159486a2dSAnders Carlsson //===--- CGExprCXX.cpp - Emit LLVM Code for C++ expressions ---------------===// 259486a2dSAnders Carlsson // 32946cd70SChandler Carruth // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 42946cd70SChandler Carruth // See https://llvm.org/LICENSE.txt for license information. 52946cd70SChandler Carruth // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 659486a2dSAnders Carlsson // 759486a2dSAnders Carlsson //===----------------------------------------------------------------------===// 859486a2dSAnders Carlsson // 959486a2dSAnders Carlsson // This contains code dealing with code generation of C++ expressions 1059486a2dSAnders Carlsson // 1159486a2dSAnders Carlsson //===----------------------------------------------------------------------===// 1259486a2dSAnders Carlsson 1359486a2dSAnders Carlsson #include "CodeGenFunction.h" 14fe883422SPeter Collingbourne #include "CGCUDARuntime.h" 155d865c32SJohn McCall #include "CGCXXABI.h" 1691bbb554SDevang Patel #include "CGDebugInfo.h" 173a02247dSChandler Carruth #include "CGObjCRuntime.h" 18de0fe07eSJohn McCall #include "ConstantEmitter.h" 196368818fSRichard Trieu #include "clang/Basic/CodeGenOptions.h" 20a8e7df36SMark Lacey #include "clang/CodeGen/CGFunctionInfo.h" 21ffd5551bSChandler Carruth #include "llvm/IR/Intrinsics.h" 22bbe277c4SAnders Carlsson 2359486a2dSAnders Carlsson using namespace clang; 2459486a2dSAnders Carlsson using namespace CodeGen; 2559486a2dSAnders Carlsson 26d0a9e807SGeorge Burgess IV namespace { 27d0a9e807SGeorge Burgess IV struct MemberCallInfo { 28d0a9e807SGeorge Burgess IV RequiredArgs ReqArgs; 29d0a9e807SGeorge Burgess IV // Number of prefix arguments for the call. Ignores the `this` pointer. 30d0a9e807SGeorge Burgess IV unsigned PrefixSize; 31d0a9e807SGeorge Burgess IV }; 32d0a9e807SGeorge Burgess IV } 33d0a9e807SGeorge Burgess IV 34d0a9e807SGeorge Burgess IV static MemberCallInfo 35efa956ceSAlexey Samsonov commonEmitCXXMemberOrOperatorCall(CodeGenFunction &CGF, const CXXMethodDecl *MD, 36efa956ceSAlexey Samsonov llvm::Value *This, llvm::Value *ImplicitParam, 37efa956ceSAlexey Samsonov QualType ImplicitParamTy, const CallExpr *CE, 38762672a7SRichard Smith CallArgList &Args, CallArgList *RtlArgs) { 39a5bf76bdSAlexey Samsonov assert(CE == nullptr || isa<CXXMemberCallExpr>(CE) || 40a5bf76bdSAlexey Samsonov isa<CXXOperatorCallExpr>(CE)); 4127da15baSAnders Carlsson assert(MD->isInstance() && 42a5bf76bdSAlexey Samsonov "Trying to emit a member or operator call expr on a static method!"); 4327da15baSAnders Carlsson 4427da15baSAnders Carlsson // Push the this ptr. 45034e7270SReid Kleckner const CXXRecordDecl *RD = 46034e7270SReid Kleckner CGF.CGM.getCXXABI().getThisArgumentTypeForMethod(MD); 47b92d290eSJames Y Knight Args.add(RValue::get(This), CGF.getTypes().DeriveThisType(RD, MD)); 4827da15baSAnders Carlsson 49ee6bc533STimur Iskhodzhanov // If there is an implicit parameter (e.g. VTT), emit it. 50ee6bc533STimur Iskhodzhanov if (ImplicitParam) { 51ee6bc533STimur Iskhodzhanov Args.add(RValue::get(ImplicitParam), ImplicitParamTy); 52e36a6b3eSAnders Carlsson } 53e36a6b3eSAnders Carlsson 54a729c62bSJohn McCall const FunctionProtoType *FPT = MD->getType()->castAs<FunctionProtoType>(); 55916db651SJames Y Knight RequiredArgs required = RequiredArgs::forPrototypePlus(FPT, Args.size()); 56d0a9e807SGeorge Burgess IV unsigned PrefixSize = Args.size() - 1; 57a729c62bSJohn McCall 58a729c62bSJohn McCall // And the rest of the call args. 59762672a7SRichard Smith if (RtlArgs) { 60762672a7SRichard Smith // Special case: if the caller emitted the arguments right-to-left already 61762672a7SRichard Smith // (prior to emitting the *this argument), we're done. This happens for 62762672a7SRichard Smith // assignment operators. 63762672a7SRichard Smith Args.addFrom(*RtlArgs); 64762672a7SRichard Smith } else if (CE) { 65a5bf76bdSAlexey Samsonov // Special case: skip first argument of CXXOperatorCall (it is "this"). 668e1162c7SAlexey Samsonov unsigned ArgsToSkip = isa<CXXOperatorCallExpr>(CE) ? 1 : 0; 67f05779e2SDavid Blaikie CGF.EmitCallArgs(Args, FPT, drop_begin(CE->arguments(), ArgsToSkip), 688e1162c7SAlexey Samsonov CE->getDirectCallee()); 69a5bf76bdSAlexey Samsonov } else { 708e1162c7SAlexey Samsonov assert( 718e1162c7SAlexey Samsonov FPT->getNumParams() == 0 && 728e1162c7SAlexey Samsonov "No CallExpr specified for function with non-zero number of arguments"); 73a5bf76bdSAlexey Samsonov } 74d0a9e807SGeorge Burgess IV return {required, PrefixSize}; 750c0b6d9aSDavid Majnemer } 7627da15baSAnders Carlsson 770c0b6d9aSDavid Majnemer RValue CodeGenFunction::EmitCXXMemberOrOperatorCall( 78b92ab1afSJohn McCall const CXXMethodDecl *MD, const CGCallee &Callee, 79b92ab1afSJohn McCall ReturnValueSlot ReturnValue, 800c0b6d9aSDavid Majnemer llvm::Value *This, llvm::Value *ImplicitParam, QualType ImplicitParamTy, 81762672a7SRichard Smith const CallExpr *CE, CallArgList *RtlArgs) { 820c0b6d9aSDavid Majnemer const FunctionProtoType *FPT = MD->getType()->castAs<FunctionProtoType>(); 830c0b6d9aSDavid Majnemer CallArgList Args; 84d0a9e807SGeorge Burgess IV MemberCallInfo CallInfo = commonEmitCXXMemberOrOperatorCall( 85762672a7SRichard Smith *this, MD, This, ImplicitParam, ImplicitParamTy, CE, Args, RtlArgs); 86d0a9e807SGeorge Burgess IV auto &FnInfo = CGM.getTypes().arrangeCXXMethodCall( 87d0a9e807SGeorge Burgess IV Args, FPT, CallInfo.ReqArgs, CallInfo.PrefixSize); 8809b5bfddSVedant Kumar return EmitCall(FnInfo, Callee, ReturnValue, Args, nullptr, 8909b5bfddSVedant Kumar CE ? CE->getExprLoc() : SourceLocation()); 9027da15baSAnders Carlsson } 9127da15baSAnders Carlsson 92ae81bbb4SAlexey Samsonov RValue CodeGenFunction::EmitCXXDestructorCall( 93d1c5b28cSPeter Collingbourne GlobalDecl Dtor, const CGCallee &Callee, llvm::Value *This, 94d1c5b28cSPeter Collingbourne llvm::Value *ImplicitParam, QualType ImplicitParamTy, const CallExpr *CE) { 950c0b6d9aSDavid Majnemer CallArgList Args; 96d1c5b28cSPeter Collingbourne commonEmitCXXMemberOrOperatorCall(*this, cast<CXXMethodDecl>(Dtor.getDecl()), 97d1c5b28cSPeter Collingbourne This, ImplicitParam, ImplicitParamTy, CE, 98d1c5b28cSPeter Collingbourne Args, nullptr); 99d1c5b28cSPeter Collingbourne return EmitCall(CGM.getTypes().arrangeCXXStructorDeclaration(Dtor), Callee, 100d1c5b28cSPeter Collingbourne ReturnValueSlot(), Args); 101b92ab1afSJohn McCall } 102b92ab1afSJohn McCall 103b92ab1afSJohn McCall RValue CodeGenFunction::EmitCXXPseudoDestructorExpr( 104b92ab1afSJohn McCall const CXXPseudoDestructorExpr *E) { 105b92ab1afSJohn McCall QualType DestroyedType = E->getDestroyedType(); 106b92ab1afSJohn McCall if (DestroyedType.hasStrongOrWeakObjCLifetime()) { 107b92ab1afSJohn McCall // Automatic Reference Counting: 108b92ab1afSJohn McCall // If the pseudo-expression names a retainable object with weak or 109b92ab1afSJohn McCall // strong lifetime, the object shall be released. 110b92ab1afSJohn McCall Expr *BaseExpr = E->getBase(); 111b92ab1afSJohn McCall Address BaseValue = Address::invalid(); 112b92ab1afSJohn McCall Qualifiers BaseQuals; 113b92ab1afSJohn McCall 114b92ab1afSJohn McCall // If this is s.x, emit s as an lvalue. If it is s->x, emit s as a scalar. 115b92ab1afSJohn McCall if (E->isArrow()) { 116b92ab1afSJohn McCall BaseValue = EmitPointerWithAlignment(BaseExpr); 117b92ab1afSJohn McCall const PointerType *PTy = BaseExpr->getType()->getAs<PointerType>(); 118b92ab1afSJohn McCall BaseQuals = PTy->getPointeeType().getQualifiers(); 119b92ab1afSJohn McCall } else { 120b92ab1afSJohn McCall LValue BaseLV = EmitLValue(BaseExpr); 121b92ab1afSJohn McCall BaseValue = BaseLV.getAddress(); 122b92ab1afSJohn McCall QualType BaseTy = BaseExpr->getType(); 123b92ab1afSJohn McCall BaseQuals = BaseTy.getQualifiers(); 124b92ab1afSJohn McCall } 125b92ab1afSJohn McCall 126b92ab1afSJohn McCall switch (DestroyedType.getObjCLifetime()) { 127b92ab1afSJohn McCall case Qualifiers::OCL_None: 128b92ab1afSJohn McCall case Qualifiers::OCL_ExplicitNone: 129b92ab1afSJohn McCall case Qualifiers::OCL_Autoreleasing: 130b92ab1afSJohn McCall break; 131b92ab1afSJohn McCall 132b92ab1afSJohn McCall case Qualifiers::OCL_Strong: 133b92ab1afSJohn McCall EmitARCRelease(Builder.CreateLoad(BaseValue, 134b92ab1afSJohn McCall DestroyedType.isVolatileQualified()), 135b92ab1afSJohn McCall ARCPreciseLifetime); 136b92ab1afSJohn McCall break; 137b92ab1afSJohn McCall 138b92ab1afSJohn McCall case Qualifiers::OCL_Weak: 139b92ab1afSJohn McCall EmitARCDestroyWeak(BaseValue); 140b92ab1afSJohn McCall break; 141b92ab1afSJohn McCall } 142b92ab1afSJohn McCall } else { 143b92ab1afSJohn McCall // C++ [expr.pseudo]p1: 144b92ab1afSJohn McCall // The result shall only be used as the operand for the function call 145b92ab1afSJohn McCall // operator (), and the result of such a call has type void. The only 146b92ab1afSJohn McCall // effect is the evaluation of the postfix-expression before the dot or 147b92ab1afSJohn McCall // arrow. 148b92ab1afSJohn McCall EmitIgnoredExpr(E->getBase()); 149b92ab1afSJohn McCall } 150b92ab1afSJohn McCall 151b92ab1afSJohn McCall return RValue::get(nullptr); 1520c0b6d9aSDavid Majnemer } 1530c0b6d9aSDavid Majnemer 1543b33c4ecSRafael Espindola static CXXRecordDecl *getCXXRecord(const Expr *E) { 1553b33c4ecSRafael Espindola QualType T = E->getType(); 1563b33c4ecSRafael Espindola if (const PointerType *PTy = T->getAs<PointerType>()) 1573b33c4ecSRafael Espindola T = PTy->getPointeeType(); 1583b33c4ecSRafael Espindola const RecordType *Ty = T->castAs<RecordType>(); 1593b33c4ecSRafael Espindola return cast<CXXRecordDecl>(Ty->getDecl()); 1603b33c4ecSRafael Espindola } 1613b33c4ecSRafael Espindola 16264225794SFrancois Pichet // Note: This function also emit constructor calls to support a MSVC 16364225794SFrancois Pichet // extensions allowing explicit constructor function call. 16427da15baSAnders Carlsson RValue CodeGenFunction::EmitCXXMemberCallExpr(const CXXMemberCallExpr *CE, 16527da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 1662d2e8707SJohn McCall const Expr *callee = CE->getCallee()->IgnoreParens(); 1672d2e8707SJohn McCall 1682d2e8707SJohn McCall if (isa<BinaryOperator>(callee)) 16927da15baSAnders Carlsson return EmitCXXMemberPointerCallExpr(CE, ReturnValue); 17027da15baSAnders Carlsson 1712d2e8707SJohn McCall const MemberExpr *ME = cast<MemberExpr>(callee); 17227da15baSAnders Carlsson const CXXMethodDecl *MD = cast<CXXMethodDecl>(ME->getMemberDecl()); 17327da15baSAnders Carlsson 17427da15baSAnders Carlsson if (MD->isStatic()) { 17527da15baSAnders Carlsson // The method is static, emit it as we would a regular call. 176de6480a3SErich Keane CGCallee callee = 177de6480a3SErich Keane CGCallee::forDirect(CGM.GetAddrOfFunction(MD), GlobalDecl(MD)); 178b92ab1afSJohn McCall return EmitCall(getContext().getPointerType(MD->getType()), callee, CE, 17970b9c01bSAlexey Samsonov ReturnValue); 18027da15baSAnders Carlsson } 18127da15baSAnders Carlsson 182aad4af6dSNico Weber bool HasQualifier = ME->hasQualifier(); 183aad4af6dSNico Weber NestedNameSpecifier *Qualifier = HasQualifier ? ME->getQualifier() : nullptr; 184aad4af6dSNico Weber bool IsArrow = ME->isArrow(); 185ecbe2e97SRafael Espindola const Expr *Base = ME->getBase(); 186aad4af6dSNico Weber 187aad4af6dSNico Weber return EmitCXXMemberOrOperatorMemberCallExpr( 188aad4af6dSNico Weber CE, MD, ReturnValue, HasQualifier, Qualifier, IsArrow, Base); 189aad4af6dSNico Weber } 190aad4af6dSNico Weber 191aad4af6dSNico Weber RValue CodeGenFunction::EmitCXXMemberOrOperatorMemberCallExpr( 192aad4af6dSNico Weber const CallExpr *CE, const CXXMethodDecl *MD, ReturnValueSlot ReturnValue, 193aad4af6dSNico Weber bool HasQualifier, NestedNameSpecifier *Qualifier, bool IsArrow, 194aad4af6dSNico Weber const Expr *Base) { 195aad4af6dSNico Weber assert(isa<CXXMemberCallExpr>(CE) || isa<CXXOperatorCallExpr>(CE)); 196aad4af6dSNico Weber 197aad4af6dSNico Weber // Compute the object pointer. 198aad4af6dSNico Weber bool CanUseVirtualCall = MD->isVirtual() && !HasQualifier; 199ecbe2e97SRafael Espindola 2008a13c418SCraig Topper const CXXMethodDecl *DevirtualizedMethod = nullptr; 20122461673SAkira Hatanaka if (CanUseVirtualCall && 20222461673SAkira Hatanaka MD->getDevirtualizedMethod(Base, getLangOpts().AppleKext)) { 2033b33c4ecSRafael Espindola const CXXRecordDecl *BestDynamicDecl = Base->getBestDynamicClassType(); 2043b33c4ecSRafael Espindola DevirtualizedMethod = MD->getCorrespondingMethodInClass(BestDynamicDecl); 2053b33c4ecSRafael Espindola assert(DevirtualizedMethod); 2063b33c4ecSRafael Espindola const CXXRecordDecl *DevirtualizedClass = DevirtualizedMethod->getParent(); 2073b33c4ecSRafael Espindola const Expr *Inner = Base->ignoreParenBaseCasts(); 2085bd68794SAlexey Bataev if (DevirtualizedMethod->getReturnType().getCanonicalType() != 2095bd68794SAlexey Bataev MD->getReturnType().getCanonicalType()) 2105bd68794SAlexey Bataev // If the return types are not the same, this might be a case where more 2115bd68794SAlexey Bataev // code needs to run to compensate for it. For example, the derived 2125bd68794SAlexey Bataev // method might return a type that inherits form from the return 2135bd68794SAlexey Bataev // type of MD and has a prefix. 2145bd68794SAlexey Bataev // For now we just avoid devirtualizing these covariant cases. 2155bd68794SAlexey Bataev DevirtualizedMethod = nullptr; 2165bd68794SAlexey Bataev else if (getCXXRecord(Inner) == DevirtualizedClass) 2173b33c4ecSRafael Espindola // If the class of the Inner expression is where the dynamic method 2183b33c4ecSRafael Espindola // is defined, build the this pointer from it. 2193b33c4ecSRafael Espindola Base = Inner; 2203b33c4ecSRafael Espindola else if (getCXXRecord(Base) != DevirtualizedClass) { 2213b33c4ecSRafael Espindola // If the method is defined in a class that is not the best dynamic 2223b33c4ecSRafael Espindola // one or the one of the full expression, we would have to build 2233b33c4ecSRafael Espindola // a derived-to-base cast to compute the correct this pointer, but 2243b33c4ecSRafael Espindola // we don't have support for that yet, so do a virtual call. 2258a13c418SCraig Topper DevirtualizedMethod = nullptr; 2263b33c4ecSRafael Espindola } 2273b33c4ecSRafael Espindola } 228ecbe2e97SRafael Espindola 229762672a7SRichard Smith // C++17 demands that we evaluate the RHS of a (possibly-compound) assignment 230762672a7SRichard Smith // operator before the LHS. 231762672a7SRichard Smith CallArgList RtlArgStorage; 232762672a7SRichard Smith CallArgList *RtlArgs = nullptr; 233762672a7SRichard Smith if (auto *OCE = dyn_cast<CXXOperatorCallExpr>(CE)) { 234762672a7SRichard Smith if (OCE->isAssignmentOp()) { 235762672a7SRichard Smith RtlArgs = &RtlArgStorage; 236762672a7SRichard Smith EmitCallArgs(*RtlArgs, MD->getType()->castAs<FunctionProtoType>(), 237762672a7SRichard Smith drop_begin(CE->arguments(), 1), CE->getDirectCallee(), 238a560ccf2SRichard Smith /*ParamsToSkip*/0, EvaluationOrder::ForceRightToLeft); 239762672a7SRichard Smith } 240762672a7SRichard Smith } 241762672a7SRichard Smith 2421860b520SIvan A. Kosarev LValue This; 2431860b520SIvan A. Kosarev if (IsArrow) { 2441860b520SIvan A. Kosarev LValueBaseInfo BaseInfo; 2451860b520SIvan A. Kosarev TBAAAccessInfo TBAAInfo; 2461860b520SIvan A. Kosarev Address ThisValue = EmitPointerWithAlignment(Base, &BaseInfo, &TBAAInfo); 2471860b520SIvan A. Kosarev This = MakeAddrLValue(ThisValue, Base->getType(), BaseInfo, TBAAInfo); 2481860b520SIvan A. Kosarev } else { 2491860b520SIvan A. Kosarev This = EmitLValue(Base); 2501860b520SIvan A. Kosarev } 251ecbe2e97SRafael Espindola 252ab4f7f14SJames Y Knight if (const CXXConstructorDecl *Ctor = dyn_cast<CXXConstructorDecl>(MD)) { 253ab4f7f14SJames Y Knight // This is the MSVC p->Ctor::Ctor(...) extension. We assume that's 254ab4f7f14SJames Y Knight // constructing a new complete object of type Ctor. 255ab4f7f14SJames Y Knight assert(!RtlArgs); 256ab4f7f14SJames Y Knight assert(ReturnValue.isNull() && "Constructor shouldn't have return value"); 257ab4f7f14SJames Y Knight CallArgList Args; 258ab4f7f14SJames Y Knight commonEmitCXXMemberOrOperatorCall( 259ab4f7f14SJames Y Knight *this, Ctor, This.getPointer(), /*ImplicitParam=*/nullptr, 260ab4f7f14SJames Y Knight /*ImplicitParamTy=*/QualType(), CE, Args, nullptr); 261ab4f7f14SJames Y Knight 262ab4f7f14SJames Y Knight EmitCXXConstructorCall(Ctor, Ctor_Complete, /*ForVirtualBase=*/false, 263ab4f7f14SJames Y Knight /*Delegating=*/false, This.getAddress(), Args, 264ab4f7f14SJames Y Knight AggValueSlot::DoesNotOverlap, CE->getExprLoc(), 265ab4f7f14SJames Y Knight /*NewPointerIsChecked=*/false); 266ab4f7f14SJames Y Knight return RValue::get(nullptr); 267ab4f7f14SJames Y Knight } 26827da15baSAnders Carlsson 269419bd094SRichard Smith if (MD->isTrivial() || (MD->isDefaulted() && MD->getParent()->isUnion())) { 2708a13c418SCraig Topper if (isa<CXXDestructorDecl>(MD)) return RValue::get(nullptr); 271aad4af6dSNico Weber if (!MD->getParent()->mayInsertExtraPadding()) { 27222653bacSSebastian Redl if (MD->isCopyAssignmentOperator() || MD->isMoveAssignmentOperator()) { 27322653bacSSebastian Redl // We don't like to generate the trivial copy/move assignment operator 27422653bacSSebastian Redl // when it isn't necessary; just produce the proper effect here. 275762672a7SRichard Smith LValue RHS = isa<CXXOperatorCallExpr>(CE) 276762672a7SRichard Smith ? MakeNaturalAlignAddrLValue( 2775b330e8dSYaxun Liu (*RtlArgs)[0].getRValue(*this).getScalarVal(), 278762672a7SRichard Smith (*(CE->arg_begin() + 1))->getType()) 279762672a7SRichard Smith : EmitLValue(*CE->arg_begin()); 2801860b520SIvan A. Kosarev EmitAggregateAssign(This, RHS, CE->getType()); 2817f416cc4SJohn McCall return RValue::get(This.getPointer()); 28227da15baSAnders Carlsson } 28364225794SFrancois Pichet llvm_unreachable("unknown trivial member function"); 28464225794SFrancois Pichet } 285aad4af6dSNico Weber } 28664225794SFrancois Pichet 2870d635f53SJohn McCall // Compute the function type we're calling. 