159486a2dSAnders Carlsson //===--- CGExprCXX.cpp - Emit LLVM Code for C++ expressions ---------------===// 259486a2dSAnders Carlsson // 359486a2dSAnders Carlsson // The LLVM Compiler Infrastructure 459486a2dSAnders Carlsson // 559486a2dSAnders Carlsson // This file is distributed under the University of Illinois Open Source 659486a2dSAnders Carlsson // License. See LICENSE.TXT for details. 759486a2dSAnders Carlsson // 859486a2dSAnders Carlsson //===----------------------------------------------------------------------===// 959486a2dSAnders Carlsson // 1059486a2dSAnders Carlsson // This contains code dealing with code generation of C++ expressions 1159486a2dSAnders Carlsson // 1259486a2dSAnders Carlsson //===----------------------------------------------------------------------===// 1359486a2dSAnders Carlsson 1459486a2dSAnders Carlsson #include "CodeGenFunction.h" 15fe883422SPeter Collingbourne #include "CGCUDARuntime.h" 165d865c32SJohn McCall #include "CGCXXABI.h" 1791bbb554SDevang Patel #include "CGDebugInfo.h" 183a02247dSChandler Carruth #include "CGObjCRuntime.h" 19a8e7df36SMark Lacey #include "clang/CodeGen/CGFunctionInfo.h" 203a02247dSChandler Carruth #include "clang/Frontend/CodeGenOptions.h" 21c80ceea9SChandler Carruth #include "llvm/IR/CallSite.h" 22ffd5551bSChandler Carruth #include "llvm/IR/Intrinsics.h" 23bbe277c4SAnders Carlsson 2459486a2dSAnders Carlsson using namespace clang; 2559486a2dSAnders Carlsson using namespace CodeGen; 2659486a2dSAnders Carlsson 2727da15baSAnders Carlsson RValue CodeGenFunction::EmitCXXMemberCall(const CXXMethodDecl *MD, 28e30752c9SRichard Smith SourceLocation CallLoc, 2927da15baSAnders Carlsson llvm::Value *Callee, 3027da15baSAnders Carlsson ReturnValueSlot ReturnValue, 3127da15baSAnders Carlsson llvm::Value *This, 32ee6bc533STimur Iskhodzhanov llvm::Value *ImplicitParam, 33ee6bc533STimur Iskhodzhanov QualType ImplicitParamTy, 3427da15baSAnders Carlsson CallExpr::const_arg_iterator ArgBeg, 3527da15baSAnders Carlsson CallExpr::const_arg_iterator ArgEnd) { 3627da15baSAnders Carlsson assert(MD->isInstance() && 3727da15baSAnders Carlsson "Trying to emit a member call expr on a static method!"); 3827da15baSAnders Carlsson 3969d0d262SRichard Smith // C++11 [class.mfct.non-static]p2: 4069d0d262SRichard Smith // If a non-static member function of a class X is called for an object that 4169d0d262SRichard Smith // is not of type X, or of a type derived from X, the behavior is undefined. 424d3110afSRichard Smith EmitTypeCheck(isa<CXXConstructorDecl>(MD) ? TCK_ConstructorCall 434d3110afSRichard Smith : TCK_MemberCall, 444d3110afSRichard Smith CallLoc, This, getContext().getRecordType(MD->getParent())); 4569d0d262SRichard Smith 4627da15baSAnders Carlsson CallArgList Args; 4727da15baSAnders Carlsson 4827da15baSAnders Carlsson // Push the this ptr. 4943dca6a8SEli Friedman Args.add(RValue::get(This), MD->getThisType(getContext())); 5027da15baSAnders Carlsson 51ee6bc533STimur Iskhodzhanov // If there is an implicit parameter (e.g. VTT), emit it. 52ee6bc533STimur Iskhodzhanov if (ImplicitParam) { 53ee6bc533STimur Iskhodzhanov Args.add(RValue::get(ImplicitParam), ImplicitParamTy); 54e36a6b3eSAnders Carlsson } 55e36a6b3eSAnders Carlsson 56a729c62bSJohn McCall const FunctionProtoType *FPT = MD->getType()->castAs<FunctionProtoType>(); 57a729c62bSJohn McCall RequiredArgs required = RequiredArgs::forPrototypePlus(FPT, Args.size()); 58a729c62bSJohn McCall 59a729c62bSJohn McCall // And the rest of the call args. 6027da15baSAnders Carlsson EmitCallArgs(Args, FPT, ArgBeg, ArgEnd); 6127da15baSAnders Carlsson 628dda7b27SJohn McCall return EmitCall(CGM.getTypes().arrangeCXXMethodCall(Args, FPT, required), 63c50c27ccSRafael Espindola Callee, ReturnValue, Args, MD); 6427da15baSAnders Carlsson } 6527da15baSAnders Carlsson 663b33c4ecSRafael Espindola static CXXRecordDecl *getCXXRecord(const Expr *E) { 673b33c4ecSRafael Espindola QualType T = E->getType(); 683b33c4ecSRafael Espindola if (const PointerType *PTy = T->getAs<PointerType>()) 693b33c4ecSRafael Espindola T = PTy->getPointeeType(); 703b33c4ecSRafael Espindola const RecordType *Ty = T->castAs<RecordType>(); 713b33c4ecSRafael Espindola return cast<CXXRecordDecl>(Ty->getDecl()); 723b33c4ecSRafael Espindola } 733b33c4ecSRafael Espindola 7464225794SFrancois Pichet // Note: This function also emit constructor calls to support a MSVC 7564225794SFrancois Pichet // extensions allowing explicit constructor function call. 7627da15baSAnders Carlsson RValue CodeGenFunction::EmitCXXMemberCallExpr(const CXXMemberCallExpr *CE, 7727da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 782d2e8707SJohn McCall const Expr *callee = CE->getCallee()->IgnoreParens(); 792d2e8707SJohn McCall 802d2e8707SJohn McCall if (isa<BinaryOperator>(callee)) 8127da15baSAnders Carlsson return EmitCXXMemberPointerCallExpr(CE, ReturnValue); 8227da15baSAnders Carlsson 832d2e8707SJohn McCall const MemberExpr *ME = cast<MemberExpr>(callee); 8427da15baSAnders Carlsson const CXXMethodDecl *MD = cast<CXXMethodDecl>(ME->getMemberDecl()); 8527da15baSAnders Carlsson 8627da15baSAnders Carlsson if (MD->isStatic()) { 8727da15baSAnders Carlsson // The method is static, emit it as we would a regular call. 8827da15baSAnders Carlsson llvm::Value *Callee = CGM.GetAddrOfFunction(MD); 8927da15baSAnders Carlsson return EmitCall(getContext().getPointerType(MD->getType()), Callee, 90b453cd64SPeter Collingbourne CE->getLocStart(), ReturnValue, CE->arg_begin(), 91b453cd64SPeter Collingbourne CE->arg_end()); 9227da15baSAnders Carlsson } 9327da15baSAnders Carlsson 940d635f53SJohn McCall // Compute the object pointer. 95ecbe2e97SRafael Espindola const Expr *Base = ME->getBase(); 96ecbe2e97SRafael Espindola bool CanUseVirtualCall = MD->isVirtual() && !ME->hasQualifier(); 97ecbe2e97SRafael Espindola 988a13c418SCraig Topper const CXXMethodDecl *DevirtualizedMethod = nullptr; 997463ed7cSBenjamin Kramer if (CanUseVirtualCall && CanDevirtualizeMemberFunctionCall(Base, MD)) { 1003b33c4ecSRafael Espindola const CXXRecordDecl *BestDynamicDecl = Base->getBestDynamicClassType(); 1013b33c4ecSRafael Espindola DevirtualizedMethod = MD->getCorrespondingMethodInClass(BestDynamicDecl); 1023b33c4ecSRafael Espindola assert(DevirtualizedMethod); 1033b33c4ecSRafael Espindola const CXXRecordDecl *DevirtualizedClass = DevirtualizedMethod->getParent(); 1043b33c4ecSRafael Espindola const Expr *Inner = Base->ignoreParenBaseCasts(); 1053b33c4ecSRafael Espindola if (getCXXRecord(Inner) == DevirtualizedClass) 1063b33c4ecSRafael Espindola // If the class of the Inner expression is where the dynamic method 1073b33c4ecSRafael Espindola // is defined, build the this pointer from it. 1083b33c4ecSRafael Espindola Base = Inner; 1093b33c4ecSRafael Espindola else if (getCXXRecord(Base) != DevirtualizedClass) { 1103b33c4ecSRafael Espindola // If the method is defined in a class that is not the best dynamic 1113b33c4ecSRafael Espindola // one or the one of the full expression, we would have to build 1123b33c4ecSRafael Espindola // a derived-to-base cast to compute the correct this pointer, but 1133b33c4ecSRafael Espindola // we don't have support for that yet, so do a virtual call. 1148a13c418SCraig Topper DevirtualizedMethod = nullptr; 1153b33c4ecSRafael Espindola } 116b27564afSRafael Espindola // If the return types are not the same, this might be a case where more 117b27564afSRafael Espindola // code needs to run to compensate for it. For example, the derived 118b27564afSRafael Espindola // method might return a type that inherits form from the return 119b27564afSRafael Espindola // type of MD and has a prefix. 120b27564afSRafael Espindola // For now we just avoid devirtualizing these covariant cases. 121b27564afSRafael Espindola if (DevirtualizedMethod && 122314cc81bSAlp Toker DevirtualizedMethod->getReturnType().getCanonicalType() != 123314cc81bSAlp Toker MD->getReturnType().getCanonicalType()) 1248a13c418SCraig Topper DevirtualizedMethod = nullptr; 1253b33c4ecSRafael Espindola } 126ecbe2e97SRafael Espindola 12727da15baSAnders Carlsson llvm::Value *This; 12827da15baSAnders Carlsson if (ME->isArrow()) 1293b33c4ecSRafael Espindola This = EmitScalarExpr(Base); 130f93ac894SFariborz Jahanian else 1313b33c4ecSRafael Espindola This = EmitLValue(Base).getAddress(); 132ecbe2e97SRafael Espindola 13327da15baSAnders Carlsson 1340d635f53SJohn McCall if (MD->isTrivial()) { 1358a13c418SCraig Topper if (isa<CXXDestructorDecl>(MD)) return RValue::get(nullptr); 13664225794SFrancois Pichet if (isa<CXXConstructorDecl>(MD) && 13764225794SFrancois Pichet cast<CXXConstructorDecl>(MD)->isDefaultConstructor()) 1388a13c418SCraig Topper return RValue::get(nullptr); 1390d635f53SJohn McCall 14022653bacSSebastian Redl if (MD->isCopyAssignmentOperator() || MD->isMoveAssignmentOperator()) { 14122653bacSSebastian Redl // We don't like to generate the trivial copy/move assignment operator 14222653bacSSebastian Redl // when it isn't necessary; just produce the proper effect here. 14327da15baSAnders Carlsson llvm::Value *RHS = EmitLValue(*CE->arg_begin()).getAddress(); 1441ca66919SBenjamin Kramer EmitAggregateAssign(This, RHS, CE->getType()); 14527da15baSAnders Carlsson return RValue::get(This); 14627da15baSAnders Carlsson } 14727da15baSAnders Carlsson 14864225794SFrancois Pichet if (isa<CXXConstructorDecl>(MD) && 14922653bacSSebastian Redl cast<CXXConstructorDecl>(MD)->isCopyOrMoveConstructor()) { 15022653bacSSebastian Redl // Trivial move and copy ctor are the same. 15164225794SFrancois Pichet llvm::Value *RHS = EmitLValue(*CE->arg_begin()).getAddress(); 15264225794SFrancois Pichet EmitSynthesizedCXXCopyCtorCall(cast<CXXConstructorDecl>(MD), This, RHS, 15364225794SFrancois Pichet CE->arg_begin(), CE->arg_end()); 15464225794SFrancois Pichet return RValue::get(This); 15564225794SFrancois Pichet } 15664225794SFrancois Pichet llvm_unreachable("unknown trivial member function"); 15764225794SFrancois Pichet } 15864225794SFrancois Pichet 1590d635f53SJohn McCall // Compute the function type we're calling. 160ade60977SEli Friedman const CXXMethodDecl *CalleeDecl = DevirtualizedMethod ? DevirtualizedMethod : MD; 1618a13c418SCraig Topper const CGFunctionInfo *FInfo = nullptr; 162ade60977SEli Friedman if (const CXXDestructorDecl *Dtor = dyn_cast<CXXDestructorDecl>(CalleeDecl)) 163ade60977SEli Friedman FInfo = &CGM.getTypes().arrangeCXXDestructor(Dtor, 16464225794SFrancois Pichet Dtor_Complete); 165ade60977SEli Friedman else if (const CXXConstructorDecl *Ctor = dyn_cast<CXXConstructorDecl>(CalleeDecl)) 166ade60977SEli Friedman FInfo = &CGM.getTypes().arrangeCXXConstructorDeclaration(Ctor, 16764225794SFrancois Pichet Ctor_Complete); 16864225794SFrancois Pichet else 169ade60977SEli Friedman FInfo = &CGM.getTypes().arrangeCXXMethodDeclaration(CalleeDecl); 1700d635f53SJohn McCall 171e7de47efSReid Kleckner llvm::FunctionType *Ty = CGM.getTypes().GetFunctionType(*FInfo); 1720d635f53SJohn McCall 17327da15baSAnders Carlsson // C++ [class.virtual]p12: 17427da15baSAnders Carlsson // Explicit qualification with the scope operator (5.1) suppresses the 17527da15baSAnders Carlsson // virtual call mechanism. 17627da15baSAnders Carlsson // 17727da15baSAnders Carlsson // We also don't emit a virtual call if the base expression has a record type 17827da15baSAnders Carlsson // because then we know what the type is. 1793b33c4ecSRafael Espindola bool UseVirtualCall = CanUseVirtualCall && !DevirtualizedMethod; 18019cee187SStephen Lin llvm::Value *Callee; 1819dc6eef7SStephen Lin 1820d635f53SJohn McCall if (const CXXDestructorDecl *Dtor = dyn_cast<CXXDestructorDecl>(MD)) { 18319cee187SStephen Lin assert(CE->arg_begin() == CE->arg_end() && 1849dc6eef7SStephen Lin "Destructor shouldn't have explicit parameters"); 1859dc6eef7SStephen Lin assert(ReturnValue.isNull() && "Destructor shouldn't have return value"); 1869dc6eef7SStephen Lin if (UseVirtualCall) { 1879dc6eef7SStephen Lin CGM.getCXXABI().EmitVirtualDestructorCall(*this, Dtor, Dtor_Complete, 1889dc6eef7SStephen Lin CE->getExprLoc(), This); 18927da15baSAnders Carlsson } else { 1909c6890a7SRichard Smith if (getLangOpts().AppleKext && 191265c325eSFariborz Jahanian MD->isVirtual() && 192265c325eSFariborz Jahanian ME->hasQualifier()) 1937f6f81baSFariborz Jahanian Callee = BuildAppleKextVirtualCall(MD, ME->getQualifier(), Ty); 1943b33c4ecSRafael Espindola else if (!DevirtualizedMethod) 195e7de47efSReid Kleckner Callee = CGM.GetAddrOfCXXDestructor(Dtor, Dtor_Complete, FInfo, Ty); 19649e860b2SRafael Espindola else { 1973b33c4ecSRafael Espindola const CXXDestructorDecl *DDtor = 1983b33c4ecSRafael Espindola cast<CXXDestructorDecl>(DevirtualizedMethod); 19949e860b2SRafael Espindola Callee = CGM.GetAddrOfFunction(GlobalDecl(DDtor, Dtor_Complete), Ty); 20049e860b2SRafael Espindola } 2019dc6eef7SStephen Lin EmitCXXMemberCall(MD, CE->getExprLoc(), Callee, ReturnValue, This, 2028a13c418SCraig Topper /*ImplicitParam=*/nullptr, QualType(), nullptr,nullptr); 20327da15baSAnders Carlsson } 2048a13c418SCraig Topper return RValue::get(nullptr); 2059dc6eef7SStephen Lin } 2069dc6eef7SStephen Lin 2079dc6eef7SStephen Lin if (const CXXConstructorDecl *Ctor = dyn_cast<CXXConstructorDecl>(MD)) { 20864225794SFrancois Pichet Callee = CGM.GetAddrOfFunction(GlobalDecl(Ctor, Ctor_Complete), Ty); 2090d635f53SJohn McCall } else if (UseVirtualCall) { 21088fd439aSTimur Iskhodzhanov Callee = CGM.getCXXABI().getVirtualFunctionPointer(*this, MD, This, Ty); 21127da15baSAnders Carlsson } else { 2129c6890a7SRichard Smith if (getLangOpts().AppleKext && 2139f9438b3SFariborz Jahanian MD->isVirtual() && 214252a47f6SFariborz Jahanian ME->hasQualifier()) 2157f6f81baSFariborz Jahanian Callee = BuildAppleKextVirtualCall(MD, ME->getQualifier(), Ty); 2163b33c4ecSRafael Espindola else if (!DevirtualizedMethod) 217727a771aSRafael Espindola Callee = CGM.GetAddrOfFunction(MD, Ty); 21849e860b2SRafael Espindola else { 2193b33c4ecSRafael Espindola Callee = CGM.GetAddrOfFunction(DevirtualizedMethod, Ty); 22049e860b2SRafael Espindola } 22127da15baSAnders Carlsson } 22227da15baSAnders Carlsson 223f1749427STimur Iskhodzhanov if (MD->isVirtual()) { 224f1749427STimur Iskhodzhanov This = CGM.getCXXABI().adjustThisArgumentForVirtualFunctionCall( 225f1749427STimur Iskhodzhanov *this, MD, This, UseVirtualCall); 226f1749427STimur Iskhodzhanov } 22788fd439aSTimur Iskhodzhanov 228e30752c9SRichard Smith return EmitCXXMemberCall(MD, CE->getExprLoc(), Callee, ReturnValue, This, 2298a13c418SCraig Topper /*ImplicitParam=*/nullptr, QualType(), 230ee6bc533STimur Iskhodzhanov CE->arg_begin(), CE->arg_end()); 23127da15baSAnders Carlsson } 23227da15baSAnders Carlsson 23327da15baSAnders Carlsson RValue 23427da15baSAnders Carlsson CodeGenFunction::EmitCXXMemberPointerCallExpr(const CXXMemberCallExpr *E, 23527da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 23627da15baSAnders Carlsson const BinaryOperator *BO = 23727da15baSAnders Carlsson cast<BinaryOperator>(E->getCallee()->IgnoreParens()); 23827da15baSAnders Carlsson const Expr *BaseExpr = BO->getLHS(); 23927da15baSAnders Carlsson const Expr *MemFnExpr = BO->getRHS(); 24027da15baSAnders Carlsson 24127da15baSAnders Carlsson const MemberPointerType *MPT = 2420009fcc3SJohn McCall MemFnExpr->getType()->castAs<MemberPointerType>(); 243475999dcSJohn McCall 24427da15baSAnders Carlsson const FunctionProtoType *FPT = 2450009fcc3SJohn McCall MPT->getPointeeType()->castAs<FunctionProtoType>(); 24627da15baSAnders Carlsson const CXXRecordDecl *RD = 24727da15baSAnders Carlsson cast<CXXRecordDecl>(MPT->getClass()->getAs<RecordType>()->getDecl()); 24827da15baSAnders Carlsson 24927da15baSAnders Carlsson // Get the member function pointer. 