReturnTy, args);
   3790 
   3791   llvm::FunctionType *LTy = CGM.getTypes().GetFunctionType(FI);
   3792 
   3793   llvm::Function *Fn = llvm::Function::Create(
   3794       LTy, llvm::GlobalValue::InternalLinkage, "__copy_helper_atomic_property_",
   3795       &CGM.getModule());
   3796 
   3797   CGM.SetInternalFunctionAttributes(GlobalDecl(), Fn, FI);
   3798 
   3799   StartFunction(FD, ReturnTy, Fn, FI, args);
   3800 
   3801   DeclRefExpr SrcExpr(getContext(), &SrcDecl, false, SrcTy, VK_RValue,
   3802                       SourceLocation());
   3803 
   3804   UnaryOperator *SRC = UnaryOperator::Create(
   3805       C, &SrcExpr, UO_Deref, SrcTy->getPointeeType(), VK_LValue, OK_Ordinary,
   3806       SourceLocation(), false, FPOptionsOverride());
   3807 
   3808   CXXConstructExpr *CXXConstExpr =
   3809     cast<CXXConstructExpr>(PID->getGetterCXXConstructor());
   3810 
   3811   SmallVector<Expr*, 4> ConstructorArgs;
   3812   ConstructorArgs.push_back(SRC);
   3813   ConstructorArgs.append(std::next(CXXConstExpr->arg_begin()),
   3814                          CXXConstExpr->arg_end());
   3815 
   3816   CXXConstructExpr *TheCXXConstructExpr =
   3817     CXXConstructExpr::Create(C, Ty, SourceLocation(),
   3818                              CXXConstExpr->getConstructor(),
   3819                              CXXConstExpr->isElidable(),
   3820                              ConstructorArgs,
   3821                              CXXConstExpr->hadMultipleCandidates(),
   3822                              CXXConstExpr->isListInitialization(),
   3823                              CXXConstExpr->isStdInitListInitialization(),
   3824                              CXXConstExpr->requiresZeroInitialization(),
   3825                              CXXConstExpr->getConstructionKind(),
   3826                              SourceRange());
   3827 
   3828   DeclRefExpr DstExpr(getContext(), &DstDecl, false, DestTy, VK_RValue,
   3829                       SourceLocation());
   3830 
   3831   RValue DV = EmitAnyExpr(&DstExpr);
   3832   CharUnits Alignment
   3833     = getContext().getTypeAlignInChars(TheCXXConstructExpr->getType());
   3834   EmitAggExpr(TheCXXConstructExpr,
   3835               AggValueSlot::forAddr(Address(DV.getScalarVal(), Alignment),
   3836                                     Qualifiers(),
   3837                                     AggValueSlot::IsDestructed,
   3838                                     AggValueSlot::DoesNotNeedGCBarriers,
   3839                                     AggValueSlot::IsNotAliased,
   3840                                     AggValueSlot::DoesNotOverlap));
   3841 
   3842   FinishFunction();
   3843   HelperFn = llvm::ConstantExpr::getBitCast(Fn, VoidPtrTy);
   3844   CGM.setAtomicGetterHelperFnMap(Ty, HelperFn);
   3845   return HelperFn;
   3846 }
   3847 
   3848 llvm::Value *
   3849 CodeGenFunction::EmitBlockCopyAndAutorelease(llvm::Value *Block, QualType Ty) {
   3850   // Get selectors for retain/autorelease.
   3851   IdentifierInfo *CopyID = &getContext().Idents.get("copy");
   3852   Selector CopySelector =
   3853       getContext().Selectors.getNullarySelector(CopyID);
   3854   IdentifierInfo *AutoreleaseID = &getContext().Idents.get("autorelease");
   3855   Selector AutoreleaseSelector =
   3856       getContext().Selectors.getNullarySelector(AutoreleaseID);
   3857 
   3858   // Emit calls to retain/autorelease.