2883abfe958SNico Weber const CXXMethodDecl *CalleeDecl = 2893abfe958SNico Weber DevirtualizedMethod ? DevirtualizedMethod : MD; 2908a13c418SCraig Topper const CGFunctionInfo *FInfo = nullptr; 2913abfe958SNico Weber if (const auto *Dtor = dyn_cast<CXXDestructorDecl>(CalleeDecl)) 2928d2a19b4SRafael Espindola FInfo = &CGM.getTypes().arrangeCXXStructorDeclaration( 293d1c5b28cSPeter Collingbourne GlobalDecl(Dtor, Dtor_Complete)); 29464225794SFrancois Pichet else 295ade60977SEli Friedman FInfo = &CGM.getTypes().arrangeCXXMethodDeclaration(CalleeDecl); 2960d635f53SJohn McCall 297e7de47efSReid Kleckner llvm::FunctionType *Ty = CGM.getTypes().GetFunctionType(*FInfo); 2980d635f53SJohn McCall 299d98f5d78SIvan Krasin // C++11 [class.mfct.non-static]p2: 300d98f5d78SIvan Krasin // If a non-static member function of a class X is called for an object that 301d98f5d78SIvan Krasin // is not of type X, or of a type derived from X, the behavior is undefined. 302d98f5d78SIvan Krasin SourceLocation CallLoc; 303d98f5d78SIvan Krasin ASTContext &C = getContext(); 304d98f5d78SIvan Krasin if (CE) 305d98f5d78SIvan Krasin CallLoc = CE->getExprLoc(); 306d98f5d78SIvan Krasin 30734b1fd6aSVedant Kumar SanitizerSet SkippedChecks; 308ffd7c887SVedant Kumar if (const auto *CMCE = dyn_cast<CXXMemberCallExpr>(CE)) { 309ffd7c887SVedant Kumar auto *IOA = CMCE->getImplicitObjectArgument(); 310ffd7c887SVedant Kumar bool IsImplicitObjectCXXThis = IsWrappedCXXThis(IOA); 311ffd7c887SVedant Kumar if (IsImplicitObjectCXXThis) 312ffd7c887SVedant Kumar SkippedChecks.set(SanitizerKind::Alignment, true); 313ffd7c887SVedant Kumar if (IsImplicitObjectCXXThis || isa<DeclRefExpr>(IOA)) 31434b1fd6aSVedant Kumar SkippedChecks.set(SanitizerKind::Null, true); 315ffd7c887SVedant Kumar } 316ab4f7f14SJames Y Knight EmitTypeCheck(CodeGenFunction::TCK_MemberCall, CallLoc, This.getPointer(), 317ab4f7f14SJames Y Knight C.getRecordType(CalleeDecl->getParent()), 31834b1fd6aSVedant Kumar /*Alignment=*/CharUnits::Zero(), SkippedChecks); 319d98f5d78SIvan Krasin 32027da15baSAnders Carlsson // C++ [class.virtual]p12: 32127da15baSAnders Carlsson // Explicit qualification with the scope operator (5.1) suppresses the 32227da15baSAnders Carlsson // virtual call mechanism. 32327da15baSAnders Carlsson // 32427da15baSAnders Carlsson // We also don't emit a virtual call if the base expression has a record type 32527da15baSAnders Carlsson // because then we know what the type is. 3263b33c4ecSRafael Espindola bool UseVirtualCall = CanUseVirtualCall && !DevirtualizedMethod; 3279dc6eef7SStephen Lin 328b92d290eSJames Y Knight if (const CXXDestructorDecl *Dtor = dyn_cast<CXXDestructorDecl>(CalleeDecl)) { 32919cee187SStephen Lin assert(CE->arg_begin() == CE->arg_end() && 3309dc6eef7SStephen Lin "Destructor shouldn't have explicit parameters"); 3319dc6eef7SStephen Lin assert(ReturnValue.isNull() && "Destructor shouldn't have return value"); 3329dc6eef7SStephen Lin if (UseVirtualCall) { 333aad4af6dSNico Weber CGM.getCXXABI().EmitVirtualDestructorCall( 3341860b520SIvan A. Kosarev *this, Dtor, Dtor_Complete, This.getAddress(), 3351860b520SIvan A. Kosarev cast<CXXMemberCallExpr>(CE)); 33627da15baSAnders Carlsson } else { 337d1c5b28cSPeter Collingbourne GlobalDecl GD(Dtor, Dtor_Complete); 338b92ab1afSJohn McCall CGCallee Callee; 339b92d290eSJames Y Knight if (getLangOpts().AppleKext && Dtor->isVirtual() && HasQualifier) 340b92d290eSJames Y Knight Callee = BuildAppleKextVirtualCall(Dtor, Qualifier, Ty); 3413b33c4ecSRafael Espindola else if (!DevirtualizedMethod) 342d1c5b28cSPeter Collingbourne Callee = 343d1c5b28cSPeter Collingbourne CGCallee::forDirect(CGM.getAddrOfCXXStructor(GD, FInfo, Ty), GD); 34449e860b2SRafael Espindola else { 345d1c5b28cSPeter Collingbourne Callee = CGCallee::forDirect(CGM.GetAddrOfFunction(GD, Ty), GD); 34649e860b2SRafael Espindola } 347b92d290eSJames Y Knight 348d1c5b28cSPeter Collingbourne EmitCXXDestructorCall(GD, Callee, This.getPointer(), 349b92d290eSJames Y Knight /*ImplicitParam=*/nullptr, 350d1c5b28cSPeter Collingbourne /*ImplicitParamTy=*/QualType(), nullptr); 35127da15baSAnders Carlsson } 3528a13c418SCraig Topper return RValue::get(nullptr); 3539dc6eef7SStephen Lin } 3549dc6eef7SStephen Lin 355b92d290eSJames Y Knight // FIXME: Uses of 'MD' past this point need to be audited. We may need to use 356b92d290eSJames Y Knight // 'CalleeDecl' instead. 357b92d290eSJames Y Knight 358b92ab1afSJohn McCall CGCallee Callee; 359ab4f7f14SJames Y Knight if (UseVirtualCall) { 360ea211002SPeter Collingbourne Callee = CGCallee::forVirtual(CE, MD, This.getAddress(), Ty); 36127da15baSAnders Carlsson } else { 3621a7488afSPeter Collingbourne if (SanOpts.has(SanitizerKind::CFINVCall) && 3631a7488afSPeter Collingbourne MD->getParent()->isDynamicClass()) { 3646010880bSPeter Collingbourne llvm::Value *VTable; 3656010880bSPeter Collingbourne const CXXRecordDecl *RD; 3666010880bSPeter Collingbourne std::tie(VTable, RD) = 3671860b520SIvan A. Kosarev CGM.getCXXABI().LoadVTablePtr(*this, This.getAddress(), 3681860b520SIvan A. Kosarev MD->getParent()); 369f2ceec48SStephen Kelly EmitVTablePtrCheckForCall(RD, VTable, CFITCK_NVCall, CE->getBeginLoc()); 3701a7488afSPeter Collingbourne } 3711a7488afSPeter Collingbourne 372aad4af6dSNico Weber if (getLangOpts().AppleKext && MD->isVirtual() && HasQualifier) 373aad4af6dSNico Weber Callee = BuildAppleKextVirtualCall(MD, Qualifier, Ty); 3743b33c4ecSRafael Espindola else if (!DevirtualizedMethod) 375de6480a3SErich Keane Callee = 376de6480a3SErich Keane CGCallee::forDirect(CGM.GetAddrOfFunction(MD, Ty), GlobalDecl(MD)); 37749e860b2SRafael Espindola else { 378de6480a3SErich Keane Callee = 379de6480a3SErich Keane CGCallee::forDirect(CGM.GetAddrOfFunction(DevirtualizedMethod, Ty), 380de6480a3SErich Keane GlobalDecl(DevirtualizedMethod)); 38149e860b2SRafael Espindola } 38227da15baSAnders Carlsson } 38327da15baSAnders Carlsson 384f1749427STimur Iskhodzhanov if (MD->isVirtual()) { 3851860b520SIvan A. Kosarev Address NewThisAddr = 3861860b520SIvan A. Kosarev CGM.getCXXABI().adjustThisArgumentForVirtualFunctionCall( 3871860b520SIvan A. Kosarev *this, CalleeDecl, This.getAddress(), UseVirtualCall); 3881860b520SIvan A. Kosarev This.setAddress(NewThisAddr); 389f1749427STimur Iskhodzhanov } 39088fd439aSTimur Iskhodzhanov 391018f266bSVedant Kumar return EmitCXXMemberOrOperatorCall( 392018f266bSVedant Kumar CalleeDecl, Callee, ReturnValue, This.getPointer(), 393018f266bSVedant Kumar /*ImplicitParam=*/nullptr, QualType(), CE, RtlArgs); 39427da15baSAnders Carlsson } 39527da15baSAnders Carlsson 39627da15baSAnders Carlsson RValue 39727da15baSAnders Carlsson CodeGenFunction::EmitCXXMemberPointerCallExpr(const CXXMemberCallExpr *E, 39827da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 39927da15baSAnders Carlsson const BinaryOperator *BO = 40027da15baSAnders Carlsson cast<BinaryOperator>(E->getCallee()->IgnoreParens()); 40127da15baSAnders Carlsson const Expr *BaseExpr = BO->getLHS(); 40227da15baSAnders Carlsson const Expr *MemFnExpr = BO->getRHS(); 40327da15baSAnders Carlsson 40427da15baSAnders Carlsson const MemberPointerType *MPT = 4050009fcc3SJohn McCall MemFnExpr->getType()->castAs<MemberPointerType>(); 406475999dcSJohn McCall 40727da15baSAnders Carlsson const FunctionProtoType *FPT = 4080009fcc3SJohn McCall MPT->getPointeeType()->castAs<FunctionProtoType>(); 40927da15baSAnders Carlsson const CXXRecordDecl *RD = 41027da15baSAnders Carlsson cast<CXXRecordDecl>(MPT->getClass()->getAs<RecordType>()->getDecl()); 41127da15baSAnders Carlsson 41227da15baSAnders Carlsson // Emit the 'this' pointer. 4137f416cc4SJohn McCall Address This = Address::invalid(); 414e302792bSJohn McCall if (BO->getOpcode() == BO_PtrMemI) 4157f416cc4SJohn McCall This = EmitPointerWithAlignment(BaseExpr); 41627da15baSAnders Carlsson else 41727da15baSAnders Carlsson This = EmitLValue(BaseExpr).getAddress(); 41827da15baSAnders Carlsson 4197f416cc4SJohn McCall EmitTypeCheck(TCK_MemberCall, E->getExprLoc(), This.getPointer(), 420e30752c9SRichard Smith QualType(MPT->getClass(), 0)); 42169d0d262SRichard Smith 422bde62d78SRichard Smith // Get the member function pointer. 423bde62d78SRichard Smith llvm::Value *MemFnPtr = EmitScalarExpr(MemFnExpr); 424bde62d78SRichard Smith 425475999dcSJohn McCall // Ask the ABI to load the callee. Note that This is modified. 4267f416cc4SJohn McCall llvm::Value *ThisPtrForCall = nullptr; 427b92ab1afSJohn McCall CGCallee Callee = 4287f416cc4SJohn McCall CGM.getCXXABI().EmitLoadOfMemberFunctionPointer(*this, BO, This, 4297f416cc4SJohn McCall ThisPtrForCall, MemFnPtr, MPT); 43027da15baSAnders Carlsson 43127da15baSAnders Carlsson CallArgList Args; 43227da15baSAnders Carlsson 43327da15baSAnders Carlsson QualType ThisType = 43427da15baSAnders Carlsson getContext().getPointerType(getContext().getTagDeclType(RD)); 43527da15baSAnders Carlsson 43627da15baSAnders Carlsson // Push the this ptr. 4377f416cc4SJohn McCall Args.add(RValue::get(ThisPtrForCall), ThisType); 43827da15baSAnders Carlsson 439916db651SJames Y Knight RequiredArgs required = RequiredArgs::forPrototypePlus(FPT, 1); 4408dda7b27SJohn McCall 44127da15baSAnders Carlsson // And the rest of the call args 442419996ccSGeorge Burgess IV EmitCallArgs(Args, FPT, E->arguments()); 443d0a9e807SGeorge Burgess IV return EmitCall(CGM.getTypes().arrangeCXXMethodCall(Args, FPT, required, 444d0a9e807SGeorge Burgess IV /*PrefixSize=*/0), 44509b5bfddSVedant Kumar Callee, ReturnValue, Args, nullptr, E->getExprLoc()); 44627da15baSAnders Carlsson } 44727da15baSAnders Carlsson 44827da15baSAnders Carlsson RValue 44927da15baSAnders Carlsson CodeGenFunction::EmitCXXOperatorMemberCallExpr(const CXXOperatorCallExpr *E, 45027da15baSAnders Carlsson const CXXMethodDecl *MD, 45127da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 45227da15baSAnders Carlsson assert(MD->isInstance() && 45327da15baSAnders Carlsson "Trying to emit a member call expr on a static method!"); 454aad4af6dSNico Weber return EmitCXXMemberOrOperatorMemberCallExpr( 455aad4af6dSNico Weber E, MD, ReturnValue, /*HasQualifier=*/false, /*Qualifier=*/nullptr, 456aad4af6dSNico Weber /*IsArrow=*/false, E->getArg(0)); 45727da15baSAnders Carlsson } 45827da15baSAnders Carlsson 459fe883422SPeter Collingbourne RValue CodeGenFunction::EmitCUDAKernelCallExpr(const CUDAKernelCallExpr *E, 460fe883422SPeter Collingbourne ReturnValueSlot ReturnValue) { 461fe883422SPeter Collingbourne return CGM.getCUDARuntime().EmitCUDAKernelCallExpr(*this, E, ReturnValue); 462fe883422SPeter Collingbourne } 463fe883422SPeter Collingbourne 464fde961dbSEli Friedman static void EmitNullBaseClassInitialization(CodeGenFunction &CGF, 4657f416cc4SJohn McCall Address DestPtr, 466fde961dbSEli Friedman const CXXRecordDecl *Base) { 467fde961dbSEli Friedman if (Base->isEmpty()) 468fde961dbSEli Friedman return; 469fde961dbSEli Friedman 4707f416cc4SJohn McCall DestPtr = CGF.Builder.CreateElementBitCast(DestPtr, CGF.Int8Ty); 471fde961dbSEli Friedman 472fde961dbSEli Friedman const ASTRecordLayout &Layout = CGF.getContext().getASTRecordLayout(Base); 4738671c6e0SDavid Majnemer CharUnits NVSize = Layout.getNonVirtualSize(); 4748671c6e0SDavid Majnemer 4758671c6e0SDavid Majnemer // We cannot simply zero-initialize the entire base sub-object if vbptrs are 4768671c6e0SDavid Majnemer // present, they are initialized by the most derived class before calling the 4778671c6e0SDavid Majnemer // constructor. 4788671c6e0SDavid Majnemer SmallVector<std::pair<CharUnits, CharUnits>, 1> Stores; 4798671c6e0SDavid Majnemer Stores.emplace_back(CharUnits::Zero(), NVSize); 4808671c6e0SDavid Majnemer 4818671c6e0SDavid Majnemer // Each store is split by the existence of a vbptr. 4828671c6e0SDavid Majnemer CharUnits VBPtrWidth = CGF.getPointerSize(); 4838671c6e0SDavid Majnemer std::vector<CharUnits> VBPtrOffsets = 4848671c6e0SDavid Majnemer CGF.CGM.getCXXABI().getVBPtrOffsets(Base); 4858671c6e0SDavid Majnemer for (CharUnits VBPtrOffset : VBPtrOffsets) { 4867f980d84SDavid Majnemer // Stop before we hit any virtual base pointers located in virtual bases. 4877f980d84SDavid Majnemer if (VBPtrOffset >= NVSize) 4887f980d84SDavid Majnemer break; 4898671c6e0SDavid Majnemer std::pair<CharUnits, CharUnits> LastStore = Stores.pop_back_val(); 4908671c6e0SDavid Majnemer CharUnits LastStoreOffset = LastStore.first; 4918671c6e0SDavid Majnemer CharUnits LastStoreSize = LastStore.second; 4928671c6e0SDavid Majnemer 4938671c6e0SDavid Majnemer CharUnits SplitBeforeOffset = LastStoreOffset; 4948671c6e0SDavid Majnemer CharUnits SplitBeforeSize = VBPtrOffset - SplitBeforeOffset; 4958671c6e0SDavid Majnemer assert(!SplitBeforeSize.isNegative() && "negative store size!"); 4968671c6e0SDavid Majnemer if (!SplitBeforeSize.isZero()) 4978671c6e0SDavid Majnemer Stores.emplace_back(SplitBeforeOffset, SplitBeforeSize); 4988671c6e0SDavid Majnemer 4998671c6e0SDavid Majnemer CharUnits SplitAfterOffset = VBPtrOffset + VBPtrWidth; 5008671c6e0SDavid Majnemer CharUnits SplitAfterSize = LastStoreSize - SplitAfterOffset; 5018671c6e0SDavid Majnemer assert(!SplitAfterSize.isNegative() && "negative store size!"); 5028671c6e0SDavid Majnemer if (!SplitAfterSize.isZero()) 5038671c6e0SDavid Majnemer Stores.emplace_back(SplitAfterOffset, SplitAfterSize); 5048671c6e0SDavid Majnemer } 505fde961dbSEli Friedman 506fde961dbSEli Friedman // If the type contains a pointer to data member we can't memset it to zero. 507fde961dbSEli Friedman // Instead, create a null constant and copy it to the destination. 508fde961dbSEli Friedman // TODO: there are other patterns besides zero that we can usefully memset, 509fde961dbSEli Friedman // like -1, which happens to be the pattern used by member-pointers. 510fde961dbSEli Friedman // TODO: isZeroInitializable can be over-conservative in the case where a 511fde961dbSEli Friedman // virtual base contains a member pointer. 5128671c6e0SDavid Majnemer llvm::Constant *NullConstantForBase = CGF.CGM.EmitNullConstantForBase(Base); 5138671c6e0SDavid Majnemer if (!NullConstantForBase->isNullValue()) { 5148671c6e0SDavid Majnemer llvm::GlobalVariable *NullVariable = new llvm::GlobalVariable( 5158671c6e0SDavid Majnemer CGF.CGM.getModule(), NullConstantForBase->getType(), 5168671c6e0SDavid Majnemer /*isConstant=*/true, llvm::GlobalVariable::PrivateLinkage, 5178671c6e0SDavid Majnemer NullConstantForBase, Twine()); 5187f416cc4SJohn McCall 5197f416cc4SJohn McCall CharUnits Align = std::max(Layout.getNonVirtualAlignment(), 5207f416cc4SJohn McCall DestPtr.getAlignment()); 521fde961dbSEli Friedman NullVariable->setAlignment(Align.getQuantity()); 5227f416cc4SJohn McCall 5237f416cc4SJohn McCall Address SrcPtr = Address(CGF.EmitCastToVoidPtr(NullVariable), Align); 524fde961dbSEli Friedman 525fde961dbSEli Friedman // Get and call the appropriate llvm.memcpy overload. 5268671c6e0SDavid Majnemer for (std::pair<CharUnits, CharUnits> Store : Stores) { 5278671c6e0SDavid Majnemer CharUnits StoreOffset = Store.first; 5288671c6e0SDavid Majnemer CharUnits StoreSize = Store.second; 5298671c6e0SDavid Majnemer llvm::Value *StoreSizeVal = CGF.CGM.getSize(StoreSize); 5308671c6e0SDavid Majnemer CGF.Builder.CreateMemCpy( 5318671c6e0SDavid Majnemer CGF.Builder.CreateConstInBoundsByteGEP(DestPtr, StoreOffset), 5328671c6e0SDavid Majnemer CGF.Builder.CreateConstInBoundsByteGEP(SrcPtr, StoreOffset), 5338671c6e0SDavid Majnemer StoreSizeVal); 534fde961dbSEli Friedman } 535fde961dbSEli Friedman 536fde961dbSEli Friedman // Otherwise, just memset the whole thing to zero. This is legal 537fde961dbSEli Friedman // because in LLVM, all default initializers (other than the ones we just 538fde961dbSEli Friedman // handled above) are guaranteed to have a bit pattern of all zeros. 