250a1dee530SJohn McCall llvm::Value *MemFnPtr = EmitScalarExpr(MemFnExpr); 25127da15baSAnders Carlsson 25227da15baSAnders Carlsson // Emit the 'this' pointer. 25327da15baSAnders Carlsson llvm::Value *This; 25427da15baSAnders Carlsson 255e302792bSJohn McCall if (BO->getOpcode() == BO_PtrMemI) 25627da15baSAnders Carlsson This = EmitScalarExpr(BaseExpr); 25727da15baSAnders Carlsson else 25827da15baSAnders Carlsson This = EmitLValue(BaseExpr).getAddress(); 25927da15baSAnders Carlsson 260e30752c9SRichard Smith EmitTypeCheck(TCK_MemberCall, E->getExprLoc(), This, 261e30752c9SRichard Smith QualType(MPT->getClass(), 0)); 26269d0d262SRichard Smith 263475999dcSJohn McCall // Ask the ABI to load the callee. Note that This is modified. 264475999dcSJohn McCall llvm::Value *Callee = 2652b0d66dfSDavid Majnemer CGM.getCXXABI().EmitLoadOfMemberFunctionPointer(*this, BO, This, MemFnPtr, MPT); 26627da15baSAnders Carlsson 26727da15baSAnders Carlsson CallArgList Args; 26827da15baSAnders Carlsson 26927da15baSAnders Carlsson QualType ThisType = 27027da15baSAnders Carlsson getContext().getPointerType(getContext().getTagDeclType(RD)); 27127da15baSAnders Carlsson 27227da15baSAnders Carlsson // Push the this ptr. 27343dca6a8SEli Friedman Args.add(RValue::get(This), ThisType); 27427da15baSAnders Carlsson 2758dda7b27SJohn McCall RequiredArgs required = RequiredArgs::forPrototypePlus(FPT, 1); 2768dda7b27SJohn McCall 27727da15baSAnders Carlsson // And the rest of the call args 27827da15baSAnders Carlsson EmitCallArgs(Args, FPT, E->arg_begin(), E->arg_end()); 2795fa40c3bSNick Lewycky return EmitCall(CGM.getTypes().arrangeCXXMethodCall(Args, FPT, required), 2805fa40c3bSNick Lewycky Callee, ReturnValue, Args); 28127da15baSAnders Carlsson } 28227da15baSAnders Carlsson 28327da15baSAnders Carlsson RValue 28427da15baSAnders Carlsson CodeGenFunction::EmitCXXOperatorMemberCallExpr(const CXXOperatorCallExpr *E, 28527da15baSAnders Carlsson const CXXMethodDecl *MD, 28627da15baSAnders Carlsson ReturnValueSlot ReturnValue) { 28727da15baSAnders Carlsson assert(MD->isInstance() && 28827da15baSAnders Carlsson "Trying to emit a member call expr on a static method!"); 289e26a872bSJohn McCall LValue LV = EmitLValue(E->getArg(0)); 290e26a872bSJohn McCall llvm::Value *This = LV.getAddress(); 291e26a872bSJohn McCall 292146b8e9aSDouglas Gregor if ((MD->isCopyAssignmentOperator() || MD->isMoveAssignmentOperator()) && 293146b8e9aSDouglas Gregor MD->isTrivial()) { 29427da15baSAnders Carlsson llvm::Value *Src = EmitLValue(E->getArg(1)).getAddress(); 29527da15baSAnders Carlsson QualType Ty = E->getType(); 2961ca66919SBenjamin Kramer EmitAggregateAssign(This, Src, Ty); 29727da15baSAnders Carlsson return RValue::get(This); 29827da15baSAnders Carlsson } 29927da15baSAnders Carlsson 300c36783e8SAnders Carlsson llvm::Value *Callee = EmitCXXOperatorMemberCallee(E, MD, This); 301e30752c9SRichard Smith return EmitCXXMemberCall(MD, E->getExprLoc(), Callee, ReturnValue, This, 3028a13c418SCraig Topper /*ImplicitParam=*/nullptr, QualType(), 303ee6bc533STimur Iskhodzhanov E->arg_begin() + 1, E->arg_end()); 30427da15baSAnders Carlsson } 30527da15baSAnders Carlsson 306fe883422SPeter Collingbourne RValue CodeGenFunction::EmitCUDAKernelCallExpr(const CUDAKernelCallExpr *E, 307fe883422SPeter Collingbourne ReturnValueSlot ReturnValue) { 308fe883422SPeter Collingbourne return CGM.getCUDARuntime().EmitCUDAKernelCallExpr(*this, E, ReturnValue); 309fe883422SPeter Collingbourne } 310fe883422SPeter Collingbourne 311fde961dbSEli Friedman static void EmitNullBaseClassInitialization(CodeGenFunction &CGF, 312fde961dbSEli Friedman llvm::Value *DestPtr, 313fde961dbSEli Friedman const CXXRecordDecl *Base) { 314fde961dbSEli Friedman if (Base->isEmpty()) 315fde961dbSEli Friedman return; 316fde961dbSEli Friedman 317fde961dbSEli Friedman DestPtr = CGF.EmitCastToVoidPtr(DestPtr); 318fde961dbSEli Friedman 319fde961dbSEli Friedman const ASTRecordLayout &Layout = CGF.getContext().getASTRecordLayout(Base); 320fde961dbSEli Friedman CharUnits Size = Layout.getNonVirtualSize(); 321d640d7d9SWarren Hunt CharUnits Align = Layout.getNonVirtualAlignment(); 322fde961dbSEli Friedman 323fde961dbSEli Friedman llvm::Value *SizeVal = CGF.CGM.getSize(Size); 324fde961dbSEli Friedman 325fde961dbSEli Friedman // If the type contains a pointer to data member we can't memset it to zero. 326fde961dbSEli Friedman // Instead, create a null constant and copy it to the destination. 327fde961dbSEli Friedman // TODO: there are other patterns besides zero that we can usefully memset, 328fde961dbSEli Friedman // like -1, which happens to be the pattern used by member-pointers. 329fde961dbSEli Friedman // TODO: isZeroInitializable can be over-conservative in the case where a 330fde961dbSEli Friedman // virtual base contains a member pointer. 331fde961dbSEli Friedman if (!CGF.CGM.getTypes().isZeroInitializable(Base)) { 332fde961dbSEli Friedman llvm::Constant *NullConstant = CGF.CGM.EmitNullConstantForBase(Base); 333fde961dbSEli Friedman 334fde961dbSEli Friedman llvm::GlobalVariable *NullVariable = 335fde961dbSEli Friedman new llvm::GlobalVariable(CGF.CGM.getModule(), NullConstant->getType(), 336fde961dbSEli Friedman /*isConstant=*/true, 337fde961dbSEli Friedman llvm::GlobalVariable::PrivateLinkage, 338fde961dbSEli Friedman NullConstant, Twine()); 339fde961dbSEli Friedman NullVariable->setAlignment(Align.getQuantity()); 340fde961dbSEli Friedman llvm::Value *SrcPtr = CGF.EmitCastToVoidPtr(NullVariable); 341fde961dbSEli Friedman 342fde961dbSEli Friedman // Get and call the appropriate llvm.memcpy overload. 343fde961dbSEli Friedman CGF.Builder.CreateMemCpy(DestPtr, SrcPtr, SizeVal, Align.getQuantity()); 344fde961dbSEli Friedman return; 345fde961dbSEli Friedman } 346fde961dbSEli Friedman 347fde961dbSEli Friedman // Otherwise, just memset the whole thing to zero. This is legal 348fde961dbSEli Friedman // because in LLVM, all default initializers (other than the ones we just 349fde961dbSEli Friedman // handled above) are guaranteed to have a bit pattern of all zeros. 350fde961dbSEli Friedman CGF.Builder.CreateMemSet(DestPtr, CGF.Builder.getInt8(0), SizeVal, 351fde961dbSEli Friedman Align.getQuantity()); 352fde961dbSEli Friedman } 353fde961dbSEli Friedman 35427da15baSAnders Carlsson void 3557a626f63SJohn McCall CodeGenFunction::EmitCXXConstructExpr(const CXXConstructExpr *E, 3567a626f63SJohn McCall AggValueSlot Dest) { 3577a626f63SJohn McCall assert(!Dest.isIgnored() && "Must have a destination!"); 35827da15baSAnders Carlsson const CXXConstructorDecl *CD = E->getConstructor(); 359630c76efSDouglas Gregor 360630c76efSDouglas Gregor // If we require zero initialization before (or instead of) calling the 361630c76efSDouglas Gregor // constructor, as can be the case with a non-user-provided default 36203535265SArgyrios Kyrtzidis // constructor, emit the zero initialization now, unless destination is 36303535265SArgyrios Kyrtzidis // already zeroed. 364fde961dbSEli Friedman if (E->requiresZeroInitialization() && !Dest.isZeroed()) { 365fde961dbSEli Friedman switch (E->getConstructionKind()) { 366fde961dbSEli Friedman case CXXConstructExpr::CK_Delegating: 367fde961dbSEli Friedman case CXXConstructExpr::CK_Complete: 3687a626f63SJohn McCall EmitNullInitialization(Dest.getAddr(), E->getType()); 369fde961dbSEli Friedman break; 370fde961dbSEli Friedman case CXXConstructExpr::CK_VirtualBase: 371fde961dbSEli Friedman case CXXConstructExpr::CK_NonVirtualBase: 372fde961dbSEli Friedman EmitNullBaseClassInitialization(*this, Dest.getAddr(), CD->getParent()); 373fde961dbSEli Friedman break; 374fde961dbSEli Friedman } 375fde961dbSEli Friedman } 376630c76efSDouglas Gregor 377630c76efSDouglas Gregor // If this is a call to a trivial default constructor, do nothing. 378630c76efSDouglas Gregor if (CD->isTrivial() && CD->isDefaultConstructor()) 37927da15baSAnders Carlsson return; 380630c76efSDouglas Gregor 3818ea46b66SJohn McCall // Elide the constructor if we're constructing from a temporary. 3828ea46b66SJohn McCall // The temporary check is required because Sema sets this on NRVO 3838ea46b66SJohn McCall // returns. 3849c6890a7SRichard Smith if (getLangOpts().ElideConstructors && E->isElidable()) { 3858ea46b66SJohn McCall assert(getContext().hasSameUnqualifiedType(E->getType(), 3868ea46b66SJohn McCall E->getArg(0)->getType())); 3877a626f63SJohn McCall if (E->getArg(0)->isTemporaryObject(getContext(), CD->getParent())) { 3887a626f63SJohn McCall EmitAggExpr(E->getArg(0), Dest); 38927da15baSAnders Carlsson return; 39027da15baSAnders Carlsson } 391222cf0efSDouglas Gregor } 392630c76efSDouglas Gregor 393f677a8e9SJohn McCall if (const ConstantArrayType *arrayType 394f677a8e9SJohn McCall = getContext().getAsConstantArrayType(E->getType())) { 395f677a8e9SJohn McCall EmitCXXAggrConstructorCall(CD, arrayType, Dest.getAddr(), 39627da15baSAnders Carlsson E->arg_begin(), E->arg_end()); 397f677a8e9SJohn McCall } else { 398bceca20aSCameron Esfahani CXXCtorType Type = Ctor_Complete; 399271c3681SAlexis Hunt bool ForVirtualBase = false; 40061535005SDouglas Gregor bool Delegating = false; 401271c3681SAlexis Hunt 402271c3681SAlexis Hunt switch (E->getConstructionKind()) { 403271c3681SAlexis Hunt case CXXConstructExpr::CK_Delegating: 40461bc1737SAlexis Hunt // We should be emitting a constructor; GlobalDecl will assert this 40561bc1737SAlexis Hunt Type = CurGD.getCtorType(); 40661535005SDouglas Gregor Delegating = true; 407271c3681SAlexis Hunt break; 40861bc1737SAlexis Hunt 409271c3681SAlexis Hunt case CXXConstructExpr::CK_Complete: 410271c3681SAlexis Hunt Type = Ctor_Complete; 411271c3681SAlexis Hunt break; 412271c3681SAlexis Hunt 413271c3681SAlexis Hunt case CXXConstructExpr::CK_VirtualBase: 414271c3681SAlexis Hunt ForVirtualBase = true; 415271c3681SAlexis Hunt // fall-through 416271c3681SAlexis Hunt 417271c3681SAlexis Hunt case CXXConstructExpr::CK_NonVirtualBase: 418271c3681SAlexis Hunt Type = Ctor_Base; 419271c3681SAlexis Hunt } 420e11f9ce9SAnders Carlsson 42127da15baSAnders Carlsson // Call the constructor. 42261535005SDouglas Gregor EmitCXXConstructorCall(CD, Type, ForVirtualBase, Delegating, Dest.getAddr(), 42327da15baSAnders Carlsson E->arg_begin(), E->arg_end()); 42427da15baSAnders Carlsson } 425e11f9ce9SAnders Carlsson } 42627da15baSAnders Carlsson 427e988bdacSFariborz Jahanian void 428e988bdacSFariborz Jahanian CodeGenFunction::EmitSynthesizedCXXCopyCtor(llvm::Value *Dest, 429e988bdacSFariborz Jahanian llvm::Value *Src, 43050198098SFariborz Jahanian const Expr *Exp) { 4315d413781SJohn McCall if (const ExprWithCleanups *E = dyn_cast<ExprWithCleanups>(Exp)) 432e988bdacSFariborz Jahanian Exp = E->getSubExpr(); 433e988bdacSFariborz Jahanian assert(isa<CXXConstructExpr>(Exp) && 434e988bdacSFariborz Jahanian "EmitSynthesizedCXXCopyCtor - unknown copy ctor expr"); 435e988bdacSFariborz Jahanian const CXXConstructExpr* E = cast<CXXConstructExpr>(Exp); 436e988bdacSFariborz Jahanian const CXXConstructorDecl *CD = E->getConstructor(); 437e988bdacSFariborz Jahanian RunCleanupsScope Scope(*this); 438e988bdacSFariborz Jahanian 439e988bdacSFariborz Jahanian // If we require zero initialization before (or instead of) calling the 440e988bdacSFariborz Jahanian // constructor, as can be the case with a non-user-provided default 441e988bdacSFariborz Jahanian // constructor, emit the zero initialization now. 442e988bdacSFariborz Jahanian // FIXME. Do I still need this for a copy ctor synthesis? 443e988bdacSFariborz Jahanian if (E->requiresZeroInitialization()) 444e988bdacSFariborz Jahanian EmitNullInitialization(Dest, E->getType()); 445e988bdacSFariborz Jahanian 44699da11cfSChandler Carruth assert(!getContext().getAsConstantArrayType(E->getType()) 44799da11cfSChandler Carruth && "EmitSynthesizedCXXCopyCtor - Copied-in Array"); 4485fa40c3bSNick Lewycky EmitSynthesizedCXXCopyCtorCall(CD, Dest, Src, E->arg_begin(), E->arg_end()); 449e988bdacSFariborz Jahanian } 450e988bdacSFariborz Jahanian 4518ed55a54SJohn McCall static CharUnits CalculateCookiePadding(CodeGenFunction &CGF, 4528ed55a54SJohn McCall const CXXNewExpr *E) { 45321122cf6SAnders Carlsson if (!E->isArray()) 4543eb55cfeSKen Dyck return CharUnits::Zero(); 45521122cf6SAnders Carlsson 4567ec4b434SJohn McCall // No cookie is required if the operator new[] being used is the 4577ec4b434SJohn McCall // reserved placement operator new[]. 4587ec4b434SJohn McCall if (E->getOperatorNew()->isReservedGlobalPlacementOperator()) 4593eb55cfeSKen Dyck return CharUnits::Zero(); 460399f499fSAnders Carlsson 461284c48ffSJohn McCall return CGF.CGM.getCXXABI().GetArrayCookieSize(E); 46259486a2dSAnders Carlsson } 46359486a2dSAnders Carlsson 464036f2f6bSJohn McCall static llvm::Value *EmitCXXNewAllocSize(CodeGenFunction &CGF, 465036f2f6bSJohn McCall const CXXNewExpr *e, 466f862eb6aSSebastian Redl unsigned minElements, 467036f2f6bSJohn McCall llvm::Value *&numElements, 468036f2f6bSJohn McCall llvm::Value *&sizeWithoutCookie) { 469036f2f6bSJohn McCall QualType type = e->getAllocatedType(); 47059486a2dSAnders Carlsson 471036f2f6bSJohn McCall if (!e->isArray()) { 472036f2f6bSJohn McCall CharUnits typeSize = CGF.getContext().getTypeSizeInChars(type); 473036f2f6bSJohn McCall sizeWithoutCookie 474036f2f6bSJohn McCall = llvm::ConstantInt::get(CGF.SizeTy, typeSize.getQuantity()); 475036f2f6bSJohn McCall return sizeWithoutCookie; 47605fc5be3SDouglas Gregor } 47759486a2dSAnders Carlsson 478036f2f6bSJohn McCall // The width of size_t. 479036f2f6bSJohn McCall unsigned sizeWidth = CGF.SizeTy->getBitWidth(); 480036f2f6bSJohn McCall 4818ed55a54SJohn McCall // Figure out the cookie size. 482036f2f6bSJohn McCall llvm::APInt cookieSize(sizeWidth, 483036f2f6bSJohn McCall CalculateCookiePadding(CGF, e).getQuantity()); 4848ed55a54SJohn McCall 48559486a2dSAnders Carlsson // Emit the array size expression. 