   3859   CGObjCRuntime &Runtime = CGM.getObjCRuntime();
   3860   llvm::Value *Val = Block;
   3861   RValue Result;
   3862   Result = Runtime.GenerateMessageSend(*this, ReturnValueSlot(),
   3863                                        Ty, CopySelector,
   3864                                        Val, CallArgList(), nullptr, nullptr);
   3865   Val = Result.getScalarVal();
   3866   Result = Runtime.GenerateMessageSend(*this, ReturnValueSlot(),
   3867                                        Ty, AutoreleaseSelector,
   3868                                        Val, CallArgList(), nullptr, nullptr);
   3869   Val = Result.getScalarVal();
   3870   return Val;
   3871 }
   3872 
   3873 static unsigned getBaseMachOPlatformID(const llvm::Triple &TT) {
   3874   switch (TT.getOS()) {
   3875   case llvm::Triple::Darwin:
   3876   case llvm::Triple::MacOSX:
   3877     return llvm::MachO::PLATFORM_MACOS;
   3878   case llvm::Triple::IOS:
   3879     return llvm::MachO::PLATFORM_IOS;
   3880   case llvm::Triple::TvOS:
   3881     return llvm::MachO::PLATFORM_TVOS;
   3882   case llvm::Triple::WatchOS:
   3883     return llvm::MachO::PLATFORM_WATCHOS;
   3884   default:
   3885     return /*Unknown platform*/ 0;
   3886   }
   3887 }
   3888 
   3889 static llvm::Value *emitIsPlatformVersionAtLeast(CodeGenFunction &CGF,
   3890                                                  const VersionTuple &Version) {
   3891   CodeGenModule &CGM = CGF.CGM;
   3892   // Note: we intend to support multi-platform version checks, so reserve
   3893   // the room for a dual platform checking invocation that will be
   3894   // implemented in the future.
   3895   llvm::SmallVector<llvm::Value *, 8> Args;
   3896 
   3897   auto EmitArgs = [&](const VersionTuple &Version, const llvm::Triple &TT) {
   3898     Optional<unsigned> Min = Version.getMinor(), SMin = Version.getSubminor();
   3899     Args.push_back(
   3900         llvm::ConstantInt::get(CGM.Int32Ty, getBaseMachOPlatformID(TT)));
   3901     Args.push_back(llvm::ConstantInt::get(CGM.Int32Ty, Version.getMajor()));
   3902     Args.push_back(llvm::ConstantInt::get(CGM.Int32Ty, Min ? *Min : 0));
   3903     Args.push_back(llvm::ConstantInt::get(CGM.Int32Ty, SMin ? *SMin : 0));
   3904   };
   3905 
   3906   assert(!Version.empty() && "unexpected empty version");
   3907   EmitArgs(Version, CGM.getTarget().getTriple());
   3908 
   3909   if (!CGM.IsPlatformVersionAtLeastFn) {
   3910     llvm::FunctionType *FTy = llvm::FunctionType::get(
   3911         CGM.Int32Ty, {CGM.Int32Ty, CGM.Int32Ty, CGM.Int32Ty, CGM.Int32Ty},
   3912         false);
   3913     CGM.IsPlatformVersionAtLeastFn =
   3914         CGM.CreateRuntimeFunction(FTy, "__isPlatformVersionAtLeast");
   3915   }
   3916 
   3917   llvm::Value *Check =
   3918       CGF.EmitNounwindRuntimeCall(CGM.IsPlatformVersionAtLeastFn, Args);
   3919   return CGF.Builder.CreateICmpNE(Check,
   3920                                   llvm::Constant::getNullValue(CGM.Int32Ty));
   3921 }
   3922 
   3923 llvm::Value *
   3924 CodeGenFunction::EmitBuiltinAvailable(const VersionTuple &Version) {
   3925   // Darwin uses the new __isPlatformVersionAtLeast family of routines.