5398671c6e0SDavid Majnemer } else { 5408671c6e0SDavid Majnemer for (std::pair<CharUnits, CharUnits> Store : Stores) { 5418671c6e0SDavid Majnemer CharUnits StoreOffset = Store.first; 5428671c6e0SDavid Majnemer CharUnits StoreSize = Store.second; 5438671c6e0SDavid Majnemer llvm::Value *StoreSizeVal = CGF.CGM.getSize(StoreSize); 5448671c6e0SDavid Majnemer CGF.Builder.CreateMemSet( 5458671c6e0SDavid Majnemer CGF.Builder.CreateConstInBoundsByteGEP(DestPtr, StoreOffset), 5468671c6e0SDavid Majnemer CGF.Builder.getInt8(0), StoreSizeVal); 5478671c6e0SDavid Majnemer } 5488671c6e0SDavid Majnemer } 549fde961dbSEli Friedman } 550fde961dbSEli Friedman 55127da15baSAnders Carlsson void 5527a626f63SJohn McCall CodeGenFunction::EmitCXXConstructExpr(const CXXConstructExpr *E, 5537a626f63SJohn McCall AggValueSlot Dest) { 5547a626f63SJohn McCall assert(!Dest.isIgnored() && "Must have a destination!"); 55527da15baSAnders Carlsson const CXXConstructorDecl *CD = E->getConstructor(); 556630c76efSDouglas Gregor 557630c76efSDouglas Gregor // If we require zero initialization before (or instead of) calling the 558630c76efSDouglas Gregor // constructor, as can be the case with a non-user-provided default 55903535265SArgyrios Kyrtzidis // constructor, emit the zero initialization now, unless destination is 56003535265SArgyrios Kyrtzidis // already zeroed. 561fde961dbSEli Friedman if (E->requiresZeroInitialization() && !Dest.isZeroed()) { 562fde961dbSEli Friedman switch (E->getConstructionKind()) { 563fde961dbSEli Friedman case CXXConstructExpr::CK_Delegating: 564fde961dbSEli Friedman case CXXConstructExpr::CK_Complete: 5657f416cc4SJohn McCall EmitNullInitialization(Dest.getAddress(), E->getType()); 566fde961dbSEli Friedman break; 567fde961dbSEli Friedman case CXXConstructExpr::CK_VirtualBase: 568fde961dbSEli Friedman case CXXConstructExpr::CK_NonVirtualBase: 5697f416cc4SJohn McCall EmitNullBaseClassInitialization(*this, Dest.getAddress(), 5707f416cc4SJohn McCall CD->getParent()); 571fde961dbSEli Friedman break; 572fde961dbSEli Friedman } 573fde961dbSEli Friedman } 574630c76efSDouglas Gregor 575630c76efSDouglas Gregor // If this is a call to a trivial default constructor, do nothing. 576630c76efSDouglas Gregor if (CD->isTrivial() && CD->isDefaultConstructor()) 57727da15baSAnders Carlsson return; 578630c76efSDouglas Gregor 5798ea46b66SJohn McCall // Elide the constructor if we're constructing from a temporary. 5808ea46b66SJohn McCall // The temporary check is required because Sema sets this on NRVO 5818ea46b66SJohn McCall // returns. 5829c6890a7SRichard Smith if (getLangOpts().ElideConstructors && E->isElidable()) { 5838ea46b66SJohn McCall assert(getContext().hasSameUnqualifiedType(E->getType(), 5848ea46b66SJohn McCall E->getArg(0)->getType())); 5857a626f63SJohn McCall if (E->getArg(0)->isTemporaryObject(getContext(), CD->getParent())) { 5867a626f63SJohn McCall EmitAggExpr(E->getArg(0), Dest); 58727da15baSAnders Carlsson return; 58827da15baSAnders Carlsson } 589222cf0efSDouglas Gregor } 590630c76efSDouglas Gregor 591e7545b33SAlexey Bataev if (const ArrayType *arrayType 592e7545b33SAlexey Bataev = getContext().getAsArrayType(E->getType())) { 59337605182SSerge Pavlov EmitCXXAggrConstructorCall(CD, arrayType, Dest.getAddress(), E, 59437605182SSerge Pavlov Dest.isSanitizerChecked()); 595f677a8e9SJohn McCall } else { 596bceca20aSCameron Esfahani CXXCtorType Type = Ctor_Complete; 597271c3681SAlexis Hunt bool ForVirtualBase = false; 59861535005SDouglas Gregor bool Delegating = false; 599271c3681SAlexis Hunt 600271c3681SAlexis Hunt switch (E->getConstructionKind()) { 601271c3681SAlexis Hunt case CXXConstructExpr::CK_Delegating: 60261bc1737SAlexis Hunt // We should be emitting a constructor; GlobalDecl will assert this 60361bc1737SAlexis Hunt Type = CurGD.getCtorType(); 60461535005SDouglas Gregor Delegating = true; 605271c3681SAlexis Hunt break; 60661bc1737SAlexis Hunt 607271c3681SAlexis Hunt case CXXConstructExpr::CK_Complete: 608271c3681SAlexis Hunt Type = Ctor_Complete; 609271c3681SAlexis Hunt break; 610271c3681SAlexis Hunt 611271c3681SAlexis Hunt case CXXConstructExpr::CK_VirtualBase: 612271c3681SAlexis Hunt ForVirtualBase = true; 613f3b3ccdaSAdrian Prantl LLVM_FALLTHROUGH; 614271c3681SAlexis Hunt 615271c3681SAlexis Hunt case CXXConstructExpr::CK_NonVirtualBase: 616271c3681SAlexis Hunt Type = Ctor_Base; 617271c3681SAlexis Hunt } 618e11f9ce9SAnders Carlsson 61927da15baSAnders Carlsson // Call the constructor. 620094c7266SAnastasia Stulova EmitCXXConstructorCall(CD, Type, ForVirtualBase, Delegating, Dest, E); 62127da15baSAnders Carlsson } 622e11f9ce9SAnders Carlsson } 62327da15baSAnders Carlsson 6247f416cc4SJohn McCall void CodeGenFunction::EmitSynthesizedCXXCopyCtor(Address Dest, Address Src, 62550198098SFariborz Jahanian const Expr *Exp) { 6265d413781SJohn McCall if (const ExprWithCleanups *E = dyn_cast<ExprWithCleanups>(Exp)) 627e988bdacSFariborz Jahanian Exp = E->getSubExpr(); 628e988bdacSFariborz Jahanian assert(isa<CXXConstructExpr>(Exp) && 629e988bdacSFariborz Jahanian "EmitSynthesizedCXXCopyCtor - unknown copy ctor expr"); 630e988bdacSFariborz Jahanian const CXXConstructExpr* E = cast<CXXConstructExpr>(Exp); 631e988bdacSFariborz Jahanian const CXXConstructorDecl *CD = E->getConstructor(); 632e988bdacSFariborz Jahanian RunCleanupsScope Scope(*this); 633e988bdacSFariborz Jahanian 634e988bdacSFariborz Jahanian // If we require zero initialization before (or instead of) calling the 635e988bdacSFariborz Jahanian // constructor, as can be the case with a non-user-provided default 636e988bdacSFariborz Jahanian // constructor, emit the zero initialization now. 637e988bdacSFariborz Jahanian // FIXME. Do I still need this for a copy ctor synthesis? 638e988bdacSFariborz Jahanian if (E->requiresZeroInitialization()) 639e988bdacSFariborz Jahanian EmitNullInitialization(Dest, E->getType()); 640e988bdacSFariborz Jahanian 64199da11cfSChandler Carruth assert(!getContext().getAsConstantArrayType(E->getType()) 64299da11cfSChandler Carruth && "EmitSynthesizedCXXCopyCtor - Copied-in Array"); 643525bf650SAlexey Samsonov EmitSynthesizedCXXCopyCtorCall(CD, Dest, Src, E); 644e988bdacSFariborz Jahanian } 645e988bdacSFariborz Jahanian 6468ed55a54SJohn McCall static CharUnits CalculateCookiePadding(CodeGenFunction &CGF, 6478ed55a54SJohn McCall const CXXNewExpr *E) { 64821122cf6SAnders Carlsson if (!E->isArray()) 6493eb55cfeSKen Dyck return CharUnits::Zero(); 65021122cf6SAnders Carlsson 6517ec4b434SJohn McCall // No cookie is required if the operator new[] being used is the 6527ec4b434SJohn McCall // reserved placement operator new[]. 6537ec4b434SJohn McCall if (E->getOperatorNew()->isReservedGlobalPlacementOperator()) 6543eb55cfeSKen Dyck return CharUnits::Zero(); 655399f499fSAnders Carlsson 656284c48ffSJohn McCall return CGF.CGM.getCXXABI().GetArrayCookieSize(E); 65759486a2dSAnders Carlsson } 65859486a2dSAnders Carlsson 659036f2f6bSJohn McCall static llvm::Value *EmitCXXNewAllocSize(CodeGenFunction &CGF, 660036f2f6bSJohn McCall const CXXNewExpr *e, 661f862eb6aSSebastian Redl unsigned minElements, 662036f2f6bSJohn McCall llvm::Value *&numElements, 663036f2f6bSJohn McCall llvm::Value *&sizeWithoutCookie) { 664036f2f6bSJohn McCall QualType type = e->getAllocatedType(); 66559486a2dSAnders Carlsson 666036f2f6bSJohn McCall if (!e->isArray()) { 667036f2f6bSJohn McCall CharUnits typeSize = CGF.getContext().getTypeSizeInChars(type); 668036f2f6bSJohn McCall sizeWithoutCookie 669036f2f6bSJohn McCall = llvm::ConstantInt::get(CGF.SizeTy, typeSize.getQuantity()); 670036f2f6bSJohn McCall return sizeWithoutCookie; 67105fc5be3SDouglas Gregor } 67259486a2dSAnders Carlsson 673036f2f6bSJohn McCall // The width of size_t. 674036f2f6bSJohn McCall unsigned sizeWidth = CGF.SizeTy->getBitWidth(); 675036f2f6bSJohn McCall 6768ed55a54SJohn McCall // Figure out the cookie size. 677036f2f6bSJohn McCall llvm::APInt cookieSize(sizeWidth, 678036f2f6bSJohn McCall CalculateCookiePadding(CGF, e).getQuantity()); 6798ed55a54SJohn McCall 68059486a2dSAnders Carlsson // Emit the array size expression. 6817648fb46SArgyrios Kyrtzidis // We multiply the size of all dimensions for NumElements. 6827648fb46SArgyrios Kyrtzidis // e.g for 'int[2][3]', ElemType is 'int' and NumElements is 6. 683de0fe07eSJohn McCall numElements = 684*b9fb121aSRichard Smith ConstantEmitter(CGF).tryEmitAbstract(*e->getArraySize(), e->getType()); 68507527621SNick Lewycky if (!numElements) 686*b9fb121aSRichard Smith numElements = CGF.EmitScalarExpr(*e->getArraySize()); 687036f2f6bSJohn McCall assert(isa<llvm::IntegerType>(numElements->getType())); 6888ed55a54SJohn McCall 689036f2f6bSJohn McCall // The number of elements can be have an arbitrary integer type; 690036f2f6bSJohn McCall // essentially, we need to multiply it by a constant factor, add a 691036f2f6bSJohn McCall // cookie size, and verify that the result is representable as a 692036f2f6bSJohn McCall // size_t. That's just a gloss, though, and it's wrong in one 693036f2f6bSJohn McCall // important way: if the count is negative, it's an error even if 694036f2f6bSJohn McCall // the cookie size would bring the total size >= 0. 6956ab2fa8fSDouglas Gregor bool isSigned 696*b9fb121aSRichard Smith = (*e->getArraySize())->getType()->isSignedIntegerOrEnumerationType(); 6972192fe50SChris Lattner llvm::IntegerType *numElementsType 698036f2f6bSJohn McCall = cast<llvm::IntegerType>(numElements->getType()); 699036f2f6bSJohn McCall unsigned numElementsWidth = numElementsType->getBitWidth(); 700036f2f6bSJohn McCall 701036f2f6bSJohn McCall // Compute the constant factor. 702036f2f6bSJohn McCall llvm::APInt arraySizeMultiplier(sizeWidth, 1); 7037648fb46SArgyrios Kyrtzidis while (const ConstantArrayType *CAT 704036f2f6bSJohn McCall = CGF.getContext().getAsConstantArrayType(type)) { 705036f2f6bSJohn McCall type = CAT->getElementType(); 706036f2f6bSJohn McCall arraySizeMultiplier *= CAT->getSize(); 7077648fb46SArgyrios Kyrtzidis } 70859486a2dSAnders Carlsson 709036f2f6bSJohn McCall CharUnits typeSize = CGF.getContext().getTypeSizeInChars(type); 710036f2f6bSJohn McCall llvm::APInt typeSizeMultiplier(sizeWidth, typeSize.getQuantity()); 711036f2f6bSJohn McCall typeSizeMultiplier *= arraySizeMultiplier; 712036f2f6bSJohn McCall 713036f2f6bSJohn McCall // This will be a size_t. 714036f2f6bSJohn McCall llvm::Value *size; 71532ac583dSChris Lattner 71632ac583dSChris Lattner // If someone is doing 'new int[42]' there is no need to do a dynamic check. 71732ac583dSChris Lattner // Don't bloat the -O0 code. 718036f2f6bSJohn McCall if (llvm::ConstantInt *numElementsC = 719036f2f6bSJohn McCall dyn_cast<llvm::ConstantInt>(numElements)) { 720036f2f6bSJohn McCall const llvm::APInt &count = numElementsC->getValue(); 72132ac583dSChris Lattner 722036f2f6bSJohn McCall bool hasAnyOverflow = false; 72332ac583dSChris Lattner 724036f2f6bSJohn McCall // If 'count' was a negative number, it's an overflow. 725036f2f6bSJohn McCall if (isSigned && count.isNegative()) 726036f2f6bSJohn McCall hasAnyOverflow = true; 7278ed55a54SJohn McCall 728036f2f6bSJohn McCall // We want to do all this arithmetic in size_t. If numElements is 729036f2f6bSJohn McCall // wider than that, check whether it's already too big, and if so, 730036f2f6bSJohn McCall // overflow. 731036f2f6bSJohn McCall else if (numElementsWidth > sizeWidth && 732036f2f6bSJohn McCall numElementsWidth - sizeWidth > count.countLeadingZeros()) 733036f2f6bSJohn McCall hasAnyOverflow = true; 734036f2f6bSJohn McCall 735036f2f6bSJohn McCall // Okay, compute a count at the right width. 736036f2f6bSJohn McCall llvm::APInt adjustedCount = count.zextOrTrunc(sizeWidth); 737036f2f6bSJohn McCall 738f862eb6aSSebastian Redl // If there is a brace-initializer, we cannot allocate fewer elements than 739f862eb6aSSebastian Redl // there are initializers. If we do, that's treated like an overflow. 740f862eb6aSSebastian Redl if (adjustedCount.ult(minElements)) 741f862eb6aSSebastian Redl hasAnyOverflow = true; 742f862eb6aSSebastian Redl 743036f2f6bSJohn McCall // Scale numElements by that. This might overflow, but we don't 744036f2f6bSJohn McCall // care because it only overflows if allocationSize does, too, and 745036f2f6bSJohn McCall // if that overflows then we shouldn't use this. 746036f2f6bSJohn McCall numElements = llvm::ConstantInt::get(CGF.SizeTy, 747036f2f6bSJohn McCall adjustedCount * arraySizeMultiplier); 748036f2f6bSJohn McCall 749036f2f6bSJohn McCall // Compute the size before cookie, and track whether it overflowed. 750036f2f6bSJohn McCall bool overflow; 751036f2f6bSJohn McCall llvm::APInt allocationSize 752036f2f6bSJohn McCall = adjustedCount.umul_ov(typeSizeMultiplier, overflow); 753036f2f6bSJohn McCall hasAnyOverflow |= overflow; 754036f2f6bSJohn McCall 755036f2f6bSJohn McCall // Add in the cookie, and check whether it's overflowed. 756036f2f6bSJohn McCall if (cookieSize != 0) { 757036f2f6bSJohn McCall // Save the current size without a cookie. This shouldn't be 758036f2f6bSJohn McCall // used if there was overflow. 759036f2f6bSJohn McCall sizeWithoutCookie = llvm::ConstantInt::get(CGF.SizeTy, allocationSize); 760036f2f6bSJohn McCall 761036f2f6bSJohn McCall allocationSize = allocationSize.uadd_ov(cookieSize, overflow); 762036f2f6bSJohn McCall hasAnyOverflow |= overflow; 7638ed55a54SJohn McCall } 7648ed55a54SJohn McCall 765036f2f6bSJohn McCall // On overflow, produce a -1 so operator new will fail. 766455f42c9SAaron Ballman if (hasAnyOverflow) { 767455f42c9SAaron Ballman size = llvm::Constant::getAllOnesValue(CGF.SizeTy); 768455f42c9SAaron Ballman } else { 769036f2f6bSJohn McCall size = llvm::ConstantInt::get(CGF.SizeTy, allocationSize); 770455f42c9SAaron Ballman } 77132ac583dSChris Lattner 772036f2f6bSJohn McCall // Otherwise, we might need to use the overflow intrinsics. 7738ed55a54SJohn McCall } else { 774f862eb6aSSebastian Redl // There are up to five conditions we need to test for: 775036f2f6bSJohn McCall // 1) if isSigned, we need to check whether numElements is negative; 776036f2f6bSJohn McCall // 2) if numElementsWidth > sizeWidth, we need to check whether 777036f2f6bSJohn McCall // numElements is larger than something representable in size_t; 778f862eb6aSSebastian Redl // 3) if minElements > 0, we need to check whether numElements is smaller 779f862eb6aSSebastian Redl // than that. 780f862eb6aSSebastian Redl // 4) we need to compute 781036f2f6bSJohn McCall // sizeWithoutCookie := numElements * typeSizeMultiplier 782036f2f6bSJohn McCall // and check whether it overflows; and 783f862eb6aSSebastian Redl // 5) if we need a cookie, we need to compute 784036f2f6bSJohn McCall // size := sizeWithoutCookie + cookieSize 785036f2f6bSJohn McCall // and check whether it overflows. 7868ed55a54SJohn McCall 7878a13c418SCraig Topper llvm::Value *hasOverflow = nullptr; 7888ed55a54SJohn McCall 789036f2f6bSJohn McCall // If numElementsWidth > sizeWidth, then one way or another, we're 790036f2f6bSJohn McCall // going to have to do a comparison for (2), and this happens to 791036f2f6bSJohn McCall // take care of (1), too. 792036f2f6bSJohn McCall if (numElementsWidth > sizeWidth) { 793036f2f6bSJohn McCall llvm::APInt threshold(numElementsWidth, 1); 794036f2f6bSJohn McCall threshold <<= sizeWidth; 7958ed55a54SJohn McCall 796036f2f6bSJohn McCall llvm::Value *thresholdV 797036f2f6bSJohn McCall = llvm::ConstantInt::get(numElementsType, threshold); 798036f2f6bSJohn McCall 799036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateICmpUGE(numElements, thresholdV); 800036f2f6bSJohn McCall numElements = CGF.Builder.CreateTrunc(numElements, CGF.SizeTy); 801036f2f6bSJohn McCall 802036f2f6bSJohn McCall // Otherwise, if we're signed, we want to sext up to size_t. 803036f2f6bSJohn McCall } else if (isSigned) { 804036f2f6bSJohn McCall if (numElementsWidth < sizeWidth) 805036f2f6bSJohn McCall numElements = CGF.Builder.CreateSExt(numElements, CGF.SizeTy); 806036f2f6bSJohn McCall 807036f2f6bSJohn McCall // If there's a non-1 type size multiplier, then we can do the 808036f2f6bSJohn McCall // signedness check at the same time as we do the multiply 809036f2f6bSJohn McCall // because a negative number times anything will cause an 810f862eb6aSSebastian Redl // unsigned overflow. Otherwise, we have to do it here. But at least 811f862eb6aSSebastian Redl // in this case, we can subsume the >= minElements check. 812036f2f6bSJohn McCall if (typeSizeMultiplier == 1) 813036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateICmpSLT(numElements, 814f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements)); 815036f2f6bSJohn McCall 816036f2f6bSJohn McCall // Otherwise, zext up to size_t if necessary. 817036f2f6bSJohn McCall } else if (numElementsWidth < sizeWidth) { 818036f2f6bSJohn McCall numElements = CGF.Builder.CreateZExt(numElements, CGF.SizeTy); 819036f2f6bSJohn McCall } 820036f2f6bSJohn McCall 821036f2f6bSJohn McCall assert(numElements->getType() == CGF.SizeTy); 822036f2f6bSJohn McCall 823f862eb6aSSebastian Redl if (minElements) { 824f862eb6aSSebastian Redl // Don't allow allocation of fewer elements than we have initializers. 