4867648fb46SArgyrios Kyrtzidis // We multiply the size of all dimensions for NumElements. 4877648fb46SArgyrios Kyrtzidis // e.g for 'int[2][3]', ElemType is 'int' and NumElements is 6. 488036f2f6bSJohn McCall numElements = CGF.EmitScalarExpr(e->getArraySize()); 489036f2f6bSJohn McCall assert(isa<llvm::IntegerType>(numElements->getType())); 4908ed55a54SJohn McCall 491036f2f6bSJohn McCall // The number of elements can be have an arbitrary integer type; 492036f2f6bSJohn McCall // essentially, we need to multiply it by a constant factor, add a 493036f2f6bSJohn McCall // cookie size, and verify that the result is representable as a 494036f2f6bSJohn McCall // size_t. That's just a gloss, though, and it's wrong in one 495036f2f6bSJohn McCall // important way: if the count is negative, it's an error even if 496036f2f6bSJohn McCall // the cookie size would bring the total size >= 0. 4976ab2fa8fSDouglas Gregor bool isSigned 4986ab2fa8fSDouglas Gregor = e->getArraySize()->getType()->isSignedIntegerOrEnumerationType(); 4992192fe50SChris Lattner llvm::IntegerType *numElementsType 500036f2f6bSJohn McCall = cast<llvm::IntegerType>(numElements->getType()); 501036f2f6bSJohn McCall unsigned numElementsWidth = numElementsType->getBitWidth(); 502036f2f6bSJohn McCall 503036f2f6bSJohn McCall // Compute the constant factor. 504036f2f6bSJohn McCall llvm::APInt arraySizeMultiplier(sizeWidth, 1); 5057648fb46SArgyrios Kyrtzidis while (const ConstantArrayType *CAT 506036f2f6bSJohn McCall = CGF.getContext().getAsConstantArrayType(type)) { 507036f2f6bSJohn McCall type = CAT->getElementType(); 508036f2f6bSJohn McCall arraySizeMultiplier *= CAT->getSize(); 5097648fb46SArgyrios Kyrtzidis } 51059486a2dSAnders Carlsson 511036f2f6bSJohn McCall CharUnits typeSize = CGF.getContext().getTypeSizeInChars(type); 512036f2f6bSJohn McCall llvm::APInt typeSizeMultiplier(sizeWidth, typeSize.getQuantity()); 513036f2f6bSJohn McCall typeSizeMultiplier *= arraySizeMultiplier; 514036f2f6bSJohn McCall 515036f2f6bSJohn McCall // This will be a size_t. 516036f2f6bSJohn McCall llvm::Value *size; 51732ac583dSChris Lattner 51832ac583dSChris Lattner // If someone is doing 'new int[42]' there is no need to do a dynamic check. 51932ac583dSChris Lattner // Don't bloat the -O0 code. 520036f2f6bSJohn McCall if (llvm::ConstantInt *numElementsC = 521036f2f6bSJohn McCall dyn_cast<llvm::ConstantInt>(numElements)) { 522036f2f6bSJohn McCall const llvm::APInt &count = numElementsC->getValue(); 52332ac583dSChris Lattner 524036f2f6bSJohn McCall bool hasAnyOverflow = false; 52532ac583dSChris Lattner 526036f2f6bSJohn McCall // If 'count' was a negative number, it's an overflow. 527036f2f6bSJohn McCall if (isSigned && count.isNegative()) 528036f2f6bSJohn McCall hasAnyOverflow = true; 5298ed55a54SJohn McCall 530036f2f6bSJohn McCall // We want to do all this arithmetic in size_t. If numElements is 531036f2f6bSJohn McCall // wider than that, check whether it's already too big, and if so, 532036f2f6bSJohn McCall // overflow. 533036f2f6bSJohn McCall else if (numElementsWidth > sizeWidth && 534036f2f6bSJohn McCall numElementsWidth - sizeWidth > count.countLeadingZeros()) 535036f2f6bSJohn McCall hasAnyOverflow = true; 536036f2f6bSJohn McCall 537036f2f6bSJohn McCall // Okay, compute a count at the right width. 538036f2f6bSJohn McCall llvm::APInt adjustedCount = count.zextOrTrunc(sizeWidth); 539036f2f6bSJohn McCall 540f862eb6aSSebastian Redl // If there is a brace-initializer, we cannot allocate fewer elements than 541f862eb6aSSebastian Redl // there are initializers. If we do, that's treated like an overflow. 542f862eb6aSSebastian Redl if (adjustedCount.ult(minElements)) 543f862eb6aSSebastian Redl hasAnyOverflow = true; 544f862eb6aSSebastian Redl 545036f2f6bSJohn McCall // Scale numElements by that. This might overflow, but we don't 546036f2f6bSJohn McCall // care because it only overflows if allocationSize does, too, and 547036f2f6bSJohn McCall // if that overflows then we shouldn't use this. 548036f2f6bSJohn McCall numElements = llvm::ConstantInt::get(CGF.SizeTy, 549036f2f6bSJohn McCall adjustedCount * arraySizeMultiplier); 550036f2f6bSJohn McCall 551036f2f6bSJohn McCall // Compute the size before cookie, and track whether it overflowed. 552036f2f6bSJohn McCall bool overflow; 553036f2f6bSJohn McCall llvm::APInt allocationSize 554036f2f6bSJohn McCall = adjustedCount.umul_ov(typeSizeMultiplier, overflow); 555036f2f6bSJohn McCall hasAnyOverflow |= overflow; 556036f2f6bSJohn McCall 557036f2f6bSJohn McCall // Add in the cookie, and check whether it's overflowed. 558036f2f6bSJohn McCall if (cookieSize != 0) { 559036f2f6bSJohn McCall // Save the current size without a cookie. This shouldn't be 560036f2f6bSJohn McCall // used if there was overflow. 561036f2f6bSJohn McCall sizeWithoutCookie = llvm::ConstantInt::get(CGF.SizeTy, allocationSize); 562036f2f6bSJohn McCall 563036f2f6bSJohn McCall allocationSize = allocationSize.uadd_ov(cookieSize, overflow); 564036f2f6bSJohn McCall hasAnyOverflow |= overflow; 5658ed55a54SJohn McCall } 5668ed55a54SJohn McCall 567036f2f6bSJohn McCall // On overflow, produce a -1 so operator new will fail. 568036f2f6bSJohn McCall if (hasAnyOverflow) { 569036f2f6bSJohn McCall size = llvm::Constant::getAllOnesValue(CGF.SizeTy); 57032ac583dSChris Lattner } else { 571036f2f6bSJohn McCall size = llvm::ConstantInt::get(CGF.SizeTy, allocationSize); 57232ac583dSChris Lattner } 57332ac583dSChris Lattner 574036f2f6bSJohn McCall // Otherwise, we might need to use the overflow intrinsics. 5758ed55a54SJohn McCall } else { 576f862eb6aSSebastian Redl // There are up to five conditions we need to test for: 577036f2f6bSJohn McCall // 1) if isSigned, we need to check whether numElements is negative; 578036f2f6bSJohn McCall // 2) if numElementsWidth > sizeWidth, we need to check whether 579036f2f6bSJohn McCall // numElements is larger than something representable in size_t; 580f862eb6aSSebastian Redl // 3) if minElements > 0, we need to check whether numElements is smaller 581f862eb6aSSebastian Redl // than that. 582f862eb6aSSebastian Redl // 4) we need to compute 583036f2f6bSJohn McCall // sizeWithoutCookie := numElements * typeSizeMultiplier 584036f2f6bSJohn McCall // and check whether it overflows; and 585f862eb6aSSebastian Redl // 5) if we need a cookie, we need to compute 586036f2f6bSJohn McCall // size := sizeWithoutCookie + cookieSize 587036f2f6bSJohn McCall // and check whether it overflows. 5888ed55a54SJohn McCall 5898a13c418SCraig Topper llvm::Value *hasOverflow = nullptr; 5908ed55a54SJohn McCall 591036f2f6bSJohn McCall // If numElementsWidth > sizeWidth, then one way or another, we're 592036f2f6bSJohn McCall // going to have to do a comparison for (2), and this happens to 593036f2f6bSJohn McCall // take care of (1), too. 594036f2f6bSJohn McCall if (numElementsWidth > sizeWidth) { 595036f2f6bSJohn McCall llvm::APInt threshold(numElementsWidth, 1); 596036f2f6bSJohn McCall threshold <<= sizeWidth; 5978ed55a54SJohn McCall 598036f2f6bSJohn McCall llvm::Value *thresholdV 599036f2f6bSJohn McCall = llvm::ConstantInt::get(numElementsType, threshold); 600036f2f6bSJohn McCall 601036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateICmpUGE(numElements, thresholdV); 602036f2f6bSJohn McCall numElements = CGF.Builder.CreateTrunc(numElements, CGF.SizeTy); 603036f2f6bSJohn McCall 604036f2f6bSJohn McCall // Otherwise, if we're signed, we want to sext up to size_t. 605036f2f6bSJohn McCall } else if (isSigned) { 606036f2f6bSJohn McCall if (numElementsWidth < sizeWidth) 607036f2f6bSJohn McCall numElements = CGF.Builder.CreateSExt(numElements, CGF.SizeTy); 608036f2f6bSJohn McCall 609036f2f6bSJohn McCall // If there's a non-1 type size multiplier, then we can do the 610036f2f6bSJohn McCall // signedness check at the same time as we do the multiply 611036f2f6bSJohn McCall // because a negative number times anything will cause an 612f862eb6aSSebastian Redl // unsigned overflow. Otherwise, we have to do it here. But at least 613f862eb6aSSebastian Redl // in this case, we can subsume the >= minElements check. 614036f2f6bSJohn McCall if (typeSizeMultiplier == 1) 615036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateICmpSLT(numElements, 616f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements)); 617036f2f6bSJohn McCall 618036f2f6bSJohn McCall // Otherwise, zext up to size_t if necessary. 619036f2f6bSJohn McCall } else if (numElementsWidth < sizeWidth) { 620036f2f6bSJohn McCall numElements = CGF.Builder.CreateZExt(numElements, CGF.SizeTy); 621036f2f6bSJohn McCall } 622036f2f6bSJohn McCall 623036f2f6bSJohn McCall assert(numElements->getType() == CGF.SizeTy); 624036f2f6bSJohn McCall 625f862eb6aSSebastian Redl if (minElements) { 626f862eb6aSSebastian Redl // Don't allow allocation of fewer elements than we have initializers. 627f862eb6aSSebastian Redl if (!hasOverflow) { 628f862eb6aSSebastian Redl hasOverflow = CGF.Builder.CreateICmpULT(numElements, 629f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements)); 630f862eb6aSSebastian Redl } else if (numElementsWidth > sizeWidth) { 631f862eb6aSSebastian Redl // The other existing overflow subsumes this check. 632f862eb6aSSebastian Redl // We do an unsigned comparison, since any signed value < -1 is 633f862eb6aSSebastian Redl // taken care of either above or below. 634f862eb6aSSebastian Redl hasOverflow = CGF.Builder.CreateOr(hasOverflow, 635f862eb6aSSebastian Redl CGF.Builder.CreateICmpULT(numElements, 636f862eb6aSSebastian Redl llvm::ConstantInt::get(CGF.SizeTy, minElements))); 637f862eb6aSSebastian Redl } 638f862eb6aSSebastian Redl } 639f862eb6aSSebastian Redl 640036f2f6bSJohn McCall size = numElements; 641036f2f6bSJohn McCall 642036f2f6bSJohn McCall // Multiply by the type size if necessary. This multiplier 643036f2f6bSJohn McCall // includes all the factors for nested arrays. 6448ed55a54SJohn McCall // 645036f2f6bSJohn McCall // This step also causes numElements to be scaled up by the 646036f2f6bSJohn McCall // nested-array factor if necessary. Overflow on this computation 647036f2f6bSJohn McCall // can be ignored because the result shouldn't be used if 648036f2f6bSJohn McCall // allocation fails. 649036f2f6bSJohn McCall if (typeSizeMultiplier != 1) { 650036f2f6bSJohn McCall llvm::Value *umul_with_overflow 6518d375cefSBenjamin Kramer = CGF.CGM.getIntrinsic(llvm::Intrinsic::umul_with_overflow, CGF.SizeTy); 6528ed55a54SJohn McCall 653036f2f6bSJohn McCall llvm::Value *tsmV = 654036f2f6bSJohn McCall llvm::ConstantInt::get(CGF.SizeTy, typeSizeMultiplier); 655036f2f6bSJohn McCall llvm::Value *result = 656036f2f6bSJohn McCall CGF.Builder.CreateCall2(umul_with_overflow, size, tsmV); 6578ed55a54SJohn McCall 658036f2f6bSJohn McCall llvm::Value *overflowed = CGF.Builder.CreateExtractValue(result, 1); 659036f2f6bSJohn McCall if (hasOverflow) 660036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateOr(hasOverflow, overflowed); 6618ed55a54SJohn McCall else 662036f2f6bSJohn McCall hasOverflow = overflowed; 66359486a2dSAnders Carlsson 664036f2f6bSJohn McCall size = CGF.Builder.CreateExtractValue(result, 0); 665036f2f6bSJohn McCall 666036f2f6bSJohn McCall // Also scale up numElements by the array size multiplier. 667036f2f6bSJohn McCall if (arraySizeMultiplier != 1) { 668036f2f6bSJohn McCall // If the base element type size is 1, then we can re-use the 669036f2f6bSJohn McCall // multiply we just did. 670036f2f6bSJohn McCall if (typeSize.isOne()) { 671036f2f6bSJohn McCall assert(arraySizeMultiplier == typeSizeMultiplier); 672036f2f6bSJohn McCall numElements = size; 673036f2f6bSJohn McCall 674036f2f6bSJohn McCall // Otherwise we need a separate multiply. 675036f2f6bSJohn McCall } else { 676036f2f6bSJohn McCall llvm::Value *asmV = 677036f2f6bSJohn McCall llvm::ConstantInt::get(CGF.SizeTy, arraySizeMultiplier); 678036f2f6bSJohn McCall numElements = CGF.Builder.CreateMul(numElements, asmV); 679036f2f6bSJohn McCall } 680036f2f6bSJohn McCall } 681036f2f6bSJohn McCall } else { 682036f2f6bSJohn McCall // numElements doesn't need to be scaled. 683036f2f6bSJohn McCall assert(arraySizeMultiplier == 1); 684036f2f6bSJohn McCall } 685036f2f6bSJohn McCall 686036f2f6bSJohn McCall // Add in the cookie size if necessary. 687036f2f6bSJohn McCall if (cookieSize != 0) { 688036f2f6bSJohn McCall sizeWithoutCookie = size; 689036f2f6bSJohn McCall 690036f2f6bSJohn McCall llvm::Value *uadd_with_overflow 6918d375cefSBenjamin Kramer = CGF.CGM.getIntrinsic(llvm::Intrinsic::uadd_with_overflow, CGF.SizeTy); 692036f2f6bSJohn McCall 693036f2f6bSJohn McCall llvm::Value *cookieSizeV = llvm::ConstantInt::get(CGF.SizeTy, cookieSize); 694036f2f6bSJohn McCall llvm::Value *result = 695036f2f6bSJohn McCall CGF.Builder.CreateCall2(uadd_with_overflow, size, cookieSizeV); 696036f2f6bSJohn McCall 697036f2f6bSJohn McCall llvm::Value *overflowed = CGF.Builder.CreateExtractValue(result, 1); 698036f2f6bSJohn McCall if (hasOverflow) 699036f2f6bSJohn McCall hasOverflow = CGF.Builder.CreateOr(hasOverflow, overflowed); 700036f2f6bSJohn McCall else 701036f2f6bSJohn McCall hasOverflow = overflowed; 702036f2f6bSJohn McCall 703036f2f6bSJohn McCall size = CGF.Builder.CreateExtractValue(result, 0); 704036f2f6bSJohn McCall } 705036f2f6bSJohn McCall 706036f2f6bSJohn McCall // If we had any possibility of dynamic overflow, make a select to 707036f2f6bSJohn McCall // overwrite 'size' with an all-ones value, which should cause 708036f2f6bSJohn McCall // operator new to throw. 