   3926   if (CGM.getTarget().getTriple().isOSDarwin())
   3927     return emitIsPlatformVersionAtLeast(*this, Version);
   3928 
   3929   if (!CGM.IsOSVersionAtLeastFn) {
   3930     llvm::FunctionType *FTy =
   3931         llvm::FunctionType::get(Int32Ty, {Int32Ty, Int32Ty, Int32Ty}, false);
   3932     CGM.IsOSVersionAtLeastFn =
   3933         CGM.CreateRuntimeFunction(FTy, "__isOSVersionAtLeast");
   3934   }
   3935 
   3936   Optional<unsigned> Min = Version.getMinor(), SMin = Version.getSubminor();
   3937   llvm::Value *Args[] = {
   3938       llvm::ConstantInt::get(CGM.Int32Ty, Version.getMajor()),
   3939       llvm::ConstantInt::get(CGM.Int32Ty, Min ? *Min : 0),
   3940       llvm::ConstantInt::get(CGM.Int32Ty, SMin ? *SMin : 0),
   3941   };
   3942 
   3943   llvm::Value *CallRes =
   3944       EmitNounwindRuntimeCall(CGM.IsOSVersionAtLeastFn, Args);
   3945 
   3946   return Builder.CreateICmpNE(CallRes, llvm::Constant::getNullValue(Int32Ty));
   3947 }
   3948 
   3949 static bool isFoundationNeededForDarwinAvailabilityCheck(
   3950     const llvm::Triple &TT, const VersionTuple &TargetVersion) {
   3951   VersionTuple FoundationDroppedInVersion;
   3952   switch (TT.getOS()) {
   3953   case llvm::Triple::IOS:
   3954   case llvm::Triple::TvOS:
   3955     FoundationDroppedInVersion = VersionTuple(/*Major=*/13);
   3956     break;
   3957   case llvm::Triple::WatchOS:
   3958     FoundationDroppedInVersion = VersionTuple(/*Major=*/6);
   3959     break;
   3960   case llvm::Triple::Darwin:
   3961   case llvm::Triple::MacOSX:
   3962     FoundationDroppedInVersion = VersionTuple(/*Major=*/10, /*Minor=*/15);
   3963     break;
   3964   default:
   3965     llvm_unreachable("Unexpected OS");
   3966   }
   3967   return TargetVersion < FoundationDroppedInVersion;
   3968 }
   3969 
   3970 void CodeGenModule::emitAtAvailableLinkGuard() {
   3971   if (!IsPlatformVersionAtLeastFn)
   3972     return;
   3973   // @available requires CoreFoundation only on Darwin.
   3974   if (!Target.getTriple().isOSDarwin())
   3975     return;
   3976   // @available doesn't need Foundation on macOS 10.15+, iOS/tvOS 13+, or
   3977   // watchOS 6+.
   3978   if (!isFoundationNeededForDarwinAvailabilityCheck(
   3979           Target.getTriple(), Target.getPlatformMinVersion()))
   3980     return;
   3981   // Add -framework CoreFoundation to the linker commands. We still want to
   3982   // emit the core foundation reference down below because otherwise if
   3983   // CoreFoundation is not used in the code, the linker won't link the
   3984   // framework.
   3985   auto &Context = getLLVMContext();
   3986   llvm::Metadata *Args[2] = {llvm::MDString::get(Context, "-framework"),
   3987                              llvm::MDString::get(Context, "CoreFoundation")};
   3988   LinkerOptionsMetadata.push_back(llvm::MDNode::get(Context, Args));
   3989   // Emit a reference to a symbol from CoreFoundation to ensure that
   3990   // CoreFoundation is linked into the final binary.
   3991   llvm::FunctionType *FTy =
   3992       llvm::FunctionType::get(Int32Ty, {VoidPtrTy}, false);
   3993   llvm::FunctionCallee CFFunc =
   3994       CreateRuntimeFunction(FTy, "CFBundleGetVersionNumber");
   3995 
   3996   llvm::FunctionType *CheckFTy = llvm::FunctionType::get(VoidTy, {}, false);
   3997   llvm::FunctionCallee CFLinkCheckFuncRef = CreateRuntimeFunction(
   3998       CheckFTy, "__clang_at_available_requires_core_foundation_framework",
   3999       llvm::AttributeList(), /*Local=*/true);
   4000   llvm::Function *CFLinkCheckFunc =
   4001       cast<llvm::Function>(CFLinkCheckFuncRef.getCallee()->stripPointerCasts());
   4002   if (CFLinkCheckFunc->empty()) {
   4003     CFLinkCheckFunc->setLinkage(llvm::GlobalValue::LinkOnceAnyLinkage);
   4004     CFLinkCheckFunc->setVisibility(llvm::GlobalValue::HiddenVisibility);
   4005     CodeGenFunction CGF(*this);
   4006     CGF.Builder.SetInsertPoint(CGF.createBasicBlock("", CFLinkCheckFunc));
   4007     CGF.EmitNounwindRuntimeCall(CFFunc,
   4008                                 llvm::Constant::getNullValue(VoidPtrTy));
   4009     CGF.Builder.CreateUnreachable();
   4010     addCompilerUsedGlobal(CFLinkCheckFunc);
   4011   }
   4012 }
   4013 
   4014 CGObjCRuntime::~CGObjCRuntime() {}
   4015