825f862eb6aSSebastian Redl if (!hasOverflow) { 826f862eb6aSSebastian Redl hasOverflow = CGF.Builder.CreateICmpULT(numElements, 827f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements)); 828f862eb6aSSebastian Redl } else if (numElementsWidth > sizeWidth) { 829f862eb6aSSebastian Redl // The other existing overflow subsumes this check. 830f862eb6aSSebastian Redl // We do an unsigned comparison, since any signed value < -1 is 831f862eb6aSSebastian Redl // taken care of either above or below. 832f862eb6aSSebastian Redl hasOverflow = CGF.Builder.CreateOr(hasOverflow, 833f862eb6aSSebastian Redl CGF.Builder.CreateICmpULT(numElements, 834f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements))); 835f862eb6aSSebastian Redl } 836f862eb6aSSebastian Redl } 837f862eb6aSSebastian Redl 838036f2f6bSJohn McCall size = numElements; 839036f2f6bSJohn McCall 840036f2f6bSJohn McCall // Multiply by the type size if necessary. This multiplier 841036f2f6bSJohn McCall // includes all the factors for nested arrays. 8428ed55a54SJohn McCall // 843036f2f6bSJohn McCall // This step also causes numElements to be scaled up by the 844036f2f6bSJohn McCall // nested-array factor if necessary. Overflow on this computation 845036f2f6bSJohn McCall // can be ignored because the result shouldn't be used if 846036f2f6bSJohn McCall // allocation fails. 847036f2f6bSJohn McCall if (typeSizeMultiplier != 1) { 8488799caeeSJames Y Knight llvm::Function *umul_with_overflow 8498d375cefSBenjamin Kramer = CGF.CGM.getIntrinsic(llvm::Intrinsic::umul_with_overflow, CGF.SizeTy); 8508ed55a54SJohn McCall 851036f2f6bSJohn McCall llvm::Value *tsmV = 852036f2f6bSJohn McCall llvm::ConstantInt::get(CGF.SizeTy, typeSizeMultiplier); 853036f2f6bSJohn McCall llvm::Value *result = 85443f9bb73SDavid Blaikie CGF.Builder.CreateCall(umul_with_overflow, {size, tsmV}); 8558ed55a54SJohn McCall 856036f2f6bSJohn McCall llvm::Value *overflowed = CGF.Builder.CreateExtractValue(result, 1); 857036f2f6bSJohn McCall if (hasOverflow) 858036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateOr(hasOverflow, overflowed); 8598ed55a54SJohn McCall else 860036f2f6bSJohn McCall hasOverflow = overflowed; 86159486a2dSAnders Carlsson 862036f2f6bSJohn McCall size = CGF.Builder.CreateExtractValue(result, 0); 863036f2f6bSJohn McCall 864036f2f6bSJohn McCall // Also scale up numElements by the array size multiplier. 865036f2f6bSJohn McCall if (arraySizeMultiplier != 1) { 866036f2f6bSJohn McCall // If the base element type size is 1, then we can re-use the 867036f2f6bSJohn McCall // multiply we just did. 868036f2f6bSJohn McCall if (typeSize.isOne()) { 869036f2f6bSJohn McCall assert(arraySizeMultiplier == typeSizeMultiplier); 870036f2f6bSJohn McCall numElements = size; 871036f2f6bSJohn McCall 872036f2f6bSJohn McCall // Otherwise we need a separate multiply. 873036f2f6bSJohn McCall } else { 874036f2f6bSJohn McCall llvm::Value *asmV = 875036f2f6bSJohn McCall llvm::ConstantInt::get(CGF.SizeTy, arraySizeMultiplier); 876036f2f6bSJohn McCall numElements = CGF.Builder.CreateMul(numElements, asmV); 877036f2f6bSJohn McCall } 878036f2f6bSJohn McCall } 879036f2f6bSJohn McCall } else { 880036f2f6bSJohn McCall // numElements doesn't need to be scaled. 881036f2f6bSJohn McCall assert(arraySizeMultiplier == 1); 882036f2f6bSJohn McCall } 883036f2f6bSJohn McCall 884036f2f6bSJohn McCall // Add in the cookie size if necessary. 885036f2f6bSJohn McCall if (cookieSize != 0) { 886036f2f6bSJohn McCall sizeWithoutCookie = size; 887036f2f6bSJohn McCall 8888799caeeSJames Y Knight llvm::Function *uadd_with_overflow 8898d375cefSBenjamin Kramer = CGF.CGM.getIntrinsic(llvm::Intrinsic::uadd_with_overflow, CGF.SizeTy); 890036f2f6bSJohn McCall 891036f2f6bSJohn McCall llvm::Value *cookieSizeV = llvm::ConstantInt::get(CGF.SizeTy, cookieSize); 892036f2f6bSJohn McCall llvm::Value *result = 89343f9bb73SDavid Blaikie CGF.Builder.CreateCall(uadd_with_overflow, {size, cookieSizeV}); 894036f2f6bSJohn McCall 895036f2f6bSJohn McCall llvm::Value *overflowed = CGF.Builder.CreateExtractValue(result, 1); 896036f2f6bSJohn McCall if (hasOverflow) 897036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateOr(hasOverflow, overflowed); 898036f2f6bSJohn McCall else 899036f2f6bSJohn McCall hasOverflow = overflowed; 900036f2f6bSJohn McCall 901036f2f6bSJohn McCall size = CGF.Builder.CreateExtractValue(result, 0); 902036f2f6bSJohn McCall } 903036f2f6bSJohn McCall 904036f2f6bSJohn McCall // If we had any possibility of dynamic overflow, make a select to 905036f2f6bSJohn McCall // overwrite 'size' with an all-ones value, which should cause 906036f2f6bSJohn McCall // operator new to throw. 907036f2f6bSJohn McCall if (hasOverflow) 908455f42c9SAaron Ballman size = CGF.Builder.CreateSelect(hasOverflow, 909455f42c9SAaron Ballman llvm::Constant::getAllOnesValue(CGF.SizeTy), 910036f2f6bSJohn McCall size); 911036f2f6bSJohn McCall } 912036f2f6bSJohn McCall 913036f2f6bSJohn McCall if (cookieSize == 0) 914036f2f6bSJohn McCall sizeWithoutCookie = size; 915036f2f6bSJohn McCall else 916036f2f6bSJohn McCall assert(sizeWithoutCookie && "didn't set sizeWithoutCookie?"); 917036f2f6bSJohn McCall 918036f2f6bSJohn McCall return size; 91959486a2dSAnders Carlsson } 92059486a2dSAnders Carlsson 921f862eb6aSSebastian Redl static void StoreAnyExprIntoOneUnit(CodeGenFunction &CGF, const Expr *Init, 922e78fac51SRichard Smith QualType AllocType, Address NewPtr, 923e78fac51SRichard Smith AggValueSlot::Overlap_t MayOverlap) { 9241c96bc5dSRichard Smith // FIXME: Refactor with EmitExprAsInit. 92547fb9508SJohn McCall switch (CGF.getEvaluationKind(AllocType)) { 92647fb9508SJohn McCall case TEK_Scalar: 927a2c1124fSDavid Blaikie CGF.EmitScalarInit(Init, nullptr, 9287f416cc4SJohn McCall CGF.MakeAddrLValue(NewPtr, AllocType), false); 92947fb9508SJohn McCall return; 93047fb9508SJohn McCall case TEK_Complex: 9317f416cc4SJohn McCall CGF.EmitComplexExprIntoLValue(Init, CGF.MakeAddrLValue(NewPtr, AllocType), 93247fb9508SJohn McCall /*isInit*/ true); 93347fb9508SJohn McCall return; 93447fb9508SJohn McCall case TEK_Aggregate: { 9357a626f63SJohn McCall AggValueSlot Slot 9367f416cc4SJohn McCall = AggValueSlot::forAddr(NewPtr, AllocType.getQualifiers(), 9378d6fc958SJohn McCall AggValueSlot::IsDestructed, 93846759f4fSJohn McCall AggValueSlot::DoesNotNeedGCBarriers, 939e78fac51SRichard Smith AggValueSlot::IsNotAliased, 94037605182SSerge Pavlov MayOverlap, AggValueSlot::IsNotZeroed, 94137605182SSerge Pavlov AggValueSlot::IsSanitizerChecked); 9427a626f63SJohn McCall CGF.EmitAggExpr(Init, Slot); 94347fb9508SJohn McCall return; 9447a626f63SJohn McCall } 945d5202e09SFariborz Jahanian } 94647fb9508SJohn McCall llvm_unreachable("bad evaluation kind"); 94747fb9508SJohn McCall } 948d5202e09SFariborz Jahanian 949fb901c7aSDavid Blaikie void CodeGenFunction::EmitNewArrayInitializer( 950fb901c7aSDavid Blaikie const CXXNewExpr *E, QualType ElementType, llvm::Type *ElementTy, 9517f416cc4SJohn McCall Address BeginPtr, llvm::Value *NumElements, 95206a67e2cSRichard Smith llvm::Value *AllocSizeWithoutCookie) { 95306a67e2cSRichard Smith // If we have a type with trivial initialization and no initializer, 95406a67e2cSRichard Smith // there's nothing to do. 9556047f07eSSebastian Redl if (!E->hasInitializer()) 95606a67e2cSRichard Smith return; 957b66b08efSFariborz Jahanian 9587f416cc4SJohn McCall Address CurPtr = BeginPtr; 959d5202e09SFariborz Jahanian 96006a67e2cSRichard Smith unsigned InitListElements = 0; 961f862eb6aSSebastian Redl 962f862eb6aSSebastian Redl const Expr *Init = E->getInitializer(); 9637f416cc4SJohn McCall Address EndOfInit = Address::invalid(); 96406a67e2cSRichard Smith QualType::DestructionKind DtorKind = ElementType.isDestructedType(); 96506a67e2cSRichard Smith EHScopeStack::stable_iterator Cleanup; 96606a67e2cSRichard Smith llvm::Instruction *CleanupDominator = nullptr; 9671c96bc5dSRichard Smith 9687f416cc4SJohn McCall CharUnits ElementSize = getContext().getTypeSizeInChars(ElementType); 9697f416cc4SJohn McCall CharUnits ElementAlign = 9707f416cc4SJohn McCall BeginPtr.getAlignment().alignmentOfArrayElement(ElementSize); 9717f416cc4SJohn McCall 9720511d23aSRichard Smith // Attempt to perform zero-initialization using memset. 9730511d23aSRichard Smith auto TryMemsetInitialization = [&]() -> bool { 9740511d23aSRichard Smith // FIXME: If the type is a pointer-to-data-member under the Itanium ABI, 9750511d23aSRichard Smith // we can initialize with a memset to -1. 9760511d23aSRichard Smith if (!CGM.getTypes().isZeroInitializable(ElementType)) 9770511d23aSRichard Smith return false; 9780511d23aSRichard Smith 9790511d23aSRichard Smith // Optimization: since zero initialization will just set the memory 9800511d23aSRichard Smith // to all zeroes, generate a single memset to do it in one shot. 9810511d23aSRichard Smith 9820511d23aSRichard Smith // Subtract out the size of any elements we've already initialized. 9830511d23aSRichard Smith auto *RemainingSize = AllocSizeWithoutCookie; 9840511d23aSRichard Smith if (InitListElements) { 9850511d23aSRichard Smith // We know this can't overflow; we check this when doing the allocation. 9860511d23aSRichard Smith auto *InitializedSize = llvm::ConstantInt::get( 9870511d23aSRichard Smith RemainingSize->getType(), 9880511d23aSRichard Smith getContext().getTypeSizeInChars(ElementType).getQuantity() * 9890511d23aSRichard Smith InitListElements); 9900511d23aSRichard Smith RemainingSize = Builder.CreateSub(RemainingSize, InitializedSize); 9910511d23aSRichard Smith } 9920511d23aSRichard Smith 9930511d23aSRichard Smith // Create the memset. 9940511d23aSRichard Smith Builder.CreateMemSet(CurPtr, Builder.getInt8(0), RemainingSize, false); 9950511d23aSRichard Smith return true; 9960511d23aSRichard Smith }; 9970511d23aSRichard Smith 998f862eb6aSSebastian Redl // If the initializer is an initializer list, first do the explicit elements. 999f862eb6aSSebastian Redl if (const InitListExpr *ILE = dyn_cast<InitListExpr>(Init)) { 10000511d23aSRichard Smith // Initializing from a (braced) string literal is a special case; the init 10010511d23aSRichard Smith // list element does not initialize a (single) array element. 10020511d23aSRichard Smith if (ILE->isStringLiteralInit()) { 10030511d23aSRichard Smith // Initialize the initial portion of length equal to that of the string 10040511d23aSRichard Smith // literal. The allocation must be for at least this much; we emitted a 10050511d23aSRichard Smith // check for that earlier. 10060511d23aSRichard Smith AggValueSlot Slot = 10070511d23aSRichard Smith AggValueSlot::forAddr(CurPtr, ElementType.getQualifiers(), 10080511d23aSRichard Smith AggValueSlot::IsDestructed, 10090511d23aSRichard Smith AggValueSlot::DoesNotNeedGCBarriers, 1010e78fac51SRichard Smith AggValueSlot::IsNotAliased, 101137605182SSerge Pavlov AggValueSlot::DoesNotOverlap, 101237605182SSerge Pavlov AggValueSlot::IsNotZeroed, 101337605182SSerge Pavlov AggValueSlot::IsSanitizerChecked); 10140511d23aSRichard Smith EmitAggExpr(ILE->getInit(0), Slot); 10150511d23aSRichard Smith 10160511d23aSRichard Smith // Move past these elements. 10170511d23aSRichard Smith InitListElements = 10180511d23aSRichard Smith cast<ConstantArrayType>(ILE->getType()->getAsArrayTypeUnsafe()) 10190511d23aSRichard Smith ->getSize().getZExtValue(); 10200511d23aSRichard Smith CurPtr = 10210511d23aSRichard Smith Address(Builder.CreateInBoundsGEP(CurPtr.getPointer(), 10220511d23aSRichard Smith Builder.getSize(InitListElements), 10230511d23aSRichard Smith "string.init.end"), 10240511d23aSRichard Smith CurPtr.getAlignment().alignmentAtOffset(InitListElements * 10250511d23aSRichard Smith ElementSize)); 10260511d23aSRichard Smith 10270511d23aSRichard Smith // Zero out the rest, if any remain. 10280511d23aSRichard Smith llvm::ConstantInt *ConstNum = dyn_cast<llvm::ConstantInt>(NumElements); 10290511d23aSRichard Smith if (!ConstNum || !ConstNum->equalsInt(InitListElements)) { 10300511d23aSRichard Smith bool OK = TryMemsetInitialization(); 10310511d23aSRichard Smith (void)OK; 10320511d23aSRichard Smith assert(OK && "couldn't memset character type?"); 10330511d23aSRichard Smith } 10340511d23aSRichard Smith return; 10350511d23aSRichard Smith } 10360511d23aSRichard Smith 103706a67e2cSRichard Smith InitListElements = ILE->getNumInits(); 1038f62290a1SChad Rosier 10391c96bc5dSRichard Smith // If this is a multi-dimensional array new, we will initialize multiple 10401c96bc5dSRichard Smith // elements with each init list element. 10411c96bc5dSRichard Smith QualType AllocType = E->getAllocatedType(); 10421c96bc5dSRichard Smith if (const ConstantArrayType *CAT = dyn_cast_or_null<ConstantArrayType>( 10431c96bc5dSRichard Smith AllocType->getAsArrayTypeUnsafe())) { 1044fb901c7aSDavid Blaikie ElementTy = ConvertTypeForMem(AllocType); 10457f416cc4SJohn McCall CurPtr = Builder.CreateElementBitCast(CurPtr, ElementTy); 104606a67e2cSRichard Smith InitListElements *= getContext().getConstantArrayElementCount(CAT); 10471c96bc5dSRichard Smith } 10481c96bc5dSRichard Smith 104906a67e2cSRichard Smith // Enter a partial-destruction Cleanup if necessary. 105006a67e2cSRichard Smith if (needsEHCleanup(DtorKind)) { 105106a67e2cSRichard Smith // In principle we could tell the Cleanup where we are more 1052f62290a1SChad Rosier // directly, but the control flow can get so varied here that it 1053f62290a1SChad Rosier // would actually be quite complex. Therefore we go through an 1054f62290a1SChad Rosier // alloca. 10557f416cc4SJohn McCall EndOfInit = CreateTempAlloca(BeginPtr.getType(), getPointerAlign(), 10567f416cc4SJohn McCall "array.init.end"); 10577f416cc4SJohn McCall CleanupDominator = Builder.CreateStore(BeginPtr.getPointer(), EndOfInit); 10587f416cc4SJohn McCall pushIrregularPartialArrayCleanup(BeginPtr.getPointer(), EndOfInit, 10597f416cc4SJohn McCall ElementType, ElementAlign, 106006a67e2cSRichard Smith getDestroyer(DtorKind)); 106106a67e2cSRichard Smith Cleanup = EHStack.stable_begin(); 1062f62290a1SChad Rosier } 1063f62290a1SChad Rosier 10647f416cc4SJohn McCall CharUnits StartAlign = CurPtr.getAlignment(); 1065f862eb6aSSebastian Redl for (unsigned i = 0, e = ILE->getNumInits(); i != e; ++i) { 1066f62290a1SChad Rosier // Tell the cleanup that it needs to destroy up to this 1067f62290a1SChad Rosier // element. TODO: some of these stores can be trivially 1068f62290a1SChad Rosier // observed to be unnecessary. 10697f416cc4SJohn McCall if (EndOfInit.isValid()) { 10707f416cc4SJohn McCall auto FinishedPtr = 10717f416cc4SJohn McCall Builder.CreateBitCast(CurPtr.getPointer(), BeginPtr.getType()); 10727f416cc4SJohn McCall Builder.CreateStore(FinishedPtr, EndOfInit); 10737f416cc4SJohn McCall } 107406a67e2cSRichard Smith // FIXME: If the last initializer is an incomplete initializer list for 107506a67e2cSRichard Smith // an array, and we have an array filler, we can fold together the two 107606a67e2cSRichard Smith // initialization loops. 10771c96bc5dSRichard Smith StoreAnyExprIntoOneUnit(*this, ILE->getInit(i), 1078e78fac51SRichard Smith ILE->getInit(i)->getType(), CurPtr, 1079e78fac51SRichard Smith AggValueSlot::DoesNotOverlap); 10807f416cc4SJohn McCall CurPtr = Address(Builder.CreateInBoundsGEP(CurPtr.getPointer(), 10817f416cc4SJohn McCall Builder.getSize(1), 10827f416cc4SJohn McCall "array.exp.next"), 10837f416cc4SJohn McCall StartAlign.alignmentAtOffset((i + 1) * ElementSize)); 1084f862eb6aSSebastian Redl } 1085f862eb6aSSebastian Redl 1086f862eb6aSSebastian Redl // The remaining elements are filled with the array filler expression. 1087f862eb6aSSebastian Redl Init = ILE->getArrayFiller(); 10881c96bc5dSRichard Smith 108906a67e2cSRichard Smith // Extract the initializer for the individual array elements by pulling 109006a67e2cSRichard Smith // out the array filler from all the nested initializer lists. This avoids 109106a67e2cSRichard Smith // generating a nested loop for the initialization. 109206a67e2cSRichard Smith while (Init && Init->getType()->isConstantArrayType()) { 109306a67e2cSRichard Smith auto *SubILE = dyn_cast<InitListExpr>(Init); 109406a67e2cSRichard Smith if (!SubILE) 109506a67e2cSRichard Smith break; 109606a67e2cSRichard Smith assert(SubILE->getNumInits() == 0 && "explicit inits in array filler?"); 109706a67e2cSRichard Smith Init = SubILE->getArrayFiller(); 1098f862eb6aSSebastian Redl } 1099f862eb6aSSebastian Redl 110006a67e2cSRichard Smith // Switch back to initializing one base element at a time. 11017f416cc4SJohn McCall CurPtr = Builder.CreateBitCast(CurPtr, BeginPtr.getType()); 1102f62290a1SChad Rosier } 1103e6c980c4SChandler Carruth 1104454a7cdfSRichard Smith // If all elements have already been initialized, skip any further 1105454a7cdfSRichard Smith // initialization. 