709036f2f6bSJohn McCall if (hasOverflow) 710036f2f6bSJohn McCall size = CGF.Builder.CreateSelect(hasOverflow, 711036f2f6bSJohn McCall llvm::Constant::getAllOnesValue(CGF.SizeTy), 712036f2f6bSJohn McCall size); 713036f2f6bSJohn McCall } 714036f2f6bSJohn McCall 715036f2f6bSJohn McCall if (cookieSize == 0) 716036f2f6bSJohn McCall sizeWithoutCookie = size; 717036f2f6bSJohn McCall else 718036f2f6bSJohn McCall assert(sizeWithoutCookie && "didn't set sizeWithoutCookie?"); 719036f2f6bSJohn McCall 720036f2f6bSJohn McCall return size; 72159486a2dSAnders Carlsson } 72259486a2dSAnders Carlsson 723f862eb6aSSebastian Redl static void StoreAnyExprIntoOneUnit(CodeGenFunction &CGF, const Expr *Init, 724f862eb6aSSebastian Redl QualType AllocType, llvm::Value *NewPtr) { 7251c96bc5dSRichard Smith // FIXME: Refactor with EmitExprAsInit. 72638cd36dbSEli Friedman CharUnits Alignment = CGF.getContext().getTypeAlignInChars(AllocType); 72747fb9508SJohn McCall switch (CGF.getEvaluationKind(AllocType)) { 72847fb9508SJohn McCall case TEK_Scalar: 7298a13c418SCraig Topper CGF.EmitScalarInit(Init, nullptr, CGF.MakeAddrLValue(NewPtr, AllocType, 730a0544d6fSEli Friedman Alignment), 7311553b190SJohn McCall false); 73247fb9508SJohn McCall return; 73347fb9508SJohn McCall case TEK_Complex: 73447fb9508SJohn McCall CGF.EmitComplexExprIntoLValue(Init, CGF.MakeAddrLValue(NewPtr, AllocType, 73547fb9508SJohn McCall Alignment), 73647fb9508SJohn McCall /*isInit*/ true); 73747fb9508SJohn McCall return; 73847fb9508SJohn McCall case TEK_Aggregate: { 7397a626f63SJohn McCall AggValueSlot Slot 740c1d85b93SEli Friedman = AggValueSlot::forAddr(NewPtr, Alignment, AllocType.getQualifiers(), 7418d6fc958SJohn McCall AggValueSlot::IsDestructed, 74246759f4fSJohn McCall AggValueSlot::DoesNotNeedGCBarriers, 743615ed1a3SChad Rosier AggValueSlot::IsNotAliased); 7447a626f63SJohn McCall CGF.EmitAggExpr(Init, Slot); 74547fb9508SJohn McCall return; 7467a626f63SJohn McCall } 747d5202e09SFariborz Jahanian } 74847fb9508SJohn McCall llvm_unreachable("bad evaluation kind"); 74947fb9508SJohn McCall } 750d5202e09SFariborz Jahanian 751d5202e09SFariborz Jahanian void 752d5202e09SFariborz Jahanian CodeGenFunction::EmitNewArrayInitializer(const CXXNewExpr *E, 75306a67e2cSRichard Smith QualType ElementType, 75406a67e2cSRichard Smith llvm::Value *BeginPtr, 75506a67e2cSRichard Smith llvm::Value *NumElements, 75606a67e2cSRichard Smith llvm::Value *AllocSizeWithoutCookie) { 75706a67e2cSRichard Smith // If we have a type with trivial initialization and no initializer, 75806a67e2cSRichard Smith // there's nothing to do. 7596047f07eSSebastian Redl if (!E->hasInitializer()) 76006a67e2cSRichard Smith return; 761b66b08efSFariborz Jahanian 76206a67e2cSRichard Smith llvm::Value *CurPtr = BeginPtr; 763d5202e09SFariborz Jahanian 76406a67e2cSRichard Smith unsigned InitListElements = 0; 765f862eb6aSSebastian Redl 766f862eb6aSSebastian Redl const Expr *Init = E->getInitializer(); 76706a67e2cSRichard Smith llvm::AllocaInst *EndOfInit = nullptr; 76806a67e2cSRichard Smith QualType::DestructionKind DtorKind = ElementType.isDestructedType(); 76906a67e2cSRichard Smith EHScopeStack::stable_iterator Cleanup; 77006a67e2cSRichard Smith llvm::Instruction *CleanupDominator = nullptr; 7711c96bc5dSRichard Smith 772f862eb6aSSebastian Redl // If the initializer is an initializer list, first do the explicit elements. 773f862eb6aSSebastian Redl if (const InitListExpr *ILE = dyn_cast<InitListExpr>(Init)) { 77406a67e2cSRichard Smith InitListElements = ILE->getNumInits(); 775f62290a1SChad Rosier 7761c96bc5dSRichard Smith // If this is a multi-dimensional array new, we will initialize multiple 7771c96bc5dSRichard Smith // elements with each init list element. 7781c96bc5dSRichard Smith QualType AllocType = E->getAllocatedType(); 7791c96bc5dSRichard Smith if (const ConstantArrayType *CAT = dyn_cast_or_null<ConstantArrayType>( 7801c96bc5dSRichard Smith AllocType->getAsArrayTypeUnsafe())) { 78106a67e2cSRichard Smith unsigned AS = CurPtr->getType()->getPointerAddressSpace(); 7821c96bc5dSRichard Smith llvm::Type *AllocPtrTy = ConvertTypeForMem(AllocType)->getPointerTo(AS); 78306a67e2cSRichard Smith CurPtr = Builder.CreateBitCast(CurPtr, AllocPtrTy); 78406a67e2cSRichard Smith InitListElements *= getContext().getConstantArrayElementCount(CAT); 7851c96bc5dSRichard Smith } 7861c96bc5dSRichard Smith 78706a67e2cSRichard Smith // Enter a partial-destruction Cleanup if necessary. 78806a67e2cSRichard Smith if (needsEHCleanup(DtorKind)) { 78906a67e2cSRichard Smith // In principle we could tell the Cleanup where we are more 790f62290a1SChad Rosier // directly, but the control flow can get so varied here that it 791f62290a1SChad Rosier // would actually be quite complex. Therefore we go through an 792f62290a1SChad Rosier // alloca. 79306a67e2cSRichard Smith EndOfInit = CreateTempAlloca(BeginPtr->getType(), "array.init.end"); 79406a67e2cSRichard Smith CleanupDominator = Builder.CreateStore(BeginPtr, EndOfInit); 79506a67e2cSRichard Smith pushIrregularPartialArrayCleanup(BeginPtr, EndOfInit, ElementType, 79606a67e2cSRichard Smith getDestroyer(DtorKind)); 79706a67e2cSRichard Smith Cleanup = EHStack.stable_begin(); 798f62290a1SChad Rosier } 799f62290a1SChad Rosier 800f862eb6aSSebastian Redl for (unsigned i = 0, e = ILE->getNumInits(); i != e; ++i) { 801f62290a1SChad Rosier // Tell the cleanup that it needs to destroy up to this 802f62290a1SChad Rosier // element. TODO: some of these stores can be trivially 803f62290a1SChad Rosier // observed to be unnecessary. 80406a67e2cSRichard Smith if (EndOfInit) 80506a67e2cSRichard Smith Builder.CreateStore(Builder.CreateBitCast(CurPtr, BeginPtr->getType()), 80606a67e2cSRichard Smith EndOfInit); 80706a67e2cSRichard Smith // FIXME: If the last initializer is an incomplete initializer list for 80806a67e2cSRichard Smith // an array, and we have an array filler, we can fold together the two 80906a67e2cSRichard Smith // initialization loops. 8101c96bc5dSRichard Smith StoreAnyExprIntoOneUnit(*this, ILE->getInit(i), 81106a67e2cSRichard Smith ILE->getInit(i)->getType(), CurPtr); 81206a67e2cSRichard Smith CurPtr = Builder.CreateConstInBoundsGEP1_32(CurPtr, 1, "array.exp.next"); 813f862eb6aSSebastian Redl } 814f862eb6aSSebastian Redl 815f862eb6aSSebastian Redl // The remaining elements are filled with the array filler expression. 816f862eb6aSSebastian Redl Init = ILE->getArrayFiller(); 8171c96bc5dSRichard Smith 81806a67e2cSRichard Smith // Extract the initializer for the individual array elements by pulling 81906a67e2cSRichard Smith // out the array filler from all the nested initializer lists. This avoids 82006a67e2cSRichard Smith // generating a nested loop for the initialization. 82106a67e2cSRichard Smith while (Init && Init->getType()->isConstantArrayType()) { 82206a67e2cSRichard Smith auto *SubILE = dyn_cast<InitListExpr>(Init); 82306a67e2cSRichard Smith if (!SubILE) 82406a67e2cSRichard Smith break; 82506a67e2cSRichard Smith assert(SubILE->getNumInits() == 0 && "explicit inits in array filler?"); 82606a67e2cSRichard Smith Init = SubILE->getArrayFiller(); 827f862eb6aSSebastian Redl } 828f862eb6aSSebastian Redl 82906a67e2cSRichard Smith // Switch back to initializing one base element at a time. 83006a67e2cSRichard Smith CurPtr = Builder.CreateBitCast(CurPtr, BeginPtr->getType()); 831f62290a1SChad Rosier } 832e6c980c4SChandler Carruth 83306a67e2cSRichard Smith // Attempt to perform zero-initialization using memset. 83406a67e2cSRichard Smith auto TryMemsetInitialization = [&]() -> bool { 83506a67e2cSRichard Smith // FIXME: If the type is a pointer-to-data-member under the Itanium ABI, 83606a67e2cSRichard Smith // we can initialize with a memset to -1. 83706a67e2cSRichard Smith if (!CGM.getTypes().isZeroInitializable(ElementType)) 83806a67e2cSRichard Smith return false; 839e6c980c4SChandler Carruth 84006a67e2cSRichard Smith // Optimization: since zero initialization will just set the memory 84106a67e2cSRichard Smith // to all zeroes, generate a single memset to do it in one shot. 84206a67e2cSRichard Smith 84306a67e2cSRichard Smith // Subtract out the size of any elements we've already initialized. 84406a67e2cSRichard Smith auto *RemainingSize = AllocSizeWithoutCookie; 84506a67e2cSRichard Smith if (InitListElements) { 84606a67e2cSRichard Smith // We know this can't overflow; we check this when doing the allocation. 84706a67e2cSRichard Smith auto *InitializedSize = llvm::ConstantInt::get( 84806a67e2cSRichard Smith RemainingSize->getType(), 84906a67e2cSRichard Smith getContext().getTypeSizeInChars(ElementType).getQuantity() * 85006a67e2cSRichard Smith InitListElements); 85106a67e2cSRichard Smith RemainingSize = Builder.CreateSub(RemainingSize, InitializedSize); 85299210dc9SJohn McCall } 853d5202e09SFariborz Jahanian 85406a67e2cSRichard Smith // Create the memset. 85506a67e2cSRichard Smith CharUnits Alignment = getContext().getTypeAlignInChars(ElementType); 85606a67e2cSRichard Smith Builder.CreateMemSet(CurPtr, Builder.getInt8(0), RemainingSize, 857705ba07eSKen Dyck Alignment.getQuantity(), false); 85806a67e2cSRichard Smith return true; 85906a67e2cSRichard Smith }; 86005fc5be3SDouglas Gregor 861454a7cdfSRichard Smith // If all elements have already been initialized, skip any further 862454a7cdfSRichard Smith // initialization. 863454a7cdfSRichard Smith llvm::ConstantInt *ConstNum = dyn_cast<llvm::ConstantInt>(NumElements); 864454a7cdfSRichard Smith if (ConstNum && ConstNum->getZExtValue() <= InitListElements) { 865454a7cdfSRichard Smith // If there was a Cleanup, deactivate it. 866454a7cdfSRichard Smith if (CleanupDominator) 867454a7cdfSRichard Smith DeactivateCleanupBlock(Cleanup, CleanupDominator); 868454a7cdfSRichard Smith return; 869454a7cdfSRichard Smith } 870454a7cdfSRichard Smith 871454a7cdfSRichard Smith assert(Init && "have trailing elements to initialize but no initializer"); 872454a7cdfSRichard Smith 87306a67e2cSRichard Smith // If this is a constructor call, try to optimize it out, and failing that 87406a67e2cSRichard Smith // emit a single loop to initialize all remaining elements. 875454a7cdfSRichard Smith if (const CXXConstructExpr *CCE = dyn_cast<CXXConstructExpr>(Init)) { 8766047f07eSSebastian Redl CXXConstructorDecl *Ctor = CCE->getConstructor(); 877d153103cSDouglas Gregor if (Ctor->isTrivial()) { 87805fc5be3SDouglas Gregor // If new expression did not specify value-initialization, then there 87905fc5be3SDouglas Gregor // is no initialization. 8806047f07eSSebastian Redl if (!CCE->requiresZeroInitialization() || Ctor->getParent()->isEmpty()) 88105fc5be3SDouglas Gregor return; 88205fc5be3SDouglas Gregor 88306a67e2cSRichard Smith if (TryMemsetInitialization()) 8843a202f60SAnders Carlsson return; 8853a202f60SAnders Carlsson } 88605fc5be3SDouglas Gregor 88706a67e2cSRichard Smith // Store the new Cleanup position for irregular Cleanups. 88806a67e2cSRichard Smith // 88906a67e2cSRichard Smith // FIXME: Share this cleanup with the constructor call emission rather than 89006a67e2cSRichard Smith // having it create a cleanup of its own. 89106a67e2cSRichard Smith if (EndOfInit) Builder.CreateStore(CurPtr, EndOfInit); 89206a67e2cSRichard Smith 89306a67e2cSRichard Smith // Emit a constructor call loop to initialize the remaining elements. 89406a67e2cSRichard Smith if (InitListElements) 89506a67e2cSRichard Smith NumElements = Builder.CreateSub( 89606a67e2cSRichard Smith NumElements, 89706a67e2cSRichard Smith llvm::ConstantInt::get(NumElements->getType(), InitListElements)); 89806a67e2cSRichard Smith EmitCXXAggrConstructorCall(Ctor, NumElements, CurPtr, 8996047f07eSSebastian Redl CCE->arg_begin(), CCE->arg_end(), 90048ddcf2cSEli Friedman CCE->requiresZeroInitialization()); 90105fc5be3SDouglas Gregor return; 9026047f07eSSebastian Redl } 90306a67e2cSRichard Smith 90406a67e2cSRichard Smith // If this is value-initialization, we can usually use memset. 90506a67e2cSRichard Smith ImplicitValueInitExpr IVIE(ElementType); 906454a7cdfSRichard Smith if (isa<ImplicitValueInitExpr>(Init)) { 90706a67e2cSRichard Smith if (TryMemsetInitialization()) 90806a67e2cSRichard Smith return; 90906a67e2cSRichard Smith 91006a67e2cSRichard Smith // Switch to an ImplicitValueInitExpr for the element type. This handles 91106a67e2cSRichard Smith // only one case: multidimensional array new of pointers to members. In 91206a67e2cSRichard Smith // all other cases, we already have an initializer for the array element. 91306a67e2cSRichard Smith Init = &IVIE; 91406a67e2cSRichard Smith } 91506a67e2cSRichard Smith 91606a67e2cSRichard Smith // At this point we should have found an initializer for the individual 91706a67e2cSRichard Smith // elements of the array. 91806a67e2cSRichard Smith assert(getContext().hasSameUnqualifiedType(ElementType, Init->getType()) && 91906a67e2cSRichard Smith "got wrong type of element to initialize"); 92006a67e2cSRichard Smith 921454a7cdfSRichard Smith // If we have an empty initializer list, we can usually use memset. 922454a7cdfSRichard Smith if (auto *ILE = dyn_cast<InitListExpr>(Init)) 923454a7cdfSRichard Smith if (ILE->getNumInits() == 0 && TryMemsetInitialization()) 924d5202e09SFariborz Jahanian return; 92559486a2dSAnders Carlsson 92606a67e2cSRichard Smith // Create the loop blocks. 92706a67e2cSRichard Smith llvm::BasicBlock *EntryBB = Builder.GetInsertBlock(); 92806a67e2cSRichard Smith llvm::BasicBlock *LoopBB = createBasicBlock("new.loop"); 92906a67e2cSRichard Smith llvm::BasicBlock *ContBB = createBasicBlock("new.loop.end"); 93059486a2dSAnders Carlsson 93106a67e2cSRichard Smith // Find the end of the array, hoisted out of the loop. 93206a67e2cSRichard Smith llvm::Value *EndPtr = 93306a67e2cSRichard Smith Builder.CreateInBoundsGEP(BeginPtr, NumElements, "array.end"); 93406a67e2cSRichard Smith 93506a67e2cSRichard Smith // If the number of elements isn't constant, we have to now check if there is 93606a67e2cSRichard Smith // anything left to initialize. 93706a67e2cSRichard Smith if (!ConstNum) { 93806a67e2cSRichard Smith llvm::Value *IsEmpty = Builder.CreateICmpEQ(CurPtr, EndPtr, 93906a67e2cSRichard Smith "array.isempty"); 94006a67e2cSRichard Smith Builder.CreateCondBr(IsEmpty, ContBB, LoopBB); 94106a67e2cSRichard Smith } 94206a67e2cSRichard Smith 94306a67e2cSRichard Smith // Enter the loop. 94406a67e2cSRichard Smith EmitBlock(LoopBB); 94506a67e2cSRichard Smith 94606a67e2cSRichard Smith // Set up the current-element phi. 94706a67e2cSRichard Smith llvm::PHINode *CurPtrPhi = 94806a67e2cSRichard Smith Builder.CreatePHI(CurPtr->getType(), 2, "array.cur"); 94906a67e2cSRichard Smith CurPtrPhi->addIncoming(CurPtr, EntryBB); 95006a67e2cSRichard Smith CurPtr = CurPtrPhi; 95106a67e2cSRichard Smith 95206a67e2cSRichard Smith // Store the new Cleanup position for irregular Cleanups. 95306a67e2cSRichard Smith if (EndOfInit) Builder.CreateStore(CurPtr, EndOfInit); 95406a67e2cSRichard Smith 95506a67e2cSRichard Smith // Enter a partial-destruction Cleanup if necessary. 95606a67e2cSRichard Smith if (!CleanupDominator && needsEHCleanup(DtorKind)) { 95706a67e2cSRichard Smith pushRegularPartialArrayCleanup(BeginPtr, CurPtr, ElementType, 95806a67e2cSRichard Smith getDestroyer(DtorKind)); 95906a67e2cSRichard Smith Cleanup = EHStack.stable_begin(); 96006a67e2cSRichard Smith CleanupDominator = Builder.CreateUnreachable(); 96106a67e2cSRichard Smith } 96206a67e2cSRichard Smith 96306a67e2cSRichard Smith // Emit the initializer into this element. 96406a67e2cSRichard Smith StoreAnyExprIntoOneUnit(*this, Init, Init->getType(), CurPtr); 96506a67e2cSRichard Smith 96606a67e2cSRichard Smith // Leave the Cleanup if we entered one. 96706a67e2cSRichard Smith if (CleanupDominator) { 96806a67e2cSRichard Smith DeactivateCleanupBlock(Cleanup, CleanupDominator); 96906a67e2cSRichard Smith CleanupDominator->eraseFromParent(); 97006a67e2cSRichard Smith } 97106a67e2cSRichard Smith 97206a67e2cSRichard Smith // Advance to the next element by adjusting the pointer type as necessary. 97306a67e2cSRichard Smith llvm::Value *NextPtr = 97406a67e2cSRichard Smith Builder.CreateConstInBoundsGEP1_32(CurPtr, 1, "array.next"); 97506a67e2cSRichard Smith 97606a67e2cSRichard Smith // Check whether we've gotten to the end of the array and, if so, 97706a67e2cSRichard Smith // exit the loop. 97806a67e2cSRichard Smith llvm::Value *IsEnd = Builder.CreateICmpEQ(NextPtr, EndPtr, "array.atend"); 97906a67e2cSRichard Smith Builder.CreateCondBr(IsEnd, ContBB, LoopBB); 98006a67e2cSRichard Smith CurPtrPhi->addIncoming(NextPtr, Builder.GetInsertBlock()); 98106a67e2cSRichard Smith 98206a67e2cSRichard Smith EmitBlock(ContBB); 98306a67e2cSRichard Smith } 98406a67e2cSRichard Smith 98506a67e2cSRichard Smith static void EmitNewInitializer(CodeGenFunction &CGF, const CXXNewExpr *E, 98606a67e2cSRichard Smith QualType ElementType, 98706a67e2cSRichard Smith llvm::Value *NewPtr, 98806a67e2cSRichard Smith llvm::Value *NumElements, 98906a67e2cSRichard Smith llvm::Value *AllocSizeWithoutCookie) { 99006a67e2cSRichard Smith if (E->isArray()) 99106a67e2cSRichard Smith CGF.EmitNewArrayInitializer(E, ElementType, NewPtr, NumElements, 99206a67e2cSRichard Smith AllocSizeWithoutCookie); 99306a67e2cSRichard Smith else if (const Expr *Init = E->getInitializer()) 994f862eb6aSSebastian Redl StoreAnyExprIntoOneUnit(CGF, Init, E->getAllocatedType(), NewPtr); 99559486a2dSAnders Carlsson } 99659486a2dSAnders Carlsson 9978d0dc31dSRichard Smith /// Emit a call to an operator new or operator delete function, as implicitly 9988d0dc31dSRichard Smith /// created by new-expressions and delete-expressions. 9998d0dc31dSRichard Smith static RValue EmitNewDeleteCall(CodeGenFunction &CGF, 10008d0dc31dSRichard Smith const FunctionDecl *Callee, 10018d0dc31dSRichard Smith const FunctionProtoType *CalleeType, 10028d0dc31dSRichard Smith const CallArgList &Args) { 10038d0dc31dSRichard Smith llvm::Instruction *CallOrInvoke; 10041235a8daSRichard Smith llvm::Value *CalleeAddr = CGF.CGM.GetAddrOfFunction(Callee); 10058d0dc31dSRichard Smith RValue RV = 10068d0dc31dSRichard Smith CGF.EmitCall(CGF.CGM.getTypes().arrangeFreeFunctionCall(Args, CalleeType), 10071235a8daSRichard Smith CalleeAddr, ReturnValueSlot(), Args, 10088d0dc31dSRichard Smith Callee, &CallOrInvoke); 10098d0dc31dSRichard Smith 10108d0dc31dSRichard Smith /// C++1y [expr.new]p10: 10118d0dc31dSRichard Smith /// [In a new-expression,] an implementation is allowed to omit a call 10128d0dc31dSRichard Smith /// to a replaceable global allocation function. 10138d0dc31dSRichard Smith /// 10148d0dc31dSRichard Smith /// We model such elidable calls with the 'builtin' attribute. 10156956d587SRafael Espindola llvm::Function *Fn = dyn_cast<llvm::Function>(CalleeAddr); 10161235a8daSRichard Smith if (Callee->isReplaceableGlobalAllocationFunction() && 10176956d587SRafael Espindola Fn && Fn->hasFnAttribute(llvm::Attribute::NoBuiltin)) { 10188d0dc31dSRichard Smith // FIXME: Add addAttribute to CallSite. 10198d0dc31dSRichard Smith if (llvm::CallInst *CI = dyn_cast<llvm::CallInst>(CallOrInvoke)) 10208d0dc31dSRichard Smith CI->addAttribute(llvm::AttributeSet::FunctionIndex, 10218d0dc31dSRichard Smith llvm::Attribute::Builtin); 10228d0dc31dSRichard Smith else if (llvm::InvokeInst *II = dyn_cast<llvm::InvokeInst>(CallOrInvoke)) 10238d0dc31dSRichard Smith II->addAttribute(llvm::AttributeSet::FunctionIndex, 10248d0dc31dSRichard Smith llvm::Attribute::Builtin); 10258d0dc31dSRichard Smith else 10268d0dc31dSRichard Smith llvm_unreachable("unexpected kind of call instruction"); 10278d0dc31dSRichard Smith } 10288d0dc31dSRichard Smith 10298d0dc31dSRichard Smith return RV; 10308d0dc31dSRichard Smith } 10318d0dc31dSRichard Smith 1032*760520bcSRichard Smith RValue CodeGenFunction::EmitBuiltinNewDeleteCall(const FunctionProtoType *Type, 1033*760520bcSRichard Smith const Expr *Arg, 1034*760520bcSRichard Smith bool IsDelete) { 1035*760520bcSRichard Smith CallArgList Args; 1036*760520bcSRichard Smith const Stmt *ArgS = Arg; 1037*760520bcSRichard Smith EmitCallArgs(Args, *Type->param_type_begin(), 1038*760520bcSRichard Smith ConstExprIterator(&ArgS), ConstExprIterator(&ArgS + 1)); 1039*760520bcSRichard Smith // Find the allocation or deallocation function that we're calling. 1040*760520bcSRichard Smith ASTContext &Ctx = getContext(); 1041*760520bcSRichard Smith DeclarationName Name = Ctx.DeclarationNames 1042*760520bcSRichard Smith .getCXXOperatorName(IsDelete ? OO_Delete : OO_New); 1043*760520bcSRichard Smith for (auto *Decl : Ctx.getTranslationUnitDecl()->lookup(Name)) 1044*760520bcSRichard Smith if (Ctx.hasSameType(cast<FunctionDecl>(Decl)->getType(), QualType(Type, 0))) 1045*760520bcSRichard Smith return EmitNewDeleteCall(*this, cast<FunctionDecl>(Decl), Type, Args); 1046*760520bcSRichard Smith llvm_unreachable("predeclared global operator new/delete is missing"); 1047*760520bcSRichard Smith } 1048*760520bcSRichard Smith 1049824c2f53SJohn McCall namespace { 1050824c2f53SJohn McCall /// A cleanup to call the given 'operator delete' function upon 1051824c2f53SJohn McCall /// abnormal exit from a new expression. 1052824c2f53SJohn McCall class CallDeleteDuringNew : public EHScopeStack::Cleanup { 1053824c2f53SJohn McCall size_t NumPlacementArgs; 1054824c2f53SJohn McCall const FunctionDecl *OperatorDelete; 1055824c2f53SJohn McCall llvm::Value *Ptr; 1056824c2f53SJohn McCall llvm::Value *AllocSize; 1057824c2f53SJohn McCall 1058824c2f53SJohn McCall RValue *getPlacementArgs() { return reinterpret_cast<RValue*>(this+1); } 1059824c2f53SJohn McCall 1060824c2f53SJohn McCall public: 1061824c2f53SJohn McCall static size_t getExtraSize(size_t NumPlacementArgs) { 1062824c2f53SJohn McCall return NumPlacementArgs * sizeof(RValue); 1063824c2f53SJohn McCall } 1064824c2f53SJohn McCall 1065824c2f53SJohn McCall CallDeleteDuringNew(size_t NumPlacementArgs, 1066824c2f53SJohn McCall const FunctionDecl *OperatorDelete, 1067824c2f53SJohn McCall llvm::Value *Ptr, 1068824c2f53SJohn McCall llvm::Value *AllocSize) 1069824c2f53SJohn McCall : NumPlacementArgs(NumPlacementArgs), OperatorDelete(OperatorDelete), 1070824c2f53SJohn McCall Ptr(Ptr), AllocSize(AllocSize) {} 1071824c2f53SJohn McCall 1072824c2f53SJohn McCall void setPlacementArg(unsigned I, RValue Arg) { 1073824c2f53SJohn McCall assert(I < NumPlacementArgs && "index out of range"); 1074824c2f53SJohn McCall getPlacementArgs()[I] = Arg; 1075824c2f53SJohn McCall } 1076824c2f53SJohn McCall 10774f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 1078824c2f53SJohn McCall const FunctionProtoType *FPT 1079824c2f53SJohn McCall = OperatorDelete->getType()->getAs<FunctionProtoType>(); 10809cacbabdSAlp Toker assert(FPT->getNumParams() == NumPlacementArgs + 1 || 10819cacbabdSAlp Toker (FPT->getNumParams() == 2 && NumPlacementArgs == 0)); 1082824c2f53SJohn McCall 1083824c2f53SJohn McCall CallArgList DeleteArgs; 1084824c2f53SJohn McCall 1085824c2f53SJohn McCall // The first argument is always a void*. 10869cacbabdSAlp Toker FunctionProtoType::param_type_iterator AI = FPT->param_type_begin(); 108743dca6a8SEli Friedman DeleteArgs.add(RValue::get(Ptr), *AI++); 1088824c2f53SJohn McCall 1089824c2f53SJohn McCall // A member 'operator delete' can take an extra 'size_t' argument. 10909cacbabdSAlp Toker if (FPT->getNumParams() == NumPlacementArgs + 2) 109143dca6a8SEli Friedman DeleteArgs.add(RValue::get(AllocSize), *AI++); 1092824c2f53SJohn McCall 1093824c2f53SJohn McCall // Pass the rest of the arguments, which must match exactly. 1094824c2f53SJohn McCall for (unsigned I = 0; I != NumPlacementArgs; ++I) 109543dca6a8SEli Friedman DeleteArgs.add(getPlacementArgs()[I], *AI++); 1096824c2f53SJohn McCall 1097824c2f53SJohn McCall // Call 'operator delete'. 10988d0dc31dSRichard Smith EmitNewDeleteCall(CGF, OperatorDelete, FPT, DeleteArgs); 1099824c2f53SJohn McCall } 1100824c2f53SJohn McCall }; 11017f9c92a9SJohn McCall 11027f9c92a9SJohn McCall /// A cleanup to call the given 'operator delete' function upon 11037f9c92a9SJohn McCall /// abnormal exit from a new expression when the new expression is 11047f9c92a9SJohn McCall /// conditional. 11057f9c92a9SJohn McCall class CallDeleteDuringConditionalNew : public EHScopeStack::Cleanup { 11067f9c92a9SJohn McCall size_t NumPlacementArgs; 11077f9c92a9SJohn McCall const FunctionDecl *OperatorDelete; 1108cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type Ptr; 1109cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type AllocSize; 11107f9c92a9SJohn McCall 1111cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type *getPlacementArgs() { 1112cb5f77f0SJohn McCall return reinterpret_cast<DominatingValue<RValue>::saved_type*>(this+1); 11137f9c92a9SJohn McCall } 11147f9c92a9SJohn McCall 11157f9c92a9SJohn McCall public: 11167f9c92a9SJohn McCall static size_t getExtraSize(size_t NumPlacementArgs) { 1117cb5f77f0SJohn McCall return NumPlacementArgs * sizeof(DominatingValue<RValue>::saved_type); 11187f9c92a9SJohn McCall } 11197f9c92a9SJohn McCall 11207f9c92a9SJohn McCall CallDeleteDuringConditionalNew(size_t NumPlacementArgs, 11217f9c92a9SJohn McCall const FunctionDecl *OperatorDelete, 1122cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type Ptr, 1123cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type AllocSize) 11247f9c92a9SJohn McCall : NumPlacementArgs(NumPlacementArgs), OperatorDelete(OperatorDelete), 11257f9c92a9SJohn McCall Ptr(Ptr), AllocSize(AllocSize) {} 11267f9c92a9SJohn McCall 1127cb5f77f0SJohn McCall void setPlacementArg(unsigned I, DominatingValue<RValue>::saved_type Arg) { 11287f9c92a9SJohn McCall assert(I < NumPlacementArgs && "index out of range"); 11297f9c92a9SJohn McCall getPlacementArgs()[I] = Arg; 11307f9c92a9SJohn McCall } 11317f9c92a9SJohn McCall 11324f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 11337f9c92a9SJohn McCall const FunctionProtoType *FPT 11347f9c92a9SJohn McCall = OperatorDelete->getType()->getAs<FunctionProtoType>(); 11359cacbabdSAlp Toker assert(FPT->getNumParams() == NumPlacementArgs + 1 || 11369cacbabdSAlp Toker (FPT->getNumParams() == 2 && NumPlacementArgs == 0)); 11377f9c92a9SJohn McCall 11387f9c92a9SJohn McCall CallArgList DeleteArgs; 11397f9c92a9SJohn McCall 11407f9c92a9SJohn McCall // The first argument is always a void*. 11419cacbabdSAlp Toker FunctionProtoType::param_type_iterator AI = FPT->param_type_begin(); 114243dca6a8SEli Friedman DeleteArgs.add(Ptr.restore(CGF), *AI++); 11437f9c92a9SJohn McCall 11447f9c92a9SJohn McCall // A member 'operator delete' can take an extra 'size_t' argument. 11459cacbabdSAlp Toker if (FPT->getNumParams() == NumPlacementArgs + 2) { 1146cb5f77f0SJohn McCall RValue RV = AllocSize.restore(CGF); 114743dca6a8SEli Friedman DeleteArgs.add(RV, *AI++); 11487f9c92a9SJohn McCall } 11497f9c92a9SJohn McCall 11507f9c92a9SJohn McCall // Pass the rest of the arguments, which must match exactly. 11517f9c92a9SJohn McCall for (unsigned I = 0; I != NumPlacementArgs; ++I) { 1152cb5f77f0SJohn McCall RValue RV = getPlacementArgs()[I].restore(CGF); 115343dca6a8SEli Friedman DeleteArgs.add(RV, *AI++); 11547f9c92a9SJohn McCall } 11557f9c92a9SJohn McCall 11567f9c92a9SJohn McCall // Call 'operator delete'. 11578d0dc31dSRichard Smith EmitNewDeleteCall(CGF, OperatorDelete, FPT, DeleteArgs); 11587f9c92a9SJohn McCall } 11597f9c92a9SJohn McCall }; 11607f9c92a9SJohn McCall } 11617f9c92a9SJohn McCall 11627f9c92a9SJohn McCall /// Enter a cleanup to call 'operator delete' if the initializer in a 11637f9c92a9SJohn McCall /// new-expression throws. 11647f9c92a9SJohn McCall static void EnterNewDeleteCleanup(CodeGenFunction &CGF, 11657f9c92a9SJohn McCall const CXXNewExpr *E, 11667f9c92a9SJohn McCall llvm::Value *NewPtr, 11677f9c92a9SJohn McCall llvm::Value *AllocSize, 11687f9c92a9SJohn McCall const CallArgList &NewArgs) { 11697f9c92a9SJohn McCall // If we're not inside a conditional branch, then the cleanup will 11707f9c92a9SJohn McCall // dominate and we can do the easier (and more efficient) thing. 11717f9c92a9SJohn McCall if (!CGF.isInConditionalBranch()) { 11727f9c92a9SJohn McCall CallDeleteDuringNew *Cleanup = CGF.EHStack 11737f9c92a9SJohn McCall .pushCleanupWithExtra<CallDeleteDuringNew>(EHCleanup, 11747f9c92a9SJohn McCall E->getNumPlacementArgs(), 11757f9c92a9SJohn McCall E->getOperatorDelete(), 11767f9c92a9SJohn McCall NewPtr, AllocSize); 11777f9c92a9SJohn McCall for (unsigned I = 0, N = E->getNumPlacementArgs(); I != N; ++I) 1178f4258eb4SEli Friedman Cleanup->setPlacementArg(I, NewArgs[I+1].RV); 11797f9c92a9SJohn McCall 11807f9c92a9SJohn McCall return; 11817f9c92a9SJohn McCall } 11827f9c92a9SJohn McCall 11837f9c92a9SJohn McCall // Otherwise, we need to save all this stuff. 