1106454a7cdfSRichard Smith llvm::ConstantInt *ConstNum = dyn_cast<llvm::ConstantInt>(NumElements); 1107454a7cdfSRichard Smith if (ConstNum && ConstNum->getZExtValue() <= InitListElements) { 1108454a7cdfSRichard Smith // If there was a Cleanup, deactivate it. 1109454a7cdfSRichard Smith if (CleanupDominator) 1110454a7cdfSRichard Smith DeactivateCleanupBlock(Cleanup, CleanupDominator); 1111454a7cdfSRichard Smith return; 1112454a7cdfSRichard Smith } 1113454a7cdfSRichard Smith 1114454a7cdfSRichard Smith assert(Init && "have trailing elements to initialize but no initializer"); 1115454a7cdfSRichard Smith 111606a67e2cSRichard Smith // If this is a constructor call, try to optimize it out, and failing that 111706a67e2cSRichard Smith // emit a single loop to initialize all remaining elements. 1118454a7cdfSRichard Smith if (const CXXConstructExpr *CCE = dyn_cast<CXXConstructExpr>(Init)) { 11196047f07eSSebastian Redl CXXConstructorDecl *Ctor = CCE->getConstructor(); 1120d153103cSDouglas Gregor if (Ctor->isTrivial()) { 112105fc5be3SDouglas Gregor // If new expression did not specify value-initialization, then there 112205fc5be3SDouglas Gregor // is no initialization. 11236047f07eSSebastian Redl if (!CCE->requiresZeroInitialization() || Ctor->getParent()->isEmpty()) 112405fc5be3SDouglas Gregor return; 112505fc5be3SDouglas Gregor 112606a67e2cSRichard Smith if (TryMemsetInitialization()) 11273a202f60SAnders Carlsson return; 11283a202f60SAnders Carlsson } 112905fc5be3SDouglas Gregor 113006a67e2cSRichard Smith // Store the new Cleanup position for irregular Cleanups. 113106a67e2cSRichard Smith // 113206a67e2cSRichard Smith // FIXME: Share this cleanup with the constructor call emission rather than 113306a67e2cSRichard Smith // having it create a cleanup of its own. 11347f416cc4SJohn McCall if (EndOfInit.isValid()) 11357f416cc4SJohn McCall Builder.CreateStore(CurPtr.getPointer(), EndOfInit); 113606a67e2cSRichard Smith 113706a67e2cSRichard Smith // Emit a constructor call loop to initialize the remaining elements. 113806a67e2cSRichard Smith if (InitListElements) 113906a67e2cSRichard Smith NumElements = Builder.CreateSub( 114006a67e2cSRichard Smith NumElements, 114106a67e2cSRichard Smith llvm::ConstantInt::get(NumElements->getType(), InitListElements)); 114270b9c01bSAlexey Samsonov EmitCXXAggrConstructorCall(Ctor, NumElements, CurPtr, CCE, 114337605182SSerge Pavlov /*NewPointerIsChecked*/true, 114448ddcf2cSEli Friedman CCE->requiresZeroInitialization()); 114505fc5be3SDouglas Gregor return; 11466047f07eSSebastian Redl } 114706a67e2cSRichard Smith 114806a67e2cSRichard Smith // If this is value-initialization, we can usually use memset. 114906a67e2cSRichard Smith ImplicitValueInitExpr IVIE(ElementType); 1150454a7cdfSRichard Smith if (isa<ImplicitValueInitExpr>(Init)) { 115106a67e2cSRichard Smith if (TryMemsetInitialization()) 115206a67e2cSRichard Smith return; 115306a67e2cSRichard Smith 115406a67e2cSRichard Smith // Switch to an ImplicitValueInitExpr for the element type. This handles 115506a67e2cSRichard Smith // only one case: multidimensional array new of pointers to members. In 115606a67e2cSRichard Smith // all other cases, we already have an initializer for the array element. 115706a67e2cSRichard Smith Init = &IVIE; 115806a67e2cSRichard Smith } 115906a67e2cSRichard Smith 116006a67e2cSRichard Smith // At this point we should have found an initializer for the individual 116106a67e2cSRichard Smith // elements of the array. 116206a67e2cSRichard Smith assert(getContext().hasSameUnqualifiedType(ElementType, Init->getType()) && 116306a67e2cSRichard Smith "got wrong type of element to initialize"); 116406a67e2cSRichard Smith 1165454a7cdfSRichard Smith // If we have an empty initializer list, we can usually use memset. 1166454a7cdfSRichard Smith if (auto *ILE = dyn_cast<InitListExpr>(Init)) 1167454a7cdfSRichard Smith if (ILE->getNumInits() == 0 && TryMemsetInitialization()) 1168d5202e09SFariborz Jahanian return; 116959486a2dSAnders Carlsson 1170cb77930dSYunzhong Gao // If we have a struct whose every field is value-initialized, we can 1171cb77930dSYunzhong Gao // usually use memset. 1172cb77930dSYunzhong Gao if (auto *ILE = dyn_cast<InitListExpr>(Init)) { 1173cb77930dSYunzhong Gao if (const RecordType *RType = ILE->getType()->getAs<RecordType>()) { 1174cb77930dSYunzhong Gao if (RType->getDecl()->isStruct()) { 1175872307e2SRichard Smith unsigned NumElements = 0; 1176872307e2SRichard Smith if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RType->getDecl())) 1177872307e2SRichard Smith NumElements = CXXRD->getNumBases(); 1178cb77930dSYunzhong Gao for (auto *Field : RType->getDecl()->fields()) 1179cb77930dSYunzhong Gao if (!Field->isUnnamedBitfield()) 1180872307e2SRichard Smith ++NumElements; 1181872307e2SRichard Smith // FIXME: Recurse into nested InitListExprs. 1182872307e2SRichard Smith if (ILE->getNumInits() == NumElements) 1183cb77930dSYunzhong Gao for (unsigned i = 0, e = ILE->getNumInits(); i != e; ++i) 1184cb77930dSYunzhong Gao if (!isa<ImplicitValueInitExpr>(ILE->getInit(i))) 1185872307e2SRichard Smith --NumElements; 1186872307e2SRichard Smith if (ILE->getNumInits() == NumElements && TryMemsetInitialization()) 1187cb77930dSYunzhong Gao return; 1188cb77930dSYunzhong Gao } 1189cb77930dSYunzhong Gao } 1190cb77930dSYunzhong Gao } 1191cb77930dSYunzhong Gao 119206a67e2cSRichard Smith // Create the loop blocks. 119306a67e2cSRichard Smith llvm::BasicBlock *EntryBB = Builder.GetInsertBlock(); 119406a67e2cSRichard Smith llvm::BasicBlock *LoopBB = createBasicBlock("new.loop"); 119506a67e2cSRichard Smith llvm::BasicBlock *ContBB = createBasicBlock("new.loop.end"); 119659486a2dSAnders Carlsson 119706a67e2cSRichard Smith // Find the end of the array, hoisted out of the loop. 119806a67e2cSRichard Smith llvm::Value *EndPtr = 11997f416cc4SJohn McCall Builder.CreateInBoundsGEP(BeginPtr.getPointer(), NumElements, "array.end"); 120006a67e2cSRichard Smith 120106a67e2cSRichard Smith // If the number of elements isn't constant, we have to now check if there is 120206a67e2cSRichard Smith // anything left to initialize. 120306a67e2cSRichard Smith if (!ConstNum) { 12047f416cc4SJohn McCall llvm::Value *IsEmpty = 12057f416cc4SJohn McCall Builder.CreateICmpEQ(CurPtr.getPointer(), EndPtr, "array.isempty"); 120606a67e2cSRichard Smith Builder.CreateCondBr(IsEmpty, ContBB, LoopBB); 120706a67e2cSRichard Smith } 120806a67e2cSRichard Smith 120906a67e2cSRichard Smith // Enter the loop. 121006a67e2cSRichard Smith EmitBlock(LoopBB); 121106a67e2cSRichard Smith 121206a67e2cSRichard Smith // Set up the current-element phi. 121306a67e2cSRichard Smith llvm::PHINode *CurPtrPhi = 12147f416cc4SJohn McCall Builder.CreatePHI(CurPtr.getType(), 2, "array.cur"); 12157f416cc4SJohn McCall CurPtrPhi->addIncoming(CurPtr.getPointer(), EntryBB); 12167f416cc4SJohn McCall 12177f416cc4SJohn McCall CurPtr = Address(CurPtrPhi, ElementAlign); 121806a67e2cSRichard Smith 121906a67e2cSRichard Smith // Store the new Cleanup position for irregular Cleanups. 12207f416cc4SJohn McCall if (EndOfInit.isValid()) 12217f416cc4SJohn McCall Builder.CreateStore(CurPtr.getPointer(), EndOfInit); 122206a67e2cSRichard Smith 122306a67e2cSRichard Smith // Enter a partial-destruction Cleanup if necessary. 122406a67e2cSRichard Smith if (!CleanupDominator && needsEHCleanup(DtorKind)) { 12257f416cc4SJohn McCall pushRegularPartialArrayCleanup(BeginPtr.getPointer(), CurPtr.getPointer(), 12267f416cc4SJohn McCall ElementType, ElementAlign, 122706a67e2cSRichard Smith getDestroyer(DtorKind)); 122806a67e2cSRichard Smith Cleanup = EHStack.stable_begin(); 122906a67e2cSRichard Smith CleanupDominator = Builder.CreateUnreachable(); 123006a67e2cSRichard Smith } 123106a67e2cSRichard Smith 123206a67e2cSRichard Smith // Emit the initializer into this element. 1233e78fac51SRichard Smith StoreAnyExprIntoOneUnit(*this, Init, Init->getType(), CurPtr, 1234e78fac51SRichard Smith AggValueSlot::DoesNotOverlap); 123506a67e2cSRichard Smith 123606a67e2cSRichard Smith // Leave the Cleanup if we entered one. 123706a67e2cSRichard Smith if (CleanupDominator) { 123806a67e2cSRichard Smith DeactivateCleanupBlock(Cleanup, CleanupDominator); 123906a67e2cSRichard Smith CleanupDominator->eraseFromParent(); 124006a67e2cSRichard Smith } 124106a67e2cSRichard Smith 124206a67e2cSRichard Smith // Advance to the next element by adjusting the pointer type as necessary. 124306a67e2cSRichard Smith llvm::Value *NextPtr = 12447f416cc4SJohn McCall Builder.CreateConstInBoundsGEP1_32(ElementTy, CurPtr.getPointer(), 1, 12457f416cc4SJohn McCall "array.next"); 124606a67e2cSRichard Smith 124706a67e2cSRichard Smith // Check whether we've gotten to the end of the array and, if so, 124806a67e2cSRichard Smith // exit the loop. 124906a67e2cSRichard Smith llvm::Value *IsEnd = Builder.CreateICmpEQ(NextPtr, EndPtr, "array.atend"); 125006a67e2cSRichard Smith Builder.CreateCondBr(IsEnd, ContBB, LoopBB); 125106a67e2cSRichard Smith CurPtrPhi->addIncoming(NextPtr, Builder.GetInsertBlock()); 125206a67e2cSRichard Smith 125306a67e2cSRichard Smith EmitBlock(ContBB); 125406a67e2cSRichard Smith } 125506a67e2cSRichard Smith 125606a67e2cSRichard Smith static void EmitNewInitializer(CodeGenFunction &CGF, const CXXNewExpr *E, 1257fb901c7aSDavid Blaikie QualType ElementType, llvm::Type *ElementTy, 12587f416cc4SJohn McCall Address NewPtr, llvm::Value *NumElements, 125906a67e2cSRichard Smith llvm::Value *AllocSizeWithoutCookie) { 12609b479666SDavid Blaikie ApplyDebugLocation DL(CGF, E); 126106a67e2cSRichard Smith if (E->isArray()) 1262fb901c7aSDavid Blaikie CGF.EmitNewArrayInitializer(E, ElementType, ElementTy, NewPtr, NumElements, 126306a67e2cSRichard Smith AllocSizeWithoutCookie); 126406a67e2cSRichard Smith else if (const Expr *Init = E->getInitializer()) 1265e78fac51SRichard Smith StoreAnyExprIntoOneUnit(CGF, Init, E->getAllocatedType(), NewPtr, 1266e78fac51SRichard Smith AggValueSlot::DoesNotOverlap); 126759486a2dSAnders Carlsson } 126859486a2dSAnders Carlsson 12698d0dc31dSRichard Smith /// Emit a call to an operator new or operator delete function, as implicitly 12708d0dc31dSRichard Smith /// created by new-expressions and delete-expressions. 12718d0dc31dSRichard Smith static RValue EmitNewDeleteCall(CodeGenFunction &CGF, 1272b92ab1afSJohn McCall const FunctionDecl *CalleeDecl, 12738d0dc31dSRichard Smith const FunctionProtoType *CalleeType, 12748d0dc31dSRichard Smith const CallArgList &Args) { 12753933adddSJames Y Knight llvm::CallBase *CallOrInvoke; 1276b92ab1afSJohn McCall llvm::Constant *CalleePtr = CGF.CGM.GetAddrOfFunction(CalleeDecl); 1277de6480a3SErich Keane CGCallee Callee = CGCallee::forDirect(CalleePtr, GlobalDecl(CalleeDecl)); 12788d0dc31dSRichard Smith RValue RV = 1279f770683fSPeter Collingbourne CGF.EmitCall(CGF.CGM.getTypes().arrangeFreeFunctionCall( 1280f770683fSPeter Collingbourne Args, CalleeType, /*chainCall=*/false), 1281b92ab1afSJohn McCall Callee, ReturnValueSlot(), Args, &CallOrInvoke); 12828d0dc31dSRichard Smith 12838d0dc31dSRichard Smith /// C++1y [expr.new]p10: 12848d0dc31dSRichard Smith /// [In a new-expression,] an implementation is allowed to omit a call 12858d0dc31dSRichard Smith /// to a replaceable global allocation function. 12868d0dc31dSRichard Smith /// 12878d0dc31dSRichard Smith /// We model such elidable calls with the 'builtin' attribute. 1288b92ab1afSJohn McCall llvm::Function *Fn = dyn_cast<llvm::Function>(CalleePtr); 1289b92ab1afSJohn McCall if (CalleeDecl->isReplaceableGlobalAllocationFunction() && 12906956d587SRafael Espindola Fn && Fn->hasFnAttribute(llvm::Attribute::NoBuiltin)) { 12913933adddSJames Y Knight CallOrInvoke->addAttribute(llvm::AttributeList::FunctionIndex, 12928d0dc31dSRichard Smith llvm::Attribute::Builtin); 12938d0dc31dSRichard Smith } 12948d0dc31dSRichard Smith 12958d0dc31dSRichard Smith return RV; 12968d0dc31dSRichard Smith } 12978d0dc31dSRichard Smith 1298760520bcSRichard Smith RValue CodeGenFunction::EmitBuiltinNewDeleteCall(const FunctionProtoType *Type, 1299fa752f23SEric Fiselier const CallExpr *TheCall, 1300760520bcSRichard Smith bool IsDelete) { 1301760520bcSRichard Smith CallArgList Args; 1302fa752f23SEric Fiselier EmitCallArgs(Args, Type->getParamTypes(), TheCall->arguments()); 1303760520bcSRichard Smith // Find the allocation or deallocation function that we're calling. 1304760520bcSRichard Smith ASTContext &Ctx = getContext(); 1305760520bcSRichard Smith DeclarationName Name = Ctx.DeclarationNames 1306760520bcSRichard Smith .getCXXOperatorName(IsDelete ? OO_Delete : OO_New); 1307fa752f23SEric Fiselier 1308760520bcSRichard Smith for (auto *Decl : Ctx.getTranslationUnitDecl()->lookup(Name)) 1309599bed75SRichard Smith if (auto *FD = dyn_cast<FunctionDecl>(Decl)) 1310599bed75SRichard Smith if (Ctx.hasSameType(FD->getType(), QualType(Type, 0))) 1311fa752f23SEric Fiselier return EmitNewDeleteCall(*this, FD, Type, Args); 1312760520bcSRichard Smith llvm_unreachable("predeclared global operator new/delete is missing"); 1313760520bcSRichard Smith } 1314760520bcSRichard Smith 13155b34958bSRichard Smith namespace { 13165b34958bSRichard Smith /// The parameters to pass to a usual operator delete. 13175b34958bSRichard Smith struct UsualDeleteParams { 13185b34958bSRichard Smith bool DestroyingDelete = false; 13195b34958bSRichard Smith bool Size = false; 13205b34958bSRichard Smith bool Alignment = false; 13215b34958bSRichard Smith }; 13225b34958bSRichard Smith } 13235b34958bSRichard Smith 13245b34958bSRichard Smith static UsualDeleteParams getUsualDeleteParams(const FunctionDecl *FD) { 13255b34958bSRichard Smith UsualDeleteParams Params; 13265b34958bSRichard Smith 13275b34958bSRichard Smith const FunctionProtoType *FPT = FD->getType()->castAs<FunctionProtoType>(); 1328b2f0f057SRichard Smith auto AI = FPT->param_type_begin(), AE = FPT->param_type_end(); 1329e9abe648SDaniel Jasper 1330b2f0f057SRichard Smith // The first argument is always a void*. 1331b2f0f057SRichard Smith ++AI; 1332b2f0f057SRichard Smith 13335b34958bSRichard Smith // The next parameter may be a std::destroying_delete_t. 13345b34958bSRichard Smith if (FD->isDestroyingOperatorDelete()) { 13355b34958bSRichard Smith Params.DestroyingDelete = true; 13365b34958bSRichard Smith assert(AI != AE); 13375b34958bSRichard Smith ++AI; 13385b34958bSRichard Smith } 1339b2f0f057SRichard Smith 13405b34958bSRichard Smith // Figure out what other parameters we should be implicitly passing. 1341b2f0f057SRichard Smith if (AI != AE && (*AI)->isIntegerType()) { 13425b34958bSRichard Smith Params.Size = true; 1343b2f0f057SRichard Smith ++AI; 1344b2f0f057SRichard Smith } 1345b2f0f057SRichard Smith 1346b2f0f057SRichard Smith if (AI != AE && (*AI)->isAlignValT()) { 13475b34958bSRichard Smith Params.Alignment = true; 1348b2f0f057SRichard Smith ++AI; 1349b2f0f057SRichard Smith } 1350b2f0f057SRichard Smith 1351b2f0f057SRichard Smith assert(AI == AE && "unexpected usual deallocation function parameter"); 13525b34958bSRichard Smith return Params; 1353b2f0f057SRichard Smith } 1354b2f0f057SRichard Smith 1355b2f0f057SRichard Smith namespace { 1356b2f0f057SRichard Smith /// A cleanup to call the given 'operator delete' function upon abnormal 1357b2f0f057SRichard Smith /// exit from a new expression. Templated on a traits type that deals with 1358b2f0f057SRichard Smith /// ensuring that the arguments dominate the cleanup if necessary. 1359b2f0f057SRichard Smith template<typename Traits> 1360b2f0f057SRichard Smith class CallDeleteDuringNew final : public EHScopeStack::Cleanup { 1361b2f0f057SRichard Smith /// Type used to hold llvm::Value*s. 1362b2f0f057SRichard Smith typedef typename Traits::ValueTy ValueTy; 1363b2f0f057SRichard Smith /// Type used to hold RValues. 1364b2f0f057SRichard Smith typedef typename Traits::RValueTy RValueTy; 1365b2f0f057SRichard Smith struct PlacementArg { 1366b2f0f057SRichard Smith RValueTy ArgValue; 1367b2f0f057SRichard Smith QualType ArgType; 1368b2f0f057SRichard Smith }; 1369b2f0f057SRichard Smith 1370b2f0f057SRichard Smith unsigned NumPlacementArgs : 31; 1371b2f0f057SRichard Smith unsigned PassAlignmentToPlacementDelete : 1; 1372b2f0f057SRichard Smith const FunctionDecl *OperatorDelete; 1373b2f0f057SRichard Smith ValueTy Ptr; 1374b2f0f057SRichard Smith ValueTy AllocSize; 1375b2f0f057SRichard Smith CharUnits AllocAlign; 1376b2f0f057SRichard Smith 1377b2f0f057SRichard Smith PlacementArg *getPlacementArgs() { 1378b2f0f057SRichard Smith return reinterpret_cast<PlacementArg *>(this + 1); 1379b2f0f057SRichard Smith } 1380e9abe648SDaniel Jasper 1381e9abe648SDaniel Jasper public: 1382e9abe648SDaniel Jasper static size_t getExtraSize(size_t NumPlacementArgs) { 1383b2f0f057SRichard Smith return NumPlacementArgs * sizeof(PlacementArg); 1384e9abe648SDaniel Jasper } 1385e9abe648SDaniel Jasper 1386e9abe648SDaniel Jasper CallDeleteDuringNew(size_t NumPlacementArgs, 1387b2f0f057SRichard Smith const FunctionDecl *OperatorDelete, ValueTy Ptr, 1388b2f0f057SRichard Smith ValueTy AllocSize, bool PassAlignmentToPlacementDelete, 1389b2f0f057SRichard Smith CharUnits AllocAlign) 1390b2f0f057SRichard Smith : NumPlacementArgs(NumPlacementArgs), 1391b2f0f057SRichard Smith PassAlignmentToPlacementDelete(PassAlignmentToPlacementDelete), 1392b2f0f057SRichard Smith OperatorDelete(OperatorDelete), Ptr(Ptr), AllocSize(AllocSize), 1393b2f0f057SRichard Smith AllocAlign(AllocAlign) {} 1394e9abe648SDaniel Jasper 1395b2f0f057SRichard Smith void setPlacementArg(unsigned I, RValueTy Arg, QualType Type) { 1396e9abe648SDaniel Jasper assert(I < NumPlacementArgs && "index out of range"); 1397b2f0f057SRichard Smith getPlacementArgs()[I] = {Arg, Type}; 1398e9abe648SDaniel Jasper } 1399e9abe648SDaniel Jasper 1400e9abe648SDaniel Jasper void Emit(CodeGenFunction &CGF, Flags flags) override { 1401b2f0f057SRichard Smith const FunctionProtoType *FPT = 1402b2f0f057SRichard Smith OperatorDelete->getType()->getAs<FunctionProtoType>(); 1403e9abe648SDaniel Jasper CallArgList DeleteArgs; 1404824c2f53SJohn McCall 14055b34958bSRichard Smith // The first argument is always a void* (or C* for a destroying operator 14065b34958bSRichard Smith // delete for class type C). 1407b2f0f057SRichard Smith DeleteArgs.add(Traits::get(CGF, Ptr), FPT->getParamType(0)); 1408189e52fcSRichard Smith 1409b2f0f057SRichard Smith // Figure out what other parameters we should be implicitly passing. 14105b34958bSRichard Smith UsualDeleteParams Params; 1411b2f0f057SRichard Smith if (NumPlacementArgs) { 1412b2f0f057SRichard Smith // A placement deallocation function is implicitly passed an alignment 1413b2f0f057SRichard Smith // if the placement allocation function was, but is never passed a size. 14145b34958bSRichard Smith Params.Alignment = PassAlignmentToPlacementDelete; 1415b2f0f057SRichard Smith } else { 1416b2f0f057SRichard Smith // For a non-placement new-expression, 'operator delete' can take a 1417b2f0f057SRichard Smith // size and/or an alignment if it has the right parameters. 14185b34958bSRichard Smith Params = getUsualDeleteParams(OperatorDelete); 1419189e52fcSRichard Smith } 1420824c2f53SJohn McCall 14215b34958bSRichard Smith assert(!Params.DestroyingDelete && 14225b34958bSRichard Smith "should not call destroying delete in a new-expression"); 14235b34958bSRichard Smith 1424b2f0f057SRichard Smith // The second argument can be a std::size_t (for non-placement delete). 14255b34958bSRichard Smith if (Params.Size) 1426b2f0f057SRichard Smith DeleteArgs.add(Traits::get(CGF, AllocSize), 1427b2f0f057SRichard Smith CGF.getContext().getSizeType()); 1428824c2f53SJohn McCall 1429b2f0f057SRichard Smith // The next (second or third) argument can be a std::align_val_t, which 1430b2f0f057SRichard Smith // is an enum whose underlying type is std::size_t. 1431b2f0f057SRichard Smith // FIXME: Use the right type as the parameter type. Note that in a call 1432b2f0f057SRichard Smith // to operator delete(size_t, ...), we may not have it available. 14335b34958bSRichard Smith if (Params.Alignment) 1434b2f0f057SRichard Smith DeleteArgs.add(RValue::get(llvm::ConstantInt::get( 1435b2f0f057SRichard Smith CGF.SizeTy, AllocAlign.getQuantity())), 1436b2f0f057SRichard Smith CGF.getContext().getSizeType()); 14377f9c92a9SJohn McCall 14387f9c92a9SJohn McCall // Pass the rest of the arguments, which must match exactly. 14397f9c92a9SJohn McCall for (unsigned I = 0; I != NumPlacementArgs; ++I) { 1440b2f0f057SRichard Smith auto Arg = getPlacementArgs()[I]; 1441b2f0f057SRichard Smith DeleteArgs.add(Traits::get(CGF, Arg.ArgValue), Arg.ArgType); 14427f9c92a9SJohn McCall } 14437f9c92a9SJohn McCall 14447f9c92a9SJohn McCall // Call 'operator delete'. 14458d0dc31dSRichard Smith EmitNewDeleteCall(CGF, OperatorDelete, FPT, DeleteArgs); 14467f9c92a9SJohn McCall } 14477f9c92a9SJohn McCall }; 1448ab9db510SAlexander Kornienko } 14497f9c92a9SJohn McCall 14507f9c92a9SJohn McCall /// Enter a cleanup to call 'operator delete' if the initializer in a 14517f9c92a9SJohn McCall /// new-expression throws. 14527f9c92a9SJohn McCall static void EnterNewDeleteCleanup(CodeGenFunction &CGF, 14537f9c92a9SJohn McCall const CXXNewExpr *E, 14547f416cc4SJohn McCall Address NewPtr, 14557f9c92a9SJohn McCall llvm::Value *AllocSize, 1456b2f0f057SRichard Smith CharUnits AllocAlign, 14577f9c92a9SJohn McCall const CallArgList &NewArgs) { 1458b2f0f057SRichard Smith unsigned NumNonPlacementArgs = E->passAlignment() ? 2 : 1; 1459b2f0f057SRichard Smith 14607f9c92a9SJohn McCall // If we're not inside a conditional branch, then the cleanup will 14617f9c92a9SJohn McCall // dominate and we can do the easier (and more efficient) thing. 14627f9c92a9SJohn McCall if (!CGF.isInConditionalBranch()) { 1463b2f0f057SRichard Smith struct DirectCleanupTraits { 1464b2f0f057SRichard Smith typedef llvm::Value *ValueTy; 1465b2f0f057SRichard Smith typedef RValue RValueTy; 1466b2f0f057SRichard Smith static RValue get(CodeGenFunction &, ValueTy V) { return RValue::get(V); } 1467b2f0f057SRichard Smith static RValue get(CodeGenFunction &, RValueTy V) { return V; } 1468b2f0f057SRichard Smith }; 1469b2f0f057SRichard Smith 1470b2f0f057SRichard Smith typedef CallDeleteDuringNew<DirectCleanupTraits> DirectCleanup; 1471b2f0f057SRichard Smith 1472b2f0f057SRichard Smith DirectCleanup *Cleanup = CGF.EHStack 1473b2f0f057SRichard Smith .pushCleanupWithExtra<DirectCleanup>(EHCleanup, 14747f9c92a9SJohn McCall E->getNumPlacementArgs(), 14757f9c92a9SJohn McCall E->getOperatorDelete(), 14767f416cc4SJohn McCall NewPtr.getPointer(), 1477b2f0f057SRichard Smith AllocSize, 1478b2f0f057SRichard Smith E->passAlignment(), 1479b2f0f057SRichard Smith AllocAlign); 1480b2f0f057SRichard Smith for (unsigned I = 0, N = E->getNumPlacementArgs(); I != N; ++I) { 1481b2f0f057SRichard Smith auto &Arg = NewArgs[I + NumNonPlacementArgs]; 14825b330e8dSYaxun Liu Cleanup->setPlacementArg(I, Arg.getRValue(CGF), Arg.Ty); 1483b2f0f057SRichard Smith } 14847f9c92a9SJohn McCall 14857f9c92a9SJohn McCall return; 14867f9c92a9SJohn McCall } 14877f9c92a9SJohn McCall 14887f9c92a9SJohn McCall // Otherwise, we need to save all this stuff. 1489cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type SavedNewPtr = 14907f416cc4SJohn McCall DominatingValue<RValue>::save(CGF, RValue::get(NewPtr.getPointer())); 1491cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type SavedAllocSize = 1492cb5f77f0SJohn McCall DominatingValue<RValue>::save(CGF, RValue::get(AllocSize)); 14937f9c92a9SJohn McCall 1494b2f0f057SRichard Smith struct ConditionalCleanupTraits { 1495b2f0f057SRichard Smith typedef DominatingValue<RValue>::saved_type ValueTy; 1496b2f0f057SRichard Smith typedef DominatingValue<RValue>::saved_type RValueTy; 1497b2f0f057SRichard Smith static RValue get(CodeGenFunction &CGF, ValueTy V) { 1498b2f0f057SRichard Smith return V.restore(CGF); 1499b2f0f057SRichard Smith } 1500b2f0f057SRichard Smith }; 1501b2f0f057SRichard Smith typedef CallDeleteDuringNew<ConditionalCleanupTraits> ConditionalCleanup; 1502b2f0f057SRichard Smith 1503b2f0f057SRichard Smith ConditionalCleanup *Cleanup = CGF.EHStack 1504b2f0f057SRichard Smith .pushCleanupWithExtra<ConditionalCleanup>(EHCleanup, 15057f9c92a9SJohn McCall E->getNumPlacementArgs(), 15067f9c92a9SJohn McCall E->getOperatorDelete(), 15077f9c92a9SJohn McCall SavedNewPtr, 1508b2f0f057SRichard Smith SavedAllocSize, 1509b2f0f057SRichard Smith E->passAlignment(), 1510b2f0f057SRichard Smith AllocAlign); 1511b2f0f057SRichard Smith for (unsigned I = 0, N = E->getNumPlacementArgs(); I != N; ++I) { 1512b2f0f057SRichard Smith auto &Arg = NewArgs[I + NumNonPlacementArgs]; 15135b330e8dSYaxun Liu Cleanup->setPlacementArg( 15145b330e8dSYaxun Liu I, DominatingValue<RValue>::save(CGF, Arg.getRValue(CGF)), Arg.Ty); 1515b2f0f057SRichard Smith } 15167f9c92a9SJohn McCall 1517f4beacd0SJohn McCall CGF.initFullExprCleanup(); 1518824c2f53SJohn McCall } 1519824c2f53SJohn McCall 152059486a2dSAnders Carlsson llvm::Value *CodeGenFunction::EmitCXXNewExpr(const CXXNewExpr *E) { 152175f9498aSJohn McCall // The element type being allocated. 152275f9498aSJohn McCall QualType allocType = getContext().getBaseElementType(E->getAllocatedType()); 15238ed55a54SJohn McCall 152475f9498aSJohn McCall // 1. Build a call to the allocation function. 152575f9498aSJohn McCall FunctionDecl *allocator = E->getOperatorNew(); 152659486a2dSAnders Carlsson 1527f862eb6aSSebastian Redl // If there is a brace-initializer, cannot allocate fewer elements than inits. 1528f862eb6aSSebastian Redl unsigned minElements = 0; 1529f862eb6aSSebastian Redl if (E->isArray() && E->hasInitializer()) { 15300511d23aSRichard Smith const InitListExpr *ILE = dyn_cast<InitListExpr>(E->getInitializer()); 15310511d23aSRichard Smith if (ILE && ILE->isStringLiteralInit()) 15320511d23aSRichard Smith minElements = 15330511d23aSRichard Smith cast<ConstantArrayType>(ILE->getType()->getAsArrayTypeUnsafe()) 15340511d23aSRichard Smith ->getSize().getZExtValue(); 15350511d23aSRichard Smith else if (ILE) 1536f862eb6aSSebastian Redl minElements = ILE->getNumInits(); 1537f862eb6aSSebastian Redl } 1538f862eb6aSSebastian Redl 15398a13c418SCraig Topper llvm::Value *numElements = nullptr; 15408a13c418SCraig Topper llvm::Value *allocSizeWithoutCookie = nullptr; 154175f9498aSJohn McCall llvm::Value *allocSize = 1542f862eb6aSSebastian Redl EmitCXXNewAllocSize(*this, E, minElements, numElements, 1543f862eb6aSSebastian Redl allocSizeWithoutCookie); 1544b2f0f057SRichard Smith CharUnits allocAlign = getContext().getTypeAlignInChars(allocType); 154559486a2dSAnders Carlsson 15467f416cc4SJohn McCall // Emit the allocation call. If the allocator is a global placement 15477f416cc4SJohn McCall // operator, just "inline" it directly. 15487f416cc4SJohn McCall Address allocation = Address::invalid(); 15497f416cc4SJohn McCall CallArgList allocatorArgs; 15507f416cc4SJohn McCall if (allocator->isReservedGlobalPlacementOperator()) { 155153dcf94dSJohn McCall assert(E->getNumPlacementArgs() == 1); 155253dcf94dSJohn McCall const Expr *arg = *E->placement_arguments().begin(); 155353dcf94dSJohn McCall 15548f248234SKrzysztof Parzyszek LValueBaseInfo BaseInfo; 15558f248234SKrzysztof Parzyszek allocation = EmitPointerWithAlignment(arg, &BaseInfo); 15567f416cc4SJohn McCall 15577f416cc4SJohn McCall // The pointer expression will, in many cases, be an opaque void*. 15587f416cc4SJohn McCall // In these cases, discard the computed alignment and use the 15597f416cc4SJohn McCall // formal alignment of the allocated type. 15608f248234SKrzysztof Parzyszek if (BaseInfo.getAlignmentSource() != AlignmentSource::Decl) 1561b2f0f057SRichard Smith allocation = Address(allocation.getPointer(), allocAlign); 15627f416cc4SJohn McCall 156353dcf94dSJohn McCall // Set up allocatorArgs for the call to operator delete if it's not 156453dcf94dSJohn McCall // the reserved global operator. 156553dcf94dSJohn McCall if (E->getOperatorDelete() && 156653dcf94dSJohn McCall !E->getOperatorDelete()->isReservedGlobalPlacementOperator()) { 156753dcf94dSJohn McCall allocatorArgs.add(RValue::get(allocSize), getContext().getSizeType()); 156853dcf94dSJohn McCall allocatorArgs.add(RValue::get(allocation.getPointer()), arg->getType()); 156953dcf94dSJohn McCall } 157053dcf94dSJohn McCall 15717f416cc4SJohn McCall } else { 15727f416cc4SJohn McCall const FunctionProtoType *allocatorType = 15737f416cc4SJohn McCall allocator->getType()->castAs<FunctionProtoType>(); 1574b2f0f057SRichard Smith unsigned ParamsToSkip = 0; 15757f416cc4SJohn McCall 15767f416cc4SJohn McCall // The allocation size is the first argument. 15777f416cc4SJohn McCall QualType sizeType = getContext().getSizeType(); 157843dca6a8SEli Friedman allocatorArgs.add(RValue::get(allocSize), sizeType); 1579b2f0f057SRichard Smith ++ParamsToSkip; 158059486a2dSAnders Carlsson 1581b2f0f057SRichard Smith if (allocSize != allocSizeWithoutCookie) { 1582b2f0f057SRichard Smith CharUnits cookieAlign = getSizeAlign(); // FIXME: Ask the ABI. 1583b2f0f057SRichard Smith allocAlign = std::max(allocAlign, cookieAlign); 1584b2f0f057SRichard Smith } 1585b2f0f057SRichard Smith 1586b2f0f057SRichard Smith // The allocation alignment may be passed as the second argument. 1587b2f0f057SRichard Smith if (E->passAlignment()) { 1588b2f0f057SRichard Smith QualType AlignValT = sizeType; 1589b2f0f057SRichard Smith if (allocatorType->getNumParams() > 1) { 1590b2f0f057SRichard Smith AlignValT = allocatorType->getParamType(1); 1591b2f0f057SRichard Smith assert(getContext().hasSameUnqualifiedType( 1592b2f0f057SRichard Smith AlignValT->castAs<EnumType>()->getDecl()->getIntegerType(), 1593b2f0f057SRichard Smith sizeType) && 1594b2f0f057SRichard Smith "wrong type for alignment parameter"); 1595b2f0f057SRichard Smith ++ParamsToSkip; 1596b2f0f057SRichard Smith } else { 1597b2f0f057SRichard Smith // Corner case, passing alignment to 'operator new(size_t, ...)'. 1598b2f0f057SRichard Smith assert(allocator->isVariadic() && "can't pass alignment to allocator"); 1599b2f0f057SRichard Smith } 1600b2f0f057SRichard Smith allocatorArgs.add( 1601b2f0f057SRichard Smith RValue::get(llvm::ConstantInt::get(SizeTy, allocAlign.getQuantity())), 1602b2f0f057SRichard Smith AlignValT); 1603b2f0f057SRichard Smith } 1604b2f0f057SRichard Smith 1605b2f0f057SRichard Smith // FIXME: Why do we not pass a CalleeDecl here? 1606f05779e2SDavid Blaikie EmitCallArgs(allocatorArgs, allocatorType, E->placement_arguments(), 1607ed00ea08SVedant Kumar /*AC*/AbstractCallee(), /*ParamsToSkip*/ParamsToSkip); 160859486a2dSAnders Carlsson 16097f416cc4SJohn McCall RValue RV = 16107f416cc4SJohn McCall EmitNewDeleteCall(*this, allocator, allocatorType, allocatorArgs); 16117f416cc4SJohn McCall 1612b2f0f057SRichard Smith // If this was a call to a global replaceable allocation function that does 1613b2f0f057SRichard Smith // not take an alignment argument, the allocator is known to produce 1614b2f0f057SRichard Smith // storage that's suitably aligned for any object that fits, up to a known 1615b2f0f057SRichard Smith // threshold. Otherwise assume it's suitably aligned for the allocated type. 1616b2f0f057SRichard Smith CharUnits allocationAlign = allocAlign; 1617b2f0f057SRichard Smith if (!E->passAlignment() && 1618b2f0f057SRichard Smith allocator->isReplaceableGlobalAllocationFunction()) { 1619b2f0f057SRichard Smith unsigned AllocatorAlign = llvm::PowerOf2Floor(std::min<uint64_t>( 1620b2f0f057SRichard Smith Target.getNewAlign(), getContext().getTypeSize(allocType))); 1621b2f0f057SRichard Smith allocationAlign = std::max( 1622b2f0f057SRichard Smith allocationAlign, getContext().toCharUnitsFromBits(AllocatorAlign)); 16237f416cc4SJohn McCall } 16247f416cc4SJohn McCall 16257f416cc4SJohn McCall allocation = Address(RV.getScalarVal(), allocationAlign); 16267ec4b434SJohn McCall } 162759486a2dSAnders Carlsson 162875f9498aSJohn McCall // Emit a null check on the allocation result if the allocation 162975f9498aSJohn McCall // function is allowed to return null (because it has a non-throwing 1630902a0238SRichard Smith // exception spec or is the reserved placement new) and we have an 16312f72a752SRichard Smith // interesting initializer will be running sanitizers on the initialization. 16329b6dfac5SBruno Ricci bool nullCheck = E->shouldNullCheckAllocation() && 16332f72a752SRichard Smith (!allocType.isPODType(getContext()) || E->hasInitializer() || 16342f72a752SRichard Smith sanitizePerformTypeCheck()); 163559486a2dSAnders Carlsson 16368a13c418SCraig Topper llvm::BasicBlock *nullCheckBB = nullptr; 16378a13c418SCraig Topper llvm::BasicBlock *contBB = nullptr; 163859486a2dSAnders Carlsson 1639f7dcf320SJohn McCall // The null-check means that the initializer is conditionally 1640f7dcf320SJohn McCall // evaluated. 1641f7dcf320SJohn McCall ConditionalEvaluation conditional(*this); 1642f7dcf320SJohn McCall 164375f9498aSJohn McCall if (nullCheck) { 1644f7dcf320SJohn McCall conditional.begin(*this); 164575f9498aSJohn McCall 164675f9498aSJohn McCall nullCheckBB = Builder.GetInsertBlock(); 164775f9498aSJohn McCall llvm::BasicBlock *notNullBB = createBasicBlock("new.notnull"); 164875f9498aSJohn McCall contBB = createBasicBlock("new.cont"); 164975f9498aSJohn McCall 16507f416cc4SJohn McCall llvm::Value *isNull = 16517f416cc4SJohn McCall Builder.CreateIsNull(allocation.getPointer(), "new.isnull"); 165275f9498aSJohn McCall Builder.CreateCondBr(isNull, contBB, notNullBB); 165375f9498aSJohn McCall EmitBlock(notNullBB); 165459486a2dSAnders Carlsson } 165559486a2dSAnders Carlsson 1656824c2f53SJohn McCall // If there's an operator delete, enter a cleanup to call it if an 1657824c2f53SJohn McCall // exception is thrown. 165875f9498aSJohn McCall EHScopeStack::stable_iterator operatorDeleteCleanup; 16598a13c418SCraig Topper llvm::Instruction *cleanupDominator = nullptr; 16607ec4b434SJohn McCall if (E->getOperatorDelete() && 16617ec4b434SJohn McCall !E->getOperatorDelete()->isReservedGlobalPlacementOperator()) { 1662b2f0f057SRichard Smith EnterNewDeleteCleanup(*this, E, allocation, allocSize, allocAlign, 1663b2f0f057SRichard Smith allocatorArgs); 166475f9498aSJohn McCall operatorDeleteCleanup = EHStack.stable_begin(); 1665f4beacd0SJohn McCall cleanupDominator = Builder.CreateUnreachable(); 1666824c2f53SJohn McCall } 1667824c2f53SJohn McCall 1668cf9b1f65SEli Friedman assert((allocSize == allocSizeWithoutCookie) == 1669cf9b1f65SEli Friedman CalculateCookiePadding(*this, E).isZero()); 1670cf9b1f65SEli Friedman if (allocSize != allocSizeWithoutCookie) { 1671cf9b1f65SEli Friedman assert(E->isArray()); 1672cf9b1f65SEli Friedman allocation = CGM.getCXXABI().InitializeArrayCookie(*this, allocation, 1673cf9b1f65SEli Friedman numElements, 1674cf9b1f65SEli Friedman E, allocType); 1675cf9b1f65SEli Friedman } 1676cf9b1f65SEli Friedman 1677fb901c7aSDavid Blaikie llvm::Type *elementTy = ConvertTypeForMem(allocType); 16787f416cc4SJohn McCall Address result = Builder.CreateElementBitCast(allocation, elementTy); 1679824c2f53SJohn McCall 16805dde8094SPiotr Padlewski // Passing pointer through launder.invariant.group to avoid propagation of 1681338c9d0aSPiotr Padlewski // vptrs information which may be included in previous type. 168231fd99cfSPiotr Padlewski // To not break LTO with different optimizations levels, we do it regardless 168331fd99cfSPiotr Padlewski // of optimization level. 1684338c9d0aSPiotr Padlewski if (CGM.getCodeGenOpts().StrictVTablePointers && 1685338c9d0aSPiotr Padlewski allocator->isReservedGlobalPlacementOperator()) 16865dde8094SPiotr Padlewski result = Address(Builder.CreateLaunderInvariantGroup(result.getPointer()), 1687338c9d0aSPiotr Padlewski result.getAlignment()); 1688338c9d0aSPiotr Padlewski 168937605182SSerge Pavlov // Emit sanitizer checks for pointer value now, so that in the case of an 1690cfa79b27SRichard Smith // array it was checked only once and not at each constructor call. We may 1691cfa79b27SRichard Smith // have already checked that the pointer is non-null. 1692cfa79b27SRichard Smith // FIXME: If we have an array cookie and a potentially-throwing allocator, 1693cfa79b27SRichard Smith // we'll null check the wrong pointer here. 1694cfa79b27SRichard Smith SanitizerSet SkippedChecks; 1695cfa79b27SRichard Smith SkippedChecks.set(SanitizerKind::Null, nullCheck); 169637605182SSerge Pavlov EmitTypeCheck(CodeGenFunction::TCK_ConstructorCall, 169737605182SSerge Pavlov E->getAllocatedTypeSourceInfo()->getTypeLoc().getBeginLoc(), 1698cfa79b27SRichard Smith result.getPointer(), allocType, result.getAlignment(), 1699cfa79b27SRichard Smith SkippedChecks, numElements); 170037605182SSerge Pavlov 1701fb901c7aSDavid Blaikie EmitNewInitializer(*this, E, allocType, elementTy, result, numElements, 170299210dc9SJohn McCall allocSizeWithoutCookie); 17038ed55a54SJohn McCall if (E->isArray()) { 17048ed55a54SJohn McCall // NewPtr is a pointer to the base element type. If we're 17058ed55a54SJohn McCall // allocating an array of arrays, we'll need to cast back to the 17068ed55a54SJohn McCall // array pointer type. 17072192fe50SChris Lattner llvm::Type *resultType = ConvertTypeForMem(E->getType()); 17087f416cc4SJohn McCall if (result.getType() != resultType) 170975f9498aSJohn McCall result = Builder.CreateBitCast(result, resultType); 171047b4629bSFariborz Jahanian } 171159486a2dSAnders Carlsson 1712824c2f53SJohn McCall // Deactivate the 'operator delete' cleanup if we finished 1713824c2f53SJohn McCall // initialization. 1714f4beacd0SJohn McCall if (operatorDeleteCleanup.isValid()) { 1715f4beacd0SJohn McCall DeactivateCleanupBlock(operatorDeleteCleanup, cleanupDominator); 1716f4beacd0SJohn McCall cleanupDominator->eraseFromParent(); 1717f4beacd0SJohn McCall } 1718824c2f53SJohn McCall 17197f416cc4SJohn McCall llvm::Value *resultPtr = result.getPointer(); 172075f9498aSJohn McCall if (nullCheck) { 1721f7dcf320SJohn McCall conditional.end(*this); 1722f7dcf320SJohn McCall 172375f9498aSJohn McCall llvm::BasicBlock *notNullBB = Builder.GetInsertBlock(); 172475f9498aSJohn McCall EmitBlock(contBB); 172559486a2dSAnders Carlsson 17267f416cc4SJohn McCall llvm::PHINode *PHI = Builder.CreatePHI(resultPtr->getType(), 2); 17277f416cc4SJohn McCall PHI->addIncoming(resultPtr, notNullBB); 17287f416cc4SJohn McCall PHI->addIncoming(llvm::Constant::getNullValue(resultPtr->getType()), 172975f9498aSJohn McCall nullCheckBB); 173059486a2dSAnders Carlsson 17317f416cc4SJohn McCall resultPtr = PHI; 173259486a2dSAnders Carlsson } 173359486a2dSAnders Carlsson 17347f416cc4SJohn McCall return resultPtr; 173559486a2dSAnders Carlsson } 173659486a2dSAnders Carlsson 173759486a2dSAnders Carlsson void CodeGenFunction::EmitDeleteCall(const FunctionDecl *DeleteFD, 1738b2f0f057SRichard Smith llvm::Value *Ptr, QualType DeleteTy, 1739b2f0f057SRichard Smith llvm::Value *NumElements, 1740b2f0f057SRichard Smith CharUnits CookieSize) { 1741b2f0f057SRichard Smith assert((!NumElements && CookieSize.isZero()) || 1742b2f0f057SRichard Smith DeleteFD->getOverloadedOperator() == OO_Array_Delete); 17438ed55a54SJohn McCall 174459486a2dSAnders Carlsson const FunctionProtoType *DeleteFTy = 174559486a2dSAnders Carlsson DeleteFD->getType()->getAs<FunctionProtoType>(); 174659486a2dSAnders Carlsson 174759486a2dSAnders Carlsson CallArgList DeleteArgs; 174859486a2dSAnders Carlsson 17495b34958bSRichard Smith auto Params = getUsualDeleteParams(DeleteFD); 1750b2f0f057SRichard Smith auto ParamTypeIt = DeleteFTy->param_type_begin(); 1751b2f0f057SRichard Smith 1752b2f0f057SRichard Smith // Pass the pointer itself. 1753b2f0f057SRichard Smith QualType ArgTy = *ParamTypeIt++; 175459486a2dSAnders Carlsson llvm::Value *DeletePtr = Builder.CreateBitCast(Ptr, ConvertType(ArgTy)); 175543dca6a8SEli Friedman DeleteArgs.add(RValue::get(DeletePtr), ArgTy); 175659486a2dSAnders Carlsson 17575b34958bSRichard Smith // Pass the std::destroying_delete tag if present. 17585b34958bSRichard Smith if (Params.DestroyingDelete) { 17595b34958bSRichard Smith QualType DDTag = *ParamTypeIt++; 17605b34958bSRichard Smith // Just pass an 'undef'. We expect the tag type to be an empty struct. 17615b34958bSRichard Smith auto *V = llvm::UndefValue::get(getTypes().ConvertType(DDTag)); 17625b34958bSRichard Smith DeleteArgs.add(RValue::get(V), DDTag); 17635b34958bSRichard Smith } 17645b34958bSRichard Smith 1765b2f0f057SRichard Smith // Pass the size if the delete function has a size_t parameter. 17665b34958bSRichard Smith if (Params.Size) { 1767b2f0f057SRichard Smith QualType SizeType = *ParamTypeIt++; 1768b2f0f057SRichard Smith CharUnits DeleteTypeSize = getContext().getTypeSizeInChars(DeleteTy); 1769b2f0f057SRichard Smith llvm::Value *Size = llvm::ConstantInt::get(ConvertType(SizeType), 1770b2f0f057SRichard Smith DeleteTypeSize.getQuantity()); 1771b2f0f057SRichard Smith 1772b2f0f057SRichard Smith // For array new, multiply by the number of elements. 1773b2f0f057SRichard Smith if (NumElements) 1774b2f0f057SRichard Smith Size = Builder.CreateMul(Size, NumElements); 1775b2f0f057SRichard Smith 1776b2f0f057SRichard Smith // If there is a cookie, add the cookie size. 1777b2f0f057SRichard Smith if (!CookieSize.isZero()) 1778b2f0f057SRichard Smith Size = Builder.CreateAdd( 1779b2f0f057SRichard Smith Size, llvm::ConstantInt::get(SizeTy, CookieSize.getQuantity())); 1780b2f0f057SRichard Smith 1781b2f0f057SRichard Smith DeleteArgs.add(RValue::get(Size), SizeType); 1782b2f0f057SRichard Smith } 1783b2f0f057SRichard Smith 1784b2f0f057SRichard Smith // Pass the alignment if the delete function has an align_val_t parameter. 17855b34958bSRichard Smith if (Params.Alignment) { 1786b2f0f057SRichard Smith QualType AlignValType = *ParamTypeIt++; 1787b2f0f057SRichard Smith CharUnits DeleteTypeAlign = getContext().toCharUnitsFromBits( 1788b2f0f057SRichard Smith getContext().getTypeAlignIfKnown(DeleteTy)); 1789b2f0f057SRichard Smith llvm::Value *Align = llvm::ConstantInt::get(ConvertType(AlignValType), 1790b2f0f057SRichard Smith DeleteTypeAlign.getQuantity()); 1791b2f0f057SRichard Smith DeleteArgs.add(RValue::get(Align), AlignValType); 1792b2f0f057SRichard Smith } 1793b2f0f057SRichard Smith 1794b2f0f057SRichard Smith assert(ParamTypeIt == DeleteFTy->param_type_end() && 1795b2f0f057SRichard Smith "unknown parameter to usual delete function"); 179659486a2dSAnders Carlsson 179759486a2dSAnders Carlsson // Emit the call to delete. 17988d0dc31dSRichard Smith EmitNewDeleteCall(*this, DeleteFD, DeleteFTy, DeleteArgs); 179959486a2dSAnders Carlsson } 180059486a2dSAnders Carlsson 18018ed55a54SJohn McCall namespace { 18028ed55a54SJohn McCall /// Calls the given 'operator delete' on a single object. 18037e70d680SDavid Blaikie struct CallObjectDelete final : EHScopeStack::Cleanup { 18048ed55a54SJohn McCall llvm::Value *Ptr; 18058ed55a54SJohn McCall const FunctionDecl *OperatorDelete; 18068ed55a54SJohn McCall QualType ElementType; 18078ed55a54SJohn McCall 18088ed55a54SJohn McCall CallObjectDelete(llvm::Value *Ptr, 18098ed55a54SJohn McCall const FunctionDecl *OperatorDelete, 18108ed55a54SJohn McCall QualType ElementType) 18118ed55a54SJohn McCall : Ptr(Ptr), OperatorDelete(OperatorDelete), ElementType(ElementType) {} 18128ed55a54SJohn McCall 18134f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 18148ed55a54SJohn McCall CGF.EmitDeleteCall(OperatorDelete, Ptr, ElementType); 18158ed55a54SJohn McCall } 18168ed55a54SJohn McCall }; 1817ab9db510SAlexander Kornienko } 18188ed55a54SJohn McCall 18190c0b6d9aSDavid Majnemer void 18200c0b6d9aSDavid Majnemer CodeGenFunction::pushCallObjectDeleteCleanup(const FunctionDecl *OperatorDelete, 18210c0b6d9aSDavid Majnemer llvm::Value *CompletePtr, 18220c0b6d9aSDavid Majnemer QualType ElementType) { 18230c0b6d9aSDavid Majnemer EHStack.pushCleanup<CallObjectDelete>(NormalAndEHCleanup, CompletePtr, 18240c0b6d9aSDavid Majnemer OperatorDelete, ElementType); 18250c0b6d9aSDavid Majnemer } 18260c0b6d9aSDavid Majnemer 18275b34958bSRichard Smith /// Emit the code for deleting a single object with a destroying operator 18285b34958bSRichard Smith /// delete. If the element type has a non-virtual destructor, Ptr has already 18295b34958bSRichard Smith /// been converted to the type of the parameter of 'operator delete'. Otherwise 18305b34958bSRichard Smith /// Ptr points to an object of the static type. 18315b34958bSRichard Smith static void EmitDestroyingObjectDelete(CodeGenFunction &CGF, 18325b34958bSRichard Smith const CXXDeleteExpr *DE, Address Ptr, 18335b34958bSRichard Smith QualType ElementType) { 18345b34958bSRichard Smith auto *Dtor = ElementType->getAsCXXRecordDecl()->getDestructor(); 18355b34958bSRichard Smith if (Dtor && Dtor->isVirtual()) 18365b34958bSRichard Smith CGF.CGM.getCXXABI().emitVirtualObjectDelete(CGF, DE, Ptr, ElementType, 18375b34958bSRichard Smith Dtor); 18385b34958bSRichard Smith else 18395b34958bSRichard Smith CGF.EmitDeleteCall(DE->getOperatorDelete(), Ptr.getPointer(), ElementType); 18405b34958bSRichard Smith } 18415b34958bSRichard Smith 18428ed55a54SJohn McCall /// Emit the code for deleting a single object. 18438ed55a54SJohn McCall static void EmitObjectDelete(CodeGenFunction &CGF, 18440868137aSDavid Majnemer const CXXDeleteExpr *DE, 18457f416cc4SJohn McCall Address Ptr, 18460868137aSDavid Majnemer QualType ElementType) { 1847d98f5d78SIvan Krasin // C++11 [expr.delete]p3: 1848d98f5d78SIvan Krasin // If the static type of the object to be deleted is different from its 1849d98f5d78SIvan Krasin // dynamic type, the static type shall be a base class of the dynamic type 1850d98f5d78SIvan Krasin // of the object to be deleted and the static type shall have a virtual 1851d98f5d78SIvan Krasin // destructor or the behavior is undefined. 1852d98f5d78SIvan Krasin CGF.EmitTypeCheck(CodeGenFunction::TCK_MemberCall, 1853d98f5d78SIvan Krasin DE->getExprLoc(), Ptr.getPointer(), 1854d98f5d78SIvan Krasin ElementType); 1855d98f5d78SIvan Krasin 18565b34958bSRichard Smith const FunctionDecl *OperatorDelete = DE->getOperatorDelete(); 18575b34958bSRichard Smith assert(!OperatorDelete->isDestroyingOperatorDelete()); 18585b34958bSRichard Smith 18598ed55a54SJohn McCall // Find the destructor for the type, if applicable. If the 18608ed55a54SJohn McCall // destructor is virtual, we'll just emit the vcall and return. 18618a13c418SCraig Topper const CXXDestructorDecl *Dtor = nullptr; 18628ed55a54SJohn McCall if (const RecordType *RT = ElementType->getAs<RecordType>()) { 18638ed55a54SJohn McCall CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 1864b23533dbSEli Friedman if (RD->hasDefinition() && !RD->hasTrivialDestructor()) { 18658ed55a54SJohn McCall Dtor = RD->getDestructor(); 18668ed55a54SJohn McCall 18678ed55a54SJohn McCall if (Dtor->isVirtual()) { 18680868137aSDavid Majnemer CGF.CGM.getCXXABI().emitVirtualObjectDelete(CGF, DE, Ptr, ElementType, 18690868137aSDavid Majnemer Dtor); 18708ed55a54SJohn McCall return; 18718ed55a54SJohn McCall } 18728ed55a54SJohn McCall } 18738ed55a54SJohn McCall } 18748ed55a54SJohn McCall 18758ed55a54SJohn McCall // Make sure that we call delete even if the dtor throws. 1876e4df6c8dSJohn McCall // This doesn't have to a conditional cleanup because we're going 1877e4df6c8dSJohn McCall // to pop it off in a second. 18788ed55a54SJohn McCall CGF.EHStack.pushCleanup<CallObjectDelete>(NormalAndEHCleanup, 18797f416cc4SJohn McCall Ptr.getPointer(), 18807f416cc4SJohn McCall OperatorDelete, ElementType); 18818ed55a54SJohn McCall 18828ed55a54SJohn McCall if (Dtor) 18838ed55a54SJohn McCall CGF.EmitCXXDestructorCall(Dtor, Dtor_Complete, 188461535005SDouglas Gregor /*ForVirtualBase=*/false, 188561535005SDouglas Gregor /*Delegating=*/false, 188661535005SDouglas Gregor Ptr); 1887460ce58fSJohn McCall else if (auto Lifetime = ElementType.getObjCLifetime()) { 1888460ce58fSJohn McCall switch (Lifetime) { 188931168b07SJohn McCall case Qualifiers::OCL_None: 189031168b07SJohn McCall case Qualifiers::OCL_ExplicitNone: 189131168b07SJohn McCall case Qualifiers::OCL_Autoreleasing: 189231168b07SJohn McCall break; 189331168b07SJohn McCall 18947f416cc4SJohn McCall case Qualifiers::OCL_Strong: 18957f416cc4SJohn McCall CGF.EmitARCDestroyStrong(Ptr, ARCPreciseLifetime); 189631168b07SJohn McCall break; 189731168b07SJohn McCall 189831168b07SJohn McCall case Qualifiers::OCL_Weak: 189931168b07SJohn McCall CGF.EmitARCDestroyWeak(Ptr); 190031168b07SJohn McCall break; 190131168b07SJohn McCall } 190231168b07SJohn McCall } 19038ed55a54SJohn McCall 19048ed55a54SJohn McCall CGF.PopCleanupBlock(); 19058ed55a54SJohn McCall } 19068ed55a54SJohn McCall 19078ed55a54SJohn McCall namespace { 19088ed55a54SJohn McCall /// Calls the given 'operator delete' on an array of objects. 19097e70d680SDavid Blaikie struct CallArrayDelete final : EHScopeStack::Cleanup { 19108ed55a54SJohn McCall llvm::Value *Ptr; 19118ed55a54SJohn McCall const FunctionDecl *OperatorDelete; 19128ed55a54SJohn McCall llvm::Value *NumElements; 19138ed55a54SJohn McCall QualType ElementType; 19148ed55a54SJohn McCall CharUnits CookieSize; 19158ed55a54SJohn McCall 19168ed55a54SJohn McCall CallArrayDelete(llvm::Value *Ptr, 19178ed55a54SJohn McCall const FunctionDecl *OperatorDelete, 19188ed55a54SJohn McCall llvm::Value *NumElements, 19198ed55a54SJohn McCall QualType ElementType, 19208ed55a54SJohn McCall CharUnits CookieSize) 19218ed55a54SJohn McCall : Ptr(Ptr), OperatorDelete(OperatorDelete), NumElements(NumElements), 19228ed55a54SJohn McCall ElementType(ElementType), CookieSize(CookieSize) {} 19238ed55a54SJohn McCall 19244f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 1925b2f0f057SRichard Smith CGF.EmitDeleteCall(OperatorDelete, Ptr, ElementType, NumElements, 1926b2f0f057SRichard Smith CookieSize); 19278ed55a54SJohn McCall } 19288ed55a54SJohn McCall }; 1929ab9db510SAlexander Kornienko } 19308ed55a54SJohn McCall 19318ed55a54SJohn McCall /// Emit the code for deleting an array of objects. 19328ed55a54SJohn McCall static void EmitArrayDelete(CodeGenFunction &CGF, 1933284c48ffSJohn McCall const CXXDeleteExpr *E, 19347f416cc4SJohn McCall Address deletedPtr, 1935ca2c56f2SJohn McCall QualType elementType) { 19368a13c418SCraig Topper llvm::Value *numElements = nullptr; 19378a13c418SCraig Topper llvm::Value *allocatedPtr = nullptr; 1938ca2c56f2SJohn McCall CharUnits cookieSize; 1939ca2c56f2SJohn McCall CGF.CGM.getCXXABI().ReadArrayCookie(CGF, deletedPtr, E, elementType, 1940ca2c56f2SJohn McCall numElements, allocatedPtr, cookieSize); 19418ed55a54SJohn McCall 1942ca2c56f2SJohn McCall assert(allocatedPtr && "ReadArrayCookie didn't set allocated pointer"); 19438ed55a54SJohn McCall 19448ed55a54SJohn McCall // Make sure that we call delete even if one of the dtors throws. 1945ca2c56f2SJohn McCall const FunctionDecl *operatorDelete = E->getOperatorDelete(); 19468ed55a54SJohn McCall CGF.EHStack.pushCleanup<CallArrayDelete>(NormalAndEHCleanup, 1947ca2c56f2SJohn McCall allocatedPtr, operatorDelete, 1948ca2c56f2SJohn McCall numElements, elementType, 1949ca2c56f2SJohn McCall cookieSize); 19508ed55a54SJohn McCall 1951ca2c56f2SJohn McCall // Destroy the elements. 1952ca2c56f2SJohn McCall if (QualType::DestructionKind dtorKind = elementType.isDestructedType()) { 1953ca2c56f2SJohn McCall assert(numElements && "no element count for a type with a destructor!"); 195431168b07SJohn McCall 19557f416cc4SJohn McCall CharUnits elementSize = CGF.getContext().getTypeSizeInChars(elementType); 19567f416cc4SJohn McCall CharUnits elementAlign = 19577f416cc4SJohn McCall deletedPtr.getAlignment().alignmentOfArrayElement(elementSize); 19587f416cc4SJohn McCall 19597f416cc4SJohn McCall llvm::Value *arrayBegin = deletedPtr.getPointer(); 1960ca2c56f2SJohn McCall llvm::Value *arrayEnd = 19617f416cc4SJohn McCall CGF.Builder.CreateInBoundsGEP(arrayBegin, numElements, "delete.end"); 196297eab0a2SJohn McCall 196397eab0a2SJohn McCall // Note that it is legal to allocate a zero-length array, and we 196497eab0a2SJohn McCall // can never fold the check away because the length should always 196597eab0a2SJohn McCall // come from a cookie. 19667f416cc4SJohn McCall CGF.emitArrayDestroy(arrayBegin, arrayEnd, elementType, elementAlign, 1967ca2c56f2SJohn McCall CGF.getDestroyer(dtorKind), 196897eab0a2SJohn McCall /*checkZeroLength*/ true, 1969ca2c56f2SJohn McCall CGF.needsEHCleanup(dtorKind)); 19708ed55a54SJohn McCall } 19718ed55a54SJohn McCall 1972ca2c56f2SJohn McCall // Pop the cleanup block. 19738ed55a54SJohn McCall CGF.PopCleanupBlock(); 19748ed55a54SJohn McCall } 19758ed55a54SJohn McCall 197659486a2dSAnders Carlsson void CodeGenFunction::EmitCXXDeleteExpr(const CXXDeleteExpr *E) { 197759486a2dSAnders Carlsson const Expr *Arg = E->getArgument(); 19787f416cc4SJohn McCall Address Ptr = EmitPointerWithAlignment(Arg); 197959486a2dSAnders Carlsson 198059486a2dSAnders Carlsson // Null check the pointer. 198159486a2dSAnders Carlsson llvm::BasicBlock *DeleteNotNull = createBasicBlock("delete.notnull"); 198259486a2dSAnders Carlsson llvm::BasicBlock *DeleteEnd = createBasicBlock("delete.end"); 198359486a2dSAnders Carlsson 19847f416cc4SJohn McCall llvm::Value *IsNull = Builder.CreateIsNull(Ptr.getPointer(), "isnull"); 198559486a2dSAnders Carlsson 198659486a2dSAnders Carlsson Builder.CreateCondBr(IsNull, DeleteEnd, DeleteNotNull); 198759486a2dSAnders Carlsson EmitBlock(DeleteNotNull); 198859486a2dSAnders Carlsson 19895b34958bSRichard Smith QualType DeleteTy = E->getDestroyedType(); 19905b34958bSRichard Smith 19915b34958bSRichard Smith // A destroying operator delete overrides the entire operation of the 19925b34958bSRichard Smith // delete expression. 19935b34958bSRichard Smith if (E->getOperatorDelete()->isDestroyingOperatorDelete()) { 19945b34958bSRichard Smith EmitDestroyingObjectDelete(*this, E, Ptr, DeleteTy); 19955b34958bSRichard Smith EmitBlock(DeleteEnd); 19965b34958bSRichard Smith return; 19975b34958bSRichard Smith } 19985b34958bSRichard Smith 19998ed55a54SJohn McCall // We might be deleting a pointer to array. If so, GEP down to the 20008ed55a54SJohn McCall // first non-array element. 20018ed55a54SJohn McCall // (this assumes that A(*)[3][7] is converted to [3 x [7 x %A]]*) 20028ed55a54SJohn McCall if (DeleteTy->isConstantArrayType()) { 20038ed55a54SJohn McCall llvm::Value *Zero = Builder.getInt32(0); 20040e62c1ccSChris Lattner SmallVector<llvm::Value*,8> GEP; 200559486a2dSAnders Carlsson 20068ed55a54SJohn McCall GEP.push_back(Zero); // point at the outermost array 20078ed55a54SJohn McCall 20088ed55a54SJohn McCall // For each layer of array type we're pointing at: 20098ed55a54SJohn McCall while (const ConstantArrayType *Arr 20108ed55a54SJohn McCall = getContext().getAsConstantArrayType(DeleteTy)) { 20118ed55a54SJohn McCall // 1. Unpeel the array type. 20128ed55a54SJohn McCall DeleteTy = Arr->getElementType(); 20138ed55a54SJohn McCall 20148ed55a54SJohn McCall // 2. GEP to the first element of the array. 20158ed55a54SJohn McCall GEP.push_back(Zero); 20168ed55a54SJohn McCall } 20178ed55a54SJohn McCall 20187f416cc4SJohn McCall Ptr = Address(Builder.CreateInBoundsGEP(Ptr.getPointer(), GEP, "del.first"), 20197f416cc4SJohn McCall Ptr.getAlignment()); 20208ed55a54SJohn McCall } 20218ed55a54SJohn McCall 20227f416cc4SJohn McCall assert(ConvertTypeForMem(DeleteTy) == Ptr.getElementType()); 20238ed55a54SJohn McCall 20247270ef57SReid Kleckner if (E->isArrayForm()) { 20257270ef57SReid Kleckner EmitArrayDelete(*this, E, Ptr, DeleteTy); 20267270ef57SReid Kleckner } else { 20277270ef57SReid Kleckner EmitObjectDelete(*this, E, Ptr, DeleteTy); 20287270ef57SReid Kleckner } 202959486a2dSAnders Carlsson 203059486a2dSAnders Carlsson EmitBlock(DeleteEnd); 203159486a2dSAnders Carlsson } 203259486a2dSAnders Carlsson 20331c3d95ebSDavid Majnemer static bool isGLValueFromPointerDeref(const Expr *E) { 20341c3d95ebSDavid Majnemer E = E->IgnoreParens(); 20351c3d95ebSDavid Majnemer 20361c3d95ebSDavid Majnemer if (const auto *CE = dyn_cast<CastExpr>(E)) { 20371c3d95ebSDavid Majnemer if (!CE->getSubExpr()->isGLValue()) 20381c3d95ebSDavid Majnemer return false; 20391c3d95ebSDavid Majnemer return isGLValueFromPointerDeref(CE->getSubExpr()); 20401c3d95ebSDavid Majnemer } 20411c3d95ebSDavid Majnemer 20421c3d95ebSDavid Majnemer if (const auto *OVE = dyn_cast<OpaqueValueExpr>(E)) 20431c3d95ebSDavid Majnemer return isGLValueFromPointerDeref(OVE->getSourceExpr()); 20441c3d95ebSDavid Majnemer 20451c3d95ebSDavid Majnemer if (const auto *BO = dyn_cast<BinaryOperator>(E)) 20461c3d95ebSDavid Majnemer if (BO->getOpcode() == BO_Comma) 20471c3d95ebSDavid Majnemer return isGLValueFromPointerDeref(BO->getRHS()); 20481c3d95ebSDavid Majnemer 20491c3d95ebSDavid Majnemer if (const auto *ACO = dyn_cast<AbstractConditionalOperator>(E)) 20501c3d95ebSDavid Majnemer return isGLValueFromPointerDeref(ACO->getTrueExpr()) || 20511c3d95ebSDavid Majnemer isGLValueFromPointerDeref(ACO->getFalseExpr()); 20521c3d95ebSDavid Majnemer 20531c3d95ebSDavid Majnemer // C++11 [expr.sub]p1: 20541c3d95ebSDavid Majnemer // The expression E1[E2] is identical (by definition) to *((E1)+(E2)) 20551c3d95ebSDavid Majnemer if (isa<ArraySubscriptExpr>(E)) 20561c3d95ebSDavid Majnemer return true; 20571c3d95ebSDavid Majnemer 20581c3d95ebSDavid Majnemer if (const auto *UO = dyn_cast<UnaryOperator>(E)) 20591c3d95ebSDavid Majnemer if (UO->getOpcode() == UO_Deref) 20601c3d95ebSDavid Majnemer return true; 20611c3d95ebSDavid Majnemer 20621c3d95ebSDavid Majnemer return false; 20631c3d95ebSDavid Majnemer } 20641c3d95ebSDavid Majnemer 2065747e301eSWarren Hunt static llvm::Value *EmitTypeidFromVTable(CodeGenFunction &CGF, const Expr *E, 20662192fe50SChris Lattner llvm::Type *StdTypeInfoPtrTy) { 2067940f02d2SAnders Carlsson // Get the vtable pointer. 20687f416cc4SJohn McCall Address ThisPtr = CGF.EmitLValue(E).getAddress(); 2069940f02d2SAnders Carlsson 2070d71ad177SStephan Bergmann QualType SrcRecordTy = E->getType(); 2071d71ad177SStephan Bergmann 2072d71ad177SStephan Bergmann // C++ [class.cdtor]p4: 2073d71ad177SStephan Bergmann // If the operand of typeid refers to the object under construction or 2074d71ad177SStephan Bergmann // destruction and the static type of the operand is neither the constructor 2075d71ad177SStephan Bergmann // or destructor’s class nor one of its bases, the behavior is undefined. 2076d71ad177SStephan Bergmann CGF.EmitTypeCheck(CodeGenFunction::TCK_DynamicOperation, E->getExprLoc(), 2077d71ad177SStephan Bergmann ThisPtr.getPointer(), SrcRecordTy); 2078d71ad177SStephan Bergmann 2079940f02d2SAnders Carlsson // C++ [expr.typeid]p2: 2080940f02d2SAnders Carlsson // If the glvalue expression is obtained by applying the unary * operator to 2081940f02d2SAnders Carlsson // a pointer and the pointer is a null pointer value, the typeid expression 2082940f02d2SAnders Carlsson // throws the std::bad_typeid exception. 20831c3d95ebSDavid Majnemer // 20841c3d95ebSDavid Majnemer // However, this paragraph's intent is not clear. We choose a very generous 20851c3d95ebSDavid Majnemer // interpretation which implores us to consider comma operators, conditional 20861c3d95ebSDavid Majnemer // operators, parentheses and other such constructs. 20871c3d95ebSDavid Majnemer if (CGF.CGM.getCXXABI().shouldTypeidBeNullChecked( 20881c3d95ebSDavid Majnemer isGLValueFromPointerDeref(E), SrcRecordTy)) { 2089940f02d2SAnders Carlsson llvm::BasicBlock *BadTypeidBlock = 2090940f02d2SAnders Carlsson CGF.createBasicBlock("typeid.bad_typeid"); 20911162d25cSDavid Majnemer llvm::BasicBlock *EndBlock = CGF.createBasicBlock("typeid.end"); 2092940f02d2SAnders Carlsson 20937f416cc4SJohn McCall llvm::Value *IsNull = CGF.Builder.CreateIsNull(ThisPtr.getPointer()); 2094940f02d2SAnders Carlsson CGF.Builder.CreateCondBr(IsNull, BadTypeidBlock, EndBlock); 2095940f02d2SAnders Carlsson 2096940f02d2SAnders Carlsson CGF.EmitBlock(BadTypeidBlock); 20971162d25cSDavid Majnemer CGF.CGM.getCXXABI().EmitBadTypeidCall(CGF); 2098940f02d2SAnders Carlsson CGF.EmitBlock(EndBlock); 2099940f02d2SAnders Carlsson } 2100940f02d2SAnders Carlsson 21011162d25cSDavid Majnemer return CGF.CGM.getCXXABI().EmitTypeid(CGF, SrcRecordTy, ThisPtr, 21021162d25cSDavid Majnemer StdTypeInfoPtrTy); 2103940f02d2SAnders Carlsson } 2104940f02d2SAnders Carlsson 210559486a2dSAnders Carlsson llvm::Value *CodeGenFunction::EmitCXXTypeidExpr(const CXXTypeidExpr *E) { 21062192fe50SChris Lattner llvm::Type *StdTypeInfoPtrTy = 2107940f02d2SAnders Carlsson ConvertType(E->getType())->getPointerTo(); 2108fd7dfeb7SAnders Carlsson 21093f4336cbSAnders Carlsson if (E->isTypeOperand()) { 21103f4336cbSAnders Carlsson llvm::Constant *TypeInfo = 2111143c55eaSDavid Majnemer CGM.GetAddrOfRTTIDescriptor(E->getTypeOperand(getContext())); 2112940f02d2SAnders Carlsson return Builder.CreateBitCast(TypeInfo, StdTypeInfoPtrTy); 21133f4336cbSAnders Carlsson } 2114fd7dfeb7SAnders Carlsson 2115940f02d2SAnders Carlsson // C++ [expr.typeid]p2: 2116940f02d2SAnders Carlsson // When typeid is applied to a glvalue expression whose type is a 2117940f02d2SAnders Carlsson // polymorphic class type, the result refers to a std::type_info object 2118940f02d2SAnders Carlsson // representing the type of the most derived object (that is, the dynamic 2119940f02d2SAnders Carlsson // type) to which the glvalue refers. 2120ef8bf436SRichard Smith if (E->isPotentiallyEvaluated()) 2121940f02d2SAnders Carlsson return EmitTypeidFromVTable(*this, E->getExprOperand(), 2122940f02d2SAnders Carlsson StdTypeInfoPtrTy); 2123940f02d2SAnders Carlsson 2124940f02d2SAnders Carlsson QualType OperandTy = E->getExprOperand()->getType(); 2125940f02d2SAnders Carlsson return Builder.CreateBitCast(CGM.GetAddrOfRTTIDescriptor(OperandTy), 2126940f02d2SAnders Carlsson StdTypeInfoPtrTy); 212759486a2dSAnders Carlsson } 212859486a2dSAnders Carlsson 2129c1c9971cSAnders Carlsson static llvm::Value *EmitDynamicCastToNull(CodeGenFunction &CGF, 2130c1c9971cSAnders Carlsson QualType DestTy) { 21312192fe50SChris Lattner llvm::Type *DestLTy = CGF.ConvertType(DestTy); 2132c1c9971cSAnders Carlsson if (DestTy->isPointerType()) 2133c1c9971cSAnders Carlsson return llvm::Constant::getNullValue(DestLTy); 2134c1c9971cSAnders Carlsson 2135c1c9971cSAnders Carlsson /// C++ [expr.dynamic.cast]p9: 2136c1c9971cSAnders Carlsson /// A failed cast to reference type throws std::bad_cast 21371162d25cSDavid Majnemer if (!CGF.CGM.getCXXABI().EmitBadCastCall(CGF)) 21381162d25cSDavid Majnemer return nullptr; 2139c1c9971cSAnders Carlsson 2140c1c9971cSAnders Carlsson CGF.EmitBlock(CGF.createBasicBlock("dynamic_cast.end")); 2141c1c9971cSAnders Carlsson return llvm::UndefValue::get(DestLTy); 2142c1c9971cSAnders Carlsson } 2143c1c9971cSAnders Carlsson 21447f416cc4SJohn McCall llvm::Value *CodeGenFunction::EmitDynamicCast(Address ThisAddr, 214559486a2dSAnders Carlsson const CXXDynamicCastExpr *DCE) { 21462bf9b4c0SAlexey Bataev CGM.EmitExplicitCastExprType(DCE, this); 21473f4336cbSAnders Carlsson QualType DestTy = DCE->getTypeAsWritten(); 21483f4336cbSAnders Carlsson 2149c1c9971cSAnders Carlsson QualType SrcTy = DCE->getSubExpr()->getType(); 2150c1c9971cSAnders Carlsson 21511162d25cSDavid Majnemer // C++ [expr.dynamic.cast]p7: 21521162d25cSDavid Majnemer // If T is "pointer to cv void," then the result is a pointer to the most 21531162d25cSDavid Majnemer // derived object pointed to by v. 21541162d25cSDavid Majnemer const PointerType *DestPTy = DestTy->getAs<PointerType>(); 21551162d25cSDavid Majnemer 21561162d25cSDavid Majnemer bool isDynamicCastToVoid; 21571162d25cSDavid Majnemer QualType SrcRecordTy; 21581162d25cSDavid Majnemer QualType DestRecordTy; 21591162d25cSDavid Majnemer if (DestPTy) { 21601162d25cSDavid Majnemer isDynamicCastToVoid = DestPTy->getPointeeType()->isVoidType(); 21611162d25cSDavid Majnemer SrcRecordTy = SrcTy->castAs<PointerType>()->getPointeeType(); 21621162d25cSDavid Majnemer DestRecordTy = DestPTy->getPointeeType(); 21631162d25cSDavid Majnemer } else { 21641162d25cSDavid Majnemer isDynamicCastToVoid = false; 21651162d25cSDavid Majnemer SrcRecordTy = SrcTy; 21661162d25cSDavid Majnemer DestRecordTy = DestTy->castAs<ReferenceType>()->getPointeeType(); 21671162d25cSDavid Majnemer } 21681162d25cSDavid Majnemer 2169d71ad177SStephan Bergmann // C++ [class.cdtor]p5: 2170d71ad177SStephan Bergmann // If the operand of the dynamic_cast refers to the object under 2171d71ad177SStephan Bergmann // construction or destruction and the static type of the operand is not a 2172d71ad177SStephan Bergmann // pointer to or object of the constructor or destructor’s own class or one 2173d71ad177SStephan Bergmann // of its bases, the dynamic_cast results in undefined behavior. 2174d71ad177SStephan Bergmann EmitTypeCheck(TCK_DynamicOperation, DCE->getExprLoc(), ThisAddr.getPointer(), 2175d71ad177SStephan Bergmann SrcRecordTy); 2176d71ad177SStephan Bergmann 2177d71ad177SStephan Bergmann if (DCE->isAlwaysNull()) 2178d71ad177SStephan Bergmann if (llvm::Value *T = EmitDynamicCastToNull(*this, DestTy)) 2179d71ad177SStephan Bergmann return T; 2180d71ad177SStephan Bergmann 21811162d25cSDavid Majnemer assert(SrcRecordTy->isRecordType() && "source type must be a record type!"); 21821162d25cSDavid Majnemer 2183882d790fSAnders Carlsson // C++ [expr.dynamic.cast]p4: 2184882d790fSAnders Carlsson // If the value of v is a null pointer value in the pointer case, the result 2185882d790fSAnders Carlsson // is the null pointer value of type T. 21861162d25cSDavid Majnemer bool ShouldNullCheckSrcValue = 21871162d25cSDavid Majnemer CGM.getCXXABI().shouldDynamicCastCallBeNullChecked(SrcTy->isPointerType(), 21881162d25cSDavid Majnemer SrcRecordTy); 218959486a2dSAnders Carlsson 21908a13c418SCraig Topper llvm::BasicBlock *CastNull = nullptr; 21918a13c418SCraig Topper llvm::BasicBlock *CastNotNull = nullptr; 2192882d790fSAnders Carlsson llvm::BasicBlock *CastEnd = createBasicBlock("dynamic_cast.end"); 2193fa8b4955SDouglas Gregor 2194882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 2195882d790fSAnders Carlsson CastNull = createBasicBlock("dynamic_cast.null"); 2196882d790fSAnders Carlsson CastNotNull = createBasicBlock("dynamic_cast.notnull"); 2197882d790fSAnders Carlsson 21987f416cc4SJohn McCall llvm::Value *IsNull = Builder.CreateIsNull(ThisAddr.getPointer()); 2199882d790fSAnders Carlsson Builder.CreateCondBr(IsNull, CastNull, CastNotNull); 2200882d790fSAnders Carlsson EmitBlock(CastNotNull); 220159486a2dSAnders Carlsson } 220259486a2dSAnders Carlsson 22037f416cc4SJohn McCall llvm::Value *Value; 22041162d25cSDavid Majnemer if (isDynamicCastToVoid) { 22057f416cc4SJohn McCall Value = CGM.getCXXABI().EmitDynamicCastToVoid(*this, ThisAddr, SrcRecordTy, 22061162d25cSDavid Majnemer DestTy); 22071162d25cSDavid Majnemer } else { 22081162d25cSDavid Majnemer assert(DestRecordTy->isRecordType() && 22091162d25cSDavid Majnemer "destination type must be a record type!"); 22107f416cc4SJohn McCall Value = CGM.getCXXABI().EmitDynamicCastCall(*this, ThisAddr, SrcRecordTy, 22111162d25cSDavid Majnemer DestTy, DestRecordTy, CastEnd); 221267528eaaSDavid Majnemer CastNotNull = Builder.GetInsertBlock(); 22131162d25cSDavid Majnemer } 22143f4336cbSAnders Carlsson 2215882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 2216882d790fSAnders Carlsson EmitBranch(CastEnd); 221759486a2dSAnders Carlsson 2218882d790fSAnders Carlsson EmitBlock(CastNull); 2219882d790fSAnders Carlsson EmitBranch(CastEnd); 222059486a2dSAnders Carlsson } 222159486a2dSAnders Carlsson 2222882d790fSAnders Carlsson EmitBlock(CastEnd); 222359486a2dSAnders Carlsson 2224882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 2225882d790fSAnders Carlsson llvm::PHINode *PHI = Builder.CreatePHI(Value->getType(), 2); 2226882d790fSAnders Carlsson PHI->addIncoming(Value, CastNotNull); 2227882d790fSAnders Carlsson PHI->addIncoming(llvm::Constant::getNullValue(Value->getType()), CastNull); 222859486a2dSAnders Carlsson 2229882d790fSAnders Carlsson Value = PHI; 223059486a2dSAnders Carlsson } 223159486a2dSAnders Carlsson 2232882d790fSAnders Carlsson return Value; 223359486a2dSAnders Carlsson } 2234