1184cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type SavedNewPtr = 1185cb5f77f0SJohn McCall DominatingValue<RValue>::save(CGF, RValue::get(NewPtr)); 1186cb5f77f0SJohn McCall DominatingValue<RValue>::saved_type SavedAllocSize = 1187cb5f77f0SJohn McCall DominatingValue<RValue>::save(CGF, RValue::get(AllocSize)); 11887f9c92a9SJohn McCall 11897f9c92a9SJohn McCall CallDeleteDuringConditionalNew *Cleanup = CGF.EHStack 1190f4beacd0SJohn McCall .pushCleanupWithExtra<CallDeleteDuringConditionalNew>(EHCleanup, 11917f9c92a9SJohn McCall E->getNumPlacementArgs(), 11927f9c92a9SJohn McCall E->getOperatorDelete(), 11937f9c92a9SJohn McCall SavedNewPtr, 11947f9c92a9SJohn McCall SavedAllocSize); 11957f9c92a9SJohn McCall for (unsigned I = 0, N = E->getNumPlacementArgs(); I != N; ++I) 1196cb5f77f0SJohn McCall Cleanup->setPlacementArg(I, 1197f4258eb4SEli Friedman DominatingValue<RValue>::save(CGF, NewArgs[I+1].RV)); 11987f9c92a9SJohn McCall 1199f4beacd0SJohn McCall CGF.initFullExprCleanup(); 1200824c2f53SJohn McCall } 1201824c2f53SJohn McCall 120259486a2dSAnders Carlsson llvm::Value *CodeGenFunction::EmitCXXNewExpr(const CXXNewExpr *E) { 120375f9498aSJohn McCall // The element type being allocated. 120475f9498aSJohn McCall QualType allocType = getContext().getBaseElementType(E->getAllocatedType()); 12058ed55a54SJohn McCall 120675f9498aSJohn McCall // 1. Build a call to the allocation function. 120775f9498aSJohn McCall FunctionDecl *allocator = E->getOperatorNew(); 120875f9498aSJohn McCall const FunctionProtoType *allocatorType = 120975f9498aSJohn McCall allocator->getType()->castAs<FunctionProtoType>(); 121059486a2dSAnders Carlsson 121175f9498aSJohn McCall CallArgList allocatorArgs; 121259486a2dSAnders Carlsson 121359486a2dSAnders Carlsson // The allocation size is the first argument. 121475f9498aSJohn McCall QualType sizeType = getContext().getSizeType(); 121559486a2dSAnders Carlsson 1216f862eb6aSSebastian Redl // If there is a brace-initializer, cannot allocate fewer elements than inits. 1217f862eb6aSSebastian Redl unsigned minElements = 0; 1218f862eb6aSSebastian Redl if (E->isArray() && E->hasInitializer()) { 1219f862eb6aSSebastian Redl if (const InitListExpr *ILE = dyn_cast<InitListExpr>(E->getInitializer())) 1220f862eb6aSSebastian Redl minElements = ILE->getNumInits(); 1221f862eb6aSSebastian Redl } 1222f862eb6aSSebastian Redl 12238a13c418SCraig Topper llvm::Value *numElements = nullptr; 12248a13c418SCraig Topper llvm::Value *allocSizeWithoutCookie = nullptr; 122575f9498aSJohn McCall llvm::Value *allocSize = 1226f862eb6aSSebastian Redl EmitCXXNewAllocSize(*this, E, minElements, numElements, 1227f862eb6aSSebastian Redl allocSizeWithoutCookie); 122859486a2dSAnders Carlsson 122943dca6a8SEli Friedman allocatorArgs.add(RValue::get(allocSize), sizeType); 123059486a2dSAnders Carlsson 123159486a2dSAnders Carlsson // We start at 1 here because the first argument (the allocation size) 123259486a2dSAnders Carlsson // has already been emitted. 1233739756c0SReid Kleckner EmitCallArgs(allocatorArgs, allocatorType->isVariadic(), 12349cacbabdSAlp Toker allocatorType->param_type_begin() + 1, 12359cacbabdSAlp Toker allocatorType->param_type_end(), E->placement_arg_begin(), 1236739756c0SReid Kleckner E->placement_arg_end()); 123759486a2dSAnders Carlsson 12387ec4b434SJohn McCall // Emit the allocation call. If the allocator is a global placement 12397ec4b434SJohn McCall // operator, just "inline" it directly. 12407ec4b434SJohn McCall RValue RV; 12417ec4b434SJohn McCall if (allocator->isReservedGlobalPlacementOperator()) { 12427ec4b434SJohn McCall assert(allocatorArgs.size() == 2); 12437ec4b434SJohn McCall RV = allocatorArgs[1].RV; 12447ec4b434SJohn McCall // TODO: kill any unnecessary computations done for the size 12457ec4b434SJohn McCall // argument. 12467ec4b434SJohn McCall } else { 12478d0dc31dSRichard Smith RV = EmitNewDeleteCall(*this, allocator, allocatorType, allocatorArgs); 12487ec4b434SJohn McCall } 124959486a2dSAnders Carlsson 125075f9498aSJohn McCall // Emit a null check on the allocation result if the allocation 125175f9498aSJohn McCall // function is allowed to return null (because it has a non-throwing 125275f9498aSJohn McCall // exception spec; for this part, we inline 125375f9498aSJohn McCall // CXXNewExpr::shouldNullCheckAllocation()) and we have an 125475f9498aSJohn McCall // interesting initializer. 125531ad754cSSebastian Redl bool nullCheck = allocatorType->isNothrow(getContext()) && 12566047f07eSSebastian Redl (!allocType.isPODType(getContext()) || E->hasInitializer()); 125759486a2dSAnders Carlsson 12588a13c418SCraig Topper llvm::BasicBlock *nullCheckBB = nullptr; 12598a13c418SCraig Topper llvm::BasicBlock *contBB = nullptr; 126059486a2dSAnders Carlsson 126175f9498aSJohn McCall llvm::Value *allocation = RV.getScalarVal(); 1262ea2fea2aSMicah Villmow unsigned AS = allocation->getType()->getPointerAddressSpace(); 126359486a2dSAnders Carlsson 1264f7dcf320SJohn McCall // The null-check means that the initializer is conditionally 1265f7dcf320SJohn McCall // evaluated. 1266f7dcf320SJohn McCall ConditionalEvaluation conditional(*this); 1267f7dcf320SJohn McCall 126875f9498aSJohn McCall if (nullCheck) { 1269f7dcf320SJohn McCall conditional.begin(*this); 127075f9498aSJohn McCall 127175f9498aSJohn McCall nullCheckBB = Builder.GetInsertBlock(); 127275f9498aSJohn McCall llvm::BasicBlock *notNullBB = createBasicBlock("new.notnull"); 127375f9498aSJohn McCall contBB = createBasicBlock("new.cont"); 127475f9498aSJohn McCall 127575f9498aSJohn McCall llvm::Value *isNull = Builder.CreateIsNull(allocation, "new.isnull"); 127675f9498aSJohn McCall Builder.CreateCondBr(isNull, contBB, notNullBB); 127775f9498aSJohn McCall EmitBlock(notNullBB); 127859486a2dSAnders Carlsson } 127959486a2dSAnders Carlsson 1280824c2f53SJohn McCall // If there's an operator delete, enter a cleanup to call it if an 1281824c2f53SJohn McCall // exception is thrown. 128275f9498aSJohn McCall EHScopeStack::stable_iterator operatorDeleteCleanup; 12838a13c418SCraig Topper llvm::Instruction *cleanupDominator = nullptr; 12847ec4b434SJohn McCall if (E->getOperatorDelete() && 12857ec4b434SJohn McCall !E->getOperatorDelete()->isReservedGlobalPlacementOperator()) { 128675f9498aSJohn McCall EnterNewDeleteCleanup(*this, E, allocation, allocSize, allocatorArgs); 128775f9498aSJohn McCall operatorDeleteCleanup = EHStack.stable_begin(); 1288f4beacd0SJohn McCall cleanupDominator = Builder.CreateUnreachable(); 1289824c2f53SJohn McCall } 1290824c2f53SJohn McCall 1291cf9b1f65SEli Friedman assert((allocSize == allocSizeWithoutCookie) == 1292cf9b1f65SEli Friedman CalculateCookiePadding(*this, E).isZero()); 1293cf9b1f65SEli Friedman if (allocSize != allocSizeWithoutCookie) { 1294cf9b1f65SEli Friedman assert(E->isArray()); 1295cf9b1f65SEli Friedman allocation = CGM.getCXXABI().InitializeArrayCookie(*this, allocation, 1296cf9b1f65SEli Friedman numElements, 1297cf9b1f65SEli Friedman E, allocType); 1298cf9b1f65SEli Friedman } 1299cf9b1f65SEli Friedman 13002192fe50SChris Lattner llvm::Type *elementPtrTy 130175f9498aSJohn McCall = ConvertTypeForMem(allocType)->getPointerTo(AS); 130275f9498aSJohn McCall llvm::Value *result = Builder.CreateBitCast(allocation, elementPtrTy); 1303824c2f53SJohn McCall 130499210dc9SJohn McCall EmitNewInitializer(*this, E, allocType, result, numElements, 130599210dc9SJohn McCall allocSizeWithoutCookie); 13068ed55a54SJohn McCall if (E->isArray()) { 13078ed55a54SJohn McCall // NewPtr is a pointer to the base element type. If we're 13088ed55a54SJohn McCall // allocating an array of arrays, we'll need to cast back to the 13098ed55a54SJohn McCall // array pointer type. 13102192fe50SChris Lattner llvm::Type *resultType = ConvertTypeForMem(E->getType()); 131175f9498aSJohn McCall if (result->getType() != resultType) 131275f9498aSJohn McCall result = Builder.CreateBitCast(result, resultType); 131347b4629bSFariborz Jahanian } 131459486a2dSAnders Carlsson 1315824c2f53SJohn McCall // Deactivate the 'operator delete' cleanup if we finished 1316824c2f53SJohn McCall // initialization. 1317f4beacd0SJohn McCall if (operatorDeleteCleanup.isValid()) { 1318f4beacd0SJohn McCall DeactivateCleanupBlock(operatorDeleteCleanup, cleanupDominator); 1319f4beacd0SJohn McCall cleanupDominator->eraseFromParent(); 1320f4beacd0SJohn McCall } 1321824c2f53SJohn McCall 132275f9498aSJohn McCall if (nullCheck) { 1323f7dcf320SJohn McCall conditional.end(*this); 1324f7dcf320SJohn McCall 132575f9498aSJohn McCall llvm::BasicBlock *notNullBB = Builder.GetInsertBlock(); 132675f9498aSJohn McCall EmitBlock(contBB); 132759486a2dSAnders Carlsson 132820c0f02cSJay Foad llvm::PHINode *PHI = Builder.CreatePHI(result->getType(), 2); 132975f9498aSJohn McCall PHI->addIncoming(result, notNullBB); 133075f9498aSJohn McCall PHI->addIncoming(llvm::Constant::getNullValue(result->getType()), 133175f9498aSJohn McCall nullCheckBB); 133259486a2dSAnders Carlsson 133375f9498aSJohn McCall result = PHI; 133459486a2dSAnders Carlsson } 133559486a2dSAnders Carlsson 133675f9498aSJohn McCall return result; 133759486a2dSAnders Carlsson } 133859486a2dSAnders Carlsson 133959486a2dSAnders Carlsson void CodeGenFunction::EmitDeleteCall(const FunctionDecl *DeleteFD, 134059486a2dSAnders Carlsson llvm::Value *Ptr, 134159486a2dSAnders Carlsson QualType DeleteTy) { 13428ed55a54SJohn McCall assert(DeleteFD->getOverloadedOperator() == OO_Delete); 13438ed55a54SJohn McCall 134459486a2dSAnders Carlsson const FunctionProtoType *DeleteFTy = 134559486a2dSAnders Carlsson DeleteFD->getType()->getAs<FunctionProtoType>(); 134659486a2dSAnders Carlsson 134759486a2dSAnders Carlsson CallArgList DeleteArgs; 134859486a2dSAnders Carlsson 134921122cf6SAnders Carlsson // Check if we need to pass the size to the delete operator. 13508a13c418SCraig Topper llvm::Value *Size = nullptr; 135121122cf6SAnders Carlsson QualType SizeTy; 13529cacbabdSAlp Toker if (DeleteFTy->getNumParams() == 2) { 13539cacbabdSAlp Toker SizeTy = DeleteFTy->getParamType(1); 13547df3cbebSKen Dyck CharUnits DeleteTypeSize = getContext().getTypeSizeInChars(DeleteTy); 13557df3cbebSKen Dyck Size = llvm::ConstantInt::get(ConvertType(SizeTy), 13567df3cbebSKen Dyck DeleteTypeSize.getQuantity()); 135721122cf6SAnders Carlsson } 135821122cf6SAnders Carlsson 13599cacbabdSAlp Toker QualType ArgTy = DeleteFTy->getParamType(0); 136059486a2dSAnders Carlsson llvm::Value *DeletePtr = Builder.CreateBitCast(Ptr, ConvertType(ArgTy)); 136143dca6a8SEli Friedman DeleteArgs.add(RValue::get(DeletePtr), ArgTy); 136259486a2dSAnders Carlsson 136321122cf6SAnders Carlsson if (Size) 136443dca6a8SEli Friedman DeleteArgs.add(RValue::get(Size), SizeTy); 136559486a2dSAnders Carlsson 136659486a2dSAnders Carlsson // Emit the call to delete. 13678d0dc31dSRichard Smith EmitNewDeleteCall(*this, DeleteFD, DeleteFTy, DeleteArgs); 136859486a2dSAnders Carlsson } 136959486a2dSAnders Carlsson 13708ed55a54SJohn McCall namespace { 13718ed55a54SJohn McCall /// Calls the given 'operator delete' on a single object. 13728ed55a54SJohn McCall struct CallObjectDelete : EHScopeStack::Cleanup { 13738ed55a54SJohn McCall llvm::Value *Ptr; 13748ed55a54SJohn McCall const FunctionDecl *OperatorDelete; 13758ed55a54SJohn McCall QualType ElementType; 13768ed55a54SJohn McCall 13778ed55a54SJohn McCall CallObjectDelete(llvm::Value *Ptr, 13788ed55a54SJohn McCall const FunctionDecl *OperatorDelete, 13798ed55a54SJohn McCall QualType ElementType) 13808ed55a54SJohn McCall : Ptr(Ptr), OperatorDelete(OperatorDelete), ElementType(ElementType) {} 13818ed55a54SJohn McCall 13824f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 13838ed55a54SJohn McCall CGF.EmitDeleteCall(OperatorDelete, Ptr, ElementType); 13848ed55a54SJohn McCall } 13858ed55a54SJohn McCall }; 13868ed55a54SJohn McCall } 13878ed55a54SJohn McCall 13888ed55a54SJohn McCall /// Emit the code for deleting a single object. 13898ed55a54SJohn McCall static void EmitObjectDelete(CodeGenFunction &CGF, 13908ed55a54SJohn McCall const FunctionDecl *OperatorDelete, 13918ed55a54SJohn McCall llvm::Value *Ptr, 13921c2e20d7SDouglas Gregor QualType ElementType, 13931c2e20d7SDouglas Gregor bool UseGlobalDelete) { 13948ed55a54SJohn McCall // Find the destructor for the type, if applicable. If the 13958ed55a54SJohn McCall // destructor is virtual, we'll just emit the vcall and return. 13968a13c418SCraig Topper const CXXDestructorDecl *Dtor = nullptr; 13978ed55a54SJohn McCall if (const RecordType *RT = ElementType->getAs<RecordType>()) { 13988ed55a54SJohn McCall CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 1399b23533dbSEli Friedman if (RD->hasDefinition() && !RD->hasTrivialDestructor()) { 14008ed55a54SJohn McCall Dtor = RD->getDestructor(); 14018ed55a54SJohn McCall 14028ed55a54SJohn McCall if (Dtor->isVirtual()) { 14031c2e20d7SDouglas Gregor if (UseGlobalDelete) { 14041c2e20d7SDouglas Gregor // If we're supposed to call the global delete, make sure we do so 14051c2e20d7SDouglas Gregor // even if the destructor throws. 140682fb8920SJohn McCall 140782fb8920SJohn McCall // Derive the complete-object pointer, which is what we need 140882fb8920SJohn McCall // to pass to the deallocation function. 140982fb8920SJohn McCall llvm::Value *completePtr = 141082fb8920SJohn McCall CGF.CGM.getCXXABI().adjustToCompleteObject(CGF, Ptr, ElementType); 141182fb8920SJohn McCall 14121c2e20d7SDouglas Gregor CGF.EHStack.pushCleanup<CallObjectDelete>(NormalAndEHCleanup, 141382fb8920SJohn McCall completePtr, OperatorDelete, 14141c2e20d7SDouglas Gregor ElementType); 14151c2e20d7SDouglas Gregor } 14161c2e20d7SDouglas Gregor 1417e30752c9SRichard Smith // FIXME: Provide a source location here. 1418d619711cSTimur Iskhodzhanov CXXDtorType DtorType = UseGlobalDelete ? Dtor_Complete : Dtor_Deleting; 1419d619711cSTimur Iskhodzhanov CGF.CGM.getCXXABI().EmitVirtualDestructorCall(CGF, Dtor, DtorType, 14209dc6eef7SStephen Lin SourceLocation(), Ptr); 14218ed55a54SJohn McCall 14221c2e20d7SDouglas Gregor if (UseGlobalDelete) { 14231c2e20d7SDouglas Gregor CGF.PopCleanupBlock(); 14241c2e20d7SDouglas Gregor } 14251c2e20d7SDouglas Gregor 14268ed55a54SJohn McCall return; 14278ed55a54SJohn McCall } 14288ed55a54SJohn McCall } 14298ed55a54SJohn McCall } 14308ed55a54SJohn McCall 14318ed55a54SJohn McCall // Make sure that we call delete even if the dtor throws. 1432e4df6c8dSJohn McCall // This doesn't have to a conditional cleanup because we're going 1433e4df6c8dSJohn McCall // to pop it off in a second. 14348ed55a54SJohn McCall CGF.EHStack.pushCleanup<CallObjectDelete>(NormalAndEHCleanup, 14358ed55a54SJohn McCall Ptr, OperatorDelete, ElementType); 14368ed55a54SJohn McCall 14378ed55a54SJohn McCall if (Dtor) 14388ed55a54SJohn McCall CGF.EmitCXXDestructorCall(Dtor, Dtor_Complete, 143961535005SDouglas Gregor /*ForVirtualBase=*/false, 144061535005SDouglas Gregor /*Delegating=*/false, 144161535005SDouglas Gregor Ptr); 1442bbafb8a7SDavid Blaikie else if (CGF.getLangOpts().ObjCAutoRefCount && 144331168b07SJohn McCall ElementType->isObjCLifetimeType()) { 144431168b07SJohn McCall switch (ElementType.getObjCLifetime()) { 144531168b07SJohn McCall case Qualifiers::OCL_None: 144631168b07SJohn McCall case Qualifiers::OCL_ExplicitNone: 144731168b07SJohn McCall case Qualifiers::OCL_Autoreleasing: 144831168b07SJohn McCall break; 144931168b07SJohn McCall 145031168b07SJohn McCall case Qualifiers::OCL_Strong: { 145131168b07SJohn McCall // Load the pointer value. 145231168b07SJohn McCall llvm::Value *PtrValue = CGF.Builder.CreateLoad(Ptr, 145331168b07SJohn McCall ElementType.isVolatileQualified()); 145431168b07SJohn McCall 1455cdda29c9SJohn McCall CGF.EmitARCRelease(PtrValue, ARCPreciseLifetime); 145631168b07SJohn McCall break; 145731168b07SJohn McCall } 145831168b07SJohn McCall 145931168b07SJohn McCall case Qualifiers::OCL_Weak: 146031168b07SJohn McCall CGF.EmitARCDestroyWeak(Ptr); 146131168b07SJohn McCall break; 146231168b07SJohn McCall } 146331168b07SJohn McCall } 14648ed55a54SJohn McCall 14658ed55a54SJohn McCall CGF.PopCleanupBlock(); 14668ed55a54SJohn McCall } 14678ed55a54SJohn McCall 14688ed55a54SJohn McCall namespace { 14698ed55a54SJohn McCall /// Calls the given 'operator delete' on an array of objects. 14708ed55a54SJohn McCall struct CallArrayDelete : EHScopeStack::Cleanup { 14718ed55a54SJohn McCall llvm::Value *Ptr; 14728ed55a54SJohn McCall const FunctionDecl *OperatorDelete; 14738ed55a54SJohn McCall llvm::Value *NumElements; 14748ed55a54SJohn McCall QualType ElementType; 14758ed55a54SJohn McCall CharUnits CookieSize; 14768ed55a54SJohn McCall 14778ed55a54SJohn McCall CallArrayDelete(llvm::Value *Ptr, 14788ed55a54SJohn McCall const FunctionDecl *OperatorDelete, 14798ed55a54SJohn McCall llvm::Value *NumElements, 14808ed55a54SJohn McCall QualType ElementType, 14818ed55a54SJohn McCall CharUnits CookieSize) 14828ed55a54SJohn McCall : Ptr(Ptr), OperatorDelete(OperatorDelete), NumElements(NumElements), 14838ed55a54SJohn McCall ElementType(ElementType), CookieSize(CookieSize) {} 14848ed55a54SJohn McCall 14854f12f10dSCraig Topper void Emit(CodeGenFunction &CGF, Flags flags) override { 14868ed55a54SJohn McCall const FunctionProtoType *DeleteFTy = 14878ed55a54SJohn McCall OperatorDelete->getType()->getAs<FunctionProtoType>(); 14889cacbabdSAlp Toker assert(DeleteFTy->getNumParams() == 1 || DeleteFTy->getNumParams() == 2); 14898ed55a54SJohn McCall 14908ed55a54SJohn McCall CallArgList Args; 14918ed55a54SJohn McCall 14928ed55a54SJohn McCall // Pass the pointer as the first argument. 14939cacbabdSAlp Toker QualType VoidPtrTy = DeleteFTy->getParamType(0); 14948ed55a54SJohn McCall llvm::Value *DeletePtr 14958ed55a54SJohn McCall = CGF.Builder.CreateBitCast(Ptr, CGF.ConvertType(VoidPtrTy)); 149643dca6a8SEli Friedman Args.add(RValue::get(DeletePtr), VoidPtrTy); 14978ed55a54SJohn McCall 14988ed55a54SJohn McCall // Pass the original requested size as the second argument. 14999cacbabdSAlp Toker if (DeleteFTy->getNumParams() == 2) { 15009cacbabdSAlp Toker QualType size_t = DeleteFTy->getParamType(1); 15012192fe50SChris Lattner llvm::IntegerType *SizeTy 15028ed55a54SJohn McCall = cast<llvm::IntegerType>(CGF.ConvertType(size_t)); 15038ed55a54SJohn McCall 15048ed55a54SJohn McCall CharUnits ElementTypeSize = 15058ed55a54SJohn McCall CGF.CGM.getContext().getTypeSizeInChars(ElementType); 15068ed55a54SJohn McCall 15078ed55a54SJohn McCall // The size of an element, multiplied by the number of elements. 15088ed55a54SJohn McCall llvm::Value *Size 15098ed55a54SJohn McCall = llvm::ConstantInt::get(SizeTy, ElementTypeSize.getQuantity()); 15108ed55a54SJohn McCall Size = CGF.Builder.CreateMul(Size, NumElements); 15118ed55a54SJohn McCall 15128ed55a54SJohn McCall // Plus the size of the cookie if applicable. 15138ed55a54SJohn McCall if (!CookieSize.isZero()) { 15148ed55a54SJohn McCall llvm::Value *CookieSizeV 15158ed55a54SJohn McCall = llvm::ConstantInt::get(SizeTy, CookieSize.getQuantity()); 15168ed55a54SJohn McCall Size = CGF.Builder.CreateAdd(Size, CookieSizeV); 15178ed55a54SJohn McCall } 15188ed55a54SJohn McCall 151943dca6a8SEli Friedman Args.add(RValue::get(Size), size_t); 15208ed55a54SJohn McCall } 15218ed55a54SJohn McCall 15228ed55a54SJohn McCall // Emit the call to delete. 15238d0dc31dSRichard Smith EmitNewDeleteCall(CGF, OperatorDelete, DeleteFTy, Args); 15248ed55a54SJohn McCall } 15258ed55a54SJohn McCall }; 15268ed55a54SJohn McCall } 15278ed55a54SJohn McCall 15288ed55a54SJohn McCall /// Emit the code for deleting an array of objects. 15298ed55a54SJohn McCall static void EmitArrayDelete(CodeGenFunction &CGF, 1530284c48ffSJohn McCall const CXXDeleteExpr *E, 1531ca2c56f2SJohn McCall llvm::Value *deletedPtr, 1532ca2c56f2SJohn McCall QualType elementType) { 15338a13c418SCraig Topper llvm::Value *numElements = nullptr; 15348a13c418SCraig Topper llvm::Value *allocatedPtr = nullptr; 1535ca2c56f2SJohn McCall CharUnits cookieSize; 1536ca2c56f2SJohn McCall CGF.CGM.getCXXABI().ReadArrayCookie(CGF, deletedPtr, E, elementType, 1537ca2c56f2SJohn McCall numElements, allocatedPtr, cookieSize); 15388ed55a54SJohn McCall 1539ca2c56f2SJohn McCall assert(allocatedPtr && "ReadArrayCookie didn't set allocated pointer"); 15408ed55a54SJohn McCall 15418ed55a54SJohn McCall // Make sure that we call delete even if one of the dtors throws. 1542ca2c56f2SJohn McCall const FunctionDecl *operatorDelete = E->getOperatorDelete(); 15438ed55a54SJohn McCall CGF.EHStack.pushCleanup<CallArrayDelete>(NormalAndEHCleanup, 1544ca2c56f2SJohn McCall allocatedPtr, operatorDelete, 1545ca2c56f2SJohn McCall numElements, elementType, 1546ca2c56f2SJohn McCall cookieSize); 15478ed55a54SJohn McCall 1548ca2c56f2SJohn McCall // Destroy the elements. 1549ca2c56f2SJohn McCall if (QualType::DestructionKind dtorKind = elementType.isDestructedType()) { 1550ca2c56f2SJohn McCall assert(numElements && "no element count for a type with a destructor!"); 155131168b07SJohn McCall 1552ca2c56f2SJohn McCall llvm::Value *arrayEnd = 1553ca2c56f2SJohn McCall CGF.Builder.CreateInBoundsGEP(deletedPtr, numElements, "delete.end"); 155497eab0a2SJohn McCall 155597eab0a2SJohn McCall // Note that it is legal to allocate a zero-length array, and we 155697eab0a2SJohn McCall // can never fold the check away because the length should always 155797eab0a2SJohn McCall // come from a cookie. 1558ca2c56f2SJohn McCall CGF.emitArrayDestroy(deletedPtr, arrayEnd, elementType, 1559ca2c56f2SJohn McCall CGF.getDestroyer(dtorKind), 156097eab0a2SJohn McCall /*checkZeroLength*/ true, 1561ca2c56f2SJohn McCall CGF.needsEHCleanup(dtorKind)); 15628ed55a54SJohn McCall } 15638ed55a54SJohn McCall 1564ca2c56f2SJohn McCall // Pop the cleanup block. 15658ed55a54SJohn McCall CGF.PopCleanupBlock(); 15668ed55a54SJohn McCall } 15678ed55a54SJohn McCall 156859486a2dSAnders Carlsson void CodeGenFunction::EmitCXXDeleteExpr(const CXXDeleteExpr *E) { 156959486a2dSAnders Carlsson const Expr *Arg = E->getArgument(); 157059486a2dSAnders Carlsson llvm::Value *Ptr = EmitScalarExpr(Arg); 157159486a2dSAnders Carlsson 157259486a2dSAnders Carlsson // Null check the pointer. 157359486a2dSAnders Carlsson llvm::BasicBlock *DeleteNotNull = createBasicBlock("delete.notnull"); 157459486a2dSAnders Carlsson llvm::BasicBlock *DeleteEnd = createBasicBlock("delete.end"); 157559486a2dSAnders Carlsson 157698981b10SAnders Carlsson llvm::Value *IsNull = Builder.CreateIsNull(Ptr, "isnull"); 157759486a2dSAnders Carlsson 157859486a2dSAnders Carlsson Builder.CreateCondBr(IsNull, DeleteEnd, DeleteNotNull); 157959486a2dSAnders Carlsson EmitBlock(DeleteNotNull); 158059486a2dSAnders Carlsson 15818ed55a54SJohn McCall // We might be deleting a pointer to array. If so, GEP down to the 15828ed55a54SJohn McCall // first non-array element. 15838ed55a54SJohn McCall // (this assumes that A(*)[3][7] is converted to [3 x [7 x %A]]*) 15848ed55a54SJohn McCall QualType DeleteTy = Arg->getType()->getAs<PointerType>()->getPointeeType(); 15858ed55a54SJohn McCall if (DeleteTy->isConstantArrayType()) { 15868ed55a54SJohn McCall llvm::Value *Zero = Builder.getInt32(0); 15870e62c1ccSChris Lattner SmallVector<llvm::Value*,8> GEP; 158859486a2dSAnders Carlsson 15898ed55a54SJohn McCall GEP.push_back(Zero); // point at the outermost array 15908ed55a54SJohn McCall 15918ed55a54SJohn McCall // For each layer of array type we're pointing at: 15928ed55a54SJohn McCall while (const ConstantArrayType *Arr 15938ed55a54SJohn McCall = getContext().getAsConstantArrayType(DeleteTy)) { 15948ed55a54SJohn McCall // 1. Unpeel the array type. 15958ed55a54SJohn McCall DeleteTy = Arr->getElementType(); 15968ed55a54SJohn McCall 15978ed55a54SJohn McCall // 2. GEP to the first element of the array. 15988ed55a54SJohn McCall GEP.push_back(Zero); 15998ed55a54SJohn McCall } 16008ed55a54SJohn McCall 1601040dd82fSJay Foad Ptr = Builder.CreateInBoundsGEP(Ptr, GEP, "del.first"); 16028ed55a54SJohn McCall } 16038ed55a54SJohn McCall 160404f36218SDouglas Gregor assert(ConvertTypeForMem(DeleteTy) == 160504f36218SDouglas Gregor cast<llvm::PointerType>(Ptr->getType())->getElementType()); 16068ed55a54SJohn McCall 160759486a2dSAnders Carlsson if (E->isArrayForm()) { 1608284c48ffSJohn McCall EmitArrayDelete(*this, E, Ptr, DeleteTy); 16098ed55a54SJohn McCall } else { 16101c2e20d7SDouglas Gregor EmitObjectDelete(*this, E->getOperatorDelete(), Ptr, DeleteTy, 16111c2e20d7SDouglas Gregor E->isGlobalDelete()); 161259486a2dSAnders Carlsson } 161359486a2dSAnders Carlsson 161459486a2dSAnders Carlsson EmitBlock(DeleteEnd); 161559486a2dSAnders Carlsson } 161659486a2dSAnders Carlsson 16170c63350bSAnders Carlsson static llvm::Constant *getBadTypeidFn(CodeGenFunction &CGF) { 16180c63350bSAnders Carlsson // void __cxa_bad_typeid(); 1619ece0409aSChris Lattner llvm::FunctionType *FTy = llvm::FunctionType::get(CGF.VoidTy, false); 16200c63350bSAnders Carlsson 16210c63350bSAnders Carlsson return CGF.CGM.CreateRuntimeFunction(FTy, "__cxa_bad_typeid"); 16220c63350bSAnders Carlsson } 16230c63350bSAnders Carlsson 16240c63350bSAnders Carlsson static void EmitBadTypeidCall(CodeGenFunction &CGF) { 1625bbe277c4SAnders Carlsson llvm::Value *Fn = getBadTypeidFn(CGF); 1626882987f3SJohn McCall CGF.EmitRuntimeCallOrInvoke(Fn).setDoesNotReturn(); 16270c63350bSAnders Carlsson CGF.Builder.CreateUnreachable(); 16280c63350bSAnders Carlsson } 16290c63350bSAnders Carlsson 1630940f02d2SAnders Carlsson static llvm::Value *EmitTypeidFromVTable(CodeGenFunction &CGF, 1631940f02d2SAnders Carlsson const Expr *E, 16322192fe50SChris Lattner llvm::Type *StdTypeInfoPtrTy) { 1633940f02d2SAnders Carlsson // Get the vtable pointer. 1634940f02d2SAnders Carlsson llvm::Value *ThisPtr = CGF.EmitLValue(E).getAddress(); 1635940f02d2SAnders Carlsson 1636940f02d2SAnders Carlsson // C++ [expr.typeid]p2: 1637940f02d2SAnders Carlsson // If the glvalue expression is obtained by applying the unary * operator to 1638940f02d2SAnders Carlsson // a pointer and the pointer is a null pointer value, the typeid expression 1639940f02d2SAnders Carlsson // throws the std::bad_typeid exception. 1640940f02d2SAnders Carlsson if (const UnaryOperator *UO = dyn_cast<UnaryOperator>(E->IgnoreParens())) { 1641940f02d2SAnders Carlsson if (UO->getOpcode() == UO_Deref) { 1642940f02d2SAnders Carlsson llvm::BasicBlock *BadTypeidBlock = 1643940f02d2SAnders Carlsson CGF.createBasicBlock("typeid.bad_typeid"); 1644940f02d2SAnders Carlsson llvm::BasicBlock *EndBlock = 1645940f02d2SAnders Carlsson CGF.createBasicBlock("typeid.end"); 1646940f02d2SAnders Carlsson 1647940f02d2SAnders Carlsson llvm::Value *IsNull = CGF.Builder.CreateIsNull(ThisPtr); 1648940f02d2SAnders Carlsson CGF.Builder.CreateCondBr(IsNull, BadTypeidBlock, EndBlock); 1649940f02d2SAnders Carlsson 1650940f02d2SAnders Carlsson CGF.EmitBlock(BadTypeidBlock); 1651940f02d2SAnders Carlsson EmitBadTypeidCall(CGF); 1652940f02d2SAnders Carlsson CGF.EmitBlock(EndBlock); 1653940f02d2SAnders Carlsson } 1654940f02d2SAnders Carlsson } 1655940f02d2SAnders Carlsson 1656940f02d2SAnders Carlsson llvm::Value *Value = CGF.GetVTablePtr(ThisPtr, 1657940f02d2SAnders Carlsson StdTypeInfoPtrTy->getPointerTo()); 1658940f02d2SAnders Carlsson 1659940f02d2SAnders Carlsson // Load the type info. 1660940f02d2SAnders Carlsson Value = CGF.Builder.CreateConstInBoundsGEP1_64(Value, -1ULL); 1661940f02d2SAnders Carlsson return CGF.Builder.CreateLoad(Value); 1662940f02d2SAnders Carlsson } 1663940f02d2SAnders Carlsson 166459486a2dSAnders Carlsson llvm::Value *CodeGenFunction::EmitCXXTypeidExpr(const CXXTypeidExpr *E) { 16652192fe50SChris Lattner llvm::Type *StdTypeInfoPtrTy = 1666940f02d2SAnders Carlsson ConvertType(E->getType())->getPointerTo(); 1667fd7dfeb7SAnders Carlsson 16683f4336cbSAnders Carlsson if (E->isTypeOperand()) { 16693f4336cbSAnders Carlsson llvm::Constant *TypeInfo = 1670143c55eaSDavid Majnemer CGM.GetAddrOfRTTIDescriptor(E->getTypeOperand(getContext())); 1671940f02d2SAnders Carlsson return Builder.CreateBitCast(TypeInfo, StdTypeInfoPtrTy); 16723f4336cbSAnders Carlsson } 1673fd7dfeb7SAnders Carlsson 1674940f02d2SAnders Carlsson // C++ [expr.typeid]p2: 1675940f02d2SAnders Carlsson // When typeid is applied to a glvalue expression whose type is a 1676940f02d2SAnders Carlsson // polymorphic class type, the result refers to a std::type_info object 1677940f02d2SAnders Carlsson // representing the type of the most derived object (that is, the dynamic 1678940f02d2SAnders Carlsson // type) to which the glvalue refers. 1679ef8bf436SRichard Smith if (E->isPotentiallyEvaluated()) 1680940f02d2SAnders Carlsson return EmitTypeidFromVTable(*this, E->getExprOperand(), 1681940f02d2SAnders Carlsson StdTypeInfoPtrTy); 1682940f02d2SAnders Carlsson 1683940f02d2SAnders Carlsson QualType OperandTy = E->getExprOperand()->getType(); 1684940f02d2SAnders Carlsson return Builder.CreateBitCast(CGM.GetAddrOfRTTIDescriptor(OperandTy), 1685940f02d2SAnders Carlsson StdTypeInfoPtrTy); 168659486a2dSAnders Carlsson } 168759486a2dSAnders Carlsson 1688882d790fSAnders Carlsson static llvm::Constant *getDynamicCastFn(CodeGenFunction &CGF) { 1689882d790fSAnders Carlsson // void *__dynamic_cast(const void *sub, 1690882d790fSAnders Carlsson // const abi::__class_type_info *src, 1691882d790fSAnders Carlsson // const abi::__class_type_info *dst, 1692882d790fSAnders Carlsson // std::ptrdiff_t src2dst_offset); 1693882d790fSAnders Carlsson 1694ece0409aSChris Lattner llvm::Type *Int8PtrTy = CGF.Int8PtrTy; 1695a5f58b05SChris Lattner llvm::Type *PtrDiffTy = 1696882d790fSAnders Carlsson CGF.ConvertType(CGF.getContext().getPointerDiffType()); 1697882d790fSAnders Carlsson 1698a5f58b05SChris Lattner llvm::Type *Args[4] = { Int8PtrTy, Int8PtrTy, Int8PtrTy, PtrDiffTy }; 1699882d790fSAnders Carlsson 1700b5206330SBenjamin Kramer llvm::FunctionType *FTy = llvm::FunctionType::get(Int8PtrTy, Args, false); 1701882d790fSAnders Carlsson 1702b5206330SBenjamin Kramer // Mark the function as nounwind readonly. 1703b5206330SBenjamin Kramer llvm::Attribute::AttrKind FuncAttrs[] = { llvm::Attribute::NoUnwind, 1704b5206330SBenjamin Kramer llvm::Attribute::ReadOnly }; 1705b5206330SBenjamin Kramer llvm::AttributeSet Attrs = llvm::AttributeSet::get( 1706b5206330SBenjamin Kramer CGF.getLLVMContext(), llvm::AttributeSet::FunctionIndex, FuncAttrs); 1707b5206330SBenjamin Kramer 1708b5206330SBenjamin Kramer return CGF.CGM.CreateRuntimeFunction(FTy, "__dynamic_cast", Attrs); 1709882d790fSAnders Carlsson } 1710882d790fSAnders Carlsson 1711882d790fSAnders Carlsson static llvm::Constant *getBadCastFn(CodeGenFunction &CGF) { 1712882d790fSAnders Carlsson // void __cxa_bad_cast(); 1713ece0409aSChris Lattner llvm::FunctionType *FTy = llvm::FunctionType::get(CGF.VoidTy, false); 1714882d790fSAnders Carlsson return CGF.CGM.CreateRuntimeFunction(FTy, "__cxa_bad_cast"); 1715882d790fSAnders Carlsson } 1716882d790fSAnders Carlsson 1717c1c9971cSAnders Carlsson static void EmitBadCastCall(CodeGenFunction &CGF) { 1718bbe277c4SAnders Carlsson llvm::Value *Fn = getBadCastFn(CGF); 1719882987f3SJohn McCall CGF.EmitRuntimeCallOrInvoke(Fn).setDoesNotReturn(); 1720c1c9971cSAnders Carlsson CGF.Builder.CreateUnreachable(); 1721c1c9971cSAnders Carlsson } 1722c1c9971cSAnders Carlsson 1723d9c8455aSBenjamin Kramer /// \brief Compute the src2dst_offset hint as described in the 1724d9c8455aSBenjamin Kramer /// Itanium C++ ABI [2.9.7] 1725d9c8455aSBenjamin Kramer static CharUnits computeOffsetHint(ASTContext &Context, 1726d9c8455aSBenjamin Kramer const CXXRecordDecl *Src, 1727d9c8455aSBenjamin Kramer const CXXRecordDecl *Dst) { 1728d9c8455aSBenjamin Kramer CXXBasePaths Paths(/*FindAmbiguities=*/true, /*RecordPaths=*/true, 1729d9c8455aSBenjamin Kramer /*DetectVirtual=*/false); 1730d9c8455aSBenjamin Kramer 1731d9c8455aSBenjamin Kramer // If Dst is not derived from Src we can skip the whole computation below and 1732d9c8455aSBenjamin Kramer // return that Src is not a public base of Dst. Record all inheritance paths. 1733d9c8455aSBenjamin Kramer if (!Dst->isDerivedFrom(Src, Paths)) 1734d9c8455aSBenjamin Kramer return CharUnits::fromQuantity(-2ULL); 1735d9c8455aSBenjamin Kramer 1736d9c8455aSBenjamin Kramer unsigned NumPublicPaths = 0; 1737d9c8455aSBenjamin Kramer CharUnits Offset; 1738d9c8455aSBenjamin Kramer 1739d9c8455aSBenjamin Kramer // Now walk all possible inheritance paths. 1740d9c8455aSBenjamin Kramer for (CXXBasePaths::paths_iterator I = Paths.begin(), E = Paths.end(); 1741d9c8455aSBenjamin Kramer I != E; ++I) { 1742d9c8455aSBenjamin Kramer if (I->Access != AS_public) // Ignore non-public inheritance. 1743d9c8455aSBenjamin Kramer continue; 1744d9c8455aSBenjamin Kramer 1745d9c8455aSBenjamin Kramer ++NumPublicPaths; 1746d9c8455aSBenjamin Kramer 1747d9c8455aSBenjamin Kramer for (CXXBasePath::iterator J = I->begin(), JE = I->end(); J != JE; ++J) { 1748d9c8455aSBenjamin Kramer // If the path contains a virtual base class we can't give any hint. 1749d9c8455aSBenjamin Kramer // -1: no hint. 1750d9c8455aSBenjamin Kramer if (J->Base->isVirtual()) 1751d9c8455aSBenjamin Kramer return CharUnits::fromQuantity(-1ULL); 1752d9c8455aSBenjamin Kramer 1753d9c8455aSBenjamin Kramer if (NumPublicPaths > 1) // Won't use offsets, skip computation. 1754d9c8455aSBenjamin Kramer continue; 1755d9c8455aSBenjamin Kramer 1756d9c8455aSBenjamin Kramer // Accumulate the base class offsets. 1757d9c8455aSBenjamin Kramer const ASTRecordLayout &L = Context.getASTRecordLayout(J->Class); 1758d9c8455aSBenjamin Kramer Offset += L.getBaseClassOffset(J->Base->getType()->getAsCXXRecordDecl()); 1759d9c8455aSBenjamin Kramer } 1760d9c8455aSBenjamin Kramer } 1761d9c8455aSBenjamin Kramer 1762d9c8455aSBenjamin Kramer // -2: Src is not a public base of Dst. 1763d9c8455aSBenjamin Kramer if (NumPublicPaths == 0) 1764d9c8455aSBenjamin Kramer return CharUnits::fromQuantity(-2ULL); 1765d9c8455aSBenjamin Kramer 1766d9c8455aSBenjamin Kramer // -3: Src is a multiple public base type but never a virtual base type. 1767d9c8455aSBenjamin Kramer if (NumPublicPaths > 1) 1768d9c8455aSBenjamin Kramer return CharUnits::fromQuantity(-3ULL); 1769d9c8455aSBenjamin Kramer 1770d9c8455aSBenjamin Kramer // Otherwise, the Src type is a unique public nonvirtual base type of Dst. 1771d9c8455aSBenjamin Kramer // Return the offset of Src from the origin of Dst. 1772d9c8455aSBenjamin Kramer return Offset; 1773d9c8455aSBenjamin Kramer } 1774d9c8455aSBenjamin Kramer 1775882d790fSAnders Carlsson static llvm::Value * 1776882d790fSAnders Carlsson EmitDynamicCastCall(CodeGenFunction &CGF, llvm::Value *Value, 1777882d790fSAnders Carlsson QualType SrcTy, QualType DestTy, 1778882d790fSAnders Carlsson llvm::BasicBlock *CastEnd) { 17792192fe50SChris Lattner llvm::Type *PtrDiffLTy = 1780882d790fSAnders Carlsson CGF.ConvertType(CGF.getContext().getPointerDiffType()); 17812192fe50SChris Lattner llvm::Type *DestLTy = CGF.ConvertType(DestTy); 1782882d790fSAnders Carlsson 1783882d790fSAnders Carlsson if (const PointerType *PTy = DestTy->getAs<PointerType>()) { 1784882d790fSAnders Carlsson if (PTy->getPointeeType()->isVoidType()) { 1785882d790fSAnders Carlsson // C++ [expr.dynamic.cast]p7: 1786882d790fSAnders Carlsson // If T is "pointer to cv void," then the result is a pointer to the 1787882d790fSAnders Carlsson // most derived object pointed to by v. 1788882d790fSAnders Carlsson 1789882d790fSAnders Carlsson // Get the vtable pointer. 1790882d790fSAnders Carlsson llvm::Value *VTable = CGF.GetVTablePtr(Value, PtrDiffLTy->getPointerTo()); 1791882d790fSAnders Carlsson 1792882d790fSAnders Carlsson // Get the offset-to-top from the vtable. 1793882d790fSAnders Carlsson llvm::Value *OffsetToTop = 1794882d790fSAnders Carlsson CGF.Builder.CreateConstInBoundsGEP1_64(VTable, -2ULL); 1795882d790fSAnders Carlsson OffsetToTop = CGF.Builder.CreateLoad(OffsetToTop, "offset.to.top"); 1796882d790fSAnders Carlsson 1797882d790fSAnders Carlsson // Finally, add the offset to the pointer. 1798882d790fSAnders Carlsson Value = CGF.EmitCastToVoidPtr(Value); 1799882d790fSAnders Carlsson Value = CGF.Builder.CreateInBoundsGEP(Value, OffsetToTop); 1800882d790fSAnders Carlsson 1801882d790fSAnders Carlsson return CGF.Builder.CreateBitCast(Value, DestLTy); 1802882d790fSAnders Carlsson } 1803882d790fSAnders Carlsson } 1804882d790fSAnders Carlsson 1805882d790fSAnders Carlsson QualType SrcRecordTy; 1806882d790fSAnders Carlsson QualType DestRecordTy; 1807882d790fSAnders Carlsson 1808882d790fSAnders Carlsson if (const PointerType *DestPTy = DestTy->getAs<PointerType>()) { 1809882d790fSAnders Carlsson SrcRecordTy = SrcTy->castAs<PointerType>()->getPointeeType(); 1810882d790fSAnders Carlsson DestRecordTy = DestPTy->getPointeeType(); 1811882d790fSAnders Carlsson } else { 1812882d790fSAnders Carlsson SrcRecordTy = SrcTy; 1813882d790fSAnders Carlsson DestRecordTy = DestTy->castAs<ReferenceType>()->getPointeeType(); 1814882d790fSAnders Carlsson } 1815882d790fSAnders Carlsson 1816882d790fSAnders Carlsson assert(SrcRecordTy->isRecordType() && "source type must be a record type!"); 1817882d790fSAnders Carlsson assert(DestRecordTy->isRecordType() && "dest type must be a record type!"); 1818882d790fSAnders Carlsson 1819882d790fSAnders Carlsson llvm::Value *SrcRTTI = 1820882d790fSAnders Carlsson CGF.CGM.GetAddrOfRTTIDescriptor(SrcRecordTy.getUnqualifiedType()); 1821882d790fSAnders Carlsson llvm::Value *DestRTTI = 1822882d790fSAnders Carlsson CGF.CGM.GetAddrOfRTTIDescriptor(DestRecordTy.getUnqualifiedType()); 1823882d790fSAnders Carlsson 1824d9c8455aSBenjamin Kramer // Compute the offset hint. 1825d9c8455aSBenjamin Kramer const CXXRecordDecl *SrcDecl = SrcRecordTy->getAsCXXRecordDecl(); 1826d9c8455aSBenjamin Kramer const CXXRecordDecl *DestDecl = DestRecordTy->getAsCXXRecordDecl(); 1827d9c8455aSBenjamin Kramer llvm::Value *OffsetHint = 1828d9c8455aSBenjamin Kramer llvm::ConstantInt::get(PtrDiffLTy, 1829d9c8455aSBenjamin Kramer computeOffsetHint(CGF.getContext(), SrcDecl, 1830d9c8455aSBenjamin Kramer DestDecl).getQuantity()); 1831882d790fSAnders Carlsson 1832882d790fSAnders Carlsson // Emit the call to __dynamic_cast. 1833882d790fSAnders Carlsson Value = CGF.EmitCastToVoidPtr(Value); 1834882987f3SJohn McCall 1835882987f3SJohn McCall llvm::Value *args[] = { Value, SrcRTTI, DestRTTI, OffsetHint }; 1836882987f3SJohn McCall Value = CGF.EmitNounwindRuntimeCall(getDynamicCastFn(CGF), args); 1837882d790fSAnders Carlsson Value = CGF.Builder.CreateBitCast(Value, DestLTy); 1838882d790fSAnders Carlsson 1839882d790fSAnders Carlsson /// C++ [expr.dynamic.cast]p9: 1840882d790fSAnders Carlsson /// A failed cast to reference type throws std::bad_cast 1841882d790fSAnders Carlsson if (DestTy->isReferenceType()) { 1842882d790fSAnders Carlsson llvm::BasicBlock *BadCastBlock = 1843882d790fSAnders Carlsson CGF.createBasicBlock("dynamic_cast.bad_cast"); 1844882d790fSAnders Carlsson 1845882d790fSAnders Carlsson llvm::Value *IsNull = CGF.Builder.CreateIsNull(Value); 1846882d790fSAnders Carlsson CGF.Builder.CreateCondBr(IsNull, BadCastBlock, CastEnd); 1847882d790fSAnders Carlsson 1848882d790fSAnders Carlsson CGF.EmitBlock(BadCastBlock); 1849c1c9971cSAnders Carlsson EmitBadCastCall(CGF); 1850882d790fSAnders Carlsson } 1851882d790fSAnders Carlsson 1852882d790fSAnders Carlsson return Value; 1853882d790fSAnders Carlsson } 1854882d790fSAnders Carlsson 1855c1c9971cSAnders Carlsson static llvm::Value *EmitDynamicCastToNull(CodeGenFunction &CGF, 1856c1c9971cSAnders Carlsson QualType DestTy) { 18572192fe50SChris Lattner llvm::Type *DestLTy = CGF.ConvertType(DestTy); 1858c1c9971cSAnders Carlsson if (DestTy->isPointerType()) 1859c1c9971cSAnders Carlsson return llvm::Constant::getNullValue(DestLTy); 1860c1c9971cSAnders Carlsson 1861c1c9971cSAnders Carlsson /// C++ [expr.dynamic.cast]p9: 1862c1c9971cSAnders Carlsson /// A failed cast to reference type throws std::bad_cast 1863c1c9971cSAnders Carlsson EmitBadCastCall(CGF); 1864c1c9971cSAnders Carlsson 1865c1c9971cSAnders Carlsson CGF.EmitBlock(CGF.createBasicBlock("dynamic_cast.end")); 1866c1c9971cSAnders Carlsson return llvm::UndefValue::get(DestLTy); 1867c1c9971cSAnders Carlsson } 1868c1c9971cSAnders Carlsson 1869882d790fSAnders Carlsson llvm::Value *CodeGenFunction::EmitDynamicCast(llvm::Value *Value, 187059486a2dSAnders Carlsson const CXXDynamicCastExpr *DCE) { 18713f4336cbSAnders Carlsson QualType DestTy = DCE->getTypeAsWritten(); 18723f4336cbSAnders Carlsson 1873c1c9971cSAnders Carlsson if (DCE->isAlwaysNull()) 1874c1c9971cSAnders Carlsson return EmitDynamicCastToNull(*this, DestTy); 1875c1c9971cSAnders Carlsson 1876c1c9971cSAnders Carlsson QualType SrcTy = DCE->getSubExpr()->getType(); 1877c1c9971cSAnders Carlsson 1878882d790fSAnders Carlsson // C++ [expr.dynamic.cast]p4: 1879882d790fSAnders Carlsson // If the value of v is a null pointer value in the pointer case, the result 1880882d790fSAnders Carlsson // is the null pointer value of type T. 1881882d790fSAnders Carlsson bool ShouldNullCheckSrcValue = SrcTy->isPointerType(); 188259486a2dSAnders Carlsson 18838a13c418SCraig Topper llvm::BasicBlock *CastNull = nullptr; 18848a13c418SCraig Topper llvm::BasicBlock *CastNotNull = nullptr; 1885882d790fSAnders Carlsson llvm::BasicBlock *CastEnd = createBasicBlock("dynamic_cast.end"); 1886fa8b4955SDouglas Gregor 1887882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 1888882d790fSAnders Carlsson CastNull = createBasicBlock("dynamic_cast.null"); 1889882d790fSAnders Carlsson CastNotNull = createBasicBlock("dynamic_cast.notnull"); 1890882d790fSAnders Carlsson 1891882d790fSAnders Carlsson llvm::Value *IsNull = Builder.CreateIsNull(Value); 1892882d790fSAnders Carlsson Builder.CreateCondBr(IsNull, CastNull, CastNotNull); 1893882d790fSAnders Carlsson EmitBlock(CastNotNull); 189459486a2dSAnders Carlsson } 189559486a2dSAnders Carlsson 1896882d790fSAnders Carlsson Value = EmitDynamicCastCall(*this, Value, SrcTy, DestTy, CastEnd); 18973f4336cbSAnders Carlsson 1898882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 1899882d790fSAnders Carlsson EmitBranch(CastEnd); 190059486a2dSAnders Carlsson 1901882d790fSAnders Carlsson EmitBlock(CastNull); 1902882d790fSAnders Carlsson EmitBranch(CastEnd); 190359486a2dSAnders Carlsson } 190459486a2dSAnders Carlsson 1905882d790fSAnders Carlsson EmitBlock(CastEnd); 190659486a2dSAnders Carlsson 1907882d790fSAnders Carlsson if (ShouldNullCheckSrcValue) { 1908882d790fSAnders Carlsson llvm::PHINode *PHI = Builder.CreatePHI(Value->getType(), 2); 1909882d790fSAnders Carlsson PHI->addIncoming(Value, CastNotNull); 1910882d790fSAnders Carlsson PHI->addIncoming(llvm::Constant::getNullValue(Value->getType()), CastNull); 191159486a2dSAnders Carlsson 1912882d790fSAnders Carlsson Value = PHI; 191359486a2dSAnders Carlsson } 191459486a2dSAnders Carlsson 1915882d790fSAnders Carlsson return Value; 191659486a2dSAnders Carlsson } 1917c370a7eeSEli Friedman 1918c370a7eeSEli Friedman void CodeGenFunction::EmitLambdaExpr(const LambdaExpr *E, AggValueSlot Slot) { 19198631f3e8SEli Friedman RunCleanupsScope Scope(*this); 19207f1ff600SEli Friedman LValue SlotLV = MakeAddrLValue(Slot.getAddr(), E->getType(), 19217f1ff600SEli Friedman Slot.getAlignment()); 19228631f3e8SEli Friedman 1923c370a7eeSEli Friedman CXXRecordDecl::field_iterator CurField = E->getLambdaClass()->field_begin(); 1924c370a7eeSEli Friedman for (LambdaExpr::capture_init_iterator i = E->capture_init_begin(), 1925c370a7eeSEli Friedman e = E->capture_init_end(); 1926c370a7eeSEli Friedman i != e; ++i, ++CurField) { 1927c370a7eeSEli Friedman // Emit initialization 19287f1ff600SEli Friedman 192940ed2973SDavid Blaikie LValue LV = EmitLValueForFieldInitialization(SlotLV, *CurField); 19305f1a04ffSEli Friedman ArrayRef<VarDecl *> ArrayIndexes; 19315f1a04ffSEli Friedman if (CurField->getType()->isArrayType()) 19325f1a04ffSEli Friedman ArrayIndexes = E->getCaptureInitIndexVars(i); 193340ed2973SDavid Blaikie EmitInitializerForField(*CurField, LV, *i, ArrayIndexes); 1934c370a7eeSEli Friedman } 1935c370a7eeSEli